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Dan Gohmanf17a25c2007-07-18 16:29:46 +00001//===-- AsmPrinter.cpp - Common AsmPrinter code ---------------------------===//
2//
3// The LLVM Compiler Infrastructure
4//
5// This file was developed by the LLVM research group and is distributed under
6// the University of Illinois Open Source 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/MachineConstantPool.h"
20#include "llvm/CodeGen/MachineJumpTableInfo.h"
21#include "llvm/Support/CommandLine.h"
22#include "llvm/Support/Mangler.h"
23#include "llvm/Support/MathExtras.h"
24#include "llvm/Support/Streams.h"
25#include "llvm/Target/TargetAsmInfo.h"
26#include "llvm/Target/TargetData.h"
27#include "llvm/Target/TargetLowering.h"
28#include "llvm/Target/TargetMachine.h"
29#include <cerrno>
30using namespace llvm;
31
32static cl::opt<bool>
33AsmVerbose("asm-verbose", cl::Hidden, cl::desc("Add comments to directives."));
34
35char AsmPrinter::ID = 0;
36AsmPrinter::AsmPrinter(std::ostream &o, TargetMachine &tm,
37 const TargetAsmInfo *T)
38 : MachineFunctionPass((intptr_t)&ID), FunctionNumber(0), O(o), TM(tm), TAI(T)
39{}
40
41std::string AsmPrinter::getSectionForFunction(const Function &F) const {
42 return TAI->getTextSection();
43}
44
45
46/// SwitchToTextSection - Switch to the specified text section of the executable
47/// if we are not already in it!
48///
49void AsmPrinter::SwitchToTextSection(const char *NewSection,
50 const GlobalValue *GV) {
51 std::string NS;
52 if (GV && GV->hasSection())
53 NS = TAI->getSwitchToSectionDirective() + GV->getSection();
54 else
55 NS = NewSection;
56
57 // If we're already in this section, we're done.
58 if (CurrentSection == NS) return;
59
60 // Close the current section, if applicable.
61 if (TAI->getSectionEndDirectiveSuffix() && !CurrentSection.empty())
62 O << CurrentSection << TAI->getSectionEndDirectiveSuffix() << "\n";
63
64 CurrentSection = NS;
65
66 if (!CurrentSection.empty())
67 O << CurrentSection << TAI->getTextSectionStartSuffix() << '\n';
68}
69
70/// SwitchToDataSection - Switch to the specified data section of the executable
71/// if we are not already in it!
72///
73void AsmPrinter::SwitchToDataSection(const char *NewSection,
74 const GlobalValue *GV) {
75 std::string NS;
76 if (GV && GV->hasSection())
77 NS = TAI->getSwitchToSectionDirective() + GV->getSection();
78 else
79 NS = NewSection;
80
81 // If we're already in this section, we're done.
82 if (CurrentSection == NS) return;
83
84 // Close the current section, if applicable.
85 if (TAI->getSectionEndDirectiveSuffix() && !CurrentSection.empty())
86 O << CurrentSection << TAI->getSectionEndDirectiveSuffix() << "\n";
87
88 CurrentSection = NS;
89
90 if (!CurrentSection.empty())
91 O << CurrentSection << TAI->getDataSectionStartSuffix() << '\n';
92}
93
94
95bool AsmPrinter::doInitialization(Module &M) {
96 Mang = new Mangler(M, TAI->getGlobalPrefix());
97
98 if (!M.getModuleInlineAsm().empty())
99 O << TAI->getCommentString() << " Start of file scope inline assembly\n"
100 << M.getModuleInlineAsm()
101 << "\n" << TAI->getCommentString()
102 << " End of file scope inline assembly\n";
103
104 SwitchToDataSection(""); // Reset back to no section.
105
106 if (MachineModuleInfo *MMI = getAnalysisToUpdate<MachineModuleInfo>()) {
107 MMI->AnalyzeModule(M);
108 }
109
110 return false;
111}
112
113bool AsmPrinter::doFinalization(Module &M) {
114 if (TAI->getWeakRefDirective()) {
115 if (!ExtWeakSymbols.empty())
116 SwitchToDataSection("");
117
118 for (std::set<const GlobalValue*>::iterator i = ExtWeakSymbols.begin(),
119 e = ExtWeakSymbols.end(); i != e; ++i) {
120 const GlobalValue *GV = *i;
121 std::string Name = Mang->getValueName(GV);
122 O << TAI->getWeakRefDirective() << Name << "\n";
123 }
124 }
125
126 if (TAI->getSetDirective()) {
127 if (!M.alias_empty())
128 SwitchToTextSection(TAI->getTextSection());
129
130 O << "\n";
131 for (Module::const_alias_iterator I = M.alias_begin(), E = M.alias_end();
132 I!=E; ++I) {
133 std::string Name = Mang->getValueName(I);
134 std::string Target;
Anton Korobeynikov6d2c5062007-09-06 17:21:48 +0000135
136 const GlobalValue *GV = cast<GlobalValue>(I->getAliasedGlobal());
137 Target = Mang->getValueName(GV);
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000138
Anton Korobeynikov6d2c5062007-09-06 17:21:48 +0000139 if (I->hasExternalLinkage() || !TAI->getWeakRefDirective())
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000140 O << "\t.globl\t" << Name << "\n";
141 else if (I->hasWeakLinkage())
142 O << TAI->getWeakRefDirective() << Name << "\n";
143 else if (!I->hasInternalLinkage())
144 assert(0 && "Invalid alias linkage");
145
146 O << TAI->getSetDirective() << Name << ", " << Target << "\n";
Anton Korobeynikov6d2c5062007-09-06 17:21:48 +0000147
148 // If the aliasee has external weak linkage it can be referenced only by
149 // alias itself. In this case it can be not in ExtWeakSymbols list. Emit
150 // weak reference in such case.
151 if (GV->hasExternalWeakLinkage())
152 if (TAI->getWeakRefDirective())
153 O << TAI->getWeakRefDirective() << Target << "\n";
154 else
155 O << "\t.globl\t" << Target << "\n";
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000156 }
157 }
158
159 delete Mang; Mang = 0;
160 return false;
161}
162
163void AsmPrinter::SetupMachineFunction(MachineFunction &MF) {
164 // What's my mangled name?
165 CurrentFnName = Mang->getValueName(MF.getFunction());
166 IncrementFunctionNumber();
167}
168
169/// EmitConstantPool - Print to the current output stream assembly
170/// representations of the constants in the constant pool MCP. This is
171/// used to print out constants which have been "spilled to memory" by
172/// the code generator.
173///
174void AsmPrinter::EmitConstantPool(MachineConstantPool *MCP) {
175 const std::vector<MachineConstantPoolEntry> &CP = MCP->getConstants();
176 if (CP.empty()) return;
177
178 // Some targets require 4-, 8-, and 16- byte constant literals to be placed
179 // in special sections.
