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Rafael Espindola01205f72015-09-22 18:19:46 +00001//===- Target.cpp ---------------------------------------------------------===//
2//
3// The LLVM Linker
4//
5// This file is distributed under the University of Illinois Open Source
6// License. See LICENSE.TXT for details.
7//
8//===----------------------------------------------------------------------===//
Rui Ueyama34f29242015-10-13 19:51:57 +00009//
Rui Ueyama66072272015-10-15 19:52:27 +000010// Machine-specific things, such as applying relocations, creation of
11// GOT or PLT entries, etc., are handled in this file.
12//
13// Refer the ELF spec for the single letter varaibles, S, A or P, used
14// in this file. SA is S+A.
Rui Ueyama34f29242015-10-13 19:51:57 +000015//
16//===----------------------------------------------------------------------===//
Rafael Espindola01205f72015-09-22 18:19:46 +000017
18#include "Target.h"
Rafael Espindolac4010882015-09-22 20:54:08 +000019#include "Error.h"
Rui Ueyamaaf21d922015-10-08 20:06:07 +000020#include "OutputSections.h"
Rafael Espindola3ef3a4c2015-09-29 23:22:16 +000021#include "Symbols.h"
Rafael Espindola01205f72015-09-22 18:19:46 +000022
23#include "llvm/ADT/ArrayRef.h"
Rafael Espindolac4010882015-09-22 20:54:08 +000024#include "llvm/Object/ELF.h"
Rafael Espindola01205f72015-09-22 18:19:46 +000025#include "llvm/Support/Endian.h"
26#include "llvm/Support/ELF.h"
27
28using namespace llvm;
Rafael Espindolac4010882015-09-22 20:54:08 +000029using namespace llvm::object;
Rafael Espindola0872ea32015-09-24 14:16:02 +000030using namespace llvm::support::endian;
Rafael Espindola01205f72015-09-22 18:19:46 +000031using namespace llvm::ELF;
32
33namespace lld {
34namespace elf2 {
35
36std::unique_ptr<TargetInfo> Target;
37
Rui Ueyamaefc23de2015-10-14 21:30:32 +000038static void add32le(uint8_t *L, int32_t V) { write32le(L, read32le(L) + V); }
39static void add32be(uint8_t *L, int32_t V) { write32be(L, read32be(L) + V); }
40static void or32le(uint8_t *L, int32_t V) { write32le(L, read32le(L) | V); }
41
42template <bool IsLE> static void add32(uint8_t *L, int32_t V);
43template <> void add32<true>(uint8_t *L, int32_t V) { add32le(L, V); }
44template <> void add32<false>(uint8_t *L, int32_t V) { add32be(L, V); }
45
46namespace {
47class X86TargetInfo final : public TargetInfo {
48public:
49 X86TargetInfo();
George Rimar648a2c32015-10-20 08:54:27 +000050 void writeGotPltEntry(uint8_t *Buf, uint64_t Plt) const override;
51 void writePltZeroEntry(uint8_t *Buf, uint64_t GotEntryAddr,
52 uint64_t PltEntryAddr) const override;
Rui Ueyamaefc23de2015-10-14 21:30:32 +000053 void writePltEntry(uint8_t *Buf, uint64_t GotEntryAddr,
George Rimar648a2c32015-10-20 08:54:27 +000054 uint64_t PltEntryAddr, int32_t Index) const override;
Rui Ueyamaefc23de2015-10-14 21:30:32 +000055 bool relocNeedsGot(uint32_t Type, const SymbolBody &S) const override;
56 bool relocPointsToGot(uint32_t Type) const override;
57 bool relocNeedsPlt(uint32_t Type, const SymbolBody &S) const override;
58 void relocateOne(uint8_t *Buf, uint8_t *BufEnd, const void *RelP,
59 uint32_t Type, uint64_t BaseAddr,
Rui Ueyama66072272015-10-15 19:52:27 +000060 uint64_t SA) const override;
Rui Ueyamaefc23de2015-10-14 21:30:32 +000061};
62
63class X86_64TargetInfo final : public TargetInfo {
64public:
65 X86_64TargetInfo();
66 unsigned getPLTRefReloc(unsigned Type) const override;
George Rimar648a2c32015-10-20 08:54:27 +000067 void writeGotPltEntry(uint8_t *Buf, uint64_t Plt) const override;
68 void writePltZeroEntry(uint8_t *Buf, uint64_t GotEntryAddr,
69 uint64_t PltEntryAddr) const override;
Rui Ueyamaefc23de2015-10-14 21:30:32 +000070 void writePltEntry(uint8_t *Buf, uint64_t GotEntryAddr,
George Rimar648a2c32015-10-20 08:54:27 +000071 uint64_t PltEntryAddr, int32_t Index) const override;
Rui Ueyamaefc23de2015-10-14 21:30:32 +000072 bool relocNeedsGot(uint32_t Type, const SymbolBody &S) const override;
73 bool relocNeedsPlt(uint32_t Type, const SymbolBody &S) const override;
74 void relocateOne(uint8_t *Buf, uint8_t *BufEnd, const void *RelP,
75 uint32_t Type, uint64_t BaseAddr,
Rui Ueyama66072272015-10-15 19:52:27 +000076 uint64_t SA) const override;
Rui Ueyamaefc23de2015-10-14 21:30:32 +000077 bool isRelRelative(uint32_t Type) const override;
78};
79
80class PPC64TargetInfo final : public TargetInfo {
81public:
82 PPC64TargetInfo();
George Rimar648a2c32015-10-20 08:54:27 +000083 void writeGotPltEntry(uint8_t *Buf, uint64_t Plt) const override;
84 void writePltZeroEntry(uint8_t *Buf, uint64_t GotEntryAddr,
85 uint64_t PltEntryAddr) const override;
Rui Ueyamaefc23de2015-10-14 21:30:32 +000086 void writePltEntry(uint8_t *Buf, uint64_t GotEntryAddr,
George Rimar648a2c32015-10-20 08:54:27 +000087 uint64_t PltEntryAddr, int32_t Index) const override;
Rui Ueyamaefc23de2015-10-14 21:30:32 +000088 bool relocNeedsGot(uint32_t Type, const SymbolBody &S) const override;
89 bool relocNeedsPlt(uint32_t Type, const SymbolBody &S) const override;
90 void relocateOne(uint8_t *Buf, uint8_t *BufEnd, const void *RelP,
