1 //===-- X86InstrInfo.cpp - X86 Instruction Information --------------------===// 2 // 3 // The LLVM Compiler Infrastructure 4 // 5 // This file is distributed under the University of Illinois Open Source 6 // License. See LICENSE.TXT for details. 7 // 8 //===----------------------------------------------------------------------===// 9 // 10 // This file contains the X86 implementation of the TargetInstrInfo class. 11 // 12 //===----------------------------------------------------------------------===// 13 14 #include "X86InstrInfo.h" 15 #include "X86.h" 16 #include "X86InstrBuilder.h" 17 #include "X86MachineFunctionInfo.h" 18 #include "X86Subtarget.h" 19 #include "X86TargetMachine.h" 20 #include "llvm/ADT/STLExtras.h" 21 #include "llvm/CodeGen/LiveVariables.h" 22 #include "llvm/CodeGen/MachineConstantPool.h" 23 #include "llvm/CodeGen/MachineDominators.h" 24 #include "llvm/CodeGen/MachineFrameInfo.h" 25 #include "llvm/CodeGen/MachineInstrBuilder.h" 26 #include "llvm/CodeGen/MachineRegisterInfo.h" 27 #include "llvm/CodeGen/StackMaps.h" 28 #include "llvm/IR/DerivedTypes.h" 29 #include "llvm/IR/LLVMContext.h" 30 #include "llvm/MC/MCAsmInfo.h" 31 #include "llvm/MC/MCInst.h" 32 #include "llvm/Support/CommandLine.h" 33 #include "llvm/Support/Debug.h" 34 #include "llvm/Support/ErrorHandling.h" 35 #include "llvm/Support/raw_ostream.h" 36 #include "llvm/Target/TargetOptions.h" 37 #include <limits> 38 39 #define GET_INSTRINFO_CTOR_DTOR 40 #include "X86GenInstrInfo.inc" 41 42 using namespace llvm; 43 44 static cl::opt<bool> 45 NoFusing("disable-spill-fusing", 46 cl::desc("Disable fusing of spill code into instructions")); 47 static cl::opt<bool> 48 PrintFailedFusing("print-failed-fuse-candidates", 49 cl::desc("Print instructions that the allocator wants to" 50 " fuse, but the X86 backend currently can't"), 51 cl::Hidden); 52 static cl::opt<bool> 53 ReMatPICStubLoad("remat-pic-stub-load", 54 cl::desc("Re-materialize load from stub in PIC mode"), 55 cl::init(false), cl::Hidden); 56 57 enum { 58 // Select which memory operand is being unfolded. 59 // (stored in bits 0 - 3) 60 TB_INDEX_0 = 0, 61 TB_INDEX_1 = 1, 62 TB_INDEX_2 = 2, 63 TB_INDEX_3 = 3, 64 TB_INDEX_MASK = 0xf, 65 66 // Do not insert the reverse map (MemOp -> RegOp) into the table. 67 // This may be needed because there is a many -> one mapping. 68 TB_NO_REVERSE = 1 << 4, 69 70 // Do not insert the forward map (RegOp -> MemOp) into the table. 71 // This is needed for Native Client, which prohibits branch 72 // instructions from using a memory operand. 73 TB_NO_FORWARD = 1 << 5, 74 75 TB_FOLDED_LOAD = 1 << 6, 76 TB_FOLDED_STORE = 1 << 7, 77 78 // Minimum alignment required for load/store. 79 // Used for RegOp->MemOp conversion. 80 // (stored in bits 8 - 15) 81 TB_ALIGN_SHIFT = 8, 82 TB_ALIGN_NONE = 0 << TB_ALIGN_SHIFT, 83 TB_ALIGN_16 = 16 << TB_ALIGN_SHIFT, 84 TB_ALIGN_32 = 32 << TB_ALIGN_SHIFT, 85 TB_ALIGN_64 = 64 << TB_ALIGN_SHIFT, 86 TB_ALIGN_MASK = 0xff << TB_ALIGN_SHIFT 87 }; 88 89 struct X86OpTblEntry { 90 uint16_t RegOp; 91 uint16_t MemOp; 92 uint16_t Flags; 93 }; 94 95 // Pin the vtable to this file. 96 void X86InstrInfo::anchor() {} 97 98 X86InstrInfo::X86InstrInfo(X86TargetMachine &tm) 99 : X86GenInstrInfo((tm.getSubtarget<X86Subtarget>().is64Bit() 100 ? X86::ADJCALLSTACKDOWN64 101 : X86::ADJCALLSTACKDOWN32), 102 (tm.getSubtarget<X86Subtarget>().is64Bit() 103 ? X86::ADJCALLSTACKUP64 104 : X86::ADJCALLSTACKUP32)), 105 TM(tm), RI(tm) { 106 107 static const X86OpTblEntry OpTbl2Addr[] = { 108 { X86::ADC32ri, X86::ADC32mi, 0 }, 109 { X86::ADC32ri8, X86::ADC32mi8, 0 }, 110 { X86::ADC32rr, X86::ADC32mr, 0 }, 111 { X86::ADC64ri32, X86::ADC64mi32, 0 }, 112 { X86::ADC64ri8, X86::ADC64mi8, 0 }, 113 { X86::ADC64rr, X86::ADC64mr, 0 }, 114 { X86::ADD16ri, X86::ADD16mi, 0 }, 115 { X86::ADD16ri8, X86::ADD16mi8, 0 }, 116 { X86::ADD16ri_DB, X86::ADD16mi, TB_NO_REVERSE }, 117 { X86::ADD16ri8_DB, X86::ADD16mi8, TB_NO_REVERSE }, 118 { X86::ADD16rr, X86::ADD16mr, 0 }, 119 { X86::ADD16rr_DB, X86::ADD16mr, TB_NO_REVERSE }, 120 { X86::ADD32ri, X86::ADD32mi, 0 }, 121 { X86::ADD32ri8, X86::ADD32mi8, 0 }, 122 { X86::ADD32ri_DB, X86::ADD32mi, TB_NO_REVERSE }, 123 { X86::ADD32ri8_DB, X86::ADD32mi8, TB_NO_REVERSE }, 124 { X86::ADD32rr, X86::ADD32mr, 0 }, 125 { X86::ADD32rr_DB, X86::ADD32mr, TB_NO_REVERSE }, 126 { X86::ADD64ri32, X86::ADD64mi32, 0 }, 127 { X86::ADD64ri8, X86::ADD64mi8, 0 }, 128 { X86::ADD64ri32_DB,X86::ADD64mi32, TB_NO_REVERSE }, 129 { X86::ADD64ri8_DB, X86::ADD64mi8, TB_NO_REVERSE }, 130 { X86::ADD64rr, X86::ADD64mr, 0 }, 131 { X86::ADD64rr_DB, X86::ADD64mr, TB_NO_REVERSE }, 132 { X86::ADD8ri, X86::ADD8mi, 0 }, 133 { X86::ADD8rr, X86::ADD8mr, 0 }, 134 { X86::AND16ri, X86::AND16mi, 0 }, 135 { X86::AND16ri8, X86::AND16mi8, 0 }, 136 { X86::AND16rr, X86::AND16mr, 0 }, 137 { X86::AND32ri, X86::AND32mi, 0 }, 138 { X86::AND32ri8, X86::AND32mi8, 0 }, 139 { X86::AND32rr, X86::AND32mr, 0 }, 140 { X86::AND64ri32, X86::AND64mi32, 0 }, 141 { X86::AND64ri8, X86::AND64mi8, 0 }, 142 { X86::AND64rr, X86::AND64mr, 0 }, 143 { X86::AND8ri, X86::AND8mi, 0 }, 144 { X86::AND8rr, X86::AND8mr, 0 }, 145 { X86::DEC16r, X86::DEC16m, 0 }, 146 { X86::DEC32r, X86::DEC32m, 0 }, 147 { X86::DEC64_16r, X86::DEC64_16m, 0 }, 148 { X86::DEC64_32r, X86::DEC64_32m, 0 }, 149 { X86::DEC64r, X86::DEC64m, 0 }, 150 { X86::DEC8r, X86::DEC8m, 0 }, 151 { X86::INC16r, X86::INC16m, 0 }, 152 { X86::INC32r, X86::INC32m, 0 }, 153 { X86::INC64_16r, X86::INC64_16m, 0 }, 154 { X86::INC64_32r, X86::INC64_32m, 0 }, 155 { X86::INC64r, X86::INC64m, 0 }, 156 { X86::INC8r, X86::INC8m, 0 }, 157 { X86::NEG16r, X86::NEG16m, 0 }, 158 { X86::NEG32r, X86::NEG32m, 0 }, 159 { X86::NEG64r, X86::NEG64m, 0 }, 160 { X86::NEG8r, X86::NEG8m, 0 }, 161 { X86::NOT16r, X86::NOT16m, 0 }, 162 { X86::NOT32r, X86::NOT32m, 0 }, 163 { X86::NOT64r, X86::NOT64m, 0 }, 164 { X86::NOT8r, X86::NOT8m, 0 }, 165 { X86::OR16ri, X86::OR16mi, 0 }, 166 { X86::OR16ri8, X86::OR16mi8, 0 }, 167 { X86::OR16rr, X86::OR16mr, 0 }, 168 { X86::OR32ri, X86::OR32mi, 0 }, 169 { X86::OR32ri8, X86::OR32mi8, 0 }, 170 { X86::OR32rr, X86::OR32mr, 0 }, 171 { X86::OR64ri32, X86::OR64mi32, 0 }, 172 { X86::OR64ri8, X86::OR64mi8, 0 }, 173 { X86::OR64rr, X86::OR64mr, 0 }, 174 { X86::OR8ri, X86::OR8mi, 0 }, 175 { X86::OR8rr, X86::OR8mr, 0 }, 176 { X86::ROL16r1, X86::ROL16m1, 0 }, 177 { X86::ROL16rCL, X86::ROL16mCL, 0 }, 178 { X86::ROL16ri, X86::ROL16mi, 0 }, 179 { X86::ROL32r1, X86::ROL32m1, 0 }, 180 { X86::ROL32rCL, X86::ROL32mCL, 0 }, 181 { X86::ROL32ri, X86::ROL32mi, 0 }, 182 { X86::ROL64r1, X86::ROL64m1, 0 }, 183 { X86::ROL64rCL, X86::ROL64mCL, 0 }, 184 { X86::ROL64ri, X86::ROL64mi, 0 }, 185 { X86::ROL8r1, X86::ROL8m1, 0 }, 186 { X86::ROL8rCL, X86::ROL8mCL, 0 }, 187 { X86::ROL8ri, X86::ROL8mi, 0 }, 188 { X86::ROR16r1, X86::ROR16m1, 0 }, 189 { X86::ROR16rCL, X86::ROR16mCL, 0 }, 190 { X86::ROR16ri, X86::ROR16mi, 0 }, 191 { X86::ROR32r1, X86::ROR32m1, 0 }, 192 { X86::ROR32rCL, X86::ROR32mCL, 0 }, 193 { X86::ROR32ri, X86::ROR32mi, 0 }, 194 { X86::ROR64r1, X86::ROR64m1, 0 }, 195 { X86::ROR64rCL, X86::ROR64mCL, 0 }, 196 { X86::ROR64ri, X86::ROR64mi, 0 }, 197 { X86::ROR8r1, X86::ROR8m1, 0 }, 198 { X86::ROR8rCL, X86::ROR8mCL, 0 }, 199 { X86::ROR8ri, X86::ROR8mi, 0 }, 200 { X86::SAR16r1, X86::SAR16m1, 0 }, 201 { X86::SAR16rCL, X86::SAR16mCL, 0 }, 202 { X86::SAR16ri, X86::SAR16mi, 0 }, 203 { X86::SAR32r1, X86::SAR32m1, 0 }, 204 { X86::SAR32rCL, X86::SAR32mCL, 0 }, 205 { X86::SAR32ri, X86::SAR32mi, 0 }, 206 { X86::SAR64r1, X86::SAR64m1, 0 }, 207 { X86::SAR64rCL, X86::SAR64mCL, 0 }, 208 { X86::SAR64ri, X86::SAR64mi, 0 }, 209 { X86::SAR8r1, X86::SAR8m1, 0 }, 210 { X86::SAR8rCL, X86::SAR8mCL, 0 }, 211 { X86::SAR8ri, X86::SAR8mi, 0 }, 212 { X86::SBB32ri, X86::SBB32mi, 0 }, 213 { X86::SBB32ri8, X86::SBB32mi8, 0 }, 214 { X86::SBB32rr, X86::SBB32mr, 0 }, 215 { X86::SBB64ri32, X86::SBB64mi32, 0 }, 216 { X86::SBB64ri8, X86::SBB64mi8, 0 }, 217 { X86::SBB64rr, X86::SBB64mr, 0 }, 218 { X86::SHL16rCL, X86::SHL16mCL, 0 }, 219 { X86::SHL16ri, X86::SHL16mi, 0 }, 220 { X86::SHL32rCL, X86::SHL32mCL, 0 }, 221 { X86::SHL32ri, X86::SHL32mi, 0 }, 222 { X86::SHL64rCL, X86::SHL64mCL, 0 }, 223 { X86::SHL64ri, X86::SHL64mi, 0 }, 224 { X86::SHL8rCL, X86::SHL8mCL, 0 }, 225 { X86::SHL8ri, X86::SHL8mi, 0 }, 226 { X86::SHLD16rrCL, X86::SHLD16mrCL, 0 }, 227 { X86::SHLD16rri8, X86::SHLD16mri8, 0 }, 228 { X86::SHLD32rrCL, X86::SHLD32mrCL, 0 }, 229 { X86::SHLD32rri8, X86::SHLD32mri8, 0 }, 230 { X86::SHLD64rrCL, X86::SHLD64mrCL, 0 }, 231 { X86::SHLD64rri8, X86::SHLD64mri8, 0 }, 232 { X86::SHR16r1, X86::SHR16m1, 0 }, 233 { X86::SHR16rCL, X86::SHR16mCL, 0 }, 234 { X86::SHR16ri, X86::SHR16mi, 0 }, 235 { X86::SHR32r1, X86::SHR32m1, 0 }, 236 { X86::SHR32rCL, X86::SHR32mCL, 0 }, 237 { X86::SHR32ri, X86::SHR32mi, 0 }, 238 { X86::SHR64r1, X86::SHR64m1, 0 }, 239 { X86::SHR64rCL, X86::SHR64mCL, 0 }, 240 { X86::SHR64ri, X86::SHR64mi, 0 }, 241 { X86::SHR8r1, X86::SHR8m1, 0 }, 242 { X86::SHR8rCL, X86::SHR8mCL, 0 }, 243 { X86::SHR8ri, X86::SHR8mi, 0 }, 244 { X86::SHRD16rrCL, X86::SHRD16mrCL, 0 }, 245 { X86::SHRD16rri8, X86::SHRD16mri8, 0 }, 246 { X86::SHRD32rrCL, X86::SHRD32mrCL, 0 }, 247 { X86::SHRD32rri8, X86::SHRD32mri8, 0 }, 248 { X86::SHRD64rrCL, X86::SHRD64mrCL, 0 }, 249 { X86::SHRD64rri8, X86::SHRD64mri8, 0 }, 250 { X86::SUB16ri, X86::SUB16mi, 0 }, 251 { X86::SUB16ri8, X86::SUB16mi8, 0 }, 252 { X86::SUB16rr, X86::SUB16mr, 0 }, 253 { X86::SUB32ri, X86::SUB32mi, 0 }, 254 { X86::SUB32ri8, X86::SUB32mi8, 0 }, 255 { X86::SUB32rr, X86::SUB32mr, 0 }, 256 { X86::SUB64ri32, X86::SUB64mi32, 0 }, 257 { X86::SUB64ri8, X86::SUB64mi8, 0 }, 258 { X86::SUB64rr, X86::SUB64mr, 0 }, 259 { X86::SUB8ri, X86::SUB8mi, 0 }, 260 { X86::SUB8rr, X86::SUB8mr, 0 }, 261 { X86::XOR16ri, X86::XOR16mi, 0 }, 262 { X86::XOR16ri8, X86::XOR16mi8, 0 }, 263 { X86::XOR16rr, X86::XOR16mr, 0 }, 264 { X86::XOR32ri, X86::XOR32mi, 0 }, 265 { X86::XOR32ri8, X86::XOR32mi8, 0 }, 266 { X86::XOR32rr, X86::XOR32mr, 0 }, 267 { X86::XOR64ri32, X86::XOR64mi32, 0 }, 268 { X86::XOR64ri8, X86::XOR64mi8, 0 }, 269 { X86::XOR64rr, X86::XOR64mr, 0 }, 270 { X86::XOR8ri, X86::XOR8mi, 0 }, 271 { X86::XOR8rr, X86::XOR8mr, 0 } 272 }; 273 274 for (unsigned i = 0, e = array_lengthof(OpTbl2Addr); i != e; ++i) { 275 unsigned RegOp = OpTbl2Addr[i].RegOp; 276 unsigned MemOp = OpTbl2Addr[i].MemOp; 277 unsigned Flags = OpTbl2Addr[i].Flags; 278 AddTableEntry(RegOp2MemOpTable2Addr, MemOp2RegOpTable, 279 RegOp, MemOp, 280 // Index 0, folded load and store, no alignment requirement. 281 Flags | TB_INDEX_0 | TB_FOLDED_LOAD | TB_FOLDED_STORE); 282 } 283 284 static const X86OpTblEntry OpTbl0[] = { 285 { X86::BT16ri8, X86::BT16mi8, TB_FOLDED_LOAD }, 286 { X86::BT32ri8, X86::BT32mi8, TB_FOLDED_LOAD }, 287 { X86::BT64ri8, X86::BT64mi8, TB_FOLDED_LOAD }, 288 { X86::CALL32r, X86::CALL32m, TB_FOLDED_LOAD }, 289 { X86::CALL64r, X86::CALL64m, TB_FOLDED_LOAD }, 290 { X86::CMP16ri, X86::CMP16mi, TB_FOLDED_LOAD }, 291 { X86::CMP16ri8, X86::CMP16mi8, TB_FOLDED_LOAD }, 292 { X86::CMP16rr, X86::CMP16mr, TB_FOLDED_LOAD }, 293 { X86::CMP32ri, X86::CMP32mi, TB_FOLDED_LOAD }, 294 { X86::CMP32ri8, X86::CMP32mi8, TB_FOLDED_LOAD }, 295 { X86::CMP32rr, X86::CMP32mr, TB_FOLDED_LOAD }, 296 { X86::CMP64ri32, X86::CMP64mi32, TB_FOLDED_LOAD }, 297 { X86::CMP64ri8, X86::CMP64mi8, TB_FOLDED_LOAD }, 298 { X86::CMP64rr, X86::CMP64mr, TB_FOLDED_LOAD }, 299 { X86::CMP8ri, X86::CMP8mi, TB_FOLDED_LOAD }, 300 { X86::CMP8rr, X86::CMP8mr, TB_FOLDED_LOAD }, 301 { X86::DIV16r, X86::DIV16m, TB_FOLDED_LOAD }, 302 { X86::DIV32r, X86::DIV32m, TB_FOLDED_LOAD }, 303 { X86::DIV64r, X86::DIV64m, TB_FOLDED_LOAD }, 304 { X86::DIV8r, X86::DIV8m, TB_FOLDED_LOAD }, 305 { X86::EXTRACTPSrr, X86::EXTRACTPSmr, TB_FOLDED_STORE }, 306 { X86::IDIV16r, X86::IDIV16m, TB_FOLDED_LOAD }, 307 { X86::IDIV32r, X86::IDIV32m, TB_FOLDED_LOAD }, 308 { X86::IDIV64r, X86::IDIV64m, TB_FOLDED_LOAD }, 309 { X86::IDIV8r, X86::IDIV8m, TB_FOLDED_LOAD }, 310 { X86::IMUL16r, X86::IMUL16m, TB_FOLDED_LOAD }, 311 { X86::IMUL32r, X86::IMUL32m, TB_FOLDED_LOAD }, 312 { X86::IMUL64r, X86::IMUL64m, TB_FOLDED_LOAD }, 313 { X86::IMUL8r, X86::IMUL8m, TB_FOLDED_LOAD }, 314 { X86::JMP32r, X86::JMP32m, TB_FOLDED_LOAD }, 315 { X86::JMP64r, X86::JMP64m, TB_FOLDED_LOAD }, 316 { X86::MOV16ri, X86::MOV16mi, TB_FOLDED_STORE }, 317 { X86::MOV16rr, X86::MOV16mr, TB_FOLDED_STORE }, 318 { X86::MOV32ri, X86::MOV32mi, TB_FOLDED_STORE }, 319 { X86::MOV32rr, X86::MOV32mr, TB_FOLDED_STORE }, 320 { X86::MOV64ri32, X86::MOV64mi32, TB_FOLDED_STORE }, 321 { X86::MOV64rr, X86::MOV64mr, TB_FOLDED_STORE }, 322 { X86::MOV8ri, X86::MOV8mi, TB_FOLDED_STORE }, 323 { X86::MOV8rr, X86::MOV8mr, TB_FOLDED_STORE }, 324 { X86::MOV8rr_NOREX, X86::MOV8mr_NOREX, TB_FOLDED_STORE }, 325 { X86::MOVAPDrr, X86::MOVAPDmr, TB_FOLDED_STORE | TB_ALIGN_16 }, 326 { X86::MOVAPSrr, X86::MOVAPSmr, TB_FOLDED_STORE | TB_ALIGN_16 }, 327 { X86::MOVDQArr, X86::MOVDQAmr, TB_FOLDED_STORE | TB_ALIGN_16 }, 328 { X86::MOVPDI2DIrr, X86::MOVPDI2DImr, TB_FOLDED_STORE }, 329 { X86::MOVPQIto64rr,X86::MOVPQI2QImr, TB_FOLDED_STORE }, 330 { X86::MOVSDto64rr, X86::MOVSDto64mr, TB_FOLDED_STORE }, 331 { X86::MOVSS2DIrr, X86::MOVSS2DImr, TB_FOLDED_STORE }, 332 { X86::MOVUPDrr, X86::MOVUPDmr, TB_FOLDED_STORE }, 333 { X86::MOVUPSrr, X86::MOVUPSmr, TB_FOLDED_STORE }, 334 { X86::MUL16r, X86::MUL16m, TB_FOLDED_LOAD }, 335 { X86::MUL32r, X86::MUL32m, TB_FOLDED_LOAD }, 336 { X86::MUL64r, X86::MUL64m, TB_FOLDED_LOAD }, 337 { X86::MUL8r, X86::MUL8m, TB_FOLDED_LOAD }, 338 { X86::SETAEr, X86::SETAEm, TB_FOLDED_STORE }, 339 { X86::SETAr, X86::SETAm, TB_FOLDED_STORE }, 340 { X86::SETBEr, X86::SETBEm, TB_FOLDED_STORE }, 341 { X86::SETBr, X86::SETBm, TB_FOLDED_STORE }, 342 { X86::SETEr, X86::SETEm, TB_FOLDED_STORE }, 343 { X86::SETGEr, X86::SETGEm, TB_FOLDED_STORE }, 344 { X86::SETGr, X86::SETGm, TB_FOLDED_STORE }, 345 { X86::SETLEr, X86::SETLEm, TB_FOLDED_STORE }, 346 { X86::SETLr, X86::SETLm, TB_FOLDED_STORE }, 347 { X86::SETNEr, X86::SETNEm, TB_FOLDED_STORE }, 348 { X86::SETNOr, X86::SETNOm, TB_FOLDED_STORE }, 349 { X86::SETNPr, X86::SETNPm, TB_FOLDED_STORE }, 350 { X86::SETNSr, X86::SETNSm, TB_FOLDED_STORE }, 351 { X86::SETOr, X86::SETOm, TB_FOLDED_STORE }, 352 { X86::SETPr, X86::SETPm, TB_FOLDED_STORE }, 353 { X86::SETSr, X86::SETSm, TB_FOLDED_STORE }, 354 { X86::TAILJMPr, X86::TAILJMPm, TB_FOLDED_LOAD }, 355 { X86::TAILJMPr64, X86::TAILJMPm64, TB_FOLDED_LOAD }, 356 { X86::TEST16ri, X86::TEST16mi, TB_FOLDED_LOAD }, 357 { X86::TEST32ri, X86::TEST32mi, TB_FOLDED_LOAD }, 358 { X86::TEST64ri32, X86::TEST64mi32, TB_FOLDED_LOAD }, 359 { X86::TEST8ri, X86::TEST8mi, TB_FOLDED_LOAD }, 360 // AVX 128-bit versions of foldable instructions 361 { X86::VEXTRACTPSrr,X86::VEXTRACTPSmr, TB_FOLDED_STORE }, 362 { X86::VEXTRACTF128rr, X86::VEXTRACTF128mr, TB_FOLDED_STORE | TB_ALIGN_16 }, 363 { X86::VMOVAPDrr, X86::VMOVAPDmr, TB_FOLDED_STORE | TB_ALIGN_16 }, 364 { X86::VMOVAPSrr, X86::VMOVAPSmr, TB_FOLDED_STORE | TB_ALIGN_16 }, 365 { X86::VMOVDQArr, X86::VMOVDQAmr, TB_FOLDED_STORE | TB_ALIGN_16 }, 366 { X86::VMOVPDI2DIrr,X86::VMOVPDI2DImr, TB_FOLDED_STORE }, 367 { X86::VMOVPQIto64rr, X86::VMOVPQI2QImr,TB_FOLDED_STORE }, 368 { X86::VMOVSDto64rr,X86::VMOVSDto64mr, TB_FOLDED_STORE }, 369 { X86::VMOVSS2DIrr, X86::VMOVSS2DImr, TB_FOLDED_STORE }, 370 { X86::VMOVUPDrr, X86::VMOVUPDmr, TB_FOLDED_STORE }, 371 { X86::VMOVUPSrr, X86::VMOVUPSmr, TB_FOLDED_STORE }, 372 // AVX 256-bit foldable instructions 373 { X86::VEXTRACTI128rr, X86::VEXTRACTI128mr, TB_FOLDED_STORE | TB_ALIGN_16 }, 374 { X86::VMOVAPDYrr, X86::VMOVAPDYmr, TB_FOLDED_STORE | TB_ALIGN_32 }, 375 { X86::VMOVAPSYrr, X86::VMOVAPSYmr, TB_FOLDED_STORE | TB_ALIGN_32 }, 376 { X86::VMOVDQAYrr, X86::VMOVDQAYmr, TB_FOLDED_STORE | TB_ALIGN_32 }, 377 { X86::VMOVUPDYrr, X86::VMOVUPDYmr, TB_FOLDED_STORE }, 378 { X86::VMOVUPSYrr, X86::VMOVUPSYmr, TB_FOLDED_STORE }, 379 // AVX-512 foldable instructions 380 { X86::VMOVPDI2DIZrr,X86::VMOVPDI2DIZmr, TB_FOLDED_STORE } 381 }; 382 383 for (unsigned i = 0, e = array_lengthof(OpTbl0); i != e; ++i) { 384 unsigned RegOp = OpTbl0[i].RegOp; 385 unsigned MemOp = OpTbl0[i].MemOp; 386 unsigned Flags = OpTbl0[i].Flags; 387 AddTableEntry(RegOp2MemOpTable0, MemOp2RegOpTable, 388 RegOp, MemOp, TB_INDEX_0 | Flags); 389 } 390 391 static const X86OpTblEntry OpTbl1[] = { 392 { X86::CMP16rr, X86::CMP16rm, 0 }, 393 { X86::CMP32rr, X86::CMP32rm, 0 }, 394 { X86::CMP64rr, X86::CMP64rm, 0 }, 395 { X86::CMP8rr, X86::CMP8rm, 0 }, 396 { X86::CVTSD2SSrr, X86::CVTSD2SSrm, 0 }, 397 { X86::CVTSI2SD64rr, X86::CVTSI2SD64rm, 0 }, 398 { X86::CVTSI2SDrr, X86::CVTSI2SDrm, 0 }, 399 { X86::CVTSI2SS64rr, X86::CVTSI2SS64rm, 0 }, 400 { X86::CVTSI2SSrr, X86::CVTSI2SSrm, 0 }, 401 { X86::CVTSS2SDrr, X86::CVTSS2SDrm, 0 }, 402 { X86::CVTTSD2SI64rr, X86::CVTTSD2SI64rm, 0 }, 403 { X86::CVTTSD2SIrr, X86::CVTTSD2SIrm, 0 }, 404 { X86::CVTTSS2SI64rr, X86::CVTTSS2SI64rm, 0 }, 405 { X86::CVTTSS2SIrr, X86::CVTTSS2SIrm, 0 }, 406 { X86::IMUL16rri, X86::IMUL16rmi, 0 }, 407 { X86::IMUL16rri8, X86::IMUL16rmi8, 0 }, 408 { X86::IMUL32rri, X86::IMUL32rmi, 0 }, 409 { X86::IMUL32rri8, X86::IMUL32rmi8, 0 }, 410 { X86::IMUL64rri32, X86::IMUL64rmi32, 0 }, 411 { X86::IMUL64rri8, X86::IMUL64rmi8, 0 }, 412 { X86::Int_COMISDrr, X86::Int_COMISDrm, 0 }, 413 { X86::Int_COMISSrr, X86::Int_COMISSrm, 0 }, 414 { X86::CVTSD2SI64rr, X86::CVTSD2SI64rm, 0 }, 415 { X86::CVTSD2SIrr, X86::CVTSD2SIrm, 0 }, 416 { X86::CVTSS2SI64rr, X86::CVTSS2SI64rm, 0 }, 417 { X86::CVTSS2SIrr, X86::CVTSS2SIrm, 0 }, 418 { X86::CVTTPD2DQrr, X86::CVTTPD2DQrm, TB_ALIGN_16 }, 419 { X86::CVTTPS2DQrr, X86::CVTTPS2DQrm, TB_ALIGN_16 }, 420 { X86::Int_CVTTSD2SI64rr,X86::Int_CVTTSD2SI64rm, 0 }, 421 { X86::Int_CVTTSD2SIrr, X86::Int_CVTTSD2SIrm, 0 }, 422 { X86::Int_CVTTSS2SI64rr,X86::Int_CVTTSS2SI64rm, 0 }, 423 { X86::Int_CVTTSS2SIrr, X86::Int_CVTTSS2SIrm, 0 }, 424 { X86::Int_UCOMISDrr, X86::Int_UCOMISDrm, 0 }, 425 { X86::Int_UCOMISSrr, X86::Int_UCOMISSrm, 0 }, 426 { X86::MOV16rr, X86::MOV16rm, 0 }, 427 { X86::MOV32rr, X86::MOV32rm, 0 }, 428 { X86::MOV64rr, X86::MOV64rm, 0 }, 429 { X86::MOV64toPQIrr, X86::MOVQI2PQIrm, 0 }, 430 { X86::MOV64toSDrr, X86::MOV64toSDrm, 0 }, 431 { X86::MOV8rr, X86::MOV8rm, 0 }, 432 { X86::MOVAPDrr, X86::MOVAPDrm, TB_ALIGN_16 }, 433 { X86::MOVAPSrr, X86::MOVAPSrm, TB_ALIGN_16 }, 434 { X86::MOVDDUPrr, X86::MOVDDUPrm, 0 }, 435 { X86::MOVDI2PDIrr, X86::MOVDI2PDIrm, 0 }, 436 { X86::MOVDI2SSrr, X86::MOVDI2SSrm, 0 }, 437 { X86::MOVDQArr, X86::MOVDQArm, TB_ALIGN_16 }, 438 { X86::MOVSHDUPrr, X86::MOVSHDUPrm, TB_ALIGN_16 }, 439 { X86::MOVSLDUPrr, X86::MOVSLDUPrm, TB_ALIGN_16 }, 440 { X86::MOVSX16rr8, X86::MOVSX16rm8, 0 }, 441 { X86::MOVSX32rr16, X86::MOVSX32rm16, 0 }, 442 { X86::MOVSX32rr8, X86::MOVSX32rm8, 0 }, 443 { X86::MOVSX64rr16, X86::MOVSX64rm16, 0 }, 444 { X86::MOVSX64rr32, X86::MOVSX64rm32, 0 }, 445 { X86::MOVSX64rr8, X86::MOVSX64rm8, 0 }, 446 { X86::MOVUPDrr, X86::MOVUPDrm, TB_ALIGN_16 }, 447 { X86::MOVUPSrr, X86::MOVUPSrm, 0 }, 448 { X86::MOVZQI2PQIrr, X86::MOVZQI2PQIrm, 0 }, 449 { X86::MOVZPQILo2PQIrr, X86::MOVZPQILo2PQIrm, TB_ALIGN_16 }, 450 { X86::MOVZX16rr8, X86::MOVZX16rm8, 0 }, 451 { X86::MOVZX32rr16, X86::MOVZX32rm16, 0 }, 452 { X86::MOVZX32_NOREXrr8, X86::MOVZX32_NOREXrm8, 0 }, 453 { X86::MOVZX32rr8, X86::MOVZX32rm8, 0 }, 454 { X86::PABSBrr128, X86::PABSBrm128, TB_ALIGN_16 }, 455 { X86::PABSDrr128, X86::PABSDrm128, TB_ALIGN_16 }, 456 { X86::PABSWrr128, X86::PABSWrm128, TB_ALIGN_16 }, 457 { X86::PSHUFDri, X86::PSHUFDmi, TB_ALIGN_16 }, 458 { X86::PSHUFHWri, X86::PSHUFHWmi, TB_ALIGN_16 }, 459 { X86::PSHUFLWri, X86::PSHUFLWmi, TB_ALIGN_16 }, 460 { X86::RCPPSr, X86::RCPPSm, TB_ALIGN_16 }, 461 { X86::RCPPSr_Int, X86::RCPPSm_Int, TB_ALIGN_16 }, 462 { X86::RSQRTPSr, X86::RSQRTPSm, TB_ALIGN_16 }, 463 { X86::RSQRTPSr_Int, X86::RSQRTPSm_Int, TB_ALIGN_16 }, 464 { X86::RSQRTSSr, X86::RSQRTSSm, 0 }, 465 { X86::RSQRTSSr_Int, X86::RSQRTSSm_Int, 0 }, 466 { X86::SQRTPDr, X86::SQRTPDm, TB_ALIGN_16 }, 467 { X86::SQRTPSr, X86::SQRTPSm, TB_ALIGN_16 }, 468 { X86::SQRTSDr, X86::SQRTSDm, 0 }, 469 { X86::SQRTSDr_Int, X86::SQRTSDm_Int, 0 }, 470 { X86::SQRTSSr, X86::SQRTSSm, 0 }, 471 { X86::SQRTSSr_Int, X86::SQRTSSm_Int, 0 }, 472 { X86::TEST16rr, X86::TEST16rm, 0 }, 473 { X86::TEST32rr, X86::TEST32rm, 0 }, 474 { X86::TEST64rr, X86::TEST64rm, 0 }, 475 { X86::TEST8rr, X86::TEST8rm, 0 }, 476 // FIXME: TEST*rr EAX,EAX ---> CMP [mem], 0 477 { X86::UCOMISDrr, X86::UCOMISDrm, 0 }, 478 { X86::UCOMISSrr, X86::UCOMISSrm, 0 }, 479 // AVX 128-bit versions of foldable instructions 480 { X86::Int_VCOMISDrr, X86::Int_VCOMISDrm, 0 }, 481 { X86::Int_VCOMISSrr, X86::Int_VCOMISSrm, 0 }, 482 { X86::Int_VUCOMISDrr, X86::Int_VUCOMISDrm, 0 }, 483 { X86::Int_VUCOMISSrr, X86::Int_VUCOMISSrm, 0 }, 484 { X86::VCVTTSD2SI64rr, X86::VCVTTSD2SI64rm, 0 }, 485 { X86::Int_VCVTTSD2SI64rr,X86::Int_VCVTTSD2SI64rm,0 }, 486 { X86::VCVTTSD2SIrr, X86::VCVTTSD2SIrm, 0 }, 487 { X86::Int_VCVTTSD2SIrr,X86::Int_VCVTTSD2SIrm, 0 }, 488 { X86::VCVTTSS2SI64rr, X86::VCVTTSS2SI64rm, 0 }, 489 { X86::Int_VCVTTSS2SI64rr,X86::Int_VCVTTSS2SI64rm,0 }, 490 { X86::VCVTTSS2SIrr, X86::VCVTTSS2SIrm, 0 }, 491 { X86::Int_VCVTTSS2SIrr,X86::Int_VCVTTSS2SIrm, 0 }, 492 { X86::VCVTSD2SI64rr, X86::VCVTSD2SI64rm, 0 }, 493 { X86::VCVTSD2SIrr, X86::VCVTSD2SIrm, 0 }, 494 { X86::VCVTSS2SI64rr, X86::VCVTSS2SI64rm, 0 }, 495 { X86::VCVTSS2SIrr, X86::VCVTSS2SIrm, 0 }, 496 { X86::VMOV64toPQIrr, X86::VMOVQI2PQIrm, 0 }, 497 { X86::VMOV64toSDrr, X86::VMOV64toSDrm, 0 }, 498 { X86::VMOVAPDrr, X86::VMOVAPDrm, TB_ALIGN_16 }, 499 { X86::VMOVAPSrr, X86::VMOVAPSrm, TB_ALIGN_16 }, 500 { X86::VMOVDDUPrr, X86::VMOVDDUPrm, 0 }, 501 { X86::VMOVDI2PDIrr, X86::VMOVDI2PDIrm, 0 }, 502 { X86::VMOVDI2SSrr, X86::VMOVDI2SSrm, 0 }, 503 { X86::VMOVDQArr, X86::VMOVDQArm, TB_ALIGN_16 }, 504 { X86::VMOVSLDUPrr, X86::VMOVSLDUPrm, TB_ALIGN_16 }, 505 { X86::VMOVSHDUPrr, X86::VMOVSHDUPrm, TB_ALIGN_16 }, 506 { X86::VMOVUPDrr, X86::VMOVUPDrm, 0 }, 507 { X86::VMOVUPSrr, X86::VMOVUPSrm, 0 }, 508 { X86::VMOVZQI2PQIrr, X86::VMOVZQI2PQIrm, 0 }, 509 { X86::VMOVZPQILo2PQIrr,X86::VMOVZPQILo2PQIrm, TB_ALIGN_16 }, 510 { X86::VPABSBrr128, X86::VPABSBrm128, 0 }, 511 { X86::VPABSDrr128, X86::VPABSDrm128, 0 }, 512 { X86::VPABSWrr128, X86::VPABSWrm128, 0 }, 513 { X86::VPERMILPDri, X86::VPERMILPDmi, 0 }, 514 { X86::VPERMILPSri, X86::VPERMILPSmi, 0 }, 515 { X86::VPSHUFDri, X86::VPSHUFDmi, 0 }, 516 { X86::VPSHUFHWri, X86::VPSHUFHWmi, 0 }, 517 { X86::VPSHUFLWri, X86::VPSHUFLWmi, 0 }, 518 { X86::VRCPPSr, X86::VRCPPSm, 0 }, 519 { X86::VRCPPSr_Int, X86::VRCPPSm_Int, 0 }, 520 { X86::VRSQRTPSr, X86::VRSQRTPSm, 0 }, 521 { X86::VRSQRTPSr_Int, X86::VRSQRTPSm_Int, 0 }, 522 { X86::VSQRTPDr, X86::VSQRTPDm, 0 }, 523 { X86::VSQRTPSr, X86::VSQRTPSm, 0 }, 524 { X86::VUCOMISDrr, X86::VUCOMISDrm, 0 }, 525 { X86::VUCOMISSrr, X86::VUCOMISSrm, 0 }, 526 { X86::VBROADCASTSSrr, X86::VBROADCASTSSrm, TB_NO_REVERSE }, 527 528 // AVX 256-bit foldable instructions 529 { X86::VMOVAPDYrr, X86::VMOVAPDYrm, TB_ALIGN_32 }, 530 { X86::VMOVAPSYrr, X86::VMOVAPSYrm, TB_ALIGN_32 }, 531 { X86::VMOVDQAYrr, X86::VMOVDQAYrm, TB_ALIGN_32 }, 532 { X86::VMOVUPDYrr, X86::VMOVUPDYrm, 0 }, 533 { X86::VMOVUPSYrr, X86::VMOVUPSYrm, 0 }, 534 { X86::VPERMILPDYri, X86::VPERMILPDYmi, 0 }, 535 { X86::VPERMILPSYri, X86::VPERMILPSYmi, 0 }, 536 537 // AVX2 foldable instructions 538 { X86::VPABSBrr256, X86::VPABSBrm256, 0 }, 539 { X86::VPABSDrr256, X86::VPABSDrm256, 0 }, 540 { X86::VPABSWrr256, X86::VPABSWrm256, 0 }, 541 { X86::VPSHUFDYri, X86::VPSHUFDYmi, 0 }, 542 { X86::VPSHUFHWYri, X86::VPSHUFHWYmi, 0 }, 543 { X86::VPSHUFLWYri, X86::VPSHUFLWYmi, 0 }, 544 { X86::VRCPPSYr, X86::VRCPPSYm, 0 }, 545 { X86::VRCPPSYr_Int, X86::VRCPPSYm_Int, 0 }, 546 { X86::VRSQRTPSYr, X86::VRSQRTPSYm, 0 }, 547 { X86::VSQRTPDYr, X86::VSQRTPDYm, 0 }, 548 { X86::VSQRTPSYr, X86::VSQRTPSYm, 0 }, 549 { X86::VBROADCASTSSYrr, X86::VBROADCASTSSYrm, TB_NO_REVERSE }, 550 { X86::VBROADCASTSDYrr, X86::VBROADCASTSDYrm, TB_NO_REVERSE }, 551 552 // BMI/BMI2/LZCNT/POPCNT/TBM foldable instructions 553 { X86::BEXTR32rr, X86::BEXTR32rm, 0 }, 554 { X86::BEXTR64rr, X86::BEXTR64rm, 0 }, 555 { X86::BEXTRI32ri, X86::BEXTRI32mi, 0 }, 556 { X86::BEXTRI64ri, X86::BEXTRI64mi, 0 }, 557 { X86::BLCFILL32rr, X86::BLCFILL32rm, 0 }, 558 { X86::BLCFILL64rr, X86::BLCFILL64rm, 0 }, 559 { X86::BLCI32rr, X86::BLCI32rm, 0 }, 560 { X86::BLCI64rr, X86::BLCI64rm, 0 }, 561 { X86::BLCIC32rr, X86::BLCIC32rm, 0 }, 562 { X86::BLCIC64rr, X86::BLCIC64rm, 0 }, 563 { X86::BLCMSK32rr, X86::BLCMSK32rm, 0 }, 564 { X86::BLCMSK64rr, X86::BLCMSK64rm, 0 }, 565 { X86::BLCS32rr, X86::BLCS32rm, 0 }, 566 { X86::BLCS64rr, X86::BLCS64rm, 0 }, 567 { X86::BLSFILL32rr, X86::BLSFILL32rm, 0 }, 568 { X86::BLSFILL64rr, X86::BLSFILL64rm, 0 }, 569 { X86::BLSI32rr, X86::BLSI32rm, 0 }, 570 { X86::BLSI64rr, X86::BLSI64rm, 0 }, 571 { X86::BLSIC32rr, X86::BLSIC32rm, 0 }, 572 { X86::BLSIC64rr, X86::BLSIC64rm, 0 }, 573 { X86::BLSMSK32rr, X86::BLSMSK32rm, 0 }, 574 { X86::BLSMSK64rr, X86::BLSMSK64rm, 0 }, 575 { X86::BLSR32rr, X86::BLSR32rm, 0 }, 576 { X86::BLSR64rr, X86::BLSR64rm, 0 }, 577 { X86::BZHI32rr, X86::BZHI32rm, 0 }, 578 { X86::BZHI64rr, X86::BZHI64rm, 0 }, 579 { X86::LZCNT16rr, X86::LZCNT16rm, 0 }, 580 { X86::LZCNT32rr, X86::LZCNT32rm, 0 }, 581 { X86::LZCNT64rr, X86::LZCNT64rm, 0 }, 582 { X86::POPCNT16rr, X86::POPCNT16rm, 0 }, 583 { X86::POPCNT32rr, X86::POPCNT32rm, 0 }, 584 { X86::POPCNT64rr, X86::POPCNT64rm, 0 }, 585 { X86::RORX32ri, X86::RORX32mi, 0 }, 586 { X86::RORX64ri, X86::RORX64mi, 0 }, 587 { X86::SARX32rr, X86::SARX32rm, 0 }, 588 { X86::SARX64rr, X86::SARX64rm, 0 }, 589 { X86::SHRX32rr, X86::SHRX32rm, 0 }, 590 { X86::SHRX64rr, X86::SHRX64rm, 0 }, 591 { X86::SHLX32rr, X86::SHLX32rm, 0 }, 592 { X86::SHLX64rr, X86::SHLX64rm, 0 }, 593 { X86::T1MSKC32rr, X86::T1MSKC32rm, 0 }, 594 { X86::T1MSKC64rr, X86::T1MSKC64rm, 0 }, 595 { X86::TZCNT16rr, X86::TZCNT16rm, 0 }, 596 { X86::TZCNT32rr, X86::TZCNT32rm, 0 }, 597 { X86::TZCNT64rr, X86::TZCNT64rm, 0 }, 598 { X86::TZMSK32rr, X86::TZMSK32rm, 0 }, 599 { X86::TZMSK64rr, X86::TZMSK64rm, 0 }, 600 601 // AVX-512 foldable instructions 602 { X86::VMOV64toPQIZrr, X86::VMOVQI2PQIZrm, 0 }, 603 { X86::VMOVDI2SSZrr, X86::VMOVDI2SSZrm, 0 }, 604 { X86::VMOVDQA32rr, X86::VMOVDQA32rm, TB_ALIGN_64 }, 605 { X86::VMOVDQA64rr, X86::VMOVDQA64rm, TB_ALIGN_64 }, 606 { X86::VMOVDQU32rr, X86::VMOVDQU32rm, 0 }, 607 { X86::VMOVDQU64rr, X86::VMOVDQU64rm, 0 }, 608 609 // AES foldable instructions 610 { X86::AESIMCrr, X86::AESIMCrm, TB_ALIGN_16 }, 611 { X86::AESKEYGENASSIST128rr, X86::AESKEYGENASSIST128rm, TB_ALIGN_16 }, 612 { X86::VAESIMCrr, X86::VAESIMCrm, TB_ALIGN_16 }, 613 { X86::VAESKEYGENASSIST128rr, X86::VAESKEYGENASSIST128rm, TB_ALIGN_16 }, 614 }; 615 616 for (unsigned i = 0, e = array_lengthof(OpTbl1); i != e; ++i) { 617 