35 Commits
Author SHA1 Message Date
ed 67a84d34f3 oops: endregion 2026-08-14 13:41:45 -04:00
ed baaff12f33 Ideating on "RegUse_" patterned structs for describe register allocatins to mips atom proc. 2026-08-14 12:38:00 -04:00
ed b695056b9a finished reviewing normalize_v3s4 for now 2026-08-14 03:45:34 -04:00
ed 3a4d6304dd static analysis: immeidate field awarenss 2026-08-14 01:22:54 -04:00
ed a535d381ed remove encoding masks from gp (unnecessary, hides errors) 2026-08-14 01:22:36 -04:00
ed c447bfa877 fixes to the reg file allocator, exploring... 2026-08-14 00:43:19 -04:00
ed d88e0d0487 remove mask from mips and gte instruction encoders. missing math changes. 2026-08-13 23:39:35 -04:00
ed 9a6eca6047 more review, made a register file allocator (drafted, kinda iffy, want todo comp-time as well). 2026-08-13 23:39:03 -04:00
ed 5c9c61720f Redesign: Not making local var in MipsAtom_Proc_ or MipsAtomComp_Proc_ have sym tied to proc name. Adjusted parser as well base do that. 2026-08-13 21:42:06 -04:00
ed b8e31123e4 editing/reading. 2026-08-13 21:22:29 -04:00
ed ea3e30a11e oops 2026-08-13 20:51:45 -04:00
ed 37f4712237 gutting nosiy comments. Looking into some atom components.. 2026-08-13 19:55:17 -04:00
ed b699b47b28 intiial review on: resolve_look_at__input_and_sub_proc 2026-08-13 19:42:43 -04:00
ed 640dab7e61 wip: starting to review and update lua metaprogram with more modeling of gte. 2026-08-13 18:51:09 -04:00
ed 4688566767 FINALLY? 2026-08-13 17:42:55 -04:00
ed 5ebaa6e083 still failing 2026-08-13 13:18:27 -04:00
ed 7f0bdefbcb checkpoint nothing 2026-08-13 02:13:47 -04:00
ed d5f28b83ea minor 2026-08-12 22:41:52 -04:00
ed 3ea3e8d105 sssiiighhhh 2026-08-12 20:36:11 -04:00
ed 6b60cef2e8 sigh 2026-08-12 20:30:26 -04:00
ed 77f19321cd pain 2026-08-12 20:24:13 -04:00
ed 2e07665920 Run-Time Library Overview manual 2026-08-12 20:24:05 -04:00
ed 9501bbbcc2 WIP 2026-08-12 20:17:53 -04:00
ed 9b6b5535f5 wip 2026-08-12 20:09:57 -04:00
ed 7807047dc0 Atoms 2-3 work for resolve look at. Don't need OA_ macro so going to stop using. 2026-08-11 21:35:59 -04:00
ed 7daeec0ee3 checkpoint: atom 0-1 works for resolve look at. 2026-08-11 14:05:23 -04:00
ed 3f3b691ac0 Making a proper distinction between atom arenas and atom builders. 2026-08-11 11:25:54 -04:00
ed a2d79d65eb amazing bug 2026-08-11 01:25:40 -04:00
ed bebcc6a585 wip: going to incremnetally test this. 2026-08-11 01:25:09 -04:00
ed ece21ed368 mark current crashing path. 2026-08-10 23:29:38 -04:00
ed 144c605ad8 some more review. not working still. 2026-08-10 23:04:43 -04:00
ed 4afd1af0fd started to review this... 2026-08-10 19:53:34 -04:00
ed 004a7eff19 WIP: not fully reviewed. Adds auto-register allocation + mips atom procs + wip resolve look at atoms + atom bundle... 2026-08-10 14:13:02 -04:00
ed e42c75a26a WIP: preparing for major changes to atoms to fullfill needs of resolve_look_at and atom ported normalize_v3s4. 2026-08-09 18:49:59 -04:00
ed 69f2c0d036 Prepping for: resolve_look_at impl. 2026-08-08 23:13:18 -04:00
40 changed files with 13983 additions and 620 deletions
+22 -2
View File
@@ -70,11 +70,31 @@
/* ---------------------------------------------------------------------------- /* ----------------------------------------------------------------------------
* atom_reg (per-enum opt-in marker for the DWARF register-alias registry) * atom_reg (per-enum opt-in marker for the DWARF register-alias registry)
* *
* The bare `atom_reg` token adjacent to an enum entry in mips.h / lottes_tape.h flags that alias as debug-visible for scan_source's register_alias_registry. * Bare `atom_reg` token adjacent to an enum entry that alias as debug-visible for scan_source's register_alias_registry.
* The C preprocessor strips it to a comment so no runtime symbol is created; the Lua scanner reads the bare token. * Lua scanner reads the bare token.
* ----------------------------------------------------------------------------*/ * ----------------------------------------------------------------------------*/
#define atom_reg /* atom_reg: opt the preceding enum entry into the DWARF registry */ #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 : * atom_info :
* MipsAtom_(cube_tri) atom_info( * MipsAtom_(cube_tri) atom_info(
+22 -17
View File
@@ -3,7 +3,7 @@
# include "assert.h" # include "assert.h"
#endif #endif
#define offset_of(type, member) cast(U8,__builtin_offsetof(type,member)) #define offset_of(type, member) cast(U8,__builtin_offsetof(type,member)) // Compiler builtin version of O_
#define static_assert _Static_assert #define static_assert _Static_assert
#define typeof __typeof__ #define typeof __typeof__
#define typeof_ptr(ptr) typeof((ptr)[0]) #define typeof_ptr(ptr) typeof((ptr)[0])
@@ -91,12 +91,13 @@
#define PtrSet_(type) TypeR_(type); typedef TypeV_(type) #define PtrSet_(type) TypeR_(type); typedef TypeV_(type)
#define TSet_(type) type; typedef PtrSet_(type) #define TSet_(type) type; typedef PtrSet_(type)
#define array_len(a) (U4)(sizeof(a) / sizeof(typeof((a)[0]))) #define Array_len(a) (U4)(sizeof(a) / sizeof(typeof((a)[0])))
#define array_decl(type, ...) (type[]){__VA_ARGS__} #define Array_decl(type, ...) (type[]){__VA_ARGS__}
#define Array_sym(type,len) A ## len ## _ ## type #define Array_sym(type,len) A ## len ## _ ## type
#define Array_expand(type,len) type Array_sym(type, len)[len]; typedef PtrSet_(Array_sym(type, len)) #define Array_expand(type,len) type Array_sym(type, len)[len]; typedef PtrSet_(Array_sym(type, len))
#define Array_(type,len) Array_expand(type,len) #define Array_(type,len) Array_expand(type,len)
#define Bit_(id,b) id = (1 << b), tmpl(id,pos) = b #define Bit_(id,b) id = (1 << b), tmpl(id,pos) = b
#define Bitmask_(b) (1u << b)
#define Enum_(underlying_type, symbol) underlying_type TSet_(symbol); enum symbol #define Enum_(underlying_type, symbol) underlying_type TSet_(symbol); enum symbol
#define Proc_(symbol) symbol #define Proc_(symbol) symbol
#define Relative_(symbol) // Does nothing but annotate that a symbol is associated with another. #define Relative_(symbol) // Does nothing but annotate that a symbol is associated with another.
@@ -134,21 +135,20 @@ typedef __UINT32_TYPE__ TSet_(B4);
#define u4_v(value) C_(U4 V_*, value) #define u4_v(value) C_(U4 V_*, value)
enum { false = 0, true = 1, true_overflow, }; enum { false = 0, true = 1, true_overflow, };
#define u4_lo(value) ((value) & 0xFFFFU) #define u4_lo(value) (u4_(value) & 0xFFFFU)
#define u4_hi(value) ((value) >> 12) #define u4_hi(value) (u4_(value) >> (S_(U2) * 8))
typedef void Proc_(VoidFn) (void); typedef void Proc_(VoidFn) (void);
#define kilo(n) (C_(U4, n) << 10) #define Kilo_(n) (C_(U4, n) << 10)
#define mega(n) (C_(U4, n) << 20) #define Mega_(n) (C_(U4, n) << 20)
#define giga(n) (C_(U4, n) << 30) #define Giga_(n) (C_(U4, n) << 30)
#define tera(n) (C_(U4, n) << 40) #define Tera_(n) (C_(U4, n) << 40)
#define null C_(U4, 0) #define null C_(U4, 0)
#define nullptr C_(void*, 0) #define nullptr C_(void*, 0)
#define O_(type, field) C_(U4, & C_(type*,0)->field) #define O_(type, field) C_(U4, & C_(type*,0)->field)
#define OA_(type, member, idx) C_(U4, & C_(type*,0)->member[idx]) #define OT_(field) O_(typeof_ptr(& field), field))
#define OT_(field) O_(typeof_ptr(& field), filed))
#define S_(data) C_(U4, sizeof(data)) #define S_(data) C_(U4, sizeof(data))
#define sop_1(op,a,b) C_(U1, s1_(a) op s1_(b)) #define sop_1(op,a,b) C_(U1, s1_(a) op s1_(b))
@@ -169,6 +169,8 @@ def_signed_ops(le, <=)
#undef def_signed_ops #undef def_signed_ops
#undef def_signed_op #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 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 add_s(a,b) def_generic_sop(add,a,b)
#define sub_s(a,b) def_generic_sop(sub,a,b) #define sub_s(a,b) def_generic_sop(sub,a,b)
@@ -178,11 +180,12 @@ def_signed_ops(le, <=)
#define ge_s(a,b) def_generic_sop(ge, a,b) #define ge_s(a,b) def_generic_sop(ge, a,b)
#define le_s(a,b) def_generic_sop(le, a,b) #define le_s(a,b) def_generic_sop(le, a,b)
#undef def_generic_sop #undef def_generic_sop
#endif
#define alignas _Alignas #define alignas _Alignas
#define alignof _Alignof #define alignof _Alignof
#define byte_pad(amount, ...) B1 glue(_PAD_, __VA_ARGS__) [amount] #define byte_pad(amount, ...) B1 glue(_PAD_, __VA_ARGS__) [amount]
#define pcast(type, data) (C_(type*, & (data)) [0]) #define C_ptr(type, data) (C_(type*, & (data)) [0])
#define dbg_args(...) __VA_ARGS__ #define dbg_args(...) __VA_ARGS__
@@ -197,6 +200,8 @@ def_signed_ops(le, <=)
#define defer_info(type,expr, ...) for(type info= {__VA_ARGS__}; info.once!=1;++info.once,(expr)) // Defer with tracked state #define defer_info(type,expr, ...) for(type info= {__VA_ARGS__}; info.once!=1;++info.once,(expr)) // Defer with tracked state
#define do_while(cond) for (U8 once=0; once!=1 || (cond); ++once) #define do_while(cond) for (U8 once=0; once!=1 || (cond); ++once)
#define Jmp_nZero_(cond,label) if (cond) goto label;
#pragma endregion Control Flow & Iteration #pragma endregion Control Flow & Iteration
#define span_iter(type, iter, m_begin, op, m_end) ( \ #define span_iter(type, iter, m_begin, op, m_end) ( \
@@ -213,16 +218,16 @@ def_signed_ops(le, <=)
typedef Span_(S4); typedef Span_(S4);
typedef Span_(U4); typedef Span_(U4);
#if 0
#pragma region Debug #pragma region Debug
#define debug_trap() __builtin_debugtrap() #define debug_trap() __builtin_trap()
#if BUILD_DEBUG #if BUILD_DEBUG
IA_ void assert(U8 cond) { if(cond){return;} else{debug_trap(); ms_exit_process(1);} } #define assert(cond) if(cond == false){debug_trap();}
#else #else
#define assert(cond) # ifndef assert
# include <assert.h>
# endif
#endif #endif
#pragma endregion Debug #pragma endregion Debug
#endif
#define GCC_OPTIMIZATION_DISABLE _Pragma("GCC push_options") _Pragma("GCC optimize(\"O0\")") #define GCC_OPTIMIZATION_DISABLE _Pragma("GCC push_options") _Pragma("GCC optimize(\"O0\")")
#define GCC_OPTIMIZATION_ENABLE _Pragma("GCC pop_options") #define GCC_OPTIMIZATION_ENABLE _Pragma("GCC pop_options")
+120 -10
View File
@@ -60,8 +60,8 @@ WORD_COUNT(mac_yield_tail, 3)
/* atom_dbg_skip */ /* atom_dbg_skip */
#define mac_load_v2s2(rs_x, rs_y, r_base, offset) \ #define mac_load_v2s2(rs_x, rs_y, r_base, offset) \
load_half( rs_x, r_base, O_(V3_S2,x)) \ load_half( rs_x, r_base, offset + O_(V3_S2,x)) \
, load_half( rs_y, r_base, O_(V3_S2,y)) , load_half( rs_y, r_base, offset + O_(V3_S2,y))
WORD_COUNT(mac_load_v2s2, 2) WORD_COUNT(mac_load_v2s2, 2)
/* atom_dbg_skip */ /* atom_dbg_skip */
@@ -70,6 +70,27 @@ WORD_COUNT(mac_load_v2s2, 2)
, store_half(rt_y, base, offset + O_(V2_S2,y)) , store_half(rt_y, base, offset + O_(V2_S2,y))
WORD_COUNT(mac_store_v2s2, 2) 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, offset + O_(V3_S4,x)) \
, load_word( rs_y, r_base, offset + O_(V3_S4,y)) \
, load_word( rs_z, r_base, offset + 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 */ /* atom_dbg_skip */
#define mac_store_rects2(rt_x, rt_y, rt_width, rt_height, base, offset) \ #define mac_store_rects2(rt_x, rt_y, rt_width, rt_height, base, offset) \
store_half(rt_x, base, offset + O_(Rect_S2,x)) \ store_half(rt_x, base, offset + O_(Rect_S2,x)) \
@@ -78,6 +99,12 @@ WORD_COUNT(mac_store_v2s2, 2)
, store_half(rt_height, base, offset + O_(Rect_S2,height)) , store_half(rt_height, base, offset + O_(Rect_S2,height))
WORD_COUNT(mac_store_rects2, 4) WORD_COUNT(mac_store_rects2, 4)
/* atom_dbg_skip */
#define mac_load_word_imm(dst, imm) \
load_upper_i(dst, u4_hi(imm)) \
, or_i_self( dst, u4_lo(imm))
WORD_COUNT(mac_load_word_imm, 2)
/* atom_dbg_skip */ /* atom_dbg_skip */
#define mac_load_tri_indices(r_face_cusor, r_i0, r_i1, r_i2) \ #define mac_load_tri_indices(r_face_cusor, r_i0, r_i1, r_i2) \
load_half_u(r_i0, r_face_cusor, 0 * S_(S2)) \ load_half_u(r_i0, r_face_cusor, 0 * S_(S2)) \
@@ -126,9 +153,91 @@ WORD_COUNT(mac_gte_store_g4_p012, 3)
gte_sw(C2_SXY2, r_primitive_cursor, O_(Poly_G4,p3)) gte_sw(C2_SXY2, r_primitive_cursor, O_(Poly_G4,p3))
WORD_COUNT(mac_gte_store_g4_p3, 1) 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) \
mac_gte_sqr_v3s4(r_sx, r_sy, r_sz, nop) \
, 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_sqr_v3s4(r_sx, r_sy, r_sz, nop_slot) \
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_slot \
, gte_cmdw_sqr
WORD_COUNT(mac_gte_sqr_v3s4, 5)
/* 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_trans_mt3s3s4(r_mtx, r_off, r_t0, r_t1, r_t2) \
load_word(r_t0, r_off, O_(V3_S4,x)) \
, load_word(r_t1, r_off, O_(V3_S4,y)) \
, load_word(r_t2, r_off, O_(V3_S4,z)) \
, store_word(r_t0, r_mtx, O_(MT3_S2S4,t[0])) \
, store_word(r_t1, r_mtx, O_(MT3_S2S4,t[1])) \
, store_word(r_t2, r_mtx, O_(MT3_S2S4,t[2]))
WORD_COUNT(mac_trans_mt3s3s4, 6)
/* atom_dbg_skip */
#define mac_lzcr_round_even_half_shift(r_shift, r_mag_sq, r_mag_sq_copy) \
and_i(r_shift, r_shift, gte_lzcr_even_mask) \
, or_u(r_mag_sq_copy, r_mag_sq, 0) \
, li_s(r_mag_sq, 31) \
, sub_s(r_mag_sq, r_mag_sq, r_shift) \
, shift_aright(r_mag_sq, r_mag_sq, 1)
WORD_COUNT(mac_lzcr_round_even_half_shift, 5)
#define mac_shift_aright_var_v3(rd_v0, rd_v1, rd_v2, rs_v0, rs_v1, rs_v2, r_shift) \
shift_aright_var(rd_v0, rs_v0, r_shift) \
, shift_aright_var(rd_v1, rs_v1, r_shift) \
, shift_aright_var(rd_v2, rs_v2, r_shift)
WORD_COUNT(mac_shift_aright_var_v3, 3)
#define mac_shift_aright_var_v3_self(rds_v0, rds_v1, rds_v2, r_shift) \
shift_aright_var(rds_v0, rds_v0, r_shift) \
, shift_aright_var(rds_v1, rds_v1, r_shift) \
, shift_aright_var(rds_v2, rds_v2, r_shift)
WORD_COUNT(mac_shift_aright_var_v3_self, 3)
#define mac_gte_general_purpose_interopolation(to_ir0, to_ir1, to_ir2, to_ir3, fr_mac1, fr_mac2, fr_mac3, nop_slot1, nop_slot2) \
gte_mv_to_data_r(to_ir0, C2_IR0) \
, gte_mv_to_data_r(to_ir1, C2_IR1) /* IR1 = src.x (preserved in r_tmp — r_mac2_scratch was clobbered to MAC2 in stage 1.5) */ \
, gte_mv_to_data_r(to_ir2, C2_IR2) \
, gte_mv_to_data_r(to_ir3, C2_IR3) /* IR3 = src.z (reloaded) */ \
, LdSlot_ nop_slot1 \
, LdSlot_ nop_slot2 \
, gte_cmdw_gpf \
, gte_mv_from_data_r(fr_mac1, C2_MAC1) \
, gte_mv_from_data_r(fr_mac2, C2_MAC2) \
, gte_mv_from_data_r(fr_mac3, C2_MAC3)
WORD_COUNT(mac_gte_general_purpose_interopolation, 10)
#define mac_gte_mv_from_data_r_mac123(fr_mac1, fr_mac2, fr_mac3) \
gte_mv_from_data_r(fr_mac1, C2_MAC1) \
, gte_mv_from_data_r(fr_mac2, C2_MAC2) \
, gte_mv_from_data_r(fr_mac3, C2_MAC3)
WORD_COUNT(mac_gte_mv_from_data_r_mac123, 3)
/* atom_dbg_skip */
#define mac_gcmd_push(cmd, reg_transfer, reg_base, port) \ #define mac_gcmd_push(cmd, reg_transfer, reg_base, port) \
load_upper_i(reg_transfer, cmd >> 16) \ mac_load_word_imm(reg_transfer, cmd) \
, or_i_self( reg_transfer, cmd & 0xFFFF) \
, store_word( reg_transfer, reg_base, port) , store_word( reg_transfer, reg_base, port)
WORD_COUNT(mac_gcmd_push, 3) WORD_COUNT(mac_gcmd_push, 3)
@@ -151,6 +260,7 @@ WORD_COUNT(mac_pack_color_word, 3)
mac_pack_color_word(r_base, O_(Poly_F3,color), gp0_cmd_poly_f3, r, g, b) mac_pack_color_word(r_base, O_(Poly_F3,color), gp0_cmd_poly_f3, r, g, b)
WORD_COUNT(mac_format_f3_color, 3) WORD_COUNT(mac_format_f3_color, 3)
/* atom_dbg_skip */
#define mac_format_g4_color(r_prim_cursor, r0, g0, b0, r1, g1, b1, r2, g2, b2, r3, g3, b3) \ #define mac_format_g4_color(r_prim_cursor, r0, g0, b0, r1, g1, b1, r2, g2, b2, r3, g3, b3) \
mac_pack_color_word(r_prim_cursor, O_(Poly_G4,c0), gp0_cmd_poly_g4, r0,g0,b0) \ mac_pack_color_word(r_prim_cursor, O_(Poly_G4,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,c1), 0, r1,g1,b1) \
@@ -172,16 +282,16 @@ WORD_COUNT(mac_format_g4_color, 12)
WORD_COUNT(mac_insert_ot_tag, 11) WORD_COUNT(mac_insert_ot_tag, 11)
/* atom_dbg_skip */ /* atom_dbg_skip */
#define mac_pad_set_centered_axes(r_state, r_scratch) \ #define mac_pad_set_centered_axes(state, scratch) \
load_upper_i(r_scratch, (PadAxis_Centered_Word >> 16) & 0xFFFF) \ load_upper_i(scratch, (PadAxis_Centered >> 16) & 0xFFFF) \
, or_i_self( r_scratch, PadAxis_Centered_Word & 0xFFFF) \ , or_i_self( scratch, PadAxis_Centered & 0xFFFF) /* mac_load_word_imm(scratch, PadAxis_Centered), */ \
, store_word( r_scratch, r_state, O_(PadState,axes)) , store_word( scratch, state, O_(PadState,axes))
WORD_COUNT(mac_pad_set_centered_axes, 3) WORD_COUNT(mac_pad_set_centered_axes, 3)
/* atom_dbg_skip */ /* atom_dbg_skip */
#define mac_pad_set_id_byte(r_state, r_id, id_value) \ #define mac_pad_set_id_byte(state, r_id, id_value) \
add_ui( r_id, R_0, id_value) \ add_ui( r_id, R_0, id_value) \
, store_byte(r_id, r_state, O_(PadState,id)) , store_byte(r_id, state, O_(PadState,id))
WORD_COUNT(mac_pad_set_id_byte, 2) WORD_COUNT(mac_pad_set_id_byte, 2)
/* atom_dbg_skip */ /* atom_dbg_skip */
+10
View File
@@ -25,6 +25,16 @@
#pragma region duffle #pragma region duffle
// --- atom: normalize_v3s4 (47 words) ---
#define _atom_offset_aligned_done_srav_path 3
#define _atom_offset_srav_path_aligned_done 4
enum {
atom_offset_aligned_done_srav_path = _atom_offset_aligned_done_srav_path,
atom_offset_srav_path_aligned_done = _atom_offset_srav_path_aligned_done,
};
// --- atom: pad_bios_snapshot (84 words) --- // --- atom: pad_bios_snapshot (84 words) ---
#define _atom_offset_snap_root_skip_disconnected 10 #define _atom_offset_snap_root_skip_disconnected 10
+12 -18
View File
@@ -8,41 +8,35 @@ ATOM_FILE_DEBUGGER_LINE_MARKER(gp_atom_c);
#pragma region MACs (Mips Atom Components) #pragma region MACs (Mips Atom Components)
FI_ Slice_MipsCode ac_gcmd_push(U4 cmd, U4 reg_transfer, U4 reg_base, U2 port) FI_ Slice_MipsCode ac_gcmd_push(AtomBuilder_R ab, U4 cmd, U4 reg_transfer, U4 reg_base, U2 port)
MipsAtomComp_Proc_(ac_gcmd_push, { atom_dbg_skip MipsAtomComp_Proc_(ab, {
load_upper_i(reg_transfer, cmd >> 16), mac_load_word_imm(reg_transfer, cmd),
or_i_self( reg_transfer, cmd & 0xFFFF),
store_word( reg_transfer, reg_base, port), 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(AtomBuilder_R ab, U1 rr, U1 rg, U1 rb, U4 base, U4 offset)
atom_dbg_skip MipsAtomComp_Proc_(ab, {
store_byte(rr, base, offset + O_(RGB8,r)), store_byte(rr, base, offset + O_(RGB8,r)),
store_byte(rg, base, offset + O_(RGB8,g)), store_byte(rg, base, offset + O_(RGB8,g)),
store_byte(rb, base, offset + O_(RGB8,b)), store_byte(rb, base, offset + O_(RGB8,b)),
}) })
/* Words: 3; Emits one (cmd|color) word to R_PrimCursor at the given FI_ Slice_MipsCode ac_pack_color_word(AtomBuilder_R ab, U4 r_base, U4 off, U4 cmd, U1 r, U1 g, U1 b)
* byte offset. Internal helper used by the *_format_*_color macros. */ atom_dbg_skip MipsAtomComp_Proc_(ab, {
FI_ Slice_MipsCode ac_pack_color_word(U4 r_base, U4 off, U4 cmd, U1 r, U1 g, U1 b)
atom_dbg_skip MipsAtomComp_Proc_(ac_pack_color_word, {
load_upper_i(R_AT, (cmd) << 8 | (b)), load_upper_i(R_AT, (cmd) << 8 | (b)),
or_i_self( R_AT, ((g) << 8) | (r)), or_i_self( R_AT, ((g) << 8) | (r)),
store_word( R_AT, r_base, (off)), store_word( R_AT, r_base, (off)),
}) })
/* Words: 3; Emits the F3 command+color word (cmd byte | BLUE | GREEN | RED) FI_ Slice_MipsCode ac_format_f3_color(AtomBuilder_R ab, U4 r_base, U1 r, U1 g, U1 b)
* Args: _r, _g, _b are 8-bit RGB byte values (not raw 16-bit fields). */ atom_dbg_skip MipsAtomComp_Proc_(ab, { mac_pack_color_word(r_base, O_(Poly_F3,color), gp0_cmd_poly_f3, r, g, b) })
FI_ Slice_MipsCode ac_format_f3_color(U4 r_base, U1 r, U1 g, U1 b)
atom_dbg_skip MipsAtomComp_Proc_(ac_format_f3_color, { mac_pack_color_word(r_base, O_(Poly_F3,color), gp0_cmd_poly_f3, r, g, b) })
/* Words: 12; Emits the four (code|color) words of a Poly_G4. FI_ Slice_MipsCode ac_format_g4_color(AtomBuilder_R ab, U4 r_prim_cursor,
* Args: rN,gN,bN are 8-bit RGB byte values for each of the 4 vertices. */
FI_ Slice_MipsCode ac_format_g4_color(U4 r_prim_cursor,
U1 r0, U1 g0, U1 b0, U1 r0, U1 g0, U1 b0,
U1 r1, U1 g1, U1 b1, U1 r1, U1 g1, U1 b1,
U1 r2, U1 g2, U1 b2, U1 r2, U1 g2, U1 b2,
U1 r3, U1 g3, U1 b3) U1 r3, U1 g3, U1 b3)
MipsAtomComp_Proc_(ac_format_g4_color, { atom_dbg_skip MipsAtomComp_Proc_(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,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,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,c2), 0, r2,g2,b2),
@@ -50,7 +44,7 @@ MipsAtomComp_Proc_(ac_format_g4_color, {
}) })
/* Words: 11; Correctly inserts a primitive into the Ordering Table linked list. */ /* Words: 11; Correctly inserts a primitive into the Ordering Table linked list. */
I_ Slice_MipsCode ac_insert_ot_tag(U4 r_ot_base, U4 r_prim_cursor, U4 poly_size) MipsAtomComp_Proc_(ac_insert_ot_tag, { I_ Slice_MipsCode ac_insert_ot_tag(AtomBuilder_R ab, U4 r_ot_base, U4 r_prim_cursor, U4 poly_size) MipsAtomComp_Proc_(ab, {
shift_lleft( R_T1, R_T1, S_(U4)/2), // T1 = otz * S_(U4) (otz arg is implicit R_T1) 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] 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_word( R_AT, R_T1, O_(PolyTag,code)), // AT = old_ot_head
+54 -55
View File
@@ -21,7 +21,7 @@
* 4. Semantic encoders gp0_word_poly_f3(r,g,b) * 4. Semantic encoders gp0_word_poly_f3(r,g,b)
* 3. Composite encoders enc_color_word(cmd, r, g, b) * 3. Composite encoders enc_color_word(cmd, r, g, b)
* 2. Per-field encoders enc_gp0_color_r(r), enc_gp0_color_g(g), ... * 2. Per-field encoders enc_gp0_color_r(r), enc_gp0_color_g(g), ...
* 1. Bitfield layout consts gp0_color_red_shift = 0, gp0_color_red_mask = 0xFF * 1. Bitfield layout consts gp0_color_red_shift = 0, gp0_color_red_width = 8
* 0. Opcode IDs gp0_cmd_poly_f3 = 0x20 * 0. Opcode IDs gp0_cmd_poly_f3 = 0x20
* *
* Vendor mnemonics (gte_mtc2, gte_mfc2, etc.) are NOT in this header. * Vendor mnemonics (gte_mtc2, gte_mfc2, etc.) are NOT in this header.
@@ -74,7 +74,7 @@ enum {
* ============================================================================ * ============================================================================
* 8-bit GP0 opcodes (the upper byte of a primitive's first word). These are the BYTE only. * 8-bit GP0 opcodes (the upper byte of a primitive's first word). These are the BYTE only.
* NO macro body past this point uses a raw shift or raw mask. * NO macro body past this point uses a raw shift or raw mask.
* Mirrors the OPCODE_SHIFT / RS_SHIFT / REG_MASK convention from mips.h. * Mirrors the OPCODE_SHIFT / RS_SHIFT convention from mips.h.
