1 //===- FileCheck.cpp - Check that File's Contents match what is expected --===// 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 // FileCheck does a line-by line check of a file that validates whether it 10 // contains the expected content. This is useful for regression tests etc. 11 // 12 // This file implements most of the API that will be used by the FileCheck utility 13 // as well as various unittests. 14 //===----------------------------------------------------------------------===// 15 16 #include "llvm/FileCheck/FileCheck.h" 17 #include "FileCheckImpl.h" 18 #include "llvm/ADT/STLExtras.h" 19 #include "llvm/ADT/StringSet.h" 20 #include "llvm/ADT/Twine.h" 21 #include "llvm/Support/CheckedArithmetic.h" 22 #include "llvm/Support/FormatVariadic.h" 23 #include <cstdint> 24 #include <list> 25 #include <set> 26 #include <tuple> 27 #include <utility> 28 29 using namespace llvm; 30 31 StringRef ExpressionFormat::toString() const { 32 switch (Value) { 33 case Kind::NoFormat: 34 return StringRef("<none>"); 35 case Kind::Unsigned: 36 return StringRef("%u"); 37 case Kind::Signed: 38 return StringRef("%d"); 39 case Kind::HexUpper: 40 return StringRef("%X"); 41 case Kind::HexLower: 42 return StringRef("%x"); 43 } 44 llvm_unreachable("unknown expression format"); 45 } 46 47 Expected<std::string> ExpressionFormat::getWildcardRegex() const { 48 StringRef AlternateFormPrefix = AlternateForm ? StringRef("0x") : StringRef(); 49 50 auto CreatePrecisionRegex = [&](StringRef S) { 51 return (Twine(AlternateFormPrefix) + S + Twine('{') + Twine(Precision) + 52 "}") 53 .str(); 54 }; 55 56 switch (Value) { 57 case Kind::Unsigned: 58 if (Precision) 59 return CreatePrecisionRegex("([1-9][0-9]*)?[0-9]"); 60 return std::string("[0-9]+"); 61 case Kind::Signed: 62 if (Precision) 63 return CreatePrecisionRegex("-?([1-9][0-9]*)?[0-9]"); 64 return std::string("-?[0-9]+"); 65 case Kind::HexUpper: 66 if (Precision) 67 return CreatePrecisionRegex("([1-9A-F][0-9A-F]*)?[0-9A-F]"); 68 return (Twine(AlternateFormPrefix) + Twine("[0-9A-F]+")).str(); 69 case Kind::HexLower: 70 if (Precision) 71 return CreatePrecisionRegex("([1-9a-f][0-9a-f]*)?[0-9a-f]"); 72 return (Twine(AlternateFormPrefix) + Twine("[0-9a-f]+")).str(); 73 default: 74 return createStringError(std::errc::invalid_argument, 75 "trying to match value with invalid format"); 76 } 77 } 78 79 Expected<std::string> 80 ExpressionFormat::getMatchingString(ExpressionValue IntegerValue) const { 81 uint64_t AbsoluteValue; 82 StringRef SignPrefix = IntegerValue.isNegative() ? "-" : ""; 83 84 if (Value == Kind::Signed) { 85 Expected<int64_t> SignedValue = IntegerValue.getSignedValue(); 86 if (!SignedValue) 87 return SignedValue.takeError(); 88 if (*SignedValue < 0) 89 AbsoluteValue = cantFail(IntegerValue.getAbsolute().getUnsignedValue()); 90 else 91 AbsoluteValue = *SignedValue; 92 } else { 93 Expected<uint64_t> UnsignedValue = IntegerValue.getUnsignedValue(); 94 if (!UnsignedValue) 95 return UnsignedValue.takeError(); 96 AbsoluteValue = *UnsignedValue; 97 } 98 99 std::string AbsoluteValueStr; 100 switch (Value) { 101 case Kind::Unsigned: 102 case Kind::Signed: 103 AbsoluteValueStr = utostr(AbsoluteValue); 104 break; 105 case Kind::HexUpper: 106 case Kind::HexLower: 107 AbsoluteValueStr = utohexstr(AbsoluteValue, Value == Kind::HexLower); 108 break; 109 default: 110 return createStringError(std::errc::invalid_argument, 111 "trying to match value with invalid format"); 112 } 113 114 StringRef AlternateFormPrefix = AlternateForm ? StringRef("0x") : StringRef(); 115 116 if (Precision > AbsoluteValueStr.size()) { 117 unsigned LeadingZeros = Precision - AbsoluteValueStr.size(); 118 return (Twine(SignPrefix) + Twine(AlternateFormPrefix) + 119 std::string(LeadingZeros, '0') + AbsoluteValueStr) 120 .str(); 121 } 122 123 return (Twine(SignPrefix) + Twine(AlternateFormPrefix) + AbsoluteValueStr) 124 .str(); 125 } 126 127 Expected<ExpressionValue> 128 ExpressionFormat::valueFromStringRepr(StringRef StrVal, 129 const SourceMgr &SM) const { 130 bool ValueIsSigned = Value == Kind::Signed; 131 // Both the FileCheck utility and library only call this method with a valid 132 // value in StrVal. This is guaranteed by the regex returned by 133 // getWildcardRegex() above. Only underflow and overflow errors can thus 134 // occur. However new uses of this method could be added in the future so 135 // the error message does not make assumptions about StrVal. 136 StringRef IntegerParseErrorStr = "unable to represent numeric value"; 137 if (ValueIsSigned) { 138 int64_t SignedValue; 139 140 if (StrVal.getAsInteger(10, SignedValue)) 141 return ErrorDiagnostic::get(SM, StrVal, IntegerParseErrorStr); 142 143 return ExpressionValue(SignedValue); 144 } 145 146 bool Hex = Value == Kind::HexUpper || Value == Kind::HexLower; 147 uint64_t UnsignedValue; 148 bool MissingFormPrefix = AlternateForm && !StrVal.consume_front("0x"); 149 if (StrVal.getAsInteger(Hex ? 16 : 10, UnsignedValue)) 150 return ErrorDiagnostic::get(SM, StrVal, IntegerParseErrorStr); 151 152 // Error out for a missing prefix only now that we know we have an otherwise 153 // valid integer. For example, "-0x18" is reported above instead. 154 if (MissingFormPrefix) 155 return ErrorDiagnostic::get(SM, StrVal, "missing alternate form prefix"); 156 157 return ExpressionValue(UnsignedValue); 158 } 159 160 static int64_t getAsSigned(uint64_t UnsignedValue) { 161 // Use memcpy to reinterpret the bitpattern in Value since casting to 162 // signed is implementation-defined if the unsigned value is too big to be 163 // represented in the signed type and using an union violates type aliasing 164 // rules. 165 int64_t SignedValue; 166 memcpy(&SignedValue, &UnsignedValue, sizeof(SignedValue)); 167 return SignedValue; 168 } 169 170 Expected<int64_t> ExpressionValue::getSignedValue() const { 171 if (Negative) 172 return getAsSigned(Value); 173 174 if (Value > (uint64_t)std::numeric_limits<int64_t>::max()) 175 return make_error<OverflowError>(); 176 177 // Value is in the representable range of int64_t so we can use cast. 178 return static_cast<int64_t>(Value); 179 } 180 181 Expected<uint64_t> ExpressionValue::getUnsignedValue() const { 182 if (Negative) 183 return make_error<OverflowError>(); 184 185 return Value; 186 } 187 188 ExpressionValue ExpressionValue::getAbsolute() const { 189 if (!Negative) 190 return *this; 191 192 int64_t SignedValue = getAsSigned(Value); 193 int64_t MaxInt64 = std::numeric_limits<int64_t>::max(); 194 // Absolute value can be represented as int64_t. 195 if (SignedValue >= -MaxInt64) 196 return ExpressionValue(-getAsSigned(Value)); 197 198 // -X == -(max int64_t + Rem), negate each component independently. 199 SignedValue += MaxInt64; 200 uint64_t RemainingValueAbsolute = -SignedValue; 201 return ExpressionValue(MaxInt64 + RemainingValueAbsolute); 202 } 203 204 Expected<ExpressionValue> llvm::operator+(const ExpressionValue &LeftOperand, 205 const ExpressionValue &RightOperand) { 206 if (LeftOperand.isNegative() && RightOperand.isNegative()) { 207 int64_t LeftValue = cantFail(LeftOperand.getSignedValue()); 208 int64_t RightValue = cantFail(RightOperand.getSignedValue()); 209 Optional<int64_t> Result = checkedAdd<int64_t>(LeftValue, RightValue); 210 if (!Result) 211 return make_error<OverflowError>(); 212 213 return ExpressionValue(*Result); 214 } 215 216 // (-A) + B == B - A. 217 if (LeftOperand.isNegative()) 218 return RightOperand - LeftOperand.getAbsolute(); 219 220 // A + (-B) == A - B. 221 if (RightOperand.isNegative()) 222 return LeftOperand - RightOperand.getAbsolute(); 223 224 // Both values are positive at this point. 225 uint64_t LeftValue = cantFail(LeftOperand.getUnsignedValue()); 226 uint64_t RightValue = cantFail(RightOperand.getUnsignedValue()); 227 Optional<uint64_t> Result = 228 checkedAddUnsigned<uint64_t>(LeftValue, RightValue); 229 if (!Result) 230 return make_error<OverflowError>(); 231 232 return ExpressionValue(*Result); 233 } 234 235 Expected<ExpressionValue> llvm::operator-(const ExpressionValue &LeftOperand, 236 const ExpressionValue &RightOperand) { 237 // Result will be negative and thus might underflow. 238 if (LeftOperand.isNegative() && !RightOperand.isNegative()) { 239 int64_t LeftValue = cantFail(LeftOperand.getSignedValue()); 240 uint64_t RightValue = cantFail(RightOperand.getUnsignedValue()); 241 // Result <= -1 - (max int64_t) which overflows on 1- and 2-complement. 242 if (RightValue > (uint64_t)std::numeric_limits<int64_t>::max()) 243 return make_error<OverflowError>(); 244 Optional<int64_t> Result = 245 checkedSub(LeftValue, static_cast<int64_t>(RightValue)); 246 if (!Result) 247 return make_error<OverflowError>(); 248 249 return ExpressionValue(*Result); 250 } 251 252 // (-A) - (-B) == B - A. 253 if (LeftOperand.isNegative()) 254 return RightOperand.getAbsolute() - LeftOperand.getAbsolute(); 255 256 // A - (-B) == A + B. 257 if (RightOperand.isNegative()) 258 return LeftOperand + RightOperand.getAbsolute(); 259 260 // Both values are positive at this point. 261 uint64_t LeftValue = cantFail(LeftOperand.getUnsignedValue()); 262 uint64_t RightValue = cantFail(RightOperand.getUnsignedValue()); 263 if (LeftValue >= RightValue) 264 return ExpressionValue(LeftValue - RightValue); 265 else { 266 uint64_t AbsoluteDifference = RightValue - LeftValue; 267 uint64_t MaxInt64 = std::numeric_limits<int64_t>::max(); 268 // Value might underflow. 269 if (AbsoluteDifference > MaxInt64) { 270 AbsoluteDifference -= MaxInt64; 271 int64_t Result = -MaxInt64; 272 int64_t MinInt64 = std::numeric_limits<int64_t>::min(); 273 // Underflow, tested by: 274 // abs(Result + (max int64_t)) > abs((min int64_t) + (max int64_t)) 275 if (AbsoluteDifference > static_cast<uint64_t>(-(MinInt64 - Result))) 276 return make_error<OverflowError>(); 277 Result -= static_cast<int64_t>(AbsoluteDifference); 278 return ExpressionValue(Result); 279 } 280 281 return ExpressionValue(-static_cast<int64_t>(AbsoluteDifference)); 282 } 283 } 284 285 Expected<ExpressionValue> llvm::operator*(const ExpressionValue &LeftOperand, 286 const ExpressionValue &RightOperand) { 287 // -A * -B == A * B 288 if (LeftOperand.isNegative() && RightOperand.isNegative()) 289 return LeftOperand.getAbsolute() * RightOperand.getAbsolute(); 290 291 // A * -B == -B * A 292 if (RightOperand.isNegative()) 293 return RightOperand * LeftOperand; 294 295 assert(!RightOperand.isNegative() && "Unexpected negative operand!"); 296 297 // Result will be negative and can underflow. 298 if (LeftOperand.isNegative()) { 299 auto Result = LeftOperand.getAbsolute() * RightOperand.getAbsolute(); 300 if (!Result) 301 return Result; 302 303 return ExpressionValue(0) - *Result; 304 } 305 306 // Result will be positive and can overflow. 307 uint64_t LeftValue = cantFail(LeftOperand.getUnsignedValue()); 308 uint64_t RightValue = cantFail(RightOperand.getUnsignedValue()); 309 Optional<uint64_t> Result = 310 checkedMulUnsigned<uint64_t>(LeftValue, RightValue); 311 if (!Result) 312 return make_error<OverflowError>(); 313 314 return ExpressionValue(*Result); 315 } 316 317 Expected<ExpressionValue> llvm::operator/(const ExpressionValue &LeftOperand, 318 const ExpressionValue &RightOperand) { 319 // -A / -B == A / B 320 if (LeftOperand.isNegative() && RightOperand.isNegative()) 321 return LeftOperand.getAbsolute() / RightOperand.getAbsolute(); 322 323 // Check for divide by zero. 324 if (RightOperand == ExpressionValue(0)) 325 return make_error<OverflowError>(); 326 327 // Result will be negative and can underflow. 328 if (LeftOperand.isNegative() || RightOperand.isNegative()) 329 return ExpressionValue(0) - 330 cantFail(LeftOperand.getAbsolute() / RightOperand.getAbsolute()); 331 332 uint64_t LeftValue = cantFail(LeftOperand.getUnsignedValue()); 333 uint64_t RightValue = cantFail(RightOperand.getUnsignedValue()); 334 return ExpressionValue(LeftValue / RightValue); 335 } 336 337 Expected<ExpressionValue> llvm::max(const ExpressionValue &LeftOperand, 338 const ExpressionValue &RightOperand) { 339 if (LeftOperand.isNegative() && RightOperand.isNegative()) { 340 int64_t LeftValue = cantFail(LeftOperand.getSignedValue()); 341 int64_t RightValue = cantFail(RightOperand.getSignedValue()); 342 return ExpressionValue(std::max(LeftValue, RightValue)); 343 } 344 345 if (!LeftOperand.isNegative() && !RightOperand.isNegative()) { 346 uint64_t LeftValue = cantFail(LeftOperand.getUnsignedValue()); 347 uint64_t RightValue = cantFail(RightOperand.getUnsignedValue()); 348 return ExpressionValue(std::max(LeftValue, RightValue)); 349 } 350 351 if (LeftOperand.isNegative()) 352 return RightOperand; 353 354 return LeftOperand; 355 } 356 357 Expected<ExpressionValue> llvm::min(const ExpressionValue &LeftOperand, 358 const ExpressionValue &RightOperand) { 359 if (cantFail(max(LeftOperand, RightOperand)) == LeftOperand) 360 return RightOperand; 361 362 return LeftOperand; 363 } 364 365 Expected<ExpressionValue> NumericVariableUse::eval() const { 366 Optional<ExpressionValue> Value = Variable->getValue(); 367 if (Value) 368 return *Value; 369 370 return make_error<UndefVarError>(getExpressionStr()); 371 } 372 373 Expected<ExpressionValue> BinaryOperation::eval() const { 374 Expected<ExpressionValue> LeftOp = LeftOperand->eval(); 375 Expected<ExpressionValue> RightOp = RightOperand->eval(); 376 377 // Bubble up any error (e.g. undefined variables) in the recursive 378 // evaluation. 