1 //===- AArch64AsmPrinter.cpp - AArch64 LLVM assembly writer ---------------===//
2 //
3 // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions.
4 // See https://llvm.org/LICENSE.txt for license information.
5 // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
6 //
7 //===----------------------------------------------------------------------===//
8 //
9 // This file contains a printer that converts from our internal representation
10 // of machine-dependent LLVM code to the AArch64 assembly language.
11 //
12 //===----------------------------------------------------------------------===//
13 
14 #include "AArch64.h"
15 #include "AArch64MCInstLower.h"
16 #include "AArch64MachineFunctionInfo.h"
17 #include "AArch64RegisterInfo.h"
18 #include "AArch64Subtarget.h"
19 #include "AArch64TargetObjectFile.h"
20 #include "MCTargetDesc/AArch64AddressingModes.h"
21 #include "MCTargetDesc/AArch64InstPrinter.h"
22 #include "MCTargetDesc/AArch64MCExpr.h"
23 #include "MCTargetDesc/AArch64MCTargetDesc.h"
24 #include "MCTargetDesc/AArch64TargetStreamer.h"
25 #include "TargetInfo/AArch64TargetInfo.h"
26 #include "Utils/AArch64BaseInfo.h"
27 #include "llvm/ADT/SmallString.h"
28 #include "llvm/ADT/SmallVector.h"
29 #include "llvm/ADT/StringRef.h"
30 #include "llvm/ADT/Triple.h"
31 #include "llvm/ADT/Twine.h"
32 #include "llvm/BinaryFormat/COFF.h"
33 #include "llvm/BinaryFormat/ELF.h"
34 #include "llvm/CodeGen/AsmPrinter.h"
35 #include "llvm/CodeGen/FaultMaps.h"
36 #include "llvm/CodeGen/MachineBasicBlock.h"
37 #include "llvm/CodeGen/MachineFunction.h"
38 #include "llvm/CodeGen/MachineInstr.h"
39 #include "llvm/CodeGen/MachineJumpTableInfo.h"
40 #include "llvm/CodeGen/MachineModuleInfoImpls.h"
41 #include "llvm/CodeGen/MachineOperand.h"
42 #include "llvm/CodeGen/StackMaps.h"
43 #include "llvm/CodeGen/TargetRegisterInfo.h"
44 #include "llvm/IR/DataLayout.h"
45 #include "llvm/IR/DebugInfoMetadata.h"
46 #include "llvm/MC/MCAsmInfo.h"
47 #include "llvm/MC/MCContext.h"
48 #include "llvm/MC/MCInst.h"
49 #include "llvm/MC/MCInstBuilder.h"
50 #include "llvm/MC/MCSectionELF.h"
51 #include "llvm/MC/MCStreamer.h"
52 #include "llvm/MC/MCSymbol.h"
53 #include "llvm/Support/Casting.h"
54 #include "llvm/Support/ErrorHandling.h"
55 #include "llvm/Support/TargetRegistry.h"
56 #include "llvm/Support/raw_ostream.h"
57 #include "llvm/Target/TargetMachine.h"
58 #include "llvm/Transforms/Instrumentation/HWAddressSanitizer.h"
59 #include <algorithm>
60 #include <cassert>
61 #include <cstdint>
62 #include <map>
63 #include <memory>
64 
65 using namespace llvm;
66 
67 #define DEBUG_TYPE "asm-printer"
68 
69 namespace {
70 
71 class AArch64AsmPrinter : public AsmPrinter {
72   AArch64MCInstLower MCInstLowering;
73   StackMaps SM;
74   FaultMaps FM;
75   const AArch64Subtarget *STI;
76 
77 public:
78   AArch64AsmPrinter(TargetMachine &TM, std::unique_ptr<MCStreamer> Streamer)
79       : AsmPrinter(TM, std::move(Streamer)), MCInstLowering(OutContext, *this),
80         SM(*this), FM(*this) {}
81 
82   StringRef getPassName() const override { return "AArch64 Assembly Printer"; }
83 
84   /// Wrapper for MCInstLowering.lowerOperand() for the
85   /// tblgen'erated pseudo lowering.
86   bool lowerOperand(const MachineOperand &MO, MCOperand &MCOp) const {
87     return MCInstLowering.lowerOperand(MO, MCOp);
88   }
89 
90   void emitStartOfAsmFile(Module &M) override;
91   void emitJumpTableInfo() override;
92 
93   void emitFunctionEntryLabel() override;
94 
95   void LowerJumpTableDest(MCStreamer &OutStreamer, const MachineInstr &MI);
96 
97   void LowerSTACKMAP(MCStreamer &OutStreamer, StackMaps &SM,
98                      const MachineInstr &MI);
99   void LowerPATCHPOINT(MCStreamer &OutStreamer, StackMaps &SM,
100                        const MachineInstr &MI);
101   void LowerSTATEPOINT(MCStreamer &OutStreamer, StackMaps &SM,
102                        const MachineInstr &MI);
103   void LowerFAULTING_OP(const MachineInstr &MI);
104 
105   void LowerPATCHABLE_FUNCTION_ENTER(const MachineInstr &MI);
106   void LowerPATCHABLE_FUNCTION_EXIT(const MachineInstr &MI);
107   void LowerPATCHABLE_TAIL_CALL(const MachineInstr &MI);
108 
109   typedef std::tuple<unsigned, bool, uint32_t> HwasanMemaccessTuple;
110   std::map<HwasanMemaccessTuple, MCSymbol *> HwasanMemaccessSymbols;
111   void LowerHWASAN_CHECK_MEMACCESS(const MachineInstr &MI);
112   void EmitHwasanMemaccessSymbols(Module &M);
113 
114   void EmitSled(const MachineInstr &MI, SledKind Kind);
115 
116   /// tblgen'erated driver function for lowering simple MI->MC
117   /// pseudo instructions.
118   bool emitPseudoExpansionLowering(MCStreamer &OutStreamer,
119                                    const MachineInstr *MI);
120 
121   void emitInstruction(const MachineInstr *MI) override;
122 
123   void emitFunctionHeaderComment() override;
124 
125   void getAnalysisUsage(AnalysisUsage &AU) const override {
126     AsmPrinter::getAnalysisUsage(AU);
127     AU.setPreservesAll();
128   }
129 
130   bool runOnMachineFunction(MachineFunction &MF) override {
131     AArch64FI = MF.getInfo<AArch64FunctionInfo>();
132     STI = static_cast<const AArch64Subtarget*>(&MF.getSubtarget());
133 
134     SetupMachineFunction(MF);
135 
136     if (STI->isTargetCOFF()) {
137       bool Internal = MF.getFunction().hasInternalLinkage();
138       COFF::SymbolStorageClass Scl = Internal ? COFF::IMAGE_SYM_CLASS_STATIC
139                                               : COFF::IMAGE_SYM_CLASS_EXTERNAL;
140       int Type =
141         COFF::IMAGE_SYM_DTYPE_FUNCTION << COFF::SCT_COMPLEX_TYPE_SHIFT;
142 
143       OutStreamer->BeginCOFFSymbolDef(CurrentFnSym);
144       OutStreamer->EmitCOFFSymbolStorageClass(Scl);
145       OutStreamer->EmitCOFFSymbolType(Type);
146       OutStreamer->EndCOFFSymbolDef();
147     }
148 
149     // Emit the rest of the function body.
150     emitFunctionBody();
151 
152     // Emit the XRay table for this function.
153     emitXRayTable();
154 
155     // We didn't modify anything.
156     return false;
157   }
158 
159 private:
160   void printOperand(const MachineInstr *MI, unsigned OpNum, raw_ostream &O);
161   bool printAsmMRegister(const MachineOperand &MO, char Mode, raw_ostream &O);
162   bool printAsmRegInClass(const MachineOperand &MO,
163                           const TargetRegisterClass *RC, unsigned AltName,
164                           raw_ostream &O);
165 
166   bool PrintAsmOperand(const MachineInstr *MI, unsigned OpNum,
167                        const char *ExtraCode, raw_ostream &O) override;
168   bool PrintAsmMemoryOperand(const MachineInstr *MI, unsigned OpNum,
169                              const char *ExtraCode, raw_ostream &O) override;
170 
171   void PrintDebugValueComment(const MachineInstr *MI, raw_ostream &OS);
172 
173   void emitFunctionBodyEnd() override;
174 
175   MCSymbol *GetCPISymbol(unsigned CPID) const override;
176   void emitEndOfAsmFile(Module &M) override;
177 
178   AArch64FunctionInfo *AArch64FI = nullptr;
179 
180   /// Emit the LOHs contained in AArch64FI.
181   void EmitLOHs();
182 
183   /// Emit instruction to set float register to zero.
