1 //===- PPC64.cpp ----------------------------------------------------------===// 2 // 3 // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions. 4 // See https://llvm.org/LICENSE.txt for license information. 5 // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception 6 // 7 //===----------------------------------------------------------------------===// 8 9 #include "Symbols.h" 10 #include "SyntheticSections.h" 11 #include "Target.h" 12 #include "lld/Common/ErrorHandler.h" 13 #include "llvm/Support/Endian.h" 14 15 using namespace llvm; 16 using namespace llvm::object; 17 using namespace llvm::support::endian; 18 using namespace llvm::ELF; 19 using namespace lld; 20 using namespace lld::elf; 21 22 static uint64_t PPC64TocOffset = 0x8000; 23 static uint64_t DynamicThreadPointerOffset = 0x8000; 24 25 // The instruction encoding of bits 21-30 from the ISA for the Xform and Dform 26 // instructions that can be used as part of the initial exec TLS sequence. 27 enum XFormOpcd { 28 LBZX = 87, 29 LHZX = 279, 30 LWZX = 23, 31 LDX = 21, 32 STBX = 215, 33 STHX = 407, 34 STWX = 151, 35 STDX = 149, 36 ADD = 266, 37 }; 38 39 enum DFormOpcd { 40 LBZ = 34, 41 LBZU = 35, 42 LHZ = 40, 43 LHZU = 41, 44 LHAU = 43, 45 LWZ = 32, 46 LWZU = 33, 47 LFSU = 49, 48 LD = 58, 49 LFDU = 51, 50 STB = 38, 51 STBU = 39, 52 STH = 44, 53 STHU = 45, 54 STW = 36, 55 STWU = 37, 56 STFSU = 53, 57 STFDU = 55, 58 STD = 62, 59 ADDI = 14 60 }; 61 62 uint64_t elf::getPPC64TocBase() { 63 // The TOC consists of sections .got, .toc, .tocbss, .plt in that order. The 64 // TOC starts where the first of these sections starts. We always create a 65 // .got when we see a relocation that uses it, so for us the start is always 66 // the .got. 67 uint64_t TocVA = In.Got->getVA(); 68 69 // Per the ppc64-elf-linux ABI, The TOC base is TOC value plus 0x8000 70 // thus permitting a full 64 Kbytes segment. Note that the glibc startup 71 // code (crt1.o) assumes that you can get from the TOC base to the 72 // start of the .toc section with only a single (signed) 16-bit relocation. 73 return TocVA + PPC64TocOffset; 74 } 75 76 unsigned elf::getPPC64GlobalEntryToLocalEntryOffset(uint8_t StOther) { 77 // The offset is encoded into the 3 most significant bits of the st_other 78 // field, with some special values described in section 3.4.1 of the ABI: 79 // 0 --> Zero offset between the GEP and LEP, and the function does NOT use 80 // the TOC pointer (r2). r2 will hold the same value on returning from 81 // the function as it did on entering the function. 82 // 1 --> Zero offset between the GEP and LEP, and r2 should be treated as a 83 // caller-saved register for all callers. 84 // 2-6 --> The binary logarithm of the offset eg: 85 // 2 --> 2^2 = 4 bytes --> 1 instruction. 86 // 6 --> 2^6 = 64 bytes --> 16 instructions. 87 // 7 --> Reserved. 88 uint8_t GepToLep = (StOther >> 5) & 7; 89 if (GepToLep < 2) 90 return 0; 91 92 // The value encoded in the st_other bits is the 93 // log-base-2(offset). 94 if (GepToLep < 7) 95 return 1 << GepToLep; 96 97 error("reserved value of 7 in the 3 most-significant-bits of st_other"); 98 return 0; 99 } 100 101 bool elf::isPPC64SmallCodeModelTocReloc(RelType Type) { 102 // The only small code model relocations that access the .toc section. 103 return Type == R_PPC64_TOC16 || Type == R_PPC64_TOC16_DS; 104 } 105 106 // Find the R_PPC64_ADDR64 in .rela.toc with matching offset. 107 template <typename ELFT> 108 static std::pair<Defined *, int64_t> 109 getRelaTocSymAndAddend(InputSectionBase *TocSec, uint64_t Offset) { 110 if (TocSec->NumRelocations == 0) 111 return {}; 112 113 // .rela.toc contains exclusively R_PPC64_ADDR64 relocations sorted by 114 // r_offset: 0, 8, 16, etc. For a given Offset, Offset / 8 gives us the 115 // relocation index in most cases. 116 // 117 // In rare cases a TOC entry may store a constant that doesn't need an 118 // R_PPC64_ADDR64, the corresponding r_offset is therefore missing. Offset / 8 119 // points to a relocation with larger r_offset. Do a linear probe then. 120 // Constants are extremely uncommon in .toc and the extra number of array 121 // accesses can be seen as a small constant. 122 ArrayRef<typename ELFT::Rela> Relas = TocSec->template relas<ELFT>(); 123 uint64_t Index = std::min<uint64_t>(Offset / 8, Relas.size() - 1); 124 for (;;) { 125 if (Relas[Index].r_offset == Offset) { 126 Symbol &Sym = TocSec->getFile<ELFT>()->getRelocTargetSym(Relas[Index]); 127 return {dyn_cast<Defined>(&Sym), getAddend<ELFT>(Relas[Index])}; 128 } 129 if (Relas[Index].r_offset < Offset || Index == 0) 130 break; 131 --Index; 132 } 133 return {}; 134 } 135 136 // When accessing a symbol defined in another translation unit, compilers 137 // reserve a .toc entry, allocate a local label and generate toc-indirect 138 // instuctions: 139 // 140 // addis 3, 2, .LC0@toc@ha # R_PPC64_TOC16_HA 141 // ld 3, .LC0@toc@l(3) # R_PPC64_TOC16_LO_DS, load the address from a .toc entry 142 // ld/lwa 3, 0(3) # load the value from the address 143 // 144 // .section .toc,"aw",@progbits 145 // .LC0: .tc var[TC],var 146 // 147 // If var is defined, non-preemptable and addressable with a 32-bit signed 148 // offset from the toc base, the address of var can be computed by adding an 149 // offset to the toc base, saving a load. 150 // 151 // addis 3,2,var@toc@ha # this may be relaxed to a nop, 152 // addi 3,3,var@toc@l # then this becomes addi 3,2,var@toc 153 // ld/lwa 3, 0(3) # load the value from the address 154 // 155 // Returns true if the relaxation is performed. 