1 //===-- X86FloatingPoint.cpp - Floating point Reg -> Stack converter ------===// 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 defines the pass which converts floating point instructions from 11 // virtual registers into register stack instructions. This pass uses live 12 // variable information to indicate where the FPn registers are used and their 13 // lifetimes. 14 // 15 // This pass is hampered by the lack of decent CFG manipulation routines for 16 // machine code. In particular, this wants to be able to split critical edges 17 // as necessary, traverse the machine basic block CFG in depth-first order, and 18 // allow there to be multiple machine basic blocks for each LLVM basicblock 19 // (needed for critical edge splitting). 20 // 21 // In particular, this pass currently barfs on critical edges. Because of this, 22 // it requires the instruction selector to insert FP_REG_KILL instructions on 23 // the exits of any basic block that has critical edges going from it, or which 24 // branch to a critical basic block. 25 // 26 // FIXME: this is not implemented yet. The stackifier pass only works on local 27 // basic blocks. 28 // 29 //===----------------------------------------------------------------------===// 30 31 #define DEBUG_TYPE "x86-codegen" 32 #include "X86.h" 33 #include "X86InstrInfo.h" 34 #include "llvm/ADT/DepthFirstIterator.h" 35 #include "llvm/ADT/SmallPtrSet.h" 36 #include "llvm/ADT/SmallVector.h" 37 #include "llvm/ADT/Statistic.h" 38 #include "llvm/ADT/STLExtras.h" 39 #include "llvm/CodeGen/MachineFunctionPass.h" 40 #include "llvm/CodeGen/MachineInstrBuilder.h" 41 #include "llvm/CodeGen/MachineRegisterInfo.h" 42 #include "llvm/CodeGen/Passes.h" 43 #include "llvm/Support/Compiler.h" 44 #include "llvm/Support/Debug.h" 45 #include "llvm/Support/ErrorHandling.h" 46 #include "llvm/Support/raw_ostream.h" 47 #include "llvm/Target/TargetInstrInfo.h" 48 #include "llvm/Target/TargetMachine.h" 49 #include <algorithm> 50 using namespace llvm; 51 52 STATISTIC(NumFXCH, "Number of fxch instructions inserted"); 53 STATISTIC(NumFP , "Number of floating point instructions"); 54 55 namespace { 56 struct VISIBILITY_HIDDEN FPS : public MachineFunctionPass { 57 static char ID; 58 FPS() : MachineFunctionPass(&ID) {} 59 60 virtual void getAnalysisUsage(AnalysisUsage &AU) const { 61 AU.setPreservesCFG(); 62 AU.addPreservedID(MachineLoopInfoID); 63 AU.addPreservedID(MachineDominatorsID); 64 MachineFunctionPass::getAnalysisUsage(AU); 65 } 66 67 virtual bool runOnMachineFunction(MachineFunction &MF); 68 69 virtual const char *getPassName() const { return "X86 FP Stackifier"; } 70 71 private: 72 const TargetInstrInfo *TII; // Machine instruction info. 73 MachineBasicBlock *MBB; // Current basic block 74 unsigned Stack[8]; // FP<n> Registers in each stack slot... 75 unsigned RegMap[8]; // Track which stack slot contains each register 76 unsigned StackTop; // The current top of the FP stack. 77 78 void dumpStack() const { 79 cerr << "Stack contents:"; 80 for (unsigned i = 0; i != StackTop; ++i) { 81 cerr << " FP" << Stack[i]; 82 assert(RegMap[Stack[i]] == i && "Stack[] doesn't match RegMap[]!"); 83 } 84 cerr << "\n"; 85 } 86 private: 87 /// isStackEmpty - Return true if the FP stack is empty. 88 bool isStackEmpty() const { 89 return StackTop == 0; 90 } 91 92 // getSlot - Return the stack slot number a particular register number is 93 // in. 94 unsigned getSlot(unsigned RegNo) const { 95 assert(RegNo < 8 && "Regno out of range!"); 96 return RegMap[RegNo]; 97 } 98 99 // getStackEntry - Return the X86::FP<n> register in register ST(i). 100 unsigned getStackEntry(unsigned STi) const { 101 assert(STi < StackTop && "Access past stack top!"); 102 return Stack[StackTop-1-STi]; 103 } 104 105 // getSTReg - Return the X86::ST(i) register which contains the specified 106 // FP<RegNo> register. 107 unsigned getSTReg(unsigned RegNo) const { 108 return StackTop - 1 - getSlot(RegNo) + llvm::X86::ST0; 109 } 110 111 // pushReg - Push the specified FP<n> register onto the stack. 112 void pushReg(unsigned Reg) { 113 assert(Reg < 8 && "Register number out of range!"); 114 assert(StackTop < 8 && "Stack overflow!"); 115 Stack[StackTop] = Reg; 116 RegMap[Reg] = StackTop++; 117 } 118 119 bool isAtTop(unsigned RegNo) const { return getSlot(RegNo) == StackTop-1; } 120 void moveToTop(unsigned RegNo, MachineBasicBlock::iterator I) { 121 MachineInstr *MI = I; 122 DebugLoc dl = MI->getDebugLoc(); 123 if (isAtTop(RegNo)) return; 124 125 unsigned STReg = getSTReg(RegNo); 126 unsigned RegOnTop = getStackEntry(0); 127 128 // Swap the slots the regs are in. 129 std::swap(RegMap[RegNo], RegMap[RegOnTop]); 130 131 // Swap stack slot contents. 132 assert(RegMap[RegOnTop] < StackTop); 133 std::swap(Stack[RegMap[RegOnTop]], Stack[StackTop-1]); 134 135 // Emit an fxch to update the runtime processors version of the state. 136 BuildMI(*MBB, I, dl, TII->get(X86::XCH_F)).addReg(STReg); 137 NumFXCH++; 138 } 139 140 void duplicateToTop(unsigned RegNo, unsigned AsReg, MachineInstr *I) { 141 DebugLoc dl = I->getDebugLoc(); 142 unsigned STReg = getSTReg(RegNo); 143 pushReg(AsReg); // New register on top of stack 144 145 BuildMI(*MBB, I, dl, TII->get(X86::LD_Frr)).addReg(STReg); 146 } 147 148 // popStackAfter - Pop the current value off of the top of the FP stack 149 // after the specified instruction. 150 void popStackAfter(MachineBasicBlock::iterator &I); 151 152 // freeStackSlotAfter - Free the specified register from the register stack, 153 // so that it is no longer in a register. If the register is currently at 154 // the top of the stack, we just pop the current instruction, otherwise we 155 // store the current top-of-stack into the specified slot, then pop the top 156 // of stack. 