1 //===- ConstantRange.h - Represent a range ----------------------*- C++ -*-===// 2 // 3 // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions. 4 // See https://llvm.org/LICENSE.txt for license information. 5 // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception 6 // 7 //===----------------------------------------------------------------------===// 8 // 9 // Represent a range of possible values that may occur when the program is run 10 // for an integral value. This keeps track of a lower and upper bound for the 11 // constant, which MAY wrap around the end of the numeric range. To do this, it 12 // keeps track of a [lower, upper) bound, which specifies an interval just like 13 // STL iterators. When used with boolean values, the following are important 14 // ranges: : 15 // 16 // [F, F) = {} = Empty set 17 // [T, F) = {T} 18 // [F, T) = {F} 19 // [T, T) = {F, T} = Full set 20 // 21 // The other integral ranges use min/max values for special range values. For 22 // example, for 8-bit types, it uses: 23 // [0, 0) = {} = Empty set 24 // [255, 255) = {0..255} = Full Set 25 // 26 // Note that ConstantRange can be used to represent either signed or 27 // unsigned ranges. 28 // 29 //===----------------------------------------------------------------------===// 30 31 #ifndef LLVM_IR_CONSTANTRANGE_H 32 #define LLVM_IR_CONSTANTRANGE_H 33 34 #include "llvm/ADT/APInt.h" 35 #include "llvm/IR/InstrTypes.h" 36 #include "llvm/IR/Instruction.h" 37 #include "llvm/Support/Compiler.h" 38 #include <cstdint> 39 40 namespace llvm { 41 42 class MDNode; 43 class raw_ostream; 44 struct KnownBits; 45 46 /// This class represents a range of values. 47 class [[nodiscard]] ConstantRange { 48 APInt Lower, Upper; 49 50 /// Create empty constant range with same bitwidth. getEmpty()51 ConstantRange getEmpty() const { 52 return ConstantRange(getBitWidth(), false); 53 } 54 55 /// Create full constant range with same bitwidth. getFull()56 ConstantRange getFull() const { 57 return ConstantRange(getBitWidth(), true); 58 } 59 60 public: 61 /// Initialize a full or empty set for the specified bit width. 62 LLVM_ABI explicit ConstantRange(uint32_t BitWidth, bool isFullSet); 63 64 /// Initialize a range to hold the single specified value. 65 LLVM_ABI ConstantRange(APInt Value); 66 67 /// Initialize a range of values explicitly. This will assert out if 68 /// Lower==Upper and Lower != Min or Max value for its type. It will also 69 /// assert out if the two APInt's are not the same bit width. 70 LLVM_ABI ConstantRange(APInt Lower, APInt Upper); 71 72 /// Create empty constant range with the given bit width. getEmpty(uint32_t BitWidth)73 static ConstantRange getEmpty(uint32_t BitWidth) { 74 return ConstantRange(BitWidth, false); 75 } 76 77 /// Create full constant range with the given bit width. getFull(uint32_t BitWidth)78 static ConstantRange getFull(uint32_t BitWidth) { 79 return ConstantRange(BitWidth, true); 80 } 81 82 /// Create non-empty constant range with the given bounds. If Lower and 83 /// Upper are the same, a full range is returned. getNonEmpty(APInt Lower,APInt Upper)84 static ConstantRange getNonEmpty(APInt Lower, APInt Upper) { 85 if (Lower == Upper) 86 return getFull(Lower.getBitWidth()); 87 return ConstantRange(std::move(Lower), std::move(Upper)); 88 } 89 90 /// Initialize a range based on a known bits constraint. The IsSigned flag 91 /// indicates whether the constant range should not wrap in the signed or 92 /// unsigned domain. 93 LLVM_ABI static ConstantRange fromKnownBits(const KnownBits &Known, 94 bool IsSigned); 95 96 /// Split the ConstantRange into positive and negative components, ignoring 97 /// zero values. 98 LLVM_ABI std::pair<ConstantRange, ConstantRange> splitPosNeg() const; 99 100 /// Produce the smallest range such that all values that may satisfy the given 101 /// predicate with any value contained within Other is contained in the 102 /// returned range. Formally, this returns a superset of 103 /// 'union over all y in Other . { x : icmp op x y is true }'. If the exact 104 /// answer is not representable as a ConstantRange, the return value will be a 105 /// proper superset of the above. 