1 //===-- MipsAsmPrinter.cpp - Mips LLVM Assembly Printer -------------------===// 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 MIPS assembly language. 12 // 13 //===----------------------------------------------------------------------===// 14 15 #include "InstPrinter/MipsInstPrinter.h" 16 #include "MCTargetDesc/MipsBaseInfo.h" 17 #include "MCTargetDesc/MipsMCNaCl.h" 18 #include "Mips.h" 19 #include "MipsAsmPrinter.h" 20 #include "MipsInstrInfo.h" 21 #include "MipsMCInstLower.h" 22 #include "MipsTargetMachine.h" 23 #include "MipsTargetStreamer.h" 24 #include "llvm/ADT/SmallString.h" 25 #include "llvm/ADT/StringExtras.h" 26 #include "llvm/ADT/Twine.h" 27 #include "llvm/CodeGen/MachineConstantPool.h" 28 #include "llvm/CodeGen/MachineFrameInfo.h" 29 #include "llvm/CodeGen/MachineFunctionPass.h" 30 #include "llvm/CodeGen/MachineInstr.h" 31 #include "llvm/CodeGen/MachineJumpTableInfo.h" 32 #include "llvm/CodeGen/MachineMemOperand.h" 33 #include "llvm/IR/BasicBlock.h" 34 #include "llvm/IR/DataLayout.h" 35 #include "llvm/IR/InlineAsm.h" 36 #include "llvm/IR/Instructions.h" 37 #include "llvm/IR/Mangler.h" 38 #include "llvm/MC/MCAsmInfo.h" 39 #include "llvm/MC/MCContext.h" 40 #include "llvm/MC/MCELFStreamer.h" 41 #include "llvm/MC/MCExpr.h" 42 #include "llvm/MC/MCInst.h" 43 #include "llvm/MC/MCSection.h" 44 #include "llvm/MC/MCSectionELF.h" 45 #include "llvm/MC/MCSymbol.h" 46 #include "llvm/Support/ELF.h" 47 #include "llvm/Support/TargetRegistry.h" 48 #include "llvm/Support/raw_ostream.h" 49 #include "llvm/Target/TargetLoweringObjectFile.h" 50 #include "llvm/Target/TargetOptions.h" 51 #include <string> 52 53 using namespace llvm; 54 55 #define DEBUG_TYPE "mips-asm-printer" 56 57 MipsTargetStreamer &MipsAsmPrinter::getTargetStreamer() const { 58 return static_cast<MipsTargetStreamer &>(*OutStreamer.getTargetStreamer()); 59 } 60 61 bool MipsAsmPrinter::runOnMachineFunction(MachineFunction &MF) { 62 Subtarget = &TM.getSubtarget<MipsSubtarget>(); 63 64 // Initialize TargetLoweringObjectFile. 65 const_cast<TargetLoweringObjectFile &>(getObjFileLowering()) 66 .Initialize(OutContext, TM); 67 68 MipsFI = MF.getInfo<MipsFunctionInfo>(); 69 if (Subtarget->inMips16Mode()) 70 for (std::map< 71 const char *, 72 const llvm::Mips16HardFloatInfo::FuncSignature *>::const_iterator 73 it = MipsFI->StubsNeeded.begin(); 74 it != MipsFI->StubsNeeded.end(); ++it) { 75 const char *Symbol = it->first; 76 const llvm::Mips16HardFloatInfo::FuncSignature *Signature = it->second; 77 if (StubsNeeded.find(Symbol) == StubsNeeded.end()) 78 StubsNeeded[Symbol] = Signature; 79 } 80 MCP = MF.getConstantPool(); 81 82 // In NaCl, all indirect jump targets must be aligned to bundle size. 83 if (Subtarget->isTargetNaCl()) 84 NaClAlignIndirectJumpTargets(MF); 85 86 AsmPrinter::runOnMachineFunction(MF); 87 return true; 88 } 89 90 bool MipsAsmPrinter::lowerOperand(const MachineOperand &MO, MCOperand &MCOp) { 91 MCOp = MCInstLowering.LowerOperand(MO); 92 return MCOp.isValid(); 93 } 94 95 #include "MipsGenMCPseudoLowering.inc" 96 97 // Lower PseudoReturn/PseudoIndirectBranch/PseudoIndirectBranch64 to JR, JR_MM, 98 // JALR, or JALR64 as appropriate for the target 99 void MipsAsmPrinter::emitPseudoIndirectBranch(MCStreamer &OutStreamer, 100 const MachineInstr *MI) { 101 bool HasLinkReg = false; 102 MCInst TmpInst0; 103 104 if (Subtarget->hasMips64r6()) { 105 // MIPS64r6 should use (JALR64 ZERO_64, $rs) 106 TmpInst0.setOpcode(Mips::JALR64); 107 HasLinkReg = true; 108 } else if (Subtarget->hasMips32r6()) { 109 // MIPS32r6 should use (JALR ZERO, $rs) 110 TmpInst0.setOpcode(Mips::JALR); 111 HasLinkReg = true; 112 } else if (Subtarget->inMicroMipsMode()) 113 // microMIPS should use (JR_MM $rs) 114 TmpInst0.setOpcode(Mips::JR_MM); 115 else { 116 // Everything else should use (JR $rs) 117 TmpInst0.setOpcode(Mips::JR); 118 } 119 120 MCOperand MCOp; 121 122 if (HasLinkReg) { 123 unsigned ZeroReg = Subtarget->isGP64bit() ? Mips::ZERO_64 : Mips::ZERO; 124 TmpInst0.addOperand(MCOperand::CreateReg(ZeroReg)); 125 } 126 127 lowerOperand(MI->getOperand(0), MCOp); 128 TmpInst0.addOperand(MCOp); 129 130 EmitToStreamer(OutStreamer, TmpInst0); 131 } 132 133 void MipsAsmPrinter::EmitInstruction(const MachineInstr *MI) { 134 MipsTargetStreamer &TS = getTargetStreamer(); 135 TS.forbidModuleDirective(); 136 137 if (MI->isDebugValue()) { 138 SmallString<128> Str; 139 raw_svector_ostream OS(Str); 140 141 PrintDebugValueComment(MI, OS); 142 return; 143 } 144 145 // If we just ended a constant pool, mark it as such. 146 if (InConstantPool && MI->getOpcode() != Mips::CONSTPOOL_ENTRY) { 147 OutStreamer.EmitDataRegion(MCDR_DataRegionEnd); 148 InConstantPool = false; 149 } 150 if (MI->getOpcode() == Mips::CONSTPOOL_ENTRY) { 151 // CONSTPOOL_ENTRY - This instruction represents a floating 152 //constant pool in the function. The first operand is the ID# 153 // for this instruction, the second is the index into the 154 // MachineConstantPool that this is, the third is the size in 155 // bytes of this constant pool entry. 