157 void freeStackSlotAfter(MachineBasicBlock::iterator &I, unsigned Reg); 158 159 bool processBasicBlock(MachineFunction &MF, MachineBasicBlock &MBB); 160 161 void handleZeroArgFP(MachineBasicBlock::iterator &I); 162 void handleOneArgFP(MachineBasicBlock::iterator &I); 163 void handleOneArgFPRW(MachineBasicBlock::iterator &I); 164 void handleTwoArgFP(MachineBasicBlock::iterator &I); 165 void handleCompareFP(MachineBasicBlock::iterator &I); 166 void handleCondMovFP(MachineBasicBlock::iterator &I); 167 void handleSpecialFP(MachineBasicBlock::iterator &I); 168 }; 169 char FPS::ID = 0; 170 } 171 172 FunctionPass *llvm::createX86FloatingPointStackifierPass() { return new FPS(); } 173 174 /// getFPReg - Return the X86::FPx register number for the specified operand. 175 /// For example, this returns 3 for X86::FP3. 176 static unsigned getFPReg(const MachineOperand &MO) { 177 assert(MO.isReg() && "Expected an FP register!"); 178 unsigned Reg = MO.getReg(); 179 assert(Reg >= X86::FP0 && Reg <= X86::FP6 && "Expected FP register!"); 180 return Reg - X86::FP0; 181 } 182 183 184 /// runOnMachineFunction - Loop over all of the basic blocks, transforming FP 185 /// register references into FP stack references. 186 /// 187 bool FPS::runOnMachineFunction(MachineFunction &MF) { 188 // We only need to run this pass if there are any FP registers used in this 189 // function. If it is all integer, there is nothing for us to do! 190 bool FPIsUsed = false; 191 192 assert(X86::FP6 == X86::FP0+6 && "Register enums aren't sorted right!"); 193 for (unsigned i = 0; i <= 6; ++i) 194 if (MF.getRegInfo().isPhysRegUsed(X86::FP0+i)) { 195 FPIsUsed = true; 196 break; 197 } 198 199 // Early exit. 200 if (!FPIsUsed) return false; 201 202 TII = MF.getTarget().getInstrInfo(); 203 StackTop = 0; 204 205 // Process the function in depth first order so that we process at least one 206 // of the predecessors for every reachable block in the function. 207 SmallPtrSet<MachineBasicBlock*, 8> Processed; 208 MachineBasicBlock *Entry = MF.begin(); 209 210 bool Changed = false; 211 for (df_ext_iterator<MachineBasicBlock*, SmallPtrSet<MachineBasicBlock*, 8> > 212 I = df_ext_begin(Entry, Processed), E = df_ext_end(Entry, Processed); 213 I != E; ++I) 214 Changed |= processBasicBlock(MF, **I); 215 216 return Changed; 217 } 218 219 /// processBasicBlock - Loop over all of the instructions in the basic block, 220 /// transforming FP instructions into their stack form. 221 /// 222 bool FPS::processBasicBlock(MachineFunction &MF, MachineBasicBlock &BB) { 223 bool Changed = false; 224 MBB = &BB; 225 226 for (MachineBasicBlock::iterator I = BB.begin(); I != BB.end(); ++I) { 227 MachineInstr *MI = I; 228 unsigned Flags = MI->getDesc().TSFlags; 229 230 unsigned FPInstClass = Flags & X86II::FPTypeMask; 231 if (MI->getOpcode() == TargetInstrInfo::INLINEASM) 232 FPInstClass = X86II::SpecialFP; 233 234 if (FPInstClass == X86II::NotFP) 235 continue; // Efficiently ignore non-fp insts! 236 237 MachineInstr *PrevMI = 0; 238 if (I != BB.begin()) 239 PrevMI = prior(I); 240 241 ++NumFP; // Keep track of # of pseudo instrs 242 DEBUG(errs() << "\nFPInst:\t" << *MI); 243 244 // Get dead variables list now because the MI pointer may be deleted as part 245 // of processing! 246 SmallVector<unsigned, 8> DeadRegs; 247 for (unsigned i = 0, e = MI->getNumOperands(); i != e; ++i) { 248 const MachineOperand &MO = MI->getOperand(i); 249 if (MO.isReg() && MO.isDead()) 250 DeadRegs.push_back(MO.getReg()); 251 } 252 253 switch (FPInstClass) { 254 case X86II::ZeroArgFP: handleZeroArgFP(I); break; 255 case X86II::OneArgFP: handleOneArgFP(I); break; // fstp ST(0) 256 case X86II::OneArgFPRW: handleOneArgFPRW(I); break; // ST(0) = fsqrt(ST(0)) 257 case X86II::TwoArgFP: handleTwoArgFP(I); break; 258 case X86II::CompareFP: handleCompareFP(I); break; 259 case X86II::CondMovFP: handleCondMovFP(I); break; 260 case X86II::SpecialFP: handleSpecialFP(I); break; 261 default: llvm_unreachable("Unknown FP Type!"); 262 } 263 264 // Check to see if any of the values defined by this instruction are dead 265 // after definition. If so, pop them. 266 for (unsigned i = 0, e = DeadRegs.size(); i != e; ++i) { 267 unsigned Reg = DeadRegs[i]; 268 if (Reg >= X86::FP0 && Reg <= X86::FP6) { 269 DEBUG(errs() << "Register FP#" << Reg-X86::FP0 << " is dead!\n"); 270 freeStackSlotAfter(I, Reg-X86::FP0); 271 } 272 } 273 274 // Print out all of the instructions expanded to if -debug 275 DEBUG( 276 MachineBasicBlock::iterator PrevI(PrevMI); 277 if (I == PrevI) { 278 cerr << "Just deleted pseudo instruction\n"; 279 } else { 280 MachineBasicBlock::iterator Start = I; 281 // Rewind to first instruction newly inserted. 282 while (Start != BB.begin() && prior(Start) != PrevI) --Start; 283 cerr << "Inserted instructions:\n\t"; 284 Start->print(*cerr.stream(), &MF.getTarget()); 285 while (++Start != next(I)) {} 286 } 287 dumpStack(); 288 ); 289 290 Changed = true; 291 } 292 293 assert(isStackEmpty() && "Stack not empty at end of basic block?"); 294 return Changed; 295 } 296 297 //===----------------------------------------------------------------------===// 298 // Efficient Lookup Table Support 299 //===----------------------------------------------------------------------===// 300 301 namespace { 302 struct TableEntry { 303 unsigned from; 304 unsigned to; 305 bool operator<(const TableEntry &TE) const { return from < TE.from; } 306 friend bool operator<(const TableEntry &TE, unsigned V) { 307 return TE.from < V; 308 } 309 friend bool operator<(unsigned V, const TableEntry &TE) { 310 return V < TE.from; 311 } 312 }; 313 } 314 315 #ifndef NDEBUG 316 static bool TableIsSorted(const TableEntry *Table, unsigned NumEntries) { 317 for (unsigned i = 0; i != NumEntries-1; ++i) 318 if (!