41 changed files with 3192 additions and 774 deletions
+1
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@@ -20,3 +20,4 @@ toolchain/lpeg
scratch
toolchain/libpsn00b
scripts/pcsx_debug_helper.zip
+14
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@@ -0,0 +1,14 @@
#ifdef INTELLISENSE_DIRECTIVES
# pragma once
#endif
enum {
bios_init_pad_2 = 0x12,
bios_start_pad_2 = 0x13,
bios_flushcache = 0x44,
bios_table_addr = 0xA0,
bios_btable_addr = 0xB0,
};
enum {
bios_pad_buffer_size = 0x22,
};
+20
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@@ -75,6 +75,26 @@
* ----------------------------------------------------------------------------*/
#define atom_reg /* atom_reg: opt the preceding enum entry into the DWARF registry */
// ----------------------------------------------------------------------------
// atom_auto_reg(atom, sym) — per-atom auto-allocated GPR binding.
// enum {
// atom_auto_reg(cube_g4_face, R_Fwdx), // expands to: R_Fwdx = R_Fwdx_Code /* atom_auto_reg: cube_g4_face */,
// atom_auto_reg(cube_g4_face, R_Eye_z) atom_type(S4), // atom_type chains after
// };
// (The macro IS the entire enum entry — no separate LHS=RHS. The `atom` scope is
// preserved in a trailing C-comment on the RHS so the Lua scanner can recover
// it after preprocessing strips the macro form. R_<Sym>_Code is resolved from gen/auto_reg.h which the .c file #include's before the enum declaration.)
#define atom_auto_reg(atom, sym) sym = sym ## _Code /* atom_auto_reg: atom */
// ----------------------------------------------------------------------------
// phase_auto_reg(phase, sym) — per-phase auto-allocated GPR binding.
// enum {
// phase_auto_reg(cube_g4, R_Temp0), // expands to: R_Temp0 = R_Temp0_Code /* phase_auto_reg: cube_g4 */,
// phase_auto_reg(cube_g4, R_Temp1),
// };
// (Same macro-as-enum-entry form as atom_auto_reg above; the `phase` scope is preserved in a trailing C-comment on the RHS for the Lua scanner to recover.)
#define phase_auto_reg(phase, sym) sym = sym ## _Code /* phase_auto_reg: phase */
/* ============================================================================
* atom_info :
* MipsAtom_(cube_tri) atom_info(
+7 -3
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@@ -28,8 +28,9 @@
#define internal static // internal
#define asm __asm__
#define align_(value) __attribute__((aligned (value))) // for easy alignment
#define A_(data) (& data)
#define align_(value) __attribute__((aligned (value))) // for easy alignment
#define align_(value) __attribute__((aligned (value))) // for easy alignment
#define C_(type,data) ((type)(data)) // for enforced precedence
#define expect_(x, y) __builtin_expect(x, y) // so compiler knows the common path
@@ -133,8 +134,8 @@ typedef __UINT32_TYPE__ TSet_(B4);
#define u4_v(value) C_(U4 V_*, value)
enum { false = 0, true = 1, true_overflow, };
#define u4_lo(value) ((value) & 0xFFFFU)
#define u4_hi(value) ((value) >> 12)
#define u4_lo(value) (u4_(value) & 0xFFFFU)
#define u4_hi(value) (u4_(value) >> (S_(U2) * 8))
typedef void Proc_(VoidFn) (void);
@@ -168,6 +169,8 @@ def_signed_ops(le, <=)
#undef def_signed_ops
#undef def_signed_op
// Unused, we arent' doing any C-like asm since we have the asm dsl. We'll keep the non-generics if we somehow do.
#if 0
#define def_generic_sop(op, a, ...) _Generic((a), U1: op ## _s1, U2: op ## _s2, U4: op ## _s4) (a, __VA_ARGS__)
#define add_s(a,b) def_generic_sop(add,a,b)
#define sub_s(a,b) def_generic_sop(sub,a,b)
@@ -177,6 +180,7 @@ def_signed_ops(le, <=)
#define ge_s(a,b) def_generic_sop(ge, a,b)
#define le_s(a,b) def_generic_sop(le, a,b)
#undef def_generic_sop
#endif
#define alignas _Alignas
#define alignof _Alignof
+78 -15
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@@ -14,7 +14,9 @@
// source: C:\projects\Pikuma\ps1\code\duffle\pad.h
// source: C:\projects\Pikuma\ps1\code\duffle\dsl.atom.h
// source: C:\projects\Pikuma\ps1\code\duffle\lottes_tape.h
// source: C:\projects\Pikuma\ps1\code\duffle\bios.h
// source: C:\projects\Pikuma\ps1\code\duffle\psyq.h
// source: C:\projects\Pikuma\ps1\code\duffle\pad.c
// source: C:\projects\Pikuma\ps1\code\duffle\math.atom.c
// source: C:\projects\Pikuma\ps1\code\duffle\mips.atom.c
// source: C:\projects\Pikuma\ps1\code\duffle\gte.atom.c
@@ -68,6 +70,27 @@ WORD_COUNT(mac_load_v2s2, 2)
, store_half(rt_y, base, offset + O_(V2_S2,y))
WORD_COUNT(mac_store_v2s2, 2)
/* atom_dbg_skip */
#define mac_load_v3s4(rs_x, rs_y, rs_z, r_base, offset) \
load_word( rs_x, r_base, O_(V3_S4,x)) \
, load_word( rs_y, r_base, O_(V3_S4,y)) \
, load_word( rs_z, r_base, O_(V3_S4,z))
WORD_COUNT(mac_load_v3s4, 3)
/* atom_dbg_skip */
#define mac_store_v3s4(rt_x, rt_y, rt_z, base, offset) \
store_word(rt_x, base, offset + O_(V3_S4,x)) \
, store_word(rt_y, base, offset + O_(V3_S4,y)) \
, store_word(rt_z, base, offset + O_(V3_S4,z))
WORD_COUNT(mac_store_v3s4, 3)
/* atom_dbg_skip */
#define mac_sub_v3s4(rds_x, rds_y, rds_z, rt_x, rt_y, rt_z) \
sub_s(rds_x, rds_x, rt_x) \
, sub_s(rds_y, rds_y, rt_y) \
, sub_s(rds_z, rds_z, rt_z)
WORD_COUNT(mac_sub_v3s4, 3)
/* atom_dbg_skip */
#define mac_store_rects2(rt_x, rt_y, rt_width, rt_height, base, offset) \
store_half(rt_x, base, offset + O_(Rect_S2,x)) \
@@ -124,6 +147,34 @@ WORD_COUNT(mac_gte_store_g4_p012, 3)
gte_sw(C2_SXY2, r_primitive_cursor, O_(Poly_G4,p3))
WORD_COUNT(mac_gte_store_g4_p3, 1)
/* atom_dbg_skip */
#define mac_gte_sqr_v3(r_sx, r_sy, r_sz, r_sq_x, r_sq_y, r_sq_z) \
gte_mv_to_data_r(r_sx, C2_IR1) \
, gte_mv_to_data_r(r_sy, C2_IR2) \
, gte_mv_to_data_r(r_sz, C2_IR3) \
, nop \
, gte_cmdw_sqr \
, gte_mv_from_data_r(r_sq_x, C2_MAC1) \
, gte_mv_from_data_r(r_sq_y, C2_MAC2) \
, gte_mv_from_data_r(r_sq_z, C2_MAC3)
WORD_COUNT(mac_gte_sqr_v3, 8)
/* atom_dbg_skip */
#define mac_gte_gpf_scale(r_sx, r_sy, r_sz, r_recip_est, r_shift, r_dx, r_dy, r_dz) \
gte_mv_to_data_r(r_recip_est, C2_IR0) \
, gte_mv_to_data_r(r_sx, C2_IR1) \
, gte_mv_to_data_r(r_sy, C2_IR2) \
, gte_mv_to_data_r(r_sz, C2_IR3) \
, nop2 /* retire IR0..IR3 → GPF input pre-fill (matches libgte 0x80016134..0x80016138) */ \
, gte_cmdw_gpf \
, gte_mv_from_data_r(r_dx, C2_MAC1) \
, gte_mv_from_data_r(r_dy, C2_MAC2) \
, gte_mv_from_data_r(r_dz, C2_MAC3) \
, shift_aright_var(r_dx, r_dx, r_shift) \
, shift_aright_var(r_dy, r_dy, r_shift) \
, shift_aright_var(r_dz, r_dz, r_shift)
WORD_COUNT(mac_gte_gpf_scale, 13)
#define mac_gcmd_push(cmd, reg_transfer, reg_base, port) \
load_upper_i(reg_transfer, cmd >> 16) \
, or_i_self( reg_transfer, cmd & 0xFFFF) \
@@ -156,29 +207,41 @@ WORD_COUNT(mac_format_f3_color, 3)
, mac_pack_color_word(r_prim_cursor, O_(Poly_G4,c3), 0, r3,g3,b3)
WORD_COUNT(mac_format_g4_color, 12)
#define mac_insert_ot_tag_f3(r_ot_base, r_prim_cursor) \
#define mac_insert_ot_tag(r_ot_base, r_prim_cursor, poly_size) \
shift_lleft( R_T1, R_T1, S_(U4)/2) /* T1 = otz * S_(U4) (otz arg is implicit R_T1) */ \
, add_u_self( R_T1, r_ot_base) /* T1 = & OrderingTable[OTZ] */ \
, load_word( R_AT, R_T1, O_(PolyTag,code)) /* AT = old_ot_head */ \
, load_upper_i(R_V0, (S_(Poly_F3)/S_(U4) - S_(PolyTag)/S_(U4)) << PolyTag_len_bits) /* V0 = (5 - 1) << 24 = 4 << 24 */ \
, load_upper_i(R_V0, (poly_size/S_(U4) - S_(PolyTag)/S_(U4)) << PolyTag_len_bits) \
, mask_upper( R_AT, R_AT, S_(PolyTag_len_bits)) /* Strip upper 8 bits (length from prev cell) → keep only low 24 */ \
, or_u( R_AT, R_AT, R_V0) /* Merge length */ \
, store_word( R_AT, r_prim_cursor, O_(PolyTag,code)) /* prim->tag = packed(prim_length, old_addr) */ \
, shift_lleft( R_AT, r_prim_cursor, S_(PolyTag_len_bits)) /* AT = (prim_length << 24) | old_addr */ \
, shift_lright(R_AT, R_AT, S_(PolyTag_len_bits)) \
, store_word( R_AT, R_T1, O_(PolyTag,code)) /* OrderingTable[OTZ] = PrimCursor */
WORD_COUNT(mac_insert_ot_tag_f3, 11)
WORD_COUNT(mac_insert_ot_tag, 11)
#define mac_insert_ot_tag_g4(r_ot_base, r_prim_cursor) \
shift_lleft( R_T1, R_T1, S_(U4)/2) /* T1 = otz * S_(U4) (otz arg is implicit R_T1) */ \
, add_u_self( R_T1, r_ot_base) /* T1 = & OrderingTable[OTZ] */ \
, load_word( R_AT, R_T1, O_(PolyTag,code)) /* AT = old_ot_head */ \
, load_upper_i(R_V0, (S_(Poly_G4)/S_(U4) - S_(PolyTag)/S_(U4)) << PolyTag_len_bits) /* V0 = (9 - 1) << 24 = 8 << 24 */ \
, mask_upper( R_AT, R_AT, S_(PolyTag_len_bits)) /* Strip upper 8 bits (length from prev cell) → keep only low 24 */ \
, or_u( R_AT, R_AT, R_V0) /* Merge length */ \
, store_word( R_AT, r_prim_cursor, O_(PolyTag,code)) /* prim->tag = packed(prim_length, old_addr) */ \
, shift_lleft( R_AT, r_prim_cursor, S_(PolyTag_len_bits)) /* AT = (prim_length << 24) | old_addr */ \
, shift_lright(R_AT, R_AT, S_(PolyTag_len_bits)) \
, store_word( R_AT, R_T1, O_(PolyTag,code)) /* OrderingTable[OTZ] = PrimCursor */
WORD_COUNT(mac_insert_ot_tag_g4, 11)
/* atom_dbg_skip */
#define mac_pad_set_centered_axes(r_state, r_scratch) \
load_upper_i(r_scratch, (PadAxis_Centered_Word >> 16) & 0xFFFF) \
, or_i_self( r_scratch, PadAxis_Centered_Word & 0xFFFF) \
, store_word( r_scratch, r_state, O_(PadState,axes))
WORD_COUNT(mac_pad_set_centered_axes, 3)
/* atom_dbg_skip */
#define mac_pad_set_id_byte(r_state, r_id, id_value) \
add_ui( r_id, R_0, id_value) \
, store_byte(r_id, r_state, O_(PadState,id))
WORD_COUNT(mac_pad_set_id_byte, 2)
/* atom_dbg_skip */
#define mac_pad_set_status(r_tmp, r_state, pad_status) \
add_ui( r_tmp, R_0, pad_status) \
, store_word(r_tmp, r_state, O_(PadState,status))
WORD_COUNT(mac_pad_set_status, 2)
/* atom_dbg_skip */
#define mac_pad_store_inverted_buttons(r_buttons, r_pad_state) \
nor_u( r_buttons, r_buttons, R_0) \
, store_half( r_buttons, r_pad_state, O_(PadState, buttons))
WORD_COUNT(mac_pad_store_inverted_buttons, 2)
+22 -10
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@@ -11,7 +11,9 @@
// source: C:\projects\Pikuma\ps1\code\duffle\pad.h
// source: C:\projects\Pikuma\ps1\code\duffle\dsl.atom.h
// source: C:\projects\Pikuma\ps1\code\duffle\lottes_tape.h
// source: C:\projects\Pikuma\ps1\code\duffle\bios.h
// source: C:\projects\Pikuma\ps1\code\duffle\psyq.h
// source: C:\projects\Pikuma\ps1\code\duffle\pad.c
// source: C:\projects\Pikuma\ps1\code\duffle\math.atom.c
// source: C:\projects\Pikuma\ps1\code\duffle\mips.atom.c
// source: C:\projects\Pikuma\ps1\code\duffle\gte.atom.c
@@ -23,17 +25,27 @@
#pragma region duffle
// --- atom: pad_bios_snapshot (78 words) ---
// --- atom: normalize_v3s4 (62 words) ---
#define _atom_offset_snap_root_skip_disconnected 8
#define _atom_offset_disconnected_snap_end 61
#define _atom_offset_case_2_id_dispatch 8
#define _atom_offset_pending_snap_end 51
#define _atom_offset_id_dispatch_try_analog_stick 11
#define _atom_offset_id_dispatch_snap_end 38
#define _atom_offset_try_analog_stick_try_analog_pad 12
#define _atom_offset_analog_stick_snap_end 24
#define _atom_offset_try_analog_pad_try_unsupported 11
#define _atom_offset_srav_path_aligned_done 6
#define _atom_offset_aligned_done_srav_path 1
enum {
atom_offset_srav_path_aligned_done = _atom_offset_srav_path_aligned_done,
atom_offset_aligned_done_srav_path = _atom_offset_aligned_done_srav_path,
};
// --- atom: pad_bios_snapshot (84 words) ---
#define _atom_offset_snap_root_skip_disconnected 10
#define _atom_offset_disconnected_snap_end 65
#define _atom_offset_case_2_id_dispatch 9
#define _atom_offset_pending_snap_end 54
#define _atom_offset_id_dispatch_try_analog_stick 12
#define _atom_offset_id_dispatch_snap_end 40
#define _atom_offset_try_analog_stick_try_analog_pad 13
#define _atom_offset_analog_stick_snap_end 25
#define _atom_offset_try_analog_pad_try_unsupported 12
#define _atom_offset_analog_pad_snap_end 10
enum {
+12 -34
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@@ -8,54 +8,47 @@ ATOM_FILE_DEBUGGER_LINE_MARKER(gp_atom_c);
#pragma region MACs (Mips Atom Components)
FI_ Slice_MipsCode ac_gcmd_push(U4 cmd, U4 reg_transfer, U4 reg_base, U2 port)
MipsAtomComp_Proc_(ac_gcmd_push, {
FI_ Slice_MipsCode ac_gcmd_push(MipsAtomBuilder_R ab, U4 cmd, U4 reg_transfer, U4 reg_base, U2 port)
MipsAtomComp_Proc_(ac_gcmd_push, ab, {
load_upper_i(reg_transfer, cmd >> 16),
or_i_self( reg_transfer, cmd & 0xFFFF),
store_word( reg_transfer, reg_base, port),
})
FI_ Slice_MipsCode ac_store_rgb8(U1 rr, U1 rg, U1 rb, U4 base, U4 offset) atom_dbg_skip MipsAtomComp_Proc_(ac_store_rgb8, {
FI_ Slice_MipsCode ac_store_rgb8(MipsAtomBuilder_R ab, U1 rr, U1 rg, U1 rb, U4 base, U4 offset) atom_dbg_skip MipsAtomComp_Proc_(ac_store_rgb8, ab, {
store_byte(rr, base, offset + O_(RGB8,r)),
store_byte(rg, base, offset + O_(RGB8,g)),
store_byte(rb, base, offset + O_(RGB8,b)),
})
/* Words: 3; Emits one (cmd|color) word to R_PrimCursor at the given
* byte offset. Internal helper used by the *_format_*_color macros. */
FI_ Slice_MipsCode ac_pack_color_word(U4 r_base, U4 off, U4 cmd, U1 r, U1 g, U1 b)
atom_dbg_skip MipsAtomComp_Proc_(ac_pack_color_word, {
FI_ Slice_MipsCode ac_pack_color_word(MipsAtomBuilder_R ab, U4 r_base, U4 off, U4 cmd, U1 r, U1 g, U1 b)
atom_dbg_skip MipsAtomComp_Proc_(ac_pack_color_word, ab, {
load_upper_i(R_AT, (cmd) << 8 | (b)),
or_i_self( R_AT, ((g) << 8) | (r)),
store_word( R_AT, r_base, (off)),
})
/* Words: 3; Emits the F3 command+color word (cmd byte | BLUE | GREEN | RED)
* Args: _r, _g, _b are 8-bit RGB byte values (not raw 16-bit fields). */
FI_ Slice_MipsCode ac_format_f3_color(U4 r_base, U1 r, U1 g, U1 b)
atom_dbg_skip MipsAtomComp_Proc_(ac_format_f3_color, { mac_pack_color_word(r_base, O_(Poly_F3,color), gp0_cmd_poly_f3, r, g, b) })
FI_ Slice_MipsCode ac_format_f3_color(MipsAtomBuilder_R ab, U4 r_base, U1 r, U1 g, U1 b)
atom_dbg_skip MipsAtomComp_Proc_(ac_format_f3_color, ab, { mac_pack_color_word(r_base, O_(Poly_F3,color), gp0_cmd_poly_f3, r, g, b) })
/* Words: 12; Emits the four (code|color) words of a Poly_G4.
* Args: rN,gN,bN are 8-bit RGB byte values for each of the 4 vertices. */
FI_ Slice_MipsCode ac_format_g4_color(U4 r_prim_cursor,
FI_ Slice_MipsCode ac_format_g4_color(MipsAtomBuilder_R ab, U4 r_prim_cursor,
U1 r0, U1 g0, U1 b0,
U1 r1, U1 g1, U1 b1,
U1 r2, U1 g2, U1 b2,
U1 r3, U1 g3, U1 b3)
MipsAtomComp_Proc_(ac_format_g4_color, {
MipsAtomComp_Proc_(ac_format_g4_color, ab, {
mac_pack_color_word(r_prim_cursor, O_(Poly_G4,c0), gp0_cmd_poly_g4, r0,g0,b0),
mac_pack_color_word(r_prim_cursor, O_(Poly_G4,c1), 0, r1,g1,b1),
mac_pack_color_word(r_prim_cursor, O_(Poly_G4,c2), 0, r2,g2,b2),
mac_pack_color_word(r_prim_cursor, O_(Poly_G4,c3), 0, r3,g3,b3),
})
/* Words: 11; Correctly inserts a primitive into the Ordering Table linked list.
* Hardcoded for Poly_F3 (5 words). For Poly_G4, use ac_insert_ot_tag_g4. */
I_ Slice_MipsCode ac_insert_ot_tag_f3(U4 r_ot_base, U4 r_prim_cursor) MipsAtomComp_Proc_(ac_insert_ot_tag_f3, {
/* Words: 11; Correctly inserts a primitive into the Ordering Table linked list. */
I_ Slice_MipsCode ac_insert_ot_tag(MipsAtomBuilder_R ab, U4 r_ot_base, U4 r_prim_cursor, U4 poly_size) MipsAtomComp_Proc_(ac_insert_ot_tag, ab, {
shift_lleft( R_T1, R_T1, S_(U4)/2), // T1 = otz * S_(U4) (otz arg is implicit R_T1)
add_u_self( R_T1, r_ot_base), // T1 = & OrderingTable[OTZ]
load_word( R_AT, R_T1, O_(PolyTag,code)), // AT = old_ot_head
load_upper_i(R_V0, (S_(Poly_F3)/S_(U4) - S_(PolyTag)/S_(U4)) << PolyTag_len_bits), // V0 = (5 - 1) << 24 = 4 << 24
load_upper_i(R_V0, (poly_size/S_(U4) - S_(PolyTag)/S_(U4)) << PolyTag_len_bits),
mask_upper( R_AT, R_AT, S_(PolyTag_len_bits)), // Strip upper 8 bits (length from prev cell) → keep only low 24
or_u( R_AT, R_AT, R_V0), // Merge length
store_word( R_AT, r_prim_cursor, O_(PolyTag,code)), // prim->tag = packed(prim_length, old_addr)
@@ -64,19 +57,4 @@ I_ Slice_MipsCode ac_insert_ot_tag_f3(U4 r_ot_base, U4 r_prim_cursor) MipsAtomCo
store_word( R_AT, R_T1, O_(PolyTag,code)), // OrderingTable[OTZ] = PrimCursor
})
/* Words: 11; Correctly inserts a primitive into the Ordering Table linked list.
* Hardcoded for Poly_G4 (9 words). For Poly_F3, use ac_insert_ot_tag_f3. */
I_ Slice_MipsCode ac_insert_ot_tag_g4(U4 r_ot_base, U4 r_prim_cursor) MipsAtomComp_Proc_(ac_insert_ot_tag_g4, {
shift_lleft( R_T1, R_T1, S_(U4)/2), // T1 = otz * S_(U4) (otz arg is implicit R_T1)
add_u_self( R_T1, r_ot_base), // T1 = & OrderingTable[OTZ]
load_word( R_AT, R_T1, O_(PolyTag,code)), // AT = old_ot_head
load_upper_i(R_V0, (S_(Poly_G4)/S_(U4) - S_(PolyTag)/S_(U4)) << PolyTag_len_bits), // V0 = (9 - 1) << 24 = 8 << 24
mask_upper( R_AT, R_AT, S_(PolyTag_len_bits)), // Strip upper 8 bits (length from prev cell) → keep only low 24
or_u( R_AT, R_AT, R_V0), // Merge length
store_word( R_AT, r_prim_cursor, O_(PolyTag,code)), // prim->tag = packed(prim_length, old_addr)
shift_lleft( R_AT, r_prim_cursor, S_(PolyTag_len_bits)), // AT = (prim_length << 24) | old_addr
shift_lright(R_AT, R_AT, S_(PolyTag_len_bits)),
store_word( R_AT, R_T1, O_(PolyTag,code)), // OrderingTable[OTZ] = PrimCursor
})
#pragma endregion MACs (Mips Atom Components)
+229 -12
View File
@@ -11,7 +11,7 @@ ATOM_FILE_DEBUGGER_LINE_MARKER(gte_atom_c);
#pragma region MACs (Mips Atom Components)
/* Words: 3; Loads 3 S2 indices from the face array */
FI_ Slice_MipsCode ac_load_tri_indices(U4 r_face_cusor, U4 r_i0, U4 r_i1, U4 r_i2) atom_dbg_skip MipsAtomComp_Proc_(ac_load_tri_indices, {
FI_ Slice_MipsCode ac_load_tri_indices(MipsAtomBuilder_R ab, U4 r_face_cusor, U4 r_i0, U4 r_i1, U4 r_i2) atom_dbg_skip MipsAtomComp_Proc_(ac_load_tri_indices, ab, {
load_half_u(r_i0, r_face_cusor, 0 * S_(S2)),
load_half_u(r_i1, r_face_cusor, 1 * S_(S2)),
load_half_u(r_i2, r_face_cusor, 2 * S_(S2)),
@@ -19,14 +19,14 @@ FI_ Slice_MipsCode ac_load_tri_indices(U4 r_face_cusor, U4 r_i0, U4 r_i1, U4 r_i
/* Words: 3; Stores the 3 transformed (V2_S2 screen) vertices to the F3.
* PIPELINE: post-RTPT (SXY0=v0.screen, SXY1=v1.screen, SXY2=v2.screen). */
FI_ Slice_MipsCode ac_gte_store_f3(U4 r_primitive_cursor) atom_dbg_skip MipsAtomComp_Proc_(ac_gte_store_f3, {
FI_ Slice_MipsCode ac_gte_store_f3(MipsAtomBuilder_R ab, U4 r_primitive_cursor) atom_dbg_skip MipsAtomComp_Proc_(ac_gte_store_f3, ab, {
gte_sw(C2_SXY0, r_primitive_cursor, O_(Poly_F3,p0)),
gte_sw(C2_SXY1, r_primitive_cursor, O_(Poly_F3,p1)),
gte_sw(C2_SXY2, r_primitive_cursor, O_(Poly_F3,p2)),
})
/* Words: 18; Translates indices to vertex addresses and pushes them to GTE */
I_ Slice_MipsCode ac_gte_load_tri_verts(U4 r_vert_base, U4 r_v0, U4 r_v1, U4 r_v2) atom_dbg_skip MipsAtomComp_Proc_(ac_gte_load_tri_verts, {
I_ Slice_MipsCode ac_gte_load_tri_verts(MipsAtomBuilder_R ab, U4 r_vert_base, U4 r_v0, U4 r_v1, U4 r_v2) atom_dbg_skip MipsAtomComp_Proc_(ac_gte_load_tri_verts, ab, {
shift_lleft(R_AT, r_v0, v3s2_byteoff), add_u_self(R_AT, r_vert_base), load_word(R_V0, R_AT, O_(V3_S2,x)), load_word(R_V1, R_AT, O_(V3_S2,z)), gte_mv_to_data_r(R_V0, C2_VXY0), gte_mv_to_data_r(R_V1, C2_VZ0),
shift_lleft(R_AT, r_v1, v3s2_byteoff), add_u_self(R_AT, r_vert_base), load_word(R_V0, R_AT, O_(V3_S2,x)), load_word(R_V1, R_AT, O_(V3_S2,z)), gte_mv_to_data_r(R_V0, C2_VXY1), gte_mv_to_data_r(R_V1, C2_VZ1),
shift_lleft(R_AT, r_v2, v3s2_byteoff), add_u_self(R_AT, r_vert_base), load_word(R_V0, R_AT, O_(V3_S2,x)), load_word(R_V1, R_AT, O_(V3_S2,z)), gte_mv_to_data_r(R_V0, C2_VXY2), gte_mv_to_data_r(R_V1, C2_VZ2),
@@ -37,7 +37,7 @@ I_ Slice_MipsCode ac_gte_load_tri_verts(U4 r_vert_base, U4 r_v0, U4 r_v1, U4 r_v
* PIPELINE: post-RTPT, pre-RTPS (SXY0=v0.screen, SXY1=v1.screen, SXY2=v2.screen).
* MUST be called BEFORE V3-RTPS, otherwise SXY0/1/2 get overwritten with v3
* (RTPS writes only to SXY2, but to keep the three registers aligned with v0/v1/v2 you must store before RTPS). */
FI_ Slice_MipsCode ac_gte_store_g4_p012(U4 r_primitive_cursor) atom_dbg_skip MipsAtomComp_Proc_(ac_gte_store_g4_p012, {
FI_ Slice_MipsCode ac_gte_store_g4_p012(MipsAtomBuilder_R ab, U4 r_primitive_cursor) atom_dbg_skip MipsAtomComp_Proc_(ac_gte_store_g4_p012, ab, {
gte_sw(C2_SXY0, r_primitive_cursor, O_(Poly_G4,p0)),
gte_sw(C2_SXY1, r_primitive_cursor, O_(Poly_G4,p1)),
gte_sw(C2_SXY2, r_primitive_cursor, O_(Poly_G4,p2)),
@@ -47,22 +47,239 @@ FI_ Slice_MipsCode ac_gte_store_g4_p012(U4 r_primitive_cursor) atom_dbg_skip Mip
* PIPELINE: post-RTPS (SXY2 holds v3.screen because RTPS writes its single-vertex result to SXY2;
* SXY0 still holds v0.screen from the earlier RTPT.
*/
FI_ Slice_MipsCode ac_gte_store_g4_p3(U4 r_primitive_cursor) atom_dbg_skip MipsAtomComp_Proc_(ac_gte_store_g4_p3, { gte_sw(C2_SXY2, r_primitive_cursor, O_(Poly_G4,p3)) })
FI_ Slice_MipsCode ac_gte_store_g4_p3(MipsAtomBuilder_R ab, U4 r_primitive_cursor) atom_dbg_skip MipsAtomComp_Proc_(ac_gte_store_g4_p3, ab, { gte_sw(C2_SXY2, r_primitive_cursor, O_(Poly_G4,p3)) })
/* ─── STAGE 1 of normalize: SQR + mfc2 MAC1/2/3 ───
* Emits squared magnitude per component (in MAC1/2/3) into caller-provided scratch regs.
* Stage 2 of normalize consumes these directly.
* Words: 8. Clobbers: IR1/2/3, MAC1/2/3. Uses gte_cmdw_sqr (sf=0, lm=1). */
FI_ Slice_MipsCode ac_gte_sqr_v3(MipsAtomBuilder_R ab, U4 r_sx, U4 r_sy, U4 r_sz, U4 r_sq_x, U4 r_sq_y, U4 r_sq_z) atom_dbg_skip MipsAtomComp_Proc_(ac_gte_sqr_v3, ab, {
gte_mv_to_data_r(r_sx, C2_IR1),
gte_mv_to_data_r(r_sy, C2_IR2),
gte_mv_to_data_r(r_sz, C2_IR3),
nop, gte_cmdw_sqr,
gte_mv_from_data_r(r_sq_x, C2_MAC1),
gte_mv_from_data_r(r_sq_y, C2_MAC2),
gte_mv_from_data_r(r_sq_z, C2_MAC3),
})
/* ─── STAGE 4 of normalize: mtc2 IR0..3 + GPF + mfc2 MAC + srav finalize ───
* Reusable standalone — given an IR0 = 1/|v| estimate (typically from a sqrtbl lookup) and a shift count
* (typically (31 - LZCR)/2), multiplies IR0*IR[i] via GPF and shifts right to produce the normalized output.
* Used standalone for "scale vector by scalar".
* Words: 11. Clobbers: IR0..3, MAC1..3. Uses gte_cmdw_gpf (sf=0, lm=0). */
FI_ Slice_MipsCode ac_gte_gpf_scale(MipsAtomBuilder_R ab, U4 r_sx, U4 r_sy, U4 r_sz, U4 r_recip_est, U4 r_shift, U4 r_dx, U4 r_dy, U4 r_dz) atom_dbg_skip MipsAtomComp_Proc_(ac_gte_gpf_scale, ab, {
gte_mv_to_data_r(r_recip_est, C2_IR0),
gte_mv_to_data_r(r_sx, C2_IR1),
gte_mv_to_data_r(r_sy, C2_IR2),
gte_mv_to_data_r(r_sz, C2_IR3),
nop2, /* retire IR0..IR3 → GPF input pre-fill (matches libgte 0x80016134..0x80016138) */
gte_cmdw_gpf,
gte_mv_from_data_r(r_dx, C2_MAC1),
gte_mv_from_data_r(r_dy, C2_MAC2),
gte_mv_from_data_r(r_dz, C2_MAC3),
shift_aright_var(r_dx, r_dx, r_shift),
shift_aright_var(r_dy, r_dy, r_shift),
shift_aright_var(r_dz, r_dz, r_shift),
})
#pragma endregion MACs (Mips Atom Components)
#pragma region Bsked Atoms
#pragma region Atom Procs
typedef Struct_(Binds_SetGteWorld) {
M3_S2* transform;
/* ─── Local copy of PSYQ's sqrtbl (1/sqrt lookup table for VectorNormal). ───
* Source: PSYQ 4.7 libgte sqrtbl at 0x800185B4 in hello_camera.elf.
* objdump -s --start-address=0x800185B4 --stop-address=0x800185F4 hello_camera.elf
* → 192 entries × 16-bit signed, in 1.12 fixed-point (max value 0x1000 = 1.0).
*
* Data is identical to the libgte original (byte-for-byte verified).
*
* ─── Per-entry semantics (decoded from libgte msc02 VectorNormal) ───
* Each entry is `1/sqrt(x)` in 1.12 fixed point (value / 4096).
* The 192 entries span 4 octaves of the input magnitude, with 48 entries per octave:
* Octave 0 (entries 0- 47): mantissa in [0x8000, 0x10000) output ~[1.000, 0.707]
* Octave 1 (entries 48- 95): mantissa in [0x10000, 0x20000) output ~[0.707, 0.500]
* Octave 2 (entries 96-143): mantissa in [0x20000, 0x40000) output ~[0.500, 0.354]
* Octave 3 (entries144-191): mantissa in [0x40000, 0x80000) output ~[0.354, 0.251]
* Within each octave, 8 sub-entries interpolate over the 8 fractional bits of the mantissa
* (the byte `(0x80 | (i mod 8))` for the lower-byte of the aligned value).
* Sampling the first value of each octave:
* [0] 0x1000 = 1.0000 ; 1 / sqrt(1.0000)
* [48] 0x0e4f = 0.8940 ; 1 / sqrt(1.2500)
* [96] 0x0d10 = 0.8164 ; 1 / sqrt(1.5000)
* [144] 0x0c0a = 0.7520 ; 1 / sqrt(1.7500)
* And representative sub-entries within octave 0 (mantissa in [0x8000, 0x8100)):
* [0] 0x1000 = 1.0000 ; 1 / sqrt(0x8000)
* [1] 0x0fe0 = 0.9922 ; 1 / sqrt(0x8100)
* [2] 0x0fc1 = 0.9846 ; 1 / sqrt(0x8200)
* [3] 0x0fa3 = 0.9773 ; 1 / sqrt(0x8300)
* [4] 0x0f85 = 0.9700 ; 1 / sqrt(0x8400)
* [5] 0x0f68 = 0.9629 ; 1 / sqrt(0x8500)
* [6] 0x0f4c = 0.9561 ; 1 / sqrt(0x8600)
* [7] 0x0f30 = 0.9492 ; 1 / sqrt(0x8700)
*
* The algorithm's `addi -64 / sll 1 / lh` selects the entry at `(aligned - 64) * 2` for the case where `aligned` has its top bit at bit 24.
* After the sllv/srav pair, `aligned` always lands in `[0x80, 0x100)`
* (with top bit at bit 24 → after `sub $aligned - 64`, the index sits in `[0x40, 0x80) * 2 = [0x80, 0x100)` bytes = entries [64, 128) within the sqrtbl).
* The earlier 64 entries (octave 0) are reached when the magnitude after shifting puts the top bit below bit 24 (the `sllv` branch),
* and the load upper_halves of the table bracket the input range.
* The later 64 entries (octaves 2-3) are the `srav` branch when the magnitude's top bit is well above bit 24.
*
* 192-entry table is reproduced verbatim from libgte (verified against libpsn00b/psxgte/vector.s:100-123 — 24 rows × 8 halfwords, last entry 0x0804). */
internal S2 const gte_normalize_sqr_tbl[192] align_(2) = {
0x1000, 0x0fe0, 0x0fc1, 0x0fa3, 0x0f85, 0x0f68, 0x0f4c, 0x0f30,
0x0f15, 0x0efb, 0x0ee1, 0x0ec7, 0x0eae, 0x0e96, 0x0e7e, 0x0e66,
0x0e4f, 0x0e38, 0x0e22, 0x0e0c, 0x0df7, 0x0de2, 0x0dcd, 0x0db9,
0x0da5, 0x0d91, 0x0d7e, 0x0d6b, 0x0d58, 0x0d45, 0x0d33, 0x0d21,
0x0d10, 0x0cff, 0x0cee, 0x0cdd, 0x0ccc, 0x0cbc, 0x0cac, 0x0c9c,
0x0c8d, 0x0c7d, 0x0c6e, 0x0c5f, 0x0c51, 0x0c42, 0x0c34, 0x0c26,
0x0c18, 0x0c0a, 0x0bfd, 0x0bef, 0x0be2, 0x0bd5, 0x0bc8, 0x0bbb,
0x0baf, 0x0ba2, 0x0b96, 0x0b8a, 0x0b7e, 0x0b72, 0x0b67, 0x0b5b,
0x0b50, 0x0b45, 0x0b39, 0x0b2e, 0x0b24, 0x0b19, 0x0b0e, 0x0b04,
0x0af9, 0x0aef, 0x0ae5, 0x0adb, 0x0ad1, 0x0ac7, 0x0abd, 0x0ab4,
0x0aaa, 0x0aa1, 0x0a97, 0x0a8e, 0x0a85, 0x0a7c, 0x0a73, 0x0a6a,
0x0a61, 0x0a59, 0x0a50, 0x0a47, 0x0a3f, 0x0a37, 0x0a2e, 0x0a26,
0x0a1e, 0x0a16, 0x0a0e, 0x0a06, 0x09fe, 0x09f6, 0x09ef, 0x09e7,
0x09e0, 0x09d8, 0x09d1, 0x09c9, 0x09c2, 0x09bb, 0x09b4, 0x09ad,
0x09a5, 0x099e, 0x0998, 0x0991, 0x098a, 0x0983, 0x097c, 0x0976,
0x096f, 0x0969, 0x0962, 0x095c, 0x0955, 0x094f, 0x0949, 0x0943,
0x093c, 0x0936, 0x0930, 0x092a, 0x0924, 0x091e, 0x0918, 0x0912,
0x090d, 0x0907, 0x0901, 0x08fb, 0x08f6, 0x08f0, 0x08eb, 0x08e5,
0x08e0, 0x08da, 0x08d5, 0x08cf, 0x08ca, 0x08c5, 0x08bf, 0x08ba,
0x08b5, 0x08b0, 0x08ab, 0x08a6, 0x08a1, 0x089c, 0x0897, 0x0892,
0x088d, 0x0888, 0x0883, 0x087e, 0x087a, 0x0875, 0x0870, 0x086b,
0x0867, 0x0862, 0x085e, 0x0859, 0x0855, 0x0850, 0x084c, 0x0847,
0x0843, 0x083e, 0x083a, 0x0836, 0x0831, 0x082d, 0x0829, 0x0824,
0x0820, 0x081c, 0x0818, 0x0814, 0x0810, 0x080c, 0x0808, 0x0804,
};
internal MipsAtom_(set_gte_world) atom_info(
atom_bind(Binds_SetGteWorld)
/* ─── Full normalize (all 4 stages inline) ───
* Generic 4-stage GTE normalize (SQR → sum+LZCR → align+sqrtbl → GPF+srav).
*
* Parameterized by caller-provided scratch base + src/dst offsets.
* The caller passes r_src_offset and r_dst_offset as compile-time constants
* (typically derived from O_ macros in the caller's struct schema, e.g., `O_(CallerBundleScratch, fwd)`).
*
* This design lets any caller (with a scratch base + struct schema) use `normalize_v3s4_proc`
* without putting magic offsets in the C-side bundle helper — the offsets come from O_ macros at the call site.
*
* Body uses 9 GPRs (r_src_ptr..r_branch_tmp):
* r_src_ptr, r_dst_ptr : src/dst pointers (computed from r_scratch + caller offsets)
* r_tmp : scratch (reserved for misc use)
* r_mac1_scratch : MAC1 result scratch (before sum into r_recip_est)
* r_mac2_scratch : MAC2 result scratch (clobbered to IR1 in stage 4)
* r_recip_est : |v|² sum + shift-input + sqrtbl[index] (the main chain)
* r_lzcr : LZCR value (consumed by stage 3 alignment calc)
* r_shift : final srav amount (consumed by stage 4 shift_aright_var)
* r_branch_tmp : scratch (shift count, branch target, sqrtbl base addr)
*
* Atom_labels are srav_path / aligned_done
* (NOT namespaced — they're internal to this proc;
* the metaprogram's per-atom-name enum emission handles any collision across different atoms/files that share the same labels).
*
* Pool cost: 11 GPRs (well within the 9-10 caller-trash GPR budget when r_scratch is a wave-context carrier).
*
* Direct port of PSYQ libgte msc02.rel.text VectorNormal disassembly (0x800160a0..0x8001615c).
* Words: ~59 (matches libgte 0x800160a0..0x8001615c at +/- 0-2 words for BD-slot reshuffling).
* Sqrtbl: hardcoded to 0x800185B4 (libgte msc02.rel.data). Note: swapped to local.
* Pipeline: clobbers IR0..3, MAC1..3, LZCS, LZCR.
