1 //===- Miscompilation.cpp - Debug program miscompilations -----------------===// 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 optimizer and code generation miscompilation debugging 11 // support. 12 // 13 //===----------------------------------------------------------------------===// 14 15 #include "BugDriver.h" 16 #include "ListReducer.h" 17 #include "ToolRunner.h" 18 #include "llvm/Config/config.h" // for HAVE_LINK_R 19 #include "llvm/IR/Constants.h" 20 #include "llvm/IR/DerivedTypes.h" 21 #include "llvm/IR/Instructions.h" 22 #include "llvm/IR/Module.h" 23 #include "llvm/IR/Verifier.h" 24 #include "llvm/Linker/Linker.h" 25 #include "llvm/Pass.h" 26 #include "llvm/Support/CommandLine.h" 27 #include "llvm/Support/FileUtilities.h" 28 #include "llvm/Transforms/Utils/Cloning.h" 29 30 using namespace llvm; 31 32 namespace llvm { 33 extern cl::opt<std::string> OutputPrefix; 34 extern cl::list<std::string> InputArgv; 35 } // end namespace llvm 36 37 namespace { 38 static llvm::cl::opt<bool> DisableLoopExtraction( 39 "disable-loop-extraction", 40 cl::desc("Don't extract loops when searching for miscompilations"), 41 cl::init(false)); 42 static llvm::cl::opt<bool> DisableBlockExtraction( 43 "disable-block-extraction", 44 cl::desc("Don't extract blocks when searching for miscompilations"), 45 cl::init(false)); 46 47 class ReduceMiscompilingPasses : public ListReducer<std::string> { 48 BugDriver &BD; 49 50 public: 51 ReduceMiscompilingPasses(BugDriver &bd) : BD(bd) {} 52 53 Expected<TestResult> doTest(std::vector<std::string> &Prefix, 54 std::vector<std::string> &Suffix) override; 55 }; 56 } // end anonymous namespace 57 58 /// TestResult - After passes have been split into a test group and a control 59 /// group, see if they still break the program. 60 /// 61 Expected<ReduceMiscompilingPasses::TestResult> 62 ReduceMiscompilingPasses::doTest(std::vector<std::string> &Prefix, 63 std::vector<std::string> &Suffix) { 64 // First, run the program with just the Suffix passes. If it is still broken 65 // with JUST the kept passes, discard the prefix passes. 66 outs() << "Checking to see if '" << getPassesString(Suffix) 67 << "' compiles correctly: "; 68 69 std::string BitcodeResult; 70 if (BD.runPasses(BD.getProgram(), Suffix, BitcodeResult, false /*delete*/, 71 true /*quiet*/)) { 72 errs() << " Error running this sequence of passes" 73 << " on the input program!\n"; 74 BD.setPassesToRun(Suffix); 75 BD.EmitProgressBitcode(BD.getProgram(), "pass-error", false); 76 // TODO: This should propagate the error instead of exiting. 77 if (Error E = BD.debugOptimizerCrash()) 78 exit(1); 79 exit(0); 80 } 81 82 // Check to see if the finished program matches the reference output... 83 Expected<bool> Diff = BD.diffProgram(BD.getProgram(), BitcodeResult, "", 84 true /*delete bitcode*/); 85 if (Error E = Diff.takeError()) 86 return std::move(E); 87 if (*Diff) { 88 outs() << " nope.\n"; 89 if (Suffix.empty()) { 90 errs() << BD.getToolName() << ": I'm confused: the test fails when " 91 << "no passes are run, nondeterministic program?\n"; 92 exit(1); 93 } 94 return KeepSuffix; // Miscompilation detected! 95 } 96 outs() << " yup.\n"; // No miscompilation! 97 98 if (Prefix.empty()) 99 return NoFailure; 100 101 // Next, see if the program is broken if we run the "prefix" passes first, 102 // then separately run the "kept" passes. 103 outs() << "Checking to see if '" << getPassesString(Prefix) 104 << "' compiles correctly: "; 105 106 // If it is not broken with the kept passes, it's possible that the prefix 107 // passes must be run before the kept passes to break it. If the program 108 // WORKS after the prefix passes, but then fails if running the prefix AND 109 // kept passes, we can update our bitcode file to include the result of the 110 // prefix passes, then discard the prefix passes. 111 // 112 if (BD.runPasses(BD.getProgram(), Prefix, BitcodeResult, false /*delete*/, 113 true /*quiet*/)) { 114 errs() << " Error running this sequence of passes" 115 << " on the input program!\n"; 116 BD.setPassesToRun(Prefix); 117 BD.EmitProgressBitcode(BD.getProgram(), "pass-error", false); 118 // TODO: This should propagate the error instead of exiting. 119 if (Error E = BD.debugOptimizerCrash()) 120 exit(1); 121 exit(0); 122 } 123 124 // If the prefix maintains the predicate by itself, only keep the prefix! 125 Diff = BD.diffProgram(BD.getProgram(), BitcodeResult, "", false); 126 if (Error E = Diff.takeError()) 127 return std::move(E); 128 if (*Diff) { 129 outs() << " nope.\n"; 130 sys::fs::remove(BitcodeResult); 131 return KeepPrefix; 132 } 133 outs() << " yup.\n"; // No miscompilation! 134 135 // Ok, so now we know that the prefix passes work, try running the suffix 136 // passes on the result of the prefix passes. 137 // 138 std::unique_ptr<Module> PrefixOutput = 139 parseInputFile(BitcodeResult, BD.getContext()); 140 if (!PrefixOutput) { 141 errs() << BD.getToolName() << ": Error reading bitcode file '" 142 << BitcodeResult << "'!\n"; 143 exit(1); 144 } 145 sys::fs::remove(BitcodeResult); 146 147 // Don't check if there are no passes in the suffix. 