1 //===-- COFFDump.cpp - COFF-specific dumper ---------------------*- C++ -*-===// 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 /// \file 11 /// This file implements the COFF-specific dumper for llvm-objdump. 12 /// It outputs the Win64 EH data structures as plain text. 13 /// The encoding of the unwind codes is described in MSDN: 14 /// http://msdn.microsoft.com/en-us/library/ck9asaa9.aspx 15 /// 16 //===----------------------------------------------------------------------===// 17 18 #include "llvm-objdump.h" 19 #include "llvm/Demangle/Demangle.h" 20 #include "llvm/Object/COFF.h" 21 #include "llvm/Object/COFFImportFile.h" 22 #include "llvm/Object/ObjectFile.h" 23 #include "llvm/Support/Format.h" 24 #include "llvm/Support/Win64EH.h" 25 #include "llvm/Support/WithColor.h" 26 #include "llvm/Support/raw_ostream.h" 27 28 using namespace llvm; 29 using namespace object; 30 using namespace llvm::Win64EH; 31 32 // Returns the name of the unwind code. 33 static StringRef getUnwindCodeTypeName(uint8_t Code) { 34 switch(Code) { 35 default: llvm_unreachable("Invalid unwind code"); 36 case UOP_PushNonVol: return "UOP_PushNonVol"; 37 case UOP_AllocLarge: return "UOP_AllocLarge"; 38 case UOP_AllocSmall: return "UOP_AllocSmall"; 39 case UOP_SetFPReg: return "UOP_SetFPReg"; 40 case UOP_SaveNonVol: return "UOP_SaveNonVol"; 41 case UOP_SaveNonVolBig: return "UOP_SaveNonVolBig"; 42 case UOP_SaveXMM128: return "UOP_SaveXMM128"; 43 case UOP_SaveXMM128Big: return "UOP_SaveXMM128Big"; 44 case UOP_PushMachFrame: return "UOP_PushMachFrame"; 45 } 46 } 47 48 // Returns the name of a referenced register. 49 static StringRef getUnwindRegisterName(uint8_t Reg) { 50 switch(Reg) { 51 default: llvm_unreachable("Invalid register"); 52 case 0: return "RAX"; 53 case 1: return "RCX"; 54 case 2: return "RDX"; 55 case 3: return "RBX"; 56 case 4: return "RSP"; 57 case 5: return "RBP"; 58 case 6: return "RSI"; 59 case 7: return "RDI"; 60 case 8: return "R8"; 61 case 9: return "R9"; 62 case 10: return "R10"; 63 case 11: return "R11"; 64 case 12: return "R12"; 65 case 13: return "R13"; 66 case 14: return "R14"; 67 case 15: return "R15"; 68 } 69 } 70 71 // Calculates the number of array slots required for the unwind code. 72 static unsigned getNumUsedSlots(const UnwindCode &UnwindCode) { 73 switch (UnwindCode.getUnwindOp()) { 74 default: llvm_unreachable("Invalid unwind code"); 75 case UOP_PushNonVol: 76 case UOP_AllocSmall: 77 case UOP_SetFPReg: 78 case UOP_PushMachFrame: 79 return 1; 80 case UOP_SaveNonVol: 81 case UOP_SaveXMM128: 82 return 2; 83 case UOP_SaveNonVolBig: 84 case UOP_SaveXMM128Big: 85 return 3; 86 case UOP_AllocLarge: 87 return (UnwindCode.getOpInfo() == 0) ? 2 : 3; 88 } 89 } 90 91 // Prints one unwind code. Because an unwind code can occupy up to 3 slots in 92 // the unwind codes array, this function requires that the correct number of 93 // slots is provided. 