(Table[i] < Table[i+1])) return false; 319 return true; 320 } 321 #endif 322 323 static int Lookup(const TableEntry *Table, unsigned N, unsigned Opcode) { 324 const TableEntry *I = std::lower_bound(Table, Table+N, Opcode); 325 if (I != Table+N && I->from == Opcode) 326 return I->to; 327 return -1; 328 } 329 330 #ifdef NDEBUG 331 #define ASSERT_SORTED(TABLE) 332 #else 333 #define ASSERT_SORTED(TABLE) \ 334 { static bool TABLE##Checked = false; \ 335 if (!TABLE##Checked) { \ 336 assert(TableIsSorted(TABLE, array_lengthof(TABLE)) && \ 337 "All lookup tables must be sorted for efficient access!"); \ 338 TABLE##Checked = true; \ 339 } \ 340 } 341 #endif 342 343 //===----------------------------------------------------------------------===// 344 // Register File -> Register Stack Mapping Methods 345 //===----------------------------------------------------------------------===// 346 347 // OpcodeTable - Sorted map of register instructions to their stack version. 348 // The first element is an register file pseudo instruction, the second is the 349 // concrete X86 instruction which uses the register stack. 350 // 351 static const TableEntry OpcodeTable[] = { 352 { X86::ABS_Fp32 , X86::ABS_F }, 353 { X86::ABS_Fp64 , X86::ABS_F }, 354 { X86::ABS_Fp80 , X86::ABS_F }, 355 { X86::ADD_Fp32m , X86::ADD_F32m }, 356 { X86::ADD_Fp64m , X86::ADD_F64m }, 357 { X86::ADD_Fp64m32 , X86::ADD_F32m }, 358 { X86::ADD_Fp80m32 , X86::ADD_F32m }, 359 { X86::ADD_Fp80m64 , X86::ADD_F64m }, 360 { X86::ADD_FpI16m32 , X86::ADD_FI16m }, 361 { X86::ADD_FpI16m64 , X86::ADD_FI16m }, 362 { X86::ADD_FpI16m80 , X86::ADD_FI16m }, 363 { X86::ADD_FpI32m32 , X86::ADD_FI32m }, 364 { X86::ADD_FpI32m64 , X86::ADD_FI32m }, 365 { X86::ADD_FpI32m80 , X86::ADD_FI32m }, 366 { X86::CHS_Fp32 , X86::CHS_F }, 367 { X86::CHS_Fp64 , X86::CHS_F }, 368 { X86::CHS_Fp80 , X86::CHS_F }, 369 { X86::CMOVBE_Fp32 , X86::CMOVBE_F }, 370 { X86::CMOVBE_Fp64 , X86::CMOVBE_F }, 371 { X86::CMOVBE_Fp80 , X86::CMOVBE_F }, 372 { X86::CMOVB_Fp32 , X86::CMOVB_F }, 373 { X86::CMOVB_Fp64 , X86::CMOVB_F }, 374 { X86::CMOVB_Fp80 , X86::CMOVB_F }, 375 { X86::CMOVE_Fp32 , X86::CMOVE_F }, 376 { X86::CMOVE_Fp64 , X86::CMOVE_F }, 377 { X86::CMOVE_Fp80 , X86::CMOVE_F }, 378 { X86::CMOVNBE_Fp32 , X86::CMOVNBE_F }, 379 { X86::CMOVNBE_Fp64 , X86::CMOVNBE_F }, 380 { X86::CMOVNBE_Fp80 , X86::CMOVNBE_F }, 381 { X86::CMOVNB_Fp32 , X86::CMOVNB_F }, 382 { X86::CMOVNB_Fp64 , X86::CMOVNB_F }, 383 { X86::CMOVNB_Fp80 , X86::CMOVNB_F }, 384 { X86::CMOVNE_Fp32 , X86::CMOVNE_F }, 385 { X86::CMOVNE_Fp64 , X86::CMOVNE_F }, 386 { X86::CMOVNE_Fp80 , X86::CMOVNE_F }, 387 { X86::CMOVNP_Fp32 , X86::CMOVNP_F }, 388 { X86::CMOVNP_Fp64 , X86::CMOVNP_F }, 389 { X86::CMOVNP_Fp80 , X86::CMOVNP_F }, 390 { X86::CMOVP_Fp32 , X86::CMOVP_F }, 391 { X86::CMOVP_Fp64 , X86::CMOVP_F }, 392 { X86::CMOVP_Fp80 , X86::CMOVP_F }, 393 { X86::COS_Fp32 , X86::COS_F }, 394 { X86::COS_Fp64 , X86::COS_F }, 395 { X86::COS_Fp80 , X86::COS_F }, 396 { X86::DIVR_Fp32m , X86::DIVR_F32m }, 397 { X86::DIVR_Fp64m , X86::DIVR_F64m }, 398 { X86::DIVR_Fp64m32 , X86::DIVR_F32m }, 399 { X86::DIVR_Fp80m32 , X86::DIVR_F32m }, 400 { X86::DIVR_Fp80m64 , X86::DIVR_F64m }, 401 { X86::DIVR_FpI16m32, X86::DIVR_FI16m}, 402 { X86::DIVR_FpI16m64, X86::DIVR_FI16m}, 403 { X86::DIVR_FpI16m80, X86::DIVR_FI16m}, 404 { X86::DIVR_FpI32m32, X86::DIVR_FI32m}, 405 { X86::DIVR_FpI32m64, X86::DIVR_FI32m}, 406 { X86::DIVR_FpI32m80, X86::DIVR_FI32m}, 407 { X86::DIV_Fp32m , X86::DIV_F32m }, 408 { X86::DIV_Fp64m , X86::DIV_F64m }, 409 { X86::DIV_Fp64m32 , X86::DIV_F32m }, 410 { X86::DIV_Fp80m32 , X86::DIV_F32m }, 411 { X86::DIV_Fp80m64 , X86::DIV_F64m }, 412 { X86::DIV_FpI16m32 , X86::DIV_FI16m }, 413 { X86::DIV_FpI16m64 , X86::DIV_FI16m }, 414 { X86::DIV_FpI16m80 , X86::DIV_FI16m }, 415 { X86::DIV_FpI32m32 , X86::DIV_FI32m }, 416 { X86::DIV_FpI32m64 , X86::DIV_FI32m }, 417 { X86::DIV_FpI32m80 , X86::DIV_FI32m }, 418 { X86::ILD_Fp16m32 , X86::ILD_F16m }, 419 { X86::ILD_Fp16m64 , X86::ILD_F16m }, 420 { X86::ILD_Fp16m80 , X86::ILD_F16m }, 421 { X86::ILD_Fp32m32 , X86::ILD_F32m }, 422 { X86::ILD_Fp32m64 , X86::ILD_F32m }, 423 { X86::ILD_Fp32m80 , X86::ILD_F32m }, 424 { X86::ILD_Fp64m32 , X86::ILD_F64m }, 425 { X86::ILD_Fp64m64 , X86::ILD_F64m }, 426 { X86::ILD_Fp64m80 , X86::ILD_F64m }, 427 { X86::ISTT_Fp16m32 , X86::ISTT_FP16m}, 428 { X86::ISTT_Fp16m64 , X86::ISTT_FP16m}, 429 { X86::ISTT_Fp16m80 , X86::ISTT_FP16m}, 430 { X86::ISTT_Fp32m32 , X86::ISTT_FP32m}, 431 { X86::ISTT_Fp32m64 , X86::ISTT_FP32m}, 432 { X86::ISTT_Fp32m80 , X86::ISTT_FP32m}, 433 { X86::ISTT_Fp64m32 , X86::ISTT_FP64m}, 434 { X86::ISTT_Fp64m64 , X86::ISTT_FP64m}, 435 { X86::ISTT_Fp64m80 , X86::ISTT_FP64m}, 436 { X86::IST_Fp16m32 , X86::IST_F16m }, 437 { X86::IST_Fp16m64 , X86::IST_F16m }, 438 { X86::IST_Fp16m80 , X86::IST_F16m }, 439 { X86::IST_Fp32m32 , X86::IST_F32m }, 440 { X86::IST_Fp32m64 , X86::IST_F32m }, 441 { X86::IST_Fp32m80 , X86::IST_F32m }, 442 { X86::IST_Fp64m32 , X86::IST_FP64m }, 443 { X86::IST_Fp64m64 , X86::IST_FP64m }, 444 { X86::IST_Fp64m80 , X86::IST_FP64m }, 445 { X86::LD_Fp032 , X86::LD_F0 }, 446 { X86::LD_Fp064 , X86::LD_F0 }, 447 { X86::LD_Fp080 , X86::LD_F0 }, 448 { X86::LD_Fp132 , X86::LD_F1 }, 449 { X86::LD_Fp164 , X86::LD_F1 }, 450 { X86::LD_Fp180 , X86::LD_F1 }, 451 { X86::LD_Fp32m , X86::LD_F32m }, 452 { X86::LD_Fp32m64 , X86::LD_F32m }, 453 { X86::LD_Fp32m80 , X86::LD_F32m }, 454 { X86::LD_Fp64m , X86::LD_F64m }, 455 { X86::LD_Fp64m80 , X86::LD_F64m }, 456 { X86::LD_Fp80m , X86::LD_F80m }, 457 { X86::MUL_Fp32m , X86::MUL_F32m }, 458 { X86::MUL_Fp64m , X86::MUL_F64m }, 459 { X86::MUL_Fp64m32 , X86::MUL_F32m }, 460 { X86::MUL_Fp80m32 , X86::MUL_F32m }, 461 { X86::MUL_Fp80m64 , X86::MUL_F64m }, 462 { X86::MUL_FpI16m32 , X86::MUL_FI16m }, 463 { X86::MUL_FpI16m64 , X86::MUL_FI16m }, 464 { X86::MUL_FpI16m80 , X86::MUL_FI16m }, 465 { X86::MUL_FpI32m32 , X86::MUL_FI32m }, 466 { X86::MUL_FpI32m64 , X86::MUL_FI32m }, 467 { X86::MUL_FpI32m80 , X86::MUL_FI32m }, 468 { X86::SIN_Fp32 , X86::SIN_F }, 469 { X86::SIN_Fp64 , X86::SIN_F }, 470 { X86::SIN_Fp80 , X86::SIN_F }, 471 { X86::SQRT_Fp32 , X86::SQRT_F }, 472 { X86::SQRT_Fp64 , X86::SQRT_F }, 473 { X86::SQRT_Fp80 , X86::SQRT_F }, 474 { X86::ST_Fp32m , X86::ST_F32m }, 475 { X86::ST_Fp64m , X86::ST_F64m }, 476 { X86::ST_Fp64m32 , X86::ST_F32m }, 477 { X86::ST_Fp80m32 , X86::ST_F32m }, 478 { X86::ST_Fp80m64 , X86::ST_F64m }, 479 { X86::ST_FpP80m , X86::ST_FP80m }, 480 { X86::SUBR_Fp32m , X86::SUBR_F32m }, 481 { X86::SUBR_Fp64m , X86::SUBR_F64m }, 482 { X86::SUBR_Fp64m32 , X86::SUBR_F32m }, 483 { X86::SUBR_Fp80m32 , X86::SUBR_F32m }, 484 { X86::SUBR_Fp80m64 , X86::SUBR_F64m }, 485 { X86::SUBR_FpI16m32, X86::SUBR_FI16m}, 486 { X86::SUBR_FpI16m64, X86::SUBR_FI16m}, 487 { X86::SUBR_FpI16m80, X86::SUBR_FI16m}, 488 { X86::SUBR_FpI32m32, X86::SUBR_FI32m}, 489 { X86::SUBR_FpI32m64, X86::SUBR_FI32m}, 490 { X86::SUBR_FpI32m80, X86::SUBR_FI32m}, 491 { X86::SUB_Fp32m , X86::SUB_F32m }, 492 { X86::SUB_Fp64m , X86::SUB_F64m }, 493 { X86::SUB_Fp64m32 , X86::SUB_F32m }, 494 { X86::SUB_Fp80m32 , X86::SUB_F32m }, 495 { X86::SUB_Fp80m64 , X86::SUB_F64m }, 496 { X86::SUB_FpI16m32 , X86::SUB_FI16m }, 497 { X86::SUB_FpI16m64 , X86::SUB_FI16m }, 498 { X86::SUB_FpI16m80 , X86::SUB_FI16m }, 499 { X86::SUB_FpI32m32 , X86::SUB_FI32m }, 500 { X86::SUB_FpI32m64 , X86::SUB_FI32m }, 501 { X86::SUB_FpI32m80 , X86::SUB_FI32m }, 502 { X86::TST_Fp32 , X86::TST_F }, 503 { X86::TST_Fp64 , X86::TST_F }, 504 { X86::TST_Fp80 , X86::TST_F }, 505 { X86::UCOM_FpIr32 , X86::UCOM_FIr }, 506 { X86::UCOM_FpIr64 , X86::UCOM_FIr }, 507 { X86::UCOM_FpIr80 , X86::UCOM_FIr }, 508 { X86::UCOM_Fpr32 , X86::UCOM_Fr }, 509 { X86::UCOM_Fpr64 , X86::UCOM_Fr }, 510 { X86::UCOM_Fpr80 , X86::UCOM_Fr }, 511 }; 512 513 static unsigned getConcreteOpcode(unsigned Opcode) { 514 ASSERT_SORTED(OpcodeTable); 515 int Opc = Lookup(OpcodeTable, array_lengthof(OpcodeTable), Opcode); 516 assert(Opc != -1 && "FP Stack instruction not in OpcodeTable!"); 517 return Opc; 518 } 519 520 //===----------------------------------------------------------------------===// 521 // Helper Methods 522 //===----------------------------------------------------------------------===// 523 524 // PopTable - Sorted map of instructions to their popping version. The first 525 // element is an instruction, the second is the version which pops. 526 // 527 static const TableEntry PopTable[] = { 528 { X86::ADD_FrST0 , X86::ADD_FPrST0 }, 529 530 { X86::DIVR_FrST0, X86::DIVR_FPrST0 }, 531 { X86::DIV_FrST0 , X86::DIV_FPrST0 }, 532 533 { X86::IST_F16m , X86::IST_FP16m }, 534 { X86::IST_F32m , X86::IST_FP32m }, 535 536 { X86::MUL_FrST0 , X86::MUL_FPrST0 }, 537 538 { X86::ST_F32m , X86::ST_FP32m }, 539 { X86::ST_F64m , X86::ST_FP64m }, 540 { X86::ST_Frr , X86::ST_FPrr }, 541 542 { X86::SUBR_FrST0, X86::SUBR_FPrST0 }, 543 { X86::SUB_FrST0 , X86::SUB_FPrST0 }, 544 545 { X86::UCOM_FIr , X86::UCOM_FIPr }, 546 547 { X86::UCOM_FPr , X86::UCOM_FPPr }, 548 { X86::UCOM_Fr , X86::UCOM_FPr }, 549 }; 550 551 /// popStackAfter - Pop the current value off of the top of the FP stack after 552 /// the specified instruction. This attempts to be sneaky and combine the pop 553 /// into the instruction itself if possible. The iterator is left pointing to 554 /// the last instruction, be it a new pop instruction inserted, or the old 555 /// instruction if it was modified in place. 556 /// 557 void FPS::popStackAfter(MachineBasicBlock::iterator &I) { 558 MachineInstr* MI = I; 559 DebugLoc dl = MI->getDebugLoc(); 560 ASSERT_SORTED(PopTable); 561 assert(StackTop > 0 && "Cannot pop empty stack!"); 562 RegMap[Stack[--StackTop]] = ~0; // Update state 563 564 // Check to see if there is a popping version of this instruction... 565 int Opcode = Lookup(PopTable, array_lengthof(PopTable), I->getOpcode()); 566 if (Opcode != -1) { 567 I->setDesc(TII->get(Opcode)); 568 if (Opcode == X86::UCOM_FPPr) 569 I->RemoveOperand(0); 570 } else { // Insert an explicit pop 571 I = BuildMI(*MBB, ++I, dl, TII->get(X86::ST_FPrr)).addReg(X86::ST0); 572 } 573 } 574 575 /// freeStackSlotAfter - Free the specified register from the register stack, so 576 /// that it is no longer in a register. If the register is currently at the top 577 /// of the stack, we just pop the current instruction, otherwise we store the 578 /// current top-of-stack into the specified slot, then pop the top of stack. 579 void FPS::freeStackSlotAfter(MachineBasicBlock::iterator &I, unsigned FPRegNo) { 580 if (getStackEntry(0) == FPRegNo) { // already at the top of stack? easy. 581 popStackAfter(I); 582 return; 583 } 584 585 // Otherwise, store the top of stack into the dead slot, killing the operand 586 // without having to add in an explicit xchg then pop. 587 // 588 unsigned STReg = getSTReg(FPRegNo); 589 unsigned OldSlot = getSlot(FPRegNo); 590 unsigned TopReg = Stack[StackTop-1]; 591 Stack[OldSlot] = TopReg; 592 RegMap[TopReg] = OldSlot; 593 RegMap[FPRegNo] = ~0; 594 Stack[--StackTop] = ~0; 595 MachineInstr *MI = I; 596 DebugLoc dl = MI->getDebugLoc(); 597 I = BuildMI(*MBB, ++I, dl, TII->get(X86::ST_FPrr)).addReg(STReg); 598 } 599 600 601 //===----------------------------------------------------------------------===// 602 // Instruction transformation implementation 603 //===----------------------------------------------------------------------===// 604 605 /// handleZeroArgFP - ST(0) = fld0 ST(0) = flds <mem> 606 /// 607 void FPS::handleZeroArgFP(MachineBasicBlock::iterator &I) { 608 MachineInstr *MI = I; 609 unsigned DestReg = getFPReg(MI->getOperand(0)); 610 611 // Change from the pseudo instruction to the concrete instruction. 