148 if (Suffix.empty()) 149 return NoFailure; 150 151 outs() << "Checking to see if '" << getPassesString(Suffix) 152 << "' passes compile correctly after the '" << getPassesString(Prefix) 153 << "' passes: "; 154 155 std::unique_ptr<Module> OriginalInput( 156 BD.swapProgramIn(PrefixOutput.release())); 157 if (BD.runPasses(BD.getProgram(), Suffix, BitcodeResult, false /*delete*/, 158 true /*quiet*/)) { 159 errs() << " Error running this sequence of passes" 160 << " on the input program!\n"; 161 BD.setPassesToRun(Suffix); 162 BD.EmitProgressBitcode(BD.getProgram(), "pass-error", false); 163 // TODO: This should propagate the error instead of exiting. 164 if (Error E = BD.debugOptimizerCrash()) 165 exit(1); 166 exit(0); 167 } 168 169 // Run the result... 170 Diff = BD.diffProgram(BD.getProgram(), BitcodeResult, "", 171 true /*delete bitcode*/); 172 if (Error E = Diff.takeError()) 173 return std::move(E); 174 if (*Diff) { 175 outs() << " nope.\n"; 176 return KeepSuffix; 177 } 178 179 // Otherwise, we must not be running the bad pass anymore. 180 outs() << " yup.\n"; // No miscompilation! 181 // Restore orig program & free test. 182 delete BD.swapProgramIn(OriginalInput.release()); 183 return NoFailure; 184 } 185 186 namespace { 187 class ReduceMiscompilingFunctions : public ListReducer<Function *> { 188 BugDriver &BD; 189 Expected<bool> (*TestFn)(BugDriver &, std::unique_ptr<Module>, 190 std::unique_ptr<Module>); 191 192 public: 193 ReduceMiscompilingFunctions(BugDriver &bd, 194 Expected<bool> (*F)(BugDriver &, 195 std::unique_ptr<Module>, 196 std::unique_ptr<Module>)) 197 : BD(bd), TestFn(F) {} 198 199 Expected<TestResult> doTest(std::vector<Function *> &Prefix, 200 std::vector<Function *> &Suffix) override { 201 if (!Suffix.empty()) { 202 Expected<bool> Ret = TestFuncs(Suffix); 203 if (Error E = Ret.takeError()) 204 return std::move(E); 205 if (*Ret) 206 return KeepSuffix; 207 } 208 if (!Prefix.empty()) { 209 Expected<bool> Ret = TestFuncs(Prefix); 210 if (Error E = Ret.takeError()) 211 return std::move(E); 212 if (*Ret) 213 return KeepPrefix; 214 } 215 return NoFailure; 216 } 217 218 Expected<bool> TestFuncs(const std::vector<Function *> &Prefix); 219 }; 220 } // end anonymous namespace 221 222 /// Given two modules, link them together and run the program, checking to see 223 /// if the program matches the diff. If there is an error, return NULL. If not, 224 /// return the merged module. The Broken argument will be set to true if the 225 /// output is different. If the DeleteInputs argument is set to true then this 226 /// function deletes both input modules before it returns. 227 /// 228 static Expected<std::unique_ptr<Module>> 229 testMergedProgram(const BugDriver &BD, std::unique_ptr<Module> M1, 230 std::unique_ptr<Module> M2, bool &Broken) { 231 if (Linker::linkModules(*M1, std::move(M2))) 232 // TODO: Shouldn't we thread the error up instead of exiting? 233 exit(1); 234 235 // Execute the program. 236 Expected<bool> Diff = BD.diffProgram(M1.get(), "", "", false); 237 if (Error E = Diff.takeError()) 238 return std::move(E); 239 Broken = *Diff; 240 return std::move(M1); 241 } 242 243 /// TestFuncs - split functions in a Module into two groups: those that are 244 /// under consideration for miscompilation vs. those that are not, and test 245 /// accordingly. Each group of functions becomes a separate Module. 246 /// 247 Expected<bool> 248 ReduceMiscompilingFunctions::TestFuncs(const std::vector<Function *> &Funcs) { 249 // Test to see if the function is misoptimized if we ONLY run it on the 250 // functions listed in Funcs. 251 outs() << "Checking to see if the program is misoptimized when " 252 << (Funcs.size() == 1 ? "this function is" : "these functions are") 253 << " run through the pass" 254 << (BD.getPassesToRun().size() == 1 ? "" : "es") << ":"; 255 PrintFunctionList(Funcs); 256 outs() << '\n'; 257 258 // Create a clone for two reasons: 259 // * If the optimization passes delete any function, the deleted function 260 // will be in the clone and Funcs will still point to valid memory 261 // * If the optimization passes use interprocedural information to break 262 // a function, we want to continue with the original function. Otherwise 263 // we can conclude that a function triggers the bug when in fact one 264 // needs a larger set of original functions to do so. 265 ValueToValueMapTy VMap; 266 Module *Clone = CloneModule(BD.getProgram(), VMap).release(); 267 Module *Orig = BD.swapProgramIn(Clone); 268 269 std::vector<Function *> FuncsOnClone; 270 for (unsigned i = 0, e = Funcs.size(); i != e; ++i) { 271 Function *F = cast<Function>(VMap[Funcs[i]]); 272 FuncsOnClone.push_back(F); 273 } 274 275 // Split the module into the two halves of the program we want. 276 VMap.clear(); 277 std::unique_ptr<Module> ToNotOptimize = CloneModule(BD.getProgram(), VMap); 278 std::unique_ptr<Module> ToOptimize = 279 SplitFunctionsOutOfModule(ToNotOptimize.get(), FuncsOnClone, VMap); 280 281 Expected<bool> Broken = 282 TestFn(BD, std::move(ToOptimize), std::move(ToNotOptimize)); 283 284 delete BD.swapProgramIn(Orig); 285 286 return Broken; 287 } 288 289 /// DisambiguateGlobalSymbols - Give anonymous global values names. 