forked from OSchip/llvm-project
713 lines
25 KiB
C++
713 lines
25 KiB
C++
//===- DAGISelEmitter.cpp - Generate an instruction selector --------------===//
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//
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// The LLVM Compiler Infrastructure
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//
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// This file was developed by Chris Lattner and is distributed under
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// the University of Illinois Open Source License. See LICENSE.TXT for details.
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//
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//===----------------------------------------------------------------------===//
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//
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// This tablegen backend emits a DAG instruction selector.
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//
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//===----------------------------------------------------------------------===//
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#include "DAGISelEmitter.h"
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#include "Record.h"
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#include "llvm/ADT/StringExtras.h"
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#include "llvm/Support/Debug.h"
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#include <set>
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using namespace llvm;
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//===----------------------------------------------------------------------===//
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// SDTypeConstraint implementation
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//
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SDTypeConstraint::SDTypeConstraint(Record *R) {
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OperandNo = R->getValueAsInt("OperandNum");
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if (R->isSubClassOf("SDTCisVT")) {
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ConstraintType = SDTCisVT;
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x.SDTCisVT_Info.VT = getValueType(R->getValueAsDef("VT"));
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} else if (R->isSubClassOf("SDTCisInt")) {
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ConstraintType = SDTCisInt;
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} else if (R->isSubClassOf("SDTCisFP")) {
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ConstraintType = SDTCisFP;
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} else if (R->isSubClassOf("SDTCisSameAs")) {
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ConstraintType = SDTCisSameAs;
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x.SDTCisSameAs_Info.OtherOperandNum = R->getValueAsInt("OtherOperandNum");
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} else if (R->isSubClassOf("SDTCisVTSmallerThanOp")) {
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ConstraintType = SDTCisVTSmallerThanOp;
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x.SDTCisVTSmallerThanOp_Info.OtherOperandNum =
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R->getValueAsInt("OtherOperandNum");
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} else {
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std::cerr << "Unrecognized SDTypeConstraint '" << R->getName() << "'!\n";
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exit(1);
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}
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}
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/// getOperandNum - Return the node corresponding to operand #OpNo in tree
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/// N, which has NumResults results.
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TreePatternNode *SDTypeConstraint::getOperandNum(unsigned OpNo,
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TreePatternNode *N,
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unsigned NumResults) const {
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assert(NumResults == 1 && "We only work with single result nodes so far!");
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if (OpNo < NumResults)
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return N; // FIXME: need value #
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else
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return N->getChild(OpNo-NumResults);
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}
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/// ApplyTypeConstraint - Given a node in a pattern, apply this type
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/// constraint to the nodes operands. This returns true if it makes a
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/// change, false otherwise. If a type contradiction is found, throw an
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/// exception.
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bool SDTypeConstraint::ApplyTypeConstraint(TreePatternNode *N,
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const SDNodeInfo &NodeInfo,
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TreePattern &TP) const {
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unsigned NumResults = NodeInfo.getNumResults();
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assert(NumResults == 1 && "We only work with single result nodes so far!");
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// Check that the number of operands is sane.
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if (NodeInfo.getNumOperands() >= 0) {
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if (N->getNumChildren() != (unsigned)NodeInfo.getNumOperands())
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TP.error(N->getOperator()->getName() + " node requires exactly " +
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itostr(NodeInfo.getNumOperands()) + " operands!");
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}
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TreePatternNode *NodeToApply = getOperandNum(OperandNo, N, NumResults);
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switch (ConstraintType) {
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default: assert(0 && "Unknown constraint type!");
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case SDTCisVT:
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// Operand must be a particular type.
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return NodeToApply->UpdateNodeType(x.SDTCisVT_Info.VT, TP);
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case SDTCisInt:
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if (NodeToApply->hasTypeSet() && !MVT::isInteger(NodeToApply->getType()))
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NodeToApply->UpdateNodeType(MVT::i1, TP); // throw an error.
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// FIXME: can tell from the target if there is only one Int type supported.
