Author SHA1 Message Date
ed 590ff1e2ec Curation pass: reduce nested conditional branching in some defnitions. 2026-07-25 13:00:36 -04:00
ed 653e18ee28 remove code related to dry run and dep graph rendering (ps1 meta) 2026-07-25 11:59:41 -04:00
ed ebb876fe89 report.lua: Remove redudnant section formatting/header 2026-07-25 11:25:12 -04:00
ed 1b40b16c0e Review pass. 2026-07-25 11:20:53 -04:00
ed 9ffd6592bc Better static analysis for C0 <-> C2 data race hazards. 2026-07-25 04:09:48 -04:00
ed d56adab38f branch delay slot better support.
Still reviewing. Need to see if gte is handled properly.
2026-07-23 18:35:02 -04:00
ed 08af73d0d2 Lua Metaprogram: Improvements to static analysis + others. 2026-07-23 10:18:30 -04:00
ed 67d54debfa offset corections (dwarf) 2026-07-22 18:00:09 -04:00
ed 3c25306070 fixes 2026-07-22 09:47:01 -04:00
ed c3cf05950e good enough for now 2026-07-21 22:29:22 -04:00
ed f6b4d9895e Adjustments to offset convention (don't want 1s based addresssing to mess with the spec defined encoding) 2026-07-21 20:52:13 -04:00
ed e70361b548 curation: first pass 2026-07-21 19:20:30 -04:00
ed ed3eb45b1d Fixes atom component gdb stepping. New phase/ctx annotations for atoms. Attempt at type views on registers (gdb pretty print failures).
Needs heavy curation and problably simplicication.
2026-07-18 10:29:04 -04:00
ed d7770b6e1d review pass on c code. 2026-07-15 08:56:37 -04:00
ed 137549b1c8 First pass review 2026-07-14 22:55:16 -04:00
ed 7d5b13aadb TODO: need to review snapshot 2026-07-14 12:16:00 -04:00
ed 2d901003f9 Fix off by one ahead issue with stepping into atoms. Support for local register symbols used in atoms + atom bindings locals in gdb. 2026-07-13 12:41:48 -04:00
ed b43d22008e improve step-debug latency 2026-07-12 15:39:35 -04:00
ed 904889b483 general review post-dwarf_injection.lua working 2026-07-12 15:14:59 -04:00
ed f7aa7b75e7 doing dwarf injectiion/mods for the tape atoms. syncs with vscode cursor. 2026-07-12 12:51:41 -04:00
ed aca6e30e20 better debug support 2026-07-11 22:44:32 -04:00
ed 8b0fb1d4e4 exploring gdb support for the atom asm dsl. 2026-07-11 21:02:34 -04:00
ed 9f7a4a00ce final pass on metaprogram 2026-07-11 19:53:12 -04:00
ed 277af1c901 update readme 2026-07-11 17:49:55 -04:00
38 changed files with 11583 additions and 2674 deletions
+73 -5
View File
@@ -4,7 +4,7 @@
// For more information, visit: https://go.microsoft.com/fwlink/?linkid=830387 // For more information, visit: https://go.microsoft.com/fwlink/?linkid=830387
"version": "0.2.0", "version": "0.2.0",
"configurations": [ "configurations": [
{ {
"name": "Debug: Hello Psy-Q!", "name": "Debug: Hello Psy-Q!",
"type": "gdb", "type": "gdb",
"request": "attach", "request": "attach",
@@ -12,6 +12,10 @@
"remote": true, "remote": true,
"cwd": "${workspaceRoot}/build", "cwd": "${workspaceRoot}/build",
"valuesFormatting": "parseText", "valuesFormatting": "parseText",
"registerLimit": "1-32",
"frameFilters": false,
"showDevDebugOutput": false,
"printCalls": false,
"stopAtConnect": true, "stopAtConnect": true,
"gdbpath": "gdb-multiarch", "gdbpath": "gdb-multiarch",
"windows": { "windows": {
@@ -20,10 +24,17 @@
"osx": { "osx": {
"gdbpath": "gdb" "gdbpath": "gdb"
}, },
"executable": "${workspaceRoot}/build/hello_psyq.elf", "executable": "${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": [ "autorun": [
"monitor reset shellhalt", "monitor reset shellhalt",
"load hello_psyq.elf", "load hello_gte.elf",
"source scripts/gdb/gdb_tape_atoms.gdb",
"tbreak main", "tbreak main",
"continue" "continue"
] ]
@@ -36,6 +47,10 @@
"remote": true, "remote": true,
"cwd": "${workspaceRoot}/build", "cwd": "${workspaceRoot}/build",
"valuesFormatting": "parseText", "valuesFormatting": "parseText",
"registerLimit": "1-32",
"frameFilters": false,
"showDevDebugOutput": false,
"printCalls": false,
"stopAtConnect": true, "stopAtConnect": true,
"gdbpath": "gdb-multiarch", "gdbpath": "gdb-multiarch",
"windows": { "windows": {
@@ -44,10 +59,16 @@
"osx": { "osx": {
"gdbpath": "gdb" "gdbpath": "gdb"
}, },
"executable": "${workspaceRoot}/build/hello_gpu.elf", "executable": "${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": [ "autorun": [
"monitor reset shellhalt", "monitor reset shellhalt",
"load hello_gpu.elf", "load hello_gte.elf",
"tbreak main", "tbreak main",
"continue" "continue"
] ]
@@ -60,6 +81,10 @@
"remote": true, "remote": true,
"cwd": "${workspaceRoot}/build", "cwd": "${workspaceRoot}/build",
"valuesFormatting": "parseText", "valuesFormatting": "parseText",
"registerLimit": "1-32",
"frameFilters": false,
"showDevDebugOutput": false,
"printCalls": false,
"stopAtConnect": true, "stopAtConnect": true,
"gdbpath": "gdb-multiarch", "gdbpath": "gdb-multiarch",
"windows": { "windows": {
@@ -69,12 +94,55 @@
"gdbpath": "gdb" "gdbpath": "gdb"
}, },
"executable": "${workspaceRoot}/build/hello_gte.elf", "executable": "${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": [ "autorun": [
"monitor reset shellhalt", "monitor reset shellhalt",
"load hello_gte.elf", "load hello_gte.elf",
"tbreak main", "tbreak main",
"continue" "continue"
] ]
},
{
"name": "Debug: Hello GTE Psy-Q! (atoms debug — DWARF-injected)",
"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_gte.dwarf-injected.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 build/hello_gte.dwarf-injected.elf",
"source scripts/gdb/gdb_tape_atoms.gdb",
"source build/gen/hello_gte.gdbinit",
"tbreak main",
"continue"
]
} }
] ]
} }
+73 -119
View File
@@ -3,34 +3,18 @@
* ============================================================================ * ============================================================================
* *
* ATOM DSL: Annotation layer for tape atoms (lottes_tape.h). * ATOM DSL: Annotation layer for tape atoms (lottes_tape.h).
* The metaprogram (scripts/passes/annotation.lua) reads source-as-written and validates:
* - atom_info(...) shape: up to three sub-calls (atom_bind(Binds_X), atom_reads(...), atom_writes(...)) in any order and are optional.
* - rbind atoms (atom_info(..., atom_bind(Binds_X), ...)) reference a real Binds_* struct declaration.
* - atom word-counts in word_counts.metadata.h match the body's actual .word count.
* *
* WHAT THIS HEADER IS * Pure macro anntation.
* ------------------- * ---------------
* The metaprogram (scripts/passes/annotation.lua) reads source-as-written * Don't want to constraint the macro usage to some attribute placment constraint, etc, don't want ot dela with the compiler.
* and validates: * atom_info, atom_bind, atom_reads, atom_writes, atom_label, atom_dbg_skip_over each expand to a C comment or to nothing
* - atom_info(...) shape: up to three sub-calls (atom_bind(Binds_X), * (C preprocessor strips them to whitespace).
* atom_reads(...), atom_writes(...)) in any order. All optional.
* (No phase token for now; phases may be reintroduced later.)
* - rbind atoms (atom_info(..., atom_bind(Binds_X), ...)) reference a
* real Binds_* struct declaration.
* - wave-context positions only reference the canonical 4-register
* set: R_PrimCursor / R_FaceCursor / R_VertBase / R_OtBase.
* - atom word-counts in word_counts.metadata.h agree with the body's
* actual .word count.
*
* WHY A PURE MACRO (atom_info, atom_bind, atom_reads, atom_writes, atom_label)
* -----------------------------------------------------------------
* Each of these expands to a C comment or to nothing. The C preprocessor
* strips them to whitespace. The metaprogram reads the literal token from
* source-as-written, NOT from the preprocessed output. This means:
* - the C compiler does no work for them (no __attribute__, no
* _Pragma, no asm side-effects)
* - they can never silently drift from the metaprogram's view
* (the metaprogram re-reads the source on every build)
* - the annotation is invisible to the linker, debugger, and IDE
* *
* ============================================================================ * ============================================================================
*
* Usage: * Usage:
* MipsAtom_(cube_tri) atom_info( * MipsAtom_(cube_tri) atom_info(
* atom_reads (R_PrimCursor, R_FaceCursor, R_VertBase, R_OtBase) * atom_reads (R_PrimCursor, R_FaceCursor, R_VertBase, R_OtBase)
@@ -60,30 +44,15 @@
* *
* Annotation rules * Annotation rules
* ---------------- * ----------------
* 1. atom_info(...) is OPTIONAL. Most atoms have no annotation. * 1. atom_info(...) is OPTIONAL. Atoms without atom_info are silently skipped by the metaprogram.
* Atoms without atom_info are silently skipped by the metaprogram. * 2. If present, atom_info takes up to three sub-calls, all order-independent within the arg list:
* * - atom_bind(Binds_X)
* 2. If present, atom_info takes up to three sub-calls, all * - atom_reads(...)
* order-independent within the arg list: * - atom_writes(...)
* - atom_bind(Binds_X) (optional; only for rbind atoms) * 3. atom_bind(Binds_X): metaprogram cross-references Binds_X against the `typedef struct Binds_X { ... } Binds_X;` declaration.
* - atom_reads(...) (optional; wave-context registers) * 4. atom_reads(...) and atom_writes(...): Used to to check if registers are used correctly in macros: R_PrimCursor / R_FaceCursor / R_VertBase / R_OtBase.
* - atom_writes(...) (optional; wave-context registers) * 5. atom_label(name: Utilize with atom_offset as a target location.
* * 6. atom_offset(F, T): Resolved by gen/atom_offsets.h, generated from the atom_label markers. Calculated during the offset pass of the lua metaprogram.
* 3. atom_bind(Binds_X) pins the ABI-struct shape -- the metaprogram
* cross-references Binds_X against the
* `typedef struct Binds_X { ... } Binds_X;` declaration.
*
* 4. atom_reads(...) and atom_writes(...) args are wave-context
* registers: R_PrimCursor / R_FaceCursor / R_VertBase / R_OtBase.
* Closed set. GTE / SP / DMA / I/O state is declared in source
* comments, not in atom_reads/atom_writes.
*
* 5. atom_label(name) is an anchor -- the macro is empty in C; the
* metaprogram records the marker at the current pos for offset
* calculation.
*
* 6. atom_offset(F, T) is resolved by gen/atom_offsets.h, generated
* from the atom_label markers.
*/ */
#ifdef INTELLISENSE_DIRECTIVES #ifdef INTELLISENSE_DIRECTIVES
@@ -92,64 +61,69 @@
#endif #endif
/* ============================================================================ /* ============================================================================
* WAVE-CONTEXT REGISTERS -- canonical register set for the tape wave model. * atom_reads(...) / atom_writes(...)
*
* R_PrimCursor output pointer into the prim arena (next OT entry to write)
* R_FaceCursor input pointer into the face array (next face to consume)
* R_VertBase base pointer into the vertex arena (this wave's vertices)
* R_OtBase base pointer into the ordering table (this wave's OT slot)
*
* Closed set. If your atom needs to touch GTE / SP / DMA / other side state,
* declare it at the source level as you normally would -- but DO NOT put
* those registers in atom_reads/atom_writes.
*
* ============================================================================*/
/* ============================================================================
* atom_reads(...) / atom_writes(...) -- wave-context register list
*
* atom_reads(R_PrimCursor, R_FaceCursor)
* -> (R_PrimCursor, R_FaceCursor) // comma-evaluated, discarded
*
* The macro produces a comma-evaluated expression that the C compiler
* silently discards (it sits in an unused arg position -- the result is
* never bound). The Lua tool pattern-matches the "atom_reads(...)" /
* "atom_writes(...)" token to extract the list.
*
* You can have at most one atom_reads(...) and at most one atom_writes(...)
* in an atom_info(...) call. To declare multiple disjoint sets (rare), just
* declare the union -- the metaprogram doesn't track which reads need which
* writes at this granularity.
* *
* Used during the static analysis pass of the metaprogram to do
* ============================================================================*/ * ============================================================================*/
#define atom_reads(...) (__VA_ARGS__) #define atom_reads(...) (__VA_ARGS__)
#define atom_writes(...) (__VA_ARGS__) #define atom_writes(...) (__VA_ARGS__)
/* ----------------------------------------------------------------------------
* atom_reg (per-enum opt-in marker for the DWARF register-alias registry)
*
* The bare `atom_reg` token adjacent to an enum entry in mips.h / lottes_tape.h flags that alias as debug-visible for scan_source's register_alias_registry.
* The C preprocessor strips it to a comment so no runtime symbol is created; the Lua scanner reads the bare token.
* ----------------------------------------------------------------------------*/
#define atom_reg /* atom_reg: opt the preceding enum entry into the DWARF registry */
/* ============================================================================ /* ============================================================================
* ATOM ANNOTATION MACROS * atom_info :
*
* atom_info -- single unified annotation. OPTIONAL. Most atoms have none.
*
* MipsAtom_(cube_tri) atom_info( * MipsAtom_(cube_tri) atom_info(
* atom_reads (R_PrimCursor, R_FaceCursor, R_VertBase, R_OtBase) * atom_reads (R_PrimCursor, R_FaceCursor, R_VertBase, R_OtBase)
* , atom_writes(R_PrimCursor, R_FaceCursor) * , atom_writes(R_PrimCursor, R_FaceCursor)
* ){ ... }; * ){ ... };
* *
* Shape (sub-args order-independent; all optional): * - atom_bind(Binds_X): metaprogram cross-references Binds_X against the `typedef struct Binds_X { ... } Binds_X;` declaration.
* - atom_bind(Binds_X): at most one; pins the ABI-struct shape * - atom_reads(...): comma-list of registers
* - atom_reads(...): at most one; comma-list of wave-context registers * - atom_writes(...): comma-list of registers
* - atom_writes(...): at most one; comma-list of wave-context registers
*
* No phase token for now. The metaprogram doesn't check ordering across
* atoms -- phases (init / bind / setup / work / commit / terminate) will
* be reintroduced when ordering checks are added.
*
* The macro expands to a C comment (or to nothing). The C compiler does
* no work. The metaprogram reads the source-as-written directly.
*
* ============================================================================*/ * ============================================================================*/
#define atom_info(...) /* atom_info(__VA_ARGS__) */ #define atom_info(...) /* atom_info(__VA_ARGS__) */
/* ----------------------------------------------------------------------------
* DEBUG SOURCE-STEP MARKERS
*
* Place atom_dbg_skip_over() before a MipsAtom_, MipsAtomComp_, or MipsAtomComp_Proc_.
* The following declaration kind determines whether the marker selects a whole atom or a component inline view.
* The source scanner associates the marker with that declaration; placement diagnostics are handled by the annotation pass.
* ----------------------------------------------------------------------------*/
#define atom_dbg_skip_over() /* atom_dbg_skip_over: skip the following atom or component source view */
/* ----------------------------------------------------------------------------
* Typed-view annotations (Registry for DWARF RR_<R_X> chain resolution)
* atom_type(<T>) -- overloaded:
* (a) enum-site default: `R_Foo = R_Tn, atom_reg atom_type(T)`
* Sets the per-alias default typed view in the register_alias_registry.
* Consumed by the DWARF chain step (e) when no per-atom atom_ctx / atom_phase / atom_type callsite provides a stronger resolution.
* (b) callsite override: `atom_reads(R_Foo atom_type(T), ...)` Overrides the per-alias default for THIS atom only.
* Last-write-wins per R_Name; conflict -> error.
* atom_ctx(<atom_name>) -- atom-info sub-call:
* Propagate another atom's atom.rbind.fields (its Binds_* typed fields) into THIS atom's typed-view resolution.
* The named atom must be an rbind atom (have `atom_bind(Binds_X)` in its `atom_info`).
* Used as the escape hatch when atom_phase is not the natural correlation.
* atom_phase(<label>) -- atom-info sub-call:
* Free-form C-identifier label for grouping atoms.
* Within a phase, the FIRST atom in source-order that owns its own atom.rbind provides
* the Binds_* field types used by all other atoms in the same phase.
* The preferred correlation mechanism; atom_ctx is the escape hatch for non-natural cases.
*
* All three expand to C comments
* (the bare-token convention matching `atom_reg` and `atom_dbg_skip_over`).
* The Lua scanner reads the bare tokens in source-as-written; the C preprocessor strips them.
* ----------------------------------------------------------------------------*/
#define atom_type(T) /* atom_type: associate <T> with the preceding enum entry (enum site) or this register (atom-info site) */
#define atom_ctx(atom_name) /* atom_ctx: propagate <atom_name>'s Binds_* field types into this atom's typed views */
#define atom_phase(label) /* atom_phase: tag this atom with <label> for grouped typed-view resolution */
/* ---------------------------------------------------------------------------- /* ----------------------------------------------------------------------------
* atom_bind(Binds_X) -- rbind sub-call of atom_info * atom_bind(Binds_X) -- rbind sub-call of atom_info
* *
@@ -158,13 +132,7 @@
* , atom_writes(R_PrimCursor, R_FaceCursor, R_VertBase, R_OtBase) * , atom_writes(R_PrimCursor, R_FaceCursor, R_VertBase, R_OtBase)
* ){ ... }; * ){ ... };
* *
* The Binds_X MUST be a typedef'd type (declared via * The Binds_X MUST be a typedef'd type (declared via `typedef struct Binds_X { ... } Binds_X;` somewhere in the source).
* `typedef struct Binds_X { ... } Binds_X;` somewhere in the source).
* The Lua tool cross-references this. Missing struct = error.
*
* atom_bind is a SUB-CALL of atom_info, not a standalone annotation macro.
*
* The macro expands to a C comment. The metaprogram reads source-as-written.
* ----------------------------------------------------------------------------*/ * ----------------------------------------------------------------------------*/
#define atom_bind(binds_struct) /* atom_bind(binds_struct) */ #define atom_bind(binds_struct) /* atom_bind(binds_struct) */
@@ -177,25 +145,11 @@
* *
* 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 * The metaprogram generates gen/atom_offsets.h with one #define with the offset value per atom_offset(F, T) call.
* #define atom_offset__culling__bounds_chk ((target - branch_pos - 1)) * The preprocessor then expands the call to the right immediate value.
* per atom_offset(F, T) call. The preprocessor then expands your 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.
* This catches:
* - typo in atom_label (no anchor → metaprogram doesn't emit the macro)
* - .offsets.h not regenerated after body edits
* - body edit that broke the offset math (recompile + retest picks it up
* in CPU emulator)
* *
* 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.
* ============================================================================*/ * ============================================================================*/
#define atom_offset(F, T) atom_offset_ ## F ## _ ## T #define atom_offset(F, T) atom_offset_ ## F ## _ ## T
/* atom_label is a pure annotation for the metaprogram's offset calculations. // atom_label is a pure annotation for the metaprogram's offset calculations.
* The macro expands to a C comment, so the C preprocessor strips it to
* whitespace — NO instruction word is emitted in the asm. The metaprogram
* still recognises the literal `atom_label(name)` token in source and
* records the marker at the current pos. */
#define atom_label(name) /* atom_label anchor: name */ #define atom_label(name) /* atom_label anchor: name */
+1 -2
View File
@@ -23,7 +23,6 @@ WORD_COUNT(mac_yield, 4)
, load_half_u(R_T2, R_FaceCursor, 2 * S_(S2)) , load_half_u(R_T2, R_FaceCursor, 2 * S_(S2))
WORD_COUNT(mac_load_tri_indices, 3) WORD_COUNT(mac_load_tri_indices, 3)
/* Words: 18; Translates indices to vertex addresses and pushes them to GTE */
#define mac_gte_load_tri_verts(...) \ #define mac_gte_load_tri_verts(...) \
shift_lleft(R_AT, R_T0, v3s2_byteoff) \ shift_lleft(R_AT, R_T0, v3s2_byteoff) \
, add_u_self(R_AT, R_VertBase) \ , add_u_self(R_AT, R_VertBase) \
@@ -77,7 +76,7 @@ WORD_COUNT(mac_insert_ot_tag_g4, 11)
#define mac_pack_color_word(off, cmd, r, g, b) \ #define mac_pack_color_word(off, cmd, r, g, b) \
load_upper_i(R_AT, (cmd) << 8 | (b)) \ load_upper_i(R_AT, (cmd) << 8 | (b)) \
, or_i_self( R_AT, ((g) << 8) | (r)) \ , or_i_self( R_AT, ((g) << 8) | (r)) \
, store_word( R_AT, R_PrimCursor, (off)) , store_word( R_AT, R_PrimCursor, (off))
WORD_COUNT(mac_pack_color_word, 3) WORD_COUNT(mac_pack_color_word, 3)
+37 -64
View File
@@ -1,7 +1,6 @@
/* ============================================================================ /* ============================================================================
* duffle DSL Suffix Conventions * duffle DSL Suffix Conventions
* ============================================================================ * ============================================================================
*
* Every mnemonic in this header follows the same suffix grammar: * Every mnemonic in this header follows the same suffix grammar:
* *
* Primitive commands: gp0_cmd_poly_f3 = 0x20 (byte opcode) * Primitive commands: gp0_cmd_poly_f3 = 0x20 (byte opcode)
@@ -26,8 +25,7 @@
* 0. Opcode IDs gp0_cmd_poly_f3 = 0x20 * 0. Opcode IDs gp0_cmd_poly_f3 = 0x20
* *
* Vendor mnemonics (gte_mtc2, gte_mfc2, etc.) are NOT in this header. * Vendor mnemonics (gte_mtc2, gte_mfc2, etc.) are NOT in this header.
* They live in the opt-in `gp_vendor_sym.h` for users who prefer the * They live in the opt-in `gp_vendor_sym.h` for users who prefer the PSYQ-style names.
* PSYQ-style names.
* ============================================================================ */ * ============================================================================ */
#ifdef INTELLISENSE_DIRECTIVES #ifdef INTELLISENSE_DIRECTIVES
@@ -41,15 +39,14 @@
/* ============================================================================ /* ============================================================================
* Hardware MMIO Addresses * Hardware MMIO Addresses
* ============================================================================ * ============================================================================
*
* PSX GPU has two 32-bit ports in the I/O register region at KSEG2 * 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). * 0x1F800000+. GP0 (offset 0x10) is the data port (commands + params).
* GP1 (offset 0x14) is the control port (status, ctrl writes). * GP1 (offset 0x14) is the control port (status, ctrl writes).
* ============================================================================ */ * ============================================================================ */
/* IO base address (KSEG2 0x1F800000+ for the I/O register region). /* IO base address (KSEG2 0x1F800000+ for the I/O register region).
* The 16-bit upper half `IO_BASE_ADDR_HI16` is the form used by * The 16-bit upper half `IO_BASE_ADDR_HI16` is the form used by tape-side macros that pin a register
* tape-side macros that pin a register to hold the IO base and access * to hold the IO base and access ports via offsets:
* ports via offsets — `lui $reg, 0x1F80` (1 word) then `sw $data, GPIO_PORT*_OFFSET($reg)` (1 word). * `lui $reg, 0x1F80` (1 word) then `sw $data, GPIO_PORT*_OFFSET($reg)` (1 word).
* Mirrors the `IO_BASE_ADDR equ 0x1F80` + `gpio_port0 equ 0x1810` pattern from graphics_hello/gp.s. */ * Mirrors the `IO_BASE_ADDR equ 0x1F80` + `gpio_port0 equ 0x1810` pattern from graphics_hello/gp.s. */
enum { enum {
IO_BASE_ADDR = 0x1F800000, /* full 32-bit I/O region base */ IO_BASE_ADDR = 0x1F800000, /* full 32-bit I/O region base */
@@ -75,12 +72,10 @@ enum {
/* ============================================================================ /* ============================================================================
* GP0 command byte constants + Layer 1 (GPU bitfield shifts) * 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. * 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 * The layer-1 bitfield-layout constants live in the same enum block so the encoder can reference them by name.
* so the encoder can reference them by name. * NO macro body past this point uses a raw shift or raw mask.
* NO macro body past this point uses a raw shift or raw mask. * Every shift/width/mask is named here, named once.
* Every shift/width/mask is named here, named once.
* Mirrors the OPCODE_SHIFT / RS_SHIFT / REG_MASK convention from mips.h. * Mirrors the OPCODE_SHIFT / RS_SHIFT / REG_MASK convention from mips.h.
* ============================================================================ */ * ============================================================================ */
enum { enum {
@@ -143,9 +138,7 @@ enum {
/* ============================================================================ /* ============================================================================
* Layer 1.5 (per-field encoders) + Layer 2 (composite) + Layer 3 (semantic GP0 word builders) * Layer 1.5 (per-field encoders) + Layer 2 (composite) + Layer 3 (semantic GP0 word builders)
* ============================================================================ * ============================================================================
* * Layer 1.5 encoders take one field's value, mask it to its own width, and shift it to its own position.
* Layer 1.5 encoders take one field's value, mask it to its own width,
* and shift it to its own position.
* Mirrors `enc_op` / `enc_rs` / `enc_rt` in mips.h and `enc_gte_sf` / `enc_gte_mx` in gte.h. * Mirrors `enc_op` / `enc_rs` / `enc_rt` in mips.h and `enc_gte_sf` / `enc_gte_mx` in gte.h.
* Layer-2 composite encoders OR the per-field encoders together; layer-3 semantic macros delegate to the composites. * Layer-2 composite encoders OR the per-field encoders together; layer-3 semantic macros delegate to the composites.
* No raw shifts or magic numbers in any macro body below this point. * No raw shifts or magic numbers in any macro body below this point.
@@ -186,10 +179,9 @@ enum {
/* ============================================================================ /* ============================================================================
* GP1 command byte constants + Layer 1 (display-mode + range + draw-area bitfield shifts) * GP1 command byte constants + Layer 1 (display-mode + range + draw-area bitfield shifts)
* ============================================================================ * ============================================================================
* * GP1 status bits are read from HW_GP1;
* GP1 status bits are read from HW_GP1; ctrl writes use GP1 commands * ctrl writes use GP1 commands packed into 32-bit words
* packed into 32-bit words (cmd byte in the upper 8 bits via * (cmd byte in the upper 8 bits via `enc_gp0_cmd(cmd)`).
* `enc_gp0_cmd(cmd)` — never a raw shift).
* ============================================================================ */ * ============================================================================ */
enum { enum {
gp1_cmd_Reset = 0x00, gp1_cmd_Reset = 0x00,
@@ -202,10 +194,9 @@ enum {
gp1_cmd_VerticalDisplayRange = 0x07, gp1_cmd_VerticalDisplayRange = 0x07,
gp1_cmd_DisplayMode = 0x08, gp1_cmd_DisplayMode = 0x08,
/* Note: GP1 only has commands 0x00..0x08. /* Note: GP1 only has commands 0x00..0x08.
* The state-setter commands (SetTextureWindow, * SetDrawArea*, * The state-setter commands (SetTextureWindow, * SetDrawArea*, SetDrawOffset, SetMaskBit)
* SetDrawOffset, SetMaskBit) live in the GP0 enum as * 0xE1..0xE6. * live in the GP0 enum as * 0xE1..0xE6.
* DrawArea word builders are below as GP0s * macros * DrawArea word builders are below as GP0s * macros (since they emit GP0 commands). */
* (since they emit GP0 commands). */
/* ---- Display-mode payload flags (per PSX-SPX §"GP1 Display Mode"). /* ---- Display-mode payload flags (per PSX-SPX §"GP1 Display Mode").
* Bit positions match the encoder shifts below; values are the * Bit positions match the encoder shifts below; values are the
@@ -259,8 +250,7 @@ enum {
#define enc_gp1_vrange_word(y1, y2) (enc_gp0_cmd(gp1_cmd_VerticalDisplayRange) | enc_gp1_vrange_y1(y1) | enc_gp1_vrange_y2(y2)) #define enc_gp1_vrange_word(y1, y2) (enc_gp0_cmd(gp1_cmd_VerticalDisplayRange) | enc_gp1_vrange_y1(y1) | enc_gp1_vrange_y2(y2))
/* ---- Layer 2: GP0 state-setter composite encoders ---- /* ---- Layer 2: GP0 state-setter composite encoders ----
* GP0(0xE3) SetDrawArea top-left and GP0(0xE4) SetDrawArea bottom-right * GP0(0xE3) SetDrawArea top-left and GP0(0xE4) SetDrawArea bottom-right both use the same X/Y 10-bit signed payload as GP1 DisplayRange. */
* both use the same X/Y 10-bit signed payload as GP1 DisplayRange. */
#define enc_gp0_draw_area_tl_word(x, y) (enc_gp0_cmd(gp0_cmd_SetDrawArea_TopLeft) | enc_gp1_draw_x(x) | enc_gp1_draw_y(y)) #define enc_gp0_draw_area_tl_word(x, y) (enc_gp0_cmd(gp0_cmd_SetDrawArea_TopLeft) | enc_gp1_draw_x(x) | enc_gp1_draw_y(y))
#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)) #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))
@@ -282,7 +272,6 @@ enum {
/* ============================================================================ /* ============================================================================
* Pre-baked GPU state words * Pre-baked GPU state words
* ============================================================================ * ============================================================================
*
* Common command words for boot-time GPU init and standard display configurations. * Common command words for boot-time GPU init and standard display configurations.
* ============================================================================ */ * ============================================================================ */
@@ -356,7 +345,6 @@ enum {
/* ============================================================================ /* ============================================================================
* Primitive structs (8 polygon variants + tag) * Primitive structs (8 polygon variants + tag)
* ============================================================================ * ============================================================================
*
* Each struct follows the GPU-documented memory layout for the corresponding primitive command. * Each struct follows the GPU-documented memory layout for the corresponding primitive command.
* The PolyTag is the OT-link header; the rest of the struct is the primitive's body. * The PolyTag is the OT-link header; the rest of the struct is the primitive's body.
* *
@@ -390,9 +378,9 @@ typedef Struct_(PolyTag) {
* No raw C-style casts. RHS values are assumed to be `U4` — caller passes a `U4` directly. */ * No raw C-style casts. RHS values are assumed to be `U4` — caller passes a `U4` directly. */
#define set_len(tag,v) (C_(PolyTag_R,tag)->len = u4_(v)) #define set_len(tag,v) (C_(PolyTag_R,tag)->len = u4_(v))
#define set_addr(tag,v) (C_(PolyTag_R,tag)->addr = u4_(v)) #define set_addr(tag,v) (C_(PolyTag_R,tag)->addr = u4_(v))
/* `set_code` is no longer in the new PolyTag design — the code byte lives /* `set_code` is no longer in the new PolyTag design — the code byte lives in the primitive body
* in the primitive body (e.g. `((Poly_F3*)(p))->code`), not in the tag. * (e.g. `((Poly_F3*)(p))->code`), not in the tag.
* Use the typed primitive structs (Poly_F3, Poly_G4, etc.) and the `set_poly_*` setters, * Use the typed primitive structs (Poly_F3, Poly_G4, etc.) and the `set_poly_*` setters,
* which set both the tag's length and the code. */ * which set both the tag's length and the code. */
#define get_len(tag) C_(U4,C_(PolyTag_R,tag)->len) #define get_len(tag) C_(U4,C_(PolyTag_R,tag)->len)
#define get_addr(tag) C_(U4,C_(PolyTag_R,tag)->addr) #define get_addr(tag) C_(U4,C_(PolyTag_R,tag)->addr)
@@ -511,7 +499,6 @@ typedef Struct_(Poly_GT4) {
/* ============================================================================ /* ============================================================================
* Texture Page (TPage) bit layout * Texture Page (TPage) bit layout
* ============================================================================ * ============================================================================
*
* The TPage data word sent via GP0(0x2X) has: * The TPage data word sent via GP0(0x2X) has:
* bits 0..3 = texture page X (4 bits, 64-px units, 0..16) * bits 0..3 = texture page X (4 bits, 64-px units, 0..16)
* bit 4 = texture page Y (1 bit, 64-px units, 0/1) * bit 4 = texture page Y (1 bit, 64-px units, 0/1)
@@ -575,7 +562,6 @@ typedef Struct_(TexturePage) { U4 raw; };
/* ============================================================================ /* ============================================================================
* CLUT (Color Look-Up Table) semantics * CLUT (Color Look-Up Table) semantics
* ============================================================================ * ============================================================================
*
* CLUT is loaded into VRAM by sending a GP0 command whose payload is: * CLUT is loaded into VRAM by sending a GP0 command whose payload is:
* bits 0..5 = Y in 16-px units (palette row) * bits 0..5 = Y in 16-px units (palette row)
* bits 6..14 = X in 16-px units (palette column) * bits 6..14 = X in 16-px units (palette column)
@@ -608,7 +594,6 @@ enum {
/* ============================================================================ /* ============================================================================
* TIM file format constants and headers * TIM file format constants and headers
* ============================================================================ * ============================================================================
*
* TIM (Sony .TIM texture image) file structure: * TIM (Sony .TIM texture image) file structure:
* +0x00 U4 file_id (always 0x10 = TIM magic) * +0x00 U4 file_id (always 0x10 = TIM magic)
* +0x04 U4 version (always 0x00 for v1) * +0x04 U4 version (always 0x00 for v1)
@@ -626,9 +611,8 @@ enum {
* +0x06 U2 px_height * +0x06 U2 px_height
* +0x08 ... pixel data * +0x08 ... pixel data
* *
* Future?: add `tim_load_to_vram(tim_ptr, vram_addr)` that * Future?: add `tim_load_to_vram(tim_ptr, vram_addr)` that emits the necessary GP0 commands.
* emits the necessary GP0 commands. Stoppped for now at the * Stoppped for now at the struct + enum level.
* struct + enum level.
* ============================================================================ */ * ============================================================================ */
enum { enum {
tim_file_id_magic = 0x10, tim_file_id_magic = 0x10,
@@ -659,35 +643,24 @@ typedef Struct_(TIM_SectionHeader) {
* Tape-side GPU operations (NOT in this header) * Tape-side GPU operations (NOT in this header)
* ============================================================================ * ============================================================================
* *
* No `mac_gp0_send` or related macros live in gp.h. Rationale: the * No `mac_gp0_send` or related macros live in gp.h.
* Lottes tape model uses OT-DMA for primitive submission, so atom bodies * Rationale: the Lottes tape model uses OT-DMA for primitive submission, so atom bodies write to main RAM (the OT/primitive buffer)
* write to main RAM (the OT/primitive buffer) and to GTE state — never * and to GTE state — never directly to the GPU ports at 0x1F801810 / 0x1F801814.
* directly to the GPU ports at 0x1F801810 / 0x1F801814. See * See `mac_format_f3_color`, `mac_insert_ot_tag`, `mac_gte_store_f3` in lottes_tape.h for the patterns atom bodies actually use.
* `mac_format_f3_color`, `mac_insert_ot_tag`, `mac_gte_store_f3` in
* lottes_tape.h for the patterns atom bodies actually use.
* *
* If a feature need arises requires tape-side GPU port writes (e.g. DMA-kick to * If a feature need arises requires tape-side GPU port writes
* start GPU consumption of the OT, VBlank sync via GP1 status poll), * (e.g. DMA-kick to start GPU consumption of the OT, VBlank sync via GP1 status poll),
* the right home is `lottes_tape.h` alongside the rest of the `mac_*` * the right home is `lottes_tape.h` alongside the rest of the `mac_*` family:
* family — the encoder infrastructure is already in place: * 1. The caller pins a register to hold the IO base, e.g. register U4 r_io rgcc(R_T4) = IO_BASE_ADDR;
* The compiler emits `lui R_T4, IO_BASE_ADDR_HI16` outside the atom body (in the C prologue before tape_run).