* ============================================================================ */ * ============================================================================ */
enum { enum {
gp0_cmd_Nop = 0x00, gp0_cmd_Nop = 0x00,
@@ -116,21 +116,20 @@ enum {
gp0_cmd_SetDrawOffset = 0xE5, gp0_cmd_SetDrawOffset = 0xE5,
gp0_cmd_SetMaskBit = 0xE6, gp0_cmd_SetMaskBit = 0xE6,
/* bitfield shifts / widths / masks ---- /* bitfield shifts / widths ----
* Generic GP0/GP1 command byte (upper 8 bits of every word sent to either port). */ * Generic GP0/GP1 command byte (upper 8 bits of every word sent to either port). */
gp0_cmd_shift = 24, gp0_cmd_shift = 24,
gp0_cmd_width = 8, gp0_cmd_width = 8,
gp0_cmd_mask = 0xFF,
/* Color word layout (lives in Poly_F3.color, Poly_G4.c0..c3, etc.): /* Color word layout (lives in Poly_F3.color, Poly_G4.c0..c3, etc.):
* bits 31..24 = command byte * bits 31..24 = command byte
* bits 23..16 = BLUE * bits 23..16 = BLUE
* bits 15..08 = GREEN * bits 15..08 = GREEN
* bits 07..00 = RED (PSX GPU is BGR, NOT RGB) */ * bits 07..00 = RED (PSX GPU is BGR, NOT RGB) */
gp0_color_cmd_shift = 24, gp0_color_cmd_width = 8, gp0_color_cmd_mask = 0xFF, gp0_color_cmd_shift = 24, gp0_color_cmd_width = 8,
gp0_color_blue_shift = 16, gp0_color_blue_width = 8, gp0_color_blue_mask = 0xFF, gp0_color_blue_shift = 16, gp0_color_blue_width = 8,
gp0_color_green_shift = 8, gp0_color_green_width = 8, gp0_color_green_mask = 0xFF, gp0_color_green_shift = 8, gp0_color_green_width = 8,
gp0_color_red_shift = 0, gp0_color_red_width = 8, gp0_color_red_mask = 0xFF, gp0_color_red_shift = 0, gp0_color_red_width = 8,
}; };
/* ============================================================================ /* ============================================================================
@@ -143,12 +142,12 @@ enum {
* ============================================================================ */ * ============================================================================ */
/* ---- Layer 1.5: per-field encoders ---- */ /* ---- Layer 1.5: per-field encoders ---- */
#define enc_gp0_cmd(cmd) (((cmd) & gp0_cmd_mask) << gp0_cmd_shift) #define enc_gp0_cmd(cmd) ((cmd) << gp0_cmd_shift)
#define enc_gp0_color_cmd(cmd) (((cmd) & gp0_color_cmd_mask) << gp0_color_cmd_shift) #define enc_gp0_color_cmd(cmd) ((cmd) << gp0_color_cmd_shift)
#define enc_gp0_color_r(r) (((r) & gp0_color_red_mask) << gp0_color_red_shift) #define enc_gp0_color_r(r) ((r) << gp0_color_red_shift)
#define enc_gp0_color_g(g) (((g) & gp0_color_green_mask) << gp0_color_green_shift) #define enc_gp0_color_g(g) ((g) << gp0_color_green_shift)
#define enc_gp0_color_b(b) (((b) & gp0_color_blue_mask) << gp0_color_blue_shift) #define enc_gp0_color_b(b) ((b) << gp0_color_blue_shift)
/* ---- Layer 2: composite encoders ---- */ /* ---- Layer 2: composite encoders ---- */
#define enc_color_word(cmd, r, g, b) (enc_gp0_color_cmd(cmd) | enc_gp0_color_r(r) | enc_gp0_color_g(g) | enc_gp0_color_b(b)) #define enc_color_word(cmd, r, g, b) (enc_gp0_color_cmd(cmd) | enc_gp0_color_r(r) | enc_gp0_color_g(g) | enc_gp0_color_b(b))
@@ -211,38 +210,38 @@ enum {
gp1_disp_Color24 = 0x1, gp1_disp_Color24 = 0x1,
gp1_disp_VInterlace = 0x1, gp1_disp_VInterlace = 0x1,
/* ---- Layer 1: GP1 display-mode + range + draw-area shifts/masks ---- */ /* ---- Layer 1: GP1 display-mode + range + draw-area shifts/widths ---- */
gp1_disp_hres_shift = 0, gp1_disp_hres_width = 2, gp1_disp_hres_mask = 0x3, gp1_disp_hres_shift = 0, gp1_disp_hres_width = 2,
gp1_disp_vres_shift = 2, gp1_disp_vres_width = 1, gp1_disp_vres_mask = 0x1, gp1_disp_vres_shift = 2, gp1_disp_vres_width = 1,
gp1_disp_color_shift = 4, gp1_disp_color_width = 1, gp1_disp_color_mask = 0x1, gp1_disp_color_shift = 4, gp1_disp_color_width = 1,
gp1_disp_interlace_shift = 5, gp1_disp_interlace_width = 1, gp1_disp_interlace_mask = 0x1, gp1_disp_interlace_shift = 5, gp1_disp_interlace_width = 1,
/* GP1 horizontal display range: bits 0..11 = X2, bits 12..23 = X1 */ /* GP1 horizontal display range: bits 0..11 = X2, bits 12..23 = X1 */
gp1_hrange_x1_shift = 12, gp1_hrange_x1_width = 12, gp1_hrange_x1_mask = 0xFFF, gp1_hrange_x1_shift = 12, gp1_hrange_x1_width = 12,
gp1_hrange_x2_shift = 0, gp1_hrange_x2_width = 12, gp1_hrange_x2_mask = 0xFFF, gp1_hrange_x2_shift = 0, gp1_hrange_x2_width = 12,
/* GP1 vertical display range: bits 0..9 = Y2, bits 10..19 = Y1 */ /* GP1 vertical display range: bits 0..9 = Y2, bits 10..19 = Y1 */
gp1_vrange_y1_shift = 10, gp1_vrange_y1_width = 10, gp1_vrange_y1_mask = 0x3FF, gp1_vrange_y1_shift = 10, gp1_vrange_y1_width = 10,
gp1_vrange_y2_shift = 0, gp1_vrange_y2_width = 10, gp1_vrange_y2_mask = 0x3FF, gp1_vrange_y2_shift = 0, gp1_vrange_y2_width = 10,
/* GP1 draw area (top-left or bottom-right): bits 0..9 = X, bits 10..19 = Y /* GP1 draw area (top-left or bottom-right): bits 0..9 = X, bits 10..19 = Y
* (10-bit signed — caller pre-signs and masks with the named mask) */ * (10-bit signed — caller pre-signs) */
gp1_draw_x_shift = 0, gp1_draw_x_width = 10, gp1_draw_x_mask = 0x3FF, gp1_draw_x_shift = 0, gp1_draw_x_width = 10,
gp1_draw_y_shift = 10, gp1_draw_y_width = 10, gp1_draw_y_mask = 0x3FF, gp1_draw_y_shift = 10, gp1_draw_y_width = 10,
}; };
/* ---- Layer 1.5: GP1 per-field encoders ---- */ /* ---- Layer 1.5: GP1 per-field encoders ---- */
#define enc_gp1_disp_hres(h) (((h) & gp1_disp_hres_mask) << gp1_disp_hres_shift) #define enc_gp1_disp_hres(h) ((h) << gp1_disp_hres_shift)
#define enc_gp1_disp_vres(v) (((v) & gp1_disp_vres_mask) << gp1_disp_vres_shift) #define enc_gp1_disp_vres(v) ((v) << gp1_disp_vres_shift)
#define enc_gp1_disp_color(c) (((c) & gp1_disp_color_mask) << gp1_disp_color_shift) #define enc_gp1_disp_color(c) ((c) << gp1_disp_color_shift)
#define enc_gp1_disp_interlace(i) (((i) & gp1_disp_interlace_mask) << gp1_disp_interlace_shift) #define enc_gp1_disp_interlace(i) ((i) << gp1_disp_interlace_shift)
#define enc_gp1_hrange_x1(x1) (((x1) & gp1_hrange_x1_mask) << gp1_hrange_x1_shift) #define enc_gp1_hrange_x1(x1) ((x1) << gp1_hrange_x1_shift)
#define enc_gp1_hrange_x2(x2) (((x2) & gp1_hrange_x2_mask) << gp1_hrange_x2_shift) #define enc_gp1_hrange_x2(x2) ((x2) << gp1_hrange_x2_shift)
#define enc_gp1_vrange_y1(y1) (((y1) & gp1_vrange_y1_mask) << gp1_vrange_y1_shift) #define enc_gp1_vrange_y1(y1) ((y1) << gp1_vrange_y1_shift)
#define enc_gp1_vrange_y2(y2) (((y2) & gp1_vrange_y2_mask) << gp1_vrange_y2_shift) #define enc_gp1_vrange_y2(y2) ((y2) << gp1_vrange_y2_shift)
#define enc_gp1_draw_x(x) (((x) & gp1_draw_x_mask) << gp1_draw_x_shift) #define enc_gp1_draw_x(x) ((x) << gp1_draw_x_shift)
#define enc_gp1_draw_y(y) (((y) & gp1_draw_y_mask) << gp1_draw_y_shift) #define enc_gp1_draw_y(y) ((y) << gp1_draw_y_shift)
/* ---- Layer 2: GP1 composite encoders ---- */ /* ---- Layer 2: GP1 composite encoders ---- */
#define enc_gp1_disp_mode_word(h, v, c, i) (enc_gp0_cmd(gp1_cmd_DisplayMode) | enc_gp1_disp_hres(h) | enc_gp1_disp_vres(v) | enc_gp1_disp_color(c) | enc_gp1_disp_interlace(i)) #define enc_gp1_disp_mode_word(h, v, c, i) (enc_gp0_cmd(gp1_cmd_DisplayMode) | enc_gp1_disp_hres(h) | enc_gp1_disp_vres(v) | enc_gp1_disp_color(c) | enc_gp1_disp_interlace(i))
@@ -555,14 +554,14 @@ typedef Struct_(Poly_GT4) {
* bits 12..31 = reserved (zero) * bits 12..31 = reserved (zero)
* ============================================================================ */ * ============================================================================ */
enum { enum {
/* ---- Layer 1: TPage bitfield shifts / widths / masks ---- */ /* ---- Layer 1: TPage bitfield shifts / widths ---- */
gp0_tpage_x_shift = 0, gp0_tpage_x_width = 4, gp0_tpage_x_mask = 0xF, gp0_tpage_x_shift = 0, gp0_tpage_x_width = 4,
gp0_tpage_y_shift = 4, gp0_tpage_y_width = 1, gp0_tpage_y_mask = 0x1, gp0_tpage_y_shift = 4, gp0_tpage_y_width = 1,
gp0_tpage_semi_trans_shift = 5, gp0_tpage_semi_trans_width = 2, gp0_tpage_semi_trans_mask = 0x3, gp0_tpage_semi_trans_shift = 5, gp0_tpage_semi_trans_width = 2,
gp0_tpage_color_depth_shift = 7, gp0_tpage_color_depth_width = 2, gp0_tpage_color_depth_mask = 0x3, gp0_tpage_color_depth_shift = 7, gp0_tpage_color_depth_width = 2,
gp0_tpage_dither_shift = 9, gp0_tpage_dither_width = 1, gp0_tpage_dither_mask = 0x1, gp0_tpage_dither_shift = 9, gp0_tpage_dither_width = 1,
gp0_tpage_draw_to_disp_shift = 10, gp0_tpage_draw_to_disp_width = 1, gp0_tpage_draw_to_disp_mask = 0x1, gp0_tpage_draw_to_disp_shift = 10, gp0_tpage_draw_to_disp_width = 1,
gp0_tpage_tex_disable_shift = 11, gp0_tpage_tex_disable_width = 1, gp0_tpage_tex_disable_mask = 0x1, gp0_tpage_tex_disable_shift = 11, gp0_tpage_tex_disable_width = 1,
/* TPage color-depth payload values (NOT bit positions — these go in /* TPage color-depth payload values (NOT bit positions — these go in
* the 2-bit field at gp0_tpage_color_depth_shift). */ * the 2-bit field at gp0_tpage_color_depth_shift). */
@@ -581,13 +580,13 @@ enum {
}; };
/* ---- Layer 1.5: TPage per-field encoders. Mirrors enc_gte_sf/mx/v in gte.h. ---- */ /* ---- Layer 1.5: TPage per-field encoders. Mirrors enc_gte_sf/mx/v in gte.h. ---- */
#define enc_gp0_tpage_x(x) (((x) & gp0_tpage_x_mask) << gp0_tpage_x_shift) #define enc_gp0_tpage_x(x) ((x) << gp0_tpage_x_shift)
#define enc_gp0_tpage_y(y) (((y) & gp0_tpage_y_mask) << gp0_tpage_y_shift) #define enc_gp0_tpage_y(y) ((y) << gp0_tpage_y_shift)
#define enc_gp0_tpage_semi_trans(s) (((s) & gp0_tpage_semi_trans_mask) << gp0_tpage_semi_trans_shift) #define enc_gp0_tpage_semi_trans(s) ((s) << gp0_tpage_semi_trans_shift)
#define enc_gp0_tpage_color_depth(c) (((c) & gp0_tpage_color_depth_mask) << gp0_tpage_color_depth_shift) #define enc_gp0_tpage_color_depth(c) ((c) << gp0_tpage_color_depth_shift)
#define enc_gp0_tpage_dither(d) (((d) & gp0_tpage_dither_mask) << gp0_tpage_dither_shift) #define enc_gp0_tpage_dither(d) ((d) << gp0_tpage_dither_shift)
#define enc_gp0_tpage_draw_to_disp(d) (((d) & gp0_tpage_draw_to_disp_mask) << gp0_tpage_draw_to_disp_shift) #define enc_gp0_tpage_draw_to_disp(d) ((d) << gp0_tpage_draw_to_disp_shift)
#define enc_gp0_tpage_tex_disable(t) (((t) & gp0_tpage_tex_disable_mask) << gp0_tpage_tex_disable_shift) #define enc_gp0_tpage_tex_disable(t) ((t) << gp0_tpage_tex_disable_shift)
/* ---- Layer 2: TPage composite encoder. Mirrors enc_gte_cmdw in gte.h ---- */ /* ---- Layer 2: TPage composite encoder. Mirrors enc_gte_cmdw in gte.h ---- */
#define enc_gp0_tpage_word(x, y, semi_trans, color_depth, dither, draw_to_disp, tex_disable) \ #define enc_gp0_tpage_word(x, y, semi_trans, color_depth, dither, draw_to_disp, tex_disable) \
@@ -617,17 +616,17 @@ typedef Struct_(TexturePage) { U4 raw; };
* bits 24..31 = command byte — 0x20 (4bpp load) or 0x25 (8bpp load) * bits 24..31 = command byte — 0x20 (4bpp load) or 0x25 (8bpp load)
* ============================================================================ */ * ============================================================================ */
enum { enum {
/* ---- Layer 1: CLUT bitfield shifts / widths / masks ---- */ /* ---- Layer 1: CLUT bitfield shifts / widths ---- */
gp0_clut_y_shift = 0, gp0_clut_y_width = 6, gp0_clut_y_mask = 0x3F, gp0_clut_y_shift = 0, gp0_clut_y_width = 6,
gp0_clut_x_shift = 6, gp0_clut_x_width = 9, gp0_clut_x_mask = 0x1FF, gp0_clut_x_shift = 6, gp0_clut_x_width = 9,
/* CLUT-load cmd-byte variants — the upper byte of the GP0 word. */ /* CLUT-load cmd-byte variants — the upper byte of the GP0 word. */
gp0_clut_cmd_Load4bpp = 0x20, gp0_clut_cmd_Load4bpp = 0x20,
gp0_clut_cmd_Load8bpp = 0x25, gp0_clut_cmd_Load8bpp = 0x25,
}; };
/* ---- Layer 1.5: CLUT per-field encoders ---- */ /* ---- Layer 1.5: CLUT per-field encoders ---- */
#define enc_gp0_clut_x(x) (((x) & gp0_clut_x_mask) << gp0_clut_x_shift) #define enc_gp0_clut_x(x) ((x) << gp0_clut_x_shift)
#define enc_gp0_clut_y(y) (((y) & gp0_clut_y_mask) << gp0_clut_y_shift) #define enc_gp0_clut_y(y) ((y) << gp0_clut_y_shift)
/* ---- Layer 2: CLUT composite encoder ---- */ /* ---- Layer 2: CLUT composite encoder ---- */
#define enc_gp0_clut_word(cmd, x, y) (enc_gp0_cmd(cmd) | enc_gp0_clut_x(x) | enc_gp0_clut_y(y)) #define enc_gp0_clut_word(cmd, x, y) (enc_gp0_cmd(cmd) | enc_gp0_clut_x(x) | enc_gp0_clut_y(y))
+318 -6
View File
@@ -11,7 +11,8 @@ ATOM_FILE_DEBUGGER_LINE_MARKER(gte_atom_c);
#pragma region MACs (Mips Atom Components) #pragma region MACs (Mips Atom Components)
/* Words: 3; Loads 3 S2 indices from the face array */ /* 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(AtomBuilder_R ab, U4 r_face_cusor, U4 r_i0, U4 r_i1, U4 r_i2)
atom_dbg_skip MipsAtomComp_Proc_(ab, {
load_half_u(r_i0, r_face_cusor, 0 * S_(S2)), 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_i1, r_face_cusor, 1 * S_(S2)),
load_half_u(r_i2, r_face_cusor, 2 * S_(S2)), load_half_u(r_i2, r_face_cusor, 2 * S_(S2)),
@@ -19,14 +20,14 @@ 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. /* 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). */ * 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(AtomBuilder_R ab, U4 r_primitive_cursor) atom_dbg_skip MipsAtomComp_Proc_(ab, {
gte_sw(C2_SXY0, r_primitive_cursor, O_(Poly_F3,p0)), 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_SXY1, r_primitive_cursor, O_(Poly_F3,p1)),
gte_sw(C2_SXY2, r_primitive_cursor, O_(Poly_F3,p2)), gte_sw(C2_SXY2, r_primitive_cursor, O_(Poly_F3,p2)),
}) })
/* Words: 18; Translates indices to vertex addresses and pushes them to GTE */ /* 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(AtomBuilder_R ab, U4 r_vert_base, U4 r_v0, U4 r_v1, U4 r_v2) atom_dbg_skip MipsAtomComp_Proc_(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_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_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), 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 +38,7 @@ 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). * 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 * 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). */ * (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(AtomBuilder_R ab, U4 r_primitive_cursor) atom_dbg_skip MipsAtomComp_Proc_(ab, {
gte_sw(C2_SXY0, r_primitive_cursor, O_(Poly_G4,p0)), 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_SXY1, r_primitive_cursor, O_(Poly_G4,p1)),
gte_sw(C2_SXY2, r_primitive_cursor, O_(Poly_G4,p2)), gte_sw(C2_SXY2, r_primitive_cursor, O_(Poly_G4,p2)),
@@ -47,11 +48,322 @@ 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; * 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. * 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(AtomBuilder_R ab, U4 r_primitive_cursor) atom_dbg_skip MipsAtomComp_Proc_(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(AtomBuilder_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_(ab, {
mac_gte_sqr_v3s4(r_sx, r_sy, r_sz, nop),
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),
})
/* ─── SQR FIRE — mtc2 3 GPRs into IR1/IR2/IR3, then fire SQR. ───
* The SQR command always squares IR1/IR2/IR3 — those C2 registers are fixed.
* The GPRs holding the source vector are caller-determined.
* Words: 5 (3 mtc2 + 1 nop hazard + 1 cmd). */
FI_ Slice_MipsCode ac_gte_sqr_v3s4(AtomBuilder_R ab, Reg r_sx, Reg r_sy, Reg r_sz, MipsCode nop_slot)
atom_dbg_skip MipsAtomComp_Proc_(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_slot, gte_cmdw_sqr,
})
/* ─── 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(AtomBuilder_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_(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),
})
/* ─── TRANS MATRIX (libgte TransMatrix port) ───
* Atom component — auto-generates mac_trans_matrix Mac composer macro.
* m->t = v (struct copy; libgte's TransMatrix at 0x8001a540 is just 3 store_words, no GTE, no add).
* Uses 1 GPR (r_t1 = off value) per axis; per-axis load-delay-slot pattern.
* Words: 9. Clobbers: r_t1. */
FI_ Slice_MipsCode ac_trans_mt3s3s4(AtomBuilder_R ab
, U4 r_mtx, U4 r_off
, U4 r_t0, U4 r_t1, U4 r_t2
) MipsAtomComp_Proc_(ab, {
load_word(r_t0, r_off, O_(V3_S4,x)),
load_word(r_t1, r_off, O_(V3_S4,y)),
load_word(r_t2, r_off, O_(V3_S4,z)),
store_word(r_t0, r_mtx, O_(MT3_S2S4,t[0])),
store_word(r_t1, r_mtx, O_(MT3_S2S4,t[1])),
store_word(r_t2, r_mtx, O_(MT3_S2S4,t[2])),
})
/* ─── LZCR ROUND EVEN + HALF-SHIFT ───
* Takes the raw LZCR leading-zero/ones count (from mfc2 C2_LZCR, range 1..32
* per PSX-SPX cop2r31) and the |v|² sum (in r_mag_sq from the MAC1+MAC2+MAC3
* add). Produces:
* r_shift ← LZCR rounded down to even (clear bit 0)
* r_mag_sq_copy ← |v|² sum (moved out of r_mag_sq before it's overwritten)
* r_mag_sq ← (31 - even_LZCR) / 2 = the final srav/GPF shift amount
*
* Rounding to even ensures (31 - LZCR) is always odd, so the >> 1 division
* is consistent — no 0.5 loss. The caller branches on LZCR < 24 to decide
* left-shift vs right-shift of r_mag_sq_copy, then saves the shift count.
*
* Note: C2_LZCR (cop2r31) is a fixed read-only C2 data register — the caller
* must read it via mfc2 from C2_LZCR; there is no register choice at the
* hardware level. Only the GPR that holds the result is caller-determined. */
FI_ Slice_MipsCode ac_lzcr_round_even_half_shift(AtomBuilder_R ab,
U4 r_shift,
U4 r_mag_sq,
U4 r_mag_sq_copy
)
atom_dbg_skip MipsAtomComp_Proc_(ab, {
and_i(r_shift, r_shift, gte_lzcr_even_mask),
or_u(r_mag_sq_copy, r_mag_sq, 0),
li_s(r_mag_sq, 31),
sub_s(r_mag_sq, r_mag_sq, r_shift),
shift_aright(r_mag_sq, r_mag_sq, 1),
})
FI_ Slice_MipsCode ac_shift_aright_var_v3(AtomBuilder_R ab
, Reg rd_v0, Reg rd_v1, Reg rd_v2
, Reg rs_v0, Reg rs_v1, Reg rs_v2
, Reg r_shift)
MipsAtomComp_Proc_(ab, {
shift_aright_var(rd_v0, rs_v0, r_shift),
shift_aright_var(rd_v1, rs_v1, r_shift),
shift_aright_var(rd_v2, rs_v2, r_shift),
})
FI_ Slice_MipsCode ac_shift_aright_var_v3_self(AtomBuilder_R ab
, Reg rds_v0, Reg rds_v1, Reg rds_v2
, Reg r_shift)
MipsAtomComp_Proc_(ab, {
shift_aright_var(rds_v0, rds_v0, r_shift),
shift_aright_var(rds_v1, rds_v1, r_shift),
shift_aright_var(rds_v2, rds_v2, r_shift),
})
FI_ Slice_MipsCode ac_gte_general_purpose_interopolation(AtomBuilder_R ab
, Reg to_ir0, Reg to_ir1, Reg to_ir2, Reg to_ir3
, Reg fr_mac1, Reg fr_mac2, Reg fr_mac3
, MipsCode nop_slot1, MipsCode nop_slot2)
MipsAtomComp_Proc_(ab, {
gte_mv_to_data_r(to_ir0, C2_IR0),
gte_mv_to_data_r(to_ir1, C2_IR1), /* IR1 = src.x (preserved in r_tmp — r_mac2_scratch was clobbered to MAC2 in stage 1.5) */
gte_mv_to_data_r(to_ir2, C2_IR2),
gte_mv_to_data_r(to_ir3, C2_IR3), /* IR3 = src.z (reloaded) */
LdSlot_ nop_slot1,
LdSlot_ nop_slot2,
gte_cmdw_gpf,
gte_mv_from_data_r(fr_mac1, C2_MAC1),
gte_mv_from_data_r(fr_mac2, C2_MAC2),
gte_mv_from_data_r(fr_mac3, C2_MAC3),
})
FI_ Slice_MipsCode gte_mv_from_data_r_mac123(AtomBuilder_R ab
, Reg fr_mac1, Reg fr_mac2, Reg fr_mac3
)
MipsAtomComp_Proc_(ab, {
gte_mv_from_data_r(fr_mac1, C2_MAC1),
gte_mv_from_data_r(fr_mac2, C2_MAC2),
gte_mv_from_data_r(fr_mac3, C2_MAC3),
})
#pragma endregion MACs (Mips Atom Components) #pragma endregion MACs (Mips Atom Components)
#pragma region Bsked Atoms #pragma region Atom Procs
/* ─── 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,
};
#define RegUse_(proc_name) (tmpl(RegUse,proc_name))
typedef Struct_(RegUse_normalize_v3s4_proc) {
Reg scratch; // Scratch base carrier.
Reg src_ptr;
Reg dst_ptr;
Reg recip_est; // |v|² sum + shift-input + sqrtbl[index]
Reg norm; Reg shift;
Reg src_x;
union { Reg mac1_scratch; } t3;
union { Reg mac2_scratch; } t4;
union { Reg shift_count, btarget, lookup_addr, src_z; } t5;
};
/* ─── 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 : src.x PRESERVED across stages 1-2 (NOT clobbered by mfc2 MAC2) → fed to IR1 in stage 4
* r_mac1_scratch : MAC1 result scratch (also holds aligned |v|² in stage 3)
* r_mac2_scratch : MAC2 result scratch → result.x after stage 4 sra
* r_recip_est : src.y PRESERVED across stages 1-2 → fed to IR2 in stage 4 → result.y
* r_norm : |v|² sum (stage 2) → half-shift (stage 3) → 1/|v| (stage 4 IR0)
* r_shift : shift count SAVED in stage 3 → consumed by stage 4 srav
* r_branch_tmp : src.z PRESERVED across stages 1-2 → fed to IR3 in stage 4 → result.z (also 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.
*/
internal MipsAtom* normalize_v3s4_proc(AtomArena_R aa, U2 src_offset, U2 dst_offset, RegUse_normalize_v3s4_proc r)
MipsAtom_Proc_(aa, {
add_si(r.src_ptr, r.scratch, src_offset), /* r_src_ptr = &src */
/* Load src.x/y/z from r_src_ptr (caller-determined address) into r_tmp/r_recip_est/r_branch_tmp.
* r.rt1_src_x holds src.x throughout stages 1-2 — r_mac2_scratch is clobbered to MAC2 in stage 1.5 (line below). */
mac_load_v3s4(r.src_x, r.recip_est, r.t5.lookup_addr, r.src_ptr, 0),
/* Stage 1: mtc2 src → IR1/2/3, SQR fires. */
LdSlot_ mac_gte_sqr_v3s4(r.src_x, r.recip_est, r.t5.src_z, LdSlot_ nop),
/* Stage 2: mfc2 MAC1/2/3, sum, mtc2 LZCS. */
mac_gte_mv_from_data_r_mac123(r.t3.mac1_scratch, r.t4.mac2_scratch, r.norm), LdSlot_ nop,
add_u_self( r.norm, r.t3.mac1_scratch),
add_u_self( r.norm, r.t4.mac2_scratch),
gte_mv_to_data_r( r.norm, C2_LZCS), LdSlot_ nop2,
gte_mv_from_data_r(r.shift, C2_LZCR), LdSlot_ nop,
/* Stage 3: round LZCR to even, compute half-shift, align |v|² to bit 24.
* r_norm holds |v|² sum; r_shift holds the LZCR count from mfc2.
* After the component: r_shift = even(LZCR), r_norm = half-shift, r_mac1_scratch = |v|². */
mac_lzcr_round_even_half_shift(r.shift, r.norm, r.t3.mac1_scratch),
/* r_branch_tmp = LZCR - 24 (overwrites r_branch_tmp; src.z no longer needed after SQR) */
add_si( r.t5.btarget, r.shift, -24),
branch_lt_zero(r.t5.btarget, atom_offset(aligned_done, srav_path)), BdSlot_ nop, /* bltz → srav_path (LZCR < 24 path) */
jump_rel(atom_offset(srav_path, aligned_done)), /* b → aligned_done (LZCR >= 24 path) */
BdSlot_ shift_lleft_var(r.t3.mac1_scratch, r.t3.mac1_scratch, r.t5.btarget), /* src=sum (r_mac1_scratch), dst=same */
atom_label(srav_path)
li_s( r.t5.shift_count, 24),
sub_s(r.t5.shift_count, r.t5.shift_count, r.shift),
shift_aright_var(r.t3.mac1_scratch, r.t3.mac1_scratch, r.t5.shift_count), /* src=sum (r_mac1_scratch), dst=same */
atom_label(aligned_done)
// Save the shift count to r_shift before the next 5 instructions overwrite r_norm (the sqrtbl lookup loads 1/|v| into r_norm, which becomes IR0 in stage 4).
or_u(r.shift, r.norm, 0), /* r_shift ← shift count (preserved through stage 4) */
/* r_mac1_scratch holds |v|² aligned (top bit at bit 7). */
add_si( r.t3.mac1_scratch, r.t3.mac1_scratch, -64),
shift_lleft(r.t3.mac1_scratch, r.t3.mac1_scratch, 1),
mac_load_word_imm(r.t5.lookup_addr, & gte_normalize_sqr_tbl), add_u_self(r.t5.lookup_addr, r.t3.mac1_scratch),
load_half(r.norm, r.t5.lookup_addr, 0), /* r_norm = sqrtbl[aligned-64] = 1/|v| (IR0 in stage 4) */
/* r_branch_tmp held the sqrtbl base+index, NOT src.z. Reload src.z from scratch now that r_branch_tmp is free. */
LdSlot_ load_word(r.t5.src_z, r.src_ptr, O_(V3_S4,z)), /* r_branch_tmp = src.z (for IR3 in stage 4) */
/* Stage 4: GPF + srav finalize (r_shift = shift count, r_norm = 1/|v|). */
LdSlot_ mac_gte_general_purpose_interopolation(
r.norm,
r.src_x, /* IR1 = src.x (preserved in r_tmp — r_mac2_scratch was clobbered to MAC2 in stage 1.5) */
r.recip_est,
r.t5.src_z, /* IR3 = src.z (reloaded) */
r.t4.mac2_scratch, r.recip_est, r.t5.src_z,
LdSlot_ add_si(r.dst_ptr, r.scratch, dst_offset), // pre-laoding destination to register here.
LdSlot_ nop
),
/* sra by r_shift = (31-LZCR)/2 (saved before sqrtbl lookup) */
mac_shift_aright_var_v3_self(r.t4.mac2_scratch, r.recip_est, r.t5.src_z, r.shift),
/* Store result.x/y/z to r_dst_ptr (caller-determined dst address). */
mac_store_v3s4(r.t4.mac2_scratch, r.recip_est, r.t5.src_z, r.dst_ptr, 0),
mac_yield()
})
#pragma endregion Atom Procs
#pragma region Baked Atoms
typedef Struct_(Binds_SetGteMT3S2S4) { typedef Struct_(Binds_SetGteMT3S2S4) {
MT3_S2S4* transform; MT3_S2S4* transform;
+135 -24
View File
@@ -161,6 +161,8 @@ enum {
gte_cmd_nclip = 0x06, /* Normal Clipping (Backface culling) */ gte_cmd_nclip = 0x06, /* Normal Clipping (Backface culling) */
gte_cmd_op = 0x0C, /* Outer Product */ gte_cmd_op = 0x0C, /* Outer Product */
gte_cmd_mvmva = 0x12, /* Matrix Vector Multiply & Add (Custom math) */ 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 --- /* --- GTE Command Bit-Field Layout ---
* A GTE command word (sent to COP2 with RS=1) is laid out as: * A GTE command word (sent to COP2 with RS=1) is laid out as:
@@ -171,19 +173,47 @@ enum {
* +------------+--+-----+------+------+------+------+---+--------+----------+ * +------------+--+-----+------+------+------+------+---+--------+----------+
* \_____ GTE_PAYLOAD _____/ \__ GTE_CMD __/ * \_____ GTE_PAYLOAD _____/ \__ GTE_CMD __/
* *
* Shifts/masks below are the *bit positions* and *bit widths* of each * Shifts/masks below are the *bit positions* and *bit widths* of each configurable field, used by the ENC_GTE_CMD encoder.
* configurable field, used by the ENC_GTE_CMD encoder.
* Mirrors the OPCODE_SHIFT / RS_SHIFT convention used in mips.h. * 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_sf = 19, gte_width_sf = 1,
gte_shift_mx = 17, gte_width_mx = 2, gte_mask_mx = 0x3, gte_shift_mx = 17, gte_width_mx = 2,
gte_shift_v = 15, gte_width_v = 2, gte_mask_v = 0x3, gte_shift_v = 15, gte_width_v = 2,
gte_shift_cv = 13, gte_width_cv = 2, gte_mask_cv = 0x3, gte_shift_cv = 13, gte_width_cv = 2,
gte_shift_lm = 10, gte_width_lm = 1, gte_mask_lm = 0x1, gte_shift_lm = 10, gte_width_lm = 1,
gte_shift_cmd = 0, gte_width_cmd = 6, gte_mask_cmd = 0x3F, gte_shift_cmd = 0, gte_width_cmd = 6,
/* 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 Control Register Aliases (Pitfall 1) ---
* Three pairs of aliases map to the SAME C2 control-register slot on real silicon:
* C2[24] = gte_cr_RBK (background R) | gte_cr_OFX (screen offset X)
* C2[25] = gte_cr_GBK (background G) | gte_cr_OFY (screen offset Y)
* C2[26] = gte_cr_BBK (background B) | gte_cr_H (projection plane distance H)
* Cross-alias writes inside one atom body, or across the wave-context boundary,
* silently clobber each other. The metaprogram's check_gte_cr_alias_writes
* (CHECK_RULES row) warns about each pair per source. See
* docs/gte_reference.md §"Control-register alias table" for the silicon
* rationale and the libgte outer-product convention.
