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Dan Gohmanf17a25c2007-07-18 16:29:46 +00001//===- Miscompilation.cpp - Debug program miscompilations -----------------===//
2//
3// The LLVM Compiler Infrastructure
4//
Chris Lattner5f5a5732007-12-29 20:44:31 +00005// This file is distributed under the University of Illinois Open Source
6// License. See LICENSE.TXT for details.
Dan Gohmanf17a25c2007-07-18 16:29:46 +00007//
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 "llvm/Constants.h"
18#include "llvm/DerivedTypes.h"
19#include "llvm/Instructions.h"
20#include "llvm/Linker.h"
21#include "llvm/Module.h"
22#include "llvm/Pass.h"
23#include "llvm/Analysis/Verifier.h"
24#include "llvm/Support/Mangler.h"
25#include "llvm/Transforms/Utils/Cloning.h"
26#include "llvm/Support/CommandLine.h"
27#include "llvm/Support/FileUtilities.h"
28#include "llvm/Config/config.h" // for HAVE_LINK_R
29using namespace llvm;
30
31namespace llvm {
32 extern cl::list<std::string> InputArgv;
33}
34
35namespace {
36 static llvm::cl::opt<bool>
37 DisableLoopExtraction("disable-loop-extraction",
38 cl::desc("Don't extract loops when searching for miscompilations"),
39 cl::init(false));
40
41 class ReduceMiscompilingPasses : public ListReducer<const PassInfo*> {
42 BugDriver &BD;
43 public:
44 ReduceMiscompilingPasses(BugDriver &bd) : BD(bd) {}
45
46 virtual TestResult doTest(std::vector<const PassInfo*> &Prefix,
47 std::vector<const PassInfo*> &Suffix);
48 };
49}
50
51/// TestResult - After passes have been split into a test group and a control
52/// group, see if they still break the program.
53///
54ReduceMiscompilingPasses::TestResult
55ReduceMiscompilingPasses::doTest(std::vector<const PassInfo*> &Prefix,
56 std::vector<const PassInfo*> &Suffix) {
57 // First, run the program with just the Suffix passes. If it is still broken
58 // with JUST the kept passes, discard the prefix passes.
59 std::cout << "Checking to see if '" << getPassesString(Suffix)
David Goodwinec1edba2009-07-10 21:39:28 +000060 << "' compiles correctly: ";
Dan Gohmanf17a25c2007-07-18 16:29:46 +000061
62 std::string BitcodeResult;
63 if (BD.runPasses(Suffix, BitcodeResult, false/*delete*/, true/*quiet*/)) {
64 std::cerr << " Error running this sequence of passes"
65 << " on the input program!\n";
66 BD.setPassesToRun(Suffix);
67 BD.EmitProgressBitcode("pass-error", false);
68 exit(BD.debugOptimizerCrash());
69 }
Owen Anderson9f5b2aa2009-07-14 23:09:55 +000070
Dan Gohmanf17a25c2007-07-18 16:29:46 +000071 // Check to see if the finished program matches the reference output...
72 if (BD.diffProgram(BitcodeResult, "", true /*delete bitcode*/)) {
73 std::cout << " nope.\n";
74 if (Suffix.empty()) {
75 std::cerr << BD.getToolName() << ": I'm confused: the test fails when "
76 << "no passes are run, nondeterministic program?\n";
77 exit(1);
78 }
79 return KeepSuffix; // Miscompilation detected!
80 }
81 std::cout << " yup.\n"; // No miscompilation!
82
83 if (Prefix.empty()) return NoFailure;
84
85 // Next, see if the program is broken if we run the "prefix" passes first,
86 // then separately run the "kept" passes.
87 std::cout << "Checking to see if '" << getPassesString(Prefix)
David Goodwinec1edba2009-07-10 21:39:28 +000088 << "' compiles correctly: ";
Dan Gohmanf17a25c2007-07-18 16:29:46 +000089
90 // If it is not broken with the kept passes, it's possible that the prefix
91 // passes must be run before the kept passes to break it. If the program
92 // WORKS after the prefix passes, but then fails if running the prefix AND
93 // kept passes, we can update our bitcode file to include the result of the
94 // prefix passes, then discard the prefix passes.
95 //
96 if (BD.runPasses(Prefix, BitcodeResult, false/*delete*/, true/*quiet*/)) {
97 std::cerr << " Error running this sequence of passes"
98 << " on the input program!\n";
99 BD.setPassesToRun(Prefix);
100 BD.EmitProgressBitcode("pass-error", false);
101 exit(BD.debugOptimizerCrash());
102 }
103
104 // If the prefix maintains the predicate by itself, only keep the prefix!
105 if (BD.diffProgram(BitcodeResult)) {
106 std::cout << " nope.\n";
107 sys::Path(BitcodeResult).eraseFromDisk();
108 return KeepPrefix;
109 }
110 std::cout << " yup.\n"; // No miscompilation!
111
112 // Ok, so now we know that the prefix passes work, try running the suffix
113 // passes on the result of the prefix passes.
114 //
Owen Anderson25209b42009-07-01 16:58:40 +0000115 Module *PrefixOutput = ParseInputFile(BitcodeResult, BD.getContext());
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000116 if (PrefixOutput == 0) {
117 std::cerr << BD.getToolName() << ": Error reading bitcode file '"
118 << BitcodeResult << "'!\n";
119 exit(1);
120 }
121 sys::Path(BitcodeResult).eraseFromDisk(); // No longer need the file on disk
122
123 // Don't check if there are no passes in the suffix.