94 static void printUnwindCode(ArrayRef<UnwindCode> UCs) { 95 assert(UCs.size() >= getNumUsedSlots(UCs[0])); 96 outs() << format(" 0x%02x: ", unsigned(UCs[0].u.CodeOffset)) 97 << getUnwindCodeTypeName(UCs[0].getUnwindOp()); 98 switch (UCs[0].getUnwindOp()) { 99 case UOP_PushNonVol: 100 outs() << " " << getUnwindRegisterName(UCs[0].getOpInfo()); 101 break; 102 case UOP_AllocLarge: 103 if (UCs[0].getOpInfo() == 0) { 104 outs() << " " << UCs[1].FrameOffset; 105 } else { 106 outs() << " " << UCs[1].FrameOffset 107 + (static_cast<uint32_t>(UCs[2].FrameOffset) << 16); 108 } 109 break; 110 case UOP_AllocSmall: 111 outs() << " " << ((UCs[0].getOpInfo() + 1) * 8); 112 break; 113 case UOP_SetFPReg: 114 outs() << " "; 115 break; 116 case UOP_SaveNonVol: 117 outs() << " " << getUnwindRegisterName(UCs[0].getOpInfo()) 118 << format(" [0x%04x]", 8 * UCs[1].FrameOffset); 119 break; 120 case UOP_SaveNonVolBig: 121 outs() << " " << getUnwindRegisterName(UCs[0].getOpInfo()) 122 << format(" [0x%08x]", UCs[1].FrameOffset 123 + (static_cast<uint32_t>(UCs[2].FrameOffset) << 16)); 124 break; 125 case UOP_SaveXMM128: 126 outs() << " XMM" << static_cast<uint32_t>(UCs[0].getOpInfo()) 127 << format(" [0x%04x]", 16 * UCs[1].FrameOffset); 128 break; 129 case UOP_SaveXMM128Big: 130 outs() << " XMM" << UCs[0].getOpInfo() 131 << format(" [0x%08x]", UCs[1].FrameOffset 132 + (static_cast<uint32_t>(UCs[2].FrameOffset) << 16)); 133 break; 134 case UOP_PushMachFrame: 135 outs() << " " << (UCs[0].getOpInfo() ? "w/o" : "w") 136 << " error code"; 137 break; 138 } 139 outs() << "\n"; 140 } 141 142 static void printAllUnwindCodes(ArrayRef<UnwindCode> UCs) { 143 for (const UnwindCode *I = UCs.begin(), *E = UCs.end(); I < E; ) { 144 unsigned UsedSlots = getNumUsedSlots(*I); 145 if (UsedSlots > UCs.size()) { 146 outs() << "Unwind data corrupted: Encountered unwind op " 147 << getUnwindCodeTypeName((*I).getUnwindOp()) 148 << " which requires " << UsedSlots 149 << " slots, but only " << UCs.size() 150 << " remaining in buffer"; 151 return ; 152 } 153 printUnwindCode(makeArrayRef(I, E)); 154 I += UsedSlots; 155 } 156 } 157 158 // Given a symbol sym this functions returns the address and section of it. 159 static std::error_code 160 resolveSectionAndAddress(const COFFObjectFile *Obj, const SymbolRef &Sym, 161 const coff_section *&ResolvedSection, 162 uint64_t &ResolvedAddr) { 163 Expected<uint64_t> ResolvedAddrOrErr = Sym.getAddress(); 164 if (!ResolvedAddrOrErr) 165 return errorToErrorCode(ResolvedAddrOrErr.takeError()); 166 ResolvedAddr = *ResolvedAddrOrErr; 167 Expected<section_iterator> Iter = Sym.getSection(); 168 if (!Iter) 169 return errorToErrorCode(Iter.takeError()); 170 ResolvedSection = Obj->getCOFFSection(**Iter); 171 return std::error_code(); 172 } 173 174 // Given a vector of relocations for a section and an offset into this section 175 // the function returns the symbol used for the relocation at the offset. 176 static std::error_code resolveSymbol(const std::vector<RelocationRef> &Rels, 177 uint64_t Offset, SymbolRef &Sym) { 178 for (auto &R : Rels) { 179 uint64_t Ofs = R.getOffset(); 180 if (Ofs == Offset) { 181 Sym = *R.getSymbol(); 182 return std::error_code(); 183 } 184 } 185 return object_error::parse_failed; 186 } 187 188 // Given a vector of relocations for a section and an offset into this section 189 // the function resolves the symbol used for the relocation at the offset and 190 // returns the section content and the address inside the content pointed to 191 // by the symbol. 