1 //===-- RuntimeDyld.cpp - Run-time dynamic linker for MC-JIT ----*- 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 // Implementation of the MC-JIT runtime dynamic linker. 11 // 12 //===----------------------------------------------------------------------===// 13 14 #include "llvm/ExecutionEngine/RuntimeDyld.h" 15 #include "RuntimeDyldCheckerImpl.h" 16 #include "RuntimeDyldCOFF.h" 17 #include "RuntimeDyldELF.h" 18 #include "RuntimeDyldImpl.h" 19 #include "RuntimeDyldMachO.h" 20 #include "llvm/Object/ELFObjectFile.h" 21 #include "llvm/Object/COFF.h" 22 #include "llvm/Support/MathExtras.h" 23 #include "llvm/Support/MutexGuard.h" 24 25 using namespace llvm; 26 using namespace llvm::object; 27 28 #define DEBUG_TYPE "dyld" 29 30 // Empty out-of-line virtual destructor as the key function. 31 RuntimeDyldImpl::~RuntimeDyldImpl() {} 32 33 // Pin LoadedObjectInfo's vtables to this file. 34 void RuntimeDyld::LoadedObjectInfo::anchor() {} 35 36 namespace llvm { 37 38 void RuntimeDyldImpl::registerEHFrames() {} 39 40 void RuntimeDyldImpl::deregisterEHFrames() {} 41 42 #ifndef NDEBUG 43 static void dumpSectionMemory(const SectionEntry &S, StringRef State) { 44 dbgs() << "----- Contents of section " << S.Name << " " << State << " -----"; 45 46 if (S.Address == nullptr) { 47 dbgs() << "\n <section not emitted>\n"; 48 return; 49 } 50 51 const unsigned ColsPerRow = 16; 52 53 uint8_t *DataAddr = S.Address; 54 uint64_t LoadAddr = S.LoadAddress; 55 56 unsigned StartPadding = LoadAddr & (ColsPerRow - 1); 57 unsigned BytesRemaining = S.Size; 58 59 if (StartPadding) { 60 dbgs() << "\n" << format("0x%016" PRIx64, 61 LoadAddr & ~(uint64_t)(ColsPerRow - 1)) << ":"; 62 while (StartPadding--) 63 dbgs() << " "; 64 } 65 66 while (BytesRemaining > 0) { 67 if ((LoadAddr & (ColsPerRow - 1)) == 0) 68 dbgs() << "\n" << format("0x%016" PRIx64, LoadAddr) << ":"; 69 70 dbgs() << " " << format("%02x", *DataAddr); 71 72 ++DataAddr; 73 ++LoadAddr; 74 --BytesRemaining; 75 } 76 77 dbgs() << "\n"; 78 } 79 #endif 80 81 // Resolve the relocations for all symbols we currently know about. 82 void RuntimeDyldImpl::resolveRelocations() { 83 MutexGuard locked(lock); 84 85 // First, resolve relocations associated with external symbols. 86 resolveExternalSymbols(); 87 88 // Just iterate over the sections we have and resolve all the relocations 89 // in them. Gross overkill, but it gets the job done. 90 for (int i = 0, e = Sections.size(); i != e; ++i) { 91 // The Section here (Sections[i]) refers to the section in which the 92 // symbol for the relocation is located. The SectionID in the relocation 93 // entry provides the section to which the relocation will be applied. 94 uint64_t Addr = Sections[i].LoadAddress; 95 DEBUG(dbgs() << "Resolving relocations Section #" << i << "\t" 96 << format("%p", (uintptr_t)Addr) << "\n"); 97 DEBUG(dumpSectionMemory(Sections[i], "before relocations")); 98 resolveRelocationList(Relocations[i], Addr); 99 DEBUG(dumpSectionMemory(Sections[i], "after relocations")); 100 Relocations.erase(i); 101 } 102 } 103 104 void RuntimeDyldImpl::mapSectionAddress(const void *LocalAddress, 105 uint64_t TargetAddress) { 106 MutexGuard locked(lock); 107 for (unsigned i = 0, e = Sections.size(); i != e; ++i) { 108 if (Sections[i].Address == LocalAddress) { 109 reassignSectionAddress(i, TargetAddress); 110 return; 111 } 112 } 113 llvm_unreachable("Attempting to remap address of unknown section!"); 114 } 115 116 static std::error_code getOffset(const SymbolRef &Sym, uint64_t &Result) { 117 uint64_t Address; 118 if (std::error_code EC = Sym.getAddress(Address)) 119 return EC; 120 121 if (Address == UnknownAddressOrSize) { 122 Result = UnknownAddressOrSize; 123 return std::error_code(); 124 } 125 126 const ObjectFile *Obj = Sym.getObject(); 127 section_iterator SecI(Obj->section_begin()); 128 if (std::error_code EC = Sym.getSection(SecI)) 129 return EC; 130 131 if (SecI == Obj->section_end()) { 132 Result = UnknownAddressOrSize; 133 return std::error_code(); 134 } 135 136 uint64_t SectionAddress = SecI->getAddress(); 137 Result = Address - SectionAddress; 138 return std::error_code(); 139 } 140 141 std::pair<unsigned, unsigned> 142 RuntimeDyldImpl::loadObjectImpl(const object::ObjectFile &Obj) { 143 MutexGuard locked(lock); 144 145 // Grab the first Section ID. We'll use this later to construct the underlying 146 // range for the returned LoadedObjectInfo. 