sljitNativePPC_common.c revision 1.2 1 /*
2 * Stack-less Just-In-Time compiler
3 *
4 * Copyright 2009-2012 Zoltan Herczeg (hzmester (at) freemail.hu). All rights reserved.
5 *
6 * Redistribution and use in source and binary forms, with or without modification, are
7 * permitted provided that the following conditions are met:
8 *
9 * 1. Redistributions of source code must retain the above copyright notice, this list of
10 * conditions and the following disclaimer.
11 *
12 * 2. Redistributions in binary form must reproduce the above copyright notice, this list
13 * of conditions and the following disclaimer in the documentation and/or other materials
14 * provided with the distribution.
15 *
16 * THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDER(S) AND CONTRIBUTORS ``AS IS'' AND ANY
17 * EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
18 * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT
19 * SHALL THE COPYRIGHT HOLDER(S) OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT,
20 * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED
21 * TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR
22 * BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
23 * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN
24 * ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
25 */
26
27 SLJIT_API_FUNC_ATTRIBUTE SLJIT_CONST char* sljit_get_platform_name(void)
28 {
29 return "PowerPC" SLJIT_CPUINFO;
30 }
31
32 /* Length of an instruction word.
33 Both for ppc-32 and ppc-64. */
34 typedef sljit_ui sljit_ins;
35
36 #ifdef _AIX
37 #include <sys/cache.h>
38 #endif
39
40 #define TMP_REG1 (SLJIT_NO_REGISTERS + 1)
41 #define TMP_REG2 (SLJIT_NO_REGISTERS + 2)
42 #define TMP_REG3 (SLJIT_NO_REGISTERS + 3)
43 #define ZERO_REG (SLJIT_NO_REGISTERS + 4)
44
45 #define TMP_FREG1 (SLJIT_FLOAT_REG4 + 1)
46 #define TMP_FREG2 (SLJIT_FLOAT_REG4 + 2)
47
48 static SLJIT_CONST sljit_ub reg_map[SLJIT_NO_REGISTERS + 5] = {
49 0, 3, 4, 5, 6, 7, 30, 29, 28, 27, 26, 1, 8, 9, 10, 31
50 };
51
52 /* --------------------------------------------------------------------- */
53 /* Instrucion forms */
54 /* --------------------------------------------------------------------- */
55 #define D(d) (reg_map[d] << 21)
56 #define S(s) (reg_map[s] << 21)
57 #define A(a) (reg_map[a] << 16)
58 #define B(b) (reg_map[b] << 11)
59 #define C(c) (reg_map[c] << 6)
60 #define FD(fd) ((fd) << 21)
61 #define FA(fa) ((fa) << 16)
62 #define FB(fb) ((fb) << 11)
63 #define FC(fc) ((fc) << 6)
64 #define IMM(imm) ((imm) & 0xffff)
65 #define CRD(d) ((d) << 21)
66
67 /* Instruction bit sections.
68 OE and Rc flag (see ALT_SET_FLAGS). */
69 #define OERC(flags) (((flags & ALT_SET_FLAGS) >> 10) | (flags & ALT_SET_FLAGS))
70 /* Rc flag (see ALT_SET_FLAGS). */
71 #define RC(flags) ((flags & ALT_SET_FLAGS) >> 10)
72 #define HI(opcode) ((opcode) << 26)
73 #define LO(opcode) ((opcode) << 1)
74
75 #define ADD (HI(31) | LO(266))
76 #define ADDC (HI(31) | LO(10))
77 #define ADDE (HI(31) | LO(138))
78 #define ADDI (HI(14))
79 #define ADDIC (HI(13))
80 #define ADDIS (HI(15))
81 #define ADDME (HI(31) | LO(234))
82 #define AND (HI(31) | LO(28))
83 #define ANDI (HI(28))
84 #define ANDIS (HI(29))
85 #define Bx (HI(18))
86 #define BCx (HI(16))
87 #define BCCTR (HI(19) | LO(528) | (3 << 11))
88 #define BLR (HI(19) | LO(16) | (0x14 << 21))
89 #define CNTLZD (HI(31) | LO(58))
90 #define CNTLZW (HI(31) | LO(26))
91 #define CMP (HI(31) | LO(0))
92 #define CMPI (HI(11))
93 #define CMPL (HI(31) | LO(32))
94 #define CMPLI (HI(10))
95 #define CROR (HI(19) | LO(449))
96 #define DIVD (HI(31) | LO(489))
97 #define DIVDU (HI(31) | LO(457))
98 #define DIVW (HI(31) | LO(491))
99 #define DIVWU (HI(31) | LO(459))
100 #define EXTSB (HI(31) | LO(954))
101 #define EXTSH (HI(31) | LO(922))
102 #define EXTSW (HI(31) | LO(986))
103 #define FABS (HI(63) | LO(264))
104 #define FADD (HI(63) | LO(21))
105 #define FCMPU (HI(63) | LO(0))
106 #define FDIV (HI(63) | LO(18))
107 #define FMR (HI(63) | LO(72))
108 #define FMUL (HI(63) | LO(25))
109 #define FNEG (HI(63) | LO(40))
110 #define FSUB (HI(63) | LO(20))
111 #define LD (HI(58) | 0)
112 #define LWZ (HI(32))
113 #define MFCR (HI(31) | LO(19))
114 #define MFLR (HI(31) | LO(339) | 0x80000)
115 #define MFXER (HI(31) | LO(339) | 0x10000)
116 #define MTCTR (HI(31) | LO(467) | 0x90000)
117 #define MTLR (HI(31) | LO(467) | 0x80000)
118 #define MTXER (HI(31) | LO(467) | 0x10000)
119 #define MULHD (HI(31) | LO(73))
120 #define MULHDU (HI(31) | LO(9))
121 #define MULHW (HI(31) | LO(75))
122 #define MULHWU (HI(31) | LO(11))
123 #define MULLD (HI(31) | LO(233))
124 #define MULLI (HI(7))
125 #define MULLW (HI(31) | LO(235))
126 #define NEG (HI(31) | LO(104))
127 #define NOP (HI(24))
128 #define NOR (HI(31) | LO(124))
129 #define OR (HI(31) | LO(444))
130 #define ORI (HI(24))
131 #define ORIS (HI(25))
132 #define RLDICL (HI(30))
133 #define RLWINM (HI(21))
134 #define SLD (HI(31) | LO(27))
135 #define SLW (HI(31) | LO(24))
136 #define SRAD (HI(31) | LO(794))
137 #define SRADI (HI(31) | LO(413 << 1))
138 #define SRAW (HI(31) | LO(792))
139 #define SRAWI (HI(31) | LO(824))
140 #define SRD (HI(31) | LO(539))
141 #define SRW (HI(31) | LO(536))
142 #define STD (HI(62) | 0)
143 #define STDU (HI(62) | 1)
144 #define STDUX (HI(31) | LO(181))
145 #define STW (HI(36))
146 #define STWU (HI(37))
147 #define STWUX (HI(31) | LO(183))
148 #define SUBF (HI(31) | LO(40))
149 #define SUBFC (HI(31) | LO(8))
150 #define SUBFE (HI(31) | LO(136))
151 #define SUBFIC (HI(8))
152 #define XOR (HI(31) | LO(316))
153 #define XORI (HI(26))
154 #define XORIS (HI(27))
155
156 #define SIMM_MAX (0x7fff)
157 #define SIMM_MIN (-0x8000)
158 #define UIMM_MAX (0xffff)
159
160 #if (defined SLJIT_INDIRECT_CALL && SLJIT_INDIRECT_CALL)
161 SLJIT_API_FUNC_ATTRIBUTE void sljit_set_function_context(void** func_ptr, struct sljit_function_context* context, sljit_w addr, void* func)
162 {
163 sljit_w* ptrs;
164 if (func_ptr)
165 *func_ptr = (void*)context;
166 ptrs = (sljit_w*)func;
167 context->addr = addr ? addr : ptrs[0];
168 context->r2 = ptrs[1];
169 context->r11 = ptrs[2];
170 }
171 #endif
172
173 static int push_inst(struct sljit_compiler *compiler, sljit_ins ins)
174 {
175 sljit_ins *ptr = (sljit_ins*)ensure_buf(compiler, sizeof(sljit_ins));
176 FAIL_IF(!ptr);
177 *ptr = ins;
178 compiler->size++;
179 return SLJIT_SUCCESS;
180 }
181
182 static SLJIT_INLINE int optimize_jump(struct sljit_jump *jump, sljit_ins *code_ptr, sljit_ins *code)
183 {
184 sljit_w diff;
185 sljit_uw target_addr;
186
187 if (jump->flags & SLJIT_REWRITABLE_JUMP)
188 return 0;
189
190 if (jump->flags & JUMP_ADDR)
191 target_addr = jump->u.target;
192 else {
193 SLJIT_ASSERT(jump->flags & JUMP_LABEL);
194 target_addr = (sljit_uw)(code + jump->u.label->size);
195 }
196 diff = ((sljit_w)target_addr - (sljit_w)(code_ptr)) & ~0x3l;
197
198 if (jump->flags & UNCOND_B) {
199 if (diff <= 0x01ffffff && diff >= -0x02000000) {
200 jump->flags |= PATCH_B;
201 return 1;
202 }
203 if (target_addr <= 0x03ffffff) {
204 jump->flags |= PATCH_B | ABSOLUTE_B;
205 return 1;
206 }
207 }
208 else {
209 if (diff <= 0x7fff && diff >= -0x8000) {
210 jump->flags |= PATCH_B;
211 return 1;
212 }
213 if (target_addr <= 0xffff) {
214 jump->flags |= PATCH_B | ABSOLUTE_B;
215 return 1;
216 }
217 }
218 return 0;
219 }
220
221 SLJIT_API_FUNC_ATTRIBUTE void* sljit_generate_code(struct sljit_compiler *compiler)
222 {
223 struct sljit_memory_fragment *buf;
224 sljit_ins *code;
225 sljit_ins *code_ptr;
226 sljit_ins *buf_ptr;
227 sljit_ins *buf_end;
228 sljit_uw word_count;
229 sljit_uw addr;
230
231 struct sljit_label *label;
232 struct sljit_jump *jump;
233 struct sljit_const *const_;
234
235 CHECK_ERROR_PTR();
236 check_sljit_generate_code(compiler);
237 reverse_buf(compiler);
238
239 #if (defined SLJIT_INDIRECT_CALL && SLJIT_INDIRECT_CALL)
240 #if (defined SLJIT_CONFIG_PPC_64 && SLJIT_CONFIG_PPC_64)
241 compiler->size += (compiler->size & 0x1) + (sizeof(struct sljit_function_context) / sizeof(sljit_ins));
242 #else
243 compiler->size += (sizeof(struct sljit_function_context) / sizeof(sljit_ins));
244 #endif
245 #endif
246 code = (sljit_ins*)SLJIT_MALLOC_EXEC(compiler->size * sizeof(sljit_ins));
247 PTR_FAIL_WITH_EXEC_IF(code);
248 buf = compiler->buf;
249
250 code_ptr = code;
251 word_count = 0;
252 label = compiler->labels;
253 jump = compiler->jumps;
254 const_ = compiler->consts;
255 do {
256 buf_ptr = (sljit_ins*)buf->memory;
257 buf_end = buf_ptr + (buf->used_size >> 2);
258 do {
259 *code_ptr = *buf_ptr++;
260 SLJIT_ASSERT(!label || label->size >= word_count);
261 SLJIT_ASSERT(!jump || jump->addr >= word_count);
262 SLJIT_ASSERT(!const_ || const_->addr >= word_count);
263 /* These structures are ordered by their address. */
264 if (label && label->size == word_count) {
265 /* Just recording the address. */
266 label->addr = (sljit_uw)code_ptr;
267 label->size = code_ptr - code;
268 label = label->next;
269 }
270 if (jump && jump->addr == word_count) {
271 #if (defined SLJIT_CONFIG_PPC_32 && SLJIT_CONFIG_PPC_32)
272 jump->addr = (sljit_uw)(code_ptr - 3);
273 #else
274 jump->addr = (sljit_uw)(code_ptr - 6);
275 #endif
276 if (optimize_jump(jump, code_ptr, code)) {
277 #if (defined SLJIT_CONFIG_PPC_32 && SLJIT_CONFIG_PPC_32)
