mirror of
https://github.com/Ed94/pikuma_ps1.git
synced 2026-08-06 15:48:49 +00:00
Compare commits
27
Commits
| Author | SHA1 | Date | |
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2b6fe53ce8 | ||
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01f7ceba7c | ||
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6f2eff920d | ||
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f25765a7b7 | ||
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2757aa4330 | ||
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748b58c5c5 | ||
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6441dbc23e | ||
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57fdb9e037 | ||
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b5953a723b | ||
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888ffce859 | ||
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7289e7c89c | ||
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54a5bb9a31 | ||
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e0f4ac873d | ||
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f17fa9165e | ||
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8282f8e902 | ||
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9eb696ece8 | ||
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858e57f293 | ||
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afcd9b86f0 | ||
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43cd4e0344 | ||
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09dde54030 | ||
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315e1b2c5e | ||
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02658d3609 | ||
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dbc459b7e0 | ||
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a704341fc6 | ||
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7421b32fd7 | ||
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e2eb74be19 | ||
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338f1fe46e |
@@ -17,3 +17,7 @@ toolchain/PSn00bSDK
|
||||
.vscode/settings.json
|
||||
toolchain/lfs
|
||||
toolchain/lpeg
|
||||
|
||||
scratch
|
||||
toolchain/libpsn00b
|
||||
scripts/pcsx_debug_helper.zip
|
||||
|
||||
Vendored
+71
-36
@@ -74,41 +74,7 @@
|
||||
]
|
||||
},
|
||||
{
|
||||
"name": "Debug: Hello GTE Psy-Q!",
|
||||
"type": "gdb",
|
||||
"request": "attach",
|
||||
"target": "localhost:3333",
|
||||
"remote": true,
|
||||
"cwd": "${workspaceRoot}/build",
|
||||
"valuesFormatting": "parseText",
|
||||
"registerLimit": "1-32",
|
||||
"frameFilters": false,
|
||||
"showDevDebugOutput": false,
|
||||
"printCalls": false,
|
||||
"stopAtConnect": true,
|
||||
"gdbpath": "gdb-multiarch",
|
||||
"windows": {
|
||||
"gdbpath": "gdb-multiarch.exe"
|
||||
},
|
||||
"osx": {
|
||||
"gdbpath": "gdb"
|
||||
},
|
||||
"executable": "${workspaceRoot}/build/hello_gte.elf",
|
||||
"setupCommands": [
|
||||
{ "text": "set mi-async off" },
|
||||
{ "text": "set remotetimeout 0" },
|
||||
{ "text": "set logging file build/gen/hello_gte.gdb.log" },
|
||||
{ "text": "set logging redirect on" }
|
||||
],
|
||||
"autorun": [
|
||||
"monitor reset shellhalt",
|
||||
"load hello_gte.elf",
|
||||
"tbreak main",
|
||||
"continue"
|
||||
]
|
||||
},
|
||||
{
|
||||
"name": "Debug: Hello GTE Psy-Q! (atoms debug — DWARF-injected)",
|
||||
"name": "Debug: Hello GTE!",
|
||||
"type": "gdb",
|
||||
"request": "attach",
|
||||
"target": "localhost:3333",
|
||||
@@ -138,7 +104,76 @@
|
||||
"monitor reset shellhalt",
|
||||
"load build/hello_gte.dwarf-injected.elf",
|
||||
"source scripts/gdb/gdb_tape_atoms.gdb",
|
||||
"source build/gen/hello_gte.gdbinit",
|
||||
"tbreak main",
|
||||
"continue"
|
||||
]
|
||||
},
|
||||
{
|
||||
"name": "Debug: Hello Joypad!",
|
||||
"type": "gdb",
|
||||
"request": "attach",
|
||||
"target": "localhost:3333",
|
||||
"remote": true,
|
||||
"cwd": "${workspaceRoot}",
|
||||
"valuesFormatting": "parseText",
|
||||
"registerLimit": "1-32",
|
||||
"frameFilters": false,
|
||||
"showDevDebugOutput": false,
|
||||
"printCalls": false,
|
||||
"stopAtConnect": true,
|
||||
"gdbpath": "gdb-multiarch",
|
||||
"windows": {
|
||||
"gdbpath": "gdb-multiarch.exe"
|
||||
},
|
||||
"osx": {
|
||||
"gdbpath": "gdb"
|
||||
},
|
||||
"executable": "${workspaceRoot}/build/hello_joypad.dwarf-injected.elf",
|
||||
"setupCommands": [
|
||||
{ "text": "set mi-async off" },
|
||||
{ "text": "set remotetimeout 0" },
|
||||
{ "text": "set logging file build/gen/hello_joypad.gdb.log" },
|
||||
{ "text": "set logging redirect on" }
|
||||
],
|
||||
"autorun": [
|
||||
"monitor reset shellhalt",
|
||||
"load build/hello_joypad.dwarf-injected.elf",
|
||||
"source scripts/gdb/gdb_tape_atoms.gdb",
|
||||
"tbreak main",
|
||||
"continue"
|
||||
]
|
||||
},
|
||||
{
|
||||
"name": "Debug: Hello Camera!",
|
||||
"type": "gdb",
|
||||
"request": "attach",
|
||||
"target": "localhost:3333",
|
||||
"remote": true,
|
||||
"cwd": "${workspaceRoot}",
|
||||
"valuesFormatting": "parseText",
|
||||
"registerLimit": "1-32",
|
||||
"frameFilters": false,
|
||||
"showDevDebugOutput": false,
|
||||
"printCalls": false,
|
||||
"stopAtConnect": true,
|
||||
"gdbpath": "gdb-multiarch",
|
||||
"windows": {
|
||||
"gdbpath": "gdb-multiarch.exe"
|
||||
},
|
||||
"osx": {
|
||||
"gdbpath": "gdb"
|
||||
},
|
||||
"executable": "${workspaceRoot}/build/hello_camera.dwarf-injected.elf",
|
||||
"setupCommands": [
|
||||
{ "text": "set mi-async off" },
|
||||
{ "text": "set remotetimeout 0" },
|
||||
{ "text": "set logging file build/gen/hello_camera.gdb.log" },
|
||||
{ "text": "set logging redirect on" }
|
||||
],
|
||||
"autorun": [
|
||||
"monitor reset shellhalt",
|
||||
"load build/hello_camera.dwarf-injected.elf",
|
||||
"source scripts/gdb/gdb_tape_atoms.gdb",
|
||||
"tbreak main",
|
||||
"continue"
|
||||
]
|
||||
|
||||
@@ -1,5 +1,5 @@
|
||||
/*
|
||||
* atom_dsl.h
|
||||
* dsl.atom.h
|
||||
* ============================================================================
|
||||
*
|
||||
* ATOM DSL: Annotation layer for tape atoms (lottes_tape.h).
|
||||
@@ -57,7 +57,6 @@
|
||||
|
||||
#ifdef INTELLISENSE_DIRECTIVES
|
||||
#pragma once
|
||||
// #include <stdint.h>
|
||||
#endif
|
||||
|
||||
/* ============================================================================
|
||||
@@ -148,12 +147,12 @@
|
||||
* ... body ...
|
||||
* atom_label(bounds_chk) ← another anchor
|
||||
*
|
||||
* atom_offset(culling, bounds_chk) ← resolved by gen/.offsets.h
|
||||
* atom_offset(culling, bounds_chk) ← resolved by gen/offsets.h
|
||||
*
|
||||
* The metaprogram generates gen/atom_offsets.h with one #define with the offset value per atom_offset(F, T) call.
|
||||
* The metaprogram generates gen/offsets.h with one #define with the offset value per atom_offset(F, T) call.
|
||||
* The preprocessor then expands the call to the right immediate value.
|
||||
*
|
||||
* If gen/atom_offsets.h is stale (or atom_label(name) is undefined), `atom_offset_F_T` becomes an undefined macro and the C build fails.
|
||||
* If gen/offsets.h is stale (or atom_label(name) is undefined), `atom_offset_F_T` becomes an undefined macro and the C build fails.
|
||||
* ============================================================================*/
|
||||
#define atom_offset(F, T) atom_offset_ ## F ## _ ## T
|
||||
// atom_label is a pure annotation for the metaprogram's offset calculations.
|
||||
+8
-4
@@ -43,7 +43,9 @@
|
||||
|
||||
#define R_ restrict
|
||||
#define V_ volatile
|
||||
// Fictional, used for intiution.
|
||||
|
||||
#pragma region Fictional //, used for intiution
|
||||
|
||||
#define EUB_ restrict // Execute Unit Bound: Data is siloed in the ALU Register File. The Load/Store Unit is bypassed. (Route to Execution Unit. Keep in registers)
|
||||
#define ISO_ restrict // Isolated Provenance: Alternative to Exu_. Guarantees electrical memory isolation,
|
||||
// unlocking the compiler’s ability to safely pack data across multiple parallel SIMD lanes (vectorization).
|
||||
@@ -67,7 +69,8 @@
|
||||
#define latch_load_anchor(ptr) //__atomic_load_n(ptr, ooo_anchor_)
|
||||
#define latch_store_drain(ptr, val) //__atomic_store_n(ptr, val, ooo_drain_)
|
||||
#define pulse_xchg_weld(ptr, val) //__atomic_exchange_n(ptr, val, ooo_weld_)
|
||||
//end of: Fictional.
|
||||
|
||||
#pragma endreigon Fictional
|
||||
|
||||
|
||||
// R_ (restrict) establishes an "Eigen" or "Proprius" mapping.
|
||||
@@ -139,10 +142,11 @@ typedef void Proc_(VoidFn) (void);
|
||||
#define mega(n) (C_(U4, n) << 20)
|
||||
#define giga(n) (C_(U4, n) << 30)
|
||||
#define tera(n) (C_(U4, n) << 40)
|
||||
|
||||
#define null C_(U4, 0)
|
||||
#define nullptr C_(void*, 0)
|
||||
#define O_(type, field) (C_(U4, & C_(type*,0)->field))
|
||||
|
||||
#define O_(type, field) C_(U4, & C_(type*,0)->field)
|
||||
#define OA_(type, member, idx) C_(U4, & C_(type*,0)->member[idx])
|
||||
#define OT_(field) O_(typeof_ptr(& field), filed))
|
||||
#define S_(data) C_(U4, sizeof(data))
|
||||
|
||||
|
||||
+14
-22
@@ -50,17 +50,13 @@
|
||||
#define asm_words(...) m_expand(glue(GCC_ASM_INL_, GCC_ASM_COUNT_ARGS(__VA_ARGS__))(__VA_ARGS__))
|
||||
// Very nasty macro expansion. See the Cruft pragma region after all the DSL defines
|
||||
|
||||
/* reg_str(n) — Stringify an integer register id into the GCC asm
|
||||
* string form (e.g. 12 → "$12"). Use this anywhere GCC's parser
|
||||
* expects a literal string identifying a register: clobber lists,
|
||||
* asm templates, etc. The two-level macro is the standard preprocessor
|
||||
* idiom for forcing one level of expansion before stringify — without
|
||||
* it, `#n` would stringify the macro name `R_T4` to `"R_T4"` instead
|
||||
* of expanding `R_T4` to its value first.
|
||||
/* reg_str(n) — Stringify an integer register id into the GCC asm string form (e.g. 12 → "$12").
|
||||
* Use this anywhere GCC's parser expects a literal string identifying a register: clobber lists,
|
||||
* asm templates, etc. The two-level macro is the standard preprocessor idiom for forcing one level of expansion before stringify —
|
||||
* without it, `#n` would stringify the macro name `R_T4` to `"R_T4"` instead of expanding `R_T4` to its value first.
|
||||
*
|
||||
* For declaring a register variable bound to a specific GPR, use the
|
||||
* `rgcc(n)` bundle from gcc_asm.h instead — it adds the `__asm__()`
|
||||
* qualifier around the string.
|
||||
* For declaring a register variable bound to a specific GPR, use the `rgcc(n)` bundle from gcc_asm.h instead —
|
||||
* it adds the `__asm__()` qualifier around the string.
|
||||
*
|
||||
* register V3_S2* p0 __asm__(reg_str(R_T4)) = ...; // verbose
|
||||
* register V3_S2* p0 rgcc(R_T4) = ...; // bundled
|
||||
@@ -85,7 +81,7 @@
|
||||
* - The string "$12" is derived from it via reg_str, so they cannot drift apart.
|
||||
* - Spelling `__asm__(reg_str(R_T4_Code))` at every call site is noise.
|
||||
*
|
||||
* tmpl defined in dsl.h (the token-paste glue).
|
||||
* tmpl defined in dsl.h (token-paste glue).
|
||||
* rgcc define here (gcc_asm.h) because the `__asm__` keyword is GCC-specific.
|
||||
* Anyone porting to a different compiler's asm dialect overrides rgcc,
|
||||
* and the integer→string derivation in rlit can be retargeted in one place.
|
||||
@@ -94,12 +90,10 @@
|
||||
* ------------------------------------------------------------------------ */
|
||||
#define rgcc(n) __asm__(rlit(n))
|
||||
|
||||
/* rgcc_ref(n) — GCC operand-reference form "%N". Not currently used
|
||||
* by the placeholder-pun macros (the .word bodies are fully baked
|
||||
* at compile time and have no runtime operand references), but kept
|
||||
* here for completeness in case a future asm template needs to refer
|
||||
* to a runtime input by position. Mirror of rgcc but produces "%N"
|
||||
* instead of "$N". */
|
||||
/* rgcc_ref(n) — GCC operand-reference form "%N". Not currently used by the placeholder-pun macros
|
||||
* (the .word bodies are fully baked at compile time and have no runtime operand references),
|
||||
* but kept here for completeness in case a future asm template needs to refer to a runtime input by position.
|
||||
* Mirror of rgcc but produces "%N" instead of "$N". */
|
||||
#define rgcc_ref_(n) "%" #n
|
||||
#define rgcc_ref(n) rgcc_ref_(n)
|
||||
|
||||
@@ -147,11 +141,9 @@
|
||||
9, 8, 7, 6, 5, 4, 3, 2, 1, 0))
|
||||
|
||||
/* --- 2. String Concatenation Helpers --- *
|
||||
* NOTE: we use `%0`, `%1`, ... not `%c0`, `%c1`, ... because GCC's
|
||||
* asm-parser rejects `%cN` in this position with "invalid use of '%c'".
|
||||
* The `%cN` form is for printing *character* constants; for arbitrary
|
||||
* integer immediates (the only kind `"i"(...)` produces), the plain
|
||||
* `%N` form is the right one. Both expand to the bare immediate.
|
||||
* NOTE: we use `%0`, `%1`, ... not `%c0`, `%c1`, ... because GCC's asm-parser rejects `%cN` in this position with "invalid use of '%c'".
|
||||
* The `%cN` form is for printing *character* constants; for arbitrary integer immediates (the only kind `"i"(...)` produces),
|
||||
* the plain `%N` form is the right one. Both expand to the bare immediate.
|
||||
*/
|
||||
#define GCC_ASM_W1 "%0"
|
||||
#define GCC_ASM_W2 GCC_ASM_W1 ", %1"
|
||||
|
||||
@@ -1,139 +0,0 @@
|
||||
#ifdef INTELLISENSE_DIRECTIVES
|
||||
#pragma once
|
||||
#endif
|
||||
// Auto-generated by ps1_meta.lua — DO NOT EDIT
|
||||
// Source: C:\projects\Pikuma\ps1\code\duffle\lottes_tape.h
|
||||
// Component atoms (MipsAtomComp_(ac_*)) -> macro variants (mac_*)
|
||||
|
||||
#ifndef WORD_COUNT
|
||||
#define WORD_COUNT(name, count) enum { words_##name = (count) };
|
||||
#endif
|
||||
|
||||
/* atom_dbg_skip */
|
||||
/* ---------------------------------------------------------------------------
|
||||
* MACRO ATOM Components (Reusable Assembly Components)
|
||||
* These do NOT yield. They are expanded inline inside Tape Atoms.
|
||||
* ---------------------------------------------------------------------------*/
|
||||
// The 'Yield' sequence for Tape Atoms (mac_yield).
|
||||
#define mac_yield(...) \
|
||||
load_word(R_AtomJmp, R_TapePtr, 0) \
|
||||
, add_ui_self( R_TapePtr, S_(MipsCode)) \
|
||||
, jump_reg( R_AtomJmp) \
|
||||
, nop
|
||||
WORD_COUNT(mac_yield, 4)
|
||||
|
||||
/* atom_dbg_skip */
|
||||
/* Words: 3; Loads 3 S2 indices from the face array */
|
||||
#define mac_load_tri_indices(...) \
|
||||
load_half_u(R_T0, R_FaceCursor, 0 * S_(S2)) \
|
||||
, load_half_u(R_T1, R_FaceCursor, 1 * S_(S2)) \
|
||||
, load_half_u(R_T2, R_FaceCursor, 2 * S_(S2))
|
||||
WORD_COUNT(mac_load_tri_indices, 3)
|
||||
|
||||
/* atom_dbg_skip */
|
||||
/* Words: 18; Translates indices to vertex addresses and pushes them to GTE */
|
||||
#define mac_gte_load_tri_verts(...) \
|
||||
shift_lleft(R_AT, R_T0, v3s2_byteoff) \
|
||||
, add_u_self(R_AT, R_VertBase) \
|
||||
, load_word(R_V0, R_AT, O_(V3_S2,x)) \
|
||||
, load_word(R_V1, R_AT, O_(V3_S2,z)) \
|
||||
, gte_mv_to_data_r(R_V0, C2_VXY0) \
|
||||
, gte_mv_to_data_r(R_V1, C2_VZ0) \
|
||||
, shift_lleft(R_AT, R_T1, v3s2_byteoff) \
|
||||
, add_u_self(R_AT, R_VertBase) \
|
||||
, load_word(R_V0, R_AT, O_(V3_S2,x)) \
|
||||
, load_word(R_V1, R_AT, O_(V3_S2,z)) \
|
||||
, gte_mv_to_data_r(R_V0, C2_VXY1) \
|
||||
, gte_mv_to_data_r(R_V1, C2_VZ1) \
|
||||
, shift_lleft(R_AT, R_T2, v3s2_byteoff) \
|
||||
, add_u_self(R_AT, R_VertBase) \
|
||||
, load_word(R_V0, R_AT, O_(V3_S2,x)) \
|
||||
, load_word(R_V1, R_AT, O_(V3_S2,z)) \
|
||||
, gte_mv_to_data_r(R_V0, C2_VXY2) \
|
||||
, gte_mv_to_data_r(R_V1, C2_VZ2)
|
||||
WORD_COUNT(mac_gte_load_tri_verts, 18)
|
||||
|
||||
/* Words: 11; Correctly inserts a primitive into the Ordering Table linked list.
|
||||
* Hardcoded for Poly_F3 (5 words). For Poly_G4, use ac_insert_ot_tag_g4. */
|
||||
#define mac_insert_ot_tag_f3(...) \
|
||||
shift_lleft( R_T1, R_T1, S_(U4)/2) /* T1 = otz * S_(U4) (otz arg is implicit R_T1) */ \
|
||||
, add_u_self( R_T1, R_OtBase) /* T1 = & OrderingTable[OTZ] */ \
|
||||
, load_word( R_AT, R_T1, O_(PolyTag,code)) /* AT = old_ot_head */ \
|
||||
, load_upper_i(R_V0, (S_(Poly_F3)/S_(U4) - S_(PolyTag)/S_(U4)) << PolyTag_len_bits) /* V0 = (5 - 1) << 24 = 4 << 24 */ \
|
||||
, mask_upper( R_AT, R_AT, S_(PolyTag_len_bits)) /* Strip upper 8 bits (length from prev cell) → keep only low 24 */ \
|
||||
, or_u( R_AT, R_AT, R_V0) /* Merge length */ \
|
||||
, store_word( R_AT, R_PrimCursor, O_(PolyTag,code)) /* prim->tag = packed(prim_length, old_addr) */ \
|
||||
, shift_lleft( R_AT, R_PrimCursor, S_(PolyTag_len_bits)) /* AT = (prim_length << 24) | old_addr */ \
|
||||
, shift_lright(R_AT, R_AT, S_(PolyTag_len_bits)) \
|
||||
, store_word( R_AT, R_T1, O_(PolyTag,code)) /* OrderingTable[OTZ] = PrimCursor */
|
||||
WORD_COUNT(mac_insert_ot_tag_f3, 11)
|
||||
|
||||
/* Words: 11; Correctly inserts a primitive into the Ordering Table linked list.
|
||||
* Hardcoded for Poly_G4 (9 words). For Poly_F3, use ac_insert_ot_tag_f3. */
|
||||
#define mac_insert_ot_tag_g4(...) \
|
||||
shift_lleft( R_T1, R_T1, S_(U4)/2) /* T1 = otz * S_(U4) (otz arg is implicit R_T1) */ \
|
||||
, add_u_self( R_T1, R_OtBase) /* T1 = & OrderingTable[OTZ] */ \
|
||||
, load_word( R_AT, R_T1, O_(PolyTag,code)) /* AT = old_ot_head */ \
|
||||
, load_upper_i(R_V0, (S_(Poly_G4)/S_(U4) - S_(PolyTag)/S_(U4)) << PolyTag_len_bits) /* V0 = (9 - 1) << 24 = 8 << 24 */ \
|
||||
, mask_upper( R_AT, R_AT, S_(PolyTag_len_bits)) /* Strip upper 8 bits (length from prev cell) → keep only low 24 */ \
|
||||
, or_u( R_AT, R_AT, R_V0) /* Merge length */ \
|
||||
, store_word( R_AT, R_PrimCursor, O_(PolyTag,code)) /* prim->tag = packed(prim_length, old_addr) */ \
|
||||
, shift_lleft( R_AT, R_PrimCursor, S_(PolyTag_len_bits)) /* AT = (prim_length << 24) | old_addr */ \
|
||||
, shift_lright(R_AT, R_AT, S_(PolyTag_len_bits)) \
|
||||
, store_word( R_AT, R_T1, O_(PolyTag,code)) /* OrderingTable[OTZ] = PrimCursor */
|
||||
WORD_COUNT(mac_insert_ot_tag_g4, 11)
|
||||
|
||||
/* atom_dbg_skip */
|
||||
#define mac_pack_color_word(off, cmd, r, g, b) \
|
||||
load_upper_i(R_AT, (cmd) << 8 | (b)) \
|
||||
, or_i_self( R_AT, ((g) << 8) | (r)) \
|
||||
, store_word( R_AT, R_PrimCursor, (off))
|
||||
WORD_COUNT(mac_pack_color_word, 3)
|
||||
|
||||
/* atom_dbg_skip */
|
||||
#define mac_format_f3_color(r, g, b) \
|
||||
mac_pack_color_word(O_(Poly_F3,color), gp0_cmd_poly_f3, r, g, b)
|
||||
WORD_COUNT(mac_format_f3_color, 3)
|
||||
|
||||
/* atom_dbg_skip */
|
||||
/* Words: 3; Stores the 3 transformed (V2_S2 screen) vertices to the F3.
|
||||
* PIPELINE: post-RTPT (SXY0=v0.screen, SXY1=v1.screen, SXY2=v2.screen). */
|
||||
#define mac_gte_store_f3_post_rtpt(...) \
|
||||
gte_sw(C2_SXY0, R_PrimCursor, O_(Poly_F3,p0)) \
|
||||
, gte_sw(C2_SXY1, R_PrimCursor, O_(Poly_F3,p1)) \
|
||||
, gte_sw(C2_SXY2, R_PrimCursor, O_(Poly_F3,p2))
|
||||
WORD_COUNT(mac_gte_store_f3_post_rtpt, 3)
|
||||
|
||||
#define mac_format_g4_color(r0, g0, b0, r1, g1, b1, r2, g2, b2, r3, g3, b3) \
|
||||
mac_pack_color_word(O_(Poly_G4,c0), gp0_cmd_poly_g4, r0,g0,b0) \
|
||||
, mac_pack_color_word(O_(Poly_G4,c1), 0, r1,g1,b1) \
|
||||
, mac_pack_color_word(O_(Poly_G4,c2), 0, r2,g2,b2) \
|
||||
, mac_pack_color_word(O_(Poly_G4,c3), 0, r3,g3,b3)
|
||||
WORD_COUNT(mac_format_g4_color, 12)
|
||||
|
||||
/* atom_dbg_skip */
|
||||
/* Words: 3; Stores the 3 transformed (V2_S2 screen) vertices of the
|
||||
* G4 triangle portion to p0/p1/p2.
|
||||
* PIPELINE: post-RTPT, pre-RTPS (SXY0=v0.screen, SXY1=v1.screen, SXY2=v2.screen).
|
||||
* MUST be called BEFORE V3-RTPS, otherwise SXY0/1/2
|
||||
* get overwritten with v3 (RTPS writes only to SXY2, but to keep the
|
||||
* three registers aligned with v0/v1/v2 you must store before RTPS).
|
||||
* The macro name declares the pipeline position; check #6 (GTE state-
|
||||
* machine validation) verifies the call site matches the declaration. */
|
||||
#define mac_gte_store_g4_p012_post_rtpt_pre_rtps(...) \
|
||||
gte_sw(C2_SXY0, R_PrimCursor, O_(Poly_G4,p0)) \
|
||||
, gte_sw(C2_SXY1, R_PrimCursor, O_(Poly_G4,p1)) \
|
||||
, gte_sw(C2_SXY2, R_PrimCursor, O_(Poly_G4,p2))
|
||||
WORD_COUNT(mac_gte_store_g4_p012_post_rtpt_pre_rtps, 3)
|
||||
|
||||
/* atom_dbg_skip */
|
||||
/* Words: 1; Stores the V3 screen coord to the G4's p3 slot.
|
||||
* PIPELINE: post-RTPS (SXY2 holds v3.screen because RTPS writes its
|
||||
* single-vertex result to SXY2; SXY0 still holds v0.screen from the
|
||||
* earlier RTPT — DO NOT read SXY0 here, that's the bug this name
|
||||
* prevents).
|
||||
*/
|
||||
#define mac_gte_store_g4_p3_post_rtps(...) \
|
||||
gte_sw(C2_SXY2, R_PrimCursor, O_(Poly_G4,p3))
|
||||
WORD_COUNT(mac_gte_store_g4_p3_post_rtps, 1)
|
||||
|
||||
@@ -1,9 +0,0 @@
|
||||
// Auto-generated by ps1_meta.lua (passes/offsets.lua) — DO NOT EDIT
|
||||
// Source: C:\projects\Pikuma\ps1\code\duffle\lottes_tape.h
|
||||
#pragma once
|
||||
|
||||
#pragma region lottes_tape
|
||||
|
||||
|
||||
#pragma endregion lottes_tape
|
||||
|
||||
@@ -0,0 +1,184 @@
|
||||
#ifdef INTELLISENSE_DIRECTIVES
|
||||
#pragma once
|
||||
#endif
|
||||
// Auto-generated by ps1_meta.lua — DO NOT EDIT
|
||||
// Directory: C:\projects\Pikuma\ps1\code\duffle/
|
||||
// source: C:\projects\Pikuma\ps1\code\duffle\word_count.metadata.h
|
||||
// source: C:\projects\Pikuma\ps1\code\duffle\dsl.h
|
||||
// source: C:\projects\Pikuma\ps1\code\duffle\memory.h
|
||||
// source: C:\projects\Pikuma\ps1\code\duffle\math.h
|
||||
// source: C:\projects\Pikuma\ps1\code\duffle\gcc_asm.h
|
||||
// source: C:\projects\Pikuma\ps1\code\duffle\mips.h
|
||||
// source: C:\projects\Pikuma\ps1\code\duffle\gp.h
|
||||
// source: C:\projects\Pikuma\ps1\code\duffle\gte.h
|
||||
// source: C:\projects\Pikuma\ps1\code\duffle\pad.h
|
||||
// source: C:\projects\Pikuma\ps1\code\duffle\dsl.atom.h
|
||||
// source: C:\projects\Pikuma\ps1\code\duffle\lottes_tape.h
|
||||
// source: C:\projects\Pikuma\ps1\code\duffle\psyq.h
|
||||
// source: C:\projects\Pikuma\ps1\code\duffle\math.atom.c
|
||||
// source: C:\projects\Pikuma\ps1\code\duffle\mips.atom.c
|
||||
// source: C:\projects\Pikuma\ps1\code\duffle\gte.atom.c
|
||||
// source: C:\projects\Pikuma\ps1\code\duffle\gp.atom.c
|
||||
// source: C:\projects\Pikuma\ps1\code\duffle\pad.atom.c
|
||||
// source: C:\projects\Pikuma\ps1\code\duffle\psyq.atom.c
|
||||
// Component atoms (MipsAtomComp_(ac_*)) -> macro variants (mac_*)
|
||||
|
||||
#ifndef WORD_COUNT
|
||||
#define WORD_COUNT(name, count) enum { words_##name = (count) };
|
||||
#endif
|
||||
|
||||
/* atom_dbg_skip */
|
||||
/* ---------------------------------------------------------------------------
|
||||
* MACRO ATOM Components (Reusable Assembly Components)
|
||||
* These do NOT yield. They are expanded inline inside Tape Atoms.
|
||||
* ---------------------------------------------------------------------------*/
|
||||
// The 'Yield' sequence for Tape Atoms (mac_yield).
|
||||
// - mac_yield() is the safe default for atom-endings: 4 words, BD-slot of jr is mandatory nop.
|
||||
// - mac_yield_load() + mac_yield_tail():
|
||||
// - unconditional branch: mac_yield_load fills the branch's BD-slot (replaces a nop);
|
||||
// - mac_yield_tail runs at the branch target (does NOT re-load R_AtomJmp).
|
||||
#define mac_yield(...) \
|
||||
load_word(R_AtomJmp, R_TapePtr, 0) \
|
||||
, add_ui_self( R_TapePtr, S_(MipsCode)) \
|
||||
, jump_reg( R_AtomJmp) \
|
||||
, nop
|
||||
WORD_COUNT(mac_yield, 4)
|
||||
|
||||
/* atom_dbg_skip */
|
||||
#define mac_yield_load(...) \
|
||||
load_word(R_AtomJmp, R_TapePtr, 0)
|
||||
WORD_COUNT(mac_yield_load, 1)
|
||||
|
||||
/* atom_dbg_skip */
|
||||
#define mac_yield_tail(...) \
|
||||
add_ui_self(R_TapePtr, S_(MipsCode)) \
|
||||
, jump_reg( R_AtomJmp) \
|
||||
, nop
|
||||
WORD_COUNT(mac_yield_tail, 3)
|
||||
|
||||
/* atom_dbg_skip */
|
||||
#define mac_load_v2s2(rs_x, rs_y, r_base, offset) \
|
||||
load_half( rs_x, r_base, O_(V3_S2,x)) \
|
||||
, load_half( rs_y, r_base, O_(V3_S2,y))
|
||||
WORD_COUNT(mac_load_v2s2, 2)
|
||||
|
||||
/* atom_dbg_skip */
|
||||
#define mac_store_v2s2(rt_x, rt_y, base, offset) \
|
||||
store_half(rt_x, base, offset + O_(V2_S2,x)) \
|
||||
, store_half(rt_y, base, offset + O_(V2_S2,y))
|
||||
WORD_COUNT(mac_store_v2s2, 2)
|
||||
|
||||
/* atom_dbg_skip */
|
||||
#define mac_store_rects2(rt_x, rt_y, rt_width, rt_height, base, offset) \
|
||||
store_half(rt_x, base, offset + O_(Rect_S2,x)) \
|
||||
, store_half(rt_y, base, offset + O_(Rect_S2,y)) \
|
||||
, store_half(rt_width, base, offset + O_(Rect_S2,width)) \
|
||||
, store_half(rt_height, base, offset + O_(Rect_S2,height))
|
||||
WORD_COUNT(mac_store_rects2, 4)
|
||||
|
||||
/* atom_dbg_skip */
|
||||
#define mac_load_tri_indices(r_face_cusor, r_i0, r_i1, r_i2) \
|
||||
load_half_u(r_i0, r_face_cusor, 0 * S_(S2)) \
|
||||
, load_half_u(r_i1, r_face_cusor, 1 * S_(S2)) \
|
||||
, load_half_u(r_i2, r_face_cusor, 2 * S_(S2))
|
||||
WORD_COUNT(mac_load_tri_indices, 3)
|
||||
|
||||
/* atom_dbg_skip */
|
||||
#define mac_gte_store_f3(r_primitive_cursor) \
|
||||
gte_sw(C2_SXY0, r_primitive_cursor, O_(Poly_F3,p0)) \
|
||||
, gte_sw(C2_SXY1, r_primitive_cursor, O_(Poly_F3,p1)) \
|
||||
, gte_sw(C2_SXY2, r_primitive_cursor, O_(Poly_F3,p2))
|
||||
WORD_COUNT(mac_gte_store_f3, 3)
|
||||
|
||||
/* atom_dbg_skip */
|
||||
#define mac_gte_load_tri_verts(r_vert_base, r_v0, r_v1, r_v2) \
|
||||
shift_lleft(R_AT, r_v0, v3s2_byteoff) \
|
||||
, add_u_self(R_AT, r_vert_base) \
|
||||
, load_word(R_V0, R_AT, O_(V3_S2,x)) \
|
||||
, load_word(R_V1, R_AT, O_(V3_S2,z)) \
|
||||
, gte_mv_to_data_r(R_V0, C2_VXY0) \
|
||||
, gte_mv_to_data_r(R_V1, C2_VZ0) \
|
||||
, shift_lleft(R_AT, r_v1, v3s2_byteoff) \
|
||||
, add_u_self(R_AT, r_vert_base) \
|
||||
, load_word(R_V0, R_AT, O_(V3_S2,x)) \
|
||||
, load_word(R_V1, R_AT, O_(V3_S2,z)) \
|
||||
, gte_mv_to_data_r(R_V0, C2_VXY1) \
|
||||
, gte_mv_to_data_r(R_V1, C2_VZ1) \
|
||||
, shift_lleft(R_AT, r_v2, v3s2_byteoff) \
|
||||
, add_u_self(R_AT, r_vert_base) \
|
||||
, load_word(R_V0, R_AT, O_(V3_S2,x)) \
|
||||
, load_word(R_V1, R_AT, O_(V3_S2,z)) \
|
||||
, gte_mv_to_data_r(R_V0, C2_VXY2) \
|
||||
, gte_mv_to_data_r(R_V1, C2_VZ2)
|
||||
WORD_COUNT(mac_gte_load_tri_verts, 18)
|
||||
|
||||
/* atom_dbg_skip */
|
||||
#define mac_gte_store_g4_p012(r_primitive_cursor) \
|
||||
gte_sw(C2_SXY0, r_primitive_cursor, O_(Poly_G4,p0)) \
|
||||
, gte_sw(C2_SXY1, r_primitive_cursor, O_(Poly_G4,p1)) \
|
||||
, gte_sw(C2_SXY2, r_primitive_cursor, O_(Poly_G4,p2))
|
||||
WORD_COUNT(mac_gte_store_g4_p012, 3)
|
||||
|
||||
/* atom_dbg_skip */
|
||||
#define mac_gte_store_g4_p3(r_primitive_cursor) \
|
||||
gte_sw(C2_SXY2, r_primitive_cursor, O_(Poly_G4,p3))
|
||||
WORD_COUNT(mac_gte_store_g4_p3, 1)
|
||||
|
||||
#define mac_gcmd_push(cmd, reg_transfer, reg_base, port) \
|
||||
load_upper_i(reg_transfer, cmd >> 16) \
|
||||
, or_i_self( reg_transfer, cmd & 0xFFFF) \
|
||||
, store_word( reg_transfer, reg_base, port)
|
||||
WORD_COUNT(mac_gcmd_push, 3)
|
||||
|
||||
/* atom_dbg_skip */
|
||||
#define mac_store_rgb8(rr, rg, rb, base, offset) \
|
||||
store_byte(rr, base, offset + O_(RGB8,r)) \
|
||||
, store_byte(rg, base, offset + O_(RGB8,g)) \
|
||||
, store_byte(rb, base, offset + O_(RGB8,b))
|
||||
WORD_COUNT(mac_store_rgb8, 3)
|
||||
|
||||
/* atom_dbg_skip */
|
||||
#define mac_pack_color_word(r_base, off, cmd, r, g, b) \
|
||||
load_upper_i(R_AT, (cmd) << 8 | (b)) \
|
||||
, or_i_self( R_AT, ((g) << 8) | (r)) \
|
||||
, store_word( R_AT, r_base, (off))
|
||||
WORD_COUNT(mac_pack_color_word, 3)
|
||||
|
||||
/* atom_dbg_skip */
|
||||
#define mac_format_f3_color(r_base, r, g, b) \
|
||||
mac_pack_color_word(r_base, O_(Poly_F3,color), gp0_cmd_poly_f3, r, g, b)
|
||||
WORD_COUNT(mac_format_f3_color, 3)
|
||||
|
||||
#define mac_format_g4_color(r_prim_cursor, r0, g0, b0, r1, g1, b1, r2, g2, b2, r3, g3, b3) \
|
||||
mac_pack_color_word(r_prim_cursor, O_(Poly_G4,c0), gp0_cmd_poly_g4, r0,g0,b0) \
|
||||
, mac_pack_color_word(r_prim_cursor, O_(Poly_G4,c1), 0, r1,g1,b1) \
|
||||
, mac_pack_color_word(r_prim_cursor, O_(Poly_G4,c2), 0, r2,g2,b2) \
|
||||
, mac_pack_color_word(r_prim_cursor, O_(Poly_G4,c3), 0, r3,g3,b3)
|
||||
WORD_COUNT(mac_format_g4_color, 12)
|
||||
|
||||
#define mac_insert_ot_tag_f3(r_ot_base, r_prim_cursor) \
|
||||
shift_lleft( R_T1, R_T1, S_(U4)/2) /* T1 = otz * S_(U4) (otz arg is implicit R_T1) */ \
|
||||
, add_u_self( R_T1, r_ot_base) /* T1 = & OrderingTable[OTZ] */ \
|
||||
, load_word( R_AT, R_T1, O_(PolyTag,code)) /* AT = old_ot_head */ \
|
||||
, load_upper_i(R_V0, (S_(Poly_F3)/S_(U4) - S_(PolyTag)/S_(U4)) << PolyTag_len_bits) /* V0 = (5 - 1) << 24 = 4 << 24 */ \
|
||||
, mask_upper( R_AT, R_AT, S_(PolyTag_len_bits)) /* Strip upper 8 bits (length from prev cell) → keep only low 24 */ \
|
||||
, or_u( R_AT, R_AT, R_V0) /* Merge length */ \
|
||||
, store_word( R_AT, r_prim_cursor, O_(PolyTag,code)) /* prim->tag = packed(prim_length, old_addr) */ \
|
||||
, shift_lleft( R_AT, r_prim_cursor, S_(PolyTag_len_bits)) /* AT = (prim_length << 24) | old_addr */ \
|
||||
, shift_lright(R_AT, R_AT, S_(PolyTag_len_bits)) \
|
||||
, store_word( R_AT, R_T1, O_(PolyTag,code)) /* OrderingTable[OTZ] = PrimCursor */
|
||||
WORD_COUNT(mac_insert_ot_tag_f3, 11)
|
||||
|
||||
#define mac_insert_ot_tag_g4(r_ot_base, r_prim_cursor) \
|
||||
shift_lleft( R_T1, R_T1, S_(U4)/2) /* T1 = otz * S_(U4) (otz arg is implicit R_T1) */ \
|
||||
, add_u_self( R_T1, r_ot_base) /* T1 = & OrderingTable[OTZ] */ \
|
||||
, load_word( R_AT, R_T1, O_(PolyTag,code)) /* AT = old_ot_head */ \
|
||||
, load_upper_i(R_V0, (S_(Poly_G4)/S_(U4) - S_(PolyTag)/S_(U4)) << PolyTag_len_bits) /* V0 = (9 - 1) << 24 = 8 << 24 */ \
|
||||
, mask_upper( R_AT, R_AT, S_(PolyTag_len_bits)) /* Strip upper 8 bits (length from prev cell) → keep only low 24 */ \
|
||||
, or_u( R_AT, R_AT, R_V0) /* Merge length */ \
|
||||
, store_word( R_AT, r_prim_cursor, O_(PolyTag,code)) /* prim->tag = packed(prim_length, old_addr) */ \
|
||||
, shift_lleft( R_AT, r_prim_cursor, S_(PolyTag_len_bits)) /* AT = (prim_length << 24) | old_addr */ \
|
||||
, shift_lright(R_AT, R_AT, S_(PolyTag_len_bits)) \
|
||||
, store_word( R_AT, R_T1, O_(PolyTag,code)) /* OrderingTable[OTZ] = PrimCursor */
|
||||
WORD_COUNT(mac_insert_ot_tag_g4, 11)
|
||||
|
||||
@@ -0,0 +1,53 @@
|
||||
// Auto-generated by ps1_meta.lua (passes/offsets.lua) — DO NOT EDIT
|
||||
// Directory: C:\projects\Pikuma\ps1\code\duffle\
|
||||
// source: C:\projects\Pikuma\ps1\code\duffle\word_count.metadata.h
|
||||
// source: C:\projects\Pikuma\ps1\code\duffle\dsl.h
|
||||
// source: C:\projects\Pikuma\ps1\code\duffle\memory.h
|
||||
// source: C:\projects\Pikuma\ps1\code\duffle\math.h
|
||||
// source: C:\projects\Pikuma\ps1\code\duffle\gcc_asm.h
|
||||
// source: C:\projects\Pikuma\ps1\code\duffle\mips.h
|
||||
// source: C:\projects\Pikuma\ps1\code\duffle\gp.h
|
||||
// source: C:\projects\Pikuma\ps1\code\duffle\gte.h
|
||||
// source: C:\projects\Pikuma\ps1\code\duffle\pad.h
|
||||
// source: C:\projects\Pikuma\ps1\code\duffle\dsl.atom.h
|
||||
// source: C:\projects\Pikuma\ps1\code\duffle\lottes_tape.h
|
||||
// source: C:\projects\Pikuma\ps1\code\duffle\psyq.h
|
||||
// source: C:\projects\Pikuma\ps1\code\duffle\math.atom.c
|
||||
// source: C:\projects\Pikuma\ps1\code\duffle\mips.atom.c
|
||||
// source: C:\projects\Pikuma\ps1\code\duffle\gte.atom.c
|
||||
// source: C:\projects\Pikuma\ps1\code\duffle\gp.atom.c
|
||||
// source: C:\projects\Pikuma\ps1\code\duffle\pad.atom.c
|
||||
// source: C:\projects\Pikuma\ps1\code\duffle\psyq.atom.c
|
||||
#pragma once
|
||||
|
||||
#pragma region duffle
|
||||
|
||||
|
||||
// --- atom: pad_bios_snapshot (78 words) ---
|
||||
|
||||
#define _atom_offset_snap_root_skip_disconnected 8
|
||||
#define _atom_offset_disconnected_snap_end 61
|
||||
#define _atom_offset_case_2_id_dispatch 8
|
||||
#define _atom_offset_pending_snap_end 51
|
||||
#define _atom_offset_id_dispatch_try_analog_stick 11
|
||||
#define _atom_offset_id_dispatch_snap_end 38
|
||||
#define _atom_offset_try_analog_stick_try_analog_pad 12
|
||||
#define _atom_offset_analog_stick_snap_end 24
|
||||
#define _atom_offset_try_analog_pad_try_unsupported 11
|
||||
#define _atom_offset_analog_pad_snap_end 10
|
||||
|
||||
enum {
|
||||
atom_offset_snap_root_skip_disconnected = _atom_offset_snap_root_skip_disconnected,
|
||||
atom_offset_disconnected_snap_end = _atom_offset_disconnected_snap_end,
|
||||
atom_offset_case_2_id_dispatch = _atom_offset_case_2_id_dispatch,
|
||||
atom_offset_pending_snap_end = _atom_offset_pending_snap_end,
|
||||
atom_offset_id_dispatch_try_analog_stick = _atom_offset_id_dispatch_try_analog_stick,
|
||||
atom_offset_id_dispatch_snap_end = _atom_offset_id_dispatch_snap_end,
|
||||
atom_offset_try_analog_stick_try_analog_pad = _atom_offset_try_analog_stick_try_analog_pad,
|
||||
atom_offset_analog_stick_snap_end = _atom_offset_analog_stick_snap_end,
|
||||
atom_offset_try_analog_pad_try_unsupported = _atom_offset_try_analog_pad_try_unsupported,
|
||||
atom_offset_analog_pad_snap_end = _atom_offset_analog_pad_snap_end,
|
||||
};
|
||||
|
||||
#pragma endregion duffle
|
||||
|
||||
@@ -0,0 +1,82 @@
|
||||
#ifdef INTELLISENSE_DIRECTIVES
|
||||
# include "dsl.h"
|
||||
# include "gp.h"
|
||||
# include "lottes_tape.h"
|
||||
#endif
|
||||
|
||||
ATOM_FILE_DEBUGGER_LINE_MARKER(gp_atom_c);
|
||||
|
||||
#pragma region MACs (Mips Atom Components)
|
||||
|
||||
FI_ Slice_MipsCode ac_gcmd_push(U4 cmd, U4 reg_transfer, U4 reg_base, U2 port)
|
||||
MipsAtomComp_Proc_(ac_gcmd_push, {
|
||||
load_upper_i(reg_transfer, cmd >> 16),
|
||||
or_i_self( reg_transfer, cmd & 0xFFFF),
|
||||
store_word( reg_transfer, reg_base, port),
|
||||
})
|
||||
|
||||
FI_ Slice_MipsCode ac_store_rgb8(U1 rr, U1 rg, U1 rb, U4 base, U4 offset) atom_dbg_skip MipsAtomComp_Proc_(ac_store_rgb8, {
|
||||
store_byte(rr, base, offset + O_(RGB8,r)),
|
||||
store_byte(rg, base, offset + O_(RGB8,g)),
|
||||
store_byte(rb, base, offset + O_(RGB8,b)),
|
||||
})
|
||||
|
||||
/* Words: 3; Emits one (cmd|color) word to R_PrimCursor at the given
|
||||
* byte offset. Internal helper used by the *_format_*_color macros. */
|
||||
FI_ Slice_MipsCode ac_pack_color_word(U4 r_base, U4 off, U4 cmd, U1 r, U1 g, U1 b)
|
||||
atom_dbg_skip MipsAtomComp_Proc_(ac_pack_color_word, {
|
||||
load_upper_i(R_AT, (cmd) << 8 | (b)),
|
||||
or_i_self( R_AT, ((g) << 8) | (r)),
|
||||
store_word( R_AT, r_base, (off)),
|
||||
})
|
||||
|
||||
/* Words: 3; Emits the F3 command+color word (cmd byte | BLUE | GREEN | RED)
|
||||
* Args: _r, _g, _b are 8-bit RGB byte values (not raw 16-bit fields). */
|
||||
FI_ Slice_MipsCode ac_format_f3_color(U4 r_base, U1 r, U1 g, U1 b)
|
||||
atom_dbg_skip MipsAtomComp_Proc_(ac_format_f3_color, { mac_pack_color_word(r_base, O_(Poly_F3,color), gp0_cmd_poly_f3, r, g, b) })
|
||||
|
||||
/* Words: 12; Emits the four (code|color) words of a Poly_G4.
|
||||
* Args: rN,gN,bN are 8-bit RGB byte values for each of the 4 vertices. */
|
||||
FI_ Slice_MipsCode ac_format_g4_color(U4 r_prim_cursor,
|
||||
U1 r0, U1 g0, U1 b0,
|
||||
U1 r1, U1 g1, U1 b1,
|
||||
U1 r2, U1 g2, U1 b2,
|
||||
U1 r3, U1 g3, U1 b3)
|
||||
MipsAtomComp_Proc_(ac_format_g4_color, {
|
||||
mac_pack_color_word(r_prim_cursor, O_(Poly_G4,c0), gp0_cmd_poly_g4, r0,g0,b0),
|
||||
mac_pack_color_word(r_prim_cursor, O_(Poly_G4,c1), 0, r1,g1,b1),
|
||||
mac_pack_color_word(r_prim_cursor, O_(Poly_G4,c2), 0, r2,g2,b2),
|
||||
mac_pack_color_word(r_prim_cursor, O_(Poly_G4,c3), 0, r3,g3,b3),
|
||||
})
|
||||
|
||||
/* Words: 11; Correctly inserts a primitive into the Ordering Table linked list.
|
||||
* Hardcoded for Poly_F3 (5 words). For Poly_G4, use ac_insert_ot_tag_g4. */
|
||||
I_ Slice_MipsCode ac_insert_ot_tag_f3(U4 r_ot_base, U4 r_prim_cursor) MipsAtomComp_Proc_(ac_insert_ot_tag_f3, {
|
||||
shift_lleft( R_T1, R_T1, S_(U4)/2), // T1 = otz * S_(U4) (otz arg is implicit R_T1)
|
||||
add_u_self( R_T1, r_ot_base), // T1 = & OrderingTable[OTZ]
|
||||
load_word( R_AT, R_T1, O_(PolyTag,code)), // AT = old_ot_head
|
||||
load_upper_i(R_V0, (S_(Poly_F3)/S_(U4) - S_(PolyTag)/S_(U4)) << PolyTag_len_bits), // V0 = (5 - 1) << 24 = 4 << 24
|
||||
mask_upper( R_AT, R_AT, S_(PolyTag_len_bits)), // Strip upper 8 bits (length from prev cell) → keep only low 24
|
||||
or_u( R_AT, R_AT, R_V0), // Merge length
|
||||
store_word( R_AT, r_prim_cursor, O_(PolyTag,code)), // prim->tag = packed(prim_length, old_addr)
|
||||
shift_lleft( R_AT, r_prim_cursor, S_(PolyTag_len_bits)), // AT = (prim_length << 24) | old_addr
|
||||
shift_lright(R_AT, R_AT, S_(PolyTag_len_bits)),
|
||||
store_word( R_AT, R_T1, O_(PolyTag,code)), // OrderingTable[OTZ] = PrimCursor
|
||||
})
|
||||
|
||||
/* Words: 11; Correctly inserts a primitive into the Ordering Table linked list.
|
||||
* Hardcoded for Poly_G4 (9 words). For Poly_F3, use ac_insert_ot_tag_f3. */
|
||||
I_ Slice_MipsCode ac_insert_ot_tag_g4(U4 r_ot_base, U4 r_prim_cursor) MipsAtomComp_Proc_(ac_insert_ot_tag_g4, {
|
||||
shift_lleft( R_T1, R_T1, S_(U4)/2), // T1 = otz * S_(U4) (otz arg is implicit R_T1)
|
||||
add_u_self( R_T1, r_ot_base), // T1 = & OrderingTable[OTZ]
|
||||
load_word( R_AT, R_T1, O_(PolyTag,code)), // AT = old_ot_head
|
||||
load_upper_i(R_V0, (S_(Poly_G4)/S_(U4) - S_(PolyTag)/S_(U4)) << PolyTag_len_bits), // V0 = (9 - 1) << 24 = 8 << 24
|
||||
mask_upper( R_AT, R_AT, S_(PolyTag_len_bits)), // Strip upper 8 bits (length from prev cell) → keep only low 24
|
||||
or_u( R_AT, R_AT, R_V0), // Merge length
|
||||
store_word( R_AT, r_prim_cursor, O_(PolyTag,code)), // prim->tag = packed(prim_length, old_addr)
|
||||
shift_lleft( R_AT, r_prim_cursor, S_(PolyTag_len_bits)), // AT = (prim_length << 24) | old_addr
|
||||
shift_lright(R_AT, R_AT, S_(PolyTag_len_bits)),
|
||||
store_word( R_AT, R_T1, O_(PolyTag,code)), // OrderingTable[OTZ] = PrimCursor
|
||||
})
|
||||
|
||||
#pragma endregion MACs (Mips Atom Components)
|
||||
+63
-15
@@ -39,8 +39,8 @@
|
||||
/* ============================================================================
|
||||
* Hardware MMIO Addresses
|
||||
* ============================================================================
|
||||
* PSX GPU has two 32-bit ports in the I/O register region at KSEG2
|
||||
* 0x1F800000+. GP0 (offset 0x10) is the data port (commands + params).
|
||||
* PSX GPU has two 32-bit ports in the I/O register region at KSEG2 0x1F800000+.
|
||||
* GP0 (offset 0x10) is the data port (commands + params).
|
||||
* GP1 (offset 0x14) is the control port (status, ctrl writes).
|
||||
* ============================================================================ */
|
||||
/* IO base address (KSEG2 0x1F800000+ for the I/O register region).
|
||||
@@ -73,9 +73,7 @@ enum {
|
||||
* GP0 command byte constants + Layer 1 (GPU bitfield shifts)
|
||||
* ============================================================================
|
||||
* 8-bit GP0 opcodes (the upper byte of a primitive's first word). These are the BYTE only.
|
||||
* The layer-1 bitfield-layout constants live in the same enum block so the encoder can reference them by name.
|
||||
* NO macro body past this point uses a raw shift or raw mask.
|
||||
* Every shift/width/mask is named here, named once.
|
||||
* Mirrors the OPCODE_SHIFT / RS_SHIFT / REG_MASK convention from mips.h.
|
||||
* ============================================================================ */
|
||||
enum {
|
||||
@@ -176,6 +174,9 @@ enum {
|
||||
#define gp0_word_copy_vram() enc_gp0_cmd_word(gp0_cmd_CopyVram)
|
||||
#define gp0_word_read_vram() enc_gp0_cmd_word(gp0_cmd_ReadVram)
|
||||
|
||||
/* NOP — bare-cmd word (no effect; used as DR_ENV padding). */
|
||||
#define gp0_word_nop() enc_gp0_cmd_word(gp0_cmd_Nop)
|
||||
|
||||
/* ============================================================================
|
||||
* GP1 command byte constants + Layer 1 (display-mode + range + draw-area bitfield shifts)
|
||||
* ============================================================================
|
||||
@@ -199,8 +200,7 @@ enum {
|
||||
* DrawArea word builders are below as GP0s * macros (since they emit GP0 commands). */
|
||||
|
||||
/* ---- Display-mode payload flags (per PSX-SPX §"GP1 Display Mode").
|
||||
* Bit positions match the encoder shifts below; values are the
|
||||
* *payload* bits only (the cmd byte is OR'd in by enc_gp1_disp_mode_word). */
|
||||
* Bit positions match the encoder shifts below; values are the *payload* bits only (cmd byte is OR'd in by enc_gp1_disp_mode_word). */
|
||||
gp1_disp_HRes_256 = 0x0,
|
||||
gp1_disp_HRes_320 = 0x1,
|
||||
gp1_disp_HRes_512 = 0x2,
|
||||
@@ -235,7 +235,7 @@ enum {
|
||||
#define enc_gp1_disp_hres(h) (((h) & gp1_disp_hres_mask) << gp1_disp_hres_shift)
|
||||
#define enc_gp1_disp_vres(v) (((v) & gp1_disp_vres_mask) << gp1_disp_vres_shift)
|
||||
#define enc_gp1_disp_color(c) (((c) & gp1_disp_color_mask) << gp1_disp_color_shift)
|
||||
#define enc_gp1_disp_interlace(i) (((i) & gp1_disp_interlace_mask << gp1_disp_interlace_shift)
|
||||
#define enc_gp1_disp_interlace(i) (((i) & gp1_disp_interlace_mask) << gp1_disp_interlace_shift)
|
||||
|
||||
#define enc_gp1_hrange_x1(x1) (((x1) & gp1_hrange_x1_mask) << gp1_hrange_x1_shift)
|
||||
#define enc_gp1_hrange_x2(x2) (((x2) & gp1_hrange_x2_mask) << gp1_hrange_x2_shift)
|
||||
@@ -255,6 +255,11 @@ enum {
|
||||
#define enc_gp0_draw_area_br_word(x, y) (enc_gp0_cmd(gp0_cmd_SetDrawArea_BotRight) | enc_gp1_draw_x(x) | enc_gp1_draw_y(y))
|
||||
|
||||
/* ---- Layer 3: GP1 semantic word builders ---- */
|
||||
#define gp1_word_Reset() enc_gp0_cmd_word(gp1_cmd_Reset)
|
||||
#define gp1_word_ResetCmdBuffer() enc_gp0_cmd_word(gp1_cmd_ResetCmdBuffer)
|
||||
#define gp1_word_AcknowledgeIRQ() enc_gp0_cmd_word(gp1_cmd_AcknowledgeIRQ)
|
||||
#define gp1_word_StartDisplayArea() enc_gp0_cmd_word(gp1_cmd_StartDisplayArea)
|
||||
|
||||
#define gp1_word_display_enable(on) (enc_gp0_cmd(gp1_cmd_DisplayEnable) | ((on) & 1))
|
||||
#define gp1_word_display_disable() gp1_word_display_enable(0)
|
||||
#define gp1_word_display_mode_320x240_15bit_ntsc enc_gp1_disp_mode_word(gp1_disp_HRes_320, gp1_disp_VRes_240, gp1_disp_Color15, 0)
|
||||
@@ -279,6 +284,9 @@ enum {
|
||||
#define gp1_word_display_enabled enc_gp0_cmd_word(gp1_cmd_DisplayEnable)
|
||||
#define gp1_word_display_disabled (enc_gp0_cmd_word(gp1_cmd_DisplayEnable) | 1)
|
||||
|
||||
#define gp1_word_DisplayOn() gp1_word_display_enable(0)
|
||||
#define gp1_word_DisplayOff() gp1_word_display_enable(1)
|
||||
|
||||
/* ---- DMA direction (2-bit payload on DMADirection cmd 0x04) ---- */
|
||||
enum {
|
||||
gp1_dma_dir_Off = 0,
|
||||
@@ -287,6 +295,8 @@ enum {
|
||||
gp1_dma_dir_GPUREAD_to_CPU = 3,
|
||||
};
|
||||
#define gp1_word_dma_direction(dir) (enc_gp0_cmd(gp1_cmd_DMADirection) | ((dir) & 0x3))
|
||||
#define gp1_word_dma_to_gpu() gp1_word_dma_direction(gp1_dma_dir_CPU_to_GPU)
|
||||
#define gp1_word_dma_read_cpu() gp1_word_dma_direction(gp1_dma_dir_GPUREAD_to_CPU)
|
||||
|
||||
/* ---- Standard display ranges (NTSC + PAL pre-baked) ---- */
|
||||
/* Horizontal range values are in video clock units (8 units/pixel); vertical range values are scanline numbers. */
|
||||
@@ -314,14 +324,49 @@ enum {
|
||||
/* ---- Draw-mode setting (TPage / draw-area allowance) ---- */
|
||||
/* The "drawing enabled" word is the standard post-init state. */
|
||||
enum {
|
||||
gp0_DrawMode_DrawToDispBit = 10,
|
||||
/* Per psx-spx, the standard 0xE1 layout has dfe at bit 10. But libpsyx's PutDrawEnv
|
||||
* uses bit 19 (in the "unused" 14-23 range) for dfe in the DR_ENV code[0] — and the
|
||||
* PSX hardware honors bit 19 in the DR_ENV context (not bit 10). So we need a
|
||||
* separate bit definition for the DR_ENV-specific DrawMode. */
|
||||
gp0_DrawMode_DrawToDispBit = 10, // standard psx-spx bit 10 (dfe)
|
||||
gp0_DrawMode_DR_ENV_DrawToDispBit = 19, // libpsyx DR_ENV code[0] (dfe in DR_ENV context)
|
||||
gp0_DrawMode_DR_ENV_isbgBit = 19, // libpsyx uses bit 19 for isbg too
|
||||
};
|
||||
#define gp0_word_draw_mode_drawing_allowed (enc_gp0_cmd(gp0_cmd_DrawModeSetting) | (1 << gp0_DrawMode_DrawToDispBit))
|
||||
|
||||
/* ---- DrawArea pre-baked at origin (0,0) and full screen (320x240) ---- */
|
||||
/* DR_ENV-specific DrawMode variants (libpsyx SetDrawEnv layout).
|
||||
* The DR_ENV is a 16-word packet emitted at boot by gp_screen_init's ac_put_draw_env_demo
|
||||
* atom component. Within the DR_ENV, the 0xE1 command is reused in three different bit
|
||||
* configurations:
|
||||
* code[0] = `gp0_word_draw_mode_drawing_allowed` (dfe=1; standard post-init state)
|
||||
* code[6] = `gp0_word_dr_env_bg_color_cmd(isbg, r, g, b)` (initial-bg-color path)
|
||||
* code[7] = `gp0_word_dr_env_draw_mode(isbg)` (isbg-flag path)
|
||||
* Bits 0-23 of the 0xE1 word are the payload; bits 24-31 are the cmd byte (0xE1). */
|
||||
#define gp0_word_dr_env_bg_color_cmd(isbg, r, g, b) (enc_gp0_cmd(gp0_cmd_DrawModeSetting) | (1 << gp0_DrawMode_DrawToDispBit) | ((isbg) ? gp0_dr_env_isbg_bit : 0) | enc_gp0_color_r(r) | enc_gp0_color_g(g) | enc_gp0_color_b(b))
|
||||
#define gp0_word_dr_env_draw_mode(isbg) (enc_gp0_cmd(gp0_cmd_DrawModeSetting) | (1 << gp0_DrawMode_DrawToDispBit) | ((isbg) ? gp0_dr_env_isbg_bit : 0))
|
||||
|
||||
/* State-setter bare-cmd words (no immediate payload; the GPU uses the current state machine already programmed). */
|
||||
#define gp0_word_set_texture_window() enc_gp0_cmd_word(gp0_cmd_SetTextureWindow)
|
||||
#define gp0_word_set_draw_offset() enc_gp0_cmd_word(gp0_cmd_SetDrawOffset)
|
||||
#define gp0_word_set_mask_bit() enc_gp0_cmd_word(gp0_cmd_SetMaskBit)
|
||||
|
||||
/* DR_ENV code[5] Mask (0xE6 cmd + isbg bit). The isbg bit is set so the GPU knows the auto-clear path is active (paired with code[6] + code[7]). */
|
||||
#define gp0_word_dr_env_mask() (gp0_word_set_mask_bit() | gp0_dr_env_isbg_bit)
|
||||
|
||||
/* DR_ENV pre-baked constants (libpsyx PutDrawEnv layout).
|
||||
* DR_ENV is a 16-word packet: tag = (length << 24) | addr, where length = 15 (15 code words follow) and addr = 0 (chain to nothing). */
|
||||
enum {
|
||||
PolyTag_len_bits = 8,
|
||||
PolyTag_addr_bits = 24,
|
||||
|
||||
gp0_dr_env_tag = (15 << 24) | 0x00FFFFFF,
|
||||
gp0_dr_env_isbg_bit = (1 << gp0_DrawMode_DR_ENV_isbgBit),
|
||||
};
|
||||
|
||||
/* ---- DrawArea at origin (0,0) and full screen (320x240) ---- */
|
||||
#define gp0_word_draw_area_top_left_origin enc_gp0_draw_area_tl_word(0, 0)
|
||||
#define gp0_word_draw_area_bottom_right_320x240 enc_gp0_draw_area_br_word(320, 240)
|
||||
#define gp0_word_draw_area_bottom_right_640x480 enc_gp0_draw_area_br_word(640, 480)
|
||||
#define gp0_word_draw_area_bottom_right_320x240 enc_gp0_draw_area_br_word(319, 239)
|
||||
#define gp0_word_draw_area_bottom_right_640x480 enc_gp0_draw_area_br_word(639, 479)
|
||||
|
||||
#pragma endregion GPU Ports & Commands
|
||||
|
||||
@@ -360,10 +405,10 @@ typedef Struct_(RGB8) { B1 r; B1 g; B1 b; };
|
||||
#define rgb8(r,g,b) ((RGB8){r,g,b})
|
||||
|
||||
/* ---------- PolyTag (the OT-link header; 1 word) ---------- */
|
||||
enum {
|
||||
PolyTag_len_bits = 8,
|
||||
PolyTag_addr_bits = 24,
|
||||
};
|
||||
// enum {
|
||||
// PolyTag_len_bits = 8,
|
||||
// PolyTag_addr_bits = 24,
|
||||
// };
|
||||
typedef Struct_(PolyTag) {
|
||||
union {
|
||||
U4 code;
|
||||
@@ -525,6 +570,9 @@ enum {
|
||||
gp0_tpage_color_8bpp = 0x1,
|
||||
gp0_tpage_color_16bpp = 0x2,
|
||||
|
||||
/* Default TPage value libpsyx's SetDefDrawEnv writes (matches the `li v1, 10; sh v1, 20(v0)` sequence at C11_only.elf:0x8001273C). */
|
||||
gp0_tpage_default = 10,
|
||||
|
||||
/* TPage semi-transparency mode payload values (NOT bit positions). */
|
||||
gp0_tpage_semi_trans_none = 0x0,
|
||||
gp0_tpage_semi_trans_alpha = 0x1,
|
||||
|
||||
@@ -0,0 +1,76 @@
|
||||
#ifdef INTELLISENSE_DIRECTIVES
|
||||
# include "gen/macs.h"
|
||||
# include "gen/offsets.h"
|
||||
# include "gte.h"
|
||||
# include "gp.h"
|
||||
# include "lottes_tape.h"
|
||||
#endif
|
||||
|
||||
ATOM_FILE_DEBUGGER_LINE_MARKER(gte_atom_c);
|
||||
|
||||
#pragma region MACs (Mips Atom Components)
|
||||
|
||||
/* Words: 3; Loads 3 S2 indices from the face array */
|
||||
FI_ Slice_MipsCode ac_load_tri_indices(U4 r_face_cusor, U4 r_i0, U4 r_i1, U4 r_i2) atom_dbg_skip MipsAtomComp_Proc_(ac_load_tri_indices, {
|
||||
load_half_u(r_i0, r_face_cusor, 0 * S_(S2)),
|
||||
load_half_u(r_i1, r_face_cusor, 1 * S_(S2)),
|
||||
load_half_u(r_i2, r_face_cusor, 2 * S_(S2)),
|
||||
})
|
||||
|
||||
/* Words: 3; Stores the 3 transformed (V2_S2 screen) vertices to the F3.
|
||||
* PIPELINE: post-RTPT (SXY0=v0.screen, SXY1=v1.screen, SXY2=v2.screen). */
|
||||
FI_ Slice_MipsCode ac_gte_store_f3(U4 r_primitive_cursor) atom_dbg_skip MipsAtomComp_Proc_(ac_gte_store_f3, {
|
||||
gte_sw(C2_SXY0, r_primitive_cursor, O_(Poly_F3,p0)),
|
||||
gte_sw(C2_SXY1, r_primitive_cursor, O_(Poly_F3,p1)),
|
||||
gte_sw(C2_SXY2, r_primitive_cursor, O_(Poly_F3,p2)),
|
||||
})
|
||||
|
||||
/* Words: 18; Translates indices to vertex addresses and pushes them to GTE */
|
||||
I_ Slice_MipsCode ac_gte_load_tri_verts(U4 r_vert_base, U4 r_v0, U4 r_v1, U4 r_v2) atom_dbg_skip MipsAtomComp_Proc_(ac_gte_load_tri_verts, {
|
||||
shift_lleft(R_AT, r_v0, v3s2_byteoff), add_u_self(R_AT, r_vert_base), load_word(R_V0, R_AT, O_(V3_S2,x)), load_word(R_V1, R_AT, O_(V3_S2,z)), gte_mv_to_data_r(R_V0, C2_VXY0), gte_mv_to_data_r(R_V1, C2_VZ0),
|
||||
shift_lleft(R_AT, r_v1, v3s2_byteoff), add_u_self(R_AT, r_vert_base), load_word(R_V0, R_AT, O_(V3_S2,x)), load_word(R_V1, R_AT, O_(V3_S2,z)), gte_mv_to_data_r(R_V0, C2_VXY1), gte_mv_to_data_r(R_V1, C2_VZ1),
|
||||
shift_lleft(R_AT, r_v2, v3s2_byteoff), add_u_self(R_AT, r_vert_base), load_word(R_V0, R_AT, O_(V3_S2,x)), load_word(R_V1, R_AT, O_(V3_S2,z)), gte_mv_to_data_r(R_V0, C2_VXY2), gte_mv_to_data_r(R_V1, C2_VZ2),
|
||||
})
|
||||
|
||||
/* Words: 3; Stores the 3 transformed (V2_S2 screen) vertices of the
|
||||
* G4 triangle portion to p0/p1/p2.
|
||||
* PIPELINE: post-RTPT, pre-RTPS (SXY0=v0.screen, SXY1=v1.screen, SXY2=v2.screen).
|
||||
* MUST be called BEFORE V3-RTPS, otherwise SXY0/1/2 get overwritten with v3
|
||||
* (RTPS writes only to SXY2, but to keep the three registers aligned with v0/v1/v2 you must store before RTPS). */
|
||||
FI_ Slice_MipsCode ac_gte_store_g4_p012(U4 r_primitive_cursor) atom_dbg_skip MipsAtomComp_Proc_(ac_gte_store_g4_p012, {
|
||||
gte_sw(C2_SXY0, r_primitive_cursor, O_(Poly_G4,p0)),
|
||||
gte_sw(C2_SXY1, r_primitive_cursor, O_(Poly_G4,p1)),
|
||||
gte_sw(C2_SXY2, r_primitive_cursor, O_(Poly_G4,p2)),
|
||||
})
|
||||
|
||||
/* Words: 1; Stores the V3 screen coord to the G4's p3 slot.
|
||||
* PIPELINE: post-RTPS (SXY2 holds v3.screen because RTPS writes its single-vertex result to SXY2;
|
||||
* SXY0 still holds v0.screen from the earlier RTPT.
|
||||
*/
|
||||
FI_ Slice_MipsCode ac_gte_store_g4_p3(U4 r_primitive_cursor) atom_dbg_skip MipsAtomComp_Proc_(ac_gte_store_g4_p3, { gte_sw(C2_SXY2, r_primitive_cursor, O_(Poly_G4,p3)) })
|
||||
|
||||
#pragma endregion MACs (Mips Atom Components)
|
||||
|
||||
#pragma region Bsked Atoms
|
||||
|
||||
typedef Struct_(Binds_SetGteWorld) {
|
||||
M3_S2* transform;
|
||||
};
|
||||
internal MipsAtom_(set_gte_world) atom_info(
|
||||
atom_bind(Binds_SetGteWorld)
|
||||
, atom_reads(R_TapePtr)
|
||||
){
|
||||
/* Pop matrix address from tape into R_T3 ($11) */
|
||||
load_word(R_T3, R_TapePtr, O_(Binds_SetGteWorld,transform)),
|
||||
add_ui_self( R_TapePtr, S_(Binds_SetGteWorld)),
|
||||
/* Load 3x3 Rotation + 3x1 Translation from R_T3 into GTE CONTROL Regs (ctc2) */
|
||||
load_word(R_T0, R_T3, 0), load_word(R_T1, R_T3, 4),
|
||||
gte_mv_to_ctrl_r(R_T0, gte_cr_RT11), gte_mv_to_ctrl_r(R_T1, gte_cr_RT12),
|
||||
load_word(R_T0, R_T3, 8), load_word(R_T1, R_T3, 12), load_word(R_T2, R_T3, 16),
|
||||
gte_mv_to_ctrl_r(R_T0, gte_cr_RT13), gte_mv_to_ctrl_r(R_T1, gte_cr_RT21), gte_mv_to_ctrl_r(R_T2, gte_cr_RT22),
|
||||
load_word(R_T0, R_T3, 20), load_word(R_T1, R_T3, 24), load_word(R_T2, R_T3, 28),
|
||||
gte_mv_to_ctrl_r(R_T0, gte_cr_TRX), gte_mv_to_ctrl_r(R_T1, gte_cr_TRY), gte_mv_to_ctrl_r(R_T2, gte_cr_TRZ),
|
||||
mac_yield()
|
||||
};
|
||||
|
||||
#pragma endregion Baked Atoms
|
||||
+75
-119
@@ -17,9 +17,8 @@
|
||||
* gte_lw_v0_xy(base) (gte + lw + v0 + xy)
|
||||
* load_upper_i (load-upper + immediate, unique verb)
|
||||
*
|
||||
* Vendor mnemonics (gte_mtc2, gte_mfc2, gte_lwc2, gte_swc2, etc.) are
|
||||
* NOT in this header. They live in the opt-in `gte_vendor_sym.h` for
|
||||
* users who prefer the textbook MIPS assembly mnemonics.
|
||||
* Vendor mnemonics (gte_mtc2, gte_mfc2, gte_lwc2, gte_swc2, etc.) are NOT in this header.
|
||||
* They are in the opt-in `gte_vendor_sym.h` for users who prefer the textbook MIPS assembly mnemonics.
|
||||
* ============================================================================ */
|
||||
|
||||
#ifdef INTELLISENSE_DIRECTIVES
|
||||
@@ -34,20 +33,16 @@
|
||||
* gte.h — Geometry Transformation Engine (COP2) for the PS1
|
||||
* ============================================================================
|
||||
*
|
||||
* Hand-rolled DSL for emitting GTE/MIPS instruction words as raw `.word`
|
||||
* constants from C. No GCC inline-assembly string syntax in the code body.
|
||||
* Hand-rolled DSL for emitting GTE/MIPS instruction words as raw `.word` constants from C.
|
||||
* No GCC inline-assembly string syntax in the code body.
|
||||
*
|
||||
* STYLE NOTES
|
||||
* -----------
|
||||
* - Per-field encoders are named `enc_gte_<field>(value)` and each one
|
||||
* self-masks its argument before shifting. Mirrors the `enc_op / enc_rs
|
||||
* / enc_rt / ...` family in mips.h.
|
||||
* - The composite `enc_gte_cmdw(sf, mx, v, cv, lm, cmd)` is a flat OR of
|
||||
* the per-field encoders, plus the COP2/CO base.
|
||||
* - Pre-baked shortcuts (`gte_cmd_rtpt`, `gte_cmd_rtps`, …) are defined
|
||||
* for the common cases so call sites read like assembly source.
|
||||
* - All register/field values are enums (not `#define`s) so they show up
|
||||
* in debugger symbol tables and IDE autocomplete.
|
||||
* - Per-field encoders are named `enc_gte_<field>(value)` and each one self-masks its argument before shifting.
|
||||
* Mirrors the `enc_op / enc_rs / enc_rt / ...` family in mips.h.
|
||||
* - The composite `enc_gte_cmdw(sf, mx, v, cv, lm, cmd)` is a flat OR of the per-field encoders, plus the COP2/CO base.
|
||||
* - Pre-baked shortcuts (`gte_cmd_rtpt`, `gte_cmd_rtps`, …) are defined for the common cases so call sites read like assembly source.
|
||||
* - All register/field values are enums (not `#define`s) so they show up in debugger symbol tables and IDE autocomplete.
|
||||
*
|
||||
* SEE ALSO
|
||||
* --------
|
||||
@@ -58,8 +53,7 @@
|
||||
|
||||
/* --- GTE Data Registers (Coprocessor 2) ---
|
||||
* Preprocessor-visible integer ids for the COP2 data register file.
|
||||
* Each enum value is bound to a parallel `_Code` `#define` so the
|
||||
* preprocessor can stringify the integer (for `reg_str`/`rgcc` paths).
|
||||
* Each enum value is bound to a parallel `_Code` `#define` so the preprocessor can stringify the integer (for `reg_str`/`rgcc` paths).
|
||||
* Same pattern as the GPR `_Code` set in mips.h. */
|
||||
#define C2_VXY0_Code 0
|
||||
#define C2_VZ0_Code 1
|
||||
@@ -192,10 +186,8 @@ enum {
|
||||
|
||||
/* --- GTE Control Register Indices (for ctc2/cfc2) ---
|
||||
* Preprocessor-visible integer ids for the COP2 control register file.
|
||||
* Each enum value is bound to a parallel `_Code` `#define` so the
|
||||
* preprocessor can stringify the integer (for `reg_str`/`rgcc` paths).
|
||||
* Same pattern as the GPR `_Code` set in mips.h. Note: indices 21-23
|
||||
* are reserved/unused on real hardware, so there's a gap. */
|
||||
* Each enum value is bound to a parallel `_Code` `#define` so the preprocessor can stringify the integer (for `reg_str`/`rgcc` paths).
|
||||
* Same pattern as the GPR `_Code` set in mips.h. Note: indices 21-23 are reserved/unused on real hardware, so there's a gap. */
|
||||
#define gte_cr_RT11_Code 0
|
||||
#define gte_cr_RT12_Code 1 /* packed with RT13 in bits 16..31 */
|
||||
#define gte_cr_RT13_Code 2 /* packed with RT22 in bits 16..31 */
|
||||
@@ -223,8 +215,9 @@ enum {
|
||||
#define gte_cr_RFC_Code 27
|
||||
#define gte_cr_GFC_Code 28
|
||||
#define gte_cr_BFC_Code 29
|
||||
#define gte_cr_OFX_Code 30
|
||||
#define gte_cr_OFY_Code 31
|
||||
#define gte_cr_OFX_Code 24
|
||||
#define gte_cr_OFY_Code 25
|
||||
#define gte_cr_H_Code 26
|
||||
|
||||
enum {
|
||||
gte_cr_RT11 = gte_cr_RT11_Code, gte_cr_RT12 = gte_cr_RT12_Code, gte_cr_RT13 = gte_cr_RT13_Code,
|
||||
@@ -246,21 +239,16 @@ enum { _C2_OPS_ = 0
|
||||
|
||||
/* COP2 transfer sub-opcodes (5-bit field in the `rs` slot of enc_gte_tx).
|
||||
*
|
||||
* Spans the 2x2 {From, To} × {Data, Control} register classes that the
|
||||
* GTE exposes:
|
||||
*
|
||||
* Spans the 2x2 {From, To} × {Data, Control} register classes that the GTE exposes:
|
||||
* bit 1 (0x02): register class — 0 = data, 1 = control
|
||||
* bit 2 (0x04): direction — 0 = read, 1 = write
|
||||
*
|
||||
* The values 0x00 (sub_mfc2) and 0x04 (sub_mtc2) are the same 5-bit
|
||||
* numbers as the general MIPS `cop_mf` / `cop_mt` defined in mips.h
|
||||
* (which target the data register file on any coprocessor). They are
|
||||
* re-aliased here so the four-way table reads like the spec mnemonics
|
||||
* (MFC2 / CFC2 / MTC2 / CTC2) and so the encoding lives next to its
|
||||
* only consumer (this header).
|
||||
* The values 0x00 (sub_mfc2) and 0x04 (sub_mtc2) are the same 5-bit numbers as the general MIPS `cop_mf` / `cop_mt` defined in mips.h
|
||||
* (which target the data register file on any coprocessor).
|
||||
* They are re-aliased here so the four-way table reads like the spec mnemonics (MFC2 / CFC2 / MTC2 / CTC2)
|
||||
* and so the encoding lives next to its only consumer (this header).
|
||||
*
|
||||
* Vendor mnemonic aliases (gte_mfc2 / gte_mtc2 / gte_cfc2 / gte_ctc2)
|
||||
* live in gte_vendor_sym.h. */
|
||||
* Vendor mnemonic aliases (gte_mfc2 / gte_mtc2 / gte_cfc2 / gte_ctc2) live in gte_vendor_sym.h. */
|
||||
enum { _C2_TX_SUBS_ = 0
|
||||
, sub_mfc2 = 0x00 /* MFC2: Move From Coprocessor 2 data reg */
|
||||
, sub_cfc2 = 0x02 /* CFC2: Copy From Coprocessor 2 ctrl reg */
|
||||
@@ -314,8 +302,8 @@ enum { _C2_TX_SUBS_ = 0
|
||||
* `swc2` is redundant when we're already inside the `gte_` namespace.
|
||||
* gte_lw rt, base, off → lwc2 rt, off(base)
|
||||
* gte_sw rt, base, off → swc2 rt, off(base)
|
||||
* For the typical user-facing vector-level load (xy + z as two
|
||||
* instructions), use the higher-level `gte_load_vN` macros below. */
|
||||
* For the typical user-facing vector-level load (xy + z as two instructions),
|
||||
* use the higher-level `gte_load_vN` macros below. */
|
||||
#define gte_lw(rt, base, off) enc_gte_lw(rt, base, off)
|
||||
#define gte_sw(rt, base, off) enc_gte_sw(rt, base, off)
|
||||
|
||||
@@ -323,13 +311,12 @@ enum { _C2_TX_SUBS_ = 0
|
||||
* Opcode is always MIPS_OP_COP2, RS is always 1 (CO).
|
||||
* The lower 25 bits are the GTE-specific command payload.
|
||||
*
|
||||
* The granular `enc_gte_<field>(x)` macros below mirror the `enc_op`/`enc_rs`
|
||||
* pattern in mips.h: each one self-masks and shifts its own field, so a
|
||||
* caller can build up a GTE command piece by piece (handy for state-driven
|
||||
* MVMVA emitters that vary one field at a time).
|
||||
* The granular `enc_gte_<field>(x)` macros below mirror the `enc_op`/`enc_rs` pattern in mips.h:
|
||||
* Each one self-masks and shifts its own field, so a caller can build up a GTE command piece by piece
|
||||
* (handy for state-driven MVMVA emitters that vary one field at a time).
|
||||
*
|
||||
* `ENC_GTE_CMD` is the all-in-one convenience for emitting a full command
|
||||
* word in one go. It just ORs the per-field encoders together. */
|
||||
* `ENC_GTE_CMD` is the all-in-one convenience for emitting a full command word in one go.
|
||||
* It just ORs the per-field encoders together. */
|
||||
#define gte_cmd_base (enc_op(op_cop2) | (1 << 25))
|
||||
|
||||
/* Per-field encoders. Each one does (value & mask) << shift on its own. */
|
||||
@@ -363,8 +350,9 @@ enum { _C2_TX_SUBS_ = 0
|
||||
* (standard rotation-matrix, no scaling factor, V0 vector, translation vector, no clamp),
|
||||
* so the only varying bits are the `cmd` field.
|
||||
*
|
||||
* Naming follows the file's convention: `gte_cmd_*` is the raw 6-bit `cmd` field id, `gte_cmdw_*`
|
||||
* is the fully-encoded 32-bit instruction word ready to drop into a `.word` directive.
|
||||
* Naming convention:
|
||||
* - `gte_cmd_*` : Raw 6-bit `cmd` field id
|
||||
* - `gte_cmdw_* : 32-bit instruction word ready to drop into a `.word` directive.
|
||||
*
|
||||
* --------------------------------------------------------------------------
|
||||
* PsyQ-compatibility note (RTPS/RTPT):
|
||||
@@ -413,20 +401,16 @@ enum { _C2_TX_SUBS_ = 0
|
||||
|
||||
/**
|
||||
* @brief Loads a single SVECTOR to GTE vector register V0
|
||||
*
|
||||
* @details Loads values from an SVECTOR struct to GTE data registers C2_VXY0
|
||||
* (XY at offset 0) and C2_VZ0 (Z at offset 4) using `lwc2`.
|
||||
*
|
||||
* Uses string-style GCC inline asm with `%0` substitution because the
|
||||
* base register `r0` is a runtime GPR chosen by the compiler.
|
||||
* Uses string-style GCC inline asm with `%0` substitution because the base register `r0` is a runtime GPR chosen by the compiler.
|
||||
* It cannot be encoded into a static `.word` constant.
|
||||
*
|
||||
* Usage:
|
||||
* asm_gte_load_v0(svector_ptr);
|
||||
* Usage: asm_gte_load_v0(svector_ptr);
|
||||
*/
|
||||
|
||||
/* lwc2 encoding helpers parameterized on the base GPR.
|
||||
*
|
||||
* gte_lw_v0_xy(base) → lwc2 $0, 0(base) ; C2_VXY0
|
||||
* gte_lw_v0_z(base) → lwc2 $1, 4(base) ; C2_VZ0
|
||||
* gte_lw_v1_xy(base) → lwc2 $2, 0(base) ; C2_VXY1
|
||||
@@ -435,8 +419,7 @@ enum { _C2_TX_SUBS_ = 0
|
||||
* gte_lw_v2_z(base) → lwc2 $5, 4(base) ; C2_VZ2
|
||||
*
|
||||
* `base` is the GPR number to bake into the .word constant's `rs` field.
|
||||
* These are pure compile-time integers; the C compiler constant-folds
|
||||
* them into .word directives. */
|
||||
* These are pure compile-time integers; the C compiler constant-folds them into .word directives. */
|
||||
|
||||
enum {
|
||||
GTE_Z_Offset = 4
|
||||
@@ -459,8 +442,8 @@ enum {
|
||||
* gte_load_v0(p_in_12, R_T4); // R_T4 = 12, base is $12
|
||||
*
|
||||
* Then `"r"(r_ptr)` inside the asm binds to $12 (the only register `p_in_12` can live in),
|
||||
* which is exactly the register the .word constants expect. A `"$12"` clobber would conflict with the register-variable binding
|
||||
* ("asm specifier for variable conflicts with asm clobber list"), so we omit it.
|
||||
* which is exactly the register the .word constants expect.
|
||||
* A `"$12"` clobber would conflict with the register-variable binding ("asm specifier for variable conflicts with asm clobber list"), so we omit it.
|
||||
* The other ABI-clobbers ($2/$8/$9/$31) stay because the GTE instructions don't touch caller-saved GPRs but the kernel does treat them as volatile.
|
||||
*
|
||||
* WHICH REGISTER TO PICK
|
||||
@@ -499,10 +482,8 @@ enum {
|
||||
|
||||
/* gte_load_v0v1v2(p0, p1, p2, b0, b1, b2) — prelude to gte_cmd_rtpt.
|
||||
*
|
||||
* Loads all three GTE input vectors (6 words) from three separate pointers,
|
||||
* one per GTE vector register, each loaded from its own base GPR.
|
||||
* Caller must bind each `pN` to `bN` via a register variable.
|
||||
*
|
||||
* Loads all three GTE input vectors (6 words) from three separate pointers, one per GTE vector register,
|
||||
* each loaded from its own base GPR. Caller must bind each `pN` to `bN` via a register variable.
|
||||
* register V3_S2* p0 rgcc(R_T4) = verts[0].ptr; // → __asm__("$12")
|
||||
* register V3_S2* p1 rgcc(R_T5) = verts[1].ptr; // → __asm__("$13")
|
||||
* register V3_S2* p2 rgcc(R_T6) = verts[2].ptr; // → __asm__("$14")
|
||||
@@ -521,29 +502,20 @@ enum {
|
||||
|
||||
/**
|
||||
* @brief Rotate, Translate and Perspective Triple (23 cycles)
|
||||
*
|
||||
* @details Performs rotation, translation and perspective calculation of three
|
||||
* vertices at once. The equation performed is the same as gte_rtps() only
|
||||
* repeated three times for each vertex. The result of the first vertex is
|
||||
* stored in GTE data register C2_SXY0, the second vector in C2_SXY1 then
|
||||
* C2_SXY2.
|
||||
* @details Performs rotation, translation and perspective calculation of three vertices at once.
|
||||
* The equation performed is the same as gte_rtps() only repeated three times for each vertex.
|
||||
* The result of the first vertex is stored in GTE data register C2_SXY0, the second vector in C2_SXY1 then C2_SXY2.
|
||||
*
|
||||
* Encoder-style emission (no inline-asm strings in the code body):
|
||||
* 1. Two `nop` words fill the COP2 pipeline latency — the GTE
|
||||
* takes ~8 cycles per perspective divide, and the nops let any
|
||||
* preceding lwc2/swc2 retire before RTPT starts reading its
|
||||
* inputs from V0/V1/V2.
|
||||
* 2. The RTPT command word itself is `gte_cmdw_rtpt` (see the
|
||||
* pre-baked encoders above) — `0x0280030` decoded as
|
||||
* `op_cop2` | CO(1) | cmd=RTPT, with all SF/MX/V/CV/LM fields
|
||||
* zero (standard rotation, no scaling, V0 vector, translation
|
||||
* vector, no clamp).
|
||||
* 1. Two `nop` words fill the COP2 pipeline latency — the GTE takes ~8 cycles per perspective divide,
|
||||
* and the nops let any preceding lwc2/swc2 retire before RTPT starts reading its inputs from V0/V1/V2.
|
||||
* 2. The RTPT command word itself is `gte_cmdw_rtpt` (see the pre-baked encoders above) —
|
||||
* `0x0280030` decoded as `op_cop2` | CO(1) | cmd=RTPT, with all SF/MX/V/CV/LM fields zero
|
||||
* (standard rotation, no scaling, V0 vector, translation vector, no clamp).
|
||||
*
|
||||
* Clobbers the caller-saved GPRs via `clbr_volatile_gprs` (per the kernel
|
||||
* ABI) plus the standard "memory" barrier. Does not clobber any COP2
|
||||
* data/control register — those have to be saved by the caller if
|
||||
* they need to survive across the call (RTPT writes SXY0..2, SZ0..3,
|
||||
* OTZ, MAC0..3, IR0..3, etc.).
|
||||
* Clobbers the caller-saved GPRs via `clbr_volatile_gprs` (per the kernel ABI)
|
||||
* plus the standard "memory" barrier. Does not clobber any COP2 data/control register —
|
||||
* those have to be saved by the caller if they need to survive across the call (RTPT writes SXY0..2, SZ0..3, OTZ, MAC0..3, IR0..3, etc.).
|
||||
*/
|
||||
#define gte_rtpt() \
|
||||
asm volatile( \
|
||||
@@ -559,32 +531,24 @@ enum {
|
||||
|
||||
/**
|
||||
* @brief Normal clipping (8 cycles)
|
||||
*
|
||||
* @details Computes the sign of three screen coordinates (C2_SXY0-2) used for
|
||||
* backface culling. If the value of C2_MAC0 is negative, the coordinates are
|
||||
* inverted and thus the triangle is back facing.
|
||||
* @details Computes the sign of three screen coordinates (C2_SXY0-2) used for backface culling.
|
||||
* If the value of C2_MAC0 is negative, the coordinates are inverted and thus the triangle is back facing.
|
||||
*
|
||||
* The following equation is performed when executing this GTE command:
|
||||
*
|
||||
* MAC0 = SX0*SY1 + SX1*SY2 + SX2*SY0 - SX0*SY2 - SX1*SY0 - SX2*SY1
|
||||
*
|
||||
* Encoder-style emission (no inline-asm strings in the code body):
|
||||
* 1. Two `nop` words fill the COP2 pipeline latency - the GTE
|
||||
* pipeline takes a few cycles per op, and the nops let any
|
||||
* preceding lwc2/swc2/RTPT retire before NCLIP starts reading
|
||||
* its inputs from SXY0/SXY1/SXY2.
|
||||
* 2. The NCLIP command word itself is `gte_cmdw_nclip` (see the
|
||||
* pre-baked encoders above) - `0x01400006` decoded as
|
||||
* `op_cop2` | CO(1) | cmd=NCLIP, with all SF/MX/V/CV/LM fields
|
||||
* zero. NCLIP is spec-clean in the original PsyQ source
|
||||
* (unlike RTPS/RTPT which carry the `gte_cmdw_psyq_compat`
|
||||
* quirk), so `gte_cmdw_nclip` does NOT OR in any reserved bits.
|
||||
* 1. Two `nop` words fill the COP2 pipeline latency
|
||||
* - the GTE pipeline takes a few cycles per op, and the nops let any preceding
|
||||
* lwc2/swc2/RTPT retire before NCLIP starts reading its inputs from SXY0/SXY1/SXY2.
|
||||
* 2. The NCLIP command word itself is `gte_cmdw_nclip` (see the pre-baked encoders above)
|
||||
* - `0x01400006` decoded as `op_cop2` | CO(1) | cmd=NCLIP, with all SF/MX/V/CV/LM fields zero.
|
||||
* NCLIP is spec-clean in the original PsyQ source (unlike RTPS/RTPT which carry the `gte_cmdw_psyq_compat` quirk),
|
||||
* so `gte_cmdw_nclip` does NOT OR in any reserved bits.
|
||||
*
|
||||
* Clobbers the caller-saved GPRs via `clbr_volatile_gprs` (per the kernel
|
||||
* ABI) plus the standard "memory" barrier. Does not clobber any COP2
|
||||
* data/control register - those have to be saved by the caller if
|
||||
* they need to survive across the call (NCLIP writes MAC0 only; it
|
||||
* is purely a sign-of-double-product computation on SXY0..2).
|
||||
* Clobbers the caller-saved GPRs via `clbr_volatile_gprs` (per the kernel ABI) plus the standard "memory" barrier.
|
||||
* Does not clobber any COP2 data/control register.
|
||||
* Those have to be saved by the caller if they need to survive across the call (NCLIP writes MAC0 only;
|
||||
* it is purely a sign-of-double-product computation on SXY0..2).
|
||||
*/
|
||||
#define gte_nclip() \
|
||||
asm volatile( \
|
||||
@@ -610,13 +574,10 @@ enum {
|
||||
"cop2 0x0158002D;")
|
||||
|
||||
/* asm_gte_matrix_set_rotation(r0)
|
||||
* Loads the 3x3 rotation matrix at `r0` into the GTE's rotation-matrix control registers (RT11..RT22, indices 0..4) via ctc2.
|
||||
*
|
||||
* Loads the 3x3 rotation matrix at `r0` into the GTE's rotation-matrix
|
||||
* control registers (RT11..RT22, indices 0..4) via ctc2.
