sljitNativeSPARC_common.c 49 KB

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  1. /*
  2. * Stack-less Just-In-Time compiler
  3. *
  4. * Copyright Zoltan Herczeg (hzmester@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. SLJIT_API_FUNC_ATTRIBUTE const char* sljit_get_platform_name(void)
  27. {
  28. return "SPARC" SLJIT_CPUINFO;
  29. }
  30. /* Length of an instruction word
  31. Both for sparc-32 and sparc-64 */
  32. typedef sljit_u32 sljit_ins;
  33. #if (defined SLJIT_CACHE_FLUSH_OWN_IMPL && SLJIT_CACHE_FLUSH_OWN_IMPL)
  34. static void sparc_cache_flush(sljit_ins *from, sljit_ins *to)
  35. {
  36. #if defined(__SUNPRO_C) && __SUNPRO_C < 0x590
  37. __asm (
  38. /* if (from == to) return */
  39. "cmp %i0, %i1\n"
  40. "be .leave\n"
  41. "nop\n"
  42. /* loop until from >= to */
  43. ".mainloop:\n"
  44. "flush %i0\n"
  45. "add %i0, 8, %i0\n"
  46. "cmp %i0, %i1\n"
  47. "bcs .mainloop\n"
  48. "nop\n"
  49. /* The comparison was done above. */
  50. "bne .leave\n"
  51. /* nop is not necessary here, since the
  52. sub operation has no side effect. */
  53. "sub %i0, 4, %i0\n"
  54. "flush %i0\n"
  55. ".leave:"
  56. );
  57. #else
  58. if (SLJIT_UNLIKELY(from == to))
  59. return;
  60. do {
  61. __asm__ volatile (
  62. "flush %0\n"
  63. : : "r"(from)
  64. );
  65. /* Operates at least on doubleword. */
  66. from += 2;
  67. } while (from < to);
  68. if (from == to) {
  69. /* Flush the last word. */
  70. from --;
  71. __asm__ volatile (
  72. "flush %0\n"
  73. : : "r"(from)
  74. );
  75. }
  76. #endif
  77. }
  78. #endif /* (defined SLJIT_CACHE_FLUSH_OWN_IMPL && SLJIT_CACHE_FLUSH_OWN_IMPL) */
  79. /* TMP_REG2 is not used by getput_arg */
  80. #define TMP_REG1 (SLJIT_NUMBER_OF_REGISTERS + 2)
  81. #define TMP_REG2 (SLJIT_NUMBER_OF_REGISTERS + 3)
  82. #define TMP_REG3 (SLJIT_NUMBER_OF_REGISTERS + 4)
  83. /* This register is modified by calls, which affects the instruction
  84. in the delay slot if it is used as a source register. */
  85. #define TMP_LINK (SLJIT_NUMBER_OF_REGISTERS + 5)
  86. #define TMP_FREG1 (SLJIT_NUMBER_OF_FLOAT_REGISTERS + 1)
  87. #define TMP_FREG2 (SLJIT_NUMBER_OF_FLOAT_REGISTERS + 2)
  88. static const sljit_u8 reg_map[SLJIT_NUMBER_OF_REGISTERS + 6] = {
  89. 0, 8, 9, 10, 11, 29, 28, 27, 23, 22, 21, 20, 19, 18, 17, 16, 26, 25, 24, 14, 1, 12, 13, 15
  90. };
  91. static const sljit_u8 freg_map[SLJIT_NUMBER_OF_FLOAT_REGISTERS + 3] = {
  92. 0, 0, 2, 4, 6, 8, 10, 12, 14
  93. };
  94. /* --------------------------------------------------------------------- */
  95. /* Instrucion forms */
  96. /* --------------------------------------------------------------------- */
  97. #define D(d) (reg_map[d] << 25)
  98. #define FD(d) (freg_map[d] << 25)
  99. #define FDN(d) ((freg_map[d] | 0x1) << 25)
  100. #define DA(d) ((d) << 25)
  101. #define S1(s1) (reg_map[s1] << 14)
  102. #define FS1(s1) (freg_map[s1] << 14)
  103. #define S1A(s1) ((s1) << 14)
  104. #define S2(s2) (reg_map[s2])
  105. #define FS2(s2) (freg_map[s2])
  106. #define FS2N(s2) (freg_map[s2] | 0x1)
  107. #define S2A(s2) (s2)
  108. #define IMM_ARG 0x2000
  109. #define DOP(op) ((op) << 5)
  110. #define IMM(imm) (((imm) & 0x1fff) | IMM_ARG)
  111. #define DR(dr) (reg_map[dr])
  112. #define OPC1(opcode) ((opcode) << 30)
  113. #define OPC2(opcode) ((opcode) << 22)
  114. #define OPC3(opcode) ((opcode) << 19)
  115. #define SET_FLAGS OPC3(0x10)
  116. #define ADD (OPC1(0x2) | OPC3(0x00))
  117. #define ADDC (OPC1(0x2) | OPC3(0x08))
  118. #define AND (OPC1(0x2) | OPC3(0x01))
  119. #define ANDN (OPC1(0x2) | OPC3(0x05))
  120. #define CALL (OPC1(0x1))
  121. #define FABSS (OPC1(0x2) | OPC3(0x34) | DOP(0x09))
  122. #define FADDD (OPC1(0x2) | OPC3(0x34) | DOP(0x42))
  123. #define FADDS (OPC1(0x2) | OPC3(0x34) | DOP(0x41))
  124. #define FCMPD (OPC1(0x2) | OPC3(0x35) | DOP(0x52))
  125. #define FCMPS (OPC1(0x2) | OPC3(0x35) | DOP(0x51))
  126. #define FDIVD (OPC1(0x2) | OPC3(0x34) | DOP(0x4e))
  127. #define FDIVS (OPC1(0x2) | OPC3(0x34) | DOP(0x4d))
  128. #define FDTOI (OPC1(0x2) | OPC3(0x34) | DOP(0xd2))
  129. #define FDTOS (OPC1(0x2) | OPC3(0x34) | DOP(0xc6))
  130. #define FITOD (OPC1(0x2) | OPC3(0x34) | DOP(0xc8))
  131. #define FITOS (OPC1(0x2) | OPC3(0x34) | DOP(0xc4))
  132. #define FMOVS (OPC1(0x2) | OPC3(0x34) | DOP(0x01))
  133. #define FMULD (OPC1(0x2) | OPC3(0x34) | DOP(0x4a))
  134. #define FMULS (OPC1(0x2) | OPC3(0x34) | DOP(0x49))
  135. #define FNEGS (OPC1(0x2) | OPC3(0x34) | DOP(0x05))
  136. #define FSTOD (OPC1(0x2) | OPC3(0x34) | DOP(0xc9))
  137. #define FSTOI (OPC1(0x2) | OPC3(0x34) | DOP(0xd1))
  138. #define FSUBD (OPC1(0x2) | OPC3(0x34) | DOP(0x46))
  139. #define FSUBS (OPC1(0x2) | OPC3(0x34) | DOP(0x45))
  140. #define JMPL (OPC1(0x2) | OPC3(0x38))
  141. #define LDD (OPC1(0x3) | OPC3(0x03))
  142. #define LDUW (OPC1(0x3) | OPC3(0x00))
  143. #define NOP (OPC1(0x0) | OPC2(0x04))
  144. #define OR (OPC1(0x2) | OPC3(0x02))
  145. #define ORN (OPC1(0x2) | OPC3(0x06))
  146. #define RDY (OPC1(0x2) | OPC3(0x28) | S1A(0))
  147. #define RESTORE (OPC1(0x2) | OPC3(0x3d))
  148. #define SAVE (OPC1(0x2) | OPC3(0x3c))
  149. #define SETHI (OPC1(0x0) | OPC2(0x04))
  150. #define SLL (OPC1(0x2) | OPC3(0x25))
  151. #define SLLX (OPC1(0x2) | OPC3(0x25) | (1 << 12))
  152. #define SRA (OPC1(0x2) | OPC3(0x27))
  153. #define SRAX (OPC1(0x2) | OPC3(0x27) | (1 << 12))
  154. #define SRL (OPC1(0x2) | OPC3(0x26))
  155. #define SRLX (OPC1(0x2) | OPC3(0x26) | (1 << 12))
  156. #define STDF (OPC1(0x3) | OPC3(0x27))
  157. #define STF (OPC1(0x3) | OPC3(0x24))
  158. #define STW (OPC1(0x3) | OPC3(0x04))
  159. #define SUB (OPC1(0x2) | OPC3(0x04))
  160. #define SUBC (OPC1(0x2) | OPC3(0x0c))
  161. #define TA (OPC1(0x2) | OPC3(0x3a) | (8 << 25))
  162. #define WRY (OPC1(0x2) | OPC3(0x30) | DA(0))
  163. #define XOR (OPC1(0x2) | OPC3(0x03))
  164. #define XNOR (OPC1(0x2) | OPC3(0x07))
  165. #if (defined SLJIT_CONFIG_SPARC_32 && SLJIT_CONFIG_SPARC_32)
  166. #define MAX_DISP (0x1fffff)
  167. #define MIN_DISP (-0x200000)
  168. #define DISP_MASK (0x3fffff)
  169. #define BICC (OPC1(0x0) | OPC2(0x2))
  170. #define FBFCC (OPC1(0x0) | OPC2(0x6))
  171. #define SLL_W SLL
  172. #define SDIV (OPC1(0x2) | OPC3(0x0f))
  173. #define SMUL (OPC1(0x2) | OPC3(0x0b))
  174. #define UDIV (OPC1(0x2) | OPC3(0x0e))
  175. #define UMUL (OPC1(0x2) | OPC3(0x0a))
  176. #else
  177. #define SLL_W SLLX
  178. #endif
  179. #define SIMM_MAX (0x0fff)
  180. #define SIMM_MIN (-0x1000)
  181. /* dest_reg is the absolute name of the register
  182. Useful for reordering instructions in the delay slot. */
  183. static sljit_s32 push_inst(struct sljit_compiler *compiler, sljit_ins ins, sljit_s32 delay_slot)
  184. {
  185. sljit_ins *ptr;
  186. SLJIT_ASSERT((delay_slot & DST_INS_MASK) == UNMOVABLE_INS
  187. || (delay_slot & DST_INS_MASK) == MOVABLE_INS
  188. || (delay_slot & DST_INS_MASK) == ((ins >> 25) & 0x1f));
  189. ptr = (sljit_ins*)ensure_buf(compiler, sizeof(sljit_ins));
