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Jim Grosbach06594e12012-01-16 23:50:58 +00001//===-- RuntimeDyldELF.cpp - Run-time dynamic linker for MC-JIT -*- C++ -*-===//
Eli Bendersky4c647582012-01-16 08:56:09 +00002//
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
Andrew Kayloradc70562012-10-02 21:18:39 +000014#include "RuntimeDyldELF.h"
Keno Fischer02628de2015-04-14 02:10:35 +000015#include "RuntimeDyldCheckerImpl.h"
Eli Bendersky4c647582012-01-16 08:56:09 +000016#include "llvm/ADT/IntervalMap.h"
Chandler Carruthed0881b2012-12-03 16:50:05 +000017#include "llvm/ADT/STLExtras.h"
18#include "llvm/ADT/StringRef.h"
Eli Bendersky4c647582012-01-16 08:56:09 +000019#include "llvm/ADT/Triple.h"
Lang Hamesb5c7b1f2014-11-26 16:54:40 +000020#include "llvm/MC/MCStreamer.h"
Michael J. Spencer126973b2013-08-08 22:27:13 +000021#include "llvm/Object/ELFObjectFile.h"
Chandler Carruthed0881b2012-12-03 16:50:05 +000022#include "llvm/Object/ObjectFile.h"
23#include "llvm/Support/ELF.h"
Alexey Samsonova8d2f812014-08-27 23:06:08 +000024#include "llvm/Support/Endian.h"
Lang Hames173c69f2014-01-08 04:09:09 +000025#include "llvm/Support/MemoryBuffer.h"
Lang Hamesb5c7b1f2014-11-26 16:54:40 +000026#include "llvm/Support/TargetRegistry.h"
Lang Hames173c69f2014-01-08 04:09:09 +000027
Eli Bendersky4c647582012-01-16 08:56:09 +000028using namespace llvm;
29using namespace llvm::object;
30
Chandler Carruthf58e3762014-04-22 03:04:17 +000031#define DEBUG_TYPE "dyld"
32
Rafael Espindoladb4ed0b2014-06-13 02:24:39 +000033static inline std::error_code check(std::error_code Err) {
Adhemerval Zanella5fc11b32012-10-25 13:13:48 +000034 if (Err) {
35 report_fatal_error(Err.message());
36 }
37 return Err;
38}
39
Lang Hamesb5c7b1f2014-11-26 16:54:40 +000040namespace {
41
Juergen Ributzka7608dc02014-03-21 20:28:42 +000042template <class ELFT> class DyldELFObject : public ELFObjectFile<ELFT> {
Rafael Espindola035b4162013-04-17 21:20:55 +000043 LLVM_ELF_IMPORT_TYPES_ELFT(ELFT)
Preston Gurdcc31af92012-04-16 22:12:58 +000044
Michael J. Spencer1a791612013-01-15 07:44:25 +000045 typedef Elf_Shdr_Impl<ELFT> Elf_Shdr;
46 typedef Elf_Sym_Impl<ELFT> Elf_Sym;
Juergen Ributzka7608dc02014-03-21 20:28:42 +000047 typedef Elf_Rel_Impl<ELFT, false> Elf_Rel;
48 typedef Elf_Rel_Impl<ELFT, true> Elf_Rela;
Preston Gurdcc31af92012-04-16 22:12:58 +000049
Michael J. Spencer1a791612013-01-15 07:44:25 +000050 typedef Elf_Ehdr_Impl<ELFT> Elf_Ehdr;
Preston Gurdcc31af92012-04-16 22:12:58 +000051
Juergen Ributzka7608dc02014-03-21 20:28:42 +000052 typedef typename ELFDataTypeTypedefHelper<ELFT>::value_type addr_type;
Preston Gurdcc31af92012-04-16 22:12:58 +000053
Preston Gurdcc31af92012-04-16 22:12:58 +000054public:
Rafael Espindola48af1c22014-08-19 18:44:46 +000055 DyldELFObject(MemoryBufferRef Wrapper, std::error_code &ec);
Preston Gurdcc31af92012-04-16 22:12:58 +000056
57 void updateSectionAddress(const SectionRef &Sec, uint64_t Addr);
Lang Hamesb5c7b1f2014-11-26 16:54:40 +000058
59 void updateSymbolAddress(const SymbolRef &SymRef, uint64_t Addr);
Preston Gurdcc31af92012-04-16 22:12:58 +000060
Andrew Kaylor5c010902012-07-27 17:52:42 +000061 // Methods for type inquiry through isa, cast and dyn_cast
Preston Gurdcc31af92012-04-16 22:12:58 +000062 static inline bool classof(const Binary *v) {
Juergen Ributzka7608dc02014-03-21 20:28:42 +000063 return (isa<ELFObjectFile<ELFT>>(v) &&
64 classof(cast<ELFObjectFile<ELFT>>(v)));
Preston Gurdcc31af92012-04-16 22:12:58 +000065 }
Juergen Ributzka7608dc02014-03-21 20:28:42 +000066 static inline bool classof(const ELFObjectFile<ELFT> *v) {
Preston Gurdcc31af92012-04-16 22:12:58 +000067 return v->isDyldType();
68 }
Lang Hamesb5c7b1f2014-11-26 16:54:40 +000069
Preston Gurdcc31af92012-04-16 22:12:58 +000070};
71
Preston Gurdcc31af92012-04-16 22:12:58 +000072
Preston Gurdcc31af92012-04-16 22:12:58 +000073
Andrew Kayloradc70562012-10-02 21:18:39 +000074// The MemoryBuffer passed into this constructor is just a wrapper around the
75// actual memory. Ultimately, the Binary parent class will take ownership of
76// this MemoryBuffer object but not the underlying memory.
Juergen Ributzka7608dc02014-03-21 20:28:42 +000077template <class ELFT>
Rafael Espindola48af1c22014-08-19 18:44:46 +000078DyldELFObject<ELFT>::DyldELFObject(MemoryBufferRef Wrapper, std::error_code &EC)
79 : ELFObjectFile<ELFT>(Wrapper, EC) {
Preston Gurdcc31af92012-04-16 22:12:58 +000080 this->isDyldELFObject = true;
81}
82
Juergen Ributzka7608dc02014-03-21 20:28:42 +000083template <class ELFT>
Michael J. Spencer1a791612013-01-15 07:44:25 +000084void DyldELFObject<ELFT>::updateSectionAddress(const SectionRef &Sec,
85 uint64_t Addr) {
Preston Gurdcc31af92012-04-16 22:12:58 +000086 DataRefImpl ShdrRef = Sec.getRawDataRefImpl();
Juergen Ributzka7608dc02014-03-21 20:28:42 +000087 Elf_Shdr *shdr =
88 const_cast<Elf_Shdr *>(reinterpret_cast<const Elf_Shdr *>(ShdrRef.p));
Preston Gurdcc31af92012-04-16 22:12:58 +000089
90 // This assumes the address passed in matches the target address bitness
91 // The template-based type cast handles everything else.
92 shdr->sh_addr = static_cast<addr_type>(Addr);
93}
94
Juergen Ributzka7608dc02014-03-21 20:28:42 +000095template <class ELFT>
Michael J. Spencer1a791612013-01-15 07:44:25 +000096void DyldELFObject<ELFT>::updateSymbolAddress(const SymbolRef &SymRef,
97 uint64_t Addr) {
Preston Gurdcc31af92012-04-16 22:12:58 +000098
Juergen Ributzka7608dc02014-03-21 20:28:42 +000099 Elf_Sym *sym = const_cast<Elf_Sym *>(
100 ELFObjectFile<ELFT>::getSymbol(SymRef.getRawDataRefImpl()));
Preston Gurdcc31af92012-04-16 22:12:58 +0000101
102 // This assumes the address passed in matches the target address bitness
103 // The template-based type cast handles everything else.
104 sym->st_value = static_cast<addr_type>(Addr);
105}
106
Lang Hamesb5c7b1f2014-11-26 16:54:40 +0000107class LoadedELFObjectInfo : public RuntimeDyld::LoadedObjectInfo {
108public:
109 LoadedELFObjectInfo(RuntimeDyldImpl &RTDyld, unsigned BeginIdx,
110 unsigned EndIdx)
111 : RuntimeDyld::LoadedObjectInfo(RTDyld, BeginIdx, EndIdx) {}
112
113 OwningBinary<ObjectFile>
114 getObjectForDebug(const ObjectFile &Obj) const override;
Keno Fischerc780e8e2015-05-21 21:24:32 +0000115
116 RuntimeDyld::LoadedObjectInfo *clone() const { return new LoadedELFObjectInfo(*this); }
Lang Hamesb5c7b1f2014-11-26 16:54:40 +0000117};
118
119template <typename ELFT>
120std::unique_ptr<DyldELFObject<ELFT>>
121createRTDyldELFObject(MemoryBufferRef Buffer,
122 const LoadedELFObjectInfo &L,
123 std::error_code &ec) {
124 typedef typename ELFFile<ELFT>::Elf_Shdr Elf_Shdr;
125 typedef typename ELFDataTypeTypedefHelper<ELFT>::value_type addr_type;
126
127 std::unique_ptr<DyldELFObject<ELFT>> Obj =
128 llvm::make_unique<DyldELFObject<ELFT>>(Buffer, ec);
129
130 // Iterate over all sections in the object.
131 for (const auto &Sec : Obj->sections()) {
132 StringRef SectionName;
133 Sec.getName(SectionName);
134 if (SectionName != "") {
135 DataRefImpl ShdrRef = Sec.getRawDataRefImpl();
136 Elf_Shdr *shdr = const_cast<Elf_Shdr *>(
137 reinterpret_cast<const Elf_Shdr *>(ShdrRef.p));
138
139 if (uint64_t SecLoadAddr = L.getSectionLoadAddress(SectionName)) {
140 // This assumes that the address passed in matches the target address
141 // bitness. The template-based type cast handles everything else.
