1 //===-- X86ISelLowering.cpp - X86 DAG Lowering Implementation -------------===// 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 interfaces that X86 uses to lower LLVM code into a 11 // selection DAG. 12 // 13 //===----------------------------------------------------------------------===// 14 15 #define DEBUG_TYPE "x86-isel" 16 #include "X86.h" 17 #include "X86InstrBuilder.h" 18 #include "X86ISelLowering.h" 19 #include "X86ShuffleDecode.h" 20 #include "X86TargetMachine.h" 21 #include "X86TargetObjectFile.h" 22 #include "llvm/CallingConv.h" 23 #include "llvm/Constants.h" 24 #include "llvm/DerivedTypes.h" 25 #include "llvm/GlobalAlias.h" 26 #include "llvm/GlobalVariable.h" 27 #include "llvm/Function.h" 28 #include "llvm/Instructions.h" 29 #include "llvm/Intrinsics.h" 30 #include "llvm/LLVMContext.h" 31 #include "llvm/CodeGen/MachineFrameInfo.h" 32 #include "llvm/CodeGen/MachineFunction.h" 33 #include "llvm/CodeGen/MachineInstrBuilder.h" 34 #include "llvm/CodeGen/MachineJumpTableInfo.h" 35 #include "llvm/CodeGen/MachineModuleInfo.h" 36 #include "llvm/CodeGen/MachineRegisterInfo.h" 37 #include "llvm/CodeGen/PseudoSourceValue.h" 38 #include "llvm/MC/MCAsmInfo.h" 39 #include "llvm/MC/MCContext.h" 40 #include "llvm/MC/MCExpr.h" 41 #include "llvm/MC/MCSymbol.h" 42 #include "llvm/ADT/BitVector.h" 43 #include "llvm/ADT/SmallSet.h" 44 #include "llvm/ADT/Statistic.h" 45 #include "llvm/ADT/StringExtras.h" 46 #include "llvm/ADT/VectorExtras.h" 47 #include "llvm/Support/CommandLine.h" 48 #include "llvm/Support/Debug.h" 49 #include "llvm/Support/Dwarf.h" 50 #include "llvm/Support/ErrorHandling.h" 51 #include "llvm/Support/MathExtras.h" 52 #include "llvm/Support/raw_ostream.h" 53 using namespace llvm; 54 using namespace dwarf; 55 56 STATISTIC(NumTailCalls, "Number of tail calls"); 57 58 static cl::opt<bool> 59 DisableMMX("disable-mmx", cl::Hidden, cl::desc("Disable use of MMX")); 60 61 // Forward declarations. 62 static SDValue getMOVL(SelectionDAG &DAG, DebugLoc dl, EVT VT, SDValue V1, 63 SDValue V2); 64 65 static TargetLoweringObjectFile *createTLOF(X86TargetMachine &TM) { 66 67 bool is64Bit = TM.getSubtarget<X86Subtarget>().is64Bit(); 68 69 if (TM.getSubtarget<X86Subtarget>().isTargetDarwin()) { 70 if (is64Bit) return new X8664_MachoTargetObjectFile(); 71 return new TargetLoweringObjectFileMachO(); 72 } else if (TM.getSubtarget<X86Subtarget>().isTargetELF() ){ 73 if (is64Bit) return new X8664_ELFTargetObjectFile(TM); 74 return new X8632_ELFTargetObjectFile(TM); 75 } else if (TM.getSubtarget<X86Subtarget>().isTargetCOFF()) { 76 return new TargetLoweringObjectFileCOFF(); 77 } 78 llvm_unreachable("unknown subtarget type"); 79 } 80 81 X86TargetLowering::X86TargetLowering(X86TargetMachine &TM) 82 : TargetLowering(TM, createTLOF(TM)) { 83 Subtarget = &TM.getSubtarget<X86Subtarget>(); 84 X86ScalarSSEf64 = Subtarget->hasSSE2(); 85 X86ScalarSSEf32 = Subtarget->hasSSE1(); 86 X86StackPtr = Subtarget->is64Bit() ? X86::RSP : X86::ESP; 87 88 RegInfo = TM.getRegisterInfo(); 89 TD = getTargetData(); 90 91 // Set up the TargetLowering object. 92 93 // X86 is weird, it always uses i8 for shift amounts and setcc results. 94 setShiftAmountType(MVT::i8); 95 setBooleanContents(ZeroOrOneBooleanContent); 96 setSchedulingPreference(Sched::RegPressure); 97 setStackPointerRegisterToSaveRestore(X86StackPtr); 98 99 if (Subtarget->isTargetDarwin()) { 100 // Darwin should use _setjmp/_longjmp instead of setjmp/longjmp. 101 setUseUnderscoreSetJmp(false); 102 setUseUnderscoreLongJmp(false); 103 } else if (Subtarget->isTargetMingw()) { 104 // MS runtime is weird: it exports _setjmp, but longjmp! 105 setUseUnderscoreSetJmp(true); 106 setUseUnderscoreLongJmp(false); 107 } else { 108 setUseUnderscoreSetJmp(true); 109 setUseUnderscoreLongJmp(true); 110 } 111 112 // Set up the register classes. 113 addRegisterClass(MVT::i8, X86::GR8RegisterClass); 114 addRegisterClass(MVT::i16, X86::GR16RegisterClass); 115 addRegisterClass(MVT::i32, X86::GR32RegisterClass); 116 if (Subtarget->is64Bit()) 117 addRegisterClass(MVT::i64, X86::GR64RegisterClass); 118 119 setLoadExtAction(ISD::SEXTLOAD, MVT::i1, Promote); 120 121 // We don't accept any truncstore of integer registers. 122 setTruncStoreAction(MVT::i64, MVT::i32, Expand); 123 setTruncStoreAction(MVT::i64, MVT::i16, Expand); 124 setTruncStoreAction(MVT::i64, MVT::i8 , Expand); 125 setTruncStoreAction(MVT::i32, MVT::i16, Expand); 126 setTruncStoreAction(MVT::i32, MVT::i8 , Expand); 127 setTruncStoreAction(MVT::i16, MVT::i8, Expand); 128 129 // SETOEQ and SETUNE require checking two conditions. 130 setCondCodeAction(ISD::SETOEQ, MVT::f32, Expand); 131 setCondCodeAction(ISD::SETOEQ, MVT::f64, Expand); 132 setCondCodeAction(ISD::SETOEQ, MVT::f80, Expand); 133 setCondCodeAction(ISD::SETUNE, MVT::f32, Expand); 134 setCondCodeAction(ISD::SETUNE, MVT::f64, Expand); 135 setCondCodeAction(ISD::SETUNE, MVT::f80, Expand); 136 137 // Promote all UINT_TO_FP to larger SINT_TO_FP's, as X86 doesn't have this 138 // operation. 139 setOperationAction(ISD::UINT_TO_FP , MVT::i1 , Promote); 140 setOperationAction(ISD::UINT_TO_FP , MVT::i8 , Promote); 141 setOperationAction(ISD::UINT_TO_FP , MVT::i16 , Promote); 142 143 if (Subtarget->is64Bit()) { 144 setOperationAction(ISD::UINT_TO_FP , MVT::i32 , Promote); 145 setOperationAction(ISD::UINT_TO_FP , MVT::i64 , Expand); 146 } else if (!UseSoftFloat) { 147 // We have an algorithm for SSE2->double, and we turn this into a 148 // 64-bit FILD followed by conditional FADD for other targets. 149 setOperationAction(ISD::UINT_TO_FP , MVT::i64 , Custom); 150 // We have an algorithm for SSE2, and we turn this into a 64-bit 151 // FILD for other targets. 152 setOperationAction(ISD::UINT_TO_FP , MVT::i32 , Custom); 153 } 154 155 // Promote i1/i8 SINT_TO_FP to larger SINT_TO_FP's, as X86 doesn't have 156 // this operation. 157 setOperationAction(ISD::SINT_TO_FP , MVT::i1 , Promote); 158 setOperationAction(ISD::SINT_TO_FP , MVT::i8 , Promote); 159 160 if (!UseSoftFloat) { 161 // SSE has no i16 to fp conversion, only i32 162 if (X86ScalarSSEf32) { 163 setOperationAction(ISD::SINT_TO_FP , MVT::i16 , Promote); 164 // f32 and f64 cases are Legal, f80 case is not 165 setOperationAction(ISD::SINT_TO_FP , MVT::i32 , Custom); 166 } else { 167 setOperationAction(ISD::SINT_TO_FP , MVT::i16 , Custom); 168 setOperationAction(ISD::SINT_TO_FP , MVT::i32 , Custom); 169 } 170 } else { 171 setOperationAction(ISD::SINT_TO_FP , MVT::i16 , Promote); 172 setOperationAction(ISD::SINT_TO_FP , MVT::i32 , Promote); 173 } 174 175 // In 32-bit mode these are custom lowered. In 64-bit mode F32 and F64 176 // are Legal, f80 is custom lowered. 177 setOperationAction(ISD::FP_TO_SINT , MVT::i64 , Custom); 178 setOperationAction(ISD::SINT_TO_FP , MVT::i64 , Custom); 179 180 // Promote i1/i8 FP_TO_SINT to larger FP_TO_SINTS's, as X86 doesn't have 181 // this operation. 182 setOperationAction(ISD::FP_TO_SINT , MVT::i1 , Promote); 183 setOperationAction(ISD::FP_TO_SINT , MVT::i8 , Promote); 184 185 if (X86ScalarSSEf32) { 186 setOperationAction(ISD::FP_TO_SINT , MVT::i16 , Promote); 187 // f32 and f64 cases are Legal, f80 case is not 188 setOperationAction(ISD::FP_TO_SINT , MVT::i32 , Custom); 189 } else { 190 setOperationAction(ISD::FP_TO_SINT , MVT::i16 , Custom); 191 setOperationAction(ISD::FP_TO_SINT , MVT::i32 , Custom); 192 } 193 194 // Handle FP_TO_UINT by promoting the destination to a larger signed 195 // conversion. 196 setOperationAction(ISD::FP_TO_UINT , MVT::i1 , Promote); 197 setOperationAction(ISD::FP_TO_UINT , MVT::i8 , Promote); 198 setOperationAction(ISD::FP_TO_UINT , MVT::i16 , Promote); 199 200 if (Subtarget->is64Bit()) { 201 setOperationAction(ISD::FP_TO_UINT , MVT::i64 , Expand); 202 setOperationAction(ISD::FP_TO_UINT , MVT::i32 , Promote); 203 } else if (!UseSoftFloat) { 204 if (X86ScalarSSEf32 && !Subtarget->hasSSE3()) 205 // Expand FP_TO_UINT into a select. 206 // FIXME: We would like to use a Custom expander here eventually to do 207 // the optimal thing for SSE vs. the default expansion in the legalizer. 208 setOperationAction(ISD::FP_TO_UINT , MVT::i32 , Expand); 209 else 210 // With SSE3 we can use fisttpll to convert to a signed i64; without 211 // SSE, we're stuck with a fistpll. 212 setOperationAction(ISD::FP_TO_UINT , MVT::i32 , Custom); 213 } 214 215 // TODO: when we have SSE, these could be more efficient, by using movd/movq. 216 if (!X86ScalarSSEf64) { 217 setOperationAction(ISD::BIT_CONVERT , MVT::f32 , Expand); 218 setOperationAction(ISD::BIT_CONVERT , MVT::i32 , Expand); 219 if (Subtarget->is64Bit()) { 220 setOperationAction(ISD::BIT_CONVERT , MVT::f64 , Expand); 221 // Without SSE, i64->f64 goes through memory; i64->MMX is Legal. 222 if (Subtarget->hasMMX() && !DisableMMX) 223 setOperationAction(ISD::BIT_CONVERT , MVT::i64 , Custom); 224 else 225 setOperationAction(ISD::BIT_CONVERT , MVT::i64 , Expand); 226 } 227 } 228 229 // Scalar integer divide and remainder are lowered to use operations that 230 // produce two results, to match the available instructions. This exposes 231 // the two-result form to trivial CSE, which is able to combine x/y and x%y 232 // into a single instruction. 233 // 234 // Scalar integer multiply-high is also lowered to use two-result 235 // operations, to match the available instructions. However, plain multiply 236 // (low) operations are left as Legal, as there are single-result 237 // instructions for this in x86. Using the two-result multiply instructions 238 // when both high and low results are needed must be arranged by dagcombine. 239 setOperationAction(ISD::MULHS , MVT::i8 , Expand); 240 setOperationAction(ISD::MULHU , MVT::i8 , Expand); 241 setOperationAction(ISD::SDIV , MVT::i8 , Expand); 242 setOperationAction(ISD::UDIV , MVT::i8 , Expand); 243 setOperationAction(ISD::SREM , MVT::i8 , Expand); 244 setOperationAction(ISD::UREM , MVT::i8 , Expand); 245 setOperationAction(ISD::MULHS , MVT::i16 , Expand); 246 setOperationAction(ISD::MULHU , MVT::i16 , Expand); 247 setOperationAction(ISD::SDIV , MVT::i16 , Expand); 248 setOperationAction(ISD::UDIV , MVT::i16 , Expand); 249 setOperationAction(ISD::SREM , MVT::i16 , Expand); 250 setOperationAction(ISD::UREM , MVT::i16 , Expand); 251 setOperationAction(ISD::MULHS , MVT::i32 , Expand); 252 setOperationAction(ISD::MULHU , MVT::i32 , Expand); 253 setOperationAction(ISD::SDIV , MVT::i32 , Expand); 254 setOperationAction(ISD::UDIV , MVT::i32 , Expand); 255 setOperationAction(ISD::SREM , MVT::i32 , Expand); 256 setOperationAction(ISD::UREM , MVT::i32 , Expand); 257 setOperationAction(ISD::MULHS , MVT::i64 , Expand); 258 setOperationAction(ISD::MULHU , MVT::i64 , Expand); 259 setOperationAction(ISD::SDIV , MVT::i64 , Expand); 260 setOperationAction(ISD::UDIV , MVT::i64 , Expand); 261 setOperationAction(ISD::SREM , MVT::i64 , Expand); 262 setOperationAction(ISD::UREM , MVT::i64 , Expand); 263 264 setOperationAction(ISD::BR_JT , MVT::Other, Expand); 265 setOperationAction(ISD::BRCOND , MVT::Other, Custom); 266 setOperationAction(ISD::BR_CC , MVT::Other, Expand); 267 setOperationAction(ISD::SELECT_CC , MVT::Other, Expand); 268 if (Subtarget->is64Bit()) 269 setOperationAction(ISD::SIGN_EXTEND_INREG, MVT::i32, Legal); 270 setOperationAction(ISD::SIGN_EXTEND_INREG, MVT::i16 , Legal); 271 setOperationAction(ISD::SIGN_EXTEND_INREG, MVT::i8 , Legal); 272 setOperationAction(ISD::SIGN_EXTEND_INREG, MVT::i1 , Expand); 273 setOperationAction(ISD::FP_ROUND_INREG , MVT::f32 , Expand); 274 setOperationAction(ISD::FREM , MVT::f32 , Expand); 275 setOperationAction(ISD::FREM , MVT::f64 , Expand); 276 setOperationAction(ISD::FREM , MVT::f80 , Expand); 277 setOperationAction(ISD::FLT_ROUNDS_ , MVT::i32 , Custom); 278 279 setOperationAction(ISD::CTPOP , MVT::i8 , Expand); 280 setOperationAction(ISD::CTTZ , MVT::i8 , Custom); 281 setOperationAction(ISD::CTLZ , MVT::i8 , Custom); 282 setOperationAction(ISD::CTPOP , MVT::i16 , Expand); 283 setOperationAction(ISD::CTTZ , MVT::i16 , Custom); 284 setOperationAction(ISD::CTLZ , MVT::i16 , Custom); 285 setOperationAction(ISD::CTPOP , MVT::i32 , Expand); 286 setOperationAction(ISD::CTTZ , MVT::i32 , Custom); 287 setOperationAction(ISD::CTLZ , MVT::i32 , Custom); 288 if (Subtarget->is64Bit()) { 289 setOperationAction(ISD::CTPOP , MVT::i64 , Expand); 290 setOperationAction(ISD::CTTZ , MVT::i64 , Custom); 291 setOperationAction(ISD::CTLZ , MVT::i64 , Custom); 292 } 293 294 setOperationAction(ISD::READCYCLECOUNTER , MVT::i64 , Custom); 295 setOperationAction(ISD::BSWAP , MVT::i16 , Expand); 296 297 // These should be promoted to a larger select which is supported. 298 setOperationAction(ISD::SELECT , MVT::i1 , Promote); 299 // X86 wants to expand cmov itself. 300 setOperationAction(ISD::SELECT , MVT::i8 , Custom); 301 setOperationAction(ISD::SELECT , MVT::i16 , Custom); 302 setOperationAction(ISD::SELECT , MVT::i32 , Custom); 303 setOperationAction(ISD::SELECT , MVT::f32 , Custom); 304 setOperationAction(ISD::SELECT , MVT::f64 , Custom); 305 setOperationAction(ISD::SELECT , MVT::f80 , Custom); 306 setOperationAction(ISD::SETCC , MVT::i8 , Custom); 307 setOperationAction(ISD::SETCC , MVT::i16 , Custom); 308 setOperationAction(ISD::SETCC , MVT::i32 , Custom); 309 setOperationAction(ISD::SETCC , MVT::f32 , Custom); 310 setOperationAction(ISD::SETCC , MVT::f64 , Custom); 311 setOperationAction(ISD::SETCC , MVT::f80 , Custom); 312 if (Subtarget->is64Bit()) { 313 setOperationAction(ISD::SELECT , MVT::i64 , Custom); 314 setOperationAction(ISD::SETCC , MVT::i64 , Custom); 315 } 316 setOperationAction(ISD::EH_RETURN , MVT::Other, Custom); 317 318 // Darwin ABI issue. 319 setOperationAction(ISD::ConstantPool , MVT::i32 , Custom); 320 setOperationAction(ISD::JumpTable , MVT::i32 , Custom); 321 setOperationAction(ISD::GlobalAddress , MVT::i32 , Custom); 322 setOperationAction(ISD::GlobalTLSAddress, MVT::i32 , Custom); 323 if (Subtarget->is64Bit()) 324 setOperationAction(ISD::GlobalTLSAddress, MVT::i64, Custom); 325 setOperationAction(ISD::ExternalSymbol , MVT::i32 , Custom); 326 setOperationAction(ISD::BlockAddress , MVT::i32 , Custom); 327 if (Subtarget->is64Bit()) { 328 setOperationAction(ISD::ConstantPool , MVT::i64 , Custom); 329 setOperationAction(ISD::JumpTable , MVT::i64 , Custom); 330 setOperationAction(ISD::GlobalAddress , MVT::i64 , Custom); 331 setOperationAction(ISD::ExternalSymbol, MVT::i64 , Custom); 332 setOperationAction(ISD::BlockAddress , MVT::i64 , Custom); 333 } 334 // 64-bit addm sub, shl, sra, srl (iff 32-bit x86) 335 setOperationAction(ISD::SHL_PARTS , MVT::i32 , Custom); 336 setOperationAction(ISD::SRA_PARTS , MVT::i32 , Custom); 337 setOperationAction(ISD::SRL_PARTS , MVT::i32 , Custom); 338 if (Subtarget->is64Bit()) { 339 setOperationAction(ISD::SHL_PARTS , MVT::i64 , Custom); 340 setOperationAction(ISD::SRA_PARTS , MVT::i64 , Custom); 341 setOperationAction(ISD::SRL_PARTS , MVT::i64 , Custom); 342 } 343 344 if (Subtarget->hasSSE1()) 345 setOperationAction(ISD::PREFETCH , MVT::Other, Legal); 346 347 // We may not have a libcall for MEMBARRIER so we should lower this. 348 setOperationAction(ISD::MEMBARRIER , MVT::Other, Custom); 349 350 // On X86 and X86-64, atomic operations are lowered to locked instructions. 351 // Locked instructions, in turn, have implicit fence semantics (all memory 352 // operations are flushed before issuing the locked instruction, and they 353 // are not buffered), so we can fold away the common pattern of 354 // fence-atomic-fence. 355 setShouldFoldAtomicFences(true); 356 357 // Expand certain atomics 358 setOperationAction(ISD::ATOMIC_CMP_SWAP, MVT::i8, Custom); 359 setOperationAction(ISD::ATOMIC_CMP_SWAP, MVT::i16, Custom); 360 setOperationAction(ISD::ATOMIC_CMP_SWAP, MVT::i32, Custom); 361 setOperationAction(ISD::ATOMIC_CMP_SWAP, MVT::i64, Custom); 362 363 setOperationAction(ISD::ATOMIC_LOAD_SUB, MVT::i8, Custom); 364 setOperationAction(ISD::ATOMIC_LOAD_SUB, MVT::i16, Custom); 365 setOperationAction(ISD::ATOMIC_LOAD_SUB, MVT::i32, Custom); 366 setOperationAction(ISD::ATOMIC_LOAD_SUB, MVT::i64, Custom); 367 368 if (!Subtarget->is64Bit()) { 369 setOperationAction(ISD::ATOMIC_LOAD_ADD, MVT::i64, Custom); 370 setOperationAction(ISD::ATOMIC_LOAD_SUB, MVT::i64, Custom); 371 setOperationAction(ISD::ATOMIC_LOAD_AND, MVT::i64, Custom); 372 setOperationAction(ISD::ATOMIC_LOAD_OR, MVT::i64, Custom); 373 setOperationAction(ISD::ATOMIC_LOAD_XOR, MVT::i64, Custom); 374 setOperationAction(ISD::ATOMIC_LOAD_NAND, MVT::i64, Custom); 375 setOperationAction(ISD::ATOMIC_SWAP, MVT::i64, Custom); 376 } 377 378 // FIXME - use subtarget debug flags 379 if (!Subtarget->isTargetDarwin() && 380 !Subtarget->isTargetELF() && 381 !Subtarget->isTargetCygMing()) { 382 setOperationAction(ISD::EH_LABEL, MVT::Other, Expand); 383 } 384 385 setOperationAction(ISD::EXCEPTIONADDR, MVT::i64, Expand); 386 setOperationAction(ISD::EHSELECTION, MVT::i64, Expand); 387 setOperationAction(ISD::EXCEPTIONADDR, MVT::i32, Expand); 388 setOperationAction(ISD::EHSELECTION, MVT::i32, Expand); 389 if (Subtarget->is64Bit()) { 390 setExceptionPointerRegister(X86::RAX); 391 setExceptionSelectorRegister(X86::RDX); 392 } else { 393 setExceptionPointerRegister(X86::EAX); 394 setExceptionSelectorRegister(X86::EDX); 395 } 396 setOperationAction(ISD::FRAME_TO_ARGS_OFFSET, MVT::i32, Custom); 397 setOperationAction(ISD::FRAME_TO_ARGS_OFFSET, MVT::i64, Custom); 398 399 setOperationAction(ISD::TRAMPOLINE, MVT::Other, Custom); 400 401 setOperationAction(ISD::TRAP, MVT::Other, Legal); 402 403 // VASTART needs to be custom lowered to use the VarArgsFrameIndex 404 setOperationAction(ISD::VASTART , MVT::Other, Custom); 405 setOperationAction(ISD::VAEND , MVT::Other, Expand); 406 if (Subtarget->is64Bit()) { 407 setOperationAction(ISD::VAARG , MVT::Other, Custom); 408 setOperationAction(ISD::VACOPY , MVT::Other, Custom); 409 } else { 410 setOperationAction(ISD::VAARG , MVT::Other, Expand); 411 setOperationAction(ISD::VACOPY , MVT::Other, Expand); 412 } 413 414 setOperationAction(ISD::STACKSAVE, MVT::Other, Expand); 415 setOperationAction(ISD::STACKRESTORE, MVT::Other, Expand); 416 if (Subtarget->is64Bit()) 417 setOperationAction(ISD::DYNAMIC_STACKALLOC, MVT::i64, Expand); 418 if (Subtarget->isTargetCygMing()) 419 setOperationAction(ISD::DYNAMIC_STACKALLOC, MVT::i32, Custom); 420 else 421 setOperationAction(ISD::DYNAMIC_STACKALLOC, MVT::i32, Expand); 422 423 if (!UseSoftFloat && X86ScalarSSEf64) { 424 // f32 and f64 use SSE. 425 // Set up the FP register classes. 426 addRegisterClass(MVT::f32, X86::FR32RegisterClass); 427 addRegisterClass(MVT::f64, X86::FR64RegisterClass); 428 429 // Use ANDPD to simulate FABS. 430 setOperationAction(ISD::FABS , MVT::f64, Custom); 431 setOperationAction(ISD::FABS , MVT::f32, Custom); 432 433 // Use XORP to simulate FNEG. 434 setOperationAction(ISD::FNEG , MVT::f64, Custom); 435 setOperationAction(ISD::FNEG , MVT::f32, Custom); 436 437 // Use ANDPD and ORPD to simulate FCOPYSIGN. 438 setOperationAction(ISD::FCOPYSIGN, MVT::f64, Custom); 439 setOperationAction(ISD::FCOPYSIGN, MVT::f32, Custom); 440 441 // We don't support sin/cos/fmod 442 setOperationAction(ISD::FSIN , MVT::f64, Expand); 443 setOperationAction(ISD::FCOS , MVT::f64, Expand); 444 setOperationAction(ISD::FSIN , MVT::f32, Expand); 445 setOperationAction(ISD::FCOS , MVT::f32, Expand); 446 447 // Expand FP immediates into loads from the stack, except for the special 448 // cases we handle. 449 addLegalFPImmediate(APFloat(+0.0)); // xorpd 450 addLegalFPImmediate(APFloat(+0.0f)); // xorps 451 } else if (!UseSoftFloat && X86ScalarSSEf32) { 452 // Use SSE for f32, x87 for f64. 453 // Set up the FP register classes. 454 addRegisterClass(MVT::f32, X86::FR32RegisterClass); 455 addRegisterClass(MVT::f64, X86::RFP64RegisterClass); 456 457 // Use ANDPS to simulate FABS. 458 setOperationAction(ISD::FABS , MVT::f32, Custom); 459 460 // Use XORP to simulate FNEG. 461 setOperationAction(ISD::FNEG , MVT::f32, Custom); 462 463 setOperationAction(ISD::UNDEF, MVT::f64, Expand); 464 465 // Use ANDPS and ORPS to simulate FCOPYSIGN. 466 setOperationAction(ISD::FCOPYSIGN, MVT::f64, Expand); 467 setOperationAction(ISD::FCOPYSIGN, MVT::f32, Custom); 468 469 // We don't support sin/cos/fmod 470 setOperationAction(ISD::FSIN , MVT::f32, Expand); 471 setOperationAction(ISD::FCOS , MVT::f32, Expand); 472 473 // Special cases we handle for FP constants. 474 addLegalFPImmediate(APFloat(+0.0f)); // xorps 475 addLegalFPImmediate(APFloat(+0.0)); // FLD0 476 addLegalFPImmediate(APFloat(+1.0)); // FLD1 477 addLegalFPImmediate(APFloat(-0.0)); // FLD0/FCHS 478 addLegalFPImmediate(APFloat(-1.0)); // FLD1/FCHS 479 480 if (!UnsafeFPMath) { 481 setOperationAction(ISD::FSIN , MVT::f64 , Expand); 482 setOperationAction(ISD::FCOS , MVT::f64 , Expand); 483 } 484 } else if (!UseSoftFloat) { 485 // f32 and f64 in x87. 486 // Set up the FP register classes. 487 addRegisterClass(MVT::f64, X86::RFP64RegisterClass); 488 addRegisterClass(MVT::f32, X86::RFP32RegisterClass); 489 490 setOperationAction(ISD::UNDEF, MVT::f64, Expand); 491 setOperationAction(ISD::UNDEF, MVT::f32, Expand); 492 setOperationAction(ISD::FCOPYSIGN, MVT::f64, Expand); 493 setOperationAction(ISD::FCOPYSIGN, MVT::f32, Expand); 494 495 if (!UnsafeFPMath) { 496 setOperationAction(ISD::FSIN , MVT::f64 , Expand); 497 setOperationAction(ISD::FCOS , MVT::f64 , Expand); 498 } 499 addLegalFPImmediate(APFloat(+0.0)); // FLD0 500 addLegalFPImmediate(APFloat(+1.0)); // FLD1 501 addLegalFPImmediate(APFloat(-0.0)); // FLD0/FCHS 502 addLegalFPImmediate(APFloat(-1.0)); // FLD1/FCHS 503 addLegalFPImmediate(APFloat(+0.0f)); // FLD0 504 addLegalFPImmediate(APFloat(+1.0f)); // FLD1 505 addLegalFPImmediate(APFloat(-0.0f)); // FLD0/FCHS 506 addLegalFPImmediate(APFloat(-1.0f)); // FLD1/FCHS 507 } 508 509 // Long double always uses X87. 510 if (!UseSoftFloat) { 511 addRegisterClass(MVT::f80, X86::RFP80RegisterClass); 512 setOperationAction(ISD::UNDEF, MVT::f80, Expand); 513 setOperationAction(ISD::FCOPYSIGN, MVT::f80, Expand); 514 { 515 bool ignored; 516 APFloat TmpFlt(+0.0); 517 TmpFlt.convert(APFloat::x87DoubleExtended, APFloat::rmNearestTiesToEven, 518 &ignored); 519 addLegalFPImmediate(TmpFlt); // FLD0 520 TmpFlt.changeSign(); 521 addLegalFPImmediate(TmpFlt); // FLD0/FCHS 522 APFloat TmpFlt2(+1.0); 523 TmpFlt2.convert(APFloat::x87DoubleExtended, APFloat::rmNearestTiesToEven, 524 &ignored); 525 addLegalFPImmediate(TmpFlt2); // FLD1 526 TmpFlt2.changeSign(); 527 addLegalFPImmediate(TmpFlt2); // FLD1/FCHS 528 } 529 530 if (!UnsafeFPMath) { 531 setOperationAction(ISD::FSIN , MVT::f80 , Expand); 532 setOperationAction(ISD::FCOS , MVT::f80 , Expand); 533 } 534 } 535 536 // Always use a library call for pow. 537 setOperationAction(ISD::FPOW , MVT::f32 , Expand); 538 setOperationAction(ISD::FPOW , MVT::f64 , Expand); 539 setOperationAction(ISD::FPOW , MVT::f80 , Expand); 540 541 setOperationAction(ISD::FLOG, MVT::f80, Expand); 542 setOperationAction(ISD::FLOG2, MVT::f80, Expand); 543 setOperationAction(ISD::FLOG10, MVT::f80, Expand); 544 setOperationAction(ISD::FEXP, MVT::f80, Expand); 545 setOperationAction(ISD::FEXP2, MVT::f80, Expand); 546 547 // First set operation action for all vector types to either promote 548 // (for widening) or expand (for scalarization). Then we will selectively 549 // turn on ones that can be effectively codegen'd. 550 for (unsigned VT = (unsigned)MVT::FIRST_VECTOR_VALUETYPE; 551 VT <= (unsigned)MVT::LAST_VECTOR_VALUETYPE; ++VT) { 552 setOperationAction(ISD::ADD , (MVT::SimpleValueType)VT, Expand); 553 setOperationAction(ISD::SUB , (MVT::SimpleValueType)VT, Expand); 554 setOperationAction(ISD::FADD, (MVT::SimpleValueType)VT, Expand); 555 setOperationAction(ISD::FNEG, (MVT::SimpleValueType)VT, Expand); 556 setOperationAction(ISD::FSUB, (MVT::SimpleValueType)VT, Expand); 557 setOperationAction(ISD::MUL , (MVT::SimpleValueType)VT, Expand); 558 setOperationAction(ISD::FMUL, (MVT::SimpleValueType)VT, Expand); 559 setOperationAction(ISD::SDIV, (MVT::SimpleValueType)VT, Expand); 560 setOperationAction(ISD::UDIV, (MVT::SimpleValueType)VT, Expand); 561 setOperationAction(ISD::FDIV, (MVT::SimpleValueType)VT, Expand); 562 setOperationAction(ISD::SREM, (MVT::SimpleValueType)VT, Expand); 563 setOperationAction(ISD::UREM, (MVT::SimpleValueType)VT, Expand); 564 setOperationAction(ISD::LOAD, (MVT::SimpleValueType)VT, Expand); 565 setOperationAction(ISD::VECTOR_SHUFFLE, (MVT::SimpleValueType)VT, Expand); 566 setOperationAction(ISD::EXTRACT_VECTOR_ELT,(MVT::SimpleValueType)VT,Expand); 567 setOperationAction(ISD::EXTRACT_SUBVECTOR,(MVT::SimpleValueType)VT,Expand); 568 setOperationAction(ISD::INSERT_VECTOR_ELT,(MVT::SimpleValueType)VT, Expand); 569 setOperationAction(ISD::FABS, (MVT::SimpleValueType)VT, Expand); 570 setOperationAction(ISD::FSIN, (MVT::SimpleValueType)VT, Expand); 571 setOperationAction(ISD::FCOS, (MVT::SimpleValueType)VT, Expand); 572 setOperationAction(ISD::FREM, (MVT::SimpleValueType)VT, Expand); 573 setOperationAction(ISD::FPOWI, (MVT::SimpleValueType)VT, Expand); 574 setOperationAction(ISD::FSQRT, (MVT::SimpleValueType)VT, Expand); 575 setOperationAction(ISD::FCOPYSIGN, (MVT::SimpleValueType)VT, Expand); 576 setOperationAction(ISD::SMUL_LOHI, (MVT::SimpleValueType)VT, Expand); 577 setOperationAction(ISD::UMUL_LOHI, (MVT::SimpleValueType)VT, Expand); 578 setOperationAction(ISD::SDIVREM, (MVT::SimpleValueType)VT, Expand); 579 setOperationAction(ISD::UDIVREM, (MVT::SimpleValueType)VT, Expand); 580 setOperationAction(ISD::FPOW, (MVT::SimpleValueType)VT, Expand); 581 setOperationAction(ISD::CTPOP, (MVT::SimpleValueType)VT, Expand); 582 setOperationAction(ISD::CTTZ, (MVT::SimpleValueType)VT, Expand); 583 setOperationAction(ISD::CTLZ, (MVT::SimpleValueType)VT, Expand); 584 setOperationAction(ISD::SHL, (MVT::SimpleValueType)VT, Expand); 585 setOperationAction(ISD::SRA, (MVT::SimpleValueType)VT, Expand); 586 setOperationAction(ISD::SRL, (MVT::SimpleValueType)VT, Expand); 587 setOperationAction(ISD::ROTL, (MVT::SimpleValueType)VT, Expand); 588 setOperationAction(ISD::ROTR, (MVT::SimpleValueType)VT, Expand); 589 setOperationAction(ISD::BSWAP, (MVT::SimpleValueType)VT, Expand); 590 setOperationAction(ISD::VSETCC, (MVT::SimpleValueType)VT, Expand); 591 setOperationAction(ISD::FLOG, (MVT::SimpleValueType)VT, Expand); 592 setOperationAction(ISD::FLOG2, (MVT::SimpleValueType)VT, Expand); 593 setOperationAction(ISD::FLOG10, (MVT::SimpleValueType)VT, Expand); 594 setOperationAction(ISD::FEXP, (MVT::SimpleValueType)VT, Expand); 595 setOperationAction(ISD::FEXP2, (MVT::SimpleValueType)VT, Expand); 596 setOperationAction(ISD::FP_TO_UINT, (MVT::SimpleValueType)VT, Expand); 597 setOperationAction(ISD::FP_TO_SINT, (MVT::SimpleValueType)VT, Expand); 598 setOperationAction(ISD::UINT_TO_FP, (MVT::SimpleValueType)VT, Expand); 599 setOperationAction(ISD::SINT_TO_FP, (MVT::SimpleValueType)VT, Expand); 600 setOperationAction(ISD::SIGN_EXTEND_INREG, (MVT::SimpleValueType)VT,Expand); 601 setOperationAction(ISD::TRUNCATE, (MVT::SimpleValueType)VT, Expand); 602 setOperationAction(ISD::SIGN_EXTEND, (MVT::SimpleValueType)VT, Expand); 603 setOperationAction(ISD::ZERO_EXTEND, (MVT::SimpleValueType)VT, Expand); 604 setOperationAction(ISD::ANY_EXTEND, (MVT::SimpleValueType)VT, Expand); 605 for (unsigned InnerVT = (unsigned)MVT::FIRST_VECTOR_VALUETYPE; 606 InnerVT <= (unsigned)MVT::LAST_VECTOR_VALUETYPE; ++InnerVT) 607 setTruncStoreAction((MVT::SimpleValueType)VT, 608 (MVT::SimpleValueType)InnerVT, Expand); 609 setLoadExtAction(ISD::SEXTLOAD, (MVT::SimpleValueType)VT, Expand); 610 setLoadExtAction(ISD::ZEXTLOAD, (MVT::SimpleValueType)VT, Expand); 611 setLoadExtAction(ISD::EXTLOAD, (MVT::SimpleValueType)VT, Expand); 612 } 613 614 // FIXME: In order to prevent SSE instructions being expanded to MMX ones 615 // with -msoft-float, disable use of MMX as well. 616 if (!UseSoftFloat && !DisableMMX && Subtarget->hasMMX()) { 617 addRegisterClass(MVT::v8i8, X86::VR64RegisterClass, false); 618 addRegisterClass(MVT::v4i16, X86::VR64RegisterClass, false); 619 addRegisterClass(MVT::v2i32, X86::VR64RegisterClass, false); 620 621 addRegisterClass(MVT::v1i64, X86::VR64RegisterClass, false); 622 623 setOperationAction(ISD::ADD, MVT::v8i8, Legal); 624 setOperationAction(ISD::ADD, MVT::v4i16, Legal); 625 setOperationAction(ISD::ADD, MVT::v2i32, Legal); 626 setOperationAction(ISD::ADD, MVT::v1i64, Legal); 627 628 setOperationAction(ISD::SUB, MVT::v8i8, Legal); 629 setOperationAction(ISD::SUB, MVT::v4i16, Legal); 630 setOperationAction(ISD::SUB, MVT::v2i32, Legal); 631 setOperationAction(ISD::SUB, MVT::v1i64, Legal); 632 633 setOperationAction(ISD::MULHS, MVT::v4i16, Legal); 634 setOperationAction(ISD::MUL, MVT::v4i16, Legal); 635 636 setOperationAction(ISD::AND, MVT::v8i8, Promote); 637 AddPromotedToType (ISD::AND, MVT::v8i8, MVT::v1i64); 638 setOperationAction(ISD::AND, MVT::v4i16, Promote); 639 AddPromotedToType (ISD::AND, MVT::v4i16, MVT::v1i64); 640 setOperationAction(ISD::AND, MVT::v2i32, Promote); 641 AddPromotedToType (ISD::AND, MVT::v2i32, MVT::v1i64); 642 setOperationAction(ISD::AND, MVT::v1i64, Legal); 643 644 setOperationAction(ISD::OR, MVT::v8i8, Promote); 645 AddPromotedToType (ISD::OR, MVT::v8i8, MVT::v1i64); 646 setOperationAction(ISD::OR, MVT::v4i16, Promote); 647 AddPromotedToType (ISD::OR, MVT::v4i16, MVT::v1i64); 648 setOperationAction(ISD::OR, MVT::v2i32, Promote); 649 AddPromotedToType (ISD::OR, MVT::v2i32, MVT::v1i64); 650 setOperationAction(ISD::OR, MVT::v1i64, Legal); 651 652 setOperationAction(ISD::XOR, MVT::v8i8, Promote); 653 AddPromotedToType (ISD::XOR, MVT::v8i8, MVT::v1i64); 654 setOperationAction(ISD::XOR, MVT::v4i16, Promote); 655 AddPromotedToType (ISD::XOR, MVT::v4i16, MVT::v1i64); 656 setOperationAction(ISD::XOR, MVT::v2i32, Promote); 657 AddPromotedToType (ISD::XOR, MVT::v2i32, MVT::v1i64); 658 setOperationAction(ISD::XOR, MVT::v1i64, Legal); 659 660 setOperationAction(ISD::LOAD, MVT::v8i8, Promote); 661 AddPromotedToType (ISD::LOAD, MVT::v8i8, MVT::v1i64); 662 setOperationAction(ISD::LOAD, MVT::v4i16, Promote); 663 AddPromotedToType (ISD::LOAD, MVT::v4i16, MVT::v1i64); 664 setOperationAction(ISD::LOAD, MVT::v2i32, Promote); 665 AddPromotedToType (ISD::LOAD, MVT::v2i32, MVT::v1i64); 666 setOperationAction(ISD::LOAD, MVT::v1i64, Legal); 667 668 setOperationAction(ISD::BUILD_VECTOR, MVT::v8i8, Custom); 669 setOperationAction(ISD::BUILD_VECTOR, MVT::v4i16, Custom); 670 setOperationAction(ISD::BUILD_VECTOR, MVT::v2i32, Custom); 671 setOperationAction(ISD::BUILD_VECTOR, MVT::v1i64, Custom); 672 673 setOperationAction(ISD::VECTOR_SHUFFLE, MVT::v8i8, Custom); 674 setOperationAction(ISD::VECTOR_SHUFFLE, MVT::v4i16, Custom); 675 setOperationAction(ISD::VECTOR_SHUFFLE, MVT::v2i32, Custom); 676 setOperationAction(ISD::VECTOR_SHUFFLE, MVT::v1i64, Custom); 677 678 setOperationAction(ISD::SCALAR_TO_VECTOR, MVT::v8i8, Custom); 679 setOperationAction(ISD::SCALAR_TO_VECTOR, MVT::v4i16, Custom); 680 setOperationAction(ISD::SCALAR_TO_VECTOR, MVT::v1i64, Custom); 681 682 setOperationAction(ISD::INSERT_VECTOR_ELT, MVT::v4i16, Custom); 683 684 setOperationAction(ISD::SELECT, MVT::v8i8, Promote); 685 setOperationAction(ISD::SELECT, MVT::v4i16, Promote); 686 setOperationAction(ISD::SELECT, MVT::v2i32, Promote); 687 setOperationAction(ISD::SELECT, MVT::v1i64, Custom); 688 setOperationAction(ISD::VSETCC, MVT::v8i8, Custom); 689 setOperationAction(ISD::VSETCC, MVT::v4i16, Custom); 690 setOperationAction(ISD::VSETCC, MVT::v2i32, Custom); 691 692 if (!X86ScalarSSEf64 && Subtarget->is64Bit()) { 693 setOperationAction(ISD::BIT_CONVERT, MVT::v8i8, Custom); 694 setOperationAction(ISD::BIT_CONVERT, MVT::v4i16, Custom); 695 setOperationAction(ISD::BIT_CONVERT, MVT::v2i32, Custom); 696 setOperationAction(ISD::BIT_CONVERT, MVT::v1i64, Custom); 697 } 698 } 699 700 if (!UseSoftFloat && Subtarget->hasSSE1()) { 701 addRegisterClass(MVT::v4f32, X86::VR128RegisterClass); 702 703 setOperationAction(ISD::FADD, MVT::v4f32, Legal); 704 setOperationAction(ISD::FSUB, MVT::v4f32, Legal); 705 setOperationAction(ISD::FMUL, MVT::v4f32, Legal); 706 setOperationAction(ISD::FDIV, MVT::v4f32, Legal); 707 setOperationAction(ISD::FSQRT, MVT::v4f32, Legal); 708 setOperationAction(ISD::FNEG, MVT::v4f32, Custom); 709 setOperationAction(ISD::LOAD, MVT::v4f32, Legal); 710 setOperationAction(ISD::BUILD_VECTOR, MVT::v4f32, Custom); 711 setOperationAction(ISD::VECTOR_SHUFFLE, MVT::v4f32, Custom); 712 setOperationAction(ISD::EXTRACT_VECTOR_ELT, MVT::v4f32, Custom); 713 setOperationAction(ISD::SELECT, MVT::v4f32, Custom); 714 setOperationAction(ISD::VSETCC, MVT::v4f32, Custom); 715 } 716 717 if (!UseSoftFloat && Subtarget->hasSSE2()) { 718 addRegisterClass(MVT::v2f64, X86::VR128RegisterClass); 719 720 // FIXME: Unfortunately -soft-float and -no-implicit-float means XMM 721 // registers cannot be used even for integer operations. 722 addRegisterClass(MVT::v16i8, X86::VR128RegisterClass); 723 addRegisterClass(MVT::v8i16, X86::VR128RegisterClass); 724 addRegisterClass(MVT::v4i32, X86::VR128RegisterClass); 725 addRegisterClass(MVT::v2i64, X86::VR128RegisterClass); 726 727 setOperationAction(ISD::ADD, MVT::v16i8, Legal); 728 setOperationAction(ISD::ADD, MVT::v8i16, Legal); 729 setOperationAction(ISD::ADD, MVT::v4i32, Legal); 730 setOperationAction(ISD::ADD, MVT::v2i64, Legal); 731 setOperationAction(ISD::MUL, MVT::v2i64, Custom); 732 setOperationAction(ISD::SUB, MVT::v16i8, Legal); 733 setOperationAction(ISD::SUB, MVT::v8i16, Legal); 734 setOperationAction(ISD::SUB, MVT::v4i32, Legal); 735 setOperationAction(ISD::SUB, MVT::v2i64, Legal); 736 setOperationAction(ISD::MUL, MVT::v8i16, Legal); 737 setOperationAction(ISD::FADD, MVT::v2f64, Legal); 738 setOperationAction(ISD::FSUB, MVT::v2f64, Legal); 739 setOperationAction(ISD::FMUL, MVT::v2f64, Legal); 740 setOperationAction(ISD::FDIV, MVT::v2f64, Legal); 741 setOperationAction(ISD::FSQRT, MVT::v2f64, Legal); 742 setOperationAction(ISD::FNEG, MVT::v2f64, Custom); 743 744 setOperationAction(ISD::VSETCC, MVT::v2f64, Custom); 745 setOperationAction(ISD::VSETCC, MVT::v16i8, Custom); 746 setOperationAction(ISD::VSETCC, MVT::v8i16, Custom); 747 setOperationAction(ISD::VSETCC, MVT::v4i32, Custom); 748 749 setOperationAction(ISD::SCALAR_TO_VECTOR, MVT::v16i8, Custom); 750 setOperationAction(ISD::SCALAR_TO_VECTOR, MVT::v8i16, Custom); 751 setOperationAction(ISD::INSERT_VECTOR_ELT, MVT::v8i16, Custom); 752 setOperationAction(ISD::INSERT_VECTOR_ELT, MVT::v4i32, Custom); 753 setOperationAction(ISD::INSERT_VECTOR_ELT, MVT::v4f32, Custom); 754 755 setOperationAction(ISD::CONCAT_VECTORS, MVT::v2f64, Custom); 756 setOperationAction(ISD::CONCAT_VECTORS, MVT::v2i64, Custom); 757 setOperationAction(ISD::CONCAT_VECTORS, MVT::v16i8, Custom); 758 setOperationAction(ISD::CONCAT_VECTORS, MVT::v8i16, Custom); 759 setOperationAction(ISD::CONCAT_VECTORS, MVT::v4i32, Custom); 760 761 // Custom lower build_vector, vector_shuffle, and extract_vector_elt. 762 for (unsigned i = (unsigned)MVT::v16i8; i != (unsigned)MVT::v2i64; ++i) { 763 EVT VT = (MVT::SimpleValueType)i; 764 // Do not attempt to custom lower non-power-of-2 vectors 765 if (!isPowerOf2_32(VT.getVectorNumElements())) 766 continue; 767 // Do not attempt to custom lower non-128-bit vectors 768 if (!VT.is128BitVector()) 769 continue; 770 setOperationAction(ISD::BUILD_VECTOR, 771 VT.getSimpleVT().SimpleTy, Custom); 772 setOperationAction(ISD::VECTOR_SHUFFLE, 773 VT.getSimpleVT().SimpleTy, Custom); 774 setOperationAction(ISD::EXTRACT_VECTOR_ELT, 775 VT.getSimpleVT().SimpleTy, Custom); 776 } 777 778 setOperationAction(ISD::BUILD_VECTOR, MVT::v2f64, Custom); 779 setOperationAction(ISD::BUILD_VECTOR, MVT::v2i64, Custom); 780 setOperationAction(ISD::VECTOR_SHUFFLE, MVT::v2f64, Custom); 781 setOperationAction(ISD::VECTOR_SHUFFLE, MVT::v2i64, Custom); 782 setOperationAction(ISD::INSERT_VECTOR_ELT, MVT::v2f64, Custom); 783 setOperationAction(ISD::EXTRACT_VECTOR_ELT, MVT::v2f64, Custom); 784 785 if (Subtarget->is64Bit()) { 786 setOperationAction(ISD::INSERT_VECTOR_ELT, MVT::v2i64, Custom); 787 setOperationAction(ISD::EXTRACT_VECTOR_ELT, MVT::v2i64, Custom); 788 } 789 790 // Promote v16i8, v8i16, v4i32 load, select, and, or, xor to v2i64. 791 for (unsigned i = (unsigned)MVT::v16i8; i != (unsigned)MVT::v2i64; i++) { 792 MVT::SimpleValueType SVT = (MVT::SimpleValueType)i; 793 EVT VT = SVT; 794 795 // Do not attempt to promote non-128-bit vectors 796 if (!VT.is128BitVector()) 797 continue; 798 799 setOperationAction(ISD::AND, SVT, Promote); 800 AddPromotedToType (ISD::AND, SVT, MVT::v2i64); 801 setOperationAction(ISD::OR, SVT, Promote); 802 AddPromotedToType (ISD::OR, SVT, MVT::v2i64); 803 setOperationAction(ISD::XOR, SVT, Promote); 804 AddPromotedToType (ISD::XOR, SVT, MVT::v2i64); 805 setOperationAction(ISD::LOAD, SVT, Promote); 806 AddPromotedToType (ISD::LOAD, SVT, MVT::v2i64); 807 setOperationAction(ISD::SELECT, SVT, Promote); 808 AddPromotedToType (ISD::SELECT, SVT, MVT::v2i64); 809 } 810 811 setTruncStoreAction(MVT::f64, MVT::f32, Expand); 812 813 // Custom lower v2i64 and v2f64 selects. 814 setOperationAction(ISD::LOAD, MVT::v2f64, Legal); 815 setOperationAction(ISD::LOAD, MVT::v2i64, Legal); 816 setOperationAction(ISD::SELECT, MVT::v2f64, Custom); 817 setOperationAction(ISD::SELECT, MVT::v2i64, Custom); 818 819 setOperationAction(ISD::FP_TO_SINT, MVT::v4i32, Legal); 820 setOperationAction(ISD::SINT_TO_FP, MVT::v4i32, Legal); 821 if (!DisableMMX && Subtarget->hasMMX()) { 822 setOperationAction(ISD::FP_TO_SINT, MVT::v2i32, Custom); 823 setOperationAction(ISD::SINT_TO_FP, MVT::v2i32, Custom); 824 } 825 } 826 827 if (Subtarget->hasSSE41()) { 828 setOperationAction(ISD::FFLOOR, MVT::f32, Legal); 829 setOperationAction(ISD::FCEIL, MVT::f32, Legal); 830 setOperationAction(ISD::FTRUNC, MVT::f32, Legal); 831 setOperationAction(ISD::FRINT, MVT::f32, Legal); 832 setOperationAction(ISD::FNEARBYINT, MVT::f32, Legal); 833 setOperationAction(ISD::FFLOOR, MVT::f64, Legal); 834 setOperationAction(ISD::FCEIL, MVT::f64, Legal); 835 setOperationAction(ISD::FTRUNC, MVT::f64, Legal); 836 setOperationAction(ISD::FRINT, MVT::f64, Legal); 837 setOperationAction(ISD::FNEARBYINT, MVT::f64, Legal); 838 839 // FIXME: Do we need to handle scalar-to-vector here? 840 setOperationAction(ISD::MUL, MVT::v4i32, Legal); 841 842 // Can turn SHL into an integer multiply. 843 setOperationAction(ISD::SHL, MVT::v4i32, Custom); 844 setOperationAction(ISD::SHL, MVT::v16i8, Custom); 845 846 // i8 and i16 vectors are custom , because the source register and source 847 // source memory operand types are not the same width. f32 vectors are 848 // custom since the immediate controlling the insert encodes additional 849 // information. 850 setOperationAction(ISD::INSERT_VECTOR_ELT, MVT::v16i8, Custom); 851 setOperationAction(ISD::INSERT_VECTOR_ELT, MVT::v8i16, Custom); 852 setOperationAction(ISD::INSERT_VECTOR_ELT, MVT::v4i32, Custom); 853 setOperationAction(ISD::INSERT_VECTOR_ELT, MVT::v4f32, Custom); 854 855 setOperationAction(ISD::EXTRACT_VECTOR_ELT, MVT::v16i8, Custom); 856 setOperationAction(ISD::EXTRACT_VECTOR_ELT, MVT::v8i16, Custom); 857 setOperationAction(ISD::EXTRACT_VECTOR_ELT, MVT::v4i32, Custom); 858 setOperationAction(ISD::EXTRACT_VECTOR_ELT, MVT::v4f32, Custom); 859 860 if (Subtarget->is64Bit()) { 861 setOperationAction(ISD::INSERT_VECTOR_ELT, MVT::v2i64, Legal); 862 setOperationAction(ISD::EXTRACT_VECTOR_ELT, MVT::v2i64, Legal); 863 } 864 } 865 866 if (Subtarget->hasSSE42()) { 867 setOperationAction(ISD::VSETCC, MVT::v2i64, Custom); 868 } 869 870 if (!UseSoftFloat && Subtarget->hasAVX()) { 871 addRegisterClass(MVT::v8f32, X86::VR256RegisterClass); 872 addRegisterClass(MVT::v4f64, X86::VR256RegisterClass); 873 addRegisterClass(MVT::v8i32, X86::VR256RegisterClass); 874 addRegisterClass(MVT::v4i64, X86::VR256RegisterClass); 875 addRegisterClass(MVT::v32i8, X86::VR256RegisterClass); 876 877 setOperationAction(ISD::LOAD, MVT::v8f32, Legal); 878 setOperationAction(ISD::LOAD, MVT::v8i32, Legal); 879 setOperationAction(ISD::LOAD, MVT::v4f64, Legal); 880 setOperationAction(ISD::LOAD, MVT::v4i64, Legal); 881 setOperationAction(ISD::FADD, MVT::v8f32, Legal); 882 setOperationAction(ISD::FSUB, MVT::v8f32, Legal); 883 setOperationAction(ISD::FMUL, MVT::v8f32, Legal); 884 setOperationAction(ISD::FDIV, MVT::v8f32, Legal); 885 setOperationAction(ISD::FSQRT, MVT::v8f32, Legal); 886 setOperationAction(ISD::FNEG, MVT::v8f32, Custom); 887 setOperationAction(ISD::BUILD_VECTOR, MVT::v8f32, Custom); 888 //setOperationAction(ISD::VECTOR_SHUFFLE, MVT::v8f32, Custom); 889 //setOperationAction(ISD::EXTRACT_VECTOR_ELT, MVT::v8f32, Custom); 890 //setOperationAction(ISD::SELECT, MVT::v8f32, Custom); 891 //setOperationAction(ISD::VSETCC, MVT::v8f32, Custom); 892 893 // Operations to consider commented out -v16i16 v32i8 894 //setOperationAction(ISD::ADD, MVT::v16i16, Legal); 895 setOperationAction(ISD::ADD, MVT::v8i32, Custom); 896 setOperationAction(ISD::ADD, MVT::v4i64, Custom); 897 //setOperationAction(ISD::SUB, MVT::v32i8, Legal); 898 //setOperationAction(ISD::SUB, MVT::v16i16, Legal); 899 setOperationAction(ISD::SUB, MVT::v8i32, Custom); 900 setOperationAction(ISD::SUB, MVT::v4i64, Custom); 901 //setOperationAction(ISD::MUL, MVT::v16i16, Legal); 902 setOperationAction(ISD::FADD, MVT::v4f64, Legal); 903 setOperationAction(ISD::FSUB, MVT::v4f64, Legal); 904 setOperationAction(ISD::FMUL, MVT::v4f64, Legal); 905 setOperationAction(ISD::FDIV, MVT::v4f64, Legal); 906 setOperationAction(ISD::FSQRT, MVT::v4f64, Legal); 907 setOperationAction(ISD::FNEG, MVT::v4f64, Custom); 908 909 setOperationAction(ISD::VSETCC, MVT::v4f64, Custom); 910 // setOperationAction(ISD::VSETCC, MVT::v32i8, Custom); 911 // setOperationAction(ISD::VSETCC, MVT::v16i16, Custom); 912 setOperationAction(ISD::VSETCC, MVT::v8i32, Custom); 913 914 // setOperationAction(ISD::SCALAR_TO_VECTOR, MVT::v32i8, Custom); 915 // setOperationAction(ISD::SCALAR_TO_VECTOR, MVT::v16i16, Custom); 916 // setOperationAction(ISD::INSERT_VECTOR_ELT, MVT::v16i16, Custom); 917 setOperationAction(ISD::INSERT_VECTOR_ELT, MVT::v8i32, Custom); 918 setOperationAction(ISD::INSERT_VECTOR_ELT, MVT::v8f32, Custom); 919 920 setOperationAction(ISD::BUILD_VECTOR, MVT::v4f64, Custom); 921 setOperationAction(ISD::BUILD_VECTOR, MVT::v4i64, Custom); 922 setOperationAction(ISD::VECTOR_SHUFFLE, MVT::v4f64, Custom); 923 setOperationAction(ISD::VECTOR_SHUFFLE, MVT::v4i64, Custom); 924 setOperationAction(ISD::INSERT_VECTOR_ELT, MVT::v4f64, Custom); 925 setOperationAction(ISD::EXTRACT_VECTOR_ELT, MVT::v4f64, Custom); 926 927 #if 0 928 // Not sure we want to do this since there are no 256-bit integer 929 // operations in AVX 930 931 // Custom lower build_vector, vector_shuffle, and extract_vector_elt. 932 // This includes 256-bit vectors 933 for (unsigned i = (unsigned)MVT::v16i8; i != (unsigned)MVT::v4i64; ++i) { 934 EVT VT = (MVT::SimpleValueType)i; 935 936 // Do not attempt to custom lower non-power-of-2 vectors 937 if (!isPowerOf2_32(VT.getVectorNumElements())) 938 continue; 939 940 setOperationAction(ISD::BUILD_VECTOR, VT, Custom); 941 setOperationAction(ISD::VECTOR_SHUFFLE, VT, Custom); 942 setOperationAction(ISD::EXTRACT_VECTOR_ELT, VT, Custom); 943 } 944 945 if (Subtarget->is64Bit()) { 946 setOperationAction(ISD::INSERT_VECTOR_ELT, MVT::v4i64, Custom); 947 setOperationAction(ISD::EXTRACT_VECTOR_ELT, MVT::v4i64, Custom); 948 } 949 #endif 950 951 #if 0 952 // Not sure we want to do this since there are no 256-bit integer 953 // operations in AVX 954 955 // Promote v32i8, v16i16, v8i32 load, select, and, or, xor to v4i64. 956 // Including 256-bit vectors 957 for (unsigned i = (unsigned)MVT::v16i8; i != (unsigned)MVT::v4i64; i++) { 958 EVT VT = (MVT::SimpleValueType)i; 959 960 if (!VT.is256BitVector()) { 961 continue; 962 } 963 setOperationAction(ISD::AND, VT, Promote); 964 AddPromotedToType (ISD::AND, VT, MVT::v4i64); 965 setOperationAction(ISD::OR, VT, Promote); 966 AddPromotedToType (ISD::OR, VT, MVT::v4i64); 967 setOperationAction(ISD::XOR, VT, Promote); 968 AddPromotedToType (ISD::XOR, VT, MVT::v4i64); 969 setOperationAction(ISD::LOAD, VT, Promote); 970 AddPromotedToType (ISD::LOAD, VT, MVT::v4i64); 971 setOperationAction(ISD::SELECT, VT, Promote); 972 AddPromotedToType (ISD::SELECT, VT, MVT::v4i64); 973 } 974 975 setTruncStoreAction(MVT::f64, MVT::f32, Expand); 976 #endif 977 } 978 979 // We want to custom lower some of our intrinsics. 980 setOperationAction(ISD::INTRINSIC_WO_CHAIN, MVT::Other, Custom); 981 982 // Add/Sub/Mul with overflow operations are custom lowered. 983 setOperationAction(ISD::SADDO, MVT::i32, Custom); 984 setOperationAction(ISD::UADDO, MVT::i32, Custom); 985 setOperationAction(ISD::SSUBO, MVT::i32, Custom); 986 setOperationAction(ISD::USUBO, MVT::i32, Custom); 987 setOperationAction(ISD::SMULO, MVT::i32, Custom); 988 989 // Only custom-lower 64-bit SADDO and friends on 64-bit because we don't 990 // handle type legalization for these operations here. 991 // 992 // FIXME: We really should do custom legalization for addition and 993 // subtraction on x86-32 once PR3203 is fixed. We really can't do much better 994 // than generic legalization for 64-bit multiplication-with-overflow, though. 995 if (Subtarget->is64Bit()) { 996 setOperationAction(ISD::SADDO, MVT::i64, Custom); 997 setOperationAction(ISD::UADDO, MVT::i64, Custom); 998 setOperationAction(ISD::SSUBO, MVT::i64, Custom); 999 setOperationAction(ISD::USUBO, MVT::i64, Custom); 1000 setOperationAction(ISD::SMULO, MVT::i64, Custom); 1001 } 1002 1003 if (!Subtarget->is64Bit()) { 1004 // These libcalls are not available in 32-bit. 1005 setLibcallName(RTLIB::SHL_I128, 0); 1006 setLibcallName(RTLIB::SRL_I128, 0); 1007 setLibcallName(RTLIB::SRA_I128, 0); 1008 } 1009 1010 // We have target-specific dag combine patterns for the following nodes: 1011 setTargetDAGCombine(ISD::VECTOR_SHUFFLE); 1012 setTargetDAGCombine(ISD::EXTRACT_VECTOR_ELT); 1013 setTargetDAGCombine(ISD::BUILD_VECTOR); 1014 setTargetDAGCombine(ISD::SELECT); 1015 setTargetDAGCombine(ISD::SHL); 1016 setTargetDAGCombine(ISD::SRA); 1017 setTargetDAGCombine(ISD::SRL); 1018 setTargetDAGCombine(ISD::OR); 1019 setTargetDAGCombine(ISD::STORE); 1020 setTargetDAGCombine(ISD::ZERO_EXTEND); 1021 if (Subtarget->is64Bit()) 1022 setTargetDAGCombine(ISD::MUL); 1023 1024 computeRegisterProperties(); 1025 1026 // FIXME: These should be based on subtarget info. Plus, the values should 1027 // be smaller when we are in optimizing for size mode. 1028 maxStoresPerMemset = 16; // For @llvm.memset -> sequence of stores 1029 maxStoresPerMemcpy = 8; // For @llvm.memcpy -> sequence of stores 1030 maxStoresPerMemmove = 3; // For @llvm.memmove -> sequence of stores 1031 setPrefLoopAlignment(16); 1032 benefitFromCodePlacementOpt = true; 1033 } 1034 1035 1036 MVT::SimpleValueType X86TargetLowering::getSetCCResultType(EVT VT) const { 1037 return MVT::i8; 1038 } 1039 1040 1041 /// getMaxByValAlign - Helper for getByValTypeAlignment to determine 1042 /// the desired ByVal argument alignment. 1043 static void getMaxByValAlign(const Type *Ty, unsigned &MaxAlign) { 1044 if (MaxAlign == 16) 1045 return; 1046 if (const VectorType *VTy = dyn_cast<VectorType>(Ty)) { 1047 if (VTy->getBitWidth() == 128) 1048 MaxAlign = 16; 1049 } else if (const ArrayType *ATy = dyn_cast<ArrayType>(Ty)) { 1050 unsigned EltAlign = 0; 1051 getMaxByValAlign(ATy->getElementType(), EltAlign); 1052 if (EltAlign > MaxAlign) 1053 MaxAlign = EltAlign; 1054 } else if (const StructType *STy = dyn_cast<StructType>(Ty)) { 1055 for (unsigned i = 0, e = STy->getNumElements(); i != e; ++i) { 1056 unsigned EltAlign = 0; 1057 getMaxByValAlign(STy->getElementType(i), EltAlign); 1058 if (EltAlign > MaxAlign) 1059 MaxAlign = EltAlign; 1060 if (MaxAlign == 16) 1061 break; 1062 } 1063 } 1064 return; 1065 } 1066 1067 /// getByValTypeAlignment - Return the desired alignment for ByVal aggregate 1068 /// function arguments in the caller parameter area. For X86, aggregates 1069 /// that contain SSE vectors are placed at 16-byte boundaries while the rest 1070 /// are at 4-byte boundaries. 1071 unsigned X86TargetLowering::getByValTypeAlignment(const Type *Ty) const { 1072 if (Subtarget->is64Bit()) { 1073 // Max of 8 and alignment of type. 1074 unsigned TyAlign = TD->getABITypeAlignment(Ty); 1075 if (TyAlign > 8) 1076 return TyAlign; 1077 return 8; 1078 } 1079 1080 unsigned Align = 4; 1081 if (Subtarget->hasSSE1()) 1082 getMaxByValAlign(Ty, Align); 1083 return Align; 1084 } 1085 1086 /// getOptimalMemOpType - Returns the target specific optimal type for load 1087 /// and store operations as a result of memset, memcpy, and memmove 1088 /// lowering. If DstAlign is zero that means it's safe to destination 1089 /// alignment can satisfy any constraint. Similarly if SrcAlign is zero it 1090 /// means there isn't a need to check it against alignment requirement, 1091 /// probably because the source does not need to be loaded. If 1092 /// 'NonScalarIntSafe' is true, that means it's safe to return a 1093 /// non-scalar-integer type, e.g. empty string source, constant, or loaded 1094 /// from memory. 'MemcpyStrSrc' indicates whether the memcpy source is 1095 /// constant so it does not need to be loaded. 1096 /// It returns EVT::Other if the type should be determined using generic 1097 /// target-independent logic. 1098 EVT 1099 X86TargetLowering::getOptimalMemOpType(uint64_t Size, 1100 unsigned DstAlign, unsigned SrcAlign, 1101 bool NonScalarIntSafe, 1102 bool MemcpyStrSrc, 1103 MachineFunction &MF) const { 1104 // FIXME: This turns off use of xmm stores for memset/memcpy on targets like 1105 // linux. This is because the stack realignment code can't handle certain 1106 // cases like PR2962. This should be removed when PR2962 is fixed. 1107 const Function *F = MF.getFunction(); 1108 if (NonScalarIntSafe && 1109 !F->hasFnAttr(Attribute::NoImplicitFloat)) { 1110 if (Size >= 16 && 1111 (Subtarget->isUnalignedMemAccessFast() || 1112 ((DstAlign == 0 || DstAlign >= 16) && 1113 (SrcAlign == 0 || SrcAlign >= 16))) && 1114 Subtarget->getStackAlignment() >= 16) { 1115 if (Subtarget->hasSSE2()) 1116 return MVT::v4i32; 1117 if (Subtarget->hasSSE1()) 1118 return MVT::v4f32; 1119 } else if (!MemcpyStrSrc && Size >= 8 && 1120 !Subtarget->is64Bit() && 1121 Subtarget->getStackAlignment() >= 8 && 1122 Subtarget->hasSSE2()) { 1123 // Do not use f64 to lower memcpy if source is string constant. It's 1124 // better to use i32 to avoid the loads. 1125 return MVT::f64; 1126 } 1127 } 1128 if (Subtarget->is64Bit() && Size >= 8) 1129 return MVT::i64; 1130 return MVT::i32; 1131 } 1132 1133 /// getJumpTableEncoding - Return the entry encoding for a jump table in the 1134 /// current function. The returned value is a member of the 1135 /// MachineJumpTableInfo::JTEntryKind enum. 1136 unsigned X86TargetLowering::getJumpTableEncoding() const { 1137 // In GOT pic mode, each entry in the jump table is emitted as a @GOTOFF 1138 // symbol. 1139 if (getTargetMachine().getRelocationModel() == Reloc::PIC_ && 1140 Subtarget->isPICStyleGOT()) 1141 return MachineJumpTableInfo::EK_Custom32; 1142 1143 // Otherwise, use the normal jump table encoding heuristics. 1144 return TargetLowering::getJumpTableEncoding(); 1145 } 1146 1147 /// getPICBaseSymbol - Return the X86-32 PIC base. 1148 MCSymbol * 1149 X86TargetLowering::getPICBaseSymbol(const MachineFunction *MF, 1150 MCContext &Ctx) const { 1151 const MCAsmInfo &MAI = *getTargetMachine().getMCAsmInfo(); 1152 return Ctx.GetOrCreateSymbol(Twine(MAI.getPrivateGlobalPrefix())+ 1153 Twine(MF->getFunctionNumber())+"$pb"); 1154 } 1155 1156 1157 const MCExpr * 1158 X86TargetLowering::LowerCustomJumpTableEntry(const MachineJumpTableInfo *MJTI, 1159 const MachineBasicBlock *MBB, 1160 unsigned uid,MCContext &Ctx) const{ 1161 assert(getTargetMachine().getRelocationModel() == Reloc::PIC_ && 1162 Subtarget->isPICStyleGOT()); 1163 // In 32-bit ELF systems, our jump table entries are formed with @GOTOFF 1164 // entries. 1165 return MCSymbolRefExpr::Create(MBB->getSymbol(), 1166 MCSymbolRefExpr::VK_GOTOFF, Ctx); 1167 } 1168 1169 /// getPICJumpTableRelocaBase - Returns relocation base for the given PIC 1170 /// jumptable. 1171 SDValue X86TargetLowering::getPICJumpTableRelocBase(SDValue Table, 1172 SelectionDAG &DAG) const { 1173 if (!Subtarget->is64Bit()) 1174 // This doesn't have DebugLoc associated with it, but is not really the 1175 // same as a Register. 1176 return DAG.getNode(X86ISD::GlobalBaseReg, DebugLoc(), getPointerTy()); 1177 return Table; 1178 } 1179 1180 /// getPICJumpTableRelocBaseExpr - This returns the relocation base for the 1181 /// given PIC jumptable, the same as getPICJumpTableRelocBase, but as an 1182 /// MCExpr. 1183 const MCExpr *X86TargetLowering:: 1184 getPICJumpTableRelocBaseExpr(const MachineFunction *MF, unsigned JTI, 1185 MCContext &Ctx) const { 1186 // X86-64 uses RIP relative addressing based on the jump table label. 1187 if (Subtarget->isPICStyleRIPRel()) 1188 return TargetLowering::getPICJumpTableRelocBaseExpr(MF, JTI, Ctx); 1189 1190 // Otherwise, the reference is relative to the PIC base. 1191 return MCSymbolRefExpr::Create(getPICBaseSymbol(MF, Ctx), Ctx); 1192 } 1193 1194 /// getFunctionAlignment - Return the Log2 alignment of this function. 1195 unsigned X86TargetLowering::getFunctionAlignment(const Function *F) const { 1196 return F->hasFnAttr(Attribute::OptimizeForSize) ? 0 : 4; 1197 } 1198 1199 std::pair<const TargetRegisterClass*, uint8_t> 1200 X86TargetLowering::findRepresentativeClass(EVT VT) const{ 1201 const TargetRegisterClass *RRC = 0; 1202 uint8_t Cost = 1; 1203 switch (VT.getSimpleVT().SimpleTy) { 1204 default: 1205 return TargetLowering::findRepresentativeClass(VT); 1206 case MVT::i8: case MVT::i16: case MVT::i32: case MVT::i64: 1207 RRC = (Subtarget->is64Bit() 1208 ? X86::GR64RegisterClass : X86::GR32RegisterClass); 1209 break; 1210 case MVT::v8i8: case MVT::v4i16: 1211 case MVT::v2i32: case MVT::v1i64: 1212 RRC = X86::VR64RegisterClass; 1213 break; 1214 case MVT::f32: case MVT::f64: 1215 case MVT::v16i8: case MVT::v8i16: case MVT::v4i32: case MVT::v2i64: 1216 case MVT::v4f32: case MVT::v2f64: 1217 case MVT::v32i8: case MVT::v8i32: case MVT::v4i64: case MVT::v8f32: 1218 case MVT::v4f64: 1219 RRC = X86::VR128RegisterClass; 1220 break; 1221 } 1222 return std::make_pair(RRC, Cost); 1223 } 1224 1225 unsigned 1226 X86TargetLowering::getRegPressureLimit(const TargetRegisterClass *RC, 1227 MachineFunction &MF) const { 1228 unsigned FPDiff = RegInfo->hasFP(MF) ? 1 : 0; 1229 switch (RC->getID()) { 1230 default: 1231 return 0; 1232 case X86::GR32RegClassID: 1233 return 4 - FPDiff; 1234 case X86::GR64RegClassID: 1235 return 8 - FPDiff; 1236 case X86::VR128RegClassID: 1237 return Subtarget->is64Bit() ? 