91 uint32_t Type, uint64_t BaseAddr,
Rui Ueyama66072272015-10-15 19:52:27 +000092 uint64_t SA) const override;
Rui Ueyamaefc23de2015-10-14 21:30:32 +000093 bool isRelRelative(uint32_t Type) const override;
94};
95
Rui Ueyamaefc23de2015-10-14 21:30:32 +000096class AArch64TargetInfo final : public TargetInfo {
97public:
98 AArch64TargetInfo();
George Rimar648a2c32015-10-20 08:54:27 +000099 void writeGotPltEntry(uint8_t *Buf, uint64_t Plt) const override;
100 void writePltZeroEntry(uint8_t *Buf, uint64_t GotEntryAddr,
101 uint64_t PltEntryAddr) const override;
Rui Ueyamaefc23de2015-10-14 21:30:32 +0000102 void writePltEntry(uint8_t *Buf, uint64_t GotEntryAddr,
George Rimar648a2c32015-10-20 08:54:27 +0000103 uint64_t PltEntryAddr, int32_t Index) const override;
Rui Ueyamaefc23de2015-10-14 21:30:32 +0000104 bool relocNeedsGot(uint32_t Type, const SymbolBody &S) const override;
105 bool relocNeedsPlt(uint32_t Type, const SymbolBody &S) const override;
106 void relocateOne(uint8_t *Buf, uint8_t *BufEnd, const void *RelP,
107 uint32_t Type, uint64_t BaseAddr,
Rui Ueyama66072272015-10-15 19:52:27 +0000108 uint64_t SA) const override;
Rui Ueyamaefc23de2015-10-14 21:30:32 +0000109};
110
111template <class ELFT> class MipsTargetInfo final : public TargetInfo {
112public:
113 MipsTargetInfo();
George Rimar648a2c32015-10-20 08:54:27 +0000114 void writeGotPltEntry(uint8_t *Buf, uint64_t Plt) const override;
115 void writePltZeroEntry(uint8_t *Buf, uint64_t GotEntryAddr,
116 uint64_t PltEntryAddr) const override;
Rui Ueyamaefc23de2015-10-14 21:30:32 +0000117 void writePltEntry(uint8_t *Buf, uint64_t GotEntryAddr,
George Rimar648a2c32015-10-20 08:54:27 +0000118 uint64_t PltEntryAddr, int32_t Index) const override;
Rui Ueyamaefc23de2015-10-14 21:30:32 +0000119 bool relocNeedsGot(uint32_t Type, const SymbolBody &S) const override;
120 bool relocNeedsPlt(uint32_t Type, const SymbolBody &S) const override;
121 void relocateOne(uint8_t *Buf, uint8_t *BufEnd, const void *RelP,
122 uint32_t Type, uint64_t BaseAddr,
Rui Ueyama66072272015-10-15 19:52:27 +0000123 uint64_t SA) const override;
Rui Ueyamaefc23de2015-10-14 21:30:32 +0000124};
125} // anonymous namespace
126
Rui Ueyama91004392015-10-13 16:08:15 +0000127TargetInfo *createTarget() {
128 switch (Config->EMachine) {
129 case EM_386:
130 return new X86TargetInfo();
131 case EM_AARCH64:
132 return new AArch64TargetInfo();
133 case EM_MIPS:
Simon Atanasyan9c2d7882015-10-14 14:24:46 +0000134 switch (Config->EKind) {
135 case ELF32LEKind:
136 return new MipsTargetInfo<ELF32LE>();
137 case ELF32BEKind:
138 return new MipsTargetInfo<ELF32BE>();
139 default:
140 error("Unsupported MIPS target");
141 }
Rui Ueyama91004392015-10-13 16:08:15 +0000142 case EM_PPC64:
143 return new PPC64TargetInfo();
144 case EM_X86_64:
145 return new X86_64TargetInfo();
146 }
147 error("Unknown target machine");
148}
149
Rafael Espindola01205f72015-09-22 18:19:46 +0000150TargetInfo::~TargetInfo() {}
151
Rafael Espindola227556e2015-10-14 16:15:46 +0000152unsigned TargetInfo::getPLTRefReloc(unsigned Type) const { return PCRelReloc; }
153
Rafael Espindola6d7fcdb2015-09-29 13:36:32 +0000154bool TargetInfo::relocPointsToGot(uint32_t Type) const { return false; }
155
Rafael Espindolaae244002015-10-05 19:30:12 +0000156bool TargetInfo::isRelRelative(uint32_t Type) const { return true; }
157
Rafael Espindola7f074422015-09-22 21:35:51 +0000158X86TargetInfo::X86TargetInfo() {
159 PCRelReloc = R_386_PC32;
160 GotReloc = R_386_GLOB_DAT;
Rafael Espindola8acb95c2015-09-29 14:42:37 +0000161 GotRefReloc = R_386_GOT32;
George Rimar648a2c32015-10-20 08:54:27 +0000162 PltReloc = R_386_JUMP_SLOT;
Rafael Espindola7f074422015-09-22 21:35:51 +0000163}
Rafael Espindola01205f72015-09-22 18:19:46 +0000164
George Rimar648a2c32015-10-20 08:54:27 +0000165void X86TargetInfo::writeGotPltEntry(uint8_t *Buf, uint64_t Plt) const {}
166void X86TargetInfo::writePltZeroEntry(uint8_t *Buf, uint64_t GotEntryAddr,
167 uint64_t PltEntryAddr) const {}
168
Rafael Espindola01205f72015-09-22 18:19:46 +0000169void X86TargetInfo::writePltEntry(uint8_t *Buf, uint64_t GotEntryAddr,
George Rimar648a2c32015-10-20 08:54:27 +0000170 uint64_t PltEntryAddr, int32_t Index) const {
Rui Ueyamac58656c2015-10-13 16:59:30 +0000171 // jmpl *val; nop; nop
172 const uint8_t Inst[] = {0xff, 0x25, 0, 0, 0, 0, 0x90, 0x90};
Rui Ueyama1500a902015-09-29 23:00:47 +0000173 memcpy(Buf, Inst, sizeof(Inst));
Rui Ueyamac58656c2015-10-13 16:59:30 +0000174 assert(isUInt<32>(GotEntryAddr));
175 write32le(Buf + 2, GotEntryAddr);
Rafael Espindola01205f72015-09-22 18:19:46 +0000176}
177
Rafael Espindola3ef3a4c2015-09-29 23:22:16 +0000178bool X86TargetInfo::relocNeedsGot(uint32_t Type, const SymbolBody &S) const {
Rui Ueyama5ba3ac42015-09-30 01:40:08 +0000179 return Type == R_386_GOT32 || relocNeedsPlt(Type, S);
Rafael Espindola01205f72015-09-22 18:19:46 +0000180}
181
Rafael Espindola6d7fcdb2015-09-29 13:36:32 +0000182bool X86TargetInfo::relocPointsToGot(uint32_t Type) const {
183 return Type == R_386_GOTPC;
184}
185
