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      1 //===- ClangOpenCLBuiltinEmitter.cpp - Generate Clang OpenCL Builtin handling
      2 //
      3 //                     The LLVM Compiler Infrastructure
      4 //
      5 // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions.
      6 // See https://llvm.org/LICENSE.txt for license information.
      7 // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
      8 //
      9 //===----------------------------------------------------------------------===//
     10 //
     11 // This tablegen backend emits code for checking whether a function is an
     12 // OpenCL builtin function. If so, all overloads of this function are
     13 // added to the LookupResult. The generated include file is used by
     14 // SemaLookup.cpp
     15 //
     16 // For a successful lookup of e.g. the "cos" builtin, isOpenCLBuiltin("cos")
     17 // returns a pair <Index, Len>.
     18 // BuiltinTable[Index] to BuiltinTable[Index + Len] contains the pairs
     19 // <SigIndex, SigLen> of the overloads of "cos".
     20 // SignatureTable[SigIndex] to SignatureTable[SigIndex + SigLen] contains
     21 // one of the signatures of "cos". The SignatureTable entry can be
     22 // referenced by other functions, e.g. "sin", to exploit the fact that
     23 // many OpenCL builtins share the same signature.
     24 //
     25 // The file generated by this TableGen emitter contains the following:
     26 //
     27 //  * Structs and enums to represent types and function signatures.
     28 //
     29 //  * const char *FunctionExtensionTable[]
     30 //    List of space-separated OpenCL extensions.  A builtin references an
     31 //    entry in this table when the builtin requires a particular (set of)
     32 //    extension(s) to be enabled.
     33 //
     34 //  * OpenCLTypeStruct TypeTable[]
     35 //    Type information for return types and arguments.
     36 //
     37 //  * unsigned SignatureTable[]
     38 //    A list of types representing function signatures.  Each entry is an index
     39 //    into the above TypeTable.  Multiple entries following each other form a
     40 //    signature, where the first entry is the return type and subsequent
     41 //    entries are the argument types.
     42 //
     43 //  * OpenCLBuiltinStruct BuiltinTable[]
     44 //    Each entry represents one overload of an OpenCL builtin function and
     45 //    consists of an index into the SignatureTable and the number of arguments.
     46 //
     47 //  * std::pair<unsigned, unsigned> isOpenCLBuiltin(llvm::StringRef Name)
     48 //    Find out whether a string matches an existing OpenCL builtin function
     49 //    name and return an index into BuiltinTable and the number of overloads.
     50 //
     51 //  * void OCL2Qual(Sema&, OpenCLTypeStruct, std::vector<QualType>&)
     52 //    Convert an OpenCLTypeStruct type to a list of QualType instances.
     53 //    One OpenCLTypeStruct can represent multiple types, primarily when using
     54 //    GenTypes.
     55 //
     56 //===----------------------------------------------------------------------===//
     57 
     58 #include "TableGenBackends.h"
     59 #include "llvm/ADT/MapVector.h"
     60 #include "llvm/ADT/STLExtras.h"
     61 #include "llvm/ADT/SmallString.h"
     62 #include "llvm/ADT/StringExtras.h"
     63 #include "llvm/ADT/StringMap.h"
     64 #include "llvm/ADT/StringRef.h"
     65 #include "llvm/ADT/StringSwitch.h"
     66 #include "llvm/Support/ErrorHandling.h"
     67 #include "llvm/Support/raw_ostream.h"
     68 #include "llvm/TableGen/Error.h"
     69 #include "llvm/TableGen/Record.h"
     70 #include "llvm/TableGen/StringMatcher.h"
     71 #include "llvm/TableGen/TableGenBackend.h"
     72 
     73 using namespace llvm;
     74 
     75 namespace {
     76 
     77 // A list of signatures that are shared by one or more builtin functions.
     78 struct BuiltinTableEntries {
     79   SmallVector<StringRef, 4> Names;
     80   std::vector<std::pair<const Record *, unsigned>> Signatures;
     81 };
     82 
     83 class BuiltinNameEmitter {
     84 public:
     85   BuiltinNameEmitter(RecordKeeper &Records, raw_ostream &OS)
     86       : Records(Records), OS(OS) {}
     87 
     88   // Entrypoint to generate the functions and structures for checking
     89   // whether a function is an OpenCL builtin function.
     90   void Emit();
     91 
     92 private:
     93   // A list of indices into the builtin function table.
     94   using BuiltinIndexListTy = SmallVector<unsigned, 11>;
     95 
     96   // Contains OpenCL builtin functions and related information, stored as
     97   // Record instances. They are coming from the associated TableGen file.
     98   RecordKeeper &Records;
     99 
    100   // The output file.
    101   raw_ostream &OS;
    102 
    103   // Helper function for BuiltinNameEmitter::EmitDeclarations.  Generate enum
    104   // definitions in the Output string parameter, and save their Record instances
    105   // in the List parameter.
    106   // \param Types (in) List containing the Types to extract.
    107   // \param TypesSeen (inout) List containing the Types already extracted.