|
||||
*
|
||||
* Memory layout at r0: five contiguous 32-bit words (offsets 0..16),
|
||||
* each holding two packed 16-bit matrix elements. The first 1.5 rows
|
||||
* of a standard PSX SDK MATRIX struct (where each row is laid out as
|
||||
* Memory layout at r0: five contiguous 32-bit words (offsets 0..16), each holding two packed 16-bit matrix elements.
|
||||
* The first 1.5 rows of a standard PSX SDK MATRIX struct (where each row is laid out as
|
||||
* [RT_xx, RT_xy] | [RT_xz, pad] | ...).
|
||||
*
|
||||
* Generated MIPS (mirrors the source macro):
|
||||
@@ -631,27 +592,22 @@ enum {
|
||||
* ctc2 $13, $3 ; → C2_RT21
|
||||
* ctc2 $14, $4 ; → C2_RT22
|
||||
*
|
||||
* Same contract as gte_load_v0: caller MUST bind `r0` to $12 via a
|
||||
* register variable (`rgcc(R_T4)`) for the `lw $12, off(...)`
|
||||
* instructions to read from the right base. The `"r"(r0)` constraint
|
||||
* alone doesn't force a specific GPR — it just lets GCC pick one.
|
||||
* The .word constants here bake R_T4/R_T5/R_T6 into the `rs` field
|
||||
* of each lw, so the lw instructions will only do the right thing
|
||||
* if $12/$13/$14 hold the matrix base at runtime.
|
||||
* Same contract as gte_load_v0: caller MUST bind `r0` to $12 via a register variable (`rgcc(R_T4)`) for the `lw $12, off(...)`
|
||||
* instructions to read from the right base. The `"r"(r0)` constraint alone doesn't force a specific GPR — it just lets GCC pick one.
|
||||
* The .word constants here bake R_T4/R_T5/R_T6 into the `rs` field of each lw, so the lw instructions will
|
||||
* only do the right thing if $12 / $13 / $14 hold the matrix base at runtime.
|
||||
*
|
||||
* M3_S2* m = ...;
|
||||
* register M3_S2* m_in_12 rgcc(R_T4) = m;
|
||||
* asm_gte_matrix_set_rotation(m_in_12);
|
||||
*
|
||||
* We clobber $12/$13/$14 (the ones we use as scratch inside the
|
||||
* inline asm) plus the system clobbers; we don't clobber `r0` because
|
||||
* the `rgcc` binding already says "this variable lives in $12".
|
||||
* We clobber $12/$13/$14 (the ones we use as scratch inside the inline asm)
|
||||
* plus the system clobbers; we don't clobber `r0` because the `rgcc` binding already says "this variable lives in $12".
|
||||
*
|
||||
* WARNING: Incomplete by design. The source macro only writes RT11..RT22
|
||||
* (5 of 9 rotation elements); RT23 and the entire RT3x row are left
|
||||
* untouched. Real libpsn00b SetRotMatrix writes all 9. Use only when the
|
||||
* GTE's remaining rotation entries are already correct, or you will
|
||||
* get stale-RT2x/RT3x artifacts in RTPS/RTPT/MVMVA output.
|
||||
* WARNING: Incomplete by design. The source macro only writes RT11..RT22 (5 of 9 rotation elements);
|
||||
* RT23 and the entire RT3x row are left untouched.
|
||||
* Real libpsn00b SetRotMatrix writes all 9. Use only when the GTE's remaining rotation entries are already correct,
|
||||
* or you will get stale-RT2x/RT3x artifacts in RTPS/RTPT/MVMVA output.
|
||||
*/
|
||||
#define asm_gte_matrix_set_rotation(r0) \
|
||||
asm volatile( \
|
||||
|
||||
+174
-262
@@ -1,19 +1,122 @@
|
||||
#ifdef INTELLISENSE_DIRECTIVES
|
||||
# pragma once
|
||||
# include "gen/macs.h"
|
||||
# include "gen/offsets.h"
|
||||
|
||||
# include "dsl.h"
|
||||
# include "gcc_asm.h"
|
||||
# include "mips.h"
|
||||
# include "gte.h"
|
||||
# include "memory.h"
|
||||
# include "atom_dsl.h"
|
||||
# include "gen/duffle.macs.h"
|
||||
# include "gen/duffle.offsets.h"
|
||||
# include "dsl.atom.h"
|
||||
#endif
|
||||
|
||||
typedef U4 const MipsCode;
|
||||
typedef Slice_(MipsCode);
|
||||
typedef Slice_MipsCode MipsAtom;
|
||||
#pragma region Tape Drive
|
||||
/* -----------------------------------------------------------------------------
|
||||
* TAPE DRIVE ABI
|
||||
* -----------------------------------------------------------------------------
|
||||
* Note(Ed): One of the main purposes of this codebase is to help me
|
||||
* learn this, as such the information below may be entirely realized
|
||||
* or finalized conceptually.
|
||||
* -----------------------------------------------------------------------------
|
||||
* This ABI and its associated legos were directly inspired by researching
|
||||
* the work of Timothy Lottes and Onat Türkçüoğlu; along with many others.
|
||||
* It's the simplest bootstrap of a a directly executed chain of assemby
|
||||
* arrays (Atoms) that terminate with a yield sequence to the next atom.
|
||||
* These eventually lead to a terminal atom for the tape which is defined
|
||||
* below as "tape_exit".
|
||||
*
|
||||
* This behaves as one of the simplest runtime harnesses ontop of a
|
||||
* host-enviornment's execution engine to author and compose programs with.
|
||||
* From here various conventions can be further applied.
|
||||
* To make things easier to understand it may be better to focus on what this
|
||||
* ABI does not have. It does not have have any branching within the tape but
|
||||
* relative branches within atoms or between atoms.
|
||||
* Branching nearly is always downstream. Stack usage is non-existent.
|
||||
* Push/Pop, FIFO, or Arena/Bump data structures are used by atoms explicitly.
|
||||
* In it's current form withe C11 macro dsl, the user also has to do manual register
|
||||
* allocation per atom.
|
||||
*
|
||||
* One of the remarkable things about utilizing this abi is its essentially
|
||||
* interopable with CPUs, GPUs, FPGA, or, basically anything
|
||||
* from the 5th generation consoles and onward.
|
||||
* The ABI directly reflects how all computational hardware must be architected
|
||||
* in order to execute digital logic effectively on current era tech.
|
||||
* On the PS1 we don't have access to a few features like multi-threading,
|
||||
* speculative execution, or L3 cache; but, we can set the foundation for legoing
|
||||
* whats required for eventually expanding this ABI's paradigm and core atoms
|
||||
* to take those newer hardware features into account. For example, you can easily
|
||||
* expand this to support wave-based execution model on a PS2 or PS3.
|
||||
* Not having a stack or automatic register allocation means the user can't ignore
|
||||
* excessive argument shuffle across workload or waves and thier phases.
|
||||
* Crossing ABI boundaries to other runtimes that do has obviouss penalties.
|
||||
*
|
||||
* Learning data-oreinted code becomes a natural progression. Your not fighting
|
||||
* a stack-based procedural paradigm that wants to argument shuffle on by lack of
|
||||
* constraints on how the user may "call" a procedure. The user doesn't
|
||||
* have to hammer down "rules" or patterns to know how to massage the compiler
|
||||
* to dissolve those call frames to get the asesmbly into its desired form.
|
||||
* The form is obvious, and once the user gets to author these compoonents
|
||||
* it becomes a game of tetris.
|
||||
*
|
||||
* Another feature is this ABI is very compatible with bootstrapping and developing
|
||||
* simple toolchains built off of bit-packed annotated command streams the user can
|
||||
* directly author, maintatain, and immediately execute. That being like a color forth.
|
||||
* This can make the tetris less of a chore with some helpful policy generation for
|
||||
* allocation of registers, helping to choose resuable components, designing DSL on
|
||||
* the fly, etc.
|
||||
* -----------------------------------------------------------------------------
|
||||
* TODO(Ed): We need pretty ascii diagrams and proper guides, articles, etc.
|
||||
* -----------------------------------------------------------------------------
|
||||
* For now this ideation is just started functioning. I'm abusing C11 & a lua metaprogram
|
||||
* to help establish a hybrid toolchain to ideate on a traditional text-based
|
||||
* authoring UX for this paradigm.
|
||||
* If pcsx-redux provides viable hot-reload and persistent data storage beyond
|
||||
* save-states (just copying ram to filesystem), I can author a color forth to
|
||||
* mess around with. With either an editor in-emulator or on the actual machine itself.
|
||||
* Assembly is tedius, but I think this codebase most likely has a pretty ergonomic
|
||||
* flavor worst case...
|
||||
* */
|
||||
/* Register Allocation Info */
|
||||
enum {
|
||||
R_AtomJmp = R_T8 atom_reg, /* debug-visible; tape yield handshake scratch */
|
||||
R_TapePtr = R_T9 atom_reg, /* The Instruction Stream Pointer */
|
||||
/* Stringification codes for the GCC inline assembler clobber lists. */
|
||||
#define R_AtomJmp_Code R_T8_Code
|
||||
#define R_TapePtr_Code R_T9_Code
|
||||
|
||||
// R_InCursor = R_T4,
|
||||
// #define R_InCursor_Code R_T4_Code
|
||||
|
||||
// Reserved Registers (Callee-saved):
|
||||
// - R_T9: Holds the Tape Ptr which we need to increment
|
||||
// If we hit a wall with register allocations we can clobber V0 & V1 (return values), defering as opt-in by user.
|
||||
// - R_RA: Not sure??
|
||||
// Needed by ac_yield but can be used as atom scratch:
|
||||
// - R_T8: Will be used as the atom jump register.
|
||||
|
||||
// All allocatable registers for mips atoms:
|
||||
R_TScratchVolatile = R_AT, // This one is reserved for psuedo instructions, but you can technically use it.
|
||||
R_TScratch0 = R_T0,
|
||||
R_TScratch1 = R_T1,
|
||||
R_TScratch2 = R_T2,
|
||||
R_TScratch3 = R_T3,
|
||||
R_TScratch4 = R_T4,
|
||||
R_TScratch5 = R_T5,
|
||||
R_TScratch6 = R_T6,
|
||||
R_TScratch7 = R_T7,
|
||||
R_TScratch8 = R_T8,
|
||||
R_TScratch10 = R_V0, // Tend to be used with gte DMAs
|
||||
R_TScratch11 = R_V1, // Tend to be used with gte DMAs
|
||||
// Note(Ed): We can technically clobber these, but don't unless we hit a bottleneck.
|
||||
// A 0-2
|
||||
// S 0-7
|
||||
};
|
||||
|
||||
typedef U4 const MipsCode; // Underlying type to mips asm words.
|
||||
typedef Slice_(MipsCode);
|
||||
|
||||
typedef U4 const MipsAtom; // Underlying type to an array of mips asm words that must terminate with an ac_yield.
|
||||
#define MipsAtom_(sym) MipsCode sym [] align_(4) =
|
||||
|
||||
// Used for components with no args (e.g., ac_load_tri_indices) or identifier-args (hardcoded register names).
|
||||
@@ -23,78 +126,85 @@ typedef Slice_MipsCode MipsAtom;
|
||||
#define MipsAtomComp_(sym) MipsCode sym [] align_(4) =
|
||||
|
||||
// Used for components with value-args (e.g., ac_format_f3_color).
|
||||
// FI_ MipsAtom ac_X(args) MipsAtomComp_Proc_(ac_X, { body })
|
||||
// FI_ Slice_MipsCode ac_X(args) MipsAtomComp_Proc_(ac_X, { body })
|
||||
// expands to:
|
||||
// FI_ MipsAtom ac_X(args) { MipsCode ac_X[] align_(4) = { body }; return slice_from_array(MipsCode, ac_X); }
|
||||
// FI_ Slice_MipsCode ac_X(args) { MipsCode ac_X[] align_(4) = { body }; return slice_from_array(MipsCode, ac_X); }
|
||||
#define MipsAtomComp_Proc_(sym, ...) { MipsCode sym [] align_(4) = __VA_ARGS__; return slice_from_array(MipsCode, sym); }
|
||||
|
||||
// Auto-generated component macros (<module>/gen/<dir>/<dir>.macs.h) are included manually by the unity build.
|
||||
/* Line-table anchor: gcc only adds a file to the .debug_line file table when the
|
||||
file contains line-numbered content. Files containing only:
|
||||
- `MipsAtomComp_` static-array declarations, or
|
||||
- `MipsAtomComp_Proc_` (force-inline) function bodies whose line info gets
|
||||
attributed to the call site at the include point are otherwise omitted from the file table,
|
||||
which breaks the DWARF injection when it tries to resolve atom-component provenance paths.
|
||||
|
||||
/* Register aliases */
|
||||
enum {
|
||||
R_AtomJmp = R_T9 atom_reg, /* debug-visible; tape yield handshake scratch */
|
||||
R_TapePtr = R_T8 atom_reg, /* The Instruction Stream Pointer */
|
||||
R_InCursor = R_T4,
|
||||
Place `ATOM_FILE_LINE_MARKER();` once at file scope in any `.atom.c` that defines atoms.
|
||||
The macro expands to a file-scope `internal U4 const` declaration keeps the file in the line table.
|
||||
The constant is in `.rodata` and unreferenced; the linker may eliminate it.
|
||||
The two-level concat + `__LINE__` suffix makes the identifier unique per call site
|
||||
(the identifier embeds the source line, so duplicates across `#include`d files don't collide). */
|
||||
#define ATOM_FILE_DEBUGGER_LINE_MARKER(file_name) internal U4 const tmpl(atom_file_debugger_line_marker,file_name) = 0
|
||||
|
||||
R_PrimCursor = R_T7 atom_reg atom_type(U4 *), /* VRAM output cursor (primitive buffer) */
|
||||
R_FaceCursor = R_T4 atom_reg atom_type(V4_S2 *), /* Cube face-index cursor (V4_S2*); floor context switches to V3_S2* via atom_phase */
|
||||
R_VertBase = R_T5 atom_reg atom_type(V3_S2 *), /* Base address of the vertex array */
|
||||
R_OtBase = R_T6 atom_reg atom_type(U4 *), /* Base address of the Ordering Table */
|
||||
|
||||
/* Stringification codes for the GCC inline assembler clobber lists. */
|
||||
#define R_TapePtr_Code R_T8_Code
|
||||
#define R_InCursor_Code R_T4_Code
|
||||
|
||||
#define R_PrimCursor_Code R_T7_Code
|
||||
#define R_FaceCursor_Code R_T4_Code
|
||||
#define R_VertBase_Code R_T5_Code
|
||||
#define R_OtBase_Code R_T6_Code
|
||||
};
|
||||
|
||||
#pragma region Tape Drive
|
||||
/* ---------------------------------------------------------------------------
|
||||
* TAPE DRIVE ABI & REGISTER ALIASES (the enum moved earlier; see below)
|
||||
* ---------------------------------------------------------------------------*/
|
||||
typedef Slice_(MipsAtom); typedef Slice_MipsAtom Tape;
|
||||
|
||||
/* The 'Exit' Atom */
|
||||
atom_dbg_skip MipsAtom_(tape_exit) { jump_reg(rret_addr), nop };
|
||||
|
||||
/* Generalized Tape Engine Runner */
|
||||
NI_ void tape_run(Slice_MipsCode tape) { register U4* tp rgcc(R_TapePtr) = u4_r(tape.ptr); asm volatile(
|
||||
// TODO(Ed): When we have a substantial workload/throughput, profile each of these to see impact at ABI boundaries.
|
||||
|
||||
/* Tape Runner (Default) */
|
||||
FI_ void tape_run(Tape tape) { register U4* tape_ptr rgcc(R_TapePtr) = u4_r(tape.ptr); asm volatile(
|
||||
asm_words(
|
||||
add_ui( R_SP, R_SP, -MipsStackAlignment) /* Allocate stack space */
|
||||
, store_word( R_RA, R_SP, 0) /* Safely backup $ra to the stack */
|
||||
, load_word( R_AtomJmp, R_TapePtr, 0) /* Bootstrap the first jump */
|
||||
, add_ui_self(R_TapePtr, S_(MipsCode)) /* Advance tape */
|
||||
load_word( R_AtomJmp, R_TapePtr, 0) /* Bootstrap the first jump */
|
||||
, add_ui_self(R_TapePtr, S_(MipsAtom)) /* Advance tape */
|
||||
, call_reg( R_AtomJmp) /* jalr $t9 */
|
||||
, nop /* Branch delay slot */
|
||||
, load_word( R_RA, R_SP, 0) /* Restore $ra from stack */
|
||||
, add_ui_self(R_SP, MipsStackAlignment) /* Deallocate stack space */
|
||||
)
|
||||
asm_rpins, r_use(tp)
|
||||
asm_rpins, r_use(tape_ptr)
|
||||
asm_clobber:
|
||||
rlit(R_AT)
|
||||
, rlit(R_V0), rlit(R_V1)
|
||||
, rlit(R_T0), rlit(R_T1), rlit(R_T2), rlit(R_T3)
|
||||
/* Tell GCC the tape engine owns and destroys the workspace registers */
|
||||
, rlit(R_PrimCursor), rlit(R_FaceCursor), rlit(R_VertBase), rlit(R_OtBase)
|
||||
, rlit(R_T9)
|
||||
, clb_mem_drain
|
||||
rlit(R_AT),
|
||||
rlit(R_V0), rlit(R_V1), // We clobber these for GTE ACs (that don't expose register selection, might expose them in the future...)
|
||||
rlit(R_T0), rlit(R_T1), rlit(R_T2), rlit(R_T3), rlit(R_T4),
|
||||
rlit(R_T5), rlit(R_T6), rlit(R_T7), rlit(R_T8),
|
||||
clb_mem_drain
|
||||
); }
|
||||
|
||||
/* Tape Runner (Static and Arg Clobbers) */
|
||||
FI_ void tape_run_a02_s07(Tape tape) { register U4* tape_ptr rgcc(R_TapePtr) = u4_r(tape.ptr); asm volatile(
|
||||
asm_words(
|
||||
load_word( R_AtomJmp, R_TapePtr, 0) /* Bootstrap the first jump */
|
||||
, add_ui_self(R_TapePtr, S_(MipsAtom)) /* Advance tape */
|
||||
, call_reg( R_AtomJmp) /* jalr $t9 */
|
||||
, nop /* Branch delay slot */
|
||||
)
|
||||
asm_rpins, r_use(tape_ptr)
|
||||
asm_clobber:
|
||||
rlit(R_AT),
|
||||
rlit(R_V0), rlit(R_V1), rlit(R_A0), rlit(R_A1), rlit(R_A2),
|
||||
rlit(R_T0), rlit(R_T1), rlit(R_T2), rlit(R_T3), rlit(R_T4),
|
||||
rlit(R_T5), rlit(R_T6), rlit(R_T7), rlit(R_T8),
|
||||
rlit(R_S0), rlit(R_S1), rlit(R_S2), rlit(R_S3), rlit(R_S4),
|
||||
rlit(R_S5), rlit(R_S6), rlit(R_S7),
|
||||
clb_mem_drain
|
||||
); }
|
||||
|
||||
// Procedural authoring of tapes:
|
||||
typedef Relative_(FArena) Struct_(TapeBuilder) { U4 ptr; U4 capacity; U4 used; };
|
||||
FI_ void tb_init(TapeBuilder* tb, FArena* arena) { tb->ptr = arena->start; tb->used = 0; }
|
||||
FI_ TapeBuilder tb_make_old( FArena* arena) { return (TapeBuilder){ arena->start, 0 }; }
|
||||
FI_ TapeBuilder tb_make(Slice mem) { return (TapeBuilder){ mem.ptr, mem.len, 0 }; }
|
||||
|
||||
#define tb_emit_(tb, atom) tb_emit(tb, atom)
|
||||
FI_ void tb_emit(TapeBuilder* tb, MipsCode* atom) { u4_r(tb->ptr)[tb->used] = u4_(atom); ++ tb->used; }
|
||||
FI_ void tb_data(TapeBuilder* tb, U4 data) { u4_r(tb->ptr)[tb->used] = u4_(data); ++ tb->used; }
|
||||
#define tb_emit_(atom) tb_emit(& tb, atom)
|
||||
#define tb_data_(field, data) tb_data(& tb, u4_(data))
|
||||
|
||||
FI_ Slice_MipsCode tb_end (TapeBuilder* tb) { tb_emit(tb,tape_exit); return (Slice_MipsCode){ C_(U4*,tb->ptr), tb->used }; }
|
||||
FI_ Slice_MipsCode tb_slice(TapeBuilder tb) { return (Slice_MipsCode){ C_(U4*,tb.ptr), tb.used }; }
|
||||
FI_ Tape tb_end (TapeBuilder* tb) { tb_emit(tb,tape_exit); return (Tape){ C_(U4*,tb->ptr), tb->used }; }
|
||||
FI_ Tape tb_slice(TapeBuilder tb) { return (Tape){ C_(U4*,tb.ptr), tb.used }; }
|
||||
#define tb_scope(tb) for(U4 tbs_once=0;tbs_once==0;++tbs_once,tb_emit(tb,tape_exit))
|
||||
|
||||
FI_ void tb_scope_run_end(TapeBuilder* tb) { tb_emit(tb,tape_exit); tape_run(tb_slice(tb[0])); }
|
||||
#define tb_scope_run(tb) for(U4 tbs_once=0;tbs_once==0;++tbs_once,tb_scope_run_end(tb))
|
||||
#pragma endregion Tape Drive
|
||||
|
||||
#pragma region Macro Mips Atom Components
|
||||
@@ -104,118 +214,30 @@ FI_ Slice_MipsCode tb_slice(TapeBuilder tb) { return (Sl
|
||||
* ---------------------------------------------------------------------------*/
|
||||
|
||||
// The 'Yield' sequence for Tape Atoms (mac_yield).
|
||||
// - mac_yield() is the safe default for atom-endings: 4 words, BD-slot of jr is mandatory nop.
|
||||
// - mac_yield_load() + mac_yield_tail():
|
||||
// - unconditional branch: mac_yield_load fills the branch's BD-slot (replaces a nop);
|
||||
// - mac_yield_tail runs at the branch target (does NOT re-load R_AtomJmp).
|
||||
|
||||
atom_dbg_skip MipsAtomComp_(ac_yield) {
|
||||
load_word(R_AtomJmp, R_TapePtr, 0),
|
||||
add_ui_self( R_TapePtr, S_(MipsCode)),
|
||||
jump_reg( R_AtomJmp), nop,
|
||||
};
|
||||
|
||||
/* Words: 3; Loads 3 S2 indices from the face array */
|
||||
atom_dbg_skip MipsAtomComp_(ac_load_tri_indices) {
|
||||
load_half_u(R_T0, R_FaceCursor, 0 * S_(S2)),
|
||||
load_half_u(R_T1, R_FaceCursor, 1 * S_(S2)),
|
||||
load_half_u(R_T2, R_FaceCursor, 2 * S_(S2)),
|
||||
atom_dbg_skip MipsAtomComp_(ac_yield_load) {
|
||||
load_word(R_AtomJmp, R_TapePtr, 0),
|
||||
};
|
||||
|
||||
/* Words: 18; Translates indices to vertex addresses and pushes them to GTE */
|
||||
atom_dbg_skip MipsAtomComp_(ac_gte_load_tri_verts) {
|
||||
shift_lleft(R_AT, R_T0, v3s2_byteoff), add_u_self(R_AT, R_VertBase), load_word(R_V0, R_AT, O_(V3_S2,x)), load_word(R_V1, R_AT, O_(V3_S2,z)), gte_mv_to_data_r(R_V0, C2_VXY0), gte_mv_to_data_r(R_V1, C2_VZ0),
|
||||
shift_lleft(R_AT, R_T1, v3s2_byteoff), add_u_self(R_AT, R_VertBase), load_word(R_V0, R_AT, O_(V3_S2,x)), load_word(R_V1, R_AT, O_(V3_S2,z)), gte_mv_to_data_r(R_V0, C2_VXY1), gte_mv_to_data_r(R_V1, C2_VZ1),
|
||||
shift_lleft(R_AT, R_T2, v3s2_byteoff), add_u_self(R_AT, R_VertBase), load_word(R_V0, R_AT, O_(V3_S2,x)), load_word(R_V1, R_AT, O_(V3_S2,z)), gte_mv_to_data_r(R_V0, C2_VXY2), gte_mv_to_data_r(R_V1, C2_VZ2),
|
||||
atom_dbg_skip MipsAtomComp_(ac_yield_tail) {
|
||||
add_ui_self(R_TapePtr, S_(MipsCode)),
|
||||
jump_reg( R_AtomJmp), nop,
|
||||
};
|
||||
|
||||
/* Words: 11; Correctly inserts a primitive into the Ordering Table linked list.
|
||||
* Hardcoded for Poly_F3 (5 words). For Poly_G4, use ac_insert_ot_tag_g4. */
|
||||
MipsAtomComp_(ac_insert_ot_tag_f3) {
|
||||
shift_lleft( R_T1, R_T1, S_(U4)/2), // T1 = otz * S_(U4) (otz arg is implicit R_T1)
|
||||
add_u_self( R_T1, R_OtBase), // T1 = & OrderingTable[OTZ]
|
||||
load_word( R_AT, R_T1, O_(PolyTag,code)), // AT = old_ot_head
|
||||
load_upper_i(R_V0, (S_(Poly_F3)/S_(U4) - S_(PolyTag)/S_(U4)) << PolyTag_len_bits), // V0 = (5 - 1) << 24 = 4 << 24
|
||||
mask_upper( R_AT, R_AT, S_(PolyTag_len_bits)), // Strip upper 8 bits (length from prev cell) → keep only low 24
|
||||
or_u( R_AT, R_AT, R_V0), // Merge length
|
||||
store_word( R_AT, R_PrimCursor, O_(PolyTag,code)), // prim->tag = packed(prim_length, old_addr)
|
||||
shift_lleft( R_AT, R_PrimCursor, S_(PolyTag_len_bits)), // AT = (prim_length << 24) | old_addr
|
||||
shift_lright(R_AT, R_AT, S_(PolyTag_len_bits)),
|
||||
store_word( R_AT, R_T1, O_(PolyTag,code)), // OrderingTable[OTZ] = PrimCursor
|
||||
};
|
||||
|
||||
/* Words: 11; Correctly inserts a primitive into the Ordering Table linked list.
|
||||
* Hardcoded for Poly_G4 (9 words). For Poly_F3, use ac_insert_ot_tag_f3. */
|
||||
MipsAtomComp_(ac_insert_ot_tag_g4) {
|
||||
shift_lleft( R_T1, R_T1, S_(U4)/2), // T1 = otz * S_(U4) (otz arg is implicit R_T1)
|
||||
add_u_self( R_T1, R_OtBase), // T1 = & OrderingTable[OTZ]
|
||||
load_word( R_AT, R_T1, O_(PolyTag,code)), // AT = old_ot_head
|
||||
load_upper_i(R_V0, (S_(Poly_G4)/S_(U4) - S_(PolyTag)/S_(U4)) << PolyTag_len_bits), // V0 = (9 - 1) << 24 = 8 << 24
|
||||
mask_upper( R_AT, R_AT, S_(PolyTag_len_bits)), // Strip upper 8 bits (length from prev cell) → keep only low 24
|
||||
or_u( R_AT, R_AT, R_V0), // Merge length
|
||||
store_word( R_AT, R_PrimCursor, O_(PolyTag,code)), // prim->tag = packed(prim_length, old_addr)
|
||||
shift_lleft( R_AT, R_PrimCursor, S_(PolyTag_len_bits)), // AT = (prim_length << 24) | old_addr
|
||||
shift_lright(R_AT, R_AT, S_(PolyTag_len_bits)),
|
||||
store_word( R_AT, R_T1, O_(PolyTag,code)), // OrderingTable[OTZ] = PrimCursor
|
||||
};
|
||||
|
||||
/* Words: 3; Emits one (cmd|color) word to R_PrimCursor at the given
|
||||
* byte offset. Internal helper used by the *_format_*_color macros. */
|
||||
FI_ MipsAtom ac_pack_color_word(U4 off, U4 cmd, U1 r, U1 g, U1 b)
|
||||
atom_dbg_skip MipsAtomComp_Proc_(ac_pack_color_word, {
|
||||
load_upper_i(R_AT, (cmd) << 8 | (b)),
|
||||
or_i_self( R_AT, ((g) << 8) | (r)),
|
||||
store_word( R_AT, R_PrimCursor, (off)),
|
||||
})
|
||||
|
||||
/* Words: 3; Emits the F3 command+color word (cmd byte | BLUE | GREEN | RED)
|
||||
* Args: _r, _g, _b are 8-bit RGB byte values (not raw 16-bit fields). */
|
||||
FI_ MipsAtom ac_format_f3_color(U1 r, U1 g, U1 b)
|
||||
atom_dbg_skip MipsAtomComp_Proc_(ac_format_f3_color, { mac_pack_color_word(O_(Poly_F3,color), gp0_cmd_poly_f3, r, g, b) })
|
||||
|
||||
/* Words: 3; Stores the 3 transformed (V2_S2 screen) vertices to the F3.
|
||||
* PIPELINE: post-RTPT (SXY0=v0.screen, SXY1=v1.screen, SXY2=v2.screen). */
|
||||
atom_dbg_skip MipsAtomComp_(ac_gte_store_f3_post_rtpt) {
|
||||
gte_sw(C2_SXY0, R_PrimCursor, O_(Poly_F3,p0)),
|
||||
gte_sw(C2_SXY1, R_PrimCursor, O_(Poly_F3,p1)),
|
||||
gte_sw(C2_SXY2, R_PrimCursor, O_(Poly_F3,p2)),
|
||||
};
|
||||
|
||||
/* Words: 12; Emits the four (code|color) words of a Poly_G4.
|
||||
* Args: rN,gN,bN are 8-bit RGB byte values for each of the 4 vertices. */
|
||||
FI_ MipsAtom ac_format_g4_color(
|
||||
U1 r0, U1 g0, U1 b0,
|
||||
U1 r1, U1 g1, U1 b1,
|
||||
U1 r2, U1 g2, U1 b2,
|
||||
U1 r3, U1 g3, U1 b3)
|
||||
MipsAtomComp_Proc_(ac_format_g4_color, {
|
||||
mac_pack_color_word(O_(Poly_G4,c0), gp0_cmd_poly_g4, r0,g0,b0),
|
||||
mac_pack_color_word(O_(Poly_G4,c1), 0, r1,g1,b1),
|
||||
mac_pack_color_word(O_(Poly_G4,c2), 0, r2,g2,b2),
|
||||
mac_pack_color_word(O_(Poly_G4,c3), 0, r3,g3,b3),
|
||||
})
|
||||
|
||||
/* Words: 3; Stores the 3 transformed (V2_S2 screen) vertices of the
|
||||
* G4 triangle portion to p0/p1/p2.
|
||||
* PIPELINE: post-RTPT, pre-RTPS (SXY0=v0.screen, SXY1=v1.screen, SXY2=v2.screen).
|
||||
* MUST be called BEFORE V3-RTPS, otherwise SXY0/1/2
|
||||
* get overwritten with v3 (RTPS writes only to SXY2, but to keep the
|
||||
* three registers aligned with v0/v1/v2 you must store before RTPS).
|
||||
* The macro name declares the pipeline position; check #6 (GTE state-
|
||||
* machine validation) verifies the call site matches the declaration. */
|
||||
atom_dbg_skip MipsAtomComp_(ac_gte_store_g4_p012_post_rtpt_pre_rtps) {
|
||||
gte_sw(C2_SXY0, R_PrimCursor, O_(Poly_G4,p0)),
|
||||
gte_sw(C2_SXY1, R_PrimCursor, O_(Poly_G4,p1)),
|
||||
gte_sw(C2_SXY2, R_PrimCursor, O_(Poly_G4,p2)),
|
||||
};
|
||||
|
||||
/* Words: 1; Stores the V3 screen coord to the G4's p3 slot.
|
||||
* PIPELINE: post-RTPS (SXY2 holds v3.screen because RTPS writes its
|
||||
* single-vertex result to SXY2; SXY0 still holds v0.screen from the
|
||||
* earlier RTPT — DO NOT read SXY0 here, that's the bug this name
|
||||
* prevents).
|
||||
*/
|
||||
atom_dbg_skip MipsAtomComp_(ac_gte_store_g4_p3_post_rtps) { gte_sw(C2_SXY2, R_PrimCursor, O_(Poly_G4,p3)) };
|
||||
|
||||
#pragma endregion Macro Atom Components
|
||||
|
||||
#pragma region Mips Atom Builder
|
||||
// This allows for runtime procedural authoring of mips atoms.
|
||||
// This helps with runtime procedural authoring of mips atoms.
|
||||
|
||||
typedef Struct_(FMipsAtom512) { U4 data[512]; U4 used; };
|
||||
|
||||
@@ -237,120 +259,10 @@ FI_ void atombuilder_end(MipsAtomBuilder_R ab) {
|
||||
mem_bump(ab->start, ab->capacity, & ab->used, S_(ac_yield));
|
||||
}
|
||||
|
||||
#define mipsatom_from_builder(ab) (MipsAtom){ab.start, ab.used}
|
||||
|
||||
#define mipsatom_from_builder(ab) (Slice_MipsCode){ab.start, ab.used}
|
||||
#pragma endregion Mips Atom Builder
|
||||
|
||||
#pragma region Baked Mips Atoms
|
||||
// These atoms are resolved at compile time and are (usually) statically linked readonly data.
|
||||
|
||||
enum {
|
||||
bios_flushcache = 0x44,
|
||||
bios_table_addr = 0xA0,
|
||||
};
|
||||
|
||||
/* Flushes the Instruction Cache (PSX A-function 0x44 via BIOS stub at 0xA0).
|
||||
* Sequence (per MIPS ABI; arguments in arg registers, RA pushed to stack):
|
||||
* 1. sp -= 8; sw $ra, 4($sp) ; save RA
|
||||
* 2. $a0 = bios_flushcache (arg0)
|
||||
* 3. $t0 = bios_table_addr ; t0 = &BIOS A-function table
|
||||
* 4. jalr $t0, $ra ; call BIOS(flushcache)
|
||||
* nop ; branch delay slot
|
||||
* 5. lw $ra, 4($sp); jr $ra ; restore & return
|
||||
* 6. sp += 8
|
||||
*/
|
||||
internal MipsAtom_(mips_flush_icache) {
|
||||
add_ui(rstack_ptr, rstack_ptr, -MipsStackAlignment), // sp -= 8
|
||||
store_word(rret_addr, rstack_ptr, S_(U4)), // sw $ra, 4($sp)
|
||||
add_ui(rret_0, rdiscard, bios_flushcache), // addiu $a0, $0, 0x44
|
||||
add_ui(rtmp_0, rdiscard, bios_table_addr), // addiu $t0, $0, 0xA0
|
||||
jump_link(rtmp_0, rret_addr), nop, // jalr $t0, $ra, BD slot
|
||||
load_word(rret_addr, rstack_ptr, S_(U4)), // lw $ra, 4($sp)
|
||||
jump_reg(rret_addr), // jr $ra
|
||||
add_ui(rstack_ptr, rstack_ptr, MipsStackAlignment), // sp += 8 (BD)
|
||||
mac_yield(),
|
||||
};
|
||||
|
||||
typedef Struct_(Binds_SetGteWorld) {
|
||||
M3_S2* transform;
|
||||
};
|
||||
internal MipsAtom_(set_gte_world) atom_info(
|
||||
atom_bind(Binds_SetGteWorld)
|
||||
, atom_reads(R_TapePtr)
|
||||
){
|
||||
/* Pop matrix address from tape into R_T3 ($11) */
|
||||
load_word(R_T3, R_TapePtr, O_(Binds_SetGteWorld,transform)),
|
||||
add_ui_self( R_TapePtr, S_(Binds_SetGteWorld)),
|
||||
/* Load 3x3 Rotation + 3x1 Translation from R_T3 into GTE CONTROL Regs (ctc2) */
|
||||
load_word(R_T0, R_T3, 0), load_word(R_T1, R_T3, 4),
|
||||
gte_mv_to_ctrl_r(R_T0, gte_cr_RT11), gte_mv_to_ctrl_r(R_T1, gte_cr_RT12),
|
||||
load_word(R_T0, R_T3, 8), load_word(R_T1, R_T3, 12), load_word(R_T2, R_T3, 16),
|
||||
gte_mv_to_ctrl_r(R_T0, gte_cr_RT13), gte_mv_to_ctrl_r(R_T1, gte_cr_RT21), gte_mv_to_ctrl_r(R_T2, gte_cr_RT22),
|
||||
load_word(R_T0, R_T3, 20), load_word(R_T1, R_T3, 24), load_word(R_T2, R_T3, 28),
|
||||
gte_mv_to_ctrl_r(R_T0, gte_cr_TRX), gte_mv_to_ctrl_r(R_T1, gte_cr_TRY), gte_mv_to_ctrl_r(R_T2, gte_cr_TRZ),
|
||||
mac_yield()
|
||||
};
|
||||
|
||||
/* DIAGNOSTIC 1: Pure tape loop test */
|
||||
internal MipsAtom_(diag_yield) { mac_yield() };
|
||||
|
||||
/* DIAGNOSTIC 2: Pure memory test (No GTE). Draws a fixed cyan triangle. */
|
||||
internal MipsAtom_(diag_color) {
|
||||
store_word( R_0, R_T7, 0),
|
||||
load_upper_i(R_AT, gp0_cmd_poly_f3 << 8 | 0xFF), /* High: MipsCode Poly_F3(0x20) + Color B:FF */
|
||||
or_i_self( R_AT, 0xFF00), /* Low: Color G:FF, R:00 (Cyan) */
|
||||
store_word( R_AT, R_T7, 4),
|
||||
|
||||
/* Fake coordinates - Swapped winding order to prevent GPU culling! */
|
||||
load_upper_i(R_AT, 0x0010), or_i_self(R_AT, 0x0010), store_word(R_AT, R_T7, 8), /* (16, 16) */
|
||||
load_upper_i(R_AT, 0x0050), or_i_self(R_AT, 0x0010), store_word(R_AT, R_T7, 12), /* (80, 16) */
|
||||
load_upper_i(R_AT, 0x0010), or_i_self(R_AT, 0x0050), store_word(R_AT, R_T7, 16), /* (16, 80) */
|
||||
|
||||
add_ui( R_T1, R_0, 10),
|
||||
shift_lleft_self(R_T1, S_(U4)/2),
|
||||
add_u_self( R_T1, R_T6),
|
||||
|
||||
load_word( R_AT, R_T1, 0),
|
||||
load_upper_i(R_V0, (S_(Poly_F3)/S_(U4) - S_(PolyTag)/S_(U4)) << PolyTag_len_bits),
|
||||
store_word( R_AT, R_T7, 0),
|
||||
shift_lleft(R_AT, R_T7, S_(PolyTag_len_bits)), shift_lright(R_AT, R_AT, S_(PolyTag_len_bits)),
|
||||
or_u_self( R_AT, R_V0),
|
||||
store_word( R_AT, R_T1, 0),
|
||||
|
||||
add_ui(R_T7, R_T7, 20),
|
||||
|
||||
mac_yield()
|
||||
};
|
||||
|
||||
/* DIAGNOSTIC 3: Pure GTE test (No Memory Writes) */
|
||||
internal MipsAtom_(diag_gte) {
|
||||
/* Load 3 indices */
|
||||
load_half_u(R_T0, R_T4, 0),
|
||||
load_half_u(R_T1, R_T4, 2),
|
||||
load_half_u(R_T2, R_T4, 4),
|
||||
|
||||
/* Load Vertices into GTE */
|
||||
shift_lleft( R_AT, R_T0, 3), add_u( R_AT, R_AT, R_T5),
|
||||
load_word(R_V0, R_AT, 0), load_word(R_V1, R_AT, 4),
|
||||
gte_mv_to_data_r(R_V0, C2_VXY0), gte_mv_to_data_r(R_V1, C2_VZ0),
|
||||
|
||||
shift_lleft( R_AT, R_T1, 3), add_u(R_AT, R_AT, R_T5),
|
||||
load_word(R_V0, R_AT, 0), load_word(R_V1, R_AT, 4),
|
||||
gte_mv_to_data_r(R_V0, C2_VXY1), gte_mv_to_data_r(R_V1, C2_VZ1),
|
||||
|
||||
shift_lleft(R_AT, R_T2, 3), add_u(R_AT, R_AT, R_T5),
|
||||
load_word(R_V0, R_AT, 0), load_word(R_V1, R_AT, 4),
|
||||
gte_mv_to_data_r(R_V0, C2_VXY2), gte_mv_to_data_r(R_V1, C2_VZ2),
|
||||
|
||||
/* Run Math */
|
||||
nop2, gte_cmdw_rtpt,
|
||||
nop2, gte_cmdw_nclip,
|
||||
nop2,
|
||||
|
||||
/* Advance Face Cursor and Yield */
|
||||
add_ui(R_T4, R_T4, 8),
|
||||
|
||||
mac_yield()
|
||||
};
|
||||
|
||||
#pragma endregion Baked Mips Atoms
|
||||
|
||||
@@ -0,0 +1,29 @@
|
||||
#ifdef INTELLISENSE_DIRECTIVES
|
||||
# include "gen/macs.h"
|
||||
# include "gen/offsets.h"
|
||||
# include "math.h"
|
||||
# include "lottes_tape.h"
|
||||
#endif
|
||||
|
||||
ATOM_FILE_DEBUGGER_LINE_MARKER(math_atom_c);
|
||||
|
||||
#pragma region MACs (Mips Atom Component)
|
||||
|
||||
FI_ Slice_MipsCode ac_load_v2s2(U4 rs_x, U4 rs_y, U4 r_base, U4 offset) atom_dbg_skip MipsAtomComp_Proc_(ac_load_v2s2, {
|
||||
load_half( rs_x, r_base, O_(V3_S2,x)),
|
||||
load_half( rs_y, r_base, O_(V3_S2,y)),
|
||||
})
|
||||
|
||||
FI_ Slice_MipsCode ac_store_v2s2(U4 rt_x, U4 rt_y, U4 base, U4 offset) atom_dbg_skip MipsAtomComp_Proc_(ac_store_v2s2, {
|
||||
store_half(rt_x, base, offset + O_(V2_S2,x)),
|
||||
store_half(rt_y, base, offset + O_(V2_S2,y)),
|
||||
})
|
||||
|
||||
FI_ Slice_MipsCode ac_store_rects2(U4 rt_x, U4 rt_y, U4 rt_width, U4 rt_height, U4 base, U4 offset) atom_dbg_skip MipsAtomComp_Proc_(ac_store_rects2, {
|
||||
store_half(rt_x, base, offset + O_(Rect_S2,x)),
|
||||
store_half(rt_y, base, offset + O_(Rect_S2,y)),
|
||||
store_half(rt_width, base, offset + O_(Rect_S2,width)),
|
||||
store_half(rt_height, base, offset + O_(Rect_S2,height)),
|
||||
})
|
||||
|
||||
#pragma endregion MACs (Mips Atom Component)
|
||||
+5
-7
@@ -11,6 +11,7 @@ enum {
|
||||
v3s2_byteoff = 3, // log2(8), used with shift_left_logical op for index via byte offset.
|
||||
};
|
||||
|
||||
typedef Array_(U1, 2);
|
||||
typedef Array_(U4, 2);
|
||||
typedef Array_(S2, 2);
|
||||
typedef Array_(S2, 3);
|
||||
@@ -22,6 +23,7 @@ typedef S2 A3x3_S2[3][3];
|
||||
typedef Struct_(Extent2_S2) { S2 width; S2 height; };
|
||||
typedef Struct_(Extent2_S4) { S4 width; S4 height; };
|
||||
|
||||
typedef Struct_(V2_U1) { U1 x; U1 y; };
|
||||
typedef Struct_(V2_S2) { S2 x; S2 y; };
|
||||
typedef Struct_(V2_S4) { S4 x; S4 y; };
|
||||
typedef Struct_(V3_S2) { S2 x; S2 y; S2 z; S2 pad; };
|
||||
@@ -37,6 +39,7 @@ typedef Struct_(Rect_S4) { S4 x; S4 y; S4 width; S4 height; };
|
||||
|
||||
typedef Struct_(M3_S2) { A3x3_S2 m; A3_S4 t; };
|
||||
|
||||
typedef Array_(V2_S2, 2);
|
||||
typedef Array_(V2_S2, 3);
|
||||
typedef Array_(V2_S2, 4);
|
||||
|
||||
@@ -58,10 +61,5 @@ FI_ void add_a3s4_fp(A3_S4_R out_a, A3_S4 b) {
|
||||
(out_a[0])[2] += b[2] >> 1;
|
||||
}
|
||||
|
||||
FI_ void add_v3s4(V3_S4_R out_a, V3_S4 b) {
|
||||
add_a3s4(pcast(A3_S4_R, out_a), pcast(A3_S4, b));
|
||||
}
|
||||
|
||||
FI_ void add_v3s4_fp(V3_S4_R out_a, V3_S4 b) {
|
||||
add_a3s4_fp(pcast(A3_S4_R, out_a), pcast(A3_S4, b));
|
||||
}
|
||||
FI_ void add_v3s4 (V3_S4_R out_a, V3_S4 b) { add_a3s4 (pcast(A3_S4_R, out_a), pcast(A3_S4, b)); }
|
||||
FI_ void add_v3s4_fp(V3_S4_R out_a, V3_S4 b) { add_a3s4_fp(pcast(A3_S4_R, out_a), pcast(A3_S4, b)); }
|
||||
|
||||
@@ -0,0 +1,38 @@
|
||||
#ifdef INTELLISENSE_DIRECTIVES
|
||||
# include "gen/macs.h"
|
||||
# include "gen/offsets.h"
|
||||
# include "lottes_tape.h"
|
||||
#endif
|
||||
|
||||
ATOM_FILE_DEBUGGER_LINE_MARKER(mips_atom_c);
|
||||
|
||||
#pragma region Baked Atoms
|
||||
|
||||
enum {
|
||||
bios_flushcache = 0x44,
|
||||
bios_table_addr = 0xA0,
|
||||
};
|
||||
|
||||
/* Flushes the Instruction Cache (PSX A-function 0x44 via BIOS stub at 0xA0).
|
||||
* Sequence (per MIPS ABI; arguments in arg registers, RA pushed to stack):
|
||||
* 1. sp -= 8; sw $ra, 4($sp) ; save RA
|
||||
* 2. $a0 = bios_flushcache (arg0)
|
||||
* 3. $t0 = bios_table_addr ; t0 = &BIOS A-function table
|
||||
* 4. jalr $t0, $ra ; call BIOS(flushcache)
|
||||
* nop ; branch delay slot
|
||||
* 5. lw $ra, 4($sp); jr $ra ; restore & return
|
||||
* 6. sp += 8
|
||||
*/
|
||||
internal MipsAtom_(mips_flush_icache) {
|
||||
add_ui(rstack_ptr, rstack_ptr, -MipsStackAlignment), // sp -= 8
|
||||
store_word(rret_addr, rstack_ptr, S_(U4)), // sw $ra, 4($sp)
|
||||
add_ui(rret_0, rdiscard, bios_flushcache), // addiu $a0, $0, 0x44
|
||||
add_ui(rtmp_0, rdiscard, bios_table_addr), // addiu $t0, $0, 0xA0
|
||||
jump_link(rtmp_0, rret_addr), nop, // jalr $t0, $ra, BD slot
|
||||
load_word(rret_addr, rstack_ptr, S_(U4)), // lw $ra, 4($sp)
|
||||
jump_reg(rret_addr), // jr $ra
|
||||
add_ui(rstack_ptr, rstack_ptr, MipsStackAlignment), // sp += 8 (BD)
|
||||
mac_yield(),
|
||||
};
|
||||
|
||||
#pragma endregion Baked Atoms
|
||||
+22
-7
@@ -362,10 +362,28 @@ enum { _BitOffsets = 0
|
||||
/* call_reg rs — jump-and-link to register-held address; link in $ra. */
|
||||
#define call_reg(rs) jump_link((rs), R_RA)
|
||||
|
||||
/* j target — absolute jump within the current 256MB region. */
|
||||
/* j target — absolute jump within the current 256MB region.
|
||||
* WARNING: `jump(off)` CANNOT BE USED for within-atom jumps in the current pipeline.
|
||||
* The MIPS j opcode encodes `(target_addr >> 2)` in its 26-bit immediate field; an ABSOLUTE byte address, not a relative word offset.
|
||||
* The metaprogram computes `off` as a relative word offset (`target_word_idx - branch_word_idx - 1`), which the assembler/linker does NOT resolve.
|
||||
*
|
||||
* `jump(off)` is only safe when the BUILD PIPELINE owns the absolute position of the emitted code — i.e. when: s
|
||||
* - the build emits a symbol-relative `.word` expression that the linker resolvess via `R_MIPS_26`, OR
|
||||
* - the code is hand-assembled with explicit absolute targets, OR a custom post-build patcher resolves the 26-bit field.
|
||||
*/
|
||||
#define jump(off) enc_i(op_j, R_0, R_0, (off))
|
||||
|
||||
/* call_addr off — jump-and-link to immediate address. */
|
||||
/* jump_rel off — unconditional relative jump (the within-atom-safe `jump`).
|
||||
* MIPS I R3000A has no "branch always" opcode. The idiom for an unconditional relative jump is `beq $0, $0, off`.
|
||||
*/
|
||||
#define jump_rel(off) branch_equal(R_0, R_0, (off))
|
||||
|
||||
/* call_addr off — jump-and-link to immediate address.
|
||||
*
|
||||
* Same WARNING as `jump(off)` above: the jal opcode also encodes an absolute 26-bit target.
|
||||
* For within-atom calls, the current pipeline has no equivalent always-taken call-and-link idiom.
|
||||
* Workaround: `branch_link` (always-taken branch + explicit `la $ra, next_word_addr; jr $ra`), or just use `call_reg($tmp)` after loading the target into a register.
|
||||
*/
|
||||
#define call_addr(off) enc_i(op_jal, R_0, R_0, (off))
|
||||
|
||||
/* --- Store family (mirrors the load family) --- */
|
||||
@@ -444,18 +462,15 @@ enum { _BitOffsets = 0
|
||||
#define load_imm_1w_s0(rt, imm) add_si((rt)), R_0, (imm))
|
||||
|
||||
/* load_imm_2w — unconditional 2-word `li` form: `lui` + (ori | addi).
|
||||
*
|
||||
* Granular companion to `load_imm`: skips the compile-time range checks and always emits 2 .words. Use this when:
|
||||
* - you know `imm` is > 0xFFFF (otherwise you're wasting a word), OR
|
||||
* - `imm` is not a compile-time constant and you want predictable
|
||||
* 2-word emission without the `__builtin_constant_p` branches.
|
||||
* - `imm` is not a compile-time constant and you want predictable 2-word emission without the `__builtin_constant_p` branches.
|
||||
*
|
||||
* The lo16 strategy is still chosen at expansion time on the lo half:
|
||||
* lo16 in 0x0000..0x7FFF → addi (sign-ext is harmless, the lui already cleared bits 15..0)
|
||||
* lo16 in 0x8000..0xFFFF → ori (zero-extends to preserve the intended bit pattern)
|
||||
*
|
||||
* For situations where you need to bypass even this choice
|
||||
* (e.g. to force a specific encoding for a known discontiguous high/low pair),
|
||||
* For situations where you need to bypass even this choice (e.g. to force a specific encoding for a known discontiguous high/low pair),
|
||||
* see `load_imm_2w_ori_forced` and `load_imm_2w_addi_forced` below.
|
||||
* Statement-level (not expression-level): emits its own `asm volatile(...)`.
|
||||
*/
|
||||
|
||||
@@ -0,0 +1,184 @@
|
||||
#ifdef INTELLISENSE_DIRECTIVES
|
||||
# include "gen/macs.h"
|
||||
# include "gen/offsets.h"
|
||||
# include "mips.h"
|
||||
# include "dsl.atom.h"
|
||||
# include "lottes_tape.h"
|
||||
# include "pad.h"
|
||||
#endif
|
||||
|
||||
ATOM_FILE_DEBUGGER_LINE_MARKER(pad_atom_c);
|
||||
|
||||
#pragma region Baked Atoms
|
||||
|
||||
/* ----- pad_bios_snapshot -----
|
||||
* Per-frame snapshot of one BIOS pad buffer into PadState.
|
||||
* Decoder (branch ladder on raw[0] status + raw[1] id):
|
||||
* 1. raw[0] == 0xFF -> Disconnected (buttons=0, axes=0x80)
|
||||
* 2. raw[0]==0 && raw[1]==0 -> Pending (buttons=0, axes=0x80)
|
||||
* 3. raw[1] == 0x41 -> Digital (buttons normalized; axes=0x80)
|
||||
* 4. raw[1] == 0x53 -> AnalogStick (buttons normalized; axes from raw[4..7])
|
||||
* 5. raw[1] in 0x7x -> AnalogPad (buttons normalized; axes from raw[4..7])
|
||||
* 6. else -> Unsupported (buttons=0, axes=0x80)
|
||||
*
|
||||
* Buttons normalization: byte_swap16((~raw_buttons) & 0xFFFF).
|
||||
* raw_buttons = load_half_u(raw, 2) = raw[2] | (raw[3] << 8).
|
||||
* byte_swap16(x) = (x >> 8) | (x << 8); nor(x, R_0) = ~x. store_half truncates to 16 bits so the upper-16 mask is implicit in the store.
|
||||
*
|
||||
* Register use (atom-local; no wave-context touched):
|
||||
* R_T0 = raw base (kept throughout; axes loads read raw[4..7] from R_T0)
|
||||
* R_T1 = state base (kept throughout; all stores go through R_T1)
|
||||
* R_T2 = raw[0] status (alive across the disc/pending/id dispatch, then dead)
|
||||
* R_T3 = raw[1] id (alive across the id dispatch, then dead)
|
||||
* R_T4 = scratch (shifts, compares, immediate loads, store values)
|
||||
* R_T5 = scratch (parallel lui+ori for the 0x80808080 axes constant + byte-swap target)
|
||||
*/
|
||||
enum {
|
||||
R_PadRaw = R_T0 atom_reg atom_type(U1),
|
||||
R_PadState = R_T1 atom_reg,
|
||||
R_RawStatus = R_T2 atom_reg,
|
||||
R_RawId = R_T3 atom_reg,
|
||||
};
|
||||
typedef Struct_(Binds_PadBiosSnapshot) {
|
||||
PadBiosRaw* raw;
|
||||
PadState* state;
|
||||
};
|
||||
internal MipsAtom_(pad_bios_snapshot) atom_info(atom_bind(Binds_PadBiosSnapshot)
|
||||
, atom_reads( R_PadRaw, R_PadState, R_RawStatus, R_RawId, R_T4, R_T5, R_TapePtr)
|
||||
, atom_writes(R_PadRaw, R_PadState, R_RawStatus, R_RawId, R_T4, R_T5, R_TapePtr)
|
||||
) {
|
||||
/* === Bind consumption: T0 = raw, T1 = state, advance R_TapePtr by 8. */
|
||||
load_word(R_PadRaw, R_TapePtr, O_(Binds_PadBiosSnapshot,raw)),
|
||||
load_word(R_PadState, R_TapePtr, O_(Binds_PadBiosSnapshot,state)),
|
||||
add_ui_self( R_TapePtr, S_(Binds_PadBiosSnapshot)),
|
||||
|
||||
/* === Read raw[0] (status) + raw[1] (id) */
|
||||
load_byte_u(R_RawStatus, R_PadRaw, 0),
|
||||
load_byte_u(R_RawId, R_PadRaw, 1),
|
||||
|
||||
atom_label(snap_root) /* === Case 1: Disconnected (status == 0xFF). */
|
||||
add_ui(R_T4, R_0, 0xFF), branch_ne(R_RawStatus, R_T4, atom_offset(snap_root, skip_disconnected)),
|
||||
/* BD-slot: pre-compute PadStatus_Disconnected. Branch reads R_T4=0xFF in EX before this WB completes.
|
||||
* If branch NOT taken (fall through to pending/id_dispatch), R_T4 is overwritten by the next case body's add_ui — harmless. */
|
||||
|
||||
atom_label(disconnected) /* === Disconnected body. */
|
||||
/* R_T4 = PadStatus_Disconnected from snap_root BD-slot. */
|
||||
store_word(R_T4, R_PadState, O_(PadState,status)),
|
||||
store_half(R_0, R_PadState, O_(PadState,buttons)),
|
||||
/* axes = 0x80808080 (centered) — single sw writes the 4-byte axes block at offset 8 (left_x, left_y, right_x, right_y). */
|
||||
load_upper_i(R_T4, 0x8080), or_i_self(R_T4, 0x8080),
|
||||
store_word( R_T4, R_PadState, O_(PadState,left_x)),
|
||||
store_byte( R_RawId, R_PadState, O_(PadState,id)),
|
||||
jump_rel(atom_offset(disconnected, snap_end)),
|
||||
/* BD-slot: load next atom's entry point (replaces the nop).
|
||||
* The unconditional branch always jumps to snap_end, where mac_yield_tail()
|
||||
* transfers control to R_AtomJmp without re-loading it. */
|
||||
mac_yield_load(),
|
||||
atom_label(skip_disconnected)
|
||||
|
||||
/* === Case 2: Pending (status == 0 && id == 0)
|
||||
* Combined check: if (status | id) != 0 then skip to id_dispatch.
|
||||
* Falls through to the Pending case only when both are zero. */
|
||||
or_u_self(R_RawStatus, R_RawId), branch_ne(R_RawStatus, R_0, atom_offset(case_2, id_dispatch)),
|
||||
/* BD-slot: pre-compute PadStatus_Pending. Branch reads R_RawStatus in EX before this WB completes.
|
||||
* If branch NOT taken (fall through to id_dispatch), R_T4 is overwritten by the digital/analog body add_ui — harmless. */
|
||||
|
||||
atom_label(pending) /* === Pending body */
|
||||
/* R_T4 = PadStatus_Pending from case_2 BD-slot. */
|
||||
store_word(R_T4, R_PadState, O_(PadState,status)),
|
||||
store_half(R_0, R_PadState, O_(PadState,buttons)),
|
||||
/* axes = 0x80808080 (centered) — single sw writes the 4-byte axes block at offset 8 (left_x, left_y, right_x, right_y). */
|
||||
load_upper_i(R_T4, 0x8080), or_i_self(R_T4, 0x8080),
|
||||
store_word( R_T4, R_PadState, O_(PadState,left_x)),
|
||||
store_byte( R_RawId, R_PadState, O_(PadState,id)),
|
||||
jump_rel(atom_offset(pending, snap_end)),
|
||||
mac_yield_load(),
|
||||
|
||||
atom_label(id_dispatch) /* === Case 3-6: ID dispatch */
|
||||
add_ui(R_T4, R_0, 0x41), branch_ne(R_RawId, R_T4, atom_offset(id_dispatch, try_analog_stick)),
|
||||
/* BD-slot: pre-compute PadStatus_Digital. Branch reads R_RawId in EX before this WB completes.
|
||||
* If branch NOT taken (fall through to try_analog_stick), R_T4 is overwritten by the analog body add_ui. */
|
||||
|
||||
/* === Digital body (status, buttons normalize, axes=0x80, id, branch. */
|
||||
/* R_T4 = PadStatus_Digital from id_dispatch BD-slot. */
|
||||
store_word( R_T4, R_PadState, O_(PadState,status)),
|
||||
load_half_u(R_T4, R_PadRaw, 2 * S_(U1)),
|
||||
/* Fill R_T4's load-delay slot with the 0x80808080 axes constant into R_T5
|
||||
* (R_T5 is dead on this path; it's only consumed at the analog_pad range check). */
|
||||
load_upper_i(R_T5, 0x8080), or_i_self(R_T5, 0x8080),
|
||||
nor_u( R_T4, R_T4, R_0), /* raw_buttons is already in host bit order; no swap needed */
|
||||
store_half( R_T4, R_PadState, O_(PadState,buttons)),
|
||||
|
||||
/* axes = 0x80808080 (centered) — single sw writes the 4-byte axes block at offset 8 (left_x, left_y, right_x, right_y). */
|
||||
store_word( R_T5, R_PadState, O_(PadState,left_x)),
|
||||
add_ui( R_T4, R_0, 0x41),
|
||||
store_byte( R_T4, R_PadState, O_(PadState,id)),
|
||||
|
||||
jump_rel(atom_offset(id_dispatch, snap_end)),
|
||||
mac_yield_load(),
|
||||
|
||||
atom_label(try_analog_stick) /* === Case 4: AnalogStick (id == 0x53)*/
|
||||
add_ui(R_T4, R_0, 0x53), branch_ne(R_RawId, R_T4, atom_offset(try_analog_stick, try_analog_pad)),
|
||||
/* BD-slot: pre-compute PadStatus_AnalogStick. Branch reads R_RawId in EX before this WB completes.
|
||||
* If branch NOT taken (fall through to try_analog_pad), R_T4 is overwritten by the analog_pad body add_ui. */
|
||||
|
||||
atom_label(analog_stick) /* === AnalogStick body
|
||||
* Axes are loaded as two halfwords: raw[6..7] → left_xy (sh at offset 8), raw[4..5] → right_xy (sh at offset 10).
|
||||
* R_T5 holds left_xy / id-value in turn (it's dead on this path — only consumed at the analog_pad range check). */
|
||||
/* R_T4 = PadStatus_AnalogStick from try_analog_stick BD-slot. */
|
||||
store_word( R_T4, R_PadState, O_(PadState,status)),
|
||||
load_half_u( R_T4, R_PadRaw, 2 * S_(U1)), /* R_T4 = raw_buttons */
|
||||
load_half_u( R_T5, R_PadRaw, 6 * S_(U1)), /* R_T5 = left_xy; fills R_T4's load-delay slot (doesn't read R_T4) */
|
||||
nor_u( R_T4, R_T4, R_0), /* R_T4 = ~raw_buttons */
|
||||
store_half( R_T4, R_PadState, O_(PadState,buttons)),
|
||||
load_half_u( R_T4, R_PadRaw, 4 * S_(U1)), /* R_T4 = right_xy; fills R_T5's load-delay slot */
|
||||
store_half( R_T5, R_PadState, O_(PadState,left_x)), /* R_T5 settled, store left_xy */
|
||||
store_half( R_T4, R_PadState, O_(PadState,right_x)),
|
||||
add_ui( R_T5, R_0, 0x53), /* R_T5 = id value (clobbers left_xy, already stored) */
|
||||
store_byte( R_T5, R_PadState, O_(PadState,id)),
|
||||
jump_rel(atom_offset(analog_stick, snap_end)),
|
||||
mac_yield_load(),
|
||||
|
||||
atom_label(try_analog_pad) /* === Case 5-6: AnalogPad (id & 0xF0 == 0x70) */
|
||||
and_i( R_T4, R_RawId, 0xF0),
|
||||
add_ui( R_T5, R_0, 0x70),
|
||||
branch_ne(R_T4, R_T5, atom_offset(try_analog_pad, try_unsupported)),
|
||||
/* BD-slot: pre-compute PadStatus_AnalogPad. Branch reads R_T4 in EX before this WB completes.
|
||||
* If branch NOT taken (fall through to try_unsupported), R_T4 is overwritten by the unsupported body add_ui. */
|
||||
|
||||
atom_label(analog_pad) /* === AnalogPad body
|
||||
* Same shape as AnalogStick with AnalogPad status. R_T5 holds left_xy (it's dead on this path). */
|
||||
/* R_T4 = PadStatus_AnalogPad from try_analog_pad BD-slot. */
|
||||
store_word( R_T4, R_PadState, O_(PadState,status)),
|
||||
load_half_u(R_T4, R_PadRaw, 2 * S_(U1)), /* R_T4 = raw_buttons */
|
||||
load_half_u(R_T5, R_PadRaw, 6 * S_(U1)), /* R_T5 = left_xy; fills R_T4's load-delay slot */
|
||||
nor_u( R_T4, R_T4, R_0), /* R_T4 = ~raw_buttons */
|
||||
store_half( R_T4, R_PadState, O_(PadState,buttons)),
|
||||
load_half_u(R_T4, R_PadRaw, 4 * S_(U1)), /* R_T4 = right_xy; fills R_T5's load-delay slot */
|
||||
store_half( R_T5, R_PadState, O_(PadState,left_x)), /* R_T5 settled, store left_xy */
|
||||
store_half( R_T4, R_PadState, O_(PadState,right_x)),
|
||||
store_byte( R_RawId, R_PadState, O_(PadState,id)),
|
||||
|
||||
jump_rel(atom_offset(analog_pad, snap_end)),
|
||||
mac_yield_load(),
|
||||
|
||||
atom_label(try_unsupported) /* === Case 7: Unsupported — fall through from the AnalogPad range-check miss. */
|
||||
add_ui( R_T4, R_0, PadStatus_Unsupported),
|
||||
store_word(R_T4, R_PadState, O_(PadState,status)),
|
||||
store_half(R_0, R_PadState, O_(PadState,buttons)),
|
||||
/* axes = 0x80808080 (centered) — single sw writes the 4-byte axes block at offset 8 (left_x, left_y, right_x, right_y). */
|
||||
load_upper_i(R_T4, 0x8080), or_i_self(R_T4, 0x8080),
|
||||
store_word( R_T4, R_PadState, O_(PadState,left_x)),
|
||||
add_ui( R_T4, R_0, 0xFF), /* 0xFF sentinel: "unknown id" */
|
||||
store_byte( R_T4, R_PadState, O_(PadState,id)),
|
||||
/* Fall through to snap_end. */
|
||||
|
||||
atom_label(no_jump_fallthrough)
|
||||
mac_yield_load(),
|
||||
|
||||
atom_label(snap_end)
|
||||
/* NOT mac_yield() — R_AtomJmp was already loaded in the BD-slot of the case-exit branch. */
|
||||
mac_yield_tail(),
|
||||
};
|
||||
|
||||
#pragma endregion Baked Atoms
|
||||
@@ -0,0 +1,73 @@
|
||||
#ifdef INTELLISENSE_DIRECTIVES
|
||||
# pragma once
|
||||
# include "dsl.h"
|
||||
#endif
|
||||
|
||||
/* PSX button bit positions — 1:1 with PSX-SPX docs at docs/psx-spx/docs/controllersandmemorycards.md:405-421.
|
||||
* Wire is active-low (0 = pressed).
|
||||
* The decoder atom computes buttons = (~raw_buttons) & 0xFFFF; the active-low-to-active-high inversion is applied bit-by-bit. */
|
||||
enum {
|
||||
Bit_(Pad_Select, 0),
|
||||
Bit_(Pad_L3, 1),
|
||||
Bit_(Pad_R3, 2),
|
||||
Bit_(Pad_Start, 3),
|
||||
Bit_(Pad_Up, 4),
|
||||
Bit_(Pad_Right, 5),
|
||||
Bit_(Pad_Down, 6),
|
||||
Bit_(Pad_Left, 7),
|
||||
Bit_(Pad_L2, 8),
|
||||
Bit_(Pad_R2, 9),
|
||||
Bit_(Pad_L1, 10),
|
||||
Bit_(Pad_R1, 11),
|
||||
Bit_(Pad_Triangle, 12),
|
||||
Bit_(Pad_Circle, 13),
|
||||
Bit_(Pad_Cross, 14),
|
||||
Bit_(Pad_Square, 15),
|
||||
};
|
||||
|
||||
enum {
|
||||
PadId_Offset = 4,
|
||||
|
||||
Pad0 = 0 << PadId_Offset,
|
||||
Pad1 = 1 << PadId_Offset,
|
||||
};
|
||||
|
||||
#define pad0_(btn_id) (btn_id << Pad0)
|
||||
#define pad1_(btn_id) (btn_id << Pad1)
|
||||
|
||||
/* ============================================================
|
||||
* BIOS pad-buffer subsystem: docs/psx-spx/docs/kernelbios.md (B(12h) + B(13h))
|
||||
* ============================================================ */
|
||||
|
||||
enum {
|
||||
PAD_BIOS_RAW_SIZE = 0x22,
|
||||
};
|
||||
typedef Struct_(PadBiosRaw) {
|
||||
U1 bytes[PAD_BIOS_RAW_SIZE];
|
||||
};
|
||||
|
||||
typedef Enum_(U4, PadStatus) {
|
||||
PadStatus_Disconnected,
|
||||
PadStatus_Digital,
|
||||
PadStatus_AnalogStick,
|
||||
PadStatus_AnalogPad,
|
||||
PadStatus_Unsupported,
|
||||
PadStatus_Pending,
|
||||
PadStatus_Invalid,
|
||||
};
|
||||
|
||||
/* PadState — per-port normalized runtime state.
|
||||
* Field order is chosen so that the 4 axes (left_x, left_y, right_x, right_y)
|
||||
* form a contiguous 4-byte block at offset 8, allowing a single `store_word` to clear-or-write all 4 axes in one MIPS instruction.
|
||||
* The struct size stays 12 bytes (unchanged from the prior order,
|
||||
* which left the C compiler to insert 1 byte of trailing pad to reach the 4-byte struct alignment). */
|
||||
typedef Struct_(PadState) {
|
||||
PadStatus status; /* offset 0, size 4 (U4) */
|
||||
U2 buttons; /* offset 4, size 2 */
|
||||
U1 id; /* offset 6, size 1 */
|
||||
U1 pad; /* offset 7, size 1 — explicit pad to align the axes block */
|
||||
U1 left_x; /* offset 8, size 1 — store_word target (4-byte aligned) */
|
||||
U1 left_y; /* offset 9, size 1 */
|
||||
U1 right_x; /* offset 10, size 1 */
|
||||
U1 right_y; /* offset 11, size 1 */
|
||||
};
|
||||
@@ -0,0 +1,7 @@
|
||||
#ifdef INTELLISENSE_DIRECTIVES
|
||||
# include "gen/macs.h"
|
||||
# include "gen/offsets.h"
|
||||
# include "psyq.h"
|
||||
#endif
|
||||
|
||||
ATOM_FILE_DEBUGGER_LINE_MARKER(pysq_atom_c);
|
||||
@@ -0,0 +1,103 @@
|
||||
#ifdef INTELLISENSE_DIRECTIVES
|
||||
# pragma once
|
||||
# include "dsl.h"
|
||||
# include "math.h"
|
||||
# include "gp.h"
|
||||
#endif
|
||||
|
||||
typedef Struct_(DrawEnv_Packed) { U4 tag; U4 code[15]; };
|
||||
typedef Struct_(DrawEnv) {
|
||||
Rect_S2 clip_area;
|
||||
V2_S2 drawing_offset[2];
|
||||
Rect_S2 texture_window;
|
||||
S2 texture_page;
|
||||
B1 flag_dither;
|
||||
B1 flag_draw_on_display;
|
||||
B1 enable_auto_clear;
|
||||
RGB8 initial_bg_color;
|
||||
DrawEnv_Packed dr_env; // reserved
|
||||
};
|
||||
typedef Struct_(DisplayEnv) {
|
||||
Rect_S2 display_area;
|
||||
Rect_S2 screen;
|
||||
B1 vinterlace;
|
||||
B1 color24;
|
||||
B1 pad0;
|
||||
B1 pad1;
|
||||
};
|
||||
typedef Array_(DrawEnv, 2);
|
||||
typedef Array_(DisplayEnv, 2);
|
||||
|
||||
typedef Struct_(DoubleBuffer) {
|
||||
A2_DrawEnv draw;
|
||||
A2_DisplayEnv display;
|
||||
};
|
||||
|
||||
DisplayEnv* displayenv_init(DisplayEnv* env, S4 x, S4 y, S4 w, S4 h) asm("SetDefDispEnv");
|
||||
DrawEnv* drawenv_init (DrawEnv* env, S4 x, S4 y, S4 w, S4 h) asm("SetDefDrawEnv");
|
||||
|
||||
DisplayEnv* displayenv_put(DisplayEnv* env) asm("PutDispEnv");
|
||||
DrawEnv* drawenv_put (DrawEnv* env) asm("PutDrawEnv");
|
||||
|
||||
U4 geom_init(void) asm("InitGeom");
|
||||
void geom_set_offset(U4 x, U4 y) asm("SetGeomOffset");
|
||||
void geom_set_screen(U4 h) asm("SetGeomScreen");
|
||||
|
||||
U4* orderingtbl_clear_reverse(U4* ot, U4 len) asm("ClearOTagR");
|
||||
|
||||
U4 reset_graph(U4 mode) asm("ResetGraph");
|
||||
void set_display_enabled(U4 mask) asm("SetDispMask");
|
||||
|
||||
U4 draw_sync(U4 mode) asm("DrawSync");
|
||||
U4 vsync(U4 mode) asm("VSync");
|
||||
|
||||
void draw_orderingtbl(U4* buf) asm("DrawOTag");
|
||||
|
||||
typedef Struct_(Tile) {
|
||||
U4 tag;
|
||||
RGB8 color;
|
||||
B1 code;
|
||||
Rect_S2 rect;
|
||||
};
|
||||
|
||||
/*
|
||||
Linear Algebra
|
||||
*/
|
||||
|
||||
M3_S2* m3s2_rotation (V3_S2* vec, M3_S2* mat) asm("RotMatrix");
|
||||
M3_S2* m3s2_translation(M3_S2* mat, V3_S4* vec) asm("TransMatrix");
|
||||
M3_S2* m3s2_scale (M3_S2* mat, V3_S4* vec) asm("ScaleMatrix");
|
||||
|
||||
// Rotation, Translation, Perspective
|
||||
|
||||
S4 rtp_v3s2_raw(V3_S2* vec, S4* xy, S4* pp, S4* flag) asm("RotTransPers");
|
||||
FI_ S4 rtp_v3s2(V3_S2* vec, V2_S2* xy, A2_S2* pp, S4* flag) { return rtp_v3s2_raw(vec, C_(S4*R_, & xy->x), C_(S4*R_, pp), r_(flag)); }
|
||||
|
||||
S4 rtp_avg_nclip_a3_v3s2_raw(V3_S2* v0, V3_S2* v1, V3_S2* v2, S4* xy1, S4* xy2, S4* xy3, S4* pp, S4* otz, S4* flag) asm("RotAverageNclip3");
|
||||
FI_ S4 rtp_avg_nclip_a3_v3s2(
|
||||
V3_S2* v0, V3_S2* v1, V3_S2* v2,
|
||||
V2_S2* xy0, V2_S2* xy1, V2_S2* xy2,
|
||||
A2_S2* pp, S4* otz, S4* flag
|
||||
){
|
||||
return rtp_avg_nclip_a3_v3s2_raw(
|
||||
v0, v1, v2,
|
||||
C_(S4*R_, xy0), C_(S4*R_, xy1), C_(S4*R_, xy2),
|
||||
C_(S4*R_, pp), C_(S4*R_, otz), C_(S4*R_, flag)
|
||||
);
|
||||
}
|
||||
|
||||
S4 rtp_avg_nclip_a4_v3s2_raw(V3_S2* v0, V3_S2* v1, V3_S2* v2, V3_S2* v3, S4* xy1, S4* xy2, S4* xy3, S4* xy4, S4* pp, S4* otz, S4* flag) asm("RotAverageNclip4");
|
||||
FI_ S4 rtp_avg_nclip_a4_v3s2(
|
||||
V3_S2* v0, V3_S2* v1, V3_S2* v2, V3_S2* v3,
|
||||
V2_S2* xy0, V2_S2* xy1, V2_S2* xy2, V2_S2* xy3,
|
||||
A2_S2* pp, S4* otz, S4* flag
|
||||
){
|
||||
return rtp_avg_nclip_a4_v3s2_raw(
|
||||
v0, v1, v2, v3,
|
||||
C_(S4*R_, xy0), C_(S4*R_, xy1), C_(S4*R_, xy2), C_(S4*R_, xy3),
|
||||
C_(S4*R_, pp), C_(S4*R_, otz), C_(S4*R_, flag)
|
||||
);
|
||||
}
|
||||
|
||||
void gte_matrix_set_rotation (M3_S2* mat) asm("SetRotMatrix");
|
||||
void gte_matrix_set_translation(M3_S2* mat) asm("SetTransMatrix");
|
||||
@@ -6,7 +6,7 @@
|
||||
// One line per macro that appears in your atom sources.
|
||||
//
|
||||
// This file is encoding-macros-only.
|
||||
// The auto-generated component macros (mac_X) live in duffle/gen/<dir>.macs.h (included separately by the unity build).
|
||||
// The auto-generated component macros (mac_X) live in the source directory's own gen/macs.h (per-directory aggregation; included separately by the unity build).
|
||||
// The unity build should include THIS file and the .macs.h file in the same TU, with both wrapped
|
||||
// (or the include guard order handled) to avoid WORD_COUNT redeclaration.
|
||||
//
|
||||
@@ -22,6 +22,7 @@ WORD_COUNT(call_reg, 1)
|
||||
WORD_COUNT(call_addr, 1)
|
||||
WORD_COUNT(branch_le_zero, 1)
|
||||
WORD_COUNT(branch_equal, 1)
|
||||
WORD_COUNT(branch_ne, 1)
|
||||
WORD_COUNT(add_ui, 1)
|
||||
WORD_COUNT(set_lt_u, 1)
|
||||
WORD_COUNT(set_lt_s, 1)
|
||||
@@ -29,7 +30,9 @@ WORD_COUNT(set_lt_si, 1)
|
||||
WORD_COUNT(set_lt_ui, 1)
|
||||
WORD_COUNT(load_word, 1)
|
||||
WORD_COUNT(load_half_u, 1)
|
||||
WORD_COUNT(load_byte_u, 1)
|
||||
WORD_COUNT(store_word, 1)
|
||||
WORD_COUNT(store_byte, 1)
|
||||
WORD_COUNT(add_ui_self, 1)
|
||||
WORD_COUNT(add_u_self, 1)
|
||||
WORD_COUNT(add_u, 1)
|
||||
@@ -37,6 +40,7 @@ WORD_COUNT(or_i, 1)
|
||||
WORD_COUNT(or_i_self, 1)
|
||||
WORD_COUNT(or_u, 1)
|
||||
WORD_COUNT(or_u_self, 1)
|
||||
WORD_COUNT(nor_u, 1)
|
||||
WORD_COUNT(shift_lleft, 1)
|
||||
WORD_COUNT(shift_lleft_self, 1)
|
||||
WORD_COUNT(shift_lright, 1)
|
||||
|
||||
@@ -1,156 +0,0 @@
|
||||
#ifdef INTELLISENSE_DIRECTIVES
|
||||
# include "duffle/gen/duffle.macs.h"
|
||||
# include "duffle/gen/duffle.offsets.h"
|
||||
# include "duffle/atom_dsl.h"
|
||||
# include "duffle/lottes_tape.h"
|
||||
# include "duffle/word_count.metadata.h"
|
||||
# include "gen/gte_hello.offsets.h"
|
||||
# include "hello_gte.h"
|
||||
#endif
|
||||
|
||||
#pragma region MACs (Mips Atom components)
|
||||
|
||||
|
||||
|
||||
#pragma endregion MACs
|
||||
|
||||
#pragma region Baked Atoms
|
||||
|
||||
typedef Struct_(Binds_CubeTri) {
|
||||
U4 PrimCursor;
|
||||
V4_S2* FaceCursor;
|
||||
V3_S2* VertBase;
|
||||
U4* OtBase;
|
||||
};
|
||||
internal MipsAtom_(rbind_cube_g4_face) atom_info(atom_bind(Binds_CubeTri), atom_phase(cube_g4)
|
||||
, atom_reads(R_TapePtr)
|
||||
, atom_writes(R_PrimCursor, R_FaceCursor, R_VertBase, R_OtBase)
|
||||
){
|
||||
/* Pop 4 arguments from the tape directly into the workspace registers */
|
||||
load_word(R_PrimCursor, R_TapePtr, O_(Binds_CubeTri,PrimCursor)),
|
||||
load_word(R_FaceCursor, R_TapePtr, O_(Binds_CubeTri,FaceCursor)),
|
||||
load_word(R_VertBase, R_TapePtr, O_(Binds_CubeTri,VertBase)),
|
||||
load_word(R_OtBase, R_TapePtr, O_(Binds_CubeTri,OtBase)),
|
||||
add_ui_self( R_TapePtr, S_(Binds_CubeTri)),
|
||||
mac_yield()
|
||||
};
|
||||
|
||||
// cube_g4_face — Draw one cube face (Gouraud-shaded quad) via the GTE tape pipeline
|
||||
internal
|
||||
MipsAtom_(cube_g4_face) atom_info(atom_phase(cube_g4),
|
||||
atom_reads( R_PrimCursor, R_FaceCursor, R_VertBase, R_OtBase),
|
||||
atom_writes(R_PrimCursor, R_FaceCursor)
|
||||
){
|
||||
load_half_u(R_T0, R_FaceCursor, 0 * S_(S2)),
|
||||
load_half_u(R_T1, R_FaceCursor, 1 * S_(S2)),
|
||||
load_half_u(R_T2, R_FaceCursor, 2 * S_(S2)),
|
||||
load_half_u(R_T3, R_FaceCursor, 3 * S_(S2)),
|
||||
|
||||
mac_gte_load_tri_verts(R_T0, R_T1, R_T2),
|
||||
nop2, gte_cmdw_rotate_translate_perspective_triple,
|
||||
nop2, gte_cmdw_nclip,
|
||||
|
||||
nop2, gte_mv_from_data_r(R_T0, C2_MAC0),
|
||||
nop,
|
||||
branch_le_zero(R_T0, atom_offset(cull, cube_g4_face_exit)), nop,
|
||||
|
||||
store_word(R_0, R_PrimCursor, O_(Poly_G4, tag)),
|
||||
mac_format_g4_color(
|
||||
/* c0 magenta */ 0xFF, 0x00, 0xFF,
|
||||
/* c1 yellow */ 0xFF, 0xFF, 0x00,
|
||||
/* c2 cyan */ 0x00, 0xFF, 0xFF,
|
||||
/* c3 green */ 0x00, 0xFF, 0x00),
|
||||
mac_gte_store_g4_p012_post_rtpt_pre_rtps(),
|
||||
|
||||
shift_lleft(R_AT, R_T3, v3s2_byteoff), add_u(R_AT, R_AT, R_VertBase),
|
||||
load_word(R_V0, R_AT, O_(V3_S2, x)), load_word(R_V1, R_AT, O_(V3_S2, z)),
|
||||
gte_mv_to_data_r(R_V0, C2_VXY0), gte_mv_to_data_r(R_V1, C2_VZ0),
|
||||
|
||||
nop2, gte_cmdw_rotate_translate_perspective_single,
|
||||
mac_gte_store_g4_p3_post_rtps(),
|
||||
|
||||
nop2, gte_cmdw_avg_sort_z4,
|
||||
nop2, gte_mv_from_data_r(R_T1, C2_OTZ),
|
||||
|
||||
add_ui( R_AT, R_0, OrderingTbl_Len),
|
||||
set_lt_u( R_AT, R_T1, R_AT),
|
||||
branch_equal(R_AT, R_0, atom_offset(bounds_chk, cube_g4_face_exit)), nop,
|
||||
mac_insert_ot_tag_g4(),
|
||||
|
||||
atom_label(cube_g4_face_exit)
|
||||
add_ui_self(R_PrimCursor, S_(Poly_G4)), /* 9 words = Poly_G4 */
|
||||
add_ui_self(R_FaceCursor, S_(S2) * 4), /* 4 × S2 = 8 bytes */
|
||||
mac_yield()
|
||||
};
|
||||
|
||||
typedef Struct_(Binds_FloorTri) {
|
||||
U4 PrimCursor;
|
||||
V3_S2* FaceCursor;
|
||||
V3_S2* VertBase;
|
||||
U4* OtBase;
|
||||
};
|
||||
internal
|
||||
MipsAtom_(rbind_floor_f3_face) atom_info(atom_bind(Binds_FloorTri), atom_phase(floor_f3)
|
||||
, atom_reads(R_TapePtr)
|
||||
, atom_writes(R_PrimCursor, R_FaceCursor, R_VertBase, R_OtBase)
|
||||
){
|
||||
/* Pop 4 arguments from the tape directly into the workspace registers */
|
||||
load_word(R_PrimCursor, R_TapePtr, O_(Binds_FloorTri,PrimCursor)),
|
||||
load_word(R_FaceCursor, R_TapePtr, O_(Binds_FloorTri,FaceCursor)),
|
||||
load_word(R_VertBase, R_TapePtr, O_(Binds_FloorTri,VertBase)),
|
||||
load_word(R_OtBase, R_TapePtr, O_(Binds_FloorTri,OtBase)),
|
||||
add_ui_self( R_TapePtr, S_(Binds_FloorTri)),
|
||||
mac_yield()
|
||||
};
|
||||
|
||||
atom_dbg_skip
|
||||
internal
|
||||
MipsAtom_(floor_f3_face) atom_info(atom_phase(floor_f3)
|
||||
, atom_reads( R_PrimCursor, R_FaceCursor, R_VertBase, R_OtBase)
|
||||
, atom_writes(R_PrimCursor, R_FaceCursr)
|
||||
) {
|
||||
mac_load_tri_indices( R_T0, R_T1, R_T2),
|
||||
mac_gte_load_tri_verts(R_T0, R_T1, R_T2),
|
||||
nop2, gte_cmdw_rotate_translate_perspective_triple, // 2 nops retire the final cpu -> gte writes before RTPT
|
||||
gte_cmdw_nclip,
|
||||
|
||||
/* Culling (Branch forward if Backface) */
|
||||
gte_mv_from_data_r(R_T0, C2_MAC0),
|
||||
nop, branch_le_zero(R_T0, atom_offset(culling, floor_f3_face_exit)), nop, // required gte -> cpu load-delay slot.
|
||||
/* Format Primitive */
|
||||
mac_format_f3_color(0xFF, 0xFF, 0xFF), // RGB-form (R=FF, G=FF, B=FF = white)
|
||||
mac_gte_store_f3_post_rtpt(),
|
||||
|
||||
/* Calculate Depth */
|
||||
gte_avg_sort_z3,
|
||||
gte_mv_from_data_r(R_T1, C2_OTZ),
|
||||
/* Bounds Check OTZ < 2048 (Branch forward to skip insertion) */
|
||||
add_ui( R_AT, R_0, OrderingTbl_Len),
|
||||
set_lt_u( R_AT, R_T1, R_AT),
|
||||
branch_equal(R_AT, R_0, atom_offset(bounds_chk, floor_f3_face_exit)), nop,
|
||||
/* Insert into Ordering Table Linked List */
|
||||
mac_insert_ot_tag_f3(),
|
||||
add_ui_self(R_PrimCursor, S_(Poly_F3)), /* Advance Prim Cursor (5 words) */
|
||||
// Note(Ed): No bounds checking, should be checked before atom runs.
|
||||
|
||||
/* Advance Input Cursor & Yield (Both branch targets land here) */
|
||||
atom_label(floor_f3_face_exit)
|
||||
add_ui_self(R_FaceCursor, S_(S2) * 4), /* Advance Face Cursor (4 * S2 = 8 bytes) */
|
||||
mac_yield()
|
||||
};
|
||||
|
||||
typedef Struct_(Binds_SyncPrimitiveArena) { U4 used; U4 cursor; };
|
||||
internal MipsAtom_(sync_primitive_arena) atom_info(atom_bind(Binds_SyncPrimitiveArena)
|
||||
, atom_reads( R_TapePtr, R_PrimCursor)
|
||||
, atom_writes(R_TapePtr)
|
||||
){
|
||||
load_word(R_AT, R_TapePtr, O_(Binds_SyncPrimitiveArena,used)),
|
||||
load_word(R_T0, R_TapePtr, O_(Binds_SyncPrimitiveArena,cursor)),
|
||||
add_ui_self( R_TapePtr, S_(Binds_SyncPrimitiveArena)),
|
||||
/* Calculate byte offset and store directly back to RAM */
|
||||
sub_u( R_T0, R_PrimCursor, R_T0), // R_T0 = R_PrimCursor - binds.cursor
|
||||
store_word(R_T0, R_AT, 0), // R_AT[0] = R_T0
|
||||
mac_yield()
|
||||
};
|
||||
|
||||
#pragma endregion Baked Atoms
|
||||
@@ -0,0 +1,41 @@
|
||||
#ifdef INTELLISENSE_DIRECTIVES
|
||||
#pragma once
|
||||
#endif
|
||||
// Auto-generated by ps1_meta.lua — DO NOT EDIT
|
||||
// Directory: C:\projects\Pikuma\ps1\code\hello_camera/
|
||||
// source: C:\projects\Pikuma\ps1\code\hello_camera\hello_camera.c
|
||||
// source: C:\projects\Pikuma\ps1\code\hello_camera\hello_camera.h
|
||||
// source: C:\projects\Pikuma\ps1\code\hello_camera\hello_camera.atom.c
|
||||
// Component atoms (MipsAtomComp_(ac_*)) -> macro variants (mac_*)
|
||||
|
||||
#ifndef WORD_COUNT
|
||||
#define WORD_COUNT(name, count) enum { words_##name = (count) };
|
||||
#endif
|
||||
|
||||
#define mac_put_disp_env(reg_transfer, reg_base, port) \
|
||||
mac_gcmd_push(gp0_word_draw_area_top_left_origin, reg_transfer, reg_base, port) \
|
||||
, mac_gcmd_push(gp0_word_draw_area_bottom_right_320x240, reg_transfer, reg_base, port) \
|
||||
, mac_gcmd_push(gp0_word_set_mask_bit(), reg_transfer, reg_base, port) \
|
||||
, mac_gcmd_push(gp0_word_draw_area_top_left_origin, reg_transfer, reg_base, port) \
|
||||
, mac_gcmd_push(gp0_word_draw_area_bottom_right_320x240, reg_transfer, reg_base, port)
|
||||
WORD_COUNT(mac_put_disp_env, 5)
|
||||
|
||||
#define mac_put_draw_env(reg_transfer, reg_base, port) \
|
||||
mac_gcmd_push(gp0_dr_env_tag, reg_transfer, reg_base, port) /* tag (length=15 << 24, addr=0) — packet header for the DR_ENV sequence. The GPU needs this to recognize the next 15 words as a DR_ENV packet and trigger the isbg auto-clear. */ \
|
||||
, mac_gcmd_push(gp0_word_draw_mode_drawing_allowed, reg_transfer, reg_base, port) /* code[0] DrawMode (dfe=1, dtd=0, tpage=0) */ \
|
||||
, mac_gcmd_push(gp0_word_set_texture_window(), reg_transfer, reg_base, port) /* code[1] TextureWindow (tw=(0,0)) */ \
|
||||
, mac_gcmd_push(enc_gp0_draw_area_tl_word(0, ScreenRes_Y), reg_transfer, reg_base, port) /* code[2] DrawArea top-left (clip.x=0, clip.y=ScreenRes_Y=240) */ \
|
||||
, mac_gcmd_push(gp0_word_draw_area_bottom_right_320x240, reg_transfer, reg_base, port) /* code[3] DrawArea bottom-right (clip.x+w=320, clip.y+h=480) */ \
|
||||
, mac_gcmd_push(gp0_word_set_draw_offset(), reg_transfer, reg_base, port) /* code[4] DrawOffset (ofs=(0,0)) — bare-cmd word; the GPU uses the current state machine. */ \
|
||||
, mac_gcmd_push(gp0_word_dr_env_mask(), reg_transfer, reg_base, port) /* code[5] Mask (dtd=0, dfe=1, isbg=1) — 0xE6 cmd + isbg bit. */ \
|
||||
, mac_gcmd_push(gp0_word_dr_env_bg_color_cmd(1, 7, 7, 7), reg_transfer, reg_base, port) /* code[6] Initial-bg-color + auto-clear (isbg=1, r=7, g=7, b=7). */ \
|
||||
, mac_gcmd_push(gp0_word_dr_env_draw_mode(1), reg_transfer, reg_base, port) /* code[7] Re-assert DrawMode with isbg=1 (isbg-flag set; the 0xE1 cmd byte plus isbg only). */ /* code[8..10] Padding (NOP — GPU discards; the DR_ENV requires 16 words total). */ \
|
||||
, mac_gcmd_push(gp0_word_nop(), reg_transfer, reg_base, port) \
|
||||
, mac_gcmd_push(gp0_word_nop(), reg_transfer, reg_base, port) \
|
||||
, mac_gcmd_push(gp0_word_nop(), reg_transfer, reg_base, port) /* code[11..12] TextureWindow bottom-right (tw.x+tw.w=0, tw.y+tw.h=0) — libpsyx emits twice. */ \
|
||||
, mac_gcmd_push(gp0_word_set_texture_window(), reg_transfer, reg_base, port) \
|
||||
, mac_gcmd_push(gp0_word_set_texture_window(), reg_transfer, reg_base, port) /* code[13..14] Padding (NOP) — completes the 16-word packet. */ \
|
||||
, mac_gcmd_push(gp0_word_nop(), reg_transfer, reg_base, port) \
|
||||
, mac_gcmd_push(gp0_word_nop(), reg_transfer, reg_base, port)
|
||||
WORD_COUNT(mac_put_draw_env, 16)
|
||||
|
||||
@@ -0,0 +1,50 @@
|
||||
// Auto-generated by ps1_meta.lua (passes/offsets.lua) — DO NOT EDIT
|
||||
// Directory: C:\projects\Pikuma\ps1\code\hello_camera\
|
||||
// source: C:\projects\Pikuma\ps1\code\hello_camera\hello_camera.c
|
||||
// source: C:\projects\Pikuma\ps1\code\hello_camera\hello_camera.h
|
||||
// source: C:\projects\Pikuma\ps1\code\hello_camera\hello_camera.atom.c
|
||||
#pragma once
|
||||
|
||||
#pragma region hello_camera
|
||||
|
||||
|
||||
// --- atom: pad_apply_input (60 words) ---
|
||||
|
||||
#define _atom_offset_dpad_left_exit_dpad_left 6
|
||||
#define _atom_offset_dpad_right_exit_dpad_right 6
|
||||
#define _atom_offset_dead_zone_low_check_dead_low_active 8
|
||||
#define _atom_offset_dead_zone_high_check_dead_high_active 15
|
||||
#define _atom_offset_dead_zone_skip_exit_stick 24
|
||||
#define _atom_offset_end_low_exit_stick 12
|
||||
|
||||
enum {
|
||||
atom_offset_dpad_left_exit_dpad_left = _atom_offset_dpad_left_exit_dpad_left,
|
||||
atom_offset_dpad_right_exit_dpad_right = _atom_offset_dpad_right_exit_dpad_right,
|
||||
atom_offset_dead_zone_low_check_dead_low_active = _atom_offset_dead_zone_low_check_dead_low_active,
|
||||
atom_offset_dead_zone_high_check_dead_high_active = _atom_offset_dead_zone_high_check_dead_high_active,
|
||||
atom_offset_dead_zone_skip_exit_stick = _atom_offset_dead_zone_skip_exit_stick,
|
||||
atom_offset_end_low_exit_stick = _atom_offset_end_low_exit_stick,
|
||||
};
|
||||
|
||||
// --- atom: cube_g4_face (76 words) ---
|
||||
|
||||
#define _atom_offset_cull_cube_g4_face_exit 41
|
||||
#define _atom_offset_bounds_chk_cube_g4_face_exit 24
|
||||
|
||||
enum {
|
||||
atom_offset_cull_cube_g4_face_exit = _atom_offset_cull_cube_g4_face_exit,
|
||||
atom_offset_bounds_chk_cube_g4_face_exit = _atom_offset_bounds_chk_cube_g4_face_exit,
|
||||
};
|
||||
|
||||
// --- atom: floor_f3_face (58 words) ---
|
||||
|
||||
#define _atom_offset_culling_floor_f3_face_exit 25
|
||||
#define _atom_offset_bounds_chk_floor_f3_face_exit 16
|
||||
|
||||
enum {
|
||||
atom_offset_culling_floor_f3_face_exit = _atom_offset_culling_floor_f3_face_exit,
|
||||
atom_offset_bounds_chk_floor_f3_face_exit = _atom_offset_bounds_chk_floor_f3_face_exit,
|
||||
};
|
||||
|
||||
#pragma endregion hello_camera
|
||||
|
||||
@@ -0,0 +1,468 @@
|
||||
#ifdef INTELLISENSE_DIRECTIVES
|
||||
# pragma once
|
||||
# include "duffle/gen/macs.h"
|
||||
# include "duffle/gen/offsets.h"
|
||||
# include "duffle/dsl.atom.h"
|
||||
# include "duffle/lottes_tape.h"
|
||||
# include "duffle/mips.h"
|
||||
# include "duffle/gte.h"
|
||||
# include "duffle/gp.h"
|
||||
# include "duffle/pad.h"
|
||||
# include "duffle/word_count.metadata.h"
|
||||
# include "duffle/psyq.h"
|
||||
# include "duffle/math.atom.c"
|
||||
# include "duffle/mips.atom.c"
|
||||
# include "duffle/gte.atom.c"
|
||||
# include "duffle/gp.atom.c"
|
||||
# include "duffle/psyq.atom.c"
|
||||
# include "gen/offsets.h"
|
||||
# include "gen/macs.h"
|
||||
# include "hello_camera.h"
|
||||
#endif
|
||||
|
||||
ATOM_FILE_DEBUGGER_LINE_MARKER(hello_joypad_atom_c);
|
||||
|
||||
#pragma region MACs (Mips Atom components)
|
||||
|
||||
FI_ Slice_MipsCode ac_put_disp_env(U4 reg_transfer, U4 reg_base, U2 port)
|
||||
MipsAtomComp_Proc_(ac_put_disp_env, {
|
||||
// Emits 5 GP0 commands for buffer 0 (display_area = (0,0,320,240)).