  190. FAIL_IF(!ptr);
  191. *ptr = ins;
  192. compiler->size++;
  193. compiler->delay_slot = delay_slot;
  194. return SLJIT_SUCCESS;
  195. }
  196. static SLJIT_INLINE sljit_ins* detect_jump_type(struct sljit_jump *jump, sljit_ins *code_ptr, sljit_ins *code, sljit_sw executable_offset)
  197. {
  198. sljit_sw diff;
  199. sljit_uw target_addr;
  200. sljit_ins *inst;
  201. sljit_ins saved_inst;
  202. if (jump->flags & SLJIT_REWRITABLE_JUMP)
  203. return code_ptr;
  204. if (jump->flags & JUMP_ADDR)
  205. target_addr = jump->u.target;
  206. else {
  207. SLJIT_ASSERT(jump->flags & JUMP_LABEL);
  208. target_addr = (sljit_uw)(code + jump->u.label->size) + (sljit_uw)executable_offset;
  209. }
  210. inst = (sljit_ins*)jump->addr;
  211. #if (defined SLJIT_CONFIG_SPARC_32 && SLJIT_CONFIG_SPARC_32)
  212. if (jump->flags & IS_CALL) {
  213. /* Call is always patchable on sparc 32. */
  214. jump->flags |= PATCH_CALL;
  215. if (jump->flags & IS_MOVABLE) {
  216. inst[0] = inst[-1];
  217. inst[-1] = CALL;
  218. jump->addr -= sizeof(sljit_ins);
  219. return inst;
  220. }
  221. inst[0] = CALL;
  222. inst[1] = NOP;
  223. return inst + 1;
  224. }
  225. #else
  226. /* Both calls and BPr instructions shall not pass this point. */
  227. #error "Implementation required"
  228. #endif
  229. if (jump->flags & IS_COND)
  230. inst--;
  231. diff = ((sljit_sw)target_addr - (sljit_sw)(inst - 1) - executable_offset) >> 2;
  232. if (jump->flags & IS_MOVABLE) {
  233. if (diff <= MAX_DISP && diff >= MIN_DISP) {
  234. jump->flags |= PATCH_B;
  235. inst--;
  236. if (jump->flags & IS_COND) {
  237. saved_inst = inst[0];
  238. inst[0] = inst[1] ^ (1 << 28);
  239. inst[1] = saved_inst;
  240. } else {
  241. inst[1] = inst[0];
  242. inst[0] = BICC | DA(0x8);
  243. }
  244. jump->addr = (sljit_uw)inst;
  245. return inst + 1;
  246. }
  247. }
  248. diff += sizeof(sljit_ins);
  249. if (diff <= MAX_DISP && diff >= MIN_DISP) {
  250. jump->flags |= PATCH_B;
  251. if (jump->flags & IS_COND)
  252. inst[0] ^= (1 << 28);
  253. else
  254. inst[0] = BICC | DA(0x8);
  255. inst[1] = NOP;
  256. jump->addr = (sljit_uw)inst;
  257. return inst + 1;
  258. }
  259. return code_ptr;
  260. }
  261. SLJIT_API_FUNC_ATTRIBUTE void* sljit_generate_code(struct sljit_compiler *compiler)
  262. {
  263. struct sljit_memory_fragment *buf;
  264. sljit_ins *code;
  265. sljit_ins *code_ptr;
  266. sljit_ins *buf_ptr;
  267. sljit_ins *buf_end;
  268. sljit_uw word_count;
  269. sljit_uw next_addr;
  270. sljit_sw executable_offset;
  271. sljit_uw addr;
  272. struct sljit_label *label;
  273. struct sljit_jump *jump;
  274. struct sljit_const *const_;
  275. struct sljit_put_label *put_label;
  276. CHECK_ERROR_PTR();
  277. CHECK_PTR(check_sljit_generate_code(compiler));
  278. reverse_buf(compiler);
  279. code = (sljit_ins*)SLJIT_MALLOC_EXEC(compiler->size * sizeof(sljit_ins), compiler->exec_allocator_data);
  280. PTR_FAIL_WITH_EXEC_IF(code);
  281. buf = compiler->buf;
  282. code_ptr = code;
  283. word_count = 0;
  284. next_addr = 0;
  285. executable_offset = SLJIT_EXEC_OFFSET(code);
  286. label = compiler->labels;
  287. jump = compiler->jumps;
  288. const_ = compiler->consts;
  289. put_label = compiler->put_labels;
  290. do {
  291. buf_ptr = (sljit_ins*)buf->memory;
  292. buf_end = buf_ptr + (buf->used_size >> 2);
  293. do {
  294. *code_ptr = *buf_ptr++;
  295. if (next_addr == word_count) {
  296. SLJIT_ASSERT(!label || label->size >= word_count);
  297. SLJIT_ASSERT(!jump || jump->addr >= word_count);
  298. SLJIT_ASSERT(!const_ || const_->addr >= word_count);
  299. SLJIT_ASSERT(!put_label || put_label->addr >= word_count);
  300. /* These structures are ordered by their address. */
  301. if (label && label->size == word_count) {
  302. /* Just recording the address. */
  303. label->addr = (sljit_uw)SLJIT_ADD_EXEC_OFFSET(code_ptr, executable_offset);
  304. label->size = code_ptr - code;
  305. label = label->next;
  306. }
  307. if (jump && jump->addr == word_count) {
  308. #if (defined SLJIT_CONFIG_SPARC_32 && SLJIT_CONFIG_SPARC_32)
  309. jump->addr = (sljit_uw)(code_ptr - 3);
  310. #else
  311. jump->addr = (sljit_uw)(code_ptr - 6);
  312. #endif
  313. code_ptr = detect_jump_type(jump, code_ptr, code, executable_offset);
  314. jump = jump->next;
  315. }
  316. if (const_ && const_->addr == word_count) {
  317. /* Just recording the address. */
  318. const_->addr = (sljit_uw)code_ptr;
  319. const_ = const_->next;
  320. }
  321. if (put_label && put_label->addr == word_count) {
  322. SLJIT_ASSERT(put_label->label);
  323. put_label->addr = (sljit_uw)code_ptr;
  324. put_label = put_label->next;
  325. }
  326. next_addr = compute_next_addr(label, jump, const_, put_label);
  327. }
  328. code_ptr ++;
  329. word_count ++;
  330. } while (buf_ptr < buf_end);
  331. buf = buf->next;
  332. } while (buf);
  333. if (label && label->size == word_count) {
  334. label->addr = (sljit_uw)SLJIT_ADD_EXEC_OFFSET(code_ptr, executable_offset);
  335. label->size = code_ptr - code;
  336. label = label->next;
  337. }
  338. SLJIT_ASSERT(!label);
  339. SLJIT_ASSERT(!jump);
  340. SLJIT_ASSERT(!const_);
  341. SLJIT_ASSERT(!put_label);
  342. SLJIT_ASSERT(code_ptr - code <= (sljit_s32)compiler->size);
  343. jump = compiler->jumps;
  344. while (jump) {
  345. do {
  346. addr = (jump->flags & JUMP_LABEL) ? jump->u.label->addr : jump->u.target;
  347. buf_ptr = (sljit_ins *)jump->addr;
  348. if (jump->flags & PATCH_CALL) {
  349. addr = (sljit_sw)(addr - (sljit_uw)SLJIT_ADD_EXEC_OFFSET(buf_ptr, executable_offset)) >> 2;
  350. SLJIT_ASSERT((sljit_sw)addr <= 0x1fffffff && (sljit_sw)addr >= -0x20000000);
  351. buf_ptr[0] = CALL | (addr & 0x3fffffff);
  352. break;
  353. }
  354. if (jump->flags & PATCH_B) {
  355. addr = (sljit_sw)(addr - (sljit_uw)SLJIT_ADD_EXEC_OFFSET(buf_ptr, executable_offset)) >> 2;
  356. SLJIT_ASSERT((sljit_sw)addr <= MAX_DISP && (sljit_sw)addr >= MIN_DISP);
  357. buf_ptr[0] = (buf_ptr[0] & ~DISP_MASK) | (addr & DISP_MASK);
  358. break;
  359. }
  360. /* Set the fields of immediate loads. */
  361. #if (defined SLJIT_CONFIG_SPARC_32 && SLJIT_CONFIG_SPARC_32)
  362. SLJIT_ASSERT(((buf_ptr[0] & 0xc1cfffff) == 0x01000000) && ((buf_ptr[1] & 0xc1f83fff) == 0x80102000));
  363. buf_ptr[0] |= (addr >> 10) & 0x3fffff;
  364. buf_ptr[1] |= addr & 0x3ff;
  365. #else
  366. #error "Implementation required"
  367. #endif
  368. } while (0);
  369. jump = jump->next;
  370. }
  371. put_label = compiler->put_labels;
  372. while (put_label) {
  373. addr = put_label->label->addr;
  374. buf_ptr = (sljit_ins *)put_label->addr;
  375. #if (defined SLJIT_CONFIG_SPARC_32 && SLJIT_CONFIG_SPARC_32)
  376. SLJIT_ASSERT(((buf_ptr[0] & 0xc1cfffff) == 0x01000000) && ((buf_ptr[1] & 0xc1f83fff) == 0x80102000));
  377. buf_ptr[0] |= (addr >> 10) & 0x3fffff;
  378. buf_ptr[1] |= addr & 0x3ff;
  379. #else
  380. #error "Implementation required"
  381. #endif
