emitter.cpp 76 KB

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  1. // Copyright (C) 2003 Dolphin Project.
  2. // This program is free software: you can redistribute it and/or modify
  3. // it under the terms of the GNU General Public License as published by
  4. // the Free Software Foundation, version 2.0 or later versions.
  5. // This program is distributed in the hope that it will be useful,
  6. // but WITHOUT ANY WARRANTY; without even the implied warranty of
  7. // MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  8. // GNU General Public License 2.0 for more details.
  9. // A copy of the GPL 2.0 should have been included with the program.
  10. // If not, see http://www.gnu.org/licenses/
  11. // Official SVN repository and contact information can be found at
  12. // http://code.google.com/p/dolphin-emu/
  13. #include <cinttypes>
  14. #include <cstring>
  15. #include "common/assert.h"
  16. #include "common/logging/log.h"
  17. #include "common/memory_util.h"
  18. #include "abi.h"
  19. #include "cpu_detect.h"
  20. #include "emitter.h"
  21. namespace Gen
  22. {
  23. struct NormalOpDef
  24. {
  25. u8 toRm8, toRm32, fromRm8, fromRm32, imm8, imm32, simm8, eaximm8, eaximm32, ext;
  26. };
  27. // 0xCC is code for invalid combination of immediates
  28. static const NormalOpDef normalops[11] =
  29. {
  30. {0x00, 0x01, 0x02, 0x03, 0x80, 0x81, 0x83, 0x04, 0x05, 0}, //ADD
  31. {0x10, 0x11, 0x12, 0x13, 0x80, 0x81, 0x83, 0x14, 0x15, 2}, //ADC
  32. {0x28, 0x29, 0x2A, 0x2B, 0x80, 0x81, 0x83, 0x2C, 0x2D, 5}, //SUB
  33. {0x18, 0x19, 0x1A, 0x1B, 0x80, 0x81, 0x83, 0x1C, 0x1D, 3}, //SBB
  34. {0x20, 0x21, 0x22, 0x23, 0x80, 0x81, 0x83, 0x24, 0x25, 4}, //AND
  35. {0x08, 0x09, 0x0A, 0x0B, 0x80, 0x81, 0x83, 0x0C, 0x0D, 1}, //OR
  36. {0x30, 0x31, 0x32, 0x33, 0x80, 0x81, 0x83, 0x34, 0x35, 6}, //XOR
  37. {0x88, 0x89, 0x8A, 0x8B, 0xC6, 0xC7, 0xCC, 0xCC, 0xCC, 0}, //MOV
  38. {0x84, 0x85, 0x84, 0x85, 0xF6, 0xF7, 0xCC, 0xA8, 0xA9, 0}, //TEST (to == from)
  39. {0x38, 0x39, 0x3A, 0x3B, 0x80, 0x81, 0x83, 0x3C, 0x3D, 7}, //CMP
  40. {0x86, 0x87, 0x86, 0x87, 0xCC, 0xCC, 0xCC, 0xCC, 0xCC, 7}, //XCHG
  41. };
  42. enum NormalSSEOps
  43. {
  44. sseCMP = 0xC2,
  45. sseADD = 0x58, //ADD
  46. sseSUB = 0x5C, //SUB
  47. sseAND = 0x54, //AND
  48. sseANDN = 0x55, //ANDN
  49. sseOR = 0x56,
  50. sseXOR = 0x57,
  51. sseMUL = 0x59, //MUL
  52. sseDIV = 0x5E, //DIV
  53. sseMIN = 0x5D, //MIN
  54. sseMAX = 0x5F, //MAX
  55. sseCOMIS = 0x2F, //COMIS
  56. sseUCOMIS = 0x2E, //UCOMIS
  57. sseSQRT = 0x51, //SQRT
  58. sseRSQRT = 0x52, //RSQRT (NO DOUBLE PRECISION!!!)
  59. sseRCP = 0x53, //RCP
  60. sseMOVAPfromRM = 0x28, //MOVAP from RM
  61. sseMOVAPtoRM = 0x29, //MOVAP to RM
  62. sseMOVUPfromRM = 0x10, //MOVUP from RM
  63. sseMOVUPtoRM = 0x11, //MOVUP to RM
  64. sseMOVLPfromRM= 0x12,
  65. sseMOVLPtoRM = 0x13,
  66. sseMOVHPfromRM= 0x16,
  67. sseMOVHPtoRM = 0x17,
  68. sseMOVHLPS = 0x12,
  69. sseMOVLHPS = 0x16,
  70. sseMOVDQfromRM = 0x6F,
  71. sseMOVDQtoRM = 0x7F,
  72. sseMASKMOVDQU = 0xF7,
  73. sseLDDQU = 0xF0,
  74. sseSHUF = 0xC6,
  75. sseMOVNTDQ = 0xE7,
  76. sseMOVNTP = 0x2B,
  77. sseHADD = 0x7C,
  78. };
  79. void XEmitter::SetCodePtr(u8 *ptr)
  80. {
  81. code = ptr;
  82. }
  83. const u8 *XEmitter::GetCodePtr() const
  84. {
  85. return code;
  86. }
  87. u8 *XEmitter::GetWritableCodePtr()
  88. {
  89. return code;
  90. }
  91. void XEmitter::ReserveCodeSpace(int bytes)
  92. {
  93. for (int i = 0; i < bytes; i++)
  94. *code++ = 0xCC;
  95. }
  96. const u8 *XEmitter::AlignCode4()
  97. {
  98. int c = int((u64)code & 3);
  99. if (c)
  100. ReserveCodeSpace(4-c);
  101. return code;
  102. }
  103. const u8 *XEmitter::AlignCode16()
  104. {
  105. int c = int((u64)code & 15);
  106. if (c)
  107. ReserveCodeSpace(16-c);
  108. return code;
  109. }
  110. const u8 *XEmitter::AlignCodePage()
  111. {
  112. int c = int((u64)code & 4095);
  113. if (c)
  114. ReserveCodeSpace(4096-c);
  115. return code;
  116. }
  117. // This operation modifies flags; check to see the flags are locked.
  118. // If the flags are locked, we should immediately and loudly fail before
  119. // causing a subtle JIT bug.
  120. void XEmitter::CheckFlags()
  121. {
  122. ASSERT_MSG(!flags_locked, "Attempt to modify flags while flags locked!");
  123. }
  124. void XEmitter::WriteModRM(int mod, int reg, int rm)
  125. {
  126. Write8((u8)((mod << 6) | ((reg & 7) << 3) | (rm & 7)));
  127. }
  128. void XEmitter::WriteSIB(int scale, int index, int base)
  129. {
  130. Write8((u8)((scale << 6) | ((index & 7) << 3) | (base & 7)));
  131. }
  132. void OpArg::WriteRex(XEmitter *emit, int opBits, int bits, int customOp) const
  133. {
  134. if (customOp == -1) customOp = operandReg;
  135. #ifdef ARCHITECTURE_x86_64
  136. u8 op = 0x40;
  137. // REX.W (whether operation is a 64-bit operation)
  138. if (opBits == 64) op |= 8;
  139. // REX.R (whether ModR/M reg field refers to R8-R15.
  140. if (customOp & 8) op |= 4;
  141. // REX.X (whether ModR/M SIB index field refers to R8-R15)
  142. if (indexReg & 8) op |= 2;
  143. // REX.B (whether ModR/M rm or SIB base or opcode reg field refers to R8-R15)
  144. if (offsetOrBaseReg & 8) op |= 1;
  145. // Write REX if wr have REX bits to write, or if the operation accesses
  146. // SIL, DIL, BPL, or SPL.
  147. if (op != 0x40 ||
  148. (scale == SCALE_NONE && bits == 8 && (offsetOrBaseReg & 0x10c) == 4) ||
  149. (opBits == 8 && (customOp & 0x10c) == 4))
  150. {
  151. emit->Write8(op);
  152. // Check the operation doesn't access AH, BH, CH, or DH.
  153. DEBUG_ASSERT((offsetOrBaseReg & 0x100) == 0);
  154. DEBUG_ASSERT((customOp & 0x100) == 0);
  155. }
  156. #else
  157. DEBUG_ASSERT(opBits != 64);
  158. DEBUG_ASSERT((customOp & 8) == 0 || customOp == -1);
  159. DEBUG_ASSERT((indexReg & 8) == 0);
  160. DEBUG_ASSERT((offsetOrBaseReg & 8) == 0);
  161. DEBUG_ASSERT(opBits != 8 || (customOp & 0x10c) != 4 || customOp == -1);
  162. DEBUG_ASSERT(scale == SCALE_ATREG || bits != 8 || (offsetOrBaseReg & 0x10c) != 4);
  163. #endif
  164. }
  165. void OpArg::WriteVex(XEmitter* emit, X64Reg regOp1, X64Reg regOp2, int L, int pp, int mmmmm, int W) const
  166. {
  167. int R = !(regOp1 & 8);
  168. int X = !(indexReg & 8);
  169. int B = !(offsetOrBaseReg & 8);
  170. int vvvv = (regOp2 == X64Reg::INVALID_REG) ? 0xf : (regOp2 ^ 0xf);
  171. // do we need any VEX fields that only appear in the three-byte form?
  172. if (X == 1 && B == 1 && W == 0 && mmmmm == 1)
  173. {
  174. u8 RvvvvLpp = (R << 7) | (vvvv << 3) | (L << 1) | pp;
  175. emit->Write8(0xC5);
  176. emit->Write8(RvvvvLpp);
  177. }
  178. else
  179. {
  180. u8 RXBmmmmm = (R << 7) | (X << 6) | (B << 5) | mmmmm;
  181. u8 WvvvvLpp = (W << 7) | (vvvv << 3) | (L << 1) | pp;
  182. emit->Write8(0xC4);
  183. emit->Write8(RXBmmmmm);
  184. emit->Write8(WvvvvLpp);
  185. }
  186. }
  187. void OpArg::WriteRest(XEmitter *emit, int extraBytes, X64Reg _operandReg,
  188. bool warn_64bit_offset) const
  189. {
  190. if (_operandReg == INVALID_REG)
  191. _operandReg = (X64Reg)this->operandReg;
  192. int mod = 0;
  193. int ireg = indexReg;
  194. bool SIB = false;
  195. int _offsetOrBaseReg = this->offsetOrBaseReg;
  196. if (scale == SCALE_RIP) //Also, on 32-bit, just an immediate address
  197. {
  198. // Oh, RIP addressing.
  199. _offsetOrBaseReg = 5;
  200. emit->WriteModRM(0, _operandReg, _offsetOrBaseReg);
  201. //TODO : add some checks
  202. #ifdef ARCHITECTURE_x86_64
  203. u64 ripAddr = (u64)emit->GetCodePtr() + 4 + extraBytes;
  204. s64 distance = (s64)offset - (s64)ripAddr;
  205. ASSERT_MSG(
  206. (distance < 0x80000000LL &&
  207. distance >= -0x80000000LL) ||
  208. !warn_64bit_offset,
  209. "WriteRest: op out of range (0x%" PRIx64 " uses 0x%" PRIx64 ")",
  210. ripAddr, offset);
  211. s32 offs = (s32)distance;
  212. emit->Write32((u32)offs);
  213. #else
  214. emit->Write32((u32)offset);
  215. #endif
  216. return;
  217. }
  218. if (scale == 0)
  219. {
  220. // Oh, no memory, Just a reg.
  221. mod = 3; //11
  222. }
  223. else if (scale >= 1)
  224. {
  225. //Ah good, no scaling.
  226. if (scale == SCALE_ATREG && !((_offsetOrBaseReg & 7) == 4 || (_offsetOrBaseReg & 7) == 5))
  227. {
  228. //Okay, we're good. No SIB necessary.
  229. int ioff = (int)offset;
  230. if (ioff == 0)
  231. {
  232. mod = 0;
  233. }
  234. else if (ioff<-128 || ioff>127)
  235. {
  236. mod = 2; //32-bit displacement
  237. }
  238. else
  239. {
  240. mod = 1; //8-bit displacement
  241. }
  242. }
  243. else if (scale >= SCALE_NOBASE_2 && scale <= SCALE_NOBASE_8)
  244. {
  245. SIB = true;
  246. mod = 0;
  247. _offsetOrBaseReg = 5;
  248. }
  249. else //if (scale != SCALE_ATREG)
  250. {
  251. if ((_offsetOrBaseReg & 7) == 4) //this would occupy the SIB encoding :(
  252. {
  253. //So we have to fake it with SIB encoding :(
  254. SIB = true;
  255. }
  256. if (scale >= SCALE_1 && scale < SCALE_ATREG)
  257. {
  258. SIB = true;
  259. }
  260. if (scale == SCALE_ATREG && ((_offsetOrBaseReg & 7) == 4))
  261. {
  262. SIB = true;
  263. ireg = _offsetOrBaseReg;
  264. }
  265. //Okay, we're fine. Just disp encoding.
  266. //We need displacement. Which size?