278 code_ptr[-3] = code_ptr[0];
279 code_ptr -= 3;
280 #else
281 code_ptr[-6] = code_ptr[0];
282 code_ptr -= 6;
283 #endif
284 }
285 jump = jump->next;
286 }
287 if (const_ && const_->addr == word_count) {
288 /* Just recording the address. */
289 const_->addr = (sljit_uw)code_ptr;
290 const_ = const_->next;
291 }
292 code_ptr ++;
293 word_count ++;
294 } while (buf_ptr < buf_end);
295
296 buf = buf->next;
297 } while (buf);
298
299 if (label && label->size == word_count) {
300 label->addr = (sljit_uw)code_ptr;
301 label->size = code_ptr - code;
302 label = label->next;
303 }
304
305 SLJIT_ASSERT(!label);
306 SLJIT_ASSERT(!jump);
307 SLJIT_ASSERT(!const_);
308 #if (defined SLJIT_INDIRECT_CALL && SLJIT_INDIRECT_CALL)
309 SLJIT_ASSERT(code_ptr - code <= (int)compiler->size - (sizeof(struct sljit_function_context) / sizeof(sljit_ins)));
310 #else
311 SLJIT_ASSERT(code_ptr - code <= (int)compiler->size);
312 #endif
313
314 jump = compiler->jumps;
315 while (jump) {
316 do {
317 addr = (jump->flags & JUMP_LABEL) ? jump->u.label->addr : jump->u.target;
318 buf_ptr = (sljit_ins*)jump->addr;
319 if (jump->flags & PATCH_B) {
320 if (jump->flags & UNCOND_B) {
321 if (!(jump->flags & ABSOLUTE_B)) {
322 addr = addr - jump->addr;
323 SLJIT_ASSERT((sljit_w)addr <= 0x01ffffff && (sljit_w)addr >= -0x02000000);
324 *buf_ptr = Bx | (addr & 0x03fffffc) | ((*buf_ptr) & 0x1);
325 }
326 else {
327 SLJIT_ASSERT(addr <= 0x03ffffff);
328 *buf_ptr = Bx | (addr & 0x03fffffc) | 0x2 | ((*buf_ptr) & 0x1);
329 }
330 }
331 else {
332 if (!(jump->flags & ABSOLUTE_B)) {
333 addr = addr - jump->addr;
334 SLJIT_ASSERT((sljit_w)addr <= 0x7fff && (sljit_w)addr >= -0x8000);
335 *buf_ptr = BCx | (addr & 0xfffc) | ((*buf_ptr) & 0x03ff0001);
336 }
337 else {
338 addr = addr & ~0x3l;
339 SLJIT_ASSERT(addr <= 0xffff);
340 *buf_ptr = BCx | (addr & 0xfffc) | 0x2 | ((*buf_ptr) & 0x03ff0001);
341 }
342
343 }
344 break;
345 }
346 /* Set the fields of immediate loads. */
347 #if (defined SLJIT_CONFIG_PPC_32 && SLJIT_CONFIG_PPC_32)
348 buf_ptr[0] = (buf_ptr[0] & 0xffff0000) | ((addr >> 16) & 0xffff);
349 buf_ptr[1] = (buf_ptr[1] & 0xffff0000) | (addr & 0xffff);
350 #else
351 buf_ptr[0] = (buf_ptr[0] & 0xffff0000) | ((addr >> 48) & 0xffff);
352 buf_ptr[1] = (buf_ptr[1] & 0xffff0000) | ((addr >> 32) & 0xffff);
353 buf_ptr[3] = (buf_ptr[3] & 0xffff0000) | ((addr >> 16) & 0xffff);
354 buf_ptr[4] = (buf_ptr[4] & 0xffff0000) | (addr & 0xffff);
355 #endif
356 } while (0);
357 jump = jump->next;
358 }
359
360 SLJIT_CACHE_FLUSH(code, code_ptr);
361 compiler->error = SLJIT_ERR_COMPILED;
362 compiler->executable_size = compiler->size * sizeof(sljit_ins);
363
364 #if (defined SLJIT_INDIRECT_CALL && SLJIT_INDIRECT_CALL)
365 #if (defined SLJIT_CONFIG_PPC_64 && SLJIT_CONFIG_PPC_64)
366 if (((sljit_w)code_ptr) & 0x4)
367 code_ptr++;
368 sljit_set_function_context(NULL, (struct sljit_function_context*)code_ptr, (sljit_w)code, (void*)sljit_generate_code);
369 return code_ptr;
370 #else
371 sljit_set_function_context(NULL, (struct sljit_function_context*)code_ptr, (sljit_w)code, (void*)sljit_generate_code);
372 return code_ptr;
373 #endif
374 #else
375 return code;
376 #endif
377 }
378
379 /* --------------------------------------------------------------------- */
380 /* Entry, exit */
381 /* --------------------------------------------------------------------- */
382
383 /* inp_flags: */
384
385 /* Creates an index in data_transfer_insts array. */
386 #define LOAD_DATA 0x01
387 #define INDEXED 0x02
388 #define WRITE_BACK 0x04
389 #define WORD_DATA 0x00
390 #define BYTE_DATA 0x08
391 #define HALF_DATA 0x10
392 #define INT_DATA 0x18
393 #define SIGNED_DATA 0x20
394 /* Separates integer and floating point registers */
395 #define GPR_REG 0x3f
396 #define DOUBLE_DATA 0x40
397
398 #define MEM_MASK 0x7f
399
400 /* Other inp_flags. */
401
402 #define ARG_TEST 0x000100
403 /* Integer opertion and set flags -> requires exts on 64 bit systems. */
404 #define ALT_SIGN_EXT 0x000200
405 /* This flag affects the RC() and OERC() macros. */
406 #define ALT_SET_FLAGS 0x000400
407 #define ALT_FORM1 0x010000
408 #define ALT_FORM2 0x020000
409 #define ALT_FORM3 0x040000
410 #define ALT_FORM4 0x080000
411 #define ALT_FORM5 0x100000
412 #define ALT_FORM6 0x200000
413
414 /* Source and destination is register. */
415 #define REG_DEST 0x000001
416 #define REG1_SOURCE 0x000002
417 #define REG2_SOURCE 0x000004
418 /* getput_arg_fast returned true. */
419 #define FAST_DEST 0x000008
420 /* Multiple instructions are required. */
421 #define SLOW_DEST 0x000010
422 /*
423 ALT_SIGN_EXT 0x000200
424 ALT_SET_FLAGS 0x000400
425 ALT_FORM1 0x010000
426 ...
427 ALT_FORM6 0x200000 */
428
429 #if (defined SLJIT_CONFIG_PPC_32 && SLJIT_CONFIG_PPC_32)
430 #include "sljitNativePPC_32.c"
431 #else
432 #include "sljitNativePPC_64.c"
433 #endif
434
435 #if (defined SLJIT_CONFIG_PPC_32 && SLJIT_CONFIG_PPC_32)
436 #define STACK_STORE STW
437 #define STACK_LOAD LWZ
438 #else
439 #define STACK_STORE STD
440 #define STACK_LOAD LD
441 #endif
442
443 SLJIT_API_FUNC_ATTRIBUTE int sljit_emit_enter(struct sljit_compiler *compiler, int args, int temporaries, int saveds, int local_size)
444 {
445 CHECK_ERROR();
446 check_sljit_emit_enter(compiler, args, temporaries, saveds, local_size);
447
448 compiler->temporaries = temporaries;
449 compiler->saveds = saveds;
450 #if (defined SLJIT_DEBUG && SLJIT_DEBUG)
451 compiler->logical_local_size = local_size;
452 #endif
453
454 FAIL_IF(push_inst(compiler, MFLR | D(0)));
455 FAIL_IF(push_inst(compiler, STACK_STORE | S(ZERO_REG) | A(SLJIT_LOCALS_REG) | IMM(-(int)(sizeof(sljit_w))) ));
456 if (saveds >= 1)
457 FAIL_IF(push_inst(compiler, STACK_STORE | S(SLJIT_SAVED_REG1) | A(SLJIT_LOCALS_REG) | IMM(-2 * (int)(sizeof(sljit_w))) ));
458 if (saveds >= 2)
459 FAIL_IF(push_inst(compiler, STACK_STORE | S(SLJIT_SAVED_REG2) | A(SLJIT_LOCALS_REG) | IMM(-3 * (int)(sizeof(sljit_w))) ));
460 if (saveds >= 3)
461 FAIL_IF(push_inst(compiler, STACK_STORE | S(SLJIT_SAVED_REG3) | A(SLJIT_LOCALS_REG) | IMM(-4 * (int)(sizeof(sljit_w))) ));
462 if (saveds >= 4)
463 FAIL_IF(push_inst(compiler, STACK_STORE | S(SLJIT_SAVED_EREG1) | A(SLJIT_LOCALS_REG) | IMM(-5 * (int)(sizeof(sljit_w))) ));
464 if (saveds >= 5)
465 FAIL_IF(push_inst(compiler, STACK_STORE | S(SLJIT_SAVED_EREG2) | A(SLJIT_LOCALS_REG) | IMM(-6 * (int)(sizeof(sljit_w))) ));
466 FAIL_IF(push_inst(compiler, STACK_STORE | S(0) | A(SLJIT_LOCALS_REG) | IMM(sizeof(sljit_w)) ));
467
468 FAIL_IF(push_inst(compiler, ADDI | D(ZERO_REG) | A(0) | 0));
469 if (args >= 1)
470 FAIL_IF(push_inst(compiler, OR | S(SLJIT_TEMPORARY_REG1) | A(SLJIT_SAVED_REG1) | B(SLJIT_TEMPORARY_REG1)));
471 if (args >= 2)
472 FAIL_IF(push_inst(compiler, OR | S(SLJIT_TEMPORARY_REG2) | A(SLJIT_SAVED_REG2) | B(SLJIT_TEMPORARY_REG2)));
473 if (args >= 3)
474 FAIL_IF(push_inst(compiler, OR | S(SLJIT_TEMPORARY_REG3) | A(SLJIT_SAVED_REG3) | B(SLJIT_TEMPORARY_REG3)));
475
476 #if (defined SLJIT_INDIRECT_CALL && SLJIT_INDIRECT_CALL)
477 compiler->local_size = (1 + saveds + 6 + 8) * sizeof(sljit_w) + local_size;
478 #else
479 compiler->local_size = (1 + saveds + 2) * sizeof(sljit_w) + local_size;
480 #endif
481 compiler->local_size = (compiler->local_size + 15) & ~0xf;
482
483 #if (defined SLJIT_CONFIG_PPC_32 && SLJIT_CONFIG_PPC_32)
484 if (compiler->local_size <= SIMM_MAX)
485 FAIL_IF(push_inst(compiler, STWU | S(SLJIT_LOCALS_REG) | A(SLJIT_LOCALS_REG) | IMM(-compiler->local_size)));
486 else {
487 FAIL_IF(load_immediate(compiler, 0, -compiler->local_size));
488 FAIL_IF(push_inst(compiler, STWUX | S(SLJIT_LOCALS_REG) | A(SLJIT_LOCALS_REG) | B(0)));
489 }
490 #else
491 if (compiler->local_size <= SIMM_MAX)
492 FAIL_IF(push_inst(compiler, STDU | S(SLJIT_LOCALS_REG) | A(SLJIT_LOCALS_REG) | IMM(-compiler->local_size)));
493 else {
494 FAIL_IF(load_immediate(compiler, 0, -compiler->local_size));
495 FAIL_IF(push_inst(compiler, STDUX | S(SLJIT_LOCALS_REG) | A(SLJIT_LOCALS_REG) | B(0)));
496 }
497 #endif
498
499 return SLJIT_SUCCESS;
500 }
501
502 SLJIT_API_FUNC_ATTRIBUTE void sljit_set_context(struct sljit_compiler *compiler, int args, int temporaries, int saveds, int local_size)
503 {
504 CHECK_ERROR_VOID();
505 check_sljit_set_context(compiler, args, temporaries, saveds, local_size);
506
507 compiler->temporaries = temporaries;
508 compiler->saveds = saveds;
509 #if (defined SLJIT_DEBUG && SLJIT_DEBUG)
510 compiler->logical_local_size = local_size;
511 #endif
512
513 #if (defined SLJIT_INDIRECT_CALL && SLJIT_INDIRECT_CALL)
514 compiler->local_size = (1 + saveds + 6 + 8) * sizeof(sljit_w) + local_size;
515 #else
516 compiler->local_size = (1 + saveds + 2) * sizeof(sljit_w) + local_size;
517 #endif
518 compiler->local_size = (compiler->local_size + 15) & ~0xf;
519 }
520
521 SLJIT_API_FUNC_ATTRIBUTE int sljit_emit_return(struct sljit_compiler *compiler, int op, int src, sljit_w srcw)
522 {
523 CHECK_ERROR();
524 check_sljit_emit_return(compiler, op, src, srcw);
525
526 FAIL_IF(emit_mov_before_return(compiler, op, src, srcw));
527
528 if (compiler->local_size <= SIMM_MAX)
529 FAIL_IF(push_inst(compiler, ADDI | D(SLJIT_LOCALS_REG) | A(SLJIT_LOCALS_REG) | IMM(compiler->local_size)));
530 else {
