1 //===-- RuntimeDyldELF.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 ELF support for the MC-JIT runtime dynamic linker. 11 // 12 //===----------------------------------------------------------------------===// 13 14 #define DEBUG_TYPE "dyld" 15 #include "RuntimeDyldELF.h" 16 #include "JITRegistrar.h" 17 #include "ObjectImageCommon.h" 18 #include "llvm/ADT/IntervalMap.h" 19 #include "llvm/ADT/OwningPtr.h" 20 #include "llvm/ADT/STLExtras.h" 21 #include "llvm/ADT/StringRef.h" 22 #include "llvm/ADT/Triple.h" 23 #include "llvm/ExecutionEngine/ObjectBuffer.h" 24 #include "llvm/ExecutionEngine/ObjectImage.h" 25 #include "llvm/Object/ELFObjectFile.h" 26 #include "llvm/Object/ObjectFile.h" 27 #include "llvm/Support/ELF.h" 28 #include "llvm/Support/MemoryBuffer.h" 29 30 using namespace llvm; 31 using namespace llvm::object; 32 33 namespace { 34 35 static inline 36 error_code check(error_code Err) { 37 if (Err) { 38 report_fatal_error(Err.message()); 39 } 40 return Err; 41 } 42 43 template<class ELFT> 44 class DyldELFObject 45 : public ELFObjectFile<ELFT> { 46 LLVM_ELF_IMPORT_TYPES_ELFT(ELFT) 47 48 typedef Elf_Shdr_Impl<ELFT> Elf_Shdr; 49 typedef Elf_Sym_Impl<ELFT> Elf_Sym; 50 typedef 51 Elf_Rel_Impl<ELFT, false> Elf_Rel; 52 typedef 53 Elf_Rel_Impl<ELFT, true> Elf_Rela; 54 55 typedef Elf_Ehdr_Impl<ELFT> Elf_Ehdr; 56 57 typedef typename ELFDataTypeTypedefHelper< 58 ELFT>::value_type addr_type; 59 60 public: 61 DyldELFObject(MemoryBuffer *Wrapper, error_code &ec); 62 63 void updateSectionAddress(const SectionRef &Sec, uint64_t Addr); 64 void updateSymbolAddress(const SymbolRef &Sym, uint64_t Addr); 65 66 // Methods for type inquiry through isa, cast and dyn_cast 67 static inline bool classof(const Binary *v) { 68 return (isa<ELFObjectFile<ELFT> >(v) 69 && classof(cast<ELFObjectFile 70 <ELFT> >(v))); 71 } 72 static inline bool classof( 73 const ELFObjectFile<ELFT> *v) { 74 return v->isDyldType(); 75 } 76 }; 77 78 template<class ELFT> 79 class ELFObjectImage : public ObjectImageCommon { 80 protected: 81 DyldELFObject<ELFT> *DyldObj; 82 bool Registered; 83 84 public: 85 ELFObjectImage(ObjectBuffer *Input, 86 DyldELFObject<ELFT> *Obj) 87 : ObjectImageCommon(Input, Obj), 88 DyldObj(Obj), 89 Registered(false) {} 90 91 virtual ~ELFObjectImage() { 92 if (Registered) 93 deregisterWithDebugger(); 94 } 95 96 // Subclasses can override these methods to update the image with loaded 97 // addresses for sections and common symbols 98 virtual void updateSectionAddress(const SectionRef &Sec, uint64_t Addr) 99 { 100 DyldObj->updateSectionAddress(Sec, Addr); 101 } 102 103 virtual void updateSymbolAddress(const SymbolRef &Sym, uint64_t Addr) 104 { 105 DyldObj->updateSymbolAddress(Sym, Addr); 106 } 107 108 virtual void registerWithDebugger() 109 { 110 JITRegistrar::getGDBRegistrar().registerObject(*Buffer); 111 Registered = true; 112 } 113 virtual void deregisterWithDebugger() 114 { 115 JITRegistrar::getGDBRegistrar().deregisterObject(*Buffer); 116 } 117 }; 118 119 // The MemoryBuffer passed into this constructor is just a wrapper around the 120 // actual memory. Ultimately, the Binary parent class will take ownership of 121 // this MemoryBuffer object but not the underlying memory. 122 template<class ELFT> 123 DyldELFObject<ELFT>::DyldELFObject(MemoryBuffer *Wrapper, error_code &ec) 124 : ELFObjectFile<ELFT>(Wrapper, ec) { 125 this->isDyldELFObject = true; 126 } 127 128 template<class ELFT> 129 void DyldELFObject<ELFT>::updateSectionAddress(const SectionRef &Sec, 130 uint64_t Addr) { 131 DataRefImpl ShdrRef = Sec.getRawDataRefImpl(); 132 Elf_Shdr *shdr = const_cast<Elf_Shdr*>( 133 reinterpret_cast<const Elf_Shdr *>(ShdrRef.p)); 134 135 // This assumes the address passed in matches the target address bitness 136 // The template-based type cast handles everything else. 137 shdr->sh_addr = static_cast<addr_type>(Addr); 138 } 139 140 template<class ELFT> 141 void DyldELFObject<ELFT>::updateSymbolAddress(const SymbolRef &SymRef, 142 uint64_t Addr) { 143 144 Elf_Sym *sym = const_cast<Elf_Sym*>( 145 ELFObjectFile<ELFT>::getSymbol(SymRef.getRawDataRefImpl())); 146 147 // This assumes the address passed in matches the target address bitness 148 // The template-based type cast handles everything else. 149 sym->st_value = static_cast<addr_type>(Addr); 150 } 151 152 } // namespace 153 154 namespace llvm { 155 156 void RuntimeDyldELF::registerEHFrames() { 157 if (!MemMgr) 158 return; 159 for (int i = 0, e = UnregisteredEHFrameSections.size(); i != e; ++i) { 160 SID EHFrameSID = UnregisteredEHFrameSections[i]; 161 uint8_t *EHFrameAddr = Sections[EHFrameSID].Address; 162 uint64_t EHFrameLoadAddr = Sections[EHFrameSID].LoadAddress; 163 size_t EHFrameSize = Sections[EHFrameSID].Size; 164 MemMgr->registerEHFrames(EHFrameAddr, EHFrameLoadAddr, EHFrameSize); 165 RegisteredEHFrameSections.push_back(EHFrameSID); 166 } 167 UnregisteredEHFrameSections.clear(); 168 } 169 170 void RuntimeDyldELF::deregisterEHFrames() { 171 if (!MemMgr) 172 return; 173 for (int i = 0, e = RegisteredEHFrameSections.size(); i != e; ++i) { 174 SID EHFrameSID = RegisteredEHFrameSections[i]; 175 uint8_t *EHFrameAddr = Sections[EHFrameSID].Address; 176 uint64_t EHFrameLoadAddr = Sections[EHFrameSID].LoadAddress; 177 size_t EHFrameSize = Sections[EHFrameSID].Size; 178 MemMgr->deregisterEHFrames(EHFrameAddr, EHFrameLoadAddr, EHFrameSize); 179 } 180 RegisteredEHFrameSections.clear(); 181 } 182 183 ObjectImage *RuntimeDyldELF::createObjectImageFromFile(object::ObjectFile *ObjFile) { 184 if (!ObjFile) 185 return NULL; 186 187 error_code ec; 188 MemoryBuffer* Buffer = MemoryBuffer::getMemBuffer(ObjFile->getData(), 189 "", 190 false); 191 192 if (ObjFile->getBytesInAddress() == 4 && ObjFile->isLittleEndian()) { 193 DyldELFObject<ELFType<support::little, 2, false> > *Obj = 194 new DyldELFObject<ELFType<support::little, 2, false> >(Buffer, ec); 195 return new ELFObjectImage<ELFType<support::little, 2, false> >(NULL, Obj); 196 } 197 else if (ObjFile->getBytesInAddress() == 4 && !ObjFile->isLittleEndian()) { 198 DyldELFObject<ELFType<support::big, 2, false> > *Obj = 199 new DyldELFObject<ELFType<support::big, 2, false> >(Buffer, ec); 200 return new ELFObjectImage<ELFType<support::big, 2, false> >(NULL, Obj); 201 } 202 else if (ObjFile->getBytesInAddress() == 8 && !ObjFile->isLittleEndian()) { 203 DyldELFObject<ELFType<support::big, 2, true> > *Obj = 204 new DyldELFObject<ELFType<support::big, 2, true> >(Buffer, ec); 205 return new ELFObjectImage<ELFType<support::big, 2, true> >(NULL, Obj); 206 } 207 else if (ObjFile->getBytesInAddress() == 8 && ObjFile->isLittleEndian()) { 208 DyldELFObject<ELFType<support::little, 2, true> > *Obj = 209 new DyldELFObject<ELFType<support::little, 2, true> >(Buffer, ec); 210 