124 if (Suffix.empty())
125 return NoFailure;
126
127 std::cout << "Checking to see if '" << getPassesString(Suffix)
128 << "' passes compile correctly after the '"
129 << getPassesString(Prefix) << "' passes: ";
130
131 Module *OriginalInput = BD.swapProgramIn(PrefixOutput);
132 if (BD.runPasses(Suffix, BitcodeResult, false/*delete*/, true/*quiet*/)) {
133 std::cerr << " Error running this sequence of passes"
134 << " on the input program!\n";
135 BD.setPassesToRun(Suffix);
136 BD.EmitProgressBitcode("pass-error", false);
137 exit(BD.debugOptimizerCrash());
138 }
139
140 // Run the result...
141 if (BD.diffProgram(BitcodeResult, "", true/*delete bitcode*/)) {
142 std::cout << " nope.\n";
143 delete OriginalInput; // We pruned down the original input...
144 return KeepSuffix;
145 }
146
147 // Otherwise, we must not be running the bad pass anymore.
148 std::cout << " yup.\n"; // No miscompilation!
149 delete BD.swapProgramIn(OriginalInput); // Restore orig program & free test
150 return NoFailure;
151}
152
153namespace {
154 class ReduceMiscompilingFunctions : public ListReducer<Function*> {
155 BugDriver &BD;
156 bool (*TestFn)(BugDriver &, Module *, Module *);
157 public:
158 ReduceMiscompilingFunctions(BugDriver &bd,
159 bool (*F)(BugDriver &, Module *, Module *))
160 : BD(bd), TestFn(F) {}
161
162 virtual TestResult doTest(std::vector<Function*> &Prefix,
163 std::vector<Function*> &Suffix) {
164 if (!Suffix.empty() && TestFuncs(Suffix))
165 return KeepSuffix;
166 if (!Prefix.empty() && TestFuncs(Prefix))
167 return KeepPrefix;
168 return NoFailure;
169 }
170
171 bool TestFuncs(const std::vector<Function*> &Prefix);
172 };
173}
174
175/// TestMergedProgram - Given two modules, link them together and run the
176/// program, checking to see if the program matches the diff. If the diff
177/// matches, return false, otherwise return true. If the DeleteInputs argument
178/// is set to true then this function deletes both input modules before it
179/// returns.
180///
181static bool TestMergedProgram(BugDriver &BD, Module *M1, Module *M2,
182 bool DeleteInputs) {
183 // Link the two portions of the program back to together.
184 std::string ErrorMsg;
185 if (!DeleteInputs) {
186 M1 = CloneModule(M1);
187 M2 = CloneModule(M2);
188 }
189 if (Linker::LinkModules(M1, M2, &ErrorMsg)) {
190 std::cerr << BD.getToolName() << ": Error linking modules together:"
191 << ErrorMsg << '\n';
192 exit(1);
193 }
194 delete M2; // We are done with this module.
195
196 Module *OldProgram = BD.swapProgramIn(M1);
197
198 // Execute the program. If it does not match the expected output, we must
199 // return true.
200 bool Broken = BD.diffProgram();
201
202 // Delete the linked module & restore the original
203 BD.swapProgramIn(OldProgram);
204 delete M1;
205 return Broken;
206}
207
208/// TestFuncs - split functions in a Module into two groups: those that are
209/// under consideration for miscompilation vs. those that are not, and test
210/// accordingly. Each group of functions becomes a separate Module.
211///
212bool ReduceMiscompilingFunctions::TestFuncs(const std::vector<Function*>&Funcs){
213 // Test to see if the function is misoptimized if we ONLY run it on the
214 // functions listed in Funcs.
215 std::cout << "Checking to see if the program is misoptimized when "
216 << (Funcs.size()==1 ? "this function is" : "these functions are")
217 << " run through the pass"
218 << (BD.getPassesToRun().size() == 1 ? "" : "es") << ":";
219 PrintFunctionList(Funcs);
220 std::cout << '\n';
221
222 // Split the module into the two halves of the program we want.
Dan Gohman819b9562009-04-22 15:57:18 +0000223 DenseMap<const Value*, Value*> ValueMap;
224 Module *ToNotOptimize = CloneModule(BD.getProgram(), ValueMap);
225 Module *ToOptimize = SplitFunctionsOutOfModule(ToNotOptimize, Funcs,
226 ValueMap);
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000227
Nick Lewycky43e736d2007-11-14 06:47:06 +0000228 // Run the predicate, note that the predicate will delete both input modules.
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000229 return TestFn(BD, ToOptimize, ToNotOptimize);
230}
231
232/// DisambiguateGlobalSymbols - Mangle symbols to guarantee uniqueness by
233/// modifying predominantly internal symbols rather than external ones.
234///
235static void DisambiguateGlobalSymbols(Module *M) {
236 // Try not to cause collisions by minimizing chances of renaming an
237 // already-external symbol, so take in external globals and functions as-is.
238 // The code should work correctly without disambiguation (assuming the same
239 // mangler is used by the two code generators), but having symbols with the
240 // same name causes warnings to be emitted by the code generator.
241 Mangler Mang(*M);
242 // Agree with the CBE on symbol naming
243 Mang.markCharUnacceptable('.');
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000244 for (Module::global_iterator I = M->global_begin(), E = M->global_end();
Chris Lattner98a5ca12009-07-15 04:50:47 +0000245 I != E; ++I) {
246 // Don't mangle asm names.
247 if (!I->hasName() || I->getName()[0] != 1)
248 I->setName(Mang.getMangledName(I));
249 }
250 for (Module::iterator I = M->begin(), E = M->end(); I != E; ++I) {
251 // Don't mangle asm names.