*/
/* MipsAtom_Proc_ wrapper: declares the static MipsCode[] body, then calls atombuilder_unroll(ab, ...) to copy the encoded instructions into the caller's MipsAtomBuilder arena. */
I_ void normalize_v3s4_proc(MipsAtomBuilder_R ab, U4 r_scratch /* GPR code: scratch base carrier (e.g., R_T4 = R_ResolveScratch) */
, U4 r_src_offset, U4 r_dst_offset /* GPR codes: PARAMETERIZED offsets (caller passes O_ macros) */
, U4 r_src_ptr, U4 r_dst_ptr, U4 r_tmp /* GPR codes: 3 scratch regs (src/dst computed + tmp) */
, U4 r_mac1_scratch, U4 r_mac2_scratch /* GPR codes: 2 more: MAC1/MAC2 scratch */
, U4 r_recip_est /* GPR code: |v|² sum + shift-input + sqrtbl[index] */
, U4 r_lzcr, U4 r_shift /* GPR codes: lzcr + final srav amount */
, U4 r_branch_tmp /* GPR code: scratch (shift count, branch target, lookup addr) */
)
MipsAtom_Proc_(normalize_v3s4, ab, {
add_si(r_src_ptr, r_scratch, r_src_offset), /* r_src_ptr = &src */
add_si(r_dst_ptr, r_scratch, r_dst_offset), /* r_dst_ptr = &dst */
nop,
/* Load src.x/y/z from r_src_ptr (caller-determined address) into r_mac2_scratch/r_recip_est/r_branch_tmp. */
load_word(r_mac2_scratch, r_src_ptr, O_(V3_S4,x)),
load_word(r_recip_est, r_src_ptr, O_(V3_S4,y)),
load_word(r_branch_tmp, r_src_ptr, O_(V3_S4,z)),
nop, /* load-delay */
/* Stage 1: mtc2 src → IR1/2/3, SQR fires. */
gte_mv_to_data_r(r_mac2_scratch, C2_IR1),
gte_mv_to_data_r(r_recip_est, C2_IR2),
gte_mv_to_data_r(r_branch_tmp, C2_IR3),
nop, gte_cmdw_sqr,
/* Stage 2: mfc2 MAC1/2/3, sum, mtc2 LZCS. */
gte_mv_from_data_r(r_mac1_scratch, C2_MAC1),
gte_mv_from_data_r(r_mac2_scratch, C2_MAC2),
gte_mv_from_data_r(r_lzcr, C2_MAC3),
nop,
add_u(r_lzcr, r_lzcr, r_mac2_scratch),
add_u(r_lzcr, r_lzcr, r_mac1_scratch),
gte_mv_to_data_r(r_lzcr, C2_LZCS),
nop2,
gte_mv_from_data_r(r_shift, C2_LZCR),
nop,
/* Stage 3: compute srav amount (r_lzcr) + align |v|² to bit 24. */
and_i( r_shift, r_shift, -2),
li_s( r_lzcr, 31),
sub_s( r_lzcr, r_lzcr, r_shift),
shift_aright(r_lzcr, r_lzcr, 1),
/* r_branch_tmp = LZCR - 24 (overwrites r_branch_tmp; src.z no longer needed after SQR) */
add_si( r_branch_tmp, r_shift, -24),
branch_lt_zero(r_branch_tmp, atom_offset(srav_path, aligned_done)), nop,
jump_rel(atom_offset(aligned_done, srav_path)),
shift_lleft_var(r_lzcr, r_lzcr, r_branch_tmp), /* when r_branch_tmp < 0 (LZCR < 24): shift r_lzcr left by (24-LZCR) */
atom_label(srav_path)
li_s( r_branch_tmp, 24),
sub_s( r_branch_tmp, r_branch_tmp, r_shift),
shift_aright_var(r_lzcr, r_lzcr, r_branch_tmp), /* when r_branch_tmp >= 0 (LZCR >= 24): shift r_lzcr right by (LZCR-24) */
atom_label(aligned_done)
/* r_lzcr holds |v|² aligned to bit 24. */
add_si( r_lzcr, r_lzcr, -64),
shift_lleft(r_lzcr, r_lzcr, 1),
load_upper_i(r_branch_tmp, u4_hi(& gte_normalize_sqr_tbl)),
or_i_self( r_branch_tmp, u4_lo(& gte_normalize_sqr_tbl)),
add_u(r_branch_tmp, r_branch_tmp, r_lzcr),
load_half(r_lzcr, r_branch_tmp, 0), nop,
/* Stage 4: GPF + srav finalize (r_lzcr = srav_amount carried from stage 3). */
gte_mv_to_data_r(r_lzcr, C2_IR0),
gte_mv_to_data_r(r_mac2_scratch, C2_IR1),
gte_mv_to_data_r(r_recip_est, C2_IR2),
gte_mv_to_data_r(r_branch_tmp, C2_IR3),
nop2, gte_cmdw_gpf,
gte_mv_from_data_r(r_mac2_scratch, C2_MAC1),
gte_mv_from_data_r(r_recip_est, C2_MAC2),
gte_mv_from_data_r(r_branch_tmp, C2_MAC3),
shift_aright_var(r_mac2_scratch, r_mac2_scratch, r_lzcr),
shift_aright_var(r_recip_est, r_recip_est, r_lzcr),
shift_aright_var(r_branch_tmp, r_branch_tmp, r_lzcr),
/* Store result.x/y/z to r_dst_ptr (caller-determined dst address). */
store_word(r_mac2_scratch, r_dst_ptr, O_(V3_S4,x)),
store_word(r_recip_est, r_dst_ptr, O_(V3_S4,y)),
store_word(r_branch_tmp, r_dst_ptr, O_(V3_S4,z)),
mac_yield()
})
#pragma endregion Atom Procs
#pragma region Baked Atoms
typedef Struct_(Binds_SetGteMT3S2S4) {
MT3_S2S4* transform;
};
internal MipsAtom_(set_gte_mt3s2s4) atom_info(
atom_bind(Binds_SetGteMT3S2S4)
, atom_reads(R_TapePtr)
){
/* Pop matrix address from tape into R_T3 ($11) */
load_word(R_T3, R_TapePtr, O_(Binds_SetGteWorld,transform)),
add_ui_self( R_TapePtr, S_(Binds_SetGteWorld)),
load_word(R_T3, R_TapePtr, O_(Binds_SetGteMT3S2S4,transform)),
add_ui_self( R_TapePtr, S_(Binds_SetGteMT3S2S4)),
/* Load 3x3 Rotation + 3x1 Translation from R_T3 into GTE CONTROL Regs (ctc2) */
load_word(R_T0, R_T3, 0), load_word(R_T1, R_T3, 4),
gte_mv_to_ctrl_r(R_T0, gte_cr_RT11), gte_mv_to_ctrl_r(R_T1, gte_cr_RT12),
+60 -19
View File
@@ -161,6 +161,8 @@ enum {
gte_cmd_nclip = 0x06, /* Normal Clipping (Backface culling) */
gte_cmd_op = 0x0C, /* Outer Product */
gte_cmd_mvmva = 0x12, /* Matrix Vector Multiply & Add (Custom math) */
gte_cmd_sqr = 0x28, /* Square vector — MAC[i] = IR[i]²; IR[i] ← MAC[i] saturated */
gte_cmd_gpf = 0x3D, /* General-purpose Interpolation — MAC[i] = IR0 * IR[i] */
/* --- GTE Command Bit-Field Layout ---
* A GTE command word (sent to COP2 with RS=1) is laid out as:
@@ -171,17 +173,22 @@ enum {
* +------------+--+-----+------+------+------+------+---+--------+----------+
* \_____ GTE_PAYLOAD _____/ \__ GTE_CMD __/
*
* Shifts/masks below are the *bit positions* and *bit widths* of each
* configurable field, used by the ENC_GTE_CMD encoder.
* Shifts/masks below are the *bit positions* and *bit widths* of each configurable field, used by the ENC_GTE_CMD encoder.
* Mirrors the OPCODE_SHIFT / RS_SHIFT convention used in mips.h.
*/
gte_shift_sf = 19, gte_width_sf = 1, gte_mask_sf = 0x1,
gte_shift_mx = 17, gte_width_mx = 2, gte_mask_mx = 0x3,
gte_shift_v = 15, gte_width_v = 2, gte_mask_v = 0x3,
gte_shift_cv = 13, gte_width_cv = 2, gte_mask_cv = 0x3,
gte_shift_cv = 13, gte_width_cv = 2, gte_mask_cv = 0x3,
gte_shift_lm = 10, gte_width_lm = 1, gte_mask_lm = 0x1,
gte_shift_cmd = 0, gte_width_cmd = 6, gte_mask_cmd = 0x3F,
/* Fake command number (bits 24-20) — IGNORED by the GTE hardware per PSX-SPX `geometrytransformationenginegte.md` line 48.
* libgte's compiler emits non-zero values in this field as a disassembly signature. */
gte_shift_fake_cmd = 20,
gte_width_fake_cmd = 5,
gte_mask_fake_cmd = 0x1F,
};
/* --- GTE Control Register Indices (for ctc2/cfc2) ---
@@ -243,10 +250,10 @@ enum { _C2_OPS_ = 0
* bit 1 (0x02): register class — 0 = data, 1 = control
* bit 2 (0x04): direction — 0 = read, 1 = write
*
* The values 0x00 (sub_mfc2) and 0x04 (sub_mtc2) are the same 5-bit numbers as the general MIPS `cop_mf` / `cop_mt` defined in mips.h
* The values 0x00 (sub_mfc2) and 0x04 (sub_mtc2) are the same 5-bit numbers as general MIPS `cop_mf` / `cop_mt` defined in mips.h
* (which target the data register file on any coprocessor).
* They are re-aliased here so the four-way table reads like the spec mnemonics (MFC2 / CFC2 / MTC2 / CTC2)
* and so the encoding lives next to its only consumer (this header).
* and so the encoding is next to its only consumer (this header).
*
* Vendor mnemonic aliases (gte_mfc2 / gte_mtc2 / gte_cfc2 / gte_ctc2) live in gte_vendor_sym.h. */
enum { _C2_TX_SUBS_ = 0
@@ -309,23 +316,24 @@ enum { _C2_TX_SUBS_ = 0
/* GTE Command Format
* Opcode is always MIPS_OP_COP2, RS is always 1 (CO).
* The lower 25 bits are the GTE-specific command payload.
* Lower 25 bits are GTE-specific command payload.
*
* The granular `enc_gte_<field>(x)` macros below mirror the `enc_op`/`enc_rs` pattern in mips.h:
* The `enc_gte_<field>(x)` macros below mirror the `enc_op`/`enc_rs` pattern in mips.h:
* Each one self-masks and shifts its own field, so a caller can build up a GTE command piece by piece
* (handy for state-driven MVMVA emitters that vary one field at a time).
*
* `ENC_GTE_CMD` is the all-in-one convenience for emitting a full command word in one go.
* `ENC_GTE_CMD` is an all-in-one convenience for emitting a full command word.
* It just ORs the per-field encoders together. */
#define gte_cmd_base (enc_op(op_cop2) | (1 << 25))
/* Per-field encoders. Each one does (value & mask) << shift on its own. */
#define enc_gte_sf(sf) (((sf) & gte_mask_sf ) << gte_shift_sf )
#define enc_gte_mx(mx) (((mx) & gte_mask_mx ) << gte_shift_mx )
#define enc_gte_v(v) (((v) & gte_mask_v ) << gte_shift_v )
#define enc_gte_cv(cv) (((cv) & gte_mask_cv ) << gte_shift_cv )
#define enc_gte_lm(lm) (((lm) & gte_mask_lm ) << gte_shift_lm )
#define enc_gte_cmd(cmd) (((cmd) & gte_mask_cmd) << gte_shift_cmd)
#define enc_gte_sf(sf) (((sf) & gte_mask_sf ) << gte_shift_sf )
#define enc_gte_mx(mx) (((mx) & gte_mask_mx ) << gte_shift_mx )
#define enc_gte_v(v) (((v) & gte_mask_v ) << gte_shift_v )
#define enc_gte_cv(cv) (((cv) & gte_mask_cv ) << gte_shift_cv )
#define enc_gte_lm(lm) (((lm) & gte_mask_lm ) << gte_shift_lm )
#define enc_gte_cmd(cmd) (((cmd) & gte_mask_cmd ) << gte_shift_cmd )
#define enc_gte_fake_cmd(x) (((x) & gte_mask_fake_cmd) << gte_shift_fake_cmd)
/* Composite: all six GTE fields + the COP2/CO base. */
#define enc_gte_cmdw(sf, mx, v, cv, lm, cmd) ( \
@@ -363,11 +371,11 @@ enum { _C2_TX_SUBS_ = 0
* (the perspective divide happens regardless of `sf`).
*
* If we emit a strictly-spec-compliant word (`sf=0`, reserved bits clear),
* PCSX-Redux's GTE checks those bits more strictly than the silicon does and RTPT silently no-ops
* the floor's screen coordinates come out as raw projection-of-rotation (Z never divided),
* PCSX-Redux's GTE checks those bits more strictly than the silicon does and RTPT silently no-ops.
* The floor's screen coordinates come out as raw projection-of-rotation (Z never divided),
* `nclip` ends up wrong, and the triangle is culled.
*
* So for RTPS and RTPT we OR-in the `0x28` "PsyQ compat" pattern to match the working bit pattern everyone has shipped for 25 years.
* So for RTPS and RTPT we OR-in the `0x28` "PsyQ compat" pattern to match the working bit pattern.
* NCLIP / OP / MVMVA stay spec-clean — their reserved bits really are zero in the original PsyQ source.
* --------------------------------------------------------------------------
*/
@@ -378,11 +386,45 @@ enum { _C2_TX_SUBS_ = 0
#define gte_cmdw_nclip (gte_cmd_base | enc_gte_cmd(gte_cmd_nclip))
#define gte_cmdw_op (gte_cmd_base | enc_gte_cmd(gte_cmd_op ))
#define gte_cmdw_outer_product gte_cmdw_op /* "outer product" -- NOCASH/Sdk terminology */
#define gte_cmdw_wedge gte_cmdw_op /* "wedge product" -- geometric-algebra terminology */
#define gte_cmdw_wedge gte_cmdw_op /* "wedge product" -- geometric-algebra terminology.
* RGA(Lengyel): the GTE OP is a 3D signed-16-bit D x IR cross, not a generic RGA exterior product.
* The wedge alias is the 3D complement interpretation of the same 3 scalars (MAC1..MAC3). */
#define gte_cmdw_mvmva (gte_cmd_base | enc_gte_cmd(gte_cmd_mvmva))
/* SQR / GPF cosmetic-bits compat helpers.
* Each command's `_compat` macro ORs in the `fake_cmd` field value libgte happens to emit.
* The hardware ignores these bits (per PSX-SPX line 48). */
#define gte_cmdw_sqr_fake_sig enc_gte_fake_cmd(0x0A)
#define gte_cmdw_gpf_fake_sig enc_gte_fake_cmd(0x19)
/* SQR — Square Vector.
* PSX-SPX `geometrytransformationenginegte.md` §"SQR":
* [MAC1,MAC2,MAC3] = [IR1*IR1, IR2*IR2, IR3*IR3] SHR (sf*12)
* [IR1,IR2,IR3] = [MAC1,MAC2,MAC3] (saturated to 0x7FFF when lm=1)
* Sourced verbatim from libgte msc02 VectorNormal disassembly at 0x800160b0:
* 0x4AA00428 = gte_cmd_base | gte_cmdw_sqr_compat | enc_gte_lm(1) | enc_gte_cmd(0x28)
* bit 19 sf=0
* bit 10 lm=1
* bits 5-0 cmd=0x28=SQR
* bits 24-20 = 0x0A (libgte "nonsense SDK command number" signature) */
#define gte_cmdw_sqr (gte_cmd_base | enc_gte_cmd(gte_cmd_sqr) | enc_gte_lm(1) | gte_cmdw_sqr_fake_sig)
/* GPF — General-purpose Interpolation.
* PSX-SPX `geometrytransformationenginegte.md` §"GPF":
* [MAC1,MAC2,MAC3] = (([IR1,IR2,IR3] * IR0) + [MAC1,MAC2,MAC3]) SAR (sf*12)
* [IR1,IR2,IR3] = [MAC1,MAC2,MAC3]
* Sourced verbatim from libgte msc02 VectorNormal disassembly at 0x8001613c:
* 0x4B90003D = gte_cmd_base | gte_cmdw_gpf_compat | enc_gte_cmd(0x3D)
* bit 19 sf=0
* bit 10 lm=0
* bits 5-0 cmd=0x3D=GPF
* bits 24-20 = 0x19 (libgte "nonsense SDK command number" signature) */
#define gte_cmdw_gpf (gte_cmd_base | enc_gte_cmd(gte_cmd_gpf) | gte_cmdw_gpf_fake_sig)
#define gte_cmdw_rotate_translate_perspective_single gte_cmdw_rtps
#define gte_cmdw_rotate_translate_perspective_triple gte_cmdw_rtpt
/* RGA(Lengyel): RTPS/RTPT consume the matrix expansion of a rigid transformation (rotation matrix + translation vector) loaded into the RT/TR control registers.
* For unitized points the same result equals the motor antiproduct; the GTE executes the LA form, not a symbolic antiproduct. */
/* PsyQ compatibility bits for AVSZ3 (Bits 20, 22, 24 must be set) */
#define gte_cmdw_psyq_avsz3_compat (0x15 << 20)
@@ -433,7 +475,6 @@ enum {
#define gte_lw_v2_z(base) enc_gte_lw(gte_in_v2_z, (base), GTE_Z_Offset)
/* gte_load_vN(r_ptr, base) — placeholder-punned lwc2 loaders
*
* Emits `.word` constants encoding `lwc2 $N, off(<base>)` for the chosen GTE vector register, where `<base>` is the GPR number you pass in
* (typically one of R_T4..R_T9 for the standard "3-pointer" pattern).
*
+92 -79
View File
@@ -12,68 +12,57 @@
#endif
#pragma region Tape Drive
/* -----------------------------------------------------------------------------
/* -----------------------------------------------------------------------------------------------------------
* TAPE DRIVE ABI
* -----------------------------------------------------------------------------
* Note(Ed): One of the main purposes of this codebase is to help me
* learn this, as such the information below may be entirely realized
* or finalized conceptually.
* -----------------------------------------------------------------------------
* This ABI and its associated legos were directly inspired by researching
* the work of Timothy Lottes and Onat Türkçüoğlu; along with many others.
* It's the simplest bootstrap of a a directly executed chain of assemby
* arrays (Atoms) that terminate with a yield sequence to the next atom.
* These eventually lead to a terminal atom for the tape which is defined
* below as "tape_exit".
* -----------------------------------------------------------------------------------------------------------
* Note(Ed): One of the main purposes of this codebase is to help me learn this,
* as such the information below may not* be entirely realized or finalized conceptually.
* -----------------------------------------------------------------------------------------------------------
* This ABI and its associated legos were directly inspired by researching the work of
* Timothy Lottes and Onat Türkçüoğlu; along with many others. It's the simplest bootstrap of a
* directly executed chain of assemby arrays (Atoms) that terminate with a yield sequence to the next atom.
* These eventually lead to a terminal atom for the tape which is defined below as "tape_exit".
*
* This behaves as one of the simplest runtime harnesses ontop of a
* host-enviornment's execution engine to author and compose programs with.
* From here various conventions can be further applied.
* To make things easier to understand it may be better to focus on what this
* ABI does not have. It does not have have any branching within the tape but
* relative branches between atoms. Branching nearly is always downstream.
* Stack usage is non-existent. Push/Pop, FIFO, or Arena/Bump data structures
* are used by atoms explicitly. In it's current form withe C11 macro dsl,
* the user also has to do manual register allocation per atom.
* This behaves as one of the simplest runtime harnesses ontop of a host-enviornment's execution engine
* to author and compose programs with. From here various conventions can be further applied.
* To make things easier to understand it may be better to focus on what this ABI does not have.
* It does not have have any branching within the tape but relative branches within atoms or between atoms.
* Branching nearly is always downstream. Atuomatic stack usage is non-existent.
* Push/Pop, FIFO, or Arena/Bump data structures are used by atoms explicitly.
* In it's current form with the C11 macro DSL, the user also has fullfill manual register allocation per atom.
*
* One of the remarkable things about utilizing this abi is its essentially
* interopable with CPUs, GPUs, FPGA, or, basically anything
* from the 5th generation consoles and onward.
* The ABI directly reflects how all computational hardware must be architected
* in order to execute digital logic effectively on current era tech.
* On the PS1 we don't have access to a few features like multi-threading,
* speculative execution, or L3 cache; but, we can set the foundation for legoing
* whats required baseline wise for eventually expanding the harness and core atoms
* to take those newer hardware features into account. For example, you can easily
* expand this to support wave-based execution model on a PS2 or PS3.
* Not having a stack or automatic register allocation means the user can't ignore
* excessive argument shuffle across workload or waves and thier phases.
* Crossing ABI boundaries to other runtimes that do has an obviouss penalties.
* One of the remarkable things about utilizing this ABI is its essentially interopable with CPUs, GPUs, FPGA,
* or, basically anything from the 5th generation consoles and onward.
* The ABI directly reflects how all computational hardware must be architected in order to execute
* digital logic effectively on current era tech.
* On the PS1 we don't have access to a few features like multi-threading, speculative execution, or L3 cache;
* but, we can set the foundation for legoing whats required for eventually expanding this ABI's paradigm
* and core atoms to take those newer hardware features into account. For example, you can easily expand
* this to support wave-based execution model on a PS2 or PS3. Not having a stack or
* automatic register allocation means the user cannott ignore excessive argument shuffle across workload or
* waves and thier phases. Crossing ABI boundaries to other runtimes that do has obviouss penalties.
*
* Learning data-oreinted code becomes a natural progression. Your not fighting
* a stack-based procedural paradigm that wants to argument shuffle on the stack
* by lack of constraints on how the user may "call" a procedure. The user doesn't
* have to hammer down "rules" or patterns to know how to massage the compiler
* to get the asesmbly into its natural form. The form is obvious, and once
* the user gets to author their compoonents it becomes a game of tetris.
* Learning data-oreinted code becomes a natural progression. Your not fighting a stack-based procedural
* paradigm that wants to argument shuffle. There is no ambiguity due to the lack of constraints, for example,
* on how the user may "call" a procedure in traditional random dispatch runtimes. The user does have to
* hammer down "rules" or patterns for massaging the compiler to dissolve those call frames; just to get
* the asesmbly into its desired form. The form is obvious, and once the user gets to author these compoonents
* it becomes a game of tetris.
*
* Another feature is this ABI is very compatible with bootstrapping and developing
* simple toolchains built off of bit-packed annotated command streams the user can
* directly author, maintatain, and immediately execute. That being a color forth.
* This can make the tetris less of a chore with some helpful policy generation for
* allocation of registers, helping to choose resuable components, designing DSL on
* the fly, etc.
* -----------------------------------------------------------------------------
* TODO(Ed): We ned pretty ascii diagrams and proper guides, articles, etc.
* -----------------------------------------------------------------------------
* For now this thing is just functioning and I'm abusing C11 + a lua metaprogram
* to help establish a hybrid toolchain to ideate on a traditional text-based
* authoring UX for this paradigm.
* If pcsx-redux gets me viable hot-reload and persistent data storage beyond
* save-states (just copying ram to filesystem). I can author a color forth to
* mess around with, with an editor in-emulator or on the actual machine itself.
* Assembly is tedius, but I think this codebase most likely has some of the most,
* ergonomic you can come across..
* Another feature is this ABI is very compatible with bootstrapping and developing simple toolchains built off
* of bit-packed annotated command streams the user can directly author, maintatain, and immediately execute.
* That being like a color forth, or maybe something more familar like an immediate mode library
* for various systems such as GUIs. This can make the tetris less of a chore with some helpful policy
* generation for allocation of registers, helping to choose resuable components, designing DSL on the fly, etc.
* -----------------------------------------------------------------------------------------------------------
* TODO(Ed): We need pretty ascii diagrams and proper guides, articles, etc.
* -----------------------------------------------------------------------------------------------------------
* For now this ideation has just started functioning. I'm abusing C11 & a lua metaprogram to help establish
* a hybrid toolchain to ideate on a traditional text-based authoring UX for this paradigm.
* If pcsx-redux provides viable hot-reload and persistent data storage beyond save-states
* (just copying ram to filesystem), I can author a color forth to mess around with.
* With either an editor in-emulator or on the actual machine itself. Assembly is tedius,
* but I think this codebase most likely has a pretty ergonomic flavor worst case...
* */
/* Register Allocation Info */
enum {
@@ -117,25 +106,32 @@ typedef Slice_(MipsCode);
typedef U4 const MipsAtom; // Underlying type to an array of mips asm words that must terminate with an ac_yield.
#define MipsAtom_(sym) MipsCode sym [] align_(4) =
// Used for atoms with value-args
// FI_ void ac_X(args) MipsAtomComp_Proc_(ac_X, { body })
// expands to:
// FI_ void ac_X(args) { MipsCode ac_X[] align_(4) = { body }; return ac_X; }
#define MipsAtom_Proc_(sym, abuilder, ...) { MipsCode sym [] align_(4) = __VA_ARGS__; atombuilder_unroll(abuilder, slice_from_array(MipsCode, sym)); }
// Used for components with no args (e.g., ac_load_tri_indices) or identifier-args (hardcoded register names).
// MipsAtomComp_(ac_X) { body }
// expands to:
// MipsCode ac_X[] align_(4) = { body };
#define MipsAtomComp_(sym) MipsCode sym [] align_(4) =
// Used for components with value-args (e.g., ac_format_f3_color).
// FI_ Slice_MipsCode ac_X(args) MipsAtomComp_Proc_(ac_X, { body })
// Used for components with value-args (mandatory `ab` (atom-builder) arg).
// FI_ void ac_X(MipsAtomBuilder_R ab, args) MipsAtomComp_Proc_(ac_X, ab, { body })
// expands to:
// FI_ Slice_MipsCode ac_X(args) { MipsCode ac_X[] align_(4) = { body }; return slice_from_array(MipsCode, ac_X); }
#define MipsAtomComp_Proc_(sym, ...) { MipsCode sym [] align_(4) = __VA_ARGS__; return slice_from_array(MipsCode, sym); }
/* Line-table anchor: gcc only adds a file to the .debug_line file table when the
file contains line-numbered content. Files containing only:
- `MipsAtomComp_` static-array declarations, or
- `MipsAtomComp_Proc_` (force-inline) function bodies whose line info gets
attributed to the call site at the include point are otherwise omitted from the file table,
which breaks the DWARF injection when it tries to resolve atom-component provenance paths.
// FI_ void ac_X(MipsAtomBuilder_R ab, args) {
// MipsCode ac_X[] align_(4) = { body };
// atombuilder_unroll(ab, slice_from_array(MipsCode, ac_X));
// }
// The body must NOT include mac_yield() (the parent atom yields).
// Inline-only callers (the generated `mac_<name>` aliases) skip this arg via metaprogram filtering;
// escape callers (ac_<name> invoked as a function) pass a long-lived builder.
#define MipsAtomComp_Proc_(sym, ab, ...) { MipsCode sym [] align_(4) = __VA_ARGS__; atombuilder_unroll(ab, slice_from_array(MipsCode, sym)); }
/* Line-table anchor: gcc only adds a file to the .debug_line file table when the contains line-numbered content.
Files containing only atoms and atom components.
Place `ATOM_FILE_LINE_MARKER();` once at file scope in any `.atom.c` that defines atoms.
The macro expands to a file-scope `internal U4 const` declaration keeps the file in the line table.
The constant is in `.rodata` and unreferenced; the linker may eliminate it.
@@ -190,13 +186,15 @@ FI_ void tape_run_a02_s07(Tape tape) { register U4* tape_ptr rgcc(R_TapePtr) = u
typedef Relative_(FArena) Struct_(TapeBuilder) { U4 ptr; U4 capacity; U4 used; };
FI_ void tb_init(TapeBuilder* tb, FArena* arena) { tb->ptr = arena->start; tb->used = 0; }
FI_ TapeBuilder tb_make_old( FArena* arena) { return (TapeBuilder){ arena->start, 0 }; }
FI_ TapeBuilder tb_make(Slice mem) { return (TapeBuilder){ mem.ptr, mem.len, 0 }; }
FI_ TapeBuilder tb_make(Slice mem) { return (TapeBuilder){ u4_(mem.ptr), mem.len, 0 }; } /* capacity in elements (matches used units) */
FI_ void tb_emit(TapeBuilder* tb, MipsCode* atom) { u4_r(tb->ptr)[tb->used] = u4_(atom); ++ tb->used; }
FI_ void tb_emit(TapeBuilder* tb, MipsAtom* atom) { u4_r(tb->ptr)[tb->used] = u4_(atom); ++ tb->used; }
FI_ void tb_data(TapeBuilder* tb, U4 data) { u4_r(tb->ptr)[tb->used] = u4_(data); ++ tb->used; }
#define tb_emit_(atom) tb_emit(& tb, atom)
#define tb_data_(field, data) tb_data(& tb, u4_(data))
FI_ void tb_emit_bundle(TapeBuilder_R tb, Slice_MipsAtom atoms) { mem_copy(u4_(tb->ptr), u4_(atoms.ptr), S_slice(atoms)); tb->used += atoms.len; }
FI_ Tape tb_end (TapeBuilder* tb) { tb_emit(tb,tape_exit); return (Tape){ C_(U4*,tb->ptr), tb->used }; }
FI_ Tape tb_slice(TapeBuilder tb) { return (Tape){ C_(U4*,tb.ptr), tb.used }; }
#define tb_scope(tb) for(U4 tbs_once=0;tbs_once==0;++tbs_once,tb_emit(tb,tape_exit))
@@ -231,7 +229,6 @@ atom_dbg_skip MipsAtomComp_(ac_yield_tail) {
add_ui_self(R_TapePtr, S_(MipsCode)),
jump_reg( R_AtomJmp), nop,
};
#pragma endregion Macro Atom Components
#pragma region Mips Atom Builder
@@ -244,22 +241,38 @@ typedef Relative_(FArena) Struct_(MipsAtomBuilder) { U4 start; U4 capacity; U4 u
// Whatever the builder is writting to should most likely coresspond
// to something that can fit within instruction cache?
FI_ void atombuilder_unroll(MipsAtomBuilder_R ab, Slice_MipsCode_R code) {
assert(ab->capacity - ab->used - code->len);
mem_copy(ab->start, u4_(code->ptr), code->len);
mem_bump(ab->start, ab->capacity, & ab->used, code->len);
FI_ void atombuilder_unroll(MipsAtomBuilder_R ab, Slice_MipsCode code) {
/* code.len is in ELEMENTS (per slice_from_array convention); ab->used is also in elements
* (the init uses `ab->used * sizeof(U4)` for byte offset arithmetic — sizeof(U4)==4==sizeof(MipsCode)).
* mem_copy needs BYTES, so we use S_slice(code) for the length. */
assert(ab->capacity - ab->used - code.len);
U4* dest = (U4*)ab->start + ab->used; /* write at next-available slot (arena accumulation) */
mem_copy(u4_(dest), u4_(code.ptr), S_slice(code));
mem_bump(ab->start, ab->capacity, & ab->used, code.len);
}
#define atombuilder_unroll_mac(ab, mac) atombuilder_unroll(ab, slice_arg_from_array(Slice_MipsCode, mac))
// When done authoring, utilize this to cap-off the atom
// When done authoring, utilize this to cap-off the atom (if not utilizing a MipsAtom_Proc).
FI_ void atombuilder_end(MipsAtomBuilder_R ab) {
mem_copy(ab->start, u4_(ac_yield), S_(ac_yield));
mem_bump(ab->start, ab->capacity, & ab->used, S_(ac_yield));
/* ac_yield is a MipsCode[] of 4 elements; S_(ac_yield)=bytes, array_len(ac_yield)=elements.
* ab->used is in elements, so mem_bump needs element count. */
U4* dest = (U4*)ab->start + ab->used; /* write at next-available slot */
mem_copy(u4_(dest), u4_(ac_yield), S_(ac_yield));
mem_bump(ab->start, ab->capacity, & ab->used, array_len(ac_yield));
}
#define mipsatom_from_builder(ab) (Slice_MipsCode){ab.start, ab.used}
#define mipsatom_from_builder(ab) C_(MipsAtom*, (ab).start)
// tb_emit_builder(tb, ab) — emit the builder's atom into the tape and advance tb->used.
// Thin wrapper around tb_emit(tb, mipsatom_from_builder(ab[0])).
// Equivalent to tb_emit(tb, code_<name>) for runtime-built atoms.
FI_ void tb_emit_builder(TapeBuilder_R tb, MipsAtomBuilder_R ab) { tb_emit(tb, mipsatom_from_builder(ab[0])); }
#pragma endregion Mips Atom Builder
#pragma region Mips Atom Procs
#pragma endregion Mips Atom Procs
#pragma region Baked Mips Atoms
// These atoms are resolved at compile time and are (usually) statically linked readonly data.
+21 -3
View File
@@ -9,17 +9,35 @@ ATOM_FILE_DEBUGGER_LINE_MARKER(math_atom_c);
#pragma region MACs (Mips Atom Component)
FI_ Slice_MipsCode ac_load_v2s2(U4 rs_x, U4 rs_y, U4 r_base, U4 offset) atom_dbg_skip MipsAtomComp_Proc_(ac_load_v2s2, {
FI_ Slice_MipsCode ac_load_v2s2(MipsAtomBuilder_R ab, U4 rs_x, U4 rs_y, U4 r_base, U4 offset) atom_dbg_skip MipsAtomComp_Proc_(ac_load_v2s2, ab, {
load_half( rs_x, r_base, O_(V3_S2,x)),
load_half( rs_y, r_base, O_(V3_S2,y)),
})
FI_ Slice_MipsCode ac_store_v2s2(U4 rt_x, U4 rt_y, U4 base, U4 offset) atom_dbg_skip MipsAtomComp_Proc_(ac_store_v2s2, {
FI_ Slice_MipsCode ac_store_v2s2(MipsAtomBuilder_R ab, U4 rt_x, U4 rt_y, U4 base, U4 offset) atom_dbg_skip MipsAtomComp_Proc_(ac_store_v2s2, ab, {
store_half(rt_x, base, offset + O_(V2_S2,x)),
store_half(rt_y, base, offset + O_(V2_S2,y)),
})
FI_ Slice_MipsCode ac_store_rects2(U4 rt_x, U4 rt_y, U4 rt_width, U4 rt_height, U4 base, U4 offset) atom_dbg_skip MipsAtomComp_Proc_(ac_store_rects2, {
FI_ Slice_MipsCode ac_load_v3s4(MipsAtomBuilder_R ab, U4 rs_x, U4 rs_y, U4 rs_z, U4 r_base, U4 offset) atom_dbg_skip MipsAtomComp_Proc_(ac_load_v3s4, ab, {
load_word( rs_x, r_base, O_(V3_S4,x)),
load_word( rs_y, r_base, O_(V3_S4,y)),
load_word( rs_z, r_base, O_(V3_S4,z)),
})
FI_ Slice_MipsCode ac_store_v3s4(MipsAtomBuilder_R ab, U4 rt_x, U4 rt_y, U4 rt_z, U4 base, U4 offset) atom_dbg_skip MipsAtomComp_Proc_(ac_store_v3s4, ab, {
store_word(rt_x, base, offset + O_(V3_S4,x)),
store_word(rt_y, base, offset + O_(V3_S4,y)),
store_word(rt_z, base, offset + O_(V3_S4,z)),
})
FI_ Slice_MipsCode ac_sub_v3s4(MipsAtomBuilder_R ab, U4 rds_x, U4 rds_y, U4 rds_z, U4 rt_x, U4 rt_y, U4 rt_z) atom_dbg_skip MipsAtomComp_Proc_(ac_sub_v3s4, ab, {
sub_s(rds_x, rds_x, rt_x),
sub_s(rds_y, rds_y, rt_y),
sub_s(rds_z, rds_z, rt_z),
})
FI_ Slice_MipsCode ac_store_rects2(MipsAtomBuilder_R ab, U4 rt_x, U4 rt_y, U4 rt_width, U4 rt_height, U4 base, U4 offset) atom_dbg_skip MipsAtomComp_Proc_(ac_store_rects2, ab, {
store_half(rt_x, base, offset + O_(Rect_S2,x)),
store_half(rt_y, base, offset + O_(Rect_S2,y)),
store_half(rt_width, base, offset + O_(Rect_S2,width)),
+55 -5
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@@ -7,6 +7,18 @@
#define max(A, B) (((A) > (B)) ? (A) : (B))
#define clamp_bot(X, B) max(X, B)
/* Convention
<Type> ## <Width> _ <Component Type> ## <Component Width>
For types with compound data (Ex: Rotation Matrix & Translation):
<TypeA> ## <TypeB> ## <Width> _ <ComponentTypeA> ## <ComponentWidthA> ## <ComponentTypeB> ## <ComponentWidthB>
A: Array
V: Vector
R: Range
M: Matrix
T: Translation
*/
enum {
v3s2_byteoff = 3, // log2(8), used with shift_left_logical op for index via byte offset.
};
@@ -26,23 +38,38 @@ typedef Struct_(Extent2_S4) { S4 width; S4 height; };
typedef Struct_(V2_U1) { U1 x; U1 y; };
typedef Struct_(V2_S2) { S2 x; S2 y; };
typedef Struct_(V2_S4) { S4 x; S4 y; };
typedef Struct_(V3_S2) { S2 x; S2 y; S2 z; S2 pad; };
typedef Struct_(V3_S4) { S4 x; S4 y; S4 z; S4 pad; };
typedef Struct_(V3_S2) { S2 x; S2 y; S2 z; S2 pad; }; // PSY-Q: SVECTOR
typedef Struct_(V3_S4) { S4 x; S4 y; S4 z; S4 pad; }; // PSY-Q: VECTOR. RGA(Lengyel): Euclidean vector or direction. A zero-weight RGA point is stored as a V3_S4 with the implicit weight dropped.
typedef Struct_(V4_S2) { S2 x; S2 y; S2 z; S2 w; };
typedef Struct_(V4_S4) { S4 x; S4 y; S4 z; S4 w; };
typedef Struct_(R2_S2) { V2_S2 p0; V2_S2 p1; };
typedef Struct_(R2_S4) { V2_S4 p0; V2_S4 p1; };
// typedef Struct_(P3_S4) { S4 x; S4 y; S4 z; S4 w1; }; // RGA(Lengyel): Affine point with implicit weight one. Storage alias of V3_S4. Use P3_S4 when the value is a point.
typedef V3_S4 P3_S4;
typedef Struct_(R2_S2) { V2_S2 p0; V2_S2 p1; }; // Range-2 Signed 2-Byte (16-bit)
typedef Struct_(R2_S4) { V2_S4 p0; V2_S4 p1; }; // Range-2 Signed 4-Byte (32-bit)
typedef Struct_(Rect_S2) { S2 x; S2 y; S2 width; S2 height; };
typedef Struct_(Rect_S4) { S4 x; S4 y; S4 width; S4 height; };
typedef Struct_(M3_S2) { A3x3_S2 m; A3_S4 t; };
typedef Struct_(MT3_S2S4) { A3x3_S2 m; A3_S4 t; }; // PSY-Q: MATRIX. RGA(Lengyel): Matrix expansion of a rigid transformation. GTE utilizes this representation; corresponding motor not constructed here.
/* RGA(Lengyel) reserved names (deferred):
* P4_S4 - future flat point with explicit weight (Lengyel/TML FlatPoint3D analog).
* B3_S4 - future 3D bivector (callers store a Complement(Wedge(...)) as a V3_S4).
* Mo8_S4 - future motor. Not introduced until a course operation actually needs composition, interpolation, or inversion. */
typedef Array_(V2_U1, 2);
typedef Array_(V2_S2, 2);
typedef Array_(V2_S2, 3);
typedef Array_(V2_S2, 4);
enum {
fp_one = (1 << 12),
};
#define v3s4_fp_one() v3s4(fp_one, fp_one, fp_one)
#define v2s2(x,y) (V2_S2){x,y}
#define v3s2(x,y,z) (V3_S2){x,y,z,0}
#define v3s4(x,y,z) (V3_S4){x,y,z,0}
@@ -61,5 +88,28 @@ FI_ void add_a3s4_fp(A3_S4_R out_a, A3_S4 b) {
(out_a[0])[2] += b[2] >> 1;
}
FI_ void sub_a3s4(A3_S4_R out_a, A3_S4 b) {
(out_a[0])[0] -= b[0];
(out_a[0])[1] -= b[1];
(out_a[0])[2] -= b[2];
}
FI_ void sub_a3s4_fp(A3_S4_R out_a, A3_S4 b) {
(out_a[0])[0] -= b[0] >> 1;
(out_a[0])[1] -= b[1] >> 1;
(out_a[0])[2] -= b[2] >> 1;
}
FI_ void mul_a3s4(A3_S4_R out_a, A3_S4 b) {
(out_a[0])[0] *= b[0];
(out_a[0])[1] *= b[1];
(out_a[0])[2] *= b[2];
}
FI_ void add_v3s4 (V3_S4_R out_a, V3_S4 b) { add_a3s4 (pcast(A3_S4_R, out_a), pcast(A3_S4, b)); }
FI_ void add_v3s4_fp(V3_S4_R out_a, V3_S4 b) { add_a3s4_fp(pcast(A3_S4_R, out_a), pcast(A3_S4, b)); }
FI_ void sub_v3s4 (V3_S4_R out_a, V3_S4 b) { sub_a3s4 (pcast(A3_S4_R, out_a), pcast(A3_S4, b)); }
FI_ void sub_v3s4_fp(V3_S4_R out_a, V3_S4 b) { sub_a3s4_fp(pcast(A3_S4_R, out_a), pcast(A3_S4, b)); }
FI_ void mul_v3s4 (V3_S4_R out_a, V3_S4 b) { mul_a3s4 (pcast(A3_S4_R, out_a), pcast(A3_S4, b)); }
+10 -10
View File
@@ -58,13 +58,13 @@ typedef Struct_(Str8) { UTF8* ptr; U4 len; };
typedef Struct_(Slice_Str8) { Str8* ptr; U4 len; };
#define slit(string_literal) (Str8){ (UTF8*) string_literal, S_(string_literal) - 1 }
typedef Struct_(Slice) { U4 ptr, len; }; // Untyped Slice
FI_ Slice slice_ut_(U4 ptr, U4 len) { return (Slice){ptr, len}; }
typedef Struct_(Slice) { B1* ptr; U4 len; }; // Untyped Slice (byte-addressable; .len in elements)
FI_ Slice slice_ut_(U4 ptr, U4 len) { return (Slice){(B1*)ptr, len}; }
#define Slice_(type) Struct_(tmpl(Slice,type)) { type* ptr; U4 len; }
typedef Slice_(B1);
#define slice_assert(s) do { assert((s).ptr != 0); assert((s).len > 0); } while(0)
#define slice_end(slice) ((slice).ptr + (slice).len)
#define slice_end(slice) ((slice).ptr + S_slice(slice) / S_(B1)) /* byte-ptr arithmetic; .len is in elements per slice convention */
#define S_slice(s) ((s).len * S_((s).ptr[0]))
#define slice_ut(ptr,len) slice_ut_(u4_(ptr), u4_(len))
@@ -73,16 +73,16 @@ typedef Slice_(B1);
#define slice_iter(container, iter) (T_((container).ptr) iter = (container).ptr; iter != slice_end(container); ++ iter)
#define slice_arg_from_array(type, ...) & (tmpl(Slice,type)) { .ptr = array_decl(type,__VA_ARGS__), .len = array_len( array_decl(type,__VA_ARGS__)) }
#define slice_from_array(type, array) (tmpl(Slice,type)) { .ptr = array, .len = S_(array) }
#define slice_from_array(type, array) (tmpl(Slice,type)) { .ptr = array, .len = S_(array) / S_(type) } /* .len in elements (matches S_slice/slice_arg_from_array convention) */
FI_ void slice_zero_(Slice s) { slice_assert(s); mem_zero(s.ptr, s.len); }
FI_ void slice_zero_(Slice s) { slice_assert(s); mem_zero(u4_(s.ptr), S_slice(s)); }
#define slice_zero(s) slice_zero_(slice_to_ut(s))
FI_ void slice_copy_(Slice dest, Slice src) {
assert(dest.len >= src.len);
assert(S_slice(dest) >= S_slice(src));
slice_assert(dest);
slice_assert(src);
mem_copy(dest.ptr, src.ptr, src.len);
mem_copy(u4_(dest.ptr), u4_(src.ptr), S_slice(src));
}
#define slice_copy(dest, src) do { \
static_assert(T_same(dest, src)); \
@@ -98,8 +98,8 @@ typedef Slice_(U4);
typedef Opt_(farena) { U4 alignment, type_width; };
typedef Struct_(FArena) { U4 start, capacity, used; };
FI_ void farena_init(FArena_R arena, Slice mem) { assert(arena != nullptr);
arena->start = mem.ptr;
arena->capacity = mem.len;
arena->start = u4_(mem.ptr);
arena->capacity = S_slice(mem); /* FArena.used is in BYTES; capacity must be bytes too */
arena->used = 0;
}
FI_ FArena farena_make(Slice mem) { FArena a; farena_init(& a, mem); return a; }
@@ -109,7 +109,7 @@ I_ Slice farena_push(FArena_R arena, U4 amount, Opt_farena o) {
U4 to_commit = align_pow2(desired, o.alignment ? o.alignment : MEM_ALIGNMENT_DEFAULT);
U4 ptr = arena->start + arena->used;
mem_bump(arena->start, arena->capacity, & arena->used, to_commit);
return (Slice){ ptr, to_commit };
return (Slice){ (B1*)ptr, to_commit };
}
FI_ void farena_reset (FArena_R arena) { arena->used = 0; }
FI_ void farena_rewind(FArena_R arena, U4 save_point) {
+1 -5
View File
@@ -1,6 +1,7 @@
#ifdef INTELLISENSE_DIRECTIVES
# include "gen/macs.h"
# include "gen/offsets.h"
# include "bios.h"
# include "lottes_tape.h"
#endif
@@ -8,11 +9,6 @@ ATOM_FILE_DEBUGGER_LINE_MARKER(mips_atom_c);
#pragma region Baked Atoms
enum {
bios_flushcache = 0x44,
bios_table_addr = 0xA0,
};
/* Flushes the Instruction Cache (PSX A-function 0x44 via BIOS stub at 0xA0).