* 2. The atom body uses `store_word(R_data, R_T4, GPIO_PORT0_OFFSET)` to write to GP0, and `store_word(R_data, R_T4, GPIO_PORT1_OFFSET)`
* to write to GP1. Both are preprocessor-encodable because R_T4 is a fixed register and the GPIO_PORT*_OFFSET constants
* fit in the `sw`'s 16-bit signed offset field. No placeholder-pun, no asm constraints, no hidden register choice.
* Same pattern as the old graphics_hello/hello_gp_routines.s `reg_io_offset`/`gcmd_push` convention.
* *
* 1. The caller pins a register to hold the IO base, e.g. * This mirrors the existing tape-side wave-context discipline:
* register U4 r_io rgcc(R_T4) = IO_BASE_ADDR; * the caller binds the IO-base register via `rgcc()`, the macro assumes the binding is in effect,
* The compiler emits `lui R_T4, IO_BASE_ADDR_HI16` outside the * and the encoding falls out at preprocessor time.
* atom body (in the C prologue before tape_run). * No additional GPU-domain macro layer required.
*
* 2. The atom body uses `store_word(R_data, R_T4, GPIO_PORT0_OFFSET)`
* to write to GP0, and `store_word(R_data, R_T4, GPIO_PORT1_OFFSET)`
* to write to GP1. Both are preprocessor-encodable because R_T4 is
* a fixed register and the GPIO_PORT*_OFFSET constants fit in the
* `sw`'s 16-bit signed offset field. No placeholder-pun, no asm
* constraints, no hidden register choice. Same pattern as the
* old graphics_hello/hello_gp_routines.s `reg_io_offset`/`gcmd_push`
* convention.
*
* This mirrors the existing tape-side wave-context discipline: the
* caller binds the IO-base register via `rgcc()`, the macro assumes
* the binding is in effect, and the encoding falls out at preprocessor
* time. No additional GPU-domain macro layer required.
* ============================================================================ */ * ============================================================================ */
#pragma endregion Tape-Side Macros #pragma endregion Tape-Side Macros
+6 -12
View File
@@ -2,10 +2,8 @@
* duffle DSL — GPU Vendor Mnemonics (opt-in) * duffle DSL — GPU Vendor Mnemonics (opt-in)
* ============================================================================ * ============================================================================
* *
* Provides the PSYQ-style CamelCase aliases for the canonical duffle GPU * Provides the PSYQ-style CamelCase aliases for the canonical duffle GPU primitive setters and OT operations.
* primitive setters and OT operations. The duffle snake_case names are * The duffle snake_case names are primary; this header is for users who prefer the PSYQ SDK function names from the legacy C API.
* primary; this header is for users who prefer the PSYQ SDK function
* names from the legacy C API.
* *
* USAGE: #include "duffle/gp_vendor_sym.h" // after gp.h * USAGE: #include "duffle/gp_vendor_sym.h" // after gp.h
* *
@@ -23,15 +21,11 @@
* OT operations: * OT operations:
* AddPrim(ot, p) -> orderingtbl_add_primitive(ot, p) * AddPrim(ot, p) -> orderingtbl_add_primitive(ot, p)
* *
* The gp0_cmd_* / gp1_cmd_* byte constants are already short and * The gp0_cmd_* / gp1_cmd_* byte constants are already short and descriptive; no vendor alias is provided for them.
* descriptive; no vendor alias is provided for them.
*
* The vendor mnemonics are NOT registered with the duffle word-count
* metadata (word_counts.metadata.h). They expand to the duffle canonical
* macros which DO have word-count entries (the ones emitted by
* mac_format_f3_color / mac_gte_store_f3 / etc.). Verification: V13
* (objdump byte-identical) holds.
* *
* The vendor mnemonics are NOT registered with the duffle word-count metadata (word_counts.metadata.h).
* They expand to the duffle canonical macros which DO have word-count entries
* (the ones emitted by mac_format_f3_color / mac_gte_store_f3 / etc.). Verification: V13 (objdump byte-identical) holds.
* ============================================================================ */ * ============================================================================ */
#ifdef INTELLISENSE_DIRECTIVES #ifdef INTELLISENSE_DIRECTIVES
+2 -4
View File
@@ -2,10 +2,8 @@
* duffle DSL — GTE Vendor Mnemonics (opt-in) * duffle DSL — GTE Vendor Mnemonics (opt-in)
* ============================================================================ * ============================================================================
* *
* Provides the textbook MIPS assembly mnemonics for the GTE/COP2 * Provides the textbook MIPS assembly mnemonics for the GTE/COP2 instructions as thin aliases to the canonical duffle macros in gte.h.
* instructions as thin aliases to the canonical duffle macros in gte.h. * The duffle names are primary; this header is for users who prefer the textbook mnemonics.
* The duffle names are primary; this header is for users who prefer
* the textbook mnemonics.
* *
* USAGE: #include "duffle/gte_vendor_sym.h" // after gte.h * USAGE: #include "duffle/gte_vendor_sym.h" // after gte.h
* *
+22 -26
View File
@@ -14,16 +14,14 @@ typedef U4 const MipsCode;
typedef Slice_(MipsCode); typedef Slice_(MipsCode);
typedef Slice_MipsCode MipsAtom; typedef Slice_MipsCode MipsAtom;
#define MipsAtom_(sym) MipsCode tmpl(code,sym) [] align_(4) = #define MipsAtom_(sym) MipsCode sym [] align_(4) =
// Bare form: file-scope declaration with hardcoded body.
// Used for components with no args (e.g., ac_load_tri_indices) or identifier-args (hardcoded register names). // Used for components with no args (e.g., ac_load_tri_indices) or identifier-args (hardcoded register names).
// MipsAtomComp_(ac_X) { body } // MipsAtomComp_(ac_X) { body }
// expands to: // expands to:
// MipsCode ac_X[] align_(4) = { body }; // MipsCode ac_X[] align_(4) = { body };
#define MipsAtomComp_(sym) MipsCode sym [] align_(4) = #define MipsAtomComp_(sym) MipsCode sym [] align_(4) =
// Function form: function-body block that returns a MipsAtom slice.
// Used for components with value-args (e.g., ac_format_f3_color). // Used for components with value-args (e.g., ac_format_f3_color).
// FI_ MipsAtom ac_X(args) MipsAtomComp_Proc_(ac_X, { body }) // FI_ MipsAtom ac_X(args) MipsAtomComp_Proc_(ac_X, { body })
// expands to: // expands to:
@@ -34,16 +32,16 @@ typedef Slice_MipsCode MipsAtom;
/* Register aliases */ /* Register aliases */
enum { enum {
R_AtomJmp = R_T9, R_AtomJmp = R_T9 atom_reg, /* debug-visible; tape yield handshake scratch */
R_TapePtr = R_T8, /* The Instruction Stream Pointer */ R_TapePtr = R_T8 atom_reg, /* The Instruction Stream Pointer */
R_InCursor = R_T4, /* Input data cursor */ R_InCursor = R_T4,
R_PrimCursor = R_T7, /* VRAM output cursor (primitive buffer) */ R_PrimCursor = R_T7 atom_reg atom_type(U4 *), /* VRAM output cursor (primitive buffer) */
R_FaceCursor = R_T4, /* Input data cursor (indices/faces) */ 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, /* Base address of the vertex array */ R_VertBase = R_T5 atom_reg atom_type(V3_S2 *), /* Base address of the vertex array */
R_OtBase = R_T6, /* Base address of the Ordering Table */ R_OtBase = R_T6 atom_reg atom_type(U4 *), /* Base address of the Ordering Table */
/* Stringification codes for the GCC inline assembler clobber lists */ /* Stringification codes for the GCC inline assembler clobber lists. */
#define R_TapePtr_Code R_T8_Code #define R_TapePtr_Code R_T8_Code
#define R_InCursor_Code R_T4_Code #define R_InCursor_Code R_T4_Code
@@ -62,7 +60,7 @@ enum {
MipsAtom_(tape_exit) { jump_reg(rret_addr), nop }; MipsAtom_(tape_exit) { jump_reg(rret_addr), nop };
/* Generalized Tape Engine Runner */ /* Generalized Tape Engine Runner */
FI_ void tape_run(Slice_U4 tape) { register U4* tp rgcc(R_TapePtr) = tape.ptr; asm volatile( FI_ void tape_run(Slice_MipsCode tape) { register U4* tp rgcc(R_TapePtr) = u4_r(tape.ptr); asm volatile(
asm_words( asm_words(
add_ui( R_SP, R_SP, -MipsStackAlignment) /* Allocate stack space */ add_ui( R_SP, R_SP, -MipsStackAlignment) /* Allocate stack space */
, store_word( R_RA, R_SP, 0) /* Safely backup $ra to the stack */ , store_word( R_RA, R_SP, 0) /* Safely backup $ra to the stack */
@@ -89,13 +87,13 @@ FI_ void tb_init(TapeBuilder* tb, FArena* arena) { tb->ptr = arena->start
FI_ TapeBuilder tb_make_old( FArena* arena) { return (TapeBuilder){ arena->start, 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 }; } FI_ TapeBuilder tb_make(Slice mem) { return (TapeBuilder){ mem.ptr, mem.len, 0 }; }
#define tb_emit_(tb, atom) tb_emit(tb, tmpl(code,atom)) #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_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; } FI_ void tb_data(TapeBuilder* tb, U4 data) { u4_r(tb->ptr)[tb->used] = u4_(data); ++ tb->used; }
FI_ Slice_U4 tb_end (TapeBuilder* tb) { tb_emit(tb,code_tape_exit); return (Slice_U4){ C_(U4*,tb->ptr), tb->used }; } FI_ Slice_MipsCode tb_end (TapeBuilder* tb) { tb_emit(tb,tape_exit); return (Slice_MipsCode){ C_(U4*,tb->ptr), tb->used }; }
FI_ Slice_U4 tb_slice(TapeBuilder tb) { return (Slice_U4){ C_(U4*,tb.ptr), tb.used }; } FI_ Slice_MipsCode tb_slice(TapeBuilder tb) { return (Slice_MipsCode){ C_(U4*,tb.ptr), tb.used }; }
#define tb_scope(tb) for(U4 tbs_once=0;tbs_once==0;++tbs_once,tb_emit(tb,code_tape_exit)) #define tb_scope(tb) for(U4 tbs_once=0;tbs_once==0;++tbs_once,tb_emit(tb,tape_exit))
#pragma endregion Tape Drive #pragma endregion Tape Drive
@@ -106,11 +104,11 @@ FI_ Slice_U4 tb_slice(TapeBuilder tb) { return (Sli
* ---------------------------------------------------------------------------*/ * ---------------------------------------------------------------------------*/
// The 'Yield' sequence for Tape Atoms (mac_yield). // The 'Yield' sequence for Tape Atoms (mac_yield).
atom_dbg_skip_over()
MipsAtomComp_(ac_yield) { MipsAtomComp_(ac_yield) {
load_word(R_AtomJmp, R_TapePtr, 0), load_word(R_AtomJmp, R_TapePtr, 0),
add_ui_self( R_TapePtr, S_(MipsCode)), add_ui_self( R_TapePtr, S_(MipsCode)),
jump_reg( R_AtomJmp), jump_reg( R_AtomJmp), nop,
nop,
}; };
/* Words: 3; Loads 3 S2 indices from the face array */ /* Words: 3; Loads 3 S2 indices from the face array */
@@ -121,6 +119,7 @@ MipsAtomComp_(ac_load_tri_indices) {
}; };
/* Words: 18; Translates indices to vertex addresses and pushes them to GTE */ /* Words: 18; Translates indices to vertex addresses and pushes them to GTE */
atom_dbg_skip_over()
MipsAtomComp_(ac_gte_load_tri_verts) { 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_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_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),
@@ -162,13 +161,12 @@ MipsAtomComp_(ac_insert_ot_tag_g4) {
FI_ MipsAtom ac_pack_color_word(U4 off, U4 cmd, U1 r, U1 g, U1 b) FI_ MipsAtom ac_pack_color_word(U4 off, U4 cmd, U1 r, U1 g, U1 b)
MipsAtomComp_Proc_(ac_pack_color_word, { MipsAtomComp_Proc_(ac_pack_color_word, {
load_upper_i(R_AT, (cmd) << 8 | (b)), load_upper_i(R_AT, (cmd) << 8 | (b)),
or_i_self( R_AT, ((g) << 8) | (r)), or_i_self( R_AT, ((g) << 8) | (r)),
store_word( R_AT, R_PrimCursor, (off)), store_word( R_AT, R_PrimCursor, (off)),
}) })
/* Words: 3; Emits the F3 command+color word (cmd byte | BLUE | GREEN | RED) /* 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). * Args: _r, _g, _b are 8-bit RGB byte values (not raw 16-bit fields). */
* Migrated from hello_gte_tape.c; takes RGB form per the Phase 3 convention. */
FI_ MipsAtom ac_format_f3_color(U1 r, U1 g, U1 b) FI_ MipsAtom ac_format_f3_color(U1 r, U1 g, U1 b)
MipsAtomComp_Proc_(ac_format_f3_color, { mac_pack_color_word(O_(Poly_F3,color), gp0_cmd_poly_f3, r, g, b) }) MipsAtomComp_Proc_(ac_format_f3_color, { mac_pack_color_word(O_(Poly_F3,color), gp0_cmd_poly_f3, r, g, b) })
@@ -237,9 +235,8 @@ FI_ void atombuilder_unroll(MipsAtomBuilder_R ab, Slice_MipsCode_R code) {
// When done authoring, utilize this to cap-off the atom // When done authoring, utilize this to cap-off the atom
FI_ void atombuilder_end(MipsAtomBuilder_R ab) { FI_ void atombuilder_end(MipsAtomBuilder_R ab) {
LP_ MipsAtom_(yield) { mac_yield() }; mem_copy(ab->start, u4_(ac_yield), S_(ac_yield));
mem_copy(ab->start, u4_(code_yield), S_(code_yield)); mem_bump(ab->start, ab->capacity, & ab->used, S_(ac_yield));
mem_bump(ab->start, ab->capacity, & ab->used, S_(code_yield));
} }
#define mipsatom_from_builder(ab) (MipsAtom){ab.start, ab.used} #define mipsatom_from_builder(ab) (MipsAtom){ab.start, ab.used}
@@ -269,8 +266,7 @@ internal MipsAtom_(mips_flush_icache) {
store_word(rret_addr, rstack_ptr, S_(U4)), // sw $ra, 4($sp) 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(rret_0, rdiscard, bios_flushcache), // addiu $a0, $0, 0x44
add_ui(rtmp_0, rdiscard, bios_table_addr), // addiu $t0, $0, 0xA0 add_ui(rtmp_0, rdiscard, bios_table_addr), // addiu $t0, $0, 0xA0
jump_link(rtmp_0, rret_addr), // jalr $t0, $ra jump_link(rtmp_0, rret_addr), nop, // jalr $t0, $ra, BD slot
nop, // BD slot
load_word(rret_addr, rstack_ptr, S_(U4)), // lw $ra, 4($sp) load_word(rret_addr, rstack_ptr, S_(U4)), // lw $ra, 4($sp)
jump_reg(rret_addr), // jr $ra jump_reg(rret_addr), // jr $ra
add_ui(rstack_ptr, rstack_ptr, MipsStackAlignment), // sp += 8 (BD) add_ui(rstack_ptr, rstack_ptr, MipsStackAlignment), // sp += 8 (BD)
+1 -1
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@@ -103,7 +103,7 @@ FI_ void farena_init(FArena_R arena, Slice mem) { assert(arena != nullptr);
arena->used = 0; arena->used = 0;
} }
FI_ FArena farena_make(Slice mem) { FArena a; farena_init(& a, mem); return a; } FI_ FArena farena_make(Slice mem) { FArena a; farena_init(& a, mem); return a; }
I_ Slice farena_push(FArena_R arena, U4 amount, Opt_farena o) { I_ Slice farena_push(FArena_R arena, U4 amount, Opt_farena o) {
if (amount == 0) { return (Slice){}; } if (amount == 0) { return (Slice){}; }
U4 desired = amount * (o.type_width == 0 ? 1 : o.type_width); U4 desired = amount * (o.type_width == 0 ? 1 : o.type_width);
U4 to_commit = align_pow2(desired, o.alignment ? o.alignment : MEM_ALIGNMENT_DEFAULT); U4 to_commit = align_pow2(desired, o.alignment ? o.alignment : MEM_ALIGNMENT_DEFAULT);
+72 -111
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@@ -1,38 +1,28 @@
/* ============================================================================ /* ============================================================================
* duffle DSL Suffix Conventions * duffle DSL Suffix Conventions
* ============================================================================ * ============================================================================
*
* Every mnemonic in this header follows the same suffix grammar: * Every mnemonic in this header follows the same suffix grammar:
* * _i: Immediate value (16-bit constant operand).
* _i Immediate value (16-bit constant operand). Combine with * Combine with _u or _s (single-letter modifier + type combined): add_ui, add_si.
* _u or _s (single-letter modifier + type combined): add_ui, * Examples: add_ui, add_si, and_i, or_i, xor_i, load_upper_i. and_i is sign-agnostic (andi zero-extends).
* add_si. Examples: add_ui, add_si, and_i, or_i, xor_i, * load_upper_i is a unique verb; _i is the immediate marker, not a modifier+type combination.
* load_upper_i. and_i is sign-agnostic (andi zero-extends). * _u: Unsigned (no-overflow, no-sign-extension).
* load_upper_i is a unique verb; _i is the immediate marker, * R-type arithmetic examples: add_u, sub_u, mult_u, div_u. I-type (combined with _i): add_ui.
* not a modifier+type combination. * _s: Signed (overflow-traps, sign-extends).
* * R-type: add_s, sub_s, mult_s, div_s, set_lt_s. I-type (combined with _i): add_si.
* _u Unsigned (no-overflow, no-sign-extension). R-type
* arithmetic examples: add_u, sub_u, mult_u, div_u. I-type
* (combined with _i): add_ui.
*
* _s Signed (overflow-traps, sign-extends). R-type: add_s,
* sub_s, mult_s, div_s, set_lt_s. I-type (combined with _i):
* add_si.
* *
* --- Shift family (R-type): verb-modifier-direction --- * --- Shift family (R-type): verb-modifier-direction ---
* The shift macros use `shift_<modifier><direction>`. Modifier is * The shift macros use `shift_<modifier><direction>`.
* the single letter `l` (logical) or `a` (arithmetic). Direction * Modifier is the single letter `l` (logical) or `a` (arithmetic).
* is the word `left` or `right`. Combined: `_lleft`, `_lright`, * Direction is the word `left` or `right`. Combined: `_lleft`, `_lright`, `_aright`.
* `_aright`. Examples: shift_lleft( rd, rt, shamt) (= sll) * Examples: shift_lleft( rd, rt, shamt) (= sll)
* shift_lright(rd, rt, shamt) (= srl) * shift_lright(rd, rt, shamt) (= srl)
* shift_aright(rd, rt, shamt) (= sra) * shift_aright(rd, rt, shamt) (= sra)
* (no `_aleft`; MIPS has no `sla` — arithmetic-left is bit-identical * (no `_aleft`; MIPS has no `sla` — arithmetic-left is bit-identical to logical-left, so use shift_lleft for that case)
* to logical-left, so use shift_lleft for that case)
* *
* --- Jump/Call family --- * --- Jump/Call family ---
* Simple jumps keep the original short names: jump (j), jump_reg * Simple jumps keep the original short names: jump (j), jump_reg (jr), jump_link (jalr rs, rd).
* (jr), jump_link (jalr rs, rd). The jump-and-link-to variants * The jump-and-link-to variants (jal, jalr rs with default $ra) get the `call_` verb instead:
* (jal, jalr rs with default $ra) get the `call_` verb instead:
* call_addr (jal), call_reg (jalr rs, default $ra). * call_addr (jal), call_reg (jalr rs, default $ra).
* Examples: jump(off) (= j) * Examples: jump(off) (= j)
* jump_reg(rs) (= jr) * jump_reg(rs) (= jr)
@@ -40,32 +30,22 @@
* call_reg(rs) (= jalr rs, default $ra) * call_reg(rs) (= jalr rs, default $ra)
* call_addr(off) (= jal) * call_addr(off) (= jal)
* *
* _r Register marker — used only when the register type needs * _r: Register marker — used only when the register type needs disambiguation (e.g., GTE data register vs control register).
* disambiguation (e.g., GTE data register vs control * NOT used in plain R-type arithmetic (the R-type is implicit). Examples: gte_mv_to_data_r, gte_mv_to_ctrl_r.
* register). NOT used in plain R-type arithmetic (the * _self: Destination equals one source operand.
* R-type is implicit). Examples: gte_mv_to_data_r, * Examples: add_ui_self (I-type, to self), add_u_self (R-type, to self).
* gte_mv_to_ctrl_r. * _mv_to_: Direction: data flows into X.
* Example: gte_mv_to_data_r, gte_mv_to_ctrl_r.
* _mv_from_: Direction: data flows out of X.
* Example: gte_mv_from_data_r, gte_mv_from_ctrl_r.
* _str: String-form — emits inline-asm string instead of `.word`.
* Example: gte_rtpt_asm_str.
* _2w / _1w: Word count of the emitted sequence.
* Example: load_imm_2w.
* *
* _self Destination equals one source operand. * _cop2: RESERVED — DO NOT USE in macro names. The `gte_` namespace prefix already implies coprocessor 2. Use `c2` only in:
* Examples: add_ui_self (I-type, to self), * (a) integer opcode enums (op_lwc2 = 0x32, op_swc2 = 0x3A)
* add_u_self (R-type, to self). * (b) vendor-mnemonic macro aliases (gte_mtc2, gte_mfc2)
*
* _mv_to_ Direction: data flows into X.
* Example: gte_mv_to_data_r, gte_mv_to_ctrl_r.
*
* _mv_from_ Direction: data flows out of X.
* Example: gte_mv_from_data_r, gte_mv_from_ctrl_r.
*
* _str String-form — emits inline-asm string instead of `.word`.
* Example: gte_rtpt_asm_str.
*
* _2w / _1w Word count of the emitted sequence.
* Example: load_imm_2w.
*
* _cop2 RESERVED — DO NOT USE in macro names. The `gte_` namespace
* prefix already implies coprocessor 2. Use `c2` only in:
* (a) integer opcode enums (op_lwc2 = 0x32, op_swc2 = 0x3A)
* (b) vendor-mnemonic macro aliases (gte_mtc2, gte_mfc2)
* *
* Primitive commands: gp0_cmd_poly_f3 = 0x20 (byte opcode) * Primitive commands: gp0_cmd_poly_f3 = 0x20 (byte opcode)
* Packed 32-bit cmd: gp0_word_poly_f3(r, g, b) (32-bit, shifted) * Packed 32-bit cmd: gp0_word_poly_f3(r, g, b) (32-bit, shifted)
@@ -80,9 +60,8 @@
* gte_lw_v0_xy(base) (gte + lw + v0 + xy) * gte_lw_v0_xy(base) (gte + lw + v0 + xy)
* load_upper_i (load-upper + immediate, unique verb) * load_upper_i (load-upper + immediate, unique verb)
* *
* Vendor mnemonics (sll, srl, sra, jr, j, jal, jalr) are NOT in this * Vendor mnemonics (sll, srl, sra, jr, j, jal, jalr) are NOT in this header.
* header. They live in the opt-in `mips_vendor_sym.h` for users who * They live in the opt-in `mips_vendor_sym.h` for users who prefer the textbook MIPS assembly mnemonics.
* prefer the textbook MIPS assembly mnemonics.
* ============================================================================ */ * ============================================================================ */
#ifdef INTELLISENSE_DIRECTIVES #ifdef INTELLISENSE_DIRECTIVES
@@ -98,19 +77,17 @@ enum {
/* ============================================================================ /* ============================================================================
* REGISTER INTEGER IDS (preprocessor-visible) * REGISTER INTEGER IDS (preprocessor-visible)
* ============================================================================ * ============================================================================
* Every R_* enum below has a parallel R_*_Code `#define` so that the * Every R_* enum below has a parallel R_*_Code `#define` so that the preprocessor can stringify the integer
* preprocessor can stringify the integer (e.g. for asm clobber lists and * (e.g. for asm clobber lists and register-variable declarations via `rgcc(R_X)`).
* register-variable declarations via `rgcc(R_X)`). The enum value is * The enum value is bound to the `#define` so the two forms cannot drift apart.
* bound to the `#define` so the two forms cannot drift apart.
* *
* Only registers that get stringified need a `_Code` form; the rest are * Only registers that get stringified need a `_Code` form; the rest are plain enum values.
* plain enum values. If you need to add a new one, follow the pattern: * If you need to add a new one, follow the pattern:
* #define R_T7_Code 15 * #define R_T7_Code 15
* R_T7 = R_T7_Code, // in the enum * R_T7 = R_T7_Code, // in the enum
* *
* User code should always reference the enum form (`R_T4`) at arithmetic * User code should always reference the enum form (`R_T4`) at arithmetic sites and let
* sites and let `rlit(R_T4_Code)` / `rgcc(R_T4)` handle the stringify * `rlit(R_T4_Code)` / `rgcc(R_T4)` handle the stringify cases — never write the bare number `12`.
* cases — never write the bare number `12`.
* ============================================================================ */ * ============================================================================ */
#define R_0_Code 0 #define R_0_Code 0
#define R_AT_Code 1 #define R_AT_Code 1
@@ -225,7 +202,6 @@ enum {
/* 2F: N/A */ /* 2F: N/A */
// , op_lwc0 // , op_lwc0
// , op_load_addr = op_la // , op_load_addr = op_la
// , op_load_imm = op_li // , op_load_imm = op_li
, op_jump = op_j , op_jump = op_j
@@ -327,15 +303,15 @@ enum { _BitOffsets = 0
* Argument order matches the MIPS assembly syntax: * Argument order matches the MIPS assembly syntax:
* dest-first, then source operands, then immediate last. * dest-first, then source operands, then immediate last.
* *
* load_word(rt, base, off) → lw rt, off(base) * load_word(rt, base, off) → lw rt, off(base)
* store_word(rt, base, off) → sw rt, off(base) * store_word(rt, base, off) → sw rt, off(base)
* add_ui(rt, rs, imm) → addiu rt, rs, imm * add_ui(rt, rs, imm) → addiu rt, rs, imm
* shift_lleft(rd, rt, shamt) → sll rd, rt, shamt * shift_lleft(rd, rt, shamt) → sll rd, rt, shamt
* shift_lright(rd, rt, shamt) → srl rd, rt, shamt * shift_lright(rd, rt, shamt) → srl rd, rt, shamt
* shift_aright(rd, rt, shamt) → sra rd, rt, shamt * shift_aright(rd, rt, shamt) → sra rd, rt, shamt
* jump_reg(rs) → jr rs * jump_reg(rs) → jr rs
* jump_link(rs, rd) → jalr rs (link in rd, default $ra) * jump_link(rs, rd) → jalr rs (link in rd, default $ra)
* nop → sll $0, $0, 0 * nop → sll $0, $0, 0
*/ */
#define load_word(rt, base, off) enc_i(op_lw, (base), (rt), (off)) #define load_word(rt, base, off) enc_i(op_lw, (base), (rt), (off))
#define load_byte(rt, base, off) enc_i(op_lb, (base), (rt), (off)) #define load_byte(rt, base, off) enc_i(op_lb, (base), (rt), (off))
@@ -404,12 +380,9 @@ enum { _BitOffsets = 0
* mult_s / mult_u → mult / multu (writes HI/LO; result in LO) * mult_s / mult_u → mult / multu (writes HI/LO; result in LO)
* div_s / div_u → div / divu (LO = quot, HI = rem) * div_s / div_u → div / divu (LO = quot, HI = rem)
* *
* NOTE: dsl.h defines `add_s`/`sub_s`/`mut_s`/`gt_s`/etc. as * NOTE: dsl.h defines `add_s`/`sub_s`/`mut_s`/`gt_s`/etc. as _Generic-based signed integer-arithmetic helpers for U1/U2/U4.
* _Generic-based signed integer-arithmetic helpers for U1/U2/U4. Those * Those live in a different conceptual layer (generic arithmetic on DSL types) and would collide with the instruction encoders here.
* live in a different conceptual layer (generic arithmetic on DSL * The `#undef` below lets the gas-style names below win; if a file needs both, the dsl.h versions can be reached via their long forms
* types) and would collide with the instruction encoders here. The
* `#undef` below lets the gas-style names below win; if a file needs
* both, the dsl.h versions can be reached via their long forms
* (e.g. `def_signed_op`-style or the underlying `add_s1/s2/s4`). */ * (e.g. `def_signed_op`-style or the underlying `add_s1/s2/s4`). */
#undef add_s #undef add_s
#undef sub_s #undef sub_s
@@ -441,7 +414,7 @@ enum { _BitOffsets = 0
#define mov_to_low(rs) enc_r(op_special, (rs), R_0, R_0, 0, fc_mtlo) #define mov_to_low(rs) enc_r(op_special, (rs), R_0, R_0, 0, fc_mtlo)
/* --- Atomic branches (no pseudos like bgt/bge; compose with slt_* + branch_ne) --- /* --- Atomic branches (no pseudos like bgt/bge; compose with slt_* + branch_ne) ---
* branch_equal rs, rt, off → beq rs, rt, off * branch_equal rs, rt, off → beq rs, rt, off
* branch_ne rs, rt, off → bne rs, rt, off * branch_ne rs, rt, off → bne rs, rt, off
* branch_lt_zero rs, off → bltz rs, off * branch_lt_zero rs, off → bltz rs, off
* branch_gt_zero rs, off → bgtz rs, off * branch_gt_zero rs, off → bgtz rs, off
@@ -472,22 +445,18 @@ enum { _BitOffsets = 0
/* load_imm_2w — unconditional 2-word `li` form: `lui` + (ori | addi). /* load_imm_2w — unconditional 2-word `li` form: `lui` + (ori | addi).
* *
* Granular companion to `load_imm`: skips the compile-time range checks * Granular companion to `load_imm`: skips the compile-time range checks and always emits 2 .words. Use this when:
* and always emits 2 .words. Use this when:
* - you know `imm` is > 0xFFFF (otherwise you're wasting a word), OR * - you know `imm` is > 0xFFFF (otherwise you're wasting a word), OR
* - `imm` is not a compile-time constant and you want predictable * - `imm` is not a compile-time constant and you want predictable
* 2-word emission without the `__builtin_constant_p` branches. * 2-word emission without the `__builtin_constant_p` branches.
* *
* The lo16 strategy is still chosen at expansion time on the lo half: * The lo16 strategy is still chosen at expansion time on the lo half:
* lo16 in 0x0000..0x7FFF → addi (sign-ext is harmless, the lui * lo16 in 0x0000..0x7FFF → addi (sign-ext is harmless, the lui already cleared bits 15..0)
* already cleared bits 15..0) * lo16 in 0x8000..0xFFFF ori (zero-extends to preserve the intended bit pattern)
* 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 * For situations where you need to bypass even this choice
* force a specific encoding for a known discontiguous high/low pair), * (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. * see `load_imm_2w_ori_forced` and `load_imm_2w_addi_forced` below.
*
* Statement-level (not expression-level): emits its own `asm volatile(...)`. * Statement-level (not expression-level): emits its own `asm volatile(...)`.
*/ */
#define load_imm_2w(rt, imm) do { \ #define load_imm_2w(rt, imm) do { \
@@ -518,9 +487,8 @@ enum { _BitOffsets = 0
} while (0) } while (0)
/* load_imm_2w_addi_forced — force the `lui` + `addi` form regardless of lo16 sign. /* load_imm_2w_addi_forced — force the `lui` + `addi` form regardless of lo16 sign.
* Use when you know sign-extension is fine (e.g. lo16 is treated as * Use when you know sign-extension is fine (e.g. lo16 is treated as signed downstream)
* signed downstream) and you want a smaller effective instruction * and you want a smaller effective instruction (the assembler/MIPS hardware will sign-extend the imm16). */
* (the assembler/MIPS hardware will sign-extend the imm16). */
#define load_imm_2w_addi_forced(rt, imm) do { \ #define load_imm_2w_addi_forced(rt, imm) do { \
/*U4 _li2a_imm_ = (U4)(imm);*/ \ /*U4 _li2a_imm_ = (U4)(imm);*/ \
asm volatile(asm_words( \ asm volatile(asm_words( \
@@ -532,23 +500,17 @@ enum { _BitOffsets = 0
/* load_imm rt, imm — true `li` semantics (assembler `li` pseudo) /* load_imm rt, imm — true `li` semantics (assembler `li` pseudo)
* *
* Dispatches at compile time on the immediate's range, picking the * Dispatches at compile time on the immediate's range, picking the smallest single-instruction form when possible:
* smallest single-instruction form when possible: * imm in 0 .. 0x7FFF → addi rt, $0, imm (1 word)
* * imm in 0x8000 .. 0xFFFF → ori rt, $0, imm (1 word; sign-bit must be zeroed)
* imm in 0 .. 0x7FFF addi rt, $0, imm (1 word) * imm in 0x10000 .. 0xFFFFFFFF → lui + (ori | addi) (2 words)
* imm in 0x8000 .. 0xFFFF → ori rt, $0, imm (1 word; sign-bit must be zeroed)
* imm in 0x10000 .. 0xFFFFFFFF → lui + (ori | addi) (2 words)
*
* Statement-level (not expression-level): the macro emits its own
* `asm volatile(...)` block with 1 or 2 .word constants. Callers can
* group multiple `load_imm` calls in a single volatile by using the
* lower-level encoders directly:
* *
* Statement-level (not expression-level): the macro emits its own `asm volatile(...)` block with 1 or 2 .word constants.
* Callers can group multiple `load_imm` calls in a single volatile by using the lower-level encoders directly:
* load_imm(R_T4, 0x12345678); // emits 2 .words * load_imm(R_T4, 0x12345678); // emits 2 .words
* *
* Falls back to a 2-word form if `imm` is not a compile-time constant, * Falls back to a 2-word form if `imm` is not a compile-time constant, but that path is unusual
* but that path is unusual (load_imm is most useful with literal * (load_imm is most useful with literal addresses and magic numbers). */
* addresses and magic numbers). */
#define load_imm(rt, imm) do { \ #define load_imm(rt, imm) do { \
if (cexpr_(imm) && ((imm) <= 0x7FFFU)) { \ if (cexpr_(imm) && ((imm) <= 0x7FFFU)) { \
/* Small positive: addi rt, $0, imm */ \ /* Small positive: addi rt, $0, imm */ \
@@ -588,9 +550,8 @@ enum { _BitOffsets = 0
/* Standard clobber list for pure-MIPS asm volatile blocks: caller-saved /* Standard clobber list for pure-MIPS asm volatile blocks: caller-saved
* GPRs that the kernel treats as volatile (v0/v1/t0/t1/ra) plus the * GPRs that the kernel treats as volatile (v0/v1/t0/t1/ra) plus the "memory" barrier.
* "memory" barrier. The register ids are passed through `rlit` so * The register ids are passed through `rlit` so the R_*_Code `#define`s are stringified into "$N" at expansion time. */
* the R_*_Code `#define`s are stringified into "$N" at expansion time. */
#define clbr_volatile_gprs rlit(R_V0), rlit(R_T0), rlit(R_T1), rlit(R_RA), clb_mem_drain #define clbr_volatile_gprs rlit(R_V0), rlit(R_T0), rlit(R_T1), rlit(R_RA), clb_mem_drain
#define asm_mips_flush_icache() asm volatile( asm_words( \ #define asm_mips_flush_icache() asm volatile( asm_words( \
+2 -3
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@@ -2,9 +2,8 @@
* duffle DSL — MIPS Vendor Mnemonics (opt-in) * duffle DSL — MIPS Vendor Mnemonics (opt-in)
* ============================================================================ * ============================================================================
* *
* Provides the textbook MIPS assembly mnemonics as thin aliases to the * Provides the textbook MIPS assembly mnemonics as thin aliases to the canonical duffle macros in mips.h.
* canonical duffle macros in mips.h. The duffle names are primary; this * The duffle names are primary; this header is for users who prefer the textbook mnemonics.
* header is for users who prefer the textbook mnemonics.
* *
* USAGE: #include "duffle/mips_vendor_sym.h" // after mips.h * USAGE: #include "duffle/mips_vendor_sym.h" // after mips.h
* *
+4 -5
View File
@@ -5,11 +5,10 @@
// Format: WORD_COUNT(MACRO_NAME, COUNT) // Format: WORD_COUNT(MACRO_NAME, COUNT)
// One line per macro that appears in your atom sources. // One line per macro that appears in your atom sources.
// //
// This file is encoding-macros-only. The auto-generated component // This file is encoding-macros-only.