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return false;
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case SDTCisFP:
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if (NodeToApply->hasTypeSet() &&
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!MVT::isFloatingPoint(NodeToApply->getType()))
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NodeToApply->UpdateNodeType(MVT::f32, TP); // throw an error.
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// FIXME: can tell from the target if there is only one FP type supported.
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return false;
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case SDTCisSameAs: {
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TreePatternNode *OtherNode =
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getOperandNum(x.SDTCisSameAs_Info.OtherOperandNum, N, NumResults);
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return NodeToApply->UpdateNodeType(OtherNode->getType(), TP) |
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OtherNode->UpdateNodeType(NodeToApply->getType(), TP);
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}
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case SDTCisVTSmallerThanOp: {
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// The NodeToApply must be a leaf node that is a VT. OtherOperandNum must
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// have an integer type that is smaller than the VT.
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if (!NodeToApply->isLeaf() ||
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!dynamic_cast<DefInit*>(NodeToApply->getLeafValue()) ||
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!static_cast<DefInit*>(NodeToApply->getLeafValue())->getDef()
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->isSubClassOf("ValueType"))
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TP.error(N->getOperator()->getName() + " expects a VT operand!");
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MVT::ValueType VT =
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getValueType(static_cast<DefInit*>(NodeToApply->getLeafValue())->getDef());
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if (!MVT::isInteger(VT))
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TP.error(N->getOperator()->getName() + " VT operand must be integer!");
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TreePatternNode *OtherNode =
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getOperandNum(x.SDTCisVTSmallerThanOp_Info.OtherOperandNum, N,NumResults);
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if (OtherNode->hasTypeSet() &&
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(!MVT::isInteger(OtherNode->getType()) ||
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OtherNode->getType() <= VT))
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OtherNode->UpdateNodeType(MVT::Other, TP); // Throw an error.
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return false;
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}
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}
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return false;
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}
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//===----------------------------------------------------------------------===//
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// SDNodeInfo implementation
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//
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SDNodeInfo::SDNodeInfo(Record *R) : Def(R) {
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EnumName = R->getValueAsString("Opcode");
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SDClassName = R->getValueAsString("SDClass");
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Record *TypeProfile = R->getValueAsDef("TypeProfile");
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NumResults = TypeProfile->getValueAsInt("NumResults");
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NumOperands = TypeProfile->getValueAsInt("NumOperands");
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// Parse the type constraints.
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ListInit *Constraints = TypeProfile->getValueAsListInit("Constraints");
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for (unsigned i = 0, e = Constraints->getSize(); i != e; ++i) {
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assert(dynamic_cast<DefInit*>(Constraints->getElement(i)) &&
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"Constraints list should contain constraint definitions!");
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Record *Constraint =
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static_cast<DefInit*>(Constraints->getElement(i))->getDef();
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TypeConstraints.push_back(Constraint);
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}
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}
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//===----------------------------------------------------------------------===//
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// TreePatternNode implementation
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//
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TreePatternNode::~TreePatternNode() {
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#if 0 // FIXME: implement refcounted tree nodes!
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for (unsigned i = 0, e = getNumChildren(); i != e; ++i)
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delete getChild(i);
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#endif
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}
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/// UpdateNodeType - Set the node type of N to VT if VT contains
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/// information. If N already contains a conflicting type, then throw an
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/// exception. This returns true if any information was updated.