612 MI->RemoveOperand(0); // Remove the explicit ST(0) operand 613 MI->setDesc(TII->get(getConcreteOpcode(MI->getOpcode()))); 614 615 // Result gets pushed on the stack. 616 pushReg(DestReg); 617 } 618 619 /// handleOneArgFP - fst <mem>, ST(0) 620 /// 621 void FPS::handleOneArgFP(MachineBasicBlock::iterator &I) { 622 MachineInstr *MI = I; 623 unsigned NumOps = MI->getDesc().getNumOperands(); 624 assert((NumOps == X86AddrNumOperands + 1 || NumOps == 1) && 625 "Can only handle fst* & ftst instructions!"); 626 627 // Is this the last use of the source register? 628 unsigned Reg = getFPReg(MI->getOperand(NumOps-1)); 629 bool KillsSrc = MI->killsRegister(X86::FP0+Reg); 630 631 // FISTP64m is strange because there isn't a non-popping versions. 632 // If we have one _and_ we don't want to pop the operand, duplicate the value 633 // on the stack instead of moving it. This ensure that popping the value is 634 // always ok. 635 // Ditto FISTTP16m, FISTTP32m, FISTTP64m, ST_FpP80m. 636 // 637 if (!KillsSrc && 638 (MI->getOpcode() == X86::IST_Fp64m32 || 639 MI->getOpcode() == X86::ISTT_Fp16m32 || 640 MI->getOpcode() == X86::ISTT_Fp32m32 || 641 MI->getOpcode() == X86::ISTT_Fp64m32 || 642 MI->getOpcode() == X86::IST_Fp64m64 || 643 MI->getOpcode() == X86::ISTT_Fp16m64 || 644 MI->getOpcode() == X86::ISTT_Fp32m64 || 645 MI->getOpcode() == X86::ISTT_Fp64m64 || 646 MI->getOpcode() == X86::IST_Fp64m80 || 647 MI->getOpcode() == X86::ISTT_Fp16m80 || 648 MI->getOpcode() == X86::ISTT_Fp32m80 || 649 MI->getOpcode() == X86::ISTT_Fp64m80 || 650 MI->getOpcode() == X86::ST_FpP80m)) { 651 duplicateToTop(Reg, 7 /*temp register*/, I); 652 } else { 653 moveToTop(Reg, I); // Move to the top of the stack... 654 } 655 656 // Convert from the pseudo instruction to the concrete instruction. 657 MI->RemoveOperand(NumOps-1); // Remove explicit ST(0) operand 658 MI->setDesc(TII->get(getConcreteOpcode(MI->getOpcode()))); 659 660 if (MI->getOpcode() == X86::IST_FP64m || 661 MI->getOpcode() == X86::ISTT_FP16m || 662 MI->getOpcode() == X86::ISTT_FP32m || 663 MI->getOpcode() == X86::ISTT_FP64m || 664 MI->getOpcode() == X86::ST_FP80m) { 665 assert(StackTop > 0 && "Stack empty??"); 666 --StackTop; 667 } else if (KillsSrc) { // Last use of operand? 668 popStackAfter(I); 669 } 670 } 671 672 673 /// handleOneArgFPRW: Handle instructions that read from the top of stack and 674 /// replace the value with a newly computed value. These instructions may have 675 /// non-fp operands after their FP operands. 676 /// 677 /// Examples: 678 /// R1 = fchs R2 679 /// R1 = fadd R2, [mem] 680 /// 681 void FPS::handleOneArgFPRW(MachineBasicBlock::iterator &I) { 682 MachineInstr *MI = I; 683 #ifndef NDEBUG 684 unsigned NumOps = MI->getDesc().getNumOperands(); 685 assert(NumOps >= 2 && "FPRW instructions must have 2 ops!!"); 686 #endif 687 688 // Is this the last use of the source register? 689 unsigned Reg = getFPReg(MI->getOperand(1)); 690 bool KillsSrc = MI->killsRegister(X86::FP0+Reg); 691 692 if (KillsSrc) { 693 // If this is the last use of the source register, just make sure it's on 694 // the top of the stack. 695 moveToTop(Reg, I); 696 assert(StackTop > 0 && "Stack cannot be empty!"); 697 --StackTop; 698 pushReg(getFPReg(MI->getOperand(0))); 699 } else { 700 // If this is not the last use of the source register, _copy_ it to the top 701 // of the stack. 702 duplicateToTop(Reg, getFPReg(MI->getOperand(0)), I); 703 } 704 705 // Change from the pseudo instruction to the concrete instruction. 706 MI->RemoveOperand(1); // Drop the source operand. 707 MI->RemoveOperand(0); // Drop the destination operand. 708 MI->setDesc(TII->get(getConcreteOpcode(MI->getOpcode()))); 709 } 710 711 712 //===----------------------------------------------------------------------===// 713 // Define tables of various ways to map pseudo instructions 714 // 715 716 // ForwardST0Table - Map: A = B op C into: ST(0) = ST(0) op ST(i) 717 static const TableEntry ForwardST0Table[] = { 718 { X86::ADD_Fp32 , X86::ADD_FST0r }, 719 { X86::ADD_Fp64 , X86::ADD_FST0r }, 720 { X86::ADD_Fp80 , X86::ADD_FST0r }, 721 { X86::DIV_Fp32 , X86::DIV_FST0r }, 722 { X86::DIV_Fp64 , X86::DIV_FST0r }, 723 { X86::DIV_Fp80 , X86::DIV_FST0r }, 724 { X86::MUL_Fp32 , X86::MUL_FST0r }, 725 { X86::MUL_Fp64 , X86::MUL_FST0r }, 726 { X86::MUL_Fp80 , X86::MUL_FST0r }, 727 { X86::SUB_Fp32 , X86::SUB_FST0r }, 728 { X86::SUB_Fp64 , X86::SUB_FST0r }, 729 { X86::SUB_Fp80 , X86::SUB_FST0r }, 730 }; 731 732 // ReverseST0Table - Map: A = B op C into: ST(0) = ST(i) op ST(0) 733 static const TableEntry ReverseST0Table[] = { 734 { X86::ADD_Fp32 , X86::ADD_FST0r }, // commutative 735 { X86::ADD_Fp64 , X86::ADD_FST0r }, // commutative 736 { X86::ADD_Fp80 , X86::ADD_FST0r }, // commutative 737 { X86::DIV_Fp32 , X86::DIVR_FST0r }, 738 { X86::DIV_Fp64 , X86::DIVR_FST0r }, 739 { X86::DIV_Fp80 , X86::DIVR_FST0r }, 740 { X86::MUL_Fp32 , X86::MUL_FST0r }, // commutative 741 { X86::MUL_Fp64 , X86::MUL_FST0r }, // commutative 742 { X86::MUL_Fp80 , X86::MUL_FST0r }, // commutative 743 { X86::SUB_Fp32 , X86::SUBR_FST0r }, 744 { X86::SUB_Fp64 , X86::SUBR_FST0r }, 745 { X86::SUB_Fp80 , X86::SUBR_FST0r }, 746 }; 747 748 // ForwardSTiTable - Map: A = B op C into: ST(i) = ST(0) op ST(i) 749 static const TableEntry ForwardSTiTable[] = { 750 { X86::ADD_Fp32 , X86::ADD_FrST0 }, // commutative 751 { X86::ADD_Fp64 , X86::ADD_FrST0 }, // commutative 752 { X86::ADD_Fp80 , X86::ADD_FrST0 }, // commutative 753 { X86::DIV_Fp32 , X86::DIVR_FrST0 }, 754 { X86::DIV_Fp64 , X86::DIVR_FrST0 }, 755 { X86::DIV_Fp80 , X86::DIVR_FrST0 }, 756 { X86::MUL_Fp32 , X86::MUL_FrST0 }, // commutative 757 { X86::MUL_Fp64 , X86::MUL_FrST0 }, // commutative 758 { X86::MUL_Fp80 , X86::MUL_FrST0 }, // commutative 759 { X86::SUB_Fp32 , X86::SUBR_FrST0 }, 760 { X86::SUB_Fp64 , X86::SUBR_FrST0 }, 761 { X86::SUB_Fp80 , X86::SUBR_FrST0 }, 762 }; 763 764 // ReverseSTiTable - Map: A = B op C into: ST(i) = ST(i) op ST(0) 765 static const TableEntry ReverseSTiTable[] = { 766 { X86::ADD_Fp32 , X86::ADD_FrST0 }, 767 { X86::ADD_Fp64 , X86::ADD_FrST0 }, 768 { X86::ADD_Fp80 , X86::ADD_FrST0 }, 769 { X86::DIV_Fp32 , X86::DIV_FrST0 }, 770 { X86::DIV_Fp64 , X86::DIV_FrST0 }, 771 { X86::DIV_Fp80 , X86::DIV_FrST0 }, 772 { X86::MUL_Fp32 , X86::MUL_FrST0 }, 773 { X86::MUL_Fp64 , X86::MUL_FrST0 }, 774 { X86::MUL_Fp80 , X86::MUL_FrST0 }, 775 { X86::SUB_Fp32 , X86::SUB_FrST0 }, 776 { X86::SUB_Fp64 , X86::SUB_FrST0 }, 777 { X86::SUB_Fp80 , X86::SUB_FrST0 }, 778 }; 779 780 781 /// handleTwoArgFP - Handle instructions like FADD and friends which are virtual 782 /// instructions which need to be simplified and possibly transformed. 