252 if (!I->hasName() || I->getName()[0] != 1)
253 I->setName(Mang.getMangledName(I));
254 }
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000255}
256
257/// ExtractLoops - Given a reduced list of functions that still exposed the bug,
258/// check to see if we can extract the loops in the region without obscuring the
259/// bug. If so, it reduces the amount of code identified.
260///
261static bool ExtractLoops(BugDriver &BD,
262 bool (*TestFn)(BugDriver &, Module *, Module *),
263 std::vector<Function*> &MiscompiledFunctions) {
264 bool MadeChange = false;
265 while (1) {
266 if (BugpointIsInterrupted) return MadeChange;
267
Dan Gohman819b9562009-04-22 15:57:18 +0000268 DenseMap<const Value*, Value*> ValueMap;
269 Module *ToNotOptimize = CloneModule(BD.getProgram(), ValueMap);
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000270 Module *ToOptimize = SplitFunctionsOutOfModule(ToNotOptimize,
Dan Gohman819b9562009-04-22 15:57:18 +0000271 MiscompiledFunctions,
272 ValueMap);
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000273 Module *ToOptimizeLoopExtracted = BD.ExtractLoop(ToOptimize);
274 if (!ToOptimizeLoopExtracted) {
275 // If the loop extractor crashed or if there were no extractible loops,
276 // then this chapter of our odyssey is over with.
277 delete ToNotOptimize;
278 delete ToOptimize;
279 return MadeChange;
280 }
281
282 std::cerr << "Extracted a loop from the breaking portion of the program.\n";
283
284 // Bugpoint is intentionally not very trusting of LLVM transformations. In
285 // particular, we're not going to assume that the loop extractor works, so
286 // we're going to test the newly loop extracted program to make sure nothing
287 // has broken. If something broke, then we'll inform the user and stop
288 // extraction.
Dan Gohman7fb02ed2008-12-08 04:02:47 +0000289 AbstractInterpreter *AI = BD.switchToSafeInterpreter();
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000290 if (TestMergedProgram(BD, ToOptimizeLoopExtracted, ToNotOptimize, false)) {
291 BD.switchToInterpreter(AI);
292
293 // Merged program doesn't work anymore!
294 std::cerr << " *** ERROR: Loop extraction broke the program. :("
295 << " Please report a bug!\n";
296 std::cerr << " Continuing on with un-loop-extracted version.\n";
297
298 BD.writeProgramToFile("bugpoint-loop-extract-fail-tno.bc", ToNotOptimize);
299 BD.writeProgramToFile("bugpoint-loop-extract-fail-to.bc", ToOptimize);
300 BD.writeProgramToFile("bugpoint-loop-extract-fail-to-le.bc",
301 ToOptimizeLoopExtracted);
302
303 std::cerr << "Please submit the bugpoint-loop-extract-fail-*.bc files.\n";
304 delete ToOptimize;
305 delete ToNotOptimize;
306 delete ToOptimizeLoopExtracted;
307 return MadeChange;
308 }
309 delete ToOptimize;
310 BD.switchToInterpreter(AI);
311
312 std::cout << " Testing after loop extraction:\n";
313 // Clone modules, the tester function will free them.
314 Module *TOLEBackup = CloneModule(ToOptimizeLoopExtracted);
315 Module *TNOBackup = CloneModule(ToNotOptimize);
316 if (!TestFn(BD, ToOptimizeLoopExtracted, ToNotOptimize)) {
317 std::cout << "*** Loop extraction masked the problem. Undoing.\n";
318 // If the program is not still broken, then loop extraction did something
319 // that masked the error. Stop loop extraction now.
320 delete TOLEBackup;
321 delete TNOBackup;
322 return MadeChange;
323 }
324 ToOptimizeLoopExtracted = TOLEBackup;
325 ToNotOptimize = TNOBackup;
326
327 std::cout << "*** Loop extraction successful!\n";
328
329 std::vector<std::pair<std::string, const FunctionType*> > MisCompFunctions;
330 for (Module::iterator I = ToOptimizeLoopExtracted->begin(),
331 E = ToOptimizeLoopExtracted->end(); I != E; ++I)
332 if (!I->isDeclaration())
333 MisCompFunctions.push_back(std::make_pair(I->getName(),
334 I->getFunctionType()));
335
336 // Okay, great! Now we know that we extracted a loop and that loop
337 // extraction both didn't break the program, and didn't mask the problem.
338 // Replace the current program with the loop extracted version, and try to
339 // extract another loop.
340 std::string ErrorMsg;
341 if (Linker::LinkModules(ToNotOptimize, ToOptimizeLoopExtracted, &ErrorMsg)){
342 std::cerr << BD.getToolName() << ": Error linking modules together:"
343 << ErrorMsg << '\n';
344 exit(1);
345 }
346 delete ToOptimizeLoopExtracted;
347
348 // All of the Function*'s in the MiscompiledFunctions list are in the old
349 // module. Update this list to include all of the functions in the
350 // optimized and loop extracted module.