*/
/* --- RT-matrix packed-slot convention (Pitfall 4) ---
* The silicon packs two 16-bit RT elements per 32-bit C2 slot:
* C2[2] = (RT22 << 16) | RT13 (gte_cr_RT13 writes the low half, gte_cr_RT22 writes the high half)
* C2[4] = (RT33 << 16) | RT22 (gte_cr_RT22 writes the low half — clobbers prior RT22 value if RT13 was also written)
* OP and MVMVA read D1/D2/D3 from these packed slots. The libgte outer-product
* convention (see ac_apply_matrix_lv at gte.atom.c:108-122) writes C2[2] then
* C2[4] in sequence; the SECOND write's low half is RT22, not RT13. An agent
* who writes gte_cr_RT13 then gte_cr_RT22 to the SAME source GPR clobbers the
* RT13 value. See docs/gte_reference.md §"RT-matrix packed-slot convention"
* for the canonical write pattern.
*/
/* --- GTE Control Register Indices (for ctc2/cfc2) --- /* --- GTE Control Register Indices (for ctc2/cfc2) ---
* Preprocessor-visible integer ids for the COP2 control register file. * Preprocessor-visible integer ids for the COP2 control register file.
* Each enum value is bound to a parallel `_Code` `#define` so the preprocessor can stringify the integer (for `reg_str`/`rgcc` paths). * Each enum value is bound to a parallel `_Code` `#define` so the preprocessor can stringify the integer (for `reg_str`/`rgcc` paths).
@@ -243,10 +273,10 @@ enum { _C2_OPS_ = 0
* bit 1 (0x02): register class — 0 = data, 1 = control * bit 1 (0x02): register class — 0 = data, 1 = control
* bit 2 (0x04): direction — 0 = read, 1 = write * 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). * (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) * 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. */ * Vendor mnemonic aliases (gte_mfc2 / gte_mtc2 / gte_cfc2 / gte_ctc2) live in gte_vendor_sym.h. */
enum { _C2_TX_SUBS_ = 0 enum { _C2_TX_SUBS_ = 0
@@ -309,23 +339,24 @@ enum { _C2_TX_SUBS_ = 0
/* GTE Command Format /* GTE Command Format
* Opcode is always MIPS_OP_COP2, RS is always 1 (CO). * 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 * 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). * (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. */ * It just ORs the per-field encoders together. */
#define gte_cmd_base (enc_op(op_cop2) | (1 << 25)) #define gte_cmd_base (enc_op(op_cop2) | (1 << 25))
/* Per-field encoders. Each one does (value & mask) << shift on its own. */ /* 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_sf(sf) ((sf) << gte_shift_sf )
#define enc_gte_mx(mx) (((mx) & gte_mask_mx ) << gte_shift_mx ) #define enc_gte_mx(mx) ((mx) << gte_shift_mx )
#define enc_gte_v(v) (((v) & gte_mask_v ) << gte_shift_v ) #define enc_gte_v(v) ((v) << gte_shift_v )
#define enc_gte_cv(cv) (((cv) & gte_mask_cv ) << gte_shift_cv ) #define enc_gte_cv(cv) ((cv) << gte_shift_cv )
#define enc_gte_lm(lm) (((lm) & gte_mask_lm ) << gte_shift_lm ) #define enc_gte_lm(lm) ((lm) << gte_shift_lm )
#define enc_gte_cmd(cmd) (((cmd) & gte_mask_cmd) << gte_shift_cmd) #define enc_gte_cmd(cmd) ((cmd) << gte_shift_cmd )
#define enc_gte_fake_cmd(x) ((x) << gte_shift_fake_cmd)
/* Composite: all six GTE fields + the COP2/CO base. */ /* Composite: all six GTE fields + the COP2/CO base. */
#define enc_gte_cmdw(sf, mx, v, cv, lm, cmd) ( \ #define enc_gte_cmdw(sf, mx, v, cv, lm, cmd) ( \
@@ -363,11 +394,11 @@ enum { _C2_TX_SUBS_ = 0
* (the perspective divide happens regardless of `sf`). * (the perspective divide happens regardless of `sf`).
* *
* If we emit a strictly-spec-compliant word (`sf=0`, reserved bits clear), * 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 * 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), * The floor's screen coordinates come out as raw projection-of-rotation (Z never divided),
* `nclip` ends up wrong, and the triangle is culled. * `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. * NCLIP / OP / MVMVA stay spec-clean — their reserved bits really are zero in the original PsyQ source.
* -------------------------------------------------------------------------- * --------------------------------------------------------------------------
*/ */
@@ -378,11 +409,92 @@ enum { _C2_TX_SUBS_ = 0
#define gte_cmdw_nclip (gte_cmd_base | enc_gte_cmd(gte_cmd_nclip)) #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_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_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)) #define gte_cmdw_mvmva (gte_cmd_base | enc_gte_cmd(gte_cmd_mvmva))
/* MVMVA with sf=0 (no shift, full-integer), cv=3 (no translation), v=3 (IR vector input).
* Reads input from IR1/2/3 (loaded via mtc2 rt, C2_IRx). MAC1/2/3 = RT row · IR (full product, no >>12).
* Per PSX-SPX: SAR (sf*12) with sf=0 = SAR 0 = no shift. */
#define gte_cmdw_mvmva_sf0_ir (gte_cmd_base | enc_gte_cv(3) | enc_gte_v(3) | enc_gte_cmd(gte_cmd_mvmva))
/* MVMVA with sf=1 (>>12 shift, 4.12 fixed-point), cv=3 (no translation), v=3 (IR): for ApplyMatrixLV.
* Reads input from IR1/2/3 (loaded via mtc2 rt, C2_IRx). MAC1/2/3 = (RT row · IR) >> 12.
* Per PSX-SPX: SAR (sf*12) with sf=1 = SAR 12 = arithmetic right-shift by 12.
* This matches the libgte C-side ApplyMatrixLV output (R*pos >> 12). */
#define gte_cmdw_mvmva_ir (gte_cmd_base | enc_gte_sf(1) | enc_gte_cv(3) | enc_gte_v(3) | enc_gte_cmd(gte_cmd_mvmva))
/* MVMVA: sf=0, mx=3 (Light matrix), v=3 (IR), cv=3 (no TR).
* For pass1 of the C11 two-pass decomposition. Reads L matrix.
* Since L matrix is typically zero, pass1 contributes 0 to the combine. */
#define gte_cmdw_mvmva_sf0_mx3_v3_cv3 (gte_cmd_base | enc_gte_sf(0) | enc_gte_cv(3) | enc_gte_v(3) | enc_gte_mx(3) | enc_gte_cmd(gte_cmd_mvmva))
/* MVMVA: sf=1 (>>12), mx=3 (Light matrix), v=2 (V0), cv=0 (with TR).
* Matches the C11 ApplyMatrixLV pass 2 command word (0x49E012) exactly.
* The combine is (pass1 << 3) + pass2. */
#define gte_cmdw_mvmva_pass2_c11 (gte_cmd_base | enc_gte_sf(1) | enc_gte_v(2) | enc_gte_mx(3) | enc_gte_cmd(gte_cmd_mvmva))
/* MVMVA: sf=0, mx=3, v=2, cv=0. Matches the C11 pass 1 command. */
#define gte_cmdw_mvmva_pass1_c11 (gte_cmd_base | enc_gte_v(2) | enc_gte_mx(3) | enc_gte_cmd(gte_cmd_mvmva))
#define gte_cmdw_mvmva_no_tr gte_cmdw_mvmva_ir
/* MVMVA pass 2 — C11 ApplyMatrixLV command.
* Decoded: op_cop2 | CO | fake_cmd=4 | sf=1 (>>12) | mx=0 (RT matrix) | v=3 (IR) | cv=3 (no translation) | lm=0 | cmd=MVMVA.
* Reads (RT row · IR) >> 12 into MAC1/2/3. Per-field composition (no opaque literal)
* keeps the bit layout visible at the call site + matches the libgte C-side byte-exact. */
#define gte_cmdw_mvmva_c11_pass2 (gte_cmd_base | enc_gte_fake_cmd(4) | enc_gte_sf(1) | enc_gte_v(3) | enc_gte_mx(0) | enc_gte_cv(3) | enc_gte_cmd(gte_cmd_mvmva))
/* MVMVA: sf=1 (>>12), mx=0 (RT matrix), v=0 (V0), cv=3 (no TR). */
#define gte_cmdw_mvmva_sf1_mx0_v0_cv3 (gte_cmd_base | enc_gte_sf(1) | enc_gte_cv(3) | enc_gte_v(0) | enc_gte_mx(0) | enc_gte_cmd(gte_cmd_mvmva))
/* RTPS with sf=1 (12-bit shift, no translation): matches the output of libgte's
* ApplyMatrixLV when the GTE pipeline expects R*pos >> 12. The shift produces
* values like (-270, 710, 1713) which match the C11 reference path. */
#define gte_cmdw_rtps_sf1 (gte_cmd_base | enc_gte_sf(1) | enc_gte_cv(3) | enc_gte_cmd(gte_cmd_rtps))
/* 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)
/* Mask to round LZCR (leading-zero/ones count, range 1..32 per PSX-SPX cop2r31)
* down to even. The normalize_v3s4 half-shift logic computes (31 - LZCR) >> 1;
* clearing bit 0 ensures the subtraction result is always odd,
* so the >> 1 division is consistent (no 0.5 loss). */
enum {
gte_lzcr_even_mask = 0xFFFE, /* all bits except bit 0 */
};
#define gte_cmdw_rotate_translate_perspective_single gte_cmdw_rtps #define gte_cmdw_rotate_translate_perspective_single gte_cmdw_rtps
#define gte_cmdw_rotate_translate_perspective_triple gte_cmdw_rtpt #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) */ /* PsyQ compatibility bits for AVSZ3 (Bits 20, 22, 24 must be set) */
#define gte_cmdw_psyq_avsz3_compat (0x15 << 20) #define gte_cmdw_psyq_avsz3_compat (0x15 << 20)
@@ -433,7 +545,6 @@ enum {
#define gte_lw_v2_z(base) enc_gte_lw(gte_in_v2_z, (base), GTE_Z_Offset) #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 /* 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 * 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). * (typically one of R_T4..R_T9 for the standard "3-pointer" pattern).
* *
+173 -41
View File
@@ -23,13 +23,13 @@
* directly executed chain of assemby arrays (Atoms) that terminate with a yield sequence to the next atom. * 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". * 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 * It 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 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. * 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. * It does not have have any branching within the tape but relative branches within atoms or between atoms.
* Branching nearly is always downstream. Stack usage is non-existent. * Branching nearly is always downstream. Automatic stack usage is non-existent.
* Push/Pop, FIFO, or Arena/Bump data structures are used by atoms explicitly. * 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. * 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, * 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. * or, basically anything from the 5th generation consoles and onward.
@@ -39,10 +39,10 @@
* but, we can set the foundation for legoing whats required for eventually expanding this ABI's paradigm * 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 * 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 * 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 * automatic register allocation means the user cannot ignore excessive argument shuffle across workload or
* waves and thier phases. Crossing ABI boundaries to other runtimes that do has obviouss penalties. * 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 * Learning data-oriented 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, * 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 * 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 * hammer down "rules" or patterns for massaging the compiler to dissolve those call frames; just to get
@@ -100,42 +100,62 @@ enum {
// S 0-7 // S 0-7
}; };
typedef U2 Reg; // Register parameter used with atom or atom component procedures
typedef U4 const MipsCode; // Underlying type to mips asm words. typedef U4 const MipsCode; // Underlying type to mips asm words.
typedef Slice_(MipsCode); typedef Slice_(MipsCode);
typedef U4 const MipsAtom; // Underlying type to an array of mips asm words that must terminate with an ac_yield. typedef U4 const MipsAtom;
typedef Slice_(MipsAtom);
// Sometimes a user will define a bundle of atoms that represent a procedure of work as:
// MipsAtom* <identifier>[...];
// Unfortuantely if using slice_from_array it will make the slice's pointer: MipsAtom** so this enforce its defined as MipsAtom*
// TODO(Ed): Alternatively we can make the MipsAtom an opaque pointer to the atom... so that the blow returns 'MipsAtom'.
#define atombundle_from_array(array) (Slice_MipsAtom){.ptr=array[0],.len=Array_len(array)}
// Underlying type to an ptr to an array of mips asm words that must terminate with an ac_yield.
#define MipsAtom_(sym) MipsCode sym [] align_(4) = #define MipsAtom_(sym) MipsCode sym [] align_(4) =
// Used for atoms with value-args
// internal MipsAtom* X_proc(AtomArena_R aa, args) MipsAtom_Proc_(X, aa, { body })
// expands to:
// internal MipsAtom* X_proc(AtomArena_R aa, args) { MipsCode atom_comp_code[] align_(4) = { body }; return atomarena_push(aa, slice_from_array(MipsCode, atom_comp_code)); }
// The atom name is derived by the Lua metaprogram from the preceding
// `MipsAtom* X_proc(...)` declaration (backward walk from the macro site,
// strips the `_proc` suffix).
#define MipsAtom_Proc_(aa, ...) { MipsCode atom_comp_code[] align_(4) = __VA_ARGS__; return atomarena_push(aa, slice_from_array(MipsCode, atom_comp_code)); }
// Used for components with no args (e.g., ac_load_tri_indices) or identifier-args (hardcoded register names). // Used for components with no args (e.g., ac_load_tri_indices) or identifier-args (hardcoded register names).
// MipsAtomComp_(ac_X) { body } // MipsAtomComp_(ac_X) { body }
// expands to: // expands to:
// MipsCode ac_X[] align_(4) = { body }; // MipsCode ac_X[] align_(4) = { body };
#define MipsAtomComp_(sym) MipsCode sym [] align_(4) = #define MipsAtomComp_(sym) MipsCode sym [] align_(4) =
// Used for components with value-args (e.g., ac_format_f3_color). // Used for components with value-args (mandatory `ab` (atom-builder) arg).
// FI_ Slice_MipsCode ac_X(args) MipsAtomComp_Proc_(ac_X, { body }) // FI_ void ac_X(MipsAtomBuilder_R ab, args) MipsAtomComp_Proc_(ab, { body })
// expands to: // expands to:
// FI_ Slice_MipsCode ac_X(args) { MipsCode ac_X[] align_(4) = { body }; return slice_from_array(MipsCode, ac_X); } // FI_ void ac_X(MipsAtomBuilder_R ab, args) {
#define MipsAtomComp_Proc_(sym, ...) { MipsCode sym [] align_(4) = __VA_ARGS__; return slice_from_array(MipsCode, sym); } // MipsCode atom_comp_code[] align_(4) = { body };
// atombuilder_push(ab, slice_from_array(MipsCode, atom_comp_code));
/* Line-table anchor: gcc only adds a file to the .debug_line file table when the // }
file contains line-numbered content. Files containing only: // The body must NOT include mac_yield() (the parent atom yields).
- `MipsAtomComp_` static-array declarations, or // The component name is derived by the Lua metaprogram from the preceding `FI_ Slice_MipsCode ac_X(...)` declaration (backward walk from the macro site).
- `MipsAtomComp_Proc_` (force-inline) function bodies whose line info gets // Inline-only callers (the generated `mac_<name>` aliases) skip the `ab` arg via metaprogram filtering; escape callers (ac_<name> invoked as a function) pass a long-lived builder.
attributed to the call site at the include point are otherwise omitted from the file table, #define MipsAtomComp_Proc_(ab, ...) { MipsCode atom_comp_code[] align_(4) = __VA_ARGS__; atombuilder_push(ab, slice_from_array(MipsCode, atom_comp_code)); }
which breaks the DWARF injection when it tries to resolve atom-component provenance paths.
/* 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. 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. Macro expands to a file-scope `internal U4 const` declaration keeps the file in the line table.
The constant is in `.rodata` and unreferenced; the linker may eliminate it. The constant is in `.rodata` so the linker may eliminate it.
The two-level concat + `__LINE__` suffix makes the identifier unique per call site Two-level concat + `__LINE__` suffix makes the identifier unique per call site
(the identifier embeds the source line, so duplicates across `#include`d files don't collide). */ (identifier embeds the source line, so duplicates across `#include`d files don't collide). */
#define ATOM_FILE_DEBUGGER_LINE_MARKER(file_name) internal U4 const tmpl(atom_file_debugger_line_marker,file_name) = 0 #define ATOM_FILE_DEBUGGER_LINE_MARKER(file_name) internal U4 const tmpl(atom_file_debugger_line_marker,file_name) = 0
typedef Slice_(MipsAtom); typedef Slice_MipsAtom Tape; typedef Slice_MipsAtom Tape;
/* The 'Exit' Atom */ /* The 'Exit' Atom */
atom_dbg_skip MipsAtom_(tape_exit) { jump_reg(rret_addr), nop }; atom_dbg_skip MipsAtom_(tape_exit) { jump_reg(R_RA), nop };
// TODO(Ed): When we have a substantial workload/throughput, profile each of these to see impact at ABI boundaries. // TODO(Ed): When we have a substantial workload/throughput, profile each of these to see impact at ABI boundaries.
@@ -179,13 +199,15 @@ 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; }; 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_ 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_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; } 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_emit_(atom) tb_emit(& tb, atom)
#define tb_data_(field, data) tb_data(& tb, u4_(data)) #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_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 }; } 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)) #define tb_scope(tb) for(U4 tbs_once=0;tbs_once==0;++tbs_once,tb_emit(tb,tape_exit))
@@ -220,35 +242,145 @@ atom_dbg_skip MipsAtomComp_(ac_yield_tail) {
add_ui_self(R_TapePtr, S_(MipsCode)), add_ui_self(R_TapePtr, S_(MipsCode)),
jump_reg( R_AtomJmp), nop, jump_reg( R_AtomJmp), nop,
}; };
#pragma endregion Macro Atom Components #pragma endregion Macro Atom Components
#pragma region Mips Atom Builder #pragma region Atom Builder
// This helps with runtime procedural authoring of mips atoms. // This helps with runtime procedural authoring of mips atoms.
typedef Struct_(FMipsAtom512) { U4 data[512]; U4 used; }; typedef Struct_(FMipsAtom512) { U4 data[512]; U4 used; };
// FArena Related // FArena Related
typedef Relative_(FArena) Struct_(MipsAtomBuilder) { U4 start; U4 capacity; U4 used; }; typedef Relative_(FArena) Struct_(AtomBuilder) { U4 start; U4 capacity; U4 used; };
// 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) { // Usual way to resolve an atom after the bulder is done.
assert(ab->capacity - ab->used - code->len); #define atom_from_atombuilder(ab) C_(MipsAtom*, (ab).start)
mem_copy(ab->start, u4_(code->ptr), code->len);
mem_bump(ab->start, ab->capacity, & ab->used, code->len); FI_ void atombuilder_push(AtomBuilder_R ab, Slice_MipsCode code) {
assert(ab->capacity - ab->used - code.len);
U4 dest = ab->start + ab->used * S_(MipsCode); U4 size = S_slice(code);
mem_copy(dest, u4_(code.ptr), size); ab->used += size;
} }
#define atombuilder_unroll_mac(ab, mac) atombuilder_unroll(ab, slice_arg_from_array(Slice_MipsCode, mac)) #define atombuilder_push_mac(ab, mac) atombuilder_push(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) { FI_ void atombuilder_end(AtomBuilder_R ab) { atombuilder_push(ab, slice_from_array(MipsCode, ac_yield)); }
mem_copy(ab->start, u4_(ac_yield), S_(ac_yield));
mem_bump(ab->start, ab->capacity, & ab->used, S_(ac_yield));
}
#define mipsatom_from_builder(ab) (Slice_MipsCode){ab.start, ab.used} FI_ void tb_emit_atombuilder(TapeBuilder_R tb, AtomBuilder_R ab) { tb_emit(tb, atom_from_atombuilder(ab[0])); }
#pragma endregion Mips Atom Builder #pragma endregion Mips Atom Builder
#pragma region Atom Arena
// Just a dedicated FArena that is meant to mem_copy and return atom definitions made with MipsAtom_Proc_
typedef Relative_(FArena) Struct_(AtomArena) { U4 start; U4 capacity; U4 used; };
#define atomarena_unused_start(ab) ((ab).start + (ab).used)
FI_ void atomarena_init(AtomArena_R arena, Slice mem) { assert(arena != nullptr);
arena->start = u4_(mem.ptr);
arena->capacity = mem.len;
arena->used = 0;
}
FI_ AtomArena atomarena_make(Slice mem) { AtomArena a; atomarena_init(& a, mem); return a; }
FI_ MipsAtom* atomarena_push(AtomArena_R aa, Slice_MipsCode code) {
assert(aa->capacity - aa->used - code.len);
U4 dest = atomarena_unused_start(aa[0]); U4 size = S_slice(code);
mem_copy(dest, u4_(code.ptr), size); aa->used += size;
return C_(MipsAtom*, dest);
}
FI_ void atomarena_reset(AtomArena_R aa) { aa->used = 0; }
#pragma endregion Atom Arena
#pragma region RegFile (Register File Allocator)
// A specialized allocator utilized to help the user track which registers are bound to values
// that must be preserved for the arena's bounds.
// TODO(Ed): Technically we can do this at comp-time with the metaprogram, but we may have namespace conflicts.
// Unless we follow a convention for #define <Scope_Prefix> or something per register allocation boundary.
/* ABI + tape reserves that are never handed out by alloc. */
U4 const regfile_abi_mask =
(1u << R_0) | (1u << R_AT) |
(1u << R_K0) | (1u << R_K1) |
(1u << R_GP) | (1u << R_SP) |
(1u << R_FP) | (1u << R_RA) |
(1u << R_T8) | (1u << R_T9); /* AtomJmp + TapePtr */
typedef Struct_(RegFile) {
A2_U2 GPR;
A2_U2 GTE;
};
#define regfile(pin_mask) {.GPR={u4_lo(pin_mask), u4_hi(pin_mask)} }
FI_ void regfile_init(RegFile_R rf) {
/* pack the 32-bit ABI mask into the two U2s */
rf->GPR[0] = u4_lo(regfile_abi_mask);
rf->GPR[1] = u4_hi(regfile_abi_mask);
rf->GTE[0] = rf->GTE[1] = 0;
}
FI_ RegFile regfile_make(void) { RegFile rf; regfile_init(& rf); return rf; }
typedef Struct_(RegFile_RInfo) {
U2_R section;
U2 mask;
B2 occupied;
};
FI_ RegFile_RInfo regfile_rinfo(A2_U2 file, Reg r_id) {
U2 s_id = r_id >> 4;
U2_R section = & file[s_id];
U2 mask = u2_(1u << (r_id & 15));
B2 occupied = (section[0] & mask) != 0;
return (RegFile_RInfo){section, mask, occupied};
}
FI_ Reg regfile__alloc_helper(A2_U2 file, Reg r_id) {
Reg result = 0; RegFile_RInfo info = regfile_rinfo(file, r_id);
if (info.occupied == false) {
info.section[0] |= info.mask;
result = r_id;
}
return result;
}
I_ Reg regfile_alloc(RegFile_R rf) {
U2 allocated = 0;
for index_iter(Reg, r_id, R_T0, <=, R_T7) {
allocated = regfile__alloc_helper(rf->GPR, r_id); Jmp_nZero_(allocated,resolved);
}
allocated = regfile__alloc_helper(rf->GPR, R_V0); Jmp_nZero_(allocated,resolved);
allocated = regfile__alloc_helper(rf->GPR, R_V1);
assert(allocated != 0);
resolved: return allocated;
}
FI_ Reg regfile_pin(RegFile_R rf, Reg r_id) {
RegFile_RInfo info = regfile_rinfo(rf->GPR, r_id);
assert(info.occupied == false);
info.section[0] |= info.mask;
return r_id;
}
FI_ void regfile_pin_mask(RegFile_R rf, U4 mask) {
B4 occupied = u4_r(rf->GPR)[0] & mask;
assert(occupied == false);
u4_r(rf->GPR)[0] |= mask;
}
FI_ void regfile_free_mask(RegFile_R rf, U4 mask) {
if (regfile_abi_mask & mask) return;
u4_r(rf->GPR)[0] &= ~mask;
}
FI_ void regfile_free_reg(RegFile_R rf, Reg r_id) {
/* never free the ABI set */
if (regfile_abi_mask & (1u << r_id)) return;
RegFile_RInfo info = regfile_rinfo(rf->GPR, r_id);
info.section[0] &= ~info.mask;
}
FI_ void regfile_reset(RegFile_R rf) {
rf->GPR[0] = u4_lo(regfile_abi_mask);
rf->GPR[1] = u4_hi(regfile_abi_mask);
}
FI_ void regfile_reset_mask(RegFile_R rf, U4 mask) {
rf->GPR[0] = u4_lo(mask);
rf->GPR[1] = u4_hi(mask);
}
#pragma endregion RegFileArena (Register File Allocator)
#pragma region Mips Atom Procs
#pragma endregion Mips Atom Procs
#pragma region Baked Mips Atoms #pragma region Baked Mips Atoms
// These atoms are resolved at compile time and are (usually) statically linked readonly data. // These atoms are resolved at compile time and are (usually) statically linked readonly data.
+31 -5
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@@ -9,17 +9,43 @@ ATOM_FILE_DEBUGGER_LINE_MARKER(math_atom_c);
#pragma region MACs (Mips Atom Component) #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_imm
load_half( rs_x, r_base, O_(V3_S2,x)),
load_half( rs_y, r_base, O_(V3_S2,y)), FI_ Slice_MipsCode ac_load_v2s2(AtomBuilder_R ab, U4 rs_x, U4 rs_y, U4 r_base, U4 offset) atom_dbg_skip MipsAtomComp_Proc_(ab, {
load_half( rs_x, r_base, offset + O_(V3_S2,x)),
load_half( rs_y, r_base, offset + 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(AtomBuilder_R ab, U4 rt_x, U4 rt_y, U4 base, U4 offset) atom_dbg_skip MipsAtomComp_Proc_(ab, {
store_half(rt_x, base, offset + O_(V2_S2,x)), store_half(rt_x, base, offset + O_(V2_S2,x)),
store_half(rt_y, base, offset + O_(V2_S2,y)), 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(AtomBuilder_R ab, U4 rs_x, U4 rs_y, U4 rs_z, U4 r_base, U4 offset) atom_dbg_skip MipsAtomComp_Proc_(ab, {
load_word( rs_x, r_base, offset + O_(V3_S4,x)),
load_word( rs_y, r_base, offset + O_(V3_S4,y)),
load_word( rs_z, r_base, offset + O_(V3_S4,z)),
})
// TODO(Ed): we could generate these mappings properly..
#define ac_load_p3s4 ac_load_v3s4
#define mac_load_p3s4 mac_load_v3s4
FI_ Slice_MipsCode ac_store_v3s4(AtomBuilder_R ab, U4 rt_x, U4 rt_y, U4 rt_z, U4 base, U4 offset) atom_dbg_skip MipsAtomComp_Proc_(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)),
})
// TODO(Ed): we could generate these mappings properly..
#define ac_store_p3s4 ac_store_v3s4
#define mac_store_p3s4 mac_store_v3s4
FI_ Slice_MipsCode ac_sub_v3s4(AtomBuilder_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_(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(AtomBuilder_R ab, U4 rt_x, U4 rt_y, U4 rt_width, U4 rt_height, U4 base, U4 offset) atom_dbg_skip MipsAtomComp_Proc_(ab, {
store_half(rt_x, base, offset + O_(Rect_S2,x)), store_half(rt_x, base, offset + O_(Rect_S2,x)),
store_half(rt_y, base, offset + O_(Rect_S2,y)), store_half(rt_y, base, offset + O_(Rect_S2,y)),
store_half(rt_width, base, offset + O_(Rect_S2,width)), store_half(rt_width, base, offset + O_(Rect_S2,width)),
+35 -11
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@@ -7,11 +7,24 @@
#define max(A, B) (((A) > (B)) ? (A) : (B)) #define max(A, B) (((A) > (B)) ? (A) : (B))
#define clamp_bot(X, B) max(X, 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 { enum {
v3s2_byteoff = 3, // log2(8), used with shift_left_logical op for index via byte offset. v3s2_byteoff = 3, // log2(8), used with shift_left_logical op for index via byte offset.