531 FAIL_IF(load_immediate(compiler, 0, compiler->local_size));
532 FAIL_IF(push_inst(compiler, ADD | D(SLJIT_LOCALS_REG) | A(SLJIT_LOCALS_REG) | B(0)));
533 }
534
535 FAIL_IF(push_inst(compiler, STACK_LOAD | D(0) | A(SLJIT_LOCALS_REG) | IMM(sizeof(sljit_w))));
536 if (compiler->saveds >= 5)
537 FAIL_IF(push_inst(compiler, STACK_LOAD | D(SLJIT_SAVED_EREG2) | A(SLJIT_LOCALS_REG) | IMM(-6 * (int)(sizeof(sljit_w))) ));
538 if (compiler->saveds >= 4)
539 FAIL_IF(push_inst(compiler, STACK_LOAD | D(SLJIT_SAVED_EREG1) | A(SLJIT_LOCALS_REG) | IMM(-5 * (int)(sizeof(sljit_w))) ));
540 if (compiler->saveds >= 3)
541 FAIL_IF(push_inst(compiler, STACK_LOAD | D(SLJIT_SAVED_REG3) | A(SLJIT_LOCALS_REG) | IMM(-4 * (int)(sizeof(sljit_w))) ));
542 if (compiler->saveds >= 2)
543 FAIL_IF(push_inst(compiler, STACK_LOAD | D(SLJIT_SAVED_REG2) | A(SLJIT_LOCALS_REG) | IMM(-3 * (int)(sizeof(sljit_w))) ));
544 if (compiler->saveds >= 1)
545 FAIL_IF(push_inst(compiler, STACK_LOAD | D(SLJIT_SAVED_REG1) | A(SLJIT_LOCALS_REG) | IMM(-2 * (int)(sizeof(sljit_w))) ));
546 FAIL_IF(push_inst(compiler, STACK_LOAD | D(ZERO_REG) | A(SLJIT_LOCALS_REG) | IMM(-(int)(sizeof(sljit_w))) ));
547
548 FAIL_IF(push_inst(compiler, MTLR | S(0)));
549 FAIL_IF(push_inst(compiler, BLR));
550
551 return SLJIT_SUCCESS;
552 }
553
554 #undef STACK_STORE
555 #undef STACK_LOAD
556
557 /* --------------------------------------------------------------------- */
558 /* Operators */
559 /* --------------------------------------------------------------------- */
560
561 /* i/x - immediate/indexed form
562 n/w - no write-back / write-back (1 bit)
563 s/l - store/load (1 bit)
564 u/s - signed/unsigned (1 bit)
565 w/b/h/i - word/byte/half/int allowed (2 bit)
566 It contans 32 items, but not all are different. */
567
568 /* 64 bit only: [reg+imm] must be aligned to 4 bytes. */
569 #define ADDR_MODE2 0x10000
570 /* 64-bit only: there is no lwau instruction. */
571 #define UPDATE_REQ 0x20000
572
573 #if (defined SLJIT_CONFIG_PPC_32 && SLJIT_CONFIG_PPC_32)
574 #define ARCH_32_64(a, b) a
575 #define INST_CODE_AND_DST(inst, flags, reg) \
576 ((inst) | (((flags) & MEM_MASK) <= GPR_REG ? D(reg) : FD(reg)))
577 #else
578 #define ARCH_32_64(a, b) b
579 #define INST_CODE_AND_DST(inst, flags, reg) \
580 (((inst) & ~(ADDR_MODE2 | UPDATE_REQ)) | (((flags) & MEM_MASK) <= GPR_REG ? D(reg) : FD(reg)))
581 #endif
582
583 static SLJIT_CONST sljit_ins data_transfer_insts[64 + 4] = {
584
585 /* -------- Unsigned -------- */
586
587 /* Word. */
588
589 /* u w n i s */ ARCH_32_64(HI(36) /* stw */, HI(62) | ADDR_MODE2 | 0x0 /* std */),
590 /* u w n i l */ ARCH_32_64(HI(32) /* lwz */, HI(58) | ADDR_MODE2 | 0x0 /* ld */),
591 /* u w n x s */ ARCH_32_64(HI(31) | LO(151) /* stwx */, HI(31) | LO(149) /* stdx */),
592 /* u w n x l */ ARCH_32_64(HI(31) | LO(23) /* lwzx */, HI(31) | LO(21) /* ldx */),
593
594 /* u w w i s */ ARCH_32_64(HI(37) /* stwu */, HI(62) | ADDR_MODE2 | 0x1 /* stdu */),
595 /* u w w i l */ ARCH_32_64(HI(33) /* lwzu */, HI(58) | ADDR_MODE2 | 0x1 /* ldu */),
596 /* u w w x s */ ARCH_32_64(HI(31) | LO(183) /* stwux */, HI(31) | LO(181) /* stdux */),
597 /* u w w x l */ ARCH_32_64(HI(31) | LO(55) /* lwzux */, HI(31) | LO(53) /* ldux */),
598
599 /* Byte. */
600
601 /* u b n i s */ HI(38) /* stb */,
602 /* u b n i l */ HI(34) /* lbz */,
603 /* u b n x s */ HI(31) | LO(215) /* stbx */,
604 /* u b n x l */ HI(31) | LO(87) /* lbzx */,
605
606 /* u b w i s */ HI(39) /* stbu */,
607 /* u b w i l */ HI(35) /* lbzu */,
608 /* u b w x s */ HI(31) | LO(247) /* stbux */,
609 /* u b w x l */ HI(31) | LO(119) /* lbzux */,
610
611 /* Half. */
612
613 /* u h n i s */ HI(44) /* sth */,
614 /* u h n i l */ HI(40) /* lhz */,
615 /* u h n x s */ HI(31) | LO(407) /* sthx */,
616 /* u h n x l */ HI(31) | LO(279) /* lhzx */,
617
618 /* u h w i s */ HI(45) /* sthu */,
619 /* u h w i l */ HI(41) /* lhzu */,
620 /* u h w x s */ HI(31) | LO(439) /* sthux */,
621 /* u h w x l */ HI(31) | LO(311) /* lhzux */,
622
623 /* Int. */
624
625 /* u i n i s */ HI(36) /* stw */,
626 /* u i n i l */ HI(32) /* lwz */,
627 /* u i n x s */ HI(31) | LO(151) /* stwx */,
628 /* u i n x l */ HI(31) | LO(23) /* lwzx */,
629
630 /* u i w i s */ HI(37) /* stwu */,
631 /* u i w i l */ HI(33) /* lwzu */,
632 /* u i w x s */ HI(31) | LO(183) /* stwux */,
633 /* u i w x l */ HI(31) | LO(55) /* lwzux */,
634
635 /* -------- Signed -------- */
636
637 /* Word. */
638
639 /* s w n i s */ ARCH_32_64(HI(36) /* stw */, HI(62) | ADDR_MODE2 | 0x0 /* std */),
640 /* s w n i l */ ARCH_32_64(HI(32) /* lwz */, HI(58) | ADDR_MODE2 | 0x0 /* ld */),
641 /* s w n x s */ ARCH_32_64(HI(31) | LO(151) /* stwx */, HI(31) | LO(149) /* stdx */),
642 /* s w n x l */ ARCH_32_64(HI(31) | LO(23) /* lwzx */, HI(31) | LO(21) /* ldx */),
643
644 /* s w w i s */ ARCH_32_64(HI(37) /* stwu */, HI(62) | ADDR_MODE2 | 0x1 /* stdu */),
645 /* s w w i l */ ARCH_32_64(HI(33) /* lwzu */, HI(58) | ADDR_MODE2 | 0x1 /* ldu */),
646 /* s w w x s */ ARCH_32_64(HI(31) | LO(183) /* stwux */, HI(31) | LO(181) /* stdux */),
647 /* s w w x l */ ARCH_32_64(HI(31) | LO(55) /* lwzux */, HI(31) | LO(53) /* ldux */),
648
649 /* Byte. */
650
651 /* s b n i s */ HI(38) /* stb */,
652 /* s b n i l */ HI(34) /* lbz */ /* EXTS_REQ */,
653 /* s b n x s */ HI(31) | LO(215) /* stbx */,
654 /* s b n x l */ HI(31) | LO(87) /* lbzx */ /* EXTS_REQ */,
655
656 /* s b w i s */ HI(39) /* stbu */,
657 /* s b w i l */ HI(35) /* lbzu */ /* EXTS_REQ */,
658 /* s b w x s */ HI(31) | LO(247) /* stbux */,
659 /* s b w x l */ HI(31) | LO(119) /* lbzux */ /* EXTS_REQ */,
660
661 /* Half. */
662
663 /* s h n i s */ HI(44) /* sth */,
664 /* s h n i l */ HI(42) /* lha */,
665 /* s h n x s */ HI(31) | LO(407) /* sthx */,
666 /* s h n x l */ HI(31) | LO(343) /* lhax */,
667
668 /* s h w i s */ HI(45) /* sthu */,
669 /* s h w i l */ HI(43) /* lhau */,
670 /* s h w x s */ HI(31) | LO(439) /* sthux */,
671 /* s h w x l */ HI(31) | LO(375) /* lhaux */,
672
673 /* Int. */
674
675 /* s i n i s */ HI(36) /* stw */,
676 /* s i n i l */ ARCH_32_64(HI(32) /* lwz */, HI(58) | ADDR_MODE2 | 0x2 /* lwa */),
677 /* s i n x s */ HI(31) | LO(151) /* stwx */,
678 /* s i n x l */ ARCH_32_64(HI(31) | LO(23) /* lwzx */, HI(31) | LO(341) /* lwax */),
679
680 /* s i w i s */ HI(37) /* stwu */,
681 /* s i w i l */ ARCH_32_64(HI(33) /* lwzu */, HI(58) | ADDR_MODE2 | UPDATE_REQ | 0x2 /* lwa */),
682 /* s i w x s */ HI(31) | LO(183) /* stwux */,
683 /* s i w x l */ ARCH_32_64(HI(31) | LO(55) /* lwzux */, HI(31) | LO(373) /* lwaux */),
684
685 /* -------- Double -------- */
686
687 /* d n i s */ HI(54) /* stfd */,
688 /* d n i l */ HI(50) /* lfd */,
689 /* d n x s */ HI(31) | LO(727) /* stfdx */,
690 /* d n x l */ HI(31) | LO(599) /* lfdx */,
691
692 };
693
694 #undef ARCH_32_64
695
696 /* Simple cases, (no caching is required). */
697 static int getput_arg_fast(struct sljit_compiler *compiler, int inp_flags, int reg, int arg, sljit_w argw)
698 {
699 sljit_ins inst;
700 #if (defined SLJIT_CONFIG_PPC_64 && SLJIT_CONFIG_PPC_64)
701 int tmp_reg;
702 #endif
703
704 SLJIT_ASSERT(arg & SLJIT_MEM);
705 if (!(arg & 0xf)) {
706 #if (defined SLJIT_CONFIG_PPC_32 && SLJIT_CONFIG_PPC_32)
707 if (argw <= SIMM_MAX && argw >= SIMM_MIN) {
708 if (inp_flags & ARG_TEST)
709 return 1;
710
711 inst = data_transfer_insts[(inp_flags & ~WRITE_BACK) & MEM_MASK];
712 SLJIT_ASSERT(!(inst & (ADDR_MODE2 | UPDATE_REQ)));
713 push_inst(compiler, INST_CODE_AND_DST(inst, inp_flags, reg) | IMM(argw));
714 return -1;
715 }
716 #else
717 inst = data_transfer_insts[(inp_flags & ~WRITE_BACK) & MEM_MASK];
718 if (argw <= SIMM_MAX && argw >= SIMM_MIN &&
719 (!(inst & ADDR_MODE2) || (argw & 0x3) == 0)) {
720 if (inp_flags & ARG_TEST)
721 return 1;
722
723 push_inst(compiler, INST_CODE_AND_DST(inst, inp_flags, reg) | IMM(argw));
724 return -1;
725 }
726 #endif
727 return 0;
728 }
729
730 if (!(arg & 0xf0)) {
731 #if (defined SLJIT_CONFIG_PPC_32 && SLJIT_CONFIG_PPC_32)
732 if (argw <= SIMM_MAX && argw >= SIMM_MIN) {
733 if (inp_flags & ARG_TEST)
734 return 1;
735
736 inst = data_transfer_insts[inp_flags & MEM_MASK];
737 SLJIT_ASSERT(!(inst & (ADDR_MODE2 | UPDATE_REQ)));
738 push_inst(compiler, INST_CODE_AND_DST(inst, inp_flags, reg) | A(arg & 0xf) | IMM(argw));
739 return -1;
740 }
741 #else
742 inst = data_transfer_insts[inp_flags & MEM_MASK];
743 if (argw <= SIMM_MAX && argw >= SIMM_MIN && (!(inst & ADDR_MODE2) || (argw & 0x3) == 0)) {
744 if (inp_flags & ARG_TEST)
745 return 1;
746
747 if ((inp_flags & WRITE_BACK) && (inst & UPDATE_REQ)) {
748 tmp_reg = (inp_flags & LOAD_DATA) ? (arg & 0xf) : TMP_REG3;
749 if (push_inst(compiler, ADDI | D(tmp_reg) | A(arg & 0xf) | IMM(argw)))
750 return -1;
751 arg = tmp_reg | SLJIT_MEM;
752 argw = 0;
753 }
754 push_inst(compiler, INST_CODE_AND_DST(inst, inp_flags, reg) | A(arg & 0xf) | IMM(argw));
755 return -1;
756 }
757 #endif
758 }
759 else if (!(argw & 0x3)) {
760 if (inp_flags & ARG_TEST)
761 return 1;
762 inst = data_transfer_insts[(inp_flags | INDEXED) & MEM_MASK];
763 SLJIT_ASSERT(!(inst & (ADDR_MODE2 | UPDATE_REQ)));
764 push_inst(compiler, INST_CODE_AND_DST(inst, inp_flags, reg) | A(arg & 0xf) | B((arg >> 4) & 0xf));
765 return -1;
766 }
767 return 0;
768 }
769
770 /* See getput_arg below.