106 /// 107 /// Example: Pred = ult and Other = i8 [2, 5) returns Result = [0, 4) 108 LLVM_ABI static ConstantRange 109 makeAllowedICmpRegion(CmpInst::Predicate Pred, const ConstantRange &Other); 110 111 /// Produce the largest range such that all values in the returned range 112 /// satisfy the given predicate with all values contained within Other. 113 /// Formally, this returns a subset of 114 /// 'intersection over all y in Other . { x : icmp op x y is true }'. If the 115 /// exact answer is not representable as a ConstantRange, the return value 116 /// will be a proper subset of the above. 117 /// 118 /// Example: Pred = ult and Other = i8 [2, 5) returns [0, 2) 119 LLVM_ABI static ConstantRange 120 makeSatisfyingICmpRegion(CmpInst::Predicate Pred, const ConstantRange &Other); 121 122 /// Produce the exact range such that all values in the returned range satisfy 123 /// the given predicate with any value contained within Other. Formally, this 124 /// returns the exact answer when the superset of 'union over all y in Other 125 /// is exactly same as the subset of intersection over all y in Other. 126 /// { x : icmp op x y is true}'. 127 /// 128 /// Example: Pred = ult and Other = i8 3 returns [0, 3) 129 LLVM_ABI static ConstantRange makeExactICmpRegion(CmpInst::Predicate Pred, 130 const APInt &Other); 131 132 /// Does the predicate \p Pred hold between ranges this and \p Other? 133 /// NOTE: false does not mean that inverse predicate holds! 134 LLVM_ABI bool icmp(CmpInst::Predicate Pred, const ConstantRange &Other) const; 135 136 /// Return true iff CR1 ult CR2 is equivalent to CR1 slt CR2. 137 /// Does not depend on strictness/direction of the predicate. 138 LLVM_ABI static bool 139 areInsensitiveToSignednessOfICmpPredicate(const ConstantRange &CR1, 140 const ConstantRange &CR2); 141 142 /// Return true iff CR1 ult CR2 is equivalent to CR1 sge CR2. 143 /// Does not depend on strictness/direction of the predicate. 144 LLVM_ABI static bool 145 areInsensitiveToSignednessOfInvertedICmpPredicate(const ConstantRange &CR1, 146 const ConstantRange &CR2); 147 148 /// If the comparison between constant ranges this and Other 149 /// is insensitive to the signedness of the comparison predicate, 150 /// return a predicate equivalent to \p Pred, with flipped signedness 151 /// (i.e. unsigned instead of signed or vice versa), and maybe inverted, 152 /// otherwise returns CmpInst::Predicate::BAD_ICMP_PREDICATE. 153 LLVM_ABI static CmpInst::Predicate 154 getEquivalentPredWithFlippedSignedness(CmpInst::Predicate Pred, 155 const ConstantRange &CR1, 156 const ConstantRange &CR2); 157 158 /// Produce the largest range containing all X such that "X BinOp Y" is 159 /// guaranteed not to wrap (overflow) for *all* Y in Other. However, there may 160 /// be *some* Y in Other for which additional X not contained in the result 161 /// also do not overflow. 162 /// 163 /// NoWrapKind must be one of OBO::NoUnsignedWrap or OBO::NoSignedWrap. 164 /// 165 /// Examples: 166 /// typedef OverflowingBinaryOperator OBO; 167 /// #define MGNR makeGuaranteedNoWrapRegion 168 /// MGNR(Add, [i8 1, 2), OBO::NoSignedWrap) == [-128, 127) 169 /// MGNR(Add, [i8 1, 2), OBO::NoUnsignedWrap) == [0, -1) 170 /// MGNR(Add, [i8 0, 1), OBO::NoUnsignedWrap) == Full Set 171 /// MGNR(Add, [i8 -1, 6), OBO::NoSignedWrap) == [INT_MIN+1, INT_MAX-4) 172 /// MGNR(Sub, [i8 1, 2), OBO::NoSignedWrap) == [-127, 128) 173 /// MGNR(Sub, [i8 1, 2), OBO::NoUnsignedWrap) == [1, 0) 174 LLVM_ABI static ConstantRange 175 makeGuaranteedNoWrapRegion(Instruction::BinaryOps BinOp, 176 const ConstantRange &Other, unsigned NoWrapKind); 177 178 /// Produce the range that contains X if and only if "X BinOp Other" does 179 /// not wrap. 180 LLVM_ABI static ConstantRange 181 makeExactNoWrapRegion(Instruction::BinaryOps BinOp, const APInt &Other, 182 unsigned NoWrapKind); 183 184 /// Initialize a range containing all values X that satisfy `(X & Mask) 185 /// != C`. Note that the range returned may contain values where `(X & Mask) 186 /// == C` holds, making it less precise, but still conservative. 