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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
Rafael Espindola22ef9562016-04-13 01:40:19 +000014// in this file.
Rui Ueyama34f29242015-10-13 19:51:57 +000015//
Rui Ueyama55274e32016-04-23 01:10:15 +000016// Some functions defined in this file has "relaxTls" as part of their names.
17// They do peephole optimization for TLS variables by rewriting instructions.
18// They are not part of the ABI but optional optimization, so you can skip
19// them if you are not interested in how TLS variables are optimized.
20// See the following paper for the details.
21//
22// Ulrich Drepper, ELF Handling For Thread-Local Storage
23// http://www.akkadia.org/drepper/tls.pdf
24//
Rui Ueyama34f29242015-10-13 19:51:57 +000025//===----------------------------------------------------------------------===//
Rafael Espindola01205f72015-09-22 18:19:46 +000026
27#include "Target.h"
Rafael Espindolac4010882015-09-22 20:54:08 +000028#include "Error.h"
Simon Atanasyan13f6da12016-03-31 21:26:23 +000029#include "InputFiles.h"
Rui Ueyamaaf21d922015-10-08 20:06:07 +000030#include "OutputSections.h"
Rafael Espindola3ef3a4c2015-09-29 23:22:16 +000031#include "Symbols.h"
Rafael Espindola01205f72015-09-22 18:19:46 +000032
33#include "llvm/ADT/ArrayRef.h"
Rafael Espindolac4010882015-09-22 20:54:08 +000034#include "llvm/Object/ELF.h"
Rafael Espindola01205f72015-09-22 18:19:46 +000035#include "llvm/Support/Endian.h"
36#include "llvm/Support/ELF.h"
37
38using namespace llvm;
Rafael Espindolac4010882015-09-22 20:54:08 +000039using namespace llvm::object;
Rafael Espindola0872ea32015-09-24 14:16:02 +000040using namespace llvm::support::endian;
Rafael Espindola01205f72015-09-22 18:19:46 +000041using namespace llvm::ELF;
42
43namespace lld {
Rafael Espindolae0df00b2016-02-28 00:25:54 +000044namespace elf {
Rafael Espindola01205f72015-09-22 18:19:46 +000045
Rui Ueyamac1c282a2016-02-11 21:18:01 +000046TargetInfo *Target;
Rafael Espindola01205f72015-09-22 18:19:46 +000047
Rafael Espindolae7e57b22015-11-09 21:43:00 +000048static void or32le(uint8_t *P, int32_t V) { write32le(P, read32le(P) | V); }
Rui Ueyamaefc23de2015-10-14 21:30:32 +000049
George Rimare6389d12016-06-08 12:22:26 +000050StringRef getRelName(uint32_t Type) {
Rui Ueyama12ebff22016-06-07 18:10:12 +000051 return getELFRelocationTypeName(Config->EMachine, Type);
52}
53
Igor Kudrin9b7e7db2015-11-26 09:49:44 +000054template <unsigned N> static void checkInt(int64_t V, uint32_t Type) {
Rui Ueyamabebf4892016-06-16 23:28:03 +000055 if (!isInt<N>(V))
56 error("relocation " + getRelName(Type) + " out of range");
Igor Kudrin9b7e7db2015-11-26 09:49:44 +000057}
58
59template <unsigned N> static void checkUInt(uint64_t V, uint32_t Type) {
Rui Ueyamabebf4892016-06-16 23:28:03 +000060 if (!isUInt<N>(V))
61 error("relocation " + getRelName(Type) + " out of range");
Igor Kudrin9b7e7db2015-11-26 09:49:44 +000062}
63
Igor Kudrinfea8ed52015-11-26 10:05:24 +000064template <unsigned N> static void checkIntUInt(uint64_t V, uint32_t Type) {
Rui Ueyamabebf4892016-06-16 23:28:03 +000065 if (!isInt<N>(V) && !isUInt<N>(V))
66 error("relocation " + getRelName(Type) + " out of range");
Igor Kudrinfea8ed52015-11-26 10:05:24 +000067}
68
Igor Kudrin9b7e7db2015-11-26 09:49:44 +000069template <unsigned N> static void checkAlignment(uint64_t V, uint32_t Type) {
Rui Ueyamabebf4892016-06-16 23:28:03 +000070 if ((V & (N - 1)) != 0)
71 error("improper alignment for relocation " + getRelName(Type));
Igor Kudrin9b7e7db2015-11-26 09:49:44 +000072}
73
Rafael Espindola24de7672016-06-09 20:39:01 +000074static void errorDynRel(uint32_t Type) {
Rui Ueyama12ebff22016-06-07 18:10:12 +000075 error("relocation " + getRelName(Type) +
George Rimar2993ad22016-06-11 15:59:09 +000076 " cannot be used against shared object; recompile with -fPIC.");
Rui Ueyama45a873d2016-06-07 18:03:05 +000077}
78
Rui Ueyamaefc23de2015-10-14 21:30:32 +000079namespace {
80class X86TargetInfo final : public TargetInfo {
81public:
82 X86TargetInfo();
Rafael Espindola22ef9562016-04-13 01:40:19 +000083 RelExpr getRelExpr(uint32_t Type, const SymbolBody &S) const override;
Rafael Espindola666625b2016-04-01 14:36:09 +000084 uint64_t getImplicitAddend(const uint8_t *Buf, uint32_t Type) const override;
Rui Ueyamac516ae12016-01-29 02:33:45 +000085 void writeGotPltHeader(uint8_t *Buf) const override;
George Rimar98b060d2016-03-06 06:01:07 +000086 uint32_t getDynRel(uint32_t Type) const override;
George Rimar98b060d2016-03-06 06:01:07 +000087 bool isTlsLocalDynamicRel(uint32_t Type) const override;
88 bool isTlsGlobalDynamicRel(uint32_t Type) const override;
89 bool isTlsInitialExecRel(uint32_t Type) const override;
Rui Ueyamac9fee5f2016-06-16 16:14:50 +000090 void writeGotPlt(uint8_t *Buf, const SymbolBody &S) const override;
Rui Ueyama4a90f572016-06-16 16:28:50 +000091 void writePltHeader(uint8_t *Buf) const override;
Rui Ueyama9398f862016-01-29 04:15:02 +000092 void writePlt(uint8_t *Buf, uint64_t GotEntryAddr, uint64_t PltEntryAddr,
93 int32_t Index, unsigned RelOff) const override;
Rafael Espindola22ef9562016-04-13 01:40:19 +000094 void relocateOne(uint8_t *Loc, uint32_t Type, uint64_t Val) const override;
Rafael Espindola89cc14f2016-03-16 19:03:58 +000095
Rafael Espindola69f54022016-06-04 23:22:34 +000096 RelExpr adjustRelaxExpr(uint32_t Type, const uint8_t *Data,
97 RelExpr Expr) const override;
Rafael Espindola22ef9562016-04-13 01:40:19 +000098 void relaxTlsGdToIe(uint8_t *Loc, uint32_t Type, uint64_t Val) const override;
99 void relaxTlsGdToLe(uint8_t *Loc, uint32_t Type, uint64_t Val) const override;
100 void relaxTlsIeToLe(uint8_t *Loc, uint32_t Type, uint64_t Val) const override;
101 void relaxTlsLdToLe(uint8_t *Loc, uint32_t Type, uint64_t Val) const override;
Rui Ueyamaefc23de2015-10-14 21:30:32 +0000102};
103
104class X86_64TargetInfo final : public TargetInfo {
105public:
106 X86_64TargetInfo();
Rafael Espindola22ef9562016-04-13 01:40:19 +0000107 RelExpr getRelExpr(uint32_t Type, const SymbolBody &S) const override;
George Rimar86971052016-03-29 08:35:42 +0000108 uint32_t getDynRel(uint32_t Type) const override;
George Rimar98b060d2016-03-06 06:01:07 +0000109 bool isTlsLocalDynamicRel(uint32_t Type) const override;
110 bool isTlsGlobalDynamicRel(uint32_t Type) const override;
111 bool isTlsInitialExecRel(uint32_t Type) const override;
Rui Ueyamac516ae12016-01-29 02:33:45 +0000112 void writeGotPltHeader(uint8_t *Buf) const override;
Rui Ueyamac9fee5f2016-06-16 16:14:50 +0000113 void writeGotPlt(uint8_t *Buf, const SymbolBody &S) const override;
Rui Ueyama4a90f572016-06-16 16:28:50 +0000114 void writePltHeader(uint8_t *Buf) const override;
Rui Ueyama9398f862016-01-29 04:15:02 +0000115 void writePlt(uint8_t *Buf, uint64_t GotEntryAddr, uint64_t PltEntryAddr,
116 int32_t Index, unsigned RelOff) const override;
Rafael Espindola22ef9562016-04-13 01:40:19 +0000117 void relocateOne(uint8_t *Loc, uint32_t Type, uint64_t Val) const override;
George Rimar6713cf82015-11-25 21:46:05 +0000118
Rafael Espindola5c66b822016-06-04 22:58:54 +0000119 RelExpr adjustRelaxExpr(uint32_t Type, const uint8_t *Data,
120 RelExpr Expr) const override;
George Rimar5c33b912016-05-25 14:31:37 +0000121 void relaxGot(uint8_t *Loc, uint64_t Val) const override;
Rafael Espindola22ef9562016-04-13 01:40:19 +0000122 void relaxTlsGdToIe(uint8_t *Loc, uint32_t Type, uint64_t Val) const override;
123 void relaxTlsGdToLe(uint8_t *Loc, uint32_t Type, uint64_t Val) const override;
124 void relaxTlsIeToLe(uint8_t *Loc, uint32_t Type, uint64_t Val) const override;
125 void relaxTlsLdToLe(uint8_t *Loc, uint32_t Type, uint64_t Val) const override;
George Rimarb7204302016-06-02 09:22:00 +0000126
127private:
128 void relaxGotNoPic(uint8_t *Loc, uint64_t Val, uint8_t Op,
129 uint8_t ModRm) const;
Rui Ueyamaefc23de2015-10-14 21:30:32 +0000130};
131
Davide Italiano8c3444362016-01-11 19:45:33 +0000132class PPCTargetInfo final : public TargetInfo {
133public:
134 PPCTargetInfo();
Rafael Espindola22ef9562016-04-13 01:40:19 +0000135 void relocateOne(uint8_t *Loc, uint32_t Type, uint64_t Val) const override;
Rafael Espindola22ef9562016-04-13 01:40:19 +0000136 RelExpr getRelExpr(uint32_t Type, const SymbolBody &S) const override;
Davide Italiano8c3444362016-01-11 19:45:33 +0000137};
138
Rui Ueyamaefc23de2015-10-14 21:30:32 +0000139class PPC64TargetInfo final : public TargetInfo {
140public:
141 PPC64TargetInfo();
Rafael Espindola22ef9562016-04-13 01:40:19 +0000142 RelExpr getRelExpr(uint32_t Type, const SymbolBody &S) const override;
Rui Ueyama9398f862016-01-29 04:15:02 +0000143 void writePlt(uint8_t *Buf, uint64_t GotEntryAddr, uint64_t PltEntryAddr,
144 int32_t Index, unsigned RelOff) const override;
Rafael Espindola22ef9562016-04-13 01:40:19 +0000145 void relocateOne(uint8_t *Loc, uint32_t Type, uint64_t Val) const override;
Rui Ueyamaefc23de2015-10-14 21:30:32 +0000146};
147
Rui Ueyamaefc23de2015-10-14 21:30:32 +0000148class AArch64TargetInfo final : public TargetInfo {
149public:
150 AArch64TargetInfo();
Rafael Espindola22ef9562016-04-13 01:40:19 +0000151 RelExpr getRelExpr(uint32_t Type, const SymbolBody &S) const override;
George Rimar98b060d2016-03-06 06:01:07 +0000152 uint32_t getDynRel(uint32_t Type) const override;
George Rimar98b060d2016-03-06 06:01:07 +0000153 bool isTlsInitialExecRel(uint32_t Type) const override;
Rui Ueyamac9fee5f2016-06-16 16:14:50 +0000154 void writeGotPlt(uint8_t *Buf, const SymbolBody &S) const override;
Rui Ueyama4a90f572016-06-16 16:28:50 +0000155 void writePltHeader(uint8_t *Buf) const override;
Rui Ueyama9398f862016-01-29 04:15:02 +0000156 void writePlt(uint8_t *Buf, uint64_t GotEntryAddr, uint64_t PltEntryAddr,
157 int32_t Index, unsigned RelOff) const override;
Rafael Espindolab8ff59a2016-04-28 14:34:39 +0000158 bool usesOnlyLowPageBits(uint32_t Type) const override;
Rafael Espindola22ef9562016-04-13 01:40:19 +0000159 void relocateOne(uint8_t *Loc, uint32_t Type, uint64_t Val) const override;
Rafael Espindolae1979ae2016-06-04 23:33:31 +0000160 RelExpr adjustRelaxExpr(uint32_t Type, const uint8_t *Data,
161 RelExpr Expr) const override;
Rafael Espindola22ef9562016-04-13 01:40:19 +0000162 void relaxTlsGdToLe(uint8_t *Loc, uint32_t Type, uint64_t Val) const override;
Rafael Espindolae1979ae2016-06-04 23:33:31 +0000163 void relaxTlsGdToIe(uint8_t *Loc, uint32_t Type, uint64_t Val) const override;
Rafael Espindola22ef9562016-04-13 01:40:19 +0000164 void relaxTlsIeToLe(uint8_t *Loc, uint32_t Type, uint64_t Val) const override;
Rui Ueyamaefc23de2015-10-14 21:30:32 +0000165};
166
Tom Stellard80efb162016-01-07 03:59:08 +0000167class AMDGPUTargetInfo final : public TargetInfo {
168public:
Rui Ueyama012eb782016-01-29 04:05:09 +0000169 AMDGPUTargetInfo() {}
Rafael Espindola22ef9562016-04-13 01:40:19 +0000170 void relocateOne(uint8_t *Loc, uint32_t Type, uint64_t Val) const override;
171 RelExpr getRelExpr(uint32_t Type, const SymbolBody &S) const override;
Tom Stellard80efb162016-01-07 03:59:08 +0000172};
173
Peter Smith8646ced2016-06-07 09:31:52 +0000174class ARMTargetInfo final : public TargetInfo {
175public:
176 ARMTargetInfo();
177 RelExpr getRelExpr(uint32_t Type, const SymbolBody &S) const override;
178 uint32_t getDynRel(uint32_t Type) const override;
179 uint64_t getImplicitAddend(const uint8_t *Buf, uint32_t Type) const override;
Rui Ueyamac9fee5f2016-06-16 16:14:50 +0000180 void writeGotPlt(uint8_t *Buf, const SymbolBody &S) const override;
Rui Ueyama4a90f572016-06-16 16:28:50 +0000181 void writePltHeader(uint8_t *Buf) const override;
Peter Smith8646ced2016-06-07 09:31:52 +0000182 void writePlt(uint8_t *Buf, uint64_t GotEntryAddr, uint64_t PltEntryAddr,
183 int32_t Index, unsigned RelOff) const override;
184 void relocateOne(uint8_t *Loc, uint32_t Type, uint64_t Val) const override;
185};
186
Rui Ueyamaefc23de2015-10-14 21:30:32 +0000187template <class ELFT> class MipsTargetInfo final : public TargetInfo {
188public:
189 MipsTargetInfo();
Rafael Espindola22ef9562016-04-13 01:40:19 +0000190 RelExpr getRelExpr(uint32_t Type, const SymbolBody &S) const override;
Rafael Espindola666625b2016-04-01 14:36:09 +0000191 uint64_t getImplicitAddend(const uint8_t *Buf, uint32_t Type) const override;
George Rimar98b060d2016-03-06 06:01:07 +0000192 uint32_t getDynRel(uint32_t Type) const override;
Rui Ueyamac9fee5f2016-06-16 16:14:50 +0000193 void writeGotPlt(uint8_t *Buf, const SymbolBody &S) const override;
Rui Ueyama4a90f572016-06-16 16:28:50 +0000194 void writePltHeader(uint8_t *Buf) const override;
Simon Atanasyan2287dc32016-02-10 19:57:19 +0000195 void writePlt(uint8_t *Buf, uint64_t GotEntryAddr, uint64_t PltEntryAddr,
196 int32_t Index, unsigned RelOff) const override;
Simon Atanasyan13f6da12016-03-31 21:26:23 +0000197 void writeThunk(uint8_t *Buf, uint64_t S) const override;
Simon Atanasyan13f6da12016-03-31 21:26:23 +0000198 bool needsThunk(uint32_t Type, const InputFile &File,
199 const SymbolBody &S) const override;
Rafael Espindola22ef9562016-04-13 01:40:19 +0000200 void relocateOne(uint8_t *Loc, uint32_t Type, uint64_t Val) const override;
Rafael Espindolab8ff59a2016-04-28 14:34:39 +0000201 bool usesOnlyLowPageBits(uint32_t Type) const override;
Rui Ueyamaefc23de2015-10-14 21:30:32 +0000202};
203} // anonymous namespace
204
Rui Ueyama91004392015-10-13 16:08:15 +0000205TargetInfo *createTarget() {
206 switch (Config->EMachine) {
207 case EM_386:
208 return new X86TargetInfo();
209 case EM_AARCH64:
210 return new AArch64TargetInfo();
Tom Stellard80efb162016-01-07 03:59:08 +0000211 case EM_AMDGPU:
212 return new AMDGPUTargetInfo();
Peter Smith8646ced2016-06-07 09:31:52 +0000213 case EM_ARM:
214 return new ARMTargetInfo();
Rui Ueyama91004392015-10-13 16:08:15 +0000215 case EM_MIPS:
Simon Atanasyan9c2d7882015-10-14 14:24:46 +0000216 switch (Config->EKind) {
217 case ELF32LEKind:
218 return new MipsTargetInfo<ELF32LE>();
219 case ELF32BEKind:
220 return new MipsTargetInfo<ELF32BE>();
Simon Atanasyanae77ab72016-04-29 10:39:17 +0000221 case ELF64LEKind:
222 return new MipsTargetInfo<ELF64LE>();