771 Note: can_cache is called only for binary operators. Those operator always
772 uses word arguments without write back. */
773 static int can_cache(int arg, sljit_w argw, int next_arg, sljit_w next_argw)
774 {
775 SLJIT_ASSERT((arg & SLJIT_MEM) && (next_arg & SLJIT_MEM));
776
777 if (!(arg & 0xf))
778 return (next_arg & SLJIT_MEM) && ((sljit_uw)argw - (sljit_uw)next_argw <= SIMM_MAX || (sljit_uw)next_argw - (sljit_uw)argw <= SIMM_MAX);
779
780 if (arg & 0xf0)
781 return ((arg & 0xf0) == (next_arg & 0xf0) && (argw & 0x3) == (next_argw & 0x3));
782
783 if (argw <= SIMM_MAX && argw >= SIMM_MIN) {
784 if (arg == next_arg && (next_argw >= SIMM_MAX && next_argw <= SIMM_MIN))
785 return 1;
786 }
787
788 if (arg == next_arg && ((sljit_uw)argw - (sljit_uw)next_argw <= SIMM_MAX || (sljit_uw)next_argw - (sljit_uw)argw <= SIMM_MAX))
789 return 1;
790
791 return 0;
792 }
793
794 #if (defined SLJIT_CONFIG_PPC_64 && SLJIT_CONFIG_PPC_64)
795 #define ADJUST_CACHED_IMM(imm) \
796 if ((inst & ADDR_MODE2) && (imm & 0x3)) { \
797 /* Adjust cached value. Fortunately this is really a rare case */ \
798 compiler->cache_argw += imm & 0x3; \
799 FAIL_IF(push_inst(compiler, ADDI | D(TMP_REG3) | A(TMP_REG3) | (imm & 0x3))); \
800 imm &= ~0x3; \
801 }
802 #else
803 #define ADJUST_CACHED_IMM(imm)
804 #endif
805
806 /* Emit the necessary instructions. See can_cache above. */
807 static int getput_arg(struct sljit_compiler *compiler, int inp_flags, int reg, int arg, sljit_w argw, int next_arg, sljit_w next_argw)
808 {
809 int tmp_r;
810 sljit_ins inst;
811
812 SLJIT_ASSERT(arg & SLJIT_MEM);
813
814 tmp_r = ((inp_flags & LOAD_DATA) && ((inp_flags) & MEM_MASK) <= GPR_REG) ? reg : TMP_REG1;
815 /* Special case for "mov reg, [reg, ... ]". */
816 if ((arg & 0xf) == tmp_r)
817 tmp_r = TMP_REG1;
818
819 if (!(arg & 0xf)) {
820 inst = data_transfer_insts[(inp_flags & ~WRITE_BACK) & MEM_MASK];
821 if ((compiler->cache_arg & SLJIT_IMM) && (((sljit_uw)argw - (sljit_uw)compiler->cache_argw) <= SIMM_MAX || ((sljit_uw)compiler->cache_argw - (sljit_uw)argw) <= SIMM_MAX)) {
822 argw = argw - compiler->cache_argw;
823 ADJUST_CACHED_IMM(argw);
824 SLJIT_ASSERT(!(inst & UPDATE_REQ));
825 return push_inst(compiler, INST_CODE_AND_DST(inst, inp_flags, reg) | A(TMP_REG3) | IMM(argw));
826 }
827
828 if ((next_arg & SLJIT_MEM) && (argw - next_argw <= SIMM_MAX || next_argw - argw <= SIMM_MAX)) {
829 SLJIT_ASSERT(inp_flags & LOAD_DATA);
830
831 compiler->cache_arg = SLJIT_IMM;
832 compiler->cache_argw = argw;
833 tmp_r = TMP_REG3;
834 }
835
836 FAIL_IF(load_immediate(compiler, tmp_r, argw));
837 return push_inst(compiler, INST_CODE_AND_DST(inst, inp_flags, reg) | A(tmp_r));
838 }
839
840 if (SLJIT_UNLIKELY(arg & 0xf0)) {
841 argw &= 0x3;
842 /* Otherwise getput_arg_fast would capture it. */
843 SLJIT_ASSERT(argw);
844
845 if ((SLJIT_MEM | (arg & 0xf0)) == compiler->cache_arg && argw == compiler->cache_argw)
846 tmp_r = TMP_REG3;
847 else {
848 if ((arg & 0xf0) == (next_arg & 0xf0) && argw == (next_argw & 0x3)) {
849 compiler->cache_arg = SLJIT_MEM | (arg & 0xf0);
850 compiler->cache_argw = argw;
851 tmp_r = TMP_REG3;
852 }
853 #if (defined SLJIT_CONFIG_PPC_32 && SLJIT_CONFIG_PPC_32)
854 FAIL_IF(push_inst(compiler, RLWINM | S((arg >> 4) & 0xf) | A(tmp_r) | (argw << 11) | ((31 - argw) << 1)));
855 #else
856 FAIL_IF(push_inst(compiler, RLDI(tmp_r, (arg >> 4) & 0xf, argw, 63 - argw, 1)));
857 #endif
858 }
859 inst = data_transfer_insts[(inp_flags | INDEXED) & MEM_MASK];
860 SLJIT_ASSERT(!(inst & (ADDR_MODE2 | UPDATE_REQ)));
861 return push_inst(compiler, INST_CODE_AND_DST(inst, inp_flags, reg) | A(arg & 0xf) | B(tmp_r));
862 }
863
864 inst = data_transfer_insts[inp_flags & MEM_MASK];
865
866 if (compiler->cache_arg == arg && ((sljit_uw)argw - (sljit_uw)compiler->cache_argw <= SIMM_MAX || (sljit_uw)compiler->cache_argw - (sljit_uw)argw <= SIMM_MAX)) {
867 SLJIT_ASSERT(!(inp_flags & WRITE_BACK));
868 argw = argw - compiler->cache_argw;
869 ADJUST_CACHED_IMM(argw);
870 return push_inst(compiler, INST_CODE_AND_DST(inst, inp_flags, reg) | A(TMP_REG3) | IMM(argw));
871 }
872
873 if ((compiler->cache_arg & SLJIT_IMM) && compiler->cache_argw == argw) {
874 inst = data_transfer_insts[(inp_flags | INDEXED) & MEM_MASK];
875 SLJIT_ASSERT(!(inst & (ADDR_MODE2 | UPDATE_REQ)));
876 return push_inst(compiler, INST_CODE_AND_DST(inst, inp_flags, reg) | A(arg & 0xf) | B(TMP_REG3));
877 }
878
879 if (argw == next_argw && (next_arg & SLJIT_MEM)) {
880 SLJIT_ASSERT(inp_flags & LOAD_DATA);
881 FAIL_IF(load_immediate(compiler, TMP_REG3, argw));
882
883 compiler->cache_arg = SLJIT_IMM;
884 compiler->cache_argw = argw;
885
886 inst = data_transfer_insts[(inp_flags | INDEXED) & MEM_MASK];
887 SLJIT_ASSERT(!(inst & (ADDR_MODE2 | UPDATE_REQ)));
888 return push_inst(compiler, INST_CODE_AND_DST(inst, inp_flags, reg) | A(arg & 0xf) | B(TMP_REG3));
889 }
890
891 if (arg == next_arg && !(inp_flags & WRITE_BACK) && ((sljit_uw)argw - (sljit_uw)next_argw <= SIMM_MAX || (sljit_uw)next_argw - (sljit_uw)argw <= SIMM_MAX)) {
892 SLJIT_ASSERT(inp_flags & LOAD_DATA);
893 FAIL_IF(load_immediate(compiler, TMP_REG3, argw));
894 FAIL_IF(push_inst(compiler, ADD | D(TMP_REG3) | A(TMP_REG3) | B(arg & 0xf)));
895
896 compiler->cache_arg = arg;
897 compiler->cache_argw = argw;
898
899 return push_inst(compiler, INST_CODE_AND_DST(inst, inp_flags, reg) | A(TMP_REG3));
900 }
901
902 /* Get the indexed version instead of the normal one. */
903 inst = data_transfer_insts[(inp_flags | INDEXED) & MEM_MASK];
904 SLJIT_ASSERT(!(inst & (ADDR_MODE2 | UPDATE_REQ)));
905 FAIL_IF(load_immediate(compiler, tmp_r, argw));
906 return push_inst(compiler, INST_CODE_AND_DST(inst, inp_flags, reg) | A(arg & 0xf) | B(tmp_r));
907 }
908
909 static SLJIT_INLINE int emit_op_mem2(struct sljit_compiler *compiler, int flags, int reg, int arg1, sljit_w arg1w, int arg2, sljit_w arg2w)
910 {
911 if (getput_arg_fast(compiler, flags, reg, arg1, arg1w))
912 return compiler->error;
913 return getput_arg(compiler, flags, reg, arg1, arg1w, arg2, arg2w);
914 }
915
916 static int emit_op(struct sljit_compiler *compiler, int op, int input_flags,
917 int dst, sljit_w dstw,
918 int src1, sljit_w src1w,
919 int src2, sljit_w src2w)
920 {
921 /* arg1 goes to TMP_REG1 or src reg
922 arg2 goes to TMP_REG2, imm or src reg
923 TMP_REG3 can be used for caching
924 result goes to TMP_REG2, so put result can use TMP_REG1 and TMP_REG3. */
925 int dst_r;
926 int src1_r;
927 int src2_r;
928 int sugg_src2_r = TMP_REG2;
929 int flags = input_flags & (ALT_FORM1 | ALT_FORM2 | ALT_FORM3 | ALT_FORM4 | ALT_FORM5 | ALT_FORM6 | ALT_SIGN_EXT | ALT_SET_FLAGS);
930
931 compiler->cache_arg = 0;
932 compiler->cache_argw = 0;
933
934 /* Destination check. */
935 if (dst >= SLJIT_TEMPORARY_REG1 && dst <= ZERO_REG) {
936 dst_r = dst;
937 flags |= REG_DEST;
938 if (op >= SLJIT_MOV && op <= SLJIT_MOVU_SI)
939 sugg_src2_r = dst_r;
940 }
941 else if (dst == SLJIT_UNUSED) {
942 if (op >= SLJIT_MOV && op <= SLJIT_MOVU_SI && !(src2 & SLJIT_MEM))
943 return SLJIT_SUCCESS;
944 dst_r = TMP_REG2;
945 }
946 else {
947 SLJIT_ASSERT(dst & SLJIT_MEM);
948 if (getput_arg_fast(compiler, input_flags | ARG_TEST, TMP_REG2, dst, dstw)) {
949 flags |= FAST_DEST;
950 dst_r = TMP_REG2;
951 }
952 else {
953 flags |= SLOW_DEST;
954 dst_r = 0;
955 }
956 }
957
958 /* Source 1. */
959 if (src1 >= SLJIT_TEMPORARY_REG1 && src1 <= ZERO_REG) {
960 src1_r = src1;
961 flags |= REG1_SOURCE;
962 }
963 else if (src1 & SLJIT_IMM) {
964 #if (defined SLJIT_CONFIG_PPC_64 && SLJIT_CONFIG_PPC_64)
965 SLJIT_COMPILE_ASSERT(INT_DATA == 0x18, int_data_check1);
966 if ((input_flags & 0x18) == INT_DATA) {
967 if (input_flags & SIGNED_DATA)
968 src1w = (signed int)src1w;
969 else
970 src1w = (unsigned int)src1w;
971 }
972 #endif
973 FAIL_IF(load_immediate(compiler, TMP_REG1, src1w));
974 src1_r = TMP_REG1;
975 }
976 else if (getput_arg_fast(compiler, input_flags | LOAD_DATA, TMP_REG1, src1, src1w)) {
977 FAIL_IF(compiler->error);
978 src1_r = TMP_REG1;
979 }
980 else
981 src1_r = 0;
982
983 /* Source 2. */
984 if (src2 >= SLJIT_TEMPORARY_REG1 && src2 <= ZERO_REG) {
985 src2_r = src2;
986 flags |= REG2_SOURCE;
987 if (!(flags & REG_DEST) && op >= SLJIT_MOV && op <= SLJIT_MOVU_SI)
988 dst_r = src2_r;
989 }
990 else if (src2 & SLJIT_IMM) {
991 #if (defined SLJIT_CONFIG_PPC_64 && SLJIT_CONFIG_PPC_64)
992 SLJIT_COMPILE_ASSERT(INT_DATA == 0x18, int_data_check2);
993 if ((input_flags & 0x18) == INT_DATA) {
994 if (input_flags & SIGNED_DATA)
995 src2w = (signed int)src2w;
996 else
997 src2w = (unsigned int)src2w;
998 }
999 #endif
1000 FAIL_IF(load_immediate(compiler, sugg_src2_r, src2w));
1001 src2_r = sugg_src2_r;
1002 }
1003 else if (getput_arg_fast(compiler, input_flags | LOAD_DATA, sugg_src2_r, src2, src2w)) {
1004 FAIL_IF(compiler->error);
1005 src2_r = sugg_src2_r;
1006 }
1007 else
1008 src2_r = 0;
1009
1010 /* src1_r, src2_r and dst_r can be zero (=unprocessed).