379 if (!LeftOp || !RightOp) { 380 Error Err = Error::success(); 381 if (!LeftOp) 382 Err = joinErrors(std::move(Err), LeftOp.takeError()); 383 if (!RightOp) 384 Err = joinErrors(std::move(Err), RightOp.takeError()); 385 return std::move(Err); 386 } 387 388 return EvalBinop(*LeftOp, *RightOp); 389 } 390 391 Expected<ExpressionFormat> 392 BinaryOperation::getImplicitFormat(const SourceMgr &SM) const { 393 Expected<ExpressionFormat> LeftFormat = LeftOperand->getImplicitFormat(SM); 394 Expected<ExpressionFormat> RightFormat = RightOperand->getImplicitFormat(SM); 395 if (!LeftFormat || !RightFormat) { 396 Error Err = Error::success(); 397 if (!LeftFormat) 398 Err = joinErrors(std::move(Err), LeftFormat.takeError()); 399 if (!RightFormat) 400 Err = joinErrors(std::move(Err), RightFormat.takeError()); 401 return std::move(Err); 402 } 403 404 if (*LeftFormat != ExpressionFormat::Kind::NoFormat && 405 *RightFormat != ExpressionFormat::Kind::NoFormat && 406 *LeftFormat != *RightFormat) 407 return ErrorDiagnostic::get( 408 SM, getExpressionStr(), 409 "implicit format conflict between '" + LeftOperand->getExpressionStr() + 410 "' (" + LeftFormat->toString() + ") and '" + 411 RightOperand->getExpressionStr() + "' (" + RightFormat->toString() + 412 "), need an explicit format specifier"); 413 414 return *LeftFormat != ExpressionFormat::Kind::NoFormat ? *LeftFormat 415 : *RightFormat; 416 } 417 418 Expected<std::string> NumericSubstitution::getResult() const { 419 assert(ExpressionPointer->getAST() != nullptr && 420 "Substituting empty expression"); 421 Expected<ExpressionValue> EvaluatedValue = 422 ExpressionPointer->getAST()->eval(); 423 if (!EvaluatedValue) 424 return EvaluatedValue.takeError(); 425 ExpressionFormat Format = ExpressionPointer->getFormat(); 426 return Format.getMatchingString(*EvaluatedValue); 427 } 428 429 Expected<std::string> StringSubstitution::getResult() const { 430 // Look up the value and escape it so that we can put it into the regex. 431 Expected<StringRef> VarVal = Context->getPatternVarValue(FromStr); 432 if (!VarVal) 433 return VarVal.takeError(); 434 return Regex::escape(*VarVal); 435 } 436 437 bool Pattern::isValidVarNameStart(char C) { return C == '_' || isAlpha(C); } 438 439 Expected<Pattern::VariableProperties> 440 Pattern::parseVariable(StringRef &Str, const SourceMgr &SM) { 441 if (Str.empty()) 442 return ErrorDiagnostic::get(SM, Str, "empty variable name"); 443 444 size_t I = 0; 445 bool IsPseudo = Str[0] == '@'; 446 447 // Global vars start with '$'. 448 if (Str[0] == '$' || IsPseudo) 449 ++I; 450 451 if (!isValidVarNameStart(Str[I++])) 452 return ErrorDiagnostic::get(SM, Str, "invalid variable name"); 453 454 for (size_t E = Str.size(); I != E; ++I) 455 // Variable names are composed of alphanumeric characters and underscores. 456 if (Str[I] != '_' && !isAlnum(Str[I])) 457 break; 458 459 StringRef Name = Str.take_front(I); 460 Str = Str.substr(I); 461 return VariableProperties {Name, IsPseudo}; 462 } 463 464 // StringRef holding all characters considered as horizontal whitespaces by 465 // FileCheck input canonicalization. 466 constexpr StringLiteral SpaceChars = " \t"; 467 468 // Parsing helper function that strips the first character in S and returns it. 469 static char popFront(StringRef &S) { 470 char C = S.front(); 471 S = S.drop_front(); 472 return C; 473 } 474 475 char OverflowError::ID = 0; 476 char UndefVarError::ID = 0; 477 char ErrorDiagnostic::ID = 0; 478 char NotFoundError::ID = 0; 479 char ErrorReported::ID = 0; 480 481 Expected<NumericVariable *> Pattern::parseNumericVariableDefinition( 482 StringRef &Expr, FileCheckPatternContext *Context, 483 Optional<size_t> LineNumber, ExpressionFormat ImplicitFormat, 484 const SourceMgr &SM) { 485 Expected<VariableProperties> ParseVarResult = parseVariable(Expr, SM); 486 if (!ParseVarResult) 487 return ParseVarResult.takeError(); 488 StringRef Name = ParseVarResult->Name; 489 490 if (ParseVarResult->IsPseudo) 491 return ErrorDiagnostic::get( 492 SM, Name, "definition of pseudo numeric variable unsupported"); 493 494 // Detect collisions between string and numeric variables when the latter 495 // is created later than the former. 496 if (Context->DefinedVariableTable.find(Name) != 497 Context->DefinedVariableTable.end()) 498 return ErrorDiagnostic::get( 499 SM, Name, "string variable with name '" + Name + "' already exists"); 500 501 Expr = Expr.ltrim(SpaceChars); 502 if (!Expr.empty()) 503 return ErrorDiagnostic::get( 504 SM, Expr, "unexpected characters after numeric variable name"); 505 506 NumericVariable *DefinedNumericVariable; 507 auto VarTableIter = Context->GlobalNumericVariableTable.find(Name); 508 if (VarTableIter != Context->GlobalNumericVariableTable.end()) { 509 DefinedNumericVariable = VarTableIter->second; 510 if (DefinedNumericVariable->getImplicitFormat() != ImplicitFormat) 511 return ErrorDiagnostic::get( 512 SM, Expr, "format different from previous variable definition"); 513 } else 514 DefinedNumericVariable = 515 Context->makeNumericVariable(Name, ImplicitFormat, LineNumber); 516 517 return DefinedNumericVariable; 518 } 519 520 Expected<std::unique_ptr<NumericVariableUse>> Pattern::parseNumericVariableUse( 521 StringRef Name, bool IsPseudo, Optional<size_t> LineNumber, 522 FileCheckPatternContext *Context, const SourceMgr &SM) { 523 if (IsPseudo && !Name.equals("@LINE")) 524 return ErrorDiagnostic::get( 525 SM, Name, "invalid pseudo numeric variable '" + Name + "'"); 526 527 // Numeric variable definitions and uses are parsed in the order in which 528 // they appear in the CHECK patterns. For each definition, the pointer to the 529 // class instance of the corresponding numeric variable definition is stored 530 // in GlobalNumericVariableTable in parsePattern. Therefore, if the pointer 531 // we get below is null, it means no such variable was defined before. When 532 // that happens, we create a dummy variable so that parsing can continue. All 533 // uses of undefined variables, whether string or numeric, are then diagnosed 534 // in printSubstitutions() after failing to match. 535 auto VarTableIter = Context->GlobalNumericVariableTable.find(Name); 536 NumericVariable *NumericVariable; 537 if (VarTableIter != Context->GlobalNumericVariableTable.end()) 538 NumericVariable = VarTableIter->second; 539 else { 540 NumericVariable = Context->makeNumericVariable( 541 Name, ExpressionFormat(ExpressionFormat::Kind::Unsigned)); 542 Context->GlobalNumericVariableTable[Name] = NumericVariable; 543 } 544 545 Optional<size_t> DefLineNumber = NumericVariable->getDefLineNumber(); 546 if (DefLineNumber && LineNumber && *DefLineNumber == *LineNumber) 547 return ErrorDiagnostic::get( 548 SM, Name, 549 "numeric variable '" + Name + 550 "' defined earlier in the same CHECK directive"); 551 552 return std::make_unique<NumericVariableUse>(Name, NumericVariable); 553 } 554 555 Expected<std::unique_ptr<ExpressionAST>> Pattern::parseNumericOperand( 556 StringRef &Expr, AllowedOperand AO, bool MaybeInvalidConstraint, 557 Optional<size_t> LineNumber, FileCheckPatternContext *Context, 558 const SourceMgr &SM) { 559 if (Expr.startswith("(")) { 560 if (AO != AllowedOperand::Any) 561 return ErrorDiagnostic::get( 562 SM, Expr, "parenthesized expression not permitted here"); 563 return parseParenExpr(Expr, LineNumber, Context, SM); 564 } 565 566 if (AO == AllowedOperand::LineVar || AO == AllowedOperand::Any) { 567 // Try to parse as a numeric variable use. 568 Expected<Pattern::VariableProperties> ParseVarResult = 569 parseVariable(Expr, SM); 570 if (ParseVarResult) { 571 // Try to parse a function call. 572 if (Expr.ltrim(SpaceChars).startswith("(")) { 573 if (AO != AllowedOperand::Any) 574 return ErrorDiagnostic::get(SM, ParseVarResult->Name, 575 "unexpected function call"); 576 577 return parseCallExpr(Expr, ParseVarResult->Name, LineNumber, Context, 578 SM); 579 } 580 581 return parseNumericVariableUse(ParseVarResult->Name, 582 ParseVarResult->IsPseudo, LineNumber, 583 Context, SM); 584 } 585 586 if (AO == AllowedOperand::LineVar) 587 return ParseVarResult.takeError(); 588 // Ignore the error and retry parsing as a literal. 589 consumeError(ParseVarResult.takeError()); 590 } 591 592 // Otherwise, parse it as a literal. 593 int64_t SignedLiteralValue; 594 uint64_t UnsignedLiteralValue; 595 StringRef SaveExpr = Expr; 596 // Accept both signed and unsigned literal, default to signed literal. 597 if (!Expr.consumeInteger((AO == AllowedOperand::LegacyLiteral) ? 10 : 0, 598 UnsignedLiteralValue)) 599 return std::make_unique<ExpressionLiteral>(SaveExpr.drop_back(Expr.size()), 600 UnsignedLiteralValue); 601 Expr = SaveExpr; 602 if (AO == AllowedOperand::Any && !Expr.consumeInteger(0, SignedLiteralValue)) 603 return std::make_unique<ExpressionLiteral>(SaveExpr.drop_back(Expr.size()), 604 SignedLiteralValue); 605 606 return ErrorDiagnostic::get( 607 SM, Expr, 608 Twine("invalid ") + 609 (MaybeInvalidConstraint ? "matching constraint or " : "") + 610 "operand format"); 611 } 612 613 Expected<std::unique_ptr<ExpressionAST>> 614 Pattern::parseParenExpr(StringRef &Expr, Optional<size_t> LineNumber, 615 FileCheckPatternContext *Context, const SourceMgr &SM) { 616 Expr = Expr.ltrim(SpaceChars); 617 assert(Expr.startswith("(")); 618 619 // Parse right operand. 620 Expr.consume_front("("); 621 Expr = Expr.ltrim(SpaceChars); 622 if (Expr.empty()) 623 return ErrorDiagnostic::get(SM, Expr, "missing operand in expression"); 624 625 // Note: parseNumericOperand handles nested opening parentheses. 626 Expected<std::unique_ptr<ExpressionAST>> SubExprResult = parseNumericOperand( 627 Expr, AllowedOperand::Any, /*MaybeInvalidConstraint=*/false, LineNumber, 628 Context, SM); 629 Expr = Expr.ltrim(SpaceChars); 630 while (SubExprResult && !Expr.empty() && !Expr.startswith(")")) { 631 StringRef OrigExpr = Expr; 632 SubExprResult = parseBinop(OrigExpr, Expr, std::move(*SubExprResult), false, 633 LineNumber, Context, SM); 634 Expr = Expr.ltrim(SpaceChars); 635 } 636 if (!SubExprResult) 637 return SubExprResult; 638 639 if (!Expr.consume_front(")")) { 640 return ErrorDiagnostic::get(SM, Expr, 641 "missing ')' at end of nested expression"); 642 } 643 return SubExprResult; 644 } 645 646 Expected<std::unique_ptr<ExpressionAST>> 647 Pattern::parseBinop(StringRef Expr, StringRef &RemainingExpr, 648 std::unique_ptr<ExpressionAST> LeftOp, 649 bool IsLegacyLineExpr, Optional<size_t> LineNumber, 650 FileCheckPatternContext *Context, const SourceMgr &SM) { 651 RemainingExpr = RemainingExpr.ltrim(SpaceChars); 652 if (RemainingExpr.empty()) 653 return std::move(LeftOp); 654 655 // Check if this is a supported operation and select a function to perform 656 // it. 657 SMLoc OpLoc = SMLoc::getFromPointer(RemainingExpr.data()); 658 char Operator = popFront(RemainingExpr); 659 binop_eval_t EvalBinop; 660 switch (Operator) { 661 case '+': 662 EvalBinop = operator+; 663 break; 664 case '-': 665 EvalBinop = operator-; 666 break; 667 default: 668 return ErrorDiagnostic::get( 669 SM, OpLoc, Twine("unsupported operation '") + Twine(Operator) + "'"); 670 } 671 672 // Parse right operand. 673 RemainingExpr = RemainingExpr.ltrim(SpaceChars); 674 if (RemainingExpr.empty()) 675 return ErrorDiagnostic::get(SM, RemainingExpr, 676 "missing operand in expression"); 677 // The second operand in a legacy @LINE expression is always a literal. 678 AllowedOperand AO = 679 IsLegacyLineExpr ? AllowedOperand::LegacyLiteral : AllowedOperand::Any; 680 Expected<std::unique_ptr<ExpressionAST>> RightOpResult = 681 parseNumericOperand(RemainingExpr, AO, /*MaybeInvalidConstraint=*/false, 682 LineNumber, Context, SM); 683 if (!RightOpResult) 684 return RightOpResult; 685 686 Expr = Expr.drop_back(RemainingExpr.size()); 687 return std::make_unique<BinaryOperation>(Expr, EvalBinop, std::move(LeftOp), 688 std::move(*RightOpResult)); 689 } 690 691 Expected<std::unique_ptr<ExpressionAST>> 692 Pattern::parseCallExpr(StringRef &Expr, StringRef FuncName, 693 Optional<size_t> LineNumber, 694 FileCheckPatternContext *Context, const SourceMgr &SM) { 695 Expr = Expr.ltrim(SpaceChars); 696 assert(Expr.startswith("(")); 697 698 auto OptFunc = StringSwitch<Optional<binop_eval_t>>(FuncName) 699 .Case("add", operator+) 700 .Case("div", operator/) 701 .Case("max", max) 702 .Case("min", min) 703 .Case("mul", operator*) 704 .Case("sub", operator-) 705 .Default(None); 706 707 if (!OptFunc) 708 return ErrorDiagnostic::get( 709 SM, FuncName, Twine("call to undefined function '") + FuncName + "'"); 710 711 Expr.consume_front("("); 712 Expr = Expr.ltrim(SpaceChars); 713 714 // Parse call arguments, which are comma separated. 715 SmallVector<std::unique_ptr<ExpressionAST>, 4> Args; 716 while (!Expr.empty() && !Expr.startswith(")")) { 717 if (Expr.startswith(",")) 718 return ErrorDiagnostic::get(SM, Expr, "missing argument"); 719 720 // Parse the argument, which is an arbitary expression. 721 StringRef OuterBinOpExpr = Expr; 722 Expected<std::unique_ptr<ExpressionAST>> Arg = parseNumericOperand( 723 Expr, AllowedOperand::Any, /*MaybeInvalidConstraint=*/false, LineNumber, 724 Context, SM); 725 while (Arg && !Expr.empty()) { 726 Expr = Expr.ltrim(SpaceChars); 727 // Have we reached an argument terminator? 