1 //===-- X86MCInstLower.cpp - Convert X86 MachineInstr to an MCInst --------===// 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 contains code to lower X86 MachineInstrs to their corresponding 11 // MCInst records. 12 // 13 //===----------------------------------------------------------------------===// 14 15 #include "InstPrinter/X86ATTInstPrinter.h" 16 #include "InstPrinter/X86InstComments.h" 17 #include "MCTargetDesc/X86BaseInfo.h" 18 #include "Utils/X86ShuffleDecode.h" 19 #include "X86AsmPrinter.h" 20 #include "X86RegisterInfo.h" 21 #include "X86ShuffleDecodeConstantPool.h" 22 #include "llvm/ADT/Optional.h" 23 #include "llvm/ADT/SmallString.h" 24 #include "llvm/ADT/iterator_range.h" 25 #include "llvm/BinaryFormat/ELF.h" 26 #include "llvm/CodeGen/MachineConstantPool.h" 27 #include "llvm/CodeGen/MachineFunction.h" 28 #include "llvm/CodeGen/MachineModuleInfoImpls.h" 29 #include "llvm/CodeGen/MachineOperand.h" 30 #include "llvm/CodeGen/StackMaps.h" 31 #include "llvm/IR/DataLayout.h" 32 #include "llvm/IR/GlobalValue.h" 33 #include "llvm/IR/Mangler.h" 34 #include "llvm/MC/MCAsmInfo.h" 35 #include "llvm/MC/MCCodeEmitter.h" 36 #include "llvm/MC/MCContext.h" 37 #include "llvm/MC/MCExpr.h" 38 #include "llvm/MC/MCFixup.h" 39 #include "llvm/MC/MCInst.h" 40 #include "llvm/MC/MCInstBuilder.h" 41 #include "llvm/MC/MCSection.h" 42 #include "llvm/MC/MCSectionELF.h" 43 #include "llvm/MC/MCSectionMachO.h" 44 #include "llvm/MC/MCStreamer.h" 45 #include "llvm/MC/MCSymbol.h" 46 #include "llvm/MC/MCSymbolELF.h" 47 #include "llvm/Support/TargetRegistry.h" 48 #include "llvm/Target/TargetLoweringObjectFile.h" 49 50 using namespace llvm; 51 52 namespace { 53 54 /// X86MCInstLower - This class is used to lower an MachineInstr into an MCInst. 55 class X86MCInstLower { 56 MCContext &Ctx; 57 const MachineFunction &MF; 58 const TargetMachine &TM; 59 const MCAsmInfo &MAI; 60 X86AsmPrinter &AsmPrinter; 61 public: 62 X86MCInstLower(const MachineFunction &MF, X86AsmPrinter &asmprinter); 63 64 Optional<MCOperand> LowerMachineOperand(const MachineInstr *MI, 65 const MachineOperand &MO) const; 66 void Lower(const MachineInstr *MI, MCInst &OutMI) const; 67 68 MCSymbol *GetSymbolFromOperand(const MachineOperand &MO) const; 69 MCOperand LowerSymbolOperand(const MachineOperand &MO, MCSymbol *Sym) const; 70 71 private: 72 MachineModuleInfoMachO &getMachOMMI() const; 73 }; 74 75 } // end anonymous namespace 76 77 // Emit a minimal sequence of nops spanning NumBytes bytes. 78 static void EmitNops(MCStreamer &OS, unsigned NumBytes, bool Is64Bit, 79 const MCSubtargetInfo &STI); 80 81 void X86AsmPrinter::StackMapShadowTracker::count(MCInst &Inst, 82 const MCSubtargetInfo &STI, 83 MCCodeEmitter *CodeEmitter) { 84 if (InShadow) { 85 SmallString<256> Code; 86 SmallVector<MCFixup, 4> Fixups; 87 raw_svector_ostream VecOS(Code); 88 CodeEmitter->encodeInstruction(Inst, VecOS, Fixups, STI); 89 CurrentShadowSize += Code.size(); 90 if (CurrentShadowSize >= RequiredShadowSize) 91 InShadow = false; // The shadow is big enough. Stop counting. 92 } 93 } 94 95 void X86AsmPrinter::StackMapShadowTracker::emitShadowPadding( 96 MCStreamer &OutStreamer, const MCSubtargetInfo &STI) { 97 if (InShadow && CurrentShadowSize < RequiredShadowSize) { 98 InShadow = false; 99 EmitNops(OutStreamer, RequiredShadowSize - CurrentShadowSize, 100 MF->getSubtarget<X86Subtarget>().is64Bit(), STI); 101 } 102 } 103 104 void X86AsmPrinter::EmitAndCountInstruction(MCInst &Inst) { 105 OutStreamer->EmitInstruction(Inst, getSubtargetInfo(), EnablePrintSchedInfo); 106 SMShadowTracker.count(Inst, getSubtargetInfo(), CodeEmitter.get()); 107 } 108 109 X86MCInstLower::X86MCInstLower(const MachineFunction &mf, 110 X86AsmPrinter &asmprinter) 111 : Ctx(mf.getContext()), MF(mf), TM(mf.getTarget()), MAI(*TM.getMCAsmInfo()), 112 AsmPrinter(asmprinter) {} 113 114 MachineModuleInfoMachO &X86MCInstLower::getMachOMMI() const { 115 return MF.getMMI().getObjFileInfo<MachineModuleInfoMachO>(); 116 } 117 118 119 /// GetSymbolFromOperand - Lower an MO_GlobalAddress or MO_ExternalSymbol 120 /// operand to an MCSymbol. 121 MCSymbol *X86MCInstLower:: 122 GetSymbolFromOperand(const MachineOperand &MO) const { 123 const DataLayout &DL = MF.getDataLayout(); 124 assert((MO.isGlobal() || MO.isSymbol() || MO.isMBB()) && "Isn't a symbol reference"); 125 126 MCSymbol *Sym = nullptr; 127 SmallString<128> Name; 128 StringRef Suffix; 129 130 switch (MO.getTargetFlags()) { 131 case X86II::MO_DLLIMPORT: 132 // Handle dllimport linkage. 133 Name += "__imp_"; 134 break; 135 case X86II::MO_DARWIN_NONLAZY: 136 case X86II::MO_DARWIN_NONLAZY_PIC_BASE: 137 Suffix = "$non_lazy_ptr"; 138 break; 139 } 140 141 if (!Suffix.empty()) 142 Name += DL.getPrivateGlobalPrefix(); 143 144 if (MO.isGlobal()) { 145 const GlobalValue *GV = MO.getGlobal(); 146 AsmPrinter.getNameWithPrefix(Name, GV); 147 } else if (MO.isSymbol()) { 148 Mangler::getNameWithPrefix(Name, MO.getSymbolName(), DL); 149 } else if (MO.isMBB()) { 150 assert(Suffix.empty()); 151 Sym = MO.getMBB()->getSymbol(); 152 } 153 154 Name += Suffix; 155 if (!Sym) 156 Sym = Ctx.getOrCreateSymbol(Name); 157 158 // If the target flags on the operand changes the name of the symbol, do that 159 // before we return the symbol. 160 switch (MO.getTargetFlags()) { 161 default: break; 162 case X86II::MO_DARWIN_NONLAZY: 163 case X86II::MO_DARWIN_NONLAZY_PIC_BASE: { 164 MachineModuleInfoImpl::StubValueTy &StubSym = 165 getMachOMMI().getGVStubEntry(Sym); 166 if (!StubSym.getPointer()) { 167 assert(MO.isGlobal() && "Extern symbol not handled yet"); 168 StubSym = 169 MachineModuleInfoImpl:: 170 StubValueTy(AsmPrinter.getSymbol(MO.getGlobal()), 171 !MO.getGlobal()->hasInternalLinkage()); 172 } 173 break; 174 } 175 } 176 177 return Sym; 178 } 179 180 MCOperand X86MCInstLower::LowerSymbolOperand(const MachineOperand &MO, 181 MCSymbol *Sym) const { 182 // FIXME: We would like an efficient form for this, so we don't have to do a 183 // lot of extra uniquing. 184 const MCExpr *Expr = nullptr; 185 MCSymbolRefExpr::VariantKind RefKind = MCSymbolRefExpr::VK_None; 186 187 switch (MO.getTargetFlags()) { 188 default: llvm_unreachable("Unknown target flag on GV operand"); 189 case X86II::MO_NO_FLAG: // No flag. 190 // These affect the name of the symbol, not any suffix. 191 case X86II::MO_DARWIN_NONLAZY: 192 case X86II::MO_DLLIMPORT: 193 break; 194 195 case X86II::MO_TLVP: RefKind = MCSymbolRefExpr::VK_TLVP; break; 196 case X86II::MO_TLVP_PIC_BASE: 197 Expr = MCSymbolRefExpr::create(Sym, MCSymbolRefExpr::VK_TLVP, Ctx); 198 // Subtract the pic base. 199 Expr = MCBinaryExpr::createSub(Expr, 200 MCSymbolRefExpr::create(MF.getPICBaseSymbol(), 201 Ctx), 202 Ctx); 203 break; 204 case X86II::MO_SECREL: RefKind = MCSymbolRefExpr::VK_SECREL; break; 205 case X86II::MO_TLSGD: RefKind = MCSymbolRefExpr::VK_TLSGD; break; 206 case X86II::MO_TLSLD: RefKind = MCSymbolRefExpr::VK_TLSLD; break; 207 case X86II::MO_TLSLDM: RefKind = MCSymbolRefExpr::VK_TLSLDM; break; 208 case X86II::MO_GOTTPOFF: RefKind = MCSymbolRefExpr::VK_GOTTPOFF; break; 209 case X86II::MO_INDNTPOFF: RefKind = MCSymbolRefExpr::VK_INDNTPOFF; break; 210 case X86II::MO_TPOFF: RefKind = MCSymbolRefExpr::VK_TPOFF; break; 211 case X86II::MO_DTPOFF: RefKind = MCSymbolRefExpr::VK_DTPOFF; break; 212 case X86II::MO_NTPOFF: RefKind = MCSymbolRefExpr::VK_NTPOFF; break; 213 case X86II::MO_GOTNTPOFF: RefKind = MCSymbolRefExpr::VK_GOTNTPOFF; break; 214 case X86II::MO_GOTPCREL: RefKind = MCSymbolRefExpr::VK_GOTPCREL; break; 215 case X86II::MO_GOT: RefKind = MCSymbolRefExpr::VK_GOT; break; 216 case X86II::MO_GOTOFF: RefKind = MCSymbolRefExpr::VK_GOTOFF; break; 217 case X86II::MO_PLT: RefKind = MCSymbolRefExpr::VK_PLT; break; 218 case X86II::MO_ABS8: RefKind = MCSymbolRefExpr::VK_X86_ABS8; break; 219 case X86II::MO_PIC_BASE_OFFSET: 220 case X86II::MO_DARWIN_NONLAZY_PIC_BASE: 221 Expr = MCSymbolRefExpr::create(Sym, Ctx); 222 // Subtract the pic base. 223 Expr = MCBinaryExpr::createSub(Expr, 224 MCSymbolRefExpr::create(MF.getPICBaseSymbol(), Ctx), 225 Ctx); 226 if (MO.isJTI()) { 227 assert(MAI.doesSetDirectiveSuppressReloc()); 228 // If .set directive is supported, use it to reduce the number of 229 // relocations the assembler will generate for differences between 230 // local labels. This is only safe when the symbols are in the same 231 // section so we are restricting it to jumptable references. 232 MCSymbol *Label = Ctx.createTempSymbol(); 233 AsmPrinter.OutStreamer->EmitAssignment(Label, Expr); 234 Expr = MCSymbolRefExpr::create(Label, Ctx); 235 } 236 break; 237 } 238 239 if (!Expr) 240 Expr = MCSymbolRefExpr::create(Sym, RefKind, Ctx); 241 242 if (!MO.isJTI() && !MO.isMBB() && MO.getOffset()) 243 Expr = MCBinaryExpr::createAdd(Expr, 244 MCConstantExpr::create(MO.getOffset(), Ctx), 245 Ctx); 246 return MCOperand::createExpr(Expr); 247 } 248 249 250 /// \brief Simplify FOO $imm, %{al,ax,eax,rax} to FOO $imm, for instruction with 251 /// a short fixed-register form. 252 static void SimplifyShortImmForm(MCInst &Inst, unsigned Opcode) { 253 unsigned ImmOp = Inst.getNumOperands() - 1; 254 assert(Inst.getOperand(0).isReg() && 255 (Inst.getOperand(ImmOp).isImm() || Inst.getOperand(ImmOp).isExpr()) && 256 ((Inst.getNumOperands() == 3 && Inst.getOperand(1).isReg() && 257 Inst.getOperand(0).getReg() == Inst.getOperand(1).getReg()) || 258 Inst.getNumOperands() == 2) && "Unexpected instruction!"); 259 260 // Check whether the destination register can be fixed. 