1 //===-- X86MCCodeEmitter.cpp - Convert X86 code to machine code -----------===// 2 // 3 // The LLVM Compiler Infrastructure 4 // 5 // This file is distributed under the University of Illinois Open Source 6 // License. See LICENSE.TXT for details. 7 // 8 //===----------------------------------------------------------------------===// 9 // 10 // This file implements the X86MCCodeEmitter class. 11 // 12 //===----------------------------------------------------------------------===// 13 14 #define DEBUG_TYPE "mccodeemitter" 15 #include "MCTargetDesc/X86MCTargetDesc.h" 16 #include "MCTargetDesc/X86BaseInfo.h" 17 #include "MCTargetDesc/X86FixupKinds.h" 18 #include "llvm/MC/MCCodeEmitter.h" 19 #include "llvm/MC/MCContext.h" 20 #include "llvm/MC/MCExpr.h" 21 #include "llvm/MC/MCInst.h" 22 #include "llvm/MC/MCInstrInfo.h" 23 #include "llvm/MC/MCRegisterInfo.h" 24 #include "llvm/MC/MCSubtargetInfo.h" 25 #include "llvm/MC/MCSymbol.h" 26 #include "llvm/Support/raw_ostream.h" 27 28 using namespace llvm; 29 30 namespace { 31 class X86MCCodeEmitter : public MCCodeEmitter { 32 X86MCCodeEmitter(const X86MCCodeEmitter &) LLVM_DELETED_FUNCTION; 33 void operator=(const X86MCCodeEmitter &) LLVM_DELETED_FUNCTION; 34 const MCInstrInfo &MCII; 35 MCContext &Ctx; 36 public: 37 X86MCCodeEmitter(const MCInstrInfo &mcii, MCContext &ctx) 38 : MCII(mcii), Ctx(ctx) { 39 } 40 41 ~X86MCCodeEmitter() {} 42 43 bool is64BitMode(const MCSubtargetInfo &STI) const { 44 return (STI.getFeatureBits() & X86::Mode64Bit) != 0; 45 } 46 47 bool is32BitMode(const MCSubtargetInfo &STI) const { 48 return (STI.getFeatureBits() & X86::Mode32Bit) != 0; 49 } 50 51 bool is16BitMode(const MCSubtargetInfo &STI) const { 52 return (STI.getFeatureBits() & X86::Mode16Bit) != 0; 53 } 54 55 /// Is16BitMemOperand - Return true if the specified instruction has 56 /// a 16-bit memory operand. Op specifies the operand # of the memoperand. 57 bool Is16BitMemOperand(const MCInst &MI, unsigned Op, 58 const MCSubtargetInfo &STI) const { 59 const MCOperand &BaseReg = MI.getOperand(Op+X86::AddrBaseReg); 60 const MCOperand &IndexReg = MI.getOperand(Op+X86::AddrIndexReg); 61 const MCOperand &Disp = MI.getOperand(Op+X86::AddrDisp); 62 63 if (is16BitMode(STI) && BaseReg.getReg() == 0 && 64 Disp.isImm() && Disp.getImm() < 0x10000) 65 return true; 66 if ((BaseReg.getReg() != 0 && 67 X86MCRegisterClasses[X86::GR16RegClassID].contains(BaseReg.getReg())) || 68 (IndexReg.getReg() != 0 && 69 X86MCRegisterClasses[X86::GR16RegClassID].contains(IndexReg.getReg()))) 70 return true; 71 return false; 72 } 73 74 unsigned GetX86RegNum(const MCOperand &MO) const { 75 return Ctx.getRegisterInfo()->getEncodingValue(MO.getReg()) & 0x7; 76 } 77 78 // On regular x86, both XMM0-XMM7 and XMM8-XMM15 are encoded in the range 79 // 0-7 and the difference between the 2 groups is given by the REX prefix. 80 // In the VEX prefix, registers are seen sequencially from 0-15 and encoded 81 // in 1's complement form, example: 82 // 83 // ModRM field => XMM9 => 1 84 // VEX.VVVV => XMM9 => ~9 85 // 86 // See table 4-35 of Intel AVX Programming Reference for details. 87 unsigned char getVEXRegisterEncoding(const MCInst &MI, 88 unsigned OpNum) const { 89 unsigned SrcReg = MI.getOperand(OpNum).getReg(); 90 unsigned SrcRegNum = GetX86RegNum(MI.getOperand(OpNum)); 91 if (X86II::isX86_64ExtendedReg(SrcReg)) 92 SrcRegNum |= 8; 93 94 // The registers represented through VEX_VVVV should 95 // be encoded in 1's complement form. 96 return (~SrcRegNum) & 0xf; 97 } 98 99 unsigned char getWriteMaskRegisterEncoding(const MCInst &MI, 100 unsigned OpNum) const { 101 assert(X86::K0 != MI.getOperand(OpNum).getReg() && 102 "Invalid mask register as write-mask!"); 103 unsigned MaskRegNum = GetX86RegNum(MI.getOperand(OpNum)); 104 return MaskRegNum; 105 } 106 107 void EmitByte(unsigned char C, unsigned &CurByte, raw_ostream &OS) const { 108 OS << (char)C; 109 ++CurByte; 110 } 111 112 void EmitConstant(uint64_t Val, unsigned Size, unsigned &CurByte, 113 raw_ostream &OS) const { 114 // Output the constant in little endian byte order. 115 for (unsigned i = 0; i != Size; ++i) { 116 EmitByte(Val & 255, CurByte, OS); 117 Val >>= 8; 118 } 119 } 120 121 void EmitImmediate(const MCOperand &Disp, SMLoc Loc, 122 unsigned ImmSize, MCFixupKind FixupKind, 123 unsigned &CurByte, raw_ostream &OS, 124 SmallVectorImpl<MCFixup> &Fixups, 125 int ImmOffset = 0) const; 126 127 inline static unsigned char ModRMByte(unsigned Mod, unsigned RegOpcode, 128 unsigned RM) { 129 assert(Mod < 4 && RegOpcode < 8 && RM < 8 && "ModRM Fields out of range!"); 130 return RM | (RegOpcode << 3) | (Mod << 6); 131 } 132 133 void EmitRegModRMByte(const MCOperand &ModRMReg, unsigned RegOpcodeFld, 134 unsigned &CurByte, raw_ostream &OS) const { 135 EmitByte(ModRMByte(3, RegOpcodeFld, GetX86RegNum(ModRMReg)), CurByte, OS); 136 } 137 138 void EmitSIBByte(unsigned SS, unsigned Index, unsigned Base, 139 unsigned &CurByte, raw_ostream &OS) const { 140 // SIB byte is in the same format as the ModRMByte. 141 EmitByte(ModRMByte(SS, Index, Base), CurByte, OS); 142 } 143 144 145 void EmitMemModRMByte(const MCInst &MI, unsigned Op, 146 unsigned RegOpcodeField, 147 uint64_t TSFlags, unsigned &CurByte, raw_ostream &OS, 148 SmallVectorImpl<MCFixup> &Fixups, 149 const MCSubtargetInfo &STI) const; 150 151 void EncodeInstruction(const MCInst &MI, raw_ostream &OS, 152 SmallVectorImpl<MCFixup> &Fixups, 153 const MCSubtargetInfo &STI) const; 154 155 void EmitVEXOpcodePrefix(uint64_t TSFlags, unsigned &CurByte, int MemOperand, 156 const MCInst &MI, const MCInstrDesc &Desc, 157 raw_ostream &OS) const; 158 159 void EmitSegmentOverridePrefix(unsigned &CurByte, unsigned SegOperand, 160 const MCInst &MI, raw_ostream &OS) const; 161 162 void EmitOpcodePrefix(uint64_t TSFlags, unsigned &CurByte, int MemOperand, 163 const MCInst &MI, const MCInstrDesc &Desc, 164 const MCSubtargetInfo &STI, 165 raw_ostream &OS) const; 166 }; 167 168 } // end anonymous namespace 169 170 171 MCCodeEmitter *llvm::createX86MCCodeEmitter(const MCInstrInfo &MCII, 172 const MCRegisterInfo &MRI, 173 const MCSubtargetInfo &STI, 174 MCContext &Ctx) { 175 return new X86MCCodeEmitter(MCII, Ctx); 176 } 177 178 /// isDisp8 - Return true if this signed displacement fits in a 8-bit 179 /// sign-extended field. 180 static bool isDisp8(int Value) { 181 return Value == (signed char)Value; 182 } 183 184 /// isCDisp8 - Return true if this signed displacement fits in a 8-bit 185 /// compressed dispacement field. 186 static bool isCDisp8(uint64_t TSFlags, int Value, int& CValue) { 187 assert(((TSFlags >> X86II::VEXShift) & X86II::EVEX) && 188 "Compressed 8-bit displacement is only valid for EVEX inst."); 189 190 unsigned CD8E = (TSFlags >> X86II::EVEX_CD8EShift) & X86II::EVEX_CD8EMask; 191 unsigned CD8V = (TSFlags >> X86II::EVEX_CD8VShift) & X86II::EVEX_CD8VMask; 192 193 if (CD8V == 0 && CD8E == 0) { 194 CValue = Value; 195 return isDisp8(Value); 196 } 197 198 unsigned MemObjSize = 1U << CD8E; 199 if (CD8V & 4) { 200 // Fixed vector length 201 MemObjSize *= 1U << (CD8V & 0x3); 202 } else { 203 // Modified vector length 204 bool EVEX_b = (TSFlags >> X86II::VEXShift) & X86II::EVEX_B; 205 if (!EVEX_b) { 206 unsigned EVEX_LL = ((TSFlags >> X86II::VEXShift) & X86II::VEX_L) ? 