1 //===-- LTOModule.cpp - LLVM Link Time Optimizer --------------------------===//
2 //
3 // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions.
4 // See https://llvm.org/LICENSE.txt for license information.
5 // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
6 //
7 //===----------------------------------------------------------------------===//
8 //
9 // This file implements the Link Time Optimization library. This library is
10 // intended to be used by linker to optimize code at link time.
11 //
12 //===----------------------------------------------------------------------===//
13
14 #include "llvm/LTO/legacy/LTOModule.h"
15 #include "llvm/Bitcode/BitcodeReader.h"
16 #include "llvm/CodeGen/TargetSubtargetInfo.h"
17 #include "llvm/IR/Constants.h"
18 #include "llvm/IR/LLVMContext.h"
19 #include "llvm/IR/Mangler.h"
20 #include "llvm/IR/Metadata.h"
21 #include "llvm/IR/Module.h"
22 #include "llvm/MC/MCExpr.h"
23 #include "llvm/MC/MCInst.h"
24 #include "llvm/MC/MCSection.h"
25 #include "llvm/MC/MCSymbol.h"
26 #include "llvm/MC/TargetRegistry.h"
27 #include "llvm/Object/IRObjectFile.h"
28 #include "llvm/Object/MachO.h"
29 #include "llvm/Object/ObjectFile.h"
30 #include "llvm/Support/FileSystem.h"
31 #include "llvm/Support/MemoryBuffer.h"
32 #include "llvm/Support/SourceMgr.h"
33 #include "llvm/Target/TargetLoweringObjectFile.h"
34 #include "llvm/TargetParser/Host.h"
35 #include "llvm/TargetParser/SubtargetFeature.h"
36 #include "llvm/TargetParser/Triple.h"
37 #include "llvm/Transforms/Utils/GlobalStatus.h"
38 #include <system_error>
39 using namespace llvm;
40 using namespace llvm::object;
41
LTOModule(std::unique_ptr<Module> M,MemoryBufferRef MBRef,llvm::TargetMachine * TM)42 LTOModule::LTOModule(std::unique_ptr<Module> M, MemoryBufferRef MBRef,
43 llvm::TargetMachine *TM)
44 : Mod(std::move(M)), MBRef(MBRef), _target(TM) {
45 assert(_target && "target machine is null");
46 SymTab.addModule(Mod.get());
47 }
48
49 LTOModule::~LTOModule() = default;
50
51 /// isBitcodeFile - Returns 'true' if the file (or memory contents) is LLVM
52 /// bitcode.
isBitcodeFile(const void * Mem,size_t Length)53 bool LTOModule::isBitcodeFile(const void *Mem, size_t Length) {
54 Expected<MemoryBufferRef> BCData = IRObjectFile::findBitcodeInMemBuffer(
55 MemoryBufferRef(StringRef((const char *)Mem, Length), "<mem>"));
56 return !errorToBool(BCData.takeError());
57 }
58
isBitcodeFile(StringRef Path)59 bool LTOModule::isBitcodeFile(StringRef Path) {
60 ErrorOr<std::unique_ptr<MemoryBuffer>> BufferOrErr =
61 MemoryBuffer::getFile(Path);
62 if (!BufferOrErr)
63 return false;
64
65 Expected<MemoryBufferRef> BCData = IRObjectFile::findBitcodeInMemBuffer(
66 BufferOrErr.get()->getMemBufferRef());
67 return !errorToBool(BCData.takeError());
68 }
69
isThinLTO()70 bool LTOModule::isThinLTO() {
71 Expected<BitcodeLTOInfo> Result = getBitcodeLTOInfo(MBRef);
72 if (!Result) {
73 logAllUnhandledErrors(Result.takeError(), errs());
74 return false;
75 }
76 return Result->IsThinLTO;
77 }
78
isBitcodeForTarget(MemoryBuffer * Buffer,StringRef TriplePrefix)79 bool LTOModule::isBitcodeForTarget(MemoryBuffer *Buffer,
80 StringRef TriplePrefix) {
81 Expected<MemoryBufferRef> BCOrErr =
82 IRObjectFile::findBitcodeInMemBuffer(Buffer->getMemBufferRef());
83 if (errorToBool(BCOrErr.takeError()))
84 return false;
85 LLVMContext Context;
86 ErrorOr<std::string> TripleOrErr =