223 case ELF64BEKind:
224 return new MipsTargetInfo<ELF64BE>();
Simon Atanasyan9c2d7882015-10-14 14:24:46 +0000225 default:
George Rimar777f9632016-03-12 08:31:34 +0000226 fatal("unsupported MIPS target");
Simon Atanasyan9c2d7882015-10-14 14:24:46 +0000227 }
Davide Italiano8c3444362016-01-11 19:45:33 +0000228 case EM_PPC:
229 return new PPCTargetInfo();
Rui Ueyama91004392015-10-13 16:08:15 +0000230 case EM_PPC64:
231 return new PPC64TargetInfo();
232 case EM_X86_64:
233 return new X86_64TargetInfo();
234 }
George Rimar777f9632016-03-12 08:31:34 +0000235 fatal("unknown target machine");
Rui Ueyama91004392015-10-13 16:08:15 +0000236}
237
Rafael Espindola01205f72015-09-22 18:19:46 +0000238TargetInfo::~TargetInfo() {}
239
Rafael Espindola666625b2016-04-01 14:36:09 +0000240uint64_t TargetInfo::getImplicitAddend(const uint8_t *Buf,
241 uint32_t Type) const {
Rafael Espindolada99df32016-03-30 12:40:38 +0000242 return 0;
243}
244
George Rimar786e8662016-03-17 05:57:33 +0000245uint64_t TargetInfo::getVAStart() const { return Config->Pic ? 0 : VAStart; }
Igor Kudrinf6f45472015-11-10 08:39:27 +0000246
Rafael Espindolab8ff59a2016-04-28 14:34:39 +0000247bool TargetInfo::usesOnlyLowPageBits(uint32_t Type) const { return false; }
George Rimar48651482015-12-11 08:59:37 +0000248
Simon Atanasyan13f6da12016-03-31 21:26:23 +0000249bool TargetInfo::needsThunk(uint32_t Type, const InputFile &File,
250 const SymbolBody &S) const {
251 return false;
252}
253
George Rimar98b060d2016-03-06 06:01:07 +0000254bool TargetInfo::isTlsInitialExecRel(uint32_t Type) const { return false; }
Rafael Espindolad405f472016-03-04 21:37:09 +0000255
George Rimar98b060d2016-03-06 06:01:07 +0000256bool TargetInfo::isTlsLocalDynamicRel(uint32_t Type) const { return false; }
Rafael Espindolad405f472016-03-04 21:37:09 +0000257
George Rimar98b060d2016-03-06 06:01:07 +0000258bool TargetInfo::isTlsGlobalDynamicRel(uint32_t Type) const {
Adhemerval Zanella74bcf032016-02-12 13:43:03 +0000259 return false;
260}
261
Rafael Espindola5c66b822016-06-04 22:58:54 +0000262RelExpr TargetInfo::adjustRelaxExpr(uint32_t Type, const uint8_t *Data,
263 RelExpr Expr) const {
George Rimarf10c8292016-06-01 16:45:30 +0000264 return Expr;
George Rimar5c33b912016-05-25 14:31:37 +0000265}
266
267void TargetInfo::relaxGot(uint8_t *Loc, uint64_t Val) const {
268 llvm_unreachable("Should not have claimed to be relaxable");
269}
270
Rafael Espindola22ef9562016-04-13 01:40:19 +0000271void TargetInfo::relaxTlsGdToLe(uint8_t *Loc, uint32_t Type,
272 uint64_t Val) const {
Rafael Espindola89cc14f2016-03-16 19:03:58 +0000273 llvm_unreachable("Should not have claimed to be relaxable");
274}
275
Rafael Espindola22ef9562016-04-13 01:40:19 +0000276void TargetInfo::relaxTlsGdToIe(uint8_t *Loc, uint32_t Type,
277 uint64_t Val) const {
Rafael Espindola89cc14f2016-03-16 19:03:58 +0000278 llvm_unreachable("Should not have claimed to be relaxable");
279}
280
Rafael Espindola22ef9562016-04-13 01:40:19 +0000281void TargetInfo::relaxTlsIeToLe(uint8_t *Loc, uint32_t Type,
282 uint64_t Val) const {
Rafael Espindola89cc14f2016-03-16 19:03:58 +0000283 llvm_unreachable("Should not have claimed to be relaxable");
284}
285
Rafael Espindola22ef9562016-04-13 01:40:19 +0000286void TargetInfo::relaxTlsLdToLe(uint8_t *Loc, uint32_t Type,
287 uint64_t Val) const {
Rafael Espindola89cc14f2016-03-16 19:03:58 +0000288 llvm_unreachable("Should not have claimed to be relaxable");
George Rimar6713cf82015-11-25 21:46:05 +0000289}
George Rimar77d1cb12015-11-24 09:00:06 +0000290
Rafael Espindola7f074422015-09-22 21:35:51 +0000291X86TargetInfo::X86TargetInfo() {
Rui Ueyama724d6252016-01-29 01:49:32 +0000292 CopyRel = R_386_COPY;
293 GotRel = R_386_GLOB_DAT;
294 PltRel = R_386_JUMP_SLOT;
295 IRelativeRel = R_386_IRELATIVE;
296 RelativeRel = R_386_RELATIVE;
297 TlsGotRel = R_386_TLS_TPOFF;
Rui Ueyama724d6252016-01-29 01:49:32 +0000298 TlsModuleIndexRel = R_386_TLS_DTPMOD32;
299 TlsOffsetRel = R_386_TLS_DTPOFF32;
George Rimar77b77792015-11-25 22:15:01 +0000300 PltEntrySize = 16;
Rui Ueyama4a90f572016-06-16 16:28:50 +0000301 PltHeaderSize = 16;
Rafael Espindolaf807d472016-06-04 23:04:39 +0000302 TlsGdRelaxSkip = 2;
Rafael Espindola22ef9562016-04-13 01:40:19 +0000303}
304
305RelExpr X86TargetInfo::getRelExpr(uint32_t Type, const SymbolBody &S) const {
306 switch (Type) {
307 default:
308 return R_ABS;
Rafael Espindoladf172772016-04-18 01:29:15 +0000309 case R_386_TLS_GD:
310 return R_TLSGD;
Rafael Espindolac4d56972016-04-18 00:28:57 +0000311 case R_386_TLS_LDM:
312 return R_TLSLD;
Rafael Espindola22ef9562016-04-13 01:40:19 +0000313 case R_386_PLT32:
Rafael Espindolab312a742016-04-21 17:30:24 +0000314 return R_PLT_PC;
Rafael Espindola22ef9562016-04-13 01:40:19 +0000315 case R_386_PC32:
Rafael Espindola22ef9562016-04-13 01:40:19 +0000316 return R_PC;
Rafael Espindola3f5d6342016-04-18 12:07:13 +0000317 case R_386_GOTPC:
318 return R_GOTONLY_PC;
Rafael Espindola5628ee72016-04-15 19:14:18 +0000319 case R_386_TLS_IE:
320 return R_GOT;
Rafael Espindola3f5d6342016-04-18 12:07:13 +0000321 case R_386_GOT32:
322 case R_386_TLS_GOTIE:
323 return R_GOT_FROM_END;
324 case R_386_GOTOFF:
325 return R_GOTREL;
326 case R_386_TLS_LE:
327 return R_TLS;
328 case R_386_TLS_LE_32:
329 return R_NEG_TLS;
Rafael Espindola22ef9562016-04-13 01:40:19 +0000330 }
George Rimar77b77792015-11-25 22:15:01 +0000331}
332
Rafael Espindola69f54022016-06-04 23:22:34 +0000333RelExpr X86TargetInfo::adjustRelaxExpr(uint32_t Type, const uint8_t *Data,
334 RelExpr Expr) const {
335 switch (Expr) {
336 default:
337 return Expr;
338 case R_RELAX_TLS_GD_TO_IE:
339 return R_RELAX_TLS_GD_TO_IE_END;
340 case R_RELAX_TLS_GD_TO_LE:
341 return R_RELAX_TLS_GD_TO_LE_NEG;
342 }
343}
344
Rui Ueyamac516ae12016-01-29 02:33:45 +0000345void X86TargetInfo::writeGotPltHeader(uint8_t *Buf) const {
George Rimar77b77792015-11-25 22:15:01 +0000346 write32le(Buf, Out<ELF32LE>::Dynamic->getVA());
347}
348
Rui Ueyamac9fee5f2016-06-16 16:14:50 +0000349void X86TargetInfo::writeGotPlt(uint8_t *Buf, const SymbolBody &S) const {
Rui Ueyamacf375932016-01-29 23:58:03 +0000350 // Entries in .got.plt initially points back to the corresponding
351 // PLT entries with a fixed offset to skip the first instruction.
Rui Ueyamac9fee5f2016-06-16 16:14:50 +0000352 write32le(Buf, S.getPltVA<ELF32LE>() + 6);
Rafael Espindola7f074422015-09-22 21:35:51 +0000353}
Rafael Espindola01205f72015-09-22 18:19:46 +0000354
George Rimar98b060d2016-03-06 06:01:07 +0000355uint32_t X86TargetInfo::getDynRel(uint32_t Type) const {
George Rimard23970f2015-11-25 20:41:53 +0000356 if (Type == R_386_TLS_LE)
357 return R_386_TLS_TPOFF;
358 if (Type == R_386_TLS_LE_32)
359 return R_386_TLS_TPOFF32;
360 return Type;
361}
362
George Rimar98b060d2016-03-06 06:01:07 +0000363bool X86TargetInfo::isTlsGlobalDynamicRel(uint32_t Type) const {
Adhemerval Zanella74bcf032016-02-12 13:43:03 +0000364 return Type == R_386_TLS_GD;
365}
366
George Rimar98b060d2016-03-06 06:01:07 +0000367bool X86TargetInfo::isTlsLocalDynamicRel(uint32_t Type) const {
Rafael Espindolad405f472016-03-04 21:37:09 +0000368 return Type == R_386_TLS_LDO_32 || Type == R_386_TLS_LDM;
369}
370
George Rimar98b060d2016-03-06 06:01:07 +0000371bool X86TargetInfo::isTlsInitialExecRel(uint32_t Type) const {
Rafael Espindolad405f472016-03-04 21:37:09 +0000372 return Type == R_386_TLS_IE || Type == R_386_TLS_GOTIE;
373}
374
Rui Ueyama4a90f572016-06-16 16:28:50 +0000375void X86TargetInfo::writePltHeader(uint8_t *Buf) const {
George Rimar77b77792015-11-25 22:15:01 +0000376 // Executable files and shared object files have
377 // separate procedure linkage tables.
George Rimar786e8662016-03-17 05:57:33 +0000378 if (Config->Pic) {
George Rimar77b77792015-11-25 22:15:01 +0000379 const uint8_t V[] = {
Rui Ueyamaf53b1b72016-01-05 16:35:46 +0000380 0xff, 0xb3, 0x04, 0x00, 0x00, 0x00, // pushl 4(%ebx)
Rui Ueyamacf375932016-01-29 23:58:03 +0000381 0xff, 0xa3, 0x08, 0x00, 0x00, 0x00, // jmp *8(%ebx)
382 0x90, 0x90, 0x90, 0x90 // nop; nop; nop; nop
George Rimar77b77792015-11-25 22:15:01 +0000383 };
384 memcpy(Buf, V, sizeof(V));
385 return;
386 }
George Rimar648a2c32015-10-20 08:54:27 +0000387
George Rimar77b77792015-11-25 22:15:01 +0000388 const uint8_t PltData[] = {
389 0xff, 0x35, 0x00, 0x00, 0x00, 0x00, // pushl (GOT+4)
Rui Ueyamacf375932016-01-29 23:58:03 +0000390 0xff, 0x25, 0x00, 0x00, 0x00, 0x00, // jmp *(GOT+8)
391 0x90, 0x90, 0x90, 0x90 // nop; nop; nop; nop
George Rimar77b77792015-11-25 22:15:01 +0000392 };
393 memcpy(Buf, PltData, sizeof(PltData));
Rui Ueyama900e2d22016-01-29 03:51:49 +0000394 uint32_t Got = Out<ELF32LE>::GotPlt->getVA();
Rui Ueyamacf375932016-01-29 23:58:03 +0000395 write32le(Buf + 2, Got + 4);
396 write32le(Buf + 8, Got + 8);
George Rimar77b77792015-11-25 22:15:01 +0000397}
398
Rui Ueyama9398f862016-01-29 04:15:02 +0000399void X86TargetInfo::writePlt(uint8_t *Buf, uint64_t GotEntryAddr,
400 uint64_t PltEntryAddr, int32_t Index,
401 unsigned RelOff) const {
George Rimar77b77792015-11-25 22:15:01 +0000402 const uint8_t Inst[] = {
403 0xff, 0x00, 0x00, 0x00, 0x00, 0x00, // jmp *foo_in_GOT|*foo@GOT(%ebx)
404 0x68, 0x00, 0x00, 0x00, 0x00, // pushl $reloc_offset
405 0xe9, 0x00, 0x00, 0x00, 0x00 // jmp .PLT0@PC
406 };
Rui Ueyama1500a902015-09-29 23:00:47 +0000407 memcpy(Buf, Inst, sizeof(Inst));
Rui Ueyama9398f862016-01-29 04:15:02 +0000408
George Rimar77b77792015-11-25 22:15:01 +0000409 // jmp *foo@GOT(%ebx) or jmp *foo_in_GOT
George Rimar786e8662016-03-17 05:57:33 +0000410 Buf[1] = Config->Pic ? 0xa3 : 0x25;
Rafael Espindolae2f43772016-05-18 20:44:24 +0000411 uint32_t Got = Out<ELF32LE>::GotPlt->getVA();
Rui Ueyama9398f862016-01-29 04:15:02 +0000412 write32le(Buf + 2, Config->Shared ? GotEntryAddr - Got : GotEntryAddr);
George Rimar77b77792015-11-25 22:15:01 +0000413 write32le(Buf + 7, RelOff);
Rui Ueyama4a90f572016-06-16 16:28:50 +0000414 write32le(Buf + 12, -Index * PltEntrySize - PltHeaderSize - 16);
Rafael Espindola01205f72015-09-22 18:19:46 +0000415}
416
Rafael Espindola666625b2016-04-01 14:36:09 +0000417uint64_t X86TargetInfo::getImplicitAddend(const uint8_t *Buf,
418 uint32_t Type) const {
Rafael Espindolada99df32016-03-30 12:40:38 +0000419 switch (Type) {
420 default:
421 return 0;
422 case R_386_32:
423 case R_386_GOT32:
424 case R_386_GOTOFF:
425 case R_386_GOTPC:
426 case R_386_PC32:
427 case R_386_PLT32:
428 return read32le(Buf);
429 }
430}
431
Rafael Espindola22ef9562016-04-13 01:40:19 +0000432void X86TargetInfo::relocateOne(uint8_t *Loc, uint32_t Type,
433 uint64_t Val) const {
Rafael Espindola3f5d6342016-04-18 12:07:13 +0000434 checkInt<32>(Val, Type);
435 write32le(Loc, Val);
Rafael Espindolac4010882015-09-22 20:54:08 +0000436}
437
Rafael Espindola22ef9562016-04-13 01:40:19 +0000438void X86TargetInfo::relaxTlsGdToLe(uint8_t *Loc, uint32_t Type,
439 uint64_t Val) const {
Rui Ueyama55274e32016-04-23 01:10:15 +0000440 // Convert
Rafael Espindola89cc14f2016-03-16 19:03:58 +0000441 // leal x@tlsgd(, %ebx, 1),
442 // call __tls_get_addr@plt
Rui Ueyama55274e32016-04-23 01:10:15 +0000443 // to
Rafael Espindola89cc14f2016-03-16 19:03:58 +0000444 // movl %gs:0,%eax
Rui Ueyama55274e32016-04-23 01:10:15 +0000445 // subl $x@ntpoff,%eax
Rafael Espindola89cc14f2016-03-16 19:03:58 +0000446 const uint8_t Inst[] = {
447 0x65, 0xa1, 0x00, 0x00, 0x00, 0x00, // movl %gs:0, %eax
448 0x81, 0xe8, 0x00, 0x00, 0x00, 0x00 // subl 0(%ebx), %eax
449 };
450 memcpy(Loc - 3, Inst, sizeof(Inst));
Rafael Espindolaebed1fe2016-05-20 21:23:52 +0000451 relocateOne(Loc + 5, R_386_32, Val);
George Rimar2558e122015-12-09 09:55:54 +0000452}
453
Rafael Espindola22ef9562016-04-13 01:40:19 +0000454void X86TargetInfo::relaxTlsGdToIe(uint8_t *Loc, uint32_t Type,
455 uint64_t Val) const {
Rui Ueyama55274e32016-04-23 01:10:15 +0000456 // Convert
457 // leal x@tlsgd(, %ebx, 1),
458 // call __tls_get_addr@plt
459 // to
460 // movl %gs:0, %eax
461 // addl x@gotntpoff(%ebx), %eax
George Rimar2558e122015-12-09 09:55:54 +0000462 const uint8_t Inst[] = {
463 0x65, 0xa1, 0x00, 0x00, 0x00, 0x00, // movl %gs:0, %eax
464 0x03, 0x83, 0x00, 0x00, 0x00, 0x00 // addl 0(%ebx), %eax
465 };
466 memcpy(Loc - 3, Inst, sizeof(Inst));
Rafael Espindola74f3dbe2016-05-20 20:09:35 +0000467 relocateOne(Loc + 5, R_386_32, Val);
George Rimar2558e122015-12-09 09:55:54 +0000468}
469
George Rimar6f17e092015-12-17 09:32:21 +0000470// In some conditions, relocations can be optimized to avoid using GOT.
471// This function does that for Initial Exec to Local Exec case.
Rafael Espindola22ef9562016-04-13 01:40:19 +0000472void X86TargetInfo::relaxTlsIeToLe(uint8_t *Loc, uint32_t Type,
473 uint64_t Val) const {
George Rimar6f17e092015-12-17 09:32:21 +0000474 // Ulrich's document section 6.2 says that @gotntpoff can
475 // be used with MOVL or ADDL instructions.
476 // @indntpoff is similar to @gotntpoff, but for use in
477 // position dependent code.
George Rimar2558e122015-12-09 09:55:54 +0000478 uint8_t *Inst = Loc - 2;
George Rimar6f17e092015-12-17 09:32:21 +0000479 uint8_t *Op = Loc - 1;
George Rimar2558e122015-12-09 09:55:54 +0000480 uint8_t Reg = (Loc[-1] >> 3) & 7;
481 bool IsMov = *Inst == 0x8b;
George Rimar6f17e092015-12-17 09:32:21 +0000482 if (Type == R_386_TLS_IE) {
483 // For R_386_TLS_IE relocation we perform the next transformations:
484 // MOVL foo@INDNTPOFF,%EAX is transformed to MOVL $foo,%EAX
485 // MOVL foo@INDNTPOFF,%REG is transformed to MOVL $foo,%REG
486 // ADDL foo@INDNTPOFF,%REG is transformed to ADDL $foo,%REG
487 // First one is special because when EAX is used the sequence is 5 bytes
488 // long, otherwise it is 6 bytes.
489 if (*Op == 0xa1) {
490 *Op = 0xb8;
491 } else {
492 *Inst = IsMov ? 0xc7 : 0x81;
493 *Op = 0xc0 | ((*Op >> 3) & 7);
494 }
495 } else {
496 // R_386_TLS_GOTIE relocation can be optimized to
497 // R_386_TLS_LE so that it does not use GOT.
498 // "MOVL foo@GOTTPOFF(%RIP), %REG" is transformed to "MOVL $foo, %REG".
499 // "ADDL foo@GOTNTPOFF(%RIP), %REG" is transformed to "LEAL foo(%REG), %REG"
500 // Note: gold converts to ADDL instead of LEAL.