unsigned RegOp = OpTbl1[i].RegOp; 618 unsigned MemOp = OpTbl1[i].MemOp; 619 unsigned Flags = OpTbl1[i].Flags; 620 AddTableEntry(RegOp2MemOpTable1, MemOp2RegOpTable, 621 RegOp, MemOp, 622 // Index 1, folded load 623 Flags | TB_INDEX_1 | TB_FOLDED_LOAD); 624 } 625 626 static const X86OpTblEntry OpTbl2[] = { 627 { X86::ADC32rr, X86::ADC32rm, 0 }, 628 { X86::ADC64rr, X86::ADC64rm, 0 }, 629 { X86::ADD16rr, X86::ADD16rm, 0 }, 630 { X86::ADD16rr_DB, X86::ADD16rm, TB_NO_REVERSE }, 631 { X86::ADD32rr, X86::ADD32rm, 0 }, 632 { X86::ADD32rr_DB, X86::ADD32rm, TB_NO_REVERSE }, 633 { X86::ADD64rr, X86::ADD64rm, 0 }, 634 { X86::ADD64rr_DB, X86::ADD64rm, TB_NO_REVERSE }, 635 { X86::ADD8rr, X86::ADD8rm, 0 }, 636 { X86::ADDPDrr, X86::ADDPDrm, TB_ALIGN_16 }, 637 { X86::ADDPSrr, X86::ADDPSrm, TB_ALIGN_16 }, 638 { X86::ADDSDrr, X86::ADDSDrm, 0 }, 639 { X86::ADDSSrr, X86::ADDSSrm, 0 }, 640 { X86::ADDSUBPDrr, X86::ADDSUBPDrm, TB_ALIGN_16 }, 641 { X86::ADDSUBPSrr, X86::ADDSUBPSrm, TB_ALIGN_16 }, 642 { X86::AND16rr, X86::AND16rm, 0 }, 643 { X86::AND32rr, X86::AND32rm, 0 }, 644 { X86::AND64rr, X86::AND64rm, 0 }, 645 { X86::AND8rr, X86::AND8rm, 0 }, 646 { X86::ANDNPDrr, X86::ANDNPDrm, TB_ALIGN_16 }, 647 { X86::ANDNPSrr, X86::ANDNPSrm, TB_ALIGN_16 }, 648 { X86::ANDPDrr, X86::ANDPDrm, TB_ALIGN_16 }, 649 { X86::ANDPSrr, X86::ANDPSrm, TB_ALIGN_16 }, 650 { X86::BLENDPDrri, X86::BLENDPDrmi, TB_ALIGN_16 }, 651 { X86::BLENDPSrri, X86::BLENDPSrmi, TB_ALIGN_16 }, 652 { X86::BLENDVPDrr0, X86::BLENDVPDrm0, TB_ALIGN_16 }, 653 { X86::BLENDVPSrr0, X86::BLENDVPSrm0, TB_ALIGN_16 }, 654 { X86::CMOVA16rr, X86::CMOVA16rm, 0 }, 655 { X86::CMOVA32rr, X86::CMOVA32rm, 0 }, 656 { X86::CMOVA64rr, X86::CMOVA64rm, 0 }, 657 { X86::CMOVAE16rr, X86::CMOVAE16rm, 0 }, 658 { X86::CMOVAE32rr, X86::CMOVAE32rm, 0 }, 659 { X86::CMOVAE64rr, X86::CMOVAE64rm, 0 }, 660 { X86::CMOVB16rr, X86::CMOVB16rm, 0 }, 661 { X86::CMOVB32rr, X86::CMOVB32rm, 0 }, 662 { X86::CMOVB64rr, X86::CMOVB64rm, 0 }, 663 { X86::CMOVBE16rr, X86::CMOVBE16rm, 0 }, 664 { X86::CMOVBE32rr, X86::CMOVBE32rm, 0 }, 665 { X86::CMOVBE64rr, X86::CMOVBE64rm, 0 }, 666 { X86::CMOVE16rr, X86::CMOVE16rm, 0 }, 667 { X86::CMOVE32rr, X86::CMOVE32rm, 0 }, 668 { X86::CMOVE64rr, X86::CMOVE64rm, 0 }, 669 { X86::CMOVG16rr, X86::CMOVG16rm, 0 }, 670 { X86::CMOVG32rr, X86::CMOVG32rm, 0 }, 671 { X86::CMOVG64rr, X86::CMOVG64rm, 0 }, 672 { X86::CMOVGE16rr, X86::CMOVGE16rm, 0 }, 673 { X86::CMOVGE32rr, X86::CMOVGE32rm, 0 }, 674 { X86::CMOVGE64rr, X86::CMOVGE64rm, 0 }, 675 { X86::CMOVL16rr, X86::CMOVL16rm, 0 }, 676 { X86::CMOVL32rr, X86::CMOVL32rm, 0 }, 677 { X86::CMOVL64rr, X86::CMOVL64rm, 0 }, 678 { X86::CMOVLE16rr, X86::CMOVLE16rm, 0 }, 679 { X86::CMOVLE32rr, X86::CMOVLE32rm, 0 }, 680 { X86::CMOVLE64rr, X86::CMOVLE64rm, 0 }, 681 { X86::CMOVNE16rr, X86::CMOVNE16rm, 0 }, 682 { X86::CMOVNE32rr, X86::CMOVNE32rm, 0 }, 683 { X86::CMOVNE64rr, X86::CMOVNE64rm, 0 }, 684 { X86::CMOVNO16rr, X86::CMOVNO16rm, 0 }, 685 { X86::CMOVNO32rr, X86::CMOVNO32rm, 0 }, 686 { X86::CMOVNO64rr, X86::CMOVNO64rm, 0 }, 687 { X86::CMOVNP16rr, X86::CMOVNP16rm, 0 }, 688 { X86::CMOVNP32rr, X86::CMOVNP32rm, 0 }, 689 { X86::CMOVNP64rr, X86::CMOVNP64rm, 0 }, 690 { X86::CMOVNS16rr, X86::CMOVNS16rm, 0 }, 691 { X86::CMOVNS32rr, X86::CMOVNS32rm, 0 }, 692 { X86::CMOVNS64rr, X86::CMOVNS64rm, 0 }, 693 { X86::CMOVO16rr, X86::CMOVO16rm, 0 }, 694 { X86::CMOVO32rr, X86::CMOVO32rm, 0 }, 695 { X86::CMOVO64rr, X86::CMOVO64rm, 0 }, 696 { X86::CMOVP16rr, X86::CMOVP16rm, 0 }, 697 { X86::CMOVP32rr, X86::CMOVP32rm, 0 }, 698 { X86::CMOVP64rr, X86::CMOVP64rm, 0 }, 699 { X86::CMOVS16rr, X86::CMOVS16rm, 0 }, 700 { X86::CMOVS32rr, X86::CMOVS32rm, 0 }, 701 { X86::CMOVS64rr, X86::CMOVS64rm, 0 }, 702 { X86::CMPPDrri, X86::CMPPDrmi, TB_ALIGN_16 }, 703 { X86::CMPPSrri, X86::CMPPSrmi, TB_ALIGN_16 }, 704 { X86::CMPSDrr, X86::CMPSDrm, 0 }, 705 { X86::CMPSSrr, X86::CMPSSrm, 0 }, 706 { X86::DIVPDrr, X86::DIVPDrm, TB_ALIGN_16 }, 707 { X86::DIVPSrr, X86::DIVPSrm, TB_ALIGN_16 }, 708 { X86::DIVSDrr, X86::DIVSDrm, 0 }, 709 { X86::DIVSSrr, X86::DIVSSrm, 0 }, 710 { X86::FsANDNPDrr, X86::FsANDNPDrm, TB_ALIGN_16 }, 711 { X86::FsANDNPSrr, X86::FsANDNPSrm, TB_ALIGN_16 }, 712 { X86::FsANDPDrr, X86::FsANDPDrm, TB_ALIGN_16 }, 713 { X86::FsANDPSrr, X86::FsANDPSrm, TB_ALIGN_16 }, 714 { X86::FsORPDrr, X86::FsORPDrm, TB_ALIGN_16 }, 715 { X86::FsORPSrr, X86::FsORPSrm, TB_ALIGN_16 }, 716 { X86::FsXORPDrr, X86::FsXORPDrm, TB_ALIGN_16 }, 717 { X86::FsXORPSrr, X86::FsXORPSrm, TB_ALIGN_16 }, 718 { X86::HADDPDrr, X86::HADDPDrm, TB_ALIGN_16 }, 719 { X86::HADDPSrr, X86::HADDPSrm, TB_ALIGN_16 }, 720 { X86::HSUBPDrr, X86::HSUBPDrm, TB_ALIGN_16 }, 721 { X86::HSUBPSrr, X86::HSUBPSrm, TB_ALIGN_16 }, 722 { X86::IMUL16rr, X86::IMUL16rm, 0 }, 723 { X86::IMUL32rr, X86::IMUL32rm, 0 }, 724 { X86::IMUL64rr, X86::IMUL64rm, 0 }, 725 { X86::Int_CMPSDrr, X86::Int_CMPSDrm, 0 }, 726 { X86::Int_CMPSSrr, X86::Int_CMPSSrm, 0 }, 727 { X86::Int_CVTSD2SSrr, X86::Int_CVTSD2SSrm, 0 }, 728 { X86::Int_CVTSI2SD64rr,X86::Int_CVTSI2SD64rm, 0 }, 729 { X86::Int_CVTSI2SDrr, X86::Int_CVTSI2SDrm, 0 }, 730 { X86::Int_CVTSI2SS64rr,X86::Int_CVTSI2SS64rm, 0 }, 731 { X86::Int_CVTSI2SSrr, X86::Int_CVTSI2SSrm, 0 }, 732 { X86::Int_CVTSS2SDrr, X86::Int_CVTSS2SDrm, 0 }, 733 { X86::MAXPDrr, X86::MAXPDrm, TB_ALIGN_16 }, 734 { X86::MAXPSrr, X86::MAXPSrm, TB_ALIGN_16 }, 735 { X86::MAXSDrr, X86::MAXSDrm, 0 }, 736 { X86::MAXSSrr, X86::MAXSSrm, 0 }, 737 { X86::MINPDrr, X86::MINPDrm, TB_ALIGN_16 }, 738 { X86::MINPSrr, X86::MINPSrm, TB_ALIGN_16 }, 739 { X86::MINSDrr, X86::MINSDrm, 0 }, 740 { X86::MINSSrr, X86::MINSSrm, 0 }, 741 { X86::MPSADBWrri, X86::MPSADBWrmi, TB_ALIGN_16 }, 742 { X86::MULPDrr, X86::MULPDrm, TB_ALIGN_16 }, 743 { X86::MULPSrr, X86::MULPSrm, TB_ALIGN_16 }, 744 { X86::MULSDrr, X86::MULSDrm, 0 }, 745 { X86::MULSSrr, X86::MULSSrm, 0 }, 746 { X86::OR16rr, X86::OR16rm, 0 }, 747 { X86::OR32rr, X86::OR32rm, 0 }, 748 { X86::OR64rr, X86::OR64rm, 0 }, 749 { X86::OR8rr, X86::OR8rm, 0 }, 750 { X86::ORPDrr, X86::ORPDrm, TB_ALIGN_16 }, 751 { X86::ORPSrr, X86::ORPSrm, TB_ALIGN_16 }, 752 { X86::PACKSSDWrr, X86::PACKSSDWrm, TB_ALIGN_16 }, 753 { X86::PACKSSWBrr, X86::PACKSSWBrm, TB_ALIGN_16 }, 754 { X86::PACKUSDWrr, X86::PACKUSDWrm, TB_ALIGN_16 }, 755 { X86::PACKUSWBrr, X86::PACKUSWBrm, TB_ALIGN_16 }, 756 { X86::PADDBrr, X86::PADDBrm, TB_ALIGN_16 }, 757 { X86::PADDDrr, X86::PADDDrm, TB_ALIGN_16 }, 758 { X86::PADDQrr, X86::PADDQrm, TB_ALIGN_16 }, 759 { X86::PADDSBrr, X86::PADDSBrm, TB_ALIGN_16 }, 760 { X86::PADDSWrr, X86::PADDSWrm, TB_ALIGN_16 }, 761 { X86::PADDUSBrr, X86::PADDUSBrm, TB_ALIGN_16 }, 762 { X86::PADDUSWrr, X86::PADDUSWrm, TB_ALIGN_16 }, 763 { X86::PADDWrr, X86::PADDWrm, TB_ALIGN_16 }, 764 { X86::PALIGNR128rr, X86::PALIGNR128rm, TB_ALIGN_16 }, 765 { X86::PANDNrr, X86::PANDNrm, TB_ALIGN_16 }, 766 { X86::PANDrr, X86::PANDrm, TB_ALIGN_16 }, 767 { X86::PAVGBrr, X86::PAVGBrm, TB_ALIGN_16 }, 768 { X86::PAVGWrr, X86::PAVGWrm, TB_ALIGN_16 }, 769 { X86::PBLENDWrri, X86::PBLENDWrmi, TB_ALIGN_16 }, 770 { X86::PCMPEQBrr, X86::PCMPEQBrm, TB_ALIGN_16 }, 771 { X86::PCMPEQDrr, X86::PCMPEQDrm, TB_ALIGN_16 }, 772 { X86::PCMPEQQrr, X86::PCMPEQQrm, TB_ALIGN_16 }, 773 { X86::PCMPEQWrr, X86::PCMPEQWrm, TB_ALIGN_16 }, 774 { X86::PCMPGTBrr, X86::PCMPGTBrm, TB_ALIGN_16 }, 775 { X86::PCMPGTDrr, X86::PCMPGTDrm, TB_ALIGN_16 }, 776 { X86::PCMPGTQrr, X86::PCMPGTQrm, TB_ALIGN_16 }, 777 { X86::PCMPGTWrr, X86::PCMPGTWrm, TB_ALIGN_16 }, 778 { X86::PHADDDrr, X86::PHADDDrm, TB_ALIGN_16 }, 779 { X86::PHADDWrr, X86::PHADDWrm, TB_ALIGN_16 }, 780 { X86::PHADDSWrr128, X86::PHADDSWrm128, TB_ALIGN_16 }, 781 { X86::PHSUBDrr, X86::PHSUBDrm, TB_ALIGN_16 }, 782 { X86::PHSUBSWrr128, X86::PHSUBSWrm128, TB_ALIGN_16 }, 783 { X86::PHSUBWrr, X86::PHSUBWrm, TB_ALIGN_16 }, 784 { X86::PINSRWrri, X86::PINSRWrmi, TB_ALIGN_16 }, 785 { X86::PMADDUBSWrr128, X86::PMADDUBSWrm128, TB_ALIGN_16 }, 786 { X86::PMADDWDrr, X86::PMADDWDrm, TB_ALIGN_16 }, 787 { X86::PMAXSWrr, X86::PMAXSWrm, TB_ALIGN_16 }, 788 { X86::PMAXUBrr, X86::PMAXUBrm, TB_ALIGN_16 }, 789 { X86::PMINSWrr, X86::PMINSWrm, TB_ALIGN_16 }, 790 { X86::PMINUBrr, X86::PMINUBrm, TB_ALIGN_16 }, 791 { X86::PMINSBrr, X86::PMINSBrm, TB_ALIGN_16 }, 792 { X86::PMINSDrr, X86::PMINSDrm, TB_ALIGN_16 }, 793 { X86::PMINUDrr, X86::PMINUDrm, TB_ALIGN_16 }, 794 { X86::PMINUWrr, X86::PMINUWrm, TB_ALIGN_16 }, 795 { X86::PMAXSBrr, X86::PMAXSBrm, TB_ALIGN_16 }, 796 { X86::PMAXSDrr, X86::PMAXSDrm, TB_ALIGN_16 }, 797 { X86::PMAXUDrr, X86::PMAXUDrm, TB_ALIGN_16 }, 798 { X86::PMAXUWrr, X86::PMAXUWrm, TB_ALIGN_16 }, 799 { X86::PMULDQrr, X86::PMULDQrm, TB_ALIGN_16 }, 800 { X86::PMULHRSWrr128, X86::PMULHRSWrm128, TB_ALIGN_16 }, 801 { X86::PMULHUWrr, X86::PMULHUWrm, TB_ALIGN_16 }, 802 { X86::PMULHWrr, X86::PMULHWrm, TB_ALIGN_16 }, 803 { X86::PMULLDrr, X86::PMULLDrm, TB_ALIGN_16 }, 804 { X86::PMULLWrr, X86::PMULLWrm, TB_ALIGN_16 }, 805 { X86::PMULUDQrr, X86::PMULUDQrm, TB_ALIGN_16 }, 806 { X86::PORrr, X86::PORrm, TB_ALIGN_16 }, 807 { X86::PSADBWrr, X86::PSADBWrm, TB_ALIGN_16 }, 808 { X86::PSHUFBrr, X86::PSHUFBrm, TB_ALIGN_16 }, 809 { X86::PSIGNBrr, X86::PSIGNBrm, TB_ALIGN_16 }, 810 { X86::PSIGNWrr, X86::PSIGNWrm, TB_ALIGN_16 }, 811 { X86::PSIGNDrr, X86::PSIGNDrm, TB_ALIGN_16 }, 812 { X86::PSLLDrr, X86::PSLLDrm, TB_ALIGN_16 }, 813 { X86::PSLLQrr, X86::PSLLQrm, TB_ALIGN_16 }, 814 { X86::PSLLWrr, X86::PSLLWrm, TB_ALIGN_16 }, 815 { X86::PSRADrr, X86::PSRADrm, TB_ALIGN_16 }, 816 { X86::PSRAWrr, X86::PSRAWrm, TB_ALIGN_16 }, 817 { X86::PSRLDrr, X86::PSRLDrm, TB_ALIGN_16 }, 818 { X86::PSRLQrr, X86::PSRLQrm, TB_ALIGN_16 }, 819 { X86::PSRLWrr, X86::PSRLWrm, TB_ALIGN_16 }, 820 { X86::PSUBBrr, X86::PSUBBrm, TB_ALIGN_16 }, 821 { X86::PSUBDrr, X86::PSUBDrm, TB_ALIGN_16 }, 822 { X86::PSUBSBrr, X86::PSUBSBrm, TB_ALIGN_16 }, 823 { X86::PSUBSWrr, X86::PSUBSWrm, TB_ALIGN_16 }, 824 { X86::PSUBWrr, X86::PSUBWrm, TB_ALIGN_16 }, 825 { X86::PUNPCKHBWrr, X86::PUNPCKHBWrm, TB_ALIGN_16 }, 826 { X86::PUNPCKHDQrr, X86::PUNPCKHDQrm, TB_ALIGN_16 }, 827 { X86::PUNPCKHQDQrr, X86::PUNPCKHQDQrm, TB_ALIGN_16 }, 828 { X86::PUNPCKHWDrr, X86::PUNPCKHWDrm, TB_ALIGN_16 }, 829 { X86::PUNPCKLBWrr, X86::PUNPCKLBWrm, TB_ALIGN_16 }, 830 { X86::PUNPCKLDQrr, X86::PUNPCKLDQrm, TB_ALIGN_16 }, 831 { X86::PUNPCKLQDQrr, X86::PUNPCKLQDQrm, TB_ALIGN_16 }, 832 { X86::PUNPCKLWDrr, X86::PUNPCKLWDrm, TB_ALIGN_16 }, 833 { X86::PXORrr, X86::PXORrm, TB_ALIGN_16 }, 834 { X86::SBB32rr, X86::SBB32rm, 0 }, 835 { X86::SBB64rr, X86::SBB64rm, 0 }, 836 { X86::SHUFPDrri, X86::SHUFPDrmi, TB_ALIGN_16 }, 837 { X86::SHUFPSrri, X86::SHUFPSrmi, TB_ALIGN_16 }, 838 { X86::SUB16rr, X86::SUB16rm, 0 }, 839 { X86::SUB32rr, X86::SUB32rm, 0 }, 840 { X86::SUB64rr, X86::SUB64rm, 0 }, 841 { X86::SUB8rr, X86::SUB8rm, 0 }, 842 { X86::SUBPDrr, X86::SUBPDrm, TB_ALIGN_16 }, 843 { X86::SUBPSrr, X86::SUBPSrm, TB_ALIGN_16 }, 844 { X86::SUBSDrr, X86::SUBSDrm, 0 }, 845 { X86::SUBSSrr, X86::SUBSSrm, 0 }, 846 // FIXME: TEST*rr -> swapped operand of TEST*mr. 847 { X86::UNPCKHPDrr, X86::UNPCKHPDrm, TB_ALIGN_16 }, 848 { X86::UNPCKHPSrr, X86::UNPCKHPSrm, TB_ALIGN_16 }, 849 { X86::UNPCKLPDrr, X86::UNPCKLPDrm, TB_ALIGN_16 }, 850 { X86::UNPCKLPSrr, X86::UNPCKLPSrm, TB_ALIGN_16 }, 851 { X86::XOR16rr, X86::XOR16rm, 0 }, 852 { X86::XOR32rr, X86::XOR32rm, 0 }, 853 { X86::XOR64rr, X86::XOR64rm, 0 }, 854 { X86::XOR8rr, X86::XOR8rm, 0 }, 855 { X86::XORPDrr, X86::XORPDrm, TB_ALIGN_16 }, 856 { X86::XORPSrr, X86::XORPSrm, TB_ALIGN_16 }, 857 // AVX 128-bit versions of foldable instructions 858 { X86::VCVTSD2SSrr, X86::VCVTSD2SSrm, 0 }, 859 { X86::Int_VCVTSD2SSrr, X86::Int_VCVTSD2SSrm, 0 }, 860 { X86::VCVTSI2SD64rr, X86::VCVTSI2SD64rm, 0 }, 861 { X86::Int_VCVTSI2SD64rr, X86::Int_VCVTSI2SD64rm, 0 }, 862 { X86::VCVTSI2SDrr, X86::VCVTSI2SDrm, 0 }, 863 { X86::Int_VCVTSI2SDrr, X86::Int_VCVTSI2SDrm, 0 }, 864 { X86::VCVTSI2SS64rr, X86::VCVTSI2SS64rm, 0 }, 865 { X86::Int_VCVTSI2SS64rr, X86::Int_VCVTSI2SS64rm, 0 }, 866 { X86::VCVTSI2SSrr, X86::VCVTSI2SSrm, 0 }, 867 { X86::Int_VCVTSI2SSrr, X86::Int_VCVTSI2SSrm, 0 }, 868 { X86::VCVTSS2SDrr, X86::VCVTSS2SDrm, 0 }, 869 { X86::Int_VCVTSS2SDrr, X86::Int_VCVTSS2SDrm, 0 }, 870 { X86::VCVTTPD2DQrr, X86::VCVTTPD2DQXrm, 0 }, 871 { X86::VCVTTPS2DQrr, X86::VCVTTPS2DQrm, 0 }, 872 { X86::VRSQRTSSr, X86::VRSQRTSSm, 0 }, 873 { X86::VSQRTSDr, X86::VSQRTSDm, 0 }, 874 { X86::VSQRTSSr, X86::VSQRTSSm, 0 }, 875 { X86::VADDPDrr, X86::VADDPDrm, 0 }, 876 { X86::VADDPSrr, X86::VADDPSrm, 0 }, 877 { X86::VADDSDrr, X86::VADDSDrm, 0 }, 878 { X86::VADDSSrr, X86::VADDSSrm, 0 }, 879 { X86::VADDSUBPDrr, X86::VADDSUBPDrm, 0 }, 880 { X86::VADDSUBPSrr, X86::VADDSUBPSrm, 0 }, 881 { X86::VANDNPDrr, X86::VANDNPDrm, 0 }, 882 { X86::VANDNPSrr, X86::VANDNPSrm, 0 }, 883 { X86::VANDPDrr, X86::VANDPDrm, 0 }, 884 { X86::VANDPSrr, X86::VANDPSrm, 0 }, 885 { X86::VBLENDPDrri, X86::VBLENDPDrmi, 0 }, 886 { X86::VBLENDPSrri, X86::VBLENDPSrmi, 0 }, 887 { X86::VBLENDVPDrr, X86::VBLENDVPDrm, 0 }, 888 { X86::VBLENDVPSrr, X86::VBLENDVPSrm, 0 }, 889 { X86::VCMPPDrri, X86::VCMPPDrmi, 0 }, 890 { X86::VCMPPSrri, X86::VCMPPSrmi, 0 }, 891 { X86::VCMPSDrr, X86::VCMPSDrm, 0 }, 892 { X86::VCMPSSrr, X86::VCMPSSrm, 0 }, 893 { X86::VDIVPDrr, X86::VDIVPDrm, 0 }, 894 { X86::VDIVPSrr, X86::VDIVPSrm, 0 }, 895 { X86::VDIVSDrr, X86::VDIVSDrm, 0 }, 896 { X86::VDIVSSrr, X86::VDIVSSrm, 0 }, 897 { X86::VFsANDNPDrr, X86::VFsANDNPDrm, TB_ALIGN_16 }, 898 { X86::VFsANDNPSrr, X86::VFsANDNPSrm, TB_ALIGN_16 }, 899 { X86::VFsANDPDrr, X86::VFsANDPDrm, TB_ALIGN_16 }, 900 { X86::VFsANDPSrr, X86::VFsANDPSrm, TB_ALIGN_16 }, 901 { X86::VFsORPDrr, X86::VFsORPDrm, TB_ALIGN_16 }, 902 { X86::VFsORPSrr, X86::VFsORPSrm, TB_ALIGN_16 }, 903 { X86::VFsXORPDrr, X86::VFsXORPDrm, TB_ALIGN_16 }, 904 { X86::VFsXORPSrr, X86::VFsXORPSrm, TB_ALIGN_16 }, 905 { X86::VHADDPDrr, X86::VHADDPDrm, 0 }, 906 { X86::VHADDPSrr, X86::VHADDPSrm, 0 }, 907 { X86::VHSUBPDrr, X86::VHSUBPDrm, 0 }, 908 { X86::VHSUBPSrr, X86::VHSUBPSrm, 0 }, 909 { X86::Int_VCMPSDrr, X86::Int_VCMPSDrm, 0 }, 910 { X86::Int_VCMPSSrr, X86::Int_VCMPSSrm, 0 }, 911 { X86::VMAXPDrr, X86::VMAXPDrm, 0 }, 912 { X86::VMAXPSrr, X86::VMAXPSrm, 0 }, 913 { X86::VMAXSDrr, X86::VMAXSDrm, 0 }, 914 { X86::VMAXSSrr, X86::VMAXSSrm, 0 }, 915 { X86::VMINPDrr, X86::VMINPDrm, 0 }, 916 { X86::VMINPSrr, X86::VMINPSrm, 0 }, 917 { X86::VMINSDrr, X86::VMINSDrm, 0 }, 918 { X86::VMINSSrr, X86::VMINSSrm, 0 }, 919 { X86::VMPSADBWrri, X86::VMPSADBWrmi, 0 }, 920 { X86::VMULPDrr, X86::VMULPDrm, 0 }, 921 { X86::VMULPSrr, X86::VMULPSrm, 0 }, 922 { X86::VMULSDrr, X86::VMULSDrm, 0 }, 923 { X86::VMULSSrr, X86::VMULSSrm, 0 }, 924 { X86::VORPDrr, X86::VORPDrm, 0 }, 925 { X86::VORPSrr, X86::VORPSrm, 0 }, 926 { X86::VPACKSSDWrr, X86::VPACKSSDWrm, 0 }, 927 { X86::VPACKSSWBrr, X86::VPACKSSWBrm, 0 }, 928 { X86::VPACKUSDWrr, X86::VPACKUSDWrm, 0 }, 929 { X86::VPACKUSWBrr, X86::VPACKUSWBrm, 0 }, 930 { X86::VPADDBrr, X86::VPADDBrm, 0 }, 931 { X86::VPADDDrr, X86::VPADDDrm, 0 }, 932 { X86::VPADDQrr, X86::VPADDQrm, 0 }, 933 { X86::VPADDSBrr, X86::VPADDSBrm, 0 }, 934 { X86::VPADDSWrr, X86::VPADDSWrm, 0 }, 935 { X86::VPADDUSBrr, X86::VPADDUSBrm, 0 }, 936 { X86::VPADDUSWrr, X86::VPADDUSWrm, 0 }, 937 { X86::VPADDWrr, X86::VPADDWrm, 0 }, 938 { X86::VPALIGNR128rr, X86::VPALIGNR128rm, 0 }, 939 { X86::VPANDNrr, X86::VPANDNrm, 0 }, 940 { X86::VPANDrr, X86::VPANDrm, 0 }, 941 { X86::VPAVGBrr, X86::VPAVGBrm, 0 }, 942 { X86::VPAVGWrr, X86::VPAVGWrm, 0 }, 943 { X86::VPBLENDWrri, X86::VPBLENDWrmi, 0 }, 944 { X86::VPCMPEQBrr, X86::VPCMPEQBrm, 0 }, 945 { X86::VPCMPEQDrr, X86::VPCMPEQDrm, 0 }, 946 { X86::VPCMPEQQrr, X86::VPCMPEQQrm, 0 }, 947 { X86::VPCMPEQWrr, X86::VPCMPEQWrm, 0 }, 948 { X86::VPCMPGTBrr, X86::VPCMPGTBrm, 0 }, 949 { X86::VPCMPGTDrr, X86::VPCMPGTDrm, 0 }, 950 { X86::VPCMPGTQrr, X86::VPCMPGTQrm, 0 }, 951 { X86::VPCMPGTWrr, X86::VPCMPGTWrm, 0 }, 952 { X86::VPHADDDrr, X86::VPHADDDrm, 0 }, 953 { X86::VPHADDSWrr128, X86::VPHADDSWrm128, 0 }, 954 { X86::VPHADDWrr, X86::VPHADDWrm, 0 }, 955 { X86::VPHSUBDrr, X86::VPHSUBDrm, 0 }, 956 { X86::VPHSUBSWrr128, X86::VPHSUBSWrm128, 0 }, 957 { X86::VPHSUBWrr, X86::VPHSUBWrm, 0 }, 958 { X86::VPERMILPDrr, X86::VPERMILPDrm, 0 }, 959 { X86::VPERMILPSrr, X86::VPERMILPSrm, 0 }, 960 { X86::VPINSRWrri, X86::VPINSRWrmi, 0 }, 961 { X86::VPMADDUBSWrr128, X86::VPMADDUBSWrm128, 0 }, 962 { X86::VPMADDWDrr, X86::VPMADDWDrm, 0 }, 963 { X86::VPMAXSWrr, X86::VPMAXSWrm, 0 }, 964 { X86::VPMAXUBrr, X86::VPMAXUBrm, 0 }, 965 { X86::VPMINSWrr, X86::VPMINSWrm, 0 }, 966 { X86::VPMINUBrr, X86::VPMINUBrm, 0 }, 967 { X86::VPMINSBrr, X86::VPMINSBrm, 0 }, 968 { X86::VPMINSDrr, X86::VPMINSDrm, 0 }, 969 { X86::VPMINUDrr, X86::VPMINUDrm, 0 }, 970 { X86::VPMINUWrr, X86::VPMINUWrm, 0 }, 971 { X86::VPMAXSBrr, X86::VPMAXSBrm, 0 }, 972 { X86::VPMAXSDrr, X86::VPMAXSDrm, 0 }, 973 { X86::VPMAXUDrr, X86::VPMAXUDrm, 0 }, 974 { X86::VPMAXUWrr, X86::VPMAXUWrm, 0 }, 975 { X86::VPMULDQrr, X86::VPMULDQrm, 0 }, 976 { X86::VPMULHRSWrr128, X86::VPMULHRSWrm128, 0 }, 977 { X86::VPMULHUWrr, X86::VPMULHUWrm, 0 }, 978 { X86::VPMULHWrr, X86::VPMULHWrm, 0 }, 979 { X86::VPMULLDrr, X86::VPMULLDrm, 0 }, 980 { X86::VPMULLWrr, X86::VPMULLWrm, 0 }, 981 { X86::VPMULUDQrr, X86::VPMULUDQrm, 0 }, 982 { X86::VPORrr, X86::VPORrm, 0 }, 983 { X86::VPSADBWrr, X86::VPSADBWrm, 0 }, 984 { X86::VPSHUFBrr, X86::VPSHUFBrm, 0 }, 985 { X86::VPSIGNBrr, X86::VPSIGNBrm, 0 }, 986 { X86::VPSIGNWrr, X86::VPSIGNWrm, 0 }, 987 { X86::VPSIGNDrr, X86::VPSIGNDrm, 0 }, 988 { X86::VPSLLDrr, X86::VPSLLDrm, 0 }, 989 { X86::VPSLLQrr, X86::VPSLLQrm, 0 }, 990 { X86::VPSLLWrr, X86::VPSLLWrm, 0 }, 991 { X86::VPSRADrr, X86::VPSRADrm, 0 }, 992 { X86::VPSRAWrr, X86::VPSRAWrm, 0 }, 993 { X86::VPSRLDrr, X86::VPSRLDrm, 0 }, 994 { X86::VPSRLQrr, X86::VPSRLQrm, 0 }, 995 { X86::VPSRLWrr, X86::VPSRLWrm, 0 }, 996 { X86::VPSUBBrr, X86::VPSUBBrm, 0 }, 997 { X86::VPSUBDrr, X86::VPSUBDrm, 0 }, 998 { X86::VPSUBSBrr, X86::VPSUBSBrm, 0 }, 999 { X86::VPSUBSWrr, X86::VPSUBSWrm, 0 }, 1000 { X86::VPSUBWrr, X86::VPSUBWrm, 0 }, 1001 { X86::VPUNPCKHBWrr, X86::VPUNPCKHBWrm, 0 }, 1002 { X86::VPUNPCKHDQrr, X86::VPUNPCKHDQrm, 0 }, 1003 { X86::VPUNPCKHQDQrr, X86::VPUNPCKHQDQrm, 0 }, 1004 { X86::VPUNPCKHWDrr, X86::VPUNPCKHWDrm, 0 }, 1005 { X86::VPUNPCKLBWrr, X86::VPUNPCKLBWrm, 0 }, 1006 { X86::VPUNPCKLDQrr, X86::VPUNPCKLDQrm, 0 }, 1007 { X86::VPUNPCKLQDQrr, X86::VPUNPCKLQDQrm, 0 }, 1008 { X86::VPUNPCKLWDrr, X86::VPUNPCKLWDrm, 0 }, 1009 { X86::VPXORrr, X86::VPXORrm, 0 }, 1010 { X86::VSHUFPDrri, X86::VSHUFPDrmi, 0 }, 1011 { X86::VSHUFPSrri, X86::VSHUFPSrmi, 0 }, 1012 { X86::VSUBPDrr, X86::VSUBPDrm, 0 }, 1013 { X86::VSUBPSrr, X86::VSUBPSrm, 0 }, 1014 { X86::VSUBSDrr, X86::VSUBSDrm, 0 }, 1015 { X86::VSUBSSrr, X86::VSUBSSrm, 0 }, 1016 { X86::VUNPCKHPDrr, X86::VUNPCKHPDrm, 0 }, 1017 { X86::VUNPCKHPSrr, X86::VUNPCKHPSrm, 0 }, 1018 { X86::VUNPCKLPDrr, X86::VUNPCKLPDrm, 0 }, 1019 { X86::VUNPCKLPSrr, X86::VUNPCKLPSrm, 0 }, 1020 { X86::VXORPDrr, X86::VXORPDrm, 0 }, 1021 { X86::VXORPSrr, X86::VXORPSrm, 0 }, 1022 // AVX 256-bit foldable instructions 1023 { X86::VADDPDYrr, X86::VADDPDYrm, 0 }, 1024 { X86::VADDPSYrr, X86::VADDPSYrm, 0 }, 1025 { X86::VADDSUBPDYrr, X86::VADDSUBPDYrm, 0 }, 1026 { X86::VADDSUBPSYrr, X86::VADDSUBPSYrm, 0 }, 1027 { X86::VANDNPDYrr, X86::VANDNPDYrm, 0 }, 1028 { X86::VANDNPSYrr, X86::VANDNPSYrm, 0 }, 1029 { X86::VANDPDYrr, X86::VANDPDYrm, 0 }, 1030 { X86::VANDPSYrr, X86::VANDPSYrm, 0 }, 1031 { X86::VBLENDPDYrri, X86::VBLENDPDYrmi, 0 }, 1032 { X86::VBLENDPSYrri, X86::VBLENDPSYrmi, 0 }, 1033 { X86::VBLENDVPDYrr, X86::VBLENDVPDYrm, 0 }, 1034 { X86::VBLENDVPSYrr, X86::VBLENDVPSYrm, 0 }, 1035 { X86::VCMPPDYrri, X86::VCMPPDYrmi, 0 }, 1036 { X86::VCMPPSYrri, X86::VCMPPSYrmi, 0 }, 1037 { X86::VDIVPDYrr, X86::VDIVPDYrm, 0 }, 1038 { X86::VDIVPSYrr, X86::VDIVPSYrm, 0 }, 1039 { X86::VHADDPDYrr, X86::VHADDPDYrm, 0 }, 1040 { X86::VHADDPSYrr, X86::VHADDPSYrm, 0 }, 1041 { X86::VHSUBPDYrr, X86::VHSUBPDYrm, 0 }, 1042 { X86::VHSUBPSYrr, X86::VHSUBPSYrm, 0 }, 1043 { X86::VINSERTF128rr, X86::VINSERTF128rm, 0 }, 1044 { X86::VMAXPDYrr, X86::VMAXPDYrm, 0 }, 1045 { X86::VMAXPSYrr, X86::VMAXPSYrm, 0 }, 1046 { X86::VMINPDYrr, X86::VMINPDYrm, 0 }, 1047 { X86::VMINPSYrr, X86::VMINPSYrm, 0 }, 1048 { X86::VMULPDYrr, X86::VMULPDYrm, 0 }, 1049 { X86::VMULPSYrr, X86::VMULPSYrm, 0 }, 1050 { X86::VORPDYrr, X86::VORPDYrm, 0 }, 1051 { X86::VORPSYrr, X86::VORPSYrm, 0 }, 1052 { X86::VPERM2F128rr, X86::VPERM2F128rm, 0 }, 1053 { X86::VPERMILPDYrr, X86::VPERMILPDYrm, 0 }, 1054 { X86::VPERMILPSYrr, X86::VPERMILPSYrm, 0 }, 1055 { X86::VSHUFPDYrri, X86::VSHUFPDYrmi, 0 }, 1056 { X86::VSHUFPSYrri, X86::VSHUFPSYrmi, 0 }, 1057 { X86::VSUBPDYrr, X86::VSUBPDYrm, 0 }, 1058 { X86::VSUBPSYrr, X86::VSUBPSYrm, 0 }, 1059 { X86::VUNPCKHPDYrr, X86::VUNPCKHPDYrm, 0 }, 1060 { X86::VUNPCKHPSYrr, X86::VUNPCKHPSYrm, 0 }, 1061 { X86::VUNPCKLPDYrr, X86::VUNPCKLPDYrm, 0 }, 1062 { X86::VUNPCKLPSYrr, X86::VUNPCKLPSYrm, 0 }, 1063 { X86::VXORPDYrr, X86::VXORPDYrm, 0 }, 1064 { X86::VXORPSYrr, X86::VXORPSYrm, 0 }, 1065 // AVX2 foldable instructions 1066 { X86::VINSERTI128rr, X86::VINSERTI128rm, 0 }, 1067 { X86::VPACKSSDWYrr, X86::VPACKSSDWYrm, 0 }, 1068 { X86::VPACKSSWBYrr, X86::VPACKSSWBYrm, 0 }, 1069 { X86::VPACKUSDWYrr, X86::VPACKUSDWYrm, 0 }, 1070 { X86::VPACKUSWBYrr, X86::VPACKUSWBYrm, 0 }, 1071 { X86::VPADDBYrr, X86::VPADDBYrm, 0 }, 1072 { X86::VPADDDYrr, X86::VPADDDYrm, 0 }, 1073 { X86::VPADDQYrr, X86::VPADDQYrm, 0 }, 1074 { X86::VPADDSBYrr, X86::VPADDSBYrm, 0 }, 1075 { X86::VPADDSWYrr, X86::VPADDSWYrm, 0 }, 1076 { X86::VPADDUSBYrr, X86::VPADDUSBYrm, 0 }, 1077 { X86::VPADDUSWYrr, X86::VPADDUSWYrm, 0 }, 1078 { X86::VPADDWYrr, X86::VPADDWYrm, 0 }, 1079 { X86::VPALIGNR256rr, X86::VPALIGNR256rm, 0 }, 1080 { X86::VPANDNYrr, X86::VPANDNYrm, 0 }, 1081 { X86::VPANDYrr, X86::VPANDYrm, 0 }, 1082 { X86::VPAVGBYrr, X86::VPAVGBYrm, 0 }, 1083 { X86::VPAVGWYrr, X86::VPAVGWYrm, 0 }, 1084 { X86::VPBLENDDrri, X86::VPBLENDDrmi, 0 }, 1085 { X86::VPBLENDDYrri, X86::VPBLENDDYrmi, 0 }, 1086 { X86::VPBLENDWYrri, X86::VPBLENDWYrmi, 0 }, 1087 { X86::VPCMPEQBYrr, X86::VPCMPEQBYrm, 0 }, 1088 { X86::VPCMPEQDYrr, X86::VPCMPEQDYrm, 0 }, 1089 { X86::VPCMPEQQYrr, X86::VPCMPEQQYrm, 0 }, 1090 { X86::VPCMPEQWYrr, X86::VPCMPEQWYrm, 0 }, 1091 { X86::VPCMPGTBYrr, X86::VPCMPGTBYrm, 0 }, 1092 { X86::VPCMPGTDYrr, X86::VPCMPGTDYrm, 0 }, 1093 { X86::VPCMPGTQYrr, X86::VPCMPGTQYrm, 0 }, 1094 { X86::VPCMPGTWYrr, X86::VPCMPGTWYrm, 0 }, 1095 { X86::VPERM2I128rr, X86::VPERM2I128rm, 0 }, 1096 { X86::VPERMDYrr, X86::VPERMDYrm, 0 }, 1097 { X86::VPERMPDYri, X86::VPERMPDYmi, 0 }, 1098 { X86::VPERMPSYrr, X86::VPERMPSYrm, 0 }, 1099 { X86::VPERMQYri, X86::VPERMQYmi, 0 }, 1100 { X86::VPHADDDYrr, X86::VPHADDDYrm, 0 }, 1101 { X86::VPHADDSWrr256, X86::VPHADDSWrm256, 0 }, 1102 { X86::VPHADDWYrr, X86::VPHADDWYrm, 0 }, 1103 { X86::VPHSUBDYrr, X86::VPHSUBDYrm, 0 }, 1104 { X86::VPHSUBSWrr256, X86::VPHSUBSWrm256, 0 }, 1105 { X86::VPHSUBWYrr, X86::VPHSUBWYrm, 0 }, 1106 { X86::VPMADDUBSWrr256, X86::VPMADDUBSWrm256, 0 }, 1107 { X86::VPMADDWDYrr, X86::VPMADDWDYrm, 0 }, 1108 { X86::VPMAXSWYrr, X86::VPMAXSWYrm, 0 }, 1109 { X86::VPMAXUBYrr, X86::VPMAXUBYrm, 0 }, 1110 { X86::VPMINSWYrr, X86::VPMINSWYrm, 0 }, 1111 { X86::VPMINUBYrr, X86::VPMINUBYrm, 0 }, 1112 { X86::VPMINSBYrr, X86::VPMINSBYrm, 0 }, 1113 { X86::VPMINSDYrr, X86::VPMINSDYrm, 0 }, 1114 { X86::VPMINUDYrr, X86::VPMINUDYrm, 0 }, 1115 { X86::VPMINUWYrr, X86::VPMINUWYrm, 0 }, 1116 { X86::VPMAXSBYrr, X86::VPMAXSBYrm, 0 }, 1117 { X86::VPMAXSDYrr, X86::VPMAXSDYrm, 0 }, 1118 { X86::VPMAXUDYrr, X86::VPMAXUDYrm, 0 }, 1119 { X86::VPMAXUWYrr, X86::VPMAXUWYrm, 0 }, 1120 { X86::VMPSADBWYrri, X86::VMPSADBWYrmi, 0 }, 1121 { X86::VPMULDQYrr, X86::VPMULDQYrm, 0 }, 1122 { X86::VPMULHRSWrr256, X86::VPMULHRSWrm256, 0 }, 1123 { X86::VPMULHUWYrr, X86::VPMULHUWYrm, 0 }, 1124 { X86::VPMULHWYrr, X86::VPMULHWYrm, 0 }, 1125 { X86::VPMULLDYrr, X86::VPMULLDYrm, 0 }, 1126 { X86::VPMULLWYrr, X86::VPMULLWYrm, 0 }, 1127 { X86::VPMULUDQYrr, X86::VPMULUDQYrm, 0 }, 1128 { X86::VPORYrr, X86::VPORYrm, 0 }, 1129 { X86::VPSADBWYrr, X86::VPSADBWYrm, 0 }, 1130 { X86::VPSHUFBYrr, X86::VPSHUFBYrm, 0 }, 1131 { X86::VPSIGNBYrr, X86::VPSIGNBYrm, 0 }, 1132 { X86::VPSIGNWYrr, X86::VPSIGNWYrm, 0 }, 1133 { X86::VPSIGNDYrr, X86::VPSIGNDYrm, 0 }, 1134 { X86::VPSLLDYrr, X86::VPSLLDYrm, 0 }, 1135 { X86::VPSLLQYrr, X86::VPSLLQYrm, 0 }, 1136 { X86::VPSLLWYrr, X86::VPSLLWYrm, 0 }, 1137 { X86::VPSLLVDrr, X86::VPSLLVDrm, 0 }, 1138 { X86::VPSLLVDYrr, X86::VPSLLVDYrm, 0 }, 1139 { X86::VPSLLVQrr, X86::VPSLLVQrm, 0 }, 1140 { X86::VPSLLVQYrr, X86::VPSLLVQYrm, 0 }, 1141 { X86::VPSRADYrr, X86::VPSRADYrm, 0 }, 1142 { X86::VPSRAWYrr, X86::VPSRAWYrm, 0 }, 1143 { X86::VPSRAVDrr, X86::VPSRAVDrm, 0 }, 1144 { X86::VPSRAVDYrr, X86::VPSRAVDYrm, 0 }, 1145 { X86::VPSRLDYrr, X86::VPSRLDYrm, 0 }, 1146 { X86::VPSRLQYrr, X86::VPSRLQYrm, 0 }, 1147 { X86::VPSRLWYrr, X86::VPSRLWYrm, 0 }, 1148 { X86::VPSRLVDrr, X86::VPSRLVDrm, 0 }, 1149 { X86::VPSRLVDYrr, X86::VPSRLVDYrm, 0 }, 1150 { X86::VPSRLVQrr, X86::VPSRLVQrm, 0 }, 1151 { X86::VPSRLVQYrr, X86::VPSRLVQYrm, 0 }, 1152 { X86::VPSUBBYrr, X86::VPSUBBYrm, 0 }, 1153 { X86::VPSUBDYrr, X86::VPSUBDYrm, 0 }, 1154 { X86::VPSUBSBYrr, X86::VPSUBSBYrm, 0 }, 1155 { X86::VPSUBSWYrr, X86::VPSUBSWYrm, 0 }, 1156 { X86::VPSUBWYrr, X86::VPSUBWYrm, 0 }, 1157 { X86::VPUNPCKHBWYrr, X86::VPUNPCKHBWYrm, 0 }, 1158 { X86::VPUNPCKHDQYrr, X86::VPUNPCKHDQYrm, 0 }, 1159 { X86::VPUNPCKHQDQYrr, X86::VPUNPCKHQDQYrm, 0 }, 1160 { X86::VPUNPCKHWDYrr, X86::VPUNPCKHWDYrm, 0 }, 1161 { X86::VPUNPCKLBWYrr, X86::VPUNPCKLBWYrm, 0 }, 1162 { X86::VPUNPCKLDQYrr, X86::VPUNPCKLDQYrm, 0 }, 1163 { X86::VPUNPCKLQDQYrr, X86::VPUNPCKLQDQYrm, 0 }, 1164 { X86::VPUNPCKLWDYrr, X86::VPUNPCKLWDYrm, 0 }, 1165 { X86::VPXORYrr, X86::VPXORYrm, 0 }, 1166 // FIXME: add AVX 256-bit foldable instructions 1167 1168 // FMA4 foldable patterns 1169 { X86::VFMADDSS4rr, X86::VFMADDSS4mr, 0 }, 1170 { X86::VFMADDSD4rr, X86::VFMADDSD4mr, 0 }, 1171 { X86::VFMADDPS4rr, X86::VFMADDPS4mr, TB_ALIGN_16 }, 1172 { X86::VFMADDPD4rr, X86::VFMADDPD4mr, TB_ALIGN_16 }, 1173 { X86::VFMADDPS4rrY, X86::VFMADDPS4mrY, TB_ALIGN_32 }, 1174 { X86::VFMADDPD4rrY, X86::VFMADDPD4mrY, TB_ALIGN_32 }, 1175 { X86::VFNMADDSS4rr, X86::VFNMADDSS4mr, 0 }, 1176 { X86::VFNMADDSD4rr, X86::VFNMADDSD4mr, 0 }, 1177 { X86::VFNMADDPS4rr, X86::VFNMADDPS4mr, TB_ALIGN_16 }, 1178 { X86::VFNMADDPD4rr, X86::VFNMADDPD4mr, TB_ALIGN_16 }, 1179 { X86::VFNMADDPS4rrY, X86::VFNMADDPS4mrY, TB_ALIGN_32 }, 1180 { X86::VFNMADDPD4rrY, X86::VFNMADDPD4mrY, TB_ALIGN_32 }, 1181 { X86::VFMSUBSS4rr, X86::VFMSUBSS4mr, 0 }, 1182 { X86::VFMSUBSD4rr, X86::VFMSUBSD4mr, 0 }, 1183 { X86::VFMSUBPS4rr, X86::VFMSUBPS4mr, TB_ALIGN_16 }, 1184 { X86::VFMSUBPD4rr, X86::VFMSUBPD4mr, TB_ALIGN_16 }, 1185 { X86::VFMSUBPS4rrY, X86::VFMSUBPS4mrY, TB_ALIGN_32 }, 1186 { X86::VFMSUBPD4rrY, X86::VFMSUBPD4mrY, TB_ALIGN_32 }, 1187 { X86::VFNMSUBSS4rr, X86::VFNMSUBSS4mr, 0 }, 1188 { X86::VFNMSUBSD4rr, X86::VFNMSUBSD4mr, 0 }, 1189 { X86::VFNMSUBPS4rr, X86::VFNMSUBPS4mr, TB_ALIGN_16 }, 1190 { X86::VFNMSUBPD4rr, X86::VFNMSUBPD4mr, TB_ALIGN_16 }, 1191 { X86::VFNMSUBPS4rrY, X86::VFNMSUBPS4mrY, TB_ALIGN_32 }, 1192 { X86::VFNMSUBPD4rrY, X86::VFNMSUBPD4mrY, TB_ALIGN_32 }, 1193 { X86::VFMADDSUBPS4rr, X86::VFMADDSUBPS4mr, TB_ALIGN_16 }, 1194 { X86::VFMADDSUBPD4rr, X86::VFMADDSUBPD4mr, TB_ALIGN_16 }, 1195 { X86::VFMADDSUBPS4rrY, X86::VFMADDSUBPS4mrY, TB_ALIGN_32 }, 1196 { X86::VFMADDSUBPD4rrY, X86::VFMADDSUBPD4mrY, TB_ALIGN_32 }, 1197 { X86::VFMSUBADDPS4rr, X86::VFMSUBADDPS4mr, TB_ALIGN_16 }, 1198 { X86::VFMSUBADDPD4rr, X86::VFMSUBADDPD4mr, TB_ALIGN_16 }, 1199 { X86::VFMSUBADDPS4rrY, X86::VFMSUBADDPS4mrY, TB_ALIGN_32 }, 1200 { X86::VFMSUBADDPD4rrY, X86::VFMSUBADDPD4mrY, TB_ALIGN_32 }, 1201 1202 // BMI/BMI2 foldable instructions 1203 { X86::ANDN32rr, X86::ANDN32rm, 0 }, 1204 { X86::ANDN64rr, X86::ANDN64rm, 0 }, 1205 { X86::MULX32rr, X86::MULX32rm, 0 }, 1206 { X86::MULX64rr, X86::MULX64rm, 0 }, 1207 { X86::PDEP32rr, X86::PDEP32rm, 0 }, 1208 { X86::PDEP64rr, X86::PDEP64rm, 0 }, 1209 { X86::PEXT32rr, X86::PEXT32rm, 0 }, 1210 { X86::PEXT64rr, X86::PEXT64rm, 0 }, 1211 1212 // AVX-512 foldable instructions 1213 { X86::VPADDDZrr, X86::VPADDDZrm, 0 }, 1214 { X86::VPADDQZrr, X86::VPADDQZrm, 0 }, 1215 { X86::VADDPSZrr, X86::VADDPSZrm, 0 }, 1216 { X86::VADDPDZrr, X86::VADDPDZrm, 0 }, 1217 { X86::VSUBPSZrr, X86::VSUBPSZrm, 0 }, 1218 { X86::VSUBPDZrr, X86::VSUBPDZrm, 0 }, 1219 { X86::VMULPSZrr, X86::VMULPSZrm, 0 }, 1220 { X86::VMULPDZrr, X86::VMULPDZrm, 0 }, 1221 { X86::VDIVPSZrr, X86::VDIVPSZrm, 0 }, 1222 { X86::VDIVPDZrr, X86::VDIVPDZrm, 0 }, 1223 { X86::VMINPSZrr, X86::VMINPSZrm, 0 }, 1224 { X86::VMINPDZrr, X86::VMINPDZrm, 0 }, 1225 { X86::VMAXPSZrr, X86::VMAXPSZrm, 0 }, 1226 { X86::VMAXPDZrr, X86::VMAXPDZrm, 0 }, 1227 { X86::VPERMPDZri, X86::VPERMPDZmi, 0 }, 1228 { X86::VPERMPSZrr, X86::VPERMPSZrm, 0 }, 1229 { X86::VPSLLVDZrr, X86::VPSLLVDZrm, 0 }, 1230 { X86::VPSLLVQZrr, X86::VPSLLVQZrm, 0 }, 1231 { X86::VPSRAVDZrr, X86::VPSRAVDZrm, 0 }, 1232 { X86::VPSRLVDZrr, X86::VPSRLVDZrm, 0 }, 1233 { X86::VPSRLVQZrr, X86::VPSRLVQZrm, 0 }, 1234 { X86::VSHUFPDZrri, X86::VSHUFPDZrmi, 0 }, 1235 { X86::VSHUFPSZrri, X86::VSHUFPSZrmi, 0 }, 1236 { X86::VALIGNQrri, X86::VALIGNQrmi, 0 }, 1237 { X86::VALIGNDrri, X86::VALIGNDrmi, 0 }, 1238 1239 // AES foldable instructions 1240 { X86::AESDECLASTrr, X86::AESDECLASTrm, TB_ALIGN_16 }, 1241 { X86::AESDECrr, X86::AESDECrm, TB_ALIGN_16 }, 1242 { X86::AESENCLASTrr, X86::AESENCLASTrm, TB_ALIGN_16 }, 1243 { X86::AESENCrr, X86::AESENCrm, TB_ALIGN_16 }, 1244 { X86::VAESDECLASTrr, X86::VAESDECLASTrm, TB_ALIGN_16 }, 1245 { X86::VAESDECrr, X86::VAESDECrm, TB_ALIGN_16 }, 1246 { X86::VAESENCLASTrr, X86::VAESENCLASTrm, TB_ALIGN_16 }, 1247 { X86::VAESENCrr, X86::VAESENCrm, TB_ALIGN_16 }, 1248 1249 // SHA foldable instructions 1250 { X86::SHA1MSG1rr, X86::SHA1MSG1rm, TB_ALIGN_16 }, 1251 { X86::SHA1MSG2rr, X86::SHA1MSG2rm, TB_ALIGN_16 }, 1252 { X86::SHA1NEXTErr, X86::SHA1NEXTErm, TB_ALIGN_16 }, 1253 { X86::SHA1RNDS4rri, X86::SHA1RNDS4rmi, TB_ALIGN_16 }, 1254 { X86::SHA256MSG1rr, X86::SHA256MSG1rm, TB_ALIGN_16 }, 1255 { X86::SHA256MSG2rr, X86::SHA256MSG2rm, TB_ALIGN_16 }, 1256 { X86::SHA256RNDS2rr, X86::SHA256RNDS2rm, TB_ALIGN_16 }, 1257 }; 1258 1259 for (unsigned i = 0, e = array_lengthof(OpTbl2); i != e; ++i) { 1260 unsigned RegOp = OpTbl2[i].RegOp; 1261 unsigned MemOp = OpTbl2[i].MemOp; 1262 unsigned Flags = OpTbl2[i].Flags; 1263 AddTableEntry(RegOp2MemOpTable2, MemOp2RegOpTable, 1264 RegOp, MemOp, 1265 // Index 2, folded load 1266 Flags | TB_INDEX_2 | TB_FOLDED_LOAD); 1267 } 1268 1269 static const X86OpTblEntry OpTbl3[] = { 1270 // FMA foldable instructions 1271 { X86::VFMADDSSr231r, X86::VFMADDSSr231m, 0 }, 1272 { X86::VFMADDSDr231r, X86::VFMADDSDr231m, 0 }, 1273 { X86::VFMADDSSr132r, X86::VFMADDSSr132m, 0 }, 1274 { X86::VFMADDSDr132r, X86::VFMADDSDr132m, 0 }, 1275 { X86::VFMADDSSr213r, X86::VFMADDSSr213m, 0 }, 1276 { X86::VFMADDSDr213r, X86::VFMADDSDr213m, 0 }, 1277 1278 { X86::VFMADDPSr231r, X86::VFMADDPSr231m, TB_ALIGN_16 }, 1279 { X86::VFMADDPDr231r, X86::VFMADDPDr231m, TB_ALIGN_16 }, 1280 { X86::VFMADDPSr132r, X86::VFMADDPSr132m, TB_ALIGN_16 }, 1281 { X86::VFMADDPDr132r, X86::VFMADDPDr132m, TB_ALIGN_16 }, 1282 { X86::VFMADDPSr213r, X86::VFMADDPSr213m, TB_ALIGN_16 }, 1283 { X86::VFMADDPDr213r, X86::VFMADDPDr213m, TB_ALIGN_16 }, 1284 { X86::VFMADDPSr231rY, X86::VFMADDPSr231mY, TB_ALIGN_32 }, 1285 { X86::VFMADDPDr231rY, X86::VFMADDPDr231mY, TB_ALIGN_32 }, 1286 { X86::VFMADDPSr132rY, X86::VFMADDPSr132mY, TB_ALIGN_32 }, 1287 { X86::VFMADDPDr132rY, X86::VFMADDPDr132mY, TB_ALIGN_32 }, 1288 { X86::VFMADDPSr213rY, X86::VFMADDPSr213mY, TB_ALIGN_32 }, 1289 { X86::VFMADDPDr213rY, X86::VFMADDPDr213mY, TB_ALIGN_32 }, 1290 1291 { X86::VFNMADDSSr231r, X86::VFNMADDSSr231m, 0 }, 1292 { X86::VFNMADDSDr231r, X86::VFNMADDSDr231m, 0 }, 1293 { X86::VFNMADDSSr132r, X86::VFNMADDSSr132m, 0 }, 1294 { X86::VFNMADDSDr132r, X86::VFNMADDSDr132m, 0 }, 1295 { X86::VFNMADDSSr213r, X86::VFNMADDSSr213m, 0 }, 1296 { X86::VFNMADDSDr213r, X86::VFNMADDSDr213m, 0 }, 1297 1298 { X86::VFNMADDPSr231r, X86::VFNMADDPSr231m, TB_ALIGN_16 }, 1299 { X86::VFNMADDPDr231r, X86::VFNMADDPDr231m, TB_ALIGN_16 }, 1300 { X86::VFNMADDPSr132r, X86::VFNMADDPSr132m, TB_ALIGN_16 }, 1301 { X86::VFNMADDPDr132r, X86::VFNMADDPDr132m, TB_ALIGN_16 }, 1302 { X86::VFNMADDPSr213r, X86::VFNMADDPSr213m, TB_ALIGN_16 }, 1303 { X86::VFNMADDPDr213r, X86::VFNMADDPDr213m, TB_ALIGN_16 }, 1304 { X86::VFNMADDPSr231rY, X86::VFNMADDPSr231mY, TB_ALIGN_32 }, 1305 { X86::VFNMADDPDr231rY, X86::VFNMADDPDr231mY, TB_ALIGN_32 }, 1306 { X86::VFNMADDPSr132rY, X86::VFNMADDPSr132mY, TB_ALIGN_32 }, 1307 { X86::VFNMADDPDr132rY, X86::VFNMADDPDr132mY, TB_ALIGN_32 }, 1308 { X86::VFNMADDPSr213rY, X86::VFNMADDPSr213mY, TB_ALIGN_32 }, 1309 { X86::VFNMADDPDr213rY, X86::VFNMADDPDr213mY, TB_ALIGN_32 }, 1310 1311 { X86::VFMSUBSSr231r, X86::VFMSUBSSr231m, 0 }, 1312 { X86::VFMSUBSDr231r, X86::VFMSUBSDr231m, 0 }, 1313 { X86::VFMSUBSSr132r, X86::VFMSUBSSr132m, 0 }, 1314 { X86::VFMSUBSDr132r, X86::VFMSUBSDr132m, 0 }, 1315 { X86::VFMSUBSSr213r, X86::VFMSUBSSr213m, 0 }, 1316 { X86::VFMSUBSDr213r, X86::VFMSUBSDr213m, 0 }, 1317 1318 { X86::VFMSUBPSr231r, X86::VFMSUBPSr231m, TB_ALIGN_16 }, 1319 { X86::VFMSUBPDr231r, X86::VFMSUBPDr231m, TB_ALIGN_16 }, 1320 { X86::VFMSUBPSr132r, X86::VFMSUBPSr132m, TB_ALIGN_16 }, 1321 { X86::VFMSUBPDr132r, X86::VFMSUBPDr132m, TB_ALIGN_16 }, 1322 { X86::VFMSUBPSr213r, X86::VFMSUBPSr213m, TB_ALIGN_16 }, 1323 { X86::VFMSUBPDr213r, X86::VFMSUBPDr213m, TB_ALIGN_16 }, 1324 { X86::VFMSUBPSr231rY, X86::VFMSUBPSr231mY, TB_ALIGN_32 }, 1325 { X86::VFMSUBPDr231rY, X86::VFMSUBPDr231mY, TB_ALIGN_32 }, 1326 { X86::VFMSUBPSr132rY, X86::VFMSUBPSr132mY, TB_ALIGN_32 }, 1327 { X86::VFMSUBPDr132rY, X86::VFMSUBPDr132mY, TB_ALIGN_32 }, 1328 { X86::VFMSUBPSr213rY, X86::VFMSUBPSr213mY, TB_ALIGN_32 }, 1329 { X86::VFMSUBPDr213rY, X86::VFMSUBPDr213mY, TB_ALIGN_32 }, 1330 1331 { X86::VFNMSUBSSr231r, X86::VFNMSUBSSr231m, 0 }, 1332 { X86::VFNMSUBSDr231r, X86::VFNMSUBSDr231m, 0 }, 1333 { X86::VFNMSUBSSr132r, X86::VFNMSUBSSr132m, 0 }, 1334 { X86::VFNMSUBSDr132r, X86::VFNMSUBSDr132m, 0 }, 1335 { X86::VFNMSUBSSr213r, X86::VFNMSUBSSr213m, 0 }, 1336 { X86::VFNMSUBSDr213r, X86::VFNMSUBSDr213m, 0 }, 1337 1338 { X86::VFNMSUBPSr231r, X86::VFNMSUBPSr231m, TB_ALIGN_16 }, 1339 { X86::VFNMSUBPDr231r, X86::VFNMSUBPDr231m, TB_ALIGN_16 }, 1340 { X86::VFNMSUBPSr132r, X86::VFNMSUBPSr132m, TB_ALIGN_16 }, 1341 { X86::VFNMSUBPDr132r, X86::VFNMSUBPDr132m, TB_ALIGN_16 }, 1342 { X86::VFNMSUBPSr213r, X86::VFNMSUBPSr213m, TB_ALIGN_16 }, 1343 { X86::VFNMSUBPDr213r, X86::VFNMSUBPDr213m, TB_ALIGN_16 }, 1344 { X86::VFNMSUBPSr231rY, X86::VFNMSUBPSr231mY, TB_ALIGN_32 }, 1345 { X86::VFNMSUBPDr231rY, X86::VFNMSUBPDr231mY, TB_ALIGN_32 }, 1346 { X86::VFNMSUBPSr132rY, X86::VFNMSUBPSr132mY, TB_ALIGN_32 }, 1347 { X86::VFNMSUBPDr132rY, X86::VFNMSUBPDr132mY, TB_ALIGN_32 }, 1348 { X86::VFNMSUBPSr213rY, X86::VFNMSUBPSr213mY, TB_ALIGN_32 }, 1349 { X86::VFNMSUBPDr213rY, X86::VFNMSUBPDr213mY, TB_ALIGN_32 }, 1350 1351 { X86::VFMADDSUBPSr231r, X86::VFMADDSUBPSr231m, TB_ALIGN_16 }, 1352 { X86::VFMADDSUBPDr231r, X86::VFMADDSUBPDr231m, TB_ALIGN_16 }, 1353 { X86::VFMADDSUBPSr132r, X86::VFMADDSUBPSr132m, TB_ALIGN_16 }, 1354 { X86::VFMADDSUBPDr132r, X86::VFMADDSUBPDr132m, TB_ALIGN_16 }, 1355 { X86::VFMADDSUBPSr213r, X86::VFMADDSUBPSr213m, TB_ALIGN_16 }, 1356 { X86::VFMADDSUBPDr213r, X86::VFMADDSUBPDr213m, TB_ALIGN_16 }, 1357 { X86::VFMADDSUBPSr231rY, X86::VFMADDSUBPSr231mY, TB_ALIGN_32 }, 1358 { X86::VFMADDSUBPDr231rY, X86::VFMADDSUBPDr231mY, TB_ALIGN_32 }, 1359 { X86::VFMADDSUBPSr132rY, X86::VFMADDSUBPSr132mY, TB_ALIGN_32 }, 1360 { X86::VFMADDSUBPDr132rY, X86::VFMADDSUBPDr132mY, TB_ALIGN_32 }, 1361 { X86::VFMADDSUBPSr213rY, X86::VFMADDSUBPSr213mY, TB_ALIGN_32 }, 1362 { X86::VFMADDSUBPDr213rY, X86::VFMADDSUBPDr213mY, TB_ALIGN_32 }, 1363 1364 { X86::VFMSUBADDPSr231r, X86::VFMSUBADDPSr231m, TB_ALIGN_16 }, 1365 { X86::VFMSUBADDPDr231r, X86::VFMSUBADDPDr231m, TB_ALIGN_16 }, 1366 { X86::VFMSUBADDPSr132r, X86::VFMSUBADDPSr132m, TB_ALIGN_16 }, 1367 { X86::VFMSUBADDPDr132r, X86::VFMSUBADDPDr132m, TB_ALIGN_16 }, 1368 { X86::VFMSUBADDPSr213r, X86::VFMSUBADDPSr213m, TB_ALIGN_16 }, 1369 { X86::VFMSUBADDPDr213r, X86::VFMSUBADDPDr213m, TB_ALIGN_16 }, 1370 { X86::VFMSUBADDPSr231rY, X86::VFMSUBADDPSr231mY, TB_ALIGN_32 }, 1371 { X86::VFMSUBADDPDr231rY, X86::VFMSUBADDPDr231mY, TB_ALIGN_32 }, 1372 { X86::VFMSUBADDPSr132rY, X86::VFMSUBADDPSr132mY, TB_ALIGN_32 }, 1373 { X86::VFMSUBADDPDr132rY, X86::VFMSUBADDPDr132mY, TB_ALIGN_32 }, 1374 { X86::VFMSUBADDPSr213rY, X86::VFMSUBADDPSr213mY, TB_ALIGN_32 }, 1375 { X86::VFMSUBADDPDr213rY, X86::VFMSUBADDPDr213mY, TB_ALIGN_32 }, 1376 1377 // FMA4 foldable patterns 1378 { X86::VFMADDSS4rr, X86::VFMADDSS4rm, 0 }, 1379 { X86::VFMADDSD4rr, X86::VFMADDSD4rm, 0 }, 1380 { X86::VFMADDPS4rr, X86::VFMADDPS4rm, TB_ALIGN_16 }, 1381 { X86::VFMADDPD4rr, X86::VFMADDPD4rm, TB_ALIGN_16 }, 1382 { X86::VFMADDPS4rrY, X86::VFMADDPS4rmY, TB_ALIGN_32 }, 1383 { X86::VFMADDPD4rrY, X86::VFMADDPD4rmY, TB_ALIGN_32 }, 1384 { X86::VFNMADDSS4rr, X86::VFNMADDSS4rm, 0 }, 1385 { X86::VFNMADDSD4rr, X86::VFNMADDSD4rm, 0 }, 1386 { X86::VFNMADDPS4rr, X86::VFNMADDPS4rm, TB_ALIGN_16 }, 1387 { X86::VFNMADDPD4rr, X86::VFNMADDPD4rm, TB_ALIGN_16 }, 1388 { X86::VFNMADDPS4rrY, X86::VFNMADDPS4rmY, TB_ALIGN_32 }, 1389 { X86::VFNMADDPD4rrY, X86::VFNMADDPD4rmY, TB_ALIGN_32 }, 1390 { X86::VFMSUBSS4rr, X86::VFMSUBSS4rm, 0 }, 1391 { X86::VFMSUBSD4rr, X86::VFMSUBSD4rm, 0 }, 1392 { X86::VFMSUBPS4rr, X86::VFMSUBPS4rm, TB_ALIGN_16 }, 1393 { X86::VFMSUBPD4rr, X86::VFMSUBPD4rm, TB_ALIGN_16 }, 1394 { X86::VFMSUBPS4rrY, X86::VFMSUBPS4rmY, TB_ALIGN_32 }, 1395 { X86::VFMSUBPD4rrY, X86::VFMSUBPD4rmY, TB_ALIGN_32 }, 1396 { X86::VFNMSUBSS4rr, X86::VFNMSUBSS4rm, 0 }, 1397 { X86::VFNMSUBSD4rr, X86::VFNMSUBSD4rm, 0 }, 1398 { X86::VFNMSUBPS4rr, X86::VFNMSUBPS4rm, TB_ALIGN_16 }, 1399 { X86::VFNMSUBPD4rr, X86::VFNMSUBPD4rm, TB_ALIGN_16 }, 1400 { X86::VFNMSUBPS4rrY, X86::VFNMSUBPS4rmY, TB_ALIGN_32 }, 1401 { X86::VFNMSUBPD4rrY, X86::VFNMSUBPD4rmY, TB_ALIGN_32 }, 1402 { X86::VFMADDSUBPS4rr, X86::VFMADDSUBPS4rm, TB_ALIGN_16 }, 1403 { X86::VFMADDSUBPD4rr, X86::VFMADDSUBPD4rm, TB_ALIGN_16 }, 1404 { X86::VFMADDSUBPS4rrY, X86::VFMADDSUBPS4rmY, TB_ALIGN_32 }, 1405 { X86::VFMADDSUBPD4rrY, X86::VFMADDSUBPD4rmY, TB_ALIGN_32 }, 1406 { X86::VFMSUBADDPS4rr, X86::VFMSUBADDPS4rm, TB_ALIGN_16 }, 1407 { X86::VFMSUBADDPD4rr, X86::VFMSUBADDPD4rm, TB_ALIGN_16 }, 1408 { X86::VFMSUBADDPS4rrY, X86::VFMSUBADDPS4rmY, TB_ALIGN_32 }, 1409 { X86::VFMSUBADDPD4rrY, X86::VFMSUBADDPD4rmY, TB_ALIGN_32 }, 1410 // AVX-512 VPERMI instructions with 3 source operands. 1411 { X86::VPERMI2Drr, X86::VPERMI2Drm, 0 }, 1412 { X86::VPERMI2Qrr, X86::VPERMI2Qrm, 0 }, 1413 { X86::VPERMI2PSrr, X86::VPERMI2PSrm, 0 }, 1414 { X86::VPERMI2PDrr, X86::VPERMI2PDrm, 0 }, 1415 { X86::VBLENDMPDZrr, X86::VBLENDMPDZrm, 0 }, 1416 { X86::VBLENDMPSZrr, X86::VBLENDMPSZrm, 0 }, 1417 { X86::VPBLENDMDZrr, X86::VPBLENDMDZrm, 0 }, 1418 { X86::VPBLENDMQZrr, X86::VPBLENDMQZrm, 0 } 1419 }; 1420 1421 for (unsigned i = 0, e = array_lengthof(OpTbl3); i != e; ++i) { 1422 unsigned RegOp = OpTbl3[i].RegOp; 1423 unsigned MemOp = OpTbl3[i].MemOp; 1424 unsigned Flags = OpTbl3[i].Flags; 1425 AddTableEntry(RegOp2MemOpTable3, MemOp2RegOpTable, 1426 RegOp, MemOp, 1427 // Index 3, folded load 1428 Flags | TB_INDEX_3 | TB_FOLDED_LOAD); 1429 } 1430 1431 } 1432 1433 void 1434 X86InstrInfo::AddTableEntry(RegOp2MemOpTableType &R2MTable, 1435 MemOp2RegOpTableType &M2RTable, 1436 unsigned RegOp, unsigned MemOp, unsigned Flags) { 1437 if ((Flags & TB_NO_FORWARD) == 0) { 1438 assert(!R2MTable.count(RegOp) && "Duplicate entry!"); 1439 R2MTable[RegOp] = std::make_pair(MemOp, Flags); 1440 } 1441 if ((Flags & TB_NO_REVERSE) == 0) { 1442 assert(!M2RTable.count(MemOp) && 1443 "Duplicated entries in unfolding maps?"); 1444 M2RTable[MemOp] = std::make_pair(RegOp, Flags); 1445 } 1446 } 1447 1448 bool 1449 X86InstrInfo::isCoalescableExtInstr(const MachineInstr &MI, 1450 unsigned &SrcReg, unsigned &DstReg, 1451 unsigned &SubIdx) const { 1452 switch (MI.getOpcode()) { 1453 default: break; 1454 case X86::MOVSX16rr8: 1455 case X86::MOVZX16rr8: 1456 case X86::MOVSX32rr8: 1457 case X86::MOVZX32rr8: 1458 case X86::MOVSX64rr8: 1459 if (!TM.getSubtarget<X86Subtarget>().is64Bit()) 1460 // It's not always legal to reference the low 8-bit of the larger 1461 // register in 32-bit mode. 1462 return false; 1463 case X86::MOVSX32rr16: 1464 case X86::MOVZX32rr16: 1465 case X86::MOVSX64rr16: 1466 case X86::MOVSX64rr32: { 1467 if (MI.getOperand(0).getSubReg() || MI.getOperand(1).getSubReg()) 1468 // Be conservative. 1469 return false; 1470 SrcReg = MI.getOperand(1).getReg(); 1471 DstReg = MI.getOperand(0).getReg(); 1472 switch (MI.getOpcode()) { 1473 default: llvm_unreachable("Unreachable!"); 1474 case X86::MOVSX16rr8: 1475 case X86::MOVZX16rr8: 1476 case X86::MOVSX32rr8: 1477 case X86::MOVZX32rr8: 1478 case X86::MOVSX64rr8: 1479 SubIdx = X86::sub_8bit; 1480 break; 1481 case X86::MOVSX32rr16: 1482 case X86::MOVZX32rr16: 1483 case X86::MOVSX64rr16: 1484 SubIdx = X86::sub_16bit; 1485 break; 1486 case X86::MOVSX64rr32: 1487 SubIdx = X86::sub_32bit; 1488 break; 1489 } 1490 return true; 1491 } 1492 } 1493 return false; 1494 } 1495 1496 /// isFrameOperand - Return true and the FrameIndex if the specified 1497 /// operand and follow operands form a reference to the stack frame. 1498 bool X86InstrInfo::isFrameOperand(const MachineInstr *MI, unsigned int Op, 1499 int &FrameIndex) const { 1500 if (MI->getOperand(Op).isFI() && MI->getOperand(Op+1).isImm() && 1501 MI->getOperand(Op+2).isReg() && MI->getOperand(Op+3).isImm() && 1502 MI->getOperand(Op+1).getImm() == 1 && 1503 MI->getOperand(Op+2).getReg() == 0 && 1504 MI->getOperand(Op+3).getImm() == 0) { 1505 FrameIndex = MI->getOperand(Op).getIndex(); 1506 return true; 1507 } 1508 return false; 1509 } 1510 1511 static bool isFrameLoadOpcode(int Opcode) { 1512 switch (Opcode) { 1513 default: 1514 return false; 1515 case X86::MOV8rm: 1516 case X86::MOV16rm: 1517 case X86::MOV32rm: 1518 case X86::MOV64rm: 1519 case X86::LD_Fp64m: 1520 case X86::MOVSSrm: 1521 case X86::MOVSDrm: 1522 case X86::MOVAPSrm: 1523 case X86::MOVAPDrm: 1524 case X86::MOVDQArm: 1525 case X86::VMOVSSrm: 1526 case X86::VMOVSDrm: 1527 case X86::VMOVAPSrm: 1528 case X86::VMOVAPDrm: 1529 case X86::VMOVDQArm: 1530 case X86::VMOVAPSYrm: 1531 case X86::VMOVAPDYrm: 1532 case X86::VMOVDQAYrm: 1533 case X86::MMX_MOVD64rm: 1534 case X86::MMX_MOVQ64rm: 1535 case X86::VMOVAPSZrm: 1536 case X86::VMOVUPSZrm: 1537 return true; 1538 } 1539 } 1540 1541 static bool isFrameStoreOpcode(int Opcode) { 1542 switch (Opcode) { 1543 default: break; 1544 case X86::MOV8mr: 1545 case X86::MOV16mr: 1546 case X86::MOV32mr: 1547 case X86::MOV64mr: 1548 case X86::ST_FpP64m: 1549 case X86::MOVSSmr: 1550 case X86::MOVSDmr: 1551 case X86::MOVAPSmr: 1552 case X86::MOVAPDmr: 1553 case X86::MOVDQAmr: 1554 case X86::VMOVSSmr: 1555 case X86::VMOVSDmr: 1556 case X86::VMOVAPSmr: 1557 case X86::VMOVAPDmr: 1558 case X86::VMOVDQAmr: 1559 case X86::VMOVAPSYmr: 1560 case X86::VMOVAPDYmr: 1561 case X86::VMOVDQAYmr: 1562 case X86::VMOVUPSZmr: 1563 case X86::VMOVAPSZmr: 1564 case X86::MMX_MOVD64mr: 1565 case X86::MMX_MOVQ64mr: 1566 case X86::MMX_MOVNTQmr: 1567 return true; 1568 } 1569 return false; 1570 } 1571 1572 unsigned X86InstrInfo::isLoadFromStackSlot(const MachineInstr *MI, 1573 int &FrameIndex) const { 1574 if (isFrameLoadOpcode(MI->getOpcode())) 1575 if (MI->getOperand(0).getSubReg() == 0 && isFrameOperand(MI, 1, FrameIndex)) 1576 return MI->getOperand(0).getReg(); 1577 return 0; 1578 } 1579 1580 unsigned X86InstrInfo::isLoadFromStackSlotPostFE(const MachineInstr *MI, 1581 int &FrameIndex) const { 1582 if (isFrameLoadOpcode(MI->getOpcode())) { 1583 unsigned Reg; 1584 if ((Reg = isLoadFromStackSlot(MI, FrameIndex))) 1585 return Reg; 1586 // Check for post-frame index elimination operations 1587 const MachineMemOperand *Dummy; 1588 return hasLoadFromStackSlot(MI, Dummy, FrameIndex); 1589 } 1590 return 0; 1591 } 1592 1593 unsigned X86InstrInfo::isStoreToStackSlot(const MachineInstr *MI, 1594 int &FrameIndex) const { 1595 if (isFrameStoreOpcode(MI->getOpcode())) 1596 if (MI->getOperand(X86::AddrNumOperands).getSubReg() == 0 && 1597 isFrameOperand(MI, 0, FrameIndex)) 1598 return MI->getOperand(X86::AddrNumOperands).getReg(); 1599 return 0; 1600 } 1601 1602 unsigned X86InstrInfo::isStoreToStackSlotPostFE(const MachineInstr *MI, 1603 int &FrameIndex) const { 1604 if (isFrameStoreOpcode(MI->getOpcode())) { 1605 unsigned Reg; 1606 if ((Reg = isStoreToStackSlot(MI, FrameIndex))) 1607 return Reg; 1608 // Check for post-frame index elimination operations 1609 const MachineMemOperand *Dummy; 1610 return hasStoreToStackSlot(MI, Dummy, FrameIndex); 1611 } 1612 return 0; 1613 } 1614 1615 /// regIsPICBase - Return true if register is PIC base (i.e.g defined by 1616 /// X86::MOVPC32r. 1617 static bool regIsPICBase(unsigned BaseReg, const MachineRegisterInfo &MRI) { 1618 // Don't waste compile time scanning use-def chains of physregs. 1619 if (!TargetRegisterInfo::isVirtualRegister(BaseReg)) 1620 return false; 1621 bool isPICBase = false; 1622 for (MachineRegisterInfo::def_iterator I = MRI.def_begin(BaseReg), 1623 E = MRI.def_end(); I != E; ++I) { 1624 MachineInstr *DefMI = I.getOperand().getParent(); 1625 if (DefMI->getOpcode() != X86::MOVPC32r) 1626 return false; 1627 assert(!isPICBase && "More than one PIC base?"); 1628 isPICBase = true; 1629 } 1630 return isPICBase; 1631 } 1632 1633 bool 1634 X86InstrInfo::isReallyTriviallyReMaterializable(const MachineInstr *MI, 1635 AliasAnalysis *AA) const { 1636 switch (MI->getOpcode()) { 1637 default: break; 1638 case X86::MOV8rm: 1639 case X86::MOV16rm: 1640 case X86::MOV32rm: 1641 case X86::MOV64rm: 1642 case X86::LD_Fp64m: 1643 case X86::MOVSSrm: 1644 case X86::MOVSDrm: 1645 case X86::MOVAPSrm: 1646 case X86::MOVUPSrm: 1647 case X86::MOVAPDrm: 1648 case X86::MOVDQArm: 1649 case X86::MOVDQUrm: 1650 case X86::VMOVSSrm: 1651 case X86::VMOVSDrm: 1652 case X86::VMOVAPSrm: 1653 case X86::VMOVUPSrm: 1654 case X86::VMOVAPDrm: 1655 case X86::VMOVDQArm: 1656 case X86::VMOVDQUrm: 1657 case X86::VMOVAPSYrm: 1658 case X86::VMOVUPSYrm: 1659 case X86::VMOVAPDYrm: 1660 case X86::VMOVDQAYrm: 1661 case X86::VMOVDQUYrm: 1662 case X86::MMX_MOVD64rm: 1663 case X86::MMX_MOVQ64rm: 1664 case X86::FsVMOVAPSrm: 1665 case X86::FsVMOVAPDrm: 1666 case X86::FsMOVAPSrm: 1667 case X86::FsMOVAPDrm: { 1668 // Loads from constant pools are trivially rematerializable. 1669 if (MI->getOperand(1).isReg() && 1670 MI->getOperand(2).isImm() && 1671 MI->getOperand(3).isReg() && MI->getOperand(3).getReg() == 0 && 1672 MI->isInvariantLoad(AA)) { 1673 unsigned BaseReg = MI->getOperand(1).getReg(); 1674 if (BaseReg == 0 || BaseReg == X86::RIP) 1675 return true; 1676 // Allow re-materialization of PIC load. 1677 if (!ReMatPICStubLoad && MI->getOperand(4).isGlobal()) 1678 return false; 1679 const MachineFunction &MF = *MI->getParent()->getParent(); 1680 const MachineRegisterInfo &MRI = MF.getRegInfo(); 1681 return regIsPICBase(BaseReg, MRI); 1682 } 1683 return false; 1684 } 1685 1686 case X86::LEA32r: 1687 case X86::LEA64r: { 1688 if (MI->getOperand(2).isImm() && 1689 MI->getOperand(3).isReg() && MI->getOperand(3).getReg() == 0 && 1690 !MI->getOperand(4).isReg()) { 1691 // lea fi#, lea GV, etc. are all rematerializable. 1692 if (!MI->getOperand(1).isReg()) 1693 return true; 1694 unsigned BaseReg = MI->getOperand(1).getReg(); 1695 if (BaseReg == 0) 1696 return true; 1697 // Allow re-materialization of lea PICBase + x. 1698 const MachineFunction &MF = *MI->getParent()->getParent(); 1699 const MachineRegisterInfo &MRI = MF.getRegInfo(); 1700 return regIsPICBase(BaseReg, MRI); 1701 } 1702 return false; 1703 } 1704 } 1705 1706 // All other instructions marked M_REMATERIALIZABLE are always trivially 1707 // rematerializable. 1708 return true; 1709 } 1710 1711 /// isSafeToClobberEFLAGS - Return true if it's safe insert an instruction that 1712 /// would clobber the EFLAGS condition register. Note the result may be 1713 /// conservative. If it cannot definitely determine the safety after visiting 1714 /// a few instructions in each direction it assumes it's not safe. 1715 static bool isSafeToClobberEFLAGS(MachineBasicBlock &MBB, 1716 MachineBasicBlock::iterator I) { 1717 MachineBasicBlock::iterator E = MBB.end(); 1718 1719 // For compile time consideration, if we are not able to determine the 1720 // safety after visiting 4 instructions in each direction, we will assume 1721 // it's not safe. 1722 MachineBasicBlock::iterator Iter = I; 1723 for (unsigned i = 0; Iter != E && i < 4; ++i) { 1724 bool SeenDef = false; 1725 for (unsigned j = 0, e = Iter->getNumOperands(); j != e; ++j) { 1726 MachineOperand &MO = Iter->getOperand(j); 1727 if (MO.isRegMask() && MO.clobbersPhysReg(X86::EFLAGS)) 1728 SeenDef = true; 1729 if (!MO.isReg()) 1730 continue; 1731 if (MO.getReg() == X86::EFLAGS) { 1732 if (MO.isUse()) 1733 return false; 1734 SeenDef = true; 1735 } 1736 } 1737 1738 if (SeenDef) 1739 // This instruction defines EFLAGS, no need to look any further. 1740 return true; 1741 ++Iter; 1742 // Skip over DBG_VALUE. 1743 while (Iter != E && Iter->isDebugValue()) 1744 ++Iter; 1745 } 1746 1747 // It is safe to clobber EFLAGS at the end of a block of no successor has it 1748 // live in. 1749 if (Iter == E) { 1750 for (MachineBasicBlock::succ_iterator SI = MBB.succ_begin(), 1751 SE = MBB.succ_end(); SI != SE; ++SI) 1752 if ((*SI)->isLiveIn(X86::EFLAGS)) 1753 return false; 1754 return true; 1755 } 1756 1757 MachineBasicBlock::iterator B = MBB.begin(); 1758 Iter = I; 1759 for (unsigned i = 0; i < 4; ++i) { 1760 // If we make it to the beginning of the block, it's safe to clobber 1761 // EFLAGS iff EFLAGS is not live-in. 1762 if (Iter == B) 1763 return !MBB.isLiveIn(X86::EFLAGS); 1764 1765 --Iter; 1766 // Skip over DBG_VALUE. 1767 while (Iter != B && Iter->isDebugValue()) 1768 --Iter; 1769 1770 bool SawKill = false; 1771 for (unsigned j = 0, e = Iter->getNumOperands(); j != e; ++j) { 1772 MachineOperand &MO = Iter->getOperand(j); 1773 // A register mask may clobber EFLAGS, but we should still look for a 1774 // live EFLAGS def. 1775 if (MO.isRegMask() && MO.clobbersPhysReg(X86::EFLAGS)) 1776 SawKill = true; 1777 if (MO.isReg() && MO.getReg() == X86::EFLAGS) { 1778 if (MO.isDef()) return MO.isDead(); 1779 if (MO.isKill()) SawKill = true; 1780 } 1781 } 1782 1783 if (SawKill) 1784 // This instruction kills EFLAGS and doesn't redefine it, so 1785 // there's no need to look further. 1786 return true; 1787 } 1788 1789 // Conservative answer. 1790 return false; 1791 } 1792 1793 void X86InstrInfo::reMaterialize(MachineBasicBlock &MBB, 1794 MachineBasicBlock::iterator I, 1795 unsigned DestReg, unsigned SubIdx, 1796 const MachineInstr *Orig, 1797 const TargetRegisterInfo &TRI) const { 1798 // MOV32r0 is implemented with a xor which clobbers condition code. 1799 // Re-materialize it as movri instructions to avoid side effects. 1800 unsigned Opc = Orig->getOpcode(); 1801 if (Opc == X86::MOV32r0 && !isSafeToClobberEFLAGS(MBB, I)) { 1802 DebugLoc DL = Orig->getDebugLoc(); 1803 BuildMI(MBB, I, DL, get(X86::MOV32ri)).addOperand(Orig->getOperand(0)) 1804 .addImm(0); 1805 } else { 1806 MachineInstr *MI = MBB.getParent()->CloneMachineInstr(Orig); 1807 MBB.insert(I, MI); 1808 } 1809 1810 MachineInstr *NewMI = prior(I); 1811 NewMI->substituteRegister(Orig->getOperand(0).getReg(), DestReg, SubIdx, TRI); 1812 } 1813 1814 /// hasLiveCondCodeDef - True if MI has a condition code def, e.g. EFLAGS, that 1815 /// is not marked dead. 1816 static bool hasLiveCondCodeDef(MachineInstr *MI) { 1817 for (unsigned i = 0, e = MI->getNumOperands(); i != e; ++i) { 1818 MachineOperand &MO = MI->getOperand(i); 1819 if (MO.isReg() && MO.isDef() && 1820 MO.getReg() == X86::EFLAGS && !MO.isDead()) { 1821 return true; 1822 } 1823 } 1824 return false; 1825 } 1826 1827 /// getTruncatedShiftCount - check whether the shift count for a machine operand 1828 /// is non-zero. 1829 inline static unsigned getTruncatedShiftCount(MachineInstr *MI, 1830 unsigned ShiftAmtOperandIdx) { 1831 // The shift count is six bits with the REX.W prefix and five bits without. 1832 unsigned ShiftCountMask = (MI->getDesc().TSFlags & X86II::REX_W) ? 63 : 31; 1833 unsigned Imm = MI->getOperand(ShiftAmtOperandIdx).getImm(); 1834 return Imm & ShiftCountMask; 1835 } 1836 1837 /// isTruncatedShiftCountForLEA - check whether the given shift count is appropriate 1838 /// can be represented by a LEA instruction. 1839 inline static bool isTruncatedShiftCountForLEA(unsigned ShAmt) { 1840 // Left shift instructions can be transformed into load-effective-address 1841 // instructions if we can encode them appropriately. 1842 // A LEA instruction utilizes a SIB byte to encode it's scale factor. 1843 // The SIB.scale field is two bits wide which means that we can encode any 1844 // shift amount less than 4. 1845 return ShAmt < 4 && ShAmt > 0; 1846 } 1847 1848 bool X86InstrInfo::classifyLEAReg(MachineInstr *MI, const MachineOperand &Src, 1849 unsigned Opc, bool AllowSP, 1850 unsigned &NewSrc, bool &isKill, bool &isUndef, 1851 MachineOperand &ImplicitOp) const { 1852 MachineFunction &MF = *MI->getParent()->getParent(); 1853 const TargetRegisterClass *RC; 1854 if (AllowSP) { 1855 RC = Opc != X86::LEA32r ? &X86::GR64RegClass : &X86::GR32RegClass; 1856 } else { 1857 RC = Opc != X86::LEA32r ? 