1216 lines
58 KiB
C++
1216 lines
58 KiB
C++
//===-- Reduction.cpp -- generate reduction intrinsics runtime calls- -----===//
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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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#include "flang/Optimizer/Builder/Runtime/Reduction.h"
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#include "flang/Optimizer/Builder/BoxValue.h"
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#include "flang/Optimizer/Builder/Character.h"
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#include "flang/Optimizer/Builder/FIRBuilder.h"
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#include "flang/Optimizer/Builder/Runtime/RTBuilder.h"
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#include "flang/Optimizer/Support/Utils.h"
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#include "flang/Runtime/reduction.h"
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#include "mlir/Dialect/Func/IR/FuncOps.h"
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using namespace Fortran::runtime;
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#define STRINGIFY(S) #S
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#define JOIN2(A, B) A##B
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#define JOIN3(A, B, C) A##B##C
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/// Placeholder for real*10 version of Maxval Intrinsic
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struct ForcedMaxvalReal10 {
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static constexpr const char *name = ExpandAndQuoteKey(RTNAME(MaxvalReal10));
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static constexpr fir::runtime::FuncTypeBuilderFunc getTypeModel() {
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return [](mlir::MLIRContext *ctx) {
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auto ty = mlir::FloatType::getF80(ctx);
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auto boxTy =
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fir::runtime::getModel<const Fortran::runtime::Descriptor &>()(ctx);
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auto strTy = fir::ReferenceType::get(mlir::IntegerType::get(ctx, 8));
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auto intTy = mlir::IntegerType::get(ctx, 8 * sizeof(int));
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return mlir::FunctionType::get(ctx, {boxTy, strTy, intTy, intTy, boxTy},
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{ty});
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};
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}
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};
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/// Placeholder for real*16 version of Maxval Intrinsic
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struct ForcedMaxvalReal16 {
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static constexpr const char *name = ExpandAndQuoteKey(RTNAME(MaxvalReal16));
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static constexpr fir::runtime::FuncTypeBuilderFunc getTypeModel() {
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return [](mlir::MLIRContext *ctx) {
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auto ty = mlir::FloatType::getF128(ctx);
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auto boxTy =
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fir::runtime::getModel<const Fortran::runtime::Descriptor &>()(ctx);
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auto strTy = fir::ReferenceType::get(mlir::IntegerType::get(ctx, 8));
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auto intTy = mlir::IntegerType::get(ctx, 8 * sizeof(int));
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return mlir::FunctionType::get(ctx, {boxTy, strTy, intTy, intTy, boxTy},
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{ty});
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};
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}
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};
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/// Placeholder for integer*16 version of Maxval Intrinsic
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struct ForcedMaxvalInteger16 {
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static constexpr const char *name =
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ExpandAndQuoteKey(RTNAME(MaxvalInteger16));
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static constexpr fir::runtime::FuncTypeBuilderFunc getTypeModel() {
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return [](mlir::MLIRContext *ctx) {
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auto ty = mlir::IntegerType::get(ctx, 128);
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auto boxTy =
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fir::runtime::getModel<const Fortran::runtime::Descriptor &>()(ctx);
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auto strTy = fir::ReferenceType::get(mlir::IntegerType::get(ctx, 8));
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auto intTy = mlir::IntegerType::get(ctx, 8 * sizeof(int));
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return mlir::FunctionType::get(ctx, {boxTy, strTy, intTy, intTy, boxTy},
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{ty});
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};
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}
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};
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/// Placeholder for real*10 version of Minval Intrinsic
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struct ForcedMinvalReal10 {
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static constexpr const char *name = ExpandAndQuoteKey(RTNAME(MinvalReal10));
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static constexpr fir::runtime::FuncTypeBuilderFunc getTypeModel() {
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return [](mlir::MLIRContext *ctx) {
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auto ty = mlir::FloatType::getF80(ctx);
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auto boxTy =
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fir::runtime::getModel<const Fortran::runtime::Descriptor &>()(ctx);
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auto strTy = fir::ReferenceType::get(mlir::IntegerType::get(ctx, 8));
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auto intTy = mlir::IntegerType::get(ctx, 8 * sizeof(int));
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return mlir::FunctionType::get(ctx, {boxTy, strTy, intTy, intTy, boxTy},
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{ty});
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};
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}
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};
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/// Placeholder for real*16 version of Minval Intrinsic
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struct ForcedMinvalReal16 {
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static constexpr const char *name = ExpandAndQuoteKey(RTNAME(MinvalReal16));
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static constexpr fir::runtime::FuncTypeBuilderFunc getTypeModel() {
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return [](mlir::MLIRContext *ctx) {
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auto ty = mlir::FloatType::getF128(ctx);
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auto boxTy =
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fir::runtime::getModel<const Fortran::runtime::Descriptor &>()(ctx);
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auto strTy = fir::ReferenceType::get(mlir::IntegerType::get(ctx, 8));
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auto intTy = mlir::IntegerType::get(ctx, 8 * sizeof(int));
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return mlir::FunctionType::get(ctx, {boxTy, strTy, intTy, intTy, boxTy},
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{ty});
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};
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}
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};
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/// Placeholder for integer*16 version of Minval Intrinsic
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struct ForcedMinvalInteger16 {
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static constexpr const char *name =
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ExpandAndQuoteKey(RTNAME(MinvalInteger16));
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static constexpr fir::runtime::FuncTypeBuilderFunc getTypeModel() {
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return [](mlir::MLIRContext *ctx) {
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auto ty = mlir::IntegerType::get(ctx, 128);
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auto boxTy =
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fir::runtime::getModel<const Fortran::runtime::Descriptor &>()(ctx);
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auto strTy = fir::ReferenceType::get(mlir::IntegerType::get(ctx, 8));
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auto intTy = mlir::IntegerType::get(ctx, 8 * sizeof(int));
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return mlir::FunctionType::get(ctx, {boxTy, strTy, intTy, intTy, boxTy},
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{ty});
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};
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}
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};
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/// Placeholder for real*10 version of Norm2 Intrinsic
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struct ForcedNorm2Real10 {
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static constexpr const char *name = ExpandAndQuoteKey(RTNAME(Norm2_10));
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static constexpr fir::runtime::FuncTypeBuilderFunc getTypeModel() {
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return [](mlir::MLIRContext *ctx) {
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auto ty = mlir::FloatType::getF80(ctx);
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auto boxTy =
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fir::runtime::getModel<const Fortran::runtime::Descriptor &>()(ctx);
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auto strTy = fir::ReferenceType::get(mlir::IntegerType::get(ctx, 8));
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auto intTy = mlir::IntegerType::get(ctx, 8 * sizeof(int));
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return mlir::FunctionType::get(ctx, {boxTy, strTy, intTy, intTy}, {ty});
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};
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}
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};
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/// Placeholder for real*16 version of Norm2 Intrinsic
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struct ForcedNorm2Real16 {
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static constexpr const char *name = ExpandAndQuoteKey(RTNAME(Norm2_16));
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static constexpr fir::runtime::FuncTypeBuilderFunc getTypeModel() {
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return [](mlir::MLIRContext *ctx) {
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auto ty = mlir::FloatType::getF128(ctx);
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auto boxTy =
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fir::runtime::getModel<const Fortran::runtime::Descriptor &>()(ctx);
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auto strTy = fir::ReferenceType::get(mlir::IntegerType::get(ctx, 8));
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auto intTy = mlir::IntegerType::get(ctx, 8 * sizeof(int));
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return mlir::FunctionType::get(ctx, {boxTy, strTy, intTy, intTy}, {ty});
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};
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}
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};
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/// Placeholder for real*10 version of Product Intrinsic
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struct ForcedProductReal10 {
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static constexpr const char *name = ExpandAndQuoteKey(RTNAME(ProductReal10));
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static constexpr fir::runtime::FuncTypeBuilderFunc getTypeModel() {
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return [](mlir::MLIRContext *ctx) {
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auto ty = mlir::FloatType::getF80(ctx);
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auto boxTy =
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fir::runtime::getModel<const Fortran::runtime::Descriptor &>()(ctx);
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auto strTy = fir::ReferenceType::get(mlir::IntegerType::get(ctx, 8));
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auto intTy = mlir::IntegerType::get(ctx, 8 * sizeof(int));
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return mlir::FunctionType::get(ctx, {boxTy, strTy, intTy, intTy, boxTy},
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{ty});