192 static std::error_code 193 getSectionContents(const COFFObjectFile *Obj, 194 const std::vector<RelocationRef> &Rels, uint64_t Offset, 195 ArrayRef<uint8_t> &Contents, uint64_t &Addr) { 196 SymbolRef Sym; 197 if (std::error_code EC = resolveSymbol(Rels, Offset, Sym)) 198 return EC; 199 const coff_section *Section; 200 if (std::error_code EC = resolveSectionAndAddress(Obj, Sym, Section, Addr)) 201 return EC; 202 if (std::error_code EC = Obj->getSectionContents(Section, Contents)) 203 return EC; 204 return std::error_code(); 205 } 206 207 // Given a vector of relocations for a section and an offset into this section 208 // the function returns the name of the symbol used for the relocation at the 209 // offset. 210 static std::error_code resolveSymbolName(const std::vector<RelocationRef> &Rels, 211 uint64_t Offset, StringRef &Name) { 212 SymbolRef Sym; 213 if (std::error_code EC = resolveSymbol(Rels, Offset, Sym)) 214 return EC; 215 Expected<StringRef> NameOrErr = Sym.getName(); 216 if (!NameOrErr) 217 return errorToErrorCode(NameOrErr.takeError()); 218 Name = *NameOrErr; 219 return std::error_code(); 220 } 221 222 static void printCOFFSymbolAddress(llvm::raw_ostream &Out, 223 const std::vector<RelocationRef> &Rels, 224 uint64_t Offset, uint32_t Disp) { 225 StringRef Sym; 226 if (!resolveSymbolName(Rels, Offset, Sym)) { 227 Out << Sym; 228 if (Disp > 0) 229 Out << format(" + 0x%04x", Disp); 230 } else { 231 Out << format("0x%04x", Disp); 232 } 233 } 234 235 static void 236 printSEHTable(const COFFObjectFile *Obj, uint32_t TableVA, int Count) { 237 if (Count == 0) 238 return; 239 240 const pe32_header *PE32Header; 241 error(Obj->getPE32Header(PE32Header)); 242 uint32_t ImageBase = PE32Header->ImageBase; 243 uintptr_t IntPtr = 0; 244 error(Obj->getVaPtr(TableVA, IntPtr)); 245 const support::ulittle32_t *P = (const support::ulittle32_t *)IntPtr; 246 outs() << "SEH Table:"; 247 for (int I = 0; I < Count; ++I) 248 outs() << format(" 0x%x", P[I] + ImageBase); 249 outs() << "\n\n"; 250 } 251 252 template <typename T> 253 static void printTLSDirectoryT(const coff_tls_directory<T> *TLSDir) { 254 size_t FormatWidth = sizeof(T) * 2; 255 outs() << "TLS directory:" 256 << "\n StartAddressOfRawData: " 257 << format_hex(TLSDir->StartAddressOfRawData, FormatWidth) 258 << "\n EndAddressOfRawData: " 259 << format_hex(TLSDir->EndAddressOfRawData, FormatWidth) 260 << "\n AddressOfIndex: " 261 << format_hex(TLSDir->AddressOfIndex, FormatWidth) 262 << "\n AddressOfCallBacks: " 263 << format_hex(TLSDir->AddressOfCallBacks, FormatWidth) 264 << "\n SizeOfZeroFill: " 265 << TLSDir->SizeOfZeroFill 266 << "\n Characteristics: " 267 << TLSDir->Characteristics 268 << "\n Alignment: " 269 << TLSDir->getAlignment() 270 << "\n\n"; 271 } 272 273 static void printTLSDirectory(const COFFObjectFile *Obj) { 274 const pe32_header *PE32Header; 275 error(Obj->getPE32Header(PE32Header)); 276 277 const pe32plus_header *PE32PlusHeader; 278 error(Obj->getPE32PlusHeader(PE32PlusHeader)); 279 280 // Skip if it's not executable. 