783 /// 784 /// Result: ST(0) = fsub ST(0), ST(i) 785 /// ST(i) = fsub ST(0), ST(i) 786 /// ST(0) = fsubr ST(0), ST(i) 787 /// ST(i) = fsubr ST(0), ST(i) 788 /// 789 void FPS::handleTwoArgFP(MachineBasicBlock::iterator &I) { 790 ASSERT_SORTED(ForwardST0Table); ASSERT_SORTED(ReverseST0Table); 791 ASSERT_SORTED(ForwardSTiTable); ASSERT_SORTED(ReverseSTiTable); 792 MachineInstr *MI = I; 793 794 unsigned NumOperands = MI->getDesc().getNumOperands(); 795 assert(NumOperands == 3 && "Illegal TwoArgFP instruction!"); 796 unsigned Dest = getFPReg(MI->getOperand(0)); 797 unsigned Op0 = getFPReg(MI->getOperand(NumOperands-2)); 798 unsigned Op1 = getFPReg(MI->getOperand(NumOperands-1)); 799 bool KillsOp0 = MI->killsRegister(X86::FP0+Op0); 800 bool KillsOp1 = MI->killsRegister(X86::FP0+Op1); 801 DebugLoc dl = MI->getDebugLoc(); 802 803 unsigned TOS = getStackEntry(0); 804 805 // One of our operands must be on the top of the stack. If neither is yet, we 806 // need to move one. 807 if (Op0 != TOS && Op1 != TOS) { // No operand at TOS? 808 // We can choose to move either operand to the top of the stack. If one of 809 // the operands is killed by this instruction, we want that one so that we 810 // can update right on top of the old version. 811 if (KillsOp0) { 812 moveToTop(Op0, I); // Move dead operand to TOS. 813 TOS = Op0; 814 } else if (KillsOp1) { 815 moveToTop(Op1, I); 816 TOS = Op1; 817 } else { 818 // All of the operands are live after this instruction executes, so we 819 // cannot update on top of any operand. Because of this, we must 820 // duplicate one of the stack elements to the top. It doesn't matter 821 // which one we pick. 822 // 823 duplicateToTop(Op0, Dest, I); 824 Op0 = TOS = Dest; 825 KillsOp0 = true; 826 } 827 } else if (!KillsOp0 && !KillsOp1) { 828 // If we DO have one of our operands at the top of the stack, but we don't 829 // have a dead operand, we must duplicate one of the operands to a new slot 830 // on the stack. 831 duplicateToTop(Op0, Dest, I); 832 Op0 = TOS = Dest; 833 KillsOp0 = true; 834 } 835 836 // Now we know that one of our operands is on the top of the stack, and at 837 // least one of our operands is killed by this instruction. 838 assert((TOS == Op0 || TOS == Op1) && (KillsOp0 || KillsOp1) && 839 "Stack conditions not set up right!"); 840 841 // We decide which form to use based on what is on the top of the stack, and 842 // which operand is killed by this instruction. 843 const TableEntry *InstTable; 844 bool isForward = TOS == Op0; 845 bool updateST0 = (TOS == Op0 && !KillsOp1) || (TOS == Op1 && !KillsOp0); 846 if (updateST0) { 847 if (isForward) 848 InstTable = ForwardST0Table; 849 else 850 InstTable = ReverseST0Table; 851 } else { 852 if (isForward) 853 InstTable = ForwardSTiTable; 854 else 855 InstTable = ReverseSTiTable; 856 } 857 858 int Opcode = Lookup(InstTable, array_lengthof(ForwardST0Table), 859 MI->getOpcode()); 860 assert(Opcode != -1 && "Unknown TwoArgFP pseudo instruction!"); 861 862 // NotTOS - The register which is not on the top of stack... 863 unsigned NotTOS = (TOS == Op0) ? Op1 : Op0; 864 865 // Replace the old instruction with a new instruction 866 MBB->remove(I++); 867 I = BuildMI(*MBB, I, dl, TII->get(Opcode)).addReg(getSTReg(NotTOS)); 868 869 // If both operands are killed, pop one off of the stack in addition to 870 // overwriting the other one. 871 if (KillsOp0 && KillsOp1 && Op0 != Op1) { 872 assert(!updateST0 && "Should have updated other operand!"); 873 popStackAfter(I); // Pop the top of stack 874 } 875 876 // Update stack information so that we know the destination register is now on 877 // the stack. 878 unsigned UpdatedSlot = getSlot(updateST0 ? TOS : NotTOS); 879 assert(UpdatedSlot < StackTop && Dest < 7); 880 Stack[UpdatedSlot] = Dest; 881 RegMap[Dest] = UpdatedSlot; 882 MBB->getParent()->DeleteMachineInstr(MI); // Remove the old instruction 883 } 884 885 /// handleCompareFP - Handle FUCOM and FUCOMI instructions, which have two FP 886 /// register arguments and no explicit destinations. 887 /// 888 void FPS::handleCompareFP(MachineBasicBlock::iterator &I) { 889 ASSERT_SORTED(ForwardST0Table); ASSERT_SORTED(ReverseST0Table); 890 ASSERT_SORTED(ForwardSTiTable); ASSERT_SORTED(ReverseSTiTable); 891 MachineInstr *MI = I; 892 893 unsigned NumOperands = MI->getDesc().getNumOperands(); 894 assert(NumOperands == 2 && "Illegal FUCOM* instruction!"); 895 unsigned Op0 = getFPReg(MI->getOperand(NumOperands-2)); 896 unsigned Op1 = getFPReg(MI->getOperand(NumOperands-1)); 897 bool KillsOp0 = MI->killsRegister(X86::FP0+Op0); 898 bool KillsOp1 = MI->killsRegister(X86::FP0+Op1); 899 900 // Make sure the first operand is on the top of stack, the other one can be 901 // anywhere. 902 moveToTop(Op0, I); 903 904 // Change from the pseudo instruction to the concrete instruction. 