10 : 4; 1238 case X86::VR64RegClassID: 1239 return 4; 1240 } 1241 } 1242 1243 bool X86TargetLowering::getStackCookieLocation(unsigned &AddressSpace, 1244 unsigned &Offset) const { 1245 if (!Subtarget->isTargetLinux()) 1246 return false; 1247 1248 if (Subtarget->is64Bit()) { 1249 // %fs:0x28, unless we're using a Kernel code model, in which case it's %gs: 1250 Offset = 0x28; 1251 if (getTargetMachine().getCodeModel() == CodeModel::Kernel) 1252 AddressSpace = 256; 1253 else 1254 AddressSpace = 257; 1255 } else { 1256 // %gs:0x14 on i386 1257 Offset = 0x14; 1258 AddressSpace = 256; 1259 } 1260 return true; 1261 } 1262 1263 1264 //===----------------------------------------------------------------------===// 1265 // Return Value Calling Convention Implementation 1266 //===----------------------------------------------------------------------===// 1267 1268 #include "X86GenCallingConv.inc" 1269 1270 bool 1271 X86TargetLowering::CanLowerReturn(CallingConv::ID CallConv, bool isVarArg, 1272 const SmallVectorImpl<ISD::OutputArg> &Outs, 1273 LLVMContext &Context) const { 1274 SmallVector<CCValAssign, 16> RVLocs; 1275 CCState CCInfo(CallConv, isVarArg, getTargetMachine(), 1276 RVLocs, Context); 1277 return CCInfo.CheckReturn(Outs, RetCC_X86); 1278 } 1279 1280 SDValue 1281 X86TargetLowering::LowerReturn(SDValue Chain, 1282 CallingConv::ID CallConv, bool isVarArg, 1283 const SmallVectorImpl<ISD::OutputArg> &Outs, 1284 const SmallVectorImpl<SDValue> &OutVals, 1285 DebugLoc dl, SelectionDAG &DAG) const { 1286 MachineFunction &MF = DAG.getMachineFunction(); 1287 X86MachineFunctionInfo *FuncInfo = MF.getInfo<X86MachineFunctionInfo>(); 1288 1289 SmallVector<CCValAssign, 16> RVLocs; 1290 CCState CCInfo(CallConv, isVarArg, getTargetMachine(), 1291 RVLocs, *DAG.getContext()); 1292 CCInfo.AnalyzeReturn(Outs, RetCC_X86); 1293 1294 // Add the regs to the liveout set for the function. 1295 MachineRegisterInfo &MRI = DAG.getMachineFunction().getRegInfo(); 1296 for (unsigned i = 0; i != RVLocs.size(); ++i) 1297 if (RVLocs[i].isRegLoc() && !MRI.isLiveOut(RVLocs[i].getLocReg())) 1298 MRI.addLiveOut(RVLocs[i].getLocReg()); 1299 1300 SDValue Flag; 1301 1302 SmallVector<SDValue, 6> RetOps; 1303 RetOps.push_back(Chain); // Operand #0 = Chain (updated below) 1304 // Operand #1 = Bytes To Pop 1305 RetOps.push_back(DAG.getTargetConstant(FuncInfo->getBytesToPopOnReturn(), 1306 MVT::i16)); 1307 1308 // Copy the result values into the output registers. 1309 for (unsigned i = 0; i != RVLocs.size(); ++i) { 1310 CCValAssign &VA = RVLocs[i]; 1311 assert(VA.isRegLoc() && "Can only return in registers!"); 1312 SDValue ValToCopy = OutVals[i]; 1313 EVT ValVT = ValToCopy.getValueType(); 1314 1315 // If this is x86-64, and we disabled SSE, we can't return FP values 1316 if ((ValVT == MVT::f32 || ValVT == MVT::f64) && 1317 (Subtarget->is64Bit() && !Subtarget->hasSSE1())) { 1318 report_fatal_error("SSE register return with SSE disabled"); 1319 } 1320 // Likewise we can't return F64 values with SSE1 only. gcc does so, but 1321 // llvm-gcc has never done it right and no one has noticed, so this 1322 // should be OK for now. 1323 if (ValVT == MVT::f64 && 1324 (Subtarget->is64Bit() && !Subtarget->hasSSE2())) 1325 report_fatal_error("SSE2 register return with SSE2 disabled"); 1326 1327 // Returns in ST0/ST1 are handled specially: these are pushed as operands to 1328 // the RET instruction and handled by the FP Stackifier. 1329 if (VA.getLocReg() == X86::ST0 || 1330 VA.getLocReg() == X86::ST1) { 1331 // If this is a copy from an xmm register to ST(0), use an FPExtend to 1332 // change the value to the FP stack register class. 1333 if (isScalarFPTypeInSSEReg(VA.getValVT())) 1334 ValToCopy = DAG.getNode(ISD::FP_EXTEND, dl, MVT::f80, ValToCopy); 1335 RetOps.push_back(ValToCopy); 1336 // Don't emit a copytoreg. 1337 continue; 1338 } 1339 1340 // 64-bit vector (MMX) values are returned in XMM0 / XMM1 except for v1i64 1341 // which is returned in RAX / RDX. 1342 if (Subtarget->is64Bit()) { 1343 if (ValVT.isVector() && ValVT.getSizeInBits() == 64) { 1344 ValToCopy = DAG.getNode(ISD::BIT_CONVERT, dl, MVT::i64, ValToCopy); 1345 if (VA.getLocReg() == X86::XMM0 || VA.getLocReg() == X86::XMM1) { 1346 ValToCopy = DAG.getNode(ISD::SCALAR_TO_VECTOR, dl, MVT::v2i64, 1347 ValToCopy); 1348 1349 // If we don't have SSE2 available, convert to v4f32 so the generated 1350 // register is legal. 1351 if (!Subtarget->hasSSE2()) 1352 ValToCopy = DAG.getNode(ISD::BIT_CONVERT, dl, MVT::v4f32,ValToCopy); 1353 } 1354 } 1355 } 1356 1357 Chain = DAG.getCopyToReg(Chain, dl, VA.getLocReg(), ValToCopy, Flag); 1358 Flag = Chain.getValue(1); 1359 } 1360 1361 // The x86-64 ABI for returning structs by value requires that we copy 1362 // the sret argument into %rax for the return. We saved the argument into 1363 // a virtual register in the entry block, so now we copy the value out 1364 // and into %rax. 1365 if (Subtarget->is64Bit() && 1366 DAG.getMachineFunction().getFunction()->hasStructRetAttr()) { 1367 MachineFunction &MF = DAG.getMachineFunction(); 1368 X86MachineFunctionInfo *FuncInfo = MF.getInfo<X86MachineFunctionInfo>(); 1369 unsigned Reg = FuncInfo->getSRetReturnReg(); 1370 assert(Reg && 1371 "SRetReturnReg should have been set in LowerFormalArguments()."); 1372 SDValue Val = DAG.getCopyFromReg(Chain, dl, Reg, getPointerTy()); 1373 1374 Chain = DAG.getCopyToReg(Chain, dl, X86::RAX, Val, Flag); 1375 Flag = Chain.getValue(1); 1376 1377 // RAX now acts like a return value. 1378 MRI.addLiveOut(X86::RAX); 1379 } 1380 1381 RetOps[0] = Chain; // Update chain. 1382 1383 // Add the flag if we have it. 1384 if (Flag.getNode()) 1385 RetOps.push_back(Flag); 1386 1387 return DAG.getNode(X86ISD::RET_FLAG, dl, 1388 MVT::Other, &RetOps[0], RetOps.size()); 1389 } 1390 1391 /// LowerCallResult - Lower the result values of a call into the 1392 /// appropriate copies out of appropriate physical registers. 1393 /// 1394 SDValue 1395 X86TargetLowering::LowerCallResult(SDValue Chain, SDValue InFlag, 1396 CallingConv::ID CallConv, bool isVarArg, 1397 const SmallVectorImpl<ISD::InputArg> &Ins, 1398 DebugLoc dl, SelectionDAG &DAG, 1399 SmallVectorImpl<SDValue> &InVals) const { 1400 1401 // Assign locations to each value returned by this call. 1402 SmallVector<CCValAssign, 16> RVLocs; 1403 bool Is64Bit = Subtarget->is64Bit(); 1404 CCState CCInfo(CallConv, isVarArg, getTargetMachine(), 1405 RVLocs, *DAG.getContext()); 1406 CCInfo.AnalyzeCallResult(Ins, RetCC_X86); 1407 1408 // Copy all of the result registers out of their specified physreg. 1409 for (unsigned i = 0; i != RVLocs.size(); ++i) { 1410 CCValAssign &VA = RVLocs[i]; 1411 EVT CopyVT = VA.getValVT(); 1412 1413 // If this is x86-64, and we disabled SSE, we can't return FP values 1414 if ((CopyVT == MVT::f32 || CopyVT == MVT::f64) && 1415 ((Is64Bit || Ins[i].Flags.isInReg()) && !Subtarget->hasSSE1())) { 1416 report_fatal_error("SSE register return with SSE disabled"); 1417 } 1418 1419 SDValue Val; 1420 1421 // If this is a call to a function that returns an fp value on the floating 1422 // point stack, we must guarantee the the value is popped from the stack, so 1423 // a CopyFromReg is not good enough - the copy instruction may be eliminated 1424 // if the return value is not used. We use the FpGET_ST0 instructions 1425 // instead. 1426 if (VA.getLocReg() == X86::ST0 || VA.getLocReg() == X86::ST1) { 1427 // If we prefer to use the value in xmm registers, copy it out as f80 and 1428 // use a truncate to move it from fp stack reg to xmm reg. 1429 if (isScalarFPTypeInSSEReg(VA.getValVT())) CopyVT = MVT::f80; 1430 bool isST0 = VA.getLocReg() == X86::ST0; 1431 unsigned Opc = 0; 1432 if (CopyVT == MVT::f32) Opc = isST0 ? X86::FpGET_ST0_32:X86::FpGET_ST1_32; 1433 if (CopyVT == MVT::f64) Opc = isST0 ? X86::FpGET_ST0_64:X86::FpGET_ST1_64; 1434 if (CopyVT == MVT::f80) Opc = isST0 ? X86::FpGET_ST0_80:X86::FpGET_ST1_80; 1435 SDValue Ops[] = { Chain, InFlag }; 1436 Chain = SDValue(DAG.getMachineNode(Opc, dl, CopyVT, MVT::Other, MVT::Flag, 1437 Ops, 2), 1); 1438 Val = Chain.getValue(0); 1439 1440 // Round the f80 to the right size, which also moves it to the appropriate 1441 // xmm register. 1442 if (CopyVT != VA.getValVT()) 1443 Val = DAG.getNode(ISD::FP_ROUND, dl, VA.getValVT(), Val, 1444 // This truncation won't change the value. 1445 DAG.getIntPtrConstant(1)); 1446 } else if (Is64Bit && CopyVT.isVector() && CopyVT.getSizeInBits() == 64) { 1447 // For x86-64, MMX values are returned in XMM0 / XMM1 except for v1i64. 1448 if (VA.getLocReg() == X86::XMM0 || VA.getLocReg() == X86::XMM1) { 1449 Chain = DAG.getCopyFromReg(Chain, dl, VA.getLocReg(), 1450 MVT::v2i64, InFlag).getValue(1); 1451 Val = Chain.getValue(0); 1452 Val = DAG.getNode(ISD::EXTRACT_VECTOR_ELT, dl, MVT::i64, 1453 Val, DAG.getConstant(0, MVT::i64)); 1454 } else { 1455 Chain = DAG.getCopyFromReg(Chain, dl, VA.getLocReg(), 1456 MVT::i64, InFlag).getValue(1); 1457 Val = Chain.getValue(0); 1458 } 1459 Val = DAG.getNode(ISD::BIT_CONVERT, dl, CopyVT, Val); 1460 } else { 1461 Chain = DAG.getCopyFromReg(Chain, dl, VA.getLocReg(), 1462 CopyVT, InFlag).getValue(1); 1463 Val = Chain.getValue(0); 1464 } 1465 InFlag = Chain.getValue(2); 1466 InVals.push_back(Val); 1467 } 1468 1469 return Chain; 1470 } 1471 1472 1473 //===----------------------------------------------------------------------===// 1474 // C & StdCall & Fast Calling Convention implementation 1475 //===----------------------------------------------------------------------===// 1476 // StdCall calling convention seems to be standard for many Windows' API 1477 // routines and around. It differs from C calling convention just a little: 1478 // callee should clean up the stack, not caller. Symbols should be also 1479 // decorated in some fancy way :) It doesn't support any vector arguments. 1480 // For info on fast calling convention see Fast Calling Convention (tail call) 1481 // implementation LowerX86_32FastCCCallTo. 1482 1483 /// CallIsStructReturn - Determines whether a call uses struct return 1484 /// semantics. 1485 static bool CallIsStructReturn(const SmallVectorImpl<ISD::OutputArg> &Outs) { 1486 if (Outs.empty()) 1487 return false; 1488 1489 return Outs[0].Flags.isSRet(); 1490 } 1491 1492 /// ArgsAreStructReturn - Determines whether a function uses struct 1493 /// return semantics. 1494 static bool 1495 ArgsAreStructReturn(const SmallVectorImpl<ISD::InputArg> &Ins) { 1496 if (Ins.empty()) 1497 return false; 1498 1499 return Ins[0].Flags.isSRet(); 1500 } 1501 1502 /// CCAssignFnForNode - Selects the correct CCAssignFn for a the 1503 /// given CallingConvention value. 1504 CCAssignFn *X86TargetLowering::CCAssignFnForNode(CallingConv::ID CC) const { 1505 if (Subtarget->is64Bit()) { 1506 if (CC == CallingConv::GHC) 1507 return CC_X86_64_GHC; 1508 else if (Subtarget->isTargetWin64()) 1509 return CC_X86_Win64_C; 1510 else 1511 return CC_X86_64_C; 1512 } 1513 1514 if (CC == CallingConv::X86_FastCall) 1515 return CC_X86_32_FastCall; 1516 else if (CC == CallingConv::X86_ThisCall) 1517 return CC_X86_32_ThisCall; 1518 else if (CC == CallingConv::Fast) 1519 return CC_X86_32_FastCC; 1520 else if (CC == CallingConv::GHC) 1521 return CC_X86_32_GHC; 1522 else 1523 return CC_X86_32_C; 1524 } 1525 1526 /// CreateCopyOfByValArgument - Make a copy of an aggregate at address specified 1527 /// by "Src" to address "Dst" with size and alignment information specified by 1528 /// the specific parameter attribute. The copy will be passed as a byval 1529 /// function parameter. 1530 static SDValue 1531 CreateCopyOfByValArgument(SDValue Src, SDValue Dst, SDValue Chain, 1532 ISD::ArgFlagsTy Flags, SelectionDAG &DAG, 1533 DebugLoc dl) { 1534 SDValue SizeNode = DAG.getConstant(Flags.getByValSize(), MVT::i32); 1535 return DAG.getMemcpy(Chain, dl, Dst, Src, SizeNode, Flags.getByValAlign(), 1536 /*isVolatile*/false, /*AlwaysInline=*/true, 1537 NULL, 0, NULL, 0); 1538 } 1539 1540 /// IsTailCallConvention - Return true if the calling convention is one that 1541 /// supports tail call optimization. 1542 static bool IsTailCallConvention(CallingConv::ID CC) { 1543 return (CC == CallingConv::Fast || CC == CallingConv::GHC); 1544 } 1545 1546 /// FuncIsMadeTailCallSafe - Return true if the function is being made into 1547 /// a tailcall target by changing its ABI. 1548 static bool FuncIsMadeTailCallSafe(CallingConv::ID CC) { 1549 return GuaranteedTailCallOpt && IsTailCallConvention(CC); 1550 } 1551 1552 SDValue 1553 X86TargetLowering::LowerMemArgument(SDValue Chain, 1554 CallingConv::ID CallConv, 1555 const SmallVectorImpl<ISD::InputArg> &Ins, 1556 DebugLoc dl, SelectionDAG &DAG, 1557 const CCValAssign &VA, 1558 MachineFrameInfo *MFI, 1559 unsigned i) const { 1560 // Create the nodes corresponding to a load from this parameter slot. 1561 ISD::ArgFlagsTy Flags = Ins[i].Flags; 1562 bool AlwaysUseMutable = FuncIsMadeTailCallSafe(CallConv); 1563 bool isImmutable = !AlwaysUseMutable && !Flags.isByVal(); 1564 EVT ValVT; 1565 1566 // If value is passed by pointer we have address passed instead of the value 1567 // itself. 1568 if (VA.getLocInfo() == CCValAssign::Indirect) 1569 ValVT = VA.getLocVT(); 1570 else 1571 ValVT = VA.getValVT(); 1572 1573 // FIXME: For now, all byval parameter objects are marked mutable. This can be 1574 // changed with more analysis. 1575 // In case of tail call optimization mark all arguments mutable. Since they 1576 // could be overwritten by lowering of arguments in case of a tail call. 1577 if (Flags.isByVal()) { 1578 int FI = MFI->CreateFixedObject(Flags.getByValSize(), 1579 VA.getLocMemOffset(), isImmutable); 1580 return DAG.getFrameIndex(FI, getPointerTy()); 1581 } else { 1582 int FI = MFI->CreateFixedObject(ValVT.getSizeInBits()/8, 1583 VA.getLocMemOffset(), isImmutable); 1584 SDValue FIN = DAG.getFrameIndex(FI, getPointerTy()); 1585 return DAG.getLoad(ValVT, dl, Chain, FIN, 1586 PseudoSourceValue::getFixedStack(FI), 0, 1587 false, false, 0); 1588 } 1589 } 1590 1591 SDValue 1592 X86TargetLowering::LowerFormalArguments(SDValue Chain, 1593 CallingConv::ID CallConv, 1594 bool isVarArg, 1595 const SmallVectorImpl<ISD::InputArg> &Ins, 1596 DebugLoc dl, 1597 SelectionDAG &DAG, 1598 SmallVectorImpl<SDValue> &InVals) 1599 const { 1600 MachineFunction &MF = DAG.getMachineFunction(); 1601 X86MachineFunctionInfo *FuncInfo = MF.getInfo<X86MachineFunctionInfo>(); 1602 1603 const Function* Fn = MF.getFunction(); 1604 if (Fn->hasExternalLinkage() && 1605 Subtarget->isTargetCygMing() && 1606 Fn->getName() == "main") 1607 FuncInfo->setForceFramePointer(true); 1608 1609 MachineFrameInfo *MFI = MF.getFrameInfo(); 1610 bool Is64Bit = Subtarget->is64Bit(); 1611 bool IsWin64 = Subtarget->isTargetWin64(); 1612 1613 assert(!(isVarArg && IsTailCallConvention(CallConv)) && 1614 "Var args not supported with calling convention fastcc or ghc"); 1615 1616 // Assign locations to all of the incoming arguments. 1617 SmallVector<CCValAssign, 16> ArgLocs; 1618 CCState CCInfo(CallConv, isVarArg, getTargetMachine(), 1619 ArgLocs, *DAG.getContext()); 1620 CCInfo.AnalyzeFormalArguments(Ins, CCAssignFnForNode(CallConv)); 1621 1622 unsigned LastVal = ~0U; 1623 SDValue ArgValue; 1624 for (unsigned i = 0, e = ArgLocs.size(); i != e; ++i) { 1625 CCValAssign &VA = ArgLocs[i]; 1626 // TODO: If an arg is passed in two places (e.g. reg and stack), skip later 1627 // places. 1628 assert(VA.getValNo() != LastVal && 1629 "Don't support value assigned to multiple locs yet"); 1630 LastVal = VA.getValNo(); 1631 1632 if (VA.isRegLoc()) { 1633 EVT RegVT = VA.getLocVT(); 1634 TargetRegisterClass *RC = NULL; 1635 if (RegVT == MVT::i32) 1636 RC = X86::GR32RegisterClass; 1637 else if (Is64Bit && RegVT == MVT::i64) 1638 RC = X86::GR64RegisterClass; 1639 else if (RegVT == MVT::f32) 1640 RC = X86::FR32RegisterClass; 1641 else if (RegVT == MVT::f64) 1642 RC = X86::FR64RegisterClass; 1643 else if (RegVT.isVector() && RegVT.getSizeInBits() == 256) 1644 RC = X86::VR256RegisterClass; 1645 else if (RegVT.isVector() && RegVT.getSizeInBits() == 128) 1646 RC = X86::VR128RegisterClass; 1647 else if (RegVT.isVector() && RegVT.getSizeInBits() == 64) 1648 RC = X86::VR64RegisterClass; 1649 else 1650 llvm_unreachable("Unknown argument type!"); 1651 1652 unsigned Reg = MF.addLiveIn(VA.getLocReg(), RC); 1653 ArgValue = DAG.getCopyFromReg(Chain, dl, Reg, RegVT); 1654 1655 // If this is an 8 or 16-bit value, it is really passed promoted to 32 1656 // bits. Insert an assert[sz]ext to capture this, then truncate to the 1657 // right size. 1658 if (VA.getLocInfo() == CCValAssign::SExt) 1659 ArgValue = DAG.getNode(ISD::AssertSext, dl, RegVT, ArgValue, 1660 DAG.getValueType(VA.getValVT())); 1661 else if (VA.getLocInfo() == CCValAssign::ZExt) 1662 ArgValue = DAG.getNode(ISD::AssertZext, dl, RegVT, ArgValue, 1663 DAG.getValueType(VA.getValVT())); 1664 else if (VA.getLocInfo() == CCValAssign::BCvt) 1665 ArgValue = DAG.getNode(ISD::BIT_CONVERT, dl, VA.getValVT(), ArgValue); 1666 1667 if (VA.isExtInLoc()) { 1668 // Handle MMX values passed in XMM regs. 1669 if (RegVT.isVector()) { 1670 ArgValue = DAG.getNode(ISD::EXTRACT_VECTOR_ELT, dl, MVT::i64, 1671 ArgValue, DAG.getConstant(0, MVT::i64)); 1672 ArgValue = DAG.getNode(ISD::BIT_CONVERT, dl, VA.getValVT(), ArgValue); 1673 } else 1674 ArgValue = DAG.getNode(ISD::TRUNCATE, dl, VA.getValVT(), ArgValue); 1675 } 1676 } else { 1677 assert(VA.isMemLoc()); 1678 ArgValue = LowerMemArgument(Chain, CallConv, Ins, dl, DAG, VA, MFI, i); 1679 } 1680 1681 // If value is passed via pointer - do a load. 1682 if (VA.getLocInfo() == CCValAssign::Indirect) 1683 ArgValue = DAG.getLoad(VA.getValVT(), dl, Chain, ArgValue, NULL, 0, 1684 false, false, 0); 1685 1686 InVals.push_back(ArgValue); 1687 } 1688 1689 // The x86-64 ABI for returning structs by value requires that we copy 1690 // the sret argument into %rax for the return. Save the argument into 1691 // a virtual register so that we can access it from the return points. 1692 if (Is64Bit && MF.getFunction()->hasStructRetAttr()) { 1693 X86MachineFunctionInfo *FuncInfo = MF.getInfo<X86MachineFunctionInfo>(); 1694 unsigned Reg = FuncInfo->getSRetReturnReg(); 1695 if (!Reg) { 1696 Reg = MF.getRegInfo().createVirtualRegister(getRegClassFor(MVT::i64)); 1697 FuncInfo->setSRetReturnReg(Reg); 1698 } 1699 SDValue Copy = DAG.getCopyToReg(DAG.getEntryNode(), dl, Reg, InVals[0]); 1700 Chain = DAG.getNode(ISD::TokenFactor, dl, MVT::Other, Copy, Chain); 1701 } 1702 1703 unsigned StackSize = CCInfo.getNextStackOffset(); 1704 // Align stack specially for tail calls. 1705 if (FuncIsMadeTailCallSafe(CallConv)) 1706 StackSize = GetAlignedArgumentStackSize(StackSize, DAG); 1707 1708 // If the function takes variable number of arguments, make a frame index for 1709 // the start of the first vararg value... for expansion of llvm.va_start. 1710 if (isVarArg) { 1711 if (Is64Bit || (CallConv != CallingConv::X86_FastCall && 1712 CallConv != CallingConv::X86_ThisCall)) { 1713 FuncInfo->setVarArgsFrameIndex(MFI->CreateFixedObject(1, StackSize,true)); 1714 } 1715 if (Is64Bit) { 1716 unsigned TotalNumIntRegs = 0, TotalNumXMMRegs = 0; 1717 1718 // FIXME: We should really autogenerate these arrays 1719 static const unsigned GPR64ArgRegsWin64[] = { 1720 X86::RCX, X86::RDX, X86::R8, X86::R9 1721 }; 1722 static const unsigned XMMArgRegsWin64[] = { 1723 X86::XMM0, X86::XMM1, X86::XMM2, X86::XMM3 1724 }; 1725 static const unsigned GPR64ArgRegs64Bit[] = { 1726 X86::RDI, X86::RSI, X86::RDX, X86::RCX, X86::R8, X86::R9 1727 }; 1728 static const unsigned XMMArgRegs64Bit[] = { 1729 X86::XMM0, X86::XMM1, X86::XMM2, X86::XMM3, 1730 X86::XMM4, X86::XMM5, X86::XMM6, X86::XMM7 1731 }; 1732 const unsigned *GPR64ArgRegs, *XMMArgRegs; 1733 1734 if (IsWin64) { 1735 TotalNumIntRegs = 4; TotalNumXMMRegs = 4; 1736 GPR64ArgRegs = GPR64ArgRegsWin64; 1737 XMMArgRegs = XMMArgRegsWin64; 1738 } else { 1739 TotalNumIntRegs = 6; TotalNumXMMRegs = 8; 1740 GPR64ArgRegs = GPR64ArgRegs64Bit; 1741 XMMArgRegs = XMMArgRegs64Bit; 1742 } 1743 unsigned NumIntRegs = CCInfo.getFirstUnallocated(GPR64ArgRegs, 1744 TotalNumIntRegs); 1745 unsigned NumXMMRegs = CCInfo.getFirstUnallocated(XMMArgRegs, 1746 TotalNumXMMRegs); 1747 1748 bool NoImplicitFloatOps = Fn->hasFnAttr(Attribute::NoImplicitFloat); 1749 assert(!(NumXMMRegs && !Subtarget->hasSSE1()) && 1750 "SSE register cannot be used when SSE is disabled!"); 1751 assert(!(NumXMMRegs && UseSoftFloat && NoImplicitFloatOps) && 1752 "SSE register cannot be used when SSE is disabled!"); 1753 if (UseSoftFloat || NoImplicitFloatOps || !Subtarget->hasSSE1()) 1754 // Kernel mode asks for SSE to be disabled, so don't push them 1755 // on the stack. 1756 TotalNumXMMRegs = 0; 1757 1758 // For X86-64, if there are vararg parameters that are passed via 1759 // registers, then we must store them to their spots on the stack so they 1760 // may be loaded by deferencing the result of va_next. 1761 FuncInfo->setVarArgsGPOffset(NumIntRegs * 8); 1762 FuncInfo->setVarArgsFPOffset(TotalNumIntRegs * 8 + NumXMMRegs * 16); 1763 FuncInfo->setRegSaveFrameIndex( 1764 MFI->CreateStackObject(TotalNumIntRegs * 8 + TotalNumXMMRegs * 16, 16, 1765 false)); 1766 1767 // Store the integer parameter registers. 1768 SmallVector<SDValue, 8> MemOps; 1769 SDValue RSFIN = DAG.getFrameIndex(FuncInfo->getRegSaveFrameIndex(), 1770 getPointerTy()); 1771 unsigned Offset = FuncInfo->getVarArgsGPOffset(); 1772 for (; NumIntRegs != TotalNumIntRegs; ++NumIntRegs) { 1773 SDValue FIN = DAG.getNode(ISD::ADD, dl, getPointerTy(), RSFIN, 1774 DAG.getIntPtrConstant(Offset)); 1775 unsigned VReg = MF.addLiveIn(GPR64ArgRegs[NumIntRegs], 1776 X86::GR64RegisterClass); 1777 SDValue Val = DAG.getCopyFromReg(Chain, dl, VReg, MVT::i64); 1778 SDValue Store = 1779 DAG.getStore(Val.getValue(1), dl, Val, FIN, 1780 PseudoSourceValue::getFixedStack( 1781 FuncInfo->getRegSaveFrameIndex()), 1782 Offset, false, false, 0); 1783 MemOps.push_back(Store); 1784 Offset += 8; 1785 } 1786 1787 if (TotalNumXMMRegs != 0 && NumXMMRegs != TotalNumXMMRegs) { 1788 // Now store the XMM (fp + vector) parameter registers. 1789 SmallVector<SDValue, 11> SaveXMMOps; 1790 SaveXMMOps.push_back(Chain); 1791 1792 unsigned AL = MF.addLiveIn(X86::AL, X86::GR8RegisterClass); 1793 SDValue ALVal = DAG.getCopyFromReg(DAG.getEntryNode(), dl, AL, MVT::i8); 1794 SaveXMMOps.push_back(ALVal); 1795 1796 SaveXMMOps.push_back(DAG.getIntPtrConstant( 1797 FuncInfo->getRegSaveFrameIndex())); 1798 SaveXMMOps.push_back(DAG.getIntPtrConstant( 1799 FuncInfo->getVarArgsFPOffset())); 1800 1801 for (; NumXMMRegs != TotalNumXMMRegs; ++NumXMMRegs) { 1802 unsigned VReg = MF.addLiveIn(XMMArgRegs[NumXMMRegs], 1803 X86::VR128RegisterClass); 1804 SDValue Val = DAG.getCopyFromReg(Chain, dl, VReg, MVT::v4f32); 1805 SaveXMMOps.push_back(Val); 1806 } 1807 MemOps.push_back(DAG.getNode(X86ISD::VASTART_SAVE_XMM_REGS, dl, 1808 MVT::Other, 1809 &SaveXMMOps[0], SaveXMMOps.size())); 1810 } 1811 1812 if (!MemOps.empty()) 1813 Chain = DAG.getNode(ISD::TokenFactor, dl, MVT::Other, 1814 &MemOps[0], MemOps.size()); 1815 } 1816 } 1817 1818 // Some CCs need callee pop. 1819 if (Subtarget->IsCalleePop(isVarArg, CallConv)) { 1820 FuncInfo->setBytesToPopOnReturn(StackSize); // Callee pops everything. 1821 } else { 1822 FuncInfo->setBytesToPopOnReturn(0); // Callee pops nothing. 1823 // If this is an sret function, the return should pop the hidden pointer. 1824 if (!Is64Bit && !IsTailCallConvention(CallConv) && ArgsAreStructReturn(Ins)) 1825 FuncInfo->setBytesToPopOnReturn(4); 1826 } 1827 1828 if (!Is64Bit) { 1829 // RegSaveFrameIndex is X86-64 only. 1830 FuncInfo->setRegSaveFrameIndex(0xAAAAAAA); 1831 if (CallConv == CallingConv::X86_FastCall || 1832 CallConv == CallingConv::X86_ThisCall) 1833 // fastcc functions can't have varargs. 1834 FuncInfo->setVarArgsFrameIndex(0xAAAAAAA); 1835 } 1836 1837 return Chain; 1838 } 1839 1840 SDValue 1841 X86TargetLowering::LowerMemOpCallTo(SDValue Chain, 1842 SDValue StackPtr, SDValue Arg, 1843 DebugLoc dl, SelectionDAG &DAG, 1844 const CCValAssign &VA, 1845 ISD::ArgFlagsTy Flags) const { 1846 const unsigned FirstStackArgOffset = (Subtarget->isTargetWin64() ? 32 : 0); 1847 unsigned LocMemOffset = FirstStackArgOffset + VA.getLocMemOffset(); 1848 SDValue PtrOff = DAG.getIntPtrConstant(LocMemOffset); 1849 PtrOff = DAG.getNode(ISD::ADD, dl, getPointerTy(), StackPtr, PtrOff); 1850 if (Flags.isByVal()) { 1851 return CreateCopyOfByValArgument(Arg, PtrOff, Chain, Flags, DAG, dl); 1852 } 1853 return DAG.getStore(Chain, dl, Arg, PtrOff, 1854 PseudoSourceValue::getStack(), LocMemOffset, 1855 false, false, 0); 1856 } 1857 1858 /// EmitTailCallLoadRetAddr - Emit a load of return address if tail call 1859 /// optimization is performed and it is required. 1860 SDValue 1861 X86TargetLowering::EmitTailCallLoadRetAddr(SelectionDAG &DAG, 1862 SDValue &OutRetAddr, SDValue Chain, 1863 bool IsTailCall, bool Is64Bit, 1864 int FPDiff, DebugLoc dl) const { 1865 // Adjust the Return address stack slot. 1866 EVT VT = getPointerTy(); 1867 OutRetAddr = getReturnAddressFrameIndex(DAG); 1868 1869 // Load the "old" Return address. 1870 OutRetAddr = DAG.getLoad(VT, dl, Chain, OutRetAddr, NULL, 0, false, false, 0); 1871 return SDValue(OutRetAddr.getNode(), 1); 1872 } 1873 1874 /// EmitTailCallStoreRetAddr - Emit a store of the return adress if tail call 1875 /// optimization is performed and it is required (FPDiff!=0). 1876 static SDValue 1877 EmitTailCallStoreRetAddr(SelectionDAG & DAG, MachineFunction &MF, 1878 SDValue Chain, SDValue RetAddrFrIdx, 1879 bool Is64Bit, int FPDiff, DebugLoc dl) { 1880 // Store the return address to the appropriate stack slot. 1881 if (!FPDiff) return Chain; 1882 // Calculate the new stack slot for the return address. 1883 int SlotSize = Is64Bit ? 8 : 4; 1884 int NewReturnAddrFI = 1885 MF.getFrameInfo()->CreateFixedObject(SlotSize, FPDiff-SlotSize, false); 1886 EVT VT = Is64Bit ? MVT::i64 : MVT::i32; 1887 SDValue NewRetAddrFrIdx = DAG.getFrameIndex(NewReturnAddrFI, VT); 1888 Chain = DAG.getStore(Chain, dl, RetAddrFrIdx, NewRetAddrFrIdx, 1889 PseudoSourceValue::getFixedStack(NewReturnAddrFI), 0, 1890 false, false, 0); 1891 return Chain; 1892 } 1893 1894 SDValue 1895 X86TargetLowering::LowerCall(SDValue Chain, SDValue Callee, 1896 CallingConv::ID CallConv, bool isVarArg, 1897 bool &isTailCall, 1898 const SmallVectorImpl<ISD::OutputArg> &Outs, 1899 const SmallVectorImpl<SDValue> &OutVals, 1900 const SmallVectorImpl<ISD::InputArg> &Ins, 1901 DebugLoc dl, SelectionDAG &DAG, 1902 SmallVectorImpl<SDValue> &InVals) const { 1903 MachineFunction &MF = DAG.getMachineFunction(); 1904 bool Is64Bit = Subtarget->is64Bit(); 1905 bool IsStructRet = CallIsStructReturn(Outs); 1906 bool IsSibcall = false; 1907 1908 if (isTailCall) { 1909 // Check if it's really possible to do a tail call. 1910 isTailCall = IsEligibleForTailCallOptimization(Callee, CallConv, 1911 isVarArg, IsStructRet, MF.getFunction()->hasStructRetAttr(), 1912 Outs, OutVals, Ins, DAG); 1913 1914 // Sibcalls are automatically detected tailcalls which do not require 1915 // ABI changes. 1916 if (!GuaranteedTailCallOpt && isTailCall) 1917 IsSibcall = true; 1918 1919 if (isTailCall) 1920 ++NumTailCalls; 1921 } 1922 1923 assert(!(isVarArg && IsTailCallConvention(CallConv)) && 1924 "Var args not supported with calling convention fastcc or ghc"); 1925 1926 // Analyze operands of the call, assigning locations to each operand. 1927 SmallVector<CCValAssign, 16> ArgLocs; 1928 CCState CCInfo(CallConv, isVarArg, getTargetMachine(), 1929 ArgLocs, *DAG.getContext()); 1930 CCInfo.AnalyzeCallOperands(Outs, CCAssignFnForNode(CallConv)); 1931 1932 // Get a count of how many bytes are to be pushed on the stack. 1933 unsigned NumBytes = CCInfo.getNextStackOffset(); 1934 if (IsSibcall) 1935 // This is a sibcall. The memory operands are available in caller's 1936 // own caller's stack. 1937 NumBytes = 0; 1938 else if (GuaranteedTailCallOpt && IsTailCallConvention(CallConv)) 1939 NumBytes = GetAlignedArgumentStackSize(NumBytes, DAG); 1940 1941 int FPDiff = 0; 1942 if (isTailCall && !IsSibcall) { 1943 // Lower arguments at fp - stackoffset + fpdiff. 1944 unsigned NumBytesCallerPushed = 1945 MF.getInfo<X86MachineFunctionInfo>()->getBytesToPopOnReturn(); 1946 FPDiff = NumBytesCallerPushed - NumBytes; 1947 1948 // Set the delta of movement of the returnaddr stackslot. 1949 // But only set if delta is greater than previous delta. 1950 if (FPDiff < (MF.getInfo<X86MachineFunctionInfo>()->getTCReturnAddrDelta())) 1951 MF.getInfo<X86MachineFunctionInfo>()->setTCReturnAddrDelta(FPDiff); 1952 } 1953 1954 if (!IsSibcall) 1955 Chain = DAG.getCALLSEQ_START(Chain, DAG.getIntPtrConstant(NumBytes, true)); 1956 1957 SDValue RetAddrFrIdx; 1958 // Load return adress for tail calls. 1959 if (isTailCall && FPDiff) 1960 Chain = EmitTailCallLoadRetAddr(DAG, RetAddrFrIdx, Chain, isTailCall, 1961 Is64Bit, FPDiff, dl); 1962 1963 SmallVector<std::pair<unsigned, SDValue>, 8> RegsToPass; 1964 SmallVector<SDValue, 8> MemOpChains; 1965 SDValue StackPtr; 1966 1967 // Walk the register/memloc assignments, inserting copies/loads. In the case 1968 // of tail call optimization arguments are handle later. 1969 for (unsigned i = 0, e = ArgLocs.size(); i != e; ++i) { 1970 CCValAssign &VA = ArgLocs[i]; 1971 EVT RegVT = VA.getLocVT(); 1972 SDValue Arg = OutVals[i]; 1973 ISD::ArgFlagsTy Flags = Outs[i].Flags; 1974 bool isByVal = Flags.isByVal(); 1975 1976 // Promote the value if needed. 1977 switch (VA.getLocInfo()) { 1978 default: llvm_unreachable("Unknown loc info!"); 1979 case CCValAssign::Full: break; 1980 case CCValAssign::SExt: 1981 Arg = DAG.getNode(ISD::SIGN_EXTEND, dl, RegVT, Arg); 1982 break; 1983 case CCValAssign::ZExt: 1984 Arg = DAG.getNode(ISD::ZERO_EXTEND, dl, RegVT, Arg); 1985 break; 1986 case CCValAssign::AExt: 1987 if (RegVT.isVector() && RegVT.getSizeInBits() == 128) { 1988 // Special case: passing MMX values in XMM registers. 1989 Arg = DAG.getNode(ISD::BIT_CONVERT, dl, MVT::i64, Arg); 1990 Arg = DAG.getNode(ISD::SCALAR_TO_VECTOR, dl, MVT::v2i64, Arg); 1991 Arg = getMOVL(DAG, dl, MVT::v2i64, DAG.getUNDEF(MVT::v2i64), Arg); 1992 } else 1993 Arg = DAG.getNode(ISD::ANY_EXTEND, dl, RegVT, Arg); 1994 break; 1995 case CCValAssign::BCvt: 1996 Arg = DAG.getNode(ISD::BIT_CONVERT, dl, RegVT, Arg); 1997 break; 1998 case CCValAssign::Indirect: { 1999 // Store the argument. 2000 SDValue SpillSlot = DAG.CreateStackTemporary(VA.getValVT()); 2001 int FI = cast<FrameIndexSDNode>(SpillSlot)->getIndex(); 2002 Chain = DAG.getStore(Chain, dl, Arg, SpillSlot, 2003 PseudoSourceValue::getFixedStack(FI), 0, 2004 false, false, 0); 2005 Arg = SpillSlot; 2006 break; 2007 } 2008 } 2009 2010 if (VA.isRegLoc()) { 2011 RegsToPass.push_back(std::make_pair(VA.getLocReg(), Arg)); 2012 if (isVarArg && Subtarget->isTargetWin64()) { 2013 // Win64 ABI requires argument XMM reg to be copied to the corresponding 2014 // shadow reg if callee is a varargs function. 2015 unsigned ShadowReg = 0; 2016 switch (VA.getLocReg()) { 2017 case X86::XMM0: ShadowReg = X86::RCX; break; 2018 case X86::XMM1: ShadowReg = X86::RDX; break; 2019 case X86::XMM2: ShadowReg = X86::R8; break; 2020 case X86::XMM3: ShadowReg = X86::R9; break; 2021 } 2022 if (ShadowReg) 2023 RegsToPass.push_back(std::make_pair(ShadowReg, Arg)); 2024 } 2025 } else if (!IsSibcall && (!isTailCall || isByVal)) { 2026 assert(VA.isMemLoc()); 2027 if (StackPtr.getNode() == 0) 2028 StackPtr = DAG.getCopyFromReg(Chain, dl, X86StackPtr, getPointerTy()); 2029 MemOpChains.push_back(LowerMemOpCallTo(Chain, StackPtr, Arg, 2030 dl, DAG, VA, Flags)); 2031 } 2032 } 2033 2034 if (!MemOpChains.empty()) 2035 Chain = DAG.getNode(ISD::TokenFactor, dl, MVT::Other, 2036 &MemOpChains[0], MemOpChains.size()); 2037 2038 // Build a sequence of copy-to-reg nodes chained together with token chain 2039 // and flag operands which copy the outgoing args into registers. 2040 SDValue InFlag; 2041 // Tail call byval lowering might overwrite argument registers so in case of 2042 // tail call optimization the copies to registers are lowered later. 2043 if (!isTailCall) 2044 for (unsigned i = 0, e = RegsToPass.size(); i != e; ++i) { 2045 Chain = DAG.getCopyToReg(Chain, dl, RegsToPass[i].first, 2046 RegsToPass[i].second, InFlag); 2047 InFlag = Chain.getValue(1); 2048 } 2049 2050 if (Subtarget->isPICStyleGOT()) { 2051 // ELF / PIC requires GOT in the EBX register before function calls via PLT 2052 // GOT pointer. 2053 if (!isTailCall) { 2054 Chain = DAG.getCopyToReg(Chain, dl, X86::EBX, 2055 DAG.getNode(X86ISD::GlobalBaseReg, 2056 DebugLoc(), getPointerTy()), 2057 InFlag); 2058 InFlag = Chain.getValue(1); 2059 } else { 2060 // If we are tail calling and generating PIC/GOT style code load the 2061 // address of the callee into ECX. The value in ecx is used as target of 2062 // the tail jump. This is done to circumvent the ebx/callee-saved problem 2063 // for tail calls on PIC/GOT architectures. Normally we would just put the 2064 // address of GOT into ebx and then call target@PLT. But for tail calls 2065 // ebx would be restored (since ebx is callee saved) before jumping to the 2066 // target@PLT. 2067 2068 // Note: The actual moving to ECX is done further down. 2069 GlobalAddressSDNode *G = dyn_cast<GlobalAddressSDNode>(Callee); 2070 if (G && !G->getGlobal()->hasHiddenVisibility() && 2071 !G->getGlobal()->hasProtectedVisibility()) 2072 Callee = LowerGlobalAddress(Callee, DAG); 2073 else if (isa<ExternalSymbolSDNode>(Callee)) 2074 Callee = LowerExternalSymbol(Callee, DAG); 2075 } 2076 } 2077 2078 if (Is64Bit && isVarArg && !Subtarget->isTargetWin64()) { 2079 // From AMD64 ABI document: 2080 // For calls that may call functions that use varargs or stdargs 2081 // (prototype-less calls or calls to functions containing ellipsis (...) in 2082 // the declaration) %al is used as hidden argument to specify the number 2083 // of SSE registers used. The contents of %al do not need to match exactly 2084 // the number of registers, but must be an ubound on the number of SSE 2085 // registers used and is in the range 0 - 8 inclusive. 2086 2087 // Count the number of XMM registers allocated. 2088 static const unsigned XMMArgRegs[] = { 2089 X86::XMM0, X86::XMM1, X86::XMM2, X86::XMM3, 2090 X86::XMM4, X86::XMM5, X86::XMM6, X86::XMM7 2091 }; 2092 unsigned NumXMMRegs = CCInfo.getFirstUnallocated(XMMArgRegs, 8); 2093 assert((Subtarget->hasSSE1() || !NumXMMRegs) 2094 && "SSE registers cannot be used when SSE is disabled"); 2095 2096 Chain = DAG.getCopyToReg(Chain, dl, X86::AL, 2097 DAG.getConstant(NumXMMRegs, MVT::i8), InFlag); 2098 InFlag = Chain.getValue(1); 2099 } 2100 2101 2102 // For tail calls lower the arguments to the 'real' stack slot. 2103 if (isTailCall) { 2104 // Force all the incoming stack arguments to be loaded from the stack 2105 // before any new outgoing arguments are stored to the stack, because the 2106 // outgoing stack slots may alias the incoming argument stack slots, and 2107 // the alias isn't otherwise explicit. This is slightly more conservative 2108 // than necessary, because it means that each store effectively depends 2109 // on every argument instead of just those arguments it would clobber. 2110 SDValue ArgChain = DAG.getStackArgumentTokenFactor(Chain); 2111 2112 SmallVector<SDValue, 8> MemOpChains2; 2113 SDValue FIN; 2114 int FI = 0; 2115 // Do not flag preceeding copytoreg stuff together with the following stuff. 2116 InFlag = SDValue(); 2117 if (GuaranteedTailCallOpt) { 2118 for (unsigned i = 0, e = ArgLocs.size(); i != e; ++i) { 2119 CCValAssign &VA = ArgLocs[i]; 2120 if (VA.isRegLoc()) 2121 continue; 2122 assert(VA.isMemLoc()); 2123 SDValue Arg = OutVals[i]; 2124 ISD::ArgFlagsTy Flags = Outs[i].Flags; 2125 // Create frame index. 2126 int32_t Offset = VA.getLocMemOffset()+FPDiff; 2127 uint32_t OpSize = (VA.getLocVT().getSizeInBits()+7)/8; 2128 FI = MF.getFrameInfo()->CreateFixedObject(OpSize, Offset, true); 2129 FIN = DAG.getFrameIndex(FI, getPointerTy()); 2130 2131 if (Flags.isByVal()) { 2132 // Copy relative to framepointer. 2133 SDValue Source = DAG.getIntPtrConstant(VA.getLocMemOffset()); 2134 if (StackPtr.getNode() == 0) 2135 StackPtr = DAG.getCopyFromReg(Chain, dl, X86StackPtr, 2136 getPointerTy()); 2137 Source = DAG.getNode(ISD::ADD, dl, getPointerTy(), StackPtr, Source); 2138 2139 MemOpChains2.push_back(CreateCopyOfByValArgument(Source, FIN, 2140 ArgChain, 2141 Flags, DAG, dl)); 2142 } else { 2143 // Store relative to framepointer. 2144 MemOpChains2.push_back( 2145 DAG.getStore(ArgChain, dl, Arg, FIN, 2146 PseudoSourceValue::getFixedStack(FI), 0, 2147 false, false, 0)); 2148 } 2149 } 2150 } 2151 2152 if (!MemOpChains2.empty()) 2153 Chain = DAG.getNode(ISD::TokenFactor, dl, MVT::Other, 2154 &MemOpChains2[0], MemOpChains2.size()); 2155 2156 // Copy arguments to their registers. 2157 for (unsigned i = 0, e = RegsToPass.size(); i != e; ++i) { 2158 Chain = DAG.getCopyToReg(Chain, dl, RegsToPass[i].first, 2159 RegsToPass[i].second, InFlag); 2160 InFlag = Chain.getValue(1); 2161 } 2162 InFlag =SDValue(); 2163 2164 // Store the return address to the appropriate stack slot. 2165 Chain = EmitTailCallStoreRetAddr(DAG, MF, Chain, RetAddrFrIdx, Is64Bit, 2166 FPDiff, dl); 2167 } 2168 2169 if (getTargetMachine().getCodeModel() == CodeModel::Large) { 2170 assert(Is64Bit && "Large code model is only legal in 64-bit mode."); 2171 // In the 64-bit large code model, we have to make all calls 2172 // through a register, since the call instruction's 32-bit 2173 // pc-relative offset may not be large enough to hold the whole 2174 // address. 2175 } else if (GlobalAddressSDNode *G = dyn_cast<GlobalAddressSDNode>(Callee)) { 2176 // If the callee is a GlobalAddress node (quite common, every direct call 2177 // is) turn it into a TargetGlobalAddress node so that legalize doesn't hack 2178 // it. 2179 2180 // We should use extra load for direct calls to dllimported functions in 2181 // non-JIT mode. 2182 const GlobalValue *GV = G->getGlobal(); 2183 if (!GV->hasDLLImportLinkage()) { 2184 unsigned char OpFlags = 0; 2185 2186 // On ELF targets, in both X86-64 and X86-32 mode, direct calls to 2187 // external symbols most go through the PLT in PIC mode. If the symbol 2188 // has hidden or protected visibility, or if it is static or local, then 2189 // we don't need to use the PLT - we can directly call it. 2190 if (Subtarget->isTargetELF() && 2191 getTargetMachine().getRelocationModel() == Reloc::PIC_ && 2192 GV->hasDefaultVisibility() && !GV->hasLocalLinkage()) { 2193 OpFlags = X86II::MO_PLT; 2194 } else if (Subtarget->isPICStyleStubAny() && 2195 (GV->isDeclaration() || GV->isWeakForLinker()) && 2196 Subtarget->getDarwinVers() < 9) { 2197 // PC-relative references to external symbols should go through $stub, 2198 // unless we're building with the leopard linker or later, which 2199 // automatically synthesizes these stubs. 2200 OpFlags = X86II::MO_DARWIN_STUB; 2201 } 2202 2203 Callee = DAG.getTargetGlobalAddress(GV, dl, getPointerTy(), 2204 G->getOffset(), OpFlags); 2205 } 2206 } else if (ExternalSymbolSDNode *S = dyn_cast<ExternalSymbolSDNode>(Callee)) { 2207 unsigned char OpFlags = 0; 2208 2209 // On ELF targets, in either X86-64 or X86-32 mode, direct calls to external 2210 // symbols should go through the PLT. 2211 if (Subtarget->isTargetELF() && 2212 getTargetMachine().getRelocationModel() == Reloc::PIC_) { 2213 OpFlags = X86II::MO_PLT; 2214 } else if (Subtarget->isPICStyleStubAny() && 2215 Subtarget->getDarwinVers() < 9) { 2216 // PC-relative references to external symbols should go through $stub, 2217 // unless we're building with the leopard linker or later, which 2218 // automatically synthesizes these stubs. 2219 OpFlags = X86II::MO_DARWIN_STUB; 2220 } 2221 2222 Callee = DAG.getTargetExternalSymbol(S->getSymbol(), getPointerTy(), 2223 OpFlags); 2224 } 2225 2226 // Returns a chain & a flag for retval copy to use. 2227 SDVTList NodeTys = DAG.getVTList(MVT::Other, MVT::Flag); 2228 SmallVector<SDValue, 8> Ops; 2229 2230 if (!IsSibcall && isTailCall) { 2231 Chain = DAG.getCALLSEQ_END(Chain, DAG.getIntPtrConstant(NumBytes, true), 2232 DAG.getIntPtrConstant(0, true), InFlag); 2233 InFlag = Chain.getValue(1); 2234 } 2235 2236 Ops.push_back(Chain); 2237 Ops.push_back(Callee); 2238 2239 if (isTailCall) 2240 Ops.push_back(DAG.getConstant(FPDiff, MVT::i32)); 2241 2242 // Add argument registers to the end of the list so that they are known live 2243 // into the call. 2244 for (unsigned i = 0, e = RegsToPass.size(); i != e; ++i) 2245 Ops.push_back(DAG.getRegister(RegsToPass[i].first, 2246 RegsToPass[i].second.getValueType())); 2247 2248 // Add an implicit use GOT pointer in EBX. 2249 if (!isTailCall && Subtarget->isPICStyleGOT()) 2250 Ops.push_back(DAG.getRegister(X86::EBX, getPointerTy())); 2251 2252 // Add an implicit use of AL for non-Windows x86 64-bit vararg functions. 2253 if (Is64Bit && isVarArg && !Subtarget->isTargetWin64()) 2254 Ops.push_back(DAG.getRegister(X86::AL, MVT::i8)); 2255 2256 if (InFlag.getNode()) 2257 Ops.push_back(InFlag); 2258 2259 if (isTailCall) { 2260 // We used to do: 2261 //// If this is the first return lowered for this function, add the regs 2262 //// to the liveout set for the function. 2263 // This isn't right, although it's probably harmless on x86; liveouts 2264 // should be computed from returns not tail calls. Consider a void 2265 // function making a tail call to a function returning int. 2266 return DAG.getNode(X86ISD::TC_RETURN, dl, 2267 NodeTys, &Ops[0], Ops.size()); 2268 } 2269 2270 Chain = DAG.getNode(X86ISD::CALL, dl, NodeTys, &Ops[0], Ops.size()); 2271 InFlag = Chain.getValue(1); 2272 2273 // Create the CALLSEQ_END node. 2274 unsigned NumBytesForCalleeToPush; 2275 if (Subtarget->IsCalleePop(isVarArg, CallConv)) 2276 NumBytesForCalleeToPush = NumBytes; // Callee pops everything 2277 else if (!Is64Bit && !IsTailCallConvention(CallConv) && IsStructRet) 2278 // If this is a call to a struct-return function, the callee 2279 // pops the hidden struct pointer, so we have to push it back. 2280 // This is common for Darwin/X86, Linux & Mingw32 targets. 2281 NumBytesForCalleeToPush = 4; 2282 else 2283 NumBytesForCalleeToPush = 0; // Callee pops nothing. 2284 2285 // Returns a flag for retval copy to use. 2286 if (!IsSibcall) { 2287 Chain = DAG.getCALLSEQ_END(Chain, 2288 DAG.getIntPtrConstant(NumBytes, true), 2289 DAG.getIntPtrConstant(NumBytesForCalleeToPush, 2290 true), 2291 InFlag); 2292 InFlag = Chain.getValue(1); 2293 } 2294 2295 // Handle result values, copying them out of physregs into vregs that we 2296 // return. 2297 return LowerCallResult(Chain, InFlag, CallConv, isVarArg, 2298 Ins, dl, DAG, InVals); 2299 } 2300 2301 2302 //===----------------------------------------------------------------------===// 2303 // Fast Calling Convention (tail call) implementation 2304 //===----------------------------------------------------------------------===// 2305 2306 // Like std call, callee cleans arguments, convention except that ECX is 2307 // reserved for storing the tail called function address. Only 2 registers are 2308 // free for argument passing (inreg). Tail call optimization is performed 2309 // provided: 2310 // * tailcallopt is enabled 2311 // * caller/callee are fastcc 2312 // On X86_64 architecture with GOT-style position independent code only local 2313 // (within module) calls are supported at the moment. 2314 // To keep the stack aligned according to platform abi the function 2315 // GetAlignedArgumentStackSize ensures that argument delta is always multiples 2316 // of stack alignment. (Dynamic linkers need this - darwin's dyld for example) 2317 // If a tail called function callee has more arguments than the caller the 2318 // caller needs to make sure that there is room to move the RETADDR to. This is 2319 // achieved by reserving an area the size of the argument delta right after the 2320 // original REtADDR, but before the saved framepointer or the spilled registers 2321 // e.g. caller(arg1, arg2) calls callee(arg1, arg2,arg3,arg4) 2322 // stack layout: 2323 // arg1 2324 // arg2 2325 // RETADDR 2326 // [ new RETADDR 2327 // move area ] 2328 // (possible EBP) 2329 // ESI 2330 // EDI 2331 // local1 .. 2332 2333 /// GetAlignedArgumentStackSize - Make the stack size align e.g 16n + 12 aligned 2334 /// for a 16 byte align requirement. 2335 unsigned 2336 X86TargetLowering::GetAlignedArgumentStackSize(unsigned StackSize, 2337 SelectionDAG& DAG) const { 2338 MachineFunction &MF = DAG.getMachineFunction(); 2339 const TargetMachine &TM = MF.getTarget(); 2340 const TargetFrameInfo &TFI = *TM.getFrameInfo(); 2341 unsigned StackAlignment = TFI.getStackAlignment(); 2342 uint64_t AlignMask = StackAlignment - 1; 2343 int64_t Offset = StackSize; 2344 uint64_t SlotSize = TD->getPointerSize(); 2345 if ( (Offset & AlignMask) <= (StackAlignment - SlotSize) ) { 2346 // Number smaller than 12 so just add the difference. 2347 Offset += ((StackAlignment - SlotSize) - (Offset & AlignMask)); 2348 } else { 2349 // Mask out lower bits, add stackalignment once plus the 12 bytes. 2350 Offset = ((~AlignMask) & Offset) + StackAlignment + 2351 (StackAlignment-SlotSize); 2352 } 2353 return Offset; 2354 } 2355 2356 /// MatchingStackOffset - Return true if the given stack call argument is 2357 /// already available in the same position (relatively) of the caller's 2358 /// incoming argument stack. 2359 static 2360 bool MatchingStackOffset(SDValue Arg, unsigned Offset, ISD::ArgFlagsTy Flags, 2361 MachineFrameInfo *MFI, const MachineRegisterInfo *MRI, 2362 const X86InstrInfo *TII) { 2363 unsigned Bytes = Arg.getValueType().getSizeInBits() / 8; 2364 int FI = INT_MAX; 2365 if (Arg.getOpcode() == ISD::CopyFromReg) { 2366 unsigned VR = cast<RegisterSDNode>(Arg.getOperand(1))->getReg(); 2367 if (!VR || TargetRegisterInfo::isPhysicalRegister(VR)) 2368 return false; 2369 MachineInstr *Def = MRI->getVRegDef(VR); 2370 if (!Def) 2371 return false; 2372 if (!Flags.isByVal()) { 2373 if (!TII->isLoadFromStackSlot(Def, FI)) 2374 return false; 2375 } else { 2376 unsigned Opcode = Def->getOpcode(); 2377 if ((Opcode == X86::LEA32r || Opcode == X86::LEA64r) && 2378 Def->getOperand(1).isFI()) { 2379 FI = Def->getOperand(1).getIndex(); 2380 Bytes = Flags.getByValSize(); 2381 } else 2382 return false; 2383 } 2384 } else if (LoadSDNode *Ld = dyn_cast<LoadSDNode>(Arg)) { 2385 if (Flags.isByVal()) 2386 // ByVal argument is passed in as a pointer but it's now being 2387 // dereferenced. e.g. 2388 // define @foo(%struct.X* %A) { 2389 // tail call @bar(%struct.X* byval %A) 2390 // } 2391 return false; 2392 SDValue Ptr = Ld->getBasePtr(); 2393 FrameIndexSDNode *FINode = dyn_cast<FrameIndexSDNode>(Ptr); 2394 if (!FINode) 2395 return false; 2396 FI = FINode->getIndex(); 2397 } else 2398 return false; 2399 2400 assert(FI != INT_MAX); 2401 if (!MFI->isFixedObjectIndex(FI)) 2402 return false; 2403 return Offset == MFI->getObjectOffset(FI) && Bytes == MFI->getObjectSize(FI); 2404 } 2405 2406 /// IsEligibleForTailCallOptimization - Check whether the call is eligible 2407 /// for tail call optimization. Targets which want to do tail call 2408 /// optimization should implement this function. 2409 bool 2410 X86TargetLowering::IsEligibleForTailCallOptimization(SDValue Callee, 2411 CallingConv::ID CalleeCC, 2412 bool isVarArg, 2413 bool isCalleeStructRet, 2414 bool isCallerStructRet, 2415 const SmallVectorImpl<ISD::OutputArg> &Outs, 2416 const SmallVectorImpl<SDValue> &OutVals, 2417 const SmallVectorImpl<ISD::InputArg> &Ins, 2418 SelectionDAG& DAG) const { 2419 if (!IsTailCallConvention(CalleeCC) && 2420 CalleeCC != CallingConv::C) 2421 return false; 2422 2423 // If -tailcallopt is specified, make fastcc functions tail-callable. 2424 const MachineFunction &MF = DAG.getMachineFunction(); 2425 const Function *CallerF = DAG.getMachineFunction().getFunction(); 2426 CallingConv::ID CallerCC = CallerF->getCallingConv(); 2427 bool CCMatch = CallerCC == CalleeCC; 2428 2429 if (GuaranteedTailCallOpt) { 2430 if (IsTailCallConvention(CalleeCC) && CCMatch) 2431 return true; 2432 return false; 2433 } 2434 2435 // Look for obvious safe cases to perform tail call optimization that do not 2436 // require ABI changes. This is what gcc calls sibcall. 2437 2438 // Can't do sibcall if stack needs to be dynamically re-aligned. PEI needs to 2439 // emit a special epilogue. 2440 if (RegInfo->needsStackRealignment(MF)) 2441 return false; 2442 2443 // Do not sibcall optimize vararg calls unless the call site is not passing 2444 // any arguments. 2445 if (isVarArg && !Outs.empty()) 2446 return false; 2447 2448 // Also avoid sibcall optimization if either caller or callee uses struct 2449 // return semantics. 2450 if (isCalleeStructRet || isCallerStructRet) 2451 return false; 2452 2453 // If the call result is in ST0 / ST1, it needs to be popped off the x87 stack. 2454 // Therefore if it's not used by the call it is not safe to optimize this into 2455 // a sibcall. 2456 bool Unused = false; 2457 for (unsigned i = 0, e = Ins.size(); i != e; ++i) { 2458 if (!Ins[i].Used) { 2459 Unused = true; 2460 break; 2461 } 2462 } 2463 if (Unused) { 2464 SmallVector<CCValAssign, 16> RVLocs; 2465 CCState CCInfo(CalleeCC, false, getTargetMachine(), 2466 RVLocs, *DAG.getContext()); 2467 CCInfo.AnalyzeCallResult(Ins, RetCC_X86); 2468 for (unsigned i = 0, e = RVLocs.size(); i != e; ++i) { 2469 CCValAssign &VA = RVLocs[i]; 2470 if (VA.getLocReg() == X86::ST0 || VA.getLocReg() == X86::ST1) 2471 return false; 2472 } 2473 } 2474 2475 // If the calling conventions do not match, then we'd better make sure the 2476 // results are returned in the same way as what the caller expects. 2477 if (!CCMatch) { 2478 SmallVector<CCValAssign, 16> RVLocs1; 2479 CCState CCInfo1(CalleeCC, false, getTargetMachine(), 2480 RVLocs1, *DAG.getContext()); 2481 CCInfo1.AnalyzeCallResult(Ins, RetCC_X86); 2482 2483 SmallVector<CCValAssign, 16> RVLocs2; 2484 CCState CCInfo2(CallerCC, false, getTargetMachine(), 2485 RVLocs2, *DAG.getContext()); 2486 CCInfo2.AnalyzeCallResult(Ins, RetCC_X86); 2487 2488 if (RVLocs1.size() != RVLocs2.size()) 2489 return false; 2490 for (unsigned i = 0, e = RVLocs1.size(); i != e; ++i) { 2491 if (RVLocs1[i].isRegLoc() != RVLocs2[i].isRegLoc()) 2492 return false; 2493 if (RVLocs1[i].getLocInfo() != RVLocs2[i].getLocInfo()) 2494 return false; 2495 if (RVLocs1[i].isRegLoc()) { 2496 if (RVLocs1[i].getLocReg() != RVLocs2[i].getLocReg()) 2497 return false; 2498 } else { 2499 if (RVLocs1[i].getLocMemOffset() != RVLocs2[i].getLocMemOffset()) 2500 return false; 2501 } 2502 } 2503 } 2504 2505 // If the callee takes no arguments then go on to check the results of the 2506 // call. 2507 if (!Outs.empty()) { 2508 // Check if stack adjustment is needed. For now, do not do this if any 2509 // argument is passed on the stack. 2510 SmallVector<CCValAssign, 16> ArgLocs; 2511 CCState CCInfo(CalleeCC, isVarArg, getTargetMachine(), 2512 ArgLocs, *DAG.getContext()); 2513 CCInfo.AnalyzeCallOperands(Outs, CCAssignFnForNode(CalleeCC)); 2514 if (CCInfo.getNextStackOffset()) { 2515 MachineFunction &MF = DAG.getMachineFunction(); 2516 if (MF.getInfo<X86MachineFunctionInfo>()->getBytesToPopOnReturn()) 2517 return false; 2518 if (Subtarget->isTargetWin64()) 2519 // Win64 ABI has additional complications. 2520 return false; 2521 2522 // Check if the arguments are already laid out in the right way as 2523 // the caller's fixed stack objects. 2524 MachineFrameInfo *MFI = MF.getFrameInfo(); 2525 const MachineRegisterInfo *MRI = &MF.getRegInfo(); 2526 const X86InstrInfo *TII = 2527 ((X86TargetMachine&)getTargetMachine()).getInstrInfo(); 2528 for (unsigned i = 0, e = ArgLocs.size(); i != e; ++i) { 2529 CCValAssign &VA = ArgLocs[i]; 2530 SDValue Arg = OutVals[i]; 2531 ISD::ArgFlagsTy Flags = Outs[i].Flags; 2532 if (VA.getLocInfo() == CCValAssign::Indirect) 2533 return false; 2534 if (!VA.isRegLoc()) { 2535 if (!MatchingStackOffset(Arg, VA.getLocMemOffset(), Flags, 2536 MFI, MRI, TII)) 2537 return false; 2538 } 2539 } 2540 } 2541 2542 // If the tailcall address may be in a register, then make sure it's 2543 // possible to register allocate for it. In 32-bit, the call address can 2544 // only target EAX, EDX, or ECX since the tail call must be scheduled after 2545 // callee-saved registers are restored. These happen to be the same 2546 // registers used to pass 'inreg' arguments so watch out for those. 2547 if (!Subtarget->is64Bit() && 2548 !isa<GlobalAddressSDNode>(Callee) && 2549 !isa<ExternalSymbolSDNode>(Callee)) { 2550 unsigned NumInRegs = 0; 2551 for (unsigned i = 0, e = ArgLocs.size(); i != e; ++i) { 2552 CCValAssign &VA = ArgLocs[i]; 2553 if (!VA.isRegLoc()) 2554 continue; 2555 unsigned Reg = VA.getLocReg(); 2556 switch (Reg) { 2557 default: break; 2558 case X86::EAX: case X86::EDX: case X86::ECX: 2559 if (++NumInRegs == 3) 2560 return false; 2561 break; 2562 } 2563 } 2564 } 2565 } 2566 2567 return true; 2568 } 2569 2570 FastISel * 2571 X86TargetLowering::createFastISel(FunctionLoweringInfo &funcInfo) const { 2572 return X86::createFastISel(funcInfo); 2573 } 2574 2575 2576 //===----------------------------------------------------------------------===// 2577 // Other Lowering Hooks 2578 //===----------------------------------------------------------------------===// 2579 2580 static bool MayFoldLoad(SDValue Op) { 2581 return Op.hasOneUse() && ISD::isNormalLoad(Op.getNode()); 2582 } 2583 2584 static bool MayFoldIntoStore(SDValue Op) { 2585 return Op.hasOneUse() && ISD::isNormalStore(*Op.getNode()->use_begin()); 2586 } 2587 2588 static bool isTargetShuffle(unsigned Opcode) { 2589 switch(Opcode) { 2590 default: return false; 2591 case X86ISD::PSHUFD: 2592 case X86ISD::PSHUFHW: 2593 case X86ISD::PSHUFLW: 2594 case X86ISD::SHUFPD: 2595 case X86ISD::SHUFPS: 2596 case X86ISD::MOVLHPS: 2597 case X86ISD::MOVLHPD: 2598 case X86ISD::MOVHLPS: 2599 case X86ISD::MOVLPS: 2600 case X86ISD::MOVLPD: 2601 case X86ISD::MOVSHDUP: 2602 case X86ISD::MOVSLDUP: 2603 case X86ISD::MOVSS: 2604 case X86ISD::MOVSD: 2605 case X86ISD::UNPCKLPS: 2606 case X86ISD::UNPCKLPD: 2607 case X86ISD::PUNPCKLWD: 2608 case X86ISD::PUNPCKLBW: 2609 case X86ISD::PUNPCKLDQ: 2610 case X86ISD::PUNPCKLQDQ: 2611 case X86ISD::UNPCKHPS: 2612 case X86ISD::UNPCKHPD: 2613 case X86ISD::PUNPCKHWD: 2614 case X86ISD::PUNPCKHBW: 2615 case X86ISD::PUNPCKHDQ: 2616 case X86ISD::PUNPCKHQDQ: 2617 return true; 2618 } 2619 return false; 2620 } 2621 2622 static SDValue getTargetShuffleNode(unsigned Opc, DebugLoc dl, EVT VT, 2623 SDValue V1, SelectionDAG &DAG) { 2624 switch(Opc) { 2625 default: llvm_unreachable("Unknown x86 shuffle node"); 2626 case X86ISD::MOVSHDUP: 2627 case X86ISD::MOVSLDUP: 2628 return DAG.getNode(Opc, dl, VT, V1); 2629 } 2630 2631 return SDValue(); 2632 } 2633 2634 static SDValue getTargetShuffleNode(unsigned Opc, DebugLoc dl, EVT VT, 2635 SDValue V1, unsigned TargetMask, SelectionDAG &DAG) { 2636 switch(Opc) { 2637 default: llvm_unreachable("Unknown x86 shuffle node"); 2638 case X86ISD::PSHUFD: 2639 case X86ISD::PSHUFHW: 2640 case X86ISD::PSHUFLW: 2641 return DAG.getNode(Opc, dl, VT, V1, DAG.getConstant(TargetMask, MVT::i8)); 2642 } 2643 2644 return SDValue(); 2645 } 2646 2647 static SDValue getTargetShuffleNode(unsigned Opc, DebugLoc dl, EVT VT, 2648 SDValue V1, SDValue V2, unsigned TargetMask, SelectionDAG &DAG) { 2649 switch(Opc) { 2650 default: llvm_unreachable("Unknown x86 shuffle node"); 2651 case X86ISD::SHUFPD: 2652 case X86ISD::SHUFPS: 2653 return DAG.getNode(Opc, dl, VT, V1, V2, 2654 DAG.getConstant(TargetMask, MVT::i8)); 2655 } 2656 return SDValue(); 2657 } 2658 2659 static SDValue getTargetShuffleNode(unsigned Opc, DebugLoc dl, EVT VT, 2660 SDValue V1, SDValue V2, SelectionDAG &DAG) { 2661 switch(Opc) { 2662 default: llvm_unreachable("Unknown x86 shuffle node"); 2663 case X86ISD::MOVLHPS: 2664 case X86ISD::MOVLHPD: 2665 case X86ISD::MOVHLPS: 2666 case X86ISD::MOVLPS: 2667 case X86ISD::MOVLPD: 2668 case X86ISD::MOVSS: 2669 case X86ISD::MOVSD: 2670 case X86ISD::UNPCKLPS: 2671 case X86ISD::UNPCKLPD: 2672 case X86ISD::PUNPCKLWD: 2673 case X86ISD::PUNPCKLBW: 2674 case X86ISD::PUNPCKLDQ: 2675 case X86ISD::PUNPCKLQDQ: 2676 case X86ISD::UNPCKHPS: 2677 case X86ISD::UNPCKHPD: 2678 case X86ISD::PUNPCKHWD: 2679 case X86ISD::PUNPCKHBW: 2680 case X86ISD::PUNPCKHDQ: 2681 case X86ISD::PUNPCKHQDQ: 2682 return DAG.getNode(Opc, dl, VT, V1, V2); 2683 } 2684 return SDValue(); 2685 } 2686 2687 SDValue X86TargetLowering::getReturnAddressFrameIndex(SelectionDAG &DAG) const { 2688 MachineFunction &MF = DAG.getMachineFunction(); 2689 X86MachineFunctionInfo *FuncInfo = MF.getInfo<X86MachineFunctionInfo>(); 2690 int ReturnAddrIndex = FuncInfo->getRAIndex(); 2691 2692 if (ReturnAddrIndex == 0) { 2693 // Set up a frame object for the return address. 