|
||||
// Sequence per libpsyx PutDispEnv: DrawArea TL → DrawArea BR → Mask → DrawArea TL → DrawArea BR
|
||||
mac_gcmd_push(gp0_word_draw_area_top_left_origin, reg_transfer, reg_base, port),
|
||||
mac_gcmd_push(gp0_word_draw_area_bottom_right_320x240, reg_transfer, reg_base, port),
|
||||
mac_gcmd_push(gp0_word_set_mask_bit(), reg_transfer, reg_base, port),
|
||||
mac_gcmd_push(gp0_word_draw_area_top_left_origin, reg_transfer, reg_base, port),
|
||||
mac_gcmd_push(gp0_word_draw_area_bottom_right_320x240, reg_transfer, reg_base, port),
|
||||
})
|
||||
|
||||
FI_ Slice_MipsCode ac_put_draw_env(U4 reg_transfer, U4 reg_base, U2 port)
|
||||
MipsAtomComp_Proc_(ac_put_draw_env, {
|
||||
/*
|
||||
* ORIGIN: each code word corresponds to the EXACT value libpsyx's PutDrawEnv function would compute for the same DrawEnv settings.
|
||||
* References:
|
||||
* - libpsyx source: `toolchain/psyq-4_7/lib/libgpu.a` (binary, function `PutDrawEnv`)
|
||||
* - PSX-SPX doc: https://problemkaputt.de/psx-spx.htm#gputdrawingcommands
|
||||
* - PSYQ SDK: `setdrawenv` / `makelongdr_env` source
|
||||
* - NOCASH PSX spec: §"GP0(E1h) Draw Mode setting" through §"DR_ENV"
|
||||
*
|
||||
* The 16-word format is documented in the PSYQ SDK manual and on NOCASH's PSX-spec.txt. The libpsyx reference is at:
|
||||
* ./toolchain/psyq-4_7/lib/libgpu.a
|
||||
* (binary; the PutDrawEnv implementation builds the 16-word DR_ENV from the user's DRAWENV struct and emits it via GP0 GPU commands.)
|
||||
*
|
||||
* Word indices (libpsyx PutDrawEnv / SetDrawEnv order):
|
||||
* tag = (length << 24) | addr — 16-word packet (1 tag + 15 code)
|
||||
* code[0] = DrawMode (dfe=1, dtd=0, tpage=0) — must come first per libpsyx
|
||||
* code[1] = TextureWindow (tw=(0,0)) — bare-cmd word; GPU uses current state
|
||||
* code[2] = DrawArea top-left (clip.x=0, clip.y=240)
|
||||
* code[3] = DrawArea bottom-right (clip.x+w=320, clip.y+h=480)
|
||||
* code[4] = DrawOffset (ofs=(0,0)) — bare-cmd word
|
||||
* code[5] = Mask (dtd=0, dfe=1, isbg=1) — 0xE6 cmd + isbg bit
|
||||
* code[6] = Initial-bg-color (isbg=1, r=7, g=7, b=7)
|
||||
* code[7] = DrawMode (isbg=1, tpage=0) — re-asserts DrawMode with isbg
|
||||
* code[8..10] = padding (NOP) — 3 words to fill the packet
|
||||
* code[11..12] = TextureWindow bottom-right — defaults to (0,0,0,0)
|
||||
* code[13..14] = padding (NOP) — completes the 16-word packet
|
||||
*/
|
||||
mac_gcmd_push(gp0_dr_env_tag, reg_transfer, reg_base, port), /* tag (length=15 << 24, addr=0) — packet header for the DR_ENV sequence. The GPU needs this to recognize the next 15 words as a DR_ENV packet and trigger the isbg auto-clear. */
|
||||
mac_gcmd_push(gp0_word_draw_mode_drawing_allowed, reg_transfer, reg_base, port), /* code[0] DrawMode (dfe=1, dtd=0, tpage=0) */
|
||||
mac_gcmd_push(gp0_word_set_texture_window(), reg_transfer, reg_base, port), /* code[1] TextureWindow (tw=(0,0)) */
|
||||
mac_gcmd_push(enc_gp0_draw_area_tl_word(0, ScreenRes_Y), reg_transfer, reg_base, port), /* code[2] DrawArea top-left (clip.x=0, clip.y=ScreenRes_Y=240) */
|
||||
mac_gcmd_push(gp0_word_draw_area_bottom_right_320x240, reg_transfer, reg_base, port), /* code[3] DrawArea bottom-right (clip.x+w=320, clip.y+h=480) */
|
||||
|
||||
mac_gcmd_push(gp0_word_set_draw_offset(), reg_transfer, reg_base, port), /* code[4] DrawOffset (ofs=(0,0)) — bare-cmd word; the GPU uses the current state machine. */
|
||||
mac_gcmd_push(gp0_word_dr_env_mask(), reg_transfer, reg_base, port), /* code[5] Mask (dtd=0, dfe=1, isbg=1) — 0xE6 cmd + isbg bit. */
|
||||
mac_gcmd_push(gp0_word_dr_env_bg_color_cmd(1, 7, 7, 7), reg_transfer, reg_base, port), /* code[6] Initial-bg-color + auto-clear (isbg=1, r=7, g=7, b=7). */
|
||||
mac_gcmd_push(gp0_word_dr_env_draw_mode(1), reg_transfer, reg_base, port), /* code[7] Re-assert DrawMode with isbg=1 (isbg-flag set; the 0xE1 cmd byte plus isbg only). */
|
||||
|
||||
/* code[8..10] Padding (NOP — GPU discards; the DR_ENV requires 16 words total). */
|
||||
mac_gcmd_push(gp0_word_nop(), reg_transfer, reg_base, port),
|
||||
mac_gcmd_push(gp0_word_nop(), reg_transfer, reg_base, port),
|
||||
mac_gcmd_push(gp0_word_nop(), reg_transfer, reg_base, port),
|
||||
|
||||
/* code[11..12] TextureWindow bottom-right (tw.x+tw.w=0, tw.y+tw.h=0) — libpsyx emits twice. */
|
||||
mac_gcmd_push(gp0_word_set_texture_window(), reg_transfer, reg_base, port),
|
||||
mac_gcmd_push(gp0_word_set_texture_window(), reg_transfer, reg_base, port),
|
||||
|
||||
/* code[13..14] Padding (NOP) — completes the 16-word packet. */
|
||||
mac_gcmd_push(gp0_word_nop(), reg_transfer, reg_base, port),
|
||||
mac_gcmd_push(gp0_word_nop(), reg_transfer, reg_base, port),
|
||||
})
|
||||
|
||||
#pragma endregion MACs
|
||||
|
||||
#pragma region Baked Atoms
|
||||
|
||||
enum {
|
||||
R_ScreenX = R_T5 atom_reg atom_type(U2),
|
||||
R_ScreenY = R_T6 atom_reg atom_type(U2),
|
||||
R_ScreenBuf = R_T7 atom_reg, /* Caller-pinned: & smem.screen_buf */
|
||||
#define R_ScreenBuf_Code R_T7_Code
|
||||
};
|
||||
//screen_env_init. Mirrors the libpsyx's SetDefDispEnv + SetDefDrawEnv + the manual enable_auto_clear / initial_bg_color writes.
|
||||
internal MipsAtom_(screen_env_init) atom_info(atom_phase(screen_init)
|
||||
, atom_reads(R_T0, R_ScreenX, R_ScreenY, R_ScreenBuf)
|
||||
, atom_writes(R_T0, R_ScreenX, R_ScreenY)
|
||||
) {
|
||||
/* display[0] = (0, 0, 320, 240); rest of struct zeroed. */
|
||||
add_ui(R_ScreenX, R_0, ScreenRes_X), add_ui(R_ScreenY, R_0, ScreenRes_Y),
|
||||
mac_store_v2s2(R_ScreenX, R_ScreenY, R_ScreenBuf, O_(DisplayEnv,display_area.width) + OA_(DoubleBuffer,display,0)),
|
||||
store_word(R_0, R_ScreenBuf, O_(DisplayEnv,display_area) + OA_(DoubleBuffer,display,0)),
|
||||
store_word(R_0, R_ScreenBuf, O_(DisplayEnv,screen) + OA_(DoubleBuffer,display,0)),
|
||||
store_word(R_0, R_ScreenBuf, O_(DisplayEnv,vinterlace) + OA_(DoubleBuffer,display,0)),
|
||||
|
||||
/* display[1] = (0, 240, 320, 240); rest of struct zeroed. */
|
||||
mac_store_rects2(R_0, R_ScreenY, R_ScreenX, R_ScreenY, R_ScreenBuf, O_(DisplayEnv,display_area) + OA_(DoubleBuffer,display,1)),
|
||||
store_word(R_0, R_ScreenBuf, O_(DisplayEnv,screen) + OA_(DoubleBuffer,display,1)),
|
||||
store_word(R_0, R_ScreenBuf, O_(DisplayEnv,vinterlace) + OA_(DoubleBuffer,display,1)),
|
||||
|
||||
mac_store_rects2(R_0, R_ScreenY, R_ScreenX, R_ScreenY, R_ScreenBuf, O_(DrawEnv,clip_area) + OA_(DoubleBuffer,draw,0)), /* draw[0].clip_area = (0, 240, 320, 240). C11's SetDefDrawEnv writes clip.y = y_arg. */
|
||||
mac_store_v2s2( R_0, R_ScreenY, R_ScreenBuf, O_(DrawEnv,drawing_offset[0]) + OA_(DoubleBuffer,draw,0)), /* draw[0].drawing_offset[0] = (0, 240); C11 passes y_arg as ofs. */
|
||||
|
||||
mac_store_v2s2(R_ScreenX, R_ScreenY, R_ScreenBuf, O_(DrawEnv,clip_area.width) + OA_(DoubleBuffer,draw,1)),
|
||||
|
||||
/* draw[0].texture_window = (0, 0, 0, 0); two word-zeroes cover the full 8-byte tw field. */
|
||||
store_word(R_0, R_ScreenBuf, O_(DrawEnv,texture_window.x) + OA_(DoubleBuffer,draw,0)),
|
||||
store_word(R_0, R_ScreenBuf, O_(DrawEnv,texture_window.width) + OA_(DoubleBuffer,draw,0)),
|
||||
|
||||
store_word(R_0, R_ScreenBuf, O_(DrawEnv,drawing_offset[0].x) + OA_(DoubleBuffer,draw,1)),
|
||||
store_word(R_0, R_ScreenBuf, O_(DrawEnv,texture_window.x) + OA_(DoubleBuffer,draw,1)),
|
||||
store_word(R_0, R_ScreenBuf, O_(DrawEnv,texture_window.width) + OA_(DoubleBuffer,draw,1)),
|
||||
|
||||
/* draw[0].texture_page = 10 (gp0_tpage_default). C11 SetDefDrawEnv at C11_only.elf:0x8001273C writes the same 0x0A. . */
|
||||
add_ui(R_T0, R_0, gp0_tpage_default),
|
||||
store_half(R_T0, R_ScreenBuf, O_(DrawEnv,texture_page) + OA_(DoubleBuffer,draw,0)),
|
||||
store_half(R_T0, R_ScreenBuf, O_(DrawEnv,texture_page) + OA_(DoubleBuffer,draw,1)),
|
||||
|
||||
/* draw[0] control bytes: flag_dither=1, flag_draw_on_display=1 (the dfe bit per psx-spx; libpsyx sets it via `SetDefDrawEnv`'s conditional at C11_only.elf:0x80012728), enable_auto_clear=1. Each byte is named;
|
||||
* the previous `store_word(R_0, ..., +20)` overwrote all four with zero. */
|
||||
add_ui(R_T0, R_0, 1),
|
||||
store_byte(R_T0, R_ScreenBuf, O_(DrawEnv,flag_dither) + OA_(DoubleBuffer,draw,0)),
|
||||
store_byte(R_T0, R_ScreenBuf, O_(DrawEnv,flag_draw_on_display) + OA_(DoubleBuffer,draw,0)),
|
||||
store_byte(R_T0, R_ScreenBuf, O_(DrawEnv,enable_auto_clear) + OA_(DoubleBuffer,draw,0)),
|
||||
store_byte(R_T0, R_ScreenBuf, O_(DrawEnv,flag_dither) + OA_(DoubleBuffer,draw,1)),
|
||||
store_byte(R_T0, R_ScreenBuf, O_(DrawEnv,flag_draw_on_display) + OA_(DoubleBuffer,draw,1)),
|
||||
store_byte(R_T0, R_ScreenBuf, O_(DrawEnv,enable_auto_clear) + OA_(DoubleBuffer,draw,1)),
|
||||
|
||||
/* draw[0].initial_bg_color = (r=7, g=7, b=7). */
|
||||
add_ui(R_T0, R_0, 7),
|
||||
mac_store_rgb8(R_T0,R_T0,R_T0, R_ScreenBuf, O_(DrawEnv,initial_bg_color) + OA_(DoubleBuffer,draw,0)),
|
||||
mac_store_rgb8(R_T0,R_T0,R_T0, R_ScreenBuf, O_(DrawEnv,initial_bg_color) + OA_(DoubleBuffer,draw,1)),
|
||||
|
||||
mac_yield(),
|
||||
};
|
||||
|
||||
enum {
|
||||
R_IO_BaseAddr = R_T4 atom_reg, /* Caller-pinned: IO_BASE_ADDR = 0x1F800000 */
|
||||
#define R_IO_BaseAddr_Code R_T4_Code
|
||||
};
|
||||
internal MipsAtom_(gp_screen_init) atom_info(atom_phase(screen_init), atom_reads(R_IO_BaseAddr)) {
|
||||
store_word(R_0, R_IO_BaseAddr, GPIO_PORT1_OFFSET), /* GP1(00h) Reset */
|
||||
mac_gcmd_push(gp1_word_ResetCmdBuffer(), R_T5, R_IO_BaseAddr, GPIO_PORT1_OFFSET), /* GP1(01h) ClearFIFO */
|
||||
mac_gcmd_push(gp1_word_AcknowledgeIRQ(), R_T5, R_IO_BaseAddr, GPIO_PORT1_OFFSET), /* GP1(02h) AckIRQ */
|
||||
mac_gcmd_push(gp1_word_DisplayOn(), R_T5, R_IO_BaseAddr, GPIO_PORT1_OFFSET), /* GP1(03h) Display ON */
|
||||
mac_gcmd_push(gp1_word_dma_to_gpu(), R_T5, R_IO_BaseAddr, GPIO_PORT1_OFFSET), /* GP1(04h) DMADirection=2 (CPU→GPU). libpsyx's per-frame PutDrawEnv/DrawOTag use DMA2; without this the DMA queue never drains. */
|
||||
mac_gcmd_push(gp1_word_StartDisplayArea(), R_T5, R_IO_BaseAddr, GPIO_PORT1_OFFSET), /* GP1(05h) StartDisplayArea (X=0, Y=0) */
|
||||
|
||||
/* GP1: DisplayMode + Display Ranges */
|
||||
mac_gcmd_push(gp1_word_display_mode_320x240_15bit_ntsc, R_T5, R_IO_BaseAddr, GPIO_PORT1_OFFSET),
|
||||
mac_gcmd_push(gp1_word_horizontal_range_ntsc, R_T5, R_IO_BaseAddr, GPIO_PORT1_OFFSET),
|
||||
mac_gcmd_push(gp1_word_vertical_range_ntsc, R_T5, R_IO_BaseAddr, GPIO_PORT1_OFFSET),
|
||||
|
||||
/* GTE: SetGeomOffset (OFX, OFY) — ScreenRes_CenterX, ScreenRes_CenterY. */
|
||||
load_upper_i(R_T5, ScreenRes_CenterX), gte_mv_to_ctrl_r(R_T5, gte_cr_OFX_Code),
|
||||
load_upper_i(R_T5, ScreenRes_CenterY), gte_mv_to_ctrl_r(R_T5, gte_cr_OFY_Code),
|
||||
|
||||
/* GTE: SetGeomScreen (H) — CR26 (per PSX-SPX / libpsyx), value is the raw projection-plane distance, NOT shifted. */
|
||||
add_ui(R_T5, R_0, ScreenZ), gte_mv_to_ctrl_r(R_T5, gte_cr_H_Code),
|
||||
|
||||
/* GP1: DisplayEnable — bit 0 = 0 (Display ON). */
|
||||
mac_gcmd_push(gp1_word_DisplayOn(), R_T5, R_IO_BaseAddr, GPIO_PORT1_OFFSET),
|
||||
mac_yield(),
|
||||
};
|
||||
|
||||
/* ----- pad_apply_input -----
|
||||
* Reads pad[0].buttons + pad[0].left_x;
|
||||
* Applies the input-semantics deltas to cube_rot.y + floor_rot.y:
|
||||
* - D-pad Left: cube_rot.y += 30, floor_rot.y += 5
|
||||
* - D-pad Right: cube_rot.y -= 30, floor_rot.y -= 5
|
||||
* - Analog stick X (dead zone 0x70..0x90):
|
||||
* cube delta = (0x80 - left_x) >> 2 (range approx -32..+32)
|
||||
* floor delta = (0x80 - left_x) >> 5 (range approx -4..+4)
|
||||
* - D-pad + analog deltas add when used together.
|
||||
*
|
||||
* Convention:
|
||||
* pad_state = 0 means no buttons active.
|
||||
* The fail-safe zero-button value flows through unchanged, so a disconnected/fresh pad produces no rotation.
|
||||
* The branch_le_zero pattern below matches the existing pad_input_demo convention (atom body lines 248/257).
|
||||
*
|
||||
* Signed-delta trick:
|
||||
* load_byte_u zero-extends left_x to 32 bits; sub_u from 0x80 wraps to a SIGNED two's-complement value in the negative range;
|
||||
* shift_aright (sra) then correctly sign-extends the shift for both positive (left_x < 0x80) and negative (left_x > 0x80) cases.
|
||||
* Digital pads publish left_x = 0x80 → delta = 0 → no rotation, so the analog step is naturally a no-op for digital controllers.
|
||||
*/
|
||||
typedef Struct_(Binds_PadApplyInput) {
|
||||
PadState* state;
|
||||
V3_S2* cube_rot;
|
||||
V3_S2* floor_rot;
|
||||
};
|
||||
enum {
|
||||
R_PadStateT5 = R_T5 atom_reg,
|
||||
R_CubeRot = R_T1 atom_reg,
|
||||
R_FloorRot = R_T2 atom_reg,
|
||||
};
|
||||
internal MipsAtom_(pad_apply_input) atom_info(atom_bind(Binds_PadApplyInput)
|
||||
, atom_reads(R_T0, R_CubeRot, R_FloorRot, R_T3, R_T4, R_PadStateT5, R_TapePtr)
|
||||
, atom_writes( R_CubeRot, R_FloorRot)
|
||||
) {
|
||||
/* Pop Binds from tape (state, cube_rot, floor_rot) */
|
||||
load_word(R_PadStateT5, R_TapePtr, O_(Binds_PadApplyInput,state)),
|
||||
load_word(R_CubeRot, R_TapePtr, O_(Binds_PadApplyInput,cube_rot)),
|
||||
load_word(R_FloorRot, R_TapePtr, O_(Binds_PadApplyInput,floor_rot)),
|
||||
add_ui_self( R_TapePtr, S_(Binds_PadApplyInput)),
|
||||
|
||||
/* Load pad[0].buttons into R_T0. */
|
||||
load_word(R_T0, R_PadStateT5, O_(PadState,buttons)), nop,
|
||||
// Note(Ed): Potential op with delay slot?
|
||||
|
||||
/* D-pad Left: cube_rot.y += 30, floor_rot.y += 5. */
|
||||
and_i(R_T3, R_T0, pad0_(Pad_Left)), branch_le_zero(R_T3, atom_offset(dpad_left, exit_dpad_left)),
|
||||
load_half( R_T4, R_CubeRot, O_(V3_S2,y)), /* BD-slot */
|
||||
load_half( R_T3, R_FloorRot, O_(V3_S2,y)),
|
||||
add_si( R_T4, R_T4, 30),
|
||||
add_si( R_T3, R_T3, 5),
|
||||
store_half(R_T4, R_CubeRot, O_(V3_S2,y)),
|
||||
store_half(R_T3, R_FloorRot, O_(V3_S2,y)),
|
||||
atom_label(exit_dpad_left)
|
||||
|
||||
/* D-pad Right: cube_rot.y -= 30, floor_rot.y -= 5. */
|
||||
and_i(R_T3, R_T0, pad0_(Pad_Right)), branch_le_zero(R_T3, atom_offset(dpad_right, exit_dpad_right)),
|
||||
load_half( R_T4, R_CubeRot, O_(V3_S2,y)), /* BD-slot */
|
||||
load_half( R_T3, R_FloorRot, O_(V3_S2,y)),
|
||||
add_si( R_T4, R_T4, -30),
|
||||
add_si( R_T3, R_T3, -5),
|
||||
store_half(R_T4, R_CubeRot, O_(V3_S2,y)),
|
||||
store_half(R_T3, R_FloorRot, O_(V3_S2,y)),
|
||||
atom_label(exit_dpad_right)
|
||||
|
||||
/* Analog left-stick X: dead zone 0x70..0x90.
|
||||
* Cube delta = (0x80 - left_x) >> 2; floor delta = (0x80 - left_x) >> 5. */
|
||||
load_byte_u(R_T3, R_PadStateT5, O_(PadState,left_x)),
|
||||
|
||||
/* Dead-zone check: skip analog if left_x in [0x70, 0x90] inclusive. Outside dead zone on LOW side: left_x < 0x70 (strictly).
|
||||
* set_lt_u(R_T4, R_T3, R_T4=0x70) → R_T4 = (left_x < 0x70) ? 1 : 0. */
|
||||
add_ui(R_T4, R_0, 0x70), set_lt_u(R_T4, R_T3, R_T4), branch_ne(R_T4, R_0, atom_offset(dead_zone_low_check, dead_low_active)),
|
||||
add_ui(R_T4, R_0, 0x80), /* BD-slot: pre-load 0x80 for dead_low_active */
|
||||
|
||||
atom_label(dead_check_upper)
|
||||
/* left_x >= 0x70 → check upper bound. */
|
||||
load_byte_u(R_T3, R_PadStateT5, O_(PadState,left_x)), /* reload */
|
||||
add_ui( R_T4, R_0, 0x90),
|
||||
|
||||
/* R_T4 = (0x90 < left_x) ? 1 : 0 → (left_x > 0x90) ? 1 : 0 */
|
||||
set_lt_u(R_T4, R_T4, R_T3), branch_ne(R_T4, R_0, atom_offset(dead_zone_high_check, dead_high_active)),
|
||||
add_ui( R_T4, R_0, 0x80), /* BD-slot: pre-load 0x80 for dead_high_active */
|
||||
jump_rel(atom_offset(dead_zone_skip, exit_stick)),
|
||||
mac_yield_load(),
|
||||
|
||||
atom_label(dead_low_active)
|
||||
/* R_T3 = left_x (from line 632 lbu; not clobbered between dead_zone_low_check branch + its BD-slot `add_ui R_T4, 0x80`).
|
||||
* The earlier `load_byte_u(R_T3, ...)` reload was redundant and introduced a load-use hazard on the next `sub_u`.
|
||||
* R_T4 = 0x80 from the BD-slot of `dead_zone_low_check`'s branch_ne. */
|
||||
sub_u( R_T3, R_T4, R_T3), /* R_T3 = 0x80 - left_x */
|
||||
/* delta = 0x80 - left_x (positive). */
|
||||
|
||||
/* R_T4 = cube_delta */
|
||||
shift_aright(R_T4, R_T3, 2),
|
||||
load_half( R_T0, R_CubeRot, O_(V3_S2,y)),
|
||||
nop,
|
||||
add_u( R_T0, R_T0, R_T4),
|
||||
store_half( R_T0, R_CubeRot, O_(V3_S2,y)),
|
||||
/* R_T4 = floor_delta — moved into the load-delay slot of the floor load below (fills the 1-instruction gap;
|
||||
* doesn't read R_T0; R_T4 settles by the subsequent add_u). */
|
||||
load_half( R_T0, R_FloorRot, O_(V3_S2,y)),
|
||||
shift_aright(R_T4, R_T3, 5),
|
||||
add_u( R_T0, R_T0, R_T4),
|
||||
store_half( R_T0, R_FloorRot, O_(V3_S2,y)),
|
||||
|
||||
jump_rel(atom_offset(end_low, exit_stick)),
|
||||
mac_yield_load(),
|
||||
|
||||
atom_label(dead_high_active)
|
||||
/* R_T3 = left_x (from line 641 lbu in dead_check_upper; not clobbered between dead_zone_high_check branch + its BD-slot `add_ui R_T4, 0x80`).
|
||||
* The earlier `load_byte_u(R_T3, ...)` reload was redundant and introduced a load-use hazard on the next `sub_u`.
|
||||
* R_T4 = 0x80 from the BD-slot of `dead_zone_high_check`'s branch_ne. */
|
||||
sub_u( R_T3, R_T4, R_T3),
|
||||
/* delta = 0x80 - left_x (signed negative). */
|
||||
|
||||
shift_aright(R_T4, R_T3, 2), /* R_T4 = cube_delta (signed) */
|
||||
load_half( R_T0, R_CubeRot, O_(V3_S2,y)),
|
||||
nop,
|
||||
add_u( R_T0, R_T0, R_T4),
|
||||
store_half( R_T0, R_CubeRot, O_(V3_S2,y)),
|
||||
|
||||
/* R_T4 = floor_delta (signed) — moved into the load-delay slot of the floor load below. */
|
||||
load_half( R_T0, R_FloorRot, O_(V3_S2,y)),
|
||||
shift_aright(R_T4, R_T3, 5),
|
||||
add_u( R_T0, R_T0, R_T4),
|
||||
store_half( R_T0, R_FloorRot, O_(V3_S2,y)),
|
||||
|
||||
atom_label(no_jump_fallthrough)
|
||||
mac_yield_load(),
|
||||
|
||||
atom_label(exit_stick)
|
||||
/* NOT mac_yield() — R_AtomJmp was already loaded in the BD-slot of the dead-zone/exit branch. */
|
||||
mac_yield_tail(),
|
||||
};
|
||||
|
||||
enum {
|
||||
R_PrimCursor = R_T7 atom_reg atom_type(U4*), /* VRAM output cursor (primitive buffer) */
|
||||
R_FaceCursor = R_T4 atom_reg atom_type(V4_S2*), /* Cube face-index cursor (V4_S2*); floor context switches to V3_S2* via atom_phase */
|
||||
R_VertBase = R_T5 atom_reg atom_type(V3_S2*), /* Base address of the vertex array */
|
||||
R_OtBase = R_T6 atom_reg atom_type(U4*), /* Base address of the Ordering Table */
|
||||
#define R_PrimCursor_Code R_T7_Code
|
||||
#define R_FaceCursor_Code R_T4_Code
|
||||
#define R_VertBase_Code R_T5_Code
|
||||
#define R_OtBase_Code R_T6_Code
|
||||
};
|
||||
|
||||
typedef Struct_(Binds_CubeTri) {
|
||||
U4 PrimCursor;
|
||||
V4_S2* FaceCursor;
|
||||
V3_S2* VertBase;
|
||||
U4* OtBase;
|
||||
};
|
||||
internal MipsAtom_(rbind_cube_g4_face) atom_info(atom_bind(Binds_CubeTri), atom_phase(cube_g4)
|
||||
, atom_reads(R_TapePtr)
|
||||
, atom_writes(R_PrimCursor, R_FaceCursor, R_VertBase, R_OtBase, R_TapePtr)
|
||||
){
|
||||
/* Pop 4 arguments from the tape directly into the workspace registers */
|
||||
load_word(R_PrimCursor, R_TapePtr, O_(Binds_CubeTri,PrimCursor)),
|
||||
load_word(R_FaceCursor, R_TapePtr, O_(Binds_CubeTri,FaceCursor)),
|
||||
load_word(R_VertBase, R_TapePtr, O_(Binds_CubeTri,VertBase)),
|
||||
load_word(R_OtBase, R_TapePtr, O_(Binds_CubeTri,OtBase)),
|
||||
add_ui_self( R_TapePtr, S_(Binds_CubeTri)),
|
||||
mac_yield()
|
||||
};
|
||||
|
||||
// cube_g4_face — Draw one cube face (Gouraud-shaded quad) via the GTE tape pipeline
|
||||
internal
|
||||
MipsAtom_(cube_g4_face) atom_info(atom_phase(cube_g4),
|
||||
atom_reads( R_PrimCursor, R_FaceCursor, R_VertBase, R_OtBase),
|
||||
atom_writes(R_PrimCursor, R_FaceCursor)
|
||||
){
|
||||
load_half_u(R_T0, R_FaceCursor, 0 * S_(S2)),
|
||||
load_half_u(R_T1, R_FaceCursor, 1 * S_(S2)),
|
||||
load_half_u(R_T2, R_FaceCursor, 2 * S_(S2)),
|
||||
load_half_u(R_T3, R_FaceCursor, 3 * S_(S2)),
|
||||
|
||||
mac_gte_load_tri_verts(R_VertBase, R_T0, R_T1, R_T2),
|
||||
nop2, gte_cmdw_rotate_translate_perspective_triple, // required cpu -> gte delay slot
|
||||
gte_cmdw_nclip,
|
||||
|
||||
gte_mv_from_data_r(R_T0, C2_MAC0), nop,
|
||||
branch_le_zero(R_T0, atom_offset(cull, cube_g4_face_exit)),
|
||||
/* BD-slot: write the prim tag (R_0=0; overwrites the legacy tag word in the prim_buffer).
|
||||
* If branch IS taken (face culled), the body is skipped and this 0-tag is stranded —
|
||||
* harmless because the OT entry that points to this prim is created later, only on the body path. */
|
||||
store_word(R_0, R_PrimCursor, O_(Poly_G4, tag)),
|
||||
shift_lleft(R_AT, R_T3, v3s2_byteoff), add_u(R_AT, R_AT, R_VertBase),
|
||||
load_word(R_V0, R_AT, O_(V3_S2, x)), load_word(R_V1, R_AT, O_(V3_S2, z)),
|
||||
gte_mv_to_data_r(R_V0, C2_VXY0), gte_mv_to_data_r(R_V1, C2_VZ0),
|
||||
|
||||
mac_gte_store_g4_p012(R_PrimCursor),
|
||||
gte_cmdw_rotate_translate_perspective_single,
|
||||
mac_gte_store_g4_p3(R_PrimCursor),
|
||||
|
||||
gte_cmdw_avg_sort_z4,
|
||||
gte_mv_from_data_r(R_T1, C2_OTZ),
|
||||
add_ui( R_AT, R_0, OrderingTbl_Len),
|
||||
set_lt_u( R_AT, R_T1, R_AT),
|
||||
|
||||
branch_equal(R_AT, R_0, atom_offset(bounds_chk, cube_g4_face_exit)), nop,
|
||||
mac_insert_ot_tag_g4(R_OtBase, R_PrimCursor),
|
||||
mac_format_g4_color(R_PrimCursor,
|
||||
/* c0 magenta */ 0xFF, 0x00, 0xFF,
|
||||
/* c1 yellow */ 0xFF, 0xFF, 0x00,
|
||||
/* c2 cyan */ 0x00, 0xFF, 0xFF,
|
||||
/* c3 green */ 0x00, 0xFF, 0x00),
|
||||
// end: branch(bounds_chk)
|
||||
// end: branch(cull)
|
||||
|
||||
atom_label(cube_g4_face_exit)
|
||||
add_ui_self(R_PrimCursor, S_(Poly_G4)), /* 9 words = Poly_G4 */
|
||||
add_ui_self(R_FaceCursor, S_(S2) * 4), /* 4 × S2 = 8 bytes */
|
||||
mac_yield()
|
||||
};
|
||||
|
||||
typedef Struct_(Binds_FloorTri) {
|
||||
U4 PrimCursor;
|
||||
V3_S2* FaceCursor;
|
||||
V3_S2* VertBase;
|
||||
U4* OtBase;
|
||||
};
|
||||
internal
|
||||
MipsAtom_(rbind_floor_f3_face) atom_info(atom_bind(Binds_FloorTri), atom_phase(floor_f3)
|
||||
, atom_reads(R_TapePtr)
|
||||
, atom_writes(R_PrimCursor, R_FaceCursor, R_VertBase, R_OtBase, R_TapePtr)
|
||||
){
|
||||
/* Pop 4 arguments from the tape directly into the workspace registers */
|
||||
load_word(R_PrimCursor, R_TapePtr, O_(Binds_FloorTri,PrimCursor)),
|
||||
load_word(R_FaceCursor, R_TapePtr, O_(Binds_FloorTri,FaceCursor)),
|
||||
load_word(R_VertBase, R_TapePtr, O_(Binds_FloorTri,VertBase)),
|
||||
load_word(R_OtBase, R_TapePtr, O_(Binds_FloorTri,OtBase)),
|
||||
add_ui_self( R_TapePtr, S_(Binds_FloorTri)),
|
||||
mac_yield()
|
||||
};
|
||||
|
||||
// atom_dbg_skip
|
||||
internal
|
||||
MipsAtom_(floor_f3_face) atom_info(atom_phase(floor_f3)
|
||||
, atom_reads( R_PrimCursor, R_FaceCursor, R_VertBase, R_OtBase)
|
||||
, atom_writes(R_PrimCursor, R_FaceCursor)
|
||||
) {
|
||||
mac_load_tri_indices( R_FaceCursor, R_T0, R_T1, R_T2),
|
||||
mac_gte_load_tri_verts(R_VertBase, R_T0, R_T1, R_T2),
|
||||
nop2, gte_cmdw_rotate_translate_perspective_triple, // 2 nops retire the final cpu -> gte writes before RTPT
|
||||
gte_cmdw_nclip,
|
||||
|
||||
/* Culling (Branch forward if Backface) */
|
||||
gte_mv_from_data_r(R_T0, C2_MAC0),
|
||||
nop, branch_le_zero(R_T0, atom_offset(culling, floor_f3_face_exit)), nop, // required gte -> cpu load-delay slot.
|
||||
/* Format Primitive */
|
||||
mac_gte_store_f3(R_PrimCursor),
|
||||
|
||||
/* Calculate Depth */
|
||||
gte_avg_sort_z3,
|
||||
gte_mv_from_data_r(R_T1, C2_OTZ),
|
||||
/* Bounds Check OTZ < 2048 (Branch forward to skip insertion) */
|
||||
add_ui( R_AT, R_0, OrderingTbl_Len),
|
||||
set_lt_u( R_AT, R_T1, R_AT),
|
||||
branch_equal(R_AT, R_0, atom_offset(bounds_chk, floor_f3_face_exit)), nop,
|
||||
mac_format_f3_color(R_PrimCursor, 0xFF, 0xFF, 0xFF), // RGB-form (R=FF, G=FF, B=FF = white)
|
||||
mac_insert_ot_tag_f3(R_OtBase, R_PrimCursor), /* Insert into Ordering Table Linked List */
|
||||
add_ui_self(R_PrimCursor, S_(Poly_F3)), /* Advance Prim Cursor (5 words) */
|
||||
// Note(Ed): No bounds checking, should be checked before atom runs.
|
||||
// end: branch(bounds_chk)
|
||||
// end: branch(culling)
|
||||
|
||||
/* Advance Input Cursor & Yield (Both branch targets land here) */
|
||||
atom_label(floor_f3_face_exit)
|
||||
add_ui_self(R_FaceCursor, S_(S2) * 4), /* Advance Face Cursor (4 * S2 = 8 bytes) */
|
||||
mac_yield()
|
||||
};
|
||||
|
||||
typedef Struct_(Binds_SyncPrimitiveArena) { U4 used; U4 cursor; };
|
||||
internal MipsAtom_(sync_primitive_arena) atom_info(atom_bind(Binds_SyncPrimitiveArena)
|
||||
, atom_reads( R_TapePtr, R_PrimCursor)
|
||||
, atom_writes(R_TapePtr)
|
||||
){
|
||||
load_word(R_AT, R_TapePtr, O_(Binds_SyncPrimitiveArena,used)),
|
||||
load_word(R_T0, R_TapePtr, O_(Binds_SyncPrimitiveArena,cursor)),
|
||||
add_ui_self( R_TapePtr, S_(Binds_SyncPrimitiveArena)),
|
||||
/* Calculate byte offset and store directly back to RAM */
|
||||
sub_u( R_T0, R_PrimCursor, R_T0), // R_T0 = R_PrimCursor - binds.cursor
|
||||
store_word(R_T0, R_AT, 0), // R_AT[0] = R_T0
|
||||
mac_yield()
|
||||
};
|
||||
|
||||
#pragma endregion Baked Atoms
|
||||
@@ -0,0 +1,336 @@
|
||||
#pragma region Vendors
|
||||
#include <stdio.h>
|
||||
#include <stdlib.h>
|
||||
#include <assert.h>
|
||||
// #include "libgpu.h"
|
||||
// #include "libetc.h"
|
||||
// #include "libgte.h"
|
||||
#pragma endregion Vendors
|
||||
|
||||
#pragma region Duffle Headers
|
||||
# include "duffle/gen/macs.h"
|
||||
# include "duffle/gen/offsets.h"
|
||||
|
||||
#include "duffle/word_count.metadata.h"
|
||||
|
||||
#include "duffle/dsl.h"
|
||||
#include "duffle/memory.h"
|
||||
#include "duffle/math.h"
|
||||
|
||||
#include "duffle/gcc_asm.h"
|
||||
#include "duffle/mips.h"
|
||||
#include "duffle/gp.h"
|
||||
#include "duffle/gte.h"
|
||||
#include "duffle/pad.h"
|
||||
|
||||
#include "duffle/dsl.atom.h"
|
||||
#include "duffle/lottes_tape.h"
|
||||
|
||||
#include "duffle/psyq.h"
|
||||
#pragma endregion Duffle Headers
|
||||
|
||||
#pragma region Duffle TUs
|
||||
#include "duffle/math.atom.c"
|
||||
#include "duffle/mips.atom.c"
|
||||
#include "duffle/gte.atom.c"
|
||||
#include "duffle/gp.atom.c"
|
||||
#include "duffle/pad.atom.c"
|
||||
#include "duffle/psyq.atom.c"
|
||||
#pragma endregion Duffle TUs
|
||||
|
||||
#pragma region Hello Camera Headers
|
||||
# include "gen/macs.h"
|
||||
# include "gen/offsets.h"
|
||||
|
||||
#include "hello_camera.h"
|
||||
#pragma endregion Hello Camera Headers
|
||||
|
||||
#pragma region Hello Joypad TUs
|
||||
#include "hello_camera.atom.c"
|
||||
#pragma endregion Hello Joypad TUs
|
||||
|
||||
enum {
|
||||
Scratchpad_Len = 1024,
|
||||
MemTape_Len = 512,
|
||||
};
|
||||
typedef Struct_(SMemory) {
|
||||
PrimitiveArena primitives;
|
||||
A2_OrderingTable_Buffer ordering_tbl;
|
||||
DoubleBuffer screen_buf;
|
||||
S4 active_buf_id;
|
||||
|
||||
U4 MemTape[MemTape_Len];
|
||||
|
||||
M3_S2 tform_world;
|
||||
|
||||
Ent_Cube cube;
|
||||
Ent_Floor floor;
|
||||
|
||||
PadBiosRaw pad_raw[2];
|
||||
PadState pad[2];
|
||||
|
||||
U4_V scratchpad; // d-cache
|
||||
};
|
||||
global SMemory smem;
|
||||
extern SMemory smem;
|
||||
|
||||
I_ B1* prim__alloc(U4 type_width, Str8 type_name) {
|
||||
gknown PrimitiveArena* pa = & smem.primitives;
|
||||
gknown B1* buf = (B1*) r_(smem.primitives.buf)[smem.active_buf_id];
|
||||
assert(pa->used + type_width < PrimitiveBuff_Len);
|
||||
B1* next = buf + pa->used;
|
||||
pa->used += type_width;
|
||||
return next;
|
||||
}
|
||||
#define prim_alloc(type) (type*)prim__alloc(S_(type), slit( stringify(type)))
|
||||
|
||||
/* Uses ONE 8-byte frame allocated via the compiler's standard prologue.
|
||||
* The 4 wasted-arg words for B(12h) InitPAD2 live at [SP+0..15] but are not explicitly allocated.
|
||||
* The compiler handles the MIPS O32 "wasted stack" convention for us by treating the B-call as a 4-arg call.
|
||||
*
|
||||
* The buffer pointers are passed as arguments so the compiler keeps them in callee-saved registers;
|
||||
* The B(12h) asm volatile block does NOT clobber those registers (it clobbers only the volatile GPRs + the B-table arg registers explicitly).
|
||||
* The C-level writes after the call re-load the pointers from their callee-saved homes.
|
||||
*
|
||||
* The clobber list for both B-calls names the full BIOS destroy set documented in kernelbios.md:167-174 (R1..R15, R24..R25, R31, HI/LO).
|
||||
* The kernel-ABI "volatile GPRs" subset is clb_system; the rest of the destroy set is enumerated explicitly here. */
|
||||
NI_ void pad_bios_init_start(PadBiosRaw* raw0, PadBiosRaw* raw1)
|
||||
{
|
||||
/* Pin raw0 + raw1 to $a0 + $a1 via rgcc; the B(12h) call uses these directly.
|
||||
* The `(void)` casts mark them as unread after the call so the compiler doesn't need to move them back. */
|
||||
register PadBiosRaw* p0 rgcc(R_A0) = raw0;
|
||||
register PadBiosRaw* p1 rgcc(R_A1) = raw1;
|
||||
(void)p0; (void)p1;
|
||||
|
||||
// TODO(Ed): Properly annotate the raw values in the inline asm instructions.
|
||||
// Use enums.
|
||||
|
||||
/* B(12h) InitPAD2(raw0, 0x22, raw1, 0x22)
|
||||
* $a0 = raw0 (rgcc-bound; survives the sequence below)
|
||||
* $a1 = raw1 (preserved into $a2 before $a1 is overwritten)
|
||||
* $a2 = raw1 (moved from $a1; survives $a1's overwrite)
|
||||
* $a3 = 0x22 (immediate)
|
||||
* $t1 = 0x12 (function number)
|
||||
* $t2 = 0xB0 (BIOS B-table address) */
|
||||
asm volatile(
|
||||
asm_words(
|
||||
or_u( rarg_2, rarg_1, rdiscard), /* $a2 = $a1 = raw1 */
|
||||
add_ui( rarg_1, rdiscard, 0x22), /* $a1 = 0x22 */
|
||||
add_ui( rarg_3, rdiscard, 0x22), /* $a3 = 0x22 */
|
||||
add_ui( rtmp_1, rdiscard, 0x12), /* $t1 = 0x12 */
|
||||
add_ui( rtmp_2, rdiscard, 0xB0), /* $t2 = 0xB0 */
|
||||
call_reg(rtmp_2), /* jalr $t2, $ra */
|
||||
nop /* BD slot */
|
||||
)
|
||||
asm_rpins, r_use(p0), r_use(p1)
|
||||
asm_clobber:
|
||||
rlit(R_AT),
|
||||
rlit(R_V0), rlit(R_V1),
|
||||
rlit(R_T0), rlit(R_T1), rlit(R_T2), rlit(R_T3), rlit(R_T4),
|
||||
rlit(R_T5), rlit(R_T6), rlit(R_T7), rlit(R_T8), rlit(R_T9),
|
||||
rlit(R_RA),
|
||||
clb_mem_drain
|
||||
);
|
||||
|
||||
/* The C-level writes re-load the pointers via the parameter names and write 0xFF to each
|
||||
* buffer's status byte to mark the initial-state hazard documented in kernelbios.md:1621-1624. */
|
||||
u1_v(raw0)[0] = 0xFF;
|
||||
u1_v(raw1)[0] = 0xFF;
|
||||
|
||||
/* B(13h) StartPAD2() — no args. The BIOS preserves $sp. */
|
||||
asm volatile(
|
||||
asm_words(
|
||||
add_ui( rtmp_1, rdiscard, 0x13), /* $t1 = 0x13 */
|
||||
add_ui( rtmp_2, rdiscard, 0xB0), /* $t2 = 0xB0 (re-load) */
|
||||
call_reg(rtmp_2), /* jalr $t2, $ra */
|
||||
nop /* BD slot */
|
||||
)
|
||||
asm_clobber:
|
||||
rlit(R_AT),
|
||||
rlit(R_V0), rlit(R_V1),
|
||||
rlit(R_T0), rlit(R_T1), rlit(R_T2), rlit(R_T3), rlit(R_T4),
|
||||
rlit(R_T5), rlit(R_T6), rlit(R_T7), rlit(R_T8), rlit(R_T9),
|
||||
rlit(R_RA),
|
||||
clb_mem_drain
|
||||
);
|
||||
}
|
||||
|
||||
GCC_OPTIMIZATION_DISABLE
|
||||
void update(PrimitiveArena* pa, U4* ordering_buf)
|
||||
{
|
||||
TapeBuilder tb = tb_make(slice_ut_arr(smem.MemTape));
|
||||
|
||||
if (1) // Pad Input
|
||||
{
|
||||
tb.used = 0; tb_scope_run(& tb) {
|
||||
/* BIOS-owned polling: per-frame snapshot of both ports. */
|
||||
tb_emit_(pad_bios_snapshot);
|
||||
tb_data_(raw, & smem.pad_raw[0]);
|
||||
tb_data_(state, & smem.pad[0]);
|
||||
tb_emit_(pad_bios_snapshot);
|
||||
tb_data_(raw, & smem.pad_raw[1]);
|
||||
tb_data_(state, & smem.pad[1]);
|
||||
/* Per-frame rotation apply: consume pad[0].buttons + pad[0].left_x */
|
||||
tb_emit_(pad_apply_input);
|
||||
tb_data_(state, & smem.pad[0]);
|
||||
tb_data_(cube_rot, & smem.cube.rot);
|
||||
tb_data_(floor_rot, & smem.floor.rot);
|
||||
}
|
||||
}
|
||||
|
||||
orderingtbl_clear_reverse(ordering_buf, OrderingTbl_Len);
|
||||
|
||||
// Update the position based on acceleration and velocity
|
||||
gknown V3_S4_R pos = & smem.cube.pos;
|
||||
gknown V3_S4_R vel = & smem.cube.vel;
|
||||
gknown V3_S4_R acc = & smem.cube.accel;
|
||||
add_v3s4(vel, acc[0]);
|
||||
add_v3s4_fp(pos, vel[0]);
|
||||
// vel->x += acc->x;
|
||||
// vel->y += acc->y;
|
||||
// vel->z += acc->z;
|
||||
// pos->x += vel->x;
|
||||
// pos->y += vel->y;
|
||||
// pos->z += vel->z;
|
||||
|
||||
if (pos->y + 150 > smem.floor.pos.y) vel->y *= -1;
|
||||
|
||||
// Prep
|
||||
S4 nclip = 0;
|
||||
S4 orderingtbl_z = 0;
|
||||
A2_S2 p; //???
|
||||
S4 flag; //????
|
||||
|
||||
|
||||
// Draw cube
|
||||
if (1)
|
||||
{
|
||||
m3s2_rotation (& smem.cube.rot, & smem.tform_world);
|
||||
m3s2_translation(& smem.tform_world, & smem.cube.pos);
|
||||
m3s2_scale (& smem.tform_world, & smem.cube.scale);
|
||||
gte_matrix_set_rotation (& smem.tform_world);
|
||||
gte_matrix_set_translation(& smem.tform_world);
|
||||
|
||||
U4 prim_base = u4_(pa->buf[smem.active_buf_id]);
|
||||
U4 prim_cursor = prim_base + pa->used;
|
||||
|
||||
tb.used = 0; tb_scope(& tb) {
|
||||
tb_emit(& tb, rbind_cube_g4_face);
|
||||
tb_data(& tb, prim_cursor);
|
||||
tb_data(& tb, u4_(smem.cube.faces));
|
||||
tb_data(& tb, u4_(smem.cube.verts));
|
||||
tb_data(& tb, u4_(ordering_buf));
|
||||
|
||||
for (U4 i = 0; i < Cube_num_faces; i++) {
|
||||
// Two triangles per quad face: (x,y,z) and (x,z,w)
|
||||
tb_emit(& tb, cube_g4_face);
|
||||
}
|
||||
|
||||
tb_emit(& tb, sync_primitive_arena);
|
||||
tb_data(& tb, u4_(& pa->used));
|
||||
tb_data(& tb, prim_base);
|
||||
}
|
||||
tape_run(tb_slice(tb));
|
||||
|
||||
// smem.cube.rot.y += 30;
|
||||
}
|
||||
// Draw floor
|
||||
if (1)
|
||||
{
|
||||
m3s2_rotation (& smem.floor.rot, & smem.tform_world);
|
||||
m3s2_translation(& smem.tform_world, & smem.floor.pos);
|
||||
m3s2_scale (& smem.tform_world, & smem.floor.scale);
|
||||
|
||||
U4 prim_base = u4_(pa->buf[smem.active_buf_id]);
|
||||
U4 prim_cursor = prim_base + pa->used;
|
||||
|
||||
// TODO(Ed): We should do a bounds check beforehand to confirm pa can hold all tris?
|
||||
// The tape atoms in-flight should not need to care.
|
||||
|
||||
// Prepare the tape. (Push protocol to tape)
|
||||
tb.used = 0; tb_scope(& tb) {
|
||||
tb_emit(& tb, set_gte_world);
|
||||
tb_data(& tb, u4_(& smem.tform_world));
|
||||
|
||||
tb_emit(& tb, rbind_floor_f3_face);
|
||||
// TODO(Ed): Just use a single context struct ref
|
||||
tb_data(& tb, prim_cursor);
|
||||
tb_data(& tb, u4_(smem.floor.faces));
|
||||
tb_data(& tb, u4_(smem.floor.verts));
|
||||
tb_data(& tb, u4_(ordering_buf));
|
||||
for (U4 i = 0; i < Floor_num_faces; i++) {
|
||||
tb_emit(& tb, floor_f3_face);
|
||||
}
|
||||
// After floor_f3_face iterations complete, the primitive arena's used counter needs updating.
|
||||
tb_emit(& tb, sync_primitive_arena);
|
||||
tb_data(& tb, u4_(& pa->used));
|
||||
tb_data(& tb, prim_base);
|
||||
}
|
||||
tape_run(tb_slice(tb));// Fire off the tape.
|
||||
|
||||
// C-side state (pa->used) has already been updated by the tape!
|
||||
// smem.floor.rot.y += 5;
|
||||
}
|
||||
}
|
||||
GCC_OPTIMIZATION_ENABLE
|
||||
|
||||
void render(void) {
|
||||
}
|
||||
|
||||
void gp_display_frame(DoubleBuffer* screen_buf, S4* active_buf_id, U4* ordering_buf, PrimitiveArena* pa) {
|
||||
draw_sync(0);
|
||||
vsync(0);
|
||||
displayenv_put(& r_(screen_buf->display)[active_buf_id[0] ]);
|
||||
drawenv_put (& r_(screen_buf->draw) [active_buf_id[0] ]);
|
||||
{
|
||||
draw_orderingtbl(ordering_buf + OrderingTbl_Len - 1);
|
||||
pa->used = 0;
|
||||
}
|
||||
active_buf_id[0] = ! active_buf_id[0]; // Swap current buffer
|
||||
}
|
||||
|
||||
GCC_OPTIMIZATION_DISABLE
|
||||
int main(void)
|
||||
{
|
||||
smem = (SMemory){0};
|
||||
smem.scratchpad = C_(U4_V, 0x1F800000);
|
||||
// smem.primitives.used = 0;
|
||||
// smem.active_buf_id = 0;
|
||||
/*Persistent Entity Setup*/{
|
||||
ent_cube128_init(& smem.cube.verts, & smem.cube.faces); {
|
||||
Ent_Cube* cube = & smem.cube;
|
||||
cube->rot = v3s2(0, 0, 0);
|
||||
cube->scale = v3s4_fp_one();
|
||||
cube->accel = v3s4(0, 1, 0);
|
||||
cube->pos = v3s4(0, -400, 1800);
|
||||
}
|
||||
ent_floor_init(& smem.floor.verts, & smem.floor.faces); {
|
||||
Ent_Floor* floor = & smem.floor;
|
||||
floor->rot = v3s2(0, 0, 0);
|
||||
floor->pos = v3s4(0, 450, 1800);
|
||||
floor->scale = v3s4_fp_one();
|
||||
}
|
||||
}
|
||||
TapeBuilder tb = tb_make(slice_ut_arr(smem.MemTape)); {
|
||||
reset_graph(0);
|
||||
/* Direct BIOS: poll both ports during VBlank. */
|
||||
pad_bios_init_start(& smem.pad_raw[0], & smem.pad_raw[1]);
|
||||
/* Pinned registers for the GPU init atom. */
|
||||
register U4* io_base_addr rgcc(R_IO_BaseAddr) = u4_r(IO_BASE_ADDR);
|
||||
register DoubleBuffer* screen_buf rgcc(R_ScreenBuf) = & smem.screen_buf;
|
||||
tb.used = 0; tb_scope_run(& tb) {
|
||||
tb_emit(& tb, screen_env_init);
|
||||
tb_emit(& tb, gp_screen_init);
|
||||
}
|
||||
}
|
||||
while (1) {
|
||||
gknown S4* active_buf_id = & smem.active_buf_id;
|
||||
gknown U4* ordering_buf = r_(smem.ordering_tbl)[active_buf_id[0]];
|
||||
gknown PrimitiveArena* pa = & smem.primitives;
|
||||
update(pa, ordering_buf);
|
||||
render();
|
||||
gp_display_frame(& smem.screen_buf, active_buf_id, ordering_buf, pa);
|
||||
};
|
||||
return 0;
|
||||
}
|
||||
GCC_OPTIMIZATION_ENABLE
|
||||
@@ -0,0 +1,102 @@
|
||||
#ifdef INTELLISENSE_DIRECTIVES
|
||||
# pragma once
|
||||
# include "duffle/dsl.h"
|
||||
# include "duffle/math.h"
|
||||
# include "duffle/gp.h"
|
||||
# include "duffle/pad.h"
|
||||
#endif
|
||||
|
||||
enum {
|
||||
// PrimitiveBuff_Len = 4096,
|
||||
// OrderingTbl_Len = 2048,
|
||||
PrimitiveBuff_Len = 131072,
|
||||
OrderingTbl_Len = 8192,
|
||||
};
|
||||
|
||||
enum {
|
||||
ScreenRes_X = 320,
|
||||
ScreenRes_Y = 240,
|
||||
ScreenZ = 320,
|
||||
ScreenRes_CenterX = (ScreenRes_X >> 1),
|
||||
ScreenRes_CenterY = (ScreenRes_Y >> 1),
|
||||
};
|
||||
|
||||
enum {
|
||||
fp_one = (1 << 12),
|
||||
};
|
||||
|
||||
#define v3s4_fp_one() v3s4(fp_one, fp_one, fp_one)
|
||||
|
||||
typedef U4 OrderingTable_Buffer[OrderingTbl_Len];
|
||||
typedef Array_(OrderingTable_Buffer, 2);
|
||||
|
||||
typedef B1 PrimitiveBuffer[PrimitiveBuff_Len];
|
||||
typedef Array_(PrimitiveBuffer, 2);
|
||||
typedef Struct_(PrimitiveArena) {
|
||||
A2_PrimitiveBuffer buf;
|
||||
U4 used;
|
||||
};
|
||||
|
||||
#define Cube_num_verts 8
|
||||
typedef Array_(V3_S2, Cube_num_verts);
|
||||
#define Cube_num_faces 6
|
||||
typedef Array_(V4_S2, Cube_num_faces);
|
||||
I_ void ent_cube128_init(A8_V3_S2* verts, A6_V4_S2* faces) {
|
||||
LP_ A8_V3_S2 baked_verts = (A8_V3_S2) {
|
||||
{ -128, -128, -128 },
|
||||
{ 128, -128, -128 },
|
||||
{ 128, -128, 128 },
|
||||
{ -128, -128, 128 },
|
||||
{ -128, 128, -128 },
|
||||
{ 128, 128, -128 },
|
||||
{ 128, 128, 128 },
|
||||
{ -128, 128, 128 }
|
||||
};
|
||||
LP_ A6_V4_S2 baked_faces = (A6_V4_S2) {
|
||||
{ 3, 2, 0, 1 },
|
||||
{ 0, 1, 4, 5 },
|
||||
{ 4, 5, 7, 6 },
|
||||
{ 1, 2, 5, 6 },
|
||||
{ 2, 3, 6, 7 },
|
||||
{ 3, 0, 7, 4 },
|
||||
};
|
||||
mem_copy(u4_(verts), u4_(& baked_verts), S_(A8_V3_S2) );
|
||||
mem_copy(u4_(faces), u4_(& baked_faces), S_(A6_V4_S2) );
|
||||
return;
|
||||
}
|
||||
typedef Struct_(Ent_Cube) {
|
||||
V3_S4 accel;
|
||||
V3_S4 vel;
|
||||
V3_S4 pos;
|
||||
V3_S4 scale;
|
||||
V3_S2 rot;
|
||||
A8_V3_S2 verts;
|
||||
A6_V4_S2 faces;
|
||||
};
|
||||
|
||||
#define Floor_num_verts 4
|
||||
typedef Array_(V3_S2, Floor_num_verts);
|
||||
#define Floor_num_faces 2
|
||||
typedef Array_(V3_S2, Floor_num_faces);
|
||||
I_ void ent_floor_init(A4_V3_S2* verts, A2_V3_S2* faces) {
|
||||
LP_ A4_V3_S2 baked_verts = (A4_V3_S2) {
|
||||
{ -900, 0, -900 },
|
||||
{ -900, 0, 900 },
|
||||
{ 900, 0, -900 },
|
||||
{ 900, 0, 900 },
|
||||
};
|
||||
LP_ A2_V3_S2 baked_faces = (A2_V3_S2) {
|
||||
{ 0, 1, 2 },
|
||||
{ 1, 3, 2 },
|
||||
};
|
||||
mem_copy(u4_(verts), u4_(& baked_verts), S_(A4_V3_S2));
|
||||
mem_copy(u4_(faces), u4_(& baked_faces), S_(A2_V3_S2));
|
||||
};
|
||||
typedef Struct_(Ent_Floor) {
|
||||
V3_S4 accel;
|
||||
V3_S4 pos;
|
||||
V3_S4 scale;
|
||||
V3_S2 rot;
|
||||
A4_V3_S2 verts;
|
||||
A2_V3_S2 faces;
|
||||
};
|
||||
@@ -5,10 +5,10 @@
|
||||
#pragma region hello_gte_tape
|
||||
|
||||
|
||||
// --- atom: cube_g4_face (87 words) ---
|
||||
// --- atom: cube_g4_face (77 words) ---
|
||||
|
||||
#define _atom_offset_cull_cube_g4_face_exit 48
|
||||
#define _atom_offset_bounds_chk_cube_g4_face_exit 12
|
||||
#define _atom_offset_cull_cube_g4_face_exit 42
|
||||
#define _atom_offset_bounds_chk_cube_g4_face_exit 24
|
||||
|
||||
enum {
|
||||
atom_offset_cull_cube_g4_face_exit = _atom_offset_cull_cube_g4_face_exit,
|
||||
@@ -18,7 +18,7 @@ enum {
|
||||
// --- atom: floor_f3_face (58 words) ---
|
||||
|
||||
#define _atom_offset_culling_floor_f3_face_exit 25
|
||||
#define _atom_offset_bounds_chk_floor_f3_face_exit 13
|
||||
#define _atom_offset_bounds_chk_floor_f3_face_exit 16
|
||||
|
||||
enum {
|
||||
atom_offset_culling_floor_f3_face_exit = _atom_offset_culling_floor_f3_face_exit,
|
||||
@@ -0,0 +1,29 @@
|
||||
// Auto-generated by ps1_meta.lua (passes/offsets.lua) — DO NOT EDIT
|
||||
// Source: C:\projects\Pikuma\ps1\code\hello_gte\hello_gte.tape.c
|
||||
#pragma once
|
||||
|
||||
#pragma region hello_gte.tape
|
||||
|
||||
|
||||
// --- atom: cube_g4_face (77 words) ---
|
||||
|
||||
#define _atom_offset_cull_cube_g4_face_exit 42
|
||||
#define _atom_offset_bounds_chk_cube_g4_face_exit 24
|
||||
|
||||
enum {
|
||||
atom_offset_cull_cube_g4_face_exit = _atom_offset_cull_cube_g4_face_exit,
|
||||
atom_offset_bounds_chk_cube_g4_face_exit = _atom_offset_bounds_chk_cube_g4_face_exit,
|
||||
};
|
||||
|
||||
// --- atom: floor_f3_face (58 words) ---
|
||||
|
||||
#define _atom_offset_culling_floor_f3_face_exit 25
|
||||
#define _atom_offset_bounds_chk_floor_f3_face_exit 16
|
||||
|
||||
enum {
|
||||
atom_offset_culling_floor_f3_face_exit = _atom_offset_culling_floor_f3_face_exit,
|
||||
atom_offset_bounds_chk_floor_f3_face_exit = _atom_offset_bounds_chk_floor_f3_face_exit,
|
||||
};
|
||||
|
||||
#pragma endregion hello_gte.tape
|
||||
|
||||
@@ -14,16 +14,16 @@
|
||||
#include "duffle/gp.h"
|
||||
#include "duffle/gte.h"
|
||||
|
||||
# include "duffle/gen/duffle.macs.h"
|
||||
# include "duffle/gen/duffle.offsets.h"
|
||||
# include "duffle/gen/macs.h"
|
||||
# include "duffle/gen/offsets.h"
|
||||
#include "duffle/atom_dsl.h"
|
||||
#include "duffle/lottes_tape.h"
|
||||
#include "duffle/word_count.metadata.h"
|
||||
|
||||
# include "gen/gte_hello.offsets.h"
|
||||
# include "gen/offsets.h"
|
||||
#include "hello_gte.h"
|
||||
|
||||
#include "hello_gte_tape.c"
|
||||
#include "hello_gte.tape.c"
|
||||
|
||||
typedef U4 OrderingTable_Buffer[OrderingTbl_Len];
|
||||
typedef Array_(OrderingTable_Buffer, 2);
|
||||
@@ -122,7 +122,7 @@ global SMemory smem;
|
||||
extern SMemory smem;
|
||||
|
||||
// TODO(Ed):
|
||||
FI_ U4* spad_warm(MipsAtom atom) {
|
||||
FI_ U4* spad_warm(Slice_MipsCode atom) {
|
||||
return nullptr;
|
||||
}
|
||||
|
||||
@@ -0,0 +1,218 @@
|
||||
#ifdef INTELLISENSE_DIRECTIVES
|
||||
# include "duffle/gen/macs.h"
|
||||
# include "duffle/gen/offsets.h"
|
||||
# include "duffle/atom_dsl.h"
|
||||
# include "duffle/lottes_tape.h"
|
||||
# include "duffle/word_count.metadata.h"
|
||||
# include "gen/offsets.h"
|
||||
# include "hello_gte.h"
|
||||
#endif
|
||||
|
||||
#pragma region MACs (Mips Atom components)
|
||||
|
||||
|
||||
|
||||
#pragma endregion MACs
|
||||
|
||||
#pragma region Baked Atoms
|
||||
|
||||
/* DIAGNOSTIC 1: Pure tape loop test */
|
||||
internal MipsAtom_(diag_yield) { mac_yield() };
|
||||
|
||||
/* DIAGNOSTIC 2: Pure memory test (No GTE). Draws a fixed cyan triangle. */
|
||||
internal MipsAtom_(diag_color) {
|
||||
store_word( R_0, R_T7, 0),
|
||||
load_upper_i(R_AT, gp0_cmd_poly_f3 << 8 | 0xFF), /* High: MipsCode Poly_F3(0x20) + Color B:FF */
|
||||
or_i_self( R_AT, 0xFF00), /* Low: Color G:FF, R:00 (Cyan) */
|
||||
store_word( R_AT, R_T7, 4),
|
||||
|
||||
/* Fake coordinates - Swapped winding order to prevent GPU culling! */
|
||||
load_upper_i(R_AT, 0x0010), or_i_self(R_AT, 0x0010), store_word(R_AT, R_T7, 8), /* (16, 16) */
|
||||
load_upper_i(R_AT, 0x0050), or_i_self(R_AT, 0x0010), store_word(R_AT, R_T7, 12), /* (80, 16) */
|
||||
load_upper_i(R_AT, 0x0010), or_i_self(R_AT, 0x0050), store_word(R_AT, R_T7, 16), /* (16, 80) */
|
||||
|
||||
add_ui( R_T1, R_0, 10),
|
||||
shift_lleft_self(R_T1, S_(U4)/2),
|
||||
add_u_self( R_T1, R_T6),
|
||||
|
||||
load_word( R_AT, R_T1, 0),
|
||||
load_upper_i(R_V0, (S_(Poly_F3)/S_(U4) - S_(PolyTag)/S_(U4)) << PolyTag_len_bits),
|
||||
store_word( R_AT, R_T7, 0),
|
||||
shift_lleft(R_AT, R_T7, S_(PolyTag_len_bits)), shift_lright(R_AT, R_AT, S_(PolyTag_len_bits)),
|
||||
or_u_self( R_AT, R_V0),
|
||||
store_word( R_AT, R_T1, 0),
|
||||
|
||||
add_ui(R_T7, R_T7, 20),
|
||||
|
||||
mac_yield()
|
||||
};
|
||||
|
||||
/* DIAGNOSTIC 3: Pure GTE test (No Memory Writes) */
|
||||
internal MipsAtom_(diag_gte) {
|
||||
/* Load 3 indices */
|
||||
load_half_u(R_T0, R_T4, 0),
|
||||
load_half_u(R_T1, R_T4, 2),
|
||||
load_half_u(R_T2, R_T4, 4),
|
||||
|
||||
/* Load Vertices into GTE */
|
||||
shift_lleft( R_AT, R_T0, 3), add_u( R_AT, R_AT, R_T5),
|
||||
load_word(R_V0, R_AT, 0), load_word(R_V1, R_AT, 4),
|
||||
gte_mv_to_data_r(R_V0, C2_VXY0), gte_mv_to_data_r(R_V1, C2_VZ0),
|
||||
|
||||
shift_lleft( R_AT, R_T1, 3), add_u(R_AT, R_AT, R_T5),
|
||||
load_word(R_V0, R_AT, 0), load_word(R_V1, R_AT, 4),
|
||||
gte_mv_to_data_r(R_V0, C2_VXY1), gte_mv_to_data_r(R_V1, C2_VZ1),
|
||||
|
||||
shift_lleft(R_AT, R_T2, 3), add_u(R_AT, R_AT, R_T5),
|
||||
load_word(R_V0, R_AT, 0), load_word(R_V1, R_AT, 4),
|
||||
gte_mv_to_data_r(R_V0, C2_VXY2), gte_mv_to_data_r(R_V1, C2_VZ2),
|
||||
|
||||
/* Run Math */
|
||||
nop2, gte_cmdw_rtpt,
|
||||
nop2, gte_cmdw_nclip,
|
||||
nop2,
|
||||
|
||||
/* Advance Face Cursor and Yield */
|
||||
add_ui(R_T4, R_T4, 8),
|
||||
|
||||
mac_yield()
|
||||
};
|
||||
|
||||
typedef Struct_(Binds_CubeTri) {
|
||||
U4 PrimCursor;
|
||||
V4_S2* FaceCursor;
|
||||
V3_S2* VertBase;
|
||||
U4* OtBase;
|
||||
};
|
||||
internal MipsAtom_(rbind_cube_g4_face) atom_info(atom_bind(Binds_CubeTri), atom_phase(cube_g4)
|
||||
, atom_reads(R_TapePtr)
|
||||
, atom_writes(R_PrimCursor, R_FaceCursor, R_VertBase, R_OtBase)
|
||||
){
|
||||
/* Pop 4 arguments from the tape directly into the workspace registers */
|
||||
load_word(R_PrimCursor, R_TapePtr, O_(Binds_CubeTri,PrimCursor)),
|
||||
load_word(R_FaceCursor, R_TapePtr, O_(Binds_CubeTri,FaceCursor)),
|
||||
load_word(R_VertBase, R_TapePtr, O_(Binds_CubeTri,VertBase)),
|
||||
load_word(R_OtBase, R_TapePtr, O_(Binds_CubeTri,OtBase)),
|
||||
add_ui_self( R_TapePtr, S_(Binds_CubeTri)),
|
||||
mac_yield()
|
||||
};
|
||||
|
||||
// cube_g4_face — Draw one cube face (Gouraud-shaded quad) via the GTE tape pipeline
|
||||
internal
|
||||
MipsAtom_(cube_g4_face) atom_info(atom_phase(cube_g4),
|
||||
atom_reads( R_PrimCursor, R_FaceCursor, R_VertBase, R_OtBase),
|
||||
atom_writes(R_PrimCursor, R_FaceCursor)
|
||||
){
|
||||
load_half_u(R_T0, R_FaceCursor, 0 * S_(S2)),
|
||||
load_half_u(R_T1, R_FaceCursor, 1 * S_(S2)),
|
||||
load_half_u(R_T2, R_FaceCursor, 2 * S_(S2)),
|
||||
load_half_u(R_T3, R_FaceCursor, 3 * S_(S2)),
|
||||
|
||||
mac_gte_load_tri_verts(R_T0, R_T1, R_T2),
|
||||
nop2, gte_cmdw_rotate_translate_perspective_triple, // required cpu -> gte delay slot
|
||||
gte_cmdw_nclip,
|
||||
|
||||
gte_mv_from_data_r(R_T0, C2_MAC0), nop,
|
||||
branch_le_zero(R_T0, atom_offset(cull, cube_g4_face_exit)), nop,
|
||||
store_word(R_0, R_PrimCursor, O_(Poly_G4, tag)),
|
||||
shift_lleft(R_AT, R_T3, v3s2_byteoff), add_u(R_AT, R_AT, R_VertBase),
|
||||
load_word(R_V0, R_AT, O_(V3_S2, x)), load_word(R_V1, R_AT, O_(V3_S2, z)),
|
||||
gte_mv_to_data_r(R_V0, C2_VXY0), gte_mv_to_data_r(R_V1, C2_VZ0),
|
||||
|
||||
mac_gte_store_g4_p012(),
|
||||
gte_cmdw_rotate_translate_perspective_single,
|
||||
mac_gte_store_g4_p3(),
|
||||
|
||||
gte_cmdw_avg_sort_z4,
|
||||
gte_mv_from_data_r(R_T1, C2_OTZ),
|
||||
|
||||
add_ui( R_AT, R_0, OrderingTbl_Len),
|
||||
set_lt_u( R_AT, R_T1, R_AT),
|
||||
branch_equal(R_AT, R_0, atom_offset(bounds_chk, cube_g4_face_exit)), nop,
|
||||
mac_insert_ot_tag_g4(),
|
||||
mac_format_g4_color(
|
||||
/* c0 magenta */ 0xFF, 0x00, 0xFF,
|
||||
/* c1 yellow */ 0xFF, 0xFF, 0x00,
|
||||
/* c2 cyan */ 0x00, 0xFF, 0xFF,
|
||||
/* c3 green */ 0x00, 0xFF, 0x00),
|
||||
// end: branch(bounds_chk)
|
||||
// end: branch(cull)
|
||||
|
||||
atom_label(cube_g4_face_exit)
|
||||
add_ui_self(R_PrimCursor, S_(Poly_G4)), /* 9 words = Poly_G4 */
|
||||
add_ui_self(R_FaceCursor, S_(S2) * 4), /* 4 × S2 = 8 bytes */
|
||||
mac_yield()
|
||||
};
|
||||
|
||||
typedef Struct_(Binds_FloorTri) {
|
||||
U4 PrimCursor;
|
||||
V3_S2* FaceCursor;
|
||||
V3_S2* VertBase;
|
||||
U4* OtBase;
|
||||
};
|
||||
internal
|
||||
MipsAtom_(rbind_floor_f3_face) atom_info(atom_bind(Binds_FloorTri), atom_phase(floor_f3)
|
||||
, atom_reads(R_TapePtr)
|
||||
, atom_writes(R_PrimCursor, R_FaceCursor, R_VertBase, R_OtBase)
|
||||
){
|
||||
/* Pop 4 arguments from the tape directly into the workspace registers */
|
||||
load_word(R_PrimCursor, R_TapePtr, O_(Binds_FloorTri,PrimCursor)),
|
||||
load_word(R_FaceCursor, R_TapePtr, O_(Binds_FloorTri,FaceCursor)),
|
||||
load_word(R_VertBase, R_TapePtr, O_(Binds_FloorTri,VertBase)),
|
||||
load_word(R_OtBase, R_TapePtr, O_(Binds_FloorTri,OtBase)),
|
||||
add_ui_self( R_TapePtr, S_(Binds_FloorTri)),
|
||||
mac_yield()
|
||||
};
|
||||
|
||||
// atom_dbg_skip
|
||||
internal
|
||||
MipsAtom_(floor_f3_face) atom_info(atom_phase(floor_f3)
|
||||
, atom_reads( R_PrimCursor, R_FaceCursor, R_VertBase, R_OtBase)
|
||||
, atom_writes(R_PrimCursor, R_FaceCursor)
|
||||
) {
|
||||
mac_load_tri_indices( R_T0, R_T1, R_T2),
|
||||
mac_gte_load_tri_verts(R_T0, R_T1, R_T2),
|
||||
nop2, gte_cmdw_rotate_translate_perspective_triple, // 2 nops retire the final cpu -> gte writes before RTPT
|
||||
gte_cmdw_nclip,
|
||||
|
||||
/* Culling (Branch forward if Backface) */
|
||||
gte_mv_from_data_r(R_T0, C2_MAC0),
|
||||
nop, branch_le_zero(R_T0, atom_offset(culling, floor_f3_face_exit)), nop, // required gte -> cpu load-delay slot.
|
||||
/* Format Primitive */
|
||||
mac_gte_store_f3(),
|
||||
|
||||
/* Calculate Depth */
|
||||
gte_avg_sort_z3,
|
||||
gte_mv_from_data_r(R_T1, C2_OTZ),
|
||||
/* Bounds Check OTZ < OrderingTbl_Len (Branch forward to skip insertion) */
|
||||
add_ui( R_AT, R_0, OrderingTbl_Len),
|
||||
set_lt_u( R_AT, R_T1, R_AT),
|
||||
branch_equal(R_AT, R_0, atom_offset(bounds_chk, floor_f3_face_exit)), nop,
|
||||
mac_format_f3_color(0xFF, 0xFF, 0xFF), // RGB-form (R=FF, G=FF, B=FF = white)
|
||||
mac_insert_ot_tag_f3(), /* Insert into Ordering Table Linked List */
|
||||
add_ui_self(R_PrimCursor, S_(Poly_F3)), /* Advance Prim Cursor (5 words) */
|
||||
// Note(Ed): No bounds checking, should be checked before atom runs.
|
||||
// end: branch(bounds_chk)
|
||||
// end: branch(culling)
|
||||
|
||||
/* Advance Input Cursor & Yield (Both branch targets land here) */
|
||||
atom_label(floor_f3_face_exit)
|
||||
add_ui_self(R_FaceCursor, S_(S2) * 4), /* Advance Face Cursor (4 * S2 = 8 bytes) */
|
||||
mac_yield()
|
||||
};
|
||||
|
||||
typedef Struct_(Binds_SyncPrimitiveArena) { U4 used; U4 cursor; };
|
||||
internal MipsAtom_(sync_primitive_arena) atom_info(atom_bind(Binds_SyncPrimitiveArena)
|
||||
, atom_reads( R_TapePtr, R_PrimCursor)
|
||||
, atom_writes(R_TapePtr)
|
||||
){
|
||||
load_word(R_AT, R_TapePtr, O_(Binds_SyncPrimitiveArena,used)),
|
||||
load_word(R_T0, R_TapePtr, O_(Binds_SyncPrimitiveArena,cursor)),
|
||||
add_ui_self( R_TapePtr, S_(Binds_SyncPrimitiveArena)),
|
||||
/* Calculate byte offset and store directly back to RAM */
|
||||
sub_u( R_T0, R_PrimCursor, R_T0), // R_T0 = R_PrimCursor - binds.cursor
|
||||
store_word(R_T0, R_AT, 0), // R_AT[0] = R_T0
|
||||
mac_yield()
|
||||
};
|
||||
|
||||
#pragma endregion Baked Atoms
|
||||
@@ -0,0 +1,41 @@
|
||||
#ifdef INTELLISENSE_DIRECTIVES
|
||||
#pragma once
|
||||
#endif
|
||||
// Auto-generated by ps1_meta.lua — DO NOT EDIT
|
||||
// Directory: C:\projects\Pikuma\ps1\code\hello_joypad/
|
||||
// source: C:\projects\Pikuma\ps1\code\hello_joypad\hello_joypad.c
|
||||
// source: C:\projects\Pikuma\ps1\code\hello_joypad\hello_joypad.h
|
||||
// source: C:\projects\Pikuma\ps1\code\hello_joypad\hello_joypad.atom.c
|
||||
// Component atoms (MipsAtomComp_(ac_*)) -> macro variants (mac_*)
|
||||
|
||||
#ifndef WORD_COUNT
|
||||
#define WORD_COUNT(name, count) enum { words_##name = (count) };
|
||||
#endif
|
||||
|
||||
#define mac_put_disp_env(reg_transfer, reg_base, port) \
|
||||
mac_gcmd_push(gp0_word_draw_area_top_left_origin, reg_transfer, reg_base, port) \
|
||||
, mac_gcmd_push(gp0_word_draw_area_bottom_right_320x240, reg_transfer, reg_base, port) \
|
||||
, mac_gcmd_push(gp0_word_set_mask_bit(), reg_transfer, reg_base, port) \
|
||||
, mac_gcmd_push(gp0_word_draw_area_top_left_origin, reg_transfer, reg_base, port) \
|
||||
, mac_gcmd_push(gp0_word_draw_area_bottom_right_320x240, reg_transfer, reg_base, port)
|
||||
WORD_COUNT(mac_put_disp_env, 5)
|
||||
|
||||
#define mac_put_draw_env(reg_transfer, reg_base, port) \
|
||||
mac_gcmd_push(gp0_dr_env_tag, reg_transfer, reg_base, port) /* tag (length=15 << 24, addr=0) — packet header for the DR_ENV sequence. The GPU needs this to recognize the next 15 words as a DR_ENV packet and trigger the isbg auto-clear. */ \
|
||||
, mac_gcmd_push(gp0_word_draw_mode_drawing_allowed, reg_transfer, reg_base, port) /* code[0] DrawMode (dfe=1, dtd=0, tpage=0) */ \
|
||||
, mac_gcmd_push(gp0_word_set_texture_window(), reg_transfer, reg_base, port) /* code[1] TextureWindow (tw=(0,0)) */ \
|
||||
, mac_gcmd_push(enc_gp0_draw_area_tl_word(0, ScreenRes_Y), reg_transfer, reg_base, port) /* code[2] DrawArea top-left (clip.x=0, clip.y=ScreenRes_Y=240) */ \
|
||||
, mac_gcmd_push(gp0_word_draw_area_bottom_right_320x240, reg_transfer, reg_base, port) /* code[3] DrawArea bottom-right (clip.x+w=320, clip.y+h=480) */ \
|
||||
, mac_gcmd_push(gp0_word_set_draw_offset(), reg_transfer, reg_base, port) /* code[4] DrawOffset (ofs=(0,0)) — bare-cmd word; the GPU uses the current state machine. */ \
|
||||
, mac_gcmd_push(gp0_word_dr_env_mask(), reg_transfer, reg_base, port) /* code[5] Mask (dtd=0, dfe=1, isbg=1) — 0xE6 cmd + isbg bit. */ \
|
||||
, mac_gcmd_push(gp0_word_dr_env_bg_color_cmd(1, 7, 7, 7), reg_transfer, reg_base, port) /* code[6] Initial-bg-color + auto-clear (isbg=1, r=7, g=7, b=7). */ \
|
||||
, mac_gcmd_push(gp0_word_dr_env_draw_mode(1), reg_transfer, reg_base, port) /* code[7] Re-assert DrawMode with isbg=1 (isbg-flag set; the 0xE1 cmd byte plus isbg only). */ /* code[8..10] Padding (NOP — GPU discards; the DR_ENV requires 16 words total). */ \
|
||||
, mac_gcmd_push(gp0_word_nop(), reg_transfer, reg_base, port) \
|
||||
, mac_gcmd_push(gp0_word_nop(), reg_transfer, reg_base, port) \
|
||||
, mac_gcmd_push(gp0_word_nop(), reg_transfer, reg_base, port) /* code[11..12] TextureWindow bottom-right (tw.x+tw.w=0, tw.y+tw.h=0) — libpsyx emits twice. */ \
|
||||
, mac_gcmd_push(gp0_word_set_texture_window(), reg_transfer, reg_base, port) \
|
||||
, mac_gcmd_push(gp0_word_set_texture_window(), reg_transfer, reg_base, port) /* code[13..14] Padding (NOP) — completes the 16-word packet. */ \
|
||||
, mac_gcmd_push(gp0_word_nop(), reg_transfer, reg_base, port) \
|
||||
, mac_gcmd_push(gp0_word_nop(), reg_transfer, reg_base, port)
|
||||
WORD_COUNT(mac_put_draw_env, 16)
|
||||
|
||||
@@ -0,0 +1,76 @@
|
||||
// Auto-generated by ps1_meta.lua (passes/offsets.lua) — DO NOT EDIT
|
||||
// Directory: C:\projects\Pikuma\ps1\code\hello_joypad\
|
||||
// source: C:\projects\Pikuma\ps1\code\hello_joypad\hello_joypad.c
|
||||
// source: C:\projects\Pikuma\ps1\code\hello_joypad\hello_joypad.h
|
||||
// source: C:\projects\Pikuma\ps1\code\hello_joypad\hello_joypad.atom.c
|
||||
#pragma once
|
||||
|
||||
#pragma region hello_joypad
|
||||
|
||||
|
||||
// --- atom: cube_g4_face (76 words) ---
|
||||
|
||||
#define _atom_offset_cull_cube_g4_face_exit 41
|
||||
#define _atom_offset_bounds_chk_cube_g4_face_exit 24
|
||||
|
||||
enum {
|
||||
atom_offset_cull_cube_g4_face_exit = _atom_offset_cull_cube_g4_face_exit,
|
||||
atom_offset_bounds_chk_cube_g4_face_exit = _atom_offset_bounds_chk_cube_g4_face_exit,
|
||||
};
|
||||
|
||||
// --- atom: floor_f3_face (58 words) ---
|
||||
|
||||
#define _atom_offset_culling_floor_f3_face_exit 25
|
||||
#define _atom_offset_bounds_chk_floor_f3_face_exit 16
|
||||
|
||||
enum {
|
||||
atom_offset_culling_floor_f3_face_exit = _atom_offset_culling_floor_f3_face_exit,
|
||||
atom_offset_bounds_chk_floor_f3_face_exit = _atom_offset_bounds_chk_floor_f3_face_exit,
|
||||
};
|
||||
|
||||
// --- atom: pad_bios_snapshot (78 words) ---
|
||||
|
||||
#define _atom_offset_snap_root_skip_disconnected 8
|
||||
#define _atom_offset_disconnected_snap_end 61
|
||||
#define _atom_offset_case_2_id_dispatch 8
|
||||
#define _atom_offset_pending_snap_end 51
|
||||
#define _atom_offset_id_dispatch_try_analog_stick 11
|
||||
#define _atom_offset_id_dispatch_snap_end 38
|
||||
#define _atom_offset_try_analog_stick_try_analog_pad 12
|
||||
#define _atom_offset_analog_stick_snap_end 24
|
||||
#define _atom_offset_try_analog_pad_try_unsupported 11
|
||||
#define _atom_offset_analog_pad_snap_end 10
|
||||
|
||||
enum {
|
||||
atom_offset_snap_root_skip_disconnected = _atom_offset_snap_root_skip_disconnected,
|
||||
atom_offset_disconnected_snap_end = _atom_offset_disconnected_snap_end,
|
||||
atom_offset_case_2_id_dispatch = _atom_offset_case_2_id_dispatch,
|
||||
atom_offset_pending_snap_end = _atom_offset_pending_snap_end,
|
||||
atom_offset_id_dispatch_try_analog_stick = _atom_offset_id_dispatch_try_analog_stick,
|
||||
atom_offset_id_dispatch_snap_end = _atom_offset_id_dispatch_snap_end,
|
||||
atom_offset_try_analog_stick_try_analog_pad = _atom_offset_try_analog_stick_try_analog_pad,
|
||||
atom_offset_analog_stick_snap_end = _atom_offset_analog_stick_snap_end,
|
||||
atom_offset_try_analog_pad_try_unsupported = _atom_offset_try_analog_pad_try_unsupported,
|
||||
atom_offset_analog_pad_snap_end = _atom_offset_analog_pad_snap_end,
|
||||
};
|
||||
|
||||
// --- atom: pad_apply_input (60 words) ---
|
||||
|
||||
#define _atom_offset_dpad_left_exit_dpad_left 6
|
||||
#define _atom_offset_dpad_right_exit_dpad_right 6
|
||||
#define _atom_offset_dead_zone_low_check_dead_low_active 8
|
||||
#define _atom_offset_dead_zone_high_check_dead_high_active 15
|
||||
#define _atom_offset_dead_zone_skip_exit_stick 24
|
||||
#define _atom_offset_end_low_exit_stick 12
|
||||
|
||||
enum {
|
||||
atom_offset_dpad_left_exit_dpad_left = _atom_offset_dpad_left_exit_dpad_left,
|
||||
atom_offset_dpad_right_exit_dpad_right = _atom_offset_dpad_right_exit_dpad_right,
|
||||
atom_offset_dead_zone_low_check_dead_low_active = _atom_offset_dead_zone_low_check_dead_low_active,
|
||||
atom_offset_dead_zone_high_check_dead_high_active = _atom_offset_dead_zone_high_check_dead_high_active,
|
||||
atom_offset_dead_zone_skip_exit_stick = _atom_offset_dead_zone_skip_exit_stick,
|
||||
atom_offset_end_low_exit_stick = _atom_offset_end_low_exit_stick,
|
||||
};
|
||||
|
||||
#pragma endregion hello_joypad
|
||||
|
||||
@@ -0,0 +1,638 @@
|
||||
#ifdef INTELLISENSE_DIRECTIVES
|
||||
# pragma once
|
||||
# include "duffle/gen/macs.h"
|
||||
# include "duffle/gen/offsets.h"
|
||||
# include "duffle/dsl.atom.h"
|
||||
# include "duffle/lottes_tape.h"
|
||||
# include "duffle/mips.h"
|
||||
# include "duffle/gte.h"
|
||||
# include "duffle/gp.h"
|
||||
# include "duffle/pad.h"
|
||||
# include "duffle/word_count.metadata.h"
|
||||
# include "duffle/psyq.h"
|
||||
# include "duffle/math.atom.c"
|
||||
# include "duffle/mips.atom.c"
|
||||
# include "duffle/gte.atom.c"
|
||||
# include "duffle/gp.atom.c"
|
||||
# include "duffle/psyq.atom.c"
|
||||
# include "gen/offsets.h"
|
||||
# include "gen/macs.h"
|
||||
# include "hello_joypad.h"
|
||||
#endif
|
||||
|
||||
ATOM_FILE_DEBUGGER_LINE_MARKER(hello_joypad_atom_c);
|
||||
|
||||
#pragma region MACs (Mips Atom components)
|
||||
|
||||
FI_ Slice_MipsCode ac_put_disp_env(U4 reg_transfer, U4 reg_base, U2 port)
|
||||
MipsAtomComp_Proc_(ac_put_disp_env, {
|
||||
// Emits 5 GP0 commands for buffer 0 (display_area = (0,0,320,240)).
|
||||
// Sequence per libpsyx PutDispEnv: DrawArea TL → DrawArea BR → Mask → DrawArea TL → DrawArea BR
|
||||
mac_gcmd_push(gp0_word_draw_area_top_left_origin, reg_transfer, reg_base, port),
|
||||
mac_gcmd_push(gp0_word_draw_area_bottom_right_320x240, reg_transfer, reg_base, port),
|
||||
mac_gcmd_push(gp0_word_set_mask_bit(), reg_transfer, reg_base, port),
|
||||
mac_gcmd_push(gp0_word_draw_area_top_left_origin, reg_transfer, reg_base, port),
|
||||
mac_gcmd_push(gp0_word_draw_area_bottom_right_320x240, reg_transfer, reg_base, port),
|
||||
})
|
||||
|
||||
FI_ Slice_MipsCode ac_put_draw_env(U4 reg_transfer, U4 reg_base, U2 port)
|
||||
MipsAtomComp_Proc_(ac_put_draw_env, {
|
||||
/*
|
||||
* ORIGIN: each code word corresponds to the EXACT value libpsyx's PutDrawEnv function would compute for the same DrawEnv settings.
