1 //=-- InstrProfWriter.cpp - Instrumented profiling writer -------------------=// 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 contains support for writing profiling data for clang's 11 // instrumentation based PGO and coverage. 12 // 13 //===----------------------------------------------------------------------===// 14 15 #include "llvm/ProfileData/InstrProfWriter.h" 16 #include "llvm/ADT/StringExtras.h" 17 #include "llvm/Support/EndianStream.h" 18 #include "llvm/Support/OnDiskHashTable.h" 19 #include <tuple> 20 21 using namespace llvm; 22 23 // A struct to define how the data stream should be patched. For Indexed 24 // profiling, only uint64_t data type is needed. 25 struct PatchItem { 26 uint64_t Pos; // Where to patch. 27 uint64_t *D; // Pointer to an array of source data. 28 int N; // Number of elements in \c D array. 29 }; 30 31 namespace llvm { 32 // A wrapper class to abstract writer stream with support of bytes 33 // back patching. 34 class ProfOStream { 35 36 public: 37 ProfOStream(llvm::raw_fd_ostream &FD) : IsFDOStream(true), OS(FD), LE(FD) {} 38 ProfOStream(llvm::raw_string_ostream &STR) 39 : IsFDOStream(false), OS(STR), LE(STR) {} 40 41 uint64_t tell() { return OS.tell(); } 42 void write(uint64_t V) { LE.write<uint64_t>(V); } 43 // \c patch can only be called when all data is written and flushed. 44 // For raw_string_ostream, the patch is done on the target string 45 // directly and it won't be reflected in the stream's internal buffer. 46 void patch(PatchItem *P, int NItems) { 47 using namespace support; 48 if (IsFDOStream) { 49 llvm::raw_fd_ostream &FDOStream = static_cast<llvm::raw_fd_ostream &>(OS); 50 for (int K = 0; K < NItems; K++) { 51 FDOStream.seek(P[K].Pos); 52 for (int I = 0; I < P[K].N; I++) 53 write(P[K].D[I]); 54 } 55 } else { 56 llvm::raw_string_ostream &SOStream = 57 static_cast<llvm::raw_string_ostream &>(OS); 58 std::string &Data = SOStream.str(); // with flush 59 for (int K = 0; K < NItems; K++) { 60 for (int I = 0; I < P[K].N; I++) { 61 uint64_t Bytes = endian::byte_swap<uint64_t, little>(P[K].D[I]); 62 Data.replace(P[K].Pos + I * sizeof(uint64_t), sizeof(uint64_t), 63 (const char *)&Bytes, sizeof(uint64_t)); 64 } 65 } 66 } 67 } 68 // If \c OS is an instance of \c raw_fd_ostream, this field will be 69 // true. Otherwise, \c OS will be an raw_string_ostream. 70 bool IsFDOStream; 71 raw_ostream &OS; 72 support::endian::Writer<support::little> LE; 73 }; 74 75 class InstrProfRecordWriterTrait { 76 public: 77 typedef StringRef key_type; 78 typedef StringRef key_type_ref; 79 80 typedef const InstrProfWriter::ProfilingData *const data_type; 81 typedef const InstrProfWriter::ProfilingData *const data_type_ref; 82 83 typedef uint64_t hash_value_type; 84 typedef uint64_t offset_type; 85 86 support::endianness ValueProfDataEndianness; 87 InstrProfSummary *TheProfileSummary; 88 89 InstrProfRecordWriterTrait() : ValueProfDataEndianness(support::little) {} 90 static hash_value_type ComputeHash(key_type_ref K) { 91 return IndexedInstrProf::ComputeHash(K); 92 } 93 94 static std::pair<offset_type, offset_type> 95 EmitKeyDataLength(raw_ostream &Out, key_type_ref K, data_type_ref V) { 96 using namespace llvm::support; 97 endian::Writer<little> LE(Out); 98 99 offset_type N = K.size(); 100 LE.write<offset_type>(N); 101 102 offset_type M = 0; 103 for (const auto &ProfileData : *V) { 104 const InstrProfRecord &ProfRecord = ProfileData.second; 105 M += sizeof(uint64_t); // The function hash 106 M += sizeof(uint64_t); // The size of the Counts vector 107 M += ProfRecord.Counts.size() * sizeof(uint64_t); 108 109 // Value data 110 M += ValueProfData::getSize(ProfileData.second); 111 } 112 LE.write<offset_type>(M); 113 114 return std::make_pair(N, M); 115 } 116 117 void EmitKey(raw_ostream &Out, key_type_ref K, offset_type N) { 118 Out.write(K.data(), N); 119 } 120 121 void EmitData(raw_ostream &Out, key_type_ref, data_type_ref V, offset_type) { 122 using namespace llvm::support; 123 endian::Writer<little> LE(Out); 124 for (const auto &ProfileData : *V) { 125 const InstrProfRecord &ProfRecord = ProfileData.second; 126 TheProfileSummary->addRecord(ProfRecord); 127 128 LE.write<uint64_t>(ProfileData.first); // Function hash 129 LE.write<uint64_t>(ProfRecord.Counts.size()); 130 for (uint64_t I : ProfRecord.Counts) 131 LE.write<uint64_t>(I); 132 133 // Write value data 134 std::unique_ptr<ValueProfData> VDataPtr = 135 ValueProfData::serializeFrom(ProfileData.second); 136 uint32_t S = VDataPtr->getSize(); 137 VDataPtr->swapBytesFromHost(ValueProfDataEndianness); 138 Out.write((const char *)VDataPtr.get(), S); 139 } 140 } 141 }; 142 } 143 144 InstrProfWriter::InstrProfWriter(bool Sparse) 145 : Sparse(Sparse), FunctionData(), ProfileKind(PF_Unknown), 146 InfoObj(new InstrProfRecordWriterTrait()) {} 147 148 InstrProfWriter::~InstrProfWriter() { delete InfoObj; } 149 150 // Internal interface for testing purpose only. 151 void InstrProfWriter::setValueProfDataEndianness( 152 support::endianness Endianness) { 153 InfoObj->ValueProfDataEndianness = Endianness; 154 } 155 void InstrProfWriter::setOutputSparse(bool Sparse) { 156 this->Sparse = Sparse; 157 } 158 159 std::error_code InstrProfWriter::addRecord(InstrProfRecord &&I, 160 uint64_t Weight) { 161 auto &ProfileDataMap = FunctionData[I.Name]; 162 163 bool NewFunc; 164 ProfilingData::iterator Where; 165 std::tie(Where, NewFunc) = 166 ProfileDataMap.insert(std::make_pair(I.Hash, InstrProfRecord())); 167 InstrProfRecord &Dest = Where->second; 168 169 instrprof_error Result = instrprof_error::success; 170 if (NewFunc) { 171 // We've never seen a function with this name and hash, add it. 172 Dest = std::move(I); 173 // Fix up the name to avoid dangling reference. 174 Dest.Name = FunctionData.find(Dest.Name)->getKey(); 175 if (Weight > 1) 176 Result = Dest.scale(Weight); 177 } else { 178 // We're updating a function we've seen before. 179 Result = Dest.merge(I, Weight); 180 } 181 182 Dest.sortValueData(); 183 184 return Result; 185 } 186 187 bool InstrProfWriter::shouldEncodeData(const ProfilingData &PD) { 188 if (!Sparse) 189 return true; 190 for (const auto &Func : PD) { 191 const InstrProfRecord &IPR = Func.second; 192 if (std::any_of(IPR.Counts.begin(), IPR.Counts.end(), 193 [](uint64_t Count) { return Count > 0; })) 194 return true; 195 } 196 return false; 197 } 198 199 static void setSummary(IndexedInstrProf::Summary *TheSummary, 200 InstrProfSummary &PS) { 201 using namespace IndexedInstrProf; 202 std::vector<ProfileSummaryEntry> &Res = PS.getDetailedSummary(); 203 TheSummary->NumSummaryFields = Summary::NumKinds; 204 TheSummary->NumCutoffEntries = Res.size(); 205 TheSummary->set(Summary::MaxFunctionCount, PS.getMaxFunctionCount()); 206 TheSummary->set(Summary::MaxBlockCount, PS.getMaxBlockCount()); 207 TheSummary->set(Summary::MaxInternalBlockCount, 208 PS.getMaxInternalBlockCount()); 209 TheSummary->set(Summary::TotalBlockCount, PS.getTotalCount()); 210 TheSummary->set(Summary::TotalNumBlocks, PS.getNumBlocks()); 211 TheSummary->set(Summary::TotalNumFunctions, PS.getNumFunctions()); 212 for (unsigned I = 0; I < Res.size(); I++) 213 TheSummary->setEntry(I, Res[I]); 214 } 215 216 void InstrProfWriter::writeImpl(ProfOStream &OS) { 217 OnDiskChainedHashTableGenerator<InstrProfRecordWriterTrait> Generator; 218 219 using namespace IndexedInstrProf; 220 InstrProfSummary PS(ProfileSummary::DefaultCutoffs); 221 InfoObj->TheProfileSummary = &PS; 222 223 // Populate the hash table generator. 224 for (const auto &I : FunctionData) 225 if (shouldEncodeData(I.getValue())) 226 Generator.insert(I.getKey(), &I.getValue()); 227 // Write the header. 228 IndexedInstrProf::Header Header; 229 Header.Magic = IndexedInstrProf::Magic; 230 Header.Version = IndexedInstrProf::ProfVersion::CurrentVersion; 231 if (ProfileKind == PF_IRLevel) 232 Header.Version |= VARIANT_MASK_IR_PROF; 233 Header.Unused = 0; 234 Header.HashType = static_cast<uint64_t>(IndexedInstrProf::HashType); 235 Header.HashOffset = 0; 236 int N = sizeof(IndexedInstrProf::Header) / sizeof(uint64_t); 237 238 // Only write out all the fields except 'HashOffset'. We need 239 // to remember the offset of that field to allow back patching 240 // later. 