87 expectedToErrorOrAndEmitErrors(Context, getBitcodeTargetTriple(*BCOrErr));
88 if (!TripleOrErr)
89 return false;
90 return StringRef(*TripleOrErr).starts_with(TriplePrefix);
91 }
92
getProducerString(MemoryBuffer * Buffer)93 std::string LTOModule::getProducerString(MemoryBuffer *Buffer) {
94 Expected<MemoryBufferRef> BCOrErr =
95 IRObjectFile::findBitcodeInMemBuffer(Buffer->getMemBufferRef());
96 if (errorToBool(BCOrErr.takeError()))
97 return "";
98 LLVMContext Context;
99 ErrorOr<std::string> ProducerOrErr = expectedToErrorOrAndEmitErrors(
100 Context, getBitcodeProducerString(*BCOrErr));
101 if (!ProducerOrErr)
102 return "";
103 return *ProducerOrErr;
104 }
105
106 ErrorOr<std::unique_ptr<LTOModule>>
createFromFile(LLVMContext & Context,StringRef path,const TargetOptions & options)107 LTOModule::createFromFile(LLVMContext &Context, StringRef path,
108 const TargetOptions &options) {
109 ErrorOr<std::unique_ptr<MemoryBuffer>> BufferOrErr =
110 MemoryBuffer::getFile(path);
111 if (std::error_code EC = BufferOrErr.getError()) {
112 Context.emitError(EC.message());
113 return EC;
114 }
115 std::unique_ptr<MemoryBuffer> Buffer = std::move(BufferOrErr.get());
116 return makeLTOModule(Buffer->getMemBufferRef(), options, Context,
117 /* ShouldBeLazy*/ false);
118 }
119
120 ErrorOr<std::unique_ptr<LTOModule>>
createFromOpenFile(LLVMContext & Context,int fd,StringRef path,size_t size,const TargetOptions & options)121 LTOModule::createFromOpenFile(LLVMContext &Context, int fd, StringRef path,
122 size_t size, const TargetOptions &options) {
123 return createFromOpenFileSlice(Context, fd, path, size, 0, options);
124 }
125
126 ErrorOr<std::unique_ptr<LTOModule>>
createFromOpenFileSlice(LLVMContext & Context,int fd,StringRef path,size_t map_size,off_t offset,const TargetOptions & options)127 LTOModule::createFromOpenFileSlice(LLVMContext &Context, int fd, StringRef path,
128 size_t map_size, off_t offset,
129 const TargetOptions &options) {
130 ErrorOr<std::unique_ptr<MemoryBuffer>> BufferOrErr =
131 MemoryBuffer::getOpenFileSlice(sys::fs::convertFDToNativeFile(fd), path,
132 map_size, offset);
133 if (std::error_code EC = BufferOrErr.getError()) {
134 Context.emitError(EC.message());
135 return EC;
136 }
137 std::unique_ptr<MemoryBuffer> Buffer = std::move(BufferOrErr.get());
138 return makeLTOModule(Buffer->getMemBufferRef(), options, Context,
139 /* ShouldBeLazy */ false);
140 }
141
142 ErrorOr<std::unique_ptr<LTOModule>>
createFromBuffer(LLVMContext & Context,const void * mem,size_t length,const TargetOptions & options,StringRef path)143 LTOModule::createFromBuffer(LLVMContext &Context, const void *mem,
144 size_t length, const TargetOptions &options,
145 StringRef path) {
146 StringRef Data((const char *)mem, length);
147 MemoryBufferRef Buffer(Data, path);
148 return makeLTOModule(Buffer, options, Context, /* ShouldBeLazy */ false);
149 }
150
151 ErrorOr<std::unique_ptr<LTOModule>>
createInLocalContext(std::unique_ptr<LLVMContext> Context,const void * mem,size_t length,const TargetOptions & options,StringRef path)152 LTOModule::createInLocalContext(std::unique_ptr<LLVMContext> Context,
153 const void *mem, size_t length,
154 const TargetOptions &options, StringRef path) {
155 StringRef Data((const char *)mem, length);
156 MemoryBufferRef Buffer(Data, path);
157 // If we own a context, we know this is being used only for symbol extraction,
158 // not linking. Be lazy in that case.