147 unsigned SectionsAddedBeginIdx = Sections.size(); 148 149 // Save information about our target 150 Arch = (Triple::ArchType)Obj.getArch(); 151 IsTargetLittleEndian = Obj.isLittleEndian(); 152 setMipsABI(Obj); 153 154 // Compute the memory size required to load all sections to be loaded 155 // and pass this information to the memory manager 156 if (MemMgr.needsToReserveAllocationSpace()) { 157 uint64_t CodeSize = 0, DataSizeRO = 0, DataSizeRW = 0; 158 computeTotalAllocSize(Obj, CodeSize, DataSizeRO, DataSizeRW); 159 MemMgr.reserveAllocationSpace(CodeSize, DataSizeRO, DataSizeRW); 160 } 161 162 // Used sections from the object file 163 ObjSectionToIDMap LocalSections; 164 165 // Common symbols requiring allocation, with their sizes and alignments 166 CommonSymbolList CommonSymbols; 167 168 // Parse symbols 169 DEBUG(dbgs() << "Parse symbols:\n"); 170 for (symbol_iterator I = Obj.symbol_begin(), E = Obj.symbol_end(); I != E; 171 ++I) { 172 uint32_t Flags = I->getFlags(); 173 174 bool IsCommon = Flags & SymbolRef::SF_Common; 175 if (IsCommon) 176 CommonSymbols.push_back(*I); 177 else { 178 object::SymbolRef::Type SymType; 179 Check(I->getType(SymType)); 180 181 if (SymType == object::SymbolRef::ST_Function || 182 SymType == object::SymbolRef::ST_Data || 183 SymType == object::SymbolRef::ST_Unknown) { 184 185 StringRef Name; 186 uint64_t SectOffset; 187 Check(I->getName(Name)); 188 Check(getOffset(*I, SectOffset)); 189 section_iterator SI = Obj.section_end(); 190 Check(I->getSection(SI)); 191 if (SI == Obj.section_end()) 192 continue; 193 StringRef SectionData; 194 Check(SI->getContents(SectionData)); 195 bool IsCode = SI->isText(); 196 unsigned SectionID = 197 findOrEmitSection(Obj, *SI, IsCode, LocalSections); 198 DEBUG(dbgs() << "\tType: " << SymType << " Name: " << Name 199 << " SID: " << SectionID << " Offset: " 200 << format("%p", (uintptr_t)SectOffset) 201 << " flags: " << Flags << "\n"); 202 JITSymbolFlags RTDyldSymFlags = JITSymbolFlags::None; 203 if (Flags & SymbolRef::SF_Weak) 204 RTDyldSymFlags |= JITSymbolFlags::Weak; 205 if (Flags & SymbolRef::SF_Exported) 206 RTDyldSymFlags |= JITSymbolFlags::Exported; 207 GlobalSymbolTable[Name] = 208 SymbolTableEntry(SectionID, SectOffset, RTDyldSymFlags); 209 } 210 } 211 } 212 213 // Allocate common symbols 214 emitCommonSymbols(Obj, CommonSymbols); 215 216 // Parse and process relocations 217 DEBUG(dbgs() << "Parse relocations:\n"); 218 for (section_iterator SI = Obj.section_begin(), SE = Obj.section_end(); 219 SI != SE; ++SI) { 220 unsigned SectionID = 0; 221 StubMap Stubs; 222 section_iterator RelocatedSection = SI->getRelocatedSection(); 223 224 if (RelocatedSection == SE) 225 continue; 226 227 relocation_iterator I = SI->relocation_begin(); 228 relocation_iterator E = SI->relocation_end(); 229 230 if (I == E && !ProcessAllSections) 231 continue; 232 233 bool IsCode = RelocatedSection->isText(); 234 SectionID = 235 findOrEmitSection(Obj, *RelocatedSection, IsCode, LocalSections); 236 DEBUG(dbgs() << "\tSectionID: " << SectionID << "\n"); 237 238 for (; I != E;) 239 I = processRelocationRef(SectionID, I, Obj, LocalSections, Stubs); 240 241 // If there is an attached checker, notify it about the stubs for this 242 // section so that they can be verified. 243 if (Checker) 244 Checker->registerStubMap(Obj.getFileName(), SectionID, Stubs); 245 } 246 247 // Give the subclasses a chance to tie-up any loose ends. 248 finalizeLoad(Obj, LocalSections); 249 250 unsigned SectionsAddedEndIdx = Sections.size(); 251 252 return std::make_pair(SectionsAddedBeginIdx, SectionsAddedEndIdx); 253 } 254 255 // A helper method for computeTotalAllocSize. 256 // Computes the memory size required to allocate sections with the given sizes, 257 // assuming that all sections are allocated with the given alignment 258 static uint64_t 259 computeAllocationSizeForSections(std::vector<uint64_t> &SectionSizes, 260 uint64_t Alignment) { 261 uint64_t TotalSize = 0; 262 for (size_t Idx = 0, Cnt = SectionSizes.size(); Idx < Cnt; Idx++) { 263 uint64_t AlignedSize = 264 (SectionSizes[Idx] + Alignment - 1) / Alignment * Alignment; 265 TotalSize += AlignedSize; 266 } 267 return TotalSize; 268 } 269 270 static bool isRequiredForExecution(const SectionRef &Section) { 271 const ObjectFile *Obj = Section.getObject(); 272 if (auto *ELFObj = dyn_cast<object::ELFObjectFileBase>(Obj)) 273 return ELFObj->getSectionFlags(Section) & ELF::SHF_ALLOC; 274 if (auto *COFFObj = dyn_cast<object::COFFObjectFile>(Obj)) { 275 const coff_section *CoffSection = COFFObj->getCOFFSection(Section); 276 // Avoid loading zero-sized COFF sections. 