1 //===-- PPCAsmPrinter.cpp - Print machine instrs to PowerPC assembly ------===//
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 PowerPC assembly language. This printer is
11 // the output mechanism used by `llc'.
12 //
13 // Documentation at http://developer.apple.com/documentation/DeveloperTools/
14 // Reference/Assembler/ASMIntroduction/chapter_1_section_1.html
15 //
16 //===----------------------------------------------------------------------===//
17 
18 #include "MCTargetDesc/PPCInstPrinter.h"
19 #include "MCTargetDesc/PPCMCExpr.h"
20 #include "MCTargetDesc/PPCMCTargetDesc.h"
21 #include "MCTargetDesc/PPCPredicates.h"
22 #include "PPC.h"
23 #include "PPCInstrInfo.h"
24 #include "PPCMachineFunctionInfo.h"
25 #include "PPCSubtarget.h"
26 #include "PPCTargetMachine.h"
27 #include "PPCTargetStreamer.h"
28 #include "TargetInfo/PowerPCTargetInfo.h"
29 #include "llvm/ADT/MapVector.h"
30 #include "llvm/ADT/SmallPtrSet.h"
31 #include "llvm/ADT/StringRef.h"
32 #include "llvm/ADT/Triple.h"
33 #include "llvm/ADT/Twine.h"
34 #include "llvm/BinaryFormat/ELF.h"
35 #include "llvm/BinaryFormat/MachO.h"
36 #include "llvm/CodeGen/AsmPrinter.h"
37 #include "llvm/CodeGen/MachineBasicBlock.h"
38 #include "llvm/CodeGen/MachineFunction.h"
39 #include "llvm/CodeGen/MachineInstr.h"
40 #include "llvm/CodeGen/MachineModuleInfoImpls.h"
41 #include "llvm/CodeGen/MachineOperand.h"
42 #include "llvm/CodeGen/MachineRegisterInfo.h"
43 #include "llvm/CodeGen/StackMaps.h"
44 #include "llvm/CodeGen/TargetLoweringObjectFileImpl.h"
45 #include "llvm/IR/DataLayout.h"
46 #include "llvm/IR/GlobalValue.h"
47 #include "llvm/IR/GlobalVariable.h"
48 #include "llvm/IR/Module.h"
49 #include "llvm/MC/MCAsmInfo.h"
50 #include "llvm/MC/MCContext.h"
51 #include "llvm/MC/MCDirectives.h"
52 #include "llvm/MC/MCExpr.h"
53 #include "llvm/MC/MCInst.h"
54 #include "llvm/MC/MCInstBuilder.h"
55 #include "llvm/MC/MCSectionELF.h"
56 #include "llvm/MC/MCSectionMachO.h"
57 #include "llvm/MC/MCSectionXCOFF.h"
58 #include "llvm/MC/MCStreamer.h"
59 #include "llvm/MC/MCSymbol.h"
60 #include "llvm/MC/MCSymbolELF.h"
61 #include "llvm/MC/MCSymbolXCOFF.h"
62 #include "llvm/MC/SectionKind.h"
63 #include "llvm/Support/Casting.h"
64 #include "llvm/Support/CodeGen.h"
65 #include "llvm/Support/Debug.h"
66 #include "llvm/Support/ErrorHandling.h"
67 #include "llvm/Support/Process.h"
68 #include "llvm/Support/TargetRegistry.h"
69 #include "llvm/Support/raw_ostream.h"
70 #include "llvm/Target/TargetMachine.h"
71 #include "llvm/Transforms/Utils/ModuleUtils.h"
72 #include <algorithm>
73 #include <cassert>
74 #include <cstdint>
75 #include <memory>
76 #include <new>
77 
78 using namespace llvm;
79 
80 #define DEBUG_TYPE "asmprinter"
81 
82 namespace {
83 
84 class PPCAsmPrinter : public AsmPrinter {
85 protected:
86   MapVector<const MCSymbol *, MCSymbol *> TOC;
87   const PPCSubtarget *Subtarget = nullptr;
88   StackMaps SM;
89 
90 public:
91   explicit PPCAsmPrinter(TargetMachine &TM,
92                          std::unique_ptr<MCStreamer> Streamer)
93       : AsmPrinter(TM, std::move(Streamer)), SM(*this) {}
94 
95   StringRef getPassName() const override { return "PowerPC Assembly Printer"; }
96 
97   MCSymbol *lookUpOrCreateTOCEntry(const MCSymbol *Sym);
98 
99   bool doInitialization(Module &M) override {
100     if (!TOC.empty())
101       TOC.clear();
102     return AsmPrinter::doInitialization(M);
103   }
104 
105   void emitInstruction(const MachineInstr *MI) override;
106 
107   /// This function is for PrintAsmOperand and PrintAsmMemoryOperand,
108   /// invoked by EmitMSInlineAsmStr and EmitGCCInlineAsmStr only.
109   /// The \p MI would be INLINEASM ONLY.
110   void printOperand(const MachineInstr *MI, unsigned OpNo, raw_ostream &O);
111 
112   void PrintSymbolOperand(const MachineOperand &MO, raw_ostream &O) override;
113   bool PrintAsmOperand(const MachineInstr *MI, unsigned OpNo,
114                        const char *ExtraCode, raw_ostream &O) override;
115   bool PrintAsmMemoryOperand(const MachineInstr *MI, unsigned OpNo,
116                              const char *ExtraCode, raw_ostream &O) override;
117 
118   void emitEndOfAsmFile(Module &M) override;
119 
120   void LowerSTACKMAP(StackMaps &SM, const MachineInstr &MI);
121   void LowerPATCHPOINT(StackMaps &SM, const MachineInstr &MI);
122   void EmitTlsCall(const MachineInstr *MI, MCSymbolRefExpr::VariantKind VK);
123   bool runOnMachineFunction(MachineFunction &MF) override {
124     Subtarget = &MF.getSubtarget<PPCSubtarget>();
125     bool Changed = AsmPrinter::runOnMachineFunction(MF);
126     emitXRayTable();
127     return Changed;
128   }
129 };
130 
131 /// PPCLinuxAsmPrinter - PowerPC assembly printer, customized for Linux
132 class PPCLinuxAsmPrinter : public PPCAsmPrinter {
133 public:
134   explicit PPCLinuxAsmPrinter(TargetMachine &TM,
135                               std::unique_ptr<MCStreamer> Streamer)
136       : PPCAsmPrinter(TM, std::move(Streamer)) {}
137 
138   StringRef getPassName() const override {
139     return "Linux PPC Assembly Printer";
140   }
141 
142   void emitStartOfAsmFile(Module &M) override;
143   void emitEndOfAsmFile(Module &) override;
144 
145   void emitFunctionEntryLabel() override;
146 
147   void emitFunctionBodyStart() override;
148   void emitFunctionBodyEnd() override;
149   void emitInstruction(const MachineInstr *MI) override;
150 };
151 
152 class PPCAIXAsmPrinter : public PPCAsmPrinter {
153 private:
154   /// Symbols lowered from ExternalSymbolSDNodes, we will need to emit extern
155   /// linkage for them in AIX.
156   SmallPtrSet<MCSymbol *, 8> ExtSymSDNodeSymbols;
157 
158   /// A format indicator and unique trailing identifier to form part of the
159   /// sinit/sterm function names.
160   std::string FormatIndicatorAndUniqueModId;
161 
162   static void ValidateGV(const GlobalVariable *GV);
163   // Record a list of GlobalAlias associated with a GlobalObject.
164   // This is used for AIX's extra-label-at-definition aliasing strategy.
165   DenseMap<const GlobalObject *, SmallVector<const GlobalAlias *, 1>>
166       GOAliasMap;
167 
168 public:
169   PPCAIXAsmPrinter(TargetMachine &TM, std::unique_ptr<MCStreamer> Streamer)
170       : PPCAsmPrinter(TM, std::move(Streamer)) {
171     if (MAI->isLittleEndian())
172       report_fatal_error(
173           "cannot create AIX PPC Assembly Printer for a little-endian target");
174   }
175 
176   StringRef getPassName() const override { return "AIX PPC Assembly Printer"; }
177 
178   bool doInitialization(Module &M) override;
179 
180   void emitXXStructorList(const DataLayout &DL, const Constant *List,
181                           bool IsCtor) override;
182 
183   void SetupMachineFunction(MachineFunction &MF) override;
184 
185   void emitGlobalVariable(const GlobalVariable *GV) override;
186 
187   void emitFunctionDescriptor() override;
188 
189   void emitFunctionEntryLabel() override;
190 
191   void emitEndOfAsmFile(Module &) override;
192 
193   void emitLinkage(const GlobalValue *GV, MCSymbol *GVSym) const override;
194 
195   void emitInstruction(const MachineInstr *MI) override;
196 
197   bool doFinalization(Module &M) override;
198 };
199 
200 } // end anonymous namespace
201 
202 void PPCAsmPrinter::PrintSymbolOperand(const MachineOperand &MO,
203                                        raw_ostream &O) {
204   // Computing the address of a global symbol, not calling it.
205   const GlobalValue *GV = MO.getGlobal();
206   getSymbol(GV)->print(O, MAI);
207   printOffset(MO.getOffset(), O);
208 }
209 
210 void PPCAsmPrinter::printOperand(const MachineInstr *MI, unsigned OpNo,
211                                  raw_ostream &O) {
212   const DataLayout &DL = getDataLayout();
213   const MachineOperand &MO = MI->getOperand(OpNo);
214 
215   switch (MO.getType()) {
216   case MachineOperand::MO_Register: {
217     // The MI is INLINEASM ONLY and UseVSXReg is always false.
218     const char *RegName = PPCInstPrinter::getRegisterName(MO.getReg());
219 
220     // Linux assembler (Others?) does not take register mnemonics.
221     // FIXME - What about special registers used in mfspr/mtspr?
222     O << PPCRegisterInfo::stripRegisterPrefix(RegName);
223     return;
224   }
225   case MachineOperand::MO_Immediate:
226     O << MO.getImm();
227     return;
228 
229   case MachineOperand::MO_MachineBasicBlock:
230     MO.getMBB()->getSymbol()->print(O, MAI);
231     return;
232   case MachineOperand::MO_ConstantPoolIndex:
233     O << DL.getPrivateGlobalPrefix() << "CPI" << getFunctionNumber() << '_'
234       << MO.getIndex();
235     return;
236   case MachineOperand::MO_BlockAddress:
237     GetBlockAddressSymbol(MO.getBlockAddress())->print(O, MAI);
238     return;
239   case MachineOperand::MO_GlobalAddress: {
240     PrintSymbolOperand(MO, O);
241     return;
242   }
243 
244   default:
245     O << "<unknown operand type: " << (unsigned)MO.getType() << ">";
246     return;
247   }
248 }
249 
250 /// PrintAsmOperand - Print out an operand for an inline asm expression.
251 ///
252 bool PPCAsmPrinter::PrintAsmOperand(const MachineInstr *MI, unsigned OpNo,
253                                     const char *ExtraCode, raw_ostream &O) {
254   // Does this asm operand have a single letter operand modifier?
255   if (ExtraCode && ExtraCode[0]) {
256     if (ExtraCode[1] != 0) return true; // Unknown modifier.
257 
258     switch (ExtraCode[0]) {
259     default:
260       // See if this is a generic print operand
261       return AsmPrinter::PrintAsmOperand(MI, OpNo, ExtraCode, O);
262     case 'L': // Write second word of DImode reference.
263       // Verify that this operand has two consecutive registers.
264       if (!MI->getOperand(OpNo).isReg() ||
265           OpNo+1 == MI->getNumOperands() ||
266           !MI->getOperand(OpNo+1).isReg())
267         return true;
268       ++OpNo;   // Return the high-part.
269       break;
270     case 'I':
271       // Write 'i' if an integer constant, otherwise nothing.  Used to print
272       // addi vs add, etc.
273       if (MI->getOperand(OpNo).isImm())
274         O << "i";
275       return false;
276     case 'x':
277       if(!MI->getOperand(OpNo).isReg())
278         return true;
279       // This operand uses VSX numbering.
280       // If the operand is a VMX register, convert it to a VSX register.
281       Register Reg = MI->getOperand(OpNo).getReg();
282       if (PPCInstrInfo::isVRRegister(Reg))
283         Reg = PPC::VSX32 + (Reg - PPC::V0);
284       else if (PPCInstrInfo::isVFRegister(Reg))
285         Reg = PPC::VSX32 + (Reg - PPC::VF0);
286       const char *RegName;
287       RegName = PPCInstPrinter::getRegisterName(Reg);
288       RegName = PPCRegisterInfo::stripRegisterPrefix(RegName);
289       O << RegName;
290       return false;
291     }
292   }
293 
294   printOperand(MI, OpNo, O);
295   return false;
296 }
297 
298 // At the moment, all inline asm memory operands are a single register.
