1 //===- lib/MC/MCDwarf.cpp - MCDwarf implementation ------------------------===// 2 // 3 // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions. 4 // See https://llvm.org/LICENSE.txt for license information. 5 // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception 6 // 7 //===----------------------------------------------------------------------===// 8 9 #include "llvm/MC/MCDwarf.h" 10 #include "llvm/ADT/ArrayRef.h" 11 #include "llvm/ADT/DenseMap.h" 12 #include "llvm/ADT/Hashing.h" 13 #include "llvm/ADT/Optional.h" 14 #include "llvm/ADT/STLExtras.h" 15 #include "llvm/ADT/SmallString.h" 16 #include "llvm/ADT/SmallVector.h" 17 #include "llvm/ADT/StringRef.h" 18 #include "llvm/ADT/Twine.h" 19 #include "llvm/BinaryFormat/Dwarf.h" 20 #include "llvm/Config/config.h" 21 #include "llvm/MC/MCAsmInfo.h" 22 #include "llvm/MC/MCContext.h" 23 #include "llvm/MC/MCExpr.h" 24 #include "llvm/MC/MCObjectFileInfo.h" 25 #include "llvm/MC/MCObjectStreamer.h" 26 #include "llvm/MC/MCRegisterInfo.h" 27 #include "llvm/MC/MCSection.h" 28 #include "llvm/MC/MCStreamer.h" 29 #include "llvm/MC/MCSymbol.h" 30 #include "llvm/MC/StringTableBuilder.h" 31 #include "llvm/Support/Casting.h" 32 #include "llvm/Support/Endian.h" 33 #include "llvm/Support/EndianStream.h" 34 #include "llvm/Support/ErrorHandling.h" 35 #include "llvm/Support/LEB128.h" 36 #include "llvm/Support/MathExtras.h" 37 #include "llvm/Support/Path.h" 38 #include "llvm/Support/SourceMgr.h" 39 #include "llvm/Support/raw_ostream.h" 40 #include <cassert> 41 #include <cstdint> 42 #include <string> 43 #include <utility> 44 #include <vector> 45 46 using namespace llvm; 47 48 MCSymbol *mcdwarf::emitListsTableHeaderStart(MCStreamer &S) { 49 MCSymbol *Start = S.getContext().createTempSymbol("debug_list_header_start"); 50 MCSymbol *End = S.getContext().createTempSymbol("debug_list_header_end"); 51 auto DwarfFormat = S.getContext().getDwarfFormat(); 52 if (DwarfFormat == dwarf::DWARF64) { 53 S.AddComment("DWARF64 mark"); 54 S.emitInt32(dwarf::DW_LENGTH_DWARF64); 55 } 56 S.AddComment("Length"); 57 S.emitAbsoluteSymbolDiff(End, Start, 58 dwarf::getDwarfOffsetByteSize(DwarfFormat)); 59 S.emitLabel(Start); 60 S.AddComment("Version"); 61 S.emitInt16(S.getContext().getDwarfVersion()); 62 S.AddComment("Address size"); 63 S.emitInt8(S.getContext().getAsmInfo()->getCodePointerSize()); 64 S.AddComment("Segment selector size"); 65 S.emitInt8(0); 66 return End; 67 } 68 69 /// Manage the .debug_line_str section contents, if we use it. 70 class llvm::MCDwarfLineStr { 71 MCSymbol *LineStrLabel = nullptr; 72 StringTableBuilder LineStrings{StringTableBuilder::DWARF}; 73 bool UseRelocs = false; 74 75 public: 76 /// Construct an instance that can emit .debug_line_str (for use in a normal 77 /// v5 line table). 78 explicit MCDwarfLineStr(MCContext &Ctx) { 79 UseRelocs = Ctx.getAsmInfo()->doesDwarfUseRelocationsAcrossSections(); 80 if (UseRelocs) 81 LineStrLabel = 82 Ctx.getObjectFileInfo()->getDwarfLineStrSection()->getBeginSymbol(); 83 } 84 85 /// Emit a reference to the string. 86 void emitRef(MCStreamer *MCOS, StringRef Path); 87 88 /// Emit the .debug_line_str section if appropriate. 89 void emitSection(MCStreamer *MCOS); 90 }; 91 92 static inline uint64_t ScaleAddrDelta(MCContext &Context, uint64_t AddrDelta) { 93 unsigned MinInsnLength = Context.getAsmInfo()->getMinInstAlignment(); 94 if (MinInsnLength == 1) 95 return AddrDelta; 96 if (AddrDelta % MinInsnLength != 0) { 97 // TODO: report this error, but really only once. 98 ; 99 } 100 return AddrDelta / MinInsnLength; 101 } 102 103 // 104 // This is called when an instruction is assembled into the specified section 105 // and if there is information from the last .loc directive that has yet to have 106 // a line entry made for it is made. 107 // 108 void MCDwarfLineEntry::make(MCStreamer *MCOS, MCSection *Section) { 109 if (!MCOS->getContext().getDwarfLocSeen()) 110 return; 111 112 // Create a symbol at in the current section for use in the line entry. 113 MCSymbol *LineSym = MCOS->getContext().createTempSymbol(); 114 // Set the value of the symbol to use for the MCDwarfLineEntry. 115 MCOS->emitLabel(LineSym); 116 117 // Get the current .loc info saved in the context. 118 const MCDwarfLoc &DwarfLoc = MCOS->getContext().getCurrentDwarfLoc(); 119 120 // Create a (local) line entry with the symbol and the current .loc info. 121 MCDwarfLineEntry LineEntry(LineSym, DwarfLoc); 122 123 // clear DwarfLocSeen saying the current .loc info is now used. 124 MCOS->getContext().clearDwarfLocSeen(); 125 126 // Add the line entry to this section's entries. 127 MCOS->getContext() 128 .getMCDwarfLineTable(MCOS->getContext().getDwarfCompileUnitID()) 129 .getMCLineSections() 130 .addLineEntry(LineEntry, Section); 131 } 132 133 // 134 // This helper routine returns an expression of End - Start + IntVal . 135 // 136 static inline const MCExpr *makeEndMinusStartExpr(MCContext &Ctx, 137 const MCSymbol &Start, 138 const MCSymbol &End, 139 int IntVal) { 140 MCSymbolRefExpr::VariantKind Variant = MCSymbolRefExpr::VK_None; 141 const MCExpr *Res = MCSymbolRefExpr::create(&End, Variant, Ctx); 142 const MCExpr *RHS = MCSymbolRefExpr::create(&Start, Variant, Ctx); 143 const MCExpr *Res1 = MCBinaryExpr::create(MCBinaryExpr::Sub, Res, RHS, Ctx); 144 const MCExpr *Res2 = MCConstantExpr::create(IntVal, Ctx); 145 const MCExpr *Res3 = MCBinaryExpr::create(MCBinaryExpr::Sub, Res1, Res2, Ctx); 146 return Res3; 147 } 148 149 // 150 // This helper routine returns an expression of Start + IntVal . 151 // 152 static inline const MCExpr * 153 makeStartPlusIntExpr(MCContext &Ctx, const MCSymbol &Start, int IntVal) { 154 MCSymbolRefExpr::VariantKind Variant = MCSymbolRefExpr::VK_None; 155 const MCExpr *LHS = MCSymbolRefExpr::create(&Start, Variant, Ctx); 156 const MCExpr *RHS = MCConstantExpr::create(IntVal, Ctx); 157 const MCExpr *Res = MCBinaryExpr::create(MCBinaryExpr::Add, LHS, RHS, Ctx); 158 return Res; 159 } 160 161 // 162 // This emits the Dwarf line table for the specified section from the entries 163 // in the LineSection. 164 // 165 static inline void emitDwarfLineTable( 166 MCStreamer *MCOS, MCSection *Section, 167 const MCLineSection::MCDwarfLineEntryCollection &LineEntries) { 168 unsigned FileNum = 1; 169 unsigned LastLine = 1; 170 unsigned Column = 0; 171 unsigned Flags = DWARF2_LINE_DEFAULT_IS_STMT ? DWARF2_FLAG_IS_STMT : 0; 172 unsigned Isa = 0; 173 unsigned Discriminator = 0; 174 MCSymbol *LastLabel = nullptr; 175 176 // Loop through each MCDwarfLineEntry and encode the dwarf line number table. 177 for (const MCDwarfLineEntry &LineEntry : LineEntries) { 178 int64_t LineDelta = static_cast<int64_t>(LineEntry.getLine()) - LastLine; 179 180 if (FileNum != LineEntry.getFileNum()) { 181 FileNum = LineEntry.getFileNum(); 182 MCOS->emitInt8(dwarf::DW_LNS_set_file); 183 MCOS->emitULEB128IntValue(FileNum); 184 } 185 if (Column != LineEntry.getColumn()) { 186 Column = LineEntry.getColumn(); 187 MCOS->emitInt8(dwarf::DW_LNS_set_column); 188 MCOS->emitULEB128IntValue(Column); 189 } 190 if (Discriminator != LineEntry.getDiscriminator() && 191 MCOS->getContext().getDwarfVersion() >= 4) { 192 Discriminator = LineEntry.getDiscriminator(); 193 unsigned Size = getULEB128Size(Discriminator); 194 MCOS->emitInt8(dwarf::DW_LNS_extended_op); 195 MCOS->emitULEB128IntValue(Size + 1); 196 MCOS->emitInt8(dwarf::DW_LNE_set_discriminator); 197 MCOS->emitULEB128IntValue(Discriminator); 198 } 199 if (Isa != LineEntry.getIsa()) { 200 Isa = LineEntry.getIsa(); 201 MCOS->emitInt8(dwarf::DW_LNS_set_isa); 202 MCOS->emitULEB128IntValue(Isa); 203 } 204 if ((LineEntry.getFlags() ^ Flags) & DWARF2_FLAG_IS_STMT) { 205 Flags = LineEntry.getFlags(); 206 MCOS->emitInt8(dwarf::DW_LNS_negate_stmt); 207 } 208 if (LineEntry.getFlags() & DWARF2_FLAG_BASIC_BLOCK) 209 MCOS->emitInt8(dwarf::DW_LNS_set_basic_block); 210 if (LineEntry.getFlags() & DWARF2_FLAG_PROLOGUE_END) 211 MCOS->emitInt8(dwarf::DW_LNS_set_prologue_end); 212 if (LineEntry.getFlags() & DWARF2_FLAG_EPILOGUE_BEGIN) 213 MCOS->emitInt8(dwarf::DW_LNS_set_epilogue_begin); 214 215 MCSymbol *Label = LineEntry.getLabel(); 216 217 // At this point we want to emit/create the sequence to encode the delta in 218 // line numbers and the increment of the address from the previous Label 219 // and the current Label. 220 const MCAsmInfo *asmInfo = MCOS->getContext().getAsmInfo(); 221 MCOS->emitDwarfAdvanceLineAddr(LineDelta, LastLabel, Label, 222 asmInfo->getCodePointerSize()); 223 224 Discriminator = 0; 225 LastLine = LineEntry.getLine(); 226 LastLabel = Label; 227 } 228 229 // Generate DWARF line end entry. 230 MCOS->emitDwarfLineEndEntry(Section, LastLabel); 231 } 232 233 // 234 // This emits the Dwarf file and the line tables. 235 // 236 void MCDwarfLineTable::emit(MCStreamer *MCOS, MCDwarfLineTableParams Params) { 237 MCContext &context = MCOS->getContext(); 238 239 auto &LineTables = context.getMCDwarfLineTables(); 240 241 // Bail out early so we don't switch to the debug_line section needlessly and 242 // in doing so create an unnecessary (if empty) section. 