905 MI->getOperand(0).setReg(getSTReg(Op1)); 906 MI->RemoveOperand(1); 907 MI->setDesc(TII->get(getConcreteOpcode(MI->getOpcode()))); 908 909 // If any of the operands are killed by this instruction, free them. 910 if (KillsOp0) freeStackSlotAfter(I, Op0); 911 if (KillsOp1 && Op0 != Op1) freeStackSlotAfter(I, Op1); 912 } 913 914 /// handleCondMovFP - Handle two address conditional move instructions. These 915 /// instructions move a st(i) register to st(0) iff a condition is true. These 916 /// instructions require that the first operand is at the top of the stack, but 917 /// otherwise don't modify the stack at all. 918 void FPS::handleCondMovFP(MachineBasicBlock::iterator &I) { 919 MachineInstr *MI = I; 920 921 unsigned Op0 = getFPReg(MI->getOperand(0)); 922 unsigned Op1 = getFPReg(MI->getOperand(2)); 923 bool KillsOp1 = MI->killsRegister(X86::FP0+Op1); 924 925 // The first operand *must* be on the top of the stack. 926 moveToTop(Op0, I); 927 928 // Change the second operand to the stack register that the operand is in. 929 // Change from the pseudo instruction to the concrete instruction. 930 MI->RemoveOperand(0); 931 MI->RemoveOperand(1); 932 MI->getOperand(0).setReg(getSTReg(Op1)); 933 MI->setDesc(TII->get(getConcreteOpcode(MI->getOpcode()))); 934 935 // If we kill the second operand, make sure to pop it from the stack. 936 if (Op0 != Op1 && KillsOp1) { 937 // Get this value off of the register stack. 938 freeStackSlotAfter(I, Op1); 939 } 940 } 941 942 943 /// handleSpecialFP - Handle special instructions which behave unlike other 944 /// floating point instructions. This is primarily intended for use by pseudo 945 /// instructions. 946 /// 947 void FPS::handleSpecialFP(MachineBasicBlock::iterator &I) { 948 MachineInstr *MI = I; 949 DebugLoc dl = MI->getDebugLoc(); 950 switch (MI->getOpcode()) { 951 default: llvm_unreachable("Unknown SpecialFP instruction!"); 952 case X86::FpGET_ST0_32:// Appears immediately after a call returning FP type! 953 case X86::FpGET_ST0_64:// Appears immediately after a call returning FP type! 954 case X86::FpGET_ST0_80:// Appears immediately after a call returning FP type! 955 assert(StackTop == 0 && "Stack should be empty after a call!"); 956 pushReg(getFPReg(MI->getOperand(0))); 957 break; 958 case X86::FpGET_ST1_32:// Appears immediately after a call returning FP type! 959 case X86::FpGET_ST1_64:// Appears immediately after a call returning FP type! 960 case X86::FpGET_ST1_80:{// Appears immediately after a call returning FP type! 961 // FpGET_ST1 should occur right after a FpGET_ST0 for a call or inline asm. 962 // The pattern we expect is: 963 // CALL 964 // FP1 = FpGET_ST0 965 // FP4 = FpGET_ST1 966 // 967 // At this point, we've pushed FP1 on the top of stack, so it should be 968 // present if it isn't dead. If it was dead, we already emitted a pop to 969 // remove it from the stack and StackTop = 0. 970 971 // Push FP4 as top of stack next. 972 pushReg(getFPReg(MI->getOperand(0))); 973 974 // If StackTop was 0 before we pushed our operand, then ST(0) must have been 975 // dead. In this case, the ST(1) value is the only thing that is live, so 976 // it should be on the TOS (after the pop that was emitted) and is. Just 977 // continue in this case. 978 if (StackTop == 1) 979 break; 980 981 // Because pushReg just pushed ST(1) as TOS, we now have to swap the two top 982 // elements so that our accounting is correct. 983 unsigned RegOnTop = getStackEntry(0); 984 unsigned RegNo = getStackEntry(1); 985 986 // Swap the slots the regs are in. 987 std::swap(RegMap[RegNo], RegMap[RegOnTop]); 988 989 // Swap stack slot contents. 990 assert(RegMap[RegOnTop] < StackTop); 991 std::swap(Stack[RegMap[RegOnTop]], Stack[StackTop-1]); 992 break; 993 } 994 case X86::FpSET_ST0_32: 995 case X86::FpSET_ST0_64: 996 case X86::FpSET_ST0_80: { 997 unsigned Op0 = getFPReg(MI->getOperand(0)); 998 999 // FpSET_ST0_80 is generated by copyRegToReg for both function return 1000 // and inline assembly with the "st" constrain. In the latter case, 1001 // it is possible for ST(0) to be alive after this instruction. 1002 if (!MI->killsRegister(X86::FP0 + Op0)) { 1003 // Duplicate Op0 1004 duplicateToTop(0, 7 /*temp register*/, I); 1005 } else { 1006 moveToTop(Op0, I); 1007 } 1008 --StackTop; // "Forget" we have something on the top of stack! 1009 break; 1010 } 1011 case X86::FpSET_ST1_32: 1012 case X86::FpSET_ST1_64: 1013 case X86::FpSET_ST1_80: 1014 // StackTop can be 1 if a FpSET_ST0_* was before this. Exchange them. 1015 if (StackTop == 1) { 1016 BuildMI(*MBB, I, dl, TII->get(X86::XCH_F)).addReg(X86::ST1); 1017 NumFXCH++; 1018 StackTop = 0; 1019 break; 1020 } 1021 assert(StackTop == 2 && "Stack should have two element on it to return!"); 1022 --StackTop; // "Forget" we have something on the top of stack! 1023 break; 1024 case X86::MOV_Fp3232: 1025 case X86::MOV_Fp3264: 1026 case X86::MOV_Fp6432: 1027 case X86::MOV_Fp6464: 1028 case X86::MOV_Fp3280: 1029 case X86::MOV_Fp6480: 1030 case X86::MOV_Fp8032: 1031 case X86::MOV_Fp8064: 1032 case X86::MOV_Fp8080: { 1033 const MachineOperand &MO1 = MI->getOperand(1); 1034 unsigned SrcReg = getFPReg(MO1); 1035 1036 const MachineOperand &MO0 = MI->getOperand(0); 1037 // These can be created due to inline asm. Two address pass can introduce 1038 // copies from RFP registers to virtual registers. 1039 if (MO0.getReg() == X86::ST0 && SrcReg == 0) { 1040 assert(MO1.isKill()); 1041 // Treat %ST0<def> = MOV_Fp8080 %FP0<kill> 1042 // like FpSET_ST0_80 %FP0<kill>, %ST0<imp-def> 1043 assert((StackTop == 1 || StackTop == 2) 1044 && "Stack should have one or two element on it to return!"); 1045 --StackTop; // "Forget" we have something on the top of stack! 