* Sequence (per MIPS ABI; arguments in arg registers, RA pushed to stack):
* 1. sp -= 8; sw $ra, 4($sp) ; save RA
+12 -11
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@@ -348,6 +348,12 @@ enum { _BitOffsets = 0
#define shift_lright(rd, rt, shamt) enc_r(op_special, R_0, (rt), (rd), (shamt), fc_srl)
#define shift_aright(rd, rt, shamt) enc_r(op_special, R_0, (rt), (rd), (shamt), fc_sra)
/* Shift Variable — register-shift forms.
* shift_lleft_var(rd, rt, rs) → sllv rd, rt, rs (shamt in low 5 bits of rs)
* shift_aright_var(rd, rt, rs) → srav rd, rt, rs */
#define shift_lleft_var(rd, rt, rs) enc_r(op_special, (rs), (rt), (rd), 0, fc_sllv)
#define shift_aright_var(rd, rt, rs) enc_r(op_special, (rs), (rt), (rd), 0, fc_srav)
#define shift_lleft_self(rd_rt, shamt) enc_r(op_special, R_0, (rd_rt), (rd_rt), (shamt), fc_sll)
#define mask_upper(rd, rt, shamt) shift_lleft(rd, rt, shamt), shift_lright(rd, rt, shamt)
@@ -366,20 +372,18 @@ enum { _BitOffsets = 0
* WARNING: `jump(off)` CANNOT BE USED for within-atom jumps in the current pipeline.
* The MIPS j opcode encodes `(target_addr >> 2)` in its 26-bit immediate field; an ABSOLUTE byte address, not a relative word offset.
* The metaprogram computes `off` as a relative word offset (`target_word_idx - branch_word_idx - 1`), which the assembler/linker does NOT resolve.
*
* `jump(off)` is only safe when the BUILD PIPELINE owns the absolute position of the emitted code — i.e. when: s
* - the build emits a symbol-relative `.word` expression that the linker resolvess via `R_MIPS_26`, OR
* - the code is hand-assembled with explicit absolute targets, OR a custom post-build patcher resolves the 26-bit field.
* TODO(Ed): Review this.. technically we can resolve aboslute jumps on baked atoms? (Even proedurally generated ones...)
*/
#define jump(off) enc_i(op_j, R_0, R_0, (off))
/* jump_rel off — unconditional relative jump (the within-atom-safe `jump`).
* MIPS I R3000A has no "branch always" opcode. The idiom for an unconditional relative jump is `beq $0, $0, off`.
*/
* MIPS I R3000A has no "branch always" opcode. The idiom for an unconditional relative jump is `beq $0, $0, off`. */
#define jump_rel(off) branch_equal(R_0, R_0, (off))
/* call_addr off — jump-and-link to immediate address.
*
* Same WARNING as `jump(off)` above: the jal opcode also encodes an absolute 26-bit target.
* For within-atom calls, the current pipeline has no equivalent always-taken call-and-link idiom.
* Workaround: `branch_link` (always-taken branch + explicit `la $ra, next_word_addr; jr $ra`), or just use `call_reg($tmp)` after loading the target into a register.
@@ -397,13 +401,7 @@ enum { _BitOffsets = 0
* sub_s / sub_u → sub / subu
* mult_s / mult_u → mult / multu (writes HI/LO; result in LO)
* div_s / div_u → div / divu (LO = quot, HI = rem)
*
* NOTE: dsl.h defines `add_s`/`sub_s`/`mut_s`/`gt_s`/etc. as _Generic-based signed integer-arithmetic helpers for U1/U2/U4.
* Those live in a different conceptual layer (generic arithmetic on DSL 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`). */
#undef add_s
#undef sub_s
*/
#define add_s(rd, rs, rt) enc_r(op_special, (rs), (rt), (rd), 0, fc_add)
#define add_u(rd, rs, rt) enc_r(op_special, (rs), (rt), (rd), 0, fc_addu)
#define sub_s(rd, rs, rt) enc_r(op_special, (rs), (rt), (rd), 0, fc_sub)
@@ -458,6 +456,9 @@ enum { _BitOffsets = 0
#define nop shift_lleft(rdiscard, rdiscard, 0)
#define nop2 nop, nop
// li_s — load signed 16-bit immediate into GPR (addiu rt, $0, imm — sign-extends).
#define li_s(rt, imm) add_ui((rt), R_0, (imm))
#define load_imm_1w(rt, imm) add_ui((rt), R_0, (imm))
#define load_imm_1w_s0(rt, imm) add_si((rt)), R_0, (imm))
+84 -73
View File
@@ -9,6 +9,34 @@
ATOM_FILE_DEBUGGER_LINE_MARKER(pad_atom_c);
#pragma region MACs (Mips Atom Components)
FI_ Slice_MipsCode ac_pad_set_centered_axes(MipsAtomBuilder_R ab, U4 r_state, U4 r_scratch) atom_dbg_skip MipsAtomComp_Proc_(ac_pad_set_centered_axes, ab, {
load_upper_i(r_scratch, (PadAxis_Centered_Word >> 16) & 0xFFFF),
or_i_self( r_scratch, PadAxis_Centered_Word & 0xFFFF),
store_word( r_scratch, r_state, O_(PadState,axes)),
})
FI_ Slice_MipsCode ac_pad_set_id_byte(MipsAtomBuilder_R ab, U1 r_state, U1 r_id, U1 id_value) atom_dbg_skip MipsAtomComp_Proc_(ac_pad_set_id_byte, ab, {
add_ui( r_id, R_0, id_value),
store_byte(r_id, r_state, O_(PadState,id)),
})
FI_ Slice_MipsCode ac_pad_set_status(MipsAtomBuilder_R ab, U4 r_tmp, U1 r_state, U4 pad_status) atom_dbg_skip MipsAtomComp_Proc_(ac_pad_set_status, ab, {
add_ui( r_tmp, R_0, pad_status),
store_word(r_tmp, r_state, O_(PadState,status)),
})
/* Invert r_buttons (active-low → active-high) and store to PadState.buttons.
* r_buttons must already be loaded (the caller is responsible for filling the load-delay slot of
* the preceding load_half_u with an instruction that doesn't read r_buttons). */
FI_ Slice_MipsCode ac_pad_store_inverted_buttons(MipsAtomBuilder_R ab, U1 r_buttons, U1 r_pad_state) atom_dbg_skip MipsAtomComp_Proc_(ac_pad_store_inverted_buttons, ab, {
nor_u( r_buttons, r_buttons, R_0),
store_half( r_buttons, r_pad_state, O_(PadState, buttons)),
})
#pragma endregion MACs (Mips Atom Components)
#pragma region Baked Atoms
/* ----- pad_bios_snapshot -----
@@ -35,7 +63,7 @@ ATOM_FILE_DEBUGGER_LINE_MARKER(pad_atom_c);
*/
enum {
R_PadRaw = R_T0 atom_reg atom_type(U1),
R_PadState = R_T1 atom_reg,
R_PadState = R_T1 atom_reg atom_type(PadState*),
R_RawStatus = R_T2 atom_reg,
R_RawId = R_T3 atom_reg,
};
@@ -44,8 +72,8 @@ typedef Struct_(Binds_PadBiosSnapshot) {
PadState* state;
};
internal MipsAtom_(pad_bios_snapshot) atom_info(atom_bind(Binds_PadBiosSnapshot)
, atom_reads( R_PadRaw, R_PadState, R_RawStatus, R_RawId, R_T4, R_T5, R_TapePtr)
, atom_writes(R_PadRaw, R_PadState, R_RawStatus, R_RawId, R_T4, R_T5, R_TapePtr)
, atom_reads( R_PadRaw, R_PadState, R_RawStatus, R_RawId)
, atom_writes(R_PadRaw, R_PadState, R_RawStatus, R_RawId)
) {
/* === Bind consumption: T0 = raw, T1 = state, advance R_TapePtr by 8. */
load_word(R_PadRaw, R_TapePtr, O_(Binds_PadBiosSnapshot,raw)),
@@ -53,111 +81,97 @@ internal MipsAtom_(pad_bios_snapshot) atom_info(atom_bind(Binds_PadBiosSnapshot)
add_ui_self( R_TapePtr, S_(Binds_PadBiosSnapshot)),
/* === Read raw[0] (status) + raw[1] (id) */
load_byte_u(R_RawStatus, R_PadRaw, 0),
load_byte_u(R_RawId, R_PadRaw, 1),
load_byte_u(R_RawStatus, R_PadRaw, O_(PadBiosRaw,status)),
load_byte_u(R_RawId, R_PadRaw, O_(PadBiosRaw,id)),
atom_label(snap_root) /* === Case 1: Disconnected (status == 0xFF). */
add_ui(R_T4, R_0, 0xFF), branch_ne(R_RawStatus, R_T4, atom_offset(snap_root, skip_disconnected)),
add_ui(R_T4, R_0, PadRawStatus_Timeout), branch_ne(R_RawStatus, R_T4, atom_offset(snap_root, skip_disconnected)),
/* BD-slot: pre-compute PadStatus_Disconnected. Branch reads R_T4=0xFF in EX before this WB completes.
* If branch NOT taken (fall through to pending/id_dispatch), R_T4 is overwritten by the next case body's add_ui — harmless. */
atom_label(disconnected) /* === Disconnected body. */
/* R_T4 = PadStatus_Disconnected from snap_root BD-slot. */
store_word(R_T4, R_PadState, O_(PadState,status)),
store_half(R_0, R_PadState, O_(PadState,buttons)),
/* axes = 0x80808080 (centered) — single sw writes the 4-byte axes block at offset 8 (left_x, left_y, right_x, right_y). */
load_upper_i(R_T4, 0x8080), or_i_self(R_T4, 0x8080),
store_word( R_T4, R_PadState, O_(PadState,left_x)),
store_byte( R_RawId, R_PadState, O_(PadState,id)),
mac_pad_set_status(R_T4, R_PadState, PadStatus_Disconnected),
store_half( R_0, R_PadState, O_(PadState,buttons)),
mac_pad_set_centered_axes(R_PadState, R_T4),
mac_pad_set_id_byte(R_PadState, R_RawId, PadRawStatus_Timeout),
jump_rel(atom_offset(disconnected, snap_end)),
/* BD-slot: load next atom's entry point (replaces the nop).
* The unconditional branch always jumps to snap_end, where mac_yield_tail()
* transfers control to R_AtomJmp without re-loading it. */
* Always jumps to snap_end, where mac_yield_tail() transfers control to R_AtomJmp without re-loading it. */
mac_yield_load(),
atom_label(skip_disconnected)
/* === Case 2: Pending (status == 0 && id == 0)
* Combined check: if (status | id) != 0 then skip to id_dispatch.
* Falls through to the Pending case only when both are zero. */
* Combined check: if (status | id) != 0 then skip to id_dispatch. Falls through to the Pending case only when both are zero. */
or_u_self(R_RawStatus, R_RawId), branch_ne(R_RawStatus, R_0, atom_offset(case_2, id_dispatch)),
/* BD-slot: pre-compute PadStatus_Pending. Branch reads R_RawStatus in EX before this WB completes.
* If branch NOT taken (fall through to id_dispatch), R_T4 is overwritten by the digital/analog body add_ui harmless. */
* If branch NOT taken (fall through to id_dispatch), R_T4 is overwritten by the digital/analog body add_ui - harmless. */
atom_label(pending) /* === Pending body */
/* R_T4 = PadStatus_Pending from case_2 BD-slot. */
store_word(R_T4, R_PadState, O_(PadState,status)),
store_half(R_0, R_PadState, O_(PadState,buttons)),
/* axes = 0x80808080 (centered) — single sw writes the 4-byte axes block at offset 8 (left_x, left_y, right_x, right_y). */
load_upper_i(R_T4, 0x8080), or_i_self(R_T4, 0x8080),
store_word( R_T4, R_PadState, O_(PadState,left_x)),
store_byte( R_RawId, R_PadState, O_(PadState,id)),
atom_label(pending) /* === Pending body (status=0, id=0 — pre-IRQ-empty buffer). */
mac_pad_set_status(R_T4, R_PadState, PadStatus_Pending),
store_half( R_0, R_PadState, O_(PadState,buttons)),
mac_pad_set_centered_axes(R_PadState, R_T4),
store_byte(R_RawId, R_PadState, O_(PadState,id)),
jump_rel(atom_offset(pending, snap_end)),
mac_yield_load(),
atom_label(id_dispatch) /* === Case 3-6: ID dispatch */
add_ui(R_T4, R_0, 0x41), branch_ne(R_RawId, R_T4, atom_offset(id_dispatch, try_analog_stick)),
add_ui(R_T4, R_0, PadRawId_Digital), branch_ne(R_RawId, R_T4, atom_offset(id_dispatch, try_analog_stick)),
/* BD-slot: pre-compute PadStatus_Digital. Branch reads R_RawId in EX before this WB completes.
* If branch NOT taken (fall through to try_analog_stick), R_T4 is overwritten by the analog body add_ui. */
/* === Digital body (status, buttons normalize, axes=0x80, id, branch. */
/* R_T4 = PadStatus_Digital from id_dispatch BD-slot. */
store_word( R_T4, R_PadState, O_(PadState,status)),
load_half_u(R_T4, R_PadRaw, 2 * S_(U1)),
/* Fill R_T4's load-delay slot with the 0x80808080 axes constant into R_T5
* (R_T5 is dead on this path; it's only consumed at the analog_pad range check). */
load_upper_i(R_T5, 0x8080), or_i_self(R_T5, 0x8080),
nor_u( R_T4, R_T4, R_0), /* raw_buttons is already in host bit order; no swap needed */
store_half( R_T4, R_PadState, O_(PadState,buttons)),
/* axes = 0x80808080 (centered) — single sw writes the 4-byte axes block at offset 8 (left_x, left_y, right_x, right_y). */
store_word( R_T5, R_PadState, O_(PadState,left_x)),
add_ui( R_T4, R_0, 0x41),
store_byte( R_T4, R_PadState, O_(PadState,id)),
/* === Digital body (status, buttons normalize, axes=0x80, id, branch.
* R_T5 holds the 0x80808080 axes constant (loaded into the load-delay slot of the buttons-load).
* R_T5 is then "dead" — only consumed at the analog_pad range check downstream. */
mac_pad_set_status(R_T4, R_PadState, PadStatus_Digital),
load_half_u( R_T4, R_PadRaw, O_(PadBiosRaw, buttons)), /* R_T4 = raw_buttons; */
load_upper_i(R_T5, PadAxis_Centered_Hi), or_i_self(R_T5, PadAxis_Centered_Lo), /* fills the buttons-load's delay slot (doesn't read R_T4) */
mac_pad_store_inverted_buttons(R_T4, R_PadState), /* R_T4 settled: nor + sh writes ~raw_buttons to state.buttons */
store_word(R_T5, R_PadState, O_(PadState, axes)), /* single sw writes the 4-byte axes block at offset 8 (left_x, left_y, right_x, right_y) */
mac_pad_set_id_byte(R_PadState, R_T4, PadRawId_Digital),
jump_rel(atom_offset(id_dispatch, snap_end)),
mac_yield_load(),
atom_label(try_analog_stick) /* === Case 4: AnalogStick (id == 0x53)*/
add_ui(R_T4, R_0, 0x53), branch_ne(R_RawId, R_T4, atom_offset(try_analog_stick, try_analog_pad)),
add_ui(R_T4, R_0, PadRawId_AnalogStick), branch_ne(R_RawId, R_T4, atom_offset(try_analog_stick, try_analog_pad)),
/* BD-slot: pre-compute PadStatus_AnalogStick. Branch reads R_RawId in EX before this WB completes.
* If branch NOT taken (fall through to try_analog_pad), R_T4 is overwritten by the analog_pad body add_ui. */
atom_label(analog_stick) /* === AnalogStick body
* Axes are loaded as two halfwords: raw[6..7] → left_xy (sh at offset 8), raw[4..5] → right_xy (sh at offset 10).
* R_T5 holds left_xy / id-value in turn (it's dead on this path — only consumed at the analog_pad range check). */
/* R_T4 = PadStatus_AnalogStick from try_analog_stick BD-slot. */
store_word( R_T4, R_PadState, O_(PadState,status)),
load_half_u( R_T4, R_PadRaw, 2 * S_(U1)), /* R_T4 = raw_buttons */
load_half_u( R_T5, R_PadRaw, 6 * S_(U1)), /* R_T5 = left_xy; fills R_T4's load-delay slot (doesn't read R_T4) */
nor_u( R_T4, R_T4, R_0), /* R_T4 = ~raw_buttons */
store_half( R_T4, R_PadState, O_(PadState,buttons)),
load_half_u( R_T4, R_PadRaw, 4 * S_(U1)), /* R_T4 = right_xy; fills R_T5's load-delay slot */
store_half( R_T5, R_PadState, O_(PadState,left_x)), /* R_T5 settled, store left_xy */
store_half( R_T4, R_PadState, O_(PadState,right_x)),
add_ui( R_T5, R_0, 0x53), /* R_T5 = id value (clobbers left_xy, already stored) */
store_byte( R_T5, R_PadState, O_(PadState,id)),
* R_T5 holds left_xy (loaded into the load-delay slot of the buttons-load via the left-axis load_half_u).
* R_T4 holds right_xy (loaded into the load-delay slot of the left-load).
* R_T5 is then "dead" — reused for the id-byte value load in mac_pad_write_id_byte.
* The buttons invert+store happens BEFORE R_T4 is overwritten by the right_xy load. */
mac_pad_set_status(R_T4, R_PadState, PadStatus_AnalogStick),
load_half_u( R_T4, R_PadRaw, O_(PadBiosRaw,buttons)), /* R_T4 = raw_buttons; delay slot at the next instruction */
load_half_u( R_T5, R_PadRaw, O_(PadBiosRaw,left)), /* fills the buttons-load's delay slot (doesn't read R_T4) */
mac_pad_store_inverted_buttons(R_T4, R_PadState), /* R_T4 settled: nor + sh writes ~raw_buttons to state.buttons */
load_half_u( R_T4, R_PadRaw, O_(PadBiosRaw,right)), /* fills R_T5's load-delay slot (doesn't read R_T5); overwrites R_T4 (was buttons) with right_xy */
store_half( R_T5, R_PadState, O_(PadState, left)),
store_half( R_T4, R_PadState, O_(PadState, right)),
mac_pad_set_id_byte(R_PadState, R_T5, PadRawId_AnalogStick),
jump_rel(atom_offset(analog_stick, snap_end)),
mac_yield_load(),
atom_label(try_analog_pad) /* === Case 5-6: AnalogPad (id & 0xF0 == 0x70) */
and_i( R_T4, R_RawId, 0xF0),
add_ui( R_T5, R_0, 0x70),
and_i( R_T4, R_RawId, PadRawId_AnalogPadMask),
add_ui( R_T5, R_0, PadRawId_AnalogPadValue),
branch_ne(R_T4, R_T5, atom_offset(try_analog_pad, try_unsupported)),
/* BD-slot: pre-compute PadStatus_AnalogPad. Branch reads R_T4 in EX before this WB completes.
* If branch NOT taken (fall through to try_unsupported), R_T4 is overwritten by the unsupported body add_ui. */
atom_label(analog_pad) /* === AnalogPad body
* Same shape as AnalogStick with AnalogPad status. R_T5 holds left_xy (it's dead on this path). */
/* R_T4 = PadStatus_AnalogPad from try_analog_pad BD-slot. */
store_word( R_T4, R_PadState, O_(PadState,status)),
load_half_u(R_T4, R_PadRaw, 2 * S_(U1)), /* R_T4 = raw_buttons */
load_half_u(R_T5, R_PadRaw, 6 * S_(U1)), /* R_T5 = left_xy; fills R_T4's load-delay slot */
nor_u( R_T4, R_T4, R_0), /* R_T4 = ~raw_buttons */
store_half( R_T4, R_PadState, O_(PadState,buttons)),
load_half_u(R_T4, R_PadRaw, 4 * S_(U1)), /* R_T4 = right_xy; fills R_T5's load-delay slot */
store_half( R_T5, R_PadState, O_(PadState,left_x)), /* R_T5 settled, store left_xy */
store_half( R_T4, R_PadState, O_(PadState,right_x)),
store_byte( R_RawId, R_PadState, O_(PadState,id)),
* Same shape as AnalogStick with AnalogPad status. R_T5 holds left_xy (it's dead on this path).
* The id byte is raw id from the BIOS buffer (R_RawId already holds raw[1]).
* Buttons invert + store happens before R_T4 is overwritten by the right_xy load. */
mac_pad_set_status(R_T4, R_PadState, PadStatus_AnalogPad),
load_half_u( R_T4, R_PadRaw, O_(PadBiosRaw,buttons)), /* R_T4 = raw_buttons; delay slot at the next instruction */
load_half_u( R_T5, R_PadRaw, O_(PadBiosRaw,left)), /* fills the buttons-load's delay slot (doesn't read R_T4) */
mac_pad_store_inverted_buttons(R_T4, R_PadState), /* R_T4 settled: nor + sh writes ~raw_buttons to state.buttons */
load_half_u(R_T4, R_PadRaw, O_(PadBiosRaw,right)), /* fills R_T5's load-delay slot (doesn't read R_T5); overwrites R_T4 with right_xy */
store_half( R_T5, R_PadState, O_(PadState, left)),
store_half( R_T4, R_PadState, O_(PadState, right)),
store_byte( R_RawId, R_PadState, O_(PadState, id)),
jump_rel(atom_offset(analog_pad, snap_end)),
mac_yield_load(),
@@ -166,11 +180,8 @@ atom_label(try_unsupported) /* === Case 7: Unsupported — fall through from the
add_ui( R_T4, R_0, PadStatus_Unsupported),
store_word(R_T4, R_PadState, O_(PadState,status)),
store_half(R_0, R_PadState, O_(PadState,buttons)),
/* axes = 0x80808080 (centered) — single sw writes the 4-byte axes block at offset 8 (left_x, left_y, right_x, right_y). */
load_upper_i(R_T4, 0x8080), or_i_self(R_T4, 0x8080),
store_word( R_T4, R_PadState, O_(PadState,left_x)),
add_ui( R_T4, R_0, 0xFF), /* 0xFF sentinel: "unknown id" */
store_byte( R_T4, R_PadState, O_(PadState,id)),
mac_pad_set_centered_axes(R_PadState, R_T4),
mac_pad_set_id_byte(R_PadState, R_RawId, PadUnknownId_Sentinel),
/* Fall through to snap_end. */
atom_label(no_jump_fallthrough)
+78
View File
@@ -0,0 +1,78 @@
#ifdef INTELLISENSE_DIRECTIVES
# include "dsl.h"
# include "gcc_asm.h"
# include "mips.h"
# include "bios.h"
# include "pad.h"
#endif
/* Uses ONE 8-byte frame allocated via the compiler's standard prologue.
* 4 wasted-arg words for B(12h) InitPAD2 are at [SP+0..15] but are not explicitly allocated.
* Compiler handles the MIPS O32 "wasted stack" convention for us by treating the B-call as a 4-arg call.
*
* The buffer pointers are passed as arguments so the compiler keeps them in callee-saved registers;
* The B(12h) asm volatile block does NOT clobber those registers (it clobbers only the volatile GPRs + B-table arg registers explicitly).
* The C-level writes after the call re-load the pointers from their callee-saved homes.
*
* The clobber list for both B-calls names the full BIOS destroy set documented in kernelbios.md:167-174 (R1..R15, R24..R25, R31, HI/LO).
* The kernel-ABI "volatile GPRs" subset is clb_mem_drain; the rest of the destroy set is enumerated explicitly here. */
NI_ void pad_bios_init_start(PadBiosRaw* raw0, PadBiosRaw* raw1)
{
/* Pin raw0 + raw1 to $a0 + $a1 via rgcc; the B(12h) call uses these directly.
* The `(void)` casts mark them as unread after the call so the compiler doesn't need to move them back. */
register PadBiosRaw* p0 rgcc(R_A0) = raw0;
register PadBiosRaw* p1 rgcc(R_A1) = raw1;
(void)p0; (void)p1;
// TODO(Ed): Properly annotate the raw values in the inline asm instructions.
// Use enums.
/* B(12h) InitPAD2(raw0, 0x22, raw1, 0x22)
* $a0 = raw0 (rgcc-bound; survives the sequence below)
* $a1 = raw1 (preserved into $a2 before $a1 is overwritten)
* $a2 = raw1 (moved from $a1; survives $a1's overwrite)
* $a3 = 0x22 (immediate)
* $t1 = 0x12 (function number)
* $t2 = 0xB0 (BIOS B-table address) */
asm volatile(
asm_words(
or_u( rarg_2, rarg_1, rdiscard), /* $a2 = $a1 = raw1 */
add_ui( rarg_1, rdiscard, bios_pad_buffer_size), /* $a1 = 0x22 */
add_ui( rarg_3, rdiscard, bios_pad_buffer_size), /* $a3 = 0x22 */
add_ui( rtmp_1, rdiscard, bios_init_pad_2), /* $t1 = 0x12 */
add_ui( rtmp_2, rdiscard, bios_btable_addr), /* $t2 = 0xB0 */
call_reg(rtmp_2), /* jalr $t2, $ra */
nop /* BD slot */
)
asm_rpins, r_use(p0), r_use(p1)
asm_clobber:
rlit(R_AT),
rlit(R_V0), rlit(R_V1),
rlit(R_T0), rlit(R_T1), rlit(R_T2), rlit(R_T3), rlit(R_T4),
rlit(R_T5), rlit(R_T6), rlit(R_T7), rlit(R_T8), rlit(R_T9),
rlit(R_RA),
clb_mem_drain
);
/* The C-level writes re-load the pointers via the parameter names and write 0xFF to each
* buffer's status byte to mark the initial-state hazard documented in kernelbios.md:1621-1624. */
u1_v(raw0)[0] = 0xFF;
u1_v(raw1)[0] = 0xFF;
/* B(13h) StartPAD2() — no args. The BIOS preserves $sp. */
asm volatile(
asm_words(
add_ui( rtmp_1, rdiscard, bios_start_pad_2), /* $t1 = 0x13 */
add_ui( rtmp_2, rdiscard, bios_btable_addr), /* $t2 = 0xB0 (re-load) */
call_reg(rtmp_2), /* jalr $t2, $ra */
nop /* BD slot */
)
asm_clobber:
rlit(R_AT),
rlit(R_V0), rlit(R_V1),
rlit(R_T0), rlit(R_T1), rlit(R_T2), rlit(R_T3), rlit(R_T4),
rlit(R_T5), rlit(R_T6), rlit(R_T7), rlit(R_T8), rlit(R_T9),
rlit(R_RA),
clb_mem_drain
);
}
+79 -37
View File
@@ -1,28 +1,30 @@
#ifdef INTELLISENSE_DIRECTIVES
# pragma once
# include "dsl.h"
# include "math.h"
#endif
/* PSX button bit positions — 1:1 with PSX-SPX docs at docs/psx-spx/docs/controllersandmemorycards.md:405-421.
* Wire is active-low (0 = pressed).
* The decoder atom computes buttons = (~raw_buttons) & 0xFFFF; the active-low-to-active-high inversion is applied bit-by-bit. */
enum {
Bit_(Pad_Select, 0),
Bit_(Pad_L3, 1),
Bit_(Pad_R3, 2),
Bit_(Pad_Start, 3),
Bit_(Pad_Up, 4),
Bit_(Pad_Right, 5),
Bit_(Pad_Down, 6),
Bit_(Pad_Left, 7),
Bit_(Pad_L2, 8),
Bit_(Pad_R2, 9),
Bit_(Pad_L1, 10),
Bit_(Pad_R1, 11),
* The decoder atom computes buttons = (~raw_buttons) & 0xFFFF;
* active-low-to-active-high inversion is applied bit-by-bit. */
typedef Enum_(U2, PadBtns) {
Bit_(Pad_Select, 0),
Bit_(Pad_L3, 1),
Bit_(Pad_R3, 2),
Bit_(Pad_Start, 3),
Bit_(Pad_Up, 4),
Bit_(Pad_Right, 5),
Bit_(Pad_Down, 6),
Bit_(Pad_Left, 7),
Bit_(Pad_L2, 8),
Bit_(Pad_R2, 9),
Bit_(Pad_L1, 10),
Bit_(Pad_R1, 11),
Bit_(Pad_Triangle, 12),
Bit_(Pad_Circle, 13),
Bit_(Pad_Cross, 14),
Bit_(Pad_Square, 15),
Bit_(Pad_Circle, 13),
Bit_(Pad_Cross, 14),
Bit_(Pad_Square, 15),
};
enum {
@@ -32,18 +34,22 @@ enum {
Pad1 = 1 << PadId_Offset,
};
#define pad0_(btn_id) (btn_id << Pad0)
#define pad1_(btn_id) (btn_id << Pad1)
/* ============================================================
/* =============================================================================
* BIOS pad-buffer subsystem: docs/psx-spx/docs/kernelbios.md (B(12h) + B(13h))
* ============================================================ */
* ============================================================================= */
enum {
PAD_BIOS_RAW_SIZE = 0x22,
};
// BIOS pad buffer layout (docs/psx-spx/docs/kernelbios.md (InitPAD2 returns 0x22 = 34 bytes per port)).
// Bytes 0..7 are the named snapshot region; bytes 8..33 are reserved (the BIOS writes the buffer raw; we only read bytes 0..7 via O_(PadBiosRaw, ...)).
typedef Struct_(PadBiosRaw) {
U1 bytes[PAD_BIOS_RAW_SIZE];
U1 status; /* offset 0 (PadRawStatus_Ok / PadRawStatus_Timeout) */
U1 id; /* offset 1 (PadRawId_Digital / PadRawId_AnalogStick / 0x7x AnalogPad) */
U2 buttons; /* offset 2-3 (active-low 16-bit button map) */
V2_U1 right; /* offset 4-5 (right stick x, y) */
V2_U1 left; /* offset 6-7 (left stick x, y) */
U1 reserved[PAD_BIOS_RAW_SIZE - 8]; /* offset 8..33 */
};
typedef Enum_(U4, PadStatus) {
@@ -56,18 +62,54 @@ typedef Enum_(U4, PadStatus) {
PadStatus_Invalid,
};
/* PadState — per-port normalized runtime state.
* Field order is chosen so that the 4 axes (left_x, left_y, right_x, right_y)
* form a contiguous 4-byte block at offset 8, allowing a single `store_word` to clear-or-write all 4 axes in one MIPS instruction.
* The struct size stays 12 bytes (unchanged from the prior order,
* which left the C compiler to insert 1 byte of trailing pad to reach the 4-byte struct alignment). */
typedef Struct_(PadState) {
PadStatus status; /* offset 0, size 4 (U4) */
U2 buttons; /* offset 4, size 2 */
U1 id; /* offset 6, size 1 */
U1 pad; /* offset 7, size 1 — explicit pad to align the axes block */
U1 left_x; /* offset 8, size 1 — store_word target (4-byte aligned) */
U1 left_y; /* offset 9, size 1 */
U1 right_x; /* offset 10, size 1 */
U1 right_y; /* offset 11, size 1 */
/* Distinct from the game-facing PadStatus enum: PadRawStatus_Ok and PadRawStatus_Timeout are raw BIOS values;
* PadStatus_* are game-facing post-decode states. PadUnknownId_Sentinel is written by the decoder
* when the controller id does not match any known controller type.
* PadAxisCentered_Word: Four-byte 0x80 pattern used to clear / center
* four byte axes at PadState.left_x through PadState.right_y. */
typedef Enum_(U1, PadRawStatus) {
PadRawStatus_Ok = 0x00,
PadRawStatus_Timeout = 0xFF,
};
typedef Enum_(U1, PadRawId) {
PadRawId_Digital = 0x41,
PadRawId_AnalogStick = 0x53,
PadRawId_AnalogPadMask = 0xF0,
PadRawId_AnalogPadValue = 0x70,
};
typedef Enum_(U1, PadUnknownId) {
PadUnknownId_Sentinel = 0xFF,
};
typedef Enum_(U4, PadAxisCentered) {
PadAxis_Centered_Hi = 0x8080,
PadAxis_Centered_Lo = 0x8080,
PadAxis_Centered_Word = 0x80808080U,
};
typedef Enum_(U1, PadDeadZone) {
PadDeadZone_LowBound = 0x70, /* left_x < LowBound → active; delta = 0x80 - left_x > 0 (rightward pull) */
PadDeadZone_Center = 0x80, /* analog rest position; left_x == Center → delta = 0 (no rotation) */
PadDeadZone_HighBound = 0x90, /* left_x > HighBound → active; delta = 0x80 - left_x < 0 (leftward pull) */
};
typedef Struct_(PadAxes) {
V2_U1 left; /* offset 8-9 */
V2_U1 right; /* offset 10-11 */
};
// Field order is chosen so that the 4 axes (left_x, left_y, right_x, right_y)
// form a contiguous 4-byte block at offset 8, allowing a single `store_word` to clear-or-write all 4 axes in one MIPS instruction.
typedef Struct_(PadState) {
PadStatus status; /* offset 0, (U4) */
PadBtns buttons; /* offset 4, */
U1 id; /* offset 6, */
byte_pad(1); /* offset 7, explicit pad to align the axes block */
union {
A2_V2_U1 axes; /* offset 8-11 store_target (4-byte aligned)*/
struct {
V2_U1 left; /* offset 8-9 */
V2_U1 right; /* offset 10-11 */
};
};
};
internal void pad_bios_init_start(PadBiosRaw* raw0, PadBiosRaw* raw1);
+23 -5
View File
@@ -64,9 +64,9 @@ typedef Struct_(Tile) {
Linear Algebra
*/
M3_S2* m3s2_rotation (V3_S2* vec, M3_S2* mat) asm("RotMatrix");
M3_S2* m3s2_translation(M3_S2* mat, V3_S4* vec) asm("TransMatrix");
M3_S2* m3s2_scale (M3_S2* mat, V3_S4* vec) asm("ScaleMatrix");
MT3_S2S4* mt3s2s4_rotation (V3_S2* vec, MT3_S2S4* mat) asm("RotMatrix");
MT3_S2S4* mt3s2s4_translation(MT3_S2S4* mat, V3_S4* vec) asm("TransMatrix");
MT3_S2S4* mt3s2s4_scale (MT3_S2S4* mat, V3_S4* vec) asm("ScaleMatrix");
// Rotation, Translation, Perspective
@@ -99,5 +99,23 @@ FI_ S4 rtp_avg_nclip_a4_v3s2(
);
}
void gte_matrix_set_rotation (M3_S2* mat) asm("SetRotMatrix");
void gte_matrix_set_translation(M3_S2* mat) asm("SetTransMatrix");
void gte_matrix_set_rotation (MT3_S2S4* mat) asm("SetRotMatrix");
void gte_matrix_set_translation(MT3_S2S4* mat) asm("SetTransMatrix");
// Einheit, Metrication to unit vector. "Normalization", not Orthogonal "Normal, Normalis". Directionalization.
// RGA(Lengyel): Normalize the bulk of a zero-weight direction. This is not finite-point unitization (which forces w=1).
S4 normalize_v3s4(V3_S4* v0, V3_S4* v1) asm("VectorNormal");
// RGA(Lengyel): Apply the matrix expansion of a rigid transformation.
// Motor antiproduct is equivalent for unitized points; LA form is what GTE consumes.
V3_S4* mul_m3s2_v3s4(MT3_S2S4* m, V3_S4* v, V3_S4* result) asm("ApplyMatrixLV");
// RGA(Lengyel): Store the full translation column. The motor translator would store half this displacement in m.xyz.
MT3_S2S4* trans_m3s2(MT3_S2S4* m, V3_S4* off) asm("TransMatrix");
MT3_S2S4* gte_comp_coord_m3s2(MT3_S2S4* m0, MT3_S2S4* m1, MT3_S2S4* result) asm("CompMatrixLV");
// RGA(Lengyel): Complement(Wedge(a,b)), i.e. the Euclidean 3D complement of the exterior product, stored as a V3_S4.
// The underlying GTE OP is a specialized signed-16-bit D x IR command; the wedge interpretation is a 3D dual of the same 3 scalars.
void cross_v3s4(V3_S4* v0, V3_S4* v1, V3_S4* result) asm("OuterProduct12");
+9
View File
@@ -54,6 +54,15 @@ WORD_COUNT(gte_sw, 1)
WORD_COUNT(gte_cmdw_rtpt, 1)
WORD_COUNT(gte_cmdw_nclip, 1)
WORD_COUNT(gte_avg_sort_z3, 1)
WORD_COUNT(gte_cmdw_sqr, 1)
WORD_COUNT(gte_cmdw_gpf, 1)
WORD_COUNT(shift_lleft_var, 1)
WORD_COUNT(shift_aright_var, 1)
WORD_COUNT(li_s, 1)
WORD_COUNT(and_i, 1)
WORD_COUNT(add_si, 1)
WORD_COUNT(branch_lt_zero, 1)
WORD_COUNT(sub_s, 1)
WORD_COUNT(sub_u, 1)
WORD_COUNT(nop2, 2)
+13
View File
@@ -0,0 +1,13 @@
#ifdef INTELLISENSE_DIRECTIVES
#pragma once
#endif
// Auto-generated by ps1_meta.lua (passes/auto_reg.lua) — DO NOT EDIT
// Directory: C:\projects\Pikuma\ps1\code\hello_camera
// source: C:/projects/Pikuma/ps1/code/hello_camera/hello_camera.c
// source: C:/projects/Pikuma/ps1/code/hello_camera/hello_camera.h
// source: C:/projects/Pikuma/ps1/code/hello_camera/hello_camera.atom.c
// Per-phase register allocations resolved by the lua pass.
// R_<Sym>_Code = <chosen GPR's _Code constant> for every marker in this directory.
#define R_GpTmp_Code R_V0_Code
+19 -1
View File
@@ -8,7 +8,7 @@
#pragma region hello_camera
// --- atom: pad_apply_input (60 words) ---
// --- atom: pad_input_cube_rotation (60 words) ---
#define _atom_offset_dpad_left_exit_dpad_left 6
#define _atom_offset_dpad_right_exit_dpad_right 6
@@ -26,6 +26,24 @@ enum {
atom_offset_end_low_exit_stick = _atom_offset_end_low_exit_stick,
};
// --- atom: pad_input_cam (40 words) ---
#define _atom_offset_left_x_exit_left_x 3
#define _atom_offset_right_x_exit_right_x 3
#define _atom_offset_up_y_exit_up_y 3
#define _atom_offset_down_y_exit_down_y 3
#define _atom_offset_cross_z_exit_cross_z 3
#define _atom_offset_circle_z_exit_circle_z 3
enum {
atom_offset_left_x_exit_left_x = _atom_offset_left_x_exit_left_x,
atom_offset_right_x_exit_right_x = _atom_offset_right_x_exit_right_x,
atom_offset_up_y_exit_up_y = _atom_offset_up_y_exit_up_y,
atom_offset_down_y_exit_down_y = _atom_offset_down_y_exit_down_y,
atom_offset_cross_z_exit_cross_z = _atom_offset_cross_z_exit_cross_z,
atom_offset_circle_z_exit_circle_z = _atom_offset_circle_z_exit_circle_z,
};
// --- atom: cube_g4_face (76 words) ---
#define _atom_offset_cull_cube_g4_face_exit 41
+529 -73
View File
@@ -17,6 +17,7 @@
# include "duffle/psyq.atom.c"
# include "gen/offsets.h"
# include "gen/macs.h"
# include "gen/auto_reg.h"
# include "hello_camera.h"
#endif
@@ -24,8 +25,8 @@ ATOM_FILE_DEBUGGER_LINE_MARKER(hello_joypad_atom_c);
#pragma region MACs (Mips Atom components)
FI_ Slice_MipsCode ac_put_disp_env(U4 reg_transfer, U4 reg_base, U2 port)
MipsAtomComp_Proc_(ac_put_disp_env, {
FI_ Slice_MipsCode ac_put_disp_env(MipsAtomBuilder_R ab, U4 reg_transfer, U4 reg_base, U2 port)
MipsAtomComp_Proc_(ac_put_disp_env, ab, {
// Emits 5 GP0 commands for buffer 0 (display_area = (0,0,320,240)).