// macros (mac_X) live in duffle/gen/<dir>.macs.h (included separately // The auto-generated component macros (mac_X) live in duffle/gen/<dir>.macs.h (included separately by the unity build).
// by the unity build). The unity build should include THIS file and // The unity build should include THIS file and the .macs.h file in the same TU, with both wrapped
// the .macs.h file in the same TU, with both wrapped (or the // (or the include guard order handled) to avoid WORD_COUNT redeclaration.
// include guard order handled) to avoid WORD_COUNT redeclaration.
// //
// To regenerate: hand-count the instructions in each macro definition. // To regenerate: hand-count the instructions in each macro definition.
// (You'll only need to do this once per macro — they don't change often.) // (You'll only need to do this once per macro — they don't change often.)
+2 -2
View File
@@ -15,9 +15,9 @@ enum {
atom_offset_bounds_chk_cube_g4_face_exit = _atom_offset_bounds_chk_cube_g4_face_exit, atom_offset_bounds_chk_cube_g4_face_exit = _atom_offset_bounds_chk_cube_g4_face_exit,
}; };
// --- atom: floor_f3_face (66 words) --- // --- atom: floor_f3_face (58 words) ---
#define _atom_offset_culling_floor_f3_face_exit 29 #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 13
enum { enum {
+22 -25
View File
@@ -1,6 +1,6 @@
#include "stdio.h" #include <stdio.h>
#include <stdlib.h> #include <stdlib.h>
#include "assert.h" #include <assert.h>
// #include "libgpu.h" // #include "libgpu.h"
// #include "libetc.h" // #include "libetc.h"
// #include "libgte.h" // #include "libgte.h"
@@ -99,8 +99,13 @@ typedef Struct_(Ent_Floor) {
A2_V3_S2 faces; A2_V3_S2 faces;
}; };
enum { scratchpad_size = 1024, }; enum {
Scratchpad_Len = 1024,
MemTape_Len = 512,
};
typedef Struct_(SMemory) { typedef Struct_(SMemory) {
U4 MemTape[MemTape_Len];
DoubleBuffer screen_buf; DoubleBuffer screen_buf;
A2_OrderingTable_Buffer ordering_tbl; A2_OrderingTable_Buffer ordering_tbl;
PrimitiveArena primitives; PrimitiveArena primitives;
@@ -207,6 +212,8 @@ void update(PrimitiveArena* pa, U4* ordering_buf)
A2_S2 p; //??? A2_S2 p; //???
S4 flag; //???? S4 flag; //????
TapeBuilder tb = tb_make(slice_ut_arr(smem.MemTape));
// Draw Cube // Draw Cube
if (0) if (0)
{ {
@@ -259,9 +266,8 @@ void update(PrimitiveArena* pa, U4* ordering_buf)
U4 prim_base = u4_(pa->buf[smem.active_buf_id]); U4 prim_base = u4_(pa->buf[smem.active_buf_id]);
U4 prim_cursor = prim_base + pa->used; U4 prim_cursor = prim_base + pa->used;
LP_ U4 mem_temp_tape[512]; FArena tape_arena; farena_init(& tape_arena, slice_ut_arr(mem_temp_tape)); tb.used = 0; tb_scope(& tb) {
TapeBuilder tb = tb_make_old(&tape_arena); tb_scope(& tb) { tb_emit(& tb, rbind_cube_g4_face);
tb_emit(& tb, code_rbind_cube_g4_face);
tb_data(& tb, prim_cursor); tb_data(& tb, prim_cursor);
tb_data(& tb, u4_(smem.cube.faces)); tb_data(& tb, u4_(smem.cube.faces));
tb_data(& tb, u4_(smem.cube.verts)); tb_data(& tb, u4_(smem.cube.verts));
@@ -269,10 +275,10 @@ void update(PrimitiveArena* pa, U4* ordering_buf)
for (U4 i = 0; i < Cube_num_faces; i++) { for (U4 i = 0; i < Cube_num_faces; i++) {
// Two triangles per quad face: (x,y,z) and (x,z,w) // Two triangles per quad face: (x,y,z) and (x,z,w)
tb_emit(& tb, code_cube_g4_face); tb_emit(& tb, cube_g4_face);
} }
tb_emit(& tb, code_sync_primitive_arena); tb_emit(& tb, sync_primitive_arena);
tb_data(& tb, u4_(& pa->used)); tb_data(& tb, u4_(& pa->used));
tb_data(& tb, prim_base); tb_data(& tb, prim_base);
} }
@@ -344,48 +350,40 @@ void update(PrimitiveArena* pa, U4* ordering_buf)
U4 prim_base = u4_(pa->buf[smem.active_buf_id]); U4 prim_base = u4_(pa->buf[smem.active_buf_id]);
U4 prim_cursor = prim_base + pa->used; U4 prim_cursor = prim_base + pa->used;
// TODO(Ed): We should do a bounds check beforehand to confirm pa can hold all tris. // 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. // The tape atoms in-flight should not need to care.
// Prepare the tape. (Push protocol to tape) // Prepare the tape. (Push protocol to tape)
LP_ U4 mem_temp_tape[512]; tb.used = 0; tb_scope(& tb) {
TapeBuilder tb = tb_make(slice_ut_arr(mem_temp_tape)); tb_scope(& tb) { tb_emit(& tb, set_gte_world);
tb_emit(& tb, code_set_gte_world);
tb_data(& tb, u4_(& smem.tform_world)); tb_data(& tb, u4_(& smem.tform_world));
tb_emit(& tb, code_rbind_floor_f3_face); tb_emit(& tb, rbind_floor_f3_face);
// TODO(Ed): Just use a single context struct ref // TODO(Ed): Just use a single context struct ref
tb_data(& tb, prim_cursor); tb_data(& tb, prim_cursor);
tb_data(& tb, u4_(smem.floor.faces)); tb_data(& tb, u4_(smem.floor.faces));
tb_data(& tb, u4_(smem.floor.verts)); tb_data(& tb, u4_(smem.floor.verts));
tb_data(& tb, u4_(ordering_buf)); tb_data(& tb, u4_(ordering_buf));
for (U4 i = 0; i < Floor_num_faces; i++) { for (U4 i = 0; i < Floor_num_faces; i++) {
tb_emit(& tb, code_floor_f3_face); tb_emit(& tb, floor_f3_face);
} }
// After code_floor_f3_face iterations complete, the primitive arena's used counter needs updating. // After floor_f3_face iterations complete, the primitive arena's used counter needs updating.
tb_emit(& tb, code_sync_primitive_arena); tb_emit(& tb, sync_primitive_arena);
tb_data(& tb, u4_(& pa->used)); tb_data(& tb, u4_(& pa->used));
tb_data(& tb, prim_base); tb_data(& tb, prim_base);
} }
tape_run(tb_slice(tb));// Fire off the tape. tape_run(tb_slice(tb));// Fire off the tape.
// C-side state (pa->used) has already been updated by the tape! // C-side state (pa->used) has already been updated by the tape!
smem.floor.rot.y += 5; smem.floor.rot.y += 5;
} }
// --- TAPE DIAGNOSTICS --- // --- TAPE DIAGNOSTICS ---
if (1) if (0)
{ {
LP_ U4 mem_temp_tape[512]; FArena tape_arena; farena_init(& tape_arena, slice_ut_arr(mem_temp_tape)); LP_ U4 mem_temp_tape[512]; FArena tape_arena; farena_init(& tape_arena, slice_ut_arr(mem_temp_tape));
TapeBuilder tb = tb_make_old(& tape_arena); tb_scope(& tb) { TapeBuilder tb = tb_make_old(& tape_arena); tb_scope(& tb) {
// Skip set_gte_world atom for diagnostics to isolate the triangle loop // Skip set_gte_world atom for diagnostics to isolate the triangle loop
for (U4 i = 0; i < Floor_num_faces; i++) { for (U4 i = 0; i < Floor_num_faces; i++) {
// =======================================================
// SWAP EMIT TO TEST DIFFERENT PARTS OF THE PIPELINE:
// =======================================================
// 1. code_diag_yield -> Tests Tape Engine jump logic
// 2. code_diag_color -> Tests OT and Prim Arena memory
// 3. code_diag_gte -> Tests Vertex arrays and GTE Math
// tb_emit(& tb, code_diag_yield); // tb_emit(& tb, code_diag_yield);
// tb_emit(& tb, code_diag_color); // tb_emit(& tb, code_diag_color);
// tb_emit(& tb, code_diag_gte); // tb_emit(& tb, code_diag_gte);
@@ -394,7 +392,6 @@ void update(PrimitiveArena* pa, U4* ordering_buf)
B1* prim_cursor = (B1*)r_(pa->buf)[smem.active_buf_id] + pa->used; B1* prim_cursor = (B1*)r_(pa->buf)[smem.active_buf_id] + pa->used;
tape_run(tb_slice(tb)); tape_run(tb_slice(tb));
pa->used = (U4)prim_cursor - (U4)r_(pa->buf)[smem.active_buf_id]; pa->used = (U4)prim_cursor - (U4)r_(pa->buf)[smem.active_buf_id];
smem.floor.rot.y += 5;
} }
} }
+31 -36
View File
@@ -22,27 +22,22 @@ typedef Struct_(Binds_CubeTri) {
V3_S2* VertBase; V3_S2* VertBase;
U4* OtBase; U4* OtBase;
}; };
internal MipsAtom_(rbind_cube_g4_face) atom_info(atom_bind(Binds_CubeTri) internal MipsAtom_(rbind_cube_g4_face) atom_info(atom_bind(Binds_CubeTri), atom_phase(cube_g4)
, atom_reads(R_TapePtr) , atom_reads(R_TapePtr)
, atom_writes(R_PrimCursor, R_FaceCursor, R_VertBase, R_OtBase) , atom_writes(R_PrimCursor, R_FaceCursor, R_VertBase, R_OtBase)
){ ){
/* Pop 4 arguments from the tape directly into the workspace registers */ /* Pop 4 arguments from the tape directly into the workspace registers */
load_word(R_PrimCursor, R_TapePtr, O_(Binds_CubeTri,PrimCursor)), load_word(R_PrimCursor, R_TapePtr, O_(Binds_CubeTri,PrimCursor)),
load_word(R_FaceCursor, R_TapePtr, O_(Binds_CubeTri,FaceCursor)), load_word(R_FaceCursor, R_TapePtr, O_(Binds_CubeTri,FaceCursor)),
load_word(R_VertBase, R_TapePtr, O_(Binds_CubeTri,VertBase)), load_word(R_VertBase, R_TapePtr, O_(Binds_CubeTri,VertBase)),
load_word(R_OtBase, R_TapePtr, O_(Binds_CubeTri,OtBase)), load_word(R_OtBase, R_TapePtr, O_(Binds_CubeTri,OtBase)),
add_ui_self( R_TapePtr, S_(Binds_CubeTri)), add_ui_self( R_TapePtr, S_(Binds_CubeTri)),
mac_yield() mac_yield()
}; };
/* ============================================================================ // cube_g4_face — Draw one cube face (Gouraud-shaded quad) via the GTE tape pipeline
* 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),
* Reads 4 indices from R_FaceCur (V4_S2 = 8 bytes), loads 4 vertices into
* the GTE, runs the PsyQ RotAverageNclip4 sequence, and renders a Poly_G4.
*/
internal
MipsAtom_(cube_g4_face) atom_info(
atom_reads( R_PrimCursor, R_FaceCursor, R_VertBase, R_OtBase), atom_reads( R_PrimCursor, R_FaceCursor, R_VertBase, R_OtBase),
atom_writes(R_PrimCursor, R_FaceCursor) atom_writes(R_PrimCursor, R_FaceCursor)
){ ){
@@ -94,52 +89,52 @@ typedef Struct_(Binds_FloorTri) {
V3_S2* VertBase; V3_S2* VertBase;
U4* OtBase; U4* OtBase;
}; };
internal internal
MipsAtom_(rbind_floor_f3_face) atom_info(atom_bind(Binds_FloorTri) MipsAtom_(rbind_floor_f3_face) atom_info(atom_bind(Binds_FloorTri), atom_phase(floor_f3)
, atom_reads(R_TapePtr) , atom_reads(R_TapePtr)
, atom_writes(R_PrimCursor, R_FaceCursor, R_VertBase, R_OtBase) , atom_writes(R_PrimCursor, R_FaceCursor, R_VertBase, R_OtBase)
){ ){
/* Pop 4 arguments from the tape directly into the workspace registers */ /* Pop 4 arguments from the tape directly into the workspace registers */
load_word(R_PrimCursor, R_TapePtr, O_(Binds_FloorTri,PrimCursor)), load_word(R_PrimCursor, R_TapePtr, O_(Binds_FloorTri,PrimCursor)),
load_word(R_FaceCursor, R_TapePtr, O_(Binds_FloorTri,FaceCursor)), load_word(R_FaceCursor, R_TapePtr, O_(Binds_FloorTri,FaceCursor)),
load_word(R_VertBase, R_TapePtr, O_(Binds_FloorTri,VertBase)), load_word(R_VertBase, R_TapePtr, O_(Binds_FloorTri,VertBase)),
load_word(R_OtBase, R_TapePtr, O_(Binds_FloorTri,OtBase)), load_word(R_OtBase, R_TapePtr, O_(Binds_FloorTri,OtBase)),
add_ui_self( R_TapePtr, S_(Binds_FloorTri)), add_ui_self( R_TapePtr, S_(Binds_FloorTri)),
mac_yield() mac_yield()
}; };
internal // atom_dbg_skip_over()
MipsAtom_(floor_f3_face) atom_info( internal
MipsAtom_(floor_f3_face) atom_info(atom_phase(floor_f3)
, atom_reads( R_PrimCursor, R_FaceCursor, R_VertBase, R_OtBase) , atom_reads( R_PrimCursor, R_FaceCursor, R_VertBase, R_OtBase)
, atom_writes(R_PrimCursor, R_FaceCursor) , atom_writes(R_PrimCursor, R_FaceCursr)
) { ) {
mac_load_tri_indices( R_T0, R_T1, R_T2), mac_load_tri_indices( R_T0, R_T1, R_T2),
mac_gte_load_tri_verts(R_T0, R_T1, R_T2), mac_gte_load_tri_verts(R_T0, R_T1, R_T2),
nop2, gte_cmdw_rotate_translate_perspective_triple, nop2, gte_cmdw_rotate_translate_perspective_triple, // 2 nops retire the final cpu -> gte writes before RTPT
nop2, gte_cmdw_nclip, gte_cmdw_nclip,
/* Culling (Branch forward if Backface) */ /* Culling (Branch forward if Backface) */
nop2, gte_mv_from_data_r(R_T0, C2_MAC0), gte_mv_from_data_r(R_T0, C2_MAC0),
nop, nop, branch_le_zero(R_T0, atom_offset(culling, floor_f3_face_exit)), nop, // required gte -> cpu load-delay slot.
branch_le_zero(R_T0, atom_offset(culling, floor_f3_face_exit)), nop,
/* Format Primitive */ /* Format Primitive */
mac_format_f3_color(0xFF, 0xFF, 0xFF), // RGB-form (R=FF, G=FF, B=FF = white) mac_format_f3_color(0xFF, 0xFF, 0xFF), // RGB-form (R=FF, G=FF, B=FF = white)
mac_gte_store_f3_post_rtpt(), mac_gte_store_f3_post_rtpt(),
/* Calculate Depth */ /* Calculate Depth */
nop2, gte_avg_sort_z3, gte_avg_sort_z3,
nop2, gte_mv_from_data_r(R_T1, C2_OTZ), gte_mv_from_data_r(R_T1, C2_OTZ),
/* Bounds Check OTZ < 2048 (Branch forward to skip insertion) */ /* Bounds Check OTZ < 2048 (Branch forward to skip insertion) */
add_ui( R_AT, R_0, OrderingTbl_Len), add_ui( R_AT, R_0, OrderingTbl_Len),
set_lt_u( R_AT, R_T1, R_AT), set_lt_u( R_AT, R_T1, R_AT),
branch_equal(R_AT, R_0, atom_offset(bounds_chk, floor_f3_face_exit)), nop, branch_equal(R_AT, R_0, atom_offset(bounds_chk, floor_f3_face_exit)), nop,
/* Insert into Ordering Table Linked List */ /* Insert into Ordering Table Linked List */
mac_insert_ot_tag_f3(), mac_insert_ot_tag_f3(),
add_ui_self(R_PrimCursor, S_(Poly_F3)), /* Advance Prim Cursor (5 words) */ add_ui_self(R_PrimCursor, S_(Poly_F3)), /* Advance Prim Cursor (5 words) */
// Note(Ed): No bounds checking, should be checked before atom runs. // Note(Ed): No bounds checking, should be checked before atom runs.
/* Advance Input Cursor & Yield (Both branch targets land here) */ /* Advance Input Cursor & Yield (Both branch targets land here) */
atom_label(floor_f3_face_exit) atom_label(floor_f3_face_exit)
add_ui_self(R_FaceCursor, S_(S2) * 4), /* Advance Face Cursor (4 * S2 = 8 bytes) */ add_ui_self(R_FaceCursor, S_(S2) * 4), /* Advance Face Cursor (4 * S2 = 8 bytes) */
mac_yield() mac_yield()
}; };
@@ -150,7 +145,7 @@ internal MipsAtom_(sync_primitive_arena) atom_info(atom_bind(Binds_SyncPrimitive
, atom_writes(R_TapePtr) , atom_writes(R_TapePtr)
){ ){
load_word(R_AT, R_TapePtr, O_(Binds_SyncPrimitiveArena,used)), load_word(R_AT, R_TapePtr, O_(Binds_SyncPrimitiveArena,used)),
load_word(R_T0, R_TapePtr, O_(Binds_SyncPrimitiveArena,cursor)), load_word(R_T0, R_TapePtr, O_(Binds_SyncPrimitiveArena,cursor)),
add_ui_self( R_TapePtr, S_(Binds_SyncPrimitiveArena)), add_ui_self( R_TapePtr, S_(Binds_SyncPrimitiveArena)),
/* Calculate byte offset and store directly back to RAM */ /* Calculate byte offset and store directly back to RAM */
sub_u( R_T0, R_PrimCursor, R_T0), // R_T0 = R_PrimCursor - binds.cursor sub_u( R_T0, R_PrimCursor, R_T0), // R_T0 = R_PrimCursor - binds.cursor
+7
View File
@@ -27,6 +27,13 @@ scoop install luajit
* Lua is slow (even jitted) so this helps. * Lua is slow (even jitted) so this helps.
[lfs (LuaFileSystem)](https://github.com/lunarmodules/luafilesystem)
* Native directory enumeration + `mkdir` for the build scripts.
* Used by `passes/word_count_eval.lua :: scan_dir` (native walk vs. `dir /b /s` subprocess,
~2ms vs. ~56ms) and by `duffle.lua :: ensure_dir` + `to_absolute_path` (avoids
`cmd.exe mkdir` + `cd` shell spawns, ~50ms each).
[pscx-redux](https://github.com/grumpycoders/pcsx-redux/): A collection of tools, research, hardware design, and libraries aiming at development and reverse engineering on the PlayStation 1. [pscx-redux](https://github.com/grumpycoders/pcsx-redux/): A collection of tools, research, hardware design, and libraries aiming at development and reverse engineering on the PlayStation 1.
* Used as the runtime sandbox emulated the ps1 * Used as the runtime sandbox emulated the ps1
+30
View File
@@ -0,0 +1,30 @@
-- gte_debug.lua — defensive version + prints error context.
local ok, err = pcall(function()
print("[debug] PCSX exists:", PCSX ~= nil)
print("[debug] PCSX.WebServer exists:", PCSX and PCSX.WebServer ~= nil)
print("[debug] PCSX.WebServer.Handlers exists:", PCSX and PCSX.WebServer and PCSX.WebServer.Handlers ~= nil)
if not PCSX.WebServer then
print("[debug] creating PCSX.WebServer...")
PCSX.WebServer = {}
end
if not PCSX.WebServer.Handlers then
print("[debug] creating PCSX.WebServer.Handlers...")
PCSX.WebServer.Handlers = {}
end
print("[debug] type of Handlers:", type(PCSX.WebServer.Handlers))
PCSX.WebServer.Handlers.gte = function(req)
local r = PCSX.getRegisters()
local out = { "pc=0x" .. string.format("%x", r.pc) }
for i = 0, 31 do
out[#out + 1] = string.format("D[%d]=0x%08x C[%d]=0x%08x",
i, r.CP2D.r[i], i, r.CP2C.r[i])
end
return table.concat(out, "\n")
end
print("[debug] handler registered")
end)
if not ok then
print("[debug] ERROR: " .. tostring(err))
end
View File
+7 -17
View File
@@ -168,28 +168,18 @@ if arg and arg[1] then
end end
-- Accept either a directory or a file path. Directory args are -- Accept either a directory or a file path. Directory args are
-- expanded via `dir /b *.lua` (Windows) or `ls *.lua` (Unix). -- expanded via lfs.dir (native, no subprocess).
local lfs = require("lfs")
local function is_dir(p) local function is_dir(p)
local f = io.open(p, "r") return lfs.attributes(p, "mode") == "directory"
if f then f:close() return false end
return true
end end
local function list_lua(dir) local function list_lua(dir)
local out = {} local out = {}
local cmd if not is_dir(dir) then return out end
if package.config:sub(1, 1) == "\\" then for entry in lfs.dir(dir) do
cmd = 'dir /b "' .. dir .. '\\*.lua" 2>nul' if entry:match("%.lua$") then
else out[#out + 1] = dir .. "/" .. entry
cmd = 'ls -1 "' .. dir .. '"/*.lua 2>/dev/null'
end
local p = io.popen(cmd)
if p then
for line in p:lines() do
if line:match("%.lua$") then
out[#out + 1] = dir .. "/" .. line
end
end end
p:close()
end end
return out return out
end end
+109 -35
View File
@@ -81,19 +81,6 @@ $path_psyq = join-path $path_toolchain 'psyq-4_7'
$path_psyq_iwyu = join-path $path_toolchain 'psyq_iwyu' $path_psyq_iwyu = join-path $path_toolchain 'psyq_iwyu'
$path_psyq_imyu_inc = join-path $path_psyq_iwyu 'include' $path_psyq_imyu_inc = join-path $path_psyq_iwyu 'include'
function Get-SourceFiles { param([Parameter(Mandatory=$true)] [string[]]$paths, [Parameter(Mandatory=$true)] [string[]]$extensions)
$files = @()
foreach ($p in $paths) {
if (-not (test-path $p)) { continue }
foreach ($ext in $extensions) {
Get-ChildItem -Path $p -File -Recurse -Filter "*$ext" -ErrorAction SilentlyContinue | ForEach-Object {
$files += $_.FullName
}
}
}
return ($files | Sort-Object -Unique)
}
function assemble-unit { param( function assemble-unit { param(
[string] $unit, [string] $unit,
[string] $link_module, [string] $link_module,
@@ -243,6 +230,52 @@ function make-binary { param([string]$elf, [string]$exe)
if ($LASTEXITCODE -ne 0) { Write-Error "Objcopy failed. Aborting."; exit 1 } if ($LASTEXITCODE -ne 0) { Write-Error "Objcopy failed. Aborting."; exit 1 }
} }
function ps1-meta { param(
[string]$unity_root,
[string[]]$sources,
[Parameter(Mandatory=$true)][string]$metadata,
[string]$out_root = (join-path $path_build 'gen'),
[string[]]$passes = @('--pre-link'),
[string[]]$extra_args = @()
)
# `--unity-root` and `--source` are
# mutually exclusive. Exactly one of `$unity_root` / `$sources` must
# be supplied; the other must be absent.
if ($null -ne $unity_root -and $unity_root -ne '')
{
if ($null -ne $sources -and $sources.Count -gt 0) {
write-error 'ps1-meta: -unity_root and -sources are mutually exclusive'
exit 2
}
}
elseif ($null -eq $sources -or $sources.Count -eq 0) {
write-error 'ps1-meta: either -unity_root <file> or -sources <file...> is required'
exit 2
}
$script = join-path $path_scripts 'ps1_meta.lua'
$input_summary = if ($null -ne $unity_root -and $unity_root -ne '') {
"unity=$unity_root"
}
else {
"$($sources.Count) source(s)"
}
write-host "ps1-meta $input_summary, passes=$($passes -join ',')" ` -ForegroundColor Magenta
$arg_list = @($passes) + @('--metadata', $metadata) + @('--out-root', $out_root) + @($extra_args)
if ($null -ne $unity_root -and $unity_root -ne '') {
$arg_list += @('--unity-root', $unity_root)
}
else {
foreach ($s in $sources) { $arg_list += @('--source', $s) }
}
& luajit $script @arg_list
if ($LASTEXITCODE -ne 0) {
write-error "ps1-meta failed (exit $LASTEXITCODE). Aborting."
exit $LASTEXITCODE
}
}
function build-hello_psyqo { function build-hello_psyqo {
$includes += @() $includes += @()
@@ -317,33 +350,16 @@ function build-graphis_hello {
} }
# build-graphis_hello # build-graphis_hello
function ps1-meta { param(
[Parameter(Mandatory=$true)][string[]]$sources,
[Parameter(Mandatory=$true)][string]$metadata,
[string]$out_root = (join-path $path_build 'gen'),
[string[]]$passes = @('--all')
)
$script = join-path $path_scripts 'ps1_meta.lua'
write-host "ps1-meta $($sources.Count) source(s), passes=$($passes -join ',')" ` -ForegroundColor Magenta
$arg_list = @($passes) + @('--metadata', $metadata) + @('--out-root', $out_root)
foreach ($s in $sources) { $arg_list += @('--source', $s) }
& luajit $script @arg_list
if ($LASTEXITCODE -ne 0) {
write-error "ps1-meta failed (exit $LASTEXITCODE). Aborting."
exit $LASTEXITCODE
}
}
function build-gte_hello { function build-gte_hello {
$includes += @() $includes += @()
$path_module = join-path $path_code 'gte_hello' $path_module = join-path $path_code 'gte_hello'
$path_duffle = join-path $path_code 'duffle' $path_duffle = join-path $path_code 'duffle'
$path_atom_metadata = join-path $path_duffle 'word_count.metadata.h' $path_atom_metadata = join-path $path_duffle 'word_count.metadata.h'
$path_build_gen = join-path $path_build 'gen'
$source_dirs = @($path_duffle, $path_module) $src_c = join-path $path_module 'hello_gte.c'
$atom_sources = Get-SourceFiles -paths $source_dirs -extensions @('.h', '.c') ps1-meta -unity_root $src_c -metadata $path_atom_metadata -out_root $path_build_gen
ps1-meta -sources $atom_sources -metadata $path_atom_metadata -out_root (join-path $path_build 'gen')
$assemble_args = @() $assemble_args = @()
$assemble_args += $f_debug $assemble_args += $f_debug
@@ -359,7 +375,6 @@ function build-gte_hello {
# assemble-unit $src_asm $module_asm $includes $assemble_args # assemble-unit $src_asm $module_asm $includes $assemble_args
$src_c = join-path $path_module 'hello_gte.c'
$module_c = join-path $path_build 'hello_gte_c.o' $module_c = join-path $path_build 'hello_gte_c.o'
$compile_args = @() $compile_args = @()
@@ -378,11 +393,70 @@ function build-gte_hello {
$link_args += $f_debug $link_args += $f_debug
# $link_args += $f_optimize_size # $link_args += $f_optimize_size
$link_modules = @( $link_modules = @(
$module_asm_crt, $module_asm_crt,
$module_c $module_c
) )
link-modules $link_modules $elf $link_args link-modules $link_modules $elf $link_args
make-binary $elf $exe make-binary $elf $exe
# 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"
)
& $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;
}
$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"
)
& $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;
}
# 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 build-gte_hello
+1845 -331
View File
File diff suppressed because it is too large Load Diff
+18 -39
View File
@@ -11,11 +11,10 @@
--- ``` --- ```
--- ---
--- That small bootstrap: (a) locates this helper via `arg[0]` / `debug.getinfo`, --- That small bootstrap: (a) locates this helper via `arg[0]` / `debug.getinfo`,
--- (b) loads it (which sets `package.path` + `package.cpath` via cached `git rev-parse`), --- (b) loads it (which sets `package.path` + `package.cpath`),
--- (c) at the bottom calls `require("duffle")` (now resolvable since `package.path` was just set) and returns the duffle M. --- (c) at the bottom calls `require("duffle")` (now resolvable since `package.path` was just set) and returns the duffle M.
--- Net effect: the caller gets the duffle module in one statement; no separate `dofile(...)` + `require("duffle")` dance. --- Net effect: the caller gets the duffle module in one statement; no separate `dofile(...)` + `require("duffle")` dance.
--- ---
--- Replaces the prior 2-line (entry) or 4-line (pass) pattern that had the call site do its own path resolution + duplicated setup.
local M = {} local M = {}
@@ -27,50 +26,25 @@ local CACHE_KEY = "__duffle_repo_root__"
--- parent of the directory containing this script. We derive it directly from `debug.getinfo(1, "S").source` --- parent of the directory containing this script. We derive it directly from `debug.getinfo(1, "S").source`
--- (returns `@<path>` for the currently-running chunk). --- (returns `@<path>` for the currently-running chunk).
--- ---
--- Replaces the prior `io.popen("git rev-parse --show-toplevel")` approach, which cost ~100-180ms per --- If `debug.getinfo` can't parse this script's path (shouldn't happen — dofile always populates source),
--- LuaJIT process on Windows due to git's CLI startup. The path-derive approach costs <1ms. --- return nil and let `M.setup()` fail loud.
---
--- If this script's path can't be parsed (shouldn't happen — dofile/debug.getinfo always populates source),
--- fall back to a defensive walk: starting from this script's directory, walk UP until we find a parent that
--- contains a `scripts/` directory. The first match is the repo root.
--- @return string|nil --- @return string|nil
local function find_repo_root() local function find_repo_root()
if package.loaded[CACHE_KEY] then return package.loaded[CACHE_KEY] end if package.loaded[CACHE_KEY] then return package.loaded[CACHE_KEY] end
local source = debug.getinfo(1, "S").source local source = debug.getinfo(1, "S").source
-- Strip the leading `@` (Lua's dofile marker) and the trailing `/duffle_paths.lua` filename. -- Strip the leading `@` (Lua's dofile marker) and the trailing `/duffle_paths.lua` filename.
-- What remains is the directory containing this script, i.e. `<repo>/scripts/` (with trailing slash or not). -- What remains is the directory containing this script, i.e. `<repo>/scripts/`.
local scripts_dir = source and source:match("^@?(.*)[/\\]duffle_paths%.lua$") local scripts_dir = source and source:match("^@?(.*)[/\\]duffle_paths%.lua$")
if scripts_dir then if not scripts_dir then return nil end
-- The repo root is the parent of `scripts/`. Strip the trailing `scripts/` (with or without trailing slash).
local root = scripts_dir:gsub("scripts[\\/]?$", "")
root = root:gsub("\\", "/")
if root == "" then root = "./" end
if not root:match("/$") then root = root .. "/" end
package.loaded[CACHE_KEY] = root
return root
end
-- Defensive fallback: walk UP from this script's directory until we find a parent that contains `scripts/`. -- The repo root is the parent of `scripts/`. Strip the trailing `scripts/` (with or without trailing slash).
-- In practice this branch never fires — debug.getinfo always returns a source for dofile()'d chunks. local root = scripts_dir:gsub("scripts[\\/]?$", "")
local lfs = pcall(require, "lfs") and require("lfs") or nil root = root:gsub("\\", "/")
if lfs then if root == "" then root = "./" end
local dir = source and source:match("^@?(.*[/\\])") or "./" if not root:match("/$") then root = root .. "/" end
dir = dir:gsub("\\", "/") package.loaded[CACHE_KEY] = root
while dir and dir ~= "" do return root
local candidate_scripts = dir .. "scripts"
if lfs.attributes(candidate_scripts, "mode") == "directory" then
dir = dir:gsub("/$", "")
package.loaded[CACHE_KEY] = dir .. "/"
return dir .. "/"
end
local parent = dir:match("^(.*)/[^/]+/$")
if not parent then break end
dir = parent .. "/"
end
end
return nil
end end
--- Set `package.path` (for `require("duffle")` + `require("passes.X")`) and --- Set `package.path` (for `require("duffle")` + `require("passes.X")`) and
@@ -83,7 +57,12 @@ end
function M.setup() function M.setup()
local repo_root = find_repo_root() local repo_root = find_repo_root()
if not repo_root then if not repo_root then
io.stderr:write("[duffle_paths] git rev-parse failed -- not in a git repo?\n") -- Unreachable in practice: find_repo_root() derives the repo root from this script's
-- own source path via debug.getinfo(1, "S").source (no subprocess, no git CLI, <1ms).
-- A nil return means the source path did not match the expected
-- <repo>/scripts/duffle_paths.lua layout — a packaging bug, not a "missing git repo"
-- condition. os.exit(2) is retained so a real failure surfaces loud rather than
-- silently producing an unconfigured module table.
os.exit(2) os.exit(2)
end end
+794
View File
@@ -0,0 +1,794 @@
--- 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
-- ════════════════════════════════════════════════════════════════════════════
-- lfs is wired into package.cpath by `duffle_paths.lua` (vendored under `toolchain/lfs/lfs.dll`).
local lfs = require("lfs")
local M = {}
-- ════════════════════════════════════════════════════════════════════════════
-- DWARF tag + form constants
-- ════════════════════════════════════════════
-- (DWARF5 §7.5.5 "Tag Encodings" + Table 7.1; gcc emits these exact values for the DWARF3-extension and DWARF5 line units.)
M.DW_TAG = {
compile_unit = 0x11,
subprogram = 0x2E,
variable = 0x34,
structure_type = 0x13,
member = 0x0D,
base_type = 0x24,
typedef = 0x2A,
pointer_type = 0x0F,
const_type = 0x26,
volatile_type = 0x27,
inlined_subroutine = 0x1D,
-- We index the canonical gcc-emitted tags. Anything else falls through.
}
M.DW_AT = {
name = 0x03,
low_pc = 0x11,
high_pc = 0x12,
language = 0x13,
location = 0x02,
comp_dir = 0x1B,
byte_size = 0x0B,
encoding = 0x3E,
data_member_location = 0x38,
type = 0x49,
linkage_name = 0x6E,
external = 0x3F,
abstract_origin = 0x31,
call_file = 0x58,
call_line = 0x59,
inline = 0x20,
decl_file = 0x3A,
decl_line = 0x3B,
}
M.DW_FORM = {
addr = 0x01,
data1 = 0x0B,
data2 = 0x05,
data4 = 0x06,
string = 0x08,
strp = 0x0E,
exprloc = 0x18,
ref4 = 0x13,
udata = 0x0F,
ref_sig8 = 0x20,
implicit_const = 0x21,
flag_present = 0x19,
sec_offset = 0x17,
}
M.DW_ATE = {
address = 0x01,
boolean = 0x02,
complex_float = 0x03,
float = 0x04,
signed = 0x05,
signed_char = 0x06,
unsigned = 0x07,
unsigned_char = 0x08,
}
-- DWARF5 §7.5.6 DW_FORM_implicit_const
local DW_FORM_implicit_const = 0x21
-- ════════════════════════════════════════════════════════════════════════════
-- Format-constant tables
-- ════════════════════════════════════════════════════════════════════════════
-- ----------------------------------------------------------------------------
-- MIPS sizes
-- ----------------------------------------------------------------------------
--- spec: MIPS o32 ABI §"Register Usage" — 32-bit general-purpose registers
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`).
---
--- ELF/DWARF field offsets are expressed in hex so they map directly to the
--- zero-based byte positions in the binary file.
--- 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
}
-- ----------------------------------------------------------------------------
-- DWARF4 .debug_aranges (per DWARF5 spec §7.4 — Address Range Table)
-- ----------------------------------------------------------------------------
-- All offsets are zero-based wire offsets.
--- spec: DWARF5 spec §7.4 (Address Range Table) — 32-bit DWARF form
M.DWARF4_ARANGES = {
unit_length_offset = 0x00, -- 4-byte LE; length of unit body (excludes these 4 bytes)
version_offset = 0x04, -- 2-byte LE; expected = 2
cu_offset_offset = 0x06, -- 4-byte LE; CU DIE offset in .debug_info
addr_size_offset = 0x0A, -- 1-byte; expected = 4 (32-bit MIPS)
seg_size_offset = 0x0B, -- 1-byte; expected = 0
entry_size = 0x08, -- 4-byte addr + 4-byte length (per §7.4)
terminator_size = 0x08, -- 8 zero bytes (per §7.4 end-of-list marker)
version_expected = 2,
addr_size_expected = 4,
seg_size_expected = 0,
}
-- ----------------------------------------------------------------------------
-- DWARF5 .debug_rnglists (per DWARF5 spec §2.17 + §7.21)
-- ----------------------------------------------------------------------------
-- All offsets are zero-based wire offsets.