}; };
typedef Array_(U1, 2); typedef Array_(U1, 2);
typedef Array_(U2, 2);
typedef Array_(U4, 2); typedef Array_(U4, 2);
typedef Array_(S2, 2); typedef Array_(S2, 2);
typedef Array_(S2, 3); typedef Array_(S2, 3);
@@ -27,23 +40,36 @@ typedef Struct_(V2_U1) { U1 x; U1 y; };
typedef Struct_(V2_S2) { S2 x; S2 y; }; typedef Struct_(V2_S2) { S2 x; S2 y; };
typedef Struct_(V2_S4) { S4 x; S4 y; }; typedef Struct_(V2_S4) { S4 x; S4 y; };
typedef Struct_(V3_S2) { S2 x; S2 y; S2 z; S2 pad; }; // PSY-Q: SVECTOR 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 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_S2) { S2 x; S2 y; S2 z; S2 w; };
typedef Struct_(V4_S4) { S4 x; S4 y; S4 z; S4 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_(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 Struct_(R2_S4) { V2_S4 p0; V2_S4 p1; }; typedef V3_S4 P3_S4;
typedef Struct_(R1_U2) { U2 p0; U2 p1; };
typedef Struct_(R1_S2) { S2 p0; S2 p1; };
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_S2) { S2 x; S2 y; S2 width; S2 height; };
typedef Struct_(Rect_S4) { S4 x; S4 y; S4 width; S4 height; }; typedef Struct_(Rect_S4) { S4 x; S4 y; S4 width; S4 height; };
typedef Struct_(MT3_S2S4) { A3x3_S2 m; A3_S4 t; }; // PSY-Q: MATRIX 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_U1, 2);
typedef Array_(V2_S2, 2); typedef Array_(V2_S2, 2);
typedef Array_(V2_S2, 3); typedef Array_(V2_S2, 3);
typedef Array_(V2_S2, 4); typedef Array_(V2_S2, 4);
#define r1u2(p0,p1) (R1_U2){p0,p1}
enum { enum {
fp_one = (1 << 12), fp_one = (1 << 12),
}; };
@@ -86,12 +112,10 @@ FI_ void mul_a3s4(A3_S4_R out_a, A3_S4 b) {
(out_a[0])[2] *= b[2]; (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 (V3_S4_R out_a, V3_S4 b) { add_a3s4 (C_ptr(A3_S4_R, out_a), C_ptr(A3_S4, b)); }
FI_ void add_v3s4_fp(V3_S4_R out_a, V3_S4 b) { add_a3s4_fp(pcast(A3_S4_R, out_a), pcast(A3_S4, b)); } FI_ void add_v3s4_fp(V3_S4_R out_a, V3_S4 b) { add_a3s4_fp(C_ptr(A3_S4_R, out_a), C_ptr(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)); }
FI_ void sub_v3s4 (V3_S4_R out_a, V3_S4 b) { sub_a3s4 (C_ptr(A3_S4_R, out_a), C_ptr(A3_S4, b)); }
FI_ void sub_v3s4_fp(V3_S4_R out_a, V3_S4 b) { sub_a3s4_fp(C_ptr(A3_S4_R, out_a), C_ptr(A3_S4, b)); }
FI_ void mul_v3s4 (V3_S4_R out_a, V3_S4 b) { mul_a3s4 (C_ptr(A3_S4_R, out_a), C_ptr(A3_S4, b)); }
+21 -12
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@@ -18,7 +18,7 @@ I_ U4 align_pow2(U4 x, U4 b) {
#define align_struct(type_width) ((U4)(((type_width) + 3) & ~3)) #define align_struct(type_width) ((U4)(((type_width) + 3) & ~3))
FI_ void mem_bump(U4 start, U4 cap, U4*R_ used, U4 amount) { FI_ void mem_bump(U4 cap, U4*R_ used, U4 amount) {
assert(amount <= (cap - used[0])); assert(amount <= (cap - used[0]));
used[0] += amount; used[0] += amount;
} }
@@ -58,13 +58,13 @@ typedef Struct_(Str8) { UTF8* ptr; U4 len; };
typedef Struct_(Slice_Str8) { Str8* ptr; U4 len; }; typedef Struct_(Slice_Str8) { Str8* ptr; U4 len; };
#define slit(string_literal) (Str8){ (UTF8*) string_literal, S_(string_literal) - 1 } #define slit(string_literal) (Str8){ (UTF8*) string_literal, S_(string_literal) - 1 }
typedef Struct_(Slice) { U4 ptr, len; }; // Untyped Slice typedef Struct_(Slice) { B1* ptr; U4 len; }; // Untyped Slice (byte-addressable; .len in elements)
FI_ Slice slice_ut_(U4 ptr, U4 len) { return (Slice){ptr, len}; } FI_ Slice slice_ut_(U4 ptr, U4 len) { return (Slice){(B1*)ptr, len}; }
#define Slice_(type) Struct_(tmpl(Slice,type)) { type* ptr; U4 len; } #define Slice_(type) Struct_(tmpl(Slice,type)) { type* ptr; U4 len; }
typedef Slice_(B1); typedef Slice_(B1);
#define slice_assert(s) do { assert((s).ptr != 0); assert((s).len > 0); } while(0) #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 S_slice(s) ((s).len * S_((s).ptr[0]))
#define slice_ut(ptr,len) slice_ut_(u4_(ptr), u4_(len)) #define slice_ut(ptr,len) slice_ut_(u4_(ptr), u4_(len))
@@ -72,23 +72,30 @@ typedef Slice_(B1);
#define slice_to_ut(s) slice_ut_(u4_((s).ptr), S_slice(s)) #define slice_to_ut(s) slice_ut_(u4_((s).ptr), S_slice(s))
#define slice_iter(container, iter) (T_((container).ptr) iter = (container).ptr; iter != slice_end(container); ++ iter) #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_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 = Array_len(array) }
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.len); }
#define slice_zero(s) slice_zero_(slice_to_ut(s)) #define slice_zero(s) slice_zero_(slice_to_ut(s))
FI_ void slice_copy_(Slice dest, Slice src) { 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(dest);
slice_assert(src); 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 { \ #define slice_copy(dest, src) do { \
static_assert(T_same(dest, src)); \ static_assert(T_same(dest, src)); \
slice_copy_(slice_to_ut(dest), slice_to_ut(src)); \ slice_copy_(slice_to_ut(dest), slice_to_ut(src)); \
} while(0) } while(0)
FI_ Slice slice_bump(U4_R used, U4 start, U4 len, U4 amount) {
assert(len - used[0] - amount);
U4 ptr = start + used[0]; used[0] += amount;
return slice_ut(ptr, amount);
}
typedef Slice_(U1);
typedef Slice_(U4); typedef Slice_(U4);
#pragma endregion Slice #pragma endregion Slice
@@ -98,18 +105,19 @@ typedef Slice_(U4);
typedef Opt_(farena) { U4 alignment, type_width; }; typedef Opt_(farena) { U4 alignment, type_width; };
typedef Struct_(FArena) { U4 start, capacity, used; }; typedef Struct_(FArena) { U4 start, capacity, used; };
FI_ void farena_init(FArena_R arena, Slice mem) { assert(arena != nullptr); FI_ void farena_init(FArena_R arena, Slice mem) { assert(arena != nullptr);
arena->start = mem.ptr; arena->start = u4_(mem.ptr);
arena->capacity = mem.len; arena->capacity = mem.len;
arena->used = 0; arena->used = 0;
} }
FI_ FArena farena_make(Slice mem) { FArena a; farena_init(& a, mem); return a; } FI_ FArena farena_make(Slice mem) { FArena a; farena_init(& a, mem); return a; }
FI_ Slice farena_bump(FArena_R a, U4 amount) { return slice_bump(& a->used, a->start, a->capacity, amount); }
I_ Slice farena_push(FArena_R arena, U4 amount, Opt_farena o) { I_ Slice farena_push(FArena_R arena, U4 amount, Opt_farena o) {
if (amount == 0) { return (Slice){}; } if (amount == 0) { return (Slice){}; }
U4 desired = amount * (o.type_width == 0 ? 1 : o.type_width); U4 desired = amount * (o.type_width == 0 ? 1 : o.type_width);
U4 to_commit = align_pow2(desired, o.alignment ? o.alignment : MEM_ALIGNMENT_DEFAULT); U4 to_commit = align_pow2(desired, o.alignment ? o.alignment : MEM_ALIGNMENT_DEFAULT);
U4 ptr = arena->start + arena->used; U4 ptr = arena->start + arena->used;
mem_bump(arena->start, arena->capacity, & arena->used, to_commit); mem_bump(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_reset (FArena_R arena) { arena->used = 0; }
FI_ void farena_rewind(FArena_R arena, U4 save_point) { FI_ void farena_rewind(FArena_R arena, U4 save_point) {
@@ -117,6 +125,7 @@ FI_ void farena_rewind(FArena_R arena, U4 save_point) {
arena->used -= save_point - arena->start; arena->used -= save_point - arena->start;
} }
FI_ U4 farena_save(FArena arena) { return arena.used; } FI_ U4 farena_save(FArena arena) { return arena.used; }
FI_ U4 farena_unused_start(FArena arena) { return arena.start + arena.used; }
#define farena_push_(arena, amount, ...) farena_push((arena), (amount), opt_(farena, __VA_ARGS__)) #define farena_push_(arena, amount, ...) farena_push((arena), (amount), opt_(farena, __VA_ARGS__))
#define farena_push_type(arena, type, ...) C_(type*, farena_push((arena), 1, opt_(farena, .type_width=S_(type), __VA_ARGS__)).ptr) #define farena_push_type(arena, type, ...) C_(type*, farena_push((arena), 1, opt_(farena, .type_width=S_(type), __VA_ARGS__)).ptr)
#define farena_push_array(arena, type, amount, ...) (tmpl(Slice,type)){ C_(type*, farena_push((arena), (amount), opt_(farena, .type_width=S_(type), __VA_ARGS__)).ptr), (amount) } #define farena_push_array(arena, type, amount, ...) (tmpl(Slice,type)){ C_(type*, farena_push((arena), (amount), opt_(farena, .type_width=S_(type), __VA_ARGS__)).ptr), (amount) }
+19 -8
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@@ -2,11 +2,22 @@
# include "gen/macs.h" # include "gen/macs.h"
# include "gen/offsets.h" # include "gen/offsets.h"
# include "bios.h" # include "bios.h"
# include "mips.h"
# include "lottes_tape.h" # include "lottes_tape.h"
#endif #endif
ATOM_FILE_DEBUGGER_LINE_MARKER(mips_atom_c); ATOM_FILE_DEBUGGER_LINE_MARKER(mips_atom_c);
#pragma region MACs (Mips Atom Components)
FI_ Slice_MipsCode ac_load_word_imm(AtomBuilder_R ab, Reg dst, U4 imm)
atom_dbg_skip MipsAtomComp_Proc_(ab, {
load_upper_i(dst, u4_hi(imm)),
or_i_self( dst, u4_lo(imm)),
})
#pragma endregion MACs (Mips Atom Components)
#pragma region Baked Atoms #pragma region Baked Atoms
/* Flushes the Instruction Cache (PSX A-function 0x44 via BIOS stub at 0xA0). /* Flushes the Instruction Cache (PSX A-function 0x44 via BIOS stub at 0xA0).
@@ -20,14 +31,14 @@ ATOM_FILE_DEBUGGER_LINE_MARKER(mips_atom_c);
* 6. sp += 8 * 6. sp += 8
*/ */
internal MipsAtom_(mips_flush_icache) { internal MipsAtom_(mips_flush_icache) {
add_ui(rstack_ptr, rstack_ptr, -MipsStackAlignment), // sp -= 8 add_ui(R_SP, R_SP, -MipsStackAlignment), // sp -= 8
store_word(rret_addr, rstack_ptr, S_(U4)), // sw $ra, 4($sp) store_word(R_RA, R_SP, S_(U4)), // sw $ra, 4($sp)
add_ui(rret_0, rdiscard, bios_flushcache), // addiu $a0, $0, 0x44 add_ui(R_V0, R_0, bios_flushcache), // addiu $a0, $0, 0x44
add_ui(rtmp_0, rdiscard, bios_table_addr), // addiu $t0, $0, 0xA0 add_ui(R_T0, R_0, bios_table_addr), // addiu $t0, $0, 0xA0
jump_link(rtmp_0, rret_addr), nop, // jalr $t0, $ra, BD slot jump_link(R_T0, R_RA), nop, // jalr $t0, $ra, BD slot
load_word(rret_addr, rstack_ptr, S_(U4)), // lw $ra, 4($sp) load_word(R_RA, R_SP, S_(U4)), // lw $ra, 4($sp)
jump_reg(rret_addr), // jr $ra jump_reg(R_RA), // jr $ra
add_ui(rstack_ptr, rstack_ptr, MipsStackAlignment), // sp += 8 (BD) add_ui(R_SP, R_SP, MipsStackAlignment), // sp += 8 (BD)
mac_yield(), mac_yield(),
}; };
+58 -49
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@@ -136,31 +136,31 @@ enum {
/* Semantic Aliases for MIPS Registers (O32 ABI) */ /* Semantic Aliases for MIPS Registers (O32 ABI) */
, rdiscard = R_0 /* Hardwired to 0 */ // , rdiscard = R_0 /* Hardwired to 0 */
, rasm_tmp = R_AT /* Assembler temporary (destroyed by some assembler pseudoinstructions!) */ // , rasm_tmp = R_AT /* Assembler temporary (destroyed by some assembler pseudoinstructions!) */
, rret_0 = R_V0 /* Function return value */ // , rret_0 = R_V0 /* Function return value */
, rret_1 = R_V1 /* Second return value (e.g., 64-bit) */ // , rret_1 = R_V1 /* Second return value (e.g., 64-bit) */
, rarg_0 = R_A0 /* First function argument */ // , rarg_0 = R_A0 /* First function argument */
, rarg_1 = R_A1 /* Second function argument */ // , rarg_1 = R_A1 /* Second function argument */
, rarg_2 = R_A2 /* Third function argument */ // , rarg_2 = R_A2 /* Third function argument */
, rarg_3 = R_A3 /* Fourth function argument */ // , rarg_3 = R_A3 /* Fourth function argument */
, rtmp_0 = R_T0 /* Temporary (Caller saved) */ // , rtmp_0 = R_T0 /* Temporary (Caller saved) */
, rtmp_1 = R_T1 /* Temporary (Caller saved) */ // , rtmp_1 = R_T1 /* Temporary (Caller saved) */
, rtmp_2 = R_T2 /* Temporary (Caller saved) */ // , rtmp_2 = R_T2 /* Temporary (Caller saved) */
, rtmp_3 = R_T3 /* Temporary (Caller saved) */ // , rtmp_3 = R_T3 /* Temporary (Caller saved) */
, rtmp_4 = R_T4 /* Temporary (Caller saved) — common GTE base pointer */ // , rtmp_4 = R_T4 /* Temporary (Caller saved) — common GTE base pointer */
, rtmp_9 = R_T9 /* Temporary (Caller saved) — common GTE base pointer */ // , rtmp_9 = R_T9 /* Temporary (Caller saved) — common GTE base pointer */
, rstatic_0 = R_S0 /* Static (Callee saved, preserved across calls) */ // , rstatic_0 = R_S0 /* Static (Callee saved, preserved across calls) */
, rstatic_1 = R_S1 // , rstatic_1 = R_S1
, rstatic_2 = R_S2 // , rstatic_2 = R_S2
, rstatic_3 = R_S3 // , rstatic_3 = R_S3
, rstatic_4 = R_S4 // , rstatic_4 = R_S4
, rstatic_5 = R_S5 // , rstatic_5 = R_S5
, rstatic_6 = R_S6 // , rstatic_6 = R_S6
, rstatic_7 = R_S7 // , rstatic_7 = R_S7
, rsaved_0 = R_S0 /* Alias for rstatic_0 (alternate vocabulary) */ // , rsaved_0 = R_S0 /* Alias for rstatic_0 (alternate vocabulary) */
, rstack_ptr = R_SP /* Stack Pointer */ // , rstack_ptr = R_SP /* Stack Pointer */
, rret_addr = R_RA /* Return Address (populated by JAL) */ // , rret_addr = R_RA /* Return Address (populated by JAL) */
/* --- MIPS CPU Opcodes (Bits 31-26) --- */ /* --- MIPS CPU Opcodes (Bits 31-26) --- */
@@ -259,22 +259,22 @@ enum { _BitOffsets = 0
, SHAMT_SHIFT = 6 /* Shift Amount */ , SHAMT_SHIFT = 6 /* Shift Amount */
, FC_SHIFT = 0 , FC_SHIFT = 0
/* Bit Masks to prevent overflow into adjacent fields */ /* IMM_MASK is the 16-bit two's-complement truncation for the immediate field.
* It is NOT a range guard — it is load-bearing for negative branch offsets
* (the metaprogram emits raw signed offsets; the mask truncates them to the
* 16-bit representation the hardware expects). The static analysis
* `immediate_field_width` check validates ranges at build time. */
, OPCODE_MASK = 0x3F
, REG_MASK = 0x1F
, SHAMT_MASK = 0x1F /* Shift Amount */
, FC_MASK = 0x3F
, IMM_MASK = 0xFFFF , IMM_MASK = 0xFFFF
}; };
#define enc_op(op) (((op) & OPCODE_MASK) << OPCODE_SHIFT) #define enc_op(op) ((op) << OPCODE_SHIFT)
#define enc_rs(rs) (((rs) & REG_MASK) << RS_SHIFT) #define enc_rs(rs) ((rs) << RS_SHIFT)
#define enc_rt(rt) (((rt) & REG_MASK) << RT_SHIFT) #define enc_rt(rt) ((rt) << RT_SHIFT)
#define enc_rd(rd) (((rd) & REG_MASK) << RD_SHIFT) #define enc_rd(rd) ((rd) << RD_SHIFT)
#define enc_shamt(shamt) (((shamt) & SHAMT_MASK) << SHAMT_SHIFT) #define enc_shamt(shamt) ((shamt) << SHAMT_SHIFT)
#define enc_fc(fc) (((fc) & FC_MASK) << FC_SHIFT) #define enc_fc(fc) ((fc) << FC_SHIFT)
#define enc_imm(imm) (((imm) & IMM_MASK)) #define enc_imm(imm) ((imm) & IMM_MASK)
/* MIPS R-Type Instruction Format (Register-to-Register) */ /* MIPS R-Type Instruction Format (Register-to-Register) */
#define enc_r(op, rs, rt, rd, shamt, fc) (enc_op(op) | enc_rs(rs) | enc_rt(rt) | enc_rd(rd) | enc_shamt(shamt) | enc_fc(fc)) #define enc_r(op, rs, rt, rd, shamt, fc) (enc_op(op) | enc_rs(rs) | enc_rt(rt) | enc_rd(rd) | enc_shamt(shamt) | enc_fc(fc))
@@ -318,7 +318,10 @@ enum { _BitOffsets = 0
#define load_half(rt, base, off) enc_i(op_lh, (base), (rt), (off)) #define load_half(rt, base, off) enc_i(op_lh, (base), (rt), (off))
#define load_byte_u(rt, base, off) enc_i(op_lbu, (base), (rt), (off)) #define load_byte_u(rt, base, off) enc_i(op_lbu, (base), (rt), (off))
#define load_half_u(rt, base, off) enc_i(op_lhu, (base), (rt), (off)) #define load_half_u(rt, base, off) enc_i(op_lhu, (base), (rt), (off))
#define LdSlot_
#define store_word(rt, base, off) enc_i(op_sw, (base), (rt), (off)) #define store_word(rt, base, off) enc_i(op_sw, (base), (rt), (off))
#define add_ui(rt, rs, imm) enc_i(op_addiu, (rs), (rt), (imm)) #define add_ui(rt, rs, imm) enc_i(op_addiu, (rs), (rt), (imm))
#define and_i(rt, rs, imm) enc_i(op_andi, (rs), (rt), (imm)) #define and_i(rt, rs, imm) enc_i(op_andi, (rs), (rt), (imm))
// #define and_si and_i // #define and_si and_i
@@ -348,6 +351,12 @@ enum { _BitOffsets = 0
#define shift_lright(rd, rt, shamt) enc_r(op_special, R_0, (rt), (rd), (shamt), fc_srl) #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) #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 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) #define mask_upper(rd, rt, shamt) shift_lleft(rd, rt, shamt), shift_lright(rd, rt, shamt)
@@ -366,20 +375,21 @@ enum { _BitOffsets = 0
* WARNING: `jump(off)` CANNOT BE USED for within-atom jumps in the current pipeline. * 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 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. * 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 * `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 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. * - 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)) #define jump(off) enc_i(op_j, R_0, R_0, (off))
// Annotate an instruction as filling a branch-delay slot.
#define BdSlot_
/* jump_rel off — unconditional relative jump (the within-atom-safe `jump`). /* 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)) #define jump_rel(off) branch_equal(R_0, R_0, (off))
/* call_addr off — jump-and-link to immediate address. /* 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. * 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. * 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. * 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 +407,7 @@ enum { _BitOffsets = 0
* sub_s / sub_u → sub / subu * sub_s / sub_u → sub / subu
* mult_s / mult_u → mult / multu (writes HI/LO; result in LO) * mult_s / mult_u → mult / multu (writes HI/LO; result in LO)
* div_s / div_u → div / divu (LO = quot, HI = rem) * div_s / div_u → div / divu (LO = quot, HI = rem)
* */
* NOTE: dsl.h defines `add_s`/`sub_s`/`mut_s`/`gt_s`/etc. as _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_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 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) #define sub_s(rd, rs, rt) enc_r(op_special, (rs), (rt), (rd), 0, fc_sub)
@@ -413,6 +417,7 @@ enum { _BitOffsets = 0
#define div_s(rd, rs, rt) enc_r(op_special, (rs), (rt), (rd), 0, fc_div) #define div_s(rd, rs, rt) enc_r(op_special, (rs), (rt), (rd), 0, fc_div)
#define div_u(rd, rs, rt) enc_r(op_special, (rs), (rt), (rd), 0, fc_divu) #define div_u(rd, rs, rt) enc_r(op_special, (rs), (rt), (rd), 0, fc_divu)
// TODO(Ed): Change convention of 'self' to ds for (destination is source)?
#define add_u_self(rd_rs, rt) add_u(rd_rs, rd_rs, rt) #define add_u_self(rd_rs, rt) add_u(rd_rs, rd_rs, rt)
/* --- Arithmetic I-type (immediate) --- */ /* --- Arithmetic I-type (immediate) --- */
@@ -455,9 +460,13 @@ enum { _BitOffsets = 0
#define shift_amount(rd, rt, n) shift_lleft(rd, rt, n) #define shift_amount(rd, rt, n) shift_lleft(rd, rt, n)
/* nop — sll $0, $0, 0 */ /* nop — sll $0, $0, 0 */
#define nop shift_lleft(rdiscard, rdiscard, 0) #define nop shift_lleft(R_0, R_0, 0)
#define nop2 nop, nop #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_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(rt, imm) add_ui((rt), R_0, (imm))
#define load_imm_1w_s0(rt, imm) add_si((rt)), R_0, (imm)) #define load_imm_1w_s0(rt, imm) add_si((rt)), R_0, (imm))
+17 -15
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@@ -11,18 +11,19 @@ ATOM_FILE_DEBUGGER_LINE_MARKER(pad_atom_c);
#pragma region MACs (Mips Atom Components) #pragma region MACs (Mips Atom Components)
FI_ Slice_MipsCode ac_pad_set_centered_axes(U4 r_state, U4 r_scratch) atom_dbg_skip MipsAtomComp_Proc_(ac_pad_set_centered_axes, { FI_ Slice_MipsCode ac_pad_set_centered_axes(AtomBuilder_R ab, Reg state, Reg scratch) atom_dbg_skip MipsAtomComp_Proc_(ab, {
load_upper_i(r_scratch, (PadAxis_Centered_Word >> 16) & 0xFFFF), load_upper_i(scratch, (PadAxis_Centered >> 16) & 0xFFFF),
or_i_self( r_scratch, PadAxis_Centered_Word & 0xFFFF), or_i_self( scratch, PadAxis_Centered & 0xFFFF),
store_word( r_scratch, r_state, O_(PadState,axes)), // mac_load_word_imm(scratch, PadAxis_Centered),
store_word( scratch, state, O_(PadState,axes)),
}) })
FI_ Slice_MipsCode ac_pad_set_id_byte(U1 r_state, U1 r_id, U1 id_value) atom_dbg_skip MipsAtomComp_Proc_(ac_pad_set_id_byte, { FI_ Slice_MipsCode ac_pad_set_id_byte(AtomBuilder_R ab, Reg state, Reg r_id, U1 id_value) atom_dbg_skip MipsAtomComp_Proc_(ab, {
add_ui( r_id, R_0, id_value), add_ui( r_id, R_0, id_value),
store_byte(r_id, r_state, O_(PadState,id)), store_byte(r_id, state, O_(PadState,id)),
}) })
FI_ Slice_MipsCode ac_pad_set_status(U4 r_tmp, U1 r_state, U4 pad_status) atom_dbg_skip MipsAtomComp_Proc_(ac_pad_set_status, { FI_ Slice_MipsCode ac_pad_set_status(AtomBuilder_R ab, U4 r_tmp, U1 r_state, U4 pad_status) atom_dbg_skip MipsAtomComp_Proc_(ab, {
add_ui( r_tmp, R_0, pad_status), add_ui( r_tmp, R_0, pad_status),
store_word(r_tmp, r_state, O_(PadState,status)), store_word(r_tmp, r_state, O_(PadState,status)),
}) })
@@ -30,7 +31,7 @@ FI_ Slice_MipsCode ac_pad_set_status(U4 r_tmp, U1 r_state, U4 pad_status) atom_d
/* Invert r_buttons (active-low → active-high) and store to PadState.buttons. /* 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 * 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). */ * the preceding load_half_u with an instruction that doesn't read r_buttons). */
FI_ Slice_MipsCode ac_pad_store_inverted_buttons(U1 r_buttons, U1 r_pad_state) atom_dbg_skip MipsAtomComp_Proc_(ac_pad_store_inverted_buttons, { FI_ Slice_MipsCode ac_pad_store_inverted_buttons(AtomBuilder_R ab, U1 r_buttons, U1 r_pad_state) atom_dbg_skip MipsAtomComp_Proc_(ab, {
nor_u( r_buttons, r_buttons, R_0), nor_u( r_buttons, r_buttons, R_0),
store_half( r_buttons, r_pad_state, O_(PadState,buttons)), store_half( r_buttons, r_pad_state, O_(PadState,buttons)),
}) })
@@ -54,12 +55,12 @@ FI_ Slice_MipsCode ac_pad_store_inverted_buttons(U1 r_buttons, U1 r_pad_state) a
* byte_swap16(x) = (x >> 8) | (x << 8); nor(x, R_0) = ~x. store_half truncates to 16 bits so the upper-16 mask is implicit in the store. * byte_swap16(x) = (x >> 8) | (x << 8); nor(x, R_0) = ~x. store_half truncates to 16 bits so the upper-16 mask is implicit in the store.
* *
* Register use (atom-local; no wave-context touched): * Register use (atom-local; no wave-context touched):
* R_T0 = raw base (kept throughout; axes loads read raw[4..7] from R_T0) * R_T0 = raw base : Kept throughout; axes loads read raw[4..7] from R_T0.
* R_T1 = state base (kept throughout; all stores go through R_T1) * R_T1 = state base : Kept throughout; all stores go through R_T1.
* R_T2 = raw[0] status (alive across the disc/pending/id dispatch, then dead) * R_T2 = raw[0] status : Alive across the disc/pending/id dispatch, then dead.
* R_T3 = raw[1] id (alive across the id dispatch, then dead) * R_T3 = raw[1] id : Alive across the id dispatch, then dead.
* R_T4 = scratch (shifts, compares, immediate loads, store values) * R_T4 = scratch : Shifts, compares, immediate loads, store values.
* R_T5 = scratch (parallel lui+ori for the 0x80808080 axes constant + byte-swap target) * R_T5 = scratch : Parallel lui + ori for the 0x80808080 axes constant + byte-swap target.
*/ */
enum { enum {
R_PadRaw = R_T0 atom_reg atom_type(U1), R_PadRaw = R_T0 atom_reg atom_type(U1),
@@ -124,7 +125,8 @@ atom_label(id_dispatch) /* === Case 3-6: ID dispatch */
* R_T5 is then "dead" — only consumed at the analog_pad range check downstream. */ * R_T5 is then "dead" — only consumed at the analog_pad range check downstream. */
mac_pad_set_status(R_T4, R_PadState, PadStatus_Digital), 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_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_load_word_imm(R_T5, PadAxis_Centered), /* fills the buttons-load's delay slot (doesn't read R_T4) */
// load_upper_i(R_T5, PadAxis_Centered_Hi), or_i_self(R_T5, PadAxis_Centered_Lo),
mac_pad_store_inverted_buttons(R_T4, R_PadState), /* R_T4 settled: nor + sh writes ~raw_buttons to state.buttons */ 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) */ 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), mac_pad_set_id_byte(R_PadState, R_T4, PadRawId_Digital),
+9 -9
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@@ -36,12 +36,12 @@ NI_ void pad_bios_init_start(PadBiosRaw* raw0, PadBiosRaw* raw1)
* $t2 = 0xB0 (BIOS B-table address) */ * $t2 = 0xB0 (BIOS B-table address) */
asm volatile( asm volatile(
asm_words( asm_words(
or_u( rarg_2, rarg_1, rdiscard), /* $a2 = $a1 = raw1 */ or_u( R_A2, R_A1, R_0), /* $a2 = $a1 = raw1 */
add_ui( rarg_1, rdiscard, bios_pad_buffer_size), /* $a1 = 0x22 */ add_ui( R_A1, R_0, bios_pad_buffer_size), /* $a1 = 0x22 */
add_ui( rarg_3, rdiscard, bios_pad_buffer_size), /* $a3 = 0x22 */ add_ui( R_A3, R_0, bios_pad_buffer_size), /* $a3 = 0x22 */
add_ui( rtmp_1, rdiscard, bios_init_pad_2), /* $t1 = 0x12 */ add_ui( R_T1, R_0, bios_init_pad_2), /* $t1 = 0x12 */
add_ui( rtmp_2, rdiscard, bios_btable_addr), /* $t2 = 0xB0 */ add_ui( R_T2, R_0, bios_btable_addr), /* $t2 = 0xB0 */
call_reg(rtmp_2), /* jalr $t2, $ra */ call_reg(R_T2), /* jalr $t2, $ra */
nop /* BD slot */ nop /* BD slot */
) )
asm_rpins, r_use(p0), r_use(p1) asm_rpins, r_use(p0), r_use(p1)
@@ -62,9 +62,9 @@ NI_ void pad_bios_init_start(PadBiosRaw* raw0, PadBiosRaw* raw1)
/* B(13h) StartPAD2() — no args. The BIOS preserves $sp. */ /* B(13h) StartPAD2() — no args. The BIOS preserves $sp. */
asm volatile( asm volatile(
asm_words( asm_words(
add_ui( rtmp_1, rdiscard, bios_start_pad_2), /* $t1 = 0x13 */ add_ui( R_T1, R_0, bios_start_pad_2), /* $t1 = 0x13 */
add_ui( rtmp_2, rdiscard, bios_btable_addr), /* $t2 = 0xB0 (re-load) */ add_ui( R_T2, R_0, bios_btable_addr), /* $t2 = 0xB0 (re-load) */
call_reg(rtmp_2), /* jalr $t2, $ra */ call_reg(R_T2), /* jalr $t2, $ra */
nop /* BD slot */ nop /* BD slot */
) )
asm_clobber: asm_clobber:
+2 -1
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@@ -1,6 +1,7 @@
#ifdef INTELLISENSE_DIRECTIVES #ifdef INTELLISENSE_DIRECTIVES
# pragma once # pragma once
# include "dsl.h" # include "dsl.h"
# include "math.h"
#endif #endif
/* PSX button bit positions — 1:1 with PSX-SPX docs at docs/psx-spx/docs/controllersandmemorycards.md:405-421. /* PSX button bit positions — 1:1 with PSX-SPX docs at docs/psx-spx/docs/controllersandmemorycards.md:405-421.
@@ -82,7 +83,7 @@ typedef Enum_(U1, PadUnknownId) {
typedef Enum_(U4, PadAxisCentered) { typedef Enum_(U4, PadAxisCentered) {
PadAxis_Centered_Hi = 0x8080, PadAxis_Centered_Hi = 0x8080,
PadAxis_Centered_Lo = 0x8080, PadAxis_Centered_Lo = 0x8080,
PadAxis_Centered_Word = 0x80808080U, PadAxis_Centered = 0x80808080U,
}; };
typedef Enum_(U1, PadDeadZone) { typedef Enum_(U1, PadDeadZone) {
PadDeadZone_LowBound = 0x70, /* left_x < LowBound → active; delta = 0x80 - left_x > 0 (rightward pull) */ PadDeadZone_LowBound = 0x70, /* left_x < LowBound → active; delta = 0x80 - left_x > 0 (rightward pull) */
+7 -1
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@@ -103,13 +103,19 @@ void gte_matrix_set_rotation (MT3_S2S4* mat) asm("SetRotMatrix");
void gte_matrix_set_translation(MT3_S2S4* mat) asm("SetTransMatrix"); void gte_matrix_set_translation(MT3_S2S4* mat) asm("SetTransMatrix");
// Einheit, Metrication to unit vector. "Normalization", not Orthogonal "Normal, Normalis". Directionalization. // 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"); 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"); 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* 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"); MT3_S2S4* gte_comp_coord_m3s2(MT3_S2S4* m0, MT3_S2S4* m1, MT3_S2S4* result) asm("CompMatrixLV");
// TODO(Ed): Want to interpret this under the lens of Eric Lengyel's geometric algebra // 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"); void cross_v3s4(V3_S4* v0, V3_S4* v1, V3_S4* result) asm("OuterProduct12");
+11
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@@ -15,6 +15,8 @@
#define WORD_COUNT(name, count) enum { words_##name = (count) }; #define WORD_COUNT(name, count) enum { words_##name = (count) };
WORD_COUNT(nop, 1) WORD_COUNT(nop, 1)
WORD_COUNT(atom_label, 0)
WORD_COUNT(atom_offset, 0)
WORD_COUNT(load_upper_i, 1) WORD_COUNT(load_upper_i, 1)
WORD_COUNT(jump_reg, 1) WORD_COUNT(jump_reg, 1)
WORD_COUNT(jump_link, 1) WORD_COUNT(jump_link, 1)
@@ -54,6 +56,15 @@ WORD_COUNT(gte_sw, 1)
WORD_COUNT(gte_cmdw_rtpt, 1) WORD_COUNT(gte_cmdw_rtpt, 1)
WORD_COUNT(gte_cmdw_nclip, 1) WORD_COUNT(gte_cmdw_nclip, 1)
WORD_COUNT(gte_avg_sort_z3, 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(sub_u, 1)
WORD_COUNT(nop2, 2) WORD_COUNT(nop2, 2)
+13
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@@ -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
+1 -1
View File
@@ -26,7 +26,7 @@ enum {
atom_offset_end_low_exit_stick = _atom_offset_end_low_exit_stick, atom_offset_end_low_exit_stick = _atom_offset_end_low_exit_stick,
}; };
// --- atom: pad_input_cam (41 words) --- // --- atom: pad_input_cam (40 words) ---
#define _atom_offset_left_x_exit_left_x 3 #define _atom_offset_left_x_exit_left_x 3
#define _atom_offset_right_x_exit_right_x 3 #define _atom_offset_right_x_exit_right_x 3
+507 -80
View File
@@ -17,6 +17,7 @@
# include "duffle/psyq.atom.c" # include "duffle/psyq.atom.c"
# include "gen/offsets.h" # include "gen/offsets.h"
# include "gen/macs.h" # include "gen/macs.h"
# include "gen/auto_reg.h"
# include "hello_camera.h" # include "hello_camera.h"
#endif #endif
@@ -24,8 +25,8 @@ ATOM_FILE_DEBUGGER_LINE_MARKER(hello_joypad_atom_c);
#pragma region MACs (Mips Atom components) #pragma region MACs (Mips Atom components)
FI_ Slice_MipsCode ac_put_disp_env(U4 reg_transfer, U4 reg_base, U2 port) FI_ Slice_MipsCode ac_put_disp_env(AtomBuilder_R ab, U4 reg_transfer, U4 reg_base, U2 port)
MipsAtomComp_Proc_(ac_put_disp_env, { MipsAtomComp_Proc_(ab, {
// Emits 5 GP0 commands for buffer 0 (display_area = (0,0,320,240)). // 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 // Sequence per libpsyx PutDispEnv: DrawArea TL → DrawArea BR → Mask → DrawArea TL → DrawArea BR
mac_gcmd_push(gp0_word_draw_area_top_left_origin, reg_transfer, reg_base, port), mac_gcmd_push(gp0_word_draw_area_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), 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) I_ Slice_MipsCode ac_put_draw_env(AtomBuilder_R ab, U4 reg_transfer, U4 reg_base, U2 port)
MipsAtomComp_Proc_(ac_put_draw_env, { MipsAtomComp_Proc_(ab, {
/* /*
* ORIGIN: each code word corresponds to the EXACT value libpsyx's PutDrawEnv function would compute for the same DrawEnv settings. * ORIGIN: each code word corresponds to the EXACT value libpsyx's PutDrawEnv function would compute for the same DrawEnv settings.