180 std::vector<std::pair<MachineConstantPoolEntry,unsigned> > FourByteCPs;
181 std::vector<std::pair<MachineConstantPoolEntry,unsigned> > EightByteCPs;
182 std::vector<std::pair<MachineConstantPoolEntry,unsigned> > SixteenByteCPs;
183 std::vector<std::pair<MachineConstantPoolEntry,unsigned> > OtherCPs;
184 std::vector<std::pair<MachineConstantPoolEntry,unsigned> > TargetCPs;
185 for (unsigned i = 0, e = CP.size(); i != e; ++i) {
186 MachineConstantPoolEntry CPE = CP[i];
187 const Type *Ty = CPE.getType();
188 if (TAI->getFourByteConstantSection() &&
189 TM.getTargetData()->getTypeSize(Ty) == 4)
190 FourByteCPs.push_back(std::make_pair(CPE, i));
191 else if (TAI->getEightByteConstantSection() &&
192 TM.getTargetData()->getTypeSize(Ty) == 8)
193 EightByteCPs.push_back(std::make_pair(CPE, i));
194 else if (TAI->getSixteenByteConstantSection() &&
195 TM.getTargetData()->getTypeSize(Ty) == 16)
196 SixteenByteCPs.push_back(std::make_pair(CPE, i));
197 else
198 OtherCPs.push_back(std::make_pair(CPE, i));
199 }
200
201 unsigned Alignment = MCP->getConstantPoolAlignment();
202 EmitConstantPool(Alignment, TAI->getFourByteConstantSection(), FourByteCPs);
203 EmitConstantPool(Alignment, TAI->getEightByteConstantSection(), EightByteCPs);
204 EmitConstantPool(Alignment, TAI->getSixteenByteConstantSection(),
205 SixteenByteCPs);
206 EmitConstantPool(Alignment, TAI->getConstantPoolSection(), OtherCPs);
207}
208
209void AsmPrinter::EmitConstantPool(unsigned Alignment, const char *Section,
210 std::vector<std::pair<MachineConstantPoolEntry,unsigned> > &CP) {
211 if (CP.empty()) return;
212
213 SwitchToDataSection(Section);
214 EmitAlignment(Alignment);
215 for (unsigned i = 0, e = CP.size(); i != e; ++i) {
216 O << TAI->getPrivateGlobalPrefix() << "CPI" << getFunctionNumber() << '_'
217 << CP[i].second << ":\t\t\t\t\t" << TAI->getCommentString() << " ";
218 WriteTypeSymbolic(O, CP[i].first.getType(), 0) << '\n';
219 if (CP[i].first.isMachineConstantPoolEntry())
220 EmitMachineConstantPoolValue(CP[i].first.Val.MachineCPVal);
221 else
222 EmitGlobalConstant(CP[i].first.Val.ConstVal);
223 if (i != e-1) {
224 const Type *Ty = CP[i].first.getType();
225 unsigned EntSize =
226 TM.getTargetData()->getTypeSize(Ty);
227 unsigned ValEnd = CP[i].first.getOffset() + EntSize;
228 // Emit inter-object padding for alignment.
229 EmitZeros(CP[i+1].first.getOffset()-ValEnd);
230 }
231 }
232}
233
234/// EmitJumpTableInfo - Print assembly representations of the jump tables used
235/// by the current function to the current output stream.
236///
237void AsmPrinter::EmitJumpTableInfo(MachineJumpTableInfo *MJTI,
238 MachineFunction &MF) {
239 const std::vector<MachineJumpTableEntry> &JT = MJTI->getJumpTables();
240 if (JT.empty()) return;
241 bool IsPic = TM.getRelocationModel() == Reloc::PIC_;
242
243 // Use JumpTableDirective otherwise honor the entry size from the jump table
244 // info.
245 const char *JTEntryDirective = TAI->getJumpTableDirective();
246 bool HadJTEntryDirective = JTEntryDirective != NULL;
247 if (!HadJTEntryDirective) {
248 JTEntryDirective = MJTI->getEntrySize() == 4 ?
249 TAI->getData32bitsDirective() : TAI->getData64bitsDirective();
250 }
251
252 // Pick the directive to use to print the jump table entries, and switch to
253 // the appropriate section.
254 TargetLowering *LoweringInfo = TM.getTargetLowering();
255
256 const char* JumpTableDataSection = TAI->getJumpTableDataSection();
257 if ((IsPic && !(LoweringInfo && LoweringInfo->usesGlobalOffsetTable())) ||
258 !JumpTableDataSection) {
259 // In PIC mode, we need to emit the jump table to the same section as the
260 // function body itself, otherwise the label differences won't make sense.
261 // We should also do if the section name is NULL.
262 const Function *F = MF.getFunction();
263 SwitchToTextSection(getSectionForFunction(*F).c_str(), F);
264 } else {
265 SwitchToDataSection(JumpTableDataSection);
266 }
267
268 EmitAlignment(Log2_32(MJTI->getAlignment()));
269
270 for (unsigned i = 0, e = JT.size(); i != e; ++i) {
271 const std::vector<MachineBasicBlock*> &JTBBs = JT[i].MBBs;
272
273 // If this jump table was deleted, ignore it.
274 if (JTBBs.empty()) continue;
275
276 // For PIC codegen, if possible we want to use the SetDirective to reduce
277 // the number of relocations the assembler will generate for the jump table.
278 // Set directives are all printed before the jump table itself.
279 std::set<MachineBasicBlock*> EmittedSets;
280 if (TAI->getSetDirective() && IsPic)
281 for (unsigned ii = 0, ee = JTBBs.size(); ii != ee; ++ii)
282 if (EmittedSets.insert(JTBBs[ii]).second)
283 printSetLabel(i, JTBBs[ii]);
284
285 // On some targets (e.g. darwin) we want to emit two consequtive labels
286 // before each jump table. The first label is never referenced, but tells
287 // the assembler and linker the extents of the jump table object. The
288 // second label is actually referenced by the code.
289 if (const char *JTLabelPrefix = TAI->getJumpTableSpecialLabelPrefix())
290 O << JTLabelPrefix << "JTI" << getFunctionNumber() << '_' << i << ":\n";
291
292 O << TAI->getPrivateGlobalPrefix() << "JTI" << getFunctionNumber()
293 << '_' << i << ":\n";
294
295 for (unsigned ii = 0, ee = JTBBs.size(); ii != ee; ++ii) {
296 O << JTEntryDirective << ' ';
297 // If we have emitted set directives for the jump table entries, print
298 // them rather than the entries themselves. If we're emitting PIC, then
299 // emit the table entries as differences between two text section labels.