    108   // \param Output (out) String containing the enums to emit in the output file.
    109   // \param List (out) List containing the extracted Types, except the Types in
    110   //        TypesSeen.
    111   void ExtractEnumTypes(std::vector<Record *> &Types,
    112                         StringMap<bool> &TypesSeen, std::string &Output,
    113                         std::vector<const Record *> &List);
    114 
    115   // Emit the enum or struct used in the generated file.
    116   // Populate the TypeList at the same time.
    117   void EmitDeclarations();
    118 
    119   // Parse the Records generated by TableGen to populate the SignaturesList,
    120   // FctOverloadMap and TypeMap.
    121   void GetOverloads();
    122 
    123   // Compare two lists of signatures and check that e.g. the OpenCL version,
    124   // function attributes, and extension are equal for each signature.
    125   // \param Candidate (in) Entry in the SignatureListMap to check.
    126   // \param SignatureList (in) List of signatures of the considered function.
    127   // \returns true if the two lists of signatures are identical.
    128   bool CanReuseSignature(
    129       BuiltinIndexListTy *Candidate,
    130       std::vector<std::pair<const Record *, unsigned>> &SignatureList);
    131 
    132   // Group functions with the same list of signatures by populating the
    133   // SignatureListMap.
    134   // Some builtin functions have the same list of signatures, for example the
    135   // "sin" and "cos" functions. To save space in the BuiltinTable, the
    136   // "isOpenCLBuiltin" function will have the same output for these two
    137   // function names.
    138   void GroupBySignature();
    139 
    140   // Emit the FunctionExtensionTable that lists all function extensions.
    141   void EmitExtensionTable();
    142 
    143   // Emit the TypeTable containing all types used by OpenCL builtins.
    144   void EmitTypeTable();
    145 
    146   // Emit the SignatureTable. This table contains all the possible signatures.
    147   // A signature is stored as a list of indexes of the TypeTable.
    148   // The first index references the return type (mandatory), and the followings
    149   // reference its arguments.
    150   // E.g.:
    151   // 15, 2, 15 can represent a function with the signature:
    152   // int func(float, int)
    153   // The "int" type being at the index 15 in the TypeTable.
    154   void EmitSignatureTable();
    155 
    156   // Emit the BuiltinTable table. This table contains all the overloads of
    157   // each function, and is a struct OpenCLBuiltinDecl.
    158   // E.g.:
    159   // // 891 convert_float2_rtn
    160   //   { 58, 2, 3, 100, 0 },
    161   // This means that the signature of this convert_float2_rtn overload has
    162   // 1 argument (+1 for the return type), stored at index 58 in
    163   // the SignatureTable.  This prototype requires extension "3" in the
    164   // FunctionExtensionTable.  The last two values represent the minimum (1.0)
    165   // and maximum (0, meaning no max version) OpenCL version in which this
    166   // overload is supported.
    167   void EmitBuiltinTable();
    168 
    169   // Emit a StringMatcher function to check whether a function name is an
    170   // OpenCL builtin function name.
    171   void EmitStringMatcher();
    172 
    173   // Emit a function returning the clang QualType instance associated with
    174   // the TableGen Record Type.
    175   void EmitQualTypeFinder();
    176 
    177   // Contains a list of the available signatures, without the name of the
    178   // function. Each pair consists of a signature and a cumulative index.
    179   // E.g.:  <<float, float>, 0>,
    180   //        <<float, int, int, 2>>,
    181   //        <<float>, 5>,
    182   //        ...
    183   //        <<double, double>, 35>.
    184   std::vector<std::pair<std::vector<Record *>, unsigned>> SignaturesList;
    185 
    186   // Map the name of a builtin function to its prototypes (instances of the
    187   // TableGen "Builtin" class).
    188   // Each prototype is registered as a pair of:
    189   //   <pointer to the "Builtin" instance,
    190   //    cumulative index of the associated signature in the SignaturesList>
    191   // E.g.:  The function cos: (float cos(float), double cos(double), ...)
    192   //        <"cos", <<ptrToPrototype0, 5>,
    193   //                 <ptrToPrototype1, 35>,
    194   //                 <ptrToPrototype2, 79>>
    195   // ptrToPrototype1 has the following signature: <double, double>
    196   MapVector<StringRef, std::vector<std::pair<const Record *, unsigned>>>
    197       FctOverloadMap;
    198 
    199   // Contains the map of OpenCL types to their index in the TypeTable.
    200   MapVector<const Record *, unsigned> TypeMap;
    201 
    202   // List of OpenCL function extensions mapping extension strings to
    203   // an index into the FunctionExtensionTable.
    204   StringMap<unsigned> FunctionExtensionIndex;
    205 
    206   // List of OpenCL type names in the same order as in enum OpenCLTypeID.
    207   // This list does not contain generic types.
    208   std::vector<const Record *> TypeList;
    209 
    210   // Same as TypeList, but for generic types only.
    211   std::vector<const Record *> GenTypeList;
    212 
    213   // Map an ordered vector of signatures to their original Record instances,
    214   // and to a list of function names that share these signatures.
