1 //===-- AsmPrinter.cpp - Common AsmPrinter code ---------------------------===//
2 //
3 //                     The LLVM Compiler Infrastructure
4 //
5 // This file is distributed under the University of Illinois Open Source
6 // License. See LICENSE.TXT for details.
7 //
8 //===----------------------------------------------------------------------===//
9 //
10 // This file implements the AsmPrinter class.
11 //
12 //===----------------------------------------------------------------------===//
13 
14 #include "llvm/CodeGen/AsmPrinter.h"
15 #include "llvm/Assembly/Writer.h"
16 #include "llvm/DerivedTypes.h"
17 #include "llvm/Constants.h"
18 #include "llvm/Module.h"
19 #include "llvm/CodeGen/GCMetadataPrinter.h"
20 #include "llvm/CodeGen/MachineConstantPool.h"
21 #include "llvm/CodeGen/MachineJumpTableInfo.h"
22 #include "llvm/CodeGen/MachineModuleInfo.h"
23 #include "llvm/CodeGen/DwarfWriter.h"
24 #include "llvm/Analysis/DebugInfo.h"
25 #include "llvm/Support/CommandLine.h"
26 #include "llvm/Support/Mangler.h"
27 #include "llvm/Support/raw_ostream.h"
28 #include "llvm/Target/TargetAsmInfo.h"
29 #include "llvm/Target/TargetData.h"
30 #include "llvm/Target/TargetLowering.h"
31 #include "llvm/Target/TargetOptions.h"
32 #include "llvm/Target/TargetRegisterInfo.h"
33 #include "llvm/ADT/SmallPtrSet.h"
34 #include "llvm/ADT/SmallString.h"
35 #include "llvm/ADT/StringExtras.h"
36 #include <cerrno>
37 using namespace llvm;
38 
39 static cl::opt<cl::boolOrDefault>
40 AsmVerbose("asm-verbose", cl::desc("Add comments to directives."),
41            cl::init(cl::BOU_UNSET));
42 
43 char AsmPrinter::ID = 0;
44 AsmPrinter::AsmPrinter(raw_ostream &o, TargetMachine &tm,
45                        const TargetAsmInfo *T, bool VDef)
46   : MachineFunctionPass(&ID), FunctionNumber(0), O(o),
47     TM(tm), TAI(T), TRI(tm.getRegisterInfo()),
48     IsInTextSection(false), LastMI(0), LastFn(0), Counter(~0U),
49     PrevDLT(0, ~0U, ~0U) {
50   DW = 0; MMI = 0;
51   switch (AsmVerbose) {
52   case cl::BOU_UNSET: VerboseAsm = VDef;  break;
53   case cl::BOU_TRUE:  VerboseAsm = true;  break;
54   case cl::BOU_FALSE: VerboseAsm = false; break;
55   }
56 }
57 
58 AsmPrinter::~AsmPrinter() {
59   for (gcp_iterator I = GCMetadataPrinters.begin(),
60                     E = GCMetadataPrinters.end(); I != E; ++I)
61     delete I->second;
62 }
63 
64 /// SwitchToTextSection - Switch to the specified text section of the executable
65 /// if we are not already in it!
66 ///
67 void AsmPrinter::SwitchToTextSection(const char *NewSection,
68                                      const GlobalValue *GV) {
69   std::string NS;
70   if (GV && GV->hasSection())
71     NS = TAI->getSwitchToSectionDirective() + GV->getSection();
72   else
73     NS = NewSection;
74 
75   // If we're already in this section, we're done.
76   if (CurrentSection == NS) return;
77 
78   // Close the current section, if applicable.
79   if (TAI->getSectionEndDirectiveSuffix() && !CurrentSection.empty())
80     O << CurrentSection << TAI->getSectionEndDirectiveSuffix() << '\n';
81 
82   CurrentSection = NS;
83 
84   if (!CurrentSection.empty())
85     O << CurrentSection << TAI->getTextSectionStartSuffix() << '\n';
86 
87   IsInTextSection = true;
88 }
89 
90 /// SwitchToDataSection - Switch to the specified data section of the executable
91 /// if we are not already in it!
92 ///
93 void AsmPrinter::SwitchToDataSection(const char *NewSection,
94                                      const GlobalValue *GV) {
95   std::string NS;
96   if (GV && GV->hasSection())
97     NS = TAI->getSwitchToSectionDirective() + GV->getSection();
98   else
99     NS = NewSection;
100 
101   // If we're already in this section, we're done.
102   if (CurrentSection == NS) return;
103 
104   // Close the current section, if applicable.
105   if (TAI->getSectionEndDirectiveSuffix() && !CurrentSection.empty())
106     O << CurrentSection << TAI->getSectionEndDirectiveSuffix() << '\n';
107 
108   CurrentSection = NS;
109 
110   if (!CurrentSection.empty())
111     O << CurrentSection << TAI->getDataSectionStartSuffix() << '\n';
112 
113   IsInTextSection = false;
114 }
115 
116 /// SwitchToSection - Switch to the specified section of the executable if we
117 /// are not already in it!
118 void AsmPrinter::SwitchToSection(const Section* NS) {
119   const std::string& NewSection = NS->getName();
120 
121   // If we're already in this section, we're done.
122   if (CurrentSection == NewSection) return;
123 
124   // Close the current section, if applicable.
125   if (TAI->getSectionEndDirectiveSuffix() && !CurrentSection.empty())
126     O << CurrentSection << TAI->getSectionEndDirectiveSuffix() << '\n';
127 
128   // FIXME: Make CurrentSection a Section* in the future
129   CurrentSection = NewSection;
130   CurrentSection_ = NS;
131 
132   if (!CurrentSection.empty()) {
133     // If section is named we need to switch into it via special '.section'
134     // directive and also append funky flags. Otherwise - section name is just
135     // some magic assembler directive.
136     if (NS->isNamed())
137       O << TAI->getSwitchToSectionDirective()
138         << CurrentSection
139         << TAI->getSectionFlags(NS->getFlags());
140     else
141       O << CurrentSection;
142     O << TAI->getDataSectionStartSuffix() << '\n';
143   }
144 
145   IsInTextSection = (NS->getFlags() & SectionFlags::Code);
146 }
147 
148 void AsmPrinter::getAnalysisUsage(AnalysisUsage &AU) const {
149   MachineFunctionPass::getAnalysisUsage(AU);
150   AU.addRequired<GCModuleInfo>();
151 }
152 
153 bool AsmPrinter::doInitialization(Module &M) {
154   Mang = new Mangler(M, TAI->getGlobalPrefix(), TAI->getPrivateGlobalPrefix());
155 
156   if (TAI->doesAllowQuotesInName())
157     Mang->setUseQuotes(true);
158 
159   GCModuleInfo *MI = getAnalysisIfAvailable<GCModuleInfo>();
160   assert(MI && "AsmPrinter didn't require GCModuleInfo?");
161 
162   if (TAI->hasSingleParameterDotFile()) {
163     /* Very minimal debug info. It is ignored if we emit actual
164        debug info. If we don't, this at helps the user find where
165        a function came from. */
166     O << "\t.file\t\"" << M.getModuleIdentifier() << "\"\n";
167   }
168 
169   for (GCModuleInfo::iterator I = MI->begin(), E = MI->end(); I != E; ++I)
170     if (GCMetadataPrinter *MP = GetOrCreateGCPrinter(*I))
171       MP->beginAssembly(O, *this, *TAI);
172 
173   if (!M.getModuleInlineAsm().empty())
174     O << TAI->getCommentString() << " Start of file scope inline assembly\n"
175       << M.getModuleInlineAsm()
176       << '\n' << TAI->getCommentString()
177       << " End of file scope inline assembly\n";
178 
179   SwitchToDataSection("");   // Reset back to no section.
180 
181   if (TAI->doesSupportDebugInformation() ||
182       TAI->doesSupportExceptionHandling()) {
183     MMI = getAnalysisIfAvailable<MachineModuleInfo>();
184     if (MMI)
185       MMI->AnalyzeModule(M);
186     DW = getAnalysisIfAvailable<DwarfWriter>();
187     if (DW)
188       DW->BeginModule(&M, MMI, O, this, TAI);
189   }
190 
191   return false;
192 }
193 
194 bool AsmPrinter::doFinalization(Module &M) {
195   // Emit final debug information.
196   if (TAI->doesSupportDebugInformation() || TAI->doesSupportExceptionHandling())
197     DW->EndModule();
198 
199   // If the target wants to know about weak references, print them all.
200   if (TAI->getWeakRefDirective()) {
201     // FIXME: This is not lazy, it would be nice to only print weak references
202     // to stuff that is actually used.  Note that doing so would require targets
203     // to notice uses in operands (due to constant exprs etc).  This should
204     // happen with the MC stuff eventually.
205     SwitchToDataSection("");
206 
207     // Print out module-level global variables here.
