1 //===-- ARMAsmPrinter.cpp - Print machine code to an ARM .s file ----------===// 2 // 3 // The LLVM Compiler Infrastructure 4 // 5 // This file is distributed under the University of Illinois Open Source 6 // License. See LICENSE.TXT for details. 7 // 8 //===----------------------------------------------------------------------===// 9 // 10 // This file contains a printer that converts from our internal representation 11 // of machine-dependent LLVM code to GAS-format ARM assembly language. 12 // 13 //===----------------------------------------------------------------------===// 14 15 #include "ARMAsmPrinter.h" 16 #include "ARM.h" 17 #include "ARMConstantPoolValue.h" 18 #include "ARMMachineFunctionInfo.h" 19 #include "ARMTargetMachine.h" 20 #include "ARMTargetObjectFile.h" 21 #include "InstPrinter/ARMInstPrinter.h" 22 #include "MCTargetDesc/ARMAddressingModes.h" 23 #include "MCTargetDesc/ARMMCExpr.h" 24 #include "llvm/ADT/SetVector.h" 25 #include "llvm/ADT/SmallString.h" 26 #include "llvm/CodeGen/MachineFunctionPass.h" 27 #include "llvm/CodeGen/MachineJumpTableInfo.h" 28 #include "llvm/CodeGen/MachineModuleInfoImpls.h" 29 #include "llvm/IR/Constants.h" 30 #include "llvm/IR/DataLayout.h" 31 #include "llvm/IR/DebugInfo.h" 32 #include "llvm/IR/Mangler.h" 33 #include "llvm/IR/Module.h" 34 #include "llvm/IR/Type.h" 35 #include "llvm/MC/MCAsmInfo.h" 36 #include "llvm/MC/MCAssembler.h" 37 #include "llvm/MC/MCContext.h" 38 #include "llvm/MC/MCELFStreamer.h" 39 #include "llvm/MC/MCInst.h" 40 #include "llvm/MC/MCInstBuilder.h" 41 #include "llvm/MC/MCObjectStreamer.h" 42 #include "llvm/MC/MCSectionMachO.h" 43 #include "llvm/MC/MCStreamer.h" 44 #include "llvm/MC/MCSymbol.h" 45 #include "llvm/Support/ARMBuildAttributes.h" 46 #include "llvm/Support/TargetParser.h" 47 #include "llvm/Support/COFF.h" 48 #include "llvm/Support/CommandLine.h" 49 #include "llvm/Support/Debug.h" 50 #include "llvm/Support/ELF.h" 51 #include "llvm/Support/ErrorHandling.h" 52 #include "llvm/Support/TargetRegistry.h" 53 #include "llvm/Support/raw_ostream.h" 54 #include "llvm/Target/TargetMachine.h" 55 #include <cctype> 56 using namespace llvm; 57 58 #define DEBUG_TYPE "asm-printer" 59 60 ARMAsmPrinter::ARMAsmPrinter(TargetMachine &TM, 61 std::unique_ptr<MCStreamer> Streamer) 62 : AsmPrinter(TM, std::move(Streamer)), AFI(nullptr), MCP(nullptr), 63 InConstantPool(false) {} 64 65 void ARMAsmPrinter::EmitFunctionBodyEnd() { 66 // Make sure to terminate any constant pools that were at the end 67 // of the function. 68 if (!InConstantPool) 69 return; 70 InConstantPool = false; 71 OutStreamer->EmitDataRegion(MCDR_DataRegionEnd); 72 } 73 74 void ARMAsmPrinter::EmitFunctionEntryLabel() { 75 if (AFI->isThumbFunction()) { 76 OutStreamer->EmitAssemblerFlag(MCAF_Code16); 77 OutStreamer->EmitThumbFunc(CurrentFnSym); 78 } 79 80 OutStreamer->EmitLabel(CurrentFnSym); 81 } 82 83 void ARMAsmPrinter::EmitXXStructor(const Constant *CV) { 84 uint64_t Size = TM.getDataLayout()->getTypeAllocSize(CV->getType()); 85 assert(Size && "C++ constructor pointer had zero size!"); 86 87 const GlobalValue *GV = dyn_cast<GlobalValue>(CV->stripPointerCasts()); 88 assert(GV && "C++ constructor pointer was not a GlobalValue!"); 89 90 const MCExpr *E = MCSymbolRefExpr::create(GetARMGVSymbol(GV, 91 ARMII::MO_NO_FLAG), 92 (Subtarget->isTargetELF() 93 ? MCSymbolRefExpr::VK_ARM_TARGET1 94 : MCSymbolRefExpr::VK_None), 95 OutContext); 96 97 OutStreamer->EmitValue(E, Size); 98 } 99 100 /// runOnMachineFunction - This uses the EmitInstruction() 101 /// method to print assembly for each instruction. 102 /// 103 bool ARMAsmPrinter::runOnMachineFunction(MachineFunction &MF) { 104 AFI = MF.getInfo<ARMFunctionInfo>(); 105 MCP = MF.getConstantPool(); 106 Subtarget = &MF.getSubtarget<ARMSubtarget>(); 107 108 SetupMachineFunction(MF); 109 110 if (Subtarget->isTargetCOFF()) { 111 bool Internal = MF.getFunction()->hasInternalLinkage(); 112 COFF::SymbolStorageClass Scl = Internal ? COFF::IMAGE_SYM_CLASS_STATIC 113 : COFF::IMAGE_SYM_CLASS_EXTERNAL; 114 int Type = COFF::IMAGE_SYM_DTYPE_FUNCTION << COFF::SCT_COMPLEX_TYPE_SHIFT; 115 116 OutStreamer->BeginCOFFSymbolDef(CurrentFnSym); 117 OutStreamer->EmitCOFFSymbolStorageClass(Scl); 118 OutStreamer->EmitCOFFSymbolType(Type); 119 OutStreamer->EndCOFFSymbolDef(); 120 } 121 122 // Emit the rest of the function body. 123 EmitFunctionBody(); 124 125 // If we need V4T thumb mode Register Indirect Jump pads, emit them. 126 // These are created per function, rather than per TU, since it's 127 // relatively easy to exceed the thumb branch range within a TU. 128 if (! ThumbIndirectPads.empty()) { 129 OutStreamer->EmitAssemblerFlag(MCAF_Code16); 130 EmitAlignment(1); 131 for (unsigned i = 0, e = ThumbIndirectPads.size(); i < e; i++) { 132 OutStreamer->EmitLabel(ThumbIndirectPads[i].second); 133 EmitToStreamer(*OutStreamer, MCInstBuilder(ARM::tBX) 134 .addReg(ThumbIndirectPads[i].first) 135 // Add predicate operands. 136 .addImm(ARMCC::AL) 137 .addReg(0)); 138 } 139 ThumbIndirectPads.clear(); 140 } 141 142 // We didn't modify anything. 143 return false; 144 } 145 146 void ARMAsmPrinter::printOperand(const MachineInstr *MI, int OpNum, 147 raw_ostream &O) { 148 const MachineOperand &MO = MI->getOperand(OpNum); 149 unsigned TF = MO.getTargetFlags(); 150 151 switch (MO.getType()) { 152 default: llvm_unreachable("<unknown operand type>"); 153 case MachineOperand::MO_Register: { 154 unsigned Reg = MO.getReg(); 155 assert(TargetRegisterInfo::isPhysicalRegister(Reg)); 156 assert(!MO.getSubReg() && "Subregs should be eliminated!"); 157 if(ARM::GPRPairRegClass.contains(Reg)) { 158 const MachineFunction &MF = *MI->getParent()->getParent(); 159 const TargetRegisterInfo *TRI = MF.getSubtarget().getRegisterInfo(); 160 Reg = TRI->getSubReg(Reg, ARM::gsub_0); 161 } 162 O << ARMInstPrinter::getRegisterName(Reg); 163 break; 164 } 165 case MachineOperand::MO_Immediate: { 166 int64_t Imm = MO.getImm(); 167 O << '#'; 168 if (TF == ARMII::MO_LO16) 169 O << ":lower16:"; 170 else if (TF == ARMII::MO_HI16) 171 O << ":upper16:"; 172 O << Imm; 173 break; 174 } 175 case MachineOperand::MO_MachineBasicBlock: 176 MO.getMBB()->getSymbol()->print(O, MAI); 177 return; 178 case MachineOperand::MO_GlobalAddress: { 179 const GlobalValue *GV = MO.getGlobal(); 180 if (TF & ARMII::MO_LO16) 181 O << ":lower16:"; 182 else if (TF & ARMII::MO_HI16) 183 O << ":upper16:"; 184 GetARMGVSymbol(GV, TF)->print(O, MAI); 185 186 printOffset(MO.getOffset(), O); 187 if (TF == ARMII::MO_PLT) 188 O << "(PLT)"; 189 break; 190 } 191 case MachineOperand::MO_ConstantPoolIndex: 192 GetCPISymbol(MO.getIndex())->print(O, MAI); 193 break; 194 } 195 } 196 197 //===--------------------------------------------------------------------===// 198 199 MCSymbol *ARMAsmPrinter:: 200 GetARMJTIPICJumpTableLabel(unsigned uid) const { 201 const DataLayout *DL = TM.getDataLayout(); 202 SmallString<60> Name; 203 raw_svector_ostream(Name) << DL->getPrivateGlobalPrefix() << "JTI" 204 << getFunctionNumber() << '_' << uid; 205 return OutContext.getOrCreateSymbol(Name); 206 } 207 208 209 MCSymbol *ARMAsmPrinter::GetARMSJLJEHLabel() const { 210 const DataLayout *DL = TM.getDataLayout(); 211 SmallString<60> Name; 212 raw_svector_ostream(Name) << DL->getPrivateGlobalPrefix() << "SJLJEH" 213 << getFunctionNumber(); 214 return OutContext.getOrCreateSymbol(Name); 215 } 216 217 bool ARMAsmPrinter::PrintAsmOperand(const MachineInstr *MI, unsigned OpNum, 218 unsigned AsmVariant, const char *ExtraCode, 219 raw_ostream &O) { 220 // Does this asm operand have a single letter operand modifier? 221 if (ExtraCode && ExtraCode[0]) { 222 if (ExtraCode[1] != 0) return true; // Unknown modifier. 223 224 switch (ExtraCode[0]) { 225 default: 226 // See if this is a generic print operand 227 return AsmPrinter::PrintAsmOperand(MI, OpNum, AsmVariant, ExtraCode, O); 228 case 'a': // Print as a memory address. 229 if (MI->getOperand(OpNum).isReg()) { 230 O << "[" 231 << ARMInstPrinter::getRegisterName(MI->getOperand(OpNum).getReg()) 232 << "]"; 233 return false; 234 } 235 // Fallthrough 236 case 'c': // Don't print "#" before an immediate operand. 237 if (!MI->getOperand(OpNum).isImm()) 238 return true; 239 O << MI->getOperand(OpNum).getImm(); 240 return false; 241 case 'P': // Print a VFP double precision register. 242 case 'q': // Print a NEON quad precision register. 243 printOperand(MI, OpNum, O); 244 return false; 245 case 'y': // Print a VFP single precision register as indexed double. 