    215   //
    216   // For example, suppose the "cos" and "sin" functions have only three
    217   // signatures, and these signatures are at index Ix in the SignatureTable:
    218   //          cos         |         sin         |  Signature    | Index
    219   //  float   cos(float)  | float   sin(float)  |  Signature1   | I1
    220   //  double  cos(double) | double  sin(double) |  Signature2   | I2
    221   //  half    cos(half)   | half    sin(half)   |  Signature3   | I3
    222   //
    223   // Then we will create a mapping of the vector of signatures:
    224   // SignatureListMap[<I1, I2, I3>] = <
    225   //                  <"cos", "sin">,
    226   //                  <Signature1, Signature2, Signature3>>
    227   // The function "tan", having the same signatures, would be mapped to the
    228   // same entry (<I1, I2, I3>).
    229   MapVector<BuiltinIndexListTy *, BuiltinTableEntries> SignatureListMap;
    230 };
    231 } // namespace
    232 
    233 void BuiltinNameEmitter::Emit() {
    234   emitSourceFileHeader("OpenCL Builtin handling", OS);
    235 
    236   OS << "#include \"llvm/ADT/StringRef.h\"\n";
    237   OS << "using namespace clang;\n\n";
    238 
    239   // Emit enums and structs.
    240   EmitDeclarations();
    241 
    242   // Parse the Records to populate the internal lists.
    243   GetOverloads();
    244   GroupBySignature();
    245 
    246   // Emit tables.
    247   EmitExtensionTable();
    248   EmitTypeTable();
    249   EmitSignatureTable();
    250   EmitBuiltinTable();
    251 
    252   // Emit functions.
    253   EmitStringMatcher();
    254   EmitQualTypeFinder();
    255 }
    256 
    257 void BuiltinNameEmitter::ExtractEnumTypes(std::vector<Record *> &Types,
    258                                           StringMap<bool> &TypesSeen,
    259                                           std::string &Output,
    260                                           std::vector<const Record *> &List) {
    261   raw_string_ostream SS(Output);
    262 
    263   for (const auto *T : Types) {
    264     if (TypesSeen.find(T->getValueAsString("Name")) == TypesSeen.end()) {
    265       SS << "  OCLT_" + T->getValueAsString("Name") << ",\n";
    266       // Save the type names in the same order as their enum value. Note that
    267       // the Record can be a VectorType or something else, only the name is
    268       // important.
    269       List.push_back(T);
    270       TypesSeen.insert(std::make_pair(T->getValueAsString("Name"), true));
    271     }
    272   }
    273   SS.flush();
    274 }
    275 
    276 void BuiltinNameEmitter::EmitDeclarations() {
    277   // Enum of scalar type names (float, int, ...) and generic type sets.
    278   OS << "enum OpenCLTypeID {\n";
    279 
    280   StringMap<bool> TypesSeen;
    281   std::string GenTypeEnums;
    282   std::string TypeEnums;
    283 
    284   // Extract generic types and non-generic types separately, to keep
    285   // gentypes at the end of the enum which simplifies the special handling
    286   // for gentypes in SemaLookup.
    287   std::vector<Record *> GenTypes =
    288       Records.getAllDerivedDefinitions("GenericType");
    289   ExtractEnumTypes(GenTypes, TypesSeen, GenTypeEnums, GenTypeList);
    290 
    291   std::vector<Record *> Types = Records.getAllDerivedDefinitions("Type");
    292   ExtractEnumTypes(Types, TypesSeen, TypeEnums, TypeList);
    293 
    294   OS << TypeEnums;
    295   OS << GenTypeEnums;
    296   OS << "};\n";
    297 
    298   // Structure definitions.
    299   OS << R"(
    300 // Image access qualifier.
    301 enum OpenCLAccessQual : unsigned char {
    302   OCLAQ_None,
    303   OCLAQ_ReadOnly,
    304   OCLAQ_WriteOnly,
    305   OCLAQ_ReadWrite
    306 };
    307 
    308 // Represents a return type or argument type.
    309 struct OpenCLTypeStruct {
    310   // A type (e.g. float, int, ...).
    311   const OpenCLTypeID ID;
    312   // Vector size (if applicable; 0 for scalars and generic types).
    313   const unsigned VectorWidth;
    314   // 0 if the type is not a pointer.
    315   const bool IsPointer : 1;
    316   // 0 if the type is not const.
    317   const bool IsConst : 1;
    318   // 0 if the type is not volatile.
    319   const bool IsVolatile : 1;
    320   // Access qualifier.
    321   const OpenCLAccessQual AccessQualifier;
    322   // Address space of the pointer (if applicable).
    323   const LangAS AS;
    324 };
    325 
    326 // One overload of an OpenCL builtin function.
    327 struct OpenCLBuiltinStruct {
    328   // Index of the signature in the OpenCLTypeStruct table.
    329   const unsigned SigTableIndex;
    330   // Entries between index SigTableIndex and (SigTableIndex + NumTypes - 1) in
    331   // the SignatureTable represent the complete signature.  The first type at
    332   // index SigTableIndex is the return type.