208     for (Module::const_global_iterator I = M.global_begin(), E = M.global_end();
209          I != E; ++I) {
210       if (I->hasExternalWeakLinkage())
211         O << TAI->getWeakRefDirective() << Mang->getValueName(I) << '\n';
212     }
213 
214     for (Module::const_iterator I = M.begin(), E = M.end();
215          I != E; ++I) {
216       if (I->hasExternalWeakLinkage())
217         O << TAI->getWeakRefDirective() << Mang->getValueName(I) << '\n';
218     }
219   }
220 
221   if (TAI->getSetDirective()) {
222     if (!M.alias_empty())
223       SwitchToSection(TAI->getTextSection());
224 
225     O << '\n';
226     for (Module::const_alias_iterator I = M.alias_begin(), E = M.alias_end();
227          I != E; ++I) {
228       std::string Name = Mang->getValueName(I);
229       std::string Target;
230 
231       const GlobalValue *GV = cast<GlobalValue>(I->getAliasedGlobal());
232       Target = Mang->getValueName(GV);
233 
234       if (I->hasExternalLinkage() || !TAI->getWeakRefDirective())
235         O << "\t.globl\t" << Name << '\n';
236       else if (I->hasWeakLinkage())
237         O << TAI->getWeakRefDirective() << Name << '\n';
238       else if (!I->hasLocalLinkage())
239         assert(0 && "Invalid alias linkage");
240 
241       printVisibility(Name, I->getVisibility());
242 
243       O << TAI->getSetDirective() << ' ' << Name << ", " << Target << '\n';
244     }
245   }
246 
247   GCModuleInfo *MI = getAnalysisIfAvailable<GCModuleInfo>();
248   assert(MI && "AsmPrinter didn't require GCModuleInfo?");
249   for (GCModuleInfo::iterator I = MI->end(), E = MI->begin(); I != E; )
250     if (GCMetadataPrinter *MP = GetOrCreateGCPrinter(*--I))
251       MP->finishAssembly(O, *this, *TAI);
252 
253   // If we don't have any trampolines, then we don't require stack memory
254   // to be executable. Some targets have a directive to declare this.
255   Function *InitTrampolineIntrinsic = M.getFunction("llvm.init.trampoline");
256   if (!InitTrampolineIntrinsic || InitTrampolineIntrinsic->use_empty())
257     if (TAI->getNonexecutableStackDirective())
258       O << TAI->getNonexecutableStackDirective() << '\n';
259 
260   delete Mang; Mang = 0;
261   DW = 0; MMI = 0;
262   return false;
263 }
264 
265 const std::string &
266 AsmPrinter::getCurrentFunctionEHName(const MachineFunction *MF,
267                                      std::string &Name) const {
268   assert(MF && "No machine function?");
269   Name = MF->getFunction()->getName();
270   if (Name.empty())
271     Name = Mang->getValueName(MF->getFunction());
272   Name = Mang->makeNameProper(TAI->getEHGlobalPrefix() +
273                               Name + ".eh", TAI->getGlobalPrefix());
274   return Name;
275 }
276 
277 void AsmPrinter::SetupMachineFunction(MachineFunction &MF) {
278   // What's my mangled name?
279   CurrentFnName = Mang->getValueName(MF.getFunction());
280   IncrementFunctionNumber();
281 }
282 
283 namespace {
284   // SectionCPs - Keep track the alignment, constpool entries per Section.
285   struct SectionCPs {
286     const Section *S;
287     unsigned Alignment;
288     SmallVector<unsigned, 4> CPEs;
289     SectionCPs(const Section *s, unsigned a) : S(s), Alignment(a) {};
290   };
291 }
292 
293 /// EmitConstantPool - Print to the current output stream assembly
294 /// representations of the constants in the constant pool MCP. This is
295 /// used to print out constants which have been "spilled to memory" by
296 /// the code generator.
297 ///
298 void AsmPrinter::EmitConstantPool(MachineConstantPool *MCP) {
299   const std::vector<MachineConstantPoolEntry> &CP = MCP->getConstants();
300   if (CP.empty()) return;
301 
302   // Calculate sections for constant pool entries. We collect entries to go into
303   // the same section together to reduce amount of section switch statements.
304   SmallVector<SectionCPs, 4> CPSections;
305   for (unsigned i = 0, e = CP.size(); i != e; ++i) {
306     MachineConstantPoolEntry CPE = CP[i];
307     unsigned Align = CPE.getAlignment();
308     const Section* S = TAI->SelectSectionForMachineConst(CPE.getType());
309     // The number of sections are small, just do a linear search from the
310     // last section to the first.
311     bool Found = false;
312     unsigned SecIdx = CPSections.size();
313     while (SecIdx != 0) {
314       if (CPSections[--SecIdx].S == S) {
315         Found = true;
316         break;
317       }
318     }
319     if (!Found) {
320       SecIdx = CPSections.size();
321       CPSections.push_back(SectionCPs(S, Align));
322     }
323 
324     if (Align > CPSections[SecIdx].Alignment)
325       CPSections[SecIdx].Alignment = Align;
326     CPSections[SecIdx].CPEs.push_back(i);
327   }
328 
329   // Now print stuff into the calculated sections.
330   for (unsigned i = 0, e = CPSections.size(); i != e; ++i) {
331     SwitchToSection(CPSections[i].S);
332     EmitAlignment(Log2_32(CPSections[i].Alignment));
333 
334     unsigned Offset = 0;
335     for (unsigned j = 0, ee = CPSections[i].CPEs.size(); j != ee; ++j) {
336       unsigned CPI = CPSections[i].CPEs[j];
337       MachineConstantPoolEntry CPE = CP[CPI];
338 
339       // Emit inter-object padding for alignment.
340       unsigned AlignMask = CPE.getAlignment() - 1;
341       unsigned NewOffset = (Offset + AlignMask) & ~AlignMask;
342       EmitZeros(NewOffset - Offset);
343 
344       const Type *Ty = CPE.getType();
345       Offset = NewOffset + TM.getTargetData()->getTypeAllocSize(Ty);
346 
347       O << TAI->getPrivateGlobalPrefix() << "CPI" << getFunctionNumber() << '_'
348         << CPI << ":\t\t\t\t\t";
349       if (VerboseAsm) {
350         O << TAI->getCommentString() << ' ';
351         WriteTypeSymbolic(O, CPE.getType(), 0);
352       }
353       O << '\n';
354       if (CPE.isMachineConstantPoolEntry())
355         EmitMachineConstantPoolValue(CPE.Val.MachineCPVal);
356       else
357         EmitGlobalConstant(CPE.Val.ConstVal);
358     }
359   }
360 }
361 
362 /// EmitJumpTableInfo - Print assembly representations of the jump tables used
363 /// by the current function to the current output stream.
364 ///
365 void AsmPrinter::EmitJumpTableInfo(MachineJumpTableInfo *MJTI,
366                                    MachineFunction &MF) {
367   const std::vector<MachineJumpTableEntry> &JT = MJTI->getJumpTables();
368   if (JT.empty()) return;
369 
370   bool IsPic = TM.getRelocationModel() == Reloc::PIC_;
371 
372   // Pick the directive to use to print the jump table entries, and switch to
373   // the appropriate section.
374   TargetLowering *LoweringInfo = TM.getTargetLowering();
375 
376   const char* JumpTableDataSection = TAI->getJumpTableDataSection();
377   const Function *F = MF.getFunction();
378   unsigned SectionFlags = TAI->SectionFlagsForGlobal(F);
379   bool JTInDiffSection = false;
380   if ((IsPic && !(LoweringInfo && LoweringInfo->usesGlobalOffsetTable())) ||
381       !JumpTableDataSection ||
382       SectionFlags & SectionFlags::Linkonce) {
383     // In PIC mode, we need to emit the jump table to the same section as the
384     // function body itself, otherwise the label differences won't make sense.
385     // We should also do if the section name is NULL or function is declared in
386     // discardable section.
387     SwitchToSection(TAI->SectionForGlobal(F));
388   } else {
389     SwitchToDataSection(JumpTableDataSection);
390     JTInDiffSection = true;
391   }
392 
393   EmitAlignment(Log2_32(MJTI->getAlignment()));
394 
395   for (unsigned i = 0, e = JT.size(); i != e; ++i) {
396     const std::vector<MachineBasicBlock*> &JTBBs = JT[i].MBBs;
397 
398     // If this jump table was deleted, ignore it.
399     if (JTBBs.empty()) continue;
400 
401     // For PIC codegen, if possible we want to use the SetDirective to reduce
402     // the number of relocations the assembler will generate for the jump table.
403     // Set directives are all printed before the jump table itself.
404     SmallPtrSet<MachineBasicBlock*, 16> EmittedSets;
405     if (TAI->getSetDirective() && IsPic)
406       for (unsigned ii = 0, ee = JTBBs.size(); ii != ee; ++ii)
407         if (EmittedSets.insert(JTBBs[ii]))
408           printPICJumpTableSetLabel(i, JTBBs[ii]);
409 
410     // On some targets (e.g. darwin) we want to emit two consequtive labels
411     // before each jump table.  The first label is never referenced, but tells
412     // the assembler and linker the extents of the jump table object.  The
413     // second label is actually referenced by the code.
414     if (JTInDiffSection) {
415       if (const char *JTLabelPrefix = TAI->getJumpTableSpecialLabelPrefix())
416         O << JTLabelPrefix << "JTI" << getFunctionNumber() << '_' << i << ":\n";
417     }
418 
419     O << TAI->getPrivateGlobalPrefix() << "JTI" << getFunctionNumber()
420       << '_' << i << ":\n";
421 
422     for (unsigned ii = 0, ee = JTBBs.size(); ii != ee; ++ii) {
423       printPICJumpTableEntry(MJTI, JTBBs[ii], i);
424       O << '\n';
425     }
426   }
427 }
428 
429 void AsmPrinter::printPICJumpTableEntry(const MachineJumpTableInfo *MJTI,
430                                         const MachineBasicBlock *MBB,
431                                         unsigned uid)  const {
432   bool IsPic = TM.getRelocationModel() == Reloc::PIC_;
433 
434   // Use JumpTableDirective otherwise honor the entry size from the jump table
435   // info.