156 bool elf::tryRelaxPPC64TocIndirection(RelType Type, const Relocation &Rel, 157 uint8_t *BufLoc) { 158 assert(Config->TocOptimize); 159 if (Rel.Addend < 0) 160 return false; 161 162 // If the symbol is not the .toc section, this isn't a toc-indirection. 163 Defined *DefSym = dyn_cast<Defined>(Rel.Sym); 164 if (!DefSym || !DefSym->isSection() || DefSym->Section->Name != ".toc") 165 return false; 166 167 Defined *D; 168 int64_t Addend; 169 auto *TocISB = cast<InputSectionBase>(DefSym->Section); 170 std::tie(D, Addend) = 171 Config->IsLE ? getRelaTocSymAndAddend<ELF64LE>(TocISB, Rel.Addend) 172 : getRelaTocSymAndAddend<ELF64BE>(TocISB, Rel.Addend); 173 174 // Only non-preemptable defined symbols can be relaxed. 175 if (!D || D->IsPreemptible) 176 return false; 177 178 // Two instructions can materialize a 32-bit signed offset from the toc base. 179 uint64_t TocRelative = D->getVA(Addend) - getPPC64TocBase(); 180 if (!isInt<32>(TocRelative)) 181 return false; 182 183 // Add PPC64TocOffset that will be subtracted by relocateOne(). 184 Target->relaxGot(BufLoc, Type, TocRelative + PPC64TocOffset); 185 return true; 186 } 187 188 namespace { 189 class PPC64 final : public TargetInfo { 190 public: 191 PPC64(); 192 int getTlsGdRelaxSkip(RelType Type) const override; 193 uint32_t calcEFlags() const override; 194 RelExpr getRelExpr(RelType Type, const Symbol &S, 195 const uint8_t *Loc) const override; 196 RelType getDynRel(RelType Type) const override; 197 void writePltHeader(uint8_t *Buf) const override; 198 void writePlt(uint8_t *Buf, uint64_t GotPltEntryAddr, uint64_t PltEntryAddr, 199 int32_t Index, unsigned RelOff) const override; 200 void relocateOne(uint8_t *Loc, RelType Type, uint64_t Val) const override; 201 void writeGotHeader(uint8_t *Buf) const override; 202 bool needsThunk(RelExpr Expr, RelType Type, const InputFile *File, 203 uint64_t BranchAddr, const Symbol &S) const override; 204 uint32_t getThunkSectionSpacing() const override; 205 bool inBranchRange(RelType Type, uint64_t Src, uint64_t Dst) const override; 206 RelExpr adjustRelaxExpr(RelType Type, const uint8_t *Data, 207 RelExpr Expr) const override; 208 void relaxGot(uint8_t *Loc, RelType Type, uint64_t Val) const override; 209 void relaxTlsGdToIe(uint8_t *Loc, RelType Type, uint64_t Val) const override; 210 void relaxTlsGdToLe(uint8_t *Loc, RelType Type, uint64_t Val) const override; 211 void relaxTlsLdToLe(uint8_t *Loc, RelType Type, uint64_t Val) const override; 212 void relaxTlsIeToLe(uint8_t *Loc, RelType Type, uint64_t Val) const override; 213 214 bool adjustPrologueForCrossSplitStack(uint8_t *Loc, uint8_t *End, 215 uint8_t StOther) const override; 216 }; 217 } // namespace 218 219 // Relocation masks following the #lo(value), #hi(value), #ha(value), 220 // #higher(value), #highera(value), #highest(value), and #highesta(value) 221 // macros defined in section 4.5.1. Relocation Types of the PPC-elf64abi 222 // document. 223 static uint16_t lo(uint64_t V) { return V; } 224 static uint16_t hi(uint64_t V) { return V >> 16; } 225 static uint16_t ha(uint64_t V) { return (V + 0x8000) >> 16; } 226 static uint16_t higher(uint64_t V) { return V >> 32; } 227 static uint16_t highera(uint64_t V) { return (V + 0x8000) >> 32; } 228 static uint16_t highest(uint64_t V) { return V >> 48; } 229 static uint16_t highesta(uint64_t V) { return (V + 0x8000) >> 48; } 230 231 // Extracts the 'PO' field of an instruction encoding. 232 static uint8_t getPrimaryOpCode(uint32_t Encoding) { return (Encoding >> 26); } 233 234 static bool isDQFormInstruction(uint32_t Encoding) { 235 switch (getPrimaryOpCode(Encoding)) { 236 default: 237 return false; 238 case 56: 239 // The only instruction with a primary opcode of 56 is `lq`. 240 return true; 241 case 61: 242 // There are both DS and DQ instruction forms with this primary opcode. 