290 /// 291 static void DisambiguateGlobalSymbols(Module *M) { 292 for (Module::global_iterator I = M->global_begin(), E = M->global_end(); 293 I != E; ++I) 294 if (!I->hasName()) 295 I->setName("anon_global"); 296 for (Module::iterator I = M->begin(), E = M->end(); I != E; ++I) 297 if (!I->hasName()) 298 I->setName("anon_fn"); 299 } 300 301 /// Given a reduced list of functions that still exposed the bug, check to see 302 /// if we can extract the loops in the region without obscuring the bug. If so, 303 /// it reduces the amount of code identified. 304 /// 305 static Expected<bool> 306 ExtractLoops(BugDriver &BD, 307 Expected<bool> (*TestFn)(BugDriver &, std::unique_ptr<Module>, 308 std::unique_ptr<Module>), 309 std::vector<Function *> &MiscompiledFunctions) { 310 bool MadeChange = false; 311 while (1) { 312 if (BugpointIsInterrupted) 313 return MadeChange; 314 315 ValueToValueMapTy VMap; 316 std::unique_ptr<Module> ToNotOptimize = CloneModule(BD.getProgram(), VMap); 317 Module *ToOptimize = SplitFunctionsOutOfModule(ToNotOptimize.get(), 318 MiscompiledFunctions, VMap) 319 .release(); 320 std::unique_ptr<Module> ToOptimizeLoopExtracted = 321 BD.extractLoop(ToOptimize); 322 if (!ToOptimizeLoopExtracted) { 323 // If the loop extractor crashed or if there were no extractible loops, 324 // then this chapter of our odyssey is over with. 325 delete ToOptimize; 326 return MadeChange; 327 } 328 329 errs() << "Extracted a loop from the breaking portion of the program.\n"; 330 331 // Bugpoint is intentionally not very trusting of LLVM transformations. In 332 // particular, we're not going to assume that the loop extractor works, so 333 // we're going to test the newly loop extracted program to make sure nothing 334 // has broken. If something broke, then we'll inform the user and stop 335 // extraction. 336 AbstractInterpreter *AI = BD.switchToSafeInterpreter(); 337 bool Failure; 338 Expected<std::unique_ptr<Module>> New = 339 testMergedProgram(BD, std::move(ToOptimizeLoopExtracted), 340 std::move(ToNotOptimize), Failure); 341 if (Error E = New.takeError()) 342 return std::move(E); 343 if (!*New) 344 return false; 345 346 // Delete the original and set the new program. 347 Module *Old = BD.swapProgramIn(New->release()); 348 for (unsigned i = 0, e = MiscompiledFunctions.size(); i != e; ++i) 349 MiscompiledFunctions[i] = cast<Function>(VMap[MiscompiledFunctions[i]]); 350 delete Old; 351 352 if (Failure) { 353 BD.switchToInterpreter(AI); 354 355 // Merged program doesn't work anymore! 356 errs() << " *** ERROR: Loop extraction broke the program. :(" 357 << " Please report a bug!\n"; 358 errs() << " Continuing on with un-loop-extracted version.\n"; 359 360 BD.writeProgramToFile(OutputPrefix + "-loop-extract-fail-tno.bc", 361 ToNotOptimize.get()); 362 BD.writeProgramToFile(OutputPrefix + "-loop-extract-fail-to.bc", 363 ToOptimize); 364 BD.writeProgramToFile(OutputPrefix + "-loop-extract-fail-to-le.bc", 365 ToOptimizeLoopExtracted.get()); 366 367 errs() << "Please submit the " << OutputPrefix 368 << "-loop-extract-fail-*.bc files.\n"; 369 delete ToOptimize; 370 return MadeChange; 371 } 372 delete ToOptimize; 373 BD.switchToInterpreter(AI); 374 375 outs() << " Testing after loop extraction:\n"; 376 // Clone modules, the tester function will free them. 377 std::unique_ptr<Module> TOLEBackup = 378 CloneModule(ToOptimizeLoopExtracted.get(), VMap); 379 std::unique_ptr<Module> TNOBackup = CloneModule(ToNotOptimize.get(), VMap); 380 381 for (unsigned i = 0, e = MiscompiledFunctions.size(); i != e; ++i) 382 MiscompiledFunctions[i] = cast<Function>(VMap[MiscompiledFunctions[i]]); 383 384 Expected<bool> Result = TestFn(BD, std::move(ToOptimizeLoopExtracted), 385 std::move(ToNotOptimize)); 386 if (Error E = Result.takeError()) 387 return std::move(E); 388 389 ToOptimizeLoopExtracted = std::move(TOLEBackup); 390 ToNotOptimize = std::move(TNOBackup); 391 392 if (!*Result) { 393 outs() << "*** Loop extraction masked the problem. Undoing.\n"; 394 // If the program is not still broken, then loop extraction did something 395 // that masked the error. Stop loop extraction now. 396 397 std::vector<std::pair<std::string, FunctionType *>> MisCompFunctions; 398 for (Function *F : MiscompiledFunctions) { 399 MisCompFunctions.emplace_back(F->getName(), F->getFunctionType()); 400 } 401 402 if (Linker::linkModules(*ToNotOptimize, 403 std::move(ToOptimizeLoopExtracted))) 404 exit(1); 405 406 MiscompiledFunctions.clear(); 407 for (unsigned i = 0, e = MisCompFunctions.size(); i != e; ++i) { 408 Function *NewF = ToNotOptimize->getFunction(MisCompFunctions[i].first); 409 410 assert(NewF && "Function not found??"); 411 MiscompiledFunctions.push_back(NewF); 412 } 413 414 BD.setNewProgram(ToNotOptimize.release()); 415 return MadeChange; 416 } 417 418 outs() << "*** Loop extraction successful!