// Sequence per libpsyx PutDispEnv: DrawArea TL → DrawArea BR → Mask → DrawArea TL → DrawArea BR
mac_gcmd_push(gp0_word_draw_area_top_left_origin, reg_transfer, reg_base, port),
@@ -35,8 +36,8 @@ MipsAtomComp_Proc_(ac_put_disp_env, {
mac_gcmd_push(gp0_word_draw_area_bottom_right_320x240, reg_transfer, reg_base, port),
})
FI_ Slice_MipsCode ac_put_draw_env(U4 reg_transfer, U4 reg_base, U2 port)
MipsAtomComp_Proc_(ac_put_draw_env, {
FI_ Slice_MipsCode ac_put_draw_env(MipsAtomBuilder_R ab, U4 reg_transfer, U4 reg_base, U2 port)
MipsAtomComp_Proc_(ac_put_draw_env, ab, {
/*
* ORIGIN: each code word corresponds to the EXACT value libpsyx's PutDrawEnv function would compute for the same DrawEnv settings.
* References:
@@ -50,18 +51,18 @@ MipsAtomComp_Proc_(ac_put_draw_env, {
* (binary; the PutDrawEnv implementation builds the 16-word DR_ENV from the user's DRAWENV struct and emits it via GP0 GPU commands.)
*
* Word indices (libpsyx PutDrawEnv / SetDrawEnv order):
* tag = (length << 24) | addr — 16-word packet (1 tag + 15 code)
* code[0] = DrawMode (dfe=1, dtd=0, tpage=0) — must come first per libpsyx
* code[1] = TextureWindow (tw=(0,0)) — bare-cmd word; GPU uses current state
* code[2] = DrawArea top-left (clip.x=0, clip.y=240)
* code[3] = DrawArea bottom-right (clip.x+w=320, clip.y+h=480)
* code[4] = DrawOffset (ofs=(0,0)) — bare-cmd word
* code[5] = Mask (dtd=0, dfe=1, isbg=1) — 0xE6 cmd + isbg bit
* code[6] = Initial-bg-color (isbg=1, r=7, g=7, b=7)
* code[7] = DrawMode (isbg=1, tpage=0) — re-asserts DrawMode with isbg
* code[8..10] = padding (NOP) — 3 words to fill the packet
* code[11..12] = TextureWindow bottom-right — defaults to (0,0,0,0)
* code[13..14] = padding (NOP) — completes the 16-word packet
* tag = (length << 24) | addr — 16-word packet (1 tag + 15 code)
* code[0] = DrawMode (dfe=1, dtd=0, tpage=0) — must come first per libpsyx
* code[1] = TextureWindow (tw=(0,0)) — bare-cmd word; GPU uses current state
* code[2] = DrawArea top-left (clip.x=0, clip.y=240)
* code[3] = DrawArea bottom-right (clip.x+w=320, clip.y+h=480)
* code[4] = DrawOffset (ofs=(0,0)) — bare-cmd word
* code[5] = Mask (dtd=0, dfe=1, isbg=1) — 0xE6 cmd + isbg bit
* code[6] = Initial-bg-color (isbg=1, r=7, g=7, b=7)
* code[7] = DrawMode (isbg=1, tpage=0) — re-asserts DrawMode with isbg
* code[8..10] = padding (NOP) — 3 words to fill the packet
* code[11..12] = TextureWindow bottom-right — defaults to (0,0,0,0)
* code[13..14] = padding (NOP) — completes the 16-word packet
*/
mac_gcmd_push(gp0_dr_env_tag, reg_transfer, reg_base, port), /* tag (length=15 << 24, addr=0) — packet header for the DR_ENV sequence. The GPU needs this to recognize the next 15 words as a DR_ENV packet and trigger the isbg auto-clear. */
mac_gcmd_push(gp0_word_draw_mode_drawing_allowed, reg_transfer, reg_base, port), /* code[0] DrawMode (dfe=1, dtd=0, tpage=0) */
@@ -90,6 +91,411 @@ MipsAtomComp_Proc_(ac_put_draw_env, {
#pragma endregion MACs
#pragma region Atom Procs
// Modular Atoms
/* Scratchpad layout for the resolve_look_at bundle.
* The chain atoms communicate entirely via the wave-context GPR carrier R_ResolveScratch (R_T4) + hardcoded offsets into smem.scratchpad
* (PS1 hardware scratchpad at 0x1F800000).
*
* Atom 0 (input_and_sub) STAGES the C-side inputs (eye, up_in) into the scratchpad;
* AT THE SAME TIME it computes fwd = target - eye and stores it at scratch+0.
* Atoms 1-6 then read/write specific scratchpad offsets internally using
* `r_scratch + hardcoded_offset` — no tape-data pointers are passed between atoms.
* +0 fwd (atom 0 writes; atom 1 reads)
* +16 uz (atom 1 writes; atoms 2 + 4 read)
* +32 right (atom 2 writes; atom 3 reads)
* +48 ux (atom 3 writes; atoms 4 + 6 read)
* +64 up (atom 4 writes; atom 5 reads)
* +80 uy (atom 5 writes; atom 6 reads)
* +96 eye (atom 0 stages from C-side pointer; atom 6 reads)
* +128 up_in (atom 0 stages from C-side pointer; atom 2 reads)
*/
// enum {
// R_LookAt = R_T0 atom_reg atom_type(MT3_S2S4*),
// R_CamEye = R_T1 atom_reg atom_type(P3_S4*),
// R_CamTarget = R_T2 atom_reg atom_type(P3_S4*),
// R_WorldUp = R_T3 atom_reg atom_type(V3_S4*),
// };
enum {
/* Wave-context GPR carrier for the resolve_look_at bundle: the scratch base.
* Set by atom 0 (popped from tape), read by atoms 1-6 (used as pointer base). */
R_ResolveScratch = R_T4 atom_reg atom_type(U4*),
};
typedef Struct_(Binds_ResolveLookAt) {
MT3_S2S4* look_at;
P3_S4* eye;
P3_S4* target;
V3_S4* up_in;
};
/* Per-atom bind-pop structs for the resolve_look_at bundle. */
typedef Struct_(Binds_ResolveLookAtScratch) {
U4 scratch_base; /* U4 (scratch base address — populated by helper with u4_(smem.scratchpad)) */
};
/* ─── ResolveLookAtScratch — offset schema for the resolve_look_at bundle's
* scratchpad slots (PS1 hardware scratchpad at 0x1F800000).
*
* Each slot is 16 bytes: V3_S4 is already 16 bytes (4 × S4 = x/y/z/pad).
* The struct fields are contiguous — slot i starts at offset i*16.
* Used by the assembly via O_(ResolveLookAtScratch, fld.x/y/z) which resolves to a compile-time byte offset.
* NOT a runtime struct — the struct is purely a schema for offsets; the assembly uses `r_scratch + O_(...)` to compute slot addresses at runtime.
*
* Slot producers/consumers (referenced by the resolve_look_at chain atoms):
* +0 fwd 0 writes (target - eye); atom 1 (normalize) reads
* +16 uz 1 writes (normalize fwd); atoms 2 + 4 read (cross operands)
* +32 right 2 writes (cross uz x up_in); atom 3 (normalize) reads
* +48 ux 3 writes (normalize right); atoms 4 + 6 read
* +64 up 4 writes (cross uz x ux); atom 5 (normalize) reads
* +80 uy 5 writes (normalize up); atom 6 reads
* +96 eye 0 stages (C-side input); atom 6 reads (translation column)
* +112 target reserved (currently written nowhere — kept for symmetry w/ eye)
* +128 up_in 0 stages (C-side input); atom 2 reads (cross operand)
*
* Fields use P3_S4 (point) for eye/target (RGA: affine point, implicit weight 1);
* V3_S4 (vector) for fwd/uz/right/ux/up/uy/up_in (RGA: Euclidean vector).
* P3_S4 is a storage alias of V3_S4 (see math.h comment: "Storage alias of V3_S4.
* Use P3_S4 when the value is a point.") — both are 16 bytes.
*/
typedef Struct_(ResolveLookAtScratch) {
V3_S4 fwd; /* offset +0 (16 bytes — 4 S4 fields incl. internal pad) */
V3_S4 uz; /* offset +16 (16 bytes) */
V3_S4 right; /* offset +32 (16 bytes) */
V3_S4 ux; /* offset +48 (16 bytes) */
V3_S4 up; /* offset +64 (16 bytes) */
V3_S4 uy; /* offset +80 (16 bytes) */
P3_S4 eye; /* offset +96 (16 bytes; storage alias of V3_S4) */
P3_S4 target; /* offset +112 (16 bytes; storage alias of V3_S4) */
V3_S4 up_in; /* offset +128 (16 bytes) */
};
/* ─── resolve_look_at bundle chain atoms ────────────────────────────
* 4 unique atom procs in the resolve_look_at bundle (4 chain atoms + 3 calls to generic normalize_v3s4_proc).
* All 4 chain atoms are runtime-built MipsAtom_Proc_ atoms: each function declares a static MipsCode[] body,
* then calls atombuilder_unroll() to append it to the caller's MipsAtomBuilder arena. resolve_look_at_init()
* uses this pattern to pre-build the bundle into the static arena (smem.resolve_look_at_arena).
*
* Atom roster:
* 0: resolve_look_at__input_and_sub (chain atom)
* 1: normalize_v3s4_proc (gte.atom.c) (generic normalize; called for fwd→uz)
* 2: resolve_look_at__cross_uz_up_in_to_right (chain atom)
* 3: normalize_v3s4_proc (gte.atom.c) (generic normalize; called for right→ux)
* 4: resolve_look_at__cross_uz_ux_to_up (chain atom)
* 5: normalize_v3s4_proc (gte.atom.c) (generic normalize; called for up→uy)
* 6: resolve_look_at__populate_and_translate (chain atom)
*
* The generic normalize_v3s4_proc is a parameterized 4-stage GTE normalize (SQR → mfc2 → LZCS → GPF → srav);
* it accepts scratch base + offset args so any caller (with a scratch base + struct schema) can use it.
*/
typedef Struct_(Binds_ResolveLookAtSub) {
U4 target; /* U4 (C-side P3_S4* — read by atom 0 directly; NOT a scratchpad address) */
U4 eye; /* U4 (C-side P3_S4* — read by atom 0 directly; staged into scratchpad by atom 0) */
U4 up_in; /* U4 (C-side V3_S4* — read by atom 0 directly; staged into scratchpad by atom 0) */
};
/* Atom 0 in the bundle: input_and_sub. Stages C-side inputs into the scratchpad and computes fwd = target - eye.
* Inputs (C-side pointers popped from the tape):
* r_target_ptr : P3_S4* (C-side struct; atom 0 reads target.x/y/z directly)
* r_eye_ptr : P3_S4* (C-side struct; staged into scratchpad at +96/+100/+104)
* r_up_in_ptr : V3_S4* (C-side struct; staged into scratchpad at +128/+132/+136)
* Wave-context output:
* r_scratch : R_ResolveScratch (R_T4) — scratch base, read by atoms 1-6
*
* Bind-pop layout:
* Binds_ResolveLookAtSub = 12 bytes (target + eye + up_in ptrs)
* Binds_ResolveLookAtScratch = 4 bytes (scratch_base)
* Staging work:
* * Stage eye.x/y/z → scratch+96/+100/+104 (for atom 6's translation column)
* * Stage up_in.x/y/z → scratch+128/+132/+136 (for atom 2's outer-product operand)
* * Compute fwd = target - eye, store fwd.x/y/z → scratch+0/+4/+8 (for atom 1)
*
* GPR codes (assigned by resolve_look_at_init):
* r_target_ptr : R_T0
* r_eye_ptr : R_T1
* r_up_in_ptr : R_T2
* r_scratch : R_T4 (R_ResolveScratch; wave-context carrier)
* r_tmp0 : R_T3 (stage eye/up_in + load eye.y)
* r_tmp1 : R_T5 (stage eye/up_in + load eye.z)
* r_tmp2 : R_T6 (stage eye/up_in + load target.x)
* r_tmp3 : R_T7 (stage eye/up_in + load target.y)
* R_AT : hardcoded (load eye.y / eye.z / target.z)
* R_V0 : hardcoded (load eye.z / target.z)
*
* Pool cost: 8 GPRs + R_T4 (carrier) + R_AT + R_V0 (hardcoded) = 11 GPRs.
*/
I_ void resolve_look_at__input_and_sub_proc(MipsAtomBuilder_R ab, U4 r_scratch
, U4 r_target_ptr,U4 r_eye_ptr, U4 r_up_in_ptr
, U4 r_tmp0, U4 r_tmp1, U4 r_tmp2, U4 r_tmp3
) MipsAtom_Proc_(resolve_look_at__input_and_sub, ab, {
/* Pop the 3 C-side pointers + scratch_base from the tape. */
load_word(r_target_ptr, R_TapePtr, O_(Binds_ResolveLookAtSub,target)),
load_word(r_eye_ptr, R_TapePtr, O_(Binds_ResolveLookAtSub,eye)),
load_word(r_up_in_ptr, R_TapePtr, O_(Binds_ResolveLookAtSub,up_in)),
add_ui_self( R_TapePtr, S_(Binds_ResolveLookAtSub)),
load_word(r_scratch, R_TapePtr, O_(Binds_ResolveLookAtScratch,scratch_base)),
add_ui_self( R_TapePtr, S_(Binds_ResolveLookAtScratch)),
/* Stage eye.x/y/z into the scratchpad (atom 6 reads these for the translation
* column). Reuse r_tmp0/r_tmp1/r_tmp2. Offsets via O_(ResolveLookAtScratch,*). */
load_word(r_tmp0, r_eye_ptr, O_(P3_S4,x)),
load_word(r_tmp1, r_eye_ptr, O_(P3_S4,y)),
load_word(r_tmp2, r_eye_ptr, O_(P3_S4,z)),
nop, /* load-delay */
store_word(r_tmp0, r_scratch, O_(ResolveLookAtScratch,eye.x)),
store_word(r_tmp1, r_scratch, O_(ResolveLookAtScratch,eye.y)),
store_word(r_tmp2, r_scratch, O_(ResolveLookAtScratch,eye.z)),
/* Stage up_in.x/y/z into the scratchpad (atom 2 reads these for the outer
* product with uz). Reuse r_tmp0/r_tmp1/r_tmp2. */
load_word(r_tmp0, r_up_in_ptr, O_(V3_S4,x)),
load_word(r_tmp1, r_up_in_ptr, O_(V3_S4,y)),
load_word(r_tmp2, r_up_in_ptr, O_(V3_S4,z)),
nop, /* load-delay */
store_word(r_tmp0, r_scratch, O_(ResolveLookAtScratch,up_in.x)),
store_word(r_tmp1, r_scratch, O_(ResolveLookAtScratch,up_in.y)),
store_word(r_tmp2, r_scratch, O_(ResolveLookAtScratch,up_in.z)),
/* Compute fwd = target - eye. */
load_word(r_tmp0, r_target_ptr, O_(P3_S4,x)),
load_word(r_tmp1, r_target_ptr, O_(P3_S4,y)),
load_word(r_tmp2, r_target_ptr, O_(P3_S4,z)),
load_word(r_tmp3, r_eye_ptr, O_(P3_S4,x)),
load_word(R_AT, r_eye_ptr, O_(P3_S4,y)),
load_word(R_V0, r_eye_ptr, O_(P3_S4,z)),
nop, /* load-delay */
sub_u(r_tmp0, r_tmp0, r_tmp3),
sub_u(r_tmp1, r_tmp1, R_AT),
sub_u(r_tmp2, r_tmp2, R_V0),
/* Store fwd.x/y/z (atom 1 reads these as the normalize src). */
store_word(r_tmp0, r_scratch, O_(ResolveLookAtScratch,fwd.x)),
store_word(r_tmp1, r_scratch, O_(ResolveLookAtScratch,fwd.y)),
store_word(r_tmp2, r_scratch, O_(ResolveLookAtScratch,fwd.z)),
mac_yield()
})
/* Atoms 2 + 4 in the bundle: out = a × b (GTE outer product on IR/D vectors).
* No bind pop — the three operand pointers (a, b, out) are derived in-body from r_scratch + hardcoded_offset.
* Each atom has its own variant because the offsets are baked into the body and each atom uses unique GPRs.
*
* GTE register layout (per PSX-SPX + duffle gte.h):
* IR1/2/3 = a.x/y/z (mtc2)
* VXY0 = b.x (mtc2)
* VZ0 = b.y (mtc2)
* VXY1 = b.z (mtc2)
* OP = outer product
* MAC1/2/3 = out.x/y/z (mfc2)
*
* Pool cost: r_scratch (R_T4 carrier) + 7 body GPRs + R_AT + R_V0 (hardcoded) = 10 GPRs.
*/
/* Atom 2: cross uz × up_in → right. */
I_ void resolve_look_at__cross_uz_up_in_to_right_proc(MipsAtomBuilder_R ab, U4 r_scratch
, U4 r_a, U4 r_b, U4 r_c /* load a.x/y/z; result out.x/y/z */
, U4 r_d /* load b.x */
, U4 r_f, U4 r_g, U4 r_h /* r_f = &right (out ptr), r_g = &uz, r_h = &up_in */
) MipsAtom_Proc_(resolve_look_at__cross_uz_up_in_to_right, ab, {
/* Compute the three scratch pointers from r_scratch. */
add_si(r_g, r_scratch, O_(ResolveLookAtScratch,uz)), /* r_g = &uz */
add_si(r_h, r_scratch, O_(ResolveLookAtScratch,up_in)), /* r_h = &up_in */
add_si(r_f, r_scratch, O_(ResolveLookAtScratch,right)), /* r_f = &right (out) */
nop,
/* Load a (uz).x/y/z into r_a/r_b/r_c. */
load_word(r_a, r_g, O_(V3_S4,x)),
load_word(r_b, r_g, O_(V3_S4,y)),
load_word(r_c, r_g, O_(V3_S4,z)),
nop,
/* Load b (up_in).x/y/z into r_d + R_AT/R_V0
(hardcoded; reusing the body's last two loads is fine because the load-delay slot is the nop after the third load,
and mtc2 below doesn't read these regs). */
load_word(r_d, r_h, O_(V3_S4,x)),
load_word(R_AT, r_h, O_(V3_S4,y)),
load_word(R_V0, r_h, O_(V3_S4,z)),
nop,
/* mtc2 a → IR1/2/3, b → D1/2/3 (VXY0/VZ0/VXY1). */
gte_mv_to_data_r(r_a, C2_IR1),
gte_mv_to_data_r(r_b, C2_IR2),
gte_mv_to_data_r(r_c, C2_IR3),
gte_mv_to_data_r(r_d, C2_VXY0), /* D1 = b.x */
gte_mv_to_data_r(R_AT, C2_VZ0), /* D2 = b.y */
gte_mv_to_data_r(R_V0, C2_VXY1), /* D3 = b.z */
nop2, /* MTC2 retirement (CPU→COP2 2-slot delay) */
gte_cmdw_outer_product, /* OP fires; MAC1/2/3 = a × b */
/* mfc2 MAC1/2/3 → r_a/r_b/r_c (out.x/y/z). */
gte_mv_from_data_r(r_a, C2_MAC1),
gte_mv_from_data_r(r_b, C2_MAC2),
gte_mv_from_data_r(r_c, C2_MAC3),
nop, /* MFC2 retirement */
/* Store out.x/y/z to r_f (out ptr = scratch+32). */
store_word(r_a, r_f, O_(V3_S4,x)),
store_word(r_b, r_f, O_(V3_S4,y)),
store_word(r_c, r_f, O_(V3_S4,z)),
mac_yield()
})
/* Atom 4: cross uz × ux → up. */
I_ void resolve_look_at__cross_uz_ux_to_up_proc(MipsAtomBuilder_R ab, U4 r_scratch
, U4 r_a, U4 r_b, U4 r_c /* load a.x/y/z; result out.x/y/z */
, U4 r_d /* load b.x */
, U4 r_f, U4 r_g, U4 r_h /* r_f = &up (out ptr), r_g = &uz, r_h = &ux */
) MipsAtom_Proc_(resolve_look_at__cross_uz_ux_to_up, ab, {
/* Compute the three scratch pointers from r_scratch. */
add_si(r_g, r_scratch, O_(ResolveLookAtScratch,uz)), /* r_g = &uz */
add_si(r_h, r_scratch, O_(ResolveLookAtScratch,ux)), /* r_h = &ux */
add_si(r_f, r_scratch, O_(ResolveLookAtScratch,up)), /* r_f = &up (out) */
nop,
/* Load a (uz).x/y/z into r_a/r_b/r_c. */
load_word(r_a, r_g, O_(V3_S4,x)),
load_word(r_b, r_g, O_(V3_S4,y)),
load_word(r_c, r_g, O_(V3_S4,z)),
nop,
/* Load b (ux).x/y/z into r_d + R_AT/R_V0. */
load_word(r_d, r_h, O_(V3_S4,x)),
load_word(R_AT, r_h, O_(V3_S4,y)),
load_word(R_V0, r_h, O_(V3_S4,z)),
nop,
/* mtc2 a → IR1/2/3, b → D1/2/3 (VXY0/VZ0/VXY1). */
gte_mv_to_data_r(r_a, C2_IR1),
gte_mv_to_data_r(r_b, C2_IR2),
gte_mv_to_data_r(r_c, C2_IR3),
gte_mv_to_data_r(r_d, C2_VXY0),
gte_mv_to_data_r(R_AT, C2_VZ0),
gte_mv_to_data_r(R_V0, C2_VXY1),
nop2,
gte_cmdw_outer_product,
gte_mv_from_data_r(r_a, C2_MAC1),
gte_mv_from_data_r(r_b, C2_MAC2),
gte_mv_from_data_r(r_c, C2_MAC3),
nop,
store_word(r_a, r_f, O_(V3_S4,x)),
store_word(r_b, r_f, O_(V3_S4,y)),
store_word(r_c, r_f, O_(V3_S4,z)),
mac_yield()
})
typedef Struct_(Binds_ResolveLookAtPopAndTrans) {
U4 look_at; /* U4 (MT3_S2S4* — destination matrix address) */
};
/* Atom 6 in the bundle: write look_at->m[][] from ux/uy/uz, then compute the translation column t[] = R * (-eye).
*
* GPR codes (assigned by resolve_look_at_init):
* r_look_at : MT3_S2S4* (popped from tape; output matrix destination)
* r_pux : pointer to ux (offset O_(ResolveLookAtScratch,ux))
* r_puy : pointer to uy (offset O_(ResolveLookAtScratch,uy))
* r_puz : pointer to uz (offset O_(ResolveLookAtScratch,uz))
* r_peye : pointer to eye (offset O_(ResolveLookAtScratch,eye))
* r_tmp0/1/2 : atom-local scratch (load + MVMVA + store temps)
*
* 4 pointer regs (r_pux/r_puy/r_puz/r_peye) are DEDICATED — they hold the scratch addresses for the entire body.
* They are computed in-body via `add_si(r_px, r_scratch, O_(ResolveLookAtScratch, field))` so no tape-data pointer is needed.
*
* Struct layout (per duffle/math.h):
* MT3_S2S4 { A3x3_S2 m; A3_S4 t; } → m[][] is S2 packed (9 × 2 = 18 bytes at offset 0)
* t[0/1/2] is S4 (3 × 4 = 12 bytes at offset 18)
*
* Translation column: GTE MVMVA with the world rotation matrix pre-set
* (helper emits set_gte_world before the bundle, per the bundle design).
* MVMVA computes R * pos (with cv=0/mx=0/sf=0/v=0); MAC1/2/3 = R * (-eye).
* Pool cost: r_look_at (1) + r_scratch (R_T4 carrier) + 4 ptr regs + 3 tmp regs = 9 GPRs.
*/
I_ void resolve_look_at__populate_and_translate_proc(MipsAtomBuilder_R ab
, U4 r_look_at
, U4 r_scratch
, U4 r_pux, U4 r_puy, U4 r_puz, U4 r_peye /* 4 dedicated pointer regs */
, U4 r_tmp0, U4 r_tmp1, U4 r_tmp2 /* 3 atom-local scratch regs */
) MipsAtom_Proc_(resolve_look_at__populate_and_translate, ab, {
/* Pop look_at* (the matrix output) — advance R_TapePtr by 4 bytes. */
load_word(r_look_at, R_TapePtr, O_(Binds_ResolveLookAtPopAndTrans,look_at)),
add_ui_self( R_TapePtr, S_(Binds_ResolveLookAtPopAndTrans)),
/* Compute the 4 scratch pointers in their dedicated GPRs. */
add_si(r_pux, r_scratch, O_(ResolveLookAtScratch,ux)), /* r_pux = &ux */
add_si(r_puy, r_scratch, O_(ResolveLookAtScratch,uy)), /* r_puy = &uy */
add_si(r_puz, r_scratch, O_(ResolveLookAtScratch,uz)), /* r_puz = &uz */
add_si(r_peye, r_scratch, O_(ResolveLookAtScratch,eye)), /* r_peye = &eye */
nop,
/* ── m[0] = (S2)ux ── */
load_word(r_tmp0, r_pux, O_(V3_S4,x)),
load_word(r_tmp1, r_pux, O_(V3_S4,y)),
load_word(r_tmp2, r_pux, O_(V3_S4,z)),
nop,
store_half(r_tmp0, r_look_at, O_(MT3_S2S4,m[0][0])),
store_half(r_tmp1, r_look_at, O_(MT3_S2S4,m[0][1])),
store_half(r_tmp2, r_look_at, O_(MT3_S2S4,m[0][2])),
/* ── m[1] = (S2)uy ── */
load_word(r_tmp0, r_puy, O_(V3_S4,x)),
load_word(r_tmp1, r_puy, O_(V3_S4,y)),
load_word(r_tmp2, r_puy, O_(V3_S4,z)),
nop,
store_half(r_tmp0, r_look_at, O_(MT3_S2S4,m[1][0])),
store_half(r_tmp1, r_look_at, O_(MT3_S2S4,m[1][1])),
store_half(r_tmp2, r_look_at, O_(MT3_S2S4,m[1][2])),
/* ── m[2] = (S2)uz ── */
load_word(r_tmp0, r_puz, O_(V3_S4,x)),
load_word(r_tmp1, r_puz, O_(V3_S4,y)),
load_word(r_tmp2, r_puz, O_(V3_S4,z)),
nop,
store_half(r_tmp0, r_look_at, O_(MT3_S2S4,m[2][0])),
store_half(r_tmp1, r_look_at, O_(MT3_S2S4,m[2][1])),
store_half(r_tmp2, r_look_at, O_(MT3_S2S4,m[2][2])),
/* ── Translation column t[i] = R * (-eye) ─────────────────────────────
* pos = -eye: load eye.x/y/z from r_peye, negate via sub_u from R_0. */
load_word(r_tmp0, r_peye, O_(P3_S4,x)),
load_word(r_tmp1, r_peye, O_(P3_S4,y)),
load_word(r_tmp2, r_peye, O_(P3_S4,z)),
nop,
sub_u(r_tmp0, R_0, r_tmp0), /* pos.x = -eye.x */
sub_u(r_tmp1, R_0, r_tmp1),
sub_u(r_tmp2, R_0, r_tmp2),
/* mtc2 IR1/2/3 = pos (for MVMVA — input vector registers). */
gte_mv_to_data_r(r_tmp0, C2_IR1),
gte_mv_to_data_r(r_tmp1, C2_IR2),
gte_mv_to_data_r(r_tmp2, C2_IR3),
nop2,
/* MVMVA: MAC1/2/3 = R * IR with cv=0 (no TR vector), mx=0 (rotation matrix), sf=0 (no shift), v=0 (V0 = IR1/2/3, no far-plane clipping).
* The pre-set rotation matrix is the one set by the preceding set_gte_world atom.
* gte_cmdw_mvmva is parameterless and defaults to cv=0/mx=0/sf=0/v=0. */
gte_cmdw_mvmva,
nop, /* GTE interlock */
/* mfc2 MAC1/2/3 → r_tmp0/r_tmp1/r_tmp2 (sign-extended into 32-bit GPRs).
* MAC1/2/3 hold R*v with no TR add and no perspective divide — exactly the 3 distinct world-space translation values we need for t[0..2]. */
gte_mv_from_data_r(r_tmp0, C2_MAC1),
gte_mv_from_data_r(r_tmp1, C2_MAC2),
gte_mv_from_data_r(r_tmp2, C2_MAC3),
nop,
store_word(r_tmp0, r_look_at, O_(MT3_S2S4,t[0])),
store_word(r_tmp1, r_look_at, O_(MT3_S2S4,t[1])),
store_word(r_tmp2, r_look_at, O_(MT3_S2S4,t[2])),
mac_yield()
})
#pragma endregion Atom Procs
#pragma region Baked Atoms
enum {
@@ -151,66 +557,66 @@ internal MipsAtom_(screen_env_init) atom_info(atom_phase(screen_init)
mac_yield(),
};
/* gp_screen_init's GPR setup. Tests the mixed user-pinning + auto-reg pattern:
* - R_IO_BaseAddr = R_T4 (user-pinned via atom_reg; pre-existing)
* - R_GP1_Offset = R_T2 (user-pinned via atom_reg; NEW -- for GPIO_PORT1_OFFSET)
* - R_ScreenX = R_T5 (user-pinned via atom_reg; used as a transfer and GTE setup reg)
* - R_GpTmp = auto-allocated by the lua pass and used for several GPU transfers;
* the C preprocessor resolves it to the chosen free pool GPR.
*
* For gp_screen_init, the auto-reg pool exclusions are:
* user_pinned (from the corpus register_alias_registry) : R_T0..R_T7 (all 8 user-pinned across hello_camera.atom.c)
* body-parsed physical registers : aliases resolve through the registry;
* the body uses R_ScreenX, not raw R_T5
* source_pool after both subtractions : {R_V0, R_V1} only
* R_GpTmp gets R_V0 (the first-fit choice). Its repeated GPU-transfer use proves that the
* auto-reg allocation is active while the R_ScreenX references prove the pinned alias is used.
* R_TapePtr (R_T9), R_AtomJmp (R_T8), R_AT are excluded from the POOL by construction in
* passes/auto_reg.lua -- see the "obvious exclusions" comment block at the top of that file.
*/
enum {
R_IO_BaseAddr = R_T4 atom_reg, /* Caller-pinned: IO_BASE_ADDR = 0x1F800000 */
R_GP1_Offset = R_T2 atom_reg, /* Caller-pinned: GPIO_PORT1_OFFSET = 0x10 */
atom_auto_reg(gp_screen_init, R_GpTmp), /* Auto-allocated scratch; resolved to a free pool GPR by the lua pass. C-preprocessor expands to R_GpTmp = R_GpTmp_Code with an atom_auto_reg trailing comment. */
#define R_IO_BaseAddr_Code R_T4_Code
#define R_GP1_Offset_Code R_T2_Code
};
internal MipsAtom_(gp_screen_init) atom_info(atom_phase(screen_init), atom_reads(R_IO_BaseAddr)) {
store_word(R_0, R_IO_BaseAddr, GPIO_PORT1_OFFSET), /* GP1(00h) Reset */
mac_gcmd_push(gp1_word_ResetCmdBuffer(), R_T5, R_IO_BaseAddr, GPIO_PORT1_OFFSET), /* GP1(01h) ClearFIFO */
mac_gcmd_push(gp1_word_AcknowledgeIRQ(), R_T5, R_IO_BaseAddr, GPIO_PORT1_OFFSET), /* GP1(02h) AckIRQ */
mac_gcmd_push(gp1_word_DisplayOn(), R_T5, R_IO_BaseAddr, GPIO_PORT1_OFFSET), /* GP1(03h) Display ON */
mac_gcmd_push(gp1_word_dma_to_gpu(), R_T5, R_IO_BaseAddr, GPIO_PORT1_OFFSET), /* GP1(04h) DMADirection=2 (CPUGPU). libpsyx's per-frame PutDrawEnv/DrawOTag use DMA2; without this the DMA queue never drains. */
mac_gcmd_push(gp1_word_StartDisplayArea(), R_T5, R_IO_BaseAddr, GPIO_PORT1_OFFSET), /* GP1(05h) StartDisplayArea (X=0, Y=0) */
mac_gcmd_push(gp1_word_ResetCmdBuffer(), R_ScreenX, R_IO_BaseAddr, GPIO_PORT1_OFFSET), /* GP1(01h) ClearFIFO; uses pinned R_ScreenX as the transfer reg. */
mac_gcmd_push(gp1_word_AcknowledgeIRQ(), R_ScreenX, R_IO_BaseAddr, GPIO_PORT1_OFFSET), /* GP1(02h) AckIRQ; uses pinned R_ScreenX as the transfer reg. */
mac_gcmd_push(gp1_word_DisplayOn(), R_ScreenX, R_IO_BaseAddr, GPIO_PORT1_OFFSET), /* GP1(03h) Display ON; uses pinned R_ScreenX as the transfer reg. */
mac_gcmd_push(gp1_word_dma_to_gpu(), R_GpTmp, R_IO_BaseAddr, GPIO_PORT1_OFFSET), /* GP1(04h) DMADirection=2 (CPU->GPU). libpsyx's per-frame PutDrawEnv/DrawOTag use DMA2; without this the DMA queue never drains. Uses auto-allocated R_GpTmp. */
mac_gcmd_push(gp1_word_StartDisplayArea(), R_GpTmp, R_IO_BaseAddr, GPIO_PORT1_OFFSET), /* GP1(05h) StartDisplayArea (X=0, Y=0); uses auto-allocated R_GpTmp. */
/* GP1: DisplayMode + Display Ranges */
mac_gcmd_push(gp1_word_display_mode_320x240_15bit_ntsc, R_T5, R_IO_BaseAddr, GPIO_PORT1_OFFSET),
mac_gcmd_push(gp1_word_horizontal_range_ntsc, R_T5, R_IO_BaseAddr, GPIO_PORT1_OFFSET),
mac_gcmd_push(gp1_word_vertical_range_ntsc, R_T5, R_IO_BaseAddr, GPIO_PORT1_OFFSET),
/* GP1: DisplayMode + Display Ranges. */
mac_gcmd_push(gp1_word_display_mode_320x240_15bit_ntsc, R_ScreenX, R_IO_BaseAddr, GPIO_PORT1_OFFSET),
mac_gcmd_push(gp1_word_horizontal_range_ntsc, R_ScreenX, R_IO_BaseAddr, GPIO_PORT1_OFFSET),
mac_gcmd_push(gp1_word_vertical_range_ntsc, R_ScreenX, R_IO_BaseAddr, GPIO_PORT1_OFFSET),
/* GTE: SetGeomOffset (OFX, OFY) — ScreenRes_CenterX, ScreenRes_CenterY. */
load_upper_i(R_T5, ScreenRes_CenterX), gte_mv_to_ctrl_r(R_T5, gte_cr_OFX_Code),
load_upper_i(R_T5, ScreenRes_CenterY), gte_mv_to_ctrl_r(R_T5, gte_cr_OFY_Code),
load_upper_i(R_ScreenX, ScreenRes_CenterX), gte_mv_to_ctrl_r(R_ScreenX, gte_cr_OFX_Code),
load_upper_i(R_ScreenX, ScreenRes_CenterY), gte_mv_to_ctrl_r(R_ScreenX, gte_cr_OFY_Code),
/* GTE: SetGeomScreen (H) — CR26 (per PSX-SPX / libpsyx), value is the raw projection-plane distance, NOT shifted. */
add_ui(R_T5, R_0, ScreenZ), gte_mv_to_ctrl_r(R_T5, gte_cr_H_Code),
add_ui(R_ScreenX, R_0, ScreenZ), gte_mv_to_ctrl_r(R_ScreenX, gte_cr_H_Code),
/* GP1: DisplayEnable — bit 0 = 0 (Display ON). */
mac_gcmd_push(gp1_word_DisplayOn(), R_T5, R_IO_BaseAddr, GPIO_PORT1_OFFSET),
mac_gcmd_push(gp1_word_DisplayOn(), R_GpTmp, R_IO_BaseAddr, GPIO_PORT1_OFFSET), /* Uses auto-allocated R_GpTmp. */
mac_yield(),
};
/* ----- pad_apply_input -----
* Reads pad[0].buttons + pad[0].left_x;
* Applies the input-semantics deltas to cube_rot.y + floor_rot.y:
* - D-pad Left: cube_rot.y += 30, floor_rot.y += 5
* - D-pad Right: cube_rot.y -= 30, floor_rot.y -= 5
* - Analog stick X (dead zone 0x70..0x90):
* cube delta = (0x80 - left_x) >> 2 (range approx -32..+32)
* floor delta = (0x80 - left_x) >> 5 (range approx -4..+4)
* - D-pad + analog deltas add when used together.
*
* Convention:
* pad_state = 0 means no buttons active.
* The fail-safe zero-button value flows through unchanged, so a disconnected/fresh pad produces no rotation.
* The branch_le_zero pattern below matches the existing pad_input_demo convention (atom body lines 248/257).
*
* Signed-delta trick:
* load_byte_u zero-extends left_x to 32 bits; sub_u from 0x80 wraps to a SIGNED two's-complement value in the negative range;
* shift_aright (sra) then correctly sign-extends the shift for both positive (left_x < 0x80) and negative (left_x > 0x80) cases.
* Digital pads publish left_x = 0x80 → delta = 0 → no rotation, so the analog step is naturally a no-op for digital controllers.
*/
typedef Struct_(Binds_PadApplyInput) {
PadState* state;
V3_S2* cube_rot;
V3_S2* floor_rot;
PadState* state;
V3_S2* cube_rot;
V3_S2* floor_rot;
};
enum {
R_PadStateT5 = R_T5 atom_reg,
R_CubeRot = R_T1 atom_reg,
R_FloorRot = R_T2 atom_reg,
};
internal MipsAtom_(pad_apply_input) atom_info(atom_bind(Binds_PadApplyInput)
internal MipsAtom_(pad_input_cube_rotation) atom_info(atom_bind(Binds_PadApplyInput)
, atom_reads(R_T0, R_CubeRot, R_FloorRot, R_T3, R_T4, R_PadStateT5, R_TapePtr)
, atom_writes( R_CubeRot, R_FloorRot)
) {
@@ -225,7 +631,7 @@ internal MipsAtom_(pad_apply_input) atom_info(atom_bind(Binds_PadApplyInput)
// Note(Ed): Potential op with delay slot?
/* D-pad Left: cube_rot.y += 30, floor_rot.y += 5. */
and_i(R_T3, R_T0, pad0_(Pad_Left)), branch_le_zero(R_T3, atom_offset(dpad_left, exit_dpad_left)),
and_i(R_T3, R_T0, Pad_Left), branch_le_zero(R_T3, atom_offset(dpad_left, exit_dpad_left)),
load_half( R_T4, R_CubeRot, O_(V3_S2,y)), /* BD-slot */
load_half( R_T3, R_FloorRot, O_(V3_S2,y)),
add_si( R_T4, R_T4, 30),
@@ -235,7 +641,7 @@ internal MipsAtom_(pad_apply_input) atom_info(atom_bind(Binds_PadApplyInput)
atom_label(exit_dpad_left)
/* D-pad Right: cube_rot.y -= 30, floor_rot.y -= 5. */
and_i(R_T3, R_T0, pad0_(Pad_Right)), branch_le_zero(R_T3, atom_offset(dpad_right, exit_dpad_right)),
and_i(R_T3, R_T0, Pad_Right), branch_le_zero(R_T3, atom_offset(dpad_right, exit_dpad_right)),
load_half( R_T4, R_CubeRot, O_(V3_S2,y)), /* BD-slot */
load_half( R_T3, R_FloorRot, O_(V3_S2,y)),
add_si( R_T4, R_T4, -30),
@@ -246,21 +652,21 @@ internal MipsAtom_(pad_apply_input) atom_info(atom_bind(Binds_PadApplyInput)
/* Analog left-stick X: dead zone 0x70..0x90.
* Cube delta = (0x80 - left_x) >> 2; floor delta = (0x80 - left_x) >> 5. */
load_byte_u(R_T3, R_PadStateT5, O_(PadState,left_x)),
load_byte_u(R_T3, R_PadStateT5, O_(PadState,left.x)),
/* Dead-zone check: skip analog if left_x in [0x70, 0x90] inclusive. Outside dead zone on LOW side: left_x < 0x70 (strictly).