Rafael Espindola3ef3a4c2015-09-29 23:22:16 +0000186bool X86TargetInfo::relocNeedsPlt(uint32_t Type, const SymbolBody &S) const {
George Rimar730c2782015-10-07 18:46:13 +0000187 return Type == R_386_PLT32 || (Type == R_386_PC32 && S.isShared());
Rafael Espindola01205f72015-09-22 18:19:46 +0000188}
189
Hal Finkel87bbd5f2015-10-12 21:19:18 +0000190void X86TargetInfo::relocateOne(uint8_t *Buf, uint8_t *BufEnd, const void *RelP,
191 uint32_t Type, uint64_t BaseAddr,
Rui Ueyama66072272015-10-15 19:52:27 +0000192 uint64_t SA) const {
Rafael Espindolac4010882015-09-22 20:54:08 +0000193 typedef ELFFile<ELF32LE>::Elf_Rel Elf_Rel;
194 auto &Rel = *reinterpret_cast<const Elf_Rel *>(RelP);
195
196 uint32_t Offset = Rel.r_offset;
Rui Ueyama87bc41b2015-10-06 18:54:43 +0000197 uint8_t *Loc = Buf + Offset;
Rafael Espindolac4010882015-09-22 20:54:08 +0000198 switch (Type) {
Rafael Espindola8acb95c2015-09-29 14:42:37 +0000199 case R_386_GOT32:
Rui Ueyama66072272015-10-15 19:52:27 +0000200 add32le(Loc, SA - Out<ELF32LE>::Got->getVA());
Rafael Espindola8acb95c2015-09-29 14:42:37 +0000201 break;
Rafael Espindolac4010882015-09-22 20:54:08 +0000202 case R_386_PC32:
Rui Ueyama66072272015-10-15 19:52:27 +0000203 add32le(Loc, SA - BaseAddr - Offset);
Rafael Espindolac4010882015-09-22 20:54:08 +0000204 break;
205 case R_386_32:
Rui Ueyama66072272015-10-15 19:52:27 +0000206 add32le(Loc, SA);
Rafael Espindolac4010882015-09-22 20:54:08 +0000207 break;
208 default:
Rui Ueyama1c42afc2015-10-12 15:49:06 +0000209 error("unrecognized reloc " + Twine(Type));
Rafael Espindolac4010882015-09-22 20:54:08 +0000210 }
211}
212
Rafael Espindola7f074422015-09-22 21:35:51 +0000213X86_64TargetInfo::X86_64TargetInfo() {
214 PCRelReloc = R_X86_64_PC32;
215 GotReloc = R_X86_64_GLOB_DAT;
Rafael Espindola8acb95c2015-09-29 14:42:37 +0000216 GotRefReloc = R_X86_64_PC32;
George Rimar648a2c32015-10-20 08:54:27 +0000217 PltReloc = R_X86_64_JUMP_SLOT;
Rafael Espindolaae244002015-10-05 19:30:12 +0000218 RelativeReloc = R_X86_64_RELATIVE;
George Rimar648a2c32015-10-20 08:54:27 +0000219 LazyRelocations = true;
220 PltEntrySize = 16;
221 PltZeroEntrySize = 16;
222}
223
224void X86_64TargetInfo::writeGotPltEntry(uint8_t *Buf, uint64_t Plt) const {
225 // Skip 6 bytes of "jmpq *got(%rip)"
226 write32le(Buf, Plt + 6);
227}
228
229void X86_64TargetInfo::writePltZeroEntry(uint8_t *Buf, uint64_t GotEntryAddr,
230 uint64_t PltEntryAddr) const {
231 const uint8_t PltData[] = {
232 0xff, 0x35, 0x00, 0x00, 0x00, 0x00, // pushq GOT+8(%rip)
233 0xff, 0x25, 0x00, 0x00, 0x00, 0x00, // jmp *GOT+16(%rip)
234 0x0f, 0x1f, 0x40, 0x00 // nopl 0x0(rax)
235 };
236 memcpy(Buf, PltData, sizeof(PltData));
237 write32le(Buf + 2, GotEntryAddr - PltEntryAddr + 2); // GOT+8
238 write32le(Buf + 8, GotEntryAddr - PltEntryAddr + 4); // GOT+16
Rafael Espindola7f074422015-09-22 21:35:51 +0000239}
Rafael Espindola01205f72015-09-22 18:19:46 +0000240
241void X86_64TargetInfo::writePltEntry(uint8_t *Buf, uint64_t GotEntryAddr,
George Rimar648a2c32015-10-20 08:54:27 +0000242 uint64_t PltEntryAddr,
243 int32_t Index) const {
244 const uint8_t Inst[] = {
245 0xff, 0x25, 0x00, 0x00, 0x00, 0x00, // jmpq *got(%rip)
246 0x68, 0x00, 0x00, 0x00, 0x00, // pushq <relocation index>
247 0xe9, 0x00, 0x00, 0x00, 0x00 // jmpq plt[0]
248 };
Rui Ueyama1500a902015-09-29 23:00:47 +0000249 memcpy(Buf, Inst, sizeof(Inst));
Rafael Espindola01205f72015-09-22 18:19:46 +0000250
George Rimar648a2c32015-10-20 08:54:27 +0000251 write32le(Buf + 2, GotEntryAddr - PltEntryAddr - 6);
252 write32le(Buf + 7, Index);
253 write32le(Buf + 12, -Index * PltEntrySize - PltZeroEntrySize - 16);
Rafael Espindola01205f72015-09-22 18:19:46 +0000254}
255
Rafael Espindola3ef3a4c2015-09-29 23:22:16 +0000256bool X86_64TargetInfo::relocNeedsGot(uint32_t Type, const SymbolBody &S) const {
Rui Ueyama5ba3ac42015-09-30 01:40:08 +0000257 return Type == R_X86_64_GOTPCREL || relocNeedsPlt(Type, S);
Rafael Espindola01205f72015-09-22 18:19:46 +0000258}
259
Rafael Espindola227556e2015-10-14 16:15:46 +0000260unsigned X86_64TargetInfo::getPLTRefReloc(unsigned Type) const {
261 switch (Type) {
262 case R_X86_64_32:
263 return R_X86_64_32;
264 case R_X86_64_PC32:
265 case R_X86_64_PLT32:
266 return R_X86_64_PC32;
267 }
268 llvm_unreachable("Unexpected relocation");
269}
270
Rafael Espindola3ef3a4c2015-09-29 23:22:16 +0000271bool X86_64TargetInfo::relocNeedsPlt(uint32_t Type, const SymbolBody &S) const {
Rafael Espindola01205f72015-09-22 18:19:46 +0000272 switch (Type) {
273 default:
274 return false;
Rafael Espindola227556e2015-10-14 16:15:46 +0000275 case R_X86_64_32:
Rafael Espindola3ef3a4c2015-09-29 23:22:16 +0000276 case R_X86_64_PC32:
277 // This relocation is defined to have a value of (S + A - P).
Rafael Espindola3c412e12015-09-30 12:30:58 +0000278 // The problems start when a non PIC program calls a function in a shared
Rafael Espindola3ef3a4c2015-09-29 23:22:16 +0000279 // library.
Rafael Espindola9a0db7c2015-09-29 23:23:53 +0000280 // In an ideal world, we could just report an error saying the relocation
Rafael Espindola3ef3a4c2015-09-29 23:22:16 +0000281 // can overflow at runtime.