2694 uint64_t SlotSize = TD->getPointerSize(); 2695 ReturnAddrIndex = MF.getFrameInfo()->CreateFixedObject(SlotSize, -SlotSize, 2696 false); 2697 FuncInfo->setRAIndex(ReturnAddrIndex); 2698 } 2699 2700 return DAG.getFrameIndex(ReturnAddrIndex, getPointerTy()); 2701 } 2702 2703 2704 bool X86::isOffsetSuitableForCodeModel(int64_t Offset, CodeModel::Model M, 2705 bool hasSymbolicDisplacement) { 2706 // Offset should fit into 32 bit immediate field. 2707 if (!isInt<32>(Offset)) 2708 return false; 2709 2710 // If we don't have a symbolic displacement - we don't have any extra 2711 // restrictions. 2712 if (!hasSymbolicDisplacement) 2713 return true; 2714 2715 // FIXME: Some tweaks might be needed for medium code model. 2716 if (M != CodeModel::Small && M != CodeModel::Kernel) 2717 return false; 2718 2719 // For small code model we assume that latest object is 16MB before end of 31 2720 // bits boundary. We may also accept pretty large negative constants knowing 2721 // that all objects are in the positive half of address space. 2722 if (M == CodeModel::Small && Offset < 16*1024*1024) 2723 return true; 2724 2725 // For kernel code model we know that all object resist in the negative half 2726 // of 32bits address space. We may not accept negative offsets, since they may 2727 // be just off and we may accept pretty large positive ones. 2728 if (M == CodeModel::Kernel && Offset > 0) 2729 return true; 2730 2731 return false; 2732 } 2733 2734 /// TranslateX86CC - do a one to one translation of a ISD::CondCode to the X86 2735 /// specific condition code, returning the condition code and the LHS/RHS of the 2736 /// comparison to make. 2737 static unsigned TranslateX86CC(ISD::CondCode SetCCOpcode, bool isFP, 2738 SDValue &LHS, SDValue &RHS, SelectionDAG &DAG) { 2739 if (!isFP) { 2740 if (ConstantSDNode *RHSC = dyn_cast<ConstantSDNode>(RHS)) { 2741 if (SetCCOpcode == ISD::SETGT && RHSC->isAllOnesValue()) { 2742 // X > -1 -> X == 0, jump !sign. 2743 RHS = DAG.getConstant(0, RHS.getValueType()); 2744 return X86::COND_NS; 2745 } else if (SetCCOpcode == ISD::SETLT && RHSC->isNullValue()) { 2746 // X < 0 -> X == 0, jump on sign. 2747 return X86::COND_S; 2748 } else if (SetCCOpcode == ISD::SETLT && RHSC->getZExtValue() == 1) { 2749 // X < 1 -> X <= 0 2750 RHS = DAG.getConstant(0, RHS.getValueType()); 2751 return X86::COND_LE; 2752 } 2753 } 2754 2755 switch (SetCCOpcode) { 2756 default: llvm_unreachable("Invalid integer condition!"); 2757 case ISD::SETEQ: return X86::COND_E; 2758 case ISD::SETGT: return X86::COND_G; 2759 case ISD::SETGE: return X86::COND_GE; 2760 case ISD::SETLT: return X86::COND_L; 2761 case ISD::SETLE: return X86::COND_LE; 2762 case ISD::SETNE: return X86::COND_NE; 2763 case ISD::SETULT: return X86::COND_B; 2764 case ISD::SETUGT: return X86::COND_A; 2765 case ISD::SETULE: return X86::COND_BE; 2766 case ISD::SETUGE: return X86::COND_AE; 2767 } 2768 } 2769 2770 // First determine if it is required or is profitable to flip the operands. 2771 2772 // If LHS is a foldable load, but RHS is not, flip the condition. 2773 if ((ISD::isNON_EXTLoad(LHS.getNode()) && LHS.hasOneUse()) && 2774 !(ISD::isNON_EXTLoad(RHS.getNode()) && RHS.hasOneUse())) { 2775 SetCCOpcode = getSetCCSwappedOperands(SetCCOpcode); 2776 std::swap(LHS, RHS); 2777 } 2778 2779 switch (SetCCOpcode) { 2780 default: break; 2781 case ISD::SETOLT: 2782 case ISD::SETOLE: 2783 case ISD::SETUGT: 2784 case ISD::SETUGE: 2785 std::swap(LHS, RHS); 2786 break; 2787 } 2788 2789 // On a floating point condition, the flags are set as follows: 2790 // ZF PF CF op 2791 // 0 | 0 | 0 | X > Y 2792 // 0 | 0 | 1 | X < Y 2793 // 1 | 0 | 0 | X == Y 2794 // 1 | 1 | 1 | unordered 2795 switch (SetCCOpcode) { 2796 default: llvm_unreachable("Condcode should be pre-legalized away"); 2797 case ISD::SETUEQ: 2798 case ISD::SETEQ: return X86::COND_E; 2799 case ISD::SETOLT: // flipped 2800 case ISD::SETOGT: 2801 case ISD::SETGT: return X86::COND_A; 2802 case ISD::SETOLE: // flipped 2803 case ISD::SETOGE: 2804 case ISD::SETGE: return X86::COND_AE; 2805 case ISD::SETUGT: // flipped 2806 case ISD::SETULT: 2807 case ISD::SETLT: return X86::COND_B; 2808 case ISD::SETUGE: // flipped 2809 case ISD::SETULE: 2810 case ISD::SETLE: return X86::COND_BE; 2811 case ISD::SETONE: 2812 case ISD::SETNE: return X86::COND_NE; 2813 case ISD::SETUO: return X86::COND_P; 2814 case ISD::SETO: return X86::COND_NP; 2815 case ISD::SETOEQ: 2816 case ISD::SETUNE: return X86::COND_INVALID; 2817 } 2818 } 2819 2820 /// hasFPCMov - is there a floating point cmov for the specific X86 condition 2821 /// code. Current x86 isa includes the following FP cmov instructions: 2822 /// fcmovb, fcomvbe, fcomve, fcmovu, fcmovae, fcmova, fcmovne, fcmovnu. 2823 static bool hasFPCMov(unsigned X86CC) { 2824 switch (X86CC) { 2825 default: 2826 return false; 2827 case X86::COND_B: 2828 case X86::COND_BE: 2829 case X86::COND_E: 2830 case X86::COND_P: 2831 case X86::COND_A: 2832 case X86::COND_AE: 2833 case X86::COND_NE: 2834 case X86::COND_NP: 2835 return true; 2836 } 2837 } 2838 2839 /// isFPImmLegal - Returns true if the target can instruction select the 2840 /// specified FP immediate natively. If false, the legalizer will 2841 /// materialize the FP immediate as a load from a constant pool. 2842 bool X86TargetLowering::isFPImmLegal(const APFloat &Imm, EVT VT) const { 2843 for (unsigned i = 0, e = LegalFPImmediates.size(); i != e; ++i) { 2844 if (Imm.bitwiseIsEqual(LegalFPImmediates[i])) 2845 return true; 2846 } 2847 return false; 2848 } 2849 2850 /// isUndefOrInRange - Return true if Val is undef or if its value falls within 2851 /// the specified range (L, H]. 2852 static bool isUndefOrInRange(int Val, int Low, int Hi) { 2853 return (Val < 0) || (Val >= Low && Val < Hi); 2854 } 2855 2856 /// isUndefOrEqual - Val is either less than zero (undef) or equal to the 2857 /// specified value. 2858 static bool isUndefOrEqual(int Val, int CmpVal) { 2859 if (Val < 0 || Val == CmpVal) 2860 return true; 2861 return false; 2862 } 2863 2864 /// isPSHUFDMask - Return true if the node specifies a shuffle of elements that 2865 /// is suitable for input to PSHUFD or PSHUFW. That is, it doesn't reference 2866 /// the second operand. 2867 static bool isPSHUFDMask(const SmallVectorImpl<int> &Mask, EVT VT) { 2868 if (VT == MVT::v4f32 || VT == MVT::v4i32 || VT == MVT::v4i16) 2869 return (Mask[0] < 4 && Mask[1] < 4 && Mask[2] < 4 && Mask[3] < 4); 2870 if (VT == MVT::v2f64 || VT == MVT::v2i64) 2871 return (Mask[0] < 2 && Mask[1] < 2); 2872 return false; 2873 } 2874 2875 bool X86::isPSHUFDMask(ShuffleVectorSDNode *N) { 2876 SmallVector<int, 8> M; 2877 N->getMask(M); 2878 return ::isPSHUFDMask(M, N->getValueType(0)); 2879 } 2880 2881 /// isPSHUFHWMask - Return true if the node specifies a shuffle of elements that 2882 /// is suitable for input to PSHUFHW. 2883 static bool isPSHUFHWMask(const SmallVectorImpl<int> &Mask, EVT VT) { 2884 if (VT != MVT::v8i16) 2885 return false; 2886 2887 // Lower quadword copied in order or undef. 2888 for (int i = 0; i != 4; ++i) 2889 if (Mask[i] >= 0 && Mask[i] != i) 2890 return false; 2891 2892 // Upper quadword shuffled. 2893 for (int i = 4; i != 8; ++i) 2894 if (Mask[i] >= 0 && (Mask[i] < 4 || Mask[i] > 7)) 2895 return false; 2896 2897 return true; 2898 } 2899 2900 bool X86::isPSHUFHWMask(ShuffleVectorSDNode *N) { 2901 SmallVector<int, 8> M; 2902 N->getMask(M); 2903 return ::isPSHUFHWMask(M, N->getValueType(0)); 2904 } 2905 2906 /// isPSHUFLWMask - Return true if the node specifies a shuffle of elements that 2907 /// is suitable for input to PSHUFLW. 2908 static bool isPSHUFLWMask(const SmallVectorImpl<int> &Mask, EVT VT) { 2909 if (VT != MVT::v8i16) 2910 return false; 2911 2912 // Upper quadword copied in order. 2913 for (int i = 4; i != 8; ++i) 2914 if (Mask[i] >= 0 && Mask[i] != i) 2915 return false; 2916 2917 // Lower quadword shuffled. 2918 for (int i = 0; i != 4; ++i) 2919 if (Mask[i] >= 4) 2920 return false; 2921 2922 return true; 2923 } 2924 2925 bool X86::isPSHUFLWMask(ShuffleVectorSDNode *N) { 2926 SmallVector<int, 8> M; 2927 N->getMask(M); 2928 return ::isPSHUFLWMask(M, N->getValueType(0)); 2929 } 2930 2931 /// isPALIGNRMask - Return true if the node specifies a shuffle of elements that 2932 /// is suitable for input to PALIGNR. 2933 static bool isPALIGNRMask(const SmallVectorImpl<int> &Mask, EVT VT, 2934 bool hasSSSE3) { 2935 int i, e = VT.getVectorNumElements(); 2936 2937 // Do not handle v2i64 / v2f64 shuffles with palignr. 2938 if (e < 4 || !hasSSSE3) 2939 return false; 2940 2941 for (i = 0; i != e; ++i) 2942 if (Mask[i] >= 0) 2943 break; 2944 2945 // All undef, not a palignr. 2946 if (i == e) 2947 return false; 2948 2949 // Determine if it's ok to perform a palignr with only the LHS, since we 2950 // don't have access to the actual shuffle elements to see if RHS is undef. 2951 bool Unary = Mask[i] < (int)e; 2952 bool NeedsUnary = false; 2953 2954 int s = Mask[i] - i; 2955 2956 // Check the rest of the elements to see if they are consecutive. 2957 for (++i; i != e; ++i) { 2958 int m = Mask[i]; 2959 if (m < 0) 2960 continue; 2961 2962 Unary = Unary && (m < (int)e); 2963 NeedsUnary = NeedsUnary || (m < s); 2964 2965 if (NeedsUnary && !Unary) 2966 return false; 2967 if (Unary && m != ((s+i) & (e-1))) 2968 return false; 2969 if (!Unary && m != (s+i)) 2970 return false; 2971 } 2972 return true; 2973 } 2974 2975 bool X86::isPALIGNRMask(ShuffleVectorSDNode *N) { 2976 SmallVector<int, 8> M; 2977 N->getMask(M); 2978 return ::isPALIGNRMask(M, N->getValueType(0), true); 2979 } 2980 2981 /// isSHUFPMask - Return true if the specified VECTOR_SHUFFLE operand 2982 /// specifies a shuffle of elements that is suitable for input to SHUFP*. 2983 static bool isSHUFPMask(const SmallVectorImpl<int> &Mask, EVT VT) { 2984 int NumElems = VT.getVectorNumElements(); 2985 if (NumElems != 2 && NumElems != 4) 2986 return false; 2987 2988 int Half = NumElems / 2; 2989 for (int i = 0; i < Half; ++i) 2990 if (!isUndefOrInRange(Mask[i], 0, NumElems)) 2991 return false; 2992 for (int i = Half; i < NumElems; ++i) 2993 if (!isUndefOrInRange(Mask[i], NumElems, NumElems*2)) 2994 return false; 2995 2996 return true; 2997 } 2998 2999 bool X86::isSHUFPMask(ShuffleVectorSDNode *N) { 3000 SmallVector<int, 8> M; 3001 N->getMask(M); 3002 return ::isSHUFPMask(M, N->getValueType(0)); 3003 } 3004 3005 /// isCommutedSHUFP - Returns true if the shuffle mask is exactly 3006 /// the reverse of what x86 shuffles want. x86 shuffles requires the lower 3007 /// half elements to come from vector 1 (which would equal the dest.) and 3008 /// the upper half to come from vector 2. 3009 static bool isCommutedSHUFPMask(const SmallVectorImpl<int> &Mask, EVT VT) { 3010 int NumElems = VT.getVectorNumElements(); 3011 3012 if (NumElems != 2 && NumElems != 4) 3013 return false; 3014 3015 int Half = NumElems / 2; 3016 for (int i = 0; i < Half; ++i) 3017 if (!isUndefOrInRange(Mask[i], NumElems, NumElems*2)) 3018 return false; 3019 for (int i = Half; i < NumElems; ++i) 3020 if (!isUndefOrInRange(Mask[i], 0, NumElems)) 3021 return false; 3022 return true; 3023 } 3024 3025 static bool isCommutedSHUFP(ShuffleVectorSDNode *N) { 3026 SmallVector<int, 8> M; 3027 N->getMask(M); 3028 return isCommutedSHUFPMask(M, N->getValueType(0)); 3029 } 3030 3031 /// isMOVHLPSMask - Return true if the specified VECTOR_SHUFFLE operand 3032 /// specifies a shuffle of elements that is suitable for input to MOVHLPS. 3033 bool X86::isMOVHLPSMask(ShuffleVectorSDNode *N) { 3034 if (N->getValueType(0).getVectorNumElements() != 4) 3035 return false; 3036 3037 // Expect bit0 == 6, bit1 == 7, bit2 == 2, bit3 == 3 3038 return isUndefOrEqual(N->getMaskElt(0), 6) && 3039 isUndefOrEqual(N->getMaskElt(1), 7) && 3040 isUndefOrEqual(N->getMaskElt(2), 2) && 3041 isUndefOrEqual(N->getMaskElt(3), 3); 3042 } 3043 3044 /// isMOVHLPS_v_undef_Mask - Special case of isMOVHLPSMask for canonical form 3045 /// of vector_shuffle v, v, <2, 3, 2, 3>, i.e. vector_shuffle v, undef, 3046 /// <2, 3, 2, 3> 3047 bool X86::isMOVHLPS_v_undef_Mask(ShuffleVectorSDNode *N) { 3048 unsigned NumElems = N->getValueType(0).getVectorNumElements(); 3049 3050 if (NumElems != 4) 3051 return false; 3052 3053 return isUndefOrEqual(N->getMaskElt(0), 2) && 3054 isUndefOrEqual(N->getMaskElt(1), 3) && 3055 isUndefOrEqual(N->getMaskElt(2), 2) && 3056 isUndefOrEqual(N->getMaskElt(3), 3); 3057 } 3058 3059 /// isMOVLPMask - Return true if the specified VECTOR_SHUFFLE operand 3060 /// specifies a shuffle of elements that is suitable for input to MOVLP{S|D}. 3061 bool X86::isMOVLPMask(ShuffleVectorSDNode *N) { 3062 unsigned NumElems = N->getValueType(0).getVectorNumElements(); 3063 3064 if (NumElems != 2 && NumElems != 4) 3065 return false; 3066 3067 for (unsigned i = 0; i < NumElems/2; ++i) 3068 if (!isUndefOrEqual(N->getMaskElt(i), i + NumElems)) 3069 return false; 3070 3071 for (unsigned i = NumElems/2; i < NumElems; ++i) 3072 if (!isUndefOrEqual(N->getMaskElt(i), i)) 3073 return false; 3074 3075 return true; 3076 } 3077 3078 /// isMOVLHPSMask - Return true if the specified VECTOR_SHUFFLE operand 3079 /// specifies a shuffle of elements that is suitable for input to MOVLHPS. 3080 bool X86::isMOVLHPSMask(ShuffleVectorSDNode *N) { 3081 unsigned NumElems = N->getValueType(0).getVectorNumElements(); 3082 3083 if (NumElems != 2 && NumElems != 4) 3084 return false; 3085 3086 for (unsigned i = 0; i < NumElems/2; ++i) 3087 if (!isUndefOrEqual(N->getMaskElt(i), i)) 3088 return false; 3089 3090 for (unsigned i = 0; i < NumElems/2; ++i) 3091 if (!isUndefOrEqual(N->getMaskElt(i + NumElems/2), i + NumElems)) 3092 return false; 3093 3094 return true; 3095 } 3096 3097 /// isUNPCKLMask - Return true if the specified VECTOR_SHUFFLE operand 3098 /// specifies a shuffle of elements that is suitable for input to UNPCKL. 3099 static bool isUNPCKLMask(const SmallVectorImpl<int> &Mask, EVT VT, 3100 bool V2IsSplat = false) { 3101 int NumElts = VT.getVectorNumElements(); 3102 if (NumElts != 2 && NumElts != 4 && NumElts != 8 && NumElts != 16) 3103 return false; 3104 3105 for (int i = 0, j = 0; i != NumElts; i += 2, ++j) { 3106 int BitI = Mask[i]; 3107 int BitI1 = Mask[i+1]; 3108 if (!isUndefOrEqual(BitI, j)) 3109 return false; 3110 if (V2IsSplat) { 3111 if (!isUndefOrEqual(BitI1, NumElts)) 3112 return false; 3113 } else { 3114 if (!isUndefOrEqual(BitI1, j + NumElts)) 3115 return false; 3116 } 3117 } 3118 return true; 3119 } 3120 3121 bool X86::isUNPCKLMask(ShuffleVectorSDNode *N, bool V2IsSplat) { 3122 SmallVector<int, 8> M; 3123 N->getMask(M); 3124 return ::isUNPCKLMask(M, N->getValueType(0), V2IsSplat); 3125 } 3126 3127 /// isUNPCKHMask - Return true if the specified VECTOR_SHUFFLE operand 3128 /// specifies a shuffle of elements that is suitable for input to UNPCKH. 3129 static bool isUNPCKHMask(const SmallVectorImpl<int> &Mask, EVT VT, 3130 bool V2IsSplat = false) { 3131 int NumElts = VT.getVectorNumElements(); 3132 if (NumElts != 2 && NumElts != 4 && NumElts != 8 && NumElts != 16) 3133 return false; 3134 3135 for (int i = 0, j = 0; i != NumElts; i += 2, ++j) { 3136 int BitI = Mask[i]; 3137 int BitI1 = Mask[i+1]; 3138 if (!isUndefOrEqual(BitI, j + NumElts/2)) 3139 return false; 3140 if (V2IsSplat) { 3141 if (isUndefOrEqual(BitI1, NumElts)) 3142 return false; 3143 } else { 3144 if (!isUndefOrEqual(BitI1, j + NumElts/2 + NumElts)) 3145 return false; 3146 } 3147 } 3148 return true; 3149 } 3150 3151 bool X86::isUNPCKHMask(ShuffleVectorSDNode *N, bool V2IsSplat) { 3152 SmallVector<int, 8> M; 3153 N->getMask(M); 3154 return ::isUNPCKHMask(M, N->getValueType(0), V2IsSplat); 3155 } 3156 3157 /// isUNPCKL_v_undef_Mask - Special case of isUNPCKLMask for canonical form 3158 /// of vector_shuffle v, v, <0, 4, 1, 5>, i.e. vector_shuffle v, undef, 3159 /// <0, 0, 1, 1> 3160 static bool isUNPCKL_v_undef_Mask(const SmallVectorImpl<int> &Mask, EVT VT) { 3161 int NumElems = VT.getVectorNumElements(); 3162 if (NumElems != 2 && NumElems != 4 && NumElems != 8 && NumElems != 16) 3163 return false; 3164 3165 for (int i = 0, j = 0; i != NumElems; i += 2, ++j) { 3166 int BitI = Mask[i]; 3167 int BitI1 = Mask[i+1]; 3168 if (!isUndefOrEqual(BitI, j)) 3169 return false; 3170 if (!isUndefOrEqual(BitI1, j)) 3171 return false; 3172 } 3173 return true; 3174 } 3175 3176 bool X86::isUNPCKL_v_undef_Mask(ShuffleVectorSDNode *N) { 3177 SmallVector<int, 8> M; 3178 N->getMask(M); 3179 return ::isUNPCKL_v_undef_Mask(M, N->getValueType(0)); 3180 } 3181 3182 /// isUNPCKH_v_undef_Mask - Special case of isUNPCKHMask for canonical form 3183 /// of vector_shuffle v, v, <2, 6, 3, 7>, i.e. vector_shuffle v, undef, 3184 /// <2, 2, 3, 3> 3185 static bool isUNPCKH_v_undef_Mask(const SmallVectorImpl<int> &Mask, EVT VT) { 3186 int NumElems = VT.getVectorNumElements(); 3187 if (NumElems != 2 && NumElems != 4 && NumElems != 8 && NumElems != 16) 3188 return false; 3189 3190 for (int i = 0, j = NumElems / 2; i != NumElems; i += 2, ++j) { 3191 int BitI = Mask[i]; 3192 int BitI1 = Mask[i+1]; 3193 if (!isUndefOrEqual(BitI, j)) 3194 return false; 3195 if (!isUndefOrEqual(BitI1, j)) 3196 return false; 3197 } 3198 return true; 3199 } 3200 3201 bool X86::isUNPCKH_v_undef_Mask(ShuffleVectorSDNode *N) { 3202 SmallVector<int, 8> M; 3203 N->getMask(M); 3204 return ::isUNPCKH_v_undef_Mask(M, N->getValueType(0)); 3205 } 3206 3207 /// isMOVLMask - Return true if the specified VECTOR_SHUFFLE operand 3208 /// specifies a shuffle of elements that is suitable for input to MOVSS, 3209 /// MOVSD, and MOVD, i.e. setting the lowest element. 3210 static bool isMOVLMask(const SmallVectorImpl<int> &Mask, EVT VT) { 3211 if (VT.getVectorElementType().getSizeInBits() < 32) 3212 return false; 3213 3214 int NumElts = VT.getVectorNumElements(); 3215 3216 if (!isUndefOrEqual(Mask[0], NumElts)) 3217 return false; 3218 3219 for (int i = 1; i < NumElts; ++i) 3220 if (!isUndefOrEqual(Mask[i], i)) 3221 return false; 3222 3223 return true; 3224 } 3225 3226 bool X86::isMOVLMask(ShuffleVectorSDNode *N) { 3227 SmallVector<int, 8> M; 3228 N->getMask(M); 3229 return ::isMOVLMask(M, N->getValueType(0)); 3230 } 3231 3232 /// isCommutedMOVL - Returns true if the shuffle mask is except the reverse 3233 /// of what x86 movss want. X86 movs requires the lowest element to be lowest 3234 /// element of vector 2 and the other elements to come from vector 1 in order. 3235 static bool isCommutedMOVLMask(const SmallVectorImpl<int> &Mask, EVT VT, 3236 bool V2IsSplat = false, bool V2IsUndef = false) { 3237 int NumOps = VT.getVectorNumElements(); 3238 if (NumOps != 2 && NumOps != 4 && NumOps != 8 && NumOps != 16) 3239 return false; 3240 3241 if (!isUndefOrEqual(Mask[0], 0)) 3242 return false; 3243 3244 for (int i = 1; i < NumOps; ++i) 3245 if (!(isUndefOrEqual(Mask[i], i+NumOps) || 3246 (V2IsUndef && isUndefOrInRange(Mask[i], NumOps, NumOps*2)) || 3247 (V2IsSplat && isUndefOrEqual(Mask[i], NumOps)))) 3248 return false; 3249 3250 return true; 3251 } 3252 3253 static bool isCommutedMOVL(ShuffleVectorSDNode *N, bool V2IsSplat = false, 3254 bool V2IsUndef = false) { 3255 SmallVector<int, 8> M; 3256 N->getMask(M); 3257 return isCommutedMOVLMask(M, N->getValueType(0), V2IsSplat, V2IsUndef); 3258 } 3259 3260 /// isMOVSHDUPMask - Return true if the specified VECTOR_SHUFFLE operand 3261 /// specifies a shuffle of elements that is suitable for input to MOVSHDUP. 3262 bool X86::isMOVSHDUPMask(ShuffleVectorSDNode *N) { 3263 if (N->getValueType(0).getVectorNumElements() != 4) 3264 return false; 3265 3266 // Expect 1, 1, 3, 3 3267 for (unsigned i = 0; i < 2; ++i) { 3268 int Elt = N->getMaskElt(i); 3269 if (Elt >= 0 && Elt != 1) 3270 return false; 3271 } 3272 3273 bool HasHi = false; 3274 for (unsigned i = 2; i < 4; ++i) { 3275 int Elt = N->getMaskElt(i); 3276 if (Elt >= 0 && Elt != 3) 3277 return false; 3278 if (Elt == 3) 3279 HasHi = true; 3280 } 3281 // Don't use movshdup if it can be done with a shufps. 3282 // FIXME: verify that matching u, u, 3, 3 is what we want. 3283 return HasHi; 3284 } 3285 3286 /// isMOVSLDUPMask - Return true if the specified VECTOR_SHUFFLE operand 3287 /// specifies a shuffle of elements that is suitable for input to MOVSLDUP. 3288 bool X86::isMOVSLDUPMask(ShuffleVectorSDNode *N) { 3289 if (N->getValueType(0).getVectorNumElements() != 4) 3290 return false; 3291 3292 // Expect 0, 0, 2, 2 3293 for (unsigned i = 0; i < 2; ++i) 3294 if (N->getMaskElt(i) > 0) 3295 return false; 3296 3297 bool HasHi = false; 3298 for (unsigned i = 2; i < 4; ++i) { 3299 int Elt = N->getMaskElt(i); 3300 if (Elt >= 0 && Elt != 2) 3301 return false; 3302 if (Elt == 2) 3303 HasHi = true; 3304 } 3305 // Don't use movsldup if it can be done with a shufps. 3306 return HasHi; 3307 } 3308 3309 /// isMOVDDUPMask - Return true if the specified VECTOR_SHUFFLE operand 3310 /// specifies a shuffle of elements that is suitable for input to MOVDDUP. 3311 bool X86::isMOVDDUPMask(ShuffleVectorSDNode *N) { 3312 int e = N->getValueType(0).getVectorNumElements() / 2; 3313 3314 for (int i = 0; i < e; ++i) 3315 if (!isUndefOrEqual(N->getMaskElt(i), i)) 3316 return false; 3317 for (int i = 0; i < e; ++i) 3318 if (!isUndefOrEqual(N->getMaskElt(e+i), i)) 3319 return false; 3320 return true; 3321 } 3322 3323 /// getShuffleSHUFImmediate - Return the appropriate immediate to shuffle 3324 /// the specified VECTOR_SHUFFLE mask with PSHUF* and SHUFP* instructions. 3325 unsigned X86::getShuffleSHUFImmediate(SDNode *N) { 3326 ShuffleVectorSDNode *SVOp = cast<ShuffleVectorSDNode>(N); 3327 int NumOperands = SVOp->getValueType(0).getVectorNumElements(); 3328 3329 unsigned Shift = (NumOperands == 4) ? 2 : 1; 3330 unsigned Mask = 0; 3331 for (int i = 0; i < NumOperands; ++i) { 3332 int Val = SVOp->getMaskElt(NumOperands-i-1); 3333 if (Val < 0) Val = 0; 3334 if (Val >= NumOperands) Val -= NumOperands; 3335 Mask |= Val; 3336 if (i != NumOperands - 1) 3337 Mask <<= Shift; 3338 } 3339 return Mask; 3340 } 3341 3342 /// getShufflePSHUFHWImmediate - Return the appropriate immediate to shuffle 3343 /// the specified VECTOR_SHUFFLE mask with the PSHUFHW instruction. 3344 unsigned X86::getShufflePSHUFHWImmediate(SDNode *N) { 3345 ShuffleVectorSDNode *SVOp = cast<ShuffleVectorSDNode>(N); 3346 unsigned Mask = 0; 3347 // 8 nodes, but we only care about the last 4. 3348 for (unsigned i = 7; i >= 4; --i) { 3349 int Val = SVOp->getMaskElt(i); 3350 if (Val >= 0) 3351 Mask |= (Val - 4); 3352 if (i != 4) 3353 Mask <<= 2; 3354 } 3355 return Mask; 3356 } 3357 3358 /// getShufflePSHUFLWImmediate - Return the appropriate immediate to shuffle 3359 /// the specified VECTOR_SHUFFLE mask with the PSHUFLW instruction. 3360 unsigned X86::getShufflePSHUFLWImmediate(SDNode *N) { 3361 ShuffleVectorSDNode *SVOp = cast<ShuffleVectorSDNode>(N); 3362 unsigned Mask = 0; 3363 // 8 nodes, but we only care about the first 4. 3364 for (int i = 3; i >= 0; --i) { 3365 int Val = SVOp->getMaskElt(i); 3366 if (Val >= 0) 3367 Mask |= Val; 3368 if (i != 0) 3369 Mask <<= 2; 3370 } 3371 return Mask; 3372 } 3373 3374 /// getShufflePALIGNRImmediate - Return the appropriate immediate to shuffle 3375 /// the specified VECTOR_SHUFFLE mask with the PALIGNR instruction. 3376 unsigned X86::getShufflePALIGNRImmediate(SDNode *N) { 3377 ShuffleVectorSDNode *SVOp = cast<ShuffleVectorSDNode>(N); 3378 EVT VVT = N->getValueType(0); 3379 unsigned EltSize = VVT.getVectorElementType().getSizeInBits() >> 3; 3380 int Val = 0; 3381 3382 unsigned i, e; 3383 for (i = 0, e = VVT.getVectorNumElements(); i != e; ++i) { 3384 Val = SVOp->getMaskElt(i); 3385 if (Val >= 0) 3386 break; 3387 } 3388 return (Val - i) * EltSize; 3389 } 3390 3391 /// isZeroNode - Returns true if Elt is a constant zero or a floating point 3392 /// constant +0.0. 3393 bool X86::isZeroNode(SDValue Elt) { 3394 return ((isa<ConstantSDNode>(Elt) && 3395 cast<ConstantSDNode>(Elt)->isNullValue()) || 3396 (isa<ConstantFPSDNode>(Elt) && 3397 cast<ConstantFPSDNode>(Elt)->getValueAPF().isPosZero())); 3398 } 3399 3400 /// CommuteVectorShuffle - Swap vector_shuffle operands as well as values in 3401 /// their permute mask. 3402 static SDValue CommuteVectorShuffle(ShuffleVectorSDNode *SVOp, 3403 SelectionDAG &DAG) { 3404 EVT VT = SVOp->getValueType(0); 3405 unsigned NumElems = VT.getVectorNumElements(); 3406 SmallVector<int, 8> MaskVec; 3407 3408 for (unsigned i = 0; i != NumElems; ++i) { 3409 int idx = SVOp->getMaskElt(i); 3410 if (idx < 0) 3411 MaskVec.push_back(idx); 3412 else if (idx < (int)NumElems) 3413 MaskVec.push_back(idx + NumElems); 3414 else 3415 MaskVec.push_back(idx - NumElems); 3416 } 3417 return DAG.getVectorShuffle(VT, SVOp->getDebugLoc(), SVOp->getOperand(1), 3418 SVOp->getOperand(0), &MaskVec[0]); 3419 } 3420 3421 /// CommuteVectorShuffleMask - Change values in a shuffle permute mask assuming 3422 /// the two vector operands have swapped position. 3423 static void CommuteVectorShuffleMask(SmallVectorImpl<int> &Mask, EVT VT) { 3424 unsigned NumElems = VT.getVectorNumElements(); 3425 for (unsigned i = 0; i != NumElems; ++i) { 3426 int idx = Mask[i]; 3427 if (idx < 0) 3428 continue; 3429 else if (idx < (int)NumElems) 3430 Mask[i] = idx + NumElems; 3431 else 3432 Mask[i] = idx - NumElems; 3433 } 3434 } 3435 3436 /// ShouldXformToMOVHLPS - Return true if the node should be transformed to 3437 /// match movhlps. The lower half elements should come from upper half of 3438 /// V1 (and in order), and the upper half elements should come from the upper 3439 /// half of V2 (and in order). 3440 static bool ShouldXformToMOVHLPS(ShuffleVectorSDNode *Op) { 3441 if (Op->getValueType(0).getVectorNumElements() != 4) 3442 return false; 3443 for (unsigned i = 0, e = 2; i != e; ++i) 3444 if (!isUndefOrEqual(Op->getMaskElt(i), i+2)) 3445 return false; 3446 for (unsigned i = 2; i != 4; ++i) 3447 if (!isUndefOrEqual(Op->getMaskElt(i), i+4)) 3448 return false; 3449 return true; 3450 } 3451 3452 /// isScalarLoadToVector - Returns true if the node is a scalar load that 3453 /// is promoted to a vector. It also returns the LoadSDNode by reference if 3454 /// required. 3455 static bool isScalarLoadToVector(SDNode *N, LoadSDNode **LD = NULL) { 3456 if (N->getOpcode() != ISD::SCALAR_TO_VECTOR) 3457 return false; 3458 N = N->getOperand(0).getNode(); 3459 if (!ISD::isNON_EXTLoad(N)) 3460 return false; 3461 if (LD) 3462 *LD = cast<LoadSDNode>(N); 3463 return true; 3464 } 3465 3466 /// ShouldXformToMOVLP{S|D} - Return true if the node should be transformed to 3467 /// match movlp{s|d}. The lower half elements should come from lower half of 3468 /// V1 (and in order), and the upper half elements should come from the upper 3469 /// half of V2 (and in order). And since V1 will become the source of the 3470 /// MOVLP, it must be either a vector load or a scalar load to vector. 3471 static bool ShouldXformToMOVLP(SDNode *V1, SDNode *V2, 3472 ShuffleVectorSDNode *Op) { 3473 if (!ISD::isNON_EXTLoad(V1) && !isScalarLoadToVector(V1)) 3474 return false; 3475 // Is V2 is a vector load, don't do this transformation. We will try to use 3476 // load folding shufps op. 3477 if (ISD::isNON_EXTLoad(V2)) 3478 return false; 3479 3480 unsigned NumElems = Op->getValueType(0).getVectorNumElements(); 3481 3482 if (NumElems != 2 && NumElems != 4) 3483 return false; 3484 for (unsigned i = 0, e = NumElems/2; i != e; ++i) 3485 if (!isUndefOrEqual(Op->getMaskElt(i), i)) 3486 return false; 3487 for (unsigned i = NumElems/2; i != NumElems; ++i) 3488 if (!isUndefOrEqual(Op->getMaskElt(i), i+NumElems)) 3489 return false; 3490 return true; 3491 } 3492 3493 /// isSplatVector - Returns true if N is a BUILD_VECTOR node whose elements are 3494 /// all the same. 3495 static bool isSplatVector(SDNode *N) { 3496 if (N->getOpcode() != ISD::BUILD_VECTOR) 3497 return false; 3498 3499 SDValue SplatValue = N->getOperand(0); 3500 for (unsigned i = 1, e = N->getNumOperands(); i != e; ++i) 3501 if (N->getOperand(i) != SplatValue) 3502 return false; 3503 return true; 3504 } 3505 3506 /// isZeroShuffle - Returns true if N is a VECTOR_SHUFFLE that can be resolved 3507 /// to an zero vector. 3508 /// FIXME: move to dag combiner / method on ShuffleVectorSDNode 3509 static bool isZeroShuffle(ShuffleVectorSDNode *N) { 3510 SDValue V1 = N->getOperand(0); 3511 SDValue V2 = N->getOperand(1); 3512 unsigned NumElems = N->getValueType(0).getVectorNumElements(); 3513 for (unsigned i = 0; i != NumElems; ++i) { 3514 int Idx = N->getMaskElt(i); 3515 if (Idx >= (int)NumElems) { 3516 unsigned Opc = V2.getOpcode(); 3517 if (Opc == ISD::UNDEF || ISD::isBuildVectorAllZeros(V2.getNode())) 3518 continue; 3519 if (Opc != ISD::BUILD_VECTOR || 3520 !X86::isZeroNode(V2.getOperand(Idx-NumElems))) 3521 return false; 3522 } else if (Idx >= 0) { 3523 unsigned Opc = V1.getOpcode(); 3524 if (Opc == ISD::UNDEF || ISD::isBuildVectorAllZeros(V1.getNode())) 3525 continue; 3526 if (Opc != ISD::BUILD_VECTOR || 3527 !X86::isZeroNode(V1.getOperand(Idx))) 3528 return false; 3529 } 3530 } 3531 return true; 3532 } 3533 3534 /// getZeroVector - Returns a vector of specified type with all zero elements. 3535 /// 3536 static SDValue getZeroVector(EVT VT, bool HasSSE2, SelectionDAG &DAG, 3537 DebugLoc dl) { 3538 assert(VT.isVector() && "Expected a vector type"); 3539 3540 // Always build zero vectors as <4 x i32> or <2 x i32> bitcasted 3541 // to their dest type. This ensures they get CSE'd. 3542 SDValue Vec; 3543 if (VT.getSizeInBits() == 64) { // MMX 3544 SDValue Cst = DAG.getTargetConstant(0, MVT::i32); 3545 Vec = DAG.getNode(ISD::BUILD_VECTOR, dl, MVT::v2i32, Cst, Cst); 3546 } else if (VT.getSizeInBits() == 128) { 3547 if (HasSSE2) { // SSE2 3548 SDValue Cst = DAG.getTargetConstant(0, MVT::i32); 3549 Vec = DAG.getNode(ISD::BUILD_VECTOR, dl, MVT::v4i32, Cst, Cst, Cst, Cst); 3550 } else { // SSE1 3551 SDValue Cst = DAG.getTargetConstantFP(+0.0, MVT::f32); 3552 Vec = DAG.getNode(ISD::BUILD_VECTOR, dl, MVT::v4f32, Cst, Cst, Cst, Cst); 3553 } 3554 } else if (VT.getSizeInBits() == 256) { // AVX 3555 // 256-bit logic and arithmetic instructions in AVX are 3556 // all floating-point, no support for integer ops. Default 3557 // to emitting fp zeroed vectors then. 3558 SDValue Cst = DAG.getTargetConstantFP(+0.0, MVT::f32); 3559 SDValue Ops[] = { Cst, Cst, Cst, Cst, Cst, Cst, Cst, Cst }; 3560 Vec = DAG.getNode(ISD::BUILD_VECTOR, dl, MVT::v8f32, Ops, 8); 3561 } 3562 return DAG.getNode(ISD::BIT_CONVERT, dl, VT, Vec); 3563 } 3564 3565 /// getOnesVector - Returns a vector of specified type with all bits set. 3566 /// 3567 static SDValue getOnesVector(EVT VT, SelectionDAG &DAG, DebugLoc dl) { 3568 assert(VT.isVector() && "Expected a vector type"); 3569 3570 // Always build ones vectors as <4 x i32> or <2 x i32> bitcasted to their dest 3571 // type. This ensures they get CSE'd. 3572 SDValue Cst = DAG.getTargetConstant(~0U, MVT::i32); 3573 SDValue Vec; 3574 if (VT.getSizeInBits() == 64) // MMX 3575 Vec = DAG.getNode(ISD::BUILD_VECTOR, dl, MVT::v2i32, Cst, Cst); 3576 else // SSE 3577 Vec = DAG.getNode(ISD::BUILD_VECTOR, dl, MVT::v4i32, Cst, Cst, Cst, Cst); 3578 return DAG.getNode(ISD::BIT_CONVERT, dl, VT, Vec); 3579 } 3580 3581 3582 /// NormalizeMask - V2 is a splat, modify the mask (if needed) so all elements 3583 /// that point to V2 points to its first element. 3584 static SDValue NormalizeMask(ShuffleVectorSDNode *SVOp, SelectionDAG &DAG) { 3585 EVT VT = SVOp->getValueType(0); 3586 unsigned NumElems = VT.getVectorNumElements(); 3587 3588 bool Changed = false; 3589 SmallVector<int, 8> MaskVec; 3590 SVOp->getMask(MaskVec); 3591 3592 for (unsigned i = 0; i != NumElems; ++i) { 3593 if (MaskVec[i] > (int)NumElems) { 3594 MaskVec[i] = NumElems; 3595 Changed = true; 3596 } 3597 } 3598 if (Changed) 3599 return DAG.getVectorShuffle(VT, SVOp->getDebugLoc(), SVOp->getOperand(0), 3600 SVOp->getOperand(1), &MaskVec[0]); 3601 return SDValue(SVOp, 0); 3602 } 3603 3604 /// getMOVLMask - Returns a vector_shuffle mask for an movs{s|d}, movd 3605 /// operation of specified width. 3606 static SDValue getMOVL(SelectionDAG &DAG, DebugLoc dl, EVT VT, SDValue V1, 3607 SDValue V2) { 3608 unsigned NumElems = VT.getVectorNumElements(); 3609 SmallVector<int, 8> Mask; 3610 Mask.push_back(NumElems); 3611 for (unsigned i = 1; i != NumElems; ++i) 3612 Mask.push_back(i); 3613 return DAG.getVectorShuffle(VT, dl, V1, V2, &Mask[0]); 3614 } 3615 3616 /// getUnpackl - Returns a vector_shuffle node for an unpackl operation. 3617 static SDValue getUnpackl(SelectionDAG &DAG, DebugLoc dl, EVT VT, SDValue V1, 3618 SDValue V2) { 3619 unsigned NumElems = VT.getVectorNumElements(); 3620 SmallVector<int, 8> Mask; 3621 for (unsigned i = 0, e = NumElems/2; i != e; ++i) { 3622 Mask.push_back(i); 3623 Mask.push_back(i + NumElems); 3624 } 3625 return DAG.getVectorShuffle(VT, dl, V1, V2, &Mask[0]); 3626 } 3627 3628 /// getUnpackhMask - Returns a vector_shuffle node for an unpackh operation. 3629 static SDValue getUnpackh(SelectionDAG &DAG, DebugLoc dl, EVT VT, SDValue V1, 3630 SDValue V2) { 3631 unsigned NumElems = VT.getVectorNumElements(); 3632 unsigned Half = NumElems/2; 3633 SmallVector<int, 8> Mask; 3634 for (unsigned i = 0; i != Half; ++i) { 3635 Mask.push_back(i + Half); 3636 Mask.push_back(i + NumElems + Half); 3637 } 3638 return DAG.getVectorShuffle(VT, dl, V1, V2, &Mask[0]); 3639 } 3640 3641 /// PromoteSplat - Promote a splat of v4i32, v8i16 or v16i8 to v4f32. 3642 static SDValue PromoteSplat(ShuffleVectorSDNode *SV, SelectionDAG &DAG) { 3643 if (SV->getValueType(0).getVectorNumElements() <= 4) 3644 return SDValue(SV, 0); 3645 3646 EVT PVT = MVT::v4f32; 3647 EVT VT = SV->getValueType(0); 3648 DebugLoc dl = SV->getDebugLoc(); 3649 SDValue V1 = SV->getOperand(0); 3650 int NumElems = VT.getVectorNumElements(); 3651 int EltNo = SV->getSplatIndex(); 3652 3653 // unpack elements to the correct location 3654 while (NumElems > 4) { 3655 if (EltNo < NumElems/2) { 3656 V1 = getUnpackl(DAG, dl, VT, V1, V1); 3657 } else { 3658 V1 = getUnpackh(DAG, dl, VT, V1, V1); 3659 EltNo -= NumElems/2; 3660 } 3661 NumElems >>= 1; 3662 } 3663 3664 // Perform the splat. 3665 int SplatMask[4] = { EltNo, EltNo, EltNo, EltNo }; 3666 V1 = DAG.getNode(ISD::BIT_CONVERT, dl, PVT, V1); 3667 V1 = DAG.getVectorShuffle(PVT, dl, V1, DAG.getUNDEF(PVT), &SplatMask[0]); 3668 return DAG.getNode(ISD::BIT_CONVERT, dl, VT, V1); 3669 } 3670 3671 /// getShuffleVectorZeroOrUndef - Return a vector_shuffle of the specified 3672 /// vector of zero or undef vector. This produces a shuffle where the low 3673 /// element of V2 is swizzled into the zero/undef vector, landing at element 3674 /// Idx. This produces a shuffle mask like 4,1,2,3 (idx=0) or 0,1,2,4 (idx=3). 3675 static SDValue getShuffleVectorZeroOrUndef(SDValue V2, unsigned Idx, 3676 bool isZero, bool HasSSE2, 3677 SelectionDAG &DAG) { 3678 EVT VT = V2.getValueType(); 3679 SDValue V1 = isZero 3680 ? getZeroVector(VT, HasSSE2, DAG, V2.getDebugLoc()) : DAG.getUNDEF(VT); 3681 unsigned NumElems = VT.getVectorNumElements(); 3682 SmallVector<int, 16> MaskVec; 3683 for (unsigned i = 0; i != NumElems; ++i) 3684 // If this is the insertion idx, put the low elt of V2 here. 3685 MaskVec.push_back(i == Idx ? NumElems : i); 3686 return DAG.getVectorShuffle(VT, V2.getDebugLoc(), V1, V2, &MaskVec[0]); 3687 } 3688 3689 /// getShuffleScalarElt - Returns the scalar element that will make up the ith 3690 /// element of the result of the vector shuffle. 3691 SDValue getShuffleScalarElt(SDNode *N, int Index, SelectionDAG &DAG, 3692 unsigned Depth) { 3693 if (Depth == 6) 3694 return SDValue(); // Limit search depth. 3695 3696 SDValue V = SDValue(N, 0); 3697 EVT VT = V.getValueType(); 3698 unsigned Opcode = V.getOpcode(); 3699 3700 // Recurse into ISD::VECTOR_SHUFFLE node to find scalars. 3701 if (const ShuffleVectorSDNode *SV = dyn_cast<ShuffleVectorSDNode>(N)) { 3702 Index = SV->getMaskElt(Index); 3703 3704 if (Index < 0) 3705 return DAG.getUNDEF(VT.getVectorElementType()); 3706 3707 int NumElems = VT.getVectorNumElements(); 3708 SDValue NewV = (Index < NumElems) ? SV->getOperand(0) : SV->getOperand(1); 3709 return getShuffleScalarElt(NewV.getNode(), Index % NumElems, DAG, Depth+1); 3710 } 3711 3712 // Recurse into target specific vector shuffles to find scalars. 3713 if (isTargetShuffle(Opcode)) { 3714 int NumElems = VT.getVectorNumElements(); 3715 SmallVector<unsigned, 16> ShuffleMask; 3716 SDValue ImmN; 3717 3718 switch(Opcode) { 3719 case X86ISD::SHUFPS: 3720 case X86ISD::SHUFPD: 3721 ImmN = N->getOperand(N->getNumOperands()-1); 3722 DecodeSHUFPSMask(NumElems, 3723 cast<ConstantSDNode>(ImmN)->getZExtValue(), 3724 ShuffleMask); 3725 break; 3726 case X86ISD::PUNPCKHBW: 3727 case X86ISD::PUNPCKHWD: 3728 case X86ISD::PUNPCKHDQ: 3729 case X86ISD::PUNPCKHQDQ: 3730 DecodePUNPCKHMask(NumElems, ShuffleMask); 3731 break; 3732 case X86ISD::UNPCKHPS: 3733 case X86ISD::UNPCKHPD: 3734 DecodeUNPCKHPMask(NumElems, ShuffleMask); 3735 break; 3736 case X86ISD::PUNPCKLBW: 3737 case X86ISD::PUNPCKLWD: 3738 case X86ISD::PUNPCKLDQ: 3739 case X86ISD::PUNPCKLQDQ: 3740 DecodePUNPCKLMask(NumElems, ShuffleMask); 3741 break; 3742 case X86ISD::UNPCKLPS: 3743 case X86ISD::UNPCKLPD: 3744 DecodeUNPCKLPMask(NumElems, ShuffleMask); 3745 break; 3746 case X86ISD::MOVHLPS: 3747 DecodeMOVHLPSMask(NumElems, ShuffleMask); 3748 break; 3749 case X86ISD::MOVLHPS: 3750 DecodeMOVLHPSMask(NumElems, ShuffleMask); 3751 break; 3752 case X86ISD::PSHUFD: 3753 ImmN = N->getOperand(N->getNumOperands()-1); 3754 DecodePSHUFMask(NumElems, 3755 cast<ConstantSDNode>(ImmN)->getZExtValue(), 3756 ShuffleMask); 3757 break; 3758 case X86ISD::PSHUFHW: 3759 ImmN = N->getOperand(N->getNumOperands()-1); 3760 DecodePSHUFHWMask(cast<ConstantSDNode>(ImmN)->getZExtValue(), 3761 ShuffleMask); 3762 break; 3763 case X86ISD::PSHUFLW: 3764 ImmN = N->getOperand(N->getNumOperands()-1); 3765 DecodePSHUFLWMask(cast<ConstantSDNode>(ImmN)->getZExtValue(), 3766 ShuffleMask); 3767 break; 3768 case X86ISD::MOVSS: 3769 case X86ISD::MOVSD: { 3770 // The index 0 always comes from the first element of the second source, 3771 // this is why MOVSS and MOVSD are used in the first place. The other 3772 // elements come from the other positions of the first source vector. 3773 unsigned OpNum = (Index == 0) ? 1 : 0; 3774 return getShuffleScalarElt(V.getOperand(OpNum).getNode(), Index, DAG, 3775 Depth+1); 3776 } 3777 default: 3778 assert("not implemented for target shuffle node"); 3779 return SDValue(); 3780 } 3781 3782 Index = ShuffleMask[Index]; 3783 if (Index < 0) 3784 return DAG.getUNDEF(VT.getVectorElementType()); 3785 3786 SDValue NewV = (Index < NumElems) ? N->getOperand(0) : N->getOperand(1); 3787 return getShuffleScalarElt(NewV.getNode(), Index % NumElems, DAG, 3788 Depth+1); 3789 } 3790 3791 // Actual nodes that may contain scalar elements 3792 if (Opcode == ISD::BIT_CONVERT) { 3793 V = V.getOperand(0); 3794 EVT SrcVT = V.getValueType(); 3795 unsigned NumElems = VT.getVectorNumElements(); 3796 3797 if (!SrcVT.isVector() || SrcVT.getVectorNumElements() != NumElems) 3798 return SDValue(); 3799 } 3800 3801 if (V.getOpcode() == ISD::SCALAR_TO_VECTOR) 3802 return (Index == 0) ? V.getOperand(0) 3803 : DAG.getUNDEF(VT.getVectorElementType()); 3804 3805 if (V.getOpcode() == ISD::BUILD_VECTOR) 3806 return V.getOperand(Index); 3807 3808 return SDValue(); 3809 } 3810 3811 /// getNumOfConsecutiveZeros - Return the number of elements of a vector 3812 /// shuffle operation which come from a consecutively from a zero. The 3813 /// search can start in two diferent directions, from left or right. 3814 static 3815 unsigned getNumOfConsecutiveZeros(SDNode *N, int NumElems, 3816 bool ZerosFromLeft, SelectionDAG &DAG) { 3817 int i = 0; 3818 3819 while (i < NumElems) { 3820 unsigned Index = ZerosFromLeft ? i : NumElems-i-1; 3821 SDValue Elt = getShuffleScalarElt(N, Index, DAG, 0); 3822 if (!(Elt.getNode() && 3823 (Elt.getOpcode() == ISD::UNDEF || X86::isZeroNode(Elt)))) 3824 break; 3825 ++i; 3826 } 3827 3828 return i; 3829 } 3830 3831 /// isShuffleMaskConsecutive - Check if the shuffle mask indicies from MaskI to 3832 /// MaskE correspond consecutively to elements from one of the vector operands, 3833 /// starting from its index OpIdx. Also tell OpNum which source vector operand. 3834 static 3835 bool isShuffleMaskConsecutive(ShuffleVectorSDNode *SVOp, int MaskI, int MaskE, 3836 int OpIdx, int NumElems, unsigned &OpNum) { 3837 bool SeenV1 = false; 3838 bool SeenV2 = false; 3839 3840 for (int i = MaskI; i <= MaskE; ++i, ++OpIdx) { 3841 int Idx = SVOp->getMaskElt(i); 3842 // Ignore undef indicies 3843 if (Idx < 0) 3844 continue; 3845 3846 if (Idx < NumElems) 3847 SeenV1 = true; 3848 else 3849 SeenV2 = true; 3850 3851 // Only accept consecutive elements from the same vector 3852 if ((Idx % NumElems != OpIdx) || (SeenV1 && SeenV2)) 3853 return false; 3854 } 3855 3856 OpNum = SeenV1 ? 0 : 1; 3857 return true; 3858 } 3859 3860 /// isVectorShiftRight - Returns true if the shuffle can be implemented as a 3861 /// logical left shift of a vector. 3862 static bool isVectorShiftRight(ShuffleVectorSDNode *SVOp, SelectionDAG &DAG, 3863 bool &isLeft, SDValue &ShVal, unsigned &ShAmt) { 3864 unsigned NumElems = SVOp->getValueType(0).getVectorNumElements(); 3865 unsigned NumZeros = getNumOfConsecutiveZeros(SVOp, NumElems, 3866 false /* check zeros from right */, DAG); 3867 unsigned OpSrc; 3868 3869 if (!NumZeros) 3870 return false; 3871 3872 // Considering the elements in the mask that are not consecutive zeros, 3873 // check if they consecutively come from only one of the source vectors. 3874 // 3875 // V1 = {X, A, B, C} 0 3876 // \ \ \ / 3877 // vector_shuffle V1, V2 <1, 2, 3, X> 3878 // 3879 if (!isShuffleMaskConsecutive(SVOp, 3880 0, // Mask Start Index 3881 NumElems-NumZeros-1, // Mask End Index 3882 NumZeros, // Where to start looking in the src vector 3883 NumElems, // Number of elements in vector 3884 OpSrc)) // Which source operand ? 3885 return false; 3886 3887 isLeft = false; 3888 ShAmt = NumZeros; 3889 ShVal = SVOp->getOperand(OpSrc); 3890 return true; 3891 } 3892 3893 /// isVectorShiftLeft - Returns true if the shuffle can be implemented as a 3894 /// logical left shift of a vector. 3895 static bool isVectorShiftLeft(ShuffleVectorSDNode *SVOp, SelectionDAG &DAG, 3896 bool &isLeft, SDValue &ShVal, unsigned &ShAmt) { 3897 unsigned NumElems = SVOp->getValueType(0).getVectorNumElements(); 3898 unsigned NumZeros = getNumOfConsecutiveZeros(SVOp, NumElems, 3899 true /* check zeros from left */, DAG); 3900 unsigned OpSrc; 3901 3902 if (!NumZeros) 3903 return false; 3904 3905 // Considering the elements in the mask that are not consecutive zeros, 3906 // check if they consecutively come from only one of the source vectors. 3907 // 3908 // 0 { A, B, X, X } = V2 3909 // / \ / / 3910 // vector_shuffle V1, V2 <X, X, 4, 5> 3911 // 3912 if (!isShuffleMaskConsecutive(SVOp, 3913 NumZeros, // Mask Start Index 3914 NumElems-1, // Mask End Index 3915 0, // Where to start looking in the src vector 3916 NumElems, // Number of elements in vector 3917 OpSrc)) // Which source operand ? 3918 return false; 3919 3920 isLeft = true; 3921 ShAmt = NumZeros; 3922 ShVal = SVOp->getOperand(OpSrc); 3923 return true; 3924 } 3925 3926 /// isVectorShift - Returns true if the shuffle can be implemented as a 3927 /// logical left or right shift of a vector. 3928 static bool isVectorShift(ShuffleVectorSDNode *SVOp, SelectionDAG &DAG, 3929 bool &isLeft, SDValue &ShVal, unsigned &ShAmt) { 3930 if (isVectorShiftLeft(SVOp, DAG, isLeft, ShVal, ShAmt) || 3931 isVectorShiftRight(SVOp, DAG, isLeft, ShVal, ShAmt)) 3932 return true; 3933 3934 return false; 3935 } 3936 3937 /// LowerBuildVectorv16i8 - Custom lower build_vector of v16i8. 3938 /// 3939 static SDValue LowerBuildVectorv16i8(SDValue Op, unsigned NonZeros, 3940 unsigned NumNonZero, unsigned NumZero, 3941 SelectionDAG &DAG, 3942 const TargetLowering &TLI) { 3943 if (NumNonZero > 8) 3944 return SDValue(); 3945 3946 DebugLoc dl = Op.getDebugLoc(); 3947 SDValue V(0, 0); 3948 bool First = true; 3949 for (unsigned i = 0; i < 16; ++i) { 3950 bool ThisIsNonZero = (NonZeros & (1 << i)) != 0; 3951 if (ThisIsNonZero && First) { 3952 if (NumZero) 3953 V = getZeroVector(MVT::v8i16, true, DAG, dl); 3954 else 3955 V = DAG.getUNDEF(MVT::v8i16); 3956 First = false; 3957 } 3958 3959 if ((i & 1) != 0) { 3960 SDValue ThisElt(0, 0), LastElt(0, 0); 3961 bool LastIsNonZero = (NonZeros & (1 << (i-1))) != 0; 3962 if (LastIsNonZero) { 3963 LastElt = DAG.getNode(ISD::ZERO_EXTEND, dl, 3964 MVT::i16, Op.getOperand(i-1)); 3965 } 3966 if (ThisIsNonZero) { 3967 ThisElt = DAG.getNode(ISD::ZERO_EXTEND, dl, MVT::i16, Op.getOperand(i)); 3968 ThisElt = DAG.getNode(ISD::SHL, dl, MVT::i16, 3969 ThisElt, DAG.getConstant(8, MVT::i8)); 3970 if (LastIsNonZero) 3971 ThisElt = DAG.getNode(ISD::OR, dl, MVT::i16, ThisElt, LastElt); 3972 } else 3973 ThisElt = LastElt; 3974 3975 if (ThisElt.getNode()) 3976 V = DAG.getNode(ISD::INSERT_VECTOR_ELT, dl, MVT::v8i16, V, ThisElt, 3977 DAG.getIntPtrConstant(i/2)); 3978 } 3979 } 3980 3981 return DAG.getNode(ISD::BIT_CONVERT, dl, MVT::v16i8, V); 3982 } 3983 3984 /// LowerBuildVectorv8i16 - Custom lower build_vector of v8i16. 3985 /// 3986 static SDValue LowerBuildVectorv8i16(SDValue Op, unsigned NonZeros, 3987 unsigned NumNonZero, unsigned NumZero, 3988 SelectionDAG &DAG, 3989 const TargetLowering &TLI) { 3990 if (NumNonZero > 4) 3991 return SDValue(); 3992 3993 DebugLoc dl = Op.getDebugLoc(); 3994 SDValue V(0, 0); 3995 bool First = true; 3996 for (unsigned i = 0; i < 8; ++i) { 3997 bool isNonZero = (NonZeros & (1 << i)) != 0; 3998 if (isNonZero) { 3999 if (First) { 4000 if (NumZero) 4001 V = getZeroVector(MVT::v8i16, true, DAG, dl); 4002 else 4003 V = DAG.getUNDEF(MVT::v8i16); 4004 First = false; 4005 } 4006 V = DAG.getNode(ISD::INSERT_VECTOR_ELT, dl, 4007 MVT::v8i16, V, Op.getOperand(i), 4008 DAG.getIntPtrConstant(i)); 4009 } 4010 } 4011 4012 return V; 4013 } 4014 4015 /// getVShift - Return a vector logical shift node. 4016 /// 4017 static SDValue getVShift(bool isLeft, EVT VT, SDValue SrcOp, 4018 unsigned NumBits, SelectionDAG &DAG, 4019 const TargetLowering &TLI, DebugLoc dl) { 4020 bool isMMX = VT.getSizeInBits() == 64; 4021 EVT ShVT = isMMX ? MVT::v1i64 : MVT::v2i64; 4022 unsigned Opc = isLeft ? X86ISD::VSHL : X86ISD::VSRL; 4023 SrcOp = DAG.getNode(ISD::BIT_CONVERT, dl, ShVT, SrcOp); 4024 return DAG.getNode(ISD::BIT_CONVERT, dl, VT, 4025 DAG.getNode(Opc, dl, ShVT, SrcOp, 4026 DAG.getConstant(NumBits, TLI.getShiftAmountTy()))); 4027 } 4028 4029 SDValue 4030 X86TargetLowering::LowerAsSplatVectorLoad(SDValue SrcOp, EVT VT, DebugLoc dl, 4031 SelectionDAG &DAG) const { 4032 4033 // Check if the scalar load can be widened into a vector load. And if 4034 // the address is "base + cst" see if the cst can be "absorbed" into 4035 // the shuffle mask. 4036 if (LoadSDNode *LD = dyn_cast<LoadSDNode>(SrcOp)) { 4037 SDValue Ptr = LD->getBasePtr(); 4038 if (!ISD::isNormalLoad(LD) || LD->isVolatile()) 4039 return SDValue(); 4040 EVT PVT = LD->getValueType(0); 4041 if (PVT != MVT::i32 && PVT != MVT::f32) 4042 return SDValue(); 4043 4044 int FI = -1; 4045 int64_t Offset = 0; 4046 if (FrameIndexSDNode *FINode = dyn_cast<FrameIndexSDNode>(Ptr)) { 4047 FI = FINode->getIndex(); 4048 Offset = 0; 4049 } else if (Ptr.getOpcode() == ISD::ADD && 4050 isa<ConstantSDNode>(Ptr.getOperand(1)) && 4051 isa<FrameIndexSDNode>(Ptr.getOperand(0))) { 4052 FI = cast<FrameIndexSDNode>(Ptr.getOperand(0))->getIndex(); 4053 Offset = Ptr.getConstantOperandVal(1); 4054 Ptr = Ptr.getOperand(0); 4055 } else { 4056 return SDValue(); 4057 } 4058 4059 SDValue Chain = LD->getChain(); 4060 // Make sure the stack object alignment is at least 16. 4061 MachineFrameInfo *MFI = DAG.getMachineFunction().getFrameInfo(); 4062 if (DAG.InferPtrAlignment(Ptr) < 16) { 4063 if (MFI->isFixedObjectIndex(FI)) { 4064 // Can't change the alignment. FIXME: It's possible to compute 4065 // the exact stack offset and reference FI + adjust offset instead. 4066 // If someone *really* cares about this. That's the way to implement it. 4067 return SDValue(); 4068 } else { 4069 MFI->setObjectAlignment(FI, 16); 4070 } 4071 } 4072 4073 // (Offset % 16) must be multiple of 4. Then address is then 4074 // Ptr + (Offset & ~15). 4075 if (Offset < 0) 4076 return SDValue(); 4077 if ((Offset % 16) & 3) 4078 return SDValue(); 4079 int64_t StartOffset = Offset & ~15; 4080 if (StartOffset) 4081 Ptr = DAG.getNode(ISD::ADD, Ptr.getDebugLoc(), Ptr.getValueType(), 4082 Ptr,DAG.getConstant(StartOffset, Ptr.getValueType())); 4083 4084 int EltNo = (Offset - StartOffset) >> 2; 4085 int Mask[4] = { EltNo, EltNo, EltNo, EltNo }; 4086 EVT VT = (PVT == MVT::i32) ? MVT::v4i32 : MVT::v4f32; 4087 SDValue V1 = DAG.getLoad(VT, dl, Chain, Ptr,LD->getSrcValue(),0, 4088 false, false, 0); 4089 // Canonicalize it to a v4i32 shuffle. 4090 V1 = DAG.getNode(ISD::BIT_CONVERT, dl, MVT::v4i32, V1); 4091 return DAG.getNode(ISD::BIT_CONVERT, dl, VT, 4092 DAG.getVectorShuffle(MVT::v4i32, dl, V1, 4093 DAG.getUNDEF(MVT::v4i32), &Mask[0])); 4094 } 4095 4096 return SDValue(); 4097 } 4098 4099 /// EltsFromConsecutiveLoads - Given the initializing elements 'Elts' of a 4100 /// vector of type 'VT', see if the elements can be replaced by a single large 4101 /// load which has the same value as a build_vector whose operands are 'elts'. 4102 /// 4103 /// Example: <load i32 *a, load i32 *a+4, undef, undef> -> zextload a 4104 /// 4105 /// FIXME: we'd also like to handle the case where the last elements are zero 4106 /// rather than undef via VZEXT_LOAD, but we do not detect that case today. 4107 /// There's even a handy isZeroNode for that purpose. 4108 static SDValue EltsFromConsecutiveLoads(EVT VT, SmallVectorImpl<SDValue> &Elts, 4109 DebugLoc &dl, SelectionDAG &DAG) { 4110 EVT EltVT = VT.getVectorElementType(); 4111 unsigned NumElems = Elts.size(); 4112 4113 LoadSDNode *LDBase = NULL; 4114 unsigned LastLoadedElt = -1U; 4115 4116 // For each element in the initializer, see if we've found a load or an undef. 4117 // If we don't find an initial load element, or later load elements are 4118 // non-consecutive, bail out. 4119 for (unsigned i = 0; i < NumElems; ++i) { 4120 SDValue Elt = Elts[i]; 4121 4122 if (!Elt.getNode() || 4123 (Elt.getOpcode() != ISD::UNDEF && !ISD::isNON_EXTLoad(Elt.getNode()))) 4124 return SDValue(); 4125 if (!LDBase) { 4126 if (Elt.getNode()->getOpcode() == ISD::UNDEF) 4127 return SDValue(); 4128 LDBase = cast<LoadSDNode>(Elt.getNode()); 4129 LastLoadedElt = i; 4130 continue; 4131 } 4132 if (Elt.getOpcode() == ISD::UNDEF) 4133 continue; 4134 4135 LoadSDNode *LD = cast<LoadSDNode>(Elt); 4136 if (!DAG.isConsecutiveLoad(LD, LDBase, EltVT.getSizeInBits()/8, i)) 4137 return SDValue(); 4138 LastLoadedElt = i; 4139 } 4140 4141 // If we have found an entire vector of loads and undefs, then return a large 4142 // load of the entire vector width starting at the base pointer. If we found 4143 // consecutive loads for the low half, generate a vzext_load node. 4144 if (LastLoadedElt == NumElems - 1) { 4145 if (DAG.InferPtrAlignment(LDBase->getBasePtr()) >= 16) 4146 return DAG.getLoad(VT, dl, LDBase->getChain(), LDBase->getBasePtr(), 4147 LDBase->getSrcValue(), LDBase->getSrcValueOffset(), 4148 LDBase->isVolatile(), LDBase->isNonTemporal(), 0); 4149 return DAG.getLoad(VT, dl, LDBase->getChain(), LDBase->getBasePtr(), 4150 LDBase->getSrcValue(), LDBase->getSrcValueOffset(), 4151 LDBase->isVolatile(), LDBase->isNonTemporal(), 4152 LDBase->getAlignment()); 4153 } else if (NumElems == 4 && LastLoadedElt == 1) { 4154 SDVTList Tys = DAG.getVTList(MVT::v2i64, MVT::Other); 4155 SDValue Ops[] = { LDBase->getChain(), LDBase->getBasePtr() }; 4156 SDValue ResNode = DAG.getNode(X86ISD::VZEXT_LOAD, dl, Tys, Ops, 2); 4157 return DAG.getNode(ISD::BIT_CONVERT, dl, VT, ResNode); 4158 } 4159 return SDValue(); 4160 } 4161 4162 SDValue 4163 X86TargetLowering::LowerBUILD_VECTOR(SDValue Op, SelectionDAG &DAG) const { 4164 DebugLoc dl = Op.getDebugLoc(); 4165 // All zero's are handled with pxor in SSE2 and above, xorps in SSE1. 4166 // All one's are handled with pcmpeqd. In AVX, zero's are handled with 4167 // vpxor in 128-bit and xor{pd,ps} in 256-bit, but no 256 version of pcmpeqd 4168 // is present, so AllOnes is ignored. 4169 if (ISD::isBuildVectorAllZeros(Op.getNode()) || 4170 (Op.getValueType().getSizeInBits() != 256 && 4171 ISD::isBuildVectorAllOnes(Op.getNode()))) { 4172 // Canonicalize this to either <4 x i32> or <2 x i32> (SSE vs MMX) to 4173 // 1) ensure the zero vectors are CSE'd, and 2) ensure that i64 scalars are 4174 // eliminated on x86-32 hosts. 4175 if (Op.getValueType() == MVT::v4i32 || Op.getValueType() == MVT::v2i32) 4176 return Op; 4177 4178 if (ISD::isBuildVectorAllOnes(Op.getNode())) 4179 return getOnesVector(Op.getValueType(), DAG, dl); 4180 return getZeroVector(Op.getValueType(), Subtarget->hasSSE2(), DAG, dl); 4181 } 4182 4183 EVT VT = Op.getValueType(); 4184 EVT ExtVT = VT.getVectorElementType(); 4185 unsigned EVTBits = ExtVT.getSizeInBits(); 4186 4187 unsigned NumElems = Op.getNumOperands(); 4188 unsigned NumZero = 0; 4189 unsigned NumNonZero = 0; 4190 unsigned NonZeros = 0; 4191 bool IsAllConstants = true; 4192 SmallSet<SDValue, 8> Values; 4193 for (unsigned i = 0; i < NumElems; ++i) { 4194 SDValue Elt = Op.getOperand(i); 4195 if (Elt.getOpcode() == ISD::UNDEF) 4196 continue; 4197 Values.insert(Elt); 4198 if (Elt.getOpcode() != ISD::Constant && 4199 Elt.getOpcode() != ISD::ConstantFP) 4200 IsAllConstants = false; 4201 if (X86::isZeroNode(Elt)) 4202 NumZero++; 4203 else { 4204 NonZeros |= (1 << i); 4205 NumNonZero++; 4206 } 4207 } 4208 4209 // All undef vector. Return an UNDEF. All zero vectors were handled above. 