156 // The required alignment is specified on the basic block holding this MI. 157 // 158 unsigned LabelId = (unsigned)MI->getOperand(0).getImm(); 159 unsigned CPIdx = (unsigned)MI->getOperand(1).getIndex(); 160 161 // If this is the first entry of the pool, mark it. 162 if (!InConstantPool) { 163 OutStreamer.EmitDataRegion(MCDR_DataRegion); 164 InConstantPool = true; 165 } 166 167 OutStreamer.EmitLabel(GetCPISymbol(LabelId)); 168 169 const MachineConstantPoolEntry &MCPE = MCP->getConstants()[CPIdx]; 170 if (MCPE.isMachineConstantPoolEntry()) 171 EmitMachineConstantPoolValue(MCPE.Val.MachineCPVal); 172 else 173 EmitGlobalConstant(MCPE.Val.ConstVal); 174 return; 175 } 176 177 178 MachineBasicBlock::const_instr_iterator I = MI; 179 MachineBasicBlock::const_instr_iterator E = MI->getParent()->instr_end(); 180 181 do { 182 // Do any auto-generated pseudo lowerings. 183 if (emitPseudoExpansionLowering(OutStreamer, &*I)) 184 continue; 185 186 if (I->getOpcode() == Mips::PseudoReturn || 187 I->getOpcode() == Mips::PseudoReturn64 || 188 I->getOpcode() == Mips::PseudoIndirectBranch || 189 I->getOpcode() == Mips::PseudoIndirectBranch64) { 190 emitPseudoIndirectBranch(OutStreamer, &*I); 191 continue; 192 } 193 194 // The inMips16Mode() test is not permanent. 195 // Some instructions are marked as pseudo right now which 196 // would make the test fail for the wrong reason but 197 // that will be fixed soon. We need this here because we are 198 // removing another test for this situation downstream in the 199 // callchain. 200 // 201 if (I->isPseudo() && !Subtarget->inMips16Mode() 202 && !isLongBranchPseudo(I->getOpcode())) 203 llvm_unreachable("Pseudo opcode found in EmitInstruction()"); 204 205 MCInst TmpInst0; 206 MCInstLowering.Lower(I, TmpInst0); 207 EmitToStreamer(OutStreamer, TmpInst0); 208 } while ((++I != E) && I->isInsideBundle()); // Delay slot check 209 } 210 211 //===----------------------------------------------------------------------===// 212 // 213 // Mips Asm Directives 214 // 215 // -- Frame directive "frame Stackpointer, Stacksize, RARegister" 216 // Describe the stack frame. 217 // 218 // -- Mask directives "(f)mask bitmask, offset" 219 // Tells the assembler which registers are saved and where. 220 // bitmask - contain a little endian bitset indicating which registers are 221 // saved on function prologue (e.g. with a 0x80000000 mask, the 222 // assembler knows the register 31 (RA) is saved at prologue. 223 // offset - the position before stack pointer subtraction indicating where 224 // the first saved register on prologue is located. (e.g. with a 225 // 226 // Consider the following function prologue: 227 // 228 // .frame $fp,48,$ra 229 // .mask 0xc0000000,-8 230 // addiu $sp, $sp, -48 231 // sw $ra, 40($sp) 232 // sw $fp, 36($sp) 233 // 234 // With a 0xc0000000 mask, the assembler knows the register 31 (RA) and 235 // 30 (FP) are saved at prologue. As the save order on prologue is from 236 // left to right, RA is saved first. A -8 offset means that after the 237 // stack pointer subtration, the first register in the mask (RA) will be 238 // saved at address 48-8=40. 239 // 240 //===----------------------------------------------------------------------===// 241 242 //===----------------------------------------------------------------------===// 243 // Mask directives 244 //===----------------------------------------------------------------------===// 245 246 // Create a bitmask with all callee saved registers for CPU or Floating Point 247 // registers. For CPU registers consider RA, GP and FP for saving if necessary. 248 void MipsAsmPrinter::printSavedRegsBitmask() { 249 // CPU and FPU Saved Registers Bitmasks 250 unsigned CPUBitmask = 0, FPUBitmask = 0; 251 int CPUTopSavedRegOff, FPUTopSavedRegOff; 252 253 // Set the CPU and FPU Bitmasks 254 const MachineFrameInfo *MFI = MF->getFrameInfo(); 255 const std::vector<CalleeSavedInfo> &CSI = MFI->getCalleeSavedInfo(); 256 // size of stack area to which FP callee-saved regs are saved. 