243 // Namely `lxv` and `stxv` are the DQ-forms that use it. 244 // The DS 'XO' bits being set to 01 is restricted to DQ form. 245 return (Encoding & 3) == 0x1; 246 } 247 } 248 249 static bool isInstructionUpdateForm(uint32_t Encoding) { 250 switch (getPrimaryOpCode(Encoding)) { 251 default: 252 return false; 253 case LBZU: 254 case LHAU: 255 case LHZU: 256 case LWZU: 257 case LFSU: 258 case LFDU: 259 case STBU: 260 case STHU: 261 case STWU: 262 case STFSU: 263 case STFDU: 264 return true; 265 // LWA has the same opcode as LD, and the DS bits is what differentiates 266 // between LD/LDU/LWA 267 case LD: 268 case STD: 269 return (Encoding & 3) == 1; 270 } 271 } 272 273 // There are a number of places when we either want to read or write an 274 // instruction when handling a half16 relocation type. On big-endian the buffer 275 // pointer is pointing into the middle of the word we want to extract, and on 276 // little-endian it is pointing to the start of the word. These 2 helpers are to 277 // simplify reading and writing in that context. 278 static void writeFromHalf16(uint8_t *Loc, uint32_t Insn) { 279 write32(Config->IsLE ? Loc : Loc - 2, Insn); 280 } 281 282 static uint32_t readFromHalf16(const uint8_t *Loc) { 283 return read32(Config->IsLE ? Loc : Loc - 2); 284 } 285 286 PPC64::PPC64() { 287 GotRel = R_PPC64_GLOB_DAT; 288 NoneRel = R_PPC64_NONE; 289 PltRel = R_PPC64_JMP_SLOT; 290 RelativeRel = R_PPC64_RELATIVE; 291 IRelativeRel = R_PPC64_IRELATIVE; 292 SymbolicRel = R_PPC64_ADDR64; 293 PltEntrySize = 4; 294 GotBaseSymInGotPlt = false; 295 GotHeaderEntriesNum = 1; 296 GotPltHeaderEntriesNum = 2; 297 PltHeaderSize = 60; 298 NeedsThunks = true; 299 300 TlsModuleIndexRel = R_PPC64_DTPMOD64; 301 TlsOffsetRel = R_PPC64_DTPREL64; 302 303 TlsGotRel = R_PPC64_TPREL64; 304 305 NeedsMoreStackNonSplit = false; 306 307 // We need 64K pages (at least under glibc/Linux, the loader won't 308 // set different permissions on a finer granularity than that). 309 DefaultMaxPageSize = 65536; 310 311 // The PPC64 ELF ABI v1 spec, says: 312 // 313 // It is normally desirable to put segments with different characteristics 314 // in separate 256 Mbyte portions of the address space, to give the 315 // operating system full paging flexibility in the 64-bit address space. 316 // 317 // And because the lowest non-zero 256M boundary is 0x10000000, PPC64 linkers 318 // use 0x10000000 as the starting address. 319 DefaultImageBase = 0x10000000; 320 321 write32(TrapInstr.data(), 0x7fe00008); 322 } 323 324 int PPC64::getTlsGdRelaxSkip(RelType Type) const { 325 // A __tls_get_addr call instruction is marked with 2 relocations: 326 // 327 // R_PPC64_TLSGD / R_PPC64_TLSLD: marker relocation 328 // R_PPC64_REL24: __tls_get_addr 329 // 330 // After the relaxation we no longer call __tls_get_addr and should skip both 331 // relocations to not create a false dependence on __tls_get_addr being 332 // defined. 333 if (Type == R_PPC64_TLSGD || Type == R_PPC64_TLSLD) 334 return 2; 335 return 1; 336 } 337 338 static uint32_t getEFlags(InputFile *File) { 339 if (Config->EKind == ELF64BEKind) 340 return cast<ObjFile<ELF64BE>>(File)->getObj().getHeader()->e_flags; 341 return cast<ObjFile<ELF64LE>>(File)->getObj().getHeader()->e_flags; 342 } 343 344 // This file implements v2 ABI. This function makes sure that all 345 // object files have v2 or an unspecified version as an ABI version. 346 uint32_t PPC64::calcEFlags() const { 347 for (InputFile *F : ObjectFiles) { 348 uint32_t Flag = getEFlags(F); 349 if (Flag == 1) 350 error(toString(F) + ": ABI version 1 is not supported"); 351 else if (Flag > 2) 352 error(toString(F) + ": unrecognized e_flags: " + Twine(Flag)); 353 } 354 return 2; 355 } 356 357 void PPC64::relaxGot(uint8_t *Loc, RelType Type, uint64_t Val) const { 358 switch (Type) { 359 case R_PPC64_TOC16_HA: 360 // Convert "addis reg, 2, .LC0@toc@h" to "addis reg, 2, var@toc@h" or "nop". 361 relocateOne(Loc, Type, Val); 362 break; 363 case R_PPC64_TOC16_LO_DS: { 364 // Convert "ld reg, .LC0@toc@l(reg)" to "addi reg, reg, var@toc@l" or 365 // "addi reg, 2, var@toc". 366 uint32_t Insn = readFromHalf16(Loc); 367 if (getPrimaryOpCode(Insn) != LD) 368 error("expected a 'ld' for got-indirect to toc-relative relaxing"); 369 writeFromHalf16(Loc, (Insn & 0x03ffffff) | 0x38000000); 370 relocateOne(Loc, R_PPC64_TOC16_LO, Val); 371 break; 372 } 373 default: 374 llvm_unreachable("unexpected relocation type"); 375 } 376 } 377 378 void PPC64::relaxTlsGdToLe(uint8_t *Loc, RelType Type, uint64_t Val) const { 379 // Reference: 3.7.4.2 of the 64-bit ELF V2 abi supplement. 380 // The general dynamic code sequence for a global `x` will look like: 381 // Instruction Relocation Symbol 382 // addis r3, r2, x@got@tlsgd@ha R_PPC64_GOT_TLSGD16_HA x 383 // addi r3, r3, x@got@tlsgd@l R_PPC64_GOT_TLSGD16_LO x 384 // bl __tls_get_addr(x@tlsgd) R_PPC64_TLSGD x 385 // R_PPC64_REL24 __tls_get_addr 386 // nop None None 387 388 // Relaxing to local exec entails converting: 389 // addis r3, r2, x@got@tlsgd@ha into nop 390 // addi r3, r3, x@got@tlsgd@l into addis r3, r13, x@tprel@ha 391 // bl __tls_get_addr(x@tlsgd) into nop 392 // nop into addi r3, r3, x@tprel@l 393 394 switch (Type) { 395 case R_PPC64_GOT_TLSGD16_HA: 396 writeFromHalf16(Loc, 0x60000000); // nop 397 break; 398 case R_PPC64_GOT_TLSGD16: 399 case R_PPC64_GOT_TLSGD16_LO: 400 writeFromHalf16(Loc, 0x3c6d0000); // addis r3, r13 401 relocateOne(Loc, R_PPC64_TPREL16_HA, Val); 402 break; 403 case R_PPC64_TLSGD: 404 write32(Loc, 0x60000000); // nop 405 write32(Loc + 4, 0x38630000); // addi r3, r3 406 // Since we are relocating a half16 type relocation and Loc + 4 points to 407 // the start of an instruction we need to advance the buffer by an extra 408 // 2 bytes on BE. 409 relocateOne(Loc + 4 + (Config->EKind == ELF64BEKind ? 