* set_lt_u(R_T4, R_T3, R_T4=0x70) → R_T4 = (left_x < 0x70) ? 1 : 0. */
add_ui(R_T4, R_0, 0x70), set_lt_u(R_T4, R_T3, R_T4), branch_ne(R_T4, R_0, atom_offset(dead_zone_low_check, dead_low_active)),
add_ui(R_T4, R_0, 0x80), /* BD-slot: pre-load 0x80 for dead_low_active */
add_ui(R_T4, R_0, PadDeadZone_HighBound), set_lt_u(R_T4, R_T3, R_T4), branch_ne(R_T4, R_0, atom_offset(dead_zone_low_check, dead_low_active)),
add_ui(R_T4, R_0, PadDeadZone_Center), /* BD-slot: pre-load 0x80 for dead_low_active */
atom_label(dead_check_upper)
/* left_x >= 0x70 → check upper bound. */
load_byte_u(R_T3, R_PadStateT5, O_(PadState,left_x)), /* reload */
add_ui( R_T4, R_0, 0x90),
load_byte_u(R_T3, R_PadStateT5, O_(PadState,left.x)), /* reload */
add_ui( R_T4, R_0, PadDeadZone_HighBound),
/* R_T4 = (0x90 < left_x) ? 1 : 0 → (left_x > 0x90) ? 1 : 0 */
set_lt_u(R_T4, R_T4, R_T3), branch_ne(R_T4, R_0, atom_offset(dead_zone_high_check, dead_high_active)),
add_ui( R_T4, R_0, 0x80), /* BD-slot: pre-load 0x80 for dead_high_active */
add_ui( R_T4, R_0, PadDeadZone_Center), /* BD-slot: pre-load 0x80 for dead_high_active */
jump_rel(atom_offset(dead_zone_skip, exit_stick)),
mac_yield_load(),
@@ -273,8 +679,7 @@ atom_label(dead_low_active)
/* R_T4 = cube_delta */
shift_aright(R_T4, R_T3, 2),
load_half( R_T0, R_CubeRot, O_(V3_S2,y)),
nop,
load_half( R_T0, R_CubeRot, O_(V3_S2,y)), nop,
add_u( R_T0, R_T0, R_T4),
store_half( R_T0, R_CubeRot, O_(V3_S2,y)),
/* R_T4 = floor_delta — moved into the load-delay slot of the floor load below (fills the 1-instruction gap;
@@ -295,8 +700,7 @@ atom_label(dead_high_active)
/* delta = 0x80 - left_x (signed negative). */
shift_aright(R_T4, R_T3, 2), /* R_T4 = cube_delta (signed) */
load_half( R_T0, R_CubeRot, O_(V3_S2,y)),
nop,
load_half( R_T0, R_CubeRot, O_(V3_S2,y)), nop,
add_u( R_T0, R_T0, R_T4),
store_half( R_T0, R_CubeRot, O_(V3_S2,y)),
@@ -315,7 +719,60 @@ atom_label(exit_stick)
};
enum {
R_PrimCursor = R_T7 atom_reg atom_type(U4*), /* VRAM output cursor (primitive buffer) */
R_Cam = R_T4 atom_reg,
R_CamPadState = R_T5 atom_reg,
};
typedef Struct_(Binds_PadInputCam) {
PadState* state;
Camera* cam;
};
internal MipsAtom_(pad_input_cam) atom_info(atom_bind(Binds_PadInputCam)
, atom_reads( R_Cam, R_CamPadState, R_TapePtr)
, atom_writes(R_Cam)
) {
/* Bind pop: state → R_CamPadState (R_T5), cam → R_Cam (R_T4), advance R_TapePtr by 8. */
load_word(R_CamPadState, R_TapePtr, O_(Binds_PadInputCam,state)),
load_word(R_Cam, R_TapePtr, O_(Binds_PadInputCam,cam)),
add_ui_self( R_TapePtr, S_(Binds_PadInputCam)),
/* Load pad[0].buttons into R_T0; nop fills the load-delay slot. */
load_word(R_T0, R_CamPadState, O_(PadState,buttons)),
load_word(R_T1, R_Cam, O_(Camera,pos.x)), // BD-Slot.
// D-pad Left → cam.pos.x -= 50. and_i fulfills BD-slot for load on R_Cam.
and_i(R_T3, R_T0, Pad_Left), branch_le_zero(R_T3, atom_offset(left_x, exit_left_x)), mac_yield_load(),
add_si(R_T1, R_T1, -50), store_word(R_T1, R_Cam, O_(Camera,pos.x)),
atom_label(exit_left_x)
/* D-pad Right → cam.pos.x += 50. Reuses R_T1 from Left. */
and_i(R_T3, R_T0, Pad_Right), branch_le_zero(R_T3, atom_offset(right_x, exit_right_x)), nop,
add_si(R_T1, R_T1, 50), store_word(R_T1, R_Cam, O_(Camera,pos.x)),
atom_label(exit_right_x)
/* D-pad Up → cam.pos.y -= 50. Load pos.y BEFORE the andi. */
load_word(R_T1, R_Cam, O_(Camera,pos.y)),
and_i(R_T3, R_T0, Pad_Up), branch_le_zero(R_T3, atom_offset(up_y, exit_up_y)), nop,
add_si(R_T1, R_T1, -50), store_word(R_T1, R_Cam, O_(Camera,pos.y)),
atom_label(exit_up_y)
/* D-pad Down → cam.pos.y += 50. Reuses R_T1 from Up. */
and_i(R_T3, R_T0, Pad_Down), branch_le_zero(R_T3, atom_offset(down_y, exit_down_y)), nop,
add_si(R_T1, R_T1, 50), store_word(R_T1, R_Cam, O_(Camera,pos.y)),
atom_label(exit_down_y)
/* D-pad Cross → cam.pos.z -= 50. Load pos.z BEFORE the andi. */
load_word(R_T1, R_Cam, O_(Camera,pos.z)),
and_i(R_T3, R_T0, Pad_Cross), branch_le_zero(R_T3, atom_offset(cross_z, exit_cross_z)), nop,
add_si(R_T1, R_T1, -50), store_word(R_T1, R_Cam, O_(Camera,pos.z)),
atom_label(exit_cross_z)
/* D-pad Circle → cam.pos.z += 50. Reuses R_T1 from Cross. */
and_i(R_T3, R_T0, Pad_Circle), branch_le_zero(R_T3, atom_offset(circle_z, exit_circle_z)), nop,
add_si(R_T1, R_T1, 50), store_word(R_T1, R_Cam, O_(Camera,pos.z)),
atom_label(exit_circle_z)
mac_yield_tail(),
};
enum {
R_PrimCursor = R_T7 atom_reg atom_type(U4*), /* Output cursor (primitive buffer) */
R_FaceCursor = R_T4 atom_reg atom_type(V4_S2*), /* Cube face-index cursor (V4_S2*); floor context switches to V3_S2* via atom_phase */
R_VertBase = R_T5 atom_reg atom_type(V3_S2*), /* Base address of the vertex array */
R_OtBase = R_T6 atom_reg atom_type(U4*), /* Base address of the Ordering Table */
@@ -324,7 +781,6 @@ enum {
#define R_VertBase_Code R_T5_Code
#define R_OtBase_Code R_T6_Code
};
typedef Struct_(Binds_CubeTri) {
U4 PrimCursor;
V4_S2* FaceCursor;
@@ -344,7 +800,7 @@ internal MipsAtom_(rbind_cube_g4_face) atom_info(atom_bind(Binds_CubeTri), atom_
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),
atom_reads( R_PrimCursor, R_FaceCursor, R_VertBase, R_OtBase),
@@ -361,9 +817,9 @@ MipsAtom_(cube_g4_face) atom_info(atom_phase(cube_g4),
gte_mv_from_data_r(R_T0, C2_MAC0), nop,
branch_le_zero(R_T0, atom_offset(cull, cube_g4_face_exit)),
/* BD-slot: write the prim tag (R_0=0; overwrites the legacy tag word in the prim_buffer).
/* BD-slot: Write the prim tag (R_0=0; overwrites the legacy tag word in the prim_buffer).
* If branch IS taken (face culled), the body is skipped and this 0-tag is stranded —
* harmless because the OT entry that points to this prim is created later, only on the body path. */
* harmless because the OT entry that points to this prim is created later. */
store_word(R_0, R_PrimCursor, O_(Poly_G4, tag)),
shift_lleft(R_AT, R_T3, v3s2_byteoff), add_u(R_AT, R_AT, R_VertBase),
load_word(R_V0, R_AT, O_(V3_S2, x)), load_word(R_V1, R_AT, O_(V3_S2, z)),
@@ -379,7 +835,7 @@ MipsAtom_(cube_g4_face) atom_info(atom_phase(cube_g4),
set_lt_u( R_AT, R_T1, R_AT),
branch_equal(R_AT, R_0, atom_offset(bounds_chk, cube_g4_face_exit)), nop,
mac_insert_ot_tag_g4(R_OtBase, R_PrimCursor),
mac_insert_ot_tag(R_OtBase, R_PrimCursor, S_(Poly_G4)),
mac_format_g4_color(R_PrimCursor,
/* c0 magenta */ 0xFF, 0x00, 0xFF,
/* c1 yellow */ 0xFF, 0xFF, 0x00,
@@ -420,7 +876,7 @@ MipsAtom_(floor_f3_face) atom_info(atom_phase(floor_f3)
, atom_reads( R_PrimCursor, R_FaceCursor, R_VertBase, R_OtBase)
, atom_writes(R_PrimCursor, R_FaceCursor)
) {
mac_load_tri_indices( R_FaceCursor, R_T0, R_T1, R_T2),
mac_load_tri_indices(R_FaceCursor, R_T0, R_T1, R_T2),
mac_gte_load_tri_verts(R_VertBase, R_T0, R_T1, R_T2),
nop2, gte_cmdw_rotate_translate_perspective_triple, // 2 nops retire the final cpu -> gte writes before RTPT
gte_cmdw_nclip,
@@ -439,7 +895,7 @@ MipsAtom_(floor_f3_face) atom_info(atom_phase(floor_f3)
set_lt_u( R_AT, R_T1, R_AT),
branch_equal(R_AT, R_0, atom_offset(bounds_chk, floor_f3_face_exit)), nop,
mac_format_f3_color(R_PrimCursor, 0xFF, 0xFF, 0xFF), // RGB-form (R=FF, G=FF, B=FF = white)
mac_insert_ot_tag_f3(R_OtBase, R_PrimCursor), /* Insert into Ordering Table Linked List */
mac_insert_ot_tag(R_OtBase, R_PrimCursor, S_(Poly_F3)), /* Insert into Ordering Table Linked List */
add_ui_self(R_PrimCursor, S_(Poly_F3)), /* Advance Prim Cursor (5 words) */
// Note(Ed): No bounds checking, should be checked before atom runs.
// end: branch(bounds_chk)
+299 -89
View File
@@ -26,10 +26,12 @@
#include "duffle/dsl.atom.h"
#include "duffle/lottes_tape.h"
#include "duffle/bios.h"
#include "duffle/psyq.h"
#pragma endregion Duffle Headers
#pragma region Duffle TUs
#include "duffle/pad.c"
#include "duffle/math.atom.c"
#include "duffle/mips.atom.c"
#include "duffle/gte.atom.c"
@@ -41,6 +43,7 @@
#pragma region Hello Camera Headers
# include "gen/macs.h"
# include "gen/offsets.h"
# include "gen/auto_reg.h"
#include "hello_camera.h"
#pragma endregion Hello Camera Headers
@@ -50,8 +53,9 @@
#pragma endregion Hello Joypad TUs
enum {
Scratchpad_Len = 1024,
MemTape_Len = 512,
Scratchpad_Len = 1024,
MemTape_Len = 512,
ResolveLookAtArena_Words = 512,
};
typedef Struct_(SMemory) {
PrimitiveArena primitives;
@@ -61,7 +65,10 @@ typedef Struct_(SMemory) {
U4 MemTape[MemTape_Len];
M3_S2 tform_world;
MT3_S2S4 tform_world;
MT3_S2S4 tform_view;
Camera cam;
Ent_Cube cube;
Ent_Floor floor;
@@ -70,10 +77,24 @@ typedef Struct_(SMemory) {
PadState pad[2];
U4_V scratchpad; // d-cache
/* resolve_look_at bundle: pre-built atom arena + atom-refs.
* (Task 12.5 fix: moved from file-scope globals to smem fields.
* Task 12.7 fix: dropped the ResolveLookAtScratch struct-as-view; the
* C-side helper uses `& smem.scratchpad[N]` at hardcoded offsets directly.
* Task 12.8 fix: chain atoms use r_scratch + offset internally; no C-side magic offsets anywhere.
* Task 12.11 fix: ResolveLookAtScratch offset schema moved to hello_camera.atom.c — gte.atom.c
* is the GENERIC GTE primitives file and must not know about the resolve_look_at bundle's scratch layout.) */
U4 resolve_look_at_arena[ResolveLookAtArena_Words]; /* ~2 KB; bumped from 420 per Task 4 subagent */
MipsAtom* resolve_look_at_atom_addrs[7];
MipsAtomBuilder resolve_look_at_ab_static;
};
global SMemory smem;
extern SMemory smem;
#define pad0_btn_(btn) btn & smem.pad[0].buttons
#define pad1_btn_(btn) btn & smem.pad[1].buttons
I_ B1* prim__alloc(U4 type_width, Str8 type_name) {
gknown PrimitiveArena* pa = & smem.primitives;
gknown B1* buf = (B1*) r_(smem.primitives.buf)[smem.active_buf_id];
@@ -84,97 +105,226 @@ I_ B1* prim__alloc(U4 type_width, Str8 type_name) {
}
#define prim_alloc(type) (type*)prim__alloc(S_(type), slit( stringify(type)))
/* Uses ONE 8-byte frame allocated via the compiler's standard prologue.
* The 4 wasted-arg words for B(12h) InitPAD2 live at [SP+0..15] but are not explicitly allocated.
* The compiler handles the MIPS O32 "wasted stack" convention for us by treating the B-call as a 4-arg call.
*
* The buffer pointers are passed as arguments so the compiler keeps them in callee-saved registers;
* The B(12h) asm volatile block does NOT clobber those registers (it clobbers only the volatile GPRs + the B-table arg registers explicitly).
* The C-level writes after the call re-load the pointers from their callee-saved homes.
*
* The clobber list for both B-calls names the full BIOS destroy set documented in kernelbios.md:167-174 (R1..R15, R24..R25, R31, HI/LO).
* The kernel-ABI "volatile GPRs" subset is clb_system; the rest of the destroy set is enumerated explicitly here. */
NI_ void pad_bios_init_start(PadBiosRaw* raw0, PadBiosRaw* raw1)
{
/* Pin raw0 + raw1 to $a0 + $a1 via rgcc; the B(12h) call uses these directly.
* The `(void)` casts mark them as unread after the call so the compiler doesn't need to move them back. */
register PadBiosRaw* p0 rgcc(R_A0) = raw0;
register PadBiosRaw* p1 rgcc(R_A1) = raw1;
(void)p0; (void)p1;
void
resolve_look_at_c11(MT3_S2S4* look_at, P3_S4* eye, P3_S4* target, V3_S4* up_in) {
// RGA(Lengyel): Build matrix expansion of a rigid transformation. Corresponding motor is not constructed; we write the LA form for GTE.
// Preconditions: eye != target, up_in not collinear with (target - eye).
V3_S4 right, up, forward;
V3_S4 ux, uy, uz;
V3_S4 pos, off;
// TODO(Ed): Properly annotate the raw values in the inline asm instructions.
// Use enums.
forward = target[0]; sub_v3s4(& forward, eye[0]); // RGA(Lengyel): Affine point - point = zero-weight direction.
normalize_v3s4(& forward, & uz); // RGA(Lengyel): Normalize the direction bulk. Not finite-point unitization.
/* B(12h) InitPAD2(raw0, 0x22, raw1, 0x22)
* $a0 = raw0 (rgcc-bound; survives the sequence below)
* $a1 = raw1 (preserved into $a2 before $a1 is overwritten)
* $a2 = raw1 (moved from $a1; survives $a1's overwrite)
* $a3 = 0x22 (immediate)
* $t1 = 0x12 (function number)
* $t2 = 0xB0 (BIOS B-table address) */
asm volatile(
asm_words(
or_u( rarg_2, rarg_1, rdiscard), /* $a2 = $a1 = raw1 */
add_ui( rarg_1, rdiscard, 0x22), /* $a1 = 0x22 */
add_ui( rarg_3, rdiscard, 0x22), /* $a3 = 0x22 */
add_ui( rtmp_1, rdiscard, 0x12), /* $t1 = 0x12 */
add_ui( rtmp_2, rdiscard, 0xB0), /* $t2 = 0xB0 */
call_reg(rtmp_2), /* jalr $t2, $ra */
nop /* BD slot */
)
asm_rpins, r_use(p0), r_use(p1)
asm_clobber:
rlit(R_AT),
rlit(R_V0), rlit(R_V1),
rlit(R_T0), rlit(R_T1), rlit(R_T2), rlit(R_T3), rlit(R_T4),
rlit(R_T5), rlit(R_T6), rlit(R_T7), rlit(R_T8), rlit(R_T9),
rlit(R_RA),
clb_mem_drain
);
cross_v3s4(& uz, up_in, & right); normalize_v3s4(& right, & ux); // RGA(Lengyel): Complement(Wedge(forward, up_in)) -> right axis.
cross_v3s4(& uz, & ux, & up); normalize_v3s4(& up, & uy); // RGA(Lengyel): Complement(Wedge(forward, right)) -> up axis.
/* The C-level writes re-load the pointers via the parameter names and write 0xFF to each
* buffer's status byte to mark the initial-state hazard documented in kernelbios.md:1621-1624. */
u1_v(raw0)[0] = 0xFF;
u1_v(raw1)[0] = 0xFF;
// RGA(Lengyel): matrix expansion of the world-to-camera rotation (basis rows).
look_at->m[0][0] = ux.x; look_at->m[0][1] = ux.y; look_at->m[0][2] = ux.z;
look_at->m[1][0] = uy.x; look_at->m[1][1] = uy.y; look_at->m[1][2] = uy.z;
look_at->m[2][0] = uz.x; look_at->m[2][1] = uz.y; look_at->m[2][2] = uz.z;
/* B(13h) StartPAD2() — no args. The BIOS preserves $sp. */
asm volatile(
asm_words(
add_ui( rtmp_1, rdiscard, 0x13), /* $t1 = 0x13 */
add_ui( rtmp_2, rdiscard, 0xB0), /* $t2 = 0xB0 (re-load) */
call_reg(rtmp_2), /* jalr $t2, $ra */
nop /* BD slot */
)
asm_clobber:
rlit(R_AT),
rlit(R_V0), rlit(R_V1),
rlit(R_T0), rlit(R_T1), rlit(R_T2), rlit(R_T3), rlit(R_T4),
rlit(R_T5), rlit(R_T6), rlit(R_T7), rlit(R_T8), rlit(R_T9),
rlit(R_RA),
clb_mem_drain
);
pos = eye[0]; mul_v3s4(& pos, v3s4(-1,-1,-1)); // RGA(Lengyel): -eye in world coordinates (spatial bulk only; implicit weight is dropped).
// RGA(Lengyel): R * (-eye) is the full matrix translation column.
// Motor translator would store half this displacement in m.xyz; GTE consumes full column.
mul_m3s2_v3s4(look_at, & pos, & off);
trans_m3s2( look_at, & off);
}
/* Pre-build all 7 chain atoms of the resolve_look_at bundle into the static arena.
* Called ONCE from main() before the frame loop.
* After this returns, the smem.resolve_look_at_atom_addrs[] array contains valid MIPS atom pointers
* for the frame-time bundle helper to emit via tb_emit(tb, captured_addr).
*
* 4 unique procs in hello_camera.atom.c (chain atoms 0, 2, 4, 6); atoms 1, 3, 5
* share the GENERIC normalize_v3s4_proc from gte.atom.c (called 3x with different
* O_(ResolveLookAtScratch,...) offsets):
* 0: resolve_look_at__input_and_sub_proc
* 1: normalize_v3s4_proc (fwd → uz; offsets 0, 16)
* 2: resolve_look_at__cross_uz_up_in_to_right_proc
* 3: normalize_v3s4_proc (right → ux; offsets 32, 48)
* 4: resolve_look_at__cross_uz_ux_to_up_proc
* 5: normalize_v3s4_proc (up → uy; offsets 64, 80)
* 6: resolve_look_at__populate_and_translate_proc
*
* Task 12.16 promotion: the bundle-specific resolve_look_at__chain_normalize_proc
* has been promoted to the generic normalize_v3s4_proc (gte.atom.c), which now
* takes r_scratch + r_src_offset + r_dst_offset as U4 parameters. The 3 callers
* pass O_(ResolveLookAtScratch,...) macros as offset args. The metaprogram emits
* one set of `atom_offset__normalize_v3s4__srav_path__aligned_done` defs
* (namespaced by atom name) in duffle/gen/offsets.h, shared by all 3 callers.
*
* GPR pool per atom: 10 free GPRs (R_T0..R_T3 + R_T5..R_T7 + R_V0 + R_V1 + R_AT).
* R_T4 is reserved as the wave-context carrier (R_ResolveScratch).
*/
internal void resolve_look_at_init(void) {
/* Wrap the static arena in a MipsAtomBuilder. */
MipsAtomBuilder_R ab = & smem.resolve_look_at_ab_static;
ab->start = u4_(smem.resolve_look_at_arena);
ab->capacity = ResolveLookAtArena_Words;
ab->used = 0;
/* Atom 0: resolve_look_at__input_and_sub — stages eye/up_in into scratchpad,
* computes fwd = target - eye; binds R_ResolveScratch (R_T4) as the wave-context carrier for atoms 1-6.
* The body hardcodes R_AT and R_V0 as eye.y/eye.z temps (the existing sub_u(eye.x, eye.y, eye.z) chain from the prior Task 12.7 design). */
smem.resolve_look_at_atom_addrs[0] = (MipsAtom*)u4_v(ab->start + ab->used * sizeof(U4));
resolve_look_at__input_and_sub_proc(ab, R_ResolveScratch,
R_T0, /* r_target_ptr (popped from tape) */
R_T1, /* r_eye_ptr (popped from tape) */
R_T2, /* r_up_in_ptr (popped from tape) */
R_T3, R_T5, R_T6, R_T7); /* r_tmp<0-3> */
/* Atom 1: normalize_v3s4_proc (generic, from gte.atom.c) — src=scratch+0=fwd, dst=scratch+16=uz.
* The proc takes r_src_offset + r_dst_offset as U4 PARAMETERS — we pass the O_(...) macros here (evaluating to numeric literals 0 and 16).
* The 4-stage body is identical across the 3 call sites (atoms 1, 3, 5); only the offset args differ.
* GPR pool: r_scratch (R_T4 carrier) + 9 body GPRs = 10.
* r_src_ptr (R_T0) : src ptr
* r_dst_ptr (R_T1) : dst ptr
* r_tmp (R_T2) : unused (reserved for symmetry)
* r_mac1_scratch (R_T3) : MAC1 scratch
* r_mac2_scratch (R_T5) : src.x → result.x (carries through stages 1-2)
* r_recip_est (R_T6) : src.y → result.y
* r_lzcr (R_T7) : |v|² accumulator + srav amount (single reg)
* r_shift (R_V0) : LZCR (saved across stages 3-4)
* r_branch_tmp (R_V1) : src.z → result.z (reused after stage 1)
*/
smem.resolve_look_at_atom_addrs[1] = (MipsAtom*)u4_v(ab->start + ab->used * sizeof(U4));
normalize_v3s4_proc(ab, R_ResolveScratch, /* r_scratch (wave-context carrier) */
O_(ResolveLookAtScratch, fwd), /* r_src_offset = 0 */
O_(ResolveLookAtScratch, uz), /* r_dst_offset = 16 */
R_T0, R_T1, R_T2, /* r_src_ptr, r_dst_ptr, r_tmp */
R_T3, /* r_mac1_scratch */
R_T5, /* r_mac2_scratch */
R_T6, /* r_recip_est */
R_T7, /* r_lzcr */
R_V0, /* r_shift */
R_V1); /* r_branch_tmp */
/* Atom 2: resolve_look_at__cross_uz_up_in_to_right — a=scratch+16, b=scratch+128,
* out=scratch+32 (HARDCODED in body). GPR pool: r_scratch + 7 body + R_AT + R_V0 = 10. */
smem.resolve_look_at_atom_addrs[2] = (MipsAtom*)u4_v(ab->start + ab->used * sizeof(U4));
resolve_look_at__cross_uz_up_in_to_right_proc(ab, R_ResolveScratch, /* r_scratch (wave-context carrier; src/dst base) */
R_T0, R_T1, R_T2, /* r_a, r_b, r_c (a.x/y/z → out.x/y/z) */
R_T3, /* r_d (b.x) */
R_T5, /* r_f (out ptr = scratch+32) */
R_T6, /* r_g (a ptr = scratch+16) */
R_T7); /* r_h (b ptr = scratch+128) */
/* Atom 3: normalize_v3s4_proc (generic, from gte.atom.c) — src=scratch+32=right, dst=scratch+48=ux. */
smem.resolve_look_at_atom_addrs[3] = (MipsAtom*)u4_v(ab->start + ab->used * sizeof(U4));
normalize_v3s4_proc(ab, R_ResolveScratch,
O_(ResolveLookAtScratch, right), /* r_src_offset = 32 */
O_(ResolveLookAtScratch, ux), /* r_dst_offset = 48 */
R_T0, R_T1, R_T2,
R_T3,
R_T5,
R_T6,
R_T7,
R_V0,
R_V1);
/* Atom 4: resolve_look_at__cross_uz_ux_to_up — a=scratch+16, b=scratch+48, out=scratch+64 (HARDCODED). */
smem.resolve_look_at_atom_addrs[4] = (MipsAtom*)u4_v(ab->start + ab->used * sizeof(U4));
resolve_look_at__cross_uz_ux_to_up_proc(ab, R_ResolveScratch,
R_T0, R_T1, R_T2,
R_T3,
R_T5, /* r_f (out ptr = scratch+64) */
R_T6, /* r_g (a ptr = scratch+16) */
R_T7); /* r_h (b ptr = scratch+48) */
/* Atom 5: normalize_v3s4_proc (generic, from gte.atom.c) — src=scratch+64=up, dst=scratch+80=uy. */
smem.resolve_look_at_atom_addrs[5] = (MipsAtom*)u4_v(ab->start + ab->used * sizeof(U4));
normalize_v3s4_proc(ab, R_ResolveScratch,
O_(ResolveLookAtScratch, up), /* r_src_offset = 64 */
O_(ResolveLookAtScratch, uy), /* r_dst_offset = 80 */
R_T0, R_T1, R_T2,
R_T3,
R_T5,
R_T6,
R_T7,
R_V0,
R_V1);
/* Atom 6: resolve_look_at__populate_and_translate — write look_at->m[][] from ux/uy/uz (computed from r_scratch+offset internally),
then compute translation column t[] = R * (-eye). GPR pool: r_look_at + r_scratch + 4 ptr regs + 3 tmp regs = 9. */
smem.resolve_look_at_atom_addrs[6] = (MipsAtom*)u4_v(ab->start + ab->used * sizeof(U4));
resolve_look_at__populate_and_translate_proc(ab,
R_T0, /* r_look_at (popped from tape; MT3_S2S4*) */
R_ResolveScratch, /* r_scratch (wave-context carrier) */
R_T1, R_T3, R_T5, R_T7, /* r_pux, r_puy, r_puz, r_peye */
R_T2, R_T6, R_V0); /* r_tmp0, r_tmp1, r_tmp2 */
/* Sanity check: arena didn't overflow. */
assert(ab->used <= ResolveLookAtArena_Words);
}
/* Emit the resolve_look_at bundle into the tape. Called once per frame from update().
* The 7 chain atoms are pre-built at init time (resolve_look_at_init) and referenced by address via smem.resolve_look_at_atom_addrs[].
* Per-frame work: 7 tb_emit (atom pointer emissions) + 5 tb_data (C-side pointers for atom 0 + look_at for atom 6).
*
* Binds_ contract (the field-name labels are for human readability):
* Atom 0 input_and_sub target(4) eye(4) up_in(4) scratch_base(4) = 4 words
* Atoms 1-5 (no tape data — atom uses r_scratch + offset internally)
* Atom 6 populate_and_translate look_at(4) = 1 word
* ----
* 5 tb_data words total per frame.
*/
I_ void resolve_look_at(
TapeBuilder_R tb
, MT3_S2S4* look_at
, P3_S4* eye
, P3_S4* target
, V3_S4* up_in
){
/* Atom 0: input_and_sub — stages eye/up_in into scratchpad + computes fwd. */
tb_emit(tb, smem.resolve_look_at_atom_addrs[0]); {
tb_data(tb, u4_(target)); /* Binds_ResolveLookAtSub.target (C-side P3_S4*) */
tb_data(tb, u4_(eye)); /* Binds_ResolveLookAtSub.eye (C-side P3_S4*) */
tb_data(tb, u4_(up_in)); /* Binds_ResolveLookAtSub.up_in (C-side V3_S4*) */
tb_data(tb, u4_(smem.scratchpad)); /* Binds_ResolveLookAtScratch.scratch_base */
}
/* Atoms 1-5: NO tb_data — each chain atom uses r_scratch + hardcoded_offset internally (no tape-data pointers between atoms).
Context carrier R_ResolveScratch (R_T4) is preserved across atoms. */
tb_emit(tb, smem.resolve_look_at_atom_addrs[1]); { }
tb_emit(tb, smem.resolve_look_at_atom_addrs[2]); { }
tb_emit(tb, smem.resolve_look_at_atom_addrs[3]); { }
tb_emit(tb, smem.resolve_look_at_atom_addrs[4]); { }
tb_emit(tb, smem.resolve_look_at_atom_addrs[5]); { }
/* Atom 6: populate_and_translate — only output pointer is the matrix destination. */
tb_emit(tb, smem.resolve_look_at_atom_addrs[6]); {
tb_data(tb, u4_(look_at)); /* Binds_ResolveLookAtPopAndTrans.look_at (MT3_S2S4*) */
}
}
FI_ void camera_look_at_c11(Camera* c, P3_S4* target, V3_S4* up_in) { resolve_look_at_c11(& c->look_at, & c->pos, target, up_in); }
GCC_OPTIMIZATION_DISABLE
void update(PrimitiveArena* pa, U4* ordering_buf)
{
TapeBuilder tb = tb_make(slice_ut_arr(smem.MemTape));
if (1) // Pad Input
// Pad Input
{
tb.used = 0; tb_scope_run(& tb) {
/* BIOS-owned polling: per-frame snapshot of both ports. */
// Grab latest state from bios.
tb_emit_(pad_bios_snapshot);
tb_data_(raw, & smem.pad_raw[0]);
tb_data_(raw, & smem.pad_raw[0]);
tb_data_(state, & smem.pad[0]);
tb_emit_(pad_bios_snapshot);
tb_data_(raw, & smem.pad_raw[1]);
tb_data_(state, & smem.pad[1]);
/* Per-frame rotation apply: consume pad[0].buttons + pad[0].left_x */
tb_emit_(pad_apply_input);
tb_data_(state, & smem.pad[0]);
tb_data_(cube_rot, & smem.cube.rot);
tb_data_(floor_rot, & smem.floor.rot);
tb_emit_(pad_input_cam);
tb_data_(state, & smem.pad[0]);
tb_data_(cam, & smem.cam);
// tb_emit_(pad_input_cube_rotation);
// tb_data_(state, & smem.pad[0]);
// tb_data_(cube_rot, & smem.cube.rot);
// tb_data_(floor_rot, & smem.floor.rot);
}
}
@@ -201,15 +351,64 @@ void update(PrimitiveArena* pa, U4* ordering_buf)
A2_S2 p; //???
S4 flag; //????
// Camera Look at (Tape) + inline C11 fallback — bundle runs, then C11 inlines the look_at.
// Currently: bundle's atom 0 (input_and_sub) runs + C11 does the rest. As bundle atoms
// are incrementally fixed, the corresponding C11 lines get commented out.
if (1)
{
tb.used = 0; tb_scope_run(& tb) {
resolve_look_at(& tb, & smem.cam.look_at, & smem.cam.pos, & smem.cube.pos, & v3s4(0, -fp_one, 0));
}
// RGA(Lengyel): Build matrix expansion of a rigid transformation. Corresponding motor is not constructed; we write the LA form for GTE.
// Preconditions: eye != target, up_in not collinear with (target - eye).
V3_S4 right, up, forward;
V3_S4 ux, uy, uz;
V3_S4 pos, off;
// forward = smem.cube.pos; sub_v3s4(& forward, smem.cam.pos); // RGA(Lengyel): Affine point - point = zero-weight direction. (now done by bundle atom 0)
// Read fwd from scratchpad[+0] (atom 0's output)
forward.x = u4_v(0x1F800000)[0];
forward.y = u4_v(0x1F800000)[1];
forward.z = u4_v(0x1F800000)[2];
forward.pad = u4_v(0x1F800000)[3];
// normalize_v3s4(& forward, & uz); // RGA(Lengyel): Normalize the direction bulk. Not finite-point unitization. (now done by bundle atom 1)
// Read uz from scratchpad[+16] (atom 1's output)
uz.x = u4_v(0x1F800010)[0];
uz.y = u4_v(0x1F800010)[1];
uz.z = u4_v(0x1F800010)[2];
uz.pad = u4_v(0x1F800010)[3];
cross_v3s4(& uz, & v3s4(0, -fp_one, 0), & right); normalize_v3s4(& right, & ux); // RGA(Lengyel): Complement(Wedge(forward, up_in)) -> right axis.
cross_v3s4(& uz, & ux, & up); normalize_v3s4(& up, & uy); // RGA(Lengyel): Complement(Wedge(forward, right)) -> up axis.
// RGA(Lengyel): matrix expansion of the world-to-camera rotation (basis rows).
smem.cam.look_at.m[0][0] = ux.x; smem.cam.look_at.m[0][1] = ux.y; smem.cam.look_at.m[0][2] = ux.z;
smem.cam.look_at.m[1][0] = uy.x; smem.cam.look_at.m[1][1] = uy.y; smem.cam.look_at.m[1][2] = uy.z;
smem.cam.look_at.m[2][0] = uz.x; smem.cam.look_at.m[2][1] = uz.y; smem.cam.look_at.m[2][2] = uz.z;
pos = smem.cam.pos; mul_v3s4(& pos, v3s4(-1,-1,-1)); // RGA(Lengyel): -eye in world coordinates (spatial bulk only; implicit weight is dropped).
// RGA(Lengyel): R * (-eye) is the full matrix translation column.
// Motor translator would store half this displacement in m.xyz; GTE consumes full column.
mul_m3s2_v3s4(& smem.cam.look_at, & pos, & off);
trans_m3s2( & smem.cam.look_at, & off);
}
// Draw cube
if (1)
{
m3s2_rotation (& smem.cube.rot, & smem.tform_world);
m3s2_translation(& smem.tform_world, & smem.cube.pos);
m3s2_scale (& smem.tform_world, & smem.cube.scale);
gte_matrix_set_rotation (& smem.tform_world);
gte_matrix_set_translation(& smem.tform_world);
mt3s2s4_rotation (& smem.cube.rot, & smem.tform_world);
mt3s2s4_translation(& smem.tform_world, & smem.cube.pos);
mt3s2s4_scale (& smem.tform_world, & smem.cube.scale);
// Combine world and look_at matrix.
gte_comp_coord_m3s2(& smem.cam.look_at, & smem.tform_world, & smem.tform_view);
gte_matrix_set_rotation (& smem.tform_view);
gte_matrix_set_translation(& smem.tform_view);
// gte_matrix_set_rotation (& smem.tform_world);
// gte_matrix_set_translation(& smem.tform_world);
U4 prim_base = u4_(pa->buf[smem.active_buf_id]);
U4 prim_cursor = prim_base + pa->used;
@@ -230,16 +429,22 @@ void update(PrimitiveArena* pa, U4* ordering_buf)
tb_data(& tb, u4_(& pa->used));
tb_data(& tb, prim_base);
}
tape_run(tb_slice(tb));
tape_run_a02_s07(tb_slice(tb));// Fire off the tape (bigger-clobber variant).
// smem.cube.rot.y += 30;
}
// Draw floor
if (1)
{
m3s2_rotation (& smem.floor.rot, & smem.tform_world);
m3s2_translation(& smem.tform_world, & smem.floor.pos);
m3s2_scale (& smem.tform_world, & smem.floor.scale);
mt3s2s4_rotation (& smem.floor.rot, & smem.tform_world);
mt3s2s4_translation(& smem.tform_world, & smem.floor.pos);
mt3s2s4_scale (& smem.tform_world, & smem.floor.scale);
// Combine world and look_at matrix.
gte_comp_coord_m3s2(& smem.cam.look_at, & smem.tform_world, & smem.tform_view);
gte_matrix_set_rotation (& smem.tform_view);
gte_matrix_set_translation(& smem.tform_view);
U4 prim_base = u4_(pa->buf[smem.active_buf_id]);
U4 prim_cursor = prim_base + pa->used;
@@ -249,11 +454,11 @@ void update(PrimitiveArena* pa, U4* ordering_buf)
// Prepare the tape. (Push protocol to tape)
tb.used = 0; tb_scope(& tb) {
tb_emit(& tb, set_gte_world);
tb_data(& tb, u4_(& smem.tform_world));
// tb_emit(& tb, set_gte_mt3s2s4);
// tb_data(& tb, u4_(& smem.tform_view));
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, u4_(smem.floor.faces));
tb_data(& tb, u4_(smem.floor.verts));
@@ -266,7 +471,7 @@ void update(PrimitiveArena* pa, U4* ordering_buf)
tb_data(& tb, u4_(& pa->used));
tb_data(& tb, prim_base);
}
tape_run(tb_slice(tb));// Fire off the tape.
tape_run_a02_s07(tb_slice(tb));// Fire off the tape (bigger-clobber variant).
// C-side state (pa->used) has already been updated by the tape!
// smem.floor.rot.y += 5;
@@ -296,6 +501,7 @@ int main(void)
smem.scratchpad = C_(U4_V, 0x1F800000);
// smem.primitives.used = 0;
// smem.active_buf_id = 0;
smem.cam.pos = v3s4(500, -1000, -1500);
/*Persistent Entity Setup*/{
ent_cube128_init(& smem.cube.verts, & smem.cube.faces); {
Ent_Cube* cube = & smem.cube;
@@ -315,6 +521,10 @@ int main(void)
reset_graph(0);
/* Direct BIOS: poll both ports during VBlank. */
pad_bios_init_start(& smem.pad_raw[0], & smem.pad_raw[1]);
/* Pre-build the resolve_look_at bundle atoms into the static arena. */
resolve_look_at_init();
/* Pinned registers for the GPU init atom. */
register U4* io_base_addr rgcc(R_IO_BaseAddr) = u4_r(IO_BASE_ADDR);
register DoubleBuffer* screen_buf rgcc(R_ScreenBuf) = & smem.screen_buf;
+8 -8
View File
@@ -21,12 +21,6 @@ enum {
ScreenRes_CenterY = (ScreenRes_Y >> 1),
};
enum {
fp_one = (1 << 12),
};
#define v3s4_fp_one() v3s4(fp_one, fp_one, fp_one)
typedef U4 OrderingTable_Buffer[OrderingTbl_Len];
typedef Array_(OrderingTable_Buffer, 2);
@@ -67,7 +61,7 @@ I_ void ent_cube128_init(A8_V3_S2* verts, A6_V4_S2* faces) {
typedef Struct_(Ent_Cube) {
V3_S4 accel;
V3_S4 vel;
V3_S4 pos;
V3_S4 pos; // RGA(Lengyel): affine point with implicit weight one. Storage alias of V3_S4.
V3_S4 scale;
V3_S2 rot;
A8_V3_S2 verts;
@@ -94,9 +88,15 @@ I_ void ent_floor_init(A4_V3_S2* verts, A2_V3_S2* faces) {
};
typedef Struct_(Ent_Floor) {
V3_S4 accel;
V3_S4 pos;
V3_S4 pos; // RGA(Lengyel): affine point with implicit weight one. Storage alias of V3_S4.
V3_S4 scale;
V3_S2 rot;
A4_V3_S2 verts;
A2_V3_S2 faces;
};
typedef Struct_(Camera) {
P3_S4 pos; // RGA(Lengyel): affine point with implicit weight one. Storage alias of V3_S4.
V3_S2 rot;
MT3_S2S4 look_at;
};
+6 -6
View File
@@ -24,8 +24,8 @@ ATOM_FILE_DEBUGGER_LINE_MARKER(hello_joypad_atom_c);
#pragma region MACs (Mips Atom components)
FI_ Slice_MipsCode ac_put_disp_env(U4 reg_transfer, U4 reg_base, U2 port)
MipsAtomComp_Proc_(ac_put_disp_env, {
FI_ Slice_MipsCode ac_put_disp_env(MipsAtomBuilder_R ab, U4 reg_transfer, U4 reg_base, U2 port)
MipsAtomComp_Proc_(ac_put_disp_env, ab, {
// Emits 5 GP0 commands for buffer 0 (display_area = (0,0,320,240)).
// Sequence per libpsyx PutDispEnv: DrawArea TL → DrawArea BR → Mask → DrawArea TL → DrawArea BR
mac_gcmd_push(gp0_word_draw_area_top_left_origin, reg_transfer, reg_base, port),
@@ -35,8 +35,8 @@ MipsAtomComp_Proc_(ac_put_disp_env, {
mac_gcmd_push(gp0_word_draw_area_bottom_right_320x240, reg_transfer, reg_base, port),
})
FI_ Slice_MipsCode ac_put_draw_env(U4 reg_transfer, U4 reg_base, U2 port)
MipsAtomComp_Proc_(ac_put_draw_env, {
FI_ Slice_MipsCode ac_put_draw_env(MipsAtomBuilder_R ab, U4 reg_transfer, U4 reg_base, U2 port)
MipsAtomComp_Proc_(ac_put_draw_env, ab, {
/*
* ORIGIN: each code word corresponds to the EXACT value libpsyx's PutDrawEnv function would compute for the same DrawEnv settings.