  382. put_label = put_label->next;
  383. }
  384. compiler->error = SLJIT_ERR_COMPILED;
  385. compiler->executable_offset = executable_offset;
  386. compiler->executable_size = (code_ptr - code) * sizeof(sljit_ins);
  387. code = (sljit_ins *)SLJIT_ADD_EXEC_OFFSET(code, executable_offset);
  388. code_ptr = (sljit_ins *)SLJIT_ADD_EXEC_OFFSET(code_ptr, executable_offset);
  389. SLJIT_CACHE_FLUSH(code, code_ptr);
  390. SLJIT_UPDATE_WX_FLAGS(code, code_ptr, 1);
  391. return code;
  392. }
  393. SLJIT_API_FUNC_ATTRIBUTE sljit_s32 sljit_has_cpu_feature(sljit_s32 feature_type)
  394. {
  395. switch (feature_type) {
  396. case SLJIT_HAS_FPU:
  397. #ifdef SLJIT_IS_FPU_AVAILABLE
  398. return SLJIT_IS_FPU_AVAILABLE;
  399. #else
  400. /* Available by default. */
  401. return 1;
  402. #endif
  403. case SLJIT_HAS_ZERO_REGISTER:
  404. return 1;
  405. #if (defined SLJIT_CONFIG_SPARC_64 && SLJIT_CONFIG_SPARC_64)
  406. case SLJIT_HAS_CMOV:
  407. return 1;
  408. #endif
  409. default:
  410. return 0;
  411. }
  412. }
  413. /* --------------------------------------------------------------------- */
  414. /* Entry, exit */
  415. /* --------------------------------------------------------------------- */
  416. /* Creates an index in data_transfer_insts array. */
  417. #define LOAD_DATA 0x01
  418. #define WORD_DATA 0x00
  419. #define BYTE_DATA 0x02
  420. #define HALF_DATA 0x04
  421. #define INT_DATA 0x06
  422. #define SIGNED_DATA 0x08
  423. /* Separates integer and floating point registers */
  424. #define GPR_REG 0x0f
  425. #define DOUBLE_DATA 0x10
  426. #define SINGLE_DATA 0x12
  427. #define MEM_MASK 0x1f
  428. #define ARG_TEST 0x00020
  429. #define ALT_KEEP_CACHE 0x00040
  430. #define CUMULATIVE_OP 0x00080
  431. #define IMM_OP 0x00100
  432. #define SRC2_IMM 0x00200
  433. #define REG_DEST 0x00400
  434. #define REG2_SOURCE 0x00800
  435. #define SLOW_SRC1 0x01000
  436. #define SLOW_SRC2 0x02000
  437. #define SLOW_DEST 0x04000
  438. /* SET_FLAGS (0x10 << 19) also belong here! */
  439. #if (defined SLJIT_CONFIG_SPARC_32 && SLJIT_CONFIG_SPARC_32)
  440. #include "sljitNativeSPARC_32.c"
  441. #else
  442. #include "sljitNativeSPARC_64.c"
  443. #endif
  444. SLJIT_API_FUNC_ATTRIBUTE sljit_s32 sljit_emit_enter(struct sljit_compiler *compiler,
  445. sljit_s32 options, sljit_s32 arg_types, sljit_s32 scratches, sljit_s32 saveds,
  446. sljit_s32 fscratches, sljit_s32 fsaveds, sljit_s32 local_size)
  447. {
  448. CHECK_ERROR();
  449. CHECK(check_sljit_emit_enter(compiler, options, arg_types, scratches, saveds, fscratches, fsaveds, local_size));
  450. set_emit_enter(compiler, options, arg_types, scratches, saveds, fscratches, fsaveds, local_size);
  451. local_size = (local_size + SLJIT_LOCALS_OFFSET + 7) & ~0x7;
  452. compiler->local_size = local_size;
  453. if (local_size <= SIMM_MAX) {
  454. FAIL_IF(push_inst(compiler, SAVE | D(SLJIT_SP) | S1(SLJIT_SP) | IMM(-local_size), UNMOVABLE_INS));
  455. }
  456. else {
  457. FAIL_IF(load_immediate(compiler, TMP_REG1, -local_size));
  458. FAIL_IF(push_inst(compiler, SAVE | D(SLJIT_SP) | S1(SLJIT_SP) | S2(TMP_REG1), UNMOVABLE_INS));
  459. }
  460. /* Arguments are in their appropriate registers. */
  461. return SLJIT_SUCCESS;
  462. }
  463. SLJIT_API_FUNC_ATTRIBUTE sljit_s32 sljit_set_context(struct sljit_compiler *compiler,
  464. sljit_s32 options, sljit_s32 arg_types, sljit_s32 scratches, sljit_s32 saveds,
  465. sljit_s32 fscratches, sljit_s32 fsaveds, sljit_s32 local_size)
  466. {
  467. CHECK_ERROR();
  468. CHECK(check_sljit_set_context(compiler, options, arg_types, scratches, saveds, fscratches, fsaveds, local_size));
  469. set_set_context(compiler, options, arg_types, scratches, saveds, fscratches, fsaveds, local_size);
  470. compiler->local_size = (local_size + SLJIT_LOCALS_OFFSET + 7) & ~0x7;
  471. return SLJIT_SUCCESS;
  472. }
  473. SLJIT_API_FUNC_ATTRIBUTE sljit_s32 sljit_emit_return(struct sljit_compiler *compiler, sljit_s32 op, sljit_s32 src, sljit_sw srcw)
  474. {
  475. CHECK_ERROR();
  476. CHECK(check_sljit_emit_return(compiler, op, src, srcw));
  477. if (op != SLJIT_MOV || !FAST_IS_REG(src)) {
  478. FAIL_IF(emit_mov_before_return(compiler, op, src, srcw));
  479. src = SLJIT_R0;
  480. }
  481. FAIL_IF(push_inst(compiler, JMPL | D(0) | S1A(31) | IMM(8), UNMOVABLE_INS));
  482. return push_inst(compiler, RESTORE | D(SLJIT_R0) | S1(src) | S2(0), UNMOVABLE_INS);
  483. }
  484. /* --------------------------------------------------------------------- */
  485. /* Operators */
  486. /* --------------------------------------------------------------------- */
  487. #if (defined SLJIT_CONFIG_SPARC_32 && SLJIT_CONFIG_SPARC_32)
  488. #define ARCH_32_64(a, b) a
  489. #else
  490. #define ARCH_32_64(a, b) b
  491. #endif
  492. static const sljit_ins data_transfer_insts[16 + 4] = {
  493. /* u w s */ ARCH_32_64(OPC1(3) | OPC3(0x04) /* stw */, OPC1(3) | OPC3(0x0e) /* stx */),
  494. /* u w l */ ARCH_32_64(OPC1(3) | OPC3(0x00) /* lduw */, OPC1(3) | OPC3(0x0b) /* ldx */),
  495. /* u b s */ OPC1(3) | OPC3(0x05) /* stb */,
  496. /* u b l */ OPC1(3) | OPC3(0x01) /* ldub */,
  497. /* u h s */ OPC1(3) | OPC3(0x06) /* sth */,
  498. /* u h l */ OPC1(3) | OPC3(0x02) /* lduh */,
  499. /* u i s */ OPC1(3) | OPC3(0x04) /* stw */,
  500. /* u i l */ OPC1(3) | OPC3(0x00) /* lduw */,
  501. /* s w s */ ARCH_32_64(OPC1(3) | OPC3(0x04) /* stw */, OPC1(3) | OPC3(0x0e) /* stx */),
  502. /* s w l */ ARCH_32_64(OPC1(3) | OPC3(0x00) /* lduw */, OPC1(3) | OPC3(0x0b) /* ldx */),
  503. /* s b s */ OPC1(3) | OPC3(0x05) /* stb */,
  504. /* s b l */ OPC1(3) | OPC3(0x09) /* ldsb */,
  505. /* s h s */ OPC1(3) | OPC3(0x06) /* sth */,
  506. /* s h l */ OPC1(3) | OPC3(0x0a) /* ldsh */,
  507. /* s i s */ OPC1(3) | OPC3(0x04) /* stw */,
  508. /* s i l */ ARCH_32_64(OPC1(3) | OPC3(0x00) /* lduw */, OPC1(3) | OPC3(0x08) /* ldsw */),
  509. /* d s */ OPC1(3) | OPC3(0x27),
  510. /* d l */ OPC1(3) | OPC3(0x23),
  511. /* s s */ OPC1(3) | OPC3(0x24),
  512. /* s l */ OPC1(3) | OPC3(0x20),
  513. };
  514. #undef ARCH_32_64
  515. /* Can perform an operation using at most 1 instruction. */
  516. static sljit_s32 getput_arg_fast(struct sljit_compiler *compiler, sljit_s32 flags, sljit_s32 reg, sljit_s32 arg, sljit_sw argw)
  517. {
  518. SLJIT_ASSERT(arg & SLJIT_MEM);
  519. if ((!(arg & OFFS_REG_MASK) && argw <= SIMM_MAX && argw >= SIMM_MIN)
  520. || ((arg & OFFS_REG_MASK) && (argw & 0x3) == 0)) {
  521. /* Works for both absoulte and relative addresses (immediate case). */
  522. if (SLJIT_UNLIKELY(flags & ARG_TEST))
  523. return 1;
  524. FAIL_IF(push_inst(compiler, data_transfer_insts[flags & MEM_MASK]
  525. | ((flags & MEM_MASK) <= GPR_REG ? D(reg) : FD(reg))
  526. | S1(arg & REG_MASK) | ((arg & OFFS_REG_MASK) ? S2(OFFS_REG(arg)) : IMM(argw)),
  527. ((flags & MEM_MASK) <= GPR_REG && (flags & LOAD_DATA)) ? DR(reg) : MOVABLE_INS));
  528. return -1;
  529. }
  530. return 0;
  531. }
  532. /* See getput_arg below.