501 *Inst = IsMov ? 0xc7 : 0x8d;
502 if (IsMov)
503 *Op = 0xc0 | ((*Op >> 3) & 7);
504 else
505 *Op = 0x80 | Reg | (Reg << 3);
506 }
Rafael Espindola8818ca62016-05-20 17:41:09 +0000507 relocateOne(Loc, R_386_TLS_LE, Val);
Rafael Espindola89cc14f2016-03-16 19:03:58 +0000508}
509
Rafael Espindola22ef9562016-04-13 01:40:19 +0000510void X86TargetInfo::relaxTlsLdToLe(uint8_t *Loc, uint32_t Type,
511 uint64_t Val) const {
Rafael Espindola89cc14f2016-03-16 19:03:58 +0000512 if (Type == R_386_TLS_LDO_32) {
Rafael Espindola8818ca62016-05-20 17:41:09 +0000513 relocateOne(Loc, R_386_TLS_LE, Val);
Rafael Espindola22ef9562016-04-13 01:40:19 +0000514 return;
Rafael Espindola89cc14f2016-03-16 19:03:58 +0000515 }
516
Rui Ueyama55274e32016-04-23 01:10:15 +0000517 // Convert
Rafael Espindola89cc14f2016-03-16 19:03:58 +0000518 // leal foo(%reg),%eax
519 // call ___tls_get_addr
Rui Ueyama55274e32016-04-23 01:10:15 +0000520 // to
Rafael Espindola89cc14f2016-03-16 19:03:58 +0000521 // movl %gs:0,%eax
522 // nop
523 // leal 0(%esi,1),%esi
524 const uint8_t Inst[] = {
525 0x65, 0xa1, 0x00, 0x00, 0x00, 0x00, // movl %gs:0,%eax
526 0x90, // nop
527 0x8d, 0x74, 0x26, 0x00 // leal 0(%esi,1),%esi
528 };
529 memcpy(Loc - 2, Inst, sizeof(Inst));
George Rimar2558e122015-12-09 09:55:54 +0000530}
531
Rafael Espindola7f074422015-09-22 21:35:51 +0000532X86_64TargetInfo::X86_64TargetInfo() {
Rui Ueyama724d6252016-01-29 01:49:32 +0000533 CopyRel = R_X86_64_COPY;
534 GotRel = R_X86_64_GLOB_DAT;
535 PltRel = R_X86_64_JUMP_SLOT;
536 RelativeRel = R_X86_64_RELATIVE;
537 IRelativeRel = R_X86_64_IRELATIVE;
538 TlsGotRel = R_X86_64_TPOFF64;
Rui Ueyama724d6252016-01-29 01:49:32 +0000539 TlsModuleIndexRel = R_X86_64_DTPMOD64;
540 TlsOffsetRel = R_X86_64_DTPOFF64;
George Rimar648a2c32015-10-20 08:54:27 +0000541 PltEntrySize = 16;
Rui Ueyama4a90f572016-06-16 16:28:50 +0000542 PltHeaderSize = 16;
Rafael Espindolaf807d472016-06-04 23:04:39 +0000543 TlsGdRelaxSkip = 2;
Rafael Espindola22ef9562016-04-13 01:40:19 +0000544}
545
546RelExpr X86_64TargetInfo::getRelExpr(uint32_t Type, const SymbolBody &S) const {
547 switch (Type) {
548 default:
549 return R_ABS;
Rafael Espindolaece62b92016-04-18 12:44:33 +0000550 case R_X86_64_TPOFF32:
551 return R_TLS;
Rafael Espindolac4d56972016-04-18 00:28:57 +0000552 case R_X86_64_TLSLD:
553 return R_TLSLD_PC;
Rafael Espindoladf172772016-04-18 01:29:15 +0000554 case R_X86_64_TLSGD:
555 return R_TLSGD_PC;
Rafael Espindola3151d892016-04-14 18:39:44 +0000556 case R_X86_64_SIZE32:
557 case R_X86_64_SIZE64:
558 return R_SIZE;
Rafael Espindola22ef9562016-04-13 01:40:19 +0000559 case R_X86_64_PLT32:
Rafael Espindolab312a742016-04-21 17:30:24 +0000560 return R_PLT_PC;
Rafael Espindola22ef9562016-04-13 01:40:19 +0000561 case R_X86_64_PC32:
Rafael Espindola926bff82016-04-25 14:05:44 +0000562 case R_X86_64_PC64:
Rafael Espindola22ef9562016-04-13 01:40:19 +0000563 return R_PC;
Rafael Espindola5628ee72016-04-15 19:14:18 +0000564 case R_X86_64_GOT32:
Rafael Espindolaf4c1cd42016-04-18 12:58:59 +0000565 return R_GOT_FROM_END;
Rafael Espindola5628ee72016-04-15 19:14:18 +0000566 case R_X86_64_GOTPCREL:
Rafael Espindoladba64b82016-05-24 11:53:15 +0000567 case R_X86_64_GOTPCRELX:
568 case R_X86_64_REX_GOTPCRELX:
Rafael Espindolafe3a2f12016-05-24 12:12:06 +0000569 case R_X86_64_GOTTPOFF:
570 return R_GOT_PC;
Rafael Espindola22ef9562016-04-13 01:40:19 +0000571 }
George Rimar648a2c32015-10-20 08:54:27 +0000572}
573
Rui Ueyamac516ae12016-01-29 02:33:45 +0000574void X86_64TargetInfo::writeGotPltHeader(uint8_t *Buf) const {
Rafael Espindola4ee6cb32016-05-09 18:12:15 +0000575 // The first entry holds the value of _DYNAMIC. It is not clear why that is
576 // required, but it is documented in the psabi and the glibc dynamic linker
Rafael Espindolae5027512016-05-10 16:23:46 +0000577 // seems to use it (note that this is relevant for linking ld.so, not any
Rafael Espindola4ee6cb32016-05-09 18:12:15 +0000578 // other program).
Igor Kudrin351b41d2015-11-16 17:44:08 +0000579 write64le(Buf, Out<ELF64LE>::Dynamic->getVA());
580}
581
Rui Ueyamac9fee5f2016-06-16 16:14:50 +0000582void X86_64TargetInfo::writeGotPlt(uint8_t *Buf, const SymbolBody &S) const {
Rui Ueyamacf375932016-01-29 23:58:03 +0000583 // See comments in X86TargetInfo::writeGotPlt.
Rui Ueyamac9fee5f2016-06-16 16:14:50 +0000584 write32le(Buf, S.getPltVA<ELF64LE>() + 6);
George Rimar648a2c32015-10-20 08:54:27 +0000585}
586
Rui Ueyama4a90f572016-06-16 16:28:50 +0000587void X86_64TargetInfo::writePltHeader(uint8_t *Buf) const {
George Rimar648a2c32015-10-20 08:54:27 +0000588 const uint8_t PltData[] = {
589 0xff, 0x35, 0x00, 0x00, 0x00, 0x00, // pushq GOT+8(%rip)
590 0xff, 0x25, 0x00, 0x00, 0x00, 0x00, // jmp *GOT+16(%rip)
591 0x0f, 0x1f, 0x40, 0x00 // nopl 0x0(rax)
592 };
593 memcpy(Buf, PltData, sizeof(PltData));
Rui Ueyama900e2d22016-01-29 03:51:49 +0000594 uint64_t Got = Out<ELF64LE>::GotPlt->getVA();
595 uint64_t Plt = Out<ELF64LE>::Plt->getVA();
596 write32le(Buf + 2, Got - Plt + 2); // GOT+8
597 write32le(Buf + 8, Got - Plt + 4); // GOT+16
Rafael Espindola7f074422015-09-22 21:35:51 +0000598}
Rafael Espindola01205f72015-09-22 18:19:46 +0000599
Rui Ueyama9398f862016-01-29 04:15:02 +0000600void X86_64TargetInfo::writePlt(uint8_t *Buf, uint64_t GotEntryAddr,
601 uint64_t PltEntryAddr, int32_t Index,
602 unsigned RelOff) const {
George Rimar648a2c32015-10-20 08:54:27 +0000603 const uint8_t Inst[] = {
604 0xff, 0x25, 0x00, 0x00, 0x00, 0x00, // jmpq *got(%rip)
605 0x68, 0x00, 0x00, 0x00, 0x00, // pushq <relocation index>
606 0xe9, 0x00, 0x00, 0x00, 0x00 // jmpq plt[0]
607 };
Rui Ueyama1500a902015-09-29 23:00:47 +0000608 memcpy(Buf, Inst, sizeof(Inst));
Rafael Espindola01205f72015-09-22 18:19:46 +0000609
George Rimar648a2c32015-10-20 08:54:27 +0000610 write32le(Buf + 2, GotEntryAddr - PltEntryAddr - 6);
611 write32le(Buf + 7, Index);
Rui Ueyama4a90f572016-06-16 16:28:50 +0000612 write32le(Buf + 12, -Index * PltEntrySize - PltHeaderSize - 16);
Rafael Espindola01205f72015-09-22 18:19:46 +0000613}
614
George Rimar86971052016-03-29 08:35:42 +0000615uint32_t X86_64TargetInfo::getDynRel(uint32_t Type) const {
Rafael Espindola8dbb7e12016-06-09 20:35:27 +0000616 if (Type == R_X86_64_PC32 || Type == R_X86_64_32)
Rafael Espindolae8b8a342016-06-09 20:42:04 +0000617 errorDynRel(Type);
George Rimar86971052016-03-29 08:35:42 +0000618 return Type;
619}
620
George Rimar98b060d2016-03-06 06:01:07 +0000621bool X86_64TargetInfo::isTlsInitialExecRel(uint32_t Type) const {
Rafael Espindolad405f472016-03-04 21:37:09 +0000622 return Type == R_X86_64_GOTTPOFF;
623}
624
George Rimar98b060d2016-03-06 06:01:07 +0000625bool X86_64TargetInfo::isTlsGlobalDynamicRel(uint32_t Type) const {
Adhemerval Zanella74bcf032016-02-12 13:43:03 +0000626 return Type == R_X86_64_TLSGD;
627}
628
George Rimar98b060d2016-03-06 06:01:07 +0000629bool X86_64TargetInfo::isTlsLocalDynamicRel(uint32_t Type) const {
Rafael Espindola1f04c442016-03-08 20:24:36 +0000630 return Type == R_X86_64_DTPOFF32 || Type == R_X86_64_DTPOFF64 ||
631 Type == R_X86_64_TLSLD;
George Rimard23970f2015-11-25 20:41:53 +0000632}
633
Rafael Espindola22ef9562016-04-13 01:40:19 +0000634void X86_64TargetInfo::relaxTlsGdToLe(uint8_t *Loc, uint32_t Type,
635 uint64_t Val) const {
Rui Ueyama55274e32016-04-23 01:10:15 +0000636 // Convert
637 // .byte 0x66
638 // leaq x@tlsgd(%rip), %rdi
639 // .word 0x6666
640 // rex64
641 // call __tls_get_addr@plt
642 // to
643 // mov %fs:0x0,%rax
644 // lea x@tpoff,%rax
George Rimar6713cf82015-11-25 21:46:05 +0000645 const uint8_t Inst[] = {
646 0x64, 0x48, 0x8b, 0x04, 0x25, 0x00, 0x00, 0x00, 0x00, // mov %fs:0x0,%rax
647 0x48, 0x8d, 0x80, 0x00, 0x00, 0x00, 0x00 // lea x@tpoff,%rax
648 };
649 memcpy(Loc - 4, Inst, sizeof(Inst));
Rafael Espindola91e9fc02016-05-20 21:09:59 +0000650 // The original code used a pc relative relocation and so we have to
651 // compensate for the -4 in had in the addend.
Rafael Espindola8818ca62016-05-20 17:41:09 +0000652 relocateOne(Loc + 8, R_X86_64_TPOFF32, Val + 4);
George Rimar77d1cb12015-11-24 09:00:06 +0000653}
654
Rafael Espindola22ef9562016-04-13 01:40:19 +0000655void X86_64TargetInfo::relaxTlsGdToIe(uint8_t *Loc, uint32_t Type,
656 uint64_t Val) const {
Rui Ueyama55274e32016-04-23 01:10:15 +0000657 // Convert
658 // .byte 0x66
659 // leaq x@tlsgd(%rip), %rdi
660 // .word 0x6666
661 // rex64
662 // call __tls_get_addr@plt
663 // to
664 // mov %fs:0x0,%rax
665 // addq x@tpoff,%rax
George Rimar25411f252015-12-04 11:20:13 +0000666 const uint8_t Inst[] = {
667 0x64, 0x48, 0x8b, 0x04, 0x25, 0x00, 0x00, 0x00, 0x00, // mov %fs:0x0,%rax
668 0x48, 0x03, 0x05, 0x00, 0x00, 0x00, 0x00 // addq x@tpoff,%rax
669 };
670 memcpy(Loc - 4, Inst, sizeof(Inst));
Rafael Espindola91e9fc02016-05-20 21:09:59 +0000671 // Both code sequences are PC relatives, but since we are moving the constant
672 // forward by 8 bytes we have to subtract the value by 8.
Rafael Espindola22ef9562016-04-13 01:40:19 +0000673 relocateOne(Loc + 8, R_X86_64_PC32, Val - 8);
George Rimar25411f252015-12-04 11:20:13 +0000674}
675
George Rimar77d1cb12015-11-24 09:00:06 +0000676// In some conditions, R_X86_64_GOTTPOFF relocation can be optimized to
George Rimarc55b4e22015-12-07 16:54:56 +0000677// R_X86_64_TPOFF32 so that it does not use GOT.
Rafael Espindola22ef9562016-04-13 01:40:19 +0000678void X86_64TargetInfo::relaxTlsIeToLe(uint8_t *Loc, uint32_t Type,
679 uint64_t Val) const {
Rui Ueyama55a9def2016-06-21 03:42:32 +0000680 uint8_t *Inst = Loc - 3;
George Rimar77d1cb12015-11-24 09:00:06 +0000681 uint8_t Reg = Loc[-1] >> 3;
Rui Ueyama3f5dd142016-06-21 05:01:31 +0000682 uint8_t *RegSlot = Loc - 1;
Rui Ueyama55274e32016-04-23 01:10:15 +0000683
Rui Ueyama55a9def2016-06-21 03:42:32 +0000684 // Note that LEA with RSP or R12 is converted to ADD instead of LEA
685 // because LEA with these registers needs 4 bytes to encode and thus
686 // wouldn't fit the space.
687
688 if (memcmp(Inst, "\x48\x03\x25", 3) == 0) {
689 // "addq foo@gottpoff(%rip),%rsp" -> "addq $foo,%rsp"
690 memcpy(Inst, "\x48\x81\xc4", 3);
691 } else if (memcmp(Inst, "\x4c\x03\x25", 3) == 0) {
692 // "addq foo@gottpoff(%rip),%r12" -> "addq $foo,%r12"
693 memcpy(Inst, "\x49\x81\xc4", 3);
694 } else if (memcmp(Inst, "\x4c\x03", 2) == 0) {
695 // "addq foo@gottpoff(%rip),%r[8-15]" -> "leaq foo(%r[8-15]),%r[8-15]"
696 memcpy(Inst, "\x4d\x8d", 2);
697 *RegSlot = 0x80 | (Reg << 3) | Reg;
698 } else if (memcmp(Inst, "\x48\x03", 2) == 0) {
699 // "addq foo@gottpoff(%rip),%reg -> "leaq foo(%reg),%reg"
700 memcpy(Inst, "\x48\x8d", 2);
701 *RegSlot = 0x80 | (Reg << 3) | Reg;
702 } else if (memcmp(Inst, "\x4c\x8b", 2) == 0) {
703 // "movq foo@gottpoff(%rip),%r[8-15]" -> "movq $foo,%r[8-15]"
704 memcpy(Inst, "\x49\xc7", 2);
705 *RegSlot = 0xc0 | Reg;
706 } else if (memcmp(Inst, "\x48\x8b", 2) == 0) {
707 // "movq foo@gottpoff(%rip),%reg" -> "movq $foo,%reg"
708 memcpy(Inst, "\x48\xc7", 2);
709 *RegSlot = 0xc0 | Reg;
710 }
711
712 // The original code used a PC relative relocation.
713 // Need to compensate for the -4 it had in the addend.