257 unsigned CPURegSize = Mips::GPR32RegClass.getSize(); 258 unsigned FGR32RegSize = Mips::FGR32RegClass.getSize(); 259 unsigned AFGR64RegSize = Mips::AFGR64RegClass.getSize(); 260 bool HasAFGR64Reg = false; 261 unsigned CSFPRegsSize = 0; 262 unsigned i, e = CSI.size(); 263 264 // Set FPU Bitmask. 265 for (i = 0; i != e; ++i) { 266 unsigned Reg = CSI[i].getReg(); 267 if (Mips::GPR32RegClass.contains(Reg)) 268 break; 269 270 unsigned RegNum = 271 TM.getSubtargetImpl()->getRegisterInfo()->getEncodingValue(Reg); 272 if (Mips::AFGR64RegClass.contains(Reg)) { 273 FPUBitmask |= (3 << RegNum); 274 CSFPRegsSize += AFGR64RegSize; 275 HasAFGR64Reg = true; 276 continue; 277 } 278 279 FPUBitmask |= (1 << RegNum); 280 CSFPRegsSize += FGR32RegSize; 281 } 282 283 // Set CPU Bitmask. 284 for (; i != e; ++i) { 285 unsigned Reg = CSI[i].getReg(); 286 unsigned RegNum = 287 TM.getSubtargetImpl()->getRegisterInfo()->getEncodingValue(Reg); 288 CPUBitmask |= (1 << RegNum); 289 } 290 291 // FP Regs are saved right below where the virtual frame pointer points to. 292 FPUTopSavedRegOff = FPUBitmask ? 293 (HasAFGR64Reg ? -AFGR64RegSize : -FGR32RegSize) : 0; 294 295 // CPU Regs are saved below FP Regs. 296 CPUTopSavedRegOff = CPUBitmask ? -CSFPRegsSize - CPURegSize : 0; 297 298 MipsTargetStreamer &TS = getTargetStreamer(); 299 // Print CPUBitmask 300 TS.emitMask(CPUBitmask, CPUTopSavedRegOff); 301 302 // Print FPUBitmask 303 TS.emitFMask(FPUBitmask, FPUTopSavedRegOff); 304 } 305 306 //===----------------------------------------------------------------------===// 307 // Frame and Set directives 308 //===----------------------------------------------------------------------===// 309 310 /// Frame Directive 311 void MipsAsmPrinter::emitFrameDirective() { 312 const TargetRegisterInfo &RI = *TM.getSubtargetImpl()->getRegisterInfo(); 313 314 unsigned stackReg = RI.getFrameRegister(*MF); 315 unsigned returnReg = RI.getRARegister(); 316 unsigned stackSize = MF->getFrameInfo()->getStackSize(); 317 318 getTargetStreamer().emitFrame(stackReg, stackSize, returnReg); 319 } 320 321 /// Emit Set directives. 322 const char *MipsAsmPrinter::getCurrentABIString() const { 323 switch (static_cast<MipsTargetMachine &>(TM).getABI().GetEnumValue()) { 324 case MipsABIInfo::ABI::O32: return "abi32"; 325 case MipsABIInfo::ABI::N32: return "abiN32"; 326 case MipsABIInfo::ABI::N64: return "abi64"; 327 case MipsABIInfo::ABI::EABI: return "eabi32"; // TODO: handle eabi64 328 default: llvm_unreachable("Unknown Mips ABI"); 329 } 330 } 331 332 void MipsAsmPrinter::EmitFunctionEntryLabel() { 333 MipsTargetStreamer &TS = getTargetStreamer(); 334 335 // NaCl sandboxing requires that indirect call instructions are masked. 336 // This means that function entry points should be bundle-aligned. 337 if (Subtarget->isTargetNaCl()) 338 EmitAlignment(std::max(MF->getAlignment(), MIPS_NACL_BUNDLE_ALIGN)); 339 340 if (Subtarget->inMicroMipsMode()) 341 TS.emitDirectiveSetMicroMips(); 342 else 343 TS.emitDirectiveSetNoMicroMips(); 344 345 if (Subtarget->inMips16Mode()) 346 TS.emitDirectiveSetMips16(); 347 else 348 TS.emitDirectiveSetNoMips16(); 349 350 TS.emitDirectiveEnt(*CurrentFnSym); 351 OutStreamer.EmitLabel(CurrentFnSym); 352 } 353 354 /// EmitFunctionBodyStart - Targets can override this to emit stuff before 355 /// the first basic block in the function. 356 void MipsAsmPrinter::EmitFunctionBodyStart() { 357 MipsTargetStreamer &TS = getTargetStreamer(); 358 359 MCInstLowering.Initialize(&MF->getContext()); 360 361 bool IsNakedFunction = 362 MF->getFunction()-> 363 getAttributes().hasAttribute(AttributeSet::FunctionIndex, 364 Attribute::Naked); 365 if (!IsNakedFunction) 366 emitFrameDirective(); 367 368 if (!IsNakedFunction) 369 printSavedRegsBitmask(); 370 371 if (!Subtarget->inMips16Mode()) { 372 TS.emitDirectiveSetNoReorder(); 373 TS.emitDirectiveSetNoMacro(); 374 TS.emitDirectiveSetNoAt(); 375 } 376 } 377 378 /// EmitFunctionBodyEnd - Targets can override this to emit stuff after 379 /// the last basic block in the function. 380 void MipsAsmPrinter::EmitFunctionBodyEnd() { 381 MipsTargetStreamer &TS = getTargetStreamer(); 382 383 // There are instruction for this macros, but they must 384 // always be at the function end, and we can't emit and 385 // break with BB logic. 386 if (!Subtarget->inMips16Mode()) { 387 TS.emitDirectiveSetAt(); 388 TS.emitDirectiveSetMacro(); 389 TS.emitDirectiveSetReorder(); 390 } 391 TS.emitDirectiveEnd(CurrentFnSym->getName()); 392 // Make sure to terminate any constant pools that were at the end 393 // of the function. 