    333   const unsigned NumTypes;
    334   // Function attribute __attribute__((pure))
    335   const bool IsPure : 1;
    336   // Function attribute __attribute__((const))
    337   const bool IsConst : 1;
    338   // Function attribute __attribute__((convergent))
    339   const bool IsConv : 1;
    340   // OpenCL extension(s) required for this overload.
    341   const unsigned short Extension;
    342   // OpenCL versions in which this overload is available.
    343   const unsigned short Versions;
    344 };
    345 
    346 )";
    347 }
    348 
    349 // Verify that the combination of GenTypes in a signature is supported.
    350 // To simplify the logic for creating overloads in SemaLookup, only allow
    351 // a signature to contain different GenTypes if these GenTypes represent
    352 // the same number of actual scalar or vector types.
    353 //
    354 // Exit with a fatal error if an unsupported construct is encountered.
    355 static void VerifySignature(const std::vector<Record *> &Signature,
    356                             const Record *BuiltinRec) {
    357   unsigned GenTypeVecSizes = 1;
    358   unsigned GenTypeTypes = 1;
    359 
    360   for (const auto *T : Signature) {
    361     // Check all GenericType arguments in this signature.
    362     if (T->isSubClassOf("GenericType")) {
    363       // Check number of vector sizes.
    364       unsigned NVecSizes =
    365           T->getValueAsDef("VectorList")->getValueAsListOfInts("List").size();
    366       if (NVecSizes != GenTypeVecSizes && NVecSizes != 1) {
    367         if (GenTypeVecSizes > 1) {
    368           // We already saw a gentype with a different number of vector sizes.
    369           PrintFatalError(BuiltinRec->getLoc(),
    370               "number of vector sizes should be equal or 1 for all gentypes "
    371               "in a declaration");
    372         }
    373         GenTypeVecSizes = NVecSizes;
    374       }
    375 
    376       // Check number of data types.
    377       unsigned NTypes =
    378           T->getValueAsDef("TypeList")->getValueAsListOfDefs("List").size();
    379       if (NTypes != GenTypeTypes && NTypes != 1) {
    380         if (GenTypeTypes > 1) {
    381           // We already saw a gentype with a different number of types.
    382           PrintFatalError(BuiltinRec->getLoc(),
    383               "number of types should be equal or 1 for all gentypes "
    384               "in a declaration");
    385         }
    386         GenTypeTypes = NTypes;
    387       }
    388     }
    389   }
    390 }
    391 
    392 void BuiltinNameEmitter::GetOverloads() {
    393   // Populate the TypeMap.
    394   std::vector<Record *> Types = Records.getAllDerivedDefinitions("Type");
    395   unsigned I = 0;
    396   for (const auto &T : Types) {
    397     TypeMap.insert(std::make_pair(T, I++));
    398   }
    399 
    400   // Populate the SignaturesList and the FctOverloadMap.
    401   unsigned CumulativeSignIndex = 0;
    402   std::vector<Record *> Builtins = Records.getAllDerivedDefinitions("Builtin");
    403   for (const auto *B : Builtins) {
    404     StringRef BName = B->getValueAsString("Name");
    405     if (FctOverloadMap.find(BName) == FctOverloadMap.end()) {
    406       FctOverloadMap.insert(std::make_pair(
    407           BName, std::vector<std::pair<const Record *, unsigned>>{}));
    408     }
    409 
    410     auto Signature = B->getValueAsListOfDefs("Signature");
    411     // Reuse signatures to avoid unnecessary duplicates.
    412     auto it =
    413         std::find_if(SignaturesList.begin(), SignaturesList.end(),
    414                      [&](const std::pair<std::vector<Record *>, unsigned> &a) {
    415                        return a.first == Signature;
    416                      });
    417     unsigned SignIndex;
    418     if (it == SignaturesList.end()) {
    419       VerifySignature(Signature, B);
    420       SignaturesList.push_back(std::make_pair(Signature, CumulativeSignIndex));
    421       SignIndex = CumulativeSignIndex;
    422       CumulativeSignIndex += Signature.size();
    423     } else {
    424       SignIndex = it->second;
    425     }
    426     FctOverloadMap[BName].push_back(std::make_pair(B, SignIndex));
    427   }
    428 }
    429 
    430 void BuiltinNameEmitter::EmitExtensionTable() {
    431   OS << "static const char *FunctionExtensionTable[] = {\n";
    432   unsigned Index = 0;
    433   std::vector<Record *> FuncExtensions =
    434       Records.getAllDerivedDefinitions("FunctionExtension");
    435 
    436   for (const auto &FE : FuncExtensions) {
    437     // Emit OpenCL extension table entry.
    438     OS << "  // " << Index << ": " << FE->getName() << "\n"
    439        << "  \"" << FE->getValueAsString("ExtName") << "\",\n";
    440 
    441     // Record index of this extension.