261 unsigned Reg = Inst.getOperand(0).getReg(); 262 if (Reg != X86::AL && Reg != X86::AX && Reg != X86::EAX && Reg != X86::RAX) 263 return; 264 265 // If so, rewrite the instruction. 266 MCOperand Saved = Inst.getOperand(ImmOp); 267 Inst = MCInst(); 268 Inst.setOpcode(Opcode); 269 Inst.addOperand(Saved); 270 } 271 272 /// \brief If a movsx instruction has a shorter encoding for the used register 273 /// simplify the instruction to use it instead. 274 static void SimplifyMOVSX(MCInst &Inst) { 275 unsigned NewOpcode = 0; 276 unsigned Op0 = Inst.getOperand(0).getReg(), Op1 = Inst.getOperand(1).getReg(); 277 switch (Inst.getOpcode()) { 278 default: 279 llvm_unreachable("Unexpected instruction!"); 280 case X86::MOVSX16rr8: // movsbw %al, %ax --> cbtw 281 if (Op0 == X86::AX && Op1 == X86::AL) 282 NewOpcode = X86::CBW; 283 break; 284 case X86::MOVSX32rr16: // movswl %ax, %eax --> cwtl 285 if (Op0 == X86::EAX && Op1 == X86::AX) 286 NewOpcode = X86::CWDE; 287 break; 288 case X86::MOVSX64rr32: // movslq %eax, %rax --> cltq 289 if (Op0 == X86::RAX && Op1 == X86::EAX) 290 NewOpcode = X86::CDQE; 291 break; 292 } 293 294 if (NewOpcode != 0) { 295 Inst = MCInst(); 296 Inst.setOpcode(NewOpcode); 297 } 298 } 299 300 /// \brief Simplify things like MOV32rm to MOV32o32a. 301 static void SimplifyShortMoveForm(X86AsmPrinter &Printer, MCInst &Inst, 302 unsigned Opcode) { 303 // Don't make these simplifications in 64-bit mode; other assemblers don't 304 // perform them because they make the code larger. 305 if (Printer.getSubtarget().is64Bit()) 306 return; 307 308 bool IsStore = Inst.getOperand(0).isReg() && Inst.getOperand(1).isReg(); 309 unsigned AddrBase = IsStore; 310 unsigned RegOp = IsStore ? 0 : 5; 311 unsigned AddrOp = AddrBase + 3; 312 assert(Inst.getNumOperands() == 6 && Inst.getOperand(RegOp).isReg() && 313 Inst.getOperand(AddrBase + X86::AddrBaseReg).isReg() && 314 Inst.getOperand(AddrBase + X86::AddrScaleAmt).isImm() && 315 Inst.getOperand(AddrBase + X86::AddrIndexReg).isReg() && 316 Inst.getOperand(AddrBase + X86::AddrSegmentReg).isReg() && 317 (Inst.getOperand(AddrOp).isExpr() || 318 Inst.getOperand(AddrOp).isImm()) && 319 "Unexpected instruction!"); 320 321 // Check whether the destination register can be fixed. 322 unsigned Reg = Inst.getOperand(RegOp).getReg(); 323 if (Reg != X86::AL && Reg != X86::AX && Reg != X86::EAX && Reg != X86::RAX) 324 return; 325 326 // Check whether this is an absolute address. 327 // FIXME: We know TLVP symbol refs aren't, but there should be a better way 328 // to do this here. 329 bool Absolute = true; 330 if (Inst.getOperand(AddrOp).isExpr()) { 331 const MCExpr *MCE = Inst.getOperand(AddrOp).getExpr(); 332 if (const MCSymbolRefExpr *SRE = dyn_cast<MCSymbolRefExpr>(MCE)) 333 if (SRE->getKind() == MCSymbolRefExpr::VK_TLVP) 334 Absolute = false; 335 } 336 337 if (Absolute && 338 (Inst.getOperand(AddrBase + X86::AddrBaseReg).getReg() != 0 || 339 Inst.getOperand(AddrBase + X86::AddrScaleAmt).getImm() != 1 || 340 Inst.getOperand(AddrBase + X86::AddrIndexReg).getReg() != 0)) 341 return; 342 343 // If so, rewrite the instruction. 344 MCOperand Saved = Inst.getOperand(AddrOp); 345 MCOperand Seg = Inst.getOperand(AddrBase + X86::AddrSegmentReg); 346 Inst = MCInst(); 347 Inst.setOpcode(Opcode); 348 Inst.addOperand(Saved); 349 Inst.addOperand(Seg); 350 } 351 352 static unsigned getRetOpcode(const X86Subtarget &Subtarget) { 353 return Subtarget.is64Bit() ? X86::RETQ : X86::RETL; 354 } 355 356 Optional<MCOperand> 357 X86MCInstLower::LowerMachineOperand(const MachineInstr *MI, 358 const MachineOperand &MO) const { 359 switch (MO.getType()) { 360 default: 361 MI->print(errs()); 362 llvm_unreachable("unknown operand type"); 363 case MachineOperand::MO_Register: 364 // Ignore all implicit register operands. 365 if (MO.isImplicit()) 366 return None; 367 return MCOperand::createReg(MO.getReg()); 368 case MachineOperand::MO_Immediate: 369 return MCOperand::createImm(MO.getImm()); 370 case MachineOperand::MO_MachineBasicBlock: 371 case MachineOperand::MO_GlobalAddress: 372 case MachineOperand::MO_ExternalSymbol: 373 return LowerSymbolOperand(MO, GetSymbolFromOperand(MO)); 374 case MachineOperand::MO_MCSymbol: 375 return LowerSymbolOperand(MO, MO.getMCSymbol()); 376 case MachineOperand::MO_JumpTableIndex: 377 return LowerSymbolOperand(MO, AsmPrinter.GetJTISymbol(MO.getIndex())); 378 case MachineOperand::MO_ConstantPoolIndex: 379 return LowerSymbolOperand(MO, AsmPrinter.GetCPISymbol(MO.getIndex())); 380 case MachineOperand::MO_BlockAddress: 381 return LowerSymbolOperand( 382 MO, AsmPrinter.GetBlockAddressSymbol(MO.getBlockAddress())); 383 case MachineOperand::MO_RegisterMask: 384 // Ignore call clobbers. 385 return None; 386 } 387 } 388 389 void X86MCInstLower::Lower(const MachineInstr *MI, MCInst &OutMI) const { 390 OutMI.setOpcode(MI->getOpcode()); 391 392 for (const MachineOperand &MO : MI->operands()) 393 if (auto MaybeMCOp = LowerMachineOperand(MI, MO)) 394 OutMI.addOperand(MaybeMCOp.getValue()); 395 396 // Handle a few special cases to eliminate operand modifiers. 397 ReSimplify: 398 switch (OutMI.getOpcode()) { 399 case X86::LEA64_32r: 400 case X86::LEA64r: 401 case X86::LEA16r: 402 case X86::LEA32r: 403 // LEA should have a segment register, but it must be empty. 404 assert(OutMI.getNumOperands() == 1+X86::AddrNumOperands && 405 "Unexpected # of LEA operands"); 406 assert(OutMI.getOperand(1+X86::AddrSegmentReg).getReg() == 0 && 407 "LEA has segment specified!"); 408 break; 409 410 // Commute operands to get a smaller encoding by using VEX.R instead of VEX.B 411 // if one of the registers is extended, but other isn't. 412 case X86::VMOVZPQILo2PQIrr: 413 case X86::VMOVAPDrr: 414 case X86::VMOVAPDYrr: 415 case X86::VMOVAPSrr: 416 case X86::VMOVAPSYrr: 417 case X86::VMOVDQArr: 418 case X86::VMOVDQAYrr: 419 case X86::VMOVDQUrr: 420 case X86::VMOVDQUYrr: 421 case X86::VMOVUPDrr: 422 case X86::VMOVUPDYrr: 423 case X86::VMOVUPSrr: 424 case X86::VMOVUPSYrr: { 425 if (!X86II::isX86_64ExtendedReg(OutMI.getOperand(0).getReg()) && 426 X86II::isX86_64ExtendedReg(OutMI.getOperand(1).getReg())) { 427 unsigned NewOpc; 428 switch (OutMI.getOpcode()) { 429 default: llvm_unreachable("Invalid opcode"); 430 case X86::VMOVZPQILo2PQIrr: NewOpc = X86::VMOVPQI2QIrr; break; 431 case X86::VMOVAPDrr: NewOpc = X86::VMOVAPDrr_REV; break; 432 case X86::VMOVAPDYrr: NewOpc = X86::VMOVAPDYrr_REV; break; 433 case X86::VMOVAPSrr: NewOpc = X86::VMOVAPSrr_REV; break; 434 case X86::VMOVAPSYrr: NewOpc = X86::VMOVAPSYrr_REV; break; 435 case X86::VMOVDQArr: NewOpc = X86::VMOVDQArr_REV; break; 436 case X86::VMOVDQAYrr: NewOpc = X86::VMOVDQAYrr_REV; break; 437 case X86::VMOVDQUrr: NewOpc = X86::VMOVDQUrr_REV; break; 438 case X86::VMOVDQUYrr: NewOpc = X86::VMOVDQUYrr_REV; break; 439 case X86::VMOVUPDrr: NewOpc = X86::VMOVUPDrr_REV; break; 440 case X86::VMOVUPDYrr: NewOpc = X86::VMOVUPDYrr_REV; break; 441 case X86::VMOVUPSrr: NewOpc = X86::VMOVUPSrr_REV; break; 442 case X86::VMOVUPSYrr: NewOpc = X86::VMOVUPSYrr_REV; break; 443 } 444 OutMI.setOpcode(NewOpc); 445 } 446 break; 447 } 448 case X86::VMOVSDrr: 449 case X86::VMOVSSrr: { 450 if (!X86II::isX86_64ExtendedReg(OutMI.getOperand(0).getReg()) && 451 X86II::isX86_64ExtendedReg(OutMI.getOperand(2).getReg())) { 452 unsigned NewOpc; 453 switch (OutMI.getOpcode()) { 454 default: llvm_unreachable("Invalid opcode"); 455 case X86::VMOVSDrr: NewOpc = X86::VMOVSDrr_REV; break; 456 case X86::VMOVSSrr: NewOpc = X86::VMOVSSrr_REV; break; 457 } 458 OutMI.setOpcode(NewOpc); 459 } 460 break; 461 } 462 463 // TAILJMPr64, CALL64r, CALL64pcrel32 - These instructions have register 464 // inputs modeled as normal uses instead of implicit uses. As such, truncate 465 // off all but the first operand (the callee). FIXME: Change isel. 466 case X86::TAILJMPr64: 467 case X86::TAILJMPr64_REX: 468 case X86::CALL64r: 469 case X86::CALL64pcrel32: { 470 unsigned Opcode = OutMI.getOpcode(); 471 MCOperand Saved = OutMI.getOperand(0); 472 OutMI = MCInst(); 473 OutMI.setOpcode(Opcode); 474 OutMI.addOperand(Saved); 475 break; 476 } 477 478 case X86::EH_RETURN: 479 case X86::EH_RETURN64: { 480 OutMI = MCInst(); 481 OutMI.setOpcode(getRetOpcode(AsmPrinter.getSubtarget())); 482 break; 483 } 484 485 case X86::CLEANUPRET: { 486 // Replace CATCHRET with the appropriate RET. 487 OutMI = MCInst(); 488 OutMI.setOpcode(getRetOpcode(AsmPrinter.getSubtarget())); 489 break; 490 } 491 492 case X86::CATCHRET: { 493 // Replace CATCHRET with the appropriate RET. 494 const X86Subtarget &Subtarget = AsmPrinter.getSubtarget(); 495 unsigned ReturnReg = Subtarget.is64Bit() ? X86::RAX : X86::EAX; 496 OutMI = MCInst(); 497 OutMI.setOpcode(getRetOpcode(Subtarget)); 498 OutMI.addOperand(MCOperand::createReg(ReturnReg)); 499 break; 500 } 501 502 // TAILJMPd, TAILJMPd64, TailJMPd_cc - Lower to the correct jump instruction. 