1 //===- ValueTracking.cpp - Walk computations to compute properties --------===// 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 routines that help analyze properties that chains of 11 // computations have. 12 // 13 //===----------------------------------------------------------------------===// 14 15 #include "llvm/Analysis/ValueTracking.h" 16 #include "llvm/ADT/SmallPtrSet.h" 17 #include "llvm/Analysis/InstructionSimplify.h" 18 #include "llvm/Constants.h" 19 #include "llvm/DataLayout.h" 20 #include "llvm/GlobalAlias.h" 21 #include "llvm/GlobalVariable.h" 22 #include "llvm/Instructions.h" 23 #include "llvm/IntrinsicInst.h" 24 #include "llvm/LLVMContext.h" 25 #include "llvm/Metadata.h" 26 #include "llvm/Operator.h" 27 #include "llvm/Support/ConstantRange.h" 28 #include "llvm/Support/GetElementPtrTypeIterator.h" 29 #include "llvm/Support/MathExtras.h" 30 #include "llvm/Support/PatternMatch.h" 31 #include <cstring> 32 using namespace llvm; 33 using namespace llvm::PatternMatch; 34 35 const unsigned MaxDepth = 6; 36 37 /// getBitWidth - Returns the bitwidth of the given scalar or pointer type (if 38 /// unknown returns 0). For vector types, returns the element type's bitwidth. 39 static unsigned getBitWidth(Type *Ty, const DataLayout *TD) { 40 if (unsigned BitWidth = Ty->getScalarSizeInBits()) 41 return BitWidth; 42 assert(isa<PointerType>(Ty) && "Expected a pointer type!"); 43 return TD ? TD->getPointerSizeInBits() : 0; 44 } 45 46 static void ComputeMaskedBitsAddSub(bool Add, Value *Op0, Value *Op1, bool NSW, 47 APInt &KnownZero, APInt &KnownOne, 48 APInt &KnownZero2, APInt &KnownOne2, 49 const DataLayout *TD, unsigned Depth) { 50 if (!Add) { 51 if (ConstantInt *CLHS = dyn_cast<ConstantInt>(Op0)) { 52 // We know that the top bits of C-X are clear if X contains less bits 53 // than C (i.e. no wrap-around can happen). For example, 20-X is 54 // positive if we can prove that X is >= 0 and < 16. 55 if (!CLHS->getValue().isNegative()) { 56 unsigned BitWidth = KnownZero.getBitWidth(); 57 unsigned NLZ = (CLHS->getValue()+1).countLeadingZeros(); 58 // NLZ can't be BitWidth with no sign bit 59 APInt MaskV = APInt::getHighBitsSet(BitWidth, NLZ+1); 60 llvm::ComputeMaskedBits(Op1, KnownZero2, KnownOne2, TD, Depth+1); 61 62 // If all of the MaskV bits are known to be zero, then we know the 63 // output top bits are zero, because we now know that the output is 64 // from [0-C]. 65 if ((KnownZero2 & MaskV) == MaskV) { 66 unsigned NLZ2 = CLHS->getValue().countLeadingZeros(); 67 // Top bits known zero. 68 KnownZero = APInt::getHighBitsSet(BitWidth, NLZ2); 69 } 70 } 71 } 72 } 73 74 unsigned BitWidth = KnownZero.getBitWidth(); 75 76 // If one of the operands has trailing zeros, then the bits that the 77 // other operand has in those bit positions will be preserved in the 78 // result. For an add, this works with either operand. For a subtract, 79 // this only works if the known zeros are in the right operand. 80 APInt LHSKnownZero(BitWidth, 0), LHSKnownOne(BitWidth, 0); 81 llvm::ComputeMaskedBits(Op0, LHSKnownZero, LHSKnownOne, TD, Depth+1); 82 assert((LHSKnownZero & LHSKnownOne) == 0 && 83 "Bits known to be one AND zero?"); 84 unsigned LHSKnownZeroOut = LHSKnownZero.countTrailingOnes(); 85 86 llvm::ComputeMaskedBits(Op1, KnownZero2, KnownOne2, TD, Depth+1); 87 assert((KnownZero2 & KnownOne2) == 0 && "Bits known to be one AND zero?"); 88 unsigned RHSKnownZeroOut = KnownZero2.countTrailingOnes(); 89 90 // Determine which operand has more trailing zeros, and use that 91 // many bits from the other operand. 92 if (LHSKnownZeroOut > RHSKnownZeroOut) { 93 if (Add) { 94 APInt Mask = APInt::getLowBitsSet(BitWidth, LHSKnownZeroOut); 95 KnownZero |= KnownZero2 & Mask; 96 KnownOne |= KnownOne2 & Mask; 97 } else { 98 // If the known zeros are in the left operand for a subtract, 99 // fall back to the minimum known zeros in both operands. 100 KnownZero |= APInt::getLowBitsSet(BitWidth, 101 std::min(LHSKnownZeroOut, 102 RHSKnownZeroOut)); 103 } 104 } else if (RHSKnownZeroOut >= LHSKnownZeroOut) { 105 APInt Mask = APInt::getLowBitsSet(BitWidth, RHSKnownZeroOut); 106 KnownZero |= LHSKnownZero & Mask; 107 KnownOne |= LHSKnownOne & Mask; 108 } 109 110 // Are we still trying to solve for the sign bit? 111 if (!KnownZero.isNegative() && !KnownOne.isNegative()) { 112 if (NSW) { 113 if (Add) { 114 // Adding two positive numbers can't wrap into negative 115 if (LHSKnownZero.isNegative() && KnownZero2.isNegative()) 116 KnownZero |= APInt::getSignBit(BitWidth); 117 // and adding two negative numbers can't wrap into positive. 118 else if (LHSKnownOne.isNegative() && KnownOne2.isNegative()) 119 KnownOne |= APInt::getSignBit(BitWidth); 120 } else { 121 // Subtracting a negative number from a positive one can't wrap 122 if (LHSKnownZero.isNegative() && KnownOne2.isNegative()) 123 KnownZero |= APInt::getSignBit(BitWidth); 124 // neither can subtracting a positive number from a negative one. 125 else if (LHSKnownOne.isNegative() && KnownZero2.isNegative()) 126 KnownOne |= APInt::getSignBit(BitWidth); 127 } 128 } 129 } 130 } 131 132 static void ComputeMaskedBitsMul(Value *Op0, Value *Op1, bool NSW, 133 APInt &KnownZero, APInt &KnownOne, 134 APInt &KnownZero2, APInt &KnownOne2, 135 const DataLayout *TD, unsigned Depth) { 136 unsigned BitWidth = KnownZero.getBitWidth(); 137 ComputeMaskedBits(Op1, KnownZero, KnownOne, TD, Depth+1); 138 ComputeMaskedBits(Op0, KnownZero2, KnownOne2, TD, Depth+1); 139 assert((KnownZero & KnownOne) == 0 && "Bits known to be one AND zero?"); 140 assert((KnownZero2 & KnownOne2) == 0 && "Bits known to be one AND zero?"); 141 142 bool isKnownNegative = false; 143 bool isKnownNonNegative = false; 144 // If the multiplication is known not to overflow, compute the sign bit. 145 if (NSW) { 146 if (Op0 == Op1) { 147 // The product of a number with itself is non-negative. 148 isKnownNonNegative = true; 149 } else { 150 bool isKnownNonNegativeOp1 = KnownZero.isNegative(); 151 bool isKnownNonNegativeOp0 = KnownZero2.isNegative(); 152 bool isKnownNegativeOp1 = KnownOne.isNegative(); 153 bool isKnownNegativeOp0 = KnownOne2.isNegative(); 154 // The product of two numbers with the same sign is non-negative. 155 isKnownNonNegative = (isKnownNegativeOp1 && isKnownNegativeOp0) || 156 (isKnownNonNegativeOp1 && isKnownNonNegativeOp0); 157 // The product of a negative number and a non-negative number is either 158 // negative or zero. 159 if (!isKnownNonNegative) 160 isKnownNegative = (isKnownNegativeOp1 && isKnownNonNegativeOp0 && 161 isKnownNonZero(Op0, TD, Depth)) || 162 (isKnownNegativeOp0 && isKnownNonNegativeOp1 && 163 isKnownNonZero(Op1, TD, Depth)); 164 } 165 } 166 167 // If low bits are zero in either operand, output low known-0 bits. 168 // Also compute a conserative estimate for high known-0 bits. 169 // More trickiness is possible, but this is sufficient for the 170 // interesting case of alignment computation. 171 KnownOne.clearAllBits(); 172 unsigned TrailZ = KnownZero.countTrailingOnes() + 173 KnownZero2.countTrailingOnes(); 174 unsigned LeadZ = std::max(KnownZero.countLeadingOnes() + 175 KnownZero2.countLeadingOnes(), 176 BitWidth) - BitWidth; 177 178 TrailZ = std::min(TrailZ, BitWidth); 179 LeadZ = std::min(LeadZ, BitWidth); 180 KnownZero = APInt::getLowBitsSet(BitWidth, TrailZ) | 181 APInt::getHighBitsSet(BitWidth, LeadZ); 182 183 // Only make use of no-wrap flags if we failed to compute the sign bit 184 // directly. This matters if the multiplication always overflows, in 185 // which case we prefer to follow the result of the direct computation, 186 // though as the program is invoking undefined behaviour we can choose 187 // whatever we like here. 188 if (isKnownNonNegative && !KnownOne.isNegative()) 189 KnownZero.setBit(BitWidth - 1); 190 else if (isKnownNegative && !KnownZero.isNegative()) 191 KnownOne.setBit(BitWidth - 1); 192 } 193 194 void llvm::computeMaskedBitsLoad(const MDNode &Ranges, APInt &KnownZero) { 195 unsigned BitWidth = KnownZero.getBitWidth(); 196 unsigned NumRanges = Ranges.getNumOperands() / 2; 197 assert(NumRanges >= 1); 198 199 // Use the high end of the ranges to find leading zeros. 200 unsigned MinLeadingZeros = BitWidth; 201 for (unsigned i = 0; i < NumRanges; ++i) { 202 ConstantInt *Lower = cast<ConstantInt>(Ranges.getOperand(2*i + 0)); 203 ConstantInt *Upper = cast<ConstantInt>(Ranges.getOperand(2*i + 1)); 204 ConstantRange Range(Lower->getValue(), Upper->getValue()); 205 if (Range.isWrappedSet()) 206 MinLeadingZeros = 0; // -1 has no zeros 207 unsigned LeadingZeros = (Upper->getValue() - 1).countLeadingZeros(); 208 MinLeadingZeros = std::min(LeadingZeros, MinLeadingZeros); 209 } 210 211 KnownZero = APInt::getHighBitsSet(BitWidth, MinLeadingZeros); 212 } 213 /// ComputeMaskedBits - Determine which of the bits are known to be either zero 214 /// or one and return them in the KnownZero/KnownOne bit sets. 215 /// 216 /// NOTE: we cannot consider 'undef' to be "IsZero" here. The problem is that 217 /// we cannot optimize based on the assumption that it is zero without changing 218 /// it to be an explicit zero. If we don't change it to zero, other code could 219 /// optimized based on the contradictory assumption that it is non-zero. 220 /// Because instcombine aggressively folds operations with undef args anyway, 221 /// this won't lose us code quality. 