1 // SimpleSValBuilder.cpp - A basic SValBuilder -----------------------*- 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 // This file defines SimpleSValBuilder, a basic implementation of SValBuilder. 10 // 11 //===----------------------------------------------------------------------===// 12 13 #include "clang/StaticAnalyzer/Core/PathSensitive/SValBuilder.h" 14 #include "clang/StaticAnalyzer/Core/PathSensitive/AnalysisManager.h" 15 #include "clang/StaticAnalyzer/Core/PathSensitive/APSIntType.h" 16 #include "clang/StaticAnalyzer/Core/PathSensitive/ProgramState.h" 17 #include "clang/StaticAnalyzer/Core/PathSensitive/SubEngine.h" 18 #include "clang/StaticAnalyzer/Core/PathSensitive/SValVisitor.h" 19 20 using namespace clang; 21 using namespace ento; 22 23 namespace { 24 class SimpleSValBuilder : public SValBuilder { 25 protected: 26 SVal dispatchCast(SVal val, QualType castTy) override; 27 SVal evalCastFromNonLoc(NonLoc val, QualType castTy) override; 28 SVal evalCastFromLoc(Loc val, QualType castTy) override; 29 30 public: 31 SimpleSValBuilder(llvm::BumpPtrAllocator &alloc, ASTContext &context, 32 ProgramStateManager &stateMgr) 33 : SValBuilder(alloc, context, stateMgr) {} 34 ~SimpleSValBuilder() override {} 35 36 SVal evalMinus(NonLoc val) override; 37 SVal evalComplement(NonLoc val) override; 38 SVal evalBinOpNN(ProgramStateRef state, BinaryOperator::Opcode op, 39 NonLoc lhs, NonLoc rhs, QualType resultTy) override; 40 SVal evalBinOpLL(ProgramStateRef state, BinaryOperator::Opcode op, 41 Loc lhs, Loc rhs, QualType resultTy) override; 42 SVal evalBinOpLN(ProgramStateRef state, BinaryOperator::Opcode op, 43 Loc lhs, NonLoc rhs, QualType resultTy) override; 44 45 /// getKnownValue - evaluates a given SVal. If the SVal has only one possible 46 /// (integer) value, that value is returned. Otherwise, returns NULL. 47 const llvm::APSInt *getKnownValue(ProgramStateRef state, SVal V) override; 48 49 /// Recursively descends into symbolic expressions and replaces symbols 50 /// with their known values (in the sense of the getKnownValue() method). 51 SVal simplifySVal(ProgramStateRef State, SVal V) override; 52 53 SVal MakeSymIntVal(const SymExpr *LHS, BinaryOperator::Opcode op, 54 const llvm::APSInt &RHS, QualType resultTy); 55 }; 56 } // end anonymous namespace 57 58 SValBuilder *ento::createSimpleSValBuilder(llvm::BumpPtrAllocator &alloc, 59 ASTContext &context, 60 ProgramStateManager &stateMgr) { 61 return new SimpleSValBuilder(alloc, context, stateMgr); 62 } 63 64 //===----------------------------------------------------------------------===// 65 // Transfer function for Casts. 66 //===----------------------------------------------------------------------===// 67 68 SVal SimpleSValBuilder::dispatchCast(SVal Val, QualType CastTy) { 69 assert(Val.getAs<Loc>() || Val.getAs<NonLoc>()); 70 return Val.getAs<Loc>() ? evalCastFromLoc(Val.castAs<Loc>(), CastTy) 71 : evalCastFromNonLoc(Val.castAs<NonLoc>(), CastTy); 72 } 73 74 SVal SimpleSValBuilder::evalCastFromNonLoc(NonLoc val, QualType castTy) { 75 bool isLocType = Loc::isLocType(castTy); 76 if (val.getAs<nonloc::PointerToMember>()) 77 return val; 78 79 if (Optional<nonloc::LocAsInteger> LI = val.getAs<nonloc::LocAsInteger>()) { 80 if (isLocType) 81 return LI->getLoc(); 82 // FIXME: Correctly support promotions/truncations. 83 unsigned castSize = Context.getIntWidth(castTy); 84 if (castSize == LI->getNumBits()) 85 return val; 86 return makeLocAsInteger(LI->getLoc(), castSize); 87 } 88 89 if (const SymExpr *se = val.getAsSymbolicExpression()) { 90 QualType T = Context.getCanonicalType(se->getType()); 91 // If types are the same or both are integers, ignore the cast. 92 // FIXME: Remove this hack when we support symbolic truncation/extension. 93 // HACK: If both castTy and T are integers, ignore the cast. This is 94 // not a permanent solution. Eventually we want to precisely handle 95 // extension/truncation of symbolic integers. This prevents us from losing 96 // precision when we assign 'x = y' and 'y' is symbolic and x and y are 97 // different integer types. 98 if (haveSameType(T, castTy)) 99 return val; 100 101 if (!isLocType) 102 return makeNonLoc(se, T, castTy); 103 return UnknownVal(); 104 } 105 106 // If value is a non-integer constant, produce unknown. 107 if (!val.getAs<nonloc::ConcreteInt>()) 108 return UnknownVal(); 109 110 // Handle casts to a boolean type. 111 if (castTy->isBooleanType()) { 112 bool b = val.castAs<nonloc::ConcreteInt>().getValue().getBoolValue(); 113 return makeTruthVal(b, castTy); 114 } 115 116 // Only handle casts from integers to integers - if val is an integer constant 117 // being cast to a non-integer type, produce unknown. 118 if (!isLocType && !castTy->isIntegralOrEnumerationType()) 119 return UnknownVal(); 120 121 llvm::APSInt i = val.castAs<nonloc::ConcreteInt>().getValue(); 122 BasicVals.getAPSIntType(castTy).apply(i); 123 124 if (isLocType) 125 return makeIntLocVal(i); 126 else 127 return makeIntVal(i); 128 } 129 130 SVal SimpleSValBuilder::evalCastFromLoc(Loc val, QualType castTy) { 131 132 // Casts from pointers -> pointers, just return the lval. 133 // 134 // Casts from pointers -> references, just return the lval. These 135 // can be introduced by the frontend for corner cases, e.g 136 // casting from va_list* to __builtin_va_list&. 137 // 138 if (Loc::isLocType(castTy) || castTy->isReferenceType()) 139 return val; 140 141 // FIXME: Handle transparent unions where a value can be "transparently" 142 // lifted into a union type. 143 if (castTy->isUnionType()) 144 return UnknownVal(); 145 146 // Casting a Loc to a bool will almost always be true, 147 // unless this is a weak function or a symbolic region. 148 if (castTy->isBooleanType()) { 149 switch (val.getSubKind()) { 150 case loc::MemRegionValKind: { 151 const MemRegion *R = val.castAs<loc::MemRegionVal>().getRegion(); 152 if (const FunctionCodeRegion *FTR = dyn_cast<FunctionCodeRegion>(R)) 153 if (const FunctionDecl *FD = dyn_cast<FunctionDecl>(FTR->getDecl())) 154 if (FD->isWeak()) 155 // FIXME: Currently we are using an extent symbol here, 156 // because there are no generic region address metadata 157 // symbols to use, only content metadata. 