2 : 0), 410 R_PPC64_TPREL16_LO, Val); 411 break; 412 default: 413 llvm_unreachable("unsupported relocation for TLS GD to LE relaxation"); 414 } 415 } 416 417 void PPC64::relaxTlsLdToLe(uint8_t *Loc, RelType Type, uint64_t Val) const { 418 // Reference: 3.7.4.3 of the 64-bit ELF V2 abi supplement. 419 // The local dynamic code sequence for a global `x` will look like: 420 // Instruction Relocation Symbol 421 // addis r3, r2, x@got@tlsld@ha R_PPC64_GOT_TLSLD16_HA x 422 // addi r3, r3, x@got@tlsld@l R_PPC64_GOT_TLSLD16_LO x 423 // bl __tls_get_addr(x@tlsgd) R_PPC64_TLSLD x 424 // R_PPC64_REL24 __tls_get_addr 425 // nop None None 426 427 // Relaxing to local exec entails converting: 428 // addis r3, r2, x@got@tlsld@ha into nop 429 // addi r3, r3, x@got@tlsld@l into addis r3, r13, 0 430 // bl __tls_get_addr(x@tlsgd) into nop 431 // nop into addi r3, r3, 4096 432 433 switch (Type) { 434 case R_PPC64_GOT_TLSLD16_HA: 435 writeFromHalf16(Loc, 0x60000000); // nop 436 break; 437 case R_PPC64_GOT_TLSLD16_LO: 438 writeFromHalf16(Loc, 0x3c6d0000); // addis r3, r13, 0 439 break; 440 case R_PPC64_TLSLD: 441 write32(Loc, 0x60000000); // nop 442 write32(Loc + 4, 0x38631000); // addi r3, r3, 4096 443 break; 444 case R_PPC64_DTPREL16: 445 case R_PPC64_DTPREL16_HA: 446 case R_PPC64_DTPREL16_HI: 447 case R_PPC64_DTPREL16_DS: 448 case R_PPC64_DTPREL16_LO: 449 case R_PPC64_DTPREL16_LO_DS: 450 relocateOne(Loc, Type, Val); 451 break; 452 default: 453 llvm_unreachable("unsupported relocation for TLS LD to LE relaxation"); 454 } 455 } 456 457 unsigned elf::getPPCDFormOp(unsigned SecondaryOp) { 458 switch (SecondaryOp) { 459 case LBZX: 460 return LBZ; 461 case LHZX: 462 return LHZ; 463 case LWZX: 464 return LWZ; 465 case LDX: 466 return LD; 467 case STBX: 468 return STB; 469 case STHX: 470 return STH; 471 case STWX: 472 return STW; 473 case STDX: 474 return STD; 475 case ADD: 476 return ADDI; 477 default: 478 return 0; 479 } 480 } 481 482 void PPC64::relaxTlsIeToLe(uint8_t *Loc, RelType Type, uint64_t Val) const { 483 // The initial exec code sequence for a global `x` will look like: 484 // Instruction Relocation Symbol 485 // addis r9, r2, x@got@tprel@ha R_PPC64_GOT_TPREL16_HA x 486 // ld r9, x@got@tprel@l(r9) R_PPC64_GOT_TPREL16_LO_DS x 487 // add r9, r9, x@tls R_PPC64_TLS x 488 489 // Relaxing to local exec entails converting: 490 // addis r9, r2, x@got@tprel@ha into nop 491 // ld r9, x@got@tprel@l(r9) into addis r9, r13, x@tprel@ha 492 // add r9, r9, x@tls into addi r9, r9, x@tprel@l 493 494 // x@tls R_PPC64_TLS is a relocation which does not compute anything, 495 // it is replaced with r13 (thread pointer). 496 497 // The add instruction in the initial exec sequence has multiple variations 498 // that need to be handled. If we are building an address it will use an add 499 // instruction, if we are accessing memory it will use any of the X-form 500 // indexed load or store instructions. 501 502 unsigned Offset = (Config->EKind == ELF64BEKind) ? 2 : 0; 503 switch (Type) { 504 case R_PPC64_GOT_TPREL16_HA: 505 write32(Loc - Offset, 0x60000000); // nop 506 break; 507 case R_PPC64_GOT_TPREL16_LO_DS: 508 case R_PPC64_GOT_TPREL16_DS: { 509 uint32_t RegNo = read32(Loc - Offset) & 0x03E00000; // bits 6-10 510 write32(Loc - Offset, 0x3C0D0000 | RegNo); // addis RegNo, r13 511 relocateOne(Loc, R_PPC64_TPREL16_HA, Val); 512 break; 513 } 514 case R_PPC64_TLS: { 515 uint32_t PrimaryOp = getPrimaryOpCode(read32(Loc)); 516 if (PrimaryOp != 31) 517 error("unrecognized instruction for IE to LE R_PPC64_TLS"); 518 uint32_t SecondaryOp = (read32(Loc) & 0x000007FE) >> 1; // bits 21-30 519 uint32_t DFormOp = getPPCDFormOp(SecondaryOp); 520 if (DFormOp == 0) 521 error("unrecognized instruction for IE to LE R_PPC64_TLS"); 522 write32(Loc, ((DFormOp << 26) | (read32(Loc) & 0x03FFFFFF))); 523 relocateOne(Loc + Offset, R_PPC64_TPREL16_LO, Val); 524 break; 525 } 526 default: 527 llvm_unreachable("unknown relocation for IE to LE"); 528 break; 529 } 530 } 531 532 RelExpr PPC64::getRelExpr(RelType Type, const Symbol &S, 533 const uint8_t *Loc) const { 534 switch (Type) { 535 case R_PPC64_GOT16: 536 case R_PPC64_GOT16_DS: 537 case R_PPC64_GOT16_HA: 538 case R_PPC64_GOT16_HI: 539 case R_PPC64_GOT16_LO: 540 case R_PPC64_GOT16_LO_DS: 