159 ErrorOr<std::unique_ptr<LTOModule>> Ret =
160 makeLTOModule(Buffer, options, *Context, /* ShouldBeLazy */ true);
161 if (Ret)
162 (*Ret)->OwnedContext = std::move(Context);
163 return Ret;
164 }
165
166 static ErrorOr<std::unique_ptr<Module>>
parseBitcodeFileImpl(MemoryBufferRef Buffer,LLVMContext & Context,bool ShouldBeLazy)167 parseBitcodeFileImpl(MemoryBufferRef Buffer, LLVMContext &Context,
168 bool ShouldBeLazy) {
169 // Find the buffer.
170 Expected<MemoryBufferRef> MBOrErr =
171 IRObjectFile::findBitcodeInMemBuffer(Buffer);
172 if (Error E = MBOrErr.takeError()) {
173 std::error_code EC = errorToErrorCode(std::move(E));
174 Context.emitError(EC.message());
175 return EC;
176 }
177
178 if (!ShouldBeLazy) {
179 // Parse the full file.
180 return expectedToErrorOrAndEmitErrors(Context,
181 parseBitcodeFile(*MBOrErr, Context));
182 }
183
184 // Parse lazily.
185 return expectedToErrorOrAndEmitErrors(
186 Context,
187 getLazyBitcodeModule(*MBOrErr, Context, true /*ShouldLazyLoadMetadata*/));
188 }
189
190 ErrorOr<std::unique_ptr<LTOModule>>
makeLTOModule(MemoryBufferRef Buffer,const TargetOptions & options,LLVMContext & Context,bool ShouldBeLazy)191 LTOModule::makeLTOModule(MemoryBufferRef Buffer, const TargetOptions &options,
192 LLVMContext &Context, bool ShouldBeLazy) {
193 ErrorOr<std::unique_ptr<Module>> MOrErr =
194 parseBitcodeFileImpl(Buffer, Context, ShouldBeLazy);
195 if (std::error_code EC = MOrErr.getError())
196 return EC;
197 std::unique_ptr<Module> &M = *MOrErr;
198
199 llvm::Triple Triple = M->getTargetTriple();
200 if (Triple.empty())
201 Triple = llvm::Triple(sys::getDefaultTargetTriple());
202
203 // find machine architecture for this module
204 std::string errMsg;
205 const Target *march = TargetRegistry::lookupTarget(Triple, errMsg);
206 if (!march)
207 return make_error_code(object::object_error::arch_not_found);
208
209 // construct LTOModule, hand over ownership of module and target
210 SubtargetFeatures Features;
211 Features.getDefaultSubtargetFeatures(Triple);
212 std::string FeatureStr = Features.getString();
213 // Set a default CPU for Darwin triples.
214 std::string CPU;
215 if (Triple.isOSDarwin()) {
216 if (Triple.getArch() == llvm::Triple::x86_64)
217 CPU = "core2";
218 else if (Triple.getArch() == llvm::Triple::x86)
219 CPU = "yonah";
220 else if (Triple.isArm64e())
221 CPU = "apple-a12";
222 else if (Triple.getArch() == llvm::Triple::aarch64 ||
223 Triple.getArch() == llvm::Triple::aarch64_32)
224 CPU = "cyclone";
225 }
226
227 TargetMachine *target = march->createTargetMachine(Triple, CPU, FeatureStr,
228 options, std::nullopt);
229
230 std::unique_ptr<LTOModule> Ret(new LTOModule(std::move(M), Buffer, target));
231 Ret->parseSymbols();
232 Ret->parseMetadata();
233
234 return std::move(Ret);
235 }
236
237 /// Create a MemoryBuffer from a memory range with an optional name.