351 MiscompiledFunctions.clear();
352 for (unsigned i = 0, e = MisCompFunctions.size(); i != e; ++i) {
353 Function *NewF = ToNotOptimize->getFunction(MisCompFunctions[i].first);
354
355 assert(NewF && "Function not found??");
356 assert(NewF->getFunctionType() == MisCompFunctions[i].second &&
357 "found wrong function type?");
358 MiscompiledFunctions.push_back(NewF);
359 }
360
361 BD.setNewProgram(ToNotOptimize);
362 MadeChange = true;
363 }
364}
365
366namespace {
367 class ReduceMiscompiledBlocks : public ListReducer<BasicBlock*> {
368 BugDriver &BD;
369 bool (*TestFn)(BugDriver &, Module *, Module *);
370 std::vector<Function*> FunctionsBeingTested;
371 public:
372 ReduceMiscompiledBlocks(BugDriver &bd,
373 bool (*F)(BugDriver &, Module *, Module *),
374 const std::vector<Function*> &Fns)
375 : BD(bd), TestFn(F), FunctionsBeingTested(Fns) {}
376
377 virtual TestResult doTest(std::vector<BasicBlock*> &Prefix,
378 std::vector<BasicBlock*> &Suffix) {
379 if (!Suffix.empty() && TestFuncs(Suffix))
380 return KeepSuffix;
381 if (TestFuncs(Prefix))
382 return KeepPrefix;
383 return NoFailure;
384 }
385
386 bool TestFuncs(const std::vector<BasicBlock*> &Prefix);
387 };
388}
389
390/// TestFuncs - Extract all blocks for the miscompiled functions except for the
391/// specified blocks. If the problem still exists, return true.
392///
393bool ReduceMiscompiledBlocks::TestFuncs(const std::vector<BasicBlock*> &BBs) {
394 // Test to see if the function is misoptimized if we ONLY run it on the
395 // functions listed in Funcs.
396 std::cout << "Checking to see if the program is misoptimized when all ";
397 if (!BBs.empty()) {
398 std::cout << "but these " << BBs.size() << " blocks are extracted: ";
399 for (unsigned i = 0, e = BBs.size() < 10 ? BBs.size() : 10; i != e; ++i)
400 std::cout << BBs[i]->getName() << " ";
401 if (BBs.size() > 10) std::cout << "...";
402 } else {
403 std::cout << "blocks are extracted.";
404 }
405 std::cout << '\n';
406
407 // Split the module into the two halves of the program we want.
Dan Gohman819b9562009-04-22 15:57:18 +0000408 DenseMap<const Value*, Value*> ValueMap;
409 Module *ToNotOptimize = CloneModule(BD.getProgram(), ValueMap);
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000410 Module *ToOptimize = SplitFunctionsOutOfModule(ToNotOptimize,
Dan Gohman819b9562009-04-22 15:57:18 +0000411 FunctionsBeingTested,
412 ValueMap);
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000413
414 // Try the extraction. If it doesn't work, then the block extractor crashed
415 // or something, in which case bugpoint can't chase down this possibility.
416 if (Module *New = BD.ExtractMappedBlocksFromModule(BBs, ToOptimize)) {
417 delete ToOptimize;
418 // Run the predicate, not that the predicate will delete both input modules.
419 return TestFn(BD, New, ToNotOptimize);
420 }
421 delete ToOptimize;
422 delete ToNotOptimize;
423 return false;
424}
425
426
427/// ExtractBlocks - Given a reduced list of functions that still expose the bug,
428/// extract as many basic blocks from the region as possible without obscuring
429/// the bug.
430///
431static bool ExtractBlocks(BugDriver &BD,
432 bool (*TestFn)(BugDriver &, Module *, Module *),
433 std::vector<Function*> &MiscompiledFunctions) {
434 if (BugpointIsInterrupted) return false;
435
436 std::vector<BasicBlock*> Blocks;
437 for (unsigned i = 0, e = MiscompiledFunctions.size(); i != e; ++i)
438 for (Function::iterator I = MiscompiledFunctions[i]->begin(),
439 E = MiscompiledFunctions[i]->end(); I != E; ++I)
440 Blocks.push_back(I);
441
442 // Use the list reducer to identify blocks that can be extracted without
443 // obscuring the bug. The Blocks list will end up containing blocks that must
444 // be retained from the original program.
445 unsigned OldSize = Blocks.size();
446
447 // Check to see if all blocks are extractible first.
448 if (ReduceMiscompiledBlocks(BD, TestFn,
449 MiscompiledFunctions).TestFuncs(std::vector<BasicBlock*>())) {
450 Blocks.clear();
451 } else {
452 ReduceMiscompiledBlocks(BD, TestFn,MiscompiledFunctions).reduceList(Blocks);
453 if (Blocks.size() == OldSize)
454 return false;
455 }
456
Dan Gohman819b9562009-04-22 15:57:18 +0000457 DenseMap<const Value*, Value*> ValueMap;
458 Module *ProgClone = CloneModule(BD.getProgram(), ValueMap);
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000459 Module *ToExtract = SplitFunctionsOutOfModule(ProgClone,
Dan Gohman819b9562009-04-22 15:57:18 +0000460 MiscompiledFunctions,
461 ValueMap);
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000462 Module *Extracted = BD.ExtractMappedBlocksFromModule(Blocks, ToExtract);
463 if (Extracted == 0) {
464 // Weird, extraction should have worked.
465 std::cerr << "Nondeterministic problem extracting blocks??\n";
466 delete ProgClone;
467 delete ToExtract;
468 return false;
469 }
470
471 // Otherwise, block extraction succeeded. Link the two program fragments back
472 // together.
473 delete ToExtract;
474
475 std::vector<std::pair<std::string, const FunctionType*> > MisCompFunctions;
476 for (Module::iterator I = Extracted->begin(), E = Extracted->end();
477 I != E; ++I)
478 if (!I->isDeclaration())
479 MisCompFunctions.push_back(std::make_pair(I->getName(),
480 I->getFunctionType()));
481
482 std::string ErrorMsg;
483 if (Linker::LinkModules(ProgClone, Extracted, &ErrorMsg)) {
484 std::cerr << BD.getToolName() << ": Error linking modules together:"
485 << ErrorMsg << '\n';
486 exit(1);
487 }
488 delete Extracted;
489
490 // Set the new program and delete the old one.