    442     FunctionExtensionIndex[FE->getName()] = Index++;
    443   }
    444   OS << "};\n\n";
    445 }
    446 
    447 void BuiltinNameEmitter::EmitTypeTable() {
    448   OS << "static const OpenCLTypeStruct TypeTable[] = {\n";
    449   for (const auto &T : TypeMap) {
    450     const char *AccessQual =
    451         StringSwitch<const char *>(T.first->getValueAsString("AccessQualifier"))
    452             .Case("RO", "OCLAQ_ReadOnly")
    453             .Case("WO", "OCLAQ_WriteOnly")
    454             .Case("RW", "OCLAQ_ReadWrite")
    455             .Default("OCLAQ_None");
    456 
    457     OS << "  // " << T.second << "\n"
    458        << "  {OCLT_" << T.first->getValueAsString("Name") << ", "
    459        << T.first->getValueAsInt("VecWidth") << ", "
    460        << T.first->getValueAsBit("IsPointer") << ", "
    461        << T.first->getValueAsBit("IsConst") << ", "
    462        << T.first->getValueAsBit("IsVolatile") << ", "
    463        << AccessQual << ", "
    464        << T.first->getValueAsString("AddrSpace") << "},\n";
    465   }
    466   OS << "};\n\n";
    467 }
    468 
    469 void BuiltinNameEmitter::EmitSignatureTable() {
    470   // Store a type (e.g. int, float, int2, ...). The type is stored as an index
    471   // of a struct OpenCLType table. Multiple entries following each other form a
    472   // signature.
    473   OS << "static const unsigned short SignatureTable[] = {\n";
    474   for (const auto &P : SignaturesList) {
    475     OS << "  // " << P.second << "\n  ";
    476     for (const Record *R : P.first) {
    477       unsigned Entry = TypeMap.find(R)->second;
    478       if (Entry > USHRT_MAX) {
    479         // Report an error when seeing an entry that is too large for the
    480         // current index type (unsigned short).  When hitting this, the type
    481         // of SignatureTable will need to be changed.
    482         PrintFatalError("Entry in SignatureTable exceeds limit.");
    483       }
    484       OS << Entry << ", ";
    485     }
    486     OS << "\n";
    487   }
    488   OS << "};\n\n";
    489 }
    490 
    491 // Encode a range MinVersion..MaxVersion into a single bit mask that can be
    492 // checked against LangOpts using isOpenCLVersionContainedInMask().
    493 // This must be kept in sync with OpenCLVersionID in OpenCLOptions.h.
    494 // (Including OpenCLOptions.h here would be a layering violation.)
    495 static unsigned short EncodeVersions(unsigned int MinVersion,
    496                                      unsigned int MaxVersion) {
    497   unsigned short Encoded = 0;
    498 
    499   // A maximum version of 0 means available in all later versions.
    500   if (MaxVersion == 0) {
    501     MaxVersion = UINT_MAX;
    502   }
    503 
    504   unsigned VersionIDs[] = {100, 110, 120, 200, 300};
    505   for (unsigned I = 0; I < sizeof(VersionIDs) / sizeof(VersionIDs[0]); I++) {
    506     if (VersionIDs[I] >= MinVersion && VersionIDs[I] < MaxVersion) {
    507       Encoded |= 1 << I;
    508     }
    509   }
    510 
    511   return Encoded;
    512 }
    513 
    514 void BuiltinNameEmitter::EmitBuiltinTable() {
    515   unsigned Index = 0;
    516 
    517   OS << "static const OpenCLBuiltinStruct BuiltinTable[] = {\n";
    518   for (const auto &SLM : SignatureListMap) {
    519 
    520     OS << "  // " << (Index + 1) << ": ";
    521     for (const auto &Name : SLM.second.Names) {
    522       OS << Name << ", ";
    523     }
    524     OS << "\n";
    525 
    526     for (const auto &Overload : SLM.second.Signatures) {
    527       StringRef ExtName = Overload.first->getValueAsDef("Extension")->getName();
    528       unsigned int MinVersion =
    529           Overload.first->getValueAsDef("MinVersion")->getValueAsInt("ID");
    530       unsigned int MaxVersion =
    531           Overload.first->getValueAsDef("MaxVersion")->getValueAsInt("ID");
    532 
    533       OS << "  { " << Overload.second << ", "
    534          << Overload.first->getValueAsListOfDefs("Signature").size() << ", "
    535          << (Overload.first->getValueAsBit("IsPure")) << ", "
    536          << (Overload.first->getValueAsBit("IsConst")) << ", "
    537          << (Overload.first->getValueAsBit("IsConv")) << ", "
    538          << FunctionExtensionIndex[ExtName] << ", "
    539          << EncodeVersions(MinVersion, MaxVersion) << " },\n";
    540       Index++;
    541     }
    542   }
    543   OS << "};\n\n";
    544 }
    545 
    546 bool BuiltinNameEmitter::CanReuseSignature(
    547     BuiltinIndexListTy *Candidate,
    548     std::vector<std::pair<const Record *, unsigned>> &SignatureList) {
    549   assert(Candidate->size() == SignatureList.size() &&
    550          "signature lists should have the same size");
    551 
    552   auto &CandidateSigs =
    553       SignatureListMap.find(Candidate)->second.Signatures;
    554   for (unsigned Index = 0; Index < Candidate->size(); Index++) {
    555     const Record *Rec = SignatureList[Index].first;
    556     const Record *Rec2 = CandidateSigs[Index].first;
    557     if (Rec->getValueAsBit("IsPure") == Rec2->getValueAsBit("IsPure") &&
    558         Rec->getValueAsBit("IsConst") == Rec2->getValueAsBit("IsConst") &&
    559         Rec->getValueAsBit("IsConv") == Rec2->getValueAsBit("IsConv") &&
    560         Rec->getValueAsDef("MinVersion")->getValueAsInt("ID") ==
    561             Rec2->getValueAsDef("MinVersion")->getValueAsInt("ID") &&
    562         Rec->getValueAsDef("MaxVersion")->getValueAsInt("ID") ==
    563             Rec2->getValueAsDef("MaxVersion")->getValueAsInt("ID") &&
    564         Rec->getValueAsDef("Extension")->getName() ==
    565             Rec2->getValueAsDef("Extension")->getName()) {
    566       return true;
    567     }
    568   }
    569   return false;
    570 }
    571 
    572 void BuiltinNameEmitter::GroupBySignature() {
    573   // List of signatures known to be emitted.