281 if (!PE32Header && !PE32PlusHeader) 282 return; 283 284 const data_directory *DataDir; 285 error(Obj->getDataDirectory(COFF::TLS_TABLE, DataDir)); 286 uintptr_t IntPtr = 0; 287 if (DataDir->RelativeVirtualAddress == 0) 288 return; 289 error(Obj->getRvaPtr(DataDir->RelativeVirtualAddress, IntPtr)); 290 291 if (PE32Header) { 292 auto *TLSDir = reinterpret_cast<const coff_tls_directory32 *>(IntPtr); 293 printTLSDirectoryT(TLSDir); 294 } else { 295 auto *TLSDir = reinterpret_cast<const coff_tls_directory64 *>(IntPtr); 296 printTLSDirectoryT(TLSDir); 297 } 298 299 outs() << "\n"; 300 } 301 302 static void printLoadConfiguration(const COFFObjectFile *Obj) { 303 // Skip if it's not executable. 304 const pe32_header *PE32Header; 305 error(Obj->getPE32Header(PE32Header)); 306 if (!PE32Header) 307 return; 308 309 // Currently only x86 is supported 310 if (Obj->getMachine() != COFF::IMAGE_FILE_MACHINE_I386) 311 return; 312 313 const data_directory *DataDir; 314 error(Obj->getDataDirectory(COFF::LOAD_CONFIG_TABLE, DataDir)); 315 uintptr_t IntPtr = 0; 316 if (DataDir->RelativeVirtualAddress == 0) 317 return; 318 error(Obj->getRvaPtr(DataDir->RelativeVirtualAddress, IntPtr)); 319 320 auto *LoadConf = reinterpret_cast<const coff_load_configuration32 *>(IntPtr); 321 outs() << "Load configuration:" 322 << "\n Timestamp: " << LoadConf->TimeDateStamp 323 << "\n Major Version: " << LoadConf->MajorVersion 324 << "\n Minor Version: " << LoadConf->MinorVersion 325 << "\n GlobalFlags Clear: " << LoadConf->GlobalFlagsClear 326 << "\n GlobalFlags Set: " << LoadConf->GlobalFlagsSet 327 << "\n Critical Section Default Timeout: " << LoadConf->CriticalSectionDefaultTimeout 328 << "\n Decommit Free Block Threshold: " << LoadConf->DeCommitFreeBlockThreshold 329 << "\n Decommit Total Free Threshold: " << LoadConf->DeCommitTotalFreeThreshold 330 << "\n Lock Prefix Table: " << LoadConf->LockPrefixTable 331 << "\n Maximum Allocation Size: " << LoadConf->MaximumAllocationSize 332 << "\n Virtual Memory Threshold: " << LoadConf->VirtualMemoryThreshold 333 << "\n Process Affinity Mask: " << LoadConf->ProcessAffinityMask 334 << "\n Process Heap Flags: " << LoadConf->ProcessHeapFlags 335 << "\n CSD Version: " << LoadConf->CSDVersion 336 << "\n Security Cookie: " << LoadConf->SecurityCookie 337 << "\n SEH Table: " << LoadConf->SEHandlerTable 338 << "\n SEH Count: " << LoadConf->SEHandlerCount 339 << "\n\n"; 340 printSEHTable(Obj, LoadConf->SEHandlerTable, LoadConf->SEHandlerCount); 341 outs() << "\n"; 342 } 343 344 // Prints import tables. The import table is a table containing the list of 345 // DLL name and symbol names which will be linked by the loader. 