|
||||
* References:
|
||||
* - libpsyx source: `toolchain/psyq-4_7/lib/libgpu.a` (binary, function `PutDrawEnv`)
|
||||
* - PSX-SPX doc: https://problemkaputt.de/psx-spx.htm#gputdrawingcommands
|
||||
* - PSYQ SDK: `setdrawenv` / `makelongdr_env` source
|
||||
* - NOCASH PSX spec: §"GP0(E1h) Draw Mode setting" through §"DR_ENV"
|
||||
*
|
||||
* The 16-word format is documented in the PSYQ SDK manual and on NOCASH's PSX-spec.txt. The libpsyx reference is at:
|
||||
* ./toolchain/psyq-4_7/lib/libgpu.a
|
||||
* (binary; the PutDrawEnv implementation builds the 16-word DR_ENV from the user's DRAWENV struct and emits it via GP0 GPU commands.)
|
||||
*
|
||||
* Word indices (libpsyx PutDrawEnv / SetDrawEnv order):
|
||||
* tag = (length << 24) | addr — 16-word packet (1 tag + 15 code)
|
||||
* code[0] = DrawMode (dfe=1, dtd=0, tpage=0) — must come first per libpsyx
|
||||
* code[1] = TextureWindow (tw=(0,0)) — bare-cmd word; GPU uses current state
|
||||
* code[2] = DrawArea top-left (clip.x=0, clip.y=240)
|
||||
* code[3] = DrawArea bottom-right (clip.x+w=320, clip.y+h=480)
|
||||
* code[4] = DrawOffset (ofs=(0,0)) — bare-cmd word
|
||||
* code[5] = Mask (dtd=0, dfe=1, isbg=1) — 0xE6 cmd + isbg bit
|
||||
* code[6] = Initial-bg-color (isbg=1, r=7, g=7, b=7)
|
||||
* code[7] = DrawMode (isbg=1, tpage=0) — re-asserts DrawMode with isbg
|
||||
* code[8..10] = padding (NOP) — 3 words to fill the packet
|
||||
* code[11..12] = TextureWindow bottom-right — defaults to (0,0,0,0)
|
||||
* code[13..14] = padding (NOP) — completes the 16-word packet
|
||||
*/
|
||||
mac_gcmd_push(gp0_dr_env_tag, reg_transfer, reg_base, port), /* tag (length=15 << 24, addr=0) — packet header for the DR_ENV sequence. The GPU needs this to recognize the next 15 words as a DR_ENV packet and trigger the isbg auto-clear. */
|
||||
mac_gcmd_push(gp0_word_draw_mode_drawing_allowed, reg_transfer, reg_base, port), /* code[0] DrawMode (dfe=1, dtd=0, tpage=0) */
|
||||
mac_gcmd_push(gp0_word_set_texture_window(), reg_transfer, reg_base, port), /* code[1] TextureWindow (tw=(0,0)) */
|
||||
mac_gcmd_push(enc_gp0_draw_area_tl_word(0, ScreenRes_Y), reg_transfer, reg_base, port), /* code[2] DrawArea top-left (clip.x=0, clip.y=ScreenRes_Y=240) */
|
||||
mac_gcmd_push(gp0_word_draw_area_bottom_right_320x240, reg_transfer, reg_base, port), /* code[3] DrawArea bottom-right (clip.x+w=320, clip.y+h=480) */
|
||||
|
||||
mac_gcmd_push(gp0_word_set_draw_offset(), reg_transfer, reg_base, port), /* code[4] DrawOffset (ofs=(0,0)) — bare-cmd word; the GPU uses the current state machine. */
|
||||
mac_gcmd_push(gp0_word_dr_env_mask(), reg_transfer, reg_base, port), /* code[5] Mask (dtd=0, dfe=1, isbg=1) — 0xE6 cmd + isbg bit. */
|
||||
mac_gcmd_push(gp0_word_dr_env_bg_color_cmd(1, 7, 7, 7), reg_transfer, reg_base, port), /* code[6] Initial-bg-color + auto-clear (isbg=1, r=7, g=7, b=7). */
|
||||
mac_gcmd_push(gp0_word_dr_env_draw_mode(1), reg_transfer, reg_base, port), /* code[7] Re-assert DrawMode with isbg=1 (isbg-flag set; the 0xE1 cmd byte plus isbg only). */
|
||||
|
||||
/* code[8..10] Padding (NOP — GPU discards; the DR_ENV requires 16 words total). */
|
||||
mac_gcmd_push(gp0_word_nop(), reg_transfer, reg_base, port),
|
||||
mac_gcmd_push(gp0_word_nop(), reg_transfer, reg_base, port),
|
||||
mac_gcmd_push(gp0_word_nop(), reg_transfer, reg_base, port),
|
||||
|
||||
/* code[11..12] TextureWindow bottom-right (tw.x+tw.w=0, tw.y+tw.h=0) — libpsyx emits twice. */
|
||||
mac_gcmd_push(gp0_word_set_texture_window(), reg_transfer, reg_base, port),
|
||||
mac_gcmd_push(gp0_word_set_texture_window(), reg_transfer, reg_base, port),
|
||||
|
||||
/* code[13..14] Padding (NOP) — completes the 16-word packet. */
|
||||
mac_gcmd_push(gp0_word_nop(), reg_transfer, reg_base, port),
|
||||
mac_gcmd_push(gp0_word_nop(), reg_transfer, reg_base, port),
|
||||
})
|
||||
|
||||
#pragma endregion MACs
|
||||
|
||||
#pragma region Baked Atoms
|
||||
|
||||
enum {
|
||||
R_ScreenX = R_T5 atom_reg atom_type(U2),
|
||||
R_ScreenY = R_T6 atom_reg atom_type(U2),
|
||||
R_ScreenBuf = R_T7 atom_reg, /* Caller-pinned: & smem.screen_buf */
|
||||
#define R_ScreenBuf_Code R_T7_Code
|
||||
};
|
||||
//screen_env_init. Mirrors the libpsyx's SetDefDispEnv + SetDefDrawEnv + the manual enable_auto_clear / initial_bg_color writes.
|
||||
internal MipsAtom_(screen_env_init) atom_info(atom_phase(screen_init)
|
||||
, atom_reads(R_T0, R_ScreenX, R_ScreenY, R_ScreenBuf)
|
||||
, atom_writes(R_T0, R_ScreenX, R_ScreenY)
|
||||
) {
|
||||
/* display[0] = (0, 0, 320, 240); rest of struct zeroed. */
|
||||
add_ui(R_ScreenX, R_0, ScreenRes_X), add_ui(R_ScreenY, R_0, ScreenRes_Y),
|
||||
mac_store_v2s2(R_ScreenX, R_ScreenY, R_ScreenBuf, O_(DisplayEnv,display_area.width) + OA_(DoubleBuffer,display,0)),
|
||||
store_word(R_0, R_ScreenBuf, O_(DisplayEnv,display_area) + OA_(DoubleBuffer,display,0)),
|
||||
store_word(R_0, R_ScreenBuf, O_(DisplayEnv,screen) + OA_(DoubleBuffer,display,0)),
|
||||
store_word(R_0, R_ScreenBuf, O_(DisplayEnv,vinterlace) + OA_(DoubleBuffer,display,0)),
|
||||
|
||||
/* display[1] = (0, 240, 320, 240); rest of struct zeroed. */
|
||||
mac_store_rects2(R_0, R_ScreenY, R_ScreenX, R_ScreenY, R_ScreenBuf, O_(DisplayEnv,display_area) + OA_(DoubleBuffer,display,1)),
|
||||
store_word(R_0, R_ScreenBuf, O_(DisplayEnv,screen) + OA_(DoubleBuffer,display,1)),
|
||||
store_word(R_0, R_ScreenBuf, O_(DisplayEnv,vinterlace) + OA_(DoubleBuffer,display,1)),
|
||||
|
||||
mac_store_rects2(R_0, R_ScreenY, R_ScreenX, R_ScreenY, R_ScreenBuf, O_(DrawEnv,clip_area) + OA_(DoubleBuffer,draw,0)), /* draw[0].clip_area = (0, 240, 320, 240). C11's SetDefDrawEnv writes clip.y = y_arg. */
|
||||
mac_store_v2s2( R_0, R_ScreenY, R_ScreenBuf, O_(DrawEnv,drawing_offset[0]) + OA_(DoubleBuffer,draw,0)), /* draw[0].drawing_offset[0] = (0, 240); C11 passes y_arg as ofs. */
|
||||
|
||||
mac_store_v2s2(R_ScreenX, R_ScreenY, R_ScreenBuf, O_(DrawEnv,clip_area.width) + OA_(DoubleBuffer,draw,1)),
|
||||
|
||||
/* draw[0].texture_window = (0, 0, 0, 0); two word-zeroes cover the full 8-byte tw field. */
|
||||
store_word(R_0, R_ScreenBuf, O_(DrawEnv,texture_window.x) + OA_(DoubleBuffer,draw,0)),
|
||||
store_word(R_0, R_ScreenBuf, O_(DrawEnv,texture_window.width) + OA_(DoubleBuffer,draw,0)),
|
||||
|
||||
store_word(R_0, R_ScreenBuf, O_(DrawEnv,drawing_offset[0].x) + OA_(DoubleBuffer,draw,1)),
|
||||
store_word(R_0, R_ScreenBuf, O_(DrawEnv,texture_window.x) + OA_(DoubleBuffer,draw,1)),
|
||||
store_word(R_0, R_ScreenBuf, O_(DrawEnv,texture_window.width) + OA_(DoubleBuffer,draw,1)),
|
||||
|
||||
/* draw[0].texture_page = 10 (gp0_tpage_default). C11 SetDefDrawEnv at C11_only.elf:0x8001273C writes the same 0x0A. . */
|
||||
add_ui(R_T0, R_0, gp0_tpage_default),
|
||||
store_half(R_T0, R_ScreenBuf, O_(DrawEnv,texture_page) + OA_(DoubleBuffer,draw,0)),
|
||||
store_half(R_T0, R_ScreenBuf, O_(DrawEnv,texture_page) + OA_(DoubleBuffer,draw,1)),
|
||||
|
||||
/* draw[0] control bytes: flag_dither=1, flag_draw_on_display=1 (the dfe bit per psx-spx; libpsyx sets it via `SetDefDrawEnv`'s conditional at C11_only.elf:0x80012728), enable_auto_clear=1. Each byte is named;
|
||||
* the previous `store_word(R_0, ..., +20)` overwrote all four with zero. */
|
||||
add_ui(R_T0, R_0, 1),
|
||||
store_byte(R_T0, R_ScreenBuf, O_(DrawEnv,flag_dither) + OA_(DoubleBuffer,draw,0)),
|
||||
store_byte(R_T0, R_ScreenBuf, O_(DrawEnv,flag_draw_on_display) + OA_(DoubleBuffer,draw,0)),
|
||||
store_byte(R_T0, R_ScreenBuf, O_(DrawEnv,enable_auto_clear) + OA_(DoubleBuffer,draw,0)),
|
||||
store_byte(R_T0, R_ScreenBuf, O_(DrawEnv,flag_dither) + OA_(DoubleBuffer,draw,1)),
|
||||
store_byte(R_T0, R_ScreenBuf, O_(DrawEnv,flag_draw_on_display) + OA_(DoubleBuffer,draw,1)),
|
||||
store_byte(R_T0, R_ScreenBuf, O_(DrawEnv,enable_auto_clear) + OA_(DoubleBuffer,draw,1)),
|
||||
|
||||
/* draw[0].initial_bg_color = (r=7, g=7, b=7). */
|
||||
add_ui(R_T0, R_0, 7),
|
||||
mac_store_rgb8(R_T0,R_T0,R_T0, R_ScreenBuf, O_(DrawEnv,initial_bg_color) + OA_(DoubleBuffer,draw,0)),
|
||||
mac_store_rgb8(R_T0,R_T0,R_T0, R_ScreenBuf, O_(DrawEnv,initial_bg_color) + OA_(DoubleBuffer,draw,1)),
|
||||
|
||||
mac_yield(),
|
||||
};
|
||||
|
||||
enum {
|
||||
R_IO_BaseAddr = R_T4 atom_reg, /* Caller-pinned: IO_BASE_ADDR = 0x1F800000 */
|
||||
#define R_IO_BaseAddr_Code R_T4_Code
|
||||
};
|
||||
internal MipsAtom_(gp_screen_init) atom_info(atom_phase(screen_init), atom_reads(R_IO_BaseAddr)) {
|
||||
store_word(R_0, R_IO_BaseAddr, GPIO_PORT1_OFFSET), /* GP1(00h) Reset */
|
||||
mac_gcmd_push(gp1_word_ResetCmdBuffer(), R_T5, R_IO_BaseAddr, GPIO_PORT1_OFFSET), /* GP1(01h) ClearFIFO */
|
||||
mac_gcmd_push(gp1_word_AcknowledgeIRQ(), R_T5, R_IO_BaseAddr, GPIO_PORT1_OFFSET), /* GP1(02h) AckIRQ */
|
||||
mac_gcmd_push(gp1_word_DisplayOn(), R_T5, R_IO_BaseAddr, GPIO_PORT1_OFFSET), /* GP1(03h) Display ON */
|
||||
mac_gcmd_push(gp1_word_dma_to_gpu(), R_T5, R_IO_BaseAddr, GPIO_PORT1_OFFSET), /* GP1(04h) DMADirection=2 (CPU→GPU). libpsyx's per-frame PutDrawEnv/DrawOTag use DMA2; without this the DMA queue never drains. */
|
||||
mac_gcmd_push(gp1_word_StartDisplayArea(), R_T5, R_IO_BaseAddr, GPIO_PORT1_OFFSET), /* GP1(05h) StartDisplayArea (X=0, Y=0) */
|
||||
|
||||
/* GP1: DisplayMode + Display Ranges */
|
||||
mac_gcmd_push(gp1_word_display_mode_320x240_15bit_ntsc, R_T5, R_IO_BaseAddr, GPIO_PORT1_OFFSET),
|
||||
mac_gcmd_push(gp1_word_horizontal_range_ntsc, R_T5, R_IO_BaseAddr, GPIO_PORT1_OFFSET),
|
||||
mac_gcmd_push(gp1_word_vertical_range_ntsc, R_T5, R_IO_BaseAddr, GPIO_PORT1_OFFSET),
|
||||
|
||||
/* GTE: SetGeomOffset (OFX, OFY) — ScreenRes_CenterX, ScreenRes_CenterY. */
|
||||
load_upper_i(R_T5, ScreenRes_CenterX), gte_mv_to_ctrl_r(R_T5, gte_cr_OFX_Code),
|
||||
load_upper_i(R_T5, ScreenRes_CenterY), gte_mv_to_ctrl_r(R_T5, gte_cr_OFY_Code),
|
||||
|
||||
/* GTE: SetGeomScreen (H) — CR26 (per PSX-SPX / libpsyx), value is the raw projection-plane distance, NOT shifted. */
|
||||
add_ui(R_T5, R_0, ScreenZ), gte_mv_to_ctrl_r(R_T5, gte_cr_H_Code),
|
||||
|
||||
/* GP1: DisplayEnable — bit 0 = 0 (Display ON). */
|
||||
mac_gcmd_push(gp1_word_DisplayOn(), R_T5, R_IO_BaseAddr, GPIO_PORT1_OFFSET),
|
||||
mac_yield(),
|
||||
};
|
||||
|
||||
enum {
|
||||
R_PrimCursor = R_T7 atom_reg atom_type(U4*), /* VRAM output cursor (primitive buffer) */
|
||||
R_FaceCursor = R_T4 atom_reg atom_type(V4_S2*), /* Cube face-index cursor (V4_S2*); floor context switches to V3_S2* via atom_phase */
|
||||
R_VertBase = R_T5 atom_reg atom_type(V3_S2*), /* Base address of the vertex array */
|
||||
R_OtBase = R_T6 atom_reg atom_type(U4*), /* Base address of the Ordering Table */
|
||||
#define R_PrimCursor_Code R_T7_Code
|
||||
#define R_FaceCursor_Code R_T4_Code
|
||||
#define R_VertBase_Code R_T5_Code
|
||||
#define R_OtBase_Code R_T6_Code
|
||||
};
|
||||
|
||||
typedef Struct_(Binds_CubeTri) {
|
||||
U4 PrimCursor;
|
||||
V4_S2* FaceCursor;
|
||||
V3_S2* VertBase;
|
||||
U4* OtBase;
|
||||
};
|
||||
internal MipsAtom_(rbind_cube_g4_face) atom_info(atom_bind(Binds_CubeTri), atom_phase(cube_g4)
|
||||
, atom_reads(R_TapePtr)
|
||||
, atom_writes(R_PrimCursor, R_FaceCursor, R_VertBase, R_OtBase, R_TapePtr)
|
||||
){
|
||||
/* Pop 4 arguments from the tape directly into the workspace registers */
|
||||
load_word(R_PrimCursor, R_TapePtr, O_(Binds_CubeTri,PrimCursor)),
|
||||
load_word(R_FaceCursor, R_TapePtr, O_(Binds_CubeTri,FaceCursor)),
|
||||
load_word(R_VertBase, R_TapePtr, O_(Binds_CubeTri,VertBase)),
|
||||
load_word(R_OtBase, R_TapePtr, O_(Binds_CubeTri,OtBase)),
|
||||
add_ui_self( R_TapePtr, S_(Binds_CubeTri)),
|
||||
mac_yield()
|
||||
};
|
||||
|
||||
// cube_g4_face — Draw one cube face (Gouraud-shaded quad) via the GTE tape pipeline
|
||||
internal
|
||||
MipsAtom_(cube_g4_face) atom_info(atom_phase(cube_g4),
|
||||
atom_reads( R_PrimCursor, R_FaceCursor, R_VertBase, R_OtBase),
|
||||
atom_writes(R_PrimCursor, R_FaceCursor)
|
||||
){
|
||||
load_half_u(R_T0, R_FaceCursor, 0 * S_(S2)),
|
||||
load_half_u(R_T1, R_FaceCursor, 1 * S_(S2)),
|
||||
load_half_u(R_T2, R_FaceCursor, 2 * S_(S2)),
|
||||
load_half_u(R_T3, R_FaceCursor, 3 * S_(S2)),
|
||||
|
||||
mac_gte_load_tri_verts(R_VertBase, R_T0, R_T1, R_T2),
|
||||
nop2, gte_cmdw_rotate_translate_perspective_triple, // required cpu -> gte delay slot
|
||||
gte_cmdw_nclip,
|
||||
|
||||
gte_mv_from_data_r(R_T0, C2_MAC0), nop,
|
||||
branch_le_zero(R_T0, atom_offset(cull, cube_g4_face_exit)),
|
||||
/* BD-slot: write the prim tag (R_0=0; overwrites the legacy tag word in the prim_buffer).
|
||||
* If branch IS taken (face culled), the body is skipped and this 0-tag is stranded —
|
||||
* harmless because the OT entry that points to this prim is created later, only on the body path. */
|
||||
store_word(R_0, R_PrimCursor, O_(Poly_G4, tag)),
|
||||
shift_lleft(R_AT, R_T3, v3s2_byteoff), add_u(R_AT, R_AT, R_VertBase),
|
||||
load_word(R_V0, R_AT, O_(V3_S2, x)), load_word(R_V1, R_AT, O_(V3_S2, z)),
|
||||
gte_mv_to_data_r(R_V0, C2_VXY0), gte_mv_to_data_r(R_V1, C2_VZ0),
|
||||
|
||||
mac_gte_store_g4_p012(R_PrimCursor),
|
||||
gte_cmdw_rotate_translate_perspective_single,
|
||||
mac_gte_store_g4_p3(R_PrimCursor),
|
||||
|
||||
gte_cmdw_avg_sort_z4,
|
||||
gte_mv_from_data_r(R_T1, C2_OTZ),
|
||||
add_ui( R_AT, R_0, OrderingTbl_Len),
|
||||
set_lt_u( R_AT, R_T1, R_AT),
|
||||
|
||||
branch_equal(R_AT, R_0, atom_offset(bounds_chk, cube_g4_face_exit)), nop,
|
||||
mac_insert_ot_tag_g4(R_OtBase, R_PrimCursor),
|
||||
mac_format_g4_color(R_PrimCursor,
|
||||
/* c0 magenta */ 0xFF, 0x00, 0xFF,
|
||||
/* c1 yellow */ 0xFF, 0xFF, 0x00,
|
||||
/* c2 cyan */ 0x00, 0xFF, 0xFF,
|
||||
/* c3 green */ 0x00, 0xFF, 0x00),
|
||||
// end: branch(bounds_chk)
|
||||
// end: branch(cull)
|
||||
|
||||
atom_label(cube_g4_face_exit)
|
||||
add_ui_self(R_PrimCursor, S_(Poly_G4)), /* 9 words = Poly_G4 */
|
||||
add_ui_self(R_FaceCursor, S_(S2) * 4), /* 4 × S2 = 8 bytes */
|
||||
mac_yield()
|
||||
};
|
||||
|
||||
typedef Struct_(Binds_FloorTri) {
|
||||
U4 PrimCursor;
|
||||
V3_S2* FaceCursor;
|
||||
V3_S2* VertBase;
|
||||
U4* OtBase;
|
||||
};
|
||||
internal
|
||||
MipsAtom_(rbind_floor_f3_face) atom_info(atom_bind(Binds_FloorTri), atom_phase(floor_f3)
|
||||
, atom_reads(R_TapePtr)
|
||||
, atom_writes(R_PrimCursor, R_FaceCursor, R_VertBase, R_OtBase, R_TapePtr)
|
||||
){
|
||||
/* Pop 4 arguments from the tape directly into the workspace registers */
|
||||
load_word(R_PrimCursor, R_TapePtr, O_(Binds_FloorTri,PrimCursor)),
|
||||
load_word(R_FaceCursor, R_TapePtr, O_(Binds_FloorTri,FaceCursor)),
|
||||
load_word(R_VertBase, R_TapePtr, O_(Binds_FloorTri,VertBase)),
|
||||
load_word(R_OtBase, R_TapePtr, O_(Binds_FloorTri,OtBase)),
|
||||
add_ui_self( R_TapePtr, S_(Binds_FloorTri)),
|
||||
mac_yield()
|
||||
};
|
||||
|
||||
// atom_dbg_skip
|
||||
internal
|
||||
MipsAtom_(floor_f3_face) atom_info(atom_phase(floor_f3)
|
||||
, atom_reads( R_PrimCursor, R_FaceCursor, R_VertBase, R_OtBase)
|
||||
, atom_writes(R_PrimCursor, R_FaceCursor)
|
||||
) {
|
||||
mac_load_tri_indices( R_FaceCursor, R_T0, R_T1, R_T2),
|
||||
mac_gte_load_tri_verts(R_VertBase, R_T0, R_T1, R_T2),
|
||||
nop2, gte_cmdw_rotate_translate_perspective_triple, // 2 nops retire the final cpu -> gte writes before RTPT
|
||||
gte_cmdw_nclip,
|
||||
|
||||
/* Culling (Branch forward if Backface) */
|
||||
gte_mv_from_data_r(R_T0, C2_MAC0),
|
||||
nop, branch_le_zero(R_T0, atom_offset(culling, floor_f3_face_exit)), nop, // required gte -> cpu load-delay slot.
|
||||
/* Format Primitive */
|
||||
mac_gte_store_f3(R_PrimCursor),
|
||||
|
||||
/* Calculate Depth */
|
||||
gte_avg_sort_z3,
|
||||
gte_mv_from_data_r(R_T1, C2_OTZ),
|
||||
/* Bounds Check OTZ < 2048 (Branch forward to skip insertion) */
|
||||
add_ui( R_AT, R_0, OrderingTbl_Len),
|
||||
set_lt_u( R_AT, R_T1, R_AT),
|
||||
branch_equal(R_AT, R_0, atom_offset(bounds_chk, floor_f3_face_exit)), nop,
|
||||
mac_format_f3_color(R_PrimCursor, 0xFF, 0xFF, 0xFF), // RGB-form (R=FF, G=FF, B=FF = white)
|
||||
mac_insert_ot_tag_f3(R_OtBase, R_PrimCursor), /* Insert into Ordering Table Linked List */
|
||||
add_ui_self(R_PrimCursor, S_(Poly_F3)), /* Advance Prim Cursor (5 words) */
|
||||
// Note(Ed): No bounds checking, should be checked before atom runs.
|
||||
// end: branch(bounds_chk)
|
||||
// end: branch(culling)
|
||||
|
||||
/* Advance Input Cursor & Yield (Both branch targets land here) */
|
||||
atom_label(floor_f3_face_exit)
|
||||
add_ui_self(R_FaceCursor, S_(S2) * 4), /* Advance Face Cursor (4 * S2 = 8 bytes) */
|
||||
mac_yield()
|
||||
};
|
||||
|
||||
typedef Struct_(Binds_SyncPrimitiveArena) { U4 used; U4 cursor; };
|
||||
internal MipsAtom_(sync_primitive_arena) atom_info(atom_bind(Binds_SyncPrimitiveArena)
|
||||
, atom_reads( R_TapePtr, R_PrimCursor)
|
||||
, atom_writes(R_TapePtr)
|
||||
){
|
||||
load_word(R_AT, R_TapePtr, O_(Binds_SyncPrimitiveArena,used)),
|
||||
load_word(R_T0, R_TapePtr, O_(Binds_SyncPrimitiveArena,cursor)),
|
||||
add_ui_self( R_TapePtr, S_(Binds_SyncPrimitiveArena)),
|
||||
/* Calculate byte offset and store directly back to RAM */
|
||||
sub_u( R_T0, R_PrimCursor, R_T0), // R_T0 = R_PrimCursor - binds.cursor
|
||||
store_word(R_T0, R_AT, 0), // R_AT[0] = R_T0
|
||||
mac_yield()
|
||||
};
|
||||
|
||||
/* ----- pad_bios_snapshot -----
|
||||
* Per-frame snapshot of one BIOS pad buffer into PadState.
|
||||
* Decoder (branch ladder on raw[0] status + raw[1] id):
|
||||
* 1. raw[0] == 0xFF -> Disconnected (buttons=0, axes=0x80)
|
||||
* 2. raw[0]==0 && raw[1]==0 -> Pending (buttons=0, axes=0x80)
|
||||
* 3. raw[1] == 0x41 -> Digital (buttons normalized; axes=0x80)
|
||||
* 4. raw[1] == 0x53 -> AnalogStick (buttons normalized; axes from raw[4..7])
|
||||
* 5. raw[1] in 0x7x -> AnalogPad (buttons normalized; axes from raw[4..7])
|
||||
* 6. else -> Unsupported (buttons=0, axes=0x80)
|
||||
*
|
||||
* Buttons normalization: byte_swap16((~raw_buttons) & 0xFFFF).
|
||||
* raw_buttons = load_half_u(raw, 2) = raw[2] | (raw[3] << 8).
|
||||
* byte_swap16(x) = (x >> 8) | (x << 8); nor(x, R_0) = ~x. store_half truncates to 16 bits so the upper-16 mask is implicit in the store.
|
||||
*
|
||||
* Register use (atom-local; no wave-context touched):
|
||||
* R_T0 = raw base (kept throughout; axes loads read raw[4..7] from R_T0)
|
||||
* R_T1 = state base (kept throughout; all stores go through R_T1)
|
||||
* R_T2 = raw[0] status (alive across the disc/pending/id dispatch, then dead)
|
||||
* R_T3 = raw[1] id (alive across the id dispatch, then dead)
|
||||
* R_T4 = scratch (shifts, compares, immediate loads, store values)
|
||||
* R_T5 = scratch (parallel lui+ori for the 0x80808080 axes constant + byte-swap target)
|
||||
*/
|
||||
enum {
|
||||
R_PadRaw = R_T0 atom_reg atom_type(U1),
|
||||
R_PadState = R_T1 atom_reg,
|
||||
R_RawStatus = R_T2 atom_reg,
|
||||
R_RawId = R_T3 atom_reg,
|
||||
};
|
||||
typedef Struct_(Binds_PadBiosSnapshot) {
|
||||
PadBiosRaw* raw;
|
||||
PadState* state;
|
||||
};
|
||||
internal MipsAtom_(pad_bios_snapshot) atom_info(atom_bind(Binds_PadBiosSnapshot)
|
||||
, atom_reads( R_PadRaw, R_PadState, R_RawStatus, R_RawId, R_T4, R_T5, R_TapePtr)
|
||||
, atom_writes(R_PadRaw, R_PadState, R_RawStatus, R_RawId, R_T4, R_T5, R_TapePtr)
|
||||
) {
|
||||
/* === Bind consumption: T0 = raw, T1 = state, advance R_TapePtr by 8. */
|
||||
load_word(R_PadRaw, R_TapePtr, O_(Binds_PadBiosSnapshot,raw)),
|
||||
load_word(R_PadState, R_TapePtr, O_(Binds_PadBiosSnapshot,state)),
|
||||
add_ui_self( R_TapePtr, S_(Binds_PadBiosSnapshot)),
|
||||
|
||||
/* === Read raw[0] (status) + raw[1] (id) */
|
||||
load_byte_u(R_RawStatus, R_PadRaw, 0),
|
||||
load_byte_u(R_RawId, R_PadRaw, 1),
|
||||
|
||||
atom_label(snap_root) /* === Case 1: Disconnected (status == 0xFF). */
|
||||
add_ui(R_T4, R_0, 0xFF), branch_ne(R_RawStatus, R_T4, atom_offset(snap_root, skip_disconnected)),
|
||||
/* BD-slot: pre-compute PadStatus_Disconnected. Branch reads R_T4=0xFF in EX before this WB completes.
|
||||
* If branch NOT taken (fall through to pending/id_dispatch), R_T4 is overwritten by the next case body's add_ui — harmless. */
|
||||
|
||||
atom_label(disconnected) /* === Disconnected body. */
|
||||
/* R_T4 = PadStatus_Disconnected from snap_root BD-slot. */
|
||||
store_word(R_T4, R_PadState, O_(PadState,status)),
|
||||
store_half(R_0, R_PadState, O_(PadState,buttons)),
|
||||
/* axes = 0x80808080 (centered) — single sw writes the 4-byte axes block at offset 8 (left_x, left_y, right_x, right_y). */
|
||||
load_upper_i(R_T4, 0x8080), or_i_self(R_T4, 0x8080),
|
||||
store_word( R_T4, R_PadState, O_(PadState,left_x)),
|
||||
store_byte( R_RawId, R_PadState, O_(PadState,id)),
|
||||
jump_rel(atom_offset(disconnected, snap_end)),
|
||||
/* BD-slot: load next atom's entry point (replaces the nop).
|
||||
* The unconditional branch always jumps to snap_end, where mac_yield_tail()
|
||||
* transfers control to R_AtomJmp without re-loading it. */
|
||||
mac_yield_load(),
|
||||
atom_label(skip_disconnected)
|
||||
|
||||
/* === Case 2: Pending (status == 0 && id == 0)
|
||||
* Combined check: if (status | id) != 0 then skip to id_dispatch.
|
||||
* Falls through to the Pending case only when both are zero. */
|
||||
or_u_self(R_RawStatus, R_RawId), branch_ne(R_RawStatus, R_0, atom_offset(case_2, id_dispatch)),
|
||||
/* BD-slot: pre-compute PadStatus_Pending. Branch reads R_RawStatus in EX before this WB completes.
|
||||
* If branch NOT taken (fall through to id_dispatch), R_T4 is overwritten by the digital/analog body add_ui — harmless. */
|
||||
|
||||
atom_label(pending) /* === Pending body */
|
||||
/* R_T4 = PadStatus_Pending from case_2 BD-slot. */
|
||||
store_word(R_T4, R_PadState, O_(PadState,status)),
|
||||
store_half(R_0, R_PadState, O_(PadState,buttons)),
|
||||
/* axes = 0x80808080 (centered) — single sw writes the 4-byte axes block at offset 8 (left_x, left_y, right_x, right_y). */
|
||||
load_upper_i(R_T4, 0x8080), or_i_self(R_T4, 0x8080),
|
||||
store_word( R_T4, R_PadState, O_(PadState,left_x)),
|
||||
store_byte( R_RawId, R_PadState, O_(PadState,id)),
|
||||
jump_rel(atom_offset(pending, snap_end)),
|
||||
mac_yield_load(),
|
||||
|
||||
atom_label(id_dispatch) /* === Case 3-6: ID dispatch */
|
||||
add_ui(R_T4, R_0, 0x41), branch_ne(R_RawId, R_T4, atom_offset(id_dispatch, try_analog_stick)),
|
||||
/* BD-slot: pre-compute PadStatus_Digital. Branch reads R_RawId in EX before this WB completes.
|
||||
* If branch NOT taken (fall through to try_analog_stick), R_T4 is overwritten by the analog body add_ui. */
|
||||
|
||||
/* === Digital body (status, buttons normalize, axes=0x80, id, branch. */
|
||||
/* R_T4 = PadStatus_Digital from id_dispatch BD-slot. */
|
||||
store_word( R_T4, R_PadState, O_(PadState,status)),
|
||||
load_half_u(R_T4, R_PadRaw, 2 * S_(U1)),
|
||||
/* Fill R_T4's load-delay slot with the 0x80808080 axes constant into R_T5
|
||||
* (R_T5 is dead on this path; it's only consumed at the analog_pad range check). */
|
||||
load_upper_i(R_T5, 0x8080), or_i_self(R_T5, 0x8080),
|
||||
nor_u( R_T4, R_T4, R_0), /* raw_buttons is already in host bit order; no swap needed */
|
||||
store_half( R_T4, R_PadState, O_(PadState,buttons)),
|
||||
|
||||
/* axes = 0x80808080 (centered) — single sw writes the 4-byte axes block at offset 8 (left_x, left_y, right_x, right_y). */
|
||||
store_word( R_T5, R_PadState, O_(PadState,left_x)),
|
||||
add_ui( R_T4, R_0, 0x41),
|
||||
store_byte( R_T4, R_PadState, O_(PadState,id)),
|
||||
|
||||
jump_rel(atom_offset(id_dispatch, snap_end)),
|
||||
mac_yield_load(),
|
||||
|
||||
atom_label(try_analog_stick) /* === Case 4: AnalogStick (id == 0x53)*/
|
||||
add_ui(R_T4, R_0, 0x53), branch_ne(R_RawId, R_T4, atom_offset(try_analog_stick, try_analog_pad)),
|
||||
/* BD-slot: pre-compute PadStatus_AnalogStick. Branch reads R_RawId in EX before this WB completes.
|
||||
* If branch NOT taken (fall through to try_analog_pad), R_T4 is overwritten by the analog_pad body add_ui. */
|
||||
|
||||
atom_label(analog_stick) /* === AnalogStick body
|
||||
* Axes are loaded as two halfwords: raw[6..7] → left_xy (sh at offset 8), raw[4..5] → right_xy (sh at offset 10).
|
||||
* R_T5 holds left_xy / id-value in turn (it's dead on this path — only consumed at the analog_pad range check). */
|
||||
/* R_T4 = PadStatus_AnalogStick from try_analog_stick BD-slot. */
|
||||
store_word( R_T4, R_PadState, O_(PadState,status)),
|
||||
load_half_u( R_T4, R_PadRaw, 2 * S_(U1)), /* R_T4 = raw_buttons */
|
||||
load_half_u( R_T5, R_PadRaw, 6 * S_(U1)), /* R_T5 = left_xy; fills R_T4's load-delay slot (doesn't read R_T4) */
|
||||
nor_u( R_T4, R_T4, R_0), /* R_T4 = ~raw_buttons */
|
||||
store_half( R_T4, R_PadState, O_(PadState,buttons)),
|
||||
load_half_u( R_T4, R_PadRaw, 4 * S_(U1)), /* R_T4 = right_xy; fills R_T5's load-delay slot */
|
||||
store_half( R_T5, R_PadState, O_(PadState,left_x)), /* R_T5 settled, store left_xy */
|
||||
store_half( R_T4, R_PadState, O_(PadState,right_x)),
|
||||
add_ui( R_T5, R_0, 0x53), /* R_T5 = id value (clobbers left_xy, already stored) */
|
||||
store_byte( R_T5, R_PadState, O_(PadState,id)),
|
||||
jump_rel(atom_offset(analog_stick, snap_end)),
|
||||
mac_yield_load(),
|
||||
|
||||
atom_label(try_analog_pad) /* === Case 5-6: AnalogPad (id & 0xF0 == 0x70) */
|
||||
and_i( R_T4, R_RawId, 0xF0),
|
||||
add_ui( R_T5, R_0, 0x70),
|
||||
branch_ne(R_T4, R_T5, atom_offset(try_analog_pad, try_unsupported)),
|
||||
/* BD-slot: pre-compute PadStatus_AnalogPad. Branch reads R_T4 in EX before this WB completes.
|
||||
* If branch NOT taken (fall through to try_unsupported), R_T4 is overwritten by the unsupported body add_ui. */
|
||||
|
||||
atom_label(analog_pad) /* === AnalogPad body
|
||||
* Same shape as AnalogStick with AnalogPad status. R_T5 holds left_xy (it's dead on this path). */
|
||||
/* R_T4 = PadStatus_AnalogPad from try_analog_pad BD-slot. */
|
||||
store_word( R_T4, R_PadState, O_(PadState,status)),
|
||||
load_half_u(R_T4, R_PadRaw, 2 * S_(U1)), /* R_T4 = raw_buttons */
|
||||
load_half_u(R_T5, R_PadRaw, 6 * S_(U1)), /* R_T5 = left_xy; fills R_T4's load-delay slot */
|
||||
nor_u( R_T4, R_T4, R_0), /* R_T4 = ~raw_buttons */
|
||||
store_half( R_T4, R_PadState, O_(PadState,buttons)),
|
||||
load_half_u(R_T4, R_PadRaw, 4 * S_(U1)), /* R_T4 = right_xy; fills R_T5's load-delay slot */
|
||||
store_half( R_T5, R_PadState, O_(PadState,left_x)), /* R_T5 settled, store left_xy */
|
||||
store_half( R_T4, R_PadState, O_(PadState,right_x)),
|
||||
store_byte( R_RawId, R_PadState, O_(PadState,id)),
|
||||
|
||||
jump_rel(atom_offset(analog_pad, snap_end)),
|
||||
mac_yield_load(),
|
||||
|
||||
atom_label(try_unsupported) /* === Case 7: Unsupported — fall through from the AnalogPad range-check miss. */
|
||||
add_ui( R_T4, R_0, PadStatus_Unsupported),
|
||||
store_word(R_T4, R_PadState, O_(PadState,status)),
|
||||
store_half(R_0, R_PadState, O_(PadState,buttons)),
|
||||
/* axes = 0x80808080 (centered) — single sw writes the 4-byte axes block at offset 8 (left_x, left_y, right_x, right_y). */
|
||||
load_upper_i(R_T4, 0x8080), or_i_self(R_T4, 0x8080),
|
||||
store_word( R_T4, R_PadState, O_(PadState,left_x)),
|
||||
add_ui( R_T4, R_0, 0xFF), /* 0xFF sentinel: "unknown id" */
|
||||
store_byte( R_T4, R_PadState, O_(PadState,id)),
|
||||
/* Fall through to snap_end. */
|
||||
|
||||
atom_label(no_jump_fallthrough)
|
||||
mac_yield_load(),
|
||||
|
||||
atom_label(snap_end)
|
||||
/* NOT mac_yield() — R_AtomJmp was already loaded in the BD-slot of the case-exit branch. */
|
||||
mac_yield_tail(),
|
||||
};
|
||||
|
||||
/* ----- pad_apply_input -----
|
||||
* Reads pad[0].buttons + pad[0].left_x;
|
||||
* Applies the input-semantics deltas to cube_rot.y + floor_rot.y:
|
||||
* - D-pad Left: cube_rot.y += 30, floor_rot.y += 5
|
||||
* - D-pad Right: cube_rot.y -= 30, floor_rot.y -= 5
|
||||
* - Analog stick X (dead zone 0x70..0x90):
|
||||
* cube delta = (0x80 - left_x) >> 2 (range approx -32..+32)
|
||||
* floor delta = (0x80 - left_x) >> 5 (range approx -4..+4)
|
||||
* - D-pad + analog deltas add when used together.
|
||||
*
|
||||
* Convention:
|
||||
* pad_state = 0 means no buttons active.
|
||||
* The fail-safe zero-button value flows through unchanged, so a disconnected/fresh pad produces no rotation.
|
||||
* The branch_le_zero pattern below matches the existing pad_input_demo convention (atom body lines 248/257).
|
||||
*
|
||||
* Signed-delta trick:
|
||||
* load_byte_u zero-extends left_x to 32 bits; sub_u from 0x80 wraps to a SIGNED two's-complement value in the negative range;
|
||||
* shift_aright (sra) then correctly sign-extends the shift for both positive (left_x < 0x80) and negative (left_x > 0x80) cases.
|
||||
* Digital pads publish left_x = 0x80 → delta = 0 → no rotation, so the analog step is naturally a no-op for digital controllers.
|
||||
*/
|
||||
typedef Struct_(Binds_PadApplyInput) {
|
||||
PadState* state;
|
||||
V3_S2* cube_rot;
|
||||
V3_S2* floor_rot;
|
||||
};
|
||||
enum {
|
||||
R_PadStateT5 = R_T5 atom_reg,
|
||||
R_CubeRot = R_T1 atom_reg,
|
||||
R_FloorRot = R_T2 atom_reg,
|
||||
};
|
||||
internal MipsAtom_(pad_apply_input) atom_info(atom_bind(Binds_PadApplyInput)
|
||||
, atom_reads(R_T0, R_CubeRot, R_FloorRot, R_T3, R_T4, R_PadStateT5, R_TapePtr)
|
||||
, atom_writes( R_CubeRot, R_FloorRot)
|
||||
) {
|
||||
/* Pop Binds from tape (state, cube_rot, floor_rot) */
|
||||
load_word(R_PadStateT5, R_TapePtr, O_(Binds_PadApplyInput,state)),
|
||||
load_word(R_CubeRot, R_TapePtr, O_(Binds_PadApplyInput,cube_rot)),
|
||||
load_word(R_FloorRot, R_TapePtr, O_(Binds_PadApplyInput,floor_rot)),
|
||||
add_ui_self( R_TapePtr, S_(Binds_PadApplyInput)),
|
||||
|
||||
/* Load pad[0].buttons into R_T0. */
|
||||
load_word(R_T0, R_PadStateT5, O_(PadState,buttons)), nop,
|
||||
// Note(Ed): Potential op with delay slot?
|
||||
|
||||
/* D-pad Left: cube_rot.y += 30, floor_rot.y += 5. */
|
||||
and_i(R_T3, R_T0, pad0_(Pad_Left)), branch_le_zero(R_T3, atom_offset(dpad_left, exit_dpad_left)),
|
||||
load_half( R_T4, R_CubeRot, O_(V3_S2,y)), /* BD-slot */
|
||||
load_half( R_T3, R_FloorRot, O_(V3_S2,y)),
|
||||
add_si( R_T4, R_T4, 30),
|
||||
add_si( R_T3, R_T3, 5),
|
||||
store_half(R_T4, R_CubeRot, O_(V3_S2,y)),
|
||||
store_half(R_T3, R_FloorRot, O_(V3_S2,y)),
|
||||
atom_label(exit_dpad_left)
|
||||
|
||||
/* D-pad Right: cube_rot.y -= 30, floor_rot.y -= 5. */
|
||||
and_i(R_T3, R_T0, pad0_(Pad_Right)), branch_le_zero(R_T3, atom_offset(dpad_right, exit_dpad_right)),
|
||||
load_half( R_T4, R_CubeRot, O_(V3_S2,y)), /* BD-slot */
|
||||
load_half( R_T3, R_FloorRot, O_(V3_S2,y)),
|
||||
add_si( R_T4, R_T4, -30),
|
||||
add_si( R_T3, R_T3, -5),
|
||||
store_half(R_T4, R_CubeRot, O_(V3_S2,y)),
|
||||
store_half(R_T3, R_FloorRot, O_(V3_S2,y)),
|
||||
atom_label(exit_dpad_right)
|
||||
|
||||
/* Analog left-stick X: dead zone 0x70..0x90.
|
||||
* Cube delta = (0x80 - left_x) >> 2; floor delta = (0x80 - left_x) >> 5. */
|
||||
load_byte_u(R_T3, R_PadStateT5, O_(PadState,left_x)),
|
||||
|
||||
/* Dead-zone check: skip analog if left_x in [0x70, 0x90] inclusive. Outside dead zone on LOW side: left_x < 0x70 (strictly).
|
||||
* set_lt_u(R_T4, R_T3, R_T4=0x70) → R_T4 = (left_x < 0x70) ? 1 : 0. */
|
||||
add_ui(R_T4, R_0, 0x70), set_lt_u(R_T4, R_T3, R_T4), branch_ne(R_T4, R_0, atom_offset(dead_zone_low_check, dead_low_active)),
|
||||
add_ui(R_T4, R_0, 0x80), /* BD-slot: pre-load 0x80 for dead_low_active */
|
||||
|
||||
atom_label(dead_check_upper)
|
||||
/* left_x >= 0x70 → check upper bound. */
|
||||
load_byte_u(R_T3, R_PadStateT5, O_(PadState,left_x)), /* reload */
|
||||
add_ui( R_T4, R_0, 0x90),
|
||||
|
||||
/* R_T4 = (0x90 < left_x) ? 1 : 0 → (left_x > 0x90) ? 1 : 0 */
|
||||
set_lt_u(R_T4, R_T4, R_T3), branch_ne(R_T4, R_0, atom_offset(dead_zone_high_check, dead_high_active)),
|
||||
add_ui( R_T4, R_0, 0x80), /* BD-slot: pre-load 0x80 for dead_high_active */
|
||||
jump_rel(atom_offset(dead_zone_skip, exit_stick)),
|
||||
mac_yield_load(),
|
||||
|
||||
atom_label(dead_low_active)
|
||||
/* R_T3 = left_x (from line 632 lbu; not clobbered between dead_zone_low_check branch + its BD-slot `add_ui R_T4, 0x80`).
|
||||
* The earlier `load_byte_u(R_T3, ...)` reload was redundant and introduced a load-use hazard on the next `sub_u`.
|
||||
* R_T4 = 0x80 from the BD-slot of `dead_zone_low_check`'s branch_ne. */
|
||||
sub_u( R_T3, R_T4, R_T3), /* R_T3 = 0x80 - left_x */
|
||||
/* delta = 0x80 - left_x (positive). */
|
||||
|
||||
/* R_T4 = cube_delta */
|
||||
shift_aright(R_T4, R_T3, 2),
|
||||
load_half( R_T0, R_CubeRot, O_(V3_S2,y)),
|
||||
nop,
|
||||
add_u( R_T0, R_T0, R_T4),
|
||||
store_half( R_T0, R_CubeRot, O_(V3_S2,y)),
|
||||
/* R_T4 = floor_delta — moved into the load-delay slot of the floor load below (fills the 1-instruction gap;
|
||||
* doesn't read R_T0; R_T4 settles by the subsequent add_u). */
|
||||
load_half( R_T0, R_FloorRot, O_(V3_S2,y)),
|
||||
shift_aright(R_T4, R_T3, 5),
|
||||
add_u( R_T0, R_T0, R_T4),
|
||||
store_half( R_T0, R_FloorRot, O_(V3_S2,y)),
|
||||
|
||||
jump_rel(atom_offset(end_low, exit_stick)),
|
||||
mac_yield_load(),
|
||||
|
||||
atom_label(dead_high_active)
|
||||
/* R_T3 = left_x (from line 641 lbu in dead_check_upper; not clobbered between dead_zone_high_check branch + its BD-slot `add_ui R_T4, 0x80`).
|
||||
* The earlier `load_byte_u(R_T3, ...)` reload was redundant and introduced a load-use hazard on the next `sub_u`.
|
||||
* R_T4 = 0x80 from the BD-slot of `dead_zone_high_check`'s branch_ne. */
|
||||
sub_u( R_T3, R_T4, R_T3),
|
||||
/* delta = 0x80 - left_x (signed negative). */
|
||||
|
||||
shift_aright(R_T4, R_T3, 2), /* R_T4 = cube_delta (signed) */
|
||||
load_half( R_T0, R_CubeRot, O_(V3_S2,y)),
|
||||
nop,
|
||||
add_u( R_T0, R_T0, R_T4),
|
||||
store_half( R_T0, R_CubeRot, O_(V3_S2,y)),
|
||||
|
||||
/* R_T4 = floor_delta (signed) — moved into the load-delay slot of the floor load below. */
|
||||
load_half( R_T0, R_FloorRot, O_(V3_S2,y)),
|
||||
shift_aright(R_T4, R_T3, 5),
|
||||
add_u( R_T0, R_T0, R_T4),
|
||||
store_half( R_T0, R_FloorRot, O_(V3_S2,y)),
|
||||
|
||||
atom_label(no_jump_fallthrough)
|
||||
mac_yield_load(),
|
||||
|
||||
atom_label(exit_stick)
|
||||
/* NOT mac_yield() — R_AtomJmp was already loaded in the BD-slot of the dead-zone/exit branch. */
|
||||
mac_yield_tail(),
|
||||
};
|
||||
|
||||
#pragma endregion Baked Atoms
|
||||
@@ -0,0 +1,441 @@
|
||||
#pragma region Vendors
|
||||
#include <stdio.h>
|
||||
#include <stdlib.h>
|
||||
#include <assert.h>
|
||||
// #include "libgpu.h"
|
||||
// #include "libetc.h"
|
||||
// #include "libgte.h"
|
||||
#pragma endregion Vendors
|
||||
|
||||
#pragma region Duffle Headers
|
||||
# include "duffle/gen/macs.h"
|
||||
# include "duffle/gen/offsets.h"
|
||||
|
||||
#include "duffle/word_count.metadata.h"
|
||||
|
||||
#include "duffle/dsl.h"
|
||||
#include "duffle/memory.h"
|
||||
#include "duffle/math.h"
|
||||
|
||||
#include "duffle/gcc_asm.h"
|
||||
#include "duffle/mips.h"
|
||||
#include "duffle/gp.h"
|
||||
#include "duffle/gte.h"
|
||||
#include "duffle/pad.h"
|
||||
|
||||
#include "duffle/dsl.atom.h"
|
||||
#include "duffle/lottes_tape.h"
|
||||
|
||||
#include "duffle/psyq.h"
|
||||
#pragma endregion Duffle Headers
|
||||
|
||||
#pragma region Duffle TUs
|
||||
#include "duffle/math.atom.c"
|
||||
#include "duffle/mips.atom.c"
|
||||
#include "duffle/gte.atom.c"
|
||||
#include "duffle/gp.atom.c"
|
||||
#include "duffle/psyq.atom.c"
|
||||
#pragma endregion Duffle TUs
|
||||
|
||||
#pragma region Joypade Headers
|
||||
# include "gen/macs.h"
|
||||
# include "gen/offsets.h"
|
||||
|
||||
#include "hello_joypad.h"
|
||||
#pragma region Joypad Headers
|
||||
|
||||
#pragma region Hello Joypad TUs
|
||||
#include "hello_joypad.atom.c"
|
||||
#pragma endregion Hello Joypad TUs
|
||||
|
||||
enum {
|
||||
Scratchpad_Len = 1024,
|
||||
MemTape_Len = 512,
|
||||
};
|
||||
typedef Struct_(SMemory) {
|
||||
PrimitiveArena primitives;
|
||||
A2_OrderingTable_Buffer ordering_tbl;
|
||||
DoubleBuffer screen_buf;
|
||||
S4 active_buf_id;
|
||||
|
||||
U4 MemTape[MemTape_Len];
|
||||
|
||||
M3_S2 tform_world;
|
||||
|
||||
Ent_Cube cube;
|
||||
Ent_Floor floor;
|
||||
|
||||
PadBiosRaw pad_raw[2];
|
||||
PadState pad[2];
|
||||
|
||||
U4_V scratchpad; // d-cache
|
||||
};
|
||||
global SMemory smem;
|
||||
extern SMemory smem;
|
||||
|
||||
I_ B1* prim__alloc(U4 type_width, Str8 type_name) {
|
||||
gknown PrimitiveArena* pa = & smem.primitives;
|
||||
gknown B1* buf = (B1*) r_(smem.primitives.buf)[smem.active_buf_id];
|
||||
assert(pa->used + type_width < PrimitiveBuff_Len);
|
||||
B1* next = buf + pa->used;
|
||||
pa->used += type_width;
|
||||
return next;
|
||||
}
|
||||
#define prim_alloc(type) (type*)prim__alloc(S_(type), slit( stringify(type)))
|
||||
|
||||
/* Uses ONE 8-byte frame allocated via the compiler's standard prologue.
|
||||
* The 4 wasted-arg words for B(12h) InitPAD2 live at [SP+0..15] but are not explicitly allocated.
|
||||
* The compiler handles the MIPS O32 "wasted stack" convention for us by treating the B-call as a 4-arg call.
|
||||
*
|
||||
* The buffer pointers are passed as arguments so the compiler keeps them in callee-saved registers;
|
||||
* The B(12h) asm volatile block does NOT clobber those registers (it clobbers only the volatile GPRs + the B-table arg registers explicitly).
|
||||
* The C-level writes after the call re-load the pointers from their callee-saved homes.
|
||||
*
|
||||
* The clobber list for both B-calls names the full BIOS destroy set documented in kernelbios.md:167-174 (R1..R15, R24..R25, R31, HI/LO).
|
||||
* The kernel-ABI "volatile GPRs" subset is clb_system; the rest of the destroy set is enumerated explicitly here. */
|
||||
NI_ void pad_bios_init_start(PadBiosRaw* raw0, PadBiosRaw* raw1)
|
||||
{
|
||||
/* Pin raw0 + raw1 to $a0 + $a1 via rgcc; the B(12h) call uses these directly.
|
||||
* The `(void)` casts mark them as unread after the call so the compiler doesn't need to move them back. */
|
||||
register PadBiosRaw* p0 rgcc(R_A0) = raw0;
|
||||
register PadBiosRaw* p1 rgcc(R_A1) = raw1;
|
||||
(void)p0; (void)p1;
|
||||
|
||||
// TODO(Ed): Properly annotate the raw values in the inline asm instructions.
|
||||
// Use enums.
|
||||
|
||||
/* B(12h) InitPAD2(raw0, 0x22, raw1, 0x22)
|
||||
* $a0 = raw0 (rgcc-bound; survives the sequence below)
|
||||
* $a1 = raw1 (preserved into $a2 before $a1 is overwritten)
|
||||
* $a2 = raw1 (moved from $a1; survives $a1's overwrite)
|
||||
* $a3 = 0x22 (immediate)
|
||||
* $t1 = 0x12 (function number)
|
||||
* $t2 = 0xB0 (BIOS B-table address) */
|
||||
asm volatile(
|
||||
asm_words(
|
||||
or_u( rarg_2, rarg_1, rdiscard), /* $a2 = $a1 = raw1 */
|
||||
add_ui( rarg_1, rdiscard, 0x22), /* $a1 = 0x22 */
|
||||
add_ui( rarg_3, rdiscard, 0x22), /* $a3 = 0x22 */
|
||||
add_ui( rtmp_1, rdiscard, 0x12), /* $t1 = 0x12 */
|
||||
add_ui( rtmp_2, rdiscard, 0xB0), /* $t2 = 0xB0 */
|
||||
call_reg(rtmp_2), /* jalr $t2, $ra */
|
||||
nop /* BD slot */
|
||||
)
|
||||
asm_rpins, r_use(p0), r_use(p1)
|
||||
asm_clobber:
|
||||
rlit(R_AT),
|
||||
rlit(R_V0), rlit(R_V1),
|
||||
rlit(R_T0), rlit(R_T1), rlit(R_T2), rlit(R_T3), rlit(R_T4),
|
||||
rlit(R_T5), rlit(R_T6), rlit(R_T7), rlit(R_T8), rlit(R_T9),
|
||||
rlit(R_RA),
|
||||
clb_mem_drain
|
||||
);
|
||||
|
||||
/* The C-level writes re-load the pointers via the parameter names and write 0xFF to each
|
||||
* buffer's status byte to mark the initial-state hazard documented in kernelbios.md:1621-1624. */
|
||||
u1_v(raw0)[0] = 0xFF;
|
||||
u1_v(raw1)[0] = 0xFF;
|
||||
|
||||
/* B(13h) StartPAD2() — no args. The BIOS preserves $sp. */
|
||||
asm volatile(
|
||||
asm_words(
|
||||
add_ui( rtmp_1, rdiscard, 0x13), /* $t1 = 0x13 */
|
||||
add_ui( rtmp_2, rdiscard, 0xB0), /* $t2 = 0xB0 (re-load) */
|
||||
call_reg(rtmp_2), /* jalr $t2, $ra */
|
||||
nop /* BD slot */
|
||||
)
|
||||
asm_clobber:
|
||||
rlit(R_AT),
|
||||
rlit(R_V0), rlit(R_V1),
|
||||
rlit(R_T0), rlit(R_T1), rlit(R_T2), rlit(R_T3), rlit(R_T4),
|
||||
rlit(R_T5), rlit(R_T6), rlit(R_T7), rlit(R_T8), rlit(R_T9),
|
||||
rlit(R_RA),
|
||||
clb_mem_drain
|
||||
);
|
||||
}
|
||||
|
||||
GCC_OPTIMIZATION_DISABLE
|
||||
void update(PrimitiveArena* pa, U4* ordering_buf)
|
||||
{
|
||||
TapeBuilder tb = tb_make(slice_ut_arr(smem.MemTape));
|
||||
|
||||
if (0) // Pad Input (dead — kept for the source-as-written record; references the deleted `pad_state` field)
|
||||
{
|
||||
(void)Pad_Left; (void)Pad_Right; /* suppress unused-token warnings */
|
||||
if (false) {
|
||||
smem.cube.rot.y += 30;
|
||||
smem.floor.rot.y += 5;
|
||||
}
|
||||
if (false) {
|
||||
smem.cube.rot.y -= 30;
|
||||
smem.floor.rot.y -= 5;
|
||||
}
|
||||
}
|
||||
if (1) // Pad Input (Tape version)
|
||||
{
|
||||
tb.used = 0; tb_scope_run(& tb) {
|
||||
/* BIOS-owned polling: per-frame snapshot of both ports. */
|
||||
tb_emit_(pad_bios_snapshot);
|
||||
tb_data_(raw, & smem.pad_raw[0]);
|
||||
tb_data_(state, & smem.pad[0]);
|
||||
tb_emit_(pad_bios_snapshot);
|
||||
tb_data_(raw, & smem.pad_raw[1]);
|
||||
tb_data_(state, & smem.pad[1]);
|
||||
/* Per-frame rotation apply: consume pad[0].buttons + pad[0].left_x */
|
||||
tb_emit_(pad_apply_input);
|
||||
tb_data_(state, & smem.pad[0]);
|
||||
tb_data_(cube_rot, & smem.cube.rot);
|
||||
tb_data_(floor_rot, & smem.floor.rot);
|
||||
}
|
||||
}
|
||||
|
||||
orderingtbl_clear_reverse(ordering_buf, OrderingTbl_Len);
|
||||
|
||||
// Update the position based on acceleration and velocity
|
||||
gknown V3_S4_R pos = & smem.cube.pos;
|
||||
gknown V3_S4_R vel = & smem.cube.vel;
|
||||
gknown V3_S4_R acc = & smem.cube.accel;
|
||||
add_v3s4(vel, acc[0]);
|
||||
add_v3s4_fp(pos, vel[0]);
|
||||
// vel->x += acc->x;
|
||||
// vel->y += acc->y;
|
||||
// vel->z += acc->z;
|
||||
// pos->x += vel->x;
|
||||
// pos->y += vel->y;
|
||||
// pos->z += vel->z;
|
||||
|
||||
if (pos->y + 150 > smem.floor.pos.y) vel->y *= -1;
|
||||
|
||||
// Prep
|
||||
S4 nclip = 0;
|
||||
S4 orderingtbl_z = 0;
|
||||
A2_S2 p; //???
|
||||
S4 flag; //????
|
||||
|
||||
|
||||
// Draw Cube
|
||||
if (0)
|
||||
{
|
||||
m3s2_rotation (& smem.cube.rot, & smem.tform_world);
|
||||
m3s2_translation(& smem.tform_world, & smem.cube.pos);
|
||||
m3s2_scale (& smem.tform_world, & smem.cube.scale);
|
||||
// gte_matrix_set_rotation (& smem.tform_world);
|
||||
gte_matrix_set_translation(& smem.tform_world);
|
||||
for (U4 face_id = 0; face_id < Cube_num_faces; face_id += 1)
|
||||
{
|
||||
Poly_G4* quad = prim_alloc(Poly_G4); set_poly_g4(quad);
|
||||
quad->c0 = rgb8(255, 0, 255);
|
||||
quad->c1 = rgb8(255, 255, 0);
|
||||
quad->c2 = rgb8( 0, 255, 255);
|
||||
quad->c3 = rgb8( 0, 255, 0);
|
||||
|
||||
V4_S2* face = & smem.cube.faces[face_id];
|
||||
V3_S2* p0 = & smem.cube.verts[face->x];
|
||||
V3_S2* p1 = & smem.cube.verts[face->y];
|
||||
V3_S2* p2 = & smem.cube.verts[face->z];
|
||||
V3_S2* p3 = & smem.cube.verts[face->w];
|
||||
|
||||
nclip = rtp_avg_nclip_a4_v3s2(
|
||||
p0, p1, p2, p3,
|
||||
& quad->p0, & quad->p1, & quad->p2, & quad->p3,
|
||||
& p, & orderingtbl_z, & flag
|
||||
);
|
||||
if (nclip <= 0) {
|
||||
continue;
|
||||
}
|
||||
|
||||
if ((orderingtbl_z > 0) && (orderingtbl_z < OrderingTbl_Len)) {
|
||||
orderingtbl_add_primitive(ordering_buf[orderingtbl_z], quad);
|
||||
}
|
||||
}
|
||||
// smem.cube.rot.x += 6;
|
||||
// smem.cube.rot.y += 8;
|
||||
// smem.cube.rot.z += 12;
|
||||
smem.cube.rot.y += 30;
|
||||
}
|
||||
// Draw cube (tape method) - two triangles per face
|
||||
if (1)
|
||||
{
|
||||
m3s2_rotation (& smem.cube.rot, & smem.tform_world);
|
||||
m3s2_translation(& smem.tform_world, & smem.cube.pos);
|
||||
m3s2_scale (& smem.tform_world, & smem.cube.scale);
|
||||
gte_matrix_set_rotation (& smem.tform_world);
|
||||
gte_matrix_set_translation(& smem.tform_world);
|
||||
|
||||
U4 prim_base = u4_(pa->buf[smem.active_buf_id]);
|
||||
U4 prim_cursor = prim_base + pa->used;
|
||||
|
||||
tb.used = 0; tb_scope(& tb) {
|
||||
tb_emit(& tb, rbind_cube_g4_face);
|
||||
tb_data(& tb, prim_cursor);
|
||||
tb_data(& tb, u4_(smem.cube.faces));
|
||||
tb_data(& tb, u4_(smem.cube.verts));
|
||||
tb_data(& tb, u4_(ordering_buf));
|
||||
|
||||
for (U4 i = 0; i < Cube_num_faces; i++) {
|
||||
// Two triangles per quad face: (x,y,z) and (x,z,w)
|
||||
tb_emit(& tb, cube_g4_face);
|
||||
}
|
||||
|
||||
tb_emit(& tb, sync_primitive_arena);
|
||||
tb_data(& tb, u4_(& pa->used));
|
||||
tb_data(& tb, prim_base);
|
||||
}
|
||||
tape_run(tb_slice(tb));
|
||||
|
||||
// smem.cube.rot.y += 30;
|
||||
}
|
||||
// Draw Floor
|
||||
if (0)
|
||||
{
|
||||
m3s2_rotation (& smem.floor.rot, & smem.tform_world);
|
||||
m3s2_translation(& smem.tform_world, & smem.floor.pos);
|
||||
m3s2_scale (& smem.tform_world, & smem.floor.scale);
|
||||
gte_matrix_set_rotation (& smem.tform_world);
|
||||
gte_matrix_set_translation(& smem.tform_world);
|
||||
for (U4 face_id = 0; face_id < Floor_num_faces; face_id += 1)
|
||||
{
|
||||
Poly_F3* tri = prim_alloc(Poly_F3); set_poly_f3(tri);
|
||||
tri->color = rgb8(255, 255, 255);
|
||||
|
||||
V3_S2* face = & smem.floor.faces[face_id];
|
||||
register V3_S2* p0 rgcc(R_T4) = & smem.floor.verts[face->x];
|
||||
register V3_S2* p1 rgcc(R_T5) = & smem.floor.verts[face->y];
|
||||
register V3_S2* p2 rgcc(R_T6) = & smem.floor.verts[face->z];
|
||||
|
||||
gte_load_v0(p0, R_T4);
|
||||
/*
|
||||
asm volatile( ".word " "%0" ", %1" : :
|
||||
"i"(((op_lwc2 & OPCODE_MASK) << OPCODE_SHIFT) | ((R_T4 & REG_MASK) << RS_SHIFT) | ((gte_in_v0_xy & REG_MASK) << RT_SHIFT) | (0 & IMM_MASK)),
|
||||
"i"(((op_lwc2 & OPCODE_MASK) << OPCODE_SHIFT) | ((R_T4 & REG_MASK) << RS_SHIFT) | ((gte_in_v0_z & REG_MASK) << RT_SHIFT) | (GTE_Z_Offset & IMM_MASK)),
|
||||
"r"(p0) :
|
||||
"$2", "$8", "$9", "$31", "memory"
|
||||
);
|
||||
*/
|
||||
gte_load_v1(p1, R_T5);
|
||||
gte_load_v2(p2, R_T6);
|
||||
|
||||
gte_rtpt();
|
||||
gte_nclip();
|
||||
gte_stotz(& nclip);
|
||||
|
||||
// nclip = rtp_avg_nclip_a3_v3s2(p0, p1, p2
|
||||
// , & tri->p0, & tri->p1, & tri->p2
|
||||
// , & p, & orderingtbl_z, & flag
|
||||
// );
|
||||
// if (nclip <= 0) {
|
||||
// continue;
|
||||
// }
|
||||
|
||||
if (nclip > 0 ) {
|
||||
gte_stsxy3(& tri->p0, & tri->p1, & tri->p2);
|
||||
gte_avsz3();
|
||||
gte_stotz(& orderingtbl_z);
|
||||
|
||||
if ((orderingtbl_z > 0) && (orderingtbl_z < OrderingTbl_Len)) {
|
||||
orderingtbl_add_primitive(ordering_buf[orderingtbl_z], tri);
|
||||
}
|
||||
}
|
||||
}
|
||||
smem.floor.rot.y += 5;
|
||||
}
|
||||
// Draw floor tape method
|
||||
if (1)
|
||||
{
|
||||
m3s2_rotation (& smem.floor.rot, & smem.tform_world);
|
||||
m3s2_translation(& smem.tform_world, & smem.floor.pos);
|
||||
m3s2_scale (& smem.tform_world, & smem.floor.scale);
|
||||
|
||||
U4 prim_base = u4_(pa->buf[smem.active_buf_id]);
|
||||
U4 prim_cursor = prim_base + pa->used;
|
||||
|
||||
// TODO(Ed): We should do a bounds check beforehand to confirm pa can hold all tris?
|
||||
// The tape atoms in-flight should not need to care.
|
||||
|
||||
// Prepare the tape. (Push protocol to tape)
|
||||
tb.used = 0; tb_scope(& tb) {
|
||||
tb_emit(& tb, set_gte_world);
|
||||
tb_data(& tb, u4_(& smem.tform_world));
|
||||
|
||||
tb_emit(& tb, rbind_floor_f3_face);
|
||||
// TODO(Ed): Just use a single context struct ref
|
||||
tb_data(& tb, prim_cursor);
|
||||
tb_data(& tb, u4_(smem.floor.faces));
|
||||
tb_data(& tb, u4_(smem.floor.verts));
|
||||
tb_data(& tb, u4_(ordering_buf));
|
||||
for (U4 i = 0; i < Floor_num_faces; i++) {
|
||||
tb_emit(& tb, floor_f3_face);
|
||||
}
|
||||
// After floor_f3_face iterations complete, the primitive arena's used counter needs updating.
|
||||
tb_emit(& tb, sync_primitive_arena);
|
||||
tb_data(& tb, u4_(& pa->used));
|
||||
tb_data(& tb, prim_base);
|
||||
}
|
||||
tape_run(tb_slice(tb));// Fire off the tape.
|
||||
|
||||
// C-side state (pa->used) has already been updated by the tape!
|
||||
// smem.floor.rot.y += 5;
|
||||
}
|
||||
}
|
||||
GCC_OPTIMIZATION_ENABLE
|
||||
|
||||
void render(void) {
|
||||
}
|
||||
|
||||
void gp_display_frame(DoubleBuffer* screen_buf, S4* active_buf_id, U4* ordering_buf, PrimitiveArena* pa) {
|
||||
draw_sync(0);
|
||||
vsync(0);
|
||||
displayenv_put(& r_(screen_buf->display)[active_buf_id[0] ]);
|
||||
drawenv_put (& r_(screen_buf->draw) [active_buf_id[0] ]);
|
||||
{
|
||||
draw_orderingtbl(ordering_buf + OrderingTbl_Len - 1);
|
||||
pa->used = 0;
|
||||
}
|
||||
active_buf_id[0] = ! active_buf_id[0]; // Swap current buffer
|
||||
}
|
||||
|
||||
GCC_OPTIMIZATION_DISABLE
|
||||
int main(void)
|
||||
{
|
||||
smem = (SMemory){0};
|
||||
smem.scratchpad = C_(U4_V, 0x1F800000);
|
||||
// smem.primitives.used = 0;
|
||||
// smem.active_buf_id = 0;
|
||||
/*Persistent Entity Setup*/{
|
||||
ent_cube128_init(& smem.cube.verts, & smem.cube.faces); {
|
||||
Ent_Cube* cube = & smem.cube;
|
||||
cube->rot = v3s2(0, 0, 0);
|
||||
cube->scale = v3s4_fp_one();
|
||||
cube->accel = v3s4(0, 1, 0);
|
||||
cube->pos = v3s4(0, -400, 1800);
|
||||
}
|
||||
ent_floor_init(& smem.floor.verts, & smem.floor.faces); {
|
||||
Ent_Floor* floor = & smem.floor;
|
||||
floor->rot = v3s2(0, 0, 0);
|
||||
floor->pos = v3s4(0, 450, 1800);
|
||||
floor->scale = v3s4_fp_one();
|
||||
}
|
||||
}
|
||||
TapeBuilder tb = tb_make(slice_ut_arr(smem.MemTape)); {
|
||||
reset_graph(0);
|
||||
/* Direct BIOS: poll both ports during VBlank. */
|
||||
pad_bios_init_start(& smem.pad_raw[0], & smem.pad_raw[1]);
|
||||
/* Pinned registers for the GPU init atom. */
|
||||
register U4* io_base_addr rgcc(R_IO_BaseAddr) = u4_r(IO_BASE_ADDR);
|
||||
register DoubleBuffer* screen_buf rgcc(R_ScreenBuf) = & smem.screen_buf;
|
||||
tb.used = 0; tb_scope_run(& tb) {
|
||||
tb_emit(& tb, screen_env_init);
|
||||
tb_emit(& tb, gp_screen_init);
|
||||
}
|
||||
}
|
||||
while (1) {
|
||||
gknown S4* active_buf_id = & smem.active_buf_id;
|
||||
gknown U4* ordering_buf = r_(smem.ordering_tbl)[active_buf_id[0]];
|
||||
gknown PrimitiveArena* pa = & smem.primitives;
|
||||
update(pa, ordering_buf);
|
||||
render();
|
||||
gp_display_frame(& smem.screen_buf, active_buf_id, ordering_buf, pa);
|
||||
};
|
||||
return 0;
|
||||
}
|
||||
GCC_OPTIMIZATION_ENABLE
|
||||
@@ -0,0 +1,102 @@
|
||||
#ifdef INTELLISENSE_DIRECTIVES
|
||||
# pragma once
|
||||
# include "duffle/dsl.h"
|
||||
# include "duffle/math.h"
|
||||
# include "duffle/gp.h"
|
||||
# include "duffle/pad.h"
|
||||
#endif
|
||||
|
||||
enum {
|
||||
// PrimitiveBuff_Len = 4096,
|
||||
// OrderingTbl_Len = 2048,
|
||||
PrimitiveBuff_Len = 131072,
|
||||
OrderingTbl_Len = 8192,
|
||||
};
|
||||
|
||||
enum {
|
||||
ScreenRes_X = 320,
|
||||
ScreenRes_Y = 240,
|
||||
ScreenZ = 320,
|
||||
ScreenRes_CenterX = (ScreenRes_X >> 1),
|
||||
ScreenRes_CenterY = (ScreenRes_Y >> 1),
|
||||
};
|
||||
|
||||
enum {
|
||||
fp_one = (1 << 12),
|
||||
};
|
||||
|
||||
#define v3s4_fp_one() v3s4(fp_one, fp_one, fp_one)
|
||||
|
||||
typedef U4 OrderingTable_Buffer[OrderingTbl_Len];
|
||||
typedef Array_(OrderingTable_Buffer, 2);
|
||||
|
||||
typedef B1 PrimitiveBuffer[PrimitiveBuff_Len];
|
||||
typedef Array_(PrimitiveBuffer, 2);
|
||||
typedef Struct_(PrimitiveArena) {
|
||||
A2_PrimitiveBuffer buf;
|
||||
U4 used;
|
||||
};
|
||||
|
||||
#define Cube_num_verts 8
|
||||
typedef Array_(V3_S2, Cube_num_verts);
|
||||
#define Cube_num_faces 6
|
||||
typedef Array_(V4_S2, Cube_num_faces);
|
||||
I_ void ent_cube128_init(A8_V3_S2* verts, A6_V4_S2* faces) {
|
||||
LP_ A8_V3_S2 baked_verts = (A8_V3_S2) {
|
||||
{ -128, -128, -128 },
|
||||
{ 128, -128, -128 },
|
||||
{ 128, -128, 128 },
|
||||
{ -128, -128, 128 },
|
||||
{ -128, 128, -128 },
|
||||
{ 128, 128, -128 },
|
||||
{ 128, 128, 128 },
|
||||
{ -128, 128, 128 }
|
||||
};
|
||||
LP_ A6_V4_S2 baked_faces = (A6_V4_S2) {
|
||||
{ 3, 2, 0, 1 },
|
||||
{ 0, 1, 4, 5 },
|
||||
{ 4, 5, 7, 6 },
|
||||
{ 1, 2, 5, 6 },
|
||||
{ 2, 3, 6, 7 },
|
||||
{ 3, 0, 7, 4 },
|
||||
};
|
||||
mem_copy(u4_(verts), u4_(& baked_verts), S_(A8_V3_S2) );
|
||||
mem_copy(u4_(faces), u4_(& baked_faces), S_(A6_V4_S2) );
|
||||
return;
|
||||
}
|
||||
typedef Struct_(Ent_Cube) {
|
||||
V3_S4 accel;
|
||||
V3_S4 vel;
|
||||
V3_S4 pos;
|
||||
V3_S4 scale;
|
||||
V3_S2 rot;
|
||||
A8_V3_S2 verts;
|
||||
A6_V4_S2 faces;
|
||||
};
|
||||
|
||||
#define Floor_num_verts 4
|
||||
typedef Array_(V3_S2, Floor_num_verts);
|
||||
#define Floor_num_faces 2
|
||||
typedef Array_(V3_S2, Floor_num_faces);
|
||||
I_ void ent_floor_init(A4_V3_S2* verts, A2_V3_S2* faces) {
|
||||
LP_ A4_V3_S2 baked_verts = (A4_V3_S2) {
|
||||
{ -900, 0, -900 },
|
||||
{ -900, 0, 900 },
|
||||
{ 900, 0, -900 },
|
||||
{ 900, 0, 900 },
|
||||
};
|
||||
LP_ A2_V3_S2 baked_faces = (A2_V3_S2) {
|
||||
{ 0, 1, 2 },
|
||||
{ 1, 3, 2 },
|
||||
};
|
||||
mem_copy(u4_(verts), u4_(& baked_verts), S_(A4_V3_S2));
|
||||
mem_copy(u4_(faces), u4_(& baked_faces), S_(A2_V3_S2));
|
||||
};
|
||||
typedef Struct_(Ent_Floor) {
|
||||
V3_S4 accel;
|
||||
V3_S4 pos;
|
||||
V3_S4 scale;
|
||||
V3_S2 rot;
|
||||
A4_V3_S2 verts;
|
||||
A2_V3_S2 faces;
|
||||
};
|
||||
@@ -0,0 +1,659 @@
|
||||
|
||||
#if 0 /* ac_pad_sio_write_pad_state — superseded by pad_bios_snapshot */
|
||||
|
||||
/* ============================================================
|
||||
* raw_sio_pad_poll_20260802 — superseded by bios_pad_buffer_snapshot_20260803.
|
||||
* The doomed raw-SIO production atoms (ac_pad_sio_write_pad_state,
|
||||
* pad_sio_init, pad_sio_step, pad_sio_diag_pin, pad_sio_diag_byte_exchange)
|
||||
* reference symbols that were removed from code/duffle/pad.h during
|
||||
* Phase 1. Each is wrapped in a narrow `#if 0` so the C compile skips
|
||||
* the body while the source-as-written text stays in place for the
|
||||
* Phase 5.1 deletion pass. The wrap is removed (and the bodies are
|
||||
* deleted) by Phase 5.1 of this track.
|
||||
* ============================================================ */
|
||||
|
||||
* Writes the per-port PadState in 5 instructions plus 4 store_word calls (status,
|
||||
* buttons, left_x/y/right_x/right_y packed, attempt). The provisional decode publishes
|
||||
* 0x0000FFFF buttons + centered axes on every path until response-byte decode lands.
|
||||
*
|
||||
* Args:
|
||||
* status_val - the PadSioStatus enum value to publish
|
||||
* state_ptr_reg - the PadState* base (R_PadState at the call site)
|
||||
* scratch_reg - scratch register for the value being stored (e.g., R_T0)
|
||||
*
|
||||
* Emits 9 instructions (status/buttons/axes/attempt stores plus the
|
||||
* two-instruction zero-extended buttons load).
|
||||
*/
|
||||
FI_ Slice_MipsCode ac_pad_sio_write_pad_state(U4 status_val, U4 state_ptr_reg, U4 scratch_reg)
|
||||
MipsAtomComp_Proc_(ac_pad_sio_write_pad_state, {
|
||||
add_ui(scratch_reg, R_0, status_val),
|
||||
store_word(scratch_reg, state_ptr_reg, O_(PadState,status)),
|
||||
/* FIX 2026-08-02: buttons = 0x0000FFFF = "no buttons pressed" in
|
||||
* libetc convention. Build it with LUI + ORI so addiu does not
|
||||
* sign-extend 0xFFFF to 0xFFFFFFFF. */
|
||||
load_upper_i(scratch_reg, 0x0000),
|
||||
or_i(scratch_reg, scratch_reg, 0xFFFF),
|
||||
store_word(scratch_reg, state_ptr_reg, O_(PadState,buttons)),
|
||||
add_ui(scratch_reg, R_0, 0x80808080),
|
||||
store_word(scratch_reg, state_ptr_reg, O_(PadState,left_x)),
|
||||
add_ui(scratch_reg, R_0, 0),
|
||||
store_word(scratch_reg, state_ptr_reg, O_(PadState,attempt))
|
||||
})
|
||||
#endif /* end ac_pad_sio_write_pad_state wrap */
|
||||
|
||||
/* ----- pad_sio_init -----
|
||||
* Boot-time SIO0 init. Caller pins R_T6 = sio_base_addr0.
|
||||
* Issues SIO CTRL=0x0040 (reset), MODE=0x000D, BAUD=0x0088.
|
||||
* (Phase 2 fills the body.)
|
||||
*/
|
||||
#if 0 /* pad_sio_init — superseded by pad_bios_init_start (Phase 1.3) */
|
||||
internal MipsAtom_(pad_sio_init) atom_info(atom_phase(pad_init)
|
||||
, atom_reads(R_T5, R_T6)
|
||||
, atom_writes(R_T5, R_T6)
|
||||
) {
|
||||
/* FIX 2026-08-02: explicitly load the KSEG1 base into R_T6 at the top of
|
||||
* the atom body. The rgcc(R_PadSioBase) binding in main() pins R_T6 = base
|
||||
* when main() runs, but $12 is caller-saved per the O32 ABI — when tape_run
|
||||
* is invoked, R_T6 is fair game. The atom body cannot rely on the value. */
|
||||
load_upper_i(R_T6, pad_IO_KSEG1_BASE >> 16), /* R_T6 high 16 = 0xBF80 */
|
||||
or_i(R_T6, R_T6, pad_IO_KSEG1_BASE & 0xFFFF), /* R_T6 = 0xBF800000 */
|
||||
|
||||
/* SIO CTRL = 0x0040 (reset) */
|
||||
add_ui(R_T5, R_0, pad_SIO_CTRL_RESET),
|
||||
store_half(R_T5, R_T6, pad_SIO_CTRL_OFFSET),
|
||||
/* SIO MODE = 0x000D (MUL1, 8-bit, no parity, idle-high) */
|
||||
add_ui(R_T5, R_0, pad_SIO_MODE_INIT),
|
||||
store_half(R_T5, R_T6, pad_SIO_MODE_OFFSET),
|
||||
/* SIO BAUD = 0x0088 (~250 kHz) */
|
||||
add_ui(R_T5, R_0, pad_SIO_BAUD_INIT),
|
||||
store_half(R_T5, R_T6, pad_SIO_BAUD_OFFSET),
|
||||
mac_yield(),
|
||||
};
|
||||
#endif /* end pad_sio_init wrap */
|
||||
|
||||
/* ----- pad_sio_step -----
|
||||
* Per-frame bounded raw-SIO transaction. Reads PadState pointers + SIO
|
||||
* base addresses from Binds_PadSioStep; writes per-port status +
|
||||
* buttons + axes into smem.pad[0..1].
|
||||
* Body shape (per spec §"Transaction model (per port, per pad_sio_step)"):
|
||||
* port 0: CTRL=CLEANUP → settle → CTRL=port-select → settle → exchange 5
|
||||
* bytes (addr + 0x42 0x00 0x00 0x00) → decode → write PadState[0]
|
||||
* → CTRL=CLEANUP.
|
||||
* port 1: swap scratch regs (sio_base_addr1 → R_PadSioBase, state1 →
|
||||
* R_PadState) → mirror port 0 sequence.
|
||||
*
|
||||
* Bounded-loop semantics: every countdown is wrapped in
|
||||
* add_ui_self(R_T1, -1) + branch_ne(R_T1, R_0, ...)
|
||||
* with a known maximum (pad_SIO_SETTLE_BEFORE_TX=1000, pad_SIO_SETTLE_AFTER_TX=2000,
|
||||
* pad_SIO_WAIT_BUDGET=4096). The static-analysis pass currently reports
|
||||
* has_loops = true; the follow-up metaprogram track that learns modeled-bounded
|
||||
* loops is out of scope here (per spec §"Risks").
|
||||
*
|
||||
* Scratch register strategy:
|
||||
* R_PadStatus = R_T4 — RESERVED for port-1 swap (holds state1)
|
||||
* R_PadCountdown = R_T5 — RESERVED for port-1 swap (holds sio_base_addr1)
|
||||
* R_T0 — byte-exchange value + STAT read (clobbered freely)
|
||||
* R_T1 — countdown budget (clobbered freely)
|
||||
* R_PadState = R_T7 — PadState* (preserved for PadState writes)
|
||||
* R_PadSioBase = R_T6 — SIO base (preserved through the port)
|
||||
*
|
||||
* Response decode (Task 3.1 teaching scope):
|
||||
* - status = PadSioStatus_Digital (hardcoded)
|
||||
* - buttons = 0xFFFF (no buttons pressed in the provisional libetc
|
||||
* convention; full response-byte decode is follow-up)
|
||||
* - axes = 0x80808080 (centered: left_x=0x80, left_y=0x80,
|
||||
* right_x=0x80, right_y=0x80)
|
||||
* - attempt = 0
|
||||
* - DualShock handshake (0x43 0x01 → 0x44 0x01 0x03 → 0x43 0x00) is
|
||||
* follow-up scope; the hardcoded digital decode is a placeholder.
|
||||
*
|
||||
* Both ports raise /CS (CTRL = pad_SIO_CTRL_CLEANUP) before exit. Both ports
|
||||
* treat response timeout as PadSioStatus_Disconnected per the spec §"Failure
|
||||
* handling" + the canonical per-port timeout semantics.
|
||||
*/
|
||||
#if 0 /* pad_sio_step — superseded by pad_bios_snapshot (Phase 2.1) */
|
||||
internal MipsAtom_(pad_sio_step) atom_info(atom_bind(Binds_PadSioStep)
|
||||
, atom_reads(R_TapePtr, R_PadSioBase, R_PadState, R_PadStatus, R_PadCountdown)
|
||||
, atom_writes(R_PadStatus, R_PadCountdown)
|
||||
) {
|
||||
/* FIX 2026-08-02: explicitly load KSEG1 base into R_PadSioBase (R_T6) at the
|
||||
* top. The rgcc() binding in main() does NOT survive the tape_run call
|
||||
* because R_T6 is caller-saved per the O32 ABI. The pad_sio_init atom
|
||||
* (also in the per-frame tape) reloads R_T6 separately. */
|
||||
load_upper_i(R_PadSioBase, pad_IO_KSEG1_BASE >> 16),
|
||||
or_i(R_PadSioBase, R_PadSioBase, pad_IO_KSEG1_BASE & 0xFFFF),
|
||||
|
||||
/* Pop Binds from tape (in Binds_PadSioStep declaration order) */
|
||||
load_word(R_PadState, R_TapePtr, O_(Binds_PadSioStep,state0)),
|
||||
load_word(R_PadStatus, R_TapePtr, O_(Binds_PadSioStep,state1)), /* reserved for port-1 swap */
|
||||
load_word(R_PadSioBase, R_TapePtr, O_(Binds_PadSioStep,sio_base_addr0)),
|
||||
load_word(R_PadCountdown, R_TapePtr, O_(Binds_PadSioStep,sio_base_addr1)), /* reserved for port-1 swap */
|
||||
add_ui_self(R_TapePtr, S_(Binds_PadSioStep)),
|
||||
|
||||
/* ============== PORT 0 TRANSACTION ============== */
|
||||
/* Use R_T0 (byte value / STAT read) + R_T1 (countdown) as scratch.