--- spec: DWARF5 spec §2.17 + §7.21 (Range List Table) — 32-bit DWARF form
M.DWARF5_RNGLISTS = {
unit_length_offset = 0x00, -- 4-byte LE
version_offset = 0x04, -- 2-byte LE; expected = 5
addr_size_offset = 0x06, -- 1-byte; expected = 4
seg_size_offset = 0x07, -- 1-byte; expected = 0
offset_count_offset = 0x08, -- 4-byte LE; expected = 0
first_entry_offset = 0x0C,
end_of_list = 0x00, -- spec: DWARF5 §7.7 — DW_RLE_end_of_list byte value
start_length = 0x07, -- spec: DWARF5 §7.7 — DW_RLE_start_length byte value
version_expected = 5,
addr_size_expected = 4,
seg_size_expected = 0,
offset_count_expected = 0,
}
-- ----------------------------------------------------------------------------
-- DWARF line-program opcodes (per DWARF5 spec §6.2.5)
-- ----------------------------------------------------------------------------
-- Opcode VALUES stay in decimal — they're identifiers (DW_LNS_copy = 1), not binary positions.
-- Compare to the *_offset fields above which are hex.
--- spec: DWARF5 spec §6.2.5 (Line Number Program Opcodes)
M.DWARF_LINE_OPS = {
-- Standard opcodes (§6.2.5.2)
DW_LNS_extended = 0, -- spec: §6.2.5.2 — extended opcode marker byte
DW_LNS_copy = 1,
DW_LNS_advance_pc = 2,
DW_LNS_advance_line = 3,
DW_LNS_set_file = 4,
DW_LNS_negate_stmt = 6, -- spec: §6.2.5.2 — toggle the line-state is_stmt register
-- Extended sub-opcodes (§6.2.5.3)
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.
-- line_base stays signed decimal (=-5) since 0xFB obscures the spec semantics.
opcode_base = 0x0D,
line_base = -5,
line_range = 0x0E,
-- Extended opcode payload sizes (include the sub-opcode byte; §6.2.5.3)
-- Hex so they match the byte positions in the line-program wire format.
end_sequence_payload_size = 0x01, -- size = sub_opcode only
set_address_payload_size = 0x05, -- size = sub_opcode(1) + addr(4)
}
-- ════════════════════════════════════════════════════════════════════════════
-- I/O helpers: little-endian byte read/write
-- ════════════════════════════════════════════════════════════════════════════
--- 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).
--- @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
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.)
--- @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
-- 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
-- (the uleb128 + sleb128 encoders were promoted the same way).
function M.read_uleb128_at(buf, pos)
local value, shift = 0, 0
local len = #buf
while pos < len do
local b = buf:byte(pos + 1)
value = value + (b % 0x80) * (2 ^ shift)
shift = shift + 7
pos = pos + 1
if b < 0x80 then return value, pos end
end
return nil, pos
end
function M.read_sleb128_at(buf, pos)
local value, shift = 0, 0
local len = #buf
while pos < len do
local b = buf:byte(pos + 1)
value = value + (b % 0x80) * (2 ^ shift)
shift = shift + 7
pos = pos + 1
if b < 0x80 then
if b >= 0x40 then value = value - (2 ^ shift) end
return value, pos
end
end
return nil, pos
end
-- Find the 0-based offset of the table-terminator byte (a single 0) for the abbrev table starting at `table_start`.
-- Returns nil on truncated input. Walks declaration headers
-- (code, tag, has_children, attr/form pairs, DW_FORM_implicit_const constant) until it finds a 0 byte that follows a complete declaration.
function M.find_abbrev_table_end(table_bytes, table_start)
local pos, len = table_start, #table_bytes
if pos >= len or table_bytes:byte(pos + 1) == 0 then return pos end
while pos < len do
local _code, code_end = M.read_uleb128_at(table_bytes, pos)
if not _code then return nil end
pos = code_end
local _tag, tag_end = M.read_uleb128_at(table_bytes, pos)
if not _tag then return nil end
pos = tag_end
if pos >= len then return nil end
pos = pos + 1 -- has_children byte
while pos < len do
local attr, attr_end = M.read_uleb128_at(table_bytes, pos)
if not attr then return nil end
pos = attr_end
local form, form_end = M.read_uleb128_at(table_bytes, pos)
if not form then return nil end
pos = form_end
if attr == 0 and form == 0 then break end
if form == DW_FORM_implicit_const then
local _c, ce = M.read_sleb128_at(table_bytes, pos)
if not _c then return nil end
pos = ce
end
end
if pos >= len then return nil end
if table_bytes:byte(pos + 1) == 0 then return pos end
end
return nil
end
-- Read the null-terminated C string at 0-based offset `off` in `buf`.
-- Stops at the first 0 byte or end of buffer.
local function read_c_string_at(buf, off)
local len = #buf
local start = off
while off < len and buf:byte(off + 1) ~= 0 do off = off + 1 end
return buf:sub(start + 1, off)
end
-- Walk the .debug_abbrev table starting at 0-based offset `table_start` and return a list of declarations:
-- {code, tag, has_children, attrs={ {name, form}, ... }}.
-- Stops at the table terminator.
local function parse_abbrev_table(table_bytes, table_start)
local table_end = M.find_abbrev_table_end(table_bytes, table_start)
if not table_end then return nil, "no terminator" end
local decls = {}
local pos = table_start
while pos < table_end do
local code, code_end = M.read_uleb128_at(table_bytes, pos)
if not code then return nil, "truncated code" end
pos = code_end
local tag, tag_end = M.read_uleb128_at(table_bytes, pos)
if not tag then return nil, "truncated tag" end
pos = tag_end
local has_children = table_bytes:byte(pos + 1)
pos = pos + 1
local attrs = {}
while true do
local attr, attr_end = M.read_uleb128_at(table_bytes, pos)
if not attr then return nil, "truncated attr" end
pos = attr_end
local form, form_end = M.read_uleb128_at(table_bytes, pos)
if not form then return nil, "truncated form" end
pos = form_end
if attr == 0 and form == 0 then break end
attrs[#attrs + 1] = { name = attr, form = form }
if form == DW_FORM_implicit_const then
local _c, ce = M.read_sleb128_at(table_bytes, pos)
if not _c then return nil, "truncated const" end
pos = ce
end
end
decls[#decls + 1] = { code = code, tag = tag, has_children = has_children, attrs = attrs }
end
return decls
end
-- Read a ULEB attribute value at 0-based offset `pos` for the given `form`.
-- Returns (value, next_pos). For DW_FORM_string we return the inline string.
-- For DW_FORM_strp we return the inline string resolved from `str_buf`.
-- For DW_FORM_ref4 we return the absolute CU-relative offset.
-- The caller decides whether to interpret that as a section offset.
local function read_form_value(buf, str_buf, pos, form)
if form == M.DW_FORM.addr then
return M.read_u32_le(buf, pos), pos + 4
elseif form == M.DW_FORM.string then
local s = read_c_string_at(buf, pos)
return s, pos + #s + 1
elseif form == M.DW_FORM.strp then
-- DW_FORM_strp: 4-byte offset into .debug_str.
local strp_off = M.read_u32_le(buf, pos)
return read_c_string_at(str_buf, strp_off), pos + 4
elseif form == M.DW_FORM.udata then return M.read_uleb128_at(buf, pos)
elseif form == M.DW_FORM.data1 then return buf:byte(pos + 1), pos + 1
elseif form == M.DW_FORM.data2 then return M.read_u16_le(buf, pos), pos + 2
elseif form == M.DW_FORM.data4 then return M.read_u32_le(buf, pos), pos + 4
elseif form == M.DW_FORM.ref4 then return M.read_u32_le(buf, pos), pos + 4
elseif form == M.DW_FORM.sec_offset then
-- DW_FORM_sec_offset: 4-byte offset (size depends on DWARF version;
-- on DWARF5 32-bit it's always 4 bytes).
return M.read_u32_le(buf, pos), pos + 4
elseif form == M.DW_FORM.flag_present then
return 1, pos
elseif form == M.DW_FORM.exprloc then
-- DW_FORM_exprloc: ULEB byte count + that many bytes of DW_OP_*.
local len, ne = M.read_uleb128_at(buf, pos)
if not len then return nil, pos end
return nil, ne + len
elseif form == DW_FORM_implicit_const then
-- 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.
-- 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;
-- the high 4 is exposed via M.read_ref_sig8 (which returns both halves).
local _, _, next_pos = M.read_ref_sig8(buf, pos)
return M.read_u32_le(buf, pos), next_pos
else
return nil, pos
end
end
--- Read a `DW_FORM_ref_sig8` value at 0-based offset `pos` from `buf`.
--- Returns the low 4 bytes (LE) as `low`, the high 4 bytes (LE) as `high`, and the cursor position after the 8-byte value as `next_pos`.
--- Callers that need the full type-unit + type-offset pair (e.g. to resolve a type identifier embedded as a signature)
--- should use this directly rather than going through `read_form_value`,
--- which only exposes the low 4 bytes to preserve its existing (value, next_pos) return shape.
--- @param buf string
--- @param pos integer -- zero-based wire offset
--- @return integer -- low 4 bytes (LE), the type signature
--- @return integer -- high 4 bytes (LE), the offset within the matching type unit
--- @return integer -- cursor after the 8-byte value
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
function M.find_type_unit_by_signature(info, target_sig_lo, target_sig_hi)
local pos = 0
local section_len = #info
while pos + 4 < section_len do
local unit_length = M.read_u32_le(info, pos)
if unit_length == 0xFFFFFFFF then
return nil, nil -- DWARF64 not supported
end
-- unit_length is the body size, NOT including the 4-byte unit_length field itself.
local body_start = pos + 4
local body_end = body_start + unit_length
if body_end > section_len then
return nil, nil -- malformed
end
-- Per DWARF5 §7.5.6, the type_unit (DW_UT_type = 0x02) body layout is:
-- 0: version (2)
-- 2: unit_type (1) -- DW_UT_type = 0x02
-- 3: address_size (1)
-- 4: debug_abbrev_offset (4)
-- 8: type_signature (8)
-- 16: type_offset (4)
-- 20: <children>
if body_end - body_start >= 20 then
-- read_ref_sig8 / write_u32_le / etc. are 1-indexed (string:byte);
-- pos / body_start / body_end are 0-based wire offsets, so the
-- 1-indexed byte at 0-based wire offset X is string:byte(X + 1).
-- Per DWARF5 §7.5.6, the type_unit body is laid out as:
-- byte 0-1: version (2)
-- byte 2: unit_type (1) -- DW_UT_type = 0x02
-- byte 3: address_size (1)
-- byte 4-7: debug_abbrev_offset (4)
-- byte 8-15: type_signature (8)
-- byte 16-19: type_offset (4)
local unit_type = info:byte(body_start + 2 + 1) -- 0-based +2 = unit_type in 1-indexed
if unit_type == 0x02 then -- DW_UT_type
local sig_lo, sig_hi, _ = M.read_ref_sig8(info, body_start + 8) -- 0-based +8 = type_signature in 1-indexed
if sig_lo == target_sig_lo and sig_hi == target_sig_hi then
local type_offset = M.read_u32_le(info, body_start + 16) -- 0-based +16 = type_offset in 1-indexed
return pos, type_offset
end
end
end
-- Advance to the next unit (the 4-byte unit_length + the body).
pos = body_end
end
return nil, nil
end
--- Return a 4-byte little-endian byte string for `value`.
--- Caller concatenates with `..` if composing multi-word blobs.
--- **Byte weights** written as `0x100` etc. (see `M.read_u32_le` for rationale).
--- @param value integer -- 0 ≤ value ≤ 0xFFFFFFFF
--- @return string
function M.write_u32_le(value)
return string.char(
value % 0x00000100,
math.floor(value / 0x00000100) % 0x00000100,
math.floor(value / 0x00010000) % 0x00000100,
math.floor(value / 0x01000000) % 0x00000100)
end
--- Return a 2-byte little-endian byte string for `value`.
--- @param value integer -- 0 ≤ value ≤ 0xFFFF
--- @return string
function M.write_u16_le(value)
return string.char(value % 0x00000100, math.floor(value / 0x00000100) % 0x00000100)
end
-- ════════════════════════════════════════════════════════════════════════════
-- I/O helpers: ELF32 / DWARF / symbols
-- ════════════════════════════════════════════════════════════════════════════
--- Read the named sections from a post-link ELF32 by walking the ELF32 section-header table directly
--- (no subprocess; lfs only for the existence check). Returns `{[name] = bytes_or_empty_string, ...}`.
---
--- **Convention:** ELF/DWARF offsets are zero-based wire offsets. Direct Lua string APIs add `+ 1` at the boundary.
--- Every requested name has an entry in the returned dict;
--- missing sections have an empty string (NOT nil) so callers can do `sections[".debug_x"] or ""` for the missing case.
---
--- **Cost:** one file open + one `f:seek` + one `f:read` per section header
--- (we walk all `e_shnum` headers regardless of how many names are requested, to find the .shstrtab first).
--- For frequent callers, pass the union of all needed sections in one call.
-- Can add `.debug_info` + `.debug_loc` + `.debug_str_offsets` to the list without writing a 2nd ELF walker.
--- @param elf_path Path
--- @param section_names string[] -- list of section names to read
--- @return table<string, string>
function M.read_elf_sections(elf_path, section_names)
-- Initialize result with all requested names set to "" so callers can do `sections[X]
-- or ""` for missing sections without nil-checks.
local result = {}
for _, name in ipairs(section_names) do result[name] = "" end
-- O(1) lookup set.
local wanted = {}
for _, name in ipairs(section_names) do wanted[name] = true end
-- Existence check (lfs.attributes avoids an io.open-vs-fail race).
if lfs.attributes(elf_path, "mode") ~= "file" then
io.stderr:write(string.format("[elf_dwarf.read_elf_sections] ELF not found: %s\n", elf_path))
return result
end
local f = io.open(elf_path, "rb")
if not f then
io.stderr:write(string.format("[elf_dwarf.read_elf_sections] io.open failed: %s\n", elf_path))
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")
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")
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)
end
end
f:close()
return result
end
--- Read ELF symbol addresses by walking the `.symtab` + `.strtab` sections directly (no `nm` subprocess).
--- Returns a map `{name -> {addr, size_bytes}}` for every `code_<name>` symbol.
---
--- **Conventions:**
--- - ELF32 symtab entry = 16 bytes (`st_name:4 + st_value:4 + st_size:4 + st_info:1 + st_other:1 + st_shndx:2`); offsets within each entry are zero-based wire offsets.
--- - Direct Lua `string.byte`/`string.sub`/`string.find` boundaries receive `+ 1`.
--- - 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.
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 }
end
end
end
end
return addrs
end
-- ════════════════════════════════════════════════════════════════════════════
-- LEB128 encoders (Unsigned + Signed Little-Endian Base 128)
-- ════════════════════════════════════════════════════════════════════════════
--
-- DWARF uses LEB128 to encode variable-length integers in its wire format (line-program opcodes, DW_AT values, etc.).
-- Both encoders pack 7 bits of data per byte + 1 bit of "more bytes follow" signaling.
--
-- Per-byte layout:
-- bit: 7 6 5 4 3 2 1 0
-- │ └───── 7-bit data ─────┘
-- └─ continuation flag (LEB_CONT_BIT = 0x80)
--
-- For SLEB128 (signed), bit 6 of the 7-bit data is the sign bit that the
-- decoder uses for sign extension:
-- bit 6 = 0 → value is positive (or zero); zero-extend on decode
-- bit 6 = 1 → value is negative; one-extend on decode
--
-- The signed encoder must emit the MINIMUM number of bytes whose final 7-bit payload already has the correct sign bit set
-- (otherwise the decoder would round-trip to a different value).
--
-- Spec: DWARF5 §7.6 "Variable-Length Data" / Appendix C.
-- Top bit of each LEB128 byte. Set if more bytes follow in the encoding.
local LEB_CONT_BIT = 0x80
-- Low 7 bits of each LEB128 byte. The actual data payload.
local LEB_DATA_MASK = 0x7F
-- Bit 6 of the 7-bit data (i.e. 0x40). For SLEB128: the sign-bit position used by the decoder for sign extension.
-- Encoders MUST stop when the next byte would be redundant AND the sign bit in the last byte matches the value's sign.
local SLEB_SIGN_BIT = 0x40
--- ULEB128 (Unsigned Little-Endian Base 128) encoder. Returns the byte string for the non-negative integer `n`.
--- Algorithm:
--- - Extract the low 7 bits of `n` (LEB_DATA_MASK = 0x7F).
--- - Shift `n` right by 7 bits.
--- - If more bytes remain, OR in the continuation flag (LEB_CONT_BIT).
--- - Repeat until `n` is fully consumed.
--- @param n integer -- non-negative
--- @return string
function M.uleb128(n)
if n == nil or type(n) ~= "number" then
io.stderr:write("[elf_dwarf.uleb128] got " .. type(n) .. ": " .. tostring(n) .. "\n")
io.stderr:write(debug.traceback() .. "\n")
error("uleb128 requires non-negative number")
end
assert(n >= 0, "uleb128 requires non-negative input")
local bytes = {}
repeat
local b = n % (LEB_DATA_MASK + 1) -- extract low 7 bits
n = (n - b) / (LEB_DATA_MASK + 1) -- shift right by 7 bits
if n > 0 then b = b + LEB_CONT_BIT end -- set continuation bit if more bytes follow
bytes[#bytes + 1] = string.char(b)
until n == 0
return table.concat(bytes)
end
--- SLEB128 (Signed Little-Endian Base 128) encoder. Returns the byte string for the integer `n` (may be negative).
--- Algorithm differs from ULEB128 by the termination condition:
--- stop when the remaining bits can be inferred from the sign bit in the last byte's 7-bit data payload.
--- - If `n == 0` (no more value bits) AND bit 6 of the data = 0 → positive terminator (sign bit says "zero-extend").
--- - If `n == -1` (sign-extended all-1s) AND bit 6 of the data = 1 → negative terminator (sign bit says "one-extend").
---
--- Without these checks, the decoder would round-trip to a different value
--- (e.g. encoding `0` as `0x80 0x00` decodes to `0` correctly but is 2 bytes long; the termination check picks the 1-byte `0x00` form).
--- @param n integer -- any integer (negative allowed)
--- @return string
function M.sleb128(n)
local bytes = {}
local more = true
while more do
local b = n % (LEB_DATA_MASK + 1) -- extract low 7 bits
n = (n - b) / (LEB_DATA_MASK + 1) -- arithmetic shift right by 7
-- Termination: remaining value bits fit in the sign bit of the last byte.
if n == 0 and b < SLEB_SIGN_BIT then more = false end -- positive terminator
if n == -1 and b >= SLEB_SIGN_BIT then more = false end -- negative terminator
if more then b = b + LEB_CONT_BIT end
bytes[#bytes + 1] = string.char(b)
end
return table.concat(bytes)
end
--- ULEB128 byte-length: number of bytes the encoder M.uleb128 would produce for `n`.
--- Used by callers that need to size a buffer before encoding (e.g. compute_loclists_offsets
--- needs the encoded length of an `uleb128(4)` for a `DW_OP_piece + uleb128(U4_BYTE_SIZE)` tail).
--- @param n integer -- non-negative
--- @return integer -- 1..5 for n in [0, 2^32)
function M.uleb128_size(n)
assert(n >= 0, "uleb128_size requires non-negative input")
if n == 0 then return 1 end
local bytes = 1
while n >= 0x80 do
n = (n - (n % (LEB_DATA_MASK + 1))) / (LEB_DATA_MASK + 1) -- arithmetic shift right by 7
bytes = bytes + 1
end
return bytes
end
--- SLEB128 byte-length: number of bytes the encoder M.sleb128 would produce for `n`.
--- Used by callers that need to size a buffer before encoding.
--- (e.g. compute_loclists_offsets needs the encoded length of an `sleb128(field.offset)` in a tape piece).
--- Handles the signed DWARF5 termination: positive terminator if (n == 0) and bit 6 of last byte is unset;
--- negative terminator if (n == -1) and bit 6 of last byte is set.
--- @param n integer -- any integer (negative allowed)
--- @return integer
function M.sleb128_size(n)
local more = true
local bytes = 0
local v = n
while more do
local b = v % (LEB_DATA_MASK + 1) -- extract low 7 bits
v = (v - b) / (LEB_DATA_MASK + 1) -- arithmetic shift right by 7
if v == 0 and b < SLEB_SIGN_BIT then more = false end -- positive terminator
if v == -1 and b >= SLEB_SIGN_BIT then more = false end -- negative terminator
if more then b = b + LEB_CONT_BIT end
bytes = bytes + 1
end
return bytes
end
-- ════════════════════════════════════════════════════════════════════════════
-- I/O helpers: atoms source-map + native directory glob
-- ════════════════════════════════════════════════════════════════════════════
return M
+105
View File
@@ -0,0 +1,105 @@
# scripts/gdb/gdb_tape_atoms.gdb
#
# 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`.
# 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).
# 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. ──
define tape_atoms
echo "[gdb_tape_atoms] STUB: runtime file build/gen/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
List every tape atom symbol in the loaded ELF (code_<name>) with its .rodata address and word count.
STUB state: runtime file not sourced. Run build_psyq.ps1 to regenerate.
end
define break_atom
echo "[gdb_tape_atoms] STUB: build/gen/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."
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."
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."
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."
end
document stepi_inside_atom
One MIPS-instruction step, then where_in_atom. STUB state.
end
define show_c2
printf "C2[ 0] 0x%08x\n", $c2_data[0]
printf "C2[ 7] 0x%08x [otz]\n", $c2_data[7]
printf "C2[12] 0x%08x [sxy0]\n", $c2_data[12]
printf "C2[13] 0x%08x [sxy1]\n", $c2_data[13]
printf "C2[14] 0x%08x [sxy2]\n", $c2_data[14]
printf "C2[24] 0x%08x [mac0]\n", $c2_data[24]
printf "...\n"
echo "(STUB state: only 7 representative regs shown. Run build_psyq.ps1 for full dump.)"
end
document show_c2
Pretty-print all 32 C2 data registers as hex + named alias. STUB state (7 reg subset).
end
define show_c2ctl
printf "C2CTL[ 0] 0x%08x\n", $c2_control[0]
printf "...\n"
echo "(STUB state: only 1 reg shown. Run build_psyq.ps1 for full dump.)"
end
document show_c2ctl
Pretty-print all 32 C2 control registers. STUB state (1 reg subset).
end
define wave_ctx
printf "$t4 = R_FaceCursor 0x%08x\n", $t4
printf "$t5 = R_VertBase 0x%08x\n", $t5
printf "$t6 = R_OtBase 0x%08x\n", $t6
printf "$t7 = R_PrimCursor 0x%08x\n", $t7
end
document wave_ctx
Pretty-print the 4 wave-context GPRs ($t4..$t7). (wave_ctx works in stub state too.)
end
# ── Source the runtime file (re-defines commands with real impls + data). ──
# Try to source from project-root-relative path first (the typical case).
# If the user is in a different CWD, the source will fail and stubs remain.
# The runtime file path is computed relative to the ELF's source map convention (build/gen/gdb_tape_atoms_runtime.gdb).
echo [gdb_tape_atoms] Wrapper loaded. Sourcing runtime file...
# Suppress the "Redefine command" prompts that would otherwise appear when the runtime file overrides the 9 stub commands defined above.
# The runtime's `define` blocks are intended to overwrite — there's no ambiguity to confirm.
set confirm off
# Source the runtime file (re-defines commands with real impls + data).
source build/gen/gdb_tape_atoms_runtime.gdb
set confirm on
echo [gdb_tape_atoms] Runtime sourced successfully (9 commands now have real implementations).
+99
View File
@@ -0,0 +1,99 @@
# scripts/launch_pcsx_debug.ps1
#
# One-shot launcher for debug sessions: starts pcsx-redux with the .ps-exe
# loaded, the gdb stub enabled, AND the pcsx_debug_helper Lua plugin loaded
# so external CLI tools (gdb's `shell` command, etc.)
# can read GTE state via http://localhost:8080/api/v1/lua/gte
# (the gdb stub doesn't expose COP2 at all).
#
# usage:
# .\scripts\launch_pcsx_debug.ps1
# .\scripts\launch_pcsx_debug.ps1 -ExePath build\hello_gte.ps-exe
# .\scripts\launch_pcsx_debug.ps1 -HelperZip scripts\pcsx_debug_helper.zip
#
# After launch:
# - gdb: target remote localhost:3333
# - web: curl http://localhost:8080/api/v1/lua/gte
#
# Companion: scripts/debug_psyq.ps1 (bare launch — no .ps-exe, no helper).
[CmdletBinding()]
param(
[string]$PcsxPath = (Join-Path $PSScriptRoot '..\toolchain\pcsx-redux\vsprojects\x64\Release\pcsx-redux.exe'),
[string]$ExePath = (Join-Path $PSScriptRoot '..\build\hello_gte.ps-exe'),
[string]$HelperZip = (Join-Path $PSScriptRoot 'pcsx_debug_helper.zip'),
[int] $GdbPort = 3333,
[int] $WebPort = 8080
)
$ErrorActionPreference = 'Stop'
$gdbInitPath = [System.IO.Path]::GetFullPath((Join-Path $PSScriptRoot '..\build\gen\hello_gte.gdbinit'))
if (-not (Test-Path -LiteralPath $gdbInitPath -PathType Leaf)) {
Write-Warning "Generated GDB skip sidecar missing (non-fatal): $gdbInitPath. Run the GTE build to regenerate it; debugger launch will continue without generated skip-over commands."
}
# ── Pre-checks ──
foreach ($p in @($PcsxPath, $ExePath, $HelperZip)) {
if (-not (Test-Path $p)) {
Write-Error "Missing: $p"
exit 1
}
}
# Kill any existing pcsx-redux so the archive file isn't locked.
Get-Process pcsx-redux -ErrorAction SilentlyContinue | Stop-Process -Force
Start-Sleep -Seconds 2
# ── Launch ──
$absExe = [System.IO.Path]::GetFullPath($ExePath)
$absZip = [System.IO.Path]::GetFullPath($HelperZip)
$args = @(
'-gdb', '-run'
'-loadexe', "`"$absExe`""
'-archive', "`"$absZip`""
)
Write-Host "Launching pcsx-redux..." -ForegroundColor Cyan
Write-Host " ps-exe : $absExe"
Write-Host " helper zip: $absZip"
Write-Host " gdb : localhost:$GdbPort"
Write-Host " web : localhost:$WebPort/api/v1/lua/gte"
Write-Host ""
Start-Process -FilePath $PcsxPath -ArgumentList $args | Out-Null
# ── Wait for both endpoints to come up ──
$deadline = (Get-Date).AddSeconds(15)
while ((Get-Date) -lt $deadline) {
$gdbUp = $false
$webUp = $false
try {
$tcp = New-Object System.Net.Sockets.TcpClient
$tcp.BeginConnect('localhost', $GdbPort, $null, $null) | Out-Null
Start-Sleep -Milliseconds 100
$gdbUp = $tcp.Connected
$tcp.Close()
} catch { $gdbUp = $false }
try {
$r = Invoke-WebRequest -Uri "http://localhost:$WebPort/" -UseBasicParsing -TimeoutSec 1 -ErrorAction SilentlyContinue
$webUp = $r.StatusCode -ne 0
} catch { $webUp = $false }
if ($gdbUp -and $webUp) { break }
Start-Sleep -Milliseconds 500
}
# ── Smoke-test the gte handler ──
try {
$r = Invoke-WebRequest -Uri "http://localhost:$WebPort/api/v1/lua/gte" -UseBasicParsing -TimeoutSec 5
$firstLine = ([System.Text.Encoding]::UTF8.GetString($r.Content) -split "`n")[0]
Write-Host "GTE handler OK: $firstLine" -ForegroundColor Green
} catch {
Write-Warning "GTE handler NOT responding: $_"
Write-Host "Check the pcsx-redux Lua Console for debug cli messages." -ForegroundColor Yellow
}
Write-Host ""
Write-Host "pcsx-redux running. PIDs:" -ForegroundColor Cyan
Get-Process pcsx-redux | Select-Object Id, ProcessName | Format-Table
+520 -164
View File
@@ -3,33 +3,27 @@
--- Validates `MipsAtom_(name) atom_info(atom_bind(Binds_X), atom_reads(...), atom_writes(...)) { ... }` declarations in source files. --- Validates `MipsAtom_(name) atom_info(atom_bind(Binds_X), atom_reads(...), atom_writes(...)) { ... }` declarations in source files.
--- Also reads: `Binds_*` struct declarations (`typedef Struct_(Binds_X) { ... };`) --- Also reads: `Binds_*` struct declarations (`typedef Struct_(Binds_X) { ... };`)
--- ---
--- Source scanning: done ONCE upstream by `duffle.scan_source()` (ps1_meta.lua pre-scans each --- Source scanning: done ONCE upstream by `duffle.scan_source()` (ps1_meta.lua pre-scans each source and stashes the result in `src.scan`).
--- source and stashes the result in `src.scan`). This pass is pure: read from the scan, run
--- checks, emit findings. No source re-walking.
--- ---
--- Writes: --- Writes:
--- - `<ctx.out_root>/<dir_basename>.errors.h` — one per module, with `#error` directives on findings (the C compile will surface the error) --- - `<ctx.out_root>/<dir_basename>.errors.h` — one per module, with `#error` directives on findings (the C compile will surface the error)
--- - The annotations.txt report is rendered by `passes/report.lua` from the per-module results stashed in `ctx.flags._annot_results` --- - The annotations.txt report is rendered by `passes/report.lua` from the canonical `corpus.sources_by_dir` projection (re-validating each source via `M.validate()`).
--- ---
--- **Conventions**: tabs (1/level), EmmyLua annotations, no regex, --- **Conventions**: tabs (1/level), EmmyLua annotations, no regex, Lua 5.3 compatible
--- Lua 5.3 compatible
-- Bootstrap: same as entry scripts. See `ps1_meta.lua` for the rationale. -- Bootstrap: same as entry scripts. See `ps1_meta.lua` for the rationale.
-- Bootstrap: load `scripts/duffle_paths.lua` (sets package.path + package.cpath). -- Bootstrap: load `scripts/duffle_paths.lua` (sets package.path + package.cpath).
-- Uses `debug.getinfo` to find this file's own directory, so it works -- Uses `debug.getinfo` to find this file's own directory, so it works both standalone and when require'd from the orchestrator.
-- 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: 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. -- 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 _bootstrap_dir = debug.getinfo(1, "S").source:match("^@?(.*[/\\])") or "./"
local duffle = dofile(_bootstrap_dir .. "../duffle_paths.lua") local duffle = dofile(_bootstrap_dir .. "../duffle_paths.lua")
local write_file = duffle.write_file local write_file = duffle.write_file
local ensure_dir = duffle.ensure_dir local ensure_dir = duffle.ensure_dir
-- Domain tables (single source of truth in duffle.lua). -- The annotation pass reads the source-derived registries from scan_source:
local WAVE_CONTEXT_REGS = duffle.WAVE_CONTEXT_REGS -- * pipe_ctx.register_alias_registry — for atom_dbg_reg_default(R_X, ...) and atom_reg_types(R_X, ...) member-identity checks
local TAPE_ATOM_MACROS = duffle.TAPE_ATOM_MACROS -- * pipe_ctx.type_name_registry — for atom_dbg_reg_default(<T>, ...) and atom_reg_types(<T>, ...) type-identity checks
local function is_wave_context_reg(n) return WAVE_CONTEXT_REGS[n] ~= nil end
-- ════════════════════════════════════════════════════════════════════════════ -- ════════════════════════════════════════════════════════════════════════════
-- Type declarations -- Type declarations
@@ -51,8 +45,6 @@ local function is_wave_context_reg(n) return WAVE_CONTEXT_REGS[n] ~= nil end
--- @field project_root string --- @field project_root string
--- @field upstream table<string, table> --- @field upstream table<string, table>
--- @field flags table --- @field flags table
--- @field flags._annot_results table[] -- stashed by annotation pass; consumed by report.lua
--- @field dry_run boolean
--- @field verbose boolean --- @field verbose boolean
--- @class PassResult --- @class PassResult
@@ -68,10 +60,36 @@ local function is_wave_context_reg(n) return WAVE_CONTEXT_REGS[n] ~= nil end
--- @field binds string|nil -- Binds_X name if any --- @field binds string|nil -- Binds_X name if any
--- @field reads string[] -- R_* names (read targets) --- @field reads string[] -- R_* names (read targets)
--- @field writes string[] -- R_* names (write targets) --- @field writes string[] -- R_* names (write targets)
--- @field errors string[]|nil -- parse-time errors from scan_source (atom_info body malformed)
--- @class SkipOverMarker -- sub-shape of scan_source.lua's @class SkipOverMarker
--- @field marker_kind string -- exact marker ident (always "atom_dbg_skip_over")
--- @field marker_line integer
--- @field args string|nil -- trimmed text inside the parens (nil when has_parens is false)
--- @field has_parens boolean
--- @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 target_kind string|nil -- "atom" | "comp_bare" | "comp_proc" | "unrelated" once observed
--- @field declaration_line integer|nil
--- @class Finding --- @class Finding
--- @field line integer -- source line (or 0 for pass-level) --- @field line integer -- source line (or 0 for pass-level)
--- @field msg string -- finding message --- @field msg string -- finding message
--- @class Findings
--- @field errors Finding[]
--- @field warnings Finding[]
--- @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 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)
--- @class AnnotatedResult --- @class AnnotatedResult
--- @field atoms AtomEntry[] --- @field atoms AtomEntry[]
@@ -82,18 +100,408 @@ local function is_wave_context_reg(n) return WAVE_CONTEXT_REGS[n] ~= nil end
--- @field warnings Finding[] --- @field warnings Finding[]
--- @field info Finding[] --- @field info Finding[]
-- ════════════════════════════════════════════════════════════════════════════
-- Per-check functions (the CHECK_RULES table's payload)
-- ════════════════════════════════════════════════════════════════════════════
--
-- Each check has a uniform `append_to_findings` shape (errors[] / warnings[] / info[]).
-- The dispatcher in `validate()` decides which findings list each check writes to — by convention,
-- "existence" checks (declaration must exist, struct must exist) write errors[]; "shape" checks (writes/reads must be wave-context) write warnings[].
-- The `macro_word_drift` check writes both errors[] (missing/mismatch) and info[] (match).
--- Check: every annotated atom must have a matching MipsAtom_(name) declaration.
--- @param a AtomAnnotation
--- @param pipe_ctx PipeCtx
--- @param findings Findings
local function check_atom_decl_exists(a, pipe_ctx, findings)
if not pipe_ctx.atom_index[a.name] then
findings.errors[#findings.errors + 1] = {
line = a.line,
msg = string.format("annotation for '%s' has no matching MipsAtom_(%s) { ... }", a.name, a.name),
}
end
end
--- 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)
for name, n in pairs(pipe_ctx.annot_counts) do
if n > 1 then
findings.errors[#findings.errors + 1] = {
line = pipe_ctx.atom_index[name] and pipe_ctx.atom_index[name].line or 0,
msg = string.format("MipsAtom_(%s) has %d annotations (expected at most 1)", name, n),
}
end
end
end
--- Check: BIND atoms must reference a real Binds_* struct.
--- Emitting a warning here keeps the annotation pass from being stop-on-error for the common test-fixture case,
--- while still surfacing the issue in the report.
--- The static-analysis report remains the source of truth for build-stopping errors.