158 return nonloc::SymbolVal(SymMgr.getExtentSymbol(FTR)); 159 160 if (const SymbolicRegion *SymR = R->getSymbolicBase()) 161 return makeNonLoc(SymR->getSymbol(), BO_NE, 162 BasicVals.getZeroWithPtrWidth(), castTy); 163 164 // FALL-THROUGH 165 LLVM_FALLTHROUGH; 166 } 167 168 case loc::GotoLabelKind: 169 // Labels and non-symbolic memory regions are always true. 170 return makeTruthVal(true, castTy); 171 } 172 } 173 174 if (castTy->isIntegralOrEnumerationType()) { 175 unsigned BitWidth = Context.getIntWidth(castTy); 176 177 if (!val.getAs<loc::ConcreteInt>()) 178 return makeLocAsInteger(val, BitWidth); 179 180 llvm::APSInt i = val.castAs<loc::ConcreteInt>().getValue(); 181 BasicVals.getAPSIntType(castTy).apply(i); 182 return makeIntVal(i); 183 } 184 185 // All other cases: return 'UnknownVal'. This includes casting pointers 186 // to floats, which is probably badness it itself, but this is a good 187 // intermediate solution until we do something better. 188 return UnknownVal(); 189 } 190 191 //===----------------------------------------------------------------------===// 192 // Transfer function for unary operators. 193 //===----------------------------------------------------------------------===// 194 195 SVal SimpleSValBuilder::evalMinus(NonLoc val) { 196 switch (val.getSubKind()) { 197 case nonloc::ConcreteIntKind: 198 return val.castAs<nonloc::ConcreteInt>().evalMinus(*this); 199 default: 200 return UnknownVal(); 201 } 202 } 203 204 SVal SimpleSValBuilder::evalComplement(NonLoc X) { 205 switch (X.getSubKind()) { 206 case nonloc::ConcreteIntKind: 207 return X.castAs<nonloc::ConcreteInt>().evalComplement(*this); 208 default: 209 return UnknownVal(); 210 } 211 } 212 213 //===----------------------------------------------------------------------===// 214 // Transfer function for binary operators. 215 //===----------------------------------------------------------------------===// 216 217 SVal SimpleSValBuilder::MakeSymIntVal(const SymExpr *LHS, 218 BinaryOperator::Opcode op, 219 const llvm::APSInt &RHS, 220 QualType resultTy) { 221 bool isIdempotent = false; 222 223 // Check for a few special cases with known reductions first. 224 switch (op) { 225 default: 226 // We can't reduce this case; just treat it normally. 227 break; 228 case BO_Mul: 229 // a*0 and a*1 230 if (RHS == 0) 231 return makeIntVal(0, resultTy); 232 else if (RHS == 1) 233 isIdempotent = true; 234 break; 235 case BO_Div: 236 // a/0 and a/1 237 if (RHS == 0) 238 // This is also handled elsewhere. 239 return UndefinedVal(); 240 else if (RHS == 1) 241 isIdempotent = true; 242 break; 243 case BO_Rem: 244 // a%0 and a%1 245 if (RHS == 0) 246 // This is also handled elsewhere. 247 return UndefinedVal(); 248 else if (RHS == 1) 249 return makeIntVal(0, resultTy); 250 break; 251 case BO_Add: 252 case BO_Sub: 253 case BO_Shl: 254 case BO_Shr: 255 case BO_Xor: 256 // a+0, a-0, a<<0, a>>0, a^0 257 if (RHS == 0) 258 isIdempotent = true; 259 break; 260 case BO_And: 261 // a&0 and a&(~0) 262 if (RHS == 0) 263 return makeIntVal(0, resultTy); 264 else if (RHS.isAllOnesValue()) 265 isIdempotent = true; 266 break; 267 case BO_Or: 268 // a|0 and a|(~0) 269 if (RHS == 0) 270 isIdempotent = true; 271 else if (RHS.isAllOnesValue()) { 272 const llvm::APSInt &Result = BasicVals.Convert(resultTy, RHS); 273 return nonloc::ConcreteInt(Result); 274 } 275 break; 276 } 277 278 // Idempotent ops (like a*1) can still change the type of an expression. 279 // Wrap the LHS up in a NonLoc again and let evalCastFromNonLoc do the 280 // dirty work. 281 if (isIdempotent) 282 return evalCastFromNonLoc(nonloc::SymbolVal(LHS), resultTy); 283 284 // If we reach this point, the expression cannot be simplified. 285 // Make a SymbolVal for the entire expression, after converting the RHS. 286 const llvm::APSInt *ConvertedRHS = &RHS; 287 if (BinaryOperator::isComparisonOp(op)) { 288 // We're looking for a type big enough to compare the symbolic value 289 // with the given constant. 290 // FIXME: This is an approximation of Sema::UsualArithmeticConversions. 291 ASTContext &Ctx = getContext(); 292 QualType SymbolType = LHS->getType(); 293 uint64_t ValWidth = RHS.getBitWidth(); 294 uint64_t TypeWidth = Ctx.getTypeSize(SymbolType); 295 296 if (ValWidth < TypeWidth) { 297 // If the value is too small, extend it. 298 ConvertedRHS = &BasicVals.Convert(SymbolType, RHS); 299 } else if (ValWidth == TypeWidth) { 300 // If the value is signed but the symbol is unsigned, do the comparison 301 // in unsigned space. [C99 6.3.1.8] 302 // (For the opposite case, the value is already unsigned.) 303 if (RHS.isSigned() && !SymbolType->isSignedIntegerOrEnumerationType()) 304 ConvertedRHS = &BasicVals.Convert(SymbolType, RHS); 305 } 306 } else 307 ConvertedRHS = &BasicVals.Convert(resultTy, RHS); 308 309 return makeNonLoc(LHS, op, *ConvertedRHS, resultTy); 310 } 311 312 // See if Sym is known to be a relation Rel with Bound. 313 static bool isInRelation(BinaryOperator::Opcode Rel, SymbolRef Sym, 314 llvm::APSInt Bound, ProgramStateRef State) { 315 SValBuilder &SVB = State->getStateManager().getSValBuilder(); 316 SVal Result = 317 SVB.evalBinOpNN(State, Rel, nonloc::SymbolVal(Sym), 318 nonloc::ConcreteInt(Bound), SVB.getConditionType()); 319 if (auto DV = Result.getAs<DefinedSVal>()) { 320 return !State->assume(*DV, false); 321 } 322 return false; 323 } 324 325 // See if Sym is known to be within [min/4, max/4], where min and max 326 // are the bounds of the symbol's integral type. With such symbols, 327 // some manipulations can be performed without the risk of overflow. 328 // assume() doesn't cause infinite recursion because we should be dealing 329 // with simpler symbols on every recursive call. 330 static bool isWithinConstantOverflowBounds(SymbolRef Sym, 331 ProgramStateRef State) { 332 SValBuilder &SVB = State->getStateManager().getSValBuilder(); 333 BasicValueFactory &BV = SVB.getBasicValueFactory(); 334 335 QualType T = Sym->getType(); 336 assert(T->isSignedIntegerOrEnumerationType() && 337 "This only works with signed integers!"); 338 APSIntType AT = BV.getAPSIntType(T); 339 340 llvm::APSInt Max = AT.getMaxValue() / AT.getValue(4), Min = -Max; 341 return isInRelation(BO_LE, Sym, Max, State) && 342 isInRelation(BO_GE, Sym, Min, State); 343 } 344 345 // Same for the concrete integers: see if I is within [min/4, max/4]. 