541 return R_GOT_OFF; 542 case R_PPC64_TOC16: 543 case R_PPC64_TOC16_DS: 544 case R_PPC64_TOC16_HI: 545 case R_PPC64_TOC16_LO: 546 return R_GOTREL; 547 case R_PPC64_TOC16_HA: 548 case R_PPC64_TOC16_LO_DS: 549 return Config->TocOptimize ? R_PPC64_RELAX_TOC : R_GOTREL; 550 case R_PPC64_TOC: 551 return R_PPC64_TOCBASE; 552 case R_PPC64_REL14: 553 case R_PPC64_REL24: 554 return R_PPC64_CALL_PLT; 555 case R_PPC64_REL16_LO: 556 case R_PPC64_REL16_HA: 557 case R_PPC64_REL32: 558 case R_PPC64_REL64: 559 return R_PC; 560 case R_PPC64_GOT_TLSGD16: 561 case R_PPC64_GOT_TLSGD16_HA: 562 case R_PPC64_GOT_TLSGD16_HI: 563 case R_PPC64_GOT_TLSGD16_LO: 564 return R_TLSGD_GOT; 565 case R_PPC64_GOT_TLSLD16: 566 case R_PPC64_GOT_TLSLD16_HA: 567 case R_PPC64_GOT_TLSLD16_HI: 568 case R_PPC64_GOT_TLSLD16_LO: 569 return R_TLSLD_GOT; 570 case R_PPC64_GOT_TPREL16_HA: 571 case R_PPC64_GOT_TPREL16_LO_DS: 572 case R_PPC64_GOT_TPREL16_DS: 573 case R_PPC64_GOT_TPREL16_HI: 574 return R_GOT_OFF; 575 case R_PPC64_GOT_DTPREL16_HA: 576 case R_PPC64_GOT_DTPREL16_LO_DS: 577 case R_PPC64_GOT_DTPREL16_DS: 578 case R_PPC64_GOT_DTPREL16_HI: 579 return R_TLSLD_GOT_OFF; 580 case R_PPC64_TPREL16: 581 case R_PPC64_TPREL16_HA: 582 case R_PPC64_TPREL16_LO: 583 case R_PPC64_TPREL16_HI: 584 case R_PPC64_TPREL16_DS: 585 case R_PPC64_TPREL16_LO_DS: 586 case R_PPC64_TPREL16_HIGHER: 587 case R_PPC64_TPREL16_HIGHERA: 588 case R_PPC64_TPREL16_HIGHEST: 589 case R_PPC64_TPREL16_HIGHESTA: 590 return R_TLS; 591 case R_PPC64_DTPREL16: 592 case R_PPC64_DTPREL16_DS: 593 case R_PPC64_DTPREL16_HA: 594 case R_PPC64_DTPREL16_HI: 595 case R_PPC64_DTPREL16_HIGHER: 596 case R_PPC64_DTPREL16_HIGHERA: 597 case R_PPC64_DTPREL16_HIGHEST: 598 case R_PPC64_DTPREL16_HIGHESTA: 599 case R_PPC64_DTPREL16_LO: 600 case R_PPC64_DTPREL16_LO_DS: 601 case R_PPC64_DTPREL64: 602 return R_DTPREL; 603 case R_PPC64_TLSGD: 604 return R_TLSDESC_CALL; 605 case R_PPC64_TLSLD: 606 return R_TLSLD_HINT; 607 case R_PPC64_TLS: 608 return R_TLSIE_HINT; 609 default: 610 return R_ABS; 611 } 612 } 613 614 RelType PPC64::getDynRel(RelType Type) const { 615 if (Type == R_PPC64_ADDR64 || Type == R_PPC64_TOC) 616 return R_PPC64_ADDR64; 617 return R_PPC64_NONE; 618 } 619 620 void PPC64::writeGotHeader(uint8_t *Buf) const { 621 write64(Buf, getPPC64TocBase()); 622 } 623 624 void PPC64::writePltHeader(uint8_t *Buf) const { 625 // The generic resolver stub goes first. 626 write32(Buf + 0, 0x7c0802a6); // mflr r0 627 write32(Buf + 4, 0x429f0005); // bcl 20,4*cr7+so,8 <_glink+0x8> 628 write32(Buf + 8, 0x7d6802a6); // mflr r11 629 write32(Buf + 12, 0x7c0803a6); // mtlr r0 630 write32(Buf + 16, 0x7d8b6050); // subf r12, r11, r12 631 write32(Buf + 20, 0x380cffcc); // subi r0,r12,52 632 write32(Buf + 24, 0x7800f082); // srdi r0,r0,62,2 633 write32(Buf + 28, 0xe98b002c); // ld r12,44(r11) 634 write32(Buf + 32, 0x7d6c5a14); // add r11,r12,r11 635 write32(Buf + 36, 0xe98b0000); // ld r12,0(r11) 636 write32(Buf + 40, 0xe96b0008); // ld r11,8(r11) 637 write32(Buf + 44, 0x7d8903a6); // mtctr r12 638 write32(Buf + 48, 0x4e800420); // bctr 639 640 // The 'bcl' instruction will set the link register to the address of the 641 // following instruction ('mflr r11'). Here we store the offset from that 642 // instruction to the first entry in the GotPlt section. 643 int64_t GotPltOffset = In.GotPlt->getVA() - (In.Plt->getVA() + 8); 644 write64(Buf + 52, GotPltOffset); 645 } 646 647 void PPC64::writePlt(uint8_t *Buf, uint64_t GotPltEntryAddr, 648 uint64_t PltEntryAddr, int32_t Index, 649 unsigned RelOff) const { 650 int32_t Offset = PltHeaderSize + Index * PltEntrySize; 651 // bl __glink_PLTresolve 652 write32(Buf, 0x48000000 | ((-Offset) & 0x03FFFFFc)); 653 } 654 655 static std::pair<RelType, uint64_t> toAddr16Rel(RelType Type, uint64_t Val) { 656 // Relocations relative to the toc-base need to be adjusted by the Toc offset. 657 uint64_t TocBiasedVal = Val - PPC64TocOffset; 658 // Relocations relative to dtv[dtpmod] need to be adjusted by the DTP offset. 659 uint64_t DTPBiasedVal = Val - DynamicThreadPointerOffset; 660 661 switch (Type) { 662 // TOC biased relocation. 663 case R_PPC64_GOT16: 664 case R_PPC64_GOT_TLSGD16: 665 case R_PPC64_GOT_TLSLD16: 666 case R_PPC64_TOC16: 667 return {R_PPC64_ADDR16, TocBiasedVal}; 668 case R_PPC64_GOT16_DS: 669 case R_PPC64_TOC16_DS: 670 case R_PPC64_GOT_TPREL16_DS: 671 case R_PPC64_GOT_DTPREL16_DS: 672 return {R_PPC64_ADDR16_DS, TocBiasedVal}; 673 case R_PPC64_GOT16_HA: 674 case R_PPC64_GOT_TLSGD16_HA: 675 case R_PPC64_GOT_TLSLD16_HA: 676 case R_PPC64_GOT_TPREL16_HA: 677 case R_PPC64_GOT_DTPREL16_HA: 678 case R_PPC64_TOC16_HA: 679 return {R_PPC64_ADDR16_HA, TocBiasedVal}; 680 case R_PPC64_GOT16_HI: 681 case R_PPC64_GOT_TLSGD16_HI: 682 case R_PPC64_GOT_TLSLD16_HI: 683 case R_PPC64_GOT_TPREL16_HI: 684 case R_PPC64_GOT_DTPREL16_HI: 685 case R_PPC64_TOC16_HI: 686 return {R_PPC64_ADDR16_HI, TocBiasedVal}; 687 case R_PPC64_GOT16_LO: 688 case R_PPC64_GOT_TLSGD16_LO: 689 case R_PPC64_GOT_TLSLD16_LO: 690 case R_PPC64_TOC16_LO: 691 return {R_PPC64_ADDR16_LO, TocBiasedVal}; 692 case R_PPC64_GOT16_LO_DS: 693 case R_PPC64_TOC16_LO_DS: 694 case R_PPC64_GOT_TPREL16_LO_DS: 695 case R_PPC64_GOT_DTPREL16_LO_DS: 696 return {R_PPC64_ADDR16_LO_DS, TocBiasedVal}; 697 698 // Dynamic Thread pointer biased relocation types. 