--- @param a AtomAnnotation
--- @param pipe_ctx PipeCtx
--- @param findings Findings
local function check_binds_struct_exists(a, pipe_ctx, findings)
if not a.binds then return end
if pipe_ctx.binds_index[a.binds] then return end
findings.warnings[#findings.warnings + 1] = {
line = a.line,
msg = string.format("'%s' binds '%s' but no Struct_(%s) { ... } "
.. "declaration found (also flagged as an error by check_abi_handoff in the static-analysis pass)"
, a.name, a.binds, a.binds),
}
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 findings Findings
local function check_macro_word_drift(m, wc, findings)
local declared = wc[m.name]
if not declared then
findings.errors[#findings.errors + 1] = {
line = m.line,
msg = string.format("TAPE_WORDS(%s, %d) but '%s' is not in metadata.h", m.name, m.words, m.name),
}
return
end
if declared ~= m.words then
findings.errors[#findings.errors + 1] = {
line = m.line,
msg = string.format("DRIFT: TAPE_WORDS(%s, %d) but metadata.h declares WORD_COUNT(%s, %d)", m.name, m.words, m.name, declared),
}
return
end
findings.info[#findings.info + 1] = {
line = m.line,
msg = string.format("OK: %s = %d words", m.name, m.words),
}
end
--- Check: atom_dbg_reg_default(R_X, <type>) must target a register declared as a debug-visible alias in `pipe_ctx.register_alias_registry`,
--- with a type name found in `pipe_ctx.type_name_registry`.
--- Pointer depth is still bounded to 0 or 1. Duplicate defaults are still detected.
--- @param _src SourceFile -- unused (kept for the per_source shape)
--- @param pipe_ctx PipeCtx
--- @param findings Findings
local function check_semantic_reg_defaults(_src, pipe_ctx, findings)
-- Detect duplicate defaults using the ordered occurrence list (the out.types hash only retains the last declaration).
local seen_first_line = {}
for _, occ in ipairs(pipe_ctx.type_occurrences or {}) do
if seen_first_line[occ.reg] == nil then
seen_first_line[occ.reg] = occ.source_line
else
findings.errors[#findings.errors + 1] = {
line = occ.source_line,
msg = string.format(
"duplicate atom_dbg_reg_default for %q at line %d (first declared at line %d); one default per register",
occ.reg, occ.source_line, seen_first_line[occ.reg]),
}
end
end
local reg_registry = pipe_ctx.register_alias_registry or {}
local type_registry = pipe_ctx.type_name_registry or {}
for reg, def in pairs(pipe_ctx.types or {}) do
if not reg_registry[reg] then
findings.errors[#findings.errors + 1] = {
line = def.source_line,
msg = string.format(
"atom_dbg_reg_default at line %d references unknown register %q (not in register_alias_registry)",
def.source_line, reg),
}
end
if def.pointer_depth == nil or def.pointer_depth < 0 or def.pointer_depth > 1 then
findings.errors[#findings.errors + 1] = {
line = def.source_line,
msg = string.format(
"atom_dbg_reg_default at line %d for %q has unsupported pointer depth %d (expected 0 or 1)",
def.source_line, reg, def.pointer_depth or -1),
}
end
if not def.type_name or not type_registry[def.type_name] then
findings.errors[#findings.errors + 1] = {
line = def.source_line,
msg = string.format(
"atom_dbg_reg_default at line %d for %q uses unknown type %q (not in type_name_registry)",
def.source_line, reg, tostring(def.type_name)),
}
end
end
end
--- Check: atom_reg_types(R_X, <type>) entries must point to a register declared in `pipe_ctx.register_alias_registry`, with a type name found in `pipe_ctx.type_name_registry`.
--- The alias ident `R_<n>` now encodes the GPR identity only for entries that are explicitly opted in via the bare `atom_reg` marker.
--- R_T0..R_T3 are intentionally NOT auto-included (per the prototype principle: no auto-include of wave-context; explicit opt-in only).
--- The check fires for any R_T0..R_T3 reference that hasn't been opted in via `#define atom_reg`.
--- @param _src SourceFile
--- @param pipe_ctx PipeCtx
--- @param findings Findings
local function check_atom_reg_types(_src, pipe_ctx, findings)
local reg_registry = pipe_ctx.register_alias_registry or {}
local type_registry = pipe_ctx.type_name_registry or {}
for _, ai in ipairs(pipe_ctx.atom_infos_list or {}) do
if ai.reg_type_overrides then
for reg, ov in pairs(ai.reg_type_overrides) do
if not reg_registry[reg] then
findings.errors[#findings.errors + 1] = {
line = ai.info_line,
msg = string.format(
"atom '%s' has atom_reg_types for %q; compute-register types are restricted to opt-in aliases (%q not in register_alias_registry)",
ai.atom_name, reg, reg),
}
end
if not ov.type_name or not type_registry[ov.type_name] then
findings.errors[#findings.errors + 1] = {
line = ai.info_line,
msg = string.format(
"atom '%s' atom_reg_types for %q uses unknown compute type %q (not in type_name_registry)",
ai.atom_name, reg, tostring(ov.type_name)),
}
end
end
end
end
end
--- Check: atom_view(Binds_X) entries must reference a real Binds_* struct and that struct must declare at least one field.
--- @param _src SourceFile
--- @param pipe_ctx PipeCtx
--- @param findings Findings
local function check_atom_view_layout(_src, pipe_ctx, findings)
for atom_name, view in pairs(pipe_ctx.atom_views or {}) do
if not view.binds_name then
-- The atom had atom_reg_types but no atom_view; no layout check needed.
else
local bs = pipe_ctx.binds_index[view.binds_name]
if not bs then
findings.errors[#findings.errors + 1] = {
line = view.info_line,
msg = string.format(
"atom '%s' has atom_view(%s) but no Struct_(%s) { ... } declaration was found",
atom_name, view.binds_name, view.binds_name),
}
elseif not bs.fields or #bs.fields == 0 then
findings.errors[#findings.errors + 1] = {
line = bs.line,
msg = string.format(
"atom '%s' has atom_view(%s) but that struct declares zero typed fields",
atom_name, view.binds_name),
}
end
end
end
end
--- Check: Binds_* structs may not have duplicate field names
--- (they would defeat the typed-field name lookup that atom_view exposes in gdb).
--- @param _src SourceFile
--- @param pipe_ctx PipeCtx
--- @param findings Findings
local function check_binds_no_duplicate_fields(_src, pipe_ctx, findings)
for _, bs in ipairs(pipe_ctx.binds_list or {}) do
local seen = {}
for _, f in ipairs(bs.fields or {}) do
seen[f.name] = (seen[f.name] or 0) + 1
end
for name, count in pairs(seen) do
if count > 1 then
findings.errors[#findings.errors + 1] = {
line = bs.line,
msg = string.format(
"%s has duplicate field name %q (count %d); the typed-view contract requires unique field names",
bs.name, name, count),
}
end
end
end
end
-- Check: skip-over markers must satisfy shape + placement constraints.
--- Walks the priority list once; at most one error is appended per marker so that a single source-level defect does not cascade into multiple findings.
--- Priority order (first defect wins):
--- 1. has_parens == false -> requires parentheses: marker()
--- 2. args ~= "" -> takes no arguments
--- 3. superseded_by_marker_line -> duplicate marker (cite superseding line)
--- 4. pending + no target_kind -> dangling (no following declaration)
--- 5. unsupported target_kind -> marker precedes an unrelated declaration
--- Valid markers before whole-atom / bare-component / proc-component declarations emit no error and remain in src.scan.skip_over.atoms / .components.
--- @param marker SkipOverMarker
--- @param _pipe_ctx PipeCtx -- unused today; kept for plex-shape consistency with per_annot
--- @param findings Findings
local function check_skip_marker(marker, _pipe_ctx, findings)
local kind = marker.marker_kind
local line = marker.marker_line
if not marker.has_parens then
findings.errors[#findings.errors + 1] = {
line = line,
msg = string.format("%s marker at line %d requires parentheses: marker()", kind, line),
}
return
end
if marker.args ~= nil and marker.args ~= "" then
findings.errors[#findings.errors + 1] = {
line = line,
msg = string.format("%s marker at line %d takes no arguments; found %q", kind, line, marker.args),
}
return
end
if marker.superseded_by_marker_line then
findings.errors[#findings.errors + 1] = {
line = line,
msg = string.format("duplicate %s marker at line %d; superseded by another %s marker at line %d"
, kind, line, kind, marker.superseded_by_marker_line),
}
return
end
if marker.pending and not marker.target_kind then
findings.errors[#findings.errors + 1] = {
line = line,
msg = string.format("dangling %s marker at line %d: no following MipsAtom_/MipsAtomComp_/MipsAtomComp_Proc_ declaration"
, kind, line),
}
return
end
if marker.target_kind
and marker.target_kind ~= "atom"
and marker.target_kind ~= "comp_bare"
and marker.target_kind ~= "comp_proc" then
findings.errors[#findings.errors + 1] = {
line = line,
msg = string.format("%s marker at line %d must precede MipsAtom_, MipsAtomComp_, or MipsAtomComp_Proc_; found an unrelated declaration"
, kind, line),
}
end
end
--- Warn when a source references an unregistered alias.
---
--- R_TapePtr / R_AtomJmp / R_PrimCursor / R_FaceCursor / R_VertBase / R_OtBase are the context aliases opted in via `#define atom_reg` in lottes_tape.h.
--- A source referencing an unregistered R_X emits one pass-level info entry
--- (emitted only when at least one such rejection lands in this source) tells users where to look.
---
--- This check directs raw C-ABI register names to explicit alias registration.
--- @param _src SourceFile
--- @param pipe_ctx PipeCtx
--- @param findings Findings
local function check_wave_context_migration(_src, pipe_ctx, findings)
if not (pipe_ctx.types and next(pipe_ctx.types)) then return end
if not (pipe_ctx.atom_infos_list) then return end
local reg_registry = pipe_ctx.register_alias_registry or {}
for _, ai in ipairs(pipe_ctx.atom_infos_list) do
if ai.reg_type_overrides then
for reg, _ in pairs(ai.reg_type_overrides) do
if not reg_registry[reg] then
findings.warnings[#findings.warnings + 1] = {
line = 0,
msg = "wave-context removed; opt in via #define atom_reg in mips.h "
.. "(every R_<alias> that should be visible to the annotation pass "
.. "must be enum-declared with the bare atom_reg marker)",
}
return
end
end
end
end
end
-- ════════════════════════════════════════════════════════════════════════════
-- CHECK_RULES — data-driven check dispatch (the plex pattern)
-- ════════════════════════════════════════════════════════════════════════════
--
-- Each rule entry picks one of four "shapes" of dispatch:
-- per_annot(annot, pipe_ctx, findings) -- runs once per AtomAnnotation
-- post(pipe_ctx, findings) -- runs once after all per_annot calls complete (full-corpus aggregation)
-- per_macro(macro, wc, findings) -- runs once per TAPE_WORDS / _Pragma macro declaration
-- per_skip_marker(marker, pipe_ctx, findings) -- runs once per src.scan.skip_over.markers entry
--
-- Adding a new check = 1 row here + 1 function above. The `validate()` dispatch loop never needs editing.
local CHECK_RULES = {
{ name = "atom_decl_exists", per_annot = check_atom_decl_exists },
{ name = "binds_struct_exists", per_annot = check_binds_struct_exists },
{ name = "unique_annotation", post = check_unique_annotation },
{ name = "macro_word_drift", per_macro = check_macro_word_drift },
{ name = "skip_marker_validation", per_skip_marker = check_skip_marker },
{ name = "semantic_reg_defaults", per_source = check_semantic_reg_defaults },
{ name = "atom_reg_types", per_source = check_atom_reg_types },
{ name = "atom_view_layout", per_source = check_atom_view_layout },
{ name = "binds_no_duplicate_fields", per_source = check_binds_no_duplicate_fields },
{ name = "wave_context_migration", per_source = check_wave_context_migration },
}
-- ════════════════════════════════════════════════════════════════════════════ -- ════════════════════════════════════════════════════════════════════════════
-- Validation -- Validation
-- ════════════════════════════════════════════════════════════════════════════ -- ════════════════════════════════════════════════════════════════════════════
-- --
-- Pure check: read from src.scan, run validations, emit findings. -- Pure check: read from src.scan, run validations, emit findings. The scan was done once upstream.
-- No source walking; no parsing. The scan was done once upstream.
--- Validate one source against its pre-scanned SourceScan payload. --- Build the corpus-wide pipe_ctx ONCE per pass run.
--- Reads the merged `corpus.*` registries (canonical cross-source lookups),
--- and the corpus-wide `atom_infos` list (preserving source order + duplicates).
--- The corpus is the source of truth; per-source scans retain body / declaration
--- ownership via `src.scan` and the per-source `atoms` / `atom_infos` projections.
---
--- Canonical ownership: a context without `ctx.shared.corpus` is rejected with an explicit canonical-corpus message.
--- No per-source fallback synthesis is performed; callers MUST construct a canonical ctx through `build_ctx`.
--- @param ctx PassCtx --- @param ctx PassCtx
--- @param src SourceFile --- @return PipeCtx
local function build_corpus_pipe_ctx(ctx)
local corpus = ctx.shared and ctx.shared.corpus
if not corpus then
error("annotation requires ctx.shared.corpus "
.. "(the canonical corpus is the source of truth; "
.. "no per-source fallback is supported)", 0)
end
-- Corpus atom_infos preserves source-order + duplicates;
-- the per-check `check_unique_annotation` post-rule still flags duplicate annotation
-- names within this list. We pre-compute the annot_counts map here so the per_source checks can iterate it without re-walking.
local annot_counts = {}
for _, info in ipairs(corpus.atom_infos or {}) do
if info and info.atom_name then
annot_counts[info.atom_name] = (annot_counts[info.atom_name] or 0) + 1
end
end
-- The pipe_ctx views REFERENCE the corpus tables directly (no copies).
-- Every consumer of these fields observes mutations via the canonical corpus without independently mutable registry construction.
return {
-- Cross-source lookup tables (canonical corpus projections).
register_alias_registry = corpus.register_alias_registry or {},
type_name_registry = corpus.type_name_registry or {},
atom_views = corpus.atom_views or {},
atom_ctxs = corpus.atom_ctxs or {},
atom_phases = corpus.atom_phases or {},
binds_by_name = corpus.binds_by_name or {},
atoms_by_name = corpus.atoms_by_name or {},
-- Corpus-wide ordered list of atom_info records (source-order + duplicates).
atom_infos_list = corpus.atom_infos or {},
-- Corpus-wide annotation count aggregation (post-rule consumes this).
annot_counts = annot_counts,
-- Corpus-wide collisions (recorded by scan_source.merge_corpus_registries).
collisions = corpus.collisions or {},
-- wc still consumed by check_macro_word_drift; reads from the canonical
-- `corpus.word_counts` table (built by word_count_eval.run).
word_counts = corpus.word_counts or {},
}
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 = self-build (canonical projection).
--- @return AnnotatedResult --- @return AnnotatedResult
local function validate(ctx, src) local function validate(ctx, src, corpus_pipe_ctx)
corpus_pipe_ctx = corpus_pipe_ctx or build_corpus_pipe_ctx(ctx)
local scan = src.scan local scan = src.scan
-- Project the pre-scanned atoms to the AtomEntry shape this pass needs. -- Project the pre-scanned atoms to the AtomEntry shape this pass needs.
@@ -115,141 +523,102 @@ local function validate(ctx, src)
binds = info.binds, binds = info.binds,
reads = info.reads or {}, reads = info.reads or {},
writes = info.writes or {}, writes = info.writes or {},
errors = {}, errors = info.errors,
} }
end end
-- Index atoms by name for lookup. -- Build the per-source pipe_ctx (Fleury: expose structure).
local atom_index = {} -- Cross-source visibility comes from `corpus_pipe_ctx`;
for _, a in ipairs(atoms) do atom_index[a.name] = a end -- per-source declaration / body ownership comes from `src.scan`.
-- pipe_ctx.types / pipe_ctx.atom_views / pipe_ctx.seen_defaults / pipe_ctx.type_occurrences
-- are projected from the per-source scan so the per_source check rules can iterate the source-local occurrences.
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
-- Index binds by name for lookup. local pipe_ctx = {
local binds_index = {} atom_index = {},
for _, b in ipairs(scan.binds) do binds_index[b.name] = b end binds_index = {},
annot_counts = corpus_pipe_ctx.annot_counts,
types = scan.types or {},
type_occurrences = scan.type_occurrences or {},
atom_views = scan.atom_views or {},
seen_defaults = seen_defaults,
atom_infos_list = atom_infos_list,
binds_list = scan.binds or {},
-- Source-derived registries: still populated from the scan payload as a convenience for callers that want source-local visibility.
-- The canonical cross-source lookup tables live in corpus_pipe_ctx.
register_alias_registry = corpus_pipe_ctx.register_alias_registry,
type_name_registry = corpus_pipe_ctx.type_name_registry,
}
for _, a in ipairs(atoms) do pipe_ctx.atom_index [a.name] = a end
for _, b in ipairs(scan.binds) do pipe_ctx.binds_index[b.name] = b end
local errors = {} -- Findings live in a single struct with three lists (errors / warnings / info).
local warnings = {} -- Each check writes to the list appropriate for its severity.
local info = {} local findings = { errors = {}, warnings = {}, info = {} }
-- 1. Every annotated atom must exist as a real MipsAtom_ declaration. -- Propagate parse-time errors from scan_source's atom_info parsing.
-- These are errors found in the atom_info(...) body itself (e.g., malformed args).
-- They are pre-existing in the scan payload — we just lift them into our findings list.
for _, a in ipairs(annots) do for _, a in ipairs(annots) do
if not atom_index[a.name] then
errors[#errors + 1] = {
line = a.line,
msg = string.format("annotation for '%s' has no matching MipsAtom_(%s) { ... }", a.name, a.name),
}
end
if a.errors then if a.errors then
for _, msg in ipairs(a.errors) do for _, msg in ipairs(a.errors) do
errors[#errors + 1] = {line = a.line, msg = string.format("'%s': %s", a.name, msg)} findings.errors[#findings.errors + 1] = {
end
end
end
-- 2. Every atom may have AT MOST ONE annotation (no duplicates).
-- (Atoms with ZERO annotations are valid in the new minimal shape.)
local count_per_atom = {}
for _, a in ipairs(annots) do
if a.name then
count_per_atom[a.name] = (count_per_atom[a.name] or 0) + 1
end
end
for name, n in pairs(count_per_atom) do
if n > 1 then
errors[#errors + 1] = {
line = atom_index[name] and atom_index[name].line or 0,
msg = string.format("MipsAtom_(%s) has %d annotations (expected at most 1)", name, n),
}
end
end
-- 3. (Phase validity check DROPPED. Phases were removed from the annotation DSL.)
-- 4. BIND atoms must reference a real Binds_* struct.
for _, a in ipairs(annots) do
if a.binds then
if not binds_index[a.binds] then
-- Demoted from error to warning (2026-07-10): the same condition is now caught by passes/static_analysis.lua's
-- check_abi_handoff() as an error. Emitting a warning here keeps the annotation pass from being stop-on-error
-- for the common test-fixture case, while still surfacing the issue in the report.
-- The static-analysis report remains the source of truth for build-stopping errors.
warnings[#warnings + 1] = {
line = a.line, line = a.line,
msg = string.format("'%s' binds '%s' but no Struct_(%s) { ... } declaration found (also flagged as an error by check_abi_handoff in the static-analysis pass)", a.name, a.binds, a.binds), msg = string.format("'%s': %s", a.name, msg),
} }
end end
end end
end end
-- 5. BIND writes must be wave-context registers that match Binds_ fields. -- THE per-annotation pipeline. ONE loop. CHECK_RULES dispatches per_annot rules.
for _, a in ipairs(annots) do for _, a in ipairs(annots) do
if a.binds and binds_index[a.binds] then for _, rule in ipairs(CHECK_RULES) do
local bs = binds_index[a.binds] if rule.per_annot then rule.per_annot(a, pipe_ctx, findings) end
for _, f in ipairs(bs.fields) do
local candidate = "R_" .. f.name
if not is_wave_context_reg(candidate) then
warnings[#warnings + 1] = {
line = bs.line,
msg = string.format("%s field '%s' doesn't match a known wave-context register (candidate '%s')", a.binds, f.name, candidate),
}
end
end
for _, w in ipairs(a.writes) do
if not is_wave_context_reg(w) then
warnings[#warnings + 1] = {
line = a.line,
msg = string.format("%s writes '%s' which is not a known wave-context register", a.name, w),
}
end
end
end end
end end
-- 6. INFO reads should be wave-context registers (or R_TapePtr for rbind). -- Post-loop rules (one-shot checks that need full-corpus aggregation in pipe_ctx).
for _, a in ipairs(annots) do for _, rule in ipairs(CHECK_RULES) do
for _, r in ipairs(a.reads) do if rule.post then rule.post(pipe_ctx, findings) end
if not is_wave_context_reg(r) and r ~= "R_TapePtr" then end
warnings[#warnings + 1] = {
line = a.line, -- Per-skip-marker rules.
msg = string.format("atom '%s' reads '%s' which is not a known wave-context register", a.name, r), -- Each raw marker recorded by scan_source (in scan.skip_over.markers) is validated independently;
} -- the check emits at most one error per marker.
end -- Valid markers stay attached to scan.skip_over.atoms /.components for dwarf_injection.lua consumer.
local skip_markers = scan.skip_over and scan.skip_over.markers or {}
for _, marker in ipairs(skip_markers) do
for _, rule in ipairs(CHECK_RULES) do
if rule.per_skip_marker then rule.per_skip_marker(marker, pipe_ctx, findings) end
end end
end end
-- 7. TAPE_WORDS(mac_X, N) ↔ WORD_COUNT(mac_X, N) drift. -- Per-macro rules (TAPE_WORDS vs WORD_COUNT drift).
-- Three outcomes: missing (error), mismatch (error), match (info). local wc = corpus_pipe_ctx.word_counts
local function check_macro_drift(m, declared)
if not declared then
errors[#errors + 1] = {
line = m.line,
msg = string.format("TAPE_WORDS(%s, %d) but '%s' is not in metadata.h", m.name, m.words, m.name),
}
return
end
if declared ~= m.words then
errors[#errors + 1] = {
line = m.line,
msg = string.format("DRIFT: TAPE_WORDS(%s, %d) but metadata.h declares WORD_COUNT(%s, %d)", m.name, m.words, m.name, declared),
}
return
end
info[#info + 1] = {
line = m.line,
msg = string.format("OK: %s = %d words", m.name, m.words),
}
end
for _, m in ipairs(scan.macros) do for _, m in ipairs(scan.macros) do
check_macro_drift(m, ctx.shared.word_counts[m.name]) for _, rule in ipairs(CHECK_RULES) do
if rule.per_macro then rule.per_macro(m, wc, findings) end
end
end end
-- 8. Information summary. -- Per-source rules (reg defaults, atom_view layout, compute-register type overrides, Binds_* field uniqueness).
info[#info + 1] = { -- Each per_source rule sees the full scan payload via pipe_ctx.
for _, rule in ipairs(CHECK_RULES) do
if rule.per_source then rule.per_source(src, pipe_ctx, findings) end
end
-- Information summary (always emitted).
findings.info[#findings.info + 1] = {
line = 0, line = 0,
msg = string.format("scanned: %d atom(s), %d annotation(s), %d macro-word-decl(s), %d binds struct(s)", msg = string.format("scanned: %d atom(s), %d annotation(s), %d macro-word-decl(s), %d binds struct(s)"
#atoms, #annots, #scan.macros, #scan.binds), , #atoms, #annots, #scan.macros, #scan.binds),
} }
return { return {
@@ -257,9 +626,9 @@ local function validate(ctx, src)
annots = annots, annots = annots,
macros = scan.macros, macros = scan.macros,
binds = scan.binds, binds = scan.binds,
errors = errors, errors = findings.errors,
warnings = warnings, warnings = findings.warnings,
info = info, info = findings.info,
} }
end end
@@ -270,7 +639,6 @@ end
--- Render `<dir_basename>.errors.h` with `#error` directives for every error found across all sources in the directory. --- 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. --- Empty directories (no errors, no atoms) produce no file.
local function emit_module_errors_h(ctx, dir_basename, atoms_count, errors, sources) local function emit_module_errors_h(ctx, dir_basename, atoms_count, errors, sources)
if ctx.dry_run then return nil end
if atoms_count == 0 and #errors == 0 then if atoms_count == 0 and #errors == 0 then
return nil return nil
end end
@@ -298,17 +666,6 @@ local function emit_module_errors_h(ctx, dir_basename, atoms_count, errors, sour
return out_path return out_path
end end
--- Stash aggregated per-module results for the report pass to consume.
local function emit_module_annotations_stub(ctx, dir, dir_basename, atoms_count)
ctx.flags = ctx.flags or {}
ctx.flags._annot_results = ctx.flags._annot_results or {}
ctx.flags._annot_results[#ctx.flags._annot_results + 1] = {
dir = dir,
dir_basename = dir_basename,
atoms_count = atoms_count,
}
end
-- ════════════════════════════════════════════════════════════════════════════ -- ════════════════════════════════════════════════════════════════════════════
-- M.run — orchestrator entry -- M.run — orchestrator entry
-- ════════════════════════════════════════════════════════════════════════════ -- ════════════════════════════════════════════════════════════════════════════
@@ -327,32 +684,33 @@ function M.run(ctx)
local errors = {} local errors = {}
local warnings = {} local warnings = {}
-- Per-DIRECTORY (per-module) aggregation. Group sources by `src.dir`, -- Build the corpus-wide pipe_ctx ONCE per pass run.
-- validate every source in the dir, then emit ONE errors.h per dir. -- The corpus owns the canonical cross-source registries; per-source scans retain body / declaration ownership.
-- `ctx.by_dir` is pre-computed in build_ctx (shared across all passes). -- The pipe_ctx is shared across every validate() invocation in this M.run so cross-source visibility is constant.
local by_dir = ctx.by_dir or duffle.group_sources_by_dir(ctx.sources) local corpus_pipe_ctx = build_corpus_pipe_ctx(ctx)
local corpus = ctx.shared.corpus
-- Per-DIRECTORY (per-module) aggregation.
-- Group sources by `src.dir`, validate every source in the dir, then emit ONE errors.h per dir.
-- The corpus owns `sources_by_dir`; this pass reads the corpus bucket directly.
local by_dir = (corpus and corpus.sources_by_dir) or {}
for dir, dir_sources in pairs(by_dir) do for dir, dir_sources in pairs(by_dir) do
local dir_basename = dir:match("([^/\\]+)$") or dir local dir_basename = dir:match("([^/\\]+)$") or dir
local dir_atoms = 0 local dir_atoms = 0
local dir_errors = {} local dir_errors = {}
local dir_warnings = {} local dir_warnings = {}
-- Per-source validate() results, cached for the report pass (it reads from this instead of re-validating each source).
ctx.flags = ctx.flags or {}
ctx.flags._annot_source_results = ctx.flags._annot_source_results or {}
for _, src in ipairs(dir_sources) do for _, src in ipairs(dir_sources) do
local result = validate(ctx, src) local result = validate(ctx, src, corpus_pipe_ctx)
result.source = src.path -- tag for downstream rendering result.source = src.path -- tag for downstream rendering
ctx.flags._annot_source_results[src.path] = result -- stash so report.lua reads from cache instead of re-running validate()
dir_atoms = dir_atoms + #result.atoms dir_atoms = dir_atoms + #result.atoms
for _, e in ipairs(result.errors) do for _, e in ipairs(result.errors) do
dir_errors[#dir_errors + 1] = { line = e.line, msg = e.msg, source = src.path } dir_errors[#dir_errors + 1] = { line = e.line, msg = e.msg, source = src.path }
errors[#errors + 1] = { line = e.line, msg = e.msg } errors [#errors + 1] = { line = e.line, msg = e.msg }
end end
for _, w in ipairs(result.warnings) do for _, w in ipairs(result.warnings) do
dir_warnings[#dir_warnings + 1] = { line = w.line, msg = w.msg } dir_warnings[#dir_warnings + 1] = { line = w.line, msg = w.msg }
warnings[#warnings + 1] = { line = w.line, msg = w.msg } warnings [#warnings + 1] = { line = w.line, msg = w.msg }
end end
end end
@@ -360,8 +718,6 @@ function M.run(ctx)
if err_path then if err_path then
table.insert(outputs, { errors_h = err_path }) table.insert(outputs, { errors_h = err_path })
end end
emit_module_annotations_stub(ctx, dir, dir_basename, dir_atoms)
end end
return { outputs = outputs, errors = errors, warnings = warnings } return { outputs = outputs, errors = errors, warnings = warnings }
+541
View File
@@ -0,0 +1,541 @@
--- passes/atoms_source_map.lua — Per-.word source-line map emitter for tape atoms.
---
--- Reads the canonical `atom.paths` projection produced by the upstream `emission_model` pass.
--- The ordered `items` stream, dense `word_events`, and `invocations` views are the only semantic inputs to this pass;
--- it emits one `WORD N LINE L TEXT T` line per emitted `.word`.
---
--- **Two output forms** (per the workspace's per-emission-form pattern from
--- `guide_metaprogram_ssdl.md`):
--- 1. **Canonical text form** — `<out_root>/<basename>.atoms.sourcemap.txt`.
--- Format-version-tagged for forward-compat.
--- Lives in `<out_root>/` (build/gen).
--- Matches the convention used by `annotation.lua` (`<out_root>/<basename>.errors.h`) + `static_analysis.lua` (`<out_root>/<basename>.static_analysis.txt`).
--- Compile artifacts (`*.macs.h`, `*.offsets.h`) stay in `<source_dir>/gen/`.
--- 2. **gdb-runtime form** — `<ctx.out_root>/gdb_tape_atoms_runtime.gdb`
--- (pure gdb command script; addresses pre-computed via `nm`; the 9 user commands defined as `define ... end` blocks).
--- Emitted ONLY when `ctx.flags.gdb_runtime` is true AND `ctx.flags.elf_path` points to an existing ELF.
--- The gdb runtime form lets `gdb-multiarch --without-python` users (the common case on Windows MinGW builds)
--- load the source-map data via `source <path>` — no Python/Tcl/Guile required.
---
--- **Output format** (canonical text form):
--- ```
--- # FORMAT_VERSION 1
--- # auto-generated by ps1_meta.lua (passes/atoms_source_map.lua) — DO NOT EDIT
--- ATOM <name> "<abs-source-path>" <total_words>
--- WORD 0 LINE 49 TEXT load_half_u(R_T0, R_FaceCursor, 0 * S_(S2)),
--- WORD 1 LINE 49 TEXT load_half_u(R_T0, R_FaceCursor, 0 * S_(S2)),
--- ... (one WORD line per .word emitted by the atom body) ...
--- ENDATOM
--- ATOM <next-name> "<abs-source-path>" <total_words>
--- ...
--- ENDATOM
--- ```
---
--- Marker records are zero-width in `atom.paths.items`; they do not appear in
--- the dense word view and therefore emit no WORD rows.
---
--- **Conventions:** tabs (1/level), EmmyLua annotations, no regex,
--- Lua 5.3 compatible.
-- ════════════════════════════════════════════════════════════════════════════
-- Module-scope requires + package.path setup
-- ════════════════════════════════════════════════════════════════════════════
-- 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")
local elf_dwarf = require("elf_dwarf")
-- ════════════════════════════════════════════════════════════════════════════
-- Constants
-- ════════════════════════════════════════════════════════════════════════════
-- Format version emitted as the first line. Bump + add a migration test if the format changes;
-- the gdb runtime loader rejects mismatches (E2).
local FORMAT_VERSION = 1
-- ════════════════════════════════════════════════════════════════════════════
-- Type declarations
-- ════════════════════════════════════════════════════════════════════════════
--- @class AtomSourceMapCtx
--- @field shared table -- `ctx.shared`
--- @field shared.corpus table -- canonical source-order corpus
--- @field shared.word_counts table
--- @field out_root string -- output root (e.g. "build/gen")
--- @field flags table -- `ctx.flags`; reads `flags.gdb_runtime` + `flags.elf_path`
-- ════════════════════════════════════════════════════════════════════════════
-- Canonical atom-path renderers
-- ════════════════════════════════════════════════════════════════════════════
--- Join canonical words to canonical word items. `items` supplies the ordered
--- word boundaries, while `word_events` supplies call text and source lines.
--- @param atom table
--- @return table[], integer
local function canonical_word_entries(atom)
local paths = atom.paths or {}
local events = paths.word_events or {}
local word_items = {}
for _, item in ipairs(paths.items or {}) do
if item.kind == "word" then word_items[#word_items + 1] = item end
end
local entries = {}
for index, event in ipairs(events) do
local item = word_items[index] or {}
entries[#entries + 1] = {
pos = event.i or (index - 1),
line = event.call_line or item.line or 0,
text = event.call_text or item.call_text or "",
body_line = event.body_line or item.body_line or item.line or 0,
invocation = (event.outermost_invocation_id
and paths.invocations
and paths.invocations[event.outermost_invocation_id]) or nil,
}
end
return entries, #events
end
--- Render one atom's provenance stanza. Format 1 remains:
--- `WORD N CALL <src-path>:<src-line> MACRO <name> "<def-path>:<def-line>" BODY <line>`
--- `WORD N CALL <src-path>:<src-line> RAW`
--- Component identity comes from the canonical outermost invocation record;
--- the count-table lookup is the canonical component declaration witness.
--- @param src table
--- @param atom table
--- @param wc table -- identity alias of corpus.word_counts
--- @return string[], integer
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)
else
lines[#lines + 1] = string.format(
"WORD %d CALL %s:%d RAW", entry.pos, rel_path, entry.line)
end
end
lines[1] = lines[1]:gsub(" 0$", " " .. tostring(total))
lines[#lines + 1] = "ENDATOM"
return lines, total
end
--- Render the full provenance file content for one source.
--- @param src table
--- @param wc table
--- @return string
local function render_provenance(src, wc)
local lines = {}
lines[#lines + 1] = "# FORMAT_VERSION 1"
lines[#lines + 1] = "# auto-generated by ps1_meta.lua (passes/atoms_source_map.lua) — DO NOT EDIT"
lines[#lines + 1] = "# Per-.word provenance: maps each emitted .word to its call site (atom body"
lines[#lines + 1] = "# file:line) and, when the word was emitted by a `mac_X(...)` component invocation,"
lines[#lines + 1] = "# the component's definition file:line + the per-word BODY line. Used by"
lines[#lines + 1] = "# dwarf_injection to synthesize DW_TAG_inlined_subroutine instances + per-word"
lines[#lines + 1] = "# line program rows for native source-level step into component bodies."
local function append(atom)
local stanza = emit_provenance_stanza(src, atom, wc)
for _, line in ipairs(stanza) do lines[#lines + 1] = line end
end
for _, atom in ipairs(src.scan.atoms or {}) do
if atom.paths then append(atom) end
end
for _, atom in ipairs(src.scan.raw_atoms or {}) do
if atom.paths then append(atom) end
end
return table.concat(lines, "\n") .. "\n"
end
--- Render one atom's stanza for the canonical text form (ATOM header line, N WORD lines, ENDATOM marker).
--- Returns (lines, total_words).
--- @param src table
--- @param atom table
--- @param wc table
--- @return string[], integer
local function emit_atom_stanza(src, atom)
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
lines[#lines + 1] = string.format("WORD %d LINE %d TEXT %s",
entry.pos, entry.line, entry.text)
end
lines[1] = lines[1]:gsub(" 0$", " " .. tostring(total))
lines[#lines + 1] = "ENDATOM"
return lines, total
end
--- Render the full source map file content for one source (one .atoms.sourcemap.txt per source).
--- Mirrors offsets.lua's `project_atoms` shape: scan.atoms + scan.raw_atoms, no kind filter.
--- @param src table
--- @param wc table
--- @return string
local function render_source_map(src)
local lines = {}
lines[#lines + 1] = "# FORMAT_VERSION " .. FORMAT_VERSION
lines[#lines + 1] = "# auto-generated by ps1_meta.lua (passes/atoms_source_map.lua) — DO NOT EDIT"
local function append(atom)
local stanza = emit_atom_stanza(src, atom)
for _, line in ipairs(stanza) do lines[#lines + 1] = line end
end
for _, atom in ipairs(src.scan.atoms or {}) do
if atom.paths then append(atom) end
end
for _, atom in ipairs(src.scan.raw_atoms or {}) do
if atom.paths then append(atom) end
end
return table.concat(lines, "\n") .. "\n"
end
-- ════════════════════════════════════════════════════════════════════════════
-- gdb-runtime emission (post-link, addresses via nm)
-- ════════════════════════════════════════════════════════════════════════════
--- Escape a string for embedding in a gdb `set $var = "..."` literal.
--- gdb uses C-style escaping; we escape `\` and `"` (newlines were flattened earlier).
--- @param s string
--- @return string
local function gdb_escape(s)
return (s:gsub("\\", "\\\\"):gsub('"', '\\"'))
end
--- Build the list of atoms with addresses + word entries.
--- Shared helper for the gdb-runtime file emission.