346 static bool isWithinConstantOverflowBounds(llvm::APSInt I) { 347 APSIntType AT(I); 348 assert(!AT.isUnsigned() && 349 "This only works with signed integers!"); 350 351 llvm::APSInt Max = AT.getMaxValue() / AT.getValue(4), Min = -Max; 352 return (I <= Max) && (I >= -Max); 353 } 354 355 static std::pair<SymbolRef, llvm::APSInt> 356 decomposeSymbol(SymbolRef Sym, BasicValueFactory &BV) { 357 if (const auto *SymInt = dyn_cast<SymIntExpr>(Sym)) 358 if (BinaryOperator::isAdditiveOp(SymInt->getOpcode())) 359 return std::make_pair(SymInt->getLHS(), 360 (SymInt->getOpcode() == BO_Add) ? 361 (SymInt->getRHS()) : 362 (-SymInt->getRHS())); 363 364 // Fail to decompose: "reduce" the problem to the "$x + 0" case. 365 return std::make_pair(Sym, BV.getValue(0, Sym->getType())); 366 } 367 368 // Simplify "(LSym + LInt) Op (RSym + RInt)" assuming all values are of the 369 // same signed integral type and no overflows occur (which should be checked 370 // by the caller). 371 static NonLoc doRearrangeUnchecked(ProgramStateRef State, 372 BinaryOperator::Opcode Op, 373 SymbolRef LSym, llvm::APSInt LInt, 374 SymbolRef RSym, llvm::APSInt RInt) { 375 SValBuilder &SVB = State->getStateManager().getSValBuilder(); 376 BasicValueFactory &BV = SVB.getBasicValueFactory(); 377 SymbolManager &SymMgr = SVB.getSymbolManager(); 378 379 QualType SymTy = LSym->getType(); 380 assert(SymTy == RSym->getType() && 381 "Symbols are not of the same type!"); 382 assert(APSIntType(LInt) == BV.getAPSIntType(SymTy) && 383 "Integers are not of the same type as symbols!"); 384 assert(APSIntType(RInt) == BV.getAPSIntType(SymTy) && 385 "Integers are not of the same type as symbols!"); 386 387 QualType ResultTy; 388 if (BinaryOperator::isComparisonOp(Op)) 389 ResultTy = SVB.getConditionType(); 390 else if (BinaryOperator::isAdditiveOp(Op)) 391 ResultTy = SymTy; 392 else 393 llvm_unreachable("Operation not suitable for unchecked rearrangement!"); 394 395 // FIXME: Can we use assume() without getting into an infinite recursion? 396 if (LSym == RSym) 397 return SVB.evalBinOpNN(State, Op, nonloc::ConcreteInt(LInt), 398 nonloc::ConcreteInt(RInt), ResultTy) 399 .castAs<NonLoc>(); 400 401 SymbolRef ResultSym = nullptr; 402 BinaryOperator::Opcode ResultOp; 403 llvm::APSInt ResultInt; 404 if (BinaryOperator::isComparisonOp(Op)) { 405 // Prefer comparing to a non-negative number. 406 // FIXME: Maybe it'd be better to have consistency in 407 // "$x - $y" vs. "$y - $x" because those are solver's keys. 408 if (LInt > RInt) { 409 ResultSym = SymMgr.getSymSymExpr(RSym, BO_Sub, LSym, SymTy); 410 ResultOp = BinaryOperator::reverseComparisonOp(Op); 411 ResultInt = LInt - RInt; // Opposite order! 412 } else { 413 ResultSym = SymMgr.getSymSymExpr(LSym, BO_Sub, RSym, SymTy); 414 ResultOp = Op; 415 ResultInt = RInt - LInt; // Opposite order! 416 } 417 } else { 418 ResultSym = SymMgr.getSymSymExpr(LSym, Op, RSym, SymTy); 419 ResultInt = (Op == BO_Add) ? (LInt + RInt) : (LInt - RInt); 420 ResultOp = BO_Add; 421 // Bring back the cosmetic difference. 422 if (ResultInt < 0) { 423 ResultInt = -ResultInt; 424 ResultOp = BO_Sub; 425 } else if (ResultInt == 0) { 426 // Shortcut: Simplify "$x + 0" to "$x". 427 return nonloc::SymbolVal(ResultSym); 428 } 429 } 430 const llvm::APSInt &PersistentResultInt = BV.getValue(ResultInt); 431 return nonloc::SymbolVal( 432 SymMgr.getSymIntExpr(ResultSym, ResultOp, PersistentResultInt, ResultTy)); 433 } 434 435 // Rearrange if symbol type matches the result type and if the operator is a 436 // comparison operator, both symbol and constant must be within constant 437 // overflow bounds. 438 static bool shouldRearrange(ProgramStateRef State, BinaryOperator::Opcode Op, 439 SymbolRef Sym, llvm::APSInt Int, QualType Ty) { 440 return Sym->getType() == Ty && 441 (!BinaryOperator::isComparisonOp(Op) || 442 (isWithinConstantOverflowBounds(Sym, State) && 443 isWithinConstantOverflowBounds(Int))); 444 } 445 446 static Optional<NonLoc> tryRearrange(ProgramStateRef State, 447 BinaryOperator::Opcode Op, NonLoc Lhs, 448 NonLoc Rhs, QualType ResultTy) { 449 ProgramStateManager &StateMgr = State->getStateManager(); 450 SValBuilder &SVB = StateMgr.getSValBuilder(); 451 452 // We expect everything to be of the same type - this type. 453 QualType SingleTy; 454 455 auto &Opts = 456 StateMgr.getOwningEngine().getAnalysisManager().getAnalyzerOptions(); 457 458 // FIXME: After putting complexity threshold to the symbols we can always 459 // rearrange additive operations but rearrange comparisons only if 460 // option is set. 461 if(!Opts.ShouldAggressivelySimplifyBinaryOperation) 462 return None; 463 464 SymbolRef LSym = Lhs.getAsSymbol(); 465 if (!LSym) 466 return None; 467 468 if (BinaryOperator::isComparisonOp(Op)) { 469 SingleTy = LSym->getType(); 470 if (ResultTy != SVB.getConditionType()) 471 return None; 472 // Initialize SingleTy later with a symbol's type. 473 } else if (BinaryOperator::isAdditiveOp(Op)) { 474 SingleTy = ResultTy; 475 if (LSym->getType() != SingleTy) 476 return None; 477 } else { 478 // Don't rearrange other operations. 479 return None; 480 } 481 482 assert(!SingleTy.isNull() && "We should have figured out the type by now!"); 483 484 // Rearrange signed symbolic expressions only 485 if (!SingleTy->isSignedIntegerOrEnumerationType()) 486 return None; 487 488 SymbolRef RSym = Rhs.getAsSymbol(); 489 if (!RSym || RSym->getType() != SingleTy) 490 return None; 491 492 BasicValueFactory &BV = State->getBasicVals(); 493 llvm::APSInt LInt, RInt; 494 std::tie(LSym, LInt) = decomposeSymbol(LSym, BV); 495 std::tie(RSym, RInt) = decomposeSymbol(RSym, BV); 496 if (!shouldRearrange(State, Op, LSym, LInt, SingleTy) || 497 !shouldRearrange(State, Op, RSym, RInt, SingleTy)) 498 return None; 499 500 // We know that no overflows can occur anymore. 