222 /// 223 /// This function is defined on values with integer type, values with pointer 224 /// type (but only if TD is non-null), and vectors of integers. In the case 225 /// where V is a vector, known zero, and known one values are the 226 /// same width as the vector element, and the bit is set only if it is true 227 /// for all of the elements in the vector. 228 void llvm::ComputeMaskedBits(Value *V, APInt &KnownZero, APInt &KnownOne, 229 const DataLayout *TD, unsigned Depth) { 230 assert(V && "No Value?"); 231 assert(Depth <= MaxDepth && "Limit Search Depth"); 232 unsigned BitWidth = KnownZero.getBitWidth(); 233 234 assert((V->getType()->isIntOrIntVectorTy() || 235 V->getType()->getScalarType()->isPointerTy()) && 236 "Not integer or pointer type!"); 237 assert((!TD || 238 TD->getTypeSizeInBits(V->getType()->getScalarType()) == BitWidth) && 239 (!V->getType()->isIntOrIntVectorTy() || 240 V->getType()->getScalarSizeInBits() == BitWidth) && 241 KnownZero.getBitWidth() == BitWidth && 242 KnownOne.getBitWidth() == BitWidth && 243 "V, Mask, KnownOne and KnownZero should have same BitWidth"); 244 245 if (ConstantInt *CI = dyn_cast<ConstantInt>(V)) { 246 // We know all of the bits for a constant! 247 KnownOne = CI->getValue(); 248 KnownZero = ~KnownOne; 249 return; 250 } 251 // Null and aggregate-zero are all-zeros. 252 if (isa<ConstantPointerNull>(V) || 253 isa<ConstantAggregateZero>(V)) { 254 KnownOne.clearAllBits(); 255 KnownZero = APInt::getAllOnesValue(BitWidth); 256 return; 257 } 258 // Handle a constant vector by taking the intersection of the known bits of 259 // each element. There is no real need to handle ConstantVector here, because 260 // we don't handle undef in any particularly useful way. 261 if (ConstantDataSequential *CDS = dyn_cast<ConstantDataSequential>(V)) { 262 // We know that CDS must be a vector of integers. Take the intersection of 263 // each element. 264 KnownZero.setAllBits(); KnownOne.setAllBits(); 265 APInt Elt(KnownZero.getBitWidth(), 0); 266 for (unsigned i = 0, e = CDS->getNumElements(); i != e; ++i) { 267 Elt = CDS->getElementAsInteger(i); 268 KnownZero &= ~Elt; 269 KnownOne &= Elt; 270 } 271 return; 272 } 273 274 // The address of an aligned GlobalValue has trailing zeros. 275 if (GlobalValue *GV = dyn_cast<GlobalValue>(V)) { 276 unsigned Align = GV->getAlignment(); 277 if (Align == 0 && TD) { 278 if (GlobalVariable *GVar = dyn_cast<GlobalVariable>(GV)) { 279 Type *ObjectType = GVar->getType()->getElementType(); 280 if (ObjectType->isSized()) { 281 // If the object is defined in the current Module, we'll be giving 282 // it the preferred alignment. Otherwise, we have to assume that it 283 // may only have the minimum ABI alignment. 284 if (!GVar->isDeclaration() && !GVar->isWeakForLinker()) 285 Align = TD->getPreferredAlignment(GVar); 286 else 287 Align = TD->getABITypeAlignment(ObjectType); 288 } 289 } 290 } 291 if (Align > 0) 292 KnownZero = APInt::getLowBitsSet(BitWidth, 293 CountTrailingZeros_32(Align)); 294 else 295 KnownZero.clearAllBits(); 296 KnownOne.clearAllBits(); 297 return; 298 } 299 // A weak GlobalAlias is totally unknown. A non-weak GlobalAlias has 300 // the bits of its aliasee. 301 if (GlobalAlias *GA = dyn_cast<GlobalAlias>(V)) { 302 if (GA->mayBeOverridden()) { 303 KnownZero.clearAllBits(); KnownOne.clearAllBits(); 304 } else { 305 ComputeMaskedBits(GA->getAliasee(), KnownZero, KnownOne, TD, Depth+1); 306 } 307 return; 308 } 309 310 if (Argument *A = dyn_cast<Argument>(V)) { 311 unsigned Align = 0; 312 313 if (A->hasByValAttr()) { 314 // Get alignment information off byval arguments if specified in the IR. 315 Align = A->getParamAlignment(); 316 } else if (TD && A->hasStructRetAttr()) { 317 // An sret parameter has at least the ABI alignment of the return type. 318 Type *EltTy = cast<PointerType>(A->getType())->getElementType(); 319 if (EltTy->isSized()) 320 Align = TD->getABITypeAlignment(EltTy); 321 } 322 323 if (Align) 324 KnownZero = APInt::getLowBitsSet(BitWidth, CountTrailingZeros_32(Align)); 325 return; 326 } 327 328 // Start out not knowing anything. 329 KnownZero.clearAllBits(); KnownOne.clearAllBits(); 330 331 if (Depth == MaxDepth) 332 return; // Limit search depth. 333 334 Operator *I = dyn_cast<Operator>(V); 335 if (!I) return; 336 337 APInt KnownZero2(KnownZero), KnownOne2(KnownOne); 338 switch (I->getOpcode()) { 339 default: break; 340 case Instruction::Load: 341 if (MDNode *MD = cast<LoadInst>(I)->getMetadata(LLVMContext::MD_range)) 342 computeMaskedBitsLoad(*MD, KnownZero); 343 return; 344 case Instruction::And: { 345 // If either the LHS or the RHS are Zero, the result is zero. 346 ComputeMaskedBits(I->getOperand(1), KnownZero, KnownOne, TD, Depth+1); 347 ComputeMaskedBits(I->getOperand(0), KnownZero2, KnownOne2, TD, Depth+1); 348 assert((KnownZero & KnownOne) == 0 && "Bits known to be one AND zero?"); 349 assert((KnownZero2 & KnownOne2) == 0 && "Bits known to be one AND zero?"); 350 351 // Output known-1 bits are only known if set in both the LHS & RHS. 352 KnownOne &= KnownOne2; 353 // Output known-0 are known to be clear if zero in either the LHS | RHS. 354 KnownZero |= KnownZero2; 355 return; 356 } 357 case Instruction::Or: { 358 ComputeMaskedBits(I->getOperand(1), KnownZero, KnownOne, TD, Depth+1); 359 ComputeMaskedBits(I->getOperand(0), KnownZero2, KnownOne2, TD, Depth+1); 360 assert((KnownZero & KnownOne) == 0 && "Bits known to be one AND zero?"); 361 assert((KnownZero2 & KnownOne2) == 0 && "Bits known to be one AND zero?"); 362 363 // Output known-0 bits are only known if clear in both the LHS & RHS. 364 KnownZero &= KnownZero2; 365 // Output known-1 are known to be set if set in either the LHS | RHS. 366 KnownOne |= KnownOne2; 367 return; 368 } 369 case Instruction::Xor: { 370 ComputeMaskedBits(I->getOperand(1), KnownZero, KnownOne, TD, Depth+1); 371 ComputeMaskedBits(I->getOperand(0), KnownZero2, KnownOne2, TD, Depth+1); 372 assert((KnownZero & KnownOne) == 0 && "Bits known to be one AND zero?"); 373 assert((KnownZero2 & KnownOne2) == 0 && "Bits known to be one AND zero?"); 374 375 // Output known-0 bits are known if clear or set in both the LHS & RHS. 376 APInt KnownZeroOut = (KnownZero & KnownZero2) | (KnownOne & KnownOne2); 377 // Output known-1 are known to be set if set in only one of the LHS, RHS. 378 KnownOne = (KnownZero & KnownOne2) | (KnownOne & KnownZero2); 379 KnownZero = KnownZeroOut; 380 return; 381 } 382 case Instruction::Mul: { 383 bool NSW = cast<OverflowingBinaryOperator>(I)->hasNoSignedWrap(); 384 ComputeMaskedBitsMul(I->getOperand(0), I->getOperand(1), NSW, 385 KnownZero, KnownOne, KnownZero2, KnownOne2, TD, Depth); 386 break; 387 } 388 case Instruction::UDiv: { 389 // For the purposes of computing leading zeros we can conservatively 390 // treat a udiv as a logical right shift by the power of 2 known to 391 // be less than the denominator. 392 ComputeMaskedBits(I->getOperand(0), KnownZero2, KnownOne2, TD, Depth+1); 393 unsigned LeadZ = KnownZero2.countLeadingOnes(); 394 395 KnownOne2.clearAllBits(); 396 KnownZero2.clearAllBits(); 397 ComputeMaskedBits(I->getOperand(1), KnownZero2, KnownOne2, TD, Depth+1); 398 unsigned RHSUnknownLeadingOnes = KnownOne2.countLeadingZeros(); 399 if (RHSUnknownLeadingOnes != BitWidth) 400 LeadZ = std::min(BitWidth, 401 LeadZ + BitWidth - RHSUnknownLeadingOnes - 1); 402 403 KnownZero = APInt::getHighBitsSet(BitWidth, LeadZ); 404 return; 405 } 406 case Instruction::Select: 407 ComputeMaskedBits(I->getOperand(2), KnownZero, KnownOne, TD, Depth+1); 408 ComputeMaskedBits(I->getOperand(1), KnownZero2, KnownOne2, TD, 409 Depth+1); 410 assert((KnownZero & KnownOne) == 0 && "Bits known to be one AND zero?"); 411 assert((KnownZero2 & KnownOne2) == 0 && "Bits known to be one AND zero?"); 412 413 // Only known if known in both the LHS and RHS. 414 KnownOne &= KnownOne2; 415 KnownZero &= KnownZero2; 416 return; 417 case Instruction::FPTrunc: 418 case Instruction::FPExt: 419 case Instruction::FPToUI: 420 case Instruction::FPToSI: 421 case Instruction::SIToFP: 422 case Instruction::UIToFP: 423 return; // Can't work with floating point. 424 case Instruction::PtrToInt: 425 case Instruction::IntToPtr: 426 // We can't handle these if we don't know the pointer size. 427 if (!TD) return; 428 // FALL THROUGH and handle them the same as zext/trunc. 429 case Instruction::ZExt: 430 case Instruction::Trunc: { 431 Type *SrcTy = I->getOperand(0)->getType(); 432 433 unsigned SrcBitWidth; 434 // Note that we handle pointer operands here because of inttoptr/ptrtoint 435 // which fall through here. 436 SrcBitWidth = TD->getTypeSizeInBits(SrcTy->getScalarType()); 437 438 assert(SrcBitWidth && "SrcBitWidth can't be zero"); 439 KnownZero = KnownZero.zextOrTrunc(SrcBitWidth); 440 KnownOne = KnownOne.zextOrTrunc(SrcBitWidth); 441 ComputeMaskedBits(I->getOperand(0), KnownZero, KnownOne, TD, Depth+1); 442 KnownZero = KnownZero.zextOrTrunc(BitWidth); 443 KnownOne = KnownOne.zextOrTrunc(BitWidth); 444 // Any top bits are known to be zero. 445 if (BitWidth > SrcBitWidth) 446 KnownZero |= APInt::getHighBitsSet(BitWidth, BitWidth - SrcBitWidth); 447 return; 448 } 449 case Instruction::BitCast: { 450 Type *SrcTy = I->getOperand(0)->getType(); 451 if ((SrcTy->isIntegerTy() || SrcTy->isPointerTy()) && 452 // TODO: For now, not handling conversions like: 453 // (bitcast i64 %x to <2 x i32>) 454 !I->getType()->isVectorTy()) { 455 ComputeMaskedBits(I->getOperand(0), KnownZero, KnownOne, TD, Depth+1); 456 return; 457 } 458 break; 459 } 460 case Instruction::SExt: { 461 // Compute the bits in the result that are not present in the input. 