  267. int ioff = (int)(s64)offset;
  268. if (ioff < -128 || ioff > 127)
  269. {
  270. mod = 2; //32-bit displacement
  271. }
  272. else
  273. {
  274. mod = 1; //8-bit displacement
  275. }
  276. }
  277. }
  278. // Okay. Time to do the actual writing
  279. // ModRM byte:
  280. int oreg = _offsetOrBaseReg;
  281. if (SIB)
  282. oreg = 4;
  283. // TODO(ector): WTF is this if about? I don't remember writing it :-)
  284. //if (RIP)
  285. // oreg = 5;
  286. emit->WriteModRM(mod, _operandReg&7, oreg&7);
  287. if (SIB)
  288. {
  289. //SIB byte
  290. int ss;
  291. switch (scale)
  292. {
  293. case SCALE_NONE: _offsetOrBaseReg = 4; ss = 0; break; //RSP
  294. case SCALE_1: ss = 0; break;
  295. case SCALE_2: ss = 1; break;
  296. case SCALE_4: ss = 2; break;
  297. case SCALE_8: ss = 3; break;
  298. case SCALE_NOBASE_2: ss = 1; break;
  299. case SCALE_NOBASE_4: ss = 2; break;
  300. case SCALE_NOBASE_8: ss = 3; break;
  301. case SCALE_ATREG: ss = 0; break;
  302. default: ASSERT_MSG(0, "Invalid scale for SIB byte"); ss = 0; break;
  303. }
  304. emit->Write8((u8)((ss << 6) | ((ireg&7)<<3) | (_offsetOrBaseReg&7)));
  305. }
  306. if (mod == 1) //8-bit disp
  307. {
  308. emit->Write8((u8)(s8)(s32)offset);
  309. }
  310. else if (mod == 2 || (scale >= SCALE_NOBASE_2 && scale <= SCALE_NOBASE_8)) //32-bit disp
  311. {
  312. emit->Write32((u32)offset);
  313. }
  314. }
  315. // W = operand extended width (1 if 64-bit)
  316. // R = register# upper bit
  317. // X = scale amnt upper bit
  318. // B = base register# upper bit
  319. void XEmitter::Rex(int w, int r, int x, int b)
  320. {
  321. w = w ? 1 : 0;
  322. r = r ? 1 : 0;
  323. x = x ? 1 : 0;
  324. b = b ? 1 : 0;
  325. u8 rx = (u8)(0x40 | (w << 3) | (r << 2) | (x << 1) | (b));
  326. if (rx != 0x40)
  327. Write8(rx);
  328. }
  329. void XEmitter::JMP(const u8* addr, bool force5Bytes)
  330. {
  331. u64 fn = (u64)addr;
  332. if (!force5Bytes)
  333. {
  334. s64 distance = (s64)(fn - ((u64)code + 2));
  335. ASSERT_MSG(distance >= -0x80 && distance < 0x80,
  336. "Jump target too far away, needs force5Bytes = true");
  337. //8 bits will do
  338. Write8(0xEB);
  339. Write8((u8)(s8)distance);
  340. }
  341. else
  342. {
  343. s64 distance = (s64)(fn - ((u64)code + 5));
  344. ASSERT_MSG(
  345. distance >= -0x80000000LL && distance < 0x80000000LL,
  346. "Jump target too far away, needs indirect register");
  347. Write8(0xE9);
  348. Write32((u32)(s32)distance);
  349. }
  350. }
  351. void XEmitter::JMPptr(const OpArg& arg2)
  352. {
  353. OpArg arg = arg2;
  354. if (arg.IsImm()) ASSERT_MSG(0, "JMPptr - Imm argument");
  355. arg.operandReg = 4;
  356. arg.WriteRex(this, 0, 0);
  357. Write8(0xFF);
  358. arg.WriteRest(this);
  359. }
  360. //Can be used to trap other processors, before overwriting their code
  361. // not used in dolphin
  362. void XEmitter::JMPself()
  363. {
  364. Write8(0xEB);
  365. Write8(0xFE);
  366. }
  367. void XEmitter::CALLptr(OpArg arg)
  368. {
  369. if (arg.IsImm()) ASSERT_MSG(0, "CALLptr - Imm argument");
  370. arg.operandReg = 2;
  371. arg.WriteRex(this, 0, 0);
  372. Write8(0xFF);
  373. arg.WriteRest(this);
  374. }
  375. void XEmitter::CALL(const void* fnptr)
  376. {
  377. u64 distance = u64(fnptr) - (u64(code) + 5);
  378. ASSERT_MSG(
  379. distance < 0x0000000080000000ULL ||
  380. distance >= 0xFFFFFFFF80000000ULL,
  381. "CALL out of range (%p calls %p)", code, fnptr);
  382. Write8(0xE8);
  383. Write32(u32(distance));
  384. }
  385. FixupBranch XEmitter::J(bool force5bytes)
  386. {
  387. FixupBranch branch;
  388. branch.type = force5bytes ? 1 : 0;
  389. branch.ptr = code + (force5bytes ? 5 : 2);
  390. if (!force5bytes)
  391. {
  392. //8 bits will do
  393. Write8(0xEB);
  394. Write8(0);
  395. }
  396. else
  397. {
  398. Write8(0xE9);
  399. Write32(0);
  400. }
  401. return branch;
  402. }
  403. FixupBranch XEmitter::J_CC(CCFlags conditionCode, bool force5bytes)
  404. {
  405. FixupBranch branch;
  406. branch.type = force5bytes ? 1 : 0;
  407. branch.ptr = code + (force5bytes ? 6 : 2);
  408. if (!force5bytes)
  409. {
  410. //8 bits will do
  411. Write8(0x70 + conditionCode);
  412. Write8(0);
  413. }
  414. else
  415. {
  416. Write8(0x0F);
  417. Write8(0x80 + conditionCode);
  418. Write32(0);
  419. }
  420. return branch;
  421. }
  422. void XEmitter::J_CC(CCFlags conditionCode, const u8* addr, bool force5bytes)
  423. {
  424. u64 fn = (u64)addr;
  425. s64 distance = (s64)(fn - ((u64)code + 2));
  426. if (distance < -0x80 || distance >= 0x80 || force5bytes)
  427. {
  428. distance = (s64)(fn - ((u64)code + 6));
  429. ASSERT_MSG(
  430. distance >= -0x80000000LL && distance < 0x80000000LL,
  431. "Jump target too far away, needs indirect register");
  432. Write8(0x0F);
  433. Write8(0x80 + conditionCode);
  434. Write32((u32)(s32)distance);
  435. }
  436. else
  437. {
  438. Write8(0x70 + conditionCode);
  439. Write8((u8)(s8)distance);
  440. }
  441. }
  442. void XEmitter::SetJumpTarget(const FixupBranch& branch)
  443. {
  444. if (branch.type == 0)
  445. {
  446. s64 distance = (s64)(code - branch.ptr);
  447. ASSERT_MSG(distance >= -0x80 && distance < 0x80, "Jump target too far away, needs force5Bytes = true");
  448. branch.ptr[-1] = (u8)(s8)distance;
  449. }
  450. else if (branch.type == 1)
  451. {
  452. s64 distance = (s64)(code - branch.ptr);
  453. ASSERT_MSG(distance >= -0x80000000LL && distance < 0x80000000LL, "Jump target too far away, needs indirect register");
  454. ((s32*)branch.ptr)[-1] = (s32)distance;
  455. }
  456. }
  457. //Single byte opcodes
  458. //There is no PUSHAD/POPAD in 64-bit mode.
  459. void XEmitter::INT3() {Write8(0xCC);}
  460. void XEmitter::RET() {Write8(0xC3);}
  461. void XEmitter::RET_FAST() {Write8(0xF3); Write8(0xC3);} //two-byte return (rep ret) - recommended by AMD optimization manual for the case of jumping to a ret
  462. // The first sign of decadence: optimized NOPs.
  463. void XEmitter::NOP(size_t size)
  464. {
  465. DEBUG_ASSERT((int)size > 0);
  466. while (true)
  467. {
  468. switch (size)
  469. {
  470. case 0:
  471. return;
  472. case 1:
  473. Write8(0x90);
  474. return;
  475. case 2:
  476. Write8(0x66); Write8(0x90);
  477. return;
  478. case 3:
  479. Write8(0x0F); Write8(0x1F); Write8(0x00);
  480. return;
  481. case 4:
  482. Write8(0x0F); Write8(0x1F); Write8(0x40); Write8(0x00);
  483. return;
  484. case 5:
  485. Write8(0x0F); Write8(0x1F); Write8(0x44); Write8(0x00);
  486. Write8(0x00);
  487. return;
  488. case 6:
  489. Write8(0x66); Write8(0x0F); Write8(0x1F); Write8(0x44);
  490. Write8(0x00); Write8(0x00);
  491. return;
  492. case 7:
  493. Write8(0x0F); Write8(0x1F); Write8(0x80); Write8(0x00);
  494. Write8(0x00); Write8(0x00); Write8(0x00);
  495. return;
  496. case 8:
  497. Write8(0x0F); Write8(0x1F); Write8(0x84); Write8(0x00);
  498. Write8(0x00); Write8(0x00); Write8(0x00); Write8(0x00);
  499. return;
  500. case 9:
  501. Write8(0x66); Write8(0x0F); Write8(0x1F); Write8(0x84);
  502. Write8(0x00); Write8(0x00); Write8(0x00); Write8(0x00);
  503. Write8(0x00);
  504. return;
  505. case 10:
  506. Write8(0x66); Write8(0x66); Write8(0x0F); Write8(0x1F);
  507. Write8(0x84); Write8(0x00); Write8(0x00); Write8(0x00);
  508. Write8(0x00); Write8(0x00);
  509. return;
  510. default:
  511. // Even though x86 instructions are allowed to be up to 15 bytes long,
  512. // AMD advises against using NOPs longer than 11 bytes because they
  513. // carry a performance penalty on CPUs older than AMD family 16h.
  514. Write8(0x66); Write8(0x66); Write8(0x66); Write8(0x0F);
  515. Write8(0x1F); Write8(0x84); Write8(0x00); Write8(0x00);
  516. Write8(0x00); Write8(0x00); Write8(0x00);
  517. size -= 11;
  518. continue;
  519. }
  520. }
  521. }
  522. void XEmitter::PAUSE() {Write8(0xF3); NOP();} //use in tight spinloops for energy saving on some cpu
  523. void XEmitter::CLC() {CheckFlags(); Write8(0xF8);} //clear carry
  524. void XEmitter::CMC() {CheckFlags(); Write8(0xF5);} //flip carry
  525. void XEmitter::STC() {CheckFlags(); Write8(0xF9);} //set carry
  526. //TODO: xchg ah, al ???
  527. void XEmitter::XCHG_AHAL()
  528. {
  529. Write8(0x86);
  530. Write8(0xe0);
  531. // alt. 86 c4
  532. }
  533. //These two can not be executed on early Intel 64-bit CPU:s, only on AMD!
  534. void XEmitter::LAHF() {Write8(0x9F);}
  535. void XEmitter::SAHF() {CheckFlags(); Write8(0x9E);}
  536. void XEmitter::PUSHF() {Write8(0x9C);}
  537. void XEmitter::POPF() {CheckFlags(); Write8(0x9D);}
  538. void XEmitter::LFENCE() {Write8(0x0F); Write8(0xAE); Write8(0xE8);}
  539. void XEmitter::MFENCE() {Write8(0x0F); Write8(0xAE); Write8(0xF0);}
  540. void XEmitter::SFENCE() {Write8(0x0F); Write8(0xAE); Write8(0xF8);}
  541. void XEmitter::WriteSimple1Byte(int bits, u8 byte, X64Reg reg)
  542. {
  543. if (bits == 16)
  544. Write8(0x66);
  545. Rex(bits == 64, 0, 0, (int)reg >> 3);
  546. Write8(byte + ((int)reg & 7));
  547. }
  548. void XEmitter::WriteSimple2Byte(int bits, u8 byte1, u8 byte2, X64Reg reg)
  549. {
  550. if (bits == 16)
  551. Write8(0x66);
  552. Rex(bits==64, 0, 0, (int)reg >> 3);
  553. Write8(byte1);
  554. Write8(byte2 + ((int)reg & 7));
  555. }
  556. void XEmitter::CWD(int bits)
  557. {
  558. if (bits == 16)
  559. Write8(0x66);
  560. Rex(bits == 64, 0, 0, 0);
  561. Write8(0x99);
  562. }
  563. void XEmitter::CBW(int bits)
  564. {
  565. if (bits == 8)
  566. Write8(0x66);
  567. Rex(bits == 32, 0, 0, 0);
  568. Write8(0x98);
  569. }
  570. //Simple opcodes
  571. //push/pop do not need wide to be 64-bit
  572. void XEmitter::PUSH(X64Reg reg) {WriteSimple1Byte(32, 0x50, reg);}
  573. void XEmitter::POP(X64Reg reg) {WriteSimple1Byte(32, 0x58, reg);}
  574. void XEmitter::PUSH(int bits, const OpArg& reg)
  575. {
  576. if (reg.IsSimpleReg())
  577. PUSH(reg.GetSimpleReg());
  578. else if (reg.IsImm())
  579. {
  580. switch (reg.GetImmBits())
  581. {
  582. case 8:
  583. Write8(0x6A);
  584. Write8((u8)(s8)reg.offset);
  585. break;
  586. case 16:
  587. Write8(0x66);
  588. Write8(0x68);
  589. Write16((u16)(s16)(s32)reg.offset);
  590. break;
  591. case 32:
  592. Write8(0x68);
  593. Write32((u32)reg.offset);
  594. break;
  595. default:
  596. ASSERT_MSG(0, "PUSH - Bad imm bits");
  597. break;
  598. }
  599. }
  600. else
  601. {
  602. if (bits == 16)
  603. Write8(0x66);
  604. reg.WriteRex(this, bits, bits);
  605. Write8(0xFF);
  606. reg.WriteRest(this, 0, (X64Reg)6);
  607. }
  608. }
  609. void XEmitter::POP(int /*bits*/, const OpArg& reg)
  610. {
  611. if (reg.IsSimpleReg())
  612. POP(reg.GetSimpleReg());
  613. else
  614. ASSERT_MSG(0, "POP - Unsupported encoding");
  615. }
  616. void XEmitter::BSWAP(int bits, X64Reg reg)
  617. {
  618. if (bits >= 32)
  619. {
  620. WriteSimple2Byte(bits, 0x0F, 0xC8, reg);
  621. }
  622. else if (bits == 16)
  623. {
  624. ROL(16, R(reg), Imm8(8));
  625. }
  626. else if (bits == 8)
  627. {
  628. // Do nothing - can't bswap a single byte...
  629. }
  630. else
  631. {
  632. ASSERT_MSG(0, "BSWAP - Wrong number of bits");
  633. }
  634. }
  635. // Undefined opcode - reserved
  636. // If we ever need a way to always cause a non-breakpoint hard exception...