299 // In any case, the output of this routine should always be just one
300 // assembler operand.
301 
302 bool PPCAsmPrinter::PrintAsmMemoryOperand(const MachineInstr *MI, unsigned OpNo,
303                                           const char *ExtraCode,
304                                           raw_ostream &O) {
305   if (ExtraCode && ExtraCode[0]) {
306     if (ExtraCode[1] != 0) return true; // Unknown modifier.
307 
308     switch (ExtraCode[0]) {
309     default: return true;  // Unknown modifier.
310     case 'L': // A memory reference to the upper word of a double word op.
311       O << getDataLayout().getPointerSize() << "(";
312       printOperand(MI, OpNo, O);
313       O << ")";
314       return false;
315     case 'y': // A memory reference for an X-form instruction
316       O << "0, ";
317       printOperand(MI, OpNo, O);
318       return false;
319     case 'U': // Print 'u' for update form.
320     case 'X': // Print 'x' for indexed form.
321       // FIXME: Currently for PowerPC memory operands are always loaded
322       // into a register, so we never get an update or indexed form.
323       // This is bad even for offset forms, since even if we know we
324       // have a value in -16(r1), we will generate a load into r<n>
325       // and then load from 0(r<n>).  Until that issue is fixed,
326       // tolerate 'U' and 'X' but don't output anything.
327       assert(MI->getOperand(OpNo).isReg());
328       return false;
329     }
330   }
331 
332   assert(MI->getOperand(OpNo).isReg());
333   O << "0(";
334   printOperand(MI, OpNo, O);
335   O << ")";
336   return false;
337 }
338 
339 /// lookUpOrCreateTOCEntry -- Given a symbol, look up whether a TOC entry
340 /// exists for it.  If not, create one.  Then return a symbol that references
341 /// the TOC entry.
342 MCSymbol *PPCAsmPrinter::lookUpOrCreateTOCEntry(const MCSymbol *Sym) {
343   MCSymbol *&TOCEntry = TOC[Sym];
344   if (!TOCEntry)
345     TOCEntry = createTempSymbol("C");
346   return TOCEntry;
347 }
348 
349 void PPCAsmPrinter::emitEndOfAsmFile(Module &M) {
350   emitStackMaps(SM);
351 }
352 
353 void PPCAsmPrinter::LowerSTACKMAP(StackMaps &SM, const MachineInstr &MI) {
354   unsigned NumNOPBytes = MI.getOperand(1).getImm();
355 
356   auto &Ctx = OutStreamer->getContext();
357   MCSymbol *MILabel = Ctx.createTempSymbol();
358   OutStreamer->emitLabel(MILabel);
359 
360   SM.recordStackMap(*MILabel, MI);
361   assert(NumNOPBytes % 4 == 0 && "Invalid number of NOP bytes requested!");
362 
363   // Scan ahead to trim the shadow.
364   const MachineBasicBlock &MBB = *MI.getParent();
365   MachineBasicBlock::const_iterator MII(MI);
366   ++MII;
367   while (NumNOPBytes > 0) {
368     if (MII == MBB.end() || MII->isCall() ||
369         MII->getOpcode() == PPC::DBG_VALUE ||
370         MII->getOpcode() == TargetOpcode::PATCHPOINT ||
371         MII->getOpcode() == TargetOpcode::STACKMAP)
372       break;
373     ++MII;
374     NumNOPBytes -= 4;
375   }
376 
377   // Emit nops.
378   for (unsigned i = 0; i < NumNOPBytes; i += 4)
379     EmitToStreamer(*OutStreamer, MCInstBuilder(PPC::NOP));
380 }
381 
382 // Lower a patchpoint of the form:
383 // [<def>], <id>, <numBytes>, <target>, <numArgs>
384 void PPCAsmPrinter::LowerPATCHPOINT(StackMaps &SM, const MachineInstr &MI) {
385   auto &Ctx = OutStreamer->getContext();
386   MCSymbol *MILabel = Ctx.createTempSymbol();
387   OutStreamer->emitLabel(MILabel);
388 
389   SM.recordPatchPoint(*MILabel, MI);
390   PatchPointOpers Opers(&MI);
391 
392   unsigned EncodedBytes = 0;
393   const MachineOperand &CalleeMO = Opers.getCallTarget();
394 
395   if (CalleeMO.isImm()) {
396     int64_t CallTarget = CalleeMO.getImm();
397     if (CallTarget) {
398       assert((CallTarget & 0xFFFFFFFFFFFF) == CallTarget &&
399              "High 16 bits of call target should be zero.");
400       Register ScratchReg = MI.getOperand(Opers.getNextScratchIdx()).getReg();
401       EncodedBytes = 0;
402       // Materialize the jump address:
403       EmitToStreamer(*OutStreamer, MCInstBuilder(PPC::LI8)
404                                       .addReg(ScratchReg)
405                                       .addImm((CallTarget >> 32) & 0xFFFF));
406       ++EncodedBytes;
407       EmitToStreamer(*OutStreamer, MCInstBuilder(PPC::RLDIC)
408                                       .addReg(ScratchReg)
409                                       .addReg(ScratchReg)
410                                       .addImm(32).addImm(16));
411       ++EncodedBytes;
412       EmitToStreamer(*OutStreamer, MCInstBuilder(PPC::ORIS8)
413                                       .addReg(ScratchReg)
414                                       .addReg(ScratchReg)
415                                       .addImm((CallTarget >> 16) & 0xFFFF));
416       ++EncodedBytes;
417       EmitToStreamer(*OutStreamer, MCInstBuilder(PPC::ORI8)
418                                       .addReg(ScratchReg)
419                                       .addReg(ScratchReg)
420                                       .addImm(CallTarget & 0xFFFF));
421 
422       // Save the current TOC pointer before the remote call.
423       int TOCSaveOffset = Subtarget->getFrameLowering()->getTOCSaveOffset();
424       EmitToStreamer(*OutStreamer, MCInstBuilder(PPC::STD)
425                                       .addReg(PPC::X2)
426                                       .addImm(TOCSaveOffset)
427                                       .addReg(PPC::X1));
428       ++EncodedBytes;
429 
430       // If we're on ELFv1, then we need to load the actual function pointer
431       // from the function descriptor.
432       if (!Subtarget->isELFv2ABI()) {
433         // Load the new TOC pointer and the function address, but not r11
434         // (needing this is rare, and loading it here would prevent passing it
435         // via a 'nest' parameter.
436         EmitToStreamer(*OutStreamer, MCInstBuilder(PPC::LD)
437                                         .addReg(PPC::X2)
438                                         .addImm(8)
439                                         .addReg(ScratchReg));
440         ++EncodedBytes;
441         EmitToStreamer(*OutStreamer, MCInstBuilder(PPC::LD)
442                                         .addReg(ScratchReg)
443                                         .addImm(0)
444                                         .addReg(ScratchReg));
445         ++EncodedBytes;
446       }
447 
448       EmitToStreamer(*OutStreamer, MCInstBuilder(PPC::MTCTR8)
449                                       .addReg(ScratchReg));
450       ++EncodedBytes;
451       EmitToStreamer(*OutStreamer, MCInstBuilder(PPC::BCTRL8));
452       ++EncodedBytes;
453 
454       // Restore the TOC pointer after the call.
455       EmitToStreamer(*OutStreamer, MCInstBuilder(PPC::LD)
456                                       .addReg(PPC::X2)
457                                       .addImm(TOCSaveOffset)
458                                       .addReg(PPC::X1));
459       ++EncodedBytes;
460     }
461   } else if (CalleeMO.isGlobal()) {
462     const GlobalValue *GValue = CalleeMO.getGlobal();
463     MCSymbol *MOSymbol = getSymbol(GValue);
464     const MCExpr *SymVar = MCSymbolRefExpr::create(MOSymbol, OutContext);
465 
466     EmitToStreamer(*OutStreamer, MCInstBuilder(PPC::BL8_NOP)
467                                     .addExpr(SymVar));
468     EncodedBytes += 2;
469   }
470 
471   // Each instruction is 4 bytes.
472   EncodedBytes *= 4;
473 
474   // Emit padding.
475   unsigned NumBytes = Opers.getNumPatchBytes();
476   assert(NumBytes >= EncodedBytes &&
477          "Patchpoint can't request size less than the length of a call.");
478   assert((NumBytes - EncodedBytes) % 4 == 0 &&
479          "Invalid number of NOP bytes requested!");
480   for (unsigned i = EncodedBytes; i < NumBytes; i += 4)
481     EmitToStreamer(*OutStreamer, MCInstBuilder(PPC::NOP));
482 }
483 
484 /// EmitTlsCall -- Given a GETtls[ld]ADDR[32] instruction, print a
485 /// call to __tls_get_addr to the current output stream.
486 void PPCAsmPrinter::EmitTlsCall(const MachineInstr *MI,
487                                 MCSymbolRefExpr::VariantKind VK) {
488   StringRef Name = "__tls_get_addr";
489   MCSymbol *TlsGetAddr = OutContext.getOrCreateSymbol(Name);
490   MCSymbolRefExpr::VariantKind Kind = MCSymbolRefExpr::VK_None;
491   unsigned Opcode = PPC::BL8_NOP_TLS;
492 
493   assert(MI->getNumOperands() >= 3 && "Expecting at least 3 operands from MI");
494   if (MI->getOperand(2).getTargetFlags() == PPCII::MO_GOT_TLSGD_PCREL_FLAG) {
495     Kind = MCSymbolRefExpr::VK_PPC_NOTOC;
496     Opcode = PPC::BL8_NOTOC_TLS;
497   }
498   const Module *M = MF->getFunction().getParent();
499 
500   assert(MI->getOperand(0).isReg() &&
501          ((Subtarget->isPPC64() && MI->getOperand(0).getReg() == PPC::X3) ||
502           (!Subtarget->isPPC64() && MI->getOperand(0).getReg() == PPC::R3)) &&
503          "GETtls[ld]ADDR[32] must define GPR3");
504   assert(MI->getOperand(1).isReg() &&
505          ((Subtarget->isPPC64() && MI->getOperand(1).getReg() == PPC::X3) ||
506           (!Subtarget->isPPC64() && MI->getOperand(1).getReg() == PPC::R3)) &&
507          "GETtls[ld]ADDR[32] must read GPR3");
508 
509   if (Subtarget->is32BitELFABI() && isPositionIndependent())
510     Kind = MCSymbolRefExpr::VK_PLT;
511 
512   const MCExpr *TlsRef =
513     MCSymbolRefExpr::create(TlsGetAddr, Kind, OutContext);
514 
515   // Add 32768 offset to the symbol so we follow up the latest GOT/PLT ABI.
516   if (Kind == MCSymbolRefExpr::VK_PLT && Subtarget->isSecurePlt() &&
517       M->getPICLevel() == PICLevel::BigPIC)
518     TlsRef = MCBinaryExpr::createAdd(
519         TlsRef, MCConstantExpr::create(32768, OutContext), OutContext);
520   const MachineOperand &MO = MI->getOperand(2);
521   const GlobalValue *GValue = MO.getGlobal();
522   MCSymbol *MOSymbol = getSymbol(GValue);
523   const MCExpr *SymVar = MCSymbolRefExpr::create(MOSymbol, VK, OutContext);
524   EmitToStreamer(*OutStreamer,
525                  MCInstBuilder(Subtarget->isPPC64() ? Opcode : PPC::BL_TLS)
526                      .addExpr(TlsRef)
527                      .addExpr(SymVar));
528 }
529 
530 /// Map a machine operand for a TOC pseudo-machine instruction to its
531 /// corresponding MCSymbol.
532 static MCSymbol *getMCSymbolForTOCPseudoMO(const MachineOperand &MO,
533                                            AsmPrinter &AP) {
534   switch (MO.getType()) {
535   case MachineOperand::MO_GlobalAddress:
536     return AP.getSymbol(MO.getGlobal());
537   case MachineOperand::MO_ConstantPoolIndex:
538     return AP.GetCPISymbol(MO.getIndex());
539   case MachineOperand::MO_JumpTableIndex:
540     return AP.GetJTISymbol(MO.getIndex());
541   case MachineOperand::MO_BlockAddress:
542     return AP.GetBlockAddressSymbol(MO.getBlockAddress());
543   default:
544     llvm_unreachable("Unexpected operand type to get symbol.");
545   }
546 }
547 
548 /// EmitInstruction -- Print out a single PowerPC MI in Darwin syntax to
549 /// the current output stream.