394 if (!InConstantPool) 395 return; 396 InConstantPool = false; 397 OutStreamer.EmitDataRegion(MCDR_DataRegionEnd); 398 } 399 400 /// isBlockOnlyReachableByFallthough - Return true if the basic block has 401 /// exactly one predecessor and the control transfer mechanism between 402 /// the predecessor and this block is a fall-through. 403 bool MipsAsmPrinter::isBlockOnlyReachableByFallthrough(const MachineBasicBlock* 404 MBB) const { 405 // The predecessor has to be immediately before this block. 406 const MachineBasicBlock *Pred = *MBB->pred_begin(); 407 408 // If the predecessor is a switch statement, assume a jump table 409 // implementation, so it is not a fall through. 410 if (const BasicBlock *bb = Pred->getBasicBlock()) 411 if (isa<SwitchInst>(bb->getTerminator())) 412 return false; 413 414 // If this is a landing pad, it isn't a fall through. If it has no preds, 415 // then nothing falls through to it. 416 if (MBB->isLandingPad() || MBB->pred_empty()) 417 return false; 418 419 // If there isn't exactly one predecessor, it can't be a fall through. 420 MachineBasicBlock::const_pred_iterator PI = MBB->pred_begin(), PI2 = PI; 421 ++PI2; 422 423 if (PI2 != MBB->pred_end()) 424 return false; 425 426 // The predecessor has to be immediately before this block. 427 if (!Pred->isLayoutSuccessor(MBB)) 428 return false; 429 430 // If the block is completely empty, then it definitely does fall through. 431 if (Pred->empty()) 432 return true; 433 434 // Otherwise, check the last instruction. 435 // Check if the last terminator is an unconditional branch. 436 MachineBasicBlock::const_iterator I = Pred->end(); 437 while (I != Pred->begin() && !(--I)->isTerminator()) ; 438 439 return !I->isBarrier(); 440 } 441 442 // Print out an operand for an inline asm expression. 443 bool MipsAsmPrinter::PrintAsmOperand(const MachineInstr *MI, unsigned OpNum, 444 unsigned AsmVariant,const char *ExtraCode, 445 raw_ostream &O) { 446 // Does this asm operand have a single letter operand modifier? 447 if (ExtraCode && ExtraCode[0]) { 448 if (ExtraCode[1] != 0) return true; // Unknown modifier. 449 450 const MachineOperand &MO = MI->getOperand(OpNum); 451 switch (ExtraCode[0]) { 452 default: 453 // See if this is a generic print operand 454 return AsmPrinter::PrintAsmOperand(MI,OpNum,AsmVariant,ExtraCode,O); 455 case 'X': // hex const int 456 if ((MO.getType()) != MachineOperand::MO_Immediate) 457 return true; 458 O << "0x" << StringRef(utohexstr(MO.getImm())).lower(); 459 return false; 460 case 'x': // hex const int (low 16 bits) 461 if ((MO.getType()) != MachineOperand::MO_Immediate) 462 return true; 463 O << "0x" << StringRef(utohexstr(MO.getImm() & 0xffff)).lower(); 464 return false; 465 case 'd': // decimal const int 466 if ((MO.getType()) != MachineOperand::MO_Immediate) 467 return true; 468 O << MO.getImm(); 469 return false; 470 case 'm': // decimal const int minus 1 471 if ((MO.getType()) != MachineOperand::MO_Immediate) 472 return true; 473 O << MO.getImm() - 1; 474 return false; 475 case 'z': { 476 // $0 if zero, regular printing otherwise 477 if (MO.getType() == MachineOperand::MO_Immediate && MO.getImm() == 0) { 478 O << "$0"; 479 return false; 480 } 481 // If not, call printOperand as normal. 482 break; 483 } 484 case 'D': // Second part of a double word register operand 485 case 'L': // Low order register of a double word register operand 486 case 'M': // High order register of a double word register operand 487 { 488 if (OpNum == 0) 489 return true; 490 const MachineOperand &FlagsOP = MI->getOperand(OpNum - 1); 491 if (!FlagsOP.isImm()) 492 return true; 493 unsigned Flags = FlagsOP.getImm(); 494 unsigned NumVals = InlineAsm::getNumOperandRegisters(Flags); 495 // Number of registers represented by this operand. We are looking 496 // for 2 for 32 bit mode and 1 for 64 bit mode. 497 if (NumVals != 2) { 498 if (Subtarget->isGP64bit() && NumVals == 1 && MO.isReg()) { 499 unsigned Reg = MO.getReg(); 500 O << '$' << MipsInstPrinter::getRegisterName(Reg); 501 return false; 502 } 503 return true; 504 } 505 506 unsigned RegOp = OpNum; 507 if (!Subtarget->isGP64bit()){ 508 // Endianess reverses which register holds the high or low value 509 // between M and L. 510 switch(ExtraCode[0]) { 511 case 'M': 512 RegOp = (Subtarget->isLittle()) ? OpNum + 1 : OpNum; 513 break; 514 case 'L': 515 RegOp = (Subtarget->isLittle()) ? OpNum : OpNum + 1; 516 break; 517 case 'D': // Always the second part 518 RegOp = OpNum + 1; 519 } 520 if (RegOp >= MI->getNumOperands()) 521 return true; 522 const MachineOperand &MO = MI->getOperand(RegOp); 523 if (!MO.isReg()) 524 return true; 525 unsigned Reg = MO.getReg(); 526 O << '$' << MipsInstPrinter::getRegisterName(Reg); 527 return false; 528 } 529 } 530 case 'w': 531 // Print MSA registers for the 'f' constraint 532 // In LLVM, the 'w' modifier doesn't need to do anything. 