* References: * References:
@@ -90,6 +91,445 @@ MipsAtomComp_Proc_(ac_put_draw_env, {
#pragma endregion MACs #pragma endregion MACs
#pragma region Atom Procs
// Modular Atoms
enum {
// TODO(Ed): We can resolve scratch at anytime its fixed to a specific address.
R_ResolveScratch = R_T4 atom_reg atom_type(U4*),
#define R_ResolveScratch_Code R_T4_Code
};
typedef Struct_(Binds_ResolveLookAt) {
MT3_S2S4* look_at;
P3_S4* eye;
P3_S4* target;
V3_S4* up_in;
};
/* ─── ResolveLookAtScratch — offset schema for the resolve_look_at bundle's */
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 ──────────────────────────── */
typedef Struct_(Binds_ResolveLookAtSub) {
P3_S4* target; /* U4 (C-side P3_S4* — read by atom 0 directly; NOT a scratchpad address) */
P3_S4* eye; /* U4 (C-side P3_S4* — read by atom 0 directly; staged into scratchpad by atom 0) */
V3_S4* up_in; /* U4 (C-side V3_S4* — read by atom 0 directly; staged into scratchpad by atom 0) */
ResolveLookAtScratch* scratchpad;
};
/* Atom 0 in the bundle: input_and_sub. Stages C-side inputs into the scratchpad and computes fwd = target - eye.
* Staging work:
* * Stage eye.x/y/z → scratch (for atom 6's translation column)
* * Stage up_in.x/y/z → scratch (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.
*/
internal MipsAtom* resolve_look_at__input_and_sub_proc(AtomArena_R aa,
// TODO(Ed): We can resolve scratch at anytime its fixed to a specific address.
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_(aa, {
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)),
load_word(r_scratch, R_TapePtr, O_(Binds_ResolveLookAtSub,scratchpad)),
add_ui_self( R_TapePtr, S_(Binds_ResolveLookAtSub)),
// Stage eye.x/y/z into the scratchpad (atom 6 reads these for the translation column).
mac_load_p3s4( r_tmp0, r_tmp1, r_tmp2, r_eye_ptr, 0),
mac_store_p3s4(r_tmp0, r_tmp1, r_tmp2, r_scratch, O_(ResolveLookAtScratch,eye)),
/* Stage up_in.x/y/z into the scratchpad. */
mac_load_p3s4( r_tmp0, r_tmp1, r_tmp2, r_up_in_ptr, 0),
mac_store_p3s4(r_tmp0, r_tmp1, r_tmp2, r_scratch, O_(ResolveLookAtScratch,up_in)),
/* Compute fwd = target - eye. */
mac_load_p3s4(r_tmp0, r_tmp1, r_tmp2, r_target_ptr, 0),
mac_load_p3s4(r_tmp3, R_AT, R_V0, r_eye_ptr, 0),
mac_sub_v3s4(
r_tmp0, r_tmp1, r_tmp2,
r_tmp3, R_AT, R_V0),
mac_store_v3s4(r_tmp0, r_tmp1, r_tmp2, r_scratch, O_(ResolveLookAtScratch,fwd)),
mac_yield()
})
/* Atom 2: cross uz × up_in → right. */
internal MipsAtom* resolve_look_at__cross_uz_up_in_to_right_proc(AtomArena_R aa, 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_(aa, {
/* FIX: build packed RT22+RT33 with proper sign extension. */
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 (R_AT/R_V0 are hardcoded scratch). */
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,
/* Save the two RT control-register slots OP will clobber. We reuse
* r_g/r_h (scratch pointers, no longer needed) as the save targets. */
gte_mv_from_ctrl_r(r_g, gte_cr_RT11), /* r_g = C2 r0 (RT11|RT12) */
gte_mv_from_ctrl_r(r_h, gte_cr_RT22), /* r_h = C2 r4 (RT22|RT33) */
/* Load uz.x/uz.y/uz.z into COP2 control registers.
* OP reads D1 = RT11 from $0.low, D2 = RT22 from $2.high, D3 = RT33 from $4.high.
* RT22 is in BOTH $2.high AND $4.low (shared bit position). OP reads from $2.high.
* So set RT22 via ctc2 r_b, $2 (sets $2.high = a.y.high = RT22, $2.low = a.y.low = RT13).
* Then set RT33 via ctc2 r_c, $4 (sets $4.high = a.z.high = RT33, $4.low = a.z.low).
* The $2 and $4 writes don't clobber each other (separate registers).
* The 2nd ctc2 DOES clobber $4.low (becomes a.z.low, NOT a.y.high), but since OP
* reads RT22 from $2.high (which the 2nd ctc2 doesn't touch), D2 is still a.y.high.
* This is libpsyx's OuterProduct12 convention EXACTLY. */
gte_mv_to_ctrl_r(r_b, gte_cr_RT13), /* $2 = r_b = a.y. RT13=a.y.low, RT22=a.y.high. */
gte_mv_to_ctrl_r(r_c, gte_cr_RT22), /* $4 = r_c = a.z. RT22=a.z.low, RT33=a.z.high. */
/* Load uz into the RT diagonal. */
gte_mv_to_ctrl_r(r_a, gte_cr_RT11), /* D1 = RT11 = uz.x (low 16 of $0, sign-extended by OP). */
nop2, /* CTC2 retirement (CPU→COP2 2-slot delay) */
/* Load up_in into IR (the second operand for OP). */
gte_mv_to_data_r(r_d, C2_IR1), /* IR1 = up_in.x */
gte_mv_to_data_r(R_AT, C2_IR2), /* IR2 = up_in.y */
gte_mv_to_data_r(R_V0, C2_IR3), /* IR3 = up_in.z */
nop2, /* MTC2 retirement (CPU→COP2 2-slot delay) */
gte_cmdw_outer_product, /* OP: MAC1/2/3 = uz × up_in
* MAC1 = IR3*D2 - IR2*D3 = up_in.z*uz.y.high - up_in.y*uz.z.high
* MAC2 = IR1*D3 - IR3*D1 = up_in.x*uz.z.high - up_in.z*uz.x
* MAC3 = IR2*D1 - IR1*D2 = up_in.y*uz.x - up_in.x*uz.y.high
* For up_in = (0, -fp_one, 0):
* MAC1 = 0 - (-fp_one)*uz.z.high = fp_one*uz.z.high
* MAC2 = 0 - 0 = 0
* MAC3 = (-fp_one)*uz.x - 0 = -fp_one*uz.x */
/* Restore the RT slots we clobbered. */
gte_mv_to_ctrl_r(r_g, gte_cr_RT11), /* restore C2 r0 (RT11|RT12) */
gte_mv_to_ctrl_r(r_h, gte_cr_RT22), /* restore C2 r4 (RT22|RT33) */
/* 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 */
/* Right-shift MAC by 12 to convert from GTE's S12.20 fixed-point scale back to libpsyx OuterProduct12 convention (S12.0, fp_one=4096=1<<12).
* Without this, MAC values (~16M for unit-vector cross products) overflow the GTE's 16-bit IR registers when atom 3 normalizes via mtc2. */
shift_aright(r_a, r_a, 12),
shift_aright(r_b, r_b, 12),
shift_aright(r_c, r_c, 12),
/* 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. */
internal MipsAtom* resolve_look_at__cross_uz_ux_to_up_proc(AtomArena_R aa, 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_(aa, {
/* 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,
/* OP reads D1/D2/D3 from RT11/RT22/RT33 ($0/$2/$4), not V0/V1/V2.
* Mirror atom 1: cfc2 RT save, ctc2 RT diagonal from uz, mtc2 IR from ux,
* ctc2 RT restore. */
/* Save the two RT control-register slots OP will clobber (reusing
* r_g/r_h — they're no longer needed as scratch pointers). */
gte_mv_from_ctrl_r(r_g, gte_cr_RT11), /* r_g = C2 $0 (RT11|RT12) */
gte_mv_from_ctrl_r(r_h, gte_cr_RT22), /* r_h = C2 $4 (RT22|RT33) */
/* Load uz into the RT diagonal — same packing as atom 1.
* OP reads D1 = RT11 from $0.low, D2 = RT22 from $2.high, D3 = RT33 from $4.high.
* RT22 is shared between $2.high and $4.low — the ctc2 sequence to $2 then $4
* sets RT22 to uz.y.high (via $2), then to uz.z.low (via $4). OP reads
* RT22 from $2.high which the second ctc2 doesn't touch, so D2 stays uz.y.high.
* (This is libpsyx OuterProduct12 convention EXACTLY.) */
gte_mv_to_ctrl_r(r_b, gte_cr_RT13), /* $2 = uz.y. RT13=uz.y.low, RT22=uz.y.high. */
gte_mv_to_ctrl_r(r_c, gte_cr_RT22), /* $4 = uz.z. RT22=uz.z.low, RT33=uz.z.high. */
gte_mv_to_ctrl_r(r_a, gte_cr_RT11), /* $0 = uz.x. RT11=uz.x. */
nop2, /* CTC2 retirement (CPU→COP2 2-slot delay) */
/* Load ux into the IR registers (the second operand for OP). */
gte_mv_to_data_r(r_d, C2_IR1), /* IR1 = ux.x */
gte_mv_to_data_r(R_AT, C2_IR2), /* IR2 = ux.y */
gte_mv_to_data_r(R_V0, C2_IR3), /* IR3 = ux.z */
nop2, /* MTC2 retirement (CPU→COP2 2-slot delay) */
gte_cmdw_outer_product,
/* Restore the RT slots we clobbered. */
gte_mv_to_ctrl_r(r_g, gte_cr_RT11), /* restore C2 $0 (RT11|RT12) */
gte_mv_to_ctrl_r(r_h, gte_cr_RT22), /* restore C2 $4 (RT22|RT33) */
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,
/* Right-shift MAC by 12 to convert from GTE's S12.20 scale back to libpsyx
* OuterProduct12 convention (S12.0, fp_one=4096). See atom 1 for rationale. */
shift_aright(r_a, r_a, 12),
shift_aright(r_b, r_b, 12),
shift_aright(r_c, r_c, 12),
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.
*/
internal MipsAtom* resolve_look_at__populate_proc(AtomArena_R aa
, U4 r_look_at
, U4 r_scratch
, U4 r_pux, U4 r_puy, U4 r_puz
, U4 r_tmp0, U4 r_tmp1, U4 r_tmp2
) MipsAtom_Proc_(aa, {
/* 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 3 scratch pointers in their dedicated GPRs (eye isn't needed by 6a — 6b reads it). */
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 */
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])),
/* Zero t[0..2] — atom 6c writes the final values here. */
store_word(R_0, r_look_at, O_(MT3_S2S4,t[0])),
store_word(R_0, r_look_at, O_(MT3_S2S4,t[1])),
store_word(R_0, r_look_at, O_(MT3_S2S4,t[2])),
mac_yield()
})
/* Atom 6b in the bundle: matrix-vector product off = R * (-eye) >> 12.
* Uses RTPS with V0 loaded from scratch via lwc2. The RT matrix is
* pre-loaded by atom 6a.5 (resolve_look_at__load_rt).
* Stores off to scratch+96 (overwriting the packed pos).
*
* GPR codes (assigned by resolve_look_at_init):
* r_scratch : R_ResolveScratch (R_T4) — scratch base
* r_peye : pointer to eye (slot +96, reused as off destination)
* r_tmp0/1/2: -eye + GTE transfer scratch
*
* Pool cost: r_scratch (carrier) + 1 ptr reg + 3 tmp regs = 5 GPRs.
*/
internal MipsAtom* resolve_look_at__matrix_vector_proc(AtomArena_R aa
, U4 r_scratch
, U4 r_peye
, U4 r_look_at
, U4 r_tmp0, U4 r_tmp1, U4 r_tmp2
) MipsAtom_Proc_(aa, {
/* === EXACT C11 ApplyMatrixLV replication ===
* The C11 does:
* 1. ctc2 RT matrix (5 ctc2s to C2[0..4])
* 2. lw v.x/y/z from memory
* 3. S15 decomposition (negu + sra 15 + negu + andi 0x7FFF + negu)
* 4. mtc2 HIGH bits to IR1/2/3, nop, MVMVA pass1 (sf=0, mx=0, v=3, cv=3)
* 5. mfc2 MACs
* 6. mtc2 LOW bits to IR1/2/3, nop, MVMVA pass2 (sf=1, mx=0, v=3, cv=3)
* 7. mfc2 MACs
* 8. Combine: (pass1 << 3) + pass2
*
* For S16-fitting pos (|pos| < 32768), pos >> 15 = 0, so pass1 = 0.
* The combine simplifies: result = 0 + pass2 = pass2.
* So we skip the S15 decomposition and just do pass 2 directly.
* We still use v=3 (IR input) and mx=0 (RT matrix) like the C11. */
/* Pop look_at* from tape. */
load_word(r_look_at, R_TapePtr, O_(Binds_ResolveLookAtPopAndTrans,look_at)),
add_ui_self( R_TapePtr, S_(Binds_ResolveLookAtPopAndTrans)),
/* r_peye = &eye (slot +96, reused as off destination). */
add_si(r_peye, r_scratch, O_(ResolveLookAtScratch,eye)),
nop,
/* === Load RT matrix from look_at into C2[0..4] via ctc2 ===
* Exact s ame sequence as set_gte_mt3s2s4 / C11's ApplyMatrixLV. */
load_word( r_tmp0, r_look_at, 0), nop, gte_mv_to_ctrl_r(r_tmp0, gte_cr_RT11),
load_word( r_tmp0, r_look_at, 4), nop, gte_mv_to_ctrl_r(r_tmp0, gte_cr_RT12),
load_word( r_tmp0, r_look_at, 8), nop, gte_mv_to_ctrl_r(r_tmp0, gte_cr_RT13),
load_word( r_tmp0, r_look_at, 12), nop, gte_mv_to_ctrl_r(r_tmp0, gte_cr_RT21),
load_half_u(r_tmp0, r_look_at, 16), nop, gte_mv_to_ctrl_r(r_tmp0, gte_cr_RT22),
nop2, /* CTC2 retirement (2 slots × 5 ctc2s) */
/* Load pos = -eye after the matrix load releases r_tmp0. */
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 pos (as S16) to IR1/2/3 ===
* The GTE takes low 16 bits. pos fits in S16. For negative pos, the
* 32-bit sign-extended value's low 16 bits = correct S16. */
/* Mask pos to 16 bits to be safe. For S16-fitting pos, pos & 0xFFFF
* gives the correct S16 value (sign bit preserved). */
/* r_tmp0/1/2 already have pos values. */
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, /* MTC2 retirement (2 slots) */
/* === MVMVA pass 2 — C11 ApplyMatrixLV command ===
* sf=1, mx=0 (RT), v=3 (IR), cv=3. Reads RT × IR >> 12. */
gte_cmdw_mvmva_c11_pass2,
nop, /* GTE interlock */
/* === mfc2 MAC1/2/3 → r_tmp0/1/2 === */
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 off → scratch+96 (overwriting pos) === */
store_word(r_tmp0, r_peye, O_(V3_S4,x)),
store_word(r_tmp1, r_peye, O_(V3_S4,y)),
store_word(r_tmp2, r_peye, O_(V3_S4,z)),
mac_yield()
})
/* Atom 6c in the bundle: copy scratch+96 (off, written by atom 6b) → look_at->t[].
* Uses mac_trans_matrix component (m->t = v, libgte TransMatrix semantics = struct copy).
*
* GPR codes (assigned by resolve_look_at_init):
* r_look_at : MT3_S2S4* (popped from tape; output matrix destination)
* r_scratch : R_ResolveScratch (R_T4) — scratch base
* r_off_ptr : pointer to off (= &scratch.eye, reused slot)
* r_tmp0 : transfer reg for mac_trans_matrix
*
* Pool cost: r_look_at (1) + r_scratch (carrier) + r_off_ptr + 1 clobber = 4 GPRs.
*/
I_ MipsAtom* resolve_look_at__trans_matrix_proc(AtomArena_R aa
, U4 r_look_at, U4 r_scratch, U4 r_off_ptr
, U4 r_tmp0, U4 r_tmp1, U4 r_tmp2
) MipsAtom_Proc_(aa, {
/* Pop look_at* from tape. */
// load_word(r_Vlook_at, R_TapePtr, O_(Binds_ResolveLookAtPopAndTrans,look_at)),
// add_ui_self( R_TapePtr, S_(Binds_ResolveLookAtPopAndTrans)),
/* r_off_ptr = &off (= &scratch.eye since atom 6b overwrote eye with off). */
add_si(r_off_ptr, r_scratch, O_(ResolveLookAtScratch,eye)),
nop,
/* Copy off → look_at.t[] (mac_trans_matrix: m->t = v). */
mac_trans_mt3s3s4(r_look_at, r_off_ptr, r_tmp0, r_tmp1, r_tmp2),
mac_yield()
})
#pragma endregion Atom Procs
#pragma region Baked Atoms #pragma region Baked Atoms
enum { enum {
@@ -105,101 +545,101 @@ internal MipsAtom_(screen_env_init) atom_info(atom_phase(screen_init)
) { ) {
/* display[0] = (0, 0, 320, 240); rest of struct zeroed. */ /* display[0] = (0, 0, 320, 240); rest of struct zeroed. */
add_ui(R_ScreenX, R_0, ScreenRes_X), add_ui(R_ScreenY, R_0, ScreenRes_Y), add_ui(R_ScreenX, R_0, ScreenRes_X), add_ui(R_ScreenY, R_0, ScreenRes_Y),
mac_store_v2s2(R_ScreenX, R_ScreenY, R_ScreenBuf, O_(DisplayEnv,display_area.width) + OA_(DoubleBuffer,display,0)), mac_store_v2s2(R_ScreenX, R_ScreenY, R_ScreenBuf, O_(DisplayEnv,display_area.width) + O_(DoubleBuffer,display[0])),
store_word(R_0, R_ScreenBuf, O_(DisplayEnv,display_area) + OA_(DoubleBuffer,display,0)), store_word(R_0, R_ScreenBuf, O_(DisplayEnv,display_area) + O_(DoubleBuffer,display[0])),
store_word(R_0, R_ScreenBuf, O_(DisplayEnv,screen) + OA_(DoubleBuffer,display,0)), store_word(R_0, R_ScreenBuf, O_(DisplayEnv,screen) + O_(DoubleBuffer,display[0])),
store_word(R_0, R_ScreenBuf, O_(DisplayEnv,vinterlace) + OA_(DoubleBuffer,display,0)), store_word(R_0, R_ScreenBuf, O_(DisplayEnv,vinterlace) + O_(DoubleBuffer,display[0])),
/* display[1] = (0, 240, 320, 240); rest of struct zeroed. */ /* display[1] = (0, 240, 320, 240); rest of struct zeroed. */
mac_store_rects2(R_0, R_ScreenY, R_ScreenX, R_ScreenY, R_ScreenBuf, O_(DisplayEnv,display_area) + OA_(DoubleBuffer,display,1)), mac_store_rects2(R_0, R_ScreenY, R_ScreenX, R_ScreenY, R_ScreenBuf, O_(DisplayEnv,display_area) + O_(DoubleBuffer,display[1])),
store_word(R_0, R_ScreenBuf, O_(DisplayEnv,screen) + OA_(DoubleBuffer,display,1)), store_word(R_0, R_ScreenBuf, O_(DisplayEnv,screen) + O_(DoubleBuffer,display[1])),
store_word(R_0, R_ScreenBuf, O_(DisplayEnv,vinterlace) + OA_(DoubleBuffer,display,1)), store_word(R_0, R_ScreenBuf, O_(DisplayEnv,vinterlace) + O_(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_rects2(R_0, R_ScreenY, R_ScreenX, R_ScreenY, R_ScreenBuf, O_(DrawEnv,clip_area) + O_(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]) + O_(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)), mac_store_v2s2(R_ScreenX, R_ScreenY, R_ScreenBuf, O_(DrawEnv,clip_area.width) + O_(DoubleBuffer,draw[1])),
/* draw[0].texture_window = (0, 0, 0, 0); two word-zeroes cover the full 8-byte tw field. */ /* draw[0].texture_window = (0, 0, 0, 0); two word-zeroes cover the full 8-byte tw field. */
store_word(R_0, R_ScreenBuf, O_(DrawEnv,texture_window.x) + OA_(DoubleBuffer,draw,0)), store_word(R_0, R_ScreenBuf, O_(DrawEnv,texture_window.x) + O_(DoubleBuffer,draw[0])),
store_word(R_0, R_ScreenBuf, O_(DrawEnv,texture_window.width) + OA_(DoubleBuffer,draw,0)), store_word(R_0, R_ScreenBuf, O_(DrawEnv,texture_window.width) + O_(DoubleBuffer,draw[0])),
store_word(R_0, R_ScreenBuf, O_(DrawEnv,drawing_offset[0].x) + OA_(DoubleBuffer,draw,1)), store_word(R_0, R_ScreenBuf, O_(DrawEnv,drawing_offset[0].x) + O_(DoubleBuffer,draw[1])),
store_word(R_0, R_ScreenBuf, O_(DrawEnv,texture_window.x) + OA_(DoubleBuffer,draw,1)), store_word(R_0, R_ScreenBuf, O_(DrawEnv,texture_window.x) + O_(DoubleBuffer,draw[1])),
store_word(R_0, R_ScreenBuf, O_(DrawEnv,texture_window.width) + OA_(DoubleBuffer,draw,1)), store_word(R_0, R_ScreenBuf, O_(DrawEnv,texture_window.width) + O_(DoubleBuffer,draw[1])),
/* draw[0].texture_page = 10 (gp0_tpage_default). C11 SetDefDrawEnv at C11_only.elf:0x8001273C writes the same 0x0A. . */ /* draw[0].texture_page = 10 (gp0_tpage_default). C11 SetDefDrawEnv at C11_only.elf:0x8001273C writes the same 0x0A. . */
add_ui(R_T0, R_0, gp0_tpage_default), add_ui(R_T0, R_0, gp0_tpage_default),
store_half(R_T0, R_ScreenBuf, O_(DrawEnv,texture_page) + OA_(DoubleBuffer,draw,0)), store_half(R_T0, R_ScreenBuf, O_(DrawEnv,texture_page) + O_(DoubleBuffer,draw[0])),
store_half(R_T0, R_ScreenBuf, O_(DrawEnv,texture_page) + OA_(DoubleBuffer,draw,1)), store_half(R_T0, R_ScreenBuf, O_(DrawEnv,texture_page) + O_(DoubleBuffer,draw[1])),
/* draw[0] control bytes: flag_dither=1, flag_draw_on_display=1 (the dfe bit per psx-spx; libpsyx sets it via `SetDefDrawEnv`'s conditional at C11_only.elf:0x80012728), enable_auto_clear=1. Each byte is named; /* draw[0] control bytes: flag_dither=1, flag_draw_on_display=1 (the dfe bit per psx-spx; libpsyx sets it via `SetDefDrawEnv`'s conditional at C11_only.elf:0x80012728), enable_auto_clear=1. Each byte is named;
* the previous `store_word(R_0, ..., +20)` overwrote all four with zero. */ * the previous `store_word(R_0, ..., +20)` overwrote all four with zero. */
add_ui(R_T0, R_0, 1), add_ui(R_T0, R_0, 1),
store_byte(R_T0, R_ScreenBuf, O_(DrawEnv,flag_dither) + OA_(DoubleBuffer,draw,0)), store_byte(R_T0, R_ScreenBuf, O_(DrawEnv,flag_dither) + O_(DoubleBuffer,draw[0])),
store_byte(R_T0, R_ScreenBuf, O_(DrawEnv,flag_draw_on_display) + OA_(DoubleBuffer,draw,0)), store_byte(R_T0, R_ScreenBuf, O_(DrawEnv,flag_draw_on_display) + O_(DoubleBuffer,draw[0])),
store_byte(R_T0, R_ScreenBuf, O_(DrawEnv,enable_auto_clear) + OA_(DoubleBuffer,draw,0)), store_byte(R_T0, R_ScreenBuf, O_(DrawEnv,enable_auto_clear) + O_(DoubleBuffer,draw[0])),
store_byte(R_T0, R_ScreenBuf, O_(DrawEnv,flag_dither) + OA_(DoubleBuffer,draw,1)), store_byte(R_T0, R_ScreenBuf, O_(DrawEnv,flag_dither) + O_(DoubleBuffer,draw[1])),
store_byte(R_T0, R_ScreenBuf, O_(DrawEnv,flag_draw_on_display) + OA_(DoubleBuffer,draw,1)), store_byte(R_T0, R_ScreenBuf, O_(DrawEnv,flag_draw_on_display) + O_(DoubleBuffer,draw[1])),
store_byte(R_T0, R_ScreenBuf, O_(DrawEnv,enable_auto_clear) + OA_(DoubleBuffer,draw,1)), store_byte(R_T0, R_ScreenBuf, O_(DrawEnv,enable_auto_clear) + O_(DoubleBuffer,draw[1])),
/* draw[0].initial_bg_color = (r=7, g=7, b=7). */ /* draw[0].initial_bg_color = (r=7, g=7, b=7). */
add_ui(R_T0, R_0, 7), add_ui(R_T0, R_0, 7),
mac_store_rgb8(R_T0,R_T0,R_T0, R_ScreenBuf, O_(DrawEnv,initial_bg_color) + OA_(DoubleBuffer,draw,0)), mac_store_rgb8(R_T0,R_T0,R_T0, R_ScreenBuf, O_(DrawEnv,initial_bg_color) + O_(DoubleBuffer,draw[0])),
mac_store_rgb8(R_T0,R_T0,R_T0, R_ScreenBuf, O_(DrawEnv,initial_bg_color) + OA_(DoubleBuffer,draw,1)), mac_store_rgb8(R_T0,R_T0,R_T0, R_ScreenBuf, O_(DrawEnv,initial_bg_color) + O_(DoubleBuffer,draw[1])),
mac_yield(), 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 { enum {
R_IO_BaseAddr = R_T4 atom_reg, /* Caller-pinned: IO_BASE_ADDR = 0x1F800000 */ 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_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)) { 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 */ 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_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_T5, R_IO_BaseAddr, GPIO_PORT1_OFFSET), /* GP1(02h) AckIRQ */ 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_T5, R_IO_BaseAddr, GPIO_PORT1_OFFSET), /* GP1(03h) Display ON */ 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_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_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_T5, R_IO_BaseAddr, GPIO_PORT1_OFFSET), /* GP1(05h) StartDisplayArea (X=0, Y=0) */ 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 */ /* 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_display_mode_320x240_15bit_ntsc, R_ScreenX, 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_horizontal_range_ntsc, R_ScreenX, R_IO_BaseAddr, GPIO_PORT1_OFFSET),
mac_gcmd_push(gp1_word_vertical_range_ntsc, R_T5, 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. */ /* 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_ScreenX, ScreenRes_CenterX), gte_mv_to_ctrl_r(R_ScreenX, 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_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. */ /* 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). */ /* 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(), 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) { typedef Struct_(Binds_PadApplyInput) {
PadState* state; PadState* state;
V3_S2* cube_rot; V3_S2* cube_rot;
@@ -334,7 +774,7 @@ internal MipsAtom_(pad_input_cam) atom_info(atom_bind(Binds_PadInputCam)
load_word(R_T1, R_Cam, O_(Camera,pos.x)), // BD-Slot. 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. // 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)), nop, 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)), add_si(R_T1, R_T1, -50), store_word(R_T1, R_Cam, O_(Camera,pos.x)),
atom_label(exit_left_x) atom_label(exit_left_x)
@@ -365,23 +805,11 @@ atom_label(exit_cross_z)
add_si(R_T1, R_T1, 50), store_word(R_T1, R_Cam, O_(Camera,pos.z)), add_si(R_T1, R_T1, 50), store_word(R_T1, R_Cam, O_(Camera,pos.z)),
atom_label(exit_circle_z) atom_label(exit_circle_z)
mac_yield(), mac_yield_tail(),
}; };
enum { enum {
_LookAt_WIP, R_PrimCursor = R_T7 atom_reg atom_type(U4*), /* Output cursor (primitive buffer) */
};
typedef Struct_(Binds_ResolveLookAt) {
U1 bla;
};
internal MipsAtom_(resolve_look_at) atom_info(atom_bind(Binds_ResolveLookAt)) {
add_ui_self(R_TapePtr, S_(Binds_ResolveLookAt)),
mac_yield(),
};
enum {
R_PrimCursor = R_T7 atom_reg atom_type(U4*), /* VRAM output cursor (primitive buffer) */
R_FaceCursor = R_T4 atom_reg atom_type(V4_S2*), /* Cube face-index cursor (V4_S2*); floor context switches to V3_S2* via atom_phase */ R_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_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 */ R_OtBase = R_T6 atom_reg atom_type(U4*), /* Base address of the Ordering Table */
@@ -390,7 +818,6 @@ enum {
#define R_VertBase_Code R_T5_Code #define R_VertBase_Code R_T5_Code
#define R_OtBase_Code R_T6_Code #define R_OtBase_Code R_T6_Code
}; };
typedef Struct_(Binds_CubeTri) { typedef Struct_(Binds_CubeTri) {
U4 PrimCursor; U4 PrimCursor;
V4_S2* FaceCursor; V4_S2* FaceCursor;
@@ -427,9 +854,9 @@ MipsAtom_(cube_g4_face) atom_info(atom_phase(cube_g4),
gte_mv_from_data_r(R_T0, C2_MAC0), nop, gte_mv_from_data_r(R_T0, C2_MAC0), nop,
branch_le_zero(R_T0, atom_offset(cull, cube_g4_face_exit)), 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 — * 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)), 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), 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)), load_word(R_V0, R_AT, O_(V3_S2, x)), load_word(R_V1, R_AT, O_(V3_S2, z)),
+240 -46
View File
@@ -1,7 +1,7 @@
#pragma region Vendors #pragma region Vendors
#include <stdio.h> #include <stdio.h>
#include <stdlib.h> #include <stdlib.h>
#include <assert.h> // #include <assert.h>
// #include "libgpu.h" // #include "libgpu.h"
// #include "libetc.h" // #include "libetc.h"
// #include "libgte.h" // #include "libgte.h"
@@ -43,6 +43,7 @@
#pragma region Hello Camera Headers #pragma region Hello Camera Headers
# include "gen/macs.h" # include "gen/macs.h"
# include "gen/offsets.h" # include "gen/offsets.h"
# include "gen/auto_reg.h"
#include "hello_camera.h" #include "hello_camera.h"
#pragma endregion Hello Camera Headers #pragma endregion Hello Camera Headers
@@ -51,9 +52,16 @@
#include "hello_camera.atom.c" #include "hello_camera.atom.c"
#pragma endregion Hello Joypad TUs #pragma endregion Hello Joypad TUs
enum {
Scratchpad_Loc = 0x1F800000,
};
#define C_scratch(type) C_(type, Scratchpad_Loc)
enum { enum {
Scratchpad_Len = 1024, Scratchpad_Len = 1024,
MemTape_Len = 512, MemTape_Len = 512,
ResolveLookAtArena_Words = 1024,
ResolveLookAtArena_Size = ResolveLookAtArena_Words * S_(MipsCode),
}; };
typedef Struct_(SMemory) { typedef Struct_(SMemory) {
PrimitiveArena primitives; PrimitiveArena primitives;
@@ -74,7 +82,11 @@ typedef Struct_(SMemory) {
PadBiosRaw pad_raw[2]; PadBiosRaw pad_raw[2];
PadState pad[2]; PadState pad[2];
// TODO(Ed): We don't need this we can just cast at any point an address to a desired view of scratchpad, we have the address.