142 shdr->sh_addr = static_cast<addr_type>(SecLoadAddr);
143 }
144 }
145 }
146
147 return Obj;
148}
149
150OwningBinary<ObjectFile> createELFDebugObject(const ObjectFile &Obj,
151 const LoadedELFObjectInfo &L) {
152 assert(Obj.isELF() && "Not an ELF object file.");
153
154 std::unique_ptr<MemoryBuffer> Buffer =
155 MemoryBuffer::getMemBufferCopy(Obj.getData(), Obj.getFileName());
156
157 std::error_code ec;
158
159 std::unique_ptr<ObjectFile> DebugObj;
160 if (Obj.getBytesInAddress() == 4 && Obj.isLittleEndian()) {
161 typedef ELFType<support::little, 2, false> ELF32LE;
162 DebugObj = createRTDyldELFObject<ELF32LE>(Buffer->getMemBufferRef(), L, ec);
163 } else if (Obj.getBytesInAddress() == 4 && !Obj.isLittleEndian()) {
164 typedef ELFType<support::big, 2, false> ELF32BE;
165 DebugObj = createRTDyldELFObject<ELF32BE>(Buffer->getMemBufferRef(), L, ec);
166 } else if (Obj.getBytesInAddress() == 8 && !Obj.isLittleEndian()) {
167 typedef ELFType<support::big, 2, true> ELF64BE;
168 DebugObj = createRTDyldELFObject<ELF64BE>(Buffer->getMemBufferRef(), L, ec);
169 } else if (Obj.getBytesInAddress() == 8 && Obj.isLittleEndian()) {
170 typedef ELFType<support::little, 2, true> ELF64LE;
171 DebugObj = createRTDyldELFObject<ELF64LE>(Buffer->getMemBufferRef(), L, ec);
172 } else
173 llvm_unreachable("Unexpected ELF format");
174
175 assert(!ec && "Could not construct copy ELF object file");
176
177 return OwningBinary<ObjectFile>(std::move(DebugObj), std::move(Buffer));
178}
179
180OwningBinary<ObjectFile>
181LoadedELFObjectInfo::getObjectForDebug(const ObjectFile &Obj) const {
182 return createELFDebugObject(Obj, *this);
183}
184
Preston Gurdcc31af92012-04-16 22:12:58 +0000185} // namespace
186
Eli Bendersky4c647582012-01-16 08:56:09 +0000187namespace llvm {
188
Lang Hames633fe142015-03-30 03:37:06 +0000189RuntimeDyldELF::RuntimeDyldELF(RuntimeDyld::MemoryManager &MemMgr,
190 RuntimeDyld::SymbolResolver &Resolver)
Keno Fischer02628de2015-04-14 02:10:35 +0000191 : RuntimeDyldImpl(MemMgr, Resolver), GOTSectionID(0), CurrentGOTIndex(0) {}
Lang Hamesb5c7b1f2014-11-26 16:54:40 +0000192RuntimeDyldELF::~RuntimeDyldELF() {}
193
Andrew Kaylor7bb13442013-10-11 21:25:48 +0000194void RuntimeDyldELF::registerEHFrames() {
Andrew Kaylor7bb13442013-10-11 21:25:48 +0000195 for (int i = 0, e = UnregisteredEHFrameSections.size(); i != e; ++i) {
196 SID EHFrameSID = UnregisteredEHFrameSections[i];
197 uint8_t *EHFrameAddr = Sections[EHFrameSID].Address;
198 uint64_t EHFrameLoadAddr = Sections[EHFrameSID].LoadAddress;
199 size_t EHFrameSize = Sections[EHFrameSID].Size;
Lang Hames633fe142015-03-30 03:37:06 +0000200 MemMgr.registerEHFrames(EHFrameAddr, EHFrameLoadAddr, EHFrameSize);
Andrew Kaylorc442a762013-10-16 00:14:21 +0000201 RegisteredEHFrameSections.push_back(EHFrameSID);
Rafael Espindolafa5942b2013-05-05 20:43:10 +0000202 }
Andrew Kaylor7bb13442013-10-11 21:25:48 +0000203 UnregisteredEHFrameSections.clear();
Rafael Espindolafa5942b2013-05-05 20:43:10 +0000204}
205
Andrew Kaylorc442a762013-10-16 00:14:21 +0000206void RuntimeDyldELF::deregisterEHFrames() {
Andrew Kaylorc442a762013-10-16 00:14:21 +0000207 for (int i = 0, e = RegisteredEHFrameSections.size(); i != e; ++i) {
208 SID EHFrameSID = RegisteredEHFrameSections[i];
209 uint8_t *EHFrameAddr = Sections[EHFrameSID].Address;
210 uint64_t EHFrameLoadAddr = Sections[EHFrameSID].LoadAddress;
211 size_t EHFrameSize = Sections[EHFrameSID].Size;
Lang Hames633fe142015-03-30 03:37:06 +0000212 MemMgr.deregisterEHFrames(EHFrameAddr, EHFrameLoadAddr, EHFrameSize);
Andrew Kaylorc442a762013-10-16 00:14:21 +0000213 }
214 RegisteredEHFrameSections.clear();
215}
216
Lang Hamesb5c7b1f2014-11-26 16:54:40 +0000217std::unique_ptr<RuntimeDyld::LoadedObjectInfo>
218RuntimeDyldELF::loadObject(const object::ObjectFile &O) {
219 unsigned SectionStartIdx, SectionEndIdx;
220 std::tie(SectionStartIdx, SectionEndIdx) = loadObjectImpl(O);
221 return llvm::make_unique<LoadedELFObjectInfo>(*this, SectionStartIdx,
222 SectionEndIdx);
Lang Hames173c69f2014-01-08 04:09:09 +0000223}
224
Andrew Kaylorfb05a502012-11-02 19:45:23 +0000225void RuntimeDyldELF::resolveX86_64Relocation(const SectionEntry &Section,
Juergen Ributzka7608dc02014-03-21 20:28:42 +0000226 uint64_t Offset, uint64_t Value,
227 uint32_t Type, int64_t Addend,
Andrew Kaylor4612fed2013-08-19 23:27:43 +0000228 uint64_t SymOffset) {
Danil Malyshev70d22cc2012-03-30 16:45:19 +0000229 switch (Type) {
230 default:
231 llvm_unreachable("Relocation type not implemented yet!");
Juergen Ributzka7608dc02014-03-21 20:28:42 +0000232 break;
Eli Bendersky4c647582012-01-16 08:56:09 +0000233 case ELF::R_X86_64_64: {
Alexey Samsonova8d2f812014-08-27 23:06:08 +0000234 support::ulittle64_t::ref(Section.Address + Offset) = Value + Addend;
Juergen Ributzka7608dc02014-03-21 20:28:42 +0000235 DEBUG(dbgs() << "Writing " << format("%p", (Value + Addend)) << " at "
Alexey Samsonova8d2f812014-08-27 23:06:08 +0000236 << format("%p\n", Section.Address + Offset));
Eli Bendersky4c647582012-01-16 08:56:09 +0000237 break;
238 }
239 case ELF::R_X86_64_32:
240 case ELF::R_X86_64_32S: {
Danil Malyshev70d22cc2012-03-30 16:45:19 +0000241 Value += Addend;
Andrew Kaylor8e87a752012-07-27 20:30:12 +0000242 assert((Type == ELF::R_X86_64_32 && (Value <= UINT32_MAX)) ||
Michael J. Spencerbae14ce2013-01-04 20:36:28 +0000243 (Type == ELF::R_X86_64_32S &&
Juergen Ributzka7608dc02014-03-21 20:28:42 +0000244 ((int64_t)Value <= INT32_MAX && (int64_t)Value >= INT32_MIN)));
Eli Bendersky4c647582012-01-16 08:56:09 +0000245 uint32_t TruncatedAddr = (Value & 0xFFFFFFFF);
Alexey Samsonova8d2f812014-08-27 23:06:08 +0000246 support::ulittle32_t::ref(Section.Address + Offset) = TruncatedAddr;
Juergen Ributzka7608dc02014-03-21 20:28:42 +0000247 DEBUG(dbgs() << "Writing " << format("%p", TruncatedAddr) << " at "
Alexey Samsonova8d2f812014-08-27 23:06:08 +0000248 << format("%p\n", Section.Address + Offset));
Eli Bendersky4c647582012-01-16 08:56:09 +0000249 break;
250 }
251 case ELF::R_X86_64_PC32: {
Juergen Ributzka7608dc02014-03-21 20:28:42 +0000252 uint64_t FinalAddress = Section.LoadAddress + Offset;
Keno Fischer02628de2015-04-14 02:10:35 +0000253 int64_t RealOffset = Value + Addend - FinalAddress;
David Majnemerdd9eafb2015-05-15 20:32:25 +0000254 assert(isInt<32>(RealOffset));
Danil Malyshev70d22cc2012-03-30 16:45:19 +0000255 int32_t TruncOffset = (RealOffset & 0xFFFFFFFF);
Alexey Samsonova8d2f812014-08-27 23:06:08 +0000256 support::ulittle32_t::ref(Section.Address + Offset) = TruncOffset;
Eli Bendersky4c647582012-01-16 08:56:09 +0000257 break;
258 }
Andrew Kaylor4612fed2013-08-19 23:27:43 +0000259 case ELF::R_X86_64_PC64: {
Juergen Ributzka7608dc02014-03-21 20:28:42 +0000260 uint64_t FinalAddress = Section.LoadAddress + Offset;
Keno Fischer02628de2015-04-14 02:10:35 +0000261 int64_t RealOffset = Value + Addend - FinalAddress;
Keno Fischer02628de2015-04-14 02:10:35 +0000262 support::ulittle64_t::ref(Section.Address + Offset) = RealOffset;
Andrew Kaylor4612fed2013-08-19 23:27:43 +0000263 break;
264 }
Eli Bendersky4c647582012-01-16 08:56:09 +0000265 }
266}
267
Andrew Kaylorfb05a502012-11-02 19:45:23 +0000268void RuntimeDyldELF::resolveX86Relocation(const SectionEntry &Section,
Juergen Ributzka7608dc02014-03-21 20:28:42 +0000269 uint64_t Offset, uint32_t Value,
270 uint32_t Type, int32_t Addend) {
Danil Malyshev70d22cc2012-03-30 16:45:19 +0000271 switch (Type) {
Eli Bendersky4c647582012-01-16 08:56:09 +0000272 case ELF::R_386_32: {
Keno Fischere6892c82015-05-01 20:21:45 +0000273 support::ulittle32_t::ref(Section.Address + Offset) = Value + Addend;
Eli Bendersky4c647582012-01-16 08:56:09 +0000274 break;
275 }
276 case ELF::R_386_PC32: {
Juergen Ributzka7608dc02014-03-21 20:28:42 +0000277 uint32_t FinalAddress = ((Section.LoadAddress + Offset) & 0xFFFFFFFF);
Keno Fischere6892c82015-05-01 20:21:45 +0000278 uint32_t RealOffset = Value + Addend - FinalAddress;
Alexey Samsonova8d2f812014-08-27 23:06:08 +0000279 support::ulittle32_t::ref(Section.Address + Offset) = RealOffset;
Eli Bendersky4c647582012-01-16 08:56:09 +0000280 break;
Juergen Ributzka7608dc02014-03-21 20:28:42 +0000281 }
282 default:
283 // There are other relocation types, but it appears these are the
284 // only ones currently used by the LLVM ELF object writer
285 llvm_unreachable("Relocation type not implemented yet!");
286 break;
Eli Bendersky4c647582012-01-16 08:56:09 +0000287 }
288}
289
Tim Northoverfa1b2f82013-05-04 20:13:59 +0000290void RuntimeDyldELF::resolveAArch64Relocation(const SectionEntry &Section,
Juergen Ributzka7608dc02014-03-21 20:28:42 +0000291 uint64_t Offset, uint64_t Value,
292 uint32_t Type, int64_t Addend) {
293 uint32_t *TargetPtr = reinterpret_cast<uint32_t *>(Section.Address + Offset);
Tim Northoverfa1b2f82013-05-04 20:13:59 +0000294 uint64_t FinalAddress = Section.LoadAddress + Offset;
295
296 DEBUG(dbgs() << "resolveAArch64Relocation, LocalAddress: 0x"
297 << format("%llx", Section.Address + Offset)
Juergen Ributzka7608dc02014-03-21 20:28:42 +0000298 << " FinalAddress: 0x" << format("%llx", FinalAddress)
299 << " Value: 0x" << format("%llx", Value) << " Type: 0x"
300 << format("%x", Type) << " Addend: 0x" << format("%llx", Addend)
Tim Northoverfa1b2f82013-05-04 20:13:59 +0000301 << "\n");
302
303 switch (Type) {
304 default:
305 llvm_unreachable("Relocation type not implemented yet!");
306 break;
Tim Northoverb23d8db2013-05-04 20:14:14 +0000307 case ELF::R_AARCH64_ABS64: {
Juergen Ributzka7608dc02014-03-21 20:28:42 +0000308 uint64_t *TargetPtr =
309 reinterpret_cast<uint64_t *>(Section.Address + Offset);
Tim Northoverb23d8db2013-05-04 20:14:14 +0000310 *TargetPtr = Value + Addend;
311 break;
312 }
Tim Northover5959ea32013-05-19 15:39:03 +0000313 case ELF::R_AARCH64_PREL32: {
Tim Northoverfa1b2f82013-05-04 20:13:59 +0000314 uint64_t Result = Value + Addend - FinalAddress;
Michael J. Spencer126973b2013-08-08 22:27:13 +0000315 assert(static_cast<int64_t>(Result) >= INT32_MIN &&
Tim Northoverfa1b2f82013-05-04 20:13:59 +0000316 static_cast<int64_t>(Result) <= UINT32_MAX);
317 *TargetPtr = static_cast<uint32_t>(Result & 0xffffffffU);
318 break;
319 }
Tim Northover37cde972013-05-04 20:14:09 +0000320 case ELF::R_AARCH64_CALL26: // fallthrough
321 case ELF::R_AARCH64_JUMP26: {
322 // Operation: S+A-P. Set Call or B immediate value to bits fff_fffc of the
323 // calculation.
324 uint64_t BranchImm = Value + Addend - FinalAddress;
325
326 // "Check that -2^27 <= result < 2^27".
David Majnemerdd9eafb2015-05-15 20:32:25 +0000327 assert(isInt<28>(BranchImm));
Tim Northover5959ea32013-05-19 15:39:03 +0000328
329 // AArch64 code is emitted with .rela relocations. The data already in any
330 // bits affected by the relocation on entry is garbage.
331 *TargetPtr &= 0xfc000000U;
Tim Northover37cde972013-05-04 20:14:09 +0000332 // Immediate goes in bits 25:0 of B and BL.
333 *TargetPtr |= static_cast<uint32_t>(BranchImm & 0xffffffcU) >> 2;
334 break;
335 }
Tim Northover4d01c1e2013-05-04 20:14:04 +0000336 case ELF::R_AARCH64_MOVW_UABS_G3: {
337 uint64_t Result = Value + Addend;
Tim Northover5959ea32013-05-19 15:39:03 +0000338
339 // AArch64 code is emitted with .rela relocations. The data already in any
340 // bits affected by the relocation on entry is garbage.
Tim Northoverca8a0072013-07-25 12:42:52 +0000341 *TargetPtr &= 0xffe0001fU;
Tim Northover4d01c1e2013-05-04 20:14:04 +0000342 // Immediate goes in bits 20:5 of MOVZ/MOVK instruction
343 *TargetPtr |= Result >> (48 - 5);
Tim Northover8625fd82013-07-01 19:23:10 +0000344 // Shift must be "lsl #48", in bits 22:21
345 assert((*TargetPtr >> 21 & 0x3) == 3 && "invalid shift for relocation");
Tim Northover4d01c1e2013-05-04 20:14:04 +0000346 break;
347 }
348 case ELF::R_AARCH64_MOVW_UABS_G2_NC: {
349 uint64_t Result = Value + Addend;
Tim Northover5959ea32013-05-19 15:39:03 +0000350
Tim Northover5959ea32013-05-19 15:39:03 +0000351 // AArch64 code is emitted with .rela relocations. The data already in any
352 // bits affected by the relocation on entry is garbage.