533 // We can just call printOperand as normal. 534 break; 535 } 536 } 537 538 printOperand(MI, OpNum, O); 539 return false; 540 } 541 542 bool MipsAsmPrinter::PrintAsmMemoryOperand(const MachineInstr *MI, 543 unsigned OpNum, unsigned AsmVariant, 544 const char *ExtraCode, 545 raw_ostream &O) { 546 int Offset = 0; 547 // Currently we are expecting either no ExtraCode or 'D' 548 if (ExtraCode) { 549 if (ExtraCode[0] == 'D') 550 Offset = 4; 551 else 552 return true; // Unknown modifier. 553 } 554 555 const MachineOperand &MO = MI->getOperand(OpNum); 556 assert(MO.isReg() && "unexpected inline asm memory operand"); 557 O << Offset << "($" << MipsInstPrinter::getRegisterName(MO.getReg()) << ")"; 558 559 return false; 560 } 561 562 void MipsAsmPrinter::printOperand(const MachineInstr *MI, int opNum, 563 raw_ostream &O) { 564 const DataLayout *DL = TM.getDataLayout(); 565 const MachineOperand &MO = MI->getOperand(opNum); 566 bool closeP = false; 567 568 if (MO.getTargetFlags()) 569 closeP = true; 570 571 switch(MO.getTargetFlags()) { 572 case MipsII::MO_GPREL: O << "%gp_rel("; break; 573 case MipsII::MO_GOT_CALL: O << "%call16("; break; 574 case MipsII::MO_GOT: O << "%got("; break; 575 case MipsII::MO_ABS_HI: O << "%hi("; break; 576 case MipsII::MO_ABS_LO: O << "%lo("; break; 577 case MipsII::MO_TLSGD: O << "%tlsgd("; break; 578 case MipsII::MO_GOTTPREL: O << "%gottprel("; break; 579 case MipsII::MO_TPREL_HI: O << "%tprel_hi("; break; 580 case MipsII::MO_TPREL_LO: O << "%tprel_lo("; break; 581 case MipsII::MO_GPOFF_HI: O << "%hi(%neg(%gp_rel("; break; 582 case MipsII::MO_GPOFF_LO: O << "%lo(%neg(%gp_rel("; break; 583 case MipsII::MO_GOT_DISP: O << "%got_disp("; break; 584 case MipsII::MO_GOT_PAGE: O << "%got_page("; break; 585 case MipsII::MO_GOT_OFST: O << "%got_ofst("; break; 586 } 587 588 switch (MO.getType()) { 589 case MachineOperand::MO_Register: 590 O << '$' 591 << StringRef(MipsInstPrinter::getRegisterName(MO.getReg())).lower(); 592 break; 593 594 case MachineOperand::MO_Immediate: 595 O << MO.getImm(); 596 break; 597 598 case MachineOperand::MO_MachineBasicBlock: 599 O << *MO.getMBB()->getSymbol(); 600 return; 601 602 case MachineOperand::MO_GlobalAddress: 603 O << *getSymbol(MO.getGlobal()); 604 break; 605 606 case MachineOperand::MO_BlockAddress: { 607 MCSymbol *BA = GetBlockAddressSymbol(MO.getBlockAddress()); 608 O << BA->getName(); 609 break; 610 } 611 612 case MachineOperand::MO_ConstantPoolIndex: 613 O << DL->getPrivateGlobalPrefix() << "CPI" 614 << getFunctionNumber() << "_" << MO.getIndex(); 615 if (MO.getOffset()) 616 O << "+" << MO.getOffset(); 617 break; 618 619 default: 620 llvm_unreachable("<unknown operand type>"); 621 } 622 623 if (closeP) O << ")"; 624 } 625 626 void MipsAsmPrinter::printUnsignedImm(const MachineInstr *MI, int opNum, 627 raw_ostream &O) { 628 const MachineOperand &MO = MI->getOperand(opNum); 629 if (MO.isImm()) 630 O << (unsigned short int)MO.getImm(); 631 else 632 printOperand(MI, opNum, O); 633 } 634 635 void MipsAsmPrinter::printUnsignedImm8(const MachineInstr *MI, int opNum, 636 raw_ostream &O) { 637 const MachineOperand &MO = MI->getOperand(opNum); 638 if (MO.isImm()) 639 O << (unsigned short int)(unsigned char)MO.getImm(); 640 else 641 printOperand(MI, opNum, O); 642 } 643 644 void MipsAsmPrinter:: 645 printMemOperand(const MachineInstr *MI, int opNum, raw_ostream &O) { 646 // Load/Store memory operands -- imm($reg) 647 // If PIC target the target is loaded as the 648 // pattern lw $25,%call16($28) 649 650 // opNum can be invalid if instruction has reglist as operand. 651 // MemOperand is always last operand of instruction (base + offset). 652 switch (MI->getOpcode()) { 653 default: 654 break; 655 case Mips::SWM32_MM: 656 case Mips::LWM32_MM: 657 opNum = MI->getNumOperands() - 2; 658 break; 659 } 660 661 printOperand(MI, opNum+1, O); 662 O << "("; 663 printOperand(MI, opNum, O); 664 O << ")"; 665 } 666 667 void MipsAsmPrinter:: 668 printMemOperandEA(const MachineInstr *MI, int opNum, raw_ostream &O) { 669 // when using stack locations for not load/store instructions 670 // print the same way as all normal 3 operand instructions. 