550 ///
551 void PPCAsmPrinter::emitInstruction(const MachineInstr *MI) {
552   MCInst TmpInst;
553   const bool IsPPC64 = Subtarget->isPPC64();
554   const bool IsAIX = Subtarget->isAIXABI();
555   const Module *M = MF->getFunction().getParent();
556   PICLevel::Level PL = M->getPICLevel();
557 
558 #ifndef NDEBUG
559   // Validate that SPE and FPU are mutually exclusive in codegen
560   if (!MI->isInlineAsm()) {
561     for (const MachineOperand &MO: MI->operands()) {
562       if (MO.isReg()) {
563         Register Reg = MO.getReg();
564         if (Subtarget->hasSPE()) {
565           if (PPC::F4RCRegClass.contains(Reg) ||
566               PPC::F8RCRegClass.contains(Reg) ||
567               PPC::VFRCRegClass.contains(Reg) ||
568               PPC::VRRCRegClass.contains(Reg) ||
569               PPC::VSFRCRegClass.contains(Reg) ||
570               PPC::VSSRCRegClass.contains(Reg)
571               )
572             llvm_unreachable("SPE targets cannot have FPRegs!");
573         } else {
574           if (PPC::SPERCRegClass.contains(Reg))
575             llvm_unreachable("SPE register found in FPU-targeted code!");
576         }
577       }
578     }
579   }
580 #endif
581   // Lower multi-instruction pseudo operations.
582   switch (MI->getOpcode()) {
583   default: break;
584   case TargetOpcode::DBG_VALUE:
585     llvm_unreachable("Should be handled target independently");
586   case TargetOpcode::STACKMAP:
587     return LowerSTACKMAP(SM, *MI);
588   case TargetOpcode::PATCHPOINT:
589     return LowerPATCHPOINT(SM, *MI);
590 
591   case PPC::MoveGOTtoLR: {
592     // Transform %lr = MoveGOTtoLR
593     // Into this: bl _GLOBAL_OFFSET_TABLE_@local-4
594     // _GLOBAL_OFFSET_TABLE_@local-4 (instruction preceding
595     // _GLOBAL_OFFSET_TABLE_) has exactly one instruction:
596     //      blrl
597     // This will return the pointer to _GLOBAL_OFFSET_TABLE_@local
598     MCSymbol *GOTSymbol =
599       OutContext.getOrCreateSymbol(StringRef("_GLOBAL_OFFSET_TABLE_"));
600     const MCExpr *OffsExpr =
601       MCBinaryExpr::createSub(MCSymbolRefExpr::create(GOTSymbol,
602                                                       MCSymbolRefExpr::VK_PPC_LOCAL,
603                                                       OutContext),
604                               MCConstantExpr::create(4, OutContext),
605                               OutContext);
606 
607     // Emit the 'bl'.
608     EmitToStreamer(*OutStreamer, MCInstBuilder(PPC::BL).addExpr(OffsExpr));
609     return;
610   }
611   case PPC::MovePCtoLR:
612   case PPC::MovePCtoLR8: {
613     // Transform %lr = MovePCtoLR
614     // Into this, where the label is the PIC base:
615     //     bl L1$pb
616     // L1$pb:
617     MCSymbol *PICBase = MF->getPICBaseSymbol();
618 
619     // Emit the 'bl'.
620     EmitToStreamer(*OutStreamer,
621                    MCInstBuilder(PPC::BL)
622                        // FIXME: We would like an efficient form for this, so we
623                        // don't have to do a lot of extra uniquing.
624                        .addExpr(MCSymbolRefExpr::create(PICBase, OutContext)));
625 
626     // Emit the label.
627     OutStreamer->emitLabel(PICBase);
628     return;
629   }
630   case PPC::UpdateGBR: {
631     // Transform %rd = UpdateGBR(%rt, %ri)
632     // Into: lwz %rt, .L0$poff - .L0$pb(%ri)
633     //       add %rd, %rt, %ri
634     // or into (if secure plt mode is on):
635     //       addis r30, r30, {.LTOC,_GLOBAL_OFFSET_TABLE} - .L0$pb@ha
636     //       addi r30, r30, {.LTOC,_GLOBAL_OFFSET_TABLE} - .L0$pb@l
637     // Get the offset from the GOT Base Register to the GOT
638     LowerPPCMachineInstrToMCInst(MI, TmpInst, *this);
639     if (Subtarget->isSecurePlt() && isPositionIndependent() ) {
640       unsigned PICR = TmpInst.getOperand(0).getReg();
641       MCSymbol *BaseSymbol = OutContext.getOrCreateSymbol(
642           M->getPICLevel() == PICLevel::SmallPIC ? "_GLOBAL_OFFSET_TABLE_"
643                                                  : ".LTOC");
644       const MCExpr *PB =
645           MCSymbolRefExpr::create(MF->getPICBaseSymbol(), OutContext);
646 
647       const MCExpr *DeltaExpr = MCBinaryExpr::createSub(
648           MCSymbolRefExpr::create(BaseSymbol, OutContext), PB, OutContext);
649 
650       const MCExpr *DeltaHi = PPCMCExpr::createHa(DeltaExpr, OutContext);
651       EmitToStreamer(
652           *OutStreamer,
653           MCInstBuilder(PPC::ADDIS).addReg(PICR).addReg(PICR).addExpr(DeltaHi));
654 
655       const MCExpr *DeltaLo = PPCMCExpr::createLo(DeltaExpr, OutContext);
656       EmitToStreamer(
657           *OutStreamer,
658           MCInstBuilder(PPC::ADDI).addReg(PICR).addReg(PICR).addExpr(DeltaLo));
659       return;
660     } else {
661       MCSymbol *PICOffset =
662         MF->getInfo<PPCFunctionInfo>()->getPICOffsetSymbol(*MF);
663       TmpInst.setOpcode(PPC::LWZ);
664       const MCExpr *Exp =
665         MCSymbolRefExpr::create(PICOffset, MCSymbolRefExpr::VK_None, OutContext);
666       const MCExpr *PB =
667         MCSymbolRefExpr::create(MF->getPICBaseSymbol(),
668                                 MCSymbolRefExpr::VK_None,
669                                 OutContext);
670       const MCOperand TR = TmpInst.getOperand(1);
671       const MCOperand PICR = TmpInst.getOperand(0);
672 
673       // Step 1: lwz %rt, .L$poff - .L$pb(%ri)
674       TmpInst.getOperand(1) =
675           MCOperand::createExpr(MCBinaryExpr::createSub(Exp, PB, OutContext));
676       TmpInst.getOperand(0) = TR;
677       TmpInst.getOperand(2) = PICR;
678       EmitToStreamer(*OutStreamer, TmpInst);
679 
680       TmpInst.setOpcode(PPC::ADD4);
681       TmpInst.getOperand(0) = PICR;
682       TmpInst.getOperand(1) = TR;
683       TmpInst.getOperand(2) = PICR;
684       EmitToStreamer(*OutStreamer, TmpInst);
685       return;
686     }
687   }
688   case PPC::LWZtoc: {
689     // Transform %rN = LWZtoc @op1, %r2
690     LowerPPCMachineInstrToMCInst(MI, TmpInst, *this);
691 
692     // Change the opcode to LWZ.
693     TmpInst.setOpcode(PPC::LWZ);
694 
695     const MachineOperand &MO = MI->getOperand(1);
696     assert((MO.isGlobal() || MO.isCPI() || MO.isJTI() || MO.isBlockAddress()) &&
697            "Invalid operand for LWZtoc.");
698 
699     // Map the operand to its corresponding MCSymbol.
700     const MCSymbol *const MOSymbol = getMCSymbolForTOCPseudoMO(MO, *this);
701 
702     // Create a reference to the GOT entry for the symbol. The GOT entry will be
703     // synthesized later.
704     if (PL == PICLevel::SmallPIC && !IsAIX) {
705       const MCExpr *Exp =
706         MCSymbolRefExpr::create(MOSymbol, MCSymbolRefExpr::VK_GOT,
707                                 OutContext);
708       TmpInst.getOperand(1) = MCOperand::createExpr(Exp);
709       EmitToStreamer(*OutStreamer, TmpInst);
710       return;
711     }
712 
713     // Otherwise, use the TOC. 'TOCEntry' is a label used to reference the
714     // storage allocated in the TOC which contains the address of
715     // 'MOSymbol'. Said TOC entry will be synthesized later.
716     MCSymbol *TOCEntry = lookUpOrCreateTOCEntry(MOSymbol);
717     const MCExpr *Exp =
718         MCSymbolRefExpr::create(TOCEntry, MCSymbolRefExpr::VK_None, OutContext);
719 
720     // AIX uses the label directly as the lwz displacement operand for
721     // references into the toc section. The displacement value will be generated
722     // relative to the toc-base.
723     if (IsAIX) {
724       assert(
725           TM.getCodeModel() == CodeModel::Small &&
726           "This pseudo should only be selected for 32-bit small code model.");
727       TmpInst.getOperand(1) = MCOperand::createExpr(Exp);
728       EmitToStreamer(*OutStreamer, TmpInst);
729       return;
730     }
731 
732     // Create an explicit subtract expression between the local symbol and
733     // '.LTOC' to manifest the toc-relative offset.
734     const MCExpr *PB = MCSymbolRefExpr::create(
735         OutContext.getOrCreateSymbol(Twine(".LTOC")), OutContext);
736     Exp = MCBinaryExpr::createSub(Exp, PB, OutContext);
737     TmpInst.getOperand(1) = MCOperand::createExpr(Exp);
738     EmitToStreamer(*OutStreamer, TmpInst);
739     return;
740   }
741   case PPC::LDtocJTI:
742   case PPC::LDtocCPT:
743   case PPC::LDtocBA:
744   case PPC::LDtoc: {
745     // Transform %x3 = LDtoc @min1, %x2
746     LowerPPCMachineInstrToMCInst(MI, TmpInst, *this);
747 
748     // Change the opcode to LD.
749     TmpInst.setOpcode(PPC::LD);
750 
751     const MachineOperand &MO = MI->getOperand(1);
752     assert((MO.isGlobal() || MO.isCPI() || MO.isJTI() || MO.isBlockAddress()) &&
753            "Invalid operand!");
754 
755     // Map the machine operand to its corresponding MCSymbol, then map the
756     // global address operand to be a reference to the TOC entry we will
757     // synthesize later.
758     MCSymbol *TOCEntry =
759         lookUpOrCreateTOCEntry(getMCSymbolForTOCPseudoMO(MO, *this));
760 
761     const MCSymbolRefExpr::VariantKind VK =
762         IsAIX ? MCSymbolRefExpr::VK_None : MCSymbolRefExpr::VK_PPC_TOC;
763     const MCExpr *Exp =
764         MCSymbolRefExpr::create(TOCEntry, VK, OutContext);
765     TmpInst.getOperand(1) = MCOperand::createExpr(Exp);
766     EmitToStreamer(*OutStreamer, TmpInst);
767     return;
768   }
769   case PPC::ADDIStocHA: {
770     assert((IsAIX && !IsPPC64 && TM.getCodeModel() == CodeModel::Large) &&
771            "This pseudo should only be selected for 32-bit large code model on"
772            " AIX.");
773 
774     // Transform %rd = ADDIStocHA %rA, @sym(%r2)
775     LowerPPCMachineInstrToMCInst(MI, TmpInst, *this);
776 
777     // Change the opcode to ADDIS.
778     TmpInst.setOpcode(PPC::ADDIS);
779 
780     const MachineOperand &MO = MI->getOperand(2);
781     assert((MO.isGlobal() || MO.isCPI() || MO.isJTI() || MO.isBlockAddress()) &&
782            "Invalid operand for ADDIStocHA.");
783 
784     // Map the machine operand to its corresponding MCSymbol.
785     MCSymbol *MOSymbol = getMCSymbolForTOCPseudoMO(MO, *this);
786 
787     // Always use TOC on AIX. Map the global address operand to be a reference
788     // to the TOC entry we will synthesize later. 'TOCEntry' is a label used to
789     // reference the storage allocated in the TOC which contains the address of
790     // 'MOSymbol'.
791     MCSymbol *TOCEntry = lookUpOrCreateTOCEntry(MOSymbol);
792     const MCExpr *Exp = MCSymbolRefExpr::create(TOCEntry,
793                                                 MCSymbolRefExpr::VK_PPC_U,
794                                                 OutContext);
795     TmpInst.getOperand(2) = MCOperand::createExpr(Exp);
796     EmitToStreamer(*OutStreamer, TmpInst);
797     return;
798   }
799   case PPC::LWZtocL: {
800     assert(IsAIX && !IsPPC64 && TM.getCodeModel() == CodeModel::Large &&
801            "This pseudo should only be selected for 32-bit large code model on"
802            " AIX.");
803 
804     // Transform %rd = LWZtocL @sym, %rs.