184   void EmitFMov0(const MachineInstr &MI);
185 
186   using MInstToMCSymbol = std::map<const MachineInstr *, MCSymbol *>;
187 
188   MInstToMCSymbol LOHInstToLabel;
189 };
190 
191 } // end anonymous namespace
192 
193 void AArch64AsmPrinter::emitStartOfAsmFile(Module &M) {
194   const Triple &TT = TM.getTargetTriple();
195 
196   if (TT.isOSBinFormatCOFF()) {
197     // Emit an absolute @feat.00 symbol.  This appears to be some kind of
198     // compiler features bitfield read by link.exe.
199     MCSymbol *S = MMI->getContext().getOrCreateSymbol(StringRef("@feat.00"));
200     OutStreamer->BeginCOFFSymbolDef(S);
201     OutStreamer->EmitCOFFSymbolStorageClass(COFF::IMAGE_SYM_CLASS_STATIC);
202     OutStreamer->EmitCOFFSymbolType(COFF::IMAGE_SYM_DTYPE_NULL);
203     OutStreamer->EndCOFFSymbolDef();
204     int64_t Feat00Flags = 0;
205 
206     if (M.getModuleFlag("cfguard")) {
207       Feat00Flags |= 0x800; // Object is CFG-aware.
208     }
209 
210     if (M.getModuleFlag("ehcontguard")) {
211       Feat00Flags |= 0x4000; // Object also has EHCont.
212     }
213 
214     OutStreamer->emitSymbolAttribute(S, MCSA_Global);
215     OutStreamer->emitAssignment(
216         S, MCConstantExpr::create(Feat00Flags, MMI->getContext()));
217   }
218 
219   if (!TT.isOSBinFormatELF())
220     return;
221 
222   // Assemble feature flags that may require creation of a note section.
223   unsigned Flags = 0;
224   if (const auto *BTE = mdconst::extract_or_null<ConstantInt>(
225           M.getModuleFlag("branch-target-enforcement")))
226     if (BTE->getZExtValue())
227       Flags |= ELF::GNU_PROPERTY_AARCH64_FEATURE_1_BTI;
228 
229   if (const auto *Sign = mdconst::extract_or_null<ConstantInt>(
230           M.getModuleFlag("sign-return-address")))
231     if (Sign->getZExtValue())
232       Flags |= ELF::GNU_PROPERTY_AARCH64_FEATURE_1_PAC;
233 
234   if (Flags == 0)
235     return;
236 
237   // Emit a .note.gnu.property section with the flags.
238   if (auto *TS = static_cast<AArch64TargetStreamer *>(
239           OutStreamer->getTargetStreamer()))
240     TS->emitNoteSection(Flags);
241 }
242 
243 void AArch64AsmPrinter::emitFunctionHeaderComment() {
244   const AArch64FunctionInfo *FI = MF->getInfo<AArch64FunctionInfo>();
245   Optional<std::string> OutlinerString = FI->getOutliningStyle();
246   if (OutlinerString != None)
247     OutStreamer->GetCommentOS() << ' ' << OutlinerString;
248 }
249 
250 void AArch64AsmPrinter::LowerPATCHABLE_FUNCTION_ENTER(const MachineInstr &MI)
251 {
252   const Function &F = MF->getFunction();
253   if (F.hasFnAttribute("patchable-function-entry")) {
254     unsigned Num;
255     if (F.getFnAttribute("patchable-function-entry")
256             .getValueAsString()
257             .getAsInteger(10, Num))
258       return;
259     emitNops(Num);
260     return;
261   }
262 
263   EmitSled(MI, SledKind::FUNCTION_ENTER);
264 }
265 
266 void AArch64AsmPrinter::LowerPATCHABLE_FUNCTION_EXIT(const MachineInstr &MI)
267 {
268   EmitSled(MI, SledKind::FUNCTION_EXIT);
269 }
270 
271 void AArch64AsmPrinter::LowerPATCHABLE_TAIL_CALL(const MachineInstr &MI)
272 {
273   EmitSled(MI, SledKind::TAIL_CALL);
274 }
275 
276 void AArch64AsmPrinter::EmitSled(const MachineInstr &MI, SledKind Kind)
277 {
278   static const int8_t NoopsInSledCount = 7;
279   // We want to emit the following pattern:
280   //
281   // .Lxray_sled_N:
282   //   ALIGN
283   //   B #32
284   //   ; 7 NOP instructions (28 bytes)
285   // .tmpN
286   //
287   // We need the 28 bytes (7 instructions) because at runtime, we'd be patching
288   // over the full 32 bytes (8 instructions) with the following pattern:
289   //
290   //   STP X0, X30, [SP, #-16]! ; push X0 and the link register to the stack
291   //   LDR W0, #12 ; W0 := function ID
292   //   LDR X16,#12 ; X16 := addr of __xray_FunctionEntry or __xray_FunctionExit
293   //   BLR X16 ; call the tracing trampoline
294   //   ;DATA: 32 bits of function ID
295   //   ;DATA: lower 32 bits of the address of the trampoline
296   //   ;DATA: higher 32 bits of the address of the trampoline
297   //   LDP X0, X30, [SP], #16 ; pop X0 and the link register from the stack
298   //
299   OutStreamer->emitCodeAlignment(4);
300   auto CurSled = OutContext.createTempSymbol("xray_sled_", true);
301   OutStreamer->emitLabel(CurSled);
302   auto Target = OutContext.createTempSymbol();
303 
304   // Emit "B #32" instruction, which jumps over the next 28 bytes.
305   // The operand has to be the number of 4-byte instructions to jump over,
306   // including the current instruction.
307   EmitToStreamer(*OutStreamer, MCInstBuilder(AArch64::B).addImm(8));
308 
309   for (int8_t I = 0; I < NoopsInSledCount; I++)
310     EmitToStreamer(*OutStreamer, MCInstBuilder(AArch64::HINT).addImm(0));
311 
312   OutStreamer->emitLabel(Target);
313   recordSled(CurSled, MI, Kind, 2);
314 }
315 
316 void AArch64AsmPrinter::LowerHWASAN_CHECK_MEMACCESS(const MachineInstr &MI) {
317   Register Reg = MI.getOperand(0).getReg();
318   bool IsShort =
319       MI.getOpcode() == AArch64::HWASAN_CHECK_MEMACCESS_SHORTGRANULES;
320   uint32_t AccessInfo = MI.getOperand(1).getImm();
321   MCSymbol *&Sym =
322       HwasanMemaccessSymbols[HwasanMemaccessTuple(Reg, IsShort, AccessInfo)];
323   if (!Sym) {
324     // FIXME: Make this work on non-ELF.