246 if (MI->getOperand(OpNum).isReg()) { 247 unsigned Reg = MI->getOperand(OpNum).getReg(); 248 const TargetRegisterInfo *TRI = MF->getSubtarget().getRegisterInfo(); 249 // Find the 'd' register that has this 's' register as a sub-register, 250 // and determine the lane number. 251 for (MCSuperRegIterator SR(Reg, TRI); SR.isValid(); ++SR) { 252 if (!ARM::DPRRegClass.contains(*SR)) 253 continue; 254 bool Lane0 = TRI->getSubReg(*SR, ARM::ssub_0) == Reg; 255 O << ARMInstPrinter::getRegisterName(*SR) << (Lane0 ? "[0]" : "[1]"); 256 return false; 257 } 258 } 259 return true; 260 case 'B': // Bitwise inverse of integer or symbol without a preceding #. 261 if (!MI->getOperand(OpNum).isImm()) 262 return true; 263 O << ~(MI->getOperand(OpNum).getImm()); 264 return false; 265 case 'L': // The low 16 bits of an immediate constant. 266 if (!MI->getOperand(OpNum).isImm()) 267 return true; 268 O << (MI->getOperand(OpNum).getImm() & 0xffff); 269 return false; 270 case 'M': { // A register range suitable for LDM/STM. 271 if (!MI->getOperand(OpNum).isReg()) 272 return true; 273 const MachineOperand &MO = MI->getOperand(OpNum); 274 unsigned RegBegin = MO.getReg(); 275 // This takes advantage of the 2 operand-ness of ldm/stm and that we've 276 // already got the operands in registers that are operands to the 277 // inline asm statement. 278 O << "{"; 279 if (ARM::GPRPairRegClass.contains(RegBegin)) { 280 const TargetRegisterInfo *TRI = MF->getSubtarget().getRegisterInfo(); 281 unsigned Reg0 = TRI->getSubReg(RegBegin, ARM::gsub_0); 282 O << ARMInstPrinter::getRegisterName(Reg0) << ", "; 283 RegBegin = TRI->getSubReg(RegBegin, ARM::gsub_1); 284 } 285 O << ARMInstPrinter::getRegisterName(RegBegin); 286 287 // FIXME: The register allocator not only may not have given us the 288 // registers in sequence, but may not be in ascending registers. This 289 // will require changes in the register allocator that'll need to be 290 // propagated down here if the operands change. 291 unsigned RegOps = OpNum + 1; 292 while (MI->getOperand(RegOps).isReg()) { 293 O << ", " 294 << ARMInstPrinter::getRegisterName(MI->getOperand(RegOps).getReg()); 295 RegOps++; 296 } 297 298 O << "}"; 299 300 return false; 301 } 302 case 'R': // The most significant register of a pair. 303 case 'Q': { // The least significant register of a pair. 304 if (OpNum == 0) 305 return true; 306 const MachineOperand &FlagsOP = MI->getOperand(OpNum - 1); 307 if (!FlagsOP.isImm()) 308 return true; 309 unsigned Flags = FlagsOP.getImm(); 310 311 // This operand may not be the one that actually provides the register. If 312 // it's tied to a previous one then we should refer instead to that one 313 // for registers and their classes. 314 unsigned TiedIdx; 315 if (InlineAsm::isUseOperandTiedToDef(Flags, TiedIdx)) { 316 for (OpNum = InlineAsm::MIOp_FirstOperand; TiedIdx; --TiedIdx) { 317 unsigned OpFlags = MI->getOperand(OpNum).getImm(); 318 OpNum += InlineAsm::getNumOperandRegisters(OpFlags) + 1; 319 } 320 Flags = MI->getOperand(OpNum).getImm(); 321 322 // Later code expects OpNum to be pointing at the register rather than 323 // the flags. 324 OpNum += 1; 325 } 326 327 unsigned NumVals = InlineAsm::getNumOperandRegisters(Flags); 328 unsigned RC; 329 InlineAsm::hasRegClassConstraint(Flags, RC); 330 if (RC == ARM::GPRPairRegClassID) { 331 if (NumVals != 1) 332 return true; 333 const MachineOperand &MO = MI->getOperand(OpNum); 334 if (!MO.isReg()) 335 return true; 336 const TargetRegisterInfo *TRI = MF->getSubtarget().getRegisterInfo(); 337 unsigned Reg = TRI->getSubReg(MO.getReg(), ExtraCode[0] == 'Q' ? 338 ARM::gsub_0 : ARM::gsub_1); 339 O << ARMInstPrinter::getRegisterName(Reg); 340 return false; 341 } 342 if (NumVals != 2) 343 return true; 344 unsigned RegOp = ExtraCode[0] == 'Q' ? OpNum : OpNum + 1; 345 if (RegOp >= MI->getNumOperands()) 346 return true; 347 const MachineOperand &MO = MI->getOperand(RegOp); 348 if (!MO.isReg()) 349 return true; 350 unsigned Reg = MO.getReg(); 351 O << ARMInstPrinter::getRegisterName(Reg); 352 return false; 353 } 354 355 case 'e': // The low doubleword register of a NEON quad register. 356 case 'f': { // The high doubleword register of a NEON quad register. 357 if (!MI->getOperand(OpNum).isReg()) 358 return true; 359 unsigned Reg = MI->getOperand(OpNum).getReg(); 360 if (!ARM::QPRRegClass.contains(Reg)) 361 return true; 362 const TargetRegisterInfo *TRI = MF->getSubtarget().getRegisterInfo(); 363 unsigned SubReg = TRI->getSubReg(Reg, ExtraCode[0] == 'e' ? 364 ARM::dsub_0 : ARM::dsub_1); 365 O << ARMInstPrinter::getRegisterName(SubReg); 366 return false; 367 } 368 369 // This modifier is not yet supported. 370 case 'h': // A range of VFP/NEON registers suitable for VLD1/VST1. 371 return true; 372 case 'H': { // The highest-numbered register of a pair. 373 const MachineOperand &MO = MI->getOperand(OpNum); 374 if (!MO.isReg()) 375 return true; 376 const MachineFunction &MF = *MI->getParent()->getParent(); 377 const TargetRegisterInfo *TRI = MF.getSubtarget().getRegisterInfo(); 378 unsigned Reg = MO.getReg(); 379 if(!ARM::GPRPairRegClass.contains(Reg)) 380 return false; 381 Reg = TRI->getSubReg(Reg, ARM::gsub_1); 382 O << ARMInstPrinter::getRegisterName(Reg); 383 return false; 384 } 385 } 386 } 387 388 printOperand(MI, OpNum, O); 389 return false; 390 } 391 392 bool ARMAsmPrinter::PrintAsmMemoryOperand(const MachineInstr *MI, 393 unsigned OpNum, unsigned AsmVariant, 394 const char *ExtraCode, 395 raw_ostream &O) { 396 // Does this asm operand have a single letter operand modifier? 397 if (ExtraCode && ExtraCode[0]) { 398 if (ExtraCode[1] != 0) return true; // Unknown modifier. 399 400 switch (ExtraCode[0]) { 401 case 'A': // A memory operand for a VLD1/VST1 instruction. 402 default: return true; // Unknown modifier. 403 case 'm': // The base register of a memory operand. 404 if (!MI->getOperand(OpNum).isReg()) 405 return true; 406 O << ARMInstPrinter::getRegisterName(MI->getOperand(OpNum).getReg()); 407 return false; 408 } 409 } 410 411 const MachineOperand &MO = MI->getOperand(OpNum); 412 assert(MO.isReg() && "unexpected inline asm memory operand"); 413 O << "[" << ARMInstPrinter::getRegisterName(MO.getReg()) << "]"; 414 return false; 415 } 416 417 static bool isThumb(const MCSubtargetInfo& STI) { 418 return STI.getFeatureBits()[ARM::ModeThumb]; 419 } 420 421 void ARMAsmPrinter::emitInlineAsmEnd(const MCSubtargetInfo &StartInfo, 422 const MCSubtargetInfo *EndInfo) const { 423 // If either end mode is unknown (EndInfo == NULL) or different than 424 // the start mode, then restore the start mode. 425 const bool WasThumb = isThumb(StartInfo); 426 if (!EndInfo || WasThumb != isThumb(*EndInfo)) { 427 OutStreamer->EmitAssemblerFlag(WasThumb ? MCAF_Code16 : MCAF_Code32); 428 } 429 } 430 431 void ARMAsmPrinter::EmitStartOfAsmFile(Module &M) { 432 Triple TT(TM.getTargetTriple()); 433 // Use unified assembler syntax. 434 OutStreamer->EmitAssemblerFlag(MCAF_SyntaxUnified); 435 436 // Emit ARM Build Attributes 437 if (TT.isOSBinFormatELF()) 438 emitAttributes(); 439 440 // Use the triple's architecture and subarchitecture to determine 441 // if we're thumb for the purposes of the top level code16 assembler 442 // flag. 443 bool isThumb = TT.getArch() == Triple::thumb || 444 TT.getArch() == Triple::thumbeb || 445 TT.getSubArch() == Triple::ARMSubArch_v7m || 446 TT.getSubArch() == Triple::ARMSubArch_v6m; 447 if (!M.getModuleInlineAsm().empty() && isThumb) 448 OutStreamer->EmitAssemblerFlag(MCAF_Code16); 449 } 450 451 static void 452 emitNonLazySymbolPointer(MCStreamer &OutStreamer, MCSymbol *StubLabel, 453 MachineModuleInfoImpl::StubValueTy &MCSym) { 454 // L_foo$stub: 455 OutStreamer.EmitLabel(StubLabel); 456 // .indirect_symbol _foo 457 OutStreamer.EmitSymbolAttribute(MCSym.getPointer(), MCSA_IndirectSymbol); 458 459 if (MCSym.getInt()) 460 // External to current translation unit. 461 OutStreamer.EmitIntValue(0, 4/*size*/); 462 else 463 // Internal to current translation unit. 464 // 465 // When we place the LSDA into the TEXT section, the type info 466 // pointers need to be indirect and pc-rel. We accomplish this by 467 // using NLPs; however, sometimes the types are local to the file. 468 // We need to fill in the value for the NLP in those cases. 