Tim Northoverca8a0072013-07-25 12:42:52 +0000353 *TargetPtr &= 0xffe0001fU;
Tim Northover4d01c1e2013-05-04 20:14:04 +0000354 // Immediate goes in bits 20:5 of MOVZ/MOVK instruction
355 *TargetPtr |= ((Result & 0xffff00000000ULL) >> (32 - 5));
Tim Northover8625fd82013-07-01 19:23:10 +0000356 // Shift must be "lsl #32", in bits 22:21
357 assert((*TargetPtr >> 21 & 0x3) == 2 && "invalid shift for relocation");
Tim Northover4d01c1e2013-05-04 20:14:04 +0000358 break;
359 }
360 case ELF::R_AARCH64_MOVW_UABS_G1_NC: {
361 uint64_t Result = Value + Addend;
Tim Northover5959ea32013-05-19 15:39:03 +0000362
363 // AArch64 code is emitted with .rela relocations. The data already in any
364 // bits affected by the relocation on entry is garbage.
Tim Northoverca8a0072013-07-25 12:42:52 +0000365 *TargetPtr &= 0xffe0001fU;
Tim Northover4d01c1e2013-05-04 20:14:04 +0000366 // Immediate goes in bits 20:5 of MOVZ/MOVK instruction
367 *TargetPtr |= ((Result & 0xffff0000U) >> (16 - 5));
Tim Northover8625fd82013-07-01 19:23:10 +0000368 // Shift must be "lsl #16", in bits 22:2
369 assert((*TargetPtr >> 21 & 0x3) == 1 && "invalid shift for relocation");
Tim Northover4d01c1e2013-05-04 20:14:04 +0000370 break;
371 }
372 case ELF::R_AARCH64_MOVW_UABS_G0_NC: {
373 uint64_t Result = Value + Addend;
Tim Northover5959ea32013-05-19 15:39:03 +0000374
375 // AArch64 code is emitted with .rela relocations. The data already in any
376 // bits affected by the relocation on entry is garbage.
Tim Northoverca8a0072013-07-25 12:42:52 +0000377 *TargetPtr &= 0xffe0001fU;
Tim Northover4d01c1e2013-05-04 20:14:04 +0000378 // Immediate goes in bits 20:5 of MOVZ/MOVK instruction
379 *TargetPtr |= ((Result & 0xffffU) << 5);
Tim Northover8625fd82013-07-01 19:23:10 +0000380 // Shift must be "lsl #0", in bits 22:21.
381 assert((*TargetPtr >> 21 & 0x3) == 0 && "invalid shift for relocation");
Tim Northover4d01c1e2013-05-04 20:14:04 +0000382 break;
383 }
Bradley Smith9d808492014-02-11 12:59:09 +0000384 case ELF::R_AARCH64_ADR_PREL_PG_HI21: {
385 // Operation: Page(S+A) - Page(P)
Juergen Ributzka7608dc02014-03-21 20:28:42 +0000386 uint64_t Result =
387 ((Value + Addend) & ~0xfffULL) - (FinalAddress & ~0xfffULL);
Bradley Smith9d808492014-02-11 12:59:09 +0000388
389 // Check that -2^32 <= X < 2^32
David Majnemerdd9eafb2015-05-15 20:32:25 +0000390 assert(isInt<33>(Result) && "overflow check failed for relocation");
Bradley Smith9d808492014-02-11 12:59:09 +0000391
392 // AArch64 code is emitted with .rela relocations. The data already in any
393 // bits affected by the relocation on entry is garbage.
394 *TargetPtr &= 0x9f00001fU;
395 // Immediate goes in bits 30:29 + 5:23 of ADRP instruction, taken
396 // from bits 32:12 of X.
397 *TargetPtr |= ((Result & 0x3000U) << (29 - 12));
398 *TargetPtr |= ((Result & 0x1ffffc000ULL) >> (14 - 5));
399 break;
400 }
401 case ELF::R_AARCH64_LDST32_ABS_LO12_NC: {
402 // Operation: S + A
403 uint64_t Result = Value + Addend;
404
405 // AArch64 code is emitted with .rela relocations. The data already in any
406 // bits affected by the relocation on entry is garbage.
407 *TargetPtr &= 0xffc003ffU;
408 // Immediate goes in bits 21:10 of LD/ST instruction, taken
409 // from bits 11:2 of X
410 *TargetPtr |= ((Result & 0xffc) << (10 - 2));
411 break;
412 }
413 case ELF::R_AARCH64_LDST64_ABS_LO12_NC: {
414 // Operation: S + A
415 uint64_t Result = Value + Addend;
416
417 // AArch64 code is emitted with .rela relocations. The data already in any
418 // bits affected by the relocation on entry is garbage.
419 *TargetPtr &= 0xffc003ffU;
420 // Immediate goes in bits 21:10 of LD/ST instruction, taken
421 // from bits 11:3 of X
422 *TargetPtr |= ((Result & 0xff8) << (10 - 3));
423 break;
424 }
Tim Northoverfa1b2f82013-05-04 20:13:59 +0000425 }
426}
427
Andrew Kaylorfb05a502012-11-02 19:45:23 +0000428void RuntimeDyldELF::resolveARMRelocation(const SectionEntry &Section,
Juergen Ributzka7608dc02014-03-21 20:28:42 +0000429 uint64_t Offset, uint32_t Value,
430 uint32_t Type, int32_t Addend) {
Danil Malyshev70d22cc2012-03-30 16:45:19 +0000431 // TODO: Add Thumb relocations.
Juergen Ributzka7608dc02014-03-21 20:28:42 +0000432 uint32_t *TargetPtr = (uint32_t *)(Section.Address + Offset);
Andrew Kaylorfb05a502012-11-02 19:45:23 +0000433 uint32_t FinalAddress = ((Section.LoadAddress + Offset) & 0xFFFFFFFF);
Danil Malyshev70d22cc2012-03-30 16:45:19 +0000434 Value += Addend;
435
Andrew Kaylorfb05a502012-11-02 19:45:23 +0000436 DEBUG(dbgs() << "resolveARMRelocation, LocalAddress: "
437 << Section.Address + Offset
Juergen Ributzka7608dc02014-03-21 20:28:42 +0000438 << " FinalAddress: " << format("%p", FinalAddress) << " Value: "
439 << format("%x", Value) << " Type: " << format("%x", Type)
440 << " Addend: " << format("%x", Addend) << "\n");
Danil Malyshev70d22cc2012-03-30 16:45:19 +0000441
Juergen Ributzka7608dc02014-03-21 20:28:42 +0000442 switch (Type) {
Danil Malyshev70d22cc2012-03-30 16:45:19 +0000443 default:
444 llvm_unreachable("Not implemented relocation type!");
445
Renato Golin8cea6e82014-01-29 11:50:56 +0000446 case ELF::R_ARM_NONE:
447 break;
Renato Golin8cea6e82014-01-29 11:50:56 +0000448 case ELF::R_ARM_PREL31:
Tim Northover3b684d82013-05-28 19:48:19 +0000449 case ELF::R_ARM_TARGET1:
450 case ELF::R_ARM_ABS32:
Keno Fischere6892c82015-05-01 20:21:45 +0000451 *TargetPtr = Value;
Danil Malyshev70d22cc2012-03-30 16:45:19 +0000452 break;
Keno Fischere6892c82015-05-01 20:21:45 +0000453 // Write first 16 bit of 32 bit value to the mov instruction.
454 // Last 4 bit should be shifted.
Tim Northover3b684d82013-05-28 19:48:19 +0000455 case ELF::R_ARM_MOVW_ABS_NC:
Pavel Labath3b8f3ad2015-04-16 08:58:15 +0000456 case ELF::R_ARM_MOVT_ABS:
Keno Fischere6892c82015-05-01 20:21:45 +0000457 if (Type == ELF::R_ARM_MOVW_ABS_NC)
458 Value = Value & 0xFFFF;
459 else if (Type == ELF::R_ARM_MOVT_ABS)
460 Value = (Value >> 16) & 0xFFFF;
461 *TargetPtr &= ~0x000F0FFF;
462 *TargetPtr |= Value & 0xFFF;
Pavel Labath3b8f3ad2015-04-16 08:58:15 +0000463 *TargetPtr |= ((Value >> 12) & 0xF) << 16;
464 break;
Keno Fischere6892c82015-05-01 20:21:45 +0000465 // Write 24 bit relative value to the branch instruction.
Juergen Ributzka7608dc02014-03-21 20:28:42 +0000466 case ELF::R_ARM_PC24: // Fall through.
467 case ELF::R_ARM_CALL: // Fall through.
Keno Fischere6892c82015-05-01 20:21:45 +0000468 case ELF::R_ARM_JUMP24:
Danil Malyshev70d22cc2012-03-30 16:45:19 +0000469 int32_t RelValue = static_cast<int32_t>(Value - FinalAddress - 8);
470 RelValue = (RelValue & 0x03FFFFFC) >> 2;
Tim Northover3b684d82013-05-28 19:48:19 +0000471 assert((*TargetPtr & 0xFFFFFF) == 0xFFFFFE);
Danil Malyshev70d22cc2012-03-30 16:45:19 +0000472 *TargetPtr &= 0xFF000000;
473 *TargetPtr |= RelValue;
474 break;
475 }
Eli Bendersky4c647582012-01-16 08:56:09 +0000476}
477
Andrew Kaylorfb05a502012-11-02 19:45:23 +0000478void RuntimeDyldELF::resolveMIPSRelocation(const SectionEntry &Section,
Juergen Ributzka7608dc02014-03-21 20:28:42 +0000479 uint64_t Offset, uint32_t Value,
480 uint32_t Type, int32_t Addend) {
Juergen Ributzka7608dc02014-03-21 20:28:42 +0000481 uint32_t *TargetPtr = (uint32_t *)(Section.Address + Offset);
Akira Hatanaka111174b2012-08-17 21:28:04 +0000482 Value += Addend;
483
Andrew Kaylorfb05a502012-11-02 19:45:23 +0000484 DEBUG(dbgs() << "resolveMipselocation, LocalAddress: "
Juergen Ributzka7608dc02014-03-21 20:28:42 +0000485 << Section.Address + Offset << " FinalAddress: "
486 << format("%p", Section.LoadAddress + Offset) << " Value: "
487 << format("%x", Value) << " Type: " << format("%x", Type)
488 << " Addend: " << format("%x", Addend) << "\n");
Akira Hatanaka111174b2012-08-17 21:28:04 +0000489
Juergen Ributzka7608dc02014-03-21 20:28:42 +0000490 switch (Type) {
Akira Hatanaka111174b2012-08-17 21:28:04 +0000491 default:
492 llvm_unreachable("Not implemented relocation type!");
493 break;
494 case ELF::R_MIPS_32:
Keno Fischere6892c82015-05-01 20:21:45 +0000495 *TargetPtr = Value;
Akira Hatanaka111174b2012-08-17 21:28:04 +0000496 break;
497 case ELF::R_MIPS_26:
Keno Fischere6892c82015-05-01 20:21:45 +0000498 *TargetPtr = ((*TargetPtr) & 0xfc000000) | ((Value & 0x0fffffff) >> 2);
Akira Hatanaka111174b2012-08-17 21:28:04 +0000499 break;
500 case ELF::R_MIPS_HI16:
501 // Get the higher 16-bits. Also add 1 if bit 15 is 1.
Juergen Ributzka7608dc02014-03-21 20:28:42 +0000502 *TargetPtr =
Keno Fischere6892c82015-05-01 20:21:45 +0000503 ((*TargetPtr) & 0xffff0000) | (((Value + 0x8000) >> 16) & 0xffff);
Akira Hatanaka2e236242013-07-24 01:58:40 +0000504 break;
505 case ELF::R_MIPS_LO16:
Akira Hatanaka111174b2012-08-17 21:28:04 +0000506 *TargetPtr = ((*TargetPtr) & 0xffff0000) | (Value & 0xffff);
507 break;
Juergen Ributzka7608dc02014-03-21 20:28:42 +0000508 }
Akira Hatanaka111174b2012-08-17 21:28:04 +0000509}
510
Ulrich Weigand8f1f87c2014-06-27 10:32:14 +0000511// Return the .TOC. section and offset.
Lang Hamesb5c7b1f2014-11-26 16:54:40 +0000512void RuntimeDyldELF::findPPC64TOCSection(const ObjectFile &Obj,
Ulrich Weigand8f1f87c2014-06-27 10:32:14 +0000513 ObjSectionToIDMap &LocalSections,
514 RelocationValueRef &Rel) {
515 // Set a default SectionID in case we do not find a TOC section below.