728 if (Expr.startswith(",") || Expr.startswith(")")) 729 break; 730 731 // Arg = Arg <op> <expr> 732 Arg = parseBinop(OuterBinOpExpr, Expr, std::move(*Arg), false, LineNumber, 733 Context, SM); 734 } 735 736 // Prefer an expression error over a generic invalid argument message. 737 if (!Arg) 738 return Arg.takeError(); 739 Args.push_back(std::move(*Arg)); 740 741 // Have we parsed all available arguments? 742 Expr = Expr.ltrim(SpaceChars); 743 if (!Expr.consume_front(",")) 744 break; 745 746 Expr = Expr.ltrim(SpaceChars); 747 if (Expr.startswith(")")) 748 return ErrorDiagnostic::get(SM, Expr, "missing argument"); 749 } 750 751 if (!Expr.consume_front(")")) 752 return ErrorDiagnostic::get(SM, Expr, 753 "missing ')' at end of call expression"); 754 755 const unsigned NumArgs = Args.size(); 756 if (NumArgs == 2) 757 return std::make_unique<BinaryOperation>(Expr, *OptFunc, std::move(Args[0]), 758 std::move(Args[1])); 759 760 // TODO: Support more than binop_eval_t. 761 return ErrorDiagnostic::get(SM, FuncName, 762 Twine("function '") + FuncName + 763 Twine("' takes 2 arguments but ") + 764 Twine(NumArgs) + " given"); 765 } 766 767 Expected<std::unique_ptr<Expression>> Pattern::parseNumericSubstitutionBlock( 768 StringRef Expr, Optional<NumericVariable *> &DefinedNumericVariable, 769 bool IsLegacyLineExpr, Optional<size_t> LineNumber, 770 FileCheckPatternContext *Context, const SourceMgr &SM) { 771 std::unique_ptr<ExpressionAST> ExpressionASTPointer = nullptr; 772 StringRef DefExpr = StringRef(); 773 DefinedNumericVariable = None; 774 ExpressionFormat ExplicitFormat = ExpressionFormat(); 775 unsigned Precision = 0; 776 777 // Parse format specifier (NOTE: ',' is also an argument seperator). 778 size_t FormatSpecEnd = Expr.find(','); 779 size_t FunctionStart = Expr.find('('); 780 if (FormatSpecEnd != StringRef::npos && FormatSpecEnd < FunctionStart) { 781 StringRef FormatExpr = Expr.take_front(FormatSpecEnd); 782 Expr = Expr.drop_front(FormatSpecEnd + 1); 783 FormatExpr = FormatExpr.trim(SpaceChars); 784 if (!FormatExpr.consume_front("%")) 785 return ErrorDiagnostic::get( 786 SM, FormatExpr, 787 "invalid matching format specification in expression"); 788 789 // Parse alternate form flag. 790 SMLoc AlternateFormFlagLoc = SMLoc::getFromPointer(FormatExpr.data()); 791 bool AlternateForm = FormatExpr.consume_front("#"); 792 793 // Parse precision. 794 if (FormatExpr.consume_front(".")) { 795 if (FormatExpr.consumeInteger(10, Precision)) 796 return ErrorDiagnostic::get(SM, FormatExpr, 797 "invalid precision in format specifier"); 798 } 799 800 if (!FormatExpr.empty()) { 801 // Check for unknown matching format specifier and set matching format in 802 // class instance representing this expression. 803 SMLoc FmtLoc = SMLoc::getFromPointer(FormatExpr.data()); 804 switch (popFront(FormatExpr)) { 805 case 'u': 806 ExplicitFormat = 807 ExpressionFormat(ExpressionFormat::Kind::Unsigned, Precision); 808 break; 809 case 'd': 810 ExplicitFormat = 811 ExpressionFormat(ExpressionFormat::Kind::Signed, Precision); 812 break; 813 case 'x': 814 ExplicitFormat = ExpressionFormat(ExpressionFormat::Kind::HexLower, 815 Precision, AlternateForm); 816 break; 817 case 'X': 818 ExplicitFormat = ExpressionFormat(ExpressionFormat::Kind::HexUpper, 819 Precision, AlternateForm); 820 break; 821 default: 822 return ErrorDiagnostic::get(SM, FmtLoc, 823 "invalid format specifier in expression"); 824 } 825 } 826 827 if (AlternateForm && ExplicitFormat != ExpressionFormat::Kind::HexLower && 828 ExplicitFormat != ExpressionFormat::Kind::HexUpper) 829 return ErrorDiagnostic::get( 830 SM, AlternateFormFlagLoc, 831 "alternate form only supported for hex values"); 832 833 FormatExpr = FormatExpr.ltrim(SpaceChars); 834 if (!FormatExpr.empty()) 835 return ErrorDiagnostic::get( 836 SM, FormatExpr, 837 "invalid matching format specification in expression"); 838 } 839 840 // Save variable definition expression if any. 841 size_t DefEnd = Expr.find(':'); 842 if (DefEnd != StringRef::npos) { 843 DefExpr = Expr.substr(0, DefEnd); 844 Expr = Expr.substr(DefEnd + 1); 845 } 846 847 // Parse matching constraint. 848 Expr = Expr.ltrim(SpaceChars); 849 bool HasParsedValidConstraint = false; 850 if (Expr.consume_front("==")) 851 HasParsedValidConstraint = true; 852 853 // Parse the expression itself. 854 Expr = Expr.ltrim(SpaceChars); 855 if (Expr.empty()) { 856 if (HasParsedValidConstraint) 857 return ErrorDiagnostic::get( 858 SM, Expr, "empty numeric expression should not have a constraint"); 859 } else { 860 Expr = Expr.rtrim(SpaceChars); 861 StringRef OuterBinOpExpr = Expr; 862 // The first operand in a legacy @LINE expression is always the @LINE 863 // pseudo variable. 864 AllowedOperand AO = 865 IsLegacyLineExpr ? AllowedOperand::LineVar : AllowedOperand::Any; 866 Expected<std::unique_ptr<ExpressionAST>> ParseResult = parseNumericOperand( 867 Expr, AO, !HasParsedValidConstraint, LineNumber, Context, SM); 868 while (ParseResult && !Expr.empty()) { 869 ParseResult = parseBinop(OuterBinOpExpr, Expr, std::move(*ParseResult), 870 IsLegacyLineExpr, LineNumber, Context, SM); 871 // Legacy @LINE expressions only allow 2 operands. 872 if (ParseResult && IsLegacyLineExpr && !Expr.empty()) 873 return ErrorDiagnostic::get( 874 SM, Expr, 875 "unexpected characters at end of expression '" + Expr + "'"); 876 } 877 if (!ParseResult) 878 return ParseResult.takeError(); 879 ExpressionASTPointer = std::move(*ParseResult); 880 } 881 882 // Select format of the expression, i.e. (i) its explicit format, if any, 883 // otherwise (ii) its implicit format, if any, otherwise (iii) the default 884 // format (unsigned). Error out in case of conflicting implicit format 885 // without explicit format. 886 ExpressionFormat Format; 887 if (ExplicitFormat) 888 Format = ExplicitFormat; 889 else if (ExpressionASTPointer) { 890 Expected<ExpressionFormat> ImplicitFormat = 891 ExpressionASTPointer->getImplicitFormat(SM); 892 if (!ImplicitFormat) 893 return ImplicitFormat.takeError(); 894 Format = *ImplicitFormat; 895 } 896 if (!Format) 897 Format = ExpressionFormat(ExpressionFormat::Kind::Unsigned, Precision); 898 899 std::unique_ptr<Expression> ExpressionPointer = 900 std::make_unique<Expression>(std::move(ExpressionASTPointer), Format); 901 902 // Parse the numeric variable definition. 903 if (DefEnd != StringRef::npos) { 904 DefExpr = DefExpr.ltrim(SpaceChars); 905 Expected<NumericVariable *> ParseResult = parseNumericVariableDefinition( 906 DefExpr, Context, LineNumber, ExpressionPointer->getFormat(), SM); 907 908 if (!ParseResult) 909 return ParseResult.takeError(); 910 DefinedNumericVariable = *ParseResult; 911 } 912 913 return std::move(ExpressionPointer); 914 } 915 916 bool Pattern::parsePattern(StringRef PatternStr, StringRef Prefix, 917 SourceMgr &SM, const FileCheckRequest &Req) { 918 bool MatchFullLinesHere = Req.MatchFullLines && CheckTy != Check::CheckNot; 919 IgnoreCase = Req.IgnoreCase; 920 921 PatternLoc = SMLoc::getFromPointer(PatternStr.data()); 922 923 if (!(Req.NoCanonicalizeWhiteSpace && Req.MatchFullLines)) 924 // Ignore trailing whitespace. 925 while (!PatternStr.empty() && 926 (PatternStr.back() == ' ' || PatternStr.back() == '\t')) 927 PatternStr = PatternStr.substr(0, PatternStr.size() - 1); 928 929 // Check that there is something on the line. 930 if (PatternStr.empty() && CheckTy != Check::CheckEmpty) { 931 SM.PrintMessage(PatternLoc, SourceMgr::DK_Error, 932 "found empty check string with prefix '" + Prefix + ":'"); 933 return true; 934 } 935 936 if (!PatternStr.empty() && CheckTy == Check::CheckEmpty) { 937 SM.PrintMessage( 938 PatternLoc, SourceMgr::DK_Error, 939 "found non-empty check string for empty check with prefix '" + Prefix + 940 ":'"); 941 return true; 942 } 943 944 if (CheckTy == Check::CheckEmpty) { 945 RegExStr = "(\n$)"; 946 return false; 947 } 948 949 // If literal check, set fixed string. 950 if (CheckTy.isLiteralMatch()) { 951 FixedStr = PatternStr; 952 return false; 953 } 954 955 // Check to see if this is a fixed string, or if it has regex pieces. 956 if (!MatchFullLinesHere && 957 (PatternStr.size() < 2 || (PatternStr.find("{{") == StringRef::npos && 958 PatternStr.find("[[") == StringRef::npos))) { 959 FixedStr = PatternStr; 960 return false; 961 } 962 963 if (MatchFullLinesHere) { 964 RegExStr += '^'; 965 if (!Req.NoCanonicalizeWhiteSpace) 966 RegExStr += " *"; 967 } 968 969 // Paren value #0 is for the fully matched string. Any new parenthesized 970 // values add from there. 971 unsigned CurParen = 1; 972 973 // Otherwise, there is at least one regex piece. Build up the regex pattern 974 // by escaping scary characters in fixed strings, building up one big regex. 975 while (!PatternStr.empty()) { 976 // RegEx matches. 977 if (PatternStr.startswith("{{")) { 978 // This is the start of a regex match. Scan for the }}. 979 size_t End = PatternStr.find("}}"); 980 if (End == StringRef::npos) { 981 SM.PrintMessage(SMLoc::getFromPointer(PatternStr.data()), 982 SourceMgr::DK_Error, 983 "found start of regex string with no end '}}'"); 984 return true; 985 } 986 987 // Enclose {{}} patterns in parens just like [[]] even though we're not 988 // capturing the result for any purpose. This is required in case the 989 // expression contains an alternation like: CHECK: abc{{x|z}}def. We 990 // want this to turn into: "abc(x|z)def" not "abcx|zdef". 991 RegExStr += '('; 992 ++CurParen; 993 994 if (AddRegExToRegEx(PatternStr.substr(2, End - 2), CurParen, SM)) 995 return true; 996 RegExStr += ')'; 997 998 PatternStr = PatternStr.substr(End + 2); 999 continue; 1000 } 1001 1002 // String and numeric substitution blocks. Pattern substitution blocks come 1003 // in two forms: [[foo:.*]] and [[foo]]. The former matches .* (or some 1004 // other regex) and assigns it to the string variable 'foo'. The latter 1005 // substitutes foo's value. Numeric substitution blocks recognize the same 1006 // form as string ones, but start with a '#' sign after the double 1007 // brackets. They also accept a combined form which sets a numeric variable 1008 // to the evaluation of an expression. Both string and numeric variable 1009 // names must satisfy the regular expression "[a-zA-Z_][0-9a-zA-Z_]*" to be 1010 // valid, as this helps catch some common errors. 1011 if (PatternStr.startswith("[[")) { 1012 StringRef UnparsedPatternStr = PatternStr.substr(2); 1013 // Find the closing bracket pair ending the match. End is going to be an 1014 // offset relative to the beginning of the match string. 1015 size_t End = FindRegexVarEnd(UnparsedPatternStr, SM); 1016 StringRef MatchStr = UnparsedPatternStr.substr(0, End); 1017 bool IsNumBlock = MatchStr.consume_front("#"); 1018 1019 if (End == StringRef::npos) { 1020 SM.PrintMessage(SMLoc::getFromPointer(PatternStr.data()), 1021 SourceMgr::DK_Error, 1022 "Invalid substitution block, no ]] found"); 1023 return true; 1024 } 1025 // Strip the substitution block we are parsing. End points to the start 1026 // of the "]]" closing the expression so account for it in computing the 1027 // index of the first unparsed character. 1028 PatternStr = UnparsedPatternStr.substr(End + 2); 1029 1030 bool IsDefinition = false; 1031 bool SubstNeeded = false; 1032 // Whether the substitution block is a legacy use of @LINE with string 1033 // substitution block syntax. 1034 bool IsLegacyLineExpr = false; 1035 StringRef DefName; 1036 StringRef SubstStr; 1037 std::string MatchRegexp; 1038 size_t SubstInsertIdx = RegExStr.size(); 1039 1040 // Parse string variable or legacy @LINE expression. 1041 if (!IsNumBlock) { 1042 size_t VarEndIdx = MatchStr.find(':'); 1043 size_t SpacePos = MatchStr.substr(0, VarEndIdx).find_first_of(" \t"); 1044 if (SpacePos != StringRef::npos) { 1045 SM.PrintMessage(SMLoc::getFromPointer(MatchStr.data() + SpacePos), 1046 SourceMgr::DK_Error, "unexpected whitespace"); 1047 return true; 1048 } 1049 1050 // Get the name (e.g. "foo") and verify it is well formed. 1051 StringRef OrigMatchStr = MatchStr; 1052 Expected<Pattern::VariableProperties> ParseVarResult = 1053 parseVariable(MatchStr, SM); 1054 if (!ParseVarResult) { 1055 logAllUnhandledErrors(ParseVarResult.takeError(), errs()); 1056 return true; 1057 } 1058 StringRef Name = ParseVarResult->Name; 1059 bool IsPseudo = ParseVarResult->IsPseudo; 1060 1061 IsDefinition = (VarEndIdx != StringRef::npos); 1062 SubstNeeded = !IsDefinition; 1063 if (IsDefinition) { 1064 if ((IsPseudo || !MatchStr.consume_front(":"))) { 1065 SM.PrintMessage(SMLoc::getFromPointer(Name.data()), 1066 SourceMgr::DK_Error, 1067 "invalid name in string variable definition"); 1068 return true; 1069 } 1070 1071 // Detect collisions between string and numeric variables when the 1072 // former is created later than the latter. 1073 if (Context->GlobalNumericVariableTable.find(Name) != 1074 Context->GlobalNumericVariableTable.end()) { 1075 SM.PrintMessage( 1076 SMLoc::getFromPointer(Name.data()), SourceMgr::DK_Error, 1077 "numeric variable with name '" + Name + "' already exists"); 1078 return true; 1079 } 1080 DefName = Name; 1081 MatchRegexp = MatchStr.str(); 1082 } else { 1083 if (IsPseudo) { 1084 MatchStr = OrigMatchStr; 1085 IsLegacyLineExpr = IsNumBlock = true; 1086 } else 1087 SubstStr = Name; 1088 } 1089 } 1090 1091 // Parse numeric substitution block. 