469 OutStreamer.EmitValue( 470 MCSymbolRefExpr::create(MCSym.getPointer(), OutStreamer.getContext()), 471 4 /*size*/); 472 } 473 474 475 void ARMAsmPrinter::EmitEndOfAsmFile(Module &M) { 476 Triple TT(TM.getTargetTriple()); 477 if (TT.isOSBinFormatMachO()) { 478 // All darwin targets use mach-o. 479 const TargetLoweringObjectFileMachO &TLOFMacho = 480 static_cast<const TargetLoweringObjectFileMachO &>(getObjFileLowering()); 481 MachineModuleInfoMachO &MMIMacho = 482 MMI->getObjFileInfo<MachineModuleInfoMachO>(); 483 484 // Output non-lazy-pointers for external and common global variables. 485 MachineModuleInfoMachO::SymbolListTy Stubs = MMIMacho.GetGVStubList(); 486 487 if (!Stubs.empty()) { 488 // Switch with ".non_lazy_symbol_pointer" directive. 489 OutStreamer->SwitchSection(TLOFMacho.getNonLazySymbolPointerSection()); 490 EmitAlignment(2); 491 492 for (auto &Stub : Stubs) 493 emitNonLazySymbolPointer(*OutStreamer, Stub.first, Stub.second); 494 495 Stubs.clear(); 496 OutStreamer->AddBlankLine(); 497 } 498 499 Stubs = MMIMacho.GetHiddenGVStubList(); 500 if (!Stubs.empty()) { 501 OutStreamer->SwitchSection(TLOFMacho.getNonLazySymbolPointerSection()); 502 EmitAlignment(2); 503 504 for (auto &Stub : Stubs) 505 emitNonLazySymbolPointer(*OutStreamer, Stub.first, Stub.second); 506 507 Stubs.clear(); 508 OutStreamer->AddBlankLine(); 509 } 510 511 // Funny Darwin hack: This flag tells the linker that no global symbols 512 // contain code that falls through to other global symbols (e.g. the obvious 513 // implementation of multiple entry points). If this doesn't occur, the 514 // linker can safely perform dead code stripping. Since LLVM never 515 // generates code that does this, it is always safe to set. 516 OutStreamer->EmitAssemblerFlag(MCAF_SubsectionsViaSymbols); 517 } 518 } 519 520 //===----------------------------------------------------------------------===// 521 // Helper routines for EmitStartOfAsmFile() and EmitEndOfAsmFile() 522 // FIXME: 523 // The following seem like one-off assembler flags, but they actually need 524 // to appear in the .ARM.attributes section in ELF. 525 // Instead of subclassing the MCELFStreamer, we do the work here. 526 527 static ARMBuildAttrs::CPUArch getArchForCPU(StringRef CPU, 528 const ARMSubtarget *Subtarget) { 529 if (CPU == "xscale") 530 return ARMBuildAttrs::v5TEJ; 531 532 if (Subtarget->hasV8Ops()) 533 return ARMBuildAttrs::v8; 534 else if (Subtarget->hasV7Ops()) { 535 if (Subtarget->isMClass() && Subtarget->hasThumb2DSP()) 536 return ARMBuildAttrs::v7E_M; 537 return ARMBuildAttrs::v7; 538 } else if (Subtarget->hasV6T2Ops()) 539 return ARMBuildAttrs::v6T2; 540 else if (Subtarget->hasV6MOps()) 541 return ARMBuildAttrs::v6S_M; 542 else if (Subtarget->hasV6Ops()) 543 return ARMBuildAttrs::v6; 544 else if (Subtarget->hasV5TEOps()) 545 return ARMBuildAttrs::v5TE; 546 else if (Subtarget->hasV5TOps()) 547 return ARMBuildAttrs::v5T; 548 else if (Subtarget->hasV4TOps()) 549 return ARMBuildAttrs::v4T; 550 else 551 return ARMBuildAttrs::v4; 552 } 553 554 void ARMAsmPrinter::emitAttributes() { 555 MCTargetStreamer &TS = *OutStreamer->getTargetStreamer(); 556 ARMTargetStreamer &ATS = static_cast<ARMTargetStreamer &>(TS); 557 558 ATS.emitTextAttribute(ARMBuildAttrs::conformance, "2.09"); 559 560 ATS.switchVendor("aeabi"); 561 562 // Compute ARM ELF Attributes based on the default subtarget that 563 // we'd have constructed. The existing ARM behavior isn't LTO clean 564 // anyhow. 565 // FIXME: For ifunc related functions we could iterate over and look 566 // for a feature string that doesn't match the default one. 567 const Triple TT(TM.getTargetTriple()); 568 StringRef CPU = TM.getTargetCPU(); 569 StringRef FS = TM.getTargetFeatureString(); 570 std::string ArchFS = ARM_MC::ParseARMTriple(TT, CPU); 571 if (!FS.empty()) { 572 if (!ArchFS.empty()) 573 ArchFS = (Twine(ArchFS) + "," + FS).str(); 574 else 575 ArchFS = FS; 576 } 577 const ARMBaseTargetMachine &ATM = 578 static_cast<const ARMBaseTargetMachine &>(TM); 579 const ARMSubtarget STI(TT, CPU, ArchFS, ATM, ATM.isLittleEndian()); 580 581 std::string CPUString = STI.getCPUString(); 582 583 if (CPUString.find("generic") != 0) { //CPUString doesn't start with "generic" 584 // FIXME: remove krait check when GNU tools support krait cpu 585 if (STI.isKrait()) { 586 ATS.emitTextAttribute(ARMBuildAttrs::CPU_name, "cortex-a9"); 587 // We consider krait as a "cortex-a9" + hwdiv CPU 588 // Enable hwdiv through ".arch_extension idiv" 589 if (STI.hasDivide() || STI.hasDivideInARMMode()) 590 ATS.emitArchExtension(ARM::AEK_HWDIV); 591 } else 592 ATS.emitTextAttribute(ARMBuildAttrs::CPU_name, CPUString); 593 } 594 595 ATS.emitAttribute(ARMBuildAttrs::CPU_arch, getArchForCPU(CPUString, &STI)); 596 597 // Tag_CPU_arch_profile must have the default value of 0 when "Architecture 598 // profile is not applicable (e.g. pre v7, or cross-profile code)". 599 if (STI.hasV7Ops()) { 600 if (STI.isAClass()) { 601 ATS.emitAttribute(ARMBuildAttrs::CPU_arch_profile, 602 ARMBuildAttrs::ApplicationProfile); 603 } else if (STI.isRClass()) { 604 ATS.emitAttribute(ARMBuildAttrs::CPU_arch_profile, 605 ARMBuildAttrs::RealTimeProfile); 606 } else if (STI.isMClass()) { 607 ATS.emitAttribute(ARMBuildAttrs::CPU_arch_profile, 608 ARMBuildAttrs::MicroControllerProfile); 609 } 610 } 611 612 ATS.emitAttribute(ARMBuildAttrs::ARM_ISA_use, 613 STI.hasARMOps() ? ARMBuildAttrs::Allowed 614 : ARMBuildAttrs::Not_Allowed); 615 if (STI.isThumb1Only()) { 616 ATS.emitAttribute(ARMBuildAttrs::THUMB_ISA_use, ARMBuildAttrs::Allowed); 617 } else if (STI.hasThumb2()) { 618 ATS.emitAttribute(ARMBuildAttrs::THUMB_ISA_use, 619 ARMBuildAttrs::AllowThumb32); 620 } 621 622 if (STI.hasNEON()) { 623 /* NEON is not exactly a VFP architecture, but GAS emit one of 624 * neon/neon-fp-armv8/neon-vfpv4/vfpv3/vfpv2 for .fpu parameters */ 625 if (STI.hasFPARMv8()) { 626 if (STI.hasCrypto()) 627 ATS.emitFPU(ARM::FK_CRYPTO_NEON_FP_ARMV8); 628 else 629 ATS.emitFPU(ARM::FK_NEON_FP_ARMV8); 630 } else if (STI.hasVFP4()) 631 ATS.emitFPU(ARM::FK_NEON_VFPV4); 632 else 633 ATS.emitFPU(ARM::FK_NEON); 634 // Emit Tag_Advanced_SIMD_arch for ARMv8 architecture 635 if (STI.hasV8Ops()) 636 ATS.emitAttribute(ARMBuildAttrs::Advanced_SIMD_arch, 637 STI.hasV8_1aOps() ? ARMBuildAttrs::AllowNeonARMv8_1a: 638 ARMBuildAttrs::AllowNeonARMv8); 639 } else { 640 if (STI.hasFPARMv8()) 641 // FPv5 and FP-ARMv8 have the same instructions, so are modeled as one 642 // FPU, but there are two different names for it depending on the CPU. 643 ATS.emitFPU(STI.hasD16() 644 ? (STI.isFPOnlySP() ? ARM::FK_FPV5_SP_D16 : ARM::FK_FPV5_D16) 645 : ARM::FK_FP_ARMV8); 646 else if (STI.hasVFP4()) 647 ATS.emitFPU(STI.hasD16() 648 ? (STI.isFPOnlySP() ? ARM::FK_FPV4_SP_D16 : ARM::FK_VFPV4_D16) 649 : ARM::FK_VFPV4); 650 else if (STI.hasVFP3()) 651 ATS.emitFPU(STI.hasD16() ? ARM::FK_VFPV3_D16 : ARM::FK_VFPV3); 652 else if (STI.hasVFP2()) 653 ATS.emitFPU(ARM::FK_VFPV2); 654 } 655 656 if (TM.getRelocationModel() == Reloc::PIC_) { 657 // PIC specific attributes. 658 ATS.emitAttribute(ARMBuildAttrs::ABI_PCS_RW_data, 659 ARMBuildAttrs::AddressRWPCRel); 660 ATS.emitAttribute(ARMBuildAttrs::ABI_PCS_RO_data, 661 ARMBuildAttrs::AddressROPCRel); 662 ATS.emitAttribute(ARMBuildAttrs::ABI_PCS_GOT_use, 663 ARMBuildAttrs::AddressGOT); 664 } else { 665 // Allow direct addressing of imported data for all other relocation models. 666 ATS.emitAttribute(ARMBuildAttrs::ABI_PCS_GOT_use, 667 ARMBuildAttrs::AddressDirect); 668 } 669 670 // Signal various FP modes. 671 if (!TM.Options.UnsafeFPMath) { 672 ATS.emitAttribute(ARMBuildAttrs::ABI_FP_denormal, 673 ARMBuildAttrs::IEEEDenormals); 674 ATS.emitAttribute(ARMBuildAttrs::ABI_FP_exceptions, ARMBuildAttrs::Allowed); 675 676 // If the user has permitted this code to choose the IEEE 754 677 // rounding at run-time, emit the rounding attribute. 678 if (TM.Options.HonorSignDependentRoundingFPMathOption) 679 ATS.emitAttribute(ARMBuildAttrs::ABI_FP_rounding, ARMBuildAttrs::Allowed); 680 } else { 681 if (!STI.hasVFP2()) { 682 // When the target doesn't have an FPU (by design or 683 // intention), the assumptions made on the software support 684 // mirror that of the equivalent hardware support *if it 685 // existed*. For v7 and better we indicate that denormals are 686 // flushed preserving sign, and for V6 we indicate that 687 // denormals are flushed to positive zero. 688 if (STI.hasV7Ops()) 689 ATS.emitAttribute(ARMBuildAttrs::ABI_FP_denormal, 690 ARMBuildAttrs::PreserveFPSign); 691 } else if (STI.hasVFP3()) { 692 // In VFPv4, VFPv4U, VFPv3, or VFPv3U, it is preserved. That is, 693 // the sign bit of the zero matches the sign bit of the input or 694 // result that is being flushed to zero. 695 ATS.emitAttribute(ARMBuildAttrs::ABI_FP_denormal, 696 ARMBuildAttrs::PreserveFPSign); 697 } 698 // For VFPv2 implementations it is implementation defined as 699 // to whether denormals are flushed to positive zero or to 700 // whatever the sign of zero is (ARM v7AR ARM 2.7.5). Historically 701 // LLVM has chosen to flush this to positive zero (most likely for 702 // GCC compatibility), so that's the chosen value here (the 703 // absence of its emission implies zero). 