325     if (!TM.getTargetTriple().isOSBinFormatELF())
326       report_fatal_error("llvm.hwasan.check.memaccess only supported on ELF");
327 
328     std::string SymName = "__hwasan_check_x" + utostr(Reg - AArch64::X0) + "_" +
329                           utostr(AccessInfo);
330     if (IsShort)
331       SymName += "_short_v2";
332     Sym = OutContext.getOrCreateSymbol(SymName);
333   }
334 
335   EmitToStreamer(*OutStreamer,
336                  MCInstBuilder(AArch64::BL)
337                      .addExpr(MCSymbolRefExpr::create(Sym, OutContext)));
338 }
339 
340 void AArch64AsmPrinter::EmitHwasanMemaccessSymbols(Module &M) {
341   if (HwasanMemaccessSymbols.empty())
342     return;
343 
344   const Triple &TT = TM.getTargetTriple();
345   assert(TT.isOSBinFormatELF());
346   std::unique_ptr<MCSubtargetInfo> STI(
347       TM.getTarget().createMCSubtargetInfo(TT.str(), "", ""));
348   assert(STI && "Unable to create subtarget info");
349 
350   MCSymbol *HwasanTagMismatchV1Sym =
351       OutContext.getOrCreateSymbol("__hwasan_tag_mismatch");
352   MCSymbol *HwasanTagMismatchV2Sym =
353       OutContext.getOrCreateSymbol("__hwasan_tag_mismatch_v2");
354 
355   const MCSymbolRefExpr *HwasanTagMismatchV1Ref =
356       MCSymbolRefExpr::create(HwasanTagMismatchV1Sym, OutContext);
357   const MCSymbolRefExpr *HwasanTagMismatchV2Ref =
358       MCSymbolRefExpr::create(HwasanTagMismatchV2Sym, OutContext);
359 
360   for (auto &P : HwasanMemaccessSymbols) {
361     unsigned Reg = std::get<0>(P.first);
362     bool IsShort = std::get<1>(P.first);
363     uint32_t AccessInfo = std::get<2>(P.first);
364     const MCSymbolRefExpr *HwasanTagMismatchRef =
365         IsShort ? HwasanTagMismatchV2Ref : HwasanTagMismatchV1Ref;
366     MCSymbol *Sym = P.second;
367 
368     bool HasMatchAllTag =
369         (AccessInfo >> HWASanAccessInfo::HasMatchAllShift) & 1;
370     uint8_t MatchAllTag =
371         (AccessInfo >> HWASanAccessInfo::MatchAllShift) & 0xff;
372     unsigned Size =
373         1 << ((AccessInfo >> HWASanAccessInfo::AccessSizeShift) & 0xf);
374     bool CompileKernel =
375         (AccessInfo >> HWASanAccessInfo::CompileKernelShift) & 1;
376 
377     OutStreamer->SwitchSection(OutContext.getELFSection(
378         ".text.hot", ELF::SHT_PROGBITS,
379         ELF::SHF_EXECINSTR | ELF::SHF_ALLOC | ELF::SHF_GROUP, 0,
380         Sym->getName(), /*IsComdat=*/true));
381 
382     OutStreamer->emitSymbolAttribute(Sym, MCSA_ELF_TypeFunction);
383     OutStreamer->emitSymbolAttribute(Sym, MCSA_Weak);
384     OutStreamer->emitSymbolAttribute(Sym, MCSA_Hidden);
385     OutStreamer->emitLabel(Sym);
386 
387     OutStreamer->emitInstruction(MCInstBuilder(AArch64::SBFMXri)
388                                      .addReg(AArch64::X16)
389                                      .addReg(Reg)
390                                      .addImm(4)
391                                      .addImm(55),
392                                  *STI);
393     OutStreamer->emitInstruction(
394         MCInstBuilder(AArch64::LDRBBroX)
395             .addReg(AArch64::W16)
396             .addReg(IsShort ? AArch64::X20 : AArch64::X9)
397             .addReg(AArch64::X16)
398             .addImm(0)
399             .addImm(0),
400         *STI);
401     OutStreamer->emitInstruction(
402         MCInstBuilder(AArch64::SUBSXrs)
403             .addReg(AArch64::XZR)
404             .addReg(AArch64::X16)
405             .addReg(Reg)
406             .addImm(AArch64_AM::getShifterImm(AArch64_AM::LSR, 56)),
407         *STI);
408     MCSymbol *HandleMismatchOrPartialSym = OutContext.createTempSymbol();
409     OutStreamer->emitInstruction(
410         MCInstBuilder(AArch64::Bcc)
411             .addImm(AArch64CC::NE)
412             .addExpr(MCSymbolRefExpr::create(HandleMismatchOrPartialSym,
413                                              OutContext)),
414         *STI);
415     MCSymbol *ReturnSym = OutContext.createTempSymbol();
416     OutStreamer->emitLabel(ReturnSym);
417     OutStreamer->emitInstruction(
418         MCInstBuilder(AArch64::RET).addReg(AArch64::LR), *STI);
419     OutStreamer->emitLabel(HandleMismatchOrPartialSym);
420 
421     if (HasMatchAllTag) {
422       OutStreamer->emitInstruction(MCInstBuilder(AArch64::UBFMXri)
423                                        .addReg(AArch64::X16)
424                                        .addReg(Reg)
425                                        .addImm(56)
426                                        .addImm(63),
427                                    *STI);
428       OutStreamer->emitInstruction(MCInstBuilder(AArch64::SUBSXri)
429                                        .addReg(AArch64::XZR)
430                                        .addReg(AArch64::X16)
431                                        .addImm(MatchAllTag)
432                                        .addImm(0),
433                                    *STI);
434       OutStreamer->emitInstruction(
435           MCInstBuilder(AArch64::Bcc)
436               .addImm(AArch64CC::EQ)
437               .addExpr(MCSymbolRefExpr::create(ReturnSym, OutContext)),
438           *STI);
439     }
440 
441     if (IsShort) {
442       OutStreamer->emitInstruction(MCInstBuilder(AArch64::SUBSWri)
443                                        .addReg(AArch64::WZR)
444                                        .addReg(AArch64::W16)
445                                        .addImm(15)
446                                        .addImm(0),
447                                    *STI);
448       MCSymbol *HandleMismatchSym = OutContext.createTempSymbol();
449       OutStreamer->emitInstruction(
450           MCInstBuilder(AArch64::Bcc)
451               .addImm(AArch64CC::HI)
452               .addExpr(MCSymbolRefExpr::create(HandleMismatchSym, OutContext)),
453           *STI);
454 
455       OutStreamer->emitInstruction(
456           MCInstBuilder(AArch64::ANDXri)
457               .addReg(AArch64::X17)
458               .addReg(Reg)
459               .addImm(AArch64_AM::encodeLogicalImmediate(0xf, 64)),
460           *STI);
461       if (Size != 1)
462         OutStreamer->emitInstruction(MCInstBuilder(AArch64::ADDXri)
463                                          .addReg(AArch64::X17)
464                                          .addReg(AArch64::X17)
465                                          .addImm(Size - 1)
466                                          .addImm(0),
467                                      *STI);
468       OutStreamer->emitInstruction(MCInstBuilder(AArch64::SUBSWrs)
469                                        .addReg(AArch64::WZR)
470                                        .addReg(AArch64::W16)
471                                        .addReg(AArch64::W17)
472                                        .addImm(0),
473                                    *STI);
474       OutStreamer->emitInstruction(
475           MCInstBuilder(AArch64::Bcc)
476               .addImm(AArch64CC::LS)
477               .addExpr(MCSymbolRefExpr::create(HandleMismatchSym, OutContext)),
478           *STI);
479 
480       OutStreamer->emitInstruction(
481           MCInstBuilder(AArch64::ORRXri)
482               .addReg(AArch64::X16)
483               .addReg(Reg)
484               .addImm(AArch64_AM::encodeLogicalImmediate(0xf, 64)),
485           *STI);
486       OutStreamer->emitInstruction(MCInstBuilder(AArch64::LDRBBui)
487                                        .addReg(AArch64::W16)
488                                        .addReg(AArch64::X16)
489                                        .addImm(0),
490                                    *STI);
491       OutStreamer->emitInstruction(
492           MCInstBuilder(AArch64::SUBSXrs)
493               .addReg(AArch64::XZR)
494               .addReg(AArch64::X16)
495               .addReg(Reg)
496               .addImm(AArch64_AM::getShifterImm(AArch64_AM::LSR, 56)),
497           *STI);
498       OutStreamer->emitInstruction(
499           MCInstBuilder(AArch64::Bcc)
500               .addImm(AArch64CC::EQ)
501               .addExpr(MCSymbolRefExpr::create(ReturnSym, OutContext)),
502           *STI);
503 
504       OutStreamer->emitLabel(HandleMismatchSym);
505     }
506 
507     OutStreamer->emitInstruction(MCInstBuilder(AArch64::STPXpre)
508                                      .addReg(AArch64::SP)
509                                      .addReg(AArch64::X0)
510                                      .addReg(AArch64::X1)
511                                      .addReg(AArch64::SP)
512                                      .addImm(-32),
513                                  *STI);
514     OutStreamer->emitInstruction(MCInstBuilder(AArch64::STPXi)
515                                      .addReg(AArch64::FP)
516                                      .addReg(AArch64::LR)
517                                      .addReg(AArch64::SP)
518                                      .addImm(29),
519                                  *STI);
520 
521     if (Reg != AArch64::X0)
522       OutStreamer->emitInstruction(MCInstBuilder(AArch64::ORRXrs)
523                                        .addReg(AArch64::X0)
524                                        .addReg(AArch64::XZR)
525                                        .addReg(Reg)
526                                        .addImm(0),
527                                    *STI);
528     OutStreamer->emitInstruction(
529         MCInstBuilder(AArch64::MOVZXi)
530             .addReg(AArch64::X1)
531             .addImm(AccessInfo & HWASanAccessInfo::RuntimeMask)
532             .addImm(0),
533         *STI);
534 
535     if (CompileKernel) {
536       // The Linux kernel's dynamic loader doesn't support GOT relative
537       // relocations, but it doesn't support late binding either, so just call
538       // the function directly.
539       OutStreamer->emitInstruction(
540           MCInstBuilder(AArch64::B).addExpr(HwasanTagMismatchRef), *STI);
541     } else {
542       // Intentionally load the GOT entry and branch to it, rather than possibly
543       // late binding the function, which may clobber the registers before we
544       // have a chance to save them.
545       OutStreamer->emitInstruction(
546           MCInstBuilder(AArch64::ADRP)
547               .addReg(AArch64::X16)
548               .addExpr(AArch64MCExpr::create(
549                   HwasanTagMismatchRef, AArch64MCExpr::VariantKind::VK_GOT_PAGE,
550                   OutContext)),
551           *STI);
552       OutStreamer->emitInstruction(
553           MCInstBuilder(AArch64::LDRXui)
554               .addReg(AArch64::X16)
555               .addReg(AArch64::X16)
556               .addExpr(AArch64MCExpr::create(
557                   HwasanTagMismatchRef, AArch64MCExpr::VariantKind::VK_GOT_LO12,
558                   OutContext)),
559           *STI);
560       OutStreamer->emitInstruction(
561           MCInstBuilder(AArch64::BR).addReg(AArch64::X16), *STI);
562     }
563   }
564 }
565 
566 void AArch64AsmPrinter::emitEndOfAsmFile(Module &M) {
567   EmitHwasanMemaccessSymbols(M);
568 
569   const Triple &TT = TM.getTargetTriple();
570   if (TT.isOSBinFormatMachO()) {
571     // Funny Darwin hack: This flag tells the linker that no global symbols
572     // contain code that falls through to other global symbols (e.g. the obvious
573     // implementation of multiple entry points).  If this doesn't occur, the
574     // linker can safely perform dead code stripping.  Since LLVM never
575     // generates code that does this, it is always safe to set.