277 // In PE files, VirtualSize gives the section size, and SizeOfRawData 278 // may be zero for sections with content. In Obj files, SizeOfRawData 279 // gives the section size, and VirtualSize is always zero. Hence 280 // the need to check for both cases below. 281 bool HasContent = (CoffSection->VirtualSize > 0) 282 || (CoffSection->SizeOfRawData > 0); 283 bool IsDiscardable = CoffSection->Characteristics & 284 (COFF::IMAGE_SCN_MEM_DISCARDABLE | COFF::IMAGE_SCN_LNK_INFO); 285 return HasContent && !IsDiscardable; 286 } 287 288 assert(isa<MachOObjectFile>(Obj)); 289 return true; 290 } 291 292 static bool isReadOnlyData(const SectionRef &Section) { 293 const ObjectFile *Obj = Section.getObject(); 294 if (auto *ELFObj = dyn_cast<object::ELFObjectFileBase>(Obj)) 295 return !(ELFObj->getSectionFlags(Section) & 296 (ELF::SHF_WRITE | ELF::SHF_EXECINSTR)); 297 if (auto *COFFObj = dyn_cast<object::COFFObjectFile>(Obj)) 298 return ((COFFObj->getCOFFSection(Section)->Characteristics & 299 (COFF::IMAGE_SCN_CNT_INITIALIZED_DATA 300 | COFF::IMAGE_SCN_MEM_READ 301 | COFF::IMAGE_SCN_MEM_WRITE)) 302 == 303 (COFF::IMAGE_SCN_CNT_INITIALIZED_DATA 304 | COFF::IMAGE_SCN_MEM_READ)); 305 306 assert(isa<MachOObjectFile>(Obj)); 307 return false; 308 } 309 310 static bool isZeroInit(const SectionRef &Section) { 311 const ObjectFile *Obj = Section.getObject(); 312 if (auto *ELFObj = dyn_cast<object::ELFObjectFileBase>(Obj)) 313 return ELFObj->getSectionType(Section) == ELF::SHT_NOBITS; 314 if (auto *COFFObj = dyn_cast<object::COFFObjectFile>(Obj)) 315 return COFFObj->getCOFFSection(Section)->Characteristics & 316 COFF::IMAGE_SCN_CNT_UNINITIALIZED_DATA; 317 318 auto *MachO = cast<MachOObjectFile>(Obj); 319 unsigned SectionType = MachO->getSectionType(Section); 320 return SectionType == MachO::S_ZEROFILL || 321 SectionType == MachO::S_GB_ZEROFILL; 322 } 323 324 // Compute an upper bound of the memory size that is required to load all 325 // sections 326 void RuntimeDyldImpl::computeTotalAllocSize(const ObjectFile &Obj, 327 uint64_t &CodeSize, 328 uint64_t &DataSizeRO, 329 uint64_t &DataSizeRW) { 330 // Compute the size of all sections required for execution 331 std::vector<uint64_t> CodeSectionSizes; 332 std::vector<uint64_t> ROSectionSizes; 333 std::vector<uint64_t> RWSectionSizes; 334 uint64_t MaxAlignment = sizeof(void *); 335 336 // Collect sizes of all sections to be loaded; 337 // also determine the max alignment of all sections 338 for (section_iterator SI = Obj.section_begin(), SE = Obj.section_end(); 339 SI != SE; ++SI) { 340 const SectionRef &Section = *SI; 341 342 bool IsRequired = isRequiredForExecution(Section); 343 344 // Consider only the sections that are required to be loaded for execution 345 if (IsRequired) { 346 StringRef Name; 347 uint64_t DataSize = Section.getSize(); 348 uint64_t Alignment64 = Section.getAlignment(); 349 bool IsCode = Section.isText(); 350 bool IsReadOnly = isReadOnlyData(Section); 351 Check(Section.getName(Name)); 352 unsigned Alignment = (unsigned)Alignment64 & 0xffffffffL; 353 354 uint64_t StubBufSize = computeSectionStubBufSize(Obj, Section); 355 uint64_t SectionSize = DataSize + StubBufSize; 356 357 // The .eh_frame section (at least on Linux) needs an extra four bytes 358 // padded 359 // with zeroes added at the end. For MachO objects, this section has a 360 // slightly different name, so this won't have any effect for MachO 361 // objects. 362 if (Name == ".eh_frame") 363 SectionSize += 4; 364 365 if (!SectionSize) 366 SectionSize = 1; 367 368 if (IsCode) { 369 CodeSectionSizes.push_back(SectionSize); 370 } else if (IsReadOnly) { 371 ROSectionSizes.push_back(SectionSize); 372 } else { 373 RWSectionSizes.push_back(SectionSize); 374 } 375 376 // update the max alignment 377 if (Alignment > MaxAlignment) { 378 MaxAlignment = Alignment; 379 } 380 } 381 } 382 383 // Compute the size of all common symbols 384 uint64_t CommonSize = 0; 385 for (symbol_iterator I = Obj.symbol_begin(), E = Obj.symbol_end(); I != E; 386 ++I) { 387 uint32_t Flags = I->getFlags(); 388 if (Flags & SymbolRef::SF_Common) { 389 // Add the common symbols to a list. We'll allocate them all below. 