699 case R_PPC64_DTPREL16: 700 return {R_PPC64_ADDR16, DTPBiasedVal}; 701 case R_PPC64_DTPREL16_DS: 702 return {R_PPC64_ADDR16_DS, DTPBiasedVal}; 703 case R_PPC64_DTPREL16_HA: 704 return {R_PPC64_ADDR16_HA, DTPBiasedVal}; 705 case R_PPC64_DTPREL16_HI: 706 return {R_PPC64_ADDR16_HI, DTPBiasedVal}; 707 case R_PPC64_DTPREL16_HIGHER: 708 return {R_PPC64_ADDR16_HIGHER, DTPBiasedVal}; 709 case R_PPC64_DTPREL16_HIGHERA: 710 return {R_PPC64_ADDR16_HIGHERA, DTPBiasedVal}; 711 case R_PPC64_DTPREL16_HIGHEST: 712 return {R_PPC64_ADDR16_HIGHEST, DTPBiasedVal}; 713 case R_PPC64_DTPREL16_HIGHESTA: 714 return {R_PPC64_ADDR16_HIGHESTA, DTPBiasedVal}; 715 case R_PPC64_DTPREL16_LO: 716 return {R_PPC64_ADDR16_LO, DTPBiasedVal}; 717 case R_PPC64_DTPREL16_LO_DS: 718 return {R_PPC64_ADDR16_LO_DS, DTPBiasedVal}; 719 case R_PPC64_DTPREL64: 720 return {R_PPC64_ADDR64, DTPBiasedVal}; 721 722 default: 723 return {Type, Val}; 724 } 725 } 726 727 static bool isTocOptType(RelType Type) { 728 switch (Type) { 729 case R_PPC64_GOT16_HA: 730 case R_PPC64_GOT16_LO_DS: 731 case R_PPC64_TOC16_HA: 732 case R_PPC64_TOC16_LO_DS: 733 case R_PPC64_TOC16_LO: 734 return true; 735 default: 736 return false; 737 } 738 } 739 740 void PPC64::relocateOne(uint8_t *Loc, RelType Type, uint64_t Val) const { 741 // We need to save the original relocation type to use in diagnostics, and 742 // use the original type to determine if we should toc-optimize the 743 // instructions being relocated. 744 RelType OriginalType = Type; 745 bool ShouldTocOptimize = isTocOptType(Type); 746 // For dynamic thread pointer relative, toc-relative, and got-indirect 747 // relocations, proceed in terms of the corresponding ADDR16 relocation type. 748 std::tie(Type, Val) = toAddr16Rel(Type, Val); 749 750 switch (Type) { 751 case R_PPC64_ADDR14: { 752 checkAlignment(Loc, Val, 4, Type); 753 // Preserve the AA/LK bits in the branch instruction 754 uint8_t AALK = Loc[3]; 755 write16(Loc + 2, (AALK & 3) | (Val & 0xfffc)); 756 break; 757 } 758 case R_PPC64_ADDR16: 759 checkIntUInt(Loc, Val, 16, OriginalType); 760 write16(Loc, Val); 761 break; 762 case R_PPC64_ADDR32: 763 checkIntUInt(Loc, Val, 32, OriginalType); 764 write32(Loc, Val); 765 break; 766 case R_PPC64_ADDR16_DS: 767 case R_PPC64_TPREL16_DS: { 768 checkInt(Loc, Val, 16, OriginalType); 769 // DQ-form instructions use bits 28-31 as part of the instruction encoding 770 // DS-form instructions only use bits 30-31. 771 uint16_t Mask = isDQFormInstruction(readFromHalf16(Loc)) ? 0xf : 0x3; 772 checkAlignment(Loc, lo(Val), Mask + 1, OriginalType); 773 write16(Loc, (read16(Loc) & Mask) | lo(Val)); 774 } break; 775 case R_PPC64_ADDR16_HA: 776 case R_PPC64_REL16_HA: 777 case R_PPC64_TPREL16_HA: 778 if (Config->TocOptimize && ShouldTocOptimize && ha(Val) == 0) 779 writeFromHalf16(Loc, 0x60000000); 780 else 781 write16(Loc, ha(Val)); 782 break; 783 case R_PPC64_ADDR16_HI: 784 case R_PPC64_REL16_HI: 785 case R_PPC64_TPREL16_HI: 786 write16(Loc, hi(Val)); 787 break; 788 case R_PPC64_ADDR16_HIGHER: 789 case R_PPC64_TPREL16_HIGHER: 790 write16(Loc, higher(Val)); 791 break; 792 case R_PPC64_ADDR16_HIGHERA: 793 case R_PPC64_TPREL16_HIGHERA: 794 write16(Loc, highera(Val)); 795 break; 796 case R_PPC64_ADDR16_HIGHEST: 797 case R_PPC64_TPREL16_HIGHEST: 798 write16(Loc, highest(Val)); 799 break; 800 case R_PPC64_ADDR16_HIGHESTA: 801 case R_PPC64_TPREL16_HIGHESTA: 802 write16(Loc, highesta(Val)); 803 break; 804 case R_PPC64_ADDR16_LO: 805 case R_PPC64_REL16_LO: 806 case R_PPC64_TPREL16_LO: 807 // When the high-adjusted part of a toc relocation evalutes to 0, it is 808 // changed into a nop. The lo part then needs to be updated to use the 809 // toc-pointer register r2, as the base register. 810 if (Config->TocOptimize && ShouldTocOptimize && ha(Val) == 0) { 811 uint32_t Insn = readFromHalf16(Loc); 812 if (isInstructionUpdateForm(Insn)) 813 error(getErrorLocation(Loc) + 814 "can't toc-optimize an update instruction: 0x" + 815 utohexstr(Insn)); 816 writeFromHalf16(Loc, (Insn & 0xffe00000) | 0x00020000 | lo(Val)); 817 } else { 818 write16(Loc, lo(Val)); 819 } 820 break; 821 case R_PPC64_ADDR16_LO_DS: 822 case R_PPC64_TPREL16_LO_DS: { 823 // DQ-form instructions use bits 28-31 as part of the instruction encoding 824 // DS-form instructions only use bits 30-31. 825 uint32_t Insn = readFromHalf16(Loc); 826 uint16_t Mask = isDQFormInstruction(Insn) ? 