704 } 705 706 // TM.Options.NoInfsFPMath && TM.Options.NoNaNsFPMath is the 707 // equivalent of GCC's -ffinite-math-only flag. 708 if (TM.Options.NoInfsFPMath && TM.Options.NoNaNsFPMath) 709 ATS.emitAttribute(ARMBuildAttrs::ABI_FP_number_model, 710 ARMBuildAttrs::Allowed); 711 else 712 ATS.emitAttribute(ARMBuildAttrs::ABI_FP_number_model, 713 ARMBuildAttrs::AllowIEE754); 714 715 if (STI.allowsUnalignedMem()) 716 ATS.emitAttribute(ARMBuildAttrs::CPU_unaligned_access, 717 ARMBuildAttrs::Allowed); 718 else 719 ATS.emitAttribute(ARMBuildAttrs::CPU_unaligned_access, 720 ARMBuildAttrs::Not_Allowed); 721 722 // FIXME: add more flags to ARMBuildAttributes.h 723 // 8-bytes alignment stuff. 724 ATS.emitAttribute(ARMBuildAttrs::ABI_align_needed, 1); 725 ATS.emitAttribute(ARMBuildAttrs::ABI_align_preserved, 1); 726 727 // ABI_HardFP_use attribute to indicate single precision FP. 728 if (STI.isFPOnlySP()) 729 ATS.emitAttribute(ARMBuildAttrs::ABI_HardFP_use, 730 ARMBuildAttrs::HardFPSinglePrecision); 731 732 // Hard float. Use both S and D registers and conform to AAPCS-VFP. 733 if (STI.isAAPCS_ABI() && TM.Options.FloatABIType == FloatABI::Hard) 734 ATS.emitAttribute(ARMBuildAttrs::ABI_VFP_args, ARMBuildAttrs::HardFPAAPCS); 735 736 // FIXME: Should we signal R9 usage? 737 738 if (STI.hasFP16()) 739 ATS.emitAttribute(ARMBuildAttrs::FP_HP_extension, ARMBuildAttrs::AllowHPFP); 740 741 // FIXME: To support emitting this build attribute as GCC does, the 742 // -mfp16-format option and associated plumbing must be 743 // supported. For now the __fp16 type is exposed by default, so this 744 // attribute should be emitted with value 1. 745 ATS.emitAttribute(ARMBuildAttrs::ABI_FP_16bit_format, 746 ARMBuildAttrs::FP16FormatIEEE); 747 748 if (STI.hasMPExtension()) 749 ATS.emitAttribute(ARMBuildAttrs::MPextension_use, ARMBuildAttrs::AllowMP); 750 751 // Hardware divide in ARM mode is part of base arch, starting from ARMv8. 752 // If only Thumb hwdiv is present, it must also be in base arch (ARMv7-R/M). 753 // It is not possible to produce DisallowDIV: if hwdiv is present in the base 754 // arch, supplying -hwdiv downgrades the effective arch, via ClearImpliedBits. 755 // AllowDIVExt is only emitted if hwdiv isn't available in the base arch; 756 // otherwise, the default value (AllowDIVIfExists) applies. 757 if (STI.hasDivideInARMMode() && !STI.hasV8Ops()) 758 ATS.emitAttribute(ARMBuildAttrs::DIV_use, ARMBuildAttrs::AllowDIVExt); 759 760 if (MMI) { 761 if (const Module *SourceModule = MMI->getModule()) { 762 // ABI_PCS_wchar_t to indicate wchar_t width 763 // FIXME: There is no way to emit value 0 (wchar_t prohibited). 764 if (auto WCharWidthValue = mdconst::extract_or_null<ConstantInt>( 765 SourceModule->getModuleFlag("wchar_size"))) { 766 int WCharWidth = WCharWidthValue->getZExtValue(); 767 assert((WCharWidth == 2 || WCharWidth == 4) && 768 "wchar_t width must be 2 or 4 bytes"); 769 ATS.emitAttribute(ARMBuildAttrs::ABI_PCS_wchar_t, WCharWidth); 770 } 771 772 // ABI_enum_size to indicate enum width 773 // FIXME: There is no way to emit value 0 (enums prohibited) or value 3 774 // (all enums contain a value needing 32 bits to encode). 775 if (auto EnumWidthValue = mdconst::extract_or_null<ConstantInt>( 776 SourceModule->getModuleFlag("min_enum_size"))) { 777 int EnumWidth = EnumWidthValue->getZExtValue(); 778 assert((EnumWidth == 1 || EnumWidth == 4) && 779 "Minimum enum width must be 1 or 4 bytes"); 780 int EnumBuildAttr = EnumWidth == 1 ? 1 : 2; 781 ATS.emitAttribute(ARMBuildAttrs::ABI_enum_size, EnumBuildAttr); 782 } 783 } 784 } 785 786 // TODO: We currently only support either reserving the register, or treating 787 // it as another callee-saved register, but not as SB or a TLS pointer; It 788 // would instead be nicer to push this from the frontend as metadata, as we do 789 // for the wchar and enum size tags 790 if (STI.isR9Reserved()) 791 ATS.emitAttribute(ARMBuildAttrs::ABI_PCS_R9_use, ARMBuildAttrs::R9Reserved); 792 else 793 ATS.emitAttribute(ARMBuildAttrs::ABI_PCS_R9_use, ARMBuildAttrs::R9IsGPR); 794 795 if (STI.hasTrustZone() && STI.hasVirtualization()) 796 ATS.emitAttribute(ARMBuildAttrs::Virtualization_use, 797 ARMBuildAttrs::AllowTZVirtualization); 798 else if (STI.hasTrustZone()) 799 ATS.emitAttribute(ARMBuildAttrs::Virtualization_use, 800 ARMBuildAttrs::AllowTZ); 801 else if (STI.hasVirtualization()) 802 ATS.emitAttribute(ARMBuildAttrs::Virtualization_use, 803 ARMBuildAttrs::AllowVirtualization); 804 805 ATS.finishAttributeSection(); 806 } 807 808 //===----------------------------------------------------------------------===// 809 810 static MCSymbol *getPICLabel(const char *Prefix, unsigned FunctionNumber, 811 unsigned LabelId, MCContext &Ctx) { 812 813 MCSymbol *Label = Ctx.getOrCreateSymbol(Twine(Prefix) 814 + "PC" + Twine(FunctionNumber) + "_" + Twine(LabelId)); 815 return Label; 816 } 817 818 static MCSymbolRefExpr::VariantKind 819 getModifierVariantKind(ARMCP::ARMCPModifier Modifier) { 820 switch (Modifier) { 821 case ARMCP::no_modifier: return MCSymbolRefExpr::VK_None; 822 case ARMCP::TLSGD: return MCSymbolRefExpr::VK_TLSGD; 823 case ARMCP::TPOFF: return MCSymbolRefExpr::VK_TPOFF; 824 case ARMCP::GOTTPOFF: return MCSymbolRefExpr::VK_GOTTPOFF; 825 case ARMCP::GOT: return MCSymbolRefExpr::VK_GOT; 826 case ARMCP::GOTOFF: return MCSymbolRefExpr::VK_GOTOFF; 827 } 828 llvm_unreachable("Invalid ARMCPModifier!"); 829 } 830 831 MCSymbol *ARMAsmPrinter::GetARMGVSymbol(const GlobalValue *GV, 832 unsigned char TargetFlags) { 833 if (Subtarget->isTargetMachO()) { 834 bool IsIndirect = (TargetFlags & ARMII::MO_NONLAZY) && 835 Subtarget->GVIsIndirectSymbol(GV, TM.getRelocationModel()); 836 837 if (!IsIndirect) 838 return getSymbol(GV); 839 840 // FIXME: Remove this when Darwin transition to @GOT like syntax. 841 MCSymbol *MCSym = getSymbolWithGlobalValueBase(GV, "$non_lazy_ptr"); 842 MachineModuleInfoMachO &MMIMachO = 843 MMI->getObjFileInfo<MachineModuleInfoMachO>(); 844 MachineModuleInfoImpl::StubValueTy &StubSym = 845 GV->hasHiddenVisibility() ? MMIMachO.getHiddenGVStubEntry(MCSym) 846 : MMIMachO.getGVStubEntry(MCSym); 847 if (!StubSym.getPointer()) 848 StubSym = MachineModuleInfoImpl::StubValueTy(getSymbol(GV), 849 !GV->hasInternalLinkage()); 850 return MCSym; 851 } else if (Subtarget->isTargetCOFF()) { 852 assert(Subtarget->isTargetWindows() && 853 "Windows is the only supported COFF target"); 854 855 bool IsIndirect = (TargetFlags & ARMII::MO_DLLIMPORT); 856 if (!IsIndirect) 857 return getSymbol(GV); 858 859 SmallString<128> Name; 860 Name = "__imp_"; 861 getNameWithPrefix(Name, GV); 862 863 return OutContext.getOrCreateSymbol(Name); 864 } else if (Subtarget->isTargetELF()) { 865 return getSymbol(GV); 866 } 867 llvm_unreachable("unexpected target"); 868 } 869 870 void ARMAsmPrinter:: 871 EmitMachineConstantPoolValue(MachineConstantPoolValue *MCPV) { 872 const DataLayout *DL = TM.getDataLayout(); 873 int Size = TM.getDataLayout()->getTypeAllocSize(MCPV->getType()); 874 875 ARMConstantPoolValue *ACPV = static_cast<ARMConstantPoolValue*>(MCPV); 876 877 MCSymbol *MCSym; 878 if (ACPV->isLSDA()) { 879 MCSym = getCurExceptionSym(); 880 } else if (ACPV->isBlockAddress()) { 881 const BlockAddress *BA = 882 cast<ARMConstantPoolConstant>(ACPV)->getBlockAddress(); 883 MCSym = GetBlockAddressSymbol(BA); 884 } else if (ACPV->isGlobalValue()) { 885 const GlobalValue *GV = cast<ARMConstantPoolConstant>(ACPV)->getGV(); 886 887 // On Darwin, const-pool entries may get the "FOO$non_lazy_ptr" mangling, so 888 // flag the global as MO_NONLAZY. 889 unsigned char TF = Subtarget->isTargetMachO() ? ARMII::MO_NONLAZY : 0; 890 MCSym = GetARMGVSymbol(GV, TF); 891 } else if (ACPV->isMachineBasicBlock()) { 892 const MachineBasicBlock *MBB = cast<ARMConstantPoolMBB>(ACPV)->getMBB(); 893 MCSym = MBB->getSymbol(); 894 } else { 895 assert(ACPV->isExtSymbol() && "unrecognized constant pool value"); 896 const char *Sym = cast<ARMConstantPoolSymbol>(ACPV)->getSymbol(); 897 MCSym = GetExternalSymbolSymbol(Sym); 898 } 899 900 // Create an MCSymbol for the reference. 