1858 &X86::GR64_NOSPRegClass : &X86::GR32_NOSPRegClass; 1859 } 1860 unsigned SrcReg = Src.getReg(); 1861 1862 // For both LEA64 and LEA32 the register already has essentially the right 1863 // type (32-bit or 64-bit) we may just need to forbid SP. 1864 if (Opc != X86::LEA64_32r) { 1865 NewSrc = SrcReg; 1866 isKill = Src.isKill(); 1867 isUndef = Src.isUndef(); 1868 1869 if (TargetRegisterInfo::isVirtualRegister(NewSrc) && 1870 !MF.getRegInfo().constrainRegClass(NewSrc, RC)) 1871 return false; 1872 1873 return true; 1874 } 1875 1876 // This is for an LEA64_32r and incoming registers are 32-bit. One way or 1877 // another we need to add 64-bit registers to the final MI. 1878 if (TargetRegisterInfo::isPhysicalRegister(SrcReg)) { 1879 ImplicitOp = Src; 1880 ImplicitOp.setImplicit(); 1881 1882 NewSrc = getX86SubSuperRegister(Src.getReg(), MVT::i64); 1883 MachineBasicBlock::LivenessQueryResult LQR = 1884 MI->getParent()->computeRegisterLiveness(&getRegisterInfo(), NewSrc, MI); 1885 1886 switch (LQR) { 1887 case MachineBasicBlock::LQR_Unknown: 1888 // We can't give sane liveness flags to the instruction, abandon LEA 1889 // formation. 1890 return false; 1891 case MachineBasicBlock::LQR_Live: 1892 isKill = MI->killsRegister(SrcReg); 1893 isUndef = false; 1894 break; 1895 default: 1896 // The physreg itself is dead, so we have to use it as an <undef>. 1897 isKill = false; 1898 isUndef = true; 1899 break; 1900 } 1901 } else { 1902 // Virtual register of the wrong class, we have to create a temporary 64-bit 1903 // vreg to feed into the LEA. 1904 NewSrc = MF.getRegInfo().createVirtualRegister(RC); 1905 BuildMI(*MI->getParent(), MI, MI->getDebugLoc(), 1906 get(TargetOpcode::COPY)) 1907 .addReg(NewSrc, RegState::Define | RegState::Undef, X86::sub_32bit) 1908 .addOperand(Src); 1909 1910 // Which is obviously going to be dead after we're done with it. 1911 isKill = true; 1912 isUndef = false; 1913 } 1914 1915 // We've set all the parameters without issue. 1916 return true; 1917 } 1918 1919 /// convertToThreeAddressWithLEA - Helper for convertToThreeAddress when 1920 /// 16-bit LEA is disabled, use 32-bit LEA to form 3-address code by promoting 1921 /// to a 32-bit superregister and then truncating back down to a 16-bit 1922 /// subregister. 1923 MachineInstr * 1924 X86InstrInfo::convertToThreeAddressWithLEA(unsigned MIOpc, 1925 MachineFunction::iterator &MFI, 1926 MachineBasicBlock::iterator &MBBI, 1927 LiveVariables *LV) const { 1928 MachineInstr *MI = MBBI; 1929 unsigned Dest = MI->getOperand(0).getReg(); 1930 unsigned Src = MI->getOperand(1).getReg(); 1931 bool isDead = MI->getOperand(0).isDead(); 1932 bool isKill = MI->getOperand(1).isKill(); 1933 1934 MachineRegisterInfo &RegInfo = MFI->getParent()->getRegInfo(); 1935 unsigned leaOutReg = RegInfo.createVirtualRegister(&X86::GR32RegClass); 1936 unsigned Opc, leaInReg; 1937 if (TM.getSubtarget<X86Subtarget>().is64Bit()) { 1938 Opc = X86::LEA64_32r; 1939 leaInReg = RegInfo.createVirtualRegister(&X86::GR64_NOSPRegClass); 1940 } else { 1941 Opc = X86::LEA32r; 1942 leaInReg = RegInfo.createVirtualRegister(&X86::GR32_NOSPRegClass); 1943 } 1944 1945 // Build and insert into an implicit UNDEF value. This is OK because 1946 // well be shifting and then extracting the lower 16-bits. 1947 // This has the potential to cause partial register stall. e.g. 1948 // movw (%rbp,%rcx,2), %dx 1949 // leal -65(%rdx), %esi 1950 // But testing has shown this *does* help performance in 64-bit mode (at 1951 // least on modern x86 machines). 1952 BuildMI(*MFI, MBBI, MI->getDebugLoc(), get(X86::IMPLICIT_DEF), leaInReg); 1953 MachineInstr *InsMI = 1954 BuildMI(*MFI, MBBI, MI->getDebugLoc(), get(TargetOpcode::COPY)) 1955 .addReg(leaInReg, RegState::Define, X86::sub_16bit) 1956 .addReg(Src, getKillRegState(isKill)); 1957 1958 MachineInstrBuilder MIB = BuildMI(*MFI, MBBI, MI->getDebugLoc(), 1959 get(Opc), leaOutReg); 1960 switch (MIOpc) { 1961 default: llvm_unreachable("Unreachable!"); 1962 case X86::SHL16ri: { 1963 unsigned ShAmt = MI->getOperand(2).getImm(); 1964 MIB.addReg(0).addImm(1 << ShAmt) 1965 .addReg(leaInReg, RegState::Kill).addImm(0).addReg(0); 1966 break; 1967 } 1968 case X86::INC16r: 1969 case X86::INC64_16r: 1970 addRegOffset(MIB, leaInReg, true, 1); 1971 break; 1972 case X86::DEC16r: 1973 case X86::DEC64_16r: 1974 addRegOffset(MIB, leaInReg, true, -1); 1975 break; 1976 case X86::ADD16ri: 1977 case X86::ADD16ri8: 1978 case X86::ADD16ri_DB: 1979 case X86::ADD16ri8_DB: 1980 addRegOffset(MIB, leaInReg, true, MI->getOperand(2).getImm()); 1981 break; 1982 case X86::ADD16rr: 1983 case X86::ADD16rr_DB: { 1984 unsigned Src2 = MI->getOperand(2).getReg(); 1985 bool isKill2 = MI->getOperand(2).isKill(); 1986 unsigned leaInReg2 = 0; 1987 MachineInstr *InsMI2 = 0; 1988 if (Src == Src2) { 1989 // ADD16rr %reg1028<kill>, %reg1028 1990 // just a single insert_subreg. 1991 addRegReg(MIB, leaInReg, true, leaInReg, false); 1992 } else { 1993 if (TM.getSubtarget<X86Subtarget>().is64Bit()) 1994 leaInReg2 = RegInfo.createVirtualRegister(&X86::GR64_NOSPRegClass); 1995 else 1996 leaInReg2 = RegInfo.createVirtualRegister(&X86::GR32_NOSPRegClass); 1997 // Build and insert into an implicit UNDEF value. This is OK because 1998 // well be shifting and then extracting the lower 16-bits. 1999 BuildMI(*MFI, &*MIB, MI->getDebugLoc(), get(X86::IMPLICIT_DEF),leaInReg2); 2000 InsMI2 = 2001 BuildMI(*MFI, &*MIB, MI->getDebugLoc(), get(TargetOpcode::COPY)) 2002 .addReg(leaInReg2, RegState::Define, X86::sub_16bit) 2003 .addReg(Src2, getKillRegState(isKill2)); 2004 addRegReg(MIB, leaInReg, true, leaInReg2, true); 2005 } 2006 if (LV && isKill2 && InsMI2) 2007 LV->replaceKillInstruction(Src2, MI, InsMI2); 2008 break; 2009 } 2010 } 2011 2012 MachineInstr *NewMI = MIB; 2013 MachineInstr *ExtMI = 2014 BuildMI(*MFI, MBBI, MI->getDebugLoc(), get(TargetOpcode::COPY)) 2015 .addReg(Dest, RegState::Define | getDeadRegState(isDead)) 2016 .addReg(leaOutReg, RegState::Kill, X86::sub_16bit); 2017 2018 if (LV) { 2019 // Update live variables 2020 LV->getVarInfo(leaInReg).Kills.push_back(NewMI); 2021 LV->getVarInfo(leaOutReg).Kills.push_back(ExtMI); 2022 if (isKill) 2023 LV->replaceKillInstruction(Src, MI, InsMI); 2024 if (isDead) 2025 LV->replaceKillInstruction(Dest, MI, ExtMI); 2026 } 2027 2028 return ExtMI; 2029 } 2030 2031 /// convertToThreeAddress - This method must be implemented by targets that 2032 /// set the M_CONVERTIBLE_TO_3_ADDR flag. When this flag is set, the target 2033 /// may be able to convert a two-address instruction into a true 2034 /// three-address instruction on demand. This allows the X86 target (for 2035 /// example) to convert ADD and SHL instructions into LEA instructions if they 2036 /// would require register copies due to two-addressness. 2037 /// 2038 /// This method returns a null pointer if the transformation cannot be 2039 /// performed, otherwise it returns the new instruction. 2040 /// 2041 MachineInstr * 2042 X86InstrInfo::convertToThreeAddress(MachineFunction::iterator &MFI, 2043 MachineBasicBlock::iterator &MBBI, 2044 LiveVariables *LV) const { 2045 MachineInstr *MI = MBBI; 2046 2047 // The following opcodes also sets the condition code register(s). Only 2048 // convert them to equivalent lea if the condition code register def's 2049 // are dead! 2050 if (hasLiveCondCodeDef(MI)) 2051 return 0; 2052 2053 MachineFunction &MF = *MI->getParent()->getParent(); 2054 // All instructions input are two-addr instructions. Get the known operands. 2055 const MachineOperand &Dest = MI->getOperand(0); 2056 const MachineOperand &Src = MI->getOperand(1); 2057 2058 MachineInstr *NewMI = NULL; 2059 // FIXME: 16-bit LEA's are really slow on Athlons, but not bad on P4's. When 2060 // we have better subtarget support, enable the 16-bit LEA generation here. 2061 // 16-bit LEA is also slow on Core2. 2062 bool DisableLEA16 = true; 2063 bool is64Bit = TM.getSubtarget<X86Subtarget>().is64Bit(); 2064 2065 unsigned MIOpc = MI->getOpcode(); 2066 switch (MIOpc) { 2067 case X86::SHUFPSrri: { 2068 assert(MI->getNumOperands() == 4 && "Unknown shufps instruction!"); 2069 if (!TM.getSubtarget<X86Subtarget>().hasSSE2()) return 0; 2070 2071 unsigned B = MI->getOperand(1).getReg(); 2072 unsigned C = MI->getOperand(2).getReg(); 2073 if (B != C) return 0; 2074 unsigned M = MI->getOperand(3).getImm(); 2075 NewMI = BuildMI(MF, MI->getDebugLoc(), get(X86::PSHUFDri)) 2076 .addOperand(Dest).addOperand(Src).addImm(M); 2077 break; 2078 } 2079 case X86::SHUFPDrri: { 2080 assert(MI->getNumOperands() == 4 && "Unknown shufpd instruction!"); 2081 if (!TM.getSubtarget<X86Subtarget>().hasSSE2()) return 0; 2082 2083 unsigned B = MI->getOperand(1).getReg(); 2084 unsigned C = MI->getOperand(2).getReg(); 2085 if (B != C) return 0; 2086 unsigned M = MI->getOperand(3).getImm(); 2087 2088 // Convert to PSHUFD mask. 2089 M = ((M & 1) << 1) | ((M & 1) << 3) | ((M & 2) << 4) | ((M & 2) << 6)| 0x44; 2090 2091 NewMI = BuildMI(MF, MI->getDebugLoc(), get(X86::PSHUFDri)) 2092 .addOperand(Dest).addOperand(Src).addImm(M); 2093 break; 2094 } 2095 case X86::SHL64ri: { 2096 assert(MI->getNumOperands() >= 3 && "Unknown shift instruction!"); 2097 unsigned ShAmt = getTruncatedShiftCount(MI, 2); 2098 if (!isTruncatedShiftCountForLEA(ShAmt)) return 0; 2099 2100 // LEA can't handle RSP. 2101 if (TargetRegisterInfo::isVirtualRegister(Src.getReg()) && 2102 !MF.getRegInfo().constrainRegClass(Src.getReg(), 2103 &X86::GR64_NOSPRegClass)) 2104 return 0; 2105 2106 NewMI = BuildMI(MF, MI->getDebugLoc(), get(X86::LEA64r)) 2107 .addOperand(Dest) 2108 .addReg(0).addImm(1 << ShAmt).addOperand(Src).addImm(0).addReg(0); 2109 break; 2110 } 2111 case X86::SHL32ri: { 2112 assert(MI->getNumOperands() >= 3 && "Unknown shift instruction!"); 2113 unsigned ShAmt = getTruncatedShiftCount(MI, 2); 2114 if (!isTruncatedShiftCountForLEA(ShAmt)) return 0; 2115 2116 unsigned Opc = is64Bit ? X86::LEA64_32r : X86::LEA32r; 2117 2118 // LEA can't handle ESP. 2119 bool isKill, isUndef; 2120 unsigned SrcReg; 2121 MachineOperand ImplicitOp = MachineOperand::CreateReg(0, false); 2122 if (!classifyLEAReg(MI, Src, Opc, /*AllowSP=*/ false, 2123 SrcReg, isKill, isUndef, ImplicitOp)) 2124 return 0; 2125 2126 MachineInstrBuilder MIB = BuildMI(MF, MI->getDebugLoc(), get(Opc)) 2127 .addOperand(Dest) 2128 .addReg(0).addImm(1 << ShAmt) 2129 .addReg(SrcReg, getKillRegState(isKill) | getUndefRegState(isUndef)) 2130 .addImm(0).addReg(0); 2131 if (ImplicitOp.getReg() != 0) 2132 MIB.addOperand(ImplicitOp); 2133 NewMI = MIB; 2134 2135 break; 2136 } 2137 case X86::SHL16ri: { 2138 assert(MI->getNumOperands() >= 3 && "Unknown shift instruction!"); 2139 unsigned ShAmt = getTruncatedShiftCount(MI, 2); 2140 if (!isTruncatedShiftCountForLEA(ShAmt)) return 0; 2141 2142 if (DisableLEA16) 2143 return is64Bit ? convertToThreeAddressWithLEA(MIOpc, MFI, MBBI, LV) : 0; 2144 NewMI = BuildMI(MF, MI->getDebugLoc(), get(X86::LEA16r)) 2145 .addOperand(Dest) 2146 .addReg(0).addImm(1 << ShAmt).addOperand(Src).addImm(0).addReg(0); 2147 break; 2148 } 2149 default: { 2150 2151 switch (MIOpc) { 2152 default: return 0; 2153 case X86::INC64r: 2154 case X86::INC32r: 2155 case X86::INC64_32r: { 2156 assert(MI->getNumOperands() >= 2 && "Unknown inc instruction!"); 2157 unsigned Opc = MIOpc == X86::INC64r ? X86::LEA64r 2158 : (is64Bit ? X86::LEA64_32r : X86::LEA32r); 2159 bool isKill, isUndef; 2160 unsigned SrcReg; 2161 MachineOperand ImplicitOp = MachineOperand::CreateReg(0, false); 2162 if (!classifyLEAReg(MI, Src, Opc, /*AllowSP=*/ false, 2163 SrcReg, isKill, isUndef, ImplicitOp)) 2164 return 0; 2165 2166 MachineInstrBuilder MIB = BuildMI(MF, MI->getDebugLoc(), get(Opc)) 2167 .addOperand(Dest) 2168 .addReg(SrcReg, getKillRegState(isKill) | getUndefRegState(isUndef)); 2169 if (ImplicitOp.getReg() != 0) 2170 MIB.addOperand(ImplicitOp); 2171 2172 NewMI = addOffset(MIB, 1); 2173 break; 2174 } 2175 case X86::INC16r: 2176 case X86::INC64_16r: 2177 if (DisableLEA16) 2178 return is64Bit ? convertToThreeAddressWithLEA(MIOpc, MFI, MBBI, LV) : 0; 2179 assert(MI->getNumOperands() >= 2 && "Unknown inc instruction!"); 2180 NewMI = addOffset(BuildMI(MF, MI->getDebugLoc(), get(X86::LEA16r)) 2181 .addOperand(Dest).addOperand(Src), 1); 2182 break; 2183 case X86::DEC64r: 2184 case X86::DEC32r: 2185 case X86::DEC64_32r: { 2186 assert(MI->getNumOperands() >= 2 && "Unknown dec instruction!"); 2187 unsigned Opc = MIOpc == X86::DEC64r ? X86::LEA64r 2188 : (is64Bit ? X86::LEA64_32r : X86::LEA32r); 2189 2190 bool isKill, isUndef; 2191 unsigned SrcReg; 2192 MachineOperand ImplicitOp = MachineOperand::CreateReg(0, false); 2193 if (!classifyLEAReg(MI, Src, Opc, /*AllowSP=*/ false, 2194 SrcReg, isKill, isUndef, ImplicitOp)) 2195 return 0; 2196 2197 MachineInstrBuilder MIB = BuildMI(MF, MI->getDebugLoc(), get(Opc)) 2198 .addOperand(Dest) 2199 .addReg(SrcReg, getUndefRegState(isUndef) | getKillRegState(isKill)); 2200 if (ImplicitOp.getReg() != 0) 2201 MIB.addOperand(ImplicitOp); 2202 2203 NewMI = addOffset(MIB, -1); 2204 2205 break; 2206 } 2207 case X86::DEC16r: 2208 case X86::DEC64_16r: 2209 if (DisableLEA16) 2210 return is64Bit ? convertToThreeAddressWithLEA(MIOpc, MFI, MBBI, LV) : 0; 2211 assert(MI->getNumOperands() >= 2 && "Unknown dec instruction!"); 2212 NewMI = addOffset(BuildMI(MF, MI->getDebugLoc(), get(X86::LEA16r)) 2213 .addOperand(Dest).addOperand(Src), -1); 2214 break; 2215 case X86::ADD64rr: 2216 case X86::ADD64rr_DB: 2217 case X86::ADD32rr: 2218 case X86::ADD32rr_DB: { 2219 assert(MI->getNumOperands() >= 3 && "Unknown add instruction!"); 2220 unsigned Opc; 2221 if (MIOpc == X86::ADD64rr || MIOpc == X86::ADD64rr_DB) 2222 Opc = X86::LEA64r; 2223 else 2224 Opc = is64Bit ? X86::LEA64_32r : X86::LEA32r; 2225 2226 bool isKill, isUndef; 2227 unsigned SrcReg; 2228 MachineOperand ImplicitOp = MachineOperand::CreateReg(0, false); 2229 if (!classifyLEAReg(MI, Src, Opc, /*AllowSP=*/ true, 2230 SrcReg, isKill, isUndef, ImplicitOp)) 2231 return 0; 2232 2233 const MachineOperand &Src2 = MI->getOperand(2); 2234 bool isKill2, isUndef2; 2235 unsigned SrcReg2; 2236 MachineOperand ImplicitOp2 = MachineOperand::CreateReg(0, false); 2237 if (!classifyLEAReg(MI, Src2, Opc, /*AllowSP=*/ false, 2238 SrcReg2, isKill2, isUndef2, ImplicitOp2)) 2239 return 0; 2240 2241 MachineInstrBuilder MIB = BuildMI(MF, MI->getDebugLoc(), get(Opc)) 2242 .addOperand(Dest); 2243 if (ImplicitOp.getReg() != 0) 2244 MIB.addOperand(ImplicitOp); 2245 if (ImplicitOp2.getReg() != 0) 2246 MIB.addOperand(ImplicitOp2); 2247 2248 NewMI = addRegReg(MIB, SrcReg, isKill, SrcReg2, isKill2); 2249 2250 // Preserve undefness of the operands. 2251 NewMI->getOperand(1).setIsUndef(isUndef); 2252 NewMI->getOperand(3).setIsUndef(isUndef2); 2253 2254 if (LV && Src2.isKill()) 2255 LV->replaceKillInstruction(SrcReg2, MI, NewMI); 2256 break; 2257 } 2258 case X86::ADD16rr: 2259 case X86::ADD16rr_DB: { 2260 if (DisableLEA16) 2261 return is64Bit ? convertToThreeAddressWithLEA(MIOpc, MFI, MBBI, LV) : 0; 2262 assert(MI->getNumOperands() >= 3 && "Unknown add instruction!"); 2263 unsigned Src2 = MI->getOperand(2).getReg(); 2264 bool isKill2 = MI->getOperand(2).isKill(); 2265 NewMI = addRegReg(BuildMI(MF, MI->getDebugLoc(), get(X86::LEA16r)) 2266 .addOperand(Dest), 2267 Src.getReg(), Src.isKill(), Src2, isKill2); 2268 2269 // Preserve undefness of the operands. 2270 bool isUndef = MI->getOperand(1).isUndef(); 2271 bool isUndef2 = MI->getOperand(2).isUndef(); 2272 NewMI->getOperand(1).setIsUndef(isUndef); 2273 NewMI->getOperand(3).setIsUndef(isUndef2); 2274 2275 if (LV && isKill2) 2276 LV->replaceKillInstruction(Src2, MI, NewMI); 2277 break; 2278 } 2279 case X86::ADD64ri32: 2280 case X86::ADD64ri8: 2281 case X86::ADD64ri32_DB: 2282 case X86::ADD64ri8_DB: 2283 assert(MI->getNumOperands() >= 3 && "Unknown add instruction!"); 2284 NewMI = addOffset(BuildMI(MF, MI->getDebugLoc(), get(X86::LEA64r)) 2285 .addOperand(Dest).addOperand(Src), 2286 MI->getOperand(2).getImm()); 2287 break; 2288 case X86::ADD32ri: 2289 case X86::ADD32ri8: 2290 case X86::ADD32ri_DB: 2291 case X86::ADD32ri8_DB: { 2292 assert(MI->getNumOperands() >= 3 && "Unknown add instruction!"); 2293 unsigned Opc = is64Bit ? X86::LEA64_32r : X86::LEA32r; 2294 2295 bool isKill, isUndef; 2296 unsigned SrcReg; 2297 MachineOperand ImplicitOp = MachineOperand::CreateReg(0, false); 2298 if (!classifyLEAReg(MI, Src, Opc, /*AllowSP=*/ true, 2299 SrcReg, isKill, isUndef, ImplicitOp)) 2300 return 0; 2301 2302 MachineInstrBuilder MIB = BuildMI(MF, MI->getDebugLoc(), get(Opc)) 2303 .addOperand(Dest) 2304 .addReg(SrcReg, getUndefRegState(isUndef) | getKillRegState(isKill)); 2305 if (ImplicitOp.getReg() != 0) 2306 MIB.addOperand(ImplicitOp); 2307 2308 NewMI = addOffset(MIB, MI->getOperand(2).getImm()); 2309 break; 2310 } 2311 case X86::ADD16ri: 2312 case X86::ADD16ri8: 2313 case X86::ADD16ri_DB: 2314 case X86::ADD16ri8_DB: 2315 if (DisableLEA16) 2316 return is64Bit ? convertToThreeAddressWithLEA(MIOpc, MFI, MBBI, LV) : 0; 2317 assert(MI->getNumOperands() >= 3 && "Unknown add instruction!"); 2318 NewMI = addOffset(BuildMI(MF, MI->getDebugLoc(), get(X86::LEA16r)) 2319 .addOperand(Dest).addOperand(Src), 2320 MI->getOperand(2).getImm()); 2321 break; 2322 } 2323 } 2324 } 2325 2326 if (!NewMI) return 0; 2327 2328 if (LV) { // Update live variables 2329 if (Src.isKill()) 2330 LV->replaceKillInstruction(Src.getReg(), MI, NewMI); 2331 if (Dest.isDead()) 2332 LV->replaceKillInstruction(Dest.getReg(), MI, NewMI); 2333 } 2334 2335 MFI->insert(MBBI, NewMI); // Insert the new inst 2336 return NewMI; 2337 } 2338 2339 /// commuteInstruction - We have a few instructions that must be hacked on to 2340 /// commute them. 2341 /// 2342 MachineInstr * 2343 X86InstrInfo::commuteInstruction(MachineInstr *MI, bool NewMI) const { 2344 switch (MI->getOpcode()) { 2345 case X86::SHRD16rri8: // A = SHRD16rri8 B, C, I -> A = SHLD16rri8 C, B, (16-I) 2346 case X86::SHLD16rri8: // A = SHLD16rri8 B, C, I -> A = SHRD16rri8 C, B, (16-I) 2347 case X86::SHRD32rri8: // A = SHRD32rri8 B, C, I -> A = SHLD32rri8 C, B, (32-I) 2348 case X86::SHLD32rri8: // A = SHLD32rri8 B, C, I -> A = SHRD32rri8 C, B, (32-I) 2349 case X86::SHRD64rri8: // A = SHRD64rri8 B, C, I -> A = SHLD64rri8 C, B, (64-I) 2350 case X86::SHLD64rri8:{// A = SHLD64rri8 B, C, I -> A = SHRD64rri8 C, B, (64-I) 2351 unsigned Opc; 2352 unsigned Size; 2353 switch (MI->getOpcode()) { 2354 default: llvm_unreachable("Unreachable!"); 2355 case X86::SHRD16rri8: Size = 16; Opc = X86::SHLD16rri8; break; 2356 case X86::SHLD16rri8: Size = 16; Opc = X86::SHRD16rri8; break; 2357 case X86::SHRD32rri8: Size = 32; Opc = X86::SHLD32rri8; break; 2358 case X86::SHLD32rri8: Size = 32; Opc = X86::SHRD32rri8; break; 2359 case X86::SHRD64rri8: Size = 64; Opc = X86::SHLD64rri8; break; 2360 case X86::SHLD64rri8: Size = 64; Opc = X86::SHRD64rri8; break; 2361 } 2362 unsigned Amt = MI->getOperand(3).getImm(); 2363 if (NewMI) { 2364 MachineFunction &MF = *MI->getParent()->getParent(); 2365 MI = MF.CloneMachineInstr(MI); 2366 NewMI = false; 2367 } 2368 MI->setDesc(get(Opc)); 2369 MI->getOperand(3).setImm(Size-Amt); 2370 return TargetInstrInfo::commuteInstruction(MI, NewMI); 2371 } 2372 case X86::CMOVB16rr: case X86::CMOVB32rr: case X86::CMOVB64rr: 2373 case X86::CMOVAE16rr: case X86::CMOVAE32rr: case X86::CMOVAE64rr: 2374 case X86::CMOVE16rr: case X86::CMOVE32rr: case X86::CMOVE64rr: 2375 case X86::CMOVNE16rr: case X86::CMOVNE32rr: case X86::CMOVNE64rr: 2376 case X86::CMOVBE16rr: case X86::CMOVBE32rr: case X86::CMOVBE64rr: 2377 case X86::CMOVA16rr: case X86::CMOVA32rr: case X86::CMOVA64rr: 2378 case X86::CMOVL16rr: case X86::CMOVL32rr: case X86::CMOVL64rr: 2379 case X86::CMOVGE16rr: case X86::CMOVGE32rr: case X86::CMOVGE64rr: 2380 case X86::CMOVLE16rr: case X86::CMOVLE32rr: case X86::CMOVLE64rr: 2381 case X86::CMOVG16rr: case X86::CMOVG32rr: case X86::CMOVG64rr: 2382 case X86::CMOVS16rr: case X86::CMOVS32rr: case X86::CMOVS64rr: 2383 case X86::CMOVNS16rr: case X86::CMOVNS32rr: case X86::CMOVNS64rr: 2384 case X86::CMOVP16rr: case X86::CMOVP32rr: case X86::CMOVP64rr: 2385 case X86::CMOVNP16rr: case X86::CMOVNP32rr: case X86::CMOVNP64rr: 2386 case X86::CMOVO16rr: case X86::CMOVO32rr: case X86::CMOVO64rr: 2387 case X86::CMOVNO16rr: case X86::CMOVNO32rr: case X86::CMOVNO64rr: { 2388 unsigned Opc; 2389 switch (MI->getOpcode()) { 2390 default: llvm_unreachable("Unreachable!"); 2391 case X86::CMOVB16rr: Opc = X86::CMOVAE16rr; break; 2392 case X86::CMOVB32rr: Opc = X86::CMOVAE32rr; break; 2393 case X86::CMOVB64rr: Opc = X86::CMOVAE64rr; break; 2394 case X86::CMOVAE16rr: Opc = X86::CMOVB16rr; break; 2395 case X86::CMOVAE32rr: Opc = X86::CMOVB32rr; break; 2396 case X86::CMOVAE64rr: Opc = X86::CMOVB64rr; break; 2397 case X86::CMOVE16rr: Opc = X86::CMOVNE16rr; break; 2398 case X86::CMOVE32rr: Opc = X86::CMOVNE32rr; break; 2399 case X86::CMOVE64rr: Opc = X86::CMOVNE64rr; break; 2400 case X86::CMOVNE16rr: Opc = X86::CMOVE16rr; break; 2401 case X86::CMOVNE32rr: Opc = X86::CMOVE32rr; break; 2402 case X86::CMOVNE64rr: Opc = X86::CMOVE64rr; break; 2403 case X86::CMOVBE16rr: Opc = X86::CMOVA16rr; break; 2404 case X86::CMOVBE32rr: Opc = X86::CMOVA32rr; break; 2405 case X86::CMOVBE64rr: Opc = X86::CMOVA64rr; break; 2406 case X86::CMOVA16rr: Opc = X86::CMOVBE16rr; break; 2407 case X86::CMOVA32rr: Opc = X86::CMOVBE32rr; break; 2408 case X86::CMOVA64rr: Opc = X86::CMOVBE64rr; break; 2409 case X86::CMOVL16rr: Opc = X86::CMOVGE16rr; break; 2410 case X86::CMOVL32rr: Opc = X86::CMOVGE32rr; break; 2411 case X86::CMOVL64rr: Opc = X86::CMOVGE64rr; break; 2412 case X86::CMOVGE16rr: Opc = X86::CMOVL16rr; break; 2413 case X86::CMOVGE32rr: Opc = X86::CMOVL32rr; break; 2414 case X86::CMOVGE64rr: Opc = X86::CMOVL64rr; break; 2415 case X86::CMOVLE16rr: Opc = X86::CMOVG16rr; break; 2416 case X86::CMOVLE32rr: Opc = X86::CMOVG32rr; break; 2417 case X86::CMOVLE64rr: Opc = X86::CMOVG64rr; break; 2418 case X86::CMOVG16rr: Opc = X86::CMOVLE16rr; break; 2419 case X86::CMOVG32rr: Opc = X86::CMOVLE32rr; break; 2420 case X86::CMOVG64rr: Opc = X86::CMOVLE64rr; break; 2421 case X86::CMOVS16rr: Opc = X86::CMOVNS16rr; break; 2422 case X86::CMOVS32rr: Opc = X86::CMOVNS32rr; break; 2423 case X86::CMOVS64rr: Opc = X86::CMOVNS64rr; break; 2424 case X86::CMOVNS16rr: Opc = X86::CMOVS16rr; break; 2425 case X86::CMOVNS32rr: Opc = X86::CMOVS32rr; break; 2426 case X86::CMOVNS64rr: Opc = X86::CMOVS64rr; break; 2427 case X86::CMOVP16rr: Opc = X86::CMOVNP16rr; break; 2428 case X86::CMOVP32rr: Opc = X86::CMOVNP32rr; break; 2429 case X86::CMOVP64rr: Opc = X86::CMOVNP64rr; break; 2430 case X86::CMOVNP16rr: Opc = X86::CMOVP16rr; break; 2431 case X86::CMOVNP32rr: Opc = X86::CMOVP32rr; break; 2432 case X86::CMOVNP64rr: Opc = X86::CMOVP64rr; break; 2433 case X86::CMOVO16rr: Opc = X86::CMOVNO16rr; break; 2434 case X86::CMOVO32rr: Opc = X86::CMOVNO32rr; break; 2435 case X86::CMOVO64rr: Opc = X86::CMOVNO64rr; break; 2436 case X86::CMOVNO16rr: Opc = X86::CMOVO16rr; break; 2437 case X86::CMOVNO32rr: Opc = X86::CMOVO32rr; break; 2438 case X86::CMOVNO64rr: Opc = X86::CMOVO64rr; break; 2439 } 2440 if (NewMI) { 2441 MachineFunction &MF = *MI->getParent()->getParent(); 2442 MI = MF.CloneMachineInstr(MI); 2443 NewMI = false; 2444 } 2445 MI->setDesc(get(Opc)); 2446 // Fallthrough intended. 2447 } 2448 default: 2449 return TargetInstrInfo::commuteInstruction(MI, NewMI); 2450 } 2451 } 2452 2453 static X86::CondCode getCondFromBranchOpc(unsigned BrOpc) { 2454 switch (BrOpc) { 2455 default: return X86::COND_INVALID; 2456 case X86::JE_4: return X86::COND_E; 2457 case X86::JNE_4: return X86::COND_NE; 2458 case X86::JL_4: return X86::COND_L; 2459 case X86::JLE_4: return X86::COND_LE; 2460 case X86::JG_4: return X86::COND_G; 2461 case X86::JGE_4: return X86::COND_GE; 2462 case X86::JB_4: return X86::COND_B; 2463 case X86::JBE_4: return X86::COND_BE; 2464 case X86::JA_4: return X86::COND_A; 2465 case X86::JAE_4: return X86::COND_AE; 2466 case X86::JS_4: return X86::COND_S; 2467 case X86::JNS_4: return X86::COND_NS; 2468 case X86::JP_4: return X86::COND_P; 2469 case X86::JNP_4: return X86::COND_NP; 2470 case X86::JO_4: return X86::COND_O; 2471 case X86::JNO_4: return X86::COND_NO; 2472 } 2473 } 2474 2475 /// getCondFromSETOpc - return condition code of a SET opcode. 2476 static X86::CondCode getCondFromSETOpc(unsigned Opc) { 2477 switch (Opc) { 2478 default: return X86::COND_INVALID; 2479 case X86::SETAr: case X86::SETAm: return X86::COND_A; 2480 case X86::SETAEr: case X86::SETAEm: return X86::COND_AE; 2481 case X86::SETBr: case X86::SETBm: return X86::COND_B; 2482 case X86::SETBEr: case X86::SETBEm: return X86::COND_BE; 2483 case X86::SETEr: case X86::SETEm: return X86::COND_E; 2484 case X86::SETGr: case X86::SETGm: return X86::COND_G; 2485 case X86::SETGEr: case X86::SETGEm: return X86::COND_GE; 2486 case X86::SETLr: case X86::SETLm: return X86::COND_L; 2487 case X86::SETLEr: case X86::SETLEm: return X86::COND_LE; 2488 case X86::SETNEr: case X86::SETNEm: return X86::COND_NE; 2489 case X86::SETNOr: case X86::SETNOm: return X86::COND_NO; 2490 case X86::SETNPr: case X86::SETNPm: return X86::COND_NP; 2491 case X86::SETNSr: case X86::SETNSm: return X86::COND_NS; 2492 case X86::SETOr: case X86::SETOm: return X86::COND_O; 2493 case X86::SETPr: case X86::SETPm: return X86::COND_P; 2494 case X86::SETSr: case X86::SETSm: return X86::COND_S; 2495 } 2496 } 2497 2498 /// getCondFromCmovOpc - return condition code of a CMov opcode. 