Merge branch 'master' into msp430
[llvm/msp430.git] / tools / lto / LTOCodeGenerator.cpp
blobd3a3f7f7b826622eddfe8ba3fb24250d6415466e
1 //===-LTOCodeGenerator.cpp - LLVM Link Time Optimizer ---------------------===//
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 Link Time Optimization library. This library is
11 // intended to be used by linker to optimize code at link time.
13 //===----------------------------------------------------------------------===//
15 #include "LTOModule.h"
16 #include "LTOCodeGenerator.h"
19 #include "llvm/Module.h"
20 #include "llvm/PassManager.h"
21 #include "llvm/Linker.h"
22 #include "llvm/Constants.h"
23 #include "llvm/DerivedTypes.h"
24 #include "llvm/ModuleProvider.h"
25 #include "llvm/Bitcode/ReaderWriter.h"
26 #include "llvm/Support/CommandLine.h"
27 #include "llvm/Support/SystemUtils.h"
28 #include "llvm/Support/Mangler.h"
29 #include "llvm/Support/MemoryBuffer.h"
30 #include "llvm/Support/raw_ostream.h"
31 #include "llvm/System/Signals.h"
32 #include "llvm/Analysis/Passes.h"
33 #include "llvm/Analysis/LoopPass.h"
34 #include "llvm/Analysis/Verifier.h"
35 #include "llvm/CodeGen/FileWriters.h"
36 #include "llvm/Target/SubtargetFeature.h"
37 #include "llvm/Target/TargetOptions.h"
38 #include "llvm/Target/TargetData.h"
39 #include "llvm/Target/TargetMachine.h"
40 #include "llvm/Target/TargetMachineRegistry.h"
41 #include "llvm/Target/TargetAsmInfo.h"
42 #include "llvm/Transforms/IPO.h"
43 #include "llvm/Transforms/Scalar.h"
44 #include "llvm/ADT/StringExtras.h"
45 #include "llvm/Config/config.h"
48 #include <fstream>
49 #include <unistd.h>
50 #include <stdlib.h>
51 #include <fcntl.h>
54 using namespace llvm;
56 static cl::opt<bool> DisableInline("disable-inlining",
57 cl::desc("Do not run the inliner pass"));
60 const char* LTOCodeGenerator::getVersionString()
62 #ifdef LLVM_VERSION_INFO
63 return PACKAGE_NAME " version " PACKAGE_VERSION ", " LLVM_VERSION_INFO;
64 #else
65 return PACKAGE_NAME " version " PACKAGE_VERSION;
66 #endif
70 LTOCodeGenerator::LTOCodeGenerator()
71 : _linker("LinkTimeOptimizer", "ld-temp.o"), _target(NULL),
72 _emitDwarfDebugInfo(false), _scopeRestrictionsDone(false),
73 _codeModel(LTO_CODEGEN_PIC_MODEL_DYNAMIC),
74 _nativeObjectFile(NULL), _gccPath(NULL)
79 LTOCodeGenerator::~LTOCodeGenerator()
81 delete _target;
82 delete _nativeObjectFile;
87 bool LTOCodeGenerator::addModule(LTOModule* mod, std::string& errMsg)
89 return _linker.LinkInModule(mod->getLLVVMModule(), &errMsg);
93 bool LTOCodeGenerator::setDebugInfo(lto_debug_model debug, std::string& errMsg)
95 switch (debug) {
96 case LTO_DEBUG_MODEL_NONE:
97 _emitDwarfDebugInfo = false;
98 return false;
100 case LTO_DEBUG_MODEL_DWARF:
101 _emitDwarfDebugInfo = true;
102 return false;
104 errMsg = "unknown debug format";
105 return true;
109 bool LTOCodeGenerator::setCodePICModel(lto_codegen_model model,
110 std::string& errMsg)
112 switch (model) {
113 case LTO_CODEGEN_PIC_MODEL_STATIC:
114 case LTO_CODEGEN_PIC_MODEL_DYNAMIC:
115 case LTO_CODEGEN_PIC_MODEL_DYNAMIC_NO_PIC:
116 _codeModel = model;
117 return false;
119 errMsg = "unknown pic model";
120 return true;
123 void LTOCodeGenerator::setGccPath(const char* path)
125 if ( _gccPath )
126 delete _gccPath;
127 _gccPath = new sys::Path(path);
130 void LTOCodeGenerator::addMustPreserveSymbol(const char* sym)
132 _mustPreserveSymbols[sym] = 1;
136 bool LTOCodeGenerator::writeMergedModules(const char* path, std::string& errMsg)
138 if ( this->determineTarget(errMsg) )
139 return true;
141 // mark which symbols can not be internalized
142 this->applyScopeRestrictions();
144 // create output file
145 std::ofstream out(path, std::ios_base::out|std::ios::trunc|std::ios::binary);