  533. Note: can_cache is called only for binary operators. Those
  534. operators always uses word arguments without write back. */
  535. static sljit_s32 can_cache(sljit_s32 arg, sljit_sw argw, sljit_s32 next_arg, sljit_sw next_argw)
  536. {
  537. SLJIT_ASSERT((arg & SLJIT_MEM) && (next_arg & SLJIT_MEM));
  538. /* Simple operation except for updates. */
  539. if (arg & OFFS_REG_MASK) {
  540. argw &= 0x3;
  541. SLJIT_ASSERT(argw);
  542. next_argw &= 0x3;
  543. if ((arg & OFFS_REG_MASK) == (next_arg & OFFS_REG_MASK) && argw == next_argw)
  544. return 1;
  545. return 0;
  546. }
  547. if (((next_argw - argw) <= SIMM_MAX && (next_argw - argw) >= SIMM_MIN))
  548. return 1;
  549. return 0;
  550. }
  551. /* Emit the necessary instructions. See can_cache above. */
  552. static sljit_s32 getput_arg(struct sljit_compiler *compiler, sljit_s32 flags, sljit_s32 reg, sljit_s32 arg, sljit_sw argw, sljit_s32 next_arg, sljit_sw next_argw)
  553. {
  554. sljit_s32 base, arg2, delay_slot;
  555. sljit_ins dest;
  556. SLJIT_ASSERT(arg & SLJIT_MEM);
  557. if (!(next_arg & SLJIT_MEM)) {
  558. next_arg = 0;
  559. next_argw = 0;
  560. }
  561. base = arg & REG_MASK;
  562. if (SLJIT_UNLIKELY(arg & OFFS_REG_MASK)) {
  563. argw &= 0x3;
  564. /* Using the cache. */
  565. if (((SLJIT_MEM | (arg & OFFS_REG_MASK)) == compiler->cache_arg) && (argw == compiler->cache_argw))
  566. arg2 = TMP_REG3;
  567. else {
  568. if ((arg & OFFS_REG_MASK) == (next_arg & OFFS_REG_MASK) && argw == (next_argw & 0x3)) {
  569. compiler->cache_arg = SLJIT_MEM | (arg & OFFS_REG_MASK);
  570. compiler->cache_argw = argw;
  571. arg2 = TMP_REG3;
  572. }
  573. else if ((flags & LOAD_DATA) && ((flags & MEM_MASK) <= GPR_REG) && reg != base && reg != OFFS_REG(arg))
  574. arg2 = reg;
  575. else /* It must be a mov operation, so tmp1 must be free to use. */
  576. arg2 = TMP_REG1;
  577. FAIL_IF(push_inst(compiler, SLL_W | D(arg2) | S1(OFFS_REG(arg)) | IMM_ARG | argw, DR(arg2)));
  578. }
  579. }
  580. else {
  581. /* Using the cache. */
  582. if ((compiler->cache_arg == SLJIT_MEM) && (argw - compiler->cache_argw) <= SIMM_MAX && (argw - compiler->cache_argw) >= SIMM_MIN) {
  583. if (argw != compiler->cache_argw) {
  584. FAIL_IF(push_inst(compiler, ADD | D(TMP_REG3) | S1(TMP_REG3) | IMM(argw - compiler->cache_argw), DR(TMP_REG3)));
  585. compiler->cache_argw = argw;
  586. }
  587. arg2 = TMP_REG3;
  588. } else {
  589. if ((next_argw - argw) <= SIMM_MAX && (next_argw - argw) >= SIMM_MIN) {
  590. compiler->cache_arg = SLJIT_MEM;
  591. compiler->cache_argw = argw;
  592. arg2 = TMP_REG3;
  593. }
  594. else if ((flags & LOAD_DATA) && ((flags & MEM_MASK) <= GPR_REG) && reg != base)
  595. arg2 = reg;
  596. else /* It must be a mov operation, so tmp1 must be free to use. */
  597. arg2 = TMP_REG1;
  598. FAIL_IF(load_immediate(compiler, arg2, argw));
  599. }
  600. }
  601. dest = ((flags & MEM_MASK) <= GPR_REG ? D(reg) : FD(reg));
  602. delay_slot = ((flags & MEM_MASK) <= GPR_REG && (flags & LOAD_DATA)) ? DR(reg) : MOVABLE_INS;
  603. if (!base)
  604. return push_inst(compiler, data_transfer_insts[flags & MEM_MASK] | dest | S1(arg2) | IMM(0), delay_slot);
  605. return push_inst(compiler, data_transfer_insts[flags & MEM_MASK] | dest | S1(base) | S2(arg2), delay_slot);
  606. }
  607. static SLJIT_INLINE sljit_s32 emit_op_mem(struct sljit_compiler *compiler, sljit_s32 flags, sljit_s32 reg, sljit_s32 arg, sljit_sw argw)
  608. {
  609. if (getput_arg_fast(compiler, flags, reg, arg, argw))
  610. return compiler->error;
  611. compiler->cache_arg = 0;
  612. compiler->cache_argw = 0;
  613. return getput_arg(compiler, flags, reg, arg, argw, 0, 0);
  614. }
  615. static SLJIT_INLINE sljit_s32 emit_op_mem2(struct sljit_compiler *compiler, sljit_s32 flags, sljit_s32 reg, sljit_s32 arg1, sljit_sw arg1w, sljit_s32 arg2, sljit_sw arg2w)
  616. {
  617. if (getput_arg_fast(compiler, flags, reg, arg1, arg1w))
  618. return compiler->error;
  619. return getput_arg(compiler, flags, reg, arg1, arg1w, arg2, arg2w);
  620. }
  621. static sljit_s32 emit_op(struct sljit_compiler *compiler, sljit_s32 op, sljit_s32 flags,
  622. sljit_s32 dst, sljit_sw dstw,
  623. sljit_s32 src1, sljit_sw src1w,
  624. sljit_s32 src2, sljit_sw src2w)
  625. {
  626. /* arg1 goes to TMP_REG1 or src reg
  627. arg2 goes to TMP_REG2, imm or src reg
  628. TMP_REG3 can be used for caching
  629. result goes to TMP_REG2, so put result can use TMP_REG1 and TMP_REG3. */
  630. sljit_s32 dst_r = TMP_REG2;
  631. sljit_s32 src1_r;
  632. sljit_sw src2_r = 0;
  633. sljit_s32 sugg_src2_r = TMP_REG2;
  634. if (!(flags & ALT_KEEP_CACHE)) {
  635. compiler->cache_arg = 0;
  636. compiler->cache_argw = 0;
  637. }
  638. if (dst != SLJIT_UNUSED) {
  639. if (FAST_IS_REG(dst)) {
  640. dst_r = dst;
  641. flags |= REG_DEST;
  642. if (op >= SLJIT_MOV && op <= SLJIT_MOV_P)
  643. sugg_src2_r = dst_r;
  644. }
  645. else if ((dst & SLJIT_MEM) && !getput_arg_fast(compiler, flags | ARG_TEST, TMP_REG1, dst, dstw))
  646. flags |= SLOW_DEST;
  647. }
  648. if (flags & IMM_OP) {
  649. if ((src2 & SLJIT_IMM) && src2w) {
  650. if (src2w <= SIMM_MAX && src2w >= SIMM_MIN) {
  651. flags |= SRC2_IMM;
  652. src2_r = src2w;
  653. }
  654. }
  655. if (!(flags & SRC2_IMM) && (flags & CUMULATIVE_OP) && (src1 & SLJIT_IMM) && src1w) {
  656. if (src1w <= SIMM_MAX && src1w >= SIMM_MIN) {
  657. flags |= SRC2_IMM;
  658. src2_r = src1w;
  659. /* And swap arguments. */
  660. src1 = src2;
  661. src1w = src2w;
  662. src2 = SLJIT_IMM;
  663. /* src2w = src2_r unneeded. */
  664. }
  665. }
  666. }
  667. /* Source 1. */
  668. if (FAST_IS_REG(src1))
  669. src1_r = src1;
  670. else if (src1 & SLJIT_IMM) {
  671. if (src1w) {
  672. FAIL_IF(load_immediate(compiler, TMP_REG1, src1w));
  673. src1_r = TMP_REG1;
  674. }
  675. else
  676. src1_r = 0;
  677. }
  678. else {
  679. if (getput_arg_fast(compiler, flags | LOAD_DATA, TMP_REG1, src1, src1w))
  680. FAIL_IF(compiler->error);
  681. else
  682. flags |= SLOW_SRC1;
  683. src1_r = TMP_REG1;
  684. }
  685. /* Source 2. */
  686. if (FAST_IS_REG(src2)) {
  687. src2_r = src2;
  688. flags |= REG2_SOURCE;
  689. if (!(flags & REG_DEST) && op >= SLJIT_MOV && op <= SLJIT_MOV_P)
  690. dst_r = src2_r;
  691. }
  692. else if (src2 & SLJIT_IMM) {
  693. if (!(flags & SRC2_IMM)) {
  694. if (src2w) {
  695. FAIL_IF(load_immediate(compiler, sugg_src2_r, src2w));
  696. src2_r = sugg_src2_r;
  697. }
  698. else {
  699. src2_r = 0;
  700. if ((op >= SLJIT_MOV && op <= SLJIT_MOV_P) && (dst & SLJIT_MEM))
  701. dst_r = 0;
  702. }
  703. }
  704. }
  705. else {
  706. if (getput_arg_fast(compiler, flags | LOAD_DATA, sugg_src2_r, src2, src2w))
  707. FAIL_IF(compiler->error);
  708. else
  709. flags |= SLOW_SRC2;
  710. src2_r = sugg_src2_r;
  711. }