516 // This may happen for references to TOC base base (sym@toc, .odp
517 // relocation) without a .toc directive. In this case just use the
518 // first section (which is usually the .odp) since the code won't
519 // reference the .toc base directly.
520 Rel.SymbolName = NULL;
521 Rel.SectionID = 0;
522
Adhemerval Zanella5fc11b32012-10-25 13:13:48 +0000523 // The TOC consists of sections .got, .toc, .tocbss, .plt in that
524 // order. The TOC starts where the first of these sections starts.
Lang Hamesb5c7b1f2014-11-26 16:54:40 +0000525 for (section_iterator si = Obj.section_begin(), se = Obj.section_end();
Ulrich Weigand8f1f87c2014-06-27 10:32:14 +0000526 si != se; ++si) {
527
528 StringRef SectionName;
529 check(si->getName(SectionName));
530
531 if (SectionName == ".got"
532 || SectionName == ".toc"
533 || SectionName == ".tocbss"
534 || SectionName == ".plt") {
535 Rel.SectionID = findOrEmitSection(Obj, *si, false, LocalSections);
Adhemerval Zanella5fc11b32012-10-25 13:13:48 +0000536 break;
Ulrich Weigand8f1f87c2014-06-27 10:32:14 +0000537 }
Adhemerval Zanella5fc11b32012-10-25 13:13:48 +0000538 }
Ulrich Weigand8f1f87c2014-06-27 10:32:14 +0000539
Adhemerval Zanella5fc11b32012-10-25 13:13:48 +0000540 // Per the ppc64-elf-linux ABI, The TOC base is TOC value plus 0x8000
541 // thus permitting a full 64 Kbytes segment.
Ulrich Weigand8f1f87c2014-06-27 10:32:14 +0000542 Rel.Addend = 0x8000;
Adhemerval Zanella5fc11b32012-10-25 13:13:48 +0000543}
544
545// Returns the sections and offset associated with the ODP entry referenced
546// by Symbol.
Lang Hamesb5c7b1f2014-11-26 16:54:40 +0000547void RuntimeDyldELF::findOPDEntrySection(const ObjectFile &Obj,
Adhemerval Zanella5fc11b32012-10-25 13:13:48 +0000548 ObjSectionToIDMap &LocalSections,
549 RelocationValueRef &Rel) {
550 // Get the ELF symbol value (st_value) to compare with Relocation offset in
551 // .opd entries
Lang Hamesb5c7b1f2014-11-26 16:54:40 +0000552 for (section_iterator si = Obj.section_begin(), se = Obj.section_end();
Rafael Espindola5e812af2014-01-30 02:49:50 +0000553 si != se; ++si) {
Rafael Espindolaa61f1e92013-06-03 19:37:34 +0000554 section_iterator RelSecI = si->getRelocatedSection();
Lang Hamesb5c7b1f2014-11-26 16:54:40 +0000555 if (RelSecI == Obj.section_end())
Rafael Espindolaa61f1e92013-06-03 19:37:34 +0000556 continue;
557
558 StringRef RelSectionName;
559 check(RelSecI->getName(RelSectionName));
560 if (RelSectionName != ".opd")
Adhemerval Zanella5fc11b32012-10-25 13:13:48 +0000561 continue;
562
Rafael Espindolab5155a52014-02-10 20:24:04 +0000563 for (relocation_iterator i = si->relocation_begin(),
Juergen Ributzka7608dc02014-03-21 20:28:42 +0000564 e = si->relocation_end();
565 i != e;) {
Adhemerval Zanella5fc11b32012-10-25 13:13:48 +0000566 // The R_PPC64_ADDR64 relocation indicates the first field
567 // of a .opd entry
568 uint64_t TypeFunc;
569 check(i->getType(TypeFunc));
570 if (TypeFunc != ELF::R_PPC64_ADDR64) {
Rafael Espindola5e812af2014-01-30 02:49:50 +0000571 ++i;
Adhemerval Zanella5fc11b32012-10-25 13:13:48 +0000572 continue;
573 }
574
Adhemerval Zanella5fc11b32012-10-25 13:13:48 +0000575 uint64_t TargetSymbolOffset;
Rafael Espindola806f0062013-06-05 01:33:53 +0000576 symbol_iterator TargetSymbol = i->getSymbol();
Adhemerval Zanella5fc11b32012-10-25 13:13:48 +0000577 check(i->getOffset(TargetSymbolOffset));
Rafael Espindola0d15f732013-05-09 03:39:05 +0000578 int64_t Addend;
579 check(getELFRelocationAddend(*i, Addend));
Adhemerval Zanella5fc11b32012-10-25 13:13:48 +0000580
Rafael Espindola5e812af2014-01-30 02:49:50 +0000581 ++i;
Adhemerval Zanella5fc11b32012-10-25 13:13:48 +0000582 if (i == e)
583 break;
Adhemerval Zanella5fc11b32012-10-25 13:13:48 +0000584
585 // Just check if following relocation is a R_PPC64_TOC
586 uint64_t TypeTOC;
587 check(i->getType(TypeTOC));
588 if (TypeTOC != ELF::R_PPC64_TOC)
589 continue;
590
591 // Finally compares the Symbol value and the target symbol offset
592 // to check if this .opd entry refers to the symbol the relocation
593 // points to.
Andrew Kaylor4612fed2013-08-19 23:27:43 +0000594 if (Rel.Addend != (int64_t)TargetSymbolOffset)
Adhemerval Zanella5fc11b32012-10-25 13:13:48 +0000595 continue;
596
Lang Hamesb5c7b1f2014-11-26 16:54:40 +0000597 section_iterator tsi(Obj.section_end());
Rafael Espindola806f0062013-06-05 01:33:53 +0000598 check(TargetSymbol->getSection(tsi));
Rafael Espindola80291272014-10-08 15:28:58 +0000599 bool IsCode = tsi->isText();
Lang Hames9b2dc932014-02-18 21:46:39 +0000600 Rel.SectionID = findOrEmitSection(Obj, (*tsi), IsCode, LocalSections);
Rafael Espindola0d15f732013-05-09 03:39:05 +0000601 Rel.Addend = (intptr_t)Addend;
Adhemerval Zanella5fc11b32012-10-25 13:13:48 +0000602 return;
603 }
604 }
605 llvm_unreachable("Attempting to get address of ODP entry!");
606}
607
Ulrich Weiganddbc8e1a2014-06-20 17:51:47 +0000608// Relocation masks following the #lo(value), #hi(value), #ha(value),
609// #higher(value), #highera(value), #highest(value), and #highesta(value)
610// macros defined in section 4.5.1. Relocation Types of the PPC-elf64abi
611// document.
612
Juergen Ributzka7608dc02014-03-21 20:28:42 +0000613static inline uint16_t applyPPClo(uint64_t value) { return value & 0xffff; }
Adhemerval Zanella5fc11b32012-10-25 13:13:48 +0000614
Juergen Ributzka7608dc02014-03-21 20:28:42 +0000615static inline uint16_t applyPPChi(uint64_t value) {
Adhemerval Zanella5fc11b32012-10-25 13:13:48 +0000616 return (value >> 16) & 0xffff;
617}
618
Ulrich Weiganddbc8e1a2014-06-20 17:51:47 +0000619static inline uint16_t applyPPCha (uint64_t value) {
620 return ((value + 0x8000) >> 16) & 0xffff;
621}
622
Juergen Ributzka7608dc02014-03-21 20:28:42 +0000623static inline uint16_t applyPPChigher(uint64_t value) {
Adhemerval Zanella5fc11b32012-10-25 13:13:48 +0000624 return (value >> 32) & 0xffff;
625}
626
Ulrich Weiganddbc8e1a2014-06-20 17:51:47 +0000627static inline uint16_t applyPPChighera (uint64_t value) {
628 return ((value + 0x8000) >> 32) & 0xffff;
629}
630
Juergen Ributzka7608dc02014-03-21 20:28:42 +0000631static inline uint16_t applyPPChighest(uint64_t value) {
Adhemerval Zanella5fc11b32012-10-25 13:13:48 +0000632 return (value >> 48) & 0xffff;
633}
634
Ulrich Weiganddbc8e1a2014-06-20 17:51:47 +0000635static inline uint16_t applyPPChighesta (uint64_t value) {
636 return ((value + 0x8000) >> 48) & 0xffff;
637}
638
Andrew Kaylorfb05a502012-11-02 19:45:23 +0000639void RuntimeDyldELF::resolvePPC64Relocation(const SectionEntry &Section,
Juergen Ributzka7608dc02014-03-21 20:28:42 +0000640 uint64_t Offset, uint64_t Value,
641 uint32_t Type, int64_t Addend) {
642 uint8_t *LocalAddress = Section.Address + Offset;
Adhemerval Zanella5fc11b32012-10-25 13:13:48 +0000643 switch (Type) {
644 default:
645 llvm_unreachable("Relocation type not implemented yet!");
Adhemerval Zanella5fc11b32012-10-25 13:13:48 +0000646 break;
Ulrich Weiganddbc8e1a2014-06-20 17:51:47 +0000647 case ELF::R_PPC64_ADDR16:
648 writeInt16BE(LocalAddress, applyPPClo(Value + Addend));
649 break;
650 case ELF::R_PPC64_ADDR16_DS:
651 writeInt16BE(LocalAddress, applyPPClo(Value + Addend) & ~3);
652 break;
Juergen Ributzka7608dc02014-03-21 20:28:42 +0000653 case ELF::R_PPC64_ADDR16_LO:
654 writeInt16BE(LocalAddress, applyPPClo(Value + Addend));
Adhemerval Zanella5fc11b32012-10-25 13:13:48 +0000655 break;
Ulrich Weiganddbc8e1a2014-06-20 17:51:47 +0000656 case ELF::R_PPC64_ADDR16_LO_DS:
657 writeInt16BE(LocalAddress, applyPPClo(Value + Addend) & ~3);
658 break;
Juergen Ributzka7608dc02014-03-21 20:28:42 +0000659 case ELF::R_PPC64_ADDR16_HI:
660 writeInt16BE(LocalAddress, applyPPChi(Value + Addend));
Adhemerval Zanella5fc11b32012-10-25 13:13:48 +0000661 break;
Ulrich Weiganddbc8e1a2014-06-20 17:51:47 +0000662 case ELF::R_PPC64_ADDR16_HA:
663 writeInt16BE(LocalAddress, applyPPCha(Value + Addend));
664 break;
Juergen Ributzka7608dc02014-03-21 20:28:42 +0000665 case ELF::R_PPC64_ADDR16_HIGHER:
666 writeInt16BE(LocalAddress, applyPPChigher(Value + Addend));
Adhemerval Zanella5fc11b32012-10-25 13:13:48 +0000667 break;
Ulrich Weiganddbc8e1a2014-06-20 17:51:47 +0000668 case ELF::R_PPC64_ADDR16_HIGHERA:
669 writeInt16BE(LocalAddress, applyPPChighera(Value + Addend));
670 break;
Juergen Ributzka7608dc02014-03-21 20:28:42 +0000671 case ELF::R_PPC64_ADDR16_HIGHEST:
672 writeInt16BE(LocalAddress, applyPPChighest(Value + Addend));
673 break;
Ulrich Weiganddbc8e1a2014-06-20 17:51:47 +0000674 case ELF::R_PPC64_ADDR16_HIGHESTA:
675 writeInt16BE(LocalAddress, applyPPChighesta(Value + Addend));
676 break;
Juergen Ributzka7608dc02014-03-21 20:28:42 +0000677 case ELF::R_PPC64_ADDR14: {
Adhemerval Zanella5fc11b32012-10-25 13:13:48 +0000678 assert(((Value + Addend) & 3) == 0);
679 // Preserve the AA/LK bits in the branch instruction
Juergen Ributzka7608dc02014-03-21 20:28:42 +0000680 uint8_t aalk = *(LocalAddress + 3);
Adhemerval Zanella5fc11b32012-10-25 13:13:48 +0000681 writeInt16BE(LocalAddress + 2, (aalk & 3) | ((Value + Addend) & 0xfffc));
682 } break;
Ulrich Weiganddbc8e1a2014-06-20 17:51:47 +0000683 case ELF::R_PPC64_REL16_LO: {
684 uint64_t FinalAddress = (Section.LoadAddress + Offset);
685 uint64_t Delta = Value - FinalAddress + Addend;
686 writeInt16BE(LocalAddress, applyPPClo(Delta));
687 } break;
688 case ELF::R_PPC64_REL16_HI: {
689 uint64_t FinalAddress = (Section.LoadAddress + Offset);
690 uint64_t Delta = Value - FinalAddress + Addend;
691 writeInt16BE(LocalAddress, applyPPChi(Delta));
692 } break;
693 case ELF::R_PPC64_REL16_HA: {
694 uint64_t FinalAddress = (Section.LoadAddress + Offset);
695 uint64_t Delta = Value - FinalAddress + Addend;
696 writeInt16BE(LocalAddress, applyPPCha(Delta));
697 } break;
Juergen Ributzka7608dc02014-03-21 20:28:42 +0000698 case ELF::R_PPC64_ADDR32: {
Adhemerval Zanella9b0b7812013-01-04 19:08:13 +0000699 int32_t Result = static_cast<int32_t>(Value + Addend);
700 if (SignExtend32<32>(Result) != Result)
Adhemerval Zanella1ae22482013-01-09 17:08:15 +0000701 llvm_unreachable("Relocation R_PPC64_ADDR32 overflow");
Adhemerval Zanella9b0b7812013-01-04 19:08:13 +0000702 writeInt32BE(LocalAddress, Result);
703 } break;
Juergen Ributzka7608dc02014-03-21 20:28:42 +0000704 case ELF::R_PPC64_REL24: {
Andrew Kaylorfb05a502012-11-02 19:45:23 +0000705 uint64_t FinalAddress = (Section.LoadAddress + Offset);