return new ELFObjectImage<ELFType<support::little, 2, true> >(NULL, Obj); 211 } 212 else 213 llvm_unreachable("Unexpected ELF format"); 214 } 215 216 ObjectImage *RuntimeDyldELF::createObjectImage(ObjectBuffer *Buffer) { 217 if (Buffer->getBufferSize() < ELF::EI_NIDENT) 218 llvm_unreachable("Unexpected ELF object size"); 219 std::pair<unsigned char, unsigned char> Ident = std::make_pair( 220 (uint8_t)Buffer->getBufferStart()[ELF::EI_CLASS], 221 (uint8_t)Buffer->getBufferStart()[ELF::EI_DATA]); 222 error_code ec; 223 224 if (Ident.first == ELF::ELFCLASS32 && Ident.second == ELF::ELFDATA2LSB) { 225 DyldELFObject<ELFType<support::little, 4, false> > *Obj = 226 new DyldELFObject<ELFType<support::little, 4, false> >( 227 Buffer->getMemBuffer(), ec); 228 return new ELFObjectImage<ELFType<support::little, 4, false> >(Buffer, Obj); 229 } 230 else if (Ident.first == ELF::ELFCLASS32 && Ident.second == ELF::ELFDATA2MSB) { 231 DyldELFObject<ELFType<support::big, 4, false> > *Obj = 232 new DyldELFObject<ELFType<support::big, 4, false> >( 233 Buffer->getMemBuffer(), ec); 234 return new ELFObjectImage<ELFType<support::big, 4, false> >(Buffer, Obj); 235 } 236 else if (Ident.first == ELF::ELFCLASS64 && Ident.second == ELF::ELFDATA2MSB) { 237 DyldELFObject<ELFType<support::big, 8, true> > *Obj = 238 new DyldELFObject<ELFType<support::big, 8, true> >( 239 Buffer->getMemBuffer(), ec); 240 return new ELFObjectImage<ELFType<support::big, 8, true> >(Buffer, Obj); 241 } 242 else if (Ident.first == ELF::ELFCLASS64 && Ident.second == ELF::ELFDATA2LSB) { 243 DyldELFObject<ELFType<support::little, 8, true> > *Obj = 244 new DyldELFObject<ELFType<support::little, 8, true> >( 245 Buffer->getMemBuffer(), ec); 246 return new ELFObjectImage<ELFType<support::little, 8, true> >(Buffer, Obj); 247 } 248 else 249 llvm_unreachable("Unexpected ELF format"); 250 } 251 252 RuntimeDyldELF::~RuntimeDyldELF() { 253 } 254 255 void RuntimeDyldELF::resolveX86_64Relocation(const SectionEntry &Section, 256 uint64_t Offset, 257 uint64_t Value, 258 uint32_t Type, 259 int64_t Addend, 260 uint64_t SymOffset) { 261 switch (Type) { 262 default: 263 llvm_unreachable("Relocation type not implemented yet!"); 264 break; 265 case ELF::R_X86_64_64: { 266 uint64_t *Target = reinterpret_cast<uint64_t*>(Section.Address + Offset); 267 *Target = Value + Addend; 268 DEBUG(dbgs() << "Writing " << format("%p", (Value + Addend)) 269 << " at " << format("%p\n",Target)); 270 break; 271 } 272 case ELF::R_X86_64_32: 273 case ELF::R_X86_64_32S: { 274 Value += Addend; 275 assert((Type == ELF::R_X86_64_32 && (Value <= UINT32_MAX)) || 276 (Type == ELF::R_X86_64_32S && 277 ((int64_t)Value <= INT32_MAX && (int64_t)Value >= INT32_MIN))); 278 uint32_t TruncatedAddr = (Value & 0xFFFFFFFF); 279 uint32_t *Target = reinterpret_cast<uint32_t*>(Section.Address + Offset); 280 *Target = TruncatedAddr; 281 DEBUG(dbgs() << "Writing " << format("%p", TruncatedAddr) 282 << " at " << format("%p\n",Target)); 283 break; 284 } 285 case ELF::R_X86_64_GOTPCREL: { 286 // findGOTEntry returns the 'G + GOT' part of the relocation calculation 287 // based on the load/target address of the GOT (not the current/local addr). 288 uint64_t GOTAddr = findGOTEntry(Value, SymOffset); 289 uint32_t *Target = reinterpret_cast<uint32_t*>(Section.Address + Offset); 290 uint64_t FinalAddress = Section.LoadAddress + Offset; 291 // The processRelocationRef method combines the symbol offset and the addend 292 // and in most cases that's what we want. For this relocation type, we need 293 // the raw addend, so we subtract the symbol offset to get it. 294 int64_t RealOffset = GOTAddr + Addend - SymOffset - FinalAddress; 295 assert(RealOffset <= INT32_MAX && RealOffset >= INT32_MIN); 296 int32_t TruncOffset = (RealOffset & 0xFFFFFFFF); 297 *Target = TruncOffset; 298 break; 299 } 300 case ELF::R_X86_64_PC32: { 301 // Get the placeholder value from the generated object since 302 // a previous relocation attempt may have overwritten the loaded version 303 uint32_t *Placeholder = reinterpret_cast<uint32_t*>(Section.ObjAddress 304 + Offset); 305 uint32_t *Target = reinterpret_cast<uint32_t*>(Section.Address + Offset); 306 uint64_t FinalAddress = Section.LoadAddress + Offset; 307 int64_t RealOffset = *Placeholder + Value + Addend - FinalAddress; 308 assert(RealOffset <= INT32_MAX && RealOffset >= INT32_MIN); 309 int32_t TruncOffset = (RealOffset & 0xFFFFFFFF); 310 *Target = TruncOffset; 311 break; 312 } 313 case ELF::R_X86_64_PC64: { 314 // Get the placeholder value from the generated object since 315 // a previous relocation attempt may have overwritten the loaded version 316 uint64_t *Placeholder = reinterpret_cast<uint64_t*>(Section.ObjAddress 317 + Offset); 318 uint64_t *Target = reinterpret_cast<uint64_t*>(Section.Address + Offset); 319 uint64_t FinalAddress = Section.LoadAddress + Offset; 320 *Target = *Placeholder + Value + Addend - FinalAddress; 321 break; 322 } 323 } 324 } 325 326 void RuntimeDyldELF::resolveX86Relocation(const SectionEntry &Section, 327 uint64_t Offset, 328 uint32_t Value, 329 uint32_t Type, 330 int32_t Addend) { 331 switch (Type) { 332 case ELF::R_386_32: { 333 // Get the placeholder value from the generated object since 334 // a previous relocation attempt may have overwritten the loaded version 335 uint32_t *Placeholder = reinterpret_cast<uint32_t*>(Section.ObjAddress 336 + Offset); 337 uint32_t *Target = reinterpret_cast<uint32_t*>(Section.Address + Offset); 338 *Target = *Placeholder + Value + Addend; 339 break; 340 } 341 case ELF::R_386_PC32: { 342 // Get the placeholder value from the generated object since 343 // a previous relocation attempt may have overwritten the loaded version 344 uint32_t *Placeholder = reinterpret_cast<uint32_t*>(Section.ObjAddress 345 + Offset); 346 uint32_t *Target = reinterpret_cast<uint32_t*>(Section.Address + Offset); 347 uint32_t FinalAddress = ((Section.LoadAddress + Offset) & 0xFFFFFFFF); 348 uint32_t RealOffset = *Placeholder + Value + Addend - FinalAddress; 349 *Target = RealOffset; 350 break; 351 } 352 default: 353 // There are other relocation types, but it appears these are the 354 // only ones currently used by the LLVM ELF object writer 355 llvm_unreachable("Relocation type not implemented yet!"); 356 break; 357 } 358 } 359 360 void RuntimeDyldELF::resolveAArch64Relocation(const SectionEntry &Section, 361 uint64_t Offset, 362 uint64_t Value, 363 uint32_t Type, 364 int64_t Addend) { 365 uint32_t *TargetPtr = reinterpret_cast<uint32_t*>(Section.Address + Offset); 366 uint64_t FinalAddress = Section.LoadAddress + Offset; 367 368 DEBUG(dbgs() << "resolveAArch64Relocation, LocalAddress: 0x" 369 << format("%llx", Section.Address + Offset) 370 << " FinalAddress: 0x" << format("%llx",FinalAddress) 371 << " Value: 0x" << format("%llx",Value) 372 << " Type: 0x" << format("%x",Type) 373 << " Addend: 0x" << format("%llx",Addend) 374 << "\n"); 375 376 switch (Type) { 377 default: 378 llvm_unreachable("Relocation type not implemented yet!"); 379 break; 380 case ELF::R_AARCH64_ABS64: { 381 uint64_t *TargetPtr = reinterpret_cast<uint64_t*>(Section.Address + Offset); 382 *TargetPtr = Value + Addend; 383 break; 384 } 385 case ELF::R_AARCH64_PREL32: { 386 uint64_t Result = Value + Addend - FinalAddress; 387 assert(static_cast<int64_t>(Result) >= INT32_MIN && 388 static_cast<int64_t>(Result) <= UINT32_MAX); 389 *TargetPtr = static_cast<uint32_t>(Result & 0xffffffffU); 390 break; 391 } 392 case ELF::R_AARCH64_CALL26: // fallthrough 393 case ELF::R_AARCH64_JUMP26: { 394 // Operation: S+A-P. Set Call or B immediate value to bits fff_fffc of the 395 // calculation. 