Rafael Espindola8818ca62016-05-20 17:41:09 +0000714 relocateOne(Loc, R_X86_64_TPOFF32, Val + 4);
George Rimar77d1cb12015-11-24 09:00:06 +0000715}
716
Rafael Espindola22ef9562016-04-13 01:40:19 +0000717void X86_64TargetInfo::relaxTlsLdToLe(uint8_t *Loc, uint32_t Type,
718 uint64_t Val) const {
Rui Ueyama55274e32016-04-23 01:10:15 +0000719 // Convert
720 // leaq bar@tlsld(%rip), %rdi
721 // callq __tls_get_addr@PLT
722 // leaq bar@dtpoff(%rax), %rcx
723 // to
724 // .word 0x6666
725 // .byte 0x66
726 // mov %fs:0,%rax
727 // leaq bar@tpoff(%rax), %rcx
Rafael Espindola89cc14f2016-03-16 19:03:58 +0000728 if (Type == R_X86_64_DTPOFF64) {
Rafael Espindola8818ca62016-05-20 17:41:09 +0000729 write64le(Loc, Val);
Rafael Espindola22ef9562016-04-13 01:40:19 +0000730 return;
Rafael Espindola89cc14f2016-03-16 19:03:58 +0000731 }
732 if (Type == R_X86_64_DTPOFF32) {
Rafael Espindola8818ca62016-05-20 17:41:09 +0000733 relocateOne(Loc, R_X86_64_TPOFF32, Val);
Rafael Espindola22ef9562016-04-13 01:40:19 +0000734 return;
George Rimar25411f252015-12-04 11:20:13 +0000735 }
Rafael Espindola89cc14f2016-03-16 19:03:58 +0000736
737 const uint8_t Inst[] = {
Rui Ueyama02fcf112016-05-25 04:29:53 +0000738 0x66, 0x66, // .word 0x6666
739 0x66, // .byte 0x66
Rafael Espindola89cc14f2016-03-16 19:03:58 +0000740 0x64, 0x48, 0x8b, 0x04, 0x25, 0x00, 0x00, 0x00, 0x00 // mov %fs:0,%rax
741 };
742 memcpy(Loc - 3, Inst, sizeof(Inst));
George Rimar6713cf82015-11-25 21:46:05 +0000743}
744
Rafael Espindola22ef9562016-04-13 01:40:19 +0000745void X86_64TargetInfo::relocateOne(uint8_t *Loc, uint32_t Type,
746 uint64_t Val) const {
Rafael Espindolac4010882015-09-22 20:54:08 +0000747 switch (Type) {
Rui Ueyama3835b492015-10-23 16:13:27 +0000748 case R_X86_64_32:
Rafael Espindola22ef9562016-04-13 01:40:19 +0000749 checkUInt<32>(Val, Type);
750 write32le(Loc, Val);
Igor Kudrin9b7e7db2015-11-26 09:49:44 +0000751 break;
Rafael Espindolac4010882015-09-22 20:54:08 +0000752 case R_X86_64_32S:
Rafael Espindolaece62b92016-04-18 12:44:33 +0000753 case R_X86_64_TPOFF32:
Rafael Espindolaf4c1cd42016-04-18 12:58:59 +0000754 case R_X86_64_GOT32:
Igor Kudrinb4a09272015-12-01 08:41:20 +0000755 case R_X86_64_GOTPCREL:
George Rimar9f8f4e32016-03-22 12:15:26 +0000756 case R_X86_64_GOTPCRELX:
757 case R_X86_64_REX_GOTPCRELX:
Igor Kudrinb4a09272015-12-01 08:41:20 +0000758 case R_X86_64_PC32:
Rafael Espindola38bd2172016-05-04 15:51:23 +0000759 case R_X86_64_GOTTPOFF:
Igor Kudrinb4a09272015-12-01 08:41:20 +0000760 case R_X86_64_PLT32:
761 case R_X86_64_TLSGD:
762 case R_X86_64_TLSLD:
Rafael Espindola3c20fb42016-04-18 11:53:42 +0000763 case R_X86_64_DTPOFF32:
George Rimar48651482015-12-11 08:59:37 +0000764 case R_X86_64_SIZE32:
Rafael Espindolafb0ceb52016-05-20 20:02:27 +0000765 checkInt<32>(Val, Type);
Rafael Espindola22ef9562016-04-13 01:40:19 +0000766 write32le(Loc, Val);
George Rimar48651482015-12-11 08:59:37 +0000767 break;
Rui Ueyamae66f45c2016-05-25 04:10:14 +0000768 case R_X86_64_64:
769 case R_X86_64_DTPOFF64:
770 case R_X86_64_SIZE64:
771 case R_X86_64_PC64:
772 write64le(Loc, Val);
773 break;
Rafael Espindolac4010882015-09-22 20:54:08 +0000774 default:
George Rimar57610422016-03-11 14:43:02 +0000775 fatal("unrecognized reloc " + Twine(Type));
Rafael Espindolac4010882015-09-22 20:54:08 +0000776 }
777}
778
Rafael Espindola5c66b822016-06-04 22:58:54 +0000779RelExpr X86_64TargetInfo::adjustRelaxExpr(uint32_t Type, const uint8_t *Data,
780 RelExpr RelExpr) const {
George Rimar5c33b912016-05-25 14:31:37 +0000781 if (Type != R_X86_64_GOTPCRELX && Type != R_X86_64_REX_GOTPCRELX)
George Rimarf10c8292016-06-01 16:45:30 +0000782 return RelExpr;
George Rimara8f9cf12016-05-26 13:37:12 +0000783 const uint8_t Op = Data[-2];
784 const uint8_t ModRm = Data[-1];
George Rimarf10c8292016-06-01 16:45:30 +0000785 // FIXME: When PIC is disabled and foo is defined locally in the
786 // lower 32 bit address space, memory operand in mov can be converted into
787 // immediate operand. Otherwise, mov must be changed to lea. We support only
788 // latter relaxation at this moment.
George Rimar95433df2016-05-25 16:51:08 +0000789 if (Op == 0x8b)
George Rimarf10c8292016-06-01 16:45:30 +0000790 return R_RELAX_GOT_PC;
George Rimar95433df2016-05-25 16:51:08 +0000791 // Relax call and jmp.
George Rimarf10c8292016-06-01 16:45:30 +0000792 if (Op == 0xff && (ModRm == 0x15 || ModRm == 0x25))
793 return R_RELAX_GOT_PC;
794
795 // Relaxation of test, adc, add, and, cmp, or, sbb, sub, xor.
796 // If PIC then no relaxation is available.
797 // We also don't relax test/binop instructions without REX byte,
798 // they are 32bit operations and not common to have.
799 assert(Type == R_X86_64_REX_GOTPCRELX);
800 return Config->Pic ? RelExpr : R_RELAX_GOT_PC_NOPIC;
George Rimar5c33b912016-05-25 14:31:37 +0000801}
802
George Rimarb7204302016-06-02 09:22:00 +0000803// A subset of relaxations can only be applied for no-PIC. This method
804// handles such relaxations. Instructions encoding information was taken from:
805// "Intel 64 and IA-32 Architectures Software Developer's Manual V2"
806// (http://www.intel.com/content/dam/www/public/us/en/documents/manuals/
807// 64-ia-32-architectures-software-developer-instruction-set-reference-manual-325383.pdf)
808void X86_64TargetInfo::relaxGotNoPic(uint8_t *Loc, uint64_t Val, uint8_t Op,
809 uint8_t ModRm) const {
George Rimarf10c8292016-06-01 16:45:30 +0000810 const uint8_t Rex = Loc[-3];
811 // Convert "test %reg, foo@GOTPCREL(%rip)" to "test $foo, %reg".
812 if (Op == 0x85) {
813 // See "TEST-Logical Compare" (4-428 Vol. 2B),
814 // TEST r/m64, r64 uses "full" ModR / M byte (no opcode extension).
815
816 // ModR/M byte has form XX YYY ZZZ, where
817 // YYY is MODRM.reg(register 2), ZZZ is MODRM.rm(register 1).
818 // XX has different meanings:
819 // 00: The operand's memory address is in reg1.
820 // 01: The operand's memory address is reg1 + a byte-sized displacement.
821 // 10: The operand's memory address is reg1 + a word-sized displacement.
822 // 11: The operand is reg1 itself.
823 // If an instruction requires only one operand, the unused reg2 field
824 // holds extra opcode bits rather than a register code
825 // 0xC0 == 11 000 000 binary.
826 // 0x38 == 00 111 000 binary.
827 // We transfer reg2 to reg1 here as operand.
828 // See "2.1.3 ModR/M and SIB Bytes" (Vol. 2A 2-3).
Rui Ueyama595bc5d2016-06-16 19:48:07 +0000829 Loc[-1] = 0xc0 | (ModRm & 0x38) >> 3; // ModR/M byte.
George Rimarf10c8292016-06-01 16:45:30 +0000830
831 // Change opcode from TEST r/m64, r64 to TEST r/m64, imm32
832 // See "TEST-Logical Compare" (4-428 Vol. 2B).
Rui Ueyama595bc5d2016-06-16 19:48:07 +0000833 Loc[-2] = 0xf7;
George Rimarf10c8292016-06-01 16:45:30 +0000834
835 // Move R bit to the B bit in REX byte.
836 // REX byte is encoded as 0100WRXB, where
837 // 0100 is 4bit fixed pattern.
838 // REX.W When 1, a 64-bit operand size is used. Otherwise, when 0, the
839 // default operand size is used (which is 32-bit for most but not all
840 // instructions).
841 // REX.R This 1-bit value is an extension to the MODRM.reg field.
842 // REX.X This 1-bit value is an extension to the SIB.index field.
843 // REX.B This 1-bit value is an extension to the MODRM.rm field or the
844 // SIB.base field.
845 // See "2.2.1.2 More on REX Prefix Fields " (2-8 Vol. 2A).
Rui Ueyama595bc5d2016-06-16 19:48:07 +0000846 Loc[-3] = (Rex & ~0x4) | (Rex & 0x4) >> 2;
George Rimarf10c8292016-06-01 16:45:30 +0000847 relocateOne(Loc, R_X86_64_PC32, Val);
848 return;
849 }
850
851 // If we are here then we need to relax the adc, add, and, cmp, or, sbb, sub
852 // or xor operations.
853
854 // Convert "binop foo@GOTPCREL(%rip), %reg" to "binop $foo, %reg".
855 // Logic is close to one for test instruction above, but we also
856 // write opcode extension here, see below for details.
Rui Ueyama595bc5d2016-06-16 19:48:07 +0000857 Loc[-1] = 0xc0 | (ModRm & 0x38) >> 3 | (Op & 0x3c); // ModR/M byte.
George Rimarf10c8292016-06-01 16:45:30 +0000858
859 // Primary opcode is 0x81, opcode extension is one of:
860 // 000b = ADD, 001b is OR, 010b is ADC, 011b is SBB,
861 // 100b is AND, 101b is SUB, 110b is XOR, 111b is CMP.
862 // This value was wrote to MODRM.reg in a line above.
863 // See "3.2 INSTRUCTIONS (A-M)" (Vol. 2A 3-15),
864 // "INSTRUCTION SET REFERENCE, N-Z" (Vol. 2B 4-1) for
865 // descriptions about each operation.
Rui Ueyama595bc5d2016-06-16 19:48:07 +0000866 Loc[-2] = 0x81;
867 Loc[-3] = (Rex & ~0x4) | (Rex & 0x4) >> 2;
George Rimar5c33b912016-05-25 14:31:37 +0000868 relocateOne(Loc, R_X86_64_PC32, Val);
869}
870
George Rimarb7204302016-06-02 09:22:00 +0000871void X86_64TargetInfo::relaxGot(uint8_t *Loc, uint64_t Val) const {
872 const uint8_t Op = Loc[-2];
873 const uint8_t ModRm = Loc[-1];
874
Rui Ueyamaa71ba432016-06-16 23:28:05 +0000875 // Convert "mov foo@GOTPCREL(%rip),%reg" to "lea foo(%rip),%reg".
George Rimarb7204302016-06-02 09:22:00 +0000876 if (Op == 0x8b) {
Rui Ueyama595bc5d2016-06-16 19:48:07 +0000877 Loc[-2] = 0x8d;
George Rimarb7204302016-06-02 09:22:00 +0000878 relocateOne(Loc, R_X86_64_PC32, Val);
879 return;
880 }
881
Rui Ueyamaa71ba432016-06-16 23:28:05 +0000882 if (Op != 0xff) {
883 // We are relaxing a rip relative to an absolute, so compensate
884 // for the old -4 addend.
885 assert(!Config->Pic);
886 relaxGotNoPic(Loc, Val + 4, Op, ModRm);
887 return;
888 }
889
George Rimarb7204302016-06-02 09:22:00 +0000890 // Convert call/jmp instructions.
Rui Ueyamaa71ba432016-06-16 23:28:05 +0000891 if (ModRm == 0x15) {
892 // ABI says we can convert "call *foo@GOTPCREL(%rip)" to "nop; call foo".
893 // Instead we convert to "addr32 call foo" where addr32 is an instruction
894 // prefix. That makes result expression to be a single instruction.
895 Loc[-2] = 0x67; // addr32 prefix
896 Loc[-1] = 0xe8; // call
George Rimarb7204302016-06-02 09:22:00 +0000897 relocateOne(Loc, R_X86_64_PC32, Val);
898 return;
899 }
900
Rui Ueyamaa71ba432016-06-16 23:28:05 +0000901 // Convert "jmp *foo@GOTPCREL(%rip)" to "jmp foo; nop".
902 // jmp doesn't return, so it is fine to use nop here, it is just a stub.
903 assert(ModRm == 0x25);
904 Loc[-2] = 0xe9; // jmp
905 Loc[3] = 0x90; // nop
906 relocateOne(Loc - 1, R_X86_64_PC32, Val + 1);
George Rimarb7204302016-06-02 09:22:00 +0000907}
908
Hal Finkel3c8cc672015-10-12 20:56:18 +0000909// Relocation masks following the #lo(value), #hi(value), #ha(value),
910// #higher(value), #highera(value), #highest(value), and #highesta(value)
911// macros defined in section 4.5.1. Relocation Types of the PPC-elf64abi
912// document.
Rui Ueyamac44e5a12015-10-23 16:54:58 +0000913static uint16_t applyPPCLo(uint64_t V) { return V; }
914static uint16_t applyPPCHi(uint64_t V) { return V >> 16; }
915static uint16_t applyPPCHa(uint64_t V) { return (V + 0x8000) >> 16; }
916static uint16_t applyPPCHigher(uint64_t V) { return V >> 32; }
917static uint16_t applyPPCHighera(uint64_t V) { return (V + 0x8000) >> 32; }
Hal Finkel3c8cc672015-10-12 20:56:18 +0000918static uint16_t applyPPCHighest(uint64_t V) { return V >> 48; }
Hal Finkel3c8cc672015-10-12 20:56:18 +0000919static uint16_t applyPPCHighesta(uint64_t V) { return (V + 0x8000) >> 48; }
920
Davide Italiano8c3444362016-01-11 19:45:33 +0000921PPCTargetInfo::PPCTargetInfo() {}
Davide Italiano8c3444362016-01-11 19:45:33 +0000922
Rafael Espindola22ef9562016-04-13 01:40:19 +0000923void PPCTargetInfo::relocateOne(uint8_t *Loc, uint32_t Type,
924 uint64_t Val) const {
Davide Italiano8c3444362016-01-11 19:45:33 +0000925 switch (Type) {
926 case R_PPC_ADDR16_HA:
Rafael Espindola22ef9562016-04-13 01:40:19 +0000927 write16be(Loc, applyPPCHa(Val));
Davide Italiano8c3444362016-01-11 19:45:33 +0000928 break;
929 case R_PPC_ADDR16_LO:
Rafael Espindola22ef9562016-04-13 01:40:19 +0000930 write16be(Loc, applyPPCLo(Val));
Davide Italiano8c3444362016-01-11 19:45:33 +0000931 break;
932 default:
George Rimar57610422016-03-11 14:43:02 +0000933 fatal("unrecognized reloc " + Twine(Type));
Davide Italiano8c3444362016-01-11 19:45:33 +0000934 }
935}
936
Rafael Espindola22ef9562016-04-13 01:40:19 +0000937RelExpr PPCTargetInfo::getRelExpr(uint32_t Type, const SymbolBody &S) const {
938 return R_ABS;
939}
940
Rafael Espindolac4010882015-09-22 20:54:08 +0000941PPC64TargetInfo::PPC64TargetInfo() {
Rafael Espindolae4c86d832016-05-18 21:03:36 +0000942 PltRel = GotRel = R_PPC64_GLOB_DAT;
Rui Ueyama724d6252016-01-29 01:49:32 +0000943 RelativeRel = R_PPC64_RELATIVE;
Hal Finkel6c2a3b82015-10-08 21:51:31 +0000944 PltEntrySize = 32;
Rui Ueyamac737ef52016-06-16 23:50:25 +0000945 PltHeaderSize = 0;
Hal Finkelc848b322015-10-12 19:34:29 +0000946
947 // We need 64K pages (at least under glibc/Linux, the loader won't
948 // set different permissions on a finer granularity than that).
Hal Finkele3c26262015-10-08 22:23:54 +0000949 PageSize = 65536;
Hal Finkel736c7412015-10-15 07:49:07 +0000950
951 // The PPC64 ELF ABI v1 spec, says:
952 //
953 // It is normally desirable to put segments with different characteristics
954 // in separate 256 Mbyte portions of the address space, to give the
955 // operating system full paging flexibility in the 64-bit address space.
956 //
957 // And because the lowest non-zero 256M boundary is 0x10000000, PPC64 linkers
958 // use 0x10000000 as the starting address.
959 VAStart = 0x10000000;
Rafael Espindolac4010882015-09-22 20:54:08 +0000960}
Hal Finkel3c8cc672015-10-12 20:56:18 +0000961
Rafael Espindola15cec292016-04-27 12:25:22 +0000962static uint64_t PPC64TocOffset = 0x8000;
963
Hal Finkel6f97c2b2015-10-16 21:55:40 +0000964uint64_t getPPC64TocBase() {
Rafael Espindola520ed3a2016-04-27 12:21:27 +0000965 // The TOC consists of sections .got, .toc, .tocbss, .plt in that order. The
966 // TOC starts where the first of these sections starts. We always create a
967 // .got when we see a relocation that uses it, so for us the start is always
968 // the .got.
Hal Finkel3c8cc672015-10-12 20:56:18 +0000969 uint64_t TocVA = Out<ELF64BE>::Got->getVA();
Hal Finkel3c8cc672015-10-12 20:56:18 +0000970
971 // Per the ppc64-elf-linux ABI, The TOC base is TOC value plus 0x8000
972 // thus permitting a full 64 Kbytes segment. Note that the glibc startup
973 // code (crt1.o) assumes that you can get from the TOC base to the
974 // start of the .toc section with only a single (signed) 16-bit relocation.
Rafael Espindola15cec292016-04-27 12:25:22 +0000975 return TocVA + PPC64TocOffset;
Hal Finkel3c8cc672015-10-12 20:56:18 +0000976}
977
Rafael Espindola22ef9562016-04-13 01:40:19 +0000978RelExpr PPC64TargetInfo::getRelExpr(uint32_t Type, const SymbolBody &S) const {
979 switch (Type) {
980 default:
981 return R_ABS;
Rafael Espindola15cec292016-04-27 12:25:22 +0000982 case R_PPC64_TOC16:
983 case R_PPC64_TOC16_DS:
984 case R_PPC64_TOC16_HA:
985 case R_PPC64_TOC16_HI:
986 case R_PPC64_TOC16_LO:
987 case R_PPC64_TOC16_LO_DS:
988 return R_GOTREL;
Rafael Espindola365e5f62016-04-27 11:54:07 +0000989 case R_PPC64_TOC:
990 return R_PPC_TOC;
Rafael Espindola22ef9562016-04-13 01:40:19 +0000991 case R_PPC64_REL24:
Rafael Espindolab312a742016-04-21 17:30:24 +0000992 return R_PPC_PLT_OPD;
Rafael Espindola22ef9562016-04-13 01:40:19 +0000993 }
994}
995
Rui Ueyama9398f862016-01-29 04:15:02 +0000996void PPC64TargetInfo::writePlt(uint8_t *Buf, uint64_t GotEntryAddr,
997 uint64_t PltEntryAddr, int32_t Index,
998 unsigned RelOff) const {
Hal Finkel3c8cc672015-10-12 20:56:18 +0000999 uint64_t Off = GotEntryAddr - getPPC64TocBase();
1000
1001 // FIXME: What we should do, in theory, is get the offset of the function
1002 // descriptor in the .opd section, and use that as the offset from %r2 (the
1003 // TOC-base pointer). Instead, we have the GOT-entry offset, and that will
1004 // be a pointer to the function descriptor in the .opd section. Using
1005 // this scheme is simpler, but requires an extra indirection per PLT dispatch.