243 if (LineTables.empty()) 244 return; 245 246 // In a v5 non-split line table, put the strings in a separate section. 247 Optional<MCDwarfLineStr> LineStr; 248 if (context.getDwarfVersion() >= 5) 249 LineStr = MCDwarfLineStr(context); 250 251 // Switch to the section where the table will be emitted into. 252 MCOS->SwitchSection(context.getObjectFileInfo()->getDwarfLineSection()); 253 254 // Handle the rest of the Compile Units. 255 for (const auto &CUIDTablePair : LineTables) { 256 CUIDTablePair.second.emitCU(MCOS, Params, LineStr); 257 } 258 259 if (LineStr) 260 LineStr->emitSection(MCOS); 261 } 262 263 void MCDwarfDwoLineTable::Emit(MCStreamer &MCOS, MCDwarfLineTableParams Params, 264 MCSection *Section) const { 265 if (!HasSplitLineTable) 266 return; 267 Optional<MCDwarfLineStr> NoLineStr(None); 268 MCOS.SwitchSection(Section); 269 MCOS.emitLabel(Header.Emit(&MCOS, Params, None, NoLineStr).second); 270 } 271 272 std::pair<MCSymbol *, MCSymbol *> 273 MCDwarfLineTableHeader::Emit(MCStreamer *MCOS, MCDwarfLineTableParams Params, 274 Optional<MCDwarfLineStr> &LineStr) const { 275 static const char StandardOpcodeLengths[] = { 276 0, // length of DW_LNS_copy 277 1, // length of DW_LNS_advance_pc 278 1, // length of DW_LNS_advance_line 279 1, // length of DW_LNS_set_file 280 1, // length of DW_LNS_set_column 281 0, // length of DW_LNS_negate_stmt 282 0, // length of DW_LNS_set_basic_block 283 0, // length of DW_LNS_const_add_pc 284 1, // length of DW_LNS_fixed_advance_pc 285 0, // length of DW_LNS_set_prologue_end 286 0, // length of DW_LNS_set_epilogue_begin 287 1 // DW_LNS_set_isa 288 }; 289 assert(array_lengthof(StandardOpcodeLengths) >= 290 (Params.DWARF2LineOpcodeBase - 1U)); 291 return Emit( 292 MCOS, Params, 293 makeArrayRef(StandardOpcodeLengths, Params.DWARF2LineOpcodeBase - 1), 294 LineStr); 295 } 296 297 static const MCExpr *forceExpAbs(MCStreamer &OS, const MCExpr* Expr) { 298 MCContext &Context = OS.getContext(); 299 assert(!isa<MCSymbolRefExpr>(Expr)); 300 if (Context.getAsmInfo()->hasAggressiveSymbolFolding()) 301 return Expr; 302 303 MCSymbol *ABS = Context.createTempSymbol(); 304 OS.emitAssignment(ABS, Expr); 305 return MCSymbolRefExpr::create(ABS, Context); 306 } 307 308 static void emitAbsValue(MCStreamer &OS, const MCExpr *Value, unsigned Size) { 309 const MCExpr *ABS = forceExpAbs(OS, Value); 310 OS.emitValue(ABS, Size); 311 } 312 313 void MCDwarfLineStr::emitSection(MCStreamer *MCOS) { 314 // Switch to the .debug_line_str section. 315 MCOS->SwitchSection( 316 MCOS->getContext().getObjectFileInfo()->getDwarfLineStrSection()); 317 // Emit the strings without perturbing the offsets we used. 318 LineStrings.finalizeInOrder(); 319 SmallString<0> Data; 320 Data.resize(LineStrings.getSize()); 321 LineStrings.write((uint8_t *)Data.data()); 322 MCOS->emitBinaryData(Data.str()); 323 } 324 325 void MCDwarfLineStr::emitRef(MCStreamer *MCOS, StringRef Path) { 326 int RefSize = 327 dwarf::getDwarfOffsetByteSize(MCOS->getContext().getDwarfFormat()); 328 size_t Offset = LineStrings.add(Path); 329 if (UseRelocs) { 330 MCContext &Ctx = MCOS->getContext(); 331 MCOS->emitValue(makeStartPlusIntExpr(Ctx, *LineStrLabel, Offset), RefSize); 332 } else 333 MCOS->emitIntValue(Offset, RefSize); 334 } 335 336 void MCDwarfLineTableHeader::emitV2FileDirTables(MCStreamer *MCOS) const { 337 // First the directory table. 338 for (auto &Dir : MCDwarfDirs) { 339 MCOS->emitBytes(Dir); // The DirectoryName, and... 340 MCOS->emitBytes(StringRef("\0", 1)); // its null terminator. 341 } 342 MCOS->emitInt8(0); // Terminate the directory list. 343 344 // Second the file table. 345 for (unsigned i = 1; i < MCDwarfFiles.size(); i++) { 346 assert(!MCDwarfFiles[i].Name.empty()); 347 MCOS->emitBytes(MCDwarfFiles[i].Name); // FileName and... 348 MCOS->emitBytes(StringRef("\0", 1)); // its null terminator. 349 MCOS->emitULEB128IntValue(MCDwarfFiles[i].DirIndex); // Directory number. 350 MCOS->emitInt8(0); // Last modification timestamp (always 0). 351 MCOS->emitInt8(0); // File size (always 0). 352 } 353 MCOS->emitInt8(0); // Terminate the file list. 354 } 355 356 static void emitOneV5FileEntry(MCStreamer *MCOS, const MCDwarfFile &DwarfFile, 357 bool EmitMD5, bool HasSource, 358 Optional<MCDwarfLineStr> &LineStr) { 359 assert(!DwarfFile.Name.empty()); 360 if (LineStr) 361 LineStr->emitRef(MCOS, DwarfFile.Name); 362 else { 363 MCOS->emitBytes(DwarfFile.Name); // FileName and... 364 MCOS->emitBytes(StringRef("\0", 1)); // its null terminator. 365 } 366 MCOS->emitULEB128IntValue(DwarfFile.DirIndex); // Directory number. 367 if (EmitMD5) { 368 const MD5::MD5Result &Cksum = *DwarfFile.Checksum; 369 MCOS->emitBinaryData( 370 StringRef(reinterpret_cast<const char *>(Cksum.Bytes.data()), 371 Cksum.Bytes.size())); 372 } 373 if (HasSource) { 374 if (LineStr) 375 LineStr->emitRef(MCOS, DwarfFile.Source.getValueOr(StringRef())); 376 else { 377 MCOS->emitBytes( 378 DwarfFile.Source.getValueOr(StringRef())); // Source and... 379 MCOS->emitBytes(StringRef("\0", 1)); // its null terminator. 380 } 381 } 382 } 383 384 void MCDwarfLineTableHeader::emitV5FileDirTables( 385 MCStreamer *MCOS, Optional<MCDwarfLineStr> &LineStr) const { 386 // The directory format, which is just a list of the directory paths. In a 387 // non-split object, these are references to .debug_line_str; in a split 388 // object, they are inline strings. 389 MCOS->emitInt8(1); 390 MCOS->emitULEB128IntValue(dwarf::DW_LNCT_path); 391 MCOS->emitULEB128IntValue(LineStr ? dwarf::DW_FORM_line_strp 392 : dwarf::DW_FORM_string); 393 MCOS->emitULEB128IntValue(MCDwarfDirs.size() + 1); 394 // Try not to emit an empty compilation directory. 395 const StringRef CompDir = CompilationDir.empty() 396 ? MCOS->getContext().getCompilationDir() 397 : StringRef(CompilationDir); 398 if (LineStr) { 399 // Record path strings, emit references here. 400 LineStr->emitRef(MCOS, CompDir); 401 for (const auto &Dir : MCDwarfDirs) 402 LineStr->emitRef(MCOS, Dir); 403 } else { 404 // The list of directory paths. Compilation directory comes first. 405 MCOS->emitBytes(CompDir); 406 MCOS->emitBytes(StringRef("\0", 1)); 407 for (const auto &Dir : MCDwarfDirs) { 408 MCOS->emitBytes(Dir); // The DirectoryName, and... 409 MCOS->emitBytes(StringRef("\0", 1)); // its null terminator. 410 } 411 } 412 413 // The file format, which is the inline null-terminated filename and a 414 // directory index. We don't track file size/timestamp so don't emit them 415 // in the v5 table. Emit MD5 checksums and source if we have them. 416 uint64_t Entries = 2; 417 if (HasAllMD5) 418 Entries += 1; 419 if (HasSource) 420 Entries += 1; 421 MCOS->emitInt8(Entries); 422 MCOS->emitULEB128IntValue(dwarf::DW_LNCT_path); 423 MCOS->emitULEB128IntValue(LineStr ? dwarf::DW_FORM_line_strp 424 : dwarf::DW_FORM_string); 425 MCOS->emitULEB128IntValue(dwarf::DW_LNCT_directory_index); 426 MCOS->emitULEB128IntValue(dwarf::DW_FORM_udata); 427 if (HasAllMD5) { 428 MCOS->emitULEB128IntValue(dwarf::DW_LNCT_MD5); 429 MCOS->emitULEB128IntValue(dwarf::DW_FORM_data16); 430 } 431 if (HasSource) { 432 MCOS->emitULEB128IntValue(dwarf::DW_LNCT_LLVM_source); 433 MCOS->emitULEB128IntValue(LineStr ? dwarf::DW_FORM_line_strp 434 : dwarf::DW_FORM_string); 435 } 436 // Then the counted list of files. The root file is file #0, then emit the 437 // files as provide by .file directives. 438 // MCDwarfFiles has an unused element [0] so use size() not size()+1. 439 // But sometimes MCDwarfFiles is empty, in which case we still emit one file. 440 MCOS->emitULEB128IntValue(MCDwarfFiles.empty() ? 1 : MCDwarfFiles.size()); 441 // To accommodate assembler source written for DWARF v4 but trying to emit 442 // v5: If we didn't see a root file explicitly, replicate file #1. 443 assert((!RootFile.Name.empty() || MCDwarfFiles.size() >= 1) && 444 "No root file and no .file directives"); 445 emitOneV5FileEntry(MCOS, RootFile.Name.empty() ? MCDwarfFiles[1] : RootFile, 446 HasAllMD5, HasSource, LineStr); 447 for (unsigned i = 1; i < MCDwarfFiles.size(); ++i) 448 emitOneV5FileEntry(MCOS, MCDwarfFiles[i], HasAllMD5, HasSource, LineStr); 449 } 450 451 std::pair<MCSymbol *, MCSymbol *> 452 MCDwarfLineTableHeader::Emit(MCStreamer *MCOS, MCDwarfLineTableParams Params, 453 ArrayRef<char> StandardOpcodeLengths, 454 Optional<MCDwarfLineStr> &LineStr) const { 455 MCContext &context = MCOS->getContext(); 456 457 // Create a symbol at the beginning of the line table. 458 MCSymbol *LineStartSym = Label; 459 if (!LineStartSym) 460 LineStartSym = context.createTempSymbol(); 461 462 // Set the value of the symbol, as we are at the start of the line table. 463 MCOS->emitDwarfLineStartLabel(LineStartSym); 464 465 unsigned OffsetSize = dwarf::getDwarfOffsetByteSize(context.getDwarfFormat()); 466 467 MCSymbol *LineEndSym = MCOS->emitDwarfUnitLength("debug_line", "unit length"); 468 469 // Next 2 bytes is the Version. 470 unsigned LineTableVersion = context.getDwarfVersion(); 471 MCOS->emitInt16(LineTableVersion); 472 473 // In v5, we get address info next. 474 if (LineTableVersion >= 5) { 475 MCOS->emitInt8(context.getAsmInfo()->getCodePointerSize()); 476 MCOS->emitInt8(0); // Segment selector; same as EmitGenDwarfAranges. 