    574   std::vector<BuiltinIndexListTy *> KnownSignatures;
    575 
    576   for (auto &Fct : FctOverloadMap) {
    577     bool FoundReusableSig = false;
    578 
    579     // Gather all signatures for the current function.
    580     auto *CurSignatureList = new BuiltinIndexListTy();
    581     for (const auto &Signature : Fct.second) {
    582       CurSignatureList->push_back(Signature.second);
    583     }
    584     // Sort the list to facilitate future comparisons.
    585     llvm::sort(*CurSignatureList);
    586 
    587     // Check if we have already seen another function with the same list of
    588     // signatures.  If so, just add the name of the function.
    589     for (auto *Candidate : KnownSignatures) {
    590       if (Candidate->size() == CurSignatureList->size() &&
    591           *Candidate == *CurSignatureList) {
    592         if (CanReuseSignature(Candidate, Fct.second)) {
    593           SignatureListMap.find(Candidate)->second.Names.push_back(Fct.first);
    594           FoundReusableSig = true;
    595         }
    596       }
    597     }
    598 
    599     if (FoundReusableSig) {
    600       delete CurSignatureList;
    601     } else {
    602       // Add a new entry.
    603       SignatureListMap[CurSignatureList] = {
    604           SmallVector<StringRef, 4>(1, Fct.first), Fct.second};
    605       KnownSignatures.push_back(CurSignatureList);
    606     }
    607   }
    608 
    609   for (auto *I : KnownSignatures) {
    610     delete I;
    611   }
    612 }
    613 
    614 void BuiltinNameEmitter::EmitStringMatcher() {
    615   std::vector<StringMatcher::StringPair> ValidBuiltins;
    616   unsigned CumulativeIndex = 1;
    617 
    618   for (const auto &SLM : SignatureListMap) {
    619     const auto &Ovl = SLM.second.Signatures;
    620 
    621     // A single signature list may be used by different builtins.  Return the
    622     // same <index, length> pair for each of those builtins.
    623     for (const auto &FctName : SLM.second.Names) {
    624       std::string RetStmt;
    625       raw_string_ostream SS(RetStmt);
    626       SS << "return std::make_pair(" << CumulativeIndex << ", " << Ovl.size()
    627          << ");";
    628       SS.flush();
    629       ValidBuiltins.push_back(
    630           StringMatcher::StringPair(std::string(FctName), RetStmt));
    631     }
    632     CumulativeIndex += Ovl.size();
    633   }
    634 
    635   OS << R"(
    636 // Find out whether a string matches an existing OpenCL builtin function name.
    637 // Returns: A pair <0, 0> if no name matches.
    638 //          A pair <Index, Len> indexing the BuiltinTable if the name is
    639 //          matching an OpenCL builtin function.
    640 static std::pair<unsigned, unsigned> isOpenCLBuiltin(llvm::StringRef Name) {
    641 
    642 )";
    643 
    644   StringMatcher("Name", ValidBuiltins, OS).Emit(0, true);
    645 
    646   OS << "  return std::make_pair(0, 0);\n";
    647   OS << "} // isOpenCLBuiltin\n";
    648 }
    649 
    650 void BuiltinNameEmitter::EmitQualTypeFinder() {
    651   OS << R"(
    652 
    653 static QualType getOpenCLEnumType(Sema &S, llvm::StringRef Name);
    654 static QualType getOpenCLTypedefType(Sema &S, llvm::StringRef Name);
    655 
    656 // Convert an OpenCLTypeStruct type to a list of QualTypes.