0xf : 0x3; 827 checkAlignment(Loc, lo(Val), Mask + 1, OriginalType); 828 if (Config->TocOptimize && ShouldTocOptimize && ha(Val) == 0) { 829 // When the high-adjusted part of a toc relocation evalutes to 0, it is 830 // changed into a nop. The lo part then needs to be updated to use the toc 831 // pointer register r2, as the base register. 832 if (isInstructionUpdateForm(Insn)) 833 error(getErrorLocation(Loc) + 834 "Can't toc-optimize an update instruction: 0x" + 835 Twine::utohexstr(Insn)); 836 Insn &= 0xffe00000 | Mask; 837 writeFromHalf16(Loc, Insn | 0x00020000 | lo(Val)); 838 } else { 839 write16(Loc, (read16(Loc) & Mask) | lo(Val)); 840 } 841 } break; 842 case R_PPC64_TPREL16: 843 checkInt(Loc, Val, 16, OriginalType); 844 write16(Loc, Val); 845 break; 846 case R_PPC64_REL32: 847 checkInt(Loc, Val, 32, Type); 848 write32(Loc, Val); 849 break; 850 case R_PPC64_ADDR64: 851 case R_PPC64_REL64: 852 case R_PPC64_TOC: 853 write64(Loc, Val); 854 break; 855 case R_PPC64_REL14: { 856 uint32_t Mask = 0x0000FFFC; 857 checkInt(Loc, Val, 16, Type); 858 checkAlignment(Loc, Val, 4, Type); 859 write32(Loc, (read32(Loc) & ~Mask) | (Val & Mask)); 860 break; 861 } 862 case R_PPC64_REL24: { 863 uint32_t Mask = 0x03FFFFFC; 864 checkInt(Loc, Val, 26, Type); 865 checkAlignment(Loc, Val, 4, Type); 866 write32(Loc, (read32(Loc) & ~Mask) | (Val & Mask)); 867 break; 868 } 869 case R_PPC64_DTPREL64: 870 write64(Loc, Val - DynamicThreadPointerOffset); 871 break; 872 default: 873 error(getErrorLocation(Loc) + "unrecognized relocation " + toString(Type)); 874 } 875 } 876 877 bool PPC64::needsThunk(RelExpr Expr, RelType Type, const InputFile *File, 878 uint64_t BranchAddr, const Symbol &S) const { 879 if (Type != R_PPC64_REL14 && Type != R_PPC64_REL24) 880 return false; 881 882 // If a function is in the Plt it needs to be called with a call-stub. 883 if (S.isInPlt()) 884 return true; 885 886 // If a symbol is a weak undefined and we are compiling an executable 887 // it doesn't need a range-extending thunk since it can't be called. 888 if (S.isUndefWeak() && !Config->Shared) 889 return false; 890 891 // If the offset exceeds the range of the branch type then it will need 892 // a range-extending thunk. 893 // See the comment in getRelocTargetVA() about R_PPC64_CALL. 894 return !inBranchRange(Type, BranchAddr, 895 S.getVA() + 896 getPPC64GlobalEntryToLocalEntryOffset(S.StOther)); 897 } 898 899 uint32_t PPC64::getThunkSectionSpacing() const { 900 // See comment in Arch/ARM.cpp for a more detailed explanation of 901 // getThunkSectionSpacing(). For PPC64 we pick the constant here based on 902 // R_PPC64_REL24, which is used by unconditional branch instructions. 903 // 0x2000000 = (1 << 24-1) * 4 904 return 0x2000000; 905 } 906 907 bool PPC64::inBranchRange(RelType Type, uint64_t Src, uint64_t Dst) const { 908 int64_t Offset = Dst - Src; 909 if (Type == R_PPC64_REL14) 910 return isInt<16>(Offset); 911 if (Type == R_PPC64_REL24) 912 return isInt<26>(Offset); 913 llvm_unreachable("unsupported relocation type used in branch"); 914 } 915 916 RelExpr PPC64::adjustRelaxExpr(RelType Type, const uint8_t *Data, 917 RelExpr Expr) const { 918 if (Expr == R_RELAX_TLS_GD_TO_IE) 919 return R_RELAX_TLS_GD_TO_IE_GOT_OFF; 920 if (Expr == R_RELAX_TLS_LD_TO_LE) 921 return R_RELAX_TLS_LD_TO_LE_ABS; 922 return Expr; 923 } 924 925 // Reference: 3.7.4.1 of the 64-bit ELF V2 abi supplement. 926 // The general dynamic code sequence for a global `x` uses 4 instructions. 927 // Instruction Relocation Symbol 928 // addis r3, r2, x@got@tlsgd@ha R_PPC64_GOT_TLSGD16_HA x 929 // addi r3, r3, x@got@tlsgd@l R_PPC64_GOT_TLSGD16_LO x 930 // bl __tls_get_addr(x@tlsgd) R_PPC64_TLSGD x 931 // R_PPC64_REL24 __tls_get_addr 932 // nop None None 933 // 934 // Relaxing to initial-exec entails: 935 // 1) Convert the addis/addi pair that builds the address of the tls_index 936 // struct for 'x' to an addis/ld pair that loads an offset from a got-entry. 937 // 2) Convert the call to __tls_get_addr to a nop. 938 // 3) Convert the nop following the call to an add of the loaded offset to the 939 // thread pointer. 940 // Since the nop must directly follow the call, the R_PPC64_TLSGD relocation is 941 // used as the relaxation hint for both steps 2 and 3. 942 void PPC64::relaxTlsGdToIe(uint8_t *Loc, RelType Type, uint64_t Val) const { 943 switch (Type) { 944 case R_PPC64_GOT_TLSGD16_HA: 945 // This is relaxed from addis rT, r2, sym@got@tlsgd@ha to 946 // addis rT, r2, sym@got@tprel@ha. 947 relocateOne(Loc, R_PPC64_GOT_TPREL16_HA, Val); 948 return; 949 case R_PPC64_GOT_TLSGD16_LO: { 950 // Relax from addi r3, rA, sym@got@tlsgd@l to 951 // ld r3, sym@got@tprel@l(rA) 952 uint32_t RA = (readFromHalf16(Loc) & (0x1f << 16)); 953 writeFromHalf16(Loc, 0xe8600000 | RA); 954 relocateOne(Loc, R_PPC64_GOT_TPREL16_LO_DS, Val); 955 return; 956 } 957 case R_PPC64_TLSGD: 958 write32(Loc, 0x60000000); // bl __tls_get_addr(sym@tlsgd) --> nop 959 write32(Loc + 4, 0x7c636A14); // nop --> add r3, r3, r13 960 return; 961 default: 962 llvm_unreachable("unsupported relocation for TLS GD to IE relaxation"); 963 } 964 } 965 966 // The prologue for a split-stack function is expected to look roughly 967 // like this: 968 // .Lglobal_entry_point: 969 // # TOC pointer initalization. 