477 } 478 479 // Create symbols for the start/end of the prologue. 480 MCSymbol *ProStartSym = context.createTempSymbol("prologue_start"); 481 MCSymbol *ProEndSym = context.createTempSymbol("prologue_end"); 482 483 // Length of the prologue, is the next 4 bytes (8 bytes for DWARF64). This is 484 // actually the length from after the length word, to the end of the prologue. 485 MCOS->emitAbsoluteSymbolDiff(ProEndSym, ProStartSym, OffsetSize); 486 487 MCOS->emitLabel(ProStartSym); 488 489 // Parameters of the state machine, are next. 490 MCOS->emitInt8(context.getAsmInfo()->getMinInstAlignment()); 491 // maximum_operations_per_instruction 492 // For non-VLIW architectures this field is always 1. 493 // FIXME: VLIW architectures need to update this field accordingly. 494 if (LineTableVersion >= 4) 495 MCOS->emitInt8(1); 496 MCOS->emitInt8(DWARF2_LINE_DEFAULT_IS_STMT); 497 MCOS->emitInt8(Params.DWARF2LineBase); 498 MCOS->emitInt8(Params.DWARF2LineRange); 499 MCOS->emitInt8(StandardOpcodeLengths.size() + 1); 500 501 // Standard opcode lengths 502 for (char Length : StandardOpcodeLengths) 503 MCOS->emitInt8(Length); 504 505 // Put out the directory and file tables. The formats vary depending on 506 // the version. 507 if (LineTableVersion >= 5) 508 emitV5FileDirTables(MCOS, LineStr); 509 else 510 emitV2FileDirTables(MCOS); 511 512 // This is the end of the prologue, so set the value of the symbol at the 513 // end of the prologue (that was used in a previous expression). 514 MCOS->emitLabel(ProEndSym); 515 516 return std::make_pair(LineStartSym, LineEndSym); 517 } 518 519 void MCDwarfLineTable::emitCU(MCStreamer *MCOS, MCDwarfLineTableParams Params, 520 Optional<MCDwarfLineStr> &LineStr) const { 521 MCSymbol *LineEndSym = Header.Emit(MCOS, Params, LineStr).second; 522 523 // Put out the line tables. 524 for (const auto &LineSec : MCLineSections.getMCLineEntries()) 525 emitDwarfLineTable(MCOS, LineSec.first, LineSec.second); 526 527 // This is the end of the section, so set the value of the symbol at the end 528 // of this section (that was used in a previous expression). 529 MCOS->emitLabel(LineEndSym); 530 } 531 532 Expected<unsigned> MCDwarfLineTable::tryGetFile(StringRef &Directory, 533 StringRef &FileName, 534 Optional<MD5::MD5Result> Checksum, 535 Optional<StringRef> Source, 536 uint16_t DwarfVersion, 537 unsigned FileNumber) { 538 return Header.tryGetFile(Directory, FileName, Checksum, Source, DwarfVersion, 539 FileNumber); 540 } 541 542 static bool isRootFile(const MCDwarfFile &RootFile, StringRef &Directory, 543 StringRef &FileName, Optional<MD5::MD5Result> Checksum) { 544 if (RootFile.Name.empty() || RootFile.Name != FileName.data()) 545 return false; 546 return RootFile.Checksum == Checksum; 547 } 548 549 Expected<unsigned> 550 MCDwarfLineTableHeader::tryGetFile(StringRef &Directory, 551 StringRef &FileName, 552 Optional<MD5::MD5Result> Checksum, 553 Optional<StringRef> Source, 554 uint16_t DwarfVersion, 555 unsigned FileNumber) { 556 if (Directory == CompilationDir) 557 Directory = ""; 558 if (FileName.empty()) { 559 FileName = "<stdin>"; 560 Directory = ""; 561 } 562 assert(!FileName.empty()); 563 // Keep track of whether any or all files have an MD5 checksum. 564 // If any files have embedded source, they all must. 565 if (MCDwarfFiles.empty()) { 566 trackMD5Usage(Checksum.hasValue()); 567 HasSource = (Source != None); 568 } 569 if (isRootFile(RootFile, Directory, FileName, Checksum) && DwarfVersion >= 5) 570 return 0; 571 if (FileNumber == 0) { 572 // File numbers start with 1 and/or after any file numbers 573 // allocated by inline-assembler .file directives. 574 FileNumber = MCDwarfFiles.empty() ? 1 : MCDwarfFiles.size(); 575 SmallString<256> Buffer; 576 auto IterBool = SourceIdMap.insert( 577 std::make_pair((Directory + Twine('\0') + FileName).toStringRef(Buffer), 578 FileNumber)); 579 if (!IterBool.second) 580 return IterBool.first->second; 581 } 582 // Make space for this FileNumber in the MCDwarfFiles vector if needed. 583 if (FileNumber >= MCDwarfFiles.size()) 584 MCDwarfFiles.resize(FileNumber + 1); 585 586 // Get the new MCDwarfFile slot for this FileNumber. 587 MCDwarfFile &File = MCDwarfFiles[FileNumber]; 588 589 // It is an error to see the same number more than once. 590 if (!File.Name.empty()) 591 return make_error<StringError>("file number already allocated", 592 inconvertibleErrorCode()); 593 594 // If any files have embedded source, they all must. 595 if (HasSource != (Source != None)) 596 return make_error<StringError>("inconsistent use of embedded source", 597 inconvertibleErrorCode()); 598 599 if (Directory.empty()) { 600 // Separate the directory part from the basename of the FileName. 601 StringRef tFileName = sys::path::filename(FileName); 602 if (!tFileName.empty()) { 603 Directory = sys::path::parent_path(FileName); 604 if (!Directory.empty()) 605 FileName = tFileName; 606 } 607 } 608 609 // Find or make an entry in the MCDwarfDirs vector for this Directory. 610 // Capture directory name. 611 unsigned DirIndex; 612 if (Directory.empty()) { 613 // For FileNames with no directories a DirIndex of 0 is used. 614 DirIndex = 0; 615 } else { 616 DirIndex = llvm::find(MCDwarfDirs, Directory) - MCDwarfDirs.begin(); 617 if (DirIndex >= MCDwarfDirs.size()) 618 MCDwarfDirs.push_back(std::string(Directory)); 619 // The DirIndex is one based, as DirIndex of 0 is used for FileNames with 620 // no directories. MCDwarfDirs[] is unlike MCDwarfFiles[] in that the 621 // directory names are stored at MCDwarfDirs[DirIndex-1] where FileNames 622 // are stored at MCDwarfFiles[FileNumber].Name . 623 DirIndex++; 624 } 625 626 File.Name = std::string(FileName); 627 File.DirIndex = DirIndex; 628 File.Checksum = Checksum; 629 trackMD5Usage(Checksum.hasValue()); 630 File.Source = Source; 631 if (Source) 632 HasSource = true; 633 634 // return the allocated FileNumber. 635 return FileNumber; 636 } 637 638 /// Utility function to emit the encoding to a streamer. 639 void MCDwarfLineAddr::Emit(MCStreamer *MCOS, MCDwarfLineTableParams Params, 640 int64_t LineDelta, uint64_t AddrDelta) { 641 MCContext &Context = MCOS->getContext(); 642 SmallString<256> Tmp; 643 raw_svector_ostream OS(Tmp); 644 MCDwarfLineAddr::Encode(Context, Params, LineDelta, AddrDelta, OS); 645 MCOS->emitBytes(OS.str()); 646 } 647 648 /// Given a special op, return the address skip amount (in units of 649 /// DWARF2_LINE_MIN_INSN_LENGTH). 650 static uint64_t SpecialAddr(MCDwarfLineTableParams Params, uint64_t op) { 651 return (op - Params.DWARF2LineOpcodeBase) / Params.DWARF2LineRange; 652 } 653 654 /// Utility function to encode a Dwarf pair of LineDelta and AddrDeltas. 655 void MCDwarfLineAddr::Encode(MCContext &Context, MCDwarfLineTableParams Params, 656 int64_t LineDelta, uint64_t AddrDelta, 657 raw_ostream &OS) { 658 uint64_t Temp, Opcode; 659 bool NeedCopy = false; 660 661 // The maximum address skip amount that can be encoded with a special op. 662 uint64_t MaxSpecialAddrDelta = SpecialAddr(Params, 255); 663 664 // Scale the address delta by the minimum instruction length. 665 AddrDelta = ScaleAddrDelta(Context, AddrDelta); 666 667 // A LineDelta of INT64_MAX is a signal that this is actually a 668 // DW_LNE_end_sequence. We cannot use special opcodes here, since we want the 669 // end_sequence to emit the matrix entry. 670 if (LineDelta == INT64_MAX) { 671 if (AddrDelta == MaxSpecialAddrDelta) 672 OS << char(dwarf::DW_LNS_const_add_pc); 673 else if (AddrDelta) { 674 OS << char(dwarf::DW_LNS_advance_pc); 675 encodeULEB128(AddrDelta, OS); 676 } 677 OS << char(dwarf::DW_LNS_extended_op); 678 OS << char(1); 679 OS << char(dwarf::DW_LNE_end_sequence); 680 return; 681 } 682 683 // Bias the line delta by the base. 684 Temp = LineDelta - Params.DWARF2LineBase; 685 686 // If the line increment is out of range of a special opcode, we must encode 687 // it with DW_LNS_advance_line. 688 if (Temp >= Params.DWARF2LineRange || 689 Temp + Params.DWARF2LineOpcodeBase > 255) { 690 OS << char(dwarf::DW_LNS_advance_line); 691 encodeSLEB128(LineDelta, OS); 692 693 LineDelta = 0; 694 Temp = 0 - Params.DWARF2LineBase; 695 NeedCopy = true; 696 } 697 698 // Use DW_LNS_copy instead of a "line +0, addr +0" special opcode. 699 if (LineDelta == 0 && AddrDelta == 0) { 700 OS << char(dwarf::DW_LNS_copy); 701 return; 702 } 703 704 // Bias the opcode by the special opcode base. 705 Temp += Params.DWARF2LineOpcodeBase; 706 707 // Avoid overflow when addr_delta is large. 708 if (AddrDelta < 256 + MaxSpecialAddrDelta) { 709 // Try using a special opcode. 