595 lines
25 KiB
C++
595 lines
25 KiB
C++
//===- PredicateTree.cpp - Predicate tree merging -------------------------===//
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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 "PredicateTree.h"
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#include "mlir/Dialect/PDL/IR/PDL.h"
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#include "mlir/Dialect/PDL/IR/PDLTypes.h"
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#include "mlir/Dialect/PDLInterp/IR/PDLInterp.h"
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#include "mlir/IR/BuiltinOps.h"
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#include "mlir/Interfaces/InferTypeOpInterface.h"
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#include "llvm/ADT/TypeSwitch.h"
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using namespace mlir;
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using namespace mlir::pdl_to_pdl_interp;
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//===----------------------------------------------------------------------===//
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// Predicate List Building
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//===----------------------------------------------------------------------===//
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static void getTreePredicates(std::vector<PositionalPredicate> &predList,
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Value val, PredicateBuilder &builder,
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DenseMap<Value, Position *> &inputs,
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Position *pos);
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/// Compares the depths of two positions.
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static bool comparePosDepth(Position *lhs, Position *rhs) {
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return lhs->getOperationDepth() < rhs->getOperationDepth();
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}
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/// Returns the number of non-range elements within `values`.
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static unsigned getNumNonRangeValues(ValueRange values) {
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return llvm::count_if(values.getTypes(),
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[](Type type) { return !type.isa<pdl::RangeType>(); });
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}
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static void getTreePredicates(std::vector<PositionalPredicate> &predList,
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Value val, PredicateBuilder &builder,
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DenseMap<Value, Position *> &inputs,
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AttributePosition *pos) {
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assert(val.getType().isa<pdl::AttributeType>() && "expected attribute type");
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pdl::AttributeOp attr = cast<pdl::AttributeOp>(val.getDefiningOp());
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predList.emplace_back(pos, builder.getIsNotNull());
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// If the attribute has a type or value, add a constraint.
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if (Value type = attr.type())
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getTreePredicates(predList, type, builder, inputs, builder.getType(pos));
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else if (Attribute value = attr.valueAttr())
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predList.emplace_back(pos, builder.getAttributeConstraint(value));
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}
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/// Collect all of the predicates for the given operand position.
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static void getOperandTreePredicates(std::vector<PositionalPredicate> &predList,
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Value val, PredicateBuilder &builder,
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DenseMap<Value, Position *> &inputs,
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Position *pos) {
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Type valueType = val.getType();
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bool isVariadic = valueType.isa<pdl::RangeType>();
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// If this is a typed operand, add a type constraint.
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TypeSwitch<Operation *>(val.getDefiningOp())
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.Case<pdl::OperandOp, pdl::OperandsOp>([&](auto op) {
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// Prevent traversal into a null value if the operand has a proper
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// index.
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if (std::is_same<pdl::OperandOp, decltype(op)>::value ||
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cast<OperandGroupPosition>(pos)->getOperandGroupNumber())
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predList.emplace_back(pos, builder.getIsNotNull());
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if (Value type = op.type())
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getTreePredicates(predList, type, builder, inputs,
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builder.getType(pos));
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})
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.Case<pdl::ResultOp, pdl::ResultsOp>([&](auto op) {
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Optional<unsigned> index = op.index();
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// Prevent traversal into a null value if the result has a proper index.
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if (index)
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predList.emplace_back(pos, builder.getIsNotNull());
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// Get the parent operation of this operand.
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OperationPosition *parentPos = builder.getOperandDefiningOp(pos);
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predList.emplace_back(parentPos, builder.getIsNotNull());
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// Ensure that the operands match the corresponding results of the
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// parent operation.
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Position *resultPos = nullptr;
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if (std::is_same<pdl::ResultOp, decltype(op)>::value)
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resultPos = builder.getResult(parentPos, *index);
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else
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resultPos = builder.getResultGroup(parentPos, index, isVariadic);
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predList.emplace_back(resultPos, builder.getEqualTo(pos));
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// Collect the predicates of the parent operation.