390 uint64_t Size = I->getSize(); 391 CommonSize += Size; 392 } 393 } 394 if (CommonSize != 0) { 395 RWSectionSizes.push_back(CommonSize); 396 } 397 398 // Compute the required allocation space for each different type of sections 399 // (code, read-only data, read-write data) assuming that all sections are 400 // allocated with the max alignment. Note that we cannot compute with the 401 // individual alignments of the sections, because then the required size 402 // depends on the order, in which the sections are allocated. 403 CodeSize = computeAllocationSizeForSections(CodeSectionSizes, MaxAlignment); 404 DataSizeRO = computeAllocationSizeForSections(ROSectionSizes, MaxAlignment); 405 DataSizeRW = computeAllocationSizeForSections(RWSectionSizes, MaxAlignment); 406 } 407 408 // compute stub buffer size for the given section 409 unsigned RuntimeDyldImpl::computeSectionStubBufSize(const ObjectFile &Obj, 410 const SectionRef &Section) { 411 unsigned StubSize = getMaxStubSize(); 412 if (StubSize == 0) { 413 return 0; 414 } 415 // FIXME: this is an inefficient way to handle this. We should computed the 416 // necessary section allocation size in loadObject by walking all the sections 417 // once. 418 unsigned StubBufSize = 0; 419 for (section_iterator SI = Obj.section_begin(), SE = Obj.section_end(); 420 SI != SE; ++SI) { 421 section_iterator RelSecI = SI->getRelocatedSection(); 422 if (!(RelSecI == Section)) 423 continue; 424 425 for (const RelocationRef &Reloc : SI->relocations()) { 426 (void)Reloc; 427 StubBufSize += StubSize; 428 } 429 } 430 431 // Get section data size and alignment 432 uint64_t DataSize = Section.getSize(); 433 uint64_t Alignment64 = Section.getAlignment(); 434 435 // Add stubbuf size alignment 436 unsigned Alignment = (unsigned)Alignment64 & 0xffffffffL; 437 unsigned StubAlignment = getStubAlignment(); 438 unsigned EndAlignment = (DataSize | Alignment) & -(DataSize | Alignment); 439 if (StubAlignment > EndAlignment) 440 StubBufSize += StubAlignment - EndAlignment; 441 return StubBufSize; 442 } 443 444 uint64_t RuntimeDyldImpl::readBytesUnaligned(uint8_t *Src, 445 unsigned Size) const { 446 uint64_t Result = 0; 447 if (IsTargetLittleEndian) { 448 Src += Size - 1; 449 while (Size--) 450 Result = (Result << 8) | *Src--; 451 } else 452 while (Size--) 453 Result = (Result << 8) | *Src++; 454 455 return Result; 456 } 457 458 void RuntimeDyldImpl::writeBytesUnaligned(uint64_t Value, uint8_t *Dst, 459 unsigned Size) const { 460 if (IsTargetLittleEndian) { 461 while (Size--) { 462 *Dst++ = Value & 0xFF; 463 Value >>= 8; 464 } 465 } else { 466 Dst += Size - 1; 467 while (Size--) { 468 *Dst-- = Value & 0xFF; 469 Value >>= 8; 470 } 471 } 472 } 473 474 void RuntimeDyldImpl::emitCommonSymbols(const ObjectFile &Obj, 475 CommonSymbolList &CommonSymbols) { 476 if (CommonSymbols.empty()) 477 return; 478 479 uint64_t CommonSize = 0; 480 CommonSymbolList SymbolsToAllocate; 481 482 DEBUG(dbgs() << "Processing common symbols...\n"); 483 484 for (const auto &Sym : CommonSymbols) { 485 StringRef Name; 486 Check(Sym.getName(Name)); 487 488 // Skip common symbols already elsewhere. 489 if (GlobalSymbolTable.count(Name) || 490 Resolver.findSymbolInLogicalDylib(Name)) { 491 DEBUG(dbgs() << "\tSkipping already emitted common symbol '" << Name 492 << "'\n"); 493 continue; 494 } 495 496 uint32_t Align = Sym.getAlignment(); 497 uint64_t Size = Sym.getSize(); 498 499 CommonSize += Align + Size; 500 SymbolsToAllocate.push_back(Sym); 501 } 502 503 // Allocate memory for the section 504 unsigned SectionID = Sections.size(); 505 uint8_t *Addr = MemMgr.allocateDataSection(CommonSize, sizeof(void *), 506 SectionID, StringRef(), false); 507 if (!Addr) 508 report_fatal_error("Unable to allocate memory for common symbols!"); 509 uint64_t Offset = 0; 510 Sections.push_back(SectionEntry("<common symbols>", Addr, CommonSize, 0)); 511 memset(Addr, 0, CommonSize); 512 513 DEBUG(dbgs() << "emitCommonSection SectionID: " << SectionID << " new addr: " 514 << format("%p", Addr) << " DataSize: " << CommonSize << "\n"); 515 516 // Assign the address of each symbol 517 for (auto &Sym : SymbolsToAllocate) { 518 uint32_t Align = Sym.getAlignment(); 519 StringRef Name; 520 uint64_t Size = Sym.getSize(); 521 Check(Sym.getName(Name)); 522 if (Align) { 523 // This symbol has an alignment requirement. 