710 Opcode = Temp + AddrDelta * Params.DWARF2LineRange; 711 if (Opcode <= 255) { 712 OS << char(Opcode); 713 return; 714 } 715 716 // Try using DW_LNS_const_add_pc followed by special op. 717 Opcode = Temp + (AddrDelta - MaxSpecialAddrDelta) * Params.DWARF2LineRange; 718 if (Opcode <= 255) { 719 OS << char(dwarf::DW_LNS_const_add_pc); 720 OS << char(Opcode); 721 return; 722 } 723 } 724 725 // Otherwise use DW_LNS_advance_pc. 726 OS << char(dwarf::DW_LNS_advance_pc); 727 encodeULEB128(AddrDelta, OS); 728 729 if (NeedCopy) 730 OS << char(dwarf::DW_LNS_copy); 731 else { 732 assert(Temp <= 255 && "Buggy special opcode encoding."); 733 OS << char(Temp); 734 } 735 } 736 737 std::tuple<uint32_t, uint32_t, bool> 738 MCDwarfLineAddr::fixedEncode(MCContext &Context, int64_t LineDelta, 739 uint64_t AddrDelta, raw_ostream &OS) { 740 uint32_t Offset, Size; 741 if (LineDelta != INT64_MAX) { 742 OS << char(dwarf::DW_LNS_advance_line); 743 encodeSLEB128(LineDelta, OS); 744 } 745 746 // Use address delta to adjust address or use absolute address to adjust 747 // address. 748 bool SetDelta; 749 // According to DWARF spec., the DW_LNS_fixed_advance_pc opcode takes a 750 // single uhalf (unencoded) operand. So, the maximum value of AddrDelta 751 // is 65535. We set a conservative upper bound for it for relaxation. 752 if (AddrDelta > 60000) { 753 const MCAsmInfo *asmInfo = Context.getAsmInfo(); 754 unsigned AddrSize = asmInfo->getCodePointerSize(); 755 756 OS << char(dwarf::DW_LNS_extended_op); 757 encodeULEB128(1 + AddrSize, OS); 758 OS << char(dwarf::DW_LNE_set_address); 759 // Generate fixup for the address. 760 Offset = OS.tell(); 761 Size = AddrSize; 762 SetDelta = false; 763 OS.write_zeros(AddrSize); 764 } else { 765 OS << char(dwarf::DW_LNS_fixed_advance_pc); 766 // Generate fixup for 2-bytes address delta. 767 Offset = OS.tell(); 768 Size = 2; 769 SetDelta = true; 770 OS << char(0); 771 OS << char(0); 772 } 773 774 if (LineDelta == INT64_MAX) { 775 OS << char(dwarf::DW_LNS_extended_op); 776 OS << char(1); 777 OS << char(dwarf::DW_LNE_end_sequence); 778 } else { 779 OS << char(dwarf::DW_LNS_copy); 780 } 781 782 return std::make_tuple(Offset, Size, SetDelta); 783 } 784 785 // Utility function to write a tuple for .debug_abbrev. 786 static void EmitAbbrev(MCStreamer *MCOS, uint64_t Name, uint64_t Form) { 787 MCOS->emitULEB128IntValue(Name); 788 MCOS->emitULEB128IntValue(Form); 789 } 790 791 // When generating dwarf for assembly source files this emits 792 // the data for .debug_abbrev section which contains three DIEs. 793 static void EmitGenDwarfAbbrev(MCStreamer *MCOS) { 794 MCContext &context = MCOS->getContext(); 795 MCOS->SwitchSection(context.getObjectFileInfo()->getDwarfAbbrevSection()); 796 797 // DW_TAG_compile_unit DIE abbrev (1). 798 MCOS->emitULEB128IntValue(1); 799 MCOS->emitULEB128IntValue(dwarf::DW_TAG_compile_unit); 800 MCOS->emitInt8(dwarf::DW_CHILDREN_yes); 801 dwarf::Form SecOffsetForm = 802 context.getDwarfVersion() >= 4 803 ? dwarf::DW_FORM_sec_offset 804 : (context.getDwarfFormat() == dwarf::DWARF64 ? dwarf::DW_FORM_data8 805 : dwarf::DW_FORM_data4); 806 EmitAbbrev(MCOS, dwarf::DW_AT_stmt_list, SecOffsetForm); 807 if (context.getGenDwarfSectionSyms().size() > 1 && 808 context.getDwarfVersion() >= 3) { 809 EmitAbbrev(MCOS, dwarf::DW_AT_ranges, SecOffsetForm); 810 } else { 811 EmitAbbrev(MCOS, dwarf::DW_AT_low_pc, dwarf::DW_FORM_addr); 812 EmitAbbrev(MCOS, dwarf::DW_AT_high_pc, dwarf::DW_FORM_addr); 813 } 814 EmitAbbrev(MCOS, dwarf::DW_AT_name, dwarf::DW_FORM_string); 815 if (!context.getCompilationDir().empty()) 816 EmitAbbrev(MCOS, dwarf::DW_AT_comp_dir, dwarf::DW_FORM_string); 817 StringRef DwarfDebugFlags = context.getDwarfDebugFlags(); 818 if (!DwarfDebugFlags.empty()) 819 EmitAbbrev(MCOS, dwarf::DW_AT_APPLE_flags, dwarf::DW_FORM_string); 820 EmitAbbrev(MCOS, dwarf::DW_AT_producer, dwarf::DW_FORM_string); 821 EmitAbbrev(MCOS, dwarf::DW_AT_language, dwarf::DW_FORM_data2); 822 EmitAbbrev(MCOS, 0, 0); 823 824 // DW_TAG_label DIE abbrev (2). 825 MCOS->emitULEB128IntValue(2); 826 MCOS->emitULEB128IntValue(dwarf::DW_TAG_label); 827 MCOS->emitInt8(dwarf::DW_CHILDREN_no); 828 EmitAbbrev(MCOS, dwarf::DW_AT_name, dwarf::DW_FORM_string); 829 EmitAbbrev(MCOS, dwarf::DW_AT_decl_file, dwarf::DW_FORM_data4); 830 EmitAbbrev(MCOS, dwarf::DW_AT_decl_line, dwarf::DW_FORM_data4); 831 EmitAbbrev(MCOS, dwarf::DW_AT_low_pc, dwarf::DW_FORM_addr); 832 EmitAbbrev(MCOS, 0, 0); 833 834 // Terminate the abbreviations for this compilation unit. 835 MCOS->emitInt8(0); 836 } 837 838 // When generating dwarf for assembly source files this emits the data for 839 // .debug_aranges section. This section contains a header and a table of pairs 840 // of PointerSize'ed values for the address and size of section(s) with line 841 // table entries. 842 static void EmitGenDwarfAranges(MCStreamer *MCOS, 843 const MCSymbol *InfoSectionSymbol) { 844 MCContext &context = MCOS->getContext(); 845 846 auto &Sections = context.getGenDwarfSectionSyms(); 847 848 MCOS->SwitchSection(context.getObjectFileInfo()->getDwarfARangesSection()); 849 850 unsigned UnitLengthBytes = 851 dwarf::getUnitLengthFieldByteSize(context.getDwarfFormat()); 852 unsigned OffsetSize = dwarf::getDwarfOffsetByteSize(context.getDwarfFormat()); 853 854 // This will be the length of the .debug_aranges section, first account for 855 // the size of each item in the header (see below where we emit these items). 856 int Length = UnitLengthBytes + 2 + OffsetSize + 1 + 1; 857 858 // Figure the padding after the header before the table of address and size 859 // pairs who's values are PointerSize'ed. 860 const MCAsmInfo *asmInfo = context.getAsmInfo(); 861 int AddrSize = asmInfo->getCodePointerSize(); 862 int Pad = 2 * AddrSize - (Length & (2 * AddrSize - 1)); 863 if (Pad == 2 * AddrSize) 864 Pad = 0; 865 Length += Pad; 866 867 // Add the size of the pair of PointerSize'ed values for the address and size 868 // of each section we have in the table. 869 Length += 2 * AddrSize * Sections.size(); 870 // And the pair of terminating zeros. 871 Length += 2 * AddrSize; 872 873 // Emit the header for this section. 874 if (context.getDwarfFormat() == dwarf::DWARF64) 875 // The DWARF64 mark. 876 MCOS->emitInt32(dwarf::DW_LENGTH_DWARF64); 877 // The 4 (8 for DWARF64) byte length not including the length of the unit 878 // length field itself. 879 MCOS->emitIntValue(Length - UnitLengthBytes, OffsetSize); 880 // The 2 byte version, which is 2. 881 MCOS->emitInt16(2); 882 // The 4 (8 for DWARF64) byte offset to the compile unit in the .debug_info 883 // from the start of the .debug_info. 884 if (InfoSectionSymbol) 885 MCOS->emitSymbolValue(InfoSectionSymbol, OffsetSize, 886 asmInfo->needsDwarfSectionOffsetDirective()); 887 else 888 MCOS->emitIntValue(0, OffsetSize); 889 // The 1 byte size of an address. 890 MCOS->emitInt8(AddrSize); 891 // The 1 byte size of a segment descriptor, we use a value of zero. 892 MCOS->emitInt8(0); 893 // Align the header with the padding if needed, before we put out the table. 894 for(int i = 0; i < Pad; i++) 895 MCOS->emitInt8(0); 896 897 // Now emit the table of pairs of PointerSize'ed values for the section 898 // addresses and sizes. 899 for (MCSection *Sec : Sections) { 900 const MCSymbol *StartSymbol = Sec->getBeginSymbol(); 901 MCSymbol *EndSymbol = Sec->getEndSymbol(context); 902 assert(StartSymbol && "StartSymbol must not be NULL"); 903 assert(EndSymbol && "EndSymbol must not be NULL"); 904 905 const MCExpr *Addr = MCSymbolRefExpr::create( 906 StartSymbol, MCSymbolRefExpr::VK_None, context); 907 const MCExpr *Size = 908 makeEndMinusStartExpr(context, *StartSymbol, *EndSymbol, 0); 909 MCOS->emitValue(Addr, AddrSize); 910 emitAbsValue(*MCOS, Size, AddrSize); 911 } 912 913 // And finally the pair of terminating zeros. 914 MCOS->emitIntValue(0, AddrSize); 915 MCOS->emitIntValue(0, AddrSize); 916 } 917 918 // When generating dwarf for assembly source files this emits the data for 919 // .debug_info section which contains three parts. The header, the compile_unit 920 // DIE and a list of label DIEs. 921 static void EmitGenDwarfInfo(MCStreamer *MCOS, 922 const MCSymbol *AbbrevSectionSymbol, 923 const MCSymbol *LineSectionSymbol, 924 const MCSymbol *RangesSymbol) { 925 MCContext &context = MCOS->getContext(); 926 927 MCOS->SwitchSection(context.getObjectFileInfo()->getDwarfInfoSection()); 928 929 // Create a symbol at the start and end of this section used in here for the 930 // expression to calculate the length in the header. 931 MCSymbol *InfoStart = context.createTempSymbol(); 932 MCOS->emitLabel(InfoStart); 933 MCSymbol *InfoEnd = context.createTempSymbol(); 934 935 // First part: the header. 936 937 unsigned UnitLengthBytes = 938 dwarf::getUnitLengthFieldByteSize(context.getDwarfFormat()); 939 unsigned OffsetSize = dwarf::getDwarfOffsetByteSize(context.getDwarfFormat()); 940 941 if (context.getDwarfFormat() == dwarf::DWARF64) 942 // Emit DWARF64 mark. 943 MCOS->emitInt32(dwarf::DW_LENGTH_DWARF64); 944 945 // The 4 (8 for DWARF64) byte total length of the information for this 946 // compilation unit, not including the unit length field itself. 947 const MCExpr *Length = 948 makeEndMinusStartExpr(context, *InfoStart, *InfoEnd, UnitLengthBytes); 949 emitAbsValue(*MCOS, Length, OffsetSize); 950 951 // The 2 byte DWARF version. 952 MCOS->emitInt16(context.getDwarfVersion()); 953 954 // The DWARF v5 header has unit type, address size, abbrev offset. 