forked from OSchip/llvm-project
270 lines
9.3 KiB
C++
270 lines
9.3 KiB
C++
//===-- RTBuilder.h ---------------------------------------------*- C++ -*-===//
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//
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// Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions.
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// See https://llvm.org/LICENSE.txt for license information.
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// SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
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//
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//===----------------------------------------------------------------------===//
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///
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/// \file
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/// This file defines some C++17 template classes that are used to convert the
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/// signatures of plain old C functions into a model that can be used to
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/// generate MLIR calls to those functions. This can be used to autogenerate
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/// tables at compiler compile-time to call runtime support code.
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///
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//===----------------------------------------------------------------------===//
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#ifndef FORTRAN_LOWER_RTBUILDER_H
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#define FORTRAN_LOWER_RTBUILDER_H
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#include "flang/Lower/ConvertType.h"
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#include "flang/Optimizer/Dialect/FIRType.h"
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#include "mlir/IR/BuiltinTypes.h"
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#include "mlir/IR/MLIRContext.h"
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#include "llvm/ADT/SmallVector.h"
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#include <functional>
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// List the runtime headers we want to be able to dissect
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#include "flang/Runtime/io-api.h"
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namespace Fortran::lower {
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using TypeBuilderFunc = mlir::Type (*)(mlir::MLIRContext *);
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using FuncTypeBuilderFunc = mlir::FunctionType (*)(mlir::MLIRContext *);
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//===----------------------------------------------------------------------===//
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// Type builder models
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//===----------------------------------------------------------------------===//
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/// Return a function that returns the type signature model for the type `T`
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/// when provided an MLIRContext*. This allows one to translate C(++) function
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/// signatures from runtime header files to MLIR signatures into a static table
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/// at compile-time.
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///
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/// For example, when `T` is `int`, return a function that returns the MLIR
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/// standard type `i32` when `sizeof(int)` is 4.
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template <typename T>
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static constexpr TypeBuilderFunc getModel();
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template <>
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constexpr TypeBuilderFunc getModel<int>() {
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return [](mlir::MLIRContext *context) -> mlir::Type {
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return mlir::IntegerType::get(context, 8 * sizeof(int));
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};
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}
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template <>
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constexpr TypeBuilderFunc getModel<int &>() {
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return [](mlir::MLIRContext *context) -> mlir::Type {
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TypeBuilderFunc f{getModel<int>()};
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return fir::ReferenceType::get(f(context));
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};
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}
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template <>
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constexpr TypeBuilderFunc getModel<Fortran::runtime::io::Iostat>() {
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return [](mlir::MLIRContext *context) -> mlir::Type {
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return mlir::IntegerType::get(context,
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8 * sizeof(Fortran::runtime::io::Iostat));
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};
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}
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template <>
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constexpr TypeBuilderFunc getModel<char *>() {
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return [](mlir::MLIRContext *context) -> mlir::Type {
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return fir::ReferenceType::get(mlir::IntegerType::get(context, 8));
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};
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}
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template <>
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constexpr TypeBuilderFunc getModel<const char *>() {
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return getModel<char *>();
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}
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template <>
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constexpr TypeBuilderFunc getModel<const char16_t *>() {
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return [](mlir::MLIRContext *context) -> mlir::Type {
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return fir::ReferenceType::get(mlir::IntegerType::get(context, 16));
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};
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}
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template <>
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constexpr TypeBuilderFunc getModel<const char32_t *>() {
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return [](mlir::MLIRContext *context) -> mlir::Type {
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return fir::ReferenceType::get(mlir::IntegerType::get(context, 32));
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};
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}
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template <>
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constexpr TypeBuilderFunc getModel<void **>() {
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return [](mlir::MLIRContext *context) -> mlir::Type {
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return fir::ReferenceType::get(
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fir::PointerType::get(mlir::IntegerType::get(context, 8)));
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};
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}
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template <>
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constexpr TypeBuilderFunc getModel<std::int64_t>() {
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return [](mlir::MLIRContext *context) -> mlir::Type {
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return mlir::IntegerType::get(context, 64);
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};
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}
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template <>
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constexpr TypeBuilderFunc getModel<std::int64_t &>() {
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return [](mlir::MLIRContext *context) -> mlir::Type {
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TypeBuilderFunc f{getModel<std::int64_t>()};
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return fir::ReferenceType::get(f(context));
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};
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}
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template <>
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constexpr TypeBuilderFunc getModel<std::size_t>() {
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return [](mlir::MLIRContext *context) -> mlir::Type {
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return mlir::IntegerType::get(context, 8 * sizeof(std::size_t));
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};
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}
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template <>
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constexpr TypeBuilderFunc getModel<Fortran::runtime::io::IoStatementState *>() {
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return getModel<char *>();
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}
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template <>
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constexpr TypeBuilderFunc getModel<double>() {
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return [](mlir::MLIRContext *context) -> mlir::Type {
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return mlir::FloatType::getF64(context);
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};
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}
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template <>
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constexpr TypeBuilderFunc getModel<double &>() {
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return [](mlir::MLIRContext *context) -> mlir::Type {
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TypeBuilderFunc f{getModel<double>()};
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return fir::ReferenceType::get(f(context));
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};
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}
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template <>
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constexpr TypeBuilderFunc getModel<float>() {