901 const MCExpr *Expr = 902 MCSymbolRefExpr::create(MCSym, getModifierVariantKind(ACPV->getModifier()), 903 OutContext); 904 905 if (ACPV->getPCAdjustment()) { 906 MCSymbol *PCLabel = getPICLabel(DL->getPrivateGlobalPrefix(), 907 getFunctionNumber(), 908 ACPV->getLabelId(), 909 OutContext); 910 const MCExpr *PCRelExpr = MCSymbolRefExpr::create(PCLabel, OutContext); 911 PCRelExpr = 912 MCBinaryExpr::createAdd(PCRelExpr, 913 MCConstantExpr::create(ACPV->getPCAdjustment(), 914 OutContext), 915 OutContext); 916 if (ACPV->mustAddCurrentAddress()) { 917 // We want "(<expr> - .)", but MC doesn't have a concept of the '.' 918 // label, so just emit a local label end reference that instead. 919 MCSymbol *DotSym = OutContext.createTempSymbol(); 920 OutStreamer->EmitLabel(DotSym); 921 const MCExpr *DotExpr = MCSymbolRefExpr::create(DotSym, OutContext); 922 PCRelExpr = MCBinaryExpr::createSub(PCRelExpr, DotExpr, OutContext); 923 } 924 Expr = MCBinaryExpr::createSub(Expr, PCRelExpr, OutContext); 925 } 926 OutStreamer->EmitValue(Expr, Size); 927 } 928 929 void ARMAsmPrinter::EmitJumpTableAddrs(const MachineInstr *MI) { 930 const MachineOperand &MO1 = MI->getOperand(1); 931 unsigned JTI = MO1.getIndex(); 932 933 // Make sure the Thumb jump table is 4-byte aligned. This will be a nop for 934 // ARM mode tables. 935 EmitAlignment(2); 936 937 // Emit a label for the jump table. 938 MCSymbol *JTISymbol = GetARMJTIPICJumpTableLabel(JTI); 939 OutStreamer->EmitLabel(JTISymbol); 940 941 // Mark the jump table as data-in-code. 942 OutStreamer->EmitDataRegion(MCDR_DataRegionJT32); 943 944 // Emit each entry of the table. 945 const MachineJumpTableInfo *MJTI = MF->getJumpTableInfo(); 946 const std::vector<MachineJumpTableEntry> &JT = MJTI->getJumpTables(); 947 const std::vector<MachineBasicBlock*> &JTBBs = JT[JTI].MBBs; 948 949 for (unsigned i = 0, e = JTBBs.size(); i != e; ++i) { 950 MachineBasicBlock *MBB = JTBBs[i]; 951 // Construct an MCExpr for the entry. We want a value of the form: 952 // (BasicBlockAddr - TableBeginAddr) 953 // 954 // For example, a table with entries jumping to basic blocks BB0 and BB1 955 // would look like: 956 // LJTI_0_0: 957 // .word (LBB0 - LJTI_0_0) 958 // .word (LBB1 - LJTI_0_0) 959 const MCExpr *Expr = MCSymbolRefExpr::create(MBB->getSymbol(), OutContext); 960 961 if (TM.getRelocationModel() == Reloc::PIC_) 962 Expr = MCBinaryExpr::createSub(Expr, MCSymbolRefExpr::create(JTISymbol, 963 OutContext), 964 OutContext); 965 // If we're generating a table of Thumb addresses in static relocation 966 // model, we need to add one to keep interworking correctly. 967 else if (AFI->isThumbFunction()) 968 Expr = MCBinaryExpr::createAdd(Expr, MCConstantExpr::create(1,OutContext), 969 OutContext); 970 OutStreamer->EmitValue(Expr, 4); 971 } 972 // Mark the end of jump table data-in-code region. 973 OutStreamer->EmitDataRegion(MCDR_DataRegionEnd); 974 } 975 976 void ARMAsmPrinter::EmitJumpTableInsts(const MachineInstr *MI) { 977 const MachineOperand &MO1 = MI->getOperand(1); 978 unsigned JTI = MO1.getIndex(); 979 980 MCSymbol *JTISymbol = GetARMJTIPICJumpTableLabel(JTI); 981 OutStreamer->EmitLabel(JTISymbol); 982 983 // Emit each entry of the table. 984 const MachineJumpTableInfo *MJTI = MF->getJumpTableInfo(); 985 const std::vector<MachineJumpTableEntry> &JT = MJTI->getJumpTables(); 986 const std::vector<MachineBasicBlock*> &JTBBs = JT[JTI].MBBs; 987 988 for (unsigned i = 0, e = JTBBs.size(); i != e; ++i) { 989 MachineBasicBlock *MBB = JTBBs[i]; 990 const MCExpr *MBBSymbolExpr = MCSymbolRefExpr::create(MBB->getSymbol(), 991 OutContext); 992 // If this isn't a TBB or TBH, the entries are direct branch instructions. 993 EmitToStreamer(*OutStreamer, MCInstBuilder(ARM::t2B) 994 .addExpr(MBBSymbolExpr) 995 .addImm(ARMCC::AL) 996 .addReg(0)); 997 } 998 } 999 1000 void ARMAsmPrinter::EmitJumpTableTBInst(const MachineInstr *MI, 1001 unsigned OffsetWidth) { 1002 assert((OffsetWidth == 1 || OffsetWidth == 2) && "invalid tbb/tbh width"); 1003 const MachineOperand &MO1 = MI->getOperand(1); 1004 unsigned JTI = MO1.getIndex(); 1005 1006 MCSymbol *JTISymbol = GetARMJTIPICJumpTableLabel(JTI); 1007 OutStreamer->EmitLabel(JTISymbol); 1008 1009 // Emit each entry of the table. 1010 const MachineJumpTableInfo *MJTI = MF->getJumpTableInfo(); 1011 const std::vector<MachineJumpTableEntry> &JT = MJTI->getJumpTables(); 1012 const std::vector<MachineBasicBlock*> &JTBBs = JT[JTI].MBBs; 1013 1014 // Mark the jump table as data-in-code. 1015 OutStreamer->EmitDataRegion(OffsetWidth == 1 ? MCDR_DataRegionJT8 1016 : MCDR_DataRegionJT16); 1017 1018 for (auto MBB : JTBBs) { 1019 const MCExpr *MBBSymbolExpr = MCSymbolRefExpr::create(MBB->getSymbol(), 1020 OutContext); 1021 // Otherwise it's an offset from the dispatch instruction. Construct an 1022 // MCExpr for the entry. We want a value of the form: 1023 // (BasicBlockAddr - TBBInstAddr + 4) / 2 1024 // 1025 // For example, a TBB table with entries jumping to basic blocks BB0 and BB1 1026 // would look like: 1027 // LJTI_0_0: 1028 // .byte (LBB0 - (LCPI0_0 + 4)) / 2 1029 // .byte (LBB1 - (LCPI0_0 + 4)) / 2 1030 // where LCPI0_0 is a label defined just before the TBB instruction using 1031 // this table. 1032 MCSymbol *TBInstPC = GetCPISymbol(MI->getOperand(0).getImm()); 1033 const MCExpr *Expr = MCBinaryExpr::createAdd( 1034 MCSymbolRefExpr::create(TBInstPC, OutContext), 1035 MCConstantExpr::create(4, OutContext), OutContext); 1036 Expr = MCBinaryExpr::createSub(MBBSymbolExpr, Expr, OutContext); 1037 Expr = MCBinaryExpr::createDiv(Expr, MCConstantExpr::create(2, OutContext), 1038 OutContext); 1039 OutStreamer->EmitValue(Expr, OffsetWidth); 1040 } 1041 // Mark the end of jump table data-in-code region. 32-bit offsets use 1042 // actual branch instructions here, so we don't mark those as a data-region 1043 // at all. 1044 OutStreamer->EmitDataRegion(MCDR_DataRegionEnd); 1045 1046 // Make sure the next instruction is 2-byte aligned. 1047 EmitAlignment(1); 1048 } 1049 1050 void ARMAsmPrinter::EmitUnwindingInstruction(const MachineInstr *MI) { 1051 assert(MI->getFlag(MachineInstr::FrameSetup) && 1052 "Only instruction which are involved into frame setup code are allowed"); 1053 1054 MCTargetStreamer &TS = *OutStreamer->getTargetStreamer(); 1055 ARMTargetStreamer &ATS = static_cast<ARMTargetStreamer &>(TS); 1056 const MachineFunction &MF = *MI->getParent()->getParent(); 1057 const TargetRegisterInfo *RegInfo = MF.getSubtarget().getRegisterInfo(); 1058 const ARMFunctionInfo &AFI = *MF.getInfo<ARMFunctionInfo>(); 1059 1060 unsigned FramePtr = RegInfo->getFrameRegister(MF); 1061 unsigned Opc = MI->getOpcode(); 1062 unsigned SrcReg, DstReg; 1063 1064 if (Opc == ARM::tPUSH || Opc == ARM::tLDRpci) { 1065 // Two special cases: 1066 // 1) tPUSH does not have src/dst regs. 1067 // 2) for Thumb1 code we sometimes materialize the constant via constpool 1068 // load. Yes, this is pretty fragile, but for now I don't see better 1069 // way... :( 1070 SrcReg = DstReg = ARM::SP; 1071 } else { 1072 SrcReg = MI->getOperand(1).getReg(); 1073 DstReg = MI->getOperand(0).getReg(); 1074 } 1075 1076 // Try to figure out the unwinding opcode out of src / dst regs. 1077 if (MI->mayStore()) { 1078 // Register saves. 1079 assert(DstReg == ARM::SP && 1080 "Only stack pointer as a destination reg is supported"); 1081 1082 SmallVector<unsigned, 4> RegList; 1083 // Skip src & dst reg, and pred ops. 1084 unsigned StartOp = 2 + 2; 1085 // Use all the operands. 1086 unsigned NumOffset = 0; 1087 1088 switch (Opc) { 1089 default: 1090 MI->dump(); 1091 llvm_unreachable("Unsupported opcode for unwinding information"); 1092 case ARM::tPUSH: 1093 // Special case here: no src & dst reg, but two extra imp ops. 1094 StartOp = 2; NumOffset = 2; 1095 case ARM::STMDB_UPD: 1096 case ARM::t2STMDB_UPD: 1097 case ARM::VSTMDDB_UPD: 1098 assert(SrcReg == ARM::SP && 1099 "Only stack pointer as a source reg is supported"); 1100 for (unsigned i = StartOp, NumOps = MI->getNumOperands() - NumOffset; 1101 i != NumOps; ++i) { 1102 const MachineOperand &MO = MI->getOperand(i); 1103 // Actually, there should never be any impdef stuff here. Skip it 1104 // temporary to workaround PR11902. 