524 uint64_t AlignOffset = OffsetToAlignment((uint64_t)Addr, Align); 525 Addr += AlignOffset; 526 Offset += AlignOffset; 527 } 528 uint32_t Flags = Sym.getFlags(); 529 JITSymbolFlags RTDyldSymFlags = JITSymbolFlags::None; 530 if (Flags & SymbolRef::SF_Weak) 531 RTDyldSymFlags |= JITSymbolFlags::Weak; 532 if (Flags & SymbolRef::SF_Exported) 533 RTDyldSymFlags |= JITSymbolFlags::Exported; 534 DEBUG(dbgs() << "Allocating common symbol " << Name << " address " 535 << format("%p", Addr) << "\n"); 536 GlobalSymbolTable[Name] = 537 SymbolTableEntry(SectionID, Offset, RTDyldSymFlags); 538 Offset += Size; 539 Addr += Size; 540 } 541 } 542 543 unsigned RuntimeDyldImpl::emitSection(const ObjectFile &Obj, 544 const SectionRef &Section, bool IsCode) { 545 546 StringRef data; 547 uint64_t Alignment64 = Section.getAlignment(); 548 549 unsigned Alignment = (unsigned)Alignment64 & 0xffffffffL; 550 unsigned PaddingSize = 0; 551 unsigned StubBufSize = 0; 552 StringRef Name; 553 bool IsRequired = isRequiredForExecution(Section); 554 bool IsVirtual = Section.isVirtual(); 555 bool IsZeroInit = isZeroInit(Section); 556 bool IsReadOnly = isReadOnlyData(Section); 557 uint64_t DataSize = Section.getSize(); 558 Check(Section.getName(Name)); 559 560 StubBufSize = computeSectionStubBufSize(Obj, Section); 561 562 // The .eh_frame section (at least on Linux) needs an extra four bytes padded 563 // with zeroes added at the end. For MachO objects, this section has a 564 // slightly different name, so this won't have any effect for MachO objects. 565 if (Name == ".eh_frame") 566 PaddingSize = 4; 567 568 uintptr_t Allocate; 569 unsigned SectionID = Sections.size(); 570 uint8_t *Addr; 571 const char *pData = nullptr; 572 573 // In either case, set the location of the unrelocated section in memory, 574 // since we still process relocations for it even if we're not applying them. 575 Check(Section.getContents(data)); 576 // Virtual sections have no data in the object image, so leave pData = 0 577 if (!IsVirtual) 578 pData = data.data(); 579 580 // Some sections, such as debug info, don't need to be loaded for execution. 581 // Leave those where they are. 582 if (IsRequired) { 583 Allocate = DataSize + PaddingSize + StubBufSize; 584 if (!Allocate) 585 Allocate = 1; 586 Addr = IsCode ? MemMgr.allocateCodeSection(Allocate, Alignment, SectionID, 587 Name) 588 : MemMgr.allocateDataSection(Allocate, Alignment, SectionID, 589 Name, IsReadOnly); 590 if (!Addr) 591 report_fatal_error("Unable to allocate section memory!"); 592 593 // Zero-initialize or copy the data from the image 594 if (IsZeroInit || IsVirtual) 595 memset(Addr, 0, DataSize); 596 else 597 memcpy(Addr, pData, DataSize); 598 599 // Fill in any extra bytes we allocated for padding 600 if (PaddingSize != 0) { 601 memset(Addr + DataSize, 0, PaddingSize); 602 // Update the DataSize variable so that the stub offset is set correctly. 603 DataSize += PaddingSize; 604 } 605 606 DEBUG(dbgs() << "emitSection SectionID: " << SectionID << " Name: " << Name 607 << " obj addr: " << format("%p", pData) 608 << " new addr: " << format("%p", Addr) 609 << " DataSize: " << DataSize << " StubBufSize: " << StubBufSize 610 << " Allocate: " << Allocate << "\n"); 611 } else { 612 // Even if we didn't load the section, we need to record an entry for it 613 // to handle later processing (and by 'handle' I mean don't do anything 614 // with these sections). 