\n"; 419 420 std::vector<std::pair<std::string, FunctionType *>> MisCompFunctions; 421 for (Module::iterator I = ToOptimizeLoopExtracted->begin(), 422 E = ToOptimizeLoopExtracted->end(); 423 I != E; ++I) 424 if (!I->isDeclaration()) 425 MisCompFunctions.emplace_back(I->getName(), I->getFunctionType()); 426 427 // Okay, great! Now we know that we extracted a loop and that loop 428 // extraction both didn't break the program, and didn't mask the problem. 429 // Replace the current program with the loop extracted version, and try to 430 // extract another loop. 431 if (Linker::linkModules(*ToNotOptimize, std::move(ToOptimizeLoopExtracted))) 432 exit(1); 433 434 // All of the Function*'s in the MiscompiledFunctions list are in the old 435 // module. Update this list to include all of the functions in the 436 // optimized and loop extracted module. 437 MiscompiledFunctions.clear(); 438 for (unsigned i = 0, e = MisCompFunctions.size(); i != e; ++i) { 439 Function *NewF = ToNotOptimize->getFunction(MisCompFunctions[i].first); 440 441 assert(NewF && "Function not found??"); 442 MiscompiledFunctions.push_back(NewF); 443 } 444 445 BD.setNewProgram(ToNotOptimize.release()); 446 MadeChange = true; 447 } 448 } 449 450 namespace { 451 class ReduceMiscompiledBlocks : public ListReducer<BasicBlock *> { 452 BugDriver &BD; 453 Expected<bool> (*TestFn)(BugDriver &, std::unique_ptr<Module>, 454 std::unique_ptr<Module>); 455 std::vector<Function *> FunctionsBeingTested; 456 457 public: 458 ReduceMiscompiledBlocks(BugDriver &bd, 459 Expected<bool> (*F)(BugDriver &, 460 std::unique_ptr<Module>, 461 std::unique_ptr<Module>), 462 const std::vector<Function *> &Fns) 463 : BD(bd), TestFn(F), FunctionsBeingTested(Fns) {} 464 465 Expected<TestResult> doTest(std::vector<BasicBlock *> &Prefix, 466 std::vector<BasicBlock *> &Suffix) override { 467 if (!Suffix.empty()) { 468 Expected<bool> Ret = TestFuncs(Suffix); 469 if (Error E = Ret.takeError()) 470 return std::move(E); 471 if (*Ret) 472 return KeepSuffix; 473 } 474 if (!Prefix.empty()) { 475 Expected<bool> Ret = TestFuncs(Prefix); 476 if (Error E = Ret.takeError()) 477 return std::move(E); 478 if (*Ret) 479 return KeepPrefix; 480 } 481 return NoFailure; 482 } 483 484 Expected<bool> TestFuncs(const std::vector<BasicBlock *> &BBs); 485 }; 486 } // end anonymous namespace 487 488 /// TestFuncs - Extract all blocks for the miscompiled functions except for the 489 /// specified blocks. If the problem still exists, return true. 490 /// 491 Expected<bool> 492 ReduceMiscompiledBlocks::TestFuncs(const std::vector<BasicBlock *> &BBs) { 493 // Test to see if the function is misoptimized if we ONLY run it on the 494 // functions listed in Funcs. 495 outs() << "Checking to see if the program is misoptimized when all "; 496 if (!BBs.empty()) { 497 outs() << "but these " << BBs.size() << " blocks are extracted: "; 498 for (unsigned i = 0, e = BBs.size() < 10 ? BBs.size() : 10; i != e; ++i) 499 outs() << BBs[i]->getName() << " "; 500 if (BBs.size() > 10) 501 outs() << "..."; 502 } else { 503 outs() << "blocks are extracted."; 504 } 505 outs() << '\n'; 506 507 // Split the module into the two halves of the program we want. 508 ValueToValueMapTy VMap; 509 Module *Clone = CloneModule(BD.getProgram(), VMap).release(); 510 Module *Orig = BD.swapProgramIn(Clone); 511 std::vector<Function *> FuncsOnClone; 512 std::vector<BasicBlock *> BBsOnClone; 513 for (unsigned i = 0, e = FunctionsBeingTested.size(); i != e; ++i) { 514 Function *F = cast<Function>(VMap[FunctionsBeingTested[i]]); 515 FuncsOnClone.push_back(F); 516 } 517 for (unsigned i = 0, e = BBs.size(); i != e; ++i) { 518 BasicBlock *BB = cast<BasicBlock>(VMap[BBs[i]]); 519 BBsOnClone.push_back(BB); 520 } 521 VMap.clear(); 522 523 std::unique_ptr<Module> ToNotOptimize = CloneModule(BD.getProgram(), VMap); 524 std::unique_ptr<Module> ToOptimize = 525 SplitFunctionsOutOfModule(ToNotOptimize.get(), FuncsOnClone, VMap); 526 527 // Try the extraction. If it doesn't work, then the block extractor crashed 528 // or something, in which case bugpoint can't chase down this possibility. 529 if (std::unique_ptr<Module> New = 530 BD.extractMappedBlocksFromModule(BBsOnClone, ToOptimize.get())) { 531 Expected<bool> Ret = TestFn(BD, std::move(New), std::move(ToNotOptimize)); 532 delete BD.swapProgramIn(Orig); 533 return Ret; 534 } 535 delete BD.swapProgramIn(Orig); 536 return false; 537 } 538 539 /// Given a reduced list of functions that still expose the bug, extract as many 540 /// basic blocks from the region as possible without obscuring the bug. 541 /// 542 static Expected<bool> 543 ExtractBlocks(BugDriver &BD, 544 Expected<bool> (*TestFn)(BugDriver &, std::unique_ptr<Module>, 545 std::unique_ptr<Module>), 546 std::vector<Function *> &MiscompiledFunctions) { 547 if (BugpointIsInterrupted) 548 return false; 549 550 std::vector<BasicBlock *> Blocks; 551 for (unsigned i = 0, e = MiscompiledFunctions.size(); i != e; ++i) 552 for (BasicBlock &BB : *MiscompiledFunctions[i]) 553 Blocks.push_back(&BB); 554 555 // Use the list reducer to identify blocks that can be extracted without 556 // obscuring the bug. The Blocks list will end up containing blocks that must 557 // be retained from the original program. 558 unsigned OldSize = Blocks.size(); 559 560 // Check to see if all blocks are extractible first. 