300 // If we're emitting non-PIC code, then emit the entries as direct
301 // references to the target basic blocks.
302 if (!EmittedSets.empty()) {
303 O << TAI->getPrivateGlobalPrefix() << getFunctionNumber()
304 << '_' << i << "_set_" << JTBBs[ii]->getNumber();
305 } else if (IsPic) {
306 printBasicBlockLabel(JTBBs[ii], false, false);
307 // If the arch uses custom Jump Table directives, don't calc relative to
308 // JT
309 if (!HadJTEntryDirective)
310 O << '-' << TAI->getPrivateGlobalPrefix() << "JTI"
311 << getFunctionNumber() << '_' << i;
312 } else {
313 printBasicBlockLabel(JTBBs[ii], false, false);
314 }
315 O << '\n';
316 }
317 }
318}
319
320/// EmitSpecialLLVMGlobal - Check to see if the specified global is a
321/// special global used by LLVM. If so, emit it and return true, otherwise
322/// do nothing and return false.
323bool AsmPrinter::EmitSpecialLLVMGlobal(const GlobalVariable *GV) {
Andrew Lenharth61d35f52007-08-22 19:33:11 +0000324 if (GV->getName() == "llvm.used") {
325 if (TAI->getUsedDirective() != 0) // No need to emit this at all.
326 EmitLLVMUsedList(GV->getInitializer());
327 return true;
328 }
329
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000330 // Ignore debug and non-emitted data.
331 if (GV->getSection() == "llvm.metadata") return true;
332
333 if (!GV->hasAppendingLinkage()) return false;
334
335 assert(GV->hasInitializer() && "Not a special LLVM global!");
336
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000337 const TargetData *TD = TM.getTargetData();
338 unsigned Align = Log2_32(TD->getPointerPrefAlignment());
339 if (GV->getName() == "llvm.global_ctors" && GV->use_empty()) {
340 SwitchToDataSection(TAI->getStaticCtorsSection());
341 EmitAlignment(Align, 0);
342 EmitXXStructorList(GV->getInitializer());
343 return true;
344 }
345
346 if (GV->getName() == "llvm.global_dtors" && GV->use_empty()) {
347 SwitchToDataSection(TAI->getStaticDtorsSection());
348 EmitAlignment(Align, 0);
349 EmitXXStructorList(GV->getInitializer());
350 return true;
351 }
352
353 return false;
354}
355
356/// EmitLLVMUsedList - For targets that define a TAI::UsedDirective, mark each
357/// global in the specified llvm.used list as being used with this directive.
358void AsmPrinter::EmitLLVMUsedList(Constant *List) {
359 const char *Directive = TAI->getUsedDirective();
360
361 // Should be an array of 'sbyte*'.
362 ConstantArray *InitList = dyn_cast<ConstantArray>(List);
363 if (InitList == 0) return;
364
365 for (unsigned i = 0, e = InitList->getNumOperands(); i != e; ++i) {
366 O << Directive;
367 EmitConstantValueOnly(InitList->getOperand(i));
368 O << "\n";
369 }
370}
371
372/// EmitXXStructorList - Emit the ctor or dtor list. This just prints out the
373/// function pointers, ignoring the init priority.
374void AsmPrinter::EmitXXStructorList(Constant *List) {
375 // Should be an array of '{ int, void ()* }' structs. The first value is the
376 // init priority, which we ignore.
377 if (!isa<ConstantArray>(List)) return;
378 ConstantArray *InitList = cast<ConstantArray>(List);
379 for (unsigned i = 0, e = InitList->getNumOperands(); i != e; ++i)
380 if (ConstantStruct *CS = dyn_cast<ConstantStruct>(InitList->getOperand(i))){
381 if (CS->getNumOperands() != 2) return; // Not array of 2-element structs.
382
383 if (CS->getOperand(1)->isNullValue())
384 return; // Found a null terminator, exit printing.
385 // Emit the function pointer.
386 EmitGlobalConstant(CS->getOperand(1));
387 }
388}
389
390/// getGlobalLinkName - Returns the asm/link name of of the specified
391/// global variable. Should be overridden by each target asm printer to
392/// generate the appropriate value.
393const std::string AsmPrinter::getGlobalLinkName(const GlobalVariable *GV) const{
394 std::string LinkName;
395
396 if (isa<Function>(GV)) {
397 LinkName += TAI->getFunctionAddrPrefix();
398 LinkName += Mang->getValueName(GV);
399 LinkName += TAI->getFunctionAddrSuffix();
400 } else {
401 LinkName += TAI->getGlobalVarAddrPrefix();
402 LinkName += Mang->getValueName(GV);
403 LinkName += TAI->getGlobalVarAddrSuffix();
404 }
405
406 return LinkName;
407}
408
409/// EmitExternalGlobal - Emit the external reference to a global variable.
410/// Should be overridden if an indirect reference should be used.
411void AsmPrinter::EmitExternalGlobal(const GlobalVariable *GV) {
412 O << getGlobalLinkName(GV);
413}
414
415
416
417//===----------------------------------------------------------------------===//
418/// LEB 128 number encoding.
419
420/// PrintULEB128 - Print a series of hexidecimal values (separated by commas)
421/// representing an unsigned leb128 value.
422void AsmPrinter::PrintULEB128(unsigned Value) const {
423 do {
424 unsigned Byte = Value & 0x7f;
425 Value >>= 7;
426 if (Value) Byte |= 0x80;
427 O << "0x" << std::hex << Byte << std::dec;
428 if (Value) O << ", ";
429 } while (Value);
430}
431
432/// SizeULEB128 - Compute the number of bytes required for an unsigned leb128
433/// value.
434unsigned AsmPrinter::SizeULEB128(unsigned Value) {
435 unsigned Size = 0;
436 do {
437 Value >>= 7;
438 Size += sizeof(int8_t);
439 } while (Value);
440 return Size;
441}
442
443/// PrintSLEB128 - Print a series of hexidecimal values (separated by commas)
444/// representing a signed leb128 value.
445void AsmPrinter::PrintSLEB128(int Value) const {
446 int Sign = Value >> (8 * sizeof(Value) - 1);
447 bool IsMore;
448
449 do {
450 unsigned Byte = Value & 0x7f;
451 Value >>= 7;
452 IsMore = Value != Sign || ((Byte ^ Sign) & 0x40) != 0;
453 if (IsMore) Byte |= 0x80;
454 O << "0x" << std::hex << Byte << std::dec;
455 if (IsMore) O << ", ";
456 } while (IsMore);
457}
458
459/// SizeSLEB128 - Compute the number of bytes required for a signed leb128
460/// value.