346 static void printImportTables(const COFFObjectFile *Obj) { 347 import_directory_iterator I = Obj->import_directory_begin(); 348 import_directory_iterator E = Obj->import_directory_end(); 349 if (I == E) 350 return; 351 outs() << "The Import Tables:\n"; 352 for (const ImportDirectoryEntryRef &DirRef : Obj->import_directories()) { 353 const coff_import_directory_table_entry *Dir; 354 StringRef Name; 355 if (DirRef.getImportTableEntry(Dir)) return; 356 if (DirRef.getName(Name)) return; 357 358 outs() << format(" lookup %08x time %08x fwd %08x name %08x addr %08x\n\n", 359 static_cast<uint32_t>(Dir->ImportLookupTableRVA), 360 static_cast<uint32_t>(Dir->TimeDateStamp), 361 static_cast<uint32_t>(Dir->ForwarderChain), 362 static_cast<uint32_t>(Dir->NameRVA), 363 static_cast<uint32_t>(Dir->ImportAddressTableRVA)); 364 outs() << " DLL Name: " << Name << "\n"; 365 outs() << " Hint/Ord Name\n"; 366 for (const ImportedSymbolRef &Entry : DirRef.imported_symbols()) { 367 bool IsOrdinal; 368 if (Entry.isOrdinal(IsOrdinal)) 369 return; 370 if (IsOrdinal) { 371 uint16_t Ordinal; 372 if (Entry.getOrdinal(Ordinal)) 373 return; 374 outs() << format(" % 6d\n", Ordinal); 375 continue; 376 } 377 uint32_t HintNameRVA; 378 if (Entry.getHintNameRVA(HintNameRVA)) 379 return; 380 uint16_t Hint; 381 StringRef Name; 382 if (Obj->getHintName(HintNameRVA, Hint, Name)) 383 return; 384 outs() << format(" % 6d ", Hint) << Name << "\n"; 385 } 386 outs() << "\n"; 387 } 388 } 389 390 // Prints export tables. The export table is a table containing the list of 391 // exported symbol from the DLL. 392 static void printExportTable(const COFFObjectFile *Obj) { 393 outs() << "Export Table:\n"; 394 export_directory_iterator I = Obj->export_directory_begin(); 395 export_directory_iterator E = Obj->export_directory_end(); 396 if (I == E) 397 return; 398 StringRef DllName; 399 uint32_t OrdinalBase; 400 if (I->getDllName(DllName)) 401 return; 402 if (I->getOrdinalBase(OrdinalBase)) 403 return; 404 outs() << " DLL name: " << DllName << "\n"; 405 outs() << " Ordinal base: " << OrdinalBase << "\n"; 406 outs() << " Ordinal RVA Name\n"; 407 for (; I != E; I = ++I) { 408 uint32_t Ordinal; 409 if (I->getOrdinal(Ordinal)) 410 return; 411 uint32_t RVA; 412 if (I->getExportRVA(RVA)) 413 return; 414 bool IsForwarder; 415 if (I->isForwarder(IsForwarder)) 416 return; 417 418 if (IsForwarder) { 419 // Export table entries can be used to re-export symbols that 420 // this COFF file is imported from some DLLs. This is rare. 421 // In most cases IsForwarder is false. 422 outs() << format(" % 4d ", Ordinal); 423 } else { 424 outs() << format(" % 4d %# 8x", Ordinal, RVA); 425 } 426 427 StringRef Name; 428 if (I->getSymbolName(Name)) 429 continue; 430 if (!Name.empty()) 431 outs() << " " << Name; 432 if (IsForwarder) { 433 StringRef S; 434 if (I->getForwardTo(S)) 435 return; 436 outs() << " (forwarded to " << S << ")"; 437 } 438 outs() << "\n"; 439 } 440 } 441 442 // Given the COFF object file, this function returns the relocations for .pdata 443 // and the pointer to "runtime function" structs. 