1 : 0; 207 EVEX_LL += ((TSFlags >> X86II::VEXShift) & X86II::EVEX_L2) ? 2 : 0; 208 assert(EVEX_LL < 3 && ""); 209 210 unsigned NumElems = (1U << (EVEX_LL + 4)) / MemObjSize; 211 NumElems /= 1U << (CD8V & 0x3); 212 213 MemObjSize *= NumElems; 214 } 215 } 216 217 unsigned MemObjMask = MemObjSize - 1; 218 assert((MemObjSize & MemObjMask) == 0 && "Invalid memory object size."); 219 220 if (Value & MemObjMask) // Unaligned offset 221 return false; 222 Value /= MemObjSize; 223 bool Ret = (Value == (signed char)Value); 224 225 if (Ret) 226 CValue = Value; 227 return Ret; 228 } 229 230 /// getImmFixupKind - Return the appropriate fixup kind to use for an immediate 231 /// in an instruction with the specified TSFlags. 232 static MCFixupKind getImmFixupKind(uint64_t TSFlags) { 233 unsigned Size = X86II::getSizeOfImm(TSFlags); 234 bool isPCRel = X86II::isImmPCRel(TSFlags); 235 236 return MCFixup::getKindForSize(Size, isPCRel); 237 } 238 239 /// Is32BitMemOperand - Return true if the specified instruction has 240 /// a 32-bit memory operand. Op specifies the operand # of the memoperand. 241 static bool Is32BitMemOperand(const MCInst &MI, unsigned Op) { 242 const MCOperand &BaseReg = MI.getOperand(Op+X86::AddrBaseReg); 243 const MCOperand &IndexReg = MI.getOperand(Op+X86::AddrIndexReg); 244 245 if ((BaseReg.getReg() != 0 && 246 X86MCRegisterClasses[X86::GR32RegClassID].contains(BaseReg.getReg())) || 247 (IndexReg.getReg() != 0 && 248 X86MCRegisterClasses[X86::GR32RegClassID].contains(IndexReg.getReg()))) 249 return true; 250 return false; 251 } 252 253 /// Is64BitMemOperand - Return true if the specified instruction has 254 /// a 64-bit memory operand. Op specifies the operand # of the memoperand. 255 #ifndef NDEBUG 256 static bool Is64BitMemOperand(const MCInst &MI, unsigned Op) { 257 const MCOperand &BaseReg = MI.getOperand(Op+X86::AddrBaseReg); 258 const MCOperand &IndexReg = MI.getOperand(Op+X86::AddrIndexReg); 259 260 if ((BaseReg.getReg() != 0 && 261 X86MCRegisterClasses[X86::GR64RegClassID].contains(BaseReg.getReg())) || 262 (IndexReg.getReg() != 0 && 263 X86MCRegisterClasses[X86::GR64RegClassID].contains(IndexReg.getReg()))) 264 return true; 265 return false; 266 } 267 #endif 268 269 /// StartsWithGlobalOffsetTable - Check if this expression starts with 270 /// _GLOBAL_OFFSET_TABLE_ and if it is of the form 271 /// _GLOBAL_OFFSET_TABLE_-symbol. This is needed to support PIC on ELF 272 /// i386 as _GLOBAL_OFFSET_TABLE_ is magical. We check only simple case that 273 /// are know to be used: _GLOBAL_OFFSET_TABLE_ by itself or at the start 274 /// of a binary expression. 275 enum GlobalOffsetTableExprKind { 276 GOT_None, 277 GOT_Normal, 278 GOT_SymDiff 279 }; 280 static GlobalOffsetTableExprKind 281 StartsWithGlobalOffsetTable(const MCExpr *Expr) { 282 const MCExpr *RHS = 0; 283 if (Expr->getKind() == MCExpr::Binary) { 284 const MCBinaryExpr *BE = static_cast<const MCBinaryExpr *>(Expr); 285 Expr = BE->getLHS(); 286 RHS = BE->getRHS(); 287 } 288 289 if (Expr->getKind() != MCExpr::SymbolRef) 290 return GOT_None; 291 292 const MCSymbolRefExpr *Ref = static_cast<const MCSymbolRefExpr*>(Expr); 293 const MCSymbol &S = Ref->getSymbol(); 294 if (S.getName() != "_GLOBAL_OFFSET_TABLE_") 295 return GOT_None; 296 if (RHS && RHS->getKind() == MCExpr::SymbolRef) 297 return GOT_SymDiff; 298 return GOT_Normal; 299 } 300 301 static bool HasSecRelSymbolRef(const MCExpr *Expr) { 302 if (Expr->getKind() == MCExpr::SymbolRef) { 303 const MCSymbolRefExpr *Ref = static_cast<const MCSymbolRefExpr*>(Expr); 304 return Ref->getKind() == MCSymbolRefExpr::VK_SECREL; 305 } 306 return false; 307 } 308 309 void X86MCCodeEmitter:: 310 EmitImmediate(const MCOperand &DispOp, SMLoc Loc, unsigned Size, 311 MCFixupKind FixupKind, unsigned &CurByte, raw_ostream &OS, 312 SmallVectorImpl<MCFixup> &Fixups, int ImmOffset) const { 313 const MCExpr *Expr = NULL; 314 if (DispOp.isImm()) { 315 // If this is a simple integer displacement that doesn't require a 316 // relocation, emit it now. 317 if (FixupKind != FK_PCRel_1 && 318 FixupKind != FK_PCRel_2 && 319 FixupKind != FK_PCRel_4) { 320 EmitConstant(DispOp.getImm()+ImmOffset, Size, CurByte, OS); 321 return; 322 } 323 Expr = MCConstantExpr::Create(DispOp.getImm(), Ctx); 324 } else { 325 Expr = DispOp.getExpr(); 326 } 327 328 // If we have an immoffset, add it to the expression. 329 if ((FixupKind == FK_Data_4 || 330 FixupKind == FK_Data_8 || 331 FixupKind == MCFixupKind(X86::reloc_signed_4byte))) { 332 GlobalOffsetTableExprKind Kind = StartsWithGlobalOffsetTable(Expr); 333 if (Kind != GOT_None) { 334 assert(ImmOffset == 0); 335 336 FixupKind = MCFixupKind(X86::reloc_global_offset_table); 337 if (Kind == GOT_Normal) 338 ImmOffset = CurByte; 339 } else if (Expr->getKind() == MCExpr::SymbolRef) { 340 if (HasSecRelSymbolRef(Expr)) { 341 FixupKind = MCFixupKind(FK_SecRel_4); 342 } 343 } else if (Expr->getKind() == MCExpr::Binary) { 344 const MCBinaryExpr *Bin = static_cast<const MCBinaryExpr*>(Expr); 345 if (HasSecRelSymbolRef(Bin->getLHS()) 346 || HasSecRelSymbolRef(Bin->getRHS())) { 347 FixupKind = MCFixupKind(FK_SecRel_4); 348 } 349 } 350 } 351 352 // If the fixup is pc-relative, we need to bias the value to be relative to 353 // the start of the field, not the end of the field. 354 if (FixupKind == FK_PCRel_4 || 355 FixupKind == MCFixupKind(X86::reloc_riprel_4byte) || 356 FixupKind == MCFixupKind(X86::reloc_riprel_4byte_movq_load)) 357 ImmOffset -= 4; 358 if (FixupKind == FK_PCRel_2) 359 ImmOffset -= 2; 360 if (FixupKind == FK_PCRel_1) 361 ImmOffset -= 1; 362 363 if (ImmOffset) 364 Expr = MCBinaryExpr::CreateAdd(Expr, MCConstantExpr::Create(ImmOffset, Ctx), 365 Ctx); 366 367 // Emit a symbolic constant as a fixup and 4 zeros. 368 Fixups.push_back(MCFixup::Create(CurByte, Expr, FixupKind, Loc)); 369 EmitConstant(0, Size, CurByte, OS); 370 } 371 372 void X86MCCodeEmitter::EmitMemModRMByte(const MCInst &MI, unsigned Op, 373 unsigned RegOpcodeField, 374 uint64_t TSFlags, unsigned &CurByte, 375 raw_ostream &OS, 376 SmallVectorImpl<MCFixup> &Fixups, 377 const MCSubtargetInfo &STI) const{ 378 const MCOperand &Disp = MI.getOperand(Op+X86::AddrDisp); 379 const MCOperand &Base = MI.getOperand(Op+X86::AddrBaseReg); 380 const MCOperand &Scale = MI.getOperand(Op+X86::AddrScaleAmt); 381 const MCOperand &IndexReg = MI.getOperand(Op+X86::AddrIndexReg); 382 unsigned BaseReg = Base.getReg(); 383 bool HasEVEX = (TSFlags >> X86II::VEXShift) & X86II::EVEX; 384 385 // Handle %rip relative addressing. 