503 { unsigned Opcode; 504 case X86::TAILJMPr: Opcode = X86::JMP32r; goto SetTailJmpOpcode; 505 case X86::TAILJMPd: 506 case X86::TAILJMPd64: Opcode = X86::JMP_1; goto SetTailJmpOpcode; 507 case X86::TAILJMPd_CC: 508 case X86::TAILJMPd64_CC: 509 Opcode = X86::GetCondBranchFromCond( 510 static_cast<X86::CondCode>(MI->getOperand(1).getImm())); 511 goto SetTailJmpOpcode; 512 513 SetTailJmpOpcode: 514 MCOperand Saved = OutMI.getOperand(0); 515 OutMI = MCInst(); 516 OutMI.setOpcode(Opcode); 517 OutMI.addOperand(Saved); 518 break; 519 } 520 521 case X86::DEC16r: 522 case X86::DEC32r: 523 case X86::INC16r: 524 case X86::INC32r: 525 // If we aren't in 64-bit mode we can use the 1-byte inc/dec instructions. 526 if (!AsmPrinter.getSubtarget().is64Bit()) { 527 unsigned Opcode; 528 switch (OutMI.getOpcode()) { 529 default: llvm_unreachable("Invalid opcode"); 530 case X86::DEC16r: Opcode = X86::DEC16r_alt; break; 531 case X86::DEC32r: Opcode = X86::DEC32r_alt; break; 532 case X86::INC16r: Opcode = X86::INC16r_alt; break; 533 case X86::INC32r: Opcode = X86::INC32r_alt; break; 534 } 535 OutMI.setOpcode(Opcode); 536 } 537 break; 538 539 // These are pseudo-ops for OR to help with the OR->ADD transformation. We do 540 // this with an ugly goto in case the resultant OR uses EAX and needs the 541 // short form. 542 case X86::ADD16rr_DB: OutMI.setOpcode(X86::OR16rr); goto ReSimplify; 543 case X86::ADD32rr_DB: OutMI.setOpcode(X86::OR32rr); goto ReSimplify; 544 case X86::ADD64rr_DB: OutMI.setOpcode(X86::OR64rr); goto ReSimplify; 545 case X86::ADD16ri_DB: OutMI.setOpcode(X86::OR16ri); goto ReSimplify; 546 case X86::ADD32ri_DB: OutMI.setOpcode(X86::OR32ri); goto ReSimplify; 547 case X86::ADD64ri32_DB: OutMI.setOpcode(X86::OR64ri32); goto ReSimplify; 548 case X86::ADD16ri8_DB: OutMI.setOpcode(X86::OR16ri8); goto ReSimplify; 549 case X86::ADD32ri8_DB: OutMI.setOpcode(X86::OR32ri8); goto ReSimplify; 550 case X86::ADD64ri8_DB: OutMI.setOpcode(X86::OR64ri8); goto ReSimplify; 551 552 // Atomic load and store require a separate pseudo-inst because Acquire 553 // implies mayStore and Release implies mayLoad; fix these to regular MOV 554 // instructions here 555 case X86::ACQUIRE_MOV8rm: OutMI.setOpcode(X86::MOV8rm); goto ReSimplify; 556 case X86::ACQUIRE_MOV16rm: OutMI.setOpcode(X86::MOV16rm); goto ReSimplify; 557 case X86::ACQUIRE_MOV32rm: OutMI.setOpcode(X86::MOV32rm); goto ReSimplify; 558 case X86::ACQUIRE_MOV64rm: OutMI.setOpcode(X86::MOV64rm); goto ReSimplify; 559 case X86::RELEASE_MOV8mr: OutMI.setOpcode(X86::MOV8mr); goto ReSimplify; 560 case X86::RELEASE_MOV16mr: OutMI.setOpcode(X86::MOV16mr); goto ReSimplify; 561 case X86::RELEASE_MOV32mr: OutMI.setOpcode(X86::MOV32mr); goto ReSimplify; 562 case X86::RELEASE_MOV64mr: OutMI.setOpcode(X86::MOV64mr); goto ReSimplify; 563 case X86::RELEASE_MOV8mi: OutMI.setOpcode(X86::MOV8mi); goto ReSimplify; 564 case X86::RELEASE_MOV16mi: OutMI.setOpcode(X86::MOV16mi); goto ReSimplify; 565 case X86::RELEASE_MOV32mi: OutMI.setOpcode(X86::MOV32mi); goto ReSimplify; 566 case X86::RELEASE_MOV64mi32: OutMI.setOpcode(X86::MOV64mi32); goto ReSimplify; 567 case X86::RELEASE_ADD8mi: OutMI.setOpcode(X86::ADD8mi); goto ReSimplify; 568 case X86::RELEASE_ADD8mr: OutMI.setOpcode(X86::ADD8mr); goto ReSimplify; 569 case X86::RELEASE_ADD32mi: OutMI.setOpcode(X86::ADD32mi); goto ReSimplify; 570 case X86::RELEASE_ADD32mr: OutMI.setOpcode(X86::ADD32mr); goto ReSimplify; 571 case X86::RELEASE_ADD64mi32: OutMI.setOpcode(X86::ADD64mi32); goto ReSimplify; 572 case X86::RELEASE_ADD64mr: OutMI.setOpcode(X86::ADD64mr); goto ReSimplify; 573 case X86::RELEASE_AND8mi: OutMI.setOpcode(X86::AND8mi); goto ReSimplify; 574 case X86::RELEASE_AND8mr: OutMI.setOpcode(X86::AND8mr); goto ReSimplify; 575 case X86::RELEASE_AND32mi: OutMI.setOpcode(X86::AND32mi); goto ReSimplify; 576 case X86::RELEASE_AND32mr: OutMI.setOpcode(X86::AND32mr); goto ReSimplify; 577 case X86::RELEASE_AND64mi32: OutMI.setOpcode(X86::AND64mi32); goto ReSimplify; 578 case X86::RELEASE_AND64mr: OutMI.setOpcode(X86::AND64mr); goto ReSimplify; 579 case X86::RELEASE_OR8mi: OutMI.setOpcode(X86::OR8mi); goto ReSimplify; 580 case X86::RELEASE_OR8mr: OutMI.setOpcode(X86::OR8mr); goto ReSimplify; 581 case X86::RELEASE_OR32mi: OutMI.setOpcode(X86::OR32mi); goto ReSimplify; 582 case X86::RELEASE_OR32mr: OutMI.setOpcode(X86::OR32mr); goto ReSimplify; 583 case X86::RELEASE_OR64mi32: OutMI.setOpcode(X86::OR64mi32); goto ReSimplify; 584 case X86::RELEASE_OR64mr: OutMI.setOpcode(X86::OR64mr); goto ReSimplify; 585 case X86::RELEASE_XOR8mi: OutMI.setOpcode(X86::XOR8mi); goto ReSimplify; 586 case X86::RELEASE_XOR8mr: OutMI.setOpcode(X86::XOR8mr); goto ReSimplify; 587 case X86::RELEASE_XOR32mi: OutMI.setOpcode(X86::XOR32mi); goto ReSimplify; 588 case X86::RELEASE_XOR32mr: OutMI.setOpcode(X86::XOR32mr); goto ReSimplify; 589 case X86::RELEASE_XOR64mi32: OutMI.setOpcode(X86::XOR64mi32); goto ReSimplify; 590 case X86::RELEASE_XOR64mr: OutMI.setOpcode(X86::XOR64mr); goto ReSimplify; 591 case X86::RELEASE_INC8m: OutMI.setOpcode(X86::INC8m); goto ReSimplify; 592 case X86::RELEASE_INC16m: OutMI.setOpcode(X86::INC16m); goto ReSimplify; 593 case X86::RELEASE_INC32m: OutMI.setOpcode(X86::INC32m); goto ReSimplify; 594 case X86::RELEASE_INC64m: OutMI.setOpcode(X86::INC64m); goto ReSimplify; 595 case X86::RELEASE_DEC8m: OutMI.setOpcode(X86::DEC8m); goto ReSimplify; 596 case X86::RELEASE_DEC16m: OutMI.setOpcode(X86::DEC16m); goto ReSimplify; 597 case X86::RELEASE_DEC32m: OutMI.setOpcode(X86::DEC32m); goto ReSimplify; 598 case X86::RELEASE_DEC64m: OutMI.setOpcode(X86::DEC64m); goto ReSimplify; 599 600 // We don't currently select the correct instruction form for instructions 601 // which have a short %eax, etc. form. Handle this by custom lowering, for 602 // now. 603 // 604 // Note, we are currently not handling the following instructions: 605 // MOV64ao8, MOV64o8a 606 // XCHG16ar, XCHG32ar, XCHG64ar 607 case X86::MOV8mr: 608 case X86::MOV8rm: 609 case X86::MOV16mr: 610 case X86::MOV16rm: 611 case X86::MOV32mr: 612 case X86::MOV32rm: { 613 unsigned NewOpc; 614 switch (OutMI.getOpcode()) { 615 default: llvm_unreachable("Invalid opcode"); 616 case X86::MOV8mr: NewOpc = X86::MOV8o32a; break; 617 case X86::MOV8rm: NewOpc = X86::MOV8ao32; break; 618 case X86::MOV16mr: NewOpc = X86::MOV16o32a; break; 619 case X86::MOV16rm: NewOpc = X86::MOV16ao32; break; 620 case X86::MOV32mr: NewOpc = X86::MOV32o32a; break; 621 case X86::MOV32rm: NewOpc = X86::MOV32ao32; break; 622 } 623 SimplifyShortMoveForm(AsmPrinter, OutMI, NewOpc); 624 break; 625 } 626 627 case X86::ADC8ri: case X86::ADC16ri: case X86::ADC32ri: case X86::ADC64ri32: 628 case X86::ADD8ri: case X86::ADD16ri: case X86::ADD32ri: case X86::ADD64ri32: 629 case X86::AND8ri: case X86::AND16ri: case X86::AND32ri: case X86::AND64ri32: 630 case X86::CMP8ri: case X86::CMP16ri: case X86::CMP32ri: case X86::CMP64ri32: 631 case X86::OR8ri: case X86::OR16ri: case X86::OR32ri: case X86::OR64ri32: 632 case X86::SBB8ri: case X86::SBB16ri: case X86::SBB32ri: case X86::SBB64ri32: 633 case X86::SUB8ri: case X86::SUB16ri: case X86::SUB32ri: case X86::SUB64ri32: 634 case X86::TEST8ri:case X86::TEST16ri:case X86::TEST32ri:case X86::TEST64ri32: 635 case X86::XOR8ri: case X86::XOR16ri: case X86::XOR32ri: case X86::XOR64ri32: { 636 unsigned NewOpc; 637 switch (OutMI.getOpcode()) { 638 default: llvm_unreachable("Invalid opcode"); 639 case X86::ADC8ri: NewOpc = X86::ADC8i8; break; 640 case X86::ADC16ri: NewOpc = X86::ADC16i16; break; 641 case X86::ADC32ri: NewOpc = X86::ADC32i32; break; 642 case X86::ADC64ri32: NewOpc = X86::ADC64i32; break; 643 case X86::ADD8ri: NewOpc = X86::ADD8i8; break; 644 case X86::ADD16ri: NewOpc = X86::ADD16i16; break; 645 case X86::ADD32ri: NewOpc = X86::ADD32i32; break; 646 case X86::ADD64ri32: NewOpc = X86::ADD64i32; break; 647 case X86::AND8ri: NewOpc = X86::AND8i8; break; 648 case X86::AND16ri: NewOpc = X86::AND16i16; break; 649 case X86::AND32ri: NewOpc = X86::AND32i32; break; 650 case X86::AND64ri32: NewOpc = X86::AND64i32; break; 651 case X86::CMP8ri: NewOpc = X86::CMP8i8; break; 652 case X86::CMP16ri: NewOpc = X86::CMP16i16; break; 653 case X86::CMP32ri: NewOpc = X86::CMP32i32; break; 654 case X86::CMP64ri32: NewOpc = X86::CMP64i32; break; 655 case X86::OR8ri: NewOpc = X86::OR8i8; break; 656 case X86::OR16ri: NewOpc = X86::OR16i16; break; 657 case X86::OR32ri: NewOpc = X86::OR32i32; break; 658 case X86::OR64ri32: NewOpc = X86::OR64i32; break; 659 case X86::SBB8ri: NewOpc = X86::SBB8i8; break; 660 case X86::SBB16ri: NewOpc = X86::SBB16i16; break; 661 case X86::SBB32ri: NewOpc = X86::SBB32i32; break; 662 case X86::SBB64ri32: NewOpc = X86::SBB64i32; break; 663 case X86::SUB8ri: NewOpc = X86::SUB8i8; break; 664 case X86::SUB16ri: NewOpc = X86::SUB16i16; break; 665 case X86::SUB32ri: NewOpc = X86::SUB32i32; break; 666 case X86::SUB64ri32: NewOpc = X86::SUB64i32; break; 667 case X86::TEST8ri: NewOpc = X86::TEST8i8; break; 668 case X86::TEST16ri: NewOpc = X86::TEST16i16; break; 669 case X86::TEST32ri: NewOpc = X86::TEST32i32; break; 670 case X86::TEST64ri32: NewOpc = X86::TEST64i32; break; 671 case X86::XOR8ri: NewOpc = X86::XOR8i8; break; 672 case X86::XOR16ri: NewOpc = X86::XOR16i16; break; 673 case X86::XOR32ri: NewOpc = X86::XOR32i32; break; 674 case X86::XOR64ri32: NewOpc = X86::XOR64i32; break; 675 } 676 SimplifyShortImmForm(OutMI, NewOpc); 677 break; 678 } 679 680 // Try to shrink some forms of movsx. 