187 LLVM_ABI static ConstantRange makeMaskNotEqualRange(const APInt &Mask, 188 const APInt &C); 189 190 /// Returns true if ConstantRange calculations are supported for intrinsic 191 /// with \p IntrinsicID. 192 LLVM_ABI static bool isIntrinsicSupported(Intrinsic::ID IntrinsicID); 193 194 /// Compute range of intrinsic result for the given operand ranges. 195 LLVM_ABI static ConstantRange intrinsic(Intrinsic::ID IntrinsicID, 196 ArrayRef<ConstantRange> Ops); 197 198 /// Set up \p Pred and \p RHS such that 199 /// ConstantRange::makeExactICmpRegion(Pred, RHS) == *this. Return true if 200 /// successful. 201 LLVM_ABI bool getEquivalentICmp(CmpInst::Predicate &Pred, APInt &RHS) const; 202 203 /// Set up \p Pred, \p RHS and \p Offset such that (V + Offset) Pred RHS 204 /// is true iff V is in the range. Prefers using Offset == 0 if possible. 205 LLVM_ABI void getEquivalentICmp(CmpInst::Predicate &Pred, APInt &RHS, 206 APInt &Offset) const; 207 208 /// Return the lower value for this range. getLower()209 const APInt &getLower() const { return Lower; } 210 211 /// Return the upper value for this range. getUpper()212 const APInt &getUpper() const { return Upper; } 213 214 /// Get the bit width of this ConstantRange. getBitWidth()215 uint32_t getBitWidth() const { return Lower.getBitWidth(); } 216 217 /// Return true if this set contains all of the elements possible 218 /// for this data-type. 219 LLVM_ABI bool isFullSet() const; 220 221 /// Return true if this set contains no members. 222 LLVM_ABI bool isEmptySet() const; 223 224 /// Return true if this set wraps around the unsigned domain. Special cases: 225 /// * Empty set: Not wrapped. 226 /// * Full set: Not wrapped. 227 /// * [X, 0) == [X, Max]: Not wrapped. 228 LLVM_ABI bool isWrappedSet() const; 229 230 /// Return true if the exclusive upper bound wraps around the unsigned 231 /// domain. Special cases: 232 /// * Empty set: Not wrapped. 233 /// * Full set: Not wrapped. 234 /// * [X, 0): Wrapped. 235 LLVM_ABI bool isUpperWrapped() const; 236 237 /// Return true if this set wraps around the signed domain. Special cases: 238 /// * Empty set: Not wrapped. 239 /// * Full set: Not wrapped. 240 /// * [X, SignedMin) == [X, SignedMax]: Not wrapped. 241 LLVM_ABI bool isSignWrappedSet() const; 242 243 /// Return true if the (exclusive) upper bound wraps around the signed 244 /// domain. Special cases: 245 /// * Empty set: Not wrapped. 246 /// * Full set: Not wrapped. 247 /// * [X, SignedMin): Wrapped. 248 LLVM_ABI bool isUpperSignWrapped() const; 249 250 /// Return true if the specified value is in the set. 251 LLVM_ABI bool contains(const APInt &Val) const; 252 253 /// Return true if the other range is a subset of this one. 254 LLVM_ABI bool contains(const ConstantRange &CR) const; 255 256 /// If this set contains a single element, return it, otherwise return null. getSingleElement()257 const APInt *getSingleElement() const { 258 if (Upper == Lower + 1) 259 return &Lower; 260 return nullptr; 261 } 262 263 /// If this set contains all but a single element, return it, otherwise return 264 /// null. getSingleMissingElement()265 const APInt *getSingleMissingElement() const { 266 if (Lower == Upper + 1) 267 return &Upper; 268 return nullptr; 269 } 270 271 /// Return true if this set contains exactly one member. isSingleElement()272 bool isSingleElement() const { return getSingleElement() != nullptr; } 273 274 /// Compare set size of this range with the range CR. 275 LLVM_ABI bool isSizeStrictlySmallerThan(const ConstantRange &CR) const; 276 277 /// Compare set size of this range with Value. 278 LLVM_ABI bool isSizeLargerThan(uint64_t MaxSize) const; 279 280 /// Return true if all values in this range are negative. 281 LLVM_ABI bool isAllNegative() const; 282 283 /// Return true if all values in this range are non-negative. 284 LLVM_ABI bool isAllNonNegative() const; 285 286 /// Return true if all values in this range are positive. 287 LLVM_ABI bool isAllPositive() const; 288 289 /// Return the largest unsigned value contained in the ConstantRange. 290 LLVM_ABI APInt getUnsignedMax() const; 291 292 /// Return the smallest unsigned value contained in the ConstantRange. 