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getTreePredicates(predList, op.parent(), builder, inputs,
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(Position *)parentPos);
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});
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}
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static void getTreePredicates(std::vector<PositionalPredicate> &predList,
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Value val, PredicateBuilder &builder,
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DenseMap<Value, Position *> &inputs,
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OperationPosition *pos) {
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assert(val.getType().isa<pdl::OperationType>() && "expected operation");
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pdl::OperationOp op = cast<pdl::OperationOp>(val.getDefiningOp());
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OperationPosition *opPos = cast<OperationPosition>(pos);
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// Ensure getDefiningOp returns a non-null operation.
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if (!opPos->isRoot())
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predList.emplace_back(pos, builder.getIsNotNull());
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// Check that this is the correct root operation.
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if (Optional<StringRef> opName = op.name())
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predList.emplace_back(pos, builder.getOperationName(*opName));
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// Check that the operation has the proper number of operands. If there are
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// any variable length operands, we check a minimum instead of an exact count.
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OperandRange operands = op.operands();
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unsigned minOperands = getNumNonRangeValues(operands);
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if (minOperands != operands.size()) {
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if (minOperands)
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predList.emplace_back(pos, builder.getOperandCountAtLeast(minOperands));
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} else {
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predList.emplace_back(pos, builder.getOperandCount(minOperands));
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}
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// Check that the operation has the proper number of results. If there are
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// any variable length results, we check a minimum instead of an exact count.
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OperandRange types = op.types();
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unsigned minResults = getNumNonRangeValues(types);
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if (minResults == types.size())
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predList.emplace_back(pos, builder.getResultCount(types.size()));
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else if (minResults)
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predList.emplace_back(pos, builder.getResultCountAtLeast(minResults));
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// Recurse into any attributes, operands, or results.
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for (auto it : llvm::zip(op.attributeNames(), op.attributes())) {
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getTreePredicates(
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predList, std::get<1>(it), builder, inputs,
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builder.getAttribute(opPos,
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std::get<0>(it).cast<StringAttr>().getValue()));
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}
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// Process the operands and results of the operation. For all values up to
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// the first variable length value, we use the concrete operand/result
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// number. After that, we use the "group" given that we can't know the
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// concrete indices until runtime. If there is only one variadic operand
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// group, we treat it as all of the operands/results of the operation.
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/// Operands.
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if (operands.size() == 1 && operands[0].getType().isa<pdl::RangeType>()) {
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getTreePredicates(predList, operands.front(), builder, inputs,
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builder.getAllOperands(opPos));
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} else {
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bool foundVariableLength = false;
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for (auto operandIt : llvm::enumerate(operands)) {
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bool isVariadic = operandIt.value().getType().isa<pdl::RangeType>();
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foundVariableLength |= isVariadic;
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Position *pos =
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foundVariableLength
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? builder.getOperandGroup(opPos, operandIt.index(), isVariadic)
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: builder.getOperand(opPos, operandIt.index());
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getTreePredicates(predList, operandIt.value(), builder, inputs, pos);
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}
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}
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/// Results.
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if (types.size() == 1 && types[0].getType().isa<pdl::RangeType>()) {
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getTreePredicates(predList, types.front(), builder, inputs,
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builder.getType(builder.getAllResults(opPos)));
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} else {
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bool foundVariableLength = false;
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for (auto &resultIt : llvm::enumerate(types)) {
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bool isVariadic = resultIt.value().getType().isa<pdl::RangeType>();
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foundVariableLength |= isVariadic;
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auto *resultPos =
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foundVariableLength
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? builder.getResultGroup(pos, resultIt.index(), isVariadic)
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: builder.getResult(pos, resultIt.index());
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predList.emplace_back(resultPos, builder.getIsNotNull());
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getTreePredicates(predList, resultIt.value(), builder, inputs,
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builder.getType(resultPos));
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}
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}
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}
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static void getTreePredicates(std::vector<PositionalPredicate> &predList,
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Value val, PredicateBuilder &builder,
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DenseMap<Value, Position *> &inputs,
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TypePosition *pos) {
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// Check for a constraint on a constant type.
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if (pdl::TypeOp typeOp = val.getDefiningOp<pdl::TypeOp>()) {
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if (Attribute type = typeOp.typeAttr())
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predList.emplace_back(pos, builder.getTypeConstraint(type));
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} else if (pdl::TypesOp typeOp = val.getDefiningOp<pdl::TypesOp>()) {
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if (Attribute typeAttr = typeOp.typesAttr())
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predList.emplace_back(pos, builder.getTypeConstraint(typeAttr));
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}
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}
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/// Collect the tree predicates anchored at the given value.