444 static bool getPDataSection(const COFFObjectFile *Obj, 445 std::vector<RelocationRef> &Rels, 446 const RuntimeFunction *&RFStart, int &NumRFs) { 447 for (const SectionRef &Section : Obj->sections()) { 448 StringRef Name; 449 error(Section.getName(Name)); 450 if (Name != ".pdata") 451 continue; 452 453 const coff_section *Pdata = Obj->getCOFFSection(Section); 454 for (const RelocationRef &Reloc : Section.relocations()) 455 Rels.push_back(Reloc); 456 457 // Sort relocations by address. 458 llvm::sort(Rels, isRelocAddressLess); 459 460 ArrayRef<uint8_t> Contents; 461 error(Obj->getSectionContents(Pdata, Contents)); 462 if (Contents.empty()) 463 continue; 464 465 RFStart = reinterpret_cast<const RuntimeFunction *>(Contents.data()); 466 NumRFs = Contents.size() / sizeof(RuntimeFunction); 467 return true; 468 } 469 return false; 470 } 471 472 static void printWin64EHUnwindInfo(const Win64EH::UnwindInfo *UI) { 473 // The casts to int are required in order to output the value as number. 474 // Without the casts the value would be interpreted as char data (which 475 // results in garbage output). 476 outs() << " Version: " << static_cast<int>(UI->getVersion()) << "\n"; 477 outs() << " Flags: " << static_cast<int>(UI->getFlags()); 478 if (UI->getFlags()) { 479 if (UI->getFlags() & UNW_ExceptionHandler) 480 outs() << " UNW_ExceptionHandler"; 481 if (UI->getFlags() & UNW_TerminateHandler) 482 outs() << " UNW_TerminateHandler"; 483 if (UI->getFlags() & UNW_ChainInfo) 484 outs() << " UNW_ChainInfo"; 485 } 486 outs() << "\n"; 487 outs() << " Size of prolog: " << static_cast<int>(UI->PrologSize) << "\n"; 488 outs() << " Number of Codes: " << static_cast<int>(UI->NumCodes) << "\n"; 489 // Maybe this should move to output of UOP_SetFPReg? 490 if (UI->getFrameRegister()) { 491 outs() << " Frame register: " 492 << getUnwindRegisterName(UI->getFrameRegister()) << "\n"; 493 outs() << " Frame offset: " << 16 * UI->getFrameOffset() << "\n"; 494 } else { 495 outs() << " No frame pointer used\n"; 496 } 497 if (UI->getFlags() & (UNW_ExceptionHandler | UNW_TerminateHandler)) { 498 // FIXME: Output exception handler data 499 } else if (UI->getFlags() & UNW_ChainInfo) { 500 // FIXME: Output chained unwind info 501 } 502 503 if (UI->NumCodes) 504 outs() << " Unwind Codes:\n"; 505 506 printAllUnwindCodes(makeArrayRef(&UI->UnwindCodes[0], UI->NumCodes)); 507 508 outs() << "\n"; 509 outs().flush(); 510 } 511 512 /// Prints out the given RuntimeFunction struct for x64, assuming that Obj is 513 /// pointing to an executable file. 514 static void printRuntimeFunction(const COFFObjectFile *Obj, 515 const RuntimeFunction &RF) { 516 if (!RF.StartAddress) 517 return; 518 outs() << "Function Table:\n" 519 << format(" Start Address: 0x%04x\n", 520 static_cast<uint32_t>(RF.StartAddress)) 521 << format(" End Address: 0x%04x\n", 522 static_cast<uint32_t>(RF.EndAddress)) 523 << format(" Unwind Info Address: 0x%04x\n", 524 static_cast<uint32_t>(RF.UnwindInfoOffset)); 525 uintptr_t addr; 526 if (Obj->getRvaPtr(RF.UnwindInfoOffset, addr)) 527 return; 528 printWin64EHUnwindInfo(reinterpret_cast<const Win64EH::UnwindInfo *>(addr)); 529 } 530 531 /// Prints out the given RuntimeFunction struct for x64, assuming that Obj is 532 /// pointing to an object file. Unlike executable, fields in RuntimeFunction 533 /// struct are filled with zeros, but instead there are relocations pointing to 534 /// them so that the linker will fill targets' RVAs to the fields at link 535 /// time. This function interprets the relocations to find the data to be used 536 /// in the resulting executable. 