462 unsigned SrcBitWidth = I->getOperand(0)->getType()->getScalarSizeInBits(); 463 464 KnownZero = KnownZero.trunc(SrcBitWidth); 465 KnownOne = KnownOne.trunc(SrcBitWidth); 466 ComputeMaskedBits(I->getOperand(0), KnownZero, KnownOne, TD, Depth+1); 467 assert((KnownZero & KnownOne) == 0 && "Bits known to be one AND zero?"); 468 KnownZero = KnownZero.zext(BitWidth); 469 KnownOne = KnownOne.zext(BitWidth); 470 471 // If the sign bit of the input is known set or clear, then we know the 472 // top bits of the result. 473 if (KnownZero[SrcBitWidth-1]) // Input sign bit known zero 474 KnownZero |= APInt::getHighBitsSet(BitWidth, BitWidth - SrcBitWidth); 475 else if (KnownOne[SrcBitWidth-1]) // Input sign bit known set 476 KnownOne |= APInt::getHighBitsSet(BitWidth, BitWidth - SrcBitWidth); 477 return; 478 } 479 case Instruction::Shl: 480 // (shl X, C1) & C2 == 0 iff (X & C2 >>u C1) == 0 481 if (ConstantInt *SA = dyn_cast<ConstantInt>(I->getOperand(1))) { 482 uint64_t ShiftAmt = SA->getLimitedValue(BitWidth); 483 ComputeMaskedBits(I->getOperand(0), KnownZero, KnownOne, TD, Depth+1); 484 assert((KnownZero & KnownOne) == 0 && "Bits known to be one AND zero?"); 485 KnownZero <<= ShiftAmt; 486 KnownOne <<= ShiftAmt; 487 KnownZero |= APInt::getLowBitsSet(BitWidth, ShiftAmt); // low bits known 0 488 return; 489 } 490 break; 491 case Instruction::LShr: 492 // (ushr X, C1) & C2 == 0 iff (-1 >> C1) & C2 == 0 493 if (ConstantInt *SA = dyn_cast<ConstantInt>(I->getOperand(1))) { 494 // Compute the new bits that are at the top now. 495 uint64_t ShiftAmt = SA->getLimitedValue(BitWidth); 496 497 // Unsigned shift right. 498 ComputeMaskedBits(I->getOperand(0), KnownZero,KnownOne, TD, Depth+1); 499 assert((KnownZero & KnownOne) == 0 && "Bits known to be one AND zero?"); 500 KnownZero = APIntOps::lshr(KnownZero, ShiftAmt); 501 KnownOne = APIntOps::lshr(KnownOne, ShiftAmt); 502 // high bits known zero. 503 KnownZero |= APInt::getHighBitsSet(BitWidth, ShiftAmt); 504 return; 505 } 506 break; 507 case Instruction::AShr: 508 // (ashr X, C1) & C2 == 0 iff (-1 >> C1) & C2 == 0 509 if (ConstantInt *SA = dyn_cast<ConstantInt>(I->getOperand(1))) { 510 // Compute the new bits that are at the top now. 511 uint64_t ShiftAmt = SA->getLimitedValue(BitWidth-1); 512 513 // Signed shift right. 514 ComputeMaskedBits(I->getOperand(0), KnownZero, KnownOne, TD, Depth+1); 515 assert((KnownZero & KnownOne) == 0 && "Bits known to be one AND zero?"); 516 KnownZero = APIntOps::lshr(KnownZero, ShiftAmt); 517 KnownOne = APIntOps::lshr(KnownOne, ShiftAmt); 518 519 APInt HighBits(APInt::getHighBitsSet(BitWidth, ShiftAmt)); 520 if (KnownZero[BitWidth-ShiftAmt-1]) // New bits are known zero. 521 KnownZero |= HighBits; 522 else if (KnownOne[BitWidth-ShiftAmt-1]) // New bits are known one. 523 KnownOne |= HighBits; 524 return; 525 } 526 break; 527 case Instruction::Sub: { 528 bool NSW = cast<OverflowingBinaryOperator>(I)->hasNoSignedWrap(); 529 ComputeMaskedBitsAddSub(false, I->getOperand(0), I->getOperand(1), NSW, 530 KnownZero, KnownOne, KnownZero2, KnownOne2, TD, 531 Depth); 532 break; 533 } 534 case Instruction::Add: { 535 bool NSW = cast<OverflowingBinaryOperator>(I)->hasNoSignedWrap(); 536 ComputeMaskedBitsAddSub(true, I->getOperand(0), I->getOperand(1), NSW, 537 KnownZero, KnownOne, KnownZero2, KnownOne2, TD, 538 Depth); 539 break; 540 } 541 case Instruction::SRem: 542 if (ConstantInt *Rem = dyn_cast<ConstantInt>(I->getOperand(1))) { 543 APInt RA = Rem->getValue().abs(); 544 if (RA.isPowerOf2()) { 545 APInt LowBits = RA - 1; 546 ComputeMaskedBits(I->getOperand(0), KnownZero2, KnownOne2, TD, Depth+1); 547 548 // The low bits of the first operand are unchanged by the srem. 549 KnownZero = KnownZero2 & LowBits; 550 KnownOne = KnownOne2 & LowBits; 551 552 // If the first operand is non-negative or has all low bits zero, then 553 // the upper bits are all zero. 554 if (KnownZero2[BitWidth-1] || ((KnownZero2 & LowBits) == LowBits)) 555 KnownZero |= ~LowBits; 556 557 // If the first operand is negative and not all low bits are zero, then 558 // the upper bits are all one. 559 if (KnownOne2[BitWidth-1] && ((KnownOne2 & LowBits) != 0)) 560 KnownOne |= ~LowBits; 561 562 assert((KnownZero & KnownOne) == 0 && "Bits known to be one AND zero?"); 563 } 564 } 565 566 // The sign bit is the LHS's sign bit, except when the result of the 567 // remainder is zero. 568 if (KnownZero.isNonNegative()) { 569 APInt LHSKnownZero(BitWidth, 0), LHSKnownOne(BitWidth, 0); 570 ComputeMaskedBits(I->getOperand(0), LHSKnownZero, LHSKnownOne, TD, 571 Depth+1); 572 // If it's known zero, our sign bit is also zero. 573 if (LHSKnownZero.isNegative()) 574 KnownZero.setBit(BitWidth - 1); 575 } 576 577 break; 578 case Instruction::URem: { 579 if (ConstantInt *Rem = dyn_cast<ConstantInt>(I->getOperand(1))) { 580 APInt RA = Rem->getValue(); 581 if (RA.isPowerOf2()) { 582 APInt LowBits = (RA - 1); 583 ComputeMaskedBits(I->getOperand(0), KnownZero, KnownOne, TD, 584 Depth+1); 585 assert((KnownZero & KnownOne) == 0 && "Bits known to be one AND zero?"); 586 KnownZero |= ~LowBits; 587 KnownOne &= LowBits; 588 break; 589 } 590 } 591 592 // Since the result is less than or equal to either operand, any leading 593 // zero bits in either operand must also exist in the result. 594 ComputeMaskedBits(I->getOperand(0), KnownZero, KnownOne, TD, Depth+1); 595 ComputeMaskedBits(I->getOperand(1), KnownZero2, KnownOne2, TD, Depth+1); 596 597 unsigned Leaders = std::max(KnownZero.countLeadingOnes(), 598 KnownZero2.countLeadingOnes()); 599 KnownOne.clearAllBits(); 600 KnownZero = APInt::getHighBitsSet(BitWidth, Leaders); 601 break; 602 } 603 604 case Instruction::Alloca: { 605 AllocaInst *AI = cast<AllocaInst>(V); 606 unsigned Align = AI->getAlignment(); 607 if (Align == 0 && TD) 608 Align = TD->getABITypeAlignment(AI->getType()->getElementType()); 609 610 if (Align > 0) 611 KnownZero = APInt::getLowBitsSet(BitWidth, CountTrailingZeros_32(Align)); 612 break; 613 } 614 case Instruction::GetElementPtr: { 615 // Analyze all of the subscripts of this getelementptr instruction 616 // to determine if we can prove known low zero bits. 617 APInt LocalKnownZero(BitWidth, 0), LocalKnownOne(BitWidth, 0); 618 ComputeMaskedBits(I->getOperand(0), LocalKnownZero, LocalKnownOne, TD, 619 Depth+1); 620 unsigned TrailZ = LocalKnownZero.countTrailingOnes(); 621 622 gep_type_iterator GTI = gep_type_begin(I); 623 for (unsigned i = 1, e = I->getNumOperands(); i != e; ++i, ++GTI) { 624 Value *Index = I->getOperand(i); 625 if (StructType *STy = dyn_cast<StructType>(*GTI)) { 626 // Handle struct member offset arithmetic. 627 if (!TD) return; 628 const StructLayout *SL = TD->getStructLayout(STy); 629 unsigned Idx = cast<ConstantInt>(Index)->getZExtValue(); 630 uint64_t Offset = SL->getElementOffset(Idx); 631 TrailZ = std::min(TrailZ, 632 CountTrailingZeros_64(Offset)); 633 } else { 634 // Handle array index arithmetic. 635 Type *IndexedTy = GTI.getIndexedType(); 636 if (!IndexedTy->isSized()) return; 637 unsigned GEPOpiBits = Index->getType()->getScalarSizeInBits(); 638 uint64_t TypeSize = TD ? TD->getTypeAllocSize(IndexedTy) : 1; 639 LocalKnownZero = LocalKnownOne = APInt(GEPOpiBits, 0); 640 ComputeMaskedBits(Index, LocalKnownZero, LocalKnownOne, TD, Depth+1); 641 TrailZ = std::min(TrailZ, 642 unsigned(CountTrailingZeros_64(TypeSize) + 643 LocalKnownZero.countTrailingOnes())); 644 } 645 } 646 647 KnownZero = APInt::getLowBitsSet(BitWidth, TrailZ); 648 break; 649 } 650 case Instruction::PHI: { 651 PHINode *P = cast<PHINode>(I); 652 // Handle the case of a simple two-predecessor recurrence PHI. 653 // There's a lot more that could theoretically be done here, but 654 // this is sufficient to catch some interesting cases. 655 if (P->getNumIncomingValues() == 2) { 656 for (unsigned i = 0; i != 2; ++i) { 657 Value *L = P->getIncomingValue(i); 658 Value *R = P->getIncomingValue(!i); 659 Operator *LU = dyn_cast<Operator>(L); 660 if (!LU) 661 continue; 662 unsigned Opcode = LU->getOpcode(); 663 // Check for operations that have the property that if 664 // both their operands have low zero bits, the result 665 // will have low zero bits. 666 if (Opcode == Instruction::Add || 667 Opcode == Instruction::Sub || 668 Opcode == Instruction::And || 669 Opcode == Instruction::Or || 670 Opcode == Instruction::Mul) { 671 Value *LL = LU->getOperand(0); 672 Value *LR = LU->getOperand(1); 673 // Find a recurrence. 674 if (LL == I) 675 L = LR; 676 else if (LR == I) 677 L = LL; 678 else 679 break; 680 // Ok, we have a PHI of the form L op= R. Check for low 681 // zero bits. 682 ComputeMaskedBits(R, KnownZero2, KnownOne2, TD, Depth+1); 683 684 // We need to take the minimum number of known bits 685 APInt KnownZero3(KnownZero), KnownOne3(KnownOne); 686 ComputeMaskedBits(L, KnownZero3, KnownOne3, TD, Depth+1); 687 688 KnownZero = APInt::getLowBitsSet(BitWidth, 689 std::min(KnownZero2.countTrailingOnes(), 690 KnownZero3.countTrailingOnes())); 691 break; 692 } 693 } 694 } 695 696 // Unreachable blocks may have zero-operand PHI nodes. 697 if (P->getNumIncomingValues() == 0) 698 return; 699 700 // Otherwise take the unions of the known bit sets of the operands, 701 // taking conservative care to avoid excessive recursion. 702 if (Depth < MaxDepth - 1 && !KnownZero && !KnownOne) { 703 // Skip if every incoming value references to ourself. 