  637. void XEmitter::UD2()
  638. {
  639. Write8(0x0F);
  640. Write8(0x0B);
  641. }
  642. void XEmitter::PREFETCH(PrefetchLevel level, OpArg arg)
  643. {
  644. ASSERT_MSG(!arg.IsImm(), "PREFETCH - Imm argument");
  645. arg.operandReg = (u8)level;
  646. arg.WriteRex(this, 0, 0);
  647. Write8(0x0F);
  648. Write8(0x18);
  649. arg.WriteRest(this);
  650. }
  651. void XEmitter::SETcc(CCFlags flag, OpArg dest)
  652. {
  653. ASSERT_MSG(!dest.IsImm(), "SETcc - Imm argument");
  654. dest.operandReg = 0;
  655. dest.WriteRex(this, 0, 8);
  656. Write8(0x0F);
  657. Write8(0x90 + (u8)flag);
  658. dest.WriteRest(this);
  659. }
  660. void XEmitter::CMOVcc(int bits, X64Reg dest, OpArg src, CCFlags flag)
  661. {
  662. ASSERT_MSG(!src.IsImm(), "CMOVcc - Imm argument");
  663. ASSERT_MSG(bits != 8, "CMOVcc - 8 bits unsupported");
  664. if (bits == 16)
  665. Write8(0x66);
  666. src.operandReg = dest;
  667. src.WriteRex(this, bits, bits);
  668. Write8(0x0F);
  669. Write8(0x40 + (u8)flag);
  670. src.WriteRest(this);
  671. }
  672. void XEmitter::WriteMulDivType(int bits, OpArg src, int ext)
  673. {
  674. ASSERT_MSG(!src.IsImm(), "WriteMulDivType - Imm argument");
  675. CheckFlags();
  676. src.operandReg = ext;
  677. if (bits == 16)
  678. Write8(0x66);
  679. src.WriteRex(this, bits, bits, 0);
  680. if (bits == 8)
  681. {
  682. Write8(0xF6);
  683. }
  684. else
  685. {
  686. Write8(0xF7);
  687. }
  688. src.WriteRest(this);
  689. }
  690. void XEmitter::MUL(int bits, const OpArg& src) {WriteMulDivType(bits, src, 4);}
  691. void XEmitter::DIV(int bits, const OpArg& src) {WriteMulDivType(bits, src, 6);}
  692. void XEmitter::IMUL(int bits, const OpArg& src) {WriteMulDivType(bits, src, 5);}
  693. void XEmitter::IDIV(int bits, const OpArg& src) {WriteMulDivType(bits, src, 7);}
  694. void XEmitter::NEG(int bits, const OpArg& src) {WriteMulDivType(bits, src, 3);}
  695. void XEmitter::NOT(int bits, const OpArg& src) {WriteMulDivType(bits, src, 2);}
  696. void XEmitter::WriteBitSearchType(int bits, X64Reg dest, OpArg src, u8 byte2, bool rep)
  697. {
  698. ASSERT_MSG(!src.IsImm(), "WriteBitSearchType - Imm argument");
  699. CheckFlags();
  700. src.operandReg = (u8)dest;
  701. if (bits == 16)
  702. Write8(0x66);
  703. if (rep)
  704. Write8(0xF3);
  705. src.WriteRex(this, bits, bits);
  706. Write8(0x0F);
  707. Write8(byte2);
  708. src.WriteRest(this);
  709. }
  710. void XEmitter::MOVNTI(int bits, const OpArg& dest, X64Reg src)
  711. {
  712. if (bits <= 16)
  713. ASSERT_MSG(0, "MOVNTI - bits<=16");
  714. WriteBitSearchType(bits, src, dest, 0xC3);
  715. }
  716. void XEmitter::BSF(int bits, X64Reg dest, const OpArg& src) {WriteBitSearchType(bits,dest,src,0xBC);} // Bottom bit to top bit
  717. void XEmitter::BSR(int bits, X64Reg dest, const OpArg& src) {WriteBitSearchType(bits,dest,src,0xBD);} // Top bit to bottom bit
  718. void XEmitter::TZCNT(int bits, X64Reg dest, const OpArg& src)
  719. {
  720. CheckFlags();
  721. if (!Common::GetCPUCaps().bmi1)
  722. ASSERT_MSG(0, "Trying to use BMI1 on a system that doesn't support it. Bad programmer.");
  723. WriteBitSearchType(bits, dest, src, 0xBC, true);
  724. }
  725. void XEmitter::LZCNT(int bits, X64Reg dest, const OpArg& src)
  726. {
  727. CheckFlags();
  728. if (!Common::GetCPUCaps().lzcnt)
  729. ASSERT_MSG(0, "Trying to use LZCNT on a system that doesn't support it. Bad programmer.");
  730. WriteBitSearchType(bits, dest, src, 0xBD, true);
  731. }
  732. void XEmitter::MOVSX(int dbits, int sbits, X64Reg dest, OpArg src)
  733. {
  734. ASSERT_MSG(!src.IsImm(), "MOVSX - Imm argument");
  735. if (dbits == sbits)
  736. {
  737. MOV(dbits, R(dest), src);
  738. return;
  739. }
  740. src.operandReg = (u8)dest;
  741. if (dbits == 16)
  742. Write8(0x66);
  743. src.WriteRex(this, dbits, sbits);
  744. if (sbits == 8)
  745. {
  746. Write8(0x0F);
  747. Write8(0xBE);
  748. }
  749. else if (sbits == 16)
  750. {
  751. Write8(0x0F);
  752. Write8(0xBF);
  753. }
  754. else if (sbits == 32 && dbits == 64)
  755. {
  756. Write8(0x63);
  757. }
  758. else
  759. {
  760. Crash();
  761. }
  762. src.WriteRest(this);
  763. }
  764. void XEmitter::MOVZX(int dbits, int sbits, X64Reg dest, OpArg src)
  765. {
  766. ASSERT_MSG(!src.IsImm(), "MOVZX - Imm argument");
  767. if (dbits == sbits)
  768. {
  769. MOV(dbits, R(dest), src);
  770. return;
  771. }
  772. src.operandReg = (u8)dest;
  773. if (dbits == 16)
  774. Write8(0x66);
  775. //the 32bit result is automatically zero extended to 64bit
  776. src.WriteRex(this, dbits == 64 ? 32 : dbits, sbits);
  777. if (sbits == 8)
  778. {
  779. Write8(0x0F);
  780. Write8(0xB6);
  781. }
  782. else if (sbits == 16)
  783. {
  784. Write8(0x0F);
  785. Write8(0xB7);
  786. }
  787. else if (sbits == 32 && dbits == 64)
  788. {
  789. Write8(0x8B);
  790. }
  791. else
  792. {
  793. ASSERT_MSG(0, "MOVZX - Invalid size");
  794. }
  795. src.WriteRest(this);
  796. }
  797. void XEmitter::MOVBE(int bits, const OpArg& dest, const OpArg& src)
  798. {
  799. ASSERT_MSG(Common::GetCPUCaps().movbe, "Generating MOVBE on a system that does not support it.");
  800. if (bits == 8)
  801. {
  802. MOV(bits, dest, src);
  803. return;
  804. }
  805. if (bits == 16)
  806. Write8(0x66);
  807. if (dest.IsSimpleReg())
  808. {
  809. ASSERT_MSG(!src.IsSimpleReg() && !src.IsImm(), "MOVBE: Loading from !mem");
  810. src.WriteRex(this, bits, bits, dest.GetSimpleReg());
  811. Write8(0x0F); Write8(0x38); Write8(0xF0);
  812. src.WriteRest(this, 0, dest.GetSimpleReg());
  813. }
  814. else if (src.IsSimpleReg())
  815. {
  816. ASSERT_MSG(!dest.IsSimpleReg() && !dest.IsImm(), "MOVBE: Storing to !mem");
  817. dest.WriteRex(this, bits, bits, src.GetSimpleReg());
  818. Write8(0x0F); Write8(0x38); Write8(0xF1);
  819. dest.WriteRest(this, 0, src.GetSimpleReg());
  820. }
  821. else
  822. {
  823. ASSERT_MSG(0, "MOVBE: Not loading or storing to mem");
  824. }
  825. }
  826. void XEmitter::LEA(int bits, X64Reg dest, OpArg src)
  827. {
  828. ASSERT_MSG(!src.IsImm(), "LEA - Imm argument");
  829. src.operandReg = (u8)dest;
  830. if (bits == 16)
  831. Write8(0x66); //TODO: performance warning
  832. src.WriteRex(this, bits, bits);
  833. Write8(0x8D);
  834. src.WriteRest(this, 0, INVALID_REG, bits == 64);
  835. }
  836. //shift can be either imm8 or cl
  837. void XEmitter::WriteShift(int bits, OpArg dest, const OpArg& shift, int ext)
  838. {
  839. CheckFlags();
  840. bool writeImm = false;
  841. if (dest.IsImm())
  842. {
  843. ASSERT_MSG(0, "WriteShift - can't shift imms");
  844. }
  845. if ((shift.IsSimpleReg() && shift.GetSimpleReg() != ECX) || (shift.IsImm() && shift.GetImmBits() != 8))
  846. {
  847. ASSERT_MSG(0, "WriteShift - illegal argument");
  848. }
  849. dest.operandReg = ext;
  850. if (bits == 16)
  851. Write8(0x66);
  852. dest.WriteRex(this, bits, bits, 0);
  853. if (shift.GetImmBits() == 8)
  854. {
  855. //ok an imm
  856. u8 imm = (u8)shift.offset;
  857. if (imm == 1)
  858. {
  859. Write8(bits == 8 ? 0xD0 : 0xD1);
  860. }
  861. else
  862. {
  863. writeImm = true;
  864. Write8(bits == 8 ? 0xC0 : 0xC1);
  865. }
  866. }
  867. else
  868. {
  869. Write8(bits == 8 ? 0xD2 : 0xD3);
  870. }
  871. dest.WriteRest(this, writeImm ? 1 : 0);
  872. if (writeImm)
  873. Write8((u8)shift.offset);
  874. }
  875. // large rotates and shift are slower on intel than amd
  876. // intel likes to rotate by 1, and the op is smaller too
  877. void XEmitter::ROL(int bits, const OpArg& dest, const OpArg& shift) {WriteShift(bits, dest, shift, 0);}
  878. void XEmitter::ROR(int bits, const OpArg& dest, const OpArg& shift) {WriteShift(bits, dest, shift, 1);}
  879. void XEmitter::RCL(int bits, const OpArg& dest, const OpArg& shift) {WriteShift(bits, dest, shift, 2);}
  880. void XEmitter::RCR(int bits, const OpArg& dest, const OpArg& shift) {WriteShift(bits, dest, shift, 3);}
  881. void XEmitter::SHL(int bits, const OpArg& dest, const OpArg& shift) {WriteShift(bits, dest, shift, 4);}
  882. void XEmitter::SHR(int bits, const OpArg& dest, const OpArg& shift) {WriteShift(bits, dest, shift, 5);}
  883. void XEmitter::SAR(int bits, const OpArg& dest, const OpArg& shift) {WriteShift(bits, dest, shift, 7);}
  884. // index can be either imm8 or register, don't use memory destination because it's slow
  885. void XEmitter::WriteBitTest(int bits, const OpArg& dest, const OpArg& index, int ext)
  886. {
  887. CheckFlags();
  888. if (dest.IsImm())
  889. {
  890. ASSERT_MSG(0, "WriteBitTest - can't test imms");
  891. }
  892. if ((index.IsImm() && index.GetImmBits() != 8))
  893. {
  894. ASSERT_MSG(0, "WriteBitTest - illegal argument");
  895. }
  896. if (bits == 16)
  897. Write8(0x66);
  898. if (index.IsImm())
  899. {
  900. dest.WriteRex(this, bits, bits);
  901. Write8(0x0F); Write8(0xBA);
  902. dest.WriteRest(this, 1, (X64Reg)ext);
  903. Write8((u8)index.offset);
  904. }
  905. else
  906. {
  907. X64Reg operand = index.GetSimpleReg();
  908. dest.WriteRex(this, bits, bits, operand);
  909. Write8(0x0F); Write8(0x83 + 8*ext);
  910. dest.WriteRest(this, 1, operand);
  911. }
  912. }
  913. void XEmitter::BT(int bits, const OpArg& dest, const OpArg& index) {WriteBitTest(bits, dest, index, 4);}
  914. void XEmitter::BTS(int bits, const OpArg& dest, const OpArg& index) {WriteBitTest(bits, dest, index, 5);}
  915. void XEmitter::BTR(int bits, const OpArg& dest, const OpArg& index) {WriteBitTest(bits, dest, index, 6);}
  916. void XEmitter::BTC(int bits, const OpArg& dest, const OpArg& index) {WriteBitTest(bits, dest, index, 7);}
  917. //shift can be either imm8 or cl
  918. void XEmitter::SHRD(int bits, const OpArg& dest, const OpArg& src, const OpArg& shift)
  919. {
  920. CheckFlags();
  921. if (dest.IsImm())
  922. {
  923. ASSERT_MSG(0, "SHRD - can't use imms as destination");
  924. }
  925. if (!src.IsSimpleReg())
  926. {
  927. ASSERT_MSG(0, "SHRD - must use simple register as source");
  928. }
  929. if ((shift.IsSimpleReg() && shift.GetSimpleReg() != ECX) || (shift.IsImm() && shift.GetImmBits() != 8))
  930. {
  931. ASSERT_MSG(0, "SHRD - illegal shift");
  932. }
  933. if (bits == 16)
  934. Write8(0x66);
  935. X64Reg operand = src.GetSimpleReg();
  936. dest.WriteRex(this, bits, bits, operand);
  937. if (shift.GetImmBits() == 8)
  938. {
  939. Write8(0x0F); Write8(0xAC);
  940. dest.WriteRest(this, 1, operand);
  941. Write8((u8)shift.offset);
  942. }
  943. else
  944. {
  945. Write8(0x0F); Write8(0xAD);
  946. dest.WriteRest(this, 0, operand);
  947. }
  948. }
  949. void XEmitter::SHLD(int bits, const OpArg& dest, const OpArg& src, const OpArg& shift)
  950. {
  951. CheckFlags();
  952. if (dest.IsImm())
  953. {
  954. ASSERT_MSG(0, "SHLD - can't use imms as destination");
  955. }
  956. if (!src.IsSimpleReg())
  957. {
  958. ASSERT_MSG(0, "SHLD - must use simple register as source");
  959. }
  960. if ((shift.IsSimpleReg() && shift.GetSimpleReg() != ECX) || (shift.IsImm() && shift.GetImmBits() != 8))
  961. {
  962. ASSERT_MSG(0, "SHLD - illegal shift");
  963. }
  964. if (bits == 16)
  965. Write8(0x66);
  966. X64Reg operand = src.GetSimpleReg();
  967. dest.WriteRex(this, bits, bits, operand);
  968. if (shift.GetImmBits() == 8)
  969. {
  970. Write8(0x0F); Write8(0xA4);
  971. dest.WriteRest(this, 1, operand);
  972. Write8((u8)shift.offset);
  973. }
  974. else
  975. {
  976. Write8(0x0F); Write8(0xA5);
  977. dest.WriteRest(this, 0, operand);
  978. }
  979. }
  980. void OpArg::WriteSingleByteOp(XEmitter *emit, u8 op, X64Reg _operandReg, int bits)
  981. {
  982. if (bits == 16)
  983. emit->Write8(0x66);
  984. this->operandReg = (u8)_operandReg;
  985. WriteRex(emit, bits, bits);
  986. emit->Write8(op);
  987. WriteRest(emit);
  988. }
  989. //operand can either be immediate or register
  990. void OpArg::WriteNormalOp(XEmitter *emit, bool toRM, NormalOp op, const OpArg& operand, int bits) const
  991. {
  992. X64Reg _operandReg;
  993. if (IsImm())
  994. {
  995. ASSERT_MSG(0, "WriteNormalOp - Imm argument, wrong order");
  996. }
  997. if (bits == 16)
  998. emit->Write8(0x66);
  999. int immToWrite = 0;
  1000. if (operand.IsImm())
  1001. {
  1002. WriteRex(emit, bits, bits);
  1003. if (!toRM)
  1004. {
  1005. ASSERT_MSG(0, "WriteNormalOp - Writing to Imm (!toRM)");
  1006. }
  1007. if (operand.scale == SCALE_IMM8 && bits == 8)
  1008. {
  1009. // op al, imm8
  1010. if (!scale && offsetOrBaseReg == AL && normalops[op].eaximm8 != 0xCC)
  1011. {
  1012. emit->Write8(normalops[op].eaximm8);
  1013. emit->Write8((u8)operand.offset);
  1014. return;
  1015. }
  1016. // mov reg, imm8
  1017. if (!scale && op == nrmMOV)
  1018. {
  1019. emit->Write8(0xB0 + (offsetOrBaseReg & 7));
  1020. emit->Write8((u8)operand.offset);
  1021. return;
  1022. }
  1023. // op r/m8, imm8
  1024. emit->Write8(normalops[op].imm8);
  1025. immToWrite = 8;
  1026. }
  1027. else if ((operand.scale == SCALE_IMM16 && bits == 16) ||
  1028. (operand.scale == SCALE_IMM32 && bits == 32) ||
  1029. (operand.scale == SCALE_IMM32 && bits == 64))
  1030. {
  1031. // Try to save immediate size if we can, but first check to see
  1032. // if the instruction supports simm8.