4210 if (NumNonZero == 0) 4211 return DAG.getUNDEF(VT); 4212 4213 // Special case for single non-zero, non-undef, element. 4214 if (NumNonZero == 1) { 4215 unsigned Idx = CountTrailingZeros_32(NonZeros); 4216 SDValue Item = Op.getOperand(Idx); 4217 4218 // If this is an insertion of an i64 value on x86-32, and if the top bits of 4219 // the value are obviously zero, truncate the value to i32 and do the 4220 // insertion that way. Only do this if the value is non-constant or if the 4221 // value is a constant being inserted into element 0. It is cheaper to do 4222 // a constant pool load than it is to do a movd + shuffle. 4223 if (ExtVT == MVT::i64 && !Subtarget->is64Bit() && 4224 (!IsAllConstants || Idx == 0)) { 4225 if (DAG.MaskedValueIsZero(Item, APInt::getBitsSet(64, 32, 64))) { 4226 // Handle MMX and SSE both. 4227 EVT VecVT = VT == MVT::v2i64 ? MVT::v4i32 : MVT::v2i32; 4228 unsigned VecElts = VT == MVT::v2i64 ? 4 : 2; 4229 4230 // Truncate the value (which may itself be a constant) to i32, and 4231 // convert it to a vector with movd (S2V+shuffle to zero extend). 4232 Item = DAG.getNode(ISD::TRUNCATE, dl, MVT::i32, Item); 4233 Item = DAG.getNode(ISD::SCALAR_TO_VECTOR, dl, VecVT, Item); 4234 Item = getShuffleVectorZeroOrUndef(Item, 0, true, 4235 Subtarget->hasSSE2(), DAG); 4236 4237 // Now we have our 32-bit value zero extended in the low element of 4238 // a vector. If Idx != 0, swizzle it into place. 4239 if (Idx != 0) { 4240 SmallVector<int, 4> Mask; 4241 Mask.push_back(Idx); 4242 for (unsigned i = 1; i != VecElts; ++i) 4243 Mask.push_back(i); 4244 Item = DAG.getVectorShuffle(VecVT, dl, Item, 4245 DAG.getUNDEF(Item.getValueType()), 4246 &Mask[0]); 4247 } 4248 return DAG.getNode(ISD::BIT_CONVERT, dl, Op.getValueType(), Item); 4249 } 4250 } 4251 4252 // If we have a constant or non-constant insertion into the low element of 4253 // a vector, we can do this with SCALAR_TO_VECTOR + shuffle of zero into 4254 // the rest of the elements. This will be matched as movd/movq/movss/movsd 4255 // depending on what the source datatype is. 4256 if (Idx == 0) { 4257 if (NumZero == 0) { 4258 return DAG.getNode(ISD::SCALAR_TO_VECTOR, dl, VT, Item); 4259 } else if (ExtVT == MVT::i32 || ExtVT == MVT::f32 || ExtVT == MVT::f64 || 4260 (ExtVT == MVT::i64 && Subtarget->is64Bit())) { 4261 Item = DAG.getNode(ISD::SCALAR_TO_VECTOR, dl, VT, Item); 4262 // Turn it into a MOVL (i.e. movss, movsd, or movd) to a zero vector. 4263 return getShuffleVectorZeroOrUndef(Item, 0, true, Subtarget->hasSSE2(), 4264 DAG); 4265 } else if (ExtVT == MVT::i16 || ExtVT == MVT::i8) { 4266 Item = DAG.getNode(ISD::ZERO_EXTEND, dl, MVT::i32, Item); 4267 EVT MiddleVT = VT.getSizeInBits() == 64 ? MVT::v2i32 : MVT::v4i32; 4268 Item = DAG.getNode(ISD::SCALAR_TO_VECTOR, dl, MiddleVT, Item); 4269 Item = getShuffleVectorZeroOrUndef(Item, 0, true, 4270 Subtarget->hasSSE2(), DAG); 4271 return DAG.getNode(ISD::BIT_CONVERT, dl, VT, Item); 4272 } 4273 } 4274 4275 // Is it a vector logical left shift? 4276 if (NumElems == 2 && Idx == 1 && 4277 X86::isZeroNode(Op.getOperand(0)) && 4278 !X86::isZeroNode(Op.getOperand(1))) { 4279 unsigned NumBits = VT.getSizeInBits(); 4280 return getVShift(true, VT, 4281 DAG.getNode(ISD::SCALAR_TO_VECTOR, dl, 4282 VT, Op.getOperand(1)), 4283 NumBits/2, DAG, *this, dl); 4284 } 4285 4286 if (IsAllConstants) // Otherwise, it's better to do a constpool load. 4287 return SDValue(); 4288 4289 // Otherwise, if this is a vector with i32 or f32 elements, and the element 4290 // is a non-constant being inserted into an element other than the low one, 4291 // we can't use a constant pool load. Instead, use SCALAR_TO_VECTOR (aka 4292 // movd/movss) to move this into the low element, then shuffle it into 4293 // place. 4294 if (EVTBits == 32) { 4295 Item = DAG.getNode(ISD::SCALAR_TO_VECTOR, dl, VT, Item); 4296 4297 // Turn it into a shuffle of zero and zero-extended scalar to vector. 4298 Item = getShuffleVectorZeroOrUndef(Item, 0, NumZero > 0, 4299 Subtarget->hasSSE2(), DAG); 4300 SmallVector<int, 8> MaskVec; 4301 for (unsigned i = 0; i < NumElems; i++) 4302 MaskVec.push_back(i == Idx ? 0 : 1); 4303 return DAG.getVectorShuffle(VT, dl, Item, DAG.getUNDEF(VT), &MaskVec[0]); 4304 } 4305 } 4306 4307 // Splat is obviously ok. Let legalizer expand it to a shuffle. 4308 if (Values.size() == 1) { 4309 if (EVTBits == 32) { 4310 // Instead of a shuffle like this: 4311 // shuffle (scalar_to_vector (load (ptr + 4))), undef, <0, 0, 0, 0> 4312 // Check if it's possible to issue this instead. 4313 // shuffle (vload ptr)), undef, <1, 1, 1, 1> 4314 unsigned Idx = CountTrailingZeros_32(NonZeros); 4315 SDValue Item = Op.getOperand(Idx); 4316 if (Op.getNode()->isOnlyUserOf(Item.getNode())) 4317 return LowerAsSplatVectorLoad(Item, VT, dl, DAG); 4318 } 4319 return SDValue(); 4320 } 4321 4322 // A vector full of immediates; various special cases are already 4323 // handled, so this is best done with a single constant-pool load. 4324 if (IsAllConstants) 4325 return SDValue(); 4326 4327 // Let legalizer expand 2-wide build_vectors. 4328 if (EVTBits == 64) { 4329 if (NumNonZero == 1) { 4330 // One half is zero or undef. 4331 unsigned Idx = CountTrailingZeros_32(NonZeros); 4332 SDValue V2 = DAG.getNode(ISD::SCALAR_TO_VECTOR, dl, VT, 4333 Op.getOperand(Idx)); 4334 return getShuffleVectorZeroOrUndef(V2, Idx, true, 4335 Subtarget->hasSSE2(), DAG); 4336 } 4337 return SDValue(); 4338 } 4339 4340 // If element VT is < 32 bits, convert it to inserts into a zero vector. 4341 if (EVTBits == 8 && NumElems == 16) { 4342 SDValue V = LowerBuildVectorv16i8(Op, NonZeros,NumNonZero,NumZero, DAG, 4343 *this); 4344 if (V.getNode()) return V; 4345 } 4346 4347 if (EVTBits == 16 && NumElems == 8) { 4348 SDValue V = LowerBuildVectorv8i16(Op, NonZeros,NumNonZero,NumZero, DAG, 4349 *this); 4350 if (V.getNode()) return V; 4351 } 4352 4353 // If element VT is == 32 bits, turn it into a number of shuffles. 4354 SmallVector<SDValue, 8> V; 4355 V.resize(NumElems); 4356 if (NumElems == 4 && NumZero > 0) { 4357 for (unsigned i = 0; i < 4; ++i) { 4358 bool isZero = !(NonZeros & (1 << i)); 4359 if (isZero) 4360 V[i] = getZeroVector(VT, Subtarget->hasSSE2(), DAG, dl); 4361 else 4362 V[i] = DAG.getNode(ISD::SCALAR_TO_VECTOR, dl, VT, Op.getOperand(i)); 4363 } 4364 4365 for (unsigned i = 0; i < 2; ++i) { 4366 switch ((NonZeros & (0x3 << i*2)) >> (i*2)) { 4367 default: break; 4368 case 0: 4369 V[i] = V[i*2]; // Must be a zero vector. 4370 break; 4371 case 1: 4372 V[i] = getMOVL(DAG, dl, VT, V[i*2+1], V[i*2]); 4373 break; 4374 case 2: 4375 V[i] = getMOVL(DAG, dl, VT, V[i*2], V[i*2+1]); 4376 break; 4377 case 3: 4378 V[i] = getUnpackl(DAG, dl, VT, V[i*2], V[i*2+1]); 4379 break; 4380 } 4381 } 4382 4383 SmallVector<int, 8> MaskVec; 4384 bool Reverse = (NonZeros & 0x3) == 2; 4385 for (unsigned i = 0; i < 2; ++i) 4386 MaskVec.push_back(Reverse ? 1-i : i); 4387 Reverse = ((NonZeros & (0x3 << 2)) >> 2) == 2; 4388 for (unsigned i = 0; i < 2; ++i) 4389 MaskVec.push_back(Reverse ? 1-i+NumElems : i+NumElems); 4390 return DAG.getVectorShuffle(VT, dl, V[0], V[1], &MaskVec[0]); 4391 } 4392 4393 if (Values.size() > 1 && VT.getSizeInBits() == 128) { 4394 // Check for a build vector of consecutive loads. 4395 for (unsigned i = 0; i < NumElems; ++i) 4396 V[i] = Op.getOperand(i); 4397 4398 // Check for elements which are consecutive loads. 4399 SDValue LD = EltsFromConsecutiveLoads(VT, V, dl, DAG); 4400 if (LD.getNode()) 4401 return LD; 4402 4403 // For SSE 4.1, use insertps to put the high elements into the low element. 4404 if (getSubtarget()->hasSSE41()) { 4405 SDValue Result; 4406 if (Op.getOperand(0).getOpcode() != ISD::UNDEF) 4407 Result = DAG.getNode(ISD::SCALAR_TO_VECTOR, dl, VT, Op.getOperand(0)); 4408 else 4409 Result = DAG.getUNDEF(VT); 4410 4411 for (unsigned i = 1; i < NumElems; ++i) { 4412 if (Op.getOperand(i).getOpcode() == ISD::UNDEF) continue; 4413 Result = DAG.getNode(ISD::INSERT_VECTOR_ELT, dl, VT, Result, 4414 Op.getOperand(i), DAG.getIntPtrConstant(i)); 4415 } 4416 return Result; 4417 } 4418 4419 // Otherwise, expand into a number of unpckl*, start by extending each of 4420 // our (non-undef) elements to the full vector width with the element in the 4421 // bottom slot of the vector (which generates no code for SSE). 4422 for (unsigned i = 0; i < NumElems; ++i) { 4423 if (Op.getOperand(i).getOpcode() != ISD::UNDEF) 4424 V[i] = DAG.getNode(ISD::SCALAR_TO_VECTOR, dl, VT, Op.getOperand(i)); 4425 else 4426 V[i] = DAG.getUNDEF(VT); 4427 } 4428 4429 // Next, we iteratively mix elements, e.g. for v4f32: 4430 // Step 1: unpcklps 0, 2 ==> X: <?, ?, 2, 0> 4431 // : unpcklps 1, 3 ==> Y: <?, ?, 3, 1> 4432 // Step 2: unpcklps X, Y ==> <3, 2, 1, 0> 4433 unsigned EltStride = NumElems >> 1; 4434 while (EltStride != 0) { 4435 for (unsigned i = 0; i < EltStride; ++i) { 4436 // If V[i+EltStride] is undef and this is the first round of mixing, 4437 // then it is safe to just drop this shuffle: V[i] is already in the 4438 // right place, the one element (since it's the first round) being 4439 // inserted as undef can be dropped. This isn't safe for successive 4440 // rounds because they will permute elements within both vectors. 4441 if (V[i+EltStride].getOpcode() == ISD::UNDEF && 4442 EltStride == NumElems/2) 4443 continue; 4444 4445 V[i] = getUnpackl(DAG, dl, VT, V[i], V[i + EltStride]); 4446 } 4447 EltStride >>= 1; 4448 } 4449 return V[0]; 4450 } 4451 return SDValue(); 4452 } 4453 4454 SDValue 4455 X86TargetLowering::LowerCONCAT_VECTORS(SDValue Op, SelectionDAG &DAG) const { 4456 // We support concatenate two MMX registers and place them in a MMX 4457 // register. This is better than doing a stack convert. 4458 DebugLoc dl = Op.getDebugLoc(); 4459 EVT ResVT = Op.getValueType(); 4460 assert(Op.getNumOperands() == 2); 4461 assert(ResVT == MVT::v2i64 || ResVT == MVT::v4i32 || 4462 ResVT == MVT::v8i16 || ResVT == MVT::v16i8); 4463 int Mask[2]; 4464 SDValue InVec = DAG.getNode(ISD::BIT_CONVERT,dl, MVT::v1i64, Op.getOperand(0)); 4465 SDValue VecOp = DAG.getNode(X86ISD::MOVQ2DQ, dl, MVT::v2i64, InVec); 4466 InVec = Op.getOperand(1); 4467 if (InVec.getOpcode() == ISD::SCALAR_TO_VECTOR) { 4468 unsigned NumElts = ResVT.getVectorNumElements(); 4469 VecOp = DAG.getNode(ISD::BIT_CONVERT, dl, ResVT, VecOp); 4470 VecOp = DAG.getNode(ISD::INSERT_VECTOR_ELT, dl, ResVT, VecOp, 4471 InVec.getOperand(0), DAG.getIntPtrConstant(NumElts/2+1)); 4472 } else { 4473 InVec = DAG.getNode(ISD::BIT_CONVERT, dl, MVT::v1i64, InVec); 4474 SDValue VecOp2 = DAG.getNode(X86ISD::MOVQ2DQ, dl, MVT::v2i64, InVec); 4475 Mask[0] = 0; Mask[1] = 2; 4476 VecOp = DAG.getVectorShuffle(MVT::v2i64, dl, VecOp, VecOp2, Mask); 4477 } 4478 return DAG.getNode(ISD::BIT_CONVERT, dl, ResVT, VecOp); 4479 } 4480 4481 // v8i16 shuffles - Prefer shuffles in the following order: 4482 // 1. [all] pshuflw, pshufhw, optional move 4483 // 2. [ssse3] 1 x pshufb 4484 // 3. [ssse3] 2 x pshufb + 1 x por 4485 // 4. [all] mov + pshuflw + pshufhw + N x (pextrw + pinsrw) 4486 SDValue 4487 X86TargetLowering::LowerVECTOR_SHUFFLEv8i16(SDValue Op, 4488 SelectionDAG &DAG) const { 4489 ShuffleVectorSDNode *SVOp = cast<ShuffleVectorSDNode>(Op); 4490 SDValue V1 = SVOp->getOperand(0); 4491 SDValue V2 = SVOp->getOperand(1); 4492 DebugLoc dl = SVOp->getDebugLoc(); 4493 SmallVector<int, 8> MaskVals; 4494 4495 // Determine if more than 1 of the words in each of the low and high quadwords 4496 // of the result come from the same quadword of one of the two inputs. Undef 4497 // mask values count as coming from any quadword, for better codegen. 4498 SmallVector<unsigned, 4> LoQuad(4); 4499 SmallVector<unsigned, 4> HiQuad(4); 4500 BitVector InputQuads(4); 4501 for (unsigned i = 0; i < 8; ++i) { 4502 SmallVectorImpl<unsigned> &Quad = i < 4 ? LoQuad : HiQuad; 4503 int EltIdx = SVOp->getMaskElt(i); 4504 MaskVals.push_back(EltIdx); 4505 if (EltIdx < 0) { 4506 ++Quad[0]; 4507 ++Quad[1]; 4508 ++Quad[2]; 4509 ++Quad[3]; 4510 continue; 4511 } 4512 ++Quad[EltIdx / 4]; 4513 InputQuads.set(EltIdx / 4); 4514 } 4515 4516 int BestLoQuad = -1; 4517 unsigned MaxQuad = 1; 4518 for (unsigned i = 0; i < 4; ++i) { 4519 if (LoQuad[i] > MaxQuad) { 4520 BestLoQuad = i; 4521 MaxQuad = LoQuad[i]; 4522 } 4523 } 4524 4525 int BestHiQuad = -1; 4526 MaxQuad = 1; 4527 for (unsigned i = 0; i < 4; ++i) { 4528 if (HiQuad[i] > MaxQuad) { 4529 BestHiQuad = i; 4530 MaxQuad = HiQuad[i]; 4531 } 4532 } 4533 4534 // For SSSE3, If all 8 words of the result come from only 1 quadword of each 4535 // of the two input vectors, shuffle them into one input vector so only a 4536 // single pshufb instruction is necessary. If There are more than 2 input 4537 // quads, disable the next transformation since it does not help SSSE3. 4538 bool V1Used = InputQuads[0] || InputQuads[1]; 4539 bool V2Used = InputQuads[2] || InputQuads[3]; 4540 if (Subtarget->hasSSSE3()) { 4541 if (InputQuads.count() == 2 && V1Used && V2Used) { 4542 BestLoQuad = InputQuads.find_first(); 4543 BestHiQuad = InputQuads.find_next(BestLoQuad); 4544 } 4545 if (InputQuads.count() > 2) { 4546 BestLoQuad = -1; 4547 BestHiQuad = -1; 4548 } 4549 } 4550 4551 // If BestLoQuad or BestHiQuad are set, shuffle the quads together and update 4552 // the shuffle mask. If a quad is scored as -1, that means that it contains 4553 // words from all 4 input quadwords. 4554 SDValue NewV; 4555 if (BestLoQuad >= 0 || BestHiQuad >= 0) { 4556 SmallVector<int, 8> MaskV; 4557 MaskV.push_back(BestLoQuad < 0 ? 0 : BestLoQuad); 4558 MaskV.push_back(BestHiQuad < 0 ? 1 : BestHiQuad); 4559 NewV = DAG.getVectorShuffle(MVT::v2i64, dl, 4560 DAG.getNode(ISD::BIT_CONVERT, dl, MVT::v2i64, V1), 4561 DAG.getNode(ISD::BIT_CONVERT, dl, MVT::v2i64, V2), &MaskV[0]); 4562 NewV = DAG.getNode(ISD::BIT_CONVERT, dl, MVT::v8i16, NewV); 4563 4564 // Rewrite the MaskVals and assign NewV to V1 if NewV now contains all the 4565 // source words for the shuffle, to aid later transformations. 4566 bool AllWordsInNewV = true; 4567 bool InOrder[2] = { true, true }; 4568 for (unsigned i = 0; i != 8; ++i) { 4569 int idx = MaskVals[i]; 4570 if (idx != (int)i) 4571 InOrder[i/4] = false; 4572 if (idx < 0 || (idx/4) == BestLoQuad || (idx/4) == BestHiQuad) 4573 continue; 4574 AllWordsInNewV = false; 4575 break; 4576 } 4577 4578 bool pshuflw = AllWordsInNewV, pshufhw = AllWordsInNewV; 4579 if (AllWordsInNewV) { 4580 for (int i = 0; i != 8; ++i) { 4581 int idx = MaskVals[i]; 4582 if (idx < 0) 4583 continue; 4584 idx = MaskVals[i] = (idx / 4) == BestLoQuad ? (idx & 3) : (idx & 3) + 4; 4585 if ((idx != i) && idx < 4) 4586 pshufhw = false; 4587 if ((idx != i) && idx > 3) 4588 pshuflw = false; 4589 } 4590 V1 = NewV; 4591 V2Used = false; 4592 BestLoQuad = 0; 4593 BestHiQuad = 1; 4594 } 4595 4596 // If we've eliminated the use of V2, and the new mask is a pshuflw or 4597 // pshufhw, that's as cheap as it gets. Return the new shuffle. 4598 if ((pshufhw && InOrder[0]) || (pshuflw && InOrder[1])) { 4599 unsigned Opc = pshufhw ? X86ISD::PSHUFHW : X86ISD::PSHUFLW; 4600 unsigned TargetMask = 0; 4601 NewV = DAG.getVectorShuffle(MVT::v8i16, dl, NewV, 4602 DAG.getUNDEF(MVT::v8i16), &MaskVals[0]); 4603 TargetMask = pshufhw ? X86::getShufflePSHUFHWImmediate(NewV.getNode()): 4604 X86::getShufflePSHUFLWImmediate(NewV.getNode()); 4605 V1 = NewV.getOperand(0); 4606 return getTargetShuffleNode(Opc, dl, MVT::v8i16, V1, TargetMask, DAG); 4607 } 4608 } 4609 4610 // If we have SSSE3, and all words of the result are from 1 input vector, 4611 // case 2 is generated, otherwise case 3 is generated. If no SSSE3 4612 // is present, fall back to case 4. 4613 if (Subtarget->hasSSSE3()) { 4614 SmallVector<SDValue,16> pshufbMask; 4615 4616 // If we have elements from both input vectors, set the high bit of the 4617 // shuffle mask element to zero out elements that come from V2 in the V1 4618 // mask, and elements that come from V1 in the V2 mask, so that the two 4619 // results can be OR'd together. 4620 bool TwoInputs = V1Used && V2Used; 4621 for (unsigned i = 0; i != 8; ++i) { 4622 int EltIdx = MaskVals[i] * 2; 4623 if (TwoInputs && (EltIdx >= 16)) { 4624 pshufbMask.push_back(DAG.getConstant(0x80, MVT::i8)); 4625 pshufbMask.push_back(DAG.getConstant(0x80, MVT::i8)); 4626 continue; 4627 } 4628 pshufbMask.push_back(DAG.getConstant(EltIdx, MVT::i8)); 4629 pshufbMask.push_back(DAG.getConstant(EltIdx+1, MVT::i8)); 4630 } 4631 V1 = DAG.getNode(ISD::BIT_CONVERT, dl, MVT::v16i8, V1); 4632 V1 = DAG.getNode(X86ISD::PSHUFB, dl, MVT::v16i8, V1, 4633 DAG.getNode(ISD::BUILD_VECTOR, dl, 4634 MVT::v16i8, &pshufbMask[0], 16)); 4635 if (!TwoInputs) 4636 return DAG.getNode(ISD::BIT_CONVERT, dl, MVT::v8i16, V1); 4637 4638 // Calculate the shuffle mask for the second input, shuffle it, and 4639 // OR it with the first shuffled input. 4640 pshufbMask.clear(); 4641 for (unsigned i = 0; i != 8; ++i) { 4642 int EltIdx = MaskVals[i] * 2; 4643 if (EltIdx < 16) { 4644 pshufbMask.push_back(DAG.getConstant(0x80, MVT::i8)); 4645 pshufbMask.push_back(DAG.getConstant(0x80, MVT::i8)); 4646 continue; 4647 } 4648 pshufbMask.push_back(DAG.getConstant(EltIdx - 16, MVT::i8)); 4649 pshufbMask.push_back(DAG.getConstant(EltIdx - 15, MVT::i8)); 4650 } 4651 V2 = DAG.getNode(ISD::BIT_CONVERT, dl, MVT::v16i8, V2); 4652 V2 = DAG.getNode(X86ISD::PSHUFB, dl, MVT::v16i8, V2, 4653 DAG.getNode(ISD::BUILD_VECTOR, dl, 4654 MVT::v16i8, &pshufbMask[0], 16)); 4655 V1 = DAG.getNode(ISD::OR, dl, MVT::v16i8, V1, V2); 4656 return DAG.getNode(ISD::BIT_CONVERT, dl, MVT::v8i16, V1); 4657 } 4658 4659 // If BestLoQuad >= 0, generate a pshuflw to put the low elements in order, 4660 // and update MaskVals with new element order. 4661 BitVector InOrder(8); 4662 if (BestLoQuad >= 0) { 4663 SmallVector<int, 8> MaskV; 4664 for (int i = 0; i != 4; ++i) { 4665 int idx = MaskVals[i]; 4666 if (idx < 0) { 4667 MaskV.push_back(-1); 4668 InOrder.set(i); 4669 } else if ((idx / 4) == BestLoQuad) { 4670 MaskV.push_back(idx & 3); 4671 InOrder.set(i); 4672 } else { 4673 MaskV.push_back(-1); 4674 } 4675 } 4676 for (unsigned i = 4; i != 8; ++i) 4677 MaskV.push_back(i); 4678 NewV = DAG.getVectorShuffle(MVT::v8i16, dl, NewV, DAG.getUNDEF(MVT::v8i16), 4679 &MaskV[0]); 4680 4681 if (NewV.getOpcode() == ISD::VECTOR_SHUFFLE && Subtarget->hasSSSE3()) 4682 NewV = getTargetShuffleNode(X86ISD::PSHUFLW, dl, MVT::v8i16, 4683 NewV.getOperand(0), 4684 X86::getShufflePSHUFLWImmediate(NewV.getNode()), 4685 DAG); 4686 } 4687 4688 // If BestHi >= 0, generate a pshufhw to put the high elements in order, 4689 // and update MaskVals with the new element order. 4690 if (BestHiQuad >= 0) { 4691 SmallVector<int, 8> MaskV; 4692 for (unsigned i = 0; i != 4; ++i) 4693 MaskV.push_back(i); 4694 for (unsigned i = 4; i != 8; ++i) { 4695 int idx = MaskVals[i]; 4696 if (idx < 0) { 4697 MaskV.push_back(-1); 4698 InOrder.set(i); 4699 } else if ((idx / 4) == BestHiQuad) { 4700 MaskV.push_back((idx & 3) + 4); 4701 InOrder.set(i); 4702 } else { 4703 MaskV.push_back(-1); 4704 } 4705 } 4706 NewV = DAG.getVectorShuffle(MVT::v8i16, dl, NewV, DAG.getUNDEF(MVT::v8i16), 4707 &MaskV[0]); 4708 4709 if (NewV.getOpcode() == ISD::VECTOR_SHUFFLE && Subtarget->hasSSSE3()) 4710 NewV = getTargetShuffleNode(X86ISD::PSHUFHW, dl, MVT::v8i16, 4711 NewV.getOperand(0), 4712 X86::getShufflePSHUFHWImmediate(NewV.getNode()), 4713 DAG); 4714 } 4715 4716 // In case BestHi & BestLo were both -1, which means each quadword has a word 4717 // from each of the four input quadwords, calculate the InOrder bitvector now 4718 // before falling through to the insert/extract cleanup. 4719 if (BestLoQuad == -1 && BestHiQuad == -1) { 4720 NewV = V1; 4721 for (int i = 0; i != 8; ++i) 4722 if (MaskVals[i] < 0 || MaskVals[i] == i) 4723 InOrder.set(i); 4724 } 4725 4726 // The other elements are put in the right place using pextrw and pinsrw. 4727 for (unsigned i = 0; i != 8; ++i) { 4728 if (InOrder[i]) 4729 continue; 4730 int EltIdx = MaskVals[i]; 4731 if (EltIdx < 0) 4732 continue; 4733 SDValue ExtOp = (EltIdx < 8) 4734 ? DAG.getNode(ISD::EXTRACT_VECTOR_ELT, dl, MVT::i16, V1, 4735 DAG.getIntPtrConstant(EltIdx)) 4736 : DAG.getNode(ISD::EXTRACT_VECTOR_ELT, dl, MVT::i16, V2, 4737 DAG.getIntPtrConstant(EltIdx - 8)); 4738 NewV = DAG.getNode(ISD::INSERT_VECTOR_ELT, dl, MVT::v8i16, NewV, ExtOp, 4739 DAG.getIntPtrConstant(i)); 4740 } 4741 return NewV; 4742 } 4743 4744 // v16i8 shuffles - Prefer shuffles in the following order: 4745 // 1. [ssse3] 1 x pshufb 4746 // 2. [ssse3] 2 x pshufb + 1 x por 4747 // 3. [all] v8i16 shuffle + N x pextrw + rotate + pinsrw 4748 static 4749 SDValue LowerVECTOR_SHUFFLEv16i8(ShuffleVectorSDNode *SVOp, 4750 SelectionDAG &DAG, 4751 const X86TargetLowering &TLI) { 4752 SDValue V1 = SVOp->getOperand(0); 4753 SDValue V2 = SVOp->getOperand(1); 4754 DebugLoc dl = SVOp->getDebugLoc(); 4755 SmallVector<int, 16> MaskVals; 4756 SVOp->getMask(MaskVals); 4757 4758 // If we have SSSE3, case 1 is generated when all result bytes come from 4759 // one of the inputs. Otherwise, case 2 is generated. If no SSSE3 is 4760 // present, fall back to case 3. 4761 // FIXME: kill V2Only once shuffles are canonizalized by getNode. 4762 bool V1Only = true; 4763 bool V2Only = true; 4764 for (unsigned i = 0; i < 16; ++i) { 4765 int EltIdx = MaskVals[i]; 4766 if (EltIdx < 0) 4767 continue; 4768 if (EltIdx < 16) 4769 V2Only = false; 4770 else 4771 V1Only = false; 4772 } 4773 4774 // If SSSE3, use 1 pshufb instruction per vector with elements in the result. 4775 if (TLI.getSubtarget()->hasSSSE3()) { 4776 SmallVector<SDValue,16> pshufbMask; 4777 4778 // If all result elements are from one input vector, then only translate 4779 // undef mask values to 0x80 (zero out result) in the pshufb mask. 4780 // 4781 // Otherwise, we have elements from both input vectors, and must zero out 4782 // elements that come from V2 in the first mask, and V1 in the second mask 4783 // so that we can OR them together. 4784 bool TwoInputs = !(V1Only || V2Only); 4785 for (unsigned i = 0; i != 16; ++i) { 4786 int EltIdx = MaskVals[i]; 4787 if (EltIdx < 0 || (TwoInputs && EltIdx >= 16)) { 4788 pshufbMask.push_back(DAG.getConstant(0x80, MVT::i8)); 4789 continue; 4790 } 4791 pshufbMask.push_back(DAG.getConstant(EltIdx, MVT::i8)); 4792 } 4793 // If all the elements are from V2, assign it to V1 and return after 4794 // building the first pshufb. 4795 if (V2Only) 4796 V1 = V2; 4797 V1 = DAG.getNode(X86ISD::PSHUFB, dl, MVT::v16i8, V1, 4798 DAG.getNode(ISD::BUILD_VECTOR, dl, 4799 MVT::v16i8, &pshufbMask[0], 16)); 4800 if (!TwoInputs) 4801 return V1; 4802 4803 // Calculate the shuffle mask for the second input, shuffle it, and 4804 // OR it with the first shuffled input. 4805 pshufbMask.clear(); 4806 for (unsigned i = 0; i != 16; ++i) { 4807 int EltIdx = MaskVals[i]; 4808 if (EltIdx < 16) { 4809 pshufbMask.push_back(DAG.getConstant(0x80, MVT::i8)); 4810 continue; 4811 } 4812 pshufbMask.push_back(DAG.getConstant(EltIdx - 16, MVT::i8)); 4813 } 4814 V2 = DAG.getNode(X86ISD::PSHUFB, dl, MVT::v16i8, V2, 4815 DAG.getNode(ISD::BUILD_VECTOR, dl, 4816 MVT::v16i8, &pshufbMask[0], 16)); 4817 return DAG.getNode(ISD::OR, dl, MVT::v16i8, V1, V2); 4818 } 4819 4820 // No SSSE3 - Calculate in place words and then fix all out of place words 4821 // With 0-16 extracts & inserts. Worst case is 16 bytes out of order from 4822 // the 16 different words that comprise the two doublequadword input vectors. 4823 V1 = DAG.getNode(ISD::BIT_CONVERT, dl, MVT::v8i16, V1); 4824 V2 = DAG.getNode(ISD::BIT_CONVERT, dl, MVT::v8i16, V2); 4825 SDValue NewV = V2Only ? V2 : V1; 4826 for (int i = 0; i != 8; ++i) { 4827 int Elt0 = MaskVals[i*2]; 4828 int Elt1 = MaskVals[i*2+1]; 4829 4830 // This word of the result is all undef, skip it. 4831 if (Elt0 < 0 && Elt1 < 0) 4832 continue; 4833 4834 // This word of the result is already in the correct place, skip it. 4835 if (V1Only && (Elt0 == i*2) && (Elt1 == i*2+1)) 4836 continue; 4837 if (V2Only && (Elt0 == i*2+16) && (Elt1 == i*2+17)) 4838 continue; 4839 4840 SDValue Elt0Src = Elt0 < 16 ? V1 : V2; 4841 SDValue Elt1Src = Elt1 < 16 ? V1 : V2; 4842 SDValue InsElt; 4843 4844 // If Elt0 and Elt1 are defined, are consecutive, and can be load 4845 // using a single extract together, load it and store it. 4846 if ((Elt0 >= 0) && ((Elt0 + 1) == Elt1) && ((Elt0 & 1) == 0)) { 4847 InsElt = DAG.getNode(ISD::EXTRACT_VECTOR_ELT, dl, MVT::i16, Elt1Src, 4848 DAG.getIntPtrConstant(Elt1 / 2)); 4849 NewV = DAG.getNode(ISD::INSERT_VECTOR_ELT, dl, MVT::v8i16, NewV, InsElt, 4850 DAG.getIntPtrConstant(i)); 4851 continue; 4852 } 4853 4854 // If Elt1 is defined, extract it from the appropriate source. If the 4855 // source byte is not also odd, shift the extracted word left 8 bits 4856 // otherwise clear the bottom 8 bits if we need to do an or. 4857 if (Elt1 >= 0) { 4858 InsElt = DAG.getNode(ISD::EXTRACT_VECTOR_ELT, dl, MVT::i16, Elt1Src, 4859 DAG.getIntPtrConstant(Elt1 / 2)); 4860 if ((Elt1 & 1) == 0) 4861 InsElt = DAG.getNode(ISD::SHL, dl, MVT::i16, InsElt, 4862 DAG.getConstant(8, TLI.getShiftAmountTy())); 4863 else if (Elt0 >= 0) 4864 InsElt = DAG.getNode(ISD::AND, dl, MVT::i16, InsElt, 4865 DAG.getConstant(0xFF00, MVT::i16)); 4866 } 4867 // If Elt0 is defined, extract it from the appropriate source. If the 4868 // source byte is not also even, shift the extracted word right 8 bits. If 4869 // Elt1 was also defined, OR the extracted values together before 4870 // inserting them in the result. 4871 if (Elt0 >= 0) { 4872 SDValue InsElt0 = DAG.getNode(ISD::EXTRACT_VECTOR_ELT, dl, MVT::i16, 4873 Elt0Src, DAG.getIntPtrConstant(Elt0 / 2)); 4874 if ((Elt0 & 1) != 0) 4875 InsElt0 = DAG.getNode(ISD::SRL, dl, MVT::i16, InsElt0, 4876 DAG.getConstant(8, TLI.getShiftAmountTy())); 4877 else if (Elt1 >= 0) 4878 InsElt0 = DAG.getNode(ISD::AND, dl, MVT::i16, InsElt0, 4879 DAG.getConstant(0x00FF, MVT::i16)); 4880 InsElt = Elt1 >= 0 ? DAG.getNode(ISD::OR, dl, MVT::i16, InsElt, InsElt0) 4881 : InsElt0; 4882 } 4883 NewV = DAG.getNode(ISD::INSERT_VECTOR_ELT, dl, MVT::v8i16, NewV, InsElt, 4884 DAG.getIntPtrConstant(i)); 4885 } 4886 return DAG.getNode(ISD::BIT_CONVERT, dl, MVT::v16i8, NewV); 4887 } 4888 4889 /// RewriteAsNarrowerShuffle - Try rewriting v8i16 and v16i8 shuffles as 4 wide 4890 /// ones, or rewriting v4i32 / v2i32 as 2 wide ones if possible. This can be 4891 /// done when every pair / quad of shuffle mask elements point to elements in 4892 /// the right sequence. e.g. 4893 /// vector_shuffle <>, <>, < 3, 4, | 10, 11, | 0, 1, | 14, 15> 4894 static 4895 SDValue RewriteAsNarrowerShuffle(ShuffleVectorSDNode *SVOp, 4896 SelectionDAG &DAG, 4897 const TargetLowering &TLI, DebugLoc dl) { 4898 EVT VT = SVOp->getValueType(0); 4899 SDValue V1 = SVOp->getOperand(0); 4900 SDValue V2 = SVOp->getOperand(1); 4901 unsigned NumElems = VT.getVectorNumElements(); 4902 unsigned NewWidth = (NumElems == 4) ? 2 : 4; 4903 EVT MaskVT = (NewWidth == 4) ? MVT::v4i16 : MVT::v2i32; 4904 EVT NewVT = MaskVT; 4905 switch (VT.getSimpleVT().SimpleTy) { 4906 default: assert(false && "Unexpected!"); 4907 case MVT::v4f32: NewVT = MVT::v2f64; break; 4908 case MVT::v4i32: NewVT = MVT::v2i64; break; 4909 case MVT::v8i16: NewVT = MVT::v4i32; break; 4910 case MVT::v16i8: NewVT = MVT::v4i32; break; 4911 } 4912 4913 if (NewWidth == 2) { 4914 if (VT.isInteger()) 4915 NewVT = MVT::v2i64; 4916 else 4917 NewVT = MVT::v2f64; 4918 } 4919 int Scale = NumElems / NewWidth; 4920 SmallVector<int, 8> MaskVec; 4921 for (unsigned i = 0; i < NumElems; i += Scale) { 4922 int StartIdx = -1; 4923 for (int j = 0; j < Scale; ++j) { 4924 int EltIdx = SVOp->getMaskElt(i+j); 4925 if (EltIdx < 0) 4926 continue; 4927 if (StartIdx == -1) 4928 StartIdx = EltIdx - (EltIdx % Scale); 4929 if (EltIdx != StartIdx + j) 4930 return SDValue(); 4931 } 4932 if (StartIdx == -1) 4933 MaskVec.push_back(-1); 4934 else 4935 MaskVec.push_back(StartIdx / Scale); 4936 } 4937 4938 V1 = DAG.getNode(ISD::BIT_CONVERT, dl, NewVT, V1); 4939 V2 = DAG.getNode(ISD::BIT_CONVERT, dl, NewVT, V2); 4940 return DAG.getVectorShuffle(NewVT, dl, V1, V2, &MaskVec[0]); 4941 } 4942 4943 /// getVZextMovL - Return a zero-extending vector move low node. 4944 /// 4945 static SDValue getVZextMovL(EVT VT, EVT OpVT, 4946 SDValue SrcOp, SelectionDAG &DAG, 4947 const X86Subtarget *Subtarget, DebugLoc dl) { 4948 if (VT == MVT::v2f64 || VT == MVT::v4f32) { 4949 LoadSDNode *LD = NULL; 4950 if (!isScalarLoadToVector(SrcOp.getNode(), &LD)) 4951 LD = dyn_cast<LoadSDNode>(SrcOp); 4952 if (!LD) { 4953 // movssrr and movsdrr do not clear top bits. Try to use movd, movq 4954 // instead. 4955 MVT ExtVT = (OpVT == MVT::v2f64) ? MVT::i64 : MVT::i32; 4956 if ((ExtVT.SimpleTy != MVT::i64 || Subtarget->is64Bit()) && 4957 SrcOp.getOpcode() == ISD::SCALAR_TO_VECTOR && 4958 SrcOp.getOperand(0).getOpcode() == ISD::BIT_CONVERT && 4959 SrcOp.getOperand(0).getOperand(0).getValueType() == ExtVT) { 4960 // PR2108 4961 OpVT = (OpVT == MVT::v2f64) ? MVT::v2i64 : MVT::v4i32; 4962 return DAG.getNode(ISD::BIT_CONVERT, dl, VT, 4963 DAG.getNode(X86ISD::VZEXT_MOVL, dl, OpVT, 4964 DAG.getNode(ISD::SCALAR_TO_VECTOR, dl, 4965 OpVT, 4966 SrcOp.getOperand(0) 4967 .getOperand(0)))); 4968 } 4969 } 4970 } 4971 4972 return DAG.getNode(ISD::BIT_CONVERT, dl, VT, 4973 DAG.getNode(X86ISD::VZEXT_MOVL, dl, OpVT, 4974 DAG.getNode(ISD::BIT_CONVERT, dl, 4975 OpVT, SrcOp))); 4976 } 4977 4978 /// LowerVECTOR_SHUFFLE_4wide - Handle all 4 wide cases with a number of 4979 /// shuffles. 4980 static SDValue 4981 LowerVECTOR_SHUFFLE_4wide(ShuffleVectorSDNode *SVOp, SelectionDAG &DAG) { 4982 SDValue V1 = SVOp->getOperand(0); 4983 SDValue V2 = SVOp->getOperand(1); 4984 DebugLoc dl = SVOp->getDebugLoc(); 4985 EVT VT = SVOp->getValueType(0); 4986 4987 SmallVector<std::pair<int, int>, 8> Locs; 4988 Locs.resize(4); 4989 SmallVector<int, 8> Mask1(4U, -1); 4990 SmallVector<int, 8> PermMask; 4991 SVOp->getMask(PermMask); 4992 4993 unsigned NumHi = 0; 4994 unsigned NumLo = 0; 4995 for (unsigned i = 0; i != 4; ++i) { 4996 int Idx = PermMask[i]; 4997 if (Idx < 0) { 4998 Locs[i] = std::make_pair(-1, -1); 4999 } else { 5000 assert(Idx < 8 && "Invalid VECTOR_SHUFFLE index!"); 5001 if (Idx < 4) { 5002 Locs[i] = std::make_pair(0, NumLo); 5003 Mask1[NumLo] = Idx; 5004 NumLo++; 5005 } else { 5006 Locs[i] = std::make_pair(1, NumHi); 5007 if (2+NumHi < 4) 5008 Mask1[2+NumHi] = Idx; 5009 NumHi++; 5010 } 5011 } 5012 } 5013 5014 if (NumLo <= 2 && NumHi <= 2) { 5015 // If no more than two elements come from either vector. This can be 5016 // implemented with two shuffles. First shuffle gather the elements. 5017 // The second shuffle, which takes the first shuffle as both of its 5018 // vector operands, put the elements into the right order. 5019 V1 = DAG.getVectorShuffle(VT, dl, V1, V2, &Mask1[0]); 5020 5021 SmallVector<int, 8> Mask2(4U, -1); 5022 5023 for (unsigned i = 0; i != 4; ++i) { 5024 if (Locs[i].first == -1) 5025 continue; 5026 else { 5027 unsigned Idx = (i < 2) ? 0 : 4; 5028 Idx += Locs[i].first * 2 + Locs[i].second; 5029 Mask2[i] = Idx; 5030 } 5031 } 5032 5033 return DAG.getVectorShuffle(VT, dl, V1, V1, &Mask2[0]); 5034 } else if (NumLo == 3 || NumHi == 3) { 5035 // Otherwise, we must have three elements from one vector, call it X, and 5036 // one element from the other, call it Y. First, use a shufps to build an 5037 // intermediate vector with the one element from Y and the element from X 5038 // that will be in the same half in the final destination (the indexes don't 5039 // matter). Then, use a shufps to build the final vector, taking the half 5040 // containing the element from Y from the intermediate, and the other half 5041 // from X. 5042 if (NumHi == 3) { 5043 // Normalize it so the 3 elements come from V1. 5044 CommuteVectorShuffleMask(PermMask, VT); 5045 std::swap(V1, V2); 5046 } 5047 5048 // Find the element from V2. 5049 unsigned HiIndex; 5050 for (HiIndex = 0; HiIndex < 3; ++HiIndex) { 5051 int Val = PermMask[HiIndex]; 5052 if (Val < 0) 5053 continue; 5054 if (Val >= 4) 5055 break; 5056 } 5057 5058 Mask1[0] = PermMask[HiIndex]; 5059 Mask1[1] = -1; 5060 Mask1[2] = PermMask[HiIndex^1]; 5061 Mask1[3] = -1; 5062 V2 = DAG.getVectorShuffle(VT, dl, V1, V2, &Mask1[0]); 5063 5064 if (HiIndex >= 2) { 5065 Mask1[0] = PermMask[0]; 5066 Mask1[1] = PermMask[1]; 5067 Mask1[2] = HiIndex & 1 ? 6 : 4; 5068 Mask1[3] = HiIndex & 1 ? 4 : 6; 5069 return DAG.getVectorShuffle(VT, dl, V1, V2, &Mask1[0]); 5070 } else { 5071 Mask1[0] = HiIndex & 1 ? 2 : 0; 5072 Mask1[1] = HiIndex & 1 ? 0 : 2; 5073 Mask1[2] = PermMask[2]; 5074 Mask1[3] = PermMask[3]; 5075 if (Mask1[2] >= 0) 5076 Mask1[2] += 4; 5077 if (Mask1[3] >= 0) 5078 Mask1[3] += 4; 5079 return DAG.getVectorShuffle(VT, dl, V2, V1, &Mask1[0]); 5080 } 5081 } 5082 5083 // Break it into (shuffle shuffle_hi, shuffle_lo). 5084 Locs.clear(); 5085 SmallVector<int,8> LoMask(4U, -1); 5086 SmallVector<int,8> HiMask(4U, -1); 5087 5088 SmallVector<int,8> *MaskPtr = &LoMask; 5089 unsigned MaskIdx = 0; 5090 unsigned LoIdx = 0; 5091 unsigned HiIdx = 2; 5092 for (unsigned i = 0; i != 4; ++i) { 5093 if (i == 2) { 5094 MaskPtr = &HiMask; 5095 MaskIdx = 1; 5096 LoIdx = 0; 5097 HiIdx = 2; 5098 } 5099 int Idx = PermMask[i]; 5100 if (Idx < 0) { 5101 Locs[i] = std::make_pair(-1, -1); 5102 } else if (Idx < 4) { 5103 Locs[i] = std::make_pair(MaskIdx, LoIdx); 5104 (*MaskPtr)[LoIdx] = Idx; 5105 LoIdx++; 5106 } else { 5107 Locs[i] = std::make_pair(MaskIdx, HiIdx); 5108 (*MaskPtr)[HiIdx] = Idx; 5109 HiIdx++; 5110 } 5111 } 5112 5113 SDValue LoShuffle = DAG.getVectorShuffle(VT, dl, V1, V2, &LoMask[0]); 5114 SDValue HiShuffle = DAG.getVectorShuffle(VT, dl, V1, V2, &HiMask[0]); 5115 SmallVector<int, 8> MaskOps; 5116 for (unsigned i = 0; i != 4; ++i) { 5117 if (Locs[i].first == -1) { 5118 MaskOps.push_back(-1); 5119 } else { 5120 unsigned Idx = Locs[i].first * 4 + Locs[i].second; 5121 MaskOps.push_back(Idx); 5122 } 5123 } 5124 return DAG.getVectorShuffle(VT, dl, LoShuffle, HiShuffle, &MaskOps[0]); 5125 } 5126 5127 static bool MayFoldVectorLoad(SDValue V) { 5128 if (V.hasOneUse() && V.getOpcode() == ISD::BIT_CONVERT) 5129 V = V.getOperand(0); 5130 if (V.hasOneUse() && V.getOpcode() == ISD::SCALAR_TO_VECTOR) 5131 V = V.getOperand(0); 5132 if (MayFoldLoad(V)) 5133 return true; 5134 return false; 5135 } 5136 5137 static 5138 SDValue getMOVLowToHigh(SDValue &Op, DebugLoc &dl, SelectionDAG &DAG, 5139 bool HasSSE2) { 5140 SDValue V1 = Op.getOperand(0); 5141 SDValue V2 = Op.getOperand(1); 5142 EVT VT = Op.getValueType(); 5143 5144 assert(VT != MVT::v2i64 && "unsupported shuffle type"); 5145 5146 if (HasSSE2 && VT == MVT::v2f64) 5147 return getTargetShuffleNode(X86ISD::MOVLHPD, dl, VT, V1, V2, DAG); 5148 5149 // v4f32 or v4i32 5150 return getTargetShuffleNode(X86ISD::MOVLHPS, dl, VT, V1, V2, DAG); 5151 } 5152 5153 static 5154 SDValue getMOVHighToLow(SDValue &Op, DebugLoc &dl, SelectionDAG &DAG) { 5155 SDValue V1 = Op.getOperand(0); 5156 SDValue V2 = Op.getOperand(1); 5157 EVT VT = Op.getValueType(); 5158 5159 assert((VT == MVT::v4i32 || VT == MVT::v4f32) && 5160 "unsupported shuffle type"); 5161 5162 if (V2.getOpcode() == ISD::UNDEF) 5163 V2 = V1; 5164 5165 // v4i32 or v4f32 5166 return getTargetShuffleNode(X86ISD::MOVHLPS, dl, VT, V1, V2, DAG); 5167 } 5168 5169 static 5170 SDValue getMOVLP(SDValue &Op, DebugLoc &dl, SelectionDAG &DAG, bool HasSSE2) { 5171 SDValue V1 = Op.getOperand(0); 5172 SDValue V2 = Op.getOperand(1); 5173 EVT VT = Op.getValueType(); 5174 unsigned NumElems = VT.getVectorNumElements(); 5175 5176 // Use MOVLPS and MOVLPD in case V1 or V2 are loads. During isel, the second 5177 // operand of these instructions is only memory, so check if there's a 5178 // potencial load folding here, otherwise use SHUFPS or MOVSD to match the 5179 // same masks. 5180 bool CanFoldLoad = false; 5181 5182 // Trivial case, when V2 comes from a load. 5183 if (MayFoldVectorLoad(V2)) 5184 CanFoldLoad = true; 5185 5186 // When V1 is a load, it can be folded later into a store in isel, example: 5187 // (store (v4f32 (X86Movlps (load addr:$src1), VR128:$src2)), addr:$src1) 5188 // turns into: 5189 // (MOVLPSmr addr:$src1, VR128:$src2) 5190 // So, recognize this potential and also use MOVLPS or MOVLPD 5191 if (MayFoldVectorLoad(V1) && MayFoldIntoStore(Op)) 5192 CanFoldLoad = true; 5193 5194 if (CanFoldLoad) { 5195 if (HasSSE2 && NumElems == 2) 5196 return getTargetShuffleNode(X86ISD::MOVLPD, dl, VT, V1, V2, DAG); 5197 5198 if (NumElems == 4) 5199 return getTargetShuffleNode(X86ISD::MOVLPS, dl, VT, V1, V2, DAG); 5200 } 5201 5202 ShuffleVectorSDNode *SVOp = cast<ShuffleVectorSDNode>(Op); 5203 // movl and movlp will both match v2i64, but v2i64 is never matched by 5204 // movl earlier because we make it strict to avoid messing with the movlp load 5205 // folding logic (see the code above getMOVLP call). Match it here then, 5206 // this is horrible, but will stay like this until we move all shuffle 5207 // matching to x86 specific nodes. Note that for the 1st condition all 5208 // types are matched with movsd. 5209 if ((HasSSE2 && NumElems == 2) || !X86::isMOVLMask(SVOp)) 5210 return getTargetShuffleNode(X86ISD::MOVSD, dl, VT, V1, V2, DAG); 5211 else if (HasSSE2) 5212 return getTargetShuffleNode(X86ISD::MOVSS, dl, VT, V1, V2, DAG); 5213 5214 5215 assert(VT != MVT::v4i32 && "unsupported shuffle type"); 5216 5217 // Invert the operand order and use SHUFPS to match it. 5218 return getTargetShuffleNode(X86ISD::SHUFPS, dl, VT, V2, V1, 5219 X86::getShuffleSHUFImmediate(SVOp), DAG); 5220 } 5221 5222 static inline unsigned getUNPCKLOpcode(EVT VT) { 5223 switch(VT.getSimpleVT().SimpleTy) { 5224 case MVT::v4i32: return X86ISD::PUNPCKLDQ; 5225 case MVT::v2i64: return X86ISD::PUNPCKLQDQ; 5226 case MVT::v4f32: return X86ISD::UNPCKLPS; 5227 case MVT::v2f64: return X86ISD::UNPCKLPD; 5228 case MVT::v16i8: return X86ISD::PUNPCKLBW; 5229 case MVT::v8i16: return X86ISD::PUNPCKLWD; 5230 default: 5231 llvm_unreachable("Unknow type for unpckl"); 5232 } 5233 return 0; 5234 } 5235 5236 static inline unsigned getUNPCKHOpcode(EVT VT) { 5237 switch(VT.getSimpleVT().SimpleTy) { 5238 case MVT::v4i32: return X86ISD::PUNPCKHDQ; 5239 case MVT::v2i64: return X86ISD::PUNPCKHQDQ; 5240 case MVT::v4f32: return X86ISD::UNPCKHPS; 5241 case MVT::v2f64: return X86ISD::UNPCKHPD; 5242 case MVT::v16i8: return X86ISD::PUNPCKHBW; 5243 case MVT::v8i16: return X86ISD::PUNPCKHWD; 5244 default: 5245 llvm_unreachable("Unknow type for unpckh"); 5246 } 5247 return 0; 5248 } 5249 5250 SDValue 5251 X86TargetLowering::LowerVECTOR_SHUFFLE(SDValue Op, SelectionDAG &DAG) const { 5252 ShuffleVectorSDNode *SVOp = cast<ShuffleVectorSDNode>(Op); 5253 SDValue V1 = Op.getOperand(0); 5254 SDValue V2 = Op.getOperand(1); 5255 EVT VT = Op.getValueType(); 5256 DebugLoc dl = Op.getDebugLoc(); 5257 unsigned NumElems = VT.getVectorNumElements(); 5258 bool isMMX = VT.getSizeInBits() == 64; 5259 bool V1IsUndef = V1.getOpcode() == ISD::UNDEF; 5260 bool V2IsUndef = V2.getOpcode() == ISD::UNDEF; 5261 bool V1IsSplat = false; 5262 bool V2IsSplat = false; 5263 bool HasSSE2 = Subtarget->hasSSE2() || Subtarget->hasAVX(); 5264 bool HasSSE3 = Subtarget->hasSSE3() || Subtarget->hasAVX(); 5265 MachineFunction &MF = DAG.getMachineFunction(); 5266 bool OptForSize = MF.getFunction()->hasFnAttr(Attribute::OptimizeForSize); 5267 5268 if (isZeroShuffle(SVOp)) 5269 return getZeroVector(VT, Subtarget->hasSSE2(), DAG, dl); 5270 5271 // Promote splats to v4f32. 5272 if (SVOp->isSplat()) { 5273 if (isMMX || NumElems < 4) 5274 return Op; 5275 return PromoteSplat(SVOp, DAG); 5276 } 5277 5278 // If the shuffle can be profitably rewritten as a narrower shuffle, then 5279 // do it! 5280 if (VT == MVT::v8i16 || VT == MVT::v16i8) { 5281 SDValue NewOp = RewriteAsNarrowerShuffle(SVOp, DAG, *this, dl); 5282 if (NewOp.getNode()) 5283 return DAG.getNode(ISD::BIT_CONVERT, dl, VT, 5284 LowerVECTOR_SHUFFLE(NewOp, DAG)); 5285 } else if ((VT == MVT::v4i32 || (VT == MVT::v4f32 && Subtarget->hasSSE2()))) { 5286 // FIXME: Figure out a cleaner way to do this. 5287 // Try to make use of movq to zero out the top part. 5288 if (ISD::isBuildVectorAllZeros(V2.getNode())) { 5289 SDValue NewOp = RewriteAsNarrowerShuffle(SVOp, DAG, *this, dl); 5290 if (NewOp.getNode()) { 5291 if (isCommutedMOVL(cast<ShuffleVectorSDNode>(NewOp), true, false)) 5292 return getVZextMovL(VT, NewOp.getValueType(), NewOp.getOperand(0), 5293 DAG, Subtarget, dl); 5294 } 5295 } else if (ISD::isBuildVectorAllZeros(V1.getNode())) { 5296 SDValue NewOp = RewriteAsNarrowerShuffle(SVOp, DAG, *this, dl); 5297 if (NewOp.getNode() && X86::isMOVLMask(cast<ShuffleVectorSDNode>(NewOp))) 5298 return getVZextMovL(VT, NewOp.getValueType(), NewOp.getOperand(1), 5299 DAG, Subtarget, dl); 5300 } 5301 } 5302 5303 // NOTE: isPSHUFDMask can also match both masks below (unpckl_undef and 5304 // unpckh_undef). Only use pshufd if speed is more important than size. 5305 if (OptForSize && X86::isUNPCKL_v_undef_Mask(SVOp)) 5306 if (VT != MVT::v2i64 && VT != MVT::v2f64) 5307 return getTargetShuffleNode(getUNPCKLOpcode(VT), dl, VT, V1, V1, DAG); 5308 if (OptForSize && X86::isUNPCKH_v_undef_Mask(SVOp)) 5309 if (VT != MVT::v2i64 && VT != MVT::v2f64) 5310 return getTargetShuffleNode(getUNPCKHOpcode(VT), dl, VT, V1, V1, DAG); 5311 5312 if (X86::isPSHUFDMask(SVOp)) { 5313 // The actual implementation will match the mask in the if above and then 5314 // during isel it can match several different instructions, not only pshufd 5315 // as its name says, sad but true, emulate the behavior for now... 5316 if (X86::isMOVDDUPMask(SVOp) && ((VT == MVT::v4f32 || VT == MVT::v2i64))) 5317 return getTargetShuffleNode(X86ISD::MOVLHPS, dl, VT, V1, V1, DAG); 5318 5319 unsigned TargetMask = X86::getShuffleSHUFImmediate(SVOp); 5320 5321 if (HasSSE2 && (VT == MVT::v4f32 || VT == MVT::v4i32)) 5322 return getTargetShuffleNode(X86ISD::PSHUFD, dl, VT, V1, TargetMask, DAG); 5323 5324 if (HasSSE2 && (VT == MVT::v2i64 || VT == MVT::v2f64)) 5325 return getTargetShuffleNode(X86ISD::SHUFPD, dl, VT, V1, V1, 5326 TargetMask, DAG); 5327 5328 if (VT == MVT::v4f32) 5329 return getTargetShuffleNode(X86ISD::SHUFPS, dl, VT, V1, V1, 5330 TargetMask, DAG); 5331 } 5332 5333 // Check if this can be converted into a logical shift. 5334 bool isLeft = false; 5335 unsigned ShAmt = 0; 5336 SDValue ShVal; 5337 bool isShift = getSubtarget()->hasSSE2() && 5338 isVectorShift(SVOp, DAG, isLeft, ShVal, ShAmt); 5339 if (isShift && ShVal.hasOneUse()) { 5340 // If the shifted value has multiple uses, it may be cheaper to use 5341 // v_set0 + movlhps or movhlps, etc. 5342 EVT EltVT = VT.getVectorElementType(); 5343 ShAmt *= EltVT.getSizeInBits(); 5344 return getVShift(isLeft, VT, ShVal, ShAmt, DAG, *this, dl); 5345 } 5346 5347 if (X86::isMOVLMask(SVOp)) { 5348 if (V1IsUndef) 5349 return V2; 5350 if (ISD::isBuildVectorAllZeros(V1.getNode())) 5351 return getVZextMovL(VT, VT, V2, DAG, Subtarget, dl); 5352 if (!isMMX && !X86::isMOVLPMask(SVOp)) { 5353 if (HasSSE2 && (VT == MVT::v2i64 || VT == MVT::v2f64)) 5354 return getTargetShuffleNode(X86ISD::MOVSD, dl, VT, V1, V2, DAG); 5355 5356 if (VT == MVT::v4i32 || VT == MVT::v4f32) 5357 return getTargetShuffleNode(X86ISD::MOVSS, dl, VT, V1, V2, DAG); 5358 } 5359 } 5360 5361 // FIXME: fold these into legal mask. 5362 if (!isMMX) { 5363 if (X86::isMOVLHPSMask(SVOp) && !X86::isUNPCKLMask(SVOp)) 5364 return getMOVLowToHigh(Op, dl, DAG, HasSSE2); 5365 5366 if (X86::isMOVHLPSMask(SVOp)) 5367 return getMOVHighToLow(Op, dl, DAG); 5368 5369 if (X86::isMOVSHDUPMask(SVOp) && HasSSE3 && V2IsUndef && NumElems == 4) 5370 return getTargetShuffleNode(X86ISD::MOVSHDUP, dl, VT, V1, DAG); 5371 5372 if (X86::isMOVSLDUPMask(SVOp) && HasSSE3 && V2IsUndef && NumElems == 4) 5373 return getTargetShuffleNode(X86ISD::MOVSLDUP, dl, VT, V1, DAG); 5374 5375 if (X86::isMOVLPMask(SVOp)) 5376 return getMOVLP(Op, dl, DAG, HasSSE2); 5377 } 5378 5379 if (ShouldXformToMOVHLPS(SVOp) || 5380 ShouldXformToMOVLP(V1.getNode(), V2.getNode(), SVOp)) 5381 return CommuteVectorShuffle(SVOp, DAG); 5382 5383 if (isShift) { 5384 // No better options. Use a vshl / vsrl. 5385 EVT EltVT = VT.getVectorElementType(); 5386 ShAmt *= EltVT.getSizeInBits(); 5387 return getVShift(isLeft, VT, ShVal, ShAmt, DAG, *this, dl); 5388 } 5389 5390 bool Commuted = false; 5391 // FIXME: This should also accept a bitcast of a splat? Be careful, not 5392 // 1,1,1,1 -> v8i16 though. 5393 V1IsSplat = isSplatVector(V1.getNode()); 5394 V2IsSplat = isSplatVector(V2.getNode()); 5395 5396 // Canonicalize the splat or undef, if present, to be on the RHS. 5397 if ((V1IsSplat || V1IsUndef) && !(V2IsSplat || V2IsUndef)) { 5398 Op = CommuteVectorShuffle(SVOp, DAG); 5399 SVOp = cast<ShuffleVectorSDNode>(Op); 5400 V1 = SVOp->getOperand(0); 5401 V2 = SVOp->getOperand(1); 5402 std::swap(V1IsSplat, V2IsSplat); 5403 std::swap(V1IsUndef, V2IsUndef); 5404 Commuted = true; 5405 } 5406 5407 if (isCommutedMOVL(SVOp, V2IsSplat, V2IsUndef)) { 5408 // Shuffling low element of v1 into undef, just return v1. 5409 if (V2IsUndef) 5410 return V1; 5411 // If V2 is a splat, the mask may be malformed such as <4,3,3,3>, which 5412 // the instruction selector will not match, so get a canonical MOVL with 5413 // swapped operands to undo the commute. 5414 return getMOVL(DAG, dl, VT, V2, V1); 5415 } 5416 5417 if (X86::isUNPCKL_v_undef_Mask(SVOp) || X86::isUNPCKLMask(SVOp)) 5418 return (isMMX) ? 5419 Op : getTargetShuffleNode(getUNPCKLOpcode(VT), dl, VT, V1, V2, DAG); 5420 5421 if (X86::isUNPCKH_v_undef_Mask(SVOp) || X86::isUNPCKHMask(SVOp)) 5422 return (isMMX) ? 5423 Op : getTargetShuffleNode(getUNPCKHOpcode(VT), dl, VT, V1, V2, DAG); 5424 5425 if (V2IsSplat) { 5426 // Normalize mask so all entries that point to V2 points to its first 5427 // element then try to match unpck{h|l} again. If match, return a 5428 // new vector_shuffle with the corrected mask. 5429 SDValue NewMask = NormalizeMask(SVOp, DAG); 5430 ShuffleVectorSDNode *NSVOp = cast<ShuffleVectorSDNode>(NewMask); 5431 if (NSVOp != SVOp) { 5432 if (X86::isUNPCKLMask(NSVOp, true)) { 5433 return NewMask; 5434 } else if (X86::isUNPCKHMask(NSVOp, true)) { 5435 return NewMask; 5436 } 5437 } 5438 } 5439 5440 if (Commuted) { 5441 // Commute is back and try unpck* again. 5442 // FIXME: this seems wrong. 5443 SDValue NewOp = CommuteVectorShuffle(SVOp, DAG); 5444 ShuffleVectorSDNode *NewSVOp = cast<ShuffleVectorSDNode>(NewOp); 5445 5446 if (X86::isUNPCKL_v_undef_Mask(NewSVOp) || X86::isUNPCKLMask(NewSVOp)) 5447 return (isMMX) ? 5448 NewOp : getTargetShuffleNode(getUNPCKLOpcode(VT), dl, VT, V2, V1, DAG); 5449 5450 if (X86::isUNPCKH_v_undef_Mask(NewSVOp) || X86::isUNPCKHMask(NewSVOp)) 5451 return (isMMX) ? 5452 NewOp : getTargetShuffleNode(getUNPCKHOpcode(VT), dl, VT, V2, V1, DAG); 5453 } 5454 5455 // FIXME: for mmx, bitcast v2i32 to v4i16 for shuffle. 5456 5457 // Normalize the node to match x86 shuffle ops if needed 5458 if (!isMMX && V2.getOpcode() != ISD::UNDEF && isCommutedSHUFP(SVOp)) 5459 return CommuteVectorShuffle(SVOp, DAG); 5460 5461 // The checks below are all present in isShuffleMaskLegal, but they are 5462 // inlined here right now to enable us to directly emit target specific 5463 // nodes, and remove one by one until they don't return Op anymore. 5464 SmallVector<int, 16> M; 5465 SVOp->getMask(M); 5466 5467 // Very little shuffling can be done for 64-bit vectors right now. 5468 if (VT.getSizeInBits() == 64) 5469 return isPALIGNRMask(M, VT, Subtarget->hasSSSE3()) ? Op : SDValue(); 5470 5471 // FIXME: pshufb, blends, shifts. 5472 if (VT.getVectorNumElements() == 2 || 5473 ShuffleVectorSDNode::isSplatMask(&M[0], VT) || 5474 isPALIGNRMask(M, VT, Subtarget->hasSSSE3())) 5475 return Op; 5476 5477 if (isPSHUFHWMask(M, VT)) 5478 return getTargetShuffleNode(X86ISD::PSHUFHW, dl, VT, V1, 5479 X86::getShufflePSHUFHWImmediate(SVOp), 5480 DAG); 5481 5482 if (isPSHUFLWMask(M, VT)) 5483 return getTargetShuffleNode(X86ISD::PSHUFLW, dl, VT, V1, 5484 X86::getShufflePSHUFLWImmediate(SVOp), 5485 DAG); 5486 5487 if (isSHUFPMask(M, VT)) { 5488 unsigned TargetMask = X86::getShuffleSHUFImmediate(SVOp); 5489 if (VT == MVT::v4f32 || VT == MVT::v4i32) 5490 return getTargetShuffleNode(X86ISD::SHUFPS, dl, VT, V1, V2, 5491 TargetMask, DAG); 5492 if (VT == MVT::v2f64 || VT == MVT::v2i64) 5493 return getTargetShuffleNode(X86ISD::SHUFPD, dl, VT, V1, V2, 5494 TargetMask, DAG); 5495 } 5496 5497 // Handle v8i16 specifically since SSE can do byte extraction and insertion. 5498 if (VT == MVT::v8i16) { 5499 SDValue NewOp = LowerVECTOR_SHUFFLEv8i16(Op, DAG); 5500 if (NewOp.getNode()) 5501 return NewOp; 5502 } 5503 5504 if (VT == MVT::v16i8) { 5505 SDValue NewOp = LowerVECTOR_SHUFFLEv16i8(SVOp, DAG, *this); 5506 if (NewOp.getNode()) 5507 return NewOp; 5508 } 5509 5510 // Handle all 4 wide cases with a number of shuffles except for MMX. 5511 if (NumElems == 4 && !isMMX) 5512 return LowerVECTOR_SHUFFLE_4wide(SVOp, DAG); 5513 5514 return SDValue(); 5515 } 5516 5517 SDValue 5518 X86TargetLowering::LowerEXTRACT_VECTOR_ELT_SSE4(SDValue Op, 5519 SelectionDAG &DAG) const { 5520 EVT VT = Op.getValueType(); 5521 DebugLoc dl = Op.getDebugLoc(); 5522 if (VT.getSizeInBits() == 8) { 5523 SDValue Extract = DAG.getNode(X86ISD::PEXTRB, dl, MVT::i32, 5524 Op.getOperand(0), Op.getOperand(1)); 5525 SDValue Assert = DAG.getNode(ISD::AssertZext, dl, MVT::i32, Extract, 5526 DAG.getValueType(VT)); 5527 return DAG.getNode(ISD::TRUNCATE, dl, VT, Assert); 5528 } else if (VT.getSizeInBits() == 16) { 5529 unsigned Idx = cast<ConstantSDNode>(Op.getOperand(1))->getZExtValue(); 5530 // If Idx is 0, it's cheaper to do a move instead of a pextrw. 5531 if (Idx == 0) 5532 return DAG.getNode(ISD::TRUNCATE, dl, MVT::i16, 5533 DAG.getNode(ISD::EXTRACT_VECTOR_ELT, dl, MVT::i32, 5534 DAG.getNode(ISD::BIT_CONVERT, dl, 5535 MVT::v4i32, 5536 Op.getOperand(0)), 5537 Op.getOperand(1))); 5538 SDValue Extract = DAG.getNode(X86ISD::PEXTRW, dl, MVT::i32, 5539 Op.getOperand(0), Op.getOperand(1)); 5540 SDValue Assert = DAG.getNode(ISD::AssertZext, dl, MVT::i32, Extract, 5541 DAG.getValueType(VT)); 5542 return DAG.getNode(ISD::TRUNCATE, dl, VT, Assert); 5543 } else if (VT == MVT::f32) { 5544 // EXTRACTPS outputs to a GPR32 register which will require a movd to copy 5545 // the result back to FR32 register. It's only worth matching if the 5546 // result has a single use which is a store or a bitcast to i32. And in 5547 // the case of a store, it's not worth it if the index is a constant 0, 5548 // because a MOVSSmr can be used instead, which is smaller and faster. 5549 if (!Op.hasOneUse()) 5550 return SDValue(); 5551 SDNode *User = *Op.getNode()->use_begin(); 5552 if ((User->getOpcode() != ISD::STORE || 5553 (isa<ConstantSDNode>(Op.getOperand(1)) && 5554 cast<ConstantSDNode>(Op.getOperand(1))->isNullValue())) && 5555 (User->getOpcode() != ISD::BIT_CONVERT || 5556 User->getValueType(0) != MVT::i32)) 5557 return SDValue(); 5558 SDValue Extract = DAG.getNode(ISD::EXTRACT_VECTOR_ELT, dl, MVT::i32, 5559 DAG.getNode(ISD::BIT_CONVERT, dl, MVT::v4i32, 5560 Op.getOperand(0)), 5561 Op.getOperand(1)); 5562 return DAG.getNode(ISD::BIT_CONVERT, dl, MVT::f32, Extract); 5563 } else if (VT == MVT::i32) { 5564 // ExtractPS works with constant index. 5565 if (isa<ConstantSDNode>(Op.getOperand(1))) 5566 return Op; 5567 } 5568 return SDValue(); 5569 } 5570 5571 5572 SDValue 5573 X86TargetLowering::LowerEXTRACT_VECTOR_ELT(SDValue Op, 5574 SelectionDAG &DAG) const { 5575 if (!isa<ConstantSDNode>(Op.getOperand(1))) 5576 return SDValue(); 5577 5578 if (Subtarget->hasSSE41()) { 5579 SDValue Res = LowerEXTRACT_VECTOR_ELT_SSE4(Op, DAG); 5580 if (Res.getNode()) 5581 return Res; 5582 } 5583 5584 EVT VT = Op.getValueType(); 5585 DebugLoc dl = Op.getDebugLoc(); 5586 // TODO: handle v16i8. 5587 if (VT.getSizeInBits() == 16) { 5588 SDValue Vec = Op.getOperand(0); 5589 unsigned Idx = cast<ConstantSDNode>(Op.getOperand(1))->getZExtValue(); 5590 if (Idx == 0) 5591 return DAG.getNode(ISD::TRUNCATE, dl, MVT::i16, 5592 DAG.getNode(ISD::EXTRACT_VECTOR_ELT, dl, MVT::i32, 5593 DAG.getNode(ISD::BIT_CONVERT, dl, 5594 MVT::v4i32, Vec), 5595 Op.getOperand(1))); 5596 // Transform it so it match pextrw which produces a 32-bit result. 5597 EVT EltVT = MVT::i32; 5598 SDValue Extract = DAG.getNode(X86ISD::PEXTRW, dl, EltVT, 5599 Op.getOperand(0), Op.getOperand(1)); 5600 SDValue Assert = DAG.getNode(ISD::AssertZext, dl, EltVT, Extract, 5601 DAG.getValueType(VT)); 5602 return DAG.getNode(ISD::TRUNCATE, dl, VT, Assert); 5603 } else if (VT.getSizeInBits() == 32) { 5604 unsigned Idx = cast<ConstantSDNode>(Op.getOperand(1))->getZExtValue(); 5605 if (Idx == 0) 5606 return Op; 5607 5608 // SHUFPS the element to the lowest double word, then movss. 5609 int Mask[4] = { Idx, -1, -1, -1 }; 5610 EVT VVT = Op.getOperand(0).getValueType(); 5611 SDValue Vec = DAG.getVectorShuffle(VVT, dl, Op.getOperand(0), 5612 DAG.getUNDEF(VVT), Mask); 5613 return DAG.getNode(ISD::EXTRACT_VECTOR_ELT, dl, VT, Vec, 5614 DAG.getIntPtrConstant(0)); 5615 } else if (VT.getSizeInBits() == 64) { 5616 // FIXME: .td only matches this for <2 x f64>, not <2 x i64> on 32b 5617 // FIXME: seems like this should be unnecessary if mov{h,l}pd were taught 5618 // to match extract_elt for f64. 5619 unsigned Idx = cast<ConstantSDNode>(Op.getOperand(1))->getZExtValue(); 5620 if (Idx == 0) 5621 return Op; 5622 5623 // UNPCKHPD the element to the lowest double word, then movsd. 5624 // Note if the lower 64 bits of the result of the UNPCKHPD is then stored 5625 // to a f64mem, the whole operation is folded into a single MOVHPDmr. 5626 int Mask[2] = { 1, -1 }; 5627 EVT VVT = Op.getOperand(0).getValueType(); 5628 SDValue Vec = DAG.getVectorShuffle(VVT, dl, Op.getOperand(0), 5629 DAG.getUNDEF(VVT), Mask); 5630 return DAG.getNode(ISD::EXTRACT_VECTOR_ELT, dl, VT, Vec, 5631 DAG.getIntPtrConstant(0)); 5632 } 5633 5634 return SDValue(); 5635 } 5636 5637 SDValue 5638 X86TargetLowering::LowerINSERT_VECTOR_ELT_SSE4(SDValue Op, 5639 SelectionDAG &DAG) const { 5640 EVT VT = Op.getValueType(); 5641 EVT EltVT = VT.getVectorElementType(); 5642 DebugLoc dl = Op.getDebugLoc(); 5643 5644 SDValue N0 = Op.getOperand(0); 5645 SDValue N1 = Op.getOperand(1); 5646 SDValue N2 = Op.getOperand(2); 5647 5648 if ((EltVT.getSizeInBits() == 8 || EltVT.getSizeInBits() == 16) && 5649 isa<ConstantSDNode>(N2)) { 5650 unsigned Opc; 5651 if (VT == MVT::v8i16) 5652 Opc = X86ISD::PINSRW; 5653 else if (VT == MVT::v4i16) 5654 Opc = X86ISD::MMX_PINSRW; 5655 else if (VT == MVT::v16i8) 5656 Opc = X86ISD::PINSRB; 5657 else 5658 Opc = X86ISD::PINSRB; 5659 5660 // Transform it so it match pinsr{b,w} which expects a GR32 as its second 5661 // argument. 