561 Expected<bool> Ret = ReduceMiscompiledBlocks(BD, TestFn, MiscompiledFunctions) 562 .TestFuncs(std::vector<BasicBlock *>()); 563 if (Error E = Ret.takeError()) 564 return std::move(E); 565 if (*Ret) { 566 Blocks.clear(); 567 } else { 568 Expected<bool> Ret = 569 ReduceMiscompiledBlocks(BD, TestFn, MiscompiledFunctions) 570 .reduceList(Blocks); 571 if (Error E = Ret.takeError()) 572 return std::move(E); 573 if (Blocks.size() == OldSize) 574 return false; 575 } 576 577 ValueToValueMapTy VMap; 578 Module *ProgClone = CloneModule(BD.getProgram(), VMap).release(); 579 Module *ToExtract = 580 SplitFunctionsOutOfModule(ProgClone, MiscompiledFunctions, VMap) 581 .release(); 582 std::unique_ptr<Module> Extracted = 583 BD.extractMappedBlocksFromModule(Blocks, ToExtract); 584 if (!Extracted) { 585 // Weird, extraction should have worked. 586 errs() << "Nondeterministic problem extracting blocks??\n"; 587 delete ProgClone; 588 delete ToExtract; 589 return false; 590 } 591 592 // Otherwise, block extraction succeeded. Link the two program fragments back 593 // together. 594 delete ToExtract; 595 596 std::vector<std::pair<std::string, FunctionType *>> MisCompFunctions; 597 for (Module::iterator I = Extracted->begin(), E = Extracted->end(); I != E; 598 ++I) 599 if (!I->isDeclaration()) 600 MisCompFunctions.emplace_back(I->getName(), I->getFunctionType()); 601 602 if (Linker::linkModules(*ProgClone, std::move(Extracted))) 603 exit(1); 604 605 // Set the new program and delete the old one. 606 BD.setNewProgram(ProgClone); 607 608 // Update the list of miscompiled functions. 609 MiscompiledFunctions.clear(); 610 611 for (unsigned i = 0, e = MisCompFunctions.size(); i != e; ++i) { 612 Function *NewF = ProgClone->getFunction(MisCompFunctions[i].first); 613 assert(NewF && "Function not found??"); 614 MiscompiledFunctions.push_back(NewF); 615 } 616 617 return true; 618 } 619 620 /// This is a generic driver to narrow down miscompilations, either in an 621 /// optimization or a code generator. 622 /// 623 static Expected<std::vector<Function *>> DebugAMiscompilation( 624 BugDriver &BD, 625 Expected<bool> (*TestFn)(BugDriver &, std::unique_ptr<Module>, 626 std::unique_ptr<Module>)) { 627 // Okay, now that we have reduced the list of passes which are causing the 628 // failure, see if we can pin down which functions are being 629 // miscompiled... first build a list of all of the non-external functions in 630 // the program. 631 std::vector<Function *> MiscompiledFunctions; 632 Module *Prog = BD.getProgram(); 633 for (Function &F : *Prog) 634 if (!F.isDeclaration()) 635 MiscompiledFunctions.push_back(&F); 636 637 // Do the reduction... 638 if (!BugpointIsInterrupted) { 639 Expected<bool> Ret = ReduceMiscompilingFunctions(BD, TestFn) 640 .reduceList(MiscompiledFunctions); 641 if (Error E = Ret.takeError()) { 642 errs() << "\n***Cannot reduce functions: "; 643 return std::move(E); 644 } 645 } 646 outs() << "\n*** The following function" 647 << (MiscompiledFunctions.size() == 1 ? " is" : "s are") 648 << " being miscompiled: "; 649 PrintFunctionList(MiscompiledFunctions); 650 outs() << '\n'; 651 652 // See if we can rip any loops out of the miscompiled functions and still 653 // trigger the problem. 654 655 if (!BugpointIsInterrupted && !DisableLoopExtraction) { 656 Expected<bool> Ret = ExtractLoops(BD, TestFn, MiscompiledFunctions); 657 if (Error E = Ret.takeError()) 658 return std::move(E); 659 if (*Ret) { 660 // Okay, we extracted some loops and the problem still appears. See if 661 // we can eliminate some of the created functions from being candidates. 662 DisambiguateGlobalSymbols(BD.getProgram()); 663 664 // Do the reduction... 665 if (!BugpointIsInterrupted) 666 Ret = ReduceMiscompilingFunctions(BD, TestFn) 667 .reduceList(MiscompiledFunctions); 668 if (Error E = Ret.takeError()) 669 return std::move(E); 670 671 outs() << "\n*** The following function" 672 << (MiscompiledFunctions.size() == 1 ? " is" : "s are") 673 << " being miscompiled: "; 674 PrintFunctionList(MiscompiledFunctions); 675 outs() << '\n'; 676 } 677 } 678 679 if (!BugpointIsInterrupted && !DisableBlockExtraction) { 680 Expected<bool> Ret = ExtractBlocks(BD, TestFn, MiscompiledFunctions); 681 if (Error E = Ret.takeError()) 682 return std::move(E); 683 if (*Ret) { 684 // Okay, we extracted some blocks and the problem still appears. See if 685 // we can eliminate some of the created functions from being candidates. 686 DisambiguateGlobalSymbols(BD.getProgram()); 687 688 // Do the reduction... 689 Ret = ReduceMiscompilingFunctions(BD, TestFn) 690 .reduceList(MiscompiledFunctions); 691 if (Error E = Ret.takeError()) 692 return std::move(E); 693 694 outs() << "\n*** The following function" 695 << (MiscompiledFunctions.size() == 1 ? " is" : "s are") 696 << " being miscompiled: "; 697 PrintFunctionList(MiscompiledFunctions); 698 outs() << '\n'; 699 } 700 } 701 702 return MiscompiledFunctions; 703 } 704 705 /// This is the predicate function used to check to see if the "Test" portion of 706 /// the program is misoptimized. If so, return true. In any case, both module 707 /// arguments are deleted. 