1011 All arguments are complex addressing modes, and it is a binary operator. */
1012 if (src1_r == 0 && src2_r == 0 && dst_r == 0) {
1013 if (!can_cache(src1, src1w, src2, src2w) && can_cache(src1, src1w, dst, dstw)) {
1014 FAIL_IF(getput_arg(compiler, input_flags | LOAD_DATA, TMP_REG2, src2, src2w, src1, src1w));
1015 FAIL_IF(getput_arg(compiler, input_flags | LOAD_DATA, TMP_REG1, src1, src1w, dst, dstw));
1016 }
1017 else {
1018 FAIL_IF(getput_arg(compiler, input_flags | LOAD_DATA, TMP_REG1, src1, src1w, src2, src2w));
1019 FAIL_IF(getput_arg(compiler, input_flags | LOAD_DATA, TMP_REG2, src2, src2w, dst, dstw));
1020 }
1021 src1_r = TMP_REG1;
1022 src2_r = TMP_REG2;
1023 }
1024 else if (src1_r == 0 && src2_r == 0) {
1025 FAIL_IF(getput_arg(compiler, input_flags | LOAD_DATA, TMP_REG1, src1, src1w, src2, src2w));
1026 src1_r = TMP_REG1;
1027 }
1028 else if (src1_r == 0 && dst_r == 0) {
1029 FAIL_IF(getput_arg(compiler, input_flags | LOAD_DATA, TMP_REG1, src1, src1w, dst, dstw));
1030 src1_r = TMP_REG1;
1031 }
1032 else if (src2_r == 0 && dst_r == 0) {
1033 FAIL_IF(getput_arg(compiler, input_flags | LOAD_DATA, sugg_src2_r, src2, src2w, dst, dstw));
1034 src2_r = sugg_src2_r;
1035 }
1036
1037 if (dst_r == 0)
1038 dst_r = TMP_REG2;
1039
1040 if (src1_r == 0) {
1041 FAIL_IF(getput_arg(compiler, input_flags | LOAD_DATA, TMP_REG1, src1, src1w, 0, 0));
1042 src1_r = TMP_REG1;
1043 }
1044
1045 if (src2_r == 0) {
1046 FAIL_IF(getput_arg(compiler, input_flags | LOAD_DATA, sugg_src2_r, src2, src2w, 0, 0));
1047 src2_r = sugg_src2_r;
1048 }
1049
1050 FAIL_IF(emit_single_op(compiler, op, flags, dst_r, src1_r, src2_r));
1051
1052 if (flags & (FAST_DEST | SLOW_DEST)) {
1053 if (flags & FAST_DEST)
1054 FAIL_IF(getput_arg_fast(compiler, input_flags, dst_r, dst, dstw));
1055 else
1056 FAIL_IF(getput_arg(compiler, input_flags, dst_r, dst, dstw, 0, 0));
1057 }
1058 return SLJIT_SUCCESS;
1059 }
1060
1061 SLJIT_API_FUNC_ATTRIBUTE int sljit_emit_op0(struct sljit_compiler *compiler, int op)
1062 {
1063 CHECK_ERROR();
1064 check_sljit_emit_op0(compiler, op);
1065
1066 switch (GET_OPCODE(op)) {
1067 case SLJIT_BREAKPOINT:
1068 case SLJIT_NOP:
1069 return push_inst(compiler, NOP);
1070 break;
1071 case SLJIT_UMUL:
1072 case SLJIT_SMUL:
1073 FAIL_IF(push_inst(compiler, OR | S(SLJIT_TEMPORARY_REG1) | A(TMP_REG1) | B(SLJIT_TEMPORARY_REG1)));
1074 #if (defined SLJIT_CONFIG_PPC_64 && SLJIT_CONFIG_PPC_64)
1075 FAIL_IF(push_inst(compiler, MULLD | D(SLJIT_TEMPORARY_REG1) | A(TMP_REG1) | B(SLJIT_TEMPORARY_REG2)));
1076 return push_inst(compiler, (GET_OPCODE(op) == SLJIT_UMUL ? MULHDU : MULHD) | D(SLJIT_TEMPORARY_REG2) | A(TMP_REG1) | B(SLJIT_TEMPORARY_REG2));
1077 #else
1078 FAIL_IF(push_inst(compiler, MULLW | D(SLJIT_TEMPORARY_REG1) | A(TMP_REG1) | B(SLJIT_TEMPORARY_REG2)));
1079 return push_inst(compiler, (GET_OPCODE(op) == SLJIT_UMUL ? MULHWU : MULHW) | D(SLJIT_TEMPORARY_REG2) | A(TMP_REG1) | B(SLJIT_TEMPORARY_REG2));
1080 #endif
1081 case SLJIT_UDIV:
1082 case SLJIT_SDIV:
1083 FAIL_IF(push_inst(compiler, OR | S(SLJIT_TEMPORARY_REG1) | A(TMP_REG1) | B(SLJIT_TEMPORARY_REG1)));
1084 #if (defined SLJIT_CONFIG_PPC_64 && SLJIT_CONFIG_PPC_64)
1085 if (op & SLJIT_INT_OP) {
1086 FAIL_IF(push_inst(compiler, (GET_OPCODE(op) == SLJIT_UDIV ? DIVWU : DIVW) | D(SLJIT_TEMPORARY_REG1) | A(TMP_REG1) | B(SLJIT_TEMPORARY_REG2)));
1087 FAIL_IF(push_inst(compiler, MULLW | D(SLJIT_TEMPORARY_REG2) | A(SLJIT_TEMPORARY_REG1) | B(SLJIT_TEMPORARY_REG2)));
1088 return push_inst(compiler, SUBF | D(SLJIT_TEMPORARY_REG2) | A(SLJIT_TEMPORARY_REG2) | B(TMP_REG1));
1089 }
1090 FAIL_IF(push_inst(compiler, (GET_OPCODE(op) == SLJIT_UDIV ? DIVDU : DIVD) | D(SLJIT_TEMPORARY_REG1) | A(TMP_REG1) | B(SLJIT_TEMPORARY_REG2)));
1091 FAIL_IF(push_inst(compiler, MULLD | D(SLJIT_TEMPORARY_REG2) | A(SLJIT_TEMPORARY_REG1) | B(SLJIT_TEMPORARY_REG2)));
1092 return push_inst(compiler, SUBF | D(SLJIT_TEMPORARY_REG2) | A(SLJIT_TEMPORARY_REG2) | B(TMP_REG1));
1093 #else
1094 FAIL_IF(push_inst(compiler, (GET_OPCODE(op) == SLJIT_UDIV ? DIVWU : DIVW) | D(SLJIT_TEMPORARY_REG1) | A(TMP_REG1) | B(SLJIT_TEMPORARY_REG2)));
1095 FAIL_IF(push_inst(compiler, MULLW | D(SLJIT_TEMPORARY_REG2) | A(SLJIT_TEMPORARY_REG1) | B(SLJIT_TEMPORARY_REG2)));
1096 return push_inst(compiler, SUBF | D(SLJIT_TEMPORARY_REG2) | A(SLJIT_TEMPORARY_REG2) | B(TMP_REG1));
1097 #endif
1098 }
1099
1100 return SLJIT_SUCCESS;
1101 }
1102
1103 #define EMIT_MOV(type, type_flags, type_cast) \
1104 emit_op(compiler, (src & SLJIT_IMM) ? SLJIT_MOV : type, flags | (type_flags), dst, dstw, TMP_REG1, 0, src, (src & SLJIT_IMM) ? type_cast srcw : srcw)
1105
1106 SLJIT_API_FUNC_ATTRIBUTE int sljit_emit_op1(struct sljit_compiler *compiler, int op,
1107 int dst, sljit_w dstw,
1108 int src, sljit_w srcw)
1109 {
1110 int flags = GET_FLAGS(op) ? ALT_SET_FLAGS : 0;
1111
1112 CHECK_ERROR();
1113 check_sljit_emit_op1(compiler, op, dst, dstw, src, srcw);
1114 ADJUST_LOCAL_OFFSET(dst, dstw);
1115 ADJUST_LOCAL_OFFSET(src, srcw);
1116
1117 if ((src & SLJIT_IMM) && srcw == 0 && GET_OPCODE(op) >= SLJIT_NOT)
1118 src = ZERO_REG;
1119
1120 #if (defined SLJIT_CONFIG_PPC_64 && SLJIT_CONFIG_PPC_64)
1121 if (op & SLJIT_INT_OP) {
1122 flags |= INT_DATA | SIGNED_DATA;
1123 if (src & SLJIT_IMM)
1124 srcw = (int)srcw;
1125 }
1126 #endif
1127 if (op & SLJIT_SET_O)
1128 FAIL_IF(push_inst(compiler, MTXER | S(ZERO_REG)));
1129
1130 switch (GET_OPCODE(op)) {
1131 case SLJIT_MOV:
1132 return emit_op(compiler, SLJIT_MOV, flags | WORD_DATA, dst, dstw, TMP_REG1, 0, src, srcw);
1133
1134 case SLJIT_MOV_UI:
1135 return emit_op(compiler, SLJIT_MOV_UI, flags | INT_DATA, dst, dstw, TMP_REG1, 0, src, srcw);
1136
1137 case SLJIT_MOV_SI:
1138 return emit_op(compiler, SLJIT_MOV_SI, flags | INT_DATA | SIGNED_DATA, dst, dstw, TMP_REG1, 0, src, srcw);
1139
1140 case SLJIT_MOV_UB:
1141 return EMIT_MOV(SLJIT_MOV_UB, BYTE_DATA, (unsigned char));
1142
1143 case SLJIT_MOV_SB:
1144 return EMIT_MOV(SLJIT_MOV_SB, BYTE_DATA | SIGNED_DATA, (signed char));
1145
1146 case SLJIT_MOV_UH:
1147 return EMIT_MOV(SLJIT_MOV_UH, HALF_DATA, (unsigned short));
1148
1149 case SLJIT_MOV_SH:
1150 return EMIT_MOV(SLJIT_MOV_SH, HALF_DATA | SIGNED_DATA, (signed short));
1151
1152 case SLJIT_MOVU:
1153 return emit_op(compiler, SLJIT_MOV, flags | WORD_DATA | WRITE_BACK, dst, dstw, TMP_REG1, 0, src, srcw);
1154
1155 case SLJIT_MOVU_UI:
1156 return emit_op(compiler, SLJIT_MOV_UI, flags | INT_DATA | WRITE_BACK, dst, dstw, TMP_REG1, 0, src, srcw);
1157
1158 case SLJIT_MOVU_SI:
1159 return emit_op(compiler, SLJIT_MOV_SI, flags | INT_DATA | SIGNED_DATA | WRITE_BACK, dst, dstw, TMP_REG1, 0, src, srcw);
1160
1161 case SLJIT_MOVU_UB:
1162 return EMIT_MOV(SLJIT_MOV_UB, BYTE_DATA | WRITE_BACK, (unsigned char));
1163
1164 case SLJIT_MOVU_SB:
1165 return EMIT_MOV(SLJIT_MOV_SB, BYTE_DATA | SIGNED_DATA | WRITE_BACK, (signed char));
1166
1167 case SLJIT_MOVU_UH:
1168 return EMIT_MOV(SLJIT_MOV_UH, HALF_DATA | WRITE_BACK, (unsigned short));
1169
1170 case SLJIT_MOVU_SH:
1171 return EMIT_MOV(SLJIT_MOV_SH, HALF_DATA | SIGNED_DATA | WRITE_BACK, (signed short));
1172
1173 case SLJIT_NOT:
1174 return emit_op(compiler, SLJIT_NOT, flags, dst, dstw, TMP_REG1, 0, src, srcw);
1175
1176 case SLJIT_NEG:
1177 return emit_op(compiler, SLJIT_NEG, flags, dst, dstw, TMP_REG1, 0, src, srcw);
1178
1179 case SLJIT_CLZ:
1180 #if (defined SLJIT_CONFIG_PPC_64 && SLJIT_CONFIG_PPC_64)
1181 return emit_op(compiler, SLJIT_CLZ, flags | (!(op & SLJIT_INT_OP) ? 0 : ALT_FORM1), dst, dstw, TMP_REG1, 0, src, srcw);
1182 #else
1183 return emit_op(compiler, SLJIT_CLZ, flags, dst, dstw, TMP_REG1, 0, src, srcw);
1184 #endif
1185 }
1186
1187 return SLJIT_SUCCESS;
1188 }
1189
1190 #undef EMIT_MOV
1191
1192 #define TEST_SL_IMM(src, srcw) \
1193 (((src) & SLJIT_IMM) && (srcw) <= SIMM_MAX && (srcw) >= SIMM_MIN)
1194
1195 #define TEST_UL_IMM(src, srcw) \
1196 (((src) & SLJIT_IMM) && !((srcw) & ~0xffff))
1197