955 // Earlier versions have abbrev offset, address size. 956 const MCAsmInfo &AsmInfo = *context.getAsmInfo(); 957 int AddrSize = AsmInfo.getCodePointerSize(); 958 if (context.getDwarfVersion() >= 5) { 959 MCOS->emitInt8(dwarf::DW_UT_compile); 960 MCOS->emitInt8(AddrSize); 961 } 962 // The 4 (8 for DWARF64) byte offset to the debug abbrevs from the start of 963 // the .debug_abbrev. 964 if (AbbrevSectionSymbol) 965 MCOS->emitSymbolValue(AbbrevSectionSymbol, OffsetSize, 966 AsmInfo.needsDwarfSectionOffsetDirective()); 967 else 968 // Since the abbrevs are at the start of the section, the offset is zero. 969 MCOS->emitIntValue(0, OffsetSize); 970 if (context.getDwarfVersion() <= 4) 971 MCOS->emitInt8(AddrSize); 972 973 // Second part: the compile_unit DIE. 974 975 // The DW_TAG_compile_unit DIE abbrev (1). 976 MCOS->emitULEB128IntValue(1); 977 978 // DW_AT_stmt_list, a 4 (8 for DWARF64) byte offset from the start of the 979 // .debug_line section. 980 if (LineSectionSymbol) 981 MCOS->emitSymbolValue(LineSectionSymbol, OffsetSize, 982 AsmInfo.needsDwarfSectionOffsetDirective()); 983 else 984 // The line table is at the start of the section, so the offset is zero. 985 MCOS->emitIntValue(0, OffsetSize); 986 987 if (RangesSymbol) { 988 // There are multiple sections containing code, so we must use 989 // .debug_ranges/.debug_rnglists. AT_ranges, the 4/8 byte offset from the 990 // start of the .debug_ranges/.debug_rnglists. 991 MCOS->emitSymbolValue(RangesSymbol, OffsetSize); 992 } else { 993 // If we only have one non-empty code section, we can use the simpler 994 // AT_low_pc and AT_high_pc attributes. 995 996 // Find the first (and only) non-empty text section 997 auto &Sections = context.getGenDwarfSectionSyms(); 998 const auto TextSection = Sections.begin(); 999 assert(TextSection != Sections.end() && "No text section found"); 1000 1001 MCSymbol *StartSymbol = (*TextSection)->getBeginSymbol(); 1002 MCSymbol *EndSymbol = (*TextSection)->getEndSymbol(context); 1003 assert(StartSymbol && "StartSymbol must not be NULL"); 1004 assert(EndSymbol && "EndSymbol must not be NULL"); 1005 1006 // AT_low_pc, the first address of the default .text section. 1007 const MCExpr *Start = MCSymbolRefExpr::create( 1008 StartSymbol, MCSymbolRefExpr::VK_None, context); 1009 MCOS->emitValue(Start, AddrSize); 1010 1011 // AT_high_pc, the last address of the default .text section. 1012 const MCExpr *End = MCSymbolRefExpr::create( 1013 EndSymbol, MCSymbolRefExpr::VK_None, context); 1014 MCOS->emitValue(End, AddrSize); 1015 } 1016 1017 // AT_name, the name of the source file. Reconstruct from the first directory 1018 // and file table entries. 1019 const SmallVectorImpl<std::string> &MCDwarfDirs = context.getMCDwarfDirs(); 1020 if (MCDwarfDirs.size() > 0) { 1021 MCOS->emitBytes(MCDwarfDirs[0]); 1022 MCOS->emitBytes(sys::path::get_separator()); 1023 } 1024 const SmallVectorImpl<MCDwarfFile> &MCDwarfFiles = context.getMCDwarfFiles(); 1025 // MCDwarfFiles might be empty if we have an empty source file. 1026 // If it's not empty, [0] is unused and [1] is the first actual file. 1027 assert(MCDwarfFiles.empty() || MCDwarfFiles.size() >= 2); 1028 const MCDwarfFile &RootFile = 1029 MCDwarfFiles.empty() 1030 ? context.getMCDwarfLineTable(/*CUID=*/0).getRootFile() 1031 : MCDwarfFiles[1]; 1032 MCOS->emitBytes(RootFile.Name); 1033 MCOS->emitInt8(0); // NULL byte to terminate the string. 1034 1035 // AT_comp_dir, the working directory the assembly was done in. 1036 if (!context.getCompilationDir().empty()) { 1037 MCOS->emitBytes(context.getCompilationDir()); 1038 MCOS->emitInt8(0); // NULL byte to terminate the string. 1039 } 1040 1041 // AT_APPLE_flags, the command line arguments of the assembler tool. 1042 StringRef DwarfDebugFlags = context.getDwarfDebugFlags(); 1043 if (!DwarfDebugFlags.empty()){ 1044 MCOS->emitBytes(DwarfDebugFlags); 1045 MCOS->emitInt8(0); // NULL byte to terminate the string. 1046 } 1047 1048 // AT_producer, the version of the assembler tool. 1049 StringRef DwarfDebugProducer = context.getDwarfDebugProducer(); 1050 if (!DwarfDebugProducer.empty()) 1051 MCOS->emitBytes(DwarfDebugProducer); 1052 else 1053 MCOS->emitBytes(StringRef("llvm-mc (based on LLVM " PACKAGE_VERSION ")")); 1054 MCOS->emitInt8(0); // NULL byte to terminate the string. 1055 1056 // AT_language, a 4 byte value. We use DW_LANG_Mips_Assembler as the dwarf2 1057 // draft has no standard code for assembler. 1058 MCOS->emitInt16(dwarf::DW_LANG_Mips_Assembler); 1059 1060 // Third part: the list of label DIEs. 1061 1062 // Loop on saved info for dwarf labels and create the DIEs for them. 1063 const std::vector<MCGenDwarfLabelEntry> &Entries = 1064 MCOS->getContext().getMCGenDwarfLabelEntries(); 1065 for (const auto &Entry : Entries) { 1066 // The DW_TAG_label DIE abbrev (2). 1067 MCOS->emitULEB128IntValue(2); 1068 1069 // AT_name, of the label without any leading underbar. 1070 MCOS->emitBytes(Entry.getName()); 1071 MCOS->emitInt8(0); // NULL byte to terminate the string. 1072 1073 // AT_decl_file, index into the file table. 1074 MCOS->emitInt32(Entry.getFileNumber()); 1075 1076 // AT_decl_line, source line number. 1077 MCOS->emitInt32(Entry.getLineNumber()); 1078 1079 // AT_low_pc, start address of the label. 1080 const MCExpr *AT_low_pc = MCSymbolRefExpr::create(Entry.getLabel(), 1081 MCSymbolRefExpr::VK_None, context); 1082 MCOS->emitValue(AT_low_pc, AddrSize); 1083 } 1084 1085 // Add the NULL DIE terminating the Compile Unit DIE's. 1086 MCOS->emitInt8(0); 1087 1088 // Now set the value of the symbol at the end of the info section. 1089 MCOS->emitLabel(InfoEnd); 1090 } 1091 1092 // When generating dwarf for assembly source files this emits the data for 1093 // .debug_ranges section. We only emit one range list, which spans all of the 1094 // executable sections of this file. 1095 static MCSymbol *emitGenDwarfRanges(MCStreamer *MCOS) { 1096 MCContext &context = MCOS->getContext(); 1097 auto &Sections = context.getGenDwarfSectionSyms(); 1098 1099 const MCAsmInfo *AsmInfo = context.getAsmInfo(); 1100 int AddrSize = AsmInfo->getCodePointerSize(); 1101 MCSymbol *RangesSymbol; 1102 1103 if (MCOS->getContext().getDwarfVersion() >= 5) { 1104 MCOS->SwitchSection(context.getObjectFileInfo()->getDwarfRnglistsSection()); 1105 MCSymbol *EndSymbol = mcdwarf::emitListsTableHeaderStart(*MCOS); 1106 MCOS->AddComment("Offset entry count"); 1107 MCOS->emitInt32(0); 1108 RangesSymbol = context.createTempSymbol("debug_rnglist0_start"); 1109 MCOS->emitLabel(RangesSymbol); 1110 for (MCSection *Sec : Sections) { 1111 const MCSymbol *StartSymbol = Sec->getBeginSymbol(); 1112 const MCSymbol *EndSymbol = Sec->getEndSymbol(context); 1113 const MCExpr *SectionStartAddr = MCSymbolRefExpr::create( 1114 StartSymbol, MCSymbolRefExpr::VK_None, context); 1115 const MCExpr *SectionSize = 1116 makeEndMinusStartExpr(context, *StartSymbol, *EndSymbol, 0); 1117 MCOS->emitInt8(dwarf::DW_RLE_start_length); 1118 MCOS->emitValue(SectionStartAddr, AddrSize); 1119 MCOS->emitULEB128Value(SectionSize); 1120 } 1121 MCOS->emitInt8(dwarf::DW_RLE_end_of_list); 1122 MCOS->emitLabel(EndSymbol); 1123 } else { 1124 MCOS->SwitchSection(context.getObjectFileInfo()->getDwarfRangesSection()); 1125 RangesSymbol = context.createTempSymbol("debug_ranges_start"); 1126 MCOS->emitLabel(RangesSymbol); 1127 for (MCSection *Sec : Sections) { 1128 const MCSymbol *StartSymbol = Sec->getBeginSymbol(); 1129 const MCSymbol *EndSymbol = Sec->getEndSymbol(context); 1130 1131 // Emit a base address selection entry for the section start. 1132 const MCExpr *SectionStartAddr = MCSymbolRefExpr::create( 1133 StartSymbol, MCSymbolRefExpr::VK_None, context); 1134 MCOS->emitFill(AddrSize, 0xFF); 1135 MCOS->emitValue(SectionStartAddr, AddrSize); 1136 1137 // Emit a range list entry spanning this section. 1138 const MCExpr *SectionSize = 1139 makeEndMinusStartExpr(context, *StartSymbol, *EndSymbol, 0); 1140 MCOS->emitIntValue(0, AddrSize); 1141 emitAbsValue(*MCOS, SectionSize, AddrSize); 1142 } 1143 1144 // Emit end of list entry 1145 MCOS->emitIntValue(0, AddrSize); 1146 MCOS->emitIntValue(0, AddrSize); 1147 } 1148 1149 return RangesSymbol; 1150 } 1151 1152 // 1153 // When generating dwarf for assembly source files this emits the Dwarf 1154 // sections. 1155 // 1156 void MCGenDwarfInfo::Emit(MCStreamer *MCOS) { 1157 MCContext &context = MCOS->getContext(); 1158 1159 // Create the dwarf sections in this order (.debug_line already created). 