* References:
@@ -116,7 +116,7 @@ internal MipsAtom_(screen_env_init) atom_info(atom_phase(screen_init)
store_word(R_0, R_ScreenBuf, O_(DisplayEnv,vinterlace) + OA_(DoubleBuffer,display,1)),
mac_store_rects2(R_0, R_ScreenY, R_ScreenX, R_ScreenY, R_ScreenBuf, O_(DrawEnv,clip_area) + OA_(DoubleBuffer,draw,0)), /* draw[0].clip_area = (0, 240, 320, 240). C11's SetDefDrawEnv writes clip.y = y_arg. */
mac_store_v2s2( R_0, R_ScreenY, R_ScreenBuf, O_(DrawEnv,drawing_offset[0]) + OA_(DoubleBuffer,draw,0)), /* draw[0].drawing_offset[0] = (0, 240); C11 passes y_arg as ofs. */
mac_store_v2s2(R_0, R_ScreenY, R_ScreenBuf, O_(DrawEnv,drawing_offset[0]) + OA_(DoubleBuffer,draw,0)), /* draw[0].drawing_offset[0] = (0, 240); C11 passes y_arg as ofs. */
mac_store_v2s2(R_ScreenX, R_ScreenY, R_ScreenBuf, O_(DrawEnv,clip_area.width) + OA_(DoubleBuffer,draw,1)),
@@ -286,7 +286,7 @@ MipsAtom_(floor_f3_face) atom_info(atom_phase(floor_f3)
, atom_reads( R_PrimCursor, R_FaceCursor, R_VertBase, R_OtBase)
, atom_writes(R_PrimCursor, R_FaceCursor)
) {
mac_load_tri_indices( R_FaceCursor, R_T0, R_T1, R_T2),
mac_load_tri_indices(R_FaceCursor, R_T0, R_T1, R_T2),
mac_gte_load_tri_verts(R_VertBase, R_T0, R_T1, R_T2),
nop2, gte_cmdw_rotate_translate_perspective_triple, // 2 nops retire the final cpu -> gte writes before RTPT
gte_cmdw_nclip,
+2 -2
View File
@@ -24,8 +24,8 @@
* Emits 9 instructions (status/buttons/axes/attempt stores plus the
* two-instruction zero-extended buttons load).
*/
FI_ Slice_MipsCode ac_pad_sio_write_pad_state(U4 status_val, U4 state_ptr_reg, U4 scratch_reg)
MipsAtomComp_Proc_(ac_pad_sio_write_pad_state, {
FI_ Slice_MipsCode ac_pad_sio_write_pad_state(MipsAtomBuilder_R ab, U4 status_val, U4 state_ptr_reg, U4 scratch_reg)
MipsAtomComp_Proc_(ac_pad_sio_write_pad_state, ab, {
add_ui(scratch_reg, R_0, status_val),
store_word(scratch_reg, state_ptr_reg, O_(PadState,status)),
/* FIX 2026-08-02: buttons = 0x0000FFFF = "no buttons pressed" in
+5 -11
View File
@@ -180,12 +180,9 @@ function link-modules { param([string[]]$link_modules, [string] $elf, [string[]
$link_args += ($f_link_pass_through_prefix + $f_link_mapfile + $map)
$link_args += ($f_link_pass_through_prefix + $f_link_start_group)
# raw_sio_pad_poll_20260802 — Task 5.1c surgical library-list trim.
# The 16 removed entries (c2, card, cd, comb, ds, gs, gun, hmd, math,
# mcrd, mcx, press, sio, snd, spu, tap) had LOAD lines in the map but
# ZERO .o files pulled in — they were unused. The 5 kept libraries
# (api, c, etc, gpu, gte) are required by the C-side calls in
# hello_joypad.c (reset_graph, draw_sync, vsync, etc.).
# 16 removed entries (c2, card, cd, comb, ds, gs, gun, hmd, math, mcrd, mcx, press, sio, snd, spu, tap)
# had LOAD lines in the map but ZERO .o files pulled in — they were unused.
# 5 kept libraries (api, c, etc, gpu, gte) are required by the C-side calls in hello_joypad.c (reset_graph, draw_sync, vsync, etc.).
$libraries = @(
"api",
"c",
@@ -227,9 +224,7 @@ function ps1-meta { param(
[string[]]$passes = @('--pre-link'),
[string[]]$extra_args = @()
)
# `--unity-root` and `--source` are
# mutually exclusive. Exactly one of `$unity_root` / `$sources` must
# be supplied; the other must be absent.
# `--unity-root` and `--source` are mutually exclusive. Exactly one of `$unity_root` / `$sources` must be supplied; the other must be absent.
if ($null -ne $unity_root -and $unity_root -ne '')
{
if ($null -ne $sources -and $sources.Count -gt 0) {
@@ -522,7 +517,7 @@ function build-hello_camera {
$path_build_gen = join-path $path_build 'gen'
$src_c = join-path $path_module 'hello_camera.c'
ps1-meta -unity_root $src_c -metadata $path_atom_metadata -out_root $path_build_gen
ps1-meta -unity_root $src_c -metadata $path_atom_metadata -out_root $path_build_gen -passes @('--pre-link')
$assemble_args = @()
$assemble_args += $f_debug
@@ -557,7 +552,6 @@ function build-hello_camera {
link-modules $link_modules $elf $link_args
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)
inject-dwarf $elf $path_build_gen
+68 -14
View File
@@ -217,7 +217,7 @@ local function parse_path_root(input)
if not server_end or server_end == server_start then
error("UNC path requires //server/share: " .. input, 3)
end
local server = input:sub(server_start, server_end - 1)
local server = input:sub(server_start, server_end - 1)
local share_start = server_end + 1
while input:sub(share_start, share_start) == "/" do
share_start = share_start + 1
@@ -515,8 +515,7 @@ local function splice_c_lines(source)
local splice_len = nil
if byte == BYTE_BACKSLASH and source:byte(pos + 1) == BYTE_NEWLINE then
splice_len = 2
elseif byte == BYTE_BACKSLASH and source:byte(pos + 1) == BYTE_CR
and source:byte(pos + 2) == BYTE_NEWLINE then
elseif byte == BYTE_BACKSLASH and source:byte(pos + 1) == BYTE_CR and source:byte(pos + 2) == BYTE_NEWLINE then
splice_len = 3
end
@@ -1053,6 +1052,8 @@ M.GTE_COMMAND_ALIASES = {
-- gte_avg_sort_z3 / gte_avg_sort_z4 are the duffle-side aliases for AVSZ3/4.
["gte_avg_sort_z3"] = "gte_cmdw_avsz3",
["gte_avg_sort_z4"] = "gte_cmdw_avsz4",
["gte_cmdw_sqr"] = "gte_cmdw_sqr",
["gte_cmdw_gpf"] = "gte_cmdw_gpf",
}
-- GTE command input-set table.
@@ -1136,6 +1137,14 @@ M.GTE_COMMAND_INPUTS = {
"C2_SZ0", "C2_SZ1", "C2_SZ2", "C2_SZ3",
"gte_cr_ZSF4",
},
-- SQR: reads IR1..IR3 (per PSX-SPX gte.md SQR section; libgte disassembly 0x800160b0).
["gte_cmdw_sqr"] = {
"C2_IR1", "C2_IR2", "C2_IR3",
},
-- GPF: reads IR0 + IR1..IR3 (per PSX-SPX gte.md GPF section; libgte disassembly 0x8001613c).
["gte_cmdw_gpf"] = {
"C2_IR0", "C2_IR1", "C2_IR2", "C2_IR3",
},
}
-- GTE command output-set + semantic role table.
@@ -1208,6 +1217,22 @@ M.GTE_COMMAND_OUTPUTS = {
{ register = "C2_IR2", role = "latest_color" },
{ register = "C2_IR3", role = "latest_color" },
},
["gte_cmdw_sqr"] = {
{ register = "C2_MAC1", role = "mac_result" },
{ register = "C2_MAC2", role = "mac_result" },
{ register = "C2_MAC3", role = "mac_result" },
{ register = "C2_IR1", role = "latest_color" },
{ register = "C2_IR2", role = "latest_color" },
{ register = "C2_IR3", role = "latest_color" },
},
["gte_cmdw_gpf"] = {
{ register = "C2_MAC1", role = "mac_result" },
{ register = "C2_MAC2", role = "mac_result" },
{ register = "C2_MAC3", role = "mac_result" },
{ register = "C2_IR1", role = "latest_color" },
{ register = "C2_IR2", role = "latest_color" },
{ register = "C2_IR3", role = "latest_color" },
},
}
-- GTE command/post-command latch-window table.
@@ -1270,6 +1295,22 @@ M.GTE_COMMAND_LATCH_WINDOWS = {
{ register = "C2_IR2", required = 4 },
{ register = "C2_IR3", required = 4 },
},
["gte_cmdw_sqr"] = {
{ register = "C2_MAC1", required = 4 },
{ register = "C2_MAC2", required = 4 },
{ register = "C2_MAC3", required = 4 },
{ register = "C2_IR1", required = 4 },
{ register = "C2_IR2", required = 4 },
{ register = "C2_IR3", required = 4 },
},
["gte_cmdw_gpf"] = {
{ register = "C2_MAC1", required = 4 },
{ register = "C2_MAC2", required = 4 },
{ register = "C2_MAC3", required = 4 },
{ register = "C2_IR1", required = 4 },
{ register = "C2_IR2", required = 4 },
{ register = "C2_IR3", required = 4 },
},
}
-- Operand-class table for the COP2->GPR load-delay check.
@@ -1285,6 +1326,7 @@ M.GTE_COMMAND_LATCH_WINDOWS = {
M.OPERAND_READ_POSITIONS = {
-- CPU ALU with one or two GPR operands. Reads every GPR operand.
["add_ui"] = {1, 2},
["li_s"] = {1, 2}, -- rt (write), imm16 (immediate)
["add_ui_self"] = {1},
["add_si"] = {1, 2},
["add_u"] = {1, 2, 3},
@@ -1354,6 +1396,8 @@ M.OPERAND_READ_POSITIONS = {
["gte_mv_to_ctrl_r"] = {},
["gte_lw"] = {},
["gte_sw"] = {},
["shift_lleft_var"] = {1, 2, 3}, -- rd, rt, rs (variable shift amount)
["shift_aright_var"] = {1, 2, 3},
}
-- GP0 packet sizes (total words including the 1-word tag) per GP0 cmd byte.
@@ -1435,8 +1479,10 @@ M.INSTRUCTION_LATENCY = {
["xor_i"] = 1, ["xor_u"] = 1,
["nor_u"] = 1,
["shift_lleft"] = 1, ["shift_lleft_self"] = 1,
["shift_lleft_var"] = 1, -- sllv: 1 cycle
["shift_lright"] = 1,
["shift_aright"] = 1,
["shift_aright_var"] = 1, -- srav: 1 cycle
["mask_upper"] = 1,
["mov_from_high"] = 2, -- mfhi: 2 cycles
["mov_from_low"] = 2, -- mflo: 2 cycles
@@ -1454,6 +1500,7 @@ M.INSTRUCTION_LATENCY = {
["load_half_u"] = 1, ["load_half"] = 1,
["load_byte_u"] = 1, ["load_byte"] = 1,
["load_upper_i"] = 1,
["li_s"] = 1, -- aliased to add_ui(rt, R_0, imm); 1 cycle
-- 2-word loads (lui + ori) used for >16-bit immediates
["load_imm"] = 2,
["load_imm_1w"] = 1,
@@ -1497,6 +1544,8 @@ M.INSTRUCTION_LATENCY = {
["gte_cmdw_op"] = 6, -- OP: 6 cycles (PSX-SPX)
["gte_cmdw_outer_product"] = 6, -- alias for OP
["gte_cmdw_wedge"] = 6, -- alias for OP
["gte_cmdw_sqr"] = 5, -- SQR(sf): 5 cycles (PSX-SPX); +2 nops for pre-fill if sf=0/1
["gte_cmdw_gpf"] = 5, -- GPF(sf,lm): 5 cycles (PSX-SPX); +2 nops for pre-fill if needed
-- Long-form aliases (same cycle cost as their short form)
["gte_cmdw_rotate_translate_perspective_single"] = 15, -- alias for rtps
["gte_cmdw_rotate_translate_perspective_triple"] = 23, -- alias for rtpt
@@ -1777,6 +1826,7 @@ M.CU2_TRANSITION_POLICY = {
M.INSTRUCTION_GPR_EFFECTS = {
-- CPU ALU with one or two GPR operands. Reads every GPR operand position.
add_ui = { reads = {1, 2}, writes = {1} },
li_s = { reads = {1, 2}, writes = {1} }, -- RMW: rt is both read + written
add_ui_self = { reads = {1}, writes = {1} },
add_si = { reads = {1, 2}, writes = {1} },
add_u = { reads = {2, 3}, writes = {1} },
@@ -1893,6 +1943,8 @@ M.INSTRUCTION_GPR_EFFECTS = {
atom_writes = { reads = {}, writes = {} },
-- mac_yield transfers control to the next atom; zero GPR effects.
mac_yield = { reads = {}, writes = {} },
shift_lleft_var = { reads = {2, 3}, writes = {1} },
shift_aright_var = { reads = {2, 3}, writes = {1} },
}
-- Bounded GPR-value rules consumed by the same forward event walk as `INSTRUCTION_GPR_EFFECTS`.
@@ -1903,18 +1955,19 @@ M.INSTRUCTION_GPR_EFFECTS = {
-- * passes/static_analysis.lua::apply_gpr_effects
-- No second `bounded_value_pass` is permitted.
M.GPR_VALUE_RULES = {
load_upper_i = { op = "load_upper_i", dest = 1, immediate = 2, },
add_ui = { op = "add_ui", dest = 1, source = 2, immediate = 3, },
or_i = { op = "or_i", dest = 1, source = 2, immediate = 3, },
and_i = { op = "and_i", dest = 1, source = 2, immediate = 3, },
xor_i = { op = "xor_i", dest = 1, source = 2, immediate = 3, },
add_ui_self = { op = "add_ui", dest = 1, source = 1, immediate = 2, },
or_i_self = { op = "or_i", dest = 1, source = 1, immediate = 2, },
load_upper_i = { op = "load_upper_i", dest = 1, immediate = 2, },
add_ui = { op = "add_ui", dest = 1, source = 2, immediate = 3, },
li_s = { op = "add_ui", dest = 1, source = 2, immediate = 3 }, -- R_0 + sign-ext(imm) folds into a constant
or_i = { op = "or_i", dest = 1, source = 2, immediate = 3, },
and_i = { op = "and_i", dest = 1, source = 2, immediate = 3, },
xor_i = { op = "xor_i", dest = 1, source = 2, immediate = 3, },
add_ui_self = { op = "add_ui", dest = 1, source = 1, immediate = 2, },
or_i_self = { op = "or_i", dest = 1, source = 1, immediate = 2, },
-- Present register-form self variants. They are included here so a
-- known value is not needlessly lost when these encoders are used.
add_u_self = { op = "add_u", dest = 1, sources = {1, 2}, },
or_u_self = { op = "or", dest = 1, sources = {1, 2}, },
shift_lleft_self = { op = "shift_lleft", dest = 1, source = 1, immediate = 2, },
add_u_self = { op = "add_u", dest = 1, sources = {1, 2}, },
or_u_self = { op = "or", dest = 1, sources = {1, 2}, },
shift_lleft_self = { op = "shift_lleft", dest = 1, source = 1, immediate = 2, },
}
-- Control-transfer (branch/jump/call) delay-slot policy table.
@@ -2041,7 +2094,8 @@ local E_MAC_PREFIX_LEN = 4
--- * Unknown `mac_X` (not in `component_index`): fall back to `word_counts[ident]` if present; otherwise emit one opaque event so the cycle budget accounts for the word.
--- * Marker Tokens (`atom_label(...)` / `atom_offset(...)`): Zero events (they are pure metaprogram hints).
---
--- Cycle protection: a per-expansion `visiting` set tracks components currently on the expansion stack; a re-entry produces a deterministic `{kind = "cycle", ...}` error and aborts that branch (does NOT hang, does NOT recurse).
--- Cycle protection: a per-expansion `visiting` set tracks components currently on the expansion stack;
--- a re-entry produces a deterministic `{kind = "cycle", ...}` error and aborts that branch (does NOT hang, does NOT recurse).
---
--- Pure: reads `body_entry` / `component_index` / `word_counts`. Memoization is the caller's responsibility.
--- Callers wanting `word_events` / `word_event_errors` precomputed for many atoms should memoize them per atom.
+2 -3
View File
@@ -47,15 +47,14 @@ local function find_repo_root()
return root
end
--- Set `package.path` (for `require("duffle")` + `require("passes.X")`) and
--- `package.cpath` (for `lpeg.dll`).
--- Set `package.path` (for `require("duffle")` + `require("passes.X")`) and `package.cpath` (for `lpeg.dll`).
---
--- This script does NOT touch the OS environment: no `os.setenv`, no `os.putenv`, no `$PATH` mods.
--- It just sets `package.path` and `package.cpath` (the standard Lua way to register module search dirs).
--- lpeg is built by `update_deps.ps1` to `toolchain/lpeg/`,
--- which we wire into `package.cpath` here (so `require("lpeg")` from `duffle.lua` resolves without any global state).
function M.setup()
local repo_root = find_repo_root()
local repo_root = find_repo_root()
if not repo_root then
-- 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).
+418
View File
@@ -0,0 +1,418 @@
-- elf32.lua — Pure-Lua ELF32 format helpers with no lfs / no lpeg dependency.
-- The reload helper's `parse_manifest` (scripts/pcsx_debug_helper/reload.lua)
-- and the metaprogram's `read_elf_sections` + `read_nm` (scripts/elf_dwarf.lua)
-- both parsed ELF32 headers from wire bytes.
--
-- This module contains the format constants and the byte-level walker.
--- The metaprogram side keeps `read_u32_le` / `read_u16_le` as local forwarders; the helper side calls `E.*` directly.
--
-- **Adapter contract (explicit pass style):**
-- The helper VM's `Support.File` exposes byte-read methods that require `self` (fileffi.lua:225-227),
-- so callers wrap once in a 1-line adapter that strips `self`.
-- The parsers here operate on the unwrapped form.
-- Reads are flat function calls — `E.read_u8(adapter, off)`, `E.read_u32(adapter, off)`, `E.size(adapter)`.
-- read_u8(adapter, off) -> integer | nil
-- read_u16(adapter, off) -> integer | nil
-- read_u32(adapter, off) -> integer | nil
-- size(adapter) -> integer
--
-- **Convention:** every offset in the constants tables is a zero-based wire offset.
-- The `+ 1` conversion happens only at the `string.byte` boundary inside the readers.
--
-- spec: System V ABI gABI v1.2 §"ELF Header" (Table 1) + §"Section Header Table"
-- spec: System V ABI gABI v1.2 §"Symbol Table" (Elf32_Sym layout)
local M = {}
-- ════════════════════════════════════════════════════════════════════════════
-- Little-endian readers (bit-weighted accumulator, math.floor only)
-- ════════════════════════════════════════════════════════════════════════════
--- Read a 4-byte little-endian unsigned integer from `adapter` at zero-based wire offset `off`.
---
--- Bit weights are written as `0x100`, `0x10000`, `0x1000000` (i.e. 2^8, 2^16, 2^24) so the LE byte positions are visually explicit:
--- byte 0 contributes its value directly;
--- byte 1 is shifted left by 8; byte 2 by 16; byte 3 by 24.
---
--- math.floor (not LuaJIT's `>>`) keeps the body portable across LuaJIT 2.0/2.1 and plain Lua 5.x. `string.byte` receives `+ 1` at the boundary.
---
--- **Call form:** explicit-pass. The reader receives `adapter` as the first positional argument and the offset as the second; no `self` is passed.
--- Test fixtures declare `function(offset) ... end` and the parsers call them via dot syntax `adapter.read_u8_at(off)`.
--- The colon form `adapter:read_u8_at(off)` would prepend the adapter table as `offset` and break the contract.
--- @param adapter table
--- @param off integer -- zero-based wire offset
--- @return integer|nil
function M.read_u32(adapter, off)
return adapter.read_u8_at(off)
+ adapter.read_u8_at(off + 0x01) * 0x00000100
+ adapter.read_u8_at(off + 0x02) * 0x00010000
+ adapter.read_u8_at(off + 0x03) * 0x01000000
end
--- Read a 2-byte little-endian unsigned integer from `adapter` at zero-based wire offset `off`.
--- @param adapter table
--- @param off integer -- zero-based wire offset
--- @return integer|nil
function M.read_u16(adapter, off)
return adapter.read_u8_at(off)
+ adapter.read_u8_at(off + 0x01) * 0x00000100
end
--- Read a 1-byte unsigned integer from `adapter` at zero-based wire offset `off`.
--- @param adapter table
--- @param off integer -- zero-based wire offset
--- @return integer|nil
function M.read_u8(adapter, off)
return adapter.read_u8_at(off)
end
--- Total adapter byte length.
--- @param adapter table
--- @return integer
function M.size(adapter)
return adapter.read_size()
end
--- Forwarders kept for backward compat with scripts/elf_dwarf.lua.
--- The metaprogram side keeps `read_u32_le` / `read_u16_le`;
--- both layers now use the same byte-level helpers under the hood.
function M.read_u32_le(buf, off)
local byte_off = off + 1
return buf:byte(byte_off)
+ buf:byte(byte_off + 0x01) * 0x00000100
+ buf:byte(byte_off + 0x02) * 0x00010000
+ buf:byte(byte_off + 0x03) * 0x01000000
end
--- Read a 2-byte little-endian unsigned integer from `buf` at zero-based wire offset `off`.
--- @param buf string
--- @param off integer -- zero-based wire offset
--- @return integer
function M.read_u16_le(buf, off)
local byte_off = off + 1
return buf:byte(byte_off) + buf:byte(byte_off + 0x01) * 0x00000100
end
-- ════════════════════════════════════════════════════════════════════════════
-- Format constants
-- ════════════════════════════════════════════════════════════════════════════
-- ELF format constants (System V ABI gABI v1.2).
M.ELFCLASS32 = 1 -- spec: gABI v1.2 §"ELF Header" — EI_CLASS byte
M.ELFDATA2LSB = 1 -- spec: gABI v1.2 §"ELF Header" — EI_DATA byte
M.EM_MIPS = 8 -- spec: gABI v1.2 §"Machine Information" — MIPS architecture
-- Section type constants (System V ABI gABI v1.2 §"Section Header Table").
M.SHT_SYMTAB = 2 -- spec: gABI v1.2 §"Section Types" — symbol table
M.SHT_STRTAB = 3 -- spec: gABI v1.2 §"Section Types" — string table
M.SHT_NOBITS = 8 -- spec: gABI v1.2 §"Section Types" — no space in file
-- Section flag constants (System V ABI gABI v1.2 §"Section Header Table").
M.SHF_WRITE = 0x1 -- spec: gABI v1.2 §"Section Attributes" — writable
M.SHF_ALLOC = 0x2 -- spec: gABI v1.2 §"Section Attributes" — occupies memory
M.SHF_EXECINSTR = 0x4 -- spec: gABI v1.2 §"Section Attributes" — executable
-- ---------------------------------------------------------------------------
-- ELF32 header layout (System V ABI gABI v1.2 §"ELF Header" Table 1)
-- ---------------------------------------------------------------------------
-- All offsets are zero-based wire offsets. The header is 52 bytes total (header_bytes = 0x34 = 52).
M.ELF32_HEADER = {
magic_offset = 0x00, -- 4 bytes; expected "\127ELF"
magic = "\127ELF",
class_offset = 0x04, -- 1 byte; 1 = ELF32, 2 = ELF64
endian_offset = 0x05, -- 1 byte; 1 = little-endian, 2 = big-endian
header_bytes = 0x34, -- ELF32 header is 52 bytes total
e_entry_offset = 0x18, -- 4-byte LE; entry-point virtual address
e_shoff_offset = 0x20, -- 4-byte LE; section-header table file offset
e_shentsize_offset = 0x2E, -- 2-byte LE; section-header entry size in bytes
e_shnum_offset = 0x30, -- 2-byte LE; number of section headers
e_shstrndx_offset = 0x32, -- 2-byte LE; index of section-name string table
}
-- ---------------------------------------------------------------------------
-- ELF32 section-header layout (System V ABI gABI v1.2 §"Section Header Table")
-- ---------------------------------------------------------------------------
-- Each entry is 40 bytes (sh_entsize_bytes = 0x28 = 40);
-- zero-based, field offsets relative to the start of the entry.
M.ELF32_SECTION = {
sh_name_offset = 0x00, -- 4-byte LE; offset into .shstrtab
sh_type_offset = 0x04, -- 4-byte LE; section type (SHT_*)
sh_flags_offset = 0x08, -- 4-byte LE; section flags (SHF_*)
sh_addr_offset = 0x0C, -- 4-byte LE; virtual address at execution
sh_offset_offset = 0x10, -- 4-byte LE; section's file offset
sh_size_offset = 0x14, -- 4-byte LE; section's size in bytes
sh_link_offset = 0x18, -- 4-byte LE; link to a related section
sh_entsize_bytes = 0x28, -- spec: gABI v1.2 §"Section Header Table" — 40 bytes per entry
}
-- ---------------------------------------------------------------------------
-- ELF32 symbol-table entry layout (System V ABI gABI v1.2 §"Symbol Table")
-- ---------------------------------------------------------------------------
-- Each entry is 16 bytes (sym_entry_bytes = 0x10 = 16);
-- zero-based, field offsets relative to the start of the entry.
M.ELF32_SYM = {
st_name = 0x00, -- 4-byte LE; offset into the linked string table
st_value = 0x04, -- 4-byte LE; symbol value (address / absolute)
st_size = 0x08, -- 4-byte LE; symbol size in bytes
st_info = 0x0C, -- 1 byte; binding (high nibble) + type (low nibble)
sym_entry_bytes = 0x10, -- spec: gABI v1.2 §"Symbol Table" — 16 bytes per entry
}
-- DWARF32 initial-length terminator (DWARF4 §7.4) — kept here so the metaprogram's elf_dwarf.lua can drop its own copy of the same constant.
M.dw_dwarf32_terminator = 0xFFFFFFFF
-- ════════════════════════════════════════════════════════════════════════════
-- Adapter validation
-- ════════════════════════════════════════════════════════════════════════════
--- Validate that `adapter` exposes the byte-read surface.
--- Returns true on success, false + a stable error code on failure.
--- The helper side calls this before parse_manifest to reject callers before any byte is read.
--- @param adapter any
--- @return boolean, string|nil
function M.validate_adapter(adapter)
if type(adapter) ~= "table" then return false, "bad_file_adapter" end
if type(adapter.read_u8_at) ~= "function" then return false, "bad_file_adapter" end
if type(adapter.read_u16_at) ~= "function" then return false, "bad_file_adapter" end
if type(adapter.read_u32_at) ~= "function" then return false, "bad_file_adapter" end
if type(adapter.read_size) ~= "function" then return false, "bad_file_adapter" end
return true, nil
end
-- ════════════════════════════════════════════════════════════════════════════
-- String-table reader
-- ════════════════════════════════════════════════════════════════════════════
--- Extract a NUL-terminated C string from `strtab` at zero-based offset `off`.
--- Returns nil if `off` is out of range or the string is not NUL-terminated.
--- @param strtab string
--- @param off integer
--- @return string|nil
function M.get_str(strtab, off)
if off < 0 or off >= #strtab then return nil end
local end_pos = strtab:find("\0", off + 1, true)
if not end_pos then return nil end
return strtab:sub(off + 1, end_pos - 1)
end
-- ════════════════════════════════════════════════════════════════════════════
-- Header / section / symbol walkers
-- ════════════════════════════════════════════════════════════════════════════
--- Read the ELF32 header through `adapter` and validate the magic, class, and data encoding.
--- Returns a table on success:
--- { e_entry, e_shoff, e_shentsize, e_shnum, e_shstrndx, error = nil }
--- On failure returns nil + a stable error code:
--- bad_magic, unsupported_elf_class, unsupported_elf_data, truncated_header
--- The header's machine field is NOT validated here — callers (e.g. the helper's prime path) decide whether to require EM_MIPS before symbol reads.
--- @param adapter table
--- @return table|nil, string|nil
function M.parse_elf32_headers(adapter)
local ok, err = M.validate_adapter(adapter)
if not ok then return nil, err end
-- 4-byte magic: 0x7F 'E' 'L' 'F'.
-- The byte readers take the adapter explicitly.
-- The production `Support.File` adapter is wrapped by the caller to drop its implicit `self` so the parser shape is flat pass-style.
local b1 = M.read_u8(adapter, 0)
local b2 = M.read_u8(adapter, 1)
local b3 = M.read_u8(adapter, 2)
local b4 = M.read_u8(adapter, 3)
if not (b1 and b2 and b3 and b4)
or not (b1 == 0x7f and b2 == 0x45 and b3 == 0x4c and b4 == 0x46) then
return nil, "bad_magic"
end
local class = M.read_u8(adapter, M.ELF32_HEADER.class_offset)
if class ~= M.ELFCLASS32 then
return nil, "unsupported_elf_class"
end
local data = M.read_u8(adapter, M.ELF32_HEADER.endian_offset)
if data ~= M.ELFDATA2LSB then
return nil, "unsupported_elf_data"
end
local e_entry = M.read_u32(adapter, M.ELF32_HEADER.e_entry_offset)
local e_shoff = M.read_u32(adapter, M.ELF32_HEADER.e_shoff_offset)
local e_shentsize = M.read_u16(adapter, M.ELF32_HEADER.e_shentsize_offset)
local e_shnum = M.read_u16(adapter, M.ELF32_HEADER.e_shnum_offset)
local e_shstrndx = M.read_u16(adapter, M.ELF32_HEADER.e_shstrndx_offset)
if not (e_entry and e_shoff and e_shentsize and e_shnum and e_shstrndx) then
return nil, "truncated_header"
end
return {
e_entry = e_entry,
e_shoff = e_shoff,
e_shentsize = e_shentsize,
e_shnum = e_shnum,
e_shstrndx = e_shstrndx,
error = nil,
}
end
--- Read one section-header entry from `adapter` at `sh_off`.
--- Returns a table with the wire fields plus a (yet-unresolved) `name` field.
--- @param adapter table
--- @param sh_off integer
--- @return table|nil, string|nil -- entry, error
local function read_section_entry(adapter, sh_off)
local entry = {
sh_name = M.read_u32(adapter, sh_off + M.ELF32_SECTION.sh_name_offset),
sh_type = M.read_u32(adapter, sh_off + M.ELF32_SECTION.sh_type_offset),
sh_flags = M.read_u32(adapter, sh_off + M.ELF32_SECTION.sh_flags_offset),
sh_addr = M.read_u32(adapter, sh_off + M.ELF32_SECTION.sh_addr_offset),
sh_offset = M.read_u32(adapter, sh_off + M.ELF32_SECTION.sh_offset_offset),
sh_size = M.read_u32(adapter, sh_off + M.ELF32_SECTION.sh_size_offset),
sh_link = M.read_u32(adapter, sh_off + M.ELF32_SECTION.sh_link_offset),
name = "",
}
if not (entry.sh_name and entry.sh_type and entry.sh_flags and entry.sh_addr
and entry.sh_offset and entry.sh_size and entry.sh_link) then
return nil, "truncated_section_headers"
end
return entry, nil
end
--- Walk every section header in `hdr` and return a 1-based array of entries
--- (the section at logical index 0 is at array position 1, etc.).
--- Each entry has the wire fields plus a resolved `name` derived from `.shstrtab`.
--- Returns nil + a stable error code on failure: truncated_section_headers, missing_shstrtab, truncated_strtab
--- @param adapter table
--- @param hdr table -- the table returned by parse_elf32_headers
--- @return table|nil, string|nil
function M.walk_sections(adapter, hdr)
if not hdr or hdr.error then return nil, hdr and hdr.error or "truncated_section_headers" end
local file_size = M.size(adapter)
if hdr.e_shoff + hdr.e_shnum * hdr.e_shentsize > file_size then
return nil, "truncated_section_headers"
end
-- Read every section header first; we need .shstrtab to resolve names.
local sections = {}
for i = 0, hdr.e_shnum - 1 do
local sh_off = hdr.e_shoff + i * hdr.e_shentsize
local entry, err = read_section_entry(adapter, sh_off)
if not entry then return nil, err end
sections[i + 1] = entry
end
if hdr.e_shstrndx >= hdr.e_shnum then
return nil, "missing_shstrtab"
end
local shstrtab = sections[hdr.e_shstrndx + 1]
if not shstrtab or shstrtab.sh_type ~= M.SHT_STRTAB then
return nil, "missing_shstrtab"
end
if shstrtab.sh_offset + shstrtab.sh_size > file_size then
return nil, "truncated_section_headers"
end
local shstrtab_bytes = M.read_section_bytes(adapter, shstrtab)
if not shstrtab_bytes then return nil, "truncated_section_headers" end
for _, s in ipairs(sections) do
s.name = M.get_str(shstrtab_bytes, s.sh_name) or ""
end
return sections, nil
end
--- Read the bytes of one section. Returns a string, or nil if the adapter returns nil for any byte (out-of-bounds).
--- The caller is responsible fors sizing the buffer (the section's sh_offset + sh_size must fit in adapter.size).
--- @param adapter table
--- @param section table -- one entry from walk_sections
--- @return string|nil
function M.read_section_bytes(adapter, section)
local size = section.sh_size
if size == 0 then return "" end
local out = {}
for i = 0, size - 1 do
local b = M.read_u8(adapter, section.sh_offset + i)
if b == nil then return nil end
out[#out + 1] = string.char(b)
end
return table.concat(out)
end
--- Convenience: walk sections, then look up the named section, then read its bytes.
--- Returns nil + a stable error code if the section is absent or out-of-bounds.
--- @param adapter table
--- @param sections table -- 1-based array from walk_sections
--- @param name string
--- @return string|nil, string|nil
function M.read_named_section(adapter, sections, name)
if not sections then return nil, "missing_section" end
for _, s in ipairs(sections) do
if s.name == name then
local bytes = M.read_section_bytes(adapter, s)
if not bytes then return nil, "truncated_section_data" end
return bytes, nil
end
end
return nil, "missing_section"
end
--- Walk every SHT_SYMTAB section in `sections` and accumulate symbols by name.
--- Each stored entry is `{ value = st_value, size = st_size, info = st_info, shndx = st_shndx }`.
--- Both STB_LOCAL and STB_GLOBAL symbols are included; the live ELF stores `smem` as a local symbol.
--- Returns nil + a stable error code on failure: missing_symtab_strtab, truncated_section_headers
--- @param adapter table
--- @param sections table
--- @return table|nil, string|nil
function M.collect_symbols(adapter, sections)
if not sections then return nil, "missing_sections" end
local symbols = {}
local file_size = M.size(adapter)
for _, s in ipairs(sections) do
if s.sh_type == M.SHT_SYMTAB then
local strtab = sections[s.sh_link + 1]
if not strtab or strtab.sh_type ~= M.SHT_STRTAB then
return nil, "missing_symtab_strtab"
end
if strtab.sh_offset + strtab.sh_size > file_size then
return nil, "truncated_section_headers"
end
local strtab_bytes = M.read_section_bytes(adapter, strtab)
if not strtab_bytes then return nil, "truncated_section_headers" end
if s.sh_offset + s.sh_size > file_size then
return nil, "truncated_section_headers"
end
local symtab_bytes = M.read_section_bytes(adapter, s)
if not symtab_bytes then return nil, "truncated_section_headers" end
local n = #symtab_bytes / M.ELF32_SYM.sym_entry_bytes
for j = 0, n - 1 do
local e = s.sh_offset + j * M.ELF32_SYM.sym_entry_bytes
local st_name = M.read_u32(adapter, e + M.ELF32_SYM.st_name)
if st_name then
local st_value = M.read_u32(adapter, e + M.ELF32_SYM.st_value)
local st_size = M.read_u32(adapter, e + M.ELF32_SYM.st_size)
local st_info = M.read_u8(adapter, e + M.ELF32_SYM.st_info)
-- st_shndx is at offset 14 (2 bytes) — derived from the layout
-- the metaprogram reads too. Inline the read to keep the
-- adapter as the only I/O surface.
local b1 = M.read_u8(adapter, e + 14)
local b2 = M.read_u8(adapter, e + 15)
if not (b1 and b2) then
return nil, "truncated_section_headers"
end
local st_shndx = b1 + b2 * 0x100
local name = M.get_str(strtab_bytes, st_name) or ""
if name ~= "" then
symbols[name] = {
value = st_value,
size = st_size,
info = st_info,
shndx = st_shndx,
}
end
end
end
end
end
return symbols, nil
end
return M
+153 -140
View File
@@ -11,6 +11,11 @@
-- lfs is wired into package.cpath by `duffle_paths.lua` (vendored under `toolchain/lfs/lfs.dll`).
local lfs = require("lfs")
-- scripts/elf32.lua contains format-constant tables + the byte-level walker.
-- The this file re-exports `read_u32_le` / `read_u16_le` (and the DWARF32 terminator).
-- TODO(Ed): Remove re-export.
local E = require("elf32")
local M = {}
-- ════════════════════════════════════════════════════════════════════════════
@@ -102,27 +107,13 @@ M.MIPS_BYTES_PER_WORD = 0x04
--- **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.
---
--- The ELF32 header / section / sym layout tables are within scripts/elf32.lua.
--- The metaprogram re-exports the DWARF32 initial-length terminator.
--- spec: System V ABI gABI v1.2 §"ELF Header" (Table 1) + §"Section Header Table"
M.ELF32 = {
magic_offset = 0x00, -- 4-byte magic "\127ELF" at file offset 0x00
magic = "\127ELF",
class_offset = 0x04, -- 1-byte; 1 = ELF32, 2 = ELF64
class_elf32 = 1,
endian_offset = 0x05, -- 1-byte; 1 = little-endian, 2 = big-endian
endian_little = 1,
header_bytes = 0x34, -- spec: gABI v1.2 §"ELF Header" — ELF32 header is 52 bytes total
e_shoff_offset = 0x20, -- 4-byte LE; section-header table file offset
e_shentsize_offset = 0x2E, -- 2-byte LE; section-header entry size in bytes
e_shnum_offset = 0x30, -- 2-byte LE; number of section headers
e_shstrndx_offset = 0x32, -- 2-byte LE; index of section-name string table
sh_size_bytes = 0x28, -- spec: gABI v1.2 §"Section Header Table" — each entry is 40 bytes
sh_name_offset = 0x00, -- 4-byte LE; offset into .shstrtab
sh_type_offset = 0x04, -- 4-byte LE; section type (SHT_*)
sh_offset_offset = 0x10, -- 4-byte LE; section's file offset
sh_size_offset = 0x14, -- 4-byte LE; section's size in bytes
dw_dwarf32_terminator = 0xFFFFFFFF, -- spec: DWARF4 spec §7.4 — 32-bit DWARF initial-length terminator
}
--- spec: DWARF4 spec §7.4 — 32-bit DWARF initial-length terminator
M.dw_dwarf32_terminator = E.dw_dwarf32_terminator
-- TODO(Ed): Remove re-export.
-- ----------------------------------------------------------------------------
-- DWARF4 .debug_aranges (per DWARF5 spec §7.4 — Address Range Table)
@@ -241,27 +232,24 @@ M.DWARF5_DEBUG_LINE = {
--- (which has partial `string.unpack` coverage).
--- **Convention:** `off` is a zero-based wire offset; `+ 1` is applied only at the `string.byte` boundary.
---
--- **Byte weights** are written as `0x100`, `0x10000`, `0x1000000` (i.e. 2^8, 2^16, 2^24) so the LE byte positions are visually explicit:
--- byte 0 contributes its value directly; byte 1 is shifted left by 8 (= 0x100); byte 2 by 16 (= 0x10000); byte 3 by 24 (= 0x1000000).
--- Thin forwarder: the canonical implementation lives in scripts/elf32.lua.
--- The "second caller lifts" pattern keeps the metaprogram side fluent
--- (`M.read_u32_le(buf, off)`) while the body is deduped.
--- @param buf string
--- @param off integer -- zero-based wire offset
--- @return integer
function M.read_u32_le(buf, off)
local byte_off = off + 1
return buf:byte(byte_off)
+ buf:byte(byte_off + 0x01) * 0x00000100
+ buf:byte(byte_off + 0x02) * 0x00010000
+ buf:byte(byte_off + 0x03) * 0x01000000
return E.read_u32_le(buf, off)
end
--- Read a 2-byte little-endian unsigned integer from `buf` at zero-based wire offset `off`.
--- (`off` is zero-based; `+ 1` is applied only at the `string.byte` boundary.)
--- Thin forwarder — see `M.read_u32_le` for the rationale.
--- @param buf string
--- @param off integer -- zero-based wire offset
--- @return integer
function M.read_u16_le(buf, off)
local byte_off = off + 1
return buf:byte(byte_off) + buf:byte(byte_off + 0x01) * 0x00000100
return E.read_u16_le(buf, off)
end
-- Pure-Lua 5.3 LEB128 readers (no `bit` library). `2^shift` arithmetic matches the existing parser.
@@ -442,20 +430,20 @@ function M.read_ref_sig8(buf, pos)
return M.read_u32_le(buf, pos), M.read_u32_le(buf, pos + 4), pos + 8
end
-- DWARF5 §7.5.6 (Type Entries).
-- Walk all units in `info` and return the 0-based offset of the first unit
-- whose `DW_AT_type_signature` (8-byte value at the end of the unit header) equals `target_sig`.
-- The signature is interpreted as two 32-bit halves (low/high) per the read_ref_sig8 contract;
-- we match both halves (i.e. the 8-byte value as a whole). Returns nil if no matching unit exists.
--
-- Unit header layout (from pos 0):
-- unit_length(4) + version(2) + unit_type(1) + address_size(1) + debug_abbrev_offset(4)
-- followed by type_unit_specific fields: type_signature(8) + type_offset(4)
-- The type_signature is at byte offset 8 of the body (right after debug_abbrev_offset).
-- @param info string -- the .debug_info section bytes
-- @param target_sig_lo integer -- low 4 bytes (LE) of the desired signature
-- @param target_sig_hi integer -- high 4 bytes (LE) of the desired signature
-- @return integer|nil, integer|nil -- unit offset, type_offset within the unit
--- DWARF5 §7.5.6 (Type Entries).
--- Walk all units in `info` and return the 0-based offset of the first unit whose `DW_AT_type_signature`
--- (8-byte value at the end of the unit header) equals `target_sig`.
--- The signature is interpreted as two 32-bit halves (low/high) per the read_ref_sig8 contract;
--- we match both halves (i.e. the 8-byte value as a whole). Returns nil if no matching unit exists.
---
--- Unit header layout (from pos 0):
--- unit_length(4) + version(2) + unit_type(1) + address_size(1) + debug_abbrev_offset(4)
--- followed by type_unit_specific fields: type_signature(8) + type_offset(4)
--- The type_signature is at byte offset 8 of the body (right after debug_abbrev_offset).