576     OutStreamer->emitAssemblerFlag(MCAF_SubsectionsViaSymbols);
577   }
578 
579   // Emit stack and fault map information.
580   emitStackMaps(SM);
581   FM.serializeToFaultMapSection();
582 
583 }
584 
585 void AArch64AsmPrinter::EmitLOHs() {
586   SmallVector<MCSymbol *, 3> MCArgs;
587 
588   for (const auto &D : AArch64FI->getLOHContainer()) {
589     for (const MachineInstr *MI : D.getArgs()) {
590       MInstToMCSymbol::iterator LabelIt = LOHInstToLabel.find(MI);
591       assert(LabelIt != LOHInstToLabel.end() &&
592              "Label hasn't been inserted for LOH related instruction");
593       MCArgs.push_back(LabelIt->second);
594     }
595     OutStreamer->emitLOHDirective(D.getKind(), MCArgs);
596     MCArgs.clear();
597   }
598 }
599 
600 void AArch64AsmPrinter::emitFunctionBodyEnd() {
601   if (!AArch64FI->getLOHRelated().empty())
602     EmitLOHs();
603 }
604 
605 /// GetCPISymbol - Return the symbol for the specified constant pool entry.
606 MCSymbol *AArch64AsmPrinter::GetCPISymbol(unsigned CPID) const {
607   // Darwin uses a linker-private symbol name for constant-pools (to
608   // avoid addends on the relocation?), ELF has no such concept and
609   // uses a normal private symbol.
610   if (!getDataLayout().getLinkerPrivateGlobalPrefix().empty())
611     return OutContext.getOrCreateSymbol(
612         Twine(getDataLayout().getLinkerPrivateGlobalPrefix()) + "CPI" +
613         Twine(getFunctionNumber()) + "_" + Twine(CPID));
614 
615   return AsmPrinter::GetCPISymbol(CPID);
616 }
617 
618 void AArch64AsmPrinter::printOperand(const MachineInstr *MI, unsigned OpNum,
619                                      raw_ostream &O) {
620   const MachineOperand &MO = MI->getOperand(OpNum);
621   switch (MO.getType()) {
622   default:
623     llvm_unreachable("<unknown operand type>");
624   case MachineOperand::MO_Register: {
625     Register Reg = MO.getReg();
626     assert(Register::isPhysicalRegister(Reg));
627     assert(!MO.getSubReg() && "Subregs should be eliminated!");
628     O << AArch64InstPrinter::getRegisterName(Reg);
629     break;
630   }
631   case MachineOperand::MO_Immediate: {
632     O << MO.getImm();
633     break;
634   }
635   case MachineOperand::MO_GlobalAddress: {
636     PrintSymbolOperand(MO, O);
637     break;
638   }
639   case MachineOperand::MO_BlockAddress: {
640     MCSymbol *Sym = GetBlockAddressSymbol(MO.getBlockAddress());
641     Sym->print(O, MAI);
642     break;
643   }
644   }
645 }
646 
647 bool AArch64AsmPrinter::printAsmMRegister(const MachineOperand &MO, char Mode,
648                                           raw_ostream &O) {
649   Register Reg = MO.getReg();
650   switch (Mode) {
651   default:
652     return true; // Unknown mode.
653   case 'w':
654     Reg = getWRegFromXReg(Reg);
655     break;
656   case 'x':
657     Reg = getXRegFromWReg(Reg);
658     break;
659   }
660 
661   O << AArch64InstPrinter::getRegisterName(Reg);
662   return false;
663 }
664 
665 // Prints the register in MO using class RC using the offset in the
666 // new register class. This should not be used for cross class
667 // printing.
668 bool AArch64AsmPrinter::printAsmRegInClass(const MachineOperand &MO,
669                                            const TargetRegisterClass *RC,
670                                            unsigned AltName, raw_ostream &O) {
671   assert(MO.isReg() && "Should only get here with a register!");
672   const TargetRegisterInfo *RI = STI->getRegisterInfo();
673   Register Reg = MO.getReg();
674   unsigned RegToPrint = RC->getRegister(RI->getEncodingValue(Reg));
675   if (!RI->regsOverlap(RegToPrint, Reg))
676     return true;
677   O << AArch64InstPrinter::getRegisterName(RegToPrint, AltName);
678   return false;
679 }
680 
681 bool AArch64AsmPrinter::PrintAsmOperand(const MachineInstr *MI, unsigned OpNum,
682                                         const char *ExtraCode, raw_ostream &O) {
683   const MachineOperand &MO = MI->getOperand(OpNum);
684 
685   // First try the generic code, which knows about modifiers like 'c' and 'n'.
686   if (!AsmPrinter::PrintAsmOperand(MI, OpNum, ExtraCode, O))
687     return false;
688 
689   // Does this asm operand have a single letter operand modifier?
690   if (ExtraCode && ExtraCode[0]) {
691     if (ExtraCode[1] != 0)
692       return true; // Unknown modifier.
693 
694     switch (ExtraCode[0]) {
695     default:
696       return true; // Unknown modifier.
697     case 'w':      // Print W register
698     case 'x':      // Print X register
699       if (MO.isReg())
700         return printAsmMRegister(MO, ExtraCode[0], O);
701       if (MO.isImm() && MO.getImm() == 0) {
702         unsigned Reg = ExtraCode[0] == 'w' ? AArch64::WZR : AArch64::XZR;
703         O << AArch64InstPrinter::getRegisterName(Reg);
704         return false;
705       }
706       printOperand(MI, OpNum, O);
707       return false;
708     case 'b': // Print B register.
709     case 'h': // Print H register.
710     case 's': // Print S register.
711     case 'd': // Print D register.
712     case 'q': // Print Q register.
713     case 'z': // Print Z register.
714       if (MO.isReg()) {
715         const TargetRegisterClass *RC;
716         switch (ExtraCode[0]) {
717         case 'b':
718           RC = &AArch64::FPR8RegClass;
719           break;
720         case 'h':
721           RC = &AArch64::FPR16RegClass;
722           break;
723         case 's':
724           RC = &AArch64::FPR32RegClass;
725           break;
726         case 'd':
727           RC = &AArch64::FPR64RegClass;
728           break;
729         case 'q':
730           RC = &AArch64::FPR128RegClass;
731           break;
732         case 'z':
733           RC = &AArch64::ZPRRegClass;
734           break;
735         default:
736           return true;
737         }
738         return printAsmRegInClass(MO, RC, AArch64::NoRegAltName, O);
739       }
740       printOperand(MI, OpNum, O);
741       return false;
742     }
743   }
744 
745   // According to ARM, we should emit x and v registers unless we have a
746   // modifier.
747   if (MO.isReg()) {
748     Register Reg = MO.getReg();
749 
750     // If this is a w or x register, print an x register.
751     if (AArch64::GPR32allRegClass.contains(Reg) ||
752         AArch64::GPR64allRegClass.contains(Reg))
753       return printAsmMRegister(MO, 'x', O);
754 
755     unsigned AltName = AArch64::NoRegAltName;
756     const TargetRegisterClass *RegClass;
757     if (AArch64::ZPRRegClass.contains(Reg)) {
758       RegClass = &AArch64::ZPRRegClass;
759     } else if (AArch64::PPRRegClass.contains(Reg)) {
760       RegClass = &AArch64::PPRRegClass;
761     } else {
762       RegClass = &AArch64::FPR128RegClass;
763       AltName = AArch64::vreg;
764     }
765 
766     // If this is a b, h, s, d, or q register, print it as a v register.
767     return printAsmRegInClass(MO, RegClass, AltName, O);
768   }
769 
770   printOperand(MI, OpNum, O);
771   return false;
772 }
773 
774 bool AArch64AsmPrinter::PrintAsmMemoryOperand(const MachineInstr *MI,
775                                               unsigned OpNum,
776                                               const char *ExtraCode,
777                                               raw_ostream &O) {
778   if (ExtraCode && ExtraCode[0] && ExtraCode[0] != 'a')
779     return true; // Unknown modifier.
780 
781   const MachineOperand &MO = MI->getOperand(OpNum);
782   assert(MO.isReg() && "unexpected inline asm memory operand");
783   O << "[" << AArch64InstPrinter::getRegisterName(MO.getReg()) << "]";
784   return false;
785 }
786 
787 void AArch64AsmPrinter::PrintDebugValueComment(const MachineInstr *MI,
788                                                raw_ostream &OS) {
789   unsigned NOps = MI->getNumOperands();
790   assert(NOps == 4);
791   OS << '\t' << MAI->getCommentString() << "DEBUG_VALUE: ";
792   // cast away const; DIetc do not take const operands for some reason.