396 uint64_t BranchImm = Value + Addend - FinalAddress; 397 398 // "Check that -2^27 <= result < 2^27". 399 assert(-(1LL << 27) <= static_cast<int64_t>(BranchImm) && 400 static_cast<int64_t>(BranchImm) < (1LL << 27)); 401 402 // AArch64 code is emitted with .rela relocations. The data already in any 403 // bits affected by the relocation on entry is garbage. 404 *TargetPtr &= 0xfc000000U; 405 // Immediate goes in bits 25:0 of B and BL. 406 *TargetPtr |= static_cast<uint32_t>(BranchImm & 0xffffffcU) >> 2; 407 break; 408 } 409 case ELF::R_AARCH64_MOVW_UABS_G3: { 410 uint64_t Result = Value + Addend; 411 412 // AArch64 code is emitted with .rela relocations. The data already in any 413 // bits affected by the relocation on entry is garbage. 414 *TargetPtr &= 0xffe0001fU; 415 // Immediate goes in bits 20:5 of MOVZ/MOVK instruction 416 *TargetPtr |= Result >> (48 - 5); 417 // Shift must be "lsl #48", in bits 22:21 418 assert((*TargetPtr >> 21 & 0x3) == 3 && "invalid shift for relocation"); 419 break; 420 } 421 case ELF::R_AARCH64_MOVW_UABS_G2_NC: { 422 uint64_t Result = Value + Addend; 423 424 // AArch64 code is emitted with .rela relocations. The data already in any 425 // bits affected by the relocation on entry is garbage. 426 *TargetPtr &= 0xffe0001fU; 427 // Immediate goes in bits 20:5 of MOVZ/MOVK instruction 428 *TargetPtr |= ((Result & 0xffff00000000ULL) >> (32 - 5)); 429 // Shift must be "lsl #32", in bits 22:21 430 assert((*TargetPtr >> 21 & 0x3) == 2 && "invalid shift for relocation"); 431 break; 432 } 433 case ELF::R_AARCH64_MOVW_UABS_G1_NC: { 434 uint64_t Result = Value + Addend; 435 436 // AArch64 code is emitted with .rela relocations. The data already in any 437 // bits affected by the relocation on entry is garbage. 438 *TargetPtr &= 0xffe0001fU; 439 // Immediate goes in bits 20:5 of MOVZ/MOVK instruction 440 *TargetPtr |= ((Result & 0xffff0000U) >> (16 - 5)); 441 // Shift must be "lsl #16", in bits 22:2 442 assert((*TargetPtr >> 21 & 0x3) == 1 && "invalid shift for relocation"); 443 break; 444 } 445 case ELF::R_AARCH64_MOVW_UABS_G0_NC: { 446 uint64_t Result = Value + Addend; 447 448 // AArch64 code is emitted with .rela relocations. The data already in any 449 // bits affected by the relocation on entry is garbage. 450 *TargetPtr &= 0xffe0001fU; 451 // Immediate goes in bits 20:5 of MOVZ/MOVK instruction 452 *TargetPtr |= ((Result & 0xffffU) << 5); 453 // Shift must be "lsl #0", in bits 22:21. 454 assert((*TargetPtr >> 21 & 0x3) == 0 && "invalid shift for relocation"); 455 break; 456 } 457 } 458 } 459 460 void RuntimeDyldELF::resolveARMRelocation(const SectionEntry &Section, 461 uint64_t Offset, 462 uint32_t Value, 463 uint32_t Type, 464 int32_t Addend) { 465 // TODO: Add Thumb relocations. 466 uint32_t *Placeholder = reinterpret_cast<uint32_t*>(Section.ObjAddress + 467 Offset); 468 uint32_t* TargetPtr = (uint32_t*)(Section.Address + Offset); 469 uint32_t FinalAddress = ((Section.LoadAddress + Offset) & 0xFFFFFFFF); 470 Value += Addend; 471 472 DEBUG(dbgs() << "resolveARMRelocation, LocalAddress: " 473 << Section.Address + Offset 474 << " FinalAddress: " << format("%p",FinalAddress) 475 << " Value: " << format("%x",Value) 476 << " Type: " << format("%x",Type) 477 << " Addend: " << format("%x",Addend) 478 << "\n"); 479 480 switch(Type) { 481 default: 482 llvm_unreachable("Not implemented relocation type!"); 483 484 case ELF::R_ARM_NONE: 485 break; 486 // Write a 32bit value to relocation address, taking into account the 487 // implicit addend encoded in the target. 488 case ELF::R_ARM_PREL31: 489 case ELF::R_ARM_TARGET1: 490 case ELF::R_ARM_ABS32: 491 *TargetPtr = *Placeholder + Value; 492 break; 493 // Write first 16 bit of 32 bit value to the mov instruction. 494 // Last 4 bit should be shifted. 495 case ELF::R_ARM_MOVW_ABS_NC: 496 // We are not expecting any other addend in the relocation address. 497 // Using 0x000F0FFF because MOVW has its 16 bit immediate split into 2 498 // non-contiguous fields. 499 assert((*Placeholder & 0x000F0FFF) == 0); 500 Value = Value & 0xFFFF; 501 *TargetPtr = *Placeholder | (Value & 0xFFF); 502 *TargetPtr |= ((Value >> 12) & 0xF) << 16; 503 break; 504 // Write last 16 bit of 32 bit value to the mov instruction. 505 // Last 4 bit should be shifted. 506 case ELF::R_ARM_MOVT_ABS: 507 // We are not expecting any other addend in the relocation address. 508 // Use 0x000F0FFF for the same reason as R_ARM_MOVW_ABS_NC. 509 assert((*Placeholder & 0x000F0FFF) == 0); 510 511 Value = (Value >> 16) & 0xFFFF; 512 *TargetPtr = *Placeholder | (Value & 0xFFF); 513 *TargetPtr |= ((Value >> 12) & 0xF) << 16; 514 break; 515 // Write 24 bit relative value to the branch instruction. 516 case ELF::R_ARM_PC24 : // Fall through. 517 case ELF::R_ARM_CALL : // Fall through. 518 case ELF::R_ARM_JUMP24: { 519 int32_t RelValue = static_cast<int32_t>(Value - FinalAddress - 8); 520 RelValue = (RelValue & 0x03FFFFFC) >> 2; 521 assert((*TargetPtr & 0xFFFFFF) == 0xFFFFFE); 522 *TargetPtr &= 0xFF000000; 523 *TargetPtr |= RelValue; 524 break; 525 } 526 case ELF::R_ARM_PRIVATE_0: 527 // This relocation is reserved by the ARM ELF ABI for internal use. We 528 // appropriate it here to act as an R_ARM_ABS32 without any addend for use 529 // in the stubs created during JIT (which can't put an addend into the 530 // original object file). 