  712. if ((flags & (SLOW_SRC1 | SLOW_SRC2)) == (SLOW_SRC1 | SLOW_SRC2)) {
  713. SLJIT_ASSERT(src2_r == TMP_REG2);
  714. if (!can_cache(src1, src1w, src2, src2w) && can_cache(src1, src1w, dst, dstw)) {
  715. FAIL_IF(getput_arg(compiler, flags | LOAD_DATA, TMP_REG2, src2, src2w, src1, src1w));
  716. FAIL_IF(getput_arg(compiler, flags | LOAD_DATA, TMP_REG1, src1, src1w, dst, dstw));
  717. }
  718. else {
  719. FAIL_IF(getput_arg(compiler, flags | LOAD_DATA, TMP_REG1, src1, src1w, src2, src2w));
  720. FAIL_IF(getput_arg(compiler, flags | LOAD_DATA, TMP_REG2, src2, src2w, dst, dstw));
  721. }
  722. }
  723. else if (flags & SLOW_SRC1)
  724. FAIL_IF(getput_arg(compiler, flags | LOAD_DATA, TMP_REG1, src1, src1w, dst, dstw));
  725. else if (flags & SLOW_SRC2)
  726. FAIL_IF(getput_arg(compiler, flags | LOAD_DATA, sugg_src2_r, src2, src2w, dst, dstw));
  727. FAIL_IF(emit_single_op(compiler, op, flags, dst_r, src1_r, src2_r));
  728. if (dst & SLJIT_MEM) {
  729. if (!(flags & SLOW_DEST)) {
  730. getput_arg_fast(compiler, flags, dst_r, dst, dstw);
  731. return compiler->error;
  732. }
  733. return getput_arg(compiler, flags, dst_r, dst, dstw, 0, 0);
  734. }
  735. return SLJIT_SUCCESS;
  736. }
  737. SLJIT_API_FUNC_ATTRIBUTE sljit_s32 sljit_emit_op0(struct sljit_compiler *compiler, sljit_s32 op)
  738. {
  739. CHECK_ERROR();
  740. CHECK(check_sljit_emit_op0(compiler, op));
  741. op = GET_OPCODE(op);
  742. switch (op) {
  743. case SLJIT_BREAKPOINT:
  744. return push_inst(compiler, TA, UNMOVABLE_INS);
  745. case SLJIT_NOP:
  746. return push_inst(compiler, NOP, UNMOVABLE_INS);
  747. case SLJIT_LMUL_UW:
  748. case SLJIT_LMUL_SW:
  749. #if (defined SLJIT_CONFIG_SPARC_32 && SLJIT_CONFIG_SPARC_32)
  750. FAIL_IF(push_inst(compiler, (op == SLJIT_LMUL_UW ? UMUL : SMUL) | D(SLJIT_R0) | S1(SLJIT_R0) | S2(SLJIT_R1), DR(SLJIT_R0)));
  751. return push_inst(compiler, RDY | D(SLJIT_R1), DR(SLJIT_R1));
  752. #else
  753. #error "Implementation required"
  754. #endif
  755. case SLJIT_DIVMOD_UW:
  756. case SLJIT_DIVMOD_SW:
  757. case SLJIT_DIV_UW:
  758. case SLJIT_DIV_SW:
  759. SLJIT_COMPILE_ASSERT((SLJIT_DIVMOD_UW & 0x2) == 0 && SLJIT_DIV_UW - 0x2 == SLJIT_DIVMOD_UW, bad_div_opcode_assignments);
  760. #if (defined SLJIT_CONFIG_SPARC_32 && SLJIT_CONFIG_SPARC_32)
  761. if ((op | 0x2) == SLJIT_DIV_UW)
  762. FAIL_IF(push_inst(compiler, WRY | S1(0), MOVABLE_INS));
  763. else {
  764. FAIL_IF(push_inst(compiler, SRA | D(TMP_REG1) | S1(SLJIT_R0) | IMM(31), DR(TMP_REG1)));
  765. FAIL_IF(push_inst(compiler, WRY | S1(TMP_REG1), MOVABLE_INS));
  766. }
  767. if (op <= SLJIT_DIVMOD_SW)
  768. FAIL_IF(push_inst(compiler, OR | D(TMP_REG2) | S1(0) | S2(SLJIT_R0), DR(TMP_REG2)));
  769. FAIL_IF(push_inst(compiler, ((op | 0x2) == SLJIT_DIV_UW ? UDIV : SDIV) | D(SLJIT_R0) | S1(SLJIT_R0) | S2(SLJIT_R1), DR(SLJIT_R0)));
  770. if (op >= SLJIT_DIV_UW)
  771. return SLJIT_SUCCESS;
  772. FAIL_IF(push_inst(compiler, SMUL | D(SLJIT_R1) | S1(SLJIT_R0) | S2(SLJIT_R1), DR(SLJIT_R1)));
  773. return push_inst(compiler, SUB | D(SLJIT_R1) | S1(TMP_REG2) | S2(SLJIT_R1), DR(SLJIT_R1));
  774. #else
  775. #error "Implementation required"
  776. #endif
  777. case SLJIT_ENDBR:
  778. case SLJIT_SKIP_FRAMES_BEFORE_RETURN:
  779. return SLJIT_SUCCESS;
  780. }
  781. return SLJIT_SUCCESS;
  782. }
  783. SLJIT_API_FUNC_ATTRIBUTE sljit_s32 sljit_emit_op1(struct sljit_compiler *compiler, sljit_s32 op,
  784. sljit_s32 dst, sljit_sw dstw,
  785. sljit_s32 src, sljit_sw srcw)
  786. {
  787. sljit_s32 flags = HAS_FLAGS(op) ? SET_FLAGS : 0;
  788. CHECK_ERROR();
  789. CHECK(check_sljit_emit_op1(compiler, op, dst, dstw, src, srcw));
  790. ADJUST_LOCAL_OFFSET(dst, dstw);
  791. ADJUST_LOCAL_OFFSET(src, srcw);
  792. op = GET_OPCODE(op);
  793. switch (op) {
  794. case SLJIT_MOV:
  795. case SLJIT_MOV_P:
  796. return emit_op(compiler, SLJIT_MOV, flags | WORD_DATA, dst, dstw, TMP_REG1, 0, src, srcw);
  797. case SLJIT_MOV_U32:
  798. return emit_op(compiler, SLJIT_MOV_U32, flags | INT_DATA, dst, dstw, TMP_REG1, 0, src, srcw);
  799. case SLJIT_MOV_S32:
  800. return emit_op(compiler, SLJIT_MOV_S32, flags | INT_DATA | SIGNED_DATA, dst, dstw, TMP_REG1, 0, src, srcw);
  801. case SLJIT_MOV_U8:
  802. return emit_op(compiler, SLJIT_MOV_U8, flags | BYTE_DATA, dst, dstw, TMP_REG1, 0, src, (src & SLJIT_IMM) ? (sljit_u8)srcw : srcw);
  803. case SLJIT_MOV_S8:
  804. return emit_op(compiler, SLJIT_MOV_S8, flags | BYTE_DATA | SIGNED_DATA, dst, dstw, TMP_REG1, 0, src, (src & SLJIT_IMM) ? (sljit_s8)srcw : srcw);
  805. case SLJIT_MOV_U16:
  806. return emit_op(compiler, SLJIT_MOV_U16, flags | HALF_DATA, dst, dstw, TMP_REG1, 0, src, (src & SLJIT_IMM) ? (sljit_u16)srcw : srcw);
  807. case SLJIT_MOV_S16:
  808. return emit_op(compiler, SLJIT_MOV_S16, flags | HALF_DATA | SIGNED_DATA, dst, dstw, TMP_REG1, 0, src, (src & SLJIT_IMM) ? (sljit_s16)srcw : srcw);
  809. case SLJIT_NOT:
  810. case SLJIT_CLZ:
  811. return emit_op(compiler, op, flags, dst, dstw, TMP_REG1, 0, src, srcw);
  812. case SLJIT_NEG:
  813. return emit_op(compiler, SLJIT_SUB, flags | IMM_OP, dst, dstw, SLJIT_IMM, 0, src, srcw);
  814. }
  815. return SLJIT_SUCCESS;
  816. }
  817. SLJIT_API_FUNC_ATTRIBUTE sljit_s32 sljit_emit_op2(struct sljit_compiler *compiler, sljit_s32 op,
  818. sljit_s32 dst, sljit_sw dstw,
  819. sljit_s32 src1, sljit_sw src1w,
  820. sljit_s32 src2, sljit_sw src2w)
  821. {
  822. sljit_s32 flags = HAS_FLAGS(op) ? SET_FLAGS : 0;
  823. CHECK_ERROR();
  824. CHECK(check_sljit_emit_op2(compiler, op, dst, dstw, src1, src1w, src2, src2w));
  825. ADJUST_LOCAL_OFFSET(dst, dstw);
  826. ADJUST_LOCAL_OFFSET(src1, src1w);
  827. ADJUST_LOCAL_OFFSET(src2, src2w);
  828. if (dst == SLJIT_UNUSED && !HAS_FLAGS(op))
  829. return SLJIT_SUCCESS;
  830. op = GET_OPCODE(op);
  831. switch (op) {
  832. case SLJIT_ADD:
  833. case SLJIT_ADDC:
  834. case SLJIT_MUL:
  835. case SLJIT_AND:
  836. case SLJIT_OR:
  837. case SLJIT_XOR:
  838. return emit_op(compiler, op, flags | CUMULATIVE_OP | IMM_OP, dst, dstw, src1, src1w, src2, src2w);
  839. case SLJIT_SUB:
  840. case SLJIT_SUBC:
  841. return emit_op(compiler, op, flags | IMM_OP, dst, dstw, src1, src1w, src2, src2w);
  842. case SLJIT_SHL:
  843. case SLJIT_LSHR:
  844. case SLJIT_ASHR:
  845. #if (defined SLJIT_CONFIG_SPARC_32 && SLJIT_CONFIG_SPARC_32)
  846. if (src2 & SLJIT_IMM)
  847. src2w &= 0x1f;
  848. #else
  849. SLJIT_UNREACHABLE();
  850. #endif
  851. return emit_op(compiler, op, flags | IMM_OP, dst, dstw, src1, src1w, src2, src2w);
  852. }
  853. return SLJIT_SUCCESS;
  854. }
  855. SLJIT_API_FUNC_ATTRIBUTE sljit_s32 sljit_emit_op_src(struct sljit_compiler *compiler, sljit_s32 op,
  856. sljit_s32 src, sljit_sw srcw)
  857. {
  858. CHECK_ERROR();
  859. CHECK(check_sljit_emit_op_src(compiler, op, src, srcw));
  860. ADJUST_LOCAL_OFFSET(src, srcw);
  861. switch (op) {