1006
Hal Finkelfa92f682015-10-13 21:47:34 +00001007 write32be(Buf, 0xf8410028); // std %r2, 40(%r1)
Hal Finkel3c8cc672015-10-12 20:56:18 +00001008 write32be(Buf + 4, 0x3d620000 | applyPPCHa(Off)); // addis %r11, %r2, X@ha
1009 write32be(Buf + 8, 0xe98b0000 | applyPPCLo(Off)); // ld %r12, X@l(%r11)
1010 write32be(Buf + 12, 0xe96c0000); // ld %r11,0(%r12)
1011 write32be(Buf + 16, 0x7d6903a6); // mtctr %r11
1012 write32be(Buf + 20, 0xe84c0008); // ld %r2,8(%r12)
1013 write32be(Buf + 24, 0xe96c0010); // ld %r11,16(%r12)
1014 write32be(Buf + 28, 0x4e800420); // bctr
1015}
1016
Rui Ueyama2f524fb2016-06-16 23:28:08 +00001017static std::pair<uint32_t, uint64_t> toAddr16Rel(uint32_t Type, uint64_t Val) {
1018 uint64_t V = Val - PPC64TocOffset;
1019 switch (Type) {
1020 case R_PPC64_TOC16: return {R_PPC64_ADDR16, V};
1021 case R_PPC64_TOC16_DS: return {R_PPC64_ADDR16_DS, V};
1022 case R_PPC64_TOC16_HA: return {R_PPC64_ADDR16_HA, V};
1023 case R_PPC64_TOC16_HI: return {R_PPC64_ADDR16_HI, V};
1024 case R_PPC64_TOC16_LO: return {R_PPC64_ADDR16_LO, V};
1025 case R_PPC64_TOC16_LO_DS: return {R_PPC64_ADDR16_LO_DS, V};
1026 default: return {Type, Val};
1027 }
1028}
1029
Rafael Espindola22ef9562016-04-13 01:40:19 +00001030void PPC64TargetInfo::relocateOne(uint8_t *Loc, uint32_t Type,
1031 uint64_t Val) const {
Rui Ueyama2f524fb2016-06-16 23:28:08 +00001032 // For a TOC-relative relocation, proceed in terms of the corresponding
Rafael Espindola15cec292016-04-27 12:25:22 +00001033 // ADDR16 relocation type.
Rui Ueyama2f524fb2016-06-16 23:28:08 +00001034 std::tie(Type, Val) = toAddr16Rel(Type, Val);
Hal Finkel3c8cc672015-10-12 20:56:18 +00001035
Hal Finkel3c8cc672015-10-12 20:56:18 +00001036 switch (Type) {
Igor Kudrinb4a09272015-12-01 08:41:20 +00001037 case R_PPC64_ADDR14: {
Rafael Espindola22ef9562016-04-13 01:40:19 +00001038 checkAlignment<4>(Val, Type);
Igor Kudrinb4a09272015-12-01 08:41:20 +00001039 // Preserve the AA/LK bits in the branch instruction
1040 uint8_t AALK = Loc[3];
Rafael Espindola22ef9562016-04-13 01:40:19 +00001041 write16be(Loc + 2, (AALK & 3) | (Val & 0xfffc));
Igor Kudrinb4a09272015-12-01 08:41:20 +00001042 break;
1043 }
Hal Finkel3c8cc672015-10-12 20:56:18 +00001044 case R_PPC64_ADDR16:
Rafael Espindola22ef9562016-04-13 01:40:19 +00001045 checkInt<16>(Val, Type);
1046 write16be(Loc, Val);
Rafael Espindola3efa4e92015-09-22 21:12:55 +00001047 break;
Hal Finkel3c8cc672015-10-12 20:56:18 +00001048 case R_PPC64_ADDR16_DS:
Rafael Espindola22ef9562016-04-13 01:40:19 +00001049 checkInt<16>(Val, Type);
1050 write16be(Loc, (read16be(Loc) & 3) | (Val & ~3));
Hal Finkel3c8cc672015-10-12 20:56:18 +00001051 break;
Igor Kudrinb4a09272015-12-01 08:41:20 +00001052 case R_PPC64_ADDR16_HA:
Rui Ueyamae991a492016-06-16 23:28:06 +00001053 case R_PPC64_REL16_HA:
Rafael Espindola22ef9562016-04-13 01:40:19 +00001054 write16be(Loc, applyPPCHa(Val));
Hal Finkel3c8cc672015-10-12 20:56:18 +00001055 break;
1056 case R_PPC64_ADDR16_HI:
Rui Ueyamae991a492016-06-16 23:28:06 +00001057 case R_PPC64_REL16_HI:
Rafael Espindola22ef9562016-04-13 01:40:19 +00001058 write16be(Loc, applyPPCHi(Val));
Hal Finkel3c8cc672015-10-12 20:56:18 +00001059 break;
Hal Finkel3c8cc672015-10-12 20:56:18 +00001060 case R_PPC64_ADDR16_HIGHER:
Rafael Espindola22ef9562016-04-13 01:40:19 +00001061 write16be(Loc, applyPPCHigher(Val));
Hal Finkel3c8cc672015-10-12 20:56:18 +00001062 break;
1063 case R_PPC64_ADDR16_HIGHERA:
Rafael Espindola22ef9562016-04-13 01:40:19 +00001064 write16be(Loc, applyPPCHighera(Val));
Hal Finkel3c8cc672015-10-12 20:56:18 +00001065 break;
1066 case R_PPC64_ADDR16_HIGHEST:
Rafael Espindola22ef9562016-04-13 01:40:19 +00001067 write16be(Loc, applyPPCHighest(Val));
Hal Finkel3c8cc672015-10-12 20:56:18 +00001068 break;
1069 case R_PPC64_ADDR16_HIGHESTA:
Rafael Espindola22ef9562016-04-13 01:40:19 +00001070 write16be(Loc, applyPPCHighesta(Val));
Hal Finkel3c8cc672015-10-12 20:56:18 +00001071 break;
Igor Kudrinb4a09272015-12-01 08:41:20 +00001072 case R_PPC64_ADDR16_LO:
Rafael Espindola22ef9562016-04-13 01:40:19 +00001073 write16be(Loc, applyPPCLo(Val));
Hal Finkel3c8cc672015-10-12 20:56:18 +00001074 break;
Igor Kudrinb4a09272015-12-01 08:41:20 +00001075 case R_PPC64_ADDR16_LO_DS:
Rui Ueyamae991a492016-06-16 23:28:06 +00001076 case R_PPC64_REL16_LO:
Rafael Espindola22ef9562016-04-13 01:40:19 +00001077 write16be(Loc, (read16be(Loc) & 3) | (applyPPCLo(Val) & ~3));
Hal Finkel3c8cc672015-10-12 20:56:18 +00001078 break;
1079 case R_PPC64_ADDR32:
Rui Ueyamae991a492016-06-16 23:28:06 +00001080 case R_PPC64_REL32:
Rafael Espindola22ef9562016-04-13 01:40:19 +00001081 checkInt<32>(Val, Type);
1082 write32be(Loc, Val);
Hal Finkel3c8cc672015-10-12 20:56:18 +00001083 break;
Igor Kudrinb4a09272015-12-01 08:41:20 +00001084 case R_PPC64_ADDR64:
Rui Ueyamae991a492016-06-16 23:28:06 +00001085 case R_PPC64_REL64:
1086 case R_PPC64_TOC:
Rafael Espindola22ef9562016-04-13 01:40:19 +00001087 write64be(Loc, Val);
Igor Kudrinb4a09272015-12-01 08:41:20 +00001088 break;
Hal Finkel3c8cc672015-10-12 20:56:18 +00001089 case R_PPC64_REL24: {
1090 uint32_t Mask = 0x03FFFFFC;
Rafael Espindola22ef9562016-04-13 01:40:19 +00001091 checkInt<24>(Val, Type);
1092 write32be(Loc, (read32be(Loc) & ~Mask) | (Val & Mask));
Hal Finkel3c8cc672015-10-12 20:56:18 +00001093 break;
1094 }
Rafael Espindola3efa4e92015-09-22 21:12:55 +00001095 default:
George Rimar57610422016-03-11 14:43:02 +00001096 fatal("unrecognized reloc " + Twine(Type));
Rafael Espindola3efa4e92015-09-22 21:12:55 +00001097 }
1098}
Rafael Espindola1d6063e2015-09-22 21:24:52 +00001099
Igor Kudrindb7de9f2015-11-17 18:01:30 +00001100AArch64TargetInfo::AArch64TargetInfo() {
Rui Ueyama724d6252016-01-29 01:49:32 +00001101 CopyRel = R_AARCH64_COPY;
Adhemerval Zanella668ad0f2016-02-23 16:54:40 +00001102 RelativeRel = R_AARCH64_RELATIVE;
Rui Ueyama724d6252016-01-29 01:49:32 +00001103 IRelativeRel = R_AARCH64_IRELATIVE;
1104 GotRel = R_AARCH64_GLOB_DAT;
1105 PltRel = R_AARCH64_JUMP_SLOT;
Rafael Espindolae37d13b2016-06-02 19:49:53 +00001106 TlsDescRel = R_AARCH64_TLSDESC;
Rui Ueyama724d6252016-01-29 01:49:32 +00001107 TlsGotRel = R_AARCH64_TLS_TPREL64;
Igor Kudrindb7de9f2015-11-17 18:01:30 +00001108 PltEntrySize = 16;
Rui Ueyama4a90f572016-06-16 16:28:50 +00001109 PltHeaderSize = 32;
Rafael Espindola8818ca62016-05-20 17:41:09 +00001110
1111 // It doesn't seem to be documented anywhere, but tls on aarch64 uses variant
1112 // 1 of the tls structures and the tcb size is 16.
1113 TcbSize = 16;
Igor Kudrindb7de9f2015-11-17 18:01:30 +00001114}
George Rimar648a2c32015-10-20 08:54:27 +00001115
Rafael Espindola22ef9562016-04-13 01:40:19 +00001116RelExpr AArch64TargetInfo::getRelExpr(uint32_t Type,
1117 const SymbolBody &S) const {
1118 switch (Type) {
1119 default:
1120 return R_ABS;
Rafael Espindolae37d13b2016-06-02 19:49:53 +00001121 case R_AARCH64_TLSDESC_ADR_PAGE21:
1122 return R_TLSDESC_PAGE;
Rafael Espindolae37d13b2016-06-02 19:49:53 +00001123 case R_AARCH64_TLSDESC_LD64_LO12_NC:
1124 case R_AARCH64_TLSDESC_ADD_LO12_NC:
1125 return R_TLSDESC;
Rafael Espindolae37d13b2016-06-02 19:49:53 +00001126 case R_AARCH64_TLSDESC_CALL:
1127 return R_HINT;
Rafael Espindola8818ca62016-05-20 17:41:09 +00001128 case R_AARCH64_TLSLE_ADD_TPREL_HI12:
1129 case R_AARCH64_TLSLE_ADD_TPREL_LO12_NC:
1130 return R_TLS;
Rafael Espindola22ef9562016-04-13 01:40:19 +00001131 case R_AARCH64_CALL26:
Rafael Espindolab312a742016-04-21 17:30:24 +00001132 case R_AARCH64_CONDBR19:
1133 case R_AARCH64_JUMP26:
1134 case R_AARCH64_TSTBR14:
1135 return R_PLT_PC;
Rafael Espindola22ef9562016-04-13 01:40:19 +00001136 case R_AARCH64_PREL16:
1137 case R_AARCH64_PREL32:
1138 case R_AARCH64_PREL64:
Rafael Espindola22ef9562016-04-13 01:40:19 +00001139 case R_AARCH64_ADR_PREL_LO21:
Rafael Espindola22ef9562016-04-13 01:40:19 +00001140 return R_PC;
Rafael Espindola22ef9562016-04-13 01:40:19 +00001141 case R_AARCH64_ADR_PREL_PG_HI21:
Rafael Espindola22ef9562016-04-13 01:40:19 +00001142 return R_PAGE_PC;
Rafael Espindola5628ee72016-04-15 19:14:18 +00001143 case R_AARCH64_LD64_GOT_LO12_NC:
1144 case R_AARCH64_TLSIE_LD64_GOTTPREL_LO12_NC:
1145 return R_GOT;
1146 case R_AARCH64_ADR_GOT_PAGE:
1147 case R_AARCH64_TLSIE_ADR_GOTTPREL_PAGE21:
1148 return R_GOT_PAGE_PC;
Rafael Espindola22ef9562016-04-13 01:40:19 +00001149 }
1150}
1151
Rafael Espindolae1979ae2016-06-04 23:33:31 +00001152RelExpr AArch64TargetInfo::adjustRelaxExpr(uint32_t Type, const uint8_t *Data,
1153 RelExpr Expr) const {
1154 if (Expr == R_RELAX_TLS_GD_TO_IE) {
1155 if (Type == R_AARCH64_TLSDESC_ADR_PAGE21)
1156 return R_RELAX_TLS_GD_TO_IE_PAGE_PC;
1157 return R_RELAX_TLS_GD_TO_IE_ABS;
1158 }
1159 return Expr;
1160}
1161
Rafael Espindolab8ff59a2016-04-28 14:34:39 +00001162bool AArch64TargetInfo::usesOnlyLowPageBits(uint32_t Type) const {
Adhemerval Zanella3db3f6d2016-03-24 19:12:14 +00001163 switch (Type) {
1164 default:
1165 return false;
Ed Schouten39aca422016-04-06 18:21:07 +00001166 case R_AARCH64_ADD_ABS_LO12_NC:
Rafael Espindola53d0a9f2016-06-02 15:24:52 +00001167 case R_AARCH64_LD64_GOT_LO12_NC:
1168 case R_AARCH64_LDST128_ABS_LO12_NC:
Adhemerval Zanella3db3f6d2016-03-24 19:12:14 +00001169 case R_AARCH64_LDST16_ABS_LO12_NC:
1170 case R_AARCH64_LDST32_ABS_LO12_NC:
1171 case R_AARCH64_LDST64_ABS_LO12_NC:
Rafael Espindola53d0a9f2016-06-02 15:24:52 +00001172 case R_AARCH64_LDST8_ABS_LO12_NC:
Rafael Espindolae37d13b2016-06-02 19:49:53 +00001173 case R_AARCH64_TLSDESC_ADD_LO12_NC:
1174 case R_AARCH64_TLSDESC_LD64_LO12_NC:
Rafael Espindolade17d282016-05-04 21:40:07 +00001175 case R_AARCH64_TLSIE_LD64_GOTTPREL_LO12_NC:
Adhemerval Zanella3db3f6d2016-03-24 19:12:14 +00001176 return true;
1177 }
Rafael Espindolaa4e35f72016-02-24 16:15:13 +00001178}
Rafael Espindola435c00f2016-02-23 20:19:44 +00001179
George Rimar98b060d2016-03-06 06:01:07 +00001180bool AArch64TargetInfo::isTlsInitialExecRel(uint32_t Type) const {
Rafael Espindolad405f472016-03-04 21:37:09 +00001181 return Type == R_AARCH64_TLSIE_ADR_GOTTPREL_PAGE21 ||
1182 Type == R_AARCH64_TLSIE_LD64_GOTTPREL_LO12_NC;
1183}
1184
George Rimar98b060d2016-03-06 06:01:07 +00001185uint32_t AArch64TargetInfo::getDynRel(uint32_t Type) const {
Igor Kudrincfe47f52015-12-05 06:20:24 +00001186 if (Type == R_AARCH64_ABS32 || Type == R_AARCH64_ABS64)
1187 return Type;
Rui Ueyama21923992016-02-01 23:28:21 +00001188 // Keep it going with a dummy value so that we can find more reloc errors.
Rafael Espindola24de7672016-06-09 20:39:01 +00001189 errorDynRel(Type);
Rui Ueyama21923992016-02-01 23:28:21 +00001190 return R_AARCH64_ABS32;
Igor Kudrincfe47f52015-12-05 06:20:24 +00001191}
1192
Rui Ueyamac9fee5f2016-06-16 16:14:50 +00001193void AArch64TargetInfo::writeGotPlt(uint8_t *Buf, const SymbolBody &) const {
Igor Kudrindb7de9f2015-11-17 18:01:30 +00001194 write64le(Buf, Out<ELF64LE>::Plt->getVA());
1195}
1196
Rafael Espindola22ef9562016-04-13 01:40:19 +00001197static uint64_t getAArch64Page(uint64_t Expr) {
1198 return Expr & (~static_cast<uint64_t>(0xFFF));
1199}
1200
Rui Ueyama4a90f572016-06-16 16:28:50 +00001201void AArch64TargetInfo::writePltHeader(uint8_t *Buf) const {
Igor Kudrindb7de9f2015-11-17 18:01:30 +00001202 const uint8_t PltData[] = {
1203 0xf0, 0x7b, 0xbf, 0xa9, // stp x16, x30, [sp,#-16]!
