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