1092 std::unique_ptr<Expression> ExpressionPointer; 1093 Optional<NumericVariable *> DefinedNumericVariable; 1094 if (IsNumBlock) { 1095 Expected<std::unique_ptr<Expression>> ParseResult = 1096 parseNumericSubstitutionBlock(MatchStr, DefinedNumericVariable, 1097 IsLegacyLineExpr, LineNumber, Context, 1098 SM); 1099 if (!ParseResult) { 1100 logAllUnhandledErrors(ParseResult.takeError(), errs()); 1101 return true; 1102 } 1103 ExpressionPointer = std::move(*ParseResult); 1104 SubstNeeded = ExpressionPointer->getAST() != nullptr; 1105 if (DefinedNumericVariable) { 1106 IsDefinition = true; 1107 DefName = (*DefinedNumericVariable)->getName(); 1108 } 1109 if (SubstNeeded) 1110 SubstStr = MatchStr; 1111 else { 1112 ExpressionFormat Format = ExpressionPointer->getFormat(); 1113 MatchRegexp = cantFail(Format.getWildcardRegex()); 1114 } 1115 } 1116 1117 // Handle variable definition: [[<def>:(...)]] and [[#(...)<def>:(...)]]. 1118 if (IsDefinition) { 1119 RegExStr += '('; 1120 ++SubstInsertIdx; 1121 1122 if (IsNumBlock) { 1123 NumericVariableMatch NumericVariableDefinition = { 1124 *DefinedNumericVariable, CurParen}; 1125 NumericVariableDefs[DefName] = NumericVariableDefinition; 1126 // This store is done here rather than in match() to allow 1127 // parseNumericVariableUse() to get the pointer to the class instance 1128 // of the right variable definition corresponding to a given numeric 1129 // variable use. 1130 Context->GlobalNumericVariableTable[DefName] = 1131 *DefinedNumericVariable; 1132 } else { 1133 VariableDefs[DefName] = CurParen; 1134 // Mark string variable as defined to detect collisions between 1135 // string and numeric variables in parseNumericVariableUse() and 1136 // defineCmdlineVariables() when the latter is created later than the 1137 // former. We cannot reuse GlobalVariableTable for this by populating 1138 // it with an empty string since we would then lose the ability to 1139 // detect the use of an undefined variable in match(). 1140 Context->DefinedVariableTable[DefName] = true; 1141 } 1142 1143 ++CurParen; 1144 } 1145 1146 if (!MatchRegexp.empty() && AddRegExToRegEx(MatchRegexp, CurParen, SM)) 1147 return true; 1148 1149 if (IsDefinition) 1150 RegExStr += ')'; 1151 1152 // Handle substitutions: [[foo]] and [[#<foo expr>]]. 1153 if (SubstNeeded) { 1154 // Handle substitution of string variables that were defined earlier on 1155 // the same line by emitting a backreference. Expressions do not 1156 // support substituting a numeric variable defined on the same line. 1157 if (!IsNumBlock && VariableDefs.find(SubstStr) != VariableDefs.end()) { 1158 unsigned CaptureParenGroup = VariableDefs[SubstStr]; 1159 if (CaptureParenGroup < 1 || CaptureParenGroup > 9) { 1160 SM.PrintMessage(SMLoc::getFromPointer(SubstStr.data()), 1161 SourceMgr::DK_Error, 1162 "Can't back-reference more than 9 variables"); 1163 return true; 1164 } 1165 AddBackrefToRegEx(CaptureParenGroup); 1166 } else { 1167 // Handle substitution of string variables ([[<var>]]) defined in 1168 // previous CHECK patterns, and substitution of expressions. 1169 Substitution *Substitution = 1170 IsNumBlock 1171 ? Context->makeNumericSubstitution( 1172 SubstStr, std::move(ExpressionPointer), SubstInsertIdx) 1173 : Context->makeStringSubstitution(SubstStr, SubstInsertIdx); 1174 Substitutions.push_back(Substitution); 1175 } 1176 } 1177 } 1178 1179 // Handle fixed string matches. 1180 // Find the end, which is the start of the next regex. 1181 size_t FixedMatchEnd = PatternStr.find("{{"); 1182 FixedMatchEnd = std::min(FixedMatchEnd, PatternStr.find("[[")); 1183 RegExStr += Regex::escape(PatternStr.substr(0, FixedMatchEnd)); 1184 PatternStr = PatternStr.substr(FixedMatchEnd); 1185 } 1186 1187 if (MatchFullLinesHere) { 1188 if (!Req.NoCanonicalizeWhiteSpace) 1189 RegExStr += " *"; 1190 RegExStr += '$'; 1191 } 1192 1193 return false; 1194 } 1195 1196 bool Pattern::AddRegExToRegEx(StringRef RS, unsigned &CurParen, SourceMgr &SM) { 1197 Regex R(RS); 1198 std::string Error; 1199 if (!R.isValid(Error)) { 1200 SM.PrintMessage(SMLoc::getFromPointer(RS.data()), SourceMgr::DK_Error, 1201 "invalid regex: " + Error); 1202 return true; 1203 } 1204 1205 RegExStr += RS.str(); 1206 CurParen += R.getNumMatches(); 1207 return false; 1208 } 1209 1210 void Pattern::AddBackrefToRegEx(unsigned BackrefNum) { 1211 assert(BackrefNum >= 1 && BackrefNum <= 9 && "Invalid backref number"); 1212 std::string Backref = std::string("\\") + std::string(1, '0' + BackrefNum); 1213 RegExStr += Backref; 1214 } 1215 1216 Pattern::MatchResult Pattern::match(StringRef Buffer, 1217 const SourceMgr &SM) const { 1218 // If this is the EOF pattern, match it immediately. 1219 if (CheckTy == Check::CheckEOF) 1220 return MatchResult(Buffer.size(), 0, Error::success()); 1221 1222 // If this is a fixed string pattern, just match it now. 1223 if (!FixedStr.empty()) { 1224 size_t Pos = 1225 IgnoreCase ? Buffer.find_lower(FixedStr) : Buffer.find(FixedStr); 1226 if (Pos == StringRef::npos) 1227 return make_error<NotFoundError>(); 1228 return MatchResult(Pos, /*MatchLen=*/FixedStr.size(), Error::success()); 1229 } 1230 1231 // Regex match. 1232 1233 // If there are substitutions, we need to create a temporary string with the 1234 // actual value. 1235 StringRef RegExToMatch = RegExStr; 1236 std::string TmpStr; 1237 if (!Substitutions.empty()) { 1238 TmpStr = RegExStr; 1239 if (LineNumber) 1240 Context->LineVariable->setValue(ExpressionValue(*LineNumber)); 1241 1242 size_t InsertOffset = 0; 1243 // Substitute all string variables and expressions whose values are only 1244 // now known. Use of string variables defined on the same line are handled 1245 // by back-references. 1246 for (const auto &Substitution : Substitutions) { 1247 // Substitute and check for failure (e.g. use of undefined variable). 1248 Expected<std::string> Value = Substitution->getResult(); 1249 if (!Value) { 1250 // Convert to an ErrorDiagnostic to get location information. This is 1251 // done here rather than printMatch/printNoMatch since now we know which 1252 // substitution block caused the overflow. 1253 Error Err = 1254 handleErrors(Value.takeError(), [&](const OverflowError &E) { 1255 return ErrorDiagnostic::get(SM, Substitution->getFromString(), 1256 "unable to substitute variable or " 1257 "numeric expression: overflow error"); 1258 }); 1259 return std::move(Err); 1260 } 1261 1262 // Plop it into the regex at the adjusted offset. 1263 TmpStr.insert(TmpStr.begin() + Substitution->getIndex() + InsertOffset, 1264 Value->begin(), Value->end()); 1265 InsertOffset += Value->size(); 1266 } 1267 1268 // Match the newly constructed regex. 1269 RegExToMatch = TmpStr; 1270 } 1271 1272 SmallVector<StringRef, 4> MatchInfo; 1273 unsigned int Flags = Regex::Newline; 1274 if (IgnoreCase) 1275 Flags |= Regex::IgnoreCase; 1276 if (!Regex(RegExToMatch, Flags).match(Buffer, &MatchInfo)) 1277 return make_error<NotFoundError>(); 1278 1279 // Successful regex match. 1280 assert(!MatchInfo.empty() && "Didn't get any match"); 1281 StringRef FullMatch = MatchInfo[0]; 1282 1283 // If this defines any string variables, remember their values. 1284 for (const auto &VariableDef : VariableDefs) { 1285 assert(VariableDef.second < MatchInfo.size() && "Internal paren error"); 1286 Context->GlobalVariableTable[VariableDef.first] = 1287 MatchInfo[VariableDef.second]; 1288 } 1289 1290 // Like CHECK-NEXT, CHECK-EMPTY's match range is considered to start after 1291 // the required preceding newline, which is consumed by the pattern in the 1292 // case of CHECK-EMPTY but not CHECK-NEXT. 1293 size_t MatchStartSkip = CheckTy == Check::CheckEmpty; 1294 Match TheMatch; 1295 TheMatch.Pos = FullMatch.data() - Buffer.data() + MatchStartSkip; 1296 TheMatch.Len = FullMatch.size() - MatchStartSkip; 1297 1298 // If this defines any numeric variables, remember their values. 1299 for (const auto &NumericVariableDef : NumericVariableDefs) { 1300 const NumericVariableMatch &NumericVariableMatch = 1301 NumericVariableDef.getValue(); 1302 unsigned CaptureParenGroup = NumericVariableMatch.CaptureParenGroup; 1303 assert(CaptureParenGroup < MatchInfo.size() && "Internal paren error"); 1304 NumericVariable *DefinedNumericVariable = 1305 NumericVariableMatch.DefinedNumericVariable; 1306 1307 StringRef MatchedValue = MatchInfo[CaptureParenGroup]; 1308 ExpressionFormat Format = DefinedNumericVariable->getImplicitFormat(); 1309 Expected<ExpressionValue> Value = 1310 Format.valueFromStringRepr(MatchedValue, SM); 1311 if (!Value) 1312 return MatchResult(TheMatch, Value.takeError()); 1313 DefinedNumericVariable->setValue(*Value, MatchedValue); 1314 } 1315 1316 return MatchResult(TheMatch, Error::success()); 1317 } 1318 1319 unsigned Pattern::computeMatchDistance(StringRef Buffer) const { 1320 // Just compute the number of matching characters. For regular expressions, we 1321 // just compare against the regex itself and hope for the best. 1322 // 1323 // FIXME: One easy improvement here is have the regex lib generate a single 1324 // example regular expression which matches, and use that as the example 1325 // string. 1326 StringRef ExampleString(FixedStr); 1327 if (ExampleString.empty()) 1328 ExampleString = RegExStr; 1329 1330 // Only compare up to the first line in the buffer, or the string size. 1331 StringRef BufferPrefix = Buffer.substr(0, ExampleString.size()); 1332 BufferPrefix = BufferPrefix.split('\n').first; 1333 return BufferPrefix.edit_distance(ExampleString); 1334 } 1335 1336 void Pattern::printSubstitutions(const SourceMgr &SM, StringRef Buffer, 1337 SMRange Range, 1338 FileCheckDiag::MatchType MatchTy, 1339 std::vector<FileCheckDiag> *Diags) const { 1340 // Print what we know about substitutions. 1341 if (!Substitutions.empty()) { 1342 for (const auto &Substitution : Substitutions) { 1343 SmallString<256> Msg; 1344 raw_svector_ostream OS(Msg); 1345 Expected<std::string> MatchedValue = Substitution->getResult(); 1346 1347 // Substitution failed or is not known at match time, print the undefined 1348 // variables it uses. 1349 if (!MatchedValue) { 1350 bool UndefSeen = false; 1351 handleAllErrors( 1352 MatchedValue.takeError(), [](const NotFoundError &E) {}, 1353 // Handled in printMatch and printNoMatch(). 1354 [](const ErrorDiagnostic &E) {}, 1355 // Handled in match(). 1356 [](const OverflowError &E) {}, 1357 [&](const UndefVarError &E) { 1358 if (!UndefSeen) { 1359 OS << "uses undefined variable(s):"; 1360 UndefSeen = true; 1361 } 1362 OS << " "; 1363 E.log(OS); 1364 }); 1365 if (!OS.tell()) 1366 continue; 1367 } else { 1368 // Substitution succeeded. Print substituted value. 1369 OS << "with \""; 1370 OS.write_escaped(Substitution->getFromString()) << "\" equal to \""; 1371 OS.write_escaped(*MatchedValue) << "\""; 1372 } 1373 1374 // We report only the start of the match/search range to suggest we are 1375 // reporting the substitutions as set at the start of the match/search. 1376 // Indicating a non-zero-length range might instead seem to imply that the 1377 // substitution matches or was captured from exactly that range. 1378 if (Diags) 1379 Diags->emplace_back(SM, CheckTy, getLoc(), MatchTy, 1380 SMRange(Range.Start, Range.Start), OS.str()); 1381 else 1382 SM.PrintMessage(Range.Start, SourceMgr::DK_Note, OS.str()); 1383 } 1384 } 1385 } 1386 1387 void Pattern::printVariableDefs(const SourceMgr &SM, 1388 FileCheckDiag::MatchType MatchTy, 1389 std::vector<FileCheckDiag> *Diags) const { 1390 if (VariableDefs.empty() && NumericVariableDefs.empty()) 1391 return; 1392 // Build list of variable captures. 1393 struct VarCapture { 1394 StringRef Name; 1395 SMRange Range; 1396 }; 1397 SmallVector<VarCapture, 2> VarCaptures; 1398 for (const auto &VariableDef : VariableDefs) { 1399 VarCapture VC; 1400 VC.Name = VariableDef.first; 1401 StringRef Value = Context->GlobalVariableTable[VC.Name]; 1402 SMLoc Start = SMLoc::getFromPointer(Value.data()); 1403 SMLoc End = SMLoc::getFromPointer(Value.data() + Value.size()); 1404 VC.Range = SMRange(Start, End); 1405 VarCaptures.push_back(VC); 1406 } 1407 for (const auto &VariableDef : NumericVariableDefs) { 1408 VarCapture VC; 1409 VC.Name = VariableDef.getKey(); 1410 Optional<StringRef> StrValue = 1411 VariableDef.getValue().DefinedNumericVariable->getStringValue(); 1412 if (!StrValue) 1413 continue; 1414 SMLoc Start = SMLoc::getFromPointer(StrValue->data()); 1415 SMLoc End = SMLoc::getFromPointer(StrValue->data() + StrValue->size()); 1416 VC.Range = SMRange(Start, End); 1417 VarCaptures.push_back(VC); 1418 } 1419 // Sort variable captures by the order in which they matched the input. 1420 // Ranges shouldn't be overlapping, so we can just compare the start. 1421 llvm::sort(VarCaptures, [](const VarCapture &A, const VarCapture &B) { 1422 assert(A.Range.Start != B.Range.Start && 1423 "unexpected overlapping variable captures"); 1424 return A.Range.Start.getPointer() < B.Range.Start.getPointer(); 1425 }); 1426 // Create notes for the sorted captures. 