491 BD.setNewProgram(ProgClone);
492
493 // Update the list of miscompiled functions.
494 MiscompiledFunctions.clear();
495
496 for (unsigned i = 0, e = MisCompFunctions.size(); i != e; ++i) {
497 Function *NewF = ProgClone->getFunction(MisCompFunctions[i].first);
498 assert(NewF && "Function not found??");
499 assert(NewF->getFunctionType() == MisCompFunctions[i].second &&
500 "Function has wrong type??");
501 MiscompiledFunctions.push_back(NewF);
502 }
503
504 return true;
505}
506
507
508/// DebugAMiscompilation - This is a generic driver to narrow down
509/// miscompilations, either in an optimization or a code generator.
510///
511static std::vector<Function*>
512DebugAMiscompilation(BugDriver &BD,
513 bool (*TestFn)(BugDriver &, Module *, Module *)) {
514 // Okay, now that we have reduced the list of passes which are causing the
515 // failure, see if we can pin down which functions are being
516 // miscompiled... first build a list of all of the non-external functions in
517 // the program.
518 std::vector<Function*> MiscompiledFunctions;
519 Module *Prog = BD.getProgram();
520 for (Module::iterator I = Prog->begin(), E = Prog->end(); I != E; ++I)
521 if (!I->isDeclaration())
522 MiscompiledFunctions.push_back(I);
523
524 // Do the reduction...
525 if (!BugpointIsInterrupted)
526 ReduceMiscompilingFunctions(BD, TestFn).reduceList(MiscompiledFunctions);
527
528 std::cout << "\n*** The following function"
529 << (MiscompiledFunctions.size() == 1 ? " is" : "s are")
530 << " being miscompiled: ";
531 PrintFunctionList(MiscompiledFunctions);
532 std::cout << '\n';
533
534 // See if we can rip any loops out of the miscompiled functions and still
535 // trigger the problem.
536
537 if (!BugpointIsInterrupted && !DisableLoopExtraction &&
538 ExtractLoops(BD, TestFn, MiscompiledFunctions)) {
539 // Okay, we extracted some loops and the problem still appears. See if we
540 // can eliminate some of the created functions from being candidates.
541
542 // Loop extraction can introduce functions with the same name (foo_code).
543 // Make sure to disambiguate the symbols so that when the program is split
544 // apart that we can link it back together again.
545 DisambiguateGlobalSymbols(BD.getProgram());
546
547 // Do the reduction...
548 if (!BugpointIsInterrupted)
549 ReduceMiscompilingFunctions(BD, TestFn).reduceList(MiscompiledFunctions);
550
551 std::cout << "\n*** The following function"
552 << (MiscompiledFunctions.size() == 1 ? " is" : "s are")
553 << " being miscompiled: ";
554 PrintFunctionList(MiscompiledFunctions);
555 std::cout << '\n';
556 }
557
558 if (!BugpointIsInterrupted &&
559 ExtractBlocks(BD, TestFn, MiscompiledFunctions)) {
560 // Okay, we extracted some blocks and the problem still appears. See if we
561 // can eliminate some of the created functions from being candidates.
562
563 // Block extraction can introduce functions with the same name (foo_code).
564 // Make sure to disambiguate the symbols so that when the program is split
565 // apart that we can link it back together again.
566 DisambiguateGlobalSymbols(BD.getProgram());
567
568 // Do the reduction...
569 ReduceMiscompilingFunctions(BD, TestFn).reduceList(MiscompiledFunctions);
570
571 std::cout << "\n*** The following function"
572 << (MiscompiledFunctions.size() == 1 ? " is" : "s are")
573 << " being miscompiled: ";
574 PrintFunctionList(MiscompiledFunctions);
575 std::cout << '\n';
576 }
577
578 return MiscompiledFunctions;
579}
580
581/// TestOptimizer - This is the predicate function used to check to see if the
582/// "Test" portion of the program is misoptimized. If so, return true. In any
583/// case, both module arguments are deleted.
584///
585static bool TestOptimizer(BugDriver &BD, Module *Test, Module *Safe) {
586 // Run the optimization passes on ToOptimize, producing a transformed version
587 // of the functions being tested.
588 std::cout << " Optimizing functions being tested: ";
589 Module *Optimized = BD.runPassesOn(Test, BD.getPassesToRun(),
590 /*AutoDebugCrashes*/true);
591 std::cout << "done.\n";
592 delete Test;
593
594 std::cout << " Checking to see if the merged program executes correctly: ";
595 bool Broken = TestMergedProgram(BD, Optimized, Safe, true);
596 std::cout << (Broken ? " nope.\n" : " yup.\n");
597 return Broken;
598}
599
600
601/// debugMiscompilation - This method is used when the passes selected are not
602/// crashing, but the generated output is semantically different from the
603/// input.
604///
605bool BugDriver::debugMiscompilation() {
606 // Make sure something was miscompiled...
607 if (!BugpointIsInterrupted)
608 if (!ReduceMiscompilingPasses(*this).reduceList(PassesToRun)) {
609 std::cerr << "*** Optimized program matches reference output! No problem"
610 << " detected...\nbugpoint can't help you with your problem!\n";
611 return false;
612 }
613
614 std::cout << "\n*** Found miscompiling pass"
615 << (getPassesToRun().size() == 1 ? "" : "es") << ": "
616 << getPassesString(getPassesToRun()) << '\n';
617 EmitProgressBitcode("passinput");
618
619 std::vector<Function*> MiscompiledFunctions =
620 DebugAMiscompilation(*this, TestOptimizer);
621
622 // Output a bunch of bitcode files for the user...