238 std::unique_ptr<MemoryBuffer>
makeBuffer(const void * mem,size_t length,StringRef name)239 LTOModule::makeBuffer(const void *mem, size_t length, StringRef name) {
240 const char *startPtr = (const char*)mem;
241 return MemoryBuffer::getMemBuffer(StringRef(startPtr, length), name, false);
242 }
243
244 /// objcClassNameFromExpression - Get string that the data pointer points to.
245 bool
objcClassNameFromExpression(const Constant * c,std::string & name)246 LTOModule::objcClassNameFromExpression(const Constant *c, std::string &name) {
247 if (const ConstantExpr *ce = dyn_cast<ConstantExpr>(c)) {
248 Constant *op = ce->getOperand(0);
249 if (GlobalVariable *gvn = dyn_cast<GlobalVariable>(op)) {
250 Constant *cn = gvn->getInitializer();
251 if (ConstantDataArray *ca = dyn_cast<ConstantDataArray>(cn)) {
252 if (ca->isCString()) {
253 name = (".objc_class_name_" + ca->getAsCString()).str();
254 return true;
255 }
256 }
257 }
258 }
259 return false;
260 }
261
262 /// addObjCClass - Parse i386/ppc ObjC class data structure.
addObjCClass(const GlobalVariable * clgv)263 void LTOModule::addObjCClass(const GlobalVariable *clgv) {
264 const ConstantStruct *c = dyn_cast<ConstantStruct>(clgv->getInitializer());
265 if (!c) return;
266
267 // second slot in __OBJC,__class is pointer to superclass name
268 std::string superclassName;
269 if (objcClassNameFromExpression(c->getOperand(1), superclassName)) {
270 auto IterBool = _undefines.try_emplace(superclassName);
271 if (IterBool.second) {
272 NameAndAttributes &info = IterBool.first->second;
273 info.name = IterBool.first->first();
274 info.attributes = LTO_SYMBOL_DEFINITION_UNDEFINED;
275 info.isFunction = false;
276 info.symbol = clgv;
277 }
278 }
279
280 // third slot in __OBJC,__class is pointer to class name
281 std::string className;
282 if (objcClassNameFromExpression(c->getOperand(2), className)) {
283 auto Iter = _defines.insert(className).first;
284
285 NameAndAttributes info;
286 info.name = Iter->first();
287 info.attributes = LTO_SYMBOL_PERMISSIONS_DATA |
288 LTO_SYMBOL_DEFINITION_REGULAR | LTO_SYMBOL_SCOPE_DEFAULT;
289 info.isFunction = false;
290 info.symbol = clgv;
291 _symbols.push_back(info);
292 }
293 }
294
295 /// addObjCCategory - Parse i386/ppc ObjC category data structure.
addObjCCategory(const GlobalVariable * clgv)296 void LTOModule::addObjCCategory(const GlobalVariable *clgv) {
297 const ConstantStruct *c = dyn_cast<ConstantStruct>(clgv->getInitializer());
298 if (!c) return;
299
300 // second slot in __OBJC,__category is pointer to target class name
301 std::string targetclassName;
302 if (!objcClassNameFromExpression(c->getOperand(1), targetclassName))
303 return;
304
305 auto IterBool = _undefines.try_emplace(targetclassName);
306
307 if (!IterBool.second)
308 return;
309
310 NameAndAttributes &info = IterBool.first->second;
311 info.name = IterBool.first->first();
312 info.attributes = LTO_SYMBOL_DEFINITION_UNDEFINED;
313 info.isFunction = false;
314 info.symbol = clgv;
315 }
316
317 /// addObjCClassRef - Parse i386/ppc ObjC class list data structure.