436   const char *JTEntryDirective = TAI->getJumpTableDirective();
437   bool HadJTEntryDirective = JTEntryDirective != NULL;
438   if (!HadJTEntryDirective) {
439     JTEntryDirective = MJTI->getEntrySize() == 4 ?
440       TAI->getData32bitsDirective() : TAI->getData64bitsDirective();
441   }
442 
443   O << JTEntryDirective << ' ';
444 
445   // If we have emitted set directives for the jump table entries, print
446   // them rather than the entries themselves.  If we're emitting PIC, then
447   // emit the table entries as differences between two text section labels.
448   // If we're emitting non-PIC code, then emit the entries as direct
449   // references to the target basic blocks.
450   if (IsPic) {
451     if (TAI->getSetDirective()) {
452       O << TAI->getPrivateGlobalPrefix() << getFunctionNumber()
453         << '_' << uid << "_set_" << MBB->getNumber();
454     } else {
455       printBasicBlockLabel(MBB, false, false, false);
456       // If the arch uses custom Jump Table directives, don't calc relative to
457       // JT
458       if (!HadJTEntryDirective)
459         O << '-' << TAI->getPrivateGlobalPrefix() << "JTI"
460           << getFunctionNumber() << '_' << uid;
461     }
462   } else {
463     printBasicBlockLabel(MBB, false, false, false);
464   }
465 }
466 
467 
468 /// EmitSpecialLLVMGlobal - Check to see if the specified global is a
469 /// special global used by LLVM.  If so, emit it and return true, otherwise
470 /// do nothing and return false.
471 bool AsmPrinter::EmitSpecialLLVMGlobal(const GlobalVariable *GV) {
472   if (GV->getName() == "llvm.used") {
473     if (TAI->getUsedDirective() != 0)    // No need to emit this at all.
474       EmitLLVMUsedList(GV->getInitializer());
475     return true;
476   }
477 
478   // Ignore debug and non-emitted data.
479   if (GV->getSection() == "llvm.metadata" ||
480       GV->hasAvailableExternallyLinkage())
481     return true;
482 
483   if (!GV->hasAppendingLinkage()) return false;
484 
485   assert(GV->hasInitializer() && "Not a special LLVM global!");
486 
487   const TargetData *TD = TM.getTargetData();
488   unsigned Align = Log2_32(TD->getPointerPrefAlignment());
489   if (GV->getName() == "llvm.global_ctors") {
490     SwitchToDataSection(TAI->getStaticCtorsSection());
491     EmitAlignment(Align, 0);
492     EmitXXStructorList(GV->getInitializer());
493     return true;
494   }
495 
496   if (GV->getName() == "llvm.global_dtors") {
497     SwitchToDataSection(TAI->getStaticDtorsSection());
498     EmitAlignment(Align, 0);
499     EmitXXStructorList(GV->getInitializer());
500     return true;
501   }
502 
503   return false;
504 }
505 
506 /// findGlobalValue - if CV is an expression equivalent to a single
507 /// global value, return that value.
508 const GlobalValue * AsmPrinter::findGlobalValue(const Constant *CV) {
509   if (const GlobalValue *GV = dyn_cast<GlobalValue>(CV))
510     return GV;
511   else if (const ConstantExpr *CE = dyn_cast<ConstantExpr>(CV)) {
512     const TargetData *TD = TM.getTargetData();
513     unsigned Opcode = CE->getOpcode();
514     switch (Opcode) {
515     case Instruction::GetElementPtr: {
516       const Constant *ptrVal = CE->getOperand(0);
517       SmallVector<Value*, 8> idxVec(CE->op_begin()+1, CE->op_end());
518       if (TD->getIndexedOffset(ptrVal->getType(), &idxVec[0], idxVec.size()))
519         return 0;
520       return findGlobalValue(ptrVal);
521     }
522     case Instruction::BitCast:
523       return findGlobalValue(CE->getOperand(0));
524     default:
525       return 0;
526     }
527   }
528   return 0;
529 }
530 
531 /// EmitLLVMUsedList - For targets that define a TAI::UsedDirective, mark each
532 /// global in the specified llvm.used list for which emitUsedDirectiveFor
533 /// is true, as being used with this directive.
534 
535 void AsmPrinter::EmitLLVMUsedList(Constant *List) {
536   const char *Directive = TAI->getUsedDirective();
537 
538   // Should be an array of 'i8*'.
539   ConstantArray *InitList = dyn_cast<ConstantArray>(List);
540   if (InitList == 0) return;
541 
542   for (unsigned i = 0, e = InitList->getNumOperands(); i != e; ++i) {
543     const GlobalValue *GV = findGlobalValue(InitList->getOperand(i));
544     if (TAI->emitUsedDirectiveFor(GV, Mang)) {
545       O << Directive;
546       EmitConstantValueOnly(InitList->getOperand(i));
547       O << '\n';
548     }
549   }
550 }
551 
552 /// EmitXXStructorList - Emit the ctor or dtor list.  This just prints out the
553 /// function pointers, ignoring the init priority.
554 void AsmPrinter::EmitXXStructorList(Constant *List) {
555   // Should be an array of '{ int, void ()* }' structs.  The first value is the
556   // init priority, which we ignore.
557   if (!isa<ConstantArray>(List)) return;
558   ConstantArray *InitList = cast<ConstantArray>(List);
559   for (unsigned i = 0, e = InitList->getNumOperands(); i != e; ++i)
560     if (ConstantStruct *CS = dyn_cast<ConstantStruct>(InitList->getOperand(i))){
561       if (CS->getNumOperands() != 2) return;  // Not array of 2-element structs.
562 
563       if (CS->getOperand(1)->isNullValue())
564         return;  // Found a null terminator, exit printing.
565       // Emit the function pointer.
566       EmitGlobalConstant(CS->getOperand(1));
567     }
568 }
569 
570 /// getGlobalLinkName - Returns the asm/link name of of the specified
571 /// global variable.  Should be overridden by each target asm printer to
572 /// generate the appropriate value.
573 const std::string &AsmPrinter::getGlobalLinkName(const GlobalVariable *GV,
574                                                  std::string &LinkName) const {
575   if (isa<Function>(GV)) {
576     LinkName += TAI->getFunctionAddrPrefix();
577     LinkName += Mang->getValueName(GV);
578     LinkName += TAI->getFunctionAddrSuffix();
579   } else {
580     LinkName += TAI->getGlobalVarAddrPrefix();
581     LinkName += Mang->getValueName(GV);
582     LinkName += TAI->getGlobalVarAddrSuffix();
583   }
584 
585   return LinkName;
586 }
587 
588 /// EmitExternalGlobal - Emit the external reference to a global variable.
589 /// Should be overridden if an indirect reference should be used.
590 void AsmPrinter::EmitExternalGlobal(const GlobalVariable *GV) {
591   std::string GLN;
592   O << getGlobalLinkName(GV, GLN);
593 }
594 
595 
596 
597 //===----------------------------------------------------------------------===//
598 /// LEB 128 number encoding.
599 
600 /// PrintULEB128 - Print a series of hexidecimal values (separated by commas)
601 /// representing an unsigned leb128 value.
602 void AsmPrinter::PrintULEB128(unsigned Value) const {
603   char Buffer[20];
604   do {
605     unsigned char Byte = static_cast<unsigned char>(Value & 0x7f);
606     Value >>= 7;
607     if (Value) Byte |= 0x80;
608     O << "0x" << utohex_buffer(Byte, Buffer+20);
609     if (Value) O << ", ";
610   } while (Value);
611 }
612 
613 /// PrintSLEB128 - Print a series of hexidecimal values (separated by commas)
614 /// representing a signed leb128 value.
615 void AsmPrinter::PrintSLEB128(int Value) const {
616   int Sign = Value >> (8 * sizeof(Value) - 1);
617   bool IsMore;
618   char Buffer[20];
619 
620   do {
621     unsigned char Byte = static_cast<unsigned char>(Value & 0x7f);
622     Value >>= 7;
623     IsMore = Value != Sign || ((Byte ^ Sign) & 0x40) != 0;
624     if (IsMore) Byte |= 0x80;
625     O << "0x" << utohex_buffer(Byte, Buffer+20);
626     if (IsMore) O << ", ";
627   } while (IsMore);
628 }
629 
630 //===--------------------------------------------------------------------===//
631 // Emission and print routines
632 //
633 
634 /// PrintHex - Print a value as a hexidecimal value.
635 ///
636 void AsmPrinter::PrintHex(int Value) const {
637   char Buffer[20];
638   O << "0x" << utohex_buffer(static_cast<unsigned>(Value), Buffer+20);
639 }
640 
641 /// EOL - Print a newline character to asm stream.  If a comment is present
642 /// then it will be printed first.  Comments should not contain '\n'.
643 void AsmPrinter::EOL() const {
644   O << '\n';
645 }
646 
647 void AsmPrinter::EOL(const std::string &Comment) const {
648   if (VerboseAsm && !Comment.empty()) {
649     O << '\t'
650       << TAI->getCommentString()
651       << ' '
652       << Comment;
653   }
654   O << '\n';
655 }
656 
657 void AsmPrinter::EOL(const char* Comment) const {
658   if (VerboseAsm && *Comment) {
659     O << '\t'
660       << TAI->getCommentString()
661       << ' '
662       << Comment;
663   }
664   O << '\n';
665 }
666 
667 /// EmitULEB128Bytes - Emit an assembler byte data directive to compose an
668 /// unsigned leb128 value.