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///
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bool TreePatternNode::UpdateNodeType(MVT::ValueType VT, TreePattern &TP) {
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if (VT == MVT::LAST_VALUETYPE || getType() == VT) return false;
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if (getType() == MVT::LAST_VALUETYPE) {
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setType(VT);
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return true;
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}
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TP.error("Type inference contradiction found in node " +
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getOperator()->getName() + "!");
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return true; // unreachable
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}
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void TreePatternNode::print(std::ostream &OS) const {
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if (isLeaf()) {
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OS << *getLeafValue();
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} else {
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OS << "(" << getOperator()->getName();
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}
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if (getType() == MVT::Other)
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OS << ":Other";
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else if (getType() == MVT::LAST_VALUETYPE)
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;//OS << ":?";
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else
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OS << ":" << getType();
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if (!isLeaf()) {
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if (getNumChildren() != 0) {
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OS << " ";
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getChild(0)->print(OS);
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for (unsigned i = 1, e = getNumChildren(); i != e; ++i) {
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OS << ", ";
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getChild(i)->print(OS);
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}
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}
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OS << ")";
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}
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if (!PredicateFn.empty())
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OS << "<<P:" << PredicateFn << ">>";
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if (!TransformFn.empty())
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OS << "<<X:" << TransformFn << ">>";
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if (!getName().empty())
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OS << ":$" << getName();
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}
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void TreePatternNode::dump() const {
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print(std::cerr);
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}
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/// clone - Make a copy of this tree and all of its children.
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///
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TreePatternNode *TreePatternNode::clone() const {
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TreePatternNode *New;
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if (isLeaf()) {
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New = new TreePatternNode(getLeafValue());
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} else {
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std::vector<TreePatternNode*> CChildren;
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CChildren.reserve(Children.size());
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for (unsigned i = 0, e = getNumChildren(); i != e; ++i)
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CChildren.push_back(getChild(i)->clone());
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New = new TreePatternNode(getOperator(), CChildren);
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}
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New->setName(getName());
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New->setType(getType());
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New->setPredicateFn(getPredicateFn());
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New->setTransformFn(getTransformFn());
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return New;
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}
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/// SubstituteFormalArguments - Replace the formal arguments in this tree
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/// with actual values specified by ArgMap.
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void TreePatternNode::
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SubstituteFormalArguments(std::map<std::string, TreePatternNode*> &ArgMap) {
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if (isLeaf()) return;
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for (unsigned i = 0, e = getNumChildren(); i != e; ++i) {
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TreePatternNode *Child = getChild(i);
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if (Child->isLeaf()) {
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Init *Val = Child->getLeafValue();
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if (dynamic_cast<DefInit*>(Val) &&
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static_cast<DefInit*>(Val)->getDef()->getName() == "node") {
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// We found a use of a formal argument, replace it with its value.
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Child = ArgMap[Child->getName()];
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assert(Child && "Couldn't find formal argument!");
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setChild(i, Child);
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}
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} else {
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getChild(i)->SubstituteFormalArguments(ArgMap);
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}
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}
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}
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/// InlinePatternFragments - If this pattern refers to any pattern
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/// fragments, inline them into place, giving us a pattern without any
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/// PatFrag references.
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TreePatternNode *TreePatternNode::InlinePatternFragments(TreePattern &TP) {
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if (isLeaf()) return this; // nothing to do.
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Record *Op = getOperator();
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if (!Op->isSubClassOf("PatFrag")) {
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// Just recursively inline children nodes.
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for (unsigned i = 0, e = getNumChildren(); i != e; ++i)
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setChild(i, getChild(i)->InlinePatternFragments(TP));
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return this;
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}
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// Otherwise, we found a reference to a fragment. First, look up its
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// TreePattern record.
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TreePattern *Frag = TP.getDAGISelEmitter().getPatternFragment(Op);
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// Verify that we are passing the right number of operands.
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if (Frag->getNumArgs() != Children.size())
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TP.error("'" + Op->getName() + "' fragment requires " +
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utostr(Frag->getNumArgs()) + " operands!");
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TreePatternNode *FragTree = Frag->getOnlyTree()->clone();
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// Resolve formal arguments to their actual value.
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if (Frag->getNumArgs()) {
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// Compute the map of formal to actual arguments.
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std::map<std::string, TreePatternNode*> ArgMap;
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for (unsigned i = 0, e = Frag->getNumArgs(); i != e; ++i)
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ArgMap[Frag->getArgName(i)] = getChild(i)->InlinePatternFragments(TP);
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FragTree->SubstituteFormalArguments(ArgMap);
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}
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FragTree->setName(getName());
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// Get a new copy of this fragment to stitch into here.