addObjCClassRef(const GlobalVariable * clgv)318 void LTOModule::addObjCClassRef(const GlobalVariable *clgv) {
319 std::string targetclassName;
320 if (!objcClassNameFromExpression(clgv->getInitializer(), targetclassName))
321 return;
322
323 auto IterBool = _undefines.try_emplace(targetclassName);
324
325 if (!IterBool.second)
326 return;
327
328 NameAndAttributes &info = IterBool.first->second;
329 info.name = IterBool.first->first();
330 info.attributes = LTO_SYMBOL_DEFINITION_UNDEFINED;
331 info.isFunction = false;
332 info.symbol = clgv;
333 }
334
addDefinedDataSymbol(ModuleSymbolTable::Symbol Sym)335 void LTOModule::addDefinedDataSymbol(ModuleSymbolTable::Symbol Sym) {
336 SmallString<64> Buffer;
337 {
338 raw_svector_ostream OS(Buffer);
339 SymTab.printSymbolName(OS, Sym);
340 Buffer.c_str();
341 }
342
343 const GlobalValue *V = cast<GlobalValue *>(Sym);
344 addDefinedDataSymbol(Buffer, V);
345 }
346
addDefinedDataSymbol(StringRef Name,const GlobalValue * v)347 void LTOModule::addDefinedDataSymbol(StringRef Name, const GlobalValue *v) {
348 // Add to list of defined symbols.
349 addDefinedSymbol(Name, v, false);
350
351 if (!v->hasSection() /* || !isTargetDarwin */)
352 return;
353
354 // Special case i386/ppc ObjC data structures in magic sections:
355 // The issue is that the old ObjC object format did some strange
356 // contortions to avoid real linker symbols. For instance, the
357 // ObjC class data structure is allocated statically in the executable
358 // that defines that class. That data structures contains a pointer to
359 // its superclass. But instead of just initializing that part of the
360 // struct to the address of its superclass, and letting the static and
361 // dynamic linkers do the rest, the runtime works by having that field
362 // instead point to a C-string that is the name of the superclass.
363 // At runtime the objc initialization updates that pointer and sets
364 // it to point to the actual super class. As far as the linker
365 // knows it is just a pointer to a string. But then someone wanted the
366 // linker to issue errors at build time if the superclass was not found.
367 // So they figured out a way in mach-o object format to use an absolute
368 // symbols (.objc_class_name_Foo = 0) and a floating reference
369 // (.reference .objc_class_name_Bar) to cause the linker into erroring when
370 // a class was missing.
371 // The following synthesizes the implicit .objc_* symbols for the linker
372 // from the ObjC data structures generated by the front end.
373
374 // special case if this data blob is an ObjC class definition
375 if (const GlobalVariable *GV = dyn_cast<GlobalVariable>(v)) {
376 StringRef Section = GV->getSection();
377 if (Section.starts_with("__OBJC,__class,")) {
378 addObjCClass(GV);
379 }
380
381 // special case if this data blob is an ObjC category definition
382 else if (Section.starts_with("__OBJC,__category,")) {
383 addObjCCategory(GV);
384 }
385
386 // special case if this data blob is the list of referenced classes
387 else if (Section.starts_with("__OBJC,__cls_refs,")) {
388 addObjCClassRef(GV);
389 }
390 }
391 }
392
addDefinedFunctionSymbol(ModuleSymbolTable::Symbol Sym)393 void LTOModule::addDefinedFunctionSymbol(ModuleSymbolTable::Symbol Sym) {
394 SmallString<64> Buffer;
395 {