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static void getTreePredicates(std::vector<PositionalPredicate> &predList,
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Value val, PredicateBuilder &builder,
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DenseMap<Value, Position *> &inputs,
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Position *pos) {
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// Make sure this input value is accessible to the rewrite.
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auto it = inputs.try_emplace(val, pos);
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if (!it.second) {
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// If this is an input value that has been visited in the tree, add a
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// constraint to ensure that both instances refer to the same value.
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if (isa<pdl::AttributeOp, pdl::OperandOp, pdl::OperandsOp, pdl::OperationOp,
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pdl::TypeOp>(val.getDefiningOp())) {
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auto minMaxPositions =
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std::minmax(pos, it.first->second, comparePosDepth);
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predList.emplace_back(minMaxPositions.second,
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builder.getEqualTo(minMaxPositions.first));
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}
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return;
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}
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TypeSwitch<Position *>(pos)
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.Case<AttributePosition, OperationPosition, TypePosition>([&](auto *pos) {
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getTreePredicates(predList, val, builder, inputs, pos);
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})
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.Case<OperandPosition, OperandGroupPosition>([&](auto *pos) {
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getOperandTreePredicates(predList, val, builder, inputs, pos);
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})
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.Default([](auto *) { llvm_unreachable("unexpected position kind"); });
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}
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/// Collect all of the predicates related to constraints within the given
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/// pattern operation.
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static void getConstraintPredicates(pdl::ApplyNativeConstraintOp op,
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std::vector<PositionalPredicate> &predList,
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PredicateBuilder &builder,
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DenseMap<Value, Position *> &inputs) {
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OperandRange arguments = op.args();
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ArrayAttr parameters = op.constParamsAttr();
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std::vector<Position *> allPositions;
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allPositions.reserve(arguments.size());
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for (Value arg : arguments)
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allPositions.push_back(inputs.lookup(arg));
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// Push the constraint to the furthest position.
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Position *pos = *std::max_element(allPositions.begin(), allPositions.end(),
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comparePosDepth);
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PredicateBuilder::Predicate pred =
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builder.getConstraint(op.name(), std::move(allPositions), parameters);
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predList.emplace_back(pos, pred);
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}
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static void getResultPredicates(pdl::ResultOp op,
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std::vector<PositionalPredicate> &predList,
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PredicateBuilder &builder,
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DenseMap<Value, Position *> &inputs) {
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Position *&resultPos = inputs[op];
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if (resultPos)
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return;
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// Ensure that the result isn't null.
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auto *parentPos = cast<OperationPosition>(inputs.lookup(op.parent()));
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resultPos = builder.getResult(parentPos, op.index());
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predList.emplace_back(resultPos, builder.getIsNotNull());
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}
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static void getResultPredicates(pdl::ResultsOp op,
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std::vector<PositionalPredicate> &predList,
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PredicateBuilder &builder,
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DenseMap<Value, Position *> &inputs) {
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Position *&resultPos = inputs[op];
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if (resultPos)
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return;
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// Ensure that the result isn't null if the result has an index.
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auto *parentPos = cast<OperationPosition>(inputs.lookup(op.parent()));
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bool isVariadic = op.getType().isa<pdl::RangeType>();
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Optional<unsigned> index = op.index();
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resultPos = builder.getResultGroup(parentPos, index, isVariadic);
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if (index)
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predList.emplace_back(resultPos, builder.getIsNotNull());
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}
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/// Collect all of the predicates that cannot be determined via walking the
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/// tree.
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static void getNonTreePredicates(pdl::PatternOp pattern,
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std::vector<PositionalPredicate> &predList,
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PredicateBuilder &builder,
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DenseMap<Value, Position *> &inputs) {
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for (Operation &op : pattern.body().getOps()) {
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TypeSwitch<Operation *>(&op)
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.Case<pdl::ApplyNativeConstraintOp>([&](auto constraintOp) {
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getConstraintPredicates(constraintOp, predList, builder, inputs);
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})
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.Case<pdl::ResultOp, pdl::ResultsOp>([&](auto resultOp) {
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getResultPredicates(resultOp, predList, builder, inputs);
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});
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}
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}
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/// Given a pattern operation, build the set of matcher predicates necessary to
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/// match this pattern.