461unsigned AsmPrinter::SizeSLEB128(int Value) {
462 unsigned Size = 0;
463 int Sign = Value >> (8 * sizeof(Value) - 1);
464 bool IsMore;
465
466 do {
467 unsigned Byte = Value & 0x7f;
468 Value >>= 7;
469 IsMore = Value != Sign || ((Byte ^ Sign) & 0x40) != 0;
470 Size += sizeof(int8_t);
471 } while (IsMore);
472 return Size;
473}
474
475//===--------------------------------------------------------------------===//
476// Emission and print routines
477//
478
479/// PrintHex - Print a value as a hexidecimal value.
480///
481void AsmPrinter::PrintHex(int Value) const {
482 O << "0x" << std::hex << Value << std::dec;
483}
484
485/// EOL - Print a newline character to asm stream. If a comment is present
486/// then it will be printed first. Comments should not contain '\n'.
487void AsmPrinter::EOL() const {
488 O << "\n";
489}
490void AsmPrinter::EOL(const std::string &Comment) const {
491 if (AsmVerbose && !Comment.empty()) {
492 O << "\t"
493 << TAI->getCommentString()
494 << " "
495 << Comment;
496 }
497 O << "\n";
498}
499
500/// EmitULEB128Bytes - Emit an assembler byte data directive to compose an
501/// unsigned leb128 value.
502void AsmPrinter::EmitULEB128Bytes(unsigned Value) const {
503 if (TAI->hasLEB128()) {
504 O << "\t.uleb128\t"
505 << Value;
506 } else {
507 O << TAI->getData8bitsDirective();
508 PrintULEB128(Value);
509 }
510}
511
512/// EmitSLEB128Bytes - print an assembler byte data directive to compose a
513/// signed leb128 value.
514void AsmPrinter::EmitSLEB128Bytes(int Value) const {
515 if (TAI->hasLEB128()) {
516 O << "\t.sleb128\t"
517 << Value;
518 } else {
519 O << TAI->getData8bitsDirective();
520 PrintSLEB128(Value);
521 }
522}
523
524/// EmitInt8 - Emit a byte directive and value.
525///
526void AsmPrinter::EmitInt8(int Value) const {
527 O << TAI->getData8bitsDirective();
528 PrintHex(Value & 0xFF);
529}
530
531/// EmitInt16 - Emit a short directive and value.
532///
533void AsmPrinter::EmitInt16(int Value) const {
534 O << TAI->getData16bitsDirective();
535 PrintHex(Value & 0xFFFF);
536}
537
538/// EmitInt32 - Emit a long directive and value.
539///
540void AsmPrinter::EmitInt32(int Value) const {
541 O << TAI->getData32bitsDirective();
542 PrintHex(Value);
543}
544
545/// EmitInt64 - Emit a long long directive and value.
546///
547void AsmPrinter::EmitInt64(uint64_t Value) const {
548 if (TAI->getData64bitsDirective()) {
549 O << TAI->getData64bitsDirective();
550 PrintHex(Value);
551 } else {
552 if (TM.getTargetData()->isBigEndian()) {
553 EmitInt32(unsigned(Value >> 32)); O << "\n";
554 EmitInt32(unsigned(Value));
555 } else {
556 EmitInt32(unsigned(Value)); O << "\n";
557 EmitInt32(unsigned(Value >> 32));
558 }
559 }
560}
561
562/// toOctal - Convert the low order bits of X into an octal digit.
563///
564static inline char toOctal(int X) {
565 return (X&7)+'0';
566}
567
568/// printStringChar - Print a char, escaped if necessary.
569///
570static void printStringChar(std::ostream &O, unsigned char C) {
571 if (C == '"') {
572 O << "\\\"";
573 } else if (C == '\\') {
574 O << "\\\\";
575 } else if (isprint(C)) {
576 O << C;
577 } else {
578 switch(C) {
579 case '\b': O << "\\b"; break;
580 case '\f': O << "\\f"; break;
581 case '\n': O << "\\n"; break;
582 case '\r': O << "\\r"; break;
583 case '\t': O << "\\t"; break;
584 default:
585 O << '\\';
586 O << toOctal(C >> 6);
587 O << toOctal(C >> 3);
588 O << toOctal(C >> 0);
589 break;
590 }
591 }
592}
593
594/// EmitString - Emit a string with quotes and a null terminator.
595/// Special characters are emitted properly.
596/// \literal (Eg. '\t') \endliteral
597void AsmPrinter::EmitString(const std::string &String) const {
598 const char* AscizDirective = TAI->getAscizDirective();
599 if (AscizDirective)
600 O << AscizDirective;
601 else
602 O << TAI->getAsciiDirective();
603 O << "\"";
604 for (unsigned i = 0, N = String.size(); i < N; ++i) {
605 unsigned char C = String[i];
606 printStringChar(O, C);
607 }
608 if (AscizDirective)
609 O << "\"";
610 else
611 O << "\\0\"";
612}
613
614
615//===----------------------------------------------------------------------===//
616
617// EmitAlignment - Emit an alignment directive to the specified power of
618// two boundary. For example, if you pass in 3 here, you will get an 8
619// byte alignment. If a global value is specified, and if that global has
620// an explicit alignment requested, it will unconditionally override the
621// alignment request. However, if ForcedAlignBits is specified, this value
622// has final say: the ultimate alignment will be the max of ForcedAlignBits
623// and the alignment computed with NumBits and the global.
624//
625// The algorithm is:
626// Align = NumBits;
627// if (GV && GV->hasalignment) Align = GV->getalignment();
628// Align = std::max(Align, ForcedAlignBits);
629//
630void AsmPrinter::EmitAlignment(unsigned NumBits, const GlobalValue *GV,
Evan Chengc1f41aa2007-07-25 23:35:07 +0000631 unsigned ForcedAlignBits, bool UseFillExpr,
632 unsigned FillValue) const {
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000633 if (GV && GV->getAlignment())
634 NumBits = Log2_32(GV->getAlignment());
635 NumBits = std::max(NumBits, ForcedAlignBits);
636
637 if (NumBits == 0) return; // No need to emit alignment.
638 if (TAI->getAlignmentIsInBytes()) NumBits = 1 << NumBits;
Evan Chengc1f41aa2007-07-25 23:35:07 +0000639 O << TAI->getAlignDirective() << NumBits;
640 if (UseFillExpr) O << ",0x" << std::hex << FillValue << std::dec;
641 O << "\n";
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000642}
643
644
645/// EmitZeros - Emit a block of zeros.
646///
647void AsmPrinter::EmitZeros(uint64_t NumZeros) const {
648 if (NumZeros) {
649 if (TAI->getZeroDirective()) {
650 O << TAI->getZeroDirective() << NumZeros;
651 if (TAI->getZeroDirectiveSuffix())
652 O << TAI->getZeroDirectiveSuffix();
653 O << "\n";
654 } else {
655 for (; NumZeros; --NumZeros)
656 O << TAI->getData8bitsDirective() << "0\n";
657 }
658 }
659}
660
661// Print out the specified constant, without a storage class. Only the
662// constants valid in constant expressions can occur here.