146 if ( out.fail() ) {
147 errMsg = "could not open bitcode file for writing: ";
148 errMsg += path;
149 return true;
152 // write bitcode to it
153 WriteBitcodeToFile(_linker.getModule(), out);
154 if ( out.fail() ) {
155 errMsg = "could not write bitcode file: ";
156 errMsg += path;
157 return true;
160 return false;
164 const void* LTOCodeGenerator::compile(size_t* length, std::string& errMsg)
166 // make unique temp .s file to put generated assembly code
167 sys::Path uniqueAsmPath("lto-llvm.s");
168 if ( uniqueAsmPath.createTemporaryFileOnDisk(true, &errMsg) )
169 return NULL;
170 sys::RemoveFileOnSignal(uniqueAsmPath);
172 // generate assembly code
173 bool genResult = false;
175 raw_fd_ostream asmFile(uniqueAsmPath.c_str(), false, errMsg);
176 if (!errMsg.empty())
177 return NULL;
178 genResult = this->generateAssemblyCode(asmFile, errMsg);
180 if ( genResult ) {
181 if ( uniqueAsmPath.exists() )
182 uniqueAsmPath.eraseFromDisk();
183 return NULL;
186 // make unique temp .o file to put generated object file
187 sys::PathWithStatus uniqueObjPath("lto-llvm.o");
188 if ( uniqueObjPath.createTemporaryFileOnDisk(true, &errMsg) ) {
189 if ( uniqueAsmPath.exists() )
190 uniqueAsmPath.eraseFromDisk();
191 return NULL;
193 sys::RemoveFileOnSignal(uniqueObjPath);
195 // assemble the assembly code
196 const std::string& uniqueObjStr = uniqueObjPath.toString();
197 bool asmResult = this->assemble(uniqueAsmPath.toString(),
198 uniqueObjStr, errMsg);
199 if ( !asmResult ) {
200 // remove old buffer if compile() called twice
201 delete _nativeObjectFile;
203 // read .o file into memory buffer
204 _nativeObjectFile = MemoryBuffer::getFile(uniqueObjStr.c_str(),&errMsg);
207 // remove temp files
208 uniqueAsmPath.eraseFromDisk();
209 uniqueObjPath.eraseFromDisk();
211 // return buffer, unless error
212 if ( _nativeObjectFile == NULL )
213 return NULL;
214 *length = _nativeObjectFile->getBufferSize();
215 return _nativeObjectFile->getBufferStart();
219 bool LTOCodeGenerator::assemble(const std::string& asmPath,
220 const std::string& objPath, std::string& errMsg)
222 sys::Path gcc;
223 if ( _gccPath ) {
224 gcc = *_gccPath;
225 } else {
226 // find compiler driver
227 gcc = sys::Program::FindProgramByName("gcc");
228 if ( gcc.isEmpty() ) {
229 errMsg = "can't locate gcc";
230 return true;
234 // build argument list
235 std::vector<const char*> args;
236 std::string targetTriple = _linker.getModule()->getTargetTriple();
237 args.push_back(gcc.c_str());
238 if ( targetTriple.find("darwin") != targetTriple.size() ) {
239 if (strncmp(targetTriple.c_str(), "i386-apple-", 11) == 0) {
240 args.push_back("-arch");
241 args.push_back("i386");
243 else if (strncmp(targetTriple.c_str(), "x86_64-apple-", 13) == 0) {
244 args.push_back("-arch");
245 args.push_back("x86_64");
247 else if (strncmp(targetTriple.c_str(), "powerpc-apple-", 14) == 0) {
248 args.push_back("-arch");
249 args.push_back("ppc");
251 else if (strncmp(targetTriple.c_str(), "powerpc64-apple-", 16) == 0) {
252 args.push_back("-arch");
253 args.push_back("ppc64");
255 else if (strncmp(targetTriple.c_str(), "arm-apple-", 10) == 0) {
256 args.push_back("-arch");
257 args.push_back("arm");
259 else if ((strncmp(targetTriple.c_str(), "armv4t-apple-", 13) == 0) ||
260 (strncmp(targetTriple.c_str(), "thumbv4t-apple-", 15) == 0)) {
261 args.push_back("-arch");
262 args.push_back("armv4t");
264 else if ((strncmp(targetTriple.c_str(), "armv5-apple-", 12) == 0) ||
265 (strncmp(targetTriple.c_str(), "armv5e-apple-", 13) == 0) ||
266 (strncmp(targetTriple.c_str(), "thumbv5-apple-", 14) == 0) ||
267 (strncmp(targetTriple.c_str(), "thumbv5e-apple-", 15) == 0)) {