623 std::cout << "Outputting reduced bitcode files which expose the problem:\n";
Dan Gohman819b9562009-04-22 15:57:18 +0000624 DenseMap<const Value*, Value*> ValueMap;
625 Module *ToNotOptimize = CloneModule(getProgram(), ValueMap);
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000626 Module *ToOptimize = SplitFunctionsOutOfModule(ToNotOptimize,
Dan Gohman819b9562009-04-22 15:57:18 +0000627 MiscompiledFunctions,
628 ValueMap);
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000629
630 std::cout << " Non-optimized portion: ";
631 ToNotOptimize = swapProgramIn(ToNotOptimize);
632 EmitProgressBitcode("tonotoptimize", true);
633 setNewProgram(ToNotOptimize); // Delete hacked module.
634
635 std::cout << " Portion that is input to optimizer: ";
636 ToOptimize = swapProgramIn(ToOptimize);
637 EmitProgressBitcode("tooptimize");
638 setNewProgram(ToOptimize); // Delete hacked module.
639
640 return false;
641}
642
643/// CleanupAndPrepareModules - Get the specified modules ready for code
644/// generator testing.
645///
646static void CleanupAndPrepareModules(BugDriver &BD, Module *&Test,
647 Module *Safe) {
Owen Anderson9f5b2aa2009-07-14 23:09:55 +0000648 LLVMContext &Context = BD.getContext();
649
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000650 // Clean up the modules, removing extra cruft that we don't need anymore...
651 Test = BD.performFinalCleanups(Test);
652
653 // If we are executing the JIT, we have several nasty issues to take care of.
654 if (!BD.isExecutingJIT()) return;
655
656 // First, if the main function is in the Safe module, we must add a stub to
657 // the Test module to call into it. Thus, we create a new function `main'
658 // which just calls the old one.
659 if (Function *oldMain = Safe->getFunction("main"))
660 if (!oldMain->isDeclaration()) {
661 // Rename it
662 oldMain->setName("llvm_bugpoint_old_main");
663 // Create a NEW `main' function with same type in the test module.
Gabor Greifd6da1d02008-04-06 20:25:17 +0000664 Function *newMain = Function::Create(oldMain->getFunctionType(),
665 GlobalValue::ExternalLinkage,
666 "main", Test);
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000667 // Create an `oldmain' prototype in the test module, which will
668 // corresponds to the real main function in the same module.
Gabor Greifd6da1d02008-04-06 20:25:17 +0000669 Function *oldMainProto = Function::Create(oldMain->getFunctionType(),
670 GlobalValue::ExternalLinkage,
671 oldMain->getName(), Test);
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000672 // Set up and remember the argument list for the main function.
673 std::vector<Value*> args;
674 for (Function::arg_iterator
675 I = newMain->arg_begin(), E = newMain->arg_end(),
676 OI = oldMain->arg_begin(); I != E; ++I, ++OI) {
Owen Andersonab567f82008-04-14 17:38:21 +0000677 I->setName(OI->getName()); // Copy argument names from oldMain
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000678 args.push_back(I);
679 }
680
681 // Call the old main function and return its result
Gabor Greifd6da1d02008-04-06 20:25:17 +0000682 BasicBlock *BB = BasicBlock::Create("entry", newMain);
683 CallInst *call = CallInst::Create(oldMainProto, args.begin(), args.end(),
684 "", BB);
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000685
686 // If the type of old function wasn't void, return value of call
Gabor Greifd6da1d02008-04-06 20:25:17 +0000687 ReturnInst::Create(call, BB);
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000688 }
689
690 // The second nasty issue we must deal with in the JIT is that the Safe
691 // module cannot directly reference any functions defined in the test
692 // module. Instead, we use a JIT API call to dynamically resolve the
693 // symbol.
694
695 // Add the resolver to the Safe module.
696 // Prototype: void *getPointerToNamedFunction(const char* Name)
697 Constant *resolverFunc =
698 Safe->getOrInsertFunction("getPointerToNamedFunction",
Owen Anderson9f5b2aa2009-07-14 23:09:55 +0000699 Context.getPointerTypeUnqual(Type::Int8Ty),
700 Context.getPointerTypeUnqual(Type::Int8Ty), (Type *)0);
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000701
702 // Use the function we just added to get addresses of functions we need.
703 for (Module::iterator F = Safe->begin(), E = Safe->end(); F != E; ++F) {
704 if (F->isDeclaration() && !F->use_empty() && &*F != resolverFunc &&
Duncan Sands79d28872007-12-03 20:06:50 +0000705 !F->isIntrinsic() /* ignore intrinsics */) {
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000706 Function *TestFn = Test->getFunction(F->getName());
707
708 // Don't forward functions which are external in the test module too.
709 if (TestFn && !TestFn->isDeclaration()) {
710 // 1. Add a string constant with its name to the global file
Owen Anderson9f5b2aa2009-07-14 23:09:55 +0000711 Constant *InitArray = Context.getConstantArray(F->getName());
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000712 GlobalVariable *funcName =
Owen Andersone17fc1d2009-07-08 19:03:57 +0000713 new GlobalVariable(*Safe, InitArray->getType(), true /*isConstant*/,
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000714 GlobalValue::InternalLinkage, InitArray,
Owen Andersone17fc1d2009-07-08 19:03:57 +0000715 F->getName() + "_name");
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000716
717 // 2. Use `GetElementPtr *funcName, 0, 0' to convert the string to an
718 // sbyte* so it matches the signature of the resolver function.