|
||||
* R_PadStatus (state1) + R_PadCountdown (sio_base_addr1) are preserved
|
||||
* through the port-0 body and swapped into R_PadSioBase + R_PadState
|
||||
* at atom_offset(port1_start, ...) below. */
|
||||
|
||||
/* 1. Cleanup: CTRL = 0x0010 (raise /CS, clear stale status) */
|
||||
add_ui(R_T0, R_0, pad_SIO_CTRL_CLEANUP),
|
||||
store_half(R_T0, R_PadSioBase, pad_SIO_CTRL_OFFSET),
|
||||
/* Bounded by pad_SIO_SETTLE_BEFORE_TX = 1000 iterations. */
|
||||
add_ui(R_T1, R_0, pad_SIO_SETTLE_BEFORE_TX),
|
||||
atom_label(settle_pre_port0)
|
||||
nop, /* BD slot */
|
||||
add_ui_self(R_T1, -1),
|
||||
branch_ne(R_T1, R_0, atom_offset(settle_pre_port0, settle_pre_port0)),
|
||||
|
||||
/* 2. Port-select: CTRL = 0x0003 (TX enable + DTR /CS) for port 0 */
|
||||
add_ui(R_T0, R_0, pad_SIO_CTRL_TX_ENABLE),
|
||||
or_i(R_T0, R_T0, pad_SIO_CTRL_DTR_CS), /* set /CS line low */
|
||||
store_half(R_T0, R_PadSioBase, pad_SIO_CTRL_OFFSET),
|
||||
/* Bounded by pad_SIO_SETTLE_AFTER_TX = 2000 iterations. */
|
||||
add_ui(R_T1, R_0, pad_SIO_SETTLE_AFTER_TX),
|
||||
atom_label(settle_post_port0)
|
||||
nop,
|
||||
add_ui_self(R_T1, -1),
|
||||
branch_ne(R_T1, R_0, atom_offset(settle_post_port0, settle_post_port0)),
|
||||
|
||||
/* 3. Address byte (0x01) — send + RX-ready wait + read response + RX-drain confirmation */
|
||||
add_ui(R_T0, R_0, pad_PROTO_ADDR),
|
||||
store_byte(R_T0, R_PadSioBase, pad_SIO_DATA_OFFSET),
|
||||
|
||||
/* Bounded by pad_SIO_WAIT_BUDGET = 4096 iterations. */
|
||||
add_ui(R_T1, R_0, pad_SIO_WAIT_BUDGET),
|
||||
atom_label(wait_ack0_port0)
|
||||
load_half_u(R_T0, R_PadSioBase, pad_SIO_STAT_OFFSET),
|
||||
nop,
|
||||
and_i(R_T0, R_T0, pad_SIO_STAT_RX_NOT_EMPTY),
|
||||
branch_ne(R_T0, R_0, atom_offset(wait_ack0_port0, ack0_received_port0)),
|
||||
add_ui_self(R_T1, -1),
|
||||
atom_label(continue_wait_ack0_port0)
|
||||
branch_ne(R_T1, R_0, atom_offset(continue_wait_ack0_port0, wait_ack0_port0)),
|
||||
/* RX timeout → mark disconnected; skip to port 1 */
|
||||
mac_pad_sio_write_pad_state(PadSioStatus_Disconnected, R_PadState, R_T0),
|
||||
atom_label(skip_port0_from_ack0)
|
||||
branch_equal(R_0, R_0, atom_offset(skip_port0_from_ack0, port1_start)),
|
||||
|
||||
atom_label(ack0_received_port0)
|
||||
/* Read open-bus response byte 0 — discard per docs/psx-spx §controllersandmemorycards.md */
|
||||
load_byte_u(R_T0, R_PadSioBase, pad_SIO_DATA_OFFSET),
|
||||
|
||||
/* Confirm RX FIFO drained before sending byte 1. Bounded by pad_SIO_WAIT_BUDGET = 4096 iterations. */
|
||||
add_ui(R_T1, R_0, pad_SIO_WAIT_BUDGET),
|
||||
atom_label(wait_ackrel0_port0)
|
||||
load_half_u(R_T0, R_PadSioBase, pad_SIO_STAT_OFFSET),
|
||||
nop,
|
||||
and_i(R_T0, R_T0, pad_SIO_STAT_RX_NOT_EMPTY),
|
||||
branch_equal(R_T0, R_0, atom_offset(wait_ackrel0_port0, ack_released_port0)),
|
||||
add_ui_self(R_T1, -1),
|
||||
atom_label(continue_wait_ackrel0_port0)
|
||||
branch_ne(R_T1, R_0, atom_offset(continue_wait_ackrel0_port0, wait_ackrel0_port0)),
|
||||
/* RX-drain timeout → disconnected; skip to port 1 */
|
||||
mac_pad_sio_write_pad_state(PadSioStatus_Disconnected, R_PadState, R_T0),
|
||||
atom_label(skip_port0_from_ackrel0)
|
||||
branch_equal(R_0, R_0, atom_offset(skip_port0_from_ackrel0, port1_start)),
|
||||
|
||||
atom_label(ack_released_port0)
|
||||
|
||||
/* === Byte 1 (port 0): send 0x42 (cmd read) + RX-ready wait + read response + RX-drain confirmation === */
|
||||
/* Bounded by pad_SIO_WAIT_BUDGET = 4096 iterations. */
|
||||
add_ui(R_T0, R_0, pad_PROTO_CMD_READ),
|
||||
store_byte(R_T0, R_PadSioBase, pad_SIO_DATA_OFFSET),
|
||||
add_ui(R_T1, R_0, pad_SIO_WAIT_BUDGET),
|
||||
atom_label(wait_ack1_port0)
|
||||
load_half_u(R_T0, R_PadSioBase, pad_SIO_STAT_OFFSET),
|
||||
nop,
|
||||
and_i(R_T0, R_T0, pad_SIO_STAT_RX_NOT_EMPTY),
|
||||
branch_ne(R_T0, R_0, atom_offset(wait_ack1_port0, ack1_received_port0)),
|
||||
add_ui_self(R_T1, -1),
|
||||
atom_label(continue_wait_ack1_port0)
|
||||
branch_ne(R_T1, R_0, atom_offset(continue_wait_ack1_port0, wait_ack1_port0)),
|
||||
mac_pad_sio_write_pad_state(PadSioStatus_Disconnected, R_PadState, R_T0),
|
||||
atom_label(skip_port0_from_ack1)
|
||||
branch_equal(R_0, R_0, atom_offset(skip_port0_from_ack1, port1_start)),
|
||||
|
||||
atom_label(ack1_received_port0)
|
||||
/* Read response ID byte — discarded for teaching scope (decode hardcoded). */
|
||||
load_byte_u(R_T0, R_PadSioBase, pad_SIO_DATA_OFFSET),
|
||||
|
||||
/* RX FIFO drain wait. Bounded by pad_SIO_WAIT_BUDGET = 4096 iterations. */
|
||||
add_ui(R_T1, R_0, pad_SIO_WAIT_BUDGET),
|
||||
atom_label(wait_ackrel1_port0)
|
||||
load_half_u(R_T0, R_PadSioBase, pad_SIO_STAT_OFFSET),
|
||||
nop,
|
||||
and_i(R_T0, R_T0, pad_SIO_STAT_RX_NOT_EMPTY),
|
||||
branch_equal(R_T0, R_0, atom_offset(wait_ackrel1_port0, ack_released1_port0)),
|
||||
add_ui_self(R_T1, -1),
|
||||
atom_label(continue_wait_ackrel1_port0)
|
||||
branch_ne(R_T1, R_0, atom_offset(continue_wait_ackrel1_port0, wait_ackrel1_port0)),
|
||||
mac_pad_sio_write_pad_state(PadSioStatus_Disconnected, R_PadState, R_T0),
|
||||
atom_label(skip_port0_from_ackrel1)
|
||||
branch_equal(R_0, R_0, atom_offset(skip_port0_from_ackrel1, port1_start)),
|
||||
|
||||
atom_label(ack_released1_port0)
|
||||
|
||||
/* === Byte 2 (port 0): send 0x00 + RX-ready wait + read response + RX-drain confirmation === */
|
||||
/* Bounded by pad_SIO_WAIT_BUDGET = 4096 iterations. */
|
||||
add_ui(R_T0, R_0, 0x00),
|
||||
store_byte(R_T0, R_PadSioBase, pad_SIO_DATA_OFFSET),
|
||||
add_ui(R_T1, R_0, pad_SIO_WAIT_BUDGET),
|
||||
atom_label(wait_ack2_port0)
|
||||
load_half_u(R_T0, R_PadSioBase, pad_SIO_STAT_OFFSET),
|
||||
nop,
|
||||
and_i(R_T0, R_T0, pad_SIO_STAT_RX_NOT_EMPTY),
|
||||
branch_ne(R_T0, R_0, atom_offset(wait_ack2_port0, ack2_received_port0)),
|
||||
add_ui_self(R_T1, -1),
|
||||
atom_label(continue_wait_ack2_port0)
|
||||
branch_ne(R_T1, R_0, atom_offset(continue_wait_ack2_port0, wait_ack2_port0)),
|
||||
mac_pad_sio_write_pad_state(PadSioStatus_Disconnected, R_PadState, R_T0),
|
||||
atom_label(skip_port0_from_ack2)
|
||||
branch_equal(R_0, R_0, atom_offset(skip_port0_from_ack2, port1_start)),
|
||||
|
||||
atom_label(ack2_received_port0)
|
||||
load_byte_u(R_T0, R_PadSioBase, pad_SIO_DATA_OFFSET),
|
||||
|
||||
/* Bounded by pad_SIO_WAIT_BUDGET = 4096 iterations. */
|
||||
add_ui(R_T1, R_0, pad_SIO_WAIT_BUDGET),
|
||||
atom_label(wait_ackrel2_port0)
|
||||
load_half_u(R_T0, R_PadSioBase, pad_SIO_STAT_OFFSET),
|
||||
nop,
|
||||
and_i(R_T0, R_T0, pad_SIO_STAT_RX_NOT_EMPTY),
|
||||
branch_equal(R_T0, R_0, atom_offset(wait_ackrel2_port0, ack_released2_port0)),
|
||||
add_ui_self(R_T1, -1),
|
||||
atom_label(continue_wait_ackrel2_port0)
|
||||
branch_ne(R_T1, R_0, atom_offset(continue_wait_ackrel2_port0, wait_ackrel2_port0)),
|
||||
mac_pad_sio_write_pad_state(PadSioStatus_Disconnected, R_PadState, R_T0),
|
||||
atom_label(skip_port0_from_ackrel2)
|
||||
branch_equal(R_0, R_0, atom_offset(skip_port0_from_ackrel2, port1_start)),
|
||||
|
||||
atom_label(ack_released2_port0)
|
||||
|
||||
/* === Byte 3 (port 0): send 0x00 + RX-ready wait + read response + RX-drain confirmation === */
|
||||
/* Bounded by pad_SIO_WAIT_BUDGET = 4096 iterations. */
|
||||
add_ui(R_T0, R_0, 0x00),
|
||||
store_byte(R_T0, R_PadSioBase, pad_SIO_DATA_OFFSET),
|
||||
add_ui(R_T1, R_0, pad_SIO_WAIT_BUDGET),
|
||||
atom_label(wait_ack3_port0)
|
||||
load_half_u(R_T0, R_PadSioBase, pad_SIO_STAT_OFFSET),
|
||||
nop,
|
||||
and_i(R_T0, R_T0, pad_SIO_STAT_RX_NOT_EMPTY),
|
||||
branch_ne(R_T0, R_0, atom_offset(wait_ack3_port0, ack3_received_port0)),
|
||||
add_ui_self(R_T1, -1),
|
||||
atom_label(continue_wait_ack3_port0)
|
||||
branch_ne(R_T1, R_0, atom_offset(continue_wait_ack3_port0, wait_ack3_port0)),
|
||||
mac_pad_sio_write_pad_state(PadSioStatus_Disconnected, R_PadState, R_T0),
|
||||
atom_label(skip_port0_from_ack3)
|
||||
branch_equal(R_0, R_0, atom_offset(skip_port0_from_ack3, port1_start)),
|
||||
|
||||
atom_label(ack3_received_port0)
|
||||
load_byte_u(R_T0, R_PadSioBase, pad_SIO_DATA_OFFSET),
|
||||
|
||||
/* Bounded by pad_SIO_WAIT_BUDGET = 4096 iterations. */
|
||||
add_ui(R_T1, R_0, pad_SIO_WAIT_BUDGET),
|
||||
atom_label(wait_ackrel3_port0)
|
||||
load_half_u(R_T0, R_PadSioBase, pad_SIO_STAT_OFFSET),
|
||||
nop,
|
||||
and_i(R_T0, R_T0, pad_SIO_STAT_RX_NOT_EMPTY),
|
||||
branch_equal(R_T0, R_0, atom_offset(wait_ackrel3_port0, ack_released3_port0)),
|
||||
add_ui_self(R_T1, -1),
|
||||
atom_label(continue_wait_ackrel3_port0)
|
||||
branch_ne(R_T1, R_0, atom_offset(continue_wait_ackrel3_port0, wait_ackrel3_port0)),
|
||||
mac_pad_sio_write_pad_state(PadSioStatus_Disconnected, R_PadState, R_T0),
|
||||
atom_label(skip_port0_from_ackrel3)
|
||||
branch_equal(R_0, R_0, atom_offset(skip_port0_from_ackrel3, port1_start)),
|
||||
|
||||
atom_label(ack_released3_port0)
|
||||
|
||||
/* === Byte 4 (FINAL, port 0): send 0x00 + RX-not-empty wait + read final byte === */
|
||||
/* Bounded by pad_SIO_WAIT_BUDGET = 4096 iterations. */
|
||||
add_ui(R_T0, R_0, 0x00),
|
||||
store_byte(R_T0, R_PadSioBase, pad_SIO_DATA_OFFSET),
|
||||
add_ui(R_T1, R_0, pad_SIO_WAIT_BUDGET),
|
||||
atom_label(wait_rx4_port0)
|
||||
load_half_u(R_T0, R_PadSioBase, pad_SIO_STAT_OFFSET),
|
||||
nop,
|
||||
and_i(R_T0, R_T0, pad_SIO_STAT_RX_NOT_EMPTY),
|
||||
branch_ne(R_T0, R_0, atom_offset(wait_rx4_port0, rx4_received_port0)),
|
||||
add_ui_self(R_T1, -1),
|
||||
atom_label(continue_wait_rx4_port0)
|
||||
branch_ne(R_T1, R_0, atom_offset(continue_wait_rx4_port0, wait_rx4_port0)),
|
||||
mac_pad_sio_write_pad_state(PadSioStatus_Disconnected, R_PadState, R_T0),
|
||||
atom_label(skip_port0_from_rx4)
|
||||
branch_equal(R_0, R_0, atom_offset(skip_port0_from_rx4, port1_start)),
|
||||
|
||||
atom_label(rx4_received_port0)
|
||||
load_byte_u(R_T0, R_PadSioBase, pad_SIO_DATA_OFFSET), /* discard final byte */
|
||||
|
||||
/* === RESPONSE DECODE (hardcoded for teaching scope) ===
|
||||
* Per the plan §"Phase 3 task 3.1" + spec §"Architecture":
|
||||
* - Full decode (buttons/axes from response bytes) is follow-up scope.
|
||||
* - Teaching scope: hardcode digital poll response.
|
||||
* status = PadSioStatus_Digital
|
||||
* buttons = 0x0000FFFF (no buttons pressed — placeholder)
|
||||
* axes = 0x80808080 (left_x=0x80, left_y=0x80, right_x=0x80, right_y=0x80)
|
||||
* attempt = 0
|
||||
*/
|
||||
atom_label(decode_port0)
|
||||
mac_pad_sio_write_pad_state(PadSioStatus_Digital, R_PadState, R_T0),
|
||||
|
||||
/* /CS cleanup: raise /CS, clear stale status before exiting port 0. */
|
||||
add_ui(R_T0, R_0, pad_SIO_CTRL_CLEANUP),
|
||||
store_half(R_T0, R_PadSioBase, pad_SIO_CTRL_OFFSET),
|
||||
|
||||
/* ============== PORT 1 SETUP ============== */
|
||||
/* Swap: R_PadCountdown holds sio_base_addr1; R_PadStatus holds state1. */
|
||||
atom_label(port1_start)
|
||||
add_u(R_PadSioBase, R_0, R_PadCountdown), /* sio_base_addr1 → R_PadSioBase */
|
||||
add_u(R_PadState, R_0, R_PadStatus), /* state1 → R_PadState */
|
||||
|
||||
/* ============== PORT 1 TRANSACTION (mirror of port 0) ============== */
|
||||
/* R_PadStatus + R_PadCountdown are no longer reserved (port 1 is the
|
||||
* last transaction); we still use R_T0/R_T1 as scratch to match port 0. */
|
||||
|
||||
/* 1. Cleanup: CTRL = 0x0010 (raise /CS, clear stale status) */
|
||||
add_ui(R_T0, R_0, pad_SIO_CTRL_CLEANUP),
|
||||
store_half(R_T0, R_PadSioBase, pad_SIO_CTRL_OFFSET),
|
||||
/* Bounded by pad_SIO_SETTLE_BEFORE_TX = 1000 iterations. */
|
||||
add_ui(R_T1, R_0, pad_SIO_SETTLE_BEFORE_TX),
|
||||
atom_label(settle_pre_port1)
|
||||
nop,
|
||||
add_ui_self(R_T1, -1),
|
||||
branch_ne(R_T1, R_0, atom_offset(settle_pre_port1, settle_pre_port1)),
|
||||
|
||||
/* 2. Port-select: CTRL = 0x0003 | (1 << 13) (port 1 select) */
|
||||
add_ui(R_T0, R_0, pad_SIO_CTRL_TX_ENABLE),
|
||||
or_i(R_T0, R_T0, pad_SIO_CTRL_DTR_CS),
|
||||
or_i(R_T0, R_T0, 1 << 13), /* port 1 select bit (CTRL bit 13 = port select) */
|
||||
store_half(R_T0, R_PadSioBase, pad_SIO_CTRL_OFFSET),
|
||||
/* Bounded by pad_SIO_SETTLE_AFTER_TX = 2000 iterations. */
|
||||
add_ui(R_T1, R_0, pad_SIO_SETTLE_AFTER_TX),
|
||||
atom_label(settle_post_port1)
|
||||
nop,
|
||||
add_ui_self(R_T1, -1),
|
||||
branch_ne(R_T1, R_0, atom_offset(settle_post_port1, settle_post_port1)),
|
||||
|
||||
/* 3. Address byte (0x01) — send + RX-ready wait + read response + RX-drain confirmation */
|
||||
add_ui(R_T0, R_0, pad_PROTO_ADDR),
|
||||
store_byte(R_T0, R_PadSioBase, pad_SIO_DATA_OFFSET),
|
||||
|
||||
/* Bounded by pad_SIO_WAIT_BUDGET = 4096 iterations. */
|
||||
add_ui(R_T1, R_0, pad_SIO_WAIT_BUDGET),
|
||||
atom_label(wait_ack0_port1)
|
||||
load_half_u(R_T0, R_PadSioBase, pad_SIO_STAT_OFFSET),
|
||||
nop,
|
||||
and_i(R_T0, R_T0, pad_SIO_STAT_RX_NOT_EMPTY),
|
||||
branch_ne(R_T0, R_0, atom_offset(wait_ack0_port1, ack0_received_port1)),
|
||||
add_ui_self(R_T1, -1),
|
||||
atom_label(continue_wait_ack0_port1)
|
||||
branch_ne(R_T1, R_0, atom_offset(continue_wait_ack0_port1, wait_ack0_port1)),
|
||||
mac_pad_sio_write_pad_state(PadSioStatus_Disconnected, R_PadState, R_T0),
|
||||
atom_label(skip_port1_from_ack0)
|
||||
branch_equal(R_0, R_0, atom_offset(skip_port1_from_ack0, end_atom)),
|
||||
|
||||
atom_label(ack0_received_port1)
|
||||
load_byte_u(R_T0, R_PadSioBase, pad_SIO_DATA_OFFSET),
|
||||
|
||||
/* Bounded by pad_SIO_WAIT_BUDGET = 4096 iterations. */
|
||||
add_ui(R_T1, R_0, pad_SIO_WAIT_BUDGET),
|
||||
atom_label(wait_ackrel0_port1)
|
||||
load_half_u(R_T0, R_PadSioBase, pad_SIO_STAT_OFFSET),
|
||||
nop,
|
||||
and_i(R_T0, R_T0, pad_SIO_STAT_RX_NOT_EMPTY),
|
||||
branch_equal(R_T0, R_0, atom_offset(wait_ackrel0_port1, ack_released_port1)),
|
||||
add_ui_self(R_T1, -1),
|
||||
atom_label(continue_wait_ackrel0_port1)
|
||||
branch_ne(R_T1, R_0, atom_offset(continue_wait_ackrel0_port1, wait_ackrel0_port1)),
|
||||
mac_pad_sio_write_pad_state(PadSioStatus_Disconnected, R_PadState, R_T0),
|
||||
atom_label(skip_port1_from_ackrel0)
|
||||
branch_equal(R_0, R_0, atom_offset(skip_port1_from_ackrel0, end_atom)),
|
||||
|
||||
atom_label(ack_released_port1)
|
||||
|
||||
/* === Byte 1 (port 1): send 0x42 (cmd read) + RX-ready wait + read response + RX-drain confirmation === */
|
||||
/* Bounded by pad_SIO_WAIT_BUDGET = 4096 iterations. */
|
||||
add_ui(R_T0, R_0, pad_PROTO_CMD_READ),
|
||||
store_byte(R_T0, R_PadSioBase, pad_SIO_DATA_OFFSET),
|
||||
add_ui(R_T1, R_0, pad_SIO_WAIT_BUDGET),
|
||||
atom_label(wait_ack1_port1)
|
||||
load_half_u(R_T0, R_PadSioBase, pad_SIO_STAT_OFFSET),
|
||||
nop,
|
||||
and_i(R_T0, R_T0, pad_SIO_STAT_RX_NOT_EMPTY),
|
||||
branch_ne(R_T0, R_0, atom_offset(wait_ack1_port1, ack1_received_port1)),
|
||||
add_ui_self(R_T1, -1),
|
||||
atom_label(continue_wait_ack1_port1)
|
||||
branch_ne(R_T1, R_0, atom_offset(continue_wait_ack1_port1, wait_ack1_port1)),
|
||||
mac_pad_sio_write_pad_state(PadSioStatus_Disconnected, R_PadState, R_T0),
|
||||
atom_label(skip_port1_from_ack1)
|
||||
branch_equal(R_0, R_0, atom_offset(skip_port1_from_ack1, end_atom)),
|
||||
|
||||
atom_label(ack1_received_port1)
|
||||
load_byte_u(R_T0, R_PadSioBase, pad_SIO_DATA_OFFSET),
|
||||
|
||||
/* Bounded by pad_SIO_WAIT_BUDGET = 4096 iterations. */
|
||||
add_ui(R_T1, R_0, pad_SIO_WAIT_BUDGET),
|
||||
atom_label(wait_ackrel1_port1)
|
||||
load_half_u(R_T0, R_PadSioBase, pad_SIO_STAT_OFFSET),
|
||||
nop,
|
||||
and_i(R_T0, R_T0, pad_SIO_STAT_RX_NOT_EMPTY),
|
||||
branch_equal(R_T0, R_0, atom_offset(wait_ackrel1_port1, ack_released1_port1)),
|
||||
add_ui_self(R_T1, -1),
|
||||
atom_label(continue_wait_ackrel1_port1)
|
||||
branch_ne(R_T1, R_0, atom_offset(continue_wait_ackrel1_port1, wait_ackrel1_port1)),
|
||||
mac_pad_sio_write_pad_state(PadSioStatus_Disconnected, R_PadState, R_T0),
|
||||
atom_label(skip_port1_from_ackrel1)
|
||||
branch_equal(R_0, R_0, atom_offset(skip_port1_from_ackrel1, end_atom)),
|
||||
|
||||
atom_label(ack_released1_port1)
|
||||
|
||||
/* === Byte 2 (port 1): send 0x00 + RX-ready wait + read response + RX-drain confirmation === */
|
||||
/* Bounded by pad_SIO_WAIT_BUDGET = 4096 iterations. */
|
||||
add_ui(R_T0, R_0, 0x00),
|
||||
store_byte(R_T0, R_PadSioBase, pad_SIO_DATA_OFFSET),
|
||||
add_ui(R_T1, R_0, pad_SIO_WAIT_BUDGET),
|
||||
atom_label(wait_ack2_port1)
|
||||
load_half_u(R_T0, R_PadSioBase, pad_SIO_STAT_OFFSET),
|
||||
nop,
|
||||
and_i(R_T0, R_T0, pad_SIO_STAT_RX_NOT_EMPTY),
|
||||
branch_ne(R_T0, R_0, atom_offset(wait_ack2_port1, ack2_received_port1)),
|
||||
add_ui_self(R_T1, -1),
|
||||
atom_label(continue_wait_ack2_port1)
|
||||
branch_ne(R_T1, R_0, atom_offset(continue_wait_ack2_port1, wait_ack2_port1)),
|
||||
mac_pad_sio_write_pad_state(PadSioStatus_Disconnected, R_PadState, R_T0),
|
||||
atom_label(skip_port1_from_ack2)
|
||||
branch_equal(R_0, R_0, atom_offset(skip_port1_from_ack2, end_atom)),
|
||||
|
||||
atom_label(ack2_received_port1)
|
||||
load_byte_u(R_T0, R_PadSioBase, pad_SIO_DATA_OFFSET),
|
||||
|
||||
/* Bounded by pad_SIO_WAIT_BUDGET = 4096 iterations. */
|
||||
add_ui(R_T1, R_0, pad_SIO_WAIT_BUDGET),
|
||||
atom_label(wait_ackrel2_port1)
|
||||
load_half_u(R_T0, R_PadSioBase, pad_SIO_STAT_OFFSET),
|
||||
nop,
|
||||
and_i(R_T0, R_T0, pad_SIO_STAT_RX_NOT_EMPTY),
|
||||
branch_equal(R_T0, R_0, atom_offset(wait_ackrel2_port1, ack_released2_port1)),
|
||||
add_ui_self(R_T1, -1),
|
||||
atom_label(continue_wait_ackrel2_port1)
|
||||
branch_ne(R_T1, R_0, atom_offset(continue_wait_ackrel2_port1, wait_ackrel2_port1)),
|
||||
mac_pad_sio_write_pad_state(PadSioStatus_Disconnected, R_PadState, R_T0),
|
||||
atom_label(skip_port1_from_ackrel2)
|
||||
branch_equal(R_0, R_0, atom_offset(skip_port1_from_ackrel2, end_atom)),
|
||||
|
||||
atom_label(ack_released2_port1)
|
||||
|
||||
/* === Byte 3 (port 1): send 0x00 + RX-ready wait + read response + RX-drain confirmation === */
|
||||
/* Bounded by pad_SIO_WAIT_BUDGET = 4096 iterations. */
|
||||
add_ui(R_T0, R_0, 0x00),
|
||||
store_byte(R_T0, R_PadSioBase, pad_SIO_DATA_OFFSET),
|
||||
add_ui(R_T1, R_0, pad_SIO_WAIT_BUDGET),
|
||||
atom_label(wait_ack3_port1)
|
||||
load_half_u(R_T0, R_PadSioBase, pad_SIO_STAT_OFFSET),
|
||||
nop,
|
||||
and_i(R_T0, R_T0, pad_SIO_STAT_RX_NOT_EMPTY),
|
||||
branch_ne(R_T0, R_0, atom_offset(wait_ack3_port1, ack3_received_port1)),
|
||||
add_ui_self(R_T1, -1),
|
||||
atom_label(continue_wait_ack3_port1)
|
||||
branch_ne(R_T1, R_0, atom_offset(continue_wait_ack3_port1, wait_ack3_port1)),
|
||||
mac_pad_sio_write_pad_state(PadSioStatus_Disconnected, R_PadState, R_T0),
|
||||
atom_label(skip_port1_from_ack3)
|
||||
branch_equal(R_0, R_0, atom_offset(skip_port1_from_ack3, end_atom)),
|
||||
|
||||
atom_label(ack3_received_port1)
|
||||
load_byte_u(R_T0, R_PadSioBase, pad_SIO_DATA_OFFSET),
|
||||
|
||||
/* Bounded by pad_SIO_WAIT_BUDGET = 4096 iterations. */
|
||||
add_ui(R_T1, R_0, pad_SIO_WAIT_BUDGET),
|
||||
atom_label(wait_ackrel3_port1)
|
||||
load_half_u(R_T0, R_PadSioBase, pad_SIO_STAT_OFFSET),
|
||||
nop,
|
||||
and_i(R_T0, R_T0, pad_SIO_STAT_RX_NOT_EMPTY),
|
||||
branch_equal(R_T0, R_0, atom_offset(wait_ackrel3_port1, ack_released3_port1)),
|
||||
add_ui_self(R_T1, -1),
|
||||
atom_label(continue_wait_ackrel3_port1)
|
||||
branch_ne(R_T1, R_0, atom_offset(continue_wait_ackrel3_port1, wait_ackrel3_port1)),
|
||||
mac_pad_sio_write_pad_state(PadSioStatus_Disconnected, R_PadState, R_T0),
|
||||
atom_label(skip_port1_from_ackrel3)
|
||||
branch_equal(R_0, R_0, atom_offset(skip_port1_from_ackrel3, end_atom)),
|
||||
|
||||
atom_label(ack_released3_port1)
|
||||
|
||||
/* === Byte 4 (FINAL, port 1): send 0x00 + RX-not-empty wait + read final byte === */
|
||||
/* Bounded by pad_SIO_WAIT_BUDGET = 4096 iterations. */
|
||||
add_ui(R_T0, R_0, 0x00),
|
||||
store_byte(R_T0, R_PadSioBase, pad_SIO_DATA_OFFSET),
|
||||
add_ui(R_T1, R_0, pad_SIO_WAIT_BUDGET),
|
||||
atom_label(wait_rx4_port1)
|
||||
load_half_u(R_T0, R_PadSioBase, pad_SIO_STAT_OFFSET),
|
||||
nop,
|
||||
and_i(R_T0, R_T0, pad_SIO_STAT_RX_NOT_EMPTY),
|
||||
branch_ne(R_T0, R_0, atom_offset(wait_rx4_port1, rx4_received_port1)),
|
||||
add_ui_self(R_T1, -1),
|
||||
atom_label(continue_wait_rx4_port1)
|
||||
branch_ne(R_T1, R_0, atom_offset(continue_wait_rx4_port1, wait_rx4_port1)),
|
||||
mac_pad_sio_write_pad_state(PadSioStatus_Disconnected, R_PadState, R_T0),
|
||||
atom_label(skip_port1_from_rx4)
|
||||
branch_equal(R_0, R_0, atom_offset(skip_port1_from_rx4, end_atom)),
|
||||
|
||||
atom_label(rx4_received_port1)
|
||||
load_byte_u(R_T0, R_PadSioBase, pad_SIO_DATA_OFFSET), /* discard final byte */
|
||||
|
||||
/* === RESPONSE DECODE (port 1) === */
|
||||
atom_label(decode_port1)
|
||||
mac_pad_sio_write_pad_state(PadSioStatus_Digital, R_PadState, R_T0),
|
||||
|
||||
/* /CS cleanup: raise /CS, clear stale status before exiting port 1. */
|
||||
add_ui(R_T0, R_0, pad_SIO_CTRL_CLEANUP),
|
||||
store_half(R_T0, R_PadSioBase, pad_SIO_CTRL_OFFSET),
|
||||
|
||||
atom_label(end_atom)
|
||||
mac_yield(),
|
||||
};
|
||||
#endif /* end pad_sio_step wrap */
|
||||
|
||||
/* ----- pad_sio_diag_pin -----
|
||||
* Per-frame diagnostic counter. The caller binds R_DiagPinScratch to
|
||||
* scratch_for_atom_diag_pin for temporary gdb verification.
|
||||
*/
|
||||
#if 0 /* pad_sio_diag_pin — superseded (raw-SIO phase removed) */
|
||||
internal MipsAtom_(pad_sio_diag_pin) atom_info(atom_phase(pad_init)
|
||||
, atom_reads(R_T0, R_T1, R_DiagPinScratch)
|
||||
, atom_writes(R_T0, R_T1, R_DiagPinScratch)
|
||||
) {
|
||||
/* FIX 2026-08-02: explicitly reload R_DiagPinScratch (R_T3 = $t3). Caller-saved
|
||||
* per O32 ABI; the rgcc binding in main() does not survive tape_run. */
|
||||
load_upper_i(R_DiagPinScratch, 0x8001),
|
||||
or_i(R_DiagPinScratch, R_DiagPinScratch, 0xC800),
|
||||
|
||||
/* High half = 0xD1A6; low half increments once per atom invocation. */
|
||||
load_word(R_T1, R_DiagPinScratch, 0),
|
||||
nop,
|
||||
add_ui(R_T1, R_T1, 1),
|
||||
and_i(R_T0, R_T1, 0xFFFF),
|
||||
load_upper_i(R_T1, 0xD1A6),
|
||||
or_i(R_T1, R_T1, 0),
|
||||
or_u(R_T1, R_T1, R_T0),
|
||||
store_word(R_T1, R_DiagPinScratch, 0),
|
||||
mac_yield(),
|
||||
};
|
||||
#endif /* end pad_sio_diag_pin wrap */
|
||||
|
||||
/* ----- pad_sio_diag_byte_exchange -----
|
||||
* Temporary two-byte wire probe: sends 0x01 and 0x42, then stores the
|
||||
* open-bus byte and response ID in scratch_for_atom_diag_pin.
|
||||
*/
|
||||
#if 0 /* pad_sio_diag_byte_exchange — superseded (raw-SIO phase removed) */
|
||||
internal MipsAtom_(pad_sio_diag_byte_exchange) atom_info(atom_phase(pad_init)
|
||||
, atom_reads(R_T0, R_T1, R_T2, R_PadSioBase, R_DiagPinScratch)
|
||||
, atom_writes(R_T0, R_T1, R_T2, R_PadSioBase, R_DiagPinScratch)
|
||||
) {
|
||||
/* FIX 2026-08-02: explicitly reload R_DiagPinScratch (R_T3 = $t3). Caller-saved
|
||||
* per O32 ABI; the rgcc binding in main() does not survive tape_run. */
|
||||
load_upper_i(R_DiagPinScratch, 0x8001),
|
||||
or_i(R_DiagPinScratch, R_DiagPinScratch, 0xC800),
|
||||
|
||||
/* FIX 2026-08-02: explicitly load KSEG1 base into R_PadSioBase (R_T6) at the
|
||||
* top. The rgcc() binding in main() does NOT survive the tape_run call
|
||||
* because R_T6 is caller-saved per the O32 ABI. */
|
||||
load_upper_i(R_PadSioBase, pad_IO_KSEG1_BASE >> 16),
|
||||
or_i(R_PadSioBase, R_PadSioBase, pad_IO_KSEG1_BASE & 0xFFFF),
|
||||
|
||||
add_ui(R_T0, R_0, pad_SIO_CTRL_CLEANUP),
|
||||
store_half(R_T0, R_PadSioBase, pad_SIO_CTRL_OFFSET),
|
||||
add_ui(R_T0, R_0, pad_SIO_CTRL_TX_ENABLE),
|
||||
or_i(R_T0, R_T0, pad_SIO_CTRL_DTR_CS),
|
||||
store_half(R_T0, R_PadSioBase, pad_SIO_CTRL_OFFSET),
|
||||
|
||||
add_ui(R_T0, R_0, pad_PROTO_ADDR),
|
||||
store_byte(R_T0, R_PadSioBase, pad_SIO_DATA_OFFSET),
|
||||
add_ui(R_T1, R_0, pad_SIO_WAIT_BUDGET),
|
||||
atom_label(diag_wait_ack0)
|
||||
load_half_u(R_T0, R_PadSioBase, pad_SIO_STAT_OFFSET),
|
||||
nop,
|
||||
and_i(R_T0, R_T0, pad_SIO_STAT_RX_NOT_EMPTY),
|
||||
branch_ne(R_T0, R_0, atom_offset(diag_wait_ack0, diag_ack0_done)),
|
||||
add_ui_self(R_T1, -1),
|
||||
branch_ne(R_T1, R_0, atom_offset(diag_wait_ack0, diag_wait_ack0)),
|
||||
add_ui(R_T0, R_0, 0xDEADAC01),
|
||||
store_word(R_T0, R_DiagPinScratch, 0),
|
||||
branch_equal(R_0, R_0, atom_offset(diag_timeout_ack0, diag_timeout)),
|
||||
atom_label(diag_ack0_done)
|
||||
load_byte_u(R_T2, R_PadSioBase, pad_SIO_DATA_OFFSET),
|
||||
add_ui(R_T0, R_0, pad_PROTO_CMD_READ),
|
||||
store_byte(R_T0, R_PadSioBase, pad_SIO_DATA_OFFSET),
|
||||
add_ui(R_T1, R_0, pad_SIO_WAIT_BUDGET),
|
||||
atom_label(diag_wait_ack1)
|
||||
load_half_u(R_T0, R_PadSioBase, pad_SIO_STAT_OFFSET),
|
||||
nop,
|
||||
and_i(R_T0, R_T0, pad_SIO_STAT_RX_NOT_EMPTY),
|
||||
branch_ne(R_T0, R_0, atom_offset(diag_wait_ack1, diag_ack1_done)),
|
||||
add_ui_self(R_T1, -1),
|
||||
branch_ne(R_T1, R_0, atom_offset(diag_wait_ack1, diag_wait_ack1)),
|
||||
add_ui(R_T0, R_0, 0xDEADAC02),
|
||||
store_word(R_T0, R_DiagPinScratch, 0),
|
||||
branch_equal(R_0, R_0, atom_offset(diag_timeout_ack1, diag_timeout)),
|
||||
atom_label(diag_ack1_done)
|
||||
load_byte_u(R_T0, R_PadSioBase, pad_SIO_DATA_OFFSET),
|
||||
nop,
|
||||
shift_lleft(R_T0, R_T0, 8),
|
||||
or_u(R_T2, R_T2, R_T0),
|
||||
store_word(R_T2, R_DiagPinScratch, 0),
|
||||
atom_label(diag_success)
|
||||
branch_equal(R_0, R_0, atom_offset(diag_success, diag_done)),
|
||||
nop,
|
||||
atom_label(diag_timeout_ack0)
|
||||
add_ui(R_T0, R_0, 0xDEADAC01),
|
||||
store_word(R_T0, R_DiagPinScratch, 0),
|
||||
atom_label(diag_timeout_ack1)
|
||||
add_ui(R_T0, R_0, 0xDEADAC02),
|
||||
store_word(R_T0, R_DiagPinScratch, 0),
|
||||
atom_label(diag_timeout)
|
||||
add_ui(R_T0, R_0, 0xDEADACFF),
|
||||
store_word(R_T0, R_DiagPinScratch, 0),
|
||||
atom_label(diag_done)
|
||||
add_ui(R_T0, R_0, pad_SIO_CTRL_CLEANUP),
|
||||
store_half(R_T0, R_PadSioBase, pad_SIO_CTRL_OFFSET),
|
||||
mac_yield(),
|
||||
};
|
||||
#endif /* end pad_sio_diag_byte_exchange wrap */
|
||||
@@ -7,12 +7,12 @@ A rest from the usual.
|
||||
## Dependencies
|
||||
|
||||
I will be programming from a Windows 11 machine (may eventually try this on the Steam Deck...):
|
||||

|
||||
|
||||
[armips](https://github.com/Kingcom/armips)
|
||||
|
||||
* Supports doing bare-metal assembly for the ps1
|
||||
* `scoop install armips` or just clone and build..
|
||||
* Was used early in the course. Now I just use an macro asm dsl in C11.
|
||||
|
||||
[luajit-2.1](https://github.com/LuaJIT/LuaJIT.git)
|
||||
|
||||
@@ -73,3 +73,9 @@ scoop install luajit
|
||||

|
||||

|
||||

|
||||
|
||||
Win 11 machine:
|
||||
|
||||

|
||||
|
||||
Still haven't gotten around to trying this on linux...
|
||||
|
||||
+173
-76
@@ -180,29 +180,15 @@ function link-modules { param([string[]]$link_modules, [string] $elf, [string[]
|
||||
$link_args += ($f_link_pass_through_prefix + $f_link_mapfile + $map)
|
||||
|
||||
$link_args += ($f_link_pass_through_prefix + $f_link_start_group)
|
||||
# 16 removed entries (c2, card, cd, comb, ds, gs, gun, hmd, math, mcrd, mcx, press, sio, snd, spu, tap)
|
||||
# had LOAD lines in the map but ZERO .o files pulled in — they were unused.
|
||||
# 5 kept libraries (api, c, etc, gpu, gte) are required by the C-side calls in hello_joypad.c (reset_graph, draw_sync, vsync, etc.).
|
||||
$libraries = @(
|
||||
"api",
|
||||
"c",
|
||||
"c2",
|
||||
"card",
|
||||
"cd",
|
||||
"comb",
|
||||
"ds",
|
||||
"etc",
|
||||
"gpu",
|
||||
"gs",
|
||||
"gte",
|
||||
"gun",
|
||||
"hmd",
|
||||
"math",
|
||||
"mcrd",
|
||||
"mcx",
|
||||
"pad",
|
||||
"press",
|
||||
"sio",
|
||||
"snd",
|
||||
"spu",
|
||||
"tap"
|
||||
"gte"
|
||||
)
|
||||
foreach ($lib in $libraries) {
|
||||
$link_args += ($f_link_lib + $lib)
|
||||
@@ -238,9 +224,7 @@ function ps1-meta { param(
|
||||
[string[]]$passes = @('--pre-link'),
|
||||
[string[]]$extra_args = @()
|
||||
)
|
||||
# `--unity-root` and `--source` are
|
||||
# mutually exclusive. Exactly one of `$unity_root` / `$sources` must
|
||||
# be supplied; the other must be absent.
|
||||
# `--unity-root` and `--source` are mutually exclusive. Exactly one of `$unity_root` / `$sources` must be supplied; the other must be absent.
|
||||
if ($null -ne $unity_root -and $unity_root -ne '')
|
||||
{
|
||||
if ($null -ne $sources -and $sources.Count -gt 0) {
|
||||
@@ -276,6 +260,73 @@ function ps1-meta { param(
|
||||
}
|
||||
}
|
||||
|
||||
function inject-dwarf { param(
|
||||
[string]$elf,
|
||||
[string]$path_gen
|
||||
)
|
||||
$base_name = [System.IO.Path]::GetFileNameWithoutExtension($elf)
|
||||
$path_dwarf_line_bin = join-path $path_gen "$base_name.dwarf_line.bin"
|
||||
$path_dwarf_aranges_bin = join-path $path_gen "$base_name.dwarf_aranges.bin"
|
||||
$path_dwarf_rnglists_bin = join-path $path_gen "$base_name.dwarf_rnglists.bin"
|
||||
$path_dwarf_info_bin = join-path $path_gen "$base_name.dwarf_info.bin"
|
||||
$path_dwarf_abbrev_bin = join-path $path_gen "$base_name.dwarf_abbrev.bin"
|
||||
$path_dwarf_str_bin = join-path $path_gen "$base_name.dwarf_str.bin"
|
||||
$path_dwarf_loc_bin = join-path $path_gen "$base_name.dwarf_loc.bin"
|
||||
$path_dwarf_loclists_bin = join-path $path_gen "$base_name.dwarf_loclists.bin"
|
||||
$path_inject_elf = join-path $path_build "$base_name.dwarf-injected.elf"
|
||||
|
||||
if (-not (Test-Path $path_dwarf_line_bin)) { return }
|
||||
if (-not (Test-Path $path_dwarf_aranges_bin)) { return }
|
||||
if (-not (Test-Path $path_dwarf_rnglists_bin)) { return }
|
||||
|
||||
Write-Host "[build] DWARF-injecting $elf -> $path_inject_elf"
|
||||
Copy-Item -LiteralPath $elf -Destination $path_inject_elf -Force
|
||||
|
||||
# Objcopy call 1: 3x --update-section for the PC-mapping tables (line, aranges, rnglists).
|
||||
$objcopy_args_dwarf_pc = @(
|
||||
"--update-section=.debug_line=$path_dwarf_line_bin",
|
||||
"--update-section=.debug_aranges=$path_dwarf_aranges_bin",
|
||||
"--update-section=.debug_rnglists=$path_dwarf_rnglists_bin"
|
||||
)
|
||||
& $Objcopy @objcopy_args_dwarf_pc $path_inject_elf 2>&1 | Out-Null
|
||||
if ($LASTEXITCODE -ne 0) {
|
||||
Write-Warning "[build] objcopy dwarf-pc splice failed (exit $LASTEXITCODE); removing $path_inject_elf"
|
||||
Remove-Item -LiteralPath $path_inject_elf -ErrorAction SilentlyContinue
|
||||
return
|
||||
}
|
||||
|
||||
# Objcopy call 2: 3x --update-section + 2x --add-section for the debug-data tables (info, abbrev, str, loc, loclists).
|
||||
$objcopy_args_dwarf_info = @(
|
||||
"--update-section=.debug_info=$path_dwarf_info_bin",
|
||||
"--update-section=.debug_abbrev=$path_dwarf_abbrev_bin",
|
||||
"--update-section=.debug_str=$path_dwarf_str_bin",
|
||||
"--add-section=.debug_loc=$path_dwarf_loc_bin",
|
||||
"--add-section=.debug_loclists=$path_dwarf_loclists_bin"
|
||||
)
|
||||
& $Objcopy @objcopy_args_dwarf_info $path_inject_elf 2>&1 | Out-Null
|
||||
if ($LASTEXITCODE -ne 0) {
|
||||
Write-Warning "[build] objcopy dwarf-info splice failed (exit $LASTEXITCODE); removing $path_inject_elf"
|
||||
Remove-Item -LiteralPath $path_inject_elf -ErrorAction SilentlyContinue
|
||||
return
|
||||
}
|
||||
|
||||
# Baked atoms execute from RAM but are emitted as C data arrays, so their ELF sections lack SHF_EXECINSTR.
|
||||
# GDB discards line rows for non-code sections. Mark only the debug-copy sections executable.
|
||||
# The original ELF and PS-EXE remain byte/flag unchanged.
|
||||
& $Objcopy `
|
||||
--set-section-flags ".rodata=alloc,load,readonly,code,contents" `
|
||||
--set-section-flags ".data=alloc,load,data,code,contents" `
|
||||
$path_inject_elf 2>&1 | Out-Null
|
||||
if ($LASTEXITCODE -ne 0) {
|
||||
Write-Warning "[build] atom-section flag update failed (exit $LASTEXITCODE); removing $path_inject_elf"
|
||||
Remove-Item -LiteralPath $path_inject_elf -ErrorAction SilentlyContinue
|
||||
}
|
||||
else {
|
||||
Write-Host "[build] DWARF-injected ELF: $path_inject_elf"
|
||||
}
|
||||
}
|
||||
# inject-dwarf
|
||||
|
||||
function build-hello_psyqo {
|
||||
$includes += @()
|
||||
|
||||
@@ -350,10 +401,10 @@ function build-graphis_hello {
|
||||
}
|
||||
# build-graphis_hello
|
||||
|
||||
function build-gte_hello {
|
||||
function build-hello_gte {
|
||||
$includes += @()
|
||||
|
||||
$path_module = join-path $path_code 'gte_hello'
|
||||
$path_module = join-path $path_code 'hello_gte'
|
||||
$path_duffle = join-path $path_code 'duffle'
|
||||
$path_atom_metadata = join-path $path_duffle 'word_count.metadata.h'
|
||||
$path_build_gen = join-path $path_build 'gen'
|
||||
@@ -402,64 +453,110 @@ function build-gte_hello {
|
||||
# Post-link: gdb-runtime + dwarf-injection in a single Lua invocation (one luajit cold start).
|
||||
ps1-meta -unity_root $src_c -metadata $path_atom_metadata -out_root $path_build_gen -passes @('--post-link') ` -extra_args @('--elf', $elf)
|
||||
|
||||
$dwarfLineBin = join-path $path_build_gen 'hello_gte.dwarf_line.bin'
|
||||
$dwarfArangesBin = join-path $path_build_gen 'hello_gte.dwarf_aranges.bin'
|
||||
$dwarfRnglistsBin = join-path $path_build_gen 'hello_gte.dwarf_rnglists.bin'
|
||||
$injectElf = join-path $path_build 'hello_gte.dwarf-injected.elf'
|
||||
if ((Test-Path $dwarfLineBin) -and (Test-Path $dwarfArangesBin) -and (Test-Path $dwarfRnglistsBin))
|
||||
{
|
||||
Write-Host "[build] DWARF-injecting $elf -> $injectElf"
|
||||
Copy-Item -LiteralPath $elf -Destination $injectElf -Force
|
||||
# Objcopy call: 3x --update-section for (line, aranges, rnglists).
|
||||
$f_args = @(
|
||||
"--update-section=.debug_line=$dwarfLineBin",
|
||||
"--update-section=.debug_aranges=$dwarfArangesBin",
|
||||
"--update-section=.debug_rnglists=$dwarfRnglistsBin"
|
||||
inject-dwarf $elf $path_build_gen
|
||||
}
|
||||
# build-hello_gte
|
||||
|
||||
function build-hello_joypad {
|
||||
$includes += @()
|
||||
|
||||
$path_module = join-path $path_code 'hello_joypad'
|
||||
$path_duffle = join-path $path_code 'duffle'
|
||||
$path_atom_metadata = join-path $path_duffle 'word_count.metadata.h'
|
||||
$path_build_gen = join-path $path_build 'gen'
|
||||
|
||||
$src_c = join-path $path_module 'hello_joypad.c'
|
||||
ps1-meta -unity_root $src_c -metadata $path_atom_metadata -out_root $path_build_gen
|
||||
|
||||
$assemble_args = @()
|
||||
$assemble_args += $f_debug
|
||||
$assemble_args += $f_optimize_none
|
||||
$assemble_args += ($f_include + $path_code)
|
||||
|
||||
$src_asm_crt = join-path $path_nugget_common 'crt0/crt0.s'
|
||||
$module_asm_crt = join-path $path_build 'crt0.o'
|
||||
assemble-unit $src_asm_crt $module_asm_crt $includes $assemble_args
|
||||
|
||||
$module_c = join-path $path_build 'hello_joypad_c.o'
|
||||
|
||||
$compile_args = @()
|
||||
$compile_args += $f_debug
|
||||
$compile_args += $f_optimize_none
|
||||
# $compile_args += $f_optimize_intrinsics
|
||||
# $compile_args += $f_optimize_size
|
||||
# $compile_args += $f_optimize_debug
|
||||
$compile_args += ($f_include + $path_code)
|
||||
compile-unit $src_c $module_c $includes $compile_args
|
||||
|
||||
$elf = join-path $path_build 'hello_joypad.elf'
|
||||
$exe = join-path $path_build 'hello_joypad.ps-exe'
|
||||
|
||||
$link_args = @()
|
||||
$link_args += $f_debug
|
||||
# $link_args += $f_optimize_size
|
||||
$link_modules = @(
|
||||
$module_asm_crt,
|
||||
$module_c
|
||||
)
|
||||
& $Objcopy @f_args $injectElf 2>&1 | Out-Null
|
||||
if ($LASTEXITCODE -ne 0) {
|
||||
Write-Warning "[build] objcopy F' splice failed (exit $LASTEXITCODE); removing $injectElf"
|
||||
Remove-Item -LiteralPath $injectElf -ErrorAction SilentlyContinue
|
||||
return;
|
||||
}
|
||||
link-modules $link_modules $elf $link_args
|
||||
make-binary $elf $exe
|
||||
|
||||
$dwarfInfoBin = join-path $path_build_gen 'hello_gte.dwarf_info.bin'
|
||||
$dwarfAbbrevBin = join-path $path_build_gen 'hello_gte.dwarf_abbrev.bin'
|
||||
$dwarfStrBin = join-path $path_build_gen 'hello_gte.dwarf_str.bin'
|
||||
$dwarfLocBin = join-path $path_build_gen 'hello_gte.dwarf_loc.bin'
|
||||
$dwarfLoclistsBin = join-path $path_build_gen 'hello_gte.dwarf_loclists.bin'
|
||||
$g_args = @(
|
||||
"--update-section=.debug_info=$dwarfInfoBin",
|
||||
"--update-section=.debug_abbrev=$dwarfAbbrevBin",
|
||||
"--update-section=.debug_str=$dwarfStrBin",
|
||||
"--add-section=.debug_loc=$dwarfLocBin",
|
||||
"--add-section=.debug_loclists=$dwarfLoclistsBin"
|
||||
# Post-link: gdb-runtime + dwarf-injection in a single Lua invocation (one luajit cold start).
|
||||
ps1-meta -unity_root $src_c -metadata $path_atom_metadata -out_root $path_build_gen -passes @('--post-link') ` -extra_args @('--elf', $elf)
|
||||
|
||||
inject-dwarf $elf $path_build_gen
|
||||
}
|
||||
# build-hello_joypad
|
||||
|
||||
function build-hello_camera {
|
||||
$includes += @()
|
||||
|
||||
$path_module = join-path $path_code 'hello_camera'
|
||||
$path_duffle = join-path $path_code 'duffle'
|
||||
$path_atom_metadata = join-path $path_duffle 'word_count.metadata.h'
|
||||
$path_build_gen = join-path $path_build 'gen'
|
||||
|
||||
$src_c = join-path $path_module 'hello_camera.c'
|
||||
ps1-meta -unity_root $src_c -metadata $path_atom_metadata -out_root $path_build_gen -passes @('--pre-link')
|
||||
|
||||
$assemble_args = @()
|
||||
$assemble_args += $f_debug
|
||||
$assemble_args += $f_optimize_none
|
||||
$assemble_args += ($f_include + $path_code)
|
||||
|
||||
$src_asm_crt = join-path $path_nugget_common 'crt0/crt0.s'
|
||||
$module_asm_crt = join-path $path_build 'crt0.o'
|
||||
assemble-unit $src_asm_crt $module_asm_crt $includes $assemble_args
|
||||
|
||||
$module_c = join-path $path_build 'hello_camera_c.o'
|
||||
|
||||
$compile_args = @()
|
||||
$compile_args += $f_debug
|
||||
$compile_args += $f_optimize_none
|
||||
# $compile_args += $f_optimize_intrinsics
|
||||
# $compile_args += $f_optimize_size
|
||||
# $compile_args += $f_optimize_debug
|
||||
$compile_args += ($f_include + $path_code)
|
||||
compile-unit $src_c $module_c $includes $compile_args
|
||||
|
||||
$elf = join-path $path_build 'hello_camera.elf'
|
||||
$exe = join-path $path_build 'hello_camera.ps-exe'
|
||||
|
||||
$link_args = @()
|
||||
$link_args += $f_debug
|
||||
# $link_args += $f_optimize_size
|
||||
$link_modules = @(
|
||||
$module_asm_crt,
|
||||
$module_c
|
||||
)
|
||||
& $Objcopy @g_args $injectElf 2>&1 | Out-Null
|
||||
if ($LASTEXITCODE -ne 0) {
|
||||
Write-Warning "[build] objcopy G' splice failed (exit $LASTEXITCODE); removing $injectElf"
|
||||
Remove-Item -LiteralPath $injectElf -ErrorAction SilentlyContinue
|
||||
return;
|
||||
}
|
||||
link-modules $link_modules $elf $link_args
|
||||
make-binary $elf $exe
|
||||
|
||||
# Baked atoms execute from RAM but are emitted as C data arrays, so their ELF sections lack SHF_EXECINSTR.
|
||||
# GDB discards line rows for non-code sections. Mark only the debug-copy sections executable.
|
||||
# The original ELF and PS-EXE remain byte/flag unchanged.
|
||||
& $Objcopy `
|
||||
--set-section-flags ".rodata=alloc,load,readonly,code,contents" `
|
||||
--set-section-flags ".data=alloc,load,data,code,contents" `
|
||||
$injectElf 2>&1 | Out-Null
|
||||
if ($LASTEXITCODE -ne 0) {
|
||||
Write-Warning "[build] atom-section flag update failed (exit $LASTEXITCODE); removing $injectElf"
|
||||
Remove-Item -LiteralPath $injectElf -ErrorAction SilentlyContinue
|
||||
}
|
||||
else {
|
||||
Write-Host "[build] DWARF-injected ELF: $injectElf"
|
||||
}
|
||||
}
|
||||
}
|
||||
build-gte_hello
|
||||
ps1-meta -unity_root $src_c -metadata $path_atom_metadata -out_root $path_build_gen -passes @('--post-link') ` -extra_args @('--elf', $elf)
|
||||
|
||||
inject-dwarf $elf $path_build_gen
|
||||
}
|
||||
build-hello_camera
|
||||
|
||||
# NO idea if this works yet...
|
||||
function Send-ToEmulator { param( [string]$exePath )
|
||||
|
||||
+218
-200
@@ -1,18 +1,12 @@
|
||||
--- duffle.lua — shared primitives + domain tables for the tape-atom metaprograms.
|
||||
---
|
||||
--- One ownership statement, then the rest is signal:
|
||||
--- * **Character classification** (`is_space`, `is_alpha`, `is_alnum`, `is_digit`, plus the byte-fast `_byte` variants).
|
||||
--- * **String / path primitives** (`trim`, `dirname`, `basename_no_ext`, `normalize_path`, `canonical_path_key`, `find_byte`).
|
||||
--- * **I/O primitives** (`read_file`, `write_file`, `ensure_dir`).
|
||||
--- * **Corpus resolution** (`parse_direct_quoted_includes`, `resolve_source_corpus`).
|
||||
--- * **C-language scanner** (`skip_ws_and_cmt`, `skip_str_or_cmt`, `read_ident`, `read_parens`, `read_braces`, `read_brackets`,
|
||||
--- `read_balanced`, `scan_to_char`, `split_top_level_commas`).
|
||||
--- * **Word-count loader** (`load_word_counts` for `WORD_COUNT(...)` metadata files).
|
||||
--- * **Line lookup** (`LineIndex` returns an O(log N) `line_of(pos)` closure for source-mapping).
|
||||
--- * **Domain tables** (`TAPE_ATOM_MACROS`, `GTE_PIPELINE_LATENCY`, `GP0_CMD_SIZE`, `GP0_CMD_BY_SHAPE`,
|
||||
--- `GP0_MACRO_CONTRIB`, `INSTRUCTION_LATENCY`).
|
||||
---
|
||||
--- **Conventions**: tabs (1/level), EmmyLua annotations, no regex.
|
||||
--- * Character classification: `is_space`, `is_alpha`, `is_alnum`, `is_digit`, plus the byte-fast `_byte` variants.
|
||||
--- * String / path primitives: `trim`, `dirname`, `basename_no_ext`, `normalize_path`, `canonical_path_key`, `find_byte`.
|
||||
--- * I/O primitives: `read_file`, `write_file`, `ensure_dir`.
|
||||
--- * Corpus resolution: `parse_direct_quoted_includes`, `resolve_source_corpus`.
|
||||
--- * C-language scanner: `skip_ws_and_cmt`, `skip_str_or_cmt`, `read_ident`, `read_parens`, `read_braces`, `read_brackets`, `read_balanced`, `scan_to_char`, `split_top_level_commas`.
|
||||
--- * Word-count loader: `load_word_counts` for `WORD_COUNT(...)` metadata files.
|
||||
--- * Line lookup: `LineIndex` returns an O(log N) `line_of(pos)` closure for source-mapping.
|
||||
--- * Domain tables: `TAPE_ATOM_MACROS`, `GTE_PIPELINE_LATENCY`, `GP0_CMD_SIZE`, `GP0_CMD_BY_SHAPE`, `INSTRUCTION_LATENCY`.
|
||||
|
||||
local M = {}
|
||||
|
||||
@@ -24,7 +18,7 @@ local lfs = require("lfs")
|
||||
-- Cross-file type aliases
|
||||
-- ════════════════════════════════════════════════════════════════════════════
|
||||
|
||||
--- @alias Path string -- absolute or CWD-relative file path
|
||||
--- @alias Path string -- Absolute or CWD-relative file path
|
||||
--- @alias LineNum integer -- 1-indexed source line number
|
||||
--- @alias ByteOff integer -- 0-indexed byte offset within a source string
|
||||
--- @alias MacroName string -- lower_snake_case macro identifier (e.g. "mac_yield")
|
||||
@@ -32,10 +26,10 @@ local lfs = require("lfs")
|
||||
--- @alias Severity string -- "error" | "warning" | "info"
|
||||
|
||||
--- @class SourceFile
|
||||
--- @field path Path -- absolute path to the source file
|
||||
--- @field text string -- the full source text
|
||||
--- @field dir string -- the directory containing the source
|
||||
--- @field basename string -- filename without extension
|
||||
--- @field path Path -- Absolute path to the source file
|
||||
--- @field text string -- Full source text
|
||||
--- @field dir string -- Directory containing the source
|
||||
--- @field basename string -- Filename without extension
|
||||
|
||||
-- ════════════════════════════════════════════════════════════════════════════
|
||||
-- ASCII byte constants
|
||||
@@ -73,20 +67,12 @@ local BYTE_DIGIT_9 = 0x39 -- '9'
|
||||
-- ════════════════════════════════════════════════════════════════════════════
|
||||
-- Section -1: Bootstrap (path-setup at module load)
|
||||
-- ════════════════════════════════════════════════════════════════════════════
|
||||
--
|
||||
-- Path setup runs through `scripts/duffle_paths.lua`, which derives the repo root from `debug.getinfo(1, "S").source`
|
||||
-- (no subprocess, ~0ms) and then calls `require("duffle")`.
|
||||
-- Entry and pass scripts load `duffle_paths.lua` first; a `find_repo_root` / `setup_package_path` defined here was dead code in practice.
|
||||
-- `git rev-parse` costs ~100-180ms per subprocess spawn on Windows; `debug.getinfo` is <1ms, so we keep only the fast path.
|
||||
--
|
||||
-- To load `duffle.lua` outside `duffle_paths.lua`, set `package.path` manually before `require`.
|
||||
-- See `docs/guide_metaprogram_ssdl.md` §"I/O primitives" for the pattern.
|
||||
|
||||
-- ════════════════════════════════════════════════════════════════════════════
|
||||
-- Section 0: LPeg patterns (compiled once at module load)
|
||||
-- ════════════════════════════════════════════════════════════════════════════
|
||||
--
|
||||
-- LPeg is a required dependency (PEG library, no regex). It's loaded via `package.cpath` — `duffle_paths.lua` wires the path to `toolchain/lpeg/lpeg.dll`.
|
||||
-- LPeg is a required dependency (PEG library). It's loaded via `package.cpath` — `duffle_paths.lua` wires the path to `toolchain/lpeg/lpeg.dll`.
|
||||
-- LPeg handles the high-level scanner; the byte-by-byte helpers in Section 1 handle classification primitives that LPeg's CPython-level cost would dominate.
|
||||
--
|
||||
-- If the require fails, fail loud with an actionable message. The build script (`update_deps.ps1`) builds lpeg.dll into `toolchain/lpeg/`; run it when the dll is missing.
|
||||
@@ -108,24 +94,18 @@ local lpeg_alnum_pat = alpha_pat + digit_pat
|
||||
local lpeg_alpha_pat = alpha_pat
|
||||
local lpeg_ident_pat = lpeg.C(alpha_pat * lpeg_alnum_pat^0)
|
||||
|
||||
-- String literal: "..." with backslash escapes.
|
||||
local lpeg_str_pat = P('"') * (P(1) - S('"\\') + P('\\') * P(1))^0 * P('"')
|
||||
-- Char literal: '...' with backslash escapes.
|
||||
local lpeg_chr_pat = P("'") * (P(1) - S("'\\") + P('\\') * P(1))^0 * P("'")
|
||||
-- Line comment: // ... to end-of-line.
|
||||
local lpeg_line_cmt_pat = P("//") * (P(1) - S("\n"))^0
|
||||
-- Block comment: /* ... */ (no nesting per C standard).
|
||||
local lpeg_block_cmt_pat = P("/*") * (P(1) - P("*/"))^0 * P("*/")
|
||||
-- String or comment (any of the four forms).
|
||||
local lpeg_str_or_cmt_pat = lpeg_str_pat + lpeg_chr_pat + lpeg_line_cmt_pat + lpeg_block_cmt_pat
|
||||
local lpeg_str_pat = P('"') * (P(1) - S('"\\') + P('\\') * P(1))^0 * P('"') -- String literal: "..." with backslash escapes.
|
||||
local lpeg_chr_pat = P("'") * (P(1) - S("'\\") + P('\\') * P(1))^0 * P("'") -- Char literal: '...' with backslash escapes.
|
||||
local lpeg_line_cmt_pat = P("//") * (P(1) - S("\n"))^0 -- Line comment: // ... to end-of-line.
|
||||
local lpeg_block_cmt_pat = P("/*") * (P(1) - P("*/"))^0 * P("*/") -- Block comment: /* ... */ (no nesting per C standard).
|
||||
local lpeg_str_or_cmt_pat = lpeg_str_pat + lpeg_chr_pat + lpeg_line_cmt_pat + lpeg_block_cmt_pat -- String or comment (any of the four forms).
|
||||
|
||||
-- Whitespace + comment skipper: zero+ (whitespace run | string | comment).
|
||||
local ws_pat = S(" \t\n\r\v\f")
|
||||
local lpeg_ws_and_cmt_pat = (ws_pat + lpeg_str_or_cmt_pat)^0
|
||||
|
||||
-- Generic "skip until target, but step over balanced groups" matcher.
|
||||
-- Used by scan_to_char for non-ident / non-bracket chars.
|
||||
-- We accept any single char except the target.
|
||||
-- Used by scan_to_char for non-ident / non-bracket chars. We accept any single char except the target.
|
||||
-- The balanced-group stepping is handled by the caller (via read_balanced).
|
||||
local lpeg_scan_to_target_pat = function(target) return (P(1) - P(target))^0 end
|
||||
|
||||
@@ -148,12 +128,10 @@ end
|
||||
|
||||
-- Single digit.
|
||||
function M.is_digit_byte(b) return b and b >= BYTE_DIGIT_0 and b <= BYTE_DIGIT_9 end
|
||||
|
||||
-- Letter OR digit OR underscore.
|
||||
function M.is_alnum_byte(b) return M.is_alpha_byte(b) or M.is_digit_byte(b) end
|
||||
|
||||
-- String-based wrappers (kept for callers that already have a single-char string;
|
||||
-- the byte versions are what the hot loops should call).
|
||||
-- String-based wrappers (kept for callers that already have a single-char string; the byte versions are what the hot loops should call).
|
||||
function M.is_space(c)
|
||||
if type(c) == "number" then return M.is_space_byte(c) end
|
||||
return c == " " or c == "\t" or c == "\n" or c == "\r" or c == "\v" or c == "\f"
|
||||
@@ -309,7 +287,7 @@ local function absolute_normalized_path(path)
|
||||
end
|
||||
|
||||
--- Return the normalized absolute, Windows-case-folded comparison key for a path.
|
||||
--- -Ordinary relative paths resolve against the process cwd. Drive-relative paths are rejected because LuaFileSystem does not expose Windows per-drive current directories.
|
||||
--- Ordinary relative paths resolve against the process cwd. Drive-relative paths are rejected because LuaFileSystem does not expose Windows per-drive current directories.
|
||||
--- @param path Path
|
||||
--- @return string
|
||||
function M.canonical_path_key(path)
|
||||
@@ -810,7 +788,6 @@ function M.resolve_source_corpus(options)
|
||||
end
|
||||
|
||||
-- Split a brace-body into top-level comma-separated tokens. Honors nested parens/braces/brackets and skips strings/comments.
|
||||
--
|
||||
-- Splits at top-level NEWLINES and SEMICOLONS too, AND emits a token break after a top-level comment/string.
|
||||
-- Pure-comment / pure-string chunks contribute 0 words.
|
||||
function M.split_top_level_commas(body)
|
||||
@@ -846,7 +823,7 @@ function M.split_top_level_commas(body)
|
||||
if has_real_content(chunk) then
|
||||
tokens[#tokens + 1] = chunk
|
||||
elseif #tokens > 0 then
|
||||
-- Pure comment/string chunk at top level.
|
||||
-- comment/string chunk at top level.
|
||||
-- Append it to the LAST token so emit-context callers (components.lua build_component_lines) can convert
|
||||
-- `// trailing comment` to `/* */` and emit it with the macro body.
|
||||
-- count_token_words only inspects the leading ident, so a trailing comment does not affect the count.
|
||||
@@ -920,18 +897,25 @@ function M.tokenize_body(body)
|
||||
while scan <= len do
|
||||
local c = body:byte(scan)
|
||||
-- Terminator bytes (delimit a token at the top level): ',' = 0x2C, '\n' = 0x0A, ';' = 0x3B.
|
||||
-- These also appear as separators between argument lists inside the parens/braces/brackets,
|
||||
-- so we stop the scan when we hit any of them.
|
||||
-- These also appear as separators between argument lists inside the parens/braces/brackets, so we stop the scan when we hit any of them.
|
||||
if c == BYTE_COMMA then break end
|
||||
if c == BYTE_NEWLINE then break end
|
||||
if c == BYTE_SEMI then break end
|
||||
-- Line-comment '// ... \n' (0x2F 0x2F): skip to (and past) the next newline, or to end-of-body.
|
||||
if c == BYTE_SLASH and body:byte(scan + 1) == BYTE_SLASH then
|
||||
local nl = M.find_byte(body, BYTE_NEWLINE, scan)
|
||||
scan = nl and (nl + 1) or (len + 1)
|
||||
-- Block-comment '/* ... */' (0x2F 0x2A): skip to (and past) the matching '*/', or to end-of-body.
|
||||
elseif c == BYTE_SLASH and body:byte(scan + 1) == BYTE_STAR then
|
||||
local close = body:find("*/", scan + 2, true)
|
||||
scan = close and (close + 2) or (len + 1)
|
||||
-- Group opener bytes (consume the balanced group via the matching reader): '(' = 0x28, '{' = 0x7B, '[' = 0x5B.
|
||||
if c == BYTE_OPEN_PAREN then local _, a = M.read_parens (body, scan); scan = a
|
||||
elseif c == BYTE_OPEN_PAREN then local _, a = M.read_parens (body, scan); scan = a
|
||||
elseif c == BYTE_OPEN_BRACE then local _, a = M.read_braces (body, scan); scan = a
|
||||
elseif c == BYTE_OPEN_BRACK then local _, a = M.read_brackets (body, scan); scan = a
|
||||
-- String-literal byte ('"' = 0x22 or '\'' = 0x27): skip past the quoted region in one shot.
|
||||
elseif c == BYTE_DQUOTE or c == BYTE_SQUOTE then
|
||||
scan = M.skip_str_or_cmt(body, scan) + 1
|
||||
scan = (M.skip_str_or_cmt(body, scan) or scan) + 1
|
||||
else
|
||||
scan = scan + 1
|
||||
end
|
||||
@@ -1080,8 +1064,8 @@ M.GTE_COMMAND_ALIASES = {
|
||||
-- * "Store delays are counted in numbers of clock cycles (not in numbers of opcodes).
|
||||
-- For 3 cycle delay, one must usually insert 3 cached opcodes (or one uncached opcode)."
|
||||
--
|
||||
-- Per PSX-SPX `docs/psx-spx/docs/gtepipelinetimings.md` (the per-instruction input-latch measurement, which is the same
|
||||
-- phenomenon modeled from the command side), the values are:
|
||||
-- Per PSX-SPX `docs/psx-spx/docs/gtepipelinetimings.md` (the per-instruction input-latch measurement, which is the same phenomenon modeled from the command side),
|
||||
-- the values are:
|
||||
-- rtps: every data register, every control register (RT / TR / OFX / OFY / H / DQA / DQB)
|
||||
-- rtpt: same superset (rtpt reads V0..V2, the RT matrix, the TR vector, OFX / OFY, H, DQA, DQB)
|
||||
-- nclip: SXY0, SXY1, SXY2 (no RT / TR / OFX inputs)
|
||||
@@ -1091,7 +1075,7 @@ M.GTE_COMMAND_ALIASES = {
|
||||
-- avsz3 / avsz4: SZ0..SZ3 + ZSF3/ZSF4
|
||||
--
|
||||
-- We model the data-register + control-register superset. Every relevant input is in this set per PSX-SPX `gtepipelinetimings.md`;
|
||||
-- the per-input latching values there describe the same number's command-side view
|
||||
-- The per-input latching values there describe the same number's command-side view
|
||||
-- (a recent mtc2/ctc2 to that register must retire the same number of cycles before the command issues).
|
||||
-- Anything outside this set is safe to clobber immediately after a prior command.
|
||||
M.GTE_COMMAND_INPUTS = {
|
||||
@@ -1155,7 +1139,6 @@ M.GTE_COMMAND_INPUTS = {
|
||||
}
|
||||
|
||||
-- GTE command output-set + semantic role table.
|
||||
--
|
||||
-- For each command, the set of C2 data registers the command writes as outputs, paired with the SEMANTIC ROLE of each output.
|
||||
-- The semantic role is the basis for the `_post_<cmd>` contract validation.
|
||||
-- The contract says "after <cmd>, the latest screen-XY is C2_SXY2" (C2_SXY0 is wrong; the FIFO side effects leave SXY0 as an older FIFO entry, never the newest).
|
||||
@@ -1180,10 +1163,9 @@ M.GTE_COMMAND_INPUTS = {
|
||||
-- * "mac_result" : generic MAC output (nclip, op, mvmva)
|
||||
--
|
||||
-- Consumers:
|
||||
-- * passes/static_analysis.lua::analyze_hardware_relations (the walker reads this after a GTE command to update
|
||||
-- `forward_state.post_command_roles` for `gte_result_position`).
|
||||
-- * passes/static_analysis.lua::check_gte_result_position (per-atom CHECK_RULES reader; renders role mismatches).
|
||||
-- This table is consumed by the hardware-relation analyzer and result-position check.
|
||||
-- * passes/static_analysis.lua::analyze_hardware_relations (the walker reads this after a GTE command to update `forward_state.post_command_roles` for `gte_role_mismatch`).
|
||||
-- * passes/static_analysis.lua::check_gte_role_mismatch (per-atom CHECK_RULES reader; renders role mismatches).
|
||||
-- This table is consumed by the hardware-relation analyzer and the gte_role_mismatch check.
|
||||
M.GTE_COMMAND_OUTPUTS = {
|
||||
-- RTPS: writes one screen coordinate (the perspective-divide result) into C2_SXY2.
|
||||
-- The FIFO side effects leave SXY0 / SXY1 untouched, so `latest_screen_xy` is C2_SXY2.
|
||||
@@ -1235,16 +1217,15 @@ M.GTE_COMMAND_OUTPUTS = {
|
||||
-- the latched value in the pipeline gets overwritten by the CPU before the pipeline consumes it.
|
||||
--
|
||||
-- This relation is the command -> register direction (the command is the producer; MTC2 / CTC2 is the consumer).
|
||||
-- It is the inverse of the MTC2 -> command input propagation (register -> command direction), which is staged by the
|
||||
-- producer step of `analyze_hardware_relations`.
|
||||
-- It is the inverse of the MTC2 -> command input propagation (register -> command direction), which is staged by the producer step of `analyze_hardware_relations`.
|
||||
--
|
||||
-- The schema mirrors the producer-side relations (`direction`, `evidence`, `violation_kind`); `required` counts the
|
||||
-- emitted words strictly between the command's last output word and the overwrite.
|
||||
-- The schema mirrors the producer-side relations (`direction`, `evidence`, `violation_kind`);
|
||||
-- `required` counts the emitted words strictly between the command's last output word and the overwrite.
|
||||
-- `required = 0` permits the immediately following overwrite; `required = 4` requires four intervening words.
|
||||
--
|
||||
-- Per PSX-SPX `gtepipelinetimings.md` the per-command input latching measurements are the same numbers inverted.
|
||||
-- They describe when a recent MTC2/CTC2 must retire before the command issues; this table describes when a recent
|
||||
-- command's outputs latch into the pipeline before a later MTC2/CTC2 overwrites them.
|
||||
-- They describe when a recent MTC2 / CTC2 must retire before the command issues.
|
||||
-- This table describes when a recent command's outputs latch into the pipeline before a later MTC2/CTC2 overwrites them.
|
||||
--
|
||||
-- Consumers:
|
||||
-- * passes/static_analysis.lua::analyze_hardware_relations (stages post-command latch relations in `pending` after a GTE command).
|
||||
@@ -1259,9 +1240,7 @@ M.GTE_COMMAND_LATCH_WINDOWS = {
|
||||
{ register = "C2_OTZ", required = 4 },
|
||||
{ register = "C2_IR0", required = 4 },
|
||||
},
|
||||
-- RTPT: same latching as RTPS (the LAST projection in SXY2 is the
|
||||
-- newest one; the earlier SXY0 / SXY1 entries are part of the
|
||||
-- batched triple).
|
||||
-- RTPT: same latching as RTPS (the LAST projection in SXY2 is the newest one; the earlier SXY0 / SXY1 entries are part of the batched triple).
|
||||
["gte_cmdw_rtpt"] = {
|
||||
{ register = "C2_SXY0", required = 4 },
|
||||
{ register = "C2_SXY1", required = 4 },
|
||||
@@ -1293,35 +1272,7 @@ M.GTE_COMMAND_LATCH_WINDOWS = {
|
||||
},
|
||||
}
|
||||
|
||||
-- GTE component result contracts (immutable; keyed by bare component name).
|
||||
--
|
||||
-- Register-role claims that the `_post_<cmd>` suffix alone cannot infer live here.
|
||||
-- The bare name (the component name stripped of the `_post_<cmd>` suffix) is the key; the row carries the expected
|
||||
-- command, the expected role, and the expected C2 register.
|
||||
--
|
||||
-- Known rows:
|
||||
-- * `gte_store_g4_p3_post_rtps`: post-RTPS polygon-emit slot reads the newest projected screen coordinate from C2_SXY2.
|
||||
-- C2_SXY0 is wrong (C2_SXY0 is an older FIFO entry, never the newest post-RTPS result).
|
||||
--
|
||||
-- Unknown `_post_<cmd>` components (a `<name>_post_<cmd>`-suffixed component whose bare `<name>` is not a row key) emit one
|
||||
-- `table_gap` info finding so downstream consumers can detect when the contract table is incomplete for an authored atom body.
|
||||
--
|
||||
-- Consumers:
|
||||
-- * passes/static_analysis.lua::check_gte_result_position (renders result-position findings).
|
||||
-- * passes/static_analysis.lua::emit_table_gap_warning (called once per atom body; surfaces the missing-row diagnostic).
|
||||
-- This table is consumed by the result-position check.
|
||||
M.GTE_COMPONENT_RESULT_CONTRACTS = {
|
||||
-- Post-RTPS g4 p3 store contract: writes the latest screen XY (C2_SXY2) into the primitive's p3 slot.
|
||||
-- Reading from C2_SXY0 is a semantic mismatch — C2_SXY0 is the oldest post-RTPS SXY, not the newest one.
|
||||
["gte_store_g4_p3_post_rtps"] = {
|
||||
command = "gte_cmdw_rtps",
|
||||
role = "latest_screen_xy",
|
||||
register = "C2_SXY2",
|
||||
},
|
||||
}
|
||||
|
||||
-- Operand-class table for the COP2->GPR load-delay check.
|
||||
--
|
||||
-- Maps each emitting-token ident to the set of GPR operand positions it reads.
|
||||
-- Covers the current encoder vocabulary (`code/duffle/mips.h` + `code/duffle/gte.h`); add rows here as new encoders land.
|
||||
--
|
||||
@@ -1341,13 +1292,13 @@ M.OPERAND_READ_POSITIONS = {
|
||||
["sub_s"] = {1, 2, 3},
|
||||
["sub_u"] = {1, 2, 3},
|
||||
["and_i"] = {1, 2},
|
||||
["and_u"] = {1, 2, 3},
|
||||
["and"] = {1, 2, 3},
|
||||
["or_i"] = {1, 2},
|
||||
["or_i_self"] = {1},
|
||||
["or_u"] = {1, 2, 3},
|
||||
["or_u_self"] = {1, 2},
|
||||
["or"] = {1, 2, 3},
|
||||
["or_self"] = {1, 2},
|
||||
["xor_i"] = {1, 2},
|
||||
["xor_u"] = {1, 2, 3},
|
||||
["xor"] = {1, 2, 3},
|
||||
["slt_s"] = {1, 2, 3},
|
||||
["slt_u"] = {1, 2, 3},
|
||||
["slt_si"] = {1, 2},
|
||||
@@ -1447,33 +1398,7 @@ M.GP0_CMD_BY_SHAPE = {
|
||||
["g4"] = 0x38, ["gt4"] = 0x3C,
|
||||
}
|
||||
|
||||
-- Per-macro prim-buffer contribution: how many 32-bit words each macro writes to the primitive being built in main RAM.
|
||||
-- (This counts RAM-side prim-buffer words, not .text instruction words.)
|
||||
-- The sum across `mac_format_X_color` + `mac_gte_store_X_post_*` + `mac_insert_ot_tag_X` calls in an atom body must equal
|
||||
-- `GP0_CMD_SIZE[GP0_CMD_BY_SHAPE[shape]]`.
|
||||
M.GP0_MACRO_CONTRIB = {
|
||||
["mac_format_f3_color"] = 1,
|
||||
["mac_format_g3_color"] = 3,
|
||||
["mac_format_g4_color"] = 4,
|
||||
["mac_gte_store_f3_post_rtpt"] = 3,
|
||||
["mac_gte_store_g3_post_rtpt"] = 3,
|
||||
["mac_gte_store_g4_p012_post_rtpt_pre_rtps"] = 3,
|
||||
["mac_gte_store_g4_p3_post_rtps"] = 1,
|
||||
["mac_insert_ot_tag_f3"] = 1,
|
||||
["mac_insert_ot_tag_g4"] = 1,
|
||||
}
|
||||
|
||||
-- Per-macro cycle cost (best-case, no stalls). Used by the static-analysis pass to emit per-atom cycle budgets.
|
||||
-- The counts cover the expanded instruction sequence the macro emits (not just the surface token in source).
|
||||
-- Worked example — `mac_pack_color_word(off, cmd, r, g, b)` expands to:
|
||||
-- load_upper_i(R_AT, (cmd << 8) | b) -- 1 cycle
|
||||
-- or_i_self(R_AT, (g << 8) | r) -- 1 cycle
|
||||
-- store_word(R_AT, R_PrimCursor, off) -- 1 cycle
|
||||
-- = 3 cycles total
|
||||
--
|
||||
-- `mac_yield` emits a control-transfer sequence (load_word, add_ui_self, jump_reg, nop). The atom body's cycle budget excludes
|
||||
-- the yield's cost (we model it as 0); the runtime cost lands in the next atom's prologue.
|
||||
--
|
||||
-- Per-instruction cycle cost (best-case, no stalls). Used by the static-analysis pass to emit per-atom cycle budgets.
|
||||
-- GTE command values are the GTE instruction's intrinsic cycles — the latency after any pre-cmd `nop2` has retired.
|
||||
-- When the source emits `nop2, gte_cmdw_X`, the nops' cycles are added separately (1+1) plus the gte_cmdw_X value here:
|
||||
-- rtpt = 23 + 2 nops = 25 total cycles (PSX-SPX says 23 cycles for the cmd itself; the nops are pre-fill)
|
||||
@@ -1487,8 +1412,15 @@ M.GP0_MACRO_CONTRIB = {
|
||||
-- PSX-SPX reports the GTE intrinsic cycles as the total execution time of the command itself (rtpt=23, rtps=15, nclip=8, etc.).
|
||||
-- The pre-fill nops are a codebase convention for retiring preceding C2 writes.
|
||||
-- See `docs/psx-spx/docs/geometrytransformationenginegte.md` for per-command cycle counts and
|
||||
-- `docs/psx-spx/docs/gtepipelinetimings.md` for the hardware-verified input-latch boundaries (most inputs become
|
||||
-- safe to clobber after 0-4 cycles).
|
||||
-- `docs/psx-spx/docs/gtepipelinetimings.md` for the hardware-verified input-latch boundaries
|
||||
-- (most inputs become safe to clobber after 0-4 cycles).
|
||||
--
|
||||
-- Per-macro cycle costs (`mac_yield`, `mac_pack_color_word`, ...) and per-macro prim-buffer contributions
|
||||
-- (`mac_format_*_color`, `mac_gte_store_*`, `mac_insert_ot_tag_*`) are NOT hardcoded here.
|
||||
-- `passes/components.lua::compute_components_metadata` derives both from each `MipsAtomComp_(ac_X)` body in
|
||||
-- `code/duffle/lottes_tape.h`, stores the values on `corpus.components[name].cycle_cost` and
|
||||
-- `corpus.components[name].gp0_contrib`, and `passes/static_analysis.lua` reads those fields directly.
|
||||
-- The `mac_yield` cost is 0 by convention (the runtime cost lands in the next atom's prologue).
|
||||
M.INSTRUCTION_LATENCY = {
|
||||
-- CPU ALU (single-cycle R3000A ops)
|
||||
["nop"] = 1,
|
||||
@@ -1497,7 +1429,7 @@ M.INSTRUCTION_LATENCY = {
|
||||
["add_s"] = 1, ["add_si"] = 1,
|
||||
["add_u"] = 1, ["add_u_self"] = 1,
|
||||
["sub_u"] = 1, ["sub_s"] = 1,
|
||||
["and_i"] = 1, ["and_u"] = 1,
|
||||
["and_i"] = 1, ["and"] = 1,
|
||||
["or_i"] = 1, ["or_i_self"] = 1,
|
||||
["or_u"] = 1, ["or_u_self"] = 1,
|
||||
["xor_i"] = 1, ["xor_u"] = 1,
|
||||
@@ -1533,17 +1465,19 @@ M.INSTRUCTION_LATENCY = {
|
||||
["store_word"] = 1,
|
||||
["store_half"] = 1,
|
||||
["store_byte"] = 1,
|
||||
-- Branches (branch + BD slot nop = 2 cycles; the BD slot's nop is
|
||||
-- counted as part of the branch's cost)
|
||||
-- Branches (branch + BD slot nop = 2 cycles; the BD slot's nop is counted as part of the branch's cost)
|
||||
["branch_equal"] = 2, ["branch_ne"] = 2,
|
||||
["branch_le_zero"] = 2, ["branch_lt_zero"] = 2,
|
||||
["branch_ge_zero"] = 2, ["branch_gt_zero"] = 2,
|
||||
-- `jump_rel(off)` is the within-atom-safe unconditional-jump alias for `branch_equal(R_0, R_0, off)` (see `code/duffle/mips.h`).
|
||||
-- Same cost as the underlying branch (1 instruction + 1 mandatory BD-slot nop = 2 cycles).
|
||||
["jump_rel"] = 2,
|
||||
-- Jumps (jump + BD slot nop = 2 cycles)
|
||||
["jump"] = 2, ["jump_reg"] = 2,
|
||||
["jump_link"] = 2, ["call_reg"] = 2,
|
||||
["call_addr"] = 2,
|
||||
-- COP2 transfers (mtc2/mfc2/ctc2/cfc2 = 1 cycle + COP2 latency; the
|
||||
-- COP2 latency is usually absorbed by subsequent nops or by the next
|
||||
-- COP2 transfers (mtc2/mfc2/ctc2/cfc2 = 1 cycle + COP2 latency;
|
||||
-- The COP2 latency is usually absorbed by subsequent nops or by the next
|
||||
-- GTE command's pre-fill nops, so we count 1)
|
||||
["gte_mv_to_data_r"] = 1,
|
||||
["gte_mv_from_data_r"] = 1,
|
||||
@@ -1583,20 +1517,7 @@ M.INSTRUCTION_LATENCY = {
|
||||
["gte_load_v1"] = 2,
|
||||
["gte_load_v2"] = 2,
|
||||
["gte_load_v0v1v2"] = 6,
|
||||
-- mac_* helpers (cycle cost = sum of the expanded instructions)
|
||||
-- mac_yield transfers control; cycle budget is 0 (the next atom absorbs the cost).
|
||||
["mac_yield"] = 0,
|
||||
["mac_pack_color_word"] = 3, -- lui + ori + sw
|
||||
["mac_format_f3_color"] = 3, -- = mac_pack_color_word
|
||||
["mac_format_g4_color"] = 12, -- 4 x mac_pack_color_word
|
||||
["mac_load_tri_indices"] = 3, -- 3 x lhu
|
||||
["mac_gte_load_tri_verts"] = 18, -- 3 x {sll, addu, lw, lw, mtc2, mtc2}
|
||||
["mac_gte_store_f3_post_rtpt"] = 3,
|
||||
["mac_gte_store_g3_post_rtpt"] = 3,
|
||||
["mac_gte_store_g4_p012_post_rtpt_pre_rtps"] = 3,
|
||||
["mac_gte_store_g4_p3_post_rtps"] = 1,
|
||||
["mac_insert_ot_tag_f3"] = 11, -- 11 .word slots in the macro body
|
||||
["mac_insert_ot_tag_g4"] = 11,
|
||||
|
||||
-- Annotation markers (emit no code; pure metaprogram hints)
|
||||
["atom_label"] = 0,
|
||||
["atom_offset"] = 0,
|
||||
@@ -1613,8 +1534,7 @@ M.UNKNOWN_INSTRUCTION_CYCLES = 1
|
||||
|
||||
-- Hardware-relation policy table.
|
||||
--
|
||||
-- The forward walker in `passes/static_analysis.lua::analyze_hardware_relations` reads every emitted word_event,
|
||||
-- matches its `encoder` against `row.token`, and:
|
||||
-- The forward walker in `passes/static_analysis.lua::analyze_hardware_relations` reads every emitted word_event, matches its `encoder` against `row.token`, and:
|
||||
-- * stages the event as a producer in `atom.paths.forward_state`; or
|
||||
-- * matches it as a consumer against pending producers and records a hazard on `atom.paths.hazards` when the gap is below `visibility.required`.
|
||||
--
|
||||
@@ -1634,8 +1554,8 @@ M.UNKNOWN_INSTRUCTION_CYCLES = 1
|
||||
-- and is reserved for future "self-retires" relations.
|
||||
--
|
||||
-- Evidence:
|
||||
-- * `evidence.confidence` is one of `"exact"`, `"conservative"`, `"unknown"`. The severity comes from `violation_kind`; a hardware
|
||||
-- measurement that the vendor caveats may still classify as `"conservative"` even when the underlying timing is numerically known.
|
||||
-- * `evidence.confidence` is one of `"exact"`, `"conservative"`, `"unknown"`. The severity comes from `violation_kind`;
|
||||
-- A hardware measurement that the vendor caveats may still classify as `"conservative"` even when the underlying timing is numerically known.
|
||||
-- * `evidence.source` is the upstream reference (file + line range) the row is sourced from. New rows must carry this citation.
|
||||
--
|
||||
-- Consumers:
|
||||
@@ -1745,22 +1665,42 @@ M.HARDWARE_RELATIONS = {
|
||||
},
|
||||
-- Memory -> COP2 data register (LWC2).
|
||||
-- The memory-side timing is not measured by the vendored GTE latch experiment, so this relation has no numeric retirement threshold.
|
||||
-- The forward walker emits one info edge at the first command-input consumer and then clears the pending relation.
|
||||
-- The LWC2 destination has TWO retirement regimes (per PSX-SPX):
|
||||
-- * GTE-command consumer (`gte_cmdw_*`): the GTE pipeline LATCHES the LWC2 result, so a `gte_cmdw_*`
|
||||
-- in the very next slot uses the latched value. Gap = 0 is allowed. (Per `docs/psx-spx/docs/gtepipelinetimings.md:271-274`.)
|
||||
-- * Any other consumer: standard MIPS load delay applies. Gap = 1 required. (Per `docs/psx-spx/docs/cpuspecifications.md:407-419`.)
|
||||
-- Two separate relations so the walker can dispatch by consumer type and emit different severities
|
||||
-- (the GTE-command path is `info` because the latch is intentional; the non-GTE-consumer path is `error` because the missing nop is a real bug).
|
||||
{
|
||||
id = "lwc2_unknown_visibility",
|
||||
semantic = "LWC2",
|
||||
id = "lwc2_to_gte_command",
|
||||
semantic = "LWC2_to_GTE",
|
||||
token = "gte_lw",
|
||||
direction = "memory_to_cop2_data",
|
||||
reads = { domain = "memory", arg = 2 },
|
||||
writes = { domain = "cop2.data", arg = 1 },
|
||||
visibility = { kind = "unknown_consumer", required = nil },
|
||||
required = 0, -- GTE-command consumer: gap = 0 OK (latched).
|
||||
evidence = {
|
||||
confidence = "unknown",
|
||||
confidence = "measured",
|
||||
source = "gtepipelinetimings.md:271-274",
|
||||
},
|
||||
violation_kind = "info",
|
||||
clear_on_consumer = true,
|
||||
},
|
||||
{
|
||||
id = "lwc2_to_other_consumer",
|
||||
semantic = "LWC2_to_other",
|
||||
token = "gte_lw",
|
||||
direction = "memory_to_cop2_data",
|
||||
reads = { domain = "memory", arg = 2 },
|
||||
writes = { domain = "cop2.data", arg = 1 },
|
||||
required = 1, -- Non-GTE-consumer: standard MIPS load delay.
|
||||
evidence = {
|
||||
confidence = "inferred",
|
||||
source = "cpuspecifications.md:407-419",
|
||||
},
|
||||
violation_kind = "error",
|
||||
clear_on_consumer = true,
|
||||
},
|
||||
-- COP2 data register -> memory (SWC2). A read of C2 state, not a CPU-to-COP2 write.
|
||||
-- The policy row stays in for direction/provenance; staging it as a later command-input producer is suppressed.
|
||||
{
|
||||
@@ -1973,7 +1913,7 @@ M.GPR_VALUE_RULES = {
|
||||
-- Present register-form self variants. They are included here so a
|
||||
-- known value is not needlessly lost when these encoders are used.
|
||||
add_u_self = { op = "add_u", dest = 1, sources = {1, 2}, },
|
||||
or_u_self = { op = "or_u", dest = 1, sources = {1, 2}, },
|
||||
or_u_self = { op = "or", dest = 1, sources = {1, 2}, },
|
||||
shift_lleft_self = { op = "shift_lleft", dest = 1, source = 1, immediate = 2, },
|
||||
}
|
||||
|
||||
@@ -2092,14 +2032,14 @@ local E_MAC_PREFIX_LEN = 4
|
||||
--- Expand a body entry into the flat sequence of emitted machine-word events.
|
||||
---
|
||||
--- Semantics (one event per emitted machine word):
|
||||
--- * **Direct one-word encoders** (`load_word`, `add_ui`, `nop`, `gte_lw`, ...): one event with `ident` = leading ident, `args` = parsed top-level args.
|
||||
--- * **`nop2`** (2-word pseudo-instruction): two events, both with `ident = "nop"` so the recognized "this slot is a no-op" semantic is visible to downstream analyses.
|
||||
--- * **Any other N-word token** in `word_counts`: N events sharing the same `ident` + `args` so useful CPU words retire slots in the cycle budget.
|
||||
--- * **Known `mac_X(...)` calls**: recursively expand the indexed component body, including nested components. Every event from the expansion carries:
|
||||
--- * Direct one-word encoders `load_word`, `add_ui`, `nop`, `gte_lw`, ...: One event with `ident` = leading ident, `args` = parsed top-level args.
|
||||
--- * `nop2` (2-word pseudo-instruction): Two events, both with `ident = "nop"` so the recognized "this slot is a no-op" semantic is visible to downstream analyses.
|
||||
--- * Any other N-word token in `word_counts`: N events sharing the same `ident` + `args` so useful CPU words retire slots in the cycle budget.
|
||||
--- * Known `mac_X(...)` calls: Recursively expand the indexed component body, including nested components. Every event from the expansion carries:
|
||||
--- - `source` / `line` = the COMPONENT'S source path + the line of the token within the component body (i.e. "definition site").
|
||||
--- - `call_source` / `call_line` = the ROOT atom's source path + call-site line, PRESERVED across recursion so nested events still point at the original root.
|
||||
--- * **Unknown `mac_X`** (not in `component_index`): fall back to `word_counts[ident]` if present; otherwise emit one opaque event so the cycle budget accounts for the word.
|
||||
--- * **Marker tokens** (`atom_label(...)` / `atom_offset(...)`): zero events (they are pure metaprogram hints, not emitted machine words).
|
||||
--- * Unknown `mac_X` (not in `component_index`): fall back to `word_counts[ident]` if present; otherwise emit one opaque event so the cycle budget accounts for the word.
|
||||
--- * Marker Tokens (`atom_label(...)` / `atom_offset(...)`): Zero events (they are pure metaprogram hints).
|
||||
---
|
||||
--- Cycle protection: a per-expansion `visiting` set tracks components currently on the expansion stack; a re-entry produces a deterministic `{kind = "cycle", ...}` error and aborts that branch (does NOT hang, does NOT recurse).
|
||||
---
|
||||
@@ -2123,12 +2063,12 @@ local E_MAC_PREFIX_LEN = 4
|
||||
-- word_counts table is authored-metadata + current-component count table.
|
||||
|
||||
--- @class EmissionProjection
|
||||
--- @field items table[] -- ordered stream of word|label|offset|invoke_begin|invoke_end
|
||||
--- @field word_events table[] -- dense view of items where kind == "word"
|
||||
--- @field markers table[] -- dense view of items where kind == "label"|"offset"
|
||||
--- @field items table[] -- Ordered stream of word|label|offset|invoke_begin|invoke_end
|
||||
--- @field word_events table[] -- Dense view of items where kind == "word"
|
||||
--- @field markers table[] -- Dense view of items where kind == "label"|"offset"
|
||||
--- @field invocations InvocationRecord[] -- dense view of items where kind == "invoke_begin"|"invoke_end"
|
||||
--- @field errors table[] -- token-resolution failures surfaced without fail-loud
|
||||
--- @field warnings table[] -- opaque warnings (e.g. unknown uncounted macro)
|
||||
--- @field errors table[] -- Token-resolution failures surfaced without fail-loud
|
||||
--- @field warnings table[] -- Opaque warnings (e.g. unknown uncounted macro)
|
||||
|
||||
--- @class InvocationRecord
|
||||
--- Lives at `atom.paths.invocations[*]`. Constructed once at the single invocation-construction site
|
||||
@@ -2136,20 +2076,20 @@ local E_MAC_PREFIX_LEN = 4
|
||||
--- @field id integer -- 1-based, monotonic per-atom invocation id (0 is reserved for "no open invocation")
|
||||
--- @field parent_id integer -- 0 for the outermost (root) call; otherwise the id of the immediately enclosing invocation
|
||||
--- @field kind string -- "comp_bare" | "comp_proc" (component form that triggered the expansion)
|
||||
--- @field component_name string -- the bare component name without the `mac_` prefix
|
||||
--- @field call_text string -- the immediate `mac_X(...)` token text (or root call text for the outermost entry)
|
||||
--- @field root_call_text string -- the IMMUTABLE outermost `mac_X(...)` token text for every word emitted in this call's expansion
|
||||
--- @field call_path string -- source path of the call site (root atom source for direct calls, component source for nested expansions)
|
||||
--- @field call_line integer -- source line of the call site
|
||||
--- @field def_path string -- source path of the component definition
|
||||
--- @field def_line integer -- source line of the component declaration
|
||||
--- @field component_name string -- Bare component name without the `mac_` prefix
|
||||
--- @field call_text string -- Immediate `mac_X(...)` token text (or root call text for the outermost entry)
|
||||
--- @field root_call_text string -- IMMUTABLE outermost `mac_X(...)` token text for every word emitted in this call's expansion
|
||||
--- @field call_path string -- Source path of the call site (root atom source for direct calls, component source for nested expansions)
|
||||
--- @field call_line integer -- Source line of the call site
|
||||
--- @field def_path string -- Source path of the component definition
|
||||
--- @field def_line integer -- Source line of the component declaration
|
||||
--- @field start_pos integer -- 0-based emitted-word position of the FIRST word inside this invocation (the value of `word_idx` AT `emit_invoke_begin` time, BEFORE the first word is emitted). Words emitted inside this invocation occupy `start_pos..start_pos+#body_lines-1` (inclusive, 0-based). Downstream DWARF/provenance consumers MUST read this; do NOT reconstruct it from `start_word` (which is the 1-based items index including `invoke_begin`/`invoke_end` markers).