681 case X86::MOVSX16rr8: 682 case X86::MOVSX32rr16: 683 case X86::MOVSX64rr32: 684 SimplifyMOVSX(OutMI); 685 break; 686 } 687 } 688 689 void X86AsmPrinter::LowerTlsAddr(X86MCInstLower &MCInstLowering, 690 const MachineInstr &MI) { 691 692 bool is64Bits = MI.getOpcode() == X86::TLS_addr64 || 693 MI.getOpcode() == X86::TLS_base_addr64; 694 695 bool needsPadding = MI.getOpcode() == X86::TLS_addr64; 696 697 MCContext &context = OutStreamer->getContext(); 698 699 if (needsPadding) 700 EmitAndCountInstruction(MCInstBuilder(X86::DATA16_PREFIX)); 701 702 MCSymbolRefExpr::VariantKind SRVK; 703 switch (MI.getOpcode()) { 704 case X86::TLS_addr32: 705 case X86::TLS_addr64: 706 SRVK = MCSymbolRefExpr::VK_TLSGD; 707 break; 708 case X86::TLS_base_addr32: 709 SRVK = MCSymbolRefExpr::VK_TLSLDM; 710 break; 711 case X86::TLS_base_addr64: 712 SRVK = MCSymbolRefExpr::VK_TLSLD; 713 break; 714 default: 715 llvm_unreachable("unexpected opcode"); 716 } 717 718 MCSymbol *sym = MCInstLowering.GetSymbolFromOperand(MI.getOperand(3)); 719 const MCSymbolRefExpr *symRef = MCSymbolRefExpr::create(sym, SRVK, context); 720 721 MCInst LEA; 722 if (is64Bits) { 723 LEA.setOpcode(X86::LEA64r); 724 LEA.addOperand(MCOperand::createReg(X86::RDI)); // dest 725 LEA.addOperand(MCOperand::createReg(X86::RIP)); // base 726 LEA.addOperand(MCOperand::createImm(1)); // scale 727 LEA.addOperand(MCOperand::createReg(0)); // index 728 LEA.addOperand(MCOperand::createExpr(symRef)); // disp 729 LEA.addOperand(MCOperand::createReg(0)); // seg 730 } else if (SRVK == MCSymbolRefExpr::VK_TLSLDM) { 731 LEA.setOpcode(X86::LEA32r); 732 LEA.addOperand(MCOperand::createReg(X86::EAX)); // dest 733 LEA.addOperand(MCOperand::createReg(X86::EBX)); // base 734 LEA.addOperand(MCOperand::createImm(1)); // scale 735 LEA.addOperand(MCOperand::createReg(0)); // index 736 LEA.addOperand(MCOperand::createExpr(symRef)); // disp 737 LEA.addOperand(MCOperand::createReg(0)); // seg 738 } else { 739 LEA.setOpcode(X86::LEA32r); 740 LEA.addOperand(MCOperand::createReg(X86::EAX)); // dest 741 LEA.addOperand(MCOperand::createReg(0)); // base 742 LEA.addOperand(MCOperand::createImm(1)); // scale 743 LEA.addOperand(MCOperand::createReg(X86::EBX)); // index 744 LEA.addOperand(MCOperand::createExpr(symRef)); // disp 745 LEA.addOperand(MCOperand::createReg(0)); // seg 746 } 747 EmitAndCountInstruction(LEA); 748 749 if (needsPadding) { 750 EmitAndCountInstruction(MCInstBuilder(X86::DATA16_PREFIX)); 751 EmitAndCountInstruction(MCInstBuilder(X86::DATA16_PREFIX)); 752 EmitAndCountInstruction(MCInstBuilder(X86::REX64_PREFIX)); 753 } 754 755 StringRef name = is64Bits ? "__tls_get_addr" : "___tls_get_addr"; 756 MCSymbol *tlsGetAddr = context.getOrCreateSymbol(name); 757 const MCSymbolRefExpr *tlsRef = 758 MCSymbolRefExpr::create(tlsGetAddr, 759 MCSymbolRefExpr::VK_PLT, 760 context); 761 762 EmitAndCountInstruction(MCInstBuilder(is64Bits ? X86::CALL64pcrel32 763 : X86::CALLpcrel32) 764 .addExpr(tlsRef)); 765 } 766 767 /// \brief Emit the largest nop instruction smaller than or equal to \p NumBytes 768 /// bytes. Return the size of nop emitted. 769 static unsigned EmitNop(MCStreamer &OS, unsigned NumBytes, bool Is64Bit, 770 const MCSubtargetInfo &STI) { 771 // This works only for 64bit. For 32bit we have to do additional checking if 772 // the CPU supports multi-byte nops. 773 assert(Is64Bit && "EmitNops only supports X86-64"); 774 775 unsigned NopSize; 776 unsigned Opc, BaseReg, ScaleVal, IndexReg, Displacement, SegmentReg; 777 Opc = IndexReg = Displacement = SegmentReg = 0; 778 BaseReg = X86::RAX; 779 ScaleVal = 1; 780 switch (NumBytes) { 781 case 0: llvm_unreachable("Zero nops?"); break; 782 case 1: NopSize = 1; Opc = X86::NOOP; break; 783 case 2: NopSize = 2; Opc = X86::XCHG16ar; break; 784 case 3: NopSize = 3; Opc = X86::NOOPL; break; 785 case 4: NopSize = 4; Opc = X86::NOOPL; Displacement = 8; break; 786 case 5: NopSize = 5; Opc = X86::NOOPL; Displacement = 8; 787 IndexReg = X86::RAX; break; 788 case 6: NopSize = 6; Opc = X86::NOOPW; Displacement = 8; 789 IndexReg = X86::RAX; break; 790 case 7: NopSize = 7; Opc = X86::NOOPL; Displacement = 512; break; 791 case 8: NopSize = 8; Opc = X86::NOOPL; Displacement = 512; 792 IndexReg = X86::RAX; break; 793 case 9: NopSize = 9; Opc = X86::NOOPW; Displacement = 512; 794 IndexReg = X86::RAX; break; 795 default: NopSize = 10; Opc = X86::NOOPW; Displacement = 512; 796 IndexReg = X86::RAX; SegmentReg = X86::CS; break; 797 } 798 799 unsigned NumPrefixes = std::min(NumBytes - NopSize, 5U); 800 NopSize += NumPrefixes; 801 for (unsigned i = 0; i != NumPrefixes; ++i) 802 OS.EmitBytes("\x66"); 803 804 switch (Opc) { 805 default: 806 llvm_unreachable("Unexpected opcode"); 807 break; 808 case X86::NOOP: 809 OS.EmitInstruction(MCInstBuilder(Opc), STI); 810 break; 811 case X86::XCHG16ar: 812 OS.EmitInstruction(MCInstBuilder(Opc).addReg(X86::AX), STI); 813 break; 814 case X86::NOOPL: 815 case X86::NOOPW: 816 OS.EmitInstruction(MCInstBuilder(Opc) 817 .addReg(BaseReg) 818 .addImm(ScaleVal) 819 .addReg(IndexReg) 820 .addImm(Displacement) 821 .addReg(SegmentReg), 822 STI); 823 break; 824 } 825 assert(NopSize <= NumBytes && "We overemitted?"); 826 return NopSize; 827 } 828 829 /// \brief Emit the optimal amount of multi-byte nops on X86. 830 static void EmitNops(MCStreamer &OS, unsigned NumBytes, bool Is64Bit, 831 const MCSubtargetInfo &STI) { 832 unsigned NopsToEmit = NumBytes; 833 (void)NopsToEmit; 834 while (NumBytes) { 835 NumBytes -= EmitNop(OS, NumBytes, Is64Bit, STI); 836 assert(NopsToEmit >= NumBytes && "Emitted more than I asked for!"); 837 } 838 } 839 840 void X86AsmPrinter::LowerSTATEPOINT(const MachineInstr &MI, 841 X86MCInstLower &MCIL) { 842 assert(Subtarget->is64Bit() && "Statepoint currently only supports X86-64"); 843 844 StatepointOpers SOpers(&MI); 845 if (unsigned PatchBytes = SOpers.getNumPatchBytes()) { 846 EmitNops(*OutStreamer, PatchBytes, Subtarget->is64Bit(), 847 getSubtargetInfo()); 848 } else { 849 // Lower call target and choose correct opcode 850 const MachineOperand &CallTarget = SOpers.getCallTarget(); 851 MCOperand CallTargetMCOp; 852 unsigned CallOpcode; 853 switch (CallTarget.getType()) { 854 case MachineOperand::MO_GlobalAddress: 855 case MachineOperand::MO_ExternalSymbol: 856 CallTargetMCOp = MCIL.LowerSymbolOperand( 857 CallTarget, MCIL.GetSymbolFromOperand(CallTarget)); 858 CallOpcode = X86::CALL64pcrel32; 859 // Currently, we only support relative addressing with statepoints. 860 // Otherwise, we'll need a scratch register to hold the target 861 // address. You'll fail asserts during load & relocation if this 862 // symbol is to far away. (TODO: support non-relative addressing) 863 break; 864 case MachineOperand::MO_Immediate: 865 CallTargetMCOp = MCOperand::createImm(CallTarget.getImm()); 866 CallOpcode = X86::CALL64pcrel32; 867 // Currently, we only support relative addressing with statepoints. 868 // Otherwise, we'll need a scratch register to hold the target 869 // immediate. You'll fail asserts during load & relocation if this 870 // address is to far away. (TODO: support non-relative addressing) 871 break; 872 case MachineOperand::MO_Register: 873 CallTargetMCOp = MCOperand::createReg(CallTarget.getReg()); 874 CallOpcode = X86::CALL64r; 875 break; 876 default: 877 llvm_unreachable("Unsupported operand type in statepoint call target"); 878 break; 879 } 880 881 // Emit call 882 MCInst CallInst; 883 CallInst.setOpcode(CallOpcode); 884 CallInst.addOperand(CallTargetMCOp); 885 OutStreamer->EmitInstruction(CallInst, getSubtargetInfo()); 886 } 887 888 // Record our statepoint node in the same section used by STACKMAP 889 // and PATCHPOINT 890 SM.recordStatepoint(MI); 891 } 892 893 void X86AsmPrinter::LowerFAULTING_OP(const MachineInstr &FaultingMI, 894 X86MCInstLower &MCIL) { 895 // FAULTING_LOAD_OP <def>, <faltinf type>, <MBB handler>, 896 // <opcode>, <operands> 897 898 unsigned DefRegister = FaultingMI.getOperand(0).getReg(); 899 FaultMaps::FaultKind FK = 900 static_cast<FaultMaps::FaultKind>(FaultingMI.getOperand(1).getImm()); 901 MCSymbol *HandlerLabel = FaultingMI.getOperand(2).getMBB()->getSymbol(); 902 unsigned Opcode = FaultingMI.getOperand(3).getImm(); 903 unsigned OperandsBeginIdx = 4; 904 905 assert(FK < FaultMaps::FaultKindMax && "Invalid Faulting Kind!"); 906 FM.recordFaultingOp(FK, HandlerLabel); 907 908 MCInst MI; 909 MI.setOpcode(Opcode); 910 911 if (DefRegister != X86::NoRegister) 912 MI.addOperand(MCOperand::createReg(DefRegister)); 913 914 for (auto I = FaultingMI.operands_begin() + OperandsBeginIdx, 915 E = FaultingMI.operands_end(); 916 I != E; ++I) 917 if (auto MaybeOperand = MCIL.LowerMachineOperand(&FaultingMI, *I)) 918 MI.addOperand(MaybeOperand.getValue()); 919 920 OutStreamer->EmitInstruction(MI, getSubtargetInfo()); 921 } 922 923 void X86AsmPrinter::LowerFENTRY_CALL(const MachineInstr &MI, 924 X86MCInstLower &MCIL) { 925 bool Is64Bits = Subtarget->is64Bit(); 926 MCContext &Ctx = OutStreamer->getContext(); 927 MCSymbol *fentry = Ctx.getOrCreateSymbol("__fentry__"); 928 const MCSymbolRefExpr *Op = 929 MCSymbolRefExpr::create(fentry, MCSymbolRefExpr::VK_None, Ctx); 930 931 EmitAndCountInstruction( 932 MCInstBuilder(Is64Bits ? X86::CALL64pcrel32 : X86::CALLpcrel32) 933 .addExpr(Op)); 934 } 935 936 void X86AsmPrinter::LowerPATCHABLE_OP(const MachineInstr &MI, 937 X86MCInstLower &MCIL) { 938 // PATCHABLE_OP minsize, opcode, operands 939 940 unsigned MinSize = MI.getOperand(0).getImm(); 941 unsigned Opcode = MI.getOperand(1).getImm(); 942 943 MCInst MCI; 944 MCI.setOpcode(Opcode); 945 for (auto &MO : make_range(MI.operands_begin() + 2, MI.operands_end())) 946 if (auto MaybeOperand = MCIL.LowerMachineOperand(&MI, MO)) 947 MCI.addOperand(MaybeOperand.getValue()); 948 949 SmallString<256> Code; 950 SmallVector<MCFixup, 4> Fixups; 951 raw_svector_ostream VecOS(Code); 952 CodeEmitter->encodeInstruction(MCI, VecOS, Fixups, getSubtargetInfo()); 953 954 if (Code.size() < MinSize) { 955 if (MinSize == 2 && Opcode == X86::PUSH64r) { 956 // This is an optimization that lets us get away without emitting a nop in 957 // many cases. 