615 Allocate = 0; 616 Addr = nullptr; 617 DEBUG(dbgs() << "emitSection SectionID: " << SectionID << " Name: " << Name 618 << " obj addr: " << format("%p", data.data()) << " new addr: 0" 619 << " DataSize: " << DataSize << " StubBufSize: " << StubBufSize 620 << " Allocate: " << Allocate << "\n"); 621 } 622 623 Sections.push_back(SectionEntry(Name, Addr, DataSize, (uintptr_t)pData)); 624 625 if (Checker) 626 Checker->registerSection(Obj.getFileName(), SectionID); 627 628 return SectionID; 629 } 630 631 unsigned RuntimeDyldImpl::findOrEmitSection(const ObjectFile &Obj, 632 const SectionRef &Section, 633 bool IsCode, 634 ObjSectionToIDMap &LocalSections) { 635 636 unsigned SectionID = 0; 637 ObjSectionToIDMap::iterator i = LocalSections.find(Section); 638 if (i != LocalSections.end()) 639 SectionID = i->second; 640 else { 641 SectionID = emitSection(Obj, Section, IsCode); 642 LocalSections[Section] = SectionID; 643 } 644 return SectionID; 645 } 646 647 void RuntimeDyldImpl::addRelocationForSection(const RelocationEntry &RE, 648 unsigned SectionID) { 649 Relocations[SectionID].push_back(RE); 650 } 651 652 void RuntimeDyldImpl::addRelocationForSymbol(const RelocationEntry &RE, 653 StringRef SymbolName) { 654 // Relocation by symbol. If the symbol is found in the global symbol table, 655 // create an appropriate section relocation. Otherwise, add it to 656 // ExternalSymbolRelocations. 657 RTDyldSymbolTable::const_iterator Loc = GlobalSymbolTable.find(SymbolName); 658 if (Loc == GlobalSymbolTable.end()) { 659 ExternalSymbolRelocations[SymbolName].push_back(RE); 660 } else { 661 // Copy the RE since we want to modify its addend. 662 RelocationEntry RECopy = RE; 663 const auto &SymInfo = Loc->second; 664 RECopy.Addend += SymInfo.getOffset(); 665 Relocations[SymInfo.getSectionID()].push_back(RECopy); 666 } 667 } 668 669 uint8_t *RuntimeDyldImpl::createStubFunction(uint8_t *Addr, 670 unsigned AbiVariant) { 671 if (Arch == Triple::aarch64 || Arch == Triple::aarch64_be) { 672 // This stub has to be able to access the full address space, 673 // since symbol lookup won't necessarily find a handy, in-range, 674 // PLT stub for functions which could be anywhere. 675 // Stub can use ip0 (== x16) to calculate address 676 writeBytesUnaligned(0xd2e00010, Addr, 4); // movz ip0, #:abs_g3:<addr> 677 writeBytesUnaligned(0xf2c00010, Addr+4, 4); // movk ip0, #:abs_g2_nc:<addr> 678 writeBytesUnaligned(0xf2a00010, Addr+8, 4); // movk ip0, #:abs_g1_nc:<addr> 679 writeBytesUnaligned(0xf2800010, Addr+12, 4); // movk ip0, #:abs_g0_nc:<addr> 680 writeBytesUnaligned(0xd61f0200, Addr+16, 4); // br ip0 681 682 return Addr; 683 } else if (Arch == Triple::arm || Arch == Triple::armeb) { 684 // TODO: There is only ARM far stub now. We should add the Thumb stub, 685 // and stubs for branches Thumb - ARM and ARM - Thumb. 686 writeBytesUnaligned(0xe51ff004, Addr, 4); // ldr pc,<label> 687 return Addr + 4; 688 } else if (IsMipsO32ABI) { 689 // 0: 3c190000 lui t9,%hi(addr). 690 // 4: 27390000 addiu t9,t9,%lo(addr). 691 // 8: 03200008 jr t9. 692 // c: 00000000 nop. 693 const unsigned LuiT9Instr = 0x3c190000, AdduiT9Instr = 0x27390000; 694 const unsigned JrT9Instr = 0x03200008, NopInstr = 0x0; 695 696 writeBytesUnaligned(LuiT9Instr, Addr, 4); 697 writeBytesUnaligned(AdduiT9Instr, Addr+4, 4); 698 writeBytesUnaligned(JrT9Instr, Addr+8, 4); 699 writeBytesUnaligned(NopInstr, Addr+12, 4); 700 return Addr; 701 } else if (Arch == Triple::ppc64 || Arch == Triple::ppc64le) { 702 // Depending on which version of the ELF ABI is in use, we need to 703 // generate one of two variants of the stub. They both start with 704 // the same sequence to load the target address into r12. 705 writeInt32BE(Addr, 0x3D800000); // lis r12, highest(addr) 706 writeInt32BE(Addr+4, 0x618C0000); // ori r12, higher(addr) 707 writeInt32BE(Addr+8, 0x798C07C6); // sldi r12, r12, 32 708 writeInt32BE(Addr+12, 0x658C0000); // oris r12, r12, h(addr) 709 writeInt32BE(Addr+16, 0x618C0000); // ori r12, r12, l(addr) 710 if (AbiVariant == 2) { 711 // PowerPC64 stub ELFv2 ABI: The address points to the function itself. 712 // The address is already in r12 as required by the ABI. Branch to it. 713 writeInt32BE(Addr+20, 0xF8410018); // std r2, 24(r1) 714 writeInt32BE(Addr+24, 0x7D8903A6); // mtctr r12 715 writeInt32BE(Addr+28, 0x4E800420); // bctr 716 } else { 717 // PowerPC64 stub ELFv1 ABI: The address points to a function descriptor. 718 // Load the function address on r11 and sets it to control register. Also 719 // loads the function TOC in r2 and environment pointer to r11. 