663void AsmPrinter::EmitConstantValueOnly(const Constant *CV) {
664 if (CV->isNullValue() || isa<UndefValue>(CV))
665 O << "0";
666 else if (const ConstantInt *CI = dyn_cast<ConstantInt>(CV)) {
667 O << CI->getZExtValue();
668 } else if (const GlobalValue *GV = dyn_cast<GlobalValue>(CV)) {
669 // This is a constant address for a global variable or function. Use the
670 // name of the variable or function as the address value, possibly
671 // decorating it with GlobalVarAddrPrefix/Suffix or
672 // FunctionAddrPrefix/Suffix (these all default to "" )
673 if (isa<Function>(GV)) {
674 O << TAI->getFunctionAddrPrefix()
675 << Mang->getValueName(GV)
676 << TAI->getFunctionAddrSuffix();
677 } else {
678 O << TAI->getGlobalVarAddrPrefix()
679 << Mang->getValueName(GV)
680 << TAI->getGlobalVarAddrSuffix();
681 }
682 } else if (const ConstantExpr *CE = dyn_cast<ConstantExpr>(CV)) {
683 const TargetData *TD = TM.getTargetData();
684 unsigned Opcode = CE->getOpcode();
685 switch (Opcode) {
686 case Instruction::GetElementPtr: {
687 // generate a symbolic expression for the byte address
688 const Constant *ptrVal = CE->getOperand(0);
689 SmallVector<Value*, 8> idxVec(CE->op_begin()+1, CE->op_end());
690 if (int64_t Offset = TD->getIndexedOffset(ptrVal->getType(), &idxVec[0],
691 idxVec.size())) {
692 if (Offset)
693 O << "(";
694 EmitConstantValueOnly(ptrVal);
695 if (Offset > 0)
696 O << ") + " << Offset;
697 else if (Offset < 0)
698 O << ") - " << -Offset;
699 } else {
700 EmitConstantValueOnly(ptrVal);
701 }
702 break;
703 }
704 case Instruction::Trunc:
705 case Instruction::ZExt:
706 case Instruction::SExt:
707 case Instruction::FPTrunc:
708 case Instruction::FPExt:
709 case Instruction::UIToFP:
710 case Instruction::SIToFP:
711 case Instruction::FPToUI:
712 case Instruction::FPToSI:
713 assert(0 && "FIXME: Don't yet support this kind of constant cast expr");
714 break;
715 case Instruction::BitCast:
716 return EmitConstantValueOnly(CE->getOperand(0));
717
718 case Instruction::IntToPtr: {
719 // Handle casts to pointers by changing them into casts to the appropriate
720 // integer type. This promotes constant folding and simplifies this code.
721 Constant *Op = CE->getOperand(0);
722 Op = ConstantExpr::getIntegerCast(Op, TD->getIntPtrType(), false/*ZExt*/);
723 return EmitConstantValueOnly(Op);
724 }
725
726
727 case Instruction::PtrToInt: {
728 // Support only foldable casts to/from pointers that can be eliminated by
729 // changing the pointer to the appropriately sized integer type.
730 Constant *Op = CE->getOperand(0);
731 const Type *Ty = CE->getType();
732
733 // We can emit the pointer value into this slot if the slot is an
734 // integer slot greater or equal to the size of the pointer.
735 if (Ty->isInteger() &&
736 TD->getTypeSize(Ty) >= TD->getTypeSize(Op->getType()))
737 return EmitConstantValueOnly(Op);
738
739 assert(0 && "FIXME: Don't yet support this kind of constant cast expr");
740 EmitConstantValueOnly(Op);
741 break;
742 }
743 case Instruction::Add:
744 case Instruction::Sub:
745 O << "(";
746 EmitConstantValueOnly(CE->getOperand(0));
747 O << (Opcode==Instruction::Add ? ") + (" : ") - (");
748 EmitConstantValueOnly(CE->getOperand(1));
749 O << ")";
750 break;
751 default:
752 assert(0 && "Unsupported operator!");
753 }
754 } else {
755 assert(0 && "Unknown constant value!");
756 }
757}
758
759/// printAsCString - Print the specified array as a C compatible string, only if
760/// the predicate isString is true.
761///
762static void printAsCString(std::ostream &O, const ConstantArray *CVA,
763 unsigned LastElt) {
764 assert(CVA->isString() && "Array is not string compatible!");
765
766 O << "\"";
767 for (unsigned i = 0; i != LastElt; ++i) {
768 unsigned char C =
769 (unsigned char)cast<ConstantInt>(CVA->getOperand(i))->getZExtValue();
770 printStringChar(O, C);
771 }
772 O << "\"";
773}
774
775/// EmitString - Emit a zero-byte-terminated string constant.
776///
777void AsmPrinter::EmitString(const ConstantArray *CVA) const {
778 unsigned NumElts = CVA->getNumOperands();
779 if (TAI->getAscizDirective() && NumElts &&
780 cast<ConstantInt>(CVA->getOperand(NumElts-1))->getZExtValue() == 0) {
781 O << TAI->getAscizDirective();
782 printAsCString(O, CVA, NumElts-1);
783 } else {
784 O << TAI->getAsciiDirective();
785 printAsCString(O, CVA, NumElts);
786 }
787 O << "\n";
788}
789
790/// EmitGlobalConstant - Print a general LLVM constant to the .s file.
791///
792void AsmPrinter::EmitGlobalConstant(const Constant *CV) {
793 const TargetData *TD = TM.getTargetData();
794
795 if (CV->isNullValue() || isa<UndefValue>(CV)) {
796 EmitZeros(TD->getTypeSize(CV->getType()));
797 return;
798 } else if (const ConstantArray *CVA = dyn_cast<ConstantArray>(CV)) {
799 if (CVA->isString()) {
800 EmitString(CVA);
801 } else { // Not a string. Print the values in successive locations
802 for (unsigned i = 0, e = CVA->getNumOperands(); i != e; ++i)
803 EmitGlobalConstant(CVA->getOperand(i));
804 }
805 return;
806 } else if (const ConstantStruct *CVS = dyn_cast<ConstantStruct>(CV)) {
807 // Print the fields in successive locations. Pad to align if needed!
808 const StructLayout *cvsLayout = TD->getStructLayout(CVS->getType());
809 uint64_t sizeSoFar = 0;
810 for (unsigned i = 0, e = CVS->getNumOperands(); i != e; ++i) {
811 const Constant* field = CVS->getOperand(i);
812
813 // Check if padding is needed and insert one or more 0s.