1105 if (MO.isImplicit()) 1106 continue; 1107 RegList.push_back(MO.getReg()); 1108 } 1109 break; 1110 case ARM::STR_PRE_IMM: 1111 case ARM::STR_PRE_REG: 1112 case ARM::t2STR_PRE: 1113 assert(MI->getOperand(2).getReg() == ARM::SP && 1114 "Only stack pointer as a source reg is supported"); 1115 RegList.push_back(SrcReg); 1116 break; 1117 } 1118 if (MAI->getExceptionHandlingType() == ExceptionHandling::ARM) 1119 ATS.emitRegSave(RegList, Opc == ARM::VSTMDDB_UPD); 1120 } else { 1121 // Changes of stack / frame pointer. 1122 if (SrcReg == ARM::SP) { 1123 int64_t Offset = 0; 1124 switch (Opc) { 1125 default: 1126 MI->dump(); 1127 llvm_unreachable("Unsupported opcode for unwinding information"); 1128 case ARM::MOVr: 1129 case ARM::tMOVr: 1130 Offset = 0; 1131 break; 1132 case ARM::ADDri: 1133 Offset = -MI->getOperand(2).getImm(); 1134 break; 1135 case ARM::SUBri: 1136 case ARM::t2SUBri: 1137 Offset = MI->getOperand(2).getImm(); 1138 break; 1139 case ARM::tSUBspi: 1140 Offset = MI->getOperand(2).getImm()*4; 1141 break; 1142 case ARM::tADDspi: 1143 case ARM::tADDrSPi: 1144 Offset = -MI->getOperand(2).getImm()*4; 1145 break; 1146 case ARM::tLDRpci: { 1147 // Grab the constpool index and check, whether it corresponds to 1148 // original or cloned constpool entry. 1149 unsigned CPI = MI->getOperand(1).getIndex(); 1150 const MachineConstantPool *MCP = MF.getConstantPool(); 1151 if (CPI >= MCP->getConstants().size()) 1152 CPI = AFI.getOriginalCPIdx(CPI); 1153 assert(CPI != -1U && "Invalid constpool index"); 1154 1155 // Derive the actual offset. 1156 const MachineConstantPoolEntry &CPE = MCP->getConstants()[CPI]; 1157 assert(!CPE.isMachineConstantPoolEntry() && "Invalid constpool entry"); 1158 // FIXME: Check for user, it should be "add" instruction! 1159 Offset = -cast<ConstantInt>(CPE.Val.ConstVal)->getSExtValue(); 1160 break; 1161 } 1162 } 1163 1164 if (MAI->getExceptionHandlingType() == ExceptionHandling::ARM) { 1165 if (DstReg == FramePtr && FramePtr != ARM::SP) 1166 // Set-up of the frame pointer. Positive values correspond to "add" 1167 // instruction. 1168 ATS.emitSetFP(FramePtr, ARM::SP, -Offset); 1169 else if (DstReg == ARM::SP) { 1170 // Change of SP by an offset. Positive values correspond to "sub" 1171 // instruction. 1172 ATS.emitPad(Offset); 1173 } else { 1174 // Move of SP to a register. Positive values correspond to an "add" 1175 // instruction. 1176 ATS.emitMovSP(DstReg, -Offset); 1177 } 1178 } 1179 } else if (DstReg == ARM::SP) { 1180 MI->dump(); 1181 llvm_unreachable("Unsupported opcode for unwinding information"); 1182 } 1183 else { 1184 MI->dump(); 1185 llvm_unreachable("Unsupported opcode for unwinding information"); 1186 } 1187 } 1188 } 1189 1190 // Simple pseudo-instructions have their lowering (with expansion to real 1191 // instructions) auto-generated. 1192 #include "ARMGenMCPseudoLowering.inc" 1193 1194 void ARMAsmPrinter::EmitInstruction(const MachineInstr *MI) { 1195 const DataLayout *DL = TM.getDataLayout(); 1196 1197 // If we just ended a constant pool, mark it as such. 1198 if (InConstantPool && MI->getOpcode() != ARM::CONSTPOOL_ENTRY) { 1199 OutStreamer->EmitDataRegion(MCDR_DataRegionEnd); 1200 InConstantPool = false; 1201 } 1202 1203 // Emit unwinding stuff for frame-related instructions 1204 if (Subtarget->isTargetEHABICompatible() && 1205 MI->getFlag(MachineInstr::FrameSetup)) 1206 EmitUnwindingInstruction(MI); 1207 1208 // Do any auto-generated pseudo lowerings. 1209 if (emitPseudoExpansionLowering(*OutStreamer, MI)) 1210 return; 1211 1212 assert(!convertAddSubFlagsOpcode(MI->getOpcode()) && 1213 "Pseudo flag setting opcode should be expanded early"); 1214 1215 // Check for manual lowerings. 1216 unsigned Opc = MI->getOpcode(); 1217 switch (Opc) { 1218 case ARM::t2MOVi32imm: llvm_unreachable("Should be lowered by thumb2it pass"); 1219 case ARM::DBG_VALUE: llvm_unreachable("Should be handled by generic printing"); 1220 case ARM::LEApcrel: 1221 case ARM::tLEApcrel: 1222 case ARM::t2LEApcrel: { 1223 // FIXME: Need to also handle globals and externals 1224 MCSymbol *CPISymbol = GetCPISymbol(MI->getOperand(1).getIndex()); 1225 EmitToStreamer(*OutStreamer, MCInstBuilder(MI->getOpcode() == 1226 ARM::t2LEApcrel ? ARM::t2ADR 1227 : (MI->getOpcode() == ARM::tLEApcrel ? ARM::tADR 1228 : ARM::ADR)) 1229 .addReg(MI->getOperand(0).getReg()) 1230 .addExpr(MCSymbolRefExpr::create(CPISymbol, OutContext)) 1231 // Add predicate operands. 1232 .addImm(MI->getOperand(2).getImm()) 1233 .addReg(MI->getOperand(3).getReg())); 1234 return; 1235 } 1236 case ARM::LEApcrelJT: 1237 case ARM::tLEApcrelJT: 1238 case ARM::t2LEApcrelJT: { 1239 MCSymbol *JTIPICSymbol = 1240 GetARMJTIPICJumpTableLabel(MI->getOperand(1).getIndex()); 1241 EmitToStreamer(*OutStreamer, MCInstBuilder(MI->getOpcode() == 1242 ARM::t2LEApcrelJT ? ARM::t2ADR 1243 : (MI->getOpcode() == ARM::tLEApcrelJT ? ARM::tADR 1244 : ARM::ADR)) 1245 .addReg(MI->getOperand(0).getReg()) 1246 .addExpr(MCSymbolRefExpr::create(JTIPICSymbol, OutContext)) 1247 // Add predicate operands. 1248 .addImm(MI->getOperand(2).getImm()) 1249 .addReg(MI->getOperand(3).getReg())); 1250 return; 1251 } 1252 // Darwin call instructions are just normal call instructions with different 1253 // clobber semantics (they clobber R9). 1254 case ARM::BX_CALL: { 1255 EmitToStreamer(*OutStreamer, MCInstBuilder(ARM::MOVr) 1256 .addReg(ARM::LR) 1257 .addReg(ARM::PC) 1258 // Add predicate operands. 1259 .addImm(ARMCC::AL) 1260 .addReg(0) 1261 // Add 's' bit operand (always reg0 for this) 1262 .addReg(0)); 1263 1264 EmitToStreamer(*OutStreamer, MCInstBuilder(ARM::BX) 1265 .addReg(MI->getOperand(0).getReg())); 1266 return; 1267 } 1268 case ARM::tBX_CALL: { 1269 if (Subtarget->hasV5TOps()) 1270 llvm_unreachable("Expected BLX to be selected for v5t+"); 1271 1272 // On ARM v4t, when doing a call from thumb mode, we need to ensure 1273 // that the saved lr has its LSB set correctly (the arch doesn't 1274 // have blx). 1275 // So here we generate a bl to a small jump pad that does bx rN. 1276 // The jump pads are emitted after the function body. 1277 1278 unsigned TReg = MI->getOperand(0).getReg(); 1279 MCSymbol *TRegSym = nullptr; 1280 for (unsigned i = 0, e = ThumbIndirectPads.size(); i < e; i++) { 1281 if (ThumbIndirectPads[i].first == TReg) { 1282 TRegSym = ThumbIndirectPads[i].second; 1283 break; 1284 } 1285 } 1286 1287 if (!TRegSym) { 1288 TRegSym = OutContext.createTempSymbol(); 1289 ThumbIndirectPads.push_back(std::make_pair(TReg, TRegSym)); 1290 } 1291 1292 // Create a link-saving branch to the Reg Indirect Jump Pad. 1293 EmitToStreamer(*OutStreamer, MCInstBuilder(ARM::tBL) 1294 // Predicate comes first here. 1295 .addImm(ARMCC::AL).addReg(0) 1296 .addExpr(MCSymbolRefExpr::create(TRegSym, OutContext))); 1297 return; 1298 } 1299 case ARM::BMOVPCRX_CALL: { 1300 EmitToStreamer(*OutStreamer, MCInstBuilder(ARM::MOVr) 1301 .addReg(ARM::LR) 1302 .addReg(ARM::PC) 1303 // Add predicate operands. 1304 .addImm(ARMCC::AL) 1305 .addReg(0) 1306 // Add 's' bit operand (always reg0 for this) 1307 .addReg(0)); 1308 1309 EmitToStreamer(*OutStreamer, MCInstBuilder(ARM::MOVr) 1310 .addReg(ARM::PC) 1311 .addReg(MI->getOperand(0).getReg()) 1312 // Add predicate operands. 1313 .addImm(ARMCC::AL) 1314 .addReg(0) 1315 // Add 's' bit operand (always reg0 for this) 1316 .addReg(0)); 1317 return; 1318 } 1319 case ARM::BMOVPCB_CALL: { 1320 EmitToStreamer(*OutStreamer, MCInstBuilder(ARM::MOVr) 1321 .addReg(ARM::LR) 1322 .addReg(ARM::PC) 1323 // Add predicate operands. 1324 .addImm(ARMCC::AL) 1325 .addReg(0) 1326 // Add 's' bit operand (always reg0 for this) 1327 .addReg(0)); 1328 1329 const MachineOperand &Op = MI->getOperand(0); 1330 const GlobalValue *GV = Op.getGlobal(); 1331 const unsigned TF = Op.getTargetFlags(); 1332 MCSymbol *GVSym = GetARMGVSymbol(GV, TF); 1333 const MCExpr *GVSymExpr = MCSymbolRefExpr::create(GVSym, OutContext); 1334 EmitToStreamer(*OutStreamer, MCInstBuilder(ARM::Bcc) 1335 .addExpr(GVSymExpr) 1336 // Add predicate operands. 1337 .addImm(ARMCC::AL) 1338 .addReg(0)); 1339 return; 1340 } 1341 case ARM::MOVi16_ga_pcrel: 1342 case ARM::t2MOVi16_ga_pcrel: { 1343 MCInst TmpInst; 1344 TmpInst.setOpcode(Opc == ARM::MOVi16_ga_pcrel? ARM::MOVi16 : ARM::t2MOVi16); 1345 TmpInst.addOperand(MCOperand::createReg(MI->getOperand(0).getReg())); 1346 1347 unsigned TF = MI->getOperand(1).getTargetFlags(); 1348 const GlobalValue *GV = MI->getOperand(1).getGlobal(); 1349 MCSymbol *GVSym = GetARMGVSymbol(GV, TF); 1350 const MCExpr *GVSymExpr = MCSymbolRefExpr::create(GVSym, OutContext); 1351 1352 MCSymbol *LabelSym = getPICLabel(DL->getPrivateGlobalPrefix(), 1353 getFunctionNumber(), 1354 MI->getOperand(2).getImm(), OutContext); 1355 const MCExpr *LabelSymExpr= MCSymbolRefExpr::create(LabelSym, OutContext); 1356 unsigned PCAdj = (Opc == ARM::MOVi16_ga_pcrel) ? 