1427 for (const VarCapture &VC : VarCaptures) { 1428 SmallString<256> Msg; 1429 raw_svector_ostream OS(Msg); 1430 OS << "captured var \"" << VC.Name << "\""; 1431 if (Diags) 1432 Diags->emplace_back(SM, CheckTy, getLoc(), MatchTy, VC.Range, OS.str()); 1433 else 1434 SM.PrintMessage(VC.Range.Start, SourceMgr::DK_Note, OS.str(), VC.Range); 1435 } 1436 } 1437 1438 static SMRange ProcessMatchResult(FileCheckDiag::MatchType MatchTy, 1439 const SourceMgr &SM, SMLoc Loc, 1440 Check::FileCheckType CheckTy, 1441 StringRef Buffer, size_t Pos, size_t Len, 1442 std::vector<FileCheckDiag> *Diags, 1443 bool AdjustPrevDiags = false) { 1444 SMLoc Start = SMLoc::getFromPointer(Buffer.data() + Pos); 1445 SMLoc End = SMLoc::getFromPointer(Buffer.data() + Pos + Len); 1446 SMRange Range(Start, End); 1447 if (Diags) { 1448 if (AdjustPrevDiags) { 1449 SMLoc CheckLoc = Diags->rbegin()->CheckLoc; 1450 for (auto I = Diags->rbegin(), E = Diags->rend(); 1451 I != E && I->CheckLoc == CheckLoc; ++I) 1452 I->MatchTy = MatchTy; 1453 } else 1454 Diags->emplace_back(SM, CheckTy, Loc, MatchTy, Range); 1455 } 1456 return Range; 1457 } 1458 1459 void Pattern::printFuzzyMatch(const SourceMgr &SM, StringRef Buffer, 1460 std::vector<FileCheckDiag> *Diags) const { 1461 // Attempt to find the closest/best fuzzy match. Usually an error happens 1462 // because some string in the output didn't exactly match. In these cases, we 1463 // would like to show the user a best guess at what "should have" matched, to 1464 // save them having to actually check the input manually. 1465 size_t NumLinesForward = 0; 1466 size_t Best = StringRef::npos; 1467 double BestQuality = 0; 1468 1469 // Use an arbitrary 4k limit on how far we will search. 1470 for (size_t i = 0, e = std::min(size_t(4096), Buffer.size()); i != e; ++i) { 1471 if (Buffer[i] == '\n') 1472 ++NumLinesForward; 1473 1474 // Patterns have leading whitespace stripped, so skip whitespace when 1475 // looking for something which looks like a pattern. 1476 if (Buffer[i] == ' ' || Buffer[i] == '\t') 1477 continue; 1478 1479 // Compute the "quality" of this match as an arbitrary combination of the 1480 // match distance and the number of lines skipped to get to this match. 1481 unsigned Distance = computeMatchDistance(Buffer.substr(i)); 1482 double Quality = Distance + (NumLinesForward / 100.); 1483 1484 if (Quality < BestQuality || Best == StringRef::npos) { 1485 Best = i; 1486 BestQuality = Quality; 1487 } 1488 } 1489 1490 // Print the "possible intended match here" line if we found something 1491 // reasonable and not equal to what we showed in the "scanning from here" 1492 // line. 1493 if (Best && Best != StringRef::npos && BestQuality < 50) { 1494 SMRange MatchRange = 1495 ProcessMatchResult(FileCheckDiag::MatchFuzzy, SM, getLoc(), 1496 getCheckTy(), Buffer, Best, 0, Diags); 1497 SM.PrintMessage(MatchRange.Start, SourceMgr::DK_Note, 1498 "possible intended match here"); 1499 1500 // FIXME: If we wanted to be really friendly we would show why the match 1501 // failed, as it can be hard to spot simple one character differences. 1502 } 1503 } 1504 1505 Expected<StringRef> 1506 FileCheckPatternContext::getPatternVarValue(StringRef VarName) { 1507 auto VarIter = GlobalVariableTable.find(VarName); 1508 if (VarIter == GlobalVariableTable.end()) 1509 return make_error<UndefVarError>(VarName); 1510 1511 return VarIter->second; 1512 } 1513 1514 template <class... Types> 1515 NumericVariable *FileCheckPatternContext::makeNumericVariable(Types... args) { 1516 NumericVariables.push_back(std::make_unique<NumericVariable>(args...)); 1517 return NumericVariables.back().get(); 1518 } 1519 1520 Substitution * 1521 FileCheckPatternContext::makeStringSubstitution(StringRef VarName, 1522 size_t InsertIdx) { 1523 Substitutions.push_back( 1524 std::make_unique<StringSubstitution>(this, VarName, InsertIdx)); 1525 return Substitutions.back().get(); 1526 } 1527 1528 Substitution *FileCheckPatternContext::makeNumericSubstitution( 1529 StringRef ExpressionStr, std::unique_ptr<Expression> Expression, 1530 size_t InsertIdx) { 1531 Substitutions.push_back(std::make_unique<NumericSubstitution>( 1532 this, ExpressionStr, std::move(Expression), InsertIdx)); 1533 return Substitutions.back().get(); 1534 } 1535 1536 size_t Pattern::FindRegexVarEnd(StringRef Str, SourceMgr &SM) { 1537 // Offset keeps track of the current offset within the input Str 1538 size_t Offset = 0; 1539 // [...] Nesting depth 1540 size_t BracketDepth = 0; 1541 1542 while (!Str.empty()) { 1543 if (Str.startswith("]]") && BracketDepth == 0) 1544 return Offset; 1545 if (Str[0] == '\\') { 1546 // Backslash escapes the next char within regexes, so skip them both. 1547 Str = Str.substr(2); 1548 Offset += 2; 1549 } else { 1550 switch (Str[0]) { 1551 default: 1552 break; 1553 case '[': 1554 BracketDepth++; 1555 break; 1556 case ']': 1557 if (BracketDepth == 0) { 1558 SM.PrintMessage(SMLoc::getFromPointer(Str.data()), 1559 SourceMgr::DK_Error, 1560 "missing closing \"]\" for regex variable"); 1561 exit(1); 1562 } 1563 BracketDepth--; 1564 break; 1565 } 1566 Str = Str.substr(1); 1567 Offset++; 1568 } 1569 } 1570 1571 return StringRef::npos; 1572 } 1573 1574 StringRef FileCheck::CanonicalizeFile(MemoryBuffer &MB, 1575 SmallVectorImpl<char> &OutputBuffer) { 1576 OutputBuffer.reserve(MB.getBufferSize()); 1577 1578 for (const char *Ptr = MB.getBufferStart(), *End = MB.getBufferEnd(); 1579 Ptr != End; ++Ptr) { 1580 // Eliminate trailing dosish \r. 1581 if (Ptr <= End - 2 && Ptr[0] == '\r' && Ptr[1] == '\n') { 1582 continue; 1583 } 1584 1585 // If current char is not a horizontal whitespace or if horizontal 1586 // whitespace canonicalization is disabled, dump it to output as is. 1587 if (Req.NoCanonicalizeWhiteSpace || (*Ptr != ' ' && *Ptr != '\t')) { 1588 OutputBuffer.push_back(*Ptr); 1589 continue; 1590 } 1591 1592 // Otherwise, add one space and advance over neighboring space. 1593 OutputBuffer.push_back(' '); 1594 while (Ptr + 1 != End && (Ptr[1] == ' ' || Ptr[1] == '\t')) 1595 ++Ptr; 1596 } 1597 1598 // Add a null byte and then return all but that byte. 1599 OutputBuffer.push_back('\0'); 1600 return StringRef(OutputBuffer.data(), OutputBuffer.size() - 1); 1601 } 1602 1603 FileCheckDiag::FileCheckDiag(const SourceMgr &SM, 1604 const Check::FileCheckType &CheckTy, 1605 SMLoc CheckLoc, MatchType MatchTy, 1606 SMRange InputRange, StringRef Note) 1607 : CheckTy(CheckTy), CheckLoc(CheckLoc), MatchTy(MatchTy), Note(Note) { 1608 auto Start = SM.getLineAndColumn(InputRange.Start); 1609 auto End = SM.getLineAndColumn(InputRange.End); 1610 InputStartLine = Start.first; 1611 InputStartCol = Start.second; 1612 InputEndLine = End.first; 1613 InputEndCol = End.second; 1614 } 1615 1616 static bool IsPartOfWord(char c) { 1617 return (isAlnum(c) || c == '-' || c == '_'); 1618 } 1619 1620 Check::FileCheckType &Check::FileCheckType::setCount(int C) { 1621 assert(Count > 0 && "zero and negative counts are not supported"); 1622 assert((C == 1 || Kind == CheckPlain) && 1623 "count supported only for plain CHECK directives"); 1624 Count = C; 1625 return *this; 1626 } 1627 1628 std::string Check::FileCheckType::getModifiersDescription() const { 1629 if (Modifiers.none()) 1630 return ""; 1631 std::string Ret; 1632 raw_string_ostream OS(Ret); 1633 OS << '{'; 1634 if (isLiteralMatch()) 1635 OS << "LITERAL"; 1636 OS << '}'; 1637 return OS.str(); 1638 } 1639 1640 std::string Check::FileCheckType::getDescription(StringRef Prefix) const { 1641 // Append directive modifiers. 1642 auto WithModifiers = [this, Prefix](StringRef Str) -> std::string { 1643 return (Prefix + Str + getModifiersDescription()).str(); 1644 }; 1645 1646 switch (Kind) { 1647 case Check::CheckNone: 1648 return "invalid"; 1649 case Check::CheckPlain: 1650 if (Count > 1) 1651 return WithModifiers("-COUNT"); 1652 return WithModifiers(""); 1653 case Check::CheckNext: 1654 return WithModifiers("-NEXT"); 1655 case Check::CheckSame: 1656 return WithModifiers("-SAME"); 1657 case Check::CheckNot: 1658 return WithModifiers("-NOT"); 1659 case Check::CheckDAG: 1660 return WithModifiers("-DAG"); 1661 case Check::CheckLabel: 1662 return WithModifiers("-LABEL"); 1663 case Check::CheckEmpty: 1664 return WithModifiers("-EMPTY"); 1665 case Check::CheckComment: 1666 return std::string(Prefix); 1667 case Check::CheckEOF: 1668 return "implicit EOF"; 1669 case Check::CheckBadNot: 1670 return "bad NOT"; 1671 case Check::CheckBadCount: 1672 return "bad COUNT"; 1673 } 1674 llvm_unreachable("unknown FileCheckType"); 1675 } 1676 1677 static std::pair<Check::FileCheckType, StringRef> 1678 FindCheckType(const FileCheckRequest &Req, StringRef Buffer, StringRef Prefix) { 1679 if (Buffer.size() <= Prefix.size()) 1680 return {Check::CheckNone, StringRef()}; 1681 1682 StringRef Rest = Buffer.drop_front(Prefix.size()); 1683 // Check for comment. 1684 if (llvm::is_contained(Req.CommentPrefixes, Prefix)) { 1685 if (Rest.consume_front(":")) 1686 return {Check::CheckComment, Rest}; 1687 // Ignore a comment prefix if it has a suffix like "-NOT". 1688 return {Check::CheckNone, StringRef()}; 1689 } 1690 1691 auto ConsumeModifiers = [&](Check::FileCheckType Ret) 1692 -> std::pair<Check::FileCheckType, StringRef> { 1693 if (Rest.consume_front(":")) 1694 return {Ret, Rest}; 1695 if (!Rest.consume_front("{")) 1696 return {Check::CheckNone, StringRef()}; 1697 1698 // Parse the modifiers, speparated by commas. 1699 do { 1700 // Allow whitespace in modifiers list. 1701 Rest = Rest.ltrim(); 1702 if (Rest.consume_front("LITERAL")) 1703 Ret.setLiteralMatch(); 1704 else 1705 return {Check::CheckNone, Rest}; 1706 // Allow whitespace in modifiers list. 1707 Rest = Rest.ltrim(); 1708 } while (Rest.consume_front(",")); 1709 if (!Rest.consume_front("}:")) 1710 return {Check::CheckNone, Rest}; 1711 return {Ret, Rest}; 1712 }; 1713 1714 // Verify that the prefix is followed by directive modifiers or a colon. 1715 if (Rest.consume_front(":")) 1716 return {Check::CheckPlain, Rest}; 1717 if (Rest.front() == '{') 1718 return ConsumeModifiers(Check::CheckPlain); 1719 1720 if (!Rest.consume_front("-")) 1721 return {Check::CheckNone, StringRef()}; 1722 1723 if (Rest.consume_front("COUNT-")) { 1724 int64_t Count; 1725 if (Rest.consumeInteger(10, Count)) 1726 // Error happened in parsing integer. 1727 return {Check::CheckBadCount, Rest}; 1728 if (Count <= 0 || Count > INT32_MAX) 1729 return {Check::CheckBadCount, Rest}; 1730 if (Rest.front() != ':' && Rest.front() != '{') 1731 return {Check::CheckBadCount, Rest}; 1732 return ConsumeModifiers( 1733 Check::FileCheckType(Check::CheckPlain).setCount(Count)); 1734 } 1735 1736 // You can't combine -NOT with another suffix. 1737 if (Rest.startswith("DAG-NOT:") || Rest.startswith("NOT-DAG:") || 1738 Rest.startswith("NEXT-NOT:") || Rest.startswith("NOT-NEXT:") || 1739 Rest.startswith("SAME-NOT:") || Rest.startswith("NOT-SAME:") || 1740 Rest.startswith("EMPTY-NOT:") || Rest.startswith("NOT-EMPTY:")) 1741 return {Check::CheckBadNot, Rest}; 1742 1743 if (Rest.consume_front("NEXT")) 1744 return ConsumeModifiers(Check::CheckNext); 1745 1746 if (Rest.consume_front("SAME")) 1747 return ConsumeModifiers(Check::CheckSame); 1748 1749 if (Rest.consume_front("NOT")) 1750 return ConsumeModifiers(Check::CheckNot); 1751 1752 if (Rest.consume_front("DAG")) 1753 return ConsumeModifiers(Check::CheckDAG); 1754 1755 if (Rest.consume_front("LABEL")) 1756 return ConsumeModifiers(Check::CheckLabel); 1757 1758 if (Rest.consume_front("EMPTY")) 1759 return ConsumeModifiers(Check::CheckEmpty); 1760 1761 return {Check::CheckNone, Rest}; 1762 } 1763 1764 // From the given position, find the next character after the word. 1765 static size_t SkipWord(StringRef Str, size_t Loc) { 1766 while (Loc < Str.size() && IsPartOfWord(Str[Loc])) 1767 ++Loc; 1768 return Loc; 1769 } 1770 1771 /// Searches the buffer for the first prefix in the prefix regular expression. 1772 /// 1773 /// This searches the buffer using the provided regular expression, however it 1774 /// enforces constraints beyond that: 1775 /// 1) The found prefix must not be a suffix of something that looks like 1776 /// a valid prefix. 1777 /// 2) The found prefix must be followed by a valid check type suffix using \c 1778 /// FindCheckType above. 1779 /// 1780 /// \returns a pair of StringRefs into the Buffer, which combines: 1781 /// - the first match of the regular expression to satisfy these two is 1782 /// returned, 1783 /// otherwise an empty StringRef is returned to indicate failure. 1784 /// - buffer rewound to the location right after parsed suffix, for parsing 1785 /// to continue from 1786 /// 1787 /// If this routine returns a valid prefix, it will also shrink \p Buffer to 1788 /// start at the beginning of the returned prefix, increment \p LineNumber for 1789 /// each new line consumed from \p Buffer, and set \p CheckTy to the type of 1790 /// check found by examining the suffix. 1791 /// 1792 /// If no valid prefix is found, the state of Buffer, LineNumber, and CheckTy 1793 /// is unspecified. 1794 static std::pair<StringRef, StringRef> 1795 FindFirstMatchingPrefix(const FileCheckRequest &Req, Regex &PrefixRE, 1796 StringRef &Buffer, unsigned &LineNumber, 1797 Check::FileCheckType &CheckTy) { 1798 SmallVector<StringRef, 2> Matches; 1799 1800 while (!Buffer.empty()) { 1801 // Find the first (longest) match using the RE. 1802 if (!PrefixRE.match(Buffer, &Matches)) 1803 // No match at all, bail. 1804 return {StringRef(), StringRef()}; 1805 1806 StringRef Prefix = Matches[0]; 1807 Matches.clear(); 1808 1809 assert(Prefix.data() >= Buffer.data() && 1810 Prefix.data() < Buffer.data() + Buffer.size() && 1811 "Prefix doesn't start inside of buffer!"); 1812 size_t Loc = Prefix.data() - Buffer.data(); 1813 StringRef Skipped = Buffer.substr(0, Loc); 1814 Buffer = Buffer.drop_front(Loc); 1815 LineNumber += Skipped.count('\n'); 1816 1817 // Check that the matched prefix isn't a suffix of some other check-like 1818 // word. 1819 // FIXME: This is a very ad-hoc check. it would be better handled in some 1820 // other way. Among other things it seems hard to distinguish between 1821 // intentional and unintentional uses of this feature. 