Adhemerval Zanella5fc11b32012-10-25 13:13:48 +0000706 int32_t delta = static_cast<int32_t>(Value - FinalAddress + Addend);
707 if (SignExtend32<24>(delta) != delta)
708 llvm_unreachable("Relocation R_PPC64_REL24 overflow");
709 // Generates a 'bl <address>' instruction
710 writeInt32BE(LocalAddress, 0x48000001 | (delta & 0x03FFFFFC));
711 } break;
Juergen Ributzka7608dc02014-03-21 20:28:42 +0000712 case ELF::R_PPC64_REL32: {
Adhemerval Zanella1ae22482013-01-09 17:08:15 +0000713 uint64_t FinalAddress = (Section.LoadAddress + Offset);
714 int32_t delta = static_cast<int32_t>(Value - FinalAddress + Addend);
715 if (SignExtend32<32>(delta) != delta)
716 llvm_unreachable("Relocation R_PPC64_REL32 overflow");
717 writeInt32BE(LocalAddress, delta);
718 } break;
Adhemerval Zanellae8bd03d2013-05-06 17:21:23 +0000719 case ELF::R_PPC64_REL64: {
720 uint64_t FinalAddress = (Section.LoadAddress + Offset);
721 uint64_t Delta = Value - FinalAddress + Addend;
722 writeInt64BE(LocalAddress, Delta);
723 } break;
Juergen Ributzka7608dc02014-03-21 20:28:42 +0000724 case ELF::R_PPC64_ADDR64:
Adhemerval Zanella5fc11b32012-10-25 13:13:48 +0000725 writeInt64BE(LocalAddress, Value + Addend);
726 break;
Adhemerval Zanella5fc11b32012-10-25 13:13:48 +0000727 }
728}
729
Richard Sandifordca044082013-05-03 14:15:35 +0000730void RuntimeDyldELF::resolveSystemZRelocation(const SectionEntry &Section,
Juergen Ributzka7608dc02014-03-21 20:28:42 +0000731 uint64_t Offset, uint64_t Value,
732 uint32_t Type, int64_t Addend) {
Richard Sandifordca044082013-05-03 14:15:35 +0000733 uint8_t *LocalAddress = Section.Address + Offset;
734 switch (Type) {
735 default:
736 llvm_unreachable("Relocation type not implemented yet!");
737 break;
738 case ELF::R_390_PC16DBL:
739 case ELF::R_390_PLT16DBL: {
740 int64_t Delta = (Value + Addend) - (Section.LoadAddress + Offset);
741 assert(int16_t(Delta / 2) * 2 == Delta && "R_390_PC16DBL overflow");
742 writeInt16BE(LocalAddress, Delta / 2);
743 break;
744 }
745 case ELF::R_390_PC32DBL:
746 case ELF::R_390_PLT32DBL: {
747 int64_t Delta = (Value + Addend) - (Section.LoadAddress + Offset);
748 assert(int32_t(Delta / 2) * 2 == Delta && "R_390_PC32DBL overflow");
749 writeInt32BE(LocalAddress, Delta / 2);
750 break;
751 }
752 case ELF::R_390_PC32: {
753 int64_t Delta = (Value + Addend) - (Section.LoadAddress + Offset);
754 assert(int32_t(Delta) == Delta && "R_390_PC32 overflow");
755 writeInt32BE(LocalAddress, Delta);
756 break;
757 }
758 case ELF::R_390_64:
759 writeInt64BE(LocalAddress, Value + Addend);
760 break;
761 }
762}
763
Andrew Kaylor5f3a9982013-08-19 19:38:06 +0000764// The target location for the relocation is described by RE.SectionID and
765// RE.Offset. RE.SectionID can be used to find the SectionEntry. Each
766// SectionEntry has three members describing its location.
767// SectionEntry::Address is the address at which the section has been loaded
768// into memory in the current (host) process. SectionEntry::LoadAddress is the
769// address that the section will have in the target process.
770// SectionEntry::ObjAddress is the address of the bits for this section in the
771// original emitted object image (also in the current address space).
772//
773// Relocations will be applied as if the section were loaded at
774// SectionEntry::LoadAddress, but they will be applied at an address based
775// on SectionEntry::Address. SectionEntry::ObjAddress will be used to refer to
776// Target memory contents if they are required for value calculations.
777//
778// The Value parameter here is the load address of the symbol for the
779// relocation to be applied. For relocations which refer to symbols in the
780// current object Value will be the LoadAddress of the section in which
781// the symbol resides (RE.Addend provides additional information about the
782// symbol location). For external symbols, Value will be the address of the
783// symbol in the target address space.
Rafael Espindolaf1f1c622013-04-29 17:24:34 +0000784void RuntimeDyldELF::resolveRelocation(const RelocationEntry &RE,
Andrew Kaylor5f3a9982013-08-19 19:38:06 +0000785 uint64_t Value) {
Rafael Espindolaf1f1c622013-04-29 17:24:34 +0000786 const SectionEntry &Section = Sections[RE.SectionID];
Andrew Kaylor4612fed2013-08-19 23:27:43 +0000787 return resolveRelocation(Section, RE.Offset, Value, RE.RelType, RE.Addend,
788 RE.SymOffset);
Rafael Espindolaf1f1c622013-04-29 17:24:34 +0000789}
790
Andrew Kaylorfb05a502012-11-02 19:45:23 +0000791void RuntimeDyldELF::resolveRelocation(const SectionEntry &Section,
Juergen Ributzka7608dc02014-03-21 20:28:42 +0000792 uint64_t Offset, uint64_t Value,
793 uint32_t Type, int64_t Addend,
Andrew Kaylor4612fed2013-08-19 23:27:43 +0000794 uint64_t SymOffset) {
Eli Bendersky4c647582012-01-16 08:56:09 +0000795 switch (Arch) {
796 case Triple::x86_64:
Andrew Kaylor4612fed2013-08-19 23:27:43 +0000797 resolveX86_64Relocation(Section, Offset, Value, Type, Addend, SymOffset);
Eli Bendersky4c647582012-01-16 08:56:09 +0000798 break;
799 case Triple::x86:
Juergen Ributzka7608dc02014-03-21 20:28:42 +0000800 resolveX86Relocation(Section, Offset, (uint32_t)(Value & 0xffffffffL), Type,
Danil Malyshev70d22cc2012-03-30 16:45:19 +0000801 (uint32_t)(Addend & 0xffffffffL));
Eli Bendersky4c647582012-01-16 08:56:09 +0000802 break;
Tim Northoverfa1b2f82013-05-04 20:13:59 +0000803 case Triple::aarch64:
Christian Pirker99974c72014-03-26 14:57:32 +0000804 case Triple::aarch64_be:
Tim Northoverfa1b2f82013-05-04 20:13:59 +0000805 resolveAArch64Relocation(Section, Offset, Value, Type, Addend);
806 break;
Juergen Ributzka7608dc02014-03-21 20:28:42 +0000807 case Triple::arm: // Fall through.
Christian Pirker2a111602014-03-28 14:35:30 +0000808 case Triple::armeb:
Danil Malyshev70d22cc2012-03-30 16:45:19 +0000809 case Triple::thumb:
Christian Pirker2a111602014-03-28 14:35:30 +0000810 case Triple::thumbeb:
Juergen Ributzka7608dc02014-03-21 20:28:42 +0000811 resolveARMRelocation(Section, Offset, (uint32_t)(Value & 0xffffffffL), Type,
Danil Malyshev70d22cc2012-03-30 16:45:19 +0000812 (uint32_t)(Addend & 0xffffffffL));
Eli Bendersky4c647582012-01-16 08:56:09 +0000813 break;
Juergen Ributzka7608dc02014-03-21 20:28:42 +0000814 case Triple::mips: // Fall through.
Akira Hatanaka111174b2012-08-17 21:28:04 +0000815 case Triple::mipsel:
Juergen Ributzka7608dc02014-03-21 20:28:42 +0000816 resolveMIPSRelocation(Section, Offset, (uint32_t)(Value & 0xffffffffL),
817 Type, (uint32_t)(Addend & 0xffffffffL));
Akira Hatanaka111174b2012-08-17 21:28:04 +0000818 break;
Juergen Ributzka7608dc02014-03-21 20:28:42 +0000819 case Triple::ppc64: // Fall through.
Bill Schmidt0a9170d2013-07-26 01:35:43 +0000820 case Triple::ppc64le:
Andrew Kaylorfb05a502012-11-02 19:45:23 +0000821 resolvePPC64Relocation(Section, Offset, Value, Type, Addend);
Adhemerval Zanella5fc11b32012-10-25 13:13:48 +0000822 break;
Richard Sandifordca044082013-05-03 14:15:35 +0000823 case Triple::systemz:
824 resolveSystemZRelocation(Section, Offset, Value, Type, Addend);
825 break;
Juergen Ributzka7608dc02014-03-21 20:28:42 +0000826 default:
827 llvm_unreachable("Unsupported CPU type!");
Eli Bendersky4c647582012-01-16 08:56:09 +0000828 }
829}
830
Keno Fischere6892c82015-05-01 20:21:45 +0000831void *RuntimeDyldELF::computePlaceholderAddress(unsigned SectionID, uint64_t Offset) const {
832 return (void*)(Sections[SectionID].ObjAddress + Offset);
833}
834
835void RuntimeDyldELF::processSimpleRelocation(unsigned SectionID, uint64_t Offset, unsigned RelType, RelocationValueRef Value) {
836 RelocationEntry RE(SectionID, Offset, RelType, Value.Addend, Value.Offset);
837 if (Value.SymbolName)
838 addRelocationForSymbol(RE, Value.SymbolName);
839 else
840 addRelocationForSection(RE, Value.SectionID);
841}
842
Juergen Ributzka7608dc02014-03-21 20:28:42 +0000843relocation_iterator RuntimeDyldELF::processRelocationRef(
Lang Hamesb5c7b1f2014-11-26 16:54:40 +0000844 unsigned SectionID, relocation_iterator RelI,
845 const ObjectFile &Obj,
Lang Hamesa5cd9502014-11-27 05:40:13 +0000846 ObjSectionToIDMap &ObjSectionToID,
Juergen Ributzka7608dc02014-03-21 20:28:42 +0000847 StubMap &Stubs) {
Rafael Espindola4d4a48d2013-04-29 14:44:23 +0000848 uint64_t RelType;
Juergen Ributzka046709f2014-03-21 07:26:41 +0000849 Check(RelI->getType(RelType));
Rafael Espindola4d4a48d2013-04-29 14:44:23 +0000850 int64_t Addend;
Juergen Ributzka046709f2014-03-21 07:26:41 +0000851 Check(getELFRelocationAddend(*RelI, Addend));
852 symbol_iterator Symbol = RelI->getSymbol();
Eli Bendersky667b8792012-05-01 10:41:12 +0000853
854 // Obtain the symbol name which is referenced in the relocation
855 StringRef TargetName;
Lang Hamesb5c7b1f2014-11-26 16:54:40 +0000856 if (Symbol != Obj.symbol_end())
Rafael Espindola75954472013-06-05 02:55:01 +0000857 Symbol->getName(TargetName);
Juergen Ributzka7608dc02014-03-21 20:28:42 +0000858 DEBUG(dbgs() << "\t\tRelType: " << RelType << " Addend: " << Addend
859 << " TargetName: " << TargetName << "\n");
Eli Bendersky667b8792012-05-01 10:41:12 +0000860 RelocationValueRef Value;
861 // First search for the symbol in the local symbol table
Rafael Espindola75954472013-06-05 02:55:01 +0000862 SymbolRef::Type SymType = SymbolRef::ST_Unknown;
Lang Hamesa5cd9502014-11-27 05:40:13 +0000863
864 // Search for the symbol in the global symbol table
Lang Hames6bfd3982015-01-16 23:13:56 +0000865 RTDyldSymbolTable::const_iterator gsi = GlobalSymbolTable.end();
Lang Hamesb5c7b1f2014-11-26 16:54:40 +0000866 if (Symbol != Obj.symbol_end()) {
Lang Hamesa5cd9502014-11-27 05:40:13 +0000867 gsi = GlobalSymbolTable.find(TargetName.data());
Rafael Espindola75954472013-06-05 02:55:01 +0000868 Symbol->getType(SymType);
869 }
Lang Hamesa5cd9502014-11-27 05:40:13 +0000870 if (gsi != GlobalSymbolTable.end()) {
Lang Hames6bfd3982015-01-16 23:13:56 +0000871 const auto &SymInfo = gsi->second;
872 Value.SectionID = SymInfo.getSectionID();
873 Value.Offset = SymInfo.getOffset();
874 Value.Addend = SymInfo.getOffset() + Addend;
Danil Malyshev70d22cc2012-03-30 16:45:19 +0000875 } else {
Lang Hamesa5cd9502014-11-27 05:40:13 +0000876 switch (SymType) {
877 case SymbolRef::ST_Debug: {
878 // TODO: Now ELF SymbolRef::ST_Debug = STT_SECTION, it's not obviously
879 // and can be changed by another developers. Maybe best way is add
880 // a new symbol type ST_Section to SymbolRef and use it.