805     LowerPPCMachineInstrToMCInst(MI, TmpInst, *this);
806 
807     // Change the opcode to lwz.
808     TmpInst.setOpcode(PPC::LWZ);
809 
810     const MachineOperand &MO = MI->getOperand(1);
811     assert((MO.isGlobal() || MO.isCPI() || MO.isJTI() || MO.isBlockAddress()) &&
812            "Invalid operand for LWZtocL.");
813 
814     // Map the machine operand to its corresponding MCSymbol.
815     MCSymbol *MOSymbol = getMCSymbolForTOCPseudoMO(MO, *this);
816 
817     // Always use TOC on AIX. Map the global address operand to be a reference
818     // to the TOC entry we will synthesize later. 'TOCEntry' is a label used to
819     // reference the storage allocated in the TOC which contains the address of
820     // 'MOSymbol'.
821     MCSymbol *TOCEntry = lookUpOrCreateTOCEntry(MOSymbol);
822     const MCExpr *Exp = MCSymbolRefExpr::create(TOCEntry,
823                                                 MCSymbolRefExpr::VK_PPC_L,
824                                                 OutContext);
825     TmpInst.getOperand(1) = MCOperand::createExpr(Exp);
826     EmitToStreamer(*OutStreamer, TmpInst);
827     return;
828   }
829   case PPC::ADDIStocHA8: {
830     // Transform %xd = ADDIStocHA8 %x2, @sym
831     LowerPPCMachineInstrToMCInst(MI, TmpInst, *this);
832 
833     // Change the opcode to ADDIS8. If the global address is the address of
834     // an external symbol, is a jump table address, is a block address, or is a
835     // constant pool index with large code model enabled, then generate a TOC
836     // entry and reference that. Otherwise, reference the symbol directly.
837     TmpInst.setOpcode(PPC::ADDIS8);
838 
839     const MachineOperand &MO = MI->getOperand(2);
840     assert((MO.isGlobal() || MO.isCPI() || MO.isJTI() || MO.isBlockAddress()) &&
841            "Invalid operand for ADDIStocHA8!");
842 
843     const MCSymbol *MOSymbol = getMCSymbolForTOCPseudoMO(MO, *this);
844 
845     const bool GlobalToc =
846         MO.isGlobal() && Subtarget->isGVIndirectSymbol(MO.getGlobal());
847     if (GlobalToc || MO.isJTI() || MO.isBlockAddress() ||
848         (MO.isCPI() && TM.getCodeModel() == CodeModel::Large))
849       MOSymbol = lookUpOrCreateTOCEntry(MOSymbol);
850 
851     const MCSymbolRefExpr::VariantKind VK =
852         IsAIX ? MCSymbolRefExpr::VK_PPC_U : MCSymbolRefExpr::VK_PPC_TOC_HA;
853 
854     const MCExpr *Exp =
855         MCSymbolRefExpr::create(MOSymbol, VK, OutContext);
856 
857     if (!MO.isJTI() && MO.getOffset())
858       Exp = MCBinaryExpr::createAdd(Exp,
859                                     MCConstantExpr::create(MO.getOffset(),
860                                                            OutContext),
861                                     OutContext);
862 
863     TmpInst.getOperand(2) = MCOperand::createExpr(Exp);
864     EmitToStreamer(*OutStreamer, TmpInst);
865     return;
866   }
867   case PPC::LDtocL: {
868     // Transform %xd = LDtocL @sym, %xs
869     LowerPPCMachineInstrToMCInst(MI, TmpInst, *this);
870 
871     // Change the opcode to LD. If the global address is the address of
872     // an external symbol, is a jump table address, is a block address, or is
873     // a constant pool index with large code model enabled, then generate a
874     // TOC entry and reference that. Otherwise, reference the symbol directly.
875     TmpInst.setOpcode(PPC::LD);
876 
877     const MachineOperand &MO = MI->getOperand(1);
878     assert((MO.isGlobal() || MO.isCPI() || MO.isJTI() ||
879             MO.isBlockAddress()) &&
880            "Invalid operand for LDtocL!");
881 
882     LLVM_DEBUG(assert(
883         (!MO.isGlobal() || Subtarget->isGVIndirectSymbol(MO.getGlobal())) &&
884         "LDtocL used on symbol that could be accessed directly is "
885         "invalid. Must match ADDIStocHA8."));
886 
887     const MCSymbol *MOSymbol = getMCSymbolForTOCPseudoMO(MO, *this);
888 
889     if (!MO.isCPI() || TM.getCodeModel() == CodeModel::Large)
890       MOSymbol = lookUpOrCreateTOCEntry(MOSymbol);
891 
892     const MCSymbolRefExpr::VariantKind VK =
893         IsAIX ? MCSymbolRefExpr::VK_PPC_L : MCSymbolRefExpr::VK_PPC_TOC_LO;
894     const MCExpr *Exp =
895         MCSymbolRefExpr::create(MOSymbol, VK, OutContext);
896     TmpInst.getOperand(1) = MCOperand::createExpr(Exp);
897     EmitToStreamer(*OutStreamer, TmpInst);
898     return;
899   }
900   case PPC::ADDItocL: {
901     // Transform %xd = ADDItocL %xs, @sym
902     LowerPPCMachineInstrToMCInst(MI, TmpInst, *this);
903 
904     // Change the opcode to ADDI8. If the global address is external, then
905     // generate a TOC entry and reference that. Otherwise, reference the
906     // symbol directly.
907     TmpInst.setOpcode(PPC::ADDI8);
908 
909     const MachineOperand &MO = MI->getOperand(2);
910     assert((MO.isGlobal() || MO.isCPI()) && "Invalid operand for ADDItocL.");
911 
912     LLVM_DEBUG(assert(
913         !(MO.isGlobal() && Subtarget->isGVIndirectSymbol(MO.getGlobal())) &&
914         "Interposable definitions must use indirect access."));
915 
916     const MCExpr *Exp =
917         MCSymbolRefExpr::create(getMCSymbolForTOCPseudoMO(MO, *this),
918                                 MCSymbolRefExpr::VK_PPC_TOC_LO, OutContext);
919     TmpInst.getOperand(2) = MCOperand::createExpr(Exp);
920     EmitToStreamer(*OutStreamer, TmpInst);
921     return;
922   }
923   case PPC::ADDISgotTprelHA: {
924     // Transform: %xd = ADDISgotTprelHA %x2, @sym
925     // Into:      %xd = ADDIS8 %x2, sym@got@tlsgd@ha
926     assert(IsPPC64 && "Not supported for 32-bit PowerPC");
927     const MachineOperand &MO = MI->getOperand(2);
928     const GlobalValue *GValue = MO.getGlobal();
929     MCSymbol *MOSymbol = getSymbol(GValue);
930     const MCExpr *SymGotTprel =
931         MCSymbolRefExpr::create(MOSymbol, MCSymbolRefExpr::VK_PPC_GOT_TPREL_HA,
932                                 OutContext);
933     EmitToStreamer(*OutStreamer, MCInstBuilder(PPC::ADDIS8)
934                                  .addReg(MI->getOperand(0).getReg())
935                                  .addReg(MI->getOperand(1).getReg())
936                                  .addExpr(SymGotTprel));
937     return;
938   }
939   case PPC::LDgotTprelL:
940   case PPC::LDgotTprelL32: {
941     // Transform %xd = LDgotTprelL @sym, %xs
942     LowerPPCMachineInstrToMCInst(MI, TmpInst, *this);
943 
944     // Change the opcode to LD.
945     TmpInst.setOpcode(IsPPC64 ? PPC::LD : PPC::LWZ);
946     const MachineOperand &MO = MI->getOperand(1);
947     const GlobalValue *GValue = MO.getGlobal();
948     MCSymbol *MOSymbol = getSymbol(GValue);
949     const MCExpr *Exp = MCSymbolRefExpr::create(
950         MOSymbol, IsPPC64 ? MCSymbolRefExpr::VK_PPC_GOT_TPREL_LO
951                           : MCSymbolRefExpr::VK_PPC_GOT_TPREL,
952         OutContext);
953     TmpInst.getOperand(1) = MCOperand::createExpr(Exp);
954     EmitToStreamer(*OutStreamer, TmpInst);
955     return;
956   }
957 
958   case PPC::PPC32PICGOT: {
959     MCSymbol *GOTSymbol = OutContext.getOrCreateSymbol(StringRef("_GLOBAL_OFFSET_TABLE_"));
960     MCSymbol *GOTRef = OutContext.createTempSymbol();
961     MCSymbol *NextInstr = OutContext.createTempSymbol();
962 
963     EmitToStreamer(*OutStreamer, MCInstBuilder(PPC::BL)
964       // FIXME: We would like an efficient form for this, so we don't have to do
965       // a lot of extra uniquing.