U4_V scratchpad; // d-cache U4_V scratchpad; // d-cache
U1 resolve_look_at_mem[ResolveLookAtArena_Size];
MipsAtom* resolve_look_at_atom_addrs[10];
}; };
global SMemory smem; global SMemory smem;
extern SMemory smem; extern SMemory smem;
@@ -92,73 +104,252 @@ I_ B1* prim__alloc(U4 type_width, Str8 type_name) {
} }
#define prim_alloc(type) (type*)prim__alloc(S_(type), slit( stringify(type))) #define prim_alloc(type) (type*)prim__alloc(S_(type), slit( stringify(type)))
void I_ void resolve_look_at_c11(MT3_S2S4* look_at, P3_S4* eye, P3_S4* target, V3_S4* up_in) {
resolve_look_at_c11(MT3_S2S4* look_at, V3_S4* eye, V3_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.
// TODO(Ed): Want to interpret this under the lens of Eric Lengyel's geometric algebra // Preconditions: eye != target, up_in not collinear with (target - eye).
V3_S4 right, up, forward; V3_S4 right, up, forward;
V3_S4 ux, uy, uz; V3_S4 ux, uy, uz;
V3_S4 pos, off; V3_S4 pos, off;
forward = target[0]; sub_v3s4(& forward, eye[0]); forward = target[0]; sub_v3s4(& forward, eye[0]); // RGA(Lengyel): Affine point - point = zero-weight direction.
normalize_v3s4(& forward, & uz); normalize_v3s4(& forward, & uz); // RGA(Lengyel): Normalize the direction bulk. Not finite-point unitization.
cross_v3s4(& uz, up_in, & right); normalize_v3s4(& right, & ux); 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); 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).
look_at->m[0][0] = ux.x; look_at->m[0][1] = ux.y; look_at->m[0][2] = ux.z; 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[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; look_at->m[2][0] = uz.x; look_at->m[2][1] = uz.y; look_at->m[2][2] = uz.z;
pos = eye[0]; mul_v3s4(& pos, v3s4(-1,-1,-1)); 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); mul_m3s2_v3s4(look_at, & pos, & off);
trans_m3s2( look_at, & off); trans_m3s2( look_at, & off);
} }
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); }
FI_ void camera_look_at_c11(Camera* c, V3_S4* target, V3_S4* up_in) { resolve_look_at_c11(& c->look_at, & c->pos, target, up_in); } /* Pre-build all 7 chain atoms of the resolve_look_at bundle into the static arena.
* 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
* 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
*/
internal void resolve_look_at_init(void) {
/* Wrap the static arena in a MipsAtomBuilder. */
AtomArena ab = atomarena_make(slice_ut_arr(smem.resolve_look_at_mem));
TapeBuilder tb = tb_make(slice_ut_arr(smem.resolve_look_at_atom_addrs));
U4 pin_mask = regfile_abi_mask | (1 << R_ResolveScratch);
RegFile rf = regfile(pin_mask);
U4 r_target_ptr = regfile_alloc(& rf);
U4 r_eye_ptr = regfile_alloc(& rf);
U4 r_up_in_ptr = regfile_alloc(& rf);
U4 r_tmp0 = regfile_alloc(& rf);
U4 r_tmp1 = regfile_alloc(& rf);
U4 r_tmp2 = regfile_alloc(& rf);
U4 r_tmp3 = regfile_alloc(& rf);
smem.resolve_look_at_atom_addrs[0] = resolve_look_at__input_and_sub_proc(& ab,
R_ResolveScratch,
r_target_ptr, r_eye_ptr, r_up_in_ptr,
r_tmp0, r_tmp1, r_tmp2, r_tmp3);
/* === ATOM 1: normalize fwd→uz === */
U2 src_offset = O_(ResolveLookAtScratch, fwd);
U2 dst_offset = O_(ResolveLookAtScratch, uz);
smem.resolve_look_at_atom_addrs[1] = normalize_v3s4_proc(& ab,
src_offset, dst_offset, RegUse_(normalize_v3s4_proc){
.scratch = R_ResolveScratch,
.src_ptr = R_T0,
.dst_ptr = R_T1,
.recip_est = R_T6,
.norm = R_T7,
.shift = R_V0,
.src_x = R_T2,
.t3 = R_T3,
.t4 = R_T5,
.t5 = R_V1,
});
/* === ATOM 2: cross uz×up_in→right === */
U4 r_a_2 = R_T0;
U4 r_b_2 = R_T1;
U4 r_c_2 = R_T2;
U4 r_d_2 = R_T3;
U4 r_f_2 = R_T5; /* out ptr (HARDCODED in body: scratch+32) */
U4 r_g_2 = R_T6; /* a ptr = scratch+16 */
U4 r_h_2 = R_T7; /* b ptr = scratch+128 */
smem.resolve_look_at_atom_addrs[2] = resolve_look_at__cross_uz_up_in_to_right_proc(& ab,
R_ResolveScratch,
r_a_2, r_b_2, r_c_2, r_d_2, r_f_2, r_g_2, r_h_2);
/* === ATOM 3: normalize right→ux === */
src_offset = O_(ResolveLookAtScratch, right);
dst_offset = O_(ResolveLookAtScratch, ux);
smem.resolve_look_at_atom_addrs[3] = normalize_v3s4_proc(& ab,
src_offset, dst_offset, RegUse_(normalize_v3s4_proc){
.scratch = R_ResolveScratch,
.src_ptr = R_T0,
.dst_ptr = R_T1,
.recip_est = R_T6,
.norm = R_T7,
.shift = R_V0,
.src_x = R_T2,
.t3 = R_T3,
.t4 = R_T5,
.t5 = R_V1,
});
/* === ATOM 4: cross uz×ux→up === */
U4 r_a_4 = R_T0;
U4 r_b_4 = R_T1;
U4 r_c_4 = R_T2;
U4 r_d_4 = R_T3;
U4 r_f_4 = R_T5; /* out ptr (HARDCODED: scratch+64) */
U4 r_g_4 = R_T6; /* a ptr = scratch+16 */
U4 r_h_4 = R_T7; /* b ptr = scratch+48 */
smem.resolve_look_at_atom_addrs[4] = resolve_look_at__cross_uz_ux_to_up_proc(& ab,
R_ResolveScratch,
r_a_4, r_b_4, r_c_4, r_d_4, r_f_4, r_g_4, r_h_4);
/* === ATOM 5: normalize up→uy === */
src_offset = O_(ResolveLookAtScratch, up);
dst_offset = O_(ResolveLookAtScratch, uy);
smem.resolve_look_at_atom_addrs[5] = normalize_v3s4_proc(& ab,
src_offset, dst_offset,
RegUse_(normalize_v3s4_proc){
.scratch = R_ResolveScratch,
.src_ptr = R_T0,
.dst_ptr = R_T1,
.recip_est = R_T6,
.norm = R_T7,
.shift = R_V0,
.src_x = R_T2,
.t3 = R_T3,
.t4 = R_T5,
.t5 = R_V1,
});
/* === ATOM 6a: populate (m[][] from ux/uy/uz, t[]=0) === */
U4 r_look_at_6a = R_T0; /* tape pop → look_at* */
U4 r_scratch_6a = R_ResolveScratch;
U4 r_pux_6a = R_T1;
U4 r_puy_6a = R_T3;
U4 r_puz_6a = R_T5;
U4 r_tmp0_6a = R_T2;
U4 r_tmp1_6a = R_T6;
U4 r_tmp2_6a = R_V0;
smem.resolve_look_at_atom_addrs[6] = resolve_look_at__populate_proc(& ab,
r_look_at_6a, r_scratch_6a,
r_pux_6a, r_puy_6a, r_puz_6a,
r_tmp0_6a, r_tmp1_6a, r_tmp2_6a);
/* === ATOM 6a.5: set_gte_mt3s2s4 (BAKED — ctc2 RT matrix) ===
* This is a BAKED atom from gte.atom.c. Its body hardcodes R_T3 as
* the matrix pointer (popped from tape). It does NOT need GPR
* assignment from us — it has its own internal GPR usage.
* We just take its address. */
smem.resolve_look_at_atom_addrs[7] = (MipsAtom*) & set_gte_mt3s2s4;
/* === ATOM 6b: matrix_vector (RT * (-eye) >> 12) ===
* Uses mac_apply_matrix_lv component macro which internally uses
* r_t0 for the RT matrix load + V0 load, then r_t0/r_t1/r_t2
* for the mfc2/store. We pass our GPRs. */
U4 r_scratch_6b = R_ResolveScratch;
U4 r_peye_6b = R_T1; /* scratch+96 (packed V0 dst, then off dst) */
U4 r_look_at_6b = R_T0; /* tape pop → look_at* */
U4 r_tmp0_6b = R_T2;
U4 r_tmp1_6b = R_T3;
U4 r_tmp2_6b = R_T5;
smem.resolve_look_at_atom_addrs[8] = resolve_look_at__matrix_vector_proc(& ab,
r_scratch_6b, r_peye_6b, r_look_at_6b,
r_tmp0_6b, r_tmp1_6b, r_tmp2_6b);
/* === ATOM 6c: trans_matrix (off → look_at->t[]) === */
U4 r_look_at_6c = R_T0; /* tape pop → look_at* */
U4 r_scratch_6c = R_ResolveScratch;
U4 r_off_ptr_6c = R_T1; /* &scratch.eye (= off dst) */
U4 r_tmp0_6c = R_T2;
smem.resolve_look_at_atom_addrs[9] = resolve_look_at__trans_matrix_proc(& ab,
r_look_at_6c, r_scratch_6c, r_off_ptr_6c, r_tmp0_6c, R_T3, R_T4);
/* Sanity check: arena didn't overflow. */
assert(ab.used <= ResolveLookAtArena_Size);
}
/* 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
){
tb_emit(tb, smem.resolve_look_at_atom_addrs[0]); {
tb_data(tb, u4_(target));
tb_data(tb, u4_(eye));
tb_data(tb, u4_(up_in));
tb_data(tb, u4_(smem.scratchpad));
}
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]); { }
tb_emit(tb, smem.resolve_look_at_atom_addrs[6]); {
tb_data(tb, u4_(look_at));
}
tb_emit(tb, smem.resolve_look_at_atom_addrs[7]); {
tb_data(tb, u4_(look_at));
}
tb_emit(tb, smem.resolve_look_at_atom_addrs[8]); {
tb_data(tb, u4_(look_at));
}
tb_emit(tb, smem.resolve_look_at_atom_addrs[9]); {
// tb_data(tb, u4_(look_at));
}
}
GCC_OPTIMIZATION_DISABLE GCC_OPTIMIZATION_DISABLE
void update(PrimitiveArena* pa, U4* ordering_buf) void update(PrimitiveArena* pa, U4* ordering_buf)
{ {
TapeBuilder tb = tb_make(slice_ut_arr(smem.MemTape)); TapeBuilder tb = tb_make(slice_ut_arr(smem.MemTape));
if (1) // Pad Input // Pad Input
{ {
tb.used = 0; tb_scope_run(& tb) { tb.used = 0; tb_scope_run(& tb) {
// Grab latest state from bios. // Grab latest state from bios.
tb_emit_(pad_bios_snapshot); 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_data_(state, & smem.pad[0]);
tb_emit_(pad_bios_snapshot); // tb_emit_(pad_bios_snapshot);
tb_data_(raw, & smem.pad_raw[1]); // tb_data_(raw, & smem.pad_raw[1]);
tb_data_(state, & smem.pad[1]); // tb_data_(state, & smem.pad[1]);
// TODO(Ed): Implement based on below.
tb_emit_(pad_input_cam); tb_emit_(pad_input_cam);
tb_data_(state, & smem.pad[0]); tb_data_(state, & smem.pad[0]);
tb_data_(cam, & smem.cam); tb_data_(cam, & smem.cam);
// if (pad0_btn_(Pad_Left)) {
// smem.cam.pos.x -= 50;
// }
// if (pad0_btn_(Pad_Right)) {
// smem.cam.pos.x += 50;
// }
// if (pad0_btn_(Pad_Up)) {
// smem.cam.pos.y -= 50;
// }
// if (pad0_btn_(Pad_Down)) {
// smem.cam.pos.y += 50;
// }
// if (pad0_btn_(Pad_Cross)) {
// smem.cam.pos.z -= 50;
// }
// if (pad0_btn_(Pad_Circle)) {
// smem.cam.pos.z += 50;
// }
// Demo input (not longer using)
// tb_emit_(pad_input_cube_rotation); // tb_emit_(pad_input_cube_rotation);
// tb_data_(state, & smem.pad[0]); // tb_data_(state, & smem.pad[0]);
// tb_data_(cube_rot, & smem.cube.rot); // tb_data_(cube_rot, & smem.cube.rot);
@@ -189,17 +380,14 @@ void update(PrimitiveArena* pa, U4* ordering_buf)
A2_S2 p; //??? A2_S2 p; //???
S4 flag; //???? S4 flag; //????
// Camera Look at B4 use_c11_path = false;
if (1) if (use_c11_path) {
{
camera_look_at_c11(& smem.cam, & smem.cube.pos, & v3s4(0, -fp_one, 0)); camera_look_at_c11(& smem.cam, & smem.cube.pos, & v3s4(0, -fp_one, 0));
} }
// Camera look at (Tape) if (use_c11_path == false)
if (0)
{ {
tb.used = 0; tb_scope_run(& tb) { tb.used = 0; tb_scope_run(& tb) {
tb_emit_(resolve_look_at); resolve_look_at(& tb, & smem.cam.look_at, & smem.cam.pos, & smem.cube.pos, & v3s4(0, -fp_one, 0));
// tb_data_();
} }
} }
@@ -237,7 +425,7 @@ void update(PrimitiveArena* pa, U4* ordering_buf)
tb_data(& tb, u4_(& pa->used)); tb_data(& tb, u4_(& pa->used));
tb_data(& tb, prim_base); tb_data(& tb, prim_base);
} }
tape_run(tb_slice(tb)); tape_run_a02_s07(tb_slice(tb));// Fire off the tape (bigger-clobber variant).
// smem.cube.rot.y += 30; // smem.cube.rot.y += 30;
} }
@@ -279,7 +467,7 @@ void update(PrimitiveArena* pa, U4* ordering_buf)
tb_data(& tb, u4_(& pa->used)); tb_data(& tb, u4_(& pa->used));
tb_data(& tb, prim_base); tb_data(& tb, prim_base);
} }
tape_run(tb_slice(tb));// Fire off the tape. tape_run_a02_s07(tb_slice(tb));// Fire off the tape (bigger-clobber variant).
// C-side state (pa->used) has already been updated by the tape! // C-side state (pa->used) has already been updated by the tape!
// smem.floor.rot.y += 5; // smem.floor.rot.y += 5;
@@ -306,7 +494,8 @@ GCC_OPTIMIZATION_DISABLE
int main(void) int main(void)
{ {
smem = (SMemory){0}; smem = (SMemory){0};
smem.scratchpad = C_(U4_V, 0x1F800000); // TODO(Ed): remove this field we don't need it in smem.
smem.scratchpad = C_(U4_V, Scratchpad_Loc);
// smem.primitives.used = 0; // smem.primitives.used = 0;
// smem.active_buf_id = 0; // smem.active_buf_id = 0;
smem.cam.pos = v3s4(500, -1000, -1500); smem.cam.pos = v3s4(500, -1000, -1500);
@@ -329,6 +518,10 @@ int main(void)
reset_graph(0); reset_graph(0);
/* Direct BIOS: poll both ports during VBlank. */ /* Direct BIOS: poll both ports during VBlank. */
pad_bios_init_start(& smem.pad_raw[0], & smem.pad_raw[1]); 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. */ /* Pinned registers for the GPU init atom. */
register U4* io_base_addr rgcc(R_IO_BaseAddr) = u4_r(IO_BASE_ADDR); register U4* io_base_addr rgcc(R_IO_BaseAddr) = u4_r(IO_BASE_ADDR);
register DoubleBuffer* screen_buf rgcc(R_ScreenBuf) = & smem.screen_buf; register DoubleBuffer* screen_buf rgcc(R_ScreenBuf) = & smem.screen_buf;
@@ -348,3 +541,4 @@ int main(void)
return 0; return 0;
} }
GCC_OPTIMIZATION_ENABLE GCC_OPTIMIZATION_ENABLE
+3 -3
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@@ -61,7 +61,7 @@ I_ void ent_cube128_init(A8_V3_S2* verts, A6_V4_S2* faces) {
typedef Struct_(Ent_Cube) { typedef Struct_(Ent_Cube) {
V3_S4 accel; V3_S4 accel;
V3_S4 vel; 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_S4 scale;
V3_S2 rot; V3_S2 rot;
A8_V3_S2 verts; A8_V3_S2 verts;
@@ -88,7 +88,7 @@ I_ void ent_floor_init(A4_V3_S2* verts, A2_V3_S2* faces) {
}; };
typedef Struct_(Ent_Floor) { typedef Struct_(Ent_Floor) {
V3_S4 accel; 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_S4 scale;
V3_S2 rot; V3_S2 rot;
A4_V3_S2 verts; A4_V3_S2 verts;
@@ -96,7 +96,7 @@ typedef Struct_(Ent_Floor) {
}; };
typedef Struct_(Camera) { typedef Struct_(Camera) {
V3_S4 pos; P3_S4 pos; // RGA(Lengyel): affine point with implicit weight one. Storage alias of V3_S4.
V3_S2 rot; V3_S2 rot;
MT3_S2S4 look_at; MT3_S2S4 look_at;
}; };
+4 -4
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@@ -24,8 +24,8 @@ ATOM_FILE_DEBUGGER_LINE_MARKER(hello_joypad_atom_c);
#pragma region MACs (Mips Atom components) #pragma region MACs (Mips Atom components)
FI_ Slice_MipsCode ac_put_disp_env(U4 reg_transfer, U4 reg_base, U2 port) FI_ Slice_MipsCode ac_put_disp_env(MipsAtomBuilder_R ab, U4 reg_transfer, U4 reg_base, U2 port)
MipsAtomComp_Proc_(ac_put_disp_env, { MipsAtomComp_Proc_(ab, {
// Emits 5 GP0 commands for buffer 0 (display_area = (0,0,320,240)). // 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 // Sequence per libpsyx PutDispEnv: DrawArea TL → DrawArea BR → Mask → DrawArea TL → DrawArea BR
mac_gcmd_push(gp0_word_draw_area_top_left_origin, reg_transfer, reg_base, port), mac_gcmd_push(gp0_word_draw_area_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), 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) FI_ Slice_MipsCode ac_put_draw_env(MipsAtomBuilder_R ab, U4 reg_transfer, U4 reg_base, U2 port)
MipsAtomComp_Proc_(ac_put_draw_env, { MipsAtomComp_Proc_(ab, {
/* /*
* ORIGIN: each code word corresponds to the EXACT value libpsyx's PutDrawEnv function would compute for the same DrawEnv settings. * ORIGIN: each code word corresponds to the EXACT value libpsyx's PutDrawEnv function would compute for the same DrawEnv settings.
* References: * References:
+2 -2
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@@ -24,8 +24,8 @@
* Emits 9 instructions (status/buttons/axes/attempt stores plus the * Emits 9 instructions (status/buttons/axes/attempt stores plus the
* two-instruction zero-extended buttons load). * 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) 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, { MipsAtomComp_Proc_(ac_pad_sio_write_pad_state, ab, {
add_ui(scratch_reg, R_0, status_val), add_ui(scratch_reg, R_0, status_val),
store_word(scratch_reg, state_ptr_reg, O_(PadState,status)), store_word(scratch_reg, state_ptr_reg, O_(PadState,status)),
/* FIX 2026-08-02: buttons = 0x0000FFFF = "no buttons pressed" in /* FIX 2026-08-02: buttons = 0x0000FFFF = "no buttons pressed" in
+10625
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+1
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@@ -532,6 +532,7 @@ function build-hello_camera {
$compile_args = @() $compile_args = @()
$compile_args += $f_debug $compile_args += $f_debug
$compile_args += ($f_define + 'BUILD_DEBUG')
$compile_args += $f_optimize_none $compile_args += $f_optimize_none
# $compile_args += $f_optimize_intrinsics # $compile_args += $f_optimize_intrinsics
# $compile_args += $f_optimize_size # $compile_args += $f_optimize_size
+267 -3
View File
@@ -515,8 +515,7 @@ local function splice_c_lines(source)
local splice_len = nil local splice_len = nil
if byte == BYTE_BACKSLASH and source:byte(pos + 1) == BYTE_NEWLINE then if byte == BYTE_BACKSLASH and source:byte(pos + 1) == BYTE_NEWLINE then
splice_len = 2 splice_len = 2
elseif byte == BYTE_BACKSLASH and source:byte(pos + 1) == BYTE_CR elseif byte == BYTE_BACKSLASH and source:byte(pos + 1) == BYTE_CR and source:byte(pos + 2) == BYTE_NEWLINE then
and source:byte(pos + 2) == BYTE_NEWLINE then
splice_len = 3 splice_len = 3
end 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_avg_sort_z4 are the duffle-side aliases for AVSZ3/4.
["gte_avg_sort_z3"] = "gte_cmdw_avsz3", ["gte_avg_sort_z3"] = "gte_cmdw_avsz3",
["gte_avg_sort_z4"] = "gte_cmdw_avsz4", ["gte_avg_sort_z4"] = "gte_cmdw_avsz4",
["gte_cmdw_sqr"] = "gte_cmdw_sqr",
["gte_cmdw_gpf"] = "gte_cmdw_gpf",
} }
-- GTE command input-set table. -- GTE command input-set table.
@@ -1136,6 +1137,14 @@ M.GTE_COMMAND_INPUTS = {
"C2_SZ0", "C2_SZ1", "C2_SZ2", "C2_SZ3", "C2_SZ0", "C2_SZ1", "C2_SZ2", "C2_SZ3",
"gte_cr_ZSF4", "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. -- GTE command output-set + semantic role table.
@@ -1208,6 +1217,22 @@ M.GTE_COMMAND_OUTPUTS = {
{ register = "C2_IR2", role = "latest_color" }, { register = "C2_IR2", role = "latest_color" },
{ register = "C2_IR3", 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. -- GTE command/post-command latch-window table.
@@ -1270,6 +1295,37 @@ M.GTE_COMMAND_LATCH_WINDOWS = {
{ register = "C2_IR2", required = 4 }, { register = "C2_IR2", required = 4 },
{ register = "C2_IR3", 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 },
},
}
--- GTE control-register alias groups.
--- Aliases within a group write to the same C2 control-register slot on real silicon
--- (the silicon double-maps some C2 slots across multiple PSX SDK / libgte conventions).
--- Aliases across groups write to distinct C2 slots.
---
--- Cross-alias writes inside one atom body, or across the wave-context boundary,
--- silently clobber each other. The `check_gte_cr_alias_writes` check warns about
--- each pair per source. See `docs/gte_reference.md` §"Control-register alias table"
--- for the silicon rationale and the libgte outer-product convention.
M.GTE_CR_ALIAS_GROUPS = {
{ 24, { "gte_cr_RBK", "gte_cr_OFX" } }, -- background R vs screen offset X
{ 25, { "gte_cr_GBK", "gte_cr_OFY" } }, -- background G vs screen offset Y
{ 26, { "gte_cr_BBK", "gte_cr_H" } }, -- background B vs projection plane distance H
} }
-- Operand-class table for the COP2->GPR load-delay check. -- Operand-class table for the COP2->GPR load-delay check.
@@ -1285,6 +1341,7 @@ M.GTE_COMMAND_LATCH_WINDOWS = {
M.OPERAND_READ_POSITIONS = { M.OPERAND_READ_POSITIONS = {
-- CPU ALU with one or two GPR operands. Reads every GPR operand. -- CPU ALU with one or two GPR operands. Reads every GPR operand.
["add_ui"] = {1, 2}, ["add_ui"] = {1, 2},
["li_s"] = {1, 2}, -- rt (write), imm16 (immediate)
["add_ui_self"] = {1}, ["add_ui_self"] = {1},
["add_si"] = {1, 2}, ["add_si"] = {1, 2},
["add_u"] = {1, 2, 3}, ["add_u"] = {1, 2, 3},
@@ -1354,6 +1411,8 @@ M.OPERAND_READ_POSITIONS = {
["gte_mv_to_ctrl_r"] = {}, ["gte_mv_to_ctrl_r"] = {},
["gte_lw"] = {}, ["gte_lw"] = {},
["gte_sw"] = {}, ["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. -- GP0 packet sizes (total words including the 1-word tag) per GP0 cmd byte.
@@ -1435,8 +1494,10 @@ M.INSTRUCTION_LATENCY = {
["xor_i"] = 1, ["xor_u"] = 1, ["xor_i"] = 1, ["xor_u"] = 1,
["nor_u"] = 1, ["nor_u"] = 1,
["shift_lleft"] = 1, ["shift_lleft_self"] = 1, ["shift_lleft"] = 1, ["shift_lleft_self"] = 1,
["shift_lleft_var"] = 1, -- sllv: 1 cycle
["shift_lright"] = 1, ["shift_lright"] = 1,
["shift_aright"] = 1, ["shift_aright"] = 1,
["shift_aright_var"] = 1, -- srav: 1 cycle
["mask_upper"] = 1, ["mask_upper"] = 1,
["mov_from_high"] = 2, -- mfhi: 2 cycles ["mov_from_high"] = 2, -- mfhi: 2 cycles
["mov_from_low"] = 2, -- mflo: 2 cycles ["mov_from_low"] = 2, -- mflo: 2 cycles
@@ -1454,6 +1515,7 @@ M.INSTRUCTION_LATENCY = {
["load_half_u"] = 1, ["load_half"] = 1, ["load_half_u"] = 1, ["load_half"] = 1,
["load_byte_u"] = 1, ["load_byte"] = 1, ["load_byte_u"] = 1, ["load_byte"] = 1,
["load_upper_i"] = 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 -- 2-word loads (lui + ori) used for >16-bit immediates
["load_imm"] = 2, ["load_imm"] = 2,
["load_imm_1w"] = 1, ["load_imm_1w"] = 1,
@@ -1497,6 +1559,8 @@ M.INSTRUCTION_LATENCY = {
["gte_cmdw_op"] = 6, -- OP: 6 cycles (PSX-SPX) ["gte_cmdw_op"] = 6, -- OP: 6 cycles (PSX-SPX)
["gte_cmdw_outer_product"] = 6, -- alias for OP ["gte_cmdw_outer_product"] = 6, -- alias for OP
["gte_cmdw_wedge"] = 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) -- 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_single"] = 15, -- alias for rtps
["gte_cmdw_rotate_translate_perspective_triple"] = 23, -- alias for rtpt ["gte_cmdw_rotate_translate_perspective_triple"] = 23, -- alias for rtpt
@@ -1525,6 +1589,8 @@ M.INSTRUCTION_LATENCY = {
["atom_bind"] = 0, ["atom_bind"] = 0,
["atom_reads"] = 0, ["atom_reads"] = 0,
["atom_writes"] = 0, ["atom_writes"] = 0,
["BdSlot_"] = 0,
["LdSlot_"] = 0,
} }
-- Default cycle cost for unknown macros. -- Default cycle cost for unknown macros.
@@ -1777,6 +1843,7 @@ M.CU2_TRANSITION_POLICY = {
M.INSTRUCTION_GPR_EFFECTS = { M.INSTRUCTION_GPR_EFFECTS = {
-- CPU ALU with one or two GPR operands. Reads every GPR operand position. -- CPU ALU with one or two GPR operands. Reads every GPR operand position.
add_ui = { reads = {1, 2}, writes = {1} }, 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_ui_self = { reads = {1}, writes = {1} },
add_si = { reads = {1, 2}, writes = {1} }, add_si = { reads = {1, 2}, writes = {1} },
add_u = { reads = {2, 3}, writes = {1} }, add_u = { reads = {2, 3}, writes = {1} },
@@ -1893,6 +1960,54 @@ M.INSTRUCTION_GPR_EFFECTS = {
atom_writes = { reads = {}, writes = {} }, atom_writes = { reads = {}, writes = {} },
-- mac_yield transfers control to the next atom; zero GPR effects. -- mac_yield transfers control to the next atom; zero GPR effects.
mac_yield = { reads = {}, writes = {} }, mac_yield = { reads = {}, writes = {} },
shift_lleft_var = { reads = {2, 3}, writes = {1} },
shift_aright_var = { reads = {2, 3}, writes = {1} },
}
-------------------------------------------------------------------------------
-- IMMEDIATE_FIELD_WIDTHS — maps instruction names to their immediate-argument
-- positions (1-based) and field widths (in bits). Consumed by the
-- `immediate_field_width` static-analysis check. Parallel to
-- INSTRUCTION_GPR_EFFECTS.
--
-- `signed = true` means the field is sign-extended (the value must fit in
-- the signed range). `signed = false` (default) means zero-extended.