1204 0x10, 0x00, 0x00, 0x90, // adrp x16, Page(&(.plt.got[2]))
1205 0x11, 0x02, 0x40, 0xf9, // ldr x17, [x16, Offset(&(.plt.got[2]))]
1206 0x10, 0x02, 0x00, 0x91, // add x16, x16, Offset(&(.plt.got[2]))
1207 0x20, 0x02, 0x1f, 0xd6, // br x17
1208 0x1f, 0x20, 0x03, 0xd5, // nop
1209 0x1f, 0x20, 0x03, 0xd5, // nop
1210 0x1f, 0x20, 0x03, 0xd5 // nop
1211 };
1212 memcpy(Buf, PltData, sizeof(PltData));
1213
Rui Ueyama900e2d22016-01-29 03:51:49 +00001214 uint64_t Got = Out<ELF64LE>::GotPlt->getVA();
1215 uint64_t Plt = Out<ELF64LE>::Plt->getVA();
Rafael Espindola22ef9562016-04-13 01:40:19 +00001216 relocateOne(Buf + 4, R_AARCH64_ADR_PREL_PG_HI21,
1217 getAArch64Page(Got + 16) - getAArch64Page(Plt + 4));
1218 relocateOne(Buf + 8, R_AARCH64_LDST64_ABS_LO12_NC, Got + 16);
1219 relocateOne(Buf + 12, R_AARCH64_ADD_ABS_LO12_NC, Got + 16);
Igor Kudrindb7de9f2015-11-17 18:01:30 +00001220}
1221
Rui Ueyama9398f862016-01-29 04:15:02 +00001222void AArch64TargetInfo::writePlt(uint8_t *Buf, uint64_t GotEntryAddr,
1223 uint64_t PltEntryAddr, int32_t Index,
1224 unsigned RelOff) const {
Igor Kudrindb7de9f2015-11-17 18:01:30 +00001225 const uint8_t Inst[] = {
1226 0x10, 0x00, 0x00, 0x90, // adrp x16, Page(&(.plt.got[n]))
1227 0x11, 0x02, 0x40, 0xf9, // ldr x17, [x16, Offset(&(.plt.got[n]))]
1228 0x10, 0x02, 0x00, 0x91, // add x16, x16, Offset(&(.plt.got[n]))
1229 0x20, 0x02, 0x1f, 0xd6 // br x17
1230 };
1231 memcpy(Buf, Inst, sizeof(Inst));
1232
Rafael Espindola22ef9562016-04-13 01:40:19 +00001233 relocateOne(Buf, R_AARCH64_ADR_PREL_PG_HI21,
1234 getAArch64Page(GotEntryAddr) - getAArch64Page(PltEntryAddr));
1235 relocateOne(Buf + 4, R_AARCH64_LDST64_ABS_LO12_NC, GotEntryAddr);
1236 relocateOne(Buf + 8, R_AARCH64_ADD_ABS_LO12_NC, GotEntryAddr);
Igor Kudrindb7de9f2015-11-17 18:01:30 +00001237}
1238
Adhemerval Zanella74bcf032016-02-12 13:43:03 +00001239static void updateAArch64Addr(uint8_t *L, uint64_t Imm) {
Davide Italiano1f31a2c2015-10-02 22:00:42 +00001240 uint32_t ImmLo = (Imm & 0x3) << 29;
Rafael Espindola1c0eb972016-06-02 16:00:25 +00001241 uint32_t ImmHi = (Imm & 0x1FFFFC) << 3;
1242 uint64_t Mask = (0x3 << 29) | (0x1FFFFC << 3);
Rui Ueyama87bc41b2015-10-06 18:54:43 +00001243 write32le(L, (read32le(L) & ~Mask) | ImmLo | ImmHi);
Davide Italiano1f31a2c2015-10-02 22:00:42 +00001244}
1245
Adhemerval Zanella74bcf032016-02-12 13:43:03 +00001246static inline void updateAArch64Add(uint8_t *L, uint64_t Imm) {
1247 or32le(L, (Imm & 0xFFF) << 10);
1248}
1249
Rafael Espindola22ef9562016-04-13 01:40:19 +00001250void AArch64TargetInfo::relocateOne(uint8_t *Loc, uint32_t Type,
1251 uint64_t Val) const {
Davide Italiano1d750a62015-09-27 08:45:38 +00001252 switch (Type) {
Davide Italianodf88f962015-10-04 00:59:16 +00001253 case R_AARCH64_ABS16:
Rui Ueyamae66f45c2016-05-25 04:10:14 +00001254 case R_AARCH64_PREL16:
Rafael Espindola22ef9562016-04-13 01:40:19 +00001255 checkIntUInt<16>(Val, Type);
1256 write16le(Loc, Val);
Davide Italianodf88f962015-10-04 00:59:16 +00001257 break;
1258 case R_AARCH64_ABS32:
Rui Ueyamae66f45c2016-05-25 04:10:14 +00001259 case R_AARCH64_PREL32:
Rafael Espindola22ef9562016-04-13 01:40:19 +00001260 checkIntUInt<32>(Val, Type);
1261 write32le(Loc, Val);
Davide Italianodf88f962015-10-04 00:59:16 +00001262 break;
1263 case R_AARCH64_ABS64:
Rui Ueyamae66f45c2016-05-25 04:10:14 +00001264 case R_AARCH64_PREL64:
Rafael Espindola22ef9562016-04-13 01:40:19 +00001265 write64le(Loc, Val);
Davide Italianodf88f962015-10-04 00:59:16 +00001266 break;
Davide Italiano0b6974b2015-10-03 19:56:07 +00001267 case R_AARCH64_ADD_ABS_LO12_NC:
Davide Italianoa7165742015-10-16 21:06:55 +00001268 // This relocation stores 12 bits and there's no instruction
1269 // to do it. Instead, we do a 32 bits store of the value
Rui Ueyama96f0e0b2015-10-23 02:40:46 +00001270 // of r_addend bitwise-or'ed Loc. This assumes that the addend
1271 // bits in Loc are zero.
Rafael Espindola22ef9562016-04-13 01:40:19 +00001272 or32le(Loc, (Val & 0xFFF) << 10);
Davide Italiano0b6974b2015-10-03 19:56:07 +00001273 break;
Rafael Espindolad79073d2016-04-25 12:32:19 +00001274 case R_AARCH64_ADR_GOT_PAGE:
Rui Ueyamae66f45c2016-05-25 04:10:14 +00001275 case R_AARCH64_ADR_PREL_PG_HI21:
1276 case R_AARCH64_TLSIE_ADR_GOTTPREL_PAGE21:
Rafael Espindolae37d13b2016-06-02 19:49:53 +00001277 case R_AARCH64_TLSDESC_ADR_PAGE21:
Rafael Espindolad79073d2016-04-25 12:32:19 +00001278 checkInt<33>(Val, Type);
Rafael Espindola1c0eb972016-06-02 16:00:25 +00001279 updateAArch64Addr(Loc, Val >> 12);
Igor Kudrinb4a09272015-12-01 08:41:20 +00001280 break;
Rafael Espindolad79073d2016-04-25 12:32:19 +00001281 case R_AARCH64_ADR_PREL_LO21:
1282 checkInt<21>(Val, Type);
Rafael Espindola1c0eb972016-06-02 16:00:25 +00001283 updateAArch64Addr(Loc, Val);
Davide Italiano1d750a62015-09-27 08:45:38 +00001284 break;
Igor Kudrinb4a09272015-12-01 08:41:20 +00001285 case R_AARCH64_CALL26:
Rafael Espindolad79073d2016-04-25 12:32:19 +00001286 case R_AARCH64_JUMP26:
1287 checkInt<28>(Val, Type);
1288 or32le(Loc, (Val & 0x0FFFFFFC) >> 2);
Igor Kudrinb34115b2015-11-13 03:26:59 +00001289 break;
Rafael Espindolad79073d2016-04-25 12:32:19 +00001290 case R_AARCH64_CONDBR19:
1291 checkInt<21>(Val, Type);
1292 or32le(Loc, (Val & 0x1FFFFC) << 3);
George Rimar4102bfb2016-01-11 14:22:00 +00001293 break;
Igor Kudrin5d2bffd2015-11-24 06:48:31 +00001294 case R_AARCH64_LD64_GOT_LO12_NC:
George Rimar3d737e42016-01-13 13:04:46 +00001295 case R_AARCH64_TLSIE_LD64_GOTTPREL_LO12_NC:
Rafael Espindolae37d13b2016-06-02 19:49:53 +00001296 case R_AARCH64_TLSDESC_LD64_LO12_NC:
Rafael Espindola22ef9562016-04-13 01:40:19 +00001297 checkAlignment<8>(Val, Type);
1298 or32le(Loc, (Val & 0xFF8) << 7);
Igor Kudrin5d2bffd2015-11-24 06:48:31 +00001299 break;
Davide Italiano0d4fbae2016-01-14 01:30:21 +00001300 case R_AARCH64_LDST128_ABS_LO12_NC:
Rafael Espindola22ef9562016-04-13 01:40:19 +00001301 or32le(Loc, (Val & 0x0FF8) << 6);
Davide Italiano0d4fbae2016-01-14 01:30:21 +00001302 break;
Davide Italiano2dfc5fd2016-01-15 01:49:51 +00001303 case R_AARCH64_LDST16_ABS_LO12_NC:
Rafael Espindola22ef9562016-04-13 01:40:19 +00001304 or32le(Loc, (Val & 0x0FFC) << 9);
Davide Italiano2dfc5fd2016-01-15 01:49:51 +00001305 break;
Davide Italianodc67f9b2015-11-20 21:35:38 +00001306 case R_AARCH64_LDST8_ABS_LO12_NC:
Rafael Espindola22ef9562016-04-13 01:40:19 +00001307 or32le(Loc, (Val & 0xFFF) << 10);
Davide Italianodc67f9b2015-11-20 21:35:38 +00001308 break;
Igor Kudrinb4a09272015-12-01 08:41:20 +00001309 case R_AARCH64_LDST32_ABS_LO12_NC:
Rafael Espindola22ef9562016-04-13 01:40:19 +00001310 or32le(Loc, (Val & 0xFFC) << 8);
Igor Kudrinb4a09272015-12-01 08:41:20 +00001311 break;
1312 case R_AARCH64_LDST64_ABS_LO12_NC:
Rafael Espindola22ef9562016-04-13 01:40:19 +00001313 or32le(Loc, (Val & 0xFF8) << 7);
Igor Kudrinb4a09272015-12-01 08:41:20 +00001314 break;
Rafael Espindolad79073d2016-04-25 12:32:19 +00001315 case R_AARCH64_TSTBR14:
1316 checkInt<16>(Val, Type);
1317 or32le(Loc, (Val & 0xFFFC) << 3);
George Rimar1395dbd2016-01-11 14:27:05 +00001318 break;
Rafael Espindola8818ca62016-05-20 17:41:09 +00001319 case R_AARCH64_TLSLE_ADD_TPREL_HI12:
1320 checkInt<24>(Val, Type);
Rafael Espindola1016f192016-06-02 15:51:40 +00001321 updateAArch64Add(Loc, Val >> 12);
Adhemerval Zanella74bcf032016-02-12 13:43:03 +00001322 break;
Rafael Espindola8818ca62016-05-20 17:41:09 +00001323 case R_AARCH64_TLSLE_ADD_TPREL_LO12_NC:
Rafael Espindolae37d13b2016-06-02 19:49:53 +00001324 case R_AARCH64_TLSDESC_ADD_LO12_NC:
Rafael Espindola1016f192016-06-02 15:51:40 +00001325 updateAArch64Add(Loc, Val);
Adhemerval Zanella74bcf032016-02-12 13:43:03 +00001326 break;
Davide Italiano1d750a62015-09-27 08:45:38 +00001327 default:
George Rimar57610422016-03-11 14:43:02 +00001328 fatal("unrecognized reloc " + Twine(Type));
Davide Italiano1d750a62015-09-27 08:45:38 +00001329 }
1330}
Simon Atanasyan49829a12015-09-29 05:34:03 +00001331
Rafael Espindola22ef9562016-04-13 01:40:19 +00001332void AArch64TargetInfo::relaxTlsGdToLe(uint8_t *Loc, uint32_t Type,
1333 uint64_t Val) const {
Adhemerval Zanella74bcf032016-02-12 13:43:03 +00001334 // TLSDESC Global-Dynamic relocation are in the form:
1335 // adrp x0, :tlsdesc:v [R_AARCH64_TLSDESC_ADR_PAGE21]
1336 // ldr x1, [x0, #:tlsdesc_lo12:v [R_AARCH64_TLSDESC_LD64_LO12_NC]
1337 // add x0, x0, :tlsdesc_los:v [_AARCH64_TLSDESC_ADD_LO12_NC]
1338 // .tlsdesccall [R_AARCH64_TLSDESC_CALL]
Rafael Espindolae1979ae2016-06-04 23:33:31 +00001339 // blr x1
Adhemerval Zanella74bcf032016-02-12 13:43:03 +00001340 // And it can optimized to:
1341 // movz x0, #0x0, lsl #16
1342 // movk x0, #0x10
1343 // nop
1344 // nop
Rafael Espindola8818ca62016-05-20 17:41:09 +00001345 checkUInt<32>(Val, Type);
Adhemerval Zanella74bcf032016-02-12 13:43:03 +00001346
Adhemerval Zanella74bcf032016-02-12 13:43:03 +00001347 switch (Type) {
1348 case R_AARCH64_TLSDESC_ADD_LO12_NC:
1349 case R_AARCH64_TLSDESC_CALL:
Rui Ueyamaf9d56202016-06-16 16:44:52 +00001350 write32le(Loc, 0xd503201f); // nop
1351 return;
Adhemerval Zanella74bcf032016-02-12 13:43:03 +00001352 case R_AARCH64_TLSDESC_ADR_PAGE21:
Rui Ueyamaf9d56202016-06-16 16:44:52 +00001353 write32le(Loc, 0xd2a00000 | (((Val >> 16) & 0xffff) << 5)); // movz
1354 return;
Adhemerval Zanella74bcf032016-02-12 13:43:03 +00001355 case R_AARCH64_TLSDESC_LD64_LO12_NC:
Rui Ueyamaf9d56202016-06-16 16:44:52 +00001356 write32le(Loc, 0xf2800000 | ((Val & 0xffff) << 5)); // movk
1357 return;
Adhemerval Zanella74bcf032016-02-12 13:43:03 +00001358 default:
Rui Ueyamaf9d56202016-06-16 16:44:52 +00001359 llvm_unreachable("unsupported relocation for TLS GD to LE relaxation");
Adhemerval Zanella74bcf032016-02-12 13:43:03 +00001360 }
Adhemerval Zanella74bcf032016-02-12 13:43:03 +00001361}
1362
Rafael Espindolae1979ae2016-06-04 23:33:31 +00001363void AArch64TargetInfo::relaxTlsGdToIe(uint8_t *Loc, uint32_t Type,
1364 uint64_t Val) const {
1365 // TLSDESC Global-Dynamic relocation are in the form:
1366 // adrp x0, :tlsdesc:v [R_AARCH64_TLSDESC_ADR_PAGE21]
1367 // ldr x1, [x0, #:tlsdesc_lo12:v [R_AARCH64_TLSDESC_LD64_LO12_NC]
1368 // add x0, x0, :tlsdesc_los:v [_AARCH64_TLSDESC_ADD_LO12_NC]
1369 // .tlsdesccall [R_AARCH64_TLSDESC_CALL]
1370 // blr x1
1371 // And it can optimized to:
1372 // adrp x0, :gottprel:v
1373 // ldr x0, [x0, :gottprel_lo12:v]
1374 // nop
1375 // nop
1376
1377 switch (Type) {
1378 case R_AARCH64_TLSDESC_ADD_LO12_NC:
1379 case R_AARCH64_TLSDESC_CALL:
1380 write32le(Loc, 0xd503201f); // nop
1381 break;
1382 case R_AARCH64_TLSDESC_ADR_PAGE21:
1383 write32le(Loc, 0x90000000); // adrp
1384 relocateOne(Loc, R_AARCH64_TLSIE_ADR_GOTTPREL_PAGE21, Val);
1385 break;
1386 case R_AARCH64_TLSDESC_LD64_LO12_NC:
1387 write32le(Loc, 0xf9400000); // ldr
1388 relocateOne(Loc, R_AARCH64_TLSIE_LD64_GOTTPREL_LO12_NC, Val);
1389 break;
1390 default:
Rui Ueyamaf9d56202016-06-16 16:44:52 +00001391 llvm_unreachable("unsupported relocation for TLS GD to LE relaxation");
Rafael Espindolae1979ae2016-06-04 23:33:31 +00001392 }
1393}
1394
Rafael Espindola22ef9562016-04-13 01:40:19 +00001395void AArch64TargetInfo::relaxTlsIeToLe(uint8_t *Loc, uint32_t Type,
1396 uint64_t Val) const {
Rafael Espindola8818ca62016-05-20 17:41:09 +00001397 checkUInt<32>(Val, Type);
Adhemerval Zanella74bcf032016-02-12 13:43:03 +00001398
Adhemerval Zanella74bcf032016-02-12 13:43:03 +00001399 if (Type == R_AARCH64_TLSIE_ADR_GOTTPREL_PAGE21) {
Rui Ueyamad089a432016-06-16 16:40:36 +00001400 // Generate MOVZ.
1401 uint32_t RegNo = read32le(Loc) & 0x1f;
1402 write32le(Loc, (0xd2a00000 | RegNo) | (((Val >> 16) & 0xffff) << 5));
1403 return;
Adhemerval Zanella74bcf032016-02-12 13:43:03 +00001404 }
Rui Ueyamad089a432016-06-16 16:40:36 +00001405 if (Type == R_AARCH64_TLSIE_LD64_GOTTPREL_LO12_NC) {
1406 // Generate MOVK.
1407 uint32_t RegNo = read32le(Loc) & 0x1f;
1408 write32le(Loc, (0xf2800000 | RegNo) | ((Val & 0xffff) << 5));
1409 return;
1410 }
1411 llvm_unreachable("invalid relocation for TLS IE to LE relaxation");
Adhemerval Zanella74bcf032016-02-12 13:43:03 +00001412}
1413
Rafael Espindola22ef9562016-04-13 01:40:19 +00001414void AMDGPUTargetInfo::relocateOne(uint8_t *Loc, uint32_t Type,
1415 uint64_t Val) const {
Tom Stellard1cfb9ef2016-06-20 19:48:29 +00001416 assert(Type == R_AMDGPU_REL32);
1417 write32le(Loc, Val);
Rafael Espindola22ef9562016-04-13 01:40:19 +00001418}
1419
1420RelExpr AMDGPUTargetInfo::getRelExpr(uint32_t Type, const SymbolBody &S) const {
Tom Stellard1cfb9ef2016-06-20 19:48:29 +00001421 if (Type != R_AMDGPU_REL32)
1422 error("do not know how to handle relocation");
1423 return R_PC;
Tom Stellard80efb162016-01-07 03:59:08 +00001424}
1425
Peter Smith8646ced2016-06-07 09:31:52 +00001426ARMTargetInfo::ARMTargetInfo() {
1427 CopyRel = R_ARM_COPY;
1428 RelativeRel = R_ARM_RELATIVE;
1429 IRelativeRel = R_ARM_IRELATIVE;
1430 GotRel = R_ARM_GLOB_DAT;
1431 PltRel = R_ARM_JUMP_SLOT;
1432 TlsGotRel = R_ARM_TLS_TPOFF32;
1433 TlsModuleIndexRel = R_ARM_TLS_DTPMOD32;
1434 TlsOffsetRel = R_ARM_TLS_DTPOFF32;
1435 PltEntrySize = 16;
Rui Ueyama4a90f572016-06-16 16:28:50 +00001436 PltHeaderSize = 20;
Peter Smith8646ced2016-06-07 09:31:52 +00001437}
1438
1439RelExpr ARMTargetInfo::getRelExpr(uint32_t Type, const SymbolBody &S) const {
1440 switch (Type) {
1441 default:
1442 return R_ABS;
Peter Smithfa4d90d2016-06-16 09:53:46 +00001443 case R_ARM_THM_JUMP11:
1444 return R_PC;
Peter Smith8646ced2016-06-07 09:31:52 +00001445 case R_ARM_CALL:
1446 case R_ARM_JUMP24:
1447 case R_ARM_PC24:
1448 case R_ARM_PLT32:
Peter Smithfa4d90d2016-06-16 09:53:46 +00001449 case R_ARM_THM_JUMP19:
1450 case R_ARM_THM_JUMP24:
1451 case R_ARM_THM_CALL:
Peter Smith8646ced2016-06-07 09:31:52 +00001452 return R_PLT_PC;
1453 case R_ARM_GOTOFF32:
1454 // (S + A) - GOT_ORG
1455 return R_GOTREL;
1456 case R_ARM_GOT_BREL:
1457 // GOT(S) + A - GOT_ORG
1458 return R_GOT_OFF;
1459 case R_ARM_GOT_PREL:
1460 // GOT(S) + - GOT_ORG
1461 return R_GOT_PC;
1462 case R_ARM_BASE_PREL:
1463 // B(S) + A - P
1464 // FIXME: currently B(S) assumed to be .got, this may not hold for all
1465 // platforms.