708 /// 709 static Expected<bool> TestOptimizer(BugDriver &BD, std::unique_ptr<Module> Test, 710 std::unique_ptr<Module> Safe) { 711 // Run the optimization passes on ToOptimize, producing a transformed version 712 // of the functions being tested. 713 outs() << " Optimizing functions being tested: "; 714 std::unique_ptr<Module> Optimized = 715 BD.runPassesOn(Test.get(), BD.getPassesToRun()); 716 if (!Optimized) { 717 errs() << " Error running this sequence of passes" 718 << " on the input program!\n"; 719 delete BD.swapProgramIn(Test.get()); 720 BD.EmitProgressBitcode(Test.get(), "pass-error", false); 721 if (Error E = BD.debugOptimizerCrash()) 722 return std::move(E); 723 return false; 724 } 725 outs() << "done.\n"; 726 727 outs() << " Checking to see if the merged program executes correctly: "; 728 bool Broken; 729 auto Result = 730 testMergedProgram(BD, std::move(Optimized), std::move(Safe), Broken); 731 if (Error E = Result.takeError()) 732 return std::move(E); 733 if (auto New = std::move(*Result)) { 734 outs() << (Broken ? " nope.\n" : " yup.\n"); 735 // Delete the original and set the new program. 736 delete BD.swapProgramIn(New.release()); 737 } 738 return Broken; 739 } 740 741 /// debugMiscompilation - This method is used when the passes selected are not 742 /// crashing, but the generated output is semantically different from the 743 /// input. 744 /// 745 Error BugDriver::debugMiscompilation() { 746 // Make sure something was miscompiled... 747 if (!BugpointIsInterrupted) { 748 Expected<bool> Result = 749 ReduceMiscompilingPasses(*this).reduceList(PassesToRun); 750 if (Error E = Result.takeError()) 751 return E; 752 if (!*Result) 753 return make_error<StringError>( 754 "*** Optimized program matches reference output! No problem" 755 " detected...\nbugpoint can't help you with your problem!\n", 756 inconvertibleErrorCode()); 757 } 758 759 outs() << "\n*** Found miscompiling pass" 760 << (getPassesToRun().size() == 1 ? "" : "es") << ": " 761 << getPassesString(getPassesToRun()) << '\n'; 762 EmitProgressBitcode(Program, "passinput"); 763 764 Expected<std::vector<Function *>> MiscompiledFunctions = 765 DebugAMiscompilation(*this, TestOptimizer); 766 if (Error E = MiscompiledFunctions.takeError()) 767 return E; 768 769 // Output a bunch of bitcode files for the user... 770 outs() << "Outputting reduced bitcode files which expose the problem:\n"; 771 ValueToValueMapTy VMap; 772 Module *ToNotOptimize = CloneModule(getProgram(), VMap).release(); 773 Module *ToOptimize = 774 SplitFunctionsOutOfModule(ToNotOptimize, *MiscompiledFunctions, VMap) 775 .release(); 776 777 outs() << " Non-optimized portion: "; 778 EmitProgressBitcode(ToNotOptimize, "tonotoptimize", true); 779 delete ToNotOptimize; // Delete hacked module. 780 781 outs() << " Portion that is input to optimizer: "; 782 EmitProgressBitcode(ToOptimize, "tooptimize"); 783 delete ToOptimize; // Delete hacked module. 784 785 return Error::success(); 786 } 787 788 /// Get the specified modules ready for code generator testing. 789 /// 790 static void CleanupAndPrepareModules(BugDriver &BD, 791 std::unique_ptr<Module> &Test, 792 Module *Safe) { 793 // Clean up the modules, removing extra cruft that we don't need anymore... 794 Test = BD.performFinalCleanups(Test.get()); 795 796 // If we are executing the JIT, we have several nasty issues to take care of. 797 if (!BD.isExecutingJIT()) 798 return; 799 800 // First, if the main function is in the Safe module, we must add a stub to 801 // the Test module to call into it. Thus, we create a new function `main' 802 // which just calls the old one. 803 if (Function *oldMain = Safe->getFunction("main")) 804 if (!oldMain->isDeclaration()) { 805 // Rename it 806 oldMain->setName("llvm_bugpoint_old_main"); 807 // Create a NEW `main' function with same type in the test module. 808 Function *newMain = 809 Function::Create(oldMain->getFunctionType(), 810 GlobalValue::ExternalLinkage, "main", Test.get()); 811 // Create an `oldmain' prototype in the test module, which will 812 // corresponds to the real main function in the same module. 813 Function *oldMainProto = Function::Create(oldMain->getFunctionType(), 814 GlobalValue::ExternalLinkage, 815 oldMain->getName(), Test.get()); 816 // Set up and remember the argument list for the main function. 817 std::vector<Value *> args; 818 for (Function::arg_iterator I = newMain->arg_begin(), 819 E = newMain->arg_end(), 820 OI = oldMain->arg_begin(); 821 I != E; ++I, ++OI) { 822 I->setName(OI->getName()); // Copy argument names from oldMain 823 args.push_back(&*I); 824 } 825 826 // Call the old main function and return its result 827 BasicBlock *BB = BasicBlock::Create(Safe->getContext(), "entry", newMain); 828 CallInst *call = CallInst::Create(oldMainProto, args, "", BB); 829 830 // If the type of old function wasn't void, return value of call 831 ReturnInst::Create(Safe->getContext(), call, BB); 832 } 833 834 // The second nasty issue we must deal with in the JIT is that the Safe 835 // module cannot directly reference any functions defined in the test 836 // module. Instead, we use a JIT API call to dynamically resolve the 837 // symbol. 