719
720 // GetElementPtr *funcName, ulong 0, ulong 0
Owen Anderson9f5b2aa2009-07-14 23:09:55 +0000721 std::vector<Constant*> GEPargs(2, Context.getNullValue(Type::Int32Ty));
722 Value *GEP =
723 Context.getConstantExprGetElementPtr(funcName, &GEPargs[0], 2);
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000724 std::vector<Value*> ResolverArgs;
725 ResolverArgs.push_back(GEP);
726
727 // Rewrite uses of F in global initializers, etc. to uses of a wrapper
728 // function that dynamically resolves the calls to F via our JIT API
729 if (!F->use_empty()) {
730 // Create a new global to hold the cached function pointer.
Owen Anderson9f5b2aa2009-07-14 23:09:55 +0000731 Constant *NullPtr = Context.getConstantPointerNull(F->getType());
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000732 GlobalVariable *Cache =
Owen Andersone17fc1d2009-07-08 19:03:57 +0000733 new GlobalVariable(*F->getParent(), F->getType(),
734 false, GlobalValue::InternalLinkage,
735 NullPtr,F->getName()+".fpcache");
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000736
737 // Construct a new stub function that will re-route calls to F
738 const FunctionType *FuncTy = F->getFunctionType();
Gabor Greifd6da1d02008-04-06 20:25:17 +0000739 Function *FuncWrapper = Function::Create(FuncTy,
740 GlobalValue::InternalLinkage,
741 F->getName() + "_wrapper",
742 F->getParent());
743 BasicBlock *EntryBB = BasicBlock::Create("entry", FuncWrapper);
744 BasicBlock *DoCallBB = BasicBlock::Create("usecache", FuncWrapper);
745 BasicBlock *LookupBB = BasicBlock::Create("lookupfp", FuncWrapper);
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000746
747 // Check to see if we already looked up the value.
748 Value *CachedVal = new LoadInst(Cache, "fpcache", EntryBB);
Owen Anderson6601fcd2009-07-09 23:48:35 +0000749 Value *IsNull = new ICmpInst(*EntryBB, ICmpInst::ICMP_EQ, CachedVal,
750 NullPtr, "isNull");
Gabor Greifd6da1d02008-04-06 20:25:17 +0000751 BranchInst::Create(LookupBB, DoCallBB, IsNull, EntryBB);
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000752
753 // Resolve the call to function F via the JIT API:
754 //
755 // call resolver(GetElementPtr...)
Gabor Greifb91ea9d2008-05-15 10:04:30 +0000756 CallInst *Resolver =
757 CallInst::Create(resolverFunc, ResolverArgs.begin(),
758 ResolverArgs.end(), "resolver", LookupBB);
759
760 // Cast the result from the resolver to correctly-typed function.
761 CastInst *CastedResolver =
762 new BitCastInst(Resolver,
Owen Anderson9f5b2aa2009-07-14 23:09:55 +0000763 Context.getPointerTypeUnqual(F->getFunctionType()),
Gabor Greifb91ea9d2008-05-15 10:04:30 +0000764 "resolverCast", LookupBB);
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000765
766 // Save the value in our cache.
767 new StoreInst(CastedResolver, Cache, LookupBB);
Gabor Greifd6da1d02008-04-06 20:25:17 +0000768 BranchInst::Create(DoCallBB, LookupBB);
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000769
Gabor Greifb91ea9d2008-05-15 10:04:30 +0000770 PHINode *FuncPtr = PHINode::Create(NullPtr->getType(),
771 "fp", DoCallBB);
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000772 FuncPtr->addIncoming(CastedResolver, LookupBB);
773 FuncPtr->addIncoming(CachedVal, EntryBB);
774
775 // Save the argument list.
776 std::vector<Value*> Args;
777 for (Function::arg_iterator i = FuncWrapper->arg_begin(),
778 e = FuncWrapper->arg_end(); i != e; ++i)
779 Args.push_back(i);
780
781 // Pass on the arguments to the real function, return its result
782 if (F->getReturnType() == Type::VoidTy) {
Gabor Greifd6da1d02008-04-06 20:25:17 +0000783 CallInst::Create(FuncPtr, Args.begin(), Args.end(), "", DoCallBB);
784 ReturnInst::Create(DoCallBB);
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000785 } else {
Gabor Greifd6da1d02008-04-06 20:25:17 +0000786 CallInst *Call = CallInst::Create(FuncPtr, Args.begin(), Args.end(),
787 "retval", DoCallBB);
788 ReturnInst::Create(Call, DoCallBB);
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000789 }
790
791 // Use the wrapper function instead of the old function
792 F->replaceAllUsesWith(FuncWrapper);
793 }
794 }
795 }
796 }
797
798 if (verifyModule(*Test) || verifyModule(*Safe)) {
799 std::cerr << "Bugpoint has a bug, which corrupted a module!!\n";
800 abort();
801 }
802}
803
804
805
806/// TestCodeGenerator - This is the predicate function used to check to see if
807/// the "Test" portion of the program is miscompiled by the code generator under
808/// test. If so, return true. In any case, both module arguments are deleted.
