1 //===- BugDriver.cpp - Top-Level BugPoint class implementation ------------===// 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 class contains all of the shared state and information that is used by 11 // the BugPoint tool to track down errors in optimizations. This class is the 12 // main driver class that invokes all sub-functionality. 13 // 14 //===----------------------------------------------------------------------===// 15 16 #include "BugDriver.h" 17 #include "ToolRunner.h" 18 #include "llvm/Linker.h" 19 #include "llvm/Module.h" 20 #include "llvm/Pass.h" 21 #include "llvm/Support/IRReader.h" 22 #include "llvm/Support/CommandLine.h" 23 #include "llvm/Support/FileUtilities.h" 24 #include "llvm/Support/MemoryBuffer.h" 25 #include "llvm/Support/SourceMgr.h" 26 #include "llvm/Support/raw_ostream.h" 27 #include "llvm/System/Host.h" 28 #include <memory> 29 using namespace llvm; 30 31 namespace llvm { 32 Triple TargetTriple; 33 } 34 35 // Anonymous namespace to define command line options for debugging. 36 // 37 namespace { 38 // Output - The user can specify a file containing the expected output of the 39 // program. If this filename is set, it is used as the reference diff source, 40 // otherwise the raw input run through an interpreter is used as the reference 41 // source. 42 // 43 cl::opt<std::string> 44 OutputFile("output", cl::desc("Specify a reference program output " 45 "(for miscompilation detection)")); 46 } 47 48 /// setNewProgram - If we reduce or update the program somehow, call this method 49 /// to update bugdriver with it. This deletes the old module and sets the 50 /// specified one as the current program. 51 void BugDriver::setNewProgram(Module *M) { 52 delete Program; 53 Program = M; 54 } 55 56 57 /// getPassesString - Turn a list of passes into a string which indicates the 58 /// command line options that must be passed to add the passes. 59 /// 60 std::string llvm::getPassesString(const std::vector<const PassInfo*> &Passes) { 61 std::string Result; 62 for (unsigned i = 0, e = Passes.size(); i != e; ++i) { 63 if (i) Result += " "; 64 Result += "-"; 65 Result += Passes[i]->getPassArgument(); 66 } 67 return Result; 68 } 69 70 BugDriver::BugDriver(const char *toolname, bool as_child, bool find_bugs, 71 unsigned timeout, unsigned memlimit, 72 LLVMContext& ctxt) 73 : Context(ctxt), ToolName(toolname), ReferenceOutputFile(OutputFile), 74 Program(0), Interpreter(0), SafeInterpreter(0), gcc(0), 75 run_as_child(as_child), run_find_bugs(find_bugs), Timeout(timeout), 76 MemoryLimit(memlimit) {} 77 78 79 /// ParseInputFile - Given a bitcode or assembly input filename, parse and 80 /// return it, or return null if not possible. 81 /// 82 Module *llvm::ParseInputFile(const std::string &Filename, 83 LLVMContext& Ctxt) { 84 SMDiagnostic Err; 85 Module *Result = ParseIRFile(Filename, Err, Ctxt); 86 if (!Result) 87 Err.Print("bugpoint", errs()); 88 89 // If we don't have an override triple, use the first one to configure 90 // bugpoint, or use the host triple if none provided. 91 if (Result) { 92 if (TargetTriple.getTriple().empty()) { 93 Triple TheTriple(Result->getTargetTriple()); 94 95 if (TheTriple.getTriple().empty()) 96 TheTriple.setTriple(sys::getHostTriple()); 97 98 TargetTriple.setTriple(TheTriple.getTriple()); 99 } 100 101 Result->setTargetTriple(TargetTriple.getTriple()); // override the triple 102 } 103 return Result; 104 } 105 106 // This method takes the specified list of LLVM input files, attempts to load 107 // them, either as assembly or bitcode, then link them together. It returns 108 // true on failure (if, for example, an input bitcode file could not be 109 // parsed), and false on success. 110 // 111 bool BugDriver::addSources(const std::vector<std::string> &Filenames) { 112 assert(Program == 0 && "Cannot call addSources multiple times!"); 113 assert(!Filenames.empty() && "Must specify at least on input filename!"); 114 115 try { 116 // Load the first input file. 117 Program = ParseInputFile(Filenames[0], Context); 118 if (Program == 0) return true; 119 120 if (!run_as_child) 121 outs() << "Read input file : '" << Filenames[0] << "'\n"; 122 123 for (unsigned i = 1, e = Filenames.size(); i != e; ++i) { 124 std::auto_ptr<Module> M(ParseInputFile(Filenames[i], Context)); 125 if (M.get() == 0) return true; 126 127 if (!run_as_child) 128 outs() << "Linking in input file: '" << Filenames[i] << "'\n"; 129 std::string ErrorMessage; 130 if (Linker::LinkModules(Program, M.get(), &ErrorMessage)) { 131 errs() << ToolName << ": error linking in '" << Filenames[i] << "': " 132 << ErrorMessage << '\n'; 133 return true; 134 } 135 } 136 } catch (const std::string &Error) { 137 errs() << ToolName << ": error reading input '" << Error << "'\n"; 138 return true; 139 } 140 141 if (!run_as_child) 142 outs() << "*** All input ok\n"; 143 144 // All input files read successfully! 