5662 if (N1.getValueType() != MVT::i32) 5663 N1 = DAG.getNode(ISD::ANY_EXTEND, dl, MVT::i32, N1); 5664 if (N2.getValueType() != MVT::i32) 5665 N2 = DAG.getIntPtrConstant(cast<ConstantSDNode>(N2)->getZExtValue()); 5666 return DAG.getNode(Opc, dl, VT, N0, N1, N2); 5667 } else if (EltVT == MVT::f32 && isa<ConstantSDNode>(N2)) { 5668 // Bits [7:6] of the constant are the source select. This will always be 5669 // zero here. The DAG Combiner may combine an extract_elt index into these 5670 // bits. For example (insert (extract, 3), 2) could be matched by putting 5671 // the '3' into bits [7:6] of X86ISD::INSERTPS. 5672 // Bits [5:4] of the constant are the destination select. This is the 5673 // value of the incoming immediate. 5674 // Bits [3:0] of the constant are the zero mask. The DAG Combiner may 5675 // combine either bitwise AND or insert of float 0.0 to set these bits. 5676 N2 = DAG.getIntPtrConstant(cast<ConstantSDNode>(N2)->getZExtValue() << 4); 5677 // Create this as a scalar to vector.. 5678 N1 = DAG.getNode(ISD::SCALAR_TO_VECTOR, dl, MVT::v4f32, N1); 5679 return DAG.getNode(X86ISD::INSERTPS, dl, VT, N0, N1, N2); 5680 } else if (EltVT == MVT::i32 && isa<ConstantSDNode>(N2)) { 5681 // PINSR* works with constant index. 5682 return Op; 5683 } 5684 return SDValue(); 5685 } 5686 5687 SDValue 5688 X86TargetLowering::LowerINSERT_VECTOR_ELT(SDValue Op, SelectionDAG &DAG) const { 5689 EVT VT = Op.getValueType(); 5690 EVT EltVT = VT.getVectorElementType(); 5691 5692 if (Subtarget->hasSSE41()) 5693 return LowerINSERT_VECTOR_ELT_SSE4(Op, DAG); 5694 5695 if (EltVT == MVT::i8) 5696 return SDValue(); 5697 5698 DebugLoc dl = Op.getDebugLoc(); 5699 SDValue N0 = Op.getOperand(0); 5700 SDValue N1 = Op.getOperand(1); 5701 SDValue N2 = Op.getOperand(2); 5702 5703 if (EltVT.getSizeInBits() == 16 && isa<ConstantSDNode>(N2)) { 5704 // Transform it so it match pinsrw which expects a 16-bit value in a GR32 5705 // as its second argument. 5706 if (N1.getValueType() != MVT::i32) 5707 N1 = DAG.getNode(ISD::ANY_EXTEND, dl, MVT::i32, N1); 5708 if (N2.getValueType() != MVT::i32) 5709 N2 = DAG.getIntPtrConstant(cast<ConstantSDNode>(N2)->getZExtValue()); 5710 return DAG.getNode(VT == MVT::v8i16 ? X86ISD::PINSRW : X86ISD::MMX_PINSRW, 5711 dl, VT, N0, N1, N2); 5712 } 5713 return SDValue(); 5714 } 5715 5716 SDValue 5717 X86TargetLowering::LowerSCALAR_TO_VECTOR(SDValue Op, SelectionDAG &DAG) const { 5718 DebugLoc dl = Op.getDebugLoc(); 5719 5720 if (Op.getValueType() == MVT::v1i64 && 5721 Op.getOperand(0).getValueType() == MVT::i64) 5722 return DAG.getNode(ISD::SCALAR_TO_VECTOR, dl, MVT::v1i64, Op.getOperand(0)); 5723 5724 SDValue AnyExt = DAG.getNode(ISD::ANY_EXTEND, dl, MVT::i32, Op.getOperand(0)); 5725 EVT VT = MVT::v2i32; 5726 switch (Op.getValueType().getSimpleVT().SimpleTy) { 5727 default: break; 5728 case MVT::v16i8: 5729 case MVT::v8i16: 5730 VT = MVT::v4i32; 5731 break; 5732 } 5733 return DAG.getNode(ISD::BIT_CONVERT, dl, Op.getValueType(), 5734 DAG.getNode(ISD::SCALAR_TO_VECTOR, dl, VT, AnyExt)); 5735 } 5736 5737 // ConstantPool, JumpTable, GlobalAddress, and ExternalSymbol are lowered as 5738 // their target countpart wrapped in the X86ISD::Wrapper node. Suppose N is 5739 // one of the above mentioned nodes. It has to be wrapped because otherwise 5740 // Select(N) returns N. So the raw TargetGlobalAddress nodes, etc. can only 5741 // be used to form addressing mode. These wrapped nodes will be selected 5742 // into MOV32ri. 5743 SDValue 5744 X86TargetLowering::LowerConstantPool(SDValue Op, SelectionDAG &DAG) const { 5745 ConstantPoolSDNode *CP = cast<ConstantPoolSDNode>(Op); 5746 5747 // In PIC mode (unless we're in RIPRel PIC mode) we add an offset to the 5748 // global base reg. 5749 unsigned char OpFlag = 0; 5750 unsigned WrapperKind = X86ISD::Wrapper; 5751 CodeModel::Model M = getTargetMachine().getCodeModel(); 5752 5753 if (Subtarget->isPICStyleRIPRel() && 5754 (M == CodeModel::Small || M == CodeModel::Kernel)) 5755 WrapperKind = X86ISD::WrapperRIP; 5756 else if (Subtarget->isPICStyleGOT()) 5757 OpFlag = X86II::MO_GOTOFF; 5758 else if (Subtarget->isPICStyleStubPIC()) 5759 OpFlag = X86II::MO_PIC_BASE_OFFSET; 5760 5761 SDValue Result = DAG.getTargetConstantPool(CP->getConstVal(), getPointerTy(), 5762 CP->getAlignment(), 5763 CP->getOffset(), OpFlag); 5764 DebugLoc DL = CP->getDebugLoc(); 5765 Result = DAG.getNode(WrapperKind, DL, getPointerTy(), Result); 5766 // With PIC, the address is actually $g + Offset. 5767 if (OpFlag) { 5768 Result = DAG.getNode(ISD::ADD, DL, getPointerTy(), 5769 DAG.getNode(X86ISD::GlobalBaseReg, 5770 DebugLoc(), getPointerTy()), 5771 Result); 5772 } 5773 5774 return Result; 5775 } 5776 5777 SDValue X86TargetLowering::LowerJumpTable(SDValue Op, SelectionDAG &DAG) const { 5778 JumpTableSDNode *JT = cast<JumpTableSDNode>(Op); 5779 5780 // In PIC mode (unless we're in RIPRel PIC mode) we add an offset to the 5781 // global base reg. 5782 unsigned char OpFlag = 0; 5783 unsigned WrapperKind = X86ISD::Wrapper; 5784 CodeModel::Model M = getTargetMachine().getCodeModel(); 5785 5786 if (Subtarget->isPICStyleRIPRel() && 5787 (M == CodeModel::Small || M == CodeModel::Kernel)) 5788 WrapperKind = X86ISD::WrapperRIP; 5789 else if (Subtarget->isPICStyleGOT()) 5790 OpFlag = X86II::MO_GOTOFF; 5791 else if (Subtarget->isPICStyleStubPIC()) 5792 OpFlag = X86II::MO_PIC_BASE_OFFSET; 5793 5794 SDValue Result = DAG.getTargetJumpTable(JT->getIndex(), getPointerTy(), 5795 OpFlag); 5796 DebugLoc DL = JT->getDebugLoc(); 5797 Result = DAG.getNode(WrapperKind, DL, getPointerTy(), Result); 5798 5799 // With PIC, the address is actually $g + Offset. 5800 if (OpFlag) { 5801 Result = DAG.getNode(ISD::ADD, DL, getPointerTy(), 5802 DAG.getNode(X86ISD::GlobalBaseReg, 5803 DebugLoc(), getPointerTy()), 5804 Result); 5805 } 5806 5807 return Result; 5808 } 5809 5810 SDValue 5811 X86TargetLowering::LowerExternalSymbol(SDValue Op, SelectionDAG &DAG) const { 5812 const char *Sym = cast<ExternalSymbolSDNode>(Op)->getSymbol(); 5813 5814 // In PIC mode (unless we're in RIPRel PIC mode) we add an offset to the 5815 // global base reg. 5816 unsigned char OpFlag = 0; 5817 unsigned WrapperKind = X86ISD::Wrapper; 5818 CodeModel::Model M = getTargetMachine().getCodeModel(); 5819 5820 if (Subtarget->isPICStyleRIPRel() && 5821 (M == CodeModel::Small || M == CodeModel::Kernel)) 5822 WrapperKind = X86ISD::WrapperRIP; 5823 else if (Subtarget->isPICStyleGOT()) 5824 OpFlag = X86II::MO_GOTOFF; 5825 else if (Subtarget->isPICStyleStubPIC()) 5826 OpFlag = X86II::MO_PIC_BASE_OFFSET; 5827 5828 SDValue Result = DAG.getTargetExternalSymbol(Sym, getPointerTy(), OpFlag); 5829 5830 DebugLoc DL = Op.getDebugLoc(); 5831 Result = DAG.getNode(WrapperKind, DL, getPointerTy(), Result); 5832 5833 5834 // With PIC, the address is actually $g + Offset. 5835 if (getTargetMachine().getRelocationModel() == Reloc::PIC_ && 5836 !Subtarget->is64Bit()) { 5837 Result = DAG.getNode(ISD::ADD, DL, getPointerTy(), 5838 DAG.getNode(X86ISD::GlobalBaseReg, 5839 DebugLoc(), getPointerTy()), 5840 Result); 5841 } 5842 5843 return Result; 5844 } 5845 5846 SDValue 5847 X86TargetLowering::LowerBlockAddress(SDValue Op, SelectionDAG &DAG) const { 5848 // Create the TargetBlockAddressAddress node. 5849 unsigned char OpFlags = 5850 Subtarget->ClassifyBlockAddressReference(); 5851 CodeModel::Model M = getTargetMachine().getCodeModel(); 5852 const BlockAddress *BA = cast<BlockAddressSDNode>(Op)->getBlockAddress(); 5853 DebugLoc dl = Op.getDebugLoc(); 5854 SDValue Result = DAG.getBlockAddress(BA, getPointerTy(), 5855 /*isTarget=*/true, OpFlags); 5856 5857 if (Subtarget->isPICStyleRIPRel() && 5858 (M == CodeModel::Small || M == CodeModel::Kernel)) 5859 Result = DAG.getNode(X86ISD::WrapperRIP, dl, getPointerTy(), Result); 5860 else 5861 Result = DAG.getNode(X86ISD::Wrapper, dl, getPointerTy(), Result); 5862 5863 // With PIC, the address is actually $g + Offset. 5864 if (isGlobalRelativeToPICBase(OpFlags)) { 5865 Result = DAG.getNode(ISD::ADD, dl, getPointerTy(), 5866 DAG.getNode(X86ISD::GlobalBaseReg, dl, getPointerTy()), 5867 Result); 5868 } 5869 5870 return Result; 5871 } 5872 5873 SDValue 5874 X86TargetLowering::LowerGlobalAddress(const GlobalValue *GV, DebugLoc dl, 5875 int64_t Offset, 5876 SelectionDAG &DAG) const { 5877 // Create the TargetGlobalAddress node, folding in the constant 5878 // offset if it is legal. 5879 unsigned char OpFlags = 5880 Subtarget->ClassifyGlobalReference(GV, getTargetMachine()); 5881 CodeModel::Model M = getTargetMachine().getCodeModel(); 5882 SDValue Result; 5883 if (OpFlags == X86II::MO_NO_FLAG && 5884 X86::isOffsetSuitableForCodeModel(Offset, M)) { 5885 // A direct static reference to a global. 5886 Result = DAG.getTargetGlobalAddress(GV, dl, getPointerTy(), Offset); 5887 Offset = 0; 5888 } else { 5889 Result = DAG.getTargetGlobalAddress(GV, dl, getPointerTy(), 0, OpFlags); 5890 } 5891 5892 if (Subtarget->isPICStyleRIPRel() && 5893 (M == CodeModel::Small || M == CodeModel::Kernel)) 5894 Result = DAG.getNode(X86ISD::WrapperRIP, dl, getPointerTy(), Result); 5895 else 5896 Result = DAG.getNode(X86ISD::Wrapper, dl, getPointerTy(), Result); 5897 5898 // With PIC, the address is actually $g + Offset. 5899 if (isGlobalRelativeToPICBase(OpFlags)) { 5900 Result = DAG.getNode(ISD::ADD, dl, getPointerTy(), 5901 DAG.getNode(X86ISD::GlobalBaseReg, dl, getPointerTy()), 5902 Result); 5903 } 5904 5905 // For globals that require a load from a stub to get the address, emit the 5906 // load. 5907 if (isGlobalStubReference(OpFlags)) 5908 Result = DAG.getLoad(getPointerTy(), dl, DAG.getEntryNode(), Result, 5909 PseudoSourceValue::getGOT(), 0, false, false, 0); 5910 5911 // If there was a non-zero offset that we didn't fold, create an explicit 5912 // addition for it. 5913 if (Offset != 0) 5914 Result = DAG.getNode(ISD::ADD, dl, getPointerTy(), Result, 5915 DAG.getConstant(Offset, getPointerTy())); 5916 5917 return Result; 5918 } 5919 5920 SDValue 5921 X86TargetLowering::LowerGlobalAddress(SDValue Op, SelectionDAG &DAG) const { 5922 const GlobalValue *GV = cast<GlobalAddressSDNode>(Op)->getGlobal(); 5923 int64_t Offset = cast<GlobalAddressSDNode>(Op)->getOffset(); 5924 return LowerGlobalAddress(GV, Op.getDebugLoc(), Offset, DAG); 5925 } 5926 5927 static SDValue 5928 GetTLSADDR(SelectionDAG &DAG, SDValue Chain, GlobalAddressSDNode *GA, 5929 SDValue *InFlag, const EVT PtrVT, unsigned ReturnReg, 5930 unsigned char OperandFlags) { 5931 MachineFrameInfo *MFI = DAG.getMachineFunction().getFrameInfo(); 5932 SDVTList NodeTys = DAG.getVTList(MVT::Other, MVT::Flag); 5933 DebugLoc dl = GA->getDebugLoc(); 5934 SDValue TGA = DAG.getTargetGlobalAddress(GA->getGlobal(), dl, 5935 GA->getValueType(0), 5936 GA->getOffset(), 5937 OperandFlags); 5938 if (InFlag) { 5939 SDValue Ops[] = { Chain, TGA, *InFlag }; 5940 Chain = DAG.getNode(X86ISD::TLSADDR, dl, NodeTys, Ops, 3); 5941 } else { 5942 SDValue Ops[] = { Chain, TGA }; 5943 Chain = DAG.getNode(X86ISD::TLSADDR, dl, NodeTys, Ops, 2); 5944 } 5945 5946 // TLSADDR will be codegen'ed as call. Inform MFI that function has calls. 5947 MFI->setAdjustsStack(true); 5948 5949 SDValue Flag = Chain.getValue(1); 5950 return DAG.getCopyFromReg(Chain, dl, ReturnReg, PtrVT, Flag); 5951 } 5952 5953 // Lower ISD::GlobalTLSAddress using the "general dynamic" model, 32 bit 5954 static SDValue 5955 LowerToTLSGeneralDynamicModel32(GlobalAddressSDNode *GA, SelectionDAG &DAG, 5956 const EVT PtrVT) { 5957 SDValue InFlag; 5958 DebugLoc dl = GA->getDebugLoc(); // ? function entry point might be better 5959 SDValue Chain = DAG.getCopyToReg(DAG.getEntryNode(), dl, X86::EBX, 5960 DAG.getNode(X86ISD::GlobalBaseReg, 5961 DebugLoc(), PtrVT), InFlag); 5962 InFlag = Chain.getValue(1); 5963 5964 return GetTLSADDR(DAG, Chain, GA, &InFlag, PtrVT, X86::EAX, X86II::MO_TLSGD); 5965 } 5966 5967 // Lower ISD::GlobalTLSAddress using the "general dynamic" model, 64 bit 5968 static SDValue 5969 LowerToTLSGeneralDynamicModel64(GlobalAddressSDNode *GA, SelectionDAG &DAG, 5970 const EVT PtrVT) { 5971 return GetTLSADDR(DAG, DAG.getEntryNode(), GA, NULL, PtrVT, 5972 X86::RAX, X86II::MO_TLSGD); 5973 } 5974 5975 // Lower ISD::GlobalTLSAddress using the "initial exec" (for no-pic) or 5976 // "local exec" model. 5977 static SDValue LowerToTLSExecModel(GlobalAddressSDNode *GA, SelectionDAG &DAG, 5978 const EVT PtrVT, TLSModel::Model model, 5979 bool is64Bit) { 5980 DebugLoc dl = GA->getDebugLoc(); 5981 // Get the Thread Pointer 5982 SDValue Base = DAG.getNode(X86ISD::SegmentBaseAddress, 5983 DebugLoc(), PtrVT, 5984 DAG.getRegister(is64Bit? X86::FS : X86::GS, 5985 MVT::i32)); 5986 5987 SDValue ThreadPointer = DAG.getLoad(PtrVT, dl, DAG.getEntryNode(), Base, 5988 NULL, 0, false, false, 0); 5989 5990 unsigned char OperandFlags = 0; 5991 // Most TLS accesses are not RIP relative, even on x86-64. One exception is 5992 // initialexec. 5993 unsigned WrapperKind = X86ISD::Wrapper; 5994 if (model == TLSModel::LocalExec) { 5995 OperandFlags = is64Bit ? X86II::MO_TPOFF : X86II::MO_NTPOFF; 5996 } else if (is64Bit) { 5997 assert(model == TLSModel::InitialExec); 5998 OperandFlags = X86II::MO_GOTTPOFF; 5999 WrapperKind = X86ISD::WrapperRIP; 6000 } else { 6001 assert(model == TLSModel::InitialExec); 6002 OperandFlags = X86II::MO_INDNTPOFF; 6003 } 6004 6005 // emit "addl x@ntpoff,%eax" (local exec) or "addl x@indntpoff,%eax" (initial 6006 // exec) 6007 SDValue TGA = DAG.getTargetGlobalAddress(GA->getGlobal(), dl, 6008 GA->getValueType(0), 6009 GA->getOffset(), OperandFlags); 6010 SDValue Offset = DAG.getNode(WrapperKind, dl, PtrVT, TGA); 6011 6012 if (model == TLSModel::InitialExec) 6013 Offset = DAG.getLoad(PtrVT, dl, DAG.getEntryNode(), Offset, 6014 PseudoSourceValue::getGOT(), 0, false, false, 0); 6015 6016 // The address of the thread local variable is the add of the thread 6017 // pointer with the offset of the variable. 6018 return DAG.getNode(ISD::ADD, dl, PtrVT, ThreadPointer, Offset); 6019 } 6020 6021 SDValue 6022 X86TargetLowering::LowerGlobalTLSAddress(SDValue Op, SelectionDAG &DAG) const { 6023 6024 GlobalAddressSDNode *GA = cast<GlobalAddressSDNode>(Op); 6025 const GlobalValue *GV = GA->getGlobal(); 6026 6027 if (Subtarget->isTargetELF()) { 6028 // TODO: implement the "local dynamic" model 6029 // TODO: implement the "initial exec"model for pic executables 6030 6031 // If GV is an alias then use the aliasee for determining 6032 // thread-localness. 6033 if (const GlobalAlias *GA = dyn_cast<GlobalAlias>(GV)) 6034 GV = GA->resolveAliasedGlobal(false); 6035 6036 TLSModel::Model model 6037 = getTLSModel(GV, getTargetMachine().getRelocationModel()); 6038 6039 switch (model) { 6040 case TLSModel::GeneralDynamic: 6041 case TLSModel::LocalDynamic: // not implemented 6042 if (Subtarget->is64Bit()) 6043 return LowerToTLSGeneralDynamicModel64(GA, DAG, getPointerTy()); 6044 return LowerToTLSGeneralDynamicModel32(GA, DAG, getPointerTy()); 6045 6046 case TLSModel::InitialExec: 6047 case TLSModel::LocalExec: 6048 return LowerToTLSExecModel(GA, DAG, getPointerTy(), model, 6049 Subtarget->is64Bit()); 6050 } 6051 } else if (Subtarget->isTargetDarwin()) { 6052 // Darwin only has one model of TLS. Lower to that. 6053 unsigned char OpFlag = 0; 6054 unsigned WrapperKind = Subtarget->isPICStyleRIPRel() ? 6055 X86ISD::WrapperRIP : X86ISD::Wrapper; 6056 6057 // In PIC mode (unless we're in RIPRel PIC mode) we add an offset to the 6058 // global base reg. 6059 bool PIC32 = (getTargetMachine().getRelocationModel() == Reloc::PIC_) && 6060 !Subtarget->is64Bit(); 6061 if (PIC32) 6062 OpFlag = X86II::MO_TLVP_PIC_BASE; 6063 else 6064 OpFlag = X86II::MO_TLVP; 6065 DebugLoc DL = Op.getDebugLoc(); 6066 SDValue Result = DAG.getTargetGlobalAddress(GA->getGlobal(), DL, 6067 getPointerTy(), 6068 GA->getOffset(), OpFlag); 6069 SDValue Offset = DAG.getNode(WrapperKind, DL, getPointerTy(), Result); 6070 6071 // With PIC32, the address is actually $g + Offset. 6072 if (PIC32) 6073 Offset = DAG.getNode(ISD::ADD, DL, getPointerTy(), 6074 DAG.getNode(X86ISD::GlobalBaseReg, 6075 DebugLoc(), getPointerTy()), 6076 Offset); 6077 6078 // Lowering the machine isd will make sure everything is in the right 6079 // location. 6080 SDValue Args[] = { Offset }; 6081 SDValue Chain = DAG.getNode(X86ISD::TLSCALL, DL, MVT::Other, Args, 1); 6082 6083 // TLSCALL will be codegen'ed as call. Inform MFI that function has calls. 6084 MachineFrameInfo *MFI = DAG.getMachineFunction().getFrameInfo(); 6085 MFI->setAdjustsStack(true); 6086 6087 // And our return value (tls address) is in the standard call return value 6088 // location. 6089 unsigned Reg = Subtarget->is64Bit() ? X86::RAX : X86::EAX; 6090 return DAG.getCopyFromReg(Chain, DL, Reg, getPointerTy()); 6091 } 6092 6093 assert(false && 6094 "TLS not implemented for this target."); 6095 6096 llvm_unreachable("Unreachable"); 6097 return SDValue(); 6098 } 6099 6100 6101 /// LowerShift - Lower SRA_PARTS and friends, which return two i32 values and 6102 /// take a 2 x i32 value to shift plus a shift amount. 6103 SDValue X86TargetLowering::LowerShift(SDValue Op, SelectionDAG &DAG) const { 6104 assert(Op.getNumOperands() == 3 && "Not a double-shift!"); 6105 EVT VT = Op.getValueType(); 6106 unsigned VTBits = VT.getSizeInBits(); 6107 DebugLoc dl = Op.getDebugLoc(); 6108 bool isSRA = Op.getOpcode() == ISD::SRA_PARTS; 6109 SDValue ShOpLo = Op.getOperand(0); 6110 SDValue ShOpHi = Op.getOperand(1); 6111 SDValue ShAmt = Op.getOperand(2); 6112 SDValue Tmp1 = isSRA ? DAG.getNode(ISD::SRA, dl, VT, ShOpHi, 6113 DAG.getConstant(VTBits - 1, MVT::i8)) 6114 : DAG.getConstant(0, VT); 6115 6116 SDValue Tmp2, Tmp3; 6117 if (Op.getOpcode() == ISD::SHL_PARTS) { 6118 Tmp2 = DAG.getNode(X86ISD::SHLD, dl, VT, ShOpHi, ShOpLo, ShAmt); 6119 Tmp3 = DAG.getNode(ISD::SHL, dl, VT, ShOpLo, ShAmt); 6120 } else { 6121 Tmp2 = DAG.getNode(X86ISD::SHRD, dl, VT, ShOpLo, ShOpHi, ShAmt); 6122 Tmp3 = DAG.getNode(isSRA ? ISD::SRA : ISD::SRL, dl, VT, ShOpHi, ShAmt); 6123 } 6124 6125 SDValue AndNode = DAG.getNode(ISD::AND, dl, MVT::i8, ShAmt, 6126 DAG.getConstant(VTBits, MVT::i8)); 6127 SDValue Cond = DAG.getNode(X86ISD::CMP, dl, MVT::i32, 6128 AndNode, DAG.getConstant(0, MVT::i8)); 6129 6130 SDValue Hi, Lo; 6131 SDValue CC = DAG.getConstant(X86::COND_NE, MVT::i8); 6132 SDValue Ops0[4] = { Tmp2, Tmp3, CC, Cond }; 6133 SDValue Ops1[4] = { Tmp3, Tmp1, CC, Cond }; 6134 6135 if (Op.getOpcode() == ISD::SHL_PARTS) { 6136 Hi = DAG.getNode(X86ISD::CMOV, dl, VT, Ops0, 4); 6137 Lo = DAG.getNode(X86ISD::CMOV, dl, VT, Ops1, 4); 6138 } else { 6139 Lo = DAG.getNode(X86ISD::CMOV, dl, VT, Ops0, 4); 6140 Hi = DAG.getNode(X86ISD::CMOV, dl, VT, Ops1, 4); 6141 } 6142 6143 SDValue Ops[2] = { Lo, Hi }; 6144 return DAG.getMergeValues(Ops, 2, dl); 6145 } 6146 6147 SDValue X86TargetLowering::LowerSINT_TO_FP(SDValue Op, 6148 SelectionDAG &DAG) const { 6149 EVT SrcVT = Op.getOperand(0).getValueType(); 6150 6151 if (SrcVT.isVector()) { 6152 if (SrcVT == MVT::v2i32 && Op.getValueType() == MVT::v2f64) { 6153 return Op; 6154 } 6155 return SDValue(); 6156 } 6157 6158 assert(SrcVT.getSimpleVT() <= MVT::i64 && SrcVT.getSimpleVT() >= MVT::i16 && 6159 "Unknown SINT_TO_FP to lower!"); 6160 6161 // These are really Legal; return the operand so the caller accepts it as 6162 // Legal. 6163 if (SrcVT == MVT::i32 && isScalarFPTypeInSSEReg(Op.getValueType())) 6164 return Op; 6165 if (SrcVT == MVT::i64 && isScalarFPTypeInSSEReg(Op.getValueType()) && 6166 Subtarget->is64Bit()) { 6167 return Op; 6168 } 6169 6170 DebugLoc dl = Op.getDebugLoc(); 6171 unsigned Size = SrcVT.getSizeInBits()/8; 6172 MachineFunction &MF = DAG.getMachineFunction(); 6173 int SSFI = MF.getFrameInfo()->CreateStackObject(Size, Size, false); 6174 SDValue StackSlot = DAG.getFrameIndex(SSFI, getPointerTy()); 6175 SDValue Chain = DAG.getStore(DAG.getEntryNode(), dl, Op.getOperand(0), 6176 StackSlot, 6177 PseudoSourceValue::getFixedStack(SSFI), 0, 6178 false, false, 0); 6179 return BuildFILD(Op, SrcVT, Chain, StackSlot, DAG); 6180 } 6181 6182 SDValue X86TargetLowering::BuildFILD(SDValue Op, EVT SrcVT, SDValue Chain, 6183 SDValue StackSlot, 6184 SelectionDAG &DAG) const { 6185 // Build the FILD 6186 DebugLoc dl = Op.getDebugLoc(); 6187 SDVTList Tys; 6188 bool useSSE = isScalarFPTypeInSSEReg(Op.getValueType()); 6189 if (useSSE) 6190 Tys = DAG.getVTList(MVT::f64, MVT::Other, MVT::Flag); 6191 else 6192 Tys = DAG.getVTList(Op.getValueType(), MVT::Other); 6193 SDValue Ops[] = { Chain, StackSlot, DAG.getValueType(SrcVT) }; 6194 SDValue Result = DAG.getNode(useSSE ? X86ISD::FILD_FLAG : X86ISD::FILD, dl, 6195 Tys, Ops, array_lengthof(Ops)); 6196 6197 if (useSSE) { 6198 Chain = Result.getValue(1); 6199 SDValue InFlag = Result.getValue(2); 6200 6201 // FIXME: Currently the FST is flagged to the FILD_FLAG. This 6202 // shouldn't be necessary except that RFP cannot be live across 6203 // multiple blocks. When stackifier is fixed, they can be uncoupled. 6204 MachineFunction &MF = DAG.getMachineFunction(); 6205 int SSFI = MF.getFrameInfo()->CreateStackObject(8, 8, false); 6206 SDValue StackSlot = DAG.getFrameIndex(SSFI, getPointerTy()); 6207 Tys = DAG.getVTList(MVT::Other); 6208 SDValue Ops[] = { 6209 Chain, Result, StackSlot, DAG.getValueType(Op.getValueType()), InFlag 6210 }; 6211 Chain = DAG.getNode(X86ISD::FST, dl, Tys, Ops, array_lengthof(Ops)); 6212 Result = DAG.getLoad(Op.getValueType(), dl, Chain, StackSlot, 6213 PseudoSourceValue::getFixedStack(SSFI), 0, 6214 false, false, 0); 6215 } 6216 6217 return Result; 6218 } 6219 6220 // LowerUINT_TO_FP_i64 - 64-bit unsigned integer to double expansion. 6221 SDValue X86TargetLowering::LowerUINT_TO_FP_i64(SDValue Op, 6222 SelectionDAG &DAG) const { 6223 // This algorithm is not obvious. Here it is in C code, more or less: 6224 /* 6225 double uint64_to_double( uint32_t hi, uint32_t lo ) { 6226 static const __m128i exp = { 0x4330000045300000ULL, 0 }; 6227 static const __m128d bias = { 0x1.0p84, 0x1.0p52 }; 6228 6229 // Copy ints to xmm registers. 6230 __m128i xh = _mm_cvtsi32_si128( hi ); 6231 __m128i xl = _mm_cvtsi32_si128( lo ); 6232 6233 // Combine into low half of a single xmm register. 6234 __m128i x = _mm_unpacklo_epi32( xh, xl ); 6235 __m128d d; 6236 double sd; 6237 6238 // Merge in appropriate exponents to give the integer bits the right 6239 // magnitude. 6240 x = _mm_unpacklo_epi32( x, exp ); 6241 6242 // Subtract away the biases to deal with the IEEE-754 double precision 6243 // implicit 1. 6244 d = _mm_sub_pd( (__m128d) x, bias ); 6245 6246 // All conversions up to here are exact. The correctly rounded result is 6247 // calculated using the current rounding mode using the following 6248 // horizontal add. 6249 d = _mm_add_sd( d, _mm_unpackhi_pd( d, d ) ); 6250 _mm_store_sd( &sd, d ); // Because we are returning doubles in XMM, this 6251 // store doesn't really need to be here (except 6252 // maybe to zero the other double) 6253 return sd; 6254 } 6255 */ 6256 6257 DebugLoc dl = Op.getDebugLoc(); 6258 LLVMContext *Context = DAG.getContext(); 6259 6260 // Build some magic constants. 6261 std::vector<Constant*> CV0; 6262 CV0.push_back(ConstantInt::get(*Context, APInt(32, 0x45300000))); 6263 CV0.push_back(ConstantInt::get(*Context, APInt(32, 0x43300000))); 6264 CV0.push_back(ConstantInt::get(*Context, APInt(32, 0))); 6265 CV0.push_back(ConstantInt::get(*Context, APInt(32, 0))); 6266 Constant *C0 = ConstantVector::get(CV0); 6267 SDValue CPIdx0 = DAG.getConstantPool(C0, getPointerTy(), 16); 6268 6269 std::vector<Constant*> CV1; 6270 CV1.push_back( 6271 ConstantFP::get(*Context, APFloat(APInt(64, 0x4530000000000000ULL)))); 6272 CV1.push_back( 6273 ConstantFP::get(*Context, APFloat(APInt(64, 0x4330000000000000ULL)))); 6274 Constant *C1 = ConstantVector::get(CV1); 6275 SDValue CPIdx1 = DAG.getConstantPool(C1, getPointerTy(), 16); 6276 6277 SDValue XR1 = DAG.getNode(ISD::SCALAR_TO_VECTOR, dl, MVT::v4i32, 6278 DAG.getNode(ISD::EXTRACT_ELEMENT, dl, MVT::i32, 6279 Op.getOperand(0), 6280 DAG.getIntPtrConstant(1))); 6281 SDValue XR2 = DAG.getNode(ISD::SCALAR_TO_VECTOR, dl, MVT::v4i32, 6282 DAG.getNode(ISD::EXTRACT_ELEMENT, dl, MVT::i32, 6283 Op.getOperand(0), 6284 DAG.getIntPtrConstant(0))); 6285 SDValue Unpck1 = getUnpackl(DAG, dl, MVT::v4i32, XR1, XR2); 6286 SDValue CLod0 = DAG.getLoad(MVT::v4i32, dl, DAG.getEntryNode(), CPIdx0, 6287 PseudoSourceValue::getConstantPool(), 0, 6288 false, false, 16); 6289 SDValue Unpck2 = getUnpackl(DAG, dl, MVT::v4i32, Unpck1, CLod0); 6290 SDValue XR2F = DAG.getNode(ISD::BIT_CONVERT, dl, MVT::v2f64, Unpck2); 6291 SDValue CLod1 = DAG.getLoad(MVT::v2f64, dl, CLod0.getValue(1), CPIdx1, 6292 PseudoSourceValue::getConstantPool(), 0, 6293 false, false, 16); 6294 SDValue Sub = DAG.getNode(ISD::FSUB, dl, MVT::v2f64, XR2F, CLod1); 6295 6296 // Add the halves; easiest way is to swap them into another reg first. 6297 int ShufMask[2] = { 1, -1 }; 6298 SDValue Shuf = DAG.getVectorShuffle(MVT::v2f64, dl, Sub, 6299 DAG.getUNDEF(MVT::v2f64), ShufMask); 6300 SDValue Add = DAG.getNode(ISD::FADD, dl, MVT::v2f64, Shuf, Sub); 6301 return DAG.getNode(ISD::EXTRACT_VECTOR_ELT, dl, MVT::f64, Add, 6302 DAG.getIntPtrConstant(0)); 6303 } 6304 6305 // LowerUINT_TO_FP_i32 - 32-bit unsigned integer to float expansion. 6306 SDValue X86TargetLowering::LowerUINT_TO_FP_i32(SDValue Op, 6307 SelectionDAG &DAG) const { 6308 DebugLoc dl = Op.getDebugLoc(); 6309 // FP constant to bias correct the final result. 6310 SDValue Bias = DAG.getConstantFP(BitsToDouble(0x4330000000000000ULL), 6311 MVT::f64); 6312 6313 // Load the 32-bit value into an XMM register. 6314 SDValue Load = DAG.getNode(ISD::SCALAR_TO_VECTOR, dl, MVT::v4i32, 6315 DAG.getNode(ISD::EXTRACT_ELEMENT, dl, MVT::i32, 6316 Op.getOperand(0), 6317 DAG.getIntPtrConstant(0))); 6318 6319 Load = DAG.getNode(ISD::EXTRACT_VECTOR_ELT, dl, MVT::f64, 6320 DAG.getNode(ISD::BIT_CONVERT, dl, MVT::v2f64, Load), 6321 DAG.getIntPtrConstant(0)); 6322 6323 // Or the load with the bias. 6324 SDValue Or = DAG.getNode(ISD::OR, dl, MVT::v2i64, 6325 DAG.getNode(ISD::BIT_CONVERT, dl, MVT::v2i64, 6326 DAG.getNode(ISD::SCALAR_TO_VECTOR, dl, 6327 MVT::v2f64, Load)), 6328 DAG.getNode(ISD::BIT_CONVERT, dl, MVT::v2i64, 6329 DAG.getNode(ISD::SCALAR_TO_VECTOR, dl, 6330 MVT::v2f64, Bias))); 6331 Or = DAG.getNode(ISD::EXTRACT_VECTOR_ELT, dl, MVT::f64, 6332 DAG.getNode(ISD::BIT_CONVERT, dl, MVT::v2f64, Or), 6333 DAG.getIntPtrConstant(0)); 6334 6335 // Subtract the bias. 6336 SDValue Sub = DAG.getNode(ISD::FSUB, dl, MVT::f64, Or, Bias); 6337 6338 // Handle final rounding. 6339 EVT DestVT = Op.getValueType(); 6340 6341 if (DestVT.bitsLT(MVT::f64)) { 6342 return DAG.getNode(ISD::FP_ROUND, dl, DestVT, Sub, 6343 DAG.getIntPtrConstant(0)); 6344 } else if (DestVT.bitsGT(MVT::f64)) { 6345 return DAG.getNode(ISD::FP_EXTEND, dl, DestVT, Sub); 6346 } 6347 6348 // Handle final rounding. 6349 return Sub; 6350 } 6351 6352 SDValue X86TargetLowering::LowerUINT_TO_FP(SDValue Op, 6353 SelectionDAG &DAG) const { 6354 SDValue N0 = Op.getOperand(0); 6355 DebugLoc dl = Op.getDebugLoc(); 6356 6357 // Since UINT_TO_FP is legal (it's marked custom), dag combiner won't 6358 // optimize it to a SINT_TO_FP when the sign bit is known zero. Perform 6359 // the optimization here. 6360 if (DAG.SignBitIsZero(N0)) 6361 return DAG.getNode(ISD::SINT_TO_FP, dl, Op.getValueType(), N0); 6362 6363 EVT SrcVT = N0.getValueType(); 6364 EVT DstVT = Op.getValueType(); 6365 if (SrcVT == MVT::i64 && DstVT == MVT::f64 && X86ScalarSSEf64) 6366 return LowerUINT_TO_FP_i64(Op, DAG); 6367 else if (SrcVT == MVT::i32 && X86ScalarSSEf64) 6368 return LowerUINT_TO_FP_i32(Op, DAG); 6369 6370 // Make a 64-bit buffer, and use it to build an FILD. 6371 SDValue StackSlot = DAG.CreateStackTemporary(MVT::i64); 6372 if (SrcVT == MVT::i32) { 6373 SDValue WordOff = DAG.getConstant(4, getPointerTy()); 6374 SDValue OffsetSlot = DAG.getNode(ISD::ADD, dl, 6375 getPointerTy(), StackSlot, WordOff); 6376 SDValue Store1 = DAG.getStore(DAG.getEntryNode(), dl, Op.getOperand(0), 6377 StackSlot, NULL, 0, false, false, 0); 6378 SDValue Store2 = DAG.getStore(Store1, dl, DAG.getConstant(0, MVT::i32), 6379 OffsetSlot, NULL, 0, false, false, 0); 6380 SDValue Fild = BuildFILD(Op, MVT::i64, Store2, StackSlot, DAG); 6381 return Fild; 6382 } 6383 6384 assert(SrcVT == MVT::i64 && "Unexpected type in UINT_TO_FP"); 6385 SDValue Store = DAG.getStore(DAG.getEntryNode(), dl, Op.getOperand(0), 6386 StackSlot, NULL, 0, false, false, 0); 6387 // For i64 source, we need to add the appropriate power of 2 if the input 6388 // was negative. This is the same as the optimization in 6389 // DAGTypeLegalizer::ExpandIntOp_UNIT_TO_FP, and for it to be safe here, 6390 // we must be careful to do the computation in x87 extended precision, not 6391 // in SSE. (The generic code can't know it's OK to do this, or how to.) 6392 SDVTList Tys = DAG.getVTList(MVT::f80, MVT::Other); 6393 SDValue Ops[] = { Store, StackSlot, DAG.getValueType(MVT::i64) }; 6394 SDValue Fild = DAG.getNode(X86ISD::FILD, dl, Tys, Ops, 3); 6395 6396 APInt FF(32, 0x5F800000ULL); 6397 6398 // Check whether the sign bit is set. 6399 SDValue SignSet = DAG.getSetCC(dl, getSetCCResultType(MVT::i64), 6400 Op.getOperand(0), DAG.getConstant(0, MVT::i64), 6401 ISD::SETLT); 6402 6403 // Build a 64 bit pair (0, FF) in the constant pool, with FF in the lo bits. 6404 SDValue FudgePtr = DAG.getConstantPool( 6405 ConstantInt::get(*DAG.getContext(), FF.zext(64)), 6406 getPointerTy()); 6407 6408 // Get a pointer to FF if the sign bit was set, or to 0 otherwise. 6409 SDValue Zero = DAG.getIntPtrConstant(0); 6410 SDValue Four = DAG.getIntPtrConstant(4); 6411 SDValue Offset = DAG.getNode(ISD::SELECT, dl, Zero.getValueType(), SignSet, 6412 Zero, Four); 6413 FudgePtr = DAG.getNode(ISD::ADD, dl, getPointerTy(), FudgePtr, Offset); 6414 6415 // Load the value out, extending it from f32 to f80. 6416 // FIXME: Avoid the extend by constructing the right constant pool? 6417 SDValue Fudge = DAG.getExtLoad(ISD::EXTLOAD, MVT::f80, dl, DAG.getEntryNode(), 6418 FudgePtr, PseudoSourceValue::getConstantPool(), 6419 0, MVT::f32, false, false, 4); 6420 // Extend everything to 80 bits to force it to be done on x87. 6421 SDValue Add = DAG.getNode(ISD::FADD, dl, MVT::f80, Fild, Fudge); 6422 return DAG.getNode(ISD::FP_ROUND, dl, DstVT, Add, DAG.getIntPtrConstant(0)); 6423 } 6424 6425 std::pair<SDValue,SDValue> X86TargetLowering:: 6426 FP_TO_INTHelper(SDValue Op, SelectionDAG &DAG, bool IsSigned) const { 6427 DebugLoc dl = Op.getDebugLoc(); 6428 6429 EVT DstTy = Op.getValueType(); 6430 6431 if (!IsSigned) { 6432 assert(DstTy == MVT::i32 && "Unexpected FP_TO_UINT"); 6433 DstTy = MVT::i64; 6434 } 6435 6436 assert(DstTy.getSimpleVT() <= MVT::i64 && 6437 DstTy.getSimpleVT() >= MVT::i16 && 6438 "Unknown FP_TO_SINT to lower!"); 6439 6440 // These are really Legal. 6441 if (DstTy == MVT::i32 && 6442 isScalarFPTypeInSSEReg(Op.getOperand(0).getValueType())) 6443 return std::make_pair(SDValue(), SDValue()); 6444 if (Subtarget->is64Bit() && 6445 DstTy == MVT::i64 && 6446 isScalarFPTypeInSSEReg(Op.getOperand(0).getValueType())) 6447 return std::make_pair(SDValue(), SDValue()); 6448 6449 // We lower FP->sint64 into FISTP64, followed by a load, all to a temporary 6450 // stack slot. 6451 MachineFunction &MF = DAG.getMachineFunction(); 6452 unsigned MemSize = DstTy.getSizeInBits()/8; 6453 int SSFI = MF.getFrameInfo()->CreateStackObject(MemSize, MemSize, false); 6454 SDValue StackSlot = DAG.getFrameIndex(SSFI, getPointerTy()); 6455 6456 unsigned Opc; 6457 switch (DstTy.getSimpleVT().SimpleTy) { 6458 default: llvm_unreachable("Invalid FP_TO_SINT to lower!"); 6459 case MVT::i16: Opc = X86ISD::FP_TO_INT16_IN_MEM; break; 6460 case MVT::i32: Opc = X86ISD::FP_TO_INT32_IN_MEM; break; 6461 case MVT::i64: Opc = X86ISD::FP_TO_INT64_IN_MEM; break; 6462 } 6463 6464 SDValue Chain = DAG.getEntryNode(); 6465 SDValue Value = Op.getOperand(0); 6466 if (isScalarFPTypeInSSEReg(Op.getOperand(0).getValueType())) { 6467 assert(DstTy == MVT::i64 && "Invalid FP_TO_SINT to lower!"); 6468 Chain = DAG.getStore(Chain, dl, Value, StackSlot, 6469 PseudoSourceValue::getFixedStack(SSFI), 0, 6470 false, false, 0); 6471 SDVTList Tys = DAG.getVTList(Op.getOperand(0).getValueType(), MVT::Other); 6472 SDValue Ops[] = { 6473 Chain, StackSlot, DAG.getValueType(Op.getOperand(0).getValueType()) 6474 }; 6475 Value = DAG.getNode(X86ISD::FLD, dl, Tys, Ops, 3); 6476 Chain = Value.getValue(1); 6477 SSFI = MF.getFrameInfo()->CreateStackObject(MemSize, MemSize, false); 6478 StackSlot = DAG.getFrameIndex(SSFI, getPointerTy()); 6479 } 6480 6481 // Build the FP_TO_INT*_IN_MEM 6482 SDValue Ops[] = { Chain, Value, StackSlot }; 6483 SDValue FIST = DAG.getNode(Opc, dl, MVT::Other, Ops, 3); 6484 6485 return std::make_pair(FIST, StackSlot); 6486 } 6487 6488 SDValue X86TargetLowering::LowerFP_TO_SINT(SDValue Op, 6489 SelectionDAG &DAG) const { 6490 if (Op.getValueType().isVector()) { 6491 if (Op.getValueType() == MVT::v2i32 && 6492 Op.getOperand(0).getValueType() == MVT::v2f64) { 6493 return Op; 6494 } 6495 return SDValue(); 6496 } 6497 6498 std::pair<SDValue,SDValue> Vals = FP_TO_INTHelper(Op, DAG, true); 6499 SDValue FIST = Vals.first, StackSlot = Vals.second; 6500 // If FP_TO_INTHelper failed, the node is actually supposed to be Legal. 6501 if (FIST.getNode() == 0) return Op; 6502 6503 // Load the result. 6504 return DAG.getLoad(Op.getValueType(), Op.getDebugLoc(), 6505 FIST, StackSlot, NULL, 0, false, false, 0); 6506 } 6507 6508 SDValue X86TargetLowering::LowerFP_TO_UINT(SDValue Op, 6509 SelectionDAG &DAG) const { 6510 std::pair<SDValue,SDValue> Vals = FP_TO_INTHelper(Op, DAG, false); 6511 SDValue FIST = Vals.first, StackSlot = Vals.second; 6512 assert(FIST.getNode() && "Unexpected failure"); 6513 6514 // Load the result. 6515 return DAG.getLoad(Op.getValueType(), Op.getDebugLoc(), 6516 FIST, StackSlot, NULL, 0, false, false, 0); 6517 } 6518 6519 SDValue X86TargetLowering::LowerFABS(SDValue Op, 6520 SelectionDAG &DAG) const { 6521 LLVMContext *Context = DAG.getContext(); 6522 DebugLoc dl = Op.getDebugLoc(); 6523 EVT VT = Op.getValueType(); 6524 EVT EltVT = VT; 6525 if (VT.isVector()) 6526 EltVT = VT.getVectorElementType(); 6527 std::vector<Constant*> CV; 6528 if (EltVT == MVT::f64) { 6529 Constant *C = ConstantFP::get(*Context, APFloat(APInt(64, ~(1ULL << 63)))); 6530 CV.push_back(C); 6531 CV.push_back(C); 6532 } else { 6533 Constant *C = ConstantFP::get(*Context, APFloat(APInt(32, ~(1U << 31)))); 6534 CV.push_back(C); 6535 CV.push_back(C); 6536 CV.push_back(C); 6537 CV.push_back(C); 6538 } 6539 Constant *C = ConstantVector::get(CV); 6540 SDValue CPIdx = DAG.getConstantPool(C, getPointerTy(), 16); 6541 SDValue Mask = DAG.getLoad(VT, dl, DAG.getEntryNode(), CPIdx, 6542 PseudoSourceValue::getConstantPool(), 0, 6543 false, false, 16); 6544 return DAG.getNode(X86ISD::FAND, dl, VT, Op.getOperand(0), Mask); 6545 } 6546 6547 SDValue X86TargetLowering::LowerFNEG(SDValue Op, SelectionDAG &DAG) const { 6548 LLVMContext *Context = DAG.getContext(); 6549 DebugLoc dl = Op.getDebugLoc(); 6550 EVT VT = Op.getValueType(); 6551 EVT EltVT = VT; 6552 if (VT.isVector()) 6553 EltVT = VT.getVectorElementType(); 6554 std::vector<Constant*> CV; 6555 if (EltVT == MVT::f64) { 6556 Constant *C = ConstantFP::get(*Context, APFloat(APInt(64, 1ULL << 63))); 6557 CV.push_back(C); 6558 CV.push_back(C); 6559 } else { 6560 Constant *C = ConstantFP::get(*Context, APFloat(APInt(32, 1U << 31))); 6561 CV.push_back(C); 6562 CV.push_back(C); 6563 CV.push_back(C); 6564 CV.push_back(C); 6565 } 6566 Constant *C = ConstantVector::get(CV); 6567 SDValue CPIdx = DAG.getConstantPool(C, getPointerTy(), 16); 6568 SDValue Mask = DAG.getLoad(VT, dl, DAG.getEntryNode(), CPIdx, 6569 PseudoSourceValue::getConstantPool(), 0, 6570 false, false, 16); 6571 if (VT.isVector()) { 6572 return DAG.getNode(ISD::BIT_CONVERT, dl, VT, 6573 DAG.getNode(ISD::XOR, dl, MVT::v2i64, 6574 DAG.getNode(ISD::BIT_CONVERT, dl, MVT::v2i64, 6575 Op.getOperand(0)), 6576 DAG.getNode(ISD::BIT_CONVERT, dl, MVT::v2i64, Mask))); 6577 } else { 6578 return DAG.getNode(X86ISD::FXOR, dl, VT, Op.getOperand(0), Mask); 6579 } 6580 } 6581 6582 SDValue X86TargetLowering::LowerFCOPYSIGN(SDValue Op, SelectionDAG &DAG) const { 6583 LLVMContext *Context = DAG.getContext(); 6584 SDValue Op0 = Op.getOperand(0); 6585 SDValue Op1 = Op.getOperand(1); 6586 DebugLoc dl = Op.getDebugLoc(); 6587 EVT VT = Op.getValueType(); 6588 EVT SrcVT = Op1.getValueType(); 6589 6590 // If second operand is smaller, extend it first. 6591 if (SrcVT.bitsLT(VT)) { 6592 Op1 = DAG.getNode(ISD::FP_EXTEND, dl, VT, Op1); 6593 SrcVT = VT; 6594 } 6595 // And if it is bigger, shrink it first. 6596 if (SrcVT.bitsGT(VT)) { 6597 Op1 = DAG.getNode(ISD::FP_ROUND, dl, VT, Op1, DAG.getIntPtrConstant(1)); 6598 SrcVT = VT; 6599 } 6600 6601 // At this point the operands and the result should have the same 6602 // type, and that won't be f80 since that is not custom lowered. 6603 6604 // First get the sign bit of second operand. 6605 std::vector<Constant*> CV; 6606 if (SrcVT == MVT::f64) { 6607 CV.push_back(ConstantFP::get(*Context, APFloat(APInt(64, 1ULL << 63)))); 6608 CV.push_back(ConstantFP::get(*Context, APFloat(APInt(64, 0)))); 6609 } else { 6610 CV.push_back(ConstantFP::get(*Context, APFloat(APInt(32, 1U << 31)))); 6611 CV.push_back(ConstantFP::get(*Context, APFloat(APInt(32, 0)))); 6612 CV.push_back(ConstantFP::get(*Context, APFloat(APInt(32, 0)))); 6613 CV.push_back(ConstantFP::get(*Context, APFloat(APInt(32, 0)))); 6614 } 6615 Constant *C = ConstantVector::get(CV); 6616 SDValue CPIdx = DAG.getConstantPool(C, getPointerTy(), 16); 6617 SDValue Mask1 = DAG.getLoad(SrcVT, dl, DAG.getEntryNode(), CPIdx, 6618 PseudoSourceValue::getConstantPool(), 0, 6619 false, false, 16); 6620 SDValue SignBit = DAG.getNode(X86ISD::FAND, dl, SrcVT, Op1, Mask1); 6621 6622 // Shift sign bit right or left if the two operands have different types. 6623 if (SrcVT.bitsGT(VT)) { 6624 // Op0 is MVT::f32, Op1 is MVT::f64. 6625 SignBit = DAG.getNode(ISD::SCALAR_TO_VECTOR, dl, MVT::v2f64, SignBit); 6626 SignBit = DAG.getNode(X86ISD::FSRL, dl, MVT::v2f64, SignBit, 6627 DAG.getConstant(32, MVT::i32)); 6628 SignBit = DAG.getNode(ISD::BIT_CONVERT, dl, MVT::v4f32, SignBit); 6629 SignBit = DAG.getNode(ISD::EXTRACT_VECTOR_ELT, dl, MVT::f32, SignBit, 6630 DAG.getIntPtrConstant(0)); 6631 } 6632 6633 // Clear first operand sign bit. 6634 CV.clear(); 6635 if (VT == MVT::f64) { 6636 CV.push_back(ConstantFP::get(*Context, APFloat(APInt(64, ~(1ULL << 63))))); 6637 CV.push_back(ConstantFP::get(*Context, APFloat(APInt(64, 0)))); 6638 } else { 6639 CV.push_back(ConstantFP::get(*Context, APFloat(APInt(32, ~(1U << 31))))); 6640 CV.push_back(ConstantFP::get(*Context, APFloat(APInt(32, 0)))); 6641 CV.push_back(ConstantFP::get(*Context, APFloat(APInt(32, 0)))); 6642 CV.push_back(ConstantFP::get(*Context, APFloat(APInt(32, 0)))); 6643 } 6644 C = ConstantVector::get(CV); 6645 CPIdx = DAG.getConstantPool(C, getPointerTy(), 16); 6646 SDValue Mask2 = DAG.getLoad(VT, dl, DAG.getEntryNode(), CPIdx, 6647 PseudoSourceValue::getConstantPool(), 0, 6648 false, false, 16); 6649 SDValue Val = DAG.getNode(X86ISD::FAND, dl, VT, Op0, Mask2); 6650 6651 // Or the value with the sign bit. 6652 return DAG.getNode(X86ISD::FOR, dl, VT, Val, SignBit); 6653 } 6654 6655 /// Emit nodes that will be selected as "test Op0,Op0", or something 6656 /// equivalent. 6657 SDValue X86TargetLowering::EmitTest(SDValue Op, unsigned X86CC, 6658 SelectionDAG &DAG) const { 6659 DebugLoc dl = Op.getDebugLoc(); 6660 6661 // CF and OF aren't always set the way we want. Determine which 6662 // of these we need. 6663 bool NeedCF = false; 6664 bool NeedOF = false; 6665 switch (X86CC) { 6666 default: break; 6667 case X86::COND_A: case X86::COND_AE: 6668 case X86::COND_B: case X86::COND_BE: 6669 NeedCF = true; 6670 break; 6671 case X86::COND_G: case X86::COND_GE: 6672 case X86::COND_L: case X86::COND_LE: 6673 case X86::COND_O: case X86::COND_NO: 6674 NeedOF = true; 6675 break; 6676 } 6677 6678 // See if we can use the EFLAGS value from the operand instead of 6679 // doing a separate TEST. TEST always sets OF and CF to 0, so unless 6680 // we prove that the arithmetic won't overflow, we can't use OF or CF. 6681 if (Op.getResNo() != 0 || NeedOF || NeedCF) 6682 // Emit a CMP with 0, which is the TEST pattern. 6683 return DAG.getNode(X86ISD::CMP, dl, MVT::i32, Op, 6684 DAG.getConstant(0, Op.getValueType())); 6685 6686 unsigned Opcode = 0; 6687 unsigned NumOperands = 0; 6688 switch (Op.getNode()->getOpcode()) { 6689 case ISD::ADD: 6690 // Due to an isel shortcoming, be conservative if this add is likely to be 6691 // selected as part of a load-modify-store instruction. When the root node 6692 // in a match is a store, isel doesn't know how to remap non-chain non-flag 6693 // uses of other nodes in the match, such as the ADD in this case. This 6694 // leads to the ADD being left around and reselected, with the result being 6695 // two adds in the output. Alas, even if none our users are stores, that 6696 // doesn't prove we're O.K. Ergo, if we have any parents that aren't 6697 // CopyToReg or SETCC, eschew INC/DEC. A better fix seems to require 6698 // climbing the DAG back to the root, and it doesn't seem to be worth the 6699 // effort. 6700 for (SDNode::use_iterator UI = Op.getNode()->use_begin(), 6701 UE = Op.getNode()->use_end(); UI != UE; ++UI) 6702 if (UI->getOpcode() != ISD::CopyToReg && UI->getOpcode() != ISD::SETCC) 6703 goto default_case; 6704 6705 if (ConstantSDNode *C = 6706 dyn_cast<ConstantSDNode>(Op.getNode()->getOperand(1))) { 6707 // An add of one will be selected as an INC. 6708 if (C->getAPIntValue() == 1) { 6709 Opcode = X86ISD::INC; 6710 NumOperands = 1; 6711 break; 6712 } 6713 6714 // An add of negative one (subtract of one) will be selected as a DEC. 6715 if (C->getAPIntValue().isAllOnesValue()) { 6716 Opcode = X86ISD::DEC; 6717 NumOperands = 1; 6718 break; 6719 } 6720 } 6721 6722 // Otherwise use a regular EFLAGS-setting add. 6723 Opcode = X86ISD::ADD; 6724 NumOperands = 2; 6725 break; 6726 case ISD::AND: { 6727 // If the primary and result isn't used, don't bother using X86ISD::AND, 6728 // because a TEST instruction will be better. 6729 bool NonFlagUse = false; 6730 for (SDNode::use_iterator UI = Op.getNode()->use_begin(), 6731 UE = Op.getNode()->use_end(); UI != UE; ++UI) { 6732 SDNode *User = *UI; 6733 unsigned UOpNo = UI.getOperandNo(); 6734 if (User->getOpcode() == ISD::TRUNCATE && User->hasOneUse()) { 6735 // Look pass truncate. 6736 UOpNo = User->use_begin().getOperandNo(); 6737 User = *User->use_begin(); 6738 } 6739 6740 if (User->getOpcode() != ISD::BRCOND && 6741 User->getOpcode() != ISD::SETCC && 6742 (User->getOpcode() != ISD::SELECT || UOpNo != 0)) { 6743 NonFlagUse = true; 6744 break; 6745 } 6746 } 6747 6748 if (!NonFlagUse) 6749 break; 6750 } 6751 // FALL THROUGH 6752 case ISD::SUB: 6753 case ISD::OR: 6754 case ISD::XOR: 6755 // Due to the ISEL shortcoming noted above, be conservative if this op is 6756 // likely to be selected as part of a load-modify-store instruction. 6757 for (SDNode::use_iterator UI = Op.getNode()->use_begin(), 6758 UE = Op.getNode()->use_end(); UI != UE; ++UI) 6759 if (UI->getOpcode() == ISD::STORE) 6760 goto default_case; 6761 6762 // Otherwise use a regular EFLAGS-setting instruction. 6763 switch (Op.getNode()->getOpcode()) { 6764 default: llvm_unreachable("unexpected operator!"); 6765 case ISD::SUB: Opcode = X86ISD::SUB; break; 6766 case ISD::OR: Opcode = X86ISD::OR; break; 6767 case ISD::XOR: Opcode = X86ISD::XOR; break; 6768 case ISD::AND: Opcode = X86ISD::AND; break; 6769 } 6770 6771 NumOperands = 2; 6772 break; 6773 case X86ISD::ADD: 6774 case X86ISD::SUB: 6775 case X86ISD::INC: 6776 case X86ISD::DEC: 6777 case X86ISD::OR: 6778 case X86ISD::XOR: 6779 case X86ISD::AND: 6780 return SDValue(Op.getNode(), 1); 6781 default: 6782 default_case: 6783 break; 6784 } 6785 6786 if (Opcode == 0) 6787 // Emit a CMP with 0, which is the TEST pattern. 6788 return DAG.getNode(X86ISD::CMP, dl, MVT::i32, Op, 6789 DAG.getConstant(0, Op.getValueType())); 6790 6791 SDVTList VTs = DAG.getVTList(Op.getValueType(), MVT::i32); 6792 SmallVector<SDValue, 4> Ops; 6793 for (unsigned i = 0; i != NumOperands; ++i) 6794 Ops.push_back(Op.getOperand(i)); 6795 6796 SDValue New = DAG.getNode(Opcode, dl, VTs, &Ops[0], NumOperands); 6797 DAG.ReplaceAllUsesWith(Op, New); 6798 return SDValue(New.getNode(), 1); 6799 } 6800 6801 /// Emit nodes that will be selected as "cmp Op0,Op1", or something 6802 /// equivalent. 6803 SDValue X86TargetLowering::EmitCmp(SDValue Op0, SDValue Op1, unsigned X86CC, 6804 SelectionDAG &DAG) const { 6805 if (ConstantSDNode *C = dyn_cast<ConstantSDNode>(Op1)) 6806 if (C->getAPIntValue() == 0) 6807 return EmitTest(Op0, X86CC, DAG); 6808 6809 DebugLoc dl = Op0.getDebugLoc(); 6810 return DAG.getNode(X86ISD::CMP, dl, MVT::i32, Op0, Op1); 6811 } 6812 6813 /// LowerToBT - Result of 'and' is compared against zero. Turn it into a BT node 6814 /// if it's possible. 6815 SDValue X86TargetLowering::LowerToBT(SDValue And, ISD::CondCode CC, 6816 DebugLoc dl, SelectionDAG &DAG) const { 6817 SDValue Op0 = And.getOperand(0); 6818 SDValue Op1 = And.getOperand(1); 6819 if (Op0.getOpcode() == ISD::TRUNCATE) 6820 Op0 = Op0.getOperand(0); 6821 if (Op1.getOpcode() == ISD::TRUNCATE) 6822 Op1 = Op1.getOperand(0); 6823 6824 SDValue LHS, RHS; 6825 if (Op1.getOpcode() == ISD::SHL) 6826 std::swap(Op0, Op1); 6827 if (Op0.getOpcode() == ISD::SHL) { 6828 if (ConstantSDNode *And00C = dyn_cast<ConstantSDNode>(Op0.getOperand(0))) 6829 if (And00C->getZExtValue() == 1) { 6830 // If we looked past a truncate, check that it's only truncating away 6831 // known zeros. 6832 unsigned BitWidth = Op0.getValueSizeInBits(); 6833 unsigned AndBitWidth = And.getValueSizeInBits(); 6834 if (BitWidth > AndBitWidth) { 6835 APInt Mask = APInt::getAllOnesValue(BitWidth), Zeros, Ones; 6836 DAG.ComputeMaskedBits(Op0, Mask, Zeros, Ones); 6837 if (Zeros.countLeadingOnes() < BitWidth - AndBitWidth) 6838 return SDValue(); 6839 } 6840 LHS = Op1; 6841 RHS = Op0.getOperand(1); 6842 } 6843 } else if (Op1.getOpcode() == ISD::Constant) { 6844 ConstantSDNode *AndRHS = cast<ConstantSDNode>(Op1); 6845 SDValue AndLHS = Op0; 6846 if (AndRHS->getZExtValue() == 1 && AndLHS.getOpcode() == ISD::SRL) { 6847 LHS = AndLHS.getOperand(0); 6848 RHS = AndLHS.getOperand(1); 6849 } 6850 } 6851 6852 if (LHS.getNode()) { 6853 // If LHS is i8, promote it to i32 with any_extend. There is no i8 BT 6854 // instruction. Since the shift amount is in-range-or-undefined, we know 6855 // that doing a bittest on the i32 value is ok. We extend to i32 because 6856 // the encoding for the i16 version is larger than the i32 version. 6857 // Also promote i16 to i32 for performance / code size reason. 6858 if (LHS.getValueType() == MVT::i8 || 6859 LHS.getValueType() == MVT::i16) 6860 LHS = DAG.getNode(ISD::ANY_EXTEND, dl, MVT::i32, LHS); 6861 6862 // If the operand types disagree, extend the shift amount to match. Since 6863 // BT ignores high bits (like shifts) we can use anyextend. 6864 if (LHS.getValueType() != RHS.getValueType()) 6865 RHS = DAG.getNode(ISD::ANY_EXTEND, dl, LHS.getValueType(), RHS); 6866 6867 SDValue BT = DAG.getNode(X86ISD::BT, dl, MVT::i32, LHS, RHS); 6868 unsigned Cond = CC == ISD::SETEQ ? X86::COND_AE : X86::COND_B; 6869 return DAG.getNode(X86ISD::SETCC, dl, MVT::i8, 6870 DAG.getConstant(Cond, MVT::i8), BT); 6871 } 6872 6873 return SDValue(); 6874 } 6875 6876 SDValue X86TargetLowering::LowerSETCC(SDValue Op, SelectionDAG &DAG) const { 6877 assert(Op.getValueType() == MVT::i8 && "SetCC type must be 8-bit integer"); 6878 SDValue Op0 = Op.getOperand(0); 6879 SDValue Op1 = Op.getOperand(1); 6880 DebugLoc dl = Op.getDebugLoc(); 6881 ISD::CondCode CC = cast<CondCodeSDNode>(Op.getOperand(2))->get(); 6882 6883 // Optimize to BT if possible. 6884 // Lower (X & (1 << N)) == 0 to BT(X, N). 6885 // Lower ((X >>u N) & 1) != 0 to BT(X, N). 6886 // Lower ((X >>s N) & 1) != 0 to BT(X, N). 6887 if (Op0.getOpcode() == ISD::AND && 6888 Op0.hasOneUse() && 6889 Op1.getOpcode() == ISD::Constant && 6890 cast<ConstantSDNode>(Op1)->isNullValue() && 6891 (CC == ISD::SETEQ || CC == ISD::SETNE)) { 6892 SDValue NewSetCC = LowerToBT(Op0, CC, dl, DAG); 6893 if (NewSetCC.getNode()) 6894 return NewSetCC; 6895 } 6896 6897 // Look for "(setcc) == / != 1" to avoid unncessary setcc. 6898 if (Op0.getOpcode() == X86ISD::SETCC && 6899 Op1.getOpcode() == ISD::Constant && 6900 (cast<ConstantSDNode>(Op1)->getZExtValue() == 1 || 6901 cast<ConstantSDNode>(Op1)->isNullValue()) && 6902 (CC == ISD::SETEQ || CC == ISD::SETNE)) { 6903 X86::CondCode CCode = (X86::CondCode)Op0.getConstantOperandVal(0); 6904 bool Invert = (CC == ISD::SETNE) ^ 6905 cast<ConstantSDNode>(Op1)->isNullValue(); 6906 if (Invert) 6907 CCode = X86::GetOppositeBranchCondition(CCode); 6908 return DAG.getNode(X86ISD::SETCC, dl, MVT::i8, 6909 DAG.getConstant(CCode, MVT::i8), Op0.getOperand(1)); 6910 } 6911 6912 bool isFP = Op1.getValueType().isFloatingPoint(); 6913 unsigned X86CC = TranslateX86CC(CC, isFP, Op0, Op1, DAG); 6914 if (X86CC == X86::COND_INVALID) 6915 return SDValue(); 6916 6917 SDValue Cond = EmitCmp(Op0, Op1, X86CC, DAG); 6918 6919 // Use sbb x, x to materialize carry bit into a GPR. 6920 if (X86CC == X86::COND_B) 6921 return DAG.getNode(ISD::AND, dl, MVT::i8, 6922 DAG.getNode(X86ISD::SETCC_CARRY, dl, MVT::i8, 6923 DAG.getConstant(X86CC, MVT::i8), Cond), 6924 DAG.getConstant(1, MVT::i8)); 6925 6926 return DAG.getNode(X86ISD::SETCC, dl, MVT::i8, 6927 DAG.getConstant(X86CC, MVT::i8), Cond); 6928 } 6929 6930 SDValue X86TargetLowering::LowerVSETCC(SDValue Op, SelectionDAG &DAG) const { 6931 SDValue Cond; 6932 SDValue Op0 = Op.getOperand(0); 6933 SDValue Op1 = Op.getOperand(1); 6934 SDValue CC = Op.getOperand(2); 6935 EVT VT = Op.getValueType(); 6936 ISD::CondCode SetCCOpcode = cast<CondCodeSDNode>(CC)->get(); 6937 bool isFP = Op.getOperand(1).getValueType().isFloatingPoint(); 6938 DebugLoc dl = Op.getDebugLoc(); 6939 6940 if (isFP) { 6941 unsigned SSECC = 8; 6942 EVT VT0 = Op0.getValueType(); 6943 assert(VT0 == MVT::v4f32 || VT0 == MVT::v2f64); 6944 unsigned Opc = VT0 == MVT::v4f32 ? X86ISD::CMPPS : X86ISD::CMPPD; 6945 bool Swap = false; 6946 6947 switch (SetCCOpcode) { 6948 default: break; 6949 case ISD::SETOEQ: 6950 case ISD::SETEQ: SSECC = 0; break; 6951 case ISD::SETOGT: 6952 case ISD::SETGT: Swap = true; // Fallthrough 6953 case ISD::SETLT: 6954 case ISD::SETOLT: SSECC = 1; break; 6955 case ISD::SETOGE: 6956 case ISD::SETGE: Swap = true; // Fallthrough 6957 case ISD::SETLE: 6958 case ISD::SETOLE: SSECC = 2; break; 6959 case ISD::SETUO: SSECC = 3; break; 6960 case ISD::SETUNE: 6961 case ISD::SETNE: SSECC = 4; break; 6962 case ISD::SETULE: Swap = true; 6963 case ISD::SETUGE: SSECC = 5; break; 6964 case ISD::SETULT: Swap = true; 6965 case ISD::SETUGT: SSECC = 6; break; 6966 case ISD::SETO: SSECC = 7; break; 6967 } 6968 if (Swap) 6969 std::swap(Op0, Op1); 6970 6971 // In the two special cases we can't handle, emit two comparisons. 6972 if (SSECC == 8) { 6973 if (SetCCOpcode == ISD::SETUEQ) { 6974 SDValue UNORD, EQ; 6975 UNORD = DAG.getNode(Opc, dl, VT, Op0, Op1, DAG.getConstant(3, MVT::i8)); 6976 EQ = DAG.getNode(Opc, dl, VT, Op0, Op1, DAG.getConstant(0, MVT::i8)); 6977 return DAG.getNode(ISD::OR, dl, VT, UNORD, EQ); 6978 } 6979 else if (SetCCOpcode == ISD::SETONE) { 6980 SDValue ORD, NEQ; 6981 ORD = DAG.getNode(Opc, dl, VT, Op0, Op1, DAG.getConstant(7, MVT::i8)); 6982 NEQ = DAG.getNode(Opc, dl, VT, Op0, Op1, DAG.getConstant(4, MVT::i8)); 6983 return DAG.getNode(ISD::AND, dl, VT, ORD, NEQ); 6984 } 6985 llvm_unreachable("Illegal FP comparison"); 6986 } 6987 // Handle all other FP comparisons here. 6988 return DAG.getNode(Opc, dl, VT, Op0, Op1, DAG.getConstant(SSECC, MVT::i8)); 6989 } 6990 6991 // We are handling one of the integer comparisons here. Since SSE only has 6992 // GT and EQ comparisons for integer, swapping operands and multiple 6993 // operations may be required for some comparisons. 6994 unsigned Opc = 0, EQOpc = 0, GTOpc = 0; 6995 bool Swap = false, Invert = false, FlipSigns = false; 6996 6997 switch (VT.getSimpleVT().SimpleTy) { 6998 default: break; 6999 case MVT::v8i8: 7000 case MVT::v16i8: EQOpc = X86ISD::PCMPEQB; GTOpc = X86ISD::PCMPGTB; break; 7001 case MVT::v4i16: 7002 case MVT::v8i16: EQOpc = X86ISD::PCMPEQW; GTOpc = X86ISD::PCMPGTW; break; 7003 case MVT::v2i32: 7004 case MVT::v4i32: EQOpc = X86ISD::PCMPEQD; GTOpc = X86ISD::PCMPGTD; break; 7005 case MVT::v2i64: EQOpc = X86ISD::PCMPEQQ; GTOpc = X86ISD::PCMPGTQ; break; 7006 } 7007 7008 switch (SetCCOpcode) { 7009 default: break; 7010 case ISD::SETNE: Invert = true; 7011 case ISD::SETEQ: Opc = EQOpc; break; 7012 case ISD::SETLT: Swap = true; 7013 case ISD::SETGT: Opc = GTOpc; break; 7014 case ISD::SETGE: Swap = true; 7015 case ISD::SETLE: Opc = GTOpc; Invert = true; break; 7016 case ISD::SETULT: Swap = true; 7017 case ISD::SETUGT: Opc = GTOpc; FlipSigns = true; break; 7018 case ISD::SETUGE: Swap = true; 7019 case ISD::SETULE: Opc = GTOpc; FlipSigns = true; Invert = true; break; 7020 } 7021 if (Swap) 7022 std::swap(Op0, Op1); 7023 7024 // Since SSE has no unsigned integer comparisons, we need to flip the sign 7025 // bits of the inputs before performing those operations. 7026 if (FlipSigns) { 7027 EVT EltVT = VT.getVectorElementType(); 7028 SDValue SignBit = DAG.getConstant(APInt::getSignBit(EltVT.getSizeInBits()), 7029 EltVT); 7030 std::vector<SDValue> SignBits(VT.getVectorNumElements(), SignBit); 7031 SDValue SignVec = DAG.getNode(ISD::BUILD_VECTOR, dl, VT, &SignBits[0], 7032 SignBits.size()); 7033 Op0 = DAG.getNode(ISD::XOR, dl, VT, Op0, SignVec); 7034 Op1 = DAG.getNode(ISD::XOR, dl, VT, Op1, SignVec); 7035 } 7036 7037 SDValue Result = DAG.getNode(Opc, dl, VT, Op0, Op1); 7038 7039 // If the logical-not of the result is required, perform that now. 7040 if (Invert) 7041 Result = DAG.getNOT(dl, Result, VT); 7042 7043 return Result; 7044 } 7045 7046 // isX86LogicalCmp - Return true if opcode is a X86 logical comparison. 