1822 if (Skipped.empty() || !IsPartOfWord(Skipped.back())) { 1823 // Now extract the type. 1824 StringRef AfterSuffix; 1825 std::tie(CheckTy, AfterSuffix) = FindCheckType(Req, Buffer, Prefix); 1826 1827 // If we've found a valid check type for this prefix, we're done. 1828 if (CheckTy != Check::CheckNone) 1829 return {Prefix, AfterSuffix}; 1830 } 1831 1832 // If we didn't successfully find a prefix, we need to skip this invalid 1833 // prefix and continue scanning. We directly skip the prefix that was 1834 // matched and any additional parts of that check-like word. 1835 Buffer = Buffer.drop_front(SkipWord(Buffer, Prefix.size())); 1836 } 1837 1838 // We ran out of buffer while skipping partial matches so give up. 1839 return {StringRef(), StringRef()}; 1840 } 1841 1842 void FileCheckPatternContext::createLineVariable() { 1843 assert(!LineVariable && "@LINE pseudo numeric variable already created"); 1844 StringRef LineName = "@LINE"; 1845 LineVariable = makeNumericVariable( 1846 LineName, ExpressionFormat(ExpressionFormat::Kind::Unsigned)); 1847 GlobalNumericVariableTable[LineName] = LineVariable; 1848 } 1849 1850 FileCheck::FileCheck(FileCheckRequest Req) 1851 : Req(Req), PatternContext(std::make_unique<FileCheckPatternContext>()), 1852 CheckStrings(std::make_unique<std::vector<FileCheckString>>()) {} 1853 1854 FileCheck::~FileCheck() = default; 1855 1856 bool FileCheck::readCheckFile( 1857 SourceMgr &SM, StringRef Buffer, Regex &PrefixRE, 1858 std::pair<unsigned, unsigned> *ImpPatBufferIDRange) { 1859 if (ImpPatBufferIDRange) 1860 ImpPatBufferIDRange->first = ImpPatBufferIDRange->second = 0; 1861 1862 Error DefineError = 1863 PatternContext->defineCmdlineVariables(Req.GlobalDefines, SM); 1864 if (DefineError) { 1865 logAllUnhandledErrors(std::move(DefineError), errs()); 1866 return true; 1867 } 1868 1869 PatternContext->createLineVariable(); 1870 1871 std::vector<Pattern> ImplicitNegativeChecks; 1872 for (StringRef PatternString : Req.ImplicitCheckNot) { 1873 // Create a buffer with fake command line content in order to display the 1874 // command line option responsible for the specific implicit CHECK-NOT. 1875 std::string Prefix = "-implicit-check-not='"; 1876 std::string Suffix = "'"; 1877 std::unique_ptr<MemoryBuffer> CmdLine = MemoryBuffer::getMemBufferCopy( 1878 (Prefix + PatternString + Suffix).str(), "command line"); 1879 1880 StringRef PatternInBuffer = 1881 CmdLine->getBuffer().substr(Prefix.size(), PatternString.size()); 1882 unsigned BufferID = SM.AddNewSourceBuffer(std::move(CmdLine), SMLoc()); 1883 if (ImpPatBufferIDRange) { 1884 if (ImpPatBufferIDRange->first == ImpPatBufferIDRange->second) { 1885 ImpPatBufferIDRange->first = BufferID; 1886 ImpPatBufferIDRange->second = BufferID + 1; 1887 } else { 1888 assert(BufferID == ImpPatBufferIDRange->second && 1889 "expected consecutive source buffer IDs"); 1890 ++ImpPatBufferIDRange->second; 1891 } 1892 } 1893 1894 ImplicitNegativeChecks.push_back( 1895 Pattern(Check::CheckNot, PatternContext.get())); 1896 ImplicitNegativeChecks.back().parsePattern(PatternInBuffer, 1897 "IMPLICIT-CHECK", SM, Req); 1898 } 1899 1900 std::vector<Pattern> DagNotMatches = ImplicitNegativeChecks; 1901 1902 // LineNumber keeps track of the line on which CheckPrefix instances are 1903 // found. 1904 unsigned LineNumber = 1; 1905 1906 std::set<StringRef> PrefixesNotFound(Req.CheckPrefixes.begin(), 1907 Req.CheckPrefixes.end()); 1908 const size_t DistinctPrefixes = PrefixesNotFound.size(); 1909 while (true) { 1910 Check::FileCheckType CheckTy; 1911 1912 // See if a prefix occurs in the memory buffer. 1913 StringRef UsedPrefix; 1914 StringRef AfterSuffix; 1915 std::tie(UsedPrefix, AfterSuffix) = 1916 FindFirstMatchingPrefix(Req, PrefixRE, Buffer, LineNumber, CheckTy); 1917 if (UsedPrefix.empty()) 1918 break; 1919 if (CheckTy != Check::CheckComment) 1920 PrefixesNotFound.erase(UsedPrefix); 1921 1922 assert(UsedPrefix.data() == Buffer.data() && 1923 "Failed to move Buffer's start forward, or pointed prefix outside " 1924 "of the buffer!"); 1925 assert(AfterSuffix.data() >= Buffer.data() && 1926 AfterSuffix.data() < Buffer.data() + Buffer.size() && 1927 "Parsing after suffix doesn't start inside of buffer!"); 1928 1929 // Location to use for error messages. 1930 const char *UsedPrefixStart = UsedPrefix.data(); 1931 1932 // Skip the buffer to the end of parsed suffix (or just prefix, if no good 1933 // suffix was processed). 1934 Buffer = AfterSuffix.empty() ? Buffer.drop_front(UsedPrefix.size()) 1935 : AfterSuffix; 1936 1937 // Complain about useful-looking but unsupported suffixes. 1938 if (CheckTy == Check::CheckBadNot) { 1939 SM.PrintMessage(SMLoc::getFromPointer(Buffer.data()), SourceMgr::DK_Error, 1940 "unsupported -NOT combo on prefix '" + UsedPrefix + "'"); 1941 return true; 1942 } 1943 1944 // Complain about invalid count specification. 1945 if (CheckTy == Check::CheckBadCount) { 1946 SM.PrintMessage(SMLoc::getFromPointer(Buffer.data()), SourceMgr::DK_Error, 1947 "invalid count in -COUNT specification on prefix '" + 1948 UsedPrefix + "'"); 1949 return true; 1950 } 1951 1952 // Okay, we found the prefix, yay. Remember the rest of the line, but ignore 1953 // leading whitespace. 1954 if (!(Req.NoCanonicalizeWhiteSpace && Req.MatchFullLines)) 1955 Buffer = Buffer.substr(Buffer.find_first_not_of(" \t")); 1956 1957 // Scan ahead to the end of line. 1958 size_t EOL = Buffer.find_first_of("\n\r"); 1959 1960 // Remember the location of the start of the pattern, for diagnostics. 1961 SMLoc PatternLoc = SMLoc::getFromPointer(Buffer.data()); 1962 1963 // Extract the pattern from the buffer. 1964 StringRef PatternBuffer = Buffer.substr(0, EOL); 1965 Buffer = Buffer.substr(EOL); 1966 1967 // If this is a comment, we're done. 1968 if (CheckTy == Check::CheckComment) 1969 continue; 1970 1971 // Parse the pattern. 1972 Pattern P(CheckTy, PatternContext.get(), LineNumber); 1973 if (P.parsePattern(PatternBuffer, UsedPrefix, SM, Req)) 1974 return true; 1975 1976 // Verify that CHECK-LABEL lines do not define or use variables 1977 if ((CheckTy == Check::CheckLabel) && P.hasVariable()) { 1978 SM.PrintMessage( 1979 SMLoc::getFromPointer(UsedPrefixStart), SourceMgr::DK_Error, 1980 "found '" + UsedPrefix + "-LABEL:'" 1981 " with variable definition or use"); 1982 return true; 1983 } 1984 1985 // Verify that CHECK-NEXT/SAME/EMPTY lines have at least one CHECK line before them. 1986 if ((CheckTy == Check::CheckNext || CheckTy == Check::CheckSame || 1987 CheckTy == Check::CheckEmpty) && 1988 CheckStrings->empty()) { 1989 StringRef Type = CheckTy == Check::CheckNext 1990 ? "NEXT" 1991 : CheckTy == Check::CheckEmpty ? "EMPTY" : "SAME"; 1992 SM.PrintMessage(SMLoc::getFromPointer(UsedPrefixStart), 1993 SourceMgr::DK_Error, 1994 "found '" + UsedPrefix + "-" + Type + 1995 "' without previous '" + UsedPrefix + ": line"); 1996 return true; 1997 } 1998 1999 // Handle CHECK-DAG/-NOT. 2000 if (CheckTy == Check::CheckDAG || CheckTy == Check::CheckNot) { 2001 DagNotMatches.push_back(P); 2002 continue; 2003 } 2004 2005 // Okay, add the string we captured to the output vector and move on. 2006 CheckStrings->emplace_back(P, UsedPrefix, PatternLoc); 2007 std::swap(DagNotMatches, CheckStrings->back().DagNotStrings); 2008 DagNotMatches = ImplicitNegativeChecks; 2009 } 2010 2011 // When there are no used prefixes we report an error except in the case that 2012 // no prefix is specified explicitly but -implicit-check-not is specified. 2013 const bool NoPrefixesFound = PrefixesNotFound.size() == DistinctPrefixes; 2014 const bool SomePrefixesUnexpectedlyNotUsed = 2015 !Req.AllowUnusedPrefixes && !PrefixesNotFound.empty(); 2016 if ((NoPrefixesFound || SomePrefixesUnexpectedlyNotUsed) && 2017 (ImplicitNegativeChecks.empty() || !Req.IsDefaultCheckPrefix)) { 2018 errs() << "error: no check strings found with prefix" 2019 << (PrefixesNotFound.size() > 1 ? "es " : " "); 2020 bool First = true; 2021 for (StringRef MissingPrefix : PrefixesNotFound) { 2022 if (!First) 2023 errs() << ", "; 2024 errs() << "\'" << MissingPrefix << ":'"; 2025 First = false; 2026 } 2027 errs() << '\n'; 2028 return true; 2029 } 2030 2031 // Add an EOF pattern for any trailing --implicit-check-not/CHECK-DAG/-NOTs, 2032 // and use the first prefix as a filler for the error message. 2033 if (!DagNotMatches.empty()) { 2034 CheckStrings->emplace_back( 2035 Pattern(Check::CheckEOF, PatternContext.get(), LineNumber + 1), 2036 *Req.CheckPrefixes.begin(), SMLoc::getFromPointer(Buffer.data())); 2037 std::swap(DagNotMatches, CheckStrings->back().DagNotStrings); 2038 } 2039 2040 return false; 2041 } 2042 2043 /// Returns either (1) \c ErrorSuccess if there was no error or (2) 2044 /// \c ErrorReported if an error was reported, such as an unexpected match. 2045 static Error printMatch(bool ExpectedMatch, const SourceMgr &SM, 2046 StringRef Prefix, SMLoc Loc, const Pattern &Pat, 2047 int MatchedCount, StringRef Buffer, 2048 Pattern::MatchResult MatchResult, 2049 const FileCheckRequest &Req, 2050 std::vector<FileCheckDiag> *Diags) { 2051 // Suppress some verbosity if there's no error. 2052 bool HasError = !ExpectedMatch || MatchResult.TheError; 2053 bool PrintDiag = true; 2054 if (!HasError) { 2055 if (!Req.Verbose) 2056 return ErrorReported::reportedOrSuccess(HasError); 2057 if (!Req.VerboseVerbose && Pat.getCheckTy() == Check::CheckEOF) 2058 return ErrorReported::reportedOrSuccess(HasError); 2059 // Due to their verbosity, we don't print verbose diagnostics here if we're 2060 // gathering them for Diags to be rendered elsewhere, but we always print 2061 // other diagnostics. 2062 PrintDiag = !Diags; 2063 } 2064 2065 // Add "found" diagnostic, substitutions, and variable definitions to Diags. 2066 FileCheckDiag::MatchType MatchTy = ExpectedMatch 2067 ? FileCheckDiag::MatchFoundAndExpected 2068 : FileCheckDiag::MatchFoundButExcluded; 2069 SMRange MatchRange = ProcessMatchResult(MatchTy, SM, Loc, Pat.getCheckTy(), 2070 Buffer, MatchResult.TheMatch->Pos, 2071 MatchResult.TheMatch->Len, Diags); 2072 if (Diags) { 2073 Pat.printSubstitutions(SM, Buffer, MatchRange, MatchTy, Diags); 2074 Pat.printVariableDefs(SM, MatchTy, Diags); 2075 } 2076 if (!PrintDiag) { 2077 assert(!HasError && "expected to report more diagnostics for error"); 2078 return ErrorReported::reportedOrSuccess(HasError); 2079 } 2080 2081 // Print the match. 2082 std::string Message = formatv("{0}: {1} string found in input", 2083 Pat.getCheckTy().getDescription(Prefix), 2084 (ExpectedMatch ? "expected" : "excluded")) 2085 .str(); 2086 if (Pat.getCount() > 1) 2087 Message += formatv(" ({0} out of {1})", MatchedCount, Pat.getCount()).str(); 2088 SM.PrintMessage( 2089 Loc, ExpectedMatch ? SourceMgr::DK_Remark : SourceMgr::DK_Error, Message); 2090 SM.PrintMessage(MatchRange.Start, SourceMgr::DK_Note, "found here", 2091 {MatchRange}); 2092 2093 // Print additional information, which can be useful even if there are errors. 2094 Pat.printSubstitutions(SM, Buffer, MatchRange, MatchTy, nullptr); 2095 Pat.printVariableDefs(SM, MatchTy, nullptr); 2096 2097 // Print errors and add them to Diags. We report these errors after the match 2098 // itself because we found them after the match. If we had found them before 2099 // the match, we'd be in printNoMatch. 2100 handleAllErrors(std::move(MatchResult.TheError), 2101 [&](const ErrorDiagnostic &E) { 2102 E.log(errs()); 2103 if (Diags) { 2104 Diags->emplace_back(SM, Pat.getCheckTy(), Loc, 2105 FileCheckDiag::MatchFoundErrorNote, 2106 E.getRange(), E.getMessage().str()); 2107 } 2108 }); 2109 return ErrorReported::reportedOrSuccess(HasError); 2110 } 2111 2112 /// Returns either (1) \c ErrorSuccess if there was no error, or (2) 2113 /// \c ErrorReported if an error was reported, such as an expected match not 2114 /// found. 2115 static Error printNoMatch(bool ExpectedMatch, const SourceMgr &SM, 2116 StringRef Prefix, SMLoc Loc, const Pattern &Pat, 2117 int MatchedCount, StringRef Buffer, Error MatchError, 2118 bool VerboseVerbose, 2119 std::vector<FileCheckDiag> *Diags) { 2120 // Print any pattern errors, and record them to be added to Diags later. 2121 bool HasError = ExpectedMatch; 2122 bool HasPatternError = false; 2123 FileCheckDiag::MatchType MatchTy = ExpectedMatch 2124 ? FileCheckDiag::MatchNoneButExpected 2125 : FileCheckDiag::MatchNoneAndExcluded; 2126 SmallVector<std::string, 4> ErrorMsgs; 2127 handleAllErrors( 2128 std::move(MatchError), 2129 [&](const ErrorDiagnostic &E) { 2130 HasError = HasPatternError = true; 2131 MatchTy = FileCheckDiag::MatchNoneForInvalidPattern; 2132 E.log(errs()); 2133 if (Diags) 2134 ErrorMsgs.push_back(E.getMessage().str()); 2135 }, 2136 // UndefVarError is reported in printSubstitutions below. 2137 // FIXME: It probably should be handled as a pattern error and actually 2138 // change the exit status to 1, even if !ExpectedMatch. To do so, we 2139 // could stop calling printSubstitutions and actually report the error 2140 // here as we do ErrorDiagnostic above. 2141 [](const UndefVarError &E) {}, 2142 // NotFoundError is why printNoMatch was invoked. 2143 [](const NotFoundError &E) {}); 2144 2145 // Suppress some verbosity if there's no error. 