704 if (dyn_cast_or_null<UndefValue>(P->hasConstantValue())) 705 break; 706 707 KnownZero = APInt::getAllOnesValue(BitWidth); 708 KnownOne = APInt::getAllOnesValue(BitWidth); 709 for (unsigned i = 0, e = P->getNumIncomingValues(); i != e; ++i) { 710 // Skip direct self references. 711 if (P->getIncomingValue(i) == P) continue; 712 713 KnownZero2 = APInt(BitWidth, 0); 714 KnownOne2 = APInt(BitWidth, 0); 715 // Recurse, but cap the recursion to one level, because we don't 716 // want to waste time spinning around in loops. 717 ComputeMaskedBits(P->getIncomingValue(i), KnownZero2, KnownOne2, TD, 718 MaxDepth-1); 719 KnownZero &= KnownZero2; 720 KnownOne &= KnownOne2; 721 // If all bits have been ruled out, there's no need to check 722 // more operands. 723 if (!KnownZero && !KnownOne) 724 break; 725 } 726 } 727 break; 728 } 729 case Instruction::Call: 730 if (IntrinsicInst *II = dyn_cast<IntrinsicInst>(I)) { 731 switch (II->getIntrinsicID()) { 732 default: break; 733 case Intrinsic::ctlz: 734 case Intrinsic::cttz: { 735 unsigned LowBits = Log2_32(BitWidth)+1; 736 // If this call is undefined for 0, the result will be less than 2^n. 737 if (II->getArgOperand(1) == ConstantInt::getTrue(II->getContext())) 738 LowBits -= 1; 739 KnownZero = APInt::getHighBitsSet(BitWidth, BitWidth - LowBits); 740 break; 741 } 742 case Intrinsic::ctpop: { 743 unsigned LowBits = Log2_32(BitWidth)+1; 744 KnownZero = APInt::getHighBitsSet(BitWidth, BitWidth - LowBits); 745 break; 746 } 747 case Intrinsic::x86_sse42_crc32_64_8: 748 case Intrinsic::x86_sse42_crc32_64_64: 749 KnownZero = APInt::getHighBitsSet(64, 32); 750 break; 751 } 752 } 753 break; 754 case Instruction::ExtractValue: 755 if (IntrinsicInst *II = dyn_cast<IntrinsicInst>(I->getOperand(0))) { 756 ExtractValueInst *EVI = cast<ExtractValueInst>(I); 757 if (EVI->getNumIndices() != 1) break; 758 if (EVI->getIndices()[0] == 0) { 759 switch (II->getIntrinsicID()) { 760 default: break; 761 case Intrinsic::uadd_with_overflow: 762 case Intrinsic::sadd_with_overflow: 763 ComputeMaskedBitsAddSub(true, II->getArgOperand(0), 764 II->getArgOperand(1), false, KnownZero, 765 KnownOne, KnownZero2, KnownOne2, TD, Depth); 766 break; 767 case Intrinsic::usub_with_overflow: 768 case Intrinsic::ssub_with_overflow: 769 ComputeMaskedBitsAddSub(false, II->getArgOperand(0), 770 II->getArgOperand(1), false, KnownZero, 771 KnownOne, KnownZero2, KnownOne2, TD, Depth); 772 break; 773 case Intrinsic::umul_with_overflow: 774 case Intrinsic::smul_with_overflow: 775 ComputeMaskedBitsMul(II->getArgOperand(0), II->getArgOperand(1), 776 false, KnownZero, KnownOne, 777 KnownZero2, KnownOne2, TD, Depth); 778 break; 779 } 780 } 781 } 782 } 783 } 784 785 /// ComputeSignBit - Determine whether the sign bit is known to be zero or 786 /// one. Convenience wrapper around ComputeMaskedBits. 787 void llvm::ComputeSignBit(Value *V, bool &KnownZero, bool &KnownOne, 788 const DataLayout *TD, unsigned Depth) { 789 unsigned BitWidth = getBitWidth(V->getType(), TD); 790 if (!BitWidth) { 791 KnownZero = false; 792 KnownOne = false; 793 return; 794 } 795 APInt ZeroBits(BitWidth, 0); 796 APInt OneBits(BitWidth, 0); 797 ComputeMaskedBits(V, ZeroBits, OneBits, TD, Depth); 798 KnownOne = OneBits[BitWidth - 1]; 799 KnownZero = ZeroBits[BitWidth - 1]; 800 } 801 802 /// isPowerOfTwo - Return true if the given value is known to have exactly one 803 /// bit set when defined. For vectors return true if every element is known to 804 /// be a power of two when defined. Supports values with integer or pointer 805 /// types and vectors of integers. 806 bool llvm::isPowerOfTwo(Value *V, const DataLayout *TD, bool OrZero, 807 unsigned Depth) { 808 if (Constant *C = dyn_cast<Constant>(V)) { 809 if (C->isNullValue()) 810 return OrZero; 811 if (ConstantInt *CI = dyn_cast<ConstantInt>(C)) 812 return CI->getValue().isPowerOf2(); 813 // TODO: Handle vector constants. 814 } 815 816 // 1 << X is clearly a power of two if the one is not shifted off the end. If 817 // it is shifted off the end then the result is undefined. 818 if (match(V, m_Shl(m_One(), m_Value()))) 819 return true; 820 821 // (signbit) >>l X is clearly a power of two if the one is not shifted off the 822 // bottom. If it is shifted off the bottom then the result is undefined. 823 if (match(V, m_LShr(m_SignBit(), m_Value()))) 824 return true; 825 826 // The remaining tests are all recursive, so bail out if we hit the limit. 827 if (Depth++ == MaxDepth) 828 return false; 829 830 Value *X = 0, *Y = 0; 831 // A shift of a power of two is a power of two or zero. 832 if (OrZero && (match(V, m_Shl(m_Value(X), m_Value())) || 833 match(V, m_Shr(m_Value(X), m_Value())))) 834 return isPowerOfTwo(X, TD, /*OrZero*/true, Depth); 835 836 if (ZExtInst *ZI = dyn_cast<ZExtInst>(V)) 837 return isPowerOfTwo(ZI->getOperand(0), TD, OrZero, Depth); 838 839 if (SelectInst *SI = dyn_cast<SelectInst>(V)) 840 return isPowerOfTwo(SI->getTrueValue(), TD, OrZero, Depth) && 841 isPowerOfTwo(SI->getFalseValue(), TD, OrZero, Depth); 842 843 if (OrZero && match(V, m_And(m_Value(X), m_Value(Y)))) { 844 // A power of two and'd with anything is a power of two or zero. 845 if (isPowerOfTwo(X, TD, /*OrZero*/true, Depth) || 846 isPowerOfTwo(Y, TD, /*OrZero*/true, Depth)) 847 return true; 848 // X & (-X) is always a power of two or zero. 849 if (match(X, m_Neg(m_Specific(Y))) || match(Y, m_Neg(m_Specific(X)))) 850 return true; 851 return false; 852 } 853 854 // An exact divide or right shift can only shift off zero bits, so the result 855 // is a power of two only if the first operand is a power of two and not 856 // copying a sign bit (sdiv int_min, 2). 857 if (match(V, m_Exact(m_LShr(m_Value(), m_Value()))) || 858 match(V, m_Exact(m_UDiv(m_Value(), m_Value())))) { 859 return isPowerOfTwo(cast<Operator>(V)->getOperand(0), TD, OrZero, Depth); 860 } 861 862 return false; 863 } 864 865 /// isKnownNonZero - Return true if the given value is known to be non-zero 866 /// when defined. For vectors return true if every element is known to be 867 /// non-zero when defined. Supports values with integer or pointer type and 868 /// vectors of integers. 869 bool llvm::isKnownNonZero(Value *V, const DataLayout *TD, unsigned Depth) { 870 if (Constant *C = dyn_cast<Constant>(V)) { 871 if (C->isNullValue()) 872 return false; 873 if (isa<ConstantInt>(C)) 874 // Must be non-zero due to null test above. 875 return true; 876 // TODO: Handle vectors 877 return false; 878 } 879 880 // The remaining tests are all recursive, so bail out if we hit the limit. 881 if (Depth++ >= MaxDepth) 882 return false; 883 884 unsigned BitWidth = getBitWidth(V->getType(), TD); 885 886 // X | Y != 0 if X != 0 or Y != 0. 887 Value *X = 0, *Y = 0; 888 if (match(V, m_Or(m_Value(X), m_Value(Y)))) 889 return isKnownNonZero(X, TD, Depth) || isKnownNonZero(Y, TD, Depth); 890 891 // ext X != 0 if X != 0. 892 if (isa<SExtInst>(V) || isa<ZExtInst>(V)) 893 return isKnownNonZero(cast<Instruction>(V)->getOperand(0), TD, Depth); 894 895 // shl X, Y != 0 if X is odd. Note that the value of the shift is undefined 896 // if the lowest bit is shifted off the end. 897 if (BitWidth && match(V, m_Shl(m_Value(X), m_Value(Y)))) { 898 // shl nuw can't remove any non-zero bits. 899 OverflowingBinaryOperator *BO = cast<OverflowingBinaryOperator>(V); 900 if (BO->hasNoUnsignedWrap()) 901 return isKnownNonZero(X, TD, Depth); 902 903 APInt KnownZero(BitWidth, 0); 904 APInt KnownOne(BitWidth, 0); 905 ComputeMaskedBits(X, KnownZero, KnownOne, TD, Depth); 906 if (KnownOne[0]) 907 return true; 908 } 909 // shr X, Y != 0 if X is negative. Note that the value of the shift is not 910 // defined if the sign bit is shifted off the end. 911 else if (match(V, m_Shr(m_Value(X), m_Value(Y)))) { 912 // shr exact can only shift out zero bits. 913 PossiblyExactOperator *BO = cast<PossiblyExactOperator>(V); 914 if (BO->isExact()) 915 return isKnownNonZero(X, TD, Depth); 916 917 bool XKnownNonNegative, XKnownNegative; 918 ComputeSignBit(X, XKnownNonNegative, XKnownNegative, TD, Depth); 919 if (XKnownNegative) 920 return true; 921 } 922 // div exact can only produce a zero if the dividend is zero. 923 else if (match(V, m_Exact(m_IDiv(m_Value(X), m_Value())))) { 924 return isKnownNonZero(X, TD, Depth); 925 } 926 // X + Y. 927 else if (match(V, m_Add(m_Value(X), m_Value(Y)))) { 928 bool XKnownNonNegative, XKnownNegative; 929 bool YKnownNonNegative, YKnownNegative; 930 ComputeSignBit(X, XKnownNonNegative, XKnownNegative, TD, Depth); 931 ComputeSignBit(Y, YKnownNonNegative, YKnownNegative, TD, Depth); 932 933 // If X and Y are both non-negative (as signed values) then their sum is not 934 // zero unless both X and Y are zero. 935 if (XKnownNonNegative && YKnownNonNegative) 936 if (isKnownNonZero(X, TD, Depth) || isKnownNonZero(Y, TD, Depth)) 937 return true; 938 939 // If X and Y are both negative (as signed values) then their sum is not 940 // zero unless both X and Y equal INT_MIN. 941 if (BitWidth && XKnownNegative && YKnownNegative) { 942 APInt KnownZero(BitWidth, 0); 943 APInt KnownOne(BitWidth, 0); 944 APInt Mask = APInt::getSignedMaxValue(BitWidth); 945 // The sign bit of X is set. If some other bit is set then X is not equal 946 // to INT_MIN. 947 ComputeMaskedBits(X, KnownZero, KnownOne, TD, Depth); 948 if ((KnownOne & Mask) != 0) 949 return true; 950 // The sign bit of Y is set. If some other bit is set then Y is not equal 951 // to INT_MIN. 952 ComputeMaskedBits(Y, KnownZero, KnownOne, TD, Depth); 953 if ((KnownOne & Mask) != 0) 954 return true; 955 } 956 957 // The sum of a non-negative number and a power of two is not zero. 958 if (XKnownNonNegative && isPowerOfTwo(Y, TD, /*OrZero*/false, Depth)) 959 return true; 960 if (YKnownNonNegative && isPowerOfTwo(X, TD, /*OrZero*/false, Depth)) 961 return true; 962 } 963 // X * Y. 964 else if (match(V, m_Mul(m_Value(X), m_Value(Y)))) { 965 OverflowingBinaryOperator *BO = cast<OverflowingBinaryOperator>(V); 966 // If X and Y are non-zero then so is X * Y as long as the multiplication 967 // does not overflow. 