forked from OSchip/llvm-project
213 lines
7.5 KiB
C++
213 lines
7.5 KiB
C++
//===- Builders.cpp - Helpers for constructing MLIR Classes ---------------===//
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//
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// Copyright 2019 The MLIR Authors.
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//
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// Licensed under the Apache License, Version 2.0 (the "License");
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// you may not use this file except in compliance with the License.
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// You may obtain a copy of the License at
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//
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// http://www.apache.org/licenses/LICENSE-2.0
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//
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// Unless required by applicable law or agreed to in writing, software
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// distributed under the License is distributed on an "AS IS" BASIS,
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// WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
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// See the License for the specific language governing permissions and
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// limitations under the License.
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// =============================================================================
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#include "mlir/IR/Builders.h"
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#include "mlir/IR/AffineExpr.h"
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#include "mlir/IR/AffineMap.h"
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#include "mlir/IR/Attributes.h"
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#include "mlir/IR/IntegerSet.h"
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#include "mlir/IR/Module.h"
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#include "mlir/IR/Types.h"
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using namespace mlir;
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Builder::Builder(Module *module) : context(module->getContext()) {}
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Identifier Builder::getIdentifier(StringRef str) {
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return Identifier::get(str, context);
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}
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Module *Builder::createModule() { return new Module(context); }
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//===----------------------------------------------------------------------===//
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// Types.
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//===----------------------------------------------------------------------===//
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FloatType *Builder::getBF16Type() { return Type::getBF16(context); }
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FloatType *Builder::getF16Type() { return Type::getF16(context); }
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FloatType *Builder::getF32Type() { return Type::getF32(context); }
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FloatType *Builder::getF64Type() { return Type::getF64(context); }
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OtherType *Builder::getAffineIntType() { return Type::getAffineInt(context); }
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OtherType *Builder::getTFControlType() { return Type::getTFControl(context); }
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OtherType *Builder::getTFStringType() { return Type::getTFString(context); }
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IntegerType *Builder::getIntegerType(unsigned width) {
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return Type::getInteger(width, context);
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}
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FunctionType *Builder::getFunctionType(ArrayRef<Type *> inputs,
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ArrayRef<Type *> results) {
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return FunctionType::get(inputs, results, context);
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}
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MemRefType *Builder::getMemRefType(ArrayRef<int> shape, Type *elementType,
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ArrayRef<AffineMap *> affineMapComposition,
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unsigned memorySpace) {
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return MemRefType::get(shape, elementType, affineMapComposition, memorySpace);
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}
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VectorType *Builder::getVectorType(ArrayRef<unsigned> shape,
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Type *elementType) {
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return VectorType::get(shape, elementType);
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}
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RankedTensorType *Builder::getTensorType(ArrayRef<int> shape,
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Type *elementType) {
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return RankedTensorType::get(shape, elementType);
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}
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UnrankedTensorType *Builder::getTensorType(Type *elementType) {
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return UnrankedTensorType::get(elementType);
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}
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//===----------------------------------------------------------------------===//
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// Attributes.
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//===----------------------------------------------------------------------===//
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BoolAttr *Builder::getBoolAttr(bool value) {
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return BoolAttr::get(value, context);
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}
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IntegerAttr *Builder::getIntegerAttr(int64_t value) {
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return IntegerAttr::get(value, context);
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}
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FloatAttr *Builder::getFloatAttr(double value) {
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return FloatAttr::get(value, context);
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}
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StringAttr *Builder::getStringAttr(StringRef bytes) {
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return StringAttr::get(bytes, context);
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}
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ArrayAttr *Builder::getArrayAttr(ArrayRef<Attribute *> value) {
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return ArrayAttr::get(value, context);
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}
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AffineMapAttr *Builder::getAffineMapAttr(AffineMap *value) {
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return AffineMapAttr::get(value, context);
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}
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TypeAttr *Builder::getTypeAttr(Type *type) {
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return TypeAttr::get(type, context);
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}
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//===----------------------------------------------------------------------===//
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// Affine Expressions, Affine Maps, and Integet Sets.