--- @param ctx PassCtx
--- @return table[] -- list of {idx, name, src_path, file_base, addr, size_bytes, words, entries}
local function build_atom_table(ctx)
local addrs = elf_dwarf.read_nm(ctx.flags.elf_path)
local corpus = ctx.shared and ctx.shared.corpus
local matched = {}
for _, src in ipairs(corpus.source_order or {}) do
local file_base = src.path:match("([^/\\\\]+)$") or src.path
local function append(atom)
if not atom.paths then return end
local name = atom.raw_name or atom.name
local info = addrs[name]
if not info then return end
local entries, total = canonical_word_entries(atom)
matched[#matched + 1] = {
name = name,
src_path = src.path,
file_base = file_base,
addr = info[1],
size_bytes = info[2],
words = total,
entries = entries,
}
end
for _, atom in ipairs((src.scan or {}).atoms or {}) do append(atom) end
for _, atom in ipairs((src.scan or {}).raw_atoms or {}) do append(atom) end
end
-- Deterministic order: sort by address (matches `nm` output ordering).
table.sort(matched, function(a, b) return a.addr < b.addr end)
for i, a in ipairs(matched) do a.idx = i - 1 end
return matched
end
--- Append the 9 gdb command definitions to `lines`. Pure gdb scripting no Python, no Tcl, no Guile required.
--- **Fully hardcoded per-atom** because gdb doesn't do nested `$` substitution in var names
--- `$__atom_name_$__i` inside a `while` loop is treated as one literal identifier, not a concat.
---
--- Each command is a static sequence of `printf` / `tbreak` / `if ... end` blocks.
--- The Lua pass emits N atoms' worth of lines — no runtime iteration.
--- @param lines table -- output line buffer (mutated in place)
--- @param matched table -- list of atom records from `build_atom_table`
local function append_gdb_commands(lines, matched)
-- ── tape_atoms ──
-- Hardcoded one printf per atom. No loop.
lines[#lines + 1] = "define tape_atoms"
for _, a in ipairs(matched) do
-- gdb 12.1 quirk: literals in printf args require an attached target.
-- Use the per-atom convenience vars set above as printf args.
lines[#lines + 1] = string.format(' printf " code_%%-32s @ 0x%%08x %%4d words\\n", $__atom_name_%d, $__atom_addr_%d, $__atom_words_%d',
a.idx, a.idx, a.idx)
end
lines[#lines + 1] = "end"
lines[#lines + 1] = "document tape_atoms"
lines[#lines + 1] = " List every tape atom symbol in the loaded ELF (code_<name>) with .rodata addr + word count."
lines[#lines + 1] = "end"
lines[#lines + 1] = ""
-- ── break_atom (generic) + per-atom break_atom_X ──
lines[#lines + 1] = "define break_atom"
lines[#lines + 1] = ' echo "Usage: break_atom_<exact_name> (pick from the list below)"'
for _, a in ipairs(matched) do
lines[#lines + 1] = string.format(' printf " break_atom_%%-32s\\n", $__atom_name_%d', a.idx)
end
lines[#lines + 1] = "end"
lines[#lines + 1] = "document break_atom"
lines[#lines + 1] = " Generic help: lists the per-atom break_atom_<name> commands."
lines[#lines + 1] = "end"
lines[#lines + 1] = ""
for _, a in ipairs(matched) do
lines[#lines + 1] = string.format("define break_atom_%s", a.name)
lines[#lines + 1] = string.format(" break *$__atom_addr_%d", a.idx)
lines[#lines + 1] = string.format(' printf " Breakpoint set at code_%s (0x%%08x)\\n", $__atom_addr_%d', a.name, a.idx)
lines[#lines + 1] = "end"
lines[#lines + 1] = string.format("document break_atom_%s", a.name)
lines[#lines + 1] = string.format(" Set a breakpoint at code_%s.", a.name)
lines[#lines + 1] = "end"
lines[#lines + 1] = ""
end
-- ── step_atom / next_atom ──
-- Hardcoded one tbreak per atom. No loop.
lines[#lines + 1] = "define step_atom"
for _, a in ipairs(matched) do
lines[#lines + 1] = string.format(" tbreak *$__atom_addr_%d", a.idx)
end
lines[#lines + 1] = " continue"
lines[#lines + 1] = "end"
lines[#lines + 1] = "document step_atom"
lines[#lines + 1] = " Set one-shot BPs at every atom + continue. Stops at the next atom boundary."
lines[#lines + 1] = "end"
lines[#lines + 1] = ""
lines[#lines + 1] = "define next_atom"
lines[#lines + 1] = " step_atom"
lines[#lines + 1] = "end"
lines[#lines + 1] = "document next_atom"
lines[#lines + 1] = " Alias for step_atom."
lines[#lines + 1] = "end"
lines[#lines + 1] = ""
-- ── where_in_atom ──
-- Hardcoded one outer-if per atom; inside, one inner-if per WORD entry.
lines[#lines + 1] = "define where_in_atom"
lines[#lines + 1] = " set $__pc = (unsigned int)$pc"
lines[#lines + 1] = " set $__matched = 0"
for _, a in ipairs(matched) do
-- Precompute end_addr (gdb 12.1's expression evaluator chokes on `addr + words*4`).
lines[#lines + 1] = string.format(" set $__end_%d = $__atom_addr_%d + $__atom_words_%d * 4", a.idx, a.idx, a.idx)
lines[#lines + 1] = string.format(" if $__pc >= $__atom_addr_%d && $__pc < $__end_%d", a.idx, a.idx)
lines[#lines + 1] = string.format(' printf "atom: code_%%s\\n", $__atom_name_%d', a.idx)
lines[#lines + 1] = ' printf "addr: 0x%08x\\n", $__pc'
lines[#lines + 1] = string.format(" set $__word = ($__pc - $__atom_addr_%d) / 4", a.idx)
lines[#lines + 1] = string.format(' printf "word: %%d/%%d\\n", $__word, $__atom_words_%d', a.idx)
-- One inner-if per WORD entry. Each word's line + text hardcoded.
for _, we in ipairs(a.entries) do
lines[#lines + 1] = string.format(" if $__word == %d", we.pos)
-- Escape TEXT for printf format string.
local escaped_text = we.text:gsub("%%", "%%%%"):gsub('"', '\\"')
lines[#lines + 1] = string.format(' printf "source: %%s:%%d %%s\\n", $__atom_file_%d, %d, "%s"', a.idx, we.line, escaped_text)
lines[#lines + 1] = " end"
end
-- Fallback for words beyond the source map (shouldn't happen if nm matches).
local max_word = 0
if #a.entries > 0 then max_word = a.entries[#a.entries].pos end
lines[#lines + 1] = string.format(' if $__word > %d', max_word)
lines[#lines + 1] = ' printf "source: (no source-map entry for word %%d; map may be stale)\\n", $__word'
lines[#lines + 1] = " end"
lines[#lines + 1] = " set $__matched = 1"
lines[#lines + 1] = " end"
end
lines[#lines + 1] = " if !$__matched"
lines[#lines + 1] = ' echo PC is not inside any known atom (in .text or unmapped region).'
lines[#lines + 1] = " end"
lines[#lines + 1] = "end"
lines[#lines + 1] = "document where_in_atom"
lines[#lines + 1] = " Report current atom name, .rodata addr, word offset, and source line."
lines[#lines + 1] = "end"
lines[#lines + 1] = ""
-- ── stepi_inside_atom ──
-- Hardcoded one if-containment-check per atom (no loop).
-- Precompute end_addr in Lua so we don't ask gdb to evaluate `addr + words*4` inside the if condition
-- (gdb 12.1's expression evaluator chokes on the `*` and emits a misleading 'function malloc' error in some gdb builds).
lines[#lines + 1] = "define stepi_inside_atom"
lines[#lines + 1] = " set $__in_atom = 0"
lines[#lines + 1] = " set $__did_step = 0"
lines[#lines + 1] = " set $__pc = (unsigned int)$pc"
for _, a in ipairs(matched) do
-- Precompute end_addr in the convenience var (single expression gdb handles).
lines[#lines + 1] = string.format(" set $__end_%d = $__atom_addr_%d + $__atom_words_%d * 4", a.idx, a.idx, a.idx)
lines[#lines + 1] = string.format(" if $__pc >= $__atom_addr_%d && $__pc < $__end_%d", a.idx, a.idx)
lines[#lines + 1] = " set $__in_atom = 1"
lines[#lines + 1] = " stepi"
lines[#lines + 1] = " set $__did_step = 1"
lines[#lines + 1] = " end"
end
lines[#lines + 1] = " if !$__did_step"
lines[#lines + 1] = ' echo [gdb_tape_atoms] stepi_inside_atom: PC is not inside any atom; refusing to step.'
lines[#lines + 1] = " end"
lines[#lines + 1] = " where_in_atom"
lines[#lines + 1] = "end"
lines[#lines + 1] = "document stepi_inside_atom"
lines[#lines + 1] = " One MIPS-instruction step, then where_in_atom. The step-and-see-source-line workflow."
lines[#lines + 1] = "end"
lines[#lines + 1] = ""
-- ── wave_ctx ──
lines[#lines + 1] = "define wave_ctx"
lines[#lines + 1] = ' printf "$t4 = R_FaceCursor 0x%08x\\n", $t4'
lines[#lines + 1] = ' printf "$t5 = R_VertBase 0x%08x\\n", $t5'
lines[#lines + 1] = ' printf "$t6 = R_OtBase 0x%08x\\n", $t6'
lines[#lines + 1] = ' printf "$t7 = R_PrimCursor 0x%08x\\n", $t7'
lines[#lines + 1] = "end"
lines[#lines + 1] = "document wave_ctx"
lines[#lines + 1] = " Pretty-print the 4 wave-context GPRs ($t4=R_FaceCursor, $t5=R_VertBase, $t6=R_OtBase, $t7=R_PrimCursor). Requires target attached."
lines[#lines + 1] = "end"
end
--- Emit the gdb-runtime file (post-link). Pure gdb scripting — no Python.
--- Reads ELF addresses via `mipsel-none-elf-nm -S`, embeds them in `<ctx.out_root>/gdb_tape_atoms_runtime.gdb`
--- so gdb loads the data via `set $var = ...` + `define ... end` blocks at source-time.
--- @param ctx PassCtx
local function emit_gdb_runtime(ctx)
if not (ctx.flags and ctx.flags.gdb_runtime) then return end
local elf_path = ctx.flags.elf_path
if not elf_path or elf_path == "" then
io.stderr:write("[atoms_source_map] --gdb-runtime requires --elf <elf>\n")
return
end
if lfs.attributes(elf_path, "mode") ~= "file" then
io.stderr:write(string.format(
"[atoms_source_map] --gdb-runtime: ELF not found at %s\n", elf_path))
return
end
local matched = build_atom_table(ctx)
if #matched == 0 then
io.stderr:write("[atoms_source_map] --gdb-runtime: no atoms matched against nm symbols (stale scan?).\n")
return
end
local lines = {}
lines[#lines + 1] = "# Auto-generated by ps1_meta.lua (passes/atoms_source_map.lua)"
lines[#lines + 1] = "# DO NOT EDIT — re-run ps1_meta.lua --atoms-source-map --gdb-runtime to regenerate"
lines[#lines + 1] = "# Sourced by scripts/gdb/gdb_tape_atoms.gdb (the wrapper)."
lines[#lines + 1] = "# Pure gdb scripting — no Python, no Tcl, no Guile required."
lines[#lines + 1] = "# Commands are FULLY HARDCODED per-atom because gdb doesn't do nested"
lines[#lines + 1] = "# `$` substitution in var names (`$foo_$i` is one literal identifier)."
lines[#lines + 1] = "# Per-atom convenience vars ($__atom_name_<i> etc.) are set so gdb's"
lines[#lines + 1] = "# `printf` has valid expression args (gdb 12.1 quirks: literals in"
lines[#lines + 1] = "# printf args require an attached target; convenience-var args do not)."
lines[#lines + 1] = string.format("# %d atoms from ELF: %s", #matched, elf_path)
lines[#lines + 1] = ""
-- Format version + count + ELF path (the latter is referenced by the load-line).
lines[#lines + 1] = "set $__atom_format_version = " .. FORMAT_VERSION
lines[#lines + 1] = string.format("set $__atom_count = %d", #matched)
lines[#lines + 1] = string.format('set $__elf_path = "%s"', gdb_escape(elf_path))
lines[#lines + 1] = ""
-- Per-atom convenience vars (used as printf args; literals aren't accepted
-- without an attached target on gdb 12.1).
for _, a in ipairs(matched) do
lines[#lines + 1] = string.format('set $__atom_name_%d = "%s"', a.idx, gdb_escape(a.name))
lines[#lines + 1] = string.format("set $__atom_addr_%d = 0x%x", a.idx, a.addr)
lines[#lines + 1] = string.format("set $__atom_words_%d = %d", a.idx, a.words)
lines[#lines + 1] = string.format('set $__atom_file_%d = "%s"', a.idx, gdb_escape(a.file_base))
end
lines[#lines + 1] = ""
-- The 9 commands (each `define ... end` overrides the wrapper's stub).
lines[#lines + 1] = "# ── 9 user commands (overrides wrapper stubs) ──"
append_gdb_commands(lines, matched)
lines[#lines + 1] = ""
-- 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"
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))
end
-- ════════════════════════════════════════════════════════════════════════════
-- M — module exports
-- ════════════════════════════════════════════════════════════════════════════
local M = {}
--- Pass entry: emit one `<out_root>/<basename>.atoms.sourcemap.txt` per source file that contains at least one `MipsAtom_(name)` / `MipsCode code_<name>` declaration.
--- Also emits `<out_root>/<basename>.atoms.provenance.txt`:
--- per-.word provenance with `mac_X(...)` component resolution back to the component's definition file:line + the per-word body line.
--- Optionally also emit `<ctx.out_root>/gdb_tape_atoms_runtime.gdb` when `ctx.flags.gdb_runtime` is true.
--- @param ctx PassCtx
--- @return PassResult
function M.run(ctx)
local outputs = {}
local errors = {}
local warnings = {}
local corpus = ctx.shared and ctx.shared.corpus
if type(corpus) ~= "table" or type(corpus.source_order) ~= "table" then
error("atoms_source_map.run requires ctx.shared.corpus.source_order (canonical corpus).", 0)
end
-- Word counts are owned by `corpus.word_counts`.
-- The canonical owner is `corpus.word_counts` (populated by `passes/word_count_eval.lua` + `passes/components.lua`).
local wc = corpus.word_counts or {}
if not next(wc) then
warnings[#warnings + 1] = {
line = 0,
msg = "atoms_source_map: corpus.word_counts is empty; the word-counts + components passes may not have populated it. Check the PASSES dep edges.",
}
end
-- Always emit the canonical 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
-- Optionally emit the gdb-runtime form (post-link, one file per build).
if ctx.flags and ctx.flags.gdb_runtime then
emit_gdb_runtime(ctx)
end
return { outputs = outputs, errors = errors, warnings = warnings }
end
return M
+257 -280
View File
@@ -1,38 +1,27 @@
--- passes/components.lua — Component-macro header generator. --- passes/components.lua — Component-macro header generator.
--- ---
--- Reads the pre-scanned SourceScan payload (produced once upstream by `duffle.scan_source`) --- Reads the pre-scanned SourceScan payload (produced once upstream by `duffle.scan_source`)
--- for `MipsAtomComp_(ac_X)` and `MipsAtomComp_Proc_(ac_X, { body })` declarations, then does --- for `MipsAtomComp_(ac_X)` and `MipsAtomComp_Proc_(ac_X, { body })` declarations, then does per-source backward lookups
--- per-source backward lookups for the function-args string (from the preceding `FI_ MipsAtom ac_X(...)` --- for the function-args string (from the preceding `FI_ MipsAtom ac_X(...)` function declaration)
--- function declaration) and the preceding comment block (for LSP/IntelliSense signature docs). --- and the preceding comment block (for LSP/IntelliSense signature docs).
--- ---
--- Emits a per-directory `<dir_basename>.macs.h` containing one `#define mac_X(sig) \` macro per component --- Emits a per-directory `<dir_basename>.macs.h` containing one `#define mac_X(sig) \` macro per component + `WORD_COUNT(mac_X, N)`
--- + `WORD_COUNT(mac_X, N)` entries for downstream offset computation. --- entries for downstream offset computation.
--- ---
--- **Conventions**: tabs (1/level), EmmyLua annotations, no regex, --- **Conventions**: tabs (1/level), EmmyLua annotations, no regex,
--- Lua 5.3 compatible. --- Lua 5.3 compatible.
--- @class Component
--- @field name string
--- @field body string
--- @field args string|nil
--- @field line integer
--- @field comment string|nil
--- @class M
-- ════════════════════════════════════════════════════════════════════════════ -- ════════════════════════════════════════════════════════════════════════════
-- Module-scope requires + package.path setup -- Module-scope requires + package.path setup
-- ════════════════════════════════════════════════════════════════════════════ -- ════════════════════════════════════════════════════════════════════════════
-- Bootstrap: same as entry scripts. See `ps1_meta.lua` for the rationale. -- Bootstrap: same as entry scripts. See `ps1_meta.lua` for the rationale.
-- Bootstrap: load `scripts/duffle_paths.lua` (sets package.path + package.cpath). -- Bootstrap: load `scripts/duffle_paths.lua` (sets package.path + package.cpath).
-- Uses `debug.getinfo` to find this file's own directory, so it works -- Uses `debug.getinfo` to find this file's own directory, so it works both standalone and when require'd from the orchestrator.
-- 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: 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. -- 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 _bootstrap_dir = debug.getinfo(1, "S").source:match("^@?(.*[/\\])") or "./"
local duffle = dofile(_bootstrap_dir .. "../duffle_paths.lua") local duffle = dofile(_bootstrap_dir .. "../duffle_paths.lua")
local word_count_eval = require("word_count_eval")
-- ════════════════════════════════════════════════════════════════════════════ -- ════════════════════════════════════════════════════════════════════════════
-- Constants -- Constants
@@ -43,9 +32,9 @@ local ATOM_COMP_PROC = "MipsAtomComp_Proc_"
local MIPS_ATOM = "MipsAtom" -- prefix on the function declaration that wraps an AtomComp_Proc_ local MIPS_ATOM = "MipsAtom" -- prefix on the function declaration that wraps an AtomComp_Proc_
-- Component-name prefixes. -- Component-name prefixes.
local AC_PREFIX = "ac_" -- arg to MipsAtomComp_(ac_X); the X is the atom name local AC_PREFIX = "ac_" -- arg to MipsAtomComp_(ac_X); the X is the atom name
local AC_PREFIX_LEN = 3 local AC_PREFIX_LEN = 3
local MAC_PREFIX = "mac_" -- prefix on generated macros; the rest is the atom name local MAC_PREFIX = "mac_" -- prefix on generated macros; the rest is the atom name
local MAC_PREFIX_LEN = 4 local MAC_PREFIX_LEN = 4
-- ASCII byte values used in tokenization. -- ASCII byte values used in tokenization.
@@ -75,7 +64,6 @@ local GEN_SUBDIR = "gen"
--- @field project_root string -- project root (e.g. "code/") --- @field project_root string -- project root (e.g. "code/")
--- @field upstream table<string, table> -- per-pass upstream outputs --- @field upstream table<string, table> -- per-pass upstream outputs
--- @field flags table -- CLI flags --- @field flags table -- CLI flags
--- @field dry_run boolean -- if true, compute but don't write
--- @field verbose boolean -- log diagnostic info --- @field verbose boolean -- log diagnostic info
--- @class PassResult --- @class PassResult
@@ -84,11 +72,11 @@ local GEN_SUBDIR = "gen"
--- @field warnings table[] -- {line=, msg=} entries; build-succeeds --- @field warnings table[] -- {line=, msg=} entries; build-succeeds
--- @class Component --- @class Component
--- @field name string -- atom name (without `ac_` prefix) --- @field name string -- atom name (without `ac_` prefix)
--- @field body string -- brace-delimited body (without the braces) --- @field body string -- brace-delimited body (without the braces)
--- @field args string|nil -- function-args string (function form only) --- @field args string|nil -- function-args string (function form only)
--- @field line integer -- source line of the declaration --- @field line integer -- source line of the declaration
--- @field comment string|nil -- preceding `/* */` or `//` comment block (signature doc) --- @field comment string|nil -- preceding `/* */` or `//` comment block (signature doc)
-- ════════════════════════════════════════════════════════════════════════════ -- ════════════════════════════════════════════════════════════════════════════
-- Local helpers (file I/O + path normalization) -- Local helpers (file I/O + path normalization)
@@ -97,44 +85,35 @@ local GEN_SUBDIR = "gen"
local M = {} local M = {}
-- ════════════════════════════════════════════════════════════════════════════ -- ════════════════════════════════════════════════════════════════════════════
-- Function-args extraction (precedes MipsAtomComp_Proc_ invocations) -- Back-walk helpers (composed into the 2 entry points below: find_function_args_for + preceding_comment_block)
-- ════════════════════════════════════════════════════════════════════════════ -- ════════════════════════════════════════════════════════════════════════════
-- Find the LAST occurrence of `name + "("` in `source[1..before_pos]`.
-- Returns the position of the open paren, or nil if not found.
-- @param source string
-- @param name string
-- @param before_pos integer
-- @return integer|nil
local function find_last_name_open_paren(source, name, before_pos)
local search = source:sub(1, before_pos)
local name_open = name .. "("
local last_idx = nil
local scan_pos = 1
while true do
local found = search:find(name_open, scan_pos, true) -- plain (no regex)
if not found then break end
last_idx = found
scan_pos = found + #name_open
end
return last_idx
end
--- Find the args of the function declaration that immediately precedes a `MipsAtomComp_Proc_` invocation of the given name. --- Find the args of the function declaration that immediately precedes a `MipsAtomComp_Proc_` invocation of the given name.
--- Returns the args string (e.g., `"U4 off, U4 code, U1 r, U1 g, U1 b"`) or nil if no function declaration is found. --- 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 --- Convention: function form is
--- `FI_ MipsAtom ac_X(args) MipsAtomComp_Proc_(ac_X, { body })` --- `FI_ MipsAtom 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 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` (the function-decl keyword --- We then verify the preceding context ends with `MipsAtom`
--- with possible qualifiers between). --- (the function-decl keyword with possible qualifiers between).
--- ---
--- @param source string --- @param source string
--- @param name string --- @param name string
--- @param before_pos integer --- @param before_pos integer
--- @return string|nil --- @return string|nil
local function find_function_args_for(source, name, before_pos) local function find_function_args_for(source, name, before_pos)
local last_idx = find_last_name_open_paren(source, name, before_pos) -- Find the LAST occurrence of `name + "("` in `source[1..before_pos]`.
local name_open = name .. "("
local last_idx = nil
local scan_pos = 1
while true do
-- Pass `before_pos + 1` so string.find only returns positions < before_pos + 1
-- (string.find's 4th arg `plain` is true; we use the 3rd arg `init` for the upper bound).
local found = source:find(name_open, scan_pos, true)
if not found or found >= before_pos then break end
last_idx = found
scan_pos = found + #name_open
end
if not last_idx then return nil end if not last_idx then return nil end
-- Verify the preceding context ends with "MipsAtom" (with possible qualifiers between). -- Verify the preceding context ends with "MipsAtom" (with possible qualifiers between).
@@ -153,125 +132,63 @@ local function find_function_args_for(source, name, before_pos)
return inner return inner
end end
-- ════════════════════════════════════════════════════════════════════════════
-- Preceding-comment-block extraction
-- ════════════════════════════════════════════════════════════════════════════
-- Skip whitespace (space/tab/newline/CR) backward from `pos`, returning the position of the first non-whitespace char.
-- @param source string
-- @param pos integer
-- @return integer
local function skip_ws_backward(source, pos)
local back = pos - 1
while back > 0 do
local ch = source:sub(back, back)
if ch == " " or ch == "\t" or ch == "\n" or ch == "\r" then
back = back - 1
else
break
end
end
return back
end
-- Find the opening `/*` for a block comment whose `*/` ends at `close_pos`.
-- Returns the position of `/`, or nil if not found.
-- @param source string
-- @param close_pos integer -- position of the closing `*` of `*/`
-- @return integer|nil
local function find_block_comment_open(source, close_pos)
local prefix = source:sub(1, close_pos - 1)
local open_at = nil
for scan = #prefix - 1, 1, -1 do
if prefix:sub(scan, scan + 1) == "/*" then
open_at = scan
break
end
end
return open_at
end
-- Walk back from `open_at` over leading spaces + tabs to include the indentation before the `/*` in the captured comment.
-- @param source string
-- @param open_at integer
-- @return integer
local function extend_left_over_indent(source, open_at)
local start = open_at
while start > 1 do
local ch = source:sub(start - 1, start - 1)
if ch == " " or ch == "\t" then
start = start - 1
else
break
end
end
return start
end
-- Walk back from `line_end` to the start of the source line (the most recent `\n` or position 1).
-- @param source string
-- @param line_end integer
-- @return integer
local function find_line_start(source, line_end)
local start = line_end
while start > 1 and source:sub(start - 1, start - 1) ~= "\n" do
start = start - 1
end
return start
end
-- (internal) Capture one `/* ... */` block comment whose closing `*/`
-- ends at `close_end_pos`. Returns (block_text, new_scan_pos) where `new_scan_pos`
-- is where to continue scanning for more comments, or nil if no block comment was found.
local function capture_block_comment(source, close_end_pos)
local open_at = find_block_comment_open(source, close_end_pos)
if not open_at then return nil end
local block_start = extend_left_over_indent(source, open_at)
return source:sub(block_start, close_end_pos), block_start
end
-- (internal) Capture one `// ...` line comment ending at `line_end_pos`.
-- Returns (comment_text, new_scan_pos) or nil if the line is not a `//` comment.
local function capture_line_comment(source, line_end_pos)
local line_start = find_line_start(source, line_end_pos)
local line = source:sub(line_start, line_end_pos)
if line:sub(1, 2) == "//" then
return line, line_start - 1
end
return nil
end
--- Find the contiguous comment block immediately preceding `pos` in `source`. --- Find the contiguous comment block immediately preceding `pos` in `source`.
--- Returns the comment text (with the `/* */` or `//` markers preserved) or an empty string if no comment is adjacent. --- Returns the comment text (with the `/* */` or `//` markers preserved) or an empty string if no comment is adjacent.
--- ---
--- Used to copy signature comments from the source declaration (`MipsAtomComp_` / `MipsAtomComp_Proc_` / function decl) --- Used to copy signature comments from the source declaration (`MipsAtomComp_` / `MipsAtomComp_Proc_` / function decl)
--- over to the generated `mac_X` macro, so LSP/IntelliSense displays the args doc. --- over to the generated `mac_X` macro, so LSP/IntelliSense displays the args doc.
---
--- @param source string --- @param source string
--- @param pos integer --- @param pos integer
--- @return string --- @return string
local function preceding_comment_block(source, pos) local function preceding_comment_block(source, pos)
local scan_pos = pos local scan_pos = pos
local pieces = {} local pieces = {}
while true do while true do
local non_ws = skip_ws_backward(source, scan_pos) -- skip whitespace backward; land on the next non-ws character.
local non_ws = scan_pos - 1
while non_ws > 0 do
local ch = source:sub(non_ws, non_ws)
if ch == " " or ch == "\t" or ch == "\n" or ch == "\r" then
non_ws = non_ws - 1
else
break
end
end
if non_ws == 0 then break end if non_ws == 0 then break end
if non_ws >= 2 and source:sub(non_ws - 1, non_ws) == "*/" then
local is_block_close = non_ws >= 2 and source:sub(non_ws - 1, non_ws) == "*/" -- block comment close: find the opening /* by walking back over /* candidates
local is_line_end = source:sub(non_ws, non_ws) == "\n" or source:sub(non_ws, non_ws) == "\r" -- in source[1..non_ws-1].
local prefix = source:sub(1, non_ws - 1)
if is_block_close then local open_at = nil
local block_text, new_scan_pos = capture_block_comment(source, non_ws) for scan = #prefix - 1, 1, -1 do
if not block_text then break end if prefix:sub(scan, scan + 1) == "/*" then
table.insert(pieces, 1, block_text) open_at = scan
scan_pos = new_scan_pos break
elseif is_line_end then end
local line_text, new_scan_pos = capture_line_comment(source, non_ws) end
if not line_text then break end if not open_at then break end
table.insert(pieces, 1, line_text) -- include the indentation before the /* by walking back over leading spaces + tabs.
scan_pos = new_scan_pos local block_start = open_at
while block_start > 1 do
local ch = source:sub(block_start - 1, block_start - 1)
if ch ~= " " and ch ~= "\t" then break end
block_start = block_start - 1
end
table.insert(pieces, 1, source:sub(block_start, non_ws))
scan_pos = block_start
else else
break -- line comment path: must end in newline, must start with //.
local ch = source:sub(non_ws, non_ws)
if ch ~= "\n" and ch ~= "\r" then break end
-- walk back from non_ws to the start of the source line (most recent \n or position 1).
local line_start = non_ws
while line_start > 1 and source:sub(line_start - 1, line_start - 1) ~= "\n" do
line_start = line_start - 1
end
local line = source:sub(line_start, non_ws)
if line:sub(1, 2) ~= "//" then break end
table.insert(pieces, 1, line)
scan_pos = line_start - 1
end end
end end
if #pieces == 0 then return "" end if #pieces == 0 then return "" end
@@ -282,49 +199,10 @@ end
-- Argument-name extraction -- Argument-name extraction
-- ════════════════════════════════════════════════════════════════════════════ -- ════════════════════════════════════════════════════════════════════════════
-- Walk `trimmed` backward from `pos` over trailing whitespace / asterisks / brackets, returning the position of the first
-- non-trailer character (i.e. the end of the identifier).
-- @param trimmed string
-- @param pos integer
-- @return integer
local function trim_trailer_back(trimmed, pos)
local back = pos
while back > 0 do
local ch = trimmed:sub(back, back)
if ch == " " or ch == "\t" or ch == "*" or ch == "]" or ch == "[" then
back = back - 1
else
break
end
end
return back
end
-- Walk `trimmed` backward from `pos` over identifier chars (alnum + `_`),
-- returning the position just before the identifier starts.
-- @param trimmed string
-- @param pos integer
-- @return integer
local function trim_ident_back(trimmed, pos)
local back = pos
while back > 0 do
local ch = trimmed:sub(back, back)
if duffle.is_alnum(ch) or ch == "_" then
back = back - 1
else
break
end
end
return back
end
--- Extract just the parameter NAMES from a function-args string (stripping type annotations). E.g., --- Extract just the parameter NAMES from a function-args string (stripping type annotations). E.g.,
--- `"U4 off, U4 code, U1 r, U1 g, U1 b"` -> `{"off", "code", "r", "g", "b"}` --- `"U4 off, U4 code, U1 r, U1 g, U1 b"` -> `{"off", "code", "r", "g", "b"}`
--- `"U4 *ptr"` -> `{"ptr"}` --- `"U4 *ptr"` -> `{"ptr"}`
--- `""` -> nil --- `""` -> nil
---
--- No regex — uses `duffle.is_alnum` + plain string ops.
---
--- @param args_str string|nil --- @param args_str string|nil
--- @return string[]|nil --- @return string[]|nil
local function extract_arg_names(args_str) local function extract_arg_names(args_str)
@@ -334,8 +212,27 @@ local function extract_arg_names(args_str)
for _, tok in ipairs(tokens) do for _, tok in ipairs(tokens) do
local trimmed = duffle.trim(tok) local trimmed = duffle.trim(tok)
if trimmed ~= "" then if trimmed ~= "" then
local ident_end = trim_trailer_back(trimmed, #trimmed) -- Find the identifier at the end: walk back over trailers (whitespace + `*` + `[]`),
local ident_start = trim_ident_back(trimmed, ident_end) + 1 -- then walk back over the identifier chars (alnum + `_`).
local ident_end = #trimmed
while ident_end > 0 do
local ch = trimmed:sub(ident_end, ident_end)
if ch == " " or ch == "\t" or ch == "*" or ch == "]" or ch == "[" then
ident_end = ident_end - 1
else
break
end
end
local ident_start = ident_end
while ident_start > 0 do
local ch = trimmed:sub(ident_start, ident_start)
if duffle.is_alnum_byte(string.byte(ch)) or ch == "_" then
ident_start = ident_start - 1
else
break
end
end
ident_start = ident_start + 1
local name = trimmed:sub(ident_start, ident_end) local name = trimmed:sub(ident_start, ident_end)
if name ~= "" then names[#names + 1] = name end if name ~= "" then names[#names + 1] = name end
end end
@@ -348,13 +245,12 @@ end
-- Component projection (read from pre-scanned SourceScan) -- Component projection (read from pre-scanned SourceScan)
-- ════════════════════════════════════════════════════════════════════════════ -- ════════════════════════════════════════════════════════════════════════════
-- Project pre-scanned MipsAtomComp_ / MipsAtomComp_Proc_ entries into Component shape. --- Project pre-scanned MipsAtomComp_ / MipsAtomComp_Proc_ entries into Component shape.
-- Does per-source backward lookups for args (preceding function decl) and comment (preceding comment block). --- Does per-source backward lookups for args (preceding function decl) and comment (preceding comment block).
-- Carries `body_tokens` forward from scan-source so word_count_rec reads from the precomputed table --- Carries `body_tokens` forward from scan-source so word_count_rec reads from the precomputed table instead of calling duffle.tokenize_body again.
-- instead of calling duffle.tokenize_body again. --- @param source string -- the full source text (needed for backward lookups)
-- @param source string -- the full source text (needed for backward lookups) --- @param scan table -- SourceScan from duffle.scan_source
-- @param scan table -- SourceScan from duffle.scan_source --- @return Component[]
-- @return Component[]
local function project_components(source, scan) local function project_components(source, scan)
local out = {} local out = {}
for _, a in ipairs(scan.atoms) do for _, a in ipairs(scan.atoms) do
@@ -365,9 +261,11 @@ local function project_components(source, scan)
line = a.line, line = a.line,
name = a.name, name = a.name,
body = a.body, body = a.body,
body_off = a.body_off,
body_tokens = a.body_tokens, body_tokens = a.body_tokens,
args = args, args = args,
comment = comment, comment = comment,
kind = a.kind, -- "comp_bare" | "comp_proc"; provenance emitter reads this.
} }
end end
end end
@@ -379,7 +277,6 @@ end
-- ════════════════════════════════════════════════════════════════════════════ -- ════════════════════════════════════════════════════════════════════════════
-- Convert `//` line comments to `/* */` block comments in a token. -- Convert `//` line comments to `/* */` block comments in a token.
--
-- C macros use `\` line-continuations; a `//` comment before `\` would consume the continuation, -- C macros use `\` line-continuations; a `//` comment before `\` would consume the continuation,
-- breaking the macro. We convert `//` to `/* */` so the multi-line macro structure is preserved. -- breaking the macro. We convert `//` to `/* */` so the multi-line macro structure is preserved.
-- --
@@ -403,8 +300,8 @@ local function convert_line_comments_to_block(s)
while eol <= len and result:byte(eol) ~= BYTE_NEWLINE do while eol <= len and result:byte(eol) ~= BYTE_NEWLINE do
eol = eol + 1 eol = eol + 1
end end
local before = result:sub(1, pos - 1) local before = result:sub(1, pos - 1)
local comment = result:sub(pos + 2, eol - 1) -- skip the `//` local comment = result:sub(pos + 2, eol - 1) -- skip the `//`
local after local after
if eol <= len and result:byte(eol) == BYTE_NEWLINE then if eol <= len and result:byte(eol) == BYTE_NEWLINE then
after = " */" .. result:sub(eol) -- keep the newline after = " */" .. result:sub(eol) -- keep the newline
@@ -422,10 +319,11 @@ end
-- Word-count computation (memoized recursive lookup) -- Word-count computation (memoized recursive lookup)
-- ════════════════════════════════════════════════════════════════════════════ -- ════════════════════════════════════════════════════════════════════════════
-- Strip the `mac_` prefix from a component-call ident so we can look it up against the components-by-name table. Returns the ident unchanged --- Strip the `mac_` prefix from a component-call ident so we can look it up against the components-by-name table.
-- if it doesn't start with the prefix (so a non-component ident like `mask_upper` falls through to the wc-table branch). --- Returns the ident unchanged if it doesn't start with the prefix
-- @param ident string|nil --- (so a non-component ident like `mask_upper` falls through to the wc-table branch).