501 return doRearrangeUnchecked(State, Op, LSym, LInt, RSym, RInt); 502 } 503 504 SVal SimpleSValBuilder::evalBinOpNN(ProgramStateRef state, 505 BinaryOperator::Opcode op, 506 NonLoc lhs, NonLoc rhs, 507 QualType resultTy) { 508 NonLoc InputLHS = lhs; 509 NonLoc InputRHS = rhs; 510 511 // Handle trivial case where left-side and right-side are the same. 512 if (lhs == rhs) 513 switch (op) { 514 default: 515 break; 516 case BO_EQ: 517 case BO_LE: 518 case BO_GE: 519 return makeTruthVal(true, resultTy); 520 case BO_LT: 521 case BO_GT: 522 case BO_NE: 523 return makeTruthVal(false, resultTy); 524 case BO_Xor: 525 case BO_Sub: 526 if (resultTy->isIntegralOrEnumerationType()) 527 return makeIntVal(0, resultTy); 528 return evalCastFromNonLoc(makeIntVal(0, /*Unsigned=*/false), resultTy); 529 case BO_Or: 530 case BO_And: 531 return evalCastFromNonLoc(lhs, resultTy); 532 } 533 534 while (1) { 535 switch (lhs.getSubKind()) { 536 default: 537 return makeSymExprValNN(op, lhs, rhs, resultTy); 538 case nonloc::PointerToMemberKind: { 539 assert(rhs.getSubKind() == nonloc::PointerToMemberKind && 540 "Both SVals should have pointer-to-member-type"); 541 auto LPTM = lhs.castAs<nonloc::PointerToMember>(), 542 RPTM = rhs.castAs<nonloc::PointerToMember>(); 543 auto LPTMD = LPTM.getPTMData(), RPTMD = RPTM.getPTMData(); 544 switch (op) { 545 case BO_EQ: 546 return makeTruthVal(LPTMD == RPTMD, resultTy); 547 case BO_NE: 548 return makeTruthVal(LPTMD != RPTMD, resultTy); 549 default: 550 return UnknownVal(); 551 } 552 } 553 case nonloc::LocAsIntegerKind: { 554 Loc lhsL = lhs.castAs<nonloc::LocAsInteger>().getLoc(); 555 switch (rhs.getSubKind()) { 556 case nonloc::LocAsIntegerKind: 557 // FIXME: at the moment the implementation 558 // of modeling "pointers as integers" is not complete. 559 if (!BinaryOperator::isComparisonOp(op)) 560 return UnknownVal(); 561 return evalBinOpLL(state, op, lhsL, 562 rhs.castAs<nonloc::LocAsInteger>().getLoc(), 563 resultTy); 564 case nonloc::ConcreteIntKind: { 565 // FIXME: at the moment the implementation 566 // of modeling "pointers as integers" is not complete. 567 if (!BinaryOperator::isComparisonOp(op)) 568 return UnknownVal(); 569 // Transform the integer into a location and compare. 570 // FIXME: This only makes sense for comparisons. If we want to, say, 571 // add 1 to a LocAsInteger, we'd better unpack the Loc and add to it, 572 // then pack it back into a LocAsInteger. 573 llvm::APSInt i = rhs.castAs<nonloc::ConcreteInt>().getValue(); 574 BasicVals.getAPSIntType(Context.VoidPtrTy).apply(i); 575 return evalBinOpLL(state, op, lhsL, makeLoc(i), resultTy); 576 } 577 default: 578 switch (op) { 579 case BO_EQ: 580 return makeTruthVal(false, resultTy); 581 case BO_NE: 582 return makeTruthVal(true, resultTy); 583 default: 584 // This case also handles pointer arithmetic. 585 return makeSymExprValNN(op, InputLHS, InputRHS, resultTy); 586 } 587 } 588 } 589 case nonloc::ConcreteIntKind: { 590 llvm::APSInt LHSValue = lhs.castAs<nonloc::ConcreteInt>().getValue(); 591 592 // If we're dealing with two known constants, just perform the operation. 593 if (const llvm::APSInt *KnownRHSValue = getKnownValue(state, rhs)) { 594 llvm::APSInt RHSValue = *KnownRHSValue; 595 if (BinaryOperator::isComparisonOp(op)) { 596 // We're looking for a type big enough to compare the two values. 597 // FIXME: This is not correct. char + short will result in a promotion 598 // to int. Unfortunately we have lost types by this point. 599 APSIntType CompareType = std::max(APSIntType(LHSValue), 600 APSIntType(RHSValue)); 601 CompareType.apply(LHSValue); 602 CompareType.apply(RHSValue); 603 } else if (!BinaryOperator::isShiftOp(op)) { 604 APSIntType IntType = BasicVals.getAPSIntType(resultTy); 605 IntType.apply(LHSValue); 606 IntType.apply(RHSValue); 607 } 608 609 const llvm::APSInt *Result = 610 BasicVals.evalAPSInt(op, LHSValue, RHSValue); 611 if (!Result) 612 return UndefinedVal(); 613 614 return nonloc::ConcreteInt(*Result); 615 } 616 617 // Swap the left and right sides and flip the operator if doing so 618 // allows us to better reason about the expression (this is a form 619 // of expression canonicalization). 620 // While we're at it, catch some special cases for non-commutative ops. 621 switch (op) { 622 case BO_LT: 623 case BO_GT: 624 case BO_LE: 625 case BO_GE: 626 op = BinaryOperator::reverseComparisonOp(op); 627 LLVM_FALLTHROUGH; 628 case BO_EQ: 629 case BO_NE: 630 case BO_Add: 631 case BO_Mul: 632 case BO_And: 633 case BO_Xor: 634 case BO_Or: 635 std::swap(lhs, rhs); 636 continue; 637 case BO_Shr: 638 // (~0)>>a 639 if (LHSValue.isAllOnesValue() && LHSValue.isSigned()) 640 return evalCastFromNonLoc(lhs, resultTy); 641 LLVM_FALLTHROUGH; 642 case BO_Shl: 643 // 0<<a and 0>>a 644 if (LHSValue == 0) 645 return evalCastFromNonLoc(lhs, resultTy); 646 return makeSymExprValNN(op, InputLHS, InputRHS, resultTy); 647 default: 648 return makeSymExprValNN(op, InputLHS, InputRHS, resultTy); 649 } 650 } 651 case nonloc::SymbolValKind: { 652 // We only handle LHS as simple symbols or SymIntExprs. 653 SymbolRef Sym = lhs.castAs<nonloc::SymbolVal>().getSymbol(); 654 655 // LHS is a symbolic expression. 656 if (const SymIntExpr *symIntExpr = dyn_cast<SymIntExpr>(Sym)) { 657 658 // Is this a logical not? (!x is represented as x == 0.) 659 if (op == BO_EQ && rhs.isZeroConstant()) { 660 // We know how to negate certain expressions. Simplify them here. 661 662 BinaryOperator::Opcode opc = symIntExpr->getOpcode(); 663 switch (opc) { 664 default: 665 // We don't know how to negate this operation. 666 // Just handle it as if it were a normal comparison to 0. 