793   OS << MI->getDebugVariable()->getName();
794   OS << " <- ";
795   // Frame address.  Currently handles register +- offset only.
796   assert(MI->getDebugOperand(0).isReg() && MI->isDebugOffsetImm());
797   OS << '[';
798   printOperand(MI, 0, OS);
799   OS << '+';
800   printOperand(MI, 1, OS);
801   OS << ']';
802   OS << "+";
803   printOperand(MI, NOps - 2, OS);
804 }
805 
806 void AArch64AsmPrinter::emitJumpTableInfo() {
807   const MachineJumpTableInfo *MJTI = MF->getJumpTableInfo();
808   if (!MJTI) return;
809 
810   const std::vector<MachineJumpTableEntry> &JT = MJTI->getJumpTables();
811   if (JT.empty()) return;
812 
813   const Function &F = MF->getFunction();
814   const TargetLoweringObjectFile &TLOF = getObjFileLowering();
815   bool JTInDiffSection =
816       !STI->isTargetCOFF() ||
817       !TLOF.shouldPutJumpTableInFunctionSection(
818           MJTI->getEntryKind() == MachineJumpTableInfo::EK_LabelDifference32,
819           F);
820   if (JTInDiffSection) {
821       // Drop it in the readonly section.
822       MCSection *ReadOnlySec = TLOF.getSectionForJumpTable(F, TM);
823       OutStreamer->SwitchSection(ReadOnlySec);
824   }
825 
826   auto AFI = MF->getInfo<AArch64FunctionInfo>();
827   for (unsigned JTI = 0, e = JT.size(); JTI != e; ++JTI) {
828     const std::vector<MachineBasicBlock*> &JTBBs = JT[JTI].MBBs;
829 
830     // If this jump table was deleted, ignore it.
831     if (JTBBs.empty()) continue;
832 
833     unsigned Size = AFI->getJumpTableEntrySize(JTI);
834     emitAlignment(Align(Size));
835     OutStreamer->emitLabel(GetJTISymbol(JTI));
836 
837     const MCSymbol *BaseSym = AArch64FI->getJumpTableEntryPCRelSymbol(JTI);
838     const MCExpr *Base = MCSymbolRefExpr::create(BaseSym, OutContext);
839 
840     for (auto *JTBB : JTBBs) {
841       const MCExpr *Value =
842           MCSymbolRefExpr::create(JTBB->getSymbol(), OutContext);
843 
844       // Each entry is:
845       //     .byte/.hword (LBB - Lbase)>>2
846       // or plain:
847       //     .word LBB - Lbase
848       Value = MCBinaryExpr::createSub(Value, Base, OutContext);
849       if (Size != 4)
850         Value = MCBinaryExpr::createLShr(
851             Value, MCConstantExpr::create(2, OutContext), OutContext);
852 
853       OutStreamer->emitValue(Value, Size);
854     }
855   }
856 }
857 
858 void AArch64AsmPrinter::emitFunctionEntryLabel() {
859   if (MF->getFunction().getCallingConv() == CallingConv::AArch64_VectorCall ||
860       MF->getFunction().getCallingConv() ==
861           CallingConv::AArch64_SVE_VectorCall ||
862       STI->getRegisterInfo()->hasSVEArgsOrReturn(MF)) {
863     auto *TS =
864         static_cast<AArch64TargetStreamer *>(OutStreamer->getTargetStreamer());
865     TS->emitDirectiveVariantPCS(CurrentFnSym);
866   }
867 
868   return AsmPrinter::emitFunctionEntryLabel();
869 }
870 
871 /// Small jump tables contain an unsigned byte or half, representing the offset
872 /// from the lowest-addressed possible destination to the desired basic
873 /// block. Since all instructions are 4-byte aligned, this is further compressed
874 /// by counting in instructions rather than bytes (i.e. divided by 4). So, to
875 /// materialize the correct destination we need:
876 ///
877 ///             adr xDest, .LBB0_0
878 ///             ldrb wScratch, [xTable, xEntry]   (with "lsl #1" for ldrh).
879 ///             add xDest, xDest, xScratch (with "lsl #2" for smaller entries)
880 void AArch64AsmPrinter::LowerJumpTableDest(llvm::MCStreamer &OutStreamer,
881                                            const llvm::MachineInstr &MI) {
882   Register DestReg = MI.getOperand(0).getReg();
883   Register ScratchReg = MI.getOperand(1).getReg();
884   Register ScratchRegW =
885       STI->getRegisterInfo()->getSubReg(ScratchReg, AArch64::sub_32);
886   Register TableReg = MI.getOperand(2).getReg();
887   Register EntryReg = MI.getOperand(3).getReg();
888   int JTIdx = MI.getOperand(4).getIndex();
889   int Size = AArch64FI->getJumpTableEntrySize(JTIdx);
890 
891   // This has to be first because the compression pass based its reachability
892   // calculations on the start of the JumpTableDest instruction.
893   auto Label =
894       MF->getInfo<AArch64FunctionInfo>()->getJumpTableEntryPCRelSymbol(JTIdx);
895 
896   // If we don't already have a symbol to use as the base, use the ADR
897   // instruction itself.
898   if (!Label) {
899     Label = MF->getContext().createTempSymbol();
900     AArch64FI->setJumpTableEntryInfo(JTIdx, Size, Label);
901     OutStreamer.emitLabel(Label);
902   }
903 
904   auto LabelExpr = MCSymbolRefExpr::create(Label, MF->getContext());
905   EmitToStreamer(OutStreamer, MCInstBuilder(AArch64::ADR)
906                                   .addReg(DestReg)
907                                   .addExpr(LabelExpr));
908 
909   // Load the number of instruction-steps to offset from the label.
910   unsigned LdrOpcode;
911   switch (Size) {
912   case 1: LdrOpcode = AArch64::LDRBBroX; break;
913   case 2: LdrOpcode = AArch64::LDRHHroX; break;
914   case 4: LdrOpcode = AArch64::LDRSWroX; break;
915   default:
916     llvm_unreachable("Unknown jump table size");
917   }
918 
919   EmitToStreamer(OutStreamer, MCInstBuilder(LdrOpcode)
920                                   .addReg(Size == 4 ? ScratchReg : ScratchRegW)
921                                   .addReg(TableReg)
922                                   .addReg(EntryReg)
923                                   .addImm(0)
924                                   .addImm(Size == 1 ? 0 : 1));
925 
926   // Add to the already materialized base label address, multiplying by 4 if
927   // compressed.
928   EmitToStreamer(OutStreamer, MCInstBuilder(AArch64::ADDXrs)
929                                   .addReg(DestReg)
930                                   .addReg(DestReg)
931                                   .addReg(ScratchReg)
932                                   .addImm(Size == 4 ? 0 : 2));
933 }
934 
935 void AArch64AsmPrinter::LowerSTACKMAP(MCStreamer &OutStreamer, StackMaps &SM,
936                                       const MachineInstr &MI) {
937   unsigned NumNOPBytes = StackMapOpers(&MI).getNumPatchBytes();
938 
939   auto &Ctx = OutStreamer.getContext();
940   MCSymbol *MILabel = Ctx.createTempSymbol();
941   OutStreamer.emitLabel(MILabel);
942 
943   SM.recordStackMap(*MILabel, MI);
944   assert(NumNOPBytes % 4 == 0 && "Invalid number of NOP bytes requested!");
945 
946   // Scan ahead to trim the shadow.
947   const MachineBasicBlock &MBB = *MI.getParent();
948   MachineBasicBlock::const_iterator MII(MI);
949   ++MII;
950   while (NumNOPBytes > 0) {
951     if (MII == MBB.end() || MII->isCall() ||
952         MII->getOpcode() == AArch64::DBG_VALUE ||
953         MII->getOpcode() == TargetOpcode::PATCHPOINT ||
954         MII->getOpcode() == TargetOpcode::STACKMAP)
955       break;
956     ++MII;
957     NumNOPBytes -= 4;
958   }
959 
960   // Emit nops.