2499 X86::CondCode X86::getCondFromCMovOpc(unsigned Opc) { 2500 switch (Opc) { 2501 default: return X86::COND_INVALID; 2502 case X86::CMOVA16rm: case X86::CMOVA16rr: case X86::CMOVA32rm: 2503 case X86::CMOVA32rr: case X86::CMOVA64rm: case X86::CMOVA64rr: 2504 return X86::COND_A; 2505 case X86::CMOVAE16rm: case X86::CMOVAE16rr: case X86::CMOVAE32rm: 2506 case X86::CMOVAE32rr: case X86::CMOVAE64rm: case X86::CMOVAE64rr: 2507 return X86::COND_AE; 2508 case X86::CMOVB16rm: case X86::CMOVB16rr: case X86::CMOVB32rm: 2509 case X86::CMOVB32rr: case X86::CMOVB64rm: case X86::CMOVB64rr: 2510 return X86::COND_B; 2511 case X86::CMOVBE16rm: case X86::CMOVBE16rr: case X86::CMOVBE32rm: 2512 case X86::CMOVBE32rr: case X86::CMOVBE64rm: case X86::CMOVBE64rr: 2513 return X86::COND_BE; 2514 case X86::CMOVE16rm: case X86::CMOVE16rr: case X86::CMOVE32rm: 2515 case X86::CMOVE32rr: case X86::CMOVE64rm: case X86::CMOVE64rr: 2516 return X86::COND_E; 2517 case X86::CMOVG16rm: case X86::CMOVG16rr: case X86::CMOVG32rm: 2518 case X86::CMOVG32rr: case X86::CMOVG64rm: case X86::CMOVG64rr: 2519 return X86::COND_G; 2520 case X86::CMOVGE16rm: case X86::CMOVGE16rr: case X86::CMOVGE32rm: 2521 case X86::CMOVGE32rr: case X86::CMOVGE64rm: case X86::CMOVGE64rr: 2522 return X86::COND_GE; 2523 case X86::CMOVL16rm: case X86::CMOVL16rr: case X86::CMOVL32rm: 2524 case X86::CMOVL32rr: case X86::CMOVL64rm: case X86::CMOVL64rr: 2525 return X86::COND_L; 2526 case X86::CMOVLE16rm: case X86::CMOVLE16rr: case X86::CMOVLE32rm: 2527 case X86::CMOVLE32rr: case X86::CMOVLE64rm: case X86::CMOVLE64rr: 2528 return X86::COND_LE; 2529 case X86::CMOVNE16rm: case X86::CMOVNE16rr: case X86::CMOVNE32rm: 2530 case X86::CMOVNE32rr: case X86::CMOVNE64rm: case X86::CMOVNE64rr: 2531 return X86::COND_NE; 2532 case X86::CMOVNO16rm: case X86::CMOVNO16rr: case X86::CMOVNO32rm: 2533 case X86::CMOVNO32rr: case X86::CMOVNO64rm: case X86::CMOVNO64rr: 2534 return X86::COND_NO; 2535 case X86::CMOVNP16rm: case X86::CMOVNP16rr: case X86::CMOVNP32rm: 2536 case X86::CMOVNP32rr: case X86::CMOVNP64rm: case X86::CMOVNP64rr: 2537 return X86::COND_NP; 2538 case X86::CMOVNS16rm: case X86::CMOVNS16rr: case X86::CMOVNS32rm: 2539 case X86::CMOVNS32rr: case X86::CMOVNS64rm: case X86::CMOVNS64rr: 2540 return X86::COND_NS; 2541 case X86::CMOVO16rm: case X86::CMOVO16rr: case X86::CMOVO32rm: 2542 case X86::CMOVO32rr: case X86::CMOVO64rm: case X86::CMOVO64rr: 2543 return X86::COND_O; 2544 case X86::CMOVP16rm: case X86::CMOVP16rr: case X86::CMOVP32rm: 2545 case X86::CMOVP32rr: case X86::CMOVP64rm: case X86::CMOVP64rr: 2546 return X86::COND_P; 2547 case X86::CMOVS16rm: case X86::CMOVS16rr: case X86::CMOVS32rm: 2548 case X86::CMOVS32rr: case X86::CMOVS64rm: case X86::CMOVS64rr: 2549 return X86::COND_S; 2550 } 2551 } 2552 2553 unsigned X86::GetCondBranchFromCond(X86::CondCode CC) { 2554 switch (CC) { 2555 default: llvm_unreachable("Illegal condition code!"); 2556 case X86::COND_E: return X86::JE_4; 2557 case X86::COND_NE: return X86::JNE_4; 2558 case X86::COND_L: return X86::JL_4; 2559 case X86::COND_LE: return X86::JLE_4; 2560 case X86::COND_G: return X86::JG_4; 2561 case X86::COND_GE: return X86::JGE_4; 2562 case X86::COND_B: return X86::JB_4; 2563 case X86::COND_BE: return X86::JBE_4; 2564 case X86::COND_A: return X86::JA_4; 2565 case X86::COND_AE: return X86::JAE_4; 2566 case X86::COND_S: return X86::JS_4; 2567 case X86::COND_NS: return X86::JNS_4; 2568 case X86::COND_P: return X86::JP_4; 2569 case X86::COND_NP: return X86::JNP_4; 2570 case X86::COND_O: return X86::JO_4; 2571 case X86::COND_NO: return X86::JNO_4; 2572 } 2573 } 2574 2575 /// GetOppositeBranchCondition - Return the inverse of the specified condition, 2576 /// e.g. turning COND_E to COND_NE. 2577 X86::CondCode X86::GetOppositeBranchCondition(X86::CondCode CC) { 2578 switch (CC) { 2579 default: llvm_unreachable("Illegal condition code!"); 2580 case X86::COND_E: return X86::COND_NE; 2581 case X86::COND_NE: return X86::COND_E; 2582 case X86::COND_L: return X86::COND_GE; 2583 case X86::COND_LE: return X86::COND_G; 2584 case X86::COND_G: return X86::COND_LE; 2585 case X86::COND_GE: return X86::COND_L; 2586 case X86::COND_B: return X86::COND_AE; 2587 case X86::COND_BE: return X86::COND_A; 2588 case X86::COND_A: return X86::COND_BE; 2589 case X86::COND_AE: return X86::COND_B; 2590 case X86::COND_S: return X86::COND_NS; 2591 case X86::COND_NS: return X86::COND_S; 2592 case X86::COND_P: return X86::COND_NP; 2593 case X86::COND_NP: return X86::COND_P; 2594 case X86::COND_O: return X86::COND_NO; 2595 case X86::COND_NO: return X86::COND_O; 2596 } 2597 } 2598 2599 /// getSwappedCondition - assume the flags are set by MI(a,b), return 2600 /// the condition code if we modify the instructions such that flags are 2601 /// set by MI(b,a). 2602 static X86::CondCode getSwappedCondition(X86::CondCode CC) { 2603 switch (CC) { 2604 default: return X86::COND_INVALID; 2605 case X86::COND_E: return X86::COND_E; 2606 case X86::COND_NE: return X86::COND_NE; 2607 case X86::COND_L: return X86::COND_G; 2608 case X86::COND_LE: return X86::COND_GE; 2609 case X86::COND_G: return X86::COND_L; 2610 case X86::COND_GE: return X86::COND_LE; 2611 case X86::COND_B: return X86::COND_A; 2612 case X86::COND_BE: return X86::COND_AE; 2613 case X86::COND_A: return X86::COND_B; 2614 case X86::COND_AE: return X86::COND_BE; 2615 } 2616 } 2617 2618 /// getSETFromCond - Return a set opcode for the given condition and 2619 /// whether it has memory operand. 2620 static unsigned getSETFromCond(X86::CondCode CC, 2621 bool HasMemoryOperand) { 2622 static const uint16_t Opc[16][2] = { 2623 { X86::SETAr, X86::SETAm }, 2624 { X86::SETAEr, X86::SETAEm }, 2625 { X86::SETBr, X86::SETBm }, 2626 { X86::SETBEr, X86::SETBEm }, 2627 { X86::SETEr, X86::SETEm }, 2628 { X86::SETGr, X86::SETGm }, 2629 { X86::SETGEr, X86::SETGEm }, 2630 { X86::SETLr, X86::SETLm }, 2631 { X86::SETLEr, X86::SETLEm }, 2632 { X86::SETNEr, X86::SETNEm }, 2633 { X86::SETNOr, X86::SETNOm }, 2634 { X86::SETNPr, X86::SETNPm }, 2635 { X86::SETNSr, X86::SETNSm }, 2636 { X86::SETOr, X86::SETOm }, 2637 { X86::SETPr, X86::SETPm }, 2638 { X86::SETSr, X86::SETSm } 2639 }; 2640 2641 assert(CC < 16 && "Can only handle standard cond codes"); 2642 return Opc[CC][HasMemoryOperand ? 1 : 0]; 2643 } 2644 2645 /// getCMovFromCond - Return a cmov opcode for the given condition, 2646 /// register size in bytes, and operand type. 2647 static unsigned getCMovFromCond(X86::CondCode CC, unsigned RegBytes, 2648 bool HasMemoryOperand) { 2649 static const uint16_t Opc[32][3] = { 2650 { X86::CMOVA16rr, X86::CMOVA32rr, X86::CMOVA64rr }, 2651 { X86::CMOVAE16rr, X86::CMOVAE32rr, X86::CMOVAE64rr }, 2652 { X86::CMOVB16rr, X86::CMOVB32rr, X86::CMOVB64rr }, 2653 { X86::CMOVBE16rr, X86::CMOVBE32rr, X86::CMOVBE64rr }, 2654 { X86::CMOVE16rr, X86::CMOVE32rr, X86::CMOVE64rr }, 2655 { X86::CMOVG16rr, X86::CMOVG32rr, X86::CMOVG64rr }, 2656 { X86::CMOVGE16rr, X86::CMOVGE32rr, X86::CMOVGE64rr }, 2657 { X86::CMOVL16rr, X86::CMOVL32rr, X86::CMOVL64rr }, 2658 { X86::CMOVLE16rr, X86::CMOVLE32rr, X86::CMOVLE64rr }, 2659 { X86::CMOVNE16rr, X86::CMOVNE32rr, X86::CMOVNE64rr }, 2660 { X86::CMOVNO16rr, X86::CMOVNO32rr, X86::CMOVNO64rr }, 2661 { X86::CMOVNP16rr, X86::CMOVNP32rr, X86::CMOVNP64rr }, 2662 { X86::CMOVNS16rr, X86::CMOVNS32rr, X86::CMOVNS64rr }, 2663 { X86::CMOVO16rr, X86::CMOVO32rr, X86::CMOVO64rr }, 2664 { X86::CMOVP16rr, X86::CMOVP32rr, X86::CMOVP64rr }, 2665 { X86::CMOVS16rr, X86::CMOVS32rr, X86::CMOVS64rr }, 2666 { X86::CMOVA16rm, X86::CMOVA32rm, X86::CMOVA64rm }, 2667 { X86::CMOVAE16rm, X86::CMOVAE32rm, X86::CMOVAE64rm }, 2668 { X86::CMOVB16rm, X86::CMOVB32rm, X86::CMOVB64rm }, 2669 { X86::CMOVBE16rm, X86::CMOVBE32rm, X86::CMOVBE64rm }, 2670 { X86::CMOVE16rm, X86::CMOVE32rm, X86::CMOVE64rm }, 2671 { X86::CMOVG16rm, X86::CMOVG32rm, X86::CMOVG64rm }, 2672 { X86::CMOVGE16rm, X86::CMOVGE32rm, X86::CMOVGE64rm }, 2673 { X86::CMOVL16rm, X86::CMOVL32rm, X86::CMOVL64rm }, 2674 { X86::CMOVLE16rm, X86::CMOVLE32rm, X86::CMOVLE64rm }, 2675 { X86::CMOVNE16rm, X86::CMOVNE32rm, X86::CMOVNE64rm }, 2676 { X86::CMOVNO16rm, X86::CMOVNO32rm, X86::CMOVNO64rm }, 2677 { X86::CMOVNP16rm, X86::CMOVNP32rm, X86::CMOVNP64rm }, 2678 { X86::CMOVNS16rm, X86::CMOVNS32rm, X86::CMOVNS64rm }, 2679 { X86::CMOVO16rm, X86::CMOVO32rm, X86::CMOVO64rm }, 2680 { X86::CMOVP16rm, X86::CMOVP32rm, X86::CMOVP64rm }, 2681 { X86::CMOVS16rm, X86::CMOVS32rm, X86::CMOVS64rm } 2682 }; 2683 2684 assert(CC < 16 && "Can only handle standard cond codes"); 2685 unsigned Idx = HasMemoryOperand ? 16+CC : CC; 2686 switch(RegBytes) { 2687 default: llvm_unreachable("Illegal register size!"); 2688 case 2: return Opc[Idx][0]; 2689 case 4: return Opc[Idx][1]; 2690 case 8: return Opc[Idx][2]; 2691 } 2692 } 2693 2694 bool X86InstrInfo::isUnpredicatedTerminator(const MachineInstr *MI) const { 2695 if (!MI->isTerminator()) return false; 2696 2697 // Conditional branch is a special case. 2698 if (MI->isBranch() && !MI->isBarrier()) 2699 return true; 2700 if (!MI->isPredicable()) 2701 return true; 2702 return !isPredicated(MI); 2703 } 2704 2705 bool X86InstrInfo::AnalyzeBranch(MachineBasicBlock &MBB, 2706 MachineBasicBlock *&TBB, 2707 MachineBasicBlock *&FBB, 2708 SmallVectorImpl<MachineOperand> &Cond, 2709 bool AllowModify) const { 2710 // Start from the bottom of the block and work up, examining the 2711 // terminator instructions. 2712 MachineBasicBlock::iterator I = MBB.end(); 2713 MachineBasicBlock::iterator UnCondBrIter = MBB.end(); 2714 while (I != MBB.begin()) { 2715 --I; 2716 if (I->isDebugValue()) 2717 continue; 2718 2719 // Working from the bottom, when we see a non-terminator instruction, we're 2720 // done. 2721 if (!isUnpredicatedTerminator(I)) 2722 break; 2723 2724 // A terminator that isn't a branch can't easily be handled by this 2725 // analysis. 2726 if (!I->isBranch()) 2727 return true; 2728 2729 // Handle unconditional branches. 2730 if (I->getOpcode() == X86::JMP_4) { 2731 UnCondBrIter = I; 2732 2733 if (!AllowModify) { 2734 TBB = I->getOperand(0).getMBB(); 2735 continue; 2736 } 2737 2738 // If the block has any instructions after a JMP, delete them. 2739 while (llvm::next(I) != MBB.end()) 2740 llvm::next(I)->eraseFromParent(); 2741 2742 Cond.clear(); 2743 FBB = 0; 2744 2745 // Delete the JMP if it's equivalent to a fall-through. 2746 if (MBB.isLayoutSuccessor(I->getOperand(0).getMBB())) { 2747 TBB = 0; 2748 I->eraseFromParent(); 2749 I = MBB.end(); 2750 UnCondBrIter = MBB.end(); 2751 continue; 2752 } 2753 2754 // TBB is used to indicate the unconditional destination. 2755 TBB = I->getOperand(0).getMBB(); 2756 continue; 2757 } 2758 2759 // Handle conditional branches. 2760 X86::CondCode BranchCode = getCondFromBranchOpc(I->getOpcode()); 2761 if (BranchCode == X86::COND_INVALID) 2762 return true; // Can't handle indirect branch. 2763 2764 // Working from the bottom, handle the first conditional branch. 2765 if (Cond.empty()) { 2766 MachineBasicBlock *TargetBB = I->getOperand(0).getMBB(); 2767 if (AllowModify && UnCondBrIter != MBB.end() && 2768 MBB.isLayoutSuccessor(TargetBB)) { 2769 // If we can modify the code and it ends in something like: 2770 // 2771 // jCC L1 2772 // jmp L2 2773 // L1: 2774 // ... 2775 // L2: 2776 // 2777 // Then we can change this to: 2778 // 2779 // jnCC L2 2780 // L1: 2781 // ... 2782 // L2: 2783 // 2784 // Which is a bit more efficient. 2785 // We conditionally jump to the fall-through block. 2786 BranchCode = GetOppositeBranchCondition(BranchCode); 2787 unsigned JNCC = GetCondBranchFromCond(BranchCode); 2788 MachineBasicBlock::iterator OldInst = I; 2789 2790 BuildMI(MBB, UnCondBrIter, MBB.findDebugLoc(I), get(JNCC)) 2791 .addMBB(UnCondBrIter->getOperand(0).getMBB()); 2792 BuildMI(MBB, UnCondBrIter, MBB.findDebugLoc(I), get(X86::JMP_4)) 2793 .addMBB(TargetBB); 2794 2795 OldInst->eraseFromParent(); 2796 UnCondBrIter->eraseFromParent(); 2797 2798 // Restart the analysis. 2799 UnCondBrIter = MBB.end(); 2800 I = MBB.end(); 2801 continue; 2802 } 2803 2804 FBB = TBB; 2805 TBB = I->getOperand(0).getMBB(); 2806 Cond.push_back(MachineOperand::CreateImm(BranchCode)); 2807 continue; 2808 } 2809 2810 // Handle subsequent conditional branches. Only handle the case where all 2811 // conditional branches branch to the same destination and their condition 2812 // opcodes fit one of the special multi-branch idioms. 2813 assert(Cond.size() == 1); 2814 assert(TBB); 2815 2816 // Only handle the case where all conditional branches branch to the same 2817 // destination. 2818 if (TBB != I->getOperand(0).getMBB()) 2819 return true; 2820 2821 // If the conditions are the same, we can leave them alone. 2822 X86::CondCode OldBranchCode = (X86::CondCode)Cond[0].getImm(); 2823 if (OldBranchCode == BranchCode) 2824 continue; 2825 2826 // If they differ, see if they fit one of the known patterns. Theoretically, 2827 // we could handle more patterns here, but we shouldn't expect to see them 2828 // if instruction selection has done a reasonable job. 2829 if ((OldBranchCode == X86::COND_NP && 2830 BranchCode == X86::COND_E) || 2831 (OldBranchCode == X86::COND_E && 2832 BranchCode == X86::COND_NP)) 2833 BranchCode = X86::COND_NP_OR_E; 2834 else if ((OldBranchCode == X86::COND_P && 2835 BranchCode == X86::COND_NE) || 2836 (OldBranchCode == X86::COND_NE && 2837 BranchCode == X86::COND_P)) 2838 BranchCode = X86::COND_NE_OR_P; 2839 else 2840 return true; 2841 2842 // Update the MachineOperand. 2843 Cond[0].setImm(BranchCode); 2844 } 2845 2846 return false; 2847 } 2848 2849 unsigned X86InstrInfo::RemoveBranch(MachineBasicBlock &MBB) const { 2850 MachineBasicBlock::iterator I = MBB.end(); 2851 unsigned Count = 0; 2852 2853 while (I != MBB.begin()) { 2854 --I; 2855 if (I->isDebugValue()) 2856 continue; 2857 if (I->getOpcode() != X86::JMP_4 && 2858 getCondFromBranchOpc(I->getOpcode()) == X86::COND_INVALID) 2859 break; 2860 // Remove the branch. 2861 I->eraseFromParent(); 2862 I = MBB.end(); 2863 ++Count; 2864 } 2865 2866 return Count; 2867 } 2868 2869 unsigned 2870 X86InstrInfo::InsertBranch(MachineBasicBlock &MBB, MachineBasicBlock *TBB, 2871 MachineBasicBlock *FBB, 2872 const SmallVectorImpl<MachineOperand> &Cond, 2873 DebugLoc DL) const { 2874 // Shouldn't be a fall through. 2875 assert(TBB && "InsertBranch must not be told to insert a fallthrough"); 2876 assert((Cond.size() == 1 || Cond.size() == 0) && 2877 "X86 branch conditions have one component!"); 2878 2879 if (Cond.empty()) { 2880 // Unconditional branch? 2881 assert(!FBB && "Unconditional branch with multiple successors!"); 2882 BuildMI(&MBB, DL, get(X86::JMP_4)).addMBB(TBB); 2883 return 1; 2884 } 2885 2886 // Conditional branch. 2887 unsigned Count = 0; 2888 X86::CondCode CC = (X86::CondCode)Cond[0].getImm(); 2889 switch (CC) { 2890 case X86::COND_NP_OR_E: 2891 // Synthesize NP_OR_E with two branches. 2892 BuildMI(&MBB, DL, get(X86::JNP_4)).addMBB(TBB); 2893 ++Count; 2894 BuildMI(&MBB, DL, get(X86::JE_4)).addMBB(TBB); 2895 ++Count; 2896 break; 2897 case X86::COND_NE_OR_P: 2898 // Synthesize NE_OR_P with two branches. 2899 BuildMI(&MBB, DL, get(X86::JNE_4)).addMBB(TBB); 2900 ++Count; 2901 BuildMI(&MBB, DL, get(X86::JP_4)).addMBB(TBB); 2902 ++Count; 2903 break; 2904 default: { 2905 unsigned Opc = GetCondBranchFromCond(CC); 2906 BuildMI(&MBB, DL, get(Opc)).addMBB(TBB); 2907 ++Count; 2908 } 2909 } 2910 if (FBB) { 2911 // Two-way Conditional branch. Insert the second branch. 2912 BuildMI(&MBB, DL, get(X86::JMP_4)).addMBB(FBB); 2913 ++Count; 2914 } 2915 return Count; 2916 } 2917 2918 bool X86InstrInfo:: 2919 canInsertSelect(const MachineBasicBlock &MBB, 2920 const SmallVectorImpl<MachineOperand> &Cond, 2921 unsigned TrueReg, unsigned FalseReg, 2922 int &CondCycles, int &TrueCycles, int &FalseCycles) const { 2923 // Not all subtargets have cmov instructions. 2924 if (!TM.getSubtarget<X86Subtarget>().hasCMov()) 2925 return false; 2926 if (Cond.size() != 1) 2927 return false; 2928 // We cannot do the composite conditions, at least not in SSA form. 2929 if ((X86::CondCode)Cond[0].getImm() > X86::COND_S) 2930 return false; 2931 2932 // Check register classes. 2933 const MachineRegisterInfo &MRI = MBB.getParent()->getRegInfo(); 2934 const TargetRegisterClass *RC = 2935 RI.getCommonSubClass(MRI.getRegClass(TrueReg), MRI.getRegClass(FalseReg)); 2936 if (!RC) 2937 return false; 2938 2939 // We have cmov instructions for 16, 32, and 64 bit general purpose registers. 2940 if (X86::GR16RegClass.hasSubClassEq(RC) || 2941 X86::GR32RegClass.hasSubClassEq(RC) || 2942 X86::GR64RegClass.hasSubClassEq(RC)) { 2943 // This latency applies to Pentium M, Merom, Wolfdale, Nehalem, and Sandy 2944 // Bridge. Probably Ivy Bridge as well. 2945 CondCycles = 2; 2946 TrueCycles = 2; 2947 FalseCycles = 2; 2948 return true; 2949 } 2950 2951 // Can't do vectors. 2952 return false; 2953 } 2954 2955 void X86InstrInfo::insertSelect(MachineBasicBlock &MBB, 2956 MachineBasicBlock::iterator I, DebugLoc DL, 2957 unsigned DstReg, 2958 const SmallVectorImpl<MachineOperand> &Cond, 2959 unsigned TrueReg, unsigned FalseReg) const { 2960 MachineRegisterInfo &MRI = MBB.getParent()->getRegInfo(); 2961 assert(Cond.size() == 1 && "Invalid Cond array"); 2962 unsigned Opc = getCMovFromCond((X86::CondCode)Cond[0].getImm(), 2963 MRI.getRegClass(DstReg)->getSize(), 2964 false/*HasMemoryOperand*/); 2965 BuildMI(MBB, I, DL, get(Opc), DstReg).addReg(FalseReg).addReg(TrueReg); 2966 } 2967 2968 /// isHReg - Test if the given register is a physical h register. 2969 static bool isHReg(unsigned Reg) { 2970 return X86::GR8_ABCD_HRegClass.contains(Reg); 2971 } 2972 2973 // Try and copy between VR128/VR64 and GR64 registers. 2974 static unsigned CopyToFromAsymmetricReg(unsigned DestReg, unsigned SrcReg, 2975 const X86Subtarget& Subtarget) { 2976 2977 2978 // SrcReg(VR128) -> DestReg(GR64) 2979 // SrcReg(VR64) -> DestReg(GR64) 2980 // SrcReg(GR64) -> DestReg(VR128) 2981 // SrcReg(GR64) -> DestReg(VR64) 2982 2983 bool HasAVX = Subtarget.hasAVX(); 2984 bool HasAVX512 = Subtarget.hasAVX512(); 2985 if (X86::GR64RegClass.contains(DestReg)) { 2986 if (X86::VR128XRegClass.contains(SrcReg)) 2987 // Copy from a VR128 register to a GR64 register. 2988 return HasAVX512 ? X86::VMOVPQIto64Zrr: (HasAVX ? X86::VMOVPQIto64rr : 2989 X86::MOVPQIto64rr); 2990 if (X86::VR64RegClass.contains(SrcReg)) 2991 // Copy from a VR64 register to a GR64 register. 2992 return X86::MOVSDto64rr; 2993 } else if (X86::GR64RegClass.contains(SrcReg)) { 2994 // Copy from a GR64 register to a VR128 register. 2995 if (X86::VR128XRegClass.contains(DestReg)) 2996 return HasAVX512 ? X86::VMOV64toPQIZrr: (HasAVX ? X86::VMOV64toPQIrr : 2997 X86::MOV64toPQIrr); 2998 // Copy from a GR64 register to a VR64 register. 2999 if (X86::VR64RegClass.contains(DestReg)) 3000 return X86::MOV64toSDrr; 3001 } 3002 3003 // SrcReg(FR32) -> DestReg(GR32) 3004 // SrcReg(GR32) -> DestReg(FR32) 3005 3006 if (X86::GR32RegClass.contains(DestReg) && X86::FR32XRegClass.contains(SrcReg)) 3007 // Copy from a FR32 register to a GR32 register. 3008 return HasAVX512 ? X86::VMOVSS2DIZrr : (HasAVX ? X86::VMOVSS2DIrr : X86::MOVSS2DIrr); 3009 3010 if (X86::FR32XRegClass.contains(DestReg) && X86::GR32RegClass.contains(SrcReg)) 3011 // Copy from a GR32 register to a FR32 register. 3012 return HasAVX512 ? X86::VMOVDI2SSZrr : (HasAVX ? X86::VMOVDI2SSrr : X86::MOVDI2SSrr); 3013 return 0; 3014 } 3015 3016 inline static bool MaskRegClassContains(unsigned Reg) { 3017 return X86::VK8RegClass.contains(Reg) || 3018 X86::VK16RegClass.contains(Reg) || 3019 X86::VK1RegClass.contains(Reg); 3020 } 3021 static 3022 unsigned copyPhysRegOpcode_AVX512(unsigned& DestReg, unsigned& SrcReg) { 3023 if (X86::VR128XRegClass.contains(DestReg, SrcReg) || 3024 X86::VR256XRegClass.contains(DestReg, SrcReg) || 3025 X86::VR512RegClass.contains(DestReg, SrcReg)) { 3026 DestReg = get512BitSuperRegister(DestReg); 3027 SrcReg = get512BitSuperRegister(SrcReg); 3028 return X86::VMOVAPSZrr; 3029 } 3030 if (MaskRegClassContains(DestReg) && 3031 MaskRegClassContains(SrcReg)) 3032 return X86::KMOVWkk; 3033 if (MaskRegClassContains(DestReg) && 3034 (X86::GR32RegClass.contains(SrcReg) || 3035 X86::GR16RegClass.contains(SrcReg) || 3036 X86::GR8RegClass.contains(SrcReg))) { 3037 SrcReg = getX86SubSuperRegister(SrcReg, MVT::i32); 3038 return X86::KMOVWkr; 3039 } 3040 if ((X86::GR32RegClass.contains(DestReg) || 3041 X86::GR16RegClass.contains(DestReg) || 3042 X86::GR8RegClass.contains(DestReg)) && 3043 MaskRegClassContains(SrcReg)) { 3044 DestReg = getX86SubSuperRegister(DestReg, MVT::i32); 3045 return X86::KMOVWrk; 3046 } 3047 return 0; 3048 } 3049 3050 void X86InstrInfo::copyPhysReg(MachineBasicBlock &MBB, 3051 MachineBasicBlock::iterator MI, DebugLoc DL, 3052 unsigned DestReg, unsigned SrcReg, 3053 bool KillSrc) const { 3054 // First deal with the normal symmetric copies. 3055 bool HasAVX = TM.getSubtarget<X86Subtarget>().hasAVX(); 3056 bool HasAVX512 = TM.getSubtarget<X86Subtarget>().hasAVX512(); 3057 unsigned Opc = 0; 3058 if (X86::GR64RegClass.contains(DestReg, SrcReg)) 3059 Opc = X86::MOV64rr; 3060 else if (X86::GR32RegClass.contains(DestReg, SrcReg)) 3061 Opc = X86::MOV32rr; 3062 else if (X86::GR16RegClass.contains(DestReg, SrcReg)) 3063 Opc = X86::MOV16rr; 3064 else if (X86::GR8RegClass.contains(DestReg, SrcReg)) { 3065 // Copying to or from a physical H register on x86-64 requires a NOREX 3066 // move. Otherwise use a normal move. 3067 if ((isHReg(DestReg) || isHReg(SrcReg)) && 3068 TM.getSubtarget<X86Subtarget>().is64Bit()) { 3069 Opc = X86::MOV8rr_NOREX; 3070 // Both operands must be encodable without an REX prefix. 3071 assert(X86::GR8_NOREXRegClass.contains(SrcReg, DestReg) && 3072 "8-bit H register can not be copied outside GR8_NOREX"); 3073 } else 3074 Opc = X86::MOV8rr; 3075 } 3076 else if (X86::VR64RegClass.contains(DestReg, SrcReg)) 3077 Opc = X86::MMX_MOVQ64rr; 3078 else if (HasAVX512) 3079 Opc = copyPhysRegOpcode_AVX512(DestReg, SrcReg); 3080 else if (X86::VR128RegClass.contains(DestReg, SrcReg)) 3081 Opc = HasAVX ? X86::VMOVAPSrr : X86::MOVAPSrr; 3082 else if (X86::VR256RegClass.contains(DestReg, SrcReg)) 3083 Opc = X86::VMOVAPSYrr; 3084 if (!Opc) 3085 Opc = CopyToFromAsymmetricReg(DestReg, SrcReg, TM.getSubtarget<X86Subtarget>()); 3086 3087 if (Opc) { 3088 BuildMI(MBB, MI, DL, get(Opc), DestReg) 3089 .addReg(SrcReg, getKillRegState(KillSrc)); 3090 return; 3091 } 3092 3093 // Moving EFLAGS to / from another register requires a push and a pop. 3094 // Notice that we have to adjust the stack if we don't want to clobber the 3095 // first frame index. See X86FrameLowering.cpp - colobbersTheStack. 3096 if (SrcReg == X86::EFLAGS) { 3097 if (X86::GR64RegClass.contains(DestReg)) { 3098 BuildMI(MBB, MI, DL, get(X86::PUSHF64)); 3099 BuildMI(MBB, MI, DL, get(X86::POP64r), DestReg); 3100 return; 3101 } 3102 if (X86::GR32RegClass.contains(DestReg)) { 3103 BuildMI(MBB, MI, DL, get(X86::PUSHF32)); 3104 BuildMI(MBB, MI, DL, get(X86::POP32r), DestReg); 3105 return; 3106 } 3107 } 3108 if (DestReg == X86::EFLAGS) { 3109 if (X86::GR64RegClass.contains(SrcReg)) { 3110 BuildMI(MBB, MI, DL, get(X86::PUSH64r)) 3111 .addReg(SrcReg, getKillRegState(KillSrc)); 3112 BuildMI(MBB, MI, DL, get(X86::POPF64)); 3113 return; 3114 } 3115 if (X86::GR32RegClass.contains(SrcReg)) { 3116 BuildMI(MBB, MI, DL, get(X86::PUSH32r)) 3117 .addReg(SrcReg, getKillRegState(KillSrc)); 3118 BuildMI(MBB, MI, DL, get(X86::POPF32)); 3119 return; 3120 } 3121 } 3122 3123 DEBUG(dbgs() << "Cannot copy " << RI.getName(SrcReg) 3124 << " to " << RI.getName(DestReg) << '\n'); 3125 llvm_unreachable("Cannot emit physreg copy instruction"); 3126 } 3127 3128 static unsigned getLoadStoreRegOpcode(unsigned Reg, 3129 const TargetRegisterClass *RC, 3130 bool isStackAligned, 3131 const TargetMachine &TM, 3132 bool load) { 3133 if (TM.getSubtarget<X86Subtarget>().hasAVX512()) { 3134 if (X86::VK8RegClass.hasSubClassEq(RC) || 3135 X86::VK16RegClass.hasSubClassEq(RC)) 3136 return load ? X86::KMOVWkm : X86::KMOVWmk; 3137 if (RC->getSize() == 4 && X86::FR32XRegClass.hasSubClassEq(RC)) 3138 return load ? X86::VMOVSSZrm : X86::VMOVSSZmr; 3139 if (RC->getSize() == 8 && X86::FR64XRegClass.hasSubClassEq(RC)) 3140 return load ? X86::VMOVSDZrm : X86::VMOVSDZmr; 3141 if (X86::VR512RegClass.hasSubClassEq(RC)) 3142 return load ? X86::VMOVUPSZrm : X86::VMOVUPSZmr; 3143 } 3144 3145 bool HasAVX = TM.getSubtarget<X86Subtarget>().hasAVX(); 3146 switch (RC->getSize()) { 3147 default: 3148 llvm_unreachable("Unknown spill size"); 3149 case 1: 3150 assert(X86::GR8RegClass.hasSubClassEq(RC) && "Unknown 1-byte regclass"); 3151 if (TM.getSubtarget<X86Subtarget>().is64Bit()) 3152 // Copying to or from a physical H register on x86-64 requires a NOREX 3153 // move. Otherwise use a normal move. 3154 if (isHReg(Reg) || X86::GR8_ABCD_HRegClass.hasSubClassEq(RC)) 3155 return load ? X86::MOV8rm_NOREX : X86::MOV8mr_NOREX; 3156 return load ? X86::MOV8rm : X86::MOV8mr; 3157 case 2: 3158 assert(X86::GR16RegClass.hasSubClassEq(RC) && "Unknown 2-byte regclass"); 3159 return load ? X86::MOV16rm : X86::MOV16mr; 3160 case 4: 3161 if (X86::GR32RegClass.hasSubClassEq(RC)) 3162 return load ? X86::MOV32rm : X86::MOV32mr; 3163 if (X86::FR32RegClass.hasSubClassEq(RC)) 3164 return load ? 3165 (HasAVX ? X86::VMOVSSrm : X86::MOVSSrm) : 3166 (HasAVX ? X86::VMOVSSmr : X86::MOVSSmr); 3167 if (X86::RFP32RegClass.hasSubClassEq(RC)) 3168 return load ? X86::LD_Fp32m : X86::ST_Fp32m; 3169 llvm_unreachable("Unknown 4-byte regclass"); 3170 case 8: 3171 if (X86::GR64RegClass.hasSubClassEq(RC)) 3172 return load ? X86::MOV64rm : X86::MOV64mr; 3173 if (X86::FR64RegClass.hasSubClassEq(RC)) 3174 return load ? 3175 (HasAVX ? X86::VMOVSDrm : X86::MOVSDrm) : 3176 (HasAVX ? X86::VMOVSDmr : X86::MOVSDmr); 3177 if (X86::VR64RegClass.hasSubClassEq(RC)) 3178 return load ? X86::MMX_MOVQ64rm : X86::MMX_MOVQ64mr; 3179 if (X86::RFP64RegClass.hasSubClassEq(RC)) 3180 return load ? X86::LD_Fp64m : X86::ST_Fp64m; 3181 llvm_unreachable("Unknown 8-byte regclass"); 3182 case 10: 3183 assert(X86::RFP80RegClass.hasSubClassEq(RC) && "Unknown 10-byte regclass"); 3184 return load ? X86::LD_Fp80m : X86::ST_FpP80m; 3185 case 16: { 3186 assert((X86::VR128RegClass.hasSubClassEq(RC) || 3187 X86::VR128XRegClass.hasSubClassEq(RC))&& "Unknown 16-byte regclass"); 3188 // If stack is realigned we can use aligned stores. 3189 if (isStackAligned) 3190 return load ? 3191 (HasAVX ? X86::VMOVAPSrm : X86::MOVAPSrm) : 3192 (HasAVX ? X86::VMOVAPSmr : X86::MOVAPSmr); 3193 else 3194 return load ? 3195 (HasAVX ? X86::VMOVUPSrm : X86::MOVUPSrm) : 3196 (HasAVX ? X86::VMOVUPSmr : X86::MOVUPSmr); 3197 } 3198 case 32: 3199 assert((X86::VR256RegClass.hasSubClassEq(RC) || 3200 X86::VR256XRegClass.hasSubClassEq(RC)) && "Unknown 32-byte regclass"); 3201 // If stack is realigned we can use aligned stores. 