1160 const MCAsmInfo *AsmInfo = context.getAsmInfo(); 1161 bool CreateDwarfSectionSymbols = 1162 AsmInfo->doesDwarfUseRelocationsAcrossSections(); 1163 MCSymbol *LineSectionSymbol = nullptr; 1164 if (CreateDwarfSectionSymbols) 1165 LineSectionSymbol = MCOS->getDwarfLineTableSymbol(0); 1166 MCSymbol *AbbrevSectionSymbol = nullptr; 1167 MCSymbol *InfoSectionSymbol = nullptr; 1168 MCSymbol *RangesSymbol = nullptr; 1169 1170 // Create end symbols for each section, and remove empty sections 1171 MCOS->getContext().finalizeDwarfSections(*MCOS); 1172 1173 // If there are no sections to generate debug info for, we don't need 1174 // to do anything 1175 if (MCOS->getContext().getGenDwarfSectionSyms().empty()) 1176 return; 1177 1178 // We only use the .debug_ranges section if we have multiple code sections, 1179 // and we are emitting a DWARF version which supports it. 1180 const bool UseRangesSection = 1181 MCOS->getContext().getGenDwarfSectionSyms().size() > 1 && 1182 MCOS->getContext().getDwarfVersion() >= 3; 1183 CreateDwarfSectionSymbols |= UseRangesSection; 1184 1185 MCOS->SwitchSection(context.getObjectFileInfo()->getDwarfInfoSection()); 1186 if (CreateDwarfSectionSymbols) { 1187 InfoSectionSymbol = context.createTempSymbol(); 1188 MCOS->emitLabel(InfoSectionSymbol); 1189 } 1190 MCOS->SwitchSection(context.getObjectFileInfo()->getDwarfAbbrevSection()); 1191 if (CreateDwarfSectionSymbols) { 1192 AbbrevSectionSymbol = context.createTempSymbol(); 1193 MCOS->emitLabel(AbbrevSectionSymbol); 1194 } 1195 1196 MCOS->SwitchSection(context.getObjectFileInfo()->getDwarfARangesSection()); 1197 1198 // Output the data for .debug_aranges section. 1199 EmitGenDwarfAranges(MCOS, InfoSectionSymbol); 1200 1201 if (UseRangesSection) { 1202 RangesSymbol = emitGenDwarfRanges(MCOS); 1203 assert(RangesSymbol); 1204 } 1205 1206 // Output the data for .debug_abbrev section. 1207 EmitGenDwarfAbbrev(MCOS); 1208 1209 // Output the data for .debug_info section. 1210 EmitGenDwarfInfo(MCOS, AbbrevSectionSymbol, LineSectionSymbol, RangesSymbol); 1211 } 1212 1213 // 1214 // When generating dwarf for assembly source files this is called when symbol 1215 // for a label is created. If this symbol is not a temporary and is in the 1216 // section that dwarf is being generated for, save the needed info to create 1217 // a dwarf label. 1218 // 1219 void MCGenDwarfLabelEntry::Make(MCSymbol *Symbol, MCStreamer *MCOS, 1220 SourceMgr &SrcMgr, SMLoc &Loc) { 1221 // We won't create dwarf labels for temporary symbols. 1222 if (Symbol->isTemporary()) 1223 return; 1224 MCContext &context = MCOS->getContext(); 1225 // We won't create dwarf labels for symbols in sections that we are not 1226 // generating debug info for. 1227 if (!context.getGenDwarfSectionSyms().count(MCOS->getCurrentSectionOnly())) 1228 return; 1229 1230 // The dwarf label's name does not have the symbol name's leading 1231 // underbar if any. 1232 StringRef Name = Symbol->getName(); 1233 if (Name.startswith("_")) 1234 Name = Name.substr(1, Name.size()-1); 1235 1236 // Get the dwarf file number to be used for the dwarf label. 1237 unsigned FileNumber = context.getGenDwarfFileNumber(); 1238 1239 // Finding the line number is the expensive part which is why we just don't 1240 // pass it in as for some symbols we won't create a dwarf label. 1241 unsigned CurBuffer = SrcMgr.FindBufferContainingLoc(Loc); 1242 unsigned LineNumber = SrcMgr.FindLineNumber(Loc, CurBuffer); 1243 1244 // We create a temporary symbol for use for the AT_high_pc and AT_low_pc 1245 // values so that they don't have things like an ARM thumb bit from the 1246 // original symbol. So when used they won't get a low bit set after 1247 // relocation. 1248 MCSymbol *Label = context.createTempSymbol(); 1249 MCOS->emitLabel(Label); 1250 1251 // Create and entry for the info and add it to the other entries. 1252 MCOS->getContext().addMCGenDwarfLabelEntry( 1253 MCGenDwarfLabelEntry(Name, FileNumber, LineNumber, Label)); 1254 } 1255 1256 static int getDataAlignmentFactor(MCStreamer &streamer) { 1257 MCContext &context = streamer.getContext(); 1258 const MCAsmInfo *asmInfo = context.getAsmInfo(); 1259 int size = asmInfo->getCalleeSaveStackSlotSize(); 1260 if (asmInfo->isStackGrowthDirectionUp()) 1261 return size; 1262 else 1263 return -size; 1264 } 1265 1266 static unsigned getSizeForEncoding(MCStreamer &streamer, 1267 unsigned symbolEncoding) { 1268 MCContext &context = streamer.getContext(); 1269 unsigned format = symbolEncoding & 0x0f; 1270 switch (format) { 1271 default: llvm_unreachable("Unknown Encoding"); 1272 case dwarf::DW_EH_PE_absptr: 1273 case dwarf::DW_EH_PE_signed: 1274 return context.getAsmInfo()->getCodePointerSize(); 1275 case dwarf::DW_EH_PE_udata2: 1276 case dwarf::DW_EH_PE_sdata2: 1277 return 2; 1278 case dwarf::DW_EH_PE_udata4: 1279 case dwarf::DW_EH_PE_sdata4: 1280 return 4; 1281 case dwarf::DW_EH_PE_udata8: 1282 case dwarf::DW_EH_PE_sdata8: 1283 return 8; 1284 } 1285 } 1286 1287 static void emitFDESymbol(MCObjectStreamer &streamer, const MCSymbol &symbol, 1288 unsigned symbolEncoding, bool isEH) { 1289 MCContext &context = streamer.getContext(); 1290 const MCAsmInfo *asmInfo = context.getAsmInfo(); 1291 const MCExpr *v = asmInfo->getExprForFDESymbol(&symbol, 1292 symbolEncoding, 1293 streamer); 1294 unsigned size = getSizeForEncoding(streamer, symbolEncoding); 1295 if (asmInfo->doDwarfFDESymbolsUseAbsDiff() && isEH) 1296 emitAbsValue(streamer, v, size); 1297 else 1298 streamer.emitValue(v, size); 1299 } 1300 1301 static void EmitPersonality(MCStreamer &streamer, const MCSymbol &symbol, 1302 unsigned symbolEncoding) { 1303 MCContext &context = streamer.getContext(); 1304 const MCAsmInfo *asmInfo = context.getAsmInfo(); 1305 const MCExpr *v = asmInfo->getExprForPersonalitySymbol(&symbol, 1306 symbolEncoding, 1307 streamer); 1308 unsigned size = getSizeForEncoding(streamer, symbolEncoding); 1309 streamer.emitValue(v, size); 1310 } 1311 1312 namespace { 1313 1314 class FrameEmitterImpl { 1315 int CFAOffset = 0; 1316 int InitialCFAOffset = 0; 1317 bool IsEH; 1318 MCObjectStreamer &Streamer; 1319 1320 public: 1321 FrameEmitterImpl(bool IsEH, MCObjectStreamer &Streamer) 1322 : IsEH(IsEH), Streamer(Streamer) {} 1323 1324 /// Emit the unwind information in a compact way. 1325 void EmitCompactUnwind(const MCDwarfFrameInfo &frame); 1326 1327 const MCSymbol &EmitCIE(const MCDwarfFrameInfo &F); 1328 void EmitFDE(const MCSymbol &cieStart, const MCDwarfFrameInfo &frame, 1329 bool LastInSection, const MCSymbol &SectionStart); 1330 void emitCFIInstructions(ArrayRef<MCCFIInstruction> Instrs, 1331 MCSymbol *BaseLabel); 1332 void emitCFIInstruction(const MCCFIInstruction &Instr); 1333 }; 1334 1335 } // end anonymous namespace 1336 1337 static void emitEncodingByte(MCObjectStreamer &Streamer, unsigned Encoding) { 1338 Streamer.emitInt8(Encoding); 1339 } 1340 1341 void FrameEmitterImpl::emitCFIInstruction(const MCCFIInstruction &Instr) { 1342 int dataAlignmentFactor = getDataAlignmentFactor(Streamer); 1343 auto *MRI = Streamer.getContext().getRegisterInfo(); 1344 1345 switch (Instr.getOperation()) { 1346 case MCCFIInstruction::OpRegister: { 1347 unsigned Reg1 = Instr.getRegister(); 1348 unsigned Reg2 = Instr.getRegister2(); 1349 if (!IsEH) { 1350 Reg1 = MRI->getDwarfRegNumFromDwarfEHRegNum(Reg1); 1351 Reg2 = MRI->getDwarfRegNumFromDwarfEHRegNum(Reg2); 1352 } 1353 Streamer.emitInt8(dwarf::DW_CFA_register); 1354 Streamer.emitULEB128IntValue(Reg1); 1355 Streamer.emitULEB128IntValue(Reg2); 1356 return; 1357 } 1358 case MCCFIInstruction::OpWindowSave: 1359 Streamer.emitInt8(dwarf::DW_CFA_GNU_window_save); 1360 return; 1361 1362 case MCCFIInstruction::OpNegateRAState: 1363 Streamer.emitInt8(dwarf::DW_CFA_AARCH64_negate_ra_state); 1364 return; 1365 1366 case MCCFIInstruction::OpUndefined: { 1367 unsigned Reg = Instr.getRegister(); 1368 Streamer.emitInt8(dwarf::DW_CFA_undefined); 1369 Streamer.emitULEB128IntValue(Reg); 1370 return; 1371 } 1372 case MCCFIInstruction::OpAdjustCfaOffset: 1373 case MCCFIInstruction::OpDefCfaOffset: { 1374 const bool IsRelative = 1375 Instr.getOperation() == MCCFIInstruction::OpAdjustCfaOffset; 1376 1377 Streamer.emitInt8(dwarf::DW_CFA_def_cfa_offset); 1378 1379 if (IsRelative) 1380 CFAOffset += Instr.getOffset(); 1381 else 1382 CFAOffset = Instr.getOffset(); 1383 1384 Streamer.emitULEB128IntValue(CFAOffset); 1385 1386 return; 1387 } 1388 case MCCFIInstruction::OpDefCfa: { 1389 unsigned Reg = Instr.getRegister(); 1390 if (!IsEH) 1391 Reg = MRI->getDwarfRegNumFromDwarfEHRegNum(Reg); 1392 Streamer.emitInt8(dwarf::DW_CFA_def_cfa); 1393 Streamer.emitULEB128IntValue(Reg); 1394 CFAOffset = Instr.getOffset(); 1395 Streamer.emitULEB128IntValue(CFAOffset); 1396 1397 return; 1398 } 1399 case MCCFIInstruction::OpDefCfaRegister: { 1400 unsigned Reg = Instr.getRegister(); 1401 if (!IsEH) 1402 Reg = MRI->getDwarfRegNumFromDwarfEHRegNum(Reg); 1403 Streamer.emitInt8(dwarf::DW_CFA_def_cfa_register); 1404 Streamer.emitULEB128IntValue(Reg); 1405 1406 return; 1407 } 1408 case MCCFIInstruction::OpOffset: 1409 case MCCFIInstruction::OpRelOffset: { 1410 const bool IsRelative = 1411 Instr.getOperation() == MCCFIInstruction::OpRelOffset; 1412 1413 unsigned Reg = Instr.getRegister(); 1414 if (!IsEH) 1415 Reg = MRI->getDwarfRegNumFromDwarfEHRegNum(Reg); 1416 1417 int Offset = Instr.getOffset(); 1418 if (IsRelative) 1419 Offset -= CFAOffset; 1420 Offset = Offset / dataAlignmentFactor; 1421 1422 if (Offset < 0) { 1423 Streamer.emitInt8(dwarf::DW_CFA_offset_extended_sf); 1424 Streamer.emitULEB128IntValue(Reg); 1425 Streamer.emitSLEB128IntValue(Offset); 1426 } else if (Reg < 64) { 1427 Streamer.emitInt8(dwarf::DW_CFA_offset + Reg); 1428 Streamer.emitULEB128IntValue(Offset); 1429 } else { 1430 Streamer.emitInt8(dwarf::DW_CFA_offset_extended); 1431 Streamer.emitULEB128IntValue(Reg); 1432 Streamer.emitULEB128IntValue(Offset); 1433 } 1434 return; 1435 } 1436 case MCCFIInstruction::OpRememberState: 1437 Streamer.emitInt8(dwarf::DW_CFA_remember_state); 1438 return; 1439 case MCCFIInstruction::OpRestoreState: 1440 Streamer.emitInt8(dwarf::DW_CFA_restore_state); 1441 return; 1442 case MCCFIInstruction::OpSameValue: { 1443 unsigned Reg = Instr.getRegister(); 1444 Streamer.emitInt8(dwarf::DW_CFA_same_value); 1445 Streamer.emitULEB128IntValue(Reg); 1446 return; 1447 } 1448 case MCCFIInstruction::OpRestore: { 1449 unsigned Reg = Instr.getRegister(); 1450 if (!IsEH) 1451 Reg = MRI->getDwarfRegNumFromDwarfEHRegNum(Reg); 1452 if (Reg < 64) { 1453 Streamer.emitInt8(dwarf::DW_CFA_restore | Reg); 1454 } else { 1455 Streamer.emitInt8(dwarf::DW_CFA_restore_extended); 1456 Streamer.emitULEB128IntValue(Reg); 1457 } 1458 return; 1459 } 1460 case MCCFIInstruction::OpGnuArgsSize: 1461 Streamer.emitInt8(dwarf::DW_CFA_GNU_args_size); 1462 Streamer.emitULEB128IntValue(Instr.getOffset()); 1463 return; 1464 1465 case MCCFIInstruction::OpEscape: 1466 Streamer.emitBytes(Instr.getValues()); 1467 return; 1468 } 1469 llvm_unreachable("Unhandled case in switch"); 1470 } 1471 1472 /// Emit frame instructions to describe the layout of the frame. 