531 *TargetPtr = Value; 532 break; 533 } 534 } 535 536 void RuntimeDyldELF::resolveMIPSRelocation(const SectionEntry &Section, 537 uint64_t Offset, 538 uint32_t Value, 539 uint32_t Type, 540 int32_t Addend) { 541 uint32_t *Placeholder = reinterpret_cast<uint32_t*>(Section.ObjAddress + 542 Offset); 543 uint32_t* TargetPtr = (uint32_t*)(Section.Address + Offset); 544 Value += Addend; 545 546 DEBUG(dbgs() << "resolveMipselocation, LocalAddress: " 547 << Section.Address + Offset 548 << " FinalAddress: " 549 << format("%p",Section.LoadAddress + Offset) 550 << " Value: " << format("%x",Value) 551 << " Type: " << format("%x",Type) 552 << " Addend: " << format("%x",Addend) 553 << "\n"); 554 555 switch(Type) { 556 default: 557 llvm_unreachable("Not implemented relocation type!"); 558 break; 559 case ELF::R_MIPS_32: 560 *TargetPtr = Value + (*Placeholder); 561 break; 562 case ELF::R_MIPS_26: 563 *TargetPtr = ((*Placeholder) & 0xfc000000) | (( Value & 0x0fffffff) >> 2); 564 break; 565 case ELF::R_MIPS_HI16: 566 // Get the higher 16-bits. Also add 1 if bit 15 is 1. 567 Value += ((*Placeholder) & 0x0000ffff) << 16; 568 *TargetPtr = ((*Placeholder) & 0xffff0000) | 569 (((Value + 0x8000) >> 16) & 0xffff); 570 break; 571 case ELF::R_MIPS_LO16: 572 Value += ((*Placeholder) & 0x0000ffff); 573 *TargetPtr = ((*Placeholder) & 0xffff0000) | (Value & 0xffff); 574 break; 575 case ELF::R_MIPS_UNUSED1: 576 // Similar to ELF::R_ARM_PRIVATE_0, R_MIPS_UNUSED1 and R_MIPS_UNUSED2 577 // are used for internal JIT purpose. These relocations are similar to 578 // R_MIPS_HI16 and R_MIPS_LO16, but they do not take any addend into 579 // account. 580 *TargetPtr = ((*TargetPtr) & 0xffff0000) | 581 (((Value + 0x8000) >> 16) & 0xffff); 582 break; 583 case ELF::R_MIPS_UNUSED2: 584 *TargetPtr = ((*TargetPtr) & 0xffff0000) | (Value & 0xffff); 585 break; 586 } 587 } 588 589 // Return the .TOC. section address to R_PPC64_TOC relocations. 590 uint64_t RuntimeDyldELF::findPPC64TOC() const { 591 // The TOC consists of sections .got, .toc, .tocbss, .plt in that 592 // order. The TOC starts where the first of these sections starts. 593 SectionList::const_iterator it = Sections.begin(); 594 SectionList::const_iterator ite = Sections.end(); 595 for (; it != ite; ++it) { 596 if (it->Name == ".got" || 597 it->Name == ".toc" || 598 it->Name == ".tocbss" || 599 it->Name == ".plt") 600 break; 601 } 602 if (it == ite) { 603 // This may happen for 604 // * references to TOC base base (sym@toc, .odp relocation) without 605 // a .toc directive. 606 // In this case just use the first section (which is usually 607 // the .odp) since the code won't reference the .toc base 608 // directly. 609 it = Sections.begin(); 610 } 611 assert (it != ite); 612 // Per the ppc64-elf-linux ABI, The TOC base is TOC value plus 0x8000 613 // thus permitting a full 64 Kbytes segment. 614 return it->LoadAddress + 0x8000; 615 } 616 617 // Returns the sections and offset associated with the ODP entry referenced 618 // by Symbol. 619 void RuntimeDyldELF::findOPDEntrySection(ObjectImage &Obj, 620 ObjSectionToIDMap &LocalSections, 621 RelocationValueRef &Rel) { 622 // Get the ELF symbol value (st_value) to compare with Relocation offset in 623 // .opd entries 624 625 error_code err; 626 for (section_iterator si = Obj.begin_sections(), 627 se = Obj.end_sections(); si != se; si.increment(err)) { 628 section_iterator RelSecI = si->getRelocatedSection(); 629 if (RelSecI == Obj.end_sections()) 630 continue; 631 632 StringRef RelSectionName; 633 check(RelSecI->getName(RelSectionName)); 634 if (RelSectionName != ".opd") 635 continue; 636 637 for (relocation_iterator i = si->begin_relocations(), 638 e = si->end_relocations(); i != e;) { 639 check(err); 640 641 // The R_PPC64_ADDR64 relocation indicates the first field 642 // of a .opd entry 643 uint64_t TypeFunc; 644 check(i->getType(TypeFunc)); 645 if (TypeFunc != ELF::R_PPC64_ADDR64) { 646 i.increment(err); 647 continue; 648 } 649 650 uint64_t TargetSymbolOffset; 651 symbol_iterator TargetSymbol = i->getSymbol(); 652 check(i->getOffset(TargetSymbolOffset)); 653 int64_t Addend; 654 check(getELFRelocationAddend(*i, Addend)); 655 656 i = i.increment(err); 657 if (i == e) 658 break; 659 check(err); 660 661 // Just check if following relocation is a R_PPC64_TOC 662 uint64_t TypeTOC; 663 check(i->getType(TypeTOC)); 664 if (TypeTOC != ELF::R_PPC64_TOC) 665 continue; 666 667 // Finally compares the Symbol value and the target symbol offset 668 // to check if this .opd entry refers to the symbol the relocation 669 // points to. 670 if (Rel.Addend != (int64_t)TargetSymbolOffset) 671 continue; 672 673 section_iterator tsi(Obj.end_sections()); 674 check(TargetSymbol->getSection(tsi)); 675 Rel.SectionID = findOrEmitSection(Obj, (*tsi), true, LocalSections); 676 Rel.Addend = (intptr_t)Addend; 677 return; 678 } 679 } 680 llvm_unreachable("Attempting to get address of ODP entry!"); 681 } 682 683 // Relocation masks following the #lo(value), #hi(value), #higher(value), 684 // and #highest(value) macros defined in section 4.5.1. Relocation Types 685 // in PPC-elf64abi document. 686 // 687 static inline 688 uint16_t applyPPClo (uint64_t value) 689 { 690 return value & 0xffff; 691 } 692 693 static inline 694 uint16_t applyPPChi (uint64_t value) 695 { 696 return (value >> 16) & 0xffff; 697 } 698 699 static inline 700 uint16_t applyPPChigher (uint64_t value) 701 { 702 return (value >> 32) & 0xffff; 703 } 704 705 static inline 706 uint16_t applyPPChighest (uint64_t value) 707 { 708 return (value >> 48) & 0xffff; 709 } 710 711 void RuntimeDyldELF::resolvePPC64Relocation(const SectionEntry &Section, 712 uint64_t Offset, 713 uint64_t Value, 714 uint32_t Type, 715 int64_t Addend) { 716 uint8_t* LocalAddress = Section.Address + Offset; 717 switch (Type) { 718 default: 719 llvm_unreachable("Relocation type not implemented yet!"); 720 break; 721 case ELF::R_PPC64_ADDR16_LO : 722 writeInt16BE(LocalAddress, applyPPClo (Value + Addend)); 723 break; 724 case ELF::R_PPC64_ADDR16_HI : 725 writeInt16BE(LocalAddress, applyPPChi (Value + Addend)); 726 break; 727 case ELF::R_PPC64_ADDR16_HIGHER : 728 writeInt16BE(LocalAddress, applyPPChigher (Value + Addend)); 729 break; 730 case ELF::R_PPC64_ADDR16_HIGHEST : 731 writeInt16BE(LocalAddress, applyPPChighest (Value + Addend)); 732 break; 733 case ELF::R_PPC64_ADDR14 : { 734 assert(((Value + Addend) & 3) == 0); 735 // Preserve the AA/LK bits in the branch instruction 736 uint8_t aalk = *(LocalAddress+3); 737 writeInt16BE(LocalAddress + 2, (aalk & 3) | ((Value + Addend) & 0xfffc)); 738 } break; 739 case ELF::R_PPC64_ADDR32 : { 740 int32_t Result = static_cast<int32_t>(Value + Addend); 741 if (SignExtend32<32>(Result) != Result) 742 llvm_unreachable("Relocation R_PPC64_ADDR32 overflow"); 743 writeInt32BE(LocalAddress, Result); 744 } break; 745 case ELF::R_PPC64_REL24 : { 746 uint64_t FinalAddress = (Section.LoadAddress + Offset); 747 int32_t delta = static_cast<int32_t>(Value - FinalAddress + Addend); 748 if (SignExtend32<24>(delta) != delta) 749 llvm_unreachable("Relocation R_PPC64_REL24 overflow"); 750 // Generates a 'bl <address>' instruction 751 writeInt32BE(LocalAddress, 0x48000001 | (delta & 0x03FFFFFC)); 752 } break; 753 case ELF::R_PPC64_REL32 : { 754 uint64_t FinalAddress = (Section.LoadAddress + Offset); 755 int32_t delta = static_cast<int32_t>(Value - FinalAddress + Addend); 756 if (SignExtend32<32>(delta) != delta) 757 llvm_unreachable("Relocation R_PPC64_REL32 overflow"); 758 writeInt32BE(LocalAddress, delta); 759 } break; 760 case ELF::R_PPC64_REL64: { 761 uint64_t FinalAddress = (Section.LoadAddress + Offset); 762 uint64_t Delta = Value - FinalAddress + Addend; 763 writeInt64BE(LocalAddress, Delta); 764 } break; 765 case ELF::R_PPC64_ADDR64 : 766 writeInt64BE(LocalAddress, Value + Addend); 767 break; 768 case ELF::R_PPC64_TOC : 769 writeInt64BE(LocalAddress, findPPC64TOC()); 770 break; 771 case ELF::R_PPC64_TOC16 : { 772 uint64_t TOCStart = findPPC64TOC(); 773 Value = applyPPClo((Value + Addend) - TOCStart); 774 writeInt16BE(LocalAddress, applyPPClo(Value)); 775 } break; 776 case ELF::R_PPC64_TOC16_DS : { 777 uint64_t TOCStart = findPPC64TOC(); 778 Value = ((Value + Addend) - TOCStart); 779 writeInt16BE(LocalAddress, applyPPClo(Value)); 780 } break; 781 } 782 } 783 784 void RuntimeDyldELF::resolveSystemZRelocation(const SectionEntry &Section, 785 uint64_t Offset, 786 uint64_t Value, 787 uint32_t Type, 788 int64_t Addend) { 789 uint8_t *LocalAddress = Section.Address + Offset; 790 switch (Type) { 791 default: 792 llvm_unreachable("Relocation type not implemented yet!"); 793 break; 794 case ELF::R_390_PC16DBL: 795 case ELF::R_390_PLT16DBL: { 796 int64_t Delta = (Value + Addend) - (Section.LoadAddress + Offset); 797 assert(int16_t(Delta / 2) * 2 == Delta && "R_390_PC16DBL overflow"); 798 writeInt16BE(LocalAddress, Delta / 2); 799 break; 800 } 801 case ELF::R_390_PC32DBL: 802 case ELF::R_390_PLT32DBL: { 803 int64_t Delta = (Value + Addend) - (Section.LoadAddress + Offset); 804 assert(int32_t(Delta / 2) * 2 == Delta && "R_390_PC32DBL overflow"); 805 writeInt32BE(LocalAddress, Delta / 2); 806 break; 807 } 808 case ELF::R_390_PC32: { 809 int64_t Delta = (Value + Addend) - (Section.LoadAddress + Offset); 810 assert(int32_t(Delta) == Delta && "R_390_PC32 overflow"); 811 writeInt32BE(LocalAddress, Delta); 812 break; 813 } 814 case ELF::R_390_64: 815 writeInt64BE(LocalAddress, Value + Addend); 816 break; 817 } 818 } 819 820 // The target location for the relocation is described by RE.SectionID and 821 // RE.Offset. RE.SectionID can be used to find the SectionEntry. Each 822 // SectionEntry has three members describing its location. 823 // SectionEntry::Address is the address at which the section has been loaded 824 // into memory in the current (host) process. SectionEntry::LoadAddress is the 825 // address that the section will have in the target process. 826 // SectionEntry::ObjAddress is the address of the bits for this section in the 827 // original emitted object image (also in the current address space). 828 // 829 // Relocations will be applied as if the section were loaded at 830 // SectionEntry::LoadAddress, but they will be applied at an address based 831 // on SectionEntry::Address. SectionEntry::ObjAddress will be used to refer to 832 // Target memory contents if they are required for value calculations. 833 // 834 // The Value parameter here is the load address of the symbol for the 835 // relocation to be applied. For relocations which refer to symbols in the 836 // current object Value will be the LoadAddress of the section in which 837 // the symbol resides (RE.Addend provides additional information about the 838 // symbol location). For external symbols, Value will be the address of the 839 // symbol in the target address space. 840 void RuntimeDyldELF::resolveRelocation(const RelocationEntry &RE, 841 uint64_t Value) { 842 const SectionEntry &Section = Sections[RE.SectionID]; 843 return resolveRelocation(Section, RE.Offset, Value, RE.RelType, RE.Addend, 844 RE.SymOffset); 845 } 846 847 void RuntimeDyldELF::resolveRelocation(const SectionEntry &Section, 848 uint64_t Offset, 849 uint64_t Value, 850 uint32_t Type, 851 int64_t Addend, 852 uint64_t SymOffset) { 853 switch (Arch) { 854 case Triple::x86_64: 855 resolveX86_64Relocation(Section, Offset, Value, Type, Addend, SymOffset); 856 break; 857 case Triple::x86: 858 resolveX86Relocation(Section, Offset, 859 (uint32_t)(Value & 0xffffffffL), Type, 860 (uint32_t)(Addend & 0xffffffffL)); 861 break; 862 case Triple::aarch64: 863 resolveAArch64Relocation(Section, Offset, Value, Type, Addend); 864 break; 865 case Triple::arm: // Fall through. 866 case Triple::thumb: 867 resolveARMRelocation(Section, Offset, 868 (uint32_t)(Value & 0xffffffffL), Type, 869 (uint32_t)(Addend & 0xffffffffL)); 870 break; 871 case Triple::mips: // Fall through. 872 case Triple::mipsel: 873 resolveMIPSRelocation(Section, Offset, 874 (uint32_t)(Value & 0xffffffffL), Type, 875 (uint32_t)(Addend & 0xffffffffL)); 876 break; 877 case Triple::ppc64: // Fall through. 878 case Triple::ppc64le: 879 resolvePPC64Relocation(Section, Offset, Value, Type, Addend); 880 break; 881 case Triple::systemz: 882 resolveSystemZRelocation(Section, Offset, Value, Type, Addend); 883 break; 884 default: llvm_unreachable("Unsupported CPU type!"); 885 } 886 } 887 888 void RuntimeDyldELF::processRelocationRef(unsigned SectionID, 889 RelocationRef RelI, 890 ObjectImage &Obj, 891 ObjSectionToIDMap &ObjSectionToID, 892 const SymbolTableMap &Symbols, 893 StubMap &Stubs) { 894 uint64_t RelType; 895 Check(RelI.getType(RelType)); 896 int64_t Addend; 897 Check(getELFRelocationAddend(RelI, Addend)); 898 symbol_iterator Symbol = RelI.getSymbol(); 899 900 // Obtain the symbol name which is referenced in the relocation 901 StringRef TargetName; 902 if (Symbol != Obj.end_symbols()) 903 Symbol->getName(TargetName); 904 DEBUG(dbgs() << "\t\tRelType: " << RelType 905 << " Addend: " << Addend 906 << " TargetName: " << TargetName 907 << "\n"); 908 RelocationValueRef Value; 909 // First search for the symbol in the local symbol table 910 SymbolTableMap::const_iterator lsi = Symbols.end(); 911 SymbolRef::Type SymType = SymbolRef::ST_Unknown; 912 if (Symbol != Obj.end_symbols()) { 913 lsi = Symbols.find(TargetName.data()); 914 Symbol->getType(SymType); 915 } 916 if (lsi != Symbols.end()) { 917 Value.SectionID = lsi->second.first; 918 Value.Offset = lsi->second.second; 919 Value.Addend = lsi->second.second + Addend; 920 } else { 921 // Search for the symbol in the global symbol table 922 SymbolTableMap::const_iterator gsi = GlobalSymbolTable.end(); 923 if (Symbol != Obj.end_symbols()) 924 gsi = GlobalSymbolTable.find(TargetName.data()); 925 if (gsi != GlobalSymbolTable.end()) { 926 Value.SectionID = gsi->second.first; 927 Value.Offset = gsi->second.second; 928 Value.Addend = gsi->second.second + Addend; 929 } else { 930 switch (SymType) { 931 case SymbolRef::ST_Debug: { 932 // TODO: Now ELF SymbolRef::ST_Debug = STT_SECTION, it's not obviously 933 // and can be changed by another developers. Maybe best way is add 934 // a new symbol type ST_Section to SymbolRef and use it. 935 section_iterator si(Obj.end_sections()); 936 Symbol->getSection(si); 937 if (si == Obj.end_sections()) 938 llvm_unreachable("Symbol section not found, bad object file format!"); 939 DEBUG(dbgs() << "\t\tThis is section symbol\n"); 940 // Default to 'true' in case isText fails (though it never does). 