145 return false; 146 } 147 148 149 150 /// run - The top level method that is invoked after all of the instance 151 /// variables are set up from command line arguments. 152 /// 153 bool BugDriver::run() { 154 // The first thing to do is determine if we're running as a child. If we are, 155 // then what to do is very narrow. This form of invocation is only called 156 // from the runPasses method to actually run those passes in a child process. 157 if (run_as_child) { 158 // Execute the passes 159 return runPassesAsChild(PassesToRun); 160 } 161 162 if (run_find_bugs) { 163 // Rearrange the passes and apply them to the program. Repeat this process 164 // until the user kills the program or we find a bug. 165 return runManyPasses(PassesToRun); 166 } 167 168 // If we're not running as a child, the first thing that we must do is 169 // determine what the problem is. Does the optimization series crash the 170 // compiler, or does it produce illegal code? We make the top-level 171 // decision by trying to run all of the passes on the the input program, 172 // which should generate a bitcode file. If it does generate a bitcode 173 // file, then we know the compiler didn't crash, so try to diagnose a 174 // miscompilation. 175 if (!PassesToRun.empty()) { 176 outs() << "Running selected passes on program to test for crash: "; 177 if (runPasses(PassesToRun)) 178 return debugOptimizerCrash(); 179 } 180 181 // Set up the execution environment, selecting a method to run LLVM bitcode. 182 if (initializeExecutionEnvironment()) return true; 183 184 // Test to see if we have a code generator crash. 185 outs() << "Running the code generator to test for a crash: "; 186 try { 187 compileProgram(Program); 188 outs() << '\n'; 189 } catch (ToolExecutionError &TEE) { 190 outs() << TEE.what(); 191 return debugCodeGeneratorCrash(); 192 } 193 194 195 // Run the raw input to see where we are coming from. If a reference output 196 // was specified, make sure that the raw output matches it. If not, it's a 197 // problem in the front-end or the code generator. 198 // 199 bool CreatedOutput = false; 200 if (ReferenceOutputFile.empty()) { 201 outs() << "Generating reference output from raw program: "; 202 if(!createReferenceFile(Program)){ 203 return debugCodeGeneratorCrash(); 204 } 205 CreatedOutput = true; 206 } 207 208 // Make sure the reference output file gets deleted on exit from this 209 // function, if appropriate. 210 sys::Path ROF(ReferenceOutputFile); 211 FileRemover RemoverInstance(ROF, CreatedOutput && !SaveTemps); 212 213 // Diff the output of the raw program against the reference output. If it 214 // matches, then we assume there is a miscompilation bug and try to 215 // diagnose it. 216 outs() << "*** Checking the code generator...\n"; 217 try { 218 if (!diffProgram()) { 219 outs() << "\n*** Output matches: Debugging miscompilation!\n"; 220 return debugMiscompilation(); 221 } 222 } catch (ToolExecutionError &TEE) { 223 errs() << TEE.what(); 224 return debugCodeGeneratorCrash(); 225 } 226 227 outs() << "\n*** Input program does not match reference diff!\n"; 228 outs() << "Debugging code generator problem!\n"; 229 try { 230 return debugCodeGenerator(); 231 } catch (ToolExecutionError &TEE) { 232 errs() << TEE.what(); 233 return debugCodeGeneratorCrash(); 234 } 235 } 236 237 void llvm::PrintFunctionList(const std::vector<Function*> &Funcs) { 238 unsigned NumPrint = Funcs.size(); 239 if (NumPrint > 10) NumPrint = 10; 240 for (unsigned i = 0; i != NumPrint; ++i) 241 outs() << " " << Funcs[i]->getName(); 242 if (NumPrint < Funcs.size()) 243 outs() << "... <" << Funcs.size() << " total>"; 244 outs().flush(); 245 } 246 247 void llvm::PrintGlobalVariableList(const std::vector<GlobalVariable*> &GVs) { 248 unsigned NumPrint = GVs.size(); 249 if (NumPrint > 10) NumPrint = 10; 250 for (unsigned i = 0; i != NumPrint; ++i) 251 outs() << " " << GVs[i]->getName(); 252 if (NumPrint < GVs.size()) 253 outs() << "... <" << GVs.size() << " total>"; 254 outs().flush(); 255 } 256