968 if ((BO->hasNoSignedWrap() || BO->hasNoUnsignedWrap()) && 969 isKnownNonZero(X, TD, Depth) && isKnownNonZero(Y, TD, Depth)) 970 return true; 971 } 972 // (C ? X : Y) != 0 if X != 0 and Y != 0. 973 else if (SelectInst *SI = dyn_cast<SelectInst>(V)) { 974 if (isKnownNonZero(SI->getTrueValue(), TD, Depth) && 975 isKnownNonZero(SI->getFalseValue(), TD, Depth)) 976 return true; 977 } 978 979 if (!BitWidth) return false; 980 APInt KnownZero(BitWidth, 0); 981 APInt KnownOne(BitWidth, 0); 982 ComputeMaskedBits(V, KnownZero, KnownOne, TD, Depth); 983 return KnownOne != 0; 984 } 985 986 /// MaskedValueIsZero - Return true if 'V & Mask' is known to be zero. We use 987 /// this predicate to simplify operations downstream. Mask is known to be zero 988 /// for bits that V cannot have. 989 /// 990 /// This function is defined on values with integer type, values with pointer 991 /// type (but only if TD is non-null), and vectors of integers. In the case 992 /// where V is a vector, the mask, known zero, and known one values are the 993 /// same width as the vector element, and the bit is set only if it is true 994 /// for all of the elements in the vector. 995 bool llvm::MaskedValueIsZero(Value *V, const APInt &Mask, 996 const DataLayout *TD, unsigned Depth) { 997 APInt KnownZero(Mask.getBitWidth(), 0), KnownOne(Mask.getBitWidth(), 0); 998 ComputeMaskedBits(V, KnownZero, KnownOne, TD, Depth); 999 assert((KnownZero & KnownOne) == 0 && "Bits known to be one AND zero?"); 1000 return (KnownZero & Mask) == Mask; 1001 } 1002 1003 1004 1005 /// ComputeNumSignBits - Return the number of times the sign bit of the 1006 /// register is replicated into the other bits. We know that at least 1 bit 1007 /// is always equal to the sign bit (itself), but other cases can give us 1008 /// information. For example, immediately after an "ashr X, 2", we know that 1009 /// the top 3 bits are all equal to each other, so we return 3. 1010 /// 1011 /// 'Op' must have a scalar integer type. 1012 /// 1013 unsigned llvm::ComputeNumSignBits(Value *V, const DataLayout *TD, 1014 unsigned Depth) { 1015 assert((TD || V->getType()->isIntOrIntVectorTy()) && 1016 "ComputeNumSignBits requires a DataLayout object to operate " 1017 "on non-integer values!"); 1018 Type *Ty = V->getType(); 1019 unsigned TyBits = TD ? TD->getTypeSizeInBits(V->getType()->getScalarType()) : 1020 Ty->getScalarSizeInBits(); 1021 unsigned Tmp, Tmp2; 1022 unsigned FirstAnswer = 1; 1023 1024 // Note that ConstantInt is handled by the general ComputeMaskedBits case 1025 // below. 1026 1027 if (Depth == 6) 1028 return 1; // Limit search depth. 1029 1030 Operator *U = dyn_cast<Operator>(V); 1031 switch (Operator::getOpcode(V)) { 1032 default: break; 1033 case Instruction::SExt: 1034 Tmp = TyBits - U->getOperand(0)->getType()->getScalarSizeInBits(); 1035 return ComputeNumSignBits(U->getOperand(0), TD, Depth+1) + Tmp; 1036 1037 case Instruction::AShr: { 1038 Tmp = ComputeNumSignBits(U->getOperand(0), TD, Depth+1); 1039 // ashr X, C -> adds C sign bits. Vectors too. 1040 const APInt *ShAmt; 1041 if (match(U->getOperand(1), m_APInt(ShAmt))) { 1042 Tmp += ShAmt->getZExtValue(); 1043 if (Tmp > TyBits) Tmp = TyBits; 1044 } 1045 return Tmp; 1046 } 1047 case Instruction::Shl: { 1048 const APInt *ShAmt; 1049 if (match(U->getOperand(1), m_APInt(ShAmt))) { 1050 // shl destroys sign bits. 1051 Tmp = ComputeNumSignBits(U->getOperand(0), TD, Depth+1); 1052 Tmp2 = ShAmt->getZExtValue(); 1053 if (Tmp2 >= TyBits || // Bad shift. 1054 Tmp2 >= Tmp) break; // Shifted all sign bits out. 1055 return Tmp - Tmp2; 1056 } 1057 break; 1058 } 1059 case Instruction::And: 1060 case Instruction::Or: 1061 case Instruction::Xor: // NOT is handled here. 1062 // Logical binary ops preserve the number of sign bits at the worst. 1063 Tmp = ComputeNumSignBits(U->getOperand(0), TD, Depth+1); 1064 if (Tmp != 1) { 1065 Tmp2 = ComputeNumSignBits(U->getOperand(1), TD, Depth+1); 1066 FirstAnswer = std::min(Tmp, Tmp2); 1067 // We computed what we know about the sign bits as our first 1068 // answer. Now proceed to the generic code that uses 1069 // ComputeMaskedBits, and pick whichever answer is better. 1070 } 1071 break; 1072 1073 case Instruction::Select: 1074 Tmp = ComputeNumSignBits(U->getOperand(1), TD, Depth+1); 1075 if (Tmp == 1) return 1; // Early out. 1076 Tmp2 = ComputeNumSignBits(U->getOperand(2), TD, Depth+1); 1077 return std::min(Tmp, Tmp2); 1078 1079 case Instruction::Add: 1080 // Add can have at most one carry bit. Thus we know that the output 1081 // is, at worst, one more bit than the inputs. 1082 Tmp = ComputeNumSignBits(U->getOperand(0), TD, Depth+1); 1083 if (Tmp == 1) return 1; // Early out. 1084 1085 // Special case decrementing a value (ADD X, -1): 1086 if (ConstantInt *CRHS = dyn_cast<ConstantInt>(U->getOperand(1))) 1087 if (CRHS->isAllOnesValue()) { 1088 APInt KnownZero(TyBits, 0), KnownOne(TyBits, 0); 1089 ComputeMaskedBits(U->getOperand(0), KnownZero, KnownOne, TD, Depth+1); 1090 1091 // If the input is known to be 0 or 1, the output is 0/-1, which is all 1092 // sign bits set. 1093 if ((KnownZero | APInt(TyBits, 1)).isAllOnesValue()) 1094 return TyBits; 1095 1096 // If we are subtracting one from a positive number, there is no carry 1097 // out of the result. 1098 if (KnownZero.isNegative()) 1099 return Tmp; 1100 } 1101 1102 Tmp2 = ComputeNumSignBits(U->getOperand(1), TD, Depth+1); 1103 if (Tmp2 == 1) return 1; 1104 return std::min(Tmp, Tmp2)-1; 1105 1106 case Instruction::Sub: 1107 Tmp2 = ComputeNumSignBits(U->getOperand(1), TD, Depth+1); 1108 if (Tmp2 == 1) return 1; 1109 1110 // Handle NEG. 1111 if (ConstantInt *CLHS = dyn_cast<ConstantInt>(U->getOperand(0))) 1112 if (CLHS->isNullValue()) { 1113 APInt KnownZero(TyBits, 0), KnownOne(TyBits, 0); 1114 ComputeMaskedBits(U->getOperand(1), KnownZero, KnownOne, TD, Depth+1); 1115 // If the input is known to be 0 or 1, the output is 0/-1, which is all 1116 // sign bits set. 1117 if ((KnownZero | APInt(TyBits, 1)).isAllOnesValue()) 1118 return TyBits; 1119 1120 // If the input is known to be positive (the sign bit is known clear), 1121 // the output of the NEG has the same number of sign bits as the input. 1122 if (KnownZero.isNegative()) 1123 return Tmp2; 1124 1125 // Otherwise, we treat this like a SUB. 1126 } 1127 1128 // Sub can have at most one carry bit. Thus we know that the output 1129 // is, at worst, one more bit than the inputs. 1130 Tmp = ComputeNumSignBits(U->getOperand(0), TD, Depth+1); 1131 if (Tmp == 1) return 1; // Early out. 1132 return std::min(Tmp, Tmp2)-1; 1133 1134 case Instruction::PHI: { 1135 PHINode *PN = cast<PHINode>(U); 1136 // Don't analyze large in-degree PHIs. 1137 if (PN->getNumIncomingValues() > 4) break; 1138 1139 // Take the minimum of all incoming values. This can't infinitely loop 1140 // because of our depth threshold. 1141 Tmp = ComputeNumSignBits(PN->getIncomingValue(0), TD, Depth+1); 1142 for (unsigned i = 1, e = PN->getNumIncomingValues(); i != e; ++i) { 1143 if (Tmp == 1) return Tmp; 1144 Tmp = std::min(Tmp, 1145 ComputeNumSignBits(PN->getIncomingValue(i), TD, Depth+1)); 1146 } 1147 return Tmp; 1148 } 1149 1150 case Instruction::Trunc: 1151 // FIXME: it's tricky to do anything useful for this, but it is an important 1152 // case for targets like X86. 1153 break; 1154 } 1155 1156 // Finally, if we can prove that the top bits of the result are 0's or 1's, 1157 // use this information. 1158 APInt KnownZero(TyBits, 0), KnownOne(TyBits, 0); 1159 APInt Mask; 1160 ComputeMaskedBits(V, KnownZero, KnownOne, TD, Depth); 1161 1162 if (KnownZero.isNegative()) { // sign bit is 0 1163 Mask = KnownZero; 1164 } else if (KnownOne.isNegative()) { // sign bit is 1; 1165 Mask = KnownOne; 1166 } else { 1167 // Nothing known. 1168 return FirstAnswer; 1169 } 1170 1171 // Okay, we know that the sign bit in Mask is set. Use CLZ to determine 1172 // the number of identical bits in the top of the input value. 1173 Mask = ~Mask; 1174 Mask <<= Mask.getBitWidth()-TyBits; 1175 // Return # leading zeros. We use 'min' here in case Val was zero before 1176 // shifting. We don't want to return '64' as for an i32 "0". 1177 return std::max(FirstAnswer, std::min(TyBits, Mask.countLeadingZeros())); 1178 } 1179 1180 /// ComputeMultiple - This function computes the integer multiple of Base that 1181 /// equals V. If successful, it returns true and returns the multiple in 1182 /// Multiple. If unsuccessful, it returns false. It looks 1183 /// through SExt instructions only if LookThroughSExt is true. 1184 bool llvm::ComputeMultiple(Value *V, unsigned Base, Value *&Multiple, 1185 bool LookThroughSExt, unsigned Depth) { 1186 const unsigned MaxDepth = 6; 1187 1188 assert(V && "No Value?"); 1189 assert(Depth <= MaxDepth && "Limit Search Depth"); 1190 assert(V->getType()->isIntegerTy() && "Not integer or pointer type!"); 1191 1192 Type *T = V->getType(); 1193 1194 ConstantInt *CI = dyn_cast<ConstantInt>(V); 1195 1196 if (Base == 0) 1197 return false; 1198 1199 if (Base == 1) { 1200 Multiple = V; 1201 return true; 1202 } 1203 1204 ConstantExpr *CO = dyn_cast<ConstantExpr>(V); 1205 Constant *BaseVal = ConstantInt::get(T, Base); 1206 if (CO && CO == BaseVal) { 1207 // Multiple is 1. 