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static void buildPredicateList(pdl::PatternOp pattern,
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PredicateBuilder &builder,
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std::vector<PositionalPredicate> &predList,
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DenseMap<Value, Position *> &valueToPosition) {
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getTreePredicates(predList, pattern.getRewriter().root(), builder,
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valueToPosition, builder.getRoot());
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getNonTreePredicates(pattern, predList, builder, valueToPosition);
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}
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//===----------------------------------------------------------------------===//
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// Pattern Predicate Tree Merging
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//===----------------------------------------------------------------------===//
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namespace {
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/// This class represents a specific predicate applied to a position, and
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/// provides hashing and ordering operators. This class allows for computing a
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/// frequence sum and ordering predicates based on a cost model.
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struct OrderedPredicate {
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OrderedPredicate(const std::pair<Position *, Qualifier *> &ip)
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: position(ip.first), question(ip.second) {}
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OrderedPredicate(const PositionalPredicate &ip)
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: position(ip.position), question(ip.question) {}
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/// The position this predicate is applied to.
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Position *position;
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/// The question that is applied by this predicate onto the position.
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Qualifier *question;
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/// The first and second order benefit sums.
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/// The primary sum is the number of occurrences of this predicate among all
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/// of the patterns.
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unsigned primary = 0;
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/// The secondary sum is a squared summation of the primary sum of all of the
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/// predicates within each pattern that contains this predicate. This allows
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/// for favoring predicates that are more commonly shared within a pattern, as
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/// opposed to those shared across patterns.
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unsigned secondary = 0;
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/// A map between a pattern operation and the answer to the predicate question
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/// within that pattern.
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DenseMap<Operation *, Qualifier *> patternToAnswer;
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/// Returns true if this predicate is ordered before `rhs`, based on the cost
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/// model.
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bool operator<(const OrderedPredicate &rhs) const {
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// Sort by:
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// * higher first and secondary order sums
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// * lower depth
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// * lower position dependency
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// * lower predicate dependency
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auto *rhsPos = rhs.position;
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return std::make_tuple(primary, secondary, rhsPos->getOperationDepth(),
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rhsPos->getKind(), rhs.question->getKind()) >
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std::make_tuple(rhs.primary, rhs.secondary,
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position->getOperationDepth(), position->getKind(),
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question->getKind());
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}
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};
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/// A DenseMapInfo for OrderedPredicate based solely on the position and
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/// question.
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struct OrderedPredicateDenseInfo {
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using Base = DenseMapInfo<std::pair<Position *, Qualifier *>>;
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static OrderedPredicate getEmptyKey() { return Base::getEmptyKey(); }
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static OrderedPredicate getTombstoneKey() { return Base::getTombstoneKey(); }
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static bool isEqual(const OrderedPredicate &lhs,
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const OrderedPredicate &rhs) {
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return lhs.position == rhs.position && lhs.question == rhs.question;
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}
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static unsigned getHashValue(const OrderedPredicate &p) {
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return llvm::hash_combine(p.position, p.question);
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}
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};
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/// This class wraps a set of ordered predicates that are used within a specific
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/// pattern operation.
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struct OrderedPredicateList {
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OrderedPredicateList(pdl::PatternOp pattern) : pattern(pattern) {}
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pdl::PatternOp pattern;
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DenseSet<OrderedPredicate *> predicates;
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};
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} // end anonymous namespace
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/// Returns true if the given matcher refers to the same predicate as the given
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/// ordered predicate. This means that the position and questions of the two
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/// match.
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static bool isSamePredicate(MatcherNode *node, OrderedPredicate *predicate) {
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return node->getPosition() == predicate->position &&
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node->getQuestion() == predicate->question;
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}
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/// Get or insert a child matcher for the given parent switch node, given a
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/// predicate and parent pattern.
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std::unique_ptr<MatcherNode> &getOrCreateChild(SwitchNode *node,
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OrderedPredicate *predicate,
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pdl::PatternOp pattern) {
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assert(isSamePredicate(node, predicate) &&
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"expected matcher to equal the given predicate");
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auto it = predicate->patternToAnswer.find(pattern);
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assert(it != predicate->patternToAnswer.end() &&
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"expected pattern to exist in predicate");
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return node->getChildren().insert({it->second, nullptr}).first->second;
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}
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/// Build the matcher CFG by "pushing" patterns through by sorted predicate
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/// order. A pattern will traverse as far as possible using common predicates
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/// and then either diverge from the CFG or reach the end of a branch and start
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/// creating new nodes.