268 args.push_back("-arch");
269 args.push_back("armv5");
271 else if ((strncmp(targetTriple.c_str(), "armv6-apple-", 12) == 0) ||
272 (strncmp(targetTriple.c_str(), "thumbv6-apple-", 14) == 0)) {
273 args.push_back("-arch");
274 args.push_back("armv6");
277 args.push_back("-c");
278 args.push_back("-x");
279 args.push_back("assembler");
280 args.push_back("-o");
281 args.push_back(objPath.c_str());
282 args.push_back(asmPath.c_str());
283 args.push_back(0);
285 // invoke assembler
286 if ( sys::Program::ExecuteAndWait(gcc, &args[0], 0, 0, 0, 0, &errMsg) ) {
287 errMsg = "error in assembly";
288 return true;
290 return false; // success
295 bool LTOCodeGenerator::determineTarget(std::string& errMsg)
297 if ( _target == NULL ) {
298 // create target machine from info for merged modules
299 Module* mergedModule = _linker.getModule();
300 const TargetMachineRegistry::entry* march =
301 TargetMachineRegistry::getClosestStaticTargetForModule(
302 *mergedModule, errMsg);
303 if ( march == NULL )
304 return true;
306 // construct LTModule, hand over ownership of module and target
307 std::string FeatureStr =
308 getFeatureString(_linker.getModule()->getTargetTriple().c_str());
309 _target = march->CtorFn(*mergedModule, FeatureStr.c_str());
311 return false;
314 void LTOCodeGenerator::applyScopeRestrictions()
316 if ( !_scopeRestrictionsDone ) {
317 Module* mergedModule = _linker.getModule();
319 // Start off with a verification pass.
320 PassManager passes;
321 passes.add(createVerifierPass());
323 // mark which symbols can not be internalized
324 if ( !_mustPreserveSymbols.empty() ) {
325 Mangler mangler(*mergedModule,
326 _target->getTargetAsmInfo()->getGlobalPrefix());
327 std::vector<const char*> mustPreserveList;
328 for (Module::iterator f = mergedModule->begin(),
329 e = mergedModule->end(); f != e; ++f) {
330 if ( !f->isDeclaration()
331 && _mustPreserveSymbols.count(mangler.getValueName(f)) )
332 mustPreserveList.push_back(::strdup(f->getName().c_str()));
334 for (Module::global_iterator v = mergedModule->global_begin(),
335 e = mergedModule->global_end(); v != e; ++v) {
336 if ( !v->isDeclaration()
337 && _mustPreserveSymbols.count(mangler.getValueName(v)) )
338 mustPreserveList.push_back(::strdup(v->getName().c_str()));
340 passes.add(createInternalizePass(mustPreserveList));
342 // apply scope restrictions
343 passes.run(*mergedModule);
345 _scopeRestrictionsDone = true;
349 /// Optimize merged modules using various IPO passes
350 bool LTOCodeGenerator::generateAssemblyCode(raw_ostream& out,
351 std::string& errMsg)
353 if ( this->determineTarget(errMsg) )
354 return true;
356 // mark which symbols can not be internalized
357 this->applyScopeRestrictions();
359 Module* mergedModule = _linker.getModule();
361 // If target supports exception handling then enable it now.
362 if ( _target->getTargetAsmInfo()->doesSupportExceptionHandling() )
363 llvm::ExceptionHandling = true;
365 // set codegen model
366 switch( _codeModel ) {
367 case LTO_CODEGEN_PIC_MODEL_STATIC:
368 _target->setRelocationModel(Reloc::Static);
369 break;
370 case LTO_CODEGEN_PIC_MODEL_DYNAMIC:
371 _target->setRelocationModel(Reloc::PIC_);
372 break;
373 case LTO_CODEGEN_PIC_MODEL_DYNAMIC_NO_PIC:
374 _target->setRelocationModel(Reloc::DynamicNoPIC);
375 break;
378 // if options were requested, set them
379 if ( !_codegenOptions.empty() )
380 cl::ParseCommandLineOptions(_codegenOptions.size(),
381 (char**)&_codegenOptions[0]);
383 // Instantiate the pass manager to organize the passes.
384 PassManager passes;
386 // Start off with a verification pass.
387 passes.add(createVerifierPass());
389 // Add an appropriate TargetData instance for this module...