1208 Multiple = ConstantInt::get(T, 1); 1209 return true; 1210 } 1211 1212 if (CI && CI->getZExtValue() % Base == 0) { 1213 Multiple = ConstantInt::get(T, CI->getZExtValue() / Base); 1214 return true; 1215 } 1216 1217 if (Depth == MaxDepth) return false; // Limit search depth. 1218 1219 Operator *I = dyn_cast<Operator>(V); 1220 if (!I) return false; 1221 1222 switch (I->getOpcode()) { 1223 default: break; 1224 case Instruction::SExt: 1225 if (!LookThroughSExt) return false; 1226 // otherwise fall through to ZExt 1227 case Instruction::ZExt: 1228 return ComputeMultiple(I->getOperand(0), Base, Multiple, 1229 LookThroughSExt, Depth+1); 1230 case Instruction::Shl: 1231 case Instruction::Mul: { 1232 Value *Op0 = I->getOperand(0); 1233 Value *Op1 = I->getOperand(1); 1234 1235 if (I->getOpcode() == Instruction::Shl) { 1236 ConstantInt *Op1CI = dyn_cast<ConstantInt>(Op1); 1237 if (!Op1CI) return false; 1238 // Turn Op0 << Op1 into Op0 * 2^Op1 1239 APInt Op1Int = Op1CI->getValue(); 1240 uint64_t BitToSet = Op1Int.getLimitedValue(Op1Int.getBitWidth() - 1); 1241 APInt API(Op1Int.getBitWidth(), 0); 1242 API.setBit(BitToSet); 1243 Op1 = ConstantInt::get(V->getContext(), API); 1244 } 1245 1246 Value *Mul0 = NULL; 1247 if (ComputeMultiple(Op0, Base, Mul0, LookThroughSExt, Depth+1)) { 1248 if (Constant *Op1C = dyn_cast<Constant>(Op1)) 1249 if (Constant *MulC = dyn_cast<Constant>(Mul0)) { 1250 if (Op1C->getType()->getPrimitiveSizeInBits() < 1251 MulC->getType()->getPrimitiveSizeInBits()) 1252 Op1C = ConstantExpr::getZExt(Op1C, MulC->getType()); 1253 if (Op1C->getType()->getPrimitiveSizeInBits() > 1254 MulC->getType()->getPrimitiveSizeInBits()) 1255 MulC = ConstantExpr::getZExt(MulC, Op1C->getType()); 1256 1257 // V == Base * (Mul0 * Op1), so return (Mul0 * Op1) 1258 Multiple = ConstantExpr::getMul(MulC, Op1C); 1259 return true; 1260 } 1261 1262 if (ConstantInt *Mul0CI = dyn_cast<ConstantInt>(Mul0)) 1263 if (Mul0CI->getValue() == 1) { 1264 // V == Base * Op1, so return Op1 1265 Multiple = Op1; 1266 return true; 1267 } 1268 } 1269 1270 Value *Mul1 = NULL; 1271 if (ComputeMultiple(Op1, Base, Mul1, LookThroughSExt, Depth+1)) { 1272 if (Constant *Op0C = dyn_cast<Constant>(Op0)) 1273 if (Constant *MulC = dyn_cast<Constant>(Mul1)) { 1274 if (Op0C->getType()->getPrimitiveSizeInBits() < 1275 MulC->getType()->getPrimitiveSizeInBits()) 1276 Op0C = ConstantExpr::getZExt(Op0C, MulC->getType()); 1277 if (Op0C->getType()->getPrimitiveSizeInBits() > 1278 MulC->getType()->getPrimitiveSizeInBits()) 1279 MulC = ConstantExpr::getZExt(MulC, Op0C->getType()); 1280 1281 // V == Base * (Mul1 * Op0), so return (Mul1 * Op0) 1282 Multiple = ConstantExpr::getMul(MulC, Op0C); 1283 return true; 1284 } 1285 1286 if (ConstantInt *Mul1CI = dyn_cast<ConstantInt>(Mul1)) 1287 if (Mul1CI->getValue() == 1) { 1288 // V == Base * Op0, so return Op0 1289 Multiple = Op0; 1290 return true; 1291 } 1292 } 1293 } 1294 } 1295 1296 // We could not determine if V is a multiple of Base. 1297 return false; 1298 } 1299 1300 /// CannotBeNegativeZero - Return true if we can prove that the specified FP 1301 /// value is never equal to -0.0. 1302 /// 1303 /// NOTE: this function will need to be revisited when we support non-default 1304 /// rounding modes! 1305 /// 1306 bool llvm::CannotBeNegativeZero(const Value *V, unsigned Depth) { 1307 if (const ConstantFP *CFP = dyn_cast<ConstantFP>(V)) 1308 return !CFP->getValueAPF().isNegZero(); 1309 1310 if (Depth == 6) 1311 return 1; // Limit search depth. 1312 1313 const Operator *I = dyn_cast<Operator>(V); 1314 if (I == 0) return false; 1315 1316 // Check if the nsz fast-math flag is set 1317 if (const FPMathOperator *FPO = dyn_cast<FPMathOperator>(I)) 1318 if (FPO->hasNoSignedZeros()) 1319 return true; 1320 1321 // (add x, 0.0) is guaranteed to return +0.0, not -0.0. 1322 if (I->getOpcode() == Instruction::FAdd && 1323 isa<ConstantFP>(I->getOperand(1)) && 1324 cast<ConstantFP>(I->getOperand(1))->isNullValue()) 1325 return true; 1326 1327 // sitofp and uitofp turn into +0.0 for zero. 1328 if (isa<SIToFPInst>(I) || isa<UIToFPInst>(I)) 1329 return true; 1330 1331 if (const IntrinsicInst *II = dyn_cast<IntrinsicInst>(I)) 1332 // sqrt(-0.0) = -0.0, no other negative results are possible. 1333 if (II->getIntrinsicID() == Intrinsic::sqrt) 1334 return CannotBeNegativeZero(II->getArgOperand(0), Depth+1); 1335 1336 if (const CallInst *CI = dyn_cast<CallInst>(I)) 1337 if (const Function *F = CI->getCalledFunction()) { 1338 if (F->isDeclaration()) { 1339 // abs(x) != -0.0 1340 if (F->getName() == "abs") return true; 1341 // fabs[lf](x) != -0.0 1342 if (F->getName() == "fabs") return true; 1343 if (F->getName() == "fabsf") return true; 1344 if (F->getName() == "fabsl") return true; 1345 if (F->getName() == "sqrt" || F->getName() == "sqrtf" || 1346 F->getName() == "sqrtl") 1347 return CannotBeNegativeZero(CI->getArgOperand(0), Depth+1); 1348 } 1349 } 1350 1351 return false; 1352 } 1353 1354 /// isBytewiseValue - If the specified value can be set by repeating the same 1355 /// byte in memory, return the i8 value that it is represented with. This is 1356 /// true for all i8 values obviously, but is also true for i32 0, i32 -1, 1357 /// i16 0xF0F0, double 0.0 etc. If the value can't be handled with a repeated 1358 /// byte store (e.g. i16 0x1234), return null. 1359 Value *llvm::isBytewiseValue(Value *V) { 1360 // All byte-wide stores are splatable, even of arbitrary variables. 1361 if (V->getType()->isIntegerTy(8)) return V; 1362 1363 // Handle 'null' ConstantArrayZero etc. 1364 if (Constant *C = dyn_cast<Constant>(V)) 1365 if (C->isNullValue()) 1366 return Constant::getNullValue(Type::getInt8Ty(V->getContext())); 1367 1368 // Constant float and double values can be handled as integer values if the 1369 // corresponding integer value is "byteable". An important case is 0.0. 1370 if (ConstantFP *CFP = dyn_cast<ConstantFP>(V)) { 1371 if (CFP->getType()->isFloatTy()) 1372 V = ConstantExpr::getBitCast(CFP, Type::getInt32Ty(V->getContext())); 1373 if (CFP->getType()->isDoubleTy()) 1374 V = ConstantExpr::getBitCast(CFP, Type::getInt64Ty(V->getContext())); 1375 // Don't handle long double formats, which have strange constraints. 1376 } 1377 1378 // We can handle constant integers that are power of two in size and a 1379 // multiple of 8 bits. 1380 if (ConstantInt *CI = dyn_cast<ConstantInt>(V)) { 1381 unsigned Width = CI->getBitWidth(); 1382 if (isPowerOf2_32(Width) && Width > 8) { 1383 // We can handle this value if the recursive binary decomposition is the 1384 // same at all levels. 1385 APInt Val = CI->getValue(); 1386 APInt Val2; 1387 while (Val.getBitWidth() != 8) { 1388 unsigned NextWidth = Val.getBitWidth()/2; 1389 Val2 = Val.lshr(NextWidth); 1390 Val2 = Val2.trunc(Val.getBitWidth()/2); 1391 Val = Val.trunc(Val.getBitWidth()/2); 1392 1393 // If the top/bottom halves aren't the same, reject it. 1394 if (Val != Val2) 1395 return 0; 1396 } 1397 return ConstantInt::get(V->getContext(), Val); 1398 } 1399 } 1400 1401 // A ConstantDataArray/Vector is splatable if all its members are equal and 1402 // also splatable. 1403 if (ConstantDataSequential *CA = dyn_cast<ConstantDataSequential>(V)) { 1404 Value *Elt = CA->getElementAsConstant(0); 1405 Value *Val = isBytewiseValue(Elt); 1406 if (!Val) 1407 return 0; 1408 1409 for (unsigned I = 1, E = CA->getNumElements(); I != E; ++I) 1410 if (CA->getElementAsConstant(I) != Elt) 1411 return 0; 1412 1413 return Val; 1414 } 1415 1416 // Conceptually, we could handle things like: 1417 // %a = zext i8 %X to i16 1418 // %b = shl i16 %a, 8 1419 // %c = or i16 %a, %b 1420 // but until there is an example that actually needs this, it doesn't seem 1421 // worth worrying about. 1422 return 0; 1423 } 1424 1425 1426 // This is the recursive version of BuildSubAggregate. It takes a few different 1427 // arguments. Idxs is the index within the nested struct From that we are 1428 // looking at now (which is of type IndexedType). IdxSkip is the number of 1429 // indices from Idxs that should be left out when inserting into the resulting 1430 // struct. To is the result struct built so far, new insertvalue instructions 1431 // build on that. 1432 static Value *BuildSubAggregate(Value *From, Value* To, Type *IndexedType, 1433 SmallVector<unsigned, 10> &Idxs, 1434 unsigned IdxSkip, 1435 Instruction *InsertBefore) { 1436 llvm::StructType *STy = llvm::dyn_cast<llvm::StructType>(IndexedType); 1437 if (STy) { 1438 // Save the original To argument so we can modify it 1439 Value *OrigTo = To; 1440 // General case, the type indexed by Idxs is a struct 1441 for (unsigned i = 0, e = STy->getNumElements(); i != e; ++i) { 1442 // Process each struct element recursively 1443 Idxs.push_back(i); 1444 Value *PrevTo = To; 1445 To = BuildSubAggregate(From, To, STy->getElementType(i), Idxs, IdxSkip, 1446 InsertBefore); 1447 Idxs.pop_back(); 1448 if (!To) { 1449 // Couldn't find any inserted value for this index? Cleanup 1450 while (PrevTo != OrigTo) { 1451 InsertValueInst* Del = cast<InsertValueInst>(PrevTo); 1452 PrevTo = Del->getAggregateOperand(); 1453 Del->eraseFromParent(); 1454 } 1455 // Stop processing elements 1456 break; 1457 } 1458 } 1459 // If we successfully found a value for each of our subaggregates 1460 if (To) 1461 return To; 1462 } 1463 // Base case, the type indexed by SourceIdxs is not a struct, or not all of 1464 // the struct's elements had a value that was inserted directly. In the latter 1465 // case, perhaps we can't determine each of the subelements individually, but 1466 // we might be able to find the complete struct somewhere. 