-- @return string|nil --- @param ident string|nil
--- @return string|nil
local function strip_mac_prefix(ident) local function strip_mac_prefix(ident)
if not ident then return nil end if not ident then return nil end
if ident:sub(1, MAC_PREFIX_LEN) == MAC_PREFIX then if ident:sub(1, MAC_PREFIX_LEN) == MAC_PREFIX then
@@ -434,13 +332,13 @@ local function strip_mac_prefix(ident)
return ident return ident
end end
-- (internal) Recursive word-count lookup. `cache` is the memoization table shared across all components --- (internal) Recursive word-count lookup. `cache` is the memoization table shared across all components
-- in a single source's `count_all_components` pass; the in-progress -1 sentinel detects cycles (A -> B -> A). --- in a single source's `count_all_components` pass; the in-progress -1 sentinel detects cycles (A -> B -> A).
-- @param name string -- the component name (without `mac_`) --- @param name string -- the component name (without `mac_`)
-- @param comp_by_name table<string, Component> --- @param comp_by_name table<string, Component>
-- @param wc table<string, integer> --- @param wc table<string, integer>
-- @param cache table<string, integer> --- @param cache table<string, integer>
-- @return integer --- @return integer
local function word_count_rec(name, comp_by_name, wc, cache) local function word_count_rec(name, comp_by_name, wc, cache)
if cache[name] ~= nil then return cache[name] end if cache[name] ~= nil then return cache[name] end
cache[name] = -1 -- mark in-progress (cycle detection) cache[name] = -1 -- mark in-progress (cycle detection)
@@ -475,13 +373,11 @@ end
--- Compute word counts for every component in `components` in a single pass. --- Compute word counts for every component in `components` in a single pass.
--- The name-lookup table + memoization cache are built ONCE (per source) instead of per-component, --- The name-lookup table + memoization cache are built ONCE (per source) instead of per-component,
--- so the cache survives across siblings and a component's recursive `mac_Y(...)` references hit memoized values --- so the cache survives across siblings and a component's recursive `mac_Y(...)`
--- instead of re-walking the body. Previously each call rebuilt both tables (O(N) tables per call → O(N^2)). --- references hit memoized values instead of re-walking the body.
---
--- Cycle detection (A -> B -> A) is preserved via the in-progress `-1` sentinel in `cache`. --- Cycle detection (A -> B -> A) is preserved via the in-progress `-1` sentinel in `cache`.
---
--- @param components Component[] --- @param components Component[]
--- @param wc table<string, integer> --- @param wc table<string, integer>
--- @return table<string, integer> -- map of component name (without `mac_`) -> word count --- @return table<string, integer> -- map of component name (without `mac_`) -> word count
local function count_all_components(components, wc) local function count_all_components(components, wc)
local comp_by_name = {} local comp_by_name = {}
@@ -518,19 +414,12 @@ local function split_comment_lines(s)
return out return out
end end
--- Split an atom body by top-level commas; drop empty tokens.
--- @param body string
--- @return string[]
local function tokens_from_body(body)
return duffle.tokenize_body_simple(body)
end
--- Determine the macro signature: function-args list (function form) or variadic-ignored (bare form). --- Determine the macro signature: function-args list (function form) or variadic-ignored (bare form).
--- @param args_str string|nil --- @param args_str string|nil
--- @return string --- @return string
local function signature_from_args(args_str) local function signature_from_args(args_str)
local arg_names = extract_arg_names(args_str) local arg_names = extract_arg_names(args_str)
if arg_names and #arg_names > 0 then if arg_names and #arg_names > 0 then
return table.concat(arg_names, ", ") return table.concat(arg_names, ", ")
end end
return "..." return "..."
@@ -540,7 +429,7 @@ end
--- The last 2 chars are always that pair. --- The last 2 chars are always that pair.
local function strip_trailing_continuation(lines) local function strip_trailing_continuation(lines)
local last = lines[#lines] local last = lines[#lines]
if last:sub(-2) == " \\" then if last:sub(-2) == " \\" then
lines[#lines] = last:sub(1, -3) lines[#lines] = last:sub(1, -3)
end end
end end
@@ -561,9 +450,9 @@ end
--- Build the list of lines for one component --- Build the list of lines for one component
--- (signature comment, `#define mac_X(...)` line with backslash-continued tokens, then `WORD_COUNT(mac_X, N)` entry). --- (signature comment, `#define mac_X(...)` line with backslash-continued tokens, then `WORD_COUNT(mac_X, N)` entry).
--- @param c Component --- @param c Component
--- @param components Component[] --- @param components Component[]
--- @param wc table<string, integer> --- @param wc table<string, integer>
--- @return string[] -- list of lines for this component --- @return string[] -- list of lines for this component
local function build_component_lines(c, counts) local function build_component_lines(c, counts)
local lines = {} local lines = {}
@@ -574,7 +463,8 @@ local function build_component_lines(c, counts)
end end
end end
local tokens = tokens_from_body(c.body) local tokens = duffle.split_top_level_commas(c.body)
for i = 1, #tokens do tokens[i] = duffle.trim(tokens[i]) end
local sig = signature_from_args(c.args) local sig = signature_from_args(c.args)
-- Direct lookup against the per-source precomputed `counts` table (built once by count_all_components). -- Direct lookup against the per-source precomputed `counts` table (built once by count_all_components).
local n = counts[c.name] local n = counts[c.name]
@@ -594,10 +484,10 @@ end
-- Per-source emit logic -- Per-source emit logic
-- ════════════════════════════════════════════════════════════════════════════ -- ════════════════════════════════════════════════════════════════════════════
-- Build the boilerplate header lines (the `#ifdef INTELLISENSE_DIRECTIVES` block, --- 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). --- the `// Auto-generated` comment, the `// Source:` line, and the self-contained `WORD_COUNT` macro definition).
-- @param src SourceFile --- @param src SourceFile
-- @return string[] --- @return string[]
local function header_boilerplate(src) local function header_boilerplate(src)
return { return {
-- #pragma once wrapped in #ifdef INTELLISENSE_DIRECTIVES, matching the convention in lottes_tape.h. -- #pragma once wrapped in #ifdef INTELLISENSE_DIRECTIVES, matching the convention in lottes_tape.h.
@@ -610,8 +500,8 @@ local function header_boilerplate(src)
"// Component atoms (MipsAtomComp_(ac_*)) -> macro variants (mac_*)", "// Component atoms (MipsAtomComp_(ac_*)) -> macro variants (mac_*)",
"", "",
-- Self-contained: define WORD_COUNT if not already defined. -- Self-contained: define WORD_COUNT if not already defined.
-- We use the same definition here so the auto-generated entries below expand to compile-time constants whether -- We use the same definition here so the auto-generated entries below expand
-- the metadata file is included first or not. -- to compile-time constants whether the metadata file is included first or not.
"#ifndef WORD_COUNT", "#ifndef WORD_COUNT",
"#define WORD_COUNT(name, count) enum { words_##name = (count) };", "#define WORD_COUNT(name, count) enum { words_##name = (count) };",
"#endif", "#endif",
@@ -619,32 +509,28 @@ local function header_boilerplate(src)
} }
end end
-- Compute the output path for one source's `.macs.h` file. --- Compute the output path for one source's `.macs.h` file.
-- The pre-rework convention uses the *directory* basename --- The pre-rework convention uses the *directory* basename (not the source file basename)
-- (not the source file basename) — e.g. `code/duffle/lottes_tape.h` produces `code/duffle/gen/duffle.macs.h`. --- e.g. `code/duffle/lottes_tape.h` produces `code/duffle/gen/duffle.macs.h`.
-- This matches what the C codebase #includes. --- This matches what the C codebase #includes.
-- @param src SourceFile --- @param src SourceFile
-- @return string -- the output directory --- @return string -- the output directory
-- @return string -- the full output path --- @return string -- the full output path
local function compute_macs_h_path(src) local function compute_macs_h_path(src)
local out_dir = src.dir .. "/" .. GEN_SUBDIR local out_dir = src.dir .. "/" .. GEN_SUBDIR
local out_path = out_dir .. "/" .. duffle.basename_no_ext(src.dir) .. ".macs.h" local out_path = out_dir .. "/" .. duffle.basename_no_ext(src.dir) .. ".macs.h"
return out_dir, out_path return out_dir, out_path
end end
--- Emit a per-source `.macs.h` header with the `mac_X` macros + `WORD_COUNT` entries. Writes in BINARY mode so LF line endings are --- Emit a per-source `.macs.h` header with the `mac_X` macros + `WORD_COUNT` entries.
--- preserved (the git blob is LF; Windows text-mode would emit CRLF and break the byte-identical diff). --- 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
--- Honors `ctx.dry_run`: prints the intended path but does not write the file. --- @param src SourceFile
---
--- @param ctx PassCtx
--- @param src SourceFile
--- @param components Component[] --- @param components Component[]
--- @param counts table<string, integer> -- precomputed word counts (from count_all_components) --- @param counts table<string, integer> -- precomputed word counts (from count_all_components)
--- @return string|nil -- path to the written file (nil if no 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, src, components, counts)
if #components == 0 then return nil end if #components == 0 then return nil end
local out_dir, out_path = compute_macs_h_path(src) local out_dir, out_path = compute_macs_h_path(src)
local lines = header_boilerplate(src) local lines = header_boilerplate(src)
@@ -655,12 +541,6 @@ local function emit_component_macros_h(ctx, src, components, counts)
end end
local content = table.concat(lines, "\n") .. "\n" local content = table.concat(lines, "\n") .. "\n"
if ctx.dry_run then
print(string.format(" -> %s (dry-run)", out_path))
return out_path
end
duffle.ensure_dir(out_dir) duffle.ensure_dir(out_dir)
duffle.write_file_lf(out_path, content) duffle.write_file_lf(out_path, content)
print(string.format(" -> %s", out_path)) print(string.format(" -> %s", out_path))
@@ -671,15 +551,86 @@ end
-- Pass entry -- Pass entry
-- ════════════════════════════════════════════════════════════════════════════ -- ════════════════════════════════════════════════════════════════════════════
-- (internal) Extend `ctx.shared.word_counts` with this source's component macros --- (internal) Extend the canonical `corpus.word_counts` with this source's component macros so offsets sees them without re-reading the file.
-- so offsets sees them without re-reading the file. --- First declaration wins: a later caller's count is dropped (the existing entry from the first source is preserved).
-- @param ctx PassCtx --- @param corpus table -- the canonical corpus
-- @param components Component[] --- @param components Component[]
-- @param counts table<string, integer> -- precomputed word counts (from count_all_components) --- @param counts table<string, integer> -- precomputed word counts (from count_all_components)
local function update_shared_word_counts(ctx, components, counts) local function update_canonical_word_counts(corpus, components, counts)
local wc = ctx.shared.word_counts local wc = corpus.word_counts
for _, c in ipairs(components) do for _, c in ipairs(components) do
wc["mac_" .. c.name] = counts[c.name] local key = "mac_" .. c.name
if wc[key] == nil then
wc[key] = counts[c.name]
end
end
end
--- @class ComponentDef
--- @field name string -- bare name (without ac_/mac_ prefix)
--- @field line integer -- definition source line (line of `MipsAtomComp_(ac_X)` / `MipsAtomComp_Proc_(ac_X, ...)`)
--- @field path string -- absolute source path of the definition
--- @field kind string -- "comp_bare" | "comp_proc"
--- (internal) Populate the canonical `corpus.components` projection 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).
--- @param corpus table -- the canonical corpus
--- @param src SourceFile
--- @param components Component[]
local function update_canonical_components(corpus, src, components)
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 canonical corpus;
-- `mac_` prefix lives at the call-site identifier and is stripped before lookup.
if corpus.components[c.name] == nil then
corpus.components[c.name] = {
name = c.name,
line = c.line,
path = rel_path,
kind = c.kind or "comp_bare",
}
else
-- A second declaration of the same bare name: record a typed collision so static-analysis + the report can surface it.
-- Identical-shape declarations (same path + line) do NOT record a collision (the first-wins entry already covers the case).
local existing = corpus.components[c.name]
if existing.path ~= rel_path or existing.line ~= c.line then
local kind = c.kind or "comp_bare"
local first_kind = existing.kind or "comp_bare"
corpus.collisions[#corpus.collisions + 1] = {
kind = "component",
name = c.name,
first_site = { path = existing.path, line = existing.line },
conflicting_site = { path = rel_path, line = c.line },
first_shape = "kind=" .. first_kind,
conflicting_shape = "kind=" .. kind,
}
end
end
end
end
--- (internal) Populate the canonical `corpus.component_body_index` projection with this source's body index entries.
--- First declaration wins; later declarations are dropped (no separate collision record: the components collision is already surfaced by `update_canonical_components`).
--- The pass does NOT write to `ctx.shared.component_body_index` (the corpus owns this projection).
--- @param corpus table -- the canonical corpus
--- @param src SourceFile
--- @param components Component[]
--- @param scan table -- the SourceScan payload (for line_of)
local function update_canonical_component_body_index(corpus, src, components, scan)
local line_of = scan and scan.line_of
for _, c in ipairs(components) do
if corpus.component_body_index[c.name] == nil then
corpus.component_body_index[c.name] = {
body_tokens = c.body_tokens,
body_off = c.body_off,
line_of = line_of,
source = src.path,
declaration = c.line,
kind = c.kind,
}
end
end end
end end
@@ -690,16 +641,42 @@ function M.run(ctx)
local errors = {} local errors = {}
local warnings = {} local warnings = {}
for _, src in ipairs(ctx.sources) do -- Canonical-corpus ownership gate.
local corpus = ctx.shared and ctx.shared.corpus
if type(corpus) ~= "table" then
error("components.run requires ctx.shared.corpus (canonical corpus).", 0)
end
if type(corpus.source_order) ~= "table" then
error("components.run requires ctx.shared.corpus.source_order (canonical corpus).", 0)
end
if type(corpus.word_counts) ~= "table" then
error("components.run requires ctx.shared.corpus.word_counts; "
.. "word_count_eval.run must run before components.run "
.. "(see PASSES deps).", 0)
end
-- Canonical projection ownership:
-- * `corpus.word_counts["mac_"..name]` — current component count
-- * `corpus.components[name]` — bare-name component definition
-- * `corpus.component_body_index[name]` — body / line_of / source index
-- The pass does NOT mutate `ctx.shared.components` or `ctx.shared.component_body_index`
-- (ownership follows the canonical corpus; 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 -- project_components reads from src.scan + does backward lookups on src.text
local components = project_components(src.text, src.scan) local components = project_components(src.text, src.scan)
if #components > 0 then if #components > 0 then
-- Compute word counts for ALL components once (was: rebuilt per call inside the helpers). -- Compute all component word counts once per source.
local counts = count_all_components(components, ctx.shared.word_counts) -- Use `corpus.word_counts` (the canonical count table) 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) local macs_path = emit_component_macros_h(ctx, src, components, counts)
if macs_path then if macs_path then
outputs[#outputs + 1] = { macs_h = macs_path } outputs[#outputs + 1] = { macs_h = macs_path }
update_shared_word_counts(ctx, components, counts) -- Populate the canonical 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)
end end
end end
end end
File diff suppressed because it is too large Load Diff
+184
View File
@@ -0,0 +1,184 @@
--- passes/emission_model.lua: Per-atom emission projection.
---
--- The `emission-model` pass owns `atom.paths` (the canonical per-atom mutable surface)
--- for every atom-with-body and every raw atom-with-body declared in `ctx.shared.corpus.source_order`.
--- For each such atom, the pass invokes `duffle.project_emission(body_text, component_index, word_counts)`
--- and stores the ordered `items` stream plus the dense `word_events` / `markers` / `invocations` views on `atom.paths`.
---
--- Public boundary:
--- * `M.run(ctx)` is the only entry point.
--- * The pass returns `{outputs = {}, errors = ..., warnings = ...}`.
--- Pass kind = `validation` → `PASS_KIND_STOP_ON_ERROR.validation` keeps build-stopping semantics (no policy change in this task).
---
--- Source-order discipline:
--- * `corpus.source_order` is the canonical ordering of source records.
--- * For each source, the pass iterates `src.scan.atoms` and `src.scan.raw_atoms` IN SOURCE ORDER, preserving declaration order.
---
--- Per-atom projection fields on `atom.paths`:
--- `tokens`, `line_in_body`, `items`, `word_events`, `markers`, `invocations`, `errors`, `warnings`.
--- The dense views are built from `items` only; the pass never re-walks source text or tokens.
---
--- Component expansion and construction validation:
--- * known `mac_X(...)` calls recursively expand component bodies;
--- * invocation records retain monotonic IDs, parent IDs, immediate call text, and the immutable outermost root call text;
--- * component cycles retain balanced invocation boundaries and emit a `cycle` construction error without recursing indefinitely;
--- * declared-vs-measured component word counts emit `count_mismatch` construction errors; opaque uncounted macros emit warnings.
---
--- The pass does NOT consult `_code_macros` / `_code_macro_bodies`. Those private tables are owned by `passes.scan_source` and stripped before this pass runs.
local M = {}
-- ─────────────────────────────────────────────────────────────────────────
-- Bootstrap: load `duffle_paths.lua` via debug.getinfo so the module works standalone (run as `luajit passes/emission_model.lua`) and when require'd from the orchestrator.
-- ─────────────────────────────────────────────────────────────────────────
local _bootstrap_dir = debug.getinfo(1, "S").source:match("^@?(.*[/\\])") or "./"
local duffle = dofile(_bootstrap_dir .. "../duffle_paths.lua")
-- ─────────────────────────────────────────────────────────────────────────
-- Helpers
-- ─────────────────────────────────────────────────────────────────────────
-- Convert the recursive walk's body-relative line numbers into physical source lines once.
-- Consumers read these canonical fields rather than rebuilding line state or tokenizing source again.
local function stamp_root_provenance(projection, atom_record, src, corpus)
local root_line_of = src.scan and src.scan.line_of
local root_body_line = root_line_of and root_line_of((atom_record.body_off or 1) - 1)
or atom_record.line or 0
local component_index = corpus.component_body_index or {}
local word_items = {}
for _, item in ipairs(projection.items) do
if item.kind == "word" then word_items[#word_items + 1] = item end
end
local function body_line_for(event, item)
local body_line_of = root_line_of
local body_off = atom_record.body_off or 0
local ids = event.invocation_ids or {}
local inner_id = ids[#ids]
local inner_inv = inner_id and projection.invocations[inner_id]
if inner_inv then
local component = component_index[inner_inv.component_name]
if component and component.line_of then
-- Component-body walkers already receive the declaration source's full line index, so their item.line is physical.
return item.line or 0
end
end
local first_line = body_line_of and body_line_of(math.max(1, body_off - 1)) or root_body_line
return (first_line or 0) + (item.line or 1) - 1
end
-- Stamp root-source path onto invocation records whose `call_path` was left empty by the walker.
-- The walker passes `body_entry.source` to `emit_invoke_begin` as the call_path argument; for the root body_entry created by `M.project_emission` that source is ""
-- (the caller passes only the body text).
-- After this stamp every invocation record has a physical call_path that matches what `passes/atoms_source_map.lua` matches the in-memory provenance projection.
local root_path = src.path or ""
for _, inv in ipairs(projection.invocations) do
if inv.call_path == nil or inv.call_path == "" then
inv.call_path = root_path
end
end
for index, we in ipairs(projection.word_events) do
local item = word_items[index] or {}
local body_line = body_line_for(we, item)
item.line = body_line
we.body_line = body_line
local call_line = body_line
local outer_id = we.outermost_invocation_id or 0
local outer_inv = projection.invocations[outer_id]
if outer_inv then call_line = (root_body_line or 0) + (outer_inv.call_line or 1) - 1 end
we.call_line = call_line
if we.def_path == nil or we.def_path == "" then we.def_path = src.path or "" end
if we.def_line == nil or we.def_line == 0 then we.def_line = atom_record.line or 0 end
if we.call_path == nil or we.call_path == "" then we.call_path = src.path or "" end
end
end
-- Project one atom record into `atom.paths`.
-- Mutates the atom record in-place and returns the projection (for pass-level error/warning accumulation).
local function project_atom(atom_record, src, corpus)
local body = atom_record.body or ""
local wc = corpus.word_counts or {}
local cbi = corpus.component_body_index or {}
local proj = duffle.project_emission(body, cbi, wc)
local paths = {
tokens = atom_record.body_tokens or {},
line_in_body = duffle.build_body_line_index(body),
items = proj.items,
word_events = proj.word_events,
markers = proj.markers,
invocations = proj.invocations,
errors = proj.errors,
warnings = proj.warnings,
}
stamp_root_provenance(proj, atom_record, src, corpus)
atom_record.paths = paths
return proj
end
-- ─────────────────────────────────────────────────────────────────────────
-- Run the emission-model pass.
-- ─────────────────────────────────────────────────────────────────────────
--- @param ctx PassCtx -- { shared = { corpus = ... }, out_root, ... }
--- @return PassResult
function M.run(ctx)
local outputs = {}
local errors = {}
local warnings = {}
local corpus = ctx and ctx.shared and ctx.shared.corpus
if type(corpus) ~= "table" then error("emission_model: ctx.shared.corpus is required (canonical projection)", 0) end
if type(corpus.source_order) ~= "table" then error("emission_model: ctx.shared.corpus.source_order is required", 0) end
-- Project once, collect errors + warnings for one atom.
-- Kind must be one of: atom | raw_atom | comp_bare | comp_proc.
local function process_atom(atom, src)
if not (atom and atom.body) then return end
local kind = atom.kind
if kind ~= "atom" and kind ~= "raw_atom" and kind ~= "comp_bare" and kind ~= "comp_proc" then
return
end
local proj = project_atom(atom, src, corpus)
for _, e in ipairs(proj.errors) do
-- Preserve `kind` (cycle / count_mismatch / unbalanced) so readers can dispatch on the diagnostic class without re-parsing the message string.
errors[#errors + 1] = {
kind = e.kind,
line = e.line,
msg = e.msg,
source = e.source or src.path,
}
end
for _, w in ipairs(proj.warnings) do
warnings[#warnings + 1] = {
kind = w.kind,
line = w.line,
msg = w.msg,
}
end
end
-- Walk every source in canonical order; for each source, iterate atoms + raw_atoms.
-- Recognized kinds (atom | raw_atom | comp_bare | comp_proc) each receive the atom.paths projection via duffle.project_emission.
-- Components are macros inlined into atom bodies; focused tests and isolated component analyses consume atom.paths directly.
for _, src in ipairs(corpus.source_order) do
local scan = src.scan or {}
for _, atom in ipairs(scan.atoms or {}) do
process_atom(atom, src)
end
for _, atom in ipairs(scan.raw_atoms or {}) do
process_atom(atom, src)
end
end
return {
outputs = outputs,
errors = errors,
warnings = warnings,
}
end
return M
+89 -217
View File
@@ -21,18 +21,12 @@
-- Bootstrap: load `duffle_paths.lua` via `debug.getinfo(1, "S").source` (works both standalone + when require'd). -- 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. -- 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 _bootstrap_dir = debug.getinfo(1, "S").source:match("^@?(.*[/\\])") or "./"
local duffle = dofile(_bootstrap_dir .. "../duffle_paths.lua") local duffle = dofile(_bootstrap_dir .. "../duffle_paths.lua")
local word_count_eval = require("word_count_eval")
local count_token_words = word_count_eval.count_token_words
-- ════════════════════════════════════════════════════════════════════════════ -- ════════════════════════════════════════════════════════════════════════════
-- Constants -- Constants
-- ════════════════════════════════════════════════════════════════════════════ -- ════════════════════════════════════════════════════════════════════════════
-- Marker-call identifiers inside atom bodies.
local LABEL_MARKER = "atom_label"
local OFFSET_MARKER = "atom_offset"
-- Offset macro/enum naming prefixes (the emitted header uses these). -- Offset macro/enum naming prefixes (the emitted header uses these).
local OFFSET_MACRO_PREFIX = "_atom_offset_" local OFFSET_MACRO_PREFIX = "_atom_offset_"
local OFFSET_ENUM_PREFIX = "atom_offset_" local OFFSET_ENUM_PREFIX = "atom_offset_"
@@ -52,16 +46,10 @@ local OFFSET_MACRO_COL = 44
--- @field scan table -- pre-scanned SourceScan payload (from duffle.scan_source) --- @field scan table -- pre-scanned SourceScan payload (from duffle.scan_source)
--- @class PassCtx --- @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 shared table -- cross-pass shared state
--- @field shared.word_counts table -- macro name -> word count --- @field shared.corpus table -- canonical 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")
--- @field project_root string -- project root (e.g. "code/")
--- @field upstream table<string, table> -- per-pass upstream outputs
--- @field flags table -- CLI flags
--- @field dry_run boolean -- if true, compute but don't write
--- @field verbose boolean -- log diagnostic info
--- @class PassResult --- @class PassResult
--- @field outputs table[] -- {kind=, path=} entries describing emit files --- @field outputs table[] -- {kind=, path=} entries describing emit files
@@ -69,10 +57,10 @@ local OFFSET_MACRO_COL = 44
--- @field warnings table[] -- {line=, msg=} entries; build-succeeds --- @field warnings table[] -- {line=, msg=} entries; build-succeeds
--- @class BranchOffset --- @class BranchOffset
--- @field tag string -- the marker tag (e.g. "F" in `atom_offset(F, T)`) --- @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 target string -- the target label name (e.g. "T" in `atom_offset(F, T)`)
--- @field pos integer -- the branch's word position within the atom body --- @field branch_word integer -- branch word position within the atom body
--- @field offset integer -- computed `target_word - branch_word - 1` --- @field offset integer -- computed `target_word - branch_word - 1`
--- @class AtomData --- @class AtomData
--- @field name string -- atom name --- @field name string -- atom name
@@ -80,188 +68,85 @@ local OFFSET_MACRO_COL = 44
--- @field offsets BranchOffset[] -- per-branch offset list --- @field offsets BranchOffset[] -- per-branch offset list
-- ════════════════════════════════════════════════════════════════════════════ -- ════════════════════════════════════════════════════════════════════════════
-- Per-token marker-call helpers (atom_label / atom_offset inside bodies) -- Canonical marker projection
-- ════════════════════════════════════════════════════════════════════════════ -- ════════════════════════════════════════════════════════════════════════════
-- Extract comma-separated identifier args from a parenthesized group after a function-like macro call. -- MARKER_PROJECTORS is the marker-kind data table.
-- Returns (args, after_paren) where `after_paren` is the position just past the closing `)`, or nil if `token` did not start with `(`. -- The emission-model pass already records marker word positions;
-- @param token string -- this pass only projects those records into the label/branch lookup shape needed by offset computation.
-- @param after_ident integer local MARKER_PROJECTORS = {
-- @return string[], integer|nil label = function(state, marker)
local function extract_ident_args(token, after_ident) state.labels[marker.name] = marker.word_index
local arg_start = duffle.skip_ws_and_cmt(token, after_ident) end,
if token:sub(arg_start, arg_start) ~= "(" then return {}, nil end offset = function(state, marker)
local inner, after_paren = duffle.read_parens(token, arg_start) state.branches[#state.branches + 1] = {
-- scan: <marker>(<args>) tag = marker.name,
target = marker.target,
branch_word = marker.word_index,
}
end,
}
local args = {} --- Project canonical marker records into the two lookup tables used by the offset renderer.
local pos = 1 --- No source text, body text, or body token is inspected.
local inner_len = #inner --- @param markers table[] -- atom.paths.markers
while pos <= inner_len do --- @return table<string, integer>, table[]
pos = duffle.skip_ws_and_cmt(inner, pos) local function project_markers(markers)
if pos > inner_len then break end local state = { labels = {}, branches = {} }
local ident, after = duffle.read_ident(inner, pos) for _, marker in ipairs(markers or {}) do
if ident and ident ~= "" then local project = MARKER_PROJECTORS[marker.kind]
table.insert(args, ident) if project then project(state, marker) end
pos = after
else
pos = pos + 1
end
pos = duffle.skip_ws_and_cmt(inner, pos)
if pos <= inner_len and inner:sub(pos, pos) == "," then pos = pos + 1 end
end end
return state.labels, state.branches
return args, after_paren
end
-- (internal) Record a `atom_label(name)` marker — `at_pos` is the branch-free word position within the atom body.
-- @param labels table<string, integer>
-- @param args string[]
-- @param at_pos integer
local function record_label_marker(labels, args, at_pos)
if #args >= 1 then labels[args[1]] = at_pos end
end
-- (internal) Record a `atom_offset(tag, target)` marker.
-- @param branches table[] -- list of {pos=, target=, tag=}
-- @param args string[]
-- @param at_pos integer
local function record_offset_marker(branches, args, at_pos)
if #args >= 2 then
table.insert(branches, { pos = at_pos, target = args[2], tag = args[1] })
end
end
--- Scan a single token for atom_label/atom_offset markers, walking through balanced groups transparently (so nested calls are found).
--- @param token string
--- @param at_pos integer -- the branch-free word position of this token in the body
--- @param labels table<string, integer>
--- @param branches table[]
local function scan_for_atom_markers(token, at_pos, labels, branches)
local pos = 1
local tok_len = #token
while pos <= tok_len do
pos = duffle.skip_ws_and_cmt(token, pos)
if pos > tok_len then break end
local ch = token:sub(pos, pos)
if duffle.is_alpha(ch) then
local ident, after = duffle.read_ident(token, pos)
if ident == LABEL_MARKER then
local args, after_paren = extract_ident_args(token, after)
record_label_marker(labels, args, at_pos)
pos = after_paren or after
elseif ident == OFFSET_MARKER then
local args, after_paren = extract_ident_args(token, after)
record_offset_marker(branches, args, at_pos)
pos = after_paren or after
else
pos = after
end
else
local nx = duffle.skip_str_or_cmt(token, pos)
pos = (nx > pos) and nx or (pos + 1)
end
end
end
-- (internal) Count words emitted by the rest of `tok` after a marker call
-- (the marker call itself emits 0 words, but the source pattern may bundle the marker with the next instruction on the same line,
-- separated by no top-level comma).
-- Returns the word count contributed by that rest.
-- @param tok string
-- @param word_counts table
-- @return integer
local function count_marker_rest(tok, word_counts)
-- duffle.find_marker_call_end returns the position PAST the closing `)` of the marker call
-- (or nil if `tok` isn't a marker call). Canonical impl in duffle.lua is faster than the
-- file-local copy that used to live here (byte-indexed, no `tok:sub` per char).
local marker_end = duffle.find_marker_call_end(tok)
if not marker_end or marker_end >= #tok then return 0 end
local rest = duffle.trim(tok:sub(marker_end))
if rest == "" then return 0 end
return count_token_words(rest, word_counts)
end
-- (internal) Is this token a marker call (`atom_label` or `atom_offset`)?
-- @param tok string
-- @return boolean
local function is_marker_token(tok)
local leading_ident = duffle.read_ident(tok, 1)
return leading_ident == LABEL_MARKER or leading_ident == OFFSET_MARKER
end
--- Scan an atom body for labels + branches, count total words.
--- Returns (labels, branches, total_words).
--- @param body string
--- @param word_counts table
--- @return table<string, integer>, table[], integer
-- scan_atom_body: walk pre-tokenized body for atom_label/atom_offset markers + word counts.
-- Uses `atom.body_tokens` from the SourceScan payload (pre-tokenized by scan-source pass).
-- @param body_tokens table[] -- {{tok=string, rel=integer}, ...} from duffle.tokenize_body
-- @param word_counts table
-- @return table, table, integer -- labels, branches, total_words
local function scan_atom_body(body_tokens, word_counts)
local pos = 0
local labels = {}
local branches = {}
for _, t in ipairs(body_tokens) do
local tok = t.tok
if is_marker_token(tok) then
-- Marker call: record at the current pos, do NOT advance pos.
scan_for_atom_markers(tok, pos, labels, branches)
pos = pos + count_marker_rest(tok, word_counts)
else
local words = count_token_words(tok, word_counts)
scan_for_atom_markers(tok, pos, labels, branches)
pos = pos + words
end
end
return labels, branches, pos
end end
-- ════════════════════════════════════════════════════════════════════════════ -- ════════════════════════════════════════════════════════════════════════════
-- Offset computation + header generation -- Offset computation + header generation
-- ════════════════════════════════════════════════════════════════════════════ -- ════════════════════════════════════════════════════════════════════════════
-- Compute branch offsets as `target_word - branch_word - 1` --- Compute branch offsets as `target_word - branch_word - 1` (the standard MIPS branch-immediate encoding).
-- (the standard MIPS branch-immediate encoding). --- @param labels table<string, integer>
-- @param labels table<string, integer> --- @param branches table[]
-- @param branches table[] --- @return BranchOffset[]
-- @return BranchOffset[]
local function compute_offsets(labels, branches) local function compute_offsets(labels, branches)
local results = {} local results = {}
for _, br in ipairs(branches) do for _, br in ipairs(branches) do
local target = labels[br.target] local target = labels[br.target]
if not target then if not target then
error("Branch target '" .. br.target .. "' has no atom_label (at word " .. br.pos .. ")") error("Branch target '" .. br.target .. "' has no atom_label (at word " .. br.branch_word .. ")")
end end
results[#results + 1] = { target = br.target, tag = br.tag, offset = target - br.pos - 1 } results[#results + 1] = {
target = br.target,
tag = br.tag,
branch_word = br.branch_word,
offset = target - br.branch_word - 1,
}
end end
return results return results
end end
-- Right-pad `s` with spaces to width `w`. If `s` is already `w` or wider, no padding is added. --- Right-pad `s` with spaces to width `w`. If `s` is already `w` or wider, no padding is added.
-- @param s string --- @param s string
-- @param w integer --- @param w integer
-- @return string --- @return string
local function pad_right(s, w) local function pad_right(s, w)
return s .. string.rep(" ", math.max(0, w - #s)) return s .. string.rep(" ", math.max(0, w - #s))
end end
-- (internal) Build a constant-table entry `{macro_name, enum_name, value}` from a BranchOffset. --- (internal) Build a constant-table entry `{macro_name, enum_name, value}` from a BranchOffset.
-- @param r BranchOffset --- @param bo BranchOffset
-- @return table --- @return table
local function make_offset_const(r) local function make_offset_const(bo)
return { return {
macro_name = OFFSET_MACRO_PREFIX .. r.tag .. "_" .. r.target, macro_name = OFFSET_MACRO_PREFIX .. bo.tag .. "_" .. bo.target,
enum_name = OFFSET_ENUM_PREFIX .. r.tag .. "_" .. r.target, enum_name = OFFSET_ENUM_PREFIX .. bo.tag .. "_" .. bo.target,
value = r.offset, value = bo.offset,
} }
end end
-- (internal) Emit one atom's offset constants + enum into the lines buffer. --- (internal) Emit one atom's offset constants + enum into the lines buffer.
-- @param add fun(s: string) --- @param add fun(s: string)
-- @param atom AtomData --- @param atom AtomData
local function emit_atom_offsets(add, atom) local function emit_atom_offsets(add, atom)
if #atom.offsets == 0 then return end if #atom.offsets == 0 then return end
add("// --- atom: " .. atom.name .. " (" .. atom.total_words .. " words) ---") add("// --- atom: " .. atom.name .. " (" .. atom.total_words .. " words) ---")
@@ -282,10 +167,10 @@ local function emit_atom_offsets(add, atom)
add("") add("")
end end
-- Generate the per-source .offsets.h header. --- Generate the per-source .offsets.h header.
-- @param source_path string --- @param source_path string
-- @param atoms_data AtomData[] --- @param atoms_data AtomData[]
-- @return string --- @return string
local function generate_header(source_path, atoms_data) local function generate_header(source_path, atoms_data)
local basename = duffle.basename_no_ext(source_path) local basename = duffle.basename_no_ext(source_path)
@@ -307,59 +192,41 @@ local function generate_header(source_path, atoms_data)
return table.concat(lines, "\n") .. "\n" return table.concat(lines, "\n") .. "\n"
end end
-- ════════════════════════════════════════════════════════════════════════════
-- M — module exports
-- ════════════════════════════════════════════════════════════════════════════
local M = {} local M = {}
-- Project the pre-scanned SourceScan entries into the {name, body, body_tokens} shape this pass needs. --- (internal) Process one source: render offsets from canonical atom paths.
-- MipsAtom_ entries have kind="atom"; MipsCode code_<name> entries have kind="raw_atom". --- Returns the offsets_h path if a header was written, or nil.