1466 return R_GOTONLY_PC;
1467 case R_ARM_PREL31:
1468 case R_ARM_REL32:
1469 return R_PC;
1470 }
1471}
1472
1473uint32_t ARMTargetInfo::getDynRel(uint32_t Type) const {
1474 if (Type == R_ARM_ABS32)
1475 return Type;
Peter Smith8646ced2016-06-07 09:31:52 +00001476 // Keep it going with a dummy value so that we can find more reloc errors.
Rafael Espindola24de7672016-06-09 20:39:01 +00001477 errorDynRel(Type);
Peter Smith8646ced2016-06-07 09:31:52 +00001478 return R_ARM_ABS32;
1479}
1480
Rui Ueyamac9fee5f2016-06-16 16:14:50 +00001481void ARMTargetInfo::writeGotPlt(uint8_t *Buf, const SymbolBody &) const {
Peter Smith8646ced2016-06-07 09:31:52 +00001482 write32le(Buf, Out<ELF32LE>::Plt->getVA());
1483}
1484
Rui Ueyama4a90f572016-06-16 16:28:50 +00001485void ARMTargetInfo::writePltHeader(uint8_t *Buf) const {
Peter Smith8646ced2016-06-07 09:31:52 +00001486 const uint8_t PltData[] = {
1487 0x04, 0xe0, 0x2d, 0xe5, // str lr, [sp,#-4]!
1488 0x04, 0xe0, 0x9f, 0xe5, // ldr lr, L2
1489 0x0e, 0xe0, 0x8f, 0xe0, // L1: add lr, pc, lr
1490 0x08, 0xf0, 0xbe, 0xe5, // ldr pc, [lr, #8]
1491 0x00, 0x00, 0x00, 0x00, // L2: .word &(.got.plt) - L1 - 8
1492 };
1493 memcpy(Buf, PltData, sizeof(PltData));
1494 uint64_t GotPlt = Out<ELF32LE>::GotPlt->getVA();
1495 uint64_t L1 = Out<ELF32LE>::Plt->getVA() + 8;
1496 write32le(Buf + 16, GotPlt - L1 - 8);
1497}
1498
1499void ARMTargetInfo::writePlt(uint8_t *Buf, uint64_t GotEntryAddr,
1500 uint64_t PltEntryAddr, int32_t Index,
1501 unsigned RelOff) const {
1502 // FIXME: Using simple code sequence with simple relocations.
1503 // There is a more optimal sequence but it requires support for the group
1504 // relocations. See ELF for the ARM Architecture Appendix A.3
1505 const uint8_t PltData[] = {
1506 0x04, 0xc0, 0x9f, 0xe5, // ldr ip, L2
1507 0x0f, 0xc0, 0x8c, 0xe0, // L1: add ip, ip, pc
1508 0x00, 0xf0, 0x9c, 0xe5, // ldr pc, [ip]
1509 0x00, 0x00, 0x00, 0x00, // L2: .word Offset(&(.plt.got) - L1 - 8
1510 };
1511 memcpy(Buf, PltData, sizeof(PltData));
1512 uint64_t L1 = PltEntryAddr + 4;
1513 write32le(Buf + 12, GotEntryAddr - L1 - 8);
1514}
1515
1516void ARMTargetInfo::relocateOne(uint8_t *Loc, uint32_t Type,
1517 uint64_t Val) const {
1518 switch (Type) {
1519 case R_ARM_NONE:
1520 break;
1521 case R_ARM_ABS32:
1522 case R_ARM_BASE_PREL:
1523 case R_ARM_GOTOFF32:
1524 case R_ARM_GOT_BREL:
1525 case R_ARM_GOT_PREL:
1526 case R_ARM_REL32:
1527 write32le(Loc, Val);
1528 break;
1529 case R_ARM_PREL31:
1530 checkInt<31>(Val, Type);
1531 write32le(Loc, (read32le(Loc) & 0x80000000) | (Val & ~0x80000000));
1532 break;
1533 case R_ARM_CALL:
Peter Smithfa4d90d2016-06-16 09:53:46 +00001534 // R_ARM_CALL is used for BL and BLX instructions, depending on the
1535 // value of bit 0 of Val, we must select a BL or BLX instruction
1536 if (Val & 1) {
1537 // If bit 0 of Val is 1 the target is Thumb, we must select a BLX.
1538 // The BLX encoding is 0xfa:H:imm24 where Val = imm24:H:'1'
1539 checkInt<26>(Val, Type);
1540 write32le(Loc, 0xfa000000 | // opcode
1541 ((Val & 2) << 23) | // H
1542 ((Val >> 2) & 0x00ffffff)); // imm24
1543 break;
1544 }
1545 if ((read32le(Loc) & 0xfe000000) == 0xfa000000)
1546 // BLX (always unconditional) instruction to an ARM Target, select an
1547 // unconditional BL.
1548 write32le(Loc, 0xeb000000 | (read32le(Loc) & 0x00ffffff));
1549 // fall through as BL encoding is shared with B
Peter Smith8646ced2016-06-07 09:31:52 +00001550 case R_ARM_JUMP24:
1551 case R_ARM_PC24:
1552 case R_ARM_PLT32:
1553 checkInt<26>(Val, Type);
1554 write32le(Loc, (read32le(Loc) & ~0x00ffffff) | ((Val >> 2) & 0x00ffffff));
1555 break;
Peter Smithfa4d90d2016-06-16 09:53:46 +00001556 case R_ARM_THM_JUMP11:
1557 checkInt<12>(Val, Type);
1558 write16le(Loc, (read32le(Loc) & 0xf800) | ((Val >> 1) & 0x07ff));
1559 break;
1560 case R_ARM_THM_JUMP19:
1561 // Encoding T3: Val = S:J2:J1:imm6:imm11:0
1562 checkInt<21>(Val, Type);
1563 write16le(Loc,
1564 (read16le(Loc) & 0xfbc0) | // opcode cond
1565 ((Val >> 10) & 0x0400) | // S
1566 ((Val >> 12) & 0x003f)); // imm6
1567 write16le(Loc + 2,
1568 0x8000 | // opcode
1569 ((Val >> 8) & 0x0800) | // J2
1570 ((Val >> 5) & 0x2000) | // J1
1571 ((Val >> 1) & 0x07ff)); // imm11
1572 break;
1573 case R_ARM_THM_CALL:
1574 // R_ARM_THM_CALL is used for BL and BLX instructions, depending on the
1575 // value of bit 0 of Val, we must select a BL or BLX instruction
1576 if ((Val & 1) == 0) {
1577 // Ensure BLX destination is 4-byte aligned. As BLX instruction may
1578 // only be two byte aligned. This must be done before overflow check
1579 Val = alignTo(Val, 4);
1580 }
1581 // Bit 12 is 0 for BLX, 1 for BL
1582 write16le(Loc + 2, (read16le(Loc + 2) & ~0x1000) | (Val & 1) << 12);
1583 // Fall through as rest of encoding is the same as B.W
1584 case R_ARM_THM_JUMP24:
1585 // Encoding B T4, BL T1, BLX T2: Val = S:I1:I2:imm10:imm11:0
1586 // FIXME: Use of I1 and I2 require v6T2ops
1587 checkInt<25>(Val, Type);
1588 write16le(Loc,
1589 0xf000 | // opcode
1590 ((Val >> 14) & 0x0400) | // S
1591 ((Val >> 12) & 0x03ff)); // imm10
1592 write16le(Loc + 2,
1593 (read16le(Loc + 2) & 0xd000) | // opcode
1594 (((~(Val >> 10)) ^ (Val >> 11)) & 0x2000) | // J1
1595 (((~(Val >> 11)) ^ (Val >> 13)) & 0x0800) | // J2
1596 ((Val >> 1) & 0x07ff)); // imm11
1597 break;
Peter Smith8646ced2016-06-07 09:31:52 +00001598 case R_ARM_MOVW_ABS_NC:
1599 write32le(Loc, (read32le(Loc) & ~0x000f0fff) | ((Val & 0xf000) << 4) |
1600 (Val & 0x0fff));
1601 break;
1602 case R_ARM_MOVT_ABS:
1603 checkUInt<32>(Val, Type);
1604 write32le(Loc, (read32le(Loc) & ~0x000f0fff) |
1605 (((Val >> 16) & 0xf000) << 4) | ((Val >> 16) & 0xfff));
1606 break;
Peter Smithfa4d90d2016-06-16 09:53:46 +00001607 case R_ARM_THM_MOVT_ABS:
1608 // Encoding T1: A = imm4:i:imm3:imm8
1609 checkUInt<32>(Val, Type);
1610 write16le(Loc,
1611 0xf2c0 | // opcode
1612 ((Val >> 17) & 0x0400) | // i
1613 ((Val >> 28) & 0x000f)); // imm4
1614 write16le(Loc + 2,
1615 (read16le(Loc + 2) & 0x8f00) | // opcode
1616 ((Val >> 12) & 0x7000) | // imm3
1617 ((Val >> 16) & 0x00ff)); // imm8
1618 break;
1619 case R_ARM_THM_MOVW_ABS_NC:
1620 // Encoding T3: A = imm4:i:imm3:imm8
1621 write16le(Loc,
1622 0xf240 | // opcode
1623 ((Val >> 1) & 0x0400) | // i
1624 ((Val >> 12) & 0x000f)); // imm4
1625 write16le(Loc + 2,
1626 (read16le(Loc + 2) & 0x8f00) | // opcode
1627 ((Val << 4) & 0x7000) | // imm3
1628 (Val & 0x00ff)); // imm8
1629 break;
Peter Smith8646ced2016-06-07 09:31:52 +00001630 default:
1631 fatal("unrecognized reloc " + Twine(Type));
1632 }
1633}
1634
1635uint64_t ARMTargetInfo::getImplicitAddend(const uint8_t *Buf,
1636 uint32_t Type) const {
1637 switch (Type) {
1638 default:
1639 return 0;
1640 case R_ARM_ABS32:
1641 case R_ARM_BASE_PREL:
1642 case R_ARM_GOTOFF32:
1643 case R_ARM_GOT_BREL:
1644 case R_ARM_GOT_PREL:
1645 case R_ARM_REL32:
1646 return SignExtend64<32>(read32le(Buf));
Peter Smith8646ced2016-06-07 09:31:52 +00001647 case R_ARM_PREL31:
1648 return SignExtend64<31>(read32le(Buf));
Peter Smith8646ced2016-06-07 09:31:52 +00001649 case R_ARM_CALL:
1650 case R_ARM_JUMP24:
1651 case R_ARM_PC24:
1652 case R_ARM_PLT32:
Rui Ueyamabebf4892016-06-16 23:28:03 +00001653 return SignExtend64<26>(read32le(Buf) << 2);
Peter Smithfa4d90d2016-06-16 09:53:46 +00001654 case R_ARM_THM_JUMP11:
Rui Ueyamabebf4892016-06-16 23:28:03 +00001655 return SignExtend64<12>(read16le(Buf) << 1);
Peter Smithfa4d90d2016-06-16 09:53:46 +00001656 case R_ARM_THM_JUMP19: {
1657 // Encoding T3: A = S:J2:J1:imm10:imm6:0
1658 uint16_t Hi = read16le(Buf);
1659 uint16_t Lo = read16le(Buf + 2);
1660 return SignExtend64<20>(((Hi & 0x0400) << 10) | // S
1661 ((Lo & 0x0800) << 8) | // J2
1662 ((Lo & 0x2000) << 5) | // J1
1663 ((Hi & 0x003f) << 12) | // imm6
1664 ((Lo & 0x07ff) << 1)); // imm11:0
1665 }
1666 case R_ARM_THM_JUMP24:
1667 case R_ARM_THM_CALL: {
1668 // Encoding B T4, BL T1, BLX T2: A = S:I1:I2:imm10:imm11:0
1669 // I1 = NOT(J1 EOR S), I2 = NOT(J2 EOR S)
1670 // FIXME: I1 and I2 require v6T2ops
1671 uint16_t Hi = read16le(Buf);
1672 uint16_t Lo = read16le(Buf + 2);
1673 return SignExtend64<24>(((Hi & 0x0400) << 14) | // S
1674 (~((Lo ^ (Hi << 3)) << 10) & 0x00800000) | // I1
1675 (~((Lo ^ (Hi << 1)) << 11) & 0x00400000) | // I2
1676 ((Hi & 0x003ff) << 12) | // imm0
1677 ((Lo & 0x007ff) << 1)); // imm11:0
1678 }
1679 // ELF for the ARM Architecture 4.6.1.1 the implicit addend for MOVW and
1680 // MOVT is in the range -32768 <= A < 32768
Peter Smith8646ced2016-06-07 09:31:52 +00001681 case R_ARM_MOVW_ABS_NC:
1682 case R_ARM_MOVT_ABS: {
Peter Smith8646ced2016-06-07 09:31:52 +00001683 uint64_t Val = read32le(Buf) & 0x000f0fff;
1684 return SignExtend64<16>(((Val & 0x000f0000) >> 4) | (Val & 0x00fff));
1685 }
Peter Smithfa4d90d2016-06-16 09:53:46 +00001686 case R_ARM_THM_MOVW_ABS_NC:
1687 case R_ARM_THM_MOVT_ABS: {
1688 // Encoding T3: A = imm4:i:imm3:imm8
1689 uint16_t Hi = read16le(Buf);
1690 uint16_t Lo = read16le(Buf + 2);
1691 return SignExtend64<16>(((Hi & 0x000f) << 12) | // imm4
1692 ((Hi & 0x0400) << 1) | // i
1693 ((Lo & 0x7000) >> 4) | // imm3
1694 (Lo & 0x00ff)); // imm8
1695 }
Peter Smith8646ced2016-06-07 09:31:52 +00001696 }
1697}
1698
Simon Atanasyan9c2d7882015-10-14 14:24:46 +00001699template <class ELFT> MipsTargetInfo<ELFT>::MipsTargetInfo() {
Simon Atanasyan2287dc32016-02-10 19:57:19 +00001700 GotPltHeaderEntriesNum = 2;
Simon Atanasyaneae66c02016-02-10 10:08:39 +00001701 PageSize = 65536;
Simon Atanasyan2287dc32016-02-10 19:57:19 +00001702 PltEntrySize = 16;
Rui Ueyama4a90f572016-06-16 16:28:50 +00001703 PltHeaderSize = 32;
Simon Atanasyan13f6da12016-03-31 21:26:23 +00001704 ThunkSize = 16;
Simon Atanasyaneae66c02016-02-10 10:08:39 +00001705 CopyRel = R_MIPS_COPY;
Simon Atanasyan2287dc32016-02-10 19:57:19 +00001706 PltRel = R_MIPS_JUMP_SLOT;
Simon Atanasyanda83bbc2016-05-04 22:39:40 +00001707 if (ELFT::Is64Bits)
1708 RelativeRel = (R_MIPS_64 << 8) | R_MIPS_REL32;
1709 else
1710 RelativeRel = R_MIPS_REL32;
Simon Atanasyanca558ea2016-01-14 21:34:50 +00001711}
1712
1713template <class ELFT>
Rafael Espindola22ef9562016-04-13 01:40:19 +00001714RelExpr MipsTargetInfo<ELFT>::getRelExpr(uint32_t Type,
1715 const SymbolBody &S) const {
Simon Atanasyan8c8a5b52016-05-08 14:08:40 +00001716 if (ELFT::Is64Bits)
1717 // See comment in the calculateMips64RelChain.
1718 Type &= 0xff;
Rafael Espindola22ef9562016-04-13 01:40:19 +00001719 switch (Type) {
1720 default:
1721 return R_ABS;
Rafael Espindolaebb04b92016-05-04 14:44:22 +00001722 case R_MIPS_JALR:
1723 return R_HINT;
Rafael Espindola1763dc42016-04-26 22:00:04 +00001724 case R_MIPS_GPREL16:
1725 case R_MIPS_GPREL32:
1726 return R_GOTREL;
Rafael Espindolab312a742016-04-21 17:30:24 +00001727 case R_MIPS_26:
1728 return R_PLT;
Rafael Espindola22ef9562016-04-13 01:40:19 +00001729 case R_MIPS_HI16:
Simon Atanasyan1ca263c2016-04-14 21:10:05 +00001730 case R_MIPS_LO16:
Simon Atanasyanbe804552016-05-04 17:47:11 +00001731 case R_MIPS_GOT_OFST:
Rafael Espindola22ef9562016-04-13 01:40:19 +00001732 // MIPS _gp_disp designates offset between start of function and 'gp'
1733 // pointer into GOT. __gnu_local_gp is equal to the current value of
1734 // the 'gp'. Therefore any relocations against them do not require
1735 // dynamic relocation.
1736 if (&S == ElfSym<ELFT>::MipsGpDisp)
1737 return R_PC;
1738 return R_ABS;
1739 case R_MIPS_PC32:
1740 case R_MIPS_PC16:
1741 case R_MIPS_PC19_S2:
1742 case R_MIPS_PC21_S2:
1743 case R_MIPS_PC26_S2:
1744 case R_MIPS_PCHI16:
1745 case R_MIPS_PCLO16:
1746 return R_PC;
Rafael Espindola5628ee72016-04-15 19:14:18 +00001747 case R_MIPS_GOT16:
Rafael Espindola5628ee72016-04-15 19:14:18 +00001748 if (S.isLocal())
Simon Atanasyan4e3a15c2016-05-15 18:13:50 +00001749 return R_MIPS_GOT_LOCAL_PAGE;
Simon Atanasyanbe804552016-05-04 17:47:11 +00001750 // fallthrough
1751 case R_MIPS_CALL16:
1752 case R_MIPS_GOT_DISP:
Simon Atanasyan41325112016-06-19 21:39:37 +00001753 return R_MIPS_GOT_OFF;
Simon Atanasyanbe804552016-05-04 17:47:11 +00001754 case R_MIPS_GOT_PAGE:
Simon Atanasyan4e3a15c2016-05-15 18:13:50 +00001755 return R_MIPS_GOT_LOCAL_PAGE;
Rafael Espindola22ef9562016-04-13 01:40:19 +00001756 }
1757}
1758
1759template <class ELFT>
George Rimar98b060d2016-03-06 06:01:07 +00001760uint32_t MipsTargetInfo<ELFT>::getDynRel(uint32_t Type) const {
Simon Atanasyanca558ea2016-01-14 21:34:50 +00001761 if (Type == R_MIPS_32 || Type == R_MIPS_64)
Simon Atanasyanda83bbc2016-05-04 22:39:40 +00001762 return RelativeRel;
Rui Ueyama21923992016-02-01 23:28:21 +00001763 // Keep it going with a dummy value so that we can find more reloc errors.