1473 void FrameEmitterImpl::emitCFIInstructions(ArrayRef<MCCFIInstruction> Instrs, 1474 MCSymbol *BaseLabel) { 1475 for (const MCCFIInstruction &Instr : Instrs) { 1476 MCSymbol *Label = Instr.getLabel(); 1477 // Throw out move if the label is invalid. 1478 if (Label && !Label->isDefined()) continue; // Not emitted, in dead code. 1479 1480 // Advance row if new location. 1481 if (BaseLabel && Label) { 1482 MCSymbol *ThisSym = Label; 1483 if (ThisSym != BaseLabel) { 1484 Streamer.emitDwarfAdvanceFrameAddr(BaseLabel, ThisSym); 1485 BaseLabel = ThisSym; 1486 } 1487 } 1488 1489 emitCFIInstruction(Instr); 1490 } 1491 } 1492 1493 /// Emit the unwind information in a compact way. 1494 void FrameEmitterImpl::EmitCompactUnwind(const MCDwarfFrameInfo &Frame) { 1495 MCContext &Context = Streamer.getContext(); 1496 const MCObjectFileInfo *MOFI = Context.getObjectFileInfo(); 1497 1498 // range-start range-length compact-unwind-enc personality-func lsda 1499 // _foo LfooEnd-_foo 0x00000023 0 0 1500 // _bar LbarEnd-_bar 0x00000025 __gxx_personality except_tab1 1501 // 1502 // .section __LD,__compact_unwind,regular,debug 1503 // 1504 // # compact unwind for _foo 1505 // .quad _foo 1506 // .set L1,LfooEnd-_foo 1507 // .long L1 1508 // .long 0x01010001 1509 // .quad 0 1510 // .quad 0 1511 // 1512 // # compact unwind for _bar 1513 // .quad _bar 1514 // .set L2,LbarEnd-_bar 1515 // .long L2 1516 // .long 0x01020011 1517 // .quad __gxx_personality 1518 // .quad except_tab1 1519 1520 uint32_t Encoding = Frame.CompactUnwindEncoding; 1521 if (!Encoding) return; 1522 bool DwarfEHFrameOnly = (Encoding == MOFI->getCompactUnwindDwarfEHFrameOnly()); 1523 1524 // The encoding needs to know we have an LSDA. 1525 if (!DwarfEHFrameOnly && Frame.Lsda) 1526 Encoding |= 0x40000000; 1527 1528 // Range Start 1529 unsigned FDEEncoding = MOFI->getFDEEncoding(); 1530 unsigned Size = getSizeForEncoding(Streamer, FDEEncoding); 1531 Streamer.emitSymbolValue(Frame.Begin, Size); 1532 1533 // Range Length 1534 const MCExpr *Range = 1535 makeEndMinusStartExpr(Context, *Frame.Begin, *Frame.End, 0); 1536 emitAbsValue(Streamer, Range, 4); 1537 1538 // Compact Encoding 1539 Size = getSizeForEncoding(Streamer, dwarf::DW_EH_PE_udata4); 1540 Streamer.emitIntValue(Encoding, Size); 1541 1542 // Personality Function 1543 Size = getSizeForEncoding(Streamer, dwarf::DW_EH_PE_absptr); 1544 if (!DwarfEHFrameOnly && Frame.Personality) 1545 Streamer.emitSymbolValue(Frame.Personality, Size); 1546 else 1547 Streamer.emitIntValue(0, Size); // No personality fn 1548 1549 // LSDA 1550 Size = getSizeForEncoding(Streamer, Frame.LsdaEncoding); 1551 if (!DwarfEHFrameOnly && Frame.Lsda) 1552 Streamer.emitSymbolValue(Frame.Lsda, Size); 1553 else 1554 Streamer.emitIntValue(0, Size); // No LSDA 1555 } 1556 1557 static unsigned getCIEVersion(bool IsEH, unsigned DwarfVersion) { 1558 if (IsEH) 1559 return 1; 1560 switch (DwarfVersion) { 1561 case 2: 1562 return 1; 1563 case 3: 1564 return 3; 1565 case 4: 1566 case 5: 1567 return 4; 1568 } 1569 llvm_unreachable("Unknown version"); 1570 } 1571 1572 const MCSymbol &FrameEmitterImpl::EmitCIE(const MCDwarfFrameInfo &Frame) { 1573 MCContext &context = Streamer.getContext(); 1574 const MCRegisterInfo *MRI = context.getRegisterInfo(); 1575 const MCObjectFileInfo *MOFI = context.getObjectFileInfo(); 1576 1577 MCSymbol *sectionStart = context.createTempSymbol(); 1578 Streamer.emitLabel(sectionStart); 1579 1580 MCSymbol *sectionEnd = context.createTempSymbol(); 1581 1582 dwarf::DwarfFormat Format = IsEH ? dwarf::DWARF32 : context.getDwarfFormat(); 1583 unsigned UnitLengthBytes = dwarf::getUnitLengthFieldByteSize(Format); 1584 unsigned OffsetSize = dwarf::getDwarfOffsetByteSize(Format); 1585 bool IsDwarf64 = Format == dwarf::DWARF64; 1586 1587 if (IsDwarf64) 1588 // DWARF64 mark 1589 Streamer.emitInt32(dwarf::DW_LENGTH_DWARF64); 1590 1591 // Length 1592 const MCExpr *Length = makeEndMinusStartExpr(context, *sectionStart, 1593 *sectionEnd, UnitLengthBytes); 1594 emitAbsValue(Streamer, Length, OffsetSize); 1595 1596 // CIE ID 1597 uint64_t CIE_ID = 1598 IsEH ? 0 : (IsDwarf64 ? dwarf::DW64_CIE_ID : dwarf::DW_CIE_ID); 1599 Streamer.emitIntValue(CIE_ID, OffsetSize); 1600 1601 // Version 1602 uint8_t CIEVersion = getCIEVersion(IsEH, context.getDwarfVersion()); 1603 Streamer.emitInt8(CIEVersion); 1604 1605 if (IsEH) { 1606 SmallString<8> Augmentation; 1607 Augmentation += "z"; 1608 if (Frame.Personality) 1609 Augmentation += "P"; 1610 if (Frame.Lsda) 1611 Augmentation += "L"; 1612 Augmentation += "R"; 1613 if (Frame.IsSignalFrame) 1614 Augmentation += "S"; 1615 if (Frame.IsBKeyFrame) 1616 Augmentation += "B"; 1617 Streamer.emitBytes(Augmentation); 1618 } 1619 Streamer.emitInt8(0); 1620 1621 if (CIEVersion >= 4) { 1622 // Address Size 1623 Streamer.emitInt8(context.getAsmInfo()->getCodePointerSize()); 1624 1625 // Segment Descriptor Size 1626 Streamer.emitInt8(0); 1627 } 1628 1629 // Code Alignment Factor 1630 Streamer.emitULEB128IntValue(context.getAsmInfo()->getMinInstAlignment()); 1631 1632 // Data Alignment Factor 1633 Streamer.emitSLEB128IntValue(getDataAlignmentFactor(Streamer)); 1634 1635 // Return Address Register 1636 unsigned RAReg = Frame.RAReg; 1637 if (RAReg == static_cast<unsigned>(INT_MAX)) 1638 RAReg = MRI->getDwarfRegNum(MRI->getRARegister(), IsEH); 1639 1640 if (CIEVersion == 1) { 1641 assert(RAReg <= 255 && 1642 "DWARF 2 encodes return_address_register in one byte"); 1643 Streamer.emitInt8(RAReg); 1644 } else { 1645 Streamer.emitULEB128IntValue(RAReg); 1646 } 1647 1648 // Augmentation Data Length (optional) 1649 unsigned augmentationLength = 0; 1650 if (IsEH) { 1651 if (Frame.Personality) { 1652 // Personality Encoding 1653 augmentationLength += 1; 1654 // Personality 1655 augmentationLength += 1656 getSizeForEncoding(Streamer, Frame.PersonalityEncoding); 1657 } 1658 if (Frame.Lsda) 1659 augmentationLength += 1; 1660 // Encoding of the FDE pointers 1661 augmentationLength += 1; 1662 1663 Streamer.emitULEB128IntValue(augmentationLength); 1664 1665 // Augmentation Data (optional) 1666 if (Frame.Personality) { 1667 // Personality Encoding 1668 emitEncodingByte(Streamer, Frame.PersonalityEncoding); 1669 // Personality 1670 EmitPersonality(Streamer, *Frame.Personality, Frame.PersonalityEncoding); 1671 } 1672 1673 if (Frame.Lsda) 1674 emitEncodingByte(Streamer, Frame.LsdaEncoding); 1675 1676 // Encoding of the FDE pointers 1677 emitEncodingByte(Streamer, MOFI->getFDEEncoding()); 1678 } 1679 1680 // Initial Instructions 1681 1682 const MCAsmInfo *MAI = context.getAsmInfo(); 1683 if (!Frame.IsSimple) { 1684 const std::vector<MCCFIInstruction> &Instructions = 1685 MAI->getInitialFrameState(); 1686 emitCFIInstructions(Instructions, nullptr); 1687 } 1688 1689 InitialCFAOffset = CFAOffset; 1690 1691 // Padding 1692 Streamer.emitValueToAlignment(IsEH ? 