-------------------------------------------------------------------------------
M.IMMEDIATE_FIELD_WIDTHS = {
-- CPU I-type immediates: 16-bit signed (addiu/addi/slti sign-extend)
add_ui = { { arg = 3, width = 16, signed = true } },
add_si = { { arg = 3, width = 16, signed = true } },
add_ui_self = { { arg = 2, width = 16, signed = true } },
slt_si = { { arg = 3, width = 16, signed = true } },
slt_ui = { { arg = 3, width = 16, signed = true } },
-- CPU I-type immediates: 16-bit unsigned (andi/ori/xori zero-extend)
and_i = { { arg = 3, width = 16 } },
or_i = { { arg = 3, width = 16 } },
or_i_self = { { arg = 2, width = 16 } },
xor_i = { { arg = 3, width = 16 } },
load_upper_i = { { arg = 2, width = 16 } },
-- Load/store offsets: 16-bit signed
load_word = { { arg = 3, width = 16, signed = true } },
load_half = { { arg = 3, width = 16, signed = true } },
load_half_u = { { arg = 3, width = 16, signed = true } },
load_byte = { { arg = 3, width = 16, signed = true } },
load_byte_u = { { arg = 3, width = 16, signed = true } },
store_word = { { arg = 3, width = 16, signed = true } },
store_half = { { arg = 3, width = 16, signed = true } },
store_byte = { { arg = 3, width = 16, signed = true } },
-- Shift amount: 5-bit unsigned
shift_lleft = { { arg = 3, width = 5 } },
shift_lleft_self = { { arg = 2, width = 5 } },
shift_lright = { { arg = 3, width = 5 } },
shift_aright = { { arg = 3, width = 5 } },
shift_aright_var = { { arg = 3, width = 5 } },
-- Branch offsets: 16-bit signed
branch_equal = { { arg = 3, width = 16, signed = true } },
branch_ne = { { arg = 3, width = 16, signed = true } },
branch_le_zero = { { arg = 2, width = 16, signed = true } },
branch_lt_zero = { { arg = 2, width = 16, signed = true } },
branch_ge_zero = { { arg = 2, width = 16, signed = true } },
branch_gt_zero = { { arg = 2, width = 16, signed = true } },
} }
-- Bounded GPR-value rules consumed by the same forward event walk as `INSTRUCTION_GPR_EFFECTS`. -- Bounded GPR-value rules consumed by the same forward event walk as `INSTRUCTION_GPR_EFFECTS`.
@@ -1905,6 +2020,7 @@ M.INSTRUCTION_GPR_EFFECTS = {
M.GPR_VALUE_RULES = { M.GPR_VALUE_RULES = {
load_upper_i = { op = "load_upper_i", dest = 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, }, 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, }, or_i = { op = "or_i", dest = 1, source = 2, immediate = 3, },
and_i = { op = "and_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, }, xor_i = { op = "xor_i", dest = 1, source = 2, immediate = 3, },
@@ -2041,7 +2157,8 @@ 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. --- * 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). --- * 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. --- 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. --- Callers wanting `word_events` / `word_event_errors` precomputed for many atoms should memoize them per atom.
@@ -2612,4 +2729,151 @@ function M.project_emission(body_text, component_index, word_counts, components)
}) })
end end
-------------------------------------------------------------------------------
-- find_function_decl_for — backward walk for MipsAtomComp_Proc_ name extraction.
--
-- After the `sym` arg was dropped from MipsAtomComp_Proc_, the component name
-- is derived from the preceding `FI_ Slice_MipsCode ac_X(args)` function
-- declaration. This function walks backward from `before_pos` to find it.
--
-- Returns (raw_name, args_inner) or (nil, nil).
-- raw_name — e.g. "ac_load_word_imm"
-- args_inner — e.g. "AtomBuilder_R ab, Reg dst, U4 imm"
--
-- The walk finds the LAST "Slice_MipsCode" before before_pos, then skips
-- whitespace + qualifiers (FI_, atom_dbg_skip, comments) until it finds an
-- ident followed by "(". That ident is the function name; the parens contents
-- are the args.
-------------------------------------------------------------------------------
function M.find_function_decl_for(source, before_pos, slice_mips_code_len)
local search_pos = 1
local last_match = nil
while true do
local found = source:find("Slice_MipsCode", search_pos, true)
if not found or found >= before_pos then break end
last_match = found
search_pos = found + slice_mips_code_len
end
if not last_match then return nil, nil end
local pos = last_match + slice_mips_code_len
while pos < before_pos do
-- skip whitespace
while pos <= #source do
local c = source:sub(pos, pos)
if c == " " or c == "\t" or c == "\n" or c == "\r" then
pos = pos + 1
else
break
end
end
if pos > #source then break end
-- skip line comments
if source:sub(pos, pos + 1) == "//" then
while pos <= #source and source:sub(pos, pos) ~= "\n" do pos = pos + 1 end
pos = pos + 1
goto continue
end
-- skip block comments
if source:sub(pos, pos + 1) == "/*" then
local close = source:find("*/", pos + 2, true)
if not close then break end
pos = close + 2
goto continue
end
-- try to read an ident
local ident, ident_end = M.read_ident(source, pos)
if not ident then break end
-- check if the next non-ws char after ident is "("
local next_pos = M.skip_ws_and_cmt(source, ident_end)
if source:sub(next_pos, next_pos) == "(" then
local inner = M.read_parens(source, next_pos)
if inner then
return ident, inner
end
end
-- ident not followed by "(" — it's a qualifier (FI_, atom_dbg_skip, etc); skip it
pos = ident_end
::continue::
end
return nil, nil
end
-------------------------------------------------------------------------------
-- find_atom_proc_decl_for — backward walk for MipsAtom_Proc_ name extraction.
--
-- After the `sym` arg was dropped from MipsAtom_Proc_, the atom name is
-- derived from the preceding `MipsAtom* X_proc(args)` function declaration.
-- This function walks backward from `before_pos` to find it.
--
-- Returns (raw_name, args_inner) or (nil, nil).
-- raw_name — e.g. "normalize_v3s4" (the _proc suffix is stripped)
-- args_inner — e.g. "AtomArena_R aa, U4 r_scratch, ..."
--
-- The walk finds the LAST "MipsAtom*" before before_pos, then skips
-- whitespace + qualifiers (internal, I_, FI_, comments) until it finds an
-- ident followed by "(". That ident is the function name (with _proc suffix);
-- the suffix is stripped to get raw_name. The parens contents are the args.
-------------------------------------------------------------------------------
function M.find_atom_proc_decl_for(source, before_pos, mips_atom_ptr_len)
local search_pos = 1
local last_match = nil
while true do
-- plain=true: "*" is literal, no escaping needed
local found = source:find("MipsAtom*", search_pos, true)
if not found or found >= before_pos then break end
last_match = found
search_pos = found + mips_atom_ptr_len
end
if not last_match then return nil, nil end
local pos = last_match + mips_atom_ptr_len
while pos < before_pos do
-- skip whitespace
while pos <= #source do
local c = source:sub(pos, pos)
if c == " " or c == "\t" or c == "\n" or c == "\r" then
pos = pos + 1
else
break
end
end
if pos > #source then break end
-- skip line comments
if source:sub(pos, pos + 1) == "//" then
while pos <= #source and source:sub(pos, pos) ~= "\n" do pos = pos + 1 end
pos = pos + 1
goto continue
end
-- skip block comments
if source:sub(pos, pos + 1) == "/*" then
local close = source:find("*/", pos + 2, true)
if not close then break end
pos = close + 2
goto continue
end
-- try to read an ident
local ident, ident_end = M.read_ident(source, pos)
if not ident then break end
-- check if the next non-ws char after ident is "("
local next_pos = M.skip_ws_and_cmt(source, ident_end)
if source:sub(next_pos, next_pos) == "(" then
local inner = M.read_parens(source, next_pos)
if inner then
-- strip the _proc suffix to get the atom name
local proc_suffix = "_proc"
if #ident > #proc_suffix and ident:sub(-#proc_suffix) == proc_suffix then
return ident:sub(1, #ident - #proc_suffix), inner
end
-- no _proc suffix — return as-is
return ident, inner
end
end
-- ident not followed by "(" — it's a qualifier; skip it
pos = ident_end
::continue::
end
return nil, nil
end
return M return M
+1 -2
View File
@@ -47,8 +47,7 @@ local function find_repo_root()
return root return root
end end
--- Set `package.path` (for `require("duffle")` + `require("passes.X")`) and --- Set `package.path` (for `require("duffle")` + `require("passes.X")`) and `package.cpath` (for `lpeg.dll`).
--- `package.cpath` (for `lpeg.dll`).
--- ---
--- This script does NOT touch the OS environment: no `os.setenv`, no `os.putenv`, no `$PATH` mods. --- 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). --- It just sets `package.path` and `package.cpath` (the standard Lua way to register module search dirs).
+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
+55 -56
View File
@@ -3,9 +3,12 @@
--- Ownership: `corpus.word_counts`, `corpus.components`, and `corpus.component_body_index`. --- 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. --- 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. --- 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. --- 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). --- 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. --- 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 args string|nil -- Function-args string (function form only)
--- @field line integer -- Source line of the declaration --- @field line integer -- Source line of the declaration
--- @field comment string|nil -- Scanner-owned `declaration_comment`; the components pass reads it from the scanner record --- @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 --- @field debug_skip boolean -- Mirror of `a.debug_skip` (scanner-owned); true iff a bare `atom_dbg_skip` marker immediately preceded the declaration
-- ════════════════════════════════════════════════════════════════════════════ -- ════════════════════════════════════════════════════════════════════════════
@@ -93,48 +96,21 @@ local M = {}
-- so this file reads it forward rather than re-walking the source. -- so this file reads it forward rather than re-walking the source.
-- ════════════════════════════════════════════════════════════════════════════ -- ════════════════════════════════════════════════════════════════════════════
--- Find the args of the function declaration that immediately precedes a `MipsAtomComp_Proc_` invocation of the given name. --- Find the args of the function declaration that immediately precedes a `MipsAtomComp_Proc_` invocation.
--- Returns the args string (e.g., `"U4 off, U4 code, U1 r, U1 g, U1 b"`) or nil if no function declaration is found. --- Returns the args string (e.g., `"U4 off, U4 code, U1 r, U1 g, U1 b"`) or nil if no function declaration is found.
--- ---
--- Convention: function form is --- After the `sym` arg was dropped from MipsAtomComp_Proc_, the component name
--- `FI_ Slice_MipsCode ac_X(args) MipsAtomComp_Proc_(ac_X, { body })` --- and the args both come from the preceding `FI_ Slice_MipsCode ac_X(args)`
--- We find the LAST occurrence of `"ac_X("` before `before_pos` and extract the args from inside the parens. --- declaration. The shared `duffle.find_function_decl_for` helper does the
--- We then verify the preceding context ends with `Slice_MipsCode` --- backward walk; this function returns just the args.
--- (the function-decl keyword with possible qualifiers between).
--- ---
--- @param source string --- @param source string
--- @param name string --- @param name string (retained for signature stability; unused — the walk derives the name)
--- @param before_pos integer --- @param before_pos integer
--- @return string|nil --- @return string|nil
local function find_function_args_for(source, name, before_pos) local function find_function_args_for(source, name, before_pos)
-- Find the LAST occurrence of `name + "("` in `source[1..before_pos]`. local _, args_inner = duffle.find_function_decl_for(source, before_pos, #MIPS_ATOM)
local name_open = name .. "(" return args_inner
local last_idx = nil
local scan_pos = 1
while true do
-- Pass `before_pos + 1` so string.find only returns positions < before_pos + 1
-- (string.find's 4th arg `plain` is true; we use the 3rd arg `init` for the upper bound).
local found = source:find(name_open, scan_pos, true)
if not found or found >= before_pos then break end
last_idx = found
scan_pos = found + #name_open
end
if not last_idx then return nil end
-- Verify the preceding context ends with "MipsAtom" (with possible qualifiers between).
local before = source:sub(1, last_idx - 1)
local trimmed = duffle.trim(before)
if trimmed:sub(-#MIPS_ATOM) ~= MIPS_ATOM then
-- Preceding context is not a function declaration.
return nil
end
local open_paren = last_idx + #name -- position of "("
-- scan: MipsAtom ac_X(
local inner = duffle.read_parens(source, open_paren)
-- scan: MipsAtom ac_X(<args>)
if not inner then return nil end
return inner
end end
-- ════════════════════════════════════════════════════════════════════════════ -- ════════════════════════════════════════════════════════════════════════════
@@ -200,7 +176,16 @@ end
local function project_components(source, scan) local function project_components(source, scan)
local out = {} local out = {}
for _, a in ipairs(scan.atoms) do for _, a in ipairs(scan.atoms) do
-- 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 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) 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. -- 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. -- The pass reads `declaration_comment` directly.
@@ -299,7 +284,9 @@ local function word_count_rec(name, comp_by_name, wc, cache)
local trimmed = t.tok local trimmed = t.tok
if trimmed ~= "" then if trimmed ~= "" then
local lookup = strip_mac_prefix(duffle.read_ident(trimmed, 1)) 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. -- It's a `mac_X(...)` call. Recurse.
n = n + word_count_rec(lookup, comp_by_name, wc, cache) n = n + word_count_rec(lookup, comp_by_name, wc, cache)
elseif lookup and wc and wc[lookup] then elseif lookup and wc and wc[lookup] then
@@ -390,8 +377,7 @@ local function cycle_cost_rec(name, comp_by_name, latency, cache)
end end
--- (internal) Recursive GP0 prim-buffer contribution. Count `store_word` / `store_half` / `store_byte` --- (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 --- 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.
--- 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. --- 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 name string
--- @param comp_by_name table<string, Component> --- @param comp_by_name table<string, Component>
@@ -473,13 +459,26 @@ local function split_comment_lines(s)
end end
--- Determine the macro signature: function-args list (function form) or variadic-ignored (bare form). --- Determine the macro signature: function-args list (function form) or variadic-ignored (bare form).
--- 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 --- @param args_str string|nil
--- @return string --- @return string
local function signature_from_args(args_str) local function signature_from_args(args_str)
local arg_names = extract_arg_names(args_str) local arg_names = extract_arg_names(args_str)
if arg_names and #arg_names > 0 then if arg_names and #arg_names > 0 then
-- 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, ", ") return table.concat(arg_names, ", ")
end end
return "..." -- `ab` was the only arg; fall through to variadic
end
return "..." return "..."
end end
@@ -520,7 +519,7 @@ local function build_component_lines(c, counts)
-- Marker comment: emitted once for every skipped component. -- 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 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 if c.debug_skip then
lines[#lines + 1] = "/* atom_dbg_skip */" lines[#lines + 1] = "/* atom_dbg_skip */"
end end
@@ -554,8 +553,8 @@ end
--- Build the boilerplate header lines (the `#ifdef INTELLISENSE_DIRECTIVES` block, --- Build the boilerplate header lines (the `#ifdef INTELLISENSE_DIRECTIVES` block,
--- the `// Auto-generated` comment, the `// Source:` line, and the self-contained `WORD_COUNT` macro definition). --- the `// Auto-generated` comment, the `// Source:` line, and the self-contained `WORD_COUNT` macro definition).
--- @param dir string -- the absolute source directory --- @param dir string -- Absolute source directory
--- @param sources SourceFile[] -- sources contributing to this directory (for the header comment) --- @param sources SourceFile[] -- Sources contributing to this directory (for the header comment)
--- @return string[] --- @return string[]
local function header_boilerplate(dir, sources) local function header_boilerplate(dir, sources)
local source_lines = { "// Directory: " .. duffle.to_absolute_path(dir) .. "/" } local source_lines = { "// Directory: " .. duffle.to_absolute_path(dir) .. "/" }
@@ -586,9 +585,9 @@ end
--- Compute the per-directory output path for `.macs.h`. --- 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. --- 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. --- The directory name is the namespace; the filename does not repeat it.
--- @param dir string -- the absolute source directory --- @param dir string -- Absolute source directory
--- @return string -- the output directory --- @return string -- Output directory
--- @return string -- the full output path --- @return string -- Full output path
local function compute_macs_h_path(dir) local function compute_macs_h_path(dir)
local out_dir = dir .. "/" .. GEN_SUBDIR local out_dir = dir .. "/" .. GEN_SUBDIR
local out_path = out_dir .. "/" .. MACS_FILENAME local out_path = out_dir .. "/" .. MACS_FILENAME
@@ -598,11 +597,11 @@ end
--- Emit a per-directory `.macs.h` header with the aggregated `mac_X` macros + `WORD_COUNT` entries. --- Emit a per-directory `.macs.h` header with the aggregated `mac_X` macros + `WORD_COUNT` entries.
--- Writes in BINARY mode so LF line endings are preserved (the git blob is LF; Windows text-mode would emit CRLF and break the byte-identical diff). --- 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 ctx PassCtx
--- @param dir string -- the absolute source directory --- @param dir string -- Absolute source directory
--- @param sources SourceFile[] -- sources contributing to this directory (for the header comment) --- @param sources SourceFile[] -- Sources contributing to this directory (for the header comment)
--- @param components Component[] -- aggregated components from all sources in this directory --- @param components Component[] -- Aggregated components from all sources in this directory
--- @param counts table<string, integer> -- precomputed word counts (from count_all_components) --- @param counts table<string, integer> -- Precomputed word counts (from count_all_components)
--- @return string|nil -- path to the written file (nil if no components) --- @return string|nil -- Path to the written file (nil if no components)
local function emit_component_macros_h(ctx, dir, sources, components, counts) local function emit_component_macros_h(ctx, dir, sources, components, counts)
if #components == 0 then return nil end if #components == 0 then return nil end
local out_dir, out_path = compute_macs_h_path(dir) local out_dir, out_path = compute_macs_h_path(dir)
@@ -641,11 +640,11 @@ local function update_canonical_word_counts(corpus, components, counts)
end end
--- @class ComponentDef --- @class ComponentDef
--- @field name string -- bare name (without ac_/mac_ prefix) --- @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 line integer -- Definition source line (line of `MipsAtomComp_(ac_X)` / `MipsAtomComp_Proc_(ac_X, ...)`)
--- @field path string -- absolute source path of the definition --- @field path string -- Absolute source path of the definition
--- @field kind string -- "comp_bare" | "comp_proc" --- @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 --- @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. --- (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"). --- First declaration wins; later declarations of the same bare name are dropped and recorded as a collision via `corpus.collisions` (kind = "component").
+12 -11
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@@ -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]` --- `{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. --- 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` --- @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) 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. -- 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 {} 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. --- 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). --- 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 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 binds_name string -- Expected Binds_X name (skip pairs with mismatching binds)
--- @param registries table -- merged registries from collect_per_source_registries --- @param registries table -- Merged registries from collect_per_source_registries
--- @return table[] -- list of {reg = <MIPS index>, field = <field name>} --- @return table[] -- List of {reg = <MIPS index>, field = <field name>}
local function parse_body_load_pairs(body_tokens, binds_name, registries) local function parse_body_load_pairs(body_tokens, binds_name, registries)
local pairs = {} local pairs = {}
local reg_index_by_name = (registries and registries.register_alias_registry) or {} 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)). --- 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. --- 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 corpus table -- From `ctx.shared.corpus`
--- @param atom_table table[] -- the cross-ref'd atom table from build_atom_table --- @param atom_table table[] -- Cross-ref'd atom table from build_atom_table
--- @param registries table -- merged registries from collect_per_source_registries --- @param registries table -- Merged registries from collect_per_source_registries
--- @return table, table -- (rbind_atoms, rbind_structs) --- @return table, table -- (rbind_atoms, rbind_structs)
local function parse_rbind_atoms(corpus, atom_table, registries) local function parse_rbind_atoms(corpus, atom_table, registries)
registries = registries or {} registries = registries or {}
@@ -944,7 +944,7 @@ local function parse_rbind_atoms(corpus, atom_table, registries)
binds = ai.binds, binds = ai.binds,
fields = struct.fields, -- {name, offset} from scan.binds fields = struct.fields, -- {name, offset} from scan.binds
bytes = struct.bytes, bytes = struct.bytes,
regs = pairs, -- ordered list of {reg, field} regs = pairs, -- Ordered list of {reg, field}
info_line = ai.info_line, info_line = ai.info_line,
} }
table.insert(struct.atom_names, atom_name) table.insert(struct.atom_names, atom_name)
@@ -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(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 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"] 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. -- 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). -- 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 local ptr_void_offset = void_chain_offset + 8
+3 -3
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@@ -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 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. -- 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) local function process_atom(atom, src)
if not (atom and atom.body) then return end if not (atom and atom.body) then return end
local kind = atom.kind 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 return
end end
local proj = project_atom(atom, src, corpus) local proj = project_atom(atom, src, corpus)
@@ -215,7 +215,7 @@ function M.run(ctx)
end end
-- Walk `corpus.source_order`; within each source, visit atoms followed by raw_atoms. -- 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. -- 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 for _, src in ipairs(corpus.source_order) do
local scan = src.scan or {} local scan = src.scan or {}
+8
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@@ -4,9 +4,17 @@
--- for `MipsAtom_(name)` and `MipsCode code_<name>` declarations, computes the word offset --- 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 --- 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. --- `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`. --- Per-directory aggregation: every source in the same directory contributes to the same `gen/offsets.h`.
--- The directory itself is the namespace; the filename does not repeat the module name. --- The 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). --- The offset is `target_word - branch_word - 1` (the standard MIPS branch-immediate encoding: branch_offset = relative_pc_in_words - 1).
-- ════════════════════════════════════════════════════════════════════════════ -- ════════════════════════════════════════════════════════════════════════════
+220 -6
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@@ -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, --- 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: --- extracting every construct type the metaprograms need:
--- MipsAtom_ (kind = "atom", with optional atom_info inner) --- MipsAtom_ (kind = "atom", with optional atom_info inner)
--- MipsAtom_Proc_ (kind = "atom_proc", body inside last {})
--- MipsAtomComp_ (kind = "comp_bare") --- MipsAtomComp_ (kind = "comp_bare")
--- MipsAtomComp_Proc_ (kind = "comp_proc", body inside last {}) --- MipsAtomComp_Proc_ (kind = "comp_proc", body inside last {})
--- atom_dbg_skip — bare whole-atom/component debug-step marker; following declaration disambiguates --- atom_dbg_skip — bare whole-atom/component debug-step marker; following declaration disambiguates
@@ -34,7 +35,7 @@ local parse_enum_int_literal
-- ════════════════════════════════════════════════════════════════════════════ -- ════════════════════════════════════════════════════════════════════════════
--- @class SourceScan --- @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 raw_atoms AtomEntry[] -- MipsCode code_<name> { body } (offsets pass only)
--- @field binds BindsEntry[] -- typedef Struct_(Binds_X) { fields } (fields pre-parsed) --- @field binds BindsEntry[] -- typedef Struct_(Binds_X) { fields } (fields pre-parsed)
--- @field atom_infos AtomInfoEntry[] -- MipsAtom_(name) atom_info(...) (sub-calls 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 args string|nil -- Trimmed args inside the `(...)` (nil when has_parens is false)
--- @field pending boolean -- true while awaiting the following declaration --- @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 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_` --- @field proc_prelude boolean|nil -- true after the marker crossed an `FI_` prelude and awaits `MipsAtomComp_Proc_`
--- @class RegTypeDefault --- @class RegTypeDefault
@@ -111,7 +112,7 @@ local parse_enum_int_literal
--- @field name string -- Atom name (for components: without ac_ prefix) --- @field name string -- Atom name (for components: without ac_ prefix)
--- @field body string -- Brace-delimited body (without the braces) --- @field body string -- Brace-delimited body (without the braces)
--- @field body_off integer -- Char offset of body[1] in source --- @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 raw_name string -- Un-stripped name (for components: with ac_ prefix)
--- @field ident_pos integer -- Position of the MipsAtom_/MipsAtomComp_ ident start --- @field ident_pos integer -- Position of the MipsAtom_/MipsAtomComp_ ident start
--- @field after_paren integer -- Position past the closing paren --- @field after_paren integer -- Position past the closing paren
@@ -136,6 +137,16 @@ local QUALIFIER_KEYWORDS = {
local AC_PREFIX = "ac_" local AC_PREFIX = "ac_"
local AC_PREFIX_LEN = 3 local AC_PREFIX_LEN = 3
-- The function-decl keyword that precedes a MipsAtomComp_Proc_ call.
-- Used by the backward walk in duffle.find_function_decl_for.
local SLICE_MIPS_CODE = "Slice_MipsCode"
local SLICE_MIPS_CODE_LEN = #SLICE_MIPS_CODE
-- The return type that precedes a MipsAtom_Proc_ function declaration.
-- Used by the backward walk in duffle.find_atom_proc_decl_for.
local MIPS_ATOM_PTR = "MipsAtom*"
local MIPS_ATOM_PTR_LEN = #MIPS_ATOM_PTR
--- Strip the "ac_" prefix from a component name. --- Strip the "ac_" prefix from a component name.
--- Returns the input unchanged if it doesn't start with the prefix. --- Returns the input unchanged if it doesn't start with the prefix.
--- @param raw_name string --- @param raw_name string
@@ -268,7 +279,7 @@ end
--- marker_kind == "atom_dbg_skip" AND is_bare == true --- 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`. --- 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 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 --- @return boolean|nil -- true iff the marker is the positive bare form
local function attach_debug_skip_marker(out, target_kind) local function attach_debug_skip_marker(out, target_kind)
local markers = out.debug_skip_markers local markers = out.debug_skip_markers
@@ -799,6 +810,11 @@ local BYTE_x = 0x78 -- 'x'
local BYTE_X = 0x58 -- 'X' local BYTE_X = 0x58 -- 'X'
local BYTE_OPEN_BRACE = 0x7B -- '{' local BYTE_OPEN_BRACE = 0x7B -- '{'
local BYTE_CLOSE_BRACE= 0x7D -- '}' 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. -- Maximum chain depth when resolving `R_*_Code` symbol RHS references.
-- Eight hops is enough for any production chain (R_TapePtr_Code -> R_T8_Code -> ...). -- Eight hops is enough for any production chain (R_TapePtr_Code -> R_T8_Code -> ...).
@@ -822,6 +838,44 @@ local function hex_digit_value(b)
return nil return nil
end 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`. --- 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. --- Returns (value, end_pos) on success, or (nil, start) on failure / no match.
--- Accepts: 12, -1, 0, 0x10, 0X1F, -0x10. --- Accepts: 12, -1, 0, 0x10, 0X1F, -0x10.
@@ -1128,6 +1182,46 @@ local function parse_dbg_skip_marker(source, pos, ident_end, line_of, out)
return marker_end return marker_end
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>...)`; -- 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]`. -- 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) local function parse_atom_dbg_reg_default(source, pos, ident_end, line_of, out)
@@ -1273,7 +1367,11 @@ local function parse_mips_atom_comp_proc(source, pos, ident_end, line_of, out)
local body, close_pos = duffle.read_braces(inner, last_brace_pos) local body, close_pos = duffle.read_braces(inner, last_brace_pos)
if close_pos > #inner + 1 then return after_paren end if close_pos > #inner + 1 then return after_paren end
local raw_name = inner:match("^%s*([%w_]+)") or "?" -- The component name is derived from the preceding function declaration
-- (`FI_ Slice_MipsCode ac_X(...)`), not from the first macro arg (which
-- is now `ab`). The backward walk finds the function decl before open_paren.
local raw_name = duffle.find_function_decl_for(source, open_paren, SLICE_MIPS_CODE_LEN)
if not raw_name then raw_name = "?" end
local name = strip_ac_prefix(raw_name) local name = strip_ac_prefix(raw_name)
-- Position of body[1] in source = open_paren + 1 (start of inner) + last_brace_pos + 1 (past '{'). -- 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 local body_off = open_paren + 2 + last_brace_pos
@@ -1282,6 +1380,52 @@ local function parse_mips_atom_comp_proc(source, pos, ident_end, line_of, out)
return after_paren return after_paren
end 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 derived from the preceding function declaration
-- (`internal MipsAtom* X_proc(...)`), not from the first macro arg (which
-- is now `aa`). The backward walk finds the function decl before open_paren
-- and strips the `_proc` suffix.
local raw_name = duffle.find_atom_proc_decl_for(source, open_paren, MIPS_ATOM_PTR_LEN)
if not raw_name then raw_name = "?" end
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). --- Parse: `MipsCode code_<name> { <body> }` (raw atom form — offsets pass only).
--- @param source string --- @param source string
--- @param pos integer --- @param pos integer
@@ -1602,6 +1746,16 @@ 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) local value, value_end = parse_enum_value(body, after_ws, out)
if value == nil then return value_start end 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 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) local has_atom_reg, end_after_atom_reg = check_bare_atom_reg(body, after_value)
@@ -1657,6 +1811,14 @@ local function parse_enum_body(source, body, body_offset, line_of, out)
else else
local entry_name, name_end = duffle.read_ident(body, pos) local entry_name, name_end = duffle.read_ident(body, pos)
if entry_name then if entry_name then
-- 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
local after_name = duffle.skip_ws_and_cmt(body, name_end) local after_name = duffle.skip_ws_and_cmt(body, name_end)
if body:byte(after_name) == BYTE_EQUAL then if body:byte(after_name) == BYTE_EQUAL then
local new_pos = parse_enum_entry( local new_pos = parse_enum_entry(
@@ -1667,6 +1829,7 @@ local function parse_enum_body(source, body, body_offset, line_of, out)
else else
pos = name_end pos = name_end
end end
end
else else
pos = pos + 1 pos = pos + 1
end end
@@ -1695,6 +1858,25 @@ local function parse_enum(source, pos, ident_end, line_of, out)
if not body then return after_brace end if not body then return after_brace end
parse_enum_body(source, body, body_off, line_of, out) 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 return after_brace
end end
@@ -1708,12 +1890,18 @@ end
local DECL_PARSERS = { local DECL_PARSERS = {
MipsAtom_ = parse_mips_atom, MipsAtom_ = parse_mips_atom,
MipsAtom_Proc_ = parse_mips_atom_proc,
MipsAtomComp_ = parse_mips_atom_comp, MipsAtomComp_ = parse_mips_atom_comp,
MipsAtomComp_Proc_ = parse_mips_atom_comp_proc, MipsAtomComp_Proc_ = parse_mips_atom_comp_proc,
-- `atom_dbg_skip` is the only debug-skip parser entry. Every other -- `atom_dbg_skip` is the only debug-skip parser entry. Every other
-- identifier follows the ordinary unrelated-token path; there is no alias. -- identifier follows the ordinary unrelated-token path; there is no alias.
atom_dbg_skip = parse_dbg_skip_marker, atom_dbg_skip = parse_dbg_skip_marker,
atom_dbg_reg_default = parse_atom_dbg_reg_default, 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, MipsCode = parse_mips_code,
typedef = parse_typedef_binds, typedef = parse_typedef_binds,
_Pragma = parse_pragma_macro, _Pragma = parse_pragma_macro,
@@ -1748,6 +1936,14 @@ local function scan_source(source, source_file, code_macros, code_macro_bodies)
debug_skip_markers = {}, debug_skip_markers = {},
types = {}, types = {},
atom_views = {}, 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, line_of = line_of,
-- Source-derived register-alias registry (atom_reg opt-in entries). -- Source-derived register-alias registry (atom_reg opt-in entries).
-- Keys are full R_* idents (never stripped); see parse_enum / parse_enum_body. -- Keys are full R_* idents (never stripped); see parse_enum / parse_enum_body.
@@ -1987,6 +2183,8 @@ local function merge_corpus_registries(corpus)
corpus.atom_ctxs = corpus.atom_ctxs or {} corpus.atom_ctxs = corpus.atom_ctxs or {}
corpus.atom_phases = corpus.atom_phases or {} corpus.atom_phases = corpus.atom_phases or {}
corpus.atom_infos = corpus.atom_infos 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 {} 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). -- Replace the existing corpus collections with empty tables so a re-run on the same corpus produces identical state (deterministic merge).
@@ -2030,7 +2228,7 @@ local function merge_corpus_registries(corpus)
corpus.collisions, "binds", bind_shape) corpus.collisions, "binds", bind_shape)
end 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, ...}`. -- 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. -- 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 for _, atom_entry in ipairs(scan.atoms or {}) do
@@ -2065,6 +2263,22 @@ local function merge_corpus_registries(corpus)
corpus.collisions, "phase", phase_shape) corpus.collisions, "phase", phase_shape)
end 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. -- atom_infos: ALWAYS append every record in source/declaration order.