814 uint64_t fieldSize = TD->getTypeSize(field->getType());
815 uint64_t padSize = ((i == e-1? cvsLayout->getSizeInBytes()
816 : cvsLayout->getElementOffset(i+1))
817 - cvsLayout->getElementOffset(i)) - fieldSize;
818 sizeSoFar += fieldSize + padSize;
819
820 // Now print the actual field value
821 EmitGlobalConstant(field);
822
823 // Insert the field padding unless it's zero bytes...
824 EmitZeros(padSize);
825 }
826 assert(sizeSoFar == cvsLayout->getSizeInBytes() &&
827 "Layout of constant struct may be incorrect!");
828 return;
829 } else if (const ConstantFP *CFP = dyn_cast<ConstantFP>(CV)) {
830 // FP Constants are printed as integer constants to avoid losing
831 // precision...
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000832 if (CFP->getType() == Type::DoubleTy) {
Dale Johannesen1616e902007-09-11 18:32:33 +0000833 double Val = CFP->getValueAPF().convertToDouble(); // for comment only
Dale Johannesenfbd9cda2007-09-12 03:30:33 +0000834 uint64_t i = CFP->getValueAPF().convertToAPInt().getZExtValue();
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000835 if (TAI->getData64bitsDirective())
Dale Johannesen1616e902007-09-11 18:32:33 +0000836 O << TAI->getData64bitsDirective() << i << "\t"
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000837 << TAI->getCommentString() << " double value: " << Val << "\n";
838 else if (TD->isBigEndian()) {
Dale Johannesen1616e902007-09-11 18:32:33 +0000839 O << TAI->getData32bitsDirective() << unsigned(i >> 32)
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000840 << "\t" << TAI->getCommentString()
841 << " double most significant word " << Val << "\n";
Dale Johannesen1616e902007-09-11 18:32:33 +0000842 O << TAI->getData32bitsDirective() << unsigned(i)
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000843 << "\t" << TAI->getCommentString()
844 << " double least significant word " << Val << "\n";
845 } else {
Dale Johannesen1616e902007-09-11 18:32:33 +0000846 O << TAI->getData32bitsDirective() << unsigned(i)
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000847 << "\t" << TAI->getCommentString()
848 << " double least significant word " << Val << "\n";
Dale Johannesen1616e902007-09-11 18:32:33 +0000849 O << TAI->getData32bitsDirective() << unsigned(i >> 32)
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000850 << "\t" << TAI->getCommentString()
851 << " double most significant word " << Val << "\n";
852 }
853 return;
Dale Johannesenfbd9cda2007-09-12 03:30:33 +0000854 } else if (CFP->getType() == Type::FloatTy) {
Dale Johannesen1616e902007-09-11 18:32:33 +0000855 float Val = CFP->getValueAPF().convertToFloat(); // for comment only
856 O << TAI->getData32bitsDirective()
Dale Johannesenfbd9cda2007-09-12 03:30:33 +0000857 << CFP->getValueAPF().convertToAPInt().getZExtValue()
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000858 << "\t" << TAI->getCommentString() << " float " << Val << "\n";
859 return;
Dale Johannesenfbd9cda2007-09-12 03:30:33 +0000860 } else if (CFP->getType() == Type::X86_FP80Ty) {
861 // all long double variants are printed as hex
862 const uint64_t *p = CFP->getValueAPF().convertToAPInt().getRawData();
863 if (TD->isBigEndian()) {
864 O << TAI->getData16bitsDirective() << uint16_t(p[0] >> 48)
865 << "\t" << TAI->getCommentString()
866 << " long double most significant halfword\n";
867 O << TAI->getData16bitsDirective() << uint16_t(p[0] >> 32)
868 << "\t" << TAI->getCommentString()
869 << " long double next halfword\n";
870 O << TAI->getData16bitsDirective() << uint16_t(p[0] >> 16)
871 << "\t" << TAI->getCommentString()
872 << " long double next halfword\n";
873 O << TAI->getData16bitsDirective() << uint16_t(p[0])
874 << "\t" << TAI->getCommentString()
875 << " long double next halfword\n";
876 O << TAI->getData16bitsDirective() << uint16_t(p[1])
877 << "\t" << TAI->getCommentString()
878 << " long double least significant halfword\n";
879 } else {
880 O << TAI->getData16bitsDirective() << uint16_t(p[1])
881 << "\t" << TAI->getCommentString()
882 << " long double least significant halfword\n";
883 O << TAI->getData16bitsDirective() << uint16_t(p[0])
884 << "\t" << TAI->getCommentString()
885 << " long double next halfword\n";
886 O << TAI->getData16bitsDirective() << uint16_t(p[0] >> 16)
887 << "\t" << TAI->getCommentString()
888 << " long double next halfword\n";
889 O << TAI->getData16bitsDirective() << uint16_t(p[0] >> 32)
890 << "\t" << TAI->getCommentString()
891 << " long double next halfword\n";
892 O << TAI->getData16bitsDirective() << uint16_t(p[0] >> 48)
893 << "\t" << TAI->getCommentString()
894 << " long double most significant halfword\n";
895 }
896 return;
897 } else assert(0 && "Floating point constant type not handled");
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000898 } else if (CV->getType() == Type::Int64Ty) {
899 if (const ConstantInt *CI = dyn_cast<ConstantInt>(CV)) {
900 uint64_t Val = CI->getZExtValue();
901
902 if (TAI->getData64bitsDirective())
903 O << TAI->getData64bitsDirective() << Val << "\n";
904 else if (TD->isBigEndian()) {
905 O << TAI->getData32bitsDirective() << unsigned(Val >> 32)
906 << "\t" << TAI->getCommentString()
907 << " Double-word most significant word " << Val << "\n";
908 O << TAI->getData32bitsDirective() << unsigned(Val)
909 << "\t" << TAI->getCommentString()
910 << " Double-word least significant word " << Val << "\n";
911 } else {
912 O << TAI->getData32bitsDirective() << unsigned(Val)
913 << "\t" << TAI->getCommentString()
914 << " Double-word least significant word " << Val << "\n";
915 O << TAI->getData32bitsDirective() << unsigned(Val >> 32)
916 << "\t" << TAI->getCommentString()
917 << " Double-word most significant word " << Val << "\n";
918 }
919 return;
920 }
921 } else if (const ConstantVector *CP = dyn_cast<ConstantVector>(CV)) {
922 const VectorType *PTy = CP->getType();
923
924 for (unsigned I = 0, E = PTy->getNumElements(); I < E; ++I)
925 EmitGlobalConstant(CP->getOperand(I));
926
927 return;
928 }
929
930 const Type *type = CV->getType();
931 printDataDirective(type);
932 EmitConstantValueOnly(CV);
933 O << "\n";
934}
935
936void
937AsmPrinter::EmitMachineConstantPoolValue(MachineConstantPoolValue *MCPV) {
938 // Target doesn't support this yet!