Rafael Espindola3c412e12015-09-30 12:30:58 +0000282 // In the real world with glibc, crt1.o has a R_X86_64_PC32 pointing to
283 // libc.so.
284 //
285 // The general idea on how to handle such cases is to create a PLT entry
286 // and use that as the function value.
287 //
288 // For the static linking part, we just return true and everything else
289 // will use the the PLT entry as the address.
290 //
Rafael Espindola3ef3a4c2015-09-29 23:22:16 +0000291 // The remaining (unimplemented) problem is making sure pointer equality
Rafael Espindola3c412e12015-09-30 12:30:58 +0000292 // still works. We need the help of the dynamic linker for that. We
293 // let it know that we have a direct reference to a so symbol by creating
294 // an undefined symbol with a non zero st_value. Seeing that, the
Rafael Espindola3ef3a4c2015-09-29 23:22:16 +0000295 // dynamic linker resolves the symbol to the value of the symbol we created.
296 // This is true even for got entries, so pointer equality is maintained.
297 // To avoid an infinite loop, the only entry that points to the
Rafael Espindola3c412e12015-09-30 12:30:58 +0000298 // real function is a dedicated got entry used by the plt. That is
299 // identified by special relocation types (R_X86_64_JUMP_SLOT,
300 // R_386_JMP_SLOT, etc).
Rafael Espindola3ef3a4c2015-09-29 23:22:16 +0000301 return S.isShared();
Rafael Espindola01205f72015-09-22 18:19:46 +0000302 case R_X86_64_PLT32:
George Rimar8911d852015-10-16 23:52:24 +0000303 return canBePreempted(&S, true);
Rafael Espindola01205f72015-09-22 18:19:46 +0000304 }
305}
Rafael Espindolac4010882015-09-22 20:54:08 +0000306
Rafael Espindolaae244002015-10-05 19:30:12 +0000307bool X86_64TargetInfo::isRelRelative(uint32_t Type) const {
308 switch (Type) {
309 default:
310 return false;
311 case R_X86_64_PC64:
312 case R_X86_64_PC32:
313 case R_X86_64_PC16:
314 case R_X86_64_PC8:
Rafael Espindola69535df2015-10-19 05:20:01 +0000315 case R_X86_64_PLT32:
Rafael Espindolaae244002015-10-05 19:30:12 +0000316 return true;
317 }
318}
319
Hal Finkel87bbd5f2015-10-12 21:19:18 +0000320void X86_64TargetInfo::relocateOne(uint8_t *Buf, uint8_t *BufEnd,
321 const void *RelP, uint32_t Type,
Rui Ueyama66072272015-10-15 19:52:27 +0000322 uint64_t BaseAddr, uint64_t SA) const {
Rafael Espindolac4010882015-09-22 20:54:08 +0000323 typedef ELFFile<ELF64LE>::Elf_Rela Elf_Rela;
324 auto &Rel = *reinterpret_cast<const Elf_Rela *>(RelP);
325
326 uint64_t Offset = Rel.r_offset;
Rui Ueyama87bc41b2015-10-06 18:54:43 +0000327 uint8_t *Loc = Buf + Offset;
Rafael Espindolac4010882015-09-22 20:54:08 +0000328 switch (Type) {
329 case R_X86_64_PC32:
Rafael Espindolacdfecff2015-09-23 20:08:25 +0000330 case R_X86_64_GOTPCREL:
Rafael Espindola5045e442015-10-18 03:13:46 +0000331 case R_X86_64_PLT32:
Rui Ueyama66072272015-10-15 19:52:27 +0000332 write32le(Loc, SA - BaseAddr - Offset);
Rafael Espindolac4010882015-09-22 20:54:08 +0000333 break;
334 case R_X86_64_64:
Rui Ueyama66072272015-10-15 19:52:27 +0000335 write64le(Loc, SA);
Rafael Espindolac4010882015-09-22 20:54:08 +0000336 break;
337 case R_X86_64_32: {
338 case R_X86_64_32S:
Rui Ueyama66072272015-10-15 19:52:27 +0000339 if (Type == R_X86_64_32 && !isUInt<32>(SA))
Rafael Espindolac4010882015-09-22 20:54:08 +0000340 error("R_X86_64_32 out of range");
Rui Ueyama66072272015-10-15 19:52:27 +0000341 else if (!isInt<32>(SA))
Rafael Espindolac4010882015-09-22 20:54:08 +0000342 error("R_X86_64_32S out of range");
Rui Ueyama66072272015-10-15 19:52:27 +0000343 write32le(Loc, SA);
Rafael Espindolac4010882015-09-22 20:54:08 +0000344 break;
345 }
346 default:
Rui Ueyama1c42afc2015-10-12 15:49:06 +0000347 error("unrecognized reloc " + Twine(Type));
Rafael Espindolac4010882015-09-22 20:54:08 +0000348 }
349}
350
Hal Finkel3c8cc672015-10-12 20:56:18 +0000351// Relocation masks following the #lo(value), #hi(value), #ha(value),
352// #higher(value), #highera(value), #highest(value), and #highesta(value)
353// macros defined in section 4.5.1. Relocation Types of the PPC-elf64abi
354// document.
355
356static uint16_t applyPPCLo(uint64_t V) { return V & 0xffff; }
357
358static uint16_t applyPPCHi(uint64_t V) { return (V >> 16) & 0xffff; }
359
360static uint16_t applyPPCHa(uint64_t V) { return ((V + 0x8000) >> 16) & 0xffff; }
361
362static uint16_t applyPPCHigher(uint64_t V) { return (V >> 32) & 0xffff; }
363
364static uint16_t applyPPCHighera(uint64_t V) {
365 return ((V + 0x8000) >> 32) & 0xffff;
366}
367
368static uint16_t applyPPCHighest(uint64_t V) { return V >> 48; }
369
370static uint16_t applyPPCHighesta(uint64_t V) { return (V + 0x8000) >> 48; }
371
Rafael Espindolac4010882015-09-22 20:54:08 +0000372PPC64TargetInfo::PPC64TargetInfo() {
Hal Finkel3c8cc672015-10-12 20:56:18 +0000373 PCRelReloc = R_PPC64_REL24;
374 GotReloc = R_PPC64_GLOB_DAT;
375 GotRefReloc = R_PPC64_REL64;
Hal Finkelbe0823d2015-10-12 20:58:52 +0000376 RelativeReloc = R_PPC64_RELATIVE;
Hal Finkel6c2a3b82015-10-08 21:51:31 +0000377 PltEntrySize = 32;
Hal Finkelc848b322015-10-12 19:34:29 +0000378
379 // We need 64K pages (at least under glibc/Linux, the loader won't
380 // set different permissions on a finer granularity than that).
Hal Finkele3c26262015-10-08 22:23:54 +0000381 PageSize = 65536;
Hal Finkel736c7412015-10-15 07:49:07 +0000382
383 // The PPC64 ELF ABI v1 spec, says:
384 //
385 // It is normally desirable to put segments with different characteristics
386 // in separate 256 Mbyte portions of the address space, to give the
387 // operating system full paging flexibility in the 64-bit address space.