961   for (unsigned i = 0; i < NumNOPBytes; i += 4)
962     EmitToStreamer(OutStreamer, MCInstBuilder(AArch64::HINT).addImm(0));
963 }
964 
965 // Lower a patchpoint of the form:
966 // [<def>], <id>, <numBytes>, <target>, <numArgs>
967 void AArch64AsmPrinter::LowerPATCHPOINT(MCStreamer &OutStreamer, StackMaps &SM,
968                                         const MachineInstr &MI) {
969   auto &Ctx = OutStreamer.getContext();
970   MCSymbol *MILabel = Ctx.createTempSymbol();
971   OutStreamer.emitLabel(MILabel);
972   SM.recordPatchPoint(*MILabel, MI);
973 
974   PatchPointOpers Opers(&MI);
975 
976   int64_t CallTarget = Opers.getCallTarget().getImm();
977   unsigned EncodedBytes = 0;
978   if (CallTarget) {
979     assert((CallTarget & 0xFFFFFFFFFFFF) == CallTarget &&
980            "High 16 bits of call target should be zero.");
981     Register ScratchReg = MI.getOperand(Opers.getNextScratchIdx()).getReg();
982     EncodedBytes = 16;
983     // Materialize the jump address:
984     EmitToStreamer(OutStreamer, MCInstBuilder(AArch64::MOVZXi)
985                                     .addReg(ScratchReg)
986                                     .addImm((CallTarget >> 32) & 0xFFFF)
987                                     .addImm(32));
988     EmitToStreamer(OutStreamer, MCInstBuilder(AArch64::MOVKXi)
989                                     .addReg(ScratchReg)
990                                     .addReg(ScratchReg)
991                                     .addImm((CallTarget >> 16) & 0xFFFF)
992                                     .addImm(16));
993     EmitToStreamer(OutStreamer, MCInstBuilder(AArch64::MOVKXi)
994                                     .addReg(ScratchReg)
995                                     .addReg(ScratchReg)
996                                     .addImm(CallTarget & 0xFFFF)
997                                     .addImm(0));
998     EmitToStreamer(OutStreamer, MCInstBuilder(AArch64::BLR).addReg(ScratchReg));
999   }
1000   // Emit padding.
1001   unsigned NumBytes = Opers.getNumPatchBytes();
1002   assert(NumBytes >= EncodedBytes &&
1003          "Patchpoint can't request size less than the length of a call.");
1004   assert((NumBytes - EncodedBytes) % 4 == 0 &&
1005          "Invalid number of NOP bytes requested!");
1006   for (unsigned i = EncodedBytes; i < NumBytes; i += 4)
1007     EmitToStreamer(OutStreamer, MCInstBuilder(AArch64::HINT).addImm(0));
1008 }
1009 
1010 void AArch64AsmPrinter::LowerSTATEPOINT(MCStreamer &OutStreamer, StackMaps &SM,
1011                                         const MachineInstr &MI) {
1012   StatepointOpers SOpers(&MI);
1013   if (unsigned PatchBytes = SOpers.getNumPatchBytes()) {
1014     assert(PatchBytes % 4 == 0 && "Invalid number of NOP bytes requested!");
1015     for (unsigned i = 0; i < PatchBytes; i += 4)
1016       EmitToStreamer(OutStreamer, MCInstBuilder(AArch64::HINT).addImm(0));
1017   } else {
1018     // Lower call target and choose correct opcode
1019     const MachineOperand &CallTarget = SOpers.getCallTarget();
1020     MCOperand CallTargetMCOp;
1021     unsigned CallOpcode;
1022     switch (CallTarget.getType()) {
1023     case MachineOperand::MO_GlobalAddress:
1024     case MachineOperand::MO_ExternalSymbol:
1025       MCInstLowering.lowerOperand(CallTarget, CallTargetMCOp);
1026       CallOpcode = AArch64::BL;
1027       break;
1028     case MachineOperand::MO_Immediate:
1029       CallTargetMCOp = MCOperand::createImm(CallTarget.getImm());
1030       CallOpcode = AArch64::BL;
1031       break;
1032     case MachineOperand::MO_Register:
1033       CallTargetMCOp = MCOperand::createReg(CallTarget.getReg());
1034       CallOpcode = AArch64::BLR;
1035       break;
1036     default:
1037       llvm_unreachable("Unsupported operand type in statepoint call target");
1038       break;
1039     }
1040 
1041     EmitToStreamer(OutStreamer,
1042                    MCInstBuilder(CallOpcode).addOperand(CallTargetMCOp));
1043   }
1044 
1045   auto &Ctx = OutStreamer.getContext();
1046   MCSymbol *MILabel = Ctx.createTempSymbol();
1047   OutStreamer.emitLabel(MILabel);
1048   SM.recordStatepoint(*MILabel, MI);
1049 }
1050 
1051 void AArch64AsmPrinter::LowerFAULTING_OP(const MachineInstr &FaultingMI) {
1052   // FAULTING_LOAD_OP <def>, <faltinf type>, <MBB handler>,
1053   //                  <opcode>, <operands>
1054 
1055   Register DefRegister = FaultingMI.getOperand(0).getReg();
1056   FaultMaps::FaultKind FK =
1057       static_cast<FaultMaps::FaultKind>(FaultingMI.getOperand(1).getImm());
1058   MCSymbol *HandlerLabel = FaultingMI.getOperand(2).getMBB()->getSymbol();
1059   unsigned Opcode = FaultingMI.getOperand(3).getImm();
1060   unsigned OperandsBeginIdx = 4;
1061 
1062   auto &Ctx = OutStreamer->getContext();
1063   MCSymbol *FaultingLabel = Ctx.createTempSymbol();
1064   OutStreamer->emitLabel(FaultingLabel);
1065 
1066   assert(FK < FaultMaps::FaultKindMax && "Invalid Faulting Kind!");
1067   FM.recordFaultingOp(FK, FaultingLabel, HandlerLabel);
1068 
1069   MCInst MI;
1070   MI.setOpcode(Opcode);
1071 
1072   if (DefRegister != (Register)0)
1073     MI.addOperand(MCOperand::createReg(DefRegister));
1074 
1075   for (auto I = FaultingMI.operands_begin() + OperandsBeginIdx,
1076             E = FaultingMI.operands_end();
1077        I != E; ++I) {
1078     MCOperand Dest;
1079     lowerOperand(*I, Dest);
1080     MI.addOperand(Dest);
1081   }
1082 
1083   OutStreamer->AddComment("on-fault: " + HandlerLabel->getName());
1084   OutStreamer->emitInstruction(MI, getSubtargetInfo());
1085 }
1086 
1087 void AArch64AsmPrinter::EmitFMov0(const MachineInstr &MI) {
1088   Register DestReg = MI.getOperand(0).getReg();
1089   if (STI->hasZeroCycleZeroingFP() && !STI->hasZeroCycleZeroingFPWorkaround()) {
1090     // Convert H/S/D register to corresponding Q register
1091     if (AArch64::H0 <= DestReg && DestReg <= AArch64::H31)
1092       DestReg = AArch64::Q0 + (DestReg - AArch64::H0);
1093     else if (AArch64::S0 <= DestReg && DestReg <= AArch64::S31)
1094       DestReg = AArch64::Q0 + (DestReg - AArch64::S0);
1095     else {
1096       assert(AArch64::D0 <= DestReg && DestReg <= AArch64::D31);
1097       DestReg = AArch64::Q0 + (DestReg - AArch64::D0);
1098     }
1099     MCInst MOVI;
1100     MOVI.setOpcode(AArch64::MOVIv2d_ns);
1101     MOVI.addOperand(MCOperand::createReg(DestReg));
1102     MOVI.addOperand(MCOperand::createImm(0));
1103     EmitToStreamer(*OutStreamer, MOVI);
1104   } else {
1105     MCInst FMov;
1106     switch (MI.getOpcode()) {
1107     default: llvm_unreachable("Unexpected opcode");
1108     case AArch64::FMOVH0:
1109       FMov.setOpcode(AArch64::FMOVWHr);
1110       FMov.addOperand(MCOperand::createReg(DestReg));
1111       FMov.addOperand(MCOperand::createReg(AArch64::WZR));
1112       break;
1113     case AArch64::FMOVS0:
1114       FMov.setOpcode(AArch64::FMOVWSr);
1115       FMov.addOperand(MCOperand::createReg(DestReg));
1116       FMov.addOperand(MCOperand::createReg(AArch64::WZR));
1117       break;
1118     case AArch64::FMOVD0:
1119       FMov.setOpcode(AArch64::FMOVXDr);
1120       FMov.addOperand(MCOperand::createReg(DestReg));
1121       FMov.addOperand(MCOperand::createReg(AArch64::XZR));
1122       break;
1123     }
1124     EmitToStreamer(*OutStreamer, FMov);
1125   }
1126 }
1127 
1128 // Simple pseudo-instructions have their lowering (with expansion to real
1129 // instructions) auto-generated.
1130 #include "AArch64GenMCPseudoLowering.inc"
1131 
1132 void AArch64AsmPrinter::emitInstruction(const MachineInstr *MI) {
1133   // Do any auto-generated pseudo lowerings.
1134   if (emitPseudoExpansionLowering(*OutStreamer, MI))
1135     return;
1136 
1137   if (AArch64FI->getLOHRelated().count(MI)) {
1138     // Generate a label for LOH related instruction
1139     MCSymbol *LOHLabel = createTempSymbol("loh");
1140     // Associate the instruction with the label
1141     LOHInstToLabel[MI] = LOHLabel;
1142     OutStreamer->emitLabel(LOHLabel);
1143   }
1144 
1145   AArch64TargetStreamer *TS =
1146     static_cast<AArch64TargetStreamer *>(OutStreamer->getTargetStreamer());
1147   // Do any manual lowerings.