720 writeInt32BE(Addr+20, 0xF8410028); // std r2, 40(r1) 721 writeInt32BE(Addr+24, 0xE96C0000); // ld r11, 0(r12) 722 writeInt32BE(Addr+28, 0xE84C0008); // ld r2, 0(r12) 723 writeInt32BE(Addr+32, 0x7D6903A6); // mtctr r11 724 writeInt32BE(Addr+36, 0xE96C0010); // ld r11, 16(r2) 725 writeInt32BE(Addr+40, 0x4E800420); // bctr 726 } 727 return Addr; 728 } else if (Arch == Triple::systemz) { 729 writeInt16BE(Addr, 0xC418); // lgrl %r1,.+8 730 writeInt16BE(Addr+2, 0x0000); 731 writeInt16BE(Addr+4, 0x0004); 732 writeInt16BE(Addr+6, 0x07F1); // brc 15,%r1 733 // 8-byte address stored at Addr + 8 734 return Addr; 735 } else if (Arch == Triple::x86_64) { 736 *Addr = 0xFF; // jmp 737 *(Addr+1) = 0x25; // rip 738 // 32-bit PC-relative address of the GOT entry will be stored at Addr+2 739 } else if (Arch == Triple::x86) { 740 *Addr = 0xE9; // 32-bit pc-relative jump. 741 } 742 return Addr; 743 } 744 745 // Assign an address to a symbol name and resolve all the relocations 746 // associated with it. 747 void RuntimeDyldImpl::reassignSectionAddress(unsigned SectionID, 748 uint64_t Addr) { 749 // The address to use for relocation resolution is not 750 // the address of the local section buffer. We must be doing 751 // a remote execution environment of some sort. Relocations can't 752 // be applied until all the sections have been moved. The client must 753 // trigger this with a call to MCJIT::finalize() or 754 // RuntimeDyld::resolveRelocations(). 755 // 756 // Addr is a uint64_t because we can't assume the pointer width 757 // of the target is the same as that of the host. Just use a generic 758 // "big enough" type. 759 DEBUG(dbgs() << "Reassigning address for section " 760 << SectionID << " (" << Sections[SectionID].Name << "): " 761 << format("0x%016" PRIx64, Sections[SectionID].LoadAddress) << " -> " 762 << format("0x%016" PRIx64, Addr) << "\n"); 763 Sections[SectionID].LoadAddress = Addr; 764 } 765 766 void RuntimeDyldImpl::resolveRelocationList(const RelocationList &Relocs, 767 uint64_t Value) { 768 for (unsigned i = 0, e = Relocs.size(); i != e; ++i) { 769 const RelocationEntry &RE = Relocs[i]; 770 // Ignore relocations for sections that were not loaded 771 if (Sections[RE.SectionID].Address == nullptr) 772 continue; 773 resolveRelocation(RE, Value); 774 } 775 } 776 777 void RuntimeDyldImpl::resolveExternalSymbols() { 778 while (!ExternalSymbolRelocations.empty()) { 779 StringMap<RelocationList>::iterator i = ExternalSymbolRelocations.begin(); 780 781 StringRef Name = i->first(); 782 if (Name.size() == 0) { 783 // This is an absolute symbol, use an address of zero. 784 DEBUG(dbgs() << "Resolving absolute relocations." 785 << "\n"); 786 RelocationList &Relocs = i->second; 787 resolveRelocationList(Relocs, 0); 788 } else { 789 uint64_t Addr = 0; 790 RTDyldSymbolTable::const_iterator Loc = GlobalSymbolTable.find(Name); 791 if (Loc == GlobalSymbolTable.end()) { 792 // This is an external symbol, try to get its address from the symbol 793 // resolver. 794 Addr = Resolver.findSymbol(Name.data()).getAddress(); 795 // The call to getSymbolAddress may have caused additional modules to 796 // be loaded, which may have added new entries to the 797 // ExternalSymbolRelocations map. Consquently, we need to update our 798 // iterator. This is also why retrieval of the relocation list 799 // associated with this symbol is deferred until below this point. 800 // New entries may have been added to the relocation list. 801 i = ExternalSymbolRelocations.find(Name); 802 } else { 803 // We found the symbol in our global table. It was probably in a 804 // Module that we loaded previously. 805 const auto &SymInfo = Loc->second; 806 Addr = getSectionLoadAddress(SymInfo.getSectionID()) + 807 SymInfo.getOffset(); 808 } 809 810 // FIXME: Implement error handling that doesn't kill the host program! 811 if (!Addr) 812 report_fatal_error("Program used external function '" + Name + 813 "' which could not be resolved!"); 814 815 DEBUG(dbgs() << "Resolving relocations Name: " << Name << "\t" 816 << format("0x%lx", Addr) << "\n"); 817 // This list may have been updated when we called getSymbolAddress, so 818 // don't change this code to get the list earlier. 