2146 bool PrintDiag = true; 2147 if (!HasError) { 2148 if (!VerboseVerbose) 2149 return ErrorReported::reportedOrSuccess(HasError); 2150 // Due to their verbosity, we don't print verbose diagnostics here if we're 2151 // gathering them for Diags to be rendered elsewhere, but we always print 2152 // other diagnostics. 2153 PrintDiag = !Diags; 2154 } 2155 2156 // Add "not found" diagnostic, substitutions, and pattern errors to Diags. 2157 // 2158 // We handle Diags a little differently than the errors we print directly: 2159 // we add the "not found" diagnostic to Diags even if there are pattern 2160 // errors. The reason is that we need to attach pattern errors as notes 2161 // somewhere in the input, and the input search range from the "not found" 2162 // diagnostic is all we have to anchor them. 2163 SMRange SearchRange = ProcessMatchResult(MatchTy, SM, Loc, Pat.getCheckTy(), 2164 Buffer, 0, Buffer.size(), Diags); 2165 if (Diags) { 2166 SMRange NoteRange = SMRange(SearchRange.Start, SearchRange.Start); 2167 for (StringRef ErrorMsg : ErrorMsgs) 2168 Diags->emplace_back(SM, Pat.getCheckTy(), Loc, MatchTy, NoteRange, 2169 ErrorMsg); 2170 Pat.printSubstitutions(SM, Buffer, SearchRange, MatchTy, Diags); 2171 } 2172 if (!PrintDiag) { 2173 assert(!HasError && "expected to report more diagnostics for error"); 2174 return ErrorReported::reportedOrSuccess(HasError); 2175 } 2176 2177 // Print "not found" diagnostic, except that's implied if we already printed a 2178 // pattern error. 2179 if (!HasPatternError) { 2180 std::string Message = formatv("{0}: {1} string not found in input", 2181 Pat.getCheckTy().getDescription(Prefix), 2182 (ExpectedMatch ? "expected" : "excluded")) 2183 .str(); 2184 if (Pat.getCount() > 1) 2185 Message += 2186 formatv(" ({0} out of {1})", MatchedCount, Pat.getCount()).str(); 2187 SM.PrintMessage(Loc, 2188 ExpectedMatch ? SourceMgr::DK_Error : SourceMgr::DK_Remark, 2189 Message); 2190 SM.PrintMessage(SearchRange.Start, SourceMgr::DK_Note, 2191 "scanning from here"); 2192 } 2193 2194 // Print additional information, which can be useful even after a pattern 2195 // error. 2196 Pat.printSubstitutions(SM, Buffer, SearchRange, MatchTy, nullptr); 2197 if (ExpectedMatch) 2198 Pat.printFuzzyMatch(SM, Buffer, Diags); 2199 return ErrorReported::reportedOrSuccess(HasError); 2200 } 2201 2202 /// Returns either (1) \c ErrorSuccess if there was no error, or (2) 2203 /// \c ErrorReported if an error was reported. 2204 static Error reportMatchResult(bool ExpectedMatch, const SourceMgr &SM, 2205 StringRef Prefix, SMLoc Loc, const Pattern &Pat, 2206 int MatchedCount, StringRef Buffer, 2207 Pattern::MatchResult MatchResult, 2208 const FileCheckRequest &Req, 2209 std::vector<FileCheckDiag> *Diags) { 2210 if (MatchResult.TheMatch) 2211 return printMatch(ExpectedMatch, SM, Prefix, Loc, Pat, MatchedCount, Buffer, 2212 std::move(MatchResult), Req, Diags); 2213 return printNoMatch(ExpectedMatch, SM, Prefix, Loc, Pat, MatchedCount, Buffer, 2214 std::move(MatchResult.TheError), Req.VerboseVerbose, 2215 Diags); 2216 } 2217 2218 /// Counts the number of newlines in the specified range. 2219 static unsigned CountNumNewlinesBetween(StringRef Range, 2220 const char *&FirstNewLine) { 2221 unsigned NumNewLines = 0; 2222 while (1) { 2223 // Scan for newline. 2224 Range = Range.substr(Range.find_first_of("\n\r")); 2225 if (Range.empty()) 2226 return NumNewLines; 2227 2228 ++NumNewLines; 2229 2230 // Handle \n\r and \r\n as a single newline. 2231 if (Range.size() > 1 && (Range[1] == '\n' || Range[1] == '\r') && 2232 (Range[0] != Range[1])) 2233 Range = Range.substr(1); 2234 Range = Range.substr(1); 2235 2236 if (NumNewLines == 1) 2237 FirstNewLine = Range.begin(); 2238 } 2239 } 2240 2241 size_t FileCheckString::Check(const SourceMgr &SM, StringRef Buffer, 2242 bool IsLabelScanMode, size_t &MatchLen, 2243 FileCheckRequest &Req, 2244 std::vector<FileCheckDiag> *Diags) const { 2245 size_t LastPos = 0; 2246 std::vector<const Pattern *> NotStrings; 2247 2248 // IsLabelScanMode is true when we are scanning forward to find CHECK-LABEL 2249 // bounds; we have not processed variable definitions within the bounded block 2250 // yet so cannot handle any final CHECK-DAG yet; this is handled when going 2251 // over the block again (including the last CHECK-LABEL) in normal mode. 2252 if (!IsLabelScanMode) { 2253 // Match "dag strings" (with mixed "not strings" if any). 2254 LastPos = CheckDag(SM, Buffer, NotStrings, Req, Diags); 2255 if (LastPos == StringRef::npos) 2256 return StringRef::npos; 2257 } 2258 2259 // Match itself from the last position after matching CHECK-DAG. 2260 size_t LastMatchEnd = LastPos; 2261 size_t FirstMatchPos = 0; 2262 // Go match the pattern Count times. Majority of patterns only match with 2263 // count 1 though. 2264 assert(Pat.getCount() != 0 && "pattern count can not be zero"); 2265 for (int i = 1; i <= Pat.getCount(); i++) { 2266 StringRef MatchBuffer = Buffer.substr(LastMatchEnd); 2267 // get a match at current start point 2268 Pattern::MatchResult MatchResult = Pat.match(MatchBuffer, SM); 2269 2270 // report 2271 if (Error Err = reportMatchResult(/*ExpectedMatch=*/true, SM, Prefix, Loc, 2272 Pat, i, MatchBuffer, 2273 std::move(MatchResult), Req, Diags)) { 2274 cantFail(handleErrors(std::move(Err), [&](const ErrorReported &E) {})); 2275 return StringRef::npos; 2276 } 2277 2278 size_t MatchPos = MatchResult.TheMatch->Pos; 2279 if (i == 1) 2280 FirstMatchPos = LastPos + MatchPos; 2281 2282 // move start point after the match 2283 LastMatchEnd += MatchPos + MatchResult.TheMatch->Len; 2284 } 2285 // Full match len counts from first match pos. 2286 MatchLen = LastMatchEnd - FirstMatchPos; 2287 2288 // Similar to the above, in "label-scan mode" we can't yet handle CHECK-NEXT 2289 // or CHECK-NOT 2290 if (!IsLabelScanMode) { 2291 size_t MatchPos = FirstMatchPos - LastPos; 2292 StringRef MatchBuffer = Buffer.substr(LastPos); 2293 StringRef SkippedRegion = Buffer.substr(LastPos, MatchPos); 2294 2295 // If this check is a "CHECK-NEXT", verify that the previous match was on 2296 // the previous line (i.e. that there is one newline between them). 2297 if (CheckNext(SM, SkippedRegion)) { 2298 ProcessMatchResult(FileCheckDiag::MatchFoundButWrongLine, SM, Loc, 2299 Pat.getCheckTy(), MatchBuffer, MatchPos, MatchLen, 2300 Diags, Req.Verbose); 2301 return StringRef::npos; 2302 } 2303 2304 // If this check is a "CHECK-SAME", verify that the previous match was on 2305 // the same line (i.e. that there is no newline between them). 2306 if (CheckSame(SM, SkippedRegion)) { 2307 ProcessMatchResult(FileCheckDiag::MatchFoundButWrongLine, SM, Loc, 2308 Pat.getCheckTy(), MatchBuffer, MatchPos, MatchLen, 2309 Diags, Req.Verbose); 2310 return StringRef::npos; 2311 } 2312 2313 // If this match had "not strings", verify that they don't exist in the 2314 // skipped region. 2315 if (CheckNot(SM, SkippedRegion, NotStrings, Req, Diags)) 2316 return StringRef::npos; 2317 } 2318 2319 return FirstMatchPos; 2320 } 2321 2322 bool FileCheckString::CheckNext(const SourceMgr &SM, StringRef Buffer) const { 2323 if (Pat.getCheckTy() != Check::CheckNext && 2324 Pat.getCheckTy() != Check::CheckEmpty) 2325 return false; 2326 2327 Twine CheckName = 2328 Prefix + 2329 Twine(Pat.getCheckTy() == Check::CheckEmpty ? "-EMPTY" : "-NEXT"); 2330 2331 // Count the number of newlines between the previous match and this one. 2332 const char *FirstNewLine = nullptr; 2333 unsigned NumNewLines = CountNumNewlinesBetween(Buffer, FirstNewLine); 2334 2335 if (NumNewLines == 0) { 2336 SM.PrintMessage(Loc, SourceMgr::DK_Error, 2337 CheckName + ": is on the same line as previous match"); 2338 SM.PrintMessage(SMLoc::getFromPointer(Buffer.end()), SourceMgr::DK_Note, 2339 "'next' match was here"); 2340 SM.PrintMessage(SMLoc::getFromPointer(Buffer.data()), SourceMgr::DK_Note, 2341 "previous match ended here"); 2342 return true; 2343 } 2344 2345 if (NumNewLines != 1) { 2346 SM.PrintMessage(Loc, SourceMgr::DK_Error, 2347 CheckName + 2348 ": is not on the line after the previous match"); 2349 SM.PrintMessage(SMLoc::getFromPointer(Buffer.end()), SourceMgr::DK_Note, 2350 "'next' match was here"); 2351 SM.PrintMessage(SMLoc::getFromPointer(Buffer.data()), SourceMgr::DK_Note, 2352 "previous match ended here"); 2353 SM.PrintMessage(SMLoc::getFromPointer(FirstNewLine), SourceMgr::DK_Note, 2354 "non-matching line after previous match is here"); 2355 return true; 2356 } 2357 2358 return false; 2359 } 2360 2361 bool FileCheckString::CheckSame(const SourceMgr &SM, StringRef Buffer) const { 2362 if (Pat.getCheckTy() != Check::CheckSame) 2363 return false; 2364 2365 // Count the number of newlines between the previous match and this one. 2366 const char *FirstNewLine = nullptr; 2367 unsigned NumNewLines = CountNumNewlinesBetween(Buffer, FirstNewLine); 2368 2369 if (NumNewLines != 0) { 2370 SM.PrintMessage(Loc, SourceMgr::DK_Error, 2371 Prefix + 2372 "-SAME: is not on the same line as the previous match"); 2373 SM.PrintMessage(SMLoc::getFromPointer(Buffer.end()), SourceMgr::DK_Note, 2374 "'next' match was here"); 2375 SM.PrintMessage(SMLoc::getFromPointer(Buffer.data()), SourceMgr::DK_Note, 2376 "previous match ended here"); 2377 return true; 2378 } 2379 2380 return false; 2381 } 2382 2383 bool FileCheckString::CheckNot(const SourceMgr &SM, StringRef Buffer, 2384 const std::vector<const Pattern *> &NotStrings, 2385 const FileCheckRequest &Req, 2386 std::vector<FileCheckDiag> *Diags) const { 2387 bool DirectiveFail = false; 2388 for (const Pattern *Pat : NotStrings) { 2389 assert((Pat->getCheckTy() == Check::CheckNot) && "Expect CHECK-NOT!"); 2390 Pattern::MatchResult MatchResult = Pat->match(Buffer, SM); 2391 if (Error Err = reportMatchResult(/*ExpectedMatch=*/false, SM, Prefix, 2392 Pat->getLoc(), *Pat, 1, Buffer, 2393 std::move(MatchResult), Req, Diags)) { 2394 cantFail(handleErrors(std::move(Err), [&](const ErrorReported &E) {})); 2395 DirectiveFail = true; 2396 continue; 2397 } 2398 } 2399 return DirectiveFail; 2400 } 2401 2402 size_t FileCheckString::CheckDag(const SourceMgr &SM, StringRef Buffer, 2403 std::vector<const Pattern *> &NotStrings, 2404 const FileCheckRequest &Req, 2405 std::vector<FileCheckDiag> *Diags) const { 2406 if (DagNotStrings.empty()) 2407 return 0; 2408 2409 // The start of the search range. 2410 size_t StartPos = 0; 2411 2412 struct MatchRange { 2413 size_t Pos; 2414 size_t End; 2415 }; 2416 // A sorted list of ranges for non-overlapping CHECK-DAG matches. Match 2417 // ranges are erased from this list once they are no longer in the search 2418 // range. 2419 std::list<MatchRange> MatchRanges; 2420 2421 // We need PatItr and PatEnd later for detecting the end of a CHECK-DAG 2422 // group, so we don't use a range-based for loop here. 2423 for (auto PatItr = DagNotStrings.begin(), PatEnd = DagNotStrings.end(); 2424 PatItr != PatEnd; ++PatItr) { 2425 const Pattern &Pat = *PatItr; 2426 assert((Pat.getCheckTy() == Check::CheckDAG || 2427 Pat.getCheckTy() == Check::CheckNot) && 2428 "Invalid CHECK-DAG or CHECK-NOT!"); 2429 2430 if (Pat.getCheckTy() == Check::CheckNot) { 2431 NotStrings.push_back(&Pat); 2432 continue; 2433 } 2434 2435 assert((Pat.getCheckTy() == Check::CheckDAG) && "Expect CHECK-DAG!"); 2436 2437 // CHECK-DAG always matches from the start. 2438 size_t MatchLen = 0, MatchPos = StartPos; 2439 2440 // Search for a match that doesn't overlap a previous match in this 2441 // CHECK-DAG group. 2442 for (auto MI = MatchRanges.begin(), ME = MatchRanges.end(); true; ++MI) { 2443 StringRef MatchBuffer = Buffer.substr(MatchPos); 2444 Pattern::MatchResult MatchResult = Pat.match(MatchBuffer, SM); 2445 // With a group of CHECK-DAGs, a single mismatching means the match on 2446 // that group of CHECK-DAGs fails immediately. 2447 if (MatchResult.TheError || Req.VerboseVerbose) { 2448 if (Error Err = reportMatchResult(/*ExpectedMatch=*/true, SM, Prefix, 2449 Pat.getLoc(), Pat, 1, MatchBuffer, 2450 std::move(MatchResult), Req, Diags)) { 2451 cantFail( 2452 handleErrors(std::move(Err), [&](const ErrorReported &E) {})); 2453 return StringRef::npos; 2454 } 2455 } 2456 MatchLen = MatchResult.TheMatch->Len; 2457 // Re-calc it as the offset relative to the start of the original 2458 // string. 2459 MatchPos += MatchResult.TheMatch->Pos; 2460 MatchRange M{MatchPos, MatchPos + MatchLen}; 2461 if (Req.AllowDeprecatedDagOverlap) { 2462 // We don't need to track all matches in this mode, so we just maintain 2463 // one match range that encompasses the current CHECK-DAG group's 2464 // matches. 2465 if (MatchRanges.empty()) 2466 MatchRanges.insert(MatchRanges.end(), M); 2467 else { 2468 auto Block = MatchRanges.begin(); 2469 Block->Pos = std::min(Block->Pos, M.Pos); 2470 Block->End = std::max(Block->End, M.End); 2471 } 2472 break; 2473 } 2474 // Iterate previous matches until overlapping match or insertion point. 2475 bool Overlap = false; 2476 for (; MI != ME; ++MI) { 2477 if (M.Pos < MI->End) { 2478 // !Overlap => New match has no overlap and is before this old match. 2479 // Overlap => New match overlaps this old match. 2480 Overlap = MI->Pos < M.End; 2481 break; 2482 } 2483 } 2484 if (!Overlap) { 2485 // Insert non-overlapping match into list. 2486 MatchRanges.insert(MI, M); 2487 break; 2488 } 2489 if (Req.VerboseVerbose) { 2490 // Due to their verbosity, we don't print verbose diagnostics here if 2491 // we're gathering them for a different rendering, but we always print 2492 // other diagnostics. 