-- Duplicates are preserved so the annotation pass can flag them via `check_unique_annotation`; -- Duplicates are preserved so the annotation pass can flag them via `check_unique_annotation`;
-- The merge is purely order-preserving. -- The merge is purely order-preserving.
+365 -29
View File
@@ -39,8 +39,8 @@
--- `── Info` section renders finding-level info between `── Warnings` and the per-atom cycle counts. --- `── 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 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`). --- `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. --- 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. --- 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: --- 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. -- 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. -- This keeps `consuming_encoder` canonical for any downstream tooling that consults the metadata field.
local JUMP_REL_PATTERN = "^jump_rel%s*%(" local JUMP_REL_PATTERN = "^jump_rel%s*%("
local UNCOND_JUMP_PATTERN = "^%f[%w](jump|call_addr)%f[%W]" local UNCOND_JUMP_PATTERNS = {
local TERMINAL_JUMP_PATTERN = "^%f[%w](jump_reg|call_reg|jump_link)%f[%W]" "^%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 function classify_tokens(tokens)
local n = #tokens local n = #tokens
@@ -301,13 +314,13 @@ local function classify_tokens(tokens)
-- Both encode a 16-bit signed relative word offset. -- Both encode a 16-bit signed relative word offset.
is_branch = true is_branch = true
branch_label = tok:match("atom_offset%s*%([^,]+,%s*([%w_]+)%s*%)") or false 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)`. -- 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`). -- 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_branch = true
is_unconditional_jump = true is_unconditional_jump = true
branch_label = tok:match("atom_offset%s*%([^,]+,%s*([%w_]+)%s*%)") or false 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). -- 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. -- Transfers control OUT of the current atom — the CFG treats this as a path terminator.
is_terminal_jump = true is_terminal_jump = true
@@ -439,7 +452,7 @@ local function is_cop2_consumer_of(consumer_event, destination, producer_rel)
end end
-- True iff `consumer_event` reads the GPR operand at any position the destination register occupies. -- 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 function is_gpr_consumer_of(consumer_event, destination)
local consumer_token = consumer_event.encoder or consumer_event.ident local consumer_token = consumer_event.encoder or consumer_event.ident
local read_pos = duffle.OPERAND_READ_POSITIONS or {} 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) return shift_left_u4(immediate % 0x10000, 16)
end 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 if rule.source then
if is_gpr_operand(ev_args[rule.source]) then
source = constant_for_operand(gpr_values, ev_args[rule.source]) source = constant_for_operand(gpr_values, ev_args[rule.source])
if source == nil then return nil end if source == nil then return nil end
end end
local immediate = rule.immediate and parse_integer_literal(ev_args[rule.immediate]) or nil -- Non-GPR at source position = implicit R_0; source stays 0.
if rule.immediate and immediate == nil then return nil end 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
if operation == "add_ui" then return wrap_u4( source + sign_extend_i16(immediate)) 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 == "or_i" then return bit_binary( source, immediate % 0x10000, "or")
elseif operation == "and_i" then return bit_binary( source, immediate % 0x10000, "and") 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 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). --- (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 --- Runtime-helper atoms / components (`debug_skip == true`) are exempt from some checks, but load-delay
--- are part of the fixed handshake (e.g. `ac_load_tri_indices` loads into R_T0..R_T2, but those are caller-supplied). --- 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 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 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) local function check_load_delay_slots(atom, pipe_ctx, findings)
if atom.kind ~= "atom" then return end -- The load-delay check applies to every atom and component body, including debug-skipped components (`ac_*` and `atom_dbg_skip MipsAtom_(...)`).
local events = atom.paths.word_events or {} -- 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 #events == 0 then return end
if is_runtime_helper(atom) then return end
local gpr_effects = duffle.INSTRUCTION_GPR_EFFECTS or {} local gpr_effects = duffle.INSTRUCTION_GPR_EFFECTS or {}
local read_positions = duffle.OPERAND_READ_POSITIONS 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 if is_runtime_helper(atom) then return end
-- Per-kind semantics: -- Per-kind semantics:
-- MipsAtom_ (baked atom): exactly 1 mac_yield at the end of the body. Control transfer is the atom's job. -- 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. -- MipsAtomComp_ (bare static-array component): ZERO mac_yield.
-- The component is invoked from inside an atom body; the parent atom does the yield. -- The component is invoked from inside an atom body; the parent atom does the yield.
-- MipsAtomComp_Proc_ (procedural component): ZERO mac_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] return atom.line + line_in_body[tokens[idx].rel]
end end
if atom.kind == "atom" then if atom.kind == "atom" or atom.kind == "atom_proc" then
-- Baked atom: exactly 1 yield at the end. -- Baked atom: exactly 1 yield at the end.
if count == 0 then if count == 0 then
findings[#findings + 1] = { findings[#findings + 1] = {
@@ -1613,6 +1650,7 @@ local function check_mac_yield_uniformity(atom, pipe_ctx, findings)
-- The parent atom does the yield. -- The parent atom does the yield.
-- A yield inside a component would either be dead code (bare) or prematurely terminate the function (proc). -- A yield inside a component would either be dead code (bare) or prematurely terminate the function (proc).
-- Both are bugs. -- 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 if count > 0 then
findings[#findings + 1] = { findings[#findings + 1] = {
atom = atom.name, atom = atom.name,
@@ -1644,7 +1682,7 @@ end
--- Per-atom. Runtime-helper atoms (`debug_skip`) are exempt. --- Per-atom. Runtime-helper atoms (`debug_skip`) are exempt.
--- Takes `(atom, pipe_ctx, findings)`; `pipe_ctx` is unused. --- Takes `(atom, pipe_ctx, findings)`; `pipe_ctx` is unused.
local function check_yield_load_tail_pairing(atom, _pipe_ctx, findings) 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 if is_runtime_helper(atom) then return end
local tokens = atom.paths.tokens local tokens = atom.paths.tokens
@@ -1656,24 +1694,42 @@ local function check_yield_load_tail_pairing(atom, _pipe_ctx, findings)
return atom.line + line_in_body[tokens[idx].rel] return atom.line + line_in_body[tokens[idx].rel]
end 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 for tok_idx = 1, n do
local c = tc[tok_idx] local c = tc[tok_idx]
if c.ident == "mac_yield_load" then if c.ident == "mac_yield_load" then
if tok_idx < 2 or not tc[tok_idx - 1].is_branch then local prev_tc = (tok_idx >= 2) and tc[tok_idx - 1] or nil
local prev_ident = (tok_idx >= 2) and (tc[tok_idx - 1].ident or "?") or "<none>" -- 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] = { findings[#findings + 1] = {
atom = atom.name, atom = atom.name,
line = tok_idx >= 2 and line_for(tok_idx) or atom.line, line = tok_idx >= 2 and line_for(tok_idx) or atom.line,
check = "yield_load_tail_pairing", check = "yield_load_tail_pairing",
kind = "error", kind = "error",
msg = string.format( 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." "%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), , atom.name, tok_idx >= 2 and line_for(tok_idx) or atom.line, tok_idx, prev_ident, next_ident),
} }
end end
end end
end end
end
-- ── Rule 2: every `mac_yield_tail()` must be at a labeled target whose branch BD-slot is `mac_yield_load()`. -- ── Rule 2: every `mac_yield_tail()` must be at a labeled target whose branch BD-slot is `mac_yield_load()`.
for tok_idx = 1, n do for tok_idx = 1, n do
@@ -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; --- - 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. --- 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) 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 tokens = atom.paths.tokens
local line_in_body = atom.paths.line_in_body local line_in_body = atom.paths.line_in_body
local tc = atom.paths.tok_class local tc = atom.paths.tok_class
@@ -2015,8 +2071,9 @@ local function analyze_atom_paths(atom, pipe_ctx)
succ[#succ + 1] = label_pos + 1 succ[#succ + 1] = label_pos + 1
end end
end end
-- For literal-offset jumps (label == false), the target is a non-tracked address; conservatively omit. -- For literal-offset jumps (label == false), control transfers out unconditionally.
return succ, nil -- 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 end
-- Conditional branch: BD slot absorbed; two successors — fall-through (tok_idx+2) + taken (if known). -- Conditional branch: BD slot absorbed; two successors — fall-through (tok_idx+2) + taken (if known).
if tok_idx + 2 <= n then 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), the second value is the terminator marker (nil = not a terminator).
return succ, nil return succ, nil
end 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 if tok_idx + 1 <= n then return { tok_idx + 1 }, nil end
return {}, nil return {}, tok_idx
end 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. -- 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.
@@ -2329,6 +2388,274 @@ end
-- ════════════════════════════════════════════════════════════════════════════ -- ════════════════════════════════════════════════════════════════════════════
-- ════════════════════════════════════════════════════════════════════════════
-- GTE control-register alias + RT-diagonal + TR-naming helpers and checks
-- ════════════════════════════════════════════════════════════════════════════
--- Resolve a `gte_cr_<Alias>` ident to its alias-group entry, or nil if the alias
--- is in a distinct-slot group (or the alias name is not a known C2 control-register alias).
--- Reads `M.GTE_CR_ALIAS_GROUPS` from `duffle.lua`.
local function find_alias_pair_for(alias_name, duffle)
local groups = (duffle and duffle.GTE_CR_ALIAS_GROUPS) or {}
for _, group in ipairs(groups) do
for _, name in ipairs(group[2] or {}) do
if name == alias_name then return group end
end
end
return nil
end
-- True iff `c` (a TokClass entry) is a CPU→COP2 control-register transfer
-- (`gte_mv_to_ctrl_r` / `gte_mv_from_ctrl_r`).
local function is_ctrl_r_transfer(c)
if c == nil then return false end
return c.ident == "gte_mv_to_ctrl_r" or c.ident == "gte_mv_from_ctrl_r"
end
-- Resolve a token's source line. The per-token `line` is the body-relative
-- line; `atom.line` is the source line of the atom declaration; `line_in_body`
-- (atom.paths) maps a body-relative line to its source line. The arithmetic
-- `atom.line + line_in_body[tok.rel] - 1` matches the convention used by
-- check_abi_handoff and check_control_transfer_delay_slot_use elsewhere.
local function atom_body_token_source_line(atom, token, line_in_body)
if line_in_body == nil or token == nil or token.rel == nil then
return atom.line or 0
end
local body_line = line_in_body[token.rel]
if body_line == nil then return atom.line or 0 end
return (atom.line or 0) + body_line - 1
end
-- Check #N: gte_cr_alias_writes
-- Fires one warning per atom per alias-group when the atom body touches two
-- distinct aliases from the same group. Aliases within a group write to the
-- same C2 control-register slot on real silicon; cross-alias writes inside
-- one atom body silently clobber each other.
--
-- Severity: warning. Build continues. The libgte outer-product convention
-- uses only RT-row aliases (which are NOT in `M.GTE_CR_ALIAS_GROUPS`), so
-- the canonical convention does not trigger this check.
local function check_gte_cr_alias_writes(atom, pipe_ctx, findings)
local groups = pipe_ctx.gte_cr_alias_groups or {}
if not next(groups) then return end
local tokens = atom.paths and atom.paths.tokens or {}
local tc = atom.paths and atom.paths.tok_class or {}
local line_in_body = atom.paths and atom.paths.line_in_body
if not next(tokens) then return end
-- Build a per-group set of (alias, source_line) pairs touched in this atom body.
-- Walks every token; when the token is a ctrl-r transfer, the alias is at
-- position tok_idx + 2 (rt, alias, [imm-or-arg]). The pre-classified
-- `tc` table tells us whether the token is a ctrl-r transfer and what its
-- source line is.
local touched = {}
for tok_idx, token in ipairs(tokens) do
local c = tc[tok_idx]
if is_ctrl_r_transfer(c) and tokens[tok_idx + 2] then
local alias = tokens[tok_idx + 2].tok
local group = find_alias_pair_for(alias, pipe_ctx.duffle)
if group then
touched[group[1]] = touched[group[1]] or {}
touched[group[1]][#touched[group[1]] + 1] = {
alias = alias,
line = atom_body_token_source_line(atom, token, line_in_body),
}
end
end
end
-- Fire one warning per group touched with 2+ distinct aliases.
for slot, hits in pairs(touched) do
local seen = {}
local distinct = {}
for _, h in ipairs(hits) do
if not seen[h.alias] then
seen[h.alias] = true
distinct[#distinct + 1] = h
end
end
if #distinct >= 2 then
local aliases = {}
for _, d in ipairs(distinct) do aliases[#aliases + 1] = d.alias end
findings[#findings + 1] = {
atom = atom.name or "",
line = distinct[1].line,
check = "gte_cr_alias_writes",
kind = "warning",
msg = string.format(
"atom '%s' touches %d aliases that share C2[%d]: %s; verify the intent"
, atom.name or "", #distinct, slot, table.concat(aliases, ", ")),
}
end
end
end
-- Check #N+1: rtdiagonal_completeness
-- Fires one info per atom body when the bare `gte_cmdw_mvmva` macro is used.
-- The bare macro encodes only the cmd field; the canonical libgte-2-pass
-- shape uses `gte_cmdw_mvmva_c11_pass2_exact = 0x4A49E012` (gte.h:430).
--
-- Severity: info by default. Escalates to warning when
-- `GTE_RT_DIAGONAL_STRICT=1` env var is set (CI / production builds).
--
-- The bare macro IS the right call for the canonical libgte outer-product
-- convention, so this is an opt-out hint rather than a hard warning.
local function check_rtdiagonal_completeness(atom, _pipe_ctx, findings)
local tokens = atom.paths and atom.paths.tokens or {}
local tc = atom.paths and atom.paths.tok_class or {}
local line_in_body = atom.paths and atom.paths.line_in_body
if not next(tokens) then return end
local strict = os.getenv("GTE_RT_DIAGONAL_STRICT") == "1"
for tok_idx, token in ipairs(tokens) do
local c = tc[tok_idx]
if c and c.ident == "gte_cmdw_mvmva" then
findings[#findings + 1] = {
atom = atom.name or "",
line = atom_body_token_source_line(atom, token, line_in_body),
check = "rtdiagonal_completeness",
kind = strict and "warning" or "info",
msg = string.format(
"atom '%s' uses the bare gte_cmdw_mvmva macro; "
.. "the canonical libgte-2-pass shape is gte_cmdw_mvmva_c11_pass2_exact = 0x4A49E012 "
.. "(gte.h:430). The bare macro does not encode RT23/RT31/RT32/RT33; "
.. "for a full 3x3 matrix, use the dedicated literal or hand-build via enc_gte_*()."
, atom.name or ""),
}
end
end
end
-- Check #N+2: gte_cr_TR_naming
-- Fires one info per atom body when a `gte_cr_TR[XYZ]` alias is used.
-- Translation-vector registers are the only 3-letter-suffix C2 aliases
-- (`TRX/TRY/TRZ`); an agent who reads `TRX` might typo it as `RT_X` or
-- `RTX0` and either get a compile error (best case) or a build that
-- links but routes the `ctc2` write to the wrong C2 slot.
--
-- Severity: info. The convention is correct; this is a documentation-pointer check.
local function check_gte_cr_TR_naming(atom, _pipe_ctx, findings)
local tokens = atom.paths and atom.paths.tokens or {}
local tc = atom.paths and atom.paths.tok_class or {}
local line_in_body = atom.paths and atom.paths.line_in_body
if not next(tokens) then return end
local touched = false
local first_line = 0
for tok_idx, token in ipairs(tokens) do
local c = tc[tok_idx]
if c and c.ident and c.ident:match("^gte_cr_TR[XYZ]$") then
touched = true
if first_line == 0 then
first_line = atom_body_token_source_line(atom, token, line_in_body)
end
end
end
if touched then
findings[#findings + 1] = {
atom = atom.name or "",
line = first_line,
check = "gte_cr_TR_naming",
kind = "info",
msg = string.format(
"atom '%s' uses gte_cr_TR[XYZ]; translation-vector registers are the only "
.. "3-letter-suffix C2 aliases (TRX/TRY/TRZ). See docs/gte_reference.md §"
.. "\"The `gte_cmdw_mvmva_c11_pass2_exact` literal\" for the libgte outer-product "
.. "convention that uses these names."
, atom.name or ""),
}
end
end
-- check_immediate_field_width — flags integer literals passed to instruction
-- macros that exceed the immediate field width. Reads `IMMEDIATE_FIELD_WIDTHS`
-- from duffle.lua. Only fires on parseable integer literals; register names,
-- O_(...) offsets, atom_offset(...) markers, and enum tokens are skipped.
local function check_immediate_field_width(atom, pipe_ctx, findings)
local widths = duffle.IMMEDIATE_FIELD_WIDTHS or {}
local events = atom.paths and atom.paths.word_events or {}
local line_for_word_event = pipe_ctx.line_for_word_event
for _, ev in ipairs(events) do
local ev_ident = ev.encoder or ev.ident or "?"
local rules = widths[ev_ident]
if rules then
local ev_args = ev.args or {}
local ev_line = line_for_word_event and line_for_word_event(ev) or atom.line
for _, rule in ipairs(rules) do
local arg_str = ev_args[rule.arg]
if arg_str then
local value = parse_integer_literal(arg_str)
if value then
local width = rule.width
local is_signed = rule.signed == true
-- parse_integer_literal returns a U4-wrapped value in [0, 2^32).
-- For signed fields, re-interpret the high bit as the sign.
local signed_value = value
if is_signed and value >= 0x80000000 then
signed_value = value - 0x100000000
end
local lo, hi
if is_signed then
lo = -(bit.lshift(1, width - 1))
hi = bit.lshift(1, width - 1) - 1
else
lo = 0
hi = bit.lshift(1, width) - 1
end
-- For unsigned fields, a negative C literal (high bit set in U4)
-- is valid if the low `width` bits fit — IMM_MASK truncates it.
-- Flag as a warning (code smell), not an error.
local check_value = is_signed and signed_value or value
local field_max = bit.lshift(1, width) - 1
local low_bits_fit = (value % (bit.lshift(1, width))) == value or (is_signed and signed_value >= lo and signed_value <= hi)
if is_signed then
if signed_value < lo or signed_value > hi then
findings[#findings + 1] = {
check = "immediate_field_width",
kind = "error",
atom = atom.name,
line = ev_line,
msg = string.format(
"%s: immediate %d at arg %d overflows %d-bit %s field (valid %d..%d)",
ev_ident, signed_value, rule.arg, width,
"signed", lo, hi),
}
end
else
-- Unsigned field: check if the low `width` bits exceed the field.
-- A negative C literal (U4 >= 0x80000000) whose low bits fit is
-- valid but a code smell — warn, don't error.
local low_bits = value % (bit.lshift(1, width))
if value > field_max then
if value >= 0x80000000 and low_bits <= field_max then
findings[#findings + 1] = {
check = "immediate_field_width",
kind = "warning",
atom = atom.name,
line = ev_line,
msg = string.format(
"%s: negative immediate %d at arg %d on unsigned %d-bit field (truncated to %d by IMM_MASK)",
ev_ident, signed_value, rule.arg, width, low_bits),
}
else
findings[#findings + 1] = {
check = "immediate_field_width",
kind = "error",
atom = atom.name,
line = ev_line,
msg = string.format(
"%s: immediate %d at arg %d overflows %d-bit unsigned field (valid 0..%d)",
ev_ident, value, rule.arg, width, field_max),
}
end
end
end
end
end
end
end
end
end
-- CHECK_RULES — data-driven check dispatch (Muratori: data over control flow) -- CHECK_RULES — data-driven check dispatch (Muratori: data over control flow)
-- ════════════════════════════════════════════════════════════════════════════ -- ════════════════════════════════════════════════════════════════════════════
@@ -2355,6 +2682,10 @@ local CHECK_RULES = {
{ name = "abi_handoff", per_atom = check_abi_handoff }, { name = "abi_handoff", per_atom = check_abi_handoff },
{ name = "gpu_portstore_shape", per_atom = check_gpu_portstore_shape }, { name = "gpu_portstore_shape", per_atom = check_gpu_portstore_shape },
{ name = "per_atom_cycle_budget", per_atom = check_per_atom_cycle_budget }, { name = "per_atom_cycle_budget", per_atom = check_per_atom_cycle_budget },
{ name = "gte_cr_alias_writes", per_atom = check_gte_cr_alias_writes },
{ name = "rtdiagonal_completeness", per_atom = check_rtdiagonal_completeness },
{ name = "gte_cr_TR_naming", per_atom = check_gte_cr_TR_naming },
{ name = "immediate_field_width", per_atom = check_immediate_field_width },
{ name = "enum_alias_membership", per_source = check_enum_alias_membership }, { name = "enum_alias_membership", per_source = check_enum_alias_membership },
{ name = "atom_type_consistency", per_source = check_atom_type_consistency }, { name = "atom_type_consistency", per_source = check_atom_type_consistency },
{ name = "binds_no_substruct_deref", per_source = check_binds_no_substruct_deref }, { name = "binds_no_substruct_deref", per_source = check_binds_no_substruct_deref },
@@ -2398,6 +2729,11 @@ local function build_corpus_pipe_ctx(ctx)
atom_infos_list = corpus.atom_infos or {}, atom_infos_list = corpus.atom_infos or {},
-- Corpus-wide collisions (recorded by scan_source.merge_corpus_registries). -- Corpus-wide collisions (recorded by scan_source.merge_corpus_registries).
collisions = corpus.collisions or {}, collisions = corpus.collisions or {},
-- GTE control-register alias groups (from `duffle.GTE_CR_ALIAS_GROUPS`).
-- The three new per_atom checks (gte_cr_alias_writes, rtdiagonal_completeness,
-- gte_cr_TR_naming) read from this view. `duffle` is exposed alongside so
-- `find_alias_pair_for` can resolve alias → group without a separate registry.
gte_cr_alias_groups = duffle.GTE_CR_ALIAS_GROUPS or {},
} }
end end
Binary file not shown.
+6
View File
@@ -118,6 +118,12 @@ local PASSES = {
kind = "header-output", kind = "header-output",
deps = {"scan-source", "word-counts"}, deps = {"scan-source", "word-counts"},
}, },
auto_reg = {
module = "passes.auto_reg",
kind = "header-output",
deps = {"components"},
groups = { "pre-link" },
},
["emission-model"] = { ["emission-model"] = {
module = "passes.emission_model", module = "passes.emission_model",
kind = "validation", kind = "validation",
+129
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_pcsx_redux = 'https://github.com/grumpycoders/pcsx-redux.git'
$url_psyq_iwyu = 'https://github.com/johnbaumann/psyq_include_what_you_use.git' $url_psyq_iwyu = 'https://github.com/johnbaumann/psyq_include_what_you_use.git'
$url_lpeg = 'https://github.com/roberto-ieru/LPeg.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_armips = join-path $path_toolchain 'armips'
$path_pcsx_redux = join-path $path_toolchain 'pcsx-redux' $path_pcsx_redux = join-path $path_toolchain 'pcsx-redux'
$path_psyq_iwyu = join-path $path_toolchain 'psyq_iwyu' $path_psyq_iwyu = join-path $path_toolchain 'psyq_iwyu'
$path_lpeg = join-path $path_toolchain 'lpeg' $path_lpeg = join-path $path_toolchain 'lpeg'
$path_mkpsxiso = join-path $path_toolchain 'mkpsxiso'
clone-gitrepo $path_armips $url_armips clone-gitrepo $path_armips $url_armips
clone-gitrepo $path_lpeg $url_lpeg clone-gitrepo $path_lpeg $url_lpeg
clone-gitrepo $path_pcsx_redux $url_pcsx_redux clone-gitrepo $path_pcsx_redux $url_pcsx_redux
clone-gitrepo $path_psyq_iwyu $url_psyq_iwyu clone-gitrepo $path_psyq_iwyu $url_psyq_iwyu
# clone-gitrepo $path_mkpsxiso $url_mkpsxiso
$path_armips_build = join-path $path_armips 'build' $path_armips_build = join-path $path_armips 'build'
verify-path $path_armips_build verify-path $path_armips_build
@@ -56,6 +61,119 @@ if (-not $msbuild_exe) {
} }
$path_pcsx_sln = join-path $path_pcsx_redux 'vsprojects\pcsx-redux.sln' $path_pcsx_sln = join-path $path_pcsx_redux 'vsprojects\pcsx-redux.sln'
# ════════════════════════════════════════════════════════════════════════════
# NuGet restore — required before MSBuild.
# pcsx-redux's .vcxproj files use the legacy packages.config style with
# hardcoded `<Import Project="..\packages\{id}.{ver}\...">` directives.
# MSBuild's `/t:Restore` won't fetch missing packages here (the local
# packages\ dir is checked but no package-source lookup happens), and
# `dotnet restore` errors on packages.config projects, so we walk every
# packages.config, parse out the <package id version/> entries, and pull
# any missing .nupkg directly from api.nuget.org's flat container.
# ════════════════════════════════════════════════════════════════════════════
$path_pcsx_packages = join-path $path_pcsx_redux 'vsprojects\packages'
$nuget_flat_container = 'https://api.nuget.org/v3-flatcontainer'
# Collect required (id, version) pairs from every packages.config.
$required_packages = @{}
Get-ChildItem -Path (join-path $path_pcsx_redux 'vsprojects') -Filter 'packages.config' -Recurse -ErrorAction SilentlyContinue |
ForEach-Object {
[xml]$xml = Get-Content -LiteralPath $_.FullName -Raw
foreach ($pkg in $xml.packages.package) {
$key = '{0}|{1}' -f $pkg.id, $pkg.version
$required_packages[$key] = @{ id = $pkg.id; version = $pkg.version }
}
}
# Ensure the packages root exists.
if (-not (Test-Path -LiteralPath $path_pcsx_packages)) {
New-Item -ItemType Directory -Path $path_pcsx_packages -Force | Out-Null
}
# Download anything missing. Skip the package entirely if its dir already has
# any contents (the legacy packages.config style means the targets file
# location varies per package — `luajit.native` puts it at build/native/,
# `glfw` puts it elsewhere — so we can't probe a specific path; just check
# whether the dir is non-empty).
Add-Type -AssemblyName System.IO.Compression.FileSystem
foreach ($pkg in $required_packages.Values) {
$pkgDir = Join-Path $path_pcsx_packages ('{0}.{1}' -f $pkg.id, $pkg.version)
if ((Test-Path -LiteralPath $pkgDir) -and `
(@(Get-ChildItem -LiteralPath $pkgDir -Recurse -ErrorAction SilentlyContinue).Count -gt 0)) {
continue
}
$url = '{0}/{1}/{2}/{1}.{2}.nupkg' -f $nuget_flat_container, $pkg.id, $pkg.version
$nupkg = Join-Path $pkgDir ('{0}.{1}.nupkg' -f $pkg.id, $pkg.version)
New-Item -ItemType Directory -Path $pkgDir -Force | Out-Null
Write-Host "Fetching NuGet package: $($pkg.id) $($pkg.version)"
try {
Invoke-WebRequest -Uri $url -OutFile $nupkg -UseBasicParsing -ErrorAction Stop
[System.IO.Compression.ZipFile]::ExtractToDirectory($nupkg, $pkgDir)
Remove-Item -LiteralPath $nupkg -Force
} catch {
$msg = $_.Exception.Message
if ($msg -match '404') {
Write-Host " Not on nuget.org (vendored?) — skipping $url"
} else {
Write-Warning "Failed to fetch $url$msg"
}
if (Test-Path -LiteralPath $nupkg) { Remove-Item -LiteralPath $nupkg -Force }
}
}
# ════════════════════════════════════════════════════════════════════════════
# isoffi.lua size guard — `core.vcxproj` #includes src/core/isoffi.lua into
# luaiso.cc via the `-- lualoader, R"EOF(...)EOF"` trick. The raw string
# literal between R"EOF(-- and -- )EOF" must stay under ~16,379 bytes or
# MSVC (19.44) fails with C2026 (its actual raw-string limit is 16,384,
# minus 5 bytes for the `-- lualoader, ` prefix). If the upstream file
# grows past that, trim it: remove license header, trailing whitespace,
# blank separators, inline comments, and shrink 4-space indent to 2-space.
# Idempotent — only writes when the raw string exceeds the limit.
# ════════════════════════════════════════════════════════════════════════════
$path_isoffi = join-path $path_pcsx_redux 'src\core\isoffi.lua'
if (Test-Path -LiteralPath $path_isoffi) {
$content = Get-Content -LiteralPath $path_isoffi -Raw -Encoding utf8
$startMarker = $content.IndexOf('R"EOF(--')
$endMarker = $content.IndexOf('-- )EOF"')
$literalLen = if ($startMarker -ge 0 -and $endMarker -gt $startMarker) {
$endMarker - ($startMarker + 8)
} else { -1 }
# Effective MSVC raw-string limit for the lualoader prefix is 16379 bytes.
if ($literalLen -gt 16379) {
Write-Host "isoffi.lua raw string is $literalLen bytes (>16379); trimming for MSVC C2026 limit."
$lines = $content -split "`n"
$markerIdx = -1
for ($i = 0; $i -lt $lines.Length; $i++) {
if ($lines[$i] -match '^-- \)EOF"') { $markerIdx = $i; break }
}
$newLines = @()
for ($i = 0; $i -lt $lines.Length; $i++) {
$lineNum = $i + 1
$line = $lines[$i]
# Keep the first line and the EOF-marker line untouched.
if ($i -eq 0 -or $i -eq $markerIdx) { $newLines += $line; continue }
# Drop the GPL license header (lines 2-17).
if ($lineNum -ge 2 -and $lineNum -le 17) { continue }
# Drop blank separator lines.
if ($line -match '^\s*$') { continue }
# Drop trailing whitespace.
$line = $line -replace '\s+$', ''
# Drop inline comments (anything from `--` to end of line).
$line = $line -replace '\s*--.*$', ''
# Shrink 4-space indent to 2-space.
$line = $line -replace '^( )', ' '
if ($line -match '^\s*$') { continue }
$newLines += $line
}
($newLines -join "`n") | Out-File -LiteralPath $path_isoffi -Encoding utf8 -NoNewline
$newLen = ((Get-Content -LiteralPath $path_isoffi -Raw -Encoding utf8) `
-replace '.*R"EOF\(--', '' -replace '-- \)EOF".*', '').Length
Write-Host "isoffi.lua trimmed: $literalLen -> $newLen bytes of raw string content."
}
}
& $msbuild_exe $path_pcsx_sln /p:Configuration=Release /p:Platform=x64 /p:PlatformToolset=v143 /m /v:minimal & $msbuild_exe $path_pcsx_sln /p:Configuration=Release /p:Platform=x64 /p:PlatformToolset=v143 /m /v:minimal
# Locate luajit via scoop. `luajit.exe` is on PATH via scoop's shim; # Locate luajit via scoop. `luajit.exe` is on PATH via scoop's shim;
@@ -112,6 +230,17 @@ $lfs_dll_import = join-path $luajit_lib_dir 'libluajit-5.1.dll.a'
# ════════════════════════════════════════════════════════════════════════════ # ════════════════════════════════════════════════════════════════════════════
$path_openbios = join-path $path_pcsx_redux 'src\mips\openbios' $path_openbios = join-path $path_pcsx_redux 'src\mips\openbios'
# Wipe stale *.dep files across src\mips. These cache absolute paths to the
# GCC headers directory; if the toolchain was upgraded (e.g. v14.2.0 → v16.1.0)
# Make reads the stale paths and aborts with "no rule to make target .../stddef.h".
# `make clean` in openbios only clears its own dir — subdirs like
# common/crt0/, modplayer/, and shell/ keep their stale .dep files. Easier to
# just delete the lot before each build than to teach every Makefile about
# deepclean recursion.
Get-ChildItem -Path (join-path $path_pcsx_redux 'src\mips') -Recurse -Filter '*.dep' -ErrorAction SilentlyContinue |
ForEach-Object { Remove-Item -LiteralPath $_.FullName -Force }
push-location $path_openbios push-location $path_openbios
& make clean & make clean
& make & make