819 RelocationList &Relocs = i->second; 820 resolveRelocationList(Relocs, Addr); 821 } 822 823 ExternalSymbolRelocations.erase(i); 824 } 825 } 826 827 //===----------------------------------------------------------------------===// 828 // RuntimeDyld class implementation 829 830 uint64_t RuntimeDyld::LoadedObjectInfo::getSectionLoadAddress( 831 StringRef SectionName) const { 832 for (unsigned I = BeginIdx; I != EndIdx; ++I) 833 if (RTDyld.Sections[I].Name == SectionName) 834 return RTDyld.Sections[I].LoadAddress; 835 836 return 0; 837 } 838 839 void RuntimeDyld::MemoryManager::anchor() {} 840 void RuntimeDyld::SymbolResolver::anchor() {} 841 842 RuntimeDyld::RuntimeDyld(RuntimeDyld::MemoryManager &MemMgr, 843 RuntimeDyld::SymbolResolver &Resolver) 844 : MemMgr(MemMgr), Resolver(Resolver) { 845 // FIXME: There's a potential issue lurking here if a single instance of 846 // RuntimeDyld is used to load multiple objects. The current implementation 847 // associates a single memory manager with a RuntimeDyld instance. Even 848 // though the public class spawns a new 'impl' instance for each load, 849 // they share a single memory manager. This can become a problem when page 850 // permissions are applied. 851 Dyld = nullptr; 852 ProcessAllSections = false; 853 Checker = nullptr; 854 } 855 856 RuntimeDyld::~RuntimeDyld() {} 857 858 static std::unique_ptr<RuntimeDyldCOFF> 859 createRuntimeDyldCOFF(Triple::ArchType Arch, RuntimeDyld::MemoryManager &MM, 860 RuntimeDyld::SymbolResolver &Resolver, 861 bool ProcessAllSections, RuntimeDyldCheckerImpl *Checker) { 862 std::unique_ptr<RuntimeDyldCOFF> Dyld = 863 RuntimeDyldCOFF::create(Arch, MM, Resolver); 864 Dyld->setProcessAllSections(ProcessAllSections); 865 Dyld->setRuntimeDyldChecker(Checker); 866 return Dyld; 867 } 868 869 static std::unique_ptr<RuntimeDyldELF> 870 createRuntimeDyldELF(RuntimeDyld::MemoryManager &MM, 871 RuntimeDyld::SymbolResolver &Resolver, 872 bool ProcessAllSections, RuntimeDyldCheckerImpl *Checker) { 873 std::unique_ptr<RuntimeDyldELF> Dyld(new RuntimeDyldELF(MM, Resolver)); 874 Dyld->setProcessAllSections(ProcessAllSections); 875 Dyld->setRuntimeDyldChecker(Checker); 876 return Dyld; 877 } 878 879 static std::unique_ptr<RuntimeDyldMachO> 880 createRuntimeDyldMachO(Triple::ArchType Arch, RuntimeDyld::MemoryManager &MM, 881 RuntimeDyld::SymbolResolver &Resolver, 882 bool ProcessAllSections, 883 RuntimeDyldCheckerImpl *Checker) { 884 std::unique_ptr<RuntimeDyldMachO> Dyld = 885 RuntimeDyldMachO::create(Arch, MM, Resolver); 886 Dyld->setProcessAllSections(ProcessAllSections); 887 Dyld->setRuntimeDyldChecker(Checker); 888 return Dyld; 889 } 890 891 std::unique_ptr<RuntimeDyld::LoadedObjectInfo> 892 RuntimeDyld::loadObject(const ObjectFile &Obj) { 893 if (!Dyld) { 894 if (Obj.isELF()) 895 Dyld = createRuntimeDyldELF(MemMgr, Resolver, ProcessAllSections, Checker); 896 else if (Obj.isMachO()) 897 Dyld = createRuntimeDyldMachO( 898 static_cast<Triple::ArchType>(Obj.getArch()), MemMgr, Resolver, 899 ProcessAllSections, Checker); 900 else if (Obj.isCOFF()) 901 Dyld = createRuntimeDyldCOFF( 902 static_cast<Triple::ArchType>(Obj.getArch()), MemMgr, Resolver, 903 ProcessAllSections, Checker); 904 else 905 report_fatal_error("Incompatible object format!"); 906 } 907 908 if (!Dyld->isCompatibleFile(Obj)) 909 report_fatal_error("Incompatible object format!"); 910 911 return Dyld->loadObject(Obj); 912 } 913 914 void *RuntimeDyld::getSymbolLocalAddress(StringRef Name) const { 915 if (!Dyld) 916 return nullptr; 917 return Dyld->getSymbolLocalAddress(Name); 918 } 919 920 RuntimeDyld::SymbolInfo RuntimeDyld::getSymbol(StringRef Name) const { 921 if (!Dyld) 922 return nullptr; 923 return Dyld->getSymbol(Name); 924 } 925 926 void RuntimeDyld::resolveRelocations() { Dyld->resolveRelocations(); } 927 928 void RuntimeDyld::reassignSectionAddress(unsigned SectionID, uint64_t Addr) { 929 Dyld->reassignSectionAddress(SectionID, Addr); 930 } 931 932 void RuntimeDyld::mapSectionAddress(const void *LocalAddress, 933 uint64_t TargetAddress) { 934 Dyld->mapSectionAddress(LocalAddress, TargetAddress); 935 } 936 937 bool RuntimeDyld::hasError() { return Dyld->hasError(); } 938 939 StringRef RuntimeDyld::getErrorString() { return Dyld->getErrorString(); } 940 941 void RuntimeDyld::registerEHFrames() { 942 if (Dyld) 943 Dyld->registerEHFrames(); 944 } 945 946 void RuntimeDyld::deregisterEHFrames() { 947 if (Dyld) 948 Dyld->deregisterEHFrames(); 949 } 950 951 } // end namespace llvm 952