537 static void printRuntimeFunctionRels(const COFFObjectFile *Obj, 538 const RuntimeFunction &RF, 539 uint64_t SectionOffset, 540 const std::vector<RelocationRef> &Rels) { 541 outs() << "Function Table:\n"; 542 outs() << " Start Address: "; 543 printCOFFSymbolAddress(outs(), Rels, 544 SectionOffset + 545 /*offsetof(RuntimeFunction, StartAddress)*/ 0, 546 RF.StartAddress); 547 outs() << "\n"; 548 549 outs() << " End Address: "; 550 printCOFFSymbolAddress(outs(), Rels, 551 SectionOffset + 552 /*offsetof(RuntimeFunction, EndAddress)*/ 4, 553 RF.EndAddress); 554 outs() << "\n"; 555 556 outs() << " Unwind Info Address: "; 557 printCOFFSymbolAddress(outs(), Rels, 558 SectionOffset + 559 /*offsetof(RuntimeFunction, UnwindInfoOffset)*/ 8, 560 RF.UnwindInfoOffset); 561 outs() << "\n"; 562 563 ArrayRef<uint8_t> XContents; 564 uint64_t UnwindInfoOffset = 0; 565 error(getSectionContents( 566 Obj, Rels, SectionOffset + 567 /*offsetof(RuntimeFunction, UnwindInfoOffset)*/ 8, 568 XContents, UnwindInfoOffset)); 569 if (XContents.empty()) 570 return; 571 572 UnwindInfoOffset += RF.UnwindInfoOffset; 573 if (UnwindInfoOffset > XContents.size()) 574 return; 575 576 auto *UI = reinterpret_cast<const Win64EH::UnwindInfo *>(XContents.data() + 577 UnwindInfoOffset); 578 printWin64EHUnwindInfo(UI); 579 } 580 581 void llvm::printCOFFUnwindInfo(const COFFObjectFile *Obj) { 582 if (Obj->getMachine() != COFF::IMAGE_FILE_MACHINE_AMD64) { 583 WithColor::error(errs(), "llvm-objdump") 584 << "unsupported image machine type " 585 "(currently only AMD64 is supported).\n"; 586 return; 587 } 588 589 std::vector<RelocationRef> Rels; 590 const RuntimeFunction *RFStart; 591 int NumRFs; 592 if (!getPDataSection(Obj, Rels, RFStart, NumRFs)) 593 return; 594 ArrayRef<RuntimeFunction> RFs(RFStart, NumRFs); 595 596 bool IsExecutable = Rels.empty(); 597 if (IsExecutable) { 598 for (const RuntimeFunction &RF : RFs) 599 printRuntimeFunction(Obj, RF); 600 return; 601 } 602 603 for (const RuntimeFunction &RF : RFs) { 604 uint64_t SectionOffset = 605 std::distance(RFs.begin(), &RF) * sizeof(RuntimeFunction); 606 printRuntimeFunctionRels(Obj, RF, SectionOffset, Rels); 607 } 608 } 609 610 void llvm::printCOFFFileHeader(const object::ObjectFile *Obj) { 611 const COFFObjectFile *file = dyn_cast<const COFFObjectFile>(Obj); 612 printTLSDirectory(file); 613 printLoadConfiguration(file); 614 printImportTables(file); 615 printExportTable(file); 616 } 617 618 void llvm::printCOFFSymbolTable(const object::COFFImportFile *i) { 619 unsigned Index = 0; 620 bool IsCode = i->getCOFFImportHeader()->getType() == COFF::IMPORT_CODE; 621 622 for (const object::BasicSymbolRef &Sym : i->symbols()) { 623 std::string Name; 624 raw_string_ostream NS(Name); 625 626 Sym.printName(NS); 627 NS.flush(); 628 629 outs() << "[" << format("%2d", Index) << "]" 630 << "(sec " << format("%2d", 0) << ")" 631 << "(fl 0x00)" // Flag bits, which COFF doesn't have. 632 << "(ty " << format("%3x", (IsCode && Index) ? 