1198 #if (defined SLJIT_CONFIG_PPC_64 && SLJIT_CONFIG_PPC_64)
1199 #define TEST_SH_IMM(src, srcw) \
1200 (((src) & SLJIT_IMM) && !((srcw) & 0xffff) && (srcw) <= SLJIT_W(0x7fffffff) && (srcw) >= SLJIT_W(-0x80000000))
1201 #else
1202 #define TEST_SH_IMM(src, srcw) \
1203 (((src) & SLJIT_IMM) && !((srcw) & 0xffff))
1204 #endif
1205
1206 #define TEST_UH_IMM(src, srcw) \
1207 (((src) & SLJIT_IMM) && !((srcw) & ~0xffff0000))
1208
1209 #if (defined SLJIT_CONFIG_PPC_64 && SLJIT_CONFIG_PPC_64)
1210 #define TEST_ADD_IMM(src, srcw) \
1211 (((src) & SLJIT_IMM) && (srcw) <= SLJIT_W(0x7fff7fff) && (srcw) >= SLJIT_W(-0x80000000))
1212 #else
1213 #define TEST_ADD_IMM(src, srcw) \
1214 ((src) & SLJIT_IMM)
1215 #endif
1216
1217 #if (defined SLJIT_CONFIG_PPC_64 && SLJIT_CONFIG_PPC_64)
1218 #define TEST_UI_IMM(src, srcw) \
1219 (((src) & SLJIT_IMM) && !((srcw) & ~0xffffffff))
1220 #else
1221 #define TEST_UI_IMM(src, srcw) \
1222 ((src) & SLJIT_IMM)
1223 #endif
1224
1225 SLJIT_API_FUNC_ATTRIBUTE int sljit_emit_op2(struct sljit_compiler *compiler, int op,
1226 int dst, sljit_w dstw,
1227 int src1, sljit_w src1w,
1228 int src2, sljit_w src2w)
1229 {
1230 int flags = GET_FLAGS(op) ? ALT_SET_FLAGS : 0;
1231
1232 CHECK_ERROR();
1233 check_sljit_emit_op2(compiler, op, dst, dstw, src1, src1w, src2, src2w);
1234 ADJUST_LOCAL_OFFSET(dst, dstw);
1235 ADJUST_LOCAL_OFFSET(src1, src1w);
1236 ADJUST_LOCAL_OFFSET(src2, src2w);
1237
1238 if ((src1 & SLJIT_IMM) && src1w == 0)
1239 src1 = ZERO_REG;
1240 if ((src2 & SLJIT_IMM) && src2w == 0)
1241 src2 = ZERO_REG;
1242
1243 #if (defined SLJIT_CONFIG_PPC_64 && SLJIT_CONFIG_PPC_64)
1244 if (op & SLJIT_INT_OP) {
1245 flags |= INT_DATA | SIGNED_DATA;
1246 if (src1 & SLJIT_IMM)
1247 src1w = (src1w << 32) >> 32;
1248 if (src2 & SLJIT_IMM)
1249 src2w = (src2w << 32) >> 32;
1250 if (GET_FLAGS(op))
1251 flags |= ALT_SIGN_EXT;
1252 }
1253 #endif
1254 if (op & SLJIT_SET_O)
1255 FAIL_IF(push_inst(compiler, MTXER | S(ZERO_REG)));
1256
1257 switch (GET_OPCODE(op)) {
1258 case SLJIT_ADD:
1259 if (!GET_FLAGS(op) && ((src1 | src2) & SLJIT_IMM)) {
1260 if (TEST_SL_IMM(src2, src2w)) {
1261 compiler->imm = src2w & 0xffff;
1262 return emit_op(compiler, SLJIT_ADD, flags | ALT_FORM1, dst, dstw, src1, src1w, TMP_REG2, 0);
1263 }
1264 if (TEST_SL_IMM(src1, src1w)) {
1265 compiler->imm = src1w & 0xffff;
1266 return emit_op(compiler, SLJIT_ADD, flags | ALT_FORM1, dst, dstw, src2, src2w, TMP_REG2, 0);
1267 }
1268 if (TEST_SH_IMM(src2, src2w)) {
1269 compiler->imm = (src2w >> 16) & 0xffff;
1270 return emit_op(compiler, SLJIT_ADD, flags | ALT_FORM2, dst, dstw, src1, src1w, TMP_REG2, 0);
1271 }
1272 if (TEST_SH_IMM(src1, src1w)) {
1273 compiler->imm = (src1w >> 16) & 0xffff;
1274 return emit_op(compiler, SLJIT_ADD, flags | ALT_FORM2, dst, dstw, src2, src2w, TMP_REG2, 0);
1275 }
1276 /* Range between -1 and -32768 is covered above. */
1277 if (TEST_ADD_IMM(src2, src2w)) {
1278 compiler->imm = src2w & 0xffffffff;
1279 return emit_op(compiler, SLJIT_ADD, flags | ALT_FORM4, dst, dstw, src1, src1w, TMP_REG2, 0);
1280 }
1281 if (TEST_ADD_IMM(src1, src1w)) {
1282 compiler->imm = src1w & 0xffffffff;
1283 return emit_op(compiler, SLJIT_ADD, flags | ALT_FORM4, dst, dstw, src2, src2w, TMP_REG2, 0);
1284 }
1285 }
1286 if (!(GET_FLAGS(op) & (SLJIT_SET_E | SLJIT_SET_O))) {
1287 if (TEST_SL_IMM(src2, src2w)) {
1288 compiler->imm = src2w & 0xffff;
1289 return emit_op(compiler, SLJIT_ADD, flags | ALT_FORM3, dst, dstw, src1, src1w, TMP_REG2, 0);
1290 }
1291 if (TEST_SL_IMM(src1, src1w)) {
1292 compiler->imm = src1w & 0xffff;
1293 return emit_op(compiler, SLJIT_ADD, flags | ALT_FORM3, dst, dstw, src2, src2w, TMP_REG2, 0);
1294 }
1295 }
1296 return emit_op(compiler, SLJIT_ADD, flags, dst, dstw, src1, src1w, src2, src2w);
1297
1298 case SLJIT_ADDC:
1299 return emit_op(compiler, SLJIT_ADDC, flags | (!(op & SLJIT_KEEP_FLAGS) ? 0 : ALT_FORM1), dst, dstw, src1, src1w, src2, src2w);
1300
1301 case SLJIT_SUB:
1302 if (!GET_FLAGS(op) && ((src1 | src2) & SLJIT_IMM)) {
1303 if (TEST_SL_IMM(src2, -src2w)) {
1304 compiler->imm = (-src2w) & 0xffff;
1305 return emit_op(compiler, SLJIT_ADD, flags | ALT_FORM1, dst, dstw, src1, src1w, TMP_REG2, 0);
1306 }
1307 if (TEST_SL_IMM(src1, src1w)) {
1308 compiler->imm = src1w & 0xffff;
1309 return emit_op(compiler, SLJIT_SUB, flags | ALT_FORM1, dst, dstw, src2, src2w, TMP_REG2, 0);
1310 }
1311 if (TEST_SH_IMM(src2, -src2w)) {
1312 compiler->imm = ((-src2w) >> 16) & 0xffff;
1313 return emit_op(compiler, SLJIT_ADD, flags | ALT_FORM2, dst, dstw, src1, src1w, TMP_REG2, 0);
1314 }
1315 /* Range between -1 and -32768 is covered above. */
1316 if (TEST_ADD_IMM(src2, -src2w)) {
1317 compiler->imm = -src2w & 0xffffffff;
1318 return emit_op(compiler, SLJIT_ADD, flags | ALT_FORM4, dst, dstw, src1, src1w, TMP_REG2, 0);
1319 }
1320 }
1321 if (dst == SLJIT_UNUSED && (op & (SLJIT_SET_E | SLJIT_SET_S | SLJIT_SET_U)) && !(op & (SLJIT_SET_O | SLJIT_SET_C))) {
1322 if (!(op & SLJIT_SET_U)) {
1323 /* We know ALT_SIGN_EXT is set if it is an SLJIT_INT_OP on 64 bit systems. */
1324 if (TEST_SL_IMM(src2, src2w)) {
1325 compiler->imm = src2w & 0xffff;
1326 return emit_op(compiler, SLJIT_SUB, flags | ALT_FORM2, dst, dstw, src1, src1w, TMP_REG2, 0);
1327 }
1328 if (GET_FLAGS(op) == SLJIT_SET_E && TEST_SL_IMM(src1, src1w)) {
1329 compiler->imm = src1w & 0xffff;
1330 return emit_op(compiler, SLJIT_SUB, flags | ALT_FORM2, dst, dstw, src2, src2w, TMP_REG2, 0);
1331 }
1332 }
1333 if (!(op & (SLJIT_SET_E | SLJIT_SET_S))) {
1334 /* We know ALT_SIGN_EXT is set if it is an SLJIT_INT_OP on 64 bit systems. */
1335 if (TEST_UL_IMM(src2, src2w)) {
1336 compiler->imm = src2w & 0xffff;
1337 return emit_op(compiler, SLJIT_SUB, flags | ALT_FORM3, dst, dstw, src1, src1w, TMP_REG2, 0);
1338 }
1339 return emit_op(compiler, SLJIT_SUB, flags | ALT_FORM4, dst, dstw, src1, src1w, src2, src2w);
1340 }
1341 if ((src2 & SLJIT_IMM) && src2w >= 0 && src2w <= 0x7fff) {
1342 compiler->imm = src2w;
1343 return emit_op(compiler, SLJIT_SUB, flags | ALT_FORM2 | ALT_FORM3, dst, dstw, src1, src1w, TMP_REG2, 0);
1344 }
1345 return emit_op(compiler, SLJIT_SUB, flags | ((op & SLJIT_SET_U) ? ALT_FORM4 : 0) | ((op & (SLJIT_SET_E | SLJIT_SET_S)) ? ALT_FORM5 : 0), dst, dstw, src1, src1w, src2, src2w);
1346 }
1347 if (!(op & (SLJIT_SET_E | SLJIT_SET_S | SLJIT_SET_U | SLJIT_SET_O))) {
1348 if (TEST_SL_IMM(src2, -src2w)) {
1349 compiler->imm = (-src2w) & 0xffff;
1350 return emit_op(compiler, SLJIT_ADD, flags | ALT_FORM3, dst, dstw, src1, src1w, TMP_REG2, 0);
1351 }
1352 }
1353 /* We know ALT_SIGN_EXT is set if it is an SLJIT_INT_OP on 64 bit systems. */
1354 return emit_op(compiler, SLJIT_SUB, flags | (!(op & SLJIT_SET_U) ? 0 : ALT_FORM6), dst, dstw, src1, src1w, src2, src2w);
1355
1356 case SLJIT_SUBC:
1357 return emit_op(compiler, SLJIT_SUBC, flags | (!(op & SLJIT_KEEP_FLAGS) ? 0 : ALT_FORM1), dst, dstw, src1, src1w, src2, src2w);
1358
1359 case SLJIT_MUL:
1360 #if (defined SLJIT_CONFIG_PPC_64 && SLJIT_CONFIG_PPC_64)
1361 if (op & SLJIT_INT_OP)
1362 flags |= ALT_FORM2;
1363 #endif
1364 if (!GET_FLAGS(op)) {
1365 if (TEST_SL_IMM(src2, src2w)) {
1366 compiler->imm = src2w & 0xffff;
1367 return emit_op(compiler, SLJIT_MUL, flags | ALT_FORM1, dst, dstw, src1, src1w, TMP_REG2, 0);
1368 }
1369 if (TEST_SL_IMM(src1, src1w)) {
1370 compiler->imm = src1w & 0xffff;
1371 return emit_op(compiler, SLJIT_MUL, flags | ALT_FORM1, dst, dstw, src2, src2w, TMP_REG2, 0);
1372 }
1373 }
1374 return emit_op(compiler, SLJIT_MUL, flags, dst, dstw, src1, src1w, src2, src2w);
1375
1376 case SLJIT_AND:
1377 case SLJIT_OR:
1378 case SLJIT_XOR:
1379 /* Commutative unsigned operations. */
1380 if (!GET_FLAGS(op) || GET_OPCODE(op) == SLJIT_AND) {
1381 if (TEST_UL_IMM(src2, src2w)) {
1382 compiler->imm = src2w;
1383 return emit_op(compiler, GET_OPCODE(op), flags | ALT_FORM1, dst, dstw, src1, src1w, TMP_REG2, 0);
1384 }
1385 if (TEST_UL_IMM(src1, src1w)) {