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};
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}
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};
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/// Placeholder for real*16 version of Product Intrinsic
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struct ForcedProductReal16 {
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static constexpr const char *name = ExpandAndQuoteKey(RTNAME(ProductReal16));
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static constexpr fir::runtime::FuncTypeBuilderFunc getTypeModel() {
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return [](mlir::MLIRContext *ctx) {
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auto ty = mlir::FloatType::getF128(ctx);
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auto boxTy =
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fir::runtime::getModel<const Fortran::runtime::Descriptor &>()(ctx);
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auto strTy = fir::ReferenceType::get(mlir::IntegerType::get(ctx, 8));
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auto intTy = mlir::IntegerType::get(ctx, 8 * sizeof(int));
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return mlir::FunctionType::get(ctx, {boxTy, strTy, intTy, intTy, boxTy},
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{ty});
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};
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}
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};
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/// Placeholder for integer*16 version of Product Intrinsic
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struct ForcedProductInteger16 {
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static constexpr const char *name =
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ExpandAndQuoteKey(RTNAME(ProductInteger16));
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static constexpr fir::runtime::FuncTypeBuilderFunc getTypeModel() {
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return [](mlir::MLIRContext *ctx) {
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auto ty = mlir::IntegerType::get(ctx, 128);
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auto boxTy =
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fir::runtime::getModel<const Fortran::runtime::Descriptor &>()(ctx);
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auto strTy = fir::ReferenceType::get(mlir::IntegerType::get(ctx, 8));
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auto intTy = mlir::IntegerType::get(ctx, 8 * sizeof(int));
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return mlir::FunctionType::get(ctx, {boxTy, strTy, intTy, intTy, boxTy},
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{ty});
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};
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}
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};
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/// Placeholder for complex(10) version of Product Intrinsic
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struct ForcedProductComplex10 {
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static constexpr const char *name =
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ExpandAndQuoteKey(RTNAME(CppProductComplex10));
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static constexpr fir::runtime::FuncTypeBuilderFunc getTypeModel() {
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return [](mlir::MLIRContext *ctx) {
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auto ty = mlir::ComplexType::get(mlir::FloatType::getF80(ctx));
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auto boxTy =
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fir::runtime::getModel<const Fortran::runtime::Descriptor &>()(ctx);
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auto strTy = fir::ReferenceType::get(mlir::IntegerType::get(ctx, 8));
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auto intTy = mlir::IntegerType::get(ctx, 8 * sizeof(int));
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auto resTy = fir::ReferenceType::get(ty);
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return mlir::FunctionType::get(
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ctx, {resTy, boxTy, strTy, intTy, intTy, boxTy}, {});
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};
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}
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};
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/// Placeholder for complex(16) version of Product Intrinsic
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struct ForcedProductComplex16 {
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static constexpr const char *name =
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ExpandAndQuoteKey(RTNAME(CppProductComplex16));
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static constexpr fir::runtime::FuncTypeBuilderFunc getTypeModel() {
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return [](mlir::MLIRContext *ctx) {
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auto ty = mlir::ComplexType::get(mlir::FloatType::getF128(ctx));
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auto boxTy =
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fir::runtime::getModel<const Fortran::runtime::Descriptor &>()(ctx);
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auto strTy = fir::ReferenceType::get(mlir::IntegerType::get(ctx, 8));
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auto intTy = mlir::IntegerType::get(ctx, 8 * sizeof(int));
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auto resTy = fir::ReferenceType::get(ty);
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return mlir::FunctionType::get(
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ctx, {resTy, boxTy, strTy, intTy, intTy, boxTy}, {});
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};
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}
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};
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/// Placeholder for real*10 version of DotProduct Intrinsic
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struct ForcedDotProductReal10 {
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static constexpr const char *name =
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ExpandAndQuoteKey(RTNAME(DotProductReal10));
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static constexpr fir::runtime::FuncTypeBuilderFunc getTypeModel() {
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return [](mlir::MLIRContext *ctx) {
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auto ty = mlir::FloatType::getF80(ctx);
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auto boxTy =
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fir::runtime::getModel<const Fortran::runtime::Descriptor &>()(ctx);
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auto strTy = fir::ReferenceType::get(mlir::IntegerType::get(ctx, 8));
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auto intTy = mlir::IntegerType::get(ctx, 8 * sizeof(int));
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return mlir::FunctionType::get(ctx, {boxTy, boxTy, strTy, intTy}, {ty});
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};
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}
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};
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/// Placeholder for real*16 version of DotProduct Intrinsic
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struct ForcedDotProductReal16 {
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static constexpr const char *name =
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ExpandAndQuoteKey(RTNAME(DotProductReal16));
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static constexpr fir::runtime::FuncTypeBuilderFunc getTypeModel() {
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return [](mlir::MLIRContext *ctx) {
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auto ty = mlir::FloatType::getF128(ctx);
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auto boxTy =
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fir::runtime::getModel<const Fortran::runtime::Descriptor &>()(ctx);
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auto strTy = fir::ReferenceType::get(mlir::IntegerType::get(ctx, 8));
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auto intTy = mlir::IntegerType::get(ctx, 8 * sizeof(int));
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return mlir::FunctionType::get(ctx, {boxTy, boxTy, strTy, intTy}, {ty});
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};
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}
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};
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/// Placeholder for complex(10) version of DotProduct Intrinsic
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struct ForcedDotProductComplex10 {
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static constexpr const char *name =
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ExpandAndQuoteKey(RTNAME(CppDotProductComplex10));
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static constexpr fir::runtime::FuncTypeBuilderFunc getTypeModel() {
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return [](mlir::MLIRContext *ctx) {
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auto ty = mlir::ComplexType::get(mlir::FloatType::getF80(ctx));
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auto boxTy =
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fir::runtime::getModel<const Fortran::runtime::Descriptor &>()(ctx);
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auto strTy = fir::ReferenceType::get(mlir::IntegerType::get(ctx, 8));
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auto intTy = mlir::IntegerType::get(ctx, 8 * sizeof(int));
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auto resTy = fir::ReferenceType::get(ty);
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return mlir::FunctionType::get(ctx, {resTy, boxTy, boxTy, strTy, intTy},
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{});
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};
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}
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};
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/// Placeholder for complex(16) version of DotProduct Intrinsic
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struct ForcedDotProductComplex16 {
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static constexpr const char *name =
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ExpandAndQuoteKey(RTNAME(CppDotProductComplex16));
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static constexpr fir::runtime::FuncTypeBuilderFunc getTypeModel() {
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return [](mlir::MLIRContext *ctx) {
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auto ty = mlir::ComplexType::get(mlir::FloatType::getF128(ctx));
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auto boxTy =
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fir::runtime::getModel<const Fortran::runtime::Descriptor &>()(ctx);
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auto strTy = fir::ReferenceType::get(mlir::IntegerType::get(ctx, 8));
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auto intTy = mlir::IntegerType::get(ctx, 8 * sizeof(int));
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auto resTy = fir::ReferenceType::get(ty);
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return mlir::FunctionType::get(ctx, {resTy, boxTy, boxTy, strTy, intTy},
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{});
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};
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}
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};
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/// Placeholder for integer*16 version of DotProduct Intrinsic
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struct ForcedDotProductInteger16 {
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static constexpr const char *name =
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ExpandAndQuoteKey(RTNAME(DotProductInteger16));
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static constexpr fir::runtime::FuncTypeBuilderFunc getTypeModel() {
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return [](mlir::MLIRContext *ctx) {
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auto ty = mlir::IntegerType::get(ctx, 128);
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auto boxTy =
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fir::runtime::getModel<const Fortran::runtime::Descriptor &>()(ctx);
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auto strTy = fir::ReferenceType::get(mlir::IntegerType::get(ctx, 8));
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auto intTy = mlir::IntegerType::get(ctx, 8 * sizeof(int));
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return mlir::FunctionType::get(ctx, {boxTy, boxTy, strTy, intTy}, {ty});
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};
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}
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};
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/// Placeholder for real*10 version of Sum Intrinsic
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struct ForcedSumReal10 {