8 : 4; 1357 const MCExpr *PCRelExpr = 1358 ARMMCExpr::createLower16(MCBinaryExpr::createSub(GVSymExpr, 1359 MCBinaryExpr::createAdd(LabelSymExpr, 1360 MCConstantExpr::create(PCAdj, OutContext), 1361 OutContext), OutContext), OutContext); 1362 TmpInst.addOperand(MCOperand::createExpr(PCRelExpr)); 1363 1364 // Add predicate operands. 1365 TmpInst.addOperand(MCOperand::createImm(ARMCC::AL)); 1366 TmpInst.addOperand(MCOperand::createReg(0)); 1367 // Add 's' bit operand (always reg0 for this) 1368 TmpInst.addOperand(MCOperand::createReg(0)); 1369 EmitToStreamer(*OutStreamer, TmpInst); 1370 return; 1371 } 1372 case ARM::MOVTi16_ga_pcrel: 1373 case ARM::t2MOVTi16_ga_pcrel: { 1374 MCInst TmpInst; 1375 TmpInst.setOpcode(Opc == ARM::MOVTi16_ga_pcrel 1376 ? ARM::MOVTi16 : ARM::t2MOVTi16); 1377 TmpInst.addOperand(MCOperand::createReg(MI->getOperand(0).getReg())); 1378 TmpInst.addOperand(MCOperand::createReg(MI->getOperand(1).getReg())); 1379 1380 unsigned TF = MI->getOperand(2).getTargetFlags(); 1381 const GlobalValue *GV = MI->getOperand(2).getGlobal(); 1382 MCSymbol *GVSym = GetARMGVSymbol(GV, TF); 1383 const MCExpr *GVSymExpr = MCSymbolRefExpr::create(GVSym, OutContext); 1384 1385 MCSymbol *LabelSym = getPICLabel(DL->getPrivateGlobalPrefix(), 1386 getFunctionNumber(), 1387 MI->getOperand(3).getImm(), OutContext); 1388 const MCExpr *LabelSymExpr= MCSymbolRefExpr::create(LabelSym, OutContext); 1389 unsigned PCAdj = (Opc == ARM::MOVTi16_ga_pcrel) ? 8 : 4; 1390 const MCExpr *PCRelExpr = 1391 ARMMCExpr::createUpper16(MCBinaryExpr::createSub(GVSymExpr, 1392 MCBinaryExpr::createAdd(LabelSymExpr, 1393 MCConstantExpr::create(PCAdj, OutContext), 1394 OutContext), OutContext), OutContext); 1395 TmpInst.addOperand(MCOperand::createExpr(PCRelExpr)); 1396 // Add predicate operands. 1397 TmpInst.addOperand(MCOperand::createImm(ARMCC::AL)); 1398 TmpInst.addOperand(MCOperand::createReg(0)); 1399 // Add 's' bit operand (always reg0 for this) 1400 TmpInst.addOperand(MCOperand::createReg(0)); 1401 EmitToStreamer(*OutStreamer, TmpInst); 1402 return; 1403 } 1404 case ARM::tPICADD: { 1405 // This is a pseudo op for a label + instruction sequence, which looks like: 1406 // LPC0: 1407 // add r0, pc 1408 // This adds the address of LPC0 to r0. 1409 1410 // Emit the label. 1411 OutStreamer->EmitLabel(getPICLabel(DL->getPrivateGlobalPrefix(), 1412 getFunctionNumber(), 1413 MI->getOperand(2).getImm(), 1414 OutContext)); 1415 1416 // Form and emit the add. 1417 EmitToStreamer(*OutStreamer, MCInstBuilder(ARM::tADDhirr) 1418 .addReg(MI->getOperand(0).getReg()) 1419 .addReg(MI->getOperand(0).getReg()) 1420 .addReg(ARM::PC) 1421 // Add predicate operands. 1422 .addImm(ARMCC::AL) 1423 .addReg(0)); 1424 return; 1425 } 1426 case ARM::PICADD: { 1427 // This is a pseudo op for a label + instruction sequence, which looks like: 1428 // LPC0: 1429 // add r0, pc, r0 1430 // This adds the address of LPC0 to r0. 1431 1432 // Emit the label. 1433 OutStreamer->EmitLabel(getPICLabel(DL->getPrivateGlobalPrefix(), 1434 getFunctionNumber(), 1435 MI->getOperand(2).getImm(), 1436 OutContext)); 1437 1438 // Form and emit the add. 1439 EmitToStreamer(*OutStreamer, MCInstBuilder(ARM::ADDrr) 1440 .addReg(MI->getOperand(0).getReg()) 1441 .addReg(ARM::PC) 1442 .addReg(MI->getOperand(1).getReg()) 1443 // Add predicate operands. 1444 .addImm(MI->getOperand(3).getImm()) 1445 .addReg(MI->getOperand(4).getReg()) 1446 // Add 's' bit operand (always reg0 for this) 1447 .addReg(0)); 1448 return; 1449 } 1450 case ARM::PICSTR: 1451 case ARM::PICSTRB: 1452 case ARM::PICSTRH: 1453 case ARM::PICLDR: 1454 case ARM::PICLDRB: 1455 case ARM::PICLDRH: 1456 case ARM::PICLDRSB: 1457 case ARM::PICLDRSH: { 1458 // This is a pseudo op for a label + instruction sequence, which looks like: 1459 // LPC0: 1460 // OP r0, [pc, r0] 1461 // The LCP0 label is referenced by a constant pool entry in order to get 1462 // a PC-relative address at the ldr instruction. 1463 1464 // Emit the label. 1465 OutStreamer->EmitLabel(getPICLabel(DL->getPrivateGlobalPrefix(), 1466 getFunctionNumber(), 1467 MI->getOperand(2).getImm(), 1468 OutContext)); 1469 1470 // Form and emit the load 1471 unsigned Opcode; 1472 switch (MI->getOpcode()) { 1473 default: 1474 llvm_unreachable("Unexpected opcode!"); 1475 case ARM::PICSTR: Opcode = ARM::STRrs; break; 1476 case ARM::PICSTRB: Opcode = ARM::STRBrs; break; 1477 case ARM::PICSTRH: Opcode = ARM::STRH; break; 1478 case ARM::PICLDR: Opcode = ARM::LDRrs; break; 1479 case ARM::PICLDRB: Opcode = ARM::LDRBrs; break; 1480 case ARM::PICLDRH: Opcode = ARM::LDRH; break; 1481 case ARM::PICLDRSB: Opcode = ARM::LDRSB; break; 1482 case ARM::PICLDRSH: Opcode = ARM::LDRSH; break; 1483 } 1484 EmitToStreamer(*OutStreamer, MCInstBuilder(Opcode) 1485 .addReg(MI->getOperand(0).getReg()) 1486 .addReg(ARM::PC) 1487 .addReg(MI->getOperand(1).getReg()) 1488 .addImm(0) 1489 // Add predicate operands. 1490 .addImm(MI->getOperand(3).getImm()) 1491 .addReg(MI->getOperand(4).getReg())); 1492 1493 return; 1494 } 1495 case ARM::CONSTPOOL_ENTRY: { 1496 /// CONSTPOOL_ENTRY - This instruction represents a floating constant pool 1497 /// in the function. The first operand is the ID# for this instruction, the 1498 /// second is the index into the MachineConstantPool that this is, the third 1499 /// is the size in bytes of this constant pool entry. 1500 /// The required alignment is specified on the basic block holding this MI. 1501 unsigned LabelId = (unsigned)MI->getOperand(0).getImm(); 1502 unsigned CPIdx = (unsigned)MI->getOperand(1).getIndex(); 1503 1504 // If this is the first entry of the pool, mark it. 1505 if (!InConstantPool) { 1506 OutStreamer->EmitDataRegion(MCDR_DataRegion); 1507 InConstantPool = true; 1508 } 1509 1510 OutStreamer->EmitLabel(GetCPISymbol(LabelId)); 1511 1512 const MachineConstantPoolEntry &MCPE = MCP->getConstants()[CPIdx]; 1513 if (MCPE.isMachineConstantPoolEntry()) 1514 EmitMachineConstantPoolValue(MCPE.Val.MachineCPVal); 1515 else 1516 EmitGlobalConstant(MCPE.Val.ConstVal); 1517 return; 1518 } 1519 case ARM::JUMPTABLE_ADDRS: 1520 EmitJumpTableAddrs(MI); 1521 return; 1522 case ARM::JUMPTABLE_INSTS: 1523 EmitJumpTableInsts(MI); 1524 return; 1525 case ARM::JUMPTABLE_TBB: 1526 case ARM::JUMPTABLE_TBH: 1527 EmitJumpTableTBInst(MI, MI->getOpcode() == ARM::JUMPTABLE_TBB ? 1 : 2); 1528 return; 1529 case ARM::t2BR_JT: { 1530 // Lower and emit the instruction itself, then the jump table following it. 1531 EmitToStreamer(*OutStreamer, MCInstBuilder(ARM::tMOVr) 1532 .addReg(ARM::PC) 1533 .addReg(MI->getOperand(0).getReg()) 1534 // Add predicate operands. 1535 .addImm(ARMCC::AL) 1536 .addReg(0)); 1537 return; 1538 } 1539 case ARM::t2TBB_JT: 1540 case ARM::t2TBH_JT: { 1541 unsigned Opc = MI->getOpcode() == ARM::t2TBB_JT ? ARM::t2TBB : ARM::t2TBH; 1542 // Lower and emit the PC label, then the instruction itself. 1543 OutStreamer->EmitLabel(GetCPISymbol(MI->getOperand(3).getImm())); 1544 EmitToStreamer(*OutStreamer, MCInstBuilder(Opc) 1545 .addReg(MI->getOperand(0).getReg()) 1546 .addReg(MI->getOperand(1).getReg()) 1547 // Add predicate operands. 1548 .addImm(ARMCC::AL) 1549 .addReg(0)); 1550 return; 1551 } 1552 case ARM::tBR_JTr: 1553 case ARM::BR_JTr: { 1554 // Lower and emit the instruction itself, then the jump table following it. 1555 // mov pc, target 1556 MCInst TmpInst; 1557 unsigned Opc = MI->getOpcode() == ARM::BR_JTr ? 1558 ARM::MOVr : ARM::tMOVr; 1559 TmpInst.setOpcode(Opc); 1560 TmpInst.addOperand(MCOperand::createReg(ARM::PC)); 1561 TmpInst.addOperand(MCOperand::createReg(MI->getOperand(0).getReg())); 1562 // Add predicate operands. 1563 TmpInst.addOperand(MCOperand::createImm(ARMCC::AL)); 1564 TmpInst.addOperand(MCOperand::createReg(0)); 1565 // Add 's' bit operand (always reg0 for this) 1566 if (Opc == ARM::MOVr) 1567 TmpInst.addOperand(MCOperand::createReg(0)); 1568 EmitToStreamer(*OutStreamer, TmpInst); 1569 return; 1570 } 1571 case ARM::BR_JTm: { 1572 // Lower and emit the instruction itself, then the jump table following it. 1573 // ldr pc, target 1574 MCInst TmpInst; 1575 if (MI->getOperand(1).getReg() == 0) { 1576 // literal offset 1577 TmpInst.setOpcode(ARM::LDRi12); 1578 TmpInst.addOperand(MCOperand::createReg(ARM::PC)); 1579 TmpInst.addOperand(MCOperand::createReg(MI->getOperand(0).getReg())); 1580 TmpInst.addOperand(MCOperand::createImm(MI->getOperand(2).getImm())); 1581 } else { 1582 TmpInst.setOpcode(ARM::LDRrs); 1583 TmpInst.addOperand(MCOperand::createReg(ARM::PC)); 1584 TmpInst.addOperand(MCOperand::createReg(MI->getOperand(0).getReg())); 1585 TmpInst.addOperand(MCOperand::createReg(MI->getOperand(1).getReg())); 1586 TmpInst.addOperand(MCOperand::createImm(0)); 1587 } 1588 // Add predicate operands. 