2493 if (!Diags) { 2494 SMLoc OldStart = SMLoc::getFromPointer(Buffer.data() + MI->Pos); 2495 SMLoc OldEnd = SMLoc::getFromPointer(Buffer.data() + MI->End); 2496 SMRange OldRange(OldStart, OldEnd); 2497 SM.PrintMessage(OldStart, SourceMgr::DK_Note, 2498 "match discarded, overlaps earlier DAG match here", 2499 {OldRange}); 2500 } else { 2501 SMLoc CheckLoc = Diags->rbegin()->CheckLoc; 2502 for (auto I = Diags->rbegin(), E = Diags->rend(); 2503 I != E && I->CheckLoc == CheckLoc; ++I) 2504 I->MatchTy = FileCheckDiag::MatchFoundButDiscarded; 2505 } 2506 } 2507 MatchPos = MI->End; 2508 } 2509 if (!Req.VerboseVerbose) 2510 cantFail(printMatch( 2511 /*ExpectedMatch=*/true, SM, Prefix, Pat.getLoc(), Pat, 1, Buffer, 2512 Pattern::MatchResult(MatchPos, MatchLen, Error::success()), Req, 2513 Diags)); 2514 2515 // Handle the end of a CHECK-DAG group. 2516 if (std::next(PatItr) == PatEnd || 2517 std::next(PatItr)->getCheckTy() == Check::CheckNot) { 2518 if (!NotStrings.empty()) { 2519 // If there are CHECK-NOTs between two CHECK-DAGs or from CHECK to 2520 // CHECK-DAG, verify that there are no 'not' strings occurred in that 2521 // region. 2522 StringRef SkippedRegion = 2523 Buffer.slice(StartPos, MatchRanges.begin()->Pos); 2524 if (CheckNot(SM, SkippedRegion, NotStrings, Req, Diags)) 2525 return StringRef::npos; 2526 // Clear "not strings". 2527 NotStrings.clear(); 2528 } 2529 // All subsequent CHECK-DAGs and CHECK-NOTs should be matched from the 2530 // end of this CHECK-DAG group's match range. 2531 StartPos = MatchRanges.rbegin()->End; 2532 // Don't waste time checking for (impossible) overlaps before that. 2533 MatchRanges.clear(); 2534 } 2535 } 2536 2537 return StartPos; 2538 } 2539 2540 static bool ValidatePrefixes(StringRef Kind, StringSet<> &UniquePrefixes, 2541 ArrayRef<StringRef> SuppliedPrefixes) { 2542 for (StringRef Prefix : SuppliedPrefixes) { 2543 if (Prefix.empty()) { 2544 errs() << "error: supplied " << Kind << " prefix must not be the empty " 2545 << "string\n"; 2546 return false; 2547 } 2548 static const Regex Validator("^[a-zA-Z0-9_-]*$"); 2549 if (!Validator.match(Prefix)) { 2550 errs() << "error: supplied " << Kind << " prefix must start with a " 2551 << "letter and contain only alphanumeric characters, hyphens, and " 2552 << "underscores: '" << Prefix << "'\n"; 2553 return false; 2554 } 2555 if (!UniquePrefixes.insert(Prefix).second) { 2556 errs() << "error: supplied " << Kind << " prefix must be unique among " 2557 << "check and comment prefixes: '" << Prefix << "'\n"; 2558 return false; 2559 } 2560 } 2561 return true; 2562 } 2563 2564 static const char *DefaultCheckPrefixes[] = {"CHECK"}; 2565 static const char *DefaultCommentPrefixes[] = {"COM", "RUN"}; 2566 2567 bool FileCheck::ValidateCheckPrefixes() { 2568 StringSet<> UniquePrefixes; 2569 // Add default prefixes to catch user-supplied duplicates of them below. 2570 if (Req.CheckPrefixes.empty()) { 2571 for (const char *Prefix : DefaultCheckPrefixes) 2572 UniquePrefixes.insert(Prefix); 2573 } 2574 if (Req.CommentPrefixes.empty()) { 2575 for (const char *Prefix : DefaultCommentPrefixes) 2576 UniquePrefixes.insert(Prefix); 2577 } 2578 // Do not validate the default prefixes, or diagnostics about duplicates might 2579 // incorrectly indicate that they were supplied by the user. 2580 if (!ValidatePrefixes("check", UniquePrefixes, Req.CheckPrefixes)) 2581 return false; 2582 if (!ValidatePrefixes("comment", UniquePrefixes, Req.CommentPrefixes)) 2583 return false; 2584 return true; 2585 } 2586 2587 Regex FileCheck::buildCheckPrefixRegex() { 2588 if (Req.CheckPrefixes.empty()) { 2589 for (const char *Prefix : DefaultCheckPrefixes) 2590 Req.CheckPrefixes.push_back(Prefix); 2591 Req.IsDefaultCheckPrefix = true; 2592 } 2593 if (Req.CommentPrefixes.empty()) { 2594 for (const char *Prefix : DefaultCommentPrefixes) 2595 Req.CommentPrefixes.push_back(Prefix); 2596 } 2597 2598 // We already validated the contents of CheckPrefixes and CommentPrefixes so 2599 // just concatenate them as alternatives. 2600 SmallString<32> PrefixRegexStr; 2601 for (size_t I = 0, E = Req.CheckPrefixes.size(); I != E; ++I) { 2602 if (I != 0) 2603 PrefixRegexStr.push_back('|'); 2604 PrefixRegexStr.append(Req.CheckPrefixes[I]); 2605 } 2606 for (StringRef Prefix : Req.CommentPrefixes) { 2607 PrefixRegexStr.push_back('|'); 2608 PrefixRegexStr.append(Prefix); 2609 } 2610 2611 return Regex(PrefixRegexStr); 2612 } 2613 2614 Error FileCheckPatternContext::defineCmdlineVariables( 2615 ArrayRef<StringRef> CmdlineDefines, SourceMgr &SM) { 2616 assert(GlobalVariableTable.empty() && GlobalNumericVariableTable.empty() && 2617 "Overriding defined variable with command-line variable definitions"); 2618 2619 if (CmdlineDefines.empty()) 2620 return Error::success(); 2621 2622 // Create a string representing the vector of command-line definitions. Each 2623 // definition is on its own line and prefixed with a definition number to 2624 // clarify which definition a given diagnostic corresponds to. 2625 unsigned I = 0; 2626 Error Errs = Error::success(); 2627 std::string CmdlineDefsDiag; 2628 SmallVector<std::pair<size_t, size_t>, 4> CmdlineDefsIndices; 2629 for (StringRef CmdlineDef : CmdlineDefines) { 2630 std::string DefPrefix = ("Global define #" + Twine(++I) + ": ").str(); 2631 size_t EqIdx = CmdlineDef.find('='); 2632 if (EqIdx == StringRef::npos) { 2633 CmdlineDefsIndices.push_back(std::make_pair(CmdlineDefsDiag.size(), 0)); 2634 continue; 2635 } 2636 // Numeric variable definition. 2637 if (CmdlineDef[0] == '#') { 2638 // Append a copy of the command-line definition adapted to use the same 2639 // format as in the input file to be able to reuse 2640 // parseNumericSubstitutionBlock. 2641 CmdlineDefsDiag += (DefPrefix + CmdlineDef + " (parsed as: [[").str(); 2642 std::string SubstitutionStr = std::string(CmdlineDef); 2643 SubstitutionStr[EqIdx] = ':'; 2644 CmdlineDefsIndices.push_back( 2645 std::make_pair(CmdlineDefsDiag.size(), SubstitutionStr.size())); 2646 CmdlineDefsDiag += (SubstitutionStr + Twine("]])\n")).str(); 2647 } else { 2648 CmdlineDefsDiag += DefPrefix; 2649 CmdlineDefsIndices.push_back( 2650 std::make_pair(CmdlineDefsDiag.size(), CmdlineDef.size())); 2651 CmdlineDefsDiag += (CmdlineDef + "\n").str(); 2652 } 2653 } 2654 2655 // Create a buffer with fake command line content in order to display 2656 // parsing diagnostic with location information and point to the 2657 // global definition with invalid syntax. 2658 std::unique_ptr<MemoryBuffer> CmdLineDefsDiagBuffer = 2659 MemoryBuffer::getMemBufferCopy(CmdlineDefsDiag, "Global defines"); 2660 StringRef CmdlineDefsDiagRef = CmdLineDefsDiagBuffer->getBuffer(); 2661 SM.AddNewSourceBuffer(std::move(CmdLineDefsDiagBuffer), SMLoc()); 2662 2663 for (std::pair<size_t, size_t> CmdlineDefIndices : CmdlineDefsIndices) { 2664 StringRef CmdlineDef = CmdlineDefsDiagRef.substr(CmdlineDefIndices.first, 2665 CmdlineDefIndices.second); 2666 if (CmdlineDef.empty()) { 2667 Errs = joinErrors( 2668 std::move(Errs), 2669 ErrorDiagnostic::get(SM, CmdlineDef, 2670 "missing equal sign in global definition")); 2671 continue; 2672 } 2673 2674 // Numeric variable definition. 2675 if (CmdlineDef[0] == '#') { 2676 // Now parse the definition both to check that the syntax is correct and 2677 // to create the necessary class instance. 2678 StringRef CmdlineDefExpr = CmdlineDef.substr(1); 2679 Optional<NumericVariable *> DefinedNumericVariable; 2680 Expected<std::unique_ptr<Expression>> ExpressionResult = 2681 Pattern::parseNumericSubstitutionBlock( 2682 CmdlineDefExpr, DefinedNumericVariable, false, None, this, SM); 2683 if (!ExpressionResult) { 2684 Errs = joinErrors(std::move(Errs), ExpressionResult.takeError()); 2685 continue; 2686 } 2687 std::unique_ptr<Expression> Expression = std::move(*ExpressionResult); 2688 // Now evaluate the expression whose value this variable should be set 2689 // to, since the expression of a command-line variable definition should 2690 // only use variables defined earlier on the command-line. If not, this 2691 // is an error and we report it. 2692 Expected<ExpressionValue> Value = Expression->getAST()->eval(); 2693 if (!Value) { 2694 Errs = joinErrors(std::move(Errs), Value.takeError()); 2695 continue; 2696 } 2697 2698 assert(DefinedNumericVariable && "No variable defined"); 2699 (*DefinedNumericVariable)->setValue(*Value); 2700 2701 // Record this variable definition. 2702 GlobalNumericVariableTable[(*DefinedNumericVariable)->getName()] = 2703 *DefinedNumericVariable; 2704 } else { 2705 // String variable definition. 2706 std::pair<StringRef, StringRef> CmdlineNameVal = CmdlineDef.split('='); 2707 StringRef CmdlineName = CmdlineNameVal.first; 2708 StringRef OrigCmdlineName = CmdlineName; 2709 Expected<Pattern::VariableProperties> ParseVarResult = 2710 Pattern::parseVariable(CmdlineName, SM); 2711 if (!ParseVarResult) { 2712 Errs = joinErrors(std::move(Errs), ParseVarResult.takeError()); 2713 continue; 2714 } 2715 // Check that CmdlineName does not denote a pseudo variable is only 2716 // composed of the parsed numeric variable. This catches cases like 2717 // "FOO+2" in a "FOO+2=10" definition. 2718 if (ParseVarResult->IsPseudo || !CmdlineName.empty()) { 2719 Errs = joinErrors(std::move(Errs), 2720 ErrorDiagnostic::get( 2721 SM, OrigCmdlineName, 2722 "invalid name in string variable definition '" + 2723 OrigCmdlineName + "'")); 2724 continue; 2725 } 2726 StringRef Name = ParseVarResult->Name; 2727 2728 // Detect collisions between string and numeric variables when the former 2729 // is created later than the latter. 2730 if (GlobalNumericVariableTable.find(Name) != 2731 GlobalNumericVariableTable.end()) { 2732 Errs = joinErrors(std::move(Errs), 2733 ErrorDiagnostic::get(SM, Name, 2734 "numeric variable with name '" + 2735 Name + "' already exists")); 2736 continue; 2737 } 2738 GlobalVariableTable.insert(CmdlineNameVal); 2739 // Mark the string variable as defined to detect collisions between 2740 // string and numeric variables in defineCmdlineVariables when the latter 2741 // is created later than the former. We cannot reuse GlobalVariableTable 2742 // for this by populating it with an empty string since we would then 2743 // lose the ability to detect the use of an undefined variable in 2744 // match(). 2745 DefinedVariableTable[Name] = true; 2746 } 2747 } 2748 2749 return Errs; 2750 } 2751 2752 void FileCheckPatternContext::clearLocalVars() { 2753 SmallVector<StringRef, 16> LocalPatternVars, LocalNumericVars; 2754 for (const StringMapEntry<StringRef> &Var : GlobalVariableTable) 2755 if (Var.first()[0] != '$') 2756 LocalPatternVars.push_back(Var.first()); 2757 2758 // Numeric substitution reads the value of a variable directly, not via 2759 // GlobalNumericVariableTable. Therefore, we clear local variables by 2760 // clearing their value which will lead to a numeric substitution failure. We 2761 // also mark the variable for removal from GlobalNumericVariableTable since 2762 // this is what defineCmdlineVariables checks to decide that no global 2763 // variable has been defined. 2764 for (const auto &Var : GlobalNumericVariableTable) 2765 if (Var.first()[0] != '$') { 2766 Var.getValue()->clearValue(); 2767 LocalNumericVars.push_back(Var.first()); 2768 } 2769 2770 for (const auto &Var : LocalPatternVars) 2771 GlobalVariableTable.erase(Var); 2772 for (const auto &Var : LocalNumericVars) 2773 GlobalNumericVariableTable.erase(Var); 2774 } 2775 2776 bool FileCheck::checkInput(SourceMgr &SM, StringRef Buffer, 2777 std::vector<FileCheckDiag> *Diags) { 2778 bool ChecksFailed = false; 2779 2780 unsigned i = 0, j = 0, e = CheckStrings->size(); 2781 while (true) { 2782 StringRef CheckRegion; 2783 if (j == e) { 2784 CheckRegion = Buffer; 2785 } else { 2786 const FileCheckString &CheckLabelStr = (*CheckStrings)[j]; 2787 if (CheckLabelStr.Pat.getCheckTy() != Check::CheckLabel) { 2788 ++j; 2789 continue; 2790 } 2791 2792 // Scan to next CHECK-LABEL match, ignoring CHECK-NOT and CHECK-DAG 2793 size_t MatchLabelLen = 0; 2794 size_t MatchLabelPos = 2795 CheckLabelStr.Check(SM, Buffer, true, MatchLabelLen, Req, Diags); 2796 if (MatchLabelPos == StringRef::npos) 2797 // Immediately bail if CHECK-LABEL fails, nothing else we can do. 2798 return false; 2799 2800 CheckRegion = Buffer.substr(0, MatchLabelPos + MatchLabelLen); 2801 Buffer = Buffer.substr(MatchLabelPos + MatchLabelLen); 2802 ++j; 2803 } 2804 2805 // Do not clear the first region as it's the one before the first 2806 // CHECK-LABEL and it would clear variables defined on the command-line 2807 // before they get used. 2808 if (i != 0 && Req.EnableVarScope) 2809 PatternContext->clearLocalVars(); 2810 2811 for (; i != j; ++i) { 2812 const FileCheckString &CheckStr = (*CheckStrings)[i]; 2813 2814 // Check each string within the scanned region, including a second check 2815 // of any final CHECK-LABEL (to verify CHECK-NOT and CHECK-DAG) 2816 size_t MatchLen = 0; 2817 size_t MatchPos = 2818 CheckStr.Check(SM, CheckRegion, false, MatchLen, Req, Diags); 2819 2820 if (MatchPos == StringRef::npos) { 2821 ChecksFailed = true; 2822 i = j; 2823 break; 2824 } 2825 2826 CheckRegion = CheckRegion.substr(MatchPos + MatchLen); 2827 } 2828 2829 if (j == e) 2830 break; 2831 } 2832 2833 // Success if no checks failed. 2834 return !ChecksFailed; 2835 } 2836