396 raw_svector_ostream OS(Buffer);
397 SymTab.printSymbolName(OS, Sym);
398 Buffer.c_str();
399 }
400
401 auto *GV = cast<GlobalValue *>(Sym);
402 assert((isa<Function>(GV) ||
403 (isa<GlobalAlias>(GV) &&
404 isa<Function>(cast<GlobalAlias>(GV)->getAliasee()))) &&
405 "Not function or function alias");
406
407 addDefinedFunctionSymbol(Buffer, GV);
408 }
409
addDefinedFunctionSymbol(StringRef Name,const GlobalValue * F)410 void LTOModule::addDefinedFunctionSymbol(StringRef Name, const GlobalValue *F) {
411 // add to list of defined symbols
412 addDefinedSymbol(Name, F, true);
413 }
414
addDefinedSymbol(StringRef Name,const GlobalValue * def,bool isFunction)415 void LTOModule::addDefinedSymbol(StringRef Name, const GlobalValue *def,
416 bool isFunction) {
417 uint32_t attr = 0;
418 if (auto *gv = dyn_cast<GlobalVariable>(def))
419 attr = Log2(gv->getAlign().valueOrOne());
420 else if (auto *f = dyn_cast<Function>(def))
421 attr = Log2(f->getAlign().valueOrOne());
422
423 // set permissions part
424 if (isFunction) {
425 attr |= LTO_SYMBOL_PERMISSIONS_CODE;
426 } else {
427 const GlobalVariable *gv = dyn_cast<GlobalVariable>(def);
428 if (gv && gv->isConstant())
429 attr |= LTO_SYMBOL_PERMISSIONS_RODATA;
430 else
431 attr |= LTO_SYMBOL_PERMISSIONS_DATA;
432 }
433
434 // set definition part
435 if (def->hasWeakLinkage() || def->hasLinkOnceLinkage())
436 attr |= LTO_SYMBOL_DEFINITION_WEAK;
437 else if (def->hasCommonLinkage())
438 attr |= LTO_SYMBOL_DEFINITION_TENTATIVE;
439 else
440 attr |= LTO_SYMBOL_DEFINITION_REGULAR;
441
442 // set scope part
443 if (def->hasLocalLinkage())
444 // Ignore visibility if linkage is local.
445 attr |= LTO_SYMBOL_SCOPE_INTERNAL;
446 else if (def->hasHiddenVisibility())
447 attr |= LTO_SYMBOL_SCOPE_HIDDEN;
448 else if (def->hasProtectedVisibility())
449 attr |= LTO_SYMBOL_SCOPE_PROTECTED;
450 else if (def->canBeOmittedFromSymbolTable())
451 attr |= LTO_SYMBOL_SCOPE_DEFAULT_CAN_BE_HIDDEN;
452 else
453 attr |= LTO_SYMBOL_SCOPE_DEFAULT;
454
455 if (def->hasComdat())
456 attr |= LTO_SYMBOL_COMDAT;
457
458 if (isa<GlobalAlias>(def))
459 attr |= LTO_SYMBOL_ALIAS;
460
461 auto Iter = _defines.insert(Name).first;
462
463 // fill information structure
464 NameAndAttributes info;
465 StringRef NameRef = Iter->first();
466 info.name = NameRef;
467 assert(NameRef.data()[NameRef.size()] == '\0');
468 info.attributes = attr;
469 info.isFunction = isFunction;
470 info.symbol = def;
471
472 // add to table of symbols
473 _symbols.push_back(info);
474 }
475
476 /// addAsmGlobalSymbol - Add a global symbol from module-level ASM to the
477 /// defined list.
addAsmGlobalSymbol(StringRef name,lto_symbol_attributes scope)478 void LTOModule::addAsmGlobalSymbol(StringRef name,
479 lto_symbol_attributes scope) {
480 auto IterBool = _defines.insert(name);
481
482 // only add new define if not already defined
483 if (!IterBool.second)
484 return;
485
486 NameAndAttributes &info = _undefines[IterBool.first->first()];
487
488 if (info.symbol == nullptr) {
489 // FIXME: This is trying to take care of module ASM like this:
490 //
491 // module asm ".zerofill __FOO, __foo, _bar_baz_qux, 0"
492 //
493 // but is gross and its mother dresses it funny. Have the ASM parser give us
494 // more details for this type of situation so that we're not guessing so
495 // much.