939 abort();
940}
941
942/// PrintSpecial - Print information related to the specified machine instr
943/// that is independent of the operand, and may be independent of the instr
944/// itself. This can be useful for portably encoding the comment character
945/// or other bits of target-specific knowledge into the asmstrings. The
946/// syntax used is ${:comment}. Targets can override this to add support
947/// for their own strange codes.
948void AsmPrinter::PrintSpecial(const MachineInstr *MI, const char *Code) {
949 if (!strcmp(Code, "private")) {
950 O << TAI->getPrivateGlobalPrefix();
951 } else if (!strcmp(Code, "comment")) {
952 O << TAI->getCommentString();
953 } else if (!strcmp(Code, "uid")) {
954 // Assign a unique ID to this machine instruction.
955 static const MachineInstr *LastMI = 0;
956 static const Function *F = 0;
957 static unsigned Counter = 0U-1;
958
959 // Comparing the address of MI isn't sufficient, because machineinstrs may
960 // be allocated to the same address across functions.
961 const Function *ThisF = MI->getParent()->getParent()->getFunction();
962
963 // If this is a new machine instruction, bump the counter.
964 if (LastMI != MI || F != ThisF) {
965 ++Counter;
966 LastMI = MI;
967 F = ThisF;
968 }
969 O << Counter;
970 } else {
971 cerr << "Unknown special formatter '" << Code
972 << "' for machine instr: " << *MI;
973 exit(1);
974 }
975}
976
977
978/// printInlineAsm - This method formats and prints the specified machine
979/// instruction that is an inline asm.
980void AsmPrinter::printInlineAsm(const MachineInstr *MI) const {
981 unsigned NumOperands = MI->getNumOperands();
982
983 // Count the number of register definitions.
984 unsigned NumDefs = 0;
Dan Gohman38a9a9f2007-09-14 20:33:02 +0000985 for (; MI->getOperand(NumDefs).isRegister() && MI->getOperand(NumDefs).isDef();
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000986 ++NumDefs)
987 assert(NumDefs != NumOperands-1 && "No asm string?");
988
989 assert(MI->getOperand(NumDefs).isExternalSymbol() && "No asm string?");
990
991 // Disassemble the AsmStr, printing out the literal pieces, the operands, etc.
992 const char *AsmStr = MI->getOperand(NumDefs).getSymbolName();
993
994 // If this asmstr is empty, don't bother printing the #APP/#NOAPP markers.
995 if (AsmStr[0] == 0) {
996 O << "\n"; // Tab already printed, avoid double indenting next instr.
997 return;
998 }
999
1000 O << TAI->getInlineAsmStart() << "\n\t";
1001
1002 // The variant of the current asmprinter.
1003 int AsmPrinterVariant = TAI->getAssemblerDialect();
1004
1005 int CurVariant = -1; // The number of the {.|.|.} region we are in.
1006 const char *LastEmitted = AsmStr; // One past the last character emitted.
1007
1008 while (*LastEmitted) {
1009 switch (*LastEmitted) {
1010 default: {
1011 // Not a special case, emit the string section literally.
1012 const char *LiteralEnd = LastEmitted+1;
1013 while (*LiteralEnd && *LiteralEnd != '{' && *LiteralEnd != '|' &&
1014 *LiteralEnd != '}' && *LiteralEnd != '$' && *LiteralEnd != '\n')
1015 ++LiteralEnd;
1016 if (CurVariant == -1 || CurVariant == AsmPrinterVariant)
1017 O.write(LastEmitted, LiteralEnd-LastEmitted);
1018 LastEmitted = LiteralEnd;
1019 break;
1020 }
1021 case '\n':
1022 ++LastEmitted; // Consume newline character.
1023 O << "\n"; // Indent code with newline.
1024 break;
1025 case '$': {
1026 ++LastEmitted; // Consume '$' character.
1027 bool Done = true;
1028
1029 // Handle escapes.
1030 switch (*LastEmitted) {
1031 default: Done = false; break;
1032 case '$': // $$ -> $
1033 if (CurVariant == -1 || CurVariant == AsmPrinterVariant)
1034 O << '$';
1035 ++LastEmitted; // Consume second '$' character.
1036 break;
1037 case '(': // $( -> same as GCC's { character.
1038 ++LastEmitted; // Consume '(' character.
1039 if (CurVariant != -1) {
1040 cerr << "Nested variants found in inline asm string: '"
1041 << AsmStr << "'\n";
1042 exit(1);
1043 }
1044 CurVariant = 0; // We're in the first variant now.
1045 break;
1046 case '|':
1047 ++LastEmitted; // consume '|' character.
1048 if (CurVariant == -1) {
1049 cerr << "Found '|' character outside of variant in inline asm "
1050 << "string: '" << AsmStr << "'\n";
1051 exit(1);
1052 }
1053 ++CurVariant; // We're in the next variant.
1054 break;
1055 case ')': // $) -> same as GCC's } char.
1056 ++LastEmitted; // consume ')' character.
1057 if (CurVariant == -1) {
1058 cerr << "Found '}' character outside of variant in inline asm "
1059 << "string: '" << AsmStr << "'\n";
1060 exit(1);
1061 }
1062 CurVariant = -1;
1063 break;
1064 }
1065 if (Done) break;
1066
1067 bool HasCurlyBraces = false;
1068 if (*LastEmitted == '{') { // ${variable}
1069 ++LastEmitted; // Consume '{' character.
1070 HasCurlyBraces = true;
1071 }
1072
1073 const char *IDStart = LastEmitted;
1074 char *IDEnd;
1075 errno = 0;
1076 long Val = strtol(IDStart, &IDEnd, 10); // We only accept numbers for IDs.
1077 if (!isdigit(*IDStart) || (Val == 0 && errno == EINVAL)) {
1078 cerr << "Bad $ operand number in inline asm string: '"
1079 << AsmStr << "'\n";
1080 exit(1);
1081 }
1082 LastEmitted = IDEnd;
1083
1084 char Modifier[2] = { 0, 0 };
1085
1086 if (HasCurlyBraces) {
1087 // If we have curly braces, check for a modifier character. This
1088 // supports syntax like ${0:u}, which correspond to "%u0" in GCC asm.
1089 if (*LastEmitted == ':') {
1090 ++LastEmitted; // Consume ':' character.
1091 if (*LastEmitted == 0) {
1092 cerr << "Bad ${:} expression in inline asm string: '"
1093 << AsmStr << "'\n";
1094 exit(1);
1095 }
1096
1097 Modifier[0] = *LastEmitted;
1098 ++LastEmitted; // Consume modifier character.