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//===----------------------------------------------------------------------===//
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AffineMap *Builder::getAffineMap(unsigned dimCount, unsigned symbolCount,
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ArrayRef<AffineExpr *> results,
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ArrayRef<AffineExpr *> rangeSizes) {
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return AffineMap::get(dimCount, symbolCount, results, rangeSizes, context);
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}
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AffineDimExpr *Builder::getDimExpr(unsigned position) {
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return AffineDimExpr::get(position, context);
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}
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AffineSymbolExpr *Builder::getSymbolExpr(unsigned position) {
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return AffineSymbolExpr::get(position, context);
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}
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AffineConstantExpr *Builder::getConstantExpr(int64_t constant) {
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return AffineConstantExpr::get(constant, context);
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}
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AffineExpr *Builder::getAddExpr(AffineExpr *lhs, AffineExpr *rhs) {
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return AffineBinaryOpExpr::get(AffineExpr::Kind::Add, lhs, rhs, context);
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}
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AffineExpr *Builder::getMulExpr(AffineExpr *lhs, AffineExpr *rhs) {
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return AffineBinaryOpExpr::get(AffineExpr::Kind::Mul, lhs, rhs, context);
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}
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AffineExpr *Builder::getModExpr(AffineExpr *lhs, AffineExpr *rhs) {
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return AffineBinaryOpExpr::get(AffineExpr::Kind::Mod, lhs, rhs, context);
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}
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AffineExpr *Builder::getFloorDivExpr(AffineExpr *lhs, AffineExpr *rhs) {
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return AffineBinaryOpExpr::get(AffineExpr::Kind::FloorDiv, lhs, rhs, context);
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}
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AffineExpr *Builder::getCeilDivExpr(AffineExpr *lhs, AffineExpr *rhs) {
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return AffineBinaryOpExpr::get(AffineExpr::Kind::CeilDiv, lhs, rhs, context);
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}
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IntegerSet *Builder::getIntegerSet(unsigned dimCount, unsigned symbolCount,
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ArrayRef<AffineExpr *> constraints,
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ArrayRef<bool> isEq) {
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return IntegerSet::get(dimCount, symbolCount, constraints, isEq, context);
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}
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//===----------------------------------------------------------------------===//
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// CFG function elements.
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//===----------------------------------------------------------------------===//
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// Basic block.
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BasicBlock *CFGFuncBuilder::createBlock() {
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BasicBlock *b = new BasicBlock();
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function->push_back(b);
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setInsertionPoint(b);
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return b;
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}
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/// Create an operation given the fields represented as an OperationState.
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OperationInst *CFGFuncBuilder::createOperation(const OperationState &state) {
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SmallVector<CFGValue *, 8> operands;
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operands.reserve(state.operands.size());
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for (auto elt : state.operands)
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operands.push_back(cast<CFGValue>(elt));
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auto *op = OperationInst::create(state.name, operands, state.types,
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state.attributes, context);
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block->getOperations().insert(insertPoint, op);
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return op;
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}
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//===----------------------------------------------------------------------===//
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// Statements.
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//===----------------------------------------------------------------------===//
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/// Create an operation given the fields represented as an OperationState.
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OperationStmt *MLFuncBuilder::createOperation(const OperationState &state) {
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SmallVector<MLValue *, 8> operands;
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operands.reserve(state.operands.size());
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for (auto elt : state.operands)
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operands.push_back(cast<MLValue>(elt));
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auto *op = OperationStmt::create(state.name, operands, state.types,
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state.attributes, context);
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block->getStatements().insert(insertPoint, op);
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return op;
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}
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ForStmt *MLFuncBuilder::createFor(AffineConstantExpr *lowerBound,
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AffineConstantExpr *upperBound,
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AffineConstantExpr *step) {
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if (!step)
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step = getConstantExpr(1);
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auto *stmt = new ForStmt(lowerBound, upperBound, step, context);
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block->getStatements().insert(insertPoint, stmt);
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return stmt;
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}
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