388 //
389 // And because the lowest non-zero 256M boundary is 0x10000000, PPC64 linkers
390 // use 0x10000000 as the starting address.
391 VAStart = 0x10000000;
Rafael Espindolac4010882015-09-22 20:54:08 +0000392}
Hal Finkel3c8cc672015-10-12 20:56:18 +0000393
Hal Finkel6f97c2b2015-10-16 21:55:40 +0000394uint64_t getPPC64TocBase() {
Hal Finkel3c8cc672015-10-12 20:56:18 +0000395 // The TOC consists of sections .got, .toc, .tocbss, .plt in that
396 // order. The TOC starts where the first of these sections starts.
397
398 // FIXME: This obviously does not do the right thing when there is no .got
399 // section, but there is a .toc or .tocbss section.
400 uint64_t TocVA = Out<ELF64BE>::Got->getVA();
401 if (!TocVA)
402 TocVA = Out<ELF64BE>::Plt->getVA();
403
404 // Per the ppc64-elf-linux ABI, The TOC base is TOC value plus 0x8000
405 // thus permitting a full 64 Kbytes segment. Note that the glibc startup
406 // code (crt1.o) assumes that you can get from the TOC base to the
407 // start of the .toc section with only a single (signed) 16-bit relocation.
408 return TocVA + 0x8000;
409}
410
George Rimar648a2c32015-10-20 08:54:27 +0000411void PPC64TargetInfo::writeGotPltEntry(uint8_t *Buf, uint64_t Plt) const {}
412void PPC64TargetInfo::writePltZeroEntry(uint8_t *Buf, uint64_t GotEntryAddr,
413 uint64_t PltEntryAddr) const {}
Rafael Espindolac4010882015-09-22 20:54:08 +0000414void PPC64TargetInfo::writePltEntry(uint8_t *Buf, uint64_t GotEntryAddr,
George Rimar648a2c32015-10-20 08:54:27 +0000415 uint64_t PltEntryAddr, int32_t Index) const {
Hal Finkel3c8cc672015-10-12 20:56:18 +0000416 uint64_t Off = GotEntryAddr - getPPC64TocBase();
417
418 // FIXME: What we should do, in theory, is get the offset of the function
419 // descriptor in the .opd section, and use that as the offset from %r2 (the
420 // TOC-base pointer). Instead, we have the GOT-entry offset, and that will
421 // be a pointer to the function descriptor in the .opd section. Using
422 // this scheme is simpler, but requires an extra indirection per PLT dispatch.
423
Hal Finkelfa92f682015-10-13 21:47:34 +0000424 write32be(Buf, 0xf8410028); // std %r2, 40(%r1)
Hal Finkel3c8cc672015-10-12 20:56:18 +0000425 write32be(Buf + 4, 0x3d620000 | applyPPCHa(Off)); // addis %r11, %r2, X@ha
426 write32be(Buf + 8, 0xe98b0000 | applyPPCLo(Off)); // ld %r12, X@l(%r11)
427 write32be(Buf + 12, 0xe96c0000); // ld %r11,0(%r12)
428 write32be(Buf + 16, 0x7d6903a6); // mtctr %r11
429 write32be(Buf + 20, 0xe84c0008); // ld %r2,8(%r12)
430 write32be(Buf + 24, 0xe96c0010); // ld %r11,16(%r12)
431 write32be(Buf + 28, 0x4e800420); // bctr
432}
433
Rafael Espindola3ef3a4c2015-09-29 23:22:16 +0000434bool PPC64TargetInfo::relocNeedsGot(uint32_t Type, const SymbolBody &S) const {
Hal Finkel3c8cc672015-10-12 20:56:18 +0000435 if (relocNeedsPlt(Type, S))
436 return true;
437
438 switch (Type) {
439 default: return false;
440 case R_PPC64_GOT16:
441 case R_PPC64_GOT16_LO:
442 case R_PPC64_GOT16_HI:
443 case R_PPC64_GOT16_HA:
444 case R_PPC64_GOT16_DS:
445 case R_PPC64_GOT16_LO_DS:
446 return true;
447 }
Rafael Espindola3ef3a4c2015-09-29 23:22:16 +0000448}
Hal Finkel3c8cc672015-10-12 20:56:18 +0000449
Rafael Espindola3ef3a4c2015-09-29 23:22:16 +0000450bool PPC64TargetInfo::relocNeedsPlt(uint32_t Type, const SymbolBody &S) const {
Hal Finkel3c8cc672015-10-12 20:56:18 +0000451 // These are function calls that need to be redirected through a PLT stub.
Hal Finkel82281982015-10-17 00:48:20 +0000452 return Type == R_PPC64_REL24 && canBePreempted(&S, false);
Rafael Espindola3ef3a4c2015-09-29 23:22:16 +0000453}
Hal Finkel3c8cc672015-10-12 20:56:18 +0000454
Hal Finkelbe0823d2015-10-12 20:58:52 +0000455bool PPC64TargetInfo::isRelRelative(uint32_t Type) const {
456 switch (Type) {
457 default:
Hal Finkelbe0823d2015-10-12 20:58:52 +0000458 return true;
Hal Finkel00918622015-10-16 19:01:50 +0000459 case R_PPC64_TOC:
460 case R_PPC64_ADDR64:
461 return false;
Hal Finkelbe0823d2015-10-12 20:58:52 +0000462 }
463}
464
Hal Finkel87bbd5f2015-10-12 21:19:18 +0000465void PPC64TargetInfo::relocateOne(uint8_t *Buf, uint8_t *BufEnd,
466 const void *RelP, uint32_t Type,
Rui Ueyama66072272015-10-15 19:52:27 +0000467 uint64_t BaseAddr, uint64_t SA) const {
Rafael Espindola3efa4e92015-09-22 21:12:55 +0000468 typedef ELFFile<ELF64BE>::Elf_Rela Elf_Rela;
469 auto &Rel = *reinterpret_cast<const Elf_Rela *>(RelP);
470
Hal Finkel3c8cc672015-10-12 20:56:18 +0000471 uint8_t *L = Buf + Rel.r_offset;
Hal Finkel3c8cc672015-10-12 20:56:18 +0000472 uint64_t P = BaseAddr + Rel.r_offset;
473 uint64_t TB = getPPC64TocBase();
474
Hal Finkel3c8cc672015-10-12 20:56:18 +0000475 // For a TOC-relative relocation, adjust the addend and proceed in terms of
476 // the corresponding ADDR16 relocation type.