386 if (BaseReg == X86::RIP) { // [disp32+RIP] in X86-64 mode 387 assert(is64BitMode(STI) && "Rip-relative addressing requires 64-bit mode"); 388 assert(IndexReg.getReg() == 0 && "Invalid rip-relative address"); 389 EmitByte(ModRMByte(0, RegOpcodeField, 5), CurByte, OS); 390 391 unsigned FixupKind = X86::reloc_riprel_4byte; 392 393 // movq loads are handled with a special relocation form which allows the 394 // linker to eliminate some loads for GOT references which end up in the 395 // same linkage unit. 396 if (MI.getOpcode() == X86::MOV64rm) 397 FixupKind = X86::reloc_riprel_4byte_movq_load; 398 399 // rip-relative addressing is actually relative to the *next* instruction. 400 // Since an immediate can follow the mod/rm byte for an instruction, this 401 // means that we need to bias the immediate field of the instruction with 402 // the size of the immediate field. If we have this case, add it into the 403 // expression to emit. 404 int ImmSize = X86II::hasImm(TSFlags) ? X86II::getSizeOfImm(TSFlags) : 0; 405 406 EmitImmediate(Disp, MI.getLoc(), 4, MCFixupKind(FixupKind), 407 CurByte, OS, Fixups, -ImmSize); 408 return; 409 } 410 411 unsigned BaseRegNo = BaseReg ? GetX86RegNum(Base) : -1U; 412 413 // 16-bit addressing forms of the ModR/M byte have a different encoding for 414 // the R/M field and are far more limited in which registers can be used. 415 if (Is16BitMemOperand(MI, Op, STI)) { 416 if (BaseReg) { 417 // For 32-bit addressing, the row and column values in Table 2-2 are 418 // basically the same. It's AX/CX/DX/BX/SP/BP/SI/DI in that order, with 419 // some special cases. And GetX86RegNum reflects that numbering. 420 // For 16-bit addressing it's more fun, as shown in the SDM Vol 2A, 421 // Table 2-1 "16-Bit Addressing Forms with the ModR/M byte". We can only 422 // use SI/DI/BP/BX, which have "row" values 4-7 in no particular order, 423 // while values 0-3 indicate the allowed combinations (base+index) of 424 // those: 0 for BX+SI, 1 for BX+DI, 2 for BP+SI, 3 for BP+DI. 425 // 426 // R16Table[] is a lookup from the normal RegNo, to the row values from 427 // Table 2-1 for 16-bit addressing modes. Where zero means disallowed. 428 static const unsigned R16Table[] = { 0, 0, 0, 7, 0, 6, 4, 5 }; 429 unsigned RMfield = R16Table[BaseRegNo]; 430 431 assert(RMfield && "invalid 16-bit base register"); 432 433 if (IndexReg.getReg()) { 434 unsigned IndexReg16 = R16Table[GetX86RegNum(IndexReg)]; 435 436 assert(IndexReg16 && "invalid 16-bit index register"); 437 // We must have one of SI/DI (4,5), and one of BP/BX (6,7). 438 assert(((IndexReg16 ^ RMfield) & 2) && 439 "invalid 16-bit base/index register combination"); 440 assert(Scale.getImm() == 1 && 441 "invalid scale for 16-bit memory reference"); 442 443 // Allow base/index to appear in either order (although GAS doesn't). 444 if (IndexReg16 & 2) 445 RMfield = (RMfield & 1) | ((7 - IndexReg16) << 1); 446 else 447 RMfield = (IndexReg16 & 1) | ((7 - RMfield) << 1); 448 } 449 450 if (Disp.isImm() && isDisp8(Disp.getImm())) { 451 if (Disp.getImm() == 0 && BaseRegNo != N86::EBP) { 452 // There is no displacement; just the register. 453 EmitByte(ModRMByte(0, RegOpcodeField, RMfield), CurByte, OS); 454 return; 455 } 456 // Use the [REG]+disp8 form, including for [BP] which cannot be encoded. 457 EmitByte(ModRMByte(1, RegOpcodeField, RMfield), CurByte, OS); 458 EmitImmediate(Disp, MI.getLoc(), 1, FK_Data_1, CurByte, OS, Fixups); 459 return; 460 } 461 // This is the [REG]+disp16 case. 462 EmitByte(ModRMByte(2, RegOpcodeField, RMfield), CurByte, OS); 463 } else { 464 // There is no BaseReg; this is the plain [disp16] case. 465 EmitByte(ModRMByte(0, RegOpcodeField, 6), CurByte, OS); 466 } 467 468 // Emit 16-bit displacement for plain disp16 or [REG]+disp16 cases. 469 EmitImmediate(Disp, MI.getLoc(), 2, FK_Data_2, CurByte, OS, Fixups); 470 return; 471 } 472 473 // Determine whether a SIB byte is needed. 474 // If no BaseReg, issue a RIP relative instruction only if the MCE can 475 // resolve addresses on-the-fly, otherwise use SIB (Intel Manual 2A, table 476 // 2-7) and absolute references. 477 478 if (// The SIB byte must be used if there is an index register. 479 IndexReg.getReg() == 0 && 480 // The SIB byte must be used if the base is ESP/RSP/R12, all of which 481 // encode to an R/M value of 4, which indicates that a SIB byte is 482 // present. 483 BaseRegNo != N86::ESP && 484 // If there is no base register and we're in 64-bit mode, we need a SIB 485 // byte to emit an addr that is just 'disp32' (the non-RIP relative form). 486 (!is64BitMode(STI) || BaseReg != 0)) { 487 488 if (BaseReg == 0) { // [disp32] in X86-32 mode 489 EmitByte(ModRMByte(0, RegOpcodeField, 5), CurByte, OS); 490 EmitImmediate(Disp, MI.getLoc(), 4, FK_Data_4, CurByte, OS, Fixups); 491 return; 492 } 493 494 // If the base is not EBP/ESP and there is no displacement, use simple 495 // indirect register encoding, this handles addresses like [EAX]. The 496 // encoding for [EBP] with no displacement means [disp32] so we handle it 497 // by emitting a displacement of 0 below. 498 if (Disp.isImm() && Disp.getImm() == 0 && BaseRegNo != N86::EBP) { 499 EmitByte(ModRMByte(0, RegOpcodeField, BaseRegNo), CurByte, OS); 500 return; 501 } 502 503 // Otherwise, if the displacement fits in a byte, encode as [REG+disp8]. 504 if (Disp.isImm()) { 505 if (!HasEVEX && isDisp8(Disp.getImm())) { 506 EmitByte(ModRMByte(1, RegOpcodeField, BaseRegNo), CurByte, OS); 507 EmitImmediate(Disp, MI.getLoc(), 1, FK_Data_1, CurByte, OS, Fixups); 508 return; 509 } 510 // Try EVEX compressed 8-bit displacement first; if failed, fall back to 511 // 32-bit displacement. 512 int CDisp8 = 0; 513 if (HasEVEX && isCDisp8(TSFlags, Disp.getImm(), CDisp8)) { 514 EmitByte(ModRMByte(1, RegOpcodeField, BaseRegNo), CurByte, OS); 515 EmitImmediate(Disp, MI.getLoc(), 1, FK_Data_1, CurByte, OS, Fixups, 516 CDisp8 - Disp.getImm()); 517 return; 518 } 519 } 520 521 // Otherwise, emit the most general non-SIB encoding: [REG+disp32] 522 EmitByte(ModRMByte(2, RegOpcodeField, BaseRegNo), CurByte, OS); 523 EmitImmediate(Disp, MI.getLoc(), 4, MCFixupKind(X86::reloc_signed_4byte), CurByte, OS, 524 Fixups); 525 return; 526 } 527 528 // We need a SIB byte, so start by outputting the ModR/M byte first 529 assert(IndexReg.getReg() != X86::ESP && 530 IndexReg.getReg() != X86::RSP && "Cannot use ESP as index reg!"); 531 532 bool ForceDisp32 = false; 533 bool ForceDisp8 = false; 534 int CDisp8 = 0; 535 int ImmOffset = 0; 536 if (BaseReg == 0) { 537 // If there is no base register, we emit the special case SIB byte with 538 // MOD=0, BASE=5, to JUST get the index, scale, and displacement. 539 EmitByte(ModRMByte(0, RegOpcodeField, 4), CurByte, OS); 540 ForceDisp32 = true; 541 } else if (!Disp.isImm()) { 542 // Emit the normal disp32 encoding. 543 EmitByte(ModRMByte(2, RegOpcodeField, 4), CurByte, OS); 544 ForceDisp32 = true; 545 } else if (Disp.getImm() == 0 && 546 // Base reg can't be anything that ends up with '5' as the base 547 // reg, it is the magic [*] nomenclature that indicates no base. 548 BaseRegNo != N86::EBP) { 549 // Emit no displacement ModR/M byte 550 EmitByte(ModRMByte(0, RegOpcodeField, 4), CurByte, OS); 551 } else if (!HasEVEX && isDisp8(Disp.getImm())) { 552 // Emit the disp8 encoding. 