881 section_iterator si(Obj.section_end());
882 Symbol->getSection(si);
883 if (si == Obj.section_end())
884 llvm_unreachable("Symbol section not found, bad object file format!");
885 DEBUG(dbgs() << "\t\tThis is section symbol\n");
886 bool isCode = si->isText();
887 Value.SectionID = findOrEmitSection(Obj, (*si), isCode, ObjSectionToID);
888 Value.Addend = Addend;
889 break;
890 }
891 case SymbolRef::ST_Data:
892 case SymbolRef::ST_Unknown: {
893 Value.SymbolName = TargetName.data();
894 Value.Addend = Addend;
Richard Mittonad6d3492013-08-16 18:54:26 +0000895
Lang Hamesa5cd9502014-11-27 05:40:13 +0000896 // Absolute relocations will have a zero symbol ID (STN_UNDEF), which
897 // will manifest here as a NULL symbol name.
898 // We can set this as a valid (but empty) symbol name, and rely
899 // on addRelocationForSymbol to handle this.
900 if (!Value.SymbolName)
901 Value.SymbolName = "";
902 break;
903 }
904 default:
905 llvm_unreachable("Unresolved symbol type!");
906 break;
Danil Malyshev70d22cc2012-03-30 16:45:19 +0000907 }
Eli Bendersky4c647582012-01-16 08:56:09 +0000908 }
Lang Hamesa5cd9502014-11-27 05:40:13 +0000909
Rafael Espindola4d4a48d2013-04-29 14:44:23 +0000910 uint64_t Offset;
Juergen Ributzka046709f2014-03-21 07:26:41 +0000911 Check(RelI->getOffset(Offset));
Rafael Espindola4d4a48d2013-04-29 14:44:23 +0000912
Juergen Ributzka7608dc02014-03-21 20:28:42 +0000913 DEBUG(dbgs() << "\t\tSectionID: " << SectionID << " Offset: " << Offset
Danil Malyshev70d22cc2012-03-30 16:45:19 +0000914 << "\n");
Tim Northovere19bed72014-07-23 12:32:47 +0000915 if ((Arch == Triple::aarch64 || Arch == Triple::aarch64_be) &&
Juergen Ributzka7608dc02014-03-21 20:28:42 +0000916 (RelType == ELF::R_AARCH64_CALL26 || RelType == ELF::R_AARCH64_JUMP26)) {
Tim Northover37cde972013-05-04 20:14:09 +0000917 // This is an AArch64 branch relocation, need to use a stub function.
918 DEBUG(dbgs() << "\t\tThis is an AArch64 branch relocation.");
919 SectionEntry &Section = Sections[SectionID];
920
921 // Look for an existing stub.
922 StubMap::const_iterator i = Stubs.find(Value);
923 if (i != Stubs.end()) {
Juergen Ributzka7608dc02014-03-21 20:28:42 +0000924 resolveRelocation(Section, Offset, (uint64_t)Section.Address + i->second,
925 RelType, 0);
Tim Northover37cde972013-05-04 20:14:09 +0000926 DEBUG(dbgs() << " Stub function found\n");
927 } else {
928 // Create a new stub function.
929 DEBUG(dbgs() << " Create a new stub function\n");
930 Stubs[Value] = Section.StubOffset;
Juergen Ributzka7608dc02014-03-21 20:28:42 +0000931 uint8_t *StubTargetAddr =
932 createStubFunction(Section.Address + Section.StubOffset);
Tim Northover37cde972013-05-04 20:14:09 +0000933
Juergen Ributzka7608dc02014-03-21 20:28:42 +0000934 RelocationEntry REmovz_g3(SectionID, StubTargetAddr - Section.Address,
Lang Hames9a891052014-09-07 04:13:13 +0000935 ELF::R_AARCH64_MOVW_UABS_G3, Value.Addend);
Juergen Ributzka7608dc02014-03-21 20:28:42 +0000936 RelocationEntry REmovk_g2(SectionID, StubTargetAddr - Section.Address + 4,
Lang Hames9a891052014-09-07 04:13:13 +0000937 ELF::R_AARCH64_MOVW_UABS_G2_NC, Value.Addend);
Juergen Ributzka7608dc02014-03-21 20:28:42 +0000938 RelocationEntry REmovk_g1(SectionID, StubTargetAddr - Section.Address + 8,
Lang Hames9a891052014-09-07 04:13:13 +0000939 ELF::R_AARCH64_MOVW_UABS_G1_NC, Value.Addend);
Tim Northover37cde972013-05-04 20:14:09 +0000940 RelocationEntry REmovk_g0(SectionID,
941 StubTargetAddr - Section.Address + 12,
942 ELF::R_AARCH64_MOVW_UABS_G0_NC, Value.Addend);
943
944 if (Value.SymbolName) {
945 addRelocationForSymbol(REmovz_g3, Value.SymbolName);
946 addRelocationForSymbol(REmovk_g2, Value.SymbolName);
947 addRelocationForSymbol(REmovk_g1, Value.SymbolName);
948 addRelocationForSymbol(REmovk_g0, Value.SymbolName);
949 } else {
950 addRelocationForSection(REmovz_g3, Value.SectionID);
951 addRelocationForSection(REmovk_g2, Value.SectionID);
952 addRelocationForSection(REmovk_g1, Value.SectionID);
953 addRelocationForSection(REmovk_g0, Value.SectionID);
954 }
955 resolveRelocation(Section, Offset,
Juergen Ributzka7608dc02014-03-21 20:28:42 +0000956 (uint64_t)Section.Address + Section.StubOffset, RelType,
957 0);
Tim Northover37cde972013-05-04 20:14:09 +0000958 Section.StubOffset += getMaxStubSize();
959 }
Keno Fischere6892c82015-05-01 20:21:45 +0000960 } else if (Arch == Triple::arm) {
961 if (RelType == ELF::R_ARM_PC24 || RelType == ELF::R_ARM_CALL ||
962 RelType == ELF::R_ARM_JUMP24) {
963 // This is an ARM branch relocation, need to use a stub function.
964 DEBUG(dbgs() << "\t\tThis is an ARM branch relocation.");
965 SectionEntry &Section = Sections[SectionID];
Eli Bendersky4c647582012-01-16 08:56:09 +0000966
Keno Fischere6892c82015-05-01 20:21:45 +0000967 // Look for an existing stub.
968 StubMap::const_iterator i = Stubs.find(Value);
969 if (i != Stubs.end()) {
970 resolveRelocation(Section, Offset, (uint64_t)Section.Address + i->second,
971 RelType, 0);
972 DEBUG(dbgs() << " Stub function found\n");
Pavel Labath3b8f3ad2015-04-16 08:58:15 +0000973 } else {
Keno Fischere6892c82015-05-01 20:21:45 +0000974 // Create a new stub function.
975 DEBUG(dbgs() << " Create a new stub function\n");
976 Stubs[Value] = Section.StubOffset;
977 uint8_t *StubTargetAddr =
978 createStubFunction(Section.Address + Section.StubOffset);
979 RelocationEntry RE(SectionID, StubTargetAddr - Section.Address,
980 ELF::R_ARM_ABS32, Value.Addend);
981 if (Value.SymbolName)
982 addRelocationForSymbol(RE, Value.SymbolName);
983 else
984 addRelocationForSection(RE, Value.SectionID);
Pavel Labath3b8f3ad2015-04-16 08:58:15 +0000985
Keno Fischere6892c82015-05-01 20:21:45 +0000986 resolveRelocation(Section, Offset,
987 (uint64_t)Section.Address + Section.StubOffset, RelType,
988 0);
989 Section.StubOffset += getMaxStubSize();
990 }
991 } else {
992 uint32_t *Placeholder =
993 reinterpret_cast<uint32_t*>(computePlaceholderAddress(SectionID, Offset));
994 if (RelType == ELF::R_ARM_PREL31 || RelType == ELF::R_ARM_TARGET1 ||
995 RelType == ELF::R_ARM_ABS32) {
996 Value.Addend += *Placeholder;
997 } else if (RelType == ELF::R_ARM_MOVW_ABS_NC || RelType == ELF::R_ARM_MOVT_ABS) {
998 // See ELF for ARM documentation
999 Value.Addend += (int16_t)((*Placeholder & 0xFFF) | (((*Placeholder >> 16) & 0xF) << 12));
1000 }
1001 processSimpleRelocation(SectionID, Offset, RelType, Value);
1002 }
1003 } else if ((Arch == Triple::mipsel || Arch == Triple::mips)) {
1004 uint32_t *Placeholder = reinterpret_cast<uint32_t*>(computePlaceholderAddress(SectionID, Offset));
1005 if (RelType == ELF::R_MIPS_26) {
1006 // This is an Mips branch relocation, need to use a stub function.
1007 DEBUG(dbgs() << "\t\tThis is a Mips branch relocation.");
1008 SectionEntry &Section = Sections[SectionID];
1009
1010 // Extract the addend from the instruction.
1011 // We shift up by two since the Value will be down shifted again
1012 // when applying the relocation.
1013 uint32_t Addend = ((*Placeholder) & 0x03ffffff) << 2;
1014
1015 Value.Addend += Addend;
1016
1017 // Look up for existing stub.
1018 StubMap::const_iterator i = Stubs.find(Value);
1019 if (i != Stubs.end()) {
1020 RelocationEntry RE(SectionID, Offset, RelType, i->second);
1021 addRelocationForSection(RE, SectionID);
1022 DEBUG(dbgs() << " Stub function found\n");
1023 } else {
1024 // Create a new stub function.
1025 DEBUG(dbgs() << " Create a new stub function\n");
1026 Stubs[Value] = Section.StubOffset;
1027 uint8_t *StubTargetAddr =
1028 createStubFunction(Section.Address + Section.StubOffset);
1029
1030 // Creating Hi and Lo relocations for the filled stub instructions.
1031 RelocationEntry REHi(SectionID, StubTargetAddr - Section.Address,
1032 ELF::R_MIPS_HI16, Value.Addend);
1033 RelocationEntry RELo(SectionID, StubTargetAddr - Section.Address + 4,
1034 ELF::R_MIPS_LO16, Value.Addend);
1035
1036 if (Value.SymbolName) {
1037 addRelocationForSymbol(REHi, Value.SymbolName);
1038 addRelocationForSymbol(RELo, Value.SymbolName);
1039 }
1040 else {
1041 addRelocationForSection(REHi, Value.SectionID);
1042 addRelocationForSection(RELo, Value.SectionID);
1043 }
1044
1045 RelocationEntry RE(SectionID, Offset, RelType, Section.StubOffset);
1046 addRelocationForSection(RE, SectionID);
1047 Section.StubOffset += getMaxStubSize();
1048 }
1049 } else {
1050 if (RelType == ELF::R_MIPS_HI16)
1051 Value.Addend += ((*Placeholder) & 0x0000ffff) << 16;
1052 else if (RelType == ELF::R_MIPS_LO16)
1053 Value.Addend += ((*Placeholder) & 0x0000ffff);
1054 else if (RelType == ELF::R_MIPS_32)
1055 Value.Addend += *Placeholder;
1056 processSimpleRelocation(SectionID, Offset, RelType, Value);
Akira Hatanaka111174b2012-08-17 21:28:04 +00001057 }
Bill Schmidt0a9170d2013-07-26 01:35:43 +00001058 } else if (Arch == Triple::ppc64 || Arch == Triple::ppc64le) {
Adhemerval Zanella5fc11b32012-10-25 13:13:48 +00001059 if (RelType == ELF::R_PPC64_REL24) {
Ulrich Weigand752b5c92014-07-20 23:53:14 +00001060 // Determine ABI variant in use for this object.
1061 unsigned AbiVariant;
Lang Hamesb5c7b1f2014-11-26 16:54:40 +00001062 Obj.getPlatformFlags(AbiVariant);
Ulrich Weigand752b5c92014-07-20 23:53:14 +00001063 AbiVariant &= ELF::EF_PPC64_ABI;
Adhemerval Zanella5fc11b32012-10-25 13:13:48 +00001064 // A PPC branch relocation will need a stub function if the target is
1065 // an external symbol (Symbol::ST_Unknown) or if the target address
1066 // is not within the signed 24-bits branch address.