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static constexpr const char *name = ExpandAndQuoteKey(RTNAME(SumReal10));
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static constexpr fir::runtime::FuncTypeBuilderFunc getTypeModel() {
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return [](mlir::MLIRContext *ctx) {
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auto ty = mlir::FloatType::getF80(ctx);
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auto boxTy =
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fir::runtime::getModel<const Fortran::runtime::Descriptor &>()(ctx);
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auto strTy = fir::ReferenceType::get(mlir::IntegerType::get(ctx, 8));
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auto intTy = mlir::IntegerType::get(ctx, 8 * sizeof(int));
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return mlir::FunctionType::get(ctx, {boxTy, strTy, intTy, intTy, boxTy},
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{ty});
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};
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}
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};
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/// Placeholder for real*16 version of Sum Intrinsic
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struct ForcedSumReal16 {
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static constexpr const char *name = ExpandAndQuoteKey(RTNAME(SumReal16));
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static constexpr fir::runtime::FuncTypeBuilderFunc getTypeModel() {
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return [](mlir::MLIRContext *ctx) {
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auto ty = mlir::FloatType::getF128(ctx);
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auto boxTy =
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fir::runtime::getModel<const Fortran::runtime::Descriptor &>()(ctx);
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auto strTy = fir::ReferenceType::get(mlir::IntegerType::get(ctx, 8));
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auto intTy = mlir::IntegerType::get(ctx, 8 * sizeof(int));
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return mlir::FunctionType::get(ctx, {boxTy, strTy, intTy, intTy, boxTy},
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{ty});
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};
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}
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};
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/// Placeholder for integer*16 version of Sum Intrinsic
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struct ForcedSumInteger16 {
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static constexpr const char *name = ExpandAndQuoteKey(RTNAME(SumInteger16));
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static constexpr fir::runtime::FuncTypeBuilderFunc getTypeModel() {
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return [](mlir::MLIRContext *ctx) {
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auto ty = mlir::IntegerType::get(ctx, 128);
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auto boxTy =
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fir::runtime::getModel<const Fortran::runtime::Descriptor &>()(ctx);
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auto strTy = fir::ReferenceType::get(mlir::IntegerType::get(ctx, 8));
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auto intTy = mlir::IntegerType::get(ctx, 8 * sizeof(int));
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return mlir::FunctionType::get(ctx, {boxTy, strTy, intTy, intTy, boxTy},
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{ty});
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};
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}
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};
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/// Placeholder for complex(10) version of Sum Intrinsic
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struct ForcedSumComplex10 {
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static constexpr const char *name =
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ExpandAndQuoteKey(RTNAME(CppSumComplex10));
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static constexpr fir::runtime::FuncTypeBuilderFunc getTypeModel() {
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return [](mlir::MLIRContext *ctx) {
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auto ty = mlir::ComplexType::get(mlir::FloatType::getF80(ctx));
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auto boxTy =
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fir::runtime::getModel<const Fortran::runtime::Descriptor &>()(ctx);
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auto strTy = fir::ReferenceType::get(mlir::IntegerType::get(ctx, 8));
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auto intTy = mlir::IntegerType::get(ctx, 8 * sizeof(int));
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auto resTy = fir::ReferenceType::get(ty);
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return mlir::FunctionType::get(
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ctx, {resTy, boxTy, strTy, intTy, intTy, boxTy}, {});
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};
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}
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};
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/// Placeholder for complex(16) version of Sum Intrinsic
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struct ForcedSumComplex16 {
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static constexpr const char *name =
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ExpandAndQuoteKey(RTNAME(CppSumComplex16));
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static constexpr fir::runtime::FuncTypeBuilderFunc getTypeModel() {
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return [](mlir::MLIRContext *ctx) {
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auto ty = mlir::ComplexType::get(mlir::FloatType::getF128(ctx));
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auto boxTy =
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fir::runtime::getModel<const Fortran::runtime::Descriptor &>()(ctx);
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auto strTy = fir::ReferenceType::get(mlir::IntegerType::get(ctx, 8));
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auto intTy = mlir::IntegerType::get(ctx, 8 * sizeof(int));
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auto resTy = fir::ReferenceType::get(ty);
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return mlir::FunctionType::get(
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ctx, {resTy, boxTy, strTy, intTy, intTy, boxTy}, {});
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};
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}
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};
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/// Placeholder for integer(16) version of IAll Intrinsic
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struct ForcedIAll16 {
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static constexpr const char *name = EXPAND_AND_QUOTE_KEY(IAll16);
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static constexpr fir::runtime::FuncTypeBuilderFunc getTypeModel() {
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return [](mlir::MLIRContext *ctx) {
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auto ty = mlir::IntegerType::get(ctx, 128);
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auto boxTy =
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fir::runtime::getModel<const Fortran::runtime::Descriptor &>()(ctx);
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auto strTy = fir::ReferenceType::get(mlir::IntegerType::get(ctx, 8));
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auto intTy = mlir::IntegerType::get(ctx, 8 * sizeof(int));
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return mlir::FunctionType::get(ctx, {boxTy, strTy, intTy, intTy, boxTy},
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{ty});
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};
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}
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};
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/// Placeholder for integer(16) version of IAny Intrinsic
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struct ForcedIAny16 {
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static constexpr const char *name = EXPAND_AND_QUOTE_KEY(IAny16);
|
|
static constexpr fir::runtime::FuncTypeBuilderFunc getTypeModel() {
|
|
return [](mlir::MLIRContext *ctx) {
|
|
auto ty = mlir::IntegerType::get(ctx, 128);
|
|
auto boxTy =
|
|
fir::runtime::getModel<const Fortran::runtime::Descriptor &>()(ctx);
|
|
auto strTy = fir::ReferenceType::get(mlir::IntegerType::get(ctx, 8));
|
|
auto intTy = mlir::IntegerType::get(ctx, 8 * sizeof(int));
|
|
return mlir::FunctionType::get(ctx, {boxTy, strTy, intTy, intTy, boxTy},
|
|
{ty});
|
|
};
|
|
}
|
|
};
|
|
|
|
/// Placeholder for integer(16) version of IParity Intrinsic
|
|
struct ForcedIParity16 {
|
|
static constexpr const char *name = EXPAND_AND_QUOTE_KEY(IParity16);
|
|
static constexpr fir::runtime::FuncTypeBuilderFunc getTypeModel() {
|
|
return [](mlir::MLIRContext *ctx) {
|
|
auto ty = mlir::IntegerType::get(ctx, 128);
|
|
auto boxTy =
|
|
fir::runtime::getModel<const Fortran::runtime::Descriptor &>()(ctx);
|
|
auto strTy = fir::ReferenceType::get(mlir::IntegerType::get(ctx, 8));
|
|
auto intTy = mlir::IntegerType::get(ctx, 8 * sizeof(int));
|
|
return mlir::FunctionType::get(ctx, {boxTy, strTy, intTy, intTy, boxTy},
|
|
{ty});
|
|
};
|
|
}
|
|
};
|
|
|
|
/// Generate call to specialized runtime function that takes a mask and
|
|
/// dim argument. The All, Any, and Count intrinsics use this pattern.
|
|
template <typename FN>
|
|
mlir::Value genSpecial2Args(FN func, fir::FirOpBuilder &builder,
|
|
mlir::Location loc, mlir::Value maskBox,
|
|
mlir::Value dim) {
|
|
auto fTy = func.getFunctionType();
|
|
auto sourceFile = fir::factory::locationToFilename(builder, loc);
|
|
auto sourceLine =
|
|
fir::factory::locationToLineNo(builder, loc, fTy.getInput(2));
|
|
auto args = fir::runtime::createArguments(builder, loc, fTy, maskBox,
|
|
sourceFile, sourceLine, dim);
|
|
return builder.create<fir::CallOp>(loc, func, args).getResult(0);
|
|
}
|
|
|
|
/// Generate calls to reduction intrinsics such as All and Any.
|
|
/// These are the descriptor based implementations that take two
|
|
/// arguments (mask, dim).
|
|
template <typename FN>
|
|
static void genReduction2Args(FN func, fir::FirOpBuilder &builder,
|
|
mlir::Location loc, mlir::Value resultBox,
|
|
mlir::Value maskBox, mlir::Value dim) {
|
|
auto fTy = func.getFunctionType();
|
|
auto sourceFile = fir::factory::locationToFilename(builder, loc);
|
|
auto sourceLine =
|
|
fir::factory::locationToLineNo(builder, loc, fTy.getInput(4));
|
|
auto args = fir::runtime::createArguments(
|
|
builder, loc, fTy, resultBox, maskBox, dim, sourceFile, sourceLine);
|
|
builder.create<fir::CallOp>(loc, func, args);
|
|
}
|
|
|
|
/// Generate calls to reduction intrinsics such as Maxval and Minval.
|
|
/// These take arguments such as (array, dim, mask).
|
|
template <typename FN>
|
|
static void genReduction3Args(FN func, fir::FirOpBuilder &builder,
|
|
mlir::Location loc, mlir::Value resultBox,
|
|
mlir::Value arrayBox, mlir::Value dim,
|
|
mlir::Value maskBox) {
|
|
|
|
auto fTy = func.getFunctionType();
|
|
auto sourceFile = fir::factory::locationToFilename(builder, loc);
|
|
auto sourceLine =
|
|
fir::factory::locationToLineNo(builder, loc, fTy.getInput(4));
|
|
auto args =
|
|
fir::runtime::createArguments(builder, loc, fTy, resultBox, arrayBox, dim,
|
|
sourceFile, sourceLine, maskBox);
|
|
builder.create<fir::CallOp>(loc, func, args);
|
|
}
|
|
|
|
/// Generate calls to reduction intrinsics such as Maxloc and Minloc.
|
|
/// These take arguments such as (array, mask, kind, back).
|
|
template <typename FN>
|
|
static void genReduction4Args(FN func, fir::FirOpBuilder &builder,
|
|
mlir::Location loc, mlir::Value resultBox,
|
|
mlir::Value arrayBox, mlir::Value maskBox,
|
|
mlir::Value kind, mlir::Value back) {
|
|
auto fTy = func.getFunctionType();
|
|
auto sourceFile = fir::factory::locationToFilename(builder, loc);
|
|
auto sourceLine =
|
|
fir::factory::locationToLineNo(builder, loc, fTy.getInput(4));
|
|
auto args = fir::runtime::createArguments(builder, loc, fTy, resultBox,
|
|
arrayBox, kind, sourceFile,
|
|
sourceLine, maskBox, back);
|
|
builder.create<fir::CallOp>(loc, func, args);
|
|
}
|
|
|
|
/// Generate calls to reduction intrinsics such as Maxloc and Minloc.
|
|
/// These take arguments such as (array, dim, mask, kind, back).
|
|
template <typename FN>
|
|
static void
|
|
genReduction5Args(FN func, fir::FirOpBuilder &builder, mlir::Location loc,
|
|
mlir::Value resultBox, mlir::Value arrayBox, mlir::Value dim,
|
|
mlir::Value maskBox, mlir::Value kind, mlir::Value back) {
|
|
auto fTy = func.getFunctionType();
|
|
auto sourceFile = fir::factory::locationToFilename(builder, loc);
|
|
auto sourceLine =
|
|
fir::factory::locationToLineNo(builder, loc, fTy.getInput(5));
|
|
auto args = fir::runtime::createArguments(builder, loc, fTy, resultBox,
|
|
arrayBox, kind, dim, sourceFile,
|
|
sourceLine, maskBox, back);
|
|
builder.create<fir::CallOp>(loc, func, args);
|
|
}
|
|
|
|
/// Generate call to `AllDim` runtime routine.