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static void propagatePattern(std::unique_ptr<MatcherNode> &node,
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OrderedPredicateList &list,
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std::vector<OrderedPredicate *>::iterator current,
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std::vector<OrderedPredicate *>::iterator end) {
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if (current == end) {
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// We've hit the end of a pattern, so create a successful result node.
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node = std::make_unique<SuccessNode>(list.pattern, std::move(node));
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// If the pattern doesn't contain this predicate, ignore it.
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} else if (list.predicates.find(*current) == list.predicates.end()) {
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propagatePattern(node, list, std::next(current), end);
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// If the current matcher node is invalid, create a new one for this
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// position and continue propagation.
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} else if (!node) {
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// Create a new node at this position and continue
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node = std::make_unique<SwitchNode>((*current)->position,
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(*current)->question);
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propagatePattern(
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getOrCreateChild(cast<SwitchNode>(&*node), *current, list.pattern),
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list, std::next(current), end);
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// If the matcher has already been created, and it is for this predicate we
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// continue propagation to the child.
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} else if (isSamePredicate(node.get(), *current)) {
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propagatePattern(
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getOrCreateChild(cast<SwitchNode>(&*node), *current, list.pattern),
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list, std::next(current), end);
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// If the matcher doesn't match the current predicate, insert a branch as
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// the common set of matchers has diverged.
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} else {
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propagatePattern(node->getFailureNode(), list, current, end);
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}
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}
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/// Fold any switch nodes nested under `node` to boolean nodes when possible.
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/// `node` is updated in-place if it is a switch.
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static void foldSwitchToBool(std::unique_ptr<MatcherNode> &node) {
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if (!node)
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return;
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|
|
|
if (SwitchNode *switchNode = dyn_cast<SwitchNode>(&*node)) {
|
|
SwitchNode::ChildMapT &children = switchNode->getChildren();
|
|
for (auto &it : children)
|
|
foldSwitchToBool(it.second);
|
|
|
|
// If the node only contains one child, collapse it into a boolean predicate
|
|
// node.
|
|
if (children.size() == 1) {
|
|
auto childIt = children.begin();
|
|
node = std::make_unique<BoolNode>(
|
|
node->getPosition(), node->getQuestion(), childIt->first,
|
|
std::move(childIt->second), std::move(node->getFailureNode()));
|
|
}
|
|
} else if (BoolNode *boolNode = dyn_cast<BoolNode>(&*node)) {
|
|
foldSwitchToBool(boolNode->getSuccessNode());
|
|
}
|
|
|
|
foldSwitchToBool(node->getFailureNode());
|
|
}
|
|
|
|
/// Insert an exit node at the end of the failure path of the `root`.
|
|
static void insertExitNode(std::unique_ptr<MatcherNode> *root) {
|
|
while (*root)
|
|
root = &(*root)->getFailureNode();
|
|
*root = std::make_unique<ExitNode>();
|
|
}
|
|
|
|
/// Given a module containing PDL pattern operations, generate a matcher tree
|
|
/// using the patterns within the given module and return the root matcher node.
|
|
std::unique_ptr<MatcherNode>
|
|
MatcherNode::generateMatcherTree(ModuleOp module, PredicateBuilder &builder,
|
|
DenseMap<Value, Position *> &valueToPosition) {
|
|
// Collect the set of predicates contained within the pattern operations of
|
|
// the module.
|
|
SmallVector<std::pair<pdl::PatternOp, std::vector<PositionalPredicate>>, 16>
|
|
patternsAndPredicates;
|
|
for (pdl::PatternOp pattern : module.getOps<pdl::PatternOp>()) {
|
|
std::vector<PositionalPredicate> predicateList;
|
|
buildPredicateList(pattern, builder, predicateList, valueToPosition);
|
|
patternsAndPredicates.emplace_back(pattern, std::move(predicateList));
|
|
}
|
|
|
|
// Associate a pattern result with each unique predicate.