671 printOperand(MI, opNum, O); 672 O << ", "; 673 printOperand(MI, opNum+1, O); 674 return; 675 } 676 677 void MipsAsmPrinter:: 678 printFCCOperand(const MachineInstr *MI, int opNum, raw_ostream &O, 679 const char *Modifier) { 680 const MachineOperand &MO = MI->getOperand(opNum); 681 O << Mips::MipsFCCToString((Mips::CondCode)MO.getImm()); 682 } 683 684 void MipsAsmPrinter:: 685 printRegisterList(const MachineInstr *MI, int opNum, raw_ostream &O) { 686 for (int i = opNum, e = MI->getNumOperands(); i != e; ++i) { 687 if (i != opNum) O << ", "; 688 printOperand(MI, i, O); 689 } 690 } 691 692 void MipsAsmPrinter::EmitStartOfAsmFile(Module &M) { 693 bool IsABICalls = Subtarget->isABICalls(); 694 const MipsABIInfo &ABI = static_cast<const MipsTargetMachine &>(TM).getABI(); 695 if (IsABICalls) { 696 getTargetStreamer().emitDirectiveAbiCalls(); 697 Reloc::Model RM = TM.getRelocationModel(); 698 // FIXME: This condition should be a lot more complicated that it is here. 699 // Ideally it should test for properties of the ABI and not the ABI 700 // itself. 701 // For the moment, I'm only correcting enough to make MIPS-IV work. 702 if (RM == Reloc::Static && !ABI.IsN64()) 703 getTargetStreamer().emitDirectiveOptionPic0(); 704 } 705 706 // Tell the assembler which ABI we are using 707 std::string SectionName = std::string(".mdebug.") + getCurrentABIString(); 708 OutStreamer.SwitchSection( 709 OutContext.getELFSection(SectionName, ELF::SHT_PROGBITS, 0)); 710 711 // NaN: At the moment we only support: 712 // 1. .nan legacy (default) 713 // 2. .nan 2008 714 Subtarget->isNaN2008() ? getTargetStreamer().emitDirectiveNaN2008() 715 : getTargetStreamer().emitDirectiveNaNLegacy(); 716 717 // TODO: handle O64 ABI 718 719 if (ABI.IsEABI()) { 720 if (Subtarget->isGP32bit()) 721 OutStreamer.SwitchSection(OutContext.getELFSection(".gcc_compiled_long32", 722 ELF::SHT_PROGBITS, 0)); 723 else 724 OutStreamer.SwitchSection(OutContext.getELFSection(".gcc_compiled_long64", 725 ELF::SHT_PROGBITS, 0)); 726 } 727 728 getTargetStreamer().updateABIInfo(*Subtarget); 729 730 // We should always emit a '.module fp=...' but binutils 2.24 does not accept 731 // it. We therefore emit it when it contradicts the ABI defaults (-mfpxx or 732 // -mfp64) and omit it otherwise. 733 if (ABI.IsO32() && (Subtarget->isABI_FPXX() || Subtarget->isFP64bit())) 734 getTargetStreamer().emitDirectiveModuleFP(); 735 736 // We should always emit a '.module [no]oddspreg' but binutils 2.24 does not 737 // accept it. We therefore emit it when it contradicts the default or an 738 // option has changed the default (i.e. FPXX) and omit it otherwise. 739 if (ABI.IsO32() && (!Subtarget->useOddSPReg() || Subtarget->isABI_FPXX())) 740 getTargetStreamer().emitDirectiveModuleOddSPReg(Subtarget->useOddSPReg(), 741 ABI.IsO32()); 742 } 743 744 void MipsAsmPrinter::emitInlineAsmStart( 745 const MCSubtargetInfo &StartInfo) const { 746 MipsTargetStreamer &TS = getTargetStreamer(); 747 748 // GCC's choice of assembler options for inline assembly code ('at', 'macro' 749 // and 'reorder') is different from LLVM's choice for generated code ('noat', 750 // 'nomacro' and 'noreorder'). 751 // In order to maintain compatibility with inline assembly code which depends 752 // on GCC's assembler options being used, we have to switch to those options 753 // for the duration of the inline assembly block and then switch back. 754 TS.emitDirectiveSetPush(); 755 TS.emitDirectiveSetAt(); 756 TS.emitDirectiveSetMacro(); 757 TS.emitDirectiveSetReorder(); 758 OutStreamer.AddBlankLine(); 759 } 760 761 void MipsAsmPrinter::emitInlineAsmEnd(const MCSubtargetInfo &StartInfo, 762 const MCSubtargetInfo *EndInfo) const { 763 OutStreamer.AddBlankLine(); 764 getTargetStreamer().emitDirectiveSetPop(); 765 } 766 767 void MipsAsmPrinter::EmitJal(MCSymbol *Symbol) { 768 MCInst I; 769 I.setOpcode(Mips::JAL); 770 I.addOperand( 771 MCOperand::CreateExpr(MCSymbolRefExpr::Create(Symbol, OutContext))); 772 OutStreamer.EmitInstruction(I, getSubtargetInfo()); 773 } 774 775 void MipsAsmPrinter::EmitInstrReg(unsigned Opcode, unsigned Reg) { 776 MCInst I; 777 I.setOpcode(Opcode); 778 I.addOperand(MCOperand::CreateReg(Reg)); 779 OutStreamer.EmitInstruction(I, getSubtargetInfo()); 780 } 781 782 void MipsAsmPrinter::EmitInstrRegReg(unsigned Opcode, unsigned Reg1, 783 unsigned Reg2) { 784 MCInst I; 785 // 786 // Because of the current td files for Mips32, the operands for MTC1 787 // appear backwards from their normal assembly order. It's not a trivial 788 // change to fix this in the td file so we adjust for it here. 789 // 790 if (Opcode == Mips::MTC1) { 791 unsigned Temp = Reg1; 792 Reg1 = Reg2; 793 Reg2 = Temp; 794 } 795 I.setOpcode(Opcode); 796 I.addOperand(MCOperand::CreateReg(Reg1)); 