1386 compiler->imm = src1w;
1387 return emit_op(compiler, GET_OPCODE(op), flags | ALT_FORM1, dst, dstw, src2, src2w, TMP_REG2, 0);
1388 }
1389 if (TEST_UH_IMM(src2, src2w)) {
1390 compiler->imm = (src2w >> 16) & 0xffff;
1391 return emit_op(compiler, GET_OPCODE(op), flags | ALT_FORM2, dst, dstw, src1, src1w, TMP_REG2, 0);
1392 }
1393 if (TEST_UH_IMM(src1, src1w)) {
1394 compiler->imm = (src1w >> 16) & 0xffff;
1395 return emit_op(compiler, GET_OPCODE(op), flags | ALT_FORM2, dst, dstw, src2, src2w, TMP_REG2, 0);
1396 }
1397 }
1398 if (!GET_FLAGS(op) && GET_OPCODE(op) != SLJIT_AND) {
1399 if (TEST_UI_IMM(src2, src2w)) {
1400 compiler->imm = src2w;
1401 return emit_op(compiler, GET_OPCODE(op), flags | ALT_FORM3, dst, dstw, src1, src1w, TMP_REG2, 0);
1402 }
1403 if (TEST_UI_IMM(src1, src1w)) {
1404 compiler->imm = src1w;
1405 return emit_op(compiler, GET_OPCODE(op), flags | ALT_FORM3, dst, dstw, src2, src2w, TMP_REG2, 0);
1406 }
1407 }
1408 return emit_op(compiler, GET_OPCODE(op), flags, dst, dstw, src1, src1w, src2, src2w);
1409
1410 case SLJIT_SHL:
1411 case SLJIT_LSHR:
1412 case SLJIT_ASHR:
1413 #if (defined SLJIT_CONFIG_PPC_64 && SLJIT_CONFIG_PPC_64)
1414 if (op & SLJIT_INT_OP)
1415 flags |= ALT_FORM2;
1416 #endif
1417 if (src2 & SLJIT_IMM) {
1418 compiler->imm = src2w;
1419 return emit_op(compiler, GET_OPCODE(op), flags | ALT_FORM1, dst, dstw, src1, src1w, TMP_REG2, 0);
1420 }
1421 return emit_op(compiler, GET_OPCODE(op), flags, dst, dstw, src1, src1w, src2, src2w);
1422 }
1423
1424 return SLJIT_SUCCESS;
1425 }
1426
1427 SLJIT_API_FUNC_ATTRIBUTE int sljit_get_register_index(int reg)
1428 {
1429 check_sljit_get_register_index(reg);
1430 return reg_map[reg];
1431 }
1432
1433 SLJIT_API_FUNC_ATTRIBUTE int sljit_emit_op_custom(struct sljit_compiler *compiler,
1434 void *instruction, int size)
1435 {
1436 CHECK_ERROR();
1437 check_sljit_emit_op_custom(compiler, instruction, size);
1438 SLJIT_ASSERT(size == 4);
1439
1440 return push_inst(compiler, *(sljit_ins*)instruction);
1441 }
1442
1443 /* --------------------------------------------------------------------- */
1444 /* Floating point operators */
1445 /* --------------------------------------------------------------------- */
1446
1447 SLJIT_API_FUNC_ATTRIBUTE int sljit_is_fpu_available(void)
1448 {
1449 /* Always available. */
1450 return 1;
1451 }
1452
1453 SLJIT_API_FUNC_ATTRIBUTE int sljit_emit_fop1(struct sljit_compiler *compiler, int op,
1454 int dst, sljit_w dstw,
1455 int src, sljit_w srcw)
1456 {
1457 int dst_fr;
1458
1459 CHECK_ERROR();
1460 check_sljit_emit_fop1(compiler, op, dst, dstw, src, srcw);
1461
1462 compiler->cache_arg = 0;
1463 compiler->cache_argw = 0;
1464
1465 if (GET_OPCODE(op) == SLJIT_FCMP) {
1466 if (dst > SLJIT_FLOAT_REG4) {
1467 FAIL_IF(emit_op_mem2(compiler, DOUBLE_DATA | LOAD_DATA, TMP_FREG1, dst, dstw, src, srcw));
1468 dst = TMP_FREG1;
1469 }
1470
1471 if (src > SLJIT_FLOAT_REG4) {
1472 FAIL_IF(emit_op_mem2(compiler, DOUBLE_DATA | LOAD_DATA, TMP_FREG2, src, srcw, 0, 0));
1473 src = TMP_FREG2;
1474 }
1475
1476 return push_inst(compiler, FCMPU | CRD(4) | FA(dst) | FB(src));
1477 }
1478
1479 dst_fr = (dst > SLJIT_FLOAT_REG4) ? TMP_FREG1 : dst;
1480
1481 if (src > SLJIT_FLOAT_REG4) {
1482 FAIL_IF(emit_op_mem2(compiler, DOUBLE_DATA | LOAD_DATA, dst_fr, src, srcw, dst, dstw));
1483 src = dst_fr;
1484 }
1485
1486 switch (op) {
1487 case SLJIT_FMOV:
1488 if (src != dst_fr && dst_fr != TMP_FREG1)
1489 FAIL_IF(push_inst(compiler, FMR | FD(dst_fr) | FB(src)));
1490 break;
1491 case SLJIT_FNEG:
1492 FAIL_IF(push_inst(compiler, FNEG | FD(dst_fr) | FB(src)));
1493 break;
1494 case SLJIT_FABS:
1495 FAIL_IF(push_inst(compiler, FABS | FD(dst_fr) | FB(src)));
1496 break;
1497 }
1498
1499 if (dst_fr == TMP_FREG1) {
1500 if (op == SLJIT_FMOV)
1501 dst_fr = src;
1502 FAIL_IF(emit_op_mem2(compiler, DOUBLE_DATA, dst_fr, dst, dstw, 0, 0));
1503 }
1504
1505 return SLJIT_SUCCESS;
1506 }
1507
1508 SLJIT_API_FUNC_ATTRIBUTE int sljit_emit_fop2(struct sljit_compiler *compiler, int op,
1509 int dst, sljit_w dstw,
1510 int src1, sljit_w src1w,
1511 int src2, sljit_w src2w)
1512 {
1513 int dst_fr, flags = 0;
1514
1515 CHECK_ERROR();
1516 check_sljit_emit_fop2(compiler, op, dst, dstw, src1, src1w, src2, src2w);
1517
1518 compiler->cache_arg = 0;
1519 compiler->cache_argw = 0;
1520
1521 dst_fr = (dst > SLJIT_FLOAT_REG4) ? TMP_FREG2 : dst;
1522
1523 if (src1 > SLJIT_FLOAT_REG4) {
1524 if (getput_arg_fast(compiler, DOUBLE_DATA | LOAD_DATA, TMP_FREG1, src1, src1w)) {
1525 FAIL_IF(compiler->error);
1526 src1 = TMP_FREG1;
1527 } else
1528 flags |= ALT_FORM1;
1529 }
1530
1531 if (src2 > SLJIT_FLOAT_REG4) {
1532 if (getput_arg_fast(compiler, DOUBLE_DATA | LOAD_DATA, TMP_FREG2, src2, src2w)) {
1533 FAIL_IF(compiler->error);
1534 src2 = TMP_FREG2;
1535 } else
1536 flags |= ALT_FORM2;
1537 }
1538
1539 if ((flags & (ALT_FORM1 | ALT_FORM2)) == (ALT_FORM1 | ALT_FORM2)) {
1540 if (!can_cache(src1, src1w, src2, src2w) && can_cache(src1, src1w, dst, dstw)) {
1541 FAIL_IF(getput_arg(compiler, DOUBLE_DATA | LOAD_DATA, TMP_FREG2, src2, src2w, src1, src1w));
1542 FAIL_IF(getput_arg(compiler, DOUBLE_DATA | LOAD_DATA, TMP_FREG1, src1, src1w, dst, dstw));
1543 }
1544 else {
1545 FAIL_IF(getput_arg(compiler, DOUBLE_DATA | LOAD_DATA, TMP_FREG1, src1, src1w, src2, src2w));
1546 FAIL_IF(getput_arg(compiler, DOUBLE_DATA | LOAD_DATA, TMP_FREG2, src2, src2w, dst, dstw));
1547 }
1548 }
1549 else if (flags & ALT_FORM1)
1550 FAIL_IF(getput_arg(compiler, DOUBLE_DATA | LOAD_DATA, TMP_FREG1, src1, src1w, dst, dstw));
1551 else if (flags & ALT_FORM2)
1552 FAIL_IF(getput_arg(compiler, DOUBLE_DATA | LOAD_DATA, TMP_FREG2, src2, src2w, dst, dstw));
1553
1554 if (flags & ALT_FORM1)
1555 src1 = TMP_FREG1;
1556 if (flags & ALT_FORM2)
1557 src2 = TMP_FREG2;
1558
1559 switch (op) {
1560 case SLJIT_FADD:
1561 FAIL_IF(push_inst(compiler, FADD | FD(dst_fr) | FA(src1) | FB(src2)));
1562 break;
1563
1564 case SLJIT_FSUB:
1565 FAIL_IF(push_inst(compiler, FSUB | FD(dst_fr) | FA(src1) | FB(src2)));
1566 break;
1567
1568 case SLJIT_FMUL:
1569 FAIL_IF(push_inst(compiler, FMUL | FD(dst_fr) | FA(src1) | FC(src2) /* FMUL use FC as src2 */));
1570 break;
1571
1572 case SLJIT_FDIV:
1573 FAIL_IF(push_inst(compiler, FDIV | FD(dst_fr) | FA(src1) | FB(src2)));
1574 break;
1575 }
1576
1577 if (dst_fr == TMP_FREG2)
1578 FAIL_IF(emit_op_mem2(compiler, DOUBLE_DATA, TMP_FREG2, dst, dstw, 0, 0));
1579
1580 return SLJIT_SUCCESS;
1581 }
1582
1583 /* --------------------------------------------------------------------- */
1584 /* Other instructions */
1585 /* --------------------------------------------------------------------- */
1586
1587 SLJIT_API_FUNC_ATTRIBUTE int sljit_emit_fast_enter(struct sljit_compiler *compiler, int dst, sljit_w dstw)
1588 {
1589 CHECK_ERROR();
1590 check_sljit_emit_fast_enter(compiler, dst, dstw);
1591 ADJUST_LOCAL_OFFSET(dst, dstw);
1592
1593 if (dst >= SLJIT_TEMPORARY_REG1 && dst <= SLJIT_NO_REGISTERS)
1594 return push_inst(compiler, MFLR | D(dst));
1595 else if (dst & SLJIT_MEM) {
1596 FAIL_IF(push_inst(compiler, MFLR | D(TMP_REG2)));
1597 return emit_op(compiler, SLJIT_MOV, WORD_DATA, dst, dstw, TMP_REG1, 0, TMP_REG2, 0);
1598 }
1599
1600 /* SLJIT_UNUSED is also possible, although highly unlikely. */
1601 return SLJIT_SUCCESS;
1602 }
1603
1604 SLJIT_API_FUNC_ATTRIBUTE int sljit_emit_fast_return(struct sljit_compiler *compiler, int src, sljit_w srcw)
1605 {
1606 CHECK_ERROR();
1607 check_sljit_emit_fast_return(compiler, src, srcw);
1608 ADJUST_LOCAL_OFFSET(src, srcw);
1609
1610 if (src >= SLJIT_TEMPORARY_REG1 && src <= SLJIT_NO_REGISTERS)
1611 FAIL_IF(push_inst(compiler, MTLR | S(src)));
1612 else {
1613 if (src & SLJIT_MEM)
1614 FAIL_IF(emit_op(compiler, SLJIT_MOV, WORD_DATA, TMP_REG2, 0, TMP_REG1, 0, src, srcw));
1615 else if (src & SLJIT_IMM)
1616 FAIL_IF(load_immediate(compiler, TMP_REG2, srcw));
1617 FAIL_IF(push_inst(compiler, MTLR | S(TMP_REG2)));