32 : 0) << ")" 633 << "(scl " << format("%3x", 0) << ") " 634 << "(nx " << 0 << ") " 635 << "0x" << format("%08x", 0) << " " << Name << '\n'; 636 637 ++Index; 638 } 639 } 640 641 void llvm::printCOFFSymbolTable(const COFFObjectFile *coff) { 642 for (unsigned SI = 0, SE = coff->getNumberOfSymbols(); SI != SE; ++SI) { 643 Expected<COFFSymbolRef> Symbol = coff->getSymbol(SI); 644 StringRef Name; 645 error(errorToErrorCode(Symbol.takeError())); 646 error(coff->getSymbolName(*Symbol, Name)); 647 648 outs() << "[" << format("%2d", SI) << "]" 649 << "(sec " << format("%2d", int(Symbol->getSectionNumber())) << ")" 650 << "(fl 0x00)" // Flag bits, which COFF doesn't have. 651 << "(ty " << format("%3x", unsigned(Symbol->getType())) << ")" 652 << "(scl " << format("%3x", unsigned(Symbol->getStorageClass())) 653 << ") " 654 << "(nx " << unsigned(Symbol->getNumberOfAuxSymbols()) << ") " 655 << "0x" << format("%08x", unsigned(Symbol->getValue())) << " " 656 << Name; 657 if (Demangle && Name.startswith("?")) { 658 char *DemangledSymbol = nullptr; 659 size_t Size = 0; 660 int Status = -1; 661 DemangledSymbol = 662 microsoftDemangle(Name.data(), DemangledSymbol, &Size, &Status); 663 664 if (Status == 0 && DemangledSymbol) { 665 outs() << " (" << StringRef(DemangledSymbol) << ")"; 666 std::free(DemangledSymbol); 667 } else { 668 outs() << " (invalid mangled name)"; 669 } 670 } 671 outs() << "\n"; 672 673 for (unsigned AI = 0, AE = Symbol->getNumberOfAuxSymbols(); AI < AE; ++AI, ++SI) { 674 if (Symbol->isSectionDefinition()) { 675 const coff_aux_section_definition *asd; 676 error(coff->getAuxSymbol<coff_aux_section_definition>(SI + 1, asd)); 677 678 int32_t AuxNumber = asd->getNumber(Symbol->isBigObj()); 679 680 outs() << "AUX " 681 << format("scnlen 0x%x nreloc %d nlnno %d checksum 0x%x " 682 , unsigned(asd->Length) 683 , unsigned(asd->NumberOfRelocations) 684 , unsigned(asd->NumberOfLinenumbers) 685 , unsigned(asd->CheckSum)) 686 << format("assoc %d comdat %d\n" 687 , unsigned(AuxNumber) 688 , unsigned(asd->Selection)); 689 } else if (Symbol->isFileRecord()) { 690 const char *FileName; 691 error(coff->getAuxSymbol<char>(SI + 1, FileName)); 692 693 StringRef Name(FileName, Symbol->getNumberOfAuxSymbols() * 694 coff->getSymbolTableEntrySize()); 695 outs() << "AUX " << Name.rtrim(StringRef("\0", 1)) << '\n'; 696 697 SI = SI + Symbol->getNumberOfAuxSymbols(); 698 break; 699 } else if (Symbol->isWeakExternal()) { 700 const coff_aux_weak_external *awe; 701 error(coff->getAuxSymbol<coff_aux_weak_external>(SI + 1, awe)); 702 703 outs() << "AUX " << format("indx %d srch %d\n", 704 static_cast<uint32_t>(awe->TagIndex), 705 static_cast<uint32_t>(awe->Characteristics)); 706 } else { 707 outs() << "AUX Unknown\n"; 708 } 709 } 710 } 711 } 712