3202 if (isStackAligned) 3203 return load ? X86::VMOVAPSYrm : X86::VMOVAPSYmr; 3204 else 3205 return load ? X86::VMOVUPSYrm : X86::VMOVUPSYmr; 3206 case 64: 3207 assert(X86::VR512RegClass.hasSubClassEq(RC) && "Unknown 64-byte regclass"); 3208 if (isStackAligned) 3209 return load ? X86::VMOVAPSZrm : X86::VMOVAPSZmr; 3210 else 3211 return load ? X86::VMOVUPSZrm : X86::VMOVUPSZmr; 3212 } 3213 } 3214 3215 static unsigned getStoreRegOpcode(unsigned SrcReg, 3216 const TargetRegisterClass *RC, 3217 bool isStackAligned, 3218 TargetMachine &TM) { 3219 return getLoadStoreRegOpcode(SrcReg, RC, isStackAligned, TM, false); 3220 } 3221 3222 3223 static unsigned getLoadRegOpcode(unsigned DestReg, 3224 const TargetRegisterClass *RC, 3225 bool isStackAligned, 3226 const TargetMachine &TM) { 3227 return getLoadStoreRegOpcode(DestReg, RC, isStackAligned, TM, true); 3228 } 3229 3230 void X86InstrInfo::storeRegToStackSlot(MachineBasicBlock &MBB, 3231 MachineBasicBlock::iterator MI, 3232 unsigned SrcReg, bool isKill, int FrameIdx, 3233 const TargetRegisterClass *RC, 3234 const TargetRegisterInfo *TRI) const { 3235 const MachineFunction &MF = *MBB.getParent(); 3236 assert(MF.getFrameInfo()->getObjectSize(FrameIdx) >= RC->getSize() && 3237 "Stack slot too small for store"); 3238 unsigned Alignment = std::max<uint32_t>(RC->getSize(), 16); 3239 bool isAligned = (TM.getFrameLowering()->getStackAlignment() >= Alignment) || 3240 RI.canRealignStack(MF); 3241 unsigned Opc = getStoreRegOpcode(SrcReg, RC, isAligned, TM); 3242 DebugLoc DL = MBB.findDebugLoc(MI); 3243 addFrameReference(BuildMI(MBB, MI, DL, get(Opc)), FrameIdx) 3244 .addReg(SrcReg, getKillRegState(isKill)); 3245 } 3246 3247 void X86InstrInfo::storeRegToAddr(MachineFunction &MF, unsigned SrcReg, 3248 bool isKill, 3249 SmallVectorImpl<MachineOperand> &Addr, 3250 const TargetRegisterClass *RC, 3251 MachineInstr::mmo_iterator MMOBegin, 3252 MachineInstr::mmo_iterator MMOEnd, 3253 SmallVectorImpl<MachineInstr*> &NewMIs) const { 3254 unsigned Alignment = std::max<uint32_t>(RC->getSize(), 16); 3255 bool isAligned = MMOBegin != MMOEnd && 3256 (*MMOBegin)->getAlignment() >= Alignment; 3257 unsigned Opc = getStoreRegOpcode(SrcReg, RC, isAligned, TM); 3258 DebugLoc DL; 3259 MachineInstrBuilder MIB = BuildMI(MF, DL, get(Opc)); 3260 for (unsigned i = 0, e = Addr.size(); i != e; ++i) 3261 MIB.addOperand(Addr[i]); 3262 MIB.addReg(SrcReg, getKillRegState(isKill)); 3263 (*MIB).setMemRefs(MMOBegin, MMOEnd); 3264 NewMIs.push_back(MIB); 3265 } 3266 3267 3268 void X86InstrInfo::loadRegFromStackSlot(MachineBasicBlock &MBB, 3269 MachineBasicBlock::iterator MI, 3270 unsigned DestReg, int FrameIdx, 3271 const TargetRegisterClass *RC, 3272 const TargetRegisterInfo *TRI) const { 3273 const MachineFunction &MF = *MBB.getParent(); 3274 unsigned Alignment = std::max<uint32_t>(RC->getSize(), 16); 3275 bool isAligned = (TM.getFrameLowering()->getStackAlignment() >= Alignment) || 3276 RI.canRealignStack(MF); 3277 unsigned Opc = getLoadRegOpcode(DestReg, RC, isAligned, TM); 3278 DebugLoc DL = MBB.findDebugLoc(MI); 3279 addFrameReference(BuildMI(MBB, MI, DL, get(Opc), DestReg), FrameIdx); 3280 } 3281 3282 void X86InstrInfo::loadRegFromAddr(MachineFunction &MF, unsigned DestReg, 3283 SmallVectorImpl<MachineOperand> &Addr, 3284 const TargetRegisterClass *RC, 3285 MachineInstr::mmo_iterator MMOBegin, 3286 MachineInstr::mmo_iterator MMOEnd, 3287 SmallVectorImpl<MachineInstr*> &NewMIs) const { 3288 unsigned Alignment = std::max<uint32_t>(RC->getSize(), 16); 3289 bool isAligned = MMOBegin != MMOEnd && 3290 (*MMOBegin)->getAlignment() >= Alignment; 3291 unsigned Opc = getLoadRegOpcode(DestReg, RC, isAligned, TM); 3292 DebugLoc DL; 3293 MachineInstrBuilder MIB = BuildMI(MF, DL, get(Opc), DestReg); 3294 for (unsigned i = 0, e = Addr.size(); i != e; ++i) 3295 MIB.addOperand(Addr[i]); 3296 (*MIB).setMemRefs(MMOBegin, MMOEnd); 3297 NewMIs.push_back(MIB); 3298 } 3299 3300 bool X86InstrInfo:: 3301 analyzeCompare(const MachineInstr *MI, unsigned &SrcReg, unsigned &SrcReg2, 3302 int &CmpMask, int &CmpValue) const { 3303 switch (MI->getOpcode()) { 3304 default: break; 3305 case X86::CMP64ri32: 3306 case X86::CMP64ri8: 3307 case X86::CMP32ri: 3308 case X86::CMP32ri8: 3309 case X86::CMP16ri: 3310 case X86::CMP16ri8: 3311 case X86::CMP8ri: 3312 SrcReg = MI->getOperand(0).getReg(); 3313 SrcReg2 = 0; 3314 CmpMask = ~0; 3315 CmpValue = MI->getOperand(1).getImm(); 3316 return true; 3317 // A SUB can be used to perform comparison. 3318 case X86::SUB64rm: 3319 case X86::SUB32rm: 3320 case X86::SUB16rm: 3321 case X86::SUB8rm: 3322 SrcReg = MI->getOperand(1).getReg(); 3323 SrcReg2 = 0; 3324 CmpMask = ~0; 3325 CmpValue = 0; 3326 return true; 3327 case X86::SUB64rr: 3328 case X86::SUB32rr: 3329 case X86::SUB16rr: 3330 case X86::SUB8rr: 3331 SrcReg = MI->getOperand(1).getReg(); 3332 SrcReg2 = MI->getOperand(2).getReg(); 3333 CmpMask = ~0; 3334 CmpValue = 0; 3335 return true; 3336 case X86::SUB64ri32: 3337 case X86::SUB64ri8: 3338 case X86::SUB32ri: 3339 case X86::SUB32ri8: 3340 case X86::SUB16ri: 3341 case X86::SUB16ri8: 3342 case X86::SUB8ri: 3343 SrcReg = MI->getOperand(1).getReg(); 3344 SrcReg2 = 0; 3345 CmpMask = ~0; 3346 CmpValue = MI->getOperand(2).getImm(); 3347 return true; 3348 case X86::CMP64rr: 3349 case X86::CMP32rr: 3350 case X86::CMP16rr: 3351 case X86::CMP8rr: 3352 SrcReg = MI->getOperand(0).getReg(); 3353 SrcReg2 = MI->getOperand(1).getReg(); 3354 CmpMask = ~0; 3355 CmpValue = 0; 3356 return true; 3357 case X86::TEST8rr: 3358 case X86::TEST16rr: 3359 case X86::TEST32rr: 3360 case X86::TEST64rr: 3361 SrcReg = MI->getOperand(0).getReg(); 3362 if (MI->getOperand(1).getReg() != SrcReg) return false; 3363 // Compare against zero. 3364 SrcReg2 = 0; 3365 CmpMask = ~0; 3366 CmpValue = 0; 3367 return true; 3368 } 3369 return false; 3370 } 3371 3372 /// isRedundantFlagInstr - check whether the first instruction, whose only 3373 /// purpose is to update flags, can be made redundant. 3374 /// CMPrr can be made redundant by SUBrr if the operands are the same. 3375 /// This function can be extended later on. 3376 /// SrcReg, SrcRegs: register operands for FlagI. 3377 /// ImmValue: immediate for FlagI if it takes an immediate. 3378 inline static bool isRedundantFlagInstr(MachineInstr *FlagI, unsigned SrcReg, 3379 unsigned SrcReg2, int ImmValue, 3380 MachineInstr *OI) { 3381 if (((FlagI->getOpcode() == X86::CMP64rr && 3382 OI->getOpcode() == X86::SUB64rr) || 3383 (FlagI->getOpcode() == X86::CMP32rr && 3384 OI->getOpcode() == X86::SUB32rr)|| 3385 (FlagI->getOpcode() == X86::CMP16rr && 3386 OI->getOpcode() == X86::SUB16rr)|| 3387 (FlagI->getOpcode() == X86::CMP8rr && 3388 OI->getOpcode() == X86::SUB8rr)) && 3389 ((OI->getOperand(1).getReg() == SrcReg && 3390 OI->getOperand(2).getReg() == SrcReg2) || 3391 (OI->getOperand(1).getReg() == SrcReg2 && 3392 OI->getOperand(2).getReg() == SrcReg))) 3393 return true; 3394 3395 if (((FlagI->getOpcode() == X86::CMP64ri32 && 3396 OI->getOpcode() == X86::SUB64ri32) || 3397 (FlagI->getOpcode() == X86::CMP64ri8 && 3398 OI->getOpcode() == X86::SUB64ri8) || 3399 (FlagI->getOpcode() == X86::CMP32ri && 3400 OI->getOpcode() == X86::SUB32ri) || 3401 (FlagI->getOpcode() == X86::CMP32ri8 && 3402 OI->getOpcode() == X86::SUB32ri8) || 3403 (FlagI->getOpcode() == X86::CMP16ri && 3404 OI->getOpcode() == X86::SUB16ri) || 3405 (FlagI->getOpcode() == X86::CMP16ri8 && 3406 OI->getOpcode() == X86::SUB16ri8) || 3407 (FlagI->getOpcode() == X86::CMP8ri && 3408 OI->getOpcode() == X86::SUB8ri)) && 3409 OI->getOperand(1).getReg() == SrcReg && 3410 OI->getOperand(2).getImm() == ImmValue) 3411 return true; 3412 return false; 3413 } 3414 3415 /// isDefConvertible - check whether the definition can be converted 3416 /// to remove a comparison against zero. 3417 inline static bool isDefConvertible(MachineInstr *MI) { 3418 switch (MI->getOpcode()) { 3419 default: return false; 3420 3421 // The shift instructions only modify ZF if their shift count is non-zero. 3422 // N.B.: The processor truncates the shift count depending on the encoding. 3423 case X86::SAR8ri: case X86::SAR16ri: case X86::SAR32ri:case X86::SAR64ri: 3424 case X86::SHR8ri: case X86::SHR16ri: case X86::SHR32ri:case X86::SHR64ri: 3425 return getTruncatedShiftCount(MI, 2) != 0; 3426 3427 // Some left shift instructions can be turned into LEA instructions but only 3428 // if their flags aren't used. Avoid transforming such instructions. 3429 case X86::SHL8ri: case X86::SHL16ri: case X86::SHL32ri:case X86::SHL64ri:{ 3430 unsigned ShAmt = getTruncatedShiftCount(MI, 2); 3431 if (isTruncatedShiftCountForLEA(ShAmt)) return false; 3432 return ShAmt != 0; 3433 } 3434 3435 case X86::SHRD16rri8:case X86::SHRD32rri8:case X86::SHRD64rri8: 3436 case X86::SHLD16rri8:case X86::SHLD32rri8:case X86::SHLD64rri8: 3437 return getTruncatedShiftCount(MI, 3) != 0; 3438 3439 case X86::SUB64ri32: case X86::SUB64ri8: case X86::SUB32ri: 3440 case X86::SUB32ri8: case X86::SUB16ri: case X86::SUB16ri8: 3441 case X86::SUB8ri: case X86::SUB64rr: case X86::SUB32rr: 3442 case X86::SUB16rr: case X86::SUB8rr: case X86::SUB64rm: 3443 case X86::SUB32rm: case X86::SUB16rm: case X86::SUB8rm: 3444 case X86::DEC64r: case X86::DEC32r: case X86::DEC16r: case X86::DEC8r: 3445 case X86::DEC64_32r: case X86::DEC64_16r: 3446 case X86::ADD64ri32: case X86::ADD64ri8: case X86::ADD32ri: 3447 case X86::ADD32ri8: case X86::ADD16ri: case X86::ADD16ri8: 3448 case X86::ADD8ri: case X86::ADD64rr: case X86::ADD32rr: 3449 case X86::ADD16rr: case X86::ADD8rr: case X86::ADD64rm: 3450 case X86::ADD32rm: case X86::ADD16rm: case X86::ADD8rm: 3451 case X86::INC64r: case X86::INC32r: case X86::INC16r: case X86::INC8r: 3452 case X86::INC64_32r: case X86::INC64_16r: 3453 case X86::AND64ri32: case X86::AND64ri8: case X86::AND32ri: 3454 case X86::AND32ri8: case X86::AND16ri: case X86::AND16ri8: 3455 case X86::AND8ri: case X86::AND64rr: case X86::AND32rr: 3456 case X86::AND16rr: case X86::AND8rr: case X86::AND64rm: 3457 case X86::AND32rm: case X86::AND16rm: case X86::AND8rm: 3458 case X86::XOR64ri32: case X86::XOR64ri8: case X86::XOR32ri: 3459 case X86::XOR32ri8: case X86::XOR16ri: case X86::XOR16ri8: 3460 case X86::XOR8ri: case X86::XOR64rr: case X86::XOR32rr: 3461 case X86::XOR16rr: case X86::XOR8rr: case X86::XOR64rm: 3462 case X86::XOR32rm: case X86::XOR16rm: case X86::XOR8rm: 3463 case X86::OR64ri32: case X86::OR64ri8: case X86::OR32ri: 3464 case X86::OR32ri8: case X86::OR16ri: case X86::OR16ri8: 3465 case X86::OR8ri: case X86::OR64rr: case X86::OR32rr: 3466 case X86::OR16rr: case X86::OR8rr: case X86::OR64rm: 3467 case X86::OR32rm: case X86::OR16rm: case X86::OR8rm: 3468 case X86::NEG8r: case X86::NEG16r: case X86::NEG32r: case X86::NEG64r: 3469 case X86::SAR8r1: case X86::SAR16r1: case X86::SAR32r1:case X86::SAR64r1: 3470 case X86::SHR8r1: case X86::SHR16r1: case X86::SHR32r1:case X86::SHR64r1: 3471 case X86::SHL8r1: case X86::SHL16r1: case X86::SHL32r1:case X86::SHL64r1: 3472 case X86::ADC32ri: case X86::ADC32ri8: 3473 case X86::ADC32rr: case X86::ADC64ri32: 3474 case X86::ADC64ri8: case X86::ADC64rr: 3475 case X86::SBB32ri: case X86::SBB32ri8: 3476 case X86::SBB32rr: case X86::SBB64ri32: 3477 case X86::SBB64ri8: case X86::SBB64rr: 3478 case X86::ANDN32rr: case X86::ANDN32rm: 3479 case X86::ANDN64rr: case X86::ANDN64rm: 3480 case X86::BEXTR32rr: case X86::BEXTR64rr: 3481 case X86::BEXTR32rm: case X86::BEXTR64rm: 3482 case X86::BLSI32rr: case X86::BLSI32rm: 3483 case X86::BLSI64rr: case X86::BLSI64rm: 3484 case X86::BLSMSK32rr:case X86::BLSMSK32rm: 3485 case X86::BLSMSK64rr:case X86::BLSMSK64rm: 3486 case X86::BLSR32rr: case X86::BLSR32rm: 3487 case X86::BLSR64rr: case X86::BLSR64rm: 3488 case X86::BZHI32rr: case X86::BZHI32rm: 3489 case X86::BZHI64rr: case X86::BZHI64rm: 3490 case X86::LZCNT16rr: case X86::LZCNT16rm: 3491 case X86::LZCNT32rr: case X86::LZCNT32rm: 3492 case X86::LZCNT64rr: case X86::LZCNT64rm: 3493 case X86::POPCNT16rr:case X86::POPCNT16rm: 3494 case X86::POPCNT32rr:case X86::POPCNT32rm: 3495 case X86::POPCNT64rr:case X86::POPCNT64rm: 3496 case X86::TZCNT16rr: case X86::TZCNT16rm: 3497 case X86::TZCNT32rr: case X86::TZCNT32rm: 3498 case X86::TZCNT64rr: case X86::TZCNT64rm: 3499 return true; 3500 } 3501 } 3502 3503 /// optimizeCompareInstr - Check if there exists an earlier instruction that 3504 /// operates on the same source operands and sets flags in the same way as 3505 /// Compare; remove Compare if possible. 3506 bool X86InstrInfo:: 3507 optimizeCompareInstr(MachineInstr *CmpInstr, unsigned SrcReg, unsigned SrcReg2, 3508 int CmpMask, int CmpValue, 3509 const MachineRegisterInfo *MRI) const { 3510 // Check whether we can replace SUB with CMP. 3511 unsigned NewOpcode = 0; 3512 switch (CmpInstr->getOpcode()) { 3513 default: break; 3514 case X86::SUB64ri32: 3515 case X86::SUB64ri8: 3516 case X86::SUB32ri: 3517 case X86::SUB32ri8: 3518 case X86::SUB16ri: 3519 case X86::SUB16ri8: 3520 case X86::SUB8ri: 3521 case X86::SUB64rm: 3522 case X86::SUB32rm: 3523 case X86::SUB16rm: 3524 case X86::SUB8rm: 3525 case X86::SUB64rr: 3526 case X86::SUB32rr: 3527 case X86::SUB16rr: 3528 case X86::SUB8rr: { 3529 if (!MRI->use_nodbg_empty(CmpInstr->getOperand(0).getReg())) 3530 return false; 3531 // There is no use of the destination register, we can replace SUB with CMP. 3532 switch (CmpInstr->getOpcode()) { 3533 default: llvm_unreachable("Unreachable!"); 3534 case X86::SUB64rm: NewOpcode = X86::CMP64rm; break; 3535 case X86::SUB32rm: NewOpcode = X86::CMP32rm; break; 3536 case X86::SUB16rm: NewOpcode = X86::CMP16rm; break; 3537 case X86::SUB8rm: NewOpcode = X86::CMP8rm; break; 3538 case X86::SUB64rr: NewOpcode = X86::CMP64rr; break; 3539 case X86::SUB32rr: NewOpcode = X86::CMP32rr; break; 3540 case X86::SUB16rr: NewOpcode = X86::CMP16rr; break; 3541 case X86::SUB8rr: NewOpcode = X86::CMP8rr; break; 3542 case X86::SUB64ri32: NewOpcode = X86::CMP64ri32; break; 3543 case X86::SUB64ri8: NewOpcode = X86::CMP64ri8; break; 3544 case X86::SUB32ri: NewOpcode = X86::CMP32ri; break; 3545 case X86::SUB32ri8: NewOpcode = X86::CMP32ri8; break; 3546 case X86::SUB16ri: NewOpcode = X86::CMP16ri; break; 3547 case X86::SUB16ri8: NewOpcode = X86::CMP16ri8; break; 3548 case X86::SUB8ri: NewOpcode = X86::CMP8ri; break; 3549 } 3550 CmpInstr->setDesc(get(NewOpcode)); 3551 CmpInstr->RemoveOperand(0); 3552 // Fall through to optimize Cmp if Cmp is CMPrr or CMPri. 3553 if (NewOpcode == X86::CMP64rm || NewOpcode == X86::CMP32rm || 3554 NewOpcode == X86::CMP16rm || NewOpcode == X86::CMP8rm) 3555 return false; 3556 } 3557 } 3558 3559 // Get the unique definition of SrcReg. 3560 MachineInstr *MI = MRI->getUniqueVRegDef(SrcReg); 3561 if (!MI) return false; 3562 3563 // CmpInstr is the first instruction of the BB. 3564 MachineBasicBlock::iterator I = CmpInstr, Def = MI; 3565 3566 // If we are comparing against zero, check whether we can use MI to update 3567 // EFLAGS. If MI is not in the same BB as CmpInstr, do not optimize. 3568 bool IsCmpZero = (SrcReg2 == 0 && CmpValue == 0); 3569 if (IsCmpZero && (MI->getParent() != CmpInstr->getParent() || 3570 !isDefConvertible(MI))) 3571 return false; 3572 3573 // We are searching for an earlier instruction that can make CmpInstr 3574 // redundant and that instruction will be saved in Sub. 3575 MachineInstr *Sub = NULL; 3576 const TargetRegisterInfo *TRI = &getRegisterInfo(); 3577 3578 // We iterate backward, starting from the instruction before CmpInstr and 3579 // stop when reaching the definition of a source register or done with the BB. 3580 // RI points to the instruction before CmpInstr. 3581 // If the definition is in this basic block, RE points to the definition; 3582 // otherwise, RE is the rend of the basic block. 3583 MachineBasicBlock::reverse_iterator 3584 RI = MachineBasicBlock::reverse_iterator(I), 3585 RE = CmpInstr->getParent() == MI->getParent() ? 3586 MachineBasicBlock::reverse_iterator(++Def) /* points to MI */ : 3587 CmpInstr->getParent()->rend(); 3588 MachineInstr *Movr0Inst = 0; 3589 for (; RI != RE; ++RI) { 3590 MachineInstr *Instr = &*RI; 3591 // Check whether CmpInstr can be made redundant by the current instruction. 3592 if (!IsCmpZero && 3593 isRedundantFlagInstr(CmpInstr, SrcReg, SrcReg2, CmpValue, Instr)) { 3594 Sub = Instr; 3595 break; 3596 } 3597 3598 if (Instr->modifiesRegister(X86::EFLAGS, TRI) || 3599 Instr->readsRegister(X86::EFLAGS, TRI)) { 3600 // This instruction modifies or uses EFLAGS. 3601 3602 // MOV32r0 etc. are implemented with xor which clobbers condition code. 3603 // They are safe to move up, if the definition to EFLAGS is dead and 3604 // earlier instructions do not read or write EFLAGS. 3605 if (!Movr0Inst && Instr->getOpcode() == X86::MOV32r0 && 3606 Instr->registerDefIsDead(X86::EFLAGS, TRI)) { 3607 Movr0Inst = Instr; 3608 continue; 3609 } 3610 3611 // We can't remove CmpInstr. 3612 return false; 3613 } 3614 } 3615 3616 // Return false if no candidates exist. 3617 if (!IsCmpZero && !Sub) 3618 return false; 3619 3620 bool IsSwapped = (SrcReg2 != 0 && Sub->getOperand(1).getReg() == SrcReg2 && 3621 Sub->getOperand(2).getReg() == SrcReg); 3622 3623 // Scan forward from the instruction after CmpInstr for uses of EFLAGS. 3624 // It is safe to remove CmpInstr if EFLAGS is redefined or killed. 3625 // If we are done with the basic block, we need to check whether EFLAGS is 3626 // live-out. 3627 bool IsSafe = false; 3628 SmallVector<std::pair<MachineInstr*, unsigned /*NewOpc*/>, 4> OpsToUpdate; 3629 MachineBasicBlock::iterator E = CmpInstr->getParent()->end(); 3630 for (++I; I != E; ++I) { 3631 const MachineInstr &Instr = *I; 3632 bool ModifyEFLAGS = Instr.modifiesRegister(X86::EFLAGS, TRI); 3633 bool UseEFLAGS = Instr.readsRegister(X86::EFLAGS, TRI); 3634 // We should check the usage if this instruction uses and updates EFLAGS. 3635 if (!UseEFLAGS && ModifyEFLAGS) { 3636 // It is safe to remove CmpInstr if EFLAGS is updated again. 3637 IsSafe = true; 3638 break; 3639 } 3640 if (!UseEFLAGS && !ModifyEFLAGS) 3641 continue; 3642 3643 // EFLAGS is used by this instruction. 3644 X86::CondCode OldCC; 3645 bool OpcIsSET = false; 3646 if (IsCmpZero || IsSwapped) { 3647 // We decode the condition code from opcode. 3648 if (Instr.isBranch()) 3649 OldCC = getCondFromBranchOpc(Instr.getOpcode()); 3650 else { 3651 OldCC = getCondFromSETOpc(Instr.getOpcode()); 3652 if (OldCC != X86::COND_INVALID) 3653 OpcIsSET = true; 3654 else 3655 OldCC = X86::getCondFromCMovOpc(Instr.getOpcode()); 3656 } 3657 if (OldCC == X86::COND_INVALID) return false; 3658 } 3659 if (IsCmpZero) { 3660 switch (OldCC) { 3661 default: break; 3662 case X86::COND_A: case X86::COND_AE: 3663 case X86::COND_B: case X86::COND_BE: 3664 case X86::COND_G: case X86::COND_GE: 3665 case X86::COND_L: case X86::COND_LE: 3666 case X86::COND_O: case X86::COND_NO: 3667 // CF and OF are used, we can't perform this optimization. 3668 return false; 3669 } 3670 } else if (IsSwapped) { 3671 // If we have SUB(r1, r2) and CMP(r2, r1), the condition code needs 3672 // to be changed from r2 > r1 to r1 < r2, from r2 < r1 to r1 > r2, etc. 3673 // We swap the condition code and synthesize the new opcode. 3674 X86::CondCode NewCC = getSwappedCondition(OldCC); 3675 if (NewCC == X86::COND_INVALID) return false; 3676 3677 // Synthesize the new opcode. 3678 bool HasMemoryOperand = Instr.hasOneMemOperand(); 3679 unsigned NewOpc; 3680 if (Instr.isBranch()) 3681 NewOpc = GetCondBranchFromCond(NewCC); 3682 else if(OpcIsSET) 3683 NewOpc = getSETFromCond(NewCC, HasMemoryOperand); 3684 else { 3685 unsigned DstReg = Instr.getOperand(0).getReg(); 3686 NewOpc = getCMovFromCond(NewCC, MRI->getRegClass(DstReg)->getSize(), 3687 HasMemoryOperand); 3688 } 3689 3690 // Push the MachineInstr to OpsToUpdate. 3691 // If it is safe to remove CmpInstr, the condition code of these 3692 // instructions will be modified. 3693 OpsToUpdate.push_back(std::make_pair(&*I, NewOpc)); 3694 } 3695 if (ModifyEFLAGS || Instr.killsRegister(X86::EFLAGS, TRI)) { 3696 // It is safe to remove CmpInstr if EFLAGS is updated again or killed. 3697 IsSafe = true; 3698 break; 3699 } 3700 } 3701 3702 // If EFLAGS is not killed nor re-defined, we should check whether it is 3703 // live-out. If it is live-out, do not optimize. 3704 if ((IsCmpZero || IsSwapped) && !IsSafe) { 3705 MachineBasicBlock *MBB = CmpInstr->getParent(); 3706 for (MachineBasicBlock::succ_iterator SI = MBB->succ_begin(), 3707 SE = MBB->succ_end(); SI != SE; ++SI) 3708 if ((*SI)->isLiveIn(X86::EFLAGS)) 3709 return false; 3710 } 3711 3712 // The instruction to be updated is either Sub or MI. 3713 Sub = IsCmpZero ? MI : Sub; 3714 // Move Movr0Inst to the appropriate place before Sub. 3715 if (Movr0Inst) { 3716 // Look backwards until we find a def that doesn't use the current EFLAGS. 3717 Def = Sub; 3718 MachineBasicBlock::reverse_iterator 3719 InsertI = MachineBasicBlock::reverse_iterator(++Def), 3720 InsertE = Sub->getParent()->rend(); 3721 for (; InsertI != InsertE; ++InsertI) { 3722 MachineInstr *Instr = &*InsertI; 3723 if (!Instr->readsRegister(X86::EFLAGS, TRI) && 3724 Instr->modifiesRegister(X86::EFLAGS, TRI)) { 3725 Sub->getParent()->remove(Movr0Inst); 3726 Instr->getParent()->insert(MachineBasicBlock::iterator(Instr), 3727 Movr0Inst); 3728 break; 3729 } 3730 } 3731 if (InsertI == InsertE) 3732 return false; 3733 } 3734 3735 // Make sure Sub instruction defines EFLAGS and mark the def live. 3736 unsigned i = 0, e = Sub->getNumOperands(); 3737 for (; i != e; ++i) { 3738 MachineOperand &MO = Sub->getOperand(i); 3739 if (MO.isReg() && MO.isDef() && MO.getReg() == X86::EFLAGS) { 3740 MO.setIsDead(false); 3741 break; 3742 } 3743 } 3744 assert(i != e && "Unable to locate a def EFLAGS operand"); 3745 3746 CmpInstr->eraseFromParent(); 3747 3748 // Modify the condition code of instructions in OpsToUpdate. 3749 for (unsigned i = 0, e = OpsToUpdate.size(); i < e; i++) 3750 OpsToUpdate[i].first->setDesc(get(OpsToUpdate[i].second)); 3751 return true; 3752 } 3753 3754 /// optimizeLoadInstr - Try to remove the load by folding it to a register 3755 /// operand at the use. We fold the load instructions if load defines a virtual 3756 /// register, the virtual register is used once in the same BB, and the 3757 /// instructions in-between do not load or store, and have no side effects. 3758 MachineInstr* X86InstrInfo:: 3759 optimizeLoadInstr(MachineInstr *MI, const MachineRegisterInfo *MRI, 3760 unsigned &FoldAsLoadDefReg, 3761 MachineInstr *&DefMI) const { 3762 if (FoldAsLoadDefReg == 0) 3763 return 0; 3764 // To be conservative, if there exists another load, clear the load candidate. 3765 if (MI->mayLoad()) { 3766 FoldAsLoadDefReg = 0; 3767 return 0; 3768 } 3769 3770 // Check whether we can move DefMI here. 3771 DefMI = MRI->getVRegDef(FoldAsLoadDefReg); 3772 assert(DefMI); 3773 bool SawStore = false; 3774 if (!DefMI->isSafeToMove(this, 0, SawStore)) 3775 return 0; 3776 3777 // We try to commute MI if possible. 3778 unsigned IdxEnd = (MI->isCommutable()) ? 2 : 1; 3779 for (unsigned Idx = 0; Idx < IdxEnd; Idx++) { 3780 // Collect information about virtual register operands of MI. 3781 unsigned SrcOperandId = 0; 3782 bool FoundSrcOperand = false; 3783 for (unsigned i = 0, e = MI->getDesc().getNumOperands(); i != e; ++i) { 3784 MachineOperand &MO = MI->getOperand(i); 3785 if (!MO.isReg()) 3786 continue; 3787 unsigned Reg = MO.getReg(); 3788 if (Reg != FoldAsLoadDefReg) 3789 continue; 3790 // Do not fold if we have a subreg use or a def or multiple uses. 3791 if (MO.getSubReg() || MO.isDef() || FoundSrcOperand) 3792 return 0; 3793 3794 SrcOperandId = i; 3795 FoundSrcOperand = true; 3796 } 3797 if (!FoundSrcOperand) return 0; 3798 3799 // Check whether we can fold the def into SrcOperandId. 3800 SmallVector<unsigned, 8> Ops; 3801 Ops.push_back(SrcOperandId); 3802 MachineInstr *FoldMI = foldMemoryOperand(MI, Ops, DefMI); 3803 if (FoldMI) { 3804 FoldAsLoadDefReg = 0; 3805 return FoldMI; 3806 } 3807 3808 if (Idx == 1) { 3809 // MI was changed but it didn't help, commute it back! 3810 commuteInstruction(MI, false); 3811 return 0; 3812 } 3813 3814 // Check whether we can commute MI and enable folding. 3815 if (MI->isCommutable()) { 3816 MachineInstr *NewMI = commuteInstruction(MI, false); 3817 // Unable to commute. 3818 if (!NewMI) return 0; 3819 if (NewMI != MI) { 3820 // New instruction. It doesn't need to be kept. 3821 NewMI->eraseFromParent(); 3822 return 0; 3823 } 3824 } 3825 } 3826 return 0; 3827 } 3828 3829 /// Expand2AddrUndef - Expand a single-def pseudo instruction to a two-addr 3830 /// instruction with two undef reads of the register being defined. This is 3831 /// used for mapping: 3832 /// %xmm4 = V_SET0 3833 /// to: 3834 /// %xmm4 = PXORrr %xmm4<undef>, %xmm4<undef> 3835 /// 3836 static bool Expand2AddrUndef(MachineInstrBuilder &MIB, 3837 const MCInstrDesc &Desc) { 3838 assert(Desc.getNumOperands() == 3 && "Expected two-addr instruction."); 3839 unsigned Reg = MIB->getOperand(0).getReg(); 3840 MIB->setDesc(Desc); 3841 3842 // MachineInstr::addOperand() will insert explicit operands before any 3843 // implicit operands. 3844 MIB.addReg(Reg, RegState::Undef).addReg(Reg, RegState::Undef); 3845 // But we don't trust that. 3846 assert(MIB->getOperand(1).getReg() == Reg && 3847 MIB->getOperand(2).getReg() == Reg && "Misplaced operand"); 3848 return true; 3849 } 3850 3851 bool X86InstrInfo::expandPostRAPseudo(MachineBasicBlock::iterator MI) const { 3852 bool HasAVX = TM.getSubtarget<X86Subtarget>().hasAVX(); 3853 MachineInstrBuilder MIB(*MI->getParent()->getParent(), MI); 3854 switch (MI->getOpcode()) { 3855 case X86::MOV32r0: 3856 return Expand2AddrUndef(MIB, get(X86::XOR32rr)); 3857 case X86::SETB_C8r: 3858 return Expand2AddrUndef(MIB, get(X86::SBB8rr)); 3859 case X86::SETB_C16r: 3860 return Expand2AddrUndef(MIB, get(X86::SBB16rr)); 3861 case X86::SETB_C32r: 3862 return Expand2AddrUndef(MIB, get(X86::SBB32rr)); 3863 case X86::SETB_C64r: 3864 return Expand2AddrUndef(MIB, get(X86::SBB64rr)); 3865 case X86::V_SET0: 3866 case X86::FsFLD0SS: 3867 case X86::FsFLD0SD: 3868 return Expand2AddrUndef(MIB, get(HasAVX ? X86::VXORPSrr : X86::XORPSrr)); 3869 case X86::AVX_SET0: 3870 assert(HasAVX && "AVX not supported"); 3871 return Expand2AddrUndef(MIB, get(X86::VXORPSYrr)); 3872 case X86::AVX512_512_SET0: 3873 return Expand2AddrUndef(MIB, get(X86::VPXORDZrr)); 3874 case X86::V_SETALLONES: 3875 return Expand2AddrUndef(MIB, get(HasAVX ? X86::VPCMPEQDrr : X86::PCMPEQDrr)); 3876 case X86::AVX2_SETALLONES: 3877 return Expand2AddrUndef(MIB, get(X86::VPCMPEQDYrr)); 3878 case X86::TEST8ri_NOREX: 3879 MI->setDesc(get(X86::TEST8ri)); 3880 return true; 3881 case X86::KSET0W: return Expand2AddrUndef(MIB, get(X86::KXORWrr)); 3882 case X86::KSET1B: 3883 case X86::KSET1W: return Expand2AddrUndef(MIB, get(X86::KXNORWrr)); 3884 } 3885 return false; 3886 } 3887 3888 static MachineInstr *FuseTwoAddrInst(MachineFunction &MF, unsigned Opcode, 3889 const SmallVectorImpl<MachineOperand> &MOs, 3890 MachineInstr *MI, 3891 const TargetInstrInfo &TII) { 3892 // Create the base instruction with the memory operand as the first part. 3893 // Omit the implicit operands, something BuildMI can't do. 3894 MachineInstr *NewMI = MF.CreateMachineInstr(TII.get(Opcode), 3895 MI->getDebugLoc(), true); 3896 MachineInstrBuilder MIB(MF, NewMI); 3897 unsigned NumAddrOps = MOs.size(); 3898 for (unsigned i = 0; i != NumAddrOps; ++i) 3899 MIB.addOperand(MOs[i]); 3900 if (NumAddrOps < 4) // FrameIndex only 3901 addOffset(MIB, 0); 3902 3903 // Loop over the rest of the ri operands, converting them over. 3904 unsigned NumOps = MI->getDesc().getNumOperands()-2; 3905 for (unsigned i = 0; i != NumOps; ++i) { 3906 MachineOperand &MO = MI->getOperand(i+2); 3907 MIB.addOperand(MO); 3908 } 3909 for (unsigned i = NumOps+2, e = MI->getNumOperands(); i != e; ++i) { 3910 MachineOperand &MO = MI->getOperand(i); 3911 MIB.addOperand(MO); 3912 } 3913 return MIB; 3914 } 3915 3916 static MachineInstr *FuseInst(MachineFunction &MF, 3917 unsigned Opcode, unsigned OpNo, 3918 const SmallVectorImpl<MachineOperand> &MOs, 3919 MachineInstr *MI, const TargetInstrInfo &TII) { 3920 // Omit the implicit operands, something BuildMI can't do. 3921 MachineInstr *NewMI = MF.CreateMachineInstr(TII.get(Opcode), 3922 MI->getDebugLoc(), true); 3923 MachineInstrBuilder MIB(MF, NewMI); 3924 3925 for (unsigned i = 0, e = MI->getNumOperands(); i != e; ++i) { 3926 MachineOperand &MO = MI->getOperand(i); 3927 if (i == OpNo) { 3928 assert(MO.isReg() && "Expected to fold into reg operand!"); 3929 unsigned NumAddrOps = MOs.size(); 3930 for (unsigned i = 0; i != NumAddrOps; ++i) 3931 MIB.addOperand(MOs[i]); 3932 if (NumAddrOps < 4) // FrameIndex only 3933 addOffset(MIB, 0); 3934 } else { 3935 MIB.addOperand(MO); 3936 } 3937 } 3938 return MIB; 3939 } 3940 3941 static MachineInstr *MakeM0Inst(const TargetInstrInfo &TII, unsigned Opcode, 3942 const SmallVectorImpl<MachineOperand> &MOs, 3943 MachineInstr *MI) { 3944 MachineFunction &MF = *MI->getParent()->getParent(); 3945 MachineInstrBuilder MIB = BuildMI(MF, MI->getDebugLoc(), TII.get(Opcode)); 3946 3947 unsigned NumAddrOps = MOs.size(); 3948 for (unsigned i = 0; i != NumAddrOps; ++i) 3949 MIB.addOperand(MOs[i]); 3950 if (NumAddrOps < 4) // FrameIndex only 3951 addOffset(MIB, 0); 3952 return MIB.addImm(0); 3953 } 3954 3955 MachineInstr* 3956 X86InstrInfo::foldMemoryOperandImpl(MachineFunction &MF, 3957 MachineInstr *MI, unsigned i, 3958 const SmallVectorImpl<MachineOperand> &MOs, 3959 unsigned Size, unsigned Align) const { 3960 const DenseMap<unsigned, std::pair<unsigned,unsigned> > *OpcodeTablePtr = 0; 3961 bool isCallRegIndirect = TM.getSubtarget<X86Subtarget>().callRegIndirect(); 3962 bool isTwoAddrFold = false; 3963 3964 // Atom favors register form of call. So, we do not fold loads into calls 3965 // when X86Subtarget is Atom. 3966 if (isCallRegIndirect && 3967 (MI->getOpcode() == X86::CALL32r || MI->getOpcode() == X86::CALL64r)) { 3968 return NULL; 3969 } 3970 3971 unsigned NumOps = MI->getDesc().getNumOperands(); 3972 bool isTwoAddr = NumOps > 1 && 3973 MI->getDesc().getOperandConstraint(1, MCOI::TIED_TO) != -1; 3974 3975 // FIXME: AsmPrinter doesn't know how to handle 3976 // X86II::MO_GOT_ABSOLUTE_ADDRESS after folding. 