7047 static bool isX86LogicalCmp(SDValue Op) { 7048 unsigned Opc = Op.getNode()->getOpcode(); 7049 if (Opc == X86ISD::CMP || Opc == X86ISD::COMI || Opc == X86ISD::UCOMI) 7050 return true; 7051 if (Op.getResNo() == 1 && 7052 (Opc == X86ISD::ADD || 7053 Opc == X86ISD::SUB || 7054 Opc == X86ISD::SMUL || 7055 Opc == X86ISD::UMUL || 7056 Opc == X86ISD::INC || 7057 Opc == X86ISD::DEC || 7058 Opc == X86ISD::OR || 7059 Opc == X86ISD::XOR || 7060 Opc == X86ISD::AND)) 7061 return true; 7062 7063 return false; 7064 } 7065 7066 SDValue X86TargetLowering::LowerSELECT(SDValue Op, SelectionDAG &DAG) const { 7067 bool addTest = true; 7068 SDValue Cond = Op.getOperand(0); 7069 DebugLoc dl = Op.getDebugLoc(); 7070 SDValue CC; 7071 7072 if (Cond.getOpcode() == ISD::SETCC) { 7073 SDValue NewCond = LowerSETCC(Cond, DAG); 7074 if (NewCond.getNode()) 7075 Cond = NewCond; 7076 } 7077 7078 // (select (x == 0), -1, 0) -> (sign_bit (x - 1)) 7079 SDValue Op1 = Op.getOperand(1); 7080 SDValue Op2 = Op.getOperand(2); 7081 if (Cond.getOpcode() == X86ISD::SETCC && 7082 cast<ConstantSDNode>(Cond.getOperand(0))->getZExtValue() == X86::COND_E) { 7083 SDValue Cmp = Cond.getOperand(1); 7084 if (Cmp.getOpcode() == X86ISD::CMP) { 7085 ConstantSDNode *N1C = dyn_cast<ConstantSDNode>(Op1); 7086 ConstantSDNode *N2C = dyn_cast<ConstantSDNode>(Op2); 7087 ConstantSDNode *RHSC = 7088 dyn_cast<ConstantSDNode>(Cmp.getOperand(1).getNode()); 7089 if (N1C && N1C->isAllOnesValue() && 7090 N2C && N2C->isNullValue() && 7091 RHSC && RHSC->isNullValue()) { 7092 SDValue CmpOp0 = Cmp.getOperand(0); 7093 Cmp = DAG.getNode(X86ISD::CMP, dl, MVT::i32, 7094 CmpOp0, DAG.getConstant(1, CmpOp0.getValueType())); 7095 return DAG.getNode(X86ISD::SETCC_CARRY, dl, Op.getValueType(), 7096 DAG.getConstant(X86::COND_B, MVT::i8), Cmp); 7097 } 7098 } 7099 } 7100 7101 // Look pass (and (setcc_carry (cmp ...)), 1). 7102 if (Cond.getOpcode() == ISD::AND && 7103 Cond.getOperand(0).getOpcode() == X86ISD::SETCC_CARRY) { 7104 ConstantSDNode *C = dyn_cast<ConstantSDNode>(Cond.getOperand(1)); 7105 if (C && C->getAPIntValue() == 1) 7106 Cond = Cond.getOperand(0); 7107 } 7108 7109 // If condition flag is set by a X86ISD::CMP, then use it as the condition 7110 // setting operand in place of the X86ISD::SETCC. 7111 if (Cond.getOpcode() == X86ISD::SETCC || 7112 Cond.getOpcode() == X86ISD::SETCC_CARRY) { 7113 CC = Cond.getOperand(0); 7114 7115 SDValue Cmp = Cond.getOperand(1); 7116 unsigned Opc = Cmp.getOpcode(); 7117 EVT VT = Op.getValueType(); 7118 7119 bool IllegalFPCMov = false; 7120 if (VT.isFloatingPoint() && !VT.isVector() && 7121 !isScalarFPTypeInSSEReg(VT)) // FPStack? 7122 IllegalFPCMov = !hasFPCMov(cast<ConstantSDNode>(CC)->getSExtValue()); 7123 7124 if ((isX86LogicalCmp(Cmp) && !IllegalFPCMov) || 7125 Opc == X86ISD::BT) { // FIXME 7126 Cond = Cmp; 7127 addTest = false; 7128 } 7129 } 7130 7131 if (addTest) { 7132 // Look pass the truncate. 7133 if (Cond.getOpcode() == ISD::TRUNCATE) 7134 Cond = Cond.getOperand(0); 7135 7136 // We know the result of AND is compared against zero. Try to match 7137 // it to BT. 7138 if (Cond.getOpcode() == ISD::AND && Cond.hasOneUse()) { 7139 SDValue NewSetCC = LowerToBT(Cond, ISD::SETNE, dl, DAG); 7140 if (NewSetCC.getNode()) { 7141 CC = NewSetCC.getOperand(0); 7142 Cond = NewSetCC.getOperand(1); 7143 addTest = false; 7144 } 7145 } 7146 } 7147 7148 if (addTest) { 7149 CC = DAG.getConstant(X86::COND_NE, MVT::i8); 7150 Cond = EmitTest(Cond, X86::COND_NE, DAG); 7151 } 7152 7153 // X86ISD::CMOV means set the result (which is operand 1) to the RHS if 7154 // condition is true. 7155 SDVTList VTs = DAG.getVTList(Op.getValueType(), MVT::Flag); 7156 SDValue Ops[] = { Op2, Op1, CC, Cond }; 7157 return DAG.getNode(X86ISD::CMOV, dl, VTs, Ops, array_lengthof(Ops)); 7158 } 7159 7160 // isAndOrOfSingleUseSetCCs - Return true if node is an ISD::AND or 7161 // ISD::OR of two X86ISD::SETCC nodes each of which has no other use apart 7162 // from the AND / OR. 7163 static bool isAndOrOfSetCCs(SDValue Op, unsigned &Opc) { 7164 Opc = Op.getOpcode(); 7165 if (Opc != ISD::OR && Opc != ISD::AND) 7166 return false; 7167 return (Op.getOperand(0).getOpcode() == X86ISD::SETCC && 7168 Op.getOperand(0).hasOneUse() && 7169 Op.getOperand(1).getOpcode() == X86ISD::SETCC && 7170 Op.getOperand(1).hasOneUse()); 7171 } 7172 7173 // isXor1OfSetCC - Return true if node is an ISD::XOR of a X86ISD::SETCC and 7174 // 1 and that the SETCC node has a single use. 7175 static bool isXor1OfSetCC(SDValue Op) { 7176 if (Op.getOpcode() != ISD::XOR) 7177 return false; 7178 ConstantSDNode *N1C = dyn_cast<ConstantSDNode>(Op.getOperand(1)); 7179 if (N1C && N1C->getAPIntValue() == 1) { 7180 return Op.getOperand(0).getOpcode() == X86ISD::SETCC && 7181 Op.getOperand(0).hasOneUse(); 7182 } 7183 return false; 7184 } 7185 7186 SDValue X86TargetLowering::LowerBRCOND(SDValue Op, SelectionDAG &DAG) const { 7187 bool addTest = true; 7188 SDValue Chain = Op.getOperand(0); 7189 SDValue Cond = Op.getOperand(1); 7190 SDValue Dest = Op.getOperand(2); 7191 DebugLoc dl = Op.getDebugLoc(); 7192 SDValue CC; 7193 7194 if (Cond.getOpcode() == ISD::SETCC) { 7195 SDValue NewCond = LowerSETCC(Cond, DAG); 7196 if (NewCond.getNode()) 7197 Cond = NewCond; 7198 } 7199 #if 0 7200 // FIXME: LowerXALUO doesn't handle these!! 7201 else if (Cond.getOpcode() == X86ISD::ADD || 7202 Cond.getOpcode() == X86ISD::SUB || 7203 Cond.getOpcode() == X86ISD::SMUL || 7204 Cond.getOpcode() == X86ISD::UMUL) 7205 Cond = LowerXALUO(Cond, DAG); 7206 #endif 7207 7208 // Look pass (and (setcc_carry (cmp ...)), 1). 7209 if (Cond.getOpcode() == ISD::AND && 7210 Cond.getOperand(0).getOpcode() == X86ISD::SETCC_CARRY) { 7211 ConstantSDNode *C = dyn_cast<ConstantSDNode>(Cond.getOperand(1)); 7212 if (C && C->getAPIntValue() == 1) 7213 Cond = Cond.getOperand(0); 7214 } 7215 7216 // If condition flag is set by a X86ISD::CMP, then use it as the condition 7217 // setting operand in place of the X86ISD::SETCC. 7218 if (Cond.getOpcode() == X86ISD::SETCC || 7219 Cond.getOpcode() == X86ISD::SETCC_CARRY) { 7220 CC = Cond.getOperand(0); 7221 7222 SDValue Cmp = Cond.getOperand(1); 7223 unsigned Opc = Cmp.getOpcode(); 7224 // FIXME: WHY THE SPECIAL CASING OF LogicalCmp?? 7225 if (isX86LogicalCmp(Cmp) || Opc == X86ISD::BT) { 7226 Cond = Cmp; 7227 addTest = false; 7228 } else { 7229 switch (cast<ConstantSDNode>(CC)->getZExtValue()) { 7230 default: break; 7231 case X86::COND_O: 7232 case X86::COND_B: 7233 // These can only come from an arithmetic instruction with overflow, 7234 // e.g. SADDO, UADDO. 7235 Cond = Cond.getNode()->getOperand(1); 7236 addTest = false; 7237 break; 7238 } 7239 } 7240 } else { 7241 unsigned CondOpc; 7242 if (Cond.hasOneUse() && isAndOrOfSetCCs(Cond, CondOpc)) { 7243 SDValue Cmp = Cond.getOperand(0).getOperand(1); 7244 if (CondOpc == ISD::OR) { 7245 // Also, recognize the pattern generated by an FCMP_UNE. We can emit 7246 // two branches instead of an explicit OR instruction with a 7247 // separate test. 7248 if (Cmp == Cond.getOperand(1).getOperand(1) && 7249 isX86LogicalCmp(Cmp)) { 7250 CC = Cond.getOperand(0).getOperand(0); 7251 Chain = DAG.getNode(X86ISD::BRCOND, dl, Op.getValueType(), 7252 Chain, Dest, CC, Cmp); 7253 CC = Cond.getOperand(1).getOperand(0); 7254 Cond = Cmp; 7255 addTest = false; 7256 } 7257 } else { // ISD::AND 7258 // Also, recognize the pattern generated by an FCMP_OEQ. We can emit 7259 // two branches instead of an explicit AND instruction with a 7260 // separate test. However, we only do this if this block doesn't 7261 // have a fall-through edge, because this requires an explicit 7262 // jmp when the condition is false. 7263 if (Cmp == Cond.getOperand(1).getOperand(1) && 7264 isX86LogicalCmp(Cmp) && 7265 Op.getNode()->hasOneUse()) { 7266 X86::CondCode CCode = 7267 (X86::CondCode)Cond.getOperand(0).getConstantOperandVal(0); 7268 CCode = X86::GetOppositeBranchCondition(CCode); 7269 CC = DAG.getConstant(CCode, MVT::i8); 7270 SDNode *User = *Op.getNode()->use_begin(); 7271 // Look for an unconditional branch following this conditional branch. 7272 // We need this because we need to reverse the successors in order 7273 // to implement FCMP_OEQ. 7274 if (User->getOpcode() == ISD::BR) { 7275 SDValue FalseBB = User->getOperand(1); 7276 SDNode *NewBR = 7277 DAG.UpdateNodeOperands(User, User->getOperand(0), Dest); 7278 assert(NewBR == User); 7279 (void)NewBR; 7280 Dest = FalseBB; 7281 7282 Chain = DAG.getNode(X86ISD::BRCOND, dl, Op.getValueType(), 7283 Chain, Dest, CC, Cmp); 7284 X86::CondCode CCode = 7285 (X86::CondCode)Cond.getOperand(1).getConstantOperandVal(0); 7286 CCode = X86::GetOppositeBranchCondition(CCode); 7287 CC = DAG.getConstant(CCode, MVT::i8); 7288 Cond = Cmp; 7289 addTest = false; 7290 } 7291 } 7292 } 7293 } else if (Cond.hasOneUse() && isXor1OfSetCC(Cond)) { 7294 // Recognize for xorb (setcc), 1 patterns. The xor inverts the condition. 7295 // It should be transformed during dag combiner except when the condition 7296 // is set by a arithmetics with overflow node. 7297 X86::CondCode CCode = 7298 (X86::CondCode)Cond.getOperand(0).getConstantOperandVal(0); 7299 CCode = X86::GetOppositeBranchCondition(CCode); 7300 CC = DAG.getConstant(CCode, MVT::i8); 7301 Cond = Cond.getOperand(0).getOperand(1); 7302 addTest = false; 7303 } 7304 } 7305 7306 if (addTest) { 7307 // Look pass the truncate. 7308 if (Cond.getOpcode() == ISD::TRUNCATE) 7309 Cond = Cond.getOperand(0); 7310 7311 // We know the result of AND is compared against zero. Try to match 7312 // it to BT. 7313 if (Cond.getOpcode() == ISD::AND && Cond.hasOneUse()) { 7314 SDValue NewSetCC = LowerToBT(Cond, ISD::SETNE, dl, DAG); 7315 if (NewSetCC.getNode()) { 7316 CC = NewSetCC.getOperand(0); 7317 Cond = NewSetCC.getOperand(1); 7318 addTest = false; 7319 } 7320 } 7321 } 7322 7323 if (addTest) { 7324 CC = DAG.getConstant(X86::COND_NE, MVT::i8); 7325 Cond = EmitTest(Cond, X86::COND_NE, DAG); 7326 } 7327 return DAG.getNode(X86ISD::BRCOND, dl, Op.getValueType(), 7328 Chain, Dest, CC, Cond); 7329 } 7330 7331 7332 // Lower dynamic stack allocation to _alloca call for Cygwin/Mingw targets. 7333 // Calls to _alloca is needed to probe the stack when allocating more than 4k 7334 // bytes in one go. Touching the stack at 4K increments is necessary to ensure 7335 // that the guard pages used by the OS virtual memory manager are allocated in 7336 // correct sequence. 7337 SDValue 7338 X86TargetLowering::LowerDYNAMIC_STACKALLOC(SDValue Op, 7339 SelectionDAG &DAG) const { 7340 assert(Subtarget->isTargetCygMing() && 7341 "This should be used only on Cygwin/Mingw targets"); 7342 DebugLoc dl = Op.getDebugLoc(); 7343 7344 // Get the inputs. 7345 SDValue Chain = Op.getOperand(0); 7346 SDValue Size = Op.getOperand(1); 7347 // FIXME: Ensure alignment here 7348 7349 SDValue Flag; 7350 7351 EVT SPTy = Subtarget->is64Bit() ? MVT::i64 : MVT::i32; 7352 7353 Chain = DAG.getCopyToReg(Chain, dl, X86::EAX, Size, Flag); 7354 Flag = Chain.getValue(1); 7355 7356 SDVTList NodeTys = DAG.getVTList(MVT::Other, MVT::Flag); 7357 7358 Chain = DAG.getNode(X86ISD::MINGW_ALLOCA, dl, NodeTys, Chain, Flag); 7359 Flag = Chain.getValue(1); 7360 7361 Chain = DAG.getCopyFromReg(Chain, dl, X86StackPtr, SPTy).getValue(1); 7362 7363 SDValue Ops1[2] = { Chain.getValue(0), Chain }; 7364 return DAG.getMergeValues(Ops1, 2, dl); 7365 } 7366 7367 SDValue X86TargetLowering::LowerVASTART(SDValue Op, SelectionDAG &DAG) const { 7368 MachineFunction &MF = DAG.getMachineFunction(); 7369 X86MachineFunctionInfo *FuncInfo = MF.getInfo<X86MachineFunctionInfo>(); 7370 7371 const Value *SV = cast<SrcValueSDNode>(Op.getOperand(2))->getValue(); 7372 DebugLoc dl = Op.getDebugLoc(); 7373 7374 if (!Subtarget->is64Bit()) { 7375 // vastart just stores the address of the VarArgsFrameIndex slot into the 7376 // memory location argument. 7377 SDValue FR = DAG.getFrameIndex(FuncInfo->getVarArgsFrameIndex(), 7378 getPointerTy()); 7379 return DAG.getStore(Op.getOperand(0), dl, FR, Op.getOperand(1), SV, 0, 7380 false, false, 0); 7381 } 7382 7383 // __va_list_tag: 7384 // gp_offset (0 - 6 * 8) 7385 // fp_offset (48 - 48 + 8 * 16) 7386 // overflow_arg_area (point to parameters coming in memory). 7387 // reg_save_area 7388 SmallVector<SDValue, 8> MemOps; 7389 SDValue FIN = Op.getOperand(1); 7390 // Store gp_offset 7391 SDValue Store = DAG.getStore(Op.getOperand(0), dl, 7392 DAG.getConstant(FuncInfo->getVarArgsGPOffset(), 7393 MVT::i32), 7394 FIN, SV, 0, false, false, 0); 7395 MemOps.push_back(Store); 7396 7397 // Store fp_offset 7398 FIN = DAG.getNode(ISD::ADD, dl, getPointerTy(), 7399 FIN, DAG.getIntPtrConstant(4)); 7400 Store = DAG.getStore(Op.getOperand(0), dl, 7401 DAG.getConstant(FuncInfo->getVarArgsFPOffset(), 7402 MVT::i32), 7403 FIN, SV, 4, false, false, 0); 7404 MemOps.push_back(Store); 7405 7406 // Store ptr to overflow_arg_area 7407 FIN = DAG.getNode(ISD::ADD, dl, getPointerTy(), 7408 FIN, DAG.getIntPtrConstant(4)); 7409 SDValue OVFIN = DAG.getFrameIndex(FuncInfo->getVarArgsFrameIndex(), 7410 getPointerTy()); 7411 Store = DAG.getStore(Op.getOperand(0), dl, OVFIN, FIN, SV, 8, 7412 false, false, 0); 7413 MemOps.push_back(Store); 7414 7415 // Store ptr to reg_save_area. 7416 FIN = DAG.getNode(ISD::ADD, dl, getPointerTy(), 7417 FIN, DAG.getIntPtrConstant(8)); 7418 SDValue RSFIN = DAG.getFrameIndex(FuncInfo->getRegSaveFrameIndex(), 7419 getPointerTy()); 7420 Store = DAG.getStore(Op.getOperand(0), dl, RSFIN, FIN, SV, 16, 7421 false, false, 0); 7422 MemOps.push_back(Store); 7423 return DAG.getNode(ISD::TokenFactor, dl, MVT::Other, 7424 &MemOps[0], MemOps.size()); 7425 } 7426 7427 SDValue X86TargetLowering::LowerVAARG(SDValue Op, SelectionDAG &DAG) const { 7428 // X86-64 va_list is a struct { i32, i32, i8*, i8* }. 7429 assert(Subtarget->is64Bit() && "This code only handles 64-bit va_arg!"); 7430 7431 report_fatal_error("VAArgInst is not yet implemented for x86-64!"); 7432 return SDValue(); 7433 } 7434 7435 SDValue X86TargetLowering::LowerVACOPY(SDValue Op, SelectionDAG &DAG) const { 7436 // X86-64 va_list is a struct { i32, i32, i8*, i8* }. 7437 assert(Subtarget->is64Bit() && "This code only handles 64-bit va_copy!"); 7438 SDValue Chain = Op.getOperand(0); 7439 SDValue DstPtr = Op.getOperand(1); 7440 SDValue SrcPtr = Op.getOperand(2); 7441 const Value *DstSV = cast<SrcValueSDNode>(Op.getOperand(3))->getValue(); 7442 const Value *SrcSV = cast<SrcValueSDNode>(Op.getOperand(4))->getValue(); 7443 DebugLoc dl = Op.getDebugLoc(); 7444 7445 return DAG.getMemcpy(Chain, dl, DstPtr, SrcPtr, 7446 DAG.getIntPtrConstant(24), 8, /*isVolatile*/false, 7447 false, DstSV, 0, SrcSV, 0); 7448 } 7449 7450 SDValue 7451 X86TargetLowering::LowerINTRINSIC_WO_CHAIN(SDValue Op, SelectionDAG &DAG) const { 7452 DebugLoc dl = Op.getDebugLoc(); 7453 unsigned IntNo = cast<ConstantSDNode>(Op.getOperand(0))->getZExtValue(); 7454 switch (IntNo) { 7455 default: return SDValue(); // Don't custom lower most intrinsics. 7456 // Comparison intrinsics. 7457 case Intrinsic::x86_sse_comieq_ss: 7458 case Intrinsic::x86_sse_comilt_ss: 7459 case Intrinsic::x86_sse_comile_ss: 7460 case Intrinsic::x86_sse_comigt_ss: 7461 case Intrinsic::x86_sse_comige_ss: 7462 case Intrinsic::x86_sse_comineq_ss: 7463 case Intrinsic::x86_sse_ucomieq_ss: 7464 case Intrinsic::x86_sse_ucomilt_ss: 7465 case Intrinsic::x86_sse_ucomile_ss: 7466 case Intrinsic::x86_sse_ucomigt_ss: 7467 case Intrinsic::x86_sse_ucomige_ss: 7468 case Intrinsic::x86_sse_ucomineq_ss: 7469 case Intrinsic::x86_sse2_comieq_sd: 7470 case Intrinsic::x86_sse2_comilt_sd: 7471 case Intrinsic::x86_sse2_comile_sd: 7472 case Intrinsic::x86_sse2_comigt_sd: 7473 case Intrinsic::x86_sse2_comige_sd: 7474 case Intrinsic::x86_sse2_comineq_sd: 7475 case Intrinsic::x86_sse2_ucomieq_sd: 7476 case Intrinsic::x86_sse2_ucomilt_sd: 7477 case Intrinsic::x86_sse2_ucomile_sd: 7478 case Intrinsic::x86_sse2_ucomigt_sd: 7479 case Intrinsic::x86_sse2_ucomige_sd: 7480 case Intrinsic::x86_sse2_ucomineq_sd: { 7481 unsigned Opc = 0; 7482 ISD::CondCode CC = ISD::SETCC_INVALID; 7483 switch (IntNo) { 7484 default: break; 7485 case Intrinsic::x86_sse_comieq_ss: 7486 case Intrinsic::x86_sse2_comieq_sd: 7487 Opc = X86ISD::COMI; 7488 CC = ISD::SETEQ; 7489 break; 7490 case Intrinsic::x86_sse_comilt_ss: 7491 case Intrinsic::x86_sse2_comilt_sd: 7492 Opc = X86ISD::COMI; 7493 CC = ISD::SETLT; 7494 break; 7495 case Intrinsic::x86_sse_comile_ss: 7496 case Intrinsic::x86_sse2_comile_sd: 7497 Opc = X86ISD::COMI; 7498 CC = ISD::SETLE; 7499 break; 7500 case Intrinsic::x86_sse_comigt_ss: 7501 case Intrinsic::x86_sse2_comigt_sd: 7502 Opc = X86ISD::COMI; 7503 CC = ISD::SETGT; 7504 break; 7505 case Intrinsic::x86_sse_comige_ss: 7506 case Intrinsic::x86_sse2_comige_sd: 7507 Opc = X86ISD::COMI; 7508 CC = ISD::SETGE; 7509 break; 7510 case Intrinsic::x86_sse_comineq_ss: 7511 case Intrinsic::x86_sse2_comineq_sd: 7512 Opc = X86ISD::COMI; 7513 CC = ISD::SETNE; 7514 break; 7515 case Intrinsic::x86_sse_ucomieq_ss: 7516 case Intrinsic::x86_sse2_ucomieq_sd: 7517 Opc = X86ISD::UCOMI; 7518 CC = ISD::SETEQ; 7519 break; 7520 case Intrinsic::x86_sse_ucomilt_ss: 7521 case Intrinsic::x86_sse2_ucomilt_sd: 7522 Opc = X86ISD::UCOMI; 7523 CC = ISD::SETLT; 7524 break; 7525 case Intrinsic::x86_sse_ucomile_ss: 7526 case Intrinsic::x86_sse2_ucomile_sd: 7527 Opc = X86ISD::UCOMI; 7528 CC = ISD::SETLE; 7529 break; 7530 case Intrinsic::x86_sse_ucomigt_ss: 7531 case Intrinsic::x86_sse2_ucomigt_sd: 7532 Opc = X86ISD::UCOMI; 7533 CC = ISD::SETGT; 7534 break; 7535 case Intrinsic::x86_sse_ucomige_ss: 7536 case Intrinsic::x86_sse2_ucomige_sd: 7537 Opc = X86ISD::UCOMI; 7538 CC = ISD::SETGE; 7539 break; 7540 case Intrinsic::x86_sse_ucomineq_ss: 7541 case Intrinsic::x86_sse2_ucomineq_sd: 7542 Opc = X86ISD::UCOMI; 7543 CC = ISD::SETNE; 7544 break; 7545 } 7546 7547 SDValue LHS = Op.getOperand(1); 7548 SDValue RHS = Op.getOperand(2); 7549 unsigned X86CC = TranslateX86CC(CC, true, LHS, RHS, DAG); 7550 assert(X86CC != X86::COND_INVALID && "Unexpected illegal condition!"); 7551 SDValue Cond = DAG.getNode(Opc, dl, MVT::i32, LHS, RHS); 7552 SDValue SetCC = DAG.getNode(X86ISD::SETCC, dl, MVT::i8, 7553 DAG.getConstant(X86CC, MVT::i8), Cond); 7554 return DAG.getNode(ISD::ZERO_EXTEND, dl, MVT::i32, SetCC); 7555 } 7556 // ptest and testp intrinsics. The intrinsic these come from are designed to 7557 // return an integer value, not just an instruction so lower it to the ptest 7558 // or testp pattern and a setcc for the result. 7559 case Intrinsic::x86_sse41_ptestz: 7560 case Intrinsic::x86_sse41_ptestc: 7561 case Intrinsic::x86_sse41_ptestnzc: 7562 case Intrinsic::x86_avx_ptestz_256: 7563 case Intrinsic::x86_avx_ptestc_256: 7564 case Intrinsic::x86_avx_ptestnzc_256: 7565 case Intrinsic::x86_avx_vtestz_ps: 7566 case Intrinsic::x86_avx_vtestc_ps: 7567 case Intrinsic::x86_avx_vtestnzc_ps: 7568 case Intrinsic::x86_avx_vtestz_pd: 7569 case Intrinsic::x86_avx_vtestc_pd: 7570 case Intrinsic::x86_avx_vtestnzc_pd: 7571 case Intrinsic::x86_avx_vtestz_ps_256: 7572 case Intrinsic::x86_avx_vtestc_ps_256: 7573 case Intrinsic::x86_avx_vtestnzc_ps_256: 7574 case Intrinsic::x86_avx_vtestz_pd_256: 7575 case Intrinsic::x86_avx_vtestc_pd_256: 7576 case Intrinsic::x86_avx_vtestnzc_pd_256: { 7577 bool IsTestPacked = false; 7578 unsigned X86CC = 0; 7579 switch (IntNo) { 7580 default: llvm_unreachable("Bad fallthrough in Intrinsic lowering."); 7581 case Intrinsic::x86_avx_vtestz_ps: 7582 case Intrinsic::x86_avx_vtestz_pd: 7583 case Intrinsic::x86_avx_vtestz_ps_256: 7584 case Intrinsic::x86_avx_vtestz_pd_256: 7585 IsTestPacked = true; // Fallthrough 7586 case Intrinsic::x86_sse41_ptestz: 7587 case Intrinsic::x86_avx_ptestz_256: 7588 // ZF = 1 7589 X86CC = X86::COND_E; 7590 break; 7591 case Intrinsic::x86_avx_vtestc_ps: 7592 case Intrinsic::x86_avx_vtestc_pd: 7593 case Intrinsic::x86_avx_vtestc_ps_256: 7594 case Intrinsic::x86_avx_vtestc_pd_256: 7595 IsTestPacked = true; // Fallthrough 7596 case Intrinsic::x86_sse41_ptestc: 7597 case Intrinsic::x86_avx_ptestc_256: 7598 // CF = 1 7599 X86CC = X86::COND_B; 7600 break; 7601 case Intrinsic::x86_avx_vtestnzc_ps: 7602 case Intrinsic::x86_avx_vtestnzc_pd: 7603 case Intrinsic::x86_avx_vtestnzc_ps_256: 7604 case Intrinsic::x86_avx_vtestnzc_pd_256: 7605 IsTestPacked = true; // Fallthrough 7606 case Intrinsic::x86_sse41_ptestnzc: 7607 case Intrinsic::x86_avx_ptestnzc_256: 7608 // ZF and CF = 0 7609 X86CC = X86::COND_A; 7610 break; 7611 } 7612 7613 SDValue LHS = Op.getOperand(1); 7614 SDValue RHS = Op.getOperand(2); 7615 unsigned TestOpc = IsTestPacked ? X86ISD::TESTP : X86ISD::PTEST; 7616 SDValue Test = DAG.getNode(TestOpc, dl, MVT::i32, LHS, RHS); 7617 SDValue CC = DAG.getConstant(X86CC, MVT::i8); 7618 SDValue SetCC = DAG.getNode(X86ISD::SETCC, dl, MVT::i8, CC, Test); 7619 return DAG.getNode(ISD::ZERO_EXTEND, dl, MVT::i32, SetCC); 7620 } 7621 7622 // Fix vector shift instructions where the last operand is a non-immediate 7623 // i32 value. 7624 case Intrinsic::x86_sse2_pslli_w: 7625 case Intrinsic::x86_sse2_pslli_d: 7626 case Intrinsic::x86_sse2_pslli_q: 7627 case Intrinsic::x86_sse2_psrli_w: 7628 case Intrinsic::x86_sse2_psrli_d: 7629 case Intrinsic::x86_sse2_psrli_q: 7630 case Intrinsic::x86_sse2_psrai_w: 7631 case Intrinsic::x86_sse2_psrai_d: 7632 case Intrinsic::x86_mmx_pslli_w: 7633 case Intrinsic::x86_mmx_pslli_d: 7634 case Intrinsic::x86_mmx_pslli_q: 7635 case Intrinsic::x86_mmx_psrli_w: 7636 case Intrinsic::x86_mmx_psrli_d: 7637 case Intrinsic::x86_mmx_psrli_q: 7638 case Intrinsic::x86_mmx_psrai_w: 7639 case Intrinsic::x86_mmx_psrai_d: { 7640 SDValue ShAmt = Op.getOperand(2); 7641 if (isa<ConstantSDNode>(ShAmt)) 7642 return SDValue(); 7643 7644 unsigned NewIntNo = 0; 7645 EVT ShAmtVT = MVT::v4i32; 7646 switch (IntNo) { 7647 case Intrinsic::x86_sse2_pslli_w: 7648 NewIntNo = Intrinsic::x86_sse2_psll_w; 7649 break; 7650 case Intrinsic::x86_sse2_pslli_d: 7651 NewIntNo = Intrinsic::x86_sse2_psll_d; 7652 break; 7653 case Intrinsic::x86_sse2_pslli_q: 7654 NewIntNo = Intrinsic::x86_sse2_psll_q; 7655 break; 7656 case Intrinsic::x86_sse2_psrli_w: 7657 NewIntNo = Intrinsic::x86_sse2_psrl_w; 7658 break; 7659 case Intrinsic::x86_sse2_psrli_d: 7660 NewIntNo = Intrinsic::x86_sse2_psrl_d; 7661 break; 7662 case Intrinsic::x86_sse2_psrli_q: 7663 NewIntNo = Intrinsic::x86_sse2_psrl_q; 7664 break; 7665 case Intrinsic::x86_sse2_psrai_w: 7666 NewIntNo = Intrinsic::x86_sse2_psra_w; 7667 break; 7668 case Intrinsic::x86_sse2_psrai_d: 7669 NewIntNo = Intrinsic::x86_sse2_psra_d; 7670 break; 7671 default: { 7672 ShAmtVT = MVT::v2i32; 7673 switch (IntNo) { 7674 case Intrinsic::x86_mmx_pslli_w: 7675 NewIntNo = Intrinsic::x86_mmx_psll_w; 7676 break; 7677 case Intrinsic::x86_mmx_pslli_d: 7678 NewIntNo = Intrinsic::x86_mmx_psll_d; 7679 break; 7680 case Intrinsic::x86_mmx_pslli_q: 7681 NewIntNo = Intrinsic::x86_mmx_psll_q; 7682 break; 7683 case Intrinsic::x86_mmx_psrli_w: 7684 NewIntNo = Intrinsic::x86_mmx_psrl_w; 7685 break; 7686 case Intrinsic::x86_mmx_psrli_d: 7687 NewIntNo = Intrinsic::x86_mmx_psrl_d; 7688 break; 7689 case Intrinsic::x86_mmx_psrli_q: 7690 NewIntNo = Intrinsic::x86_mmx_psrl_q; 7691 break; 7692 case Intrinsic::x86_mmx_psrai_w: 7693 NewIntNo = Intrinsic::x86_mmx_psra_w; 7694 break; 7695 case Intrinsic::x86_mmx_psrai_d: 7696 NewIntNo = Intrinsic::x86_mmx_psra_d; 7697 break; 7698 default: llvm_unreachable("Impossible intrinsic"); // Can't reach here. 7699 } 7700 break; 7701 } 7702 } 7703 7704 // The vector shift intrinsics with scalars uses 32b shift amounts but 7705 // the sse2/mmx shift instructions reads 64 bits. Set the upper 32 bits 7706 // to be zero. 7707 SDValue ShOps[4]; 7708 ShOps[0] = ShAmt; 7709 ShOps[1] = DAG.getConstant(0, MVT::i32); 7710 if (ShAmtVT == MVT::v4i32) { 7711 ShOps[2] = DAG.getUNDEF(MVT::i32); 7712 ShOps[3] = DAG.getUNDEF(MVT::i32); 7713 ShAmt = DAG.getNode(ISD::BUILD_VECTOR, dl, ShAmtVT, &ShOps[0], 4); 7714 } else { 7715 ShAmt = DAG.getNode(ISD::BUILD_VECTOR, dl, ShAmtVT, &ShOps[0], 2); 7716 } 7717 7718 EVT VT = Op.getValueType(); 7719 ShAmt = DAG.getNode(ISD::BIT_CONVERT, dl, VT, ShAmt); 7720 return DAG.getNode(ISD::INTRINSIC_WO_CHAIN, dl, VT, 7721 DAG.getConstant(NewIntNo, MVT::i32), 7722 Op.getOperand(1), ShAmt); 7723 } 7724 } 7725 } 7726 7727 SDValue X86TargetLowering::LowerRETURNADDR(SDValue Op, 7728 SelectionDAG &DAG) const { 7729 MachineFrameInfo *MFI = DAG.getMachineFunction().getFrameInfo(); 7730 MFI->setReturnAddressIsTaken(true); 7731 7732 unsigned Depth = cast<ConstantSDNode>(Op.getOperand(0))->getZExtValue(); 7733 DebugLoc dl = Op.getDebugLoc(); 7734 7735 if (Depth > 0) { 7736 SDValue FrameAddr = LowerFRAMEADDR(Op, DAG); 7737 SDValue Offset = 7738 DAG.getConstant(TD->getPointerSize(), 7739 Subtarget->is64Bit() ? MVT::i64 : MVT::i32); 7740 return DAG.getLoad(getPointerTy(), dl, DAG.getEntryNode(), 7741 DAG.getNode(ISD::ADD, dl, getPointerTy(), 7742 FrameAddr, Offset), 7743 NULL, 0, false, false, 0); 7744 } 7745 7746 // Just load the return address. 7747 SDValue RetAddrFI = getReturnAddressFrameIndex(DAG); 7748 return DAG.getLoad(getPointerTy(), dl, DAG.getEntryNode(), 7749 RetAddrFI, NULL, 0, false, false, 0); 7750 } 7751 7752 SDValue X86TargetLowering::LowerFRAMEADDR(SDValue Op, SelectionDAG &DAG) const { 7753 MachineFrameInfo *MFI = DAG.getMachineFunction().getFrameInfo(); 7754 MFI->setFrameAddressIsTaken(true); 7755 7756 EVT VT = Op.getValueType(); 7757 DebugLoc dl = Op.getDebugLoc(); // FIXME probably not meaningful 7758 unsigned Depth = cast<ConstantSDNode>(Op.getOperand(0))->getZExtValue(); 7759 unsigned FrameReg = Subtarget->is64Bit() ? X86::RBP : X86::EBP; 7760 SDValue FrameAddr = DAG.getCopyFromReg(DAG.getEntryNode(), dl, FrameReg, VT); 7761 while (Depth--) 7762 FrameAddr = DAG.getLoad(VT, dl, DAG.getEntryNode(), FrameAddr, NULL, 0, 7763 false, false, 0); 7764 return FrameAddr; 7765 } 7766 7767 SDValue X86TargetLowering::LowerFRAME_TO_ARGS_OFFSET(SDValue Op, 7768 SelectionDAG &DAG) const { 7769 return DAG.getIntPtrConstant(2*TD->getPointerSize()); 7770 } 7771 7772 SDValue X86TargetLowering::LowerEH_RETURN(SDValue Op, SelectionDAG &DAG) const { 7773 MachineFunction &MF = DAG.getMachineFunction(); 7774 SDValue Chain = Op.getOperand(0); 7775 SDValue Offset = Op.getOperand(1); 7776 SDValue Handler = Op.getOperand(2); 7777 DebugLoc dl = Op.getDebugLoc(); 7778 7779 SDValue Frame = DAG.getCopyFromReg(DAG.getEntryNode(), dl, 7780 Subtarget->is64Bit() ? X86::RBP : X86::EBP, 7781 getPointerTy()); 7782 unsigned StoreAddrReg = (Subtarget->is64Bit() ? X86::RCX : X86::ECX); 7783 7784 SDValue StoreAddr = DAG.getNode(ISD::ADD, dl, getPointerTy(), Frame, 7785 DAG.getIntPtrConstant(TD->getPointerSize())); 7786 StoreAddr = DAG.getNode(ISD::ADD, dl, getPointerTy(), StoreAddr, Offset); 7787 Chain = DAG.getStore(Chain, dl, Handler, StoreAddr, NULL, 0, false, false, 0); 7788 Chain = DAG.getCopyToReg(Chain, dl, StoreAddrReg, StoreAddr); 7789 MF.getRegInfo().addLiveOut(StoreAddrReg); 7790 7791 return DAG.getNode(X86ISD::EH_RETURN, dl, 7792 MVT::Other, 7793 Chain, DAG.getRegister(StoreAddrReg, getPointerTy())); 7794 } 7795 7796 SDValue X86TargetLowering::LowerTRAMPOLINE(SDValue Op, 7797 SelectionDAG &DAG) const { 7798 SDValue Root = Op.getOperand(0); 7799 SDValue Trmp = Op.getOperand(1); // trampoline 7800 SDValue FPtr = Op.getOperand(2); // nested function 7801 SDValue Nest = Op.getOperand(3); // 'nest' parameter value 7802 DebugLoc dl = Op.getDebugLoc(); 7803 7804 const Value *TrmpAddr = cast<SrcValueSDNode>(Op.getOperand(4))->getValue(); 7805 7806 if (Subtarget->is64Bit()) { 7807 SDValue OutChains[6]; 7808 7809 // Large code-model. 7810 const unsigned char JMP64r = 0xFF; // 64-bit jmp through register opcode. 7811 const unsigned char MOV64ri = 0xB8; // X86::MOV64ri opcode. 7812 7813 const unsigned char N86R10 = RegInfo->getX86RegNum(X86::R10); 7814 const unsigned char N86R11 = RegInfo->getX86RegNum(X86::R11); 7815 7816 const unsigned char REX_WB = 0x40 | 0x08 | 0x01; // REX prefix 7817 7818 // Load the pointer to the nested function into R11. 7819 unsigned OpCode = ((MOV64ri | N86R11) << 8) | REX_WB; // movabsq r11 7820 SDValue Addr = Trmp; 7821 OutChains[0] = DAG.getStore(Root, dl, DAG.getConstant(OpCode, MVT::i16), 7822 Addr, TrmpAddr, 0, false, false, 0); 7823 7824 Addr = DAG.getNode(ISD::ADD, dl, MVT::i64, Trmp, 7825 DAG.getConstant(2, MVT::i64)); 7826 OutChains[1] = DAG.getStore(Root, dl, FPtr, Addr, TrmpAddr, 2, 7827 false, false, 2); 7828 7829 // Load the 'nest' parameter value into R10. 7830 // R10 is specified in X86CallingConv.td 7831 OpCode = ((MOV64ri | N86R10) << 8) | REX_WB; // movabsq r10 7832 Addr = DAG.getNode(ISD::ADD, dl, MVT::i64, Trmp, 7833 DAG.getConstant(10, MVT::i64)); 7834 OutChains[2] = DAG.getStore(Root, dl, DAG.getConstant(OpCode, MVT::i16), 7835 Addr, TrmpAddr, 10, false, false, 0); 7836 7837 Addr = DAG.getNode(ISD::ADD, dl, MVT::i64, Trmp, 7838 DAG.getConstant(12, MVT::i64)); 7839 OutChains[3] = DAG.getStore(Root, dl, Nest, Addr, TrmpAddr, 12, 7840 false, false, 2); 7841 7842 // Jump to the nested function. 7843 OpCode = (JMP64r << 8) | REX_WB; // jmpq *... 7844 Addr = DAG.getNode(ISD::ADD, dl, MVT::i64, Trmp, 7845 DAG.getConstant(20, MVT::i64)); 7846 OutChains[4] = DAG.getStore(Root, dl, DAG.getConstant(OpCode, MVT::i16), 7847 Addr, TrmpAddr, 20, false, false, 0); 7848 7849 unsigned char ModRM = N86R11 | (4 << 3) | (3 << 6); // ...r11 7850 Addr = DAG.getNode(ISD::ADD, dl, MVT::i64, Trmp, 7851 DAG.getConstant(22, MVT::i64)); 7852 OutChains[5] = DAG.getStore(Root, dl, DAG.getConstant(ModRM, MVT::i8), Addr, 7853 TrmpAddr, 22, false, false, 0); 7854 7855 SDValue Ops[] = 7856 { Trmp, DAG.getNode(ISD::TokenFactor, dl, MVT::Other, OutChains, 6) }; 7857 return DAG.getMergeValues(Ops, 2, dl); 7858 } else { 7859 const Function *Func = 7860 cast<Function>(cast<SrcValueSDNode>(Op.getOperand(5))->getValue()); 7861 CallingConv::ID CC = Func->getCallingConv(); 7862 unsigned NestReg; 7863 7864 switch (CC) { 7865 default: 7866 llvm_unreachable("Unsupported calling convention"); 7867 case CallingConv::C: 7868 case CallingConv::X86_StdCall: { 7869 // Pass 'nest' parameter in ECX. 7870 // Must be kept in sync with X86CallingConv.td 7871 NestReg = X86::ECX; 7872 7873 // Check that ECX wasn't needed by an 'inreg' parameter. 7874 const FunctionType *FTy = Func->getFunctionType(); 7875 const AttrListPtr &Attrs = Func->getAttributes(); 7876 7877 if (!Attrs.isEmpty() && !Func->isVarArg()) { 7878 unsigned InRegCount = 0; 7879 unsigned Idx = 1; 7880 7881 for (FunctionType::param_iterator I = FTy->param_begin(), 7882 E = FTy->param_end(); I != E; ++I, ++Idx) 7883 if (Attrs.paramHasAttr(Idx, Attribute::InReg)) 7884 // FIXME: should only count parameters that are lowered to integers. 7885 InRegCount += (TD->getTypeSizeInBits(*I) + 31) / 32; 7886 7887 if (InRegCount > 2) { 7888 report_fatal_error("Nest register in use - reduce number of inreg" 7889 " parameters!"); 7890 } 7891 } 7892 break; 7893 } 7894 case CallingConv::X86_FastCall: 7895 case CallingConv::X86_ThisCall: 7896 case CallingConv::Fast: 7897 // Pass 'nest' parameter in EAX. 7898 // Must be kept in sync with X86CallingConv.td 7899 NestReg = X86::EAX; 7900 break; 7901 } 7902 7903 SDValue OutChains[4]; 7904 SDValue Addr, Disp; 7905 7906 Addr = DAG.getNode(ISD::ADD, dl, MVT::i32, Trmp, 7907 DAG.getConstant(10, MVT::i32)); 7908 Disp = DAG.getNode(ISD::SUB, dl, MVT::i32, FPtr, Addr); 7909 7910 // This is storing the opcode for MOV32ri. 7911 const unsigned char MOV32ri = 0xB8; // X86::MOV32ri's opcode byte. 7912 const unsigned char N86Reg = RegInfo->getX86RegNum(NestReg); 7913 OutChains[0] = DAG.getStore(Root, dl, 7914 DAG.getConstant(MOV32ri|N86Reg, MVT::i8), 7915 Trmp, TrmpAddr, 0, false, false, 0); 7916 7917 Addr = DAG.getNode(ISD::ADD, dl, MVT::i32, Trmp, 7918 DAG.getConstant(1, MVT::i32)); 7919 OutChains[1] = DAG.getStore(Root, dl, Nest, Addr, TrmpAddr, 1, 7920 false, false, 1); 7921 7922 const unsigned char JMP = 0xE9; // jmp <32bit dst> opcode. 7923 Addr = DAG.getNode(ISD::ADD, dl, MVT::i32, Trmp, 7924 DAG.getConstant(5, MVT::i32)); 7925 OutChains[2] = DAG.getStore(Root, dl, DAG.getConstant(JMP, MVT::i8), Addr, 7926 TrmpAddr, 5, false, false, 1); 7927 7928 Addr = DAG.getNode(ISD::ADD, dl, MVT::i32, Trmp, 7929 DAG.getConstant(6, MVT::i32)); 7930 OutChains[3] = DAG.getStore(Root, dl, Disp, Addr, TrmpAddr, 6, 7931 false, false, 1); 7932 7933 SDValue Ops[] = 7934 { Trmp, DAG.getNode(ISD::TokenFactor, dl, MVT::Other, OutChains, 4) }; 7935 return DAG.getMergeValues(Ops, 2, dl); 7936 } 7937 } 7938 7939 SDValue X86TargetLowering::LowerFLT_ROUNDS_(SDValue Op, 7940 SelectionDAG &DAG) const { 7941 /* 7942 The rounding mode is in bits 11:10 of FPSR, and has the following 7943 settings: 7944 00 Round to nearest 7945 01 Round to -inf 7946 10 Round to +inf 7947 11 Round to 0 7948 7949 FLT_ROUNDS, on the other hand, expects the following: 7950 -1 Undefined 7951 0 Round to 0 7952 1 Round to nearest 7953 2 Round to +inf 7954 3 Round to -inf 7955 7956 To perform the conversion, we do: 7957 (((((FPSR & 0x800) >> 11) | ((FPSR & 0x400) >> 9)) + 1) & 3) 7958 */ 7959 7960 MachineFunction &MF = DAG.getMachineFunction(); 7961 const TargetMachine &TM = MF.getTarget(); 7962 const TargetFrameInfo &TFI = *TM.getFrameInfo(); 7963 unsigned StackAlignment = TFI.getStackAlignment(); 7964 EVT VT = Op.getValueType(); 7965 DebugLoc dl = Op.getDebugLoc(); 7966 7967 // Save FP Control Word to stack slot 7968 int SSFI = MF.getFrameInfo()->CreateStackObject(2, StackAlignment, false); 7969 SDValue StackSlot = DAG.getFrameIndex(SSFI, getPointerTy()); 7970 7971 SDValue Chain = DAG.getNode(X86ISD::FNSTCW16m, dl, MVT::Other, 7972 DAG.getEntryNode(), StackSlot); 7973 7974 // Load FP Control Word from stack slot 7975 SDValue CWD = DAG.getLoad(MVT::i16, dl, Chain, StackSlot, NULL, 0, 7976 false, false, 0); 7977 7978 // Transform as necessary 7979 SDValue CWD1 = 7980 DAG.getNode(ISD::SRL, dl, MVT::i16, 7981 DAG.getNode(ISD::AND, dl, MVT::i16, 7982 CWD, DAG.getConstant(0x800, MVT::i16)), 7983 DAG.getConstant(11, MVT::i8)); 7984 SDValue CWD2 = 7985 DAG.getNode(ISD::SRL, dl, MVT::i16, 7986 DAG.getNode(ISD::AND, dl, MVT::i16, 7987 CWD, DAG.getConstant(0x400, MVT::i16)), 7988 DAG.getConstant(9, MVT::i8)); 7989 7990 SDValue RetVal = 7991 DAG.getNode(ISD::AND, dl, MVT::i16, 7992 DAG.getNode(ISD::ADD, dl, MVT::i16, 7993 DAG.getNode(ISD::OR, dl, MVT::i16, CWD1, CWD2), 7994 DAG.getConstant(1, MVT::i16)), 7995 DAG.getConstant(3, MVT::i16)); 7996 7997 7998 return DAG.getNode((VT.getSizeInBits() < 16 ? 7999 ISD::TRUNCATE : ISD::ZERO_EXTEND), dl, VT, RetVal); 8000 } 8001 8002 SDValue X86TargetLowering::LowerCTLZ(SDValue Op, SelectionDAG &DAG) const { 8003 EVT VT = Op.getValueType(); 8004 EVT OpVT = VT; 8005 unsigned NumBits = VT.getSizeInBits(); 8006 DebugLoc dl = Op.getDebugLoc(); 8007 8008 Op = Op.getOperand(0); 8009 if (VT == MVT::i8) { 8010 // Zero extend to i32 since there is not an i8 bsr. 8011 OpVT = MVT::i32; 8012 Op = DAG.getNode(ISD::ZERO_EXTEND, dl, OpVT, Op); 8013 } 8014 8015 // Issue a bsr (scan bits in reverse) which also sets EFLAGS. 8016 SDVTList VTs = DAG.getVTList(OpVT, MVT::i32); 8017 Op = DAG.getNode(X86ISD::BSR, dl, VTs, Op); 8018 8019 // If src is zero (i.e. bsr sets ZF), returns NumBits. 8020 SDValue Ops[] = { 8021 Op, 8022 DAG.getConstant(NumBits+NumBits-1, OpVT), 8023 DAG.getConstant(X86::COND_E, MVT::i8), 8024 Op.getValue(1) 8025 }; 8026 Op = DAG.getNode(X86ISD::CMOV, dl, OpVT, Ops, array_lengthof(Ops)); 8027 8028 // Finally xor with NumBits-1. 8029 Op = DAG.getNode(ISD::XOR, dl, OpVT, Op, DAG.getConstant(NumBits-1, OpVT)); 8030 8031 if (VT == MVT::i8) 8032 Op = DAG.getNode(ISD::TRUNCATE, dl, MVT::i8, Op); 8033 return Op; 8034 } 8035 8036 SDValue X86TargetLowering::LowerCTTZ(SDValue Op, SelectionDAG &DAG) const { 8037 EVT VT = Op.getValueType(); 8038 EVT OpVT = VT; 8039 unsigned NumBits = VT.getSizeInBits(); 8040 DebugLoc dl = Op.getDebugLoc(); 8041 8042 Op = Op.getOperand(0); 8043 if (VT == MVT::i8) { 8044 OpVT = MVT::i32; 8045 Op = DAG.getNode(ISD::ZERO_EXTEND, dl, OpVT, Op); 8046 } 8047 8048 // Issue a bsf (scan bits forward) which also sets EFLAGS. 8049 SDVTList VTs = DAG.getVTList(OpVT, MVT::i32); 8050 Op = DAG.getNode(X86ISD::BSF, dl, VTs, Op); 8051 8052 // If src is zero (i.e. bsf sets ZF), returns NumBits. 8053 SDValue Ops[] = { 8054 Op, 8055 DAG.getConstant(NumBits, OpVT), 8056 DAG.getConstant(X86::COND_E, MVT::i8), 8057 Op.getValue(1) 8058 }; 8059 Op = DAG.getNode(X86ISD::CMOV, dl, OpVT, Ops, array_lengthof(Ops)); 8060 8061 if (VT == MVT::i8) 8062 Op = DAG.getNode(ISD::TRUNCATE, dl, MVT::i8, Op); 8063 return Op; 8064 } 8065 8066 SDValue X86TargetLowering::LowerMUL_V2I64(SDValue Op, SelectionDAG &DAG) const { 8067 EVT VT = Op.getValueType(); 8068 assert(VT == MVT::v2i64 && "Only know how to lower V2I64 multiply"); 8069 DebugLoc dl = Op.getDebugLoc(); 8070 8071 // ulong2 Ahi = __builtin_ia32_psrlqi128( a, 32); 8072 // ulong2 Bhi = __builtin_ia32_psrlqi128( b, 32); 8073 // ulong2 AloBlo = __builtin_ia32_pmuludq128( a, b ); 8074 // ulong2 AloBhi = __builtin_ia32_pmuludq128( a, Bhi ); 8075 // ulong2 AhiBlo = __builtin_ia32_pmuludq128( Ahi, b ); 8076 // 8077 // AloBhi = __builtin_ia32_psllqi128( AloBhi, 32 ); 8078 // AhiBlo = __builtin_ia32_psllqi128( AhiBlo, 32 ); 8079 // return AloBlo + AloBhi + AhiBlo; 8080 8081 SDValue A = Op.getOperand(0); 8082 SDValue B = Op.getOperand(1); 8083 8084 SDValue Ahi = DAG.getNode(ISD::INTRINSIC_WO_CHAIN, dl, VT, 8085 DAG.getConstant(Intrinsic::x86_sse2_psrli_q, MVT::i32), 8086 A, DAG.getConstant(32, MVT::i32)); 8087 SDValue Bhi = DAG.getNode(ISD::INTRINSIC_WO_CHAIN, dl, VT, 8088 DAG.getConstant(Intrinsic::x86_sse2_psrli_q, MVT::i32), 8089 B, DAG.getConstant(32, MVT::i32)); 8090 SDValue AloBlo = DAG.getNode(ISD::INTRINSIC_WO_CHAIN, dl, VT, 8091 DAG.getConstant(Intrinsic::x86_sse2_pmulu_dq, MVT::i32), 8092 A, B); 8093 SDValue AloBhi = DAG.getNode(ISD::INTRINSIC_WO_CHAIN, dl, VT, 8094 DAG.getConstant(Intrinsic::x86_sse2_pmulu_dq, MVT::i32), 8095 A, Bhi); 8096 SDValue AhiBlo = DAG.getNode(ISD::INTRINSIC_WO_CHAIN, dl, VT, 8097 DAG.getConstant(Intrinsic::x86_sse2_pmulu_dq, MVT::i32), 8098 Ahi, B); 8099 AloBhi = DAG.getNode(ISD::INTRINSIC_WO_CHAIN, dl, VT, 8100 DAG.getConstant(Intrinsic::x86_sse2_pslli_q, MVT::i32), 8101 AloBhi, DAG.getConstant(32, MVT::i32)); 8102 AhiBlo = DAG.getNode(ISD::INTRINSIC_WO_CHAIN, dl, VT, 8103 DAG.getConstant(Intrinsic::x86_sse2_pslli_q, MVT::i32), 8104 AhiBlo, DAG.getConstant(32, MVT::i32)); 8105 SDValue Res = DAG.getNode(ISD::ADD, dl, VT, AloBlo, AloBhi); 8106 Res = DAG.getNode(ISD::ADD, dl, VT, Res, AhiBlo); 8107 return Res; 8108 } 8109 8110 SDValue X86TargetLowering::LowerSHL(SDValue Op, SelectionDAG &DAG) const { 8111 EVT VT = Op.getValueType(); 8112 DebugLoc dl = Op.getDebugLoc(); 8113 SDValue R = Op.getOperand(0); 8114 8115 LLVMContext *Context = DAG.getContext(); 8116 8117 assert(Subtarget->hasSSE41() && "Cannot lower SHL without SSE4.1 or later"); 8118 8119 if (VT == MVT::v4i32) { 8120 Op = DAG.getNode(ISD::INTRINSIC_WO_CHAIN, dl, VT, 8121 DAG.getConstant(Intrinsic::x86_sse2_pslli_d, MVT::i32), 8122 Op.getOperand(1), DAG.getConstant(23, MVT::i32)); 8123 8124 ConstantInt *CI = ConstantInt::get(*Context, APInt(32, 0x3f800000U)); 8125 8126 std::vector<Constant*> CV(4, CI); 8127 Constant *C = ConstantVector::get(CV); 8128 SDValue CPIdx = DAG.getConstantPool(C, getPointerTy(), 16); 8129 SDValue Addend = DAG.getLoad(VT, dl, DAG.getEntryNode(), CPIdx, 8130 PseudoSourceValue::getConstantPool(), 0, 8131 false, false, 16); 8132 8133 Op = DAG.getNode(ISD::ADD, dl, VT, Op, Addend); 8134 Op = DAG.getNode(ISD::BIT_CONVERT, dl, MVT::v4f32, Op); 8135 Op = DAG.getNode(ISD::FP_TO_SINT, dl, VT, Op); 8136 return DAG.getNode(ISD::MUL, dl, VT, Op, R); 8137 } 8138 if (VT == MVT::v16i8) { 8139 // a = a << 5; 8140 Op = DAG.getNode(ISD::INTRINSIC_WO_CHAIN, dl, VT, 8141 DAG.getConstant(Intrinsic::x86_sse2_pslli_w, MVT::i32), 8142 Op.getOperand(1), DAG.getConstant(5, MVT::i32)); 8143 8144 ConstantInt *CM1 = ConstantInt::get(*Context, APInt(8, 15)); 8145 ConstantInt *CM2 = ConstantInt::get(*Context, APInt(8, 63)); 8146 8147 std::vector<Constant*> CVM1(16, CM1); 8148 std::vector<Constant*> CVM2(16, CM2); 8149 Constant *C = ConstantVector::get(CVM1); 8150 SDValue CPIdx = DAG.getConstantPool(C, getPointerTy(), 16); 8151 SDValue M = DAG.getLoad(VT, dl, DAG.getEntryNode(), CPIdx, 8152 PseudoSourceValue::getConstantPool(), 0, 8153 false, false, 16); 8154 8155 // r = pblendv(r, psllw(r & (char16)15, 4), a); 8156 M = DAG.getNode(ISD::AND, dl, VT, R, M); 8157 M = DAG.getNode(ISD::INTRINSIC_WO_CHAIN, dl, VT, 8158 DAG.getConstant(Intrinsic::x86_sse2_pslli_w, MVT::i32), M, 8159 DAG.getConstant(4, MVT::i32)); 8160 R = DAG.getNode(ISD::INTRINSIC_WO_CHAIN, dl, VT, 8161 DAG.getConstant(Intrinsic::x86_sse41_pblendvb, MVT::i32), 8162 R, M, Op); 8163 // a += a 8164 Op = DAG.getNode(ISD::ADD, dl, VT, Op, Op); 8165 8166 C = ConstantVector::get(CVM2); 8167 CPIdx = DAG.getConstantPool(C, getPointerTy(), 16); 8168 M = DAG.getLoad(VT, dl, DAG.getEntryNode(), CPIdx, 8169 PseudoSourceValue::getConstantPool(), 0, false, false, 16); 8170 8171 // r = pblendv(r, psllw(r & (char16)63, 2), a); 8172 M = DAG.getNode(ISD::AND, dl, VT, R, M); 8173 M = DAG.getNode(ISD::INTRINSIC_WO_CHAIN, dl, VT, 8174 DAG.getConstant(Intrinsic::x86_sse2_pslli_w, MVT::i32), M, 8175 DAG.getConstant(2, MVT::i32)); 8176 R = DAG.getNode(ISD::INTRINSIC_WO_CHAIN, dl, VT, 8177 DAG.getConstant(Intrinsic::x86_sse41_pblendvb, MVT::i32), 8178 R, M, Op); 8179 // a += a 8180 Op = DAG.getNode(ISD::ADD, dl, VT, Op, Op); 8181 8182 // return pblendv(r, r+r, a); 8183 R = DAG.getNode(ISD::INTRINSIC_WO_CHAIN, dl, VT, 8184 DAG.getConstant(Intrinsic::x86_sse41_pblendvb, MVT::i32), 8185 R, DAG.getNode(ISD::ADD, dl, VT, R, R), Op); 8186 return R; 8187 } 8188 return SDValue(); 8189 } 8190 8191 SDValue X86TargetLowering::LowerXALUO(SDValue Op, SelectionDAG &DAG) const { 8192 // Lower the "add/sub/mul with overflow" instruction into a regular ins plus 8193 // a "setcc" instruction that checks the overflow flag. The "brcond" lowering 8194 // looks for this combo and may remove the "setcc" instruction if the "setcc" 8195 // has only one use. 8196 SDNode *N = Op.getNode(); 8197 SDValue LHS = N->getOperand(0); 8198 SDValue RHS = N->getOperand(1); 8199 unsigned BaseOp = 0; 8200 unsigned Cond = 0; 8201 DebugLoc dl = Op.getDebugLoc(); 8202 8203 switch (Op.getOpcode()) { 8204 default: llvm_unreachable("Unknown ovf instruction!"); 8205 case ISD::SADDO: 8206 // A subtract of one will be selected as a INC. Note that INC doesn't 8207 // set CF, so we can't do this for UADDO. 8208 if (ConstantSDNode *C = dyn_cast<ConstantSDNode>(Op)) 8209 if (C->getAPIntValue() == 1) { 8210 BaseOp = X86ISD::INC; 8211 Cond = X86::COND_O; 8212 break; 8213 } 8214 BaseOp = X86ISD::ADD; 8215 Cond = X86::COND_O; 8216 break; 8217 case ISD::UADDO: 8218 BaseOp = X86ISD::ADD; 8219 Cond = X86::COND_B; 8220 break; 8221 case ISD::SSUBO: 8222 // A subtract of one will be selected as a DEC. Note that DEC doesn't 8223 // set CF, so we can't do this for USUBO. 8224 if (ConstantSDNode *C = dyn_cast<ConstantSDNode>(Op)) 8225 if (C->getAPIntValue() == 1) { 8226 BaseOp = X86ISD::DEC; 8227 Cond = X86::COND_O; 8228 break; 8229 } 8230 BaseOp = X86ISD::SUB; 8231 Cond = X86::COND_O; 8232 break; 8233 case ISD::USUBO: 8234 BaseOp = X86ISD::SUB; 8235 Cond = X86::COND_B; 8236 break; 8237 case ISD::SMULO: 8238 BaseOp = X86ISD::SMUL; 8239 Cond = X86::COND_O; 8240 break; 8241 case ISD::UMULO: 8242 BaseOp = X86ISD::UMUL; 8243 Cond = X86::COND_B; 8244 break; 8245 } 8246 8247 // Also sets EFLAGS. 8248 SDVTList VTs = DAG.getVTList(N->getValueType(0), MVT::i32); 8249 SDValue Sum = DAG.getNode(BaseOp, dl, VTs, LHS, RHS); 8250 8251 SDValue SetCC = 8252 DAG.getNode(X86ISD::SETCC, dl, N->getValueType(1), 8253 DAG.getConstant(Cond, MVT::i32), SDValue(Sum.getNode(), 1)); 8254 8255 DAG.ReplaceAllUsesOfValueWith(SDValue(N, 1), SetCC); 8256 return Sum; 8257 } 8258 8259 SDValue X86TargetLowering::LowerMEMBARRIER(SDValue Op, SelectionDAG &DAG) const{ 8260 DebugLoc dl = Op.getDebugLoc(); 8261 8262 if (!Subtarget->hasSSE2()) { 8263 SDValue Chain = Op.getOperand(0); 8264 SDValue Zero = DAG.getConstant(0, 8265 Subtarget->is64Bit() ? MVT::i64 : MVT::i32); 8266 SDValue Ops[] = { 8267 DAG.getRegister(X86::ESP, MVT::i32), // Base 8268 DAG.getTargetConstant(1, MVT::i8), // Scale 8269 DAG.getRegister(0, MVT::i32), // Index 8270 DAG.getTargetConstant(0, MVT::i32), // Disp 8271 DAG.getRegister(0, MVT::i32), // Segment. 8272 Zero, 8273 Chain 8274 }; 8275 SDNode *Res = 8276 DAG.getMachineNode(X86::OR32mrLocked, dl, MVT::Other, Ops, 8277 array_lengthof(Ops)); 8278 return SDValue(Res, 0); 8279 } 8280 8281 unsigned isDev = cast<ConstantSDNode>(Op.getOperand(5))->getZExtValue(); 8282 if (!isDev) 8283 return DAG.getNode(X86ISD::MEMBARRIER, dl, MVT::Other, Op.getOperand(0)); 8284 8285 unsigned Op1 = cast<ConstantSDNode>(Op.getOperand(1))->getZExtValue(); 8286 unsigned Op2 = cast<ConstantSDNode>(Op.getOperand(2))->getZExtValue(); 8287 unsigned Op3 = cast<ConstantSDNode>(Op.getOperand(3))->getZExtValue(); 8288 unsigned Op4 = cast<ConstantSDNode>(Op.getOperand(4))->getZExtValue(); 8289 8290 // def : Pat<(membarrier (i8 0), (i8 0), (i8 0), (i8 1), (i8 1)), (SFENCE)>; 8291 if (!Op1 && !Op2 && !Op3 && Op4) 8292 return DAG.getNode(X86ISD::SFENCE, dl, MVT::Other, Op.getOperand(0)); 8293 8294 // def : Pat<(membarrier (i8 1), (i8 0), (i8 0), (i8 0), (i8 1)), (LFENCE)>; 8295 if (Op1 && !Op2 && !Op3 && !Op4) 8296 return DAG.getNode(X86ISD::LFENCE, dl, MVT::Other, Op.getOperand(0)); 8297 8298 // def : Pat<(membarrier (i8 imm), (i8 imm), (i8 imm), (i8 imm), (i8 1)), 8299 // (MFENCE)>; 8300 return DAG.getNode(X86ISD::MFENCE, dl, MVT::Other, Op.getOperand(0)); 8301 } 8302 8303 SDValue X86TargetLowering::LowerCMP_SWAP(SDValue Op, SelectionDAG &DAG) const { 8304 EVT T = Op.getValueType(); 8305 DebugLoc dl = Op.getDebugLoc(); 8306 unsigned Reg = 0; 8307 unsigned size = 0; 8308 switch(T.getSimpleVT().SimpleTy) { 8309 default: 8310 assert(false && "Invalid value type!"); 8311 case MVT::i8: Reg = X86::AL; size = 1; break; 8312 case MVT::i16: Reg = X86::AX; size = 2; break; 8313 case MVT::i32: Reg = X86::EAX; size = 4; break; 8314 case MVT::i64: 8315 assert(Subtarget->is64Bit() && "Node not type legal!"); 8316 Reg = X86::RAX; size = 8; 8317 break; 8318 } 8319 SDValue cpIn = DAG.getCopyToReg(Op.getOperand(0), dl, Reg, 8320 Op.getOperand(2), SDValue()); 8321 SDValue Ops[] = { cpIn.getValue(0), 8322 Op.getOperand(1), 8323 Op.getOperand(3), 8324 DAG.getTargetConstant(size, MVT::i8), 8325 cpIn.getValue(1) }; 8326 SDVTList Tys = DAG.getVTList(MVT::Other, MVT::Flag); 8327 SDValue Result = DAG.getNode(X86ISD::LCMPXCHG_DAG, dl, Tys, Ops, 5); 8328 SDValue cpOut = 8329 DAG.getCopyFromReg(Result.getValue(0), dl, Reg, T, Result.getValue(1)); 8330 return cpOut; 8331 } 8332 8333 SDValue X86TargetLowering::LowerREADCYCLECOUNTER(SDValue Op, 8334 SelectionDAG &DAG) const { 8335 assert(Subtarget->is64Bit() && "Result not type legalized?"); 8336 SDVTList Tys = DAG.getVTList(MVT::Other, MVT::Flag); 8337 SDValue TheChain = Op.getOperand(0); 8338 DebugLoc dl = Op.getDebugLoc(); 8339 SDValue rd = DAG.getNode(X86ISD::RDTSC_DAG, dl, Tys, &TheChain, 1); 8340 SDValue rax = DAG.getCopyFromReg(rd, dl, X86::RAX, MVT::i64, rd.getValue(1)); 8341 SDValue rdx = DAG.getCopyFromReg(rax.getValue(1), dl, X86::RDX, MVT::i64, 8342 rax.getValue(2)); 8343 SDValue Tmp = DAG.getNode(ISD::SHL, dl, MVT::i64, rdx, 8344 DAG.getConstant(32, MVT::i8)); 8345 SDValue Ops[] = { 8346 DAG.getNode(ISD::OR, dl, MVT::i64, rax, Tmp), 8347 rdx.getValue(1) 8348 }; 8349 return DAG.getMergeValues(Ops, 2, dl); 8350 } 8351 8352 SDValue X86TargetLowering::LowerBIT_CONVERT(SDValue Op, 8353 SelectionDAG &DAG) const { 8354 EVT SrcVT = Op.getOperand(0).getValueType(); 8355 EVT DstVT = Op.getValueType(); 8356 assert((Subtarget->is64Bit() && !Subtarget->hasSSE2() && 8357 Subtarget->hasMMX() && !DisableMMX) && 8358 "Unexpected custom BIT_CONVERT"); 8359 assert((DstVT == MVT::i64 || 8360 (DstVT.isVector() && DstVT.getSizeInBits()==64)) && 8361 "Unexpected custom BIT_CONVERT"); 8362 // i64 <=> MMX conversions are Legal. 8363 if (SrcVT==MVT::i64 && DstVT.isVector()) 8364 return Op; 8365 if (DstVT==MVT::i64 && SrcVT.isVector()) 8366 return Op; 8367 // MMX <=> MMX conversions are Legal. 8368 if (SrcVT.isVector() && DstVT.isVector()) 8369 return Op; 8370 // All other conversions need to be expanded. 8371 return SDValue(); 8372 } 8373 SDValue X86TargetLowering::LowerLOAD_SUB(SDValue Op, SelectionDAG &DAG) const { 8374 SDNode *Node = Op.getNode(); 8375 DebugLoc dl = Node->getDebugLoc(); 8376 EVT T = Node->getValueType(0); 8377 SDValue negOp = DAG.getNode(ISD::SUB, dl, T, 8378 DAG.getConstant(0, T), Node->getOperand(2)); 8379 return DAG.getAtomic(ISD::ATOMIC_LOAD_ADD, dl, 8380 cast<AtomicSDNode>(Node)->getMemoryVT(), 8381 Node->getOperand(0), 8382 Node->getOperand(1), negOp, 8383 cast<AtomicSDNode>(Node)->getSrcValue(), 8384 cast<AtomicSDNode>(Node)->getAlignment()); 8385 } 8386 8387 /// LowerOperation - Provide custom lowering hooks for some operations. 