1099 }
1100
1101 if (*LastEmitted != '}') {
1102 cerr << "Bad ${} expression in inline asm string: '"
1103 << AsmStr << "'\n";
1104 exit(1);
1105 }
1106 ++LastEmitted; // Consume '}' character.
1107 }
1108
1109 if ((unsigned)Val >= NumOperands-1) {
1110 cerr << "Invalid $ operand number in inline asm string: '"
1111 << AsmStr << "'\n";
1112 exit(1);
1113 }
1114
1115 // Okay, we finally have a value number. Ask the target to print this
1116 // operand!
1117 if (CurVariant == -1 || CurVariant == AsmPrinterVariant) {
1118 unsigned OpNo = 1;
1119
1120 bool Error = false;
1121
1122 // Scan to find the machine operand number for the operand.
1123 for (; Val; --Val) {
1124 if (OpNo >= MI->getNumOperands()) break;
1125 unsigned OpFlags = MI->getOperand(OpNo).getImmedValue();
1126 OpNo += (OpFlags >> 3) + 1;
1127 }
1128
1129 if (OpNo >= MI->getNumOperands()) {
1130 Error = true;
1131 } else {
1132 unsigned OpFlags = MI->getOperand(OpNo).getImmedValue();
1133 ++OpNo; // Skip over the ID number.
1134
1135 AsmPrinter *AP = const_cast<AsmPrinter*>(this);
1136 if ((OpFlags & 7) == 4 /*ADDR MODE*/) {
1137 Error = AP->PrintAsmMemoryOperand(MI, OpNo, AsmPrinterVariant,
1138 Modifier[0] ? Modifier : 0);
1139 } else {
1140 Error = AP->PrintAsmOperand(MI, OpNo, AsmPrinterVariant,
1141 Modifier[0] ? Modifier : 0);
1142 }
1143 }
1144 if (Error) {
1145 cerr << "Invalid operand found in inline asm: '"
1146 << AsmStr << "'\n";
1147 MI->dump();
1148 exit(1);
1149 }
1150 }
1151 break;
1152 }
1153 }
1154 }
1155 O << "\n\t" << TAI->getInlineAsmEnd() << "\n";
1156}
1157
1158/// printLabel - This method prints a local label used by debug and
1159/// exception handling tables.
1160void AsmPrinter::printLabel(const MachineInstr *MI) const {
1161 O << "\n"
1162 << TAI->getPrivateGlobalPrefix()
1163 << "label"
1164 << MI->getOperand(0).getImmedValue()
1165 << ":\n";
1166}
1167
1168/// PrintAsmOperand - Print the specified operand of MI, an INLINEASM
1169/// instruction, using the specified assembler variant. Targets should
1170/// overried this to format as appropriate.
1171bool AsmPrinter::PrintAsmOperand(const MachineInstr *MI, unsigned OpNo,
1172 unsigned AsmVariant, const char *ExtraCode) {
1173 // Target doesn't support this yet!
1174 return true;
1175}
1176
1177bool AsmPrinter::PrintAsmMemoryOperand(const MachineInstr *MI, unsigned OpNo,
1178 unsigned AsmVariant,
1179 const char *ExtraCode) {
1180 // Target doesn't support this yet!
1181 return true;
1182}
1183
1184/// printBasicBlockLabel - This method prints the label for the specified
1185/// MachineBasicBlock
1186void AsmPrinter::printBasicBlockLabel(const MachineBasicBlock *MBB,
1187 bool printColon,
1188 bool printComment) const {
1189 O << TAI->getPrivateGlobalPrefix() << "BB" << FunctionNumber << "_"
1190 << MBB->getNumber();
1191 if (printColon)
1192 O << ':';
1193 if (printComment && MBB->getBasicBlock())
Dan Gohman0912cda2007-07-30 15:06:25 +00001194 O << '\t' << TAI->getCommentString() << ' '
1195 << MBB->getBasicBlock()->getName();
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001196}
1197
1198/// printSetLabel - This method prints a set label for the specified
1199/// MachineBasicBlock
1200void AsmPrinter::printSetLabel(unsigned uid,
1201 const MachineBasicBlock *MBB) const {
1202 if (!TAI->getSetDirective())
1203 return;
1204
1205 O << TAI->getSetDirective() << ' ' << TAI->getPrivateGlobalPrefix()
1206 << getFunctionNumber() << '_' << uid << "_set_" << MBB->getNumber() << ',';
1207 printBasicBlockLabel(MBB, false, false);
1208 O << '-' << TAI->getPrivateGlobalPrefix() << "JTI" << getFunctionNumber()
1209 << '_' << uid << '\n';
1210}
1211
1212void AsmPrinter::printSetLabel(unsigned uid, unsigned uid2,
1213 const MachineBasicBlock *MBB) const {
1214 if (!TAI->getSetDirective())
1215 return;
1216
1217 O << TAI->getSetDirective() << ' ' << TAI->getPrivateGlobalPrefix()
1218 << getFunctionNumber() << '_' << uid << '_' << uid2
1219 << "_set_" << MBB->getNumber() << ',';
1220 printBasicBlockLabel(MBB, false, false);
1221 O << '-' << TAI->getPrivateGlobalPrefix() << "JTI" << getFunctionNumber()
1222 << '_' << uid << '_' << uid2 << '\n';
1223}
1224
1225/// printDataDirective - This method prints the asm directive for the
1226/// specified type.
1227void AsmPrinter::printDataDirective(const Type *type) {
1228 const TargetData *TD = TM.getTargetData();
1229 switch (type->getTypeID()) {
1230 case Type::IntegerTyID: {
1231 unsigned BitWidth = cast<IntegerType>(type)->getBitWidth();
1232 if (BitWidth <= 8)
1233 O << TAI->getData8bitsDirective();
1234 else if (BitWidth <= 16)
1235 O << TAI->getData16bitsDirective();
1236 else if (BitWidth <= 32)
1237 O << TAI->getData32bitsDirective();
1238 else if (BitWidth <= 64) {
1239 assert(TAI->getData64bitsDirective() &&
1240 "Target cannot handle 64-bit constant exprs!");
1241 O << TAI->getData64bitsDirective();
1242 }
1243 break;
1244 }
1245 case Type::PointerTyID:
1246 if (TD->getPointerSize() == 8) {
1247 assert(TAI->getData64bitsDirective() &&
1248 "Target cannot handle 64-bit pointer exprs!");
1249 O << TAI->getData64bitsDirective();
1250 } else {
1251 O << TAI->getData32bitsDirective();
1252 }
1253 break;
1254 case Type::FloatTyID: case Type::DoubleTyID:
1255 assert (0 && "Should have already output floating point constant.");
1256 default:
1257 assert (0 && "Can't handle printing this type of thing");
1258 break;
1259 }
1260}
1261