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//delete this; // FIXME: implement refcounting!
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return FragTree;
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}
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/// ApplyTypeConstraints - Apply all of the type constraints relevent to
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/// this node and its children in the tree. This returns true if it makes a
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/// change, false otherwise. If a type contradiction is found, throw an
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/// exception.
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bool TreePatternNode::ApplyTypeConstraints(TreePattern &TP) {
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if (isLeaf()) return false;
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// special handling for set, which isn't really an SDNode.
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if (getOperator()->getName() == "set") {
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assert (getNumChildren() == 2 && "Only handle 2 operand set's for now!");
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bool MadeChange = getChild(0)->ApplyTypeConstraints(TP);
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MadeChange |= getChild(1)->ApplyTypeConstraints(TP);
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// Types of operands must match.
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MadeChange |= getChild(0)->UpdateNodeType(getChild(1)->getType(), TP);
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MadeChange |= getChild(1)->UpdateNodeType(getChild(0)->getType(), TP);
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MadeChange |= UpdateNodeType(MVT::isVoid, TP);
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return MadeChange;
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}
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const SDNodeInfo &NI = TP.getDAGISelEmitter().getSDNodeInfo(getOperator());
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bool MadeChange = NI.ApplyTypeConstraints(this, TP);
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for (unsigned i = 0, e = getNumChildren(); i != e; ++i)
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MadeChange |= getChild(i)->ApplyTypeConstraints(TP);
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return MadeChange;
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}
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//===----------------------------------------------------------------------===//
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// TreePattern implementation
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//
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TreePattern::TreePattern(Record *TheRec, const std::vector<DagInit *> &RawPat,
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DAGISelEmitter &ise) : TheRecord(TheRec), ISE(ise) {
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for (unsigned i = 0, e = RawPat.size(); i != e; ++i)
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Trees.push_back(ParseTreePattern(RawPat[i]));
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}
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void TreePattern::error(const std::string &Msg) const {
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throw "In " + TheRecord->getName() + ": " + Msg;
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}
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/// getIntrinsicType - Check to see if the specified record has an intrinsic
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/// type which should be applied to it. This infer the type of register
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/// references from the register file information, for example.
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///
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MVT::ValueType TreePattern::getIntrinsicType(Record *R) const {
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// Check to see if this is a register or a register class...
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if (R->isSubClassOf("RegisterClass"))
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return getValueType(R->getValueAsDef("RegType"));
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else if (R->isSubClassOf("PatFrag")) {
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// Pattern fragment types will be resolved when they are inlined.
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return MVT::LAST_VALUETYPE;
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} else if (R->isSubClassOf("Register")) {
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assert(0 && "Explicit registers not handled here yet!\n");
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return MVT::LAST_VALUETYPE;
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} else if (R->isSubClassOf("ValueType")) {
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// Using a VTSDNode.
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return MVT::Other;
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} else if (R->getName() == "node") {
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// Placeholder.
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return MVT::LAST_VALUETYPE;
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}
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error("Unknown value used: " + R->getName());
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return MVT::Other;
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}
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TreePatternNode *TreePattern::ParseTreePattern(DagInit *Dag) {
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Record *Operator = Dag->getNodeType();
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if (Operator->isSubClassOf("ValueType")) {
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// If the operator is a ValueType, then this must be "type cast" of a leaf
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// node.
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if (Dag->getNumArgs() != 1)
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error("Type cast only valid for a leaf node!");
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Init *Arg = Dag->getArg(0);
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TreePatternNode *New;
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if (DefInit *DI = dynamic_cast<DefInit*>(Arg)) {
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New = new TreePatternNode(DI);
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// If it's a regclass or something else known, set the type.
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New->setType(getIntrinsicType(DI->getDef()));
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} else if (DagInit *DI = dynamic_cast<DagInit*>(Arg)) {
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New = ParseTreePattern(DI);
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} else {
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Arg->dump();
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error("Unknown leaf value for tree pattern!");
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return 0;
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}
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// Apply the type cast.