553 EmitByte(ModRMByte(1, RegOpcodeField, 4), CurByte, OS); 554 ForceDisp8 = true; // Make sure to force 8 bit disp if Base=EBP 555 } else if (HasEVEX && isCDisp8(TSFlags, Disp.getImm(), CDisp8)) { 556 // Emit the disp8 encoding. 557 EmitByte(ModRMByte(1, RegOpcodeField, 4), CurByte, OS); 558 ForceDisp8 = true; // Make sure to force 8 bit disp if Base=EBP 559 ImmOffset = CDisp8 - Disp.getImm(); 560 } else { 561 // Emit the normal disp32 encoding. 562 EmitByte(ModRMByte(2, RegOpcodeField, 4), CurByte, OS); 563 } 564 565 // Calculate what the SS field value should be... 566 static const unsigned SSTable[] = { ~0U, 0, 1, ~0U, 2, ~0U, ~0U, ~0U, 3 }; 567 unsigned SS = SSTable[Scale.getImm()]; 568 569 if (BaseReg == 0) { 570 // Handle the SIB byte for the case where there is no base, see Intel 571 // Manual 2A, table 2-7. The displacement has already been output. 572 unsigned IndexRegNo; 573 if (IndexReg.getReg()) 574 IndexRegNo = GetX86RegNum(IndexReg); 575 else // Examples: [ESP+1*<noreg>+4] or [scaled idx]+disp32 (MOD=0,BASE=5) 576 IndexRegNo = 4; 577 EmitSIBByte(SS, IndexRegNo, 5, CurByte, OS); 578 } else { 579 unsigned IndexRegNo; 580 if (IndexReg.getReg()) 581 IndexRegNo = GetX86RegNum(IndexReg); 582 else 583 IndexRegNo = 4; // For example [ESP+1*<noreg>+4] 584 EmitSIBByte(SS, IndexRegNo, GetX86RegNum(Base), CurByte, OS); 585 } 586 587 // Do we need to output a displacement? 588 if (ForceDisp8) 589 EmitImmediate(Disp, MI.getLoc(), 1, FK_Data_1, CurByte, OS, Fixups, ImmOffset); 590 else if (ForceDisp32 || Disp.getImm() != 0) 591 EmitImmediate(Disp, MI.getLoc(), 4, MCFixupKind(X86::reloc_signed_4byte), 592 CurByte, OS, Fixups); 593 } 594 595 /// EmitVEXOpcodePrefix - AVX instructions are encoded using a opcode prefix 596 /// called VEX. 597 void X86MCCodeEmitter::EmitVEXOpcodePrefix(uint64_t TSFlags, unsigned &CurByte, 598 int MemOperand, const MCInst &MI, 599 const MCInstrDesc &Desc, 600 raw_ostream &OS) const { 601 bool HasEVEX = (TSFlags >> X86II::VEXShift) & X86II::EVEX; 602 bool HasEVEX_K = HasEVEX && ((TSFlags >> X86II::VEXShift) & X86II::EVEX_K); 603 bool HasVEX_4V = (TSFlags >> X86II::VEXShift) & X86II::VEX_4V; 604 bool HasVEX_4VOp3 = (TSFlags >> X86II::VEXShift) & X86II::VEX_4VOp3; 605 bool HasMemOp4 = (TSFlags >> X86II::VEXShift) & X86II::MemOp4; 606 bool HasEVEX_RC = (TSFlags >> X86II::VEXShift) & X86II::EVEX_RC; 607 608 // VEX_R: opcode externsion equivalent to REX.R in 609 // 1's complement (inverted) form 610 // 611 // 1: Same as REX_R=0 (must be 1 in 32-bit mode) 612 // 0: Same as REX_R=1 (64 bit mode only) 613 // 614 unsigned char VEX_R = 0x1; 615 unsigned char EVEX_R2 = 0x1; 616 617 // VEX_X: equivalent to REX.X, only used when a 618 // register is used for index in SIB Byte. 619 // 620 // 1: Same as REX.X=0 (must be 1 in 32-bit mode) 621 // 0: Same as REX.X=1 (64-bit mode only) 622 unsigned char VEX_X = 0x1; 623 624 // VEX_B: 625 // 626 // 1: Same as REX_B=0 (ignored in 32-bit mode) 627 // 0: Same as REX_B=1 (64 bit mode only) 628 // 629 unsigned char VEX_B = 0x1; 630 631 // VEX_W: opcode specific (use like REX.W, or used for 632 // opcode extension, or ignored, depending on the opcode byte) 633 unsigned char VEX_W = 0; 634 635 // XOP: Use XOP prefix byte 0x8f instead of VEX. 636 bool XOP = (TSFlags >> X86II::VEXShift) & X86II::XOP; 637 638 // VEX_5M (VEX m-mmmmm field): 639 // 640 // 0b00000: Reserved for future use 641 // 0b00001: implied 0F leading opcode 642 // 0b00010: implied 0F 38 leading opcode bytes 643 // 0b00011: implied 0F 3A leading opcode bytes 644 // 0b00100-0b11111: Reserved for future use 645 // 0b01000: XOP map select - 08h instructions with imm byte 646 // 0b01001: XOP map select - 09h instructions with no imm byte 647 // 0b01010: XOP map select - 0Ah instructions with imm dword 648 unsigned char VEX_5M = 0x1; 649 650 // VEX_4V (VEX vvvv field): a register specifier 651 // (in 1's complement form) or 1111 if unused. 652 unsigned char VEX_4V = 0xf; 653 unsigned char EVEX_V2 = 0x1; 654 655 // VEX_L (Vector Length): 656 // 657 // 0: scalar or 128-bit vector 658 // 1: 256-bit vector 659 // 660 unsigned char VEX_L = 0; 661 unsigned char EVEX_L2 = 0; 662 663 // VEX_PP: opcode extension providing equivalent 664 // functionality of a SIMD prefix 665 // 666 // 0b00: None 667 // 0b01: 66 668 // 0b10: F3 669 // 0b11: F2 670 // 671 unsigned char VEX_PP = 0; 672 673 // EVEX_U 674 unsigned char EVEX_U = 1; // Always '1' so far 675 676 // EVEX_z 677 unsigned char EVEX_z = 0; 678 679 // EVEX_b 680 unsigned char EVEX_b = 0; 681 682 // EVEX_rc 683 unsigned char EVEX_rc = 0; 684 685 // EVEX_aaa 686 unsigned char EVEX_aaa = 0; 687 688 bool EncodeRC = false; 689 690 if ((TSFlags >> X86II::VEXShift) & X86II::VEX_W) 691 VEX_W = 1; 692 693 if ((TSFlags >> X86II::VEXShift) & X86II::VEX_L) 694 VEX_L = 1; 695 if (HasEVEX && ((TSFlags >> X86II::VEXShift) & X86II::EVEX_L2)) 696 EVEX_L2 = 1; 697 698 if (HasEVEX_K && ((TSFlags >> X86II::VEXShift) & X86II::EVEX_Z)) 699 EVEX_z = 1; 700 701 if (HasEVEX && ((TSFlags >> X86II::VEXShift) & X86II::EVEX_B)) 702 EVEX_b = 1; 703 704 switch (TSFlags & X86II::Op0Mask) { 705 default: llvm_unreachable("Invalid prefix!"); 706 case X86II::T8: // 0F 38 707 VEX_5M = 0x2; 708 break; 709 case X86II::TA: // 0F 3A 710 VEX_5M = 0x3; 711 break; 712 case X86II::T8PD: // 66 0F 38 713 VEX_PP = 0x1; 714 VEX_5M = 0x2; 715 break; 716 case X86II::T8XS: // F3 0F 38 717 VEX_PP = 0x2; 718 VEX_5M = 0x2; 719 break; 720 case X86II::T8XD: // F2 0F 38 721 VEX_PP = 0x3; 722 VEX_5M = 0x2; 723 break; 724 case X86II::TAPD: // 66 0F 3A 725 VEX_PP = 0x1; 726 VEX_5M = 0x3; 727 break; 728 case X86II::TAXD: // F2 0F 3A 729 VEX_PP = 0x3; 730 VEX_5M = 0x3; 731 break; 732 case X86II::PD: // 66 0F 733 VEX_PP = 0x1; 734 break; 735 case X86II::XS: // F3 0F 736 VEX_PP = 0x2; 737 break; 738 case X86II::XD: // F2 0F 739 VEX_PP = 0x3; 740 break; 741 case X86II::XOP8: 742 VEX_5M = 0x8; 743 break; 744 case X86II::XOP9: 745 VEX_5M = 0x9; 746 break; 747 case X86II::XOPA: 748 VEX_5M = 0xA; 749 break; 750 case X86II::TB: // VEX_5M/VEX_PP already correct 751 break; 752 } 753 754 755 // Classify VEX_B, VEX_4V, VEX_R, VEX_X 756 unsigned NumOps = Desc.getNumOperands(); 757 unsigned CurOp = X86II::getOperandBias(Desc); 758 759 switch (TSFlags & X86II::FormMask) { 760 default: llvm_unreachable("Unexpected form in EmitVEXOpcodePrefix!"); 761 case X86II::RawFrm: 762 break; 763 case X86II::MRMDestMem: { 764 // MRMDestMem instructions forms: 765 // MemAddr, src1(ModR/M) 766 // MemAddr, src1(VEX_4V), src2(ModR/M) 767 // MemAddr, src1(ModR/M), imm8 768 // 769 if (X86II::isX86_64ExtendedReg(MI.getOperand(MemOperand + 770 X86::AddrBaseReg).getReg())) 771 VEX_B = 0x0; 772 if (X86II::isX86_64ExtendedReg(MI.getOperand(MemOperand + 773 X86::AddrIndexReg).getReg())) 774 VEX_X = 0x0; 775 if (HasEVEX && X86II::is32ExtendedReg(MI.getOperand(MemOperand + 776 X86::AddrIndexReg).getReg())) 777 EVEX_V2 = 0x0; 778 779 CurOp += X86::AddrNumOperands; 780 781 if (HasEVEX_K) 782 EVEX_aaa = getWriteMaskRegisterEncoding(MI, CurOp++); 783 784 if (HasVEX_4V) { 785 VEX_4V = getVEXRegisterEncoding(MI, CurOp); 786 if (HasEVEX && X86II::is32ExtendedReg(MI.getOperand(CurOp).getReg())) 787 EVEX_V2 = 0x0; 788 CurOp++; 789 } 790 791 const MCOperand &MO = MI.getOperand(CurOp); 792 if (MO.isReg()) { 793 if (X86II::isX86_64ExtendedReg(MO.getReg())) 794 VEX_R = 0x0; 795 if (HasEVEX && X86II::is32ExtendedReg(MO.getReg())) 796 EVEX_R2 = 0x0; 797 } 798 break; 799 } 800 case X86II::MRMSrcMem: 801 // MRMSrcMem instructions forms: 802 // src1(ModR/M), MemAddr 803 // src1(ModR/M), src2(VEX_4V), MemAddr 804 // src1(ModR/M), MemAddr, imm8 805 // src1(ModR/M), MemAddr, src2(VEX_I8IMM) 806 // 807 // FMA4: 808 // dst(ModR/M.reg), src1(VEX_4V), src2(ModR/M), src3(VEX_I8IMM) 809 // dst(ModR/M.reg), src1(VEX_4V), src2(VEX_I8IMM), src3(ModR/M), 810 if (X86II::isX86_64ExtendedReg(MI.getOperand(CurOp).getReg())) 811 VEX_R = 0x0; 812 if (HasEVEX && X86II::is32ExtendedReg(MI.getOperand(CurOp).getReg())) 813 EVEX_R2 = 0x0; 814 CurOp++; 815 816 if (HasEVEX_K) 817 EVEX_aaa = getWriteMaskRegisterEncoding(MI, CurOp++); 818 819 if (HasVEX_4V) { 820 VEX_4V = getVEXRegisterEncoding(MI, CurOp); 821 if (HasEVEX && X86II::is32ExtendedReg(MI.getOperand(CurOp).getReg())) 822 EVEX_V2 = 0x0; 823 CurOp++; 824 } 825 826 if (X86II::isX86_64ExtendedReg( 827 MI.getOperand(MemOperand+X86::AddrBaseReg).getReg())) 828 VEX_B = 0x0; 829 if (X86II::isX86_64ExtendedReg( 830 MI.getOperand(MemOperand+X86::AddrIndexReg).getReg())) 831 VEX_X = 0x0; 832 if (HasEVEX && X86II::is32ExtendedReg(MI.getOperand(MemOperand + 833 X86::AddrIndexReg).getReg())) 834 EVEX_V2 = 0x0; 835 836 if (HasVEX_4VOp3) 837 // Instruction format for 4VOp3: 838 // src1(ModR/M), MemAddr, src3(VEX_4V) 839 // CurOp points to start of the MemoryOperand, 840 // it skips TIED_TO operands if exist, then increments past src1. 841 // CurOp + X86::AddrNumOperands will point to src3. 842 VEX_4V = getVEXRegisterEncoding(MI, CurOp+X86::AddrNumOperands); 843 break; 844 case X86II::MRM0m: case X86II::MRM1m: 845 case X86II::MRM2m: case X86II::MRM3m: 846 case X86II::MRM4m: case X86II::MRM5m: 847 case X86II::MRM6m: case X86II::MRM7m: { 848 // MRM[0-9]m instructions forms: 849 // MemAddr 850 // src1(VEX_4V), MemAddr 851 if (HasVEX_4V) { 852 VEX_4V = getVEXRegisterEncoding(MI, CurOp); 853 if (HasEVEX && X86II::is32ExtendedReg(MI.getOperand(CurOp).getReg())) 854 EVEX_V2 = 0x0; 855 CurOp++; 856 } 857 858 if (HasEVEX_K) 859 EVEX_aaa = getWriteMaskRegisterEncoding(MI, CurOp++); 860 861 if (X86II::isX86_64ExtendedReg( 862 MI.getOperand(MemOperand+X86::AddrBaseReg).getReg())) 863 VEX_B = 0x0; 864 if (X86II::isX86_64ExtendedReg( 865 MI.getOperand(MemOperand+X86::AddrIndexReg).getReg())) 866 VEX_X = 0x0; 867 break; 868 } 869 case X86II::MRMSrcReg: 870 // MRMSrcReg instructions forms: 871 // dst(ModR/M), src1(VEX_4V), src2(ModR/M), src3(VEX_I8IMM) 872 // dst(ModR/M), src1(ModR/M) 873 // dst(ModR/M), src1(ModR/M), imm8 874 // 875 // FMA4: 876 // dst(ModR/M.reg), src1(VEX_4V), src2(ModR/M), src3(VEX_I8IMM) 877 // dst(ModR/M.reg), src1(VEX_4V), src2(VEX_I8IMM), src3(ModR/M), 878 if (X86II::isX86_64ExtendedReg(MI.getOperand(CurOp).getReg())) 879 VEX_R = 0x0; 880 if (HasEVEX && X86II::is32ExtendedReg(MI.getOperand(CurOp).getReg())) 881 EVEX_R2 = 0x0; 882 CurOp++; 883 884 if (HasEVEX_K) 885 EVEX_aaa = getWriteMaskRegisterEncoding(MI, CurOp++); 886 887 if (HasVEX_4V) { 888 VEX_4V = getVEXRegisterEncoding(MI, CurOp); 889 if (HasEVEX && X86II::is32ExtendedReg(MI.getOperand(CurOp).getReg())) 890 EVEX_V2 = 0x0; 891 CurOp++; 892 } 893 894 if (HasMemOp4) // Skip second register source (encoded in I8IMM) 895 CurOp++; 896 897 if (X86II::isX86_64ExtendedReg(MI.getOperand(CurOp).getReg())) 898 VEX_B = 0x0; 899 if (HasEVEX && X86II::is32ExtendedReg(MI.getOperand(CurOp).getReg())) 900 VEX_X = 0x0; 901 CurOp++; 902 if (HasVEX_4VOp3) 903 VEX_4V = getVEXRegisterEncoding(MI, CurOp++); 904 if (EVEX_b) { 905 if (HasEVEX_RC) { 906 unsigned RcOperand = NumOps-1; 907 assert(RcOperand >= CurOp); 908 EVEX_rc = MI.getOperand(RcOperand).getImm() & 0x3; 909 } 910 EncodeRC = true; 911 } 912 break; 913 case X86II::MRMDestReg: 914 // MRMDestReg instructions forms: 915 // dst(ModR/M), src(ModR/M) 916 // dst(ModR/M), src(ModR/M), imm8 917 // dst(ModR/M), src1(VEX_4V), src2(ModR/M) 918 if (X86II::isX86_64ExtendedReg(MI.getOperand(CurOp).getReg())) 919 VEX_B = 0x0; 920 if (HasEVEX && X86II::is32ExtendedReg(MI.getOperand(CurOp).getReg())) 921 VEX_X = 0x0; 922 CurOp++; 923 924 if (HasEVEX_K) 925 EVEX_aaa = getWriteMaskRegisterEncoding(MI, CurOp++); 926 927 if (HasVEX_4V) { 928 VEX_4V = getVEXRegisterEncoding(MI, CurOp); 929 if (HasEVEX && X86II::is32ExtendedReg(MI.getOperand(CurOp).getReg())) 930 EVEX_V2 = 0x0; 931 CurOp++; 932 } 933 934 if (X86II::isX86_64ExtendedReg(MI.getOperand(CurOp).getReg())) 935 VEX_R = 0x0; 936 if (HasEVEX && X86II::is32ExtendedReg(MI.getOperand(CurOp).getReg())) 937 EVEX_R2 = 0x0; 938 if (EVEX_b) 939 EncodeRC = true; 940 break; 941 case X86II::MRM0r: case X86II::MRM1r: 942 case X86II::MRM2r: case X86II::MRM3r: 943 case X86II::MRM4r: case X86II::MRM5r: 944 case X86II::MRM6r: case X86II::MRM7r: 945 // MRM0r-MRM7r instructions forms: 946 // dst(VEX_4V), src(ModR/M), imm8 947 if (HasVEX_4V) { 948 VEX_4V = getVEXRegisterEncoding(MI, CurOp); 949 if (HasEVEX && X86II::is32ExtendedReg(MI.getOperand(CurOp).getReg())) 950 EVEX_V2 = 0x0; 951 CurOp++; 952 } 953 if (HasEVEX_K) 954 EVEX_aaa = getWriteMaskRegisterEncoding(MI, CurOp++); 955 956 if (X86II::isX86_64ExtendedReg(MI.getOperand(CurOp).getReg())) 957 VEX_B = 0x0; 958 if (HasEVEX && X86II::is32ExtendedReg(MI.getOperand(CurOp).getReg())) 959 VEX_X = 0x0; 960 break; 961 } 962 963 // Emit segment override opcode prefix as needed. 964 if (MemOperand >= 0) 965 EmitSegmentOverridePrefix(CurByte, MemOperand+X86::AddrSegmentReg, MI, OS); 966 967 if (!HasEVEX) { 968 // VEX opcode prefix can have 2 or 3 bytes 969 // 970 // 3 bytes: 971 // +-----+ +--------------+ +-------------------+ 972 // | C4h | | RXB | m-mmmm | | W | vvvv | L | pp | 973 // +-----+ +--------------+ +-------------------+ 974 // 2 bytes: 975 // +-----+ +-------------------+ 976 // | C5h | | R | vvvv | L | pp | 977 // +-----+ +-------------------+ 978 // 979 unsigned char LastByte = VEX_PP | (VEX_L << 2) | (VEX_4V << 3); 980 981 if (VEX_B && VEX_X && !VEX_W && !XOP && (VEX_5M == 1)) { // 2 byte VEX prefix 982 EmitByte(0xC5, CurByte, OS); 983 EmitByte(LastByte | (VEX_R << 7), CurByte, OS); 984 return; 985 } 986 987 // 3 byte VEX prefix 988 EmitByte(XOP ? 