797 I.addOperand(MCOperand::CreateReg(Reg2)); 798 OutStreamer.EmitInstruction(I, getSubtargetInfo()); 799 } 800 801 void MipsAsmPrinter::EmitInstrRegRegReg(unsigned Opcode, unsigned Reg1, 802 unsigned Reg2, unsigned Reg3) { 803 MCInst I; 804 I.setOpcode(Opcode); 805 I.addOperand(MCOperand::CreateReg(Reg1)); 806 I.addOperand(MCOperand::CreateReg(Reg2)); 807 I.addOperand(MCOperand::CreateReg(Reg3)); 808 OutStreamer.EmitInstruction(I, getSubtargetInfo()); 809 } 810 811 void MipsAsmPrinter::EmitMovFPIntPair(unsigned MovOpc, unsigned Reg1, 812 unsigned Reg2, unsigned FPReg1, 813 unsigned FPReg2, bool LE) { 814 if (!LE) { 815 unsigned temp = Reg1; 816 Reg1 = Reg2; 817 Reg2 = temp; 818 } 819 EmitInstrRegReg(MovOpc, Reg1, FPReg1); 820 EmitInstrRegReg(MovOpc, Reg2, FPReg2); 821 } 822 823 void MipsAsmPrinter::EmitSwapFPIntParams(Mips16HardFloatInfo::FPParamVariant PV, 824 bool LE, bool ToFP) { 825 using namespace Mips16HardFloatInfo; 826 unsigned MovOpc = ToFP ? Mips::MTC1 : Mips::MFC1; 827 switch (PV) { 828 case FSig: 829 EmitInstrRegReg(MovOpc, Mips::A0, Mips::F12); 830 break; 831 case FFSig: 832 EmitMovFPIntPair(MovOpc, Mips::A0, Mips::A1, Mips::F12, Mips::F14, LE); 833 break; 834 case FDSig: 835 EmitInstrRegReg(MovOpc, Mips::A0, Mips::F12); 836 EmitMovFPIntPair(MovOpc, Mips::A2, Mips::A3, Mips::F14, Mips::F15, LE); 837 break; 838 case DSig: 839 EmitMovFPIntPair(MovOpc, Mips::A0, Mips::A1, Mips::F12, Mips::F13, LE); 840 break; 841 case DDSig: 842 EmitMovFPIntPair(MovOpc, Mips::A0, Mips::A1, Mips::F12, Mips::F13, LE); 843 EmitMovFPIntPair(MovOpc, Mips::A2, Mips::A3, Mips::F14, Mips::F15, LE); 844 break; 845 case DFSig: 846 EmitMovFPIntPair(MovOpc, Mips::A0, Mips::A1, Mips::F12, Mips::F13, LE); 847 EmitInstrRegReg(MovOpc, Mips::A2, Mips::F14); 848 break; 849 case NoSig: 850 return; 851 } 852 } 853 854 void 855 MipsAsmPrinter::EmitSwapFPIntRetval(Mips16HardFloatInfo::FPReturnVariant RV, 856 bool LE) { 857 using namespace Mips16HardFloatInfo; 858 unsigned MovOpc = Mips::MFC1; 859 switch (RV) { 860 case FRet: 861 EmitInstrRegReg(MovOpc, Mips::V0, Mips::F0); 862 break; 863 case DRet: 864 EmitMovFPIntPair(MovOpc, Mips::V0, Mips::V1, Mips::F0, Mips::F1, LE); 865 break; 866 case CFRet: 867 EmitMovFPIntPair(MovOpc, Mips::V0, Mips::V1, Mips::F0, Mips::F1, LE); 868 break; 869 case CDRet: 870 EmitMovFPIntPair(MovOpc, Mips::V0, Mips::V1, Mips::F0, Mips::F1, LE); 871 EmitMovFPIntPair(MovOpc, Mips::A0, Mips::A1, Mips::F2, Mips::F3, LE); 872 break; 873 case NoFPRet: 874 break; 875 } 876 } 877 878 void MipsAsmPrinter::EmitFPCallStub( 879 const char *Symbol, const Mips16HardFloatInfo::FuncSignature *Signature) { 880 MCSymbol *MSymbol = OutContext.GetOrCreateSymbol(StringRef(Symbol)); 881 using namespace Mips16HardFloatInfo; 882 bool LE = Subtarget->isLittle(); 883 // 884 // .global xxxx 885 // 886 OutStreamer.EmitSymbolAttribute(MSymbol, MCSA_Global); 887 const char *RetType; 888 // 889 // make the comment field identifying the return and parameter 890 // types of the floating point stub 891 // # Stub function to call rettype xxxx (params) 892 // 893 switch (Signature->RetSig) { 894 case FRet: 895 RetType = "float"; 896 break; 897 case DRet: 898 RetType = "double"; 899 break; 900 case CFRet: 901 RetType = "complex"; 902 break; 903 case CDRet: 904 RetType = "double complex"; 905 break; 906 case NoFPRet: 907 RetType = ""; 908 break; 909 } 910 const char *Parms; 911 switch (Signature->ParamSig) { 912 case FSig: 913 Parms = "float"; 914 break; 915 case FFSig: 916 Parms = "float, float"; 917 break; 918 case FDSig: 919 Parms = "float, double"; 920 break; 921 case DSig: 922 Parms = "double"; 923 break; 924 case DDSig: 925 Parms = "double, double"; 926 break; 927 case DFSig: 928 Parms = "double, float"; 929 break; 930 case NoSig: 931 Parms = ""; 932 break; 933 } 934 OutStreamer.AddComment("\t# Stub function to call " + Twine(RetType) + " " + 935 Twine(Symbol) + " (" + Twine(Parms) + ")"); 936 // 937 // probably not necessary but we save and restore the current section state 938 // 939 OutStreamer.PushSection(); 940 // 941 // .section mips16.call.fpxxxx,"ax",@progbits 942 // 943 const MCSectionELF *M = OutContext.getELFSection( 944 ".mips16.call.fp." + std::string(Symbol), ELF::SHT_PROGBITS, 945 ELF::SHF_ALLOC | ELF::SHF_EXECINSTR); 946 OutStreamer.SwitchSection(M, nullptr); 947 // 948 // .align 2 949 // 950 OutStreamer.EmitValueToAlignment(4); 951 MipsTargetStreamer &TS = getTargetStreamer(); 952 // 953 // .set nomips16 954 // .set nomicromips 955 // 956 TS.emitDirectiveSetNoMips16(); 957 