3977 if (MI->getOpcode() == X86::ADD32ri && 3978 MI->getOperand(2).getTargetFlags() == X86II::MO_GOT_ABSOLUTE_ADDRESS) 3979 return NULL; 3980 3981 MachineInstr *NewMI = NULL; 3982 // Folding a memory location into the two-address part of a two-address 3983 // instruction is different than folding it other places. It requires 3984 // replacing the *two* registers with the memory location. 3985 if (isTwoAddr && NumOps >= 2 && i < 2 && 3986 MI->getOperand(0).isReg() && 3987 MI->getOperand(1).isReg() && 3988 MI->getOperand(0).getReg() == MI->getOperand(1).getReg()) { 3989 OpcodeTablePtr = &RegOp2MemOpTable2Addr; 3990 isTwoAddrFold = true; 3991 } else if (i == 0) { // If operand 0 3992 if (MI->getOpcode() == X86::MOV32r0) { 3993 NewMI = MakeM0Inst(*this, X86::MOV32mi, MOs, MI); 3994 if (NewMI) 3995 return NewMI; 3996 } 3997 3998 OpcodeTablePtr = &RegOp2MemOpTable0; 3999 } else if (i == 1) { 4000 OpcodeTablePtr = &RegOp2MemOpTable1; 4001 } else if (i == 2) { 4002 OpcodeTablePtr = &RegOp2MemOpTable2; 4003 } else if (i == 3) { 4004 OpcodeTablePtr = &RegOp2MemOpTable3; 4005 } 4006 4007 // If table selected... 4008 if (OpcodeTablePtr) { 4009 // Find the Opcode to fuse 4010 DenseMap<unsigned, std::pair<unsigned,unsigned> >::const_iterator I = 4011 OpcodeTablePtr->find(MI->getOpcode()); 4012 if (I != OpcodeTablePtr->end()) { 4013 unsigned Opcode = I->second.first; 4014 unsigned MinAlign = (I->second.second & TB_ALIGN_MASK) >> TB_ALIGN_SHIFT; 4015 if (Align < MinAlign) 4016 return NULL; 4017 bool NarrowToMOV32rm = false; 4018 if (Size) { 4019 unsigned RCSize = getRegClass(MI->getDesc(), i, &RI, MF)->getSize(); 4020 if (Size < RCSize) { 4021 // Check if it's safe to fold the load. If the size of the object is 4022 // narrower than the load width, then it's not. 4023 if (Opcode != X86::MOV64rm || RCSize != 8 || Size != 4) 4024 return NULL; 4025 // If this is a 64-bit load, but the spill slot is 32, then we can do 4026 // a 32-bit load which is implicitly zero-extended. This likely is due 4027 // to liveintervalanalysis remat'ing a load from stack slot. 4028 if (MI->getOperand(0).getSubReg() || MI->getOperand(1).getSubReg()) 4029 return NULL; 4030 Opcode = X86::MOV32rm; 4031 NarrowToMOV32rm = true; 4032 } 4033 } 4034 4035 if (isTwoAddrFold) 4036 NewMI = FuseTwoAddrInst(MF, Opcode, MOs, MI, *this); 4037 else 4038 NewMI = FuseInst(MF, Opcode, i, MOs, MI, *this); 4039 4040 if (NarrowToMOV32rm) { 4041 // If this is the special case where we use a MOV32rm to load a 32-bit 4042 // value and zero-extend the top bits. Change the destination register 4043 // to a 32-bit one. 4044 unsigned DstReg = NewMI->getOperand(0).getReg(); 4045 if (TargetRegisterInfo::isPhysicalRegister(DstReg)) 4046 NewMI->getOperand(0).setReg(RI.getSubReg(DstReg, 4047 X86::sub_32bit)); 4048 else 4049 NewMI->getOperand(0).setSubReg(X86::sub_32bit); 4050 } 4051 return NewMI; 4052 } 4053 } 4054 4055 // No fusion 4056 if (PrintFailedFusing && !MI->isCopy()) 4057 dbgs() << "We failed to fuse operand " << i << " in " << *MI; 4058 return NULL; 4059 } 4060 4061 /// hasPartialRegUpdate - Return true for all instructions that only update 4062 /// the first 32 or 64-bits of the destination register and leave the rest 4063 /// unmodified. This can be used to avoid folding loads if the instructions 4064 /// only update part of the destination register, and the non-updated part is 4065 /// not needed. e.g. cvtss2sd, sqrtss. Unfolding the load from these 4066 /// instructions breaks the partial register dependency and it can improve 4067 /// performance. e.g.: 4068 /// 4069 /// movss (%rdi), %xmm0 4070 /// cvtss2sd %xmm0, %xmm0 4071 /// 4072 /// Instead of 4073 /// cvtss2sd (%rdi), %xmm0 4074 /// 4075 /// FIXME: This should be turned into a TSFlags. 4076 /// 4077 static bool hasPartialRegUpdate(unsigned Opcode) { 4078 switch (Opcode) { 4079 case X86::CVTSI2SSrr: 4080 case X86::CVTSI2SS64rr: 4081 case X86::CVTSI2SDrr: 4082 case X86::CVTSI2SD64rr: 4083 case X86::CVTSD2SSrr: 4084 case X86::Int_CVTSD2SSrr: 4085 case X86::CVTSS2SDrr: 4086 case X86::Int_CVTSS2SDrr: 4087 case X86::RCPSSr: 4088 case X86::RCPSSr_Int: 4089 case X86::ROUNDSDr: 4090 case X86::ROUNDSDr_Int: 4091 case X86::ROUNDSSr: 4092 case X86::ROUNDSSr_Int: 4093 case X86::RSQRTSSr: 4094 case X86::RSQRTSSr_Int: 4095 case X86::SQRTSSr: 4096 case X86::SQRTSSr_Int: 4097 return true; 4098 } 4099 4100 return false; 4101 } 4102 4103 /// getPartialRegUpdateClearance - Inform the ExeDepsFix pass how many idle 4104 /// instructions we would like before a partial register update. 4105 unsigned X86InstrInfo:: 4106 getPartialRegUpdateClearance(const MachineInstr *MI, unsigned OpNum, 4107 const TargetRegisterInfo *TRI) const { 4108 if (OpNum != 0 || !hasPartialRegUpdate(MI->getOpcode())) 4109 return 0; 4110 4111 // If MI is marked as reading Reg, the partial register update is wanted. 4112 const MachineOperand &MO = MI->getOperand(0); 4113 unsigned Reg = MO.getReg(); 4114 if (TargetRegisterInfo::isVirtualRegister(Reg)) { 4115 if (MO.readsReg() || MI->readsVirtualRegister(Reg)) 4116 return 0; 4117 } else { 4118 if (MI->readsRegister(Reg, TRI)) 4119 return 0; 4120 } 4121 4122 // If any of the preceding 16 instructions are reading Reg, insert a 4123 // dependency breaking instruction. The magic number is based on a few 4124 // Nehalem experiments. 4125 return 16; 4126 } 4127 4128 // Return true for any instruction the copies the high bits of the first source 4129 // operand into the unused high bits of the destination operand. 4130 static bool hasUndefRegUpdate(unsigned Opcode) { 4131 switch (Opcode) { 4132 case X86::VCVTSI2SSrr: 4133 case X86::Int_VCVTSI2SSrr: 4134 case X86::VCVTSI2SS64rr: 4135 case X86::Int_VCVTSI2SS64rr: 4136 case X86::VCVTSI2SDrr: 4137 case X86::Int_VCVTSI2SDrr: 4138 case X86::VCVTSI2SD64rr: 4139 case X86::Int_VCVTSI2SD64rr: 4140 case X86::VCVTSD2SSrr: 4141 case X86::Int_VCVTSD2SSrr: 4142 case X86::VCVTSS2SDrr: 4143 case X86::Int_VCVTSS2SDrr: 4144 case X86::VRCPSSr: 4145 case X86::VROUNDSDr: 4146 case X86::VROUNDSDr_Int: 4147 case X86::VROUNDSSr: 4148 case X86::VROUNDSSr_Int: 4149 case X86::VRSQRTSSr: 4150 case X86::VSQRTSSr: 4151 4152 // AVX-512 4153 case X86::VCVTSD2SSZrr: 4154 case X86::VCVTSS2SDZrr: 4155 return true; 4156 } 4157 4158 return false; 4159 } 4160 4161 /// Inform the ExeDepsFix pass how many idle instructions we would like before 4162 /// certain undef register reads. 4163 /// 4164 /// This catches the VCVTSI2SD family of instructions: 4165 /// 4166 /// vcvtsi2sdq %rax, %xmm0<undef>, %xmm14 4167 /// 4168 /// We should to be careful *not* to catch VXOR idioms which are presumably 4169 /// handled specially in the pipeline: 4170 /// 4171 /// vxorps %xmm1<undef>, %xmm1<undef>, %xmm1 4172 /// 4173 /// Like getPartialRegUpdateClearance, this makes a strong assumption that the 4174 /// high bits that are passed-through are not live. 4175 unsigned X86InstrInfo:: 4176 getUndefRegClearance(const MachineInstr *MI, unsigned &OpNum, 4177 const TargetRegisterInfo *TRI) const { 4178 if (!hasUndefRegUpdate(MI->getOpcode())) 4179 return 0; 4180 4181 // Set the OpNum parameter to the first source operand. 4182 OpNum = 1; 4183 4184 const MachineOperand &MO = MI->getOperand(OpNum); 4185 if (MO.isUndef() && TargetRegisterInfo::isPhysicalRegister(MO.getReg())) { 4186 // Use the same magic number as getPartialRegUpdateClearance. 4187 return 16; 4188 } 4189 return 0; 4190 } 4191 4192 void X86InstrInfo:: 4193 breakPartialRegDependency(MachineBasicBlock::iterator MI, unsigned OpNum, 4194 const TargetRegisterInfo *TRI) const { 4195 unsigned Reg = MI->getOperand(OpNum).getReg(); 4196 // If MI kills this register, the false dependence is already broken. 4197 if (MI->killsRegister(Reg, TRI)) 4198 return; 4199 if (X86::VR128RegClass.contains(Reg)) { 4200 // These instructions are all floating point domain, so xorps is the best 4201 // choice. 4202 bool HasAVX = TM.getSubtarget<X86Subtarget>().hasAVX(); 4203 unsigned Opc = HasAVX ? X86::VXORPSrr : X86::XORPSrr; 4204 BuildMI(*MI->getParent(), MI, MI->getDebugLoc(), get(Opc), Reg) 4205 .addReg(Reg, RegState::Undef).addReg(Reg, RegState::Undef); 4206 } else if (X86::VR256RegClass.contains(Reg)) { 4207 // Use vxorps to clear the full ymm register. 4208 // It wants to read and write the xmm sub-register. 4209 unsigned XReg = TRI->getSubReg(Reg, X86::sub_xmm); 4210 BuildMI(*MI->getParent(), MI, MI->getDebugLoc(), get(X86::VXORPSrr), XReg) 4211 .addReg(XReg, RegState::Undef).addReg(XReg, RegState::Undef) 4212 .addReg(Reg, RegState::ImplicitDefine); 4213 } else 4214 return; 4215 MI->addRegisterKilled(Reg, TRI, true); 4216 } 4217 4218 MachineInstr* 4219 X86InstrInfo::foldMemoryOperandImpl(MachineFunction &MF, MachineInstr *MI, 4220 const SmallVectorImpl<unsigned> &Ops, 4221 int FrameIndex) const { 4222 // Check switch flag 4223 if (NoFusing) return NULL; 4224 4225 // Unless optimizing for size, don't fold to avoid partial 4226 // register update stalls 4227 if (!MF.getFunction()->getAttributes(). 4228 hasAttribute(AttributeSet::FunctionIndex, Attribute::OptimizeForSize) && 4229 hasPartialRegUpdate(MI->getOpcode())) 4230 return 0; 4231 4232 const MachineFrameInfo *MFI = MF.getFrameInfo(); 4233 unsigned Size = MFI->getObjectSize(FrameIndex); 4234 unsigned Alignment = MFI->getObjectAlignment(FrameIndex); 4235 // If the function stack isn't realigned we don't want to fold instructions 4236 // that need increased alignment. 4237 if (!RI.needsStackRealignment(MF)) 4238 Alignment = std::min(Alignment, TM.getFrameLowering()->getStackAlignment()); 4239 if (Ops.size() == 2 && Ops[0] == 0 && Ops[1] == 1) { 4240 unsigned NewOpc = 0; 4241 unsigned RCSize = 0; 4242 switch (MI->getOpcode()) { 4243 default: return NULL; 4244 case X86::TEST8rr: NewOpc = X86::CMP8ri; RCSize = 1; break; 4245 case X86::TEST16rr: NewOpc = X86::CMP16ri8; RCSize = 2; break; 4246 case X86::TEST32rr: NewOpc = X86::CMP32ri8; RCSize = 4; break; 4247 case X86::TEST64rr: NewOpc = X86::CMP64ri8; RCSize = 8; break; 4248 } 4249 // Check if it's safe to fold the load. If the size of the object is 4250 // narrower than the load width, then it's not. 4251 if (Size < RCSize) 4252 return NULL; 4253 // Change to CMPXXri r, 0 first. 4254 MI->setDesc(get(NewOpc)); 4255 MI->getOperand(1).ChangeToImmediate(0); 4256 } else if (Ops.size() != 1) 4257 return NULL; 4258 4259 SmallVector<MachineOperand,4> MOs; 4260 MOs.push_back(MachineOperand::CreateFI(FrameIndex)); 4261 return foldMemoryOperandImpl(MF, MI, Ops[0], MOs, Size, Alignment); 4262 } 4263 4264 MachineInstr* X86InstrInfo::foldMemoryOperandImpl(MachineFunction &MF, 4265 MachineInstr *MI, 4266 const SmallVectorImpl<unsigned> &Ops, 4267 MachineInstr *LoadMI) const { 4268 // If loading from a FrameIndex, fold directly from the FrameIndex. 4269 unsigned NumOps = LoadMI->getDesc().getNumOperands(); 4270 int FrameIndex; 4271 if (isLoadFromStackSlot(LoadMI, FrameIndex)) 4272 return foldMemoryOperandImpl(MF, MI, Ops, FrameIndex); 4273 4274 // Check switch flag 4275 if (NoFusing) return NULL; 4276 4277 // Unless optimizing for size, don't fold to avoid partial 4278 // register update stalls 4279 if (!MF.getFunction()->getAttributes(). 4280 hasAttribute(AttributeSet::FunctionIndex, Attribute::OptimizeForSize) && 4281 hasPartialRegUpdate(MI->getOpcode())) 4282 return 0; 4283 4284 // Determine the alignment of the load. 4285 unsigned Alignment = 0; 4286 if (LoadMI->hasOneMemOperand()) 4287 Alignment = (*LoadMI->memoperands_begin())->getAlignment(); 4288 else 4289 switch (LoadMI->getOpcode()) { 4290 case X86::AVX2_SETALLONES: 4291 case X86::AVX_SET0: 4292 Alignment = 32; 4293 break; 4294 case X86::V_SET0: 4295 case X86::V_SETALLONES: 4296 Alignment = 16; 4297 break; 4298 case X86::FsFLD0SD: 4299 Alignment = 8; 4300 break; 4301 case X86::FsFLD0SS: 4302 Alignment = 4; 4303 break; 4304 default: 4305 return 0; 4306 } 4307 if (Ops.size() == 2 && Ops[0] == 0 && Ops[1] == 1) { 4308 unsigned NewOpc = 0; 4309 switch (MI->getOpcode()) { 4310 default: return NULL; 4311 case X86::TEST8rr: NewOpc = X86::CMP8ri; break; 4312 case X86::TEST16rr: NewOpc = X86::CMP16ri8; break; 4313 case X86::TEST32rr: NewOpc = X86::CMP32ri8; break; 4314 case X86::TEST64rr: NewOpc = X86::CMP64ri8; break; 4315 } 4316 // Change to CMPXXri r, 0 first. 4317 MI->setDesc(get(NewOpc)); 4318 MI->getOperand(1).ChangeToImmediate(0); 4319 } else if (Ops.size() != 1) 4320 return NULL; 4321 4322 // Make sure the subregisters match. 4323 // Otherwise we risk changing the size of the load. 4324 if (LoadMI->getOperand(0).getSubReg() != MI->getOperand(Ops[0]).getSubReg()) 4325 return NULL; 4326 4327 SmallVector<MachineOperand,X86::AddrNumOperands> MOs; 4328 switch (LoadMI->getOpcode()) { 4329 case X86::V_SET0: 4330 case X86::V_SETALLONES: 4331 case X86::AVX2_SETALLONES: 4332 case X86::AVX_SET0: 4333 case X86::FsFLD0SD: 4334 case X86::FsFLD0SS: { 4335 // Folding a V_SET0 or V_SETALLONES as a load, to ease register pressure. 4336 // Create a constant-pool entry and operands to load from it. 4337 4338 // Medium and large mode can't fold loads this way. 4339 if (TM.getCodeModel() != CodeModel::Small && 4340 TM.getCodeModel() != CodeModel::Kernel) 4341 return NULL; 4342 4343 // x86-32 PIC requires a PIC base register for constant pools. 4344 unsigned PICBase = 0; 4345 if (TM.getRelocationModel() == Reloc::PIC_) { 4346 if (TM.getSubtarget<X86Subtarget>().is64Bit()) 4347 PICBase = X86::RIP; 4348 else 4349 // FIXME: PICBase = getGlobalBaseReg(&MF); 4350 // This doesn't work for several reasons. 4351 // 1. GlobalBaseReg may have been spilled. 4352 // 2. It may not be live at MI. 4353 return NULL; 4354 } 4355 4356 // Create a constant-pool entry. 4357 MachineConstantPool &MCP = *MF.getConstantPool(); 4358 Type *Ty; 4359 unsigned Opc = LoadMI->getOpcode(); 4360 if (Opc == X86::FsFLD0SS) 4361 Ty = Type::getFloatTy(MF.getFunction()->getContext()); 4362 else if (Opc == X86::FsFLD0SD) 4363 Ty = Type::getDoubleTy(MF.getFunction()->getContext()); 4364 else if (Opc == X86::AVX2_SETALLONES || Opc == X86::AVX_SET0) 4365 Ty = VectorType::get(Type::getInt32Ty(MF.getFunction()->getContext()), 8); 4366 else 4367 Ty = VectorType::get(Type::getInt32Ty(MF.getFunction()->getContext()), 4); 4368 4369 bool IsAllOnes = (Opc == X86::V_SETALLONES || Opc == X86::AVX2_SETALLONES); 4370 const Constant *C = IsAllOnes ? Constant::getAllOnesValue(Ty) : 4371 Constant::getNullValue(Ty); 4372 unsigned CPI = MCP.getConstantPoolIndex(C, Alignment); 4373 4374 // Create operands to load from the constant pool entry. 4375 MOs.push_back(MachineOperand::CreateReg(PICBase, false)); 4376 MOs.push_back(MachineOperand::CreateImm(1)); 4377 MOs.push_back(MachineOperand::CreateReg(0, false)); 4378 MOs.push_back(MachineOperand::CreateCPI(CPI, 0)); 4379 MOs.push_back(MachineOperand::CreateReg(0, false)); 4380 break; 4381 } 4382 default: { 4383 if ((LoadMI->getOpcode() == X86::MOVSSrm || 4384 LoadMI->getOpcode() == X86::VMOVSSrm) && 4385 MF.getRegInfo().getRegClass(LoadMI->getOperand(0).getReg())->getSize() 4386 > 4) 4387 // These instructions only load 32 bits, we can't fold them if the 4388 // destination register is wider than 32 bits (4 bytes). 4389 return NULL; 4390 if ((LoadMI->getOpcode() == X86::MOVSDrm || 4391 LoadMI->getOpcode() == X86::VMOVSDrm) && 4392 MF.getRegInfo().getRegClass(LoadMI->getOperand(0).getReg())->getSize() 4393 > 8) 4394 // These instructions only load 64 bits, we can't fold them if the 4395 // destination register is wider than 64 bits (8 bytes). 4396 return NULL; 4397 4398 // Folding a normal load. Just copy the load's address operands. 4399 for (unsigned i = NumOps - X86::AddrNumOperands; i != NumOps; ++i) 4400 MOs.push_back(LoadMI->getOperand(i)); 4401 break; 4402 } 4403 } 4404 return foldMemoryOperandImpl(MF, MI, Ops[0], MOs, 0, Alignment); 4405 } 4406 4407 4408 bool X86InstrInfo::canFoldMemoryOperand(const MachineInstr *MI, 4409 const SmallVectorImpl<unsigned> &Ops) const { 4410 // Check switch flag 4411 if (NoFusing) return 0; 4412 4413 if (Ops.size() == 2 && Ops[0] == 0 && Ops[1] == 1) { 4414 switch (MI->getOpcode()) { 4415 default: return false; 4416 case X86::TEST8rr: 4417 case X86::TEST16rr: 4418 case X86::TEST32rr: 4419 case X86::TEST64rr: 4420 return true; 4421 case X86::ADD32ri: 4422 // FIXME: AsmPrinter doesn't know how to handle 4423 // X86II::MO_GOT_ABSOLUTE_ADDRESS after folding. 4424 if (MI->getOperand(2).getTargetFlags() == X86II::MO_GOT_ABSOLUTE_ADDRESS) 4425 return false; 4426 break; 4427 } 4428 } 4429 4430 if (Ops.size() != 1) 4431 return false; 4432 4433 unsigned OpNum = Ops[0]; 4434 unsigned Opc = MI->getOpcode(); 4435 unsigned NumOps = MI->getDesc().getNumOperands(); 4436 bool isTwoAddr = NumOps > 1 && 4437 MI->getDesc().getOperandConstraint(1, MCOI::TIED_TO) != -1; 4438 4439 // Folding a memory location into the two-address part of a two-address 4440 // instruction is different than folding it other places. It requires 4441 // replacing the *two* registers with the memory location. 4442 const DenseMap<unsigned, std::pair<unsigned,unsigned> > *OpcodeTablePtr = 0; 4443 if (isTwoAddr && NumOps >= 2 && OpNum < 2) { 4444 OpcodeTablePtr = &RegOp2MemOpTable2Addr; 4445 } else if (OpNum == 0) { // If operand 0 4446 if (Opc == X86::MOV32r0) 4447 return true; 4448 4449 OpcodeTablePtr = &RegOp2MemOpTable0; 4450 } else if (OpNum == 1) { 4451 OpcodeTablePtr = &RegOp2MemOpTable1; 4452 } else if (OpNum == 2) { 4453 OpcodeTablePtr = &RegOp2MemOpTable2; 4454 } else if (OpNum == 3) { 4455 OpcodeTablePtr = &RegOp2MemOpTable3; 4456 } 4457 4458 if (OpcodeTablePtr && OpcodeTablePtr->count(Opc)) 4459 return true; 4460 return TargetInstrInfo::canFoldMemoryOperand(MI, Ops); 4461 } 4462 4463 bool X86InstrInfo::unfoldMemoryOperand(MachineFunction &MF, MachineInstr *MI, 4464 unsigned Reg, bool UnfoldLoad, bool UnfoldStore, 4465 SmallVectorImpl<MachineInstr*> &NewMIs) const { 4466 DenseMap<unsigned, std::pair<unsigned,unsigned> >::const_iterator I = 4467 MemOp2RegOpTable.find(MI->getOpcode()); 4468 if (I == MemOp2RegOpTable.end()) 4469 return false; 4470 unsigned Opc = I->second.first; 4471 unsigned Index = I->second.second & TB_INDEX_MASK; 4472 bool FoldedLoad = I->second.second & TB_FOLDED_LOAD; 4473 bool FoldedStore = I->second.second & TB_FOLDED_STORE; 4474 if (UnfoldLoad && !FoldedLoad) 4475 return false; 4476 UnfoldLoad &= FoldedLoad; 4477 if (UnfoldStore && !FoldedStore) 4478 return false; 4479 UnfoldStore &= FoldedStore; 4480 4481 const MCInstrDesc &MCID = get(Opc); 4482 const TargetRegisterClass *RC = getRegClass(MCID, Index, &RI, MF); 4483 if (!MI->hasOneMemOperand() && 4484 RC == &X86::VR128RegClass && 4485 !TM.getSubtarget<X86Subtarget>().isUnalignedMemAccessFast()) 4486 // Without memoperands, loadRegFromAddr and storeRegToStackSlot will 4487 // conservatively assume the address is unaligned. That's bad for 4488 // performance. 4489 return false; 4490 SmallVector<MachineOperand, X86::AddrNumOperands> AddrOps; 4491 SmallVector<MachineOperand,2> BeforeOps; 4492 SmallVector<MachineOperand,2> AfterOps; 4493 SmallVector<MachineOperand,4> ImpOps; 4494 for (unsigned i = 0, e = MI->getNumOperands(); i != e; ++i) { 4495 MachineOperand &Op = MI->getOperand(i); 4496 if (i >= Index && i < Index + X86::AddrNumOperands) 4497 AddrOps.push_back(Op); 4498 else if (Op.isReg() && Op.isImplicit()) 4499 ImpOps.push_back(Op); 4500 else if (i < Index) 4501 BeforeOps.push_back(Op); 4502 else if (i > Index) 4503 AfterOps.push_back(Op); 4504 } 4505 4506 // Emit the load instruction. 4507 if (UnfoldLoad) { 4508 std::pair<MachineInstr::mmo_iterator, 4509 MachineInstr::mmo_iterator> MMOs = 4510 MF.extractLoadMemRefs(MI->memoperands_begin(), 4511 MI->memoperands_end()); 4512 loadRegFromAddr(MF, Reg, AddrOps, RC, MMOs.first, MMOs.second, NewMIs); 4513 if (UnfoldStore) { 4514 // Address operands cannot be marked isKill. 4515 for (unsigned i = 1; i != 1 + X86::AddrNumOperands; ++i) { 4516 MachineOperand &MO = NewMIs[0]->getOperand(i); 4517 if (MO.isReg()) 4518 MO.setIsKill(false); 4519 } 4520 } 4521 } 4522 4523 // Emit the data processing instruction. 4524 MachineInstr *DataMI = MF.CreateMachineInstr(MCID, MI->getDebugLoc(), true); 4525 MachineInstrBuilder MIB(MF, DataMI); 4526 4527 if (FoldedStore) 4528 MIB.addReg(Reg, RegState::Define); 4529 for (unsigned i = 0, e = BeforeOps.size(); i != e; ++i) 4530 MIB.addOperand(BeforeOps[i]); 4531 if (FoldedLoad) 4532 MIB.addReg(Reg); 4533 for (unsigned i = 0, e = AfterOps.size(); i != e; ++i) 4534 MIB.addOperand(AfterOps[i]); 4535 for (unsigned i = 0, e = ImpOps.size(); i != e; ++i) { 4536 MachineOperand &MO = ImpOps[i]; 4537 MIB.addReg(MO.getReg(), 4538 getDefRegState(MO.isDef()) | 4539 RegState::Implicit | 4540 getKillRegState(MO.isKill()) | 4541 getDeadRegState(MO.isDead()) | 4542 getUndefRegState(MO.isUndef())); 4543 } 4544 // Change CMP32ri r, 0 back to TEST32rr r, r, etc. 4545 switch (DataMI->getOpcode()) { 4546 default: break; 4547 case X86::CMP64ri32: 4548 case X86::CMP64ri8: 4549 case X86::CMP32ri: 4550 case X86::CMP32ri8: 4551 case X86::CMP16ri: 4552 case X86::CMP16ri8: 4553 case X86::CMP8ri: { 4554 MachineOperand &MO0 = DataMI->getOperand(0); 4555 MachineOperand &MO1 = DataMI->getOperand(1); 4556 if (MO1.getImm() == 0) { 4557 unsigned NewOpc; 4558 switch (DataMI->getOpcode()) { 4559 default: llvm_unreachable("Unreachable!"); 4560 case X86::CMP64ri8: 4561 case X86::CMP64ri32: NewOpc = X86::TEST64rr; break; 4562 case X86::CMP32ri8: 4563 case X86::CMP32ri: NewOpc = X86::TEST32rr; break; 4564 case X86::CMP16ri8: 4565 case X86::CMP16ri: NewOpc = X86::TEST16rr; break; 4566 case X86::CMP8ri: NewOpc = X86::TEST8rr; break; 4567 } 4568 DataMI->setDesc(get(NewOpc)); 4569 MO1.ChangeToRegister(MO0.getReg(), false); 4570 } 4571 } 4572 } 4573 NewMIs.push_back(DataMI); 4574 4575 // Emit the store instruction. 4576 if (UnfoldStore) { 4577 const TargetRegisterClass *DstRC = getRegClass(MCID, 0, &RI, MF); 4578 std::pair<MachineInstr::mmo_iterator, 4579 MachineInstr::mmo_iterator> MMOs = 4580 MF.extractStoreMemRefs(MI->memoperands_begin(), 4581 MI->memoperands_end()); 4582 storeRegToAddr(MF, Reg, true, AddrOps, DstRC, MMOs.first, MMOs.second, NewMIs); 4583 } 4584 4585 return true; 4586 } 4587 4588 bool 4589 X86InstrInfo::unfoldMemoryOperand(SelectionDAG &DAG, SDNode *N, 4590 SmallVectorImpl<SDNode*> &NewNodes) const { 4591 if (!N->isMachineOpcode()) 4592 return false; 4593 4594 DenseMap<unsigned, std::pair<unsigned,unsigned> >::const_iterator I = 4595 MemOp2RegOpTable.find(N->getMachineOpcode()); 4596 if (I == MemOp2RegOpTable.end()) 4597 return false; 4598 unsigned Opc = I->second.first; 4599 unsigned Index = I->second.second & TB_INDEX_MASK; 4600 bool FoldedLoad = I->second.second & TB_FOLDED_LOAD; 4601 bool FoldedStore = I->second.second & TB_FOLDED_STORE; 4602 const MCInstrDesc &MCID = get(Opc); 4603 MachineFunction &MF = DAG.getMachineFunction(); 4604 const TargetRegisterClass *RC = getRegClass(MCID, Index, &RI, MF); 4605 unsigned NumDefs = MCID.NumDefs; 4606 std::vector<SDValue> AddrOps; 4607 std::vector<SDValue> BeforeOps; 4608 std::vector<SDValue> AfterOps; 4609 SDLoc dl(N); 4610 unsigned NumOps = N->getNumOperands(); 4611 for (unsigned i = 0; i != NumOps-1; ++i) { 4612 SDValue Op = N->getOperand(i); 4613 if (i >= Index-NumDefs && i < Index-NumDefs + X86::AddrNumOperands) 4614 AddrOps.push_back(Op); 4615 else if (i < Index-NumDefs) 4616 BeforeOps.push_back(Op); 4617 else if (i > Index-NumDefs) 4618 AfterOps.push_back(Op); 4619 } 4620 SDValue Chain = N->getOperand(NumOps-1); 4621 AddrOps.push_back(Chain); 4622 4623 // Emit the load instruction. 4624 SDNode *Load = 0; 4625 if (FoldedLoad) { 4626 EVT VT = *RC->vt_begin(); 4627 std::pair<MachineInstr::mmo_iterator, 4628 MachineInstr::mmo_iterator> MMOs = 4629 MF.extractLoadMemRefs(cast<MachineSDNode>(N)->memoperands_begin(), 4630 cast<MachineSDNode>(N)->memoperands_end()); 4631 if (!(*MMOs.first) && 4632 RC == &X86::VR128RegClass && 4633 !TM.getSubtarget<X86Subtarget>().isUnalignedMemAccessFast()) 4634 // Do not introduce a slow unaligned load. 4635 return false; 4636 unsigned Alignment = RC->getSize() == 32 ? 32 : 16; 4637 bool isAligned = (*MMOs.first) && 4638 (*MMOs.first)->getAlignment() >= Alignment; 4639 Load = DAG.getMachineNode(getLoadRegOpcode(0, RC, isAligned, TM), dl, 4640 VT, MVT::Other, AddrOps); 4641 NewNodes.push_back(Load); 4642 4643 // Preserve memory reference information. 