|
|
/// This calls the descriptor based runtime call implementation of the `all`
|
|
/// intrinsic.
|
|
void fir::runtime::genAllDescriptor(fir::FirOpBuilder &builder,
|
|
mlir::Location loc, mlir::Value resultBox,
|
|
mlir::Value maskBox, mlir::Value dim) {
|
|
auto allFunc = fir::runtime::getRuntimeFunc<mkRTKey(AllDim)>(loc, builder);
|
|
genReduction2Args(allFunc, builder, loc, resultBox, maskBox, dim);
|
|
}
|
|
|
|
/// Generate call to `AnyDim` runtime routine.
|
|
/// This calls the descriptor based runtime call implementation of the `any`
|
|
/// intrinsic.
|
|
void fir::runtime::genAnyDescriptor(fir::FirOpBuilder &builder,
|
|
mlir::Location loc, mlir::Value resultBox,
|
|
mlir::Value maskBox, mlir::Value dim) {
|
|
auto anyFunc = fir::runtime::getRuntimeFunc<mkRTKey(AnyDim)>(loc, builder);
|
|
genReduction2Args(anyFunc, builder, loc, resultBox, maskBox, dim);
|
|
}
|
|
|
|
/// Generate call to `ParityDim` runtime routine.
|
|
/// This calls the descriptor based runtime call implementation of the `parity`
|
|
/// intrinsic.
|
|
void fir::runtime::genParityDescriptor(fir::FirOpBuilder &builder,
|
|
mlir::Location loc,
|
|
mlir::Value resultBox,
|
|
mlir::Value maskBox, mlir::Value dim) {
|
|
auto parityFunc =
|
|
fir::runtime::getRuntimeFunc<mkRTKey(ParityDim)>(loc, builder);
|
|
genReduction2Args(parityFunc, builder, loc, resultBox, maskBox, dim);
|
|
}
|
|
|
|
/// Generate call to `All` intrinsic runtime routine. This routine is
|
|
/// specialized for mask arguments with rank == 1.
|
|
mlir::Value fir::runtime::genAll(fir::FirOpBuilder &builder, mlir::Location loc,
|
|
mlir::Value maskBox, mlir::Value dim) {
|
|
auto allFunc = fir::runtime::getRuntimeFunc<mkRTKey(All)>(loc, builder);
|
|
return genSpecial2Args(allFunc, builder, loc, maskBox, dim);
|
|
}
|
|
|
|
/// Generate call to `Any` intrinsic runtime routine. This routine is
|
|
/// specialized for mask arguments with rank == 1.
|
|
mlir::Value fir::runtime::genAny(fir::FirOpBuilder &builder, mlir::Location loc,
|
|
mlir::Value maskBox, mlir::Value dim) {
|
|
auto anyFunc = fir::runtime::getRuntimeFunc<mkRTKey(Any)>(loc, builder);
|
|
return genSpecial2Args(anyFunc, builder, loc, maskBox, dim);
|
|
}
|
|
|
|
/// Generate call to `Count` runtime routine. This routine is a specialized
|
|
/// version when mask is a rank one array or the dim argument is not
|
|
/// specified by the user.
|
|
mlir::Value fir::runtime::genCount(fir::FirOpBuilder &builder,
|
|
mlir::Location loc, mlir::Value maskBox,
|
|
mlir::Value dim) {
|
|
auto countFunc = fir::runtime::getRuntimeFunc<mkRTKey(Count)>(loc, builder);
|
|
return genSpecial2Args(countFunc, builder, loc, maskBox, dim);
|
|
}
|
|
|
|
/// Generate call to general `CountDim` runtime routine. This routine has a
|
|
/// descriptor result.
|
|
void fir::runtime::genCountDim(fir::FirOpBuilder &builder, mlir::Location loc,
|
|
mlir::Value resultBox, mlir::Value maskBox,
|
|
mlir::Value dim, mlir::Value kind) {
|
|
auto func = fir::runtime::getRuntimeFunc<mkRTKey(CountDim)>(loc, builder);
|
|
auto fTy = func.getFunctionType();
|
|
auto sourceFile = fir::factory::locationToFilename(builder, loc);
|
|
auto sourceLine =
|
|
fir::factory::locationToLineNo(builder, loc, fTy.getInput(5));
|
|
auto args = fir::runtime::createArguments(
|
|
builder, loc, fTy, resultBox, maskBox, dim, kind, sourceFile, sourceLine);
|
|
builder.create<fir::CallOp>(loc, func, args);
|
|
}
|
|
|
|
/// Generate call to `Findloc` intrinsic runtime routine. This is the version
|
|
/// that does not take a dim argument.
|
|
void fir::runtime::genFindloc(fir::FirOpBuilder &builder, mlir::Location loc,
|
|
mlir::Value resultBox, mlir::Value arrayBox,
|
|
mlir::Value valBox, mlir::Value maskBox,
|
|
mlir::Value kind, mlir::Value back) {
|
|
auto func = fir::runtime::getRuntimeFunc<mkRTKey(Findloc)>(loc, builder);
|
|
auto fTy = func.getFunctionType();
|
|
auto sourceFile = fir::factory::locationToFilename(builder, loc);
|
|
auto sourceLine =
|
|
fir::factory::locationToLineNo(builder, loc, fTy.getInput(5));
|
|
auto args = fir::runtime::createArguments(builder, loc, fTy, resultBox,
|
|
arrayBox, valBox, kind, sourceFile,
|
|
sourceLine, maskBox, back);
|
|
builder.create<fir::CallOp>(loc, func, args);
|
|
}
|
|
|
|
/// Generate call to `FindlocDim` intrinsic runtime routine. This is the version
|
|
/// that takes a dim argument.
|
|
void fir::runtime::genFindlocDim(fir::FirOpBuilder &builder, mlir::Location loc,
|
|
mlir::Value resultBox, mlir::Value arrayBox,
|
|
mlir::Value valBox, mlir::Value dim,
|
|
mlir::Value maskBox, mlir::Value kind,
|
|
mlir::Value back) {
|
|
auto func = fir::runtime::getRuntimeFunc<mkRTKey(FindlocDim)>(loc, builder);
|
|
auto fTy = func.getFunctionType();
|
|
auto sourceFile = fir::factory::locationToFilename(builder, loc);
|
|
auto sourceLine =
|
|
fir::factory::locationToLineNo(builder, loc, fTy.getInput(6));
|
|
auto args = fir::runtime::createArguments(
|
|
builder, loc, fTy, resultBox, arrayBox, valBox, kind, dim, sourceFile,
|
|
sourceLine, maskBox, back);
|
|
builder.create<fir::CallOp>(loc, func, args);
|
|
}
|
|
|
|
/// Generate call to `Maxloc` intrinsic runtime routine. This is the version
|
|
/// that does not take a dim argument.
|
|
void fir::runtime::genMaxloc(fir::FirOpBuilder &builder, mlir::Location loc,
|
|
mlir::Value resultBox, mlir::Value arrayBox,
|
|
mlir::Value maskBox, mlir::Value kind,
|
|
mlir::Value back) {
|
|
mlir::func::FuncOp func;
|
|
auto ty = arrayBox.getType();
|
|
auto arrTy = fir::dyn_cast_ptrOrBoxEleTy(ty);
|
|
auto eleTy = arrTy.cast<fir::SequenceType>().getEleTy();
|
|
fir::factory::CharacterExprHelper charHelper{builder, loc};
|
|
if (eleTy.isF32())
|
|
func = fir::runtime::getRuntimeFunc<mkRTKey(MaxlocReal4)>(loc, builder);
|
|
else if (eleTy.isF64())
|
|
func = fir::runtime::getRuntimeFunc<mkRTKey(MaxlocReal8)>(loc, builder);
|
|
else if (eleTy.isF80())
|
|
func = fir::runtime::getRuntimeFunc<mkRTKey(MaxlocReal10)>(loc, builder);
|
|
else if (eleTy.isF128())
|
|
func = fir::runtime::getRuntimeFunc<mkRTKey(MaxlocReal16)>(loc, builder);
|
|
else if (eleTy.isInteger(builder.getKindMap().getIntegerBitsize(1)))
|
|
func = fir::runtime::getRuntimeFunc<mkRTKey(MaxlocInteger1)>(loc, builder);
|
|
else if (eleTy.isInteger(builder.getKindMap().getIntegerBitsize(2)))
|
|
func = fir::runtime::getRuntimeFunc<mkRTKey(MaxlocInteger2)>(loc, builder);
|
|
else if (eleTy.isInteger(builder.getKindMap().getIntegerBitsize(4)))
|
|
func = fir::runtime::getRuntimeFunc<mkRTKey(MaxlocInteger4)>(loc, builder);
|
|
else if (eleTy.isInteger(builder.getKindMap().getIntegerBitsize(8)))
|
|
func = fir::runtime::getRuntimeFunc<mkRTKey(MaxlocInteger8)>(loc, builder);
|
|
else if (eleTy.isInteger(builder.getKindMap().getIntegerBitsize(16)))
|
|
func = fir::runtime::getRuntimeFunc<mkRTKey(MaxlocInteger16)>(loc, builder);
|
|
else if (charHelper.isCharacterScalar(eleTy))
|
|
func = fir::runtime::getRuntimeFunc<mkRTKey(MaxlocCharacter)>(loc, builder);
|
|
else
|
|
fir::intrinsicTypeTODO(builder, eleTy, loc, "MAXLOC");
|
|
genReduction4Args(func, builder, loc, resultBox, arrayBox, maskBox, kind,
|
|
back);
|
|
}
|
|
|
|
/// Generate call to `MaxlocDim` intrinsic runtime routine. This is the version
|
|
/// that takes a dim argument.