496
497 // fill information structure
498 info.name = IterBool.first->first();
499 info.attributes =
500 LTO_SYMBOL_PERMISSIONS_DATA | LTO_SYMBOL_DEFINITION_REGULAR | scope;
501 info.isFunction = false;
502 info.symbol = nullptr;
503
504 // add to table of symbols
505 _symbols.push_back(info);
506 return;
507 }
508
509 if (info.isFunction)
510 addDefinedFunctionSymbol(info.name, cast<Function>(info.symbol));
511 else
512 addDefinedDataSymbol(info.name, info.symbol);
513
514 _symbols.back().attributes &= ~LTO_SYMBOL_SCOPE_MASK;
515 _symbols.back().attributes |= scope;
516 }
517
518 /// addAsmGlobalSymbolUndef - Add a global symbol from module-level ASM to the
519 /// undefined list.
addAsmGlobalSymbolUndef(StringRef name)520 void LTOModule::addAsmGlobalSymbolUndef(StringRef name) {
521 auto IterBool = _undefines.try_emplace(name);
522
523 _asm_undefines.push_back(IterBool.first->first());
524
525 // we already have the symbol
526 if (!IterBool.second)
527 return;
528
529 uint32_t attr = LTO_SYMBOL_DEFINITION_UNDEFINED;
530 attr |= LTO_SYMBOL_SCOPE_DEFAULT;
531 NameAndAttributes &info = IterBool.first->second;
532 info.name = IterBool.first->first();
533 info.attributes = attr;
534 info.isFunction = false;
535 info.symbol = nullptr;
536 }
537
538 /// Add a symbol which isn't defined just yet to a list to be resolved later.
addPotentialUndefinedSymbol(ModuleSymbolTable::Symbol Sym,bool isFunc)539 void LTOModule::addPotentialUndefinedSymbol(ModuleSymbolTable::Symbol Sym,
540 bool isFunc) {
541 SmallString<64> name;
542 {
543 raw_svector_ostream OS(name);
544 SymTab.printSymbolName(OS, Sym);
545 name.c_str();
546 }
547
548 auto IterBool = _undefines.try_emplace(name.str());
549
550 // we already have the symbol
551 if (!IterBool.second)
552 return;
553
554 NameAndAttributes &info = IterBool.first->second;
555
556 info.name = IterBool.first->first();
557
558 const GlobalValue *decl = dyn_cast_if_present<GlobalValue *>(Sym);
559
560 if (decl->hasExternalWeakLinkage())
561 info.attributes = LTO_SYMBOL_DEFINITION_WEAKUNDEF;
562 else
563 info.attributes = LTO_SYMBOL_DEFINITION_UNDEFINED;
564
565 info.isFunction = isFunc;
566 info.symbol = decl;
567 }
568
parseSymbols()569 void LTOModule::parseSymbols() {
570 for (auto Sym : SymTab.symbols()) {
571 auto *GV = dyn_cast_if_present<GlobalValue *>(Sym);
572 uint32_t Flags = SymTab.getSymbolFlags(Sym);
573 if (Flags & object::BasicSymbolRef::SF_FormatSpecific)
574 continue;
575
576 bool IsUndefined = Flags & object::BasicSymbolRef::SF_Undefined;
577
578 if (!GV) {
579 SmallString<64> Buffer;
580 {
581 raw_svector_ostream OS(Buffer);
582 SymTab.printSymbolName(OS, Sym);
583 Buffer.c_str();
584 }
585 StringRef Name = Buffer;
586
587 if (IsUndefined)
588 addAsmGlobalSymbolUndef(Name);
589 else if (Flags & object::BasicSymbolRef::SF_Global)
590 addAsmGlobalSymbol(Name, LTO_SYMBOL_SCOPE_DEFAULT);
591 else
592 addAsmGlobalSymbol(Name, LTO_SYMBOL_SCOPE_INTERNAL);
593 continue;
594 }
595
596 auto *F = dyn_cast<Function>(GV);
597 if (IsUndefined) {
598 addPotentialUndefinedSymbol(Sym, F != nullptr);
599 continue;
600 }
601
602 if (F) {
603 addDefinedFunctionSymbol(Sym);
604 continue;
605 }
606
607 if (isa<GlobalVariable>(GV)) {
608 addDefinedDataSymbol(Sym);
609 continue;
610 }
611
612 assert(isa<GlobalAlias>(GV));
613
614 if (isa<Function>(cast<GlobalAlias>(GV)->getAliasee()))
615 addDefinedFunctionSymbol(Sym);
616 else
617 addDefinedDataSymbol(Sym);
618 }
619
620 // make symbols for all undefines
621 for (StringMap<NameAndAttributes>::iterator u =_undefines.begin(),
622 e = _undefines.end(); u != e; ++u) {
623 // If this symbol also has a definition, then don't make an undefine because
624 // it is a tentative definition.