667 break; 668 case BO_LAnd: 669 case BO_LOr: 670 llvm_unreachable("Logical operators handled by branching logic."); 671 case BO_Assign: 672 case BO_MulAssign: 673 case BO_DivAssign: 674 case BO_RemAssign: 675 case BO_AddAssign: 676 case BO_SubAssign: 677 case BO_ShlAssign: 678 case BO_ShrAssign: 679 case BO_AndAssign: 680 case BO_XorAssign: 681 case BO_OrAssign: 682 case BO_Comma: 683 llvm_unreachable("'=' and ',' operators handled by ExprEngine."); 684 case BO_PtrMemD: 685 case BO_PtrMemI: 686 llvm_unreachable("Pointer arithmetic not handled here."); 687 case BO_LT: 688 case BO_GT: 689 case BO_LE: 690 case BO_GE: 691 case BO_EQ: 692 case BO_NE: 693 assert(resultTy->isBooleanType() || 694 resultTy == getConditionType()); 695 assert(symIntExpr->getType()->isBooleanType() || 696 getContext().hasSameUnqualifiedType(symIntExpr->getType(), 697 getConditionType())); 698 // Negate the comparison and make a value. 699 opc = BinaryOperator::negateComparisonOp(opc); 700 return makeNonLoc(symIntExpr->getLHS(), opc, 701 symIntExpr->getRHS(), resultTy); 702 } 703 } 704 705 // For now, only handle expressions whose RHS is a constant. 706 if (const llvm::APSInt *RHSValue = getKnownValue(state, rhs)) { 707 // If both the LHS and the current expression are additive, 708 // fold their constants and try again. 709 if (BinaryOperator::isAdditiveOp(op)) { 710 BinaryOperator::Opcode lop = symIntExpr->getOpcode(); 711 if (BinaryOperator::isAdditiveOp(lop)) { 712 // Convert the two constants to a common type, then combine them. 713 714 // resultTy may not be the best type to convert to, but it's 715 // probably the best choice in expressions with mixed type 716 // (such as x+1U+2LL). The rules for implicit conversions should 717 // choose a reasonable type to preserve the expression, and will 718 // at least match how the value is going to be used. 719 APSIntType IntType = BasicVals.getAPSIntType(resultTy); 720 const llvm::APSInt &first = IntType.convert(symIntExpr->getRHS()); 721 const llvm::APSInt &second = IntType.convert(*RHSValue); 722 723 const llvm::APSInt *newRHS; 724 if (lop == op) 725 newRHS = BasicVals.evalAPSInt(BO_Add, first, second); 726 else 727 newRHS = BasicVals.evalAPSInt(BO_Sub, first, second); 728 729 assert(newRHS && "Invalid operation despite common type!"); 730 rhs = nonloc::ConcreteInt(*newRHS); 731 lhs = nonloc::SymbolVal(symIntExpr->getLHS()); 732 op = lop; 733 continue; 734 } 735 } 736 737 // Otherwise, make a SymIntExpr out of the expression. 738 return MakeSymIntVal(symIntExpr, op, *RHSValue, resultTy); 739 } 740 } 741 742 // Does the symbolic expression simplify to a constant? 743 // If so, "fold" the constant by setting 'lhs' to a ConcreteInt 744 // and try again. 745 SVal simplifiedLhs = simplifySVal(state, lhs); 746 if (simplifiedLhs != lhs) 747 if (auto simplifiedLhsAsNonLoc = simplifiedLhs.getAs<NonLoc>()) { 748 lhs = *simplifiedLhsAsNonLoc; 749 continue; 750 } 751 752 // Is the RHS a constant? 753 if (const llvm::APSInt *RHSValue = getKnownValue(state, rhs)) 754 return MakeSymIntVal(Sym, op, *RHSValue, resultTy); 755 756 if (Optional<NonLoc> V = tryRearrange(state, op, lhs, rhs, resultTy)) 757 return *V; 758 759 // Give up -- this is not a symbolic expression we can handle. 760 return makeSymExprValNN(op, InputLHS, InputRHS, resultTy); 761 } 762 } 763 } 764 } 765 766 static SVal evalBinOpFieldRegionFieldRegion(const FieldRegion *LeftFR, 767 const FieldRegion *RightFR, 768 BinaryOperator::Opcode op, 769 QualType resultTy, 770 SimpleSValBuilder &SVB) { 771 // Only comparisons are meaningful here! 772 if (!BinaryOperator::isComparisonOp(op)) 773 return UnknownVal(); 774 775 // Next, see if the two FRs have the same super-region. 776 // FIXME: This doesn't handle casts yet, and simply stripping the casts 777 // doesn't help. 778 if (LeftFR->getSuperRegion() != RightFR->getSuperRegion()) 779 return UnknownVal(); 780 781 const FieldDecl *LeftFD = LeftFR->getDecl(); 782 const FieldDecl *RightFD = RightFR->getDecl(); 783 const RecordDecl *RD = LeftFD->getParent(); 784 785 // Make sure the two FRs are from the same kind of record. Just in case! 786 // FIXME: This is probably where inheritance would be a problem. 787 if (RD != RightFD->getParent()) 788 return UnknownVal(); 789 790 // We know for sure that the two fields are not the same, since that 791 // would have given us the same SVal. 792 if (op == BO_EQ) 793 return SVB.makeTruthVal(false, resultTy); 794 if (op == BO_NE) 795 return SVB.makeTruthVal(true, resultTy); 796 797 // Iterate through the fields and see which one comes first. 798 // [C99 6.7.2.1.13] "Within a structure object, the non-bit-field 799 // members and the units in which bit-fields reside have addresses that 800 // increase in the order in which they are declared." 801 bool leftFirst = (op == BO_LT || op == BO_LE); 802 for (const auto *I : RD->fields()) { 803 if (I == LeftFD) 804 return SVB.makeTruthVal(leftFirst, resultTy); 805 if (I == RightFD) 806 return SVB.makeTruthVal(!leftFirst, resultTy); 807 } 808 809 llvm_unreachable("Fields not found in parent record's definition"); 810 } 811 812 // FIXME: all this logic will change if/when we have MemRegion::getLocation(). 813 SVal SimpleSValBuilder::evalBinOpLL(ProgramStateRef state, 814 BinaryOperator::Opcode op, 815 Loc lhs, Loc rhs, 816 QualType resultTy) { 817 // Only comparisons and subtractions are valid operations on two pointers. 818 // See [C99 6.5.5 through 6.5.14] or [C++0x 5.6 through 5.15]. 819 // However, if a pointer is casted to an integer, evalBinOpNN may end up 820 // calling this function with another operation (PR7527). We don't attempt to 821 // model this for now, but it could be useful, particularly when the 822 // "location" is actually an integer value that's been passed through a void*. 823 if (!(BinaryOperator::isComparisonOp(op) || op == BO_Sub)) 824 return UnknownVal(); 825 826 // Special cases for when both sides are identical. 