941 bool isCode = true; 942 si->isText(isCode); 943 Value.SectionID = findOrEmitSection(Obj, 944 (*si), 945 isCode, 946 ObjSectionToID); 947 Value.Addend = Addend; 948 break; 949 } 950 case SymbolRef::ST_Data: 951 case SymbolRef::ST_Unknown: { 952 Value.SymbolName = TargetName.data(); 953 Value.Addend = Addend; 954 955 // Absolute relocations will have a zero symbol ID (STN_UNDEF), which 956 // will manifest here as a NULL symbol name. 957 // We can set this as a valid (but empty) symbol name, and rely 958 // on addRelocationForSymbol to handle this. 959 if (!Value.SymbolName) 960 Value.SymbolName = ""; 961 break; 962 } 963 default: 964 llvm_unreachable("Unresolved symbol type!"); 965 break; 966 } 967 } 968 } 969 uint64_t Offset; 970 Check(RelI.getOffset(Offset)); 971 972 DEBUG(dbgs() << "\t\tSectionID: " << SectionID 973 << " Offset: " << Offset 974 << "\n"); 975 if (Arch == Triple::aarch64 && 976 (RelType == ELF::R_AARCH64_CALL26 || 977 RelType == ELF::R_AARCH64_JUMP26)) { 978 // This is an AArch64 branch relocation, need to use a stub function. 979 DEBUG(dbgs() << "\t\tThis is an AArch64 branch relocation."); 980 SectionEntry &Section = Sections[SectionID]; 981 982 // Look for an existing stub. 983 StubMap::const_iterator i = Stubs.find(Value); 984 if (i != Stubs.end()) { 985 resolveRelocation(Section, Offset, 986 (uint64_t)Section.Address + i->second, RelType, 0); 987 DEBUG(dbgs() << " Stub function found\n"); 988 } else { 989 // Create a new stub function. 990 DEBUG(dbgs() << " Create a new stub function\n"); 991 Stubs[Value] = Section.StubOffset; 992 uint8_t *StubTargetAddr = createStubFunction(Section.Address + 993 Section.StubOffset); 994 995 RelocationEntry REmovz_g3(SectionID, 996 StubTargetAddr - Section.Address, 997 ELF::R_AARCH64_MOVW_UABS_G3, Value.Addend); 998 RelocationEntry REmovk_g2(SectionID, 999 StubTargetAddr - Section.Address + 4, 1000 ELF::R_AARCH64_MOVW_UABS_G2_NC, Value.Addend); 1001 RelocationEntry REmovk_g1(SectionID, 1002 StubTargetAddr - Section.Address + 8, 1003 ELF::R_AARCH64_MOVW_UABS_G1_NC, Value.Addend); 1004 RelocationEntry REmovk_g0(SectionID, 1005 StubTargetAddr - Section.Address + 12, 1006 ELF::R_AARCH64_MOVW_UABS_G0_NC, Value.Addend); 1007 1008 if (Value.SymbolName) { 1009 addRelocationForSymbol(REmovz_g3, Value.SymbolName); 1010 addRelocationForSymbol(REmovk_g2, Value.SymbolName); 1011 addRelocationForSymbol(REmovk_g1, Value.SymbolName); 1012 addRelocationForSymbol(REmovk_g0, Value.SymbolName); 1013 } else { 1014 addRelocationForSection(REmovz_g3, Value.SectionID); 1015 addRelocationForSection(REmovk_g2, Value.SectionID); 1016 addRelocationForSection(REmovk_g1, Value.SectionID); 1017 addRelocationForSection(REmovk_g0, Value.SectionID); 1018 } 1019 resolveRelocation(Section, Offset, 1020 (uint64_t)Section.Address + Section.StubOffset, 1021 RelType, 0); 1022 Section.StubOffset += getMaxStubSize(); 1023 } 1024 } else if (Arch == Triple::arm && 1025 (RelType == ELF::R_ARM_PC24 || 1026 RelType == ELF::R_ARM_CALL || 1027 RelType == ELF::R_ARM_JUMP24)) { 1028 // This is an ARM branch relocation, need to use a stub function. 1029 DEBUG(dbgs() << "\t\tThis is an ARM branch relocation."); 1030 SectionEntry &Section = Sections[SectionID]; 1031 1032 // Look for an existing stub. 1033 StubMap::const_iterator i = Stubs.find(Value); 1034 if (i != Stubs.end()) { 1035 resolveRelocation(Section, Offset, 1036 (uint64_t)Section.Address + i->second, RelType, 0); 1037 DEBUG(dbgs() << " Stub function found\n"); 1038 } else { 1039 // Create a new stub function. 1040 DEBUG(dbgs() << " Create a new stub function\n"); 1041 Stubs[Value] = Section.StubOffset; 1042 uint8_t *StubTargetAddr = createStubFunction(Section.Address + 1043 Section.StubOffset); 1044 RelocationEntry RE(SectionID, StubTargetAddr - Section.Address, 1045 ELF::R_ARM_PRIVATE_0, Value.Addend); 1046 if (Value.SymbolName) 1047 addRelocationForSymbol(RE, Value.SymbolName); 1048 else 1049 addRelocationForSection(RE, Value.SectionID); 1050 1051 resolveRelocation(Section, Offset, 1052 (uint64_t)Section.Address + Section.StubOffset, 1053 RelType, 0); 1054 Section.StubOffset += getMaxStubSize(); 1055 } 1056 } else if ((Arch == Triple::mipsel || Arch == Triple::mips) && 1057 RelType == ELF::R_MIPS_26) { 1058 // This is an Mips branch relocation, need to use a stub function. 1059 DEBUG(dbgs() << "\t\tThis is a Mips branch relocation."); 1060 SectionEntry &Section = Sections[SectionID]; 1061 uint8_t *Target = Section.Address + Offset; 1062 uint32_t *TargetAddress = (uint32_t *)Target; 1063 1064 // Extract the addend from the instruction. 1065 uint32_t Addend = ((*TargetAddress) & 0x03ffffff) << 2; 1066 1067 Value.Addend += Addend; 1068 1069 // Look up for existing stub. 1070 StubMap::const_iterator i = Stubs.find(Value); 1071 if (i != Stubs.end()) { 1072 RelocationEntry RE(SectionID, Offset, RelType, i->second); 1073 addRelocationForSection(RE, SectionID); 1074 DEBUG(dbgs() << " Stub function found\n"); 1075 } else { 1076 // Create a new stub function. 1077 DEBUG(dbgs() << " Create a new stub function\n"); 1078 Stubs[Value] = Section.StubOffset; 1079 uint8_t *StubTargetAddr = createStubFunction(Section.Address + 1080 Section.StubOffset); 1081 1082 // Creating Hi and Lo relocations for the filled stub instructions. 1083 RelocationEntry REHi(SectionID, 1084 StubTargetAddr - Section.Address, 1085 ELF::R_MIPS_UNUSED1, Value.Addend); 1086 RelocationEntry RELo(SectionID, 1087 StubTargetAddr - Section.Address + 4, 1088 ELF::R_MIPS_UNUSED2, Value.Addend); 1089 1090 if (Value.SymbolName) { 1091 addRelocationForSymbol(REHi, Value.SymbolName); 1092 addRelocationForSymbol(RELo, Value.SymbolName); 1093 } else { 1094 addRelocationForSection(REHi, Value.SectionID); 1095 addRelocationForSection(RELo, Value.SectionID); 1096 } 1097 1098 RelocationEntry RE(SectionID, Offset, RelType, Section.StubOffset); 1099 addRelocationForSection(RE, SectionID); 1100 Section.StubOffset += getMaxStubSize(); 1101 } 1102 } else if (Arch == Triple::ppc64 || Arch == Triple::ppc64le) { 1103 if (RelType == ELF::R_PPC64_REL24) { 1104 // A PPC branch relocation will need a stub function if the target is 1105 // an external symbol (Symbol::ST_Unknown) or if the target address 1106 // is not within the signed 24-bits branch address. 