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return [](mlir::MLIRContext *context) -> mlir::Type {
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return mlir::FloatType::getF32(context);
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};
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}
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template <>
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constexpr TypeBuilderFunc getModel<float &>() {
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return [](mlir::MLIRContext *context) -> mlir::Type {
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TypeBuilderFunc f{getModel<float>()};
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return fir::ReferenceType::get(f(context));
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};
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}
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template <>
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constexpr TypeBuilderFunc getModel<bool>() {
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return [](mlir::MLIRContext *context) -> mlir::Type {
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return mlir::IntegerType::get(context, 1);
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};
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}
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template <>
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constexpr TypeBuilderFunc getModel<bool &>() {
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return [](mlir::MLIRContext *context) -> mlir::Type {
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TypeBuilderFunc f{getModel<bool>()};
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return fir::ReferenceType::get(f(context));
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};
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}
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template <>
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constexpr TypeBuilderFunc getModel<const Fortran::runtime::Descriptor &>() {
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return [](mlir::MLIRContext *context) -> mlir::Type {
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return fir::BoxType::get(mlir::NoneType::get(context));
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};
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}
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template <>
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constexpr TypeBuilderFunc
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getModel<const Fortran::runtime::io::NamelistGroup &>() {
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return [](mlir::MLIRContext *context) -> mlir::Type {
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// FIXME: a namelist group must be some well-defined data structure, use a
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// tuple as a proxy for the moment
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return mlir::TupleType::get(context);
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};
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}
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template <>
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constexpr TypeBuilderFunc getModel<void>() {
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return [](mlir::MLIRContext *context) -> mlir::Type {
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return mlir::NoneType::get(context);
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};
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}
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template <typename...>
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struct RuntimeTableKey;
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template <typename RT, typename... ATs>
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struct RuntimeTableKey<RT(ATs...)> {
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static constexpr FuncTypeBuilderFunc getTypeModel() {
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return [](mlir::MLIRContext *ctxt) {
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TypeBuilderFunc ret = getModel<RT>();
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std::array<TypeBuilderFunc, sizeof...(ATs)> args = {getModel<ATs>()...};
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mlir::Type retTy = ret(ctxt);
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llvm::SmallVector<mlir::Type, sizeof...(ATs)> argTys;
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for (auto f : args)
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argTys.push_back(f(ctxt));
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return mlir::FunctionType::get(ctxt, argTys, {retTy});
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};
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}
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};
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//===----------------------------------------------------------------------===//
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// Runtime table building (constexpr folded)
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//===----------------------------------------------------------------------===//
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template <char... Cs>
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using RuntimeIdentifier = std::integer_sequence<char, Cs...>;
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namespace details {
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template <typename T, T... As, T... Bs>
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static constexpr std::integer_sequence<T, As..., Bs...>
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concat(std::integer_sequence<T, As...>, std::integer_sequence<T, Bs...>) {
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return {};
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}
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template <typename T, T... As, T... Bs, typename... Cs>
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static constexpr auto concat(std::integer_sequence<T, As...>,
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std::integer_sequence<T, Bs...>, Cs...) {
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return concat(std::integer_sequence<T, As..., Bs...>{}, Cs{}...);
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}
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template <typename T>
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static constexpr std::integer_sequence<T> concat(std::integer_sequence<T>) {
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return {};
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}
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template <typename T, T a>
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static constexpr auto filterZero(std::integer_sequence<T, a>) {
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if constexpr (a != 0) {
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return std::integer_sequence<T, a>{};
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} else {
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return std::integer_sequence<T>{};
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}
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}
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template <typename T, T... b>
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static constexpr auto filter(std::integer_sequence<T, b...>) {
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if constexpr (sizeof...(b) > 0) {
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return details::concat(filterZero(std::integer_sequence<T, b>{})...);
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} else {
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return std::integer_sequence<T>{};
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}
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}
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} // namespace details
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template <typename...>
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struct RuntimeTableEntry;
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template <typename KT, char... Cs>
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struct RuntimeTableEntry<RuntimeTableKey<KT>, RuntimeIdentifier<Cs...>> {
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static constexpr FuncTypeBuilderFunc getTypeModel() {
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return RuntimeTableKey<KT>::getTypeModel();
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}
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static constexpr const char name[sizeof...(Cs) + 1] = {Cs..., '\0'};
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};
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#undef E
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#define E(L, I) (I < sizeof(L) / sizeof(*L) ? L[I] : 0)
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#define QuoteKey(X) #X
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#define MacroExpandKey(X) \
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E(X, 0), E(X, 1), E(X, 2), E(X, 3), E(X, 4), E(X, 5), E(X, 6), E(X, 7), \
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E(X, 8), E(X, 9), E(X, 10), E(X, 11), E(X, 12), E(X, 13), E(X, 14), \
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E(X, 15), E(X, 16), E(X, 17), E(X, 18), E(X, 19), E(X, 20), E(X, 21), \
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E(X, 22), E(X, 23), E(X, 24), E(X, 25), E(X, 26), E(X, 27), E(X, 28), \
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E(X, 29), E(X, 30), E(X, 31), E(X, 32), E(X, 33), E(X, 34), E(X, 35), \
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E(X, 36), E(X, 37), E(X, 38), E(X, 39), E(X, 40), E(X, 41), E(X, 42), \
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E(X, 43), E(X, 44), E(X, 45), E(X, 46), E(X, 47), E(X, 48), E(X, 49)
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#define ExpandKey(X) MacroExpandKey(QuoteKey(X))
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#define FullSeq(X) std::integer_sequence<char, ExpandKey(X)>
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#define AsSequence(X) decltype(Fortran::lower::details::filter(FullSeq(X){}))
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#define mkKey(X) \
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Fortran::lower::RuntimeTableEntry< \
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Fortran::lower::RuntimeTableKey<decltype(X)>, AsSequence(X)>
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} // namespace Fortran::lower
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#endif // FORTRAN_LOWER_RTBUILDER_H
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