958 // 959 // NB! In some cases the encoding for PUSH64r (e.g. PUSH64r %R9) takes two 960 // bytes too, so the check on MinSize is important. 961 MCI.setOpcode(X86::PUSH64rmr); 962 } else { 963 unsigned NopSize = EmitNop(*OutStreamer, MinSize, Subtarget->is64Bit(), 964 getSubtargetInfo()); 965 assert(NopSize == MinSize && "Could not implement MinSize!"); 966 (void) NopSize; 967 } 968 } 969 970 OutStreamer->EmitInstruction(MCI, getSubtargetInfo()); 971 } 972 973 // Lower a stackmap of the form: 974 // <id>, <shadowBytes>, ... 975 void X86AsmPrinter::LowerSTACKMAP(const MachineInstr &MI) { 976 SMShadowTracker.emitShadowPadding(*OutStreamer, getSubtargetInfo()); 977 SM.recordStackMap(MI); 978 unsigned NumShadowBytes = MI.getOperand(1).getImm(); 979 SMShadowTracker.reset(NumShadowBytes); 980 } 981 982 // Lower a patchpoint of the form: 983 // [<def>], <id>, <numBytes>, <target>, <numArgs>, <cc>, ... 984 void X86AsmPrinter::LowerPATCHPOINT(const MachineInstr &MI, 985 X86MCInstLower &MCIL) { 986 assert(Subtarget->is64Bit() && "Patchpoint currently only supports X86-64"); 987 988 SMShadowTracker.emitShadowPadding(*OutStreamer, getSubtargetInfo()); 989 990 SM.recordPatchPoint(MI); 991 992 PatchPointOpers opers(&MI); 993 unsigned ScratchIdx = opers.getNextScratchIdx(); 994 unsigned EncodedBytes = 0; 995 const MachineOperand &CalleeMO = opers.getCallTarget(); 996 997 // Check for null target. If target is non-null (i.e. is non-zero or is 998 // symbolic) then emit a call. 999 if (!(CalleeMO.isImm() && !CalleeMO.getImm())) { 1000 MCOperand CalleeMCOp; 1001 switch (CalleeMO.getType()) { 1002 default: 1003 /// FIXME: Add a verifier check for bad callee types. 1004 llvm_unreachable("Unrecognized callee operand type."); 1005 case MachineOperand::MO_Immediate: 1006 if (CalleeMO.getImm()) 1007 CalleeMCOp = MCOperand::createImm(CalleeMO.getImm()); 1008 break; 1009 case MachineOperand::MO_ExternalSymbol: 1010 case MachineOperand::MO_GlobalAddress: 1011 CalleeMCOp = 1012 MCIL.LowerSymbolOperand(CalleeMO, 1013 MCIL.GetSymbolFromOperand(CalleeMO)); 1014 break; 1015 } 1016 1017 // Emit MOV to materialize the target address and the CALL to target. 1018 // This is encoded with 12-13 bytes, depending on which register is used. 1019 unsigned ScratchReg = MI.getOperand(ScratchIdx).getReg(); 1020 if (X86II::isX86_64ExtendedReg(ScratchReg)) 1021 EncodedBytes = 13; 1022 else 1023 EncodedBytes = 12; 1024 1025 EmitAndCountInstruction( 1026 MCInstBuilder(X86::MOV64ri).addReg(ScratchReg).addOperand(CalleeMCOp)); 1027 EmitAndCountInstruction(MCInstBuilder(X86::CALL64r).addReg(ScratchReg)); 1028 } 1029 1030 // Emit padding. 1031 unsigned NumBytes = opers.getNumPatchBytes(); 1032 assert(NumBytes >= EncodedBytes && 1033 "Patchpoint can't request size less than the length of a call."); 1034 1035 EmitNops(*OutStreamer, NumBytes - EncodedBytes, Subtarget->is64Bit(), 1036 getSubtargetInfo()); 1037 } 1038 1039 void X86AsmPrinter::LowerPATCHABLE_EVENT_CALL(const MachineInstr &MI, 1040 X86MCInstLower &MCIL) { 1041 assert(Subtarget->is64Bit() && "XRay custom events only supports X86-64"); 1042 1043 // We want to emit the following pattern, which follows the x86 calling 1044 // convention to prepare for the trampoline call to be patched in. 1045 // 1046 // .p2align 1, ... 1047 // .Lxray_event_sled_N: 1048 // jmp +N // jump across the instrumentation sled 1049 // ... // set up arguments in register 1050 // callq __xray_CustomEvent@plt // force dependency to symbol 1051 // ... 1052 // <jump here> 1053 // 1054 // After patching, it would look something like: 1055 // 1056 // nopw (2-byte nop) 1057 // ... 1058 // callq __xrayCustomEvent // already lowered 1059 // ... 1060 // 1061 // --- 1062 // First we emit the label and the jump. 1063 auto CurSled = OutContext.createTempSymbol("xray_event_sled_", true); 1064 OutStreamer->AddComment("# XRay Custom Event Log"); 1065 OutStreamer->EmitCodeAlignment(2); 1066 OutStreamer->EmitLabel(CurSled); 1067 1068 // Use a two-byte `jmp`. This version of JMP takes an 8-bit relative offset as 1069 // an operand (computed as an offset from the jmp instruction). 1070 // FIXME: Find another less hacky way do force the relative jump. 1071 OutStreamer->EmitBinaryData("\xeb\x0f"); 1072 1073 // The default C calling convention will place two arguments into %rcx and 1074 // %rdx -- so we only work with those. 1075 unsigned UsedRegs[] = {X86::RDI, X86::RSI}; 1076 bool UsedMask[] = {false, false}; 1077 1078 // Then we put the operands in the %rdi and %rsi registers. We spill the 1079 // values in the register before we clobber them, and mark them as used in 1080 // UsedMask. In case the arguments are already in the correct register, we use 1081 // emit nops appropriately sized to keep the sled the same size in every 1082 // situation. 1083 for (unsigned I = 0; I < MI.getNumOperands(); ++I) 1084 if (auto Op = MCIL.LowerMachineOperand(&MI, MI.getOperand(I))) { 1085 assert(Op->isReg() && "Only support arguments in registers"); 1086 if (Op->getReg() != UsedRegs[I]) { 1087 UsedMask[I] = true; 1088 EmitAndCountInstruction( 1089 MCInstBuilder(X86::PUSH64r).addReg(UsedRegs[I])); 1090 EmitAndCountInstruction(MCInstBuilder(X86::MOV64rr) 1091 .addReg(UsedRegs[I]) 1092 .addReg(Op->getReg())); 1093 } else { 1094 EmitNops(*OutStreamer, 4, Subtarget->is64Bit(), getSubtargetInfo()); 1095 } 1096 } 1097 1098 // We emit a hard dependency on the __xray_CustomEvent symbol, which is the 1099 // name of the trampoline to be implemented by the XRay runtime. 1100 auto TSym = OutContext.getOrCreateSymbol("__xray_CustomEvent"); 1101 MachineOperand TOp = MachineOperand::CreateMCSymbol(TSym); 1102 if (isPositionIndependent()) 1103 TOp.setTargetFlags(X86II::MO_PLT); 1104 1105 // Emit the call instruction. 1106 EmitAndCountInstruction(MCInstBuilder(X86::CALL64pcrel32) 1107 .addOperand(MCIL.LowerSymbolOperand(TOp, TSym))); 1108 1109 // Restore caller-saved and used registers. 1110 for (unsigned I = sizeof UsedMask; I-- > 0;) 1111 if (UsedMask[I]) 1112 EmitAndCountInstruction(MCInstBuilder(X86::POP64r).addReg(UsedRegs[I])); 1113 else 1114 EmitNops(*OutStreamer, 1, Subtarget->is64Bit(), getSubtargetInfo()); 1115 1116 OutStreamer->AddComment("xray custom event end."); 1117 1118 // Record the sled version. Older versions of this sled were spelled 1119 // differently, so we let the runtime handle the different offsets we're 1120 // using. 1121 recordSled(CurSled, MI, SledKind::CUSTOM_EVENT, 1); 1122 } 1123 1124 void X86AsmPrinter::LowerPATCHABLE_FUNCTION_ENTER(const MachineInstr &MI, 1125 X86MCInstLower &MCIL) { 1126 // We want to emit the following pattern: 1127 // 1128 // .p2align 1, ... 1129 // .Lxray_sled_N: 1130 // jmp .tmpN 1131 // # 9 bytes worth of noops 1132 // 1133 // We need the 9 bytes because at runtime, we'd be patching over the full 11 1134 // bytes with the following pattern: 1135 // 1136 // mov %r10, <function id, 32-bit> // 6 bytes 1137 // call <relative offset, 32-bits> // 5 bytes 1138 // 1139 auto CurSled = OutContext.createTempSymbol("xray_sled_", true); 1140 OutStreamer->EmitCodeAlignment(2); 1141 OutStreamer->EmitLabel(CurSled); 1142 1143 // Use a two-byte `jmp`. This version of JMP takes an 8-bit relative offset as 1144 // an operand (computed as an offset from the jmp instruction). 1145 // FIXME: Find another less hacky way do force the relative jump. 1146 OutStreamer->EmitBytes("\xeb\x09"); 1147 EmitNops(*OutStreamer, 9, Subtarget->is64Bit(), getSubtargetInfo()); 1148 recordSled(CurSled, MI, SledKind::FUNCTION_ENTER); 1149 } 1150 1151 void X86AsmPrinter::LowerPATCHABLE_RET(const MachineInstr &MI, 1152 X86MCInstLower &MCIL) { 1153 // Since PATCHABLE_RET takes the opcode of the return statement as an 1154 // argument, we use that to emit the correct form of the RET that we want. 1155 // i.e. when we see this: 1156 // 1157 // PATCHABLE_RET X86::RET ... 1158 // 1159 // We should emit the RET followed by sleds. 1160 // 1161 // .p2align 1, ... 1162 // .Lxray_sled_N: 1163 // ret # or equivalent instruction 1164 // # 10 bytes worth of noops 1165 // 1166 // This just makes sure that the alignment for the next instruction is 2. 1167 auto CurSled = OutContext.createTempSymbol("xray_sled_", true); 1168 OutStreamer->EmitCodeAlignment(2); 1169 OutStreamer->EmitLabel(CurSled); 1170 unsigned OpCode = MI.getOperand(0).getImm(); 1171 MCInst Ret; 1172 Ret.setOpcode(OpCode); 1173 for (auto &MO : make_range(MI.operands_begin() + 1, MI.operands_end())) 1174 if (auto MaybeOperand = MCIL.LowerMachineOperand(&MI, MO)) 1175 Ret.addOperand(MaybeOperand.getValue()); 1176 OutStreamer->EmitInstruction(Ret, getSubtargetInfo()); 1177 EmitNops(*OutStreamer, 10, Subtarget->is64Bit(), getSubtargetInfo()); 1178 recordSled(CurSled, MI, SledKind::FUNCTION_EXIT); 1179 } 1180 1181 void X86AsmPrinter::LowerPATCHABLE_TAIL_CALL(const MachineInstr &MI, X86MCInstLower &MCIL) { 1182 // Like PATCHABLE_RET, we have the actual instruction in the operands to this 1183 // instruction so we lower that particular instruction and its operands. 