1107 SectionEntry &Section = Sections[SectionID]; 1108 uint8_t *Target = Section.Address + Offset; 1109 bool RangeOverflow = false; 1110 if (SymType != SymbolRef::ST_Unknown) { 1111 // A function call may points to the .opd entry, so the final symbol value 1112 // in calculated based in the relocation values in .opd section. 1113 findOPDEntrySection(Obj, ObjSectionToID, Value); 1114 uint8_t *RelocTarget = Sections[Value.SectionID].Address + Value.Addend; 1115 int32_t delta = static_cast<int32_t>(Target - RelocTarget); 1116 // If it is within 24-bits branch range, just set the branch target 1117 if (SignExtend32<24>(delta) == delta) { 1118 RelocationEntry RE(SectionID, Offset, RelType, Value.Addend); 1119 if (Value.SymbolName) 1120 addRelocationForSymbol(RE, Value.SymbolName); 1121 else 1122 addRelocationForSection(RE, Value.SectionID); 1123 } else { 1124 RangeOverflow = true; 1125 } 1126 } 1127 if (SymType == SymbolRef::ST_Unknown || RangeOverflow == true) { 1128 // It is an external symbol (SymbolRef::ST_Unknown) or within a range 1129 // larger than 24-bits. 1130 StubMap::const_iterator i = Stubs.find(Value); 1131 if (i != Stubs.end()) { 1132 // Symbol function stub already created, just relocate to it 1133 resolveRelocation(Section, Offset, 1134 (uint64_t)Section.Address + i->second, RelType, 0); 1135 DEBUG(dbgs() << " Stub function found\n"); 1136 } else { 1137 // Create a new stub function. 1138 DEBUG(dbgs() << " Create a new stub function\n"); 1139 Stubs[Value] = Section.StubOffset; 1140 uint8_t *StubTargetAddr = createStubFunction(Section.Address + 1141 Section.StubOffset); 1142 RelocationEntry RE(SectionID, StubTargetAddr - Section.Address, 1143 ELF::R_PPC64_ADDR64, Value.Addend); 1144 1145 // Generates the 64-bits address loads as exemplified in section 1146 // 4.5.1 in PPC64 ELF ABI. 1147 RelocationEntry REhst(SectionID, 1148 StubTargetAddr - Section.Address + 2, 1149 ELF::R_PPC64_ADDR16_HIGHEST, Value.Addend); 1150 RelocationEntry REhr(SectionID, 1151 StubTargetAddr - Section.Address + 6, 1152 ELF::R_PPC64_ADDR16_HIGHER, Value.Addend); 1153 RelocationEntry REh(SectionID, 1154 StubTargetAddr - Section.Address + 14, 1155 ELF::R_PPC64_ADDR16_HI, Value.Addend); 1156 RelocationEntry REl(SectionID, 1157 StubTargetAddr - Section.Address + 18, 1158 ELF::R_PPC64_ADDR16_LO, Value.Addend); 1159 1160 if (Value.SymbolName) { 1161 addRelocationForSymbol(REhst, Value.SymbolName); 1162 addRelocationForSymbol(REhr, Value.SymbolName); 1163 addRelocationForSymbol(REh, Value.SymbolName); 1164 addRelocationForSymbol(REl, Value.SymbolName); 1165 } else { 1166 addRelocationForSection(REhst, Value.SectionID); 1167 addRelocationForSection(REhr, Value.SectionID); 1168 addRelocationForSection(REh, Value.SectionID); 1169 addRelocationForSection(REl, Value.SectionID); 1170 } 1171 1172 resolveRelocation(Section, Offset, 1173 (uint64_t)Section.Address + Section.StubOffset, 1174 RelType, 0); 1175 if (SymType == SymbolRef::ST_Unknown) 1176 // Restore the TOC for external calls 1177 writeInt32BE(Target+4, 0xE8410028); // ld r2,40(r1) 1178 Section.StubOffset += getMaxStubSize(); 1179 } 1180 } 1181 } else { 1182 RelocationEntry RE(SectionID, Offset, RelType, Value.Addend); 1183 // Extra check to avoid relocation againt empty symbols (usually 1184 // the R_PPC64_TOC). 1185 if (SymType != SymbolRef::ST_Unknown && TargetName.empty()) 1186 Value.SymbolName = NULL; 1187 1188 if (Value.SymbolName) 1189 addRelocationForSymbol(RE, Value.SymbolName); 1190 else 1191 addRelocationForSection(RE, Value.SectionID); 1192 } 1193 } else if (Arch == Triple::systemz && 1194 (RelType == ELF::R_390_PLT32DBL || 1195 RelType == ELF::R_390_GOTENT)) { 1196 // Create function stubs for both PLT and GOT references, regardless of 1197 // whether the GOT reference is to data or code. The stub contains the 1198 // full address of the symbol, as needed by GOT references, and the 1199 // executable part only adds an overhead of 8 bytes. 1200 // 1201 // We could try to conserve space by allocating the code and data 1202 // parts of the stub separately. However, as things stand, we allocate 1203 // a stub for every relocation, so using a GOT in JIT code should be 1204 // no less space efficient than using an explicit constant pool. 1205 DEBUG(dbgs() << "\t\tThis is a SystemZ indirect relocation."); 1206 SectionEntry &Section = Sections[SectionID]; 1207 1208 // Look for an existing stub. 1209 StubMap::const_iterator i = Stubs.find(Value); 1210 uintptr_t StubAddress; 1211 if (i != Stubs.end()) { 1212 StubAddress = uintptr_t(Section.Address) + i->second; 1213 DEBUG(dbgs() << " Stub function found\n"); 1214 } else { 1215 // Create a new stub function. 1216 DEBUG(dbgs() << " Create a new stub function\n"); 1217 1218 uintptr_t BaseAddress = uintptr_t(Section.Address); 1219 uintptr_t StubAlignment = getStubAlignment(); 1220 StubAddress = (BaseAddress + Section.StubOffset + 1221 StubAlignment - 1) & -StubAlignment; 1222 unsigned StubOffset = StubAddress - BaseAddress; 1223 1224 Stubs[Value] = StubOffset; 1225 createStubFunction((uint8_t *)StubAddress); 1226 RelocationEntry RE(SectionID, StubOffset + 8, 1227 ELF::R_390_64, Value.Addend - Addend); 1228 if (Value.SymbolName) 1229 addRelocationForSymbol(RE, Value.SymbolName); 1230 else 1231 addRelocationForSection(RE, Value.SectionID); 1232 Section.StubOffset = StubOffset + getMaxStubSize(); 1233 } 1234 1235 if (RelType == ELF::R_390_GOTENT) 1236 resolveRelocation(Section, Offset, StubAddress + 8, 1237 ELF::R_390_PC32DBL, Addend); 1238 else 1239 resolveRelocation(Section, Offset, StubAddress, RelType, Addend); 1240 } else if (Arch == Triple::x86_64 && RelType == ELF::R_X86_64_PLT32) { 1241 // The way the PLT relocations normally work is that the linker allocates the 1242 // PLT and this relocation makes a PC-relative call into the PLT. The PLT 1243 // entry will then jump to an address provided by the GOT. On first call, the 1244 // GOT address will point back into PLT code that resolves the symbol. After 1245 // the first call, the GOT entry points to the actual function. 1246 // 1247 // For local functions we're ignoring all of that here and just replacing 1248 // the PLT32 relocation type with PC32, which will translate the relocation 1249 // into a PC-relative call directly to the function. For external symbols we 1250 // can't be sure the function will be within 2^32 bytes of the call site, so 1251 // we need to create a stub, which calls into the GOT. This case is 1252 // equivalent to the usual PLT implementation except that we use the stub 1253 // mechanism in RuntimeDyld (which puts stubs at the end of the section) 1254 // rather than allocating a PLT section. 1255 if (Value.SymbolName) { 1256 // This is a call to an external function. 