Rafael Espindola3efa4e92015-09-22 21:12:55 +0000477 switch (Type) {
Rafael Espindola826941a2015-10-15 18:19:39 +0000478 case R_PPC64_TOC16: Type = R_PPC64_ADDR16; SA -= TB; break;
479 case R_PPC64_TOC16_DS: Type = R_PPC64_ADDR16_DS; SA -= TB; break;
480 case R_PPC64_TOC16_LO: Type = R_PPC64_ADDR16_LO; SA -= TB; break;
481 case R_PPC64_TOC16_LO_DS: Type = R_PPC64_ADDR16_LO_DS; SA -= TB; break;
482 case R_PPC64_TOC16_HI: Type = R_PPC64_ADDR16_HI; SA -= TB; break;
483 case R_PPC64_TOC16_HA: Type = R_PPC64_ADDR16_HA; SA -= TB; break;
Hal Finkel3c8cc672015-10-12 20:56:18 +0000484 default: break;
485 }
486
Hal Finkel3c8cc672015-10-12 20:56:18 +0000487 switch (Type) {
488 case R_PPC64_ADDR16:
Rui Ueyama9e82fa22015-10-15 19:39:36 +0000489 if (!isInt<16>(SA))
Hal Finkel33e17a72015-10-15 16:17:30 +0000490 error("Relocation R_PPC64_ADDR16 overflow");
Rui Ueyama9e82fa22015-10-15 19:39:36 +0000491 write16be(L, SA);
Rafael Espindola3efa4e92015-09-22 21:12:55 +0000492 break;
Hal Finkel3c8cc672015-10-12 20:56:18 +0000493 case R_PPC64_ADDR16_DS:
Rui Ueyama9e82fa22015-10-15 19:39:36 +0000494 if (!isInt<16>(SA))
Hal Finkel3c8cc672015-10-12 20:56:18 +0000495 error("Relocation R_PPC64_ADDR16_DS overflow");
Rui Ueyama9e82fa22015-10-15 19:39:36 +0000496 write16be(L, (read16be(L) & 3) | (SA & ~3));
Hal Finkel3c8cc672015-10-12 20:56:18 +0000497 break;
498 case R_PPC64_ADDR16_LO:
Rui Ueyama9e82fa22015-10-15 19:39:36 +0000499 write16be(L, applyPPCLo(SA));
Hal Finkel3c8cc672015-10-12 20:56:18 +0000500 break;
501 case R_PPC64_ADDR16_LO_DS:
Rui Ueyama9e82fa22015-10-15 19:39:36 +0000502 write16be(L, (read16be(L) & 3) | (applyPPCLo(SA) & ~3));
Hal Finkel3c8cc672015-10-12 20:56:18 +0000503 break;
504 case R_PPC64_ADDR16_HI:
Rui Ueyama9e82fa22015-10-15 19:39:36 +0000505 write16be(L, applyPPCHi(SA));
Hal Finkel3c8cc672015-10-12 20:56:18 +0000506 break;
507 case R_PPC64_ADDR16_HA:
Rui Ueyama9e82fa22015-10-15 19:39:36 +0000508 write16be(L, applyPPCHa(SA));
Hal Finkel3c8cc672015-10-12 20:56:18 +0000509 break;
510 case R_PPC64_ADDR16_HIGHER:
Rui Ueyama9e82fa22015-10-15 19:39:36 +0000511 write16be(L, applyPPCHigher(SA));
Hal Finkel3c8cc672015-10-12 20:56:18 +0000512 break;
513 case R_PPC64_ADDR16_HIGHERA:
Rui Ueyama9e82fa22015-10-15 19:39:36 +0000514 write16be(L, applyPPCHighera(SA));
Hal Finkel3c8cc672015-10-12 20:56:18 +0000515 break;
516 case R_PPC64_ADDR16_HIGHEST:
Rui Ueyama9e82fa22015-10-15 19:39:36 +0000517 write16be(L, applyPPCHighest(SA));
Hal Finkel3c8cc672015-10-12 20:56:18 +0000518 break;
519 case R_PPC64_ADDR16_HIGHESTA:
Rui Ueyama9e82fa22015-10-15 19:39:36 +0000520 write16be(L, applyPPCHighesta(SA));
Hal Finkel3c8cc672015-10-12 20:56:18 +0000521 break;
522 case R_PPC64_ADDR14: {
Rui Ueyama9e82fa22015-10-15 19:39:36 +0000523 if ((SA & 3) != 0)
Hal Finkel3c8cc672015-10-12 20:56:18 +0000524 error("Improper alignment for relocation R_PPC64_ADDR14");
525
526 // Preserve the AA/LK bits in the branch instruction
527 uint8_t AALK = L[3];
Rui Ueyama9e82fa22015-10-15 19:39:36 +0000528 write16be(L + 2, (AALK & 3) | (SA & 0xfffc));
Hal Finkel3c8cc672015-10-12 20:56:18 +0000529 break;
530 }
531 case R_PPC64_REL16_LO:
Rui Ueyama9e82fa22015-10-15 19:39:36 +0000532 write16be(L, applyPPCLo(SA - P));
Hal Finkel3c8cc672015-10-12 20:56:18 +0000533 break;
534 case R_PPC64_REL16_HI:
Rui Ueyama9e82fa22015-10-15 19:39:36 +0000535 write16be(L, applyPPCHi(SA - P));
Hal Finkel3c8cc672015-10-12 20:56:18 +0000536 break;
537 case R_PPC64_REL16_HA:
Rui Ueyama9e82fa22015-10-15 19:39:36 +0000538 write16be(L, applyPPCHa(SA - P));
Hal Finkel3c8cc672015-10-12 20:56:18 +0000539 break;
540 case R_PPC64_ADDR32:
Rui Ueyama9e82fa22015-10-15 19:39:36 +0000541 if (!isInt<32>(SA))
Hal Finkel3c8cc672015-10-12 20:56:18 +0000542 error("Relocation R_PPC64_ADDR32 overflow");
Rui Ueyama9e82fa22015-10-15 19:39:36 +0000543 write32be(L, SA);
Hal Finkel3c8cc672015-10-12 20:56:18 +0000544 break;
545 case R_PPC64_REL24: {
Hal Finkel82281982015-10-17 00:48:20 +0000546 // If we have an undefined weak symbol, we might get here with a symbol
547 // address of zero. That could overflow, but the code must be unreachable,
548 // so don't bother doing anything at all.
549 if (!SA)
550 break;
551
Hal Finkeldaedc122015-10-12 23:16:53 +0000552 uint64_t PltStart = Out<ELF64BE>::Plt->getVA();
553 uint64_t PltEnd = PltStart + Out<ELF64BE>::Plt->getSize();
Rui Ueyama9e82fa22015-10-15 19:39:36 +0000554 bool InPlt = PltStart <= SA && SA < PltEnd;
Hal Finkeldaedc122015-10-12 23:16:53 +0000555
556 if (!InPlt && Out<ELF64BE>::Opd) {
557 // If this is a local call, and we currently have the address of a
558 // function-descriptor, get the underlying code address instead.