827 if (lhs == rhs) { 828 switch (op) { 829 default: 830 llvm_unreachable("Unimplemented operation for two identical values"); 831 case BO_Sub: 832 return makeZeroVal(resultTy); 833 case BO_EQ: 834 case BO_LE: 835 case BO_GE: 836 return makeTruthVal(true, resultTy); 837 case BO_NE: 838 case BO_LT: 839 case BO_GT: 840 return makeTruthVal(false, resultTy); 841 } 842 } 843 844 switch (lhs.getSubKind()) { 845 default: 846 llvm_unreachable("Ordering not implemented for this Loc."); 847 848 case loc::GotoLabelKind: 849 // The only thing we know about labels is that they're non-null. 850 if (rhs.isZeroConstant()) { 851 switch (op) { 852 default: 853 break; 854 case BO_Sub: 855 return evalCastFromLoc(lhs, resultTy); 856 case BO_EQ: 857 case BO_LE: 858 case BO_LT: 859 return makeTruthVal(false, resultTy); 860 case BO_NE: 861 case BO_GT: 862 case BO_GE: 863 return makeTruthVal(true, resultTy); 864 } 865 } 866 // There may be two labels for the same location, and a function region may 867 // have the same address as a label at the start of the function (depending 868 // on the ABI). 869 // FIXME: we can probably do a comparison against other MemRegions, though. 870 // FIXME: is there a way to tell if two labels refer to the same location? 871 return UnknownVal(); 872 873 case loc::ConcreteIntKind: { 874 // If one of the operands is a symbol and the other is a constant, 875 // build an expression for use by the constraint manager. 876 if (SymbolRef rSym = rhs.getAsLocSymbol()) { 877 // We can only build expressions with symbols on the left, 878 // so we need a reversible operator. 879 if (!BinaryOperator::isComparisonOp(op) || op == BO_Cmp) 880 return UnknownVal(); 881 882 const llvm::APSInt &lVal = lhs.castAs<loc::ConcreteInt>().getValue(); 883 op = BinaryOperator::reverseComparisonOp(op); 884 return makeNonLoc(rSym, op, lVal, resultTy); 885 } 886 887 // If both operands are constants, just perform the operation. 888 if (Optional<loc::ConcreteInt> rInt = rhs.getAs<loc::ConcreteInt>()) { 889 SVal ResultVal = 890 lhs.castAs<loc::ConcreteInt>().evalBinOp(BasicVals, op, *rInt); 891 if (Optional<NonLoc> Result = ResultVal.getAs<NonLoc>()) 892 return evalCastFromNonLoc(*Result, resultTy); 893 894 assert(!ResultVal.getAs<Loc>() && "Loc-Loc ops should not produce Locs"); 895 return UnknownVal(); 896 } 897 898 // Special case comparisons against NULL. 899 // This must come after the test if the RHS is a symbol, which is used to 900 // build constraints. The address of any non-symbolic region is guaranteed 901 // to be non-NULL, as is any label. 902 assert(rhs.getAs<loc::MemRegionVal>() || rhs.getAs<loc::GotoLabel>()); 903 if (lhs.isZeroConstant()) { 904 switch (op) { 905 default: 906 break; 907 case BO_EQ: 908 case BO_GT: 909 case BO_GE: 910 return makeTruthVal(false, resultTy); 911 case BO_NE: 912 case BO_LT: 913 case BO_LE: 914 return makeTruthVal(true, resultTy); 915 } 916 } 917 918 // Comparing an arbitrary integer to a region or label address is 919 // completely unknowable. 920 return UnknownVal(); 921 } 922 case loc::MemRegionValKind: { 923 if (Optional<loc::ConcreteInt> rInt = rhs.getAs<loc::ConcreteInt>()) { 924 // If one of the operands is a symbol and the other is a constant, 925 // build an expression for use by the constraint manager. 926 if (SymbolRef lSym = lhs.getAsLocSymbol(true)) { 927 if (BinaryOperator::isComparisonOp(op)) 928 return MakeSymIntVal(lSym, op, rInt->getValue(), resultTy); 929 return UnknownVal(); 930 } 931 // Special case comparisons to NULL. 932 // This must come after the test if the LHS is a symbol, which is used to 933 // build constraints. The address of any non-symbolic region is guaranteed 934 // to be non-NULL. 935 if (rInt->isZeroConstant()) { 936 if (op == BO_Sub) 937 return evalCastFromLoc(lhs, resultTy); 938 939 if (BinaryOperator::isComparisonOp(op)) { 940 QualType boolType = getContext().BoolTy; 941 NonLoc l = evalCastFromLoc(lhs, boolType).castAs<NonLoc>(); 942 NonLoc r = makeTruthVal(false, boolType).castAs<NonLoc>(); 943 return evalBinOpNN(state, op, l, r, resultTy); 944 } 945 } 946 947 // Comparing a region to an arbitrary integer is completely unknowable. 948 return UnknownVal(); 949 } 950 951 // Get both values as regions, if possible. 952 const MemRegion *LeftMR = lhs.getAsRegion(); 953 assert(LeftMR && "MemRegionValKind SVal doesn't have a region!"); 954 955 const MemRegion *RightMR = rhs.getAsRegion(); 956 if (!RightMR) 957 // The RHS is probably a label, which in theory could address a region. 958 // FIXME: we can probably make a more useful statement about non-code 959 // regions, though. 960 return UnknownVal(); 961 962 const MemRegion *LeftBase = LeftMR->getBaseRegion(); 963 const MemRegion *RightBase = RightMR->getBaseRegion(); 964 const MemSpaceRegion *LeftMS = LeftBase->getMemorySpace(); 965 const MemSpaceRegion *RightMS = RightBase->getMemorySpace(); 966 const MemSpaceRegion *UnknownMS = MemMgr.getUnknownRegion(); 967 968 // If the two regions are from different known memory spaces they cannot be 969 // equal. Also, assume that no symbolic region (whose memory space is 970 // unknown) is on the stack. 971 if (LeftMS != RightMS && 972 ((LeftMS != UnknownMS && RightMS != UnknownMS) || 973 (isa<StackSpaceRegion>(LeftMS) || isa<StackSpaceRegion>(RightMS)))) { 974 switch (op) { 975 default: 976 return UnknownVal(); 977 case BO_EQ: 978 return makeTruthVal(false, resultTy); 979 case BO_NE: 980 return makeTruthVal(true, resultTy); 981 } 982 } 983 984 // If both values wrap regions, see if they're from different base regions. 985 // Note, heap base symbolic regions are assumed to not alias with 986 // each other; for example, we assume that malloc returns different address 987 // on each invocation. 988 // FIXME: ObjC object pointers always reside on the heap, but currently 989 // we treat their memory space as unknown, because symbolic pointers 990 // to ObjC objects may alias. There should be a way to construct 991 // possibly-aliasing heap-based regions. For instance, MacOSXApiChecker 992 // guesses memory space for ObjC object pointers manually instead of 993 // relying on us. 994 if (LeftBase != RightBase && 995 ((!isa<SymbolicRegion>(LeftBase) && !isa<SymbolicRegion>(RightBase)) || 996 (isa<HeapSpaceRegion>(LeftMS) || isa<HeapSpaceRegion>(RightMS))) ){ 997 switch (op) { 998 default: 999 return UnknownVal(); 1000 case BO_EQ: 1001 return makeTruthVal(false, resultTy); 1002 case BO_NE: 1003 return makeTruthVal(true, resultTy); 1004 } 1005 } 1006 1007 // Handle special cases for when both regions are element regions. 