    657 // Generic types represent multiple types and vector sizes, thus a vector
    658 // is returned. The conversion is done in two steps:
    659 // Step 1: A switch statement fills a vector with scalar base types for the
    660 //         Cartesian product of (vector sizes) x (types) for generic types,
    661 //         or a single scalar type for non generic types.
    662 // Step 2: Qualifiers and other type properties such as vector size are
    663 //         applied.
    664 static void OCL2Qual(Sema &S, const OpenCLTypeStruct &Ty,
    665                      llvm::SmallVectorImpl<QualType> &QT) {
    666   ASTContext &Context = S.Context;
    667   // Number of scalar types in the GenType.
    668   unsigned GenTypeNumTypes;
    669   // Pointer to the list of vector sizes for the GenType.
    670   llvm::ArrayRef<unsigned> GenVectorSizes;
    671 )";
    672 
    673   // Generate list of vector sizes for each generic type.
    674   for (const auto *VectList : Records.getAllDerivedDefinitions("IntList")) {
    675     OS << "  constexpr unsigned List"
    676        << VectList->getValueAsString("Name") << "[] = {";
    677     for (const auto V : VectList->getValueAsListOfInts("List")) {
    678       OS << V << ", ";
    679     }
    680     OS << "};\n";
    681   }
    682 
    683   // Step 1.
    684   // Start of switch statement over all types.
    685   OS << "\n  switch (Ty.ID) {\n";
    686 
    687   // Switch cases for image types (Image2d, Image3d, ...)
    688   std::vector<Record *> ImageTypes =
    689       Records.getAllDerivedDefinitions("ImageType");
    690 
    691   // Map an image type name to its 3 access-qualified types (RO, WO, RW).
    692   StringMap<SmallVector<Record *, 3>> ImageTypesMap;
    693   for (auto *IT : ImageTypes) {
    694     auto Entry = ImageTypesMap.find(IT->getValueAsString("Name"));
    695     if (Entry == ImageTypesMap.end()) {
    696       SmallVector<Record *, 3> ImageList;
    697       ImageList.push_back(IT);
    698       ImageTypesMap.insert(
    699           std::make_pair(IT->getValueAsString("Name"), ImageList));
    700     } else {
    701       Entry->second.push_back(IT);
    702     }
    703   }
    704 
    705   // Emit the cases for the image types.  For an image type name, there are 3
    706   // corresponding QualTypes ("RO", "WO", "RW").  The "AccessQualifier" field
    707   // tells which one is needed.  Emit a switch statement that puts the
    708   // corresponding QualType into "QT".
    709   for (const auto &ITE : ImageTypesMap) {
    710     OS << "    case OCLT_" << ITE.getKey() << ":\n"
    711        << "      switch (Ty.AccessQualifier) {\n"
    712        << "        case OCLAQ_None:\n"
    713        << "          llvm_unreachable(\"Image without access qualifier\");\n";
    714     for (const auto &Image : ITE.getValue()) {
    715       OS << StringSwitch<const char *>(
    716                 Image->getValueAsString("AccessQualifier"))
    717                 .Case("RO", "        case OCLAQ_ReadOnly:\n")
    718                 .Case("WO", "        case OCLAQ_WriteOnly:\n")
    719                 .Case("RW", "        case OCLAQ_ReadWrite:\n")
    720          << "          QT.push_back("
    721          << Image->getValueAsDef("QTExpr")->getValueAsString("TypeExpr")
    722          << ");\n"
    723          << "          break;\n";
    724     }
    725     OS << "      }\n"
    726        << "      break;\n";
    727   }
    728 
    729   // Switch cases for generic types.
    730   for (const auto *GenType : Records.getAllDerivedDefinitions("GenericType")) {
    731     OS << "    case OCLT_" << GenType->getValueAsString("Name") << ": {\n";
    732 
    733     // Build the Cartesian product of (vector sizes) x (types).  Only insert
    734     // the plain scalar types for now; other type information such as vector
    735     // size and type qualifiers will be added after the switch statement.
    736     std::vector<Record *> BaseTypes =
    737         GenType->getValueAsDef("TypeList")->getValueAsListOfDefs("List");
    738 
    739     // Collect all QualTypes for a single vector size into TypeList.
    740     OS << "      SmallVector<QualType, " << BaseTypes.size() << "> TypeList;\n";
    741     for (const auto *T : BaseTypes) {
    742       StringRef Ext =
    743           T->getValueAsDef("Extension")->getValueAsString("ExtName");
    744       if (!Ext.empty()) {
    745         OS << "      if (S.getPreprocessor().isMacroDefined(\"" << Ext
    746            << "\")) {\n  ";
    747       }
    748       OS << "      TypeList.push_back("
    749          << T->getValueAsDef("QTExpr")->getValueAsString("TypeExpr") << ");\n";
    750       if (!Ext.empty()) {
    751         OS << "      }\n";
    752       }
    753     }
    754     OS << "      GenTypeNumTypes = TypeList.size();\n";
    755 
    756     // Duplicate the TypeList for every vector size.