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New->UpdateNodeType(getValueType(Operator), *this);
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return New;
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}
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// Verify that this is something that makes sense for an operator.
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if (!Operator->isSubClassOf("PatFrag") && !Operator->isSubClassOf("SDNode") &&
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Operator->getName() != "set")
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error("Unrecognized node '" + Operator->getName() + "'!");
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std::vector<TreePatternNode*> Children;
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for (unsigned i = 0, e = Dag->getNumArgs(); i != e; ++i) {
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Init *Arg = Dag->getArg(i);
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if (DagInit *DI = dynamic_cast<DagInit*>(Arg)) {
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Children.push_back(ParseTreePattern(DI));
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Children.back()->setName(Dag->getArgName(i));
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} else if (DefInit *DefI = dynamic_cast<DefInit*>(Arg)) {
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Record *R = DefI->getDef();
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// Direct reference to a leaf DagNode or PatFrag? Turn it into a
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// TreePatternNode if its own.
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if (R->isSubClassOf("SDNode") || R->isSubClassOf("PatFrag")) {
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Dag->setArg(i, new DagInit(R,
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std::vector<std::pair<Init*, std::string> >()));
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--i; // Revisit this node...
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} else {
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TreePatternNode *Node = new TreePatternNode(DefI);
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Node->setName(Dag->getArgName(i));
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Children.push_back(Node);
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// If it's a regclass or something else known, set the type.
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Node->setType(getIntrinsicType(R));
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// Input argument?
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if (R->getName() == "node") {
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if (Dag->getArgName(i).empty())
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error("'node' argument requires a name to match with operand list");
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Args.push_back(Dag->getArgName(i));
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}
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}
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} else {
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Arg->dump();
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error("Unknown leaf value for tree pattern!");
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}
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}
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return new TreePatternNode(Operator, Children);
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}
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/// InferAllTypes - Infer/propagate as many types throughout the expression
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/// patterns as possible. Return true if all types are infered, false
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/// otherwise. Throw an exception if a type contradiction is found.
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bool TreePattern::InferAllTypes() {
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bool MadeChange = true;
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while (MadeChange) {
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MadeChange = false;
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for (unsigned i = 0, e = Trees.size(); i != e; ++i)
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MadeChange |= Trees[i]->ApplyTypeConstraints(*this);
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}
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bool HasUnresolvedTypes = false;
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for (unsigned i = 0, e = Trees.size(); i != e; ++i)
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HasUnresolvedTypes |= Trees[i]->ContainsUnresolvedType();
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return !HasUnresolvedTypes;
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}
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void TreePattern::print(std::ostream &OS) const {
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OS << getRecord()->getName();
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if (!Args.empty()) {
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OS << "(" << Args[0];
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for (unsigned i = 1, e = Args.size(); i != e; ++i)
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OS << ", " << Args[i];
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OS << ")";
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}
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OS << ": ";
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if (Trees.size() > 1)
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OS << "[\n";
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for (unsigned i = 0, e = Trees.size(); i != e; ++i) {
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OS << "\t";
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Trees[i]->print(OS);
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OS << "\n";
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}
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if (Trees.size() > 1)
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OS << "]\n";
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}
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void TreePattern::dump() const { print(std::cerr); }
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//===----------------------------------------------------------------------===//
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// DAGISelEmitter implementation
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//
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// Parse all of the SDNode definitions for the target, populating SDNodes.
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void DAGISelEmitter::ParseNodeInfo() {
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std::vector<Record*> Nodes = Records.getAllDerivedDefinitions("SDNode");
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while (!Nodes.empty()) {
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SDNodes.insert(std::make_pair(Nodes.back(), Nodes.back()));
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Nodes.pop_back();
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}
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}
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/// ParseNodeTransforms - Parse all SDNodeXForm instances into the SDNodeXForms
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/// map, and emit them to the file as functions.