4 : MAI->getCodePointerSize()); 1693 1694 Streamer.emitLabel(sectionEnd); 1695 return *sectionStart; 1696 } 1697 1698 void FrameEmitterImpl::EmitFDE(const MCSymbol &cieStart, 1699 const MCDwarfFrameInfo &frame, 1700 bool LastInSection, 1701 const MCSymbol &SectionStart) { 1702 MCContext &context = Streamer.getContext(); 1703 MCSymbol *fdeStart = context.createTempSymbol(); 1704 MCSymbol *fdeEnd = context.createTempSymbol(); 1705 const MCObjectFileInfo *MOFI = context.getObjectFileInfo(); 1706 1707 CFAOffset = InitialCFAOffset; 1708 1709 dwarf::DwarfFormat Format = IsEH ? dwarf::DWARF32 : context.getDwarfFormat(); 1710 unsigned OffsetSize = dwarf::getDwarfOffsetByteSize(Format); 1711 1712 if (Format == dwarf::DWARF64) 1713 // DWARF64 mark 1714 Streamer.emitInt32(dwarf::DW_LENGTH_DWARF64); 1715 1716 // Length 1717 const MCExpr *Length = makeEndMinusStartExpr(context, *fdeStart, *fdeEnd, 0); 1718 emitAbsValue(Streamer, Length, OffsetSize); 1719 1720 Streamer.emitLabel(fdeStart); 1721 1722 // CIE Pointer 1723 const MCAsmInfo *asmInfo = context.getAsmInfo(); 1724 if (IsEH) { 1725 const MCExpr *offset = 1726 makeEndMinusStartExpr(context, cieStart, *fdeStart, 0); 1727 emitAbsValue(Streamer, offset, OffsetSize); 1728 } else if (!asmInfo->doesDwarfUseRelocationsAcrossSections()) { 1729 const MCExpr *offset = 1730 makeEndMinusStartExpr(context, SectionStart, cieStart, 0); 1731 emitAbsValue(Streamer, offset, OffsetSize); 1732 } else { 1733 Streamer.emitSymbolValue(&cieStart, OffsetSize, 1734 asmInfo->needsDwarfSectionOffsetDirective()); 1735 } 1736 1737 // PC Begin 1738 unsigned PCEncoding = 1739 IsEH ? MOFI->getFDEEncoding() : (unsigned)dwarf::DW_EH_PE_absptr; 1740 unsigned PCSize = getSizeForEncoding(Streamer, PCEncoding); 1741 emitFDESymbol(Streamer, *frame.Begin, PCEncoding, IsEH); 1742 1743 // PC Range 1744 const MCExpr *Range = 1745 makeEndMinusStartExpr(context, *frame.Begin, *frame.End, 0); 1746 emitAbsValue(Streamer, Range, PCSize); 1747 1748 if (IsEH) { 1749 // Augmentation Data Length 1750 unsigned augmentationLength = 0; 1751 1752 if (frame.Lsda) 1753 augmentationLength += getSizeForEncoding(Streamer, frame.LsdaEncoding); 1754 1755 Streamer.emitULEB128IntValue(augmentationLength); 1756 1757 // Augmentation Data 1758 if (frame.Lsda) 1759 emitFDESymbol(Streamer, *frame.Lsda, frame.LsdaEncoding, true); 1760 } 1761 1762 // Call Frame Instructions 1763 emitCFIInstructions(frame.Instructions, frame.Begin); 1764 1765 // Padding 1766 // The size of a .eh_frame section has to be a multiple of the alignment 1767 // since a null CIE is interpreted as the end. Old systems overaligned 1768 // .eh_frame, so we do too and account for it in the last FDE. 1769 unsigned Align = LastInSection ? asmInfo->getCodePointerSize() : PCSize; 1770 Streamer.emitValueToAlignment(Align); 1771 1772 Streamer.emitLabel(fdeEnd); 1773 } 1774 1775 namespace { 1776 1777 struct CIEKey { 1778 static const CIEKey getEmptyKey() { 1779 return CIEKey(nullptr, 0, -1, false, false, static_cast<unsigned>(INT_MAX), 1780 false); 1781 } 1782 1783 static const CIEKey getTombstoneKey() { 1784 return CIEKey(nullptr, -1, 0, false, false, static_cast<unsigned>(INT_MAX), 1785 false); 1786 } 1787 1788 CIEKey(const MCSymbol *Personality, unsigned PersonalityEncoding, 1789 unsigned LSDAEncoding, bool IsSignalFrame, bool IsSimple, 1790 unsigned RAReg, bool IsBKeyFrame) 1791 : Personality(Personality), PersonalityEncoding(PersonalityEncoding), 1792 LsdaEncoding(LSDAEncoding), IsSignalFrame(IsSignalFrame), 1793 IsSimple(IsSimple), RAReg(RAReg), IsBKeyFrame(IsBKeyFrame) {} 1794 1795 explicit CIEKey(const MCDwarfFrameInfo &Frame) 1796 : Personality(Frame.Personality), 1797 PersonalityEncoding(Frame.PersonalityEncoding), 1798 LsdaEncoding(Frame.LsdaEncoding), IsSignalFrame(Frame.IsSignalFrame), 1799 IsSimple(Frame.IsSimple), RAReg(Frame.RAReg), 1800 IsBKeyFrame(Frame.IsBKeyFrame) {} 1801 1802 StringRef PersonalityName() const { 1803 if (!Personality) 1804 return StringRef(); 1805 return Personality->getName(); 1806 } 1807 1808 bool operator<(const CIEKey &Other) const { 1809 return std::make_tuple(PersonalityName(), PersonalityEncoding, LsdaEncoding, 1810 IsSignalFrame, IsSimple, RAReg) < 1811 std::make_tuple(Other.PersonalityName(), Other.PersonalityEncoding, 1812 Other.LsdaEncoding, Other.IsSignalFrame, 1813 Other.IsSimple, Other.RAReg); 1814 } 1815 1816 const MCSymbol *Personality; 1817 unsigned PersonalityEncoding; 1818 unsigned LsdaEncoding; 1819 bool IsSignalFrame; 1820 bool IsSimple; 1821 unsigned RAReg; 1822 bool IsBKeyFrame; 1823 }; 1824 1825 } // end anonymous namespace 1826 1827 namespace llvm { 1828 1829 template <> struct DenseMapInfo<CIEKey> { 1830 static CIEKey getEmptyKey() { return CIEKey::getEmptyKey(); } 1831 static CIEKey getTombstoneKey() { return CIEKey::getTombstoneKey(); } 1832 1833 static unsigned getHashValue(const CIEKey &Key) { 1834 return static_cast<unsigned>(hash_combine( 1835 Key.Personality, Key.PersonalityEncoding, Key.LsdaEncoding, 1836 Key.IsSignalFrame, Key.IsSimple, Key.RAReg, Key.IsBKeyFrame)); 1837 } 1838 1839 static bool isEqual(const CIEKey &LHS, const CIEKey &RHS) { 1840 return LHS.Personality == RHS.Personality && 1841 LHS.PersonalityEncoding == RHS.PersonalityEncoding && 1842 LHS.LsdaEncoding == RHS.LsdaEncoding && 1843 LHS.IsSignalFrame == RHS.IsSignalFrame && 1844 LHS.IsSimple == RHS.IsSimple && LHS.RAReg == RHS.RAReg && 1845 LHS.IsBKeyFrame == RHS.IsBKeyFrame; 1846 } 1847 }; 1848 1849 } // end namespace llvm 1850 1851 void MCDwarfFrameEmitter::Emit(MCObjectStreamer &Streamer, MCAsmBackend *MAB, 1852 bool IsEH) { 1853 Streamer.generateCompactUnwindEncodings(MAB); 1854 1855 MCContext &Context = Streamer.getContext(); 1856 const MCObjectFileInfo *MOFI = Context.getObjectFileInfo(); 1857 const MCAsmInfo *AsmInfo = Context.getAsmInfo(); 1858 FrameEmitterImpl Emitter(IsEH, Streamer); 1859 ArrayRef<MCDwarfFrameInfo> FrameArray = Streamer.getDwarfFrameInfos(); 1860 1861 // Emit the compact unwind info if available. 1862 bool NeedsEHFrameSection = !MOFI->getSupportsCompactUnwindWithoutEHFrame(); 1863 if (IsEH && MOFI->getCompactUnwindSection()) { 1864 bool SectionEmitted = false; 1865 for (const MCDwarfFrameInfo &Frame : FrameArray) { 1866 if (Frame.CompactUnwindEncoding == 0) continue; 1867 if (!SectionEmitted) { 1868 Streamer.SwitchSection(MOFI->getCompactUnwindSection()); 1869 Streamer.emitValueToAlignment(AsmInfo->getCodePointerSize()); 1870 SectionEmitted = true; 1871 } 1872 NeedsEHFrameSection |= 1873 Frame.CompactUnwindEncoding == 1874 MOFI->getCompactUnwindDwarfEHFrameOnly(); 1875 Emitter.EmitCompactUnwind(Frame); 1876 } 1877 } 1878 1879 if (!NeedsEHFrameSection) return; 1880 1881 MCSection &Section = 1882 IsEH ? *const_cast<MCObjectFileInfo *>(MOFI)->getEHFrameSection() 1883 : *MOFI->getDwarfFrameSection(); 1884 1885 Streamer.SwitchSection(&Section); 1886 MCSymbol *SectionStart = Context.createTempSymbol(); 1887 Streamer.emitLabel(SectionStart); 1888 1889 DenseMap<CIEKey, const MCSymbol *> CIEStarts; 1890 1891 const MCSymbol *DummyDebugKey = nullptr; 1892 bool CanOmitDwarf = MOFI->getOmitDwarfIfHaveCompactUnwind(); 1893 // Sort the FDEs by their corresponding CIE before we emit them. 1894 // This isn't technically necessary according to the DWARF standard, 1895 // but the Android libunwindstack rejects eh_frame sections where 1896 // an FDE refers to a CIE other than the closest previous CIE. 1897 std::vector<MCDwarfFrameInfo> FrameArrayX(FrameArray.begin(), FrameArray.end()); 1898 llvm::stable_sort(FrameArrayX, 1899 [](const MCDwarfFrameInfo &X, const MCDwarfFrameInfo &Y) { 1900 return CIEKey(X) < CIEKey(Y); 1901 }); 1902 for (auto I = FrameArrayX.begin(), E = FrameArrayX.end(); I != E;) { 1903 const MCDwarfFrameInfo &Frame = *I; 1904 ++I; 1905 if (CanOmitDwarf && Frame.CompactUnwindEncoding != 1906 MOFI->getCompactUnwindDwarfEHFrameOnly()) 1907 // Don't generate an EH frame if we don't need one. I.e., it's taken care 1908 // of by the compact unwind encoding. 1909 continue; 1910 1911 CIEKey Key(Frame); 1912 const MCSymbol *&CIEStart = IsEH ? CIEStarts[Key] : DummyDebugKey; 1913 if (!CIEStart) 1914 CIEStart = &Emitter.EmitCIE(Frame); 1915 1916 Emitter.EmitFDE(*CIEStart, Frame, I == E, *SectionStart); 1917 } 1918 } 1919 1920 void MCDwarfFrameEmitter::EmitAdvanceLoc(MCObjectStreamer &Streamer, 1921 uint64_t AddrDelta) { 1922 MCContext &Context = Streamer.getContext(); 1923 SmallString<256> Tmp; 1924 raw_svector_ostream OS(Tmp); 1925 MCDwarfFrameEmitter::EncodeAdvanceLoc(Context, AddrDelta, OS); 1926 Streamer.emitBytes(OS.str()); 1927 } 1928 1929 void MCDwarfFrameEmitter::EncodeAdvanceLoc(MCContext &Context, 1930 uint64_t AddrDelta, raw_ostream &OS, 1931 uint32_t *Offset, uint32_t *Size) { 1932 // Scale the address delta by the minimum instruction length. 1933 AddrDelta = ScaleAddrDelta(Context, AddrDelta); 1934 1935 bool WithFixups = false; 1936 if (Offset && Size) 1937 WithFixups = true; 1938 1939 support::endianness E = 1940 Context.getAsmInfo()->isLittleEndian() ? support::little : support::big; 1941 if (AddrDelta == 0) { 1942 if (WithFixups) { 1943 *Offset = 0; 1944 *Size = 0; 1945 } 1946 } else if (isUIntN(6, AddrDelta)) { 1947 uint8_t Opcode = dwarf::DW_CFA_advance_loc | AddrDelta; 1948 if (WithFixups) { 1949 *Offset = OS.tell(); 1950 *Size = 6; 1951 OS << uint8_t(dwarf::DW_CFA_advance_loc); 1952 } else 1953 OS << Opcode; 1954 } else if (isUInt<8>(AddrDelta)) { 1955 OS << uint8_t(dwarf::DW_CFA_advance_loc1); 1956 if (WithFixups) { 1957 *Offset = OS.tell(); 1958 *Size = 8; 1959 OS.write_zeros(1); 1960 } else 1961 OS << uint8_t(AddrDelta); 1962 } else if (isUInt<16>(AddrDelta)) { 1963 OS << uint8_t(dwarf::DW_CFA_advance_loc2); 1964 if (WithFixups) { 1965 *Offset = OS.tell(); 1966 *Size = 16; 1967 OS.write_zeros(2); 1968 } else 1969 support::endian::write<uint16_t>(OS, AddrDelta, E); 1970 } else { 1971 assert(isUInt<32>(AddrDelta)); 1972 OS << uint8_t(dwarf::DW_CFA_advance_loc4); 1973 if (WithFixups) { 1974 *Offset = OS.tell(); 1975 *Size = 32; 1976 OS.write_zeros(4); 1977 } else 1978 support::endian::write<uint32_t>(OS, AddrDelta, E); 1979 } 1980 } 1981