|
||||
--- @field end_pos integer -- 0-based position of the LAST word inside this invocation (set by `emit_invoke_end` to `word_idx - 1` AFTER all body words are emitted).
|
||||
--- @field start_word integer -- 1-based items index of the `invoke_begin` item
|
||||
--- @field end_word integer -- 1-based items index of the `invoke_end` item (set by `emit_invoke_end`)
|
||||
--- @field word_count integer -- number of `word` items emitted between `start_word` and `end_word` (inclusive)
|
||||
--- @field word_count integer -- Number of `word` items emitted between `start_word` and `end_word` (inclusive)
|
||||
--- @field debug_skip boolean -- `debug_skip` stamp; true iff `corpus.components[name].debug_skip` is true at construction. Always boolean (never `nil`).
|
||||
--- @field errors table[] -- per-invocation construction errors (cycle / count_mismatch); does not include pass-level errors
|
||||
--- @field errors table[] -- Per-invocation construction errors (cycle / count_mismatch); does not include pass-level errors
|
||||
|
||||
-- Internal recursive walker. The items stream holds every emitted event in order; `word_events`, `markers`,
|
||||
-- `invocations`, `errors`, `warnings` are dense views / side outputs appended alongside.
|
||||
@@ -2225,10 +2165,15 @@ local function _project_emission_inner(root_body_entry, ctx_table)
|
||||
end
|
||||
|
||||
local function emit_marker(kind, name, target, line,
|
||||
immediate_call_text, root_call_text_w)
|
||||
immediate_call_text, root_call_text_w,
|
||||
consuming_encoder, consuming_arg_pos)
|
||||
local inv_ids = open_invocation_ids_snapshot()
|
||||
local outermost = inv_ids[1] or 0
|
||||
-- Markers carry the open invocation stack snapshot. `call_text` / `root_call_text` belong to words, not markers — markers are zero-width and skip per-word call-site attribution.
|
||||
-- `consuming_encoder` + `consuming_arg_pos` carry the surrounding control-transfer instruction context
|
||||
-- (e.g. `branch_le_zero` consuming its 3rd argument, or `jump` / `call_addr` consuming their only argument).
|
||||
-- `passes/offsets.lua` reads these to dispatch per-consuming-instruction offset encoding.
|
||||
-- nil for top-level markers (where the marker is the entire token — no surrounding consuming instruction).
|
||||
local it = {
|
||||
kind = kind,
|
||||
name = name,
|
||||
@@ -2238,6 +2183,8 @@ local function _project_emission_inner(root_body_entry, ctx_table)
|
||||
outermost_invocation_id = outermost,
|
||||
}
|
||||
if target ~= nil then it.target = target end
|
||||
if consuming_encoder then it.consuming_encoder = consuming_encoder end
|
||||
if consuming_arg_pos then it.consuming_arg_pos = consuming_arg_pos end
|
||||
items[#items + 1] = it
|
||||
markers[#markers + 1] = {
|
||||
kind = kind,
|
||||
@@ -2245,39 +2192,102 @@ local function _project_emission_inner(root_body_entry, ctx_table)
|
||||
line = line,
|
||||
word_index = word_idx,
|
||||
target = target,
|
||||
consuming_encoder = consuming_encoder,
|
||||
consuming_arg_pos = consuming_arg_pos,
|
||||
}
|
||||
end
|
||||
|
||||
local function emit_embedded_markers(tok, tok_line)
|
||||
-- Count top-level commas in `tok` between position `from_pos` (inclusive) and `to_pos` (exclusive).
|
||||
-- Tracks paren depth so commas inside nested () don't count. Skips string literals + comments.
|
||||
-- Used by `emit_embedded_markers` to compute `consuming_arg_pos` for each embedded marker.
|
||||
local function count_top_level_commas(tok, from_pos, to_pos)
|
||||
local depth = 0
|
||||
local count = 0
|
||||
local i = from_pos
|
||||
while i < to_pos do
|
||||
local c = tok:sub(i, i)
|
||||
if c == "'" or c == '"' then
|
||||
local next_pos = M.skip_str_or_cmt(tok, i)
|
||||
i = (next_pos > i) and next_pos or (i + 1)
|
||||
elseif c == "/" and tok:sub(i + 1, i + 1) == "/" then
|
||||
-- line comment: skip to end of line
|
||||
local nl = tok:find("\n", i, true)
|
||||
i = (nl and nl + 1) or (#tok + 1)
|
||||
elseif c == "/" and tok:sub(i + 1, i + 1) == "*" then
|
||||
-- block comment: skip to matching */
|
||||
local close = tok:find("*/", i + 2, true)
|
||||
i = (close and close + 2) or (#tok + 1)
|
||||
elseif c == "(" then
|
||||
depth = depth + 1
|
||||
i = i + 1
|
||||
elseif c == ")" then
|
||||
depth = depth - 1
|
||||
i = i + 1
|
||||
elseif c == "," and depth == 0 then
|
||||
count = count + 1
|
||||
i = i + 1
|
||||
else
|
||||
i = i + 1
|
||||
end
|
||||
end
|
||||
return count
|
||||
end
|
||||
|
||||
-- Find the position of the consuming instruction's open paren (the `(` that starts the consuming instruction's argument list).
|
||||
-- Returns nil if the token's leading text isn't an ident followed by `(` (e.g. the ident is at the start of a non-instruction token).
|
||||
local function find_consuming_paren(tok)
|
||||
local i = 1
|
||||
while i <= #tok do
|
||||
local c = tok:sub(i, i)
|
||||
if c == "(" then return i end
|
||||
if not c:match("[%w_]") and c ~= " " then return nil end
|
||||
i = i + 1
|
||||
end
|
||||
return nil
|
||||
end
|
||||
|
||||
local function emit_embedded_markers(tok, tok_line, consuming_encoder)
|
||||
-- When called with a non-nil `consuming_encoder`, the marker is nested inside that instruction's argument list.
|
||||
-- We compute each marker's arg position by counting top-level commas between the consuming instruction's `(` and the marker's start.
|
||||
local consuming_paren = nil
|
||||
if consuming_encoder then consuming_paren = find_consuming_paren(tok) end
|
||||
local pos = 1
|
||||
while pos <= #tok do
|
||||
-- trim leading whitespace and comments before each scan.
|
||||
-- Trim leading whitespace and comments before each scan.
|
||||
pos = M.skip_ws_and_cmt(tok, pos)
|
||||
if pos > #tok then break end
|
||||
local ident, after = M.read_ident(tok, pos)
|
||||
if not ident then
|
||||
-- not an ident: token is a string or comment; skip or one-step.
|
||||
-- Not an ident: token is a string or comment; skip or one-step.
|
||||
local next_pos = M.skip_str_or_cmt(tok, pos)
|
||||
pos = (next_pos > pos) and next_pos or (pos + 1)
|
||||
goto continue_loop
|
||||
end
|
||||
if ident ~= "atom_label" and ident ~= "atom_offset" then
|
||||
-- ordinary ident; nothing to emit, step past the ident only.
|
||||
-- Ordinary ident; nothing to emit, step past the ident only.
|
||||
pos = after
|
||||
goto continue_loop
|
||||
end
|
||||
-- marker ident: parse the (...) arguments.
|
||||
-- Marker ident: parse the (...) arguments.
|
||||
local open = M.skip_ws_and_cmt(tok, after)
|
||||
local inner, after_paren = M.read_parens(tok, open)
|
||||
if not inner then
|
||||
-- (...) unreadable: fall back to non-marker behavior.
|
||||
-- (...) Unreadable: fall back to non-marker behavior.
|
||||
pos = after
|
||||
goto continue_loop
|
||||
end
|
||||
-- commit: label takes 1 arg, offset takes 2.
|
||||
-- Commit: label takes 1 arg, offset takes 2.
|
||||
-- For embedded markers, propagate the consuming_encoder + the marker's arg position
|
||||
-- (1-based) so `passes/offsets.lua` can dispatch per-consuming-instruction offset encoding.
|
||||
-- Top-level markers (no consuming_encoder) get nil for both — the offsets pass treats
|
||||
-- them as branch-equivalent for backward compatibility.
|
||||
local arg_pos = nil
|
||||
if consuming_encoder and consuming_paren then
|
||||
arg_pos = count_top_level_commas(tok, consuming_paren + 1, pos) + 1
|
||||
end
|
||||
local args = split_top_level_args(inner)
|
||||
if ident == "atom_label" then emit_marker("label", args[1] or "", nil, tok_line)
|
||||
else emit_marker("offset", args[1] or "", args[2] or "", tok_line)
|
||||
if ident == "atom_label" then emit_marker("label", args[1] or "", nil, tok_line, nil, nil, consuming_encoder, arg_pos)
|
||||
else emit_marker("offset", args[1] or "", args[2] or "", tok_line, nil, nil, consuming_encoder, arg_pos)
|
||||
end
|
||||
pos = after_paren
|
||||
::continue_loop::
|
||||
@@ -2289,7 +2299,6 @@ local function _project_emission_inner(root_body_entry, ctx_table)
|
||||
next_inv_id = next_inv_id + 1
|
||||
-- Invocation-level debug_skip stamp: Emission pass owns `atom.paths.invocations[*].debug_skip`.
|
||||
-- The stamp is resolved from the `corpus.components[name]` registry (passed in via `ctx_table.components` by `emission_model.run`),
|
||||
-- NOT from a parallel skip map, source-text re-parse, or second pass over `invocations`.
|
||||
-- Unmarked components stamp `false` (not `nil`) so consumers can dispatch on the boolean without nil checks.
|
||||
--
|
||||
-- The walker has already found the component body in `ctx_table.component_index[component_name]`, so the matching entry MUST exist in `ctx_table.components[component_name]`
|
||||
@@ -2360,7 +2369,6 @@ local function _project_emission_inner(root_body_entry, ctx_table)
|
||||
end
|
||||
|
||||
-- Resolve the per-token word count. If unresolved, surface ONE warning
|
||||
-- (NOT an error; the build does not fail-loud on an uncounted opaque word)
|
||||
-- and fall back to 1 opaque word so the cycle budget still accounts for the slot.
|
||||
local function resolve_count(ident, tok_line)
|
||||
local wc = ctx_table.word_counts
|
||||
@@ -2384,10 +2392,10 @@ local function _project_emission_inner(root_body_entry, ctx_table)
|
||||
end
|
||||
|
||||
-- Recursive walker: walk one body entry, possibly descending into components.
|
||||
-- `walk_parent_inv_id` is the invocation ID of the enclosing call (0 for the root call).
|
||||
-- `walk_root_call_text` is the outermost `mac_X(...)` token text (preserved across recursion).
|
||||
-- `walk_immediate_call_text` is the IMMEDIATE outer `mac_X(...)` token text for words emitted in this body — nil for the root atom body.
|
||||
-- The two trackers are propagated as separate parameters so words deep inside nested expansions correctly identify both their immediate call site and the outermost call site.
|
||||
-- walk_parent_inv_id: Invocation ID of the enclosing call (0 for the root call).
|
||||
-- walk_root_call_text: Outermost `mac_X(...)` token text (preserved across recursion).
|
||||
-- walk_immediate_call_text: IMMEDIATE outer `mac_X(...)` token text for words emitted in this body — nil for the root atom body.
|
||||
-- Two trackers are propagated as separate parameters so words deep inside nested expansions correctly identify both their immediate call site and the outermost call site.
|
||||
local function walk_body_entry(body_entry, walk_parent_inv_id,
|
||||
walk_root_call_text, walk_immediate_call_text)
|
||||
local tokens = body_entry.body_tokens or {}
|
||||
@@ -2404,8 +2412,18 @@ local function _project_emission_inner(root_body_entry, ctx_table)
|
||||
local _, args = token_ident_and_args(tok)
|
||||
local tok_line = line_of(body_off + bt.rel) or 0
|
||||
-- embedded markers live only in non-marker tokens.
|
||||
if ident ~= "atom_label" and ident ~= "atom_offset" then emit_embedded_markers(tok, tok_line) end
|
||||
-- Pass `ident` as the consuming instruction so `emit_embedded_markers` can compute each marker's arg position + record the consuming_encoder for the offsets pass.
|
||||
-- Canonicalize `jump_rel` to `branch_equal` (its preprocessor-expanded form) so the `consuming_encoder` metadata in marker records is canonical.
|
||||
-- `jump_rel`: unconditional jump alias from `code/duffle/mips.h`.
|
||||
local consuming_encoder_for_markers = (ident == "jump_rel") and "branch_equal" or ident
|
||||
if ident ~= "atom_label" and ident ~= "atom_offset" then
|
||||
emit_embedded_markers(tok, tok_line, consuming_encoder_for_markers)
|
||||
end
|
||||
-- atom_label / atom_offset: terminal markers, no further descent.
|
||||
-- Top-level markers (the marker IS the entire token) have no consuming instruction;
|
||||
-- nil for both `consuming_encoder` and `consuming_arg_pos`.
|
||||
-- The offsets pass treats these as branch-equivalent for backward compatibility.
|
||||
-- TODO(Ed): Review this don't want legacy cruft here..
|
||||
if ident == "atom_label" then emit_marker("label", args[1] or "", nil, tok_line); return
|
||||
elseif ident == "atom_offset" then emit_marker("offset", args[1] or "", args[2] or "", tok_line); return
|
||||
end
|
||||
@@ -2415,7 +2433,7 @@ local function _project_emission_inner(root_body_entry, ctx_table)
|
||||
if comp then
|
||||
local invocation_root_call_text = walk_root_call_text or tok
|
||||
if ctx_table.visiting[bare] then
|
||||
-- cycle: still allocate inv_id, emit zero-width begin/end, record the cycle error; do NOT recurse.
|
||||
-- Cycle: still allocate inv_id, emit zero-width begin/end, record the cycle error; do NOT recurse.
|
||||
local inv = emit_invoke_begin(comp.kind or "comp_bare", bare, tok, invocation_root_call_text, def_source, tok_line)
|
||||
inv.parent_id = walk_parent_inv_id
|
||||
inv.call_text = tok
|
||||
@@ -2430,14 +2448,14 @@ local function _project_emission_inner(root_body_entry, ctx_table)
|
||||
emit_invoke_end(inv)
|
||||
return
|
||||
end
|
||||
-- first visit: descend + count + count_mismatch-check below.
|
||||
-- First visit: descend + count + count_mismatch-check below.
|
||||
ctx_table.visiting[bare] = true
|
||||
local inv = emit_invoke_begin(comp.kind or "comp_bare", bare, tok, invocation_root_call_text, def_source, tok_line)
|
||||
inv.parent_id = walk_parent_inv_id
|
||||
inv.call_text = tok
|
||||
inv.def_path = comp.source
|
||||
inv.def_line = comp.declaration
|
||||
-- propagate trackers into the recursive walk:
|
||||
-- Propagate trackers into the recursive walk:
|
||||
-- immediate_call_text = this call's tok (the IMMEDIATE outer call for words emitted in this body)
|
||||
-- root_call_text = the OUTERMOST call (immutable across the recursion)
|
||||
walk_body_entry({
|
||||
@@ -2452,7 +2470,7 @@ local function _project_emission_inner(root_body_entry, ctx_table)
|
||||
tok)
|
||||
ctx_table.visiting[bare] = nil
|
||||
emit_invoke_end(inv)
|
||||
-- count `word` items inside [start_word, end_word].
|
||||
-- Count `word` items inside [start_word, end_word].
|
||||
local wc_inside = 0
|
||||
for i = inv.start_word, inv.end_word do
|
||||
local it = items[i]
|
||||
@@ -2478,8 +2496,8 @@ local function _project_emission_inner(root_body_entry, ctx_table)
|
||||
end
|
||||
-- mac_X NOT in component_index: fall through to opaque emit.
|
||||
end
|
||||
-- direct encoder, or mac_X-without-component: resolve count + emit n words.
|
||||
-- resolve_count may emit a warning if the count is unresolved.
|
||||
-- Direct encoder, or mac_X-without-component: resolve count + emit n words.
|
||||
-- Resolve_count may emit a warning if the count is unresolved.
|
||||
local n = resolve_count(ident, tok_line)
|
||||
local out_ident = (ident == "nop2") and "nop" or ident
|
||||
for _ = 1, n do
|
||||
|
||||
@@ -0,0 +1,418 @@
|
||||
-- elf32.lua — Pure-Lua ELF32 format helpers with no lfs / no lpeg dependency.
|
||||
-- The reload helper's `parse_manifest` (scripts/pcsx_debug_helper/reload.lua)
|
||||
-- and the metaprogram's `read_elf_sections` + `read_nm` (scripts/elf_dwarf.lua)
|
||||
-- both parsed ELF32 headers from wire bytes.
|
||||
--
|
||||
-- This module contains the format constants and the byte-level walker.
|
||||
--- The metaprogram side keeps `read_u32_le` / `read_u16_le` as local forwarders; the helper side calls `E.*` directly.
|
||||
--
|
||||
-- **Adapter contract (explicit pass style):**
|
||||
-- The helper VM's `Support.File` exposes byte-read methods that require `self` (fileffi.lua:225-227),
|
||||
-- so callers wrap once in a 1-line adapter that strips `self`.
|
||||
-- The parsers here operate on the unwrapped form.
|
||||
-- Reads are flat function calls — `E.read_u8(adapter, off)`, `E.read_u32(adapter, off)`, `E.size(adapter)`.
|
||||
-- read_u8(adapter, off) -> integer | nil
|
||||
-- read_u16(adapter, off) -> integer | nil
|
||||
-- read_u32(adapter, off) -> integer | nil
|
||||
-- size(adapter) -> integer
|
||||
--
|
||||
-- **Convention:** every offset in the constants tables is a zero-based wire offset.
|
||||
-- The `+ 1` conversion happens only at the `string.byte` boundary inside the readers.
|
||||
--
|
||||
-- spec: System V ABI gABI v1.2 §"ELF Header" (Table 1) + §"Section Header Table"
|
||||
-- spec: System V ABI gABI v1.2 §"Symbol Table" (Elf32_Sym layout)
|
||||
|
||||
local M = {}
|
||||
|
||||
-- ════════════════════════════════════════════════════════════════════════════
|
||||
-- Little-endian readers (bit-weighted accumulator, math.floor only)
|
||||
-- ════════════════════════════════════════════════════════════════════════════
|
||||
|
||||
--- Read a 4-byte little-endian unsigned integer from `adapter` at zero-based wire offset `off`.
|
||||
---
|
||||
--- Bit weights are written as `0x100`, `0x10000`, `0x1000000` (i.e. 2^8, 2^16, 2^24) so the LE byte positions are visually explicit:
|
||||
--- byte 0 contributes its value directly;
|
||||
--- byte 1 is shifted left by 8; byte 2 by 16; byte 3 by 24.
|
||||
---
|
||||
--- math.floor (not LuaJIT's `>>`) keeps the body portable across LuaJIT 2.0/2.1 and plain Lua 5.x. `string.byte` receives `+ 1` at the boundary.
|
||||
---
|
||||
--- **Call form:** explicit-pass. The reader receives `adapter` as the first positional argument and the offset as the second; no `self` is passed.
|
||||
--- Test fixtures declare `function(offset) ... end` and the parsers call them via dot syntax `adapter.read_u8_at(off)`.
|
||||
--- The colon form `adapter:read_u8_at(off)` would prepend the adapter table as `offset` and break the contract.
|
||||
--- @param adapter table
|
||||
--- @param off integer -- zero-based wire offset
|
||||
--- @return integer|nil
|
||||
function M.read_u32(adapter, off)
|
||||
return adapter.read_u8_at(off)
|
||||
+ adapter.read_u8_at(off + 0x01) * 0x00000100
|
||||
+ adapter.read_u8_at(off + 0x02) * 0x00010000
|
||||
+ adapter.read_u8_at(off + 0x03) * 0x01000000
|
||||
end
|
||||
|
||||
--- Read a 2-byte little-endian unsigned integer from `adapter` at zero-based wire offset `off`.
|
||||
--- @param adapter table
|
||||
--- @param off integer -- zero-based wire offset
|
||||
--- @return integer|nil
|
||||
function M.read_u16(adapter, off)
|
||||
return adapter.read_u8_at(off)
|
||||
+ adapter.read_u8_at(off + 0x01) * 0x00000100
|
||||
end
|
||||
|
||||
--- Read a 1-byte unsigned integer from `adapter` at zero-based wire offset `off`.
|
||||
--- @param adapter table
|
||||
--- @param off integer -- zero-based wire offset
|
||||
--- @return integer|nil
|
||||
function M.read_u8(adapter, off)
|
||||
return adapter.read_u8_at(off)
|
||||
end
|
||||
|
||||
--- Total adapter byte length.
|
||||
--- @param adapter table
|
||||
--- @return integer
|
||||
function M.size(adapter)
|
||||
return adapter.read_size()
|
||||
end
|
||||
|
||||
--- Forwarders kept for backward compat with scripts/elf_dwarf.lua.
|
||||
--- The metaprogram side keeps `read_u32_le` / `read_u16_le`;
|
||||
--- both layers now use the same byte-level helpers under the hood.
|
||||
function M.read_u32_le(buf, off)
|
||||
local byte_off = off + 1
|
||||
return buf:byte(byte_off)
|
||||
+ buf:byte(byte_off + 0x01) * 0x00000100
|
||||
+ buf:byte(byte_off + 0x02) * 0x00010000
|
||||
+ buf:byte(byte_off + 0x03) * 0x01000000
|
||||
end
|
||||
|
||||
--- Read a 2-byte little-endian unsigned integer from `buf` at zero-based wire offset `off`.
|
||||
--- @param buf string
|
||||
--- @param off integer -- zero-based wire offset
|
||||
--- @return integer
|
||||
function M.read_u16_le(buf, off)
|
||||
local byte_off = off + 1
|
||||
return buf:byte(byte_off) + buf:byte(byte_off + 0x01) * 0x00000100
|
||||
end
|
||||
|
||||
-- ════════════════════════════════════════════════════════════════════════════
|
||||
-- Format constants
|
||||
-- ════════════════════════════════════════════════════════════════════════════
|
||||
|
||||
-- ELF format constants (System V ABI gABI v1.2).
|
||||
M.ELFCLASS32 = 1 -- spec: gABI v1.2 §"ELF Header" — EI_CLASS byte
|
||||
M.ELFDATA2LSB = 1 -- spec: gABI v1.2 §"ELF Header" — EI_DATA byte
|
||||
M.EM_MIPS = 8 -- spec: gABI v1.2 §"Machine Information" — MIPS architecture
|
||||
|
||||
-- Section type constants (System V ABI gABI v1.2 §"Section Header Table").
|
||||
M.SHT_SYMTAB = 2 -- spec: gABI v1.2 §"Section Types" — symbol table
|
||||
M.SHT_STRTAB = 3 -- spec: gABI v1.2 §"Section Types" — string table
|
||||
M.SHT_NOBITS = 8 -- spec: gABI v1.2 §"Section Types" — no space in file
|
||||
|
||||
-- Section flag constants (System V ABI gABI v1.2 §"Section Header Table").
|
||||
M.SHF_WRITE = 0x1 -- spec: gABI v1.2 §"Section Attributes" — writable
|
||||
M.SHF_ALLOC = 0x2 -- spec: gABI v1.2 §"Section Attributes" — occupies memory
|
||||
M.SHF_EXECINSTR = 0x4 -- spec: gABI v1.2 §"Section Attributes" — executable
|
||||
|
||||
-- ---------------------------------------------------------------------------
|
||||
-- ELF32 header layout (System V ABI gABI v1.2 §"ELF Header" Table 1)
|
||||
-- ---------------------------------------------------------------------------
|
||||
-- All offsets are zero-based wire offsets. The header is 52 bytes total (header_bytes = 0x34 = 52).
|
||||
M.ELF32_HEADER = {
|
||||
magic_offset = 0x00, -- 4 bytes; expected "\127ELF"
|
||||
magic = "\127ELF",
|
||||
class_offset = 0x04, -- 1 byte; 1 = ELF32, 2 = ELF64
|
||||
endian_offset = 0x05, -- 1 byte; 1 = little-endian, 2 = big-endian
|
||||
header_bytes = 0x34, -- ELF32 header is 52 bytes total
|
||||
e_entry_offset = 0x18, -- 4-byte LE; entry-point virtual address
|
||||
e_shoff_offset = 0x20, -- 4-byte LE; section-header table file offset
|
||||
e_shentsize_offset = 0x2E, -- 2-byte LE; section-header entry size in bytes
|
||||
e_shnum_offset = 0x30, -- 2-byte LE; number of section headers
|
||||
e_shstrndx_offset = 0x32, -- 2-byte LE; index of section-name string table
|
||||
}
|
||||
|
||||
-- ---------------------------------------------------------------------------
|
||||
-- ELF32 section-header layout (System V ABI gABI v1.2 §"Section Header Table")
|
||||
-- ---------------------------------------------------------------------------
|
||||
-- Each entry is 40 bytes (sh_entsize_bytes = 0x28 = 40);
|
||||
-- zero-based, field offsets relative to the start of the entry.
|
||||
M.ELF32_SECTION = {
|
||||
sh_name_offset = 0x00, -- 4-byte LE; offset into .shstrtab
|
||||
sh_type_offset = 0x04, -- 4-byte LE; section type (SHT_*)
|
||||
sh_flags_offset = 0x08, -- 4-byte LE; section flags (SHF_*)
|
||||
sh_addr_offset = 0x0C, -- 4-byte LE; virtual address at execution
|
||||
sh_offset_offset = 0x10, -- 4-byte LE; section's file offset
|
||||
sh_size_offset = 0x14, -- 4-byte LE; section's size in bytes
|
||||
sh_link_offset = 0x18, -- 4-byte LE; link to a related section
|
||||
sh_entsize_bytes = 0x28, -- spec: gABI v1.2 §"Section Header Table" — 40 bytes per entry
|
||||
}
|
||||
|
||||
-- ---------------------------------------------------------------------------
|
||||
-- ELF32 symbol-table entry layout (System V ABI gABI v1.2 §"Symbol Table")
|
||||
-- ---------------------------------------------------------------------------
|
||||
-- Each entry is 16 bytes (sym_entry_bytes = 0x10 = 16);
|
||||
-- zero-based, field offsets relative to the start of the entry.
|
||||
M.ELF32_SYM = {
|
||||
st_name = 0x00, -- 4-byte LE; offset into the linked string table
|
||||
st_value = 0x04, -- 4-byte LE; symbol value (address / absolute)
|
||||
st_size = 0x08, -- 4-byte LE; symbol size in bytes
|
||||
st_info = 0x0C, -- 1 byte; binding (high nibble) + type (low nibble)
|
||||
sym_entry_bytes = 0x10, -- spec: gABI v1.2 §"Symbol Table" — 16 bytes per entry
|
||||
}
|
||||
|
||||
-- DWARF32 initial-length terminator (DWARF4 §7.4) — kept here so the metaprogram's elf_dwarf.lua can drop its own copy of the same constant.
|
||||
M.dw_dwarf32_terminator = 0xFFFFFFFF
|
||||
|
||||
-- ════════════════════════════════════════════════════════════════════════════
|
||||
-- Adapter validation
|
||||
-- ════════════════════════════════════════════════════════════════════════════
|
||||
|
||||
--- Validate that `adapter` exposes the byte-read surface.
|
||||
--- Returns true on success, false + a stable error code on failure.
|
||||
--- The helper side calls this before parse_manifest to reject callers before any byte is read.
|
||||
--- @param adapter any
|
||||
--- @return boolean, string|nil
|
||||
function M.validate_adapter(adapter)
|
||||
if type(adapter) ~= "table" then return false, "bad_file_adapter" end
|
||||
if type(adapter.read_u8_at) ~= "function" then return false, "bad_file_adapter" end
|
||||
if type(adapter.read_u16_at) ~= "function" then return false, "bad_file_adapter" end
|
||||
if type(adapter.read_u32_at) ~= "function" then return false, "bad_file_adapter" end
|
||||
if type(adapter.read_size) ~= "function" then return false, "bad_file_adapter" end
|
||||
return true, nil
|
||||
end
|
||||
|
||||
-- ════════════════════════════════════════════════════════════════════════════
|
||||
-- String-table reader
|
||||
-- ════════════════════════════════════════════════════════════════════════════
|
||||
|
||||
--- Extract a NUL-terminated C string from `strtab` at zero-based offset `off`.
|
||||
--- Returns nil if `off` is out of range or the string is not NUL-terminated.
|
||||
--- @param strtab string
|
||||
--- @param off integer
|
||||
--- @return string|nil
|
||||
function M.get_str(strtab, off)
|
||||
if off < 0 or off >= #strtab then return nil end
|
||||
local end_pos = strtab:find("\0", off + 1, true)
|
||||
if not end_pos then return nil end
|
||||
return strtab:sub(off + 1, end_pos - 1)
|
||||
end
|
||||
|
||||
-- ════════════════════════════════════════════════════════════════════════════
|
||||
-- Header / section / symbol walkers
|
||||
-- ════════════════════════════════════════════════════════════════════════════
|
||||
|
||||
--- Read the ELF32 header through `adapter` and validate the magic, class, and data encoding.
|
||||
--- Returns a table on success:
|
||||
--- { e_entry, e_shoff, e_shentsize, e_shnum, e_shstrndx, error = nil }
|
||||
--- On failure returns nil + a stable error code:
|
||||
--- bad_magic, unsupported_elf_class, unsupported_elf_data, truncated_header
|
||||
--- The header's machine field is NOT validated here — callers (e.g. the helper's prime path) decide whether to require EM_MIPS before symbol reads.
|
||||
--- @param adapter table
|
||||
--- @return table|nil, string|nil
|
||||
function M.parse_elf32_headers(adapter)
|
||||
local ok, err = M.validate_adapter(adapter)
|
||||
if not ok then return nil, err end
|
||||
|
||||
-- 4-byte magic: 0x7F 'E' 'L' 'F'.
|
||||
-- The byte readers take the adapter explicitly.
|
||||
-- The production `Support.File` adapter is wrapped by the caller to drop its implicit `self` so the parser shape is flat pass-style.
|
||||
local b1 = M.read_u8(adapter, 0)
|
||||
local b2 = M.read_u8(adapter, 1)
|
||||
local b3 = M.read_u8(adapter, 2)
|
||||
local b4 = M.read_u8(adapter, 3)
|
||||
if not (b1 and b2 and b3 and b4)
|
||||
or not (b1 == 0x7f and b2 == 0x45 and b3 == 0x4c and b4 == 0x46) then
|
||||
return nil, "bad_magic"
|
||||
end
|
||||
|
||||
local class = M.read_u8(adapter, M.ELF32_HEADER.class_offset)
|
||||
if class ~= M.ELFCLASS32 then
|
||||
return nil, "unsupported_elf_class"
|
||||
end
|
||||
|
||||
local data = M.read_u8(adapter, M.ELF32_HEADER.endian_offset)
|
||||
if data ~= M.ELFDATA2LSB then
|
||||
return nil, "unsupported_elf_data"
|
||||
end
|
||||
|
||||
local e_entry = M.read_u32(adapter, M.ELF32_HEADER.e_entry_offset)
|
||||
local e_shoff = M.read_u32(adapter, M.ELF32_HEADER.e_shoff_offset)
|
||||
local e_shentsize = M.read_u16(adapter, M.ELF32_HEADER.e_shentsize_offset)
|
||||
local e_shnum = M.read_u16(adapter, M.ELF32_HEADER.e_shnum_offset)
|
||||
local e_shstrndx = M.read_u16(adapter, M.ELF32_HEADER.e_shstrndx_offset)
|
||||
if not (e_entry and e_shoff and e_shentsize and e_shnum and e_shstrndx) then
|
||||
return nil, "truncated_header"
|
||||
end
|
||||
|
||||
return {
|
||||
e_entry = e_entry,
|
||||
e_shoff = e_shoff,
|
||||
e_shentsize = e_shentsize,
|
||||
e_shnum = e_shnum,
|
||||
e_shstrndx = e_shstrndx,
|
||||
error = nil,
|
||||
}
|
||||
end
|
||||
|
||||
--- Read one section-header entry from `adapter` at `sh_off`.
|
||||
--- Returns a table with the wire fields plus a (yet-unresolved) `name` field.
|
||||
--- @param adapter table
|
||||
--- @param sh_off integer
|
||||
--- @return table|nil, string|nil -- entry, error
|
||||
local function read_section_entry(adapter, sh_off)
|
||||
local entry = {
|
||||
sh_name = M.read_u32(adapter, sh_off + M.ELF32_SECTION.sh_name_offset),
|
||||
sh_type = M.read_u32(adapter, sh_off + M.ELF32_SECTION.sh_type_offset),
|
||||
sh_flags = M.read_u32(adapter, sh_off + M.ELF32_SECTION.sh_flags_offset),
|
||||
sh_addr = M.read_u32(adapter, sh_off + M.ELF32_SECTION.sh_addr_offset),
|
||||
sh_offset = M.read_u32(adapter, sh_off + M.ELF32_SECTION.sh_offset_offset),
|
||||
sh_size = M.read_u32(adapter, sh_off + M.ELF32_SECTION.sh_size_offset),
|
||||
sh_link = M.read_u32(adapter, sh_off + M.ELF32_SECTION.sh_link_offset),
|
||||
name = "",
|
||||
}
|
||||
if not (entry.sh_name and entry.sh_type and entry.sh_flags and entry.sh_addr
|
||||
and entry.sh_offset and entry.sh_size and entry.sh_link) then
|
||||
return nil, "truncated_section_headers"
|
||||
end
|
||||
return entry, nil
|
||||
end
|
||||
|
||||
--- Walk every section header in `hdr` and return a 1-based array of entries
|
||||
--- (the section at logical index 0 is at array position 1, etc.).
|
||||
--- Each entry has the wire fields plus a resolved `name` derived from `.shstrtab`.
|
||||
--- Returns nil + a stable error code on failure: truncated_section_headers, missing_shstrtab, truncated_strtab
|
||||
--- @param adapter table
|
||||
--- @param hdr table -- the table returned by parse_elf32_headers
|
||||
--- @return table|nil, string|nil
|
||||
function M.walk_sections(adapter, hdr)
|
||||
if not hdr or hdr.error then return nil, hdr and hdr.error or "truncated_section_headers" end
|
||||
|
||||
local file_size = M.size(adapter)
|
||||
if hdr.e_shoff + hdr.e_shnum * hdr.e_shentsize > file_size then
|
||||
return nil, "truncated_section_headers"
|
||||
end
|
||||
|
||||
-- Read every section header first; we need .shstrtab to resolve names.
|
||||
local sections = {}
|
||||
for i = 0, hdr.e_shnum - 1 do
|
||||
local sh_off = hdr.e_shoff + i * hdr.e_shentsize
|
||||
local entry, err = read_section_entry(adapter, sh_off)
|
||||
if not entry then return nil, err end
|
||||
sections[i + 1] = entry
|
||||
end
|
||||
|
||||
if hdr.e_shstrndx >= hdr.e_shnum then
|
||||
return nil, "missing_shstrtab"
|
||||
end
|
||||
|
||||
local shstrtab = sections[hdr.e_shstrndx + 1]
|
||||
if not shstrtab or shstrtab.sh_type ~= M.SHT_STRTAB then
|
||||
return nil, "missing_shstrtab"
|
||||
end
|
||||
if shstrtab.sh_offset + shstrtab.sh_size > file_size then
|
||||
return nil, "truncated_section_headers"
|
||||
end
|
||||
local shstrtab_bytes = M.read_section_bytes(adapter, shstrtab)
|
||||
if not shstrtab_bytes then return nil, "truncated_section_headers" end
|
||||
|
||||
for _, s in ipairs(sections) do
|
||||
s.name = M.get_str(shstrtab_bytes, s.sh_name) or ""
|
||||
end
|
||||
|
||||
return sections, nil
|
||||
end
|
||||
|
||||
--- Read the bytes of one section. Returns a string, or nil if the adapter returns nil for any byte (out-of-bounds).
|
||||
--- The caller is responsible fors sizing the buffer (the section's sh_offset + sh_size must fit in adapter.size).
|
||||
--- @param adapter table
|
||||
--- @param section table -- one entry from walk_sections
|
||||
--- @return string|nil
|
||||
function M.read_section_bytes(adapter, section)
|
||||
local size = section.sh_size
|
||||
if size == 0 then return "" end
|
||||
local out = {}
|
||||
for i = 0, size - 1 do
|
||||
local b = M.read_u8(adapter, section.sh_offset + i)
|
||||
if b == nil then return nil end
|
||||
out[#out + 1] = string.char(b)
|
||||
end
|
||||
return table.concat(out)
|
||||
end
|
||||
|
||||
--- Convenience: walk sections, then look up the named section, then read its bytes.
|
||||
--- Returns nil + a stable error code if the section is absent or out-of-bounds.
|
||||
--- @param adapter table
|
||||
--- @param sections table -- 1-based array from walk_sections
|
||||
--- @param name string
|
||||
--- @return string|nil, string|nil
|
||||
function M.read_named_section(adapter, sections, name)
|
||||
if not sections then return nil, "missing_section" end
|
||||
for _, s in ipairs(sections) do
|
||||
if s.name == name then
|
||||
local bytes = M.read_section_bytes(adapter, s)
|
||||
if not bytes then return nil, "truncated_section_data" end
|
||||
return bytes, nil
|
||||
end
|
||||
end
|
||||
return nil, "missing_section"
|
||||
end
|
||||
|
||||
--- Walk every SHT_SYMTAB section in `sections` and accumulate symbols by name.
|
||||
--- Each stored entry is `{ value = st_value, size = st_size, info = st_info, shndx = st_shndx }`.
|
||||
--- Both STB_LOCAL and STB_GLOBAL symbols are included; the live ELF stores `smem` as a local symbol.
|
||||
--- Returns nil + a stable error code on failure: missing_symtab_strtab, truncated_section_headers
|
||||
--- @param adapter table
|
||||
--- @param sections table
|
||||
--- @return table|nil, string|nil
|
||||
function M.collect_symbols(adapter, sections)
|
||||
if not sections then return nil, "missing_sections" end
|
||||
local symbols = {}
|
||||
local file_size = M.size(adapter)
|
||||
for _, s in ipairs(sections) do
|
||||
if s.sh_type == M.SHT_SYMTAB then
|
||||
local strtab = sections[s.sh_link + 1]
|
||||
if not strtab or strtab.sh_type ~= M.SHT_STRTAB then
|
||||
return nil, "missing_symtab_strtab"
|
||||
end
|
||||
if strtab.sh_offset + strtab.sh_size > file_size then
|
||||
return nil, "truncated_section_headers"
|
||||
end
|
||||
local strtab_bytes = M.read_section_bytes(adapter, strtab)
|
||||
if not strtab_bytes then return nil, "truncated_section_headers" end
|
||||
if s.sh_offset + s.sh_size > file_size then
|
||||
return nil, "truncated_section_headers"
|
||||
end
|
||||
local symtab_bytes = M.read_section_bytes(adapter, s)
|
||||
if not symtab_bytes then return nil, "truncated_section_headers" end
|
||||
local n = #symtab_bytes / M.ELF32_SYM.sym_entry_bytes
|
||||
for j = 0, n - 1 do
|
||||
local e = s.sh_offset + j * M.ELF32_SYM.sym_entry_bytes
|
||||
local st_name = M.read_u32(adapter, e + M.ELF32_SYM.st_name)
|
||||
if st_name then
|
||||
local st_value = M.read_u32(adapter, e + M.ELF32_SYM.st_value)
|
||||
local st_size = M.read_u32(adapter, e + M.ELF32_SYM.st_size)
|
||||
local st_info = M.read_u8(adapter, e + M.ELF32_SYM.st_info)
|
||||
-- st_shndx is at offset 14 (2 bytes) — derived from the layout
|
||||
-- the metaprogram reads too. Inline the read to keep the
|
||||
-- adapter as the only I/O surface.
|
||||
local b1 = M.read_u8(adapter, e + 14)
|
||||
local b2 = M.read_u8(adapter, e + 15)
|
||||
if not (b1 and b2) then
|
||||
return nil, "truncated_section_headers"
|
||||
end
|
||||
local st_shndx = b1 + b2 * 0x100
|
||||
local name = M.get_str(strtab_bytes, st_name) or ""
|
||||
if name ~= "" then
|
||||
symbols[name] = {
|
||||
value = st_value,
|
||||
size = st_size,
|
||||
info = st_info,
|
||||
shndx = st_shndx,
|
||||
}
|
||||
end
|
||||
end
|
||||
end
|
||||
end
|
||||
end
|
||||
return symbols, nil
|
||||
end
|
||||
|
||||
return M
|
||||
+409
-151
@@ -1,13 +1,8 @@
|
||||
--- elf_dwarf.lua — ELF32 + DWARF + atoms source-map utilities.
|
||||
--- All ELF32 + DWARF-specific code lives here.
|
||||
---
|
||||
--- **What this module contains:**
|
||||
--- - **Format-constant tables** (the byte-offset / opcode / size encyclopedias for ELF32, DWARF4 aranges, DWARF5 rnglists, DWARF line-program, MIPS).
|
||||
--- Every constant carries a spec:` comment naming the spec section that defines it.
|
||||
--- - **I/O helpers**: little-endian byte read/write, ELF32 section walker, nm symbol reader, source-map parser, native directory glob.
|
||||
---
|
||||
--- **Conventions:** tabs (1/level), EmmyLua annotations, no regex,
|
||||
--- Lua 5.3 compatible.
|
||||
|
||||
-- ════════════════════════════════════════════════════════════════════════════
|
||||
-- Native dependencies
|
||||
@@ -16,6 +11,11 @@
|
||||
-- lfs is wired into package.cpath by `duffle_paths.lua` (vendored under `toolchain/lfs/lfs.dll`).
|
||||
local lfs = require("lfs")
|
||||
|
||||
-- scripts/elf32.lua contains format-constant tables + the byte-level walker.
|
||||
-- The this file re-exports `read_u32_le` / `read_u16_le` (and the DWARF32 terminator).
|
||||
-- TODO(Ed): Remove re-export.
|
||||
local E = require("elf32")
|
||||
|
||||
local M = {}
|
||||
|
||||
-- ════════════════════════════════════════════════════════════════════════════
|
||||
@@ -104,34 +104,16 @@ M.MIPS_BYTES_PER_WORD = 0x04
|
||||
-- ----------------------------------------------------------------------------
|
||||
-- ELF32 (System V ABI gABI v1.2)
|
||||
-- ----------------------------------------------------------------------------
|
||||
--- **Wire-offset contract:** format offsets, fixed-width reader offsets, LEB/parser cursors,
|
||||
--- and section-relative values are zero-based wire offsets. Only Lua string APIs receive
|
||||
--- a `+ 1` conversion at their boundary (`byte`, `sub`, and `find`).
|
||||
--- **Wire-offset contract:** format offsets, fixed-width reader offsets, LEB/parser cursors, and section-relative values are zero-based wire offsets.
|
||||
--- Only Lua string APIs receive a `+ 1` conversion at their boundary (`byte`, `sub`, and `find`).
|
||||
--- ELF/DWARF field offsets are expressed in hex so they map directly to the zero-based byte positions in the binary file.
|
||||
---
|
||||
--- ELF/DWARF field offsets are expressed in hex so they map directly to the
|
||||
--- zero-based byte positions in the binary file.
|
||||
--- The ELF32 header / section / sym layout tables are within scripts/elf32.lua.
|
||||
--- The metaprogram re-exports the DWARF32 initial-length terminator.
|
||||
|
||||
|
||||
--- spec: System V ABI gABI v1.2 §"ELF Header" (Table 1) + §"Section Header Table"
|
||||
M.ELF32 = {
|
||||
magic_offset = 0x00, -- 4-byte magic "\127ELF" at file offset 0x00
|
||||
magic = "\127ELF",
|
||||
class_offset = 0x04, -- 1-byte; 1 = ELF32, 2 = ELF64
|
||||
class_elf32 = 1,
|
||||
endian_offset = 0x05, -- 1-byte; 1 = little-endian, 2 = big-endian
|
||||
endian_little = 1,
|
||||
header_bytes = 0x34, -- spec: gABI v1.2 §"ELF Header" — ELF32 header is 52 bytes total
|
||||
e_shoff_offset = 0x20, -- 4-byte LE; section-header table file offset
|
||||
e_shentsize_offset = 0x2E, -- 2-byte LE; section-header entry size in bytes
|
||||
e_shnum_offset = 0x30, -- 2-byte LE; number of section headers
|
||||
e_shstrndx_offset = 0x32, -- 2-byte LE; index of section-name string table
|
||||
sh_size_bytes = 0x28, -- spec: gABI v1.2 §"Section Header Table" — each entry is 40 bytes
|
||||
sh_name_offset = 0x00, -- 4-byte LE; offset into .shstrtab
|
||||
sh_type_offset = 0x04, -- 4-byte LE; section type (SHT_*)
|
||||
sh_offset_offset = 0x10, -- 4-byte LE; section's file offset
|
||||
sh_size_offset = 0x14, -- 4-byte LE; section's size in bytes
|
||||
dw_dwarf32_terminator = 0xFFFFFFFF, -- spec: DWARF4 spec §7.4 — 32-bit DWARF initial-length terminator
|
||||
}
|
||||
--- spec: DWARF4 spec §7.4 — 32-bit DWARF initial-length terminator
|
||||
M.dw_dwarf32_terminator = E.dw_dwarf32_terminator
|
||||
-- TODO(Ed): Remove re-export.
|
||||
|
||||
-- ----------------------------------------------------------------------------
|
||||
-- DWARF4 .debug_aranges (per DWARF5 spec §7.4 — Address Range Table)
|
||||
@@ -192,8 +174,7 @@ M.DWARF_LINE_OPS = {
|
||||
DW_LNE_end_sequence = 1, -- spec: §6.2.5.3
|
||||
DW_LNE_set_address = 2, -- spec: §6.2.5.3
|
||||
-- Standard opcode header (§6.2.5.1)
|
||||
-- opcode_base + line_range are 1-byte header fields; hex so they map
|
||||
-- directly to their position in the line-program header byte sequence.
|
||||
-- opcode_base + line_range are 1-byte header fields; hex so they map directly to the line-program header byte sequence.
|
||||
-- line_base stays signed decimal (=-5) since 0xFB obscures the spec semantics.
|
||||
opcode_base = 0x0D,
|
||||
line_base = -5,
|
||||
@@ -204,6 +185,44 @@ M.DWARF_LINE_OPS = {
|
||||
set_address_payload_size = 0x05, -- size = sub_opcode(1) + addr(4)
|
||||
}
|
||||
|
||||
-- ----------------------------------------------------------------------------
|
||||
-- DWARF5 .debug_line (per DWARF5 spec §6.2.4 — Line Number Program Header)
|
||||
-- ----------------------------------------------------------------------------
|
||||
-- All offsets are zero-based wire offsets from the start of the unit body
|
||||
-- (i.e. AFTER unit_length has been read and unit_length bytes skipped past unit_length's 4 bytes).
|
||||
--
|
||||
-- The DWARF3/4 line-program format differs:
|
||||
-- - It omits `address_size` (DWARF3 §6.2.4) + `segment_selector_size` (DWARF5 §6.2.4).
|
||||
-- - It uses null-terminated string lists for `include_directories` + `file_names`
|
||||
-- (vs. DWARF5's format_count + fields-list shape).
|
||||
-- These are documented inline at each parse site in read_line_unit_file_table below.
|
||||
|
||||
--- spec: DWARF5 spec §6.2.4 (Line Number Program Header — version >= 5)
|
||||
M.DWARF5_DEBUG_LINE = {
|
||||
-- Header fields (zero-based, AFTER unit_length has been read).
|
||||
version_offset_post_il = 0x00, -- 2-byte LE; expected = 5
|
||||
addr_size_offset = 0x02, -- 1 byte; expected = 4
|
||||
seg_size_offset = 0x03, -- 1 byte; expected = 0
|
||||
header_length_offset = 0x04, -- 4-byte LE; length of program-header content that follows
|
||||
program_header_start = 0x08, -- first byte of program-header content (after the 8 fixed bytes)
|
||||
|
||||
-- Per-form byte widths (used when reading directory / file-name entries).
|
||||
form_addr_bytes = 0x04, -- DW_FORM_addr (32-bit) | DW_FORM_data4
|
||||
form_strp_bytes = 0x04, -- DW_FORM_line_strp / DW_FORM_strp / DW_FORM_strp_sup
|
||||
form_data16_bytes = 0x10, -- DW_FORM_data16 (MD5)
|
||||
|
||||
-- DWARF5 form codes (subset used in line-program directory + file tables).
|
||||
form_line_strp = 0x1A, -- DWARF5 §7.5.6 — DW_FORM_line_strp (4-byte offset into .debug_line_str)
|
||||
form_string = 0x08, -- DWARF4-compatible fallback (inline null-terminated; not in .debug_line_str)
|
||||
form_udata = 0x0F, -- DW_FORM_udata (ULEB)
|
||||
form_data16 = 0x18, -- DW_FORM_data16 (16-byte MD5; gcc emits this for split debug info)
|
||||
|
||||
-- DWARF5 content-tag codes (DW_LNCT_* from §6.2.4.1 + §6.2.4.2).
|
||||
lnct_path = 0x01,
|
||||
lnct_directory_index = 0x02,
|
||||
lnct_md5 = 0x05, -- gcc with MD5 in file name table (rare)
|
||||
}
|
||||
|
||||
-- ════════════════════════════════════════════════════════════════════════════
|
||||
-- I/O helpers: little-endian byte read/write
|
||||
-- ════════════════════════════════════════════════════════════════════════════
|
||||
@@ -211,37 +230,31 @@ M.DWARF_LINE_OPS = {
|
||||
--- Read a 4-byte little-endian unsigned integer from `buf` at zero-based wire offset `off`.
|
||||
--- Equivalent to `string.unpack("<I4", buf, off + 1)` but avoids the table-return shape + works under LuaJIT 2.1
|
||||
--- (which has partial `string.unpack` coverage).
|
||||
---
|
||||
--- **Convention:** `off` is a zero-based wire offset; `+ 1` is applied only at the `string.byte` boundary.
|
||||
---
|
||||
--- **Byte weights** are written as `0x100`, `0x10000`, `0x1000000` (i.e. 2^8, 2^16, 2^24) so the LE byte positions are visually explicit:
|
||||
--- byte 0 contributes its value directly; byte 1 is shifted left by 8
|
||||
--- (= 0x100); byte 2 by 16 (= 0x10000); byte 3 by 24 (= 0x1000000).
|
||||
--- Thin forwarder: the canonical implementation lives in scripts/elf32.lua.
|
||||
--- The "second caller lifts" pattern keeps the metaprogram side fluent
|
||||
--- (`M.read_u32_le(buf, off)`) while the body is deduped.
|
||||
--- @param buf string
|
||||
--- @param off integer -- zero-based wire offset
|
||||
--- @return integer
|
||||
function M.read_u32_le(buf, off)
|
||||
local byte_off = off + 1
|
||||
return buf:byte(byte_off)
|
||||
+ buf:byte(byte_off + 0x01) * 0x00000100
|
||||
+ buf:byte(byte_off + 0x02) * 0x00010000
|
||||
+ buf:byte(byte_off + 0x03) * 0x01000000
|
||||
return E.read_u32_le(buf, off)
|
||||
end
|
||||
|
||||
--- Read a 2-byte little-endian unsigned integer from `buf` at zero-based wire offset `off`.
|
||||
--- (`off` is zero-based; `+ 1` is applied only at the `string.byte` boundary.)
|
||||
--- Thin forwarder — see `M.read_u32_le` for the rationale.
|
||||
--- @param buf string
|
||||
--- @param off integer -- zero-based wire offset
|
||||
--- @return integer
|
||||
function M.read_u16_le(buf, off)
|
||||
local byte_off = off + 1
|
||||
return buf:byte(byte_off) + buf:byte(byte_off + 0x01) * 0x00000100
|
||||
return E.read_u16_le(buf, off)
|
||||
end
|
||||
|
||||
-- Pure-Lua 5.3 LEB128 readers (no `bit` library). `2^shift` arithmetic matches the existing parser.
|
||||
-- Offsets are 0-based; returns (value, next_pos).
|
||||
-- Promoted from `local function` to M.* exports so passes/dwarf_injection.lua
|
||||
-- can import them as file-scope locals per the 2nd-caller lift precedent
|
||||
-- Promoted from `local function` to M.* exports so passes/dwarf_injection.lua can import them as file-scope locals per the 2nd-caller lift precedent
|
||||
-- (the uleb128 + sleb128 encoders were promoted the same way).
|
||||
function M.read_uleb128_at(buf, pos)
|
||||
local value, shift = 0, 0
|
||||
@@ -389,9 +402,9 @@ local function read_form_value(buf, str_buf, pos, form)
|
||||
-- The constant is declared in the abbrev; no value bytes in the DIE.
|
||||
return nil, pos
|
||||
elseif form == M.DW_FORM.ref_sig8 then
|
||||
-- DW_FORM_ref_sig8 (DWARF5 §7.4.2): an 8-byte value identifying a type
|
||||
-- by signature. The low 4 bytes (LE) are the type signature (content hash);
|
||||
-- the high 4 bytes (LE) are a CU-relative offset into the matching type unit.
|
||||
-- DW_FORM_ref_sig8 (DWARF5 §7.4.2): An 8-byte value identifying a type by signature.
|
||||
-- The low 4 bytes (LE) are the type signature (content hash);
|
||||
-- The high 4 bytes (LE) are a CU-relative offset into the matching type unit.
|
||||
-- Consumers use the low 4 to look up the type unit (see M.find_type_unit_by_signature)
|
||||
-- then the high 4 to resolve the specific type within it.
|
||||
-- Return the low 4 as the primary value to preserve the (value, next_pos) shape;
|
||||
@@ -417,20 +430,20 @@ function M.read_ref_sig8(buf, pos)
|
||||
return M.read_u32_le(buf, pos), M.read_u32_le(buf, pos + 4), pos + 8
|
||||
end
|
||||
|
||||
-- DWARF5 §7.5.6 (Type Entries).
|
||||
-- Walk all units in `info` and return the 0-based offset of the first unit
|
||||
-- whose `DW_AT_type_signature` (8-byte value at the end of the unit header) equals `target_sig`.
|
||||
-- The signature is interpreted as two 32-bit halves (low/high) per the read_ref_sig8 contract;
|
||||
-- we match both halves (i.e. the 8-byte value as a whole). Returns nil if no matching unit exists.
|
||||
--
|
||||
-- Unit header layout (from pos 0):
|
||||
-- unit_length(4) + version(2) + unit_type(1) + address_size(1) + debug_abbrev_offset(4)
|
||||
-- followed by type_unit_specific fields: type_signature(8) + type_offset(4)
|
||||
-- The type_signature is at byte offset 8 of the body (right after debug_abbrev_offset).
|
||||
-- @param info string -- the .debug_info section bytes
|
||||
-- @param target_sig_lo integer -- low 4 bytes (LE) of the desired signature
|
||||
-- @param target_sig_hi integer -- high 4 bytes (LE) of the desired signature
|
||||
-- @return integer|nil, integer|nil -- unit offset, type_offset within the unit
|
||||
--- DWARF5 §7.5.6 (Type Entries).
|
||||
--- Walk all units in `info` and return the 0-based offset of the first unit whose `DW_AT_type_signature`
|
||||
--- (8-byte value at the end of the unit header) equals `target_sig`.
|
||||
--- The signature is interpreted as two 32-bit halves (low/high) per the read_ref_sig8 contract;
|
||||
--- we match both halves (i.e. the 8-byte value as a whole). Returns nil if no matching unit exists.
|
||||
---
|
||||
--- Unit header layout (from pos 0):
|
||||
--- unit_length(4) + version(2) + unit_type(1) + address_size(1) + debug_abbrev_offset(4)
|
||||
--- followed by type_unit_specific fields: type_signature(8) + type_offset(4)
|
||||
--- The type_signature is at byte offset 8 of the body (right after debug_abbrev_offset).
|
||||
--- @param info string -- the .debug_info section bytes
|
||||
--- @param target_sig_lo integer -- low 4 bytes (LE) of the desired signature
|
||||
--- @param target_sig_hi integer -- high 4 bytes (LE) of the desired signature
|
||||
--- @return integer|nil, integer|nil -- unit offset, type_offset within the unit
|
||||
function M.find_type_unit_by_signature(info, target_sig_lo, target_sig_hi)
|
||||
local pos = 0
|
||||
local section_len = #info
|
||||
@@ -539,69 +552,58 @@ function M.read_elf_sections(elf_path, section_names)
|
||||
return result
|
||||
end
|
||||
|
||||
-- Read the ELF32 header.
|
||||
local header = f:read(M.ELF32.header_bytes)
|
||||
if not header or #header < M.ELF32.header_bytes then
|
||||
io.stderr:write("[elf_dwarf.read_elf_sections] ELF too small for ELF32 header\n")
|
||||
local file_size
|
||||
do
|
||||
f:seek("end", 0)
|
||||
file_size = f:seek("cur", 0)
|
||||
end
|
||||
local adapter = {
|
||||
read_u8_at = function(offset)
|
||||
f:seek("set", offset)
|
||||
local b = f:read(1)
|
||||
if not b then return nil end
|
||||
return b:byte()
|
||||
end,
|
||||
read_u16_at = function(offset)
|
||||
f:seek("set", offset)
|
||||
local b1 = f:read(1)
|
||||
local b2 = f:read(1)
|
||||
if not b1 or not b2 then return nil end
|
||||
return b1:byte() + b2:byte() * 0x100
|
||||
end,
|
||||
read_u32_at = function(offset)
|
||||
f:seek("set", offset)
|
||||
local b1 = f:read(1)
|
||||
local b2 = f:read(1)
|
||||
local b3 = f:read(1)
|
||||
local b4 = f:read(1)
|
||||
if not b1 or not b2 or not b3 or not b4 then return nil end
|
||||
return b1:byte() + b2:byte() * 0x100
|
||||
+ b3:byte() * 0x10000 + b4:byte() * 0x1000000
|
||||
end,
|
||||
read_size = function() return file_size end,
|
||||
}
|
||||
|
||||
-- Delegate the header parse + section walk to E.*.
|
||||
local hdr, hdr_err = E.parse_elf32_headers(adapter)
|
||||
if not hdr then
|
||||
io.stderr:write(string.format("[elf_dwarf.read_elf_sections] header parse failed: %s\n", tostring(hdr_err)))
|
||||
f:close()
|
||||
return result
|
||||
end
|
||||
|
||||
-- Sanity-check magic + class + endianness.
|
||||
if header:sub(M.ELF32.magic_offset + 1, M.ELF32.magic_offset + 0x04) ~= M.ELF32.magic then
|
||||
io.stderr:write("[elf_dwarf.read_elf_sections] not an ELF file\n")
|
||||
f:close()
|
||||
return result
|
||||
end
|
||||
if header:byte(M.ELF32.class_offset + 1) ~= M.ELF32.class_elf32 then
|
||||
io.stderr:write(string.format("[elf_dwarf.read_elf_sections] not ELF32 (class=%d)\n", header:byte(M.ELF32.class_offset + 1)))
|
||||
f:close()
|
||||
return result
|
||||
end
|
||||
if header:byte(M.ELF32.endian_offset + 1) ~= M.ELF32.endian_little then
|
||||
io.stderr:write("[elf_dwarf.read_elf_sections] not little-endian; unsupported\n")
|
||||
local sections, walk_err = E.walk_sections(adapter, hdr)
|
||||
if not sections then
|
||||
io.stderr:write(string.format("[elf_dwarf.read_elf_sections] section walk failed: %s\n", tostring(walk_err)))
|
||||
f:close()
|
||||
return result
|
||||
end
|
||||
|
||||
-- Parse section-header table location + dimensions from the header.
|
||||
local e_shoff = M.read_u32_le(header, M.ELF32.e_shoff_offset)
|
||||
local e_shentsize = M.read_u16_le(header, M.ELF32.e_shentsize_offset)
|
||||
local e_shnum = M.read_u16_le(header, M.ELF32.e_shnum_offset)
|
||||
local e_shstrndx = M.read_u16_le(header, M.ELF32.e_shstrndx_offset)
|
||||
|
||||
-- Read the section-header string table (.shstrtab) so we can resolve section names from their `sh_name` offsets.
|
||||
f:seek("set", e_shoff + e_shstrndx * e_shentsize)
|
||||
local strtab_hdr = f:read(e_shentsize)
|
||||
if not strtab_hdr or #strtab_hdr < e_shentsize then
|
||||
io.stderr:write("[elf_dwarf.read_elf_sections] could not read .shstrtab header\n")
|
||||
f:close()
|
||||
return result
|
||||
end
|
||||
local strtab_offset = M.read_u32_le(strtab_hdr, M.ELF32.sh_offset_offset)
|
||||
local strtab_size = M.read_u32_le(strtab_hdr, M.ELF32.sh_size_offset)
|
||||
f:seek("set", strtab_offset)
|
||||
local strtab = f:read(strtab_size) or ""
|
||||
|
||||
-- Walk all section headers; collect (offset, size) for the wanted names.
|
||||
local function read_section_bytes(sh_offset, sh_size)
|
||||
f:seek("set", sh_offset)
|
||||
return f:read(sh_size) or ""
|
||||
end
|
||||
|
||||
for sh_idx = 0, e_shnum - 1 do
|
||||
f:seek("set", e_shoff + sh_idx * e_shentsize)
|
||||
local sh = f:read(e_shentsize)
|
||||
if not sh or #sh < e_shentsize then break end
|
||||
local sh_name = M.read_u32_le(sh, M.ELF32.sh_name_offset)
|
||||
local sh_offset = M.read_u32_le(sh, M.ELF32.sh_offset_offset)
|
||||
local sh_size = M.read_u32_le(sh, M.ELF32.sh_size_offset)
|
||||
|
||||
-- Extract the name (null-terminated C string in strtab).
|
||||
local name_end = strtab:find("\0", sh_name + 1, true) or (sh_name + 1)
|
||||
local name = strtab:sub(sh_name + 1, name_end - 1)
|
||||
if wanted[name] then
|
||||
result[name] = read_section_bytes(sh_offset, sh_size)
|
||||
-- Resolve the requested sections.
|
||||
for _, s in ipairs(sections) do
|
||||
if wanted[s.name] then
|
||||
local bytes = E.read_section_bytes(adapter, s)
|
||||
if bytes then result[s.name] = bytes end
|
||||
end
|
||||
end
|
||||
|
||||
@@ -618,49 +620,87 @@ end
|
||||
--- - We filter on STB_GLOBAL (high nibble of st_info = 1) to match `nm`'s default (external symbols only). STB_WEAK excluded.
|
||||
--- - The `code_` prefix is stripped (MipsAtom_ macros emit bare atom names, no `code_` prefix).
|
||||
--- - `st_size > 0` filter excludes undefined/imported symbols.
|
||||
---
|
||||
--- @param elf_path Path
|
||||
--- @return table<string, {integer, integer}>
|
||||
function M.read_nm(elf_path)
|
||||
local addrs = {}
|
||||
|
||||
-- Read .symtab + .strtab via the existing ELF walker (no subprocess).
|
||||
local sections = M.read_elf_sections(elf_path, {".symtab", ".strtab"})
|
||||
local symtab = sections[".symtab"]
|
||||
local strtab = sections[".strtab"]
|
||||
if not symtab or not strtab or #symtab == 0 or #strtab == 0 then
|
||||
-- No symbol table (e.g. stripped ELF). Return empty.
|
||||
-- Existence check first; an empty or missing ELF returns an empty map.
|
||||
if lfs.attributes(elf_path, "mode") ~= "file" then
|
||||
return addrs
|
||||
end
|
||||
|
||||
-- Iterate the 16-byte ELF32 symtab entries.
|
||||
-- Each entry (zero-based): st_name at 0, st_value at 4, st_size at 8, st_info at 12, st_other at 13, st_shndx at 14.
|
||||
local SYM_ENTRY_BYTES = 0x10
|
||||
local SYM_ST_NAME = 0x00
|
||||
local SYM_ST_VALUE = 0x04
|
||||
local SYM_ST_SIZE = 0x08
|
||||
local SYM_ST_INFO = 0x0C
|
||||
local n_syms = #symtab / SYM_ENTRY_BYTES
|
||||
for i = 0, n_syms - 1 do
|
||||
local entry_off = i * SYM_ENTRY_BYTES
|
||||
local st_info = symtab:byte(entry_off + SYM_ST_INFO + 1)
|
||||
-- High nibble = binding (STB_LOCAL=0, STB_GLOBAL=1, STB_WEAK=2).
|
||||
-- Use math.floor(/16) instead of bit.rshift for LuaJIT 2.1 compat
|
||||
-- (LuaJIT's `>>` is 5.3+, but math.floor(x/16) works on all versions).
|
||||
local binding = math.floor(st_info / 16)
|
||||
if binding == 0 or binding == 1 then -- STB_LOCAL or STB_GLOBAL
|
||||
local st_size = M.read_u32_le(symtab, entry_off + SYM_ST_SIZE)
|
||||
if st_size > 0 then
|
||||
local st_name_off = M.read_u32_le(symtab, entry_off + SYM_ST_NAME)
|
||||
-- Extract the name from .strtab (null-terminated C string).
|
||||
local name_end = strtab:find("\0", st_name_off + 1, true) or (st_name_off + 1)
|
||||
local name = strtab:sub(st_name_off + 1, name_end - 1)
|
||||
-- Filter: keep all symbol-table symbols (atoms emit their name as the bare `<name>` — MipsAtom_ macros strip the `code_` prefix).
|
||||
-- The atoms_source_map pass already filters out non-atom symbols via the source-map.txt cross-ref.
|
||||
if name and #name > 0 then
|
||||
local st_value = M.read_u32_le(symtab, entry_off + SYM_ST_VALUE)
|
||||
addrs[name] = { st_value, st_size }
|
||||
local f = io.open(elf_path, "rb")
|
||||
if not f then
|
||||
return addrs
|
||||
end
|
||||
|
||||
-- Build the file adapter for E.*.
|
||||
local file_size
|
||||
do
|
||||
f:seek("end", 0)
|
||||
file_size = f:seek("cur", 0)
|
||||
end
|
||||
local adapter = {
|
||||
read_u8_at = function(offset)
|
||||
f:seek("set", offset)
|
||||
local b = f:read(1)
|
||||
if not b then return nil end
|
||||
return b:byte()
|
||||
end,
|
||||
read_u16_at = function(offset)
|
||||
f:seek("set", offset)
|
||||
local b1 = f:read(1)
|
||||
local b2 = f:read(1)
|
||||
if not b1 or not b2 then return nil end
|
||||
return b1:byte() + b2:byte() * 0x100
|
||||
end,
|
||||
read_u32_at = function(offset)
|
||||
f:seek("set", offset)
|
||||
local b1 = f:read(1)
|
||||
local b2 = f:read(1)
|
||||
local b3 = f:read(1)
|
||||
local b4 = f:read(1)
|
||||
if not b1 or not b2 or not b3 or not b4 then return nil end
|
||||
return b1:byte() + b2:byte() * 0x100
|
||||
+ b3:byte() * 0x10000 + b4:byte() * 0x1000000
|
||||
end,
|
||||
read_size = function() return file_size end,
|
||||
}
|
||||
|
||||
-- Delegate the header + section walk to E.*.
|
||||
local hdr, hdr_err = E.parse_elf32_headers(adapter)
|
||||
if not hdr then
|
||||
io.stderr:write(string.format("[elf_dwarf.read_nm] header parse failed: %s\n", tostring(hdr_err)))
|
||||
f:close()
|
||||
return addrs
|
||||
end
|
||||
|
||||
local sections, walk_err = E.walk_sections(adapter, hdr)
|
||||
if not sections then
|
||||
io.stderr:write(string.format("[elf_dwarf.read_nm] section walk failed: %s\n", tostring(walk_err)))
|
||||
f:close()
|
||||
return addrs
|
||||
end
|
||||
|
||||
-- E.collect_symbols returns every defined symbol (no binding filter).
|
||||
-- The metaprogram then applies its STB_LOCAL / STB_GLOBAL + size>0 filter, matching `nm`'s default (external symbols only).
|
||||
local symbols, sym_err = E.collect_symbols(adapter, sections)
|
||||
if not symbols then
|
||||
io.stderr:write(string.format("[elf_dwarf.read_nm] symbol collection failed: %s\n", tostring(sym_err)))
|
||||
f:close()
|
||||
return addrs
|
||||
end
|
||||
|
||||
f:close()
|
||||
|
||||
for name, entry in pairs(symbols) do
|
||||
-- High nibble of st_info = binding (STB_LOCAL=0, STB_GLOBAL=1, STB_WEAK=2).
|
||||
-- math.floor(/16) is portable across LuaJIT 2.0/2.1 and plain Lua 5.x.
|
||||
local binding = math.floor(entry.info / 16)
|
||||
if (binding == 0 or binding == 1) and entry.size > 0 then
|
||||
addrs[name] = { entry.value, entry.size }
|
||||
end
|
||||
end
|
||||
|
||||
@@ -787,6 +827,224 @@ function M.sleb128_size(n)
|
||||
return bytes
|
||||
end
|
||||
|
||||
-- ════════════════════════════════════════════════════════════════════════════
|
||||
-- DWARF5 line-program file-table reader
|
||||
-- ════════════════════════════════════════════
|
||||
|
||||
--- Read every line-program unit in `.debug_line` and produce one entry per file across all units.
|
||||
--- Returns three parallel maps keyed by 1-based file index.
|
||||
---
|
||||
--- Wire format notes:
|
||||
--- * The `.debug_line` section may contain MULTIPLE line-program units
|
||||
--- File indices are 1-based, **per unit**; we concatenate all units and the index ranges from 1..N₁ in unit 1, N₁+1..N₁+N₂ in unit 2, etc.
|
||||
--- Per-unit indices (the way gcc emits them, and the way `DW_LNS_set_file` references them in the line program)
|
||||
--- are returned via the `basename_to_index` map only when the unit boundary happens to align with the metaprogram's per-atom `inv.call_file`
|
||||
--- * Per spec, the `.debug_line_str` section (DWARF5 §7.5.6) holds the strings referenced by `DW_FORM_line_strp`.
|
||||
--- The legacy DWARF3 format embeds strings directly with null terminators. This helper handles BOTH.
|
||||
--- * File entries may have multiple forms (gcc -gdwarf-5 with `DW_LNCT_directory_index` emits 2 forms: path + dir_index).
|
||||
--- The helper supports:
|
||||
--- - DW_FORM_line_strp (DWARF5; offset into .debug_line_str)
|
||||
--- - DW_FORM_string (DWARF4-compat; inline null-terminated in .debug_line)
|
||||
--- - DW_FORM_udata (ULEB128)
|
||||
--- - DW_FORM_data16 (16-byte MD5; ignored — skip the form's bytes)
|
||||
--- * Symlink-canonicalisation: each path's `paths[i]` is stored verbatim from the wire
|
||||
--- (mixed `/` and `\` accepted; the basename is taken via the last path separator). Caller normalises as needed.
|
||||
---
|
||||
--- Behavior on failure: writes to stderr and returns nil.
|
||||
--- Helpers consumed by `passes/dwarf_injection.lua::init_file_index_lookup(elf_path)` calls this once at pass start to populate the module-level `basename_to_index` map;
|
||||
--- downstream `resolve_provenance_file_index(path)` consumers consult the map directly.
|
||||
---
|
||||
--- @param elf_path string -- absolute path to the post-link ELF (typically the gcc-emitted `.elf` BEFORE dwarf_injector's splice; both shapes work since the splice preserves `.debug_line`)
|
||||
--- @return table|nil, table|nil, table|nil
|
||||
--- basename_to_index: { [basename] = 1-based-per-unit-file-index, ... }
|
||||
--- basenames: { [1-based-per-unit-file-index] = basename, ... }
|
||||
--- paths: { [1-based-per-unit-file-index] = full path (mixed slashes), ... }
|
||||
function M.read_line_unit_file_table(elf_path)
|
||||
local sections = M.read_elf_sections(elf_path, { ".debug_line", ".debug_line_str" })
|
||||
local line = sections[".debug_line"]
|
||||
local lstr = sections[".debug_line_str"] or ""
|
||||
if not line or line == "" then
|
||||
io.stderr:write("[elf_dwarf.read_line_unit_file_table] no .debug_line section in: " .. tostring(elf_path) .. "\n")
|
||||
return nil
|
||||
end
|
||||
|
||||
local basenames = {}
|
||||
local basename_to_index = {}
|
||||
local paths = {}
|
||||
|
||||
--- Read one form-code's bytes from `buf` at position `p` according to `form`.
|
||||
--- Returns (value, after) where `value` is:
|
||||
--- * the resolved string (DW_FORM_line_strp / DW_FORM_string)
|
||||
--- * the ULEB128 number (DW_FORM_udata)
|
||||
--- * nil + skip-bytes (DW_FORM_data16; we don't surface the MD5)
|
||||
local function read_form(buf, lstr_buf, p, form)
|
||||
if form == M.DWARF5_DEBUG_LINE.form_line_strp then
|
||||
local strp = M.read_u32_le(buf, p)
|
||||
local end_pos = lstr_buf:find("\0", strp + 1, true) or (#lstr_buf + 1)
|
||||
return lstr_buf:sub(strp + 1, end_pos - 1), p + M.DWARF5_DEBUG_LINE.form_strp_bytes
|
||||
elseif form == M.DWARF5_DEBUG_LINE.form_string then
|
||||
local nul = buf:find("\0", p + 1, true) or (#buf + 1)
|
||||
return buf:sub(p + 1, nul - 1), nul
|
||||
elseif form == M.DWARF5_DEBUG_LINE.form_udata then
|
||||
local v, after = M.read_uleb128_at(buf, p)
|
||||
return v, after
|
||||
elseif form == M.DWARF5_DEBUG_LINE.form_data16 then
|
||||
return nil, p + M.DWARF5_DEBUG_LINE.form_data16_bytes
|
||||
else
|
||||
-- Unsupported form in a directory/file-table entry: best-effort skip.
|
||||
-- We do NOT stderr-write because the crt0.s DWARF5 line unit (gcc-as emitted) uses DW_FORM_addr (0x01) for what is effectively a path entry, which is non-standard.
|
||||
-- The C-unit's DWARF3 paths are read via the parallel DWARF3 path and never see this error.
|
||||
-- Callers should consult `basename_to_index` for the paths they care about and ignore this unit if it produced none.
|
||||
return nil, p
|
||||
end
|
||||
end
|
||||
|
||||
--- Parse one DWARF-version-3-style unit (DWARF3/4 line program; gcc default in the PS1 toolchain still emits DWARF3 for line programs in `-g` mode).
|
||||
--- Layout: null-terminated directory list, then path(null) + dir_idx(ULEB) + time(ULEB) + size(ULEB) file entries terminated by an empty null.
|
||||
--- `content_start` = zero-based wire offset of the first byte of program-header content (after version + header_length fields).
|
||||
--- @return unit_basenames { [idx_in_unit_1_based] = basename }
|
||||
--- @return unit_paths { [idx_in_unit_1_based] = full path }
|
||||
local function parse_dwarf3_unit(buf, content_start, body_end)
|
||||
local up = content_start
|
||||
-- 5 fixed bytes: min_insn, default_is, line_base (signed), line_range, opcode_base
|
||||
up = up + 5
|
||||
local opcode_base = buf:byte(content_start + 5)
|
||||
up = up + (opcode_base - 1) -- std_opcode_lengths
|
||||
local dirs = {}
|
||||
while up < body_end do
|
||||
local nul = buf:find("\0", up + 1, true) or (body_end + 1)
|
||||
if nul > body_end then break end
|
||||
local len = nul - up - 1
|
||||
if len == 0 then up = nul break end
|
||||
dirs[#dirs + 1] = buf:sub(up + 1, nul - 1)
|
||||
up = nul
|
||||
end
|
||||
local unit_basenames = {}
|
||||
local unit_paths = {}
|
||||
while up < body_end do
|
||||
local nul = buf:find("\0", up + 1, true) or (body_end + 1)
|
||||
if nul > body_end or nul == up + 1 then up = nul break end
|
||||
local path = buf:sub(up + 1, nul - 1)
|
||||
up = nul
|
||||
local didx, up_next = M.read_uleb128_at(buf, up); up = up_next
|
||||
local _time, up_next2 = M.read_uleb128_at(buf, up); up = up_next2
|
||||
local _size, up_next3 = M.read_uleb128_at(buf, up); up = up_next3
|
||||
local idx = #unit_basenames + 1
|
||||
local bs = path:match("[^/\\]+$") or path
|
||||
unit_paths[idx] = path
|
||||
unit_basenames[idx] = bs
|
||||
dirs[1] = dirs[1] or "" -- safety: gcc emits "" sentinel dir at 0
|
||||
if didx > 0 and dirs[didx] then
|
||||
unit_paths[idx] = dirs[didx] .. "/" .. path
|
||||
end
|
||||
end
|
||||
return unit_basenames, unit_paths
|
||||
end
|
||||
|
||||
--- Parse one DWARF-version-5-style unit (DWARF5 line program; used by modern gcc with `-gdwarf-5`).
|
||||
--- `content_start` is the first byte of program-header content (after the 8 fixed bytes version+addr_size+seg_size+header_length).
|
||||
--- @return same shape as parse_dwarf3_unit
|
||||
local function parse_dwarf5_unit(buf, lstr_buf, content_start, body_end)
|
||||
local up = content_start
|
||||
-- 6 fixed bytes: min_insn, max_ops_per_insn, default_is, line_base, line_range, opcode_base
|
||||
up = up + 6
|
||||
local opcode_base = buf:byte(content_start + 6)
|
||||
up = up + (opcode_base - 1) -- std_opcode_lengths
|
||||
-- directories
|
||||
local dir_format_count, after = M.read_uleb128_at(buf, up); up = after
|
||||
local dir_formats = {}
|
||||
for i = 1, dir_format_count do
|
||||
local f, a2 = M.read_uleb128_at(buf, up); up = a2
|
||||
dir_formats[i] = f
|
||||
end
|
||||
local dir_count, a3 = M.read_uleb128_at(buf, up); up = a3
|
||||
local dirs = {}
|
||||
for i = 1, dir_count do
|
||||
local combined = ""
|
||||
for j = 1, dir_format_count do
|
||||
local v, a4 = read_form(buf, lstr_buf, up, dir_formats[j])
|
||||
up = a4
|
||||
if j == 1 and type(v) == "string" then combined = v end
|
||||
end
|
||||
dirs[i] = combined
|
||||
end
|
||||
-- file names
|
||||
local file_format_count, after2 = M.read_uleb128_at(buf, up); up = after2
|
||||
local file_formats = {}
|
||||
for i = 1, file_format_count do
|
||||
local f, a2 = M.read_uleb128_at(buf, up); up = a2
|
||||
file_formats[i] = f
|
||||
end
|
||||
local file_count, a3 = M.read_uleb128_at(buf, up); up = a3
|
||||
local unit_basenames = {}
|
||||
local unit_paths = {}
|
||||
for i = 1, file_count do
|
||||
local combined = ""
|
||||
local didx = 0
|
||||
for j = 1, file_format_count do
|
||||
local v, a4 = read_form(buf, lstr_buf, up, file_formats[j])
|
||||
up = a4
|
||||
if j == 1 and type(v) == "string" then combined = v end
|
||||
if j == 2 and type(v) == "number" then didx = v end
|
||||
end
|
||||
local idx = #unit_basenames + 1
|
||||
local bs = combined:match("[^/\\]+$") or combined
|
||||
unit_paths[idx] = combined
|
||||
unit_basenames[idx] = bs
|
||||
if didx > 0 and dirs[didx] then
|
||||
unit_paths[idx] = dirs[didx] .. "/" .. combined
|
||||
end
|
||||
end
|
||||
return unit_basenames, unit_paths
|
||||
end
|
||||
|
||||
--- Walk every line-program unit in the section.
|
||||
local p = 0
|
||||
local section_end = #line
|
||||
while p + 4 <= section_end do
|
||||
local unit_length = M.read_u32_le(line, p)
|
||||
if unit_length == 0xFFFFFFFF then
|
||||
io.stderr:write("[elf_dwarf.read_line_unit_file_table] 64-bit DWARF (initial-length 0xFFFFFFFF); not supported\n")
|
||||
return nil
|
||||
end
|
||||
local body_start = p + 4
|
||||
local body_end = p + 4 + unit_length
|
||||
if body_end > section_end then break end
|
||||
local version = M.read_u16_le(line, body_start)
|
||||
local unit_basenames, unit_paths
|
||||
if version >= 5 then
|
||||
-- DWARF5 header: version(2) + addr_size(1) + seg_size(1) + header_length(4) + content
|
||||
local header_length_offset = body_start + 6 -- past version(2) + addr_size(1) + seg_size(1) - wait that's wrong; past hdr len is at +6
|
||||
local content_start = body_start + 8 -- past version(2) + addr_size(1) + seg_size(1) + header_length(4)
|
||||
unit_basenames, unit_paths = parse_dwarf5_unit(line, lstr, content_start, body_end)
|
||||
elseif version >= 2 then
|
||||
-- DWARF2/3/4 header: version(2) + header_length(4) + content
|
||||
local content_start = body_start + 6 -- past version(2) + header_length(4)
|
||||
unit_basenames, unit_paths = parse_dwarf3_unit(line, content_start, body_end)
|
||||
else
|
||||
io.stderr:write(string.format("[elf_dwarf.read_line_unit_file_table] unsupported DWARF version %d (offset 0x%x)\n", version, p))
|
||||
p = body_end
|
||||
goto continue
|
||||
end
|
||||
-- Per-unit 1-based file indices are aligned with `inv.call_file` values because the metaprogram emits `DW_LNS_set_file` with the per-unit index.
|
||||
-- When multiple units are present (crt0.s + C unit), the per-unit index in each unit matches the metaprogram's intent (gcc always sets file in unit-local terms).
|
||||
-- We therefore store directly without global re-indexing; the caller is responsible for knowing which unit the file-index applies to.
|
||||
-- For DWARF3 (C unit is the unit that matters for atom line tables), this matches.
|
||||
-- For DWARF5 (crt0.s + C unit), each carries its own per-unit file-table map;
|
||||
-- the atom-side DW_LNS_set_file(N) refers to the C unit's indices, NOT crt0.s's.
|
||||
-- Since the C unit is the one with full include_directories + 12 entries, we can use it directly.
|
||||
for idx, bs in pairs(unit_basenames) do
|
||||
basenames[idx] = bs
|
||||
paths[idx] = unit_paths[idx]
|
||||
basename_to_index[bs] = idx
|
||||
end
|
||||
p = body_end
|
||||
::continue::
|
||||
end
|
||||
|
||||
return basename_to_index, basenames, paths
|
||||
end
|
||||
|
||||
-- ════════════════════════════════════════════════════════════════════════════
|
||||
-- I/O helpers: atoms source-map + native directory glob
|
||||
-- ════════════════════════════════════════════════════════════════════════════
|
||||
|
||||
@@ -3,16 +3,16 @@
|
||||
# Wrapper for the tape-atom step-debug helpers.
|
||||
# The 9 user commands are defined here as STUBS (degraded-state messages).
|
||||
# The real implementations + the per-atom data tables are emitted by `passes/atoms_source_map.lua`
|
||||
# (post-link invocation: `ps1_meta.lua --atoms-source-map --gdb-runtime --elf <elf>`) into `build/gen/gdb_tape_atoms_runtime.gdb`.
|
||||
# (post-link invocation: `ps1_meta.lua --atoms-source-map --gdb-runtime --elf <elf>`) into `build/gdb_tape_atoms_runtime.gdb`.
|
||||
# Sourcing that file RE-DEFINES the commands with real implementations.
|
||||
#
|
||||
# If `build/gen/gdb_tape_atoms_runtime.gdb` is missing or stale, the stubs remain (E1: no source map).
|
||||
# If `build/gdb_tape_atoms_runtime.gdb` is missing or stale, the stubs remain (E1: no source map).
|
||||
# The user just needs to re-run `build_psyq.ps1` to regenerate.
|
||||
|
||||
# ── Stub commands (defined here so they're always present, even if the runtime file is missing). The runtime file overrides these if sourced. ──
|
||||
# ?? Stub commands (defined here so they're always present, even if the runtime file is missing). The runtime file overrides these if sourced. ??
|
||||
|
||||
define tape_atoms
|
||||
echo "[gdb_tape_atoms] STUB: runtime file build/gen/gdb_tape_atoms_runtime.gdb not found."
|
||||
echo "[gdb_tape_atoms] STUB: runtime file build/gdb_tape_atoms_runtime.gdb not found."
|
||||
echo "[gdb_tape_atoms] STUB: run .\\build_psyq.ps1 to regenerate, then re-source this file."
|
||||
end
|
||||
document tape_atoms
|
||||
@@ -21,35 +21,35 @@ document tape_atoms
|
||||
end
|
||||
|
||||
define break_atom
|
||||
echo "[gdb_tape_atoms] STUB: build/gen/gdb_tape_atoms_runtime.gdb not sourced. Run build_psyq.ps1."
|
||||
echo "[gdb_tape_atoms] STUB: build/gdb_tape_atoms_runtime.gdb not sourced. Run build_psyq.ps1."
|
||||
end
|
||||
document break_atom
|
||||
Set a breakpoint at the start of tape atom <name>. STUB state.
|
||||
end
|
||||
|
||||
define step_atom
|
||||
echo "[gdb_tape_atoms] STUB: build/gen/gdb_tape_atoms_runtime.gdb not sourced. Run build_psyq.ps1."
|
||||
echo "[gdb_tape_atoms] STUB: build/gdb_tape_atoms_runtime.gdb not sourced. Run build_psyq.ps1."
|
||||
end
|
||||
document step_atom
|
||||
Resume execution until the next atom boundary. STUB state.
|
||||
end
|
||||
|
||||
define next_atom
|
||||
echo "[gdb_tape_atoms] STUB: build/gen/gdb_tape_atoms_runtime.gdb not sourced. Run build_psyq.ps1."
|
||||
echo "[gdb_tape_atoms] STUB: build/gdb_tape_atoms_runtime.gdb not sourced. Run build_psyq.ps1."
|
||||
end
|
||||
document next_atom
|
||||
Alias for step_atom. STUB state.
|
||||
end
|
||||
|
||||
define where_in_atom
|
||||
echo "[gdb_tape_atoms] STUB: build/gen/gdb_tape_atoms_runtime.gdb not sourced. Run build_psyq.ps1."
|
||||
echo "[gdb_tape_atoms] STUB: build/gdb_tape_atoms_runtime.gdb not sourced. Run build_psyq.ps1."
|
||||
end
|
||||
document where_in_atom
|
||||
Report current atom name, .rodata addr, word offset, and source line (if known). STUB state.
|
||||
end
|
||||
|
||||
define stepi_inside_atom
|
||||
echo "[gdb_tape_atoms] STUB: build/gen/gdb_tape_atoms_runtime.gdb not sourced. Run build_psyq.ps1."
|
||||
echo "[gdb_tape_atoms] STUB: build/gdb_tape_atoms_runtime.gdb not sourced. Run build_psyq.ps1."
|
||||
end
|
||||
document stepi_inside_atom
|
||||
One MIPS-instruction step, then where_in_atom. STUB state.
|
||||
@@ -89,17 +89,17 @@ document wave_ctx
|
||||
end
|
||||
|
||||
|
||||
# ── Source the runtime file (re-defines commands with real impls + data). ──
|
||||
# ?? Source the runtime file (re-defines commands with real impls + data). ??
|
||||
|
||||
# Try to source from project-root-relative path first (the typical case).
|
||||
# If the user is in a different CWD, the source will fail and stubs remain.
|
||||
# The runtime file path is computed relative to the ELF's source map convention (build/gen/gdb_tape_atoms_runtime.gdb).
|
||||
# The runtime file path is computed relative to the ELF's source map convention (build/gdb_tape_atoms_runtime.gdb).
|
||||
echo [gdb_tape_atoms] Wrapper loaded. Sourcing runtime file...
|
||||
# Suppress the "Redefine command" prompts that would otherwise appear when the runtime file overrides the 9 stub commands defined above.
|
||||
# The runtime's `define` blocks are intended to overwrite — there's no ambiguity to confirm.
|
||||
# The runtime's `define` blocks are intended to overwrite ? there's no ambiguity to confirm.
|
||||
set confirm off
|
||||
|
||||
# Source the runtime file (re-defines commands with real impls + data).
|
||||
source build/gen/gdb_tape_atoms_runtime.gdb
|
||||
source build/gdb_tape_atoms_runtime.gdb
|
||||
set confirm on
|
||||
echo [gdb_tape_atoms] Runtime sourced successfully (9 commands now have real implementations).
|
||||
|
||||
@@ -7,18 +7,11 @@
|
||||
---
|
||||
--- Ownership: the canonical `ctx.shared.corpus` supplies cross-source registries, while each `src.scan` supplies its source's declarations and bodies.
|
||||
--- A context without `ctx.shared.corpus` is rejected with an explicit canonical-corpus message.
|
||||
---
|
||||
--- Writes `<ctx.out_root>/<dir_basename>.errors.h` once per module, with `#error` directives for findings that the C compile surfaces.
|
||||
--- `passes/report.lua` renders annotations.txt from `corpus.sources_by_dir`, re-validating each source through `M.validate()`.
|
||||
---
|
||||
--- **Conventions**: tabs (1/level), EmmyLua annotations, no regex, Lua 5.3 compatible.
|
||||
|
||||
-- Bootstrap follows the entry scripts; `scripts/duffle_paths.lua` sets package.path and package.cpath. See `ps1_meta.lua` for the rationale.
|
||||
-- `debug.getinfo(1, "S").source` locates this file for standalone and orchestrated runs, then `duffle_paths.lua` returns the loaded `duffle` module.
|
||||
local _bootstrap_dir = debug.getinfo(1, "S").source:match("^@?(.*[/\\])") or "./"
|
||||
local duffle = dofile(_bootstrap_dir .. "../duffle_paths.lua")
|
||||
local write_file = duffle.write_file
|
||||
local ensure_dir = duffle.ensure_dir
|
||||
|
||||
-- The annotation pass reads the source-derived registries from scan_source:
|
||||
-- * pipe_ctx.register_alias_registry — for atom_dbg_reg_default(R_X, ...) and atom_reg_types(R_X, ...) member-identity checks
|
||||
@@ -29,11 +22,11 @@ local ensure_dir = duffle.ensure_dir
|
||||
-- ════════════════════════════════════════════════════════════════════════════
|
||||
|
||||
--- @class SourceFile
|
||||
--- @field path string -- absolute path to the source file
|
||||
--- @field text string -- the full source text
|
||||
--- @field dir string -- the directory containing the source
|
||||
--- @field basename string -- filename without extension
|
||||
--- @field scan table -- pre-scanned SourceScan payload (from duffle.scan_source)
|
||||
--- @field path string -- Absolute path to the source file
|
||||
--- @field text string -- Full source text
|
||||
--- @field dir string -- Directory containing the source
|
||||
--- @field basename string -- Filename without extension
|
||||
--- @field scan table -- Pre-scanned SourceScan payload (from duffle.scan_source)
|
||||
|
||||
--- @class PassCtx
|
||||
--- @field sources SourceFile[]
|
||||
@@ -52,28 +45,28 @@ local ensure_dir = duffle.ensure_dir
|
||||
--- @field warnings table[]
|
||||
|
||||
--- @class AtomAnnotation
|
||||
--- @field line integer -- source line of the atom_info call
|
||||
--- @field macro string -- the macro name (always "atom_info" in the new shape)
|
||||
--- @field name string -- the atom name
|
||||
--- @field kind string -- always "info"
|
||||
--- @field line integer -- Source line of the atom_info call
|
||||
--- @field macro string -- Macro name (always "atom_info" in the new shape)
|
||||
--- @field name string -- Atom name
|
||||
--- @field kind string -- Always "info"
|
||||
--- @field binds string|nil -- Binds_X name if any
|
||||
--- @field reads string[] -- R_* names (read targets)
|
||||
--- @field writes string[] -- R_* names (write targets)
|
||||
--- @field errors string[]|nil -- parse-time errors from scan_source (atom_info body malformed)
|
||||
--- @field errors string[]|nil -- Parse-time errors from scan_source (atom_info body malformed)
|
||||
|
||||
--- @class DebugSkipMarker -- sub-shape of scan_source.lua's @class DebugSkipMarker
|
||||
--- @field marker_kind string -- exact marker ident read from source. Only "atom_dbg_skip" (bare) is positive.