293 LLVM_ABI APInt getUnsignedMin() const; 294 295 /// Return the largest signed value contained in the ConstantRange. 296 LLVM_ABI APInt getSignedMax() const; 297 298 /// Return the smallest signed value contained in the ConstantRange. 299 LLVM_ABI APInt getSignedMin() const; 300 301 /// Return true if this range is equal to another range. 302 bool operator==(const ConstantRange &CR) const { 303 return Lower == CR.Lower && Upper == CR.Upper; 304 } 305 bool operator!=(const ConstantRange &CR) const { 306 return !operator==(CR); 307 } 308 309 /// Compute the maximal number of active bits needed to represent every value 310 /// in this range. 311 LLVM_ABI unsigned getActiveBits() const; 312 313 /// Compute the maximal number of bits needed to represent every value 314 /// in this signed range. 315 LLVM_ABI unsigned getMinSignedBits() const; 316 317 /// Subtract the specified constant from the endpoints of this constant range. 318 LLVM_ABI ConstantRange subtract(const APInt &CI) const; 319 320 /// Subtract the specified range from this range (aka relative complement of 321 /// the sets). 322 LLVM_ABI ConstantRange difference(const ConstantRange &CR) const; 323 324 /// If represented precisely, the result of some range operations may consist 325 /// of multiple disjoint ranges. As only a single range may be returned, any 326 /// range covering these disjoint ranges constitutes a valid result, but some 327 /// may be more useful than others depending on context. The preferred range 328 /// type specifies whether a range that is non-wrapping in the unsigned or 329 /// signed domain, or has the smallest size, is preferred. If a signedness is 330 /// preferred but all ranges are non-wrapping or all wrapping, then the 331 /// smallest set size is preferred. If there are multiple smallest sets, any 332 /// one of them may be returned. 333 enum PreferredRangeType { Smallest, Unsigned, Signed }; 334 335 /// Return the range that results from the intersection of this range with 336 /// another range. If the intersection is disjoint, such that two results 337 /// are possible, the preferred range is determined by the PreferredRangeType. 338 LLVM_ABI ConstantRange intersectWith( 339 const ConstantRange &CR, PreferredRangeType Type = Smallest) const; 340 341 /// Return the range that results from the union of this range 342 /// with another range. The resultant range is guaranteed to include the 343 /// elements of both sets, but may contain more. For example, [3, 9) union 344 /// [12,15) is [3, 15), which includes 9, 10, and 11, which were not included 345 /// in either set before. 346 LLVM_ABI ConstantRange unionWith(const ConstantRange &CR, 347 PreferredRangeType Type = Smallest) const; 348 349 /// Intersect the two ranges and return the result if it can be represented 350 /// exactly, otherwise return std::nullopt. 351 LLVM_ABI std::optional<ConstantRange> 352 exactIntersectWith(const ConstantRange &CR) const; 353 354 /// Union the two ranges and return the result if it can be represented 355 /// exactly, otherwise return std::nullopt. 356 LLVM_ABI std::optional<ConstantRange> 357 exactUnionWith(const ConstantRange &CR) const; 358 359 /// Return a new range representing the possible values resulting 360 /// from an application of the specified cast operator to this range. \p 361 /// BitWidth is the target bitwidth of the cast. For casts which don't 362 /// change bitwidth, it must be the same as the source bitwidth. For casts 363 /// which do change bitwidth, the bitwidth must be consistent with the 364 /// requested cast and source bitwidth. 365 LLVM_ABI ConstantRange castOp(Instruction::CastOps CastOp, 366 uint32_t BitWidth) const; 367 368 /// Return a new range in the specified integer type, which must 369 /// be strictly larger than the current type. The returned range will 370 /// correspond to the possible range of values if the source range had been 371 /// zero extended to BitWidth. 