  1033. // op r/m, imm8
  1034. if (normalops[op].simm8 != 0xCC &&
  1035. ((operand.scale == SCALE_IMM16 && (s16)operand.offset == (s8)operand.offset) ||
  1036. (operand.scale == SCALE_IMM32 && (s32)operand.offset == (s8)operand.offset)))
  1037. {
  1038. emit->Write8(normalops[op].simm8);
  1039. immToWrite = 8;
  1040. }
  1041. else
  1042. {
  1043. // mov reg, imm
  1044. if (!scale && op == nrmMOV && bits != 64)
  1045. {
  1046. emit->Write8(0xB8 + (offsetOrBaseReg & 7));
  1047. if (bits == 16)
  1048. emit->Write16((u16)operand.offset);
  1049. else
  1050. emit->Write32((u32)operand.offset);
  1051. return;
  1052. }
  1053. // op eax, imm
  1054. if (!scale && offsetOrBaseReg == EAX && normalops[op].eaximm32 != 0xCC)
  1055. {
  1056. emit->Write8(normalops[op].eaximm32);
  1057. if (bits == 16)
  1058. emit->Write16((u16)operand.offset);
  1059. else
  1060. emit->Write32((u32)operand.offset);
  1061. return;
  1062. }
  1063. // op r/m, imm
  1064. emit->Write8(normalops[op].imm32);
  1065. immToWrite = bits == 16 ? 16 : 32;
  1066. }
  1067. }
  1068. else if ((operand.scale == SCALE_IMM8 && bits == 16) ||
  1069. (operand.scale == SCALE_IMM8 && bits == 32) ||
  1070. (operand.scale == SCALE_IMM8 && bits == 64))
  1071. {
  1072. // op r/m, imm8
  1073. emit->Write8(normalops[op].simm8);
  1074. immToWrite = 8;
  1075. }
  1076. else if (operand.scale == SCALE_IMM64 && bits == 64)
  1077. {
  1078. if (scale)
  1079. {
  1080. ASSERT_MSG(0, "WriteNormalOp - MOV with 64-bit imm requres register destination");
  1081. }
  1082. // mov reg64, imm64
  1083. else if (op == nrmMOV)
  1084. {
  1085. emit->Write8(0xB8 + (offsetOrBaseReg & 7));
  1086. emit->Write64((u64)operand.offset);
  1087. return;
  1088. }
  1089. ASSERT_MSG(0, "WriteNormalOp - Only MOV can take 64-bit imm");
  1090. }
  1091. else
  1092. {
  1093. ASSERT_MSG(0, "WriteNormalOp - Unhandled case");
  1094. }
  1095. _operandReg = (X64Reg)normalops[op].ext; //pass extension in REG of ModRM
  1096. }
  1097. else
  1098. {
  1099. _operandReg = (X64Reg)operand.offsetOrBaseReg;
  1100. WriteRex(emit, bits, bits, _operandReg);
  1101. // op r/m, reg
  1102. if (toRM)
  1103. {
  1104. emit->Write8(bits == 8 ? normalops[op].toRm8 : normalops[op].toRm32);
  1105. }
  1106. // op reg, r/m
  1107. else
  1108. {
  1109. emit->Write8(bits == 8 ? normalops[op].fromRm8 : normalops[op].fromRm32);
  1110. }
  1111. }
  1112. WriteRest(emit, immToWrite >> 3, _operandReg);
  1113. switch (immToWrite)
  1114. {
  1115. case 0:
  1116. break;
  1117. case 8:
  1118. emit->Write8((u8)operand.offset);
  1119. break;
  1120. case 16:
  1121. emit->Write16((u16)operand.offset);
  1122. break;
  1123. case 32:
  1124. emit->Write32((u32)operand.offset);
  1125. break;
  1126. default:
  1127. ASSERT_MSG(0, "WriteNormalOp - Unhandled case");
  1128. }
  1129. }
  1130. void XEmitter::WriteNormalOp(XEmitter *emit, int bits, NormalOp op, const OpArg& a1, const OpArg& a2)
  1131. {
  1132. if (a1.IsImm())
  1133. {
  1134. //Booh! Can't write to an imm
  1135. ASSERT_MSG(0, "WriteNormalOp - a1 cannot be imm");
  1136. return;
  1137. }
  1138. if (a2.IsImm())
  1139. {
  1140. a1.WriteNormalOp(emit, true, op, a2, bits);
  1141. }
  1142. else
  1143. {
  1144. if (a1.IsSimpleReg())
  1145. {
  1146. a2.WriteNormalOp(emit, false, op, a1, bits);
  1147. }
  1148. else
  1149. {
  1150. ASSERT_MSG(a2.IsSimpleReg() || a2.IsImm(), "WriteNormalOp - a1 and a2 cannot both be memory");
  1151. a1.WriteNormalOp(emit, true, op, a2, bits);
  1152. }
  1153. }
  1154. }
  1155. void XEmitter::ADD (int bits, const OpArg& a1, const OpArg& a2) {CheckFlags(); WriteNormalOp(this, bits, nrmADD, a1, a2);}
  1156. void XEmitter::ADC (int bits, const OpArg& a1, const OpArg& a2) {CheckFlags(); WriteNormalOp(this, bits, nrmADC, a1, a2);}
  1157. void XEmitter::SUB (int bits, const OpArg& a1, const OpArg& a2) {CheckFlags(); WriteNormalOp(this, bits, nrmSUB, a1, a2);}
  1158. void XEmitter::SBB (int bits, const OpArg& a1, const OpArg& a2) {CheckFlags(); WriteNormalOp(this, bits, nrmSBB, a1, a2);}
  1159. void XEmitter::AND (int bits, const OpArg& a1, const OpArg& a2) {CheckFlags(); WriteNormalOp(this, bits, nrmAND, a1, a2);}
  1160. void XEmitter::OR (int bits, const OpArg& a1, const OpArg& a2) {CheckFlags(); WriteNormalOp(this, bits, nrmOR , a1, a2);}
  1161. void XEmitter::XOR (int bits, const OpArg& a1, const OpArg& a2) {CheckFlags(); WriteNormalOp(this, bits, nrmXOR, a1, a2);}
  1162. void XEmitter::MOV (int bits, const OpArg& a1, const OpArg& a2)
  1163. {
  1164. if (a1.IsSimpleReg() && a2.IsSimpleReg() && a1.GetSimpleReg() == a2.GetSimpleReg())
  1165. LOG_ERROR(Common, "Redundant MOV @ %p - bug in JIT?", code);
  1166. WriteNormalOp(this, bits, nrmMOV, a1, a2);
  1167. }
  1168. void XEmitter::TEST(int bits, const OpArg& a1, const OpArg& a2) {CheckFlags(); WriteNormalOp(this, bits, nrmTEST, a1, a2);}
  1169. void XEmitter::CMP (int bits, const OpArg& a1, const OpArg& a2) {CheckFlags(); WriteNormalOp(this, bits, nrmCMP, a1, a2);}
  1170. void XEmitter::XCHG(int bits, const OpArg& a1, const OpArg& a2) {WriteNormalOp(this, bits, nrmXCHG, a1, a2);}
  1171. void XEmitter::IMUL(int bits, X64Reg regOp, const OpArg& a1, const OpArg& a2)
  1172. {
  1173. CheckFlags();
  1174. if (bits == 8)
  1175. {
  1176. ASSERT_MSG(0, "IMUL - illegal bit size!");
  1177. return;
  1178. }
  1179. if (a1.IsImm())
  1180. {
  1181. ASSERT_MSG(0, "IMUL - second arg cannot be imm!");
  1182. return;
  1183. }
  1184. if (!a2.IsImm())
  1185. {
  1186. ASSERT_MSG(0, "IMUL - third arg must be imm!");
  1187. return;
  1188. }
  1189. if (bits == 16)
  1190. Write8(0x66);
  1191. a1.WriteRex(this, bits, bits, regOp);
  1192. if (a2.GetImmBits() == 8 ||
  1193. (a2.GetImmBits() == 16 && (s8)a2.offset == (s16)a2.offset) ||
  1194. (a2.GetImmBits() == 32 && (s8)a2.offset == (s32)a2.offset))
  1195. {
  1196. Write8(0x6B);
  1197. a1.WriteRest(this, 1, regOp);
  1198. Write8((u8)a2.offset);
  1199. }
  1200. else
  1201. {
  1202. Write8(0x69);
  1203. if (a2.GetImmBits() == 16 && bits == 16)
  1204. {
  1205. a1.WriteRest(this, 2, regOp);
  1206. Write16((u16)a2.offset);
  1207. }
  1208. else if (a2.GetImmBits() == 32 && (bits == 32 || bits == 64))
  1209. {
  1210. a1.WriteRest(this, 4, regOp);
  1211. Write32((u32)a2.offset);
  1212. }
  1213. else
  1214. {
  1215. ASSERT_MSG(0, "IMUL - unhandled case!");
  1216. }
  1217. }
  1218. }
  1219. void XEmitter::IMUL(int bits, X64Reg regOp, const OpArg& a)
  1220. {
  1221. CheckFlags();
  1222. if (bits == 8)
  1223. {
  1224. ASSERT_MSG(0, "IMUL - illegal bit size!");
  1225. return;
  1226. }
  1227. if (a.IsImm())
  1228. {
  1229. IMUL(bits, regOp, R(regOp), a) ;
  1230. return;
  1231. }
  1232. if (bits == 16)
  1233. Write8(0x66);
  1234. a.WriteRex(this, bits, bits, regOp);
  1235. Write8(0x0F);
  1236. Write8(0xAF);
  1237. a.WriteRest(this, 0, regOp);
  1238. }
  1239. void XEmitter::WriteSSEOp(u8 opPrefix, u16 op, X64Reg regOp, OpArg arg, int extrabytes)
  1240. {
  1241. if (opPrefix)
  1242. Write8(opPrefix);
  1243. arg.operandReg = regOp;
  1244. arg.WriteRex(this, 0, 0);
  1245. Write8(0x0F);
  1246. if (op > 0xFF)
  1247. Write8((op >> 8) & 0xFF);
  1248. Write8(op & 0xFF);
  1249. arg.WriteRest(this, extrabytes);
  1250. }
  1251. void XEmitter::WriteAVXOp(u8 opPrefix, u16 op, X64Reg regOp, const OpArg& arg, int extrabytes)
  1252. {
  1253. WriteAVXOp(opPrefix, op, regOp, INVALID_REG, arg, extrabytes);
  1254. }
  1255. static int GetVEXmmmmm(u16 op)
  1256. {
  1257. // Currently, only 0x38 and 0x3A are used as secondary escape byte.