1257 // Look for an existing stub. 1258 SectionEntry &Section = Sections[SectionID]; 1259 StubMap::const_iterator i = Stubs.find(Value); 1260 uintptr_t StubAddress; 1261 if (i != Stubs.end()) { 1262 StubAddress = uintptr_t(Section.Address) + i->second; 1263 DEBUG(dbgs() << " Stub function found\n"); 1264 } else { 1265 // Create a new stub function (equivalent to a PLT entry). 1266 DEBUG(dbgs() << " Create a new stub function\n"); 1267 1268 uintptr_t BaseAddress = uintptr_t(Section.Address); 1269 uintptr_t StubAlignment = getStubAlignment(); 1270 StubAddress = (BaseAddress + Section.StubOffset + 1271 StubAlignment - 1) & -StubAlignment; 1272 unsigned StubOffset = StubAddress - BaseAddress; 1273 Stubs[Value] = StubOffset; 1274 createStubFunction((uint8_t *)StubAddress); 1275 1276 // Create a GOT entry for the external function. 1277 GOTEntries.push_back(Value); 1278 1279 // Make our stub function a relative call to the GOT entry. 1280 RelocationEntry RE(SectionID, StubOffset + 2, 1281 ELF::R_X86_64_GOTPCREL, -4); 1282 addRelocationForSymbol(RE, Value.SymbolName); 1283 1284 // Bump our stub offset counter 1285 Section.StubOffset = StubOffset + getMaxStubSize(); 1286 } 1287 1288 // Make the target call a call into the stub table. 1289 resolveRelocation(Section, Offset, StubAddress, 1290 ELF::R_X86_64_PC32, Addend); 1291 } else { 1292 RelocationEntry RE(SectionID, Offset, ELF::R_X86_64_PC32, Value.Addend, 1293 Value.Offset); 1294 addRelocationForSection(RE, Value.SectionID); 1295 } 1296 } else { 1297 if (Arch == Triple::x86_64 && RelType == ELF::R_X86_64_GOTPCREL) { 1298 GOTEntries.push_back(Value); 1299 } 1300 RelocationEntry RE(SectionID, Offset, RelType, Value.Addend, Value.Offset); 1301 if (Value.SymbolName) 1302 addRelocationForSymbol(RE, Value.SymbolName); 1303 else 1304 addRelocationForSection(RE, Value.SectionID); 1305 } 1306 } 1307 1308 void RuntimeDyldELF::updateGOTEntries(StringRef Name, uint64_t Addr) { 1309 1310 SmallVectorImpl<std::pair<SID, GOTRelocations> >::iterator it; 1311 SmallVectorImpl<std::pair<SID, GOTRelocations> >::iterator end = GOTs.end(); 1312 1313 for (it = GOTs.begin(); it != end; ++it) { 1314 GOTRelocations &GOTEntries = it->second; 1315 for (int i = 0, e = GOTEntries.size(); i != e; ++i) { 1316 if (GOTEntries[i].SymbolName != 0 && GOTEntries[i].SymbolName == Name) { 1317 GOTEntries[i].Offset = Addr; 1318 } 1319 } 1320 } 1321 } 1322 1323 size_t RuntimeDyldELF::getGOTEntrySize() { 1324 // We don't use the GOT in all of these cases, but it's essentially free 1325 // to put them all here. 1326 size_t Result = 0; 1327 switch (Arch) { 1328 case Triple::x86_64: 1329 case Triple::aarch64: 1330 case Triple::ppc64: 1331 case Triple::ppc64le: 1332 case Triple::systemz: 1333 Result = sizeof(uint64_t); 1334 break; 1335 case Triple::x86: 1336 case Triple::arm: 1337 case Triple::thumb: 1338 case Triple::mips: 1339 case Triple::mipsel: 1340 Result = sizeof(uint32_t); 1341 break; 1342 default: llvm_unreachable("Unsupported CPU type!"); 1343 } 1344 return Result; 1345 } 1346 1347 uint64_t RuntimeDyldELF::findGOTEntry(uint64_t LoadAddress, 1348 uint64_t Offset) { 1349 1350 const size_t GOTEntrySize = getGOTEntrySize(); 1351 1352 SmallVectorImpl<std::pair<SID, GOTRelocations> >::const_iterator it; 1353 SmallVectorImpl<std::pair<SID, GOTRelocations> >::const_iterator end = GOTs.end(); 1354 1355 int GOTIndex = -1; 1356 for (it = GOTs.begin(); it != end; ++it) { 1357 SID GOTSectionID = it->first; 1358 const GOTRelocations &GOTEntries = it->second; 1359 1360 // Find the matching entry in our vector. 1361 uint64_t SymbolOffset = 0; 1362 for (int i = 0, e = GOTEntries.size(); i != e; ++i) { 1363 if (GOTEntries[i].SymbolName == 0) { 1364 if (getSectionLoadAddress(GOTEntries[i].SectionID) == LoadAddress && 1365 GOTEntries[i].Offset == Offset) { 1366 GOTIndex = i; 1367 SymbolOffset = GOTEntries[i].Offset; 1368 break; 1369 } 1370 } else { 1371 // GOT entries for external symbols use the addend as the address when 1372 // the external symbol has been resolved. 1373 if (GOTEntries[i].Offset == LoadAddress) { 1374 GOTIndex = i; 1375 // Don't use the Addend here. The relocation handler will use it. 1376 break; 1377 } 1378 } 1379 } 1380 1381 if (GOTIndex != -1) { 1382 if (GOTEntrySize == sizeof(uint64_t)) { 1383 uint64_t *LocalGOTAddr = (uint64_t*)getSectionAddress(GOTSectionID); 1384 // Fill in this entry with the address of the symbol being referenced. 1385 LocalGOTAddr[GOTIndex] = LoadAddress + SymbolOffset; 1386 } else { 1387 uint32_t *LocalGOTAddr = (uint32_t*)getSectionAddress(GOTSectionID); 1388 // Fill in this entry with the address of the symbol being referenced. 1389 LocalGOTAddr[GOTIndex] = (uint32_t)(LoadAddress + SymbolOffset); 1390 } 1391 1392 // Calculate the load address of this entry 1393 return getSectionLoadAddress(GOTSectionID) + (GOTIndex * GOTEntrySize); 1394 } 1395 } 1396 1397 assert(GOTIndex != -1 && "Unable to find requested GOT entry."); 1398 return 0; 1399 } 1400 1401 void RuntimeDyldELF::finalizeLoad(ObjSectionToIDMap &SectionMap) { 1402 // If necessary, allocate the global offset table 1403 if (MemMgr) { 1404 // Allocate the GOT if necessary 1405 size_t numGOTEntries = GOTEntries.size(); 1406 if (numGOTEntries != 0) { 1407 // Allocate memory for the section 1408 unsigned SectionID = Sections.size(); 1409 size_t TotalSize = numGOTEntries * getGOTEntrySize(); 1410 uint8_t *Addr = MemMgr->allocateDataSection(TotalSize, getGOTEntrySize(), 1411 SectionID, ".got", false); 1412 if (!Addr) 1413 report_fatal_error("Unable to allocate memory for GOT!"); 1414 1415 GOTs.push_back(std::make_pair(SectionID, GOTEntries)); 1416 Sections.push_back(SectionEntry(".got", Addr, TotalSize, 0)); 1417 // For now, initialize all GOT entries to zero. We'll fill them in as 1418 // needed when GOT-based relocations are applied. 1419 memset(Addr, 0, TotalSize); 1420 } 1421 } 1422 else { 1423 report_fatal_error("Unable to allocate memory for GOT!"); 1424 } 1425 1426 // Look for and record the EH frame section. 1427 ObjSectionToIDMap::iterator i, e; 1428 for (i = SectionMap.begin(), e = SectionMap.end(); i != e; ++i) { 1429 const SectionRef &Section = i->first; 1430 StringRef Name; 1431 Section.getName(Name); 1432 if (Name == ".eh_frame") { 1433 UnregisteredEHFrameSections.push_back(i->second); 1434 break; 1435 } 1436 } 1437 } 1438 1439 bool RuntimeDyldELF::isCompatibleFormat(const ObjectBuffer *Buffer) const { 1440 if (Buffer->getBufferSize() < strlen(ELF::ElfMagic)) 1441 return false; 1442 return (memcmp(Buffer->getBufferStart(), ELF::ElfMagic, strlen(ELF::ElfMagic))) == 0; 1443 } 1444 1445 bool RuntimeDyldELF::isCompatibleFile(const object::ObjectFile *Obj) const { 1446 return Obj->isELF(); 1447 } 1448 1449 } // namespace llvm 1450