372 LLVM_ABI ConstantRange zeroExtend(uint32_t BitWidth) const; 373 374 /// Return a new range in the specified integer type, which must 375 /// be strictly larger than the current type. The returned range will 376 /// correspond to the possible range of values if the source range had been 377 /// sign extended to BitWidth. 378 LLVM_ABI ConstantRange signExtend(uint32_t BitWidth) const; 379 380 /// Return a new range in the specified integer type, which must be 381 /// strictly smaller than the current type. The returned range will 382 /// correspond to the possible range of values if the source range had been 383 /// truncated to the specified type. 384 LLVM_ABI ConstantRange truncate(uint32_t BitWidth) const; 385 386 /// Make this range have the bit width given by \p BitWidth. The 387 /// value is zero extended, truncated, or left alone to make it that width. 388 LLVM_ABI ConstantRange zextOrTrunc(uint32_t BitWidth) const; 389 390 /// Make this range have the bit width given by \p BitWidth. The 391 /// value is sign extended, truncated, or left alone to make it that width. 392 LLVM_ABI ConstantRange sextOrTrunc(uint32_t BitWidth) const; 393 394 /// Return a new range representing the possible values resulting 395 /// from an application of the specified binary operator to an left hand side 396 /// of this range and a right hand side of \p Other. 397 LLVM_ABI ConstantRange binaryOp(Instruction::BinaryOps BinOp, 398 const ConstantRange &Other) const; 399 400 /// Return a new range representing the possible values resulting 401 /// from an application of the specified overflowing binary operator to a 402 /// left hand side of this range and a right hand side of \p Other given 403 /// the provided knowledge about lack of wrapping \p NoWrapKind. 404 LLVM_ABI ConstantRange overflowingBinaryOp(Instruction::BinaryOps BinOp, 405 const ConstantRange &Other, 406 unsigned NoWrapKind) const; 407 408 /// Return a new range representing the possible values resulting 409 /// from an addition of a value in this range and a value in \p Other. 410 LLVM_ABI ConstantRange add(const ConstantRange &Other) const; 411 412 /// Return a new range representing the possible values resulting 413 /// from an addition with wrap type \p NoWrapKind of a value in this 414 /// range and a value in \p Other. 415 /// If the result range is disjoint, the preferred range is determined by the 416 /// \p PreferredRangeType. 417 LLVM_ABI ConstantRange 418 addWithNoWrap(const ConstantRange &Other, unsigned NoWrapKind, 419 PreferredRangeType RangeType = Smallest) const; 420 421 /// Return a new range representing the possible values resulting 422 /// from a subtraction of a value in this range and a value in \p Other. 423 LLVM_ABI ConstantRange sub(const ConstantRange &Other) const; 424 425 /// Return a new range representing the possible values resulting 426 /// from an subtraction with wrap type \p NoWrapKind of a value in this 427 /// range and a value in \p Other. 428 /// If the result range is disjoint, the preferred range is determined by the 429 /// \p PreferredRangeType. 430 LLVM_ABI ConstantRange 431 subWithNoWrap(const ConstantRange &Other, unsigned NoWrapKind, 432 PreferredRangeType RangeType = Smallest) const; 433 434 /// Return a new range representing the possible values resulting 435 /// from a multiplication of a value in this range and a value in \p Other, 436 /// treating both this and \p Other as unsigned ranges. 437 LLVM_ABI ConstantRange multiply(const ConstantRange &Other) const; 438 439 /// Return a new range representing the possible values resulting 440 /// from a multiplication with wrap type \p NoWrapKind of a value in this 441 /// range and a value in \p Other. 442 /// If the result range is disjoint, the preferred range is determined by the 443 /// \p PreferredRangeType. 444 LLVM_ABI ConstantRange 445 multiplyWithNoWrap(const ConstantRange &Other, unsigned NoWrapKind, 446 PreferredRangeType RangeType = Smallest) const; 447 448 /// Return range of possible values for a signed multiplication of this and 449 /// \p Other. However, if overflow is possible always return a full range 450 /// rather than trying to determine a more precise result. 