838 839 // Add the resolver to the Safe module. 840 // Prototype: void *getPointerToNamedFunction(const char* Name) 841 Constant *resolverFunc = Safe->getOrInsertFunction( 842 "getPointerToNamedFunction", Type::getInt8PtrTy(Safe->getContext()), 843 Type::getInt8PtrTy(Safe->getContext()), (Type *)nullptr); 844 845 // Use the function we just added to get addresses of functions we need. 846 for (Module::iterator F = Safe->begin(), E = Safe->end(); F != E; ++F) { 847 if (F->isDeclaration() && !F->use_empty() && &*F != resolverFunc && 848 !F->isIntrinsic() /* ignore intrinsics */) { 849 Function *TestFn = Test->getFunction(F->getName()); 850 851 // Don't forward functions which are external in the test module too. 852 if (TestFn && !TestFn->isDeclaration()) { 853 // 1. Add a string constant with its name to the global file 854 Constant *InitArray = 855 ConstantDataArray::getString(F->getContext(), F->getName()); 856 GlobalVariable *funcName = new GlobalVariable( 857 *Safe, InitArray->getType(), true /*isConstant*/, 858 GlobalValue::InternalLinkage, InitArray, F->getName() + "_name"); 859 860 // 2. Use `GetElementPtr *funcName, 0, 0' to convert the string to an 861 // sbyte* so it matches the signature of the resolver function. 862 863 // GetElementPtr *funcName, ulong 0, ulong 0 864 std::vector<Constant *> GEPargs( 865 2, Constant::getNullValue(Type::getInt32Ty(F->getContext()))); 866 Value *GEP = ConstantExpr::getGetElementPtr(InitArray->getType(), 867 funcName, GEPargs); 868 std::vector<Value *> ResolverArgs; 869 ResolverArgs.push_back(GEP); 870 871 // Rewrite uses of F in global initializers, etc. to uses of a wrapper 872 // function that dynamically resolves the calls to F via our JIT API 873 if (!F->use_empty()) { 874 // Create a new global to hold the cached function pointer. 875 Constant *NullPtr = ConstantPointerNull::get(F->getType()); 876 GlobalVariable *Cache = new GlobalVariable( 877 *F->getParent(), F->getType(), false, 878 GlobalValue::InternalLinkage, NullPtr, F->getName() + ".fpcache"); 879 880 // Construct a new stub function that will re-route calls to F 881 FunctionType *FuncTy = F->getFunctionType(); 882 Function *FuncWrapper = 883 Function::Create(FuncTy, GlobalValue::InternalLinkage, 884 F->getName() + "_wrapper", F->getParent()); 885 BasicBlock *EntryBB = 886 BasicBlock::Create(F->getContext(), "entry", FuncWrapper); 887 BasicBlock *DoCallBB = 888 BasicBlock::Create(F->getContext(), "usecache", FuncWrapper); 889 BasicBlock *LookupBB = 890 BasicBlock::Create(F->getContext(), "lookupfp", FuncWrapper); 891 892 // Check to see if we already looked up the value. 893 Value *CachedVal = new LoadInst(Cache, "fpcache", EntryBB); 894 Value *IsNull = new ICmpInst(*EntryBB, ICmpInst::ICMP_EQ, CachedVal, 895 NullPtr, "isNull"); 896 BranchInst::Create(LookupBB, DoCallBB, IsNull, EntryBB); 897 898 // Resolve the call to function F via the JIT API: 899 // 900 // call resolver(GetElementPtr...) 901 CallInst *Resolver = CallInst::Create(resolverFunc, ResolverArgs, 902 "resolver", LookupBB); 903 904 // Cast the result from the resolver to correctly-typed function. 905 CastInst *CastedResolver = new BitCastInst( 906 Resolver, PointerType::getUnqual(F->getFunctionType()), 907 "resolverCast", LookupBB); 908 909 // Save the value in our cache. 910 new StoreInst(CastedResolver, Cache, LookupBB); 911 BranchInst::Create(DoCallBB, LookupBB); 912 913 PHINode *FuncPtr = 914 PHINode::Create(NullPtr->getType(), 2, "fp", DoCallBB); 915 FuncPtr->addIncoming(CastedResolver, LookupBB); 916 FuncPtr->addIncoming(CachedVal, EntryBB); 917 918 // Save the argument list. 919 std::vector<Value *> Args; 920 for (Argument &A : FuncWrapper->args()) 921 Args.push_back(&A); 922 923 // Pass on the arguments to the real function, return its result 924 if (F->getReturnType()->isVoidTy()) { 925 CallInst::Create(FuncPtr, Args, "", DoCallBB); 926 ReturnInst::Create(F->getContext(), DoCallBB); 927 } else { 928 CallInst *Call = 929 CallInst::Create(FuncPtr, Args, "retval", DoCallBB); 930 ReturnInst::Create(F->getContext(), Call, DoCallBB); 931 } 932 933 // Use the wrapper function instead of the old function 934 F->replaceAllUsesWith(FuncWrapper); 935 } 936 } 937 } 938 } 939 940 if (verifyModule(*Test) || verifyModule(*Safe)) { 941 errs() << "Bugpoint has a bug, which corrupted a module!!\n"; 942 abort(); 943 } 944 } 945 946 /// This is the predicate function used to check to see if the "Test" portion of 947 /// the program is miscompiled by the code generator under test. If so, return 948 /// true. In any case, both module arguments are deleted. 