    757     std::vector<int64_t> VectorList =
    758         GenType->getValueAsDef("VectorList")->getValueAsListOfInts("List");
    759     OS << "      QT.reserve(" << VectorList.size() * BaseTypes.size() << ");\n"
    760        << "      for (unsigned I = 0; I < " << VectorList.size() << "; I++) {\n"
    761        << "        QT.append(TypeList);\n"
    762        << "      }\n";
    763 
    764     // GenVectorSizes is the list of vector sizes for this GenType.
    765     OS << "      GenVectorSizes = List"
    766        << GenType->getValueAsDef("VectorList")->getValueAsString("Name")
    767        << ";\n"
    768        << "      break;\n"
    769        << "    }\n";
    770   }
    771 
    772   // Switch cases for non generic, non image types (int, int4, float, ...).
    773   // Only insert the plain scalar type; vector information and type qualifiers
    774   // are added in step 2.
    775   std::vector<Record *> Types = Records.getAllDerivedDefinitions("Type");
    776   StringMap<bool> TypesSeen;
    777 
    778   for (const auto *T : Types) {
    779     // Check this is not an image type
    780     if (ImageTypesMap.find(T->getValueAsString("Name")) != ImageTypesMap.end())
    781       continue;
    782     // Check we have not seen this Type
    783     if (TypesSeen.find(T->getValueAsString("Name")) != TypesSeen.end())
    784       continue;
    785     TypesSeen.insert(std::make_pair(T->getValueAsString("Name"), true));
    786 
    787     // Check the Type does not have an "abstract" QualType
    788     auto QT = T->getValueAsDef("QTExpr");
    789     if (QT->getValueAsBit("IsAbstract") == 1)
    790       continue;
    791     // Emit the cases for non generic, non image types.
    792     OS << "    case OCLT_" << T->getValueAsString("Name") << ":\n";
    793 
    794     StringRef Ext = T->getValueAsDef("Extension")->getValueAsString("ExtName");
    795     // If this type depends on an extension, ensure the extension macro is
    796     // defined.
    797     if (!Ext.empty()) {
    798       OS << "      if (S.getPreprocessor().isMacroDefined(\"" << Ext
    799          << "\")) {\n  ";
    800     }
    801     OS << "      QT.push_back(" << QT->getValueAsString("TypeExpr") << ");\n";
    802     if (!Ext.empty()) {
    803       OS << "      }\n";
    804     }
    805     OS << "      break;\n";
    806   }
    807 
    808   // End of switch statement.
    809   OS << "  } // end of switch (Ty.ID)\n\n";
    810 
    811   // Step 2.
    812   // Add ExtVector types if this was a generic type, as the switch statement
    813   // above only populated the list with scalar types.  This completes the
    814   // construction of the Cartesian product of (vector sizes) x (types).
    815   OS << "  // Construct the different vector types for each generic type.\n";
    816   OS << "  if (Ty.ID >= " << TypeList.size() << ") {";
    817   OS << R"(
    818     for (unsigned I = 0; I < QT.size(); I++) {
    819       // For scalars, size is 1.
    820       if (GenVectorSizes[I / GenTypeNumTypes] != 1) {
    821         QT[I] = Context.getExtVectorType(QT[I],
    822                           GenVectorSizes[I / GenTypeNumTypes]);
    823       }
    824     }
    825   }
    826 )";
    827 
    828   // Assign the right attributes to the types (e.g. vector size).
    829   OS << R"(
    830   // Set vector size for non-generic vector types.
    831   if (Ty.VectorWidth > 1) {
    832     for (unsigned Index = 0; Index < QT.size(); Index++) {
    833       QT[Index] = Context.getExtVectorType(QT[Index], Ty.VectorWidth);
    834     }
    835   }
    836 
    837   if (Ty.IsVolatile != 0) {
    838     for (unsigned Index = 0; Index < QT.size(); Index++) {
    839       QT[Index] = Context.getVolatileType(QT[Index]);
    840     }
    841   }
    842 
    843   if (Ty.IsConst != 0) {
    844     for (unsigned Index = 0; Index < QT.size(); Index++) {
    845       QT[Index] = Context.getConstType(QT[Index]);
    846     }
    847   }
    848 
    849   // Transform the type to a pointer as the last step, if necessary.
    850   // Builtin functions only have pointers on [const|volatile], no
    851   // [const|volatile] pointers, so this is ok to do it as a last step.
    852   if (Ty.IsPointer != 0) {
    853     for (unsigned Index = 0; Index < QT.size(); Index++) {
    854       QT[Index] = Context.getAddrSpaceQualType(QT[Index], Ty.AS);
    855       QT[Index] = Context.getPointerType(QT[Index]);
    856     }
    857   }
    858 )";
    859 
    860   // End of the "OCL2Qual" function.
    861   OS << "\n} // OCL2Qual\n";
    862 }
    863 
    864 void clang::EmitClangOpenCLBuiltins(RecordKeeper &Records, raw_ostream &OS) {
    865   BuiltinNameEmitter NameChecker(Records, OS);
    866   NameChecker.Emit();
    867 }
    868