|
|
DenseSet<OrderedPredicate, OrderedPredicateDenseInfo> uniqued;
|
|
for (auto &patternAndPredList : patternsAndPredicates) {
|
|
for (auto &predicate : patternAndPredList.second) {
|
|
auto it = uniqued.insert(predicate);
|
|
it.first->patternToAnswer.try_emplace(patternAndPredList.first,
|
|
predicate.answer);
|
|
}
|
|
}
|
|
|
|
// Associate each pattern to a set of its ordered predicates for later lookup.
|
|
std::vector<OrderedPredicateList> lists;
|
|
lists.reserve(patternsAndPredicates.size());
|
|
for (auto &patternAndPredList : patternsAndPredicates) {
|
|
OrderedPredicateList list(patternAndPredList.first);
|
|
for (auto &predicate : patternAndPredList.second) {
|
|
OrderedPredicate *orderedPredicate = &*uniqued.find(predicate);
|
|
list.predicates.insert(orderedPredicate);
|
|
|
|
// Increment the primary sum for each reference to a particular predicate.
|
|
++orderedPredicate->primary;
|
|
}
|
|
lists.push_back(std::move(list));
|
|
}
|
|
|
|
// For a particular pattern, get the total primary sum and add it to the
|
|
// secondary sum of each predicate. Square the primary sums to emphasize
|
|
// shared predicates within rather than across patterns.
|
|
for (auto &list : lists) {
|
|
unsigned total = 0;
|
|
for (auto *predicate : list.predicates)
|
|
total += predicate->primary * predicate->primary;
|
|
for (auto *predicate : list.predicates)
|
|
predicate->secondary += total;
|
|
}
|
|
|
|
// Sort the set of predicates now that the cost primary and secondary sums
|
|
// have been computed.
|
|
std::vector<OrderedPredicate *> ordered;
|
|
ordered.reserve(uniqued.size());
|
|
for (auto &ip : uniqued)
|
|
ordered.push_back(&ip);
|
|
std::stable_sort(
|
|
ordered.begin(), ordered.end(),
|
|
[](OrderedPredicate *lhs, OrderedPredicate *rhs) { return *lhs < *rhs; });
|
|
|
|
// Build the matchers for each of the pattern predicate lists.
|
|
std::unique_ptr<MatcherNode> root;
|
|
for (OrderedPredicateList &list : lists)
|
|
propagatePattern(root, list, ordered.begin(), ordered.end());
|
|
|
|
// Collapse the graph and insert the exit node.
|
|
foldSwitchToBool(root);
|
|
insertExitNode(&root);
|
|
return root;
|
|
}
|
|
|
|
//===----------------------------------------------------------------------===//
|
|
// MatcherNode
|
|
//===----------------------------------------------------------------------===//
|
|
|
|
MatcherNode::MatcherNode(TypeID matcherTypeID, Position *p, Qualifier *q,
|
|
std::unique_ptr<MatcherNode> failureNode)
|
|
: position(p), question(q), failureNode(std::move(failureNode)),
|
|
matcherTypeID(matcherTypeID) {}
|
|
|
|
//===----------------------------------------------------------------------===//
|
|
// BoolNode
|
|
//===----------------------------------------------------------------------===//
|
|
|
|
BoolNode::BoolNode(Position *position, Qualifier *question, Qualifier *answer,
|
|
std::unique_ptr<MatcherNode> successNode,
|
|
std::unique_ptr<MatcherNode> failureNode)
|
|
: MatcherNode(TypeID::get<BoolNode>(), position, question,
|
|
std::move(failureNode)),
|
|
answer(answer), successNode(std::move(successNode)) {}
|
|
|
|
//===----------------------------------------------------------------------===//
|
|
// SuccessNode
|
|
//===----------------------------------------------------------------------===//
|
|
|
|
SuccessNode::SuccessNode(pdl::PatternOp pattern,
|
|
std::unique_ptr<MatcherNode> failureNode)
|
|
: MatcherNode(TypeID::get<SuccessNode>(), /*position=*/nullptr,
|
|
/*question=*/nullptr, std::move(failureNode)),
|
|
pattern(pattern) {}
|
|
|
|
//===----------------------------------------------------------------------===//
|
|
// SwitchNode
|
|
//===----------------------------------------------------------------------===//
|
|
|
|
SwitchNode::SwitchNode(Position *position, Qualifier *question)
|
|
: MatcherNode(TypeID::get<SwitchNode>(), position, question) {}
|