669 void AsmPrinter::EmitULEB128Bytes(unsigned Value) const {
670   if (TAI->hasLEB128()) {
671     O << "\t.uleb128\t"
672       << Value;
673   } else {
674     O << TAI->getData8bitsDirective();
675     PrintULEB128(Value);
676   }
677 }
678 
679 /// EmitSLEB128Bytes - print an assembler byte data directive to compose a
680 /// signed leb128 value.
681 void AsmPrinter::EmitSLEB128Bytes(int Value) const {
682   if (TAI->hasLEB128()) {
683     O << "\t.sleb128\t"
684       << Value;
685   } else {
686     O << TAI->getData8bitsDirective();
687     PrintSLEB128(Value);
688   }
689 }
690 
691 /// EmitInt8 - Emit a byte directive and value.
692 ///
693 void AsmPrinter::EmitInt8(int Value) const {
694   O << TAI->getData8bitsDirective();
695   PrintHex(Value & 0xFF);
696 }
697 
698 /// EmitInt16 - Emit a short directive and value.
699 ///
700 void AsmPrinter::EmitInt16(int Value) const {
701   O << TAI->getData16bitsDirective();
702   PrintHex(Value & 0xFFFF);
703 }
704 
705 /// EmitInt32 - Emit a long directive and value.
706 ///
707 void AsmPrinter::EmitInt32(int Value) const {
708   O << TAI->getData32bitsDirective();
709   PrintHex(Value);
710 }
711 
712 /// EmitInt64 - Emit a long long directive and value.
713 ///
714 void AsmPrinter::EmitInt64(uint64_t Value) const {
715   if (TAI->getData64bitsDirective()) {
716     O << TAI->getData64bitsDirective();
717     PrintHex(Value);
718   } else {
719     if (TM.getTargetData()->isBigEndian()) {
720       EmitInt32(unsigned(Value >> 32)); O << '\n';
721       EmitInt32(unsigned(Value));
722     } else {
723       EmitInt32(unsigned(Value)); O << '\n';
724       EmitInt32(unsigned(Value >> 32));
725     }
726   }
727 }
728 
729 /// toOctal - Convert the low order bits of X into an octal digit.
730 ///
731 static inline char toOctal(int X) {
732   return (X&7)+'0';
733 }
734 
735 /// printStringChar - Print a char, escaped if necessary.
736 ///
737 static void printStringChar(raw_ostream &O, unsigned char C) {
738   if (C == '"') {
739     O << "\\\"";
740   } else if (C == '\\') {
741     O << "\\\\";
742   } else if (isprint((unsigned char)C)) {
743     O << C;
744   } else {
745     switch(C) {
746     case '\b': O << "\\b"; break;
747     case '\f': O << "\\f"; break;
748     case '\n': O << "\\n"; break;
749     case '\r': O << "\\r"; break;
750     case '\t': O << "\\t"; break;
751     default:
752       O << '\\';
753       O << toOctal(C >> 6);
754       O << toOctal(C >> 3);
755       O << toOctal(C >> 0);
756       break;
757     }
758   }
759 }
760 
761 /// EmitString - Emit a string with quotes and a null terminator.
762 /// Special characters are emitted properly.
763 /// \literal (Eg. '\t') \endliteral
764 void AsmPrinter::EmitString(const std::string &String) const {
765   EmitString(String.c_str(), String.size());
766 }
767 
768 void AsmPrinter::EmitString(const char *String, unsigned Size) const {
769   const char* AscizDirective = TAI->getAscizDirective();
770   if (AscizDirective)
771     O << AscizDirective;
772   else
773     O << TAI->getAsciiDirective();
774   O << '\"';
775   for (unsigned i = 0; i < Size; ++i)
776     printStringChar(O, String[i]);
777   if (AscizDirective)
778     O << '\"';
779   else
780     O << "\\0\"";
781 }
782 
783 
784 /// EmitFile - Emit a .file directive.
785 void AsmPrinter::EmitFile(unsigned Number, const std::string &Name) const {
786   O << "\t.file\t" << Number << " \"";
787   for (unsigned i = 0, N = Name.size(); i < N; ++i)
788     printStringChar(O, Name[i]);
789   O << '\"';
790 }
791 
792 
793 //===----------------------------------------------------------------------===//
794 
795 // EmitAlignment - Emit an alignment directive to the specified power of
796 // two boundary.  For example, if you pass in 3 here, you will get an 8
797 // byte alignment.  If a global value is specified, and if that global has
798 // an explicit alignment requested, it will unconditionally override the
799 // alignment request.  However, if ForcedAlignBits is specified, this value
800 // has final say: the ultimate alignment will be the max of ForcedAlignBits
801 // and the alignment computed with NumBits and the global.
802 //
803 // The algorithm is:
804 //     Align = NumBits;
805 //     if (GV && GV->hasalignment) Align = GV->getalignment();
806 //     Align = std::max(Align, ForcedAlignBits);
807 //
808 void AsmPrinter::EmitAlignment(unsigned NumBits, const GlobalValue *GV,
809                                unsigned ForcedAlignBits,
810                                bool UseFillExpr) const {
811   if (GV && GV->getAlignment())
812     NumBits = Log2_32(GV->getAlignment());
813   NumBits = std::max(NumBits, ForcedAlignBits);
814 
815   if (NumBits == 0) return;   // No need to emit alignment.
816   if (TAI->getAlignmentIsInBytes()) NumBits = 1 << NumBits;
817   O << TAI->getAlignDirective() << NumBits;
818 
819   unsigned FillValue = TAI->getTextAlignFillValue();
820   UseFillExpr &= IsInTextSection && FillValue;
821   if (UseFillExpr) {
822     O << ',';
823     PrintHex(FillValue);
824   }
825   O << '\n';
826 }
827 
828 
829 /// EmitZeros - Emit a block of zeros.
830 ///
831 void AsmPrinter::EmitZeros(uint64_t NumZeros, unsigned AddrSpace) const {
832   if (NumZeros) {
833     if (TAI->getZeroDirective()) {
834       O << TAI->getZeroDirective() << NumZeros;
835       if (TAI->getZeroDirectiveSuffix())
836         O << TAI->getZeroDirectiveSuffix();
837       O << '\n';
838     } else {
839       for (; NumZeros; --NumZeros)
840         O << TAI->getData8bitsDirective(AddrSpace) << "0\n";
841     }
842   }
843 }
844 
845 // Print out the specified constant, without a storage class.  Only the
846 // constants valid in constant expressions can occur here.
847 void AsmPrinter::EmitConstantValueOnly(const Constant *CV) {
848   if (CV->isNullValue() || isa<UndefValue>(CV))
849     O << '0';
850   else if (const ConstantInt *CI = dyn_cast<ConstantInt>(CV)) {
851     O << CI->getZExtValue();
852   } else if (const GlobalValue *GV = dyn_cast<GlobalValue>(CV)) {
853     // This is a constant address for a global variable or function. Use the
854     // name of the variable or function as the address value, possibly
855     // decorating it with GlobalVarAddrPrefix/Suffix or
856     // FunctionAddrPrefix/Suffix (these all default to "" )
857     if (isa<Function>(GV)) {
858       O << TAI->getFunctionAddrPrefix()
859         << Mang->getValueName(GV)
860         << TAI->getFunctionAddrSuffix();
861     } else {
862       O << TAI->getGlobalVarAddrPrefix()
863         << Mang->getValueName(GV)
864         << TAI->getGlobalVarAddrSuffix();
865     }
866   } else if (const ConstantExpr *CE = dyn_cast<ConstantExpr>(CV)) {
867     const TargetData *TD = TM.getTargetData();
868     unsigned Opcode = CE->getOpcode();
869     switch (Opcode) {
870     case Instruction::GetElementPtr: {
871       // generate a symbolic expression for the byte address
872       const Constant *ptrVal = CE->getOperand(0);
873       SmallVector<Value*, 8> idxVec(CE->op_begin()+1, CE->op_end());
874       if (int64_t Offset = TD->getIndexedOffset(ptrVal->getType(), &idxVec[0],
875                                                 idxVec.size())) {
876         // Truncate/sext the offset to the pointer size.
877         if (TD->getPointerSizeInBits() != 64) {
878           int SExtAmount = 64-TD->getPointerSizeInBits();
879           Offset = (Offset << SExtAmount) >> SExtAmount;
880         }
881 
882         if (Offset)
883           O << '(';
884         EmitConstantValueOnly(ptrVal);
885         if (Offset > 0)
886           O << ") + " << Offset;
887         else if (Offset < 0)
888           O << ") - " << -Offset;
889       } else {
890         EmitConstantValueOnly(ptrVal);
891       }
892       break;
893     }
894     case Instruction::Trunc:
895     case Instruction::ZExt:
896     case Instruction::SExt:
897     case Instruction::FPTrunc:
898     case Instruction::FPExt:
899     case Instruction::UIToFP:
900     case Instruction::SIToFP:
901     case Instruction::FPToUI:
902     case Instruction::FPToSI:
903       assert(0 && "FIXME: Don't yet support this kind of constant cast expr");
904       break;
905     case Instruction::BitCast:
906       return EmitConstantValueOnly(CE->getOperand(0));
907 
908     case Instruction::IntToPtr: {
909       // Handle casts to pointers by changing them into casts to the appropriate
910       // integer type.  This promotes constant folding and simplifies this code.