4644 cast<MachineSDNode>(Load)->setMemRefs(MMOs.first, MMOs.second); 4645 } 4646 4647 // Emit the data processing instruction. 4648 std::vector<EVT> VTs; 4649 const TargetRegisterClass *DstRC = 0; 4650 if (MCID.getNumDefs() > 0) { 4651 DstRC = getRegClass(MCID, 0, &RI, MF); 4652 VTs.push_back(*DstRC->vt_begin()); 4653 } 4654 for (unsigned i = 0, e = N->getNumValues(); i != e; ++i) { 4655 EVT VT = N->getValueType(i); 4656 if (VT != MVT::Other && i >= (unsigned)MCID.getNumDefs()) 4657 VTs.push_back(VT); 4658 } 4659 if (Load) 4660 BeforeOps.push_back(SDValue(Load, 0)); 4661 std::copy(AfterOps.begin(), AfterOps.end(), std::back_inserter(BeforeOps)); 4662 SDNode *NewNode= DAG.getMachineNode(Opc, dl, VTs, BeforeOps); 4663 NewNodes.push_back(NewNode); 4664 4665 // Emit the store instruction. 4666 if (FoldedStore) { 4667 AddrOps.pop_back(); 4668 AddrOps.push_back(SDValue(NewNode, 0)); 4669 AddrOps.push_back(Chain); 4670 std::pair<MachineInstr::mmo_iterator, 4671 MachineInstr::mmo_iterator> MMOs = 4672 MF.extractStoreMemRefs(cast<MachineSDNode>(N)->memoperands_begin(), 4673 cast<MachineSDNode>(N)->memoperands_end()); 4674 if (!(*MMOs.first) && 4675 RC == &X86::VR128RegClass && 4676 !TM.getSubtarget<X86Subtarget>().isUnalignedMemAccessFast()) 4677 // Do not introduce a slow unaligned store. 4678 return false; 4679 unsigned Alignment = RC->getSize() == 32 ? 32 : 16; 4680 bool isAligned = (*MMOs.first) && 4681 (*MMOs.first)->getAlignment() >= Alignment; 4682 SDNode *Store = DAG.getMachineNode(getStoreRegOpcode(0, DstRC, 4683 isAligned, TM), 4684 dl, MVT::Other, AddrOps); 4685 NewNodes.push_back(Store); 4686 4687 // Preserve memory reference information. 4688 cast<MachineSDNode>(Load)->setMemRefs(MMOs.first, MMOs.second); 4689 } 4690 4691 return true; 4692 } 4693 4694 unsigned X86InstrInfo::getOpcodeAfterMemoryUnfold(unsigned Opc, 4695 bool UnfoldLoad, bool UnfoldStore, 4696 unsigned *LoadRegIndex) const { 4697 DenseMap<unsigned, std::pair<unsigned,unsigned> >::const_iterator I = 4698 MemOp2RegOpTable.find(Opc); 4699 if (I == MemOp2RegOpTable.end()) 4700 return 0; 4701 bool FoldedLoad = I->second.second & TB_FOLDED_LOAD; 4702 bool FoldedStore = I->second.second & TB_FOLDED_STORE; 4703 if (UnfoldLoad && !FoldedLoad) 4704 return 0; 4705 if (UnfoldStore && !FoldedStore) 4706 return 0; 4707 if (LoadRegIndex) 4708 *LoadRegIndex = I->second.second & TB_INDEX_MASK; 4709 return I->second.first; 4710 } 4711 4712 bool 4713 X86InstrInfo::areLoadsFromSameBasePtr(SDNode *Load1, SDNode *Load2, 4714 int64_t &Offset1, int64_t &Offset2) const { 4715 if (!Load1->isMachineOpcode() || !Load2->isMachineOpcode()) 4716 return false; 4717 unsigned Opc1 = Load1->getMachineOpcode(); 4718 unsigned Opc2 = Load2->getMachineOpcode(); 4719 switch (Opc1) { 4720 default: return false; 4721 case X86::MOV8rm: 4722 case X86::MOV16rm: 4723 case X86::MOV32rm: 4724 case X86::MOV64rm: 4725 case X86::LD_Fp32m: 4726 case X86::LD_Fp64m: 4727 case X86::LD_Fp80m: 4728 case X86::MOVSSrm: 4729 case X86::MOVSDrm: 4730 case X86::MMX_MOVD64rm: 4731 case X86::MMX_MOVQ64rm: 4732 case X86::FsMOVAPSrm: 4733 case X86::FsMOVAPDrm: 4734 case X86::MOVAPSrm: 4735 case X86::MOVUPSrm: 4736 case X86::MOVAPDrm: 4737 case X86::MOVDQArm: 4738 case X86::MOVDQUrm: 4739 // AVX load instructions 4740 case X86::VMOVSSrm: 4741 case X86::VMOVSDrm: 4742 case X86::FsVMOVAPSrm: 4743 case X86::FsVMOVAPDrm: 4744 case X86::VMOVAPSrm: 4745 case X86::VMOVUPSrm: 4746 case X86::VMOVAPDrm: 4747 case X86::VMOVDQArm: 4748 case X86::VMOVDQUrm: 4749 case X86::VMOVAPSYrm: 4750 case X86::VMOVUPSYrm: 4751 case X86::VMOVAPDYrm: 4752 case X86::VMOVDQAYrm: 4753 case X86::VMOVDQUYrm: 4754 break; 4755 } 4756 switch (Opc2) { 4757 default: return false; 4758 case X86::MOV8rm: 4759 case X86::MOV16rm: 4760 case X86::MOV32rm: 4761 case X86::MOV64rm: 4762 case X86::LD_Fp32m: 4763 case X86::LD_Fp64m: 4764 case X86::LD_Fp80m: 4765 case X86::MOVSSrm: 4766 case X86::MOVSDrm: 4767 case X86::MMX_MOVD64rm: 4768 case X86::MMX_MOVQ64rm: 4769 case X86::FsMOVAPSrm: 4770 case X86::FsMOVAPDrm: 4771 case X86::MOVAPSrm: 4772 case X86::MOVUPSrm: 4773 case X86::MOVAPDrm: 4774 case X86::MOVDQArm: 4775 case X86::MOVDQUrm: 4776 // AVX load instructions 4777 case X86::VMOVSSrm: 4778 case X86::VMOVSDrm: 4779 case X86::FsVMOVAPSrm: 4780 case X86::FsVMOVAPDrm: 4781 case X86::VMOVAPSrm: 4782 case X86::VMOVUPSrm: 4783 case X86::VMOVAPDrm: 4784 case X86::VMOVDQArm: 4785 case X86::VMOVDQUrm: 4786 case X86::VMOVAPSYrm: 4787 case X86::VMOVUPSYrm: 4788 case X86::VMOVAPDYrm: 4789 case X86::VMOVDQAYrm: 4790 case X86::VMOVDQUYrm: 4791 break; 4792 } 4793 4794 // Check if chain operands and base addresses match. 4795 if (Load1->getOperand(0) != Load2->getOperand(0) || 4796 Load1->getOperand(5) != Load2->getOperand(5)) 4797 return false; 4798 // Segment operands should match as well. 4799 if (Load1->getOperand(4) != Load2->getOperand(4)) 4800 return false; 4801 // Scale should be 1, Index should be Reg0. 4802 if (Load1->getOperand(1) == Load2->getOperand(1) && 4803 Load1->getOperand(2) == Load2->getOperand(2)) { 4804 if (cast<ConstantSDNode>(Load1->getOperand(1))->getZExtValue() != 1) 4805 return false; 4806 4807 // Now let's examine the displacements. 4808 if (isa<ConstantSDNode>(Load1->getOperand(3)) && 4809 isa<ConstantSDNode>(Load2->getOperand(3))) { 4810 Offset1 = cast<ConstantSDNode>(Load1->getOperand(3))->getSExtValue(); 4811 Offset2 = cast<ConstantSDNode>(Load2->getOperand(3))->getSExtValue(); 4812 return true; 4813 } 4814 } 4815 return false; 4816 } 4817 4818 bool X86InstrInfo::shouldScheduleLoadsNear(SDNode *Load1, SDNode *Load2, 4819 int64_t Offset1, int64_t Offset2, 4820 unsigned NumLoads) const { 4821 assert(Offset2 > Offset1); 4822 if ((Offset2 - Offset1) / 8 > 64) 4823 return false; 4824 4825 unsigned Opc1 = Load1->getMachineOpcode(); 4826 unsigned Opc2 = Load2->getMachineOpcode(); 4827 if (Opc1 != Opc2) 4828 return false; // FIXME: overly conservative? 4829 4830 switch (Opc1) { 4831 default: break; 4832 case X86::LD_Fp32m: 4833 case X86::LD_Fp64m: 4834 case X86::LD_Fp80m: 4835 case X86::MMX_MOVD64rm: 4836 case X86::MMX_MOVQ64rm: 4837 return false; 4838 } 4839 4840 EVT VT = Load1->getValueType(0); 4841 switch (VT.getSimpleVT().SimpleTy) { 4842 default: 4843 // XMM registers. In 64-bit mode we can be a bit more aggressive since we 4844 // have 16 of them to play with. 4845 if (TM.getSubtargetImpl()->is64Bit()) { 4846 if (NumLoads >= 3) 4847 return false; 4848 } else if (NumLoads) { 4849 return false; 4850 } 4851 break; 4852 case MVT::i8: 4853 case MVT::i16: 4854 case MVT::i32: 4855 case MVT::i64: 4856 case MVT::f32: 4857 case MVT::f64: 4858 if (NumLoads) 4859 return false; 4860 break; 4861 } 4862 4863 return true; 4864 } 4865 4866 bool X86InstrInfo::shouldScheduleAdjacent(MachineInstr* First, 4867 MachineInstr *Second) const { 4868 // Check if this processor supports macro-fusion. Since this is a minor 4869 // heuristic, we haven't specifically reserved a feature. hasAVX is a decent 4870 // proxy for SandyBridge+. 4871 if (!TM.getSubtarget<X86Subtarget>().hasAVX()) 4872 return false; 4873 4874 enum { 4875 FuseTest, 4876 FuseCmp, 4877 FuseInc 4878 } FuseKind; 4879 4880 switch(Second->getOpcode()) { 4881 default: 4882 return false; 4883 case X86::JE_4: 4884 case X86::JNE_4: 4885 case X86::JL_4: 4886 case X86::JLE_4: 4887 case X86::JG_4: 4888 case X86::JGE_4: 4889 FuseKind = FuseInc; 4890 break; 4891 case X86::JB_4: 4892 case X86::JBE_4: 4893 case X86::JA_4: 4894 case X86::JAE_4: 4895 FuseKind = FuseCmp; 4896 break; 4897 case X86::JS_4: 4898 case X86::JNS_4: 4899 case X86::JP_4: 4900 case X86::JNP_4: 4901 case X86::JO_4: 4902 case X86::JNO_4: 4903 FuseKind = FuseTest; 4904 break; 4905 } 4906 switch (First->getOpcode()) { 4907 default: 4908 return false; 4909 case X86::TEST8rr: 4910 case X86::TEST16rr: 4911 case X86::TEST32rr: 4912 case X86::TEST64rr: 4913 case X86::TEST8ri: 4914 case X86::TEST16ri: 4915 case X86::TEST32ri: 4916 case X86::TEST32i32: 4917 case X86::TEST64i32: 4918 case X86::TEST64ri32: 4919 case X86::TEST8rm: 4920 case X86::TEST16rm: 4921 case X86::TEST32rm: 4922 case X86::TEST64rm: 4923 case X86::AND16i16: 4924 case X86::AND16ri: 4925 case X86::AND16ri8: 4926 case X86::AND16rm: 4927 case X86::AND16rr: 4928 case X86::AND32i32: 4929 case X86::AND32ri: 4930 case X86::AND32ri8: 4931 case X86::AND32rm: 4932 case X86::AND32rr: 4933 case X86::AND64i32: 4934 case X86::AND64ri32: 4935 case X86::AND64ri8: 4936 case X86::AND64rm: 4937 case X86::AND64rr: 4938 case X86::AND8i8: 4939 case X86::AND8ri: 4940 case X86::AND8rm: 4941 case X86::AND8rr: 4942 return true; 4943 case X86::CMP16i16: 4944 case X86::CMP16ri: 4945 case X86::CMP16ri8: 4946 case X86::CMP16rm: 4947 case X86::CMP16rr: 4948 case X86::CMP32i32: 4949 case X86::CMP32ri: 4950 case X86::CMP32ri8: 4951 case X86::CMP32rm: 4952 case X86::CMP32rr: 4953 case X86::CMP64i32: 4954 case X86::CMP64ri32: 4955 case X86::CMP64ri8: 4956 case X86::CMP64rm: 4957 case X86::CMP64rr: 4958 case X86::CMP8i8: 4959 case X86::CMP8ri: 4960 case X86::CMP8rm: 4961 case X86::CMP8rr: 4962 case X86::ADD16i16: 4963 case X86::ADD16ri: 4964 case X86::ADD16ri8: 4965 case X86::ADD16ri8_DB: 4966 case X86::ADD16ri_DB: 4967 case X86::ADD16rm: 4968 case X86::ADD16rr: 4969 case X86::ADD16rr_DB: 4970 case X86::ADD32i32: 4971 case X86::ADD32ri: 4972 case X86::ADD32ri8: 4973 case X86::ADD32ri8_DB: 4974 case X86::ADD32ri_DB: 4975 case X86::ADD32rm: 4976 case X86::ADD32rr: 4977 case X86::ADD32rr_DB: 4978 case X86::ADD64i32: 4979 case X86::ADD64ri32: 4980 case X86::ADD64ri32_DB: 4981 case X86::ADD64ri8: 4982 case X86::ADD64ri8_DB: 4983 case X86::ADD64rm: 4984 case X86::ADD64rr: 4985 case X86::ADD64rr_DB: 4986 case X86::ADD8i8: 4987 case X86::ADD8mi: 4988 case X86::ADD8mr: 4989 case X86::ADD8ri: 4990 case X86::ADD8rm: 4991 case X86::ADD8rr: 4992 case X86::SUB16i16: 4993 case X86::SUB16ri: 4994 case X86::SUB16ri8: 4995 case X86::SUB16rm: 4996 case X86::SUB16rr: 4997 case X86::SUB32i32: 4998 case X86::SUB32ri: 4999 case X86::SUB32ri8: 5000 case X86::SUB32rm: 5001 case X86::SUB32rr: 5002 case X86::SUB64i32: 5003 case X86::SUB64ri32: 5004 case X86::SUB64ri8: 5005 case X86::SUB64rm: 5006 case X86::SUB64rr: 5007 case X86::SUB8i8: 5008 case X86::SUB8ri: 5009 case X86::SUB8rm: 5010 case X86::SUB8rr: 5011 return FuseKind == FuseCmp || FuseKind == FuseInc; 5012 case X86::INC16r: 5013 case X86::INC32r: 5014 case X86::INC64_16r: 5015 case X86::INC64_32r: 5016 case X86::INC64r: 5017 case X86::INC8r: 5018 case X86::DEC16r: 5019 case X86::DEC32r: 5020 case X86::DEC64_16r: 5021 case X86::DEC64_32r: 5022 case X86::DEC64r: 5023 case X86::DEC8r: 5024 return FuseKind == FuseInc; 5025 } 5026 } 5027 5028 bool X86InstrInfo:: 5029 ReverseBranchCondition(SmallVectorImpl<MachineOperand> &Cond) const { 5030 assert(Cond.size() == 1 && "Invalid X86 branch condition!"); 5031 X86::CondCode CC = static_cast<X86::CondCode>(Cond[0].getImm()); 5032 if (CC == X86::COND_NE_OR_P || CC == X86::COND_NP_OR_E) 5033 return true; 5034 Cond[0].setImm(GetOppositeBranchCondition(CC)); 5035 return false; 5036 } 5037 5038 bool X86InstrInfo:: 5039 isSafeToMoveRegClassDefs(const TargetRegisterClass *RC) const { 5040 // FIXME: Return false for x87 stack register classes for now. We can't 5041 // allow any loads of these registers before FpGet_ST0_80. 5042 return !(RC == &X86::CCRRegClass || RC == &X86::RFP32RegClass || 5043 RC == &X86::RFP64RegClass || RC == &X86::RFP80RegClass); 5044 } 5045 5046 /// getGlobalBaseReg - Return a virtual register initialized with the 5047 /// the global base register value. Output instructions required to 5048 /// initialize the register in the function entry block, if necessary. 5049 /// 5050 /// TODO: Eliminate this and move the code to X86MachineFunctionInfo. 5051 /// 5052 unsigned X86InstrInfo::getGlobalBaseReg(MachineFunction *MF) const { 5053 assert(!TM.getSubtarget<X86Subtarget>().is64Bit() && 5054 "X86-64 PIC uses RIP relative addressing"); 5055 5056 X86MachineFunctionInfo *X86FI = MF->getInfo<X86MachineFunctionInfo>(); 5057 unsigned GlobalBaseReg = X86FI->getGlobalBaseReg(); 5058 if (GlobalBaseReg != 0) 5059 return GlobalBaseReg; 5060 5061 // Create the register. The code to initialize it is inserted 5062 // later, by the CGBR pass (below). 5063 MachineRegisterInfo &RegInfo = MF->getRegInfo(); 5064 GlobalBaseReg = RegInfo.createVirtualRegister(&X86::GR32_NOSPRegClass); 5065 X86FI->setGlobalBaseReg(GlobalBaseReg); 5066 return GlobalBaseReg; 5067 } 5068 5069 // These are the replaceable SSE instructions. Some of these have Int variants 5070 // that we don't include here. We don't want to replace instructions selected 5071 // by intrinsics. 5072 static const uint16_t ReplaceableInstrs[][3] = { 5073 //PackedSingle PackedDouble PackedInt 5074 { X86::MOVAPSmr, X86::MOVAPDmr, X86::MOVDQAmr }, 5075 { X86::MOVAPSrm, X86::MOVAPDrm, X86::MOVDQArm }, 5076 { X86::MOVAPSrr, X86::MOVAPDrr, X86::MOVDQArr }, 5077 { X86::MOVUPSmr, X86::MOVUPDmr, X86::MOVDQUmr }, 5078 { X86::MOVUPSrm, X86::MOVUPDrm, X86::MOVDQUrm }, 5079 { X86::MOVNTPSmr, X86::MOVNTPDmr, X86::MOVNTDQmr }, 5080 { X86::ANDNPSrm, X86::ANDNPDrm, X86::PANDNrm }, 5081 { X86::ANDNPSrr, X86::ANDNPDrr, X86::PANDNrr }, 5082 { X86::ANDPSrm, X86::ANDPDrm, X86::PANDrm }, 5083 { X86::ANDPSrr, X86::ANDPDrr, X86::PANDrr }, 5084 { X86::ORPSrm, X86::ORPDrm, X86::PORrm }, 5085 { X86::ORPSrr, X86::ORPDrr, X86::PORrr }, 5086 { X86::XORPSrm, X86::XORPDrm, X86::PXORrm }, 5087 { X86::XORPSrr, X86::XORPDrr, X86::PXORrr }, 5088 // AVX 128-bit support 5089 { X86::VMOVAPSmr, X86::VMOVAPDmr, X86::VMOVDQAmr }, 5090 { X86::VMOVAPSrm, X86::VMOVAPDrm, X86::VMOVDQArm }, 5091 { X86::VMOVAPSrr, X86::VMOVAPDrr, X86::VMOVDQArr }, 5092 { X86::VMOVUPSmr, X86::VMOVUPDmr, X86::VMOVDQUmr }, 5093 { X86::VMOVUPSrm, X86::VMOVUPDrm, X86::VMOVDQUrm }, 5094 { X86::VMOVNTPSmr, X86::VMOVNTPDmr, X86::VMOVNTDQmr }, 5095 { X86::VANDNPSrm, X86::VANDNPDrm, X86::VPANDNrm }, 5096 { X86::VANDNPSrr, X86::VANDNPDrr, X86::VPANDNrr }, 5097 { X86::VANDPSrm, X86::VANDPDrm, X86::VPANDrm }, 5098 { X86::VANDPSrr, X86::VANDPDrr, X86::VPANDrr }, 5099 { X86::VORPSrm, X86::VORPDrm, X86::VPORrm }, 5100 { X86::VORPSrr, X86::VORPDrr, X86::VPORrr }, 5101 { X86::VXORPSrm, X86::VXORPDrm, X86::VPXORrm }, 5102 { X86::VXORPSrr, X86::VXORPDrr, X86::VPXORrr }, 5103 // AVX 256-bit support 5104 { X86::VMOVAPSYmr, X86::VMOVAPDYmr, X86::VMOVDQAYmr }, 5105 { X86::VMOVAPSYrm, X86::VMOVAPDYrm, X86::VMOVDQAYrm }, 5106 { X86::VMOVAPSYrr, X86::VMOVAPDYrr, X86::VMOVDQAYrr }, 5107 { X86::VMOVUPSYmr, X86::VMOVUPDYmr, X86::VMOVDQUYmr }, 5108 { X86::VMOVUPSYrm, X86::VMOVUPDYrm, X86::VMOVDQUYrm }, 5109 { X86::VMOVNTPSYmr, X86::VMOVNTPDYmr, X86::VMOVNTDQYmr } 5110 }; 5111 5112 static const uint16_t ReplaceableInstrsAVX2[][3] = { 5113 //PackedSingle PackedDouble PackedInt 5114 { X86::VANDNPSYrm, X86::VANDNPDYrm, X86::VPANDNYrm }, 5115 { X86::VANDNPSYrr, X86::VANDNPDYrr, X86::VPANDNYrr }, 5116 { X86::VANDPSYrm, X86::VANDPDYrm, X86::VPANDYrm }, 5117 { X86::VANDPSYrr, X86::VANDPDYrr, X86::VPANDYrr }, 5118 { X86::VORPSYrm, X86::VORPDYrm, X86::VPORYrm }, 5119 { X86::VORPSYrr, X86::VORPDYrr, X86::VPORYrr }, 5120 { X86::VXORPSYrm, X86::VXORPDYrm, X86::VPXORYrm }, 5121 { X86::VXORPSYrr, X86::VXORPDYrr, X86::VPXORYrr }, 5122 { X86::VEXTRACTF128mr, X86::VEXTRACTF128mr, X86::VEXTRACTI128mr }, 5123 { X86::VEXTRACTF128rr, X86::VEXTRACTF128rr, X86::VEXTRACTI128rr }, 5124 { X86::VINSERTF128rm, X86::VINSERTF128rm, X86::VINSERTI128rm }, 5125 { X86::VINSERTF128rr, X86::VINSERTF128rr, X86::VINSERTI128rr }, 5126 { X86::VPERM2F128rm, X86::VPERM2F128rm, X86::VPERM2I128rm }, 5127 { X86::VPERM2F128rr, X86::VPERM2F128rr, X86::VPERM2I128rr } 5128 }; 5129 5130 // FIXME: Some shuffle and unpack instructions have equivalents in different 5131 // domains, but they require a bit more work than just switching opcodes. 5132 5133 static const uint16_t *lookup(unsigned opcode, unsigned domain) { 5134 for (unsigned i = 0, e = array_lengthof(ReplaceableInstrs); i != e; ++i) 5135 if (ReplaceableInstrs[i][domain-1] == opcode) 5136 return ReplaceableInstrs[i]; 5137 return 0; 5138 } 5139 5140 static const uint16_t *lookupAVX2(unsigned opcode, unsigned domain) { 5141 for (unsigned i = 0, e = array_lengthof(ReplaceableInstrsAVX2); i != e; ++i) 5142 if (ReplaceableInstrsAVX2[i][domain-1] == opcode) 5143 return ReplaceableInstrsAVX2[i]; 5144 return 0; 5145 } 5146 5147 std::pair<uint16_t, uint16_t> 5148 X86InstrInfo::getExecutionDomain(const MachineInstr *MI) const { 5149 uint16_t domain = (MI->getDesc().TSFlags >> X86II::SSEDomainShift) & 3; 5150 bool hasAVX2 = TM.getSubtarget<X86Subtarget>().hasAVX2(); 5151 uint16_t validDomains = 0; 5152 if (domain && lookup(MI->getOpcode(), domain)) 5153 validDomains = 0xe; 5154 else if (domain && lookupAVX2(MI->getOpcode(), domain)) 5155 validDomains = hasAVX2 ? 0xe : 0x6; 5156 return std::make_pair(domain, validDomains); 5157 } 5158 5159 void X86InstrInfo::setExecutionDomain(MachineInstr *MI, unsigned Domain) const { 5160 assert(Domain>0 && Domain<4 && "Invalid execution domain"); 5161 uint16_t dom = (MI->getDesc().TSFlags >> X86II::SSEDomainShift) & 3; 5162 assert(dom && "Not an SSE instruction"); 5163 const uint16_t *table = lookup(MI->getOpcode(), dom); 5164 if (!table) { // try the other table 5165 assert((TM.getSubtarget<X86Subtarget>().hasAVX2() || Domain < 3) && 5166 "256-bit vector operations only available in AVX2"); 5167 table = lookupAVX2(MI->getOpcode(), dom); 5168 } 5169 assert(table && "Cannot change domain"); 5170 MI->setDesc(get(table[Domain-1])); 5171 } 5172 5173 /// getNoopForMachoTarget - Return the noop instruction to use for a noop. 5174 void X86InstrInfo::getNoopForMachoTarget(MCInst &NopInst) const { 5175 NopInst.setOpcode(X86::NOOP); 5176 } 5177 5178 bool X86InstrInfo::isHighLatencyDef(int opc) const { 5179 switch (opc) { 5180 default: return false; 5181 case X86::DIVSDrm: 5182 case X86::DIVSDrm_Int: 5183 case X86::DIVSDrr: 5184 case X86::DIVSDrr_Int: 5185 case X86::DIVSSrm: 5186 case X86::DIVSSrm_Int: 5187 case X86::DIVSSrr: 5188 case X86::DIVSSrr_Int: 5189 case X86::SQRTPDm: 5190 case X86::SQRTPDr: 5191 case X86::SQRTPSm: 5192 case X86::SQRTPSr: 5193 case X86::SQRTSDm: 5194 case X86::SQRTSDm_Int: 5195 case X86::SQRTSDr: 5196 case X86::SQRTSDr_Int: 5197 case X86::SQRTSSm: 5198 case X86::SQRTSSm_Int: 5199 case X86::SQRTSSr: 5200 case X86::SQRTSSr_Int: 5201 // AVX instructions with high latency 5202 case X86::VDIVSDrm: 5203 case X86::VDIVSDrm_Int: 5204 case X86::VDIVSDrr: 5205 case X86::VDIVSDrr_Int: 5206 case X86::VDIVSSrm: 5207 case X86::VDIVSSrm_Int: 5208 case X86::VDIVSSrr: 5209 case X86::VDIVSSrr_Int: 5210 case X86::VSQRTPDm: 5211 case X86::VSQRTPDr: 5212 case X86::VSQRTPSm: 5213 case X86::VSQRTPSr: 5214 case X86::VSQRTSDm: 5215 case X86::VSQRTSDm_Int: 5216 case X86::VSQRTSDr: 5217 case X86::VSQRTSSm: 5218 case X86::VSQRTSSm_Int: 5219 case X86::VSQRTSSr: 5220 case X86::VSQRTPDZrm: 5221 case X86::VSQRTPDZrr: 5222 case X86::VSQRTPSZrm: 5223 case X86::VSQRTPSZrr: 5224 case X86::VSQRTSDZm: 5225 case X86::VSQRTSDZm_Int: 5226 case X86::VSQRTSDZr: 5227 case X86::VSQRTSSZm_Int: 5228 case X86::VSQRTSSZr: 5229 case X86::VSQRTSSZm: 5230 case X86::VDIVSDZrm: 5231 case X86::VDIVSDZrr: 5232 case X86::VDIVSSZrm: 5233 case X86::VDIVSSZrr: 5234 5235 case X86::VGATHERQPSZrm: 5236 case X86::VGATHERQPDZrm: 5237 case X86::VGATHERDPDZrm: 5238 case X86::VGATHERDPSZrm: 5239 case X86::VPGATHERQDZrm: 5240 case X86::VPGATHERQQZrm: 5241 case X86::VPGATHERDDZrm: 5242 case X86::VPGATHERDQZrm: 5243 case X86::VSCATTERQPDZmr: 5244 case X86::VSCATTERQPSZmr: 5245 case X86::VSCATTERDPDZmr: 5246 case X86::VSCATTERDPSZmr: 5247 case X86::VPSCATTERQDZmr: 5248 case X86::VPSCATTERQQZmr: 5249 case X86::VPSCATTERDDZmr: 5250 case X86::VPSCATTERDQZmr: 5251 return true; 5252 } 5253 } 5254 5255 bool X86InstrInfo:: 5256 hasHighOperandLatency(const InstrItineraryData *ItinData, 5257 const MachineRegisterInfo *MRI, 5258 const MachineInstr *DefMI, unsigned DefIdx, 5259 const MachineInstr *UseMI, unsigned UseIdx) const { 5260 return isHighLatencyDef(DefMI->getOpcode()); 5261 } 5262 5263 namespace { 5264 /// CGBR - Create Global Base Reg pass. This initializes the PIC 5265 /// global base register for x86-32. 5266 struct CGBR : public MachineFunctionPass { 5267 static char ID; 5268 CGBR() : MachineFunctionPass(ID) {} 5269 5270 virtual bool runOnMachineFunction(MachineFunction &MF) { 5271 const X86TargetMachine *TM = 5272 static_cast<const X86TargetMachine *>(&MF.getTarget()); 5273 5274 assert(!TM->getSubtarget<X86Subtarget>().is64Bit() && 5275 "X86-64 PIC uses RIP relative addressing"); 5276 5277 // Only emit a global base reg in PIC mode. 5278 if (TM->getRelocationModel() != Reloc::PIC_) 5279 return false; 5280 5281 X86MachineFunctionInfo *X86FI = MF.getInfo<X86MachineFunctionInfo>(); 5282 unsigned GlobalBaseReg = X86FI->getGlobalBaseReg(); 5283 5284 // If we didn't need a GlobalBaseReg, don't insert code. 5285 if (GlobalBaseReg == 0) 5286 return false; 5287 5288 // Insert the set of GlobalBaseReg into the first MBB of the function 5289 MachineBasicBlock &FirstMBB = MF.front(); 5290 MachineBasicBlock::iterator MBBI = FirstMBB.begin(); 5291 DebugLoc DL = FirstMBB.findDebugLoc(MBBI); 5292 MachineRegisterInfo &RegInfo = MF.getRegInfo(); 5293 const X86InstrInfo *TII = TM->getInstrInfo(); 5294 5295 unsigned PC; 5296 if (TM->getSubtarget<X86Subtarget>().isPICStyleGOT()) 5297 PC = RegInfo.createVirtualRegister(&X86::GR32RegClass); 5298 else 5299 PC = GlobalBaseReg; 5300 5301 // Operand of MovePCtoStack is completely ignored by asm printer. It's 5302 // only used in JIT code emission as displacement to pc. 5303 BuildMI(FirstMBB, MBBI, DL, TII->get(X86::MOVPC32r), PC).addImm(0); 5304 5305 // If we're using vanilla 'GOT' PIC style, we should use relative addressing 5306 // not to pc, but to _GLOBAL_OFFSET_TABLE_ external. 5307 if (TM->getSubtarget<X86Subtarget>().isPICStyleGOT()) { 5308 // Generate addl $__GLOBAL_OFFSET_TABLE_ + [.-piclabel], %some_register 5309 BuildMI(FirstMBB, MBBI, DL, TII->get(X86::ADD32ri), GlobalBaseReg) 5310 .addReg(PC).addExternalSymbol("_GLOBAL_OFFSET_TABLE_", 5311 X86II::MO_GOT_ABSOLUTE_ADDRESS); 5312 } 5313 5314 return true; 5315 } 5316 5317 virtual const char *getPassName() const { 5318 return "X86 PIC Global Base Reg Initialization"; 5319 } 5320 5321 virtual void getAnalysisUsage(AnalysisUsage &AU) const { 5322 AU.setPreservesCFG(); 5323 MachineFunctionPass::getAnalysisUsage(AU); 5324 } 5325 }; 5326 } 5327 5328 char CGBR::ID = 0; 5329 FunctionPass* 5330 llvm::createGlobalBaseRegPass() { return new CGBR(); } 5331 5332 namespace { 5333 struct LDTLSCleanup : public MachineFunctionPass { 5334 static char ID; 5335 LDTLSCleanup() : MachineFunctionPass(ID) {} 5336 5337 virtual bool runOnMachineFunction(MachineFunction &MF) { 5338 X86MachineFunctionInfo* MFI = MF.getInfo<X86MachineFunctionInfo>(); 5339 if (MFI->getNumLocalDynamicTLSAccesses() < 2) { 5340 // No point folding accesses if there isn't at least two. 5341 return false; 5342 } 5343 5344 MachineDominatorTree *DT = &getAnalysis<MachineDominatorTree>(); 5345 return VisitNode(DT->getRootNode(), 0); 5346 } 5347 5348 // Visit the dominator subtree rooted at Node in pre-order. 5349 // If TLSBaseAddrReg is non-null, then use that to replace any 5350 // TLS_base_addr instructions. Otherwise, create the register 5351 // when the first such instruction is seen, and then use it 5352 // as we encounter more instructions. 5353 bool VisitNode(MachineDomTreeNode *Node, unsigned TLSBaseAddrReg) { 5354 MachineBasicBlock *BB = Node->getBlock(); 5355 bool Changed = false; 5356 5357 // Traverse the current block. 5358 for (MachineBasicBlock::iterator I = BB->begin(), E = BB->end(); I != E; 5359 ++I) { 5360 switch (I->getOpcode()) { 5361 case X86::TLS_base_addr32: 5362 case X86::TLS_base_addr64: 5363 if (TLSBaseAddrReg) 5364 I = ReplaceTLSBaseAddrCall(I, TLSBaseAddrReg); 5365 else 5366 I = SetRegister(I, &TLSBaseAddrReg); 5367 Changed = true; 5368 break; 5369 default: 5370 break; 5371 } 5372 } 5373 5374 // Visit the children of this block in the dominator tree. 5375 for (MachineDomTreeNode::iterator I = Node->begin(), E = Node->end(); 5376 I != E; ++I) { 5377 Changed |= VisitNode(*I, TLSBaseAddrReg); 5378 } 5379 5380 return Changed; 5381 } 5382 5383 // Replace the TLS_base_addr instruction I with a copy from 5384 // TLSBaseAddrReg, returning the new instruction. 5385 MachineInstr *ReplaceTLSBaseAddrCall(MachineInstr *I, 5386 unsigned TLSBaseAddrReg) { 5387 MachineFunction *MF = I->getParent()->getParent(); 5388 const X86TargetMachine *TM = 5389 static_cast<const X86TargetMachine *>(&MF->getTarget()); 5390 const bool is64Bit = TM->getSubtarget<X86Subtarget>().is64Bit(); 5391 const X86InstrInfo *TII = TM->getInstrInfo(); 5392 5393 // Insert a Copy from TLSBaseAddrReg to RAX/EAX. 5394 MachineInstr *Copy = BuildMI(*I->getParent(), I, I->getDebugLoc(), 5395 TII->get(TargetOpcode::COPY), 5396 is64Bit ? X86::RAX : X86::EAX) 5397 .addReg(TLSBaseAddrReg); 5398 5399 // Erase the TLS_base_addr instruction. 5400 I->eraseFromParent(); 5401 5402 return Copy; 5403 } 5404 5405 // Create a virtal register in *TLSBaseAddrReg, and populate it by 5406 // inserting a copy instruction after I. Returns the new instruction. 5407 MachineInstr *SetRegister(MachineInstr *I, unsigned *TLSBaseAddrReg) { 5408 MachineFunction *MF = I->getParent()->getParent(); 5409 const X86TargetMachine *TM = 5410 static_cast<const X86TargetMachine *>(&MF->getTarget()); 5411 const bool is64Bit = TM->getSubtarget<X86Subtarget>().is64Bit(); 5412 const X86InstrInfo *TII = TM->getInstrInfo(); 5413 5414 // Create a virtual register for the TLS base address. 5415 MachineRegisterInfo &RegInfo = MF->getRegInfo(); 5416 *TLSBaseAddrReg = RegInfo.createVirtualRegister(is64Bit 5417 ? &X86::GR64RegClass 5418 : &X86::GR32RegClass); 5419 5420 // Insert a copy from RAX/EAX to TLSBaseAddrReg. 5421 MachineInstr *Next = I->getNextNode(); 5422 MachineInstr *Copy = BuildMI(*I->getParent(), Next, I->getDebugLoc(), 5423 TII->get(TargetOpcode::COPY), 5424 *TLSBaseAddrReg) 5425 .addReg(is64Bit ? X86::RAX : X86::EAX); 5426 5427 return Copy; 5428 } 5429 5430 virtual const char *getPassName() const { 5431 return "Local Dynamic TLS Access Clean-up"; 5432 } 5433 5434 virtual void getAnalysisUsage(AnalysisUsage &AU) const { 5435 AU.setPreservesCFG(); 5436 AU.addRequired<MachineDominatorTree>(); 5437 MachineFunctionPass::getAnalysisUsage(AU); 5438 } 5439 }; 5440 } 5441 5442 char LDTLSCleanup::ID = 0; 5443 FunctionPass* 5444 llvm::createCleanupLocalDynamicTLSPass() { return new LDTLSCleanup(); } 5445