966       .addExpr(MCSymbolRefExpr::create(NextInstr, OutContext)));
967     const MCExpr *OffsExpr =
968       MCBinaryExpr::createSub(MCSymbolRefExpr::create(GOTSymbol, OutContext),
969                                 MCSymbolRefExpr::create(GOTRef, OutContext),
970         OutContext);
971     OutStreamer->emitLabel(GOTRef);
972     OutStreamer->emitValue(OffsExpr, 4);
973     OutStreamer->emitLabel(NextInstr);
974     EmitToStreamer(*OutStreamer, MCInstBuilder(PPC::MFLR)
975                                  .addReg(MI->getOperand(0).getReg()));
976     EmitToStreamer(*OutStreamer, MCInstBuilder(PPC::LWZ)
977                                  .addReg(MI->getOperand(1).getReg())
978                                  .addImm(0)
979                                  .addReg(MI->getOperand(0).getReg()));
980     EmitToStreamer(*OutStreamer, MCInstBuilder(PPC::ADD4)
981                                  .addReg(MI->getOperand(0).getReg())
982                                  .addReg(MI->getOperand(1).getReg())
983                                  .addReg(MI->getOperand(0).getReg()));
984     return;
985   }
986   case PPC::PPC32GOT: {
987     MCSymbol *GOTSymbol =
988         OutContext.getOrCreateSymbol(StringRef("_GLOBAL_OFFSET_TABLE_"));
989     const MCExpr *SymGotTlsL = MCSymbolRefExpr::create(
990         GOTSymbol, MCSymbolRefExpr::VK_PPC_LO, OutContext);
991     const MCExpr *SymGotTlsHA = MCSymbolRefExpr::create(
992         GOTSymbol, MCSymbolRefExpr::VK_PPC_HA, OutContext);
993     EmitToStreamer(*OutStreamer, MCInstBuilder(PPC::LI)
994                                  .addReg(MI->getOperand(0).getReg())
995                                  .addExpr(SymGotTlsL));
996     EmitToStreamer(*OutStreamer, MCInstBuilder(PPC::ADDIS)
997                                  .addReg(MI->getOperand(0).getReg())
998                                  .addReg(MI->getOperand(0).getReg())
999                                  .addExpr(SymGotTlsHA));
1000     return;
1001   }
1002   case PPC::ADDIStlsgdHA: {
1003     // Transform: %xd = ADDIStlsgdHA %x2, @sym
1004     // Into:      %xd = ADDIS8 %x2, sym@got@tlsgd@ha
1005     assert(IsPPC64 && "Not supported for 32-bit PowerPC");
1006     const MachineOperand &MO = MI->getOperand(2);
1007     const GlobalValue *GValue = MO.getGlobal();
1008     MCSymbol *MOSymbol = getSymbol(GValue);
1009     const MCExpr *SymGotTlsGD =
1010       MCSymbolRefExpr::create(MOSymbol, MCSymbolRefExpr::VK_PPC_GOT_TLSGD_HA,
1011                               OutContext);
1012     EmitToStreamer(*OutStreamer, MCInstBuilder(PPC::ADDIS8)
1013                                  .addReg(MI->getOperand(0).getReg())
1014                                  .addReg(MI->getOperand(1).getReg())
1015                                  .addExpr(SymGotTlsGD));
1016     return;
1017   }
1018   case PPC::ADDItlsgdL:
1019     // Transform: %xd = ADDItlsgdL %xs, @sym
1020     // Into:      %xd = ADDI8 %xs, sym@got@tlsgd@l
1021   case PPC::ADDItlsgdL32: {
1022     // Transform: %rd = ADDItlsgdL32 %rs, @sym
1023     // Into:      %rd = ADDI %rs, sym@got@tlsgd
1024     const MachineOperand &MO = MI->getOperand(2);
1025     const GlobalValue *GValue = MO.getGlobal();
1026     MCSymbol *MOSymbol = getSymbol(GValue);
1027     const MCExpr *SymGotTlsGD = MCSymbolRefExpr::create(
1028         MOSymbol, IsPPC64 ? MCSymbolRefExpr::VK_PPC_GOT_TLSGD_LO
1029                           : MCSymbolRefExpr::VK_PPC_GOT_TLSGD,
1030         OutContext);
1031     EmitToStreamer(*OutStreamer,
1032                    MCInstBuilder(IsPPC64 ? PPC::ADDI8 : PPC::ADDI)
1033                    .addReg(MI->getOperand(0).getReg())
1034                    .addReg(MI->getOperand(1).getReg())
1035                    .addExpr(SymGotTlsGD));
1036     return;
1037   }
1038   case PPC::GETtlsADDR:
1039     // Transform: %x3 = GETtlsADDR %x3, @sym
1040     // Into: BL8_NOP_TLS __tls_get_addr(sym at tlsgd)
1041   case PPC::GETtlsADDR32: {
1042     // Transform: %r3 = GETtlsADDR32 %r3, @sym
1043     // Into: BL_TLS __tls_get_addr(sym at tlsgd)@PLT
1044     EmitTlsCall(MI, MCSymbolRefExpr::VK_PPC_TLSGD);
1045     return;
1046   }
1047   case PPC::ADDIStlsldHA: {
1048     // Transform: %xd = ADDIStlsldHA %x2, @sym
1049     // Into:      %xd = ADDIS8 %x2, sym@got@tlsld@ha
1050     assert(IsPPC64 && "Not supported for 32-bit PowerPC");
1051     const MachineOperand &MO = MI->getOperand(2);
1052     const GlobalValue *GValue = MO.getGlobal();
1053     MCSymbol *MOSymbol = getSymbol(GValue);
1054     const MCExpr *SymGotTlsLD =
1055       MCSymbolRefExpr::create(MOSymbol, MCSymbolRefExpr::VK_PPC_GOT_TLSLD_HA,
1056                               OutContext);
1057     EmitToStreamer(*OutStreamer, MCInstBuilder(PPC::ADDIS8)
1058                                  .addReg(MI->getOperand(0).getReg())
1059                                  .addReg(MI->getOperand(1).getReg())
1060                                  .addExpr(SymGotTlsLD));
1061     return;
1062   }
1063   case PPC::ADDItlsldL:
1064     // Transform: %xd = ADDItlsldL %xs, @sym
1065     // Into:      %xd = ADDI8 %xs, sym@got@tlsld@l
1066   case PPC::ADDItlsldL32: {
1067     // Transform: %rd = ADDItlsldL32 %rs, @sym
1068     // Into:      %rd = ADDI %rs, sym@got@tlsld
1069     const MachineOperand &MO = MI->getOperand(2);
1070     const GlobalValue *GValue = MO.getGlobal();
1071     MCSymbol *MOSymbol = getSymbol(GValue);
1072     const MCExpr *SymGotTlsLD = MCSymbolRefExpr::create(
1073         MOSymbol, IsPPC64 ? MCSymbolRefExpr::VK_PPC_GOT_TLSLD_LO
1074                           : MCSymbolRefExpr::VK_PPC_GOT_TLSLD,
1075         OutContext);
1076     EmitToStreamer(*OutStreamer,
1077                    MCInstBuilder(IsPPC64 ? PPC::ADDI8 : PPC::ADDI)
1078                        .addReg(MI->getOperand(0).getReg())
1079                        .addReg(MI->getOperand(1).getReg())
1080                        .addExpr(SymGotTlsLD));
1081     return;
1082   }
1083   case PPC::GETtlsldADDR:
1084     // Transform: %x3 = GETtlsldADDR %x3, @sym
1085     // Into: BL8_NOP_TLS __tls_get_addr(sym at tlsld)
1086   case PPC::GETtlsldADDR32: {
1087     // Transform: %r3 = GETtlsldADDR32 %r3, @sym
1088     // Into: BL_TLS __tls_get_addr(sym at tlsld)@PLT
1089     EmitTlsCall(MI, MCSymbolRefExpr::VK_PPC_TLSLD);
1090     return;
1091   }
1092   case PPC::ADDISdtprelHA:
1093     // Transform: %xd = ADDISdtprelHA %xs, @sym
1094     // Into:      %xd = ADDIS8 %xs, sym@dtprel@ha
1095   case PPC::ADDISdtprelHA32: {
1096     // Transform: %rd = ADDISdtprelHA32 %rs, @sym
1097     // Into:      %rd = ADDIS %rs, sym@dtprel@ha
1098     const MachineOperand &MO = MI->getOperand(2);
1099     const GlobalValue *GValue = MO.getGlobal();
1100     MCSymbol *MOSymbol = getSymbol(GValue);
1101     const MCExpr *SymDtprel =
1102       MCSymbolRefExpr::create(MOSymbol, MCSymbolRefExpr::VK_PPC_DTPREL_HA,
1103                               OutContext);
1104     EmitToStreamer(
1105         *OutStreamer,
1106         MCInstBuilder(IsPPC64 ? PPC::ADDIS8 : PPC::ADDIS)
1107             .addReg(MI->getOperand(0).getReg())
1108             .addReg(MI->getOperand(1).getReg())
1109             .addExpr(SymDtprel));
1110     return;
1111   }
1112   case PPC::ADDIdtprelL:
1113     // Transform: %xd = ADDIdtprelL %xs, @sym
1114     // Into:      %xd = ADDI8 %xs, sym@dtprel@l
1115   case PPC::ADDIdtprelL32: {
1116     // Transform: %rd = ADDIdtprelL32 %rs, @sym
1117     // Into:      %rd = ADDI %rs, sym@dtprel@l
1118     const MachineOperand &MO = MI->getOperand(2);
1119     const GlobalValue *GValue = MO.getGlobal();
1120     MCSymbol *MOSymbol = getSymbol(GValue);
1121     const MCExpr *SymDtprel =
1122       MCSymbolRefExpr::create(MOSymbol, MCSymbolRefExpr::VK_PPC_DTPREL_LO,
1123                               OutContext);
1124     EmitToStreamer(*OutStreamer,
1125                    MCInstBuilder(IsPPC64 ? PPC::ADDI8 : PPC::ADDI)
1126                        .addReg(MI->getOperand(0).getReg())
1127                        .addReg(MI->getOperand(1).getReg())
1128                        .addExpr(SymDtprel));
1129     return;
1130   }
1131   case PPC::MFOCRF:
1132   case PPC::MFOCRF8:
1133     if (!Subtarget->hasMFOCRF()) {
1134       // Transform: %r3 = MFOCRF %cr7
1135       // Into:      %r3 = MFCR   ;; cr7
1136       unsigned NewOpcode =
1137         MI->getOpcode() == PPC::MFOCRF ? PPC::MFCR : PPC::MFCR8;
1138       OutStreamer->AddComment(PPCInstPrinter::
1139                               getRegisterName(MI->getOperand(1).getReg()));
1140       EmitToStreamer(*OutStreamer, MCInstBuilder(NewOpcode)
1141                                   .addReg(MI->getOperand(0).getReg()));
1142       return;
1143     }
1144     break;
1145   case PPC::MTOCRF:
1146   case PPC::MTOCRF8:
1147     if (!Subtarget->hasMFOCRF()) {
1148       // Transform: %cr7 = MTOCRF %r3
1149       // Into:      MTCRF mask, %r3 ;; cr7
1150       unsigned NewOpcode =
1151         MI->getOpcode() == PPC::MTOCRF ? PPC::MTCRF : PPC::MTCRF8;
1152       unsigned Mask = 0x80 >> OutContext.getRegisterInfo()
1153                               ->getEncodingValue(MI->getOperand(0).getReg());
1154       OutStreamer->AddComment(PPCInstPrinter::
1155                               getRegisterName(MI->getOperand(0).getReg()));
1156       EmitToStreamer(*OutStreamer, MCInstBuilder(NewOpcode)
1157                                      .addImm(Mask)
1158                                      .addReg(MI->getOperand(1).getReg()));
1159       return;
1160     }
1161     break;
1162   case PPC::LD:
1163   case PPC::STD:
1164   case PPC::LWA_32:
1165   case PPC::LWA: {
1166     // Verify alignment is legal, so we don't create relocations
1167     // that can't be supported.
1168     // FIXME:  This test is currently disabled for Darwin.  The test
1169     // suite shows a handful of test cases that fail this check for
1170     // Darwin.  Those need to be investigated before this sanity test
1171     // can be enabled for those subtargets.
1172     unsigned OpNum = (MI->getOpcode() == PPC::STD) ? 2 : 1;
1173     const MachineOperand &MO = MI->getOperand(OpNum);
1174     if (MO.isGlobal()) {
1175       const DataLayout &DL = MO.getGlobal()->getParent()->getDataLayout();
1176       if (MO.getGlobal()->getPointerAlignment(DL) < 4)
1177         llvm_unreachable("Global must be word-aligned for LD, STD, LWA!");
1178     }
1179     // Now process the instruction normally.
1180     break;
1181   }
1182   }
1183 
1184   LowerPPCMachineInstrToMCInst(MI, TmpInst, *this);
1185   EmitToStreamer(*OutStreamer, TmpInst);
1186 }
1187 
1188 void PPCLinuxAsmPrinter::emitInstruction(const MachineInstr *MI) {
1189   if (!Subtarget->isPPC64())
1190     return PPCAsmPrinter::emitInstruction(MI);
1191 
1192   switch (MI->getOpcode()) {
1193   default:
1194     return PPCAsmPrinter::emitInstruction(MI);
1195   case TargetOpcode::PATCHABLE_FUNCTION_ENTER: {
1196     // .begin:
1197     //   b .end # lis 0, FuncId[16..32]
1198     //   nop    # li  0, FuncId[0..15]
1199     //   std 0, -8(1)
1200     //   mflr 0
1201     //   bl __xray_FunctionEntry
1202     //   mtlr 0
1203     // .end:
1204     //
1205     // Update compiler-rt/lib/xray/xray_powerpc64.cc accordingly when number
1206     // of instructions change.
1207     MCSymbol *BeginOfSled = OutContext.createTempSymbol();
1208     MCSymbol *EndOfSled = OutContext.createTempSymbol();
1209     OutStreamer->emitLabel(BeginOfSled);
1210     EmitToStreamer(*OutStreamer,
1211                    MCInstBuilder(PPC::B).addExpr(
1212                        MCSymbolRefExpr::create(EndOfSled, OutContext)));
1213     EmitToStreamer(*OutStreamer, MCInstBuilder(PPC::NOP));
1214     EmitToStreamer(
1215         *OutStreamer,
1216         MCInstBuilder(PPC::STD).addReg(PPC::X0).addImm(-8).addReg(PPC::X1));
1217     EmitToStreamer(*OutStreamer, MCInstBuilder(PPC::MFLR8).addReg(PPC::X0));
1218     EmitToStreamer(*OutStreamer,
1219                    MCInstBuilder(PPC::BL8_NOP)
1220                        .addExpr(MCSymbolRefExpr::create(
1221                            OutContext.getOrCreateSymbol("__xray_FunctionEntry"),
1222                            OutContext)));
1223     EmitToStreamer(*OutStreamer, MCInstBuilder(PPC::MTLR8).addReg(PPC::X0));
1224     OutStreamer->emitLabel(EndOfSled);
1225     recordSled(BeginOfSled, *MI, SledKind::FUNCTION_ENTER, 2);
1226     break;
1227   }
1228   case TargetOpcode::PATCHABLE_RET: {
1229     unsigned RetOpcode = MI->getOperand(0).getImm();
1230     MCInst RetInst;
1231     RetInst.setOpcode(RetOpcode);
1232     for (const auto &MO :
1233          make_range(std::next(MI->operands_begin()), MI->operands_end())) {
1234       MCOperand MCOp;
1235       if (LowerPPCMachineOperandToMCOperand(MO, MCOp, *this))
1236         RetInst.addOperand(MCOp);
1237     }
1238 
1239     bool IsConditional;
1240     if (RetOpcode == PPC::BCCLR) {
1241       IsConditional = true;
1242     } else if (RetOpcode == PPC::TCRETURNdi8 || RetOpcode == PPC::TCRETURNri8 ||
1243                RetOpcode == PPC::TCRETURNai8) {
1244       break;
1245     } else if (RetOpcode == PPC::BLR8 || RetOpcode == PPC::TAILB8) {
1246       IsConditional = false;
1247     } else {
1248       EmitToStreamer(*OutStreamer, RetInst);
1249       break;
1250     }
1251 
1252     MCSymbol *FallthroughLabel;
1253     if (IsConditional) {
1254       // Before:
1255       //   bgtlr cr0
1256       //
1257       // After:
1258       //   ble cr0, .end
1259       // .p2align 3
1260       // .begin:
1261       //   blr    # lis 0, FuncId[16..32]
1262       //   nop    # li  0, FuncId[0..15]
1263       //   std 0, -8(1)
1264       //   mflr 0
1265       //   bl __xray_FunctionExit
1266       //   mtlr 0
1267       //   blr
1268       // .end:
1269       //
1270       // Update compiler-rt/lib/xray/xray_powerpc64.cc accordingly when number
1271       // of instructions change.