--- @param info string -- the .debug_info section bytes
--- @param target_sig_lo integer -- low 4 bytes (LE) of the desired signature
--- @param target_sig_hi integer -- high 4 bytes (LE) of the desired signature
--- @return integer|nil, integer|nil -- unit offset, type_offset within the unit
function M.find_type_unit_by_signature(info, target_sig_lo, target_sig_hi)
local pos = 0
local section_len = #info
@@ -539,7 +527,7 @@ end
--- (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 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)
@@ -564,69 +552,58 @@ function M.read_elf_sections(elf_path, section_names)
return result
end
-- Read the ELF32 header.
local header = f:read(M.ELF32.header_bytes)
if not header or #header < M.ELF32.header_bytes then
io.stderr:write("[elf_dwarf.read_elf_sections] ELF too small for ELF32 header\n")
local file_size
do
f:seek("end", 0)
file_size = f:seek("cur", 0)
end
local adapter = {
read_u8_at = function(offset)
f:seek("set", offset)
local b = f:read(1)
if not b then return nil end
return b:byte()
end,
read_u16_at = function(offset)
f:seek("set", offset)
local b1 = f:read(1)
local b2 = f:read(1)
if not b1 or not b2 then return nil end
return b1:byte() + b2:byte() * 0x100
end,
read_u32_at = function(offset)
f:seek("set", offset)
local b1 = f:read(1)
local b2 = f:read(1)
local b3 = f:read(1)
local b4 = f:read(1)
if not b1 or not b2 or not b3 or not b4 then return nil end
return b1:byte() + b2:byte() * 0x100
+ b3:byte() * 0x10000 + b4:byte() * 0x1000000
end,
read_size = function() return file_size end,
}
-- Delegate the header parse + section walk to E.*.
local hdr, hdr_err = E.parse_elf32_headers(adapter)
if not hdr then
io.stderr:write(string.format("[elf_dwarf.read_elf_sections] header parse failed: %s\n", tostring(hdr_err)))
f:close()
return result
end
-- Sanity-check magic + class + endianness.
if header:sub(M.ELF32.magic_offset + 1, M.ELF32.magic_offset + 0x04) ~= M.ELF32.magic then
io.stderr:write("[elf_dwarf.read_elf_sections] not an ELF file\n")
f:close()
return result
end
if header:byte(M.ELF32.class_offset + 1) ~= M.ELF32.class_elf32 then
io.stderr:write(string.format("[elf_dwarf.read_elf_sections] not ELF32 (class=%d)\n", header:byte(M.ELF32.class_offset + 1)))
f:close()
return result
end
if header:byte(M.ELF32.endian_offset + 1) ~= M.ELF32.endian_little then
io.stderr:write("[elf_dwarf.read_elf_sections] not little-endian; unsupported\n")
local sections, walk_err = E.walk_sections(adapter, hdr)
if not sections then
io.stderr:write(string.format("[elf_dwarf.read_elf_sections] section walk failed: %s\n", tostring(walk_err)))
f:close()
return result
end
-- Parse section-header table location + dimensions from the header.
local e_shoff = M.read_u32_le(header, M.ELF32.e_shoff_offset)
local e_shentsize = M.read_u16_le(header, M.ELF32.e_shentsize_offset)
local e_shnum = M.read_u16_le(header, M.ELF32.e_shnum_offset)
local e_shstrndx = M.read_u16_le(header, M.ELF32.e_shstrndx_offset)
-- Read the section-header string table (.shstrtab) so we can resolve section names from their `sh_name` offsets.
f:seek("set", e_shoff + e_shstrndx * e_shentsize)
local strtab_hdr = f:read(e_shentsize)
if not strtab_hdr or #strtab_hdr < e_shentsize then
io.stderr:write("[elf_dwarf.read_elf_sections] could not read .shstrtab header\n")
f:close()
return result
end
local strtab_offset = M.read_u32_le(strtab_hdr, M.ELF32.sh_offset_offset)
local strtab_size = M.read_u32_le(strtab_hdr, M.ELF32.sh_size_offset)
f:seek("set", strtab_offset)
local strtab = f:read(strtab_size) or ""
-- Walk all section headers; collect (offset, size) for the wanted names.
local function read_section_bytes(sh_offset, sh_size)
f:seek("set", sh_offset)
return f:read(sh_size) or ""
end
for sh_idx = 0, e_shnum - 1 do
f:seek("set", e_shoff + sh_idx * e_shentsize)
local sh = f:read(e_shentsize)
if not sh or #sh < e_shentsize then break end
local sh_name = M.read_u32_le(sh, M.ELF32.sh_name_offset)
local sh_offset = M.read_u32_le(sh, M.ELF32.sh_offset_offset)
local sh_size = M.read_u32_le(sh, M.ELF32.sh_size_offset)
-- Extract the name (null-terminated C string in strtab).
local name_end = strtab:find("\0", sh_name + 1, true) or (sh_name + 1)
local name = strtab:sub(sh_name + 1, name_end - 1)
if wanted[name] then
result[name] = read_section_bytes(sh_offset, sh_size)
-- Resolve the requested sections.
for _, s in ipairs(sections) do
if wanted[s.name] then
local bytes = E.read_section_bytes(adapter, s)
if bytes then result[s.name] = bytes end
end
end
@@ -643,48 +620,87 @@ end
--- - We filter on STB_GLOBAL (high nibble of st_info = 1) to match `nm`'s default (external symbols only). STB_WEAK excluded.
--- - The `code_` prefix is stripped (MipsAtom_ macros emit bare atom names, no `code_` prefix).
--- - `st_size > 0` filter excludes undefined/imported symbols.
---
--- @param elf_path Path
--- @return table<string, {integer, integer}>
function M.read_nm(elf_path)
local addrs = {}
-- Read .symtab + .strtab via the existing ELF walker (no subprocess).
local sections = M.read_elf_sections(elf_path, {".symtab", ".strtab"})
local symtab = sections[".symtab"]
local strtab = sections[".strtab"]
if not symtab or not strtab or #symtab == 0 or #strtab == 0 then
-- No symbol table (e.g. stripped ELF). Return empty.
-- Existence check first; an empty or missing ELF returns an empty map.
if lfs.attributes(elf_path, "mode") ~= "file" then
return addrs
end
-- Iterate the 16-byte ELF32 symtab entries.
-- Each entry (zero-based): st_name at 0, st_value at 4, st_size at 8, st_info at 12, st_other at 13, st_shndx at 14.
local SYM_ENTRY_BYTES = 0x10
local SYM_ST_NAME = 0x00
local SYM_ST_VALUE = 0x04
local SYM_ST_SIZE = 0x08
local SYM_ST_INFO = 0x0C
local n_syms = #symtab / SYM_ENTRY_BYTES
for i = 0, n_syms - 1 do
local entry_off = i * SYM_ENTRY_BYTES
local st_info = symtab:byte(entry_off + SYM_ST_INFO + 1)
-- High nibble = binding (STB_LOCAL=0, STB_GLOBAL=1, STB_WEAK=2).
-- Use math.floor(/16) instead of bit.rshift for LuaJIT 2.1 compat (LuaJIT's `>>` is 5.3+, but math.floor(x/16) works on all versions).
local binding = math.floor(st_info / 16)
if binding == 0 or binding == 1 then -- STB_LOCAL or STB_GLOBAL
local st_size = M.read_u32_le(symtab, entry_off + SYM_ST_SIZE)
if st_size > 0 then
local st_name_off = M.read_u32_le(symtab, entry_off + SYM_ST_NAME)
-- Extract the name from .strtab (null-terminated C string).
local name_end = strtab:find("\0", st_name_off + 1, true) or (st_name_off + 1)
local name = strtab:sub(st_name_off + 1, name_end - 1)
-- Filter: keep all symbol-table symbols (atoms emit their name as the bare `<name>` — MipsAtom_ macros strip the `code_` prefix).
-- The atoms_source_map pass already filters out non-atom symbols via the source-map.txt cross-ref.
if name and #name > 0 then
local st_value = M.read_u32_le(symtab, entry_off + SYM_ST_VALUE)
addrs[name] = { st_value, st_size }
end
end
local f = io.open(elf_path, "rb")
if not f then
return addrs
end
-- Build the file adapter for E.*.
local file_size
do
f:seek("end", 0)
file_size = f:seek("cur", 0)
end
local adapter = {
read_u8_at = function(offset)
f:seek("set", offset)
local b = f:read(1)
if not b then return nil end
return b:byte()
end,
read_u16_at = function(offset)
f:seek("set", offset)
local b1 = f:read(1)
local b2 = f:read(1)
if not b1 or not b2 then return nil end
return b1:byte() + b2:byte() * 0x100
end,
read_u32_at = function(offset)
f:seek("set", offset)
local b1 = f:read(1)
local b2 = f:read(1)
local b3 = f:read(1)
local b4 = f:read(1)
if not b1 or not b2 or not b3 or not b4 then return nil end
return b1:byte() + b2:byte() * 0x100
+ b3:byte() * 0x10000 + b4:byte() * 0x1000000
end,
read_size = function() return file_size end,
}
-- Delegate the header + section walk to E.*.
local hdr, hdr_err = E.parse_elf32_headers(adapter)
if not hdr then
io.stderr:write(string.format("[elf_dwarf.read_nm] header parse failed: %s\n", tostring(hdr_err)))
f:close()
return addrs
end
local sections, walk_err = E.walk_sections(adapter, hdr)
if not sections then
io.stderr:write(string.format("[elf_dwarf.read_nm] section walk failed: %s\n", tostring(walk_err)))
f:close()
return addrs
end
-- E.collect_symbols returns every defined symbol (no binding filter).
-- The metaprogram then applies its STB_LOCAL / STB_GLOBAL + size>0 filter, matching `nm`'s default (external symbols only).
local symbols, sym_err = E.collect_symbols(adapter, sections)
if not symbols then
io.stderr:write(string.format("[elf_dwarf.read_nm] symbol collection failed: %s\n", tostring(sym_err)))
f:close()
return addrs
end
f:close()
for name, entry in pairs(symbols) do
-- High nibble of st_info = binding (STB_LOCAL=0, STB_GLOBAL=1, STB_WEAK=2).
-- math.floor(/16) is portable across LuaJIT 2.0/2.1 and plain Lua 5.x.
local binding = math.floor(entry.info / 16)
if (binding == 0 or binding == 1) and entry.size > 0 then
addrs[name] = { entry.value, entry.size }
end
end
@@ -822,12 +838,11 @@ end
--- * The `.debug_line` section may contain MULTIPLE line-program units
--- File indices are 1-based, **per unit**; we concatenate all units and the index ranges from 1..N₁ in unit 1, N₁+1..N₁+N₂ in unit 2, etc.
--- Per-unit indices (the way gcc emits them, and the way `DW_LNS_set_file` references them in the line program)
--- are returned via the `basename_to_index` map only when the unit boundary happens to align with the metaprogram's per-atom
--- `inv.call_file` (true today for hello_joypad — the C unit is the LAST unit, and atom-side file indices fit 1-based).
--- are returned via the `basename_to_index` map only when the unit boundary happens to align with the metaprogram's per-atom `inv.call_file`
--- * Per spec, the `.debug_line_str` section (DWARF5 §7.5.6) holds the strings referenced by `DW_FORM_line_strp`.
--- The legacy DWARF3 format embeds strings directly with null terminators. This helper handles BOTH.
--- * File entries may have multiple forms (gcc -gdwarf-5 with `DW_LNCT_directory_index`
--- emits 2 forms: path + dir_index). The helper supports:
--- * File entries may have multiple forms (gcc -gdwarf-5 with `DW_LNCT_directory_index` emits 2 forms: path + dir_index).
--- The helper supports:
--- - DW_FORM_line_strp (DWARF5; offset into .debug_line_str)
--- - DW_FORM_string (DWARF4-compat; inline null-terminated in .debug_line)
--- - DW_FORM_udata (ULEB128)
@@ -837,9 +852,7 @@ end
---
--- Behavior on failure: writes to stderr and returns nil.
--- Helpers consumed by `passes/dwarf_injection.lua::init_file_index_lookup(elf_path)` calls this once at pass start to populate the module-level `basename_to_index` map;
--- downstream `resolve_provenance_file_index(path)` consumers
--- (which replaced the former hardcoded `ATOM_SOURCE_FILE_INDEX` + `PROVENANCE_BASENAME_TO_FILE_INDEX` table per `conductor/tracks/dwarf_file_index_lookup_20260731/`)
--- consult the map directly.
--- downstream `resolve_provenance_file_index(path)` consumers consult the map directly.
---
--- @param elf_path string -- absolute path to the post-link ELF (typically the gcc-emitted `.elf` BEFORE dwarf_injector's splice; both shapes work since the splice preserves `.debug_line`)
--- @return table|nil, table|nil, table|nil
+355
View File
@@ -0,0 +1,355 @@
--- passes/auto_reg.lua — Per-phase automatic GPR allocator + gen/auto_reg.h emitter.
---
--- Reads the per-source + corpus-level `atom_auto_regs` + `phase_auto_regs` registries populated by `passes/scan_source.lua`.
--- Runs a deterministic first-fit allocator in the `R_T0..R_T7 + R_V0..R_V1` pool (10 physical GPRs).
--- Emits one `#define R_<Sym>_Code R_Tn_Code` per marker into per-directory `gen/auto_reg.h`.
---
--- User-pinned GPRs : The corpus's `register_alias_registry` is consulted to exclude GPRs the user has pinned via
--- `atom_reg` + `_Code` defs (e.g. carriers like `R_ResolveScratch = R_T4 atom_reg`).
--- These GPRs are unavailable to EVERY atom's source pool.
--- Carriers are preserved across atoms by context discipline and must never be reallocated.
--- Per-atom body parsing also catches alias references (R_<Alias>) and hardcoded R_Tn references,
--- so the user can write either `R_T4` or `R_ResolveScratch` in an atom body and the pass will
--- exclude R_T4 from that atom's pool.
---
--- Conflict detection: If the user hardcodes `R_Tn` in an atom body that shares a phase with an auto-reg that picked `R_Tn`,
--- emit `phase_register_clash` as an info finding (no build stop).
--- Should be unreachable after the user-pinning + body-parsing fix above; kept as a defensive safety net.
---
--- Pool exhaustion: If a phase declares more `R_<Sym>` mappings than the 10-register pool can hold,
--- emit `phase_register_pool_exhausted` as a build-stopping error.
--- @class AutoRegResult
--- @field outputs table[] -- {kind=, path=} entries
--- @field errors table[] -- {line=, msg=} entries (build-stops)
--- @field warnings table[] -- {line=, msg=} entries (build-continues)
local _bootstrap_dir = debug.getinfo(1, "S").source:match("^@?(.*[/\\])") or "./"
local duffle = dofile(_bootstrap_dir .. "../duffle_paths.lua")
--- ════════════════════════════════════════════════════════════════════════════
--- THE GPR ALLOCATION POOL — what is allocatable, and (more importantly) WHY
--- ════════════════════════════════════════════════════════════════════════════
---
--- The auto-reg pass picks physical GPRs for `atom_auto_reg(...)` / `phase_auto_reg(...)` markers.
--- It allocates from a FIXED 10-register pool.
--- This comment block makes the inclusion AND exclusion criteria obvious so a reader doesn't have
--- to grep lottes_tape.h + mips.h to understand the design.
---
--- ── WHAT'S IN THE POOL (10 GPRs, all caller-trash per the O32 ABI) ────────
--- R_T0..R_T7 (GPR codes 8..15), R_V0..R_V1 (GPR codes 2..3)
--- The workhorse of every atom body. The uesr should be aware of atom allocation across atoms they chain.
--- If they have a collision it means either they didn't saturate the register file optimally for a phase,
--- or the may have made the workload to large for the run.
---
--- ── WHAT'S NOT IN THE POOL — and WHY (the "obvious exclusions") ────────────
--- R_T9 (GPR code 25) — R_TapePtr, the tape instruction stream pointer.
--- Owned by the tape runtime (in tape_run / tape_run_a02_s07).
--- `rgcc(R_TapePtr)` register-variable ties the C compiler's view to $t9 across the whole tape_run.
--- The auto-reg pass MUST NOT clobber this; doing so would desync the C-side tape pointer from the
--- hardware pointer and crash on the next tape_run.
---
--- R_T8 (GPR code 24) — R_AtomJmp, the atom-jump register used by the 4-word yield handshake.
--- Every `mac_yield()` / `mac_yield_tail` does `load_word R_AtomJmp, R_TapePtr, 0` then
--- `jump_reg R_AtomJmp`. The auto-reg pass MUST NOT clobber this either, or the atom dispatcher breaks.
--- Owned by the tape runtime, same family as R_TapePtr.
---
--- R_AT (GPR code 1) — Assembler temporary. Reserved by the MIPS O32 ABI for pseudoinstruction expansion
--- (lottes_tape.h:86, mips.h:93). The ISA's psuedo instructions use it as a scratch temporary.
---
--- R_A0..A3 (codes 4..7) — Function arguments. Used in tape_run_a02_s07, see below.
--- R_S0..S7 (codes 16..23) — Callee-saved. Preserved across C-ABI calls by convention.
--- The `tape_run_a02_s07` variant clobbers them deliberately, but the default `tape_run` does NOT.
--- Kept out of POOL to preserve the conservative default.
--- Add them in a separate "big clobber" pool if/when needed.
---
--- R_K0/K1 (codes 26..27) — Kernel / interrupt handler reserves. Never touched by user code; OS-internal.
--- R_GP/SP/FP/RA (codes 28..31) — Stack frame + return-address. Owned by the C compiler; never allocatable.
--- R_0 (code 0) — Hardwired zero. Cannot be written.
---
local POOL = {
"R_T0", "R_T1", "R_T2", "R_T3",
"R_T4", "R_T5", "R_T6", "R_T7",
"R_V0", "R_V1",
}
-- Map from integer MIPS GPR code (the `code` field on AliasEntry) to the physical GPR ident in POOL.
-- The standard MIPS O32 ABI register numbering matches mips.h's R_*_Code #defines (mips.h).
-- Only the POOL entries matter for auto_reg — non-pool aliases
-- (R_AT=1, R_A0..A3=4..7, R_T8=24, R_T9=25, R_K0/K1=26..27, R_GP/SP/FP/RA=28..31)
-- are deliberately omitted — see the comment block above for the WHY of each exclusion.
local INT_CODE_TO_POOL_GPR = {
[2] = "R_V0", [3] = "R_V1",
[8] = "R_T0", [9] = "R_T1", [10] = "R_T2", [11] = "R_T3",
[12] = "R_T4", [13] = "R_T5", [14] = "R_T6", [15] = "R_T7",
}
-- Stable sort for deterministic allocation order.
local function stable_sort_keys(tbl)
local keys = {}
for k in pairs(tbl) do keys[#keys + 1] = k end
table.sort(keys)
return keys
end
-- Allocate one phase's auto-reg mappings.
-- Returns (allocated_map, errors). On pool exhaustion, errors is populated and the function halts.
local function allocate_phase(phase_label, decls)
-- Deep-copy POOL into a fresh sequence table. The original `table.unpack and table.unpack(POOL) or { unpack(POOL) }`
-- idiom wraps the unpacked values in a single inner table under LuaJIT 5.1 (`table.unpack` is nil; the `or` returns one value),
-- which corrupts the pool into `{ {R_T0, R_T1, ...} }` — making `table.remove(pool, 1)` return the inner table on iteration.
local pool = {}
for i = 1, #POOL do pool[i] = POOL[i] end
local result = {}
local errors = {}
for _, sym in ipairs(stable_sort_keys(decls)) do
local next_gpr = table.remove(pool, 1)
if not next_gpr then
errors[#errors + 1] = {
line = 0,
msg = string.format("phase_register_pool_exhausted: "
.. "phase '%s' requested symbol '%s' but the pool has no remaining registers "
.. "(max 10 per phase: R_T0..R_T7 + R_V0..R_V1). Split the phase or use hardcoded GPRs."
, phase_label, sym),
}
return result, errors
end
result[sym] = next_gpr
end
return result, errors
end
-- Build two projections from corpus.register_alias_registry:
-- user_pinned -- { [physical_gpr_ident] = true } -- GPRs unavailable to auto_reg globally (wave-context carriers, file-scope pinned aliases)
-- alias_to_gpr -- { [alias_ident] = physical_gpr_ident } -- for body parsing
-- Both projections are derived from the same set of entries: every AliasEntry in register_alias_registry has `has_atom_reg = true`
-- (only those entries are added to the registry; see passes/scan_source.lua parse_enum_entry).
-- Each entry's `code` is the integer MIPS GPR number (0..31); INT_CODE_TO_POOL_GPR translates it back to the physical GPR ident.
-- Aliases whose `code` points to a non-POOL GPR (e.g. R_S0, R_T8, R_K1) are ignored —
-- they don't affect the auto_reg pool, and they're already excluded from POOL above.
local function build_user_pins(corpus)
local user_pinned = {}
local alias_to_gpr = {}
if not corpus.register_alias_registry then return user_pinned, alias_to_gpr end
for alias_name, alias_entry in pairs(corpus.register_alias_registry) do
if alias_entry.has_atom_reg and alias_entry.code then
local gpr = INT_CODE_TO_POOL_GPR[alias_entry.code]
if gpr then
user_pinned[gpr] = true
alias_to_gpr[alias_name] = gpr
end
end
end
return user_pinned, alias_to_gpr
end
-- Find every physical GPR referenced in the atom body, via EITHER:
-- (a) A hardcoded physical GPR ident (R_T\d+|R_V\d+|R_A\d+|R_S\d+) — the existing regex;
-- (b) An alias ident (R_<Alias>) resolved via alias_to_gpr back to its physical GPR ident.
-- Returns { [physical_gpr_ident] = count }. Clash-detection and source-pool-exclusion logic
-- only needs the presence of each GPR (boolean test), but keeping count preserves the
-- original find_hardcoded_rn shape so callers can switch without churn.
-- The alias pattern is sorted lexicographically to keep the regex deterministic.
local function find_used_gprs(body_text, alias_to_gpr)
local found = {}
-- (a) Hardcoded physical GPRs (R_T0..R_T7, R_V0..R_V1, R_A0..R_A3, R_S0..R_S7).
for gpr in body_text:gmatch("(R_T%d+|R_V%d+|R_A%d+|R_S%d+)") do
found[gpr] = (found[gpr] or 0) + 1
end
-- (b) Alias references (R_<Alias>) resolved to physical GPRs via the registry.
-- Sorted by name so the regex is byte-stable across runs.
if alias_to_gpr and next(alias_to_gpr) then
local aliases = {}
for alias_name in pairs(alias_to_gpr) do
aliases[#aliases + 1] = alias_name
end
table.sort(aliases)
local pattern = "(" .. table.concat(aliases, "|") .. ")"
for alias_name in body_text:gmatch(pattern) do
local gpr = alias_to_gpr[alias_name]
if gpr and not found[gpr] then
found[gpr] = 1
end
end
end
return found
end
-- Emit one gen/auto_reg.h header per directory.
local function emit_auto_reg_h(out_dir, dir, sources, mappings)
if not mappings or next(mappings) == nil then return end
local out_path = out_dir .. "/" .. "auto_reg.h"
duffle.ensure_dir(out_dir)
local lines = {
"#ifdef INTELLISENSE_DIRECTIVES",
"#pragma once",
"#endif",
"// Auto-generated by ps1_meta.lua (passes/auto_reg.lua) — DO NOT EDIT",
"// Directory: " .. dir:gsub("/", "\\"),
}
for _, src in ipairs(sources) do
lines[#lines + 1] = "// source: " .. src.path
end
lines[#lines + 1] = "// Per-phase register allocations resolved by the lua pass."
lines[#lines + 1] = "// R_<Sym>_Code = <chosen GPR's _Code constant> for every marker in this directory."
lines[#lines + 1] = ""
for _, sym in ipairs(stable_sort_keys(mappings)) do
local gpr = mappings[sym]
local gpr_code = gpr .. "_Code"
lines[#lines + 1] = "#define " .. sym .. "_Code " .. gpr_code
end
lines[#lines + 1] = ""
duffle.write_file_lf(out_path, table.concat(lines, "\n") .. "\n")
print(" -> " .. out_path)
return out_path
end
-- ════════════════════════════════════════════════════════════════════════════
-- Pass entry
-- ════════════════════════════════════════════════════════════════════════════
local M = {}
--- @param ctx PassCtx
--- @return AutoRegResult
function M.run(ctx)
local outputs = {}
local errors = {}
local warnings = {}
local corpus = ctx.shared and ctx.shared.corpus
if type(corpus) ~= "table" then
error("auto_reg.run requires ctx.shared.corpus", 0)
end
-- 0. Build the user-pinned GPR exclusion set + alias-to-GPR resolution map.
-- Wave-context carriers (e.g. `R_ResolveScratch = R_T4 atom_reg` in hello_camera.atom.c)
-- MUST NOT be allocated to any auto-reg marker — they're preserved across atoms by the wave-context discipline.
-- The corpus's register_alias_registry is the source of truth for these opt-in pins.
-- Body references to those aliases (via alias_to_gpr) are also excluded on a per-atom basis in step 2 below.
local user_pinned, alias_to_gpr = build_user_pins(corpus)
-- 1. Allocate phase pools first (phase declarations take precedence over per-atom declarations).
local phase_allocations = {}
for phase_label, decls in pairs(corpus.phase_auto_regs or {}) do
local mapping, errs = allocate_phase(phase_label, decls)
for sym, gpr in pairs(mapping) do
phase_allocations[phase_label] = phase_allocations[phase_label] or {}
phase_allocations[phase_label][sym] = gpr
end
for _, e in ipairs(errs) do
errors[#errors + 1] = e
end
end
-- 2. Allocate per-atom auto-regs. If the atom scope matches a phase, reuse the phase pool.
-- Otherwise, allocate a private pool for the atom.
-- The phase membership is in `corpus.atom_phases[phase_label].atoms` (an array of atom names declared via `atom_phase(<phase>)`
-- in the atom's `atom_info` line). Build a reverse map `atom_name -> phase_label` so the lookup is O(1) per atom scope.
local atom_name_to_phase = {}
for phase_label, entry in pairs(corpus.atom_phases or {}) do
for _, atom_name in ipairs(entry.atoms or {}) do
atom_name_to_phase[atom_name] = phase_label
end
end
local atom_allocations = {}
for atom_scope, decls in pairs(corpus.atom_auto_regs or {}) do
local phase_label = atom_name_to_phase[atom_scope]
-- Build the atom's source pool: start with the full POOL, subtract:
-- (a) every GPR already committed (phase allocations + prior atom allocations)
-- (b) every USER-PINNED GPR (wave-context carriers + file-scope pinned aliases)
-- (c) every GPR referenced in the atom's body — either hardcoded R_X or alias R_Xxx
-- (the latter resolved via alias_to_gpr; this catches cases where the user wrote R_ResolveScratch instead of R_T4 directly)
-- Atoms whose scope matches a phase share the global pool with the phase allocations;
-- the original `source_pool = phase_allocations[phase_label]` form used the phase
-- allocation MAP as a pool, but that map has no array part, so `table.remove(source_pool, 1)`
-- returned nil and every atom-with-phase marker errored with `phase_register_pool_exhausted`.
local used = {}
for _, m in pairs(phase_allocations) do for _, gpr in pairs(m) do used[gpr] = true end end
for _, m in pairs(atom_allocations) do for _, gpr in pairs(m) do used[gpr] = true end end
-- (c) Body references — scan the atom body for hardcoded + alias-resolved GPRs.
-- Folded into `used` so the source_pool exclusion is a single check.
local atom = corpus.atoms_by_name and corpus.atoms_by_name[atom_scope]
if atom and atom.body then
local body_used = find_used_gprs(atom.body, alias_to_gpr)
for gpr in pairs(body_used) do used[gpr] = true end
end
local source_pool = {}
for _, gpr in ipairs(POOL) do
-- Exclude (a) prior commitments, (b) USER-PINNED GPRs (wave-context carriers
-- declared via atom_reg + _Code defs, preserved across atoms globally).
if not used[gpr] and not user_pinned[gpr] then
source_pool[#source_pool + 1] = gpr
end
end
local result = {}
for _, sym in ipairs(stable_sort_keys(decls)) do
local next_gpr = table.remove(source_pool, 1)
if not next_gpr then
errors[#errors + 1] = {
line = 0,
msg = string.format("phase_register_pool_exhausted: atom '%s' requested symbol '%s' "
.. "but no free registers remain in its scope pool."
, atom_scope, sym),
}
else
result[sym] = next_gpr
end
end
atom_allocations[atom_scope] = result
end
-- 3. Conflict-with-hardcoded detection (defensive — should be unreachable now).
-- The source_pool exclusion in step 2 (b) + (c) already accounts for both user-pinned GPRs
-- and body-referenced GPRs (hardcoded R_Tn OR alias R_<Alias>).
-- An auto-reg allocation that matched an existing body reference would be impossible by construction.
-- This warning is kept as a defensive safety net for cases the body scanner might miss
-- (e.g. macros that expand to register references the scanner cannot resolve).
-- For each resolved (scope, sym) -> R_Tn mapping, scan the atom body source for used GPRs.
for atom_scope, decls in pairs(atom_allocations) do
local atom = corpus.atoms_by_name and corpus.atoms_by_name[atom_scope]
if atom and atom.body then
local used_in_body = find_used_gprs(atom.body, alias_to_gpr)
for sym, allocated_gpr in pairs(decls) do
if used_in_body[allocated_gpr] and used_in_body[allocated_gpr] > 0 then
warnings[#warnings + 1] = {
line = atom.line or 0,
msg = string.format("phase_register_clash: atom '%s' has hardcoded '%s' in its body AND an auto-reg marker '%s' "
.. "that was allocated to '%s' (same phase). Resolve by removing the hardcoded reference or renaming the auto-reg."
, atom_scope, allocated_gpr, sym, allocated_gpr),
}
end
end
end
end
-- 4. Emit per-directory gen/auto_reg.h.
-- For each source directory that has atom_auto_regs or phase_auto_regs entries, emit one header.
local sources_by_dir = corpus.sources_by_dir or {}
for dir, sources in pairs(sources_by_dir) do
local per_dir_mappings = {}
for _, src in ipairs(sources) do
-- Collect every (sym -> gpr) entry that originated from a source in this directory.
-- `src.scan.atom_auto_regs` is keyed by ATOM SCOPE NAME; `pairs(t)` iterates KEYS so `scope_name` here is the scope ident (e.g. "cube_g4_face").
-- The previous `for _, scan_atom_auto` form silently assigned the VALUE (a `{sym = sym}` table) to the variable,
-- which made `atom_allocations[scan_atom_auto]` a table-indexed lookup that never resolved.
for scope_name in pairs(src.scan and src.scan.atom_auto_regs or {}) do
for sym, gpr in pairs(atom_allocations[scope_name] or {}) do
per_dir_mappings[sym] = gpr
end
end
for scope_name in pairs(src.scan and src.scan.phase_auto_regs or {}) do
for sym, gpr in pairs(phase_allocations[scope_name] or {}) do
per_dir_mappings[sym] = gpr
end
end
end
local out_dir = dir .. "/gen"
local out_path = emit_auto_reg_h(out_dir, dir, sources, per_dir_mappings)
if out_path then outputs[#outputs + 1] = { auto_reg_h = out_path } end
end
return { outputs = outputs, errors = errors, warnings = warnings }
end
return M
+48 -22
View File
@@ -3,9 +3,12 @@
--- Ownership: `corpus.word_counts`, `corpus.components`, and `corpus.component_body_index`.
--- Scanner owns `declaration_comment` and `debug_skip` on each declaration record; this pass projects both forward.
---
--- Reads the pre-scanned SourceScan payload from `duffle.scan_source` for `MipsAtomComp_(ac_X)` and `MipsAtomComp_Proc_(ac_X, { body })` declarations,
--- Reads the pre-scanned SourceScan payload from `duffle.scan_source` for `MipsAtomComp_(ac_X)` and `MipsAtomComp_Proc_(ac_X, { body })` declarations (kind="comp_bare" / "comp_proc"),
--- then resolves the function-args string from the preceding `FI_ Slice_MipsCode ac_X(...)` declaration via a backward walk.
---
--- `MipsAtom_Proc_(X, ab, { body })` declarations (kind="atom_proc") are ATOMS, not components, and are deliberately excluded —
--- atoms get emitted via `tb_emit(tb, code_<name>)` linker symbols, not inlined as `mac_*` macros.
---
--- Emits one `gen/macs.h` per *immediate source directory* with `#define mac_X(sig) \` macros plus `WORD_COUNT(mac_X, N)` entries for downstream offset computation.
--- All sources inside the same directory contribute to the same file (per-directory aggregation).
--- The directory itself is the namespace, so the filename does not repeat the module name.
@@ -76,7 +79,7 @@ local MACS_FILENAME = "macs.h"
--- @field args string|nil -- Function-args string (function form only)
--- @field line integer -- Source line of the declaration
--- @field comment string|nil -- Scanner-owned `declaration_comment`; the components pass reads it from the scanner record
--- @field kind string -- "comp_bare" | "comp_proc"
--- @field kind string -- "comp_bare" | "comp_proc" (atom_proc is NOT a component — see `project_components`)
--- @field debug_skip boolean -- Mirror of `a.debug_skip` (scanner-owned); true iff a bare `atom_dbg_skip` marker immediately preceded the declaration
-- ════════════════════════════════════════════════════════════════════════════
@@ -200,7 +203,16 @@ end
local function project_components(source, scan)
local out = {}
for _, a in ipairs(scan.atoms) do
-- Only `MipsAtomComp_(ac_X)` (kind="comp_bare") and `MipsAtomComp_Proc_(ac_X, ...)` (kind="comp_proc")
-- are COMPONENTS — they get inlined via `mac_<name>` aliases inside atom bodies.
-- `MipsAtom_Proc_` (kind="atom_proc") is an ATOM (ends with `mac_yield()`); it gets emitted via
-- `tb_emit(tb, code_<name>)` (linker symbol), NOT inlined as a macro. Including `atom_proc` here
-- would incorrectly emit `mac_<name>` aliases for atoms, polluting `gen/macs.h`.
-- See `docs/duffle_dsl_primer.md` §"mac_* aliases" for the contract.
if a.kind == "comp_bare" or a.kind == "comp_proc" then
-- Function-args lookup is meaningful for `MipsAtomComp_Proc_` components
-- (the macro sits inside `FI_ Slice_MipsCode ac_X(...)`); the alias expansion
-- discards the `ab` (atom-builder) arg the same way both forms do.
local args = find_function_args_for(source, a.raw_name, a.ident_pos)
-- Comment ownership: scan_source.lua stamps `declaration_comment` on the record by walking backward past any associated bare marker.
-- The pass reads `declaration_comment` directly.
@@ -299,7 +311,9 @@ local function word_count_rec(name, comp_by_name, wc, cache)
local trimmed = t.tok
if trimmed ~= "" then
local lookup = strip_mac_prefix(duffle.read_ident(trimmed, 1))
if lookup and comp_by_name[lookup] then
if lookup == "atom_label" or lookup == "atom_offset" then
-- Pure metaprogram anchors; emit zero words.
elseif lookup and comp_by_name[lookup] then
-- It's a `mac_X(...)` call. Recurse.
n = n + word_count_rec(lookup, comp_by_name, wc, cache)
elseif lookup and wc and wc[lookup] then
@@ -390,8 +404,7 @@ local function cycle_cost_rec(name, comp_by_name, latency, cache)
end
--- (internal) Recursive GP0 prim-buffer contribution. Count `store_word` / `store_half` / `store_byte`
--- calls in the component body that target `R_PrimCursor` (these are the
--- RAM-side prim-buffer words the macro contributes), recursing through nested `mac_*` calls.
--- calls in the component body that target `R_PrimCursor` (these are the RAM-side prim-buffer words the macro contributes), recursing through nested `mac_*` calls.
--- Only `R_PrimCursor`-targeting stores count. Stores targeting other registers (e.g. `R_OtBase`, heap pointers) are not prim-buffer contributions.
--- @param name string
--- @param comp_by_name table<string, Component>
@@ -473,12 +486,25 @@ local function split_comment_lines(s)
end
--- Determine the macro signature: function-args list (function form) or variadic-ignored (bare form).
--- For `MipsAtomComp_Proc_` components, the leading `ab` (atom-builder) arg is dropped:
--- the generated `mac_<name>` macros are inline-expansion aliases for baked atoms; their bodies don't reference `ab`
--- (the builder is only consumed by the procedural `atombuilder_unroll` line that `MipsAtomComp_Proc_` appends after the body).
--- Inline callers therefore don't need to thread a builder context.
--- @param args_str string|nil
--- @return string
local function signature_from_args(args_str)
local arg_names = extract_arg_names(args_str)
if arg_names and #arg_names > 0 then
return table.concat(arg_names, ", ")
-- Drop the leading `ab` (atom-builder) first arg if present.
-- Convention: `MipsAtomComp_Proc_` components always declare `ab` as the first function-arg
-- (type `MipsAtomBuilder_R`), mirroring the macro signature in `lottes_tape.h`.
if arg_names[1] == "ab" then
table.remove(arg_names, 1)
end
if #arg_names > 0 then
return table.concat(arg_names, ", ")
end
return "..." -- `ab` was the only arg; fall through to variadic
end
return "..."
end
@@ -520,7 +546,7 @@ local function build_component_lines(c, counts)
-- Marker comment: emitted once for every skipped component.
-- The marker is scanner-owned (declared by `atom_dbg_skip` immediately before the declaration in the source);
-- the components pass projects `c.debug_skip` and emits the marker as a generated comment.
-- This pass projects `c.debug_skip` and emits the marker as a generated comment.
if c.debug_skip then
lines[#lines + 1] = "/* atom_dbg_skip */"
end
@@ -554,8 +580,8 @@ end
--- Build the boilerplate header lines (the `#ifdef INTELLISENSE_DIRECTIVES` block,
--- the `// Auto-generated` comment, the `// Source:` line, and the self-contained `WORD_COUNT` macro definition).
--- @param dir string -- the absolute source directory
--- @param sources SourceFile[] -- sources contributing to this directory (for the header comment)
--- @param dir string -- Absolute source directory
--- @param sources SourceFile[] -- Sources contributing to this directory (for the header comment)
--- @return string[]
local function header_boilerplate(dir, sources)
local source_lines = { "// Directory: " .. duffle.to_absolute_path(dir) .. "/" }
@@ -586,9 +612,9 @@ end
--- Compute the per-directory output path for `.macs.h`.
--- e.g. any source in `code/duffle/` produces `code/duffle/gen/macs.h` regardless of source filename.
--- The directory name is the namespace; the filename does not repeat it.
--- @param dir string -- the absolute source directory
--- @return string -- the output directory
--- @return string -- the full output path
--- @param dir string -- Absolute source directory
--- @return string -- Output directory
--- @return string -- Full output path
local function compute_macs_h_path(dir)
local out_dir = dir .. "/" .. GEN_SUBDIR
local out_path = out_dir .. "/" .. MACS_FILENAME
@@ -598,11 +624,11 @@ end
--- Emit a per-directory `.macs.h` header with the aggregated `mac_X` macros + `WORD_COUNT` entries.
--- Writes in BINARY mode so LF line endings are preserved (the git blob is LF; Windows text-mode would emit CRLF and break the byte-identical diff).
--- @param ctx PassCtx
--- @param dir string -- the absolute source directory
--- @param sources SourceFile[] -- sources contributing to this directory (for the header comment)
--- @param components Component[] -- aggregated components from all sources in this directory
--- @param counts table<string, integer> -- precomputed word counts (from count_all_components)
--- @return string|nil -- path to the written file (nil if no components)
--- @param dir string -- Absolute source directory
--- @param sources SourceFile[] -- Sources contributing to this directory (for the header comment)
--- @param components Component[] -- Aggregated components from all sources in this directory
--- @param counts table<string, integer> -- Precomputed word counts (from count_all_components)
--- @return string|nil -- Path to the written file (nil if no components)
local function emit_component_macros_h(ctx, dir, sources, components, counts)
if #components == 0 then return nil end
local out_dir, out_path = compute_macs_h_path(dir)
@@ -641,11 +667,11 @@ local function update_canonical_word_counts(corpus, components, counts)
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"
--- @field debug_skip boolean -- mirror of the scanner-owned `a.debug_skip`; consumers read this directly
--- @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" (atom_proc is NOT a component)
--- @field debug_skip boolean -- Mirror of the scanner-owned `a.debug_skip`; consumers read this directly
--- (internal) Populate `corpus.components` with this source's components-by-name map.
--- First declaration wins; later declarations of the same bare name are dropped and recorded as a collision via `corpus.collisions` (kind = "component").
+20 -19
View File
@@ -703,9 +703,9 @@ end
--- `{comp_name, call_file, call_line, comp_file, comp_line, start_pos, end_pos, body_lines, debug_skip}`. `body_lines[k]`
--- is the k-th word's source line within the component body.
---
--- @param corpus table -- the corpus from `ctx.shared.corpus`
--- @param corpus table -- From `ctx.shared.corpus`
--- @param addrs table -- ELF symbols keyed by atom name from `elf_dwarf.read_nm`
--- @return table[] -- list of {name, addr, size_bytes, words, entries, invocations, debug_skip?}
--- @return table[] -- List of {name, addr, size_bytes, words, entries, invocations, debug_skip?}
local function build_atom_table(corpus, addrs)
-- Cross-ref: keep only atoms present in BOTH the nm symbol table AND `corpus.atoms_by_name`. Output is sorted by ascending addr.
local atoms_by_name = corpus.atoms_by_name or {}
@@ -834,10 +834,10 @@ end
--- This is intentional: silently falling back to a hardcoded GPR would mask the missing opt-in.
---
--- Pre-tokenized: `body_tokens` is the scan-source pass's pre-split list of top-level statements (each entry is a single `load_*` call or other statement).
--- @param body_tokens table[] -- the atom's pre-tokenized body statements (from atom.body_tokens)
--- @param binds_name string -- expected Binds_X name (skip pairs with mismatching binds)
--- @param registries table -- merged registries from collect_per_source_registries
--- @return table[] -- list of {reg = <MIPS index>, field = <field name>}
--- @param body_tokens table[] -- The atom's pre-tokenized body statements (from atom.body_tokens)
--- @param binds_name string -- Expected Binds_X name (skip pairs with mismatching binds)
--- @param registries table -- Merged registries from collect_per_source_registries
--- @return table[] -- List of {reg = <MIPS index>, field = <field name>}
local function parse_body_load_pairs(body_tokens, binds_name, registries)
local pairs = {}
local reg_index_by_name = (registries and registries.register_alias_registry) or {}
@@ -880,9 +880,9 @@ end
--- The piece chain uses (DW_OP_regN, DW_OP_piece, ULEB128(field_size)).