559 uint64_t OpdStart = Out<ELF64BE>::Opd->getVA();
560 uint64_t OpdEnd = OpdStart + Out<ELF64BE>::Opd->getSize();
Rui Ueyama9e82fa22015-10-15 19:39:36 +0000561 bool InOpd = OpdStart <= SA && SA < OpdEnd;
Hal Finkeldaedc122015-10-12 23:16:53 +0000562
563 if (InOpd)
Rui Ueyama9e82fa22015-10-15 19:39:36 +0000564 SA = read64be(&Out<ELF64BE>::OpdBuf[SA - OpdStart]);
Hal Finkeldaedc122015-10-12 23:16:53 +0000565 }
566
Hal Finkel3c8cc672015-10-12 20:56:18 +0000567 uint32_t Mask = 0x03FFFFFC;
Rui Ueyama9e82fa22015-10-15 19:39:36 +0000568 if (!isInt<24>(SA - P))
Hal Finkel3c8cc672015-10-12 20:56:18 +0000569 error("Relocation R_PPC64_REL24 overflow");
Rui Ueyama9e82fa22015-10-15 19:39:36 +0000570 write32be(L, (read32be(L) & ~Mask) | ((SA - P) & Mask));
Hal Finkel87bbd5f2015-10-12 21:19:18 +0000571
Hal Finkel515ed442015-10-13 20:31:33 +0000572 if (InPlt && L + 8 <= BufEnd &&
Hal Finkel87bbd5f2015-10-12 21:19:18 +0000573 read32be(L + 4) == 0x60000000 /* nop */)
574 write32be(L + 4, 0xe8410028); // ld %r2, 40(%r1)
Hal Finkel3c8cc672015-10-12 20:56:18 +0000575 break;
576 }
577 case R_PPC64_REL32:
Rui Ueyama9e82fa22015-10-15 19:39:36 +0000578 if (!isInt<32>(SA - P))
Hal Finkel3c8cc672015-10-12 20:56:18 +0000579 error("Relocation R_PPC64_REL32 overflow");
Rui Ueyama9e82fa22015-10-15 19:39:36 +0000580 write32be(L, SA - P);
Hal Finkel3c8cc672015-10-12 20:56:18 +0000581 break;
582 case R_PPC64_REL64:
Rui Ueyama9e82fa22015-10-15 19:39:36 +0000583 write64be(L, SA - P);
Hal Finkel3c8cc672015-10-12 20:56:18 +0000584 break;
585 case R_PPC64_ADDR64:
Hal Finkel6f97c2b2015-10-16 21:55:40 +0000586 case R_PPC64_TOC:
Rui Ueyama9e82fa22015-10-15 19:39:36 +0000587 write64be(L, SA);
Rafael Espindola3efa4e92015-09-22 21:12:55 +0000588 break;
589 default:
Rui Ueyama1c42afc2015-10-12 15:49:06 +0000590 error("unrecognized reloc " + Twine(Type));
Rafael Espindola3efa4e92015-09-22 21:12:55 +0000591 }
592}
Rafael Espindola1d6063e2015-09-22 21:24:52 +0000593
Davide Italianocde93362015-09-26 00:32:04 +0000594AArch64TargetInfo::AArch64TargetInfo() {
595 // PCRelReloc = FIXME
596 // GotReloc = FIXME
597}
George Rimar648a2c32015-10-20 08:54:27 +0000598
599void AArch64TargetInfo::writeGotPltEntry(uint8_t *Buf, uint64_t Plt) const {}
600void AArch64TargetInfo::writePltZeroEntry(uint8_t *Buf, uint64_t GotEntryAddr,
601 uint64_t PltEntryAddr) const {}
Davide Italianocde93362015-09-26 00:32:04 +0000602void AArch64TargetInfo::writePltEntry(uint8_t *Buf, uint64_t GotEntryAddr,
George Rimar648a2c32015-10-20 08:54:27 +0000603 uint64_t PltEntryAddr, int32_t Index) const {}
Rafael Espindola3ef3a4c2015-09-29 23:22:16 +0000604bool AArch64TargetInfo::relocNeedsGot(uint32_t Type,
605 const SymbolBody &S) const {
606 return false;
607}
608bool AArch64TargetInfo::relocNeedsPlt(uint32_t Type,
609 const SymbolBody &S) const {
610 return false;
611}
Davide Italiano1d750a62015-09-27 08:45:38 +0000612
Davide Italianoef4be6b2015-10-06 19:01:32 +0000613static void updateAArch64Adr(uint8_t *L, uint64_t Imm) {
Davide Italiano1f31a2c2015-10-02 22:00:42 +0000614 uint32_t ImmLo = (Imm & 0x3) << 29;
615 uint32_t ImmHi = ((Imm & 0x1FFFFC) >> 2) << 5;
616 uint64_t Mask = (0x3 << 29) | (0x7FFFF << 5);
Rui Ueyama87bc41b2015-10-06 18:54:43 +0000617 write32le(L, (read32le(L) & ~Mask) | ImmLo | ImmHi);
Davide Italiano1f31a2c2015-10-02 22:00:42 +0000618}
619
Davide Italiano318ca222015-10-02 22:13:51 +0000620// Page(Expr) is the page address of the expression Expr, defined
621// as (Expr & ~0xFFF). (This applies even if the machine page size
Davide Italianod9b5be42015-10-02 22:17:09 +0000622// supported by the platform has a different value.)
Davide Italianoef4be6b2015-10-06 19:01:32 +0000623static uint64_t getAArch64Page(uint64_t Expr) {
Davide Italiano318ca222015-10-02 22:13:51 +0000624 return Expr & (~static_cast<uint64_t>(0xFFF));
Davide Italiano1f31a2c2015-10-02 22:00:42 +0000625}
626
Hal Finkel87bbd5f2015-10-12 21:19:18 +0000627void AArch64TargetInfo::relocateOne(uint8_t *Buf, uint8_t *BufEnd,
628 const void *RelP, uint32_t Type,
Rui Ueyama66072272015-10-15 19:52:27 +0000629 uint64_t BaseAddr, uint64_t SA) const {
Davide Italiano1d750a62015-09-27 08:45:38 +0000630 typedef ELFFile<ELF64LE>::Elf_Rela Elf_Rela;
631 auto &Rel = *reinterpret_cast<const Elf_Rela *>(RelP);
632
Rui Ueyamaee8c53b2015-10-06 19:57:01 +0000633 uint8_t *L = Buf + Rel.r_offset;
Davide Italiano1d750a62015-09-27 08:45:38 +0000634 uint64_t P = BaseAddr + Rel.r_offset;
635 switch (Type) {
Davide Italianodf88f962015-10-04 00:59:16 +0000636 case R_AARCH64_ABS16:
Rafael Espindola826941a2015-10-15 18:19:39 +0000637 if (!isInt<16>(SA))
Rui Ueyamaee8c53b2015-10-06 19:57:01 +0000638 error("Relocation R_AARCH64_ABS16 out of range");
Rafael Espindola826941a2015-10-15 18:19:39 +0000639 write16le(L, SA);
Davide Italianodf88f962015-10-04 00:59:16 +0000640 break;
641 case R_AARCH64_ABS32:
Rafael Espindola826941a2015-10-15 18:19:39 +0000642 if (!isInt<32>(SA))
Rui Ueyamaee8c53b2015-10-06 19:57:01 +0000643 error("Relocation R_AARCH64_ABS32 out of range");
Rafael Espindola826941a2015-10-15 18:19:39 +0000644 write32le(L, SA);
Davide Italianodf88f962015-10-04 00:59:16 +0000645 break;
646 case R_AARCH64_ABS64:
Rui Ueyamaee8c53b2015-10-06 19:57:01 +0000647 // No overflow check needed.