1272       FallthroughLabel = OutContext.createTempSymbol();
1273       EmitToStreamer(
1274           *OutStreamer,
1275           MCInstBuilder(PPC::BCC)
1276               .addImm(PPC::InvertPredicate(
1277                   static_cast<PPC::Predicate>(MI->getOperand(1).getImm())))
1278               .addReg(MI->getOperand(2).getReg())
1279               .addExpr(MCSymbolRefExpr::create(FallthroughLabel, OutContext)));
1280       RetInst = MCInst();
1281       RetInst.setOpcode(PPC::BLR8);
1282     }
1283     // .p2align 3
1284     // .begin:
1285     //   b(lr)? # lis 0, FuncId[16..32]
1286     //   nop    # li  0, FuncId[0..15]
1287     //   std 0, -8(1)
1288     //   mflr 0
1289     //   bl __xray_FunctionExit
1290     //   mtlr 0
1291     //   b(lr)?
1292     //
1293     // Update compiler-rt/lib/xray/xray_powerpc64.cc accordingly when number
1294     // of instructions change.
1295     OutStreamer->emitCodeAlignment(8);
1296     MCSymbol *BeginOfSled = OutContext.createTempSymbol();
1297     OutStreamer->emitLabel(BeginOfSled);
1298     EmitToStreamer(*OutStreamer, RetInst);
1299     EmitToStreamer(*OutStreamer, MCInstBuilder(PPC::NOP));
1300     EmitToStreamer(
1301         *OutStreamer,
1302         MCInstBuilder(PPC::STD).addReg(PPC::X0).addImm(-8).addReg(PPC::X1));
1303     EmitToStreamer(*OutStreamer, MCInstBuilder(PPC::MFLR8).addReg(PPC::X0));
1304     EmitToStreamer(*OutStreamer,
1305                    MCInstBuilder(PPC::BL8_NOP)
1306                        .addExpr(MCSymbolRefExpr::create(
1307                            OutContext.getOrCreateSymbol("__xray_FunctionExit"),
1308                            OutContext)));
1309     EmitToStreamer(*OutStreamer, MCInstBuilder(PPC::MTLR8).addReg(PPC::X0));
1310     EmitToStreamer(*OutStreamer, RetInst);
1311     if (IsConditional)
1312       OutStreamer->emitLabel(FallthroughLabel);
1313     recordSled(BeginOfSled, *MI, SledKind::FUNCTION_EXIT, 2);
1314     break;
1315   }
1316   case TargetOpcode::PATCHABLE_FUNCTION_EXIT:
1317     llvm_unreachable("PATCHABLE_FUNCTION_EXIT should never be emitted");
1318   case TargetOpcode::PATCHABLE_TAIL_CALL:
1319     // TODO: Define a trampoline `__xray_FunctionTailExit` and differentiate a
1320     // normal function exit from a tail exit.
1321     llvm_unreachable("Tail call is handled in the normal case. See comments "
1322                      "around this assert.");
1323   }
1324 }
1325 
1326 void PPCLinuxAsmPrinter::emitStartOfAsmFile(Module &M) {
1327   if (static_cast<const PPCTargetMachine &>(TM).isELFv2ABI()) {
1328     PPCTargetStreamer *TS =
1329       static_cast<PPCTargetStreamer *>(OutStreamer->getTargetStreamer());
1330 
1331     if (TS)
1332       TS->emitAbiVersion(2);
1333   }
1334 
1335   if (static_cast<const PPCTargetMachine &>(TM).isPPC64() ||
1336       !isPositionIndependent())
1337     return AsmPrinter::emitStartOfAsmFile(M);
1338 
1339   if (M.getPICLevel() == PICLevel::SmallPIC)
1340     return AsmPrinter::emitStartOfAsmFile(M);
1341 
1342   OutStreamer->SwitchSection(OutContext.getELFSection(
1343       ".got2", ELF::SHT_PROGBITS, ELF::SHF_WRITE | ELF::SHF_ALLOC));
1344 
1345   MCSymbol *TOCSym = OutContext.getOrCreateSymbol(Twine(".LTOC"));
1346   MCSymbol *CurrentPos = OutContext.createTempSymbol();
1347 
1348   OutStreamer->emitLabel(CurrentPos);
1349 
1350   // The GOT pointer points to the middle of the GOT, in order to reference the
1351   // entire 64kB range.  0x8000 is the midpoint.
1352   const MCExpr *tocExpr =
1353     MCBinaryExpr::createAdd(MCSymbolRefExpr::create(CurrentPos, OutContext),
1354                             MCConstantExpr::create(0x8000, OutContext),
1355                             OutContext);
1356 
1357   OutStreamer->emitAssignment(TOCSym, tocExpr);
1358 
1359   OutStreamer->SwitchSection(getObjFileLowering().getTextSection());
1360 }
1361 
1362 void PPCLinuxAsmPrinter::emitFunctionEntryLabel() {
1363   // linux/ppc32 - Normal entry label.
1364   if (!Subtarget->isPPC64() &&
1365       (!isPositionIndependent() ||
1366        MF->getFunction().getParent()->getPICLevel() == PICLevel::SmallPIC))
1367     return AsmPrinter::emitFunctionEntryLabel();
1368 
1369   if (!Subtarget->isPPC64()) {
1370     const PPCFunctionInfo *PPCFI = MF->getInfo<PPCFunctionInfo>();
1371     if (PPCFI->usesPICBase() && !Subtarget->isSecurePlt()) {
1372       MCSymbol *RelocSymbol = PPCFI->getPICOffsetSymbol(*MF);
1373       MCSymbol *PICBase = MF->getPICBaseSymbol();
1374       OutStreamer->emitLabel(RelocSymbol);
1375 
1376       const MCExpr *OffsExpr =
1377         MCBinaryExpr::createSub(
1378           MCSymbolRefExpr::create(OutContext.getOrCreateSymbol(Twine(".LTOC")),
1379                                                                OutContext),
1380                                   MCSymbolRefExpr::create(PICBase, OutContext),
1381           OutContext);
1382       OutStreamer->emitValue(OffsExpr, 4);
1383       OutStreamer->emitLabel(CurrentFnSym);
1384       return;
1385     } else
1386       return AsmPrinter::emitFunctionEntryLabel();
1387   }
1388 
1389   // ELFv2 ABI - Normal entry label.
1390   if (Subtarget->isELFv2ABI()) {
1391     // In the Large code model, we allow arbitrary displacements between
1392     // the text section and its associated TOC section.  We place the
1393     // full 8-byte offset to the TOC in memory immediately preceding
1394     // the function global entry point.
1395     if (TM.getCodeModel() == CodeModel::Large
1396         && !MF->getRegInfo().use_empty(PPC::X2)) {
1397       const PPCFunctionInfo *PPCFI = MF->getInfo<PPCFunctionInfo>();
1398 
1399       MCSymbol *TOCSymbol = OutContext.getOrCreateSymbol(StringRef(".TOC."));
1400       MCSymbol *GlobalEPSymbol = PPCFI->getGlobalEPSymbol(*MF);
1401       const MCExpr *TOCDeltaExpr =
1402         MCBinaryExpr::createSub(MCSymbolRefExpr::create(TOCSymbol, OutContext),
1403                                 MCSymbolRefExpr::create(GlobalEPSymbol,
1404                                                         OutContext),
1405                                 OutContext);
1406 
1407       OutStreamer->emitLabel(PPCFI->getTOCOffsetSymbol(*MF));
1408       OutStreamer->emitValue(TOCDeltaExpr, 8);
1409     }
1410     return AsmPrinter::emitFunctionEntryLabel();
1411   }
1412 
1413   // Emit an official procedure descriptor.
1414   MCSectionSubPair Current = OutStreamer->getCurrentSection();
1415   MCSectionELF *Section = OutStreamer->getContext().getELFSection(
1416       ".opd", ELF::SHT_PROGBITS, ELF::SHF_WRITE | ELF::SHF_ALLOC);
1417   OutStreamer->SwitchSection(Section);
1418   OutStreamer->emitLabel(CurrentFnSym);
1419   OutStreamer->emitValueToAlignment(8);
1420   MCSymbol *Symbol1 = CurrentFnSymForSize;
1421   // Generates a R_PPC64_ADDR64 (from FK_DATA_8) relocation for the function
1422   // entry point.
1423   OutStreamer->emitValue(MCSymbolRefExpr::create(Symbol1, OutContext),
1424                          8 /*size*/);
1425   MCSymbol *Symbol2 = OutContext.getOrCreateSymbol(StringRef(".TOC."));
1426   // Generates a R_PPC64_TOC relocation for TOC base insertion.
1427   OutStreamer->emitValue(
1428     MCSymbolRefExpr::create(Symbol2, MCSymbolRefExpr::VK_PPC_TOCBASE, OutContext),
1429     8/*size*/);
1430   // Emit a null environment pointer.
1431   OutStreamer->emitIntValue(0, 8 /* size */);
1432   OutStreamer->SwitchSection(Current.first, Current.second);
1433 }
1434 
1435 void PPCLinuxAsmPrinter::emitEndOfAsmFile(Module &M) {
1436   const DataLayout &DL = getDataLayout();
1437 
1438   bool isPPC64 = DL.getPointerSizeInBits() == 64;
1439 
1440   PPCTargetStreamer *TS =
1441       static_cast<PPCTargetStreamer *>(OutStreamer->getTargetStreamer());
1442 
1443   if (!TOC.empty()) {
1444     const char *Name = isPPC64 ? ".toc" : ".got2";
1445     MCSectionELF *Section = OutContext.getELFSection(
1446         Name, ELF::SHT_PROGBITS, ELF::SHF_WRITE | ELF::SHF_ALLOC);
1447     OutStreamer->SwitchSection(Section);
1448     if (!isPPC64)
1449       OutStreamer->emitValueToAlignment(4);
1450 
1451     for (const auto &TOCMapPair : TOC) {
1452       const MCSymbol *const TOCEntryTarget = TOCMapPair.first;
1453       MCSymbol *const TOCEntryLabel = TOCMapPair.second;
1454 
1455       OutStreamer->emitLabel(TOCEntryLabel);
1456       if (isPPC64 && TS != nullptr)
1457         TS->emitTCEntry(*TOCEntryTarget);
1458       else
1459         OutStreamer->emitSymbolValue(TOCEntryTarget, 4);
1460     }
1461   }
1462 
1463   PPCAsmPrinter::emitEndOfAsmFile(M);
1464 }
1465 
1466 /// EmitFunctionBodyStart - Emit a global entry point prefix for ELFv2.
1467 void PPCLinuxAsmPrinter::emitFunctionBodyStart() {
1468   // In the ELFv2 ABI, in functions that use the TOC register, we need to
1469   // provide two entry points.  The ABI guarantees that when calling the
1470   // local entry point, r2 is set up by the caller to contain the TOC base
1471   // for this function, and when calling the global entry point, r12 is set
1472   // up by the caller to hold the address of the global entry point.  We
1473   // thus emit a prefix sequence along the following lines:
1474   //
1475   // func:
1476   // .Lfunc_gepNN:
1477   //         # global entry point
1478   //         addis r2,r12,(.TOC.-.Lfunc_gepNN)@ha
1479   //         addi  r2,r2,(.TOC.-.Lfunc_gepNN)@l
1480   // .Lfunc_lepNN:
1481   //         .localentry func, .Lfunc_lepNN-.Lfunc_gepNN
1482   //         # local entry point, followed by function body
1483   //
1484   // For the Large code model, we create
1485   //
1486   // .Lfunc_tocNN:
1487   //         .quad .TOC.-.Lfunc_gepNN      # done by EmitFunctionEntryLabel
1488   // func:
1489   // .Lfunc_gepNN:
1490   //         # global entry point
1491   //         ld    r2,.Lfunc_tocNN-.Lfunc_gepNN(r12)
1492   //         add   r2,r2,r12
1493   // .Lfunc_lepNN:
1494   //         .localentry func, .Lfunc_lepNN-.Lfunc_gepNN
1495   //         # local entry point, followed by function body
1496   //
1497   // This ensures we have r2 set up correctly while executing the function
1498   // body, no matter which entry point is called.