  1258. if ((op >> 8) == 0x3A)
  1259. return 3;
  1260. if ((op >> 8) == 0x38)
  1261. return 2;
  1262. return 1;
  1263. }
  1264. static int GetVEXpp(u8 opPrefix)
  1265. {
  1266. if (opPrefix == 0x66)
  1267. return 1;
  1268. if (opPrefix == 0xF3)
  1269. return 2;
  1270. if (opPrefix == 0xF2)
  1271. return 3;
  1272. return 0;
  1273. }
  1274. void XEmitter::WriteAVXOp(u8 opPrefix, u16 op, X64Reg regOp1, X64Reg regOp2, const OpArg& arg, int extrabytes)
  1275. {
  1276. if (!Common::GetCPUCaps().avx)
  1277. ASSERT_MSG(0, "Trying to use AVX on a system that doesn't support it. Bad programmer.");
  1278. int mmmmm = GetVEXmmmmm(op);
  1279. int pp = GetVEXpp(opPrefix);
  1280. // FIXME: we currently don't support 256-bit instructions, and "size" is not the vector size here
  1281. arg.WriteVex(this, regOp1, regOp2, 0, pp, mmmmm);
  1282. Write8(op & 0xFF);
  1283. arg.WriteRest(this, extrabytes, regOp1);
  1284. }
  1285. // Like the above, but more general; covers GPR-based VEX operations, like BMI1/2
  1286. void XEmitter::WriteVEXOp(int size, u8 opPrefix, u16 op, X64Reg regOp1, X64Reg regOp2, const OpArg& arg, int extrabytes)
  1287. {
  1288. if (size != 32 && size != 64)
  1289. ASSERT_MSG(0, "VEX GPR instructions only support 32-bit and 64-bit modes!");
  1290. int mmmmm = GetVEXmmmmm(op);
  1291. int pp = GetVEXpp(opPrefix);
  1292. arg.WriteVex(this, regOp1, regOp2, 0, pp, mmmmm, size == 64);
  1293. Write8(op & 0xFF);
  1294. arg.WriteRest(this, extrabytes, regOp1);
  1295. }
  1296. void XEmitter::WriteBMI1Op(int size, u8 opPrefix, u16 op, X64Reg regOp1, X64Reg regOp2, const OpArg& arg, int extrabytes)
  1297. {
  1298. CheckFlags();
  1299. if (!Common::GetCPUCaps().bmi1)
  1300. ASSERT_MSG(0, "Trying to use BMI1 on a system that doesn't support it. Bad programmer.");
  1301. WriteVEXOp(size, opPrefix, op, regOp1, regOp2, arg, extrabytes);
  1302. }
  1303. void XEmitter::WriteBMI2Op(int size, u8 opPrefix, u16 op, X64Reg regOp1, X64Reg regOp2, const OpArg& arg, int extrabytes)
  1304. {
  1305. CheckFlags();
  1306. if (!Common::GetCPUCaps().bmi2)
  1307. ASSERT_MSG(0, "Trying to use BMI2 on a system that doesn't support it. Bad programmer.");
  1308. WriteVEXOp(size, opPrefix, op, regOp1, regOp2, arg, extrabytes);
  1309. }
  1310. void XEmitter::MOVD_xmm(X64Reg dest, const OpArg &arg) {WriteSSEOp(0x66, 0x6E, dest, arg, 0);}
  1311. void XEmitter::MOVD_xmm(const OpArg &arg, X64Reg src) {WriteSSEOp(0x66, 0x7E, src, arg, 0);}
  1312. void XEmitter::MOVQ_xmm(X64Reg dest, OpArg arg)
  1313. {
  1314. #ifdef ARCHITECTURE_x86_64
  1315. // Alternate encoding
  1316. // This does not display correctly in MSVC's debugger, it thinks it's a MOVD
  1317. arg.operandReg = dest;
  1318. Write8(0x66);
  1319. arg.WriteRex(this, 64, 0);
  1320. Write8(0x0f);
  1321. Write8(0x6E);
  1322. arg.WriteRest(this, 0);
  1323. #else
  1324. arg.operandReg = dest;
  1325. Write8(0xF3);
  1326. Write8(0x0f);
  1327. Write8(0x7E);
  1328. arg.WriteRest(this, 0);
  1329. #endif
  1330. }
  1331. void XEmitter::MOVQ_xmm(OpArg arg, X64Reg src)
  1332. {
  1333. if (src > 7 || arg.IsSimpleReg())
  1334. {
  1335. // Alternate encoding
  1336. // This does not display correctly in MSVC's debugger, it thinks it's a MOVD
  1337. arg.operandReg = src;
  1338. Write8(0x66);
  1339. arg.WriteRex(this, 64, 0);
  1340. Write8(0x0f);
  1341. Write8(0x7E);
  1342. arg.WriteRest(this, 0);
  1343. }
  1344. else
  1345. {
  1346. arg.operandReg = src;
  1347. arg.WriteRex(this, 0, 0);
  1348. Write8(0x66);
  1349. Write8(0x0f);
  1350. Write8(0xD6);
  1351. arg.WriteRest(this, 0);
  1352. }
  1353. }
  1354. void XEmitter::WriteMXCSR(OpArg arg, int ext)
  1355. {
  1356. if (arg.IsImm() || arg.IsSimpleReg())
  1357. ASSERT_MSG(0, "MXCSR - invalid operand");
  1358. arg.operandReg = ext;
  1359. arg.WriteRex(this, 0, 0);
  1360. Write8(0x0F);
  1361. Write8(0xAE);
  1362. arg.WriteRest(this);
  1363. }
  1364. void XEmitter::STMXCSR(const OpArg& memloc) {WriteMXCSR(memloc, 3);}
  1365. void XEmitter::LDMXCSR(const OpArg& memloc) {WriteMXCSR(memloc, 2);}
  1366. void XEmitter::MOVNTDQ(const OpArg& arg, X64Reg regOp) {WriteSSEOp(0x66, sseMOVNTDQ, regOp, arg);}
  1367. void XEmitter::MOVNTPS(const OpArg& arg, X64Reg regOp) {WriteSSEOp(0x00, sseMOVNTP, regOp, arg);}
  1368. void XEmitter::MOVNTPD(const OpArg& arg, X64Reg regOp) {WriteSSEOp(0x66, sseMOVNTP, regOp, arg);}
  1369. void XEmitter::ADDSS(X64Reg regOp, const OpArg& arg) {WriteSSEOp(0xF3, sseADD, regOp, arg);}
  1370. void XEmitter::ADDSD(X64Reg regOp, const OpArg& arg) {WriteSSEOp(0xF2, sseADD, regOp, arg);}
  1371. void XEmitter::SUBSS(X64Reg regOp, const OpArg& arg) {WriteSSEOp(0xF3, sseSUB, regOp, arg);}
  1372. void XEmitter::SUBSD(X64Reg regOp, const OpArg& arg) {WriteSSEOp(0xF2, sseSUB, regOp, arg);}
  1373. void XEmitter::CMPSS(X64Reg regOp, const OpArg& arg, u8 compare) {WriteSSEOp(0xF3, sseCMP, regOp, arg, 1); Write8(compare);}
  1374. void XEmitter::CMPSD(X64Reg regOp, const OpArg& arg, u8 compare) {WriteSSEOp(0xF2, sseCMP, regOp, arg, 1); Write8(compare);}
  1375. void XEmitter::MULSS(X64Reg regOp, const OpArg& arg) {WriteSSEOp(0xF3, sseMUL, regOp, arg);}
  1376. void XEmitter::MULSD(X64Reg regOp, const OpArg& arg) {WriteSSEOp(0xF2, sseMUL, regOp, arg);}
  1377. void XEmitter::DIVSS(X64Reg regOp, const OpArg& arg) {WriteSSEOp(0xF3, sseDIV, regOp, arg);}
  1378. void XEmitter::DIVSD(X64Reg regOp, const OpArg& arg) {WriteSSEOp(0xF2, sseDIV, regOp, arg);}
  1379. void XEmitter::MINSS(X64Reg regOp, const OpArg& arg) {WriteSSEOp(0xF3, sseMIN, regOp, arg);}
  1380. void XEmitter::MINSD(X64Reg regOp, const OpArg& arg) {WriteSSEOp(0xF2, sseMIN, regOp, arg);}
  1381. void XEmitter::MAXSS(X64Reg regOp, const OpArg& arg) {WriteSSEOp(0xF3, sseMAX, regOp, arg);}
  1382. void XEmitter::MAXSD(X64Reg regOp, const OpArg& arg) {WriteSSEOp(0xF2, sseMAX, regOp, arg);}
  1383. void XEmitter::SQRTSS(X64Reg regOp, const OpArg& arg) {WriteSSEOp(0xF3, sseSQRT, regOp, arg);}
  1384. void XEmitter::SQRTSD(X64Reg regOp, const OpArg& arg) {WriteSSEOp(0xF2, sseSQRT, regOp, arg);}
  1385. void XEmitter::RSQRTSS(X64Reg regOp, const OpArg& arg) {WriteSSEOp(0xF3, sseRSQRT, regOp, arg);}
  1386. void XEmitter::ADDPS(X64Reg regOp, const OpArg& arg) {WriteSSEOp(0x00, sseADD, regOp, arg);}
  1387. void XEmitter::ADDPD(X64Reg regOp, const OpArg& arg) {WriteSSEOp(0x66, sseADD, regOp, arg);}
  1388. void XEmitter::SUBPS(X64Reg regOp, const OpArg& arg) {WriteSSEOp(0x00, sseSUB, regOp, arg);}
  1389. void XEmitter::SUBPD(X64Reg regOp, const OpArg& arg) {WriteSSEOp(0x66, sseSUB, regOp, arg);}
  1390. void XEmitter::CMPPS(X64Reg regOp, const OpArg& arg, u8 compare) {WriteSSEOp(0x00, sseCMP, regOp, arg, 1); Write8(compare);}
  1391. void XEmitter::CMPPD(X64Reg regOp, const OpArg& arg, u8 compare) {WriteSSEOp(0x66, sseCMP, regOp, arg, 1); Write8(compare);}
  1392. void XEmitter::ANDPS(X64Reg regOp, const OpArg& arg) {WriteSSEOp(0x00, sseAND, regOp, arg);}
  1393. void XEmitter::ANDPD(X64Reg regOp, const OpArg& arg) {WriteSSEOp(0x66, sseAND, regOp, arg);}
  1394. void XEmitter::ANDNPS(X64Reg regOp, const OpArg& arg) {WriteSSEOp(0x00, sseANDN, regOp, arg);}
  1395. void XEmitter::ANDNPD(X64Reg regOp, const OpArg& arg) {WriteSSEOp(0x66, sseANDN, regOp, arg);}
  1396. void XEmitter::ORPS(X64Reg regOp, const OpArg& arg) {WriteSSEOp(0x00, sseOR, regOp, arg);}
  1397. void XEmitter::ORPD(X64Reg regOp, const OpArg& arg) {WriteSSEOp(0x66, sseOR, regOp, arg);}
  1398. void XEmitter::XORPS(X64Reg regOp, const OpArg& arg) {WriteSSEOp(0x00, sseXOR, regOp, arg);}
  1399. void XEmitter::XORPD(X64Reg regOp, const OpArg& arg) {WriteSSEOp(0x66, sseXOR, regOp, arg);}
  1400. void XEmitter::MULPS(X64Reg regOp, const OpArg& arg) {WriteSSEOp(0x00, sseMUL, regOp, arg);}
  1401. void XEmitter::MULPD(X64Reg regOp, const OpArg& arg) {WriteSSEOp(0x66, sseMUL, regOp, arg);}
  1402. void XEmitter::DIVPS(X64Reg regOp, const OpArg& arg) {WriteSSEOp(0x00, sseDIV, regOp, arg);}
  1403. void XEmitter::DIVPD(X64Reg regOp, const OpArg& arg) {WriteSSEOp(0x66, sseDIV, regOp, arg);}
  1404. void XEmitter::MINPS(X64Reg regOp, const OpArg& arg) {WriteSSEOp(0x00, sseMIN, regOp, arg);}
  1405. void XEmitter::MINPD(X64Reg regOp, const OpArg& arg) {WriteSSEOp(0x66, sseMIN, regOp, arg);}
  1406. void XEmitter::MAXPS(X64Reg regOp, const OpArg& arg) {WriteSSEOp(0x00, sseMAX, regOp, arg);}
  1407. void XEmitter::MAXPD(X64Reg regOp, const OpArg& arg) {WriteSSEOp(0x66, sseMAX, regOp, arg);}
  1408. void XEmitter::SQRTPS(X64Reg regOp, const OpArg& arg) {WriteSSEOp(0x00, sseSQRT, regOp, arg);}
  1409. void XEmitter::SQRTPD(X64Reg regOp, const OpArg& arg) {WriteSSEOp(0x66, sseSQRT, regOp, arg);}
  1410. void XEmitter::RCPPS(X64Reg regOp, const OpArg& arg) { WriteSSEOp(0x00, sseRCP, regOp, arg); }
  1411. void XEmitter::RSQRTPS(X64Reg regOp, const OpArg& arg) {WriteSSEOp(0x00, sseRSQRT, regOp, arg);}
  1412. void XEmitter::SHUFPS(X64Reg regOp, const OpArg& arg, u8 shuffle) {WriteSSEOp(0x00, sseSHUF, regOp, arg,1); Write8(shuffle);}
  1413. void XEmitter::SHUFPD(X64Reg regOp, const OpArg& arg, u8 shuffle) {WriteSSEOp(0x66, sseSHUF, regOp, arg,1); Write8(shuffle);}
  1414. void XEmitter::HADDPS(X64Reg regOp, const OpArg& arg) {WriteSSEOp(0xF2, sseHADD, regOp, arg);}
  1415. void XEmitter::COMISS(X64Reg regOp, const OpArg& arg) {WriteSSEOp(0x00, sseCOMIS, regOp, arg);} //weird that these should be packed
  1416. void XEmitter::COMISD(X64Reg regOp, const OpArg& arg) {WriteSSEOp(0x66, sseCOMIS, regOp, arg);} //ordered
  1417. void XEmitter::UCOMISS(X64Reg regOp, const OpArg& arg) {WriteSSEOp(0x00, sseUCOMIS, regOp, arg);} //unordered
  1418. void XEmitter::UCOMISD(X64Reg regOp, const OpArg& arg) {WriteSSEOp(0x66, sseUCOMIS, regOp, arg);}
  1419. void XEmitter::MOVAPS(X64Reg regOp, const OpArg& arg) {WriteSSEOp(0x00, sseMOVAPfromRM, regOp, arg);}
  1420. void XEmitter::MOVAPD(X64Reg regOp, const OpArg& arg) {WriteSSEOp(0x66, sseMOVAPfromRM, regOp, arg);}
  1421. void XEmitter::MOVAPS(const OpArg& arg, X64Reg regOp) {WriteSSEOp(0x00, sseMOVAPtoRM, regOp, arg);}
  1422. void XEmitter::MOVAPD(const OpArg& arg, X64Reg regOp) {WriteSSEOp(0x66, sseMOVAPtoRM, regOp, arg);}
  1423. void XEmitter::MOVUPS(X64Reg regOp, const OpArg& arg) {WriteSSEOp(0x00, sseMOVUPfromRM, regOp, arg);}
  1424. void XEmitter::MOVUPD(X64Reg regOp, const OpArg& arg) {WriteSSEOp(0x66, sseMOVUPfromRM, regOp, arg);}
  1425. void XEmitter::MOVUPS(const OpArg& arg, X64Reg regOp) {WriteSSEOp(0x00, sseMOVUPtoRM, regOp, arg);}
  1426. void XEmitter::MOVUPD(const OpArg& arg, X64Reg regOp) {WriteSSEOp(0x66, sseMOVUPtoRM, regOp, arg);}
  1427. void XEmitter::MOVDQA(X64Reg regOp, const OpArg& arg) {WriteSSEOp(0x66, sseMOVDQfromRM, regOp, arg);}
  1428. void XEmitter::MOVDQA(const OpArg& arg, X64Reg regOp) {WriteSSEOp(0x66, sseMOVDQtoRM, regOp, arg);}
  1429. void XEmitter::MOVDQU(X64Reg regOp, const OpArg& arg) {WriteSSEOp(0xF3, sseMOVDQfromRM, regOp, arg);}
  1430. void XEmitter::MOVDQU(const OpArg& arg, X64Reg regOp) {WriteSSEOp(0xF3, sseMOVDQtoRM, regOp, arg);}
  1431. void XEmitter::MOVSS(X64Reg regOp, const OpArg& arg) {WriteSSEOp(0xF3, sseMOVUPfromRM, regOp, arg);}
  1432. void XEmitter::MOVSD(X64Reg regOp, const OpArg& arg) {WriteSSEOp(0xF2, sseMOVUPfromRM, regOp, arg);}
  1433. void XEmitter::MOVSS(const OpArg& arg, X64Reg regOp) {WriteSSEOp(0xF3, sseMOVUPtoRM, regOp, arg);}
  1434. void XEmitter::MOVSD(const OpArg& arg, X64Reg regOp) {WriteSSEOp(0xF2, sseMOVUPtoRM, regOp, arg);}
  1435. void XEmitter::MOVLPS(X64Reg regOp, const OpArg& arg) { WriteSSEOp(0x00, sseMOVLPfromRM, regOp, arg); }
  1436. void XEmitter::MOVLPD(X64Reg regOp, const OpArg& arg) { WriteSSEOp(0x66, sseMOVLPfromRM, regOp, arg); }
  1437. void XEmitter::MOVLPS(const OpArg& arg, X64Reg regOp) { WriteSSEOp(0x00, sseMOVLPtoRM, regOp, arg); }
  1438. void XEmitter::MOVLPD(const OpArg& arg, X64Reg regOp) { WriteSSEOp(0x66, sseMOVLPtoRM, regOp, arg); }
  1439. void XEmitter::MOVHPS(X64Reg regOp, const OpArg& arg) { WriteSSEOp(0x00, sseMOVHPfromRM, regOp, arg); }
  1440. void XEmitter::MOVHPD(X64Reg regOp, const OpArg& arg) { WriteSSEOp(0x66, sseMOVHPfromRM, regOp, arg); }
  1441. void XEmitter::MOVHPS(const OpArg& arg, X64Reg regOp) { WriteSSEOp(0x00, sseMOVHPtoRM, regOp, arg); }
  1442. void XEmitter::MOVHPD(const OpArg& arg, X64Reg regOp) { WriteSSEOp(0x66, sseMOVHPtoRM, regOp, arg); }
  1443. void XEmitter::MOVHLPS(X64Reg regOp1, X64Reg regOp2) {WriteSSEOp(0x00, sseMOVHLPS, regOp1, R(regOp2));}
  1444. void XEmitter::MOVLHPS(X64Reg regOp1, X64Reg regOp2) {WriteSSEOp(0x00, sseMOVLHPS, regOp1, R(regOp2));}
  1445. void XEmitter::CVTPS2PD(X64Reg regOp, const OpArg& arg) {WriteSSEOp(0x00, 0x5A, regOp, arg);}
  1446. void XEmitter::CVTPD2PS(X64Reg regOp, const OpArg& arg) {WriteSSEOp(0x66, 0x5A, regOp, arg);}
  1447. void XEmitter::CVTSD2SS(X64Reg regOp, const OpArg& arg) {WriteSSEOp(0xF2, 0x5A, regOp, arg);}
  1448. void XEmitter::CVTSS2SD(X64Reg regOp, const OpArg& arg) {WriteSSEOp(0xF3, 0x5A, regOp, arg);}
  1449. void XEmitter::CVTSD2SI(X64Reg regOp, const OpArg& arg) {WriteSSEOp(0xF2, 0x2D, regOp, arg);}
  1450. void XEmitter::CVTSS2SI(X64Reg regOp, const OpArg& arg) {WriteSSEOp(0xF3, 0x2D, regOp, arg);}
  1451. void XEmitter::CVTSI2SD(X64Reg regOp, const OpArg& arg) {WriteSSEOp(0xF2, 0x2A, regOp, arg);}
  1452. void XEmitter::CVTSI2SS(X64Reg regOp, const OpArg& arg) {WriteSSEOp(0xF3, 0x2A, regOp, arg);}
  1453. void XEmitter::CVTDQ2PD(X64Reg regOp, const OpArg& arg) {WriteSSEOp(0xF3, 0xE6, regOp, arg);}
  1454. void XEmitter::CVTDQ2PS(X64Reg regOp, const OpArg& arg) {WriteSSEOp(0x00, 0x5B, regOp, arg);}
  1455. void XEmitter::CVTPD2DQ(X64Reg regOp, const OpArg& arg) {WriteSSEOp(0xF2, 0xE6, regOp, arg);}
  1456. void XEmitter::CVTPS2DQ(X64Reg regOp, const OpArg& arg) {WriteSSEOp(0x66, 0x5B, regOp, arg);}
  1457. void XEmitter::CVTTSD2SI(X64Reg regOp, const OpArg& arg) {WriteSSEOp(0xF2, 0x2C, regOp, arg);}
  1458. void XEmitter::CVTTSS2SI(X64Reg regOp, const OpArg& arg) {WriteSSEOp(0xF3, 0x2C, regOp, arg);}
  1459. void XEmitter::CVTTPS2DQ(X64Reg regOp, const OpArg& arg) {WriteSSEOp(0xF3, 0x5B, regOp, arg);}
  1460. void XEmitter::CVTTPD2DQ(X64Reg regOp, const OpArg& arg) {WriteSSEOp(0x66, 0xE6, regOp, arg);}
  1461. void XEmitter::MASKMOVDQU(X64Reg dest, X64Reg src) {WriteSSEOp(0x66, sseMASKMOVDQU, dest, R(src));}
  1462. void XEmitter::MOVMSKPS(X64Reg dest, const OpArg& arg) {WriteSSEOp(0x00, 0x50, dest, arg);}
  1463. void XEmitter::MOVMSKPD(X64Reg dest, const OpArg& arg) {WriteSSEOp(0x66, 0x50, dest, arg);}
  1464. void XEmitter::LDDQU(X64Reg dest, const OpArg& arg) {WriteSSEOp(0xF2, sseLDDQU, dest, arg);} // For integer data only
  1465. // THESE TWO ARE UNTESTED.