|
|
void fir::runtime::genMaxlocDim(fir::FirOpBuilder &builder, mlir::Location loc,
|
|
mlir::Value resultBox, mlir::Value arrayBox,
|
|
mlir::Value dim, mlir::Value maskBox,
|
|
mlir::Value kind, mlir::Value back) {
|
|
auto func = fir::runtime::getRuntimeFunc<mkRTKey(MaxlocDim)>(loc, builder);
|
|
genReduction5Args(func, builder, loc, resultBox, arrayBox, dim, maskBox, kind,
|
|
back);
|
|
}
|
|
|
|
/// Generate call to `Maxval` intrinsic runtime routine. This is the version
|
|
/// that does not take a dim argument.
|
|
mlir::Value fir::runtime::genMaxval(fir::FirOpBuilder &builder,
|
|
mlir::Location loc, mlir::Value arrayBox,
|
|
mlir::Value maskBox) {
|
|
mlir::func::FuncOp func;
|
|
auto ty = arrayBox.getType();
|
|
auto arrTy = fir::dyn_cast_ptrOrBoxEleTy(ty);
|
|
auto eleTy = arrTy.cast<fir::SequenceType>().getEleTy();
|
|
auto dim = builder.createIntegerConstant(loc, builder.getIndexType(), 0);
|
|
|
|
if (eleTy.isF32())
|
|
func = fir::runtime::getRuntimeFunc<mkRTKey(MaxvalReal4)>(loc, builder);
|
|
else if (eleTy.isF64())
|
|
func = fir::runtime::getRuntimeFunc<mkRTKey(MaxvalReal8)>(loc, builder);
|
|
else if (eleTy.isF80())
|
|
func = fir::runtime::getRuntimeFunc<ForcedMaxvalReal10>(loc, builder);
|
|
else if (eleTy.isF128())
|
|
func = fir::runtime::getRuntimeFunc<ForcedMaxvalReal16>(loc, builder);
|
|
else if (eleTy.isInteger(builder.getKindMap().getIntegerBitsize(1)))
|
|
func = fir::runtime::getRuntimeFunc<mkRTKey(MaxvalInteger1)>(loc, builder);
|
|
else if (eleTy.isInteger(builder.getKindMap().getIntegerBitsize(2)))
|
|
func = fir::runtime::getRuntimeFunc<mkRTKey(MaxvalInteger2)>(loc, builder);
|
|
else if (eleTy.isInteger(builder.getKindMap().getIntegerBitsize(4)))
|
|
func = fir::runtime::getRuntimeFunc<mkRTKey(MaxvalInteger4)>(loc, builder);
|
|
else if (eleTy.isInteger(builder.getKindMap().getIntegerBitsize(8)))
|
|
func = fir::runtime::getRuntimeFunc<mkRTKey(MaxvalInteger8)>(loc, builder);
|
|
else if (eleTy.isInteger(builder.getKindMap().getIntegerBitsize(16)))
|
|
func = fir::runtime::getRuntimeFunc<ForcedMaxvalInteger16>(loc, builder);
|
|
else
|
|
fir::intrinsicTypeTODO(builder, eleTy, loc, "MAXVAL");
|
|
|
|
auto fTy = func.getFunctionType();
|
|
auto sourceFile = fir::factory::locationToFilename(builder, loc);
|
|
auto sourceLine =
|
|
fir::factory::locationToLineNo(builder, loc, fTy.getInput(2));
|
|
auto args = fir::runtime::createArguments(
|
|
builder, loc, fTy, arrayBox, sourceFile, sourceLine, dim, maskBox);
|
|
|
|
return builder.create<fir::CallOp>(loc, func, args).getResult(0);
|
|
}
|
|
|
|
/// Generate call to `MaxvalDim` intrinsic runtime routine. This is the version
|
|
/// that handles any rank array with the dim argument specified.
|
|
void fir::runtime::genMaxvalDim(fir::FirOpBuilder &builder, mlir::Location loc,
|
|
mlir::Value resultBox, mlir::Value arrayBox,
|
|
mlir::Value dim, mlir::Value maskBox) {
|
|
auto func = fir::runtime::getRuntimeFunc<mkRTKey(MaxvalDim)>(loc, builder);
|
|
genReduction3Args(func, builder, loc, resultBox, arrayBox, dim, maskBox);
|
|
}
|
|
|
|
/// Generate call to `MaxvalCharacter` intrinsic runtime routine. This is the
|
|
/// version that handles character arrays of rank 1 and without a DIM argument.
|
|
void fir::runtime::genMaxvalChar(fir::FirOpBuilder &builder, mlir::Location loc,
|
|
mlir::Value resultBox, mlir::Value arrayBox,
|
|
mlir::Value maskBox) {
|
|
auto func =
|
|
fir::runtime::getRuntimeFunc<mkRTKey(MaxvalCharacter)>(loc, builder);
|
|
auto fTy = func.getFunctionType();
|
|
auto sourceFile = fir::factory::locationToFilename(builder, loc);
|
|
auto sourceLine =
|
|
fir::factory::locationToLineNo(builder, loc, fTy.getInput(3));
|
|
auto args = fir::runtime::createArguments(
|
|
builder, loc, fTy, resultBox, arrayBox, sourceFile, sourceLine, maskBox);
|
|
builder.create<fir::CallOp>(loc, func, args);
|
|
}
|
|
|
|
/// Generate call to `Minloc` intrinsic runtime routine. This is the version
|
|
/// that does not take a dim argument.
|
|
void fir::runtime::genMinloc(fir::FirOpBuilder &builder, mlir::Location loc,
|
|
mlir::Value resultBox, mlir::Value arrayBox,
|
|
mlir::Value maskBox, mlir::Value kind,
|
|
mlir::Value back) {
|
|
mlir::func::FuncOp func;
|
|
auto ty = arrayBox.getType();
|
|
auto arrTy = fir::dyn_cast_ptrOrBoxEleTy(ty);
|
|
auto eleTy = arrTy.cast<fir::SequenceType>().getEleTy();
|
|
fir::factory::CharacterExprHelper charHelper{builder, loc};
|
|
if (eleTy.isF32())
|
|
func = fir::runtime::getRuntimeFunc<mkRTKey(MinlocReal4)>(loc, builder);
|
|
else if (eleTy.isF64())
|
|
func = fir::runtime::getRuntimeFunc<mkRTKey(MinlocReal8)>(loc, builder);
|
|
else if (eleTy.isF80())
|
|
func = fir::runtime::getRuntimeFunc<mkRTKey(MinlocReal10)>(loc, builder);
|
|
else if (eleTy.isF128())
|
|
func = fir::runtime::getRuntimeFunc<mkRTKey(MinlocReal16)>(loc, builder);
|
|
else if (eleTy.isInteger(builder.getKindMap().getIntegerBitsize(1)))
|
|
func = fir::runtime::getRuntimeFunc<mkRTKey(MinlocInteger1)>(loc, builder);
|
|
else if (eleTy.isInteger(builder.getKindMap().getIntegerBitsize(2)))
|
|
func = fir::runtime::getRuntimeFunc<mkRTKey(MinlocInteger2)>(loc, builder);
|
|
else if (eleTy.isInteger(builder.getKindMap().getIntegerBitsize(4)))
|
|
func = fir::runtime::getRuntimeFunc<mkRTKey(MinlocInteger4)>(loc, builder);
|
|
else if (eleTy.isInteger(builder.getKindMap().getIntegerBitsize(8)))
|
|
func = fir::runtime::getRuntimeFunc<mkRTKey(MinlocInteger8)>(loc, builder);
|
|
else if (eleTy.isInteger(builder.getKindMap().getIntegerBitsize(16)))
|
|
func = fir::runtime::getRuntimeFunc<mkRTKey(MinlocInteger16)>(loc, builder);
|
|
else if (charHelper.isCharacterScalar(eleTy))
|
|
func = fir::runtime::getRuntimeFunc<mkRTKey(MinlocCharacter)>(loc, builder);
|
|
else
|
|
fir::intrinsicTypeTODO(builder, eleTy, loc, "MINLOC");
|
|
genReduction4Args(func, builder, loc, resultBox, arrayBox, maskBox, kind,
|
|
back);
|
|
}
|
|
|
|
/// Generate call to `MinlocDim` intrinsic runtime routine. This is the version
|
|
/// that takes a dim argument.