625 if (_defines.count(u->getKey())) continue;
626 NameAndAttributes info = u->getValue();
627 _symbols.push_back(info);
628 }
629 }
630
631 /// parseMetadata - Parse metadata from the module
parseMetadata()632 void LTOModule::parseMetadata() {
633 raw_string_ostream OS(LinkerOpts);
634
635 // Linker Options
636 if (NamedMDNode *LinkerOptions =
637 getModule().getNamedMetadata("llvm.linker.options")) {
638 for (unsigned i = 0, e = LinkerOptions->getNumOperands(); i != e; ++i) {
639 MDNode *MDOptions = LinkerOptions->getOperand(i);
640 for (unsigned ii = 0, ie = MDOptions->getNumOperands(); ii != ie; ++ii) {
641 MDString *MDOption = cast<MDString>(MDOptions->getOperand(ii));
642 OS << " " << MDOption->getString();
643 }
644 }
645 }
646
647 // Globals - we only need to do this for COFF.
648 const Triple TT(_target->getTargetTriple());
649 if (!TT.isOSBinFormatCOFF())
650 return;
651 Mangler M;
652 for (const NameAndAttributes &Sym : _symbols) {
653 if (!Sym.symbol)
654 continue;
655 emitLinkerFlagsForGlobalCOFF(OS, Sym.symbol, TT, M);
656 }
657 }
658
createInputFile(const void * buffer,size_t buffer_size,const char * path,std::string & outErr)659 lto::InputFile *LTOModule::createInputFile(const void *buffer,
660 size_t buffer_size, const char *path,
661 std::string &outErr) {
662 StringRef Data((const char *)buffer, buffer_size);
663 MemoryBufferRef BufferRef(Data, path);
664
665 Expected<std::unique_ptr<lto::InputFile>> ObjOrErr =
666 lto::InputFile::create(BufferRef);
667
668 if (ObjOrErr)
669 return ObjOrErr->release();
670
671 outErr = std::string(path) +
672 ": Could not read LTO input file: " + toString(ObjOrErr.takeError());
673 return nullptr;
674 }
675
getDependentLibraryCount(lto::InputFile * input)676 size_t LTOModule::getDependentLibraryCount(lto::InputFile *input) {
677 return input->getDependentLibraries().size();
678 }
679
getDependentLibrary(lto::InputFile * input,size_t index,size_t * size)680 const char *LTOModule::getDependentLibrary(lto::InputFile *input, size_t index,
681 size_t *size) {
682 StringRef S = input->getDependentLibraries()[index];
683 *size = S.size();
684 return S.data();
685 }
686
getMachOCPUType() const687 Expected<uint32_t> LTOModule::getMachOCPUType() const {
688 return MachO::getCPUType(Mod->getTargetTriple());
689 }
690
getMachOCPUSubType() const691 Expected<uint32_t> LTOModule::getMachOCPUSubType() const {
692 return MachO::getCPUSubType(Mod->getTargetTriple());
693 }
694
hasCtorDtor() const695 bool LTOModule::hasCtorDtor() const {
696 for (auto Sym : SymTab.symbols()) {
697 if (auto *GV = dyn_cast_if_present<GlobalValue *>(Sym)) {
698 StringRef Name = GV->getName();
699 if (Name.consume_front("llvm.global_")) {
700 if (Name == "ctors" || Name == "dtors")
701 return true;
702 }
703 }
704 }
705 return false;
706 }
707