Rafael Espindola24de7672016-06-09 20:39:01 +00001764 errorDynRel(Type);
Rui Ueyama21923992016-02-01 23:28:21 +00001765 return R_MIPS_32;
Igor Kudrin15cd9ff2015-11-06 07:43:03 +00001766}
1767
1768template <class ELFT>
Rui Ueyamac9fee5f2016-06-16 16:14:50 +00001769void MipsTargetInfo<ELFT>::writeGotPlt(uint8_t *Buf, const SymbolBody &) const {
Simon Atanasyan2287dc32016-02-10 19:57:19 +00001770 write32<ELFT::TargetEndianness>(Buf, Out<ELFT>::Plt->getVA());
Rafael Espindola3ef3a4c2015-09-29 23:22:16 +00001771}
Simon Atanasyan49829a12015-09-29 05:34:03 +00001772
Simon Atanasyan35031192015-12-15 06:06:34 +00001773static uint16_t mipsHigh(uint64_t V) { return (V + 0x8000) >> 16; }
Simon Atanasyan2cd670d2015-12-13 06:49:01 +00001774
Simon Atanasyane364e2e2016-02-04 12:31:39 +00001775template <endianness E, uint8_t BSIZE, uint8_t SHIFT>
Rafael Espindola666625b2016-04-01 14:36:09 +00001776static int64_t getPcRelocAddend(const uint8_t *Loc) {
Rafael Espindola8cc68c32016-03-30 13:18:08 +00001777 uint32_t Instr = read32<E>(Loc);
1778 uint32_t Mask = 0xffffffff >> (32 - BSIZE);
1779 return SignExtend64<BSIZE + SHIFT>((Instr & Mask) << SHIFT);
1780}
1781
1782template <endianness E, uint8_t BSIZE, uint8_t SHIFT>
Rafael Espindola22ef9562016-04-13 01:40:19 +00001783static void applyMipsPcReloc(uint8_t *Loc, uint32_t Type, uint64_t V) {
Simon Atanasyane364e2e2016-02-04 12:31:39 +00001784 uint32_t Mask = 0xffffffff >> (32 - BSIZE);
Simon Atanasyan0fc0acf2015-12-21 17:36:40 +00001785 uint32_t Instr = read32<E>(Loc);
Rafael Espindola66ea7bb2016-03-31 12:09:36 +00001786 if (SHIFT > 0)
1787 checkAlignment<(1 << SHIFT)>(V, Type);
Simon Atanasyane364e2e2016-02-04 12:31:39 +00001788 checkInt<BSIZE + SHIFT>(V, Type);
1789 write32<E>(Loc, (Instr & ~Mask) | ((V >> SHIFT) & Mask));
Simon Atanasyan0fc0acf2015-12-21 17:36:40 +00001790}
1791
Simon Atanasyan2287dc32016-02-10 19:57:19 +00001792template <endianness E>
Simon Atanasyana888e672016-03-04 10:55:12 +00001793static void writeMipsHi16(uint8_t *Loc, uint64_t V) {
Simon Atanasyan2287dc32016-02-10 19:57:19 +00001794 uint32_t Instr = read32<E>(Loc);
Simon Atanasyana888e672016-03-04 10:55:12 +00001795 write32<E>(Loc, (Instr & 0xffff0000) | mipsHigh(V));
Simon Atanasyan2287dc32016-02-10 19:57:19 +00001796}
1797
Simon Atanasyan3b377852016-03-04 10:55:20 +00001798template <endianness E>
Simon Atanasyan0dcf5412016-03-04 10:55:24 +00001799static void writeMipsLo16(uint8_t *Loc, uint64_t V) {
1800 uint32_t Instr = read32<E>(Loc);
1801 write32<E>(Loc, (Instr & 0xffff0000) | (V & 0xffff));
1802}
1803
Simon Atanasyan2287dc32016-02-10 19:57:19 +00001804template <class ELFT>
Rui Ueyama4a90f572016-06-16 16:28:50 +00001805void MipsTargetInfo<ELFT>::writePltHeader(uint8_t *Buf) const {
Simon Atanasyan2287dc32016-02-10 19:57:19 +00001806 const endianness E = ELFT::TargetEndianness;
1807 write32<E>(Buf, 0x3c1c0000); // lui $28, %hi(&GOTPLT[0])
1808 write32<E>(Buf + 4, 0x8f990000); // lw $25, %lo(&GOTPLT[0])($28)
1809 write32<E>(Buf + 8, 0x279c0000); // addiu $28, $28, %lo(&GOTPLT[0])
1810 write32<E>(Buf + 12, 0x031cc023); // subu $24, $24, $28
1811 write32<E>(Buf + 16, 0x03e07825); // move $15, $31
1812 write32<E>(Buf + 20, 0x0018c082); // srl $24, $24, 2
1813 write32<E>(Buf + 24, 0x0320f809); // jalr $25
1814 write32<E>(Buf + 28, 0x2718fffe); // subu $24, $24, 2
1815 uint64_t Got = Out<ELFT>::GotPlt->getVA();
Simon Atanasyana888e672016-03-04 10:55:12 +00001816 writeMipsHi16<E>(Buf, Got);
Simon Atanasyan0dcf5412016-03-04 10:55:24 +00001817 writeMipsLo16<E>(Buf + 4, Got);
1818 writeMipsLo16<E>(Buf + 8, Got);
Simon Atanasyan2287dc32016-02-10 19:57:19 +00001819}
1820
1821template <class ELFT>
1822void MipsTargetInfo<ELFT>::writePlt(uint8_t *Buf, uint64_t GotEntryAddr,
1823 uint64_t PltEntryAddr, int32_t Index,
1824 unsigned RelOff) const {
1825 const endianness E = ELFT::TargetEndianness;
1826 write32<E>(Buf, 0x3c0f0000); // lui $15, %hi(.got.plt entry)
1827 write32<E>(Buf + 4, 0x8df90000); // l[wd] $25, %lo(.got.plt entry)($15)
1828 write32<E>(Buf + 8, 0x03200008); // jr $25
1829 write32<E>(Buf + 12, 0x25f80000); // addiu $24, $15, %lo(.got.plt entry)
Simon Atanasyana888e672016-03-04 10:55:12 +00001830 writeMipsHi16<E>(Buf, GotEntryAddr);
Simon Atanasyan0dcf5412016-03-04 10:55:24 +00001831 writeMipsLo16<E>(Buf + 4, GotEntryAddr);
1832 writeMipsLo16<E>(Buf + 12, GotEntryAddr);
Simon Atanasyan2287dc32016-02-10 19:57:19 +00001833}
1834
1835template <class ELFT>
Simon Atanasyan13f6da12016-03-31 21:26:23 +00001836void MipsTargetInfo<ELFT>::writeThunk(uint8_t *Buf, uint64_t S) const {
1837 // Write MIPS LA25 thunk code to call PIC function from the non-PIC one.
1838 // See MipsTargetInfo::writeThunk for details.
1839 const endianness E = ELFT::TargetEndianness;
1840 write32<E>(Buf, 0x3c190000); // lui $25, %hi(func)
1841 write32<E>(Buf + 4, 0x08000000); // j func
1842 write32<E>(Buf + 8, 0x27390000); // addiu $25, $25, %lo(func)
1843 write32<E>(Buf + 12, 0x00000000); // nop
1844 writeMipsHi16<E>(Buf, S);
1845 write32<E>(Buf + 4, 0x08000000 | (S >> 2));
1846 writeMipsLo16<E>(Buf + 8, S);
1847}
1848
1849template <class ELFT>
Simon Atanasyan13f6da12016-03-31 21:26:23 +00001850bool MipsTargetInfo<ELFT>::needsThunk(uint32_t Type, const InputFile &File,
1851 const SymbolBody &S) const {
1852 // Any MIPS PIC code function is invoked with its address in register $t9.
1853 // So if we have a branch instruction from non-PIC code to the PIC one
1854 // we cannot make the jump directly and need to create a small stubs
1855 // to save the target function address.
1856 // See page 3-38 ftp://www.linux-mips.org/pub/linux/mips/doc/ABI/mipsabi.pdf
1857 if (Type != R_MIPS_26)
1858 return false;
1859 auto *F = dyn_cast<ELFFileBase<ELFT>>(&File);
1860 if (!F)
1861 return false;
1862 // If current file has PIC code, LA25 stub is not required.
1863 if (F->getObj().getHeader()->e_flags & EF_MIPS_PIC)
1864 return false;
1865 auto *D = dyn_cast<DefinedRegular<ELFT>>(&S);
1866 if (!D || !D->Section)
1867 return false;
1868 // LA25 is required if target file has PIC code
1869 // or target symbol is a PIC symbol.
1870 return (D->Section->getFile()->getObj().getHeader()->e_flags & EF_MIPS_PIC) ||
Rui Ueyamab5792b22016-04-04 19:09:08 +00001871 (D->StOther & STO_MIPS_MIPS16) == STO_MIPS_PIC;
Simon Atanasyan13f6da12016-03-31 21:26:23 +00001872}
1873
1874template <class ELFT>
Rafael Espindola666625b2016-04-01 14:36:09 +00001875uint64_t MipsTargetInfo<ELFT>::getImplicitAddend(const uint8_t *Buf,
Rafael Espindola8cc68c32016-03-30 13:18:08 +00001876 uint32_t Type) const {
1877 const endianness E = ELFT::TargetEndianness;
1878 switch (Type) {
1879 default:
1880 return 0;
1881 case R_MIPS_32:
1882 case R_MIPS_GPREL32:
1883 return read32<E>(Buf);
1884 case R_MIPS_26:
1885 // FIXME (simon): If the relocation target symbol is not a PLT entry
1886 // we should use another expression for calculation:
1887 // ((A << 2) | (P & 0xf0000000)) >> 2
Rui Ueyama727cd2f2016-06-16 17:18:25 +00001888 return SignExtend64<28>(read32<E>(Buf) << 2);
Rafael Espindola8cc68c32016-03-30 13:18:08 +00001889 case R_MIPS_GPREL16:
1890 case R_MIPS_LO16:
1891 case R_MIPS_PCLO16:
1892 case R_MIPS_TLS_DTPREL_HI16:
1893 case R_MIPS_TLS_DTPREL_LO16:
1894 case R_MIPS_TLS_TPREL_HI16:
1895 case R_MIPS_TLS_TPREL_LO16:
Rui Ueyamae517de62016-06-16 17:06:24 +00001896 return SignExtend64<16>(read32<E>(Buf));
Rafael Espindola8cc68c32016-03-30 13:18:08 +00001897 case R_MIPS_PC16:
1898 return getPcRelocAddend<E, 16, 2>(Buf);
1899 case R_MIPS_PC19_S2:
1900 return getPcRelocAddend<E, 19, 2>(Buf);
1901 case R_MIPS_PC21_S2:
1902 return getPcRelocAddend<E, 21, 2>(Buf);
1903 case R_MIPS_PC26_S2:
1904 return getPcRelocAddend<E, 26, 2>(Buf);
1905 case R_MIPS_PC32:
1906 return getPcRelocAddend<E, 32, 0>(Buf);
1907 }
1908}
1909
Simon Atanasyan8c8a5b52016-05-08 14:08:40 +00001910static std::pair<uint32_t, uint64_t> calculateMips64RelChain(uint32_t Type,
1911 uint64_t Val) {
1912 // MIPS N64 ABI packs multiple relocations into the single relocation
1913 // record. In general, all up to three relocations can have arbitrary
1914 // types. In fact, Clang and GCC uses only a few combinations. For now,
1915 // we support two of them. That is allow to pass at least all LLVM
1916 // test suite cases.
1917 // <any relocation> / R_MIPS_SUB / R_MIPS_HI16 | R_MIPS_LO16
1918 // <any relocation> / R_MIPS_64 / R_MIPS_NONE
1919 // The first relocation is a 'real' relocation which is calculated
1920 // using the corresponding symbol's value. The second and the third
1921 // relocations used to modify result of the first one: extend it to
1922 // 64-bit, extract high or low part etc. For details, see part 2.9 Relocation
1923 // at the https://dmz-portal.mips.com/mw/images/8/82/007-4658-001.pdf
1924 uint32_t Type2 = (Type >> 8) & 0xff;
1925 uint32_t Type3 = (Type >> 16) & 0xff;
1926 if (Type2 == R_MIPS_NONE && Type3 == R_MIPS_NONE)
1927 return std::make_pair(Type, Val);
1928 if (Type2 == R_MIPS_64 && Type3 == R_MIPS_NONE)
1929 return std::make_pair(Type2, Val);
1930 if (Type2 == R_MIPS_SUB && (Type3 == R_MIPS_HI16 || Type3 == R_MIPS_LO16))
1931 return std::make_pair(Type3, -Val);
1932 error("unsupported relocations combination " + Twine(Type));
1933 return std::make_pair(Type & 0xff, Val);
1934}
1935
Rafael Espindola8cc68c32016-03-30 13:18:08 +00001936template <class ELFT>
Rafael Espindola22ef9562016-04-13 01:40:19 +00001937void MipsTargetInfo<ELFT>::relocateOne(uint8_t *Loc, uint32_t Type,
1938 uint64_t Val) const {
Rafael Espindolae7e57b22015-11-09 21:43:00 +00001939 const endianness E = ELFT::TargetEndianness;
Simon Atanasyana8e9cb32016-03-17 12:36:08 +00001940 // Thread pointer and DRP offsets from the start of TLS data area.
1941 // https://www.linux-mips.org/wiki/NPTL
Simon Atanasyan8c8a5b52016-05-08 14:08:40 +00001942 if (Type == R_MIPS_TLS_DTPREL_HI16 || Type == R_MIPS_TLS_DTPREL_LO16)
1943 Val -= 0x8000;
1944 else if (Type == R_MIPS_TLS_TPREL_HI16 || Type == R_MIPS_TLS_TPREL_LO16)
1945 Val -= 0x7000;
1946 if (ELFT::Is64Bits)
1947 std::tie(Type, Val) = calculateMips64RelChain(Type, Val);
Simon Atanasyan3b732ac2015-10-12 15:10:02 +00001948 switch (Type) {
1949 case R_MIPS_32:
Simon Atanasyan9ac81982016-05-06 15:02:50 +00001950 case R_MIPS_GPREL32:
Rafael Espindola22ef9562016-04-13 01:40:19 +00001951 write32<E>(Loc, Val);
Simon Atanasyan3b732ac2015-10-12 15:10:02 +00001952 break;
Simon Atanasyanda83bbc2016-05-04 22:39:40 +00001953 case R_MIPS_64:
1954 write64<E>(Loc, Val);
1955 break;
Simon Atanasyan10296c22016-05-07 07:36:47 +00001956 case R_MIPS_26:
1957 write32<E>(Loc, (read32<E>(Loc) & ~0x3ffffff) | (Val >> 2));
Simon Atanasyan2287dc32016-02-10 19:57:19 +00001958 break;
Simon Atanasyanbe804552016-05-04 17:47:11 +00001959 case R_MIPS_GOT_DISP:
1960 case R_MIPS_GOT_PAGE:
Rafael Espindola58cd5db2016-04-19 22:46:03 +00001961 case R_MIPS_GOT16:
Simon Atanasyan9ac81982016-05-06 15:02:50 +00001962 case R_MIPS_GPREL16:
Rafael Espindola58cd5db2016-04-19 22:46:03 +00001963 checkInt<16>(Val, Type);
1964 // fallthrough
Rui Ueyama7ee3cf72015-12-03 20:59:51 +00001965 case R_MIPS_CALL16:
Simon Atanasyanbe804552016-05-04 17:47:11 +00001966 case R_MIPS_GOT_OFST:
Simon Atanasyan5b9ac412016-05-06 15:02:54 +00001967 case R_MIPS_LO16:
1968 case R_MIPS_PCLO16:
Simon Atanasyan8c8a5b52016-05-08 14:08:40 +00001969 case R_MIPS_TLS_DTPREL_LO16:
1970 case R_MIPS_TLS_TPREL_LO16:
Rafael Espindola58cd5db2016-04-19 22:46:03 +00001971 writeMipsLo16<E>(Loc, Val);
Rui Ueyama7ee3cf72015-12-03 20:59:51 +00001972 break;
Simon Atanasyan3b377852016-03-04 10:55:20 +00001973 case R_MIPS_HI16:
Simon Atanasyan5b9ac412016-05-06 15:02:54 +00001974 case R_MIPS_PCHI16:
Simon Atanasyan8c8a5b52016-05-08 14:08:40 +00001975 case R_MIPS_TLS_DTPREL_HI16:
1976 case R_MIPS_TLS_TPREL_HI16:
Rafael Espindola22ef9562016-04-13 01:40:19 +00001977 writeMipsHi16<E>(Loc, Val);
Simon Atanasyan09b3e362015-12-01 21:24:45 +00001978 break;
Simon Atanasyane4361852015-12-13 06:49:14 +00001979 case R_MIPS_JALR:
1980 // Ignore this optimization relocation for now
1981 break;
Simon Atanasyan0fc0acf2015-12-21 17:36:40 +00001982 case R_MIPS_PC16:
Rafael Espindola22ef9562016-04-13 01:40:19 +00001983 applyMipsPcReloc<E, 16, 2>(Loc, Type, Val);
Simon Atanasyan0fc0acf2015-12-21 17:36:40 +00001984 break;
1985 case R_MIPS_PC19_S2:
Rafael Espindola22ef9562016-04-13 01:40:19 +00001986 applyMipsPcReloc<E, 19, 2>(Loc, Type, Val);
Simon Atanasyan0fc0acf2015-12-21 17:36:40 +00001987 break;
1988 case R_MIPS_PC21_S2:
Rafael Espindola22ef9562016-04-13 01:40:19 +00001989 applyMipsPcReloc<E, 21, 2>(Loc, Type, Val);
Simon Atanasyan0fc0acf2015-12-21 17:36:40 +00001990 break;
1991 case R_MIPS_PC26_S2:
Rafael Espindola22ef9562016-04-13 01:40:19 +00001992 applyMipsPcReloc<E, 26, 2>(Loc, Type, Val);
Simon Atanasyane364e2e2016-02-04 12:31:39 +00001993 break;
1994 case R_MIPS_PC32:
Rafael Espindola22ef9562016-04-13 01:40:19 +00001995 applyMipsPcReloc<E, 32, 0>(Loc, Type, Val);
Simon Atanasyan0fc0acf2015-12-21 17:36:40 +00001996 break;
Simon Atanasyan3b732ac2015-10-12 15:10:02 +00001997 default:
George Rimar57610422016-03-11 14:43:02 +00001998 fatal("unrecognized reloc " + Twine(Type));
Simon Atanasyan3b732ac2015-10-12 15:10:02 +00001999 }
2000}
Igor Kudrin15cd9ff2015-11-06 07:43:03 +00002001
Simon Atanasyan0fc0acf2015-12-21 17:36:40 +00002002template <class ELFT>
Rafael Espindolab8ff59a2016-04-28 14:34:39 +00002003bool MipsTargetInfo<ELFT>::usesOnlyLowPageBits(uint32_t Type) const {
Simon Atanasyanbe804552016-05-04 17:47:11 +00002004 return Type == R_MIPS_LO16 || Type == R_MIPS_GOT_OFST;
Simon Atanasyan0fc0acf2015-12-21 17:36:40 +00002005}
Rafael Espindola01205f72015-09-22 18:19:46 +00002006}
2007}