8388 /// 8389 SDValue X86TargetLowering::LowerOperation(SDValue Op, SelectionDAG &DAG) const { 8390 switch (Op.getOpcode()) { 8391 default: llvm_unreachable("Should not custom lower this!"); 8392 case ISD::MEMBARRIER: return LowerMEMBARRIER(Op,DAG); 8393 case ISD::ATOMIC_CMP_SWAP: return LowerCMP_SWAP(Op,DAG); 8394 case ISD::ATOMIC_LOAD_SUB: return LowerLOAD_SUB(Op,DAG); 8395 case ISD::BUILD_VECTOR: return LowerBUILD_VECTOR(Op, DAG); 8396 case ISD::CONCAT_VECTORS: return LowerCONCAT_VECTORS(Op, DAG); 8397 case ISD::VECTOR_SHUFFLE: return LowerVECTOR_SHUFFLE(Op, DAG); 8398 case ISD::EXTRACT_VECTOR_ELT: return LowerEXTRACT_VECTOR_ELT(Op, DAG); 8399 case ISD::INSERT_VECTOR_ELT: return LowerINSERT_VECTOR_ELT(Op, DAG); 8400 case ISD::SCALAR_TO_VECTOR: return LowerSCALAR_TO_VECTOR(Op, DAG); 8401 case ISD::ConstantPool: return LowerConstantPool(Op, DAG); 8402 case ISD::GlobalAddress: return LowerGlobalAddress(Op, DAG); 8403 case ISD::GlobalTLSAddress: return LowerGlobalTLSAddress(Op, DAG); 8404 case ISD::ExternalSymbol: return LowerExternalSymbol(Op, DAG); 8405 case ISD::BlockAddress: return LowerBlockAddress(Op, DAG); 8406 case ISD::SHL_PARTS: 8407 case ISD::SRA_PARTS: 8408 case ISD::SRL_PARTS: return LowerShift(Op, DAG); 8409 case ISD::SINT_TO_FP: return LowerSINT_TO_FP(Op, DAG); 8410 case ISD::UINT_TO_FP: return LowerUINT_TO_FP(Op, DAG); 8411 case ISD::FP_TO_SINT: return LowerFP_TO_SINT(Op, DAG); 8412 case ISD::FP_TO_UINT: return LowerFP_TO_UINT(Op, DAG); 8413 case ISD::FABS: return LowerFABS(Op, DAG); 8414 case ISD::FNEG: return LowerFNEG(Op, DAG); 8415 case ISD::FCOPYSIGN: return LowerFCOPYSIGN(Op, DAG); 8416 case ISD::SETCC: return LowerSETCC(Op, DAG); 8417 case ISD::VSETCC: return LowerVSETCC(Op, DAG); 8418 case ISD::SELECT: return LowerSELECT(Op, DAG); 8419 case ISD::BRCOND: return LowerBRCOND(Op, DAG); 8420 case ISD::JumpTable: return LowerJumpTable(Op, DAG); 8421 case ISD::VASTART: return LowerVASTART(Op, DAG); 8422 case ISD::VAARG: return LowerVAARG(Op, DAG); 8423 case ISD::VACOPY: return LowerVACOPY(Op, DAG); 8424 case ISD::INTRINSIC_WO_CHAIN: return LowerINTRINSIC_WO_CHAIN(Op, DAG); 8425 case ISD::RETURNADDR: return LowerRETURNADDR(Op, DAG); 8426 case ISD::FRAMEADDR: return LowerFRAMEADDR(Op, DAG); 8427 case ISD::FRAME_TO_ARGS_OFFSET: 8428 return LowerFRAME_TO_ARGS_OFFSET(Op, DAG); 8429 case ISD::DYNAMIC_STACKALLOC: return LowerDYNAMIC_STACKALLOC(Op, DAG); 8430 case ISD::EH_RETURN: return LowerEH_RETURN(Op, DAG); 8431 case ISD::TRAMPOLINE: return LowerTRAMPOLINE(Op, DAG); 8432 case ISD::FLT_ROUNDS_: return LowerFLT_ROUNDS_(Op, DAG); 8433 case ISD::CTLZ: return LowerCTLZ(Op, DAG); 8434 case ISD::CTTZ: return LowerCTTZ(Op, DAG); 8435 case ISD::MUL: return LowerMUL_V2I64(Op, DAG); 8436 case ISD::SHL: return LowerSHL(Op, DAG); 8437 case ISD::SADDO: 8438 case ISD::UADDO: 8439 case ISD::SSUBO: 8440 case ISD::USUBO: 8441 case ISD::SMULO: 8442 case ISD::UMULO: return LowerXALUO(Op, DAG); 8443 case ISD::READCYCLECOUNTER: return LowerREADCYCLECOUNTER(Op, DAG); 8444 case ISD::BIT_CONVERT: return LowerBIT_CONVERT(Op, DAG); 8445 } 8446 } 8447 8448 void X86TargetLowering:: 8449 ReplaceATOMIC_BINARY_64(SDNode *Node, SmallVectorImpl<SDValue>&Results, 8450 SelectionDAG &DAG, unsigned NewOp) const { 8451 EVT T = Node->getValueType(0); 8452 DebugLoc dl = Node->getDebugLoc(); 8453 assert (T == MVT::i64 && "Only know how to expand i64 atomics"); 8454 8455 SDValue Chain = Node->getOperand(0); 8456 SDValue In1 = Node->getOperand(1); 8457 SDValue In2L = DAG.getNode(ISD::EXTRACT_ELEMENT, dl, MVT::i32, 8458 Node->getOperand(2), DAG.getIntPtrConstant(0)); 8459 SDValue In2H = DAG.getNode(ISD::EXTRACT_ELEMENT, dl, MVT::i32, 8460 Node->getOperand(2), DAG.getIntPtrConstant(1)); 8461 SDValue Ops[] = { Chain, In1, In2L, In2H }; 8462 SDVTList Tys = DAG.getVTList(MVT::i32, MVT::i32, MVT::Other); 8463 SDValue Result = 8464 DAG.getMemIntrinsicNode(NewOp, dl, Tys, Ops, 4, MVT::i64, 8465 cast<MemSDNode>(Node)->getMemOperand()); 8466 SDValue OpsF[] = { Result.getValue(0), Result.getValue(1)}; 8467 Results.push_back(DAG.getNode(ISD::BUILD_PAIR, dl, MVT::i64, OpsF, 2)); 8468 Results.push_back(Result.getValue(2)); 8469 } 8470 8471 /// ReplaceNodeResults - Replace a node with an illegal result type 8472 /// with a new node built out of custom code. 8473 void X86TargetLowering::ReplaceNodeResults(SDNode *N, 8474 SmallVectorImpl<SDValue>&Results, 8475 SelectionDAG &DAG) const { 8476 DebugLoc dl = N->getDebugLoc(); 8477 switch (N->getOpcode()) { 8478 default: 8479 assert(false && "Do not know how to custom type legalize this operation!"); 8480 return; 8481 case ISD::FP_TO_SINT: { 8482 std::pair<SDValue,SDValue> Vals = 8483 FP_TO_INTHelper(SDValue(N, 0), DAG, true); 8484 SDValue FIST = Vals.first, StackSlot = Vals.second; 8485 if (FIST.getNode() != 0) { 8486 EVT VT = N->getValueType(0); 8487 // Return a load from the stack slot. 8488 Results.push_back(DAG.getLoad(VT, dl, FIST, StackSlot, NULL, 0, 8489 false, false, 0)); 8490 } 8491 return; 8492 } 8493 case ISD::READCYCLECOUNTER: { 8494 SDVTList Tys = DAG.getVTList(MVT::Other, MVT::Flag); 8495 SDValue TheChain = N->getOperand(0); 8496 SDValue rd = DAG.getNode(X86ISD::RDTSC_DAG, dl, Tys, &TheChain, 1); 8497 SDValue eax = DAG.getCopyFromReg(rd, dl, X86::EAX, MVT::i32, 8498 rd.getValue(1)); 8499 SDValue edx = DAG.getCopyFromReg(eax.getValue(1), dl, X86::EDX, MVT::i32, 8500 eax.getValue(2)); 8501 // Use a buildpair to merge the two 32-bit values into a 64-bit one. 8502 SDValue Ops[] = { eax, edx }; 8503 Results.push_back(DAG.getNode(ISD::BUILD_PAIR, dl, MVT::i64, Ops, 2)); 8504 Results.push_back(edx.getValue(1)); 8505 return; 8506 } 8507 case ISD::ATOMIC_CMP_SWAP: { 8508 EVT T = N->getValueType(0); 8509 assert (T == MVT::i64 && "Only know how to expand i64 Cmp and Swap"); 8510 SDValue cpInL, cpInH; 8511 cpInL = DAG.getNode(ISD::EXTRACT_ELEMENT, dl, MVT::i32, N->getOperand(2), 8512 DAG.getConstant(0, MVT::i32)); 8513 cpInH = DAG.getNode(ISD::EXTRACT_ELEMENT, dl, MVT::i32, N->getOperand(2), 8514 DAG.getConstant(1, MVT::i32)); 8515 cpInL = DAG.getCopyToReg(N->getOperand(0), dl, X86::EAX, cpInL, SDValue()); 8516 cpInH = DAG.getCopyToReg(cpInL.getValue(0), dl, X86::EDX, cpInH, 8517 cpInL.getValue(1)); 8518 SDValue swapInL, swapInH; 8519 swapInL = DAG.getNode(ISD::EXTRACT_ELEMENT, dl, MVT::i32, N->getOperand(3), 8520 DAG.getConstant(0, MVT::i32)); 8521 swapInH = DAG.getNode(ISD::EXTRACT_ELEMENT, dl, MVT::i32, N->getOperand(3), 8522 DAG.getConstant(1, MVT::i32)); 8523 swapInL = DAG.getCopyToReg(cpInH.getValue(0), dl, X86::EBX, swapInL, 8524 cpInH.getValue(1)); 8525 swapInH = DAG.getCopyToReg(swapInL.getValue(0), dl, X86::ECX, swapInH, 8526 swapInL.getValue(1)); 8527 SDValue Ops[] = { swapInH.getValue(0), 8528 N->getOperand(1), 8529 swapInH.getValue(1) }; 8530 SDVTList Tys = DAG.getVTList(MVT::Other, MVT::Flag); 8531 SDValue Result = DAG.getNode(X86ISD::LCMPXCHG8_DAG, dl, Tys, Ops, 3); 8532 SDValue cpOutL = DAG.getCopyFromReg(Result.getValue(0), dl, X86::EAX, 8533 MVT::i32, Result.getValue(1)); 8534 SDValue cpOutH = DAG.getCopyFromReg(cpOutL.getValue(1), dl, X86::EDX, 8535 MVT::i32, cpOutL.getValue(2)); 8536 SDValue OpsF[] = { cpOutL.getValue(0), cpOutH.getValue(0)}; 8537 Results.push_back(DAG.getNode(ISD::BUILD_PAIR, dl, MVT::i64, OpsF, 2)); 8538 Results.push_back(cpOutH.getValue(1)); 8539 return; 8540 } 8541 case ISD::ATOMIC_LOAD_ADD: 8542 ReplaceATOMIC_BINARY_64(N, Results, DAG, X86ISD::ATOMADD64_DAG); 8543 return; 8544 case ISD::ATOMIC_LOAD_AND: 8545 ReplaceATOMIC_BINARY_64(N, Results, DAG, X86ISD::ATOMAND64_DAG); 8546 return; 8547 case ISD::ATOMIC_LOAD_NAND: 8548 ReplaceATOMIC_BINARY_64(N, Results, DAG, X86ISD::ATOMNAND64_DAG); 8549 return; 8550 case ISD::ATOMIC_LOAD_OR: 8551 ReplaceATOMIC_BINARY_64(N, Results, DAG, X86ISD::ATOMOR64_DAG); 8552 return; 8553 case ISD::ATOMIC_LOAD_SUB: 8554 ReplaceATOMIC_BINARY_64(N, Results, DAG, X86ISD::ATOMSUB64_DAG); 8555 return; 8556 case ISD::ATOMIC_LOAD_XOR: 8557 ReplaceATOMIC_BINARY_64(N, Results, DAG, X86ISD::ATOMXOR64_DAG); 8558 return; 8559 case ISD::ATOMIC_SWAP: 8560 ReplaceATOMIC_BINARY_64(N, Results, DAG, X86ISD::ATOMSWAP64_DAG); 8561 return; 8562 } 8563 } 8564 8565 const char *X86TargetLowering::getTargetNodeName(unsigned Opcode) const { 8566 switch (Opcode) { 8567 default: return NULL; 8568 case X86ISD::BSF: return "X86ISD::BSF"; 8569 case X86ISD::BSR: return "X86ISD::BSR"; 8570 case X86ISD::SHLD: return "X86ISD::SHLD"; 8571 case X86ISD::SHRD: return "X86ISD::SHRD"; 8572 case X86ISD::FAND: return "X86ISD::FAND"; 8573 case X86ISD::FOR: return "X86ISD::FOR"; 8574 case X86ISD::FXOR: return "X86ISD::FXOR"; 8575 case X86ISD::FSRL: return "X86ISD::FSRL"; 8576 case X86ISD::FILD: return "X86ISD::FILD"; 8577 case X86ISD::FILD_FLAG: return "X86ISD::FILD_FLAG"; 8578 case X86ISD::FP_TO_INT16_IN_MEM: return "X86ISD::FP_TO_INT16_IN_MEM"; 8579 case X86ISD::FP_TO_INT32_IN_MEM: return "X86ISD::FP_TO_INT32_IN_MEM"; 8580 case X86ISD::FP_TO_INT64_IN_MEM: return "X86ISD::FP_TO_INT64_IN_MEM"; 8581 case X86ISD::FLD: return "X86ISD::FLD"; 8582 case X86ISD::FST: return "X86ISD::FST"; 8583 case X86ISD::CALL: return "X86ISD::CALL"; 8584 case X86ISD::RDTSC_DAG: return "X86ISD::RDTSC_DAG"; 8585 case X86ISD::BT: return "X86ISD::BT"; 8586 case X86ISD::CMP: return "X86ISD::CMP"; 8587 case X86ISD::COMI: return "X86ISD::COMI"; 8588 case X86ISD::UCOMI: return "X86ISD::UCOMI"; 8589 case X86ISD::SETCC: return "X86ISD::SETCC"; 8590 case X86ISD::SETCC_CARRY: return "X86ISD::SETCC_CARRY"; 8591 case X86ISD::CMOV: return "X86ISD::CMOV"; 8592 case X86ISD::BRCOND: return "X86ISD::BRCOND"; 8593 case X86ISD::RET_FLAG: return "X86ISD::RET_FLAG"; 8594 case X86ISD::REP_STOS: return "X86ISD::REP_STOS"; 8595 case X86ISD::REP_MOVS: return "X86ISD::REP_MOVS"; 8596 case X86ISD::GlobalBaseReg: return "X86ISD::GlobalBaseReg"; 8597 case X86ISD::Wrapper: return "X86ISD::Wrapper"; 8598 case X86ISD::WrapperRIP: return "X86ISD::WrapperRIP"; 8599 case X86ISD::PEXTRB: return "X86ISD::PEXTRB"; 8600 case X86ISD::PEXTRW: return "X86ISD::PEXTRW"; 8601 case X86ISD::INSERTPS: return "X86ISD::INSERTPS"; 8602 case X86ISD::PINSRB: return "X86ISD::PINSRB"; 8603 case X86ISD::PINSRW: return "X86ISD::PINSRW"; 8604 case X86ISD::MMX_PINSRW: return "X86ISD::MMX_PINSRW"; 8605 case X86ISD::PSHUFB: return "X86ISD::PSHUFB"; 8606 case X86ISD::FMAX: return "X86ISD::FMAX"; 8607 case X86ISD::FMIN: return "X86ISD::FMIN"; 8608 case X86ISD::FRSQRT: return "X86ISD::FRSQRT"; 8609 case X86ISD::FRCP: return "X86ISD::FRCP"; 8610 case X86ISD::TLSADDR: return "X86ISD::TLSADDR"; 8611 case X86ISD::TLSCALL: return "X86ISD::TLSCALL"; 8612 case X86ISD::SegmentBaseAddress: return "X86ISD::SegmentBaseAddress"; 8613 case X86ISD::EH_RETURN: return "X86ISD::EH_RETURN"; 8614 case X86ISD::TC_RETURN: return "X86ISD::TC_RETURN"; 8615 case X86ISD::FNSTCW16m: return "X86ISD::FNSTCW16m"; 8616 case X86ISD::LCMPXCHG_DAG: return "X86ISD::LCMPXCHG_DAG"; 8617 case X86ISD::LCMPXCHG8_DAG: return "X86ISD::LCMPXCHG8_DAG"; 8618 case X86ISD::ATOMADD64_DAG: return "X86ISD::ATOMADD64_DAG"; 8619 case X86ISD::ATOMSUB64_DAG: return "X86ISD::ATOMSUB64_DAG"; 8620 case X86ISD::ATOMOR64_DAG: return "X86ISD::ATOMOR64_DAG"; 8621 case X86ISD::ATOMXOR64_DAG: return "X86ISD::ATOMXOR64_DAG"; 8622 case X86ISD::ATOMAND64_DAG: return "X86ISD::ATOMAND64_DAG"; 8623 case X86ISD::ATOMNAND64_DAG: return "X86ISD::ATOMNAND64_DAG"; 8624 case X86ISD::VZEXT_MOVL: return "X86ISD::VZEXT_MOVL"; 8625 case X86ISD::VZEXT_LOAD: return "X86ISD::VZEXT_LOAD"; 8626 case X86ISD::VSHL: return "X86ISD::VSHL"; 8627 case X86ISD::VSRL: return "X86ISD::VSRL"; 8628 case X86ISD::CMPPD: return "X86ISD::CMPPD"; 8629 case X86ISD::CMPPS: return "X86ISD::CMPPS"; 8630 case X86ISD::PCMPEQB: return "X86ISD::PCMPEQB"; 8631 case X86ISD::PCMPEQW: return "X86ISD::PCMPEQW"; 8632 case X86ISD::PCMPEQD: return "X86ISD::PCMPEQD"; 8633 case X86ISD::PCMPEQQ: return "X86ISD::PCMPEQQ"; 8634 case X86ISD::PCMPGTB: return "X86ISD::PCMPGTB"; 8635 case X86ISD::PCMPGTW: return "X86ISD::PCMPGTW"; 8636 case X86ISD::PCMPGTD: return "X86ISD::PCMPGTD"; 8637 case X86ISD::PCMPGTQ: return "X86ISD::PCMPGTQ"; 8638 case X86ISD::ADD: return "X86ISD::ADD"; 8639 case X86ISD::SUB: return "X86ISD::SUB"; 8640 case X86ISD::SMUL: return "X86ISD::SMUL"; 8641 case X86ISD::UMUL: return "X86ISD::UMUL"; 8642 case X86ISD::INC: return "X86ISD::INC"; 8643 case X86ISD::DEC: return "X86ISD::DEC"; 8644 case X86ISD::OR: return "X86ISD::OR"; 8645 case X86ISD::XOR: return "X86ISD::XOR"; 8646 case X86ISD::AND: return "X86ISD::AND"; 8647 case X86ISD::MUL_IMM: return "X86ISD::MUL_IMM"; 8648 case X86ISD::PTEST: return "X86ISD::PTEST"; 8649 case X86ISD::TESTP: return "X86ISD::TESTP"; 8650 case X86ISD::PALIGN: return "X86ISD::PALIGN"; 8651 case X86ISD::PSHUFD: return "X86ISD::PSHUFD"; 8652 case X86ISD::PSHUFHW: return "X86ISD::PSHUFHW"; 8653 case X86ISD::PSHUFHW_LD: return "X86ISD::PSHUFHW_LD"; 8654 case X86ISD::PSHUFLW: return "X86ISD::PSHUFLW"; 8655 case X86ISD::PSHUFLW_LD: return "X86ISD::PSHUFLW_LD"; 8656 case X86ISD::SHUFPS: return "X86ISD::SHUFPS"; 8657 case X86ISD::SHUFPD: return "X86ISD::SHUFPD"; 8658 case X86ISD::MOVLHPS: return "X86ISD::MOVLHPS"; 8659 case X86ISD::MOVLHPD: return "X86ISD::MOVLHPD"; 8660 case X86ISD::MOVHLPS: return "X86ISD::MOVHLPS"; 8661 case X86ISD::MOVHLPD: return "X86ISD::MOVHLPD"; 8662 case X86ISD::MOVLPS: return "X86ISD::MOVLPS"; 8663 case X86ISD::MOVLPD: return "X86ISD::MOVLPD"; 8664 case X86ISD::MOVDDUP: return "X86ISD::MOVDDUP"; 8665 case X86ISD::MOVSHDUP: return "X86ISD::MOVSHDUP"; 8666 case X86ISD::MOVSLDUP: return "X86ISD::MOVSLDUP"; 8667 case X86ISD::MOVSHDUP_LD: return "X86ISD::MOVSHDUP_LD"; 8668 case X86ISD::MOVSLDUP_LD: return "X86ISD::MOVSLDUP_LD"; 8669 case X86ISD::MOVSD: return "X86ISD::MOVSD"; 8670 case X86ISD::MOVSS: return "X86ISD::MOVSS"; 8671 case X86ISD::UNPCKLPS: return "X86ISD::UNPCKLPS"; 8672 case X86ISD::UNPCKLPD: return "X86ISD::UNPCKLPD"; 8673 case X86ISD::UNPCKHPS: return "X86ISD::UNPCKHPS"; 8674 case X86ISD::UNPCKHPD: return "X86ISD::UNPCKHPD"; 8675 case X86ISD::PUNPCKLBW: return "X86ISD::PUNPCKLBW"; 8676 case X86ISD::PUNPCKLWD: return "X86ISD::PUNPCKLWD"; 8677 case X86ISD::PUNPCKLDQ: return "X86ISD::PUNPCKLDQ"; 8678 case X86ISD::PUNPCKLQDQ: return "X86ISD::PUNPCKLQDQ"; 8679 case X86ISD::PUNPCKHBW: return "X86ISD::PUNPCKHBW"; 8680 case X86ISD::PUNPCKHWD: return "X86ISD::PUNPCKHWD"; 8681 case X86ISD::PUNPCKHDQ: return "X86ISD::PUNPCKHDQ"; 8682 case X86ISD::PUNPCKHQDQ: return "X86ISD::PUNPCKHQDQ"; 8683 case X86ISD::VASTART_SAVE_XMM_REGS: return "X86ISD::VASTART_SAVE_XMM_REGS"; 8684 case X86ISD::MINGW_ALLOCA: return "X86ISD::MINGW_ALLOCA"; 8685 } 8686 } 8687 8688 // isLegalAddressingMode - Return true if the addressing mode represented 8689 // by AM is legal for this target, for a load/store of the specified type. 8690 bool X86TargetLowering::isLegalAddressingMode(const AddrMode &AM, 8691 const Type *Ty) const { 8692 // X86 supports extremely general addressing modes. 8693 CodeModel::Model M = getTargetMachine().getCodeModel(); 8694 Reloc::Model R = getTargetMachine().getRelocationModel(); 8695 8696 // X86 allows a sign-extended 32-bit immediate field as a displacement. 8697 if (!X86::isOffsetSuitableForCodeModel(AM.BaseOffs, M, AM.BaseGV != NULL)) 8698 return false; 8699 8700 if (AM.BaseGV) { 8701 unsigned GVFlags = 8702 Subtarget->ClassifyGlobalReference(AM.BaseGV, getTargetMachine()); 8703 8704 // If a reference to this global requires an extra load, we can't fold it. 8705 if (isGlobalStubReference(GVFlags)) 8706 return false; 8707 8708 // If BaseGV requires a register for the PIC base, we cannot also have a 8709 // BaseReg specified. 8710 if (AM.HasBaseReg && isGlobalRelativeToPICBase(GVFlags)) 8711 return false; 8712 8713 // If lower 4G is not available, then we must use rip-relative addressing. 8714 if ((M != CodeModel::Small || R != Reloc::Static) && 8715 Subtarget->is64Bit() && (AM.BaseOffs || AM.Scale > 1)) 8716 return false; 8717 } 8718 8719 switch (AM.Scale) { 8720 case 0: 8721 case 1: 8722 case 2: 8723 case 4: 8724 case 8: 8725 // These scales always work. 8726 break; 8727 case 3: 8728 case 5: 8729 case 9: 8730 // These scales are formed with basereg+scalereg. Only accept if there is 8731 // no basereg yet. 8732 if (AM.HasBaseReg) 8733 return false; 8734 break; 8735 default: // Other stuff never works. 8736 return false; 8737 } 8738 8739 return true; 8740 } 8741 8742 8743 bool X86TargetLowering::isTruncateFree(const Type *Ty1, const Type *Ty2) const { 8744 if (!Ty1->isIntegerTy() || !Ty2->isIntegerTy()) 8745 return false; 8746 unsigned NumBits1 = Ty1->getPrimitiveSizeInBits(); 8747 unsigned NumBits2 = Ty2->getPrimitiveSizeInBits(); 8748 if (NumBits1 <= NumBits2) 8749 return false; 8750 return true; 8751 } 8752 8753 bool X86TargetLowering::isTruncateFree(EVT VT1, EVT VT2) const { 8754 if (!VT1.isInteger() || !VT2.isInteger()) 8755 return false; 8756 unsigned NumBits1 = VT1.getSizeInBits(); 8757 unsigned NumBits2 = VT2.getSizeInBits(); 8758 if (NumBits1 <= NumBits2) 8759 return false; 8760 return true; 8761 } 8762 8763 bool X86TargetLowering::isZExtFree(const Type *Ty1, const Type *Ty2) const { 8764 // x86-64 implicitly zero-extends 32-bit results in 64-bit registers. 8765 return Ty1->isIntegerTy(32) && Ty2->isIntegerTy(64) && Subtarget->is64Bit(); 8766 } 8767 8768 bool X86TargetLowering::isZExtFree(EVT VT1, EVT VT2) const { 8769 // x86-64 implicitly zero-extends 32-bit results in 64-bit registers. 8770 return VT1 == MVT::i32 && VT2 == MVT::i64 && Subtarget->is64Bit(); 8771 } 8772 8773 bool X86TargetLowering::isNarrowingProfitable(EVT VT1, EVT VT2) const { 8774 // i16 instructions are longer (0x66 prefix) and potentially slower. 8775 return !(VT1 == MVT::i32 && VT2 == MVT::i16); 8776 } 8777 8778 /// isShuffleMaskLegal - Targets can use this to indicate that they only 8779 /// support *some* VECTOR_SHUFFLE operations, those with specific masks. 8780 /// By default, if a target supports the VECTOR_SHUFFLE node, all mask values 8781 /// are assumed to be legal. 8782 bool 8783 X86TargetLowering::isShuffleMaskLegal(const SmallVectorImpl<int> &M, 8784 EVT VT) const { 8785 // Very little shuffling can be done for 64-bit vectors right now. 8786 if (VT.getSizeInBits() == 64) 8787 return isPALIGNRMask(M, VT, Subtarget->hasSSSE3()); 8788 8789 // FIXME: pshufb, blends, shifts. 8790 return (VT.getVectorNumElements() == 2 || 8791 ShuffleVectorSDNode::isSplatMask(&M[0], VT) || 8792 isMOVLMask(M, VT) || 8793 isSHUFPMask(M, VT) || 8794 isPSHUFDMask(M, VT) || 8795 isPSHUFHWMask(M, VT) || 8796 isPSHUFLWMask(M, VT) || 8797 isPALIGNRMask(M, VT, Subtarget->hasSSSE3()) || 8798 isUNPCKLMask(M, VT) || 8799 isUNPCKHMask(M, VT) || 8800 isUNPCKL_v_undef_Mask(M, VT) || 8801 isUNPCKH_v_undef_Mask(M, VT)); 8802 } 8803 8804 bool 8805 X86TargetLowering::isVectorClearMaskLegal(const SmallVectorImpl<int> &Mask, 8806 EVT VT) const { 8807 unsigned NumElts = VT.getVectorNumElements(); 8808 // FIXME: This collection of masks seems suspect. 8809 if (NumElts == 2) 8810 return true; 8811 if (NumElts == 4 && VT.getSizeInBits() == 128) { 8812 return (isMOVLMask(Mask, VT) || 8813 isCommutedMOVLMask(Mask, VT, true) || 8814 isSHUFPMask(Mask, VT) || 8815 isCommutedSHUFPMask(Mask, VT)); 8816 } 8817 return false; 8818 } 8819 8820 //===----------------------------------------------------------------------===// 8821 // X86 Scheduler Hooks 8822 //===----------------------------------------------------------------------===// 8823 8824 // private utility function 8825 MachineBasicBlock * 8826 X86TargetLowering::EmitAtomicBitwiseWithCustomInserter(MachineInstr *bInstr, 8827 MachineBasicBlock *MBB, 8828 unsigned regOpc, 8829 unsigned immOpc, 8830 unsigned LoadOpc, 8831 unsigned CXchgOpc, 8832 unsigned notOpc, 8833 unsigned EAXreg, 8834 TargetRegisterClass *RC, 8835 bool invSrc) const { 8836 // For the atomic bitwise operator, we generate 8837 // thisMBB: 8838 // newMBB: 8839 // ld t1 = [bitinstr.addr] 8840 // op t2 = t1, [bitinstr.val] 8841 // mov EAX = t1 8842 // lcs dest = [bitinstr.addr], t2 [EAX is implicit] 8843 // bz newMBB 8844 // fallthrough -->nextMBB 8845 const TargetInstrInfo *TII = getTargetMachine().getInstrInfo(); 8846 const BasicBlock *LLVM_BB = MBB->getBasicBlock(); 8847 MachineFunction::iterator MBBIter = MBB; 8848 ++MBBIter; 8849 8850 /// First build the CFG 8851 MachineFunction *F = MBB->getParent(); 8852 MachineBasicBlock *thisMBB = MBB; 8853 MachineBasicBlock *newMBB = F->CreateMachineBasicBlock(LLVM_BB); 8854 MachineBasicBlock *nextMBB = F->CreateMachineBasicBlock(LLVM_BB); 8855 F->insert(MBBIter, newMBB); 8856 F->insert(MBBIter, nextMBB); 8857 8858 // Transfer the remainder of thisMBB and its successor edges to nextMBB. 8859 nextMBB->splice(nextMBB->begin(), thisMBB, 8860 llvm::next(MachineBasicBlock::iterator(bInstr)), 8861 thisMBB->end()); 8862 nextMBB->transferSuccessorsAndUpdatePHIs(thisMBB); 8863 8864 // Update thisMBB to fall through to newMBB 8865 thisMBB->addSuccessor(newMBB); 8866 8867 // newMBB jumps to itself and fall through to nextMBB 8868 newMBB->addSuccessor(nextMBB); 8869 newMBB->addSuccessor(newMBB); 8870 8871 // Insert instructions into newMBB based on incoming instruction 8872 assert(bInstr->getNumOperands() < X86::AddrNumOperands + 4 && 8873 "unexpected number of operands"); 8874 DebugLoc dl = bInstr->getDebugLoc(); 8875 MachineOperand& destOper = bInstr->getOperand(0); 8876 MachineOperand* argOpers[2 + X86::AddrNumOperands]; 8877 int numArgs = bInstr->getNumOperands() - 1; 8878 for (int i=0; i < numArgs; ++i) 8879 argOpers[i] = &bInstr->getOperand(i+1); 8880 8881 // x86 address has 4 operands: base, index, scale, and displacement 8882 int lastAddrIndx = X86::AddrNumOperands - 1; // [0,3] 8883 int valArgIndx = lastAddrIndx + 1; 8884 8885 unsigned t1 = F->getRegInfo().createVirtualRegister(RC); 8886 MachineInstrBuilder MIB = BuildMI(newMBB, dl, TII->get(LoadOpc), t1); 8887 for (int i=0; i <= lastAddrIndx; ++i) 8888 (*MIB).addOperand(*argOpers[i]); 8889 8890 unsigned tt = F->getRegInfo().createVirtualRegister(RC); 8891 if (invSrc) { 8892 MIB = BuildMI(newMBB, dl, TII->get(notOpc), tt).addReg(t1); 8893 } 8894 else 8895 tt = t1; 8896 8897 unsigned t2 = F->getRegInfo().createVirtualRegister(RC); 8898 assert((argOpers[valArgIndx]->isReg() || 8899 argOpers[valArgIndx]->isImm()) && 8900 "invalid operand"); 8901 if (argOpers[valArgIndx]->isReg()) 8902 MIB = BuildMI(newMBB, dl, TII->get(regOpc), t2); 8903 else 8904 MIB = BuildMI(newMBB, dl, TII->get(immOpc), t2); 8905 MIB.addReg(tt); 8906 (*MIB).addOperand(*argOpers[valArgIndx]); 8907 8908 MIB = BuildMI(newMBB, dl, TII->get(TargetOpcode::COPY), EAXreg); 8909 MIB.addReg(t1); 8910 8911 MIB = BuildMI(newMBB, dl, TII->get(CXchgOpc)); 8912 for (int i=0; i <= lastAddrIndx; ++i) 8913 (*MIB).addOperand(*argOpers[i]); 8914 MIB.addReg(t2); 8915 assert(bInstr->hasOneMemOperand() && "Unexpected number of memoperand"); 8916 (*MIB).setMemRefs(bInstr->memoperands_begin(), 8917 bInstr->memoperands_end()); 8918 8919 MIB = BuildMI(newMBB, dl, TII->get(TargetOpcode::COPY), destOper.getReg()); 8920 MIB.addReg(EAXreg); 8921 8922 // insert branch 8923 BuildMI(newMBB, dl, TII->get(X86::JNE_4)).addMBB(newMBB); 8924 8925 bInstr->eraseFromParent(); // The pseudo instruction is gone now. 8926 return nextMBB; 8927 } 8928 8929 // private utility function: 64 bit atomics on 32 bit host. 8930 MachineBasicBlock * 8931 X86TargetLowering::EmitAtomicBit6432WithCustomInserter(MachineInstr *bInstr, 8932 MachineBasicBlock *MBB, 8933 unsigned regOpcL, 8934 unsigned regOpcH, 8935 unsigned immOpcL, 8936 unsigned immOpcH, 8937 bool invSrc) const { 8938 // For the atomic bitwise operator, we generate 8939 // thisMBB (instructions are in pairs, except cmpxchg8b) 8940 // ld t1,t2 = [bitinstr.addr] 8941 // newMBB: 8942 // out1, out2 = phi (thisMBB, t1/t2) (newMBB, t3/t4) 8943 // op t5, t6 <- out1, out2, [bitinstr.val] 8944 // (for SWAP, substitute: mov t5, t6 <- [bitinstr.val]) 8945 // mov ECX, EBX <- t5, t6 8946 // mov EAX, EDX <- t1, t2 8947 // cmpxchg8b [bitinstr.addr] [EAX, EDX, EBX, ECX implicit] 8948 // mov t3, t4 <- EAX, EDX 8949 // bz newMBB 8950 // result in out1, out2 8951 // fallthrough -->nextMBB 8952 8953 const TargetRegisterClass *RC = X86::GR32RegisterClass; 8954 const unsigned LoadOpc = X86::MOV32rm; 8955 const unsigned NotOpc = X86::NOT32r; 8956 const TargetInstrInfo *TII = getTargetMachine().getInstrInfo(); 8957 const BasicBlock *LLVM_BB = MBB->getBasicBlock(); 8958 MachineFunction::iterator MBBIter = MBB; 8959 ++MBBIter; 8960 8961 /// First build the CFG 8962 MachineFunction *F = MBB->getParent(); 8963 MachineBasicBlock *thisMBB = MBB; 8964 MachineBasicBlock *newMBB = F->CreateMachineBasicBlock(LLVM_BB); 8965 MachineBasicBlock *nextMBB = F->CreateMachineBasicBlock(LLVM_BB); 8966 F->insert(MBBIter, newMBB); 8967 F->insert(MBBIter, nextMBB); 8968 8969 // Transfer the remainder of thisMBB and its successor edges to nextMBB. 8970 nextMBB->splice(nextMBB->begin(), thisMBB, 8971 llvm::next(MachineBasicBlock::iterator(bInstr)), 8972 thisMBB->end()); 8973 nextMBB->transferSuccessorsAndUpdatePHIs(thisMBB); 8974 8975 // Update thisMBB to fall through to newMBB 8976 thisMBB->addSuccessor(newMBB); 8977 8978 // newMBB jumps to itself and fall through to nextMBB 8979 newMBB->addSuccessor(nextMBB); 8980 newMBB->addSuccessor(newMBB); 8981 8982 DebugLoc dl = bInstr->getDebugLoc(); 8983 // Insert instructions into newMBB based on incoming instruction 8984 // There are 8 "real" operands plus 9 implicit def/uses, ignored here. 8985 assert(bInstr->getNumOperands() < X86::AddrNumOperands + 14 && 8986 "unexpected number of operands"); 8987 MachineOperand& dest1Oper = bInstr->getOperand(0); 8988 MachineOperand& dest2Oper = bInstr->getOperand(1); 8989 MachineOperand* argOpers[2 + X86::AddrNumOperands]; 8990 for (int i=0; i < 2 + X86::AddrNumOperands; ++i) { 8991 argOpers[i] = &bInstr->getOperand(i+2); 8992 8993 // We use some of the operands multiple times, so conservatively just 8994 // clear any kill flags that might be present. 8995 if (argOpers[i]->isReg() && argOpers[i]->isUse()) 8996 argOpers[i]->setIsKill(false); 8997 } 8998 8999 // x86 address has 5 operands: base, index, scale, displacement, and segment. 9000 int lastAddrIndx = X86::AddrNumOperands - 1; // [0,3] 9001 9002 unsigned t1 = F->getRegInfo().createVirtualRegister(RC); 9003 MachineInstrBuilder MIB = BuildMI(thisMBB, dl, TII->get(LoadOpc), t1); 9004 for (int i=0; i <= lastAddrIndx; ++i) 9005 (*MIB).addOperand(*argOpers[i]); 9006 unsigned t2 = F->getRegInfo().createVirtualRegister(RC); 9007 MIB = BuildMI(thisMBB, dl, TII->get(LoadOpc), t2); 9008 // add 4 to displacement. 9009 for (int i=0; i <= lastAddrIndx-2; ++i) 9010 (*MIB).addOperand(*argOpers[i]); 9011 MachineOperand newOp3 = *(argOpers[3]); 9012 if (newOp3.isImm()) 9013 newOp3.setImm(newOp3.getImm()+4); 9014 else 9015 newOp3.setOffset(newOp3.getOffset()+4); 9016 (*MIB).addOperand(newOp3); 9017 (*MIB).addOperand(*argOpers[lastAddrIndx]); 9018 9019 // t3/4 are defined later, at the bottom of the loop 9020 unsigned t3 = F->getRegInfo().createVirtualRegister(RC); 9021 unsigned t4 = F->getRegInfo().createVirtualRegister(RC); 9022 BuildMI(newMBB, dl, TII->get(X86::PHI), dest1Oper.getReg()) 9023 .addReg(t1).addMBB(thisMBB).addReg(t3).addMBB(newMBB); 9024 BuildMI(newMBB, dl, TII->get(X86::PHI), dest2Oper.getReg()) 9025 .addReg(t2).addMBB(thisMBB).addReg(t4).addMBB(newMBB); 9026 9027 // The subsequent operations should be using the destination registers of 9028 //the PHI instructions. 9029 if (invSrc) { 9030 t1 = F->getRegInfo().createVirtualRegister(RC); 9031 t2 = F->getRegInfo().createVirtualRegister(RC); 9032 MIB = BuildMI(newMBB, dl, TII->get(NotOpc), t1).addReg(dest1Oper.getReg()); 9033 MIB = BuildMI(newMBB, dl, TII->get(NotOpc), t2).addReg(dest2Oper.getReg()); 9034 } else { 9035 t1 = dest1Oper.getReg(); 9036 t2 = dest2Oper.getReg(); 9037 } 9038 9039 int valArgIndx = lastAddrIndx + 1; 9040 assert((argOpers[valArgIndx]->isReg() || 9041 argOpers[valArgIndx]->isImm()) && 9042 "invalid operand"); 9043 unsigned t5 = F->getRegInfo().createVirtualRegister(RC); 9044 unsigned t6 = F->getRegInfo().createVirtualRegister(RC); 9045 if (argOpers[valArgIndx]->isReg()) 9046 MIB = BuildMI(newMBB, dl, TII->get(regOpcL), t5); 9047 else 9048 MIB = BuildMI(newMBB, dl, TII->get(immOpcL), t5); 9049 if (regOpcL != X86::MOV32rr) 9050 MIB.addReg(t1); 9051 (*MIB).addOperand(*argOpers[valArgIndx]); 9052 assert(argOpers[valArgIndx + 1]->isReg() == 9053 argOpers[valArgIndx]->isReg()); 9054 assert(argOpers[valArgIndx + 1]->isImm() == 9055 argOpers[valArgIndx]->isImm()); 9056 if (argOpers[valArgIndx + 1]->isReg()) 9057 MIB = BuildMI(newMBB, dl, TII->get(regOpcH), t6); 9058 else 9059 MIB = BuildMI(newMBB, dl, TII->get(immOpcH), t6); 9060 if (regOpcH != X86::MOV32rr) 9061 MIB.addReg(t2); 9062 (*MIB).addOperand(*argOpers[valArgIndx + 1]); 9063 9064 MIB = BuildMI(newMBB, dl, TII->get(TargetOpcode::COPY), X86::EAX); 9065 MIB.addReg(t1); 9066 MIB = BuildMI(newMBB, dl, TII->get(TargetOpcode::COPY), X86::EDX); 9067 MIB.addReg(t2); 9068 9069 MIB = BuildMI(newMBB, dl, TII->get(TargetOpcode::COPY), X86::EBX); 9070 MIB.addReg(t5); 9071 MIB = BuildMI(newMBB, dl, TII->get(TargetOpcode::COPY), X86::ECX); 9072 MIB.addReg(t6); 9073 9074 MIB = BuildMI(newMBB, dl, TII->get(X86::LCMPXCHG8B)); 9075 for (int i=0; i <= lastAddrIndx; ++i) 9076 (*MIB).addOperand(*argOpers[i]); 9077 9078 assert(bInstr->hasOneMemOperand() && "Unexpected number of memoperand"); 9079 (*MIB).setMemRefs(bInstr->memoperands_begin(), 9080 bInstr->memoperands_end()); 9081 9082 MIB = BuildMI(newMBB, dl, TII->get(TargetOpcode::COPY), t3); 9083 MIB.addReg(X86::EAX); 9084 MIB = BuildMI(newMBB, dl, TII->get(TargetOpcode::COPY), t4); 9085 MIB.addReg(X86::EDX); 9086 9087 // insert branch 9088 BuildMI(newMBB, dl, TII->get(X86::JNE_4)).addMBB(newMBB); 9089 9090 bInstr->eraseFromParent(); // The pseudo instruction is gone now. 9091 return nextMBB; 9092 } 9093 9094 // private utility function 9095 MachineBasicBlock * 9096 X86TargetLowering::EmitAtomicMinMaxWithCustomInserter(MachineInstr *mInstr, 9097 MachineBasicBlock *MBB, 9098 unsigned cmovOpc) const { 9099 // For the atomic min/max operator, we generate 9100 // thisMBB: 9101 // newMBB: 9102 // ld t1 = [min/max.addr] 9103 // mov t2 = [min/max.val] 9104 // cmp t1, t2 9105 // cmov[cond] t2 = t1 9106 // mov EAX = t1 9107 // lcs dest = [bitinstr.addr], t2 [EAX is implicit] 9108 // bz newMBB 9109 // fallthrough -->nextMBB 9110 // 9111 const TargetInstrInfo *TII = getTargetMachine().getInstrInfo(); 9112 const BasicBlock *LLVM_BB = MBB->getBasicBlock(); 9113 MachineFunction::iterator MBBIter = MBB; 9114 ++MBBIter; 9115 9116 /// First build the CFG 9117 MachineFunction *F = MBB->getParent(); 9118 MachineBasicBlock *thisMBB = MBB; 9119 MachineBasicBlock *newMBB = F->CreateMachineBasicBlock(LLVM_BB); 9120 MachineBasicBlock *nextMBB = F->CreateMachineBasicBlock(LLVM_BB); 9121 F->insert(MBBIter, newMBB); 9122 F->insert(MBBIter, nextMBB); 9123 9124 // Transfer the remainder of thisMBB and its successor edges to nextMBB. 9125 nextMBB->splice(nextMBB->begin(), thisMBB, 9126 llvm::next(MachineBasicBlock::iterator(mInstr)), 9127 thisMBB->end()); 9128 nextMBB->transferSuccessorsAndUpdatePHIs(thisMBB); 9129 9130 // Update thisMBB to fall through to newMBB 9131 thisMBB->addSuccessor(newMBB); 9132 9133 // newMBB jumps to newMBB and fall through to nextMBB 9134 newMBB->addSuccessor(nextMBB); 9135 newMBB->addSuccessor(newMBB); 9136 9137 DebugLoc dl = mInstr->getDebugLoc(); 9138 // Insert instructions into newMBB based on incoming instruction 9139 assert(mInstr->getNumOperands() < X86::AddrNumOperands + 4 && 9140 "unexpected number of operands"); 9141 MachineOperand& destOper = mInstr->getOperand(0); 9142 MachineOperand* argOpers[2 + X86::AddrNumOperands]; 9143 int numArgs = mInstr->getNumOperands() - 1; 9144 for (int i=0; i < numArgs; ++i) 9145 argOpers[i] = &mInstr->getOperand(i+1); 9146 9147 // x86 address has 4 operands: base, index, scale, and displacement 9148 int lastAddrIndx = X86::AddrNumOperands - 1; // [0,3] 9149 int valArgIndx = lastAddrIndx + 1; 9150 9151 unsigned t1 = F->getRegInfo().createVirtualRegister(X86::GR32RegisterClass); 9152 MachineInstrBuilder MIB = BuildMI(newMBB, dl, TII->get(X86::MOV32rm), t1); 9153 for (int i=0; i <= lastAddrIndx; ++i) 9154 (*MIB).addOperand(*argOpers[i]); 9155 9156 // We only support register and immediate values 9157 assert((argOpers[valArgIndx]->isReg() || 9158 argOpers[valArgIndx]->isImm()) && 9159 "invalid operand"); 9160 9161 unsigned t2 = F->getRegInfo().createVirtualRegister(X86::GR32RegisterClass); 9162 if (argOpers[valArgIndx]->isReg()) 9163 MIB = BuildMI(newMBB, dl, TII->get(TargetOpcode::COPY), t2); 9164 else 9165 MIB = BuildMI(newMBB, dl, TII->get(X86::MOV32rr), t2); 9166 (*MIB).addOperand(*argOpers[valArgIndx]); 9167 9168 MIB = BuildMI(newMBB, dl, TII->get(TargetOpcode::COPY), X86::EAX); 9169 MIB.addReg(t1); 9170 9171 MIB = BuildMI(newMBB, dl, TII->get(X86::CMP32rr)); 9172 MIB.addReg(t1); 9173 MIB.addReg(t2); 9174 9175 // Generate movc 9176 unsigned t3 = F->getRegInfo().createVirtualRegister(X86::GR32RegisterClass); 9177 MIB = BuildMI(newMBB, dl, TII->get(cmovOpc),t3); 9178 MIB.addReg(t2); 9179 MIB.addReg(t1); 9180 9181 // Cmp and exchange if none has modified the memory location 9182 MIB = BuildMI(newMBB, dl, TII->get(X86::LCMPXCHG32)); 9183 for (int i=0; i <= lastAddrIndx; ++i) 9184 (*MIB).addOperand(*argOpers[i]); 9185 MIB.addReg(t3); 9186 assert(mInstr->hasOneMemOperand() && "Unexpected number of memoperand"); 9187 (*MIB).setMemRefs(mInstr->memoperands_begin(), 9188 mInstr->memoperands_end()); 9189 9190 MIB = BuildMI(newMBB, dl, TII->get(TargetOpcode::COPY), destOper.getReg()); 9191 MIB.addReg(X86::EAX); 9192 9193 // insert branch 9194 BuildMI(newMBB, dl, TII->get(X86::JNE_4)).addMBB(newMBB); 9195 9196 mInstr->eraseFromParent(); // The pseudo instruction is gone now. 9197 return nextMBB; 9198 } 9199 9200 // FIXME: When we get size specific XMM0 registers, i.e. XMM0_V16I8 9201 // or XMM0_V32I8 in AVX all of this code can be replaced with that 9202 // in the .td file. 9203 MachineBasicBlock * 9204 X86TargetLowering::EmitPCMP(MachineInstr *MI, MachineBasicBlock *BB, 9205 unsigned numArgs, bool memArg) const { 9206 9207 assert((Subtarget->hasSSE42() || Subtarget->hasAVX()) && 9208 "Target must have SSE4.2 or AVX features enabled"); 9209 9210 DebugLoc dl = MI->getDebugLoc(); 9211 const TargetInstrInfo *TII = getTargetMachine().getInstrInfo(); 9212 9213 unsigned Opc; 9214 9215 if (!Subtarget->hasAVX()) { 9216 if (memArg) 9217 Opc = numArgs == 3 ? X86::PCMPISTRM128rm : X86::PCMPESTRM128rm; 9218 else 9219 Opc = numArgs == 3 ? X86::PCMPISTRM128rr : X86::PCMPESTRM128rr; 9220 } else { 9221 if (memArg) 9222 Opc = numArgs == 3 ? X86::VPCMPISTRM128rm : X86::VPCMPESTRM128rm; 9223 else 9224 Opc = numArgs == 3 ? X86::VPCMPISTRM128rr : X86::VPCMPESTRM128rr; 9225 } 9226 9227 MachineInstrBuilder MIB = BuildMI(BB, dl, TII->get(Opc)); 9228 9229 for (unsigned i = 0; i < numArgs; ++i) { 9230 MachineOperand &Op = MI->getOperand(i+1); 9231 9232 if (!(Op.isReg() && Op.isImplicit())) 9233 MIB.addOperand(Op); 9234 } 9235 9236 BuildMI(BB, dl, TII->get(X86::MOVAPSrr), MI->getOperand(0).getReg()) 9237 .addReg(X86::XMM0); 9238 9239 MI->eraseFromParent(); 9240 9241 return BB; 9242 } 9243 9244 MachineBasicBlock * 9245 X86TargetLowering::EmitVAStartSaveXMMRegsWithCustomInserter( 9246 MachineInstr *MI, 9247 MachineBasicBlock *MBB) const { 9248 // Emit code to save XMM registers to the stack. The ABI says that the 9249 // number of registers to save is given in %al, so it's theoretically 9250 // possible to do an indirect jump trick to avoid saving all of them, 9251 // however this code takes a simpler approach and just executes all 9252 // of the stores if %al is non-zero. It's less code, and it's probably 9253 // easier on the hardware branch predictor, and stores aren't all that 9254 // expensive anyway. 9255 9256 // Create the new basic blocks. One block contains all the XMM stores, 9257 // and one block is the final destination regardless of whether any 9258 // stores were performed. 9259 const BasicBlock *LLVM_BB = MBB->getBasicBlock(); 9260 MachineFunction *F = MBB->getParent(); 9261 MachineFunction::iterator MBBIter = MBB; 9262 ++MBBIter; 9263 MachineBasicBlock *XMMSaveMBB = F->CreateMachineBasicBlock(LLVM_BB); 9264 MachineBasicBlock *EndMBB = F->CreateMachineBasicBlock(LLVM_BB); 9265 F->insert(MBBIter, XMMSaveMBB); 9266 F->insert(MBBIter, EndMBB); 9267 9268 // Transfer the remainder of MBB and its successor edges to EndMBB. 9269 EndMBB->splice(EndMBB->begin(), MBB, 9270 llvm::next(MachineBasicBlock::iterator(MI)), 9271 MBB->end()); 9272 EndMBB->transferSuccessorsAndUpdatePHIs(MBB); 9273 9274 // The original block will now fall through to the XMM save block. 9275 MBB->addSuccessor(XMMSaveMBB); 9276 // The XMMSaveMBB will fall through to the end block. 9277 XMMSaveMBB->addSuccessor(EndMBB); 9278 9279 // Now add the instructions. 9280 const TargetInstrInfo *TII = getTargetMachine().getInstrInfo(); 9281 DebugLoc DL = MI->getDebugLoc(); 9282 9283 unsigned CountReg = MI->getOperand(0).getReg(); 9284 int64_t RegSaveFrameIndex = MI->getOperand(1).getImm(); 9285 int64_t VarArgsFPOffset = MI->getOperand(2).getImm(); 9286 9287 if (!Subtarget->isTargetWin64()) { 9288 // If %al is 0, branch around the XMM save block. 9289 BuildMI(MBB, DL, TII->get(X86::TEST8rr)).addReg(CountReg).addReg(CountReg); 9290 BuildMI(MBB, DL, TII->get(X86::JE_4)).addMBB(EndMBB); 9291 MBB->addSuccessor(EndMBB); 9292 } 9293 9294 // In the XMM save block, save all the XMM argument registers. 9295 for (int i = 3, e = MI->getNumOperands(); i != e; ++i) { 9296 int64_t Offset = (i - 3) * 16 + VarArgsFPOffset; 9297 MachineMemOperand *MMO = 9298 F->getMachineMemOperand( 9299 PseudoSourceValue::getFixedStack(RegSaveFrameIndex), 9300 MachineMemOperand::MOStore, Offset, 9301 /*Size=*/16, /*Align=*/16); 9302 BuildMI(XMMSaveMBB, DL, TII->get(X86::MOVAPSmr)) 9303 .addFrameIndex(RegSaveFrameIndex) 9304 .addImm(/*Scale=*/1) 9305 .addReg(/*IndexReg=*/0) 9306 .addImm(/*Disp=*/Offset) 9307 .addReg(/*Segment=*/0) 9308 .addReg(MI->getOperand(i).getReg()) 9309 .addMemOperand(MMO); 9310 } 9311 9312 MI->eraseFromParent(); // The pseudo instruction is gone now. 9313 9314 return EndMBB; 9315 } 9316 9317 MachineBasicBlock * 9318 X86TargetLowering::EmitLoweredSelect(MachineInstr *MI, 9319 MachineBasicBlock *BB) const { 9320 const TargetInstrInfo *TII = getTargetMachine().getInstrInfo(); 9321 DebugLoc DL = MI->getDebugLoc(); 9322 9323 // To "insert" a SELECT_CC instruction, we actually have to insert the 9324 // diamond control-flow pattern. The incoming instruction knows the 9325 // destination vreg to set, the condition code register to branch on, the 9326 // true/false values to select between, and a branch opcode to use. 9327 const BasicBlock *LLVM_BB = BB->getBasicBlock(); 9328 MachineFunction::iterator It = BB; 9329 ++It; 9330 9331 // thisMBB: 9332 // ... 9333 // TrueVal = ... 9334 // cmpTY ccX, r1, r2 9335 // bCC copy1MBB 9336 // fallthrough --> copy0MBB 9337 MachineBasicBlock *thisMBB = BB; 9338 MachineFunction *F = BB->getParent(); 9339 MachineBasicBlock *copy0MBB = F->CreateMachineBasicBlock(LLVM_BB); 9340 MachineBasicBlock *sinkMBB = F->CreateMachineBasicBlock(LLVM_BB); 9341 F->insert(It, copy0MBB); 9342 F->insert(It, sinkMBB); 9343 9344 // If the EFLAGS register isn't dead in the terminator, then claim that it's 9345 // live into the sink and copy blocks. 9346 const MachineFunction *MF = BB->getParent(); 9347 const TargetRegisterInfo *TRI = MF->getTarget().getRegisterInfo(); 9348 BitVector ReservedRegs = TRI->getReservedRegs(*MF); 9349 9350 for (unsigned I = 0, E = MI->getNumOperands(); I != E; ++I) { 9351 const MachineOperand &MO = MI->getOperand(I); 9352 if (!MO.isReg() || !MO.isUse() || MO.isKill()) continue; 9353 unsigned Reg = MO.getReg(); 9354 if (Reg != X86::EFLAGS) continue; 9355 copy0MBB->addLiveIn(Reg); 9356 sinkMBB->addLiveIn(Reg); 9357 } 9358 9359 // Transfer the remainder of BB and its successor edges to sinkMBB. 9360 sinkMBB->splice(sinkMBB->begin(), BB, 9361 llvm::next(MachineBasicBlock::iterator(MI)), 9362 BB->end()); 9363 sinkMBB->transferSuccessorsAndUpdatePHIs(BB); 9364 9365 // Add the true and fallthrough blocks as its successors. 9366 BB->addSuccessor(copy0MBB); 9367 BB->addSuccessor(sinkMBB); 9368 9369 // Create the conditional branch instruction. 9370 unsigned Opc = 9371 X86::GetCondBranchFromCond((X86::CondCode)MI->getOperand(3).getImm()); 9372 BuildMI(BB, DL, TII->get(Opc)).addMBB(sinkMBB); 9373 9374 // copy0MBB: 9375 // %FalseValue = ... 9376 // # fallthrough to sinkMBB 9377 copy0MBB->addSuccessor(sinkMBB); 9378 9379 // sinkMBB: 9380 // %Result = phi [ %FalseValue, copy0MBB ], [ %TrueValue, thisMBB ] 9381 // ... 9382 BuildMI(*sinkMBB, sinkMBB->begin(), DL, 9383 TII->get(X86::PHI), MI->getOperand(0).getReg()) 9384 .addReg(MI->getOperand(1).getReg()).addMBB(copy0MBB) 9385 .addReg(MI->getOperand(2).getReg()).addMBB(thisMBB); 9386 9387 MI->eraseFromParent(); // The pseudo instruction is gone now. 9388 return sinkMBB; 9389 } 9390 9391 MachineBasicBlock * 9392 X86TargetLowering::EmitLoweredMingwAlloca(MachineInstr *MI, 9393 MachineBasicBlock *BB) const { 9394 const TargetInstrInfo *TII = getTargetMachine().getInstrInfo(); 9395 DebugLoc DL = MI->getDebugLoc(); 9396 9397 // The lowering is pretty easy: we're just emitting the call to _alloca. The 9398 // non-trivial part is impdef of ESP. 9399 // FIXME: The code should be tweaked as soon as we'll try to do codegen for 9400 // mingw-w64. 9401 9402 BuildMI(*BB, MI, DL, TII->get(X86::CALLpcrel32)) 9403 .addExternalSymbol("_alloca") 9404 .addReg(X86::EAX, RegState::Implicit) 9405 .addReg(X86::ESP, RegState::Implicit) 9406 .addReg(X86::EAX, RegState::Define | RegState::Implicit) 9407 .addReg(X86::ESP, RegState::Define | RegState::Implicit) 9408 .addReg(X86::EFLAGS, RegState::Define | RegState::Implicit); 9409 9410 MI->eraseFromParent(); // The pseudo instruction is gone now. 9411 return BB; 9412 } 9413 9414 MachineBasicBlock * 9415 X86TargetLowering::EmitLoweredTLSCall(MachineInstr *MI, 9416 MachineBasicBlock *BB) const { 9417 // This is pretty easy. We're taking the value that we received from 9418 // our load from the relocation, sticking it in either RDI (x86-64) 9419 // or EAX and doing an indirect call. The return value will then 9420 // be in the normal return register. 9421 const X86InstrInfo *TII 9422 = static_cast<const X86InstrInfo*>(getTargetMachine().getInstrInfo()); 9423 DebugLoc DL = MI->getDebugLoc(); 9424 MachineFunction *F = BB->getParent(); 9425 bool IsWin64 = Subtarget->isTargetWin64(); 9426 9427 assert(MI->getOperand(3).isGlobal() && "This should be a global"); 9428 9429 if (Subtarget->is64Bit()) { 9430 MachineInstrBuilder MIB = BuildMI(*BB, MI, DL, 9431 TII->get(X86::MOV64rm), X86::RDI) 9432 .addReg(X86::RIP) 9433 .addImm(0).addReg(0) 9434 .addGlobalAddress(MI->getOperand(3).getGlobal(), 0, 9435 MI->getOperand(3).getTargetFlags()) 9436 .addReg(0); 9437 MIB = BuildMI(*BB, MI, DL, TII->get(IsWin64 ? X86::WINCALL64m : X86::CALL64m)); 9438 addDirectMem(MIB, X86::RDI); 9439 } else if (getTargetMachine().getRelocationModel() != Reloc::PIC_) { 9440 MachineInstrBuilder MIB = BuildMI(*BB, MI, DL, 9441 TII->get(X86::MOV32rm), X86::EAX) 9442 .addReg(0) 9443 .addImm(0).addReg(0) 9444 .addGlobalAddress(MI->getOperand(3).getGlobal(), 0, 9445 MI->getOperand(3).getTargetFlags()) 9446 .addReg(0); 9447 MIB = BuildMI(*BB, MI, DL, TII->get(X86::CALL32m)); 9448 addDirectMem(MIB, X86::EAX); 9449 } else { 9450 MachineInstrBuilder MIB = BuildMI(*BB, MI, DL, 9451 TII->get(X86::MOV32rm), X86::EAX) 9452 .addReg(TII->getGlobalBaseReg(F)) 9453 .addImm(0).addReg(0) 9454 .addGlobalAddress(MI->getOperand(3).getGlobal(), 0, 9455 MI->getOperand(3).getTargetFlags()) 9456 .addReg(0); 9457 MIB = BuildMI(*BB, MI, DL, TII->get(X86::CALL32m)); 9458 addDirectMem(MIB, X86::EAX); 9459 } 9460 9461 MI->eraseFromParent(); // The pseudo instruction is gone now. 9462 return BB; 9463 } 9464 9465 MachineBasicBlock * 9466 X86TargetLowering::EmitInstrWithCustomInserter(MachineInstr *MI, 9467 MachineBasicBlock *BB) const { 9468 switch (MI->getOpcode()) { 9469 default: assert(false && "Unexpected instr type to insert"); 9470 case X86::MINGW_ALLOCA: 9471 return EmitLoweredMingwAlloca(MI, BB); 9472 case X86::TLSCall_32: 9473 case X86::TLSCall_64: 9474 return EmitLoweredTLSCall(MI, BB); 9475 case X86::CMOV_GR8: 9476 case X86::CMOV_V1I64: 9477 case X86::CMOV_FR32: 9478 case X86::CMOV_FR64: 9479 case X86::CMOV_V4F32: 9480 case X86::CMOV_V2F64: 9481 case X86::CMOV_V2I64: 9482 case X86::CMOV_GR16: 9483 case X86::CMOV_GR32: 9484 case X86::CMOV_RFP32: 9485 case X86::CMOV_RFP64: 9486 case X86::CMOV_RFP80: 9487 return EmitLoweredSelect(MI, BB); 9488 9489 case X86::FP32_TO_INT16_IN_MEM: 9490 case X86::FP32_TO_INT32_IN_MEM: 9491 case X86::FP32_TO_INT64_IN_MEM: 9492 case X86::FP64_TO_INT16_IN_MEM: 9493 case X86::FP64_TO_INT32_IN_MEM: 9494 case X86::FP64_TO_INT64_IN_MEM: 9495 case X86::FP80_TO_INT16_IN_MEM: 9496 case X86::FP80_TO_INT32_IN_MEM: 9497 case X86::FP80_TO_INT64_IN_MEM: { 9498 const TargetInstrInfo *TII = getTargetMachine().getInstrInfo(); 9499 DebugLoc DL = MI->getDebugLoc(); 9500 9501 // Change the floating point control register to use "round towards zero" 9502 // mode when truncating to an integer value. 9503 MachineFunction *F = BB->getParent(); 9504 int CWFrameIdx = F->getFrameInfo()->CreateStackObject(2, 2, false); 9505 addFrameReference(BuildMI(*BB, MI, DL, 9506 TII->get(X86::FNSTCW16m)), CWFrameIdx); 9507 9508 // Load the old value of the high byte of the control word... 9509 unsigned OldCW = 9510 F->getRegInfo().createVirtualRegister(X86::GR16RegisterClass); 9511 addFrameReference(BuildMI(*BB, MI, DL, TII->get(X86::MOV16rm), OldCW), 9512 CWFrameIdx); 9513 9514 // Set the high part to be round to zero... 9515 addFrameReference(BuildMI(*BB, MI, DL, TII->get(X86::MOV16mi)), CWFrameIdx) 9516 .addImm(0xC7F); 9517 9518 // Reload the modified control word now... 9519 addFrameReference(BuildMI(*BB, MI, DL, 9520 TII->get(X86::FLDCW16m)), CWFrameIdx); 9521 9522 // Restore the memory image of control word to original value 9523 addFrameReference(BuildMI(*BB, MI, DL, TII->get(X86::MOV16mr)), CWFrameIdx) 9524 .addReg(OldCW); 9525 9526 // Get the X86 opcode to use. 9527 unsigned Opc; 9528 switch (MI->getOpcode()) { 9529 default: llvm_unreachable("illegal opcode!"); 9530 case X86::FP32_TO_INT16_IN_MEM: Opc = X86::IST_Fp16m32; break; 9531 case X86::FP32_TO_INT32_IN_MEM: Opc = X86::IST_Fp32m32; break; 9532 case X86::FP32_TO_INT64_IN_MEM: Opc = X86::IST_Fp64m32; break; 9533 case X86::FP64_TO_INT16_IN_MEM: Opc = X86::IST_Fp16m64; break; 9534 case X86::FP64_TO_INT32_IN_MEM: Opc = X86::IST_Fp32m64; break; 9535 case X86::FP64_TO_INT64_IN_MEM: Opc = X86::IST_Fp64m64; break; 9536 case X86::FP80_TO_INT16_IN_MEM: Opc = X86::IST_Fp16m80; break; 9537 case X86::FP80_TO_INT32_IN_MEM: Opc = X86::IST_Fp32m80; break; 9538 case X86::FP80_TO_INT64_IN_MEM: Opc = X86::IST_Fp64m80; break; 9539 } 9540 9541 X86AddressMode AM; 9542 MachineOperand &Op = MI->getOperand(0); 9543 if (Op.isReg()) { 9544 AM.BaseType = X86AddressMode::RegBase; 9545 AM.Base.Reg = Op.getReg(); 9546 } else { 9547 AM.BaseType = X86AddressMode::FrameIndexBase; 9548 AM.Base.FrameIndex = Op.getIndex(); 9549 } 9550 Op = MI->getOperand(1); 9551 if (Op.isImm()) 9552 AM.Scale = Op.getImm(); 9553 Op = MI->getOperand(2); 9554 if (Op.isImm()) 9555 AM.IndexReg = Op.getImm(); 9556 Op = MI->getOperand(3); 9557 if (Op.isGlobal()) { 9558 AM.GV = Op.getGlobal(); 9559 } else { 9560 AM.Disp = Op.getImm(); 9561 } 9562 addFullAddress(BuildMI(*BB, MI, DL, TII->get(Opc)), AM) 9563 .addReg(MI->getOperand(X86::AddrNumOperands).getReg()); 9564 9565 // Reload the original control word now. 9566 addFrameReference(BuildMI(*BB, MI, DL, 9567 TII->get(X86::FLDCW16m)), CWFrameIdx); 9568 9569 MI->eraseFromParent(); // The pseudo instruction is gone now. 9570 return BB; 9571 } 9572 // String/text processing lowering. 9573 case X86::PCMPISTRM128REG: 9574 case X86::VPCMPISTRM128REG: 9575 return EmitPCMP(MI, BB, 3, false /* in-mem */); 9576 case X86::PCMPISTRM128MEM: 9577 case X86::VPCMPISTRM128MEM: 9578 return EmitPCMP(MI, BB, 3, true /* in-mem */); 9579 case X86::PCMPESTRM128REG: 9580 case X86::VPCMPESTRM128REG: 9581 return EmitPCMP(MI, BB, 5, false /* in mem */); 9582 case X86::PCMPESTRM128MEM: 9583 case X86::VPCMPESTRM128MEM: 9584 return EmitPCMP(MI, BB, 5, true /* in mem */); 9585 9586 // Atomic Lowering. 9587 case X86::ATOMAND32: 9588 return EmitAtomicBitwiseWithCustomInserter(MI, BB, X86::AND32rr, 9589 X86::AND32ri, X86::MOV32rm, 9590 X86::LCMPXCHG32, 9591 X86::NOT32r, X86::EAX, 9592 X86::GR32RegisterClass); 9593 case X86::ATOMOR32: 9594 return EmitAtomicBitwiseWithCustomInserter(MI, BB, X86::OR32rr, 9595 X86::OR32ri, X86::MOV32rm, 9596 X86::LCMPXCHG32, 9597 X86::NOT32r, X86::EAX, 9598 X86::GR32RegisterClass); 9599 case X86::ATOMXOR32: 9600 return EmitAtomicBitwiseWithCustomInserter(MI, BB, X86::XOR32rr, 9601 X86::XOR32ri, X86::MOV32rm, 9602 X86::LCMPXCHG32, 9603 X86::NOT32r, X86::EAX, 9604 X86::GR32RegisterClass); 9605 case X86::ATOMNAND32: 9606 return EmitAtomicBitwiseWithCustomInserter(MI, BB, X86::AND32rr, 9607 X86::AND32ri, X86::MOV32rm, 9608 X86::LCMPXCHG32, 9609 X86::NOT32r, X86::EAX, 9610 X86::GR32RegisterClass, true); 9611 case X86::ATOMMIN32: 9612 return EmitAtomicMinMaxWithCustomInserter(MI, BB, X86::CMOVL32rr); 9613 case X86::ATOMMAX32: 9614 return EmitAtomicMinMaxWithCustomInserter(MI, BB, X86::CMOVG32rr); 9615 case X86::ATOMUMIN32: 9616 return EmitAtomicMinMaxWithCustomInserter(MI, BB, X86::CMOVB32rr); 9617 case X86::ATOMUMAX32: 9618 return EmitAtomicMinMaxWithCustomInserter(MI, BB, X86::CMOVA32rr); 9619 9620 case X86::ATOMAND16: 9621 return EmitAtomicBitwiseWithCustomInserter(MI, BB, X86::AND16rr, 9622 X86::AND16ri, X86::MOV16rm, 9623 X86::LCMPXCHG16, 9624 X86::NOT16r, X86::AX, 9625 X86::GR16RegisterClass); 9626 case X86::ATOMOR16: 9627 return EmitAtomicBitwiseWithCustomInserter(MI, BB, X86::OR16rr, 9628 X86::OR16ri, X86::MOV16rm, 9629 X86::LCMPXCHG16, 9630 X86::NOT16r, X86::AX, 9631 X86::GR16RegisterClass); 9632 case X86::ATOMXOR16: 9633 return EmitAtomicBitwiseWithCustomInserter(MI, BB, X86::XOR16rr, 9634 X86::XOR16ri, X86::MOV16rm, 9635 X86::LCMPXCHG16, 9636 X86::NOT16r, X86::AX, 9637 X86::GR16RegisterClass); 9638 case X86::ATOMNAND16: 9639 return EmitAtomicBitwiseWithCustomInserter(MI, BB, X86::AND16rr, 9640 X86::AND16ri, X86::MOV16rm, 9641 X86::LCMPXCHG16, 9642 X86::NOT16r, X86::AX, 9643 X86::GR16RegisterClass, true); 9644 case X86::ATOMMIN16: 9645 return EmitAtomicMinMaxWithCustomInserter(MI, BB, X86::CMOVL16rr); 9646 case X86::ATOMMAX16: 9647 return EmitAtomicMinMaxWithCustomInserter(MI, BB, X86::CMOVG16rr); 9648 case X86::ATOMUMIN16: 9649 return EmitAtomicMinMaxWithCustomInserter(MI, BB, X86::CMOVB16rr); 9650 case X86::ATOMUMAX16: 9651 return EmitAtomicMinMaxWithCustomInserter(MI, BB, X86::CMOVA16rr); 9652 9653 case X86::ATOMAND8: 9654 return EmitAtomicBitwiseWithCustomInserter(MI, BB, X86::AND8rr, 9655 X86::AND8ri, X86::MOV8rm, 9656 X86::LCMPXCHG8, 9657 X86::NOT8r, X86::AL, 9658 X86::GR8RegisterClass); 9659 case X86::ATOMOR8: 9660 return EmitAtomicBitwiseWithCustomInserter(MI, BB, X86::OR8rr, 9661 X86::OR8ri, X86::MOV8rm, 9662 X86::LCMPXCHG8, 9663 X86::NOT8r, X86::AL, 9664 X86::GR8RegisterClass); 9665 case X86::ATOMXOR8: 9666 return EmitAtomicBitwiseWithCustomInserter(MI, BB, X86::XOR8rr, 9667 X86::XOR8ri, X86::MOV8rm, 9668 X86::LCMPXCHG8, 9669 X86::NOT8r, X86::AL, 9670 X86::GR8RegisterClass); 9671 case X86::ATOMNAND8: 9672 return EmitAtomicBitwiseWithCustomInserter(MI, BB, X86::AND8rr, 9673 X86::AND8ri, X86::MOV8rm, 9674 X86::LCMPXCHG8, 9675 X86::NOT8r, X86::AL, 9676 X86::GR8RegisterClass, true); 9677 // FIXME: There are no CMOV8 instructions; MIN/MAX need some other way. 9678 // This group is for 64-bit host. 9679 case X86::ATOMAND64: 9680 return EmitAtomicBitwiseWithCustomInserter(MI, BB, X86::AND64rr, 9681 X86::AND64ri32, X86::MOV64rm, 9682 X86::LCMPXCHG64, 9683 X86::NOT64r, X86::RAX, 9684 X86::GR64RegisterClass); 9685 case X86::ATOMOR64: 9686 return EmitAtomicBitwiseWithCustomInserter(MI, BB, X86::OR64rr, 9687 X86::OR64ri32, X86::MOV64rm, 9688 X86::LCMPXCHG64, 9689 X86::NOT64r, X86::RAX, 9690 X86::GR64RegisterClass); 9691 case X86::ATOMXOR64: 9692 return EmitAtomicBitwiseWithCustomInserter(MI, BB, X86::XOR64rr, 9693 X86::XOR64ri32, X86::MOV64rm, 9694 X86::LCMPXCHG64, 9695 X86::NOT64r, X86::RAX, 9696 X86::GR64RegisterClass); 9697 case X86::ATOMNAND64: 9698 return EmitAtomicBitwiseWithCustomInserter(MI, BB, X86::AND64rr, 9699 X86::AND64ri32, X86::MOV64rm, 9700 X86::LCMPXCHG64, 9701 X86::NOT64r, X86::RAX, 9702 X86::GR64RegisterClass, true); 9703 case X86::ATOMMIN64: 9704 return EmitAtomicMinMaxWithCustomInserter(MI, BB, X86::CMOVL64rr); 9705 case X86::ATOMMAX64: 9706 return EmitAtomicMinMaxWithCustomInserter(MI, BB, X86::CMOVG64rr); 9707 case X86::ATOMUMIN64: 9708 return EmitAtomicMinMaxWithCustomInserter(MI, BB, X86::CMOVB64rr); 9709 case X86::ATOMUMAX64: 9710 return EmitAtomicMinMaxWithCustomInserter(MI, BB, X86::CMOVA64rr); 9711 9712 // This group does 64-bit operations on a 32-bit host. 9713 case X86::ATOMAND6432: 9714 return EmitAtomicBit6432WithCustomInserter(MI, BB, 9715 X86::AND32rr, X86::AND32rr, 9716 X86::AND32ri, X86::AND32ri, 9717 false); 9718 case X86::ATOMOR6432: 9719 return EmitAtomicBit6432WithCustomInserter(MI, BB, 9720 X86::OR32rr, X86::OR32rr, 9721 X86::OR32ri, X86::OR32ri, 9722 false); 9723 case X86::ATOMXOR6432: 9724 return EmitAtomicBit6432WithCustomInserter(MI, BB, 9725 X86::XOR32rr, X86::XOR32rr, 9726 X86::XOR32ri, X86::XOR32ri, 9727 false); 9728 case X86::ATOMNAND6432: 9729 return EmitAtomicBit6432WithCustomInserter(MI, BB, 9730 X86::AND32rr, X86::AND32rr, 9731 X86::AND32ri, X86::AND32ri, 9732 true); 9733 case X86::ATOMADD6432: 9734 return EmitAtomicBit6432WithCustomInserter(MI, BB, 9735 X86::ADD32rr, X86::ADC32rr, 9736 X86::ADD32ri, X86::ADC32ri, 9737 false); 9738 case X86::ATOMSUB6432: 9739 return EmitAtomicBit6432WithCustomInserter(MI, BB, 9740 X86::SUB32rr, X86::SBB32rr, 9741 X86::SUB32ri, X86::SBB32ri, 9742 false); 9743 case X86::ATOMSWAP6432: 9744 return EmitAtomicBit6432WithCustomInserter(MI, BB, 9745 X86::MOV32rr, X86::MOV32rr, 9746 X86::MOV32ri, X86::MOV32ri, 9747 false); 9748 case X86::VASTART_SAVE_XMM_REGS: 9749 return EmitVAStartSaveXMMRegsWithCustomInserter(MI, BB); 9750 } 9751 } 9752 9753 //===----------------------------------------------------------------------===// 9754 // X86 Optimization Hooks 9755 //===----------------------------------------------------------------------===// 9756 9757 void X86TargetLowering::computeMaskedBitsForTargetNode(const SDValue Op, 9758 const APInt &Mask, 9759 APInt &KnownZero, 9760 APInt &KnownOne, 9761 const SelectionDAG &DAG, 9762 unsigned Depth) const { 9763 unsigned Opc = Op.getOpcode(); 9764 assert((Opc >= ISD::BUILTIN_OP_END || 9765 Opc == ISD::INTRINSIC_WO_CHAIN || 9766 Opc == ISD::INTRINSIC_W_CHAIN || 9767 Opc == ISD::INTRINSIC_VOID) && 9768 "Should use MaskedValueIsZero if you don't know whether Op" 9769 " is a target node!"); 9770 9771 KnownZero = KnownOne = APInt(Mask.getBitWidth(), 0); // Don't know anything. 9772 switch (Opc) { 9773 default: break; 9774 case X86ISD::ADD: 9775 case X86ISD::SUB: 9776 case X86ISD::SMUL: 9777 case X86ISD::UMUL: 9778 case X86ISD::INC: 9779 case X86ISD::DEC: 9780 case X86ISD::OR: 9781 case X86ISD::XOR: 9782 case X86ISD::AND: 9783 // These nodes' second result is a boolean. 9784 if (Op.getResNo() == 0) 9785 break; 9786 // Fallthrough 9787 case X86ISD::SETCC: 9788 KnownZero |= APInt::getHighBitsSet(Mask.getBitWidth(), 9789 Mask.getBitWidth() - 1); 9790 break; 9791 } 9792 } 9793 9794 /// isGAPlusOffset - Returns true (and the GlobalValue and the offset) if the 9795 /// node is a GlobalAddress + offset. 9796 bool X86TargetLowering::isGAPlusOffset(SDNode *N, 9797 const GlobalValue* &GA, 9798 int64_t &Offset) const { 9799 if (N->getOpcode() == X86ISD::Wrapper) { 9800 if (isa<GlobalAddressSDNode>(N->getOperand(0))) { 9801 GA = cast<GlobalAddressSDNode>(N->getOperand(0))->getGlobal(); 9802 Offset = cast<GlobalAddressSDNode>(N->getOperand(0))->getOffset(); 9803 return true; 9804 } 9805 } 9806 return TargetLowering::isGAPlusOffset(N, GA, Offset); 9807 } 9808 9809 /// PerformShuffleCombine - Combine a vector_shuffle that is equal to 9810 /// build_vector load1, load2, load3, load4, <0, 1, 2, 3> into a 128-bit load 9811 /// if the load addresses are consecutive, non-overlapping, and in the right 9812 /// order. 9813 static SDValue PerformShuffleCombine(SDNode *N, SelectionDAG &DAG, 9814 const TargetLowering &TLI) { 9815 DebugLoc dl = N->getDebugLoc(); 9816 EVT VT = N->getValueType(0); 9817 9818 if (VT.getSizeInBits() != 128) 9819 return SDValue(); 9820 9821 SmallVector<SDValue, 16> Elts; 9822 for (unsigned i = 0, e = VT.getVectorNumElements(); i != e; ++i) 9823 Elts.push_back(getShuffleScalarElt(N, i, DAG, 0)); 9824 9825 return EltsFromConsecutiveLoads(VT, Elts, dl, DAG); 9826 } 9827 9828 /// PerformEXTRACT_VECTOR_ELTCombine - Detect vector gather/scatter index 9829 /// generation and convert it from being a bunch of shuffles and extracts 9830 /// to a simple store and scalar loads to extract the elements. 9831 static SDValue PerformEXTRACT_VECTOR_ELTCombine(SDNode *N, SelectionDAG &DAG, 9832 const TargetLowering &TLI) { 9833 SDValue InputVector = N->getOperand(0); 9834 9835 // Only operate on vectors of 4 elements, where the alternative shuffling 9836 // gets to be more expensive. 9837 if (InputVector.getValueType() != MVT::v4i32) 9838 return SDValue(); 9839 9840 // Check whether every use of InputVector is an EXTRACT_VECTOR_ELT with a 9841 // single use which is a sign-extend or zero-extend, and all elements are 9842 // used. 9843 SmallVector<SDNode *, 4> Uses; 9844 unsigned ExtractedElements = 0; 9845 for (SDNode::use_iterator UI = InputVector.getNode()->use_begin(), 9846 UE = InputVector.getNode()->use_end(); UI != UE; ++UI) { 9847 if (UI.getUse().getResNo() != InputVector.getResNo()) 9848 return SDValue(); 9849 9850 SDNode *Extract = *UI; 9851 if (Extract->getOpcode() != ISD::EXTRACT_VECTOR_ELT) 9852 return SDValue(); 9853 9854 if (Extract->getValueType(0) != MVT::i32) 9855 return SDValue(); 9856 if (!Extract->hasOneUse()) 9857 return SDValue(); 9858 if (Extract->use_begin()->getOpcode() != ISD::SIGN_EXTEND && 9859 Extract->use_begin()->getOpcode() != ISD::ZERO_EXTEND) 9860 return SDValue(); 9861 if (!isa<ConstantSDNode>(Extract->getOperand(1))) 9862 return SDValue(); 9863 9864 // Record which element was extracted. 9865 ExtractedElements |= 9866 1 << cast<ConstantSDNode>(Extract->getOperand(1))->getZExtValue(); 9867 9868 Uses.push_back(Extract); 9869 } 9870 9871 // If not all the elements were used, this may not be worthwhile. 9872 if (ExtractedElements != 15) 9873 return SDValue(); 9874 9875 // Ok, we've now decided to do the transformation. 9876 DebugLoc dl = InputVector.getDebugLoc(); 9877 9878 // Store the value to a temporary stack slot. 9879 SDValue StackPtr = DAG.CreateStackTemporary(InputVector.getValueType()); 9880 SDValue Ch = DAG.getStore(DAG.getEntryNode(), dl, InputVector, StackPtr, NULL, 9881 0, false, false, 0); 9882 9883 // Replace each use (extract) with a load of the appropriate element. 9884 for (SmallVectorImpl<SDNode *>::iterator UI = Uses.begin(), 9885 UE = Uses.end(); UI != UE; ++UI) { 9886 SDNode *Extract = *UI; 9887 9888 // Compute the element's address. 9889 SDValue Idx = Extract->getOperand(1); 9890 unsigned EltSize = 9891 InputVector.getValueType().getVectorElementType().getSizeInBits()/8; 9892 uint64_t Offset = EltSize * cast<ConstantSDNode>(Idx)->getZExtValue(); 9893 SDValue OffsetVal = DAG.getConstant(Offset, TLI.getPointerTy()); 9894 9895 SDValue ScalarAddr = DAG.getNode(ISD::ADD, dl, Idx.getValueType(), 9896 OffsetVal, StackPtr); 9897 9898 // Load the scalar. 9899 SDValue LoadScalar = DAG.getLoad(Extract->getValueType(0), dl, Ch, 9900 ScalarAddr, NULL, 0, false, false, 0); 9901 9902 // Replace the exact with the load. 9903 DAG.ReplaceAllUsesOfValueWith(SDValue(Extract, 0), LoadScalar); 9904 } 9905 9906 // The replacement was made in place; don't return anything. 9907 return SDValue(); 9908 } 9909 9910 /// PerformSELECTCombine - Do target-specific dag combines on SELECT nodes. 9911 static SDValue PerformSELECTCombine(SDNode *N, SelectionDAG &DAG, 9912 const X86Subtarget *Subtarget) { 9913 DebugLoc DL = N->getDebugLoc(); 9914 SDValue Cond = N->getOperand(0); 9915 // Get the LHS/RHS of the select. 9916 SDValue LHS = N->getOperand(1); 9917 SDValue RHS = N->getOperand(2); 9918 9919 // If we have SSE[12] support, try to form min/max nodes. SSE min/max 9920 // instructions match the semantics of the common C idiom x<y?x:y but not 9921 // x<=y?x:y, because of how they handle negative zero (which can be 9922 // ignored in unsafe-math mode). 9923 if (Subtarget->hasSSE2() && 9924 (LHS.getValueType() == MVT::f32 || LHS.getValueType() == MVT::f64) && 9925 Cond.getOpcode() == ISD::SETCC) { 9926 ISD::CondCode CC = cast<CondCodeSDNode>(Cond.getOperand(2))->get(); 9927 9928 unsigned Opcode = 0; 9929 // Check for x CC y ? x : y. 9930 if (DAG.isEqualTo(LHS, Cond.getOperand(0)) && 9931 DAG.isEqualTo(RHS, Cond.getOperand(1))) { 9932 switch (CC) { 9933 default: break; 9934 case ISD::SETULT: 9935 // Converting this to a min would handle NaNs incorrectly, and swapping 9936 // the operands would cause it to handle comparisons between positive 9937 // and negative zero incorrectly. 