911       Constant *Op = CE->getOperand(0);
912       Op = ConstantExpr::getIntegerCast(Op, TD->getIntPtrType(), false/*ZExt*/);
913       return EmitConstantValueOnly(Op);
914     }
915 
916 
917     case Instruction::PtrToInt: {
918       // Support only foldable casts to/from pointers that can be eliminated by
919       // changing the pointer to the appropriately sized integer type.
920       Constant *Op = CE->getOperand(0);
921       const Type *Ty = CE->getType();
922 
923       // We can emit the pointer value into this slot if the slot is an
924       // integer slot greater or equal to the size of the pointer.
925       if (TD->getTypeAllocSize(Ty) >= TD->getTypeAllocSize(Op->getType()))
926         return EmitConstantValueOnly(Op);
927 
928       O << "((";
929       EmitConstantValueOnly(Op);
930       APInt ptrMask = APInt::getAllOnesValue(TD->getTypeAllocSizeInBits(Ty));
931 
932       SmallString<40> S;
933       ptrMask.toStringUnsigned(S);
934       O << ") & " << S.c_str() << ')';
935       break;
936     }
937     case Instruction::Add:
938     case Instruction::Sub:
939     case Instruction::And:
940     case Instruction::Or:
941     case Instruction::Xor:
942       O << '(';
943       EmitConstantValueOnly(CE->getOperand(0));
944       O << ')';
945       switch (Opcode) {
946       case Instruction::Add:
947        O << " + ";
948        break;
949       case Instruction::Sub:
950        O << " - ";
951        break;
952       case Instruction::And:
953        O << " & ";
954        break;
955       case Instruction::Or:
956        O << " | ";
957        break;
958       case Instruction::Xor:
959        O << " ^ ";
960        break;
961       default:
962        break;
963       }
964       O << '(';
965       EmitConstantValueOnly(CE->getOperand(1));
966       O << ')';
967       break;
968     default:
969       assert(0 && "Unsupported operator!");
970     }
971   } else {
972     assert(0 && "Unknown constant value!");
973   }
974 }
975 
976 /// printAsCString - Print the specified array as a C compatible string, only if
977 /// the predicate isString is true.
978 ///
979 static void printAsCString(raw_ostream &O, const ConstantArray *CVA,
980                            unsigned LastElt) {
981   assert(CVA->isString() && "Array is not string compatible!");
982 
983   O << '\"';
984   for (unsigned i = 0; i != LastElt; ++i) {
985     unsigned char C =
986         (unsigned char)cast<ConstantInt>(CVA->getOperand(i))->getZExtValue();
987     printStringChar(O, C);
988   }
989   O << '\"';
990 }
991 
992 /// EmitString - Emit a zero-byte-terminated string constant.
993 ///
994 void AsmPrinter::EmitString(const ConstantArray *CVA) const {
995   unsigned NumElts = CVA->getNumOperands();
996   if (TAI->getAscizDirective() && NumElts &&
997       cast<ConstantInt>(CVA->getOperand(NumElts-1))->getZExtValue() == 0) {
998     O << TAI->getAscizDirective();
999     printAsCString(O, CVA, NumElts-1);
1000   } else {
1001     O << TAI->getAsciiDirective();
1002     printAsCString(O, CVA, NumElts);
1003   }
1004   O << '\n';
1005 }
1006 
1007 void AsmPrinter::EmitGlobalConstantArray(const ConstantArray *CVA,
1008                                          unsigned AddrSpace) {
1009   if (CVA->isString()) {
1010     EmitString(CVA);
1011   } else { // Not a string.  Print the values in successive locations
1012     for (unsigned i = 0, e = CVA->getNumOperands(); i != e; ++i)
1013       EmitGlobalConstant(CVA->getOperand(i), AddrSpace);
1014   }
1015 }
1016 
1017 void AsmPrinter::EmitGlobalConstantVector(const ConstantVector *CP) {
1018   const VectorType *PTy = CP->getType();
1019 
1020   for (unsigned I = 0, E = PTy->getNumElements(); I < E; ++I)
1021     EmitGlobalConstant(CP->getOperand(I));
1022 }
1023 
1024 void AsmPrinter::EmitGlobalConstantStruct(const ConstantStruct *CVS,
1025                                           unsigned AddrSpace) {
1026   // Print the fields in successive locations. Pad to align if needed!
1027   const TargetData *TD = TM.getTargetData();
1028   unsigned Size = TD->getTypeAllocSize(CVS->getType());
1029   const StructLayout *cvsLayout = TD->getStructLayout(CVS->getType());
1030   uint64_t sizeSoFar = 0;
1031   for (unsigned i = 0, e = CVS->getNumOperands(); i != e; ++i) {
1032     const Constant* field = CVS->getOperand(i);
1033 
1034     // Check if padding is needed and insert one or more 0s.
1035     uint64_t fieldSize = TD->getTypeAllocSize(field->getType());
1036     uint64_t padSize = ((i == e-1 ? Size : cvsLayout->getElementOffset(i+1))
1037                         - cvsLayout->getElementOffset(i)) - fieldSize;
1038     sizeSoFar += fieldSize + padSize;
1039 
1040     // Now print the actual field value.
1041     EmitGlobalConstant(field, AddrSpace);
1042 
1043     // Insert padding - this may include padding to increase the size of the
1044     // current field up to the ABI size (if the struct is not packed) as well
1045     // as padding to ensure that the next field starts at the right offset.
1046     EmitZeros(padSize, AddrSpace);
1047   }
1048   assert(sizeSoFar == cvsLayout->getSizeInBytes() &&
1049          "Layout of constant struct may be incorrect!");
1050 }
1051 
1052 void AsmPrinter::EmitGlobalConstantFP(const ConstantFP *CFP,
1053                                       unsigned AddrSpace) {
1054   // FP Constants are printed as integer constants to avoid losing
1055   // precision...
1056   const TargetData *TD = TM.getTargetData();
1057   if (CFP->getType() == Type::DoubleTy) {
1058     double Val = CFP->getValueAPF().convertToDouble();  // for comment only
1059     uint64_t i = CFP->getValueAPF().bitcastToAPInt().getZExtValue();
1060     if (TAI->getData64bitsDirective(AddrSpace)) {
1061       O << TAI->getData64bitsDirective(AddrSpace) << i;
1062       if (VerboseAsm)
1063         O << '\t' << TAI->getCommentString() << " double value: " << Val;
1064       O << '\n';
1065     } else if (TD->isBigEndian()) {
1066       O << TAI->getData32bitsDirective(AddrSpace) << unsigned(i >> 32);
1067       if (VerboseAsm)
1068         O << '\t' << TAI->getCommentString()
1069           << " double most significant word " << Val;
1070       O << '\n';
1071       O << TAI->getData32bitsDirective(AddrSpace) << unsigned(i);
1072       if (VerboseAsm)
1073         O << '\t' << TAI->getCommentString()
1074           << " double least significant word " << Val;
1075       O << '\n';
1076     } else {
1077       O << TAI->getData32bitsDirective(AddrSpace) << unsigned(i);
1078       if (VerboseAsm)
1079         O << '\t' << TAI->getCommentString()
1080           << " double least significant word " << Val;
1081       O << '\n';
1082       O << TAI->getData32bitsDirective(AddrSpace) << unsigned(i >> 32);
1083       if (VerboseAsm)
1084         O << '\t' << TAI->getCommentString()
1085           << " double most significant word " << Val;
1086       O << '\n';
1087     }
1088     return;
1089   } else if (CFP->getType() == Type::FloatTy) {
1090     float Val = CFP->getValueAPF().convertToFloat();  // for comment only
1091     O << TAI->getData32bitsDirective(AddrSpace)
1092       << CFP->getValueAPF().bitcastToAPInt().getZExtValue();
1093     if (VerboseAsm)
1094       O << '\t' << TAI->getCommentString() << " float " << Val;
1095     O << '\n';
1096     return;
1097   } else if (CFP->getType() == Type::X86_FP80Ty) {
1098     // all long double variants are printed as hex
1099     // api needed to prevent premature destruction
1100     APInt api = CFP->getValueAPF().bitcastToAPInt();
1101     const uint64_t *p = api.getRawData();
1102     // Convert to double so we can print the approximate val as a comment.