Rafael Espindola4d4a48d2013-04-29 14:44:23 +00001067 SectionEntry &Section = Sections[SectionID];
1068 uint8_t *Target = Section.Address + Offset;
Adhemerval Zanella5fc11b32012-10-25 13:13:48 +00001069 bool RangeOverflow = false;
1070 if (SymType != SymbolRef::ST_Unknown) {
Ulrich Weigand752b5c92014-07-20 23:53:14 +00001071 if (AbiVariant != 2) {
1072 // In the ELFv1 ABI, a function call may point to the .opd entry,
1073 // so the final symbol value is calculated based on the relocation
1074 // values in the .opd section.
1075 findOPDEntrySection(Obj, ObjSectionToID, Value);
1076 } else {
1077 // In the ELFv2 ABI, a function symbol may provide a local entry
1078 // point, which must be used for direct calls.
1079 uint8_t SymOther;
1080 Symbol->getOther(SymOther);
1081 Value.Addend += ELF::decodePPC64LocalEntryOffset(SymOther);
1082 }
Adhemerval Zanella5fc11b32012-10-25 13:13:48 +00001083 uint8_t *RelocTarget = Sections[Value.SectionID].Address + Value.Addend;
1084 int32_t delta = static_cast<int32_t>(Target - RelocTarget);
1085 // If it is within 24-bits branch range, just set the branch target
1086 if (SignExtend32<24>(delta) == delta) {
Rafael Espindola4d4a48d2013-04-29 14:44:23 +00001087 RelocationEntry RE(SectionID, Offset, RelType, Value.Addend);
Adhemerval Zanella5fc11b32012-10-25 13:13:48 +00001088 if (Value.SymbolName)
1089 addRelocationForSymbol(RE, Value.SymbolName);
1090 else
1091 addRelocationForSection(RE, Value.SectionID);
1092 } else {
1093 RangeOverflow = true;
1094 }
1095 }
David Blaikiedc3f01e2015-03-09 01:57:13 +00001096 if (SymType == SymbolRef::ST_Unknown || RangeOverflow) {
Adhemerval Zanella5fc11b32012-10-25 13:13:48 +00001097 // It is an external symbol (SymbolRef::ST_Unknown) or within a range
1098 // larger than 24-bits.
1099 StubMap::const_iterator i = Stubs.find(Value);
1100 if (i != Stubs.end()) {
1101 // Symbol function stub already created, just relocate to it
Rafael Espindola4d4a48d2013-04-29 14:44:23 +00001102 resolveRelocation(Section, Offset,
Andrew Kaylorfb05a502012-11-02 19:45:23 +00001103 (uint64_t)Section.Address + i->second, RelType, 0);
Adhemerval Zanella5fc11b32012-10-25 13:13:48 +00001104 DEBUG(dbgs() << " Stub function found\n");
1105 } else {
1106 // Create a new stub function.
1107 DEBUG(dbgs() << " Create a new stub function\n");
1108 Stubs[Value] = Section.StubOffset;
Juergen Ributzka7608dc02014-03-21 20:28:42 +00001109 uint8_t *StubTargetAddr =
Ulrich Weigand752b5c92014-07-20 23:53:14 +00001110 createStubFunction(Section.Address + Section.StubOffset,
1111 AbiVariant);
Rafael Espindola4d4a48d2013-04-29 14:44:23 +00001112 RelocationEntry RE(SectionID, StubTargetAddr - Section.Address,
Adhemerval Zanella5fc11b32012-10-25 13:13:48 +00001113 ELF::R_PPC64_ADDR64, Value.Addend);
1114
1115 // Generates the 64-bits address loads as exemplified in section
Ulrich Weigand32626012014-06-20 18:17:56 +00001116 // 4.5.1 in PPC64 ELF ABI. Note that the relocations need to
1117 // apply to the low part of the instructions, so we have to update
1118 // the offset according to the target endianness.
1119 uint64_t StubRelocOffset = StubTargetAddr - Section.Address;
1120 if (!IsTargetLittleEndian)
1121 StubRelocOffset += 2;
1122
1123 RelocationEntry REhst(SectionID, StubRelocOffset + 0,
Adhemerval Zanella5fc11b32012-10-25 13:13:48 +00001124 ELF::R_PPC64_ADDR16_HIGHEST, Value.Addend);
Ulrich Weigand32626012014-06-20 18:17:56 +00001125 RelocationEntry REhr(SectionID, StubRelocOffset + 4,
Adhemerval Zanella5fc11b32012-10-25 13:13:48 +00001126 ELF::R_PPC64_ADDR16_HIGHER, Value.Addend);
Ulrich Weigand32626012014-06-20 18:17:56 +00001127 RelocationEntry REh(SectionID, StubRelocOffset + 12,
Adhemerval Zanella5fc11b32012-10-25 13:13:48 +00001128 ELF::R_PPC64_ADDR16_HI, Value.Addend);
Ulrich Weigand32626012014-06-20 18:17:56 +00001129 RelocationEntry REl(SectionID, StubRelocOffset + 16,
Adhemerval Zanella5fc11b32012-10-25 13:13:48 +00001130 ELF::R_PPC64_ADDR16_LO, Value.Addend);
1131
1132 if (Value.SymbolName) {
1133 addRelocationForSymbol(REhst, Value.SymbolName);
Juergen Ributzka7608dc02014-03-21 20:28:42 +00001134 addRelocationForSymbol(REhr, Value.SymbolName);
1135 addRelocationForSymbol(REh, Value.SymbolName);
1136 addRelocationForSymbol(REl, Value.SymbolName);
Adhemerval Zanella5fc11b32012-10-25 13:13:48 +00001137 } else {
1138 addRelocationForSection(REhst, Value.SectionID);
Juergen Ributzka7608dc02014-03-21 20:28:42 +00001139 addRelocationForSection(REhr, Value.SectionID);
1140 addRelocationForSection(REh, Value.SectionID);
1141 addRelocationForSection(REl, Value.SectionID);
Adhemerval Zanella5fc11b32012-10-25 13:13:48 +00001142 }
1143
Rafael Espindola4d4a48d2013-04-29 14:44:23 +00001144 resolveRelocation(Section, Offset,
Andrew Kaylorfb05a502012-11-02 19:45:23 +00001145 (uint64_t)Section.Address + Section.StubOffset,
1146 RelType, 0);
Adhemerval Zanella5fc11b32012-10-25 13:13:48 +00001147 Section.StubOffset += getMaxStubSize();
1148 }
Ulrich Weigand752b5c92014-07-20 23:53:14 +00001149 if (SymType == SymbolRef::ST_Unknown) {
Ulrich Weigandfa84ac92014-03-11 15:26:27 +00001150 // Restore the TOC for external calls
Ulrich Weigand752b5c92014-07-20 23:53:14 +00001151 if (AbiVariant == 2)
1152 writeInt32BE(Target + 4, 0xE8410018); // ld r2,28(r1)
1153 else
1154 writeInt32BE(Target + 4, 0xE8410028); // ld r2,40(r1)
1155 }
Adhemerval Zanella5fc11b32012-10-25 13:13:48 +00001156 }
Ulrich Weigand8f1f87c2014-06-27 10:32:14 +00001157 } else if (RelType == ELF::R_PPC64_TOC16 ||
1158 RelType == ELF::R_PPC64_TOC16_DS ||
1159 RelType == ELF::R_PPC64_TOC16_LO ||
1160 RelType == ELF::R_PPC64_TOC16_LO_DS ||
1161 RelType == ELF::R_PPC64_TOC16_HI ||
1162 RelType == ELF::R_PPC64_TOC16_HA) {
1163 // These relocations are supposed to subtract the TOC address from
1164 // the final value. This does not fit cleanly into the RuntimeDyld
1165 // scheme, since there may be *two* sections involved in determining
1166 // the relocation value (the section of the symbol refered to by the
1167 // relocation, and the TOC section associated with the current module).
1168 //
1169 // Fortunately, these relocations are currently only ever generated
1170 // refering to symbols that themselves reside in the TOC, which means
1171 // that the two sections are actually the same. Thus they cancel out
1172 // and we can immediately resolve the relocation right now.
1173 switch (RelType) {
1174 case ELF::R_PPC64_TOC16: RelType = ELF::R_PPC64_ADDR16; break;
1175 case ELF::R_PPC64_TOC16_DS: RelType = ELF::R_PPC64_ADDR16_DS; break;
1176 case ELF::R_PPC64_TOC16_LO: RelType = ELF::R_PPC64_ADDR16_LO; break;
1177 case ELF::R_PPC64_TOC16_LO_DS: RelType = ELF::R_PPC64_ADDR16_LO_DS; break;
1178 case ELF::R_PPC64_TOC16_HI: RelType = ELF::R_PPC64_ADDR16_HI; break;
1179 case ELF::R_PPC64_TOC16_HA: RelType = ELF::R_PPC64_ADDR16_HA; break;
1180 default: llvm_unreachable("Wrong relocation type.");
1181 }
1182
1183 RelocationValueRef TOCValue;
1184 findPPC64TOCSection(Obj, ObjSectionToID, TOCValue);
1185 if (Value.SymbolName || Value.SectionID != TOCValue.SectionID)
1186 llvm_unreachable("Unsupported TOC relocation.");
1187 Value.Addend -= TOCValue.Addend;
1188 resolveRelocation(Sections[SectionID], Offset, Value.Addend, RelType, 0);
Adhemerval Zanella5fc11b32012-10-25 13:13:48 +00001189 } else {
Ulrich Weigand8f1f87c2014-06-27 10:32:14 +00001190 // There are two ways to refer to the TOC address directly: either
1191 // via a ELF::R_PPC64_TOC relocation (where both symbol and addend are
1192 // ignored), or via any relocation that refers to the magic ".TOC."
1193 // symbols (in which case the addend is respected).
1194 if (RelType == ELF::R_PPC64_TOC) {
1195 RelType = ELF::R_PPC64_ADDR64;
1196 findPPC64TOCSection(Obj, ObjSectionToID, Value);
1197 } else if (TargetName == ".TOC.") {
1198 findPPC64TOCSection(Obj, ObjSectionToID, Value);
1199 Value.Addend += Addend;
1200 }
1201
Rafael Espindola4d4a48d2013-04-29 14:44:23 +00001202 RelocationEntry RE(SectionID, Offset, RelType, Value.Addend);
Richard Mittonad6d3492013-08-16 18:54:26 +00001203
1204 if (Value.SymbolName)
Adhemerval Zanella5fc11b32012-10-25 13:13:48 +00001205 addRelocationForSymbol(RE, Value.SymbolName);
1206 else
1207 addRelocationForSection(RE, Value.SectionID);
1208 }
Richard Sandifordca044082013-05-03 14:15:35 +00001209 } else if (Arch == Triple::systemz &&
Juergen Ributzka7608dc02014-03-21 20:28:42 +00001210 (RelType == ELF::R_390_PLT32DBL || RelType == ELF::R_390_GOTENT)) {
Richard Sandifordca044082013-05-03 14:15:35 +00001211 // Create function stubs for both PLT and GOT references, regardless of
1212 // whether the GOT reference is to data or code. The stub contains the
1213 // full address of the symbol, as needed by GOT references, and the
1214 // executable part only adds an overhead of 8 bytes.
1215 //
1216 // We could try to conserve space by allocating the code and data
1217 // parts of the stub separately. However, as things stand, we allocate
1218 // a stub for every relocation, so using a GOT in JIT code should be
1219 // no less space efficient than using an explicit constant pool.
1220 DEBUG(dbgs() << "\t\tThis is a SystemZ indirect relocation.");
1221 SectionEntry &Section = Sections[SectionID];
1222
1223 // Look for an existing stub.
1224 StubMap::const_iterator i = Stubs.find(Value);
1225 uintptr_t StubAddress;
1226 if (i != Stubs.end()) {
1227 StubAddress = uintptr_t(Section.Address) + i->second;
1228 DEBUG(dbgs() << " Stub function found\n");
1229 } else {
1230 // Create a new stub function.