1008 const ElementRegion *RightER = dyn_cast<ElementRegion>(RightMR); 1009 const ElementRegion *LeftER = dyn_cast<ElementRegion>(LeftMR); 1010 if (RightER && LeftER) { 1011 // Next, see if the two ERs have the same super-region and matching types. 1012 // FIXME: This should do something useful even if the types don't match, 1013 // though if both indexes are constant the RegionRawOffset path will 1014 // give the correct answer. 1015 if (LeftER->getSuperRegion() == RightER->getSuperRegion() && 1016 LeftER->getElementType() == RightER->getElementType()) { 1017 // Get the left index and cast it to the correct type. 1018 // If the index is unknown or undefined, bail out here. 1019 SVal LeftIndexVal = LeftER->getIndex(); 1020 Optional<NonLoc> LeftIndex = LeftIndexVal.getAs<NonLoc>(); 1021 if (!LeftIndex) 1022 return UnknownVal(); 1023 LeftIndexVal = evalCastFromNonLoc(*LeftIndex, ArrayIndexTy); 1024 LeftIndex = LeftIndexVal.getAs<NonLoc>(); 1025 if (!LeftIndex) 1026 return UnknownVal(); 1027 1028 // Do the same for the right index. 1029 SVal RightIndexVal = RightER->getIndex(); 1030 Optional<NonLoc> RightIndex = RightIndexVal.getAs<NonLoc>(); 1031 if (!RightIndex) 1032 return UnknownVal(); 1033 RightIndexVal = evalCastFromNonLoc(*RightIndex, ArrayIndexTy); 1034 RightIndex = RightIndexVal.getAs<NonLoc>(); 1035 if (!RightIndex) 1036 return UnknownVal(); 1037 1038 // Actually perform the operation. 1039 // evalBinOpNN expects the two indexes to already be the right type. 1040 return evalBinOpNN(state, op, *LeftIndex, *RightIndex, resultTy); 1041 } 1042 } 1043 1044 // Special handling of the FieldRegions, even with symbolic offsets. 1045 const FieldRegion *RightFR = dyn_cast<FieldRegion>(RightMR); 1046 const FieldRegion *LeftFR = dyn_cast<FieldRegion>(LeftMR); 1047 if (RightFR && LeftFR) { 1048 SVal R = evalBinOpFieldRegionFieldRegion(LeftFR, RightFR, op, resultTy, 1049 *this); 1050 if (!R.isUnknown()) 1051 return R; 1052 } 1053 1054 // Compare the regions using the raw offsets. 1055 RegionOffset LeftOffset = LeftMR->getAsOffset(); 1056 RegionOffset RightOffset = RightMR->getAsOffset(); 1057 1058 if (LeftOffset.getRegion() != nullptr && 1059 LeftOffset.getRegion() == RightOffset.getRegion() && 1060 !LeftOffset.hasSymbolicOffset() && !RightOffset.hasSymbolicOffset()) { 1061 int64_t left = LeftOffset.getOffset(); 1062 int64_t right = RightOffset.getOffset(); 1063 1064 switch (op) { 1065 default: 1066 return UnknownVal(); 1067 case BO_LT: 1068 return makeTruthVal(left < right, resultTy); 1069 case BO_GT: 1070 return makeTruthVal(left > right, resultTy); 1071 case BO_LE: 1072 return makeTruthVal(left <= right, resultTy); 1073 case BO_GE: 1074 return makeTruthVal(left >= right, resultTy); 1075 case BO_EQ: 1076 return makeTruthVal(left == right, resultTy); 1077 case BO_NE: 1078 return makeTruthVal(left != right, resultTy); 1079 } 1080 } 1081 1082 // At this point we're not going to get a good answer, but we can try 1083 // conjuring an expression instead. 1084 SymbolRef LHSSym = lhs.getAsLocSymbol(); 1085 SymbolRef RHSSym = rhs.getAsLocSymbol(); 1086 if (LHSSym && RHSSym) 1087 return makeNonLoc(LHSSym, op, RHSSym, resultTy); 1088 1089 // If we get here, we have no way of comparing the regions. 1090 return UnknownVal(); 1091 } 1092 } 1093 } 1094 1095 SVal SimpleSValBuilder::evalBinOpLN(ProgramStateRef state, 1096 BinaryOperator::Opcode op, 1097 Loc lhs, NonLoc rhs, QualType resultTy) { 1098 if (op >= BO_PtrMemD && op <= BO_PtrMemI) { 1099 if (auto PTMSV = rhs.getAs<nonloc::PointerToMember>()) { 1100 if (PTMSV->isNullMemberPointer()) 1101 return UndefinedVal(); 1102 if (const FieldDecl *FD = PTMSV->getDeclAs<FieldDecl>()) { 1103 SVal Result = lhs; 1104 1105 for (const auto &I : *PTMSV) 1106 Result = StateMgr.getStoreManager().evalDerivedToBase( 1107 Result, I->getType(),I->isVirtual()); 1108 return state->getLValue(FD, Result); 1109 } 1110 } 1111 1112 return rhs; 1113 } 1114 1115 assert(!BinaryOperator::isComparisonOp(op) && 1116 "arguments to comparison ops must be of the same type"); 1117 1118 // Special case: rhs is a zero constant. 1119 if (rhs.isZeroConstant()) 1120 return lhs; 1121 1122 // Perserve the null pointer so that it can be found by the DerefChecker. 1123 if (lhs.isZeroConstant()) 1124 return lhs; 1125 1126 // We are dealing with pointer arithmetic. 1127 1128 // Handle pointer arithmetic on constant values. 1129 if (Optional<nonloc::ConcreteInt> rhsInt = rhs.getAs<nonloc::ConcreteInt>()) { 1130 if (Optional<loc::ConcreteInt> lhsInt = lhs.getAs<loc::ConcreteInt>()) { 1131 const llvm::APSInt &leftI = lhsInt->getValue(); 1132 assert(leftI.isUnsigned()); 1133 llvm::APSInt rightI(rhsInt->getValue(), /* isUnsigned */ true); 1134 1135 // Convert the bitwidth of rightI. This should deal with overflow 1136 // since we are dealing with concrete values. 1137 rightI = rightI.extOrTrunc(leftI.getBitWidth()); 1138 1139 // Offset the increment by the pointer size. 1140 llvm::APSInt Multiplicand(rightI.getBitWidth(), /* isUnsigned */ true); 1141 QualType pointeeType = resultTy->getPointeeType(); 1142 Multiplicand = getContext().getTypeSizeInChars(pointeeType).getQuantity(); 1143 rightI *= Multiplicand; 1144 1145 // Compute the adjusted pointer. 1146 switch (op) { 1147 case BO_Add: 1148 rightI = leftI + rightI; 1149 break; 1150 case BO_Sub: 1151 rightI = leftI - rightI; 1152 break; 1153 default: 1154 llvm_unreachable("Invalid pointer arithmetic operation"); 1155 } 1156 return loc::ConcreteInt(getBasicValueFactory().getValue(rightI)); 1157 } 1158 } 1159 1160 // Handle cases where 'lhs' is a region. 1161 if (const MemRegion *region = lhs.getAsRegion()) { 1162 rhs = convertToArrayIndex(rhs).castAs<NonLoc>(); 1163 SVal index = UnknownVal(); 1164 const SubRegion *superR = nullptr; 1165 // We need to know the type of the pointer in order to add an integer to it. 1166 // Depending on the type, different amount of bytes is added. 