451 LLVM_ABI ConstantRange smul_fast(const ConstantRange &Other) const; 452 453 /// Return a new range representing the possible values resulting 454 /// from a signed maximum of a value in this range and a value in \p Other. 455 LLVM_ABI ConstantRange smax(const ConstantRange &Other) const; 456 457 /// Return a new range representing the possible values resulting 458 /// from an unsigned maximum of a value in this range and a value in \p Other. 459 LLVM_ABI ConstantRange umax(const ConstantRange &Other) const; 460 461 /// Return a new range representing the possible values resulting 462 /// from a signed minimum of a value in this range and a value in \p Other. 463 LLVM_ABI ConstantRange smin(const ConstantRange &Other) const; 464 465 /// Return a new range representing the possible values resulting 466 /// from an unsigned minimum of a value in this range and a value in \p Other. 467 LLVM_ABI ConstantRange umin(const ConstantRange &Other) const; 468 469 /// Return a new range representing the possible values resulting 470 /// from an unsigned division of a value in this range and a value in 471 /// \p Other. 472 LLVM_ABI ConstantRange udiv(const ConstantRange &Other) const; 473 474 /// Return a new range representing the possible values resulting 475 /// from a signed division of a value in this range and a value in 476 /// \p Other. Division by zero and division of SignedMin by -1 are considered 477 /// undefined behavior, in line with IR, and do not contribute towards the 478 /// result. 479 LLVM_ABI ConstantRange sdiv(const ConstantRange &Other) const; 480 481 /// Return a new range representing the possible values resulting 482 /// from an unsigned remainder operation of a value in this range and a 483 /// value in \p Other. 484 LLVM_ABI ConstantRange urem(const ConstantRange &Other) const; 485 486 /// Return a new range representing the possible values resulting 487 /// from a signed remainder operation of a value in this range and a 488 /// value in \p Other. 489 LLVM_ABI ConstantRange srem(const ConstantRange &Other) const; 490 491 /// Return a new range representing the possible values resulting from 492 /// a binary-xor of a value in this range by an all-one value, 493 /// aka bitwise complement operation. 494 LLVM_ABI ConstantRange binaryNot() const; 495 496 /// Return a new range representing the possible values resulting 497 /// from a binary-and of a value in this range by a value in \p Other. 498 LLVM_ABI ConstantRange binaryAnd(const ConstantRange &Other) const; 499 500 /// Return a new range representing the possible values resulting 501 /// from a binary-or of a value in this range by a value in \p Other. 502 LLVM_ABI ConstantRange binaryOr(const ConstantRange &Other) const; 503 504 /// Return a new range representing the possible values resulting 505 /// from a binary-xor of a value in this range by a value in \p Other. 506 LLVM_ABI ConstantRange binaryXor(const ConstantRange &Other) const; 507 508 /// Return a new range representing the possible values resulting 509 /// from a left shift of a value in this range by a value in \p Other. 510 /// TODO: This isn't fully implemented yet. 511 LLVM_ABI ConstantRange shl(const ConstantRange &Other) const; 512 513 /// Return a new range representing the possible values resulting 514 /// from a left shift with wrap type \p NoWrapKind of a value in this 515 /// range and a value in \p Other. 516 /// If the result range is disjoint, the preferred range is determined by the 517 /// \p PreferredRangeType. 518 LLVM_ABI ConstantRange 519 shlWithNoWrap(const ConstantRange &Other, unsigned NoWrapKind, 520 PreferredRangeType RangeType = Smallest) const; 521 522 /// Return a new range representing the possible values resulting from a 523 /// logical right shift of a value in this range and a value in \p Other. 524 LLVM_ABI ConstantRange lshr(const ConstantRange &Other) const; 525 526 /// Return a new range representing the possible values resulting from a 527 /// arithmetic right shift of a value in this range and a value in \p Other. 528 LLVM_ABI ConstantRange ashr(const ConstantRange &Other) const; 529 530 /// Perform an unsigned saturating addition of two constant ranges. 