1148   switch (MI->getOpcode()) {
1149   default:
1150     break;
1151   case AArch64::HINT: {
1152     // CurrentPatchableFunctionEntrySym can be CurrentFnBegin only for
1153     // -fpatchable-function-entry=N,0. The entry MBB is guaranteed to be
1154     // non-empty. If MI is the initial BTI, place the
1155     // __patchable_function_entries label after BTI.
1156     if (CurrentPatchableFunctionEntrySym &&
1157         CurrentPatchableFunctionEntrySym == CurrentFnBegin &&
1158         MI == &MF->front().front()) {
1159       int64_t Imm = MI->getOperand(0).getImm();
1160       if ((Imm & 32) && (Imm & 6)) {
1161         MCInst Inst;
1162         MCInstLowering.Lower(MI, Inst);
1163         EmitToStreamer(*OutStreamer, Inst);
1164         CurrentPatchableFunctionEntrySym = createTempSymbol("patch");
1165         OutStreamer->emitLabel(CurrentPatchableFunctionEntrySym);
1166         return;
1167       }
1168     }
1169     break;
1170   }
1171     case AArch64::MOVMCSym: {
1172       Register DestReg = MI->getOperand(0).getReg();
1173       const MachineOperand &MO_Sym = MI->getOperand(1);
1174       MachineOperand Hi_MOSym(MO_Sym), Lo_MOSym(MO_Sym);
1175       MCOperand Hi_MCSym, Lo_MCSym;
1176 
1177       Hi_MOSym.setTargetFlags(AArch64II::MO_G1 | AArch64II::MO_S);
1178       Lo_MOSym.setTargetFlags(AArch64II::MO_G0 | AArch64II::MO_NC);
1179 
1180       MCInstLowering.lowerOperand(Hi_MOSym, Hi_MCSym);
1181       MCInstLowering.lowerOperand(Lo_MOSym, Lo_MCSym);
1182 
1183       MCInst MovZ;
1184       MovZ.setOpcode(AArch64::MOVZXi);
1185       MovZ.addOperand(MCOperand::createReg(DestReg));
1186       MovZ.addOperand(Hi_MCSym);
1187       MovZ.addOperand(MCOperand::createImm(16));
1188       EmitToStreamer(*OutStreamer, MovZ);
1189 
1190       MCInst MovK;
1191       MovK.setOpcode(AArch64::MOVKXi);
1192       MovK.addOperand(MCOperand::createReg(DestReg));
1193       MovK.addOperand(MCOperand::createReg(DestReg));
1194       MovK.addOperand(Lo_MCSym);
1195       MovK.addOperand(MCOperand::createImm(0));
1196       EmitToStreamer(*OutStreamer, MovK);
1197       return;
1198   }
1199   case AArch64::MOVIv2d_ns:
1200     // If the target has <rdar://problem/16473581>, lower this
1201     // instruction to movi.16b instead.
1202     if (STI->hasZeroCycleZeroingFPWorkaround() &&
1203         MI->getOperand(1).getImm() == 0) {
1204       MCInst TmpInst;
1205       TmpInst.setOpcode(AArch64::MOVIv16b_ns);
1206       TmpInst.addOperand(MCOperand::createReg(MI->getOperand(0).getReg()));
1207       TmpInst.addOperand(MCOperand::createImm(MI->getOperand(1).getImm()));
1208       EmitToStreamer(*OutStreamer, TmpInst);
1209       return;
1210     }
1211     break;
1212 
1213   case AArch64::DBG_VALUE:
1214   case AArch64::DBG_VALUE_LIST: {
1215     if (isVerbose() && OutStreamer->hasRawTextSupport()) {
1216       SmallString<128> TmpStr;
1217       raw_svector_ostream OS(TmpStr);
1218       PrintDebugValueComment(MI, OS);
1219       OutStreamer->emitRawText(StringRef(OS.str()));
1220     }
1221     return;
1222 
1223   case AArch64::EMITBKEY: {
1224       ExceptionHandling ExceptionHandlingType = MAI->getExceptionHandlingType();
1225       if (ExceptionHandlingType != ExceptionHandling::DwarfCFI &&
1226           ExceptionHandlingType != ExceptionHandling::ARM)
1227         return;
1228 
1229       if (needsCFIMoves() == CFI_M_None)
1230         return;
1231 
1232       OutStreamer->emitCFIBKeyFrame();
1233       return;
1234     }
1235     }
1236 
1237   // Tail calls use pseudo instructions so they have the proper code-gen
1238   // attributes (isCall, isReturn, etc.). We lower them to the real
1239   // instruction here.
1240   case AArch64::TCRETURNri:
1241   case AArch64::TCRETURNriBTI:
1242   case AArch64::TCRETURNriALL: {
1243     MCInst TmpInst;
1244     TmpInst.setOpcode(AArch64::BR);
1245     TmpInst.addOperand(MCOperand::createReg(MI->getOperand(0).getReg()));
1246     EmitToStreamer(*OutStreamer, TmpInst);
1247     return;
1248   }
1249   case AArch64::TCRETURNdi: {
1250     MCOperand Dest;
1251     MCInstLowering.lowerOperand(MI->getOperand(0), Dest);
1252     MCInst TmpInst;
1253     TmpInst.setOpcode(AArch64::B);
1254     TmpInst.addOperand(Dest);
1255     EmitToStreamer(*OutStreamer, TmpInst);
1256     return;
1257   }
1258   case AArch64::SpeculationBarrierISBDSBEndBB: {
1259     // Print DSB SYS + ISB
1260     MCInst TmpInstDSB;
1261     TmpInstDSB.setOpcode(AArch64::DSB);
1262     TmpInstDSB.addOperand(MCOperand::createImm(0xf));
1263     EmitToStreamer(*OutStreamer, TmpInstDSB);
1264     MCInst TmpInstISB;
1265     TmpInstISB.setOpcode(AArch64::ISB);
1266     TmpInstISB.addOperand(MCOperand::createImm(0xf));
1267     EmitToStreamer(*OutStreamer, TmpInstISB);
1268     return;
1269   }
1270   case AArch64::SpeculationBarrierSBEndBB: {
1271     // Print SB
1272     MCInst TmpInstSB;
1273     TmpInstSB.setOpcode(AArch64::SB);
1274     EmitToStreamer(*OutStreamer, TmpInstSB);
1275     return;
1276   }
1277   case AArch64::TLSDESC_CALLSEQ: {
1278     /// lower this to:
1279     ///    adrp  x0, :tlsdesc:var
1280     ///    ldr   x1, [x0, #:tlsdesc_lo12:var]
1281     ///    add   x0, x0, #:tlsdesc_lo12:var
1282     ///    .tlsdesccall var
1283     ///    blr   x1
1284     ///    (TPIDR_EL0 offset now in x0)
1285     const MachineOperand &MO_Sym = MI->getOperand(0);
1286     MachineOperand MO_TLSDESC_LO12(MO_Sym), MO_TLSDESC(MO_Sym);
1287     MCOperand Sym, SymTLSDescLo12, SymTLSDesc;
1288     MO_TLSDESC_LO12.setTargetFlags(AArch64II::MO_TLS | AArch64II::MO_PAGEOFF);
1289     MO_TLSDESC.setTargetFlags(AArch64II::MO_TLS | AArch64II::MO_PAGE);
1290     MCInstLowering.lowerOperand(MO_Sym, Sym);
1291     MCInstLowering.lowerOperand(MO_TLSDESC_LO12, SymTLSDescLo12);
1292     MCInstLowering.lowerOperand(MO_TLSDESC, SymTLSDesc);
1293 
1294     MCInst Adrp;
1295     Adrp.setOpcode(AArch64::ADRP);
1296     Adrp.addOperand(MCOperand::createReg(AArch64::X0));
1297     Adrp.addOperand(SymTLSDesc);
1298     EmitToStreamer(*OutStreamer, Adrp);
1299 
1300     MCInst Ldr;
1301     if (STI->isTargetILP32()) {
1302       Ldr.setOpcode(AArch64::LDRWui);
1303       Ldr.addOperand(MCOperand::createReg(AArch64::W1));
1304     } else {
1305       Ldr.setOpcode(AArch64::LDRXui);
1306       Ldr.addOperand(MCOperand::createReg(AArch64::X1));
1307     }
1308     Ldr.addOperand(MCOperand::createReg(AArch64::X0));
1309     Ldr.addOperand(SymTLSDescLo12);
1310     Ldr.addOperand(MCOperand::createImm(0));
1311     EmitToStreamer(*OutStreamer, Ldr);
1312 
1313     MCInst Add;
1314     if (STI->isTargetILP32()) {
1315       Add.setOpcode(AArch64::ADDWri);
1316       Add.addOperand(MCOperand::createReg(AArch64::W0));
1317       Add.addOperand(MCOperand::createReg(AArch64::W0));
1318     } else {
1319       Add.setOpcode(AArch64::ADDXri);
1320       Add.addOperand(MCOperand::createReg(AArch64::X0));
1321       Add.addOperand(MCOperand::createReg(AArch64::X0));
1322     }
1323     Add.addOperand(SymTLSDescLo12);
1324     Add.addOperand(MCOperand::createImm(AArch64_AM::getShiftValue(0)));
1325     EmitToStreamer(*OutStreamer, Add);
1326 
1327     // Emit a relocation-annotation. This expands to no code, but requests
1328     // the following instruction gets an R_AARCH64_TLSDESC_CALL.