1167 QualType elementType; 1168 1169 if (const ElementRegion *elemReg = dyn_cast<ElementRegion>(region)) { 1170 assert(op == BO_Add || op == BO_Sub); 1171 index = evalBinOpNN(state, op, elemReg->getIndex(), rhs, 1172 getArrayIndexType()); 1173 superR = cast<SubRegion>(elemReg->getSuperRegion()); 1174 elementType = elemReg->getElementType(); 1175 } 1176 else if (isa<SubRegion>(region)) { 1177 assert(op == BO_Add || op == BO_Sub); 1178 index = (op == BO_Add) ? rhs : evalMinus(rhs); 1179 superR = cast<SubRegion>(region); 1180 // TODO: Is this actually reliable? Maybe improving our MemRegion 1181 // hierarchy to provide typed regions for all non-void pointers would be 1182 // better. For instance, we cannot extend this towards LocAsInteger 1183 // operations, where result type of the expression is integer. 1184 if (resultTy->isAnyPointerType()) 1185 elementType = resultTy->getPointeeType(); 1186 } 1187 1188 // Represent arithmetic on void pointers as arithmetic on char pointers. 1189 // It is fine when a TypedValueRegion of char value type represents 1190 // a void pointer. Note that arithmetic on void pointers is a GCC extension. 1191 if (elementType->isVoidType()) 1192 elementType = getContext().CharTy; 1193 1194 if (Optional<NonLoc> indexV = index.getAs<NonLoc>()) { 1195 return loc::MemRegionVal(MemMgr.getElementRegion(elementType, *indexV, 1196 superR, getContext())); 1197 } 1198 } 1199 return UnknownVal(); 1200 } 1201 1202 const llvm::APSInt *SimpleSValBuilder::getKnownValue(ProgramStateRef state, 1203 SVal V) { 1204 V = simplifySVal(state, V); 1205 if (V.isUnknownOrUndef()) 1206 return nullptr; 1207 1208 if (Optional<loc::ConcreteInt> X = V.getAs<loc::ConcreteInt>()) 1209 return &X->getValue(); 1210 1211 if (Optional<nonloc::ConcreteInt> X = V.getAs<nonloc::ConcreteInt>()) 1212 return &X->getValue(); 1213 1214 if (SymbolRef Sym = V.getAsSymbol()) 1215 return state->getConstraintManager().getSymVal(state, Sym); 1216 1217 // FIXME: Add support for SymExprs. 1218 return nullptr; 1219 } 1220 1221 SVal SimpleSValBuilder::simplifySVal(ProgramStateRef State, SVal V) { 1222 // For now, this function tries to constant-fold symbols inside a 1223 // nonloc::SymbolVal, and does nothing else. More simplifications should 1224 // be possible, such as constant-folding an index in an ElementRegion. 1225 1226 class Simplifier : public FullSValVisitor<Simplifier, SVal> { 1227 ProgramStateRef State; 1228 SValBuilder &SVB; 1229 1230 // Cache results for the lifetime of the Simplifier. Results change every 1231 // time new constraints are added to the program state, which is the whole 1232 // point of simplifying, and for that very reason it's pointless to maintain 1233 // the same cache for the duration of the whole analysis. 1234 llvm::DenseMap<SymbolRef, SVal> Cached; 1235 1236 static bool isUnchanged(SymbolRef Sym, SVal Val) { 1237 return Sym == Val.getAsSymbol(); 1238 } 1239 1240 SVal cache(SymbolRef Sym, SVal V) { 1241 Cached[Sym] = V; 1242 return V; 1243 } 1244 1245 SVal skip(SymbolRef Sym) { 1246 return cache(Sym, SVB.makeSymbolVal(Sym)); 1247 } 1248 1249 public: 1250 Simplifier(ProgramStateRef State) 1251 : State(State), SVB(State->getStateManager().getSValBuilder()) {} 1252 1253 SVal VisitSymbolData(const SymbolData *S) { 1254 // No cache here. 1255 if (const llvm::APSInt *I = 1256 SVB.getKnownValue(State, SVB.makeSymbolVal(S))) 1257 return Loc::isLocType(S->getType()) ? (SVal)SVB.makeIntLocVal(*I) 1258 : (SVal)SVB.makeIntVal(*I); 1259 return SVB.makeSymbolVal(S); 1260 } 1261 1262 // TODO: Support SymbolCast. Support IntSymExpr when/if we actually 1263 // start producing them. 1264 1265 SVal VisitSymIntExpr(const SymIntExpr *S) { 1266 auto I = Cached.find(S); 1267 if (I != Cached.end()) 1268 return I->second; 1269 1270 SVal LHS = Visit(S->getLHS()); 1271 if (isUnchanged(S->getLHS(), LHS)) 1272 return skip(S); 1273 1274 SVal RHS; 1275 // By looking at the APSInt in the right-hand side of S, we cannot 1276 // figure out if it should be treated as a Loc or as a NonLoc. 1277 // So make our guess by recalling that we cannot multiply pointers 1278 // or compare a pointer to an integer. 1279 if (Loc::isLocType(S->getLHS()->getType()) && 1280 BinaryOperator::isComparisonOp(S->getOpcode())) { 1281 // The usual conversion of $sym to &SymRegion{$sym}, as they have 1282 // the same meaning for Loc-type symbols, but the latter form 1283 // is preferred in SVal computations for being Loc itself. 1284 if (SymbolRef Sym = LHS.getAsSymbol()) { 1285 assert(Loc::isLocType(Sym->getType())); 1286 LHS = SVB.makeLoc(Sym); 1287 } 1288 RHS = SVB.makeIntLocVal(S->getRHS()); 1289 } else { 1290 RHS = SVB.makeIntVal(S->getRHS()); 1291 } 1292 1293 return cache( 1294 S, SVB.evalBinOp(State, S->getOpcode(), LHS, RHS, S->getType())); 1295 } 1296 1297 SVal VisitSymSymExpr(const SymSymExpr *S) { 1298 auto I = Cached.find(S); 1299 if (I != Cached.end()) 1300 return I->second; 1301 1302 // For now don't try to simplify mixed Loc/NonLoc expressions 1303 // because they often appear from LocAsInteger operations 1304 // and we don't know how to combine a LocAsInteger 1305 // with a concrete value. 1306 if (Loc::isLocType(S->getLHS()->getType()) != 1307 Loc::isLocType(S->getRHS()->getType())) 1308 return skip(S); 1309 1310 SVal LHS = Visit(S->getLHS()); 1311 SVal RHS = Visit(S->getRHS()); 1312 if (isUnchanged(S->getLHS(), LHS) && isUnchanged(S->getRHS(), RHS)) 1313 return skip(S); 1314 1315 return cache( 1316 S, SVB.evalBinOp(State, S->getOpcode(), LHS, RHS, S->getType())); 1317 } 1318 1319 SVal VisitSymExpr(SymbolRef S) { return nonloc::SymbolVal(S); } 1320 1321 SVal VisitMemRegion(const MemRegion *R) { return loc::MemRegionVal(R); } 1322 1323 SVal VisitNonLocSymbolVal(nonloc::SymbolVal V) { 1324 // Simplification is much more costly than computing complexity. 1325 // For high complexity, it may be not worth it. 1326 return Visit(V.getSymbol()); 1327 } 1328 1329 SVal VisitSVal(SVal V) { return V; } 1330 }; 1331 1332 // A crude way of preventing this function from calling itself from evalBinOp. 1333 static bool isReentering = false; 1334 if (isReentering) 1335 return V; 1336 1337 isReentering = true; 1338 SVal SimplifiedV = Simplifier(State).Visit(V); 1339 isReentering = false; 1340 1341 return SimplifiedV; 1342 } 1343