970 // ... 971 // .Llocal_entry_point: 972 // # load the __private_ss member of the threads tcbhead. 973 // ld r0,-0x7000-64(r13) 974 // # subtract the functions stack size from the stack pointer. 975 // addis r12, r1, ha(-stack-frame size) 976 // addi r12, r12, l(-stack-frame size) 977 // # compare needed to actual and branch to allocate_more_stack if more 978 // # space is needed, otherwise fallthrough to 'normal' function body. 979 // cmpld cr7,r12,r0 980 // blt- cr7, .Lallocate_more_stack 981 // 982 // -) The allocate_more_stack block might be placed after the split-stack 983 // prologue and the `blt-` replaced with a `bge+ .Lnormal_func_body` 984 // instead. 985 // -) If either the addis or addi is not needed due to the stack size being 986 // smaller then 32K or a multiple of 64K they will be replaced with a nop, 987 // but there will always be 2 instructions the linker can overwrite for the 988 // adjusted stack size. 989 // 990 // The linkers job here is to increase the stack size used in the addis/addi 991 // pair by split-stack-size-adjust. 992 // addis r12, r1, ha(-stack-frame size - split-stack-adjust-size) 993 // addi r12, r12, l(-stack-frame size - split-stack-adjust-size) 994 bool PPC64::adjustPrologueForCrossSplitStack(uint8_t *Loc, uint8_t *End, 995 uint8_t StOther) const { 996 // If the caller has a global entry point adjust the buffer past it. The start 997 // of the split-stack prologue will be at the local entry point. 998 Loc += getPPC64GlobalEntryToLocalEntryOffset(StOther); 999 1000 // At the very least we expect to see a load of some split-stack data from the 1001 // tcb, and 2 instructions that calculate the ending stack address this 1002 // function will require. If there is not enough room for at least 3 1003 // instructions it can't be a split-stack prologue. 1004 if (Loc + 12 >= End) 1005 return false; 1006 1007 // First instruction must be `ld r0, -0x7000-64(r13)` 1008 if (read32(Loc) != 0xe80d8fc0) 1009 return false; 1010 1011 int16_t HiImm = 0; 1012 int16_t LoImm = 0; 1013 // First instruction can be either an addis if the frame size is larger then 1014 // 32K, or an addi if the size is less then 32K. 1015 int32_t FirstInstr = read32(Loc + 4); 1016 if (getPrimaryOpCode(FirstInstr) == 15) { 1017 HiImm = FirstInstr & 0xFFFF; 1018 } else if (getPrimaryOpCode(FirstInstr) == 14) { 1019 LoImm = FirstInstr & 0xFFFF; 1020 } else { 1021 return false; 1022 } 1023 1024 // Second instruction is either an addi or a nop. If the first instruction was 1025 // an addi then LoImm is set and the second instruction must be a nop. 1026 uint32_t SecondInstr = read32(Loc + 8); 1027 if (!LoImm && getPrimaryOpCode(SecondInstr) == 14) { 1028 LoImm = SecondInstr & 0xFFFF; 1029 } else if (SecondInstr != 0x60000000) { 1030 return false; 1031 } 1032 1033 // The register operands of the first instruction should be the stack-pointer 1034 // (r1) as the input (RA) and r12 as the output (RT). If the second 1035 // instruction is not a nop, then it should use r12 as both input and output. 1036 auto CheckRegOperands = [](uint32_t Instr, uint8_t ExpectedRT, 1037 uint8_t ExpectedRA) { 1038 return ((Instr & 0x3E00000) >> 21 == ExpectedRT) && 1039 ((Instr & 0x1F0000) >> 16 == ExpectedRA); 1040 }; 1041 if (!CheckRegOperands(FirstInstr, 12, 1)) 1042 return false; 1043 if (SecondInstr != 0x60000000 && !CheckRegOperands(SecondInstr, 12, 12)) 1044 return false; 1045 1046 int32_t StackFrameSize = (HiImm * 65536) + LoImm; 1047 // Check that the adjusted size doesn't overflow what we can represent with 2 1048 // instructions. 1049 if (StackFrameSize < Config->SplitStackAdjustSize + INT32_MIN) { 1050 error(getErrorLocation(Loc) + "split-stack prologue adjustment overflows"); 1051 return false; 1052 } 1053 1054 int32_t AdjustedStackFrameSize = 1055 StackFrameSize - Config->SplitStackAdjustSize; 1056 1057 LoImm = AdjustedStackFrameSize & 0xFFFF; 1058 HiImm = (AdjustedStackFrameSize + 0x8000) >> 16; 1059 if (HiImm) { 1060 write32(Loc + 4, 0x3D810000 | (uint16_t)HiImm); 1061 // If the low immediate is zero the second instruction will be a nop. 1062 SecondInstr = LoImm ? 0x398C0000 | (uint16_t)LoImm : 0x60000000; 1063 write32(Loc + 8, SecondInstr); 1064 } else { 1065 // addi r12, r1, imm 1066 write32(Loc + 4, (0x39810000) | (uint16_t)LoImm); 1067 write32(Loc + 8, 0x60000000); 1068 } 1069 1070 return true; 1071 } 1072 1073 TargetInfo *elf::getPPC64TargetInfo() { 1074 static PPC64 Target; 1075 return &Target; 1076 } 1077