1467 1468 // Find the value that is at that particular spot 1469 Value *V = FindInsertedValue(From, Idxs); 1470 1471 if (!V) 1472 return NULL; 1473 1474 // Insert the value in the new (sub) aggregrate 1475 return llvm::InsertValueInst::Create(To, V, makeArrayRef(Idxs).slice(IdxSkip), 1476 "tmp", InsertBefore); 1477 } 1478 1479 // This helper takes a nested struct and extracts a part of it (which is again a 1480 // struct) into a new value. For example, given the struct: 1481 // { a, { b, { c, d }, e } } 1482 // and the indices "1, 1" this returns 1483 // { c, d }. 1484 // 1485 // It does this by inserting an insertvalue for each element in the resulting 1486 // struct, as opposed to just inserting a single struct. This will only work if 1487 // each of the elements of the substruct are known (ie, inserted into From by an 1488 // insertvalue instruction somewhere). 1489 // 1490 // All inserted insertvalue instructions are inserted before InsertBefore 1491 static Value *BuildSubAggregate(Value *From, ArrayRef<unsigned> idx_range, 1492 Instruction *InsertBefore) { 1493 assert(InsertBefore && "Must have someplace to insert!"); 1494 Type *IndexedType = ExtractValueInst::getIndexedType(From->getType(), 1495 idx_range); 1496 Value *To = UndefValue::get(IndexedType); 1497 SmallVector<unsigned, 10> Idxs(idx_range.begin(), idx_range.end()); 1498 unsigned IdxSkip = Idxs.size(); 1499 1500 return BuildSubAggregate(From, To, IndexedType, Idxs, IdxSkip, InsertBefore); 1501 } 1502 1503 /// FindInsertedValue - Given an aggregrate and an sequence of indices, see if 1504 /// the scalar value indexed is already around as a register, for example if it 1505 /// were inserted directly into the aggregrate. 1506 /// 1507 /// If InsertBefore is not null, this function will duplicate (modified) 1508 /// insertvalues when a part of a nested struct is extracted. 1509 Value *llvm::FindInsertedValue(Value *V, ArrayRef<unsigned> idx_range, 1510 Instruction *InsertBefore) { 1511 // Nothing to index? Just return V then (this is useful at the end of our 1512 // recursion). 1513 if (idx_range.empty()) 1514 return V; 1515 // We have indices, so V should have an indexable type. 1516 assert((V->getType()->isStructTy() || V->getType()->isArrayTy()) && 1517 "Not looking at a struct or array?"); 1518 assert(ExtractValueInst::getIndexedType(V->getType(), idx_range) && 1519 "Invalid indices for type?"); 1520 1521 if (Constant *C = dyn_cast<Constant>(V)) { 1522 C = C->getAggregateElement(idx_range[0]); 1523 if (C == 0) return 0; 1524 return FindInsertedValue(C, idx_range.slice(1), InsertBefore); 1525 } 1526 1527 if (InsertValueInst *I = dyn_cast<InsertValueInst>(V)) { 1528 // Loop the indices for the insertvalue instruction in parallel with the 1529 // requested indices 1530 const unsigned *req_idx = idx_range.begin(); 1531 for (const unsigned *i = I->idx_begin(), *e = I->idx_end(); 1532 i != e; ++i, ++req_idx) { 1533 if (req_idx == idx_range.end()) { 1534 // We can't handle this without inserting insertvalues 1535 if (!InsertBefore) 1536 return 0; 1537 1538 // The requested index identifies a part of a nested aggregate. Handle 1539 // this specially. For example, 1540 // %A = insertvalue { i32, {i32, i32 } } undef, i32 10, 1, 0 1541 // %B = insertvalue { i32, {i32, i32 } } %A, i32 11, 1, 1 1542 // %C = extractvalue {i32, { i32, i32 } } %B, 1 1543 // This can be changed into 1544 // %A = insertvalue {i32, i32 } undef, i32 10, 0 1545 // %C = insertvalue {i32, i32 } %A, i32 11, 1 1546 // which allows the unused 0,0 element from the nested struct to be 1547 // removed. 1548 return BuildSubAggregate(V, makeArrayRef(idx_range.begin(), req_idx), 1549 InsertBefore); 1550 } 1551 1552 // This insert value inserts something else than what we are looking for. 1553 // See if the (aggregrate) value inserted into has the value we are 1554 // looking for, then. 1555 if (*req_idx != *i) 1556 return FindInsertedValue(I->getAggregateOperand(), idx_range, 1557 InsertBefore); 1558 } 1559 // If we end up here, the indices of the insertvalue match with those 1560 // requested (though possibly only partially). Now we recursively look at 1561 // the inserted value, passing any remaining indices. 1562 return FindInsertedValue(I->getInsertedValueOperand(), 1563 makeArrayRef(req_idx, idx_range.end()), 1564 InsertBefore); 1565 } 1566 1567 if (ExtractValueInst *I = dyn_cast<ExtractValueInst>(V)) { 1568 // If we're extracting a value from an aggregrate that was extracted from 1569 // something else, we can extract from that something else directly instead. 1570 // However, we will need to chain I's indices with the requested indices. 1571 1572 // Calculate the number of indices required 1573 unsigned size = I->getNumIndices() + idx_range.size(); 1574 // Allocate some space to put the new indices in 1575 SmallVector<unsigned, 5> Idxs; 1576 Idxs.reserve(size); 1577 // Add indices from the extract value instruction 1578 Idxs.append(I->idx_begin(), I->idx_end()); 1579 1580 // Add requested indices 1581 Idxs.append(idx_range.begin(), idx_range.end()); 1582 1583 assert(Idxs.size() == size 1584 && "Number of indices added not correct?"); 1585 1586 return FindInsertedValue(I->getAggregateOperand(), Idxs, InsertBefore); 1587 } 1588 // Otherwise, we don't know (such as, extracting from a function return value 1589 // or load instruction) 1590 return 0; 1591 } 1592 1593 /// GetPointerBaseWithConstantOffset - Analyze the specified pointer to see if 1594 /// it can be expressed as a base pointer plus a constant offset. Return the 1595 /// base and offset to the caller. 1596 Value *llvm::GetPointerBaseWithConstantOffset(Value *Ptr, int64_t &Offset, 1597 const DataLayout &TD) { 1598 Operator *PtrOp = dyn_cast<Operator>(Ptr); 1599 if (PtrOp == 0 || Ptr->getType()->isVectorTy()) 1600 return Ptr; 1601 1602 // Just look through bitcasts. 1603 if (PtrOp->getOpcode() == Instruction::BitCast) 1604 return GetPointerBaseWithConstantOffset(PtrOp->getOperand(0), Offset, TD); 1605 1606 // If this is a GEP with constant indices, we can look through it. 1607 GEPOperator *GEP = dyn_cast<GEPOperator>(PtrOp); 1608 if (GEP == 0 || !GEP->hasAllConstantIndices()) return Ptr; 1609 1610 gep_type_iterator GTI = gep_type_begin(GEP); 1611 for (User::op_iterator I = GEP->idx_begin(), E = GEP->idx_end(); I != E; 1612 ++I, ++GTI) { 1613 ConstantInt *OpC = cast<ConstantInt>(*I); 1614 if (OpC->isZero()) continue; 1615 1616 // Handle a struct and array indices which add their offset to the pointer. 1617 if (StructType *STy = dyn_cast<StructType>(*GTI)) { 1618 Offset += TD.getStructLayout(STy)->getElementOffset(OpC->getZExtValue()); 1619 } else { 1620 uint64_t Size = TD.getTypeAllocSize(GTI.getIndexedType()); 1621 Offset += OpC->getSExtValue()*Size; 1622 } 1623 } 1624 1625 // Re-sign extend from the pointer size if needed to get overflow edge cases 1626 // right. 1627 unsigned PtrSize = TD.getPointerSizeInBits(); 1628 if (PtrSize < 64) 1629 Offset = SignExtend64(Offset, PtrSize); 1630 1631 return GetPointerBaseWithConstantOffset(GEP->getPointerOperand(), Offset, TD); 1632 } 1633 1634 1635 /// getConstantStringInfo - This function computes the length of a 1636 /// null-terminated C string pointed to by V. If successful, it returns true 1637 /// and returns the string in Str. If unsuccessful, it returns false. 1638 bool llvm::getConstantStringInfo(const Value *V, StringRef &Str, 1639 uint64_t Offset, bool TrimAtNul) { 1640 assert(V); 1641 1642 // Look through bitcast instructions and geps. 1643 V = V->stripPointerCasts(); 1644 1645 // If the value is a GEP instructionor constant expression, treat it as an 1646 // offset. 1647 if (const GEPOperator *GEP = dyn_cast<GEPOperator>(V)) { 1648 // Make sure the GEP has exactly three arguments. 1649 if (GEP->getNumOperands() != 3) 1650 return false; 1651 1652 // Make sure the index-ee is a pointer to array of i8. 1653 PointerType *PT = cast<PointerType>(GEP->getOperand(0)->getType()); 1654 ArrayType *AT = dyn_cast<ArrayType>(PT->getElementType()); 1655 if (AT == 0 || !AT->getElementType()->isIntegerTy(8)) 1656 return false; 1657 1658 // Check to make sure that the first operand of the GEP is an integer and 1659 // has value 0 so that we are sure we're indexing into the initializer. 1660 const ConstantInt *FirstIdx = dyn_cast<ConstantInt>(GEP->getOperand(1)); 1661 if (FirstIdx == 0 || !FirstIdx->isZero()) 1662 return false; 1663 1664 // If the second index isn't a ConstantInt, then this is a variable index 1665 // into the array. If this occurs, we can't say anything meaningful about 1666 // the string. 