|
|
void fir::runtime::genMinlocDim(fir::FirOpBuilder &builder, mlir::Location loc,
|
|
mlir::Value resultBox, mlir::Value arrayBox,
|
|
mlir::Value dim, mlir::Value maskBox,
|
|
mlir::Value kind, mlir::Value back) {
|
|
auto func = fir::runtime::getRuntimeFunc<mkRTKey(MinlocDim)>(loc, builder);
|
|
genReduction5Args(func, builder, loc, resultBox, arrayBox, dim, maskBox, kind,
|
|
back);
|
|
}
|
|
|
|
/// Generate call to `MinvalDim` intrinsic runtime routine. This is the version
|
|
/// that handles any rank array with the dim argument specified.
|
|
void fir::runtime::genMinvalDim(fir::FirOpBuilder &builder, mlir::Location loc,
|
|
mlir::Value resultBox, mlir::Value arrayBox,
|
|
mlir::Value dim, mlir::Value maskBox) {
|
|
auto func = fir::runtime::getRuntimeFunc<mkRTKey(MinvalDim)>(loc, builder);
|
|
genReduction3Args(func, builder, loc, resultBox, arrayBox, dim, maskBox);
|
|
}
|
|
|
|
/// Generate call to `MinvalCharacter` intrinsic runtime routine. This is the
|
|
/// version that handles character arrays of rank 1 and without a DIM argument.
|
|
void fir::runtime::genMinvalChar(fir::FirOpBuilder &builder, mlir::Location loc,
|
|
mlir::Value resultBox, mlir::Value arrayBox,
|
|
mlir::Value maskBox) {
|
|
auto func =
|
|
fir::runtime::getRuntimeFunc<mkRTKey(MinvalCharacter)>(loc, builder);
|
|
auto fTy = func.getFunctionType();
|
|
auto sourceFile = fir::factory::locationToFilename(builder, loc);
|
|
auto sourceLine =
|
|
fir::factory::locationToLineNo(builder, loc, fTy.getInput(3));
|
|
auto args = fir::runtime::createArguments(
|
|
builder, loc, fTy, resultBox, arrayBox, sourceFile, sourceLine, maskBox);
|
|
builder.create<fir::CallOp>(loc, func, args);
|
|
}
|
|
|
|
/// Generate call to `Minval` intrinsic runtime routine. This is the version
|
|
/// that does not take a dim argument.
|
|
mlir::Value fir::runtime::genMinval(fir::FirOpBuilder &builder,
|
|
mlir::Location loc, mlir::Value arrayBox,
|
|
mlir::Value maskBox) {
|
|
mlir::func::FuncOp func;
|
|
auto ty = arrayBox.getType();
|
|
auto arrTy = fir::dyn_cast_ptrOrBoxEleTy(ty);
|
|
auto eleTy = arrTy.cast<fir::SequenceType>().getEleTy();
|
|
auto dim = builder.createIntegerConstant(loc, builder.getIndexType(), 0);
|
|
|
|
if (eleTy.isF32())
|
|
func = fir::runtime::getRuntimeFunc<mkRTKey(MinvalReal4)>(loc, builder);
|
|
else if (eleTy.isF64())
|
|
func = fir::runtime::getRuntimeFunc<mkRTKey(MinvalReal8)>(loc, builder);
|
|
else if (eleTy.isF80())
|
|
func = fir::runtime::getRuntimeFunc<ForcedMinvalReal10>(loc, builder);
|
|
else if (eleTy.isF128())
|
|
func = fir::runtime::getRuntimeFunc<ForcedMinvalReal16>(loc, builder);
|
|
else if (eleTy.isInteger(builder.getKindMap().getIntegerBitsize(1)))
|
|
func = fir::runtime::getRuntimeFunc<mkRTKey(MinvalInteger1)>(loc, builder);
|
|
else if (eleTy.isInteger(builder.getKindMap().getIntegerBitsize(2)))
|
|
func = fir::runtime::getRuntimeFunc<mkRTKey(MinvalInteger2)>(loc, builder);
|
|
else if (eleTy.isInteger(builder.getKindMap().getIntegerBitsize(4)))
|
|
func = fir::runtime::getRuntimeFunc<mkRTKey(MinvalInteger4)>(loc, builder);
|
|
else if (eleTy.isInteger(builder.getKindMap().getIntegerBitsize(8)))
|
|
func = fir::runtime::getRuntimeFunc<mkRTKey(MinvalInteger8)>(loc, builder);
|
|
else if (eleTy.isInteger(builder.getKindMap().getIntegerBitsize(16)))
|
|
func = fir::runtime::getRuntimeFunc<ForcedMinvalInteger16>(loc, builder);
|
|
else
|
|
fir::intrinsicTypeTODO(builder, eleTy, loc, "MINVAL");
|
|
|
|
auto fTy = func.getFunctionType();
|
|
auto sourceFile = fir::factory::locationToFilename(builder, loc);
|
|
auto sourceLine =
|
|
fir::factory::locationToLineNo(builder, loc, fTy.getInput(2));
|
|
auto args = fir::runtime::createArguments(
|
|
builder, loc, fTy, arrayBox, sourceFile, sourceLine, dim, maskBox);
|
|
|
|
return builder.create<fir::CallOp>(loc, func, args).getResult(0);
|
|
}
|
|
|
|
/// Generate call to `Norm2Dim` intrinsic runtime routine. This is the version
|
|
/// that takes a dim argument.
|
|
void fir::runtime::genNorm2Dim(fir::FirOpBuilder &builder, mlir::Location loc,
|
|
mlir::Value resultBox, mlir::Value arrayBox,
|
|
mlir::Value dim) {
|
|
auto func = fir::runtime::getRuntimeFunc<mkRTKey(Norm2Dim)>(loc, builder);
|
|
auto fTy = func.getFunctionType();
|
|
auto sourceFile = fir::factory::locationToFilename(builder, loc);
|
|
auto sourceLine =
|
|
fir::factory::locationToLineNo(builder, loc, fTy.getInput(4));
|
|
auto args = fir::runtime::createArguments(
|
|
builder, loc, fTy, resultBox, arrayBox, dim, sourceFile, sourceLine);
|
|
|
|
builder.create<fir::CallOp>(loc, func, args);
|
|
}
|
|
|
|
/// Generate call to `Norm2` intrinsic runtime routine. This is the version
|
|
/// that does not take a dim argument.
|
|
mlir::Value fir::runtime::genNorm2(fir::FirOpBuilder &builder,
|
|
mlir::Location loc, mlir::Value arrayBox) {
|
|
mlir::func::FuncOp func;
|
|
auto ty = arrayBox.getType();
|
|
auto arrTy = fir::dyn_cast_ptrOrBoxEleTy(ty);
|
|
auto eleTy = arrTy.cast<fir::SequenceType>().getEleTy();
|
|
auto dim = builder.createIntegerConstant(loc, builder.getIndexType(), 0);
|
|
|
|
if (eleTy.isF32())
|
|
func = fir::runtime::getRuntimeFunc<mkRTKey(Norm2_4)>(loc, builder);
|
|
else if (eleTy.isF64())
|
|
func = fir::runtime::getRuntimeFunc<mkRTKey(Norm2_8)>(loc, builder);
|
|
else if (eleTy.isF80())
|
|
func = fir::runtime::getRuntimeFunc<ForcedNorm2Real10>(loc, builder);
|
|
else if (eleTy.isF128())
|
|
func = fir::runtime::getRuntimeFunc<ForcedNorm2Real16>(loc, builder);
|
|
else
|
|
fir::intrinsicTypeTODO(builder, eleTy, loc, "NORM2");
|
|
|
|
auto fTy = func.getFunctionType();
|
|
auto sourceFile = fir::factory::locationToFilename(builder, loc);
|
|
auto sourceLine =
|
|
fir::factory::locationToLineNo(builder, loc, fTy.getInput(2));
|
|
auto args = fir::runtime::createArguments(builder, loc, fTy, arrayBox,
|
|
sourceFile, sourceLine, dim);
|
|
|
|
return builder.create<fir::CallOp>(loc, func, args).getResult(0);
|
|
}
|
|
|
|
/// Generate call to `Parity` intrinsic runtime routine. This routine is
|
|
/// specialized for mask arguments with rank == 1.
|
|
mlir::Value fir::runtime::genParity(fir::FirOpBuilder &builder,
|
|
mlir::Location loc, mlir::Value maskBox,
|
|
mlir::Value dim) {
|
|
auto parityFunc = fir::runtime::getRuntimeFunc<mkRTKey(Parity)>(loc, builder);
|
|
return genSpecial2Args(parityFunc, builder, loc, maskBox, dim);
|
|
}
|
|
|
|
/// Generate call to `ProductDim` intrinsic runtime routine. This is the version
|
|
/// that handles any rank array with the dim argument specified.
|
|
void fir::runtime::genProductDim(fir::FirOpBuilder &builder, mlir::Location loc,
|
|
mlir::Value resultBox, mlir::Value arrayBox,
|
|
mlir::Value dim, mlir::Value maskBox) {
|
|
auto func = fir::runtime::getRuntimeFunc<mkRTKey(ProductDim)>(loc, builder);
|
|
genReduction3Args(func, builder, loc, resultBox, arrayBox, dim, maskBox);
|
|
}
|
|
|
|
/// Generate call to `Product` intrinsic runtime routine. This is the version
|
|
/// that does not take a dim argument.