---
--- Binds fields come from `scan.binds`; the per-source `scan.binds[i].fields` already carries the typed-field record after the scan-source generalization.
--- @param corpus table -- the corpus from `ctx.shared.corpus`
--- @param atom_table table[] -- the cross-ref'd atom table from build_atom_table
--- @param registries table -- merged registries from collect_per_source_registries
--- @param corpus table -- From `ctx.shared.corpus`
--- @param atom_table table[] -- Cross-ref'd atom table from build_atom_table
--- @param registries table -- Merged registries from collect_per_source_registries
--- @return table, table -- (rbind_atoms, rbind_structs)
local function parse_rbind_atoms(corpus, atom_table, registries)
registries = registries or {}
@@ -944,7 +944,7 @@ local function parse_rbind_atoms(corpus, atom_table, registries)
binds = ai.binds,
fields = struct.fields, -- {name, offset} from scan.binds
bytes = struct.bytes,
regs = pairs, -- ordered list of {reg, field}
regs = pairs, -- Ordered list of {reg, field}
info_line = ai.info_line,
}
table.insert(struct.atom_names, atom_name)
@@ -992,7 +992,7 @@ local function build_dwarf_line_section(existing, atom_table)
while unit_pos < #existing do
if unit_pos + 4 > #existing then return existing end
local unit_length = elf_dwarf.read_u32_le(existing, unit_pos)
if unit_length == elf_dwarf.ELF32.dw_dwarf32_terminator then return existing end
if unit_length == elf_dwarf.dw_dwarf32_terminator then return existing end
local unit_end_excl = unit_pos + 4 + unit_length
if unit_end_excl > #existing then return existing end
last_pos, last_length, last_end = unit_pos, unit_length, unit_end_excl
@@ -1036,13 +1036,13 @@ local function build_dwarf_aranges_section(existing, atom_table)
-- We bump the unit's length field accordingly.
--
-- Unit structure (DWARF4 §7.21):
-- unit_length (4)
-- version (2)
-- unit_length (4)
-- version (2)
-- debug_info_offset (4) -- CU DIE offset in .debug_info
-- address_size (1)
-- segment_size (1)
-- entries... (4-byte addr + 4-byte length)
-- terminator (8 bytes: addr=0, length=0)
-- address_size (1)
-- segment_size (1)
-- entries... (4-byte addr + 4-byte length)
-- terminator (8 bytes: addr=0, length=0)
-- Walk all units and emit each one (preserving existing structure).
-- For the LAST unit, replace the terminator with my entries + new term.
@@ -1053,7 +1053,7 @@ local function build_dwarf_aranges_section(existing, atom_table)
while i < #existing do
-- Read this unit's length.
local ul = elf_dwarf.read_u32_le(existing, i)
if ul == elf_dwarf.ELF32.dw_dwarf32_terminator then
if ul == elf_dwarf.dw_dwarf32_terminator then
-- DWARF64 marker - not supported.
io.stderr:write("[dwarf_injection] WARN: .debug_aranges contains a DWARF64 marker (0xFFFFFFFF); the 64-bit extension is not supported by this metaprogram; passing through unchanged\n")
return existing
@@ -1780,7 +1780,8 @@ local function build_inserted_children(main_cu_offset, main_cu_end_excl, atom_ta
emit(uleb128(ABBREV_TYPED_VIEW_POINTER)) -- DW_TAG_pointer_type (abbrev 110; NOT 9; void chain target)
emit(elf_dwarf.write_u32_le(ref4_of(void_chain_offset))) -- 4-byte ref4: points at the void base_type's tag byte
-- type_chain_offsets["void|1"] is what step (f) of the per-RR_<R_Name> chain looks up.
type_chain_offsets["void|1"] = void_chain_offset -- both the base_type offset and the pointer_type are emitted consecutively; the OUTERMOST is the pointer_type. The variable's DW_AT_type must reference the pointer_type, not the base_type. Patch below.
type_chain_offsets["void|1"] = void_chain_offset -- both the base_type offset and the pointer_type are emitted consecutively; the OUTERMOST is the pointer_type.
-- The variable's DW_AT_type must reference the pointer_type, not the base_type. Patch below.
-- Capture the pointer_type's offset (the last-thing-emitted DIE start) and overwrite the lookup.
-- The pointer_type was emitted as: uleb(9) (1 byte) + 4-byte ref4 = 5 bytes. Its tag byte is at void_chain_offset + 8 (the base_type's 8 bytes: 1 tag + 5 name + 1 byte_size + 1 encoding).
local ptr_void_offset = void_chain_offset + 8
+3 -3
View File
@@ -188,11 +188,11 @@ function M.run(ctx)
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.
-- Kind must be one of: atom | atom_proc | 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
if kind ~= "atom" and kind ~= "atom_proc" and kind ~= "raw_atom" and kind ~= "comp_bare" and kind ~= "comp_proc" then
return
end
local proj = project_atom(atom, src, corpus)
@@ -215,7 +215,7 @@ function M.run(ctx)
end
-- Walk `corpus.source_order`; within each source, visit atoms followed by raw_atoms.
-- Recognized kinds (atom | raw_atom | comp_bare | comp_proc) each receive the atom.paths projection via duffle.project_emission.
-- Recognized kinds (atom | atom_proc | 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 {}
+8
View File
@@ -4,9 +4,17 @@
--- for `MipsAtom_(name)` and `MipsCode code_<name>` declarations, computes the word offset
--- from each `atom_offset(F, T)` marker to its target `atom_label(T)` declaration, and emits
--- `gen/offsets.h` with one `#define _atom_offset_F_T = N` per branch.
---
--- Per-directory aggregation: every source in the same directory contributes to the same `gen/offsets.h`.
--- The directory itself is the namespace; the filename does not repeat the module name.
---
--- (Task 12.16 note: atom-namespaced enum names — e.g., `atom_offset__normalize_v3s4__srav_path__aligned_done` —
--- were considered to prevent cross-atom label collisions, but the C-side `atom_offset(F, T)` macro in
--- `code/duffle/dsl.atom.h` doesn't know the current atom_name at expansion time, so any namespacing
--- on the metaprogram side breaks the C build. Reverted. The C-side would need a per-atom
--- `CURRENT_ATOM` #define (set by `MipsAtom_`/`MipsAtom_Proc_` macros) plus an updated `atom_offset`
--- macro that uses it. That's a coordinated refactor — deferred to a future track.)
---
--- The offset is `target_word - branch_word - 1` (the standard MIPS branch-immediate encoding: branch_offset = relative_pc_in_words - 1).
-- ════════════════════════════════════════════════════════════════════════════
+210 -13
View File
@@ -3,6 +3,7 @@
--- Single source-walk pass that produces the fat `SourceScan` payload consumed by all downstream passes. Walks each corpus source record once,
--- extracting every construct type the metaprograms need:
--- MipsAtom_ (kind = "atom", with optional atom_info inner)
--- MipsAtom_Proc_ (kind = "atom_proc", body inside last {})
--- MipsAtomComp_ (kind = "comp_bare")
--- MipsAtomComp_Proc_ (kind = "comp_proc", body inside last {})
--- atom_dbg_skip — bare whole-atom/component debug-step marker; following declaration disambiguates
@@ -34,7 +35,7 @@ local parse_enum_int_literal
-- ════════════════════════════════════════════════════════════════════════════
--- @class SourceScan
--- @field atoms AtomEntry[] -- MipsAtom_ + MipsAtomComp_ + MipsAtomComp_Proc_
--- @field atoms AtomEntry[] -- MipsAtom_ + MipsAtom_Proc_ + MipsAtomComp_ + MipsAtomComp_Proc_
--- @field raw_atoms AtomEntry[] -- MipsCode code_<name> { body } (offsets pass only)
--- @field binds BindsEntry[] -- typedef Struct_(Binds_X) { fields } (fields pre-parsed)
--- @field atom_infos AtomInfoEntry[] -- MipsAtom_(name) atom_info(...) (sub-calls pre-parsed)
@@ -55,7 +56,7 @@ local parse_enum_int_literal
--- @field args string|nil -- Trimmed args inside the `(...)` (nil when has_parens is false)
--- @field pending boolean -- true while awaiting the following declaration
--- @field superseded_by_marker_line integer|nil -- set when a newer marker bumped this one out of the pending slot
--- @field target_kind string|nil -- "atom" | "comp_bare" | "comp_proc" | "unrelated" once observed (nil if no declaration ever followed)
--- @field target_kind string|nil -- "atom" | "atom_proc" | "comp_bare" | "comp_proc" | "unrelated" once observed (nil if no declaration ever followed)
--- @field proc_prelude boolean|nil -- true after the marker crossed an `FI_` prelude and awaits `MipsAtomComp_Proc_`
--- @class RegTypeDefault
@@ -111,7 +112,7 @@ local parse_enum_int_literal
--- @field name string -- Atom name (for components: without ac_ prefix)
--- @field body string -- Brace-delimited body (without the braces)
--- @field body_off integer -- Char offset of body[1] in source
--- @field kind string -- "atom" | "comp_bare" | "comp_proc" | "raw_atom"
--- @field kind string -- "atom" | "atom_proc" | "comp_bare" | "comp_proc" | "raw_atom"
--- @field raw_name string -- Un-stripped name (for components: with ac_ prefix)
--- @field ident_pos integer -- Position of the MipsAtom_/MipsAtomComp_ ident start
--- @field after_paren integer -- Position past the closing paren
@@ -268,7 +269,7 @@ end
--- marker_kind == "atom_dbg_skip" AND is_bare == true
--- Any other spelling or shape (parenthesized form, legacy name) is recorded as a raw marker for annotation validation but never stamps `debug_skip`.
--- @param out SourceScan
--- @param target_kind string|nil -- "atom" | "comp_bare" | "comp_proc" | "unrelated" once observed
--- @param target_kind string|nil -- "atom" | "atom_proc" | "comp_bare" | "comp_proc" | "unrelated" once observed
--- @return boolean|nil -- true iff the marker is the positive bare form
local function attach_debug_skip_marker(out, target_kind)
local markers = out.debug_skip_markers
@@ -799,6 +800,11 @@ local BYTE_x = 0x78 -- 'x'
local BYTE_X = 0x58 -- 'X'
local BYTE_OPEN_BRACE = 0x7B -- '{'
local BYTE_CLOSE_BRACE= 0x7D -- '}'
local BYTE_SLASH = 0x2F -- '/'
local BYTE_STAR = 0x2A -- '*'
local BYTE_SPACE = 0x20 -- ' '
local BYTE_TAB = 0x09 -- '\t'
local BYTE_CR = 0x0D -- '\r'
-- Maximum chain depth when resolving `R_*_Code` symbol RHS references.
-- Eight hops is enough for any production chain (R_TapePtr_Code -> R_T8_Code -> ...).
@@ -822,6 +828,44 @@ local function hex_digit_value(b)
return nil
end
-- Read one trailing C-comment that appears immediately after `pos` in `body`,
-- skipping horizontal whitespace and newlines first. Used by `parse_enum_entry` to
-- recover the `atom_auto_reg:` / `phase_auto_reg:` scope annotation embedded by
-- the `atom_auto_reg` / `phase_auto_reg` macros' RHS expansion
-- (`R_<Sym> = R_<Sym>_Code /* atom_auto_reg: <scope> */`).
-- Handles both block (`/* ... */`) and line (`// ...`) forms.
-- Returns the comment text (without delimiters), or nil if no comment is adjacent.
local function read_trailing_cmt_after(body, pos)
local body_len = #body
while pos <= body_len do
local b = body:byte(pos)
if b == BYTE_SPACE or b == BYTE_TAB or b == BYTE_NEWLINE or b == BYTE_CR then
pos = pos + 1
elseif b == BYTE_SLASH then
local b2 = body:byte(pos + 1)
if b2 == BYTE_STAR then
-- Block comment /* ... */
local i = pos + 2
while i < body_len do
if body:byte(i) == BYTE_STAR and body:byte(i + 1) == BYTE_SLASH then
return body:sub(pos + 2, i - 1)
end
i = i + 1
end
return nil -- unterminated; treat as no comment
elseif b2 == BYTE_SLASH then
-- Line comment // ... (strip the trailing newline)
local end_pos = duffle.find_byte(body, BYTE_NEWLINE, pos + 2) or (body_len + 1)
return body:sub(pos + 2, end_pos - 1)
end
return nil
else
return nil
end
end
return nil
end
--- Parse a decimal/negative-decimal/hex integer literal starting at byte position `start`.
--- Returns (value, end_pos) on success, or (nil, start) on failure / no match.
--- Accepts: 12, -1, 0, 0x10, 0X1F, -0x10.
@@ -1128,6 +1172,46 @@ local function parse_dbg_skip_marker(source, pos, ident_end, line_of, out)
return marker_end
end
--- Parse `atom_auto_reg(<atom>, R_<Sym>)` and `phase_auto_reg(<phase>, R_<Sym>)` markers.
---
--- The macros expand to `sym = sym##_Code` per their definition in dsl.atom.h.
--- After preprocessing, the marker renders as a full enum entry of the form `R_<Sym> = R_<Sym>_Code,`.
--- This parser detects the macro invocation site, extracts `(scope_name, sym)`, and stores it
--- in the per-source table (atom_auto_regs or phase_auto_regs) under the scope's name.
---
--- @param source string
--- @param pos integer
--- @param ident_end integer
--- @param line_of fun(pos: integer): integer
--- @param out SourceScan
--- @return integer
local function parse_auto_reg_marker(source, pos, ident_end, line_of, out)
local marker_kind = source:sub(pos, ident_end - 1) -- "atom_auto_reg" or "phase_auto_reg"
local scope_kind = marker_kind == "atom_auto_reg" and "atom" or "phase"
local inner, after_paren = read_parens_after(source, ident_end)
if not inner then return after_paren end
local args = duffle.split_top_level_commas(inner)
local scope_name = args[1] and duffle.trim(args[1]) or nil
local sym = args[2] and duffle.trim(args[2]) or nil
-- Filter: only accept `R_<Sym>` form (matches `^R_[%w_]+$`).
if scope_name and sym and sym:match("^R_[%w_]+$") then
if scope_kind == "atom" then
out.atom_auto_regs = out.atom_auto_regs or {}
out.atom_auto_regs[scope_name] = out.atom_auto_regs[scope_name] or {}
out.atom_auto_regs[scope_name][sym] = sym
else
out.phase_auto_regs = out.phase_auto_regs or {}
out.phase_auto_regs[scope_name] = out.phase_auto_regs[scope_name] or {}
out.phase_auto_regs[scope_name][sym] = sym
end
end
return after_paren
end
-- Parse `atom_dbg_reg_default(R_X, <type>...)`;
-- the second argument may be a `Type` or `Type*`/`Type**` chain. Records in `out.types[R_X]`.
local function parse_atom_dbg_reg_default(source, pos, ident_end, line_of, out)
@@ -1282,6 +1366,49 @@ local function parse_mips_atom_comp_proc(source, pos, ident_end, line_of, out)
return after_paren
end
--- Parse: `MipsAtom_Proc_(<name>, <abuilder>, { <body> })` — body is inside the LAST `{` in args.
--- Per Task 12.10: full support for the runtime-proc atom form. Registers the atom
--- with kind `"atom_proc"` so offsets.lua / components.lua can emit
--- * `mac_<name>` aliases in `gen/macs.h` (the components pass)
--- * `atom_offset__X__Y` defs in `gen/offsets.h` (the offsets pass)
--- The atom name is the FIRST ident of the args (the second arg `ab` is the
--- atom-builder, not the name). Unlike `MipsAtomComp_Proc_`, there is no `ac_`
--- prefix on the symbol — `MipsAtom_Proc_` is the runtime-proc wrapper, so the
--- symbol IS the bare atom name (e.g. `normalize_v3s4`, not `ac_normalize_v3s4`).
--- @param source string
--- @param pos integer
--- @param ident_end integer
--- @param line_of fun(pos: integer): integer
--- @param out SourceScan
--- @return integer
local function parse_mips_atom_proc(source, pos, ident_end, line_of, out)
local inner, after_paren, open_paren = read_parens_after(source, ident_end)
if not inner then return after_paren end
-- Find the LAST `{` in inner (the body brace, not any potential embedded braces in expressions).
local last_brace_pos = nil
for search_pos = #inner, 1, -1 do
if inner:sub(search_pos, search_pos) == "{" then last_brace_pos = search_pos; break end
end
if not last_brace_pos then return after_paren end
-- Use duffle.read_braces to find the matching close brace.
-- Uses `read_balanced` for delimiter-depth tracking.
-- If close_pos is past the end of inner, the brace didn't match (malformed input); skip.
local body, close_pos = duffle.read_braces(inner, last_brace_pos)
if close_pos > #inner + 1 then return after_paren end
-- The atom name is the FIRST ident of the args (matches MipsAtomComp_Proc_'s "first ident" rule).
-- MipsAtom_Proc_ has no `ac_` prefix; `strip_ac_prefix` is a no-op for unprefixed names.
local raw_name = inner:match("^%s*([%w_]+)") or "?"
local name = strip_ac_prefix(raw_name)
-- Position of body[1] in source = open_paren + 1 (start of inner) + last_brace_pos + 1 (past '{').
local body_off = open_paren + 2 + last_brace_pos
register_atom(out, "atom_proc", line_of(pos), name, body, body_off, raw_name, pos, after_paren, source)
return after_paren
end
--- Parse: `MipsCode code_<name> { <body> }` (raw atom form — offsets pass only).
--- @param source string
--- @param pos integer
@@ -1602,6 +1729,16 @@ local function parse_enum_entry(source, body, body_offset, line_of, out, entry_n
local value, value_end = parse_enum_value(body, after_ws, out)
if value == nil then return value_start end
-- Capture the trailing C-comment (if any) before `skip_ws_and_cmt` discards it.
-- The `atom_auto_reg(<scope>, <sym>)` macro expands to `R_<Sym> = R_<Sym>_Code /* atom_auto_reg: <scope> */`,
-- so the scope name lives in the comment after the RHS value. Routes through `out.atom_entry_comments`
-- for downstream `parse_enum` to split into `out.atom_auto_regs` / `out.phase_auto_regs`.
local trailing_cmt = read_trailing_cmt_after(body, value_end)
if trailing_cmt then
out.atom_entry_comments = out.atom_entry_comments or {}
out.atom_entry_comments[entry_name] = trailing_cmt
end
local after_value = duffle.skip_ws_and_cmt(body, value_end)
local has_atom_reg, end_after_atom_reg = check_bare_atom_reg(body, after_value)
@@ -1657,15 +1794,24 @@ local function parse_enum_body(source, body, body_offset, line_of, out)
else
local entry_name, name_end = duffle.read_ident(body, pos)
if entry_name then
local after_name = duffle.skip_ws_and_cmt(body, name_end)
if body:byte(after_name) == BYTE_EQUAL then
local new_pos = parse_enum_entry(
source, body, body_offset, line_of, out,
entry_name, pos, after_name + 1
)
if new_pos > pos then pos = new_pos else pos = after_name + 1 end
-- In-enum `atom_auto_reg(<scope>, R_<Sym>)` / `phase_auto_reg(<scope>, R_<Sym>)` markers:
-- the C preprocessor expands them to `R_<Sym> = R_<Sym>_Code /* atom_auto_reg: <scope> */`,
-- but the metaprogram reads source-as-written so we must dispatch the parser here too.
-- Mirrors the top-level `DECL_PARSERS` entry for `atom_auto_reg` / `phase_auto_reg`.
if entry_name == "atom_auto_reg" or entry_name == "phase_auto_reg" then
local new_pos = parse_auto_reg_marker(body, pos, name_end, line_of, out)
if new_pos > pos then pos = new_pos else pos = name_end end
else
pos = name_end
local after_name = duffle.skip_ws_and_cmt(body, name_end)
if body:byte(after_name) == BYTE_EQUAL then
local new_pos = parse_enum_entry(
source, body, body_offset, line_of, out,
entry_name, pos, after_name + 1
)
if new_pos > pos then pos = new_pos else pos = after_name + 1 end
else
pos = name_end
end
end
else
pos = pos + 1
@@ -1695,6 +1841,25 @@ local function parse_enum(source, pos, ident_end, line_of, out)
if not body then return after_brace end
parse_enum_body(source, body, body_off, line_of, out)
-- Route `atom_auto_reg:` / `phase_auto_reg:` markers discovered in trailing C-comments
-- into the per-source `atom_auto_regs` / `phase_auto_regs` projections.
-- Pattern matches the RHS expansion `R_<Sym> = R_<Sym>_Code /* <kind>_auto_reg: <scope> */`
-- emitted by the `atom_auto_reg` / `phase_auto_reg` macros in dsl.atom.h.
for entry_name, cmt_text in pairs(out.atom_entry_comments or {}) do
local atom_scope = cmt_text:match("atom_auto_reg:%s*([%w_]+)")
if atom_scope then
out.atom_auto_regs = out.atom_auto_regs or {}
out.atom_auto_regs[atom_scope] = out.atom_auto_regs[atom_scope] or {}
out.atom_auto_regs[atom_scope][entry_name] = entry_name
end
local phase_scope = cmt_text:match("phase_auto_reg:%s*([%w_]+)")
if phase_scope then
out.phase_auto_regs = out.phase_auto_regs or {}
out.phase_auto_regs[phase_scope] = out.phase_auto_regs[phase_scope] or {}
out.phase_auto_regs[phase_scope][entry_name] = entry_name
end
end
return after_brace
end
@@ -1708,12 +1873,18 @@ end
local DECL_PARSERS = {
MipsAtom_ = parse_mips_atom,
MipsAtom_Proc_ = parse_mips_atom_proc,
MipsAtomComp_ = parse_mips_atom_comp,
MipsAtomComp_Proc_ = parse_mips_atom_comp_proc,
-- `atom_dbg_skip` is the only debug-skip parser entry. Every other
-- identifier follows the ordinary unrelated-token path; there is no alias.
atom_dbg_skip = parse_dbg_skip_marker,
atom_dbg_reg_default = parse_atom_dbg_reg_default,
-- `atom_auto_reg(atom, R_<Sym>)` and `phase_auto_reg(phase, R_<Sym>)` populate per-source
-- `out.atom_auto_regs` / `out.phase_auto_regs`; the cross-source merge lands in
-- `corpus.atom_auto_regs` / `corpus.phase_auto_regs` (first-wins).
atom_auto_reg = parse_auto_reg_marker,
phase_auto_reg = parse_auto_reg_marker,
MipsCode = parse_mips_code,
typedef = parse_typedef_binds,
_Pragma = parse_pragma_macro,
@@ -1748,6 +1919,14 @@ local function scan_source(source, source_file, code_macros, code_macro_bodies)
debug_skip_markers = {},
types = {},
atom_views = {},
-- Per-source projection for `atom_auto_reg(<atom>, R_<Sym>)` markers.
-- Each entry is keyed by atom_name; the inner table maps `R_<Sym>` -> `R_<Sym>` (raw LHS sym).
-- Merged cross-source into `corpus.atom_auto_regs` (first-wins).
atom_auto_regs = {},
-- Per-source projection for `phase_auto_reg(<phase>, R_<Sym>)` markers.
-- Each entry is keyed by phase_label; the inner table maps `R_<Sym>` -> `R_<Sym>` (raw LHS sym).
-- Merged cross-source into `corpus.phase_auto_regs` (first-wins).
phase_auto_regs = {},
line_of = line_of,
-- Source-derived register-alias registry (atom_reg opt-in entries).
-- Keys are full R_* idents (never stripped); see parse_enum / parse_enum_body.
@@ -1987,6 +2166,8 @@ local function merge_corpus_registries(corpus)
corpus.atom_ctxs = corpus.atom_ctxs or {}
corpus.atom_phases = corpus.atom_phases or {}
corpus.atom_infos = corpus.atom_infos or {}
corpus.atom_auto_regs = corpus.atom_auto_regs or {}
corpus.phase_auto_regs = corpus.phase_auto_regs or {}
corpus.collisions = corpus.collisions or {}
-- Replace the existing corpus collections with empty tables so a re-run on the same corpus produces identical state (deterministic merge).
@@ -2030,7 +2211,7 @@ local function merge_corpus_registries(corpus)
corpus.collisions, "binds", bind_shape)
end
-- atoms_by_name: MipsAtom_(name) + MipsAtomComp_(name) + MipsAtomComp_Proc_(name).
-- atoms_by_name: MipsAtom_(name) + MipsAtom_Proc_(name) + MipsAtomComp_(name) + MipsAtomComp_Proc_(name).
-- Each atom carries `{line, name, body, body_off, kind, raw_name, ...}`.
-- Duplicate atom names across sources are first-wins + collision; see the atom_infos block below for the evidence list.
for _, atom_entry in ipairs(scan.atoms or {}) do
@@ -2065,6 +2246,22 @@ local function merge_corpus_registries(corpus)
corpus.collisions, "phase", phase_shape)
end
-- atom_auto_regs: keyed by atom scope name; each carries a `{R_<Sym> = R_<Sym>}` map.
-- Per-source entries are simple inner maps (no body / no shape comparison); first-wins suffices.
for atom_scope, syms in pairs(scan.atom_auto_regs or {}) do
if corpus.atom_auto_regs[atom_scope] == nil then
corpus.atom_auto_regs[atom_scope] = syms
end
end
-- phase_auto_regs: keyed by phase label; each carries a `{R_<Sym> = R_<Sym>}` map.
-- Per-source entries are simple inner maps (no body / no shape comparison); first-wins suffices.
for phase_label, syms in pairs(scan.phase_auto_regs or {}) do
if corpus.phase_auto_regs[phase_label] == nil then
corpus.phase_auto_regs[phase_label] = syms
end
end
-- atom_infos: ALWAYS append every record in source/declaration order.
-- Duplicates are preserved so the annotation pass can flag them via `check_unique_annotation`;
-- The merge is purely order-preserving.
+97 -38
View File
@@ -39,8 +39,8 @@
--- `── Info` section renders finding-level info between `── Warnings` and the per-atom cycle counts.
---
--- The structural handshake checks (`mac_yield_uniformity`, `hazard_nop_use`, `control_transfer_delay_slot_use`) skip atoms/components with `debug_skip == true`.
--- The `atom_dbg_skip` marker designates runtime-helper declarations whose structure is fixed by the tape runtime (e.g. `tape_exit`, `ac_yield`).
--- Flagging them as "missing mac_yield" or "BD slot is redundant" is signal noise, not a logic failure.
--- `atom_dbg_skip` marker designates runtime-helper declarations whose structure is fixed by the tape runtime (e.g. `tape_exit`, `ac_yield`).
--- Flagging them as "missing mac_yield" or "BD slot is redundant".
--- Other checks (transfer_hazards, gpu_portstore_shape, abi_handoff, enum_alias_membership, …) still apply to debug_skip declarations because real hazards / typos can still surface in them.
---
--- The orchestrator (`ps1_meta.lua`) wires this module in via the PASSES table:
@@ -256,8 +256,21 @@ local BRANCH_PATTERN = "^branch_[%w_]+%s*%("
-- The C preprocessor expands it BEFORE the metaprogram sees the source, but for source-level metadata consistency we still match it here and classify it as a branch_equal.
-- This keeps `consuming_encoder` canonical for any downstream tooling that consults the metadata field.
local JUMP_REL_PATTERN = "^jump_rel%s*%("
local UNCOND_JUMP_PATTERN = "^%f[%w](jump|call_addr)%f[%W]"
local TERMINAL_JUMP_PATTERN = "^%f[%w](jump_reg|call_reg|jump_link)%f[%W]"
local UNCOND_JUMP_PATTERNS = {
"^%f[%w]jump%f[%W]",
"^%f[%w]call_addr%f[%W]",
}
local TERMINAL_JUMP_PATTERNS = {
"^%f[%w]jump_reg%f[%W]",
"^%f[%w]call_reg%f[%W]",
"^%f[%w]jump_link%f[%W]",
}
local function matches_any(tok, patterns)
for i = 1, #patterns do
if tok:match(patterns[i]) then return true end
end
return false
end
local function classify_tokens(tokens)
local n = #tokens
@@ -301,13 +314,13 @@ local function classify_tokens(tokens)
-- Both encode a 16-bit signed relative word offset.
is_branch = true
branch_label = tok:match("atom_offset%s*%([^,]+,%s*([%w_]+)%s*%)") or false
elseif tok:match(UNCOND_JUMP_PATTERN) then
elseif matches_any(tok, UNCOND_JUMP_PATTERNS) then
-- Unconditional absolute jump / call: `jump(off)` / `call_addr(off)`.
-- One immediate offset field; can carry an `atom_offset(F, T)` marker (the offsets pass dispatches on `consuming_encoder` — see `passes/offsets.lua::compute_offsets`).
is_branch = true
is_unconditional_jump = true
branch_label = tok:match("atom_offset%s*%([^,]+,%s*([%w_]+)%s*%)") or false
elseif tok:match(TERMINAL_JUMP_PATTERN) then
elseif matches_any(tok, TERMINAL_JUMP_PATTERNS) then
-- Register-form jump / call: no offset field; `atom_offset` is invalid here (the offsets pass will error if one is supplied).
-- Transfers control OUT of the current atom — the CFG treats this as a path terminator.
is_terminal_jump = true
@@ -439,7 +452,7 @@ local function is_cop2_consumer_of(consumer_event, destination, producer_rel)
end
-- True iff `consumer_event` reads the GPR operand at any position the destination register occupies.
-- The read-position lookup consults `duffle.OPERAND_READ_POSITIONS` for the consumer's encoder and walks each `args[pos]` to find an operand-equal match.
-- read_pos lookup consults `duffle.OPERAND_READ_POSITIONS` for the consumer's encoder and walks each `args[pos]` to find an operand-equal match.
local function is_gpr_consumer_of(consumer_event, destination)
local consumer_token = consumer_event.encoder or consumer_event.ident
local read_pos = duffle.OPERAND_READ_POSITIONS or {}
@@ -567,13 +580,31 @@ local function evaluate_gpr_value_rule(rule, ev_args, gpr_values)
return shift_left_u4(immediate % 0x10000, 16)
end
local source = nil
-- Encoders that take `R_0` implicitly (e.g. `li_s(rt, imm)` which is `add_ui(rt, R_0, imm)`) have a non-GPR operand at the source position.
-- Fall back to R_0 = 0.
-- The implicit-R_0 macros also use a different immediate position (e.g. `li_s`'s `add_ui` rule has source = 2 / immediate = 3
-- but the macro takes 2 args); when the configured immediate position is out of bounds.
-- Fall back instead to scanning the macro's args for the first integer literal and use that as the immediate.
local source = 0
if rule.source then
source = constant_for_operand(gpr_values, ev_args[rule.source])
if source == nil then return nil end
if is_gpr_operand(ev_args[rule.source]) then
source = constant_for_operand(gpr_values, ev_args[rule.source])
if source == nil then return nil end
end
-- Non-GPR at source position = implicit R_0; source stays 0.
end
local immediate = nil
if rule.immediate and ev_args[rule.immediate] ~= nil then
immediate = parse_integer_literal(ev_args[rule.immediate])
if immediate == nil then return nil end
elseif rule.immediate then
-- Immediate position out of bounds: scan for the first integer literal in the args.
for _, arg in ipairs(ev_args) do
immediate = parse_integer_literal(arg)
if immediate ~= nil then break end
end
if immediate == nil then return nil end
end
local immediate = rule.immediate and parse_integer_literal(ev_args[rule.immediate]) or nil
if rule.immediate and immediate == nil then return nil end
if operation == "add_ui" then return wrap_u4( source + sign_extend_i16(immediate))
elseif operation == "or_i" then return bit_binary( source, immediate % 0x10000, "or")
elseif operation == "and_i" then return bit_binary( source, immediate % 0x10000, "and")
@@ -1433,17 +1464,21 @@ end
--- The register becomes non-volatile again at word N+2 (the load has retired), OR sooner if a non-load instruction overwrites the register
--- (the overwriter's write is the fresh producer; the load's value is shadowed and never observed by any reader).
---
--- Runtime-helper atoms / components (`debug_skip == true`) are exempt: their internal load-then-use sequences
--- are part of the fixed handshake (e.g. `ac_load_tri_indices` loads into R_T0..R_T2, but those are caller-supplied).
--- Runtime-helper atoms / components (`debug_skip == true`) are exempt from some checks, but load-delay
--- safety applies to their emitted instructions as well.
---
--- The walker reads `duffle.OPERAND_READ_POSITIONS[event.encoder]` to determine which args are read-source
--- (the destination of a load is in `writes`, not `reads` — see `duffle.INSTRUCTION_GPR_EFFECTS`).
--- The check is purely structural; it does not consult the GPR-value lattice (no constant propagation needed for load-delay detection — the volatility window is unconditional).
--- The check is purely structural; it does not consult the GPR-value lattice
--- (no constant propagation needed for load-delay detection — the volatility window is unconditional).
local function check_load_delay_slots(atom, pipe_ctx, findings)
if atom.kind ~= "atom" then return end
local events = atom.paths.word_events or {}
-- The load-delay check applies to every atom and component body, including debug-skipped components (`ac_*` and `atom_dbg_skip MipsAtom_(...)`).
-- The `atom_dbg_skip` marker controls debugger stepping, not instruction safety.
-- `atom_proc` atoms have full bodies with loads that need delay slots, so the check applies to them too.
local p = atom.paths or {}
if atom.kind ~= "atom" and atom.kind ~= "atom_proc" then return end
local events = p.word_events or {}
if #events == 0 then return end
if is_runtime_helper(atom) then return end
local gpr_effects = duffle.INSTRUCTION_GPR_EFFECTS or {}
local read_positions = duffle.OPERAND_READ_POSITIONS or {}
@@ -1545,6 +1580,8 @@ local function check_mac_yield_uniformity(atom, pipe_ctx, findings)
if is_runtime_helper(atom) then return end
-- Per-kind semantics:
-- MipsAtom_ (baked atom): exactly 1 mac_yield at the end of the body. Control transfer is the atom's job.
-- MipsAtom_Proc_ (runtime-proc atom): exactly 1 mac_yield at the end of the body. Same as baked atom;
-- the proc IS the atom; the runtime call to `atombuilder_unroll` doesn't introduce a parent atom.
-- MipsAtomComp_ (bare static-array component): ZERO mac_yield.
-- The component is invoked from inside an atom body; the parent atom does the yield.
-- MipsAtomComp_Proc_ (procedural component): ZERO mac_yield.
@@ -1568,7 +1605,7 @@ local function check_mac_yield_uniformity(atom, pipe_ctx, findings)
return atom.line + line_in_body[tokens[idx].rel]
end
if atom.kind == "atom" then
if atom.kind == "atom" or atom.kind == "atom_proc" then
-- Baked atom: exactly 1 yield at the end.
if count == 0 then
findings[#findings + 1] = {
@@ -1613,6 +1650,7 @@ local function check_mac_yield_uniformity(atom, pipe_ctx, findings)
-- The parent atom does the yield.
-- A yield inside a component would either be dead code (bare) or prematurely terminate the function (proc).
-- Both are bugs.
-- `atom_proc` atoms are NOT components; they're runtime-proc atoms that own their own yield (handled in the `if` branch above).
if count > 0 then
findings[#findings + 1] = {
atom = atom.name,
@@ -1644,7 +1682,7 @@ end
--- Per-atom. Runtime-helper atoms (`debug_skip`) are exempt.
--- Takes `(atom, pipe_ctx, findings)`; `pipe_ctx` is unused.
local function check_yield_load_tail_pairing(atom, _pipe_ctx, findings)
if atom.kind ~= "atom" then return end
if atom.kind ~= "atom" and atom.kind ~= "atom_proc" then return end
if is_runtime_helper(atom) then return end
local tokens = atom.paths.tokens
@@ -1656,21 +1694,39 @@ local function check_yield_load_tail_pairing(atom, _pipe_ctx, findings)
return atom.line + line_in_body[tokens[idx].rel]
end
-- ── Rule 1: every `mac_yield_load()` must be in a branch BD-slot.
-- ── Rule 1: every `mac_yield_load()` must be in a branch BD-slot, OR sit between two `atom_label`s (natural fall-through load pattern).
-- When the pattern is satisfied, the check stays silent; only violations emit findings.
for tok_idx = 1, n do
local c = tc[tok_idx]
if c.ident == "mac_yield_load" then
if tok_idx < 2 or not tc[tok_idx - 1].is_branch then
local prev_ident = (tok_idx >= 2) and (tc[tok_idx - 1].ident or "?") or "<none>"
findings[#findings + 1] = {
atom = atom.name,
line = tok_idx >= 2 and line_for(tok_idx) or atom.line,
check = "yield_load_tail_pairing",
kind = "error",
msg = string.format(
"%s at line %d has `mac_yield_load()` at word %d but the previous token is `%s`, not a branch — `mac_yield_load()` must fill a branch BD-slot."
, atom.name, tok_idx >= 2 and line_for(tok_idx) or atom.line, tok_idx, prev_ident),
}
local prev_tc = (tok_idx >= 2) and tc[tok_idx - 1] or nil
-- Look for the next `atom_label()` token (skip `atom_offset` markers; check immediately-adjacent first).
local next_label_tc = (tok_idx + 1 <= n) and tc[tok_idx + 1] or nil
if next_label_tc and next_label_tc.ident ~= "atom_label" then
next_label_tc = nil
for j = tok_idx + 1, n do
local t = tc[j]
if t.ident == "atom_label" then
next_label_tc = t
break
end
end
end
local natural_fallthrough = prev_tc and prev_tc.is_atom_label and next_label_tc ~= nil
if not natural_fallthrough then
if tok_idx < 2 or not prev_tc.is_branch then
local prev_ident = prev_tc and (prev_tc.ident or "?") or "<none>"
local next_ident = next_label_tc and (next_label_tc.ident .. "(" .. (next_label_tc.label_name or "?") .. ")") or "<no following label>"
findings[#findings + 1] = {
atom = atom.name,
line = tok_idx >= 2 and line_for(tok_idx) or atom.line,
check = "yield_load_tail_pairing",
kind = "error",
msg = string.format(
"%s at line %d has `mac_yield_load()` at word %d but the previous token is `%s`, not a branch — and the next `atom_label()` token is `%s` — `mac_yield_load()` must fill a branch BD-slot or sit between two `atom_label`s for the natural fall-through load."
, atom.name, tok_idx >= 2 and line_for(tok_idx) or atom.line, tok_idx, prev_ident, next_ident),
}
end
end
end
end
@@ -1845,9 +1901,9 @@ end
--- - Atoms containing a `mac_<name>(...)` call whose `name` is not registered in `pipe_ctx.components_by_name` emit a "new macro;
--- Not in corpus.components" advisory — the auto-derivation returned nil for that name.
---
--- Applies only to `kind = "atom"` (baked atoms). Components don't emit full primitives.
--- Applies only to `kind = "atom"` or `kind = "atom_proc"` (full-atom bodies). Components don't emit full primitives.
local function check_gpu_portstore_shape(atom, pipe_ctx, findings)
if atom.kind ~= "atom" then return end
if atom.kind ~= "atom" and atom.kind ~= "atom_proc" then return end
local tokens = atom.paths.tokens
local line_in_body = atom.paths.line_in_body
local tc = atom.paths.tok_class
@@ -2015,8 +2071,9 @@ local function analyze_atom_paths(atom, pipe_ctx)
succ[#succ + 1] = label_pos + 1
end
end
-- For literal-offset jumps (label == false), the target is a non-tracked address; conservatively omit.
return succ, nil
-- For literal-offset jumps (label == false), control transfers out unconditionally.
-- Treat as a terminator so the path is recorded (NOT as a silent fall-through to the next token, which is unreachable in this atom's execution).
return {}, tok_idx
end
-- Conditional branch: BD slot absorbed; two successors — fall-through (tok_idx+2) + taken (if known).
if tok_idx + 2 <= n then
@@ -2032,9 +2089,11 @@ local function analyze_atom_paths(atom, pipe_ctx)
-- Return (succ, nil), the second value is the terminator marker (nil = not a terminator).
return succ, nil
end
-- Normal token: just the next one
-- Normal token: just the next one.
-- The final ordinary word of the body has no successor and terminates the path;
-- record it as an implicit endpoint so the cycle budget for non-yield components is not silently zeroed.
if tok_idx + 1 <= n then return { tok_idx + 1 }, nil end
return {}, nil
return {}, tok_idx
end
-- DFS through all paths. Track the current cycle sum, a visited set scoped to the current path (to detect loops), and a count of paths.
+6
View File
@@ -118,6 +118,12 @@ local PASSES = {
kind = "header-output",
deps = {"scan-source", "word-counts"},
},
auto_reg = {
module = "passes.auto_reg",
kind = "header-output",
deps = {"components"},
groups = { "pre-link" },
},
["emission-model"] = {
module = "passes.emission_model",
kind = "validation",
+5
View File
@@ -14,16 +14,21 @@ $url_armips = 'https://github.com/Kingcom/armips.git'
$url_pcsx_redux = 'https://github.com/grumpycoders/pcsx-redux.git'
$url_psyq_iwyu = 'https://github.com/johnbaumann/psyq_include_what_you_use.git'
$url_lpeg = 'https://github.com/roberto-ieru/LPeg.git'
# $url_mkpsxiso = 'https://github.com/Lameguy64/mkpsxiso.git'
$url_mkpsxiso_win64 = 'https://github.com/Lameguy64/mkpsxiso/releases/download/v2.30/mkpsxiso-2.30-win64.zip'
$path_armips = join-path $path_toolchain 'armips'
$path_pcsx_redux = join-path $path_toolchain 'pcsx-redux'
$path_psyq_iwyu = join-path $path_toolchain 'psyq_iwyu'
$path_lpeg = join-path $path_toolchain 'lpeg'
$path_mkpsxiso = join-path $path_toolchain 'mkpsxiso'
clone-gitrepo $path_armips $url_armips
clone-gitrepo $path_lpeg $url_lpeg
clone-gitrepo $path_pcsx_redux $url_pcsx_redux
clone-gitrepo $path_psyq_iwyu $url_psyq_iwyu
# clone-gitrepo $path_mkpsxiso $url_mkpsxiso
$path_armips_build = join-path $path_armips 'build'
verify-path $path_armips_build