//===---- llvm/TypeBuilder.h - Builder for LLVM types -----------*- C++ -*-===// // // The LLVM Compiler Infrastructure // // This file is distributed under the University of Illinois Open Source // License. See LICENSE.TXT for details. // //===----------------------------------------------------------------------===// // // This file defines the TypeBuilder class, which is used as a convenient way to // create LLVM types with a consistent and simplified interface. // //===----------------------------------------------------------------------===// #ifndef LLVM_TYPEBUILDER_H #define LLVM_TYPEBUILDER_H #include "llvm/DerivedTypes.h" #include "llvm/LLVMContext.h" #include namespace llvm { /// TypeBuilder - This provides a uniform API for looking up types /// known at compile time. To support cross-compilation, we define a /// series of tag types in the llvm::types namespace, like i, /// ieee_float, ppc_fp128, etc. TypeBuilder allows T to be /// any of these, a native C type (whose size may depend on the host /// compiler), or a pointer, function, or struct type built out of /// these. TypeBuilder removes native C types from this set /// to guarantee that its result is suitable for cross-compilation. /// We define the primitive types, pointer types, and functions up to /// 5 arguments here, but to use this class with your own types, /// you'll need to specialize it. For example, say you want to call a /// function defined externally as: /// /// struct MyType { /// int32 a; /// int32 *b; /// void *array[1]; // Intended as a flexible array. /// }; /// int8 AFunction(struct MyType *value); /// /// You'll want to use /// Function::Create(TypeBuilder(MyType*), true>::get(), ...) /// to declare the function, but when you first try this, your compiler will /// complain that TypeBuilder::get() doesn't exist. To fix this, /// write: /// /// namespace llvm { /// template class TypeBuilder { /// public: /// static StructType *get(LLVMContext &Context) { /// // If you cache this result, be sure to cache it separately /// // for each LLVMContext. /// return StructType::get( /// TypeBuilder, xcompile>::get(Context), /// TypeBuilder*, xcompile>::get(Context), /// TypeBuilder*[], xcompile>::get(Context), /// NULL); /// } /// /// // You may find this a convenient place to put some constants /// // to help with getelementptr. They don't have any effect on /// // the operation of TypeBuilder. /// enum Fields { /// FIELD_A, /// FIELD_B, /// FIELD_ARRAY /// }; /// } /// } // namespace llvm /// /// TypeBuilder cannot handle recursive types or types you only know at runtime. /// If you try to give it a recursive type, it will deadlock, infinitely /// recurse, or do something similarly undesirable. template class TypeBuilder {}; // Types for use with cross-compilable TypeBuilders. These correspond // exactly with an LLVM-native type. namespace types { /// i corresponds to the LLVM IntegerType with N bits. template class i {}; // The following classes represent the LLVM floating types. class ieee_float {}; class ieee_double {}; class x86_fp80 {}; class fp128 {}; class ppc_fp128 {}; // X86 MMX. class x86_mmx {}; } // namespace types // LLVM doesn't have const or volatile types. template class TypeBuilder : public TypeBuilder {}; template class TypeBuilder : public TypeBuilder {}; template class TypeBuilder : public TypeBuilder {}; // Pointers template class TypeBuilder { public: static PointerType *get(LLVMContext &Context) { return PointerType::getUnqual(TypeBuilder::get(Context)); } }; /// There is no support for references template class TypeBuilder {}; // Arrays template class TypeBuilder { public: static ArrayType *get(LLVMContext &Context) { return ArrayType::get(TypeBuilder::get(Context), N); } }; /// LLVM uses an array of length 0 to represent an unknown-length array. template class TypeBuilder { public: static ArrayType *get(LLVMContext &Context) { return ArrayType::get(TypeBuilder::get(Context), 0); } }; // Define the C integral types only for TypeBuilder. // // C integral types do not have a defined size. It would be nice to use the // stdint.h-defined typedefs that do have defined sizes, but we'd run into the // following problem: // // On an ILP32 machine, stdint.h might define: // // typedef int int32_t; // typedef long long int64_t; // typedef long size_t; // // If we defined TypeBuilder and TypeBuilder, then any use of // TypeBuilder would fail. We couldn't define TypeBuilder in // addition to the defined-size types because we'd get duplicate definitions on // platforms where stdint.h instead defines: // // typedef int int32_t; // typedef long long int64_t; // typedef int size_t; // // So we define all the primitive C types and nothing else. #define DEFINE_INTEGRAL_TYPEBUILDER(T) \ template<> class TypeBuilder { \ public: \ static IntegerType *get(LLVMContext &Context) { \ return IntegerType::get(Context, sizeof(T) * CHAR_BIT); \ } \ }; \ template<> class TypeBuilder { \ /* We provide a definition here so users don't accidentally */ \ /* define these types to work. */ \ } DEFINE_INTEGRAL_TYPEBUILDER(char); DEFINE_INTEGRAL_TYPEBUILDER(signed char); DEFINE_INTEGRAL_TYPEBUILDER(unsigned char); DEFINE_INTEGRAL_TYPEBUILDER(short); DEFINE_INTEGRAL_TYPEBUILDER(unsigned short); DEFINE_INTEGRAL_TYPEBUILDER(int); DEFINE_INTEGRAL_TYPEBUILDER(unsigned int); DEFINE_INTEGRAL_TYPEBUILDER(long); DEFINE_INTEGRAL_TYPEBUILDER(unsigned long); #ifdef _MSC_VER DEFINE_INTEGRAL_TYPEBUILDER(__int64); DEFINE_INTEGRAL_TYPEBUILDER(unsigned __int64); #else /* _MSC_VER */ DEFINE_INTEGRAL_TYPEBUILDER(long long); DEFINE_INTEGRAL_TYPEBUILDER(unsigned long long); #endif /* _MSC_VER */ #undef DEFINE_INTEGRAL_TYPEBUILDER template class TypeBuilder, cross> { public: static IntegerType *get(LLVMContext &C) { return IntegerType::get(C, num_bits); } }; template<> class TypeBuilder { public: static Type *get(LLVMContext& C) { return Type::getFloatTy(C); } }; template<> class TypeBuilder {}; template<> class TypeBuilder { public: static Type *get(LLVMContext& C) { return Type::getDoubleTy(C); } }; template<> class TypeBuilder {}; template class TypeBuilder { public: static Type *get(LLVMContext& C) { return Type::getFloatTy(C); } }; template class TypeBuilder { public: static Type *get(LLVMContext& C) { return Type::getDoubleTy(C); } }; template class TypeBuilder { public: static Type *get(LLVMContext& C) { return Type::getX86_FP80Ty(C); } }; template class TypeBuilder { public: static Type *get(LLVMContext& C) { return Type::getFP128Ty(C); } }; template class TypeBuilder { public: static Type *get(LLVMContext& C) { return Type::getPPC_FP128Ty(C); } }; template class TypeBuilder { public: static Type *get(LLVMContext& C) { return Type::getX86_MMXTy(C); } }; template class TypeBuilder { public: static Type *get(LLVMContext &C) { return Type::getVoidTy(C); } }; /// void* is disallowed in LLVM types, but it occurs often enough in C code that /// we special case it. template<> class TypeBuilder : public TypeBuilder*, false> {}; template<> class TypeBuilder : public TypeBuilder*, false> {}; template<> class TypeBuilder : public TypeBuilder*, false> {}; template<> class TypeBuilder : public TypeBuilder*, false> {}; template class TypeBuilder { public: static FunctionType *get(LLVMContext &Context) { return FunctionType::get(TypeBuilder::get(Context), false); } }; template class TypeBuilder { public: static FunctionType *get(LLVMContext &Context) { Type *params[] = { TypeBuilder::get(Context), }; return FunctionType::get(TypeBuilder::get(Context), params, false); } }; template class TypeBuilder { public: static FunctionType *get(LLVMContext &Context) { Type *params[] = { TypeBuilder::get(Context), TypeBuilder::get(Context), }; return FunctionType::get(TypeBuilder::get(Context), params, false); } }; template class TypeBuilder { public: static FunctionType *get(LLVMContext &Context) { Type *params[] = { TypeBuilder::get(Context), TypeBuilder::get(Context), TypeBuilder::get(Context), }; return FunctionType::get(TypeBuilder::get(Context), params, false); } }; template class TypeBuilder { public: static FunctionType *get(LLVMContext &Context) { Type *params[] = { TypeBuilder::get(Context), TypeBuilder::get(Context), TypeBuilder::get(Context), TypeBuilder::get(Context), }; return FunctionType::get(TypeBuilder::get(Context), params, false); } }; template class TypeBuilder { public: static FunctionType *get(LLVMContext &Context) { Type *params[] = { TypeBuilder::get(Context), TypeBuilder::get(Context), TypeBuilder::get(Context), TypeBuilder::get(Context), TypeBuilder::get(Context), }; return FunctionType::get(TypeBuilder::get(Context), params, false); } }; template class TypeBuilder { public: static FunctionType *get(LLVMContext &Context) { return FunctionType::get(TypeBuilder::get(Context), true); } }; template class TypeBuilder { public: static FunctionType *get(LLVMContext &Context) { Type *params[] = { TypeBuilder::get(Context), }; return FunctionType::get(TypeBuilder::get(Context), params, true); } }; template class TypeBuilder { public: static FunctionType *get(LLVMContext &Context) { Type *params[] = { TypeBuilder::get(Context), TypeBuilder::get(Context), }; return FunctionType::get(TypeBuilder::get(Context), params, true); } }; template class TypeBuilder { public: static FunctionType *get(LLVMContext &Context) { Type *params[] = { TypeBuilder::get(Context), TypeBuilder::get(Context), TypeBuilder::get(Context), }; return FunctionType::get(TypeBuilder::get(Context), params, true); } }; template class TypeBuilder { public: static FunctionType *get(LLVMContext &Context) { Type *params[] = { TypeBuilder::get(Context), TypeBuilder::get(Context), TypeBuilder::get(Context), TypeBuilder::get(Context), }; return FunctionType::get(TypeBuilder::get(Context), params, true); } }; template class TypeBuilder { public: static FunctionType *get(LLVMContext &Context) { Type *params[] = { TypeBuilder::get(Context), TypeBuilder::get(Context), TypeBuilder::get(Context), TypeBuilder::get(Context), TypeBuilder::get(Context), }; return FunctionType::get(TypeBuilder::get(Context), params, true); } }; } // namespace llvm #endif