241 for (int I = 0; I < N - 1; I++) 242 OS.write(reinterpret_cast<uint64_t *>(&Header)[I]); 243 244 // Save the location of Header.HashOffset field in \c OS. 245 uint64_t HashTableStartFieldOffset = OS.tell(); 246 // Reserve the space for HashOffset field. 247 OS.write(0); 248 249 // Reserve space to write profile summary data. 250 uint32_t NumEntries = ProfileSummary::DefaultCutoffs.size(); 251 uint32_t SummarySize = Summary::getSize(Summary::NumKinds, NumEntries); 252 // Remember the summary offset. 253 uint64_t SummaryOffset = OS.tell(); 254 for (unsigned I = 0; I < SummarySize / sizeof(uint64_t); I++) 255 OS.write(0); 256 257 // Write the hash table. 258 uint64_t HashTableStart = Generator.Emit(OS.OS, *InfoObj); 259 260 // Allocate space for data to be serialized out. 261 std::unique_ptr<IndexedInstrProf::Summary> TheSummary = 262 IndexedInstrProf::allocSummary(SummarySize); 263 // Compute the Summary and copy the data to the data 264 // structure to be serialized out (to disk or buffer). 265 setSummary(TheSummary.get(), PS); 266 InfoObj->TheProfileSummary = 0; 267 268 // Now do the final patch: 269 PatchItem PatchItems[] = { 270 // Patch the Header.HashOffset field. 271 {HashTableStartFieldOffset, &HashTableStart, 1}, 272 // Patch the summary data. 273 {SummaryOffset, reinterpret_cast<uint64_t *>(TheSummary.get()), 274 (int)(SummarySize / sizeof(uint64_t))}}; 275 OS.patch(PatchItems, sizeof(PatchItems) / sizeof(*PatchItems)); 276 } 277 278 void InstrProfWriter::write(raw_fd_ostream &OS) { 279 // Write the hash table. 280 ProfOStream POS(OS); 281 writeImpl(POS); 282 } 283 284 std::unique_ptr<MemoryBuffer> InstrProfWriter::writeBuffer() { 285 std::string Data; 286 llvm::raw_string_ostream OS(Data); 287 ProfOStream POS(OS); 288 // Write the hash table. 289 writeImpl(POS); 290 // Return this in an aligned memory buffer. 291 return MemoryBuffer::getMemBufferCopy(Data); 292 } 293 294 static const char *ValueProfKindStr[] = { 295 #define VALUE_PROF_KIND(Enumerator, Value) #Enumerator, 296 #include "llvm/ProfileData/InstrProfData.inc" 297 }; 298 299 void InstrProfWriter::writeRecordInText(const InstrProfRecord &Func, 300 InstrProfSymtab &Symtab, 301 raw_fd_ostream &OS) { 302 OS << Func.Name << "\n"; 303 OS << "# Func Hash:\n" << Func.Hash << "\n"; 304 OS << "# Num Counters:\n" << Func.Counts.size() << "\n"; 305 OS << "# Counter Values:\n"; 306 for (uint64_t Count : Func.Counts) 307 OS << Count << "\n"; 308 309 uint32_t NumValueKinds = Func.getNumValueKinds(); 310 if (!NumValueKinds) { 311 OS << "\n"; 312 return; 313 } 314 315 OS << "# Num Value Kinds:\n" << Func.getNumValueKinds() << "\n"; 316 for (uint32_t VK = 0; VK < IPVK_Last + 1; VK++) { 317 uint32_t NS = Func.getNumValueSites(VK); 318 if (!NS) 319 continue; 320 OS << "# ValueKind = " << ValueProfKindStr[VK] << ":\n" << VK << "\n"; 321 OS << "# NumValueSites:\n" << NS << "\n"; 322 for (uint32_t S = 0; S < NS; S++) { 323 uint32_t ND = Func.getNumValueDataForSite(VK, S); 324 OS << ND << "\n"; 325 std::unique_ptr<InstrProfValueData[]> VD = Func.getValueForSite(VK, S); 326 for (uint32_t I = 0; I < ND; I++) { 327 if (VK == IPVK_IndirectCallTarget) 328 OS << Symtab.getFuncName(VD[I].Value) << ":" << VD[I].Count << "\n"; 329 else 330 OS << VD[I].Value << ":" << VD[I].Count << "\n"; 331 } 332 } 333 } 334 335 OS << "\n"; 336 } 337 338 void InstrProfWriter::writeText(raw_fd_ostream &OS) { 339 if (ProfileKind == PF_IRLevel) 340 OS << "# IR level Instrumentation Flag\n:ir\n"; 341 InstrProfSymtab Symtab; 342 for (const auto &I : FunctionData) 343 if (shouldEncodeData(I.getValue())) 344 Symtab.addFuncName(I.getKey()); 345 Symtab.finalizeSymtab(); 346 347 for (const auto &I : FunctionData) 348 if (shouldEncodeData(I.getValue())) 349 for (const auto &Func : I.getValue()) 350 writeRecordInText(Func.second, Symtab, OS); 351 } 352