9938 if (!DAG.isKnownNeverNaN(LHS) || !DAG.isKnownNeverNaN(RHS)) { 9939 if (!UnsafeFPMath && 9940 !(DAG.isKnownNeverZero(LHS) || DAG.isKnownNeverZero(RHS))) 9941 break; 9942 std::swap(LHS, RHS); 9943 } 9944 Opcode = X86ISD::FMIN; 9945 break; 9946 case ISD::SETOLE: 9947 // Converting this to a min would handle comparisons between positive 9948 // and negative zero incorrectly. 9949 if (!UnsafeFPMath && 9950 !DAG.isKnownNeverZero(LHS) && !DAG.isKnownNeverZero(RHS)) 9951 break; 9952 Opcode = X86ISD::FMIN; 9953 break; 9954 case ISD::SETULE: 9955 // Converting this to a min would handle both negative zeros and NaNs 9956 // incorrectly, but we can swap the operands to fix both. 9957 std::swap(LHS, RHS); 9958 case ISD::SETOLT: 9959 case ISD::SETLT: 9960 case ISD::SETLE: 9961 Opcode = X86ISD::FMIN; 9962 break; 9963 9964 case ISD::SETOGE: 9965 // Converting this to a max would handle comparisons between positive 9966 // and negative zero incorrectly. 9967 if (!UnsafeFPMath && 9968 !DAG.isKnownNeverZero(LHS) && !DAG.isKnownNeverZero(LHS)) 9969 break; 9970 Opcode = X86ISD::FMAX; 9971 break; 9972 case ISD::SETUGT: 9973 // Converting this to a max would handle NaNs incorrectly, and swapping 9974 // the operands would cause it to handle comparisons between positive 9975 // and negative zero incorrectly. 9976 if (!DAG.isKnownNeverNaN(LHS) || !DAG.isKnownNeverNaN(RHS)) { 9977 if (!UnsafeFPMath && 9978 !(DAG.isKnownNeverZero(LHS) || DAG.isKnownNeverZero(RHS))) 9979 break; 9980 std::swap(LHS, RHS); 9981 } 9982 Opcode = X86ISD::FMAX; 9983 break; 9984 case ISD::SETUGE: 9985 // Converting this to a max would handle both negative zeros and NaNs 9986 // incorrectly, but we can swap the operands to fix both. 9987 std::swap(LHS, RHS); 9988 case ISD::SETOGT: 9989 case ISD::SETGT: 9990 case ISD::SETGE: 9991 Opcode = X86ISD::FMAX; 9992 break; 9993 } 9994 // Check for x CC y ? y : x -- a min/max with reversed arms. 9995 } else if (DAG.isEqualTo(LHS, Cond.getOperand(1)) && 9996 DAG.isEqualTo(RHS, Cond.getOperand(0))) { 9997 switch (CC) { 9998 default: break; 9999 case ISD::SETOGE: 10000 // Converting this to a min would handle comparisons between positive 10001 // and negative zero incorrectly, and swapping the operands would 10002 // cause it to handle NaNs incorrectly. 10003 if (!UnsafeFPMath && 10004 !(DAG.isKnownNeverZero(LHS) || DAG.isKnownNeverZero(RHS))) { 10005 if (!DAG.isKnownNeverNaN(LHS) || !DAG.isKnownNeverNaN(RHS)) 10006 break; 10007 std::swap(LHS, RHS); 10008 } 10009 Opcode = X86ISD::FMIN; 10010 break; 10011 case ISD::SETUGT: 10012 // Converting this to a min would handle NaNs incorrectly. 10013 if (!UnsafeFPMath && 10014 (!DAG.isKnownNeverNaN(LHS) || !DAG.isKnownNeverNaN(RHS))) 10015 break; 10016 Opcode = X86ISD::FMIN; 10017 break; 10018 case ISD::SETUGE: 10019 // Converting this to a min would handle both negative zeros and NaNs 10020 // incorrectly, but we can swap the operands to fix both. 10021 std::swap(LHS, RHS); 10022 case ISD::SETOGT: 10023 case ISD::SETGT: 10024 case ISD::SETGE: 10025 Opcode = X86ISD::FMIN; 10026 break; 10027 10028 case ISD::SETULT: 10029 // Converting this to a max would handle NaNs incorrectly. 10030 if (!DAG.isKnownNeverNaN(LHS) || !DAG.isKnownNeverNaN(RHS)) 10031 break; 10032 Opcode = X86ISD::FMAX; 10033 break; 10034 case ISD::SETOLE: 10035 // Converting this to a max would handle comparisons between positive 10036 // and negative zero incorrectly, and swapping the operands would 10037 // cause it to handle NaNs incorrectly. 10038 if (!UnsafeFPMath && 10039 !DAG.isKnownNeverZero(LHS) && !DAG.isKnownNeverZero(RHS)) { 10040 if (!DAG.isKnownNeverNaN(LHS) || !DAG.isKnownNeverNaN(RHS)) 10041 break; 10042 std::swap(LHS, RHS); 10043 } 10044 Opcode = X86ISD::FMAX; 10045 break; 10046 case ISD::SETULE: 10047 // Converting this to a max would handle both negative zeros and NaNs 10048 // incorrectly, but we can swap the operands to fix both. 10049 std::swap(LHS, RHS); 10050 case ISD::SETOLT: 10051 case ISD::SETLT: 10052 case ISD::SETLE: 10053 Opcode = X86ISD::FMAX; 10054 break; 10055 } 10056 } 10057 10058 if (Opcode) 10059 return DAG.getNode(Opcode, DL, N->getValueType(0), LHS, RHS); 10060 } 10061 10062 // If this is a select between two integer constants, try to do some 10063 // optimizations. 10064 if (ConstantSDNode *TrueC = dyn_cast<ConstantSDNode>(LHS)) { 10065 if (ConstantSDNode *FalseC = dyn_cast<ConstantSDNode>(RHS)) 10066 // Don't do this for crazy integer types. 10067 if (DAG.getTargetLoweringInfo().isTypeLegal(LHS.getValueType())) { 10068 // If this is efficiently invertible, canonicalize the LHSC/RHSC values 10069 // so that TrueC (the true value) is larger than FalseC. 10070 bool NeedsCondInvert = false; 10071 10072 if (TrueC->getAPIntValue().ult(FalseC->getAPIntValue()) && 10073 // Efficiently invertible. 10074 (Cond.getOpcode() == ISD::SETCC || // setcc -> invertible. 10075 (Cond.getOpcode() == ISD::XOR && // xor(X, C) -> invertible. 10076 isa<ConstantSDNode>(Cond.getOperand(1))))) { 10077 NeedsCondInvert = true; 10078 std::swap(TrueC, FalseC); 10079 } 10080 10081 // Optimize C ? 8 : 0 -> zext(C) << 3. Likewise for any pow2/0. 10082 if (FalseC->getAPIntValue() == 0 && 10083 TrueC->getAPIntValue().isPowerOf2()) { 10084 if (NeedsCondInvert) // Invert the condition if needed. 10085 Cond = DAG.getNode(ISD::XOR, DL, Cond.getValueType(), Cond, 10086 DAG.getConstant(1, Cond.getValueType())); 10087 10088 // Zero extend the condition if needed. 10089 Cond = DAG.getNode(ISD::ZERO_EXTEND, DL, LHS.getValueType(), Cond); 10090 10091 unsigned ShAmt = TrueC->getAPIntValue().logBase2(); 10092 return DAG.getNode(ISD::SHL, DL, LHS.getValueType(), Cond, 10093 DAG.getConstant(ShAmt, MVT::i8)); 10094 } 10095 10096 // Optimize Cond ? cst+1 : cst -> zext(setcc(C)+cst. 10097 if (FalseC->getAPIntValue()+1 == TrueC->getAPIntValue()) { 10098 if (NeedsCondInvert) // Invert the condition if needed. 10099 Cond = DAG.getNode(ISD::XOR, DL, Cond.getValueType(), Cond, 10100 DAG.getConstant(1, Cond.getValueType())); 10101 10102 // Zero extend the condition if needed. 10103 Cond = DAG.getNode(ISD::ZERO_EXTEND, DL, 10104 FalseC->getValueType(0), Cond); 10105 return DAG.getNode(ISD::ADD, DL, Cond.getValueType(), Cond, 10106 SDValue(FalseC, 0)); 10107 } 10108 10109 // Optimize cases that will turn into an LEA instruction. This requires 10110 // an i32 or i64 and an efficient multiplier (1, 2, 3, 4, 5, 8, 9). 10111 if (N->getValueType(0) == MVT::i32 || N->getValueType(0) == MVT::i64) { 10112 uint64_t Diff = TrueC->getZExtValue()-FalseC->getZExtValue(); 10113 if (N->getValueType(0) == MVT::i32) Diff = (unsigned)Diff; 10114 10115 bool isFastMultiplier = false; 10116 if (Diff < 10) { 10117 switch ((unsigned char)Diff) { 10118 default: break; 10119 case 1: // result = add base, cond 10120 case 2: // result = lea base( , cond*2) 10121 case 3: // result = lea base(cond, cond*2) 10122 case 4: // result = lea base( , cond*4) 10123 case 5: // result = lea base(cond, cond*4) 10124 case 8: // result = lea base( , cond*8) 10125 case 9: // result = lea base(cond, cond*8) 10126 isFastMultiplier = true; 10127 break; 10128 } 10129 } 10130 10131 if (isFastMultiplier) { 10132 APInt Diff = TrueC->getAPIntValue()-FalseC->getAPIntValue(); 10133 if (NeedsCondInvert) // Invert the condition if needed. 10134 Cond = DAG.getNode(ISD::XOR, DL, Cond.getValueType(), Cond, 10135 DAG.getConstant(1, Cond.getValueType())); 10136 10137 // Zero extend the condition if needed. 10138 Cond = DAG.getNode(ISD::ZERO_EXTEND, DL, FalseC->getValueType(0), 10139 Cond); 10140 // Scale the condition by the difference. 10141 if (Diff != 1) 10142 Cond = DAG.getNode(ISD::MUL, DL, Cond.getValueType(), Cond, 10143 DAG.getConstant(Diff, Cond.getValueType())); 10144 10145 // Add the base if non-zero. 10146 if (FalseC->getAPIntValue() != 0) 10147 Cond = DAG.getNode(ISD::ADD, DL, Cond.getValueType(), Cond, 10148 SDValue(FalseC, 0)); 10149 return Cond; 10150 } 10151 } 10152 } 10153 } 10154 10155 return SDValue(); 10156 } 10157 10158 /// Optimize X86ISD::CMOV [LHS, RHS, CONDCODE (e.g. X86::COND_NE), CONDVAL] 10159 static SDValue PerformCMOVCombine(SDNode *N, SelectionDAG &DAG, 10160 TargetLowering::DAGCombinerInfo &DCI) { 10161 DebugLoc DL = N->getDebugLoc(); 10162 10163 // If the flag operand isn't dead, don't touch this CMOV. 10164 if (N->getNumValues() == 2 && !SDValue(N, 1).use_empty()) 10165 return SDValue(); 10166 10167 // If this is a select between two integer constants, try to do some 10168 // optimizations. Note that the operands are ordered the opposite of SELECT 10169 // operands. 10170 if (ConstantSDNode *TrueC = dyn_cast<ConstantSDNode>(N->getOperand(1))) { 10171 if (ConstantSDNode *FalseC = dyn_cast<ConstantSDNode>(N->getOperand(0))) { 10172 // Canonicalize the TrueC/FalseC values so that TrueC (the true value) is 10173 // larger than FalseC (the false value). 10174 X86::CondCode CC = (X86::CondCode)N->getConstantOperandVal(2); 10175 10176 if (TrueC->getAPIntValue().ult(FalseC->getAPIntValue())) { 10177 CC = X86::GetOppositeBranchCondition(CC); 10178 std::swap(TrueC, FalseC); 10179 } 10180 10181 // Optimize C ? 8 : 0 -> zext(setcc(C)) << 3. Likewise for any pow2/0. 10182 // This is efficient for any integer data type (including i8/i16) and 10183 // shift amount. 10184 if (FalseC->getAPIntValue() == 0 && TrueC->getAPIntValue().isPowerOf2()) { 10185 SDValue Cond = N->getOperand(3); 10186 Cond = DAG.getNode(X86ISD::SETCC, DL, MVT::i8, 10187 DAG.getConstant(CC, MVT::i8), Cond); 10188 10189 // Zero extend the condition if needed. 10190 Cond = DAG.getNode(ISD::ZERO_EXTEND, DL, TrueC->getValueType(0), Cond); 10191 10192 unsigned ShAmt = TrueC->getAPIntValue().logBase2(); 10193 Cond = DAG.getNode(ISD::SHL, DL, Cond.getValueType(), Cond, 10194 DAG.getConstant(ShAmt, MVT::i8)); 10195 if (N->getNumValues() == 2) // Dead flag value? 10196 return DCI.CombineTo(N, Cond, SDValue()); 10197 return Cond; 10198 } 10199 10200 // Optimize Cond ? cst+1 : cst -> zext(setcc(C)+cst. This is efficient 10201 // for any integer data type, including i8/i16. 10202 if (FalseC->getAPIntValue()+1 == TrueC->getAPIntValue()) { 10203 SDValue Cond = N->getOperand(3); 10204 Cond = DAG.getNode(X86ISD::SETCC, DL, MVT::i8, 10205 DAG.getConstant(CC, MVT::i8), Cond); 10206 10207 // Zero extend the condition if needed. 10208 Cond = DAG.getNode(ISD::ZERO_EXTEND, DL, 10209 FalseC->getValueType(0), Cond); 10210 Cond = DAG.getNode(ISD::ADD, DL, Cond.getValueType(), Cond, 10211 SDValue(FalseC, 0)); 10212 10213 if (N->getNumValues() == 2) // Dead flag value? 10214 return DCI.CombineTo(N, Cond, SDValue()); 10215 return Cond; 10216 } 10217 10218 // Optimize cases that will turn into an LEA instruction. This requires 10219 // an i32 or i64 and an efficient multiplier (1, 2, 3, 4, 5, 8, 9). 10220 if (N->getValueType(0) == MVT::i32 || N->getValueType(0) == MVT::i64) { 10221 uint64_t Diff = TrueC->getZExtValue()-FalseC->getZExtValue(); 10222 if (N->getValueType(0) == MVT::i32) Diff = (unsigned)Diff; 10223 10224 bool isFastMultiplier = false; 10225 if (Diff < 10) { 10226 switch ((unsigned char)Diff) { 10227 default: break; 10228 case 1: // result = add base, cond 10229 case 2: // result = lea base( , cond*2) 10230 case 3: // result = lea base(cond, cond*2) 10231 case 4: // result = lea base( , cond*4) 10232 case 5: // result = lea base(cond, cond*4) 10233 case 8: // result = lea base( , cond*8) 10234 case 9: // result = lea base(cond, cond*8) 10235 isFastMultiplier = true; 10236 break; 10237 } 10238 } 10239 10240 if (isFastMultiplier) { 10241 APInt Diff = TrueC->getAPIntValue()-FalseC->getAPIntValue(); 10242 SDValue Cond = N->getOperand(3); 10243 Cond = DAG.getNode(X86ISD::SETCC, DL, MVT::i8, 10244 DAG.getConstant(CC, MVT::i8), Cond); 10245 // Zero extend the condition if needed. 10246 Cond = DAG.getNode(ISD::ZERO_EXTEND, DL, FalseC->getValueType(0), 10247 Cond); 10248 // Scale the condition by the difference. 10249 if (Diff != 1) 10250 Cond = DAG.getNode(ISD::MUL, DL, Cond.getValueType(), Cond, 10251 DAG.getConstant(Diff, Cond.getValueType())); 10252 10253 // Add the base if non-zero. 10254 if (FalseC->getAPIntValue() != 0) 10255 Cond = DAG.getNode(ISD::ADD, DL, Cond.getValueType(), Cond, 10256 SDValue(FalseC, 0)); 10257 if (N->getNumValues() == 2) // Dead flag value? 10258 return DCI.CombineTo(N, Cond, SDValue()); 10259 return Cond; 10260 } 10261 } 10262 } 10263 } 10264 return SDValue(); 10265 } 10266 10267 10268 /// PerformMulCombine - Optimize a single multiply with constant into two 10269 /// in order to implement it with two cheaper instructions, e.g. 10270 /// LEA + SHL, LEA + LEA. 10271 static SDValue PerformMulCombine(SDNode *N, SelectionDAG &DAG, 10272 TargetLowering::DAGCombinerInfo &DCI) { 10273 if (DCI.isBeforeLegalize() || DCI.isCalledByLegalizer()) 10274 return SDValue(); 10275 10276 EVT VT = N->getValueType(0); 10277 if (VT != MVT::i64) 10278 return SDValue(); 10279 10280 ConstantSDNode *C = dyn_cast<ConstantSDNode>(N->getOperand(1)); 10281 if (!C) 10282 return SDValue(); 10283 uint64_t MulAmt = C->getZExtValue(); 10284 if (isPowerOf2_64(MulAmt) || MulAmt == 3 || MulAmt == 5 || MulAmt == 9) 10285 return SDValue(); 10286 10287 uint64_t MulAmt1 = 0; 10288 uint64_t MulAmt2 = 0; 10289 if ((MulAmt % 9) == 0) { 10290 MulAmt1 = 9; 10291 MulAmt2 = MulAmt / 9; 10292 } else if ((MulAmt % 5) == 0) { 10293 MulAmt1 = 5; 10294 MulAmt2 = MulAmt / 5; 10295 } else if ((MulAmt % 3) == 0) { 10296 MulAmt1 = 3; 10297 MulAmt2 = MulAmt / 3; 10298 } 10299 if (MulAmt2 && 10300 (isPowerOf2_64(MulAmt2) || MulAmt2 == 3 || MulAmt2 == 5 || MulAmt2 == 9)){ 10301 DebugLoc DL = N->getDebugLoc(); 10302 10303 if (isPowerOf2_64(MulAmt2) && 10304 !(N->hasOneUse() && N->use_begin()->getOpcode() == ISD::ADD)) 10305 // If second multiplifer is pow2, issue it first. We want the multiply by 10306 // 3, 5, or 9 to be folded into the addressing mode unless the lone use 10307 // is an add. 10308 std::swap(MulAmt1, MulAmt2); 10309 10310 SDValue NewMul; 10311 if (isPowerOf2_64(MulAmt1)) 10312 NewMul = DAG.getNode(ISD::SHL, DL, VT, N->getOperand(0), 10313 DAG.getConstant(Log2_64(MulAmt1), MVT::i8)); 10314 else 10315 NewMul = DAG.getNode(X86ISD::MUL_IMM, DL, VT, N->getOperand(0), 10316 DAG.getConstant(MulAmt1, VT)); 10317 10318 if (isPowerOf2_64(MulAmt2)) 10319 NewMul = DAG.getNode(ISD::SHL, DL, VT, NewMul, 10320 DAG.getConstant(Log2_64(MulAmt2), MVT::i8)); 10321 else 10322 NewMul = DAG.getNode(X86ISD::MUL_IMM, DL, VT, NewMul, 10323 DAG.getConstant(MulAmt2, VT)); 10324 10325 // Do not add new nodes to DAG combiner worklist. 10326 DCI.CombineTo(N, NewMul, false); 10327 } 10328 return SDValue(); 10329 } 10330 10331 static SDValue PerformSHLCombine(SDNode *N, SelectionDAG &DAG) { 10332 SDValue N0 = N->getOperand(0); 10333 SDValue N1 = N->getOperand(1); 10334 ConstantSDNode *N1C = dyn_cast<ConstantSDNode>(N1); 10335 EVT VT = N0.getValueType(); 10336 10337 // fold (shl (and (setcc_c), c1), c2) -> (and setcc_c, (c1 << c2)) 10338 // since the result of setcc_c is all zero's or all ones. 10339 if (N1C && N0.getOpcode() == ISD::AND && 10340 N0.getOperand(1).getOpcode() == ISD::Constant) { 10341 SDValue N00 = N0.getOperand(0); 10342 if (N00.getOpcode() == X86ISD::SETCC_CARRY || 10343 ((N00.getOpcode() == ISD::ANY_EXTEND || 10344 N00.getOpcode() == ISD::ZERO_EXTEND) && 10345 N00.getOperand(0).getOpcode() == X86ISD::SETCC_CARRY)) { 10346 APInt Mask = cast<ConstantSDNode>(N0.getOperand(1))->getAPIntValue(); 10347 APInt ShAmt = N1C->getAPIntValue(); 10348 Mask = Mask.shl(ShAmt); 10349 if (Mask != 0) 10350 return DAG.getNode(ISD::AND, N->getDebugLoc(), VT, 10351 N00, DAG.getConstant(Mask, VT)); 10352 } 10353 } 10354 10355 return SDValue(); 10356 } 10357 10358 /// PerformShiftCombine - Transforms vector shift nodes to use vector shifts 10359 /// when possible. 10360 static SDValue PerformShiftCombine(SDNode* N, SelectionDAG &DAG, 10361 const X86Subtarget *Subtarget) { 10362 EVT VT = N->getValueType(0); 10363 if (!VT.isVector() && VT.isInteger() && 10364 N->getOpcode() == ISD::SHL) 10365 return PerformSHLCombine(N, DAG); 10366 10367 // On X86 with SSE2 support, we can transform this to a vector shift if 10368 // all elements are shifted by the same amount. We can't do this in legalize 10369 // because the a constant vector is typically transformed to a constant pool 10370 // so we have no knowledge of the shift amount. 10371 if (!Subtarget->hasSSE2()) 10372 return SDValue(); 10373 10374 if (VT != MVT::v2i64 && VT != MVT::v4i32 && VT != MVT::v8i16) 10375 return SDValue(); 10376 10377 SDValue ShAmtOp = N->getOperand(1); 10378 EVT EltVT = VT.getVectorElementType(); 10379 DebugLoc DL = N->getDebugLoc(); 10380 SDValue BaseShAmt = SDValue(); 10381 if (ShAmtOp.getOpcode() == ISD::BUILD_VECTOR) { 10382 unsigned NumElts = VT.getVectorNumElements(); 10383 unsigned i = 0; 10384 for (; i != NumElts; ++i) { 10385 SDValue Arg = ShAmtOp.getOperand(i); 10386 if (Arg.getOpcode() == ISD::UNDEF) continue; 10387 BaseShAmt = Arg; 10388 break; 10389 } 10390 for (; i != NumElts; ++i) { 10391 SDValue Arg = ShAmtOp.getOperand(i); 10392 if (Arg.getOpcode() == ISD::UNDEF) continue; 10393 if (Arg != BaseShAmt) { 10394 return SDValue(); 10395 } 10396 } 10397 } else if (ShAmtOp.getOpcode() == ISD::VECTOR_SHUFFLE && 10398 cast<ShuffleVectorSDNode>(ShAmtOp)->isSplat()) { 10399 SDValue InVec = ShAmtOp.getOperand(0); 10400 if (InVec.getOpcode() == ISD::BUILD_VECTOR) { 10401 unsigned NumElts = InVec.getValueType().getVectorNumElements(); 10402 unsigned i = 0; 10403 for (; i != NumElts; ++i) { 10404 SDValue Arg = InVec.getOperand(i); 10405 if (Arg.getOpcode() == ISD::UNDEF) continue; 10406 BaseShAmt = Arg; 10407 break; 10408 } 10409 } else if (InVec.getOpcode() == ISD::INSERT_VECTOR_ELT) { 10410 if (ConstantSDNode *C = dyn_cast<ConstantSDNode>(InVec.getOperand(2))) { 10411 unsigned SplatIdx= cast<ShuffleVectorSDNode>(ShAmtOp)->getSplatIndex(); 10412 if (C->getZExtValue() == SplatIdx) 10413 BaseShAmt = InVec.getOperand(1); 10414 } 10415 } 10416 if (BaseShAmt.getNode() == 0) 10417 BaseShAmt = DAG.getNode(ISD::EXTRACT_VECTOR_ELT, DL, EltVT, ShAmtOp, 10418 DAG.getIntPtrConstant(0)); 10419 } else 10420 return SDValue(); 10421 10422 // The shift amount is an i32. 10423 if (EltVT.bitsGT(MVT::i32)) 10424 BaseShAmt = DAG.getNode(ISD::TRUNCATE, DL, MVT::i32, BaseShAmt); 10425 else if (EltVT.bitsLT(MVT::i32)) 10426 BaseShAmt = DAG.getNode(ISD::ZERO_EXTEND, DL, MVT::i32, BaseShAmt); 10427 10428 // The shift amount is identical so we can do a vector shift. 10429 SDValue ValOp = N->getOperand(0); 10430 switch (N->getOpcode()) { 10431 default: 10432 llvm_unreachable("Unknown shift opcode!"); 10433 break; 10434 case ISD::SHL: 10435 if (VT == MVT::v2i64) 10436 return DAG.getNode(ISD::INTRINSIC_WO_CHAIN, DL, VT, 10437 DAG.getConstant(Intrinsic::x86_sse2_pslli_q, MVT::i32), 10438 ValOp, BaseShAmt); 10439 if (VT == MVT::v4i32) 10440 return DAG.getNode(ISD::INTRINSIC_WO_CHAIN, DL, VT, 10441 DAG.getConstant(Intrinsic::x86_sse2_pslli_d, MVT::i32), 10442 ValOp, BaseShAmt); 10443 if (VT == MVT::v8i16) 10444 return DAG.getNode(ISD::INTRINSIC_WO_CHAIN, DL, VT, 10445 DAG.getConstant(Intrinsic::x86_sse2_pslli_w, MVT::i32), 10446 ValOp, BaseShAmt); 10447 break; 10448 case ISD::SRA: 10449 if (VT == MVT::v4i32) 10450 return DAG.getNode(ISD::INTRINSIC_WO_CHAIN, DL, VT, 10451 DAG.getConstant(Intrinsic::x86_sse2_psrai_d, MVT::i32), 10452 ValOp, BaseShAmt); 10453 if (VT == MVT::v8i16) 10454 return DAG.getNode(ISD::INTRINSIC_WO_CHAIN, DL, VT, 10455 DAG.getConstant(Intrinsic::x86_sse2_psrai_w, MVT::i32), 10456 ValOp, BaseShAmt); 10457 break; 10458 case ISD::SRL: 10459 if (VT == MVT::v2i64) 10460 return DAG.getNode(ISD::INTRINSIC_WO_CHAIN, DL, VT, 10461 DAG.getConstant(Intrinsic::x86_sse2_psrli_q, MVT::i32), 10462 ValOp, BaseShAmt); 10463 if (VT == MVT::v4i32) 10464 return DAG.getNode(ISD::INTRINSIC_WO_CHAIN, DL, VT, 10465 DAG.getConstant(Intrinsic::x86_sse2_psrli_d, MVT::i32), 10466 ValOp, BaseShAmt); 10467 if (VT == MVT::v8i16) 10468 return DAG.getNode(ISD::INTRINSIC_WO_CHAIN, DL, VT, 10469 DAG.getConstant(Intrinsic::x86_sse2_psrli_w, MVT::i32), 10470 ValOp, BaseShAmt); 10471 break; 10472 } 10473 return SDValue(); 10474 } 10475 10476 static SDValue PerformOrCombine(SDNode *N, SelectionDAG &DAG, 10477 TargetLowering::DAGCombinerInfo &DCI, 10478 const X86Subtarget *Subtarget) { 10479 if (DCI.isBeforeLegalizeOps()) 10480 return SDValue(); 10481 10482 EVT VT = N->getValueType(0); 10483 if (VT != MVT::i16 && VT != MVT::i32 && VT != MVT::i64) 10484 return SDValue(); 10485 10486 // fold (or (x << c) | (y >> (64 - c))) ==> (shld64 x, y, c) 10487 SDValue N0 = N->getOperand(0); 10488 SDValue N1 = N->getOperand(1); 10489 if (N0.getOpcode() == ISD::SRL && N1.getOpcode() == ISD::SHL) 10490 std::swap(N0, N1); 10491 if (N0.getOpcode() != ISD::SHL || N1.getOpcode() != ISD::SRL) 10492 return SDValue(); 10493 if (!N0.hasOneUse() || !N1.hasOneUse()) 10494 return SDValue(); 10495 10496 SDValue ShAmt0 = N0.getOperand(1); 10497 if (ShAmt0.getValueType() != MVT::i8) 10498 return SDValue(); 10499 SDValue ShAmt1 = N1.getOperand(1); 10500 if (ShAmt1.getValueType() != MVT::i8) 10501 return SDValue(); 10502 if (ShAmt0.getOpcode() == ISD::TRUNCATE) 10503 ShAmt0 = ShAmt0.getOperand(0); 10504 if (ShAmt1.getOpcode() == ISD::TRUNCATE) 10505 ShAmt1 = ShAmt1.getOperand(0); 10506 10507 DebugLoc DL = N->getDebugLoc(); 10508 unsigned Opc = X86ISD::SHLD; 10509 SDValue Op0 = N0.getOperand(0); 10510 SDValue Op1 = N1.getOperand(0); 10511 if (ShAmt0.getOpcode() == ISD::SUB) { 10512 Opc = X86ISD::SHRD; 10513 std::swap(Op0, Op1); 10514 std::swap(ShAmt0, ShAmt1); 10515 } 10516 10517 unsigned Bits = VT.getSizeInBits(); 10518 if (ShAmt1.getOpcode() == ISD::SUB) { 10519 SDValue Sum = ShAmt1.getOperand(0); 10520 if (ConstantSDNode *SumC = dyn_cast<ConstantSDNode>(Sum)) { 10521 SDValue ShAmt1Op1 = ShAmt1.getOperand(1); 10522 if (ShAmt1Op1.getNode()->getOpcode() == ISD::TRUNCATE) 10523 ShAmt1Op1 = ShAmt1Op1.getOperand(0); 10524 if (SumC->getSExtValue() == Bits && ShAmt1Op1 == ShAmt0) 10525 return DAG.getNode(Opc, DL, VT, 10526 Op0, Op1, 10527 DAG.getNode(ISD::TRUNCATE, DL, 10528 MVT::i8, ShAmt0)); 10529 } 10530 } else if (ConstantSDNode *ShAmt1C = dyn_cast<ConstantSDNode>(ShAmt1)) { 10531 ConstantSDNode *ShAmt0C = dyn_cast<ConstantSDNode>(ShAmt0); 10532 if (ShAmt0C && 10533 ShAmt0C->getSExtValue() + ShAmt1C->getSExtValue() == Bits) 10534 return DAG.getNode(Opc, DL, VT, 10535 N0.getOperand(0), N1.getOperand(0), 10536 DAG.getNode(ISD::TRUNCATE, DL, 10537 MVT::i8, ShAmt0)); 10538 } 10539 10540 return SDValue(); 10541 } 10542 10543 /// PerformSTORECombine - Do target-specific dag combines on STORE nodes. 10544 static SDValue PerformSTORECombine(SDNode *N, SelectionDAG &DAG, 10545 const X86Subtarget *Subtarget) { 10546 // Turn load->store of MMX types into GPR load/stores. This avoids clobbering 10547 // the FP state in cases where an emms may be missing. 10548 // A preferable solution to the general problem is to figure out the right 10549 // places to insert EMMS. This qualifies as a quick hack. 10550 10551 // Similarly, turn load->store of i64 into double load/stores in 32-bit mode. 10552 StoreSDNode *St = cast<StoreSDNode>(N); 10553 EVT VT = St->getValue().getValueType(); 10554 if (VT.getSizeInBits() != 64) 10555 return SDValue(); 10556 10557 const Function *F = DAG.getMachineFunction().getFunction(); 10558 bool NoImplicitFloatOps = F->hasFnAttr(Attribute::NoImplicitFloat); 10559 bool F64IsLegal = !UseSoftFloat && !NoImplicitFloatOps 10560 && Subtarget->hasSSE2(); 10561 if ((VT.isVector() || 10562 (VT == MVT::i64 && F64IsLegal && !Subtarget->is64Bit())) && 10563 isa<LoadSDNode>(St->getValue()) && 10564 !cast<LoadSDNode>(St->getValue())->isVolatile() && 10565 St->getChain().hasOneUse() && !St->isVolatile()) { 10566 SDNode* LdVal = St->getValue().getNode(); 10567 LoadSDNode *Ld = 0; 10568 int TokenFactorIndex = -1; 10569 SmallVector<SDValue, 8> Ops; 10570 SDNode* ChainVal = St->getChain().getNode(); 10571 // Must be a store of a load. We currently handle two cases: the load 10572 // is a direct child, and it's under an intervening TokenFactor. It is 10573 // possible to dig deeper under nested TokenFactors. 10574 if (ChainVal == LdVal) 10575 Ld = cast<LoadSDNode>(St->getChain()); 10576 else if (St->getValue().hasOneUse() && 10577 ChainVal->getOpcode() == ISD::TokenFactor) { 10578 for (unsigned i=0, e = ChainVal->getNumOperands(); i != e; ++i) { 10579 if (ChainVal->getOperand(i).getNode() == LdVal) { 10580 TokenFactorIndex = i; 10581 Ld = cast<LoadSDNode>(St->getValue()); 10582 } else 10583 Ops.push_back(ChainVal->getOperand(i)); 10584 } 10585 } 10586 10587 if (!Ld || !ISD::isNormalLoad(Ld)) 10588 return SDValue(); 10589 10590 // If this is not the MMX case, i.e. we are just turning i64 load/store 10591 // into f64 load/store, avoid the transformation if there are multiple 10592 // uses of the loaded value. 10593 if (!VT.isVector() && !Ld->hasNUsesOfValue(1, 0)) 10594 return SDValue(); 10595 10596 DebugLoc LdDL = Ld->getDebugLoc(); 10597 DebugLoc StDL = N->getDebugLoc(); 10598 // If we are a 64-bit capable x86, lower to a single movq load/store pair. 10599 // Otherwise, if it's legal to use f64 SSE instructions, use f64 load/store 10600 // pair instead. 10601 if (Subtarget->is64Bit() || F64IsLegal) { 10602 EVT LdVT = Subtarget->is64Bit() ? MVT::i64 : MVT::f64; 10603 SDValue NewLd = DAG.getLoad(LdVT, LdDL, Ld->getChain(), 10604 Ld->getBasePtr(), Ld->getSrcValue(), 10605 Ld->getSrcValueOffset(), Ld->isVolatile(), 10606 Ld->isNonTemporal(), Ld->getAlignment()); 10607 SDValue NewChain = NewLd.getValue(1); 10608 if (TokenFactorIndex != -1) { 10609 Ops.push_back(NewChain); 10610 NewChain = DAG.getNode(ISD::TokenFactor, LdDL, MVT::Other, &Ops[0], 10611 Ops.size()); 10612 } 10613 return DAG.getStore(NewChain, StDL, NewLd, St->getBasePtr(), 10614 St->getSrcValue(), St->getSrcValueOffset(), 10615 St->isVolatile(), St->isNonTemporal(), 10616 St->getAlignment()); 10617 } 10618 10619 // Otherwise, lower to two pairs of 32-bit loads / stores. 10620 SDValue LoAddr = Ld->getBasePtr(); 10621 SDValue HiAddr = DAG.getNode(ISD::ADD, LdDL, MVT::i32, LoAddr, 10622 DAG.getConstant(4, MVT::i32)); 10623 10624 SDValue LoLd = DAG.getLoad(MVT::i32, LdDL, Ld->getChain(), LoAddr, 10625 Ld->getSrcValue(), Ld->getSrcValueOffset(), 10626 Ld->isVolatile(), Ld->isNonTemporal(), 10627 Ld->getAlignment()); 10628 SDValue HiLd = DAG.getLoad(MVT::i32, LdDL, Ld->getChain(), HiAddr, 10629 Ld->getSrcValue(), Ld->getSrcValueOffset()+4, 10630 Ld->isVolatile(), Ld->isNonTemporal(), 10631 MinAlign(Ld->getAlignment(), 4)); 10632 10633 SDValue NewChain = LoLd.getValue(1); 10634 if (TokenFactorIndex != -1) { 10635 Ops.push_back(LoLd); 10636 Ops.push_back(HiLd); 10637 NewChain = DAG.getNode(ISD::TokenFactor, LdDL, MVT::Other, &Ops[0], 10638 Ops.size()); 10639 } 10640 10641 LoAddr = St->getBasePtr(); 10642 HiAddr = DAG.getNode(ISD::ADD, StDL, MVT::i32, LoAddr, 10643 DAG.getConstant(4, MVT::i32)); 10644 10645 SDValue LoSt = DAG.getStore(NewChain, StDL, LoLd, LoAddr, 10646 St->getSrcValue(), St->getSrcValueOffset(), 10647 St->isVolatile(), St->isNonTemporal(), 10648 St->getAlignment()); 10649 SDValue HiSt = DAG.getStore(NewChain, StDL, HiLd, HiAddr, 10650 St->getSrcValue(), 10651 St->getSrcValueOffset() + 4, 10652 St->isVolatile(), 10653 St->isNonTemporal(), 10654 MinAlign(St->getAlignment(), 4)); 10655 return DAG.getNode(ISD::TokenFactor, StDL, MVT::Other, LoSt, HiSt); 10656 } 10657 return SDValue(); 10658 } 10659 10660 /// PerformFORCombine - Do target-specific dag combines on X86ISD::FOR and 10661 /// X86ISD::FXOR nodes. 10662 static SDValue PerformFORCombine(SDNode *N, SelectionDAG &DAG) { 10663 assert(N->getOpcode() == X86ISD::FOR || N->getOpcode() == X86ISD::FXOR); 10664 // F[X]OR(0.0, x) -> x 10665 // F[X]OR(x, 0.0) -> x 10666 if (ConstantFPSDNode *C = dyn_cast<ConstantFPSDNode>(N->getOperand(0))) 10667 if (C->getValueAPF().isPosZero()) 10668 return N->getOperand(1); 10669 if (ConstantFPSDNode *C = dyn_cast<ConstantFPSDNode>(N->getOperand(1))) 10670 if (C->getValueAPF().isPosZero()) 10671 return N->getOperand(0); 10672 return SDValue(); 10673 } 10674 10675 /// PerformFANDCombine - Do target-specific dag combines on X86ISD::FAND nodes. 10676 static SDValue PerformFANDCombine(SDNode *N, SelectionDAG &DAG) { 10677 // FAND(0.0, x) -> 0.0 10678 // FAND(x, 0.0) -> 0.0 10679 if (ConstantFPSDNode *C = dyn_cast<ConstantFPSDNode>(N->getOperand(0))) 10680 if (C->getValueAPF().isPosZero()) 10681 return N->getOperand(0); 10682 if (ConstantFPSDNode *C = dyn_cast<ConstantFPSDNode>(N->getOperand(1))) 10683 if (C->getValueAPF().isPosZero()) 10684 return N->getOperand(1); 10685 return SDValue(); 10686 } 10687 10688 static SDValue PerformBTCombine(SDNode *N, 10689 SelectionDAG &DAG, 10690 TargetLowering::DAGCombinerInfo &DCI) { 10691 // BT ignores high bits in the bit index operand. 10692 SDValue Op1 = N->getOperand(1); 10693 if (Op1.hasOneUse()) { 10694 unsigned BitWidth = Op1.getValueSizeInBits(); 10695 APInt DemandedMask = APInt::getLowBitsSet(BitWidth, Log2_32(BitWidth)); 10696 APInt KnownZero, KnownOne; 10697 TargetLowering::TargetLoweringOpt TLO(DAG, !DCI.isBeforeLegalize(), 10698 !DCI.isBeforeLegalizeOps()); 10699 const TargetLowering &TLI = DAG.getTargetLoweringInfo(); 10700 if (TLO.ShrinkDemandedConstant(Op1, DemandedMask) || 10701 TLI.SimplifyDemandedBits(Op1, DemandedMask, KnownZero, KnownOne, TLO)) 10702 DCI.CommitTargetLoweringOpt(TLO); 10703 } 10704 return SDValue(); 10705 } 10706 10707 static SDValue PerformVZEXT_MOVLCombine(SDNode *N, SelectionDAG &DAG) { 10708 SDValue Op = N->getOperand(0); 10709 if (Op.getOpcode() == ISD::BIT_CONVERT) 10710 Op = Op.getOperand(0); 10711 EVT VT = N->getValueType(0), OpVT = Op.getValueType(); 10712 if (Op.getOpcode() == X86ISD::VZEXT_LOAD && 10713 VT.getVectorElementType().getSizeInBits() == 10714 OpVT.getVectorElementType().getSizeInBits()) { 10715 return DAG.getNode(ISD::BIT_CONVERT, N->getDebugLoc(), VT, Op); 10716 } 10717 return SDValue(); 10718 } 10719 10720 static SDValue PerformZExtCombine(SDNode *N, SelectionDAG &DAG) { 10721 // (i32 zext (and (i8 x86isd::setcc_carry), 1)) -> 10722 // (and (i32 x86isd::setcc_carry), 1) 10723 // This eliminates the zext. This transformation is necessary because 10724 // ISD::SETCC is always legalized to i8. 10725 DebugLoc dl = N->getDebugLoc(); 10726 SDValue N0 = N->getOperand(0); 10727 EVT VT = N->getValueType(0); 10728 if (N0.getOpcode() == ISD::AND && 10729 N0.hasOneUse() && 10730 N0.getOperand(0).hasOneUse()) { 10731 SDValue N00 = N0.getOperand(0); 10732 if (N00.getOpcode() != X86ISD::SETCC_CARRY) 10733 return SDValue(); 10734 ConstantSDNode *C = dyn_cast<ConstantSDNode>(N0.getOperand(1)); 10735 if (!C || C->getZExtValue() != 1) 10736 return SDValue(); 10737 return DAG.getNode(ISD::AND, dl, VT, 10738 DAG.getNode(X86ISD::SETCC_CARRY, dl, VT, 10739 N00.getOperand(0), N00.getOperand(1)), 10740 DAG.getConstant(1, VT)); 10741 } 10742 10743 return SDValue(); 10744 } 10745 10746 SDValue X86TargetLowering::PerformDAGCombine(SDNode *N, 10747 DAGCombinerInfo &DCI) const { 10748 SelectionDAG &DAG = DCI.DAG; 10749 switch (N->getOpcode()) { 10750 default: break; 10751 case ISD::EXTRACT_VECTOR_ELT: 10752 return PerformEXTRACT_VECTOR_ELTCombine(N, DAG, *this); 10753 case ISD::SELECT: return PerformSELECTCombine(N, DAG, Subtarget); 10754 case X86ISD::CMOV: return PerformCMOVCombine(N, DAG, DCI); 10755 case ISD::MUL: return PerformMulCombine(N, DAG, DCI); 10756 case ISD::SHL: 10757 case ISD::SRA: 10758 case ISD::SRL: return PerformShiftCombine(N, DAG, Subtarget); 10759 case ISD::OR: return PerformOrCombine(N, DAG, DCI, Subtarget); 10760 case ISD::STORE: return PerformSTORECombine(N, DAG, Subtarget); 10761 case X86ISD::FXOR: 10762 case X86ISD::FOR: return PerformFORCombine(N, DAG); 10763 case X86ISD::FAND: return PerformFANDCombine(N, DAG); 10764 case X86ISD::BT: return PerformBTCombine(N, DAG, DCI); 10765 case X86ISD::VZEXT_MOVL: return PerformVZEXT_MOVLCombine(N, DAG); 10766 case ISD::ZERO_EXTEND: return PerformZExtCombine(N, DAG); 10767 case X86ISD::SHUFPS: // Handle all target specific shuffles 10768 case X86ISD::SHUFPD: 10769 case X86ISD::PUNPCKHBW: 10770 case X86ISD::PUNPCKHWD: 10771 case X86ISD::PUNPCKHDQ: 10772 case X86ISD::PUNPCKHQDQ: 10773 case X86ISD::UNPCKHPS: 10774 case X86ISD::UNPCKHPD: 10775 case X86ISD::PUNPCKLBW: 10776 case X86ISD::PUNPCKLWD: 10777 case X86ISD::PUNPCKLDQ: 10778 case X86ISD::PUNPCKLQDQ: 10779 case X86ISD::UNPCKLPS: 10780 case X86ISD::UNPCKLPD: 10781 case X86ISD::MOVHLPS: 10782 case X86ISD::MOVLHPS: 10783 case X86ISD::PSHUFD: 10784 case X86ISD::PSHUFHW: 10785 case X86ISD::PSHUFLW: 10786 case X86ISD::MOVSS: 10787 case X86ISD::MOVSD: 10788 case ISD::VECTOR_SHUFFLE: return PerformShuffleCombine(N, DAG, *this); 10789 } 10790 10791 return SDValue(); 10792 } 10793 10794 /// isTypeDesirableForOp - Return true if the target has native support for 10795 /// the specified value type and it is 'desirable' to use the type for the 10796 /// given node type. e.g. On x86 i16 is legal, but undesirable since i16 10797 /// instruction encodings are longer and some i16 instructions are slow. 10798 bool X86TargetLowering::isTypeDesirableForOp(unsigned Opc, EVT VT) const { 10799 if (!isTypeLegal(VT)) 10800 return false; 10801 if (VT != MVT::i16) 10802 return true; 10803 10804 switch (Opc) { 10805 default: 10806 return true; 10807 case ISD::LOAD: 10808 case ISD::SIGN_EXTEND: 10809 case ISD::ZERO_EXTEND: 10810 case ISD::ANY_EXTEND: 10811 case ISD::SHL: 10812 case ISD::SRL: 10813 case ISD::SUB: 10814 case ISD::ADD: 10815 case ISD::MUL: 10816 case ISD::AND: 10817 case ISD::OR: 10818 case ISD::XOR: 10819 return false; 10820 } 10821 } 10822 10823 /// IsDesirableToPromoteOp - This method query the target whether it is 10824 /// beneficial for dag combiner to promote the specified node. If true, it 10825 /// should return the desired promotion type by reference. 10826 bool X86TargetLowering::IsDesirableToPromoteOp(SDValue Op, EVT &PVT) const { 10827 EVT VT = Op.getValueType(); 10828 if (VT != MVT::i16) 10829 return false; 10830 10831 bool Promote = false; 10832 bool Commute = false; 10833 switch (Op.getOpcode()) { 10834 default: break; 10835 case ISD::LOAD: { 10836 LoadSDNode *LD = cast<LoadSDNode>(Op); 10837 // If the non-extending load has a single use and it's not live out, then it 10838 // might be folded. 10839 if (LD->getExtensionType() == ISD::NON_EXTLOAD /*&& 10840 Op.hasOneUse()*/) { 10841 for (SDNode::use_iterator UI = Op.getNode()->use_begin(), 10842 UE = Op.getNode()->use_end(); UI != UE; ++UI) { 10843 // The only case where we'd want to promote LOAD (rather then it being 10844 // promoted as an operand is when it's only use is liveout. 10845 if (UI->getOpcode() != ISD::CopyToReg) 10846 return false; 10847 } 10848 } 10849 Promote = true; 10850 break; 10851 } 10852 case ISD::SIGN_EXTEND: 10853 case ISD::ZERO_EXTEND: 10854 case ISD::ANY_EXTEND: 10855 Promote = true; 10856 break; 10857 case ISD::SHL: 10858 case ISD::SRL: { 10859 SDValue N0 = Op.getOperand(0); 10860 // Look out for (store (shl (load), x)). 10861 if (MayFoldLoad(N0) && MayFoldIntoStore(Op)) 10862 return false; 10863 Promote = true; 10864 break; 10865 } 10866 case ISD::ADD: 10867 case ISD::MUL: 10868 case ISD::AND: 10869 case ISD::OR: 10870 case ISD::XOR: 10871 Commute = true; 10872 // fallthrough 10873 case ISD::SUB: { 10874 SDValue N0 = Op.getOperand(0); 10875 SDValue N1 = Op.getOperand(1); 10876 if (!Commute && MayFoldLoad(N1)) 10877 return false; 10878 // Avoid disabling potential load folding opportunities. 10879 if (MayFoldLoad(N0) && (!isa<ConstantSDNode>(N1) || MayFoldIntoStore(Op))) 10880 return false; 10881 if (MayFoldLoad(N1) && (!isa<ConstantSDNode>(N0) || MayFoldIntoStore(Op))) 10882 return false; 10883 Promote = true; 10884 } 10885 } 10886 10887 PVT = MVT::i32; 10888 return Promote; 10889 } 10890 10891 //===----------------------------------------------------------------------===// 10892 // X86 Inline Assembly Support 10893 //===----------------------------------------------------------------------===// 10894 10895 static bool LowerToBSwap(CallInst *CI) { 10896 // FIXME: this should verify that we are targetting a 486 or better. If not, 10897 // we will turn this bswap into something that will be lowered to logical ops 10898 // instead of emitting the bswap asm. For now, we don't support 486 or lower 10899 // so don't worry about this. 10900 10901 // Verify this is a simple bswap. 10902 if (CI->getNumArgOperands() != 1 || 10903 CI->getType() != CI->getArgOperand(0)->getType() || 10904 !CI->getType()->isIntegerTy()) 10905 return false; 10906 10907 const IntegerType *Ty = dyn_cast<IntegerType>(CI->getType()); 10908 if (!Ty || Ty->getBitWidth() % 16 != 0) 10909 return false; 10910 10911 // Okay, we can do this xform, do so now. 10912 const Type *Tys[] = { Ty }; 10913 Module *M = CI->getParent()->getParent()->getParent(); 10914 Constant *Int = Intrinsic::getDeclaration(M, Intrinsic::bswap, Tys, 1); 10915 10916 Value *Op = CI->getArgOperand(0); 10917 Op = CallInst::Create(Int, Op, CI->getName(), CI); 10918 10919 CI->replaceAllUsesWith(Op); 10920 CI->eraseFromParent(); 10921 return true; 10922 } 10923 10924 bool X86TargetLowering::ExpandInlineAsm(CallInst *CI) const { 10925 InlineAsm *IA = cast<InlineAsm>(CI->getCalledValue()); 10926 std::vector<InlineAsm::ConstraintInfo> Constraints = IA->ParseConstraints(); 10927 10928 std::string AsmStr = IA->getAsmString(); 10929 10930 // TODO: should remove alternatives from the asmstring: "foo {a|b}" -> "foo a" 10931 SmallVector<StringRef, 4> AsmPieces; 10932 SplitString(AsmStr, AsmPieces, "\n"); // ; as separator? 10933 10934 switch (AsmPieces.size()) { 10935 default: return false; 10936 case 1: 10937 AsmStr = AsmPieces[0]; 10938 AsmPieces.clear(); 10939 SplitString(AsmStr, AsmPieces, " \t"); // Split with whitespace. 10940 10941 // bswap $0 10942 if (AsmPieces.size() == 2 && 10943 (AsmPieces[0] == "bswap" || 10944 AsmPieces[0] == "bswapq" || 10945 AsmPieces[0] == "bswapl") && 10946 (AsmPieces[1] == "$0" || 10947 AsmPieces[1] == "${0:q}")) { 10948 // No need to check constraints, nothing other than the equivalent of 10949 // "=r,0" would be valid here. 10950 return LowerToBSwap(CI); 10951 } 10952 // rorw $$8, ${0:w} --> llvm.bswap.i16 10953 if (CI->getType()->isIntegerTy(16) && 10954 AsmPieces.size() == 3 && 10955 (AsmPieces[0] == "rorw" || AsmPieces[0] == "rolw") && 10956 AsmPieces[1] == "$$8," && 10957 AsmPieces[2] == "${0:w}" && 10958 IA->getConstraintString().compare(0, 5, "=r,0,") == 0) { 10959 AsmPieces.clear(); 10960 const std::string &Constraints = IA->getConstraintString(); 10961 SplitString(StringRef(Constraints).substr(5), AsmPieces, ","); 10962 std::sort(AsmPieces.begin(), AsmPieces.end()); 10963 if (AsmPieces.size() == 4 && 10964 AsmPieces[0] == "~{cc}" && 10965 AsmPieces[1] == "~{dirflag}" && 10966 AsmPieces[2] == "~{flags}" && 10967 AsmPieces[3] == "~{fpsr}") { 10968 return LowerToBSwap(CI); 10969 } 10970 } 10971 break; 10972 case 3: 10973 if (CI->getType()->isIntegerTy(64) && 10974 Constraints.size() >= 2 && 10975 Constraints[0].Codes.size() == 1 && Constraints[0].Codes[0] == "A" && 10976 Constraints[1].Codes.size() == 1 && Constraints[1].Codes[0] == "0") { 10977 // bswap %eax / bswap %edx / xchgl %eax, %edx -> llvm.bswap.i64 10978 SmallVector<StringRef, 4> Words; 10979 SplitString(AsmPieces[0], Words, " \t"); 10980 if (Words.size() == 2 && Words[0] == "bswap" && Words[1] == "%eax") { 10981 Words.clear(); 10982 SplitString(AsmPieces[1], Words, " \t"); 10983 if (Words.size() == 2 && Words[0] == "bswap" && Words[1] == "%edx") { 10984 Words.clear(); 10985 SplitString(AsmPieces[2], Words, " \t,"); 10986 if (Words.size() == 3 && Words[0] == "xchgl" && Words[1] == "%eax" && 10987 Words[2] == "%edx") { 10988 return LowerToBSwap(CI); 10989 } 10990 } 10991 } 10992 } 10993 break; 10994 } 10995 return false; 10996 } 10997 10998 10999 11000 /// getConstraintType - Given a constraint letter, return the type of 11001 /// constraint it is for this target. 11002 X86TargetLowering::ConstraintType 11003 X86TargetLowering::getConstraintType(const std::string &Constraint) const { 11004 if (Constraint.size() == 1) { 11005 switch (Constraint[0]) { 11006 case 'A': 11007 return C_Register; 11008 case 'f': 11009 case 'r': 11010 case 'R': 11011 case 'l': 11012 case 'q': 11013 case 'Q': 11014 case 'x': 11015 case 'y': 11016 case 'Y': 11017 return C_RegisterClass; 11018 case 'e': 11019 case 'Z': 11020 return C_Other; 11021 default: 11022 break; 11023 } 11024 } 11025 return TargetLowering::getConstraintType(Constraint); 11026 } 11027 11028 /// LowerXConstraint - try to replace an X constraint, which matches anything, 11029 /// with another that has more specific requirements based on the type of the 11030 /// corresponding operand. 11031 const char *X86TargetLowering:: 11032 LowerXConstraint(EVT ConstraintVT) const { 11033 // FP X constraints get lowered to SSE1/2 registers if available, otherwise 11034 // 'f' like normal targets. 11035 if (ConstraintVT.isFloatingPoint()) { 11036 if (Subtarget->hasSSE2()) 11037 return "Y"; 11038 if (Subtarget->hasSSE1()) 11039 return "x"; 11040 } 11041 11042 return TargetLowering::LowerXConstraint(ConstraintVT); 11043 } 11044 11045 /// LowerAsmOperandForConstraint - Lower the specified operand into the Ops 11046 /// vector. If it is invalid, don't add anything to Ops. 11047 void X86TargetLowering::LowerAsmOperandForConstraint(SDValue Op, 11048 char Constraint, 11049 std::vector<SDValue>&Ops, 11050 SelectionDAG &DAG) const { 11051 SDValue Result(0, 0); 11052 11053 switch (Constraint) { 11054 default: break; 11055 case 'I': 11056 if (ConstantSDNode *C = dyn_cast<ConstantSDNode>(Op)) { 11057 if (C->getZExtValue() <= 31) { 11058 Result = DAG.getTargetConstant(C->getZExtValue(), Op.getValueType()); 11059 break; 11060 } 11061 } 11062 return; 11063 case 'J': 11064 if (ConstantSDNode *C = dyn_cast<ConstantSDNode>(Op)) { 11065 if (C->getZExtValue() <= 63) { 11066 Result = DAG.getTargetConstant(C->getZExtValue(), Op.getValueType()); 11067 break; 11068 } 11069 } 11070 return; 11071 case 'K': 11072 if (ConstantSDNode *C = dyn_cast<ConstantSDNode>(Op)) { 11073 if ((int8_t)C->getSExtValue() == C->getSExtValue()) { 11074 Result = DAG.getTargetConstant(C->getZExtValue(), Op.getValueType()); 11075 break; 11076 } 11077 } 11078 return; 11079 case 'N': 11080 if (ConstantSDNode *C = dyn_cast<ConstantSDNode>(Op)) { 11081 if (C->getZExtValue() <= 255) { 11082 Result = DAG.getTargetConstant(C->getZExtValue(), Op.getValueType()); 11083 break; 11084 } 11085 } 11086 return; 11087 case 'e': { 11088 // 32-bit signed value 11089 if (ConstantSDNode *C = dyn_cast<ConstantSDNode>(Op)) { 11090 if (ConstantInt::isValueValidForType(Type::getInt32Ty(*DAG.getContext()), 11091 C->getSExtValue())) { 11092 // Widen to 64 bits here to get it sign extended. 11093 Result = DAG.getTargetConstant(C->getSExtValue(), MVT::i64); 11094 break; 11095 } 11096 // FIXME gcc accepts some relocatable values here too, but only in certain 11097 // memory models; it's complicated. 11098 } 11099 return; 11100 } 11101 case 'Z': { 11102 // 32-bit unsigned value 11103 if (ConstantSDNode *C = dyn_cast<ConstantSDNode>(Op)) { 11104 if (ConstantInt::isValueValidForType(Type::getInt32Ty(*DAG.getContext()), 11105 C->getZExtValue())) { 11106 Result = DAG.getTargetConstant(C->getZExtValue(), Op.getValueType()); 11107 break; 11108 } 11109 } 11110 // FIXME gcc accepts some relocatable values here too, but only in certain 11111 // memory models; it's complicated. 11112 return; 11113 } 11114 case 'i': { 11115 // Literal immediates are always ok. 11116 if (ConstantSDNode *CST = dyn_cast<ConstantSDNode>(Op)) { 11117 // Widen to 64 bits here to get it sign extended. 11118 Result = DAG.getTargetConstant(CST->getSExtValue(), MVT::i64); 11119 break; 11120 } 11121 11122 // In any sort of PIC mode addresses need to be computed at runtime by 11123 // adding in a register or some sort of table lookup. These can't 11124 // be used as immediates. 11125 if (Subtarget->isPICStyleGOT() || Subtarget->isPICStyleStubPIC()) 11126 return; 11127 11128 // If we are in non-pic codegen mode, we allow the address of a global (with 11129 // an optional displacement) to be used with 'i'. 11130 GlobalAddressSDNode *GA = 0; 11131 int64_t Offset = 0; 11132 11133 // Match either (GA), (GA+C), (GA+C1+C2), etc. 11134 while (1) { 11135 if ((GA = dyn_cast<GlobalAddressSDNode>(Op))) { 11136 Offset += GA->getOffset(); 11137 break; 11138 } else if (Op.getOpcode() == ISD::ADD) { 11139 if (ConstantSDNode *C = dyn_cast<ConstantSDNode>(Op.getOperand(1))) { 11140 Offset += C->getZExtValue(); 11141 Op = Op.getOperand(0); 11142 continue; 11143 } 11144 } else if (Op.getOpcode() == ISD::SUB) { 11145 if (ConstantSDNode *C = dyn_cast<ConstantSDNode>(Op.getOperand(1))) { 11146 Offset += -C->getZExtValue(); 11147 Op = Op.getOperand(0); 11148 continue; 11149 } 11150 } 11151 11152 // Otherwise, this isn't something we can handle, reject it. 11153 return; 11154 } 11155 11156 const GlobalValue *GV = GA->getGlobal(); 11157 // If we require an extra load to get this address, as in PIC mode, we 11158 // can't accept it. 11159 if (isGlobalStubReference(Subtarget->ClassifyGlobalReference(GV, 11160 getTargetMachine()))) 11161 return; 11162 11163 Result = DAG.getTargetGlobalAddress(GV, Op.getDebugLoc(), 11164 GA->getValueType(0), Offset); 11165 break; 11166 } 11167 } 11168 11169 if (Result.getNode()) { 11170 Ops.push_back(Result); 11171 return; 11172 } 11173 return TargetLowering::LowerAsmOperandForConstraint(Op, Constraint, Ops, DAG); 11174 } 11175 11176 std::vector<unsigned> X86TargetLowering:: 11177 getRegClassForInlineAsmConstraint(const std::string &Constraint, 11178 EVT VT) const { 11179 if (Constraint.size() == 1) { 11180 // FIXME: not handling fp-stack yet! 11181 switch (Constraint[0]) { // GCC X86 Constraint Letters 11182 default: break; // Unknown constraint letter 11183 case 'q': // GENERAL_REGS in 64-bit mode, Q_REGS in 32-bit mode. 11184 if (Subtarget->is64Bit()) { 11185 if (VT == MVT::i32) 11186 return make_vector<unsigned>(X86::EAX, X86::EDX, X86::ECX, X86::EBX, 11187 X86::ESI, X86::EDI, X86::R8D, X86::R9D, 11188 X86::R10D,X86::R11D,X86::R12D, 11189 X86::R13D,X86::R14D,X86::R15D, 11190 X86::EBP, X86::ESP, 0); 11191 else if (VT == MVT::i16) 11192 return make_vector<unsigned>(X86::AX, X86::DX, X86::CX, X86::BX, 11193 X86::SI, X86::DI, X86::R8W,X86::R9W, 11194 X86::R10W,X86::R11W,X86::R12W, 11195 X86::R13W,X86::R14W,X86::R15W, 11196 X86::BP, X86::SP, 0); 11197 else if (VT == MVT::i8) 11198 return make_vector<unsigned>(X86::AL, X86::DL, X86::CL, X86::BL, 11199 X86::SIL, X86::DIL, X86::R8B,X86::R9B, 11200 X86::R10B,X86::R11B,X86::R12B, 11201 X86::R13B,X86::R14B,X86::R15B, 11202 X86::BPL, X86::SPL, 0); 11203 11204 else if (VT == MVT::i64) 11205 return make_vector<unsigned>(X86::RAX, X86::RDX, X86::RCX, X86::RBX, 11206 X86::RSI, X86::RDI, X86::R8, X86::R9, 11207 X86::R10, X86::R11, X86::R12, 11208 X86::R13, X86::R14, X86::R15, 11209 X86::RBP, X86::RSP, 0); 11210 11211 break; 11212 } 11213 // 32-bit fallthrough 11214 case 'Q': // Q_REGS 11215 if (VT == MVT::i32) 11216 return make_vector<unsigned>(X86::EAX, X86::EDX, X86::ECX, X86::EBX, 0); 11217 else if (VT == MVT::i16) 11218 return make_vector<unsigned>(X86::AX, X86::DX, X86::CX, X86::BX, 0); 11219 else if (VT == MVT::i8) 11220 return make_vector<unsigned>(X86::AL, X86::DL, X86::CL, X86::BL, 0); 11221 else if (VT == MVT::i64) 11222 return make_vector<unsigned>(X86::RAX, X86::RDX, X86::RCX, X86::RBX, 0); 11223 break; 11224 } 11225 } 11226 11227 return std::vector<unsigned>(); 11228 } 11229 11230 std::pair<unsigned, const TargetRegisterClass*> 11231 X86TargetLowering::getRegForInlineAsmConstraint(const std::string &Constraint, 11232 EVT VT) const { 11233 // First, see if this is a constraint that directly corresponds to an LLVM 11234 // register class. 11235 if (Constraint.size() == 1) { 11236 // GCC Constraint Letters 11237 switch (Constraint[0]) { 11238 default: break; 11239 case 'r': // GENERAL_REGS 11240 case 'l': // INDEX_REGS 11241 if (VT == MVT::i8) 11242 return std::make_pair(0U, X86::GR8RegisterClass); 11243 if (VT == MVT::i16) 11244 return std::make_pair(0U, X86::GR16RegisterClass); 11245 if (VT == MVT::i32 || !Subtarget->is64Bit()) 11246 return std::make_pair(0U, X86::GR32RegisterClass); 11247 return std::make_pair(0U, X86::GR64RegisterClass); 11248 case 'R': // LEGACY_REGS 11249 if (VT == MVT::i8) 11250 return std::make_pair(0U, X86::GR8_NOREXRegisterClass); 11251 if (VT == MVT::i16) 11252 return std::make_pair(0U, X86::GR16_NOREXRegisterClass); 11253 if (VT == MVT::i32 || !Subtarget->is64Bit()) 11254 return std::make_pair(0U, X86::GR32_NOREXRegisterClass); 11255 return std::make_pair(0U, X86::GR64_NOREXRegisterClass); 11256 case 'f': // FP Stack registers. 11257 // If SSE is enabled for this VT, use f80 to ensure the isel moves the 11258 // value to the correct fpstack register class. 11259 if (VT == MVT::f32 && !isScalarFPTypeInSSEReg(VT)) 11260 return std::make_pair(0U, X86::RFP32RegisterClass); 11261 if (VT == MVT::f64 && !isScalarFPTypeInSSEReg(VT)) 11262 return std::make_pair(0U, X86::RFP64RegisterClass); 11263 return std::make_pair(0U, X86::RFP80RegisterClass); 11264 case 'y': // MMX_REGS if MMX allowed. 11265 if (!Subtarget->hasMMX()) break; 11266 return std::make_pair(0U, X86::VR64RegisterClass); 11267 case 'Y': // SSE_REGS if SSE2 allowed 11268 if (!Subtarget->hasSSE2()) break; 11269 // FALL THROUGH. 11270 case 'x': // SSE_REGS if SSE1 allowed 11271 if (!Subtarget->hasSSE1()) break; 11272 11273 switch (VT.getSimpleVT().SimpleTy) { 11274 default: break; 11275 // Scalar SSE types. 11276 case MVT::f32: 11277 case MVT::i32: 11278 return std::make_pair(0U, X86::FR32RegisterClass); 11279 case MVT::f64: 11280 case MVT::i64: 11281 return std::make_pair(0U, X86::FR64RegisterClass); 11282 // Vector types. 11283 case MVT::v16i8: 11284 case MVT::v8i16: 11285 case MVT::v4i32: 11286 case MVT::v2i64: 11287 case MVT::v4f32: 11288 case MVT::v2f64: 11289 return std::make_pair(0U, X86::VR128RegisterClass); 11290 } 11291 break; 11292 } 11293 } 11294 11295 // Use the default implementation in TargetLowering to convert the register 11296 // constraint into a member of a register class. 11297 std::pair<unsigned, const TargetRegisterClass*> Res; 11298 Res = TargetLowering::getRegForInlineAsmConstraint(Constraint, VT); 11299 11300 // Not found as a standard register? 11301 if (Res.second == 0) { 11302 // Map st(0) -> st(7) -> ST0 11303 if (Constraint.size() == 7 && Constraint[0] == '{' && 11304 tolower(Constraint[1]) == 's' && 11305 tolower(Constraint[2]) == 't' && 11306 Constraint[3] == '(' && 11307 (Constraint[4] >= '0' && Constraint[4] <= '7') && 11308 Constraint[5] == ')' && 11309 Constraint[6] == '}') { 11310 11311 Res.first = X86::ST0+Constraint[4]-'0'; 11312 Res.second = X86::RFP80RegisterClass; 11313 return Res; 11314 } 11315 11316 // GCC allows "st(0)" to be called just plain "st". 11317 if (StringRef("{st}").equals_lower(Constraint)) { 11318 Res.first = X86::ST0; 11319 Res.second = X86::RFP80RegisterClass; 11320 return Res; 11321 } 11322 11323 // flags -> EFLAGS 11324 if (StringRef("{flags}").equals_lower(Constraint)) { 11325 Res.first = X86::EFLAGS; 11326 Res.second = X86::CCRRegisterClass; 11327 return Res; 11328 } 11329 11330 // 'A' means EAX + EDX. 11331 if (Constraint == "A") { 11332 Res.first = X86::EAX; 11333 Res.second = X86::GR32_ADRegisterClass; 11334 return Res; 11335 } 11336 return Res; 11337 } 11338 11339 // Otherwise, check to see if this is a register class of the wrong value 11340 // type. For example, we want to map "{ax},i32" -> {eax}, we don't want it to 11341 // turn into {ax},{dx}. 11342 if (Res.second->hasType(VT)) 11343 return Res; // Correct type already, nothing to do. 11344 11345 // All of the single-register GCC register classes map their values onto 11346 // 16-bit register pieces "ax","dx","cx","bx","si","di","bp","sp". If we 11347 // really want an 8-bit or 32-bit register, map to the appropriate register 11348 // class and return the appropriate register. 11349 if (Res.second == X86::GR16RegisterClass) { 11350 if (VT == MVT::i8) { 11351 unsigned DestReg = 0; 11352 switch (Res.first) { 11353 default: break; 11354 case X86::AX: DestReg = X86::AL; break; 11355 case X86::DX: DestReg = X86::DL; break; 11356 case X86::CX: DestReg = X86::CL; break; 11357 case X86::BX: DestReg = X86::BL; break; 11358 } 11359 if (DestReg) { 11360 Res.first = DestReg; 11361 Res.second = X86::GR8RegisterClass; 11362 } 11363 } else if (VT == MVT::i32) { 11364 unsigned DestReg = 0; 11365 switch (Res.first) { 11366 default: break; 11367 case X86::AX: DestReg = X86::EAX; break; 11368 case X86::DX: DestReg = X86::EDX; break; 11369 case X86::CX: DestReg = X86::ECX; break; 11370 case X86::BX: DestReg = X86::EBX; break; 11371 case X86::SI: DestReg = X86::ESI; break; 11372 case X86::DI: DestReg = X86::EDI; break; 11373 case X86::BP: DestReg = X86::EBP; break; 11374 case X86::SP: DestReg = X86::ESP; break; 11375 } 11376 if (DestReg) { 11377 Res.first = DestReg; 11378 Res.second = X86::GR32RegisterClass; 11379 } 11380 } else if (VT == MVT::i64) { 11381 unsigned DestReg = 0; 11382 switch (Res.first) { 11383 default: break; 11384 case X86::AX: DestReg = X86::RAX; break; 11385 case X86::DX: DestReg = X86::RDX; break; 11386 case X86::CX: DestReg = X86::RCX; break; 11387 case X86::BX: DestReg = X86::RBX; break; 11388 case X86::SI: DestReg = X86::RSI; break; 11389 case X86::DI: DestReg = X86::RDI; break; 11390 case X86::BP: DestReg = X86::RBP; break; 11391 case X86::SP: DestReg = X86::RSP; break; 11392 } 11393 if (DestReg) { 11394 Res.first = DestReg; 11395 Res.second = X86::GR64RegisterClass; 11396 } 11397 } 11398 } else if (Res.second == X86::FR32RegisterClass || 11399 Res.second == X86::FR64RegisterClass || 11400 Res.second == X86::VR128RegisterClass) { 11401 // Handle references to XMM physical registers that got mapped into the 11402 // wrong class. This can happen with constraints like {xmm0} where the 11403 // target independent register mapper will just pick the first match it can 11404 // find, ignoring the required type. 11405 if (VT == MVT::f32) 11406 Res.second = X86::FR32RegisterClass; 11407 else if (VT == MVT::f64) 11408 Res.second = X86::FR64RegisterClass; 11409 else if (X86::VR128RegisterClass->hasType(VT)) 11410 Res.second = X86::VR128RegisterClass; 11411 } 11412 11413 return Res; 11414 } 11415