0x8F : 0xC4, CurByte, OS); 989 EmitByte(VEX_R << 7 | VEX_X << 6 | VEX_B << 5 | VEX_5M, CurByte, OS); 990 EmitByte(LastByte | (VEX_W << 7), CurByte, OS); 991 } else { 992 // EVEX opcode prefix can have 4 bytes 993 // 994 // +-----+ +--------------+ +-------------------+ +------------------------+ 995 // | 62h | | RXBR' | 00mm | | W | vvvv | U | pp | | z | L'L | b | v' | aaa | 996 // +-----+ +--------------+ +-------------------+ +------------------------+ 997 assert((VEX_5M & 0x3) == VEX_5M 998 && "More than 2 significant bits in VEX.m-mmmm fields for EVEX!"); 999 1000 VEX_5M &= 0x3; 1001 1002 EmitByte(0x62, CurByte, OS); 1003 EmitByte((VEX_R << 7) | 1004 (VEX_X << 6) | 1005 (VEX_B << 5) | 1006 (EVEX_R2 << 4) | 1007 VEX_5M, CurByte, OS); 1008 EmitByte((VEX_W << 7) | 1009 (VEX_4V << 3) | 1010 (EVEX_U << 2) | 1011 VEX_PP, CurByte, OS); 1012 if (EncodeRC) 1013 EmitByte((EVEX_z << 7) | 1014 (EVEX_rc << 5) | 1015 (EVEX_b << 4) | 1016 (EVEX_V2 << 3) | 1017 EVEX_aaa, CurByte, OS); 1018 else 1019 EmitByte((EVEX_z << 7) | 1020 (EVEX_L2 << 6) | 1021 (VEX_L << 5) | 1022 (EVEX_b << 4) | 1023 (EVEX_V2 << 3) | 1024 EVEX_aaa, CurByte, OS); 1025 } 1026 } 1027 1028 /// DetermineREXPrefix - Determine if the MCInst has to be encoded with a X86-64 1029 /// REX prefix which specifies 1) 64-bit instructions, 2) non-default operand 1030 /// size, and 3) use of X86-64 extended registers. 1031 static unsigned DetermineREXPrefix(const MCInst &MI, uint64_t TSFlags, 1032 const MCInstrDesc &Desc) { 1033 unsigned REX = 0; 1034 if (TSFlags & X86II::REX_W) 1035 REX |= 1 << 3; // set REX.W 1036 1037 if (MI.getNumOperands() == 0) return REX; 1038 1039 unsigned NumOps = MI.getNumOperands(); 1040 // FIXME: MCInst should explicitize the two-addrness. 1041 bool isTwoAddr = NumOps > 1 && 1042 Desc.getOperandConstraint(1, MCOI::TIED_TO) != -1; 1043 1044 // If it accesses SPL, BPL, SIL, or DIL, then it requires a 0x40 REX prefix. 1045 unsigned i = isTwoAddr ? 1 : 0; 1046 for (; i != NumOps; ++i) { 1047 const MCOperand &MO = MI.getOperand(i); 1048 if (!MO.isReg()) continue; 1049 unsigned Reg = MO.getReg(); 1050 if (!X86II::isX86_64NonExtLowByteReg(Reg)) continue; 1051 // FIXME: The caller of DetermineREXPrefix slaps this prefix onto anything 1052 // that returns non-zero. 1053 REX |= 0x40; // REX fixed encoding prefix 1054 break; 1055 } 1056 1057 switch (TSFlags & X86II::FormMask) { 1058 case X86II::MRMSrcReg: 1059 if (MI.getOperand(0).isReg() && 1060 X86II::isX86_64ExtendedReg(MI.getOperand(0).getReg())) 1061 REX |= 1 << 2; // set REX.R 1062 i = isTwoAddr ? 2 : 1; 1063 for (; i != NumOps; ++i) { 1064 const MCOperand &MO = MI.getOperand(i); 1065 if (MO.isReg() && X86II::isX86_64ExtendedReg(MO.getReg())) 1066 REX |= 1 << 0; // set REX.B 1067 } 1068 break; 1069 case X86II::MRMSrcMem: { 1070 if (MI.getOperand(0).isReg() && 1071 X86II::isX86_64ExtendedReg(MI.getOperand(0).getReg())) 1072 REX |= 1 << 2; // set REX.R 1073 unsigned Bit = 0; 1074 i = isTwoAddr ? 2 : 1; 1075 for (; i != NumOps; ++i) { 1076 const MCOperand &MO = MI.getOperand(i); 1077 if (MO.isReg()) { 1078 if (X86II::isX86_64ExtendedReg(MO.getReg())) 1079 REX |= 1 << Bit; // set REX.B (Bit=0) and REX.X (Bit=1) 1080 Bit++; 1081 } 1082 } 1083 break; 1084 } 1085 case X86II::MRM0m: case X86II::MRM1m: 1086 case X86II::MRM2m: case X86II::MRM3m: 1087 case X86II::MRM4m: case X86II::MRM5m: 1088 case X86II::MRM6m: case X86II::MRM7m: 1089 case X86II::MRMDestMem: { 1090 unsigned e = (isTwoAddr ? X86::AddrNumOperands+1 : X86::AddrNumOperands); 1091 i = isTwoAddr ? 1 : 0; 1092 if (NumOps > e && MI.getOperand(e).isReg() && 1093 X86II::isX86_64ExtendedReg(MI.getOperand(e).getReg())) 1094 REX |= 1 << 2; // set REX.R 1095 unsigned Bit = 0; 1096 for (; i != e; ++i) { 1097 const MCOperand &MO = MI.getOperand(i); 1098 if (MO.isReg()) { 1099 if (X86II::isX86_64ExtendedReg(MO.getReg())) 1100 REX |= 1 << Bit; // REX.B (Bit=0) and REX.X (Bit=1) 1101 Bit++; 1102 } 1103 } 1104 break; 1105 } 1106 default: 1107 if (MI.getOperand(0).isReg() && 1108 X86II::isX86_64ExtendedReg(MI.getOperand(0).getReg())) 1109 REX |= 1 << 0; // set REX.B 1110 i = isTwoAddr ? 2 : 1; 1111 for (unsigned e = NumOps; i != e; ++i) { 1112 const MCOperand &MO = MI.getOperand(i); 1113 if (MO.isReg() && X86II::isX86_64ExtendedReg(MO.getReg())) 1114 REX |= 1 << 2; // set REX.R 1115 } 1116 break; 1117 } 1118 return REX; 1119 } 1120 1121 /// EmitSegmentOverridePrefix - Emit segment override opcode prefix as needed 1122 void X86MCCodeEmitter::EmitSegmentOverridePrefix(unsigned &CurByte, 1123 unsigned SegOperand, 1124 const MCInst &MI, 1125 raw_ostream &OS) const { 1126 // Check for explicit segment override on memory operand. 1127 switch (MI.getOperand(SegOperand).getReg()) { 1128 default: llvm_unreachable("Unknown segment register!"); 1129 case 0: break; 1130 case X86::CS: EmitByte(0x2E, CurByte, OS); break; 1131 case X86::SS: EmitByte(0x36, CurByte, OS); break; 1132 case X86::DS: EmitByte(0x3E, CurByte, OS); break; 1133 case X86::ES: EmitByte(0x26, CurByte, OS); break; 1134 case X86::FS: EmitByte(0x64, CurByte, OS); break; 1135 case X86::GS: EmitByte(0x65, CurByte, OS); break; 1136 } 1137 } 1138 1139 /// EmitOpcodePrefix - Emit all instruction prefixes prior to the opcode. 1140 /// 1141 /// MemOperand is the operand # of the start of a memory operand if present. If 1142 /// Not present, it is -1. 1143 void X86MCCodeEmitter::EmitOpcodePrefix(uint64_t TSFlags, unsigned &CurByte, 1144 int MemOperand, const MCInst &MI, 1145 const MCInstrDesc &Desc, 1146 const MCSubtargetInfo &STI, 1147 raw_ostream &OS) const { 1148 1149 // Emit the lock opcode prefix as needed. 1150 if (TSFlags & X86II::LOCK) 1151 EmitByte(0xF0, CurByte, OS); 1152 1153 // Emit segment override opcode prefix as needed. 1154 if (MemOperand >= 0) 1155 EmitSegmentOverridePrefix(CurByte, MemOperand+X86::AddrSegmentReg, MI, OS); 1156 1157 // Emit the repeat opcode prefix as needed. 1158 if ((TSFlags & X86II::Op0Mask) == X86II::REP) 1159 EmitByte(0xF3, CurByte, OS); 1160 1161 // Emit the address size opcode prefix as needed. 1162 bool need_address_override; 1163 // The AdSize prefix is only for 32-bit and 64-bit modes. Hm, perhaps we 1164 // should introduce an AdSize16 bit instead of having seven special cases? 1165 if ((!is16BitMode(STI) && TSFlags & X86II::AdSize) || 1166 (is16BitMode(STI) && (MI.getOpcode() == X86::JECXZ_32 || 1167 MI.getOpcode() == X86::MOV8o8a || 1168 MI.getOpcode() == X86::MOV16o16a || 1169 MI.getOpcode() == X86::MOV32o32a || 1170 MI.getOpcode() == X86::MOV8ao8 || 1171 MI.getOpcode() == X86::MOV16ao16 || 1172 MI.getOpcode() == X86::MOV32ao32))) { 1173 need_address_override = true; 1174 } else if (MemOperand == -1) { 1175 need_address_override = false; 1176 } else if (is64BitMode(STI)) { 1177 assert(!Is16BitMemOperand(MI, MemOperand, STI)); 1178 need_address_override = Is32BitMemOperand(MI, MemOperand); 1179 } else if (is32BitMode(STI)) { 1180 assert(!Is64BitMemOperand(MI, MemOperand)); 1181 need_address_override = Is16BitMemOperand(MI, MemOperand, STI); 1182 } else { 1183 assert(is16BitMode(STI)); 1184 assert(!Is64BitMemOperand(MI, MemOperand)); 1185 need_address_override = !Is16BitMemOperand(MI, MemOperand, STI); 1186 } 1187 1188 if (need_address_override) 1189 EmitByte(0x67, CurByte, OS); 1190 1191 // Emit the operand size opcode prefix as needed. 1192 if (TSFlags & (is16BitMode(STI) ? X86II::OpSize16 : X86II::OpSize)) 1193 EmitByte(0x66, CurByte, OS); 1194 1195 bool Need0FPrefix = false; 1196 switch (TSFlags & X86II::Op0Mask) { 1197 default: llvm_unreachable("Invalid prefix!"); 1198 case 0: break; // No prefix! 