1046 break; 1047 } else if (MO0.getReg() == X86::ST1 && SrcReg == 1) { 1048 assert(MO1.isKill()); 1049 // Treat %ST1<def> = MOV_Fp8080 %FP1<kill> 1050 // like FpSET_ST1_80 %FP0<kill>, %ST1<imp-def> 1051 // StackTop can be 1 if a FpSET_ST0_* was before this. Exchange them. 1052 if (StackTop == 1) { 1053 BuildMI(*MBB, I, dl, TII->get(X86::XCH_F)).addReg(X86::ST1); 1054 NumFXCH++; 1055 StackTop = 0; 1056 break; 1057 } 1058 assert(StackTop == 2 && "Stack should have two element on it to return!"); 1059 --StackTop; // "Forget" we have something on the top of stack! 1060 break; 1061 } 1062 1063 unsigned DestReg = getFPReg(MO0); 1064 if (MI->killsRegister(X86::FP0+SrcReg)) { 1065 // If the input operand is killed, we can just change the owner of the 1066 // incoming stack slot into the result. 1067 unsigned Slot = getSlot(SrcReg); 1068 assert(Slot < 7 && DestReg < 7 && "FpMOV operands invalid!"); 1069 Stack[Slot] = DestReg; 1070 RegMap[DestReg] = Slot; 1071 1072 } else { 1073 // For FMOV we just duplicate the specified value to a new stack slot. 1074 // This could be made better, but would require substantial changes. 1075 duplicateToTop(SrcReg, DestReg, I); 1076 } 1077 } 1078 break; 1079 case TargetInstrInfo::INLINEASM: { 1080 // The inline asm MachineInstr currently only *uses* FP registers for the 1081 // 'f' constraint. These should be turned into the current ST(x) register 1082 // in the machine instr. Also, any kills should be explicitly popped after 1083 // the inline asm. 1084 unsigned Kills[7]; 1085 unsigned NumKills = 0; 1086 for (unsigned i = 0, e = MI->getNumOperands(); i != e; ++i) { 1087 MachineOperand &Op = MI->getOperand(i); 1088 if (!Op.isReg() || Op.getReg() < X86::FP0 || Op.getReg() > X86::FP6) 1089 continue; 1090 assert(Op.isUse() && "Only handle inline asm uses right now"); 1091 1092 unsigned FPReg = getFPReg(Op); 1093 Op.setReg(getSTReg(FPReg)); 1094 1095 // If we kill this operand, make sure to pop it from the stack after the 1096 // asm. We just remember it for now, and pop them all off at the end in 1097 // a batch. 1098 if (Op.isKill()) 1099 Kills[NumKills++] = FPReg; 1100 } 1101 1102 // If this asm kills any FP registers (is the last use of them) we must 1103 // explicitly emit pop instructions for them. Do this now after the asm has 1104 // executed so that the ST(x) numbers are not off (which would happen if we 1105 // did this inline with operand rewriting). 1106 // 1107 // Note: this might be a non-optimal pop sequence. We might be able to do 1108 // better by trying to pop in stack order or something. 1109 MachineBasicBlock::iterator InsertPt = MI; 1110 while (NumKills) 1111 freeStackSlotAfter(InsertPt, Kills[--NumKills]); 1112 1113 // Don't delete the inline asm! 1114 return; 1115 } 1116 1117 case X86::RET: 1118 case X86::RETI: 1119 // If RET has an FP register use operand, pass the first one in ST(0) and 1120 // the second one in ST(1). 1121 if (isStackEmpty()) return; // Quick check to see if any are possible. 1122 1123 // Find the register operands. 1124 unsigned FirstFPRegOp = ~0U, SecondFPRegOp = ~0U; 1125 1126 for (unsigned i = 0, e = MI->getNumOperands(); i != e; ++i) { 1127 MachineOperand &Op = MI->getOperand(i); 1128 if (!Op.isReg() || Op.getReg() < X86::FP0 || Op.getReg() > X86::FP6) 1129 continue; 1130 // FP Register uses must be kills unless there are two uses of the same 1131 // register, in which case only one will be a kill. 1132 assert(Op.isUse() && 1133 (Op.isKill() || // Marked kill. 1134 getFPReg(Op) == FirstFPRegOp || // Second instance. 1135 MI->killsRegister(Op.getReg())) && // Later use is marked kill. 1136 "Ret only defs operands, and values aren't live beyond it"); 1137 1138 if (FirstFPRegOp == ~0U) 1139 FirstFPRegOp = getFPReg(Op); 1140 else { 1141 assert(SecondFPRegOp == ~0U && "More than two fp operands!"); 1142 SecondFPRegOp = getFPReg(Op); 1143 } 1144 1145 // Remove the operand so that later passes don't see it. 1146 MI->RemoveOperand(i); 1147 --i, --e; 1148 } 1149 1150 // There are only four possibilities here: 1151 // 1) we are returning a single FP value. In this case, it has to be in 1152 // ST(0) already, so just declare success by removing the value from the 1153 // FP Stack. 1154 if (SecondFPRegOp == ~0U) { 1155 // Assert that the top of stack contains the right FP register. 1156 assert(StackTop == 1 && FirstFPRegOp == getStackEntry(0) && 1157 "Top of stack not the right register for RET!"); 1158 1159 // Ok, everything is good, mark the value as not being on the stack 1160 // anymore so that our assertion about the stack being empty at end of 1161 // block doesn't fire. 1162 StackTop = 0; 1163 return; 1164 } 1165 1166 // Otherwise, we are returning two values: 1167 // 2) If returning the same value for both, we only have one thing in the FP 1168 // stack. Consider: RET FP1, FP1 1169 if (StackTop == 1) { 1170 assert(FirstFPRegOp == SecondFPRegOp && FirstFPRegOp == getStackEntry(0)&& 1171 "Stack misconfiguration for RET!"); 1172 1173 // Duplicate the TOS so that we return it twice. Just pick some other FPx 1174 // register to hold it. 1175 unsigned NewReg = (FirstFPRegOp+1)%7; 1176 duplicateToTop(FirstFPRegOp, NewReg, MI); 1177 FirstFPRegOp = NewReg; 1178 } 1179 1180 /// Okay we know we have two different FPx operands now: 1181 assert(StackTop == 2 && "Must have two values live!"); 1182 1183 /// 3) If SecondFPRegOp is currently in ST(0) and FirstFPRegOp is currently 1184 /// in ST(1). In this case, emit an fxch. 1185 if (getStackEntry(0) == SecondFPRegOp) { 1186 assert(getStackEntry(1) == FirstFPRegOp && "Unknown regs live"); 1187 moveToTop(FirstFPRegOp, MI); 1188 } 1189 1190 /// 4) Finally, FirstFPRegOp must be in ST(0) and SecondFPRegOp must be in 1191 /// ST(1). Just remove both from our understanding of the stack and return. 1192 assert(getStackEntry(0) == FirstFPRegOp && "Unknown regs live"); 1193 assert(getStackEntry(1) == SecondFPRegOp && "Unknown regs live"); 1194 StackTop = 0; 1195 return; 1196 } 1197 1198 I = MBB->erase(I); // Remove the pseudo instruction 1199 --I; 1200 } 1201