Rafael Espindola826941a2015-10-15 18:19:39 +0000648 write64le(L, SA);
Davide Italianodf88f962015-10-04 00:59:16 +0000649 break;
Davide Italiano0b6974b2015-10-03 19:56:07 +0000650 case R_AARCH64_ADD_ABS_LO12_NC:
Rui Ueyamaee8c53b2015-10-06 19:57:01 +0000651 // No overflow check needed.
Davide Italianoa7165742015-10-16 21:06:55 +0000652 // This relocation stores 12 bits and there's no instruction
653 // to do it. Instead, we do a 32 bits store of the value
654 // of r_addend bitwise-or'ed L. This assumes that the addend
655 // bits in L are zero.
Rafael Espindola826941a2015-10-15 18:19:39 +0000656 or32le(L, (SA & 0xFFF) << 10);
Davide Italiano0b6974b2015-10-03 19:56:07 +0000657 break;
Rui Ueyamaee8c53b2015-10-06 19:57:01 +0000658 case R_AARCH64_ADR_PREL_LO21: {
Rafael Espindola826941a2015-10-15 18:19:39 +0000659 uint64_t X = SA - P;
Rui Ueyamaee8c53b2015-10-06 19:57:01 +0000660 if (!isInt<21>(X))
661 error("Relocation R_AARCH64_ADR_PREL_LO21 out of range");
662 updateAArch64Adr(L, X & 0x1FFFFF);
Davide Italiano1d750a62015-09-27 08:45:38 +0000663 break;
Rui Ueyamaee8c53b2015-10-06 19:57:01 +0000664 }
665 case R_AARCH64_ADR_PREL_PG_HI21: {
Rafael Espindola826941a2015-10-15 18:19:39 +0000666 uint64_t X = getAArch64Page(SA) - getAArch64Page(P);
Rui Ueyamaee8c53b2015-10-06 19:57:01 +0000667 if (!isInt<33>(X))
668 error("Relocation R_AARCH64_ADR_PREL_PG_HI21 out of range");
669 updateAArch64Adr(L, (X >> 12) & 0x1FFFFF); // X[32:12]
Davide Italiano1f31a2c2015-10-02 22:00:42 +0000670 break;
Rui Ueyamaee8c53b2015-10-06 19:57:01 +0000671 }
Davide Italiano1d750a62015-09-27 08:45:38 +0000672 default:
Rui Ueyama1c42afc2015-10-12 15:49:06 +0000673 error("unrecognized reloc " + Twine(Type));
Davide Italiano1d750a62015-09-27 08:45:38 +0000674 }
675}
Simon Atanasyan49829a12015-09-29 05:34:03 +0000676
Simon Atanasyan9c2d7882015-10-14 14:24:46 +0000677template <class ELFT> MipsTargetInfo<ELFT>::MipsTargetInfo() {
Simon Atanasyan49829a12015-09-29 05:34:03 +0000678 // PCRelReloc = FIXME
679 // GotReloc = FIXME
Hal Finkele3c26262015-10-08 22:23:54 +0000680 PageSize = 65536;
Simon Atanasyan49829a12015-09-29 05:34:03 +0000681}
682
Simon Atanasyan9c2d7882015-10-14 14:24:46 +0000683template <class ELFT>
George Rimar648a2c32015-10-20 08:54:27 +0000684void MipsTargetInfo<ELFT>::writeGotPltEntry(uint8_t *Buf, uint64_t Plt) const {}
685template <class ELFT>
686void MipsTargetInfo<ELFT>::writePltZeroEntry(uint8_t *Buf, uint64_t GotEntryAddr,
687 uint64_t PltEntryAddr) const {}
688template <class ELFT>
Simon Atanasyan9c2d7882015-10-14 14:24:46 +0000689void MipsTargetInfo<ELFT>::writePltEntry(uint8_t *Buf, uint64_t GotEntryAddr,
George Rimar648a2c32015-10-20 08:54:27 +0000690 uint64_t PltEntryAddr, int32_t Index) const {}
Simon Atanasyan49829a12015-09-29 05:34:03 +0000691
Simon Atanasyan9c2d7882015-10-14 14:24:46 +0000692template <class ELFT>
693bool MipsTargetInfo<ELFT>::relocNeedsGot(uint32_t Type,
694 const SymbolBody &S) const {
Rafael Espindola3ef3a4c2015-09-29 23:22:16 +0000695 return false;
696}
Simon Atanasyan49829a12015-09-29 05:34:03 +0000697
Simon Atanasyan9c2d7882015-10-14 14:24:46 +0000698template <class ELFT>
699bool MipsTargetInfo<ELFT>::relocNeedsPlt(uint32_t Type,
700 const SymbolBody &S) const {
Rafael Espindola3ef3a4c2015-09-29 23:22:16 +0000701 return false;
702}
Simon Atanasyan49829a12015-09-29 05:34:03 +0000703
Simon Atanasyan9c2d7882015-10-14 14:24:46 +0000704template <class ELFT>
705void MipsTargetInfo<ELFT>::relocateOne(uint8_t *Buf, uint8_t *BufEnd,
706 const void *RelP, uint32_t Type,
Rui Ueyama66072272015-10-15 19:52:27 +0000707 uint64_t BaseAddr, uint64_t SA) const {
Simon Atanasyan9c2d7882015-10-14 14:24:46 +0000708 const bool IsLE = ELFT::TargetEndianness == support::little;
709 typedef typename ELFFile<ELFT>::Elf_Rel Elf_Rel;
Simon Atanasyan3b732ac2015-10-12 15:10:02 +0000710 auto &Rel = *reinterpret_cast<const Elf_Rel *>(RelP);
711
712 switch (Type) {
713 case R_MIPS_32:
Rui Ueyama66072272015-10-15 19:52:27 +0000714 add32<IsLE>(Buf + Rel.r_offset, SA);
Simon Atanasyan3b732ac2015-10-12 15:10:02 +0000715 break;
716 default:
Rui Ueyama1c42afc2015-10-12 15:49:06 +0000717 error("unrecognized reloc " + Twine(Type));
Simon Atanasyan3b732ac2015-10-12 15:10:02 +0000718 }
719}
Rafael Espindola01205f72015-09-22 18:19:46 +0000720}
721}