|
|
mlir::Value fir::runtime::genProduct(fir::FirOpBuilder &builder,
|
|
mlir::Location loc, mlir::Value arrayBox,
|
|
mlir::Value maskBox,
|
|
mlir::Value resultBox) {
|
|
mlir::func::FuncOp func;
|
|
auto ty = arrayBox.getType();
|
|
auto arrTy = fir::dyn_cast_ptrOrBoxEleTy(ty);
|
|
auto eleTy = arrTy.cast<fir::SequenceType>().getEleTy();
|
|
auto dim = builder.createIntegerConstant(loc, builder.getIndexType(), 0);
|
|
|
|
if (eleTy.isF32())
|
|
func = fir::runtime::getRuntimeFunc<mkRTKey(ProductReal4)>(loc, builder);
|
|
else if (eleTy.isF64())
|
|
func = fir::runtime::getRuntimeFunc<mkRTKey(ProductReal8)>(loc, builder);
|
|
else if (eleTy.isF80())
|
|
func = fir::runtime::getRuntimeFunc<ForcedProductReal10>(loc, builder);
|
|
else if (eleTy.isF128())
|
|
func = fir::runtime::getRuntimeFunc<ForcedProductReal16>(loc, builder);
|
|
else if (eleTy.isInteger(builder.getKindMap().getIntegerBitsize(1)))
|
|
func = fir::runtime::getRuntimeFunc<mkRTKey(ProductInteger1)>(loc, builder);
|
|
else if (eleTy.isInteger(builder.getKindMap().getIntegerBitsize(2)))
|
|
func = fir::runtime::getRuntimeFunc<mkRTKey(ProductInteger2)>(loc, builder);
|
|
else if (eleTy.isInteger(builder.getKindMap().getIntegerBitsize(4)))
|
|
func = fir::runtime::getRuntimeFunc<mkRTKey(ProductInteger4)>(loc, builder);
|
|
else if (eleTy.isInteger(builder.getKindMap().getIntegerBitsize(8)))
|
|
func = fir::runtime::getRuntimeFunc<mkRTKey(ProductInteger8)>(loc, builder);
|
|
else if (eleTy.isInteger(builder.getKindMap().getIntegerBitsize(16)))
|
|
func = fir::runtime::getRuntimeFunc<ForcedProductInteger16>(loc, builder);
|
|
else if (eleTy == fir::ComplexType::get(builder.getContext(), 4))
|
|
func =
|
|
fir::runtime::getRuntimeFunc<mkRTKey(CppProductComplex4)>(loc, builder);
|
|
else if (eleTy == fir::ComplexType::get(builder.getContext(), 8))
|
|
func =
|
|
fir::runtime::getRuntimeFunc<mkRTKey(CppProductComplex8)>(loc, builder);
|
|
else if (eleTy == fir::ComplexType::get(builder.getContext(), 10))
|
|
func = fir::runtime::getRuntimeFunc<ForcedProductComplex10>(loc, builder);
|
|
else if (eleTy == fir::ComplexType::get(builder.getContext(), 16))
|
|
func = fir::runtime::getRuntimeFunc<ForcedProductComplex16>(loc, builder);
|
|
else
|
|
fir::intrinsicTypeTODO(builder, eleTy, loc, "PRODUCT");
|
|
|
|
auto fTy = func.getFunctionType();
|
|
auto sourceFile = fir::factory::locationToFilename(builder, loc);
|
|
if (fir::isa_complex(eleTy)) {
|
|
auto sourceLine =
|
|
fir::factory::locationToLineNo(builder, loc, fTy.getInput(3));
|
|
auto args =
|
|
fir::runtime::createArguments(builder, loc, fTy, resultBox, arrayBox,
|
|
sourceFile, sourceLine, dim, maskBox);
|
|
builder.create<fir::CallOp>(loc, func, args);
|
|
return resultBox;
|
|
}
|
|
|
|
auto sourceLine =
|
|
fir::factory::locationToLineNo(builder, loc, fTy.getInput(2));
|
|
auto args = fir::runtime::createArguments(
|
|
builder, loc, fTy, arrayBox, sourceFile, sourceLine, dim, maskBox);
|
|
|
|
return builder.create<fir::CallOp>(loc, func, args).getResult(0);
|
|
}
|
|
|
|
/// Generate call to `DotProduct` intrinsic runtime routine.
|
|
mlir::Value fir::runtime::genDotProduct(fir::FirOpBuilder &builder,
|
|
mlir::Location loc,
|
|
mlir::Value vectorABox,
|
|
mlir::Value vectorBBox,
|
|
mlir::Value resultBox) {
|
|
mlir::func::FuncOp func;
|
|
// For complex data types, resultBox is !fir.ref<!fir.complex<N>>,
|
|
// otherwise it is !fir.box<T>.
|
|
auto ty = resultBox.getType();
|
|
auto eleTy = fir::dyn_cast_ptrOrBoxEleTy(ty);
|
|
|
|
if (eleTy.isF32())
|
|
func = fir::runtime::getRuntimeFunc<mkRTKey(DotProductReal4)>(loc, builder);
|
|
else if (eleTy.isF64())
|
|
func = fir::runtime::getRuntimeFunc<mkRTKey(DotProductReal8)>(loc, builder);
|
|
else if (eleTy.isF80())
|
|
func = fir::runtime::getRuntimeFunc<ForcedDotProductReal10>(loc, builder);
|
|
else if (eleTy.isF128())
|
|
func = fir::runtime::getRuntimeFunc<ForcedDotProductReal16>(loc, builder);
|
|
else if (eleTy == fir::ComplexType::get(builder.getContext(), 4))
|
|
func = fir::runtime::getRuntimeFunc<mkRTKey(CppDotProductComplex4)>(
|
|
loc, builder);
|
|
else if (eleTy == fir::ComplexType::get(builder.getContext(), 8))
|
|
func = fir::runtime::getRuntimeFunc<mkRTKey(CppDotProductComplex8)>(
|
|
loc, builder);
|
|
else if (eleTy == fir::ComplexType::get(builder.getContext(), 10))
|
|
func =
|
|
fir::runtime::getRuntimeFunc<ForcedDotProductComplex10>(loc, builder);
|
|
else if (eleTy == fir::ComplexType::get(builder.getContext(), 16))
|
|
func =
|
|
fir::runtime::getRuntimeFunc<ForcedDotProductComplex16>(loc, builder);
|
|
else if (eleTy.isInteger(builder.getKindMap().getIntegerBitsize(1)))
|
|
func =
|
|
fir::runtime::getRuntimeFunc<mkRTKey(DotProductInteger1)>(loc, builder);
|
|
else if (eleTy.isInteger(builder.getKindMap().getIntegerBitsize(2)))
|
|
func =
|
|
fir::runtime::getRuntimeFunc<mkRTKey(DotProductInteger2)>(loc, builder);
|
|
else if (eleTy.isInteger(builder.getKindMap().getIntegerBitsize(4)))
|
|
func =
|
|
fir::runtime::getRuntimeFunc<mkRTKey(DotProductInteger4)>(loc, builder);
|
|
else if (eleTy.isInteger(builder.getKindMap().getIntegerBitsize(8)))
|
|
func =
|
|
fir::runtime::getRuntimeFunc<mkRTKey(DotProductInteger8)>(loc, builder);
|
|
else if (eleTy.isInteger(builder.getKindMap().getIntegerBitsize(16)))
|
|
func =
|
|
fir::runtime::getRuntimeFunc<ForcedDotProductInteger16>(loc, builder);
|
|
else if (eleTy.isa<fir::LogicalType>())
|
|
func =
|
|
fir::runtime::getRuntimeFunc<mkRTKey(DotProductLogical)>(loc, builder);
|
|
else
|
|
fir::intrinsicTypeTODO(builder, eleTy, loc, "DOTPRODUCT");
|
|
|
|
auto fTy = func.getFunctionType();
|
|
auto sourceFile = fir::factory::locationToFilename(builder, loc);
|
|
|
|
if (fir::isa_complex(eleTy)) {
|
|
auto sourceLine =
|
|
fir::factory::locationToLineNo(builder, loc, fTy.getInput(4));
|
|
auto args =
|
|
fir::runtime::createArguments(builder, loc, fTy, resultBox, vectorABox,
|
|
vectorBBox, sourceFile, sourceLine);
|
|
builder.create<fir::CallOp>(loc, func, args);
|
|
return resultBox;
|
|
}
|
|
|
|
auto sourceLine =
|
|
fir::factory::locationToLineNo(builder, loc, fTy.getInput(3));
|
|
auto args = fir::runtime::createArguments(builder, loc, fTy, vectorABox,
|
|
vectorBBox, sourceFile, sourceLine);
|
|
return builder.create<fir::CallOp>(loc, func, args).getResult(0);
|
|
}
|
|
/// Generate call to `SumDim` intrinsic runtime routine. This is the version
|
|
/// that handles any rank array with the dim argument specified.
|
|
void fir::runtime::genSumDim(fir::FirOpBuilder &builder, mlir::Location loc,
|
|
mlir::Value resultBox, mlir::Value arrayBox,
|
|
mlir::Value dim, mlir::Value maskBox) {
|
|
auto func = fir::runtime::getRuntimeFunc<mkRTKey(SumDim)>(loc, builder);
|
|
genReduction3Args(func, builder, loc, resultBox, arrayBox, dim, maskBox);
|
|
}
|
|
|
|
/// Generate call to `Sum` intrinsic runtime routine. This is the version
|
|
/// that does not take a dim argument.