TS.emitDirectiveSetNoMicroMips(); 958 // 959 // .ent __call_stub_fp_xxxx 960 // .type __call_stub_fp_xxxx,@function 961 // __call_stub_fp_xxxx: 962 // 963 std::string x = "__call_stub_fp_" + std::string(Symbol); 964 MCSymbol *Stub = OutContext.GetOrCreateSymbol(StringRef(x)); 965 TS.emitDirectiveEnt(*Stub); 966 MCSymbol *MType = 967 OutContext.GetOrCreateSymbol("__call_stub_fp_" + Twine(Symbol)); 968 OutStreamer.EmitSymbolAttribute(MType, MCSA_ELF_TypeFunction); 969 OutStreamer.EmitLabel(Stub); 970 // 971 // we just handle non pic for now. these function will not be 972 // called otherwise. when the full stub generation is moved here 973 // we need to deal with pic. 974 // 975 if (TM.getRelocationModel() == Reloc::PIC_) 976 llvm_unreachable("should not be here if we are compiling pic"); 977 TS.emitDirectiveSetReorder(); 978 // 979 // We need to add a MipsMCExpr class to MCTargetDesc to fully implement 980 // stubs without raw text but this current patch is for compiler generated 981 // functions and they all return some value. 982 // The calling sequence for non pic is different in that case and we need 983 // to implement %lo and %hi in order to handle the case of no return value 984 // See the corresponding method in Mips16HardFloat for details. 985 // 986 // mov the return address to S2. 987 // we have no stack space to store it and we are about to make another call. 988 // We need to make sure that the enclosing function knows to save S2 989 // This should have already been handled. 990 // 991 // Mov $18, $31 992 993 EmitInstrRegRegReg(Mips::ADDu, Mips::S2, Mips::RA, Mips::ZERO); 994 995 EmitSwapFPIntParams(Signature->ParamSig, LE, true); 996 997 // Jal xxxx 998 // 999 EmitJal(MSymbol); 1000 1001 // fix return values 1002 EmitSwapFPIntRetval(Signature->RetSig, LE); 1003 // 1004 // do the return 1005 // if (Signature->RetSig == NoFPRet) 1006 // llvm_unreachable("should not be any stubs here with no return value"); 1007 // else 1008 EmitInstrReg(Mips::JR, Mips::S2); 1009 1010 MCSymbol *Tmp = OutContext.CreateTempSymbol(); 1011 OutStreamer.EmitLabel(Tmp); 1012 const MCSymbolRefExpr *E = MCSymbolRefExpr::Create(Stub, OutContext); 1013 const MCSymbolRefExpr *T = MCSymbolRefExpr::Create(Tmp, OutContext); 1014 const MCExpr *T_min_E = MCBinaryExpr::CreateSub(T, E, OutContext); 1015 OutStreamer.EmitELFSize(Stub, T_min_E); 1016 TS.emitDirectiveEnd(x); 1017 OutStreamer.PopSection(); 1018 } 1019 1020 void MipsAsmPrinter::EmitEndOfAsmFile(Module &M) { 1021 // Emit needed stubs 1022 // 1023 for (std::map< 1024 const char *, 1025 const llvm::Mips16HardFloatInfo::FuncSignature *>::const_iterator 1026 it = StubsNeeded.begin(); 1027 it != StubsNeeded.end(); ++it) { 1028 const char *Symbol = it->first; 1029 const llvm::Mips16HardFloatInfo::FuncSignature *Signature = it->second; 1030 EmitFPCallStub(Symbol, Signature); 1031 } 1032 // return to the text section 1033 OutStreamer.SwitchSection(OutContext.getObjectFileInfo()->getTextSection()); 1034 } 1035 1036 void MipsAsmPrinter::PrintDebugValueComment(const MachineInstr *MI, 1037 raw_ostream &OS) { 1038 // TODO: implement 1039 } 1040 1041 // Align all targets of indirect branches on bundle size. Used only if target 1042 // is NaCl. 1043 void MipsAsmPrinter::NaClAlignIndirectJumpTargets(MachineFunction &MF) { 1044 // Align all blocks that are jumped to through jump table. 1045 if (MachineJumpTableInfo *JtInfo = MF.getJumpTableInfo()) { 1046 const std::vector<MachineJumpTableEntry> &JT = JtInfo->getJumpTables(); 1047 for (unsigned I = 0; I < JT.size(); ++I) { 1048 const std::vector<MachineBasicBlock*> &MBBs = JT[I].MBBs; 1049 1050 for (unsigned J = 0; J < MBBs.size(); ++J) 1051 MBBs[J]->setAlignment(MIPS_NACL_BUNDLE_ALIGN); 1052 } 1053 } 1054 1055 // If basic block address is taken, block can be target of indirect branch. 1056 for (MachineFunction::iterator MBB = MF.begin(), E = MF.end(); 1057 MBB != E; ++MBB) { 1058 if (MBB->hasAddressTaken()) 1059 MBB->setAlignment(MIPS_NACL_BUNDLE_ALIGN); 1060 } 1061 } 1062 1063 bool MipsAsmPrinter::isLongBranchPseudo(int Opcode) const { 1064 return (Opcode == Mips::LONG_BRANCH_LUi 1065 || Opcode == Mips::LONG_BRANCH_ADDiu 1066 || Opcode == Mips::LONG_BRANCH_DADDiu); 1067 } 1068 1069 // Force static initialization. 1070 extern "C" void LLVMInitializeMipsAsmPrinter() { 1071 RegisterAsmPrinter<MipsAsmPrinter> X(TheMipsTarget); 1072 RegisterAsmPrinter<MipsAsmPrinter> Y(TheMipselTarget); 1073 RegisterAsmPrinter<MipsAsmPrinter> A(TheMips64Target); 1074 RegisterAsmPrinter<MipsAsmPrinter> B(TheMips64elTarget); 1075 } 1076