1103     APFloat DoubleVal = CFP->getValueAPF();
1104     bool ignored;
1105     DoubleVal.convert(APFloat::IEEEdouble, APFloat::rmNearestTiesToEven,
1106                       &ignored);
1107     if (TD->isBigEndian()) {
1108       O << TAI->getData16bitsDirective(AddrSpace) << uint16_t(p[1]);
1109       if (VerboseAsm)
1110         O << '\t' << TAI->getCommentString()
1111           << " long double most significant halfword of ~"
1112           << DoubleVal.convertToDouble();
1113       O << '\n';
1114       O << TAI->getData16bitsDirective(AddrSpace) << uint16_t(p[0] >> 48);
1115       if (VerboseAsm)
1116         O << '\t' << TAI->getCommentString() << " long double next halfword";
1117       O << '\n';
1118       O << TAI->getData16bitsDirective(AddrSpace) << uint16_t(p[0] >> 32);
1119       if (VerboseAsm)
1120         O << '\t' << TAI->getCommentString() << " long double next halfword";
1121       O << '\n';
1122       O << TAI->getData16bitsDirective(AddrSpace) << uint16_t(p[0] >> 16);
1123       if (VerboseAsm)
1124         O << '\t' << TAI->getCommentString() << " long double next halfword";
1125       O << '\n';
1126       O << TAI->getData16bitsDirective(AddrSpace) << uint16_t(p[0]);
1127       if (VerboseAsm)
1128         O << '\t' << TAI->getCommentString()
1129           << " long double least significant halfword";
1130       O << '\n';
1131      } else {
1132       O << TAI->getData16bitsDirective(AddrSpace) << uint16_t(p[0]);
1133       if (VerboseAsm)
1134         O << '\t' << TAI->getCommentString()
1135           << " long double least significant halfword of ~"
1136           << DoubleVal.convertToDouble();
1137       O << '\n';
1138       O << TAI->getData16bitsDirective(AddrSpace) << uint16_t(p[0] >> 16);
1139       if (VerboseAsm)
1140         O << '\t' << TAI->getCommentString()
1141           << " long double next halfword";
1142       O << '\n';
1143       O << TAI->getData16bitsDirective(AddrSpace) << uint16_t(p[0] >> 32);
1144       if (VerboseAsm)
1145         O << '\t' << TAI->getCommentString()
1146           << " long double next halfword";
1147       O << '\n';
1148       O << TAI->getData16bitsDirective(AddrSpace) << uint16_t(p[0] >> 48);
1149       if (VerboseAsm)
1150         O << '\t' << TAI->getCommentString()
1151           << " long double next halfword";
1152       O << '\n';
1153       O << TAI->getData16bitsDirective(AddrSpace) << uint16_t(p[1]);
1154       if (VerboseAsm)
1155         O << '\t' << TAI->getCommentString()
1156           << " long double most significant halfword";
1157       O << '\n';
1158     }
1159     EmitZeros(TD->getTypeAllocSize(Type::X86_FP80Ty) -
1160               TD->getTypeStoreSize(Type::X86_FP80Ty), AddrSpace);
1161     return;
1162   } else if (CFP->getType() == Type::PPC_FP128Ty) {
1163     // all long double variants are printed as hex
1164     // api needed to prevent premature destruction
1165     APInt api = CFP->getValueAPF().bitcastToAPInt();
1166     const uint64_t *p = api.getRawData();
1167     if (TD->isBigEndian()) {
1168       O << TAI->getData32bitsDirective(AddrSpace) << uint32_t(p[0] >> 32);
1169       if (VerboseAsm)
1170         O << '\t' << TAI->getCommentString()
1171           << " long double most significant word";
1172       O << '\n';
1173       O << TAI->getData32bitsDirective(AddrSpace) << uint32_t(p[0]);
1174       if (VerboseAsm)
1175         O << '\t' << TAI->getCommentString()
1176         << " long double next word";
1177       O << '\n';
1178       O << TAI->getData32bitsDirective(AddrSpace) << uint32_t(p[1] >> 32);
1179       if (VerboseAsm)
1180         O << '\t' << TAI->getCommentString()
1181           << " long double next word";
1182       O << '\n';
1183       O << TAI->getData32bitsDirective(AddrSpace) << uint32_t(p[1]);
1184       if (VerboseAsm)
1185         O << '\t' << TAI->getCommentString()
1186           << " long double least significant word";
1187       O << '\n';
1188      } else {
1189       O << TAI->getData32bitsDirective(AddrSpace) << uint32_t(p[1]);
1190       if (VerboseAsm)
1191         O << '\t' << TAI->getCommentString()
1192           << " long double least significant word";
1193       O << '\n';
1194       O << TAI->getData32bitsDirective(AddrSpace) << uint32_t(p[1] >> 32);
1195       if (VerboseAsm)
1196         O << '\t' << TAI->getCommentString()
1197           << " long double next word";
1198       O << '\n';
1199       O << TAI->getData32bitsDirective(AddrSpace) << uint32_t(p[0]);
1200       if (VerboseAsm)
1201         O << '\t' << TAI->getCommentString()
1202           << " long double next word";
1203       O << '\n';
1204       O << TAI->getData32bitsDirective(AddrSpace) << uint32_t(p[0] >> 32);
1205       if (VerboseAsm)
1206         O << '\t' << TAI->getCommentString()
1207           << " long double most significant word";
1208       O << '\n';
1209     }
1210     return;
1211   } else assert(0 && "Floating point constant type not handled");
1212 }
1213 
1214 void AsmPrinter::EmitGlobalConstantLargeInt(const ConstantInt *CI,
1215                                             unsigned AddrSpace) {
1216   const TargetData *TD = TM.getTargetData();
1217   unsigned BitWidth = CI->getBitWidth();
1218   assert(isPowerOf2_32(BitWidth) &&
1219          "Non-power-of-2-sized integers not handled!");
1220 
1221   // We don't expect assemblers to support integer data directives
1222   // for more than 64 bits, so we emit the data in at most 64-bit
1223   // quantities at a time.
1224   const uint64_t *RawData = CI->getValue().getRawData();
1225   for (unsigned i = 0, e = BitWidth / 64; i != e; ++i) {
1226     uint64_t Val;
1227     if (TD->isBigEndian())
1228       Val = RawData[e - i - 1];
1229     else
1230       Val = RawData[i];
1231 
1232     if (TAI->getData64bitsDirective(AddrSpace))
1233       O << TAI->getData64bitsDirective(AddrSpace) << Val << '\n';
1234     else if (TD->isBigEndian()) {
1235       O << TAI->getData32bitsDirective(AddrSpace) << unsigned(Val >> 32);
1236       if (VerboseAsm)
1237         O << '\t' << TAI->getCommentString()
1238           << " Double-word most significant word " << Val;
1239       O << '\n';
1240       O << TAI->getData32bitsDirective(AddrSpace) << unsigned(Val);
1241       if (VerboseAsm)
1242         O << '\t' << TAI->getCommentString()
1243           << " Double-word least significant word " << Val;
1244       O << '\n';
1245     } else {
1246       O << TAI->getData32bitsDirective(AddrSpace) << unsigned(Val);
1247       if (VerboseAsm)
1248         O << '\t' << TAI->getCommentString()
1249           << " Double-word least significant word " << Val;
1250       O << '\n';
1251       O << TAI->getData32bitsDirective(AddrSpace) << unsigned(Val >> 32);
1252       if (VerboseAsm)
1253         O << '\t' << TAI->getCommentString()
1254           << " Double-word most significant word " << Val;
1255       O << '\n';
1256     }
1257   }
1258 }
1259 
1260 /// EmitGlobalConstant - Print a general LLVM constant to the .s file.
1261 void AsmPrinter::EmitGlobalConstant(const Constant *CV, unsigned AddrSpace) {
1262   const TargetData *TD = TM.getTargetData();
1263   const Type *type = CV->getType();
1264   unsigned Size = TD->getTypeAllocSize(type);
1265 
1266   if (CV->isNullValue() || isa<UndefValue>(CV)) {
1267     EmitZeros(Size, AddrSpace);
1268     return;
1269   } else if (const ConstantArray *CVA = dyn_cast<ConstantArray>(CV)) {
1270     EmitGlobalConstantArray(CVA , AddrSpace);
1271     return;
1272   } else if (const ConstantStruct *CVS = dyn_cast<ConstantStruct>(CV)) {
1273     EmitGlobalConstantStruct(CVS, AddrSpace);
1274     return;
1275   } else if (const ConstantFP *CFP = dyn_cast<ConstantFP>(CV)) {
1276     EmitGlobalConstantFP(CFP, AddrSpace);
1277     return;
1278   } else if (const ConstantInt *CI = dyn_cast<ConstantInt>(CV)) {
1279     // Small integers are handled below; large integers are handled here.
1280     if (Size > 4) {
1281       EmitGlobalConstantLargeInt(CI, AddrSpace);
1282       return;
1283     }
1284   } else if (const ConstantVector *CP = dyn_cast<ConstantVector>(CV)) {
1285     EmitGlobalConstantVector(CP);
1286     return;
1287   }
1288 
1289   printDataDirective(type, AddrSpace);
1290   EmitConstantValueOnly(CV);
1291   if (VerboseAsm) {
1292     if (const ConstantInt *CI = dyn_cast<ConstantInt>(CV)) {
1293       SmallString<40> S;
1294       CI->getValue().toStringUnsigned(S, 16);
1295       O << "\t\t\t" << TAI->getCommentString() << " 0x" << S.c_str();
1296     }
1297   }
1298   O << '\n';
1299 }
1300 
1301 void AsmPrinter::EmitMachineConstantPoolValue(MachineConstantPoolValue *MCPV) {
1302   // Target doesn't support this yet!
1303   abort();
1304 }
1305 
1306 /// PrintSpecial - Print information related to the specified machine instr
1307 /// that is independent of the operand, and may be independent of the instr
1308 /// itself.  This can be useful for portably encoding the comment character
1309 /// or other bits of target-specific knowledge into the asmstrings.  The
1310 /// syntax used is ${:comment}.  Targets can override this to add support
1311 /// for their own strange codes.