1199 case X86II::REP: break; // already handled. 1200 case X86II::TB: // Two-byte opcode prefix 1201 case X86II::T8: // 0F 38 1202 case X86II::TA: // 0F 3A 1203 case X86II::A6: // 0F A6 1204 case X86II::A7: // 0F A7 1205 Need0FPrefix = true; 1206 break; 1207 case X86II::PD: // 66 0F 1208 case X86II::T8PD: // 66 0F 38 1209 case X86II::TAPD: // 66 0F 3A 1210 EmitByte(0x66, CurByte, OS); 1211 Need0FPrefix = true; 1212 break; 1213 case X86II::XS: // F3 0F 1214 case X86II::T8XS: // F3 0F 38 1215 EmitByte(0xF3, CurByte, OS); 1216 Need0FPrefix = true; 1217 break; 1218 case X86II::XD: // F2 0F 1219 case X86II::T8XD: // F2 0F 38 1220 case X86II::TAXD: // F2 0F 3A 1221 EmitByte(0xF2, CurByte, OS); 1222 Need0FPrefix = true; 1223 break; 1224 case X86II::D8: 1225 case X86II::D9: 1226 case X86II::DA: 1227 case X86II::DB: 1228 case X86II::DC: 1229 case X86II::DD: 1230 case X86II::DE: 1231 case X86II::DF: 1232 EmitByte(0xD8+(((TSFlags & X86II::Op0Mask) - X86II::D8) >> X86II::Op0Shift), 1233 CurByte, OS); 1234 break; 1235 } 1236 1237 // Handle REX prefix. 1238 // FIXME: Can this come before F2 etc to simplify emission? 1239 if (is64BitMode(STI)) { 1240 if (unsigned REX = DetermineREXPrefix(MI, TSFlags, Desc)) 1241 EmitByte(0x40 | REX, CurByte, OS); 1242 } 1243 1244 // 0x0F escape code must be emitted just before the opcode. 1245 if (Need0FPrefix) 1246 EmitByte(0x0F, CurByte, OS); 1247 1248 // FIXME: Pull this up into previous switch if REX can be moved earlier. 1249 switch (TSFlags & X86II::Op0Mask) { 1250 case X86II::T8PD: // 66 0F 38 1251 case X86II::T8XS: // F3 0F 38 1252 case X86II::T8XD: // F2 0F 38 1253 case X86II::T8: // 0F 38 1254 EmitByte(0x38, CurByte, OS); 1255 break; 1256 case X86II::TAPD: // 66 0F 3A 1257 case X86II::TAXD: // F2 0F 3A 1258 case X86II::TA: // 0F 3A 1259 EmitByte(0x3A, CurByte, OS); 1260 break; 1261 case X86II::A6: // 0F A6 1262 EmitByte(0xA6, CurByte, OS); 1263 break; 1264 case X86II::A7: // 0F A7 1265 EmitByte(0xA7, CurByte, OS); 1266 break; 1267 } 1268 } 1269 1270 void X86MCCodeEmitter:: 1271 EncodeInstruction(const MCInst &MI, raw_ostream &OS, 1272 SmallVectorImpl<MCFixup> &Fixups, 1273 const MCSubtargetInfo &STI) const { 1274 unsigned Opcode = MI.getOpcode(); 1275 const MCInstrDesc &Desc = MCII.get(Opcode); 1276 uint64_t TSFlags = Desc.TSFlags; 1277 1278 // Pseudo instructions don't get encoded. 1279 if ((TSFlags & X86II::FormMask) == X86II::Pseudo) 1280 return; 1281 1282 unsigned NumOps = Desc.getNumOperands(); 1283 unsigned CurOp = X86II::getOperandBias(Desc); 1284 1285 // Keep track of the current byte being emitted. 1286 unsigned CurByte = 0; 1287 1288 // Is this instruction encoded using the AVX VEX prefix? 1289 bool HasVEXPrefix = (TSFlags >> X86II::VEXShift) & X86II::VEX; 1290 1291 // It uses the VEX.VVVV field? 1292 bool HasVEX_4V = (TSFlags >> X86II::VEXShift) & X86II::VEX_4V; 1293 bool HasVEX_4VOp3 = (TSFlags >> X86II::VEXShift) & X86II::VEX_4VOp3; 1294 bool HasMemOp4 = (TSFlags >> X86II::VEXShift) & X86II::MemOp4; 1295 const unsigned MemOp4_I8IMMOperand = 2; 1296 1297 // It uses the EVEX.aaa field? 1298 bool HasEVEX = (TSFlags >> X86II::VEXShift) & X86II::EVEX; 1299 bool HasEVEX_K = HasEVEX && ((TSFlags >> X86II::VEXShift) & X86II::EVEX_K); 1300 bool HasEVEX_RC = HasEVEX && ((TSFlags >> X86II::VEXShift) & X86II::EVEX_RC); 1301 1302 // Determine where the memory operand starts, if present. 1303 int MemoryOperand = X86II::getMemoryOperandNo(TSFlags, Opcode); 1304 if (MemoryOperand != -1) MemoryOperand += CurOp; 1305 1306 if (!HasVEXPrefix) 1307 EmitOpcodePrefix(TSFlags, CurByte, MemoryOperand, MI, Desc, STI, OS); 1308 else 1309 EmitVEXOpcodePrefix(TSFlags, CurByte, MemoryOperand, MI, Desc, OS); 1310 1311 unsigned char BaseOpcode = X86II::getBaseOpcodeFor(TSFlags); 1312 1313 if ((TSFlags >> X86II::VEXShift) & X86II::Has3DNow0F0FOpcode) 1314 BaseOpcode = 0x0F; // Weird 3DNow! encoding. 1315 1316 unsigned SrcRegNum = 0; 1317 switch (TSFlags & X86II::FormMask) { 1318 default: errs() << "FORM: " << (TSFlags & X86II::FormMask) << "\n"; 1319 llvm_unreachable("Unknown FormMask value in X86MCCodeEmitter!"); 1320 case X86II::Pseudo: 1321 llvm_unreachable("Pseudo instruction shouldn't be emitted"); 1322 case X86II::RawFrmDstSrc: { 1323 unsigned siReg = MI.getOperand(1).getReg(); 1324 assert(((siReg == X86::SI && MI.getOperand(0).getReg() == X86::DI) || 1325 (siReg == X86::ESI && MI.getOperand(0).getReg() == X86::EDI) || 1326 (siReg == X86::RSI && MI.getOperand(0).getReg() == X86::RDI)) && 1327 "SI and DI register sizes do not match"); 1328 // Emit segment override opcode prefix as needed (not for %ds). 1329 if (MI.getOperand(2).getReg() != X86::DS) 1330 EmitSegmentOverridePrefix(CurByte, 2, MI, OS); 1331 // Emit OpSize prefix as needed. 1332 if ((!is32BitMode(STI) && siReg == X86::ESI) || 1333 (is32BitMode(STI) && siReg == X86::SI)) 1334 EmitByte(0x67, CurByte, OS); 1335 CurOp += 3; // Consume operands. 1336 EmitByte(BaseOpcode, CurByte, OS); 1337 break; 1338 } 1339 case X86II::RawFrmSrc: { 1340 unsigned siReg = MI.getOperand(0).getReg(); 1341 // Emit segment override opcode prefix as needed (not for %ds). 1342 if (MI.getOperand(1).getReg() != X86::DS) 1343 EmitSegmentOverridePrefix(CurByte, 1, MI, OS); 1344 // Emit OpSize prefix as needed. 1345 if ((!is32BitMode(STI) && siReg == X86::ESI) || 1346 (is32BitMode(STI) && siReg == X86::SI)) 1347 EmitByte(0x67, CurByte, OS); 1348 CurOp += 2; // Consume operands. 1349 EmitByte(BaseOpcode, CurByte, OS); 1350 break; 1351 } 1352 case X86II::RawFrmDst: { 1353 unsigned siReg = MI.getOperand(0).getReg(); 1354 // Emit OpSize prefix as needed. 1355 if ((!is32BitMode(STI) && siReg == X86::EDI) || 1356 (is32BitMode(STI) && siReg == X86::DI)) 1357 EmitByte(0x67, CurByte, OS); 1358 ++CurOp; // Consume operand. 1359 EmitByte(BaseOpcode, CurByte, OS); 1360 break; 1361 } 1362 case X86II::RawFrm: 1363 EmitByte(BaseOpcode, CurByte, OS); 1364 break; 1365 case X86II::RawFrmMemOffs: 1366 // Emit segment override opcode prefix as needed. 