1618 }
1619 return push_inst(compiler, BLR);
1620 }
1621
1622 /* --------------------------------------------------------------------- */
1623 /* Conditional instructions */
1624 /* --------------------------------------------------------------------- */
1625
1626 SLJIT_API_FUNC_ATTRIBUTE struct sljit_label* sljit_emit_label(struct sljit_compiler *compiler)
1627 {
1628 struct sljit_label *label;
1629
1630 CHECK_ERROR_PTR();
1631 check_sljit_emit_label(compiler);
1632
1633 if (compiler->last_label && compiler->last_label->size == compiler->size)
1634 return compiler->last_label;
1635
1636 label = (struct sljit_label*)ensure_abuf(compiler, sizeof(struct sljit_label));
1637 PTR_FAIL_IF(!label);
1638 set_label(label, compiler);
1639 return label;
1640 }
1641
1642 static sljit_ins get_bo_bi_flags(int type)
1643 {
1644 switch (type) {
1645 case SLJIT_C_EQUAL:
1646 return (12 << 21) | (2 << 16);
1647
1648 case SLJIT_C_NOT_EQUAL:
1649 return (4 << 21) | (2 << 16);
1650
1651 case SLJIT_C_LESS:
1652 case SLJIT_C_FLOAT_LESS:
1653 return (12 << 21) | ((4 + 0) << 16);
1654
1655 case SLJIT_C_GREATER_EQUAL:
1656 case SLJIT_C_FLOAT_GREATER_EQUAL:
1657 return (4 << 21) | ((4 + 0) << 16);
1658
1659 case SLJIT_C_GREATER:
1660 case SLJIT_C_FLOAT_GREATER:
1661 return (12 << 21) | ((4 + 1) << 16);
1662
1663 case SLJIT_C_LESS_EQUAL:
1664 case SLJIT_C_FLOAT_LESS_EQUAL:
1665 return (4 << 21) | ((4 + 1) << 16);
1666
1667 case SLJIT_C_SIG_LESS:
1668 return (12 << 21) | (0 << 16);
1669
1670 case SLJIT_C_SIG_GREATER_EQUAL:
1671 return (4 << 21) | (0 << 16);
1672
1673 case SLJIT_C_SIG_GREATER:
1674 return (12 << 21) | (1 << 16);
1675
1676 case SLJIT_C_SIG_LESS_EQUAL:
1677 return (4 << 21) | (1 << 16);
1678
1679 case SLJIT_C_OVERFLOW:
1680 case SLJIT_C_MUL_OVERFLOW:
1681 return (12 << 21) | (3 << 16);
1682
1683 case SLJIT_C_NOT_OVERFLOW:
1684 case SLJIT_C_MUL_NOT_OVERFLOW:
1685 return (4 << 21) | (3 << 16);
1686
1687 case SLJIT_C_FLOAT_EQUAL:
1688 return (12 << 21) | ((4 + 2) << 16);
1689
1690 case SLJIT_C_FLOAT_NOT_EQUAL:
1691 return (4 << 21) | ((4 + 2) << 16);
1692
1693 case SLJIT_C_FLOAT_UNORDERED:
1694 return (12 << 21) | ((4 + 3) << 16);
1695
1696 case SLJIT_C_FLOAT_ORDERED:
1697 return (4 << 21) | ((4 + 3) << 16);
1698
1699 default:
1700 SLJIT_ASSERT(type >= SLJIT_JUMP && type <= SLJIT_CALL3);
1701 return (20 << 21);
1702 }
1703 }
1704
1705 SLJIT_API_FUNC_ATTRIBUTE struct sljit_jump* sljit_emit_jump(struct sljit_compiler *compiler, int type)
1706 {
1707 struct sljit_jump *jump;
1708 sljit_ins bo_bi_flags;
1709
1710 CHECK_ERROR_PTR();
1711 check_sljit_emit_jump(compiler, type);
1712
1713 bo_bi_flags = get_bo_bi_flags(type & 0xff);
1714 if (!bo_bi_flags)
1715 return NULL;
1716
1717 jump = (struct sljit_jump*)ensure_abuf(compiler, sizeof(struct sljit_jump));
1718 PTR_FAIL_IF(!jump);
1719 set_jump(jump, compiler, type & SLJIT_REWRITABLE_JUMP);
1720 type &= 0xff;
1721
1722 /* In PPC, we don't need to touch the arguments. */
1723 if (type >= SLJIT_JUMP)
1724 jump->flags |= UNCOND_B;
1725
1726 PTR_FAIL_IF(emit_const(compiler, TMP_REG1, 0));
1727 PTR_FAIL_IF(push_inst(compiler, MTCTR | S(TMP_REG1)));
1728 jump->addr = compiler->size;
1729 PTR_FAIL_IF(push_inst(compiler, BCCTR | bo_bi_flags | (type >= SLJIT_FAST_CALL ? 1 : 0)));
1730 return jump;
1731 }
1732
1733 SLJIT_API_FUNC_ATTRIBUTE int sljit_emit_ijump(struct sljit_compiler *compiler, int type, int src, sljit_w srcw)
1734 {
1735 struct sljit_jump *jump = NULL;
1736 int src_r;
1737
1738 CHECK_ERROR();
1739 check_sljit_emit_ijump(compiler, type, src, srcw);
1740 ADJUST_LOCAL_OFFSET(src, srcw);
1741
1742 if (src >= SLJIT_TEMPORARY_REG1 && src <= SLJIT_NO_REGISTERS)
1743 src_r = src;
1744 else if (src & SLJIT_IMM) {
1745 jump = (struct sljit_jump*)ensure_abuf(compiler, sizeof(struct sljit_jump));
1746 FAIL_IF(!jump);
1747 set_jump(jump, compiler, JUMP_ADDR | UNCOND_B);
1748 jump->u.target = srcw;
1749
1750 FAIL_IF(emit_const(compiler, TMP_REG2, 0));
1751 src_r = TMP_REG2;
1752 }
1753 else {
1754 FAIL_IF(emit_op(compiler, SLJIT_MOV, WORD_DATA, TMP_REG2, 0, TMP_REG1, 0, src, srcw));
1755 src_r = TMP_REG2;
1756 }
1757
1758 FAIL_IF(push_inst(compiler, MTCTR | S(src_r)));
1759 if (jump)
1760 jump->addr = compiler->size;
1761 return push_inst(compiler, BCCTR | (20 << 21) | (type >= SLJIT_FAST_CALL ? 1 : 0));
1762 }
1763
1764 /* Get a bit from CR, all other bits are zeroed. */
1765 #define GET_CR_BIT(bit, dst) \
1766 FAIL_IF(push_inst(compiler, MFCR | D(dst))); \
1767 FAIL_IF(push_inst(compiler, RLWINM | S(dst) | A(dst) | ((1 + (bit)) << 11) | (31 << 6) | (31 << 1)));
1768
1769 #define INVERT_BIT(dst) \
1770 FAIL_IF(push_inst(compiler, XORI | S(dst) | A(dst) | 0x1));
1771
1772 SLJIT_API_FUNC_ATTRIBUTE int sljit_emit_cond_value(struct sljit_compiler *compiler, int op, int dst, sljit_w dstw, int type)
1773 {
1774 int reg;
1775
1776 CHECK_ERROR();
1777 check_sljit_emit_cond_value(compiler, op, dst, dstw, type);
1778 ADJUST_LOCAL_OFFSET(dst, dstw);
1779
1780 if (dst == SLJIT_UNUSED)
1781 return SLJIT_SUCCESS;
1782
1783 reg = (op == SLJIT_MOV && dst >= SLJIT_TEMPORARY_REG1 && dst <= SLJIT_NO_REGISTERS) ? dst : TMP_REG2;
1784
1785 switch (type) {
1786 case SLJIT_C_EQUAL:
1787 GET_CR_BIT(2, reg);
1788 break;
1789
1790 case SLJIT_C_NOT_EQUAL:
1791 GET_CR_BIT(2, reg);
1792 INVERT_BIT(reg);
1793 break;
1794
1795 case SLJIT_C_LESS:
1796 case SLJIT_C_FLOAT_LESS:
1797 GET_CR_BIT(4 + 0, reg);
1798 break;
1799
1800 case SLJIT_C_GREATER_EQUAL:
1801 case SLJIT_C_FLOAT_GREATER_EQUAL:
1802 GET_CR_BIT(4 + 0, reg);
1803 INVERT_BIT(reg);
1804 break;
1805
1806 case SLJIT_C_GREATER:
1807 case SLJIT_C_FLOAT_GREATER:
1808 GET_CR_BIT(4 + 1, reg);
1809 break;
1810
1811 case SLJIT_C_LESS_EQUAL:
1812 case SLJIT_C_FLOAT_LESS_EQUAL:
1813 GET_CR_BIT(4 + 1, reg);
1814 INVERT_BIT(reg);
1815 break;
1816
1817 case SLJIT_C_SIG_LESS:
1818 GET_CR_BIT(0, reg);
1819 break;
1820
1821 case SLJIT_C_SIG_GREATER_EQUAL:
1822 GET_CR_BIT(0, reg);
1823 INVERT_BIT(reg);
1824 break;
1825
1826 case SLJIT_C_SIG_GREATER:
1827 GET_CR_BIT(1, reg);
1828 break;
1829
1830 case SLJIT_C_SIG_LESS_EQUAL:
1831 GET_CR_BIT(1, reg);
1832 INVERT_BIT(reg);
1833 break;
1834
1835 case SLJIT_C_OVERFLOW:
1836 case SLJIT_C_MUL_OVERFLOW:
1837 GET_CR_BIT(3, reg);
1838 break;
1839
1840 case SLJIT_C_NOT_OVERFLOW:
1841 case SLJIT_C_MUL_NOT_OVERFLOW:
1842 GET_CR_BIT(3, reg);
1843 INVERT_BIT(reg);
1844 break;
1845
1846 case SLJIT_C_FLOAT_EQUAL:
1847 GET_CR_BIT(4 + 2, reg);
1848 break;
1849
1850 case SLJIT_C_FLOAT_NOT_EQUAL:
1851 GET_CR_BIT(4 + 2, reg);
1852 INVERT_BIT(reg);
1853 break;
1854
1855 case SLJIT_C_FLOAT_UNORDERED:
1856 GET_CR_BIT(4 + 3, reg);
1857 break;
1858
1859 case SLJIT_C_FLOAT_ORDERED:
1860 GET_CR_BIT(4 + 3, reg);
1861 INVERT_BIT(reg);
1862 break;
1863
1864 default:
1865 SLJIT_ASSERT_STOP();
1866 break;
1867 }
1868
1869 if (GET_OPCODE(op) == SLJIT_OR)
1870 return emit_op(compiler, SLJIT_OR, GET_FLAGS(op) ? ALT_SET_FLAGS : 0, dst, dstw, dst, dstw, TMP_REG2, 0);
1871
1872 return (reg == TMP_REG2) ? emit_op(compiler, SLJIT_MOV, WORD_DATA, dst, dstw, TMP_REG1, 0, TMP_REG2, 0) : SLJIT_SUCCESS;
1873 }
1874
1875 SLJIT_API_FUNC_ATTRIBUTE struct sljit_const* sljit_emit_const(struct sljit_compiler *compiler, int dst, sljit_w dstw, sljit_w init_value)
1876 {
1877 struct sljit_const *const_;
1878 int reg;
1879
1880 CHECK_ERROR_PTR();
1881 check_sljit_emit_const(compiler, dst, dstw, init_value);
1882 ADJUST_LOCAL_OFFSET(dst, dstw);
1883
1884 const_ = (struct sljit_const*)ensure_abuf(compiler, sizeof(struct sljit_const));
1885 PTR_FAIL_IF(!const_);
1886 set_const(const_, compiler);
1887
1888 reg = (dst >= SLJIT_TEMPORARY_REG1 && dst <= SLJIT_NO_REGISTERS) ? dst : TMP_REG2;
1889
1890 PTR_FAIL_IF(emit_const(compiler, reg, init_value));
1891
1892 if (dst & SLJIT_MEM)
1893 PTR_FAIL_IF(emit_op(compiler, SLJIT_MOV, WORD_DATA, dst, dstw, TMP_REG1, 0, TMP_REG2, 0));
1894 return const_;
1895 }
1896