-- `body_tokens` is set by scan-source on every `scan.atoms[i]` / `scan.raw_atoms[i]`; we carry it forward --- @param ctx PassCtx
-- so `scan_atom_body` reads from the precomputed table directly (no per-atom tokenize_body fallback). --- @param src SourceFile
-- @param scan table -- SourceScan from duffle.scan_source --- @return string|nil -- the offsets_h path
-- @return table[] -- list of {name=, body=, body_tokens=}
local function project_atoms(scan)
local out = {}
for _, a in ipairs(scan.atoms) do
out[#out + 1] = { name = a.raw_name, body = a.body, body_tokens = a.body_tokens }
end
for _, a in ipairs(scan.raw_atoms) do
out[#out + 1] = { name = a.name, body = a.body, body_tokens = a.body_tokens }
end
return out
end
-- (internal) Process one source: project atoms from scan, scan bodies, write header.
-- Returns the offsets_h path if a header was written, or nil.
-- @param ctx PassCtx
-- @param src SourceFile
-- @return string|nil -- the offsets_h path
local function process_source(ctx, src) local function process_source(ctx, src)
local atoms = project_atoms(src.scan)
if #atoms == 0 then return nil end
local atoms_data = {} local atoms_data = {}
for _, atom in ipairs(atoms) do local scan = src.scan or {}
local labels, branches, total = scan_atom_body(atom.body_tokens, ctx.shared.word_counts)
local function append_atom(atom)
local paths = atom and atom.paths
if not paths then return end
local labels, branches = project_markers(paths.markers)
atoms_data[#atoms_data + 1] = { atoms_data[#atoms_data + 1] = {
name = atom.name, name = atom.raw_name or atom.name,
total_words = total, total_words = #(paths.word_events or {}),
offsets = compute_offsets(labels, branches), offsets = compute_offsets(labels, branches),
} }
end end
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
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 = src.dir .. "/gen/" .. duffle.basename_no_ext(src.dir) .. ".offsets.h"
if not ctx.dry_run then duffle.ensure_dir(duffle.dirname(out_path))
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(src.path, atoms_data))
end
return out_path return out_path
end end
--- Run the offsets pass. --- Run the offsets pass.
--- For each source, emits a per-module `<dir_basename>.offsets.h` containing `#define _atom_offset_F_T = N` constants --- For each canonical source, emits a per-module `<dir_basename>.offsets.h`
--- for every `atom_offset(F, T)` reference in the source's atoms. --- containing constants for every marker recorded in atom.paths.
--- @param ctx PassCtx --- @param ctx PassCtx
--- @return PassResult --- @return PassResult
function M.run(ctx) function M.run(ctx)
@@ -367,7 +234,12 @@ function M.run(ctx)
local errors = {} local errors = {}
local warnings = {} local warnings = {}
for _, src in ipairs(ctx.sources) do 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)
end
for _, src in ipairs(corpus.source_order) do
local out_path = process_source(ctx, src) local out_path = process_source(ctx, src)
if out_path then if out_path then
outputs[#outputs + 1] = { offsets_h = out_path } outputs[#outputs + 1] = { offsets_h = out_path }
+97 -59
View File
@@ -5,8 +5,10 @@
--- - `build/gen/<dir_basename>.annotations.txt` — one per source-directory containing atoms; aggregates across all sources in the directory. --- - `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. --- - `build/gen/annotation_validation.txt` — the project summary.
--- ---
--- The annotation pass stashes per-MODULE summary entries in `ctx.flags._annot_results` (set by `passes/annotation.lua`). --- The annotation pass emits `errors.h` files per module and the canonical
--- This pass re-validates each source via `annotation.validate()` to get the detailed per-source results needed for the report. --- `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, --- **Conventions**: tabs (1/level), EmmyLua annotations, no regex,
--- Lua 5.3 compatible. --- Lua 5.3 compatible.
@@ -16,7 +18,6 @@
-- ════════════════════════════════════════════════════════════════════════════ -- ════════════════════════════════════════════════════════════════════════════
-- Resolve `arg[0]` to an absolute-ish script directory so that `require("duffle")` resolves against `scripts/` regardless of CWD. -- Resolve `arg[0]` to an absolute-ish script directory so that `require("duffle")` resolves against `scripts/` regardless of CWD.
-- Note: this boilerplate is duplicated in 6 other entry scripts; a Phase-6 extraction target (`duffle.setup_package_path()`).
-- Bootstrap: see `ps1_meta.lua` for the rationale. -- Bootstrap: see `ps1_meta.lua` for the rationale.
-- Bootstrap: load `scripts/duffle_paths.lua` (sets package.path + package.cpath). -- Bootstrap: load `scripts/duffle_paths.lua` (sets package.path + package.cpath).
-- Uses `debug.getinfo` to find this file's own directory, so it works -- Uses `debug.getinfo` to find this file's own directory, so it works
@@ -26,6 +27,13 @@
local _bootstrap_dir = debug.getinfo(1, "S").source:match("^@?(.*[/\\])") or "./" local _bootstrap_dir = debug.getinfo(1, "S").source:match("^@?(.*[/\\])") or "./"
local duffle = dofile(_bootstrap_dir .. "../duffle_paths.lua") local duffle = dofile(_bootstrap_dir .. "../duffle_paths.lua")
-- Load the annotation pass so we can re-validate each source against the
-- canonical corpus projection. The annotation pass exposes `M.validate`,
-- which returns the per-source AnnotationResult (atoms / annots / macros /
-- binds / errors / warnings) that the report pass renders into the
-- per-module `<dir_basename>.annotations.txt` output.
local annotation = dofile(_bootstrap_dir .. "annotation.lua")
-- ════════════════════════════════════════════════════════════════════════════ -- ════════════════════════════════════════════════════════════════════════════
-- Constants -- Constants
-- ════════════════════════════════════════════════════════════════════════════ -- ════════════════════════════════════════════════════════════════════════════
@@ -61,16 +69,14 @@ local PASS_NAME = "report"
--- @field basename string -- filename without extension --- @field basename string -- filename without extension
--- @class PassCtx --- @class PassCtx
--- @field sources SourceFile[] -- all source files in the build --- @field sources SourceFile[] -- all source files in the build
--- @field metadata_path string -- path to word_count.metadata.h --- @field metadata_path string -- path to word_count.metadata.h
--- @field shared table -- cross-pass shared state --- @field shared table -- cross-pass shared state
--- @field out_root string -- output root (e.g. "build/gen") --- @field out_root string -- output root (e.g. "build/gen")
--- @field project_root string -- project root (e.g. "code/") --- @field project_root string -- project root (e.g. "code/")
--- @field upstream table<string, table> -- per-pass upstream outputs --- @field upstream table<string, table> -- per-pass upstream outputs
--- @field flags table -- CLI flags + per-pass stash --- @field flags table -- CLI flags + per-pass stash
--- @field flags._annot_results ModuleEntry[] -- stashed by annotation pass --- @field verbose boolean -- if true, log diagnostic info
--- @field dry_run boolean -- if true, compute but don't write
--- @field verbose boolean -- if true, log diagnostic info
--- @class PassResult --- @class PassResult
--- @field outputs table[] -- {kind=, path=} entries describing emit files --- @field outputs table[] -- {kind=, path=} entries describing emit files
@@ -139,31 +145,31 @@ local PASS_NAME = "report"
-- Per-MODULE annotation report (aggregated across all sources in a dir) -- Per-MODULE annotation report (aggregated across all sources in a dir)
-- ════════════════════════════════════════════════════════════════════════════ -- ════════════════════════════════════════════════════════════════════════════
-- Extract the basename (last path segment) of a forward- or back-slash separated path. Returns the input unchanged if no separator is found. --- Extract the basename (last path segment) of a forward- or back-slash separated path. Returns the input unchanged if no separator is found.
-- @param path string --- @param path string
-- @return string --- @return string
local function source_basename(path) local function source_basename(path)
return path:match(BASENAME_PATTERN) or path return path:match(BASENAME_PATTERN) or path
end end
-- (internal) Format a single annotation entry as one rendered line. --- (internal) Format a single annotation entry as one rendered line.
-- @param a AnnotEntry --- @param a AnnotEntry
-- @param src_name string --- @param src_name string
-- @return string --- @return string
local function format_annot_line(a, src_name) local function format_annot_line(a, src_name)
if a.error then if a.error then
return string.format(" ✗ line %d %s [ERROR: %s] [%s]", a.line, a.macro or "?", a.error, src_name) return string.format(" ✗ line %d %s [ERROR: %s] [%s]", a.line, a.macro or "?", a.error, src_name)
end end
local line = string.format(" ● line %d %s [%s]", a.line, a.name, src_name) 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.binds then line = line .. " binds=" .. a.binds end
if #a.reads > 0 then line = line .. " reads={" .. table.concat(a.reads, ",") .. "}" 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 if #a.writes > 0 then line = line .. " writes={" .. table.concat(a.writes, ",") .. "}" end
return line return line
end end
-- (internal) Tally totals across all results in a module. --- (internal) Tally totals across all results in a module.
-- @param results AnnotationResult[] --- @param results AnnotationResult[]
-- @return integer, integer, integer, integer, integer, integer --- @return integer, integer, integer, integer, integer, integer
local function tally_module_totals(results) local function tally_module_totals(results)
local total_atoms, total_annots, total_binds, total_macros = 0, 0, 0, 0 local total_atoms, total_annots, total_binds, total_macros = 0, 0, 0, 0
local total_errors, total_warnings = 0, 0 local total_errors, total_warnings = 0, 0
@@ -261,6 +267,28 @@ local function render_module_warnings_section(add, results, total_warnings)
add("") add("")
end end
-- ════════════════════════════════════════════════════════════════════════════
-- 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`). --- Render the per-MODULE annotation report (one `<dir_basename>.annotations.txt`).
--- @param dir string -- module directory path --- @param dir string -- module directory path
--- @param sources SourceFile[] -- sources in this module --- @param sources SourceFile[] -- sources in this module
@@ -282,12 +310,20 @@ local function render_module_report(dir, sources, results)
total_atoms, total_annots, total_binds, total_macros)) total_atoms, total_annots, total_binds, total_macros))
add("") add("")
render_module_atoms_section(add, results) -- Bundle the totals so the section renderers don't need separate parameter lists.
render_module_annots_section(add, results) -- Errors/warnings sections need their total count to decide "(none)" vs iterate.
render_module_binds_section(add, results) -- Sections without totals (atoms/annots/binds/macros) ignore this arg.
render_module_macros_section(add, results) local totals = {
render_module_errors_section(add, results, total_errors) atoms = total_atoms, annots = total_annots, binds = total_binds,
render_module_warnings_section(add, results, total_warnings) 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)
end
return table.concat(lines, "\n") .. "\n" return table.concat(lines, "\n") .. "\n"
end end
@@ -346,20 +382,22 @@ end
-- Orchestration helpers -- Orchestration helpers
-- ════════════════════════════════════════════════════════════════════════════ -- ════════════════════════════════════════════════════════════════════════════
-- (internal) Pull per-source validate() results from the annotation pass's stash. --- (internal) Re-validate every source in a directory against the canonical
-- The annotation pass runs first in the dep chain and caches results in `ctx.flags._annot_source_results`; we read from there instead of re-validating each source. --- corpus projection. Calls `annotation.validate()` per source to produce the
-- Returns the list of module results + the flat list of all results (for the project-wide summary). --- per-source AnnotationResult (atoms / annots / macros / binds / errors /
-- @param ctx PassCtx --- warnings) that the report renderer consumes. This is the canonical path —
-- @param dir_sources SourceFile[] --- no private stash; each report pass run is reproducible from the corpus.
-- @return AnnotationResult[], AnnotationResult[] --- 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 function lookup_module_results(ctx, dir_sources)
local src_cache = (ctx.flags and ctx.flags._annot_source_results) or {}
local module_results = {} local module_results = {}
local all_results = {} local all_results = {}
for _, src in ipairs(dir_sources) do for _, src in ipairs(dir_sources) do
local result = src_cache[src.path] if src.scan then
if result then local result = annotation.validate(ctx, src, nil)
result.source = src.path -- defensive (annotation tags it too; this guards against cache misses from earlier iterations) result.source = src.path -- tag for downstream rendering
module_results[#module_results + 1] = result module_results[#module_results + 1] = result
all_results[#all_results + 1] = result all_results[#all_results + 1] = result
end end
@@ -367,9 +405,9 @@ local function lookup_module_results(ctx, dir_sources)
return module_results, all_results return module_results, all_results
end end
-- (internal) Does this module's results contain anything worth emitting? --- (internal) Does this module's results contain anything worth emitting?
-- @param module_results AnnotationResult[] --- @param module_results AnnotationResult[]
-- @return boolean --- @return boolean
local function module_has_content(module_results) local function module_has_content(module_results)
for _, r in ipairs(module_results) do for _, r in ipairs(module_results) do
if #r.atoms > 0 or #r.annots > 0 or #r.binds > 0 if #r.atoms > 0 or #r.annots > 0 or #r.binds > 0
@@ -380,8 +418,8 @@ local function module_has_content(module_results)
return false return false
end end
-- (internal) Log a debug message if `_G[DEBUG_FLAG]` is truthy. --- (internal) Log a debug message if `_G[DEBUG_FLAG]` is truthy.
-- @param fmt string --- @param fmt string
local function debug_log(fmt, ...) local function debug_log(fmt, ...)
if _G[DEBUG_FLAG] then if _G[DEBUG_FLAG] then
io.stderr:write(string.format("[%s] " .. fmt, PASS_NAME, ...)) io.stderr:write(string.format("[%s] " .. fmt, PASS_NAME, ...))
@@ -403,27 +441,27 @@ function M.run(ctx)
local errors = {} local errors = {}
local warnings = {} local warnings = {}
local module_entries = (ctx.flags and ctx.flags._annot_results) or {} -- Module grouping comes from `corpus.sources_by_dir` (the canonical projection).
local by_dir = ctx.by_dir or duffle.group_sources_by_dir(ctx.sources) -- 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 {}
if not ctx.dry_run then duffle.ensure_dir(ctx.out_root) end duffle.ensure_dir(ctx.out_root)
local all_results_for_summary = {} local all_results_for_summary = {}
for _, entry in ipairs(module_entries) do for dir, dir_sources in pairs(by_dir) do
debug_log("entry: dir=%s basename=%s atoms_count=%d dir_sources=%d\n", entry.dir, entry.dir_basename, entry.atoms_count, #(by_dir[entry.dir] or {})) local dir_basename = dir:match("([^/\\]+)$") or dir
debug_log("dir=%s basename=%s sources=%d\n", dir, dir_basename, #dir_sources)
if entry.atoms_count > 0 or #(by_dir[entry.dir] or {}) > 0 then if #dir_sources > 0 then
local dir_sources = by_dir[entry.dir] or {}
local module_results, all_results = lookup_module_results(ctx, dir_sources) local module_results, all_results = lookup_module_results(ctx, dir_sources)
for _, r in ipairs(all_results) do for _, r in ipairs(all_results) do
all_results_for_summary[#all_results_for_summary + 1] = r all_results_for_summary[#all_results_for_summary + 1] = r
end end
if module_has_content(module_results) then if module_has_content(module_results) then
local out_path = ctx.out_root .. "/" .. entry.dir_basename .. ".annotations.txt" local out_path = ctx.out_root .. "/" .. dir_basename .. ".annotations.txt"
if not ctx.dry_run then duffle.write_file(out_path, render_module_report(dir, dir_sources, module_results))
duffle.write_file(out_path, render_module_report(entry.dir, dir_sources, module_results))
end
outputs[#outputs + 1] = { annotations_txt = out_path } outputs[#outputs + 1] = { annotations_txt = out_path }
else else
debug_log(" -> no content; skipping\n") debug_log(" -> no content; skipping\n")
@@ -431,7 +469,7 @@ function M.run(ctx)
end end
end end
if not ctx.dry_run and #all_results_for_summary > 0 then if #all_results_for_summary > 0 then
local summary_path = ctx.out_root .. "/annotation_validation.txt" local summary_path = ctx.out_root .. "/annotation_validation.txt"
duffle.write_file(summary_path, render_project_report(all_results_for_summary)) duffle.write_file(summary_path, render_project_report(all_results_for_summary))
outputs[#outputs + 1] = { summary_txt = summary_path } outputs[#outputs + 1] = { summary_txt = summary_path }
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File diff suppressed because it is too large Load Diff
+43 -128
View File
@@ -1,11 +1,17 @@
--- word_count_eval.lua — Word-counting logic for the tape-atom metaprogram pipeline. --- word_count_eval.lua — Word-counting logic for the tape-atom metaprogram pipeline.
--- ---
--- Three responsibilities: --- Two responsibilities:
--- 1. **Public utilities** (used by `passes/components.lua`, `passes/offsets.lua`, `passes/annotation.lua`): --- 1. **Public utility** `M.count_token_words(token, wc)`: Used by `passes/offsets.lua`, `passes/annotation.lua`, and other passes.
--- - `M.count_token_words(token, wc)` — words emitted by one token --- 2. **Pass entry** `M.run(ctx)`: Loads the authored `word_count.metadata.h` into `ctx.shared.corpus.word_counts` for downstream passes.
--- - `M.scan_dir(dir, suffix)` — glob walk for *.macs.h --- The generated `.macs.h` files are OUTPUT artifacts and are NOT inputs to this pass;
--- 2. **Pass entry** `M.run(ctx)` — loads metadata.h + *.macs.h into `ctx.shared.word_counts` for downstream passes. --- Current component counts are owned by `passes/components.lua` (which populates `corpus.word_counts` and `corpus.component_body_index`
--- 3. **Internal helpers** for the body scanner. --- AFTER computing each current count from the just-built body + `corpus.word_counts`).
---
--- **Canonical contract**:
--- * `ctx.shared.corpus.word_counts` is the canonical count table.
--- * `corpus.word_counts` is the sole count table. Consumers read `corpus.word_counts` directly.
--- * `ctx.shared.components` and `ctx.shared.component_body_index` are NOT created by this pass (canonical projections only).
--- * No `.macs.h` recursive discovery (no `scan_dir`, no scan cache, no `_invalidate_scan_cache`).
--- ---
--- **Conventions**: tabs (1/level), EmmyLua annotations, no regex, --- **Conventions**: tabs (1/level), EmmyLua annotations, no regex,
--- Lua 5.3 compatible. --- Lua 5.3 compatible.
@@ -14,31 +20,11 @@
-- Module-scope requires + package.path setup -- 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.
-- Note: this boilerplate is duplicated in 6 other entry scripts; a Phase-6 extraction target (`duffle.setup_package_path()`).
-- Bootstrap: see `ps1_meta.lua` for the rationale.
-- Bootstrap: load `scripts/duffle_paths.lua` (sets package.path + package.cpath). -- 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. -- 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 _bootstrap_dir = debug.getinfo(1, "S").source:match("^@?(.*[/\\])") or "./"
local duffle = dofile(_bootstrap_dir .. "../duffle_paths.lua") local duffle = dofile(_bootstrap_dir .. "../duffle_paths.lua")
-- ════════════════════════════════════════════════════════════════════════════
-- Constants
-- ════════════════════════════════════════════════════════════════════════════
-- Windows separator chars — used to convert `dir` output (which uses `\`) into POSIX paths (which our scripts expect).
local PATH_SEP_BACKSLASH = "\\"
local PATH_SEP_FORWARD = "/"
-- Fallback glob command (subprocess). Used when `lfs` (LuaFileSystem) is not available.
-- Scoped to `code\` to avoid walking `.git/`, `toolchain/`, `build/`, etc.
local DIR_GLOB_CMD = 'dir /b /s "%s\\code\\%s" 2>nul'
-- Try to load lfs (LuaFileSystem). If available, scan_dir uses native directory enumeration (~2ms)
-- instead of spawning `dir /b /s` as a subprocess (~56ms). Built by update_deps.ps1 into toolchain/lfs/lfs.dll.
local lfs = pcall(require, "lfs") and require("lfs") or nil
-- ════════════════════════════════════════════════════════════════════════════ -- ════════════════════════════════════════════════════════════════════════════
-- Type declarations -- Type declarations
@@ -57,12 +43,12 @@ local lfs = pcall(require, "lfs") and require("lfs") or nil
--- @field sources SourceFile[] -- all source files in the build --- @field sources SourceFile[] -- all source files in the build
--- @field metadata_path string -- path to word_count.metadata.h --- @field metadata_path string -- path to word_count.metadata.h
--- @field shared table -- cross-pass shared state --- @field shared table -- cross-pass shared state
--- @field shared.word_counts WordCounts -- populated by this pass --- @field shared.corpus table -- canonical corpus (required)
--- @field shared.corpus.word_counts WordCounts -- canonical count table (populated by this pass)
--- @field out_root string -- output root (e.g. "build/gen") --- @field out_root string -- output root (e.g. "build/gen")
--- @field project_root string -- project root (e.g. "code/") --- @field project_root string -- project root (e.g. "code/")
--- @field upstream table<string, table> -- per-pass upstream outputs --- @field upstream table<string, table> -- per-pass upstream outputs
--- @field flags table -- CLI flags --- @field flags table -- CLI flags
--- @field dry_run boolean -- if true, compute but don't write
--- @field verbose boolean -- if true, log diagnostic info --- @field verbose boolean -- if true, log diagnostic info
--- @class PassResult --- @class PassResult
@@ -84,9 +70,8 @@ local M = {}
--- For most tokens (regular MIPS instructions) this returns 1. --- For most tokens (regular MIPS instructions) this returns 1.
--- For `mac_X(...)` calls, this returns the resolved word count from `wc` (recursively if needed). For `nop2` etc., returns wc[name]. --- For `mac_X(...)` calls, this returns the resolved word count from `wc` (recursively if needed). For `nop2` etc., returns wc[name].
--- For unknown macros, returns 1 and (optionally) warns. --- For unknown macros, returns 1 and (optionally) warns.
--- --- @param token string -- a single token from split_top_level_commas
--- @param token string -- a single token from split_top_level_commas --- @param wc WordCounts -- the shared word-count table
--- @param wc WordCounts -- the shared word-count table
--- @return integer --- @return integer
function M.count_token_words(token, wc) function M.count_token_words(token, wc)
local s = duffle.trim(token) local s = duffle.trim(token)
@@ -101,112 +86,42 @@ function M.count_token_words(token, wc)
return 1 return 1
end end
-- ┌────────────────────────────────────────────────────────────────────┐
-- │ Shared utility: scan_dir │
-- └────────────────────────────────────────────────────────────────────┘
--- Recursively scan a directory for files matching a glob suffix.
--- No regex per the no_regex constraint — uses plain byte matching via `dir /b /s` on Windows.
---
--- The `.macs.h` files produced by the components pass always live at `<project_root>/<module>/gen/`.
--- We can shortcut the `dir /b /s` walk by listing modules first (one `dir /b /ad`), then walking each `<module>/gen/`
--- (one `dir /b` per module, no recursion).
--- For projects with 2 modules and 0 .macs.h files, this drops the cost from ~52ms
--- (full recursive walk of the entire project tree) to ~5ms.
---
--- @param dir string -- directory to scan (absolute or relative)
--- @param suffix string -- file pattern, e.g. "*.macs.h"
--- @return string[]
-- Cache the scan_dir result per (dir, suffix) in package.loaded.
-- Each `io.popen` call on Windows is ~50-100ms of subprocess overhead, so caching the result saves a fixed cost on every build.
-- The cache persists for the lifetime of the Lua process (cleared when ps1_meta.lua exits).
-- If a build removes/creates .macs.h files mid-process, the caller can invalidate by calling `M._invalidate_scan_cache()`.
local SCAN_CACHE_KEY = "__word_count_eval_scan_cache__"
--- Scan `code/` for files matching `suffix` (e.g. `*.macs.h`).
--- Uses `lfs` (LuaFileSystem) when available — native directory enumeration at ~2ms.
--- Falls back to `dir /b /s` subprocess (~56ms) when `lfs` is not compiled.
---
--- @param dir string -- project root directory
--- @param suffix string -- file pattern, e.g. "*.macs.h"
--- @return string[]
function M.scan_dir(dir, suffix)
local key = dir .. "\0" .. suffix
local cache = package.loaded[SCAN_CACHE_KEY]
if cache and cache[key] then return cache[key] end
local results = {}
if lfs then
-- Native walk: list code/<module>/gen/ for matching files. Zero subprocess spawns.
local code_dir = dir .. "/code"
if lfs.attributes(code_dir, "mode") == "directory" then
for mod_name in lfs.dir(code_dir) do
if mod_name ~= "." and mod_name ~= ".." then
local gen_path = code_dir .. "/" .. mod_name .. "/gen"
if lfs.attributes(gen_path, "mode") == "directory" then
for fname in lfs.dir(gen_path) do
if fname:match("%.macs%.h$") then
results[#results + 1] = gen_path .. "/" .. fname
end
end
end
end
end
end
else
-- Fallback: single `dir /b /s` subprocess scoped to code\.
local pipe = io.popen(DIR_GLOB_CMD:format(dir, suffix))
if pipe then
for raw_line in pipe:lines() do
results[#results + 1] = raw_line:gsub(PATH_SEP_BACKSLASH, PATH_SEP_FORWARD)
end
pipe:close()
end
end
-- Cache the result (including empty results).
cache = cache or {}
cache[key] = results
package.loaded[SCAN_CACHE_KEY] = cache
return results
end
--- Invalidate the scan cache (call after creating new .macs.h files in the same Lua process — usually not needed).
function M._invalidate_scan_cache() package.loaded[SCAN_CACHE_KEY] = nil end
-- ┌────────────────────────────────────────────────────────────────────┐ -- ┌────────────────────────────────────────────────────────────────────┐
-- │ Pass entry: M.run(ctx) — "word-counts" pass │ -- │ Pass entry: M.run(ctx) — "word-counts" pass │
-- └────────────────────────────────────────────────────────────────────┘ -- └────────────────────────────────────────────────────────────────────┘
--- Load metadata.h + scan for existing *.macs.h files into ctx.shared.word_counts. --- Load the authored `word_count.metadata.h` into `ctx.shared.corpus.word_counts`.
--- Loading the .macs.h files is idempotent: entries from later (current-build) .macs.h files override metadata.h entries of the same name. --- 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.
--- ---
--- Contract:
--- * `ctx.shared.corpus` MUST exist (canonical corpus ownership).
--- * `ctx.metadata_path` MUST be a readable file path to the authored `word_count.metadata.h`.
--- * The pass assigns exactly one table to `corpus.word_counts`.
--- Consumers read the corpus-owned table directly.
--- Consumers must read `corpus.word_counts` directly.
--- @param ctx PassCtx --- @param ctx PassCtx
--- @return PassResult --- @return PassResult
function M.run(ctx) function M.run(ctx)
local wc = {} -- 1. Canonical-corpus ownership gate.
local corpus = ctx.shared and ctx.shared.corpus
-- 1. Load metadata.h (the encoding-macro source of truth). if type(corpus) ~= "table" then
local meta_counts = duffle.load_word_counts(ctx.metadata_path) error("word_count_eval.run requires ctx.shared.corpus (canonical corpus). The fixture must install the corpus before running this pass.", 0)
for name, count in pairs(meta_counts) do wc[name] = count end
-- 2. Scan project_root recursively for *.macs.h files (component-macro source).
local macs_files = M.scan_dir(ctx.project_root, "*.macs.h")
for _, macs_path in ipairs(macs_files) do
local ok, mc = pcall(duffle.load_word_counts, macs_path)
if not ok then
io.stderr:write(string.format("[word_count_eval] parse error in '%s': %s\n", macs_path, tostring(mc)))
elseif type(mc) ~= "table" then
io.stderr:write(string.format("[word_count_eval] '%s' did not return a table (got %s)\n", macs_path, type(mc)))
else
for name, count in pairs(mc) do wc[name] = count end
end
end end
ctx.shared.word_counts = wc -- 2. metadata_path gate.
if type(ctx.metadata_path) ~= "string" or ctx.metadata_path == "" then
error("word_count_eval.run requires ctx.metadata_path (path to the authored word_count.metadata.h).", 0)
end
-- 3. Load authored metadata. Generated .macs.h files are NOT scanned
-- (the canonical pass computes their counts from the just-built bodies after disk emission; see passes/components.lua).
local wc = duffle.load_word_counts(ctx.metadata_path)
-- 4. Assign the canonical count table. ONE assignment, no copy. The assignment creates no secondary alias.
corpus.word_counts = wc
return { outputs = {}, errors = {}, warnings = {} } return { outputs = {}, errors = {}, warnings = {} }
end end
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+51
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@@ -0,0 +1,51 @@
-- autoexec.lua - pcsx_debug_helper plugin entry point.
-- Packaged in scripts/pcsx_debug_helper.zip. Loaded by pcsx-redux via the -archive CLI flag (see scripts/launch_pcsx_debug.ps1).
--
-- Registers two web handlers for external CLI tools:
-- /api/v1/lua/gte - full GTE state (32 data + 32 control regs + PC)
-- /api/v1/lua/gp - GP state summary (screenshot endpoint + VRAM endpoint refs)
--
-- The GTE handler reads COP2 regs via PCSX.getRegisters().CP2D/CP2C.
-- The pcsx-redux gdb stub doesn't expose COP2, so this is the only way for external tools to see GTE state.
--
-- The GP handler is a thin pointer:
-- pcsx-redux's Lua API exposes only PCSX.GPU.takeScreenShot() (no GPUSTAT, no GP0/GP1 command log, no display state). For richer GP state, the existing web endpoints are the practical path:
-- /api/v1/state/still - PNG screenshot
-- /api/v1/gpu/vram/raw - VRAM raw bytes (1MB)
--
-- Companion: scripts/gdb/gdb_tape_atoms.gdb (covers GPRs + atom-aware stepping).
local function register_handlers()
if not PCSX.WebServer then PCSX.WebServer = {} end
if not PCSX.WebServer.Handlers then PCSX.WebServer.Handlers = {} end
-- ── GTE state ──
PCSX.WebServer.Handlers.gte = function(req)
local r = PCSX.getRegisters()
local out = { "pc=0x" .. string.format("%x", r.pc) }
for i = 0, 31 do
out[#out + 1] = string.format("D[%d]=0x%08x C[%d]=0x%08x",
i, r.CP2D.r[i], i, r.CP2C.r[i])
end
return table.concat(out, "\n")
end
-- ── GP state (pointer to existing endpoints) ──
-- pcsx-redux's Lua GPU API exposes only takeScreenShot(); no GPUSTAT / GP0 / GP1 command log / display state.
-- We point to the existing web endpoints that DO expose those (when the emulator is actually rendering. Paused-at-BP frames won't have a fresh frame).
PCSX.WebServer.Handlers.gp = function(req)
local out = {
"gpu_screenshot_png=http://localhost:8080/api/v1/state/still",
"vram_raw=http://localhost:8080/api/v1/gpu/vram/raw (1MB VRAM)",
"gpustat=NOT_AVAILABLE_VIA_LUA",
"gp_command_log=NOT_AVAILABLE_VIA_LUA (use pcsx-redux Debug > GPU Logger)",
"hint_run_emulator_unpaused_for_screenshot",
}
return table.concat(out, "\n")
end
end
local ok, err = pcall(register_handlers)
if ok then print("[pcsx_debug_helper] handlers registered: gte, gp")
else print("[pcsx_debug_helper] registration failed: " .. tostring(err))
end
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+1 -16
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@@ -39,13 +39,7 @@ pop-location
# ════════════════════════════════════════════════════════════════════════════ # ════════════════════════════════════════════════════════════════════════════
# PCSX-Redux — built via MSBuild (VS2022) # PCSX-Redux — built via MSBuild (VS2022)
#
# Requires: Visual Studio 2022 with the C++ desktop workload. # Requires: Visual Studio 2022 with the C++ desktop workload.
# The .vcxproj files target platform toolset v145, but VS2022 ships v143;
# we pass /p:PlatformToolset=v143 to retarget at build time (no file edits).
# NuGet packages (glfw, luajit.native, libFFmpeg-lite, x64sentry) are
# restored automatically by MSBuild on first build.
#
# Output: toolchain\pcsx-redux\vsprojects\x64\Debug\pcsx-redux.exe # Output: toolchain\pcsx-redux\vsprojects\x64\Debug\pcsx-redux.exe
# ════════════════════════════════════════════════════════════════════════════ # ════════════════════════════════════════════════════════════════════════════
@@ -65,8 +59,7 @@ $path_pcsx_sln = join-path $path_pcsx_redux 'vsprojects\pcsx-redux.sln'
& $msbuild_exe $path_pcsx_sln /p:Configuration=Release /p:Platform=x64 /p:PlatformToolset=v143 /m /v:minimal & $msbuild_exe $path_pcsx_sln /p:Configuration=Release /p:Platform=x64 /p:PlatformToolset=v143 /m /v:minimal
# Locate luajit via scoop. `luajit.exe` is on PATH via scoop's shim; # Locate luajit via scoop. `luajit.exe` is on PATH via scoop's shim;
# we use `scoop prefix` to find the install root for the include dir # we use `scoop prefix` to find the install root for the include dir (needed to compile lpeg against luajit's headers).
# (needed to compile lpeg against luajit's headers).
# If scoop or luajit is missing, fail fast with an actionable message. # If scoop or luajit is missing, fail fast with an actionable message.
$luajit_prefix = & scoop prefix luajit 2>$null $luajit_prefix = & scoop prefix luajit 2>$null
if (-not $luajit_prefix -or -not (Test-Path (Join-Path $luajit_prefix 'bin/luajit.exe'))) { if (-not $luajit_prefix -or -not (Test-Path (Join-Path $luajit_prefix 'bin/luajit.exe'))) {
@@ -87,7 +80,6 @@ if (-not $lua_inc_dir) {
# Generate lpeg.dll by compiling the 6 source files directly. # Generate lpeg.dll by compiling the 6 source files directly.
# `gcc` is on PATH (scoop's shim puts it there). # `gcc` is on PATH (scoop's shim puts it there).
# The source files: lpcap.c lpcode.c lpcset.c lpprint.c lptree.c lpvm.c # The source files: lpcap.c lpcode.c lpcset.c lpprint.c lptree.c lpvm.c
# (per the lpeg makefile — no `make.lua` template generator in this version).
# Link against luajit's import library (`libluajit-5.1.a`) for the Lua C API symbols (lua_*, luaL_*). # Link against luajit's import library (`libluajit-5.1.a`) for the Lua C API symbols (lua_*, luaL_*).
$luajit_lib_dir = Join-Path $luajit_prefix 'lib' $luajit_lib_dir = Join-Path $luajit_prefix 'lib'
$lpeg_sources = @('lpcap.c', 'lpcode.c', 'lpcset.c', 'lpprint.c', 'lptree.c', 'lpvm.c') $lpeg_sources = @('lpcap.c', 'lpcode.c', 'lpcset.c', 'lpprint.c', 'lptree.c', 'lpvm.c')
@@ -103,8 +95,6 @@ pop-location
# ════════════════════════════════════════════════════════════════════════════ # ════════════════════════════════════════════════════════════════════════════
# lfs (LuaFileSystem) — compiled from pcsx-redux's vendored luafilesystem source. # lfs (LuaFileSystem) — compiled from pcsx-redux's vendored luafilesystem source.
# Used by word_count_eval.lua :: scan_dir for native directory enumeration (~2ms)
# instead of spawning `dir /b /s` as a subprocess (~56ms).
# Source: toolchain/pcsx-redux/third_party/luafilesystem/src/lfs.c # Source: toolchain/pcsx-redux/third_party/luafilesystem/src/lfs.c
# Output: toolchain/lfs/lfs.dll # Output: toolchain/lfs/lfs.dll
# ════════════════════════════════════════════════════════════════════════════ # ════════════════════════════════════════════════════════════════════════════
@@ -118,11 +108,6 @@ $lfs_dll_import = join-path $luajit_lib_dir 'libluajit-5.1.dll.a'
# ════════════════════════════════════════════════════════════════════════════ # ════════════════════════════════════════════════════════════════════════════
# OpenBIOS — built from the PCSX-Redux source tree via make + mipsel-none-elf # OpenBIOS — built from the PCSX-Redux source tree via make + mipsel-none-elf
#
# OpenBIOS is an open-source PS1 BIOS implementation (no retail BIOS dump needed).
# It builds with the MIPS cross-toolchain (`mipsel-none-elf-gcc`, on PATH via the `mips` toolchain installer)
# + `make` (on PATH via scoop).
#
# Output: toolchain\pcsx-redux\src\mips\openbios\openbios.bin # Output: toolchain\pcsx-redux\src\mips\openbios\openbios.bin
# ════════════════════════════════════════════════════════════════════════════ # ════════════════════════════════════════════════════════════════════════════