1367 EmitSegmentOverridePrefix(CurByte, 1, MI, OS); 1368 EmitByte(BaseOpcode, CurByte, OS); 1369 EmitImmediate(MI.getOperand(CurOp++), MI.getLoc(), 1370 X86II::getSizeOfImm(TSFlags), getImmFixupKind(TSFlags), 1371 CurByte, OS, Fixups); 1372 ++CurOp; // skip segment operand 1373 break; 1374 case X86II::RawFrmImm8: 1375 EmitByte(BaseOpcode, CurByte, OS); 1376 EmitImmediate(MI.getOperand(CurOp++), MI.getLoc(), 1377 X86II::getSizeOfImm(TSFlags), getImmFixupKind(TSFlags), 1378 CurByte, OS, Fixups); 1379 EmitImmediate(MI.getOperand(CurOp++), MI.getLoc(), 1, FK_Data_1, CurByte, 1380 OS, Fixups); 1381 break; 1382 case X86II::RawFrmImm16: 1383 EmitByte(BaseOpcode, CurByte, OS); 1384 EmitImmediate(MI.getOperand(CurOp++), MI.getLoc(), 1385 X86II::getSizeOfImm(TSFlags), getImmFixupKind(TSFlags), 1386 CurByte, OS, Fixups); 1387 EmitImmediate(MI.getOperand(CurOp++), MI.getLoc(), 2, FK_Data_2, CurByte, 1388 OS, Fixups); 1389 break; 1390 1391 case X86II::AddRegFrm: 1392 EmitByte(BaseOpcode + GetX86RegNum(MI.getOperand(CurOp++)), CurByte, OS); 1393 break; 1394 1395 case X86II::MRMDestReg: 1396 EmitByte(BaseOpcode, CurByte, OS); 1397 SrcRegNum = CurOp + 1; 1398 1399 if (HasEVEX_K) // Skip writemask 1400 SrcRegNum++; 1401 1402 if (HasVEX_4V) // Skip 1st src (which is encoded in VEX_VVVV) 1403 ++SrcRegNum; 1404 1405 EmitRegModRMByte(MI.getOperand(CurOp), 1406 GetX86RegNum(MI.getOperand(SrcRegNum)), CurByte, OS); 1407 CurOp = SrcRegNum + 1; 1408 break; 1409 1410 case X86II::MRMDestMem: 1411 EmitByte(BaseOpcode, CurByte, OS); 1412 SrcRegNum = CurOp + X86::AddrNumOperands; 1413 1414 if (HasEVEX_K) // Skip writemask 1415 SrcRegNum++; 1416 1417 if (HasVEX_4V) // Skip 1st src (which is encoded in VEX_VVVV) 1418 ++SrcRegNum; 1419 1420 EmitMemModRMByte(MI, CurOp, 1421 GetX86RegNum(MI.getOperand(SrcRegNum)), 1422 TSFlags, CurByte, OS, Fixups, STI); 1423 CurOp = SrcRegNum + 1; 1424 break; 1425 1426 case X86II::MRMSrcReg: 1427 EmitByte(BaseOpcode, CurByte, OS); 1428 SrcRegNum = CurOp + 1; 1429 1430 if (HasEVEX_K) // Skip writemask 1431 SrcRegNum++; 1432 1433 if (HasVEX_4V) // Skip 1st src (which is encoded in VEX_VVVV) 1434 ++SrcRegNum; 1435 1436 if (HasMemOp4) // Skip 2nd src (which is encoded in I8IMM) 1437 ++SrcRegNum; 1438 1439 EmitRegModRMByte(MI.getOperand(SrcRegNum), 1440 GetX86RegNum(MI.getOperand(CurOp)), CurByte, OS); 1441 1442 // 2 operands skipped with HasMemOp4, compensate accordingly 1443 CurOp = HasMemOp4 ? SrcRegNum : SrcRegNum + 1; 1444 if (HasVEX_4VOp3) 1445 ++CurOp; 1446 // do not count the rounding control operand 1447 if (HasEVEX_RC) 1448 NumOps--; 1449 break; 1450 1451 case X86II::MRMSrcMem: { 1452 int AddrOperands = X86::AddrNumOperands; 1453 unsigned FirstMemOp = CurOp+1; 1454 1455 if (HasEVEX_K) { // Skip writemask 1456 ++AddrOperands; 1457 ++FirstMemOp; 1458 } 1459 1460 if (HasVEX_4V) { 1461 ++AddrOperands; 1462 ++FirstMemOp; // Skip the register source (which is encoded in VEX_VVVV). 1463 } 1464 if (HasMemOp4) // Skip second register source (encoded in I8IMM) 1465 ++FirstMemOp; 1466 1467 EmitByte(BaseOpcode, CurByte, OS); 1468 1469 EmitMemModRMByte(MI, FirstMemOp, GetX86RegNum(MI.getOperand(CurOp)), 1470 TSFlags, CurByte, OS, Fixups, STI); 1471 CurOp += AddrOperands + 1; 1472 if (HasVEX_4VOp3) 1473 ++CurOp; 1474 break; 1475 } 1476 1477 case X86II::MRM0r: case X86II::MRM1r: 1478 case X86II::MRM2r: case X86II::MRM3r: 1479 case X86II::MRM4r: case X86II::MRM5r: 1480 case X86II::MRM6r: case X86II::MRM7r: 1481 if (HasVEX_4V) // Skip the register dst (which is encoded in VEX_VVVV). 1482 ++CurOp; 1483 EmitByte(BaseOpcode, CurByte, OS); 1484 EmitRegModRMByte(MI.getOperand(CurOp++), 1485 (TSFlags & X86II::FormMask)-X86II::MRM0r, 1486 CurByte, OS); 1487 break; 1488 case X86II::MRM0m: case X86II::MRM1m: 1489 case X86II::MRM2m: case X86II::MRM3m: 1490 case X86II::MRM4m: case X86II::MRM5m: 1491 case X86II::MRM6m: case X86II::MRM7m: 1492 if (HasVEX_4V) // Skip the register dst (which is encoded in VEX_VVVV). 1493 ++CurOp; 1494 EmitByte(BaseOpcode, CurByte, OS); 1495 EmitMemModRMByte(MI, CurOp, (TSFlags & X86II::FormMask)-X86II::MRM0m, 1496 TSFlags, CurByte, OS, Fixups, STI); 1497 CurOp += X86::AddrNumOperands; 1498 break; 1499 case X86II::MRM_C1: case X86II::MRM_C2: case X86II::MRM_C3: 1500 case X86II::MRM_C4: case X86II::MRM_C8: case X86II::MRM_C9: 1501 case X86II::MRM_CA: case X86II::MRM_CB: case X86II::MRM_D0: 1502 case X86II::MRM_D1: case X86II::MRM_D4: case X86II::MRM_D5: 1503 case X86II::MRM_D6: case X86II::MRM_D8: case X86II::MRM_D9: 1504 case X86II::MRM_DA: case X86II::MRM_DB: case X86II::MRM_DC: 1505 case X86II::MRM_DD: case X86II::MRM_DE: case X86II::MRM_DF: 1506 case X86II::MRM_E8: case X86II::MRM_F0: case X86II::MRM_F8: 1507 case X86II::MRM_F9: 1508 EmitByte(BaseOpcode, CurByte, OS); 1509 1510 unsigned char MRM; 1511 switch (TSFlags & X86II::FormMask) { 1512 default: llvm_unreachable("Invalid Form"); 1513 case X86II::MRM_C1: MRM = 0xC1; break; 1514 case X86II::MRM_C2: MRM = 0xC2; break; 1515 case X86II::MRM_C3: MRM = 0xC3; break; 1516 case X86II::MRM_C4: MRM = 0xC4; break; 1517 case X86II::MRM_C8: MRM = 0xC8; break; 1518 case X86II::MRM_C9: MRM = 0xC9; break; 1519 case X86II::MRM_CA: MRM = 0xCA; break; 1520 case X86II::MRM_CB: MRM = 0xCB; break; 1521 case X86II::MRM_D0: MRM = 0xD0; break; 1522 case X86II::MRM_D1: MRM = 0xD1; break; 1523 case X86II::MRM_D4: MRM = 0xD4; break; 1524 case X86II::MRM_D5: MRM = 0xD5; break; 1525 case X86II::MRM_D6: MRM = 0xD6; break; 1526 case X86II::MRM_D8: MRM = 0xD8; break; 1527 case X86II::MRM_D9: MRM = 0xD9; break; 1528 case X86II::MRM_DA: MRM = 0xDA; break; 1529 case X86II::MRM_DB: MRM = 0xDB; break; 1530 case X86II::MRM_DC: MRM = 0xDC; break; 1531 case X86II::MRM_DD: MRM = 0xDD; break; 1532 case X86II::MRM_DE: MRM = 0xDE; break; 1533 case X86II::MRM_DF: MRM = 0xDF; break; 1534 case X86II::MRM_E8: MRM = 0xE8; break; 1535 case X86II::MRM_F0: MRM = 0xF0; break; 1536 case X86II::MRM_F8: MRM = 0xF8; break; 1537 case X86II::MRM_F9: MRM = 0xF9; break; 1538 } 1539 EmitByte(MRM, CurByte, OS); 1540 break; 1541 } 1542 1543 // If there is a remaining operand, it must be a trailing immediate. Emit it 1544 // according to the right size for the instruction. Some instructions 1545 // (SSE4a extrq and insertq) have two trailing immediates. 1546 while (CurOp != NumOps && NumOps - CurOp <= 2) { 1547 // The last source register of a 4 operand instruction in AVX is encoded 1548 // in bits[7:4] of a immediate byte. 1549 if ((TSFlags >> X86II::VEXShift) & X86II::VEX_I8IMM) { 1550 const MCOperand &MO = MI.getOperand(HasMemOp4 ? MemOp4_I8IMMOperand 1551 : CurOp); 1552 ++CurOp; 1553 unsigned RegNum = GetX86RegNum(MO) << 4; 1554 if (X86II::isX86_64ExtendedReg(MO.getReg())) 1555 RegNum |= 1 << 7; 1556 // If there is an additional 5th operand it must be an immediate, which 1557 // is encoded in bits[3:0] 1558 if (CurOp != NumOps) { 1559 const MCOperand &MIMM = MI.getOperand(CurOp++); 1560 if (MIMM.isImm()) { 1561 unsigned Val = MIMM.getImm(); 1562 assert(Val < 16 && "Immediate operand value out of range"); 1563 RegNum |= Val; 1564 } 1565 } 1566 EmitImmediate(MCOperand::CreateImm(RegNum), MI.getLoc(), 1, FK_Data_1, 1567 CurByte, OS, Fixups); 1568 } else { 1569 unsigned FixupKind; 1570 // FIXME: Is there a better way to know that we need a signed relocation? 1571 if (MI.getOpcode() == X86::ADD64ri32 || 1572 MI.getOpcode() == X86::MOV64ri32 || 1573 MI.getOpcode() == X86::MOV64mi32 || 1574 MI.getOpcode() == X86::PUSH64i32) 1575 FixupKind = X86::reloc_signed_4byte; 1576 else 1577 FixupKind = getImmFixupKind(TSFlags); 1578 EmitImmediate(MI.getOperand(CurOp++), MI.getLoc(), 1579 X86II::getSizeOfImm(TSFlags), MCFixupKind(FixupKind), 1580 CurByte, OS, Fixups); 1581 } 1582 } 1583 1584 if ((TSFlags >> X86II::VEXShift) & X86II::Has3DNow0F0FOpcode) 1585 EmitByte(X86II::getBaseOpcodeFor(TSFlags), CurByte, OS); 1586 1587 #ifndef NDEBUG 1588 // FIXME: Verify. 1589 if (/*!Desc.isVariadic() &&*/ CurOp != NumOps) { 1590 errs() << "Cannot encode all operands of: "; 1591 MI.dump(); 1592 errs() << '\n'; 1593 abort(); 1594 } 1595 #endif 1596 } 1597