1499   const PPCFunctionInfo *PPCFI = MF->getInfo<PPCFunctionInfo>();
1500   const bool UsesX2OrR2 = !MF->getRegInfo().use_empty(PPC::X2) ||
1501                           !MF->getRegInfo().use_empty(PPC::R2);
1502   const bool PCrelGEPRequired = Subtarget->isUsingPCRelativeCalls() &&
1503                                 UsesX2OrR2 && PPCFI->usesTOCBasePtr();
1504   const bool NonPCrelGEPRequired = !Subtarget->isUsingPCRelativeCalls() &&
1505                                    Subtarget->isELFv2ABI() && UsesX2OrR2;
1506 
1507   // Only do all that if the function uses R2 as the TOC pointer
1508   // in the first place. We don't need the global entry point if the
1509   // function uses R2 as an allocatable register.
1510   if (NonPCrelGEPRequired || PCrelGEPRequired) {
1511     // Note: The logic here must be synchronized with the code in the
1512     // branch-selection pass which sets the offset of the first block in the
1513     // function. This matters because it affects the alignment.
1514     MCSymbol *GlobalEntryLabel = PPCFI->getGlobalEPSymbol(*MF);
1515     OutStreamer->emitLabel(GlobalEntryLabel);
1516     const MCSymbolRefExpr *GlobalEntryLabelExp =
1517       MCSymbolRefExpr::create(GlobalEntryLabel, OutContext);
1518 
1519     if (TM.getCodeModel() != CodeModel::Large) {
1520       MCSymbol *TOCSymbol = OutContext.getOrCreateSymbol(StringRef(".TOC."));
1521       const MCExpr *TOCDeltaExpr =
1522         MCBinaryExpr::createSub(MCSymbolRefExpr::create(TOCSymbol, OutContext),
1523                                 GlobalEntryLabelExp, OutContext);
1524 
1525       const MCExpr *TOCDeltaHi = PPCMCExpr::createHa(TOCDeltaExpr, OutContext);
1526       EmitToStreamer(*OutStreamer, MCInstBuilder(PPC::ADDIS)
1527                                    .addReg(PPC::X2)
1528                                    .addReg(PPC::X12)
1529                                    .addExpr(TOCDeltaHi));
1530 
1531       const MCExpr *TOCDeltaLo = PPCMCExpr::createLo(TOCDeltaExpr, OutContext);
1532       EmitToStreamer(*OutStreamer, MCInstBuilder(PPC::ADDI)
1533                                    .addReg(PPC::X2)
1534                                    .addReg(PPC::X2)
1535                                    .addExpr(TOCDeltaLo));
1536     } else {
1537       MCSymbol *TOCOffset = PPCFI->getTOCOffsetSymbol(*MF);
1538       const MCExpr *TOCOffsetDeltaExpr =
1539         MCBinaryExpr::createSub(MCSymbolRefExpr::create(TOCOffset, OutContext),
1540                                 GlobalEntryLabelExp, OutContext);
1541 
1542       EmitToStreamer(*OutStreamer, MCInstBuilder(PPC::LD)
1543                                    .addReg(PPC::X2)
1544                                    .addExpr(TOCOffsetDeltaExpr)
1545                                    .addReg(PPC::X12));
1546       EmitToStreamer(*OutStreamer, MCInstBuilder(PPC::ADD8)
1547                                    .addReg(PPC::X2)
1548                                    .addReg(PPC::X2)
1549                                    .addReg(PPC::X12));
1550     }
1551 
1552     MCSymbol *LocalEntryLabel = PPCFI->getLocalEPSymbol(*MF);
1553     OutStreamer->emitLabel(LocalEntryLabel);
1554     const MCSymbolRefExpr *LocalEntryLabelExp =
1555        MCSymbolRefExpr::create(LocalEntryLabel, OutContext);
1556     const MCExpr *LocalOffsetExp =
1557       MCBinaryExpr::createSub(LocalEntryLabelExp,
1558                               GlobalEntryLabelExp, OutContext);
1559 
1560     PPCTargetStreamer *TS =
1561       static_cast<PPCTargetStreamer *>(OutStreamer->getTargetStreamer());
1562 
1563     if (TS)
1564       TS->emitLocalEntry(cast<MCSymbolELF>(CurrentFnSym), LocalOffsetExp);
1565   } else if (Subtarget->isUsingPCRelativeCalls()) {
1566     // When generating the entry point for a function we have a few scenarios
1567     // based on whether or not that function uses R2 and whether or not that
1568     // function makes calls (or is a leaf function).
1569     // 1) A leaf function that does not use R2 (or treats it as callee-saved
1570     //    and preserves it). In this case st_other=0 and both
1571     //    the local and global entry points for the function are the same.
1572     //    No special entry point code is required.
1573     // 2) A function uses the TOC pointer R2. This function may or may not have
1574     //    calls. In this case st_other=[2,6] and the global and local entry
1575     //    points are different. Code to correctly setup the TOC pointer in R2
1576     //    is put between the global and local entry points. This case is
1577     //    covered by the if statatement above.
1578     // 3) A function does not use the TOC pointer R2 but does have calls.
1579     //    In this case st_other=1 since we do not know whether or not any
1580     //    of the callees clobber R2. This case is dealt with in this else if
1581     //    block. Tail calls are considered calls and the st_other should also
1582     //    be set to 1 in that case as well.
1583     // 4) The function does not use the TOC pointer but R2 is used inside
1584     //    the function. In this case st_other=1 once again.
1585     // 5) This function uses inline asm. We mark R2 as reserved if the function
1586     //    has inline asm as we have to assume that it may be used.
1587     if (MF->getFrameInfo().hasCalls() || MF->getFrameInfo().hasTailCall() ||
1588         MF->hasInlineAsm() || (!PPCFI->usesTOCBasePtr() && UsesX2OrR2)) {
1589       PPCTargetStreamer *TS =
1590           static_cast<PPCTargetStreamer *>(OutStreamer->getTargetStreamer());
1591       if (TS)
1592         TS->emitLocalEntry(cast<MCSymbolELF>(CurrentFnSym),
1593                            MCConstantExpr::create(1, OutContext));
1594     }
1595   }
1596 }
1597 
1598 /// EmitFunctionBodyEnd - Print the traceback table before the .size
1599 /// directive.
1600 ///
1601 void PPCLinuxAsmPrinter::emitFunctionBodyEnd() {
1602   // Only the 64-bit target requires a traceback table.  For now,
1603   // we only emit the word of zeroes that GDB requires to find
1604   // the end of the function, and zeroes for the eight-byte
1605   // mandatory fields.
1606   // FIXME: We should fill in the eight-byte mandatory fields as described in
1607   // the PPC64 ELF ABI (this is a low-priority item because GDB does not
1608   // currently make use of these fields).
1609   if (Subtarget->isPPC64()) {
1610     OutStreamer->emitIntValue(0, 4/*size*/);
1611     OutStreamer->emitIntValue(0, 8/*size*/);
1612   }
1613 }
1614 
1615 void PPCAIXAsmPrinter::emitLinkage(const GlobalValue *GV,
1616                                    MCSymbol *GVSym) const {
1617 
1618   assert(MAI->hasVisibilityOnlyWithLinkage() &&
1619          "AIX's linkage directives take a visibility setting.");
1620 
1621   MCSymbolAttr LinkageAttr = MCSA_Invalid;
1622   switch (GV->getLinkage()) {
1623   case GlobalValue::ExternalLinkage:
1624     LinkageAttr = GV->isDeclaration() ? MCSA_Extern : MCSA_Global;
1625     break;
1626   case GlobalValue::LinkOnceAnyLinkage:
1627   case GlobalValue::LinkOnceODRLinkage:
1628   case GlobalValue::WeakAnyLinkage:
1629   case GlobalValue::WeakODRLinkage:
1630   case GlobalValue::ExternalWeakLinkage:
1631     LinkageAttr = MCSA_Weak;
1632     break;
1633   case GlobalValue::AvailableExternallyLinkage:
1634     LinkageAttr = MCSA_Extern;
1635     break;
1636   case GlobalValue::PrivateLinkage:
1637     return;
1638   case GlobalValue::InternalLinkage:
1639     assert(GV->getVisibility() == GlobalValue::DefaultVisibility &&
1640            "InternalLinkage should not have other visibility setting.");
1641     LinkageAttr = MCSA_LGlobal;
1642     break;
1643   case GlobalValue::AppendingLinkage:
1644     llvm_unreachable("Should never emit this");
1645   case GlobalValue::CommonLinkage:
1646     llvm_unreachable("CommonLinkage of XCOFF should not come to this path");
1647   }
1648 
1649   assert(LinkageAttr != MCSA_Invalid && "LinkageAttr should not MCSA_Invalid.");
1650 
1651   MCSymbolAttr VisibilityAttr = MCSA_Invalid;
1652   switch (GV->getVisibility()) {
1653 
1654   // TODO: "exported" and "internal" Visibility needs to go here.
1655   case GlobalValue::DefaultVisibility:
1656     break;
1657   case GlobalValue::HiddenVisibility:
1658     VisibilityAttr = MAI->getHiddenVisibilityAttr();
1659     break;
1660   case GlobalValue::ProtectedVisibility:
1661     VisibilityAttr = MAI->getProtectedVisibilityAttr();
1662     break;
1663   }
1664 
1665   OutStreamer->emitXCOFFSymbolLinkageWithVisibility(GVSym, LinkageAttr,
1666                                                     VisibilityAttr);
1667 }
1668 
1669 void PPCAIXAsmPrinter::SetupMachineFunction(MachineFunction &MF) {
1670   // Setup CurrentFnDescSym and its containing csect.
1671   MCSectionXCOFF *FnDescSec =
1672       cast<MCSectionXCOFF>(getObjFileLowering().getSectionForFunctionDescriptor(
1673           &MF.getFunction(), TM));
1674   FnDescSec->setAlignment(Align(Subtarget->isPPC64() ? 8 : 4));
1675 
1676   CurrentFnDescSym = FnDescSec->getQualNameSymbol();
1677 
1678   return AsmPrinter::SetupMachineFunction(MF);
1679 }
1680 
1681 void PPCAIXAsmPrinter::ValidateGV(const GlobalVariable *GV) {
1682   // Early error checking limiting what is supported.
1683   if (GV->isThreadLocal())
1684     report_fatal_error("Thread local not yet supported on AIX.");
1685 
1686   if (GV->hasSection())
1687     report_fatal_error("Custom section for Data not yet supported.");
1688 
1689   if (GV->hasComdat())
1690     report_fatal_error("COMDAT not yet supported by AIX.");
1691 }
1692 
1693 static bool isSpecialLLVMGlobalArrayToSkip(const GlobalVariable *GV) {
1694   return GV->hasAppendingLinkage() &&
1695          StringSwitch<bool>(GV->getName())
1696              // TODO: Linker could still eliminate the GV if we just skip
1697              // handling llvm.used array. Skipping them for now until we or the
1698              // AIX OS team come up with a good solution.
1699              .Case("llvm.used", true)
1700              // It's correct to just skip llvm.compiler.used array here.
1701              .Case("llvm.compiler.used", true)
1702              .Default(false);
1703 }
1704 
1705 static bool isSpecialLLVMGlobalArrayForStaticInit(const GlobalVariable *GV) {
1706   return StringSwitch<bool>(GV->getName())
1707       .Cases("llvm.global_ctors", "llvm.global_dtors", true)
1708       .Default(false);
1709 }
1710 
1711 void PPCAIXAsmPrinter::emitGlobalVariable(const GlobalVariable *GV) {
1712   // Special LLVM global arrays have been handled at the initialization.