  1466. void XEmitter::UNPCKLPS(X64Reg dest, const OpArg& arg) {WriteSSEOp(0x00, 0x14, dest, arg);}
  1467. void XEmitter::UNPCKHPS(X64Reg dest, const OpArg& arg) {WriteSSEOp(0x00, 0x15, dest, arg);}
  1468. void XEmitter::UNPCKLPD(X64Reg dest, const OpArg& arg) {WriteSSEOp(0x66, 0x14, dest, arg);}
  1469. void XEmitter::UNPCKHPD(X64Reg dest, const OpArg& arg) {WriteSSEOp(0x66, 0x15, dest, arg);}
  1470. void XEmitter::MOVDDUP(X64Reg regOp, const OpArg& arg)
  1471. {
  1472. if (Common::GetCPUCaps().sse3)
  1473. {
  1474. WriteSSEOp(0xF2, 0x12, regOp, arg); //SSE3 movddup
  1475. }
  1476. else
  1477. {
  1478. // Simulate this instruction with SSE2 instructions
  1479. if (!arg.IsSimpleReg(regOp))
  1480. MOVSD(regOp, arg);
  1481. UNPCKLPD(regOp, R(regOp));
  1482. }
  1483. }
  1484. //There are a few more left
  1485. // Also some integer instructions are missing
  1486. void XEmitter::PACKSSDW(X64Reg dest, const OpArg& arg) {WriteSSEOp(0x66, 0x6B, dest, arg);}
  1487. void XEmitter::PACKSSWB(X64Reg dest, const OpArg& arg) {WriteSSEOp(0x66, 0x63, dest, arg);}
  1488. void XEmitter::PACKUSWB(X64Reg dest, const OpArg& arg) {WriteSSEOp(0x66, 0x67, dest, arg);}
  1489. void XEmitter::PUNPCKLBW(X64Reg dest, const OpArg &arg) {WriteSSEOp(0x66, 0x60, dest, arg);}
  1490. void XEmitter::PUNPCKLWD(X64Reg dest, const OpArg &arg) {WriteSSEOp(0x66, 0x61, dest, arg);}
  1491. void XEmitter::PUNPCKLDQ(X64Reg dest, const OpArg &arg) {WriteSSEOp(0x66, 0x62, dest, arg);}
  1492. void XEmitter::PUNPCKLQDQ(X64Reg dest, const OpArg &arg) {WriteSSEOp(0x66, 0x6C, dest, arg);}
  1493. void XEmitter::PSRLW(X64Reg reg, int shift)
  1494. {
  1495. WriteSSEOp(0x66, 0x71, (X64Reg)2, R(reg));
  1496. Write8(shift);
  1497. }
  1498. void XEmitter::PSRLD(X64Reg reg, int shift)
  1499. {
  1500. WriteSSEOp(0x66, 0x72, (X64Reg)2, R(reg));
  1501. Write8(shift);
  1502. }
  1503. void XEmitter::PSRLQ(X64Reg reg, int shift)
  1504. {
  1505. WriteSSEOp(0x66, 0x73, (X64Reg)2, R(reg));
  1506. Write8(shift);
  1507. }
  1508. void XEmitter::PSRLQ(X64Reg reg, const OpArg& arg)
  1509. {
  1510. WriteSSEOp(0x66, 0xd3, reg, arg);
  1511. }
  1512. void XEmitter::PSRLDQ(X64Reg reg, int shift) {
  1513. WriteSSEOp(0x66, 0x73, (X64Reg)3, R(reg));
  1514. Write8(shift);
  1515. }
  1516. void XEmitter::PSLLW(X64Reg reg, int shift)
  1517. {
  1518. WriteSSEOp(0x66, 0x71, (X64Reg)6, R(reg));
  1519. Write8(shift);
  1520. }
  1521. void XEmitter::PSLLD(X64Reg reg, int shift)
  1522. {
  1523. WriteSSEOp(0x66, 0x72, (X64Reg)6, R(reg));
  1524. Write8(shift);
  1525. }
  1526. void XEmitter::PSLLQ(X64Reg reg, int shift)
  1527. {
  1528. WriteSSEOp(0x66, 0x73, (X64Reg)6, R(reg));
  1529. Write8(shift);
  1530. }
  1531. void XEmitter::PSLLDQ(X64Reg reg, int shift) {
  1532. WriteSSEOp(0x66, 0x73, (X64Reg)7, R(reg));
  1533. Write8(shift);
  1534. }
  1535. void XEmitter::PSRAW(X64Reg reg, int shift)
  1536. {
  1537. WriteSSEOp(0x66, 0x71, (X64Reg)4, R(reg));
  1538. Write8(shift);
  1539. }
  1540. void XEmitter::PSRAD(X64Reg reg, int shift)
  1541. {
  1542. WriteSSEOp(0x66, 0x72, (X64Reg)4, R(reg));
  1543. Write8(shift);
  1544. }
  1545. void XEmitter::WriteSSSE3Op(u8 opPrefix, u16 op, X64Reg regOp, const OpArg& arg, int extrabytes)
  1546. {
  1547. if (!Common::GetCPUCaps().ssse3)
  1548. ASSERT_MSG(0, "Trying to use SSSE3 on a system that doesn't support it. Bad programmer.");
  1549. WriteSSEOp(opPrefix, op, regOp, arg, extrabytes);
  1550. }
  1551. void XEmitter::WriteSSE41Op(u8 opPrefix, u16 op, X64Reg regOp, const OpArg& arg, int extrabytes)
  1552. {
  1553. if (!Common::GetCPUCaps().sse4_1)
  1554. ASSERT_MSG(0, "Trying to use SSE4.1 on a system that doesn't support it. Bad programmer.");
  1555. WriteSSEOp(opPrefix, op, regOp, arg, extrabytes);
  1556. }
  1557. void XEmitter::PSHUFB(X64Reg dest, const OpArg& arg) {WriteSSSE3Op(0x66, 0x3800, dest, arg);}
  1558. void XEmitter::PTEST(X64Reg dest, const OpArg& arg) {WriteSSE41Op(0x66, 0x3817, dest, arg);}
  1559. void XEmitter::PACKUSDW(X64Reg dest, const OpArg& arg) {WriteSSE41Op(0x66, 0x382b, dest, arg);}
  1560. void XEmitter::DPPS(X64Reg dest, const OpArg& arg, u8 mask) {WriteSSE41Op(0x66, 0x3A40, dest, arg, 1); Write8(mask);}
  1561. void XEmitter::PMINSB(X64Reg dest, const OpArg& arg) {WriteSSE41Op(0x66, 0x3838, dest, arg);}
  1562. void XEmitter::PMINSD(X64Reg dest, const OpArg& arg) {WriteSSE41Op(0x66, 0x3839, dest, arg);}
  1563. void XEmitter::PMINUW(X64Reg dest, const OpArg& arg) {WriteSSE41Op(0x66, 0x383a, dest, arg);}
  1564. void XEmitter::PMINUD(X64Reg dest, const OpArg& arg) {WriteSSE41Op(0x66, 0x383b, dest, arg);}
  1565. void XEmitter::PMAXSB(X64Reg dest, const OpArg& arg) {WriteSSE41Op(0x66, 0x383c, dest, arg);}
  1566. void XEmitter::PMAXSD(X64Reg dest, const OpArg& arg) {WriteSSE41Op(0x66, 0x383d, dest, arg);}
  1567. void XEmitter::PMAXUW(X64Reg dest, const OpArg& arg) {WriteSSE41Op(0x66, 0x383e, dest, arg);}
  1568. void XEmitter::PMAXUD(X64Reg dest, const OpArg& arg) {WriteSSE41Op(0x66, 0x383f, dest, arg);}
  1569. void XEmitter::PMOVSXBW(X64Reg dest, const OpArg& arg) {WriteSSE41Op(0x66, 0x3820, dest, arg);}
  1570. void XEmitter::PMOVSXBD(X64Reg dest, const OpArg& arg) {WriteSSE41Op(0x66, 0x3821, dest, arg);}
  1571. void XEmitter::PMOVSXBQ(X64Reg dest, const OpArg& arg) {WriteSSE41Op(0x66, 0x3822, dest, arg);}
  1572. void XEmitter::PMOVSXWD(X64Reg dest, const OpArg& arg) {WriteSSE41Op(0x66, 0x3823, dest, arg);}
  1573. void XEmitter::PMOVSXWQ(X64Reg dest, const OpArg& arg) {WriteSSE41Op(0x66, 0x3824, dest, arg);}
  1574. void XEmitter::PMOVSXDQ(X64Reg dest, const OpArg& arg) {WriteSSE41Op(0x66, 0x3825, dest, arg);}
  1575. void XEmitter::PMOVZXBW(X64Reg dest, const OpArg& arg) {WriteSSE41Op(0x66, 0x3830, dest, arg);}
  1576. void XEmitter::PMOVZXBD(X64Reg dest, const OpArg& arg) {WriteSSE41Op(0x66, 0x3831, dest, arg);}
  1577. void XEmitter::PMOVZXBQ(X64Reg dest, const OpArg& arg) {WriteSSE41Op(0x66, 0x3832, dest, arg);}
  1578. void XEmitter::PMOVZXWD(X64Reg dest, const OpArg& arg) {WriteSSE41Op(0x66, 0x3833, dest, arg);}
  1579. void XEmitter::PMOVZXWQ(X64Reg dest, const OpArg& arg) {WriteSSE41Op(0x66, 0x3834, dest, arg);}
  1580. void XEmitter::PMOVZXDQ(X64Reg dest, const OpArg& arg) {WriteSSE41Op(0x66, 0x3835, dest, arg);}
  1581. void XEmitter::PBLENDVB(X64Reg dest, const OpArg& arg) {WriteSSE41Op(0x66, 0x3810, dest, arg);}
  1582. void XEmitter::BLENDVPS(X64Reg dest, const OpArg& arg) {WriteSSE41Op(0x66, 0x3814, dest, arg);}
  1583. void XEmitter::BLENDVPD(X64Reg dest, const OpArg& arg) {WriteSSE41Op(0x66, 0x3815, dest, arg);}
  1584. void XEmitter::BLENDPS(X64Reg dest, const OpArg& arg, u8 blend) { WriteSSE41Op(0x66, 0x3A0C, dest, arg, 1); Write8(blend); }
  1585. void XEmitter::BLENDPD(X64Reg dest, const OpArg& arg, u8 blend) { WriteSSE41Op(0x66, 0x3A0D, dest, arg, 1); Write8(blend); }
  1586. void XEmitter::ROUNDSS(X64Reg dest, const OpArg& arg, u8 mode) {WriteSSE41Op(0x66, 0x3A0A, dest, arg, 1); Write8(mode);}
  1587. void XEmitter::ROUNDSD(X64Reg dest, const OpArg& arg, u8 mode) {WriteSSE41Op(0x66, 0x3A0B, dest, arg, 1); Write8(mode);}
  1588. void XEmitter::ROUNDPS(X64Reg dest, const OpArg& arg, u8 mode) {WriteSSE41Op(0x66, 0x3A08, dest, arg, 1); Write8(mode);}
  1589. void XEmitter::ROUNDPD(X64Reg dest, const OpArg& arg, u8 mode) {WriteSSE41Op(0x66, 0x3A09, dest, arg, 1); Write8(mode);}
  1590. void XEmitter::PAND(X64Reg dest, const OpArg& arg) {WriteSSEOp(0x66, 0xDB, dest, arg);}
  1591. void XEmitter::PANDN(X64Reg dest, const OpArg& arg) {WriteSSEOp(0x66, 0xDF, dest, arg);}
  1592. void XEmitter::PXOR(X64Reg dest, const OpArg& arg) {WriteSSEOp(0x66, 0xEF, dest, arg);}
  1593. void XEmitter::POR(X64Reg dest, const OpArg& arg) {WriteSSEOp(0x66, 0xEB, dest, arg);}
  1594. void XEmitter::PADDB(X64Reg dest, const OpArg& arg) {WriteSSEOp(0x66, 0xFC, dest, arg);}
  1595. void XEmitter::PADDW(X64Reg dest, const OpArg& arg) {WriteSSEOp(0x66, 0xFD, dest, arg);}
  1596. void XEmitter::PADDD(X64Reg dest, const OpArg& arg) {WriteSSEOp(0x66, 0xFE, dest, arg);}
  1597. void XEmitter::PADDQ(X64Reg dest, const OpArg& arg) {WriteSSEOp(0x66, 0xD4, dest, arg);}
  1598. void XEmitter::PADDSB(X64Reg dest, const OpArg& arg) {WriteSSEOp(0x66, 0xEC, dest, arg);}
  1599. void XEmitter::PADDSW(X64Reg dest, const OpArg& arg) {WriteSSEOp(0x66, 0xED, dest, arg);}
  1600. void XEmitter::PADDUSB(X64Reg dest, const OpArg& arg) {WriteSSEOp(0x66, 0xDC, dest, arg);}
  1601. void XEmitter::PADDUSW(X64Reg dest, const OpArg& arg) {WriteSSEOp(0x66, 0xDD, dest, arg);}
  1602. void XEmitter::PSUBB(X64Reg dest, const OpArg& arg) {WriteSSEOp(0x66, 0xF8, dest, arg);}
  1603. void XEmitter::PSUBW(X64Reg dest, const OpArg& arg) {WriteSSEOp(0x66, 0xF9, dest, arg);}