  862. case SLJIT_FAST_RETURN:
  863. if (FAST_IS_REG(src))
  864. FAIL_IF(push_inst(compiler, OR | D(TMP_LINK) | S1(0) | S2(src), DR(TMP_LINK)));
  865. else
  866. FAIL_IF(emit_op_mem(compiler, WORD_DATA | LOAD_DATA, TMP_LINK, src, srcw));
  867. FAIL_IF(push_inst(compiler, JMPL | D(0) | S1(TMP_LINK) | IMM(8), UNMOVABLE_INS));
  868. return push_inst(compiler, NOP, UNMOVABLE_INS);
  869. case SLJIT_SKIP_FRAMES_BEFORE_FAST_RETURN:
  870. case SLJIT_PREFETCH_L1:
  871. case SLJIT_PREFETCH_L2:
  872. case SLJIT_PREFETCH_L3:
  873. case SLJIT_PREFETCH_ONCE:
  874. return SLJIT_SUCCESS;
  875. }
  876. return SLJIT_SUCCESS;
  877. }
  878. SLJIT_API_FUNC_ATTRIBUTE sljit_s32 sljit_get_register_index(sljit_s32 reg)
  879. {
  880. CHECK_REG_INDEX(check_sljit_get_register_index(reg));
  881. return reg_map[reg];
  882. }
  883. SLJIT_API_FUNC_ATTRIBUTE sljit_s32 sljit_get_float_register_index(sljit_s32 reg)
  884. {
  885. CHECK_REG_INDEX(check_sljit_get_float_register_index(reg));
  886. return freg_map[reg];
  887. }
  888. SLJIT_API_FUNC_ATTRIBUTE sljit_s32 sljit_emit_op_custom(struct sljit_compiler *compiler,
  889. void *instruction, sljit_s32 size)
  890. {
  891. CHECK_ERROR();
  892. CHECK(check_sljit_emit_op_custom(compiler, instruction, size));
  893. return push_inst(compiler, *(sljit_ins*)instruction, UNMOVABLE_INS);
  894. }
  895. /* --------------------------------------------------------------------- */
  896. /* Floating point operators */
  897. /* --------------------------------------------------------------------- */
  898. #define FLOAT_DATA(op) (DOUBLE_DATA | ((op & SLJIT_F32_OP) >> 7))
  899. #define SELECT_FOP(op, single, double) ((op & SLJIT_F32_OP) ? single : double)
  900. #define FLOAT_TMP_MEM_OFFSET (22 * sizeof(sljit_sw))
  901. static SLJIT_INLINE sljit_s32 sljit_emit_fop1_conv_sw_from_f64(struct sljit_compiler *compiler, sljit_s32 op,
  902. sljit_s32 dst, sljit_sw dstw,
  903. sljit_s32 src, sljit_sw srcw)
  904. {
  905. if (src & SLJIT_MEM) {
  906. FAIL_IF(emit_op_mem2(compiler, FLOAT_DATA(op) | LOAD_DATA, TMP_FREG1, src, srcw, dst, dstw));
  907. src = TMP_FREG1;
  908. }
  909. FAIL_IF(push_inst(compiler, SELECT_FOP(op, FSTOI, FDTOI) | FD(TMP_FREG1) | FS2(src), MOVABLE_INS));
  910. if (FAST_IS_REG(dst)) {
  911. FAIL_IF(emit_op_mem2(compiler, SINGLE_DATA, TMP_FREG1, SLJIT_MEM1(SLJIT_SP), FLOAT_TMP_MEM_OFFSET, SLJIT_MEM1(SLJIT_SP), FLOAT_TMP_MEM_OFFSET));
  912. return emit_op_mem2(compiler, WORD_DATA | LOAD_DATA, dst, SLJIT_MEM1(SLJIT_SP), FLOAT_TMP_MEM_OFFSET, SLJIT_MEM1(SLJIT_SP), FLOAT_TMP_MEM_OFFSET);
  913. }
  914. /* Store the integer value from a VFP register. */
  915. return emit_op_mem2(compiler, SINGLE_DATA, TMP_FREG1, dst, dstw, 0, 0);
  916. }
  917. static SLJIT_INLINE sljit_s32 sljit_emit_fop1_conv_f64_from_sw(struct sljit_compiler *compiler, sljit_s32 op,
  918. sljit_s32 dst, sljit_sw dstw,
  919. sljit_s32 src, sljit_sw srcw)
  920. {
  921. sljit_s32 dst_r = FAST_IS_REG(dst) ? dst : TMP_FREG1;
  922. if (src & SLJIT_IMM) {
  923. #if (defined SLJIT_CONFIG_X86_64 && SLJIT_CONFIG_X86_64)
  924. if (GET_OPCODE(op) == SLJIT_CONV_F64_FROM_S32)
  925. srcw = (sljit_s32)srcw;
  926. #endif
  927. FAIL_IF(load_immediate(compiler, TMP_REG1, srcw));
  928. src = TMP_REG1;
  929. srcw = 0;
  930. }
  931. if (FAST_IS_REG(src)) {
  932. FAIL_IF(emit_op_mem2(compiler, WORD_DATA, src, SLJIT_MEM1(SLJIT_SP), FLOAT_TMP_MEM_OFFSET, SLJIT_MEM1(SLJIT_SP), FLOAT_TMP_MEM_OFFSET));
  933. src = SLJIT_MEM1(SLJIT_SP);
  934. srcw = FLOAT_TMP_MEM_OFFSET;
  935. }
  936. FAIL_IF(emit_op_mem2(compiler, SINGLE_DATA | LOAD_DATA, TMP_FREG1, src, srcw, dst, dstw));
  937. FAIL_IF(push_inst(compiler, SELECT_FOP(op, FITOS, FITOD) | FD(dst_r) | FS2(TMP_FREG1), MOVABLE_INS));
  938. if (dst & SLJIT_MEM)
  939. return emit_op_mem2(compiler, FLOAT_DATA(op), TMP_FREG1, dst, dstw, 0, 0);
  940. return SLJIT_SUCCESS;
  941. }
  942. static SLJIT_INLINE sljit_s32 sljit_emit_fop1_cmp(struct sljit_compiler *compiler, sljit_s32 op,
  943. sljit_s32 src1, sljit_sw src1w,
  944. sljit_s32 src2, sljit_sw src2w)
  945. {
  946. if (src1 & SLJIT_MEM) {
  947. FAIL_IF(emit_op_mem2(compiler, FLOAT_DATA(op) | LOAD_DATA, TMP_FREG1, src1, src1w, src2, src2w));
  948. src1 = TMP_FREG1;
  949. }
  950. if (src2 & SLJIT_MEM) {
  951. FAIL_IF(emit_op_mem2(compiler, FLOAT_DATA(op) | LOAD_DATA, TMP_FREG2, src2, src2w, 0, 0));
  952. src2 = TMP_FREG2;
  953. }
  954. return push_inst(compiler, SELECT_FOP(op, FCMPS, FCMPD) | FS1(src1) | FS2(src2), FCC_IS_SET | MOVABLE_INS);
  955. }
  956. SLJIT_API_FUNC_ATTRIBUTE sljit_s32 sljit_emit_fop1(struct sljit_compiler *compiler, sljit_s32 op,
  957. sljit_s32 dst, sljit_sw dstw,
  958. sljit_s32 src, sljit_sw srcw)
  959. {
  960. sljit_s32 dst_r;
  961. CHECK_ERROR();
  962. compiler->cache_arg = 0;
  963. compiler->cache_argw = 0;
  964. SLJIT_COMPILE_ASSERT((SLJIT_F32_OP == 0x100) && !(DOUBLE_DATA & 0x2), float_transfer_bit_error);
  965. SELECT_FOP1_OPERATION_WITH_CHECKS(compiler, op, dst, dstw, src, srcw);
  966. if (GET_OPCODE(op) == SLJIT_CONV_F64_FROM_F32)
  967. op ^= SLJIT_F32_OP;
  968. dst_r = FAST_IS_REG(dst) ? dst : TMP_FREG1;
  969. if (src & SLJIT_MEM) {
  970. FAIL_IF(emit_op_mem2(compiler, FLOAT_DATA(op) | LOAD_DATA, dst_r, src, srcw, dst, dstw));
  971. src = dst_r;
  972. }
  973. switch (GET_OPCODE(op)) {
  974. case SLJIT_MOV_F64:
  975. if (src != dst_r) {
  976. if (dst_r != TMP_FREG1) {
  977. FAIL_IF(push_inst(compiler, FMOVS | FD(dst_r) | FS2(src), MOVABLE_INS));
  978. if (!(op & SLJIT_F32_OP))
  979. FAIL_IF(push_inst(compiler, FMOVS | FDN(dst_r) | FS2N(src), MOVABLE_INS));
  980. }
  981. else
  982. dst_r = src;
  983. }
  984. break;
  985. case SLJIT_NEG_F64:
  986. FAIL_IF(push_inst(compiler, FNEGS | FD(dst_r) | FS2(src), MOVABLE_INS));
  987. if (dst_r != src && !(op & SLJIT_F32_OP))
  988. FAIL_IF(push_inst(compiler, FMOVS | FDN(dst_r) | FS2N(src), MOVABLE_INS));
  989. break;
  990. case SLJIT_ABS_F64:
  991. FAIL_IF(push_inst(compiler, FABSS | FD(dst_r) | FS2(src), MOVABLE_INS));
  992. if (dst_r != src && !(op & SLJIT_F32_OP))
  993. FAIL_IF(push_inst(compiler, FMOVS | FDN(dst_r) | FS2N(src), MOVABLE_INS));
  994. break;
  995. case SLJIT_CONV_F64_FROM_F32:
  996. FAIL_IF(push_inst(compiler, SELECT_FOP(op, FSTOD, FDTOS) | FD(dst_r) | FS2(src), MOVABLE_INS));
  997. op ^= SLJIT_F32_OP;
  998. break;
  999. }
  1000. if (dst & SLJIT_MEM)
  1001. FAIL_IF(emit_op_mem2(compiler, FLOAT_DATA(op), dst_r, dst, dstw, 0, 0));
  1002. return SLJIT_SUCCESS;
  1003. }
  1004. SLJIT_API_FUNC_ATTRIBUTE sljit_s32 sljit_emit_fop2(struct sljit_compiler *compiler, sljit_s32 op,
  1005. sljit_s32 dst, sljit_sw dstw,
  1006. sljit_s32 src1, sljit_sw src1w,
  1007. sljit_s32 src2, sljit_sw src2w)
  1008. {
  1009. sljit_s32 dst_r, flags = 0;
  1010. CHECK_ERROR();
  1011. CHECK(check_sljit_emit_fop2(compiler, op, dst, dstw, src1, src1w, src2, src2w));