390 passes.add(new TargetData(*_target->getTargetData()));
392 // Propagate constants at call sites into the functions they call. This
393 // opens opportunities for globalopt (and inlining) by substituting function
394 // pointers passed as arguments to direct uses of functions.
395 passes.add(createIPSCCPPass());
397 // Now that we internalized some globals, see if we can hack on them!
398 passes.add(createGlobalOptimizerPass());
400 // Linking modules together can lead to duplicated global constants, only
401 // keep one copy of each constant...
402 passes.add(createConstantMergePass());
404 // Remove unused arguments from functions...
405 passes.add(createDeadArgEliminationPass());
407 // Reduce the code after globalopt and ipsccp. Both can open up significant
408 // simplification opportunities, and both can propagate functions through
409 // function pointers. When this happens, we often have to resolve varargs
410 // calls, etc, so let instcombine do this.
411 passes.add(createInstructionCombiningPass());
412 if (!DisableInline)
413 passes.add(createFunctionInliningPass()); // Inline small functions
414 passes.add(createPruneEHPass()); // Remove dead EH info
415 passes.add(createGlobalDCEPass()); // Remove dead functions
417 // If we didn't decide to inline a function, check to see if we can
418 // transform it to pass arguments by value instead of by reference.
419 passes.add(createArgumentPromotionPass());
421 // The IPO passes may leave cruft around. Clean up after them.
422 passes.add(createInstructionCombiningPass());
423 passes.add(createJumpThreadingPass()); // Thread jumps.
424 passes.add(createScalarReplAggregatesPass()); // Break up allocas
426 // Run a few AA driven optimizations here and now, to cleanup the code.
427 passes.add(createFunctionAttrsPass()); // Add nocapture
428 passes.add(createGlobalsModRefPass()); // IP alias analysis
429 passes.add(createLICMPass()); // Hoist loop invariants
430 passes.add(createGVNPass()); // Remove common subexprs
431 passes.add(createMemCpyOptPass()); // Remove dead memcpy's
432 passes.add(createDeadStoreEliminationPass()); // Nuke dead stores
434 // Cleanup and simplify the code after the scalar optimizations.
435 passes.add(createInstructionCombiningPass());
436 passes.add(createJumpThreadingPass()); // Thread jumps.
437 passes.add(createPromoteMemoryToRegisterPass()); // Cleanup after threading.
440 // Delete basic blocks, which optimization passes may have killed...
441 passes.add(createCFGSimplificationPass());
443 // Now that we have optimized the program, discard unreachable functions...
444 passes.add(createGlobalDCEPass());
446 // Make sure everything is still good.
447 passes.add(createVerifierPass());
449 FunctionPassManager* codeGenPasses =
450 new FunctionPassManager(new ExistingModuleProvider(mergedModule));
452 codeGenPasses->add(new TargetData(*_target->getTargetData()));
454 MachineCodeEmitter* mce = NULL;
456 switch (_target->addPassesToEmitFile(*codeGenPasses, out,
457 TargetMachine::AssemblyFile,
458 CodeGenOpt::Aggressive)) {
459 case FileModel::MachOFile:
460 mce = AddMachOWriter(*codeGenPasses, out, *_target);
461 break;
462 case FileModel::ElfFile:
463 mce = AddELFWriter(*codeGenPasses, out, *_target);
464 break;
465 case FileModel::AsmFile:
466 break;
467 case FileModel::Error:
468 case FileModel::None:
469 errMsg = "target file type not supported";
470 return true;
473 if (_target->addPassesToEmitFileFinish(*codeGenPasses, mce,
474 CodeGenOpt::Aggressive)) {
475 errMsg = "target does not support generation of this file type";
476 return true;
479 // Run our queue of passes all at once now, efficiently.
480 passes.run(*mergedModule);
482 // Run the code generator, and write assembly file
483 codeGenPasses->doInitialization();
485 for (Module::iterator
486 it = mergedModule->begin(), e = mergedModule->end(); it != e; ++it)
487 if (!it->isDeclaration())
488 codeGenPasses->run(*it);
490 codeGenPasses->doFinalization();
491 return false; // success
495 /// Optimize merged modules using various IPO passes
496 void LTOCodeGenerator::setCodeGenDebugOptions(const char* options)
498 std::string ops(options);
499 for (std::string o = getToken(ops); !o.empty(); o = getToken(ops)) {
500 // ParseCommandLineOptions() expects argv[0] to be program name.
501 // Lazily add that.
502 if ( _codegenOptions.empty() )
503 _codegenOptions.push_back("libLTO");
504 _codegenOptions.push_back(strdup(o.c_str()));