531 LLVM_ABI ConstantRange uadd_sat(const ConstantRange &Other) const; 532 533 /// Perform a signed saturating addition of two constant ranges. 534 LLVM_ABI ConstantRange sadd_sat(const ConstantRange &Other) const; 535 536 /// Perform an unsigned saturating subtraction of two constant ranges. 537 LLVM_ABI ConstantRange usub_sat(const ConstantRange &Other) const; 538 539 /// Perform a signed saturating subtraction of two constant ranges. 540 LLVM_ABI ConstantRange ssub_sat(const ConstantRange &Other) const; 541 542 /// Perform an unsigned saturating multiplication of two constant ranges. 543 LLVM_ABI ConstantRange umul_sat(const ConstantRange &Other) const; 544 545 /// Perform a signed saturating multiplication of two constant ranges. 546 LLVM_ABI ConstantRange smul_sat(const ConstantRange &Other) const; 547 548 /// Perform an unsigned saturating left shift of this constant range by a 549 /// value in \p Other. 550 LLVM_ABI ConstantRange ushl_sat(const ConstantRange &Other) const; 551 552 /// Perform a signed saturating left shift of this constant range by a 553 /// value in \p Other. 554 LLVM_ABI ConstantRange sshl_sat(const ConstantRange &Other) const; 555 556 /// Return a new range that is the logical not of the current set. 557 LLVM_ABI ConstantRange inverse() const; 558 559 /// Calculate absolute value range. If the original range contains signed 560 /// min, then the resulting range will contain signed min if and only if 561 /// \p IntMinIsPoison is false. 562 LLVM_ABI ConstantRange abs(bool IntMinIsPoison = false) const; 563 564 /// Calculate ctlz range. If \p ZeroIsPoison is set, the range is computed 565 /// ignoring a possible zero value contained in the input range. 566 LLVM_ABI ConstantRange ctlz(bool ZeroIsPoison = false) const; 567 568 /// Calculate cttz range. If \p ZeroIsPoison is set, the range is computed 569 /// ignoring a possible zero value contained in the input range. 570 LLVM_ABI ConstantRange cttz(bool ZeroIsPoison = false) const; 571 572 /// Calculate ctpop range. 573 LLVM_ABI ConstantRange ctpop() const; 574 575 /// Represents whether an operation on the given constant range is known to 576 /// always or never overflow. 577 enum class OverflowResult { 578 /// Always overflows in the direction of signed/unsigned min value. 579 AlwaysOverflowsLow, 580 /// Always overflows in the direction of signed/unsigned max value. 581 AlwaysOverflowsHigh, 582 /// May or may not overflow. 583 MayOverflow, 584 /// Never overflows. 585 NeverOverflows, 586 }; 587 588 /// Return whether unsigned add of the two ranges always/never overflows. 589 LLVM_ABI OverflowResult 590 unsignedAddMayOverflow(const ConstantRange &Other) const; 591 592 /// Return whether signed add of the two ranges always/never overflows. 593 LLVM_ABI OverflowResult 594 signedAddMayOverflow(const ConstantRange &Other) const; 595 596 /// Return whether unsigned sub of the two ranges always/never overflows. 597 LLVM_ABI OverflowResult 598 unsignedSubMayOverflow(const ConstantRange &Other) const; 599 600 /// Return whether signed sub of the two ranges always/never overflows. 601 LLVM_ABI OverflowResult 602 signedSubMayOverflow(const ConstantRange &Other) const; 603 604 /// Return whether unsigned mul of the two ranges always/never overflows. 605 LLVM_ABI OverflowResult 606 unsignedMulMayOverflow(const ConstantRange &Other) const; 607 608 /// Return known bits for values in this range. 609 LLVM_ABI KnownBits toKnownBits() const; 610 611 /// Print out the bounds to a stream. 612 LLVM_ABI void print(raw_ostream &OS) const; 613 614 /// Allow printing from a debugger easily. 615 LLVM_ABI void dump() const; 616 }; 617 618 inline raw_ostream &operator<<(raw_ostream &OS, const ConstantRange &CR) { 619 CR.print(OS); 620 return OS; 621 } 622 623 /// Parse out a conservative ConstantRange from !range metadata. 624 /// 625 /// E.g. if RangeMD is !{i32 0, i32 10, i32 15, i32 20} then return [0, 20). 626 LLVM_ABI ConstantRange getConstantRangeFromMetadata(const MDNode &RangeMD); 627 628 } // end namespace llvm 629 630 #endif // LLVM_IR_CONSTANTRANGE_H 631