|
||||
--- @class DebugSkipMarker -- Sub-shape of scan_source.lua's @class DebugSkipMarker
|
||||
--- @field marker_kind string -- Exact marker ident read from source. Only "atom_dbg_skip" (bare) is positive.
|
||||
--- @field marker_line integer
|
||||
--- @field args string|nil -- trimmed text inside the parens (nil when has_parens is false)
|
||||
--- @field args string|nil -- Trimmed text inside the parens (nil when has_parens is false)
|
||||
--- @field has_parens boolean
|
||||
--- @field is_bare boolean -- true iff marker_kind == "atom_dbg_skip" AND has_parens == false (the only positive form)
|
||||
--- @field pending boolean -- true while awaiting the following declaration
|
||||
--- @field superseded_by_marker_line integer|nil -- set on a marker that was bumped out of the pending slot
|
||||
--- @field superseded_by_marker_line integer|nil -- Set on a marker that was bumped out of the pending slot
|
||||
--- @field target_kind string|nil -- "atom" | "comp_bare" | "comp_proc" | "unrelated" once observed
|
||||
|
||||
--- @class Finding
|
||||
--- @field line integer -- source line (or 0 for pass-level)
|
||||
--- @field msg string -- finding message
|
||||
--- @field line integer -- Source line (or 0 for pass-level)
|
||||
--- @field msg string -- Finding message
|
||||
|
||||
--- @class Findings
|
||||
--- @field errors Finding[]
|
||||
@@ -81,14 +74,14 @@ local ensure_dir = duffle.ensure_dir
|
||||
--- @field info Finding[]
|
||||
|
||||
--- @class PipeCtx
|
||||
--- @field atom_index table<string, AtomAnnotation> -- name -> AtomAnnotation (only kind=="atom")
|
||||
--- @field binds_index table<string, BindsStruct> -- name -> BindsStruct
|
||||
--- @field annot_counts table<string, integer> -- name -> annotation count (for unique_annotation check)
|
||||
--- @field types table<string, RegTypeDefault> -- from scan_source
|
||||
--- @field atom_views table<string, AtomViewEntry> -- from scan_source
|
||||
--- @field seen_defaults table<string, integer> -- duplicate atom_dbg_reg_default detection
|
||||
--- @field atom_index table<string, AtomAnnotation> -- Name -> AtomAnnotation (only kind=="atom")
|
||||
--- @field binds_index table<string, BindsStruct> -- Name -> BindsStruct
|
||||
--- @field annot_counts table<string, integer> -- Name -> annotation count (for unique_annotation check)
|
||||
--- @field types table<string, RegTypeDefault> -- From scan_source
|
||||
--- @field atom_views table<string, AtomViewEntry> -- From scan_source
|
||||
--- @field seen_defaults table<string, integer> -- Duplicate atom_dbg_reg_default detection
|
||||
--- @field seen_field table<string, integer> -- Binds_* -> count of fields (set/checked by check_binds_no_duplicate_fields)
|
||||
--- @field _scan SourceScan -- full scan payload (typed-view sub-calls live here)
|
||||
--- @field _scan SourceScan -- Full scan payload (typed-view sub-calls live here)
|
||||
|
||||
--- @class AnnotatedResult
|
||||
--- @field atoms AtomEntry[]
|
||||
@@ -102,11 +95,10 @@ local ensure_dir = duffle.ensure_dir
|
||||
-- ════════════════════════════════════════════════════════════════════════════
|
||||
-- Per-check functions (the CHECK_RULES table's payload)
|
||||
-- ════════════════════════════════════════════════════════════════════════════
|
||||
--
|
||||
--- The dispatcher in `validate()` routes each result by convention: existence checks write errors[] and shape checks write warnings[].
|
||||
--- `macro_word_drift` writes errors[] for missing or mismatched metadata and info[] for a match.
|
||||
|
||||
--- Check: every annotated atom must have a matching MipsAtom_(name) declaration.
|
||||
--- Check: Every annotated atom must have a matching MipsAtom_(name) declaration.
|
||||
--- @param a AtomAnnotation
|
||||
--- @param pipe_ctx PipeCtx
|
||||
--- @param findings Findings
|
||||
@@ -119,8 +111,8 @@ local function check_atom_decl_exists(a, pipe_ctx, findings)
|
||||
end
|
||||
end
|
||||
|
||||
--- Check: every atom may have AT MOST ONE annotation.
|
||||
--- Post-loop: needs full-corpus `annot_counts` from pipe_ctx.
|
||||
--- Check: Every atom may have AT MOST ONE annotation.
|
||||
--- Post-loop: Needs full-corpus `annot_counts` from pipe_ctx.
|
||||
--- @param pipe_ctx PipeCtx
|
||||
--- @param findings Findings
|
||||
local function check_unique_annotation(pipe_ctx, findings)
|
||||
@@ -153,7 +145,7 @@ end
|
||||
--- Check: TAPE_WORDS(mac_X, N) ↔ WORD_COUNT(mac_X, N) drift.
|
||||
--- Three outcomes: missing (error), mismatch (error), match (info).
|
||||
--- @param m MacroEntry
|
||||
--- @param wc table<string, integer> -- the shared word-count table (from ctx.shared.word_counts)
|
||||
--- @param wc table<string, integer> -- Shared word-count table (from ctx.shared.word_counts)
|
||||
--- @param findings Findings
|
||||
local function check_macro_word_drift(m, wc, findings)
|
||||
local declared = wc[m.name]
|
||||
@@ -311,7 +303,7 @@ local function check_binds_no_duplicate_fields(_src, pipe_ctx, findings)
|
||||
end
|
||||
end
|
||||
|
||||
-- Check: debug-skip markers must satisfy shape + placement constraints.
|
||||
-- Check: Debug-skip markers must satisfy shape + placement constraints.
|
||||
--- Walks the priority list once; each marker produces at most one error, so one source defect yields one finding.
|
||||
--- Priority order (first defect wins):
|
||||
--- 1. marker_kind ~= "atom_dbg_skip" -> legacy/renamed spelling (use `atom_dbg_skip`)
|
||||
@@ -322,12 +314,11 @@ end
|
||||
--- 6. unsupported target_kind -> marker precedes an unrelated declaration
|
||||
--- Valid markers stamp `debug_skip` on whole-atom, bare-component, and proc-component declaration records in scan_source.lua.
|
||||
--- @param marker DebugSkipMarker
|
||||
--- @param _pipe_ctx PipeCtx -- unused today; kept for plex-shape consistency with per_annot
|
||||
--- @param _pipe_ctx PipeCtx -- Unused; kept for consistency with per_annot // TODO(Ed): Remove?
|
||||
--- @param findings Findings
|
||||
local function check_skip_marker(marker, _pipe_ctx, findings)
|
||||
local kind = marker.marker_kind
|
||||
local line = marker.marker_line
|
||||
|
||||
-- Left `scan.debug_skip_markers` with production records for `atom_dbg_skip` only; other identifiers take the walker's unrelated branch.
|
||||
|
||||
if marker.has_parens then
|
||||
@@ -378,8 +369,6 @@ local function check_skip_marker(marker, _pipe_ctx, findings)
|
||||
end
|
||||
|
||||
--- Warn when a source references an unregistered alias.
|
||||
---
|
||||
--- R_TapePtr, R_AtomJmp, R_PrimCursor, R_FaceCursor, R_VertBase, and R_OtBase opt in through `#define atom_reg` in lottes_tape.h.
|
||||
--- When a source uses an unregistered R_X, this check emits one pass-level info entry for that source and directs C-ABI register names to explicit alias registration.
|
||||
--- @param _src SourceFile
|
||||
--- @param pipe_ctx PipeCtx
|
||||
@@ -433,8 +422,7 @@ local CHECK_RULES = {
|
||||
-- ════════════════════════════════════════════════════════════════════════════
|
||||
-- Validation
|
||||
-- ════════════════════════════════════════════════════════════════════════════
|
||||
--
|
||||
-- Pure check: read from src.scan, run validations, emit findings. The scan was done once upstream.
|
||||
-- Pure check: Read from src.scan, run validations, emit findings. The scan was done once upstream.
|
||||
|
||||
--- Builds one pass-wide pipe_ctx from the merged `corpus.*` registries and source-ordered `corpus.atom_infos`; per-source declarations and bodies remain in `src.scan`.
|
||||
--- The module ownership contract above requires callers to construct `ctx.shared.corpus` through `build_ctx`; the error message below enforces that gate.
|
||||
@@ -480,7 +468,7 @@ end
|
||||
--- Validate one source against its pre-scanned SourceScan payload + the corpus-wide pipe_ctx.
|
||||
--- @param ctx PassCtx
|
||||
--- @param src SourceFile
|
||||
--- @param corpus_pipe_ctx PipeCtx|nil -- built once per pass from corpus registries; nil builds the same projection here.
|
||||
--- @param corpus_pipe_ctx PipeCtx|nil -- Built once per pass from corpus registries; nil builds the same projection here.
|
||||
--- @return AnnotatedResult
|
||||
local function validate(ctx, src, corpus_pipe_ctx)
|
||||
corpus_pipe_ctx = corpus_pipe_ctx or build_corpus_pipe_ctx(ctx)
|
||||
@@ -510,14 +498,8 @@ local function validate(ctx, src, corpus_pipe_ctx)
|
||||
end
|
||||
|
||||
-- Build a per-source pipe_ctx: shared lookups come from `corpus_pipe_ctx`, while declarations, bodies, types, views, defaults, and occurrences come from `src.scan`.
|
||||
local seen_defaults = {}
|
||||
for reg, _ in pairs(scan.types or {}) do
|
||||
seen_defaults[reg] = (seen_defaults[reg] or 0) + 1
|
||||
end
|
||||
local atom_infos_list = {}
|
||||
for _, ai in ipairs(scan.atom_infos or {}) do
|
||||
atom_infos_list[#atom_infos_list + 1] = ai
|
||||
end
|
||||
local seen_defaults = {}; for reg, _ in pairs (scan.types or {}) do seen_defaults[reg] = (seen_defaults[reg] or 0) + 1 end
|
||||
local atom_infos_list = {}; for _, ai in ipairs(scan.atom_infos or {}) do atom_infos_list[#atom_infos_list + 1] = ai end
|
||||
|
||||
local pipe_ctx = {
|
||||
atom_index = {},
|
||||
@@ -605,40 +587,6 @@ local function validate(ctx, src, corpus_pipe_ctx)
|
||||
}
|
||||
end
|
||||
|
||||
-- ════════════════════════════════════════════════════════════════════════════
|
||||
-- Per-DIRECTORY (per-module) output: errors.h + annotations.txt
|
||||
-- ════════════════════════════════════════════════════════════════════════════
|
||||
|
||||
--- Render `<dir_basename>.errors.h` with `#error` directives for every error found across all sources in the directory.
|
||||
--- Empty directories (no errors, no atoms) produce no file.
|
||||
local function emit_module_errors_h(ctx, dir_basename, atoms_count, errors, sources)
|
||||
if atoms_count == 0 and #errors == 0 then
|
||||
return nil
|
||||
end
|
||||
local out_path = ctx.out_root .. "/" .. dir_basename .. ".errors.h"
|
||||
local lines = {
|
||||
"// Auto-generated by ps1_meta.lua (passes/annotation.lua) — DO NOT EDIT",
|
||||
string.format("// Module: %s Sources: %d", dir_basename, #sources),
|
||||
"#pragma once",
|
||||
"",
|
||||
}
|
||||
if #errors == 0 then
|
||||
lines[#lines + 1] = "// annotation pass OK"
|
||||
else
|
||||
for _, e in ipairs(errors) do
|
||||
local src_tag = ""
|
||||
if e.source then
|
||||
local src_name = e.source:match("([^/\\]+)$") or e.source
|
||||
src_tag = src_name .. ": "
|
||||
end
|
||||
lines[#lines + 1] = string.format('#error "%s%s (line %d)"', src_tag, e.msg, e.line)
|
||||
end
|
||||
end
|
||||
ensure_dir(ctx.out_root)
|
||||
write_file(out_path, table.concat(lines, "\n") .. "\n")
|
||||
return out_path
|
||||
end
|
||||
|
||||
-- ════════════════════════════════════════════════════════════════════════════
|
||||
-- M.run — orchestrator entry
|
||||
-- ════════════════════════════════════════════════════════════════════════════
|
||||
@@ -683,11 +631,6 @@ function M.run(ctx)
|
||||
warnings [#warnings + 1] = { line = w.line, msg = w.msg }
|
||||
end
|
||||
end
|
||||
|
||||
local err_path = emit_module_errors_h(ctx, dir_basename, dir_atoms, dir_errors, dir_sources)
|
||||
if err_path then
|
||||
table.insert(outputs, { errors_h = err_path })
|
||||
end
|
||||
end
|
||||
|
||||
return { outputs = outputs, errors = errors, warnings = warnings }
|
||||
|
||||
@@ -1,23 +1,21 @@
|
||||
--- passes/atoms_source_map.lua — Per-.word source-line map emitter for tape atoms.
|
||||
---
|
||||
--- Writer: this pass, given `atom.paths` (the per-atom mutable surface owned by `emission_model`). Readers:
|
||||
--- `passes/dwarf_injection.lua` (synthesizes DW_TAG_inlined_subroutine + per-word line program rows) and the gdb-runtime
|
||||
--- wrapper at `scripts/gdb/gdb_tape_atoms.gdb` (loads the source map via `source <path>`).
|
||||
--- `passes/dwarf_injection.lua` (synthesizes DW_TAG_inlined_subroutine + per-word line program rows) and
|
||||
--- the gdb-runtime wrapper at `scripts/gdb/gdb_tape_atoms.gdb` (loads the source map via `source <path>`).
|
||||
---
|
||||
--- Inputs from `atom.paths`: the ordered `items` stream, dense `word_events`, `invocations` views. Outputs: one
|
||||
--- `WORD N LINE L TEXT T` line per emitted `.word`, plus the per-word provenance form that DWARF synthesis consumes.
|
||||
--- Inputs from `atom.paths`: the ordered `items` stream, dense `word_events`, `invocations` views. Outputs:
|
||||
--- one `WORD N LINE L TEXT T` line per emitted `.word`, plus the per-word provenance form that DWARF synthesis consumes.
|
||||
---
|
||||
--- **Two output forms** (per the workspace's per-emission-form pattern from `guide_metaprogram_ssdl.md`):
|
||||
--- 1. **Sourcemap.txt form** — `<out_root>/<basename>.atoms.sourcemap.txt`. Format-version-tagged for forward-compat.
|
||||
--- Lives in `<out_root>/` (build/gen). Mirrors the convention used by `annotation.lua`
|
||||
--- (`<out_root>/<basename>.errors.h`) and `static_analysis.lua` (`<out_root>/<basename>.static_analysis.txt`).
|
||||
--- Two output forms:
|
||||
--- 1. Markdown form: Handled by `passes/report.lua` (writes `<module>.atoms.md`).
|
||||
--- The render functions `render_source_map` + `render_provenance` are exported for `report.lua` to call directly.
|
||||
--- Compile artifacts (`*.macs.h`, `*.offsets.h`) stay in `<source_dir>/gen/`.
|
||||
--- 2. **gdb-runtime form** — `<ctx.out_root>/gdb_tape_atoms_runtime.gdb`. A pure gdb command script — addresses come
|
||||
--- from `nm`, the 9 user commands are static `define ... end` blocks. Emitted when `ctx.flags.gdb_runtime` is true
|
||||
--- AND `ctx.flags.elf_path` points to an existing ELF. Useful for `gdb-multiarch --without-python` users
|
||||
--- (the common case on Windows MinGW builds) — `source <path>` loads it with no Python / Tcl / Guile required.
|
||||
--- 2. `gdb_tape_atoms_runtime.gdb`: Post-link opt-in (`ctx.flags.gdb_runtime`),
|
||||
--- so the gdb wrapper script + the generated runtime script share the same canonical location.
|
||||
--- Triggered by `--post-link` or `--gdb-runtime`.
|
||||
---
|
||||
--- **Output format** (sourcemap.txt form):
|
||||
--- Output forma (sourcemap.txt form):
|
||||
--- ```
|
||||
--- # FORMAT_VERSION 1
|
||||
--- # auto-generated by ps1_meta.lua (passes/atoms_source_map.lua) — DO NOT EDIT
|
||||
@@ -30,10 +28,7 @@
|
||||
--- ...
|
||||
--- ENDATOM
|
||||
--- ```
|
||||
---
|
||||
--- Marker records are zero-width in `atom.paths.items`, so they emit no WORD rows in the dense word view.
|
||||
---
|
||||
--- **Conventions:** tabs (1/level), EmmyLua annotations, no regex, Lua 5.3 compatible.
|
||||
|
||||
-- ════════════════════════════════════════════════════════════════════════════
|
||||
-- Module-scope requires + package.path setup
|
||||
@@ -99,8 +94,8 @@ end
|
||||
--- Render one atom's provenance stanza. Format 1 line shapes:
|
||||
--- `WORD N CALL <src-path>:<src-line> MACRO <name> "<def-path>:<def-line>" BODY <line>` (component invocation)
|
||||
--- `WORD N CALL <src-path>:<src-line> RAW` (raw `.word` outside any mac_* component)
|
||||
--- Component identity comes from the outermost invocation record; the count-table lookup confirms the component was
|
||||
--- declared in `corpus.word_counts` (populated by word_count_eval + components passes).
|
||||
--- Component identity comes from the outermost invocation record; the count-table lookup confirms the component was declared in `corpus.word_counts`
|
||||
--- (populated by word_count_eval + components passes).
|
||||
--- @param src table
|
||||
--- @param atom table
|
||||
--- @param wc table -- identity alias of corpus.word_counts
|
||||
@@ -109,20 +104,17 @@ local function emit_provenance_stanza(src, atom, wc)
|
||||
local lines = {}
|
||||
local rel_path = src.path:gsub("\\\\", "/")
|
||||
local entries, total = canonical_word_entries(atom)
|
||||
|
||||
lines[#lines + 1] = string.format('ATOM %s "%s" 0', atom.raw_name or atom.name, rel_path)
|
||||
|
||||
for _, entry in ipairs(entries) do
|
||||
local inv = entry.invocation
|
||||
local macro_count = inv and wc["mac_" .. inv.component_name]
|
||||
if inv and macro_count ~= nil then
|
||||
lines[#lines + 1] = string.format(
|
||||
'WORD %d CALL %s:%d MACRO %s "%s:%d" BODY %d',
|
||||
entry.pos, rel_path, entry.line, inv.component_name,
|
||||
inv.def_path or "", inv.def_line or 0, entry.body_line)
|
||||
lines[#lines + 1] = string.format('WORD %d CALL %s:%d MACRO %s "%s:%d" BODY %d'
|
||||
, entry.pos, rel_path, entry.line, inv.component_name
|
||||
, inv.def_path or "", inv.def_line or 0, entry.body_line)
|
||||
else
|
||||
lines[#lines + 1] = string.format(
|
||||
"WORD %d CALL %s:%d RAW", entry.pos, rel_path, entry.line)
|
||||
lines[#lines + 1] = string.format("WORD %d CALL %s:%d RAW", entry.pos, rel_path, entry.line)
|
||||
end
|
||||
end
|
||||
|
||||
@@ -252,9 +244,10 @@ local function build_atom_table(ctx)
|
||||
return matched
|
||||
end
|
||||
|
||||
--- Append the 9 gdb command definitions to `lines`. Pure gdb scripting — addresses come from `nm`, the convenience
|
||||
--- vars set in `emit_gdb_runtime` provide printf args, and each command is a static sequence of `printf` / `tbreak` /
|
||||
--- `if ... end` blocks. The Lua pass emits N atoms' worth of lines; runtime iteration is gdb's job.
|
||||
--- Append the 9 gdb command definitions to `lines`. Pure gdb scripting — addresses come from `nm`,
|
||||
--- the convenience vars set in `emit_gdb_runtime` provide printf args, and
|
||||
--- each command is a static sequence of `printf` / `tbreak` / `if ... end` blocks.
|
||||
--- The Lua pass emits N atoms' worth of lines; runtime iteration is gdb's job.
|
||||
---
|
||||
--- Why hardcoded per-atom: gdb's `$` substitution doesn't concat inside var names — `$__atom_name_$__i` in a `while`
|
||||
--- loop resolves to one literal identifier, not `name_i`. Compile-time emission is the only path.
|
||||
@@ -399,8 +392,7 @@ local function append_gdb_commands(lines, matched)
|
||||
end
|
||||
|
||||
--- Emit the gdb-runtime file (post-link). Pure gdb scripting — addresses come from `mipsel-none-elf-nm -S`, get embedded
|
||||
--- in `<ctx.out_root>/gdb_tape_atoms_runtime.gdb`, and load via `set $var = ...` + `define ... end` blocks at gdb
|
||||
--- source-time.
|
||||
--- in `<ctx.out_root>/gdb_tape_atoms_runtime.gdb`, and load via `set $var = ...` + `define ... end` blocks at gdb source-time.
|
||||
--- @param ctx PassCtx
|
||||
local function emit_gdb_runtime(ctx)
|
||||
if not (ctx.flags and ctx.flags.gdb_runtime) then return end
|
||||
@@ -458,7 +450,22 @@ local function emit_gdb_runtime(ctx)
|
||||
-- Confirmation line for the source operator.
|
||||
lines[#lines + 1] = 'printf "[gdb_tape_atoms] runtime loaded %d atoms from %s\\n", $__atom_count, $__elf_path'
|
||||
|
||||
local out_path = ctx.out_root .. "/gdb_tape_atoms_runtime.gdb"
|
||||
local out_path
|
||||
-- Move out of `<out_root>/gdb_tape_atoms_runtime.gdb` to `<out_root>/../gdb_tape_atoms_runtime.gdb` when the conventional `<out_root>` is `<build>/gen`
|
||||
-- (any equivalent spelling — relative, absolute backslash, absolute forward-slash, trailing-separator variants).
|
||||
-- This puts the gdb runtime alongside the ELF at `build/` rather than under the report subdir.
|
||||
local function ends_with_gen_dir(p)
|
||||
if type(p) ~= "string" then return false end
|
||||
return p:match("[/\\]gen[/\\]?$") ~= nil or p == "build/gen" or p == "build\\gen"
|
||||
end
|
||||
if ends_with_gen_dir(ctx.out_root) then
|
||||
-- Strip the trailing `/gen` segment, then write the runtime script under `build/`.
|
||||
-- e.g. "C:/projects/Pikuma/ps1/build/gen" -> "C:/projects/Pikuma/ps1/build".
|
||||
local parent = ctx.out_root:gsub("[/\\]gen[/\\]?$", "")
|
||||
out_path = parent .. "/gdb_tape_atoms_runtime.gdb"
|
||||
else
|
||||
out_path = ctx.out_root .. "/gdb_tape_atoms_runtime.gdb"
|
||||
end
|
||||
duffle.ensure_dir(duffle.dirname(out_path))
|
||||
duffle.write_file_lf(out_path, table.concat(lines, "\n") .. "\n")
|
||||
-- io.stderr:write(string.format("[atoms_source_map] wrote %s (%d atoms)\n", out_path, #matched))
|
||||
@@ -470,10 +477,62 @@ end
|
||||
|
||||
local M = {}
|
||||
|
||||
--- Pass entry. For each source that declares at least one `MipsAtom_(name)` / `MipsCode code_<name>`, emit two files
|
||||
--- in `<out_root>/`: `<basename>.atoms.sourcemap.txt` (per-word call-site map) and `<basename>.atoms.provenance.txt`
|
||||
--- (per-word definition + body line, resolved via the outermost `mac_X(...)` invocation). When `ctx.flags.gdb_runtime`
|
||||
--- is true and `ctx.flags.elf_path` exists, also emit the post-link gdb script `<ctx.out_root>/gdb_tape_atoms_runtime.gdb`.
|
||||
-- Expose the pure render functions so `report.lua` and the focused tests can call them directly without triggering the file-emit path.
|
||||
M.render_source_map = render_source_map
|
||||
M.render_provenance = render_provenance
|
||||
|
||||
--- Render ONE atom's sourcemap stanza.
|
||||
--- @param atom table -- atom record (must have `atom.paths` populated)
|
||||
--- @return string
|
||||
function M.render_atom_source_map(atom)
|
||||
assert(type(atom) == "table", "render_atom_source_map: atom must be a table")
|
||||
assert(type(atom.paths) == "table", "render_atom_source_map: atom.paths must be a table")
|
||||
local entries, total = canonical_word_entries(atom)
|
||||
local lines = {}
|
||||
lines[#lines + 1] = string.format("ATOM %s %d", (atom.raw_name or atom.name), total)
|
||||
for _, entry in ipairs(entries) do
|
||||
lines[#lines + 1] = string.format("WORD %d LINE %d TEXT %s",
|
||||
entry.pos, entry.line, entry.text)
|
||||
end
|
||||
lines[#lines + 1] = "ENDATOM"
|
||||
return table.concat(lines, "\n") .. "\n"
|
||||
end
|
||||
|
||||
--- Render ONE atom's provenance stanza — no per-file format header, no enumeration of other atoms.
|
||||
---
|
||||
--- `rel_path` is the source path (forward-slashes) embedded in every `CALL` line.
|
||||
--- The .md caller (report.lua) is expected to derive this once per `## <source>` heading and pass it down for each atom in that source.
|
||||
--- @param atom table -- atom record (must have `atom.paths` populated)
|
||||
--- @param wc table -- identity alias of `corpus.word_counts`
|
||||
--- @param rel_path string -- source path (forward-slashes) for `CALL` fields
|
||||
--- @return string
|
||||
function M.render_atom_provenance(atom, wc, rel_path)
|
||||
assert(type(atom) == "table", "render_atom_provenance: atom must be a table")
|
||||
assert(type(atom.paths) == "table", "render_atom_provenance: atom.paths must be a table")
|
||||
assert(type(rel_path) == "string", "render_atom_provenance: rel_path must be a string")
|
||||
local entries, total = canonical_word_entries(atom)
|
||||
local lines = {}
|
||||
lines[#lines + 1] = string.format("ATOM %s %d", (atom.raw_name or atom.name), total)
|
||||
for _, entry in ipairs(entries) do
|
||||
local inv = entry.invocation
|
||||
local macro_count = inv and wc and wc["mac_" .. inv.component_name]
|
||||
if inv and macro_count ~= nil then
|
||||
lines[#lines + 1] = string.format(
|
||||
'WORD %d CALL %s:%d MACRO %s "%s:%d" BODY %d',
|
||||
entry.pos, rel_path, entry.line, inv.component_name,
|
||||
inv.def_path or "", inv.def_line or 0, entry.body_line)
|
||||
else
|
||||
lines[#lines + 1] = string.format(
|
||||
"WORD %d CALL %s:%d RAW", entry.pos, rel_path, entry.line)
|
||||
end
|
||||
end
|
||||
return table.concat(lines, "\n") .. "\n"
|
||||
end
|
||||
|
||||
--- Pass entry. For each source that declares at least one `MipsAtom_(name)` / `MipsCode code_<name>`,
|
||||
--- emit two files in `<out_root>/`: `<basename>.atoms.sourcemap.txt` (per-word call-site map) and `<basename>.atoms.provenance.txt`
|
||||
--- (per-word definition + body line, resolved via the outermost `mac_X(...)` invocation).
|
||||
--- When `ctx.flags.gdb_runtime` is true and `ctx.flags.elf_path` exists, also emit the post-link gdb script `<ctx.out_root>/gdb_tape_atoms_runtime.gdb`.
|
||||
--- @param ctx PassCtx
|
||||
--- @return PassResult
|
||||
function M.run(ctx)
|
||||
@@ -495,34 +554,8 @@ function M.run(ctx)
|
||||
}
|
||||
end
|
||||
|
||||
-- Always emit the text form (per-source).
|
||||
for _, src in ipairs(corpus.source_order) do
|
||||
local has_projection = false
|
||||
for _, atom in ipairs((src.scan or {}).atoms or {}) do
|
||||
if (atom.kind == "atom" or atom.kind == "raw_atom") and atom.paths then
|
||||
has_projection = true; break
|
||||
end
|
||||
end
|
||||
if not has_projection then
|
||||
for _, atom in ipairs((src.scan or {}).raw_atoms or {}) do
|
||||
if atom.paths then has_projection = true; break end
|
||||
end
|
||||
end
|
||||
if has_projection then
|
||||
local basename = duffle.basename_no_ext(src.path)
|
||||
-- (1) atoms.sourcemap.txt — format-1 per-word call-site map.
|
||||
local sourcemap_path = ctx.out_root .. "/" .. basename .. ".atoms.sourcemap.txt"
|
||||
local sourcemap_body = render_source_map(src)
|
||||
-- (2) atoms.provenance.txt — format-1 per-word definition/body map.
|
||||
local prov_path = ctx.out_root .. "/" .. basename .. ".atoms.provenance.txt"
|
||||
local prov_body = render_provenance(src, wc)
|
||||
duffle.ensure_dir(duffle.dirname(sourcemap_path))
|
||||
duffle.write_file_lf(sourcemap_path, sourcemap_body)
|
||||
duffle.write_file_lf(prov_path, prov_body)
|
||||
outputs[#outputs + 1] = { kind = "report", path = sourcemap_path }
|
||||
outputs[#outputs + 1] = { kind = "report", path = prov_path }
|
||||
end
|
||||
end
|
||||
-- atoms.sourcemap.txt + atoms.provenance.txt content moved to report.lua via `<module>.atoms.md` markdown file.
|
||||
-- This pass emits only the post-link gdb_runtime artifact (see emit_gdb_runtime below).
|
||||
|
||||
-- Optionally emit the gdb-runtime form (post-link, one file per build).
|
||||
if ctx.flags and ctx.flags.gdb_runtime then
|
||||
|
||||
+198
-61
@@ -4,12 +4,11 @@
|
||||
--- Scanner owns `declaration_comment` and `debug_skip` on each declaration record; this pass projects both forward.
|
||||
---
|
||||
--- Reads the pre-scanned SourceScan payload from `duffle.scan_source` for `MipsAtomComp_(ac_X)` and `MipsAtomComp_Proc_(ac_X, { body })` declarations,
|
||||
--- then resolves the function-args string from the preceding `FI_ MipsAtom ac_X(...)` declaration via a backward walk.
|
||||
--- then resolves the function-args string from the preceding `FI_ Slice_MipsCode ac_X(...)` declaration via a backward walk.
|
||||
---
|
||||
--- Emits one `<dir_basename>.macs.h` per source with `#define mac_X(sig) \` macros plus `WORD_COUNT(mac_X, N)` entries for downstream offset computation.
|
||||
---
|
||||
--- **Conventions**: tabs (1/level), EmmyLua annotations, no regex,
|
||||
--- Lua 5.3 compatible.
|
||||
--- Emits one `gen/macs.h` per *immediate source directory* with `#define mac_X(sig) \` macros plus `WORD_COUNT(mac_X, N)` entries for downstream offset computation.
|
||||
--- All sources inside the same directory contribute to the same file (per-directory aggregation).
|
||||
--- The directory itself is the namespace, so the filename does not repeat the module name.
|
||||
|
||||
-- ════════════════════════════════════════════════════════════════════════════
|
||||
-- Module-scope requires + package.path setup
|
||||
@@ -29,7 +28,7 @@ local duffle = dofile(_bootstrap_dir .. "../duffle_paths.lua")
|
||||
|
||||
-- Atom component declaration identifiers.
|
||||
local ATOM_COMP_PROC = "MipsAtomComp_Proc_"
|
||||
local MIPS_ATOM = "MipsAtom" -- prefix on the function declaration that wraps an AtomComp_Proc_
|
||||
local MIPS_ATOM = "Slice_MipsCode" -- prefix on the function declaration that wraps an AtomComp_Proc_
|
||||
|
||||
-- Component-name prefixes.
|
||||
local AC_PREFIX = "ac_" -- arg to MipsAtomComp_(ac_X); the X is the atom name
|
||||
@@ -41,29 +40,30 @@ local MAC_PREFIX_LEN = 4
|
||||
local BYTE_NEWLINE = 10
|
||||
local BYTE_SLASH = 47
|
||||
|
||||
-- Source dir basename used as the output `.macs.h` filename.
|
||||
-- Output gen subdirectory + filename (per-directory aggregation; the directory name is the namespace).
|
||||
local GEN_SUBDIR = "gen"
|
||||
local MACS_FILENAME = "macs.h"
|
||||
|
||||
-- ════════════════════════════════════════════════════════════════════════════
|
||||
-- Type declarations
|
||||
-- ════════════════════════════════════════════════════════════════════════════
|
||||
|
||||
--- @class SourceFile
|
||||
--- @field path string -- absolute path to the source file
|
||||
--- @field text string -- the full source text
|
||||
--- @field dir string -- the directory containing the source
|
||||
--- @field basename string -- filename without extension
|
||||
--- @field scan table -- pre-scanned SourceScan payload (from duffle.scan_source)
|
||||
--- @field path string -- Absolute path to the source file
|
||||
--- @field text string -- Full source text
|
||||
--- @field dir string -- Directory containing the source
|
||||
--- @field basename string -- Filename without extension
|
||||
--- @field scan table -- Pre-scanned SourceScan payload (from duffle.scan_source)
|
||||
|
||||
--- @class PassCtx
|
||||
--- @field sources SourceFile[] -- all source files in the build
|
||||
--- @field metadata_path string -- path to word_count.metadata.h
|
||||
--- @field shared table -- cross-pass shared state
|
||||
--- @field out_root string -- output root (e.g. "build/gen")
|
||||
--- @field project_root string -- project root (e.g. "code/")
|
||||
--- @field upstream table<string, table> -- per-pass upstream outputs
|
||||
--- @field sources SourceFile[] -- All source files in the build
|
||||
--- @field metadata_path string -- Path to word_count.metadata.h
|
||||
--- @field shared table -- Cross-pass shared state
|
||||
--- @field out_root string -- Output root (e.g. "build/gen")
|
||||
--- @field project_root string -- Project root (e.g. "code/")
|
||||
--- @field upstream table<string, table> -- Per-pass upstream outputs
|
||||
--- @field flags table -- CLI flags
|
||||
--- @field verbose boolean -- log diagnostic info
|
||||
--- @field verbose boolean -- Log diagnostic info
|
||||
|
||||
--- @class PassResult
|
||||
--- @field outputs table[] -- {kind=, path=} entries describing emit files
|
||||
@@ -71,13 +71,13 @@ local GEN_SUBDIR = "gen"
|
||||
--- @field warnings table[] -- {line=, msg=} entries; build-succeeds
|
||||
|
||||
--- @class Component
|
||||
--- @field name string -- atom name (without `ac_` prefix)
|
||||
--- @field body string -- brace-delimited body (without the braces)
|
||||
--- @field args string|nil -- function-args string (function form only)
|
||||
--- @field line integer -- source line of the declaration
|
||||
--- @field comment string|nil -- scanner-owned `declaration_comment`; the components pass reads it from the scanner record
|
||||
--- @field name string -- Atom name (without `ac_` prefix)
|
||||
--- @field body string -- Brace-delimited body (without the braces)
|
||||
--- @field args string|nil -- Function-args string (function form only)
|
||||
--- @field line integer -- Source line of the declaration
|
||||
--- @field comment string|nil -- Scanner-owned `declaration_comment`; the components pass reads it from the scanner record
|
||||
--- @field kind string -- "comp_bare" | "comp_proc"
|
||||
--- @field debug_skip boolean -- mirror of `a.debug_skip` (scanner-owned); true iff a bare `atom_dbg_skip` marker immediately preceded the declaration
|
||||
--- @field debug_skip boolean -- Mirror of `a.debug_skip` (scanner-owned); true iff a bare `atom_dbg_skip` marker immediately preceded the declaration
|
||||
|
||||
-- ════════════════════════════════════════════════════════════════════════════
|
||||
-- Local helpers (file I/O + path normalization)
|
||||
@@ -97,9 +97,9 @@ local M = {}
|
||||
--- Returns the args string (e.g., `"U4 off, U4 code, U1 r, U1 g, U1 b"`) or nil if no function declaration is found.
|
||||
---
|
||||
--- Convention: function form is
|
||||
--- `FI_ MipsAtom ac_X(args) MipsAtomComp_Proc_(ac_X, { body })`
|
||||
--- `FI_ Slice_MipsCode ac_X(args) MipsAtomComp_Proc_(ac_X, { body })`
|
||||
--- We find the LAST occurrence of `"ac_X("` before `before_pos` and extract the args from inside the parens.
|
||||
--- We then verify the preceding context ends with `MipsAtom`
|
||||
--- We then verify the preceding context ends with `Slice_MipsCode`
|
||||
--- (the function-decl keyword with possible qualifiers between).
|
||||
---
|
||||
--- @param source string
|
||||
@@ -231,7 +231,6 @@ end
|
||||
--
|
||||
-- Skips `//` sequences that are inside string or character literals
|
||||
-- (a rough heuristic — sufficient for component bodies which don't have those constructs).
|
||||
--
|
||||
--- @param s string
|
||||
--- @return string
|
||||
local function convert_line_comments_to_block(s)
|
||||
@@ -339,6 +338,116 @@ local function count_all_components(components, wc)
|
||||
return counts
|
||||
end
|
||||
|
||||
-- ═══════════════════════════════════════════
|
||||
-- Per-component metadata derivation (replaces the hardcoded `M.GP0_MACRO_CONTRIB` + `M.INSTRUCTION_LATENCY[mac_*]` tables that previously lived in `duffle.lua`).
|
||||
--
|
||||
-- Each `MipsAtomComp_(ac_X) { body }` definition in `code/duffle/lottes_tape.h` is the canonical source.
|
||||
-- The `mac_X(...)` macros are GENERATED from these definitions by `emit_component_macros_h` for tape-side composition;
|
||||
-- the metaprogram must NEVER walk the generated variants to derive metadata.
|
||||
-- Always walk the original `MipsAtomComp_` body via `cc.body_tokens`.
|
||||
-- ═══════════════════════════════════════════
|
||||
|
||||
--- (internal) Recursive cycle-cost derivation. Sum `latency[ident]` per emitted instruction in the component body,
|
||||
--- recursing through nested `mac_*` calls (so `mac_format_g4_color`'s cost = 4 × `mac_pack_color_word`'s cost).
|
||||
--- Special rule: `mac_yield`'s cost = 0 (per `lottes_tape.h:125-130` "the runtime cost lands in the next atom's prologue").
|
||||
--- @param name string -- component bare name (e.g. "yield", "pack_color_word")
|
||||
--- @param comp_by_name table<string, Component>
|
||||
--- @param latency table<string, integer>
|
||||
--- @param cache table<string, integer> -- shared memoization; `-1` sentinel detects cycles
|
||||
--- @return integer
|
||||
local function cycle_cost_rec(name, comp_by_name, latency, cache)
|
||||
if cache[name] ~= nil then return cache[name] end
|
||||
cache[name] = -1
|
||||
local cc = comp_by_name[name]
|
||||
local n
|
||||
if cc then
|
||||
if name == "yield" then
|
||||
-- mac_yield's cost is 0 by convention (the runtime cost lands in the next atom's prologue).
|
||||
n = 0
|
||||
else
|
||||
n = 0
|
||||
local tokens = cc.body_tokens
|
||||
for _, t in ipairs(tokens) do
|
||||
local trimmed = t.tok
|
||||
if trimmed ~= "" then
|
||||
local ident = duffle.read_ident(trimmed, 1)
|
||||
if ident and ident:sub(1, MAC_PREFIX_LEN) == MAC_PREFIX then
|
||||
-- Nested `mac_X(...)` call: recurse.
|
||||
local nested = ident:sub(MAC_PREFIX_LEN + 1)
|
||||
n = n + cycle_cost_rec(nested, comp_by_name, latency, cache)
|
||||
else
|
||||
-- Leaf instruction or pseudo-macro. Look up in INSTRUCTION_LATENCY; default 1.
|
||||
n = n + (latency[ident] or 1)
|
||||
end
|
||||
end
|
||||
end
|
||||
end
|
||||
else
|
||||
n = 1
|
||||
end
|
||||
cache[name] = n
|
||||
return n
|
||||
end
|
||||
|
||||
--- (internal) Recursive GP0 prim-buffer contribution. Count `store_word` / `store_half` / `store_byte`
|
||||
--- calls in the component body that target `R_PrimCursor` (these are the
|
||||
--- RAM-side prim-buffer words the macro contributes), recursing through nested `mac_*` calls.
|
||||
--- Only `R_PrimCursor`-targeting stores count. Stores targeting other registers (e.g. `R_OtBase`, heap pointers) are not prim-buffer contributions.
|
||||
--- @param name string
|
||||
--- @param comp_by_name table<string, Component>
|
||||
--- @param cache table<string, integer>
|
||||
--- @return integer
|
||||
local function gp0_contrib_rec(name, comp_by_name, cache)
|
||||
if cache[name] ~= nil then return cache[name] end
|
||||
cache[name] = -1
|
||||
local cc = comp_by_name[name]
|
||||
local n
|
||||
if cc then
|
||||
n = 0
|
||||
local tokens = cc.body_tokens
|
||||
for _, t in ipairs(tokens) do
|
||||
local trimmed = t.tok
|
||||
if trimmed ~= "" then
|
||||
local ident = duffle.read_ident(trimmed, 1)
|
||||
if ident and ident:sub(1, MAC_PREFIX_LEN) == MAC_PREFIX then
|
||||
-- Nested `mac_X(...)` call: recurse.
|
||||
local nested = ident:sub(MAC_PREFIX_LEN + 1)
|
||||
n = n + gp0_contrib_rec(nested, comp_by_name, cache)
|
||||
elseif ident == "store_word" or ident == "store_half" or ident == "store_byte" then
|
||||
if trimmed:find("R_PrimCursor", 1, true) then
|
||||
n = n + 1
|
||||
end
|
||||
end
|
||||
end
|
||||
end
|
||||
else
|
||||
n = 0
|
||||
end
|
||||
cache[name] = n
|
||||
return n
|
||||
end
|
||||
|
||||
--- Compute `cycle_cost` + `gp0_contrib` for every component in `components` in a single pass.
|
||||
--- Memoization cache is built ONCE (per source) and shared across both helpers so that
|
||||
--- a nested `mac_Y` reference inside a `mac_X` body computes its values once.
|
||||
--- @param components Component[]
|
||||
--- @param latency table<string, integer>
|
||||
--- @return table<string, {cycle_cost=integer, gp0_contrib=integer}>
|
||||
local function compute_components_metadata(components, latency)
|
||||
local comp_by_name = {}
|
||||
for _, cc in ipairs(components) do comp_by_name[cc.name] = cc end
|
||||
local cc_cache = {}
|
||||
local gc_cache = {}
|
||||
local out = {}
|
||||
for _, c in ipairs(components) do
|
||||
out[c.name] = {
|
||||
cycle_cost = cycle_cost_rec(c.name, comp_by_name, latency, cc_cache),
|
||||
gp0_contrib = gp0_contrib_rec(c.name, comp_by_name, gc_cache),
|
||||
}
|
||||
end
|
||||
return out
|
||||
end
|
||||
|
||||
-- ════════════════════════════════════════════════════════════════════════════
|
||||
-- Per-component emit logic
|
||||
-- ════════════════════════════════════════════════════════════════════════════
|
||||
@@ -445,9 +554,15 @@ end
|
||||
|
||||
--- Build the boilerplate header lines (the `#ifdef INTELLISENSE_DIRECTIVES` block,
|
||||
--- the `// Auto-generated` comment, the `// Source:` line, and the self-contained `WORD_COUNT` macro definition).
|
||||
--- @param src SourceFile
|
||||
--- @param dir string -- the absolute source directory
|
||||
--- @param sources SourceFile[] -- sources contributing to this directory (for the header comment)
|
||||
--- @return string[]
|
||||
local function header_boilerplate(src)
|
||||
local function header_boilerplate(dir, sources)
|
||||
local source_lines = { "// Directory: " .. duffle.to_absolute_path(dir) .. "/" }
|
||||
for _, src in ipairs(sources) do
|
||||
source_lines[#source_lines + 1] = "// source: " .. duffle.to_absolute_path(src.path)
|
||||
end
|
||||
local source_blob = table.concat(source_lines, "\n")
|
||||
return {
|
||||
-- #pragma once wrapped in #ifdef INTELLISENSE_DIRECTIVES, matching the convention in lottes_tape.h.
|
||||
-- The build does manual unity includes (the user controls include order), so the pragma is only active for IDE/tooling.
|
||||
@@ -455,7 +570,7 @@ local function header_boilerplate(src)
|
||||
"#pragma once",
|
||||
"#endif",
|
||||
"// Auto-generated by ps1_meta.lua — DO NOT EDIT",
|
||||
"// Source: " .. duffle.to_absolute_path(src.path),
|
||||
source_blob,
|
||||
"// Component atoms (MipsAtomComp_(ac_*)) -> macro variants (mac_*)",
|
||||
"",
|
||||
-- Self-contained: define WORD_COUNT if not already defined.
|
||||
@@ -468,30 +583,30 @@ local function header_boilerplate(src)
|
||||
}
|
||||
end
|
||||
|
||||
--- Compute the output path for one source's `.macs.h` file.
|
||||
--- The pre-rework convention uses the *directory* basename (not the source file basename)
|
||||
--- e.g. `code/duffle/lottes_tape.h` produces `code/duffle/gen/duffle.macs.h`.
|
||||
--- This matches what the C codebase #includes.
|
||||
--- @param src SourceFile
|
||||
--- Compute the per-directory output path for `.macs.h`.
|
||||
--- e.g. any source in `code/duffle/` produces `code/duffle/gen/macs.h` regardless of source filename.
|
||||
--- The directory name is the namespace; the filename does not repeat it.
|
||||
--- @param dir string -- the absolute source directory
|
||||
--- @return string -- the output directory
|
||||
--- @return string -- the full output path
|
||||
local function compute_macs_h_path(src)
|
||||
local out_dir = src.dir .. "/" .. GEN_SUBDIR
|
||||
local out_path = out_dir .. "/" .. duffle.basename_no_ext(src.dir) .. ".macs.h"
|
||||
local function compute_macs_h_path(dir)
|
||||
local out_dir = dir .. "/" .. GEN_SUBDIR
|
||||
local out_path = out_dir .. "/" .. MACS_FILENAME
|
||||
return out_dir, out_path
|
||||
end
|
||||
|
||||
--- Emit a per-source `.macs.h` header with the `mac_X` macros + `WORD_COUNT` entries.
|
||||
--- Emit a per-directory `.macs.h` header with the aggregated `mac_X` macros + `WORD_COUNT` entries.
|
||||
--- Writes in BINARY mode so LF line endings are preserved (the git blob is LF; Windows text-mode would emit CRLF and break the byte-identical diff).
|
||||
--- @param ctx PassCtx
|
||||
--- @param src SourceFile
|
||||
--- @param components Component[]
|
||||
--- @param dir string -- the absolute source directory
|
||||
--- @param sources SourceFile[] -- sources contributing to this directory (for the header comment)
|
||||
--- @param components Component[] -- aggregated components from all sources in this directory
|
||||
--- @param counts table<string, integer> -- precomputed word counts (from count_all_components)
|
||||
--- @return string|nil -- path to the written file (nil if no components)
|
||||
local function emit_component_macros_h(ctx, src, components, counts)
|
||||
local function emit_component_macros_h(ctx, dir, sources, components, counts)
|
||||
if #components == 0 then return nil end
|
||||
local out_dir, out_path = compute_macs_h_path(src)
|
||||
local lines = header_boilerplate(src)
|
||||
local out_dir, out_path = compute_macs_h_path(dir)
|
||||
local lines = header_boilerplate(dir, sources)
|
||||
|
||||
for _, c in ipairs(components) do
|
||||
for _, l in ipairs(build_component_lines(c, counts)) do
|
||||
@@ -534,18 +649,20 @@ end
|
||||
|
||||
--- (internal) Populate `corpus.components` with this source's components-by-name map.
|
||||
--- First declaration wins; later declarations of the same bare name are dropped and recorded as a collision via `corpus.collisions` (kind = "component").
|
||||
--- The pass does NOT write to `ctx.shared.components` (ownership follows the canonical contract).
|
||||
--- The `debug_skip` field mirrors the scanner-owned declaration record (`c.debug_skip`).
|
||||
--- The pass does NOT write to `ctx.shared.components`.
|
||||
--- No parallel skip map is built here; consumers that need the per-component skip state read `corpus.components[name].debug_skip` directly.
|
||||
--- The `cycle_cost` + `gp0_contrib` fields are populated from `metadata[c.name]` (computed by `compute_components_metadata` against the original `MipsAtomComp_` body).
|
||||
--- @param corpus table -- the corpus
|
||||
--- @param src SourceFile
|
||||
--- @param components Component[]
|
||||
local function update_canonical_components(corpus, src, components)
|
||||
--- @param metadata table<string, {cycle_cost=integer, gp0_contrib=integer}>
|
||||
local function update_canonical_components(corpus, src, components, metadata)
|
||||
local rel_path = src.path:gsub("\\", "/")
|
||||
for _, c in ipairs(components) do
|
||||
-- Keyed by bare name (e.g. `yield`, `load_tri_indices`).
|
||||
-- The atoms_source_map pass looks up components by bare name from the corpus;
|
||||
-- `mac_` prefix lives at the call-site identifier and is stripped before lookup.
|
||||
local m = metadata and metadata[c.name] or nil
|
||||
if corpus.components[c.name] == nil then
|
||||
corpus.components[c.name] = {
|
||||
name = c.name,
|
||||
@@ -553,6 +670,8 @@ local function update_canonical_components(corpus, src, components)
|
||||
path = rel_path,
|
||||
kind = c.kind or "comp_bare",
|
||||
debug_skip = c.debug_skip == true,
|
||||
cycle_cost = m and m.cycle_cost or nil,
|
||||
gp0_contrib = m and m.gp0_contrib or nil,
|
||||
}
|
||||
else
|
||||
-- A second declaration of the same bare name: record a typed collision so static-analysis + the report can surface it.
|
||||
@@ -624,21 +743,39 @@ function M.run(ctx)
|
||||
-- * `corpus.component_body_index[name]` — body / line_of / source index
|
||||
-- The pass writes to the corpus only; consumers read from the corpus directly.
|
||||
|
||||
for _, src in ipairs(corpus.source_order) do
|
||||
-- project_components reads from src.scan + does backward lookups on src.text
|
||||
local components = project_components(src.text, src.scan)
|
||||
if #components > 0 then
|
||||
-- Compute all component word counts once per source.
|
||||
-- Use `corpus.word_counts` so the recursive lookup sees both authored-metadata entries
|
||||
-- (loaded by word_count_eval.run) AND same-source component entries (populated earlier in this loop by `update_canonical_word_counts`).
|
||||
local counts = count_all_components(components, corpus.word_counts)
|
||||
local macs_path = emit_component_macros_h(ctx, src, components, counts)
|
||||
-- Per-directory aggregation: every source in the same directory contributes to one `gen/macs.h`.
|
||||
-- The directory itself is the namespace. `corpus.sources_by_dir` preserves source-order within each bucket (matches `corpus.source_order`).
|
||||
local sources_by_dir = corpus.sources_by_dir or duffle.group_sources_by_dir(corpus.source_order)
|
||||
for dir, sources in pairs(sources_by_dir) do
|
||||
-- Aggregate components from every source in this directory.
|
||||
-- `project_components` returns nil for sources with no `MipsAtomComp_` declarations; we skip those.
|
||||
local aggregated_components = {}
|
||||
local metadata_per_source = {}
|
||||
for _, src in ipairs(sources) do
|
||||
local per_source = project_components(src.text, src.scan) or {}
|
||||
for _, c in ipairs(per_source) do
|
||||
aggregated_components[#aggregated_components + 1] = c
|
||||
end
|
||||
if #per_source > 0 then
|
||||
metadata_per_source[src] = compute_components_metadata(per_source, duffle.INSTRUCTION_LATENCY)
|
||||
end
|
||||
end
|
||||
if #aggregated_components > 0 then
|
||||
-- Compute word counts across the aggregated set. `corpus.word_counts` carries the
|
||||
-- same-source + prior-directory entries so the recursive lookup sees both.
|
||||
local counts = count_all_components(aggregated_components, corpus.word_counts)
|
||||
local macs_path = emit_component_macros_h(ctx, dir, sources, aggregated_components, counts)
|
||||
if macs_path then
|
||||
outputs[#outputs + 1] = { macs_h = macs_path }
|
||||
-- Populate the projections AFTER disk emission (so the byte-identical `.macs.h` contract is preserved before any current-count mutation).
|
||||
update_canonical_word_counts(corpus, components, counts)
|
||||
update_canonical_components(corpus, src, components)
|
||||
update_canonical_component_body_index(corpus, src, components, src.scan)
|
||||
-- Populate the projections AFTER disk emission (byte-identical `.macs.h` contract).
|
||||
update_canonical_word_counts(corpus, aggregated_components, counts)
|
||||
for _, src in ipairs(sources) do
|
||||
local per_source = project_components(src.text, src.scan) or {}
|
||||
if #per_source > 0 then
|
||||
update_canonical_components(corpus, src, per_source, metadata_per_source[src])
|
||||
update_canonical_component_body_index(corpus, src, per_source, src.scan)
|
||||
end
|
||||
end
|
||||
end
|
||||
end
|
||||
end
|
||||
|
||||
+137
-102
@@ -71,9 +71,11 @@ local DW_LNE_set_address = DWARF_LINE_OPS.DW_LNE_set_address
|
||||
local DW_RLE_end_of_list = DWARF5_RNGLISTS.end_of_list
|
||||
local DW_RLE_start_length = DWARF5_RNGLISTS.start_length
|
||||
|
||||
-- File index 11 in the existing main line unit is hello_gte_tape.c.
|
||||
-- The injector extends that unit rather than appending an unreferenced unit.
|
||||
local ATOM_SOURCE_FILE_INDEX = 11
|
||||
-- File-index lookup for the existing main line unit (Unit 2).
|
||||
-- Populated at pass start by `init_file_index_lookup(elf_path)` from the runtime ELF (see `elf_dwarf.read_line_unit_file_table`).
|
||||
local _file_index_by_basename = nil -- [basename] = 1-based line-table file index
|
||||
local _file_path_by_index = nil -- [1-based index] = full source path (diagnostics / future consumers)
|
||||
local _default_atom_source_index = nil -- any valid index used in opaque-row fallbacks
|
||||
|
||||
-- RR_<R_Name> debug-visible variables come from the merged register_alias_registry filtered to aliases whose code is a valid MIPS GPR 0..31
|
||||
-- (see collect_per_source_registries + by_alias in build_inserted_children).
|
||||
@@ -98,9 +100,8 @@ local ABBREV_INLINED_SUBROUTINE = 0x6C -- 108: DW_TAG_inlined_subroutine with
|
||||
-- (each field transitions from tape memory to GPR at load_pc + 8 = MIPS I load-delay slot boundary).
|
||||
local ABBREV_BIND_VAR_LOCLIST = 0x6D -- 109: DW_TAG_variable no children + DW_AT_type = ref4 + DW_AT_location = sec_offset
|
||||
-- Typed-view pointer_type (for the synthetic V4_S2* / V3_S2* / U4* / void* chains).
|
||||
-- MUST be a fresh abbrev code in the appended table — emitting uleb128(9) collides with GCC's
|
||||
-- existing abbrev 9 (a pointer_type that carries DW_AT_byte_size + DW_AT_type), so gdb misparses
|
||||
-- our 4-byte ref4 as (byte_size, type[0..2]) and lands the cursor mid-attribute.
|
||||
-- MUST be a fresh abbrev code in the appended table — emitting uleb128(9) collides with GCC's existing abbrev 9
|
||||
-- (a pointer_type that carries DW_AT_byte_size + DW_AT_type), so gdb misparses our 4-byte ref4 as (byte_size, type[0..2]) and lands the cursor mid-attribute.
|
||||
local ABBREV_TYPED_VIEW_POINTER = 0x6E -- 110: DW_TAG_pointer_type no children + DW_AT_type = ref4 (typed-view / U4 / void chain)
|
||||
|
||||
-- DWARF5 §7.7.3 loclist opcodes.
|
||||
@@ -153,44 +154,66 @@ local DW_AT_inline = 0x20 -- DWARF5 §7.7.1: DW_AT_inline (used by a
|
||||
local DW_AT_decl_file = 0x3A -- DWARF5 §7.7.1: DW_AT_decl_file (1-based file index into the CU's file table)
|
||||
local DW_AT_decl_line = 0x3B -- DWARF5 §7.7.1: DW_AT_decl_line
|
||||
|
||||
-- File index lookup table for the existing main line unit (Unit 2).
|
||||
-- Provenance paths come back with mixed slashes; we normalize to basename and look up against the line unit's actual file table.
|
||||
-- Current scope has two provenance basenames: hello_gte_tape.c (the atom's call site) and lottes_tape.h (the component definition).
|
||||
-- Both live in the existing gcc-generated line unit; their 1-based indices are stable across rebuilds because the include order
|
||||
-- in code/gte_hello/hello_gte.c determines the unit's file table.
|
||||
-- gcc only adds a file to the line table when it has actual line-number entries;
|
||||
-- headers that are pure macros/typedefs (dsl.h, memory.h, math.h, mips.h, gp.h, gte.h, etc.) never appear.
|
||||
-- lottes_tape.h is the FIRST include that emits line entries (MipsAtomComp_ declarations), so it is the FIRST entry after the primary file.
|
||||
local PROVENANCE_BASENAME_TO_FILE_INDEX = {
|
||||
["hello_gte_tape.c"] = ATOM_SOURCE_FILE_INDEX, -- = 11
|
||||
["lottes_tape.h"] = 2,
|
||||
}
|
||||
-- Replaced the hardcoded `ATOM_SOURCE_FILE_INDEX = 11` and the `PROVENANCE_BASENAME_TO_FILE_INDEX` table below with a runtime lookup
|
||||
-- (`init_file_index_lookup` + `resolve_provenance_file_index`) that reads the actual `.debug_line` file table from the post-link ELF.
|
||||
|
||||
--- Populate the module-level file-index lookup table from the `.debug_line` section of the post-link ELF pointed at by `elf_path`.
|
||||
--- This MUST be called exactly once at pass start (from `M.run`) before any `resolve_provenance_file_index` invocation;
|
||||
--- downstream callers handle a nil table as "no file info available; fall back to errors".
|
||||
---
|
||||
--- The lookup uses `elf_dwarf.read_line_unit_file_table` (which parses both DWARF3 and DWARF5 line-program units —
|
||||
--- the crt0.s assembler-side DWARF5 unit may emit non-standard form codes for paths and is intentionally skipped).
|
||||
--- @param elf_path string|nil
|
||||
local function init_file_index_lookup(elf_path)
|
||||
if not elf_path or elf_path == "" then return end
|
||||
local b2i, _basenames, paths = elf_dwarf.read_line_unit_file_table(elf_path)
|
||||
if type(b2i) ~= "table" or type(paths) ~= "table" then
|
||||
io.stderr:write("[dwarf_injection] read_line_unit_file_table returned no file table for: " .. tostring(elf_path) .. "\n")
|
||||
return
|
||||
end
|
||||
_file_index_by_basename = b2i
|
||||
_file_path_by_index = paths
|
||||
-- Pick any valid index for the opaque-row fallbacks at lines 466 + 570
|
||||
-- (both sites legitimately want "any file index"; gdb resolves whatever index we emit to whatever that file's line happens to be).
|
||||
for idx in pairs(paths) do
|
||||
_default_atom_source_index = idx
|
||||
break
|
||||
end
|
||||
end
|
||||
|
||||
--- Resolve an absolute provenance path to the line-unit file index used by the emitting line program.
|
||||
--- Normalizes mixed `/` and `\` separators to a basename and looks it up against the known file table.
|
||||
--- Normalizes mixed `/` and `\` separators to a basename and looks it up against the runtime-computed file table populated by `init_file_index_lookup`.
|
||||
---
|
||||
--- Fails loudly on an unknown provenance basename: adding a new component source file requires extending
|
||||
--- `PROVENANCE_BASENAME_TO_FILE_INDEX` so the line-program emission contract stays explicit.
|
||||
--- Silent fallback to ATOM_SOURCE_FILE_INDEX would mask the new-file case by misattributing component rows to the atom's source file.
|
||||
--- @param path string -- absolute provenance path (e.g. "C:/.../lottes_thttps://www.youtube.com/watch?v=ORM4yLkdKx8ape.h" or "C:\\...\\lottes_tape.h")
|
||||
--- @return integer -- 1-based line-unit file index
|
||||
--- Returns 0 (the DWARF `set_file(0)` "no file change" sentinel) when the basename is not in the file table.
|
||||
--- This is a normal occurrence: the compiler only adds a file to the `.debug_line` file table when the file has line-numbered content (i.e., code).
|
||||
--- Files containing only static-array data (e.g. `MipsAtomComp_` declarations in `gp.atom.c`, `psyq.atom.c`, `pad.atom.c` — the OT-tag inserts, etc.) produce no line numbers,
|
||||
--- so gcc omits them from the file table.
|
||||
--- The DWARF emitter then keeps the previous line-program file state instead of pointing at a file that has no entries to walk.
|
||||
--- A stderr warning is emitted per-miss so the user can audit which files the compiler dropped.
|
||||
--- @param path string -- absolute provenance path (mixed slashes accepted)
|
||||
--- @return integer -- 1-based line-unit file index, or 0 on miss (DWARF no-change sentinel)
|
||||
local function resolve_provenance_file_index(path)
|
||||
if _file_index_by_basename == nil then
|
||||
error("[dwarf_injection] resolve_provenance_file_index called before init_file_index_lookup. Is M.run being entered correctly (with --elf)?")
|
||||
end
|
||||
if path == nil or path == "" then
|
||||
error("[dwarf_injection] resolve_provenance_file_index: empty path")
|
||||
end
|
||||
-- Normalize backslashes → forward slashes (paths arrive with mixed separators from the provenance file: forward slashes from Lua's io.lines;
|
||||
-- backslashes if the input ever round-trips through Windows shell expansion).
|
||||
-- Normalize backslashes → forward slashes (paths arrive with mixed separators from the provenance file).
|
||||
local normalized = path:gsub("\\", "/")
|
||||
-- Take the last path component (the basename).
|
||||
local basename = normalized:match("([^/]+)$") or normalized
|
||||
local idx = PROVENANCE_BASENAME_TO_FILE_INDEX[basename]
|
||||
if idx == nil then
|
||||
error(string.format(
|
||||
"[dwarf_injection] resolve_provenance_file_index: unknown provenance basename '%s' (from '%s'). "
|
||||
.. "Extend PROVENANCE_BASENAME_TO_FILE_INDEX in passes/dwarf_injection.lua.",
|
||||
basename, path))
|
||||
local idx = _file_index_by_basename[basename]
|
||||
if idx ~= nil then return idx end
|
||||
-- Last-resort exact-path match (handles paths that don't reduce to a known basename).
|
||||
for i, p in pairs(_file_path_by_index) do
|
||||
if p and p:gsub("\\", "/") == normalized then return i end
|
||||
end
|
||||
return idx
|
||||
-- File is in the corpus but gcc omitted it from the .debug_line file table (data-only content).
|
||||
-- Return 0 = DWARF `set_file(0)` no-change sentinel so the line program keeps its prior file state.
|
||||
io.stderr:write(string.format("[dwarf_injection] line-table miss: '%s' (basename '%s') not in .debug_line file table; "
|
||||
.. "falling back to set_file(0)\n", path, basename))
|
||||
return 0
|
||||
end
|
||||
|
||||
local DW_FORM_addr = 0x01
|
||||
@@ -205,7 +228,6 @@ local DW_FORM_sec_offset = 0x17 -- 4-byte section-relative offset (into .d
|
||||
|
||||
-- DW_OP_reg0 + DW_OP_piece are declared above (lines 114-116) alongside the other DWARF5 §7.7.3 loclist opcodes.
|
||||
|
||||
|
||||
local DW_ATE_unsigned = 0x07 -- DWARF5 §7.8.1: DW_ATE_unsigned (used for U4 base type)
|
||||
|
||||
-- (DW_LANG_Mips_Assembler = 0x8001 was used in the, but we want this CU to look like a C TU so VSCode's Variables pane treats it as code.)
|
||||
@@ -461,7 +483,7 @@ local function build_atom_sequence(atom)
|
||||
if atom.debug_skip then
|
||||
return table.concat({
|
||||
set_address(atom.addr),
|
||||
set_file(ATOM_SOURCE_FILE_INDEX),
|
||||
set_file(resolve_provenance_file_index(atom.src_path)),
|
||||
advance_line(atom.entries[1].line - 1),
|
||||
negate_stmt(),
|
||||
copy_op(),
|
||||
@@ -508,10 +530,9 @@ local function build_atom_sequence(atom)
|
||||
-- * If the invocation's body has any NESTED invocations (parent_id == top_inv.id), the body's
|
||||
-- first content is the call_line of the earliest nested invocation (by start_pos).
|
||||
-- * Otherwise (only RAW words in the body), it's the line of the first raw word = body_lines[1].
|
||||
-- This is the value the multi-row PC's body_lines[1] row must reference for source-order display:
|
||||
-- `anc.body_lines[1]` is the line of the FIRST WORD (which for an outer whose body starts with a
|
||||
-- nested expansion is inside the inner's expansion = wrong for display purposes); `anc.body_first_line`
|
||||
-- is the body's first content line in the parent's source (= correct for display).
|
||||
-- This is the value the multi-row PC's body_lines[1] row must reference for source-order display: `anc.body_lines[1]` is the line of the FIRST WORD
|
||||
-- (which for an outer whose body starts with a nested expansion is inside the inner's expansion = wrong for display purposes);
|
||||
-- `anc.body_first_line` is the body's first content line in the parent's source (= correct for display).
|
||||
local body_first_line_of = {}
|
||||
for _, top_inv in ipairs(invs) do
|
||||
local earliest_nested_call_line = nil
|
||||
@@ -565,7 +586,7 @@ local function build_atom_sequence(atom)
|
||||
parts[#parts + 1] = copy_op()
|
||||
end
|
||||
|
||||
local call_file_idx = ATOM_SOURCE_FILE_INDEX
|
||||
local call_file_idx = resolve_provenance_file_index(atom.src_path)
|
||||
|
||||
-- --- Atom entry (idx 1) -------------------------------------------------
|
||||
local entry_1 = atom.entries[1]
|
||||
@@ -574,13 +595,11 @@ local function build_atom_sequence(atom)
|
||||
-- If atom entry 1 starts inside an invocation, walk the ancestry and emit a call-site row + (when applicable)
|
||||
-- a body_lines[1] row for every active ancestor. For a non-nested invocation this is just the one pair;
|
||||
-- for nested invocations this emits the outer call-site + body_lines[1] rows BEFORE the inner pair so the debugger displays
|
||||
-- the outer body line at the inner's first word
|
||||
-- (PROBLEM B fix).
|
||||
-- the outer body line at the inner's first word (PROBLEM B fix).
|
||||
--
|
||||
-- A marked OUTERMOST ancestor's body_lines[1] row is suppressed at this PC (the existing full-skip
|
||||
-- contract is preserved for the marked outer range); its call-site row IS still emitted as a
|
||||
-- statement. Marked INNER ancestors always emit their body_lines[1] row with is_stmt=false
|
||||
-- (the per-invocation `want_body = not inv.debug_skip` predicate).
|
||||
-- A marked OUTERMOST ancestor's body_lines[1] row is suppressed at this PC (the existing full-skip contract is preserved for the marked outer range);
|
||||
-- Its call-site row IS still emitted as a statement.
|
||||
-- Marked INNER ancestors always emit their body_lines[1] row with is_stmt=false (the per-invocation `want_body = not inv.debug_skip` predicate).
|
||||
if #entry_1_ancestry == 0 then
|
||||
-- RAW word at atom entry: single call-site row, always a statement target.
|
||||
emit_row(call_file_idx, entry_1.line, true)
|
||||
@@ -588,15 +607,12 @@ local function build_atom_sequence(atom)
|
||||
-- Atom starts in an invocation. Walk the ancestry outermost-first.
|
||||
-- Each ancestor emits one call-site row (statement) and one body_lines[1] row
|
||||
-- (statement iff unmarked; suppressed for marked outermost).
|
||||
-- The body_lines[1] row references body_first_line_of[anc.id] (= the body's first content
|
||||
-- line in the parent's source), NOT anc.body_lines[1] (= the line of the first WORD,
|
||||
-- which is wrong when the outer's body starts with a nested call).
|
||||
-- The body_lines[1] row references body_first_line_of[anc.id] (= the body's first content line in the parent's source),
|
||||
-- NOT anc.body_lines[1] (= the line of the first WORD, which is wrong when the outer's body starts with a nested call).
|
||||
for ai, anc in ipairs(entry_1_ancestry) do
|
||||
assert(anc.body_lines, "missing body_lines: emitter did not run emission-model")
|
||||
assert(anc.body_lines[1] ~= nil
|
||||
, "dwarf_injection: body_lines[1] missing on first-word entry for inv=" .. tostring(anc.component_name))
|
||||
assert(anc.call_path and anc.call_path ~= ""
|
||||
, "dwarf_injection: inv.call_path is missing on invocation " .. tostring(anc.component_name) .. "; emitter did not run emission-model.")
|
||||
assert(anc.body_lines[1] ~= nil, "dwarf_injection: body_lines[1] missing on first-word entry for inv=" .. tostring(anc.component_name))
|
||||
assert(anc.call_path and anc.call_path ~= "", "dwarf_injection: inv.call_path is missing on invocation " .. tostring(anc.component_name) .. "; emitter did not run emission-model.")
|
||||
emit_row(resolve_provenance_file_index(anc.call_path), anc.call_line, true)
|
||||
local is_outermost = (ai == 1)
|
||||
if not (is_outermost and anc.debug_skip) then
|
||||
@@ -615,28 +631,22 @@ local function build_atom_sequence(atom)
|
||||
|
||||
if inv and idx == inv.start_pos + 1 then
|
||||
-- First word of the innermost active invocation (PROBLEM B fix — nested-display rule).
|
||||
-- Walk the active ancestry outermost-first; for each ancestor emit a call-site row
|
||||
-- (statement) + a body_lines[1] row. The inner-most invocation's call-site + body pair
|
||||
-- become the LAST two rows in the sequence. Marked outermost ancestors suppress their
|
||||
-- body_lines[1] row at this PC (the existing full-skip contract is preserved for the
|
||||
-- marked outer range); all OTHER ancestors emit body_lines[1] with is_stmt = not debug_skip.
|
||||
-- Walk the active ancestry outermost-first; for each ancestor emit a call-site row (statement) + a body_lines[1] row.
|
||||
-- The inner-most invocation's call-site + body pair become the LAST two rows in the sequence.
|
||||
-- Marked outermost ancestors suppress their body_lines[1] row at this PC (the existing full-skip contract is preserved for the marked outer range);
|
||||
-- all OTHER ancestors emit body_lines[1] with is_stmt = not debug_skip.
|
||||
--
|
||||
-- This re-emits the outer ancestor's call-site + body rows at the inner's first word PC
|
||||
-- for debugger context: source-level stepping now shows the outer body line (not the
|
||||
-- inner body line) when stepping into the inner. PROBLEM B fix.
|
||||
-- The body_lines[1] row references body_first_line_of[anc.id] (= the body's first content
|
||||
-- line in the parent's source), NOT anc.body_lines[1] (= the line of the first WORD,
|
||||
-- which is wrong when the outer's body starts with a nested call: gdb 12.1 picks the
|
||||
-- displayed line as the LAST row at the same PC in byte-stream order, so the disc=1 row's
|
||||
-- value matters for what's shown when stepping into the nested case).
|
||||
-- for debugger context: source-level stepping now shows the outer body line (not the inner body line) when stepping into the inner. PROBLEM B fix.
|
||||
-- The body_lines[1] row references body_first_line_of[anc.id] (= the body's first content line in the parent's source),
|
||||
-- NOT anc.body_lines[1] (= the line of the first WORD, which is wrong when the outer's body starts with a nested call:
|
||||
-- gdb 12.1 picks the displayed line as the LAST row at the same PC in byte-stream order,
|
||||
-- so the disc=1 row's value matters for what's shown when stepping into the nested case).
|
||||
local ancestry = ancestry_idx[idx]
|
||||
for ai, anc in ipairs(ancestry) do
|
||||
assert(anc.body_lines, "missing body_lines: emitter did not run emission-model")
|
||||
assert(anc.body_lines[1] ~= nil
|
||||
, string.format("missing body_lines[1] for inv=%s start_pos=%d len=%d",
|
||||
anc.component_name, anc.start_pos, #(anc.body_lines or {})))
|
||||
assert(anc.call_path and anc.call_path ~= ""
|
||||
, "dwarf_injection: inv.call_path is missing on invocation " .. tostring(anc.component_name) .. "; emitter did not run emission-model.")
|
||||
assert(anc.body_lines[1] ~= nil, string.format("missing body_lines[1] for inv=%s start_pos=%d len=%d", anc.component_name, anc.start_pos, #(anc.body_lines or {})))
|
||||
assert(anc.call_path and anc.call_path ~= "", "dwarf_injection: inv.call_path is missing on invocation " .. tostring(anc.component_name) .. "; emitter did not run emission-model.")
|
||||
emit_row(resolve_provenance_file_index(anc.call_path), anc.call_line, true)
|
||||
local is_outermost = (ai == 1)
|
||||
if not (is_outermost and anc.debug_skip) then
|
||||
@@ -647,15 +657,12 @@ local function build_atom_sequence(atom)
|
||||
-- Subsequent body word of the innermost active invocation: `body_lines[k]` is indexed by the 1-based offset of this word inside the invocation.
|
||||
-- Both `idx` (1-based DWARF entry index) and `inv.start_pos` (0-based emitted-word position stamped at `emit_invoke_begin`) come from the same
|
||||
-- monotonic counter, so `idx - inv.start_pos` is exactly the 1-based k (the first word of the invocation has `idx == inv.start_pos + 1`, hence `k == 1`).
|
||||
-- atom_dbg_step_ux_20260725: `want_body = not inv.debug_skip`. The previous `want = not marked_idx[idx]`
|
||||
-- (which suppressed ALL body rows when any ancestor was marked) is replaced by the per-invocation
|
||||
-- predicate. Marked invocations emit non-statement body rows at every body word; unmarked
|
||||
-- invocations emit statement body rows.
|
||||
-- atom_dbg_step_ux_20260725: `want_body = not inv.debug_skip`.
|
||||
-- The previous `want = not marked_idx[idx]` (which suppressed ALL body rows when any ancestor was marked) is replaced by the per-invocation predicate.
|
||||
-- Marked invocations emit non-statement body rows at every body word; unmarked invocations emit statement body rows.
|
||||
assert(inv.body_lines, "missing body_lines: emitter did not run emission-model")
|
||||
local words_into = idx - inv.start_pos
|
||||
assert(inv.body_lines[words_into] ~= nil
|
||||
, string.format("missing body_lines[%d] for inv=%s start_pos=%d len=%d idx=%d",
|
||||
words_into, inv.component_name, inv.start_pos, #(inv.body_lines or {}), idx))
|
||||
assert(inv.body_lines[words_into] ~= nil, string.format("missing body_lines[%d] for inv=%s start_pos=%d len=%d idx=%d", words_into, inv.component_name, inv.start_pos, #(inv.body_lines or {}), idx))
|
||||
emit_row(resolve_provenance_file_index(inv.def_path), inv.body_lines[words_into], not inv.debug_skip)
|
||||
else
|
||||
-- RAW word: single call-site row, always a statement target (the word itself is unmarked).
|
||||
@@ -704,7 +711,9 @@ local function build_atom_table(corpus, addrs)
|
||||
local atoms_by_name = corpus.atoms_by_name or {}
|
||||
|
||||
-- Per-atom ingest. Returns nil if the atom is absent from the corpus; the caller skips it via the `if atom then ...` guard.
|
||||
local function ingest_atom(name, info)
|
||||
-- `src_path` is the absolute source path that declared this atom; the build_atom_table iteration below threads `src.path` through.
|
||||
-- This is consumed by `build_atom_sequence::set_file(...)` for opaque-row fallbacks + raw-word rows (atoms where no invocation ancestry exists).
|
||||
local function ingest_atom(name, info, src_path)
|
||||
local atom_record = atoms_by_name[name]
|
||||
if not atom_record then return nil end
|
||||
|
||||
@@ -730,6 +739,7 @@ local function build_atom_table(corpus, addrs)
|
||||
words = #word_events,
|
||||
entries = entries,
|
||||
debug_skip = atom_record.debug_skip == true,
|
||||
src_path = src_path or "",
|
||||
}
|
||||
|
||||
-- Consume invocation records from `atom.paths.invocations`. It is the single producer of per-invocation body_lines, per-invocation debug_skip,
|
||||
@@ -753,10 +763,26 @@ local function build_atom_table(corpus, addrs)
|
||||
end
|
||||
|
||||
local out = {}
|
||||
for name, info in pairs(addrs) do
|
||||
local atom = ingest_atom(name, info)
|
||||
-- Walk every source's atom list (which preserves source order + per-source src_path).
|
||||
-- Cross-ref with the nm symbol table; atoms absent from `addrs` are skipped
|
||||
-- (an atom declared in source but not emitted as a symbol is a metaprogram or atom-info bug, not a source-correlation bug — emit_no_emit would catch it upstream).
|
||||
for _, src in ipairs((corpus and corpus.source_order) or {}) do
|
||||
local src_path = src.path or ""
|
||||
for _, atom_rec in ipairs(((src.scan or {}).atoms) or {}) do
|
||||
local info = addrs[atom_rec.name or atom_rec.raw_name]
|
||||
if info then
|
||||
local atom = ingest_atom(atom_rec.name or atom_rec.raw_name, info, src_path)
|
||||
if atom then out[#out + 1] = atom end
|
||||
end
|
||||
end
|
||||
for _, atom_rec in ipairs(((src.scan or {}).raw_atoms) or {}) do
|
||||
local info = addrs[atom_rec.name or atom_rec.raw_name]
|
||||
if info then
|
||||
local atom = ingest_atom(atom_rec.name or atom_rec.raw_name, info, src_path)
|
||||
if atom then out[#out + 1] = atom end
|
||||
end
|
||||
end
|
||||
end
|
||||
table.sort(out, function(a, b) return a.addr < b.addr end)
|
||||
return out
|
||||
end
|
||||
@@ -800,12 +826,14 @@ end
|
||||
--- load_word(R_FaceCursor, R_TapePtr, O_(Binds_CubeTri,FaceCursor)),
|
||||
--- ...
|
||||
---
|
||||
--- Also matches `load_half` / `load_half_u` / `load_byte` / `load_byte_u` (any MIPS load instruction with `(R_<reg>, R_<base>, O_(<Binds_X>, FieldName))` shape).
|
||||
--- Every field's `byte_size` + `offset` determine which load to emit; this function only records the (reg, field) pair.
|
||||
---
|
||||
--- The GPR for each `R_<reg>` is looked up in the merged register_alias_registry; aliases absent from the registry
|
||||
--- (no `atom_reg` opt-in) are silently skipped — the resulting rbind record will be incomplete and the atom will fail to bind a usable piece chain.
|
||||
--- This is intentional: silently falling back to a hardcoded GPR would mask the missing opt-in.
|
||||
---
|
||||
--- Pre-tokenized: `body_tokens` is the scan-source pass's pre-split list of top-level
|
||||
--- statements (each entry is a single `load_word(...)` call or other statement).
|
||||
--- Pre-tokenized: `body_tokens` is the scan-source pass's pre-split list of top-level statements (each entry is a single `load_*` call or other statement).
|
||||
--- @param body_tokens table[] -- the atom's pre-tokenized body statements (from atom.body_tokens)
|
||||
--- @param binds_name string -- expected Binds_X name (skip pairs with mismatching binds)
|
||||
--- @param registries table -- merged registries from collect_per_source_registries
|
||||
@@ -813,14 +841,18 @@ end
|
||||
local function parse_body_load_pairs(body_tokens, binds_name, registries)
|
||||
local pairs = {}
|
||||
local reg_index_by_name = (registries and registries.register_alias_registry) or {}
|
||||
-- One regex that matches any of: load_word, load_half, load_half_u, load_byte, load_byte_u, gte_lw, gte_lwc2.
|
||||
-- The captured ident is `kind`; `inner` holds the parens body for arg parsing.
|
||||
local load_pattern = "^(load_word|load_half|load_half_u|load_byte|load_byte_u|gte_lw|gte_lwc2)%s*%((.*)%)$"
|
||||
for _, t in ipairs(body_tokens or {}) do
|
||||
local tok = duffle.trim(t.tok or "")
|
||||
-- Match "load_word(...)" — the entire call is one body_tokens entry.
|
||||
local inner = tok:match("^load_word%s*%((.*)%)$")
|
||||
if inner then
|
||||
local kind, inner = tok:match(load_pattern)
|
||||
if kind then
|
||||
local args = duffle.split_top_level_commas(inner)
|
||||
-- Expected shape: (R_<reg>, R_TapePtr, O_(Binds_<X>, FieldName))
|
||||
if #args >= 3 then
|
||||
-- Expected shape for an rbind piece-chain load: (R_<reg>, R_TapePtr, O_(Binds_<X>, FieldName))
|
||||
-- The second arg MUST be R_TapePtr — loads from other bases (e.g. `load_byte_u(R_RawStatus, R_PadRaw, 0)`)
|
||||
-- are field-derivative loads that read already-bound tape values; they're NOT a new piece-chain.
|
||||
if #args >= 3 and duffle.trim(args[2]) == "R_TapePtr" then
|
||||
local reg_name = duffle.trim(args[1])
|
||||
local third_arg = duffle.trim(args[3])
|
||||
-- Match O_(Binds_<X>, FieldName)
|
||||
@@ -839,9 +871,7 @@ local function parse_body_load_pairs(body_tokens, binds_name, registries)
|
||||
end
|
||||
|
||||
--- Collect every rbind atom + the matching Binds_X struct + (reg, field) pairs.
|
||||
---
|
||||
--- Inputs come from the dep-closed `scan-source` pass (the per-source `src.scan` payload is preserved on each `corpus.source_order` entry).
|
||||
---
|
||||
--- Returns:
|
||||
--- rbind_atoms = {[atom_name] = {binds, fields, regs, byte_size, info_line}}
|
||||
--- rbind_structs = {[binds_name] = {byte_size, fields, atom_names}}
|
||||
@@ -941,7 +971,8 @@ end
|
||||
--- (the final unit, referenced by the main CU's DW_AT_stmt_list).
|
||||
---
|
||||
--- This builder extends the main compilation unit.
|
||||
--- A detached synthetic line unit has no DW_AT_stmt_list referencing it, so gdb ignored it (a previous experiment); byte 13 is the first special opcode, not the extended-opcode marker.
|
||||
--- A detached synthetic line unit has no DW_AT_stmt_list referencing it, so gdb ignored it (a previous experiment);
|
||||
--- byte 13 is the first special opcode, not the extended-opcode marker.
|
||||
--- The existing final unit already contains hello_gte_tape.c as file index 11 and ends with a valid end_sequence.
|
||||
--- We preserve its bytes, append independent atom sequences, and increase only that unit's DWARF32 unit_length.
|
||||
--- @param existing string -- existing section bytes, byte-for-byte
|
||||
@@ -952,9 +983,7 @@ local function build_dwarf_line_section(existing, atom_table)
|
||||
|
||||
-- Build the sequences.
|
||||
local sequences = {}
|
||||
for _, atom in ipairs(atom_table) do
|
||||
sequences[#sequences + 1] = build_atom_sequence(atom)
|
||||
end
|
||||
for _, atom in ipairs(atom_table) do sequences[#sequences + 1] = build_atom_sequence(atom) end
|
||||
local appended = table.concat(sequences)
|
||||
|
||||
-- Walk DWARF32 line units and retain the final unit's bounds.
|
||||
@@ -963,7 +992,7 @@ local function build_dwarf_line_section(existing, atom_table)
|
||||
while unit_pos < #existing do
|
||||
if unit_pos + 4 > #existing then return existing end
|
||||
local unit_length = elf_dwarf.read_u32_le(existing, unit_pos)
|
||||
if unit_length == elf_dwarf.ELF32.dw_dwarf32_terminator then return existing end
|
||||
if unit_length == elf_dwarf.dw_dwarf32_terminator then return existing end
|
||||
local unit_end_excl = unit_pos + 4 + unit_length
|
||||
if unit_end_excl > #existing then return existing end
|
||||
last_pos, last_length, last_end = unit_pos, unit_length, unit_end_excl
|
||||
@@ -1024,7 +1053,7 @@ local function build_dwarf_aranges_section(existing, atom_table)
|
||||
while i < #existing do
|
||||
-- Read this unit's length.
|
||||
local ul = elf_dwarf.read_u32_le(existing, i)
|
||||
if ul == elf_dwarf.ELF32.dw_dwarf32_terminator then
|
||||
if ul == elf_dwarf.dw_dwarf32_terminator then
|
||||
-- DWARF64 marker - not supported.
|
||||
io.stderr:write("[dwarf_injection] WARN: .debug_aranges contains a DWARF64 marker (0xFFFFFFFF); the 64-bit extension is not supported by this metaprogram; passing through unchanged\n")
|
||||
return existing
|
||||
@@ -1488,13 +1517,12 @@ end
|
||||
--- DW_AT_location = piece-chain (DW_FORM_exprloc)
|
||||
--- DW_AT_type = ref4 → structure_type DIE
|
||||
---
|
||||
--- This function does NOT emit the final 0 byte (root terminator). build_debug_info_section splices bytes ahead of the root terminator
|
||||
--- and preserves existing DIE bytes exactly.
|
||||
--- This function does NOT emit the final 0 byte (root terminator).
|
||||
--- build_debug_info_section splices bytes ahead of the root terminator and preserves existing DIE bytes exactly.
|
||||
---
|
||||
--- ref4 basis: DW_FORM_ref4 is CU-relative (offset from the first byte of the CU header).
|
||||
--- Our inserted DIEs live in the main CU, so every ref4 = (target section offset) - main_cu_offset.
|
||||
--- Per-die section offsets are tracked via the running `next_offset` cursor (= section offset of the NEXT byte to emit).
|
||||
---
|
||||
--- @param main_cu_offset integer -- 0-based section offset of the main CU's unit_length field
|
||||
--- @param main_cu_end_excl integer -- 0-based section offset of the first byte AFTER the main CU
|
||||
--- @param atom_table table[] -- atoms (with atom.rbind set if rbind; atom.invocations set if mac_X(...) calls)
|
||||
@@ -1614,6 +1642,8 @@ local function build_inserted_children(main_cu_offset, main_cu_end_excl, atom_ta
|
||||
--
|
||||
-- The table is small + explicit — the prototype principle treats the typed-view struct layout as data, not derived state.
|
||||
local STRUCT_MEMBER_TABLE = {
|
||||
-- TODO(Ed): This hardcoding is brittle...
|
||||
-- TODO(Ed): Better to just have a table for the fundamental types in duffle/dsl.h, we can derive the rest via typedef parsing...
|
||||
-- 2-element signed short vector (rare; placeholder for future use).
|
||||
V2_S2 = { byte_size = 4, members = {
|
||||
{ name = "x", offset = 0, byte_size = 2 },
|
||||
@@ -1866,6 +1896,7 @@ local function build_inserted_children(main_cu_offset, main_cu_end_excl, atom_ta
|
||||
end
|
||||
local atom_view = (registries.atom_views or {})[atom.name]
|
||||
-- Build the atom-name lookup table once (cheap; O(atom_table)) so step (b) and step (d) can resolve rbind_atom names.
|
||||
-- TODO(Ed): Bad assignment?
|
||||
local atom_by_name = atom_by_name or (function() local m = {}; for _, a in ipairs(atom_table) do if a.name then m[a.name] = a end end; return m end)()
|
||||
-- step (b) inputs: this atom's `atom_ctx(<rbind_atom>)` (resolved from the registries' atom_ctxs)
|
||||
local this_ctx = registries.atom_ctxs and registries.atom_ctxs[atom.name]
|
||||
@@ -1946,6 +1977,7 @@ local function build_inserted_children(main_cu_offset, main_cu_end_excl, atom_ta
|
||||
end,
|
||||
-- (e) enum-site atom_type(<T>) default on the registry entry.
|
||||
function(r_name, alias_code)
|
||||
-- TODO(Ed): Bad definition?
|
||||
if alias and alias.default_type and alias.default_depth and alias.default_depth > 0 then
|
||||
return type_chain_offsets[alias.default_type .. "|" .. alias.default_depth]
|
||||
end
|
||||
@@ -2058,7 +2090,6 @@ local function build_debug_str_section(existing, atom_table, registries)
|
||||
end
|
||||
|
||||
--- Build the new .debug_info: SPLICE inserted DIEs into the MAIN CU as children.
|
||||
---
|
||||
--- This implementation:
|
||||
--- 1. Builds the inserted-children bytes (base_type, struct_types, subprograms with their RR_* + bind_args children) via build_inserted_children.
|
||||
--- 2. Patches the main CU's `unit_length` field to account for the inserted bytes.
|
||||
@@ -2177,7 +2208,8 @@ function M.run(ctx)
|
||||
|
||||
-- Read the existing DWARF sections directly (no subprocess; io.open + manual ELF32 section-header walk).
|
||||
-- We need all 8 sections: .debug_line / .debug_aranges / .debug_rnglists get extended (additional rows appended to the existing unit),
|
||||
-- and .debug_info / .debug_abbrev / .debug_str / .debug_loc / .debug_loclists get spliced (the main CU's unit_length is patched; no new compile unit is appended; .debug_loc/.debug_loclists may not exist in the source ELF so we add-section them on splice).
|
||||
-- and .debug_info / .debug_abbrev / .debug_str / .debug_loc / .debug_loclists get spliced
|
||||
-- (the main CU's unit_length is patched; no new compile unit is appended; .debug_loc/.debug_loclists may not exist in the source ELF so we add-section them on splice).
|
||||
-- The per-section dispatch is inlined in the writers loop below.
|
||||
local existing_sections = elf_dwarf.read_elf_sections(elf_path, {
|
||||
".debug_line", ".debug_aranges", ".debug_rnglists",
|
||||
@@ -2186,12 +2218,15 @@ function M.run(ctx)
|
||||
-- reading them just returns "" which is the "missing" case the builder handles.
|
||||
".debug_loc", ".debug_loclists",
|
||||
})
|
||||
-- Resolve the per-file line-table indices from the same .debug_line bytes;
|
||||
-- this MUST run before any atom sequence is emitted (build_atom_sequence below
|
||||
-- calls resolve_provenance_file_index when populating call-site / body rows).
|
||||
init_file_index_lookup(elf_path)
|
||||
-- Skip state lives in `corpus.atoms_by_name[*].debug_skip` (whole-atom) and `atom.paths.invocations[*].debug_skip` (per-invocation).
|
||||
-- `corpus` is the sole canonical source projection.
|
||||
local corpus = (ctx.shared and ctx.shared.corpus) or {}
|
||||
local registries = collect_per_source_registries(corpus)
|
||||
-- Read nm symbols (the ONLY disk-side input to the atom table) and join
|
||||
-- them against `corpus.atoms_by_name` + `atom.paths` for word rows + invocation ancestry.
|
||||
-- Read nm symbols (the ONLY disk-side input to the atom table) and join them against `corpus.atoms_by_name` + `atom.paths` for word rows + invocation ancestry.
|
||||
-- Disk source-map/provenance text is not consulted (those are diagnostic artifacts; semantic inputs are in memory).
|
||||
local addrs = elf_dwarf.read_nm(ctx.flags.elf_path)
|
||||
local atom_table = build_atom_table(corpus, addrs)
|
||||
|
||||
@@ -41,7 +41,6 @@ local duffle = dofile(_bootstrap_dir .. "../duffle_paths.lua")
|
||||
-- Convert the recursive walk's body-relative line numbers into physical source lines once.
|
||||
-- The walker builds `line_of` from `body_text` and stamps body-relative line numbers (1..N) into `item.line` and `invocation.call_line`.
|
||||
-- This function converts those values to physical source lines at the close site with the forwarded source `line_of` closure.
|
||||
--
|
||||
-- `call_line` discipline:
|
||||
-- * ROOT invocations (`inv.parent_id == 0`) receive body-relative `call_line` values directly from `M.LineIndex(body_text)` in the walker.
|
||||
-- The source `line_of` closure supplies physical lines at the close site, so this function converts each root value exactly once.
|
||||
@@ -59,8 +58,7 @@ local function stamp_root_provenance(projection, atom_record, src, corpus)
|
||||
-- `root_body_line` is the physical source line of the ATOM HEADER byte containing the opening `{`; that byte is one byte BEFORE `atom_record.body_off`.
|
||||
-- The walker assigns line 2 to the body's first content line because line 1 is the trailing `\n` after `{`. Body-text line k therefore maps to `root_body_line + (k - 1)`.
|
||||
-- `body_off - 1` points at the opening `{`, whose line index identifies the header line. `body_off` points after `{` and would shift every word row forward by one line.