|
|
mlir::Value fir::runtime::genSum(fir::FirOpBuilder &builder, mlir::Location loc,
|
|
mlir::Value arrayBox, mlir::Value maskBox,
|
|
mlir::Value resultBox) {
|
|
mlir::func::FuncOp func;
|
|
auto ty = arrayBox.getType();
|
|
auto arrTy = fir::dyn_cast_ptrOrBoxEleTy(ty);
|
|
auto eleTy = arrTy.cast<fir::SequenceType>().getEleTy();
|
|
auto dim = builder.createIntegerConstant(loc, builder.getIndexType(), 0);
|
|
|
|
if (eleTy.isF32())
|
|
func = fir::runtime::getRuntimeFunc<mkRTKey(SumReal4)>(loc, builder);
|
|
else if (eleTy.isF64())
|
|
func = fir::runtime::getRuntimeFunc<mkRTKey(SumReal8)>(loc, builder);
|
|
else if (eleTy.isF80())
|
|
func = fir::runtime::getRuntimeFunc<ForcedSumReal10>(loc, builder);
|
|
else if (eleTy.isF128())
|
|
func = fir::runtime::getRuntimeFunc<ForcedSumReal16>(loc, builder);
|
|
else if (eleTy.isInteger(builder.getKindMap().getIntegerBitsize(1)))
|
|
func = fir::runtime::getRuntimeFunc<mkRTKey(SumInteger1)>(loc, builder);
|
|
else if (eleTy.isInteger(builder.getKindMap().getIntegerBitsize(2)))
|
|
func = fir::runtime::getRuntimeFunc<mkRTKey(SumInteger2)>(loc, builder);
|
|
else if (eleTy.isInteger(builder.getKindMap().getIntegerBitsize(4)))
|
|
func = fir::runtime::getRuntimeFunc<mkRTKey(SumInteger4)>(loc, builder);
|
|
else if (eleTy.isInteger(builder.getKindMap().getIntegerBitsize(8)))
|
|
func = fir::runtime::getRuntimeFunc<mkRTKey(SumInteger8)>(loc, builder);
|
|
else if (eleTy.isInteger(builder.getKindMap().getIntegerBitsize(16)))
|
|
func = fir::runtime::getRuntimeFunc<ForcedSumInteger16>(loc, builder);
|
|
else if (eleTy == fir::ComplexType::get(builder.getContext(), 4))
|
|
func = fir::runtime::getRuntimeFunc<mkRTKey(CppSumComplex4)>(loc, builder);
|
|
else if (eleTy == fir::ComplexType::get(builder.getContext(), 8))
|
|
func = fir::runtime::getRuntimeFunc<mkRTKey(CppSumComplex8)>(loc, builder);
|
|
else if (eleTy == fir::ComplexType::get(builder.getContext(), 10))
|
|
func = fir::runtime::getRuntimeFunc<ForcedSumComplex10>(loc, builder);
|
|
else if (eleTy == fir::ComplexType::get(builder.getContext(), 16))
|
|
func = fir::runtime::getRuntimeFunc<ForcedSumComplex16>(loc, builder);
|
|
else
|
|
fir::intrinsicTypeTODO(builder, eleTy, loc, "SUM");
|
|
|
|
auto fTy = func.getFunctionType();
|
|
auto sourceFile = fir::factory::locationToFilename(builder, loc);
|
|
if (fir::isa_complex(eleTy)) {
|
|
auto sourceLine =
|
|
fir::factory::locationToLineNo(builder, loc, fTy.getInput(3));
|
|
auto args =
|
|
fir::runtime::createArguments(builder, loc, fTy, resultBox, arrayBox,
|
|
sourceFile, sourceLine, dim, maskBox);
|
|
builder.create<fir::CallOp>(loc, func, args);
|
|
return resultBox;
|
|
}
|
|
|
|
auto sourceLine =
|
|
fir::factory::locationToLineNo(builder, loc, fTy.getInput(2));
|
|
auto args = fir::runtime::createArguments(
|
|
builder, loc, fTy, arrayBox, sourceFile, sourceLine, dim, maskBox);
|
|
|
|
return builder.create<fir::CallOp>(loc, func, args).getResult(0);
|
|
}
|
|
|
|
// The IAll, IAny and IParity intrinsics have essentially the same
|
|
// implementation. This macro will generate the function body given the
|
|
// instrinsic name.
|
|
#define GEN_IALL_IANY_IPARITY(F) \
|
|
mlir::Value fir::runtime::JOIN2(gen, F)( \
|
|
fir::FirOpBuilder & builder, mlir::Location loc, mlir::Value arrayBox, \
|
|
mlir::Value maskBox, mlir::Value resultBox) { \
|
|
mlir::func::FuncOp func; \
|
|
auto ty = arrayBox.getType(); \
|
|
auto arrTy = fir::dyn_cast_ptrOrBoxEleTy(ty); \
|
|
auto eleTy = arrTy.cast<fir::SequenceType>().getEleTy(); \
|
|
auto dim = builder.createIntegerConstant(loc, builder.getIndexType(), 0); \
|
|
\
|
|
if (eleTy.isInteger(builder.getKindMap().getIntegerBitsize(1))) \
|
|
func = fir::runtime::getRuntimeFunc<mkRTKey(JOIN2(F, 1))>(loc, builder); \
|
|
else if (eleTy.isInteger(builder.getKindMap().getIntegerBitsize(2))) \
|
|
func = fir::runtime::getRuntimeFunc<mkRTKey(JOIN2(F, 2))>(loc, builder); \
|
|
else if (eleTy.isInteger(builder.getKindMap().getIntegerBitsize(4))) \
|
|
func = fir::runtime::getRuntimeFunc<mkRTKey(JOIN2(F, 4))>(loc, builder); \
|
|
else if (eleTy.isInteger(builder.getKindMap().getIntegerBitsize(8))) \
|
|
func = fir::runtime::getRuntimeFunc<mkRTKey(JOIN2(F, 8))>(loc, builder); \
|
|
else if (eleTy.isInteger(builder.getKindMap().getIntegerBitsize(16))) \
|
|
func = fir::runtime::getRuntimeFunc<JOIN3(Forced, F, 16)>(loc, builder); \
|
|
else \
|
|
fir::emitFatalError(loc, "invalid type in " STRINGIFY(F)); \
|
|
\
|
|
auto fTy = func.getFunctionType(); \
|
|
auto sourceFile = fir::factory::locationToFilename(builder, loc); \
|
|
auto sourceLine = \
|
|
fir::factory::locationToLineNo(builder, loc, fTy.getInput(2)); \
|
|
auto args = fir::runtime::createArguments( \
|
|
builder, loc, fTy, arrayBox, sourceFile, sourceLine, dim, maskBox); \
|
|
\
|
|
return builder.create<fir::CallOp>(loc, func, args).getResult(0); \
|
|
}
|
|
|
|
/// Generate call to `IAllDim` intrinsic runtime routine. This is the version
|
|
/// that handles any rank array with the dim argument specified.
|
|
void fir::runtime::genIAllDim(fir::FirOpBuilder &builder, mlir::Location loc,
|
|
mlir::Value resultBox, mlir::Value arrayBox,
|
|
mlir::Value dim, mlir::Value maskBox) {
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auto func = fir::runtime::getRuntimeFunc<mkRTKey(IAllDim)>(loc, builder);
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genReduction3Args(func, builder, loc, resultBox, arrayBox, dim, maskBox);
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}
|
|
|
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/// Generate call to `IAll` intrinsic runtime routine. This is the version
|
|
/// that does not take a dim argument.
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GEN_IALL_IANY_IPARITY(IAll)
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|
|
|
/// Generate call to `IAnyDim` intrinsic runtime routine. This is the version
|
|
/// that handles any rank array with the dim argument specified.
|
|
void fir::runtime::genIAnyDim(fir::FirOpBuilder &builder, mlir::Location loc,
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|
mlir::Value resultBox, mlir::Value arrayBox,
|
|
mlir::Value dim, mlir::Value maskBox) {
|
|
auto func = fir::runtime::getRuntimeFunc<mkRTKey(IAnyDim)>(loc, builder);
|
|
genReduction3Args(func, builder, loc, resultBox, arrayBox, dim, maskBox);
|
|
}
|
|
|
|
/// Generate call to `IAny` intrinsic runtime routine. This is the version
|
|
/// that does not take a dim argument.
|
|
GEN_IALL_IANY_IPARITY(IAny)
|
|
|
|
/// Generate call to `IParityDim` intrinsic runtime routine. This is the version
|
|
/// that handles any rank array with the dim argument specified.
|
|
void fir::runtime::genIParityDim(fir::FirOpBuilder &builder, mlir::Location loc,
|
|
mlir::Value resultBox, mlir::Value arrayBox,
|
|
mlir::Value dim, mlir::Value maskBox) {
|
|
auto func = fir::runtime::getRuntimeFunc<mkRTKey(IParityDim)>(loc, builder);
|
|
genReduction3Args(func, builder, loc, resultBox, arrayBox, dim, maskBox);
|
|
}
|
|
|
|
/// Generate call to `IParity` intrinsic runtime routine. This is the version
|
|
/// that does not take a dim argument.
|
|
GEN_IALL_IANY_IPARITY(IParity)
|