1231 DEBUG(dbgs() << " Create a new stub function\n");
1232
1233 uintptr_t BaseAddress = uintptr_t(Section.Address);
1234 uintptr_t StubAlignment = getStubAlignment();
Juergen Ributzka7608dc02014-03-21 20:28:42 +00001235 StubAddress = (BaseAddress + Section.StubOffset + StubAlignment - 1) &
1236 -StubAlignment;
Richard Sandifordca044082013-05-03 14:15:35 +00001237 unsigned StubOffset = StubAddress - BaseAddress;
1238
1239 Stubs[Value] = StubOffset;
1240 createStubFunction((uint8_t *)StubAddress);
Juergen Ributzka7608dc02014-03-21 20:28:42 +00001241 RelocationEntry RE(SectionID, StubOffset + 8, ELF::R_390_64,
Lang Hames40e200e2014-08-25 23:33:48 +00001242 Value.Offset);
Richard Sandifordca044082013-05-03 14:15:35 +00001243 if (Value.SymbolName)
1244 addRelocationForSymbol(RE, Value.SymbolName);
1245 else
1246 addRelocationForSection(RE, Value.SectionID);
1247 Section.StubOffset = StubOffset + getMaxStubSize();
1248 }
1249
1250 if (RelType == ELF::R_390_GOTENT)
Juergen Ributzka7608dc02014-03-21 20:28:42 +00001251 resolveRelocation(Section, Offset, StubAddress + 8, ELF::R_390_PC32DBL,
1252 Addend);
Richard Sandifordca044082013-05-03 14:15:35 +00001253 else
1254 resolveRelocation(Section, Offset, StubAddress, RelType, Addend);
Keno Fischere6892c82015-05-01 20:21:45 +00001255 } else if (Arch == Triple::x86_64) {
1256 if (RelType == ELF::R_X86_64_PLT32) {
1257 // The way the PLT relocations normally work is that the linker allocates
1258 // the
1259 // PLT and this relocation makes a PC-relative call into the PLT. The PLT
1260 // entry will then jump to an address provided by the GOT. On first call,
1261 // the
1262 // GOT address will point back into PLT code that resolves the symbol. After
1263 // the first call, the GOT entry points to the actual function.
1264 //
1265 // For local functions we're ignoring all of that here and just replacing
1266 // the PLT32 relocation type with PC32, which will translate the relocation
1267 // into a PC-relative call directly to the function. For external symbols we
1268 // can't be sure the function will be within 2^32 bytes of the call site, so
1269 // we need to create a stub, which calls into the GOT. This case is
1270 // equivalent to the usual PLT implementation except that we use the stub
1271 // mechanism in RuntimeDyld (which puts stubs at the end of the section)
1272 // rather than allocating a PLT section.
1273 if (Value.SymbolName) {
1274 // This is a call to an external function.
1275 // Look for an existing stub.
1276 SectionEntry &Section = Sections[SectionID];
1277 StubMap::const_iterator i = Stubs.find(Value);
1278 uintptr_t StubAddress;
1279 if (i != Stubs.end()) {
Andrew Kaylor4612fed2013-08-19 23:27:43 +00001280 StubAddress = uintptr_t(Section.Address) + i->second;
1281 DEBUG(dbgs() << " Stub function found\n");
Keno Fischere6892c82015-05-01 20:21:45 +00001282 } else {
Andrew Kaylor4612fed2013-08-19 23:27:43 +00001283 // Create a new stub function (equivalent to a PLT entry).
1284 DEBUG(dbgs() << " Create a new stub function\n");
1285
1286 uintptr_t BaseAddress = uintptr_t(Section.Address);
1287 uintptr_t StubAlignment = getStubAlignment();
Juergen Ributzka7608dc02014-03-21 20:28:42 +00001288 StubAddress = (BaseAddress + Section.StubOffset + StubAlignment - 1) &
Keno Fischere6892c82015-05-01 20:21:45 +00001289 -StubAlignment;
Andrew Kaylor4612fed2013-08-19 23:27:43 +00001290 unsigned StubOffset = StubAddress - BaseAddress;
1291 Stubs[Value] = StubOffset;
1292 createStubFunction((uint8_t *)StubAddress);
1293
Andrew Kaylor4612fed2013-08-19 23:27:43 +00001294 // Bump our stub offset counter
1295 Section.StubOffset = StubOffset + getMaxStubSize();
Keno Fischer02628de2015-04-14 02:10:35 +00001296
1297 // Allocate a GOT Entry
1298 uint64_t GOTOffset = allocateGOTEntries(SectionID, 1);
1299
1300 // The load of the GOT address has an addend of -4
1301 resolveGOTOffsetRelocation(SectionID, StubOffset + 2, GOTOffset - 4);
1302
1303 // Fill in the value of the symbol we're targeting into the GOT
1304 addRelocationForSymbol(computeGOTOffsetRE(SectionID,GOTOffset,0,ELF::R_X86_64_64),
Keno Fischere6892c82015-05-01 20:21:45 +00001305 Value.SymbolName);
1306 }
1307
1308 // Make the target call a call into the stub table.
1309 resolveRelocation(Section, Offset, StubAddress, ELF::R_X86_64_PC32,
1310 Addend);
1311 } else {
1312 RelocationEntry RE(SectionID, Offset, ELF::R_X86_64_PC32, Value.Addend,
1313 Value.Offset);
1314 addRelocationForSection(RE, Value.SectionID);
Andrew Kaylor4612fed2013-08-19 23:27:43 +00001315 }
Keno Fischere6892c82015-05-01 20:21:45 +00001316 } else if (RelType == ELF::R_X86_64_GOTPCREL) {
1317 uint64_t GOTOffset = allocateGOTEntries(SectionID, 1);
1318 resolveGOTOffsetRelocation(SectionID, Offset, GOTOffset + Addend);
Andrew Kaylor4612fed2013-08-19 23:27:43 +00001319
Keno Fischere6892c82015-05-01 20:21:45 +00001320 // Fill in the value of the symbol we're targeting into the GOT
1321 RelocationEntry RE = computeGOTOffsetRE(SectionID, GOTOffset, Value.Offset, ELF::R_X86_64_64);
1322 if (Value.SymbolName)
1323 addRelocationForSymbol(RE, Value.SymbolName);
1324 else
1325 addRelocationForSection(RE, Value.SectionID);
1326 } else if (RelType == ELF::R_X86_64_PC32) {
1327 Value.Addend += support::ulittle32_t::ref(computePlaceholderAddress(SectionID, Offset));
1328 processSimpleRelocation(SectionID, Offset, RelType, Value);
1329 } else if (RelType == ELF::R_X86_64_PC64) {
1330 Value.Addend += support::ulittle64_t::ref(computePlaceholderAddress(SectionID, Offset));
1331 processSimpleRelocation(SectionID, Offset, RelType, Value);
Andrew Kaylor4612fed2013-08-19 23:27:43 +00001332 } else {
Keno Fischere6892c82015-05-01 20:21:45 +00001333 processSimpleRelocation(SectionID, Offset, RelType, Value);
Andrew Kaylor4612fed2013-08-19 23:27:43 +00001334 }
Eli Bendersky667b8792012-05-01 10:41:12 +00001335 } else {
Keno Fischere6892c82015-05-01 20:21:45 +00001336 if (Arch == Triple::x86) {
1337 Value.Addend += support::ulittle32_t::ref(computePlaceholderAddress(SectionID, Offset));
1338 }
1339 processSimpleRelocation(SectionID, Offset, RelType, Value);
Eli Bendersky667b8792012-05-01 10:41:12 +00001340 }
Juergen Ributzka046709f2014-03-21 07:26:41 +00001341 return ++RelI;
Jim Grosbacheff0a402012-01-16 22:26:39 +00001342}
1343
Andrew Kaylor4612fed2013-08-19 23:27:43 +00001344size_t RuntimeDyldELF::getGOTEntrySize() {
1345 // We don't use the GOT in all of these cases, but it's essentially free
1346 // to put them all here.
1347 size_t Result = 0;
1348 switch (Arch) {
1349 case Triple::x86_64:
1350 case Triple::aarch64:
James Molloybd2ffa02014-04-30 10:15:41 +00001351 case Triple::aarch64_be:
Andrew Kaylor4612fed2013-08-19 23:27:43 +00001352 case Triple::ppc64:
1353 case Triple::ppc64le:
1354 case Triple::systemz:
1355 Result = sizeof(uint64_t);
1356 break;
1357 case Triple::x86:
1358 case Triple::arm:
1359 case Triple::thumb:
1360 case Triple::mips:
1361 case Triple::mipsel:
1362 Result = sizeof(uint32_t);
1363 break;
Juergen Ributzka7608dc02014-03-21 20:28:42 +00001364 default:
1365 llvm_unreachable("Unsupported CPU type!");
Andrew Kaylor4612fed2013-08-19 23:27:43 +00001366 }
1367 return Result;
1368}
1369
Keno Fischer02628de2015-04-14 02:10:35 +00001370uint64_t RuntimeDyldELF::allocateGOTEntries(unsigned SectionID, unsigned no)
1371{
1372 (void)SectionID; // The GOT Section is the same for all section in the object file
1373 if (GOTSectionID == 0) {
1374 GOTSectionID = Sections.size();
1375 // Reserve a section id. We'll allocate the section later
1376 // once we know the total size
1377 Sections.push_back(SectionEntry(".got", 0, 0, 0));
Andrew Kaylor4612fed2013-08-19 23:27:43 +00001378 }
Keno Fischer02628de2015-04-14 02:10:35 +00001379 uint64_t StartOffset = CurrentGOTIndex * getGOTEntrySize();
1380 CurrentGOTIndex += no;
1381 return StartOffset;
1382}
Andrew Kaylor480dcb32013-10-05 01:52:09 +00001383
Keno Fischer02628de2015-04-14 02:10:35 +00001384void RuntimeDyldELF::resolveGOTOffsetRelocation(unsigned SectionID, uint64_t Offset, uint64_t GOTOffset)
1385{
1386 // Fill in the relative address of the GOT Entry into the stub
1387 RelocationEntry GOTRE(SectionID, Offset, ELF::R_X86_64_PC32, GOTOffset);
1388 addRelocationForSection(GOTRE, GOTSectionID);
1389}
1390
1391RelocationEntry RuntimeDyldELF::computeGOTOffsetRE(unsigned SectionID, uint64_t GOTOffset, uint64_t SymbolOffset,
1392 uint32_t Type)
1393{
1394 (void)SectionID; // The GOT Section is the same for all section in the object file
1395 return RelocationEntry(GOTSectionID, GOTOffset, Type, SymbolOffset);
Andrew Kaylor4612fed2013-08-19 23:27:43 +00001396}
1397
Lang Hamesb5c7b1f2014-11-26 16:54:40 +00001398void RuntimeDyldELF::finalizeLoad(const ObjectFile &Obj,
Lang Hames36072da2014-05-12 21:39:59 +00001399 ObjSectionToIDMap &SectionMap) {
Andrew Kaylor7bb13442013-10-11 21:25:48 +00001400 // If necessary, allocate the global offset table
Keno Fischer02628de2015-04-14 02:10:35 +00001401 if (GOTSectionID != 0) {
Lang Hames633fe142015-03-30 03:37:06 +00001402 // Allocate memory for the section
Keno Fischer02628de2015-04-14 02:10:35 +00001403 size_t TotalSize = CurrentGOTIndex * getGOTEntrySize();
Lang Hames633fe142015-03-30 03:37:06 +00001404 uint8_t *Addr = MemMgr.allocateDataSection(TotalSize, getGOTEntrySize(),
Keno Fischer02628de2015-04-14 02:10:35 +00001405 GOTSectionID, ".got", false);
Lang Hames633fe142015-03-30 03:37:06 +00001406 if (!Addr)
1407 report_fatal_error("Unable to allocate memory for GOT!");
Andrew Kaylor480dcb32013-10-05 01:52:09 +00001408
Keno Fischer02628de2015-04-14 02:10:35 +00001409 Sections[GOTSectionID] = SectionEntry(".got", Addr, TotalSize, 0);
1410
1411 if (Checker)
1412 Checker->registerSection(Obj.getFileName(), GOTSectionID);
1413
Lang Hames633fe142015-03-30 03:37:06 +00001414 // For now, initialize all GOT entries to zero. We'll fill them in as
1415 // needed when GOT-based relocations are applied.
1416 memset(Addr, 0, TotalSize);
Andrew Kaylor4612fed2013-08-19 23:27:43 +00001417 }
Andrew Kaylor7bb13442013-10-11 21:25:48 +00001418
1419 // Look for and record the EH frame section.
1420 ObjSectionToIDMap::iterator i, e;
1421 for (i = SectionMap.begin(), e = SectionMap.end(); i != e; ++i) {
1422 const SectionRef &Section = i->first;
1423 StringRef Name;
1424 Section.getName(Name);
1425 if (Name == ".eh_frame") {
1426 UnregisteredEHFrameSections.push_back(i->second);
1427 break;
1428 }
1429 }
Keno Fischer02628de2015-04-14 02:10:35 +00001430
1431 GOTSectionID = 0;
1432 CurrentGOTIndex = 0;
Andrew Kaylor4612fed2013-08-19 23:27:43 +00001433}
1434
Lang Hamesb5c7b1f2014-11-26 16:54:40 +00001435bool RuntimeDyldELF::isCompatibleFile(const object::ObjectFile &Obj) const {
1436 return Obj.isELF();
Lang Hames173c69f2014-01-08 04:09:09 +00001437}
1438
Eli Bendersky4c647582012-01-16 08:56:09 +00001439} // namespace llvm