949 /// 950 static Expected<bool> TestCodeGenerator(BugDriver &BD, 951 std::unique_ptr<Module> Test, 952 std::unique_ptr<Module> Safe) { 953 CleanupAndPrepareModules(BD, Test, Safe.get()); 954 955 SmallString<128> TestModuleBC; 956 int TestModuleFD; 957 std::error_code EC = sys::fs::createTemporaryFile("bugpoint.test", "bc", 958 TestModuleFD, TestModuleBC); 959 if (EC) { 960 errs() << BD.getToolName() 961 << "Error making unique filename: " << EC.message() << "\n"; 962 exit(1); 963 } 964 if (BD.writeProgramToFile(TestModuleBC.str(), TestModuleFD, Test.get())) { 965 errs() << "Error writing bitcode to `" << TestModuleBC.str() 966 << "'\nExiting."; 967 exit(1); 968 } 969 970 FileRemover TestModuleBCRemover(TestModuleBC.str(), !SaveTemps); 971 972 // Make the shared library 973 SmallString<128> SafeModuleBC; 974 int SafeModuleFD; 975 EC = sys::fs::createTemporaryFile("bugpoint.safe", "bc", SafeModuleFD, 976 SafeModuleBC); 977 if (EC) { 978 errs() << BD.getToolName() 979 << "Error making unique filename: " << EC.message() << "\n"; 980 exit(1); 981 } 982 983 if (BD.writeProgramToFile(SafeModuleBC.str(), SafeModuleFD, Safe.get())) { 984 errs() << "Error writing bitcode to `" << SafeModuleBC << "'\nExiting."; 985 exit(1); 986 } 987 988 FileRemover SafeModuleBCRemover(SafeModuleBC.str(), !SaveTemps); 989 990 Expected<std::string> SharedObject = 991 BD.compileSharedObject(SafeModuleBC.str()); 992 if (Error E = SharedObject.takeError()) 993 return std::move(E); 994 995 FileRemover SharedObjectRemover(*SharedObject, !SaveTemps); 996 997 // Run the code generator on the `Test' code, loading the shared library. 998 // The function returns whether or not the new output differs from reference. 999 Expected<bool> Result = 1000 BD.diffProgram(BD.getProgram(), TestModuleBC.str(), *SharedObject, false); 1001 if (Error E = Result.takeError()) 1002 return std::move(E); 1003 1004 if (*Result) 1005 errs() << ": still failing!\n"; 1006 else 1007 errs() << ": didn't fail.\n"; 1008 1009 return Result; 1010 } 1011 1012 /// debugCodeGenerator - debug errors in LLC, LLI, or CBE. 1013 /// 1014 Error BugDriver::debugCodeGenerator() { 1015 if ((void *)SafeInterpreter == (void *)Interpreter) { 1016 Expected<std::string> Result = 1017 executeProgramSafely(Program, "bugpoint.safe.out"); 1018 if (Result) { 1019 outs() << "\n*** The \"safe\" i.e. 'known good' backend cannot match " 1020 << "the reference diff. This may be due to a\n front-end " 1021 << "bug or a bug in the original program, but this can also " 1022 << "happen if bugpoint isn't running the program with the " 1023 << "right flags or input.\n I left the result of executing " 1024 << "the program with the \"safe\" backend in this file for " 1025 << "you: '" << *Result << "'.\n"; 1026 } 1027 return Error::success(); 1028 } 1029 1030 DisambiguateGlobalSymbols(Program); 1031 1032 Expected<std::vector<Function *>> Funcs = 1033 DebugAMiscompilation(*this, TestCodeGenerator); 1034 if (Error E = Funcs.takeError()) 1035 return E; 1036 1037 // Split the module into the two halves of the program we want. 1038 ValueToValueMapTy VMap; 1039 std::unique_ptr<Module> ToNotCodeGen = CloneModule(getProgram(), VMap); 1040 std::unique_ptr<Module> ToCodeGen = 1041 SplitFunctionsOutOfModule(ToNotCodeGen.get(), *Funcs, VMap); 1042 1043 // Condition the modules 1044 CleanupAndPrepareModules(*this, ToCodeGen, ToNotCodeGen.get()); 1045 1046 SmallString<128> TestModuleBC; 1047 int TestModuleFD; 1048 std::error_code EC = sys::fs::createTemporaryFile("bugpoint.test", "bc", 1049 TestModuleFD, TestModuleBC); 1050 if (EC) { 1051 errs() << getToolName() << "Error making unique filename: " << EC.message() 1052 << "\n"; 1053 exit(1); 1054 } 1055 1056 if (writeProgramToFile(TestModuleBC.str(), TestModuleFD, ToCodeGen.get())) { 1057 errs() << "Error writing bitcode to `" << TestModuleBC << "'\nExiting."; 1058 exit(1); 1059 } 1060 1061 // Make the shared library 1062 SmallString<128> SafeModuleBC; 1063 int SafeModuleFD; 1064 EC = sys::fs::createTemporaryFile("bugpoint.safe", "bc", SafeModuleFD, 1065 SafeModuleBC); 1066 if (EC) { 1067 errs() << getToolName() << "Error making unique filename: " << EC.message() 1068 << "\n"; 1069 exit(1); 1070 } 1071 1072 if (writeProgramToFile(SafeModuleBC.str(), SafeModuleFD, 1073 ToNotCodeGen.get())) { 1074 errs() << "Error writing bitcode to `" << SafeModuleBC << "'\nExiting."; 1075 exit(1); 1076 } 1077 Expected<std::string> SharedObject = compileSharedObject(SafeModuleBC.str()); 1078 if (Error E = SharedObject.takeError()) 1079 return E; 1080 1081 outs() << "You can reproduce the problem with the command line: \n"; 1082 if (isExecutingJIT()) { 1083 outs() << " lli -load " << *SharedObject << " " << TestModuleBC; 1084 } else { 1085 outs() << " llc " << TestModuleBC << " -o " << TestModuleBC << ".s\n"; 1086 outs() << " cc " << *SharedObject << " " << TestModuleBC.str() << ".s -o " 1087 << TestModuleBC << ".exe\n"; 1088 outs() << " ./" << TestModuleBC << ".exe"; 1089 } 1090 for (unsigned i = 0, e = InputArgv.size(); i != e; ++i) 1091 outs() << " " << InputArgv[i]; 1092 outs() << '\n'; 1093 outs() << "The shared object was created with:\n llc -march=c " 1094 << SafeModuleBC.str() << " -o temporary.c\n" 1095 << " cc -xc temporary.c -O2 -o " << *SharedObject; 1096 if (TargetTriple.getArch() == Triple::sparc) 1097 outs() << " -G"; // Compile a shared library, `-G' for Sparc 1098 else 1099 outs() << " -fPIC -shared"; // `-shared' for Linux/X86, maybe others 1100 1101 outs() << " -fno-strict-aliasing\n"; 1102 1103 return Error::success(); 1104 } 1105