  1604. void XEmitter::PSUBD(X64Reg dest, const OpArg& arg) {WriteSSEOp(0x66, 0xFA, dest, arg);}
  1605. void XEmitter::PSUBQ(X64Reg dest, const OpArg& arg) {WriteSSEOp(0x66, 0xFB, dest, arg);}
  1606. void XEmitter::PSUBSB(X64Reg dest, const OpArg& arg) {WriteSSEOp(0x66, 0xE8, dest, arg);}
  1607. void XEmitter::PSUBSW(X64Reg dest, const OpArg& arg) {WriteSSEOp(0x66, 0xE9, dest, arg);}
  1608. void XEmitter::PSUBUSB(X64Reg dest, const OpArg& arg) {WriteSSEOp(0x66, 0xD8, dest, arg);}
  1609. void XEmitter::PSUBUSW(X64Reg dest, const OpArg& arg) {WriteSSEOp(0x66, 0xD9, dest, arg);}
  1610. void XEmitter::PAVGB(X64Reg dest, const OpArg& arg) {WriteSSEOp(0x66, 0xE0, dest, arg);}
  1611. void XEmitter::PAVGW(X64Reg dest, const OpArg& arg) {WriteSSEOp(0x66, 0xE3, dest, arg);}
  1612. void XEmitter::PCMPEQB(X64Reg dest, const OpArg& arg) {WriteSSEOp(0x66, 0x74, dest, arg);}
  1613. void XEmitter::PCMPEQW(X64Reg dest, const OpArg& arg) {WriteSSEOp(0x66, 0x75, dest, arg);}
  1614. void XEmitter::PCMPEQD(X64Reg dest, const OpArg& arg) {WriteSSEOp(0x66, 0x76, dest, arg);}
  1615. void XEmitter::PCMPGTB(X64Reg dest, const OpArg& arg) {WriteSSEOp(0x66, 0x64, dest, arg);}
  1616. void XEmitter::PCMPGTW(X64Reg dest, const OpArg& arg) {WriteSSEOp(0x66, 0x65, dest, arg);}
  1617. void XEmitter::PCMPGTD(X64Reg dest, const OpArg& arg) {WriteSSEOp(0x66, 0x66, dest, arg);}
  1618. void XEmitter::PEXTRW(X64Reg dest, const OpArg& arg, u8 subreg) {WriteSSEOp(0x66, 0xC5, dest, arg, 1); Write8(subreg);}
  1619. void XEmitter::PINSRW(X64Reg dest, const OpArg& arg, u8 subreg) {WriteSSEOp(0x66, 0xC4, dest, arg, 1); Write8(subreg);}
  1620. void XEmitter::PMADDWD(X64Reg dest, const OpArg& arg) {WriteSSEOp(0x66, 0xF5, dest, arg); }
  1621. void XEmitter::PSADBW(X64Reg dest, const OpArg& arg) {WriteSSEOp(0x66, 0xF6, dest, arg);}
  1622. void XEmitter::PMAXSW(X64Reg dest, const OpArg& arg) {WriteSSEOp(0x66, 0xEE, dest, arg); }
  1623. void XEmitter::PMAXUB(X64Reg dest, const OpArg& arg) {WriteSSEOp(0x66, 0xDE, dest, arg); }
  1624. void XEmitter::PMINSW(X64Reg dest, const OpArg& arg) {WriteSSEOp(0x66, 0xEA, dest, arg); }
  1625. void XEmitter::PMINUB(X64Reg dest, const OpArg& arg) {WriteSSEOp(0x66, 0xDA, dest, arg); }
  1626. void XEmitter::PMOVMSKB(X64Reg dest, const OpArg& arg) {WriteSSEOp(0x66, 0xD7, dest, arg); }
  1627. void XEmitter::PSHUFD(X64Reg regOp, const OpArg& arg, u8 shuffle) {WriteSSEOp(0x66, 0x70, regOp, arg, 1); Write8(shuffle);}
  1628. void XEmitter::PSHUFLW(X64Reg regOp, const OpArg& arg, u8 shuffle) {WriteSSEOp(0xF2, 0x70, regOp, arg, 1); Write8(shuffle);}
  1629. void XEmitter::PSHUFHW(X64Reg regOp, const OpArg& arg, u8 shuffle) {WriteSSEOp(0xF3, 0x70, regOp, arg, 1); Write8(shuffle);}
  1630. // VEX
  1631. void XEmitter::VADDSD(X64Reg regOp1, X64Reg regOp2, const OpArg& arg) {WriteAVXOp(0xF2, sseADD, regOp1, regOp2, arg);}
  1632. void XEmitter::VSUBSD(X64Reg regOp1, X64Reg regOp2, const OpArg& arg) {WriteAVXOp(0xF2, sseSUB, regOp1, regOp2, arg);}
  1633. void XEmitter::VMULSD(X64Reg regOp1, X64Reg regOp2, const OpArg& arg) {WriteAVXOp(0xF2, sseMUL, regOp1, regOp2, arg);}
  1634. void XEmitter::VDIVSD(X64Reg regOp1, X64Reg regOp2, const OpArg& arg) {WriteAVXOp(0xF2, sseDIV, regOp1, regOp2, arg);}
  1635. void XEmitter::VADDPD(X64Reg regOp1, X64Reg regOp2, const OpArg& arg) {WriteAVXOp(0x66, sseADD, regOp1, regOp2, arg);}
  1636. void XEmitter::VSUBPD(X64Reg regOp1, X64Reg regOp2, const OpArg& arg) {WriteAVXOp(0x66, sseSUB, regOp1, regOp2, arg);}
  1637. void XEmitter::VMULPD(X64Reg regOp1, X64Reg regOp2, const OpArg& arg) {WriteAVXOp(0x66, sseMUL, regOp1, regOp2, arg);}
  1638. void XEmitter::VDIVPD(X64Reg regOp1, X64Reg regOp2, const OpArg& arg) {WriteAVXOp(0x66, sseDIV, regOp1, regOp2, arg);}
  1639. void XEmitter::VSQRTSD(X64Reg regOp1, X64Reg regOp2, const OpArg& arg) {WriteAVXOp(0xF2, sseSQRT, regOp1, regOp2, arg);}
  1640. void XEmitter::VSHUFPD(X64Reg regOp1, X64Reg regOp2, const OpArg& arg, u8 shuffle) {WriteAVXOp(0x66, sseSHUF, regOp1, regOp2, arg, 1); Write8(shuffle);}
  1641. void XEmitter::VUNPCKLPD(X64Reg regOp1, X64Reg regOp2, const OpArg& arg){WriteAVXOp(0x66, 0x14, regOp1, regOp2, arg);}
  1642. void XEmitter::VUNPCKHPD(X64Reg regOp1, X64Reg regOp2, const OpArg& arg){WriteAVXOp(0x66, 0x15, regOp1, regOp2, arg);}
  1643. void XEmitter::VANDPS(X64Reg regOp1, X64Reg regOp2, const OpArg& arg) { WriteAVXOp(0x00, sseAND, regOp1, regOp2, arg); }
  1644. void XEmitter::VANDPD(X64Reg regOp1, X64Reg regOp2, const OpArg& arg) { WriteAVXOp(0x66, sseAND, regOp1, regOp2, arg); }
  1645. void XEmitter::VANDNPS(X64Reg regOp1, X64Reg regOp2, const OpArg& arg) { WriteAVXOp(0x00, sseANDN, regOp1, regOp2, arg); }
  1646. void XEmitter::VANDNPD(X64Reg regOp1, X64Reg regOp2, const OpArg& arg) { WriteAVXOp(0x66, sseANDN, regOp1, regOp2, arg); }
  1647. void XEmitter::VORPS(X64Reg regOp1, X64Reg regOp2, const OpArg& arg) { WriteAVXOp(0x00, sseOR, regOp1, regOp2, arg); }
  1648. void XEmitter::VORPD(X64Reg regOp1, X64Reg regOp2, const OpArg& arg) { WriteAVXOp(0x66, sseOR, regOp1, regOp2, arg); }
  1649. void XEmitter::VXORPS(X64Reg regOp1, X64Reg regOp2, const OpArg& arg) { WriteAVXOp(0x00, sseXOR, regOp1, regOp2, arg); }
  1650. void XEmitter::VXORPD(X64Reg regOp1, X64Reg regOp2, const OpArg& arg) { WriteAVXOp(0x66, sseXOR, regOp1, regOp2, arg); }
  1651. void XEmitter::VPAND(X64Reg regOp1, X64Reg regOp2, const OpArg& arg) { WriteAVXOp(0x66, 0xDB, regOp1, regOp2, arg); }
  1652. void XEmitter::VPANDN(X64Reg regOp1, X64Reg regOp2, const OpArg& arg) { WriteAVXOp(0x66, 0xDF, regOp1, regOp2, arg); }
  1653. void XEmitter::VPOR(X64Reg regOp1, X64Reg regOp2, const OpArg& arg) { WriteAVXOp(0x66, 0xEB, regOp1, regOp2, arg); }
  1654. void XEmitter::VPXOR(X64Reg regOp1, X64Reg regOp2, const OpArg& arg) { WriteAVXOp(0x66, 0xEF, regOp1, regOp2, arg); }
  1655. void XEmitter::VFMADD132PS(X64Reg regOp1, X64Reg regOp2, const OpArg& arg) { WriteAVXOp(0x66, 0x3898, regOp1, regOp2, arg); }
  1656. void XEmitter::VFMADD213PS(X64Reg regOp1, X64Reg regOp2, const OpArg& arg) { WriteAVXOp(0x66, 0x38A8, regOp1, regOp2, arg); }
  1657. void XEmitter::VFMADD231PS(X64Reg regOp1, X64Reg regOp2, const OpArg& arg) { WriteAVXOp(0x66, 0x38B8, regOp1, regOp2, arg); }
  1658. void XEmitter::VFMADD132PD(X64Reg regOp1, X64Reg regOp2, const OpArg& arg) { WriteAVXOp(0x66, 0x3898, regOp1, regOp2, arg, 1); }
  1659. void XEmitter::VFMADD213PD(X64Reg regOp1, X64Reg regOp2, const OpArg& arg) { WriteAVXOp(0x66, 0x38A8, regOp1, regOp2, arg, 1); }
  1660. void XEmitter::VFMADD231PD(X64Reg regOp1, X64Reg regOp2, const OpArg& arg) { WriteAVXOp(0x66, 0x38B8, regOp1, regOp2, arg, 1); }
  1661. void XEmitter::VFMADD132SS(X64Reg regOp1, X64Reg regOp2, const OpArg& arg) { WriteAVXOp(0x66, 0x3899, regOp1, regOp2, arg); }
  1662. void XEmitter::VFMADD213SS(X64Reg regOp1, X64Reg regOp2, const OpArg& arg) { WriteAVXOp(0x66, 0x38A9, regOp1, regOp2, arg); }
  1663. void XEmitter::VFMADD231SS(X64Reg regOp1, X64Reg regOp2, const OpArg& arg) { WriteAVXOp(0x66, 0x38B9, regOp1, regOp2, arg); }
  1664. void XEmitter::VFMADD132SD(X64Reg regOp1, X64Reg regOp2, const OpArg& arg) { WriteAVXOp(0x66, 0x3899, regOp1, regOp2, arg, 1); }
  1665. void XEmitter::VFMADD213SD(X64Reg regOp1, X64Reg regOp2, const OpArg& arg) { WriteAVXOp(0x66, 0x38A9, regOp1, regOp2, arg, 1); }
  1666. void XEmitter::VFMADD231SD(X64Reg regOp1, X64Reg regOp2, const OpArg& arg) { WriteAVXOp(0x66, 0x38B9, regOp1, regOp2, arg, 1); }
  1667. void XEmitter::VFMSUB132PS(X64Reg regOp1, X64Reg regOp2, const OpArg& arg) { WriteAVXOp(0x66, 0x389A, regOp1, regOp2, arg); }
  1668. void XEmitter::VFMSUB213PS(X64Reg regOp1, X64Reg regOp2, const OpArg& arg) { WriteAVXOp(0x66, 0x38AA, regOp1, regOp2, arg); }
  1669. void XEmitter::VFMSUB231PS(X64Reg regOp1, X64Reg regOp2, const OpArg& arg) { WriteAVXOp(0x66, 0x38BA, regOp1, regOp2, arg); }
  1670. void XEmitter::VFMSUB132PD(X64Reg regOp1, X64Reg regOp2, const OpArg& arg) { WriteAVXOp(0x66, 0x389A, regOp1, regOp2, arg, 1); }
  1671. void XEmitter::VFMSUB213PD(X64Reg regOp1, X64Reg regOp2, const OpArg& arg) { WriteAVXOp(0x66, 0x38AA, regOp1, regOp2, arg, 1); }
  1672. void XEmitter::VFMSUB231PD(X64Reg regOp1, X64Reg regOp2, const OpArg& arg) { WriteAVXOp(0x66, 0x38BA, regOp1, regOp2, arg, 1); }
  1673. void XEmitter::VFMSUB132SS(X64Reg regOp1, X64Reg regOp2, const OpArg& arg) { WriteAVXOp(0x66, 0x389B, regOp1, regOp2, arg); }
  1674. void XEmitter::VFMSUB213SS(X64Reg regOp1, X64Reg regOp2, const OpArg& arg) { WriteAVXOp(0x66, 0x38AB, regOp1, regOp2, arg); }
  1675. void XEmitter::VFMSUB231SS(X64Reg regOp1, X64Reg regOp2, const OpArg& arg) { WriteAVXOp(0x66, 0x38BB, regOp1, regOp2, arg); }
  1676. void XEmitter::VFMSUB132SD(X64Reg regOp1, X64Reg regOp2, const OpArg& arg) { WriteAVXOp(0x66, 0x389B, regOp1, regOp2, arg, 1); }