1713   if (isSpecialLLVMGlobalArrayToSkip(GV) || isSpecialLLVMGlobalArrayForStaticInit(GV))
1714     return;
1715 
1716   assert(!GV->getName().startswith("llvm.") &&
1717          "Unhandled intrinsic global variable.");
1718   ValidateGV(GV);
1719 
1720   MCSymbolXCOFF *GVSym = cast<MCSymbolXCOFF>(getSymbol(GV));
1721 
1722   if (GV->isDeclarationForLinker()) {
1723     emitLinkage(GV, GVSym);
1724     return;
1725   }
1726 
1727   SectionKind GVKind = getObjFileLowering().getKindForGlobal(GV, TM);
1728   if (!GVKind.isGlobalWriteableData() && !GVKind.isReadOnly())
1729     report_fatal_error("Encountered a global variable kind that is "
1730                        "not supported yet.");
1731 
1732   MCSectionXCOFF *Csect = cast<MCSectionXCOFF>(
1733       getObjFileLowering().SectionForGlobal(GV, GVKind, TM));
1734 
1735   // Switch to the containing csect.
1736   OutStreamer->SwitchSection(Csect);
1737 
1738   const DataLayout &DL = GV->getParent()->getDataLayout();
1739 
1740   // Handle common symbols.
1741   if (GVKind.isCommon() || GVKind.isBSSLocal()) {
1742     Align Alignment = GV->getAlign().getValueOr(DL.getPreferredAlign(GV));
1743     uint64_t Size = DL.getTypeAllocSize(GV->getType()->getElementType());
1744     GVSym->setStorageClass(
1745         TargetLoweringObjectFileXCOFF::getStorageClassForGlobal(GV));
1746 
1747     if (GVKind.isBSSLocal())
1748       OutStreamer->emitXCOFFLocalCommonSymbol(
1749           OutContext.getOrCreateSymbol(GVSym->getSymbolTableName()), Size,
1750           GVSym, Alignment.value());
1751     else
1752       OutStreamer->emitCommonSymbol(GVSym, Size, Alignment.value());
1753     return;
1754   }
1755 
1756   MCSymbol *EmittedInitSym = GVSym;
1757   emitLinkage(GV, EmittedInitSym);
1758   emitAlignment(getGVAlignment(GV, DL), GV);
1759   OutStreamer->emitLabel(EmittedInitSym);
1760   // Emit aliasing label for global variable.
1761   llvm::for_each(GOAliasMap[GV], [this](const GlobalAlias *Alias) {
1762     OutStreamer->emitLabel(getSymbol(Alias));
1763   });
1764   emitGlobalConstant(GV->getParent()->getDataLayout(), GV->getInitializer());
1765 }
1766 
1767 void PPCAIXAsmPrinter::emitFunctionDescriptor() {
1768   const DataLayout &DL = getDataLayout();
1769   const unsigned PointerSize = DL.getPointerSizeInBits() == 64 ? 8 : 4;
1770 
1771   MCSectionSubPair Current = OutStreamer->getCurrentSection();
1772   // Emit function descriptor.
1773   OutStreamer->SwitchSection(
1774       cast<MCSymbolXCOFF>(CurrentFnDescSym)->getRepresentedCsect());
1775 
1776   // Emit aliasing label for function descriptor csect.
1777   llvm::for_each(GOAliasMap[&MF->getFunction()],
1778                  [this](const GlobalAlias *Alias) {
1779                    OutStreamer->emitLabel(getSymbol(Alias));
1780                  });
1781 
1782   // Emit function entry point address.
1783   OutStreamer->emitValue(MCSymbolRefExpr::create(CurrentFnSym, OutContext),
1784                          PointerSize);
1785   // Emit TOC base address.
1786   const MCSymbol *TOCBaseSym =
1787       cast<MCSectionXCOFF>(getObjFileLowering().getTOCBaseSection())
1788           ->getQualNameSymbol();
1789   OutStreamer->emitValue(MCSymbolRefExpr::create(TOCBaseSym, OutContext),
1790                          PointerSize);
1791   // Emit a null environment pointer.
1792   OutStreamer->emitIntValue(0, PointerSize);
1793 
1794   OutStreamer->SwitchSection(Current.first, Current.second);
1795 }
1796 
1797 void PPCAIXAsmPrinter::emitFunctionEntryLabel() {
1798   // It's not necessary to emit the label when we have individual
1799   // function in its own csect.
1800   if (!TM.getFunctionSections())
1801     PPCAsmPrinter::emitFunctionEntryLabel();
1802 
1803   // Emit aliasing label for function entry point label.
1804   llvm::for_each(
1805       GOAliasMap[&MF->getFunction()], [this](const GlobalAlias *Alias) {
1806         OutStreamer->emitLabel(
1807             getObjFileLowering().getFunctionEntryPointSymbol(Alias, TM));
1808       });
1809 }
1810 
1811 void PPCAIXAsmPrinter::emitEndOfAsmFile(Module &M) {
1812   // If there are no functions in this module, we will never need to reference
1813   // the TOC base.
1814   if (M.empty())
1815     return;
1816 
1817   // Switch to section to emit TOC base.
1818   OutStreamer->SwitchSection(getObjFileLowering().getTOCBaseSection());
1819 
1820   PPCTargetStreamer *TS =
1821       static_cast<PPCTargetStreamer *>(OutStreamer->getTargetStreamer());
1822 
1823   const unsigned EntryByteSize = Subtarget->isPPC64() ? 8 : 4;
1824   const unsigned TOCEntriesByteSize = TOC.size() * EntryByteSize;
1825   // TODO: If TOC entries' size is larger than 32768, then we run out of
1826   // positive displacement to reach the TOC entry. We need to decide how to
1827   // handle entries' size larger than that later.
1828   if (TOCEntriesByteSize > 32767) {
1829     report_fatal_error("Handling of TOC entry displacement larger than 32767 "
1830                        "is not yet implemented.");
1831   }
1832 
1833   for (auto &I : TOC) {
1834     // Setup the csect for the current TC entry.
1835     MCSectionXCOFF *TCEntry = cast<MCSectionXCOFF>(
1836         getObjFileLowering().getSectionForTOCEntry(I.first, TM));
1837     OutStreamer->SwitchSection(TCEntry);
1838 
1839     OutStreamer->emitLabel(I.second);
1840     if (TS != nullptr)
1841       TS->emitTCEntry(*I.first);
1842   }
1843 }
1844 
1845 bool PPCAIXAsmPrinter::doInitialization(Module &M) {
1846   const bool Result = PPCAsmPrinter::doInitialization(M);
1847 
1848   auto setCsectAlignment = [this](const GlobalObject *GO) {
1849     // Declarations have 0 alignment which is set by default.
1850     if (GO->isDeclarationForLinker())
1851       return;
1852 
1853     SectionKind GOKind = getObjFileLowering().getKindForGlobal(GO, TM);
1854     MCSectionXCOFF *Csect = cast<MCSectionXCOFF>(
1855         getObjFileLowering().SectionForGlobal(GO, GOKind, TM));
1856 
1857     Align GOAlign = getGVAlignment(GO, GO->getParent()->getDataLayout());
1858     if (GOAlign > Csect->getAlignment())
1859       Csect->setAlignment(GOAlign);
1860   };
1861 
1862   // We need to know, up front, the alignment of csects for the assembly path,
1863   // because once a .csect directive gets emitted, we could not change the
1864   // alignment value on it.
1865   for (const auto &G : M.globals()) {
1866     if (isSpecialLLVMGlobalArrayToSkip(&G))
1867       continue;
1868 
1869     if (isSpecialLLVMGlobalArrayForStaticInit(&G)) {
1870       // Generate a format indicator and a unique module id to be a part of
1871       // the sinit and sterm function names.
1872       if (FormatIndicatorAndUniqueModId.empty()) {
1873         std::string UniqueModuleId = getUniqueModuleId(&M);
1874         if (UniqueModuleId.compare("") != 0)
1875           // TODO: Use source file full path to generate the unique module id
1876           // and add a format indicator as a part of function name in case we
1877           // will support more than one format.
1878           FormatIndicatorAndUniqueModId = "clang_" + UniqueModuleId.substr(1);
1879         else
1880           // Use the Pid and current time as the unique module id when we cannot
1881           // generate one based on a module's strong external symbols.
1882           // FIXME: Adjust the comment accordingly after we use source file full
1883           // path instead.
1884           FormatIndicatorAndUniqueModId =
1885               "clangPidTime_" + llvm::itostr(sys::Process::getProcessId()) +
1886               "_" + llvm::itostr(time(nullptr));
1887       }
1888 
1889       emitSpecialLLVMGlobal(&G);
1890       continue;
1891     }
1892 
1893     setCsectAlignment(&G);
1894   }
1895 
1896   for (const auto &F : M)
1897     setCsectAlignment(&F);
1898 
1899   // Construct an aliasing list for each GlobalObject.
1900   for (const auto &Alias : M.aliases()) {
1901     const GlobalObject *Base = Alias.getBaseObject();
1902     if (!Base)
1903       report_fatal_error(
1904           "alias without a base object is not yet supported on AIX");
1905     GOAliasMap[Base].push_back(&Alias);
1906   }
1907 
1908   return Result;
1909 }
1910 
1911 void PPCAIXAsmPrinter::emitInstruction(const MachineInstr *MI) {
1912   switch (MI->getOpcode()) {
1913   default:
1914     break;
1915   case PPC::BL8:
1916   case PPC::BL:
1917   case PPC::BL8_NOP:
1918   case PPC::BL_NOP: {
1919     const MachineOperand &MO = MI->getOperand(0);
1920     if (MO.isSymbol()) {
1921       MCSymbolXCOFF *S =
1922           cast<MCSymbolXCOFF>(OutContext.getOrCreateSymbol(MO.getSymbolName()));
1923       ExtSymSDNodeSymbols.insert(S);
1924     }
1925   } break;
1926   case PPC::BL_TLS:
1927   case PPC::BL8_TLS:
1928   case PPC::BL8_TLS_:
1929   case PPC::BL8_NOP_TLS:
1930     report_fatal_error("TLS call not yet implemented");
1931   case PPC::TAILB:
1932   case PPC::TAILB8:
1933   case PPC::TAILBA:
1934   case PPC::TAILBA8:
1935   case PPC::TAILBCTR:
1936   case PPC::TAILBCTR8:
1937     if (MI->getOperand(0).isSymbol())
1938       report_fatal_error("Tail call for extern symbol not yet supported.");
1939     break;
1940   }
1941   return PPCAsmPrinter::emitInstruction(MI);
1942 }
1943 
1944 bool PPCAIXAsmPrinter::doFinalization(Module &M) {
1945   for (MCSymbol *Sym : ExtSymSDNodeSymbols)
1946     OutStreamer->emitSymbolAttribute(Sym, MCSA_Extern);
1947   return PPCAsmPrinter::doFinalization(M);
1948 }
1949 
1950 void PPCAIXAsmPrinter::emitXXStructorList(const DataLayout &DL,
1951                                           const Constant *List, bool IsCtor) {
1952   SmallVector<Structor, 8> Structors;
1953   preprocessXXStructorList(DL, List, Structors);
1954   if (Structors.empty())
1955     return;
1956 
1957   unsigned Index = 0;
1958   for (Structor &S : Structors) {
1959     if (S.Priority != 65535)
1960       report_fatal_error(
1961           "prioritized sinit and sterm functions are not yet supported on AIX");
1962 
1963     llvm::GlobalAlias::create(
1964         GlobalValue::ExternalLinkage,
1965         (IsCtor ? llvm::Twine("__sinit") : llvm::Twine("__sterm")) +
1966             llvm::Twine("80000000_", FormatIndicatorAndUniqueModId) +
1967             llvm::Twine("_", llvm::utostr(Index++)),
1968         cast<Function>(S.Func));
1969   }
1970 }
1971 
1972 /// createPPCAsmPrinterPass - Returns a pass that prints the PPC assembly code
1973 /// for a MachineFunction to the given output stream, in a format that the
1974 /// Darwin assembler can deal with.
1975 ///
1976 static AsmPrinter *
1977 createPPCAsmPrinterPass(TargetMachine &tm,
1978                         std::unique_ptr<MCStreamer> &&Streamer) {
1979   if (tm.getTargetTriple().isOSAIX())
1980     return new PPCAIXAsmPrinter(tm, std::move(Streamer));
1981 
1982   return new PPCLinuxAsmPrinter(tm, std::move(Streamer));
1983 }
1984 
1985 // Force static initialization.
1986 extern "C" LLVM_EXTERNAL_VISIBILITY void LLVMInitializePowerPCAsmPrinter() {
1987   TargetRegistry::RegisterAsmPrinter(getThePPC32Target(),
1988                                      createPPCAsmPrinterPass);
1989   TargetRegistry::RegisterAsmPrinter(getThePPC64Target(),
1990                                      createPPCAsmPrinterPass);
1991   TargetRegistry::RegisterAsmPrinter(getThePPC64LETarget(),
1992                                      createPPCAsmPrinterPass);
1993 }
1994