1312 void AsmPrinter::PrintSpecial(const MachineInstr *MI, const char *Code) const {
1313   if (!strcmp(Code, "private")) {
1314     O << TAI->getPrivateGlobalPrefix();
1315   } else if (!strcmp(Code, "comment")) {
1316     if (VerboseAsm)
1317       O << TAI->getCommentString();
1318   } else if (!strcmp(Code, "uid")) {
1319     // Comparing the address of MI isn't sufficient, because machineinstrs may
1320     // be allocated to the same address across functions.
1321     const Function *ThisF = MI->getParent()->getParent()->getFunction();
1322 
1323     // If this is a new LastFn instruction, bump the counter.
1324     if (LastMI != MI || LastFn != ThisF) {
1325       ++Counter;
1326       LastMI = MI;
1327       LastFn = ThisF;
1328     }
1329     O << Counter;
1330   } else {
1331     cerr << "Unknown special formatter '" << Code
1332          << "' for machine instr: " << *MI;
1333     exit(1);
1334   }
1335 }
1336 
1337 /// processDebugLoc - Processes the debug information of each machine
1338 /// instruction's DebugLoc.
1339 void AsmPrinter::processDebugLoc(DebugLoc DL) {
1340   if (TAI->doesSupportDebugInformation() && DW->ShouldEmitDwarfDebug()) {
1341     if (!DL.isUnknown()) {
1342       DebugLocTuple CurDLT = MF->getDebugLocTuple(DL);
1343 
1344       if (CurDLT.CompileUnit != 0 && PrevDLT != CurDLT)
1345         printLabel(DW->RecordSourceLine(CurDLT.Line, CurDLT.Col,
1346                                         DICompileUnit(CurDLT.CompileUnit)));
1347 
1348       PrevDLT = CurDLT;
1349     }
1350   }
1351 }
1352 
1353 /// printInlineAsm - This method formats and prints the specified machine
1354 /// instruction that is an inline asm.
1355 void AsmPrinter::printInlineAsm(const MachineInstr *MI) const {
1356   unsigned NumOperands = MI->getNumOperands();
1357 
1358   // Count the number of register definitions.
1359   unsigned NumDefs = 0;
1360   for (; MI->getOperand(NumDefs).isReg() && MI->getOperand(NumDefs).isDef();
1361        ++NumDefs)
1362     assert(NumDefs != NumOperands-1 && "No asm string?");
1363 
1364   assert(MI->getOperand(NumDefs).isSymbol() && "No asm string?");
1365 
1366   // Disassemble the AsmStr, printing out the literal pieces, the operands, etc.
1367   const char *AsmStr = MI->getOperand(NumDefs).getSymbolName();
1368 
1369   // If this asmstr is empty, just print the #APP/#NOAPP markers.
1370   // These are useful to see where empty asm's wound up.
1371   if (AsmStr[0] == 0) {
1372     O << TAI->getInlineAsmStart() << "\n\t" << TAI->getInlineAsmEnd() << '\n';
1373     return;
1374   }
1375 
1376   O << TAI->getInlineAsmStart() << "\n\t";
1377 
1378   // The variant of the current asmprinter.
1379   int AsmPrinterVariant = TAI->getAssemblerDialect();
1380 
1381   int CurVariant = -1;            // The number of the {.|.|.} region we are in.
1382   const char *LastEmitted = AsmStr; // One past the last character emitted.
1383 
1384   while (*LastEmitted) {
1385     switch (*LastEmitted) {
1386     default: {
1387       // Not a special case, emit the string section literally.
1388       const char *LiteralEnd = LastEmitted+1;
1389       while (*LiteralEnd && *LiteralEnd != '{' && *LiteralEnd != '|' &&
1390              *LiteralEnd != '}' && *LiteralEnd != '$' && *LiteralEnd != '\n')
1391         ++LiteralEnd;
1392       if (CurVariant == -1 || CurVariant == AsmPrinterVariant)
1393         O.write(LastEmitted, LiteralEnd-LastEmitted);
1394       LastEmitted = LiteralEnd;
1395       break;
1396     }
1397     case '\n':
1398       ++LastEmitted;   // Consume newline character.
1399       O << '\n';       // Indent code with newline.
1400       break;
1401     case '$': {
1402       ++LastEmitted;   // Consume '$' character.
1403       bool Done = true;
1404 
1405       // Handle escapes.
1406       switch (*LastEmitted) {
1407       default: Done = false; break;
1408       case '$':     // $$ -> $
1409         if (CurVariant == -1 || CurVariant == AsmPrinterVariant)
1410           O << '$';
1411         ++LastEmitted;  // Consume second '$' character.
1412         break;
1413       case '(':             // $( -> same as GCC's { character.
1414         ++LastEmitted;      // Consume '(' character.
1415         if (CurVariant != -1) {
1416           cerr << "Nested variants found in inline asm string: '"
1417                << AsmStr << "'\n";
1418           exit(1);
1419         }
1420         CurVariant = 0;     // We're in the first variant now.
1421         break;
1422       case '|':
1423         ++LastEmitted;  // consume '|' character.
1424         if (CurVariant == -1)
1425           O << '|';       // this is gcc's behavior for | outside a variant
1426         else
1427           ++CurVariant;   // We're in the next variant.
1428         break;
1429       case ')':         // $) -> same as GCC's } char.
1430         ++LastEmitted;  // consume ')' character.
1431         if (CurVariant == -1)
1432           O << '}';     // this is gcc's behavior for } outside a variant
1433         else
1434           CurVariant = -1;
1435         break;
1436       }
1437       if (Done) break;
1438 
1439       bool HasCurlyBraces = false;
1440       if (*LastEmitted == '{') {     // ${variable}
1441         ++LastEmitted;               // Consume '{' character.
1442         HasCurlyBraces = true;
1443       }
1444 
1445       // If we have ${:foo}, then this is not a real operand reference, it is a
1446       // "magic" string reference, just like in .td files.  Arrange to call
1447       // PrintSpecial.
1448       if (HasCurlyBraces && *LastEmitted == ':') {
1449         ++LastEmitted;
1450         const char *StrStart = LastEmitted;
1451         const char *StrEnd = strchr(StrStart, '}');
1452         if (StrEnd == 0) {
1453           cerr << "Unterminated ${:foo} operand in inline asm string: '"
1454                << AsmStr << "'\n";
1455           exit(1);
1456         }
1457 
1458         std::string Val(StrStart, StrEnd);
1459         PrintSpecial(MI, Val.c_str());
1460         LastEmitted = StrEnd+1;
1461         break;
1462       }
1463 
1464       const char *IDStart = LastEmitted;
1465       char *IDEnd;
1466       errno = 0;
1467       long Val = strtol(IDStart, &IDEnd, 10); // We only accept numbers for IDs.
1468       if (!isdigit(*IDStart) || (Val == 0 && errno == EINVAL)) {
1469         cerr << "Bad $ operand number in inline asm string: '"
1470              << AsmStr << "'\n";
1471         exit(1);
1472       }
1473       LastEmitted = IDEnd;
1474 
1475       char Modifier[2] = { 0, 0 };
1476 
1477       if (HasCurlyBraces) {
1478         // If we have curly braces, check for a modifier character.  This
1479         // supports syntax like ${0:u}, which correspond to "%u0" in GCC asm.
1480         if (*LastEmitted == ':') {
1481           ++LastEmitted;    // Consume ':' character.
1482           if (*LastEmitted == 0) {
1483             cerr << "Bad ${:} expression in inline asm string: '"
1484                  << AsmStr << "'\n";
1485             exit(1);
1486           }
1487 
1488           Modifier[0] = *LastEmitted;
1489           ++LastEmitted;    // Consume modifier character.
1490         }
1491 
1492         if (*LastEmitted != '}') {
1493           cerr << "Bad ${} expression in inline asm string: '"
1494                << AsmStr << "'\n";
1495           exit(1);
1496         }
1497         ++LastEmitted;    // Consume '}' character.
1498       }
1499 
1500       if ((unsigned)Val >= NumOperands-1) {
1501         cerr << "Invalid $ operand number in inline asm string: '"
1502              << AsmStr << "'\n";
1503         exit(1);
1504       }
1505 
1506       // Okay, we finally have a value number.  Ask the target to print this
1507       // operand!
1508       if (CurVariant == -1 || CurVariant == AsmPrinterVariant) {
1509         unsigned OpNo = 1;
1510 
1511         bool Error = false;
1512 
1513         // Scan to find the machine operand number for the operand.
1514         for (; Val; --Val) {
1515           if (OpNo >= MI->getNumOperands()) break;
1516           unsigned OpFlags = MI->getOperand(OpNo).getImm();
1517           OpNo += InlineAsm::getNumOperandRegisters(OpFlags) + 1;
1518         }
1519 
1520         if (OpNo >= MI->getNumOperands()) {
1521           Error = true;
1522         } else {
1523           unsigned OpFlags = MI->getOperand(OpNo).getImm();
1524           ++OpNo;  // Skip over the ID number.
1525 
1526           if (Modifier[0]=='l')  // labels are target independent
1527             printBasicBlockLabel(MI->getOperand(OpNo).getMBB(),
1528                                  false, false, false);
1529           else {
1530             AsmPrinter *AP = const_cast<AsmPrinter*>(this);
1531             if ((OpFlags & 7) == 4) {
1532               Error = AP->PrintAsmMemoryOperand(MI, OpNo, AsmPrinterVariant,
1533                                                 Modifier[0] ? Modifier : 0);
1534             } else {
1535               Error = AP->PrintAsmOperand(MI, OpNo, AsmPrinterVariant,
1536                                           Modifier[0] ? Modifier : 0);
1537             }
1538           }
1539         }
1540         if (Error) {
1541           cerr << "Invalid operand found in inline asm: '"
1542                << AsmStr << "'\n";
1543           MI->dump();
1544           exit(1);
1545         }
1546       }
1547       break;
1548     }
1549     }
1550   }
1551   O << "\n\t" << TAI->getInlineAsmEnd() << '\n';
1552 }
1553 
1554 /// printImplicitDef - This method prints the specified machine instruction
1555 /// that is an implicit def.