  1677. void XEmitter::VFMSUB213SD(X64Reg regOp1, X64Reg regOp2, const OpArg& arg) { WriteAVXOp(0x66, 0x38AB, regOp1, regOp2, arg, 1); }
  1678. void XEmitter::VFMSUB231SD(X64Reg regOp1, X64Reg regOp2, const OpArg& arg) { WriteAVXOp(0x66, 0x38BB, regOp1, regOp2, arg, 1); }
  1679. void XEmitter::VFNMADD132PS(X64Reg regOp1, X64Reg regOp2, const OpArg& arg) { WriteAVXOp(0x66, 0x389C, regOp1, regOp2, arg); }
  1680. void XEmitter::VFNMADD213PS(X64Reg regOp1, X64Reg regOp2, const OpArg& arg) { WriteAVXOp(0x66, 0x38AC, regOp1, regOp2, arg); }
  1681. void XEmitter::VFNMADD231PS(X64Reg regOp1, X64Reg regOp2, const OpArg& arg) { WriteAVXOp(0x66, 0x38BC, regOp1, regOp2, arg); }
  1682. void XEmitter::VFNMADD132PD(X64Reg regOp1, X64Reg regOp2, const OpArg& arg) { WriteAVXOp(0x66, 0x389C, regOp1, regOp2, arg, 1); }
  1683. void XEmitter::VFNMADD213PD(X64Reg regOp1, X64Reg regOp2, const OpArg& arg) { WriteAVXOp(0x66, 0x38AC, regOp1, regOp2, arg, 1); }
  1684. void XEmitter::VFNMADD231PD(X64Reg regOp1, X64Reg regOp2, const OpArg& arg) { WriteAVXOp(0x66, 0x38BC, regOp1, regOp2, arg, 1); }
  1685. void XEmitter::VFNMADD132SS(X64Reg regOp1, X64Reg regOp2, const OpArg& arg) { WriteAVXOp(0x66, 0x389D, regOp1, regOp2, arg); }
  1686. void XEmitter::VFNMADD213SS(X64Reg regOp1, X64Reg regOp2, const OpArg& arg) { WriteAVXOp(0x66, 0x38AD, regOp1, regOp2, arg); }
  1687. void XEmitter::VFNMADD231SS(X64Reg regOp1, X64Reg regOp2, const OpArg& arg) { WriteAVXOp(0x66, 0x38BD, regOp1, regOp2, arg); }
  1688. void XEmitter::VFNMADD132SD(X64Reg regOp1, X64Reg regOp2, const OpArg& arg) { WriteAVXOp(0x66, 0x389D, regOp1, regOp2, arg, 1); }
  1689. void XEmitter::VFNMADD213SD(X64Reg regOp1, X64Reg regOp2, const OpArg& arg) { WriteAVXOp(0x66, 0x38AD, regOp1, regOp2, arg, 1); }
  1690. void XEmitter::VFNMADD231SD(X64Reg regOp1, X64Reg regOp2, const OpArg& arg) { WriteAVXOp(0x66, 0x38BD, regOp1, regOp2, arg, 1); }
  1691. void XEmitter::VFNMSUB132PS(X64Reg regOp1, X64Reg regOp2, const OpArg& arg) { WriteAVXOp(0x66, 0x389E, regOp1, regOp2, arg); }
  1692. void XEmitter::VFNMSUB213PS(X64Reg regOp1, X64Reg regOp2, const OpArg& arg) { WriteAVXOp(0x66, 0x38AE, regOp1, regOp2, arg); }
  1693. void XEmitter::VFNMSUB231PS(X64Reg regOp1, X64Reg regOp2, const OpArg& arg) { WriteAVXOp(0x66, 0x38BE, regOp1, regOp2, arg); }
  1694. void XEmitter::VFNMSUB132PD(X64Reg regOp1, X64Reg regOp2, const OpArg& arg) { WriteAVXOp(0x66, 0x389E, regOp1, regOp2, arg, 1); }
  1695. void XEmitter::VFNMSUB213PD(X64Reg regOp1, X64Reg regOp2, const OpArg& arg) { WriteAVXOp(0x66, 0x38AE, regOp1, regOp2, arg, 1); }
  1696. void XEmitter::VFNMSUB231PD(X64Reg regOp1, X64Reg regOp2, const OpArg& arg) { WriteAVXOp(0x66, 0x38BE, regOp1, regOp2, arg, 1); }
  1697. void XEmitter::VFNMSUB132SS(X64Reg regOp1, X64Reg regOp2, const OpArg& arg) { WriteAVXOp(0x66, 0x389F, regOp1, regOp2, arg); }
  1698. void XEmitter::VFNMSUB213SS(X64Reg regOp1, X64Reg regOp2, const OpArg& arg) { WriteAVXOp(0x66, 0x38AF, regOp1, regOp2, arg); }
  1699. void XEmitter::VFNMSUB231SS(X64Reg regOp1, X64Reg regOp2, const OpArg& arg) { WriteAVXOp(0x66, 0x38BF, regOp1, regOp2, arg); }
  1700. void XEmitter::VFNMSUB132SD(X64Reg regOp1, X64Reg regOp2, const OpArg& arg) { WriteAVXOp(0x66, 0x389F, regOp1, regOp2, arg, 1); }
  1701. void XEmitter::VFNMSUB213SD(X64Reg regOp1, X64Reg regOp2, const OpArg& arg) { WriteAVXOp(0x66, 0x38AF, regOp1, regOp2, arg, 1); }
  1702. void XEmitter::VFNMSUB231SD(X64Reg regOp1, X64Reg regOp2, const OpArg& arg) { WriteAVXOp(0x66, 0x38BF, regOp1, regOp2, arg, 1); }
  1703. void XEmitter::VFMADDSUB132PS(X64Reg regOp1, X64Reg regOp2, const OpArg& arg) { WriteAVXOp(0x66, 0x3896, regOp1, regOp2, arg); }
  1704. void XEmitter::VFMADDSUB213PS(X64Reg regOp1, X64Reg regOp2, const OpArg& arg) { WriteAVXOp(0x66, 0x38A6, regOp1, regOp2, arg); }
  1705. void XEmitter::VFMADDSUB231PS(X64Reg regOp1, X64Reg regOp2, const OpArg& arg) { WriteAVXOp(0x66, 0x38B6, regOp1, regOp2, arg); }
  1706. void XEmitter::VFMADDSUB132PD(X64Reg regOp1, X64Reg regOp2, const OpArg& arg) { WriteAVXOp(0x66, 0x3896, regOp1, regOp2, arg, 1); }
  1707. void XEmitter::VFMADDSUB213PD(X64Reg regOp1, X64Reg regOp2, const OpArg& arg) { WriteAVXOp(0x66, 0x38A6, regOp1, regOp2, arg, 1); }
  1708. void XEmitter::VFMADDSUB231PD(X64Reg regOp1, X64Reg regOp2, const OpArg& arg) { WriteAVXOp(0x66, 0x38B6, regOp1, regOp2, arg, 1); }
  1709. void XEmitter::VFMSUBADD132PS(X64Reg regOp1, X64Reg regOp2, const OpArg& arg) { WriteAVXOp(0x66, 0x3897, regOp1, regOp2, arg); }
  1710. void XEmitter::VFMSUBADD213PS(X64Reg regOp1, X64Reg regOp2, const OpArg& arg) { WriteAVXOp(0x66, 0x38A7, regOp1, regOp2, arg); }
  1711. void XEmitter::VFMSUBADD231PS(X64Reg regOp1, X64Reg regOp2, const OpArg& arg) { WriteAVXOp(0x66, 0x38B7, regOp1, regOp2, arg); }
  1712. void XEmitter::VFMSUBADD132PD(X64Reg regOp1, X64Reg regOp2, const OpArg& arg) { WriteAVXOp(0x66, 0x3897, regOp1, regOp2, arg, 1); }
  1713. void XEmitter::VFMSUBADD213PD(X64Reg regOp1, X64Reg regOp2, const OpArg& arg) { WriteAVXOp(0x66, 0x38A7, regOp1, regOp2, arg, 1); }
  1714. void XEmitter::VFMSUBADD231PD(X64Reg regOp1, X64Reg regOp2, const OpArg& arg) { WriteAVXOp(0x66, 0x38B7, regOp1, regOp2, arg, 1); }
  1715. void XEmitter::SARX(int bits, X64Reg regOp1, const OpArg& arg, X64Reg regOp2) {WriteBMI2Op(bits, 0xF3, 0x38F7, regOp1, regOp2, arg);}
  1716. void XEmitter::SHLX(int bits, X64Reg regOp1, const OpArg& arg, X64Reg regOp2) {WriteBMI2Op(bits, 0x66, 0x38F7, regOp1, regOp2, arg);}
  1717. void XEmitter::SHRX(int bits, X64Reg regOp1, const OpArg& arg, X64Reg regOp2) {WriteBMI2Op(bits, 0xF2, 0x38F7, regOp1, regOp2, arg);}
  1718. void XEmitter::RORX(int bits, X64Reg regOp, const OpArg& arg, u8 rotate) {WriteBMI2Op(bits, 0xF2, 0x3AF0, regOp, INVALID_REG, arg, 1); Write8(rotate);}
  1719. void XEmitter::PEXT(int bits, X64Reg regOp1, X64Reg regOp2, const OpArg& arg) {WriteBMI2Op(bits, 0xF3, 0x38F5, regOp1, regOp2, arg);}
  1720. void XEmitter::PDEP(int bits, X64Reg regOp1, X64Reg regOp2, const OpArg& arg) {WriteBMI2Op(bits, 0xF2, 0x38F5, regOp1, regOp2, arg);}
  1721. void XEmitter::MULX(int bits, X64Reg regOp1, X64Reg regOp2, const OpArg& arg) {WriteBMI2Op(bits, 0xF2, 0x38F6, regOp2, regOp1, arg);}
  1722. void XEmitter::BZHI(int bits, X64Reg regOp1, const OpArg& arg, X64Reg regOp2) {WriteBMI2Op(bits, 0x00, 0x38F5, regOp1, regOp2, arg);}
  1723. void XEmitter::BLSR(int bits, X64Reg regOp, const OpArg& arg) {WriteBMI1Op(bits, 0x00, 0x38F3, (X64Reg)0x1, regOp, arg);}
  1724. void XEmitter::BLSMSK(int bits, X64Reg regOp, const OpArg& arg) {WriteBMI1Op(bits, 0x00, 0x38F3, (X64Reg)0x2, regOp, arg);}
  1725. void XEmitter::BLSI(int bits, X64Reg regOp, const OpArg& arg) {WriteBMI1Op(bits, 0x00, 0x38F3, (X64Reg)0x3, regOp, arg);}
  1726. void XEmitter::BEXTR(int bits, X64Reg regOp1, const OpArg& arg, X64Reg regOp2){WriteBMI1Op(bits, 0x00, 0x38F7, regOp1, regOp2, arg);}
  1727. void XEmitter::ANDN(int bits, X64Reg regOp1, X64Reg regOp2, const OpArg& arg) {WriteBMI1Op(bits, 0x00, 0x38F2, regOp1, regOp2, arg);}
  1728. // Prefixes
  1729. void XEmitter::LOCK() { Write8(0xF0); }
  1730. void XEmitter::REP() { Write8(0xF3); }
  1731. void XEmitter::REPNE() { Write8(0xF2); }
  1732. void XEmitter::FSOverride() { Write8(0x64); }
  1733. void XEmitter::GSOverride() { Write8(0x65); }
  1734. void XEmitter::FWAIT()
  1735. {
  1736. Write8(0x9B);
  1737. }
  1738. // TODO: make this more generic
  1739. void XEmitter::WriteFloatLoadStore(int bits, FloatOp op, FloatOp op_80b, const OpArg& arg)
  1740. {
  1741. int mf = 0;
  1742. ASSERT_MSG(!(bits == 80 && op_80b == floatINVALID), "WriteFloatLoadStore: 80 bits not supported for this instruction");
  1743. switch (bits)
  1744. {
  1745. case 32: mf = 0; break;
  1746. case 64: mf = 4; break;
  1747. case 80: mf = 2; break;
  1748. default: ASSERT_MSG(0, "WriteFloatLoadStore: invalid bits (should be 32/64/80)");
  1749. }
  1750. Write8(0xd9 | mf);
  1751. // x87 instructions use the reg field of the ModR/M byte as opcode:
  1752. if (bits == 80)
  1753. op = op_80b;
  1754. arg.WriteRest(this, 0, (X64Reg) op);
  1755. }
  1756. void XEmitter::FLD(int bits, const OpArg& src) {WriteFloatLoadStore(bits, floatLD, floatLD80, src);}
  1757. void XEmitter::FST(int bits, const OpArg& dest) {WriteFloatLoadStore(bits, floatST, floatINVALID, dest);}
  1758. void XEmitter::FSTP(int bits, const OpArg& dest) {WriteFloatLoadStore(bits, floatSTP, floatSTP80, dest);}
  1759. void XEmitter::FNSTSW_AX() { Write8(0xDF); Write8(0xE0); }
  1760. void XEmitter::RDTSC() { Write8(0x0F); Write8(0x31); }
  1761. void XCodeBlock::PoisonMemory() {
  1762. // x86/64: 0xCC = breakpoint
  1763. memset(region, 0xCC, region_size);
  1764. }
  1765. }