1589 TmpInst.addOperand(MCOperand::createImm(ARMCC::AL)); 1590 TmpInst.addOperand(MCOperand::createReg(0)); 1591 EmitToStreamer(*OutStreamer, TmpInst); 1592 return; 1593 } 1594 case ARM::BR_JTadd: { 1595 // Lower and emit the instruction itself, then the jump table following it. 1596 // add pc, target, idx 1597 EmitToStreamer(*OutStreamer, MCInstBuilder(ARM::ADDrr) 1598 .addReg(ARM::PC) 1599 .addReg(MI->getOperand(0).getReg()) 1600 .addReg(MI->getOperand(1).getReg()) 1601 // Add predicate operands. 1602 .addImm(ARMCC::AL) 1603 .addReg(0) 1604 // Add 's' bit operand (always reg0 for this) 1605 .addReg(0)); 1606 return; 1607 } 1608 case ARM::SPACE: 1609 OutStreamer->EmitZeros(MI->getOperand(1).getImm()); 1610 return; 1611 case ARM::TRAP: { 1612 // Non-Darwin binutils don't yet support the "trap" mnemonic. 1613 // FIXME: Remove this special case when they do. 1614 if (!Subtarget->isTargetMachO()) { 1615 //.long 0xe7ffdefe @ trap 1616 uint32_t Val = 0xe7ffdefeUL; 1617 OutStreamer->AddComment("trap"); 1618 OutStreamer->EmitIntValue(Val, 4); 1619 return; 1620 } 1621 break; 1622 } 1623 case ARM::TRAPNaCl: { 1624 //.long 0xe7fedef0 @ trap 1625 uint32_t Val = 0xe7fedef0UL; 1626 OutStreamer->AddComment("trap"); 1627 OutStreamer->EmitIntValue(Val, 4); 1628 return; 1629 } 1630 case ARM::tTRAP: { 1631 // Non-Darwin binutils don't yet support the "trap" mnemonic. 1632 // FIXME: Remove this special case when they do. 1633 if (!Subtarget->isTargetMachO()) { 1634 //.short 57086 @ trap 1635 uint16_t Val = 0xdefe; 1636 OutStreamer->AddComment("trap"); 1637 OutStreamer->EmitIntValue(Val, 2); 1638 return; 1639 } 1640 break; 1641 } 1642 case ARM::t2Int_eh_sjlj_setjmp: 1643 case ARM::t2Int_eh_sjlj_setjmp_nofp: 1644 case ARM::tInt_eh_sjlj_setjmp: { 1645 // Two incoming args: GPR:$src, GPR:$val 1646 // mov $val, pc 1647 // adds $val, #7 1648 // str $val, [$src, #4] 1649 // movs r0, #0 1650 // b 1f 1651 // movs r0, #1 1652 // 1: 1653 unsigned SrcReg = MI->getOperand(0).getReg(); 1654 unsigned ValReg = MI->getOperand(1).getReg(); 1655 MCSymbol *Label = GetARMSJLJEHLabel(); 1656 OutStreamer->AddComment("eh_setjmp begin"); 1657 EmitToStreamer(*OutStreamer, MCInstBuilder(ARM::tMOVr) 1658 .addReg(ValReg) 1659 .addReg(ARM::PC) 1660 // Predicate. 1661 .addImm(ARMCC::AL) 1662 .addReg(0)); 1663 1664 EmitToStreamer(*OutStreamer, MCInstBuilder(ARM::tADDi3) 1665 .addReg(ValReg) 1666 // 's' bit operand 1667 .addReg(ARM::CPSR) 1668 .addReg(ValReg) 1669 .addImm(7) 1670 // Predicate. 1671 .addImm(ARMCC::AL) 1672 .addReg(0)); 1673 1674 EmitToStreamer(*OutStreamer, MCInstBuilder(ARM::tSTRi) 1675 .addReg(ValReg) 1676 .addReg(SrcReg) 1677 // The offset immediate is #4. The operand value is scaled by 4 for the 1678 // tSTR instruction. 1679 .addImm(1) 1680 // Predicate. 1681 .addImm(ARMCC::AL) 1682 .addReg(0)); 1683 1684 EmitToStreamer(*OutStreamer, MCInstBuilder(ARM::tMOVi8) 1685 .addReg(ARM::R0) 1686 .addReg(ARM::CPSR) 1687 .addImm(0) 1688 // Predicate. 1689 .addImm(ARMCC::AL) 1690 .addReg(0)); 1691 1692 const MCExpr *SymbolExpr = MCSymbolRefExpr::create(Label, OutContext); 1693 EmitToStreamer(*OutStreamer, MCInstBuilder(ARM::tB) 1694 .addExpr(SymbolExpr) 1695 .addImm(ARMCC::AL) 1696 .addReg(0)); 1697 1698 OutStreamer->AddComment("eh_setjmp end"); 1699 EmitToStreamer(*OutStreamer, MCInstBuilder(ARM::tMOVi8) 1700 .addReg(ARM::R0) 1701 .addReg(ARM::CPSR) 1702 .addImm(1) 1703 // Predicate. 1704 .addImm(ARMCC::AL) 1705 .addReg(0)); 1706 1707 OutStreamer->EmitLabel(Label); 1708 return; 1709 } 1710 1711 case ARM::Int_eh_sjlj_setjmp_nofp: 1712 case ARM::Int_eh_sjlj_setjmp: { 1713 // Two incoming args: GPR:$src, GPR:$val 1714 // add $val, pc, #8 1715 // str $val, [$src, #+4] 1716 // mov r0, #0 1717 // add pc, pc, #0 1718 // mov r0, #1 1719 unsigned SrcReg = MI->getOperand(0).getReg(); 1720 unsigned ValReg = MI->getOperand(1).getReg(); 1721 1722 OutStreamer->AddComment("eh_setjmp begin"); 1723 EmitToStreamer(*OutStreamer, MCInstBuilder(ARM::ADDri) 1724 .addReg(ValReg) 1725 .addReg(ARM::PC) 1726 .addImm(8) 1727 // Predicate. 1728 .addImm(ARMCC::AL) 1729 .addReg(0) 1730 // 's' bit operand (always reg0 for this). 1731 .addReg(0)); 1732 1733 EmitToStreamer(*OutStreamer, MCInstBuilder(ARM::STRi12) 1734 .addReg(ValReg) 1735 .addReg(SrcReg) 1736 .addImm(4) 1737 // Predicate. 1738 .addImm(ARMCC::AL) 1739 .addReg(0)); 1740 1741 EmitToStreamer(*OutStreamer, MCInstBuilder(ARM::MOVi) 1742 .addReg(ARM::R0) 1743 .addImm(0) 1744 // Predicate. 1745 .addImm(ARMCC::AL) 1746 .addReg(0) 1747 // 's' bit operand (always reg0 for this). 1748 .addReg(0)); 1749 1750 EmitToStreamer(*OutStreamer, MCInstBuilder(ARM::ADDri) 1751 .addReg(ARM::PC) 1752 .addReg(ARM::PC) 1753 .addImm(0) 1754 // Predicate. 1755 .addImm(ARMCC::AL) 1756 .addReg(0) 1757 // 's' bit operand (always reg0 for this). 1758 .addReg(0)); 1759 1760 OutStreamer->AddComment("eh_setjmp end"); 1761 EmitToStreamer(*OutStreamer, MCInstBuilder(ARM::MOVi) 1762 .addReg(ARM::R0) 1763 .addImm(1) 1764 // Predicate. 1765 .addImm(ARMCC::AL) 1766 .addReg(0) 1767 // 's' bit operand (always reg0 for this). 1768 .addReg(0)); 1769 return; 1770 } 1771 case ARM::Int_eh_sjlj_longjmp: { 1772 // ldr sp, [$src, #8] 1773 // ldr $scratch, [$src, #4] 1774 // ldr r7, [$src] 1775 // bx $scratch 1776 unsigned SrcReg = MI->getOperand(0).getReg(); 1777 unsigned ScratchReg = MI->getOperand(1).getReg(); 1778 EmitToStreamer(*OutStreamer, MCInstBuilder(ARM::LDRi12) 1779 .addReg(ARM::SP) 1780 .addReg(SrcReg) 1781 .addImm(8) 1782 // Predicate. 1783 .addImm(ARMCC::AL) 1784 .addReg(0)); 1785 1786 EmitToStreamer(*OutStreamer, MCInstBuilder(ARM::LDRi12) 1787 .addReg(ScratchReg) 1788 .addReg(SrcReg) 1789 .addImm(4) 1790 // Predicate. 1791 .addImm(ARMCC::AL) 1792 .addReg(0)); 1793 1794 EmitToStreamer(*OutStreamer, MCInstBuilder(ARM::LDRi12) 1795 .addReg(ARM::R7) 1796 .addReg(SrcReg) 1797 .addImm(0) 1798 // Predicate. 1799 .addImm(ARMCC::AL) 1800 .addReg(0)); 1801 1802 EmitToStreamer(*OutStreamer, MCInstBuilder(ARM::BX) 1803 .addReg(ScratchReg) 1804 // Predicate. 1805 .addImm(ARMCC::AL) 1806 .addReg(0)); 1807 return; 1808 } 1809 case ARM::tInt_eh_sjlj_longjmp: { 1810 // ldr $scratch, [$src, #8] 1811 // mov sp, $scratch 1812 // ldr $scratch, [$src, #4] 1813 // ldr r7, [$src] 1814 // bx $scratch 1815 unsigned SrcReg = MI->getOperand(0).getReg(); 1816 unsigned ScratchReg = MI->getOperand(1).getReg(); 1817 EmitToStreamer(*OutStreamer, MCInstBuilder(ARM::tLDRi) 1818 .addReg(ScratchReg) 1819 .addReg(SrcReg) 1820 // The offset immediate is #8. The operand value is scaled by 4 for the 1821 // tLDR instruction. 1822 .addImm(2) 1823 // Predicate. 1824 .addImm(ARMCC::AL) 1825 .addReg(0)); 1826 1827 EmitToStreamer(*OutStreamer, MCInstBuilder(ARM::tMOVr) 1828 .addReg(ARM::SP) 1829 .addReg(ScratchReg) 1830 // Predicate. 1831 .addImm(ARMCC::AL) 1832 .addReg(0)); 1833 1834 EmitToStreamer(*OutStreamer, MCInstBuilder(ARM::tLDRi) 1835 .addReg(ScratchReg) 1836 .addReg(SrcReg) 1837 .addImm(1) 1838 // Predicate. 1839 .addImm(ARMCC::AL) 1840 .addReg(0)); 1841 1842 EmitToStreamer(*OutStreamer, MCInstBuilder(ARM::tLDRi) 1843 .addReg(ARM::R7) 1844 .addReg(SrcReg) 1845 .addImm(0) 1846 // Predicate. 1847 .addImm(ARMCC::AL) 1848 .addReg(0)); 1849 1850 EmitToStreamer(*OutStreamer, MCInstBuilder(ARM::tBX) 1851 .addReg(ScratchReg) 1852 // Predicate. 1853 .addImm(ARMCC::AL) 1854 .addReg(0)); 1855 return; 1856 } 1857 } 1858 1859 MCInst TmpInst; 1860 LowerARMMachineInstrToMCInst(MI, TmpInst, *this); 1861 1862 EmitToStreamer(*OutStreamer, TmpInst); 1863 } 1864 1865 //===----------------------------------------------------------------------===// 1866 // Target Registry Stuff 1867 //===----------------------------------------------------------------------===// 1868 1869 // Force static initialization. 1870 extern "C" void LLVMInitializeARMAsmPrinter() { 1871 RegisterAsmPrinter<ARMAsmPrinter> X(TheARMLETarget); 1872 RegisterAsmPrinter<ARMAsmPrinter> Y(TheARMBETarget); 1873 RegisterAsmPrinter<ARMAsmPrinter> A(TheThumbLETarget); 1874 RegisterAsmPrinter<ARMAsmPrinter> B(TheThumbBETarget); 1875 } 1876