1184 // Unlike PATCHABLE_RET though, we put the sled before the JMP, much like how 1185 // we do it for PATCHABLE_FUNCTION_ENTER. The sled should be very similar to 1186 // the PATCHABLE_FUNCTION_ENTER case, followed by the lowering of the actual 1187 // tail call much like how we have it in PATCHABLE_RET. 1188 auto CurSled = OutContext.createTempSymbol("xray_sled_", true); 1189 OutStreamer->EmitCodeAlignment(2); 1190 OutStreamer->EmitLabel(CurSled); 1191 auto Target = OutContext.createTempSymbol(); 1192 1193 // Use a two-byte `jmp`. This version of JMP takes an 8-bit relative offset as 1194 // an operand (computed as an offset from the jmp instruction). 1195 // FIXME: Find another less hacky way do force the relative jump. 1196 OutStreamer->EmitBytes("\xeb\x09"); 1197 EmitNops(*OutStreamer, 9, Subtarget->is64Bit(), getSubtargetInfo()); 1198 OutStreamer->EmitLabel(Target); 1199 recordSled(CurSled, MI, SledKind::TAIL_CALL); 1200 1201 unsigned OpCode = MI.getOperand(0).getImm(); 1202 MCInst TC; 1203 TC.setOpcode(OpCode); 1204 1205 // Before emitting the instruction, add a comment to indicate that this is 1206 // indeed a tail call. 1207 OutStreamer->AddComment("TAILCALL"); 1208 for (auto &MO : make_range(MI.operands_begin() + 1, MI.operands_end())) 1209 if (auto MaybeOperand = MCIL.LowerMachineOperand(&MI, MO)) 1210 TC.addOperand(MaybeOperand.getValue()); 1211 OutStreamer->EmitInstruction(TC, getSubtargetInfo()); 1212 } 1213 1214 // Returns instruction preceding MBBI in MachineFunction. 1215 // If MBBI is the first instruction of the first basic block, returns null. 1216 static MachineBasicBlock::const_iterator 1217 PrevCrossBBInst(MachineBasicBlock::const_iterator MBBI) { 1218 const MachineBasicBlock *MBB = MBBI->getParent(); 1219 while (MBBI == MBB->begin()) { 1220 if (MBB == &MBB->getParent()->front()) 1221 return MachineBasicBlock::const_iterator(); 1222 MBB = MBB->getPrevNode(); 1223 MBBI = MBB->end(); 1224 } 1225 return --MBBI; 1226 } 1227 1228 static const Constant *getConstantFromPool(const MachineInstr &MI, 1229 const MachineOperand &Op) { 1230 if (!Op.isCPI()) 1231 return nullptr; 1232 1233 ArrayRef<MachineConstantPoolEntry> Constants = 1234 MI.getParent()->getParent()->getConstantPool()->getConstants(); 1235 const MachineConstantPoolEntry &ConstantEntry = 1236 Constants[Op.getIndex()]; 1237 1238 // Bail if this is a machine constant pool entry, we won't be able to dig out 1239 // anything useful. 1240 if (ConstantEntry.isMachineConstantPoolEntry()) 1241 return nullptr; 1242 1243 auto *C = dyn_cast<Constant>(ConstantEntry.Val.ConstVal); 1244 assert((!C || ConstantEntry.getType() == C->getType()) && 1245 "Expected a constant of the same type!"); 1246 return C; 1247 } 1248 1249 static std::string getShuffleComment(const MachineInstr *MI, 1250 unsigned SrcOp1Idx, 1251 unsigned SrcOp2Idx, 1252 ArrayRef<int> Mask) { 1253 std::string Comment; 1254 1255 // Compute the name for a register. This is really goofy because we have 1256 // multiple instruction printers that could (in theory) use different 1257 // names. Fortunately most people use the ATT style (outside of Windows) 1258 // and they actually agree on register naming here. Ultimately, this is 1259 // a comment, and so its OK if it isn't perfect. 1260 auto GetRegisterName = [](unsigned RegNum) -> StringRef { 1261 return X86ATTInstPrinter::getRegisterName(RegNum); 1262 }; 1263 1264 const MachineOperand &DstOp = MI->getOperand(0); 1265 const MachineOperand &SrcOp1 = MI->getOperand(SrcOp1Idx); 1266 const MachineOperand &SrcOp2 = MI->getOperand(SrcOp2Idx); 1267 1268 StringRef DstName = DstOp.isReg() ? GetRegisterName(DstOp.getReg()) : "mem"; 1269 StringRef Src1Name = 1270 SrcOp1.isReg() ? GetRegisterName(SrcOp1.getReg()) : "mem"; 1271 StringRef Src2Name = 1272 SrcOp2.isReg() ? GetRegisterName(SrcOp2.getReg()) : "mem"; 1273 1274 // One source operand, fix the mask to print all elements in one span. 1275 SmallVector<int, 8> ShuffleMask(Mask.begin(), Mask.end()); 1276 if (Src1Name == Src2Name) 1277 for (int i = 0, e = ShuffleMask.size(); i != e; ++i) 1278 if (ShuffleMask[i] >= e) 1279 ShuffleMask[i] -= e; 1280 1281 raw_string_ostream CS(Comment); 1282 CS << DstName; 1283 1284 // Handle AVX512 MASK/MASXZ write mask comments. 1285 // MASK: zmmX {%kY} 1286 // MASKZ: zmmX {%kY} {z} 1287 if (SrcOp1Idx > 1) { 1288 assert((SrcOp1Idx == 2 || SrcOp1Idx == 3) && "Unexpected writemask"); 1289 1290 const MachineOperand &WriteMaskOp = MI->getOperand(SrcOp1Idx - 1); 1291 if (WriteMaskOp.isReg()) { 1292 CS << " {%" << GetRegisterName(WriteMaskOp.getReg()) << "}"; 1293 1294 if (SrcOp1Idx == 2) { 1295 CS << " {z}"; 1296 } 1297 } 1298 } 1299 1300 CS << " = "; 1301 1302 for (int i = 0, e = ShuffleMask.size(); i != e; ++i) { 1303 if (i != 0) 1304 CS << ","; 1305 if (ShuffleMask[i] == SM_SentinelZero) { 1306 CS << "zero"; 1307 continue; 1308 } 1309 1310 // Otherwise, it must come from src1 or src2. Print the span of elements 1311 // that comes from this src. 1312 bool isSrc1 = ShuffleMask[i] < (int)e; 1313 CS << (isSrc1 ? Src1Name : Src2Name) << '['; 1314 1315 bool IsFirst = true; 1316 while (i != e && ShuffleMask[i] != SM_SentinelZero && 1317 (ShuffleMask[i] < (int)e) == isSrc1) { 1318 if (!IsFirst) 1319 CS << ','; 1320 else 1321 IsFirst = false; 1322 if (ShuffleMask[i] == SM_SentinelUndef) 1323 CS << "u"; 1324 else 1325 CS << ShuffleMask[i] % (int)e; 1326 ++i; 1327 } 1328 CS << ']'; 1329 --i; // For loop increments element #. 1330 } 1331 CS.flush(); 1332 1333 return Comment; 1334 } 1335 1336 static void printConstant(const Constant *COp, raw_ostream &CS) { 1337 if (isa<UndefValue>(COp)) { 1338 CS << "u"; 1339 } else if (auto *CI = dyn_cast<ConstantInt>(COp)) { 1340 if (CI->getBitWidth() <= 64) { 1341 CS << CI->getZExtValue(); 1342 } else { 1343 // print multi-word constant as (w0,w1) 1344 const auto &Val = CI->getValue(); 1345 CS << "("; 1346 for (int i = 0, N = Val.getNumWords(); i < N; ++i) { 1347 if (i > 0) 1348 CS << ","; 1349 CS << Val.getRawData()[i]; 1350 } 1351 CS << ")"; 1352 } 1353 } else if (auto *CF = dyn_cast<ConstantFP>(COp)) { 1354 SmallString<32> Str; 1355 CF->getValueAPF().toString(Str); 1356 CS << Str; 1357 } else { 1358 CS << "?"; 1359 } 1360 } 1361 1362 void X86AsmPrinter::EmitInstruction(const MachineInstr *MI) { 1363 X86MCInstLower MCInstLowering(*MF, *this); 1364 const X86RegisterInfo *RI = MF->getSubtarget<X86Subtarget>().getRegisterInfo(); 1365 1366 // Add a comment about EVEX-2-VEX compression for AVX-512 instrs that 1367 // are compressed from EVEX encoding to VEX encoding. 1368 if (TM.Options.MCOptions.ShowMCEncoding) { 1369 if (MI->getAsmPrinterFlags() & AC_EVEX_2_VEX) 1370 OutStreamer->AddComment("EVEX TO VEX Compression ", false); 1371 } 1372 1373 switch (MI->getOpcode()) { 1374 case TargetOpcode::DBG_VALUE: 1375 llvm_unreachable("Should be handled target independently"); 1376 1377 // Emit nothing here but a comment if we can. 1378 case X86::Int_MemBarrier: 1379 OutStreamer->emitRawComment("MEMBARRIER"); 1380 return; 1381 1382 1383 case X86::EH_RETURN: 1384 case X86::EH_RETURN64: { 1385 // Lower these as normal, but add some comments. 1386 unsigned Reg = MI->getOperand(0).getReg(); 1387 OutStreamer->AddComment(StringRef("eh_return, addr: %") + 1388 X86ATTInstPrinter::getRegisterName(Reg)); 1389 break; 1390 } 1391 case X86::CLEANUPRET: { 1392 // Lower these as normal, but add some comments. 1393 OutStreamer->AddComment("CLEANUPRET"); 1394 break; 1395 } 1396 1397 case X86::CATCHRET: { 1398 // Lower these as normal, but add some comments. 1399 OutStreamer->AddComment("CATCHRET"); 1400 break; 1401 } 1402 1403 case X86::TAILJMPr: 1404 case X86::TAILJMPm: 1405 case X86::TAILJMPd: 1406 case X86::TAILJMPd_CC: 1407 case X86::TAILJMPr64: 1408 case X86::TAILJMPm64: 1409 case X86::TAILJMPd64: 1410 case X86::TAILJMPd64_CC: 1411 case X86::TAILJMPr64_REX: 1412 case X86::TAILJMPm64_REX: 1413 // Lower these as normal, but add some comments. 1414 OutStreamer->AddComment("TAILCALL"); 1415 break; 1416 1417 case X86::TLS_addr32: 1418 case X86::TLS_addr64: 1419 case X86::TLS_base_addr32: 1420 case X86::TLS_base_addr64: 1421 return LowerTlsAddr(MCInstLowering, *MI); 1422 1423 case X86::MOVPC32r: { 1424 // This is a pseudo op for a two instruction sequence with a label, which 1425 // looks like: 1426 // call "L1$pb" 1427 // "L1$pb": 1428 // popl %esi 1429 1430 // Emit the call. 1431 MCSymbol *PICBase = MF->getPICBaseSymbol(); 1432 // FIXME: We would like an efficient form for this, so we don't have to do a 1433 // lot of extra uniquing. 1434 EmitAndCountInstruction(MCInstBuilder(X86::CALLpcrel32) 1435 .addExpr(MCSymbolRefExpr::create(PICBase, OutContext))); 1436 1437 const X86FrameLowering* FrameLowering = 1438 MF->getSubtarget<X86Subtarget>().getFrameLowering(); 1439 bool hasFP = FrameLowering->hasFP(*MF); 1440 1441 // TODO: This is needed only if we require precise CFA. 1442 bool HasActiveDwarfFrame = OutStreamer->getNumFrameInfos() && 1443 !OutStreamer->getDwarfFrameInfos().back().End; 1444 1445 int stackGrowth = -RI->getSlotSize(); 1446 1447 if (HasActiveDwarfFrame && !hasFP) { 1448 OutStreamer->EmitCFIAdjustCfaOffset(-stackGrowth); 1449 } 1450 1451 // Emit the label. 