1667 uint64_t StartIdx = 0; 1668 if (const ConstantInt *CI = dyn_cast<ConstantInt>(GEP->getOperand(2))) 1669 StartIdx = CI->getZExtValue(); 1670 else 1671 return false; 1672 return getConstantStringInfo(GEP->getOperand(0), Str, StartIdx+Offset); 1673 } 1674 1675 // The GEP instruction, constant or instruction, must reference a global 1676 // variable that is a constant and is initialized. The referenced constant 1677 // initializer is the array that we'll use for optimization. 1678 const GlobalVariable *GV = dyn_cast<GlobalVariable>(V); 1679 if (!GV || !GV->isConstant() || !GV->hasDefinitiveInitializer()) 1680 return false; 1681 1682 // Handle the all-zeros case 1683 if (GV->getInitializer()->isNullValue()) { 1684 // This is a degenerate case. The initializer is constant zero so the 1685 // length of the string must be zero. 1686 Str = ""; 1687 return true; 1688 } 1689 1690 // Must be a Constant Array 1691 const ConstantDataArray *Array = 1692 dyn_cast<ConstantDataArray>(GV->getInitializer()); 1693 if (Array == 0 || !Array->isString()) 1694 return false; 1695 1696 // Get the number of elements in the array 1697 uint64_t NumElts = Array->getType()->getArrayNumElements(); 1698 1699 // Start out with the entire array in the StringRef. 1700 Str = Array->getAsString(); 1701 1702 if (Offset > NumElts) 1703 return false; 1704 1705 // Skip over 'offset' bytes. 1706 Str = Str.substr(Offset); 1707 1708 if (TrimAtNul) { 1709 // Trim off the \0 and anything after it. If the array is not nul 1710 // terminated, we just return the whole end of string. The client may know 1711 // some other way that the string is length-bound. 1712 Str = Str.substr(0, Str.find('\0')); 1713 } 1714 return true; 1715 } 1716 1717 // These next two are very similar to the above, but also look through PHI 1718 // nodes. 1719 // TODO: See if we can integrate these two together. 1720 1721 /// GetStringLengthH - If we can compute the length of the string pointed to by 1722 /// the specified pointer, return 'len+1'. If we can't, return 0. 1723 static uint64_t GetStringLengthH(Value *V, SmallPtrSet<PHINode*, 32> &PHIs) { 1724 // Look through noop bitcast instructions. 1725 V = V->stripPointerCasts(); 1726 1727 // If this is a PHI node, there are two cases: either we have already seen it 1728 // or we haven't. 1729 if (PHINode *PN = dyn_cast<PHINode>(V)) { 1730 if (!PHIs.insert(PN)) 1731 return ~0ULL; // already in the set. 1732 1733 // If it was new, see if all the input strings are the same length. 1734 uint64_t LenSoFar = ~0ULL; 1735 for (unsigned i = 0, e = PN->getNumIncomingValues(); i != e; ++i) { 1736 uint64_t Len = GetStringLengthH(PN->getIncomingValue(i), PHIs); 1737 if (Len == 0) return 0; // Unknown length -> unknown. 1738 1739 if (Len == ~0ULL) continue; 1740 1741 if (Len != LenSoFar && LenSoFar != ~0ULL) 1742 return 0; // Disagree -> unknown. 1743 LenSoFar = Len; 1744 } 1745 1746 // Success, all agree. 1747 return LenSoFar; 1748 } 1749 1750 // strlen(select(c,x,y)) -> strlen(x) ^ strlen(y) 1751 if (SelectInst *SI = dyn_cast<SelectInst>(V)) { 1752 uint64_t Len1 = GetStringLengthH(SI->getTrueValue(), PHIs); 1753 if (Len1 == 0) return 0; 1754 uint64_t Len2 = GetStringLengthH(SI->getFalseValue(), PHIs); 1755 if (Len2 == 0) return 0; 1756 if (Len1 == ~0ULL) return Len2; 1757 if (Len2 == ~0ULL) return Len1; 1758 if (Len1 != Len2) return 0; 1759 return Len1; 1760 } 1761 1762 // Otherwise, see if we can read the string. 1763 StringRef StrData; 1764 if (!getConstantStringInfo(V, StrData)) 1765 return 0; 1766 1767 return StrData.size()+1; 1768 } 1769 1770 /// GetStringLength - If we can compute the length of the string pointed to by 1771 /// the specified pointer, return 'len+1'. If we can't, return 0. 1772 uint64_t llvm::GetStringLength(Value *V) { 1773 if (!V->getType()->isPointerTy()) return 0; 1774 1775 SmallPtrSet<PHINode*, 32> PHIs; 1776 uint64_t Len = GetStringLengthH(V, PHIs); 1777 // If Len is ~0ULL, we had an infinite phi cycle: this is dead code, so return 1778 // an empty string as a length. 1779 return Len == ~0ULL ? 1 : Len; 1780 } 1781 1782 Value * 1783 llvm::GetUnderlyingObject(Value *V, const DataLayout *TD, unsigned MaxLookup) { 1784 if (!V->getType()->isPointerTy()) 1785 return V; 1786 for (unsigned Count = 0; MaxLookup == 0 || Count < MaxLookup; ++Count) { 1787 if (GEPOperator *GEP = dyn_cast<GEPOperator>(V)) { 1788 V = GEP->getPointerOperand(); 1789 } else if (Operator::getOpcode(V) == Instruction::BitCast) { 1790 V = cast<Operator>(V)->getOperand(0); 1791 } else if (GlobalAlias *GA = dyn_cast<GlobalAlias>(V)) { 1792 if (GA->mayBeOverridden()) 1793 return V; 1794 V = GA->getAliasee(); 1795 } else { 1796 // See if InstructionSimplify knows any relevant tricks. 1797 if (Instruction *I = dyn_cast<Instruction>(V)) 1798 // TODO: Acquire a DominatorTree and use it. 1799 if (Value *Simplified = SimplifyInstruction(I, TD, 0)) { 1800 V = Simplified; 1801 continue; 1802 } 1803 1804 return V; 1805 } 1806 assert(V->getType()->isPointerTy() && "Unexpected operand type!"); 1807 } 1808 return V; 1809 } 1810 1811 void 1812 llvm::GetUnderlyingObjects(Value *V, 1813 SmallVectorImpl<Value *> &Objects, 1814 const DataLayout *TD, 1815 unsigned MaxLookup) { 1816 SmallPtrSet<Value *, 4> Visited; 1817 SmallVector<Value *, 4> Worklist; 1818 Worklist.push_back(V); 1819 do { 1820 Value *P = Worklist.pop_back_val(); 1821 P = GetUnderlyingObject(P, TD, MaxLookup); 1822 1823 if (!Visited.insert(P)) 1824 continue; 1825 1826 if (SelectInst *SI = dyn_cast<SelectInst>(P)) { 1827 Worklist.push_back(SI->getTrueValue()); 1828 Worklist.push_back(SI->getFalseValue()); 1829 continue; 1830 } 1831 1832 if (PHINode *PN = dyn_cast<PHINode>(P)) { 1833 for (unsigned i = 0, e = PN->getNumIncomingValues(); i != e; ++i) 1834 Worklist.push_back(PN->getIncomingValue(i)); 1835 continue; 1836 } 1837 1838 Objects.push_back(P); 1839 } while (!Worklist.empty()); 1840 } 1841 1842 /// onlyUsedByLifetimeMarkers - Return true if the only users of this pointer 1843 /// are lifetime markers. 1844 /// 1845 bool llvm::onlyUsedByLifetimeMarkers(const Value *V) { 1846 for (Value::const_use_iterator UI = V->use_begin(), UE = V->use_end(); 1847 UI != UE; ++UI) { 1848 const IntrinsicInst *II = dyn_cast<IntrinsicInst>(*UI); 1849 if (!II) return false; 1850 1851 if (II->getIntrinsicID() != Intrinsic::lifetime_start && 1852 II->getIntrinsicID() != Intrinsic::lifetime_end) 1853 return false; 1854 } 1855 return true; 1856 } 1857 1858 bool llvm::isSafeToSpeculativelyExecute(const Value *V, 1859 const DataLayout *TD) { 1860 const Operator *Inst = dyn_cast<Operator>(V); 1861 if (!Inst) 1862 return false; 1863 1864 for (unsigned i = 0, e = Inst->getNumOperands(); i != e; ++i) 1865 if (Constant *C = dyn_cast<Constant>(Inst->getOperand(i))) 1866 if (C->canTrap()) 1867 return false; 1868 1869 switch (Inst->getOpcode()) { 1870 default: 1871 return true; 1872 case Instruction::UDiv: 1873 case Instruction::URem: 1874 // x / y is undefined if y == 0, but calcuations like x / 3 are safe. 1875 return isKnownNonZero(Inst->getOperand(1), TD); 1876 case Instruction::SDiv: 1877 case Instruction::SRem: { 1878 Value *Op = Inst->getOperand(1); 1879 // x / y is undefined if y == 0 1880 if (!isKnownNonZero(Op, TD)) 1881 return false; 1882 // x / y might be undefined if y == -1 1883 unsigned BitWidth = getBitWidth(Op->getType(), TD); 1884 if (BitWidth == 0) 1885 return false; 1886 APInt KnownZero(BitWidth, 0); 1887 APInt KnownOne(BitWidth, 0); 1888 ComputeMaskedBits(Op, KnownZero, KnownOne, TD); 1889 return !!KnownZero; 1890 } 1891 case Instruction::Load: { 1892 const LoadInst *LI = cast<LoadInst>(Inst); 1893 if (!LI->isUnordered()) 1894 return false; 1895 return LI->getPointerOperand()->isDereferenceablePointer(); 1896 } 1897 case Instruction::Call: { 1898 if (const IntrinsicInst *II = dyn_cast<IntrinsicInst>(Inst)) { 1899 switch (II->getIntrinsicID()) { 1900 // These synthetic intrinsics have no side-effects, and just mark 1901 // information about their operands. 1902 // FIXME: There are other no-op synthetic instructions that potentially 1903 // should be considered at least *safe* to speculate... 1904 case Intrinsic::dbg_declare: 1905 case Intrinsic::dbg_value: 1906 return true; 1907 1908 case Intrinsic::bswap: 1909 case Intrinsic::ctlz: 1910 case Intrinsic::ctpop: 1911 case Intrinsic::cttz: 1912 case Intrinsic::objectsize: 1913 case Intrinsic::sadd_with_overflow: 1914 case Intrinsic::smul_with_overflow: 1915 case Intrinsic::ssub_with_overflow: 1916 case Intrinsic::uadd_with_overflow: 1917 case Intrinsic::umul_with_overflow: 1918 case Intrinsic::usub_with_overflow: 1919 return true; 1920 // TODO: some fp intrinsics are marked as having the same error handling 1921 // as libm. They're safe to speculate when they won't error. 1922 // TODO: are convert_{from,to}_fp16 safe? 1923 // TODO: can we list target-specific intrinsics here? 1924 default: break; 1925 } 1926 } 1927 return false; // The called function could have undefined behavior or 1928 // side-effects, even if marked readnone nounwind. 1929 } 1930 case Instruction::VAArg: 1931 case Instruction::Alloca: 1932 case Instruction::Invoke: 1933 case Instruction::PHI: 1934 case Instruction::Store: 1935 case Instruction::Ret: 1936 case Instruction::Br: 1937 case Instruction::IndirectBr: 1938 case Instruction::Switch: 1939 case Instruction::Unreachable: 1940 case Instruction::Fence: 1941 case Instruction::LandingPad: 1942 case Instruction::AtomicRMW: 1943 case Instruction::AtomicCmpXchg: 1944 case Instruction::Resume: 1945 return false; // Misc instructions which have effects 1946 } 1947 } 1948