  1012. ADJUST_LOCAL_OFFSET(dst, dstw);
  1013. ADJUST_LOCAL_OFFSET(src1, src1w);
  1014. ADJUST_LOCAL_OFFSET(src2, src2w);
  1015. compiler->cache_arg = 0;
  1016. compiler->cache_argw = 0;
  1017. dst_r = FAST_IS_REG(dst) ? dst : TMP_FREG2;
  1018. if (src1 & SLJIT_MEM) {
  1019. if (getput_arg_fast(compiler, FLOAT_DATA(op) | LOAD_DATA, TMP_FREG1, src1, src1w)) {
  1020. FAIL_IF(compiler->error);
  1021. src1 = TMP_FREG1;
  1022. } else
  1023. flags |= SLOW_SRC1;
  1024. }
  1025. if (src2 & SLJIT_MEM) {
  1026. if (getput_arg_fast(compiler, FLOAT_DATA(op) | LOAD_DATA, TMP_FREG2, src2, src2w)) {
  1027. FAIL_IF(compiler->error);
  1028. src2 = TMP_FREG2;
  1029. } else
  1030. flags |= SLOW_SRC2;
  1031. }
  1032. if ((flags & (SLOW_SRC1 | SLOW_SRC2)) == (SLOW_SRC1 | SLOW_SRC2)) {
  1033. if (!can_cache(src1, src1w, src2, src2w) && can_cache(src1, src1w, dst, dstw)) {
  1034. FAIL_IF(getput_arg(compiler, FLOAT_DATA(op) | LOAD_DATA, TMP_FREG2, src2, src2w, src1, src1w));
  1035. FAIL_IF(getput_arg(compiler, FLOAT_DATA(op) | LOAD_DATA, TMP_FREG1, src1, src1w, dst, dstw));
  1036. }
  1037. else {
  1038. FAIL_IF(getput_arg(compiler, FLOAT_DATA(op) | LOAD_DATA, TMP_FREG1, src1, src1w, src2, src2w));
  1039. FAIL_IF(getput_arg(compiler, FLOAT_DATA(op) | LOAD_DATA, TMP_FREG2, src2, src2w, dst, dstw));
  1040. }
  1041. }
  1042. else if (flags & SLOW_SRC1)
  1043. FAIL_IF(getput_arg(compiler, FLOAT_DATA(op) | LOAD_DATA, TMP_FREG1, src1, src1w, dst, dstw));
  1044. else if (flags & SLOW_SRC2)
  1045. FAIL_IF(getput_arg(compiler, FLOAT_DATA(op) | LOAD_DATA, TMP_FREG2, src2, src2w, dst, dstw));
  1046. if (flags & SLOW_SRC1)
  1047. src1 = TMP_FREG1;
  1048. if (flags & SLOW_SRC2)
  1049. src2 = TMP_FREG2;
  1050. switch (GET_OPCODE(op)) {
  1051. case SLJIT_ADD_F64:
  1052. FAIL_IF(push_inst(compiler, SELECT_FOP(op, FADDS, FADDD) | FD(dst_r) | FS1(src1) | FS2(src2), MOVABLE_INS));
  1053. break;
  1054. case SLJIT_SUB_F64:
  1055. FAIL_IF(push_inst(compiler, SELECT_FOP(op, FSUBS, FSUBD) | FD(dst_r) | FS1(src1) | FS2(src2), MOVABLE_INS));
  1056. break;
  1057. case SLJIT_MUL_F64:
  1058. FAIL_IF(push_inst(compiler, SELECT_FOP(op, FMULS, FMULD) | FD(dst_r) | FS1(src1) | FS2(src2), MOVABLE_INS));
  1059. break;
  1060. case SLJIT_DIV_F64:
  1061. FAIL_IF(push_inst(compiler, SELECT_FOP(op, FDIVS, FDIVD) | FD(dst_r) | FS1(src1) | FS2(src2), MOVABLE_INS));
  1062. break;
  1063. }
  1064. if (dst_r == TMP_FREG2)
  1065. FAIL_IF(emit_op_mem2(compiler, FLOAT_DATA(op), TMP_FREG2, dst, dstw, 0, 0));
  1066. return SLJIT_SUCCESS;
  1067. }
  1068. #undef FLOAT_DATA
  1069. #undef SELECT_FOP
  1070. /* --------------------------------------------------------------------- */
  1071. /* Other instructions */
  1072. /* --------------------------------------------------------------------- */
  1073. SLJIT_API_FUNC_ATTRIBUTE sljit_s32 sljit_emit_fast_enter(struct sljit_compiler *compiler, sljit_s32 dst, sljit_sw dstw)
  1074. {
  1075. CHECK_ERROR();
  1076. CHECK(check_sljit_emit_fast_enter(compiler, dst, dstw));
  1077. ADJUST_LOCAL_OFFSET(dst, dstw);
  1078. if (FAST_IS_REG(dst))
  1079. return push_inst(compiler, OR | D(dst) | S1(0) | S2(TMP_LINK), UNMOVABLE_INS);
  1080. /* Memory. */
  1081. FAIL_IF(emit_op_mem(compiler, WORD_DATA, TMP_LINK, dst, dstw));
  1082. compiler->delay_slot = UNMOVABLE_INS;
  1083. return SLJIT_SUCCESS;
  1084. }
  1085. /* --------------------------------------------------------------------- */
  1086. /* Conditional instructions */
  1087. /* --------------------------------------------------------------------- */
  1088. SLJIT_API_FUNC_ATTRIBUTE struct sljit_label* sljit_emit_label(struct sljit_compiler *compiler)
  1089. {
  1090. struct sljit_label *label;
  1091. CHECK_ERROR_PTR();
  1092. CHECK_PTR(check_sljit_emit_label(compiler));
  1093. if (compiler->last_label && compiler->last_label->size == compiler->size)
  1094. return compiler->last_label;
  1095. label = (struct sljit_label*)ensure_abuf(compiler, sizeof(struct sljit_label));
  1096. PTR_FAIL_IF(!label);
  1097. set_label(label, compiler);
  1098. compiler->delay_slot = UNMOVABLE_INS;
  1099. return label;
  1100. }
  1101. static sljit_ins get_cc(struct sljit_compiler *compiler, sljit_s32 type)
  1102. {
  1103. switch (type) {
  1104. case SLJIT_EQUAL:
  1105. case SLJIT_NOT_EQUAL_F64: /* Unordered. */
  1106. return DA(0x1);
  1107. case SLJIT_NOT_EQUAL:
  1108. case SLJIT_EQUAL_F64:
  1109. return DA(0x9);
  1110. case SLJIT_LESS:
  1111. case SLJIT_GREATER_F64: /* Unordered. */
  1112. return DA(0x5);
  1113. case SLJIT_GREATER_EQUAL:
  1114. case SLJIT_LESS_EQUAL_F64:
  1115. return DA(0xd);
  1116. case SLJIT_GREATER:
  1117. case SLJIT_GREATER_EQUAL_F64: /* Unordered. */
  1118. return DA(0xc);
  1119. case SLJIT_LESS_EQUAL:
  1120. case SLJIT_LESS_F64:
  1121. return DA(0x4);
  1122. case SLJIT_SIG_LESS:
  1123. return DA(0x3);
  1124. case SLJIT_SIG_GREATER_EQUAL:
  1125. return DA(0xb);
  1126. case SLJIT_SIG_GREATER:
  1127. return DA(0xa);
  1128. case SLJIT_SIG_LESS_EQUAL:
  1129. return DA(0x2);
  1130. case SLJIT_OVERFLOW:
  1131. if (!(compiler->status_flags_state & SLJIT_CURRENT_FLAGS_ADD_SUB))
  1132. return DA(0x9);
  1133. case SLJIT_UNORDERED_F64:
  1134. return DA(0x7);
  1135. case SLJIT_NOT_OVERFLOW:
  1136. if (!(compiler->status_flags_state & SLJIT_CURRENT_FLAGS_ADD_SUB))
  1137. return DA(0x1);
  1138. case SLJIT_ORDERED_F64:
  1139. return DA(0xf);
  1140. default:
  1141. SLJIT_UNREACHABLE();
  1142. return DA(0x8);
  1143. }
  1144. }
  1145. SLJIT_API_FUNC_ATTRIBUTE struct sljit_jump* sljit_emit_jump(struct sljit_compiler *compiler, sljit_s32 type)
  1146. {
  1147. struct sljit_jump *jump;
  1148. CHECK_ERROR_PTR();
  1149. CHECK_PTR(check_sljit_emit_jump(compiler, type));
  1150. jump = (struct sljit_jump*)ensure_abuf(compiler, sizeof(struct sljit_jump));
  1151. PTR_FAIL_IF(!jump);
  1152. set_jump(jump, compiler, type & SLJIT_REWRITABLE_JUMP);
  1153. type &= 0xff;
  1154. if (type < SLJIT_EQUAL_F64) {
  1155. jump->flags |= IS_COND;
  1156. if (((compiler->delay_slot & DST_INS_MASK) != UNMOVABLE_INS) && !(compiler->delay_slot & ICC_IS_SET))
  1157. jump->flags |= IS_MOVABLE;
  1158. #if (defined SLJIT_CONFIG_SPARC_32 && SLJIT_CONFIG_SPARC_32)
  1159. PTR_FAIL_IF(push_inst(compiler, BICC | get_cc(compiler, type ^ 1) | 5, UNMOVABLE_INS));
  1160. #else
  1161. #error "Implementation required"
  1162. #endif
  1163. }
  1164. else if (type < SLJIT_JUMP) {
  1165. jump->flags |= IS_COND;
  1166. if (((compiler->delay_slot & DST_INS_MASK) != UNMOVABLE_INS) && !(compiler->delay_slot & FCC_IS_SET))
  1167. jump->flags |= IS_MOVABLE;
  1168. #if (defined SLJIT_CONFIG_SPARC_32 && SLJIT_CONFIG_SPARC_32)
  1169. PTR_FAIL_IF(push_inst(compiler, FBFCC | get_cc(compiler, type ^ 1) | 5, UNMOVABLE_INS));
  1170. #else