809///
810static bool TestCodeGenerator(BugDriver &BD, Module *Test, Module *Safe) {
811 CleanupAndPrepareModules(BD, Test, Safe);
812
813 sys::Path TestModuleBC("bugpoint.test.bc");
814 std::string ErrMsg;
815 if (TestModuleBC.makeUnique(true, &ErrMsg)) {
816 std::cerr << BD.getToolName() << "Error making unique filename: "
817 << ErrMsg << "\n";
818 exit(1);
819 }
820 if (BD.writeProgramToFile(TestModuleBC.toString(), Test)) {
821 std::cerr << "Error writing bitcode to `" << TestModuleBC << "'\nExiting.";
822 exit(1);
823 }
824 delete Test;
825
826 // Make the shared library
827 sys::Path SafeModuleBC("bugpoint.safe.bc");
828 if (SafeModuleBC.makeUnique(true, &ErrMsg)) {
829 std::cerr << BD.getToolName() << "Error making unique filename: "
830 << ErrMsg << "\n";
831 exit(1);
832 }
833
834 if (BD.writeProgramToFile(SafeModuleBC.toString(), Safe)) {
835 std::cerr << "Error writing bitcode to `" << SafeModuleBC << "'\nExiting.";
836 exit(1);
837 }
838 std::string SharedObject = BD.compileSharedObject(SafeModuleBC.toString());
839 delete Safe;
840
841 // Run the code generator on the `Test' code, loading the shared library.
842 // The function returns whether or not the new output differs from reference.
843 int Result = BD.diffProgram(TestModuleBC.toString(), SharedObject, false);
844
845 if (Result)
846 std::cerr << ": still failing!\n";
847 else
848 std::cerr << ": didn't fail.\n";
849 TestModuleBC.eraseFromDisk();
850 SafeModuleBC.eraseFromDisk();
851 sys::Path(SharedObject).eraseFromDisk();
852
853 return Result;
854}
855
856
857/// debugCodeGenerator - debug errors in LLC, LLI, or CBE.
858///
859bool BugDriver::debugCodeGenerator() {
Dan Gohman7fb02ed2008-12-08 04:02:47 +0000860 if ((void*)SafeInterpreter == (void*)Interpreter) {
861 std::string Result = executeProgramSafely("bugpoint.safe.out");
862 std::cout << "\n*** The \"safe\" i.e. 'known good' backend cannot match "
863 << "the reference diff. This may be due to a\n front-end "
864 << "bug or a bug in the original program, but this can also "
865 << "happen if bugpoint isn't running the program with the "
866 << "right flags or input.\n I left the result of executing "
867 << "the program with the \"safe\" backend in this file for "
868 << "you: '"
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000869 << Result << "'.\n";
870 return true;
871 }
872
873 DisambiguateGlobalSymbols(Program);
874
875 std::vector<Function*> Funcs = DebugAMiscompilation(*this, TestCodeGenerator);
876
877 // Split the module into the two halves of the program we want.
Dan Gohman819b9562009-04-22 15:57:18 +0000878 DenseMap<const Value*, Value*> ValueMap;
879 Module *ToNotCodeGen = CloneModule(getProgram(), ValueMap);
880 Module *ToCodeGen = SplitFunctionsOutOfModule(ToNotCodeGen, Funcs, ValueMap);
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000881
882 // Condition the modules
883 CleanupAndPrepareModules(*this, ToCodeGen, ToNotCodeGen);
884
885 sys::Path TestModuleBC("bugpoint.test.bc");
886 std::string ErrMsg;
887 if (TestModuleBC.makeUnique(true, &ErrMsg)) {
888 std::cerr << getToolName() << "Error making unique filename: "
889 << ErrMsg << "\n";
890 exit(1);
891 }
892
893 if (writeProgramToFile(TestModuleBC.toString(), ToCodeGen)) {
894 std::cerr << "Error writing bitcode to `" << TestModuleBC << "'\nExiting.";
895 exit(1);
896 }
897 delete ToCodeGen;
898
899 // Make the shared library
900 sys::Path SafeModuleBC("bugpoint.safe.bc");
901 if (SafeModuleBC.makeUnique(true, &ErrMsg)) {
902 std::cerr << getToolName() << "Error making unique filename: "
903 << ErrMsg << "\n";
904 exit(1);
905 }
906
907 if (writeProgramToFile(SafeModuleBC.toString(), ToNotCodeGen)) {
908 std::cerr << "Error writing bitcode to `" << SafeModuleBC << "'\nExiting.";
909 exit(1);
910 }
911 std::string SharedObject = compileSharedObject(SafeModuleBC.toString());
912 delete ToNotCodeGen;
913
914 std::cout << "You can reproduce the problem with the command line: \n";
915 if (isExecutingJIT()) {
916 std::cout << " lli -load " << SharedObject << " " << TestModuleBC;
917 } else {
918 std::cout << " llc -f " << TestModuleBC << " -o " << TestModuleBC<< ".s\n";
919 std::cout << " gcc " << SharedObject << " " << TestModuleBC
920 << ".s -o " << TestModuleBC << ".exe";
921#if defined (HAVE_LINK_R)
922 std::cout << " -Wl,-R.";
923#endif
924 std::cout << "\n";
925 std::cout << " " << TestModuleBC << ".exe";
926 }
927 for (unsigned i=0, e = InputArgv.size(); i != e; ++i)
928 std::cout << " " << InputArgv[i];
929 std::cout << '\n';
930 std::cout << "The shared object was created with:\n llc -march=c "
931 << SafeModuleBC << " -o temporary.c\n"
932 << " gcc -xc temporary.c -O2 -o " << SharedObject
933#if defined(sparc) || defined(__sparc__) || defined(__sparcv9)
934 << " -G" // Compile a shared library, `-G' for Sparc
935#else
Edwin Török35594fa2008-04-06 12:42:29 +0000936 << " -fPIC -shared" // `-shared' for Linux/X86, maybe others
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000937#endif
938 << " -fno-strict-aliasing\n";
939
940 return false;
941}