|
||||
local root_body_line = root_line_of(atom_record.body_off - 1)
|
||||
or atom_record.line or 0
|
||||
local root_body_line = root_line_of(atom_record.body_off - 1) or atom_record.line or 0
|
||||
local component_index = corpus.component_body_index or {}
|
||||
local word_items = {}
|
||||
|
||||
|
||||
+80
-43
@@ -3,12 +3,11 @@
|
||||
--- Reads the pre-scanned SourceScan payload (produced once upstream by `duffle.scan_source`)
|
||||
--- for `MipsAtom_(name)` and `MipsCode code_<name>` declarations, computes the word offset
|
||||
--- from each `atom_offset(F, T)` marker to its target `atom_label(T)` declaration, and emits
|
||||
--- `<dir_basename>.offsets.h` with one `#define _atom_offset_F_T = N` per branch.
|
||||
--- `gen/offsets.h` with one `#define _atom_offset_F_T = N` per branch.
|
||||
--- Per-directory aggregation: every source in the same directory contributes to the same `gen/offsets.h`.
|
||||
--- The directory itself is the namespace; the filename does not repeat the module name.
|
||||
---
|
||||
--- The offset is `target_word - branch_word - 1` (the standard MIPS branch-immediate encoding: branch_offset = relative_pc_in_words - 1).
|
||||
---
|
||||
--- **Conventions**: tabs (1/level), EmmyLua annotations, no regex,
|
||||
--- Lua 5.3 compatible.
|
||||
|
||||
-- ════════════════════════════════════════════════════════════════════════════
|
||||
-- Module-scope requires + package.path setup
|
||||
@@ -16,8 +15,7 @@
|
||||
|
||||
-- Bootstrap: same as entry scripts. See `ps1_meta.lua` for the rationale.
|
||||
-- Bootstrap: load `scripts/duffle_paths.lua` (sets package.path + package.cpath).
|
||||
-- Uses `debug.getinfo` to find this file's own directory, so it works
|
||||
-- both standalone and when require'd from the orchestrator.
|
||||
-- Uses `debug.getinfo` to find this file's own directory, so it works both standalone and when require'd from the orchestrator.
|
||||
-- Bootstrap: load `duffle_paths.lua` via `debug.getinfo(1, "S").source` (works both standalone + when require'd).
|
||||
-- duffle_paths.lua sets package.path then returns `require("duffle")` at the bottom, so the dofile value IS the duffle module.
|
||||
local _bootstrap_dir = debug.getinfo(1, "S").source:match("^@?(.*[/\\])") or "./"
|
||||
@@ -39,17 +37,17 @@ local OFFSET_MACRO_COL = 44
|
||||
-- ════════════════════════════════════════════════════════════════════════════
|
||||
|
||||
--- @class SourceFile
|
||||
--- @field path string -- absolute path to the source file
|
||||
--- @field text string -- the full source text
|
||||
--- @field dir string -- the directory containing the source
|
||||
--- @field basename string -- filename without extension
|
||||
--- @field scan table -- pre-scanned SourceScan payload (from duffle.scan_source)
|
||||
--- @field path string -- Absolute path to the source file
|
||||
--- @field text string -- Full source text
|
||||
--- @field dir string -- Directory containing the source
|
||||
--- @field basename string -- Filename without extension
|
||||
--- @field scan table -- Pre-scanned SourceScan payload (from duffle.scan_source)
|
||||
|
||||
--- @class PassCtx
|
||||
--- @field shared table -- cross-pass shared state
|
||||
--- @field shared.corpus table -- canonical corpus projection
|
||||
--- @field shared table -- Cross-pass shared state
|
||||
--- @field shared.corpus table -- Corpus projection
|
||||
--- @field shared.word_counts table
|
||||
--- @field out_root string -- output root (e.g. "build/gen")
|
||||
--- @field out_root string -- Output root (e.g. "build/gen")
|
||||
|
||||
--- @class PassResult
|
||||
--- @field outputs table[] -- {kind=, path=} entries describing emit files
|
||||
@@ -57,22 +55,24 @@ local OFFSET_MACRO_COL = 44
|
||||
--- @field warnings table[] -- {line=, msg=} entries; build-succeeds
|
||||
|
||||
--- @class BranchOffset
|
||||
--- @field tag string -- the marker tag (e.g. "F" in `atom_offset(F, T)`)
|
||||
--- @field target string -- the target label name (e.g. "T" in `atom_offset(F, T)`)
|
||||
--- @field branch_word integer -- branch word position within the atom body
|
||||
--- @field offset integer -- computed `target_word - branch_word - 1`
|
||||
--- @field tag string -- Marker tag (e.g. "F" in `atom_offset(F, T)`)
|
||||
--- @field target string -- Target label name (e.g. "T" in `atom_offset(F, T)`)
|
||||
--- @field branch_word integer -- Branch word position within the atom body
|
||||
--- @field offset integer -- Computed per consuming instruction (see `compute_offsets`)
|
||||
--- @field consuming_encoder string|nil -- Instruction consuming the offset (e.g. "branch_le_zero", "jump", "call_addr")
|
||||
--- @field consuming_arg_pos integer|nil -- 1-based arg position within the consuming instruction's arg list
|
||||
|
||||
--- @class AtomData
|
||||
--- @field name string -- atom name
|
||||
--- @field total_words integer -- total word count of the atom body
|
||||
--- @field offsets BranchOffset[] -- per-branch offset list
|
||||
--- @field name string -- Atom name
|
||||
--- @field total_words integer -- Total word count of the atom body
|
||||
--- @field offsets BranchOffset[] -- Per-branch offset list
|
||||
|
||||
-- ════════════════════════════════════════════════════════════════════════════
|
||||
-- Canonical marker projection
|
||||
-- ════════════════════════════════════════════════════════════════════════════
|
||||
|
||||
-- MARKER_PROJECTORS is the marker-kind data table.
|
||||
-- The emission-model pass already records marker word positions;
|
||||
-- The emission-model pass already records marker word positions + consuming-instruction context;
|
||||
-- this pass only projects those records into the label/branch lookup shape needed by offset computation.
|
||||
local MARKER_PROJECTORS = {
|
||||
label = function(state, marker)
|
||||
@@ -83,6 +83,8 @@ local MARKER_PROJECTORS = {
|
||||
tag = marker.name,
|
||||
target = marker.target,
|
||||
branch_word = marker.word_index,
|
||||
consuming_encoder = marker.consuming_encoder,
|
||||
consuming_arg_pos = marker.consuming_arg_pos,
|
||||
}
|
||||
end,
|
||||
}
|
||||
@@ -104,7 +106,18 @@ end
|
||||
-- Offset computation + header generation
|
||||
-- ════════════════════════════════════════════════════════════════════════════
|
||||
|
||||
--- Compute branch offsets as `target_word - branch_word - 1` (the standard MIPS branch-immediate encoding).
|
||||
--- Compute branch offsets per consuming instruction.
|
||||
--- Disposition table:
|
||||
--- `branch_*` -> relative offset: `target_word - branch_word - 1` (MIPS branch-immediate encoding).
|
||||
--- `jump` / `call_addr` -> same value as `branch_*` (a relative word offset).
|
||||
--- The duffle headers' `enc_i` macro truncates the value to the immediate-field width (16 bits for branches, 26 bits for jumps).
|
||||
--- For tape-atom bodies within a single module, this works for `j`/`jal` because the linker's symbol resolution produces the correct 26-bit absolute target via standard `j` relocations.
|
||||
--- For cross-module `j`/`jal` (atom body in one module, target in another), the linker emits a `R_MIPS_26` relocation against the lower 26 bits; the upper 4 bits come from the PC of the delay slot following the `j`.
|
||||
--- The metaprogram doesn't know either at compile time, so the emitted value is the relative word offset that the duffle `enc_i` macro places in the immediate field; the toolchain handles the rest.
|
||||
--- `jump_reg` / `call_reg` / `jump_link` -> ERROR. Register-form jumps have no offset field; `atom_offset` is invalid.
|
||||
---
|
||||
--- Top-level `atom_offset(F, T)` markers (where the marker is the entire token — `consuming_encoder` == nil) default to `branch_*` behavior (relative offset).
|
||||
--- This preserves backward compatibility for any top-level marker that may exist outside a control-transfer instruction.
|
||||
--- @param labels table<string, integer>
|
||||
--- @param branches table[]
|
||||
--- @return BranchOffset[]
|
||||
@@ -115,11 +128,23 @@ local function compute_offsets(labels, branches)
|
||||
if not target then
|
||||
error("Branch target '" .. br.target .. "' has no atom_label (at word " .. br.branch_word .. ")")
|
||||
end
|
||||
local consuming = br.consuming_encoder
|
||||
local offset
|
||||
if consuming == "jump_reg" or consuming == "call_reg" or consuming == "jump_link" then
|
||||
-- Register-form jumps have no offset field. `atom_offset` cannot be used here.
|
||||
error("atom_offset cannot be used with " .. consuming
|
||||
.. " (register-form jumps have no offset field); at word " .. br.branch_word)
|
||||
end
|
||||
-- All other consuming instructions (including `branch_*`, `jump`, `call_addr`, and nil for top-level markers) use the same relative offset value.
|
||||
-- The MIPS encoding differs per opcode but the duffle `enc_i` macro handles the truncation to the immediate-field width.
|
||||
offset = target - br.branch_word - 1
|
||||
results[#results + 1] = {
|
||||
target = br.target,
|
||||
tag = br.tag,
|
||||
branch_word = br.branch_word,
|
||||
offset = target - br.branch_word - 1,
|
||||
offset = offset,
|
||||
consuming_encoder = br.consuming_encoder,
|
||||
consuming_arg_pos = br.consuming_arg_pos,
|
||||
}
|
||||
end
|
||||
return results
|
||||
@@ -167,41 +192,45 @@ local function emit_atom_offsets(add, atom)
|
||||
add("")
|
||||
end
|
||||
|
||||
--- Generate the per-source .offsets.h header.
|
||||
--- @param source_path string
|
||||
--- Generate the per-directory .offsets.h header.
|
||||
--- @param dir string -- the absolute source directory
|
||||
--- @param sources table[] -- sources contributing to this directory (for the header comment)
|
||||
--- @param atoms_data AtomData[]
|
||||
--- @return string
|
||||
local function generate_header(source_path, atoms_data)
|
||||
local basename = duffle.basename_no_ext(source_path)
|
||||
local function generate_header(dir, sources, atoms_data)
|
||||
local dir_basename = duffle.basename_no_ext(dir)
|
||||
|
||||
local lines = {}
|
||||
local function add(s) lines[#lines + 1] = s end
|
||||
|
||||
add("// Auto-generated by ps1_meta.lua (passes/offsets.lua) — DO NOT EDIT")
|
||||
add("// Source: " .. source_path)
|
||||
add("// Directory: " .. dir:gsub("/", "\\") .. "\\")
|
||||
for _, src in ipairs(sources) do
|
||||
add("// source: " .. src.path:gsub("/", "\\"))
|
||||
end
|
||||
add("#pragma once")
|
||||
add("")
|
||||
add("#pragma region " .. basename)
|
||||
add("#pragma region " .. dir_basename)
|
||||
add("")
|
||||
add("")
|
||||
for _, atom in ipairs(atoms_data) do
|
||||
emit_atom_offsets(add, atom)
|
||||
end
|
||||
add("#pragma endregion " .. basename)
|
||||
add("#pragma endregion " .. dir_basename)
|
||||
add("")
|
||||
return table.concat(lines, "\n") .. "\n"
|
||||
end
|
||||
|
||||
local M = {}
|
||||
|
||||
--- (internal) Process one source: render offsets from canonical atom paths.
|
||||
--- (internal) Aggregate atoms from every source in one directory, render the per-directory `offsets.h`.
|
||||
--- Returns the offsets_h path if a header was written, or nil.
|
||||
--- @param ctx PassCtx
|
||||
--- @param src SourceFile
|
||||
--- @param dir string -- the absolute source directory
|
||||
--- @param sources SourceFile[] -- sources in this directory
|
||||
--- @return string|nil -- the offsets_h path
|
||||
local function process_source(ctx, src)
|
||||
local function process_directory(ctx, dir, sources)
|
||||
local atoms_data = {}
|
||||
local scan = src.scan or {}
|
||||
|
||||
local function append_atom(atom)
|
||||
local paths = atom and atom.paths
|
||||
@@ -214,19 +243,22 @@ local function process_source(ctx, src)
|
||||
}
|
||||
end
|
||||
|
||||
for _, src in ipairs(sources) do
|
||||
local scan = src.scan or {}
|
||||
for _, atom in ipairs(scan.atoms or {}) do append_atom(atom) end
|
||||
for _, atom in ipairs(scan.raw_atoms or {}) do append_atom(atom) end
|
||||
end
|
||||
if #atoms_data == 0 then return nil end
|
||||
|
||||
local out_path = src.dir .. "/gen/" .. duffle.basename_no_ext(src.dir) .. ".offsets.h"
|
||||
local out_path = dir .. "/gen/offsets.h"
|
||||
duffle.ensure_dir(duffle.dirname(out_path))
|
||||
duffle.write_file(out_path, generate_header(src.path:gsub("/", "\\"), atoms_data))
|
||||
duffle.write_file(out_path, generate_header(dir, sources, atoms_data))
|
||||
return out_path
|
||||
end
|
||||
|
||||
--- Run the offsets pass.
|
||||
--- For each canonical source, emits a per-module `<dir_basename>.offsets.h`
|
||||
--- containing constants for every marker recorded in atom.paths.
|
||||
--- For each canonical source-directory, emits a per-directory `gen/offsets.h`
|
||||
--- containing constants for every marker recorded in atom.paths across every source in that directory.
|
||||
--- @param ctx PassCtx
|
||||
--- @return PassResult
|
||||
function M.run(ctx)
|
||||
@@ -235,12 +267,17 @@ function M.run(ctx)
|
||||
local warnings = {}
|
||||
|
||||
local corpus = ctx.shared and ctx.shared.corpus
|
||||
if type(corpus) ~= "table" or type(corpus.source_order) ~= "table" then
|
||||
error("offsets.run requires ctx.shared.corpus.source_order (canonical corpus).", 0)
|
||||
if type(corpus) ~= "table" then
|
||||
error("offsets.run requires ctx.shared.corpus", 0)
|
||||
end
|
||||
if type(corpus.source_order) ~= "table" then
|
||||
error("offsets.run requires ctx.shared.corpus.source_order.", 0)
|
||||
end
|
||||
|
||||
for _, src in ipairs(corpus.source_order) do
|
||||
local out_path = process_source(ctx, src)
|
||||
-- Per-directory aggregation: every source in the same directory contributes to one `gen/offsets.h`.
|
||||
local sources_by_dir = corpus.sources_by_dir or duffle.group_sources_by_dir(corpus.source_order)
|
||||
for dir, sources in pairs(sources_by_dir) do
|
||||
local out_path = process_directory(ctx, dir, sources)
|
||||
if out_path then
|
||||
outputs[#outputs + 1] = { offsets_h = out_path }
|
||||
end
|
||||
|
||||
+425
-301
@@ -1,26 +1,21 @@
|
||||
--- passes/report.lua — Per-MODULE annotation report renderer +
|
||||
--- project-wide summary writer.
|
||||
--- passes/report.lua — Per-MODULE annotation report renderer + project-wide summary writer.
|
||||
---
|
||||
--- Two output files per build:
|
||||
--- - `build/gen/<dir_basename>.annotations.txt` — one per source-directory containing atoms; aggregates across all sources in the directory.
|
||||
--- - `build/gen/annotation_validation.txt` — the project summary.
|
||||
---
|
||||
--- The annotation pass emits `errors.h` files per module and the canonical `corpus.sources_by_dir` projection groups sources by directory.
|
||||
--- This pass iterates the canonical dir projection directly and re-validates each source via `annotation.validate()` to get the detailed per-source results.
|
||||
---
|
||||
--- **Conventions**: tabs (1/level), EmmyLua annotations, no regex,
|
||||
--- Lua 5.3 compatible.
|
||||
--- This pass iterates the dir projection directly and re-validates each source via `annotation.validate()` to get the detailed per-source results.
|
||||
|
||||
-- ════════════════════════════════════════════════════════════════════════════
|
||||
-- Module-scope requires + package.path setup
|
||||
-- ════════════════════════════════════════════════════════════════════════════
|
||||
|
||||
-- Resolve `arg[0]` to an absolute-ish script directory so that `require("duffle")` resolves against `scripts/` regardless of CWD.
|
||||
-- Bootstrap: see `ps1_meta.lua` for the rationale.
|
||||
-- Bootstrap: load `scripts/duffle_paths.lua` (sets package.path + package.cpath).
|
||||
-- Uses `debug.getinfo` to find this file's own directory, so it works
|
||||
-- both standalone and when require'd from the orchestrator.
|
||||
-- Bootstrap: load `duffle_paths.lua` via `debug.getinfo(1, "S").source` (works both standalone + when require'd).
|
||||
-- Bootstrap: See `ps1_meta.lua` for the rationale.
|
||||
-- Bootstrap: Load `scripts/duffle_paths.lua` (sets package.path + package.cpath).
|
||||
-- Uses `debug.getinfo` to find this file's own directory, so it works both standalone and when require'd from the orchestrator.
|
||||
-- Bootstrap: Load `duffle_paths.lua` via `debug.getinfo(1, "S").source` (works both standalone + when require'd).
|
||||
-- duffle_paths.lua sets package.path then returns `require("duffle")` at the bottom, so the dofile value IS the duffle module.
|
||||
local _bootstrap_dir = debug.getinfo(1, "S").source:match("^@?(.*[/\\])") or "./"
|
||||
local duffle = dofile(_bootstrap_dir .. "../duffle_paths.lua")
|
||||
@@ -30,6 +25,11 @@ local duffle = dofile(_bootstrap_dir .. "../duffle_paths.lua")
|
||||
-- that the report pass renders into the per-module `<dir_basename>.annotations.txt` output.
|
||||
local annotation = dofile(_bootstrap_dir .. "annotation.lua")
|
||||
|
||||
-- Load atoms_source_map for the `render_source_map` / `render_provenance` module functions (used by `render_module_atoms_md` to produce `<module>.atoms.md` without re-walking source tokens).
|
||||
-- The pass itself emits no per-source files anymore; we only consume the two pure renderers here.
|
||||
-- Defined BEFORE the renderer functions below so their upvalues resolve to this local (not the global `atoms_source_map`, which is nil).
|
||||
local atoms_source_map = dofile(_bootstrap_dir .. "atoms_source_map.lua")
|
||||
|
||||
-- ════════════════════════════════════════════════════════════════════════════
|
||||
-- Constants
|
||||
-- ════════════════════════════════════════════════════════════════════════════
|
||||
@@ -44,8 +44,7 @@ local SECTION_HEADER_MACROS = "── Macro word-count declarations ───
|
||||
local SECTION_HEADER_ERRORS = "── Errors ──────────────────────────────────────────────"
|
||||
local SECTION_HEADER_WARNINGS = "── Warnings ────────────────────────────────────────────"
|
||||
|
||||
-- Lua pattern that captures the basename (last path segment) of a
|
||||
-- forward- or back-slash separated path.
|
||||
-- Lua pattern that captures the basename (last path segment) of a forward- or back-slash separated path.
|
||||
local BASENAME_PATTERN = "([^/\\]+)$"
|
||||
|
||||
-- Debug flag name — set to truthy in `_G` to enable verbose logging.
|
||||
@@ -59,20 +58,20 @@ local PASS_NAME = "report"
|
||||
-- ════════════════════════════════════════════════════════════════════════════
|
||||
|
||||
--- @class SourceFile
|
||||
--- @field path string -- absolute path to the source file
|
||||
--- @field text string -- the full source text
|
||||
--- @field dir string -- the directory containing the source
|
||||
--- @field basename string -- filename without extension
|
||||
--- @field path string -- Absolute path to the source file
|
||||
--- @field text string -- Full source text
|
||||
--- @field dir string -- Directory containing the source
|
||||
--- @field basename string -- Filename without extension
|
||||
|
||||
--- @class PassCtx
|
||||
--- @field sources SourceFile[] -- all source files in the build
|
||||
--- @field metadata_path string -- path to word_count.metadata.h
|
||||
--- @field shared table -- cross-pass shared state
|
||||
--- @field out_root string -- output root (e.g. "build/gen")
|
||||
--- @field project_root string -- project root (e.g. "code/")
|
||||
--- @field upstream table<string, table> -- per-pass upstream outputs
|
||||
--- @field sources SourceFile[] -- All source files in the build
|
||||
--- @field metadata_path string -- Path to word_count.metadata.h
|
||||
--- @field shared table -- Cross-pass shared state
|
||||
--- @field out_root string -- Output root (e.g. "build/gen")
|
||||
--- @field project_root string -- Project root (e.g. "code/")
|
||||
--- @field upstream table<string, table> -- Per-pass upstream outputs
|
||||
--- @field flags table -- CLI flags + per-pass stash
|
||||
--- @field verbose boolean -- if true, log diagnostic info
|
||||
--- @field verbose boolean -- If true, log diagnostic info
|
||||
|
||||
--- @class PassResult
|
||||
--- @field outputs table[] -- {kind=, path=} entries describing emit files
|
||||
@@ -82,60 +81,60 @@ local PASS_NAME = "report"
|
||||
-- Shapes produced by `passes/annotation.lua`'s `M.validate()`.
|
||||
|
||||
--- @class AtomEntry
|
||||
--- @field name string -- atom name (e.g. "cube_g4_face")
|
||||
--- @field line integer -- source line of the atom declaration
|
||||
--- @field name string -- Atom name (e.g. "cube_g4_face")
|
||||
--- @field line integer -- Source line of the atom declaration
|
||||
|
||||
--- @class AnnotEntry
|
||||
--- @field line integer -- source line
|
||||
--- @field macro string -- the macro name (e.g. "atom_reads")
|
||||
--- @field name string -- the atom name (if a `name(...)` was given)
|
||||
--- @field line integer -- Source line
|
||||
--- @field macro string -- Macro name (e.g. "atom_reads")
|
||||
--- @field name string -- Atom name (if a `name(...)` was given)
|
||||
--- @field kind string -- "atom_info" | "atom_bind" | ...
|
||||
--- @field binds string|nil -- Binds_X name if any
|
||||
--- @field reads string[] -- R_* names (read targets)
|
||||
--- @field writes string[] -- R_* names (write targets)
|
||||
--- @field error string|nil -- error message if annotation was malformed
|
||||
--- @field error string|nil -- Error message if annotation was malformed
|
||||
|
||||
--- @class BindsField
|
||||
--- @field name string -- field name
|
||||
--- @field offset integer -- byte offset within the Binds_X struct
|
||||
--- @field name string -- Field name
|
||||
--- @field offset integer -- Byte offset within the Binds_X struct
|
||||
|
||||
--- @class BindsStruct
|
||||
--- @field name string -- struct name (e.g. "Binds_Floor")
|
||||
--- @field line integer -- source line of the typedef
|
||||
--- @field bytes integer -- total byte size
|
||||
--- @field fields BindsField[] -- the field list
|
||||
--- @field name string -- Struct name (e.g. "Binds_Floor")
|
||||
--- @field line integer -- Source line of the typedef
|
||||
--- @field bytes integer -- Total byte size
|
||||
--- @field fields BindsField[] -- The field list
|
||||
|
||||
--- @class MacroEntry
|
||||
--- @field name string -- macro name (e.g. "WORD_COUNT(my_macro, 4)")
|
||||
--- @field line integer -- source line
|
||||
--- @field words integer -- declared word count
|
||||
--- @field name string -- Macro name (e.g. "WORD_COUNT(my_macro, 4)")
|
||||
--- @field line integer -- Source line
|
||||
--- @field words integer -- Declared word count
|
||||
|
||||
--- @class Finding
|
||||
--- @field line integer -- source line
|
||||
--- @field msg string -- finding message
|
||||
--- @field line integer -- Source line
|
||||
--- @field msg string -- Finding message
|
||||
|
||||
--- @class AnnotationResult
|
||||
--- @field source string -- set by this pass; original source path
|
||||
--- @field atoms AtomEntry[] -- atom declarations in this source
|
||||
--- @field annots AnnotEntry[] -- annotation entries
|
||||
--- @field macros MacroEntry[] -- macro word-count declarations
|
||||
--- @field source string -- Set by this pass; original source path
|
||||
--- @field atoms AtomEntry[] -- Atom declarations in this source
|
||||
--- @field annots AnnotEntry[] -- Annotation entries
|
||||
--- @field macros MacroEntry[] -- Macro word-count declarations
|
||||
--- @field binds BindsStruct[] -- Binds_* struct declarations
|
||||
--- @field errors Finding[] -- errors from validation
|
||||
--- @field warnings Finding[] -- warnings from validation
|
||||
--- @field info table -- info summary (not rendered here)
|
||||
--- @field errors Finding[] -- Errors from validation
|
||||
--- @field warnings Finding[] -- Warnings from validation
|
||||
--- @field info table -- Info summary (not rendered here)
|
||||
|
||||
--- @class ModuleEntry
|
||||
--- @field dir string -- absolute directory path
|
||||
--- @field dir_basename string -- basename (e.g. "duffle", "gte_hello")
|
||||
--- @field atoms_count integer -- pre-counted atoms for filtering
|
||||
--- @field dir string -- Absolute directory path
|
||||
--- @field dir_basename string -- Basename (e.g. "duffle", "gte_hello")
|
||||
--- @field atoms_count integer -- Pre-counted atoms for filtering
|
||||
|
||||
--- @class ModuleReport
|
||||
--- @field dir string -- module directory
|
||||
--- @field sources SourceFile[] -- sources in this module
|
||||
--- @field results AnnotationResult[] -- per-source validate() results
|
||||
--- @field dir string -- Module directory
|
||||
--- @field sources SourceFile[] -- Sources in this module
|
||||
--- @field results AnnotationResult[] -- Per-source validate() results
|
||||
|
||||
--- @class ProjectReport
|
||||
--- @field results AnnotationResult[] -- all per-source results
|
||||
--- @field results AnnotationResult[] -- All per-source results
|
||||
|
||||
-- ════════════════════════════════════════════════════════════════════════════
|
||||
-- Per-MODULE annotation report (aggregated across all sources in a dir)
|
||||
@@ -148,328 +147,453 @@ local function source_basename(path)
|
||||
return path:match(BASENAME_PATTERN) or path
|
||||
end
|
||||
|
||||
--- (internal) Format a single annotation entry as one rendered line.
|
||||
--- @param a AnnotEntry
|
||||
--- @param src_name string
|
||||
-- ════════════════════════════════════════════════════════════════════════════
|
||||
-- Markdown renderers (consolidated-report-files refactor, 2026-07-26)
|
||||
-- ════════════════════════════════════════════════════════════════════════════
|
||||
|
||||
--- Render the thin project-wide summary (`build/atom_meta_report.summary.md`).
|
||||
--- @param all_results {
|
||||
--- module:string,
|
||||
--- atoms:integer,
|
||||
--- annots:integer,
|
||||
--- binds:integer,
|
||||
--- macros:integer,
|
||||
--- findings:integer,
|
||||
--- errors:integer,
|
||||
--- warnings:integer,
|
||||
--- info:integer }[]
|
||||
--- @return string
|
||||
local function format_annot_line(a, src_name)
|
||||
if a.error then
|
||||
return string.format(" ✗ line %d %s [ERROR: %s] [%s]", a.line, a.macro or "?", a.error, src_name)
|
||||
local function render_project_summary(all_results)
|
||||
local lines = {
|
||||
"# Project summary",
|
||||
"> Auto-generated by ps1_meta.lua (passes/report.lua).",
|
||||
"",
|
||||
"| module | atoms | annots | binds | macros | findings | errors | warnings | info |",
|
||||
"|--------|-------|--------|-------|--------|----------|--------|----------|------|",
|
||||
}
|
||||
local totals = { atoms = 0, annots = 0, binds = 0, macros = 0, findings = 0, errors = 0, warnings = 0, info = 0 }
|
||||
for _, e in ipairs(all_results) do
|
||||
lines[#lines + 1] = string.format("| %s | %d | %d | %d | %d | %d | %d | %d | %d |"
|
||||
, e.module, e.atoms, e.annots, e.binds, e.macros, e.findings, e.errors, e.warnings, e.info)
|
||||
totals.atoms = totals.atoms + e.atoms
|
||||
totals.annots = totals.annots + e.annots
|
||||
totals.binds = totals.binds + e.binds
|
||||
totals.macros = totals.macros + e.macros
|
||||
totals.findings = totals.findings + e.findings
|
||||
totals.errors = totals.errors + e.errors
|
||||
totals.warnings = totals.warnings + e.warnings
|
||||
totals.info = totals.info + e.info
|
||||
end
|
||||
local line = string.format(" ● line %d %s [%s]", a.line, a.name, src_name)
|
||||
if a.binds then line = line .. " binds=" .. a.binds end
|
||||
if #a.reads > 0 then line = line .. " reads={" .. table.concat(a.reads, ",") .. "}" end
|
||||
if #a.writes > 0 then line = line .. " writes={" .. table.concat(a.writes, ",") .. "}" end
|
||||
return line
|
||||
lines[#lines + 1] = string.format("| **TOTAL** | %d | %d | %d | %d | %d | %d | %d | %d |"
|
||||
, totals.atoms, totals.annots, totals.binds, totals.macros, totals.findings, totals.errors, totals.warnings, totals.info)
|
||||
return table.concat(lines, "\n") .. "\n"
|
||||
end
|
||||
|
||||
--- (internal) Tally totals across all results in a module.
|
||||
--- @param results AnnotationResult[]
|
||||
--- @return integer, integer, integer, integer, integer, integer
|
||||
local function tally_module_totals(results)
|
||||
local total_atoms, total_annots, total_binds, total_macros = 0, 0, 0, 0
|
||||
local total_errors, total_warnings = 0, 0
|
||||
for _, r in ipairs(results) do
|
||||
total_atoms = total_atoms + #r.atoms
|
||||
total_annots = total_annots + #r.annots
|
||||
total_binds = total_binds + #r.binds
|
||||
total_macros = total_macros + #r.macros
|
||||
total_errors = total_errors + #r.errors
|
||||
total_warnings = total_warnings + #r.warnings
|
||||
--- Render the per-module verbose source-map markdown (`build/<module>.atoms.md`).
|
||||
--- Per-source sub-section, per-atom stanza with sourcemap + provenance rows.
|
||||
--- Pulls sourcemap + provenance from `atoms_source_map` (no second source walk).
|
||||
--- @param dir string
|
||||
--- @param dir_sources SourceFile[]
|
||||
--- @param wc table<string, integer>
|
||||
--- @return string
|
||||
local function render_module_atoms_md(dir, dir_sources, wc)
|
||||
local dir_basename = source_basename(dir)
|
||||
local lines = {
|
||||
"# " .. dir_basename .. " — atoms (verbose source map)",
|
||||
"> Per-word call-site + provenance. Auto-generated.",
|
||||
"",
|
||||
}
|
||||
for _, src in ipairs(dir_sources) do
|
||||
local src_name = source_basename(src.path)
|
||||
lines[#lines + 1] = "## " .. src_name
|
||||
lines[#lines + 1] = ""
|
||||
-- For each atom with a projection, render its sourcemap + provenance.
|
||||
local atoms_list = {}
|
||||
for _, atom in ipairs((src.scan or {}).atoms or {}) do
|
||||
if atom.paths then atoms_list[#atoms_list + 1] = atom end
|
||||
end
|
||||
return total_atoms, total_annots, total_binds, total_macros, total_errors, total_warnings
|
||||
for _, atom in ipairs((src.scan or {}).raw_atoms or {}) do
|
||||
if atom.paths then atoms_list[#atoms_list + 1] = atom end
|
||||
end
|
||||
if #atoms_list == 0 then
|
||||
lines[#lines + 1] = "_(no atom projections)_"
|
||||
lines[#lines + 1] = ""
|
||||
else
|
||||
-- Per-source forward-slash path (same one `emit_atom_stanza` / `emit_provenance_stanza` would derive;
|
||||
-- computed once per `## <source>` heading and reused by each atom's `WORD N CALL ...` field).
|
||||
local rel_path = src.path:gsub("\\\\", "/")
|
||||
for _, atom in ipairs(atoms_list) do
|
||||
lines[#lines + 1] = string.format(
|
||||
"### atom: %s (line %d, %d words)",
|
||||
atom.name, atom.line or 0, #(atom.paths.items or {}))
|
||||
lines[#lines + 1] = ""
|
||||
lines[#lines + 1] = "**Sourcemap** — per-word call site:"
|
||||
lines[#lines + 1] = "```"
|
||||
-- Per-atom invariant: call the per-atom renderers, NOT the per-source ones.
|
||||
-- The per-source renderers enumerate every atom in `src`;
|
||||
-- calling them in a per-atom loop would repeat the whole source under every `### atom:` heading.
|
||||
lines[#lines + 1] = atoms_source_map.render_atom_source_map(atom):gsub("\n+$", "")
|
||||
lines[#lines + 1] = "```"
|
||||
lines[#lines + 1] = ""
|
||||
lines[#lines + 1] = "**Provenance** — per-word definition + body:"
|
||||
lines[#lines + 1] = "```"
|
||||
lines[#lines + 1] = atoms_source_map.render_atom_provenance(atom, wc, rel_path):gsub("\n+$", "")
|
||||
lines[#lines + 1] = "```"
|
||||
lines[#lines + 1] = ""
|
||||
end
|
||||
end
|
||||
end
|
||||
return table.concat(lines, "\n") .. "\n"
|
||||
end
|
||||
|
||||
-- (internal) Section renderer: per-source atom declarations.
|
||||
local function render_module_atoms_section(add, results)
|
||||
add(SECTION_HEADER_ATOMS)
|
||||
for _, r in ipairs(results) do
|
||||
--- Render the consolidated per-module markdown (`build/<module>.atom_meta_report.md`).
|
||||
--- Aggregates annotation + static-analysis content across all sources in `dir`.
|
||||
--- Annotations come from re-running `annotation.validate()` per source (the existing pattern);
|
||||
--- static-analysis comes from `corpus.static_analysis_results[dir_basename]` (populated by `static_analysis.lua` — no second corpus_pipe_ctx build).
|
||||
--- @param dir string
|
||||
--- @param dir_sources SourceFile[]
|
||||
--- @param annot_results AnnotationResult[]
|
||||
--- @param sa_results table -- corpus.static_analysis_results[dir_basename]
|
||||
--- @return string
|
||||
local function render_module_meta_report(dir, dir_sources, annot_results, sa_results)
|
||||
local dir_basename = source_basename(dir)
|
||||
local lines = {
|
||||
"# " .. dir_basename .. " — atom meta report",
|
||||
"> Auto-generated by ps1_meta.lua (passes/report.lua). Do not edit.",
|
||||
"",
|
||||
}
|
||||
local function add(s) lines[#lines + 1] = s end
|
||||
|
||||
-- Module summary table.
|
||||
local n_atoms = 0
|
||||
local n_annot = 0
|
||||
local n_binds = 0
|
||||
local n_macros = 0
|
||||
local n_bare, n_proc = 0, 0
|
||||
for _, r in ipairs(annot_results) do
|
||||
n_atoms = n_atoms + #r.atoms
|
||||
n_annot = n_annot + #r.annots
|
||||
n_binds = n_binds + #r.binds
|
||||
n_macros = n_macros + #r.macros
|
||||
end
|
||||
for _, a in ipairs(sa_results.atoms or {}) do
|
||||
if a.kind == "comp_bare" then n_bare = n_bare + 1
|
||||
elseif a.kind == "comp_proc" then n_proc = n_proc + 1
|
||||
end
|
||||
end
|
||||
|
||||
add("## Module summary"); add("")
|
||||
add("| metric | value |"); add("|--------|-------|")
|
||||
add(string.format("| sources | %d |", #dir_sources))
|
||||
add(string.format("| atoms | %d (atoms: %d, comp_bare: %d, comp_proc: %d) |",
|
||||
#(sa_results.atoms or {}),
|
||||
#(sa_results.atoms or {}) - n_bare - n_proc, n_bare, n_proc))
|
||||
add(string.format("| annotations | %d |", n_annot))
|
||||
add(string.format("| binds structs | %d |", n_binds))
|
||||
add(string.format("| macro decls | %d |", n_macros))
|
||||
add(string.format("| findings | %d (errors: %d, warnings: %d, info: %d) |",
|
||||
#(sa_results.findings or {}),
|
||||
#(sa_results.errors or {}),
|
||||
#(sa_results.warnings or {}),
|
||||
#(sa_results.info or {})))
|
||||
add("")
|
||||
|
||||
-- Sources
|
||||
add("## Sources"); add("")
|
||||
for _, s in ipairs(dir_sources) do add("- `" .. s.path .. "`") end
|
||||
add("")
|
||||
|
||||
-- Atoms (annotation)
|
||||
add("## Atoms"); add("")
|
||||
add("| kind | name | source | line |"); add("|------|------|--------|------|")
|
||||
for _, r in ipairs(annot_results) do
|
||||
local src_name = source_basename(r.source)
|
||||
for _, a in ipairs(r.atoms) do
|
||||
add(string.format(" MipsAtom_(%s) line %d [%s]", a.name, a.line, src_name))
|
||||
add(string.format("| atom | %s | %s | %d |", a.name, src_name, a.line))
|
||||
end
|
||||
end
|
||||
add("")
|
||||
end
|
||||
|
||||
-- (internal) Section renderer: per-source annotation entries.
|
||||
local function render_module_annots_section(add, results)
|
||||
add(SECTION_HEADER_ANNOTS)
|
||||
for _, r in ipairs(results) do
|
||||
-- Annotations
|
||||
add("## Annotations"); add("")
|
||||
if #annot_results == 0 then
|
||||
add("_(none)_")
|
||||
else
|
||||
add("| source | line | name | binds | reads | writes |")
|
||||
add("|--------|------|------|-------|-------|--------|")
|
||||
for _, r in ipairs(annot_results) do
|
||||
local src_name = source_basename(r.source)
|
||||
for _, a in ipairs(r.annots) do
|
||||
add(format_annot_line(a, src_name))
|
||||
local binds = a.binds or "—"
|
||||
local reads = (#a.reads > 0 and table.concat(a.reads, ",")) or "—"
|
||||
local writes = (#a.writes > 0 and table.concat(a.writes, ",")) or "—"
|
||||
add(string.format("| %s | %d | %s | %s | %s | %s |"
|
||||
, src_name, a.line, a.name, binds, reads, writes))
|
||||
end
|
||||
end
|
||||
end
|
||||
add("")
|
||||
end
|
||||
|
||||
-- (internal) Section renderer: per-source Binds_* struct declarations.
|
||||
local function render_module_binds_section(add, results)
|
||||
add(SECTION_HEADER_BINDS)
|
||||
for _, r in ipairs(results) do
|
||||
-- Binds_* structs
|
||||
add("## Binds_* structs"); add("")
|
||||
if #annot_results == 0 then
|
||||
add("_(none)_")
|
||||
else
|
||||
for _, r in ipairs(annot_results) do
|
||||
local src_name = source_basename(r.source)
|
||||
for _, b in ipairs(r.binds) do
|
||||
add(string.format(" %s line %d %d bytes [%s]", b.name, b.line, b.bytes, src_name))
|
||||
add(string.format("### %s (%s:%d, %d bytes)",
|
||||
b.name, src_name, b.line, b.bytes))
|
||||
for _, f in ipairs(b.fields) do
|
||||
add(string.format(" +%2d: %s", f.offset, f.name))
|
||||
end
|
||||
end
|
||||
add(string.format("- `+%d %s`", f.offset, f.name))
|
||||
end
|
||||
add("")
|
||||
end
|
||||
end
|
||||
end
|
||||
|
||||
-- (internal) Section renderer: per-source macro word-count declarations.
|
||||
local function render_module_macros_section(add, results)
|
||||
add(SECTION_HEADER_MACROS)
|
||||
for _, r in ipairs(results) do
|
||||
-- Macro decls
|
||||
add("## Macro word-count declarations"); add("")
|
||||
if #annot_results == 0 then
|
||||
add("_(none)_")
|
||||
else
|
||||
add("| source | line | macro declaration |")
|
||||
add("|--------|------|-------------------|")
|
||||
for _, r in ipairs(annot_results) do
|
||||
local src_name = source_basename(r.source)
|
||||
for _, m in ipairs(r.macros) do
|
||||
add(string.format(" %s line %d words=%d [%s]", m.name, m.line, m.words, src_name))
|
||||
add(string.format("| %s | %d | %s |",
|
||||
src_name, m.line, m.name))
|
||||
end
|
||||
end
|
||||
end
|
||||
add("")
|
||||
end
|
||||
|
||||
-- (internal) Section renderer: per-source errors (one-line + "(none)" if empty).
|
||||
local function render_module_errors_section(add, results, total_errors)
|
||||
add(SECTION_HEADER_ERRORS)
|
||||
if total_errors == 0 then
|
||||
add(" (none)")
|
||||
-- Findings by atom (static-analysis)
|
||||
add("## Static analysis — findings by atom"); add("")
|
||||
local by_atom = {}
|
||||
for _, f in ipairs(sa_results.findings or {}) do
|
||||
by_atom[f.atom] = by_atom[f.atom] or {}
|
||||
by_atom[f.atom][#by_atom[f.atom] + 1] = f
|
||||
end
|
||||
if next(by_atom) == nil then
|
||||
add("_(no findings)_")
|
||||
else
|
||||
for _, r in ipairs(results) do
|
||||
local src_name = source_basename(r.source)
|
||||
for _, e in ipairs(r.errors) do
|
||||
add(string.format(" ✗ line %d %s [%s]", e.line, e.msg, src_name))
|
||||
end
|
||||
end
|
||||
for _, a in ipairs(sa_results.atoms or {}) do
|
||||
local fs = by_atom[a.name]
|
||||
if fs then
|
||||
add(string.format("### %s", a.name))
|
||||
for _, f in ipairs(fs) do
|
||||
add(string.format("- `[%s] %s`", f.check, f.msg))
|
||||
end
|
||||
add("")
|
||||
end
|
||||
end
|
||||
end
|
||||
|
||||
-- (internal) Section renderer: per-source warnings (one-line + "(none)" if empty).
|
||||
local function render_module_warnings_section(add, results, total_warnings)
|
||||
add(SECTION_HEADER_WARNINGS)
|
||||
if total_warnings == 0 then
|
||||
add(" (none)")
|
||||
-- Errors / Warnings / Info
|
||||
local function add_findings(label, entries)
|
||||
add(string.format("## %s", label))
|
||||
if #entries == 0 then
|
||||
add("_(none)_")
|
||||
else
|
||||
for _, r in ipairs(results) do
|
||||
local src_name = source_basename(r.source)
|
||||
for _, w in ipairs(r.warnings) do
|
||||
add(string.format(" ⚠ line %d %s [%s]", w.line, w.msg, src_name))
|
||||
end
|
||||
for _, e in ipairs(entries) do
|
||||
add(string.format("- line %d %s", e.line, e.msg))
|
||||
end
|
||||
end
|
||||
add("")
|
||||
end
|
||||
add_findings("Errors", sa_results.errors or {})
|
||||
add_findings("Warnings", sa_results.warnings or {})
|
||||
add_findings("Info", sa_results.info or {})
|
||||
|
||||
-- ════════════════════════════════════════════════════════════════════════════
|
||||
-- SECTION_RENDERERS — data-driven section dispatch (the plex pattern)
|
||||
-- ════════════════════════════════════════════════════════════════════════════
|
||||
--
|
||||
-- Each entry maps a section to its (header, render_fn). The render_fn signature:
|
||||
-- render_fn(add, results, totals)
|
||||
-- add -- the `add(line)` closure from the surrounding report renderer
|
||||
-- results -- AnnotationResult[] (per-source results)
|
||||
-- totals -- {atoms, annots, binds, macros, errors, warnings} counts
|
||||
--
|
||||
-- Sections that need to render "(none)" vs iterate use totals.errors / totals.warnings;
|
||||
-- other sections ignore the totals arg.
|
||||
-- Adding a new section = 1 row here + 1 render_<thing>_section function.
|
||||
local SECTION_RENDERERS = {
|
||||
{ header = SECTION_HEADER_ATOMS, render = render_module_atoms_section },
|
||||
{ header = SECTION_HEADER_ANNOTS, render = render_module_annots_section },
|
||||
{ header = SECTION_HEADER_BINDS, render = render_module_binds_section },
|
||||
{ header = SECTION_HEADER_MACROS, render = render_module_macros_section },
|
||||
{ header = SECTION_HEADER_ERRORS, render = function(add, results, totals) return render_module_errors_section(add, results, totals.errors) end },
|
||||
{ header = SECTION_HEADER_WARNINGS, render = function(add, results, totals) return render_module_warnings_section(add, results, totals.warnings) end },
|
||||
}
|
||||
|
||||
--- Render the per-MODULE annotation report (one `<dir_basename>.annotations.txt`).
|
||||
--- @param dir string -- module directory path
|
||||
--- @param sources SourceFile[] -- sources in this module
|
||||
--- @param results AnnotationResult[] -- per-source validate() results
|
||||
--- @return string -- the rendered report text
|
||||
local function render_module_report(dir, sources, results)
|
||||
local lines = {}
|
||||
local function add(s) lines[#lines + 1] = s end
|
||||
|
||||
add(RULE_THICK)
|
||||
add("ANNOTATION PASS — module " .. source_basename(dir))
|
||||
add(RULE_THICK)
|
||||
add(string.format("Sources: %d", #sources))
|
||||
for _, s in ipairs(sources) do add(" " .. s.path) end
|
||||
add("")
|
||||
|
||||
local total_atoms, total_annots, total_binds, total_macros, total_errors, total_warnings = tally_module_totals(results)
|
||||
add(string.format("Atoms: %d Annotations: %d Binds structs: %d Macro decls: %d",
|
||||
total_atoms, total_annots, total_binds, total_macros))
|
||||
add("")
|
||||
|
||||
-- Bundle the totals so the section renderers don't need separate parameter lists.
|
||||
-- Errors/warnings sections need their total count to decide "(none)" vs iterate.
|
||||
-- Sections without totals (atoms/annots/binds/macros) ignore this arg.
|
||||
local totals = {
|
||||
atoms = total_atoms, annots = total_annots, binds = total_binds,
|
||||
macros = total_macros, errors = total_errors, warnings = total_warnings,
|
||||
}
|
||||
|
||||
-- THE per-section dispatch. ONE loop over SECTION_RENDERERS.
|
||||
-- Each renderer writes its header + content via the `add` closure (pre-bound above).
|
||||
-- Adding a new section = 1 row here + 1 render_<thing>_section function.
|
||||
for _, section in ipairs(SECTION_RENDERERS) do
|
||||
section.render(add, results, totals)
|
||||
-- Per-atom cycle counts (path-aware)
|
||||
add("## Per-atom cycle counts (path-aware, best case, no stalls)"); add("")
|
||||
add("| atom | source | min | max | branches | paths | notes |")
|
||||
add("|------|--------|-----|-----|----------|-------|-------|")
|
||||
local sorted = {}
|
||||
for _, a in ipairs(sa_results.atoms or {}) do sorted[#sorted + 1] = a end
|
||||
table.sort(sorted, function(x, y)
|
||||
return ((x.paths or {}).cycles_max or 0) > ((y.paths or {}).cycles_max or 0)
|
||||
end)
|
||||
for _, a in ipairs(sorted) do
|
||||
local p = a.paths or {}
|
||||
local src_name = a.source_path and source_basename(a.source_path) or ""
|
||||
local notes = ""
|
||||
if p.has_loops then notes = notes .. " [loop!]" end
|
||||
if p.unknown_macros and #p.unknown_macros > 0 then
|
||||
notes = notes .. " [unknown: " .. table.concat(p.unknown_macros, ", ") .. "]"
|
||||
end
|
||||
add(string.format("| %s | %s | %d | %d | %d | %d | %s |",
|
||||
a.name, src_name,
|
||||
p.cycles_min or 0, p.cycles_max or 0,
|
||||
p.branches or 0, p.paths or 0, notes))
|
||||
end
|
||||
add("")
|
||||
|
||||
-- Per-source scan summary
|
||||
add("## Per-source scan summary"); add("")
|
||||
for _, src in ipairs(dir_sources) do
|
||||
local src_atoms = {}
|
||||
for _, a in ipairs(sa_results.atoms or {}) do
|
||||
if a.source_path == src.path then src_atoms[#src_atoms + 1] = a end
|
||||
end
|
||||
if #src_atoms > 0 then
|
||||
local mn, mx = math.huge, -1
|
||||
for _, a in ipairs(src_atoms) do
|
||||
local p = a.paths or {}
|
||||
if (p.cycles_min or 0) < mn then mn = p.cycles_min or 0 end
|
||||
if (p.cycles_max or 0) > mx then mx = p.cycles_max or 0 end
|
||||
end
|
||||
local path_str
|
||||
if mx > 0 then
|
||||
path_str = string.format(" cycles=%d..%d", mn, mx)
|
||||
else
|
||||
path_str = string.format(" %d cycles", mn)
|
||||
end
|
||||
add(string.format("- `%s` — %d atom%s%s",
|
||||
src.basename, #src_atoms,
|
||||
#src_atoms == 1 and "" or "s", path_str))
|
||||
end
|
||||
end
|
||||
add("")
|
||||
|
||||
return table.concat(lines, "\n") .. "\n"
|
||||
end
|
||||
|
||||
-- ════════════════════════════════════════════════════════════════════════════
|
||||
-- Per-project summary
|
||||
-- REPORT_RENDERERS — data-driven report dispatch (one row per file kind)
|
||||
-- ════════════════════════════════════════════════════════════════════════════
|
||||
|
||||
--- Render the per-project summary (`build/gen/annotation_validation.txt`).
|
||||
--- Aggregates totals across all sources; lists per-source error counts if any source has errors.
|
||||
--- @param all_results AnnotationResult[]
|
||||
--- @return string
|
||||
local function render_project_report(all_results)
|
||||
local lines = {}
|
||||
local function add(s) lines[#lines + 1] = s end
|
||||
|
||||
local total_atoms, total_annots, total_macros, total_binds = 0, 0, 0, 0
|
||||
local total_errors, total_warnings = 0, 0
|
||||
for _, r in ipairs(all_results) do
|
||||
total_atoms = total_atoms + #r.atoms
|
||||
total_annots = total_annots + #r.annots
|
||||
total_macros = total_macros + #r.macros
|
||||
total_binds = total_binds + #r.binds
|
||||
total_errors = total_errors + #r.errors
|
||||
total_warnings = total_warnings + #r.warnings
|
||||
end
|
||||
|
||||
add(RULE_THICK)
|
||||
add("ANNOTATION VALIDATION — project summary")
|
||||
add(RULE_THICK)
|
||||
add("")
|
||||
add(string.format("Atoms: %d", total_atoms))
|
||||
add(string.format("Annotations: %d", total_annots))
|
||||
add(string.format("Macros: %d", total_macros))
|
||||
add(string.format("Binds: %d", total_binds))
|
||||
add("")
|
||||
add(string.format("Errors: %d", total_errors))
|
||||
add(string.format("Warnings: %d", total_warnings))
|
||||
add("")
|
||||
|
||||
if total_errors > 0 then
|
||||
add("Per-source error counts:")
|
||||
for _, r in ipairs(all_results) do
|
||||
if #r.errors > 0 then
|
||||
local src_name = source_basename(r.source)
|
||||
add(string.format(" %s : %d error(s)", src_name, #r.errors))
|
||||
end
|
||||
end
|
||||
add("")
|
||||
end
|
||||
|
||||
return table.concat(lines, "\n") .. "\n"
|
||||
end
|
||||
|
||||
-- ════════════════════════════════════════════════════════════════════════════
|
||||
-- Orchestration helpers
|
||||
-- ════════════════════════════════════════════════════════════════════════════
|
||||
|
||||
--- (internal) Re-validate every source in a directory against the canonical corpus projection.
|
||||
--- Calls `annotation.validate()` per source to produce the per-source AnnotationResult (atoms / annots / macros / binds / errors / warnings)
|
||||
--- that the report renderer consumes. Eeach report pass run is reproducible from the corpus.
|
||||
--- Returns the list of module results + the flat list of all results (for the project-wide summary).
|
||||
--- @param ctx PassCtx
|
||||
--- @param dir_sources SourceFile[]
|
||||
--- @return AnnotationResult[], AnnotationResult[]
|
||||
local function lookup_module_results(ctx, dir_sources)
|
||||
local module_results = {}
|
||||
local all_results = {}
|
||||
-- `once = true` means render once at the project level (not per-module).
|
||||
-- `basename(dir_basename)` yields the file's basename for that kind.
|
||||
-- `gather(ctx, dir, dir_sources [, all_modules])` returns the rendered string.
|
||||
local REPORT_RENDERERS = {
|
||||
{
|
||||
name = "atom_meta_report",
|
||||
ext = "md",
|
||||
basename = function(dir_basename) return dir_basename .. ".atom_meta_report" end,
|
||||
once = false,
|
||||
gather = function(ctx, dir, dir_sources)
|
||||
-- Annotations: re-run `annotation.validate()` per source (the existing pattern).
|
||||
local annot_results = {}
|
||||
for _, src in ipairs(dir_sources) do
|
||||
if src.scan then
|
||||
local result = annotation.validate(ctx, src, nil)
|
||||
result.source = src.path -- tag for downstream rendering
|
||||
module_results[#module_results + 1] = result
|
||||
all_results[#all_results + 1] = result
|
||||
end
|
||||
end
|
||||
return module_results, all_results
|
||||
end
|
||||
|
||||
--- (internal) Does this module's results contain anything worth emitting?
|
||||
--- @param module_results AnnotationResult[]
|
||||
--- @return boolean
|
||||
local function module_has_content(module_results)
|
||||
for _, r in ipairs(module_results) do
|
||||
if #r.atoms > 0 or #r.annots > 0 or #r.binds > 0
|
||||
or #r.macros > 0 or #r.errors > 0 or #r.warnings > 0 then
|
||||
return true
|
||||
end
|
||||
end
|
||||
return false
|
||||
end
|
||||
|
||||
--- (internal) Log a debug message if `_G[DEBUG_FLAG]` is truthy.
|
||||
--- @param fmt string
|
||||
local function debug_log(fmt, ...)
|
||||
if _G[DEBUG_FLAG] then
|
||||
io.stderr:write(string.format("[%s] " .. fmt, PASS_NAME, ...))
|
||||
local r = annotation.validate(ctx, src, nil)
|
||||
r.source = src.path
|
||||
annot_results[#annot_results + 1] = r
|
||||
end
|
||||
end
|
||||
-- Static-analysis: read stashed projection (no re-validate).
|
||||
local dir_basename = dir:match("([^/\\]+)$") or dir
|
||||
local sa_results = (ctx.shared.corpus.static_analysis_results or {})[dir_basename] or {}
|
||||
return render_module_meta_report(dir, dir_sources, annot_results, sa_results)
|
||||
end,
|
||||
},
|
||||
{
|
||||
name = "atoms",
|
||||
ext = "md",
|
||||
basename = function(dir_basename) return dir_basename .. ".atoms" end,
|
||||
once = false,
|
||||
gather = function(ctx, dir, dir_sources)
|
||||
return render_module_atoms_md(dir, dir_sources,
|
||||
ctx.shared.corpus.word_counts or {})
|
||||
end,
|
||||
},
|
||||
{
|
||||
name = "summary",
|
||||
ext = "md",
|
||||
basename = function(_dir_basename) return "atom_meta_report.summary" end,
|
||||
once = true,
|
||||
gather = function(_ctx, _dir, _dir_sources, all_modules)
|
||||
return render_project_summary(all_modules)
|
||||
end,
|
||||
},
|
||||
}
|
||||
|
||||
-- ════════════════════════════════════════════════════════════════════════════
|
||||
-- M — module exports
|
||||
-- M — public pass surface
|
||||
-- ════════════════════════════════════════════════════════════════════════════
|
||||
|
||||
local M = {}
|
||||
|
||||
--- Run the report pass.
|
||||
--- Renders one `<dir_basename>.annotations.txt` per source-directory that has content, plus the project-wide `annotation_validation.txt` summary.
|
||||
--- Run the report pass. Emits 1 `atom_meta_report.summary.md` per build + 2 `atom_meta_report.md` + 2 `atoms.md` files per module (duffle + gte_hello).
|
||||
--- Reads `corpus.static_analysis_results` (added in Phase 1) to populate per-module findings without re-running validate().
|
||||
--- @param ctx PassCtx
|
||||
--- @return PassResult
|
||||
function M.run(ctx)
|
||||
local outputs = {}
|
||||
local errors = {}
|
||||
local warnings = {}
|
||||
|
||||
-- Module grouping comes from `corpus.sources_by_dir` (the canonical projection).
|
||||
-- Iterate it directly; no private cache, no per-pass stash.
|
||||
local corpus = ctx.shared and ctx.shared.corpus
|
||||
local by_dir = (corpus and corpus.sources_by_dir) or {}
|
||||
|
||||
duffle.ensure_dir(ctx.out_root)
|
||||
-- `out_path_root`: when the conventional `out_root` is `build/gen` (any spelling — relative, absolute, separator variants).
|
||||
-- Write the md files to `build/` (parent of `gen/`) instead of nested under `gen/`.
|
||||
-- Mirrors the `gdb_tape_atoms_runtime.gdb` relocation.
|
||||
local function ends_with_gen(p)
|
||||
return type(p) == "string" and (p:match("[/\\]gen[/\\]?$") ~= nil
|
||||
or p == "build/gen" or p == "build\\gen")
|
||||
end
|
||||
local out_root_effective = ends_with_gen(ctx.out_root)
|
||||
and ctx.out_root:gsub("[/\\]gen[/\\]?$", "")
|
||||
or ctx.out_root
|
||||
|
||||
duffle.ensure_dir(out_root_effective)
|
||||
|
||||
-- Aggregator for the project-wide `once = true` summary renderer.
|
||||
local all_modules = {}
|
||||
|
||||
local all_results_for_summary = {}
|
||||
for dir, dir_sources in pairs(by_dir) do
|
||||
local dir_basename = dir:match("([^/\\]+)$") or dir
|
||||
debug_log("dir=%s basename=%s sources=%d\n", dir, dir_basename, #dir_sources)
|
||||
|
||||
if #dir_sources > 0 then
|
||||
local module_results, all_results = lookup_module_results(ctx, dir_sources)
|
||||
for _, r in ipairs(all_results) do
|
||||
all_results_for_summary[#all_results_for_summary + 1] = r
|
||||
end
|
||||
|
||||
if module_has_content(module_results) then
|
||||
local out_path = ctx.out_root .. "/" .. dir_basename .. ".annotations.txt"
|
||||
duffle.write_file(out_path, render_module_report(dir, dir_sources, module_results))
|
||||
outputs[#outputs + 1] = { annotations_txt = out_path }
|
||||
else
|
||||
debug_log(" -> no content; skipping\n")
|
||||
end
|
||||
-- Per-renderer dispatch for the per-module renderers (once = false).
|
||||
for _, renderer in ipairs(REPORT_RENDERERS) do
|
||||
if not renderer.once then
|
||||
local body = renderer.gather(ctx, dir, dir_sources)
|
||||
local out_path = out_root_effective .. "/" .. renderer.basename(dir_basename) .. "." .. renderer.ext
|
||||
duffle.write_file(out_path, body)
|
||||
outputs[#outputs + 1] = { kind = renderer.name, path = out_path }
|
||||
end
|
||||
end
|
||||
|
||||
if #all_results_for_summary > 0 then
|
||||
local summary_path = ctx.out_root .. "/annotation_validation.txt"
|
||||
duffle.write_file(summary_path, render_project_report(all_results_for_summary))
|
||||
outputs[#outputs + 1] = { summary_txt = summary_path }
|
||||
-- For the summary, compute per-module totals once (re-validating annotations per source — same pattern as the meta_report renderer).
|
||||
local annot_results = {}
|
||||
for _, src in ipairs(dir_sources) do
|
||||
if src.scan then
|
||||
local r = annotation.validate(ctx, src, nil)
|
||||
r.source = src.path
|
||||
annot_results[#annot_results + 1] = r
|
||||
end
|
||||
end
|
||||
local n_annot, n_binds, n_macros = 0, 0, 0
|
||||
for _, r in ipairs(annot_results) do
|
||||
n_annot = n_annot + #r.annots
|
||||
n_binds = n_binds + #r.binds
|
||||
n_macros = n_macros + #r.macros
|
||||
end
|
||||
local sa_results = (corpus.static_analysis_results or {})[dir_basename] or {}
|
||||
all_modules[#all_modules + 1] = {
|
||||
module = dir_basename,
|
||||
atoms = #(sa_results.atoms or {}),
|
||||
annots = n_annot,
|
||||
binds = n_binds,
|
||||
macros = n_macros,
|
||||
findings = #(sa_results.findings or {}),
|
||||
errors = #(sa_results.errors or {}),
|
||||
warnings = #(sa_results.warnings or {}),
|
||||
info = #(sa_results.info or {}),
|
||||
}
|
||||
end
|
||||
|
||||
return { outputs = outputs, errors = errors, warnings = warnings }
|
||||
-- Project-wide renderer (once = true): write the summary file.
|
||||
for _, renderer in ipairs(REPORT_RENDERERS) do
|
||||
if renderer.once then
|
||||
local body = renderer.gather(ctx, nil, nil, all_modules)
|
||||
local out_path = out_root_effective .. "/" .. renderer.basename("") .. "." .. renderer.ext
|
||||
duffle.write_file(out_path, body)
|
||||
outputs[#outputs + 1] = { kind = renderer.name, path = out_path }
|
||||
end
|
||||
end
|
||||
|
||||
return { outputs = outputs, errors = {}, warnings = {} }
|
||||
end
|
||||
|
||||
return M
|
||||
|
||||
@@ -2,7 +2,6 @@
|
||||
---
|
||||
--- Single source-walk pass that produces the fat `SourceScan` payload consumed by all downstream passes. Walks each corpus source record once,
|
||||
--- extracting every construct type the metaprograms need:
|
||||
---
|
||||
--- MipsAtom_ (kind = "atom", with optional atom_info inner)
|
||||
--- MipsAtomComp_ (kind = "comp_bare")
|
||||
--- MipsAtomComp_Proc_ (kind = "comp_proc", body inside last {})
|
||||
@@ -14,8 +13,6 @@
|
||||
--- The result is attached to each `src.scan` so downstream passes can read from `src.scan.atoms` / `src.scan.binds` / etc. without re-walking the source.
|
||||
--- This is the first pass in the dep graph (no deps).
|
||||
--- Every other pass that reads source structure depends on this one — see `ps1_meta.lua :: PASSES`.
|
||||
---
|
||||
--- **Conventions**: tabs (1/level), EmmyLua annotations, no regex, Lua 5.3 compatible
|
||||
|
||||
-- Bootstrap: same as entry scripts. See `ps1_meta.lua` for the rationale.
|
||||
-- Bootstrap: load `scripts/duffle_paths.lua` (sets package.path + package.cpath).
|
||||
@@ -50,12 +47,12 @@ local parse_enum_int_literal
|
||||
--- @field line_of fun(pos: integer): integer -- shared LineIndex closure
|
||||
|
||||
--- @class DebugSkipMarker
|
||||
--- @field marker_kind string -- exact marker ident read from source. Only "atom_dbg_skip" (bare) is positive; any other ident reaches the unrelated fallback and is never associated with a declaration.
|
||||
--- @field marker_line integer -- line of the marker ident start
|
||||
--- @field marker_pos integer -- byte position of the marker ident start (the comment walker anchors here)
|
||||
--- @field marker_kind string -- Exact marker ident read from source. Only "atom_dbg_skip" (bare) is positive; any other ident reaches the unrelated fallback and is never associated with a declaration.
|
||||
--- @field marker_line integer -- Line of the marker ident start
|
||||
--- @field marker_pos integer -- Byte position of the marker ident start (the comment walker anchors here)
|
||||
--- @field is_bare boolean -- true iff marker_kind == "atom_dbg_skip" AND has_parens == false (the only positive form)
|
||||
--- @field has_parens boolean -- true iff a `(...)` follows the marker ident (diagnostic-only)
|
||||
--- @field args string|nil -- trimmed args inside the `(...)` (nil when has_parens is false)
|
||||
--- @field args string|nil -- Trimmed args inside the `(...)` (nil when has_parens is false)
|
||||
--- @field pending boolean -- true while awaiting the following declaration
|
||||
--- @field superseded_by_marker_line integer|nil -- set when a newer marker bumped this one out of the pending slot
|
||||
--- @field target_kind string|nil -- "atom" | "comp_bare" | "comp_proc" | "unrelated" once observed (nil if no declaration ever followed)
|
||||
@@ -71,15 +68,15 @@ local parse_enum_int_literal
|
||||
--- @field reg string -- "R_T0"
|
||||
--- @field type_name string
|
||||
--- @field pointer_depth integer
|
||||
--- @field source_line integer -- line of the call site (callsite or enum-site)
|
||||
--- @field source_line integer -- Line of the call site (callsite or enum-site)
|
||||
|
||||
--- @class AtomCtxEntry
|
||||
--- @field rbind_atom string -- the rbind atom ident that this consumer should propagate types from
|
||||
--- @field rbind_atom string -- The rbind atom ident that this consumer should propagate types from
|
||||
--- @field info_line integer
|
||||
--- @field source string -- absolute path of the source file
|
||||
--- @field source string -- Absolute path of the source file
|
||||
|
||||
--- @class AtomPhaseGroup
|
||||
--- @field atoms string[] -- atom names tagged with this phase label (source-order)
|
||||
--- @field atoms string[] -- Atom names tagged with this phase label (source-order)
|
||||
|
||||
--- @class AtomViewEntry
|
||||
--- @field atom_name string -- e.g. "red_cube_g4_face"
|
||||
@@ -88,11 +85,11 @@ local parse_enum_int_literal
|
||||
--- @field info_line integer -- line of the atom_info call
|
||||
|
||||
--- @class SourceFile
|
||||
--- @field path string -- absolute path to the source file
|
||||
--- @field text string -- the full source text
|
||||
--- @field dir string -- the directory containing the source
|
||||
--- @field basename string -- filename without extension
|
||||
--- @field scan table -- pre-scanned SourceScan payload (set by this pass)
|
||||
--- @field path string -- Absolute path to the source file
|
||||
--- @field text string -- Full source text
|
||||
--- @field dir string -- Directory containing the source
|
||||
--- @field basename string -- Filename without extension
|
||||
--- @field scan table -- Pre-scanned SourceScan payload (set by this pass)
|
||||
|
||||
--- @class PassCtx
|
||||
--- @field sources SourceFile[]
|
||||
@@ -111,15 +108,15 @@ local parse_enum_int_literal
|
||||
|
||||
--- @class AtomEntry
|
||||
--- @field line integer
|
||||
--- @field name string -- atom name (for components: without ac_ prefix)
|
||||
--- @field body string -- brace-delimited body (without the braces)
|
||||
--- @field body_off integer -- char offset of body[1] in source
|
||||
--- @field name string -- Atom name (for components: without ac_ prefix)
|
||||
--- @field body string -- Brace-delimited body (without the braces)
|
||||
--- @field body_off integer -- Char offset of body[1] in source
|
||||
--- @field kind string -- "atom" | "comp_bare" | "comp_proc" | "raw_atom"
|
||||
--- @field raw_name string -- un-stripped name (for components: with ac_ prefix)
|
||||
--- @field ident_pos integer -- position of the MipsAtom_/MipsAtomComp_ ident start
|
||||
--- @field after_paren integer -- position past the closing paren
|
||||
--- @field raw_name string -- Un-stripped name (for components: with ac_ prefix)
|
||||
--- @field ident_pos integer -- Position of the MipsAtom_/MipsAtomComp_ ident start
|
||||
--- @field after_paren integer -- Position past the closing paren
|
||||
--- @field debug_skip boolean -- true when an `atom_dbg_skip` bare marker immediately precedes this declaration (sole-owner stamp; see push_debug_skip_marker)
|
||||
--- @field declaration_comment string|nil -- populated by the scanner (backward walk past the marker, captures contiguous `/* */` or `//` block)
|
||||
--- @field declaration_comment string|nil -- Populated by the scanner (backward walk past the marker, captures contiguous `/* */` or `//` block)
|
||||
|
||||
-- ════════════════════════════════════════════════════════════════════════════
|
||||
-- Local helpers (shared by per-form parsers)
|
||||
@@ -139,10 +136,10 @@ local QUALIFIER_KEYWORDS = {
|
||||
local AC_PREFIX = "ac_"
|
||||
local AC_PREFIX_LEN = 3
|
||||
|
||||
-- Strip the "ac_" prefix from a component name.
|
||||
-- Returns the input unchanged if it doesn't start with the prefix.
|
||||
-- @param raw_name string
|
||||
-- @return string
|
||||
--- Strip the "ac_" prefix from a component name.
|
||||
--- Returns the input unchanged if it doesn't start with the prefix.
|
||||
--- @param raw_name string
|
||||
--- @return string
|
||||
local function strip_ac_prefix(raw_name)
|
||||
if #raw_name > AC_PREFIX_LEN and raw_name:sub(1, AC_PREFIX_LEN) == AC_PREFIX then
|
||||
return raw_name:sub(AC_PREFIX_LEN + 1)
|
||||
@@ -184,19 +181,19 @@ local function find_body_braces(source, after_paren, fallback)
|
||||
return body, after_brace, brace + 1
|
||||
end
|
||||
|
||||
-- Walk backward from `start_pos` capturing contiguous `/* */` block(s) and
|
||||
-- `//` line(s) that immediately precede it. The caller (preceding_declaration_comment)
|
||||
-- supplies `start_pos` so the walker does not need to detect marker shape or prelude layout.
|
||||
-- The scanner already knows the marker_pos + decl ident_pos and threads that knowledge forward.
|
||||
--
|
||||
-- The walker captures:
|
||||
-- - Block comment close `*/` followed by walking back to `/*`.
|
||||
-- - `//` line comments (the line containing the current non-ws position starts with `//`).
|
||||
-- It stops at the first non-ws char that does not begin a comment block or line.
|
||||
-- Empty string if no comment is adjacent.
|
||||
-- @param source string
|
||||
-- @param start_pos integer -- exclusive upper bound for the captured block
|
||||
-- @return string
|
||||
--- Walk backward from `start_pos` capturing contiguous `/* */` block(s) and
|
||||
--- `//` line(s) that immediately precede it. The caller (preceding_declaration_comment)
|
||||
--- supplies `start_pos` so the walker does not need to detect marker shape or prelude layout.
|
||||
--- The scanner already knows the marker_pos + decl ident_pos and threads that knowledge forward.
|
||||
---
|
||||
--- The walker captures:
|
||||
--- - Block comment close `*/` followed by walking back to `/*`.
|
||||
--- - `//` line comments (the line containing the current non-ws position starts with `//`).
|
||||
--- It stops at the first non-ws char that does not begin a comment block or line.
|
||||
--- Empty string if no comment is adjacent.
|
||||
--- @param source string
|
||||
--- @param start_pos integer -- exclusive upper bound for the captured block
|
||||
--- @return string
|
||||
local function preceding_comment_walk_backward(source, start_pos)
|
||||
local pieces = {}
|
||||
local scan_pos = start_pos
|
||||
@@ -249,13 +246,13 @@ local function preceding_comment_walk_backward(source, start_pos)
|
||||
return table.concat(pieces, "\n")
|
||||
end
|
||||
|
||||
-- Resolve the start position for the declaration-comment walk.
|
||||
-- When a debug-skip marker is pending, the walker must start from the position immediately before the marker ident
|
||||
-- (so it walks backward past the marker text and any `FI_ MipsAtom ac_X(args)` proc-prelude layout — neither of which is visible if we start from the declaration ident_pos).
|
||||
-- When no marker is pending, the walker starts from the declaration ident_pos directly.
|
||||
-- @param pending_marker DebugSkipMarker|nil
|
||||
-- @param ident_pos integer -- declaration ident position
|
||||
-- @return integer
|
||||
--- Resolve the start position for the declaration-comment walk.
|
||||
--- When a debug-skip marker is pending, the walker must start from the position immediately before the marker ident
|
||||
--- (so it walks backward past the marker text and any `FI_ MipsAtom ac_X(args)` proc-prelude layout — neither of which is visible if we start from the declaration ident_pos).
|
||||
--- When no marker is pending, the walker starts from the declaration ident_pos directly.
|
||||
--- @param pending_marker DebugSkipMarker|nil
|
||||
--- @param ident_pos integer -- declaration ident position
|
||||
--- @return integer
|
||||
local function comment_walk_start(pending_marker, ident_pos)
|
||||
if pending_marker then
|
||||
return pending_marker.marker_pos - 1
|
||||
@@ -263,16 +260,16 @@ local function comment_walk_start(pending_marker, ident_pos)
|
||||
return ident_pos - 1
|
||||
end
|
||||
|
||||
-- Attach the pending marker to the next declaration.
|
||||
-- The declaration form disambiguates whole atoms from components; the resolved `debug_skip` is stamped directly on the declaration record
|
||||
-- (sole-owner discipline; see push_debug_skip_marker).
|
||||
--
|
||||
-- A marker is POSITIVE (stamps `debug_skip = true` on the declaration) iff:
|
||||
-- marker_kind == "atom_dbg_skip" AND is_bare == true
|
||||
-- Any other spelling or shape (parenthesized form, legacy name) is recorded as a raw marker for annotation validation but never stamps `debug_skip`.
|
||||
-- @param out SourceScan
|
||||
-- @param target_kind string|nil -- "atom" | "comp_bare" | "comp_proc" | "unrelated" once observed
|
||||
-- @return boolean|nil -- true iff the marker is the positive bare form
|
||||
--- Attach the pending marker to the next declaration.
|
||||
--- The declaration form disambiguates whole atoms from components; the resolved `debug_skip` is stamped directly on the declaration record
|
||||
--- (sole-owner discipline; see push_debug_skip_marker).
|
||||
---
|
||||
--- A marker is POSITIVE (stamps `debug_skip = true` on the declaration) iff:
|
||||
--- marker_kind == "atom_dbg_skip" AND is_bare == true
|
||||
--- Any other spelling or shape (parenthesized form, legacy name) is recorded as a raw marker for annotation validation but never stamps `debug_skip`.
|
||||
--- @param out SourceScan
|
||||
--- @param target_kind string|nil -- "atom" | "comp_bare" | "comp_proc" | "unrelated" once observed
|
||||
--- @return boolean|nil -- true iff the marker is the positive bare form
|
||||
local function attach_debug_skip_marker(out, target_kind)
|
||||
local markers = out.debug_skip_markers
|
||||
local marker = markers[#markers]
|
||||
@@ -1280,7 +1277,6 @@ local function parse_mips_atom_comp_proc(source, pos, ident_end, line_of, out)
|
||||
local name = strip_ac_prefix(raw_name)
|
||||
-- Position of body[1] in source = open_paren + 1 (start of inner) + last_brace_pos + 1 (past '{').
|
||||
local body_off = open_paren + 2 + last_brace_pos
|
||||
|
||||
register_atom(out, "comp_proc", line_of(pos), name, body, body_off, raw_name, pos, after_paren, source)
|
||||
|
||||
return after_paren
|
||||
@@ -1396,7 +1392,7 @@ end
|
||||
--- 1. `typedef Struct_(<name>) { <body> } <alias>;` adds to type_name_registry (kind="struct").
|
||||
--- Binds_* aliases also land in out.binds[].
|
||||
--- 2. `typedef Enum_(<underlying>, <name>) { <body> } <alias>;`
|
||||
--- adds to type_name_registry (kind="enum").
|
||||
--- Adds to type_name_registry (kind="enum").
|
||||
--- 3. `typedef <type> <alias>;` simple typedef alias.
|
||||
--- Adds to type_name_registry (kind="typedef").
|
||||
--- 4. `typedef <type> TSet_(<name>);` duffle TSet_ convention.
|
||||
@@ -1472,8 +1468,7 @@ local function parse_typedef_binds(source, pos, ident_end, line_of, out)
|
||||
local inner, after_paren = read_parens_after(source, id2_end, id2_end)
|
||||
if not inner then return id2_end end
|
||||
local tset_name = duffle.trim(inner)
|
||||
-- Empty underlying span is acceptable; the TSet_ wrapper itself
|
||||
-- encodes the alias identity (per the duffle TSet_ convention).
|
||||
-- Empty underlying span is acceptable; the TSet_ wrapper itself encodes the alias identity (per the duffle TSet_ convention).
|
||||
register_typedef_alias("", tset_name, pos, line_of, out)
|
||||
attach_debug_skip_marker(out, "unrelated")
|
||||
return after_paren
|
||||
|
||||
+592
-363
File diff suppressed because it is too large
Load Diff
@@ -93,7 +93,7 @@ end
|
||||
--- Load the authored `word_count.metadata.h` into `ctx.shared.corpus.word_counts`.
|
||||
--- Generated `.macs.h` files are OUTPUT artifacts and are NOT scanned as inputs.
|
||||
--- Current component counts are computed and inserted by `passes/components.lua`
|
||||
--- after the components pass iterates `corpus.source_order` and writes each source's `<dir_basename>.macs.h` file.
|
||||
--- after the components pass iterates `corpus.source_order` and writes each source-directory's `gen/macs.h` file.
|
||||
---
|
||||
--- Contract:
|
||||
--- * `ctx.shared.corpus` MUST exist (canonical corpus ownership).
|
||||
|
||||
Binary file not shown.
+43
-56
@@ -2,24 +2,21 @@
|
||||
---
|
||||
--- Dispatches to pass modules under `scripts/passes/`, resolving dependencies topologically (Kahn's algorithm + cycle detection).
|
||||
---
|
||||
--- **Architecture**:
|
||||
--- - **PASSES table** — declarative dep graph (data, not code).
|
||||
--- - **FLAG_HANDLERS table** — maps CLI flags to handlers.
|
||||
--- - **parse_args** → **build_ctx** (resolves unity/direct includes or exact sources; no semantic scanning) → **topo_sort** → **dispatch_passes**.
|
||||
--- Architecture:
|
||||
--- - PASSES table: Declarative dep graph (data, not code).
|
||||
--- - FLAG_HANDLERS table: Maps CLI flags to handlers.
|
||||
--- - parse_args → build_ctx (resolves unity/direct includes or exact sources) → topo_sort → dispatch_passes.
|
||||
--- - The first pass in the dep graph is `scan-source` (see `passes/scan_source.lua`).
|
||||
--- It calls `duffle.scan_source` once per source to produce the fat `SourceScan` payload, which is attached to each `src.scan`.
|
||||
--- Every other pass that reads source structure depends on `scan-source` and consumes `src.scan` as a read-only.
|
||||
---
|
||||
--- **Conventions**: tabs (1/level), EmmyLua annotations, no regex,
|
||||
--- Lua 5.3 compatible.
|
||||
---
|
||||
-- ════════════════════════════════════════════════════════════════════════════
|
||||
-- Module-scope requires + package.path setup
|
||||
-- ════════════════════════════════════════════════════════════════════════════
|
||||
|
||||
-- Bootstrap: load `duffle_paths.lua` via this script's own path.
|
||||
-- Use `arg[0]` when this file is the entry script (`arg[0]` ends in "ps1_meta.lua");
|
||||
-- fall back to `debug.getinfo(1, "S").source` when this file is being dofile()'d or require()'d (in which case `arg[0]` is the *caller's* path, not ours).
|
||||
-- fall back to `debug.getinfo(1, "S").source` when this file is being dofile()'d or require()'d (in which case `arg[0]` is the *caller's* path).
|
||||
-- That single statement: (a) sets `package.path` + `package.cpath`, (b) at the bottom returns `require("duffle")`.
|
||||
-- So the dofile's return value is the duffle module.
|
||||
local _is_entry_script = arg and arg[0] and arg[0]:match("ps1_meta%.lua$") ~= nil
|
||||
@@ -57,45 +54,44 @@ local PASS_FLAG_DISPATCH_KEY = "__pass__"
|
||||
-- ════════════════════════════════════════════════════════════════════════════
|
||||
|
||||
--- @class PassDescriptor
|
||||
--- @field module string -- module name passed to require()
|
||||
--- @field module string -- Module name passed to require()
|
||||
--- @field kind string -- "shared" | "header-output" | "validation" | "diagnostic" | "report"
|
||||
--- -- Report severity is independent from process exit policy (see PASS_KIND_STOP_ON_ERROR).
|
||||
--- @field deps string[] -- names of upstream passes
|
||||
--- @field groups string[]? -- OPTIONAL build-phase groups this pass is a root of
|
||||
--- -- (e.g. { "pre-link" }, { "post-link" }); absent ⇒ dependency-only
|
||||
--- @field deps string[] -- Names of upstream passes
|
||||
--- @field groups string[]? -- OPTIONAL build-phase groups this pass is a root of (e.g. { "pre-link" }, { "post-link" }); absent ⇒ dependency-only
|
||||
|
||||
--- @class SourceFile
|
||||
--- @field path string -- absolute path to the source file
|
||||
--- @field text string -- the full source text
|
||||
--- @field dir string -- the directory containing the source
|
||||
--- @field basename string -- filename without extension
|
||||
--- @field path string -- Absolute path to the source file
|
||||
--- @field text string -- Full source text
|
||||
--- @field dir string -- Directory containing the source
|
||||
--- @field basename string -- Filename without extension
|
||||
|
||||
--- @class PassCtx
|
||||
--- @field metadata_path string -- path to word_count.metadata.h
|
||||
--- @field shared table -- cross-pass shared state
|
||||
--- @field shared.corpus table -- canonical authored-source/project projection
|
||||
--- @field out_root string -- output root (e.g. "build/gen")
|
||||
--- @field metadata_path string -- Path to word_count.metadata.h
|
||||
--- @field shared table -- Cross-pass shared state
|
||||
--- @field shared.corpus table -- Authored-source/project projection
|
||||
--- @field out_root string -- Output root (e.g. "build/gen")
|
||||
--- @field project_root string -- PS1 repository root
|
||||
--- @field flags table -- CLI flags + per-pass stash
|
||||
--- @field verbose boolean -- if true, log diagnostic info
|
||||
--- @field verbose boolean -- If true, log diagnostic info
|
||||
|
||||
--- @class Finding
|
||||
--- @field line integer -- source line (or 0 for pass-level)
|
||||
--- @field msg string -- finding message
|
||||
--- @field line integer -- Source line (or 0 for pass-level)
|
||||
--- @field msg string -- Finding message
|
||||
|
||||
--- @class PassResult
|
||||
--- @field outputs PassOutputEntry[] -- emitted file paths
|
||||
--- @field errors Finding[] -- build-stops (per-pass kind policy)
|
||||
--- @field warnings Finding[] -- informational
|
||||
--- @field outputs PassOutputEntry[] -- Emitted file paths
|
||||
--- @field errors Finding[] -- Build-stops (per-pass kind policy)
|
||||
--- @field warnings Finding[] -- Informational
|
||||
|
||||
--- @class ParsedArgs
|
||||
--- @field requested_set string[] -- pass names to run (explicit --all expanded)
|
||||
--- @field sources string[] -- exact --source values, retained in CLI order
|
||||
--- @field requested_set string[] -- Pass names to run (explicit --all expanded)
|
||||
--- @field sources string[] -- Exact --source values, retained in CLI order
|
||||
--- @field unity_root string|nil -- --unity-root value; mutually exclusive with sources
|
||||
--- @field metadata string -- --metadata value
|
||||
--- @field out_root string -- --out-root value (default "build/gen")
|
||||
--- @field project_root string -- PS1 repository root (derived from metadata by default)
|
||||
--- @field verbose boolean -- if true, log diagnostic info
|
||||
--- @field verbose boolean -- If true, log diagnostic info
|
||||
|
||||
-- ════════════════════════════════════════════════════════════════════════════
|
||||
-- PASSES Table
|
||||
@@ -141,7 +137,7 @@ local PASSES = {
|
||||
["static-analysis"] = {
|
||||
module = "passes.static_analysis",
|
||||
-- "diagnostic" — every `error`/`warning` finding is written to the report file;
|
||||
-- the orchestrator does NOT exit non-zero on these findings (see PASS_KIND_STOP_ON_ERROR).
|
||||
-- The orchestrator does NOT exit non-zero on these findings (see PASS_KIND_STOP_ON_ERROR).
|
||||
-- Report severity is independent from process exit policy.
|
||||
kind = "diagnostic",
|
||||
deps = {"scan-source", "word-counts", "components", "emission-model"},
|
||||
@@ -160,18 +156,18 @@ local PASSES = {
|
||||
report = {
|
||||
module = "passes.report",
|
||||
kind = "report",
|
||||
deps = {"annotation", "static-analysis"},
|
||||
deps = {"annotation", "static-analysis", "atoms-source-map"}, -- +atoms-source-map (consolidated-report-files refactor, 2026-07-26)
|
||||
groups = { "pre-link" },
|
||||
},
|
||||
}
|
||||
|
||||
-- ────────────────────────────────────────────────────────────────────────────
|
||||
-- Phase-root selection: derive the sorted set of roots belonging to a named build-phase group, then append them to `args.requested_set`.
|
||||
-- Phase-root selection: Derive the sorted set of roots belonging to a named build-phase group, then append them to `args.requested_set`.
|
||||
-- topo_sort closes the transitive deps from there; dispatch_passes runs every resolved pass without phase-filtering.
|
||||
-- ────────────────────────────────────────────────────────────────────────────
|
||||
|
||||
--- @param group_name string -- the build-phase group ("pre-link" | "post-link")
|
||||
--- @return string[] -- sorted root pass names belonging to that group
|
||||
--- @param group_name string -- Build-phase group ("pre-link" | "post-link")
|
||||
--- @return string[] -- Sorted root pass names belonging to that group
|
||||
local function roots_for_group(group_name)
|
||||
local names = {}
|
||||
for name, pass in pairs(PASSES) do
|
||||
@@ -206,9 +202,10 @@ end
|
||||
|
||||
-- Pass-kind taxonomy: Which kinds stop the build on errors?
|
||||
--
|
||||
-- Report severity is independent from process exit policy. A "diagnostic" pass still writes every `error`/`warning` finding into its report file,
|
||||
-- Report severity is independent from process exit policy.
|
||||
-- A "diagnostic" pass still writes every `error`/`warning` finding into its report file,
|
||||
-- but `report_validation_errors` returns early for non-stopping kinds, so nothing is printed to stderr and the orchestrator does not exit non-zero.
|
||||
-- Adding a new pass kind requires listing it here explicitly; an unknown kind must not silently fall back to "true".
|
||||
-- Adding a new pass kind requires listing it here explicitly; An unknown kind must not silently fall back to "true".
|
||||
local PASS_KIND_STOP_ON_ERROR = {
|
||||
["shared"] = false,
|
||||
["header-output"] = true,
|
||||
@@ -218,8 +215,7 @@ local PASS_KIND_STOP_ON_ERROR = {
|
||||
}
|
||||
|
||||
-- Closed set of CLI flags -> pass names.
|
||||
-- Per-pass flags (e.g. --word-counts) live here; phase flags (--pre-link, --post-link, --all)
|
||||
-- live in FLAG_HANDLERS because they own side effects or invoke group-derivation logic.
|
||||
-- Per-pass flags (e.g. --word-counts); phase flags (--pre-link, --post-link, --all) are within FLAG_HANDLERS because they own side effects or invoke group-derivation logic.
|
||||
-- dwarf-injection is *also* a per-pass opt-in flag, but its selection + opt-in state are both owned by the explicit FLAG_HANDLERS entry below
|
||||
-- (it sets args.flags.dwarf_injection and appends "dwarf-injection" to requested_set), so it is intentionally absent from this table.
|
||||
local PASS_FLAG_TO_NAME = {
|
||||
@@ -248,7 +244,6 @@ end
|
||||
|
||||
-- Per-flag handlers. Each handler takes (args, argv, arg_idx) and returns the new arg_idx (so multi-arg flags like --source FILE advance it).
|
||||
-- Returning nil + os.exit() handles termination flags (--help).
|
||||
|
||||
local FLAG_HANDLERS = {}
|
||||
|
||||
-- ════════════════════════════════════════════════════════════════════════════
|
||||
@@ -274,9 +269,9 @@ PASS_FLAGS:
|
||||
Or pick any subset:
|
||||
--scan-source Scan sources into the fat SourceScan payload
|
||||
--word-counts Load metadata.h + scan for existing .macs.h
|
||||
--components Generate <module>/gen/<basename>.macs.h
|
||||
--components Generate <srcdir>/gen/macs.h (per-directory aggregation)
|
||||
--validate Run atom annotation DSL validation
|
||||
--offsets Generate <module>/gen/<basename>.offsets.h
|
||||
--offsets Generate <srcdir>/gen/offsets.h (per-directory aggregation)
|
||||
--atoms-source-map Generate <basename>.atoms.sourcemap.txt per source
|
||||
--dwarf-injection [opt-in] Select the post-link dwarf-injection pass + set the opt-in flag. Requires --elf.
|
||||
--static-analysis Static analysis: GTE pipeline-fill, mac_yield, ABI handoff, cycle budget
|
||||
@@ -319,8 +314,7 @@ local function require_flag_value(argv, arg_idx, flag)
|
||||
local next_known = type(value) == "string"
|
||||
and (FLAG_HANDLERS[value] ~= nil or PASS_FLAG_TO_NAME[value] ~= nil)
|
||||
if value == nil or next_known then
|
||||
io.stderr:write("ps1_meta: " .. flag .. " requires "
|
||||
.. FLAG_VALUE_NAMES[flag] .. "\n")
|
||||
io.stderr:write("ps1_meta: " .. flag .. " requires " .. FLAG_VALUE_NAMES[flag] .. "\n")
|
||||
os.exit(EXIT_INTERNAL_ERROR)
|
||||
end
|
||||
return value, arg_idx + 1
|
||||
@@ -330,12 +324,10 @@ end
|
||||
-- Termination flags like --help call os.exit() instead.
|
||||
-- Populated AFTER print_help so the --help handler can reference it as an upvalue (Lua resolves locals at closure-call time,
|
||||
-- but if the closure is defined before the local, it falls back to _G).
|
||||
FLAG_HANDLERS["--help"] = function(args)
|
||||
print_help()
|
||||
os.exit(0)
|
||||
end
|
||||
|
||||
FLAG_HANDLERS["--help"] = function(args) print_help(); os.exit(0) end
|
||||
FLAG_HANDLERS["--verbose"] = function(args) args.verbose = true end
|
||||
|
||||
FLAG_HANDLERS["--source"] = function(args, argv, arg_idx)
|
||||
local value, value_idx = require_flag_value(argv, arg_idx, "--source")
|
||||
args.sources[#args.sources + 1] = value
|
||||
@@ -498,8 +490,7 @@ local function build_ctx(args)
|
||||
or normalized_project_root:sub(1, 2) == "//"
|
||||
or normalized_project_root:sub(1, 1) == "/"
|
||||
if not project_root_is_absolute then
|
||||
-- canonical_path_key validates ordinary relative paths and rejects
|
||||
-- drive-relative paths before the absolute-path rewrite is performed.
|
||||
-- canonical_path_key validates ordinary relative paths and rejects drive-relative paths before the absolute-path rewrite is performed.
|
||||
duffle.canonical_path_key(normalized_project_root)
|
||||
project_root = duffle.normalize_path(duffle.to_absolute_path(normalized_project_root))
|
||||
else
|
||||
@@ -513,8 +504,7 @@ local function build_ctx(args)
|
||||
project_root = project_root,
|
||||
})
|
||||
if not ok_resolve then
|
||||
io.stderr:write("ps1_meta: cannot resolve --unity-root "
|
||||
.. tostring(args.unity_root) .. ": " .. tostring(resolved) .. "\n")
|
||||
io.stderr:write("ps1_meta: cannot resolve --unity-root " .. tostring(args.unity_root) .. ": " .. tostring(resolved) .. "\n")
|
||||
os.exit(EXIT_INTERNAL_ERROR)
|
||||
end
|
||||
resolution = resolved
|
||||
@@ -530,8 +520,7 @@ local function build_ctx(args)
|
||||
local path = duffle.normalize_path(input_path)
|
||||
local key_ok, key_or_error = pcall(duffle.canonical_path_key, path)
|
||||
if not key_ok then
|
||||
error("ps1_meta: invalid --source " .. input_path .. ": "
|
||||
.. tostring(key_or_error), 0)
|
||||
error("ps1_meta: invalid --source " .. input_path .. ": " .. tostring(key_or_error), 0)
|
||||
end
|
||||
local file = io.open(path, "r")
|
||||
if not file then
|
||||
@@ -629,9 +618,7 @@ local function topo_sort(passes, requested_set)
|
||||
changed = false
|
||||
for name, _ in pairs(needed) do
|
||||
local pass = passes[name]
|
||||
if not pass then
|
||||
error("unknown pass '" .. name .. "' requested")
|
||||
end
|
||||
if not pass then error("unknown pass '" .. name .. "' requested") end
|
||||
for _, dep in ipairs(pass.deps) do
|
||||
if not needed[dep] then
|
||||
needed[dep] = true
|
||||
|
||||
Reference in New Issue
Block a user