  1171. #error "Implementation required"
  1172. #endif
  1173. }
  1174. else {
  1175. if ((compiler->delay_slot & DST_INS_MASK) != UNMOVABLE_INS)
  1176. jump->flags |= IS_MOVABLE;
  1177. if (type >= SLJIT_FAST_CALL)
  1178. jump->flags |= IS_CALL;
  1179. }
  1180. PTR_FAIL_IF(emit_const(compiler, TMP_REG1, 0));
  1181. PTR_FAIL_IF(push_inst(compiler, JMPL | D(type >= SLJIT_FAST_CALL ? TMP_LINK : 0) | S1(TMP_REG1) | IMM(0), UNMOVABLE_INS));
  1182. jump->addr = compiler->size;
  1183. PTR_FAIL_IF(push_inst(compiler, NOP, UNMOVABLE_INS));
  1184. return jump;
  1185. }
  1186. SLJIT_API_FUNC_ATTRIBUTE struct sljit_jump* sljit_emit_call(struct sljit_compiler *compiler, sljit_s32 type,
  1187. sljit_s32 arg_types)
  1188. {
  1189. CHECK_ERROR_PTR();
  1190. CHECK_PTR(check_sljit_emit_call(compiler, type, arg_types));
  1191. PTR_FAIL_IF(call_with_args(compiler, arg_types, NULL));
  1192. #if (defined SLJIT_VERBOSE && SLJIT_VERBOSE) \
  1193. || (defined SLJIT_ARGUMENT_CHECKS && SLJIT_ARGUMENT_CHECKS)
  1194. compiler->skip_checks = 1;
  1195. #endif
  1196. return sljit_emit_jump(compiler, type);
  1197. }
  1198. SLJIT_API_FUNC_ATTRIBUTE sljit_s32 sljit_emit_ijump(struct sljit_compiler *compiler, sljit_s32 type, sljit_s32 src, sljit_sw srcw)
  1199. {
  1200. struct sljit_jump *jump = NULL;
  1201. sljit_s32 src_r;
  1202. CHECK_ERROR();
  1203. CHECK(check_sljit_emit_ijump(compiler, type, src, srcw));
  1204. ADJUST_LOCAL_OFFSET(src, srcw);
  1205. if (FAST_IS_REG(src))
  1206. src_r = src;
  1207. else if (src & SLJIT_IMM) {
  1208. jump = (struct sljit_jump*)ensure_abuf(compiler, sizeof(struct sljit_jump));
  1209. FAIL_IF(!jump);
  1210. set_jump(jump, compiler, JUMP_ADDR);
  1211. jump->u.target = srcw;
  1212. if ((compiler->delay_slot & DST_INS_MASK) != UNMOVABLE_INS)
  1213. jump->flags |= IS_MOVABLE;
  1214. if (type >= SLJIT_FAST_CALL)
  1215. jump->flags |= IS_CALL;
  1216. FAIL_IF(emit_const(compiler, TMP_REG1, 0));
  1217. src_r = TMP_REG1;
  1218. }
  1219. else {
  1220. FAIL_IF(emit_op_mem(compiler, WORD_DATA | LOAD_DATA, TMP_REG1, src, srcw));
  1221. src_r = TMP_REG1;
  1222. }
  1223. FAIL_IF(push_inst(compiler, JMPL | D(type >= SLJIT_FAST_CALL ? TMP_LINK : 0) | S1(src_r) | IMM(0), UNMOVABLE_INS));
  1224. if (jump)
  1225. jump->addr = compiler->size;
  1226. return push_inst(compiler, NOP, UNMOVABLE_INS);
  1227. }
  1228. SLJIT_API_FUNC_ATTRIBUTE sljit_s32 sljit_emit_icall(struct sljit_compiler *compiler, sljit_s32 type,
  1229. sljit_s32 arg_types,
  1230. sljit_s32 src, sljit_sw srcw)
  1231. {
  1232. CHECK_ERROR();
  1233. CHECK(check_sljit_emit_icall(compiler, type, arg_types, src, srcw));
  1234. if (src & SLJIT_MEM) {
  1235. ADJUST_LOCAL_OFFSET(src, srcw);
  1236. FAIL_IF(emit_op_mem(compiler, WORD_DATA | LOAD_DATA, TMP_REG1, src, srcw));
  1237. src = TMP_REG1;
  1238. }
  1239. FAIL_IF(call_with_args(compiler, arg_types, &src));
  1240. #if (defined SLJIT_VERBOSE && SLJIT_VERBOSE) \
  1241. || (defined SLJIT_ARGUMENT_CHECKS && SLJIT_ARGUMENT_CHECKS)
  1242. compiler->skip_checks = 1;
  1243. #endif
  1244. return sljit_emit_ijump(compiler, type, src, srcw);
  1245. }
  1246. SLJIT_API_FUNC_ATTRIBUTE sljit_s32 sljit_emit_op_flags(struct sljit_compiler *compiler, sljit_s32 op,
  1247. sljit_s32 dst, sljit_sw dstw,
  1248. sljit_s32 type)
  1249. {
  1250. sljit_s32 reg, flags = HAS_FLAGS(op) ? SET_FLAGS : 0;
  1251. CHECK_ERROR();
  1252. CHECK(check_sljit_emit_op_flags(compiler, op, dst, dstw, type));
  1253. ADJUST_LOCAL_OFFSET(dst, dstw);
  1254. #if (defined SLJIT_CONFIG_SPARC_32 && SLJIT_CONFIG_SPARC_32)
  1255. op = GET_OPCODE(op);
  1256. reg = (op < SLJIT_ADD && FAST_IS_REG(dst)) ? dst : TMP_REG2;
  1257. compiler->cache_arg = 0;
  1258. compiler->cache_argw = 0;
  1259. if (op >= SLJIT_ADD && (dst & SLJIT_MEM))
  1260. FAIL_IF(emit_op_mem2(compiler, WORD_DATA | LOAD_DATA, TMP_REG1, dst, dstw, dst, dstw));
  1261. type &= 0xff;
  1262. if (type < SLJIT_EQUAL_F64)
  1263. FAIL_IF(push_inst(compiler, BICC | get_cc(compiler, type) | 3, UNMOVABLE_INS));
  1264. else
  1265. FAIL_IF(push_inst(compiler, FBFCC | get_cc(compiler, type) | 3, UNMOVABLE_INS));
  1266. FAIL_IF(push_inst(compiler, OR | D(reg) | S1(0) | IMM(1), UNMOVABLE_INS));
  1267. FAIL_IF(push_inst(compiler, OR | D(reg) | S1(0) | IMM(0), UNMOVABLE_INS));
  1268. if (op >= SLJIT_ADD) {
  1269. flags |= CUMULATIVE_OP | IMM_OP | ALT_KEEP_CACHE;
  1270. if (dst & SLJIT_MEM)
  1271. return emit_op(compiler, op, flags, dst, dstw, TMP_REG1, 0, TMP_REG2, 0);
  1272. return emit_op(compiler, op, flags, dst, 0, dst, 0, TMP_REG2, 0);
  1273. }
  1274. if (!(dst & SLJIT_MEM))
  1275. return SLJIT_SUCCESS;
  1276. return emit_op_mem(compiler, WORD_DATA, TMP_REG2, dst, dstw);
  1277. #else
  1278. #error "Implementation required"
  1279. #endif
  1280. }
  1281. SLJIT_API_FUNC_ATTRIBUTE sljit_s32 sljit_emit_cmov(struct sljit_compiler *compiler, sljit_s32 type,
  1282. sljit_s32 dst_reg,
  1283. sljit_s32 src, sljit_sw srcw)
  1284. {
  1285. CHECK_ERROR();
  1286. CHECK(check_sljit_emit_cmov(compiler, type, dst_reg, src, srcw));
  1287. #if (defined SLJIT_CONFIG_SPARC_32 && SLJIT_CONFIG_SPARC_32)
  1288. return sljit_emit_cmov_generic(compiler, type, dst_reg, src, srcw);;
  1289. #else
  1290. #error "Implementation required"
  1291. #endif
  1292. }
  1293. SLJIT_API_FUNC_ATTRIBUTE struct sljit_const* sljit_emit_const(struct sljit_compiler *compiler, sljit_s32 dst, sljit_sw dstw, sljit_sw init_value)
  1294. {
  1295. struct sljit_const *const_;
  1296. sljit_s32 dst_r;
  1297. CHECK_ERROR_PTR();
  1298. CHECK_PTR(check_sljit_emit_const(compiler, dst, dstw, init_value));
  1299. ADJUST_LOCAL_OFFSET(dst, dstw);
  1300. const_ = (struct sljit_const*)ensure_abuf(compiler, sizeof(struct sljit_const));
  1301. PTR_FAIL_IF(!const_);
  1302. set_const(const_, compiler);
  1303. dst_r = FAST_IS_REG(dst) ? dst : TMP_REG2;
  1304. PTR_FAIL_IF(emit_const(compiler, dst_r, init_value));
  1305. if (dst & SLJIT_MEM)
  1306. PTR_FAIL_IF(emit_op_mem(compiler, WORD_DATA, TMP_REG2, dst, dstw));
  1307. return const_;
  1308. }
  1309. SLJIT_API_FUNC_ATTRIBUTE struct sljit_put_label* sljit_emit_put_label(struct sljit_compiler *compiler, sljit_s32 dst, sljit_sw dstw)
  1310. {
  1311. struct sljit_put_label *put_label;
  1312. sljit_s32 dst_r;
  1313. CHECK_ERROR_PTR();
  1314. CHECK_PTR(check_sljit_emit_put_label(compiler, dst, dstw));
  1315. ADJUST_LOCAL_OFFSET(dst, dstw);
  1316. put_label = (struct sljit_put_label*)ensure_abuf(compiler, sizeof(struct sljit_put_label));
  1317. PTR_FAIL_IF(!put_label);
  1318. set_put_label(put_label, compiler, 0);
  1319. dst_r = FAST_IS_REG(dst) ? dst : TMP_REG2;
  1320. PTR_FAIL_IF(emit_const(compiler, dst_r, 0));
  1321. if (dst & SLJIT_MEM)
  1322. PTR_FAIL_IF(emit_op_mem(compiler, WORD_DATA, TMP_REG2, dst, dstw));
  1323. return put_label;
  1324. }