1452 OutStreamer->EmitLabel(PICBase); 1453 1454 // popl $reg 1455 EmitAndCountInstruction(MCInstBuilder(X86::POP32r) 1456 .addReg(MI->getOperand(0).getReg())); 1457 1458 if (HasActiveDwarfFrame && !hasFP) { 1459 OutStreamer->EmitCFIAdjustCfaOffset(stackGrowth); 1460 } 1461 return; 1462 } 1463 1464 case X86::ADD32ri: { 1465 // Lower the MO_GOT_ABSOLUTE_ADDRESS form of ADD32ri. 1466 if (MI->getOperand(2).getTargetFlags() != X86II::MO_GOT_ABSOLUTE_ADDRESS) 1467 break; 1468 1469 // Okay, we have something like: 1470 // EAX = ADD32ri EAX, MO_GOT_ABSOLUTE_ADDRESS(@MYGLOBAL) 1471 1472 // For this, we want to print something like: 1473 // MYGLOBAL + (. - PICBASE) 1474 // However, we can't generate a ".", so just emit a new label here and refer 1475 // to it. 1476 MCSymbol *DotSym = OutContext.createTempSymbol(); 1477 OutStreamer->EmitLabel(DotSym); 1478 1479 // Now that we have emitted the label, lower the complex operand expression. 1480 MCSymbol *OpSym = MCInstLowering.GetSymbolFromOperand(MI->getOperand(2)); 1481 1482 const MCExpr *DotExpr = MCSymbolRefExpr::create(DotSym, OutContext); 1483 const MCExpr *PICBase = 1484 MCSymbolRefExpr::create(MF->getPICBaseSymbol(), OutContext); 1485 DotExpr = MCBinaryExpr::createSub(DotExpr, PICBase, OutContext); 1486 1487 DotExpr = MCBinaryExpr::createAdd(MCSymbolRefExpr::create(OpSym,OutContext), 1488 DotExpr, OutContext); 1489 1490 EmitAndCountInstruction(MCInstBuilder(X86::ADD32ri) 1491 .addReg(MI->getOperand(0).getReg()) 1492 .addReg(MI->getOperand(1).getReg()) 1493 .addExpr(DotExpr)); 1494 return; 1495 } 1496 case TargetOpcode::STATEPOINT: 1497 return LowerSTATEPOINT(*MI, MCInstLowering); 1498 1499 case TargetOpcode::FAULTING_OP: 1500 return LowerFAULTING_OP(*MI, MCInstLowering); 1501 1502 case TargetOpcode::FENTRY_CALL: 1503 return LowerFENTRY_CALL(*MI, MCInstLowering); 1504 1505 case TargetOpcode::PATCHABLE_OP: 1506 return LowerPATCHABLE_OP(*MI, MCInstLowering); 1507 1508 case TargetOpcode::STACKMAP: 1509 return LowerSTACKMAP(*MI); 1510 1511 case TargetOpcode::PATCHPOINT: 1512 return LowerPATCHPOINT(*MI, MCInstLowering); 1513 1514 case TargetOpcode::PATCHABLE_FUNCTION_ENTER: 1515 return LowerPATCHABLE_FUNCTION_ENTER(*MI, MCInstLowering); 1516 1517 case TargetOpcode::PATCHABLE_RET: 1518 return LowerPATCHABLE_RET(*MI, MCInstLowering); 1519 1520 case TargetOpcode::PATCHABLE_TAIL_CALL: 1521 return LowerPATCHABLE_TAIL_CALL(*MI, MCInstLowering); 1522 1523 case TargetOpcode::PATCHABLE_EVENT_CALL: 1524 return LowerPATCHABLE_EVENT_CALL(*MI, MCInstLowering); 1525 1526 case X86::MORESTACK_RET: 1527 EmitAndCountInstruction(MCInstBuilder(getRetOpcode(*Subtarget))); 1528 return; 1529 1530 case X86::MORESTACK_RET_RESTORE_R10: 1531 // Return, then restore R10. 1532 EmitAndCountInstruction(MCInstBuilder(getRetOpcode(*Subtarget))); 1533 EmitAndCountInstruction(MCInstBuilder(X86::MOV64rr) 1534 .addReg(X86::R10) 1535 .addReg(X86::RAX)); 1536 return; 1537 1538 case X86::SEH_PushReg: 1539 assert(MF->hasWinCFI() && "SEH_ instruction in function without WinCFI?"); 1540 OutStreamer->EmitWinCFIPushReg(RI->getSEHRegNum(MI->getOperand(0).getImm())); 1541 return; 1542 1543 case X86::SEH_SaveReg: 1544 assert(MF->hasWinCFI() && "SEH_ instruction in function without WinCFI?"); 1545 OutStreamer->EmitWinCFISaveReg(RI->getSEHRegNum(MI->getOperand(0).getImm()), 1546 MI->getOperand(1).getImm()); 1547 return; 1548 1549 case X86::SEH_SaveXMM: 1550 assert(MF->hasWinCFI() && "SEH_ instruction in function without WinCFI?"); 1551 OutStreamer->EmitWinCFISaveXMM(RI->getSEHRegNum(MI->getOperand(0).getImm()), 1552 MI->getOperand(1).getImm()); 1553 return; 1554 1555 case X86::SEH_StackAlloc: 1556 assert(MF->hasWinCFI() && "SEH_ instruction in function without WinCFI?"); 1557 OutStreamer->EmitWinCFIAllocStack(MI->getOperand(0).getImm()); 1558 return; 1559 1560 case X86::SEH_SetFrame: 1561 assert(MF->hasWinCFI() && "SEH_ instruction in function without WinCFI?"); 1562 OutStreamer->EmitWinCFISetFrame(RI->getSEHRegNum(MI->getOperand(0).getImm()), 1563 MI->getOperand(1).getImm()); 1564 return; 1565 1566 case X86::SEH_PushFrame: 1567 assert(MF->hasWinCFI() && "SEH_ instruction in function without WinCFI?"); 1568 OutStreamer->EmitWinCFIPushFrame(MI->getOperand(0).getImm()); 1569 return; 1570 1571 case X86::SEH_EndPrologue: 1572 assert(MF->hasWinCFI() && "SEH_ instruction in function without WinCFI?"); 1573 OutStreamer->EmitWinCFIEndProlog(); 1574 return; 1575 1576 case X86::SEH_Epilogue: { 1577 assert(MF->hasWinCFI() && "SEH_ instruction in function without WinCFI?"); 1578 MachineBasicBlock::const_iterator MBBI(MI); 1579 // Check if preceded by a call and emit nop if so. 1580 for (MBBI = PrevCrossBBInst(MBBI); 1581 MBBI != MachineBasicBlock::const_iterator(); 1582 MBBI = PrevCrossBBInst(MBBI)) { 1583 // Conservatively assume that pseudo instructions don't emit code and keep 1584 // looking for a call. We may emit an unnecessary nop in some cases. 1585 if (!MBBI->isPseudo()) { 1586 if (MBBI->isCall()) 1587 EmitAndCountInstruction(MCInstBuilder(X86::NOOP)); 1588 break; 1589 } 1590 } 1591 return; 1592 } 1593 1594 // Lower PSHUFB and VPERMILP normally but add a comment if we can find 1595 // a constant shuffle mask. We won't be able to do this at the MC layer 1596 // because the mask isn't an immediate. 1597 case X86::PSHUFBrm: 1598 case X86::VPSHUFBrm: 1599 case X86::VPSHUFBYrm: 1600 case X86::VPSHUFBZ128rm: 1601 case X86::VPSHUFBZ128rmk: 1602 case X86::VPSHUFBZ128rmkz: 1603 case X86::VPSHUFBZ256rm: 1604 case X86::VPSHUFBZ256rmk: 1605 case X86::VPSHUFBZ256rmkz: 1606 case X86::VPSHUFBZrm: 1607 case X86::VPSHUFBZrmk: 1608 case X86::VPSHUFBZrmkz: { 1609 if (!OutStreamer->isVerboseAsm()) 1610 break; 1611 unsigned SrcIdx, MaskIdx; 1612 switch (MI->getOpcode()) { 1613 default: llvm_unreachable("Invalid opcode"); 1614 case X86::PSHUFBrm: 1615 case X86::VPSHUFBrm: 1616 case X86::VPSHUFBYrm: 1617 case X86::VPSHUFBZ128rm: 1618 case X86::VPSHUFBZ256rm: 1619 case X86::VPSHUFBZrm: 1620 SrcIdx = 1; MaskIdx = 5; break; 1621 case X86::VPSHUFBZ128rmkz: 1622 case X86::VPSHUFBZ256rmkz: 1623 case X86::VPSHUFBZrmkz: 1624 SrcIdx = 2; MaskIdx = 6; break; 1625 case X86::VPSHUFBZ128rmk: 1626 case X86::VPSHUFBZ256rmk: 1627 case X86::VPSHUFBZrmk: 1628 SrcIdx = 3; MaskIdx = 7; break; 1629 } 1630 1631 assert(MI->getNumOperands() >= 6 && 1632 "We should always have at least 6 operands!"); 1633 1634 const MachineOperand &MaskOp = MI->getOperand(MaskIdx); 1635 if (auto *C = getConstantFromPool(*MI, MaskOp)) { 1636 SmallVector<int, 64> Mask; 1637 DecodePSHUFBMask(C, Mask); 1638 if (!Mask.empty()) 1639 OutStreamer->AddComment(getShuffleComment(MI, SrcIdx, SrcIdx, Mask), 1640 !EnablePrintSchedInfo); 1641 } 1642 break; 1643 } 1644 1645 case X86::VPERMILPSrm: 1646 case X86::VPERMILPSYrm: 1647 case X86::VPERMILPSZ128rm: 1648 case X86::VPERMILPSZ128rmk: 1649 case X86::VPERMILPSZ128rmkz: 1650 case X86::VPERMILPSZ256rm: 1651 case X86::VPERMILPSZ256rmk: 1652 case X86::VPERMILPSZ256rmkz: 1653 case X86::VPERMILPSZrm: 1654 case X86::VPERMILPSZrmk: 1655 case X86::VPERMILPSZrmkz: 1656 case X86::VPERMILPDrm: 1657 case X86::VPERMILPDYrm: 1658 case X86::VPERMILPDZ128rm: 1659 case X86::VPERMILPDZ128rmk: 1660 case X86::VPERMILPDZ128rmkz: 1661 case X86::VPERMILPDZ256rm: 1662 case X86::VPERMILPDZ256rmk: 1663 case X86::VPERMILPDZ256rmkz: 1664 case X86::VPERMILPDZrm: 1665 case X86::VPERMILPDZrmk: 1666 case X86::VPERMILPDZrmkz: { 1667 if (!OutStreamer->isVerboseAsm()) 1668 break; 1669 unsigned SrcIdx, MaskIdx; 1670 unsigned ElSize; 1671 switch (MI->getOpcode()) { 1672 default: llvm_unreachable("Invalid opcode"); 1673 case X86::VPERMILPSrm: 1674 case X86::VPERMILPSYrm: 1675 case X86::VPERMILPSZ128rm: 1676 case X86::VPERMILPSZ256rm: 1677 case X86::VPERMILPSZrm: 1678 SrcIdx = 1; MaskIdx = 5; ElSize = 32; break; 1679 case X86::VPERMILPSZ128rmkz: 1680 case X86::VPERMILPSZ256rmkz: 1681 case X86::VPERMILPSZrmkz: 1682 SrcIdx = 2; MaskIdx = 6; ElSize = 32; break; 1683 case X86::VPERMILPSZ128rmk: 1684 case X86::VPERMILPSZ256rmk: 1685 case X86::VPERMILPSZrmk: 1686 SrcIdx = 3; MaskIdx = 7; ElSize = 32; break; 1687 case X86::VPERMILPDrm: 1688 case X86::VPERMILPDYrm: 1689 case X86::VPERMILPDZ128rm: 1690 case X86::VPERMILPDZ256rm: 1691 case X86::VPERMILPDZrm: 1692 SrcIdx = 1; MaskIdx = 5; ElSize = 64; break; 1693 case X86::VPERMILPDZ128rmkz: 1694 case X86::VPERMILPDZ256rmkz: 1695 case X86::VPERMILPDZrmkz: 1696 SrcIdx = 2; MaskIdx = 6; ElSize = 64; break; 1697 case X86::VPERMILPDZ128rmk: 1698 case X86::VPERMILPDZ256rmk: 1699 case X86::VPERMILPDZrmk: 1700 SrcIdx = 3; MaskIdx = 7; ElSize = 64; break; 1701 } 1702 1703 assert(MI->getNumOperands() >= 6 && 1704 "We should always have at least 6 operands!"); 1705 1706 const MachineOperand &MaskOp = MI->getOperand(MaskIdx); 1707 if (auto *C = getConstantFromPool(*MI, MaskOp)) { 1708 SmallVector<int, 16> Mask; 1709 DecodeVPERMILPMask(C, ElSize, Mask); 1710 if (!Mask.empty()) 1711 OutStreamer->AddComment(getShuffleComment(MI, SrcIdx, SrcIdx, Mask), 1712 !EnablePrintSchedInfo); 1713 } 1714 break; 