1329     MCInst TLSDescCall;
1330     TLSDescCall.setOpcode(AArch64::TLSDESCCALL);
1331     TLSDescCall.addOperand(Sym);
1332     EmitToStreamer(*OutStreamer, TLSDescCall);
1333 
1334     MCInst Blr;
1335     Blr.setOpcode(AArch64::BLR);
1336     Blr.addOperand(MCOperand::createReg(AArch64::X1));
1337     EmitToStreamer(*OutStreamer, Blr);
1338 
1339     return;
1340   }
1341 
1342   case AArch64::JumpTableDest32:
1343   case AArch64::JumpTableDest16:
1344   case AArch64::JumpTableDest8:
1345     LowerJumpTableDest(*OutStreamer, *MI);
1346     return;
1347 
1348   case AArch64::FMOVH0:
1349   case AArch64::FMOVS0:
1350   case AArch64::FMOVD0:
1351     EmitFMov0(*MI);
1352     return;
1353 
1354   case TargetOpcode::STACKMAP:
1355     return LowerSTACKMAP(*OutStreamer, SM, *MI);
1356 
1357   case TargetOpcode::PATCHPOINT:
1358     return LowerPATCHPOINT(*OutStreamer, SM, *MI);
1359 
1360   case TargetOpcode::STATEPOINT:
1361     return LowerSTATEPOINT(*OutStreamer, SM, *MI);
1362 
1363   case TargetOpcode::FAULTING_OP:
1364     return LowerFAULTING_OP(*MI);
1365 
1366   case TargetOpcode::PATCHABLE_FUNCTION_ENTER:
1367     LowerPATCHABLE_FUNCTION_ENTER(*MI);
1368     return;
1369 
1370   case TargetOpcode::PATCHABLE_FUNCTION_EXIT:
1371     LowerPATCHABLE_FUNCTION_EXIT(*MI);
1372     return;
1373 
1374   case TargetOpcode::PATCHABLE_TAIL_CALL:
1375     LowerPATCHABLE_TAIL_CALL(*MI);
1376     return;
1377 
1378   case AArch64::HWASAN_CHECK_MEMACCESS:
1379   case AArch64::HWASAN_CHECK_MEMACCESS_SHORTGRANULES:
1380     LowerHWASAN_CHECK_MEMACCESS(*MI);
1381     return;
1382 
1383   case AArch64::SEH_StackAlloc:
1384     TS->EmitARM64WinCFIAllocStack(MI->getOperand(0).getImm());
1385     return;
1386 
1387   case AArch64::SEH_SaveFPLR:
1388     TS->EmitARM64WinCFISaveFPLR(MI->getOperand(0).getImm());
1389     return;
1390 
1391   case AArch64::SEH_SaveFPLR_X:
1392     assert(MI->getOperand(0).getImm() < 0 &&
1393            "Pre increment SEH opcode must have a negative offset");
1394     TS->EmitARM64WinCFISaveFPLRX(-MI->getOperand(0).getImm());
1395     return;
1396 
1397   case AArch64::SEH_SaveReg:
1398     TS->EmitARM64WinCFISaveReg(MI->getOperand(0).getImm(),
1399                                MI->getOperand(1).getImm());
1400     return;
1401 
1402   case AArch64::SEH_SaveReg_X:
1403     assert(MI->getOperand(1).getImm() < 0 &&
1404            "Pre increment SEH opcode must have a negative offset");
1405     TS->EmitARM64WinCFISaveRegX(MI->getOperand(0).getImm(),
1406 		                -MI->getOperand(1).getImm());
1407     return;
1408 
1409   case AArch64::SEH_SaveRegP:
1410     if (MI->getOperand(1).getImm() == 30 && MI->getOperand(0).getImm() >= 19 &&
1411         MI->getOperand(0).getImm() <= 28) {
1412       assert((MI->getOperand(0).getImm() - 19) % 2 == 0 &&
1413              "Register paired with LR must be odd");
1414       TS->EmitARM64WinCFISaveLRPair(MI->getOperand(0).getImm(),
1415                                     MI->getOperand(2).getImm());
1416       return;
1417     }
1418     assert((MI->getOperand(1).getImm() - MI->getOperand(0).getImm() == 1) &&
1419             "Non-consecutive registers not allowed for save_regp");
1420     TS->EmitARM64WinCFISaveRegP(MI->getOperand(0).getImm(),
1421                                 MI->getOperand(2).getImm());
1422     return;
1423 
1424   case AArch64::SEH_SaveRegP_X:
1425     assert((MI->getOperand(1).getImm() - MI->getOperand(0).getImm() == 1) &&
1426             "Non-consecutive registers not allowed for save_regp_x");
1427     assert(MI->getOperand(2).getImm() < 0 &&
1428            "Pre increment SEH opcode must have a negative offset");
1429     TS->EmitARM64WinCFISaveRegPX(MI->getOperand(0).getImm(),
1430                                  -MI->getOperand(2).getImm());
1431     return;
1432 
1433   case AArch64::SEH_SaveFReg:
1434     TS->EmitARM64WinCFISaveFReg(MI->getOperand(0).getImm(),
1435                                 MI->getOperand(1).getImm());
1436     return;
1437 
1438   case AArch64::SEH_SaveFReg_X:
1439     assert(MI->getOperand(1).getImm() < 0 &&
1440            "Pre increment SEH opcode must have a negative offset");
1441     TS->EmitARM64WinCFISaveFRegX(MI->getOperand(0).getImm(),
1442                                  -MI->getOperand(1).getImm());
1443     return;
1444 
1445   case AArch64::SEH_SaveFRegP:
1446     assert((MI->getOperand(1).getImm() - MI->getOperand(0).getImm() == 1) &&
1447             "Non-consecutive registers not allowed for save_regp");
1448     TS->EmitARM64WinCFISaveFRegP(MI->getOperand(0).getImm(),
1449                                  MI->getOperand(2).getImm());
1450     return;
1451 
1452   case AArch64::SEH_SaveFRegP_X:
1453     assert((MI->getOperand(1).getImm() - MI->getOperand(0).getImm() == 1) &&
1454             "Non-consecutive registers not allowed for save_regp_x");
1455     assert(MI->getOperand(2).getImm() < 0 &&
1456            "Pre increment SEH opcode must have a negative offset");
1457     TS->EmitARM64WinCFISaveFRegPX(MI->getOperand(0).getImm(),
1458                                   -MI->getOperand(2).getImm());
1459     return;
1460 
1461   case AArch64::SEH_SetFP:
1462     TS->EmitARM64WinCFISetFP();
1463     return;
1464 
1465   case AArch64::SEH_AddFP:
1466     TS->EmitARM64WinCFIAddFP(MI->getOperand(0).getImm());
1467     return;
1468 
1469   case AArch64::SEH_Nop:
1470     TS->EmitARM64WinCFINop();
1471     return;
1472 
1473   case AArch64::SEH_PrologEnd:
1474     TS->EmitARM64WinCFIPrologEnd();
1475     return;
1476 
1477   case AArch64::SEH_EpilogStart:
1478     TS->EmitARM64WinCFIEpilogStart();
1479     return;
1480 
1481   case AArch64::SEH_EpilogEnd:
1482     TS->EmitARM64WinCFIEpilogEnd();
1483     return;
1484   }
1485 
1486   // Finally, do the automated lowerings for everything else.
1487   MCInst TmpInst;
1488   MCInstLowering.Lower(MI, TmpInst);
1489   EmitToStreamer(*OutStreamer, TmpInst);
1490 }
1491 
1492 // Force static initialization.
1493 extern "C" LLVM_EXTERNAL_VISIBILITY void LLVMInitializeAArch64AsmPrinter() {
1494   RegisterAsmPrinter<AArch64AsmPrinter> X(getTheAArch64leTarget());
1495   RegisterAsmPrinter<AArch64AsmPrinter> Y(getTheAArch64beTarget());
1496   RegisterAsmPrinter<AArch64AsmPrinter> Z(getTheARM64Target());
1497   RegisterAsmPrinter<AArch64AsmPrinter> W(getTheARM64_32Target());
1498   RegisterAsmPrinter<AArch64AsmPrinter> V(getTheAArch64_32Target());
1499 }
1500