1556 void AsmPrinter::printImplicitDef(const MachineInstr *MI) const {
1557   if (VerboseAsm)
1558     O << '\t' << TAI->getCommentString() << " implicit-def: "
1559       << TRI->getAsmName(MI->getOperand(0).getReg()) << '\n';
1560 }
1561 
1562 /// printLabel - This method prints a local label used by debug and
1563 /// exception handling tables.
1564 void AsmPrinter::printLabel(const MachineInstr *MI) const {
1565   printLabel(MI->getOperand(0).getImm());
1566 }
1567 
1568 void AsmPrinter::printLabel(unsigned Id) const {
1569   O << TAI->getPrivateGlobalPrefix() << "label" << Id << ":\n";
1570 }
1571 
1572 /// printDeclare - This method prints a local variable declaration used by
1573 /// debug tables.
1574 /// FIXME: It doesn't really print anything rather it inserts a DebugVariable
1575 /// entry into dwarf table.
1576 void AsmPrinter::printDeclare(const MachineInstr *MI) const {
1577   unsigned FI = MI->getOperand(0).getIndex();
1578   GlobalValue *GV = MI->getOperand(1).getGlobal();
1579   DW->RecordVariable(cast<GlobalVariable>(GV), FI, MI);
1580 }
1581 
1582 /// PrintAsmOperand - Print the specified operand of MI, an INLINEASM
1583 /// instruction, using the specified assembler variant.  Targets should
1584 /// overried this to format as appropriate.
1585 bool AsmPrinter::PrintAsmOperand(const MachineInstr *MI, unsigned OpNo,
1586                                  unsigned AsmVariant, const char *ExtraCode) {
1587   // Target doesn't support this yet!
1588   return true;
1589 }
1590 
1591 bool AsmPrinter::PrintAsmMemoryOperand(const MachineInstr *MI, unsigned OpNo,
1592                                        unsigned AsmVariant,
1593                                        const char *ExtraCode) {
1594   // Target doesn't support this yet!
1595   return true;
1596 }
1597 
1598 /// printBasicBlockLabel - This method prints the label for the specified
1599 /// MachineBasicBlock
1600 void AsmPrinter::printBasicBlockLabel(const MachineBasicBlock *MBB,
1601                                       bool printAlign,
1602                                       bool printColon,
1603                                       bool printComment) const {
1604   if (printAlign) {
1605     unsigned Align = MBB->getAlignment();
1606     if (Align)
1607       EmitAlignment(Log2_32(Align));
1608   }
1609 
1610   O << TAI->getPrivateGlobalPrefix() << "BB" << getFunctionNumber() << '_'
1611     << MBB->getNumber();
1612   if (printColon)
1613     O << ':';
1614   if (printComment && MBB->getBasicBlock())
1615     O << '\t' << TAI->getCommentString() << ' '
1616       << MBB->getBasicBlock()->getNameStart();
1617 }
1618 
1619 /// printPICJumpTableSetLabel - This method prints a set label for the
1620 /// specified MachineBasicBlock for a jumptable entry.
1621 void AsmPrinter::printPICJumpTableSetLabel(unsigned uid,
1622                                            const MachineBasicBlock *MBB) const {
1623   if (!TAI->getSetDirective())
1624     return;
1625 
1626   O << TAI->getSetDirective() << ' ' << TAI->getPrivateGlobalPrefix()
1627     << getFunctionNumber() << '_' << uid << "_set_" << MBB->getNumber() << ',';
1628   printBasicBlockLabel(MBB, false, false, false);
1629   O << '-' << TAI->getPrivateGlobalPrefix() << "JTI" << getFunctionNumber()
1630     << '_' << uid << '\n';
1631 }
1632 
1633 void AsmPrinter::printPICJumpTableSetLabel(unsigned uid, unsigned uid2,
1634                                            const MachineBasicBlock *MBB) const {
1635   if (!TAI->getSetDirective())
1636     return;
1637 
1638   O << TAI->getSetDirective() << ' ' << TAI->getPrivateGlobalPrefix()
1639     << getFunctionNumber() << '_' << uid << '_' << uid2
1640     << "_set_" << MBB->getNumber() << ',';
1641   printBasicBlockLabel(MBB, false, false, false);
1642   O << '-' << TAI->getPrivateGlobalPrefix() << "JTI" << getFunctionNumber()
1643     << '_' << uid << '_' << uid2 << '\n';
1644 }
1645 
1646 /// printDataDirective - This method prints the asm directive for the
1647 /// specified type.
1648 void AsmPrinter::printDataDirective(const Type *type, unsigned AddrSpace) {
1649   const TargetData *TD = TM.getTargetData();
1650   switch (type->getTypeID()) {
1651   case Type::IntegerTyID: {
1652     unsigned BitWidth = cast<IntegerType>(type)->getBitWidth();
1653     if (BitWidth <= 8)
1654       O << TAI->getData8bitsDirective(AddrSpace);
1655     else if (BitWidth <= 16)
1656       O << TAI->getData16bitsDirective(AddrSpace);
1657     else if (BitWidth <= 32)
1658       O << TAI->getData32bitsDirective(AddrSpace);
1659     else if (BitWidth <= 64) {
1660       assert(TAI->getData64bitsDirective(AddrSpace) &&
1661              "Target cannot handle 64-bit constant exprs!");
1662       O << TAI->getData64bitsDirective(AddrSpace);
1663     } else {
1664       assert(0 && "Target cannot handle given data directive width!");
1665     }
1666     break;
1667   }
1668   case Type::PointerTyID:
1669     if (TD->getPointerSize() == 8) {
1670       assert(TAI->getData64bitsDirective(AddrSpace) &&
1671              "Target cannot handle 64-bit pointer exprs!");
1672       O << TAI->getData64bitsDirective(AddrSpace);
1673     } else if (TD->getPointerSize() == 2) {
1674       O << TAI->getData16bitsDirective(AddrSpace);
1675     } else if (TD->getPointerSize() == 1) {
1676       O << TAI->getData8bitsDirective(AddrSpace);
1677     } else {
1678       O << TAI->getData32bitsDirective(AddrSpace);
1679     }
1680     break;
1681   case Type::FloatTyID: case Type::DoubleTyID:
1682   case Type::X86_FP80TyID: case Type::FP128TyID: case Type::PPC_FP128TyID:
1683     assert (0 && "Should have already output floating point constant.");
1684   default:
1685     assert (0 && "Can't handle printing this type of thing");
1686     break;
1687   }
1688 }
1689 
1690 void AsmPrinter::printSuffixedName(const char *Name, const char *Suffix,
1691                                    const char *Prefix) {
1692   if (Name[0]=='\"')
1693     O << '\"';
1694   O << TAI->getPrivateGlobalPrefix();
1695   if (Prefix) O << Prefix;
1696   if (Name[0]=='\"')
1697     O << '\"';
1698   if (Name[0]=='\"')
1699     O << Name[1];
1700   else
1701     O << Name;
1702   O << Suffix;
1703   if (Name[0]=='\"')
1704     O << '\"';
1705 }
1706 
1707 void AsmPrinter::printSuffixedName(const std::string &Name, const char* Suffix) {
1708   printSuffixedName(Name.c_str(), Suffix);
1709 }
1710 
1711 void AsmPrinter::printVisibility(const std::string& Name,
1712                                  unsigned Visibility) const {
1713   if (Visibility == GlobalValue::HiddenVisibility) {
1714     if (const char *Directive = TAI->getHiddenDirective())
1715       O << Directive << Name << '\n';
1716   } else if (Visibility == GlobalValue::ProtectedVisibility) {
1717     if (const char *Directive = TAI->getProtectedDirective())
1718       O << Directive << Name << '\n';
1719   }
1720 }
1721 
1722 void AsmPrinter::printOffset(int64_t Offset) const {
1723   if (Offset > 0)
1724     O << '+' << Offset;
1725   else if (Offset < 0)
1726     O << Offset;
1727 }
1728 
1729 GCMetadataPrinter *AsmPrinter::GetOrCreateGCPrinter(GCStrategy *S) {
1730   if (!S->usesMetadata())
1731     return 0;
1732 
1733   gcp_iterator GCPI = GCMetadataPrinters.find(S);
1734   if (GCPI != GCMetadataPrinters.end())
1735     return GCPI->second;
1736 
1737   const char *Name = S->getName().c_str();
1738 
1739   for (GCMetadataPrinterRegistry::iterator
1740          I = GCMetadataPrinterRegistry::begin(),
1741          E = GCMetadataPrinterRegistry::end(); I != E; ++I)
1742     if (strcmp(Name, I->getName()) == 0) {
1743       GCMetadataPrinter *GMP = I->instantiate();
1744       GMP->S = S;
1745       GCMetadataPrinters.insert(std::make_pair(S, GMP));
1746       return GMP;
1747     }
1748 
1749   cerr << "no GCMetadataPrinter registered for GC: " << Name << "\n";
1750   abort();
1751 }
1752