1715 } 1716 1717 case X86::VPERMIL2PDrm: 1718 case X86::VPERMIL2PSrm: 1719 case X86::VPERMIL2PDYrm: 1720 case X86::VPERMIL2PSYrm: { 1721 if (!OutStreamer->isVerboseAsm()) 1722 break; 1723 assert(MI->getNumOperands() >= 8 && 1724 "We should always have at least 8 operands!"); 1725 1726 const MachineOperand &CtrlOp = MI->getOperand(MI->getNumOperands() - 1); 1727 if (!CtrlOp.isImm()) 1728 break; 1729 1730 unsigned ElSize; 1731 switch (MI->getOpcode()) { 1732 default: llvm_unreachable("Invalid opcode"); 1733 case X86::VPERMIL2PSrm: case X86::VPERMIL2PSYrm: ElSize = 32; break; 1734 case X86::VPERMIL2PDrm: case X86::VPERMIL2PDYrm: ElSize = 64; break; 1735 } 1736 1737 const MachineOperand &MaskOp = MI->getOperand(6); 1738 if (auto *C = getConstantFromPool(*MI, MaskOp)) { 1739 SmallVector<int, 16> Mask; 1740 DecodeVPERMIL2PMask(C, (unsigned)CtrlOp.getImm(), ElSize, Mask); 1741 if (!Mask.empty()) 1742 OutStreamer->AddComment(getShuffleComment(MI, 1, 2, Mask), 1743 !EnablePrintSchedInfo); 1744 } 1745 break; 1746 } 1747 1748 case X86::VPPERMrrm: { 1749 if (!OutStreamer->isVerboseAsm()) 1750 break; 1751 assert(MI->getNumOperands() >= 7 && 1752 "We should always have at least 7 operands!"); 1753 1754 const MachineOperand &MaskOp = MI->getOperand(6); 1755 if (auto *C = getConstantFromPool(*MI, MaskOp)) { 1756 SmallVector<int, 16> Mask; 1757 DecodeVPPERMMask(C, Mask); 1758 if (!Mask.empty()) 1759 OutStreamer->AddComment(getShuffleComment(MI, 1, 2, Mask), 1760 !EnablePrintSchedInfo); 1761 } 1762 break; 1763 } 1764 1765 #define MOV_CASE(Prefix, Suffix) \ 1766 case X86::Prefix##MOVAPD##Suffix##rm: \ 1767 case X86::Prefix##MOVAPS##Suffix##rm: \ 1768 case X86::Prefix##MOVUPD##Suffix##rm: \ 1769 case X86::Prefix##MOVUPS##Suffix##rm: \ 1770 case X86::Prefix##MOVDQA##Suffix##rm: \ 1771 case X86::Prefix##MOVDQU##Suffix##rm: 1772 1773 #define MOV_AVX512_CASE(Suffix) \ 1774 case X86::VMOVDQA64##Suffix##rm: \ 1775 case X86::VMOVDQA32##Suffix##rm: \ 1776 case X86::VMOVDQU64##Suffix##rm: \ 1777 case X86::VMOVDQU32##Suffix##rm: \ 1778 case X86::VMOVDQU16##Suffix##rm: \ 1779 case X86::VMOVDQU8##Suffix##rm: \ 1780 case X86::VMOVAPS##Suffix##rm: \ 1781 case X86::VMOVAPD##Suffix##rm: \ 1782 case X86::VMOVUPS##Suffix##rm: \ 1783 case X86::VMOVUPD##Suffix##rm: 1784 1785 #define CASE_ALL_MOV_RM() \ 1786 MOV_CASE(, ) /* SSE */ \ 1787 MOV_CASE(V, ) /* AVX-128 */ \ 1788 MOV_CASE(V, Y) /* AVX-256 */ \ 1789 MOV_AVX512_CASE(Z) \ 1790 MOV_AVX512_CASE(Z256) \ 1791 MOV_AVX512_CASE(Z128) 1792 1793 // For loads from a constant pool to a vector register, print the constant 1794 // loaded. 1795 CASE_ALL_MOV_RM() 1796 case X86::VBROADCASTF128: 1797 case X86::VBROADCASTI128: 1798 case X86::VBROADCASTF32X4Z256rm: 1799 case X86::VBROADCASTF32X4rm: 1800 case X86::VBROADCASTF32X8rm: 1801 case X86::VBROADCASTF64X2Z128rm: 1802 case X86::VBROADCASTF64X2rm: 1803 case X86::VBROADCASTF64X4rm: 1804 case X86::VBROADCASTI32X4Z256rm: 1805 case X86::VBROADCASTI32X4rm: 1806 case X86::VBROADCASTI32X8rm: 1807 case X86::VBROADCASTI64X2Z128rm: 1808 case X86::VBROADCASTI64X2rm: 1809 case X86::VBROADCASTI64X4rm: 1810 if (!OutStreamer->isVerboseAsm()) 1811 break; 1812 if (MI->getNumOperands() <= 4) 1813 break; 1814 if (auto *C = getConstantFromPool(*MI, MI->getOperand(4))) { 1815 int NumLanes = 1; 1816 // Override NumLanes for the broadcast instructions. 1817 switch (MI->getOpcode()) { 1818 case X86::VBROADCASTF128: NumLanes = 2; break; 1819 case X86::VBROADCASTI128: NumLanes = 2; break; 1820 case X86::VBROADCASTF32X4Z256rm: NumLanes = 2; break; 1821 case X86::VBROADCASTF32X4rm: NumLanes = 4; break; 1822 case X86::VBROADCASTF32X8rm: NumLanes = 2; break; 1823 case X86::VBROADCASTF64X2Z128rm: NumLanes = 2; break; 1824 case X86::VBROADCASTF64X2rm: NumLanes = 4; break; 1825 case X86::VBROADCASTF64X4rm: NumLanes = 2; break; 1826 case X86::VBROADCASTI32X4Z256rm: NumLanes = 2; break; 1827 case X86::VBROADCASTI32X4rm: NumLanes = 4; break; 1828 case X86::VBROADCASTI32X8rm: NumLanes = 2; break; 1829 case X86::VBROADCASTI64X2Z128rm: NumLanes = 2; break; 1830 case X86::VBROADCASTI64X2rm: NumLanes = 4; break; 1831 case X86::VBROADCASTI64X4rm: NumLanes = 2; break; 1832 } 1833 1834 std::string Comment; 1835 raw_string_ostream CS(Comment); 1836 const MachineOperand &DstOp = MI->getOperand(0); 1837 CS << X86ATTInstPrinter::getRegisterName(DstOp.getReg()) << " = "; 1838 if (auto *CDS = dyn_cast<ConstantDataSequential>(C)) { 1839 CS << "["; 1840 for (int l = 0; l != NumLanes; ++l) { 1841 for (int i = 0, NumElements = CDS->getNumElements(); i < NumElements; ++i) { 1842 if (i != 0 || l != 0) 1843 CS << ","; 1844 if (CDS->getElementType()->isIntegerTy()) 1845 CS << CDS->getElementAsInteger(i); 1846 else if (CDS->getElementType()->isFloatTy()) 1847 CS << CDS->getElementAsFloat(i); 1848 else if (CDS->getElementType()->isDoubleTy()) 1849 CS << CDS->getElementAsDouble(i); 1850 else 1851 CS << "?"; 1852 } 1853 } 1854 CS << "]"; 1855 OutStreamer->AddComment(CS.str(), !EnablePrintSchedInfo); 1856 } else if (auto *CV = dyn_cast<ConstantVector>(C)) { 1857 CS << "<"; 1858 for (int l = 0; l != NumLanes; ++l) { 1859 for (int i = 0, NumOperands = CV->getNumOperands(); i < NumOperands; ++i) { 1860 if (i != 0 || l != 0) 1861 CS << ","; 1862 printConstant(CV->getOperand(i), CS); 1863 } 1864 } 1865 CS << ">"; 1866 OutStreamer->AddComment(CS.str(), !EnablePrintSchedInfo); 1867 } 1868 } 1869 break; 1870 case X86::VBROADCASTSSrm: 1871 case X86::VBROADCASTSSYrm: 1872 case X86::VBROADCASTSSZ128m: 1873 case X86::VBROADCASTSSZ256m: 1874 case X86::VBROADCASTSSZm: 1875 case X86::VBROADCASTSDYrm: 1876 case X86::VBROADCASTSDZ256m: 1877 case X86::VBROADCASTSDZm: 1878 case X86::VPBROADCASTBrm: 1879 case X86::VPBROADCASTBYrm: 1880 case X86::VPBROADCASTBZ128m: 1881 case X86::VPBROADCASTBZ256m: 1882 case X86::VPBROADCASTBZm: 1883 case X86::VPBROADCASTDrm: 1884 case X86::VPBROADCASTDYrm: 1885 case X86::VPBROADCASTDZ128m: 1886 case X86::VPBROADCASTDZ256m: 1887 case X86::VPBROADCASTDZm: 1888 case X86::VPBROADCASTQrm: 1889 case X86::VPBROADCASTQYrm: 1890 case X86::VPBROADCASTQZ128m: 1891 case X86::VPBROADCASTQZ256m: 1892 case X86::VPBROADCASTQZm: 1893 case X86::VPBROADCASTWrm: 1894 case X86::VPBROADCASTWYrm: 1895 case X86::VPBROADCASTWZ128m: 1896 case X86::VPBROADCASTWZ256m: 1897 case X86::VPBROADCASTWZm: 1898 if (!OutStreamer->isVerboseAsm()) 1899 break; 1900 if (MI->getNumOperands() <= 4) 1901 break; 1902 if (auto *C = getConstantFromPool(*MI, MI->getOperand(4))) { 1903 int NumElts; 1904 switch (MI->getOpcode()) { 1905 default: llvm_unreachable("Invalid opcode"); 1906 case X86::VBROADCASTSSrm: NumElts = 4; break; 1907 case X86::VBROADCASTSSYrm: NumElts = 8; break; 1908 case X86::VBROADCASTSSZ128m: NumElts = 4; break; 1909 case X86::VBROADCASTSSZ256m: NumElts = 8; break; 1910 case X86::VBROADCASTSSZm: NumElts = 16; break; 1911 case X86::VBROADCASTSDYrm: NumElts = 4; break; 1912 case X86::VBROADCASTSDZ256m: NumElts = 4; break; 1913 case X86::VBROADCASTSDZm: NumElts = 8; break; 1914 case X86::VPBROADCASTBrm: NumElts = 16; break; 1915 case X86::VPBROADCASTBYrm: NumElts = 32; break; 1916 case X86::VPBROADCASTBZ128m: NumElts = 16; break; 1917 case X86::VPBROADCASTBZ256m: NumElts = 32; break; 1918 case X86::VPBROADCASTBZm: NumElts = 64; break; 1919 case X86::VPBROADCASTDrm: NumElts = 4; break; 1920 case X86::VPBROADCASTDYrm: NumElts = 8; break; 1921 case X86::VPBROADCASTDZ128m: NumElts = 4; break; 1922 case X86::VPBROADCASTDZ256m: NumElts = 8; break; 1923 case X86::VPBROADCASTDZm: NumElts = 16; break; 1924 case X86::VPBROADCASTQrm: NumElts = 2; break; 1925 case X86::VPBROADCASTQYrm: NumElts = 4; break; 1926 case X86::VPBROADCASTQZ128m: NumElts = 2; break; 1927 case X86::VPBROADCASTQZ256m: NumElts = 4; break; 1928 case X86::VPBROADCASTQZm: NumElts = 8; break; 1929 case X86::VPBROADCASTWrm: NumElts = 8; break; 1930 case X86::VPBROADCASTWYrm: NumElts = 16; break; 1931 case X86::VPBROADCASTWZ128m: NumElts = 8; break; 1932 case X86::VPBROADCASTWZ256m: NumElts = 16; break; 1933 case X86::VPBROADCASTWZm: NumElts = 32; break; 1934 } 1935 1936 std::string Comment; 1937 raw_string_ostream CS(Comment); 1938 const MachineOperand &DstOp = MI->getOperand(0); 1939 CS << X86ATTInstPrinter::getRegisterName(DstOp.getReg()) << " = "; 1940 CS << "["; 1941 for (int i = 0; i != NumElts; ++i) { 1942 if (i != 0) 1943 CS << ","; 1944 printConstant(C, CS); 1945 } 1946 CS << "]"; 1947 OutStreamer->AddComment(CS.str(), !EnablePrintSchedInfo); 1948 } 1949 } 1950 1951 MCInst TmpInst; 1952 MCInstLowering.Lower(MI, TmpInst); 1953 1954 // Stackmap shadows cannot include branch targets, so we can count the bytes 1955 // in a call towards the shadow, but must ensure that the no thread returns 1956 // in to the stackmap shadow. The only way to achieve this is if the call 1957 // is at the end of the shadow. 1958 if (MI->isCall()) { 1959 // Count then size of the call towards the shadow 1960 SMShadowTracker.count(TmpInst, getSubtargetInfo(), CodeEmitter.get()); 1961 // Then flush the shadow so that we fill with nops before the call, not 1962 // after it. 1963 SMShadowTracker.emitShadowPadding(*OutStreamer, getSubtargetInfo()); 1964 // Then emit the call 1965 OutStreamer->EmitInstruction(TmpInst, getSubtargetInfo()); 1966 return; 1967 } 1968 1969 EmitAndCountInstruction(TmpInst); 1970 } 1971