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void DAGISelEmitter::ParseNodeTransforms(std::ostream &OS) {
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OS << "\n// Node transformations.\n";
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std::vector<Record*> Xforms = Records.getAllDerivedDefinitions("SDNodeXForm");
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while (!Xforms.empty()) {
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Record *XFormNode = Xforms.back();
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Record *SDNode = XFormNode->getValueAsDef("Opcode");
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std::string Code = XFormNode->getValueAsCode("XFormFunction");
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SDNodeXForms.insert(std::make_pair(XFormNode,
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std::make_pair(SDNode, Code)));
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if (!Code.empty()) {
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std::string ClassName = getSDNodeInfo(SDNode).getSDClassName();
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const char *C2 = ClassName == "SDNode" ? "N" : "inN";
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OS << "static inline SDOperand Transform_" << XFormNode->getName()
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<< "(SDNode *" << C2 << ") {\n";
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if (ClassName != "SDNode")
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OS << " " << ClassName << " *N = cast<" << ClassName << ">(inN);\n";
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OS << Code << "\n}\n";
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}
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Xforms.pop_back();
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}
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}
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/// ParseAndResolvePatternFragments - Parse all of the PatFrag definitions in
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/// the .td file, building up the PatternFragments map. After we've collected
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/// them all, inline fragments together as necessary, so that there are no
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/// references left inside a pattern fragment to a pattern fragment.
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///
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/// This also emits all of the predicate functions to the output file.
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///
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void DAGISelEmitter::ParseAndResolvePatternFragments(std::ostream &OS) {
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std::vector<Record*> Fragments = Records.getAllDerivedDefinitions("PatFrag");
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// First step, parse all of the fragments and emit predicate functions.
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OS << "\n// Predicate functions.\n";
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for (unsigned i = 0, e = Fragments.size(); i != e; ++i) {
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std::vector<DagInit*> Trees;
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Trees.push_back(Fragments[i]->getValueAsDag("Fragment"));
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TreePattern *P = new TreePattern(Fragments[i], Trees, *this);
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PatternFragments[Fragments[i]] = P;
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// Validate the argument list, converting it to map, to discard duplicates.
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std::vector<std::string> &Args = P->getArgList();
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std::set<std::string> OperandsMap(Args.begin(), Args.end());
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if (OperandsMap.count(""))
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P->error("Cannot have unnamed 'node' values in pattern fragment!");
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// Parse the operands list.
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DagInit *OpsList = Fragments[i]->getValueAsDag("Operands");
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if (OpsList->getNodeType()->getName() != "ops")
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P->error("Operands list should start with '(ops ... '!");
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// Copy over the arguments.
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Args.clear();
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for (unsigned j = 0, e = OpsList->getNumArgs(); j != e; ++j) {
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if (!dynamic_cast<DefInit*>(OpsList->getArg(j)) ||
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static_cast<DefInit*>(OpsList->getArg(j))->
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getDef()->getName() != "node")
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P->error("Operands list should all be 'node' values.");
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if (OpsList->getArgName(j).empty())
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P->error("Operands list should have names for each operand!");
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if (!OperandsMap.count(OpsList->getArgName(j)))
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P->error("'" + OpsList->getArgName(j) +
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"' does not occur in pattern or was multiply specified!");
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OperandsMap.erase(OpsList->getArgName(j));
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Args.push_back(OpsList->getArgName(j));
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}
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if (!OperandsMap.empty())
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P->error("Operands list does not contain an entry for operand '" +
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*OperandsMap.begin() + "'!");
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// If there is a code init for this fragment, emit the predicate code and
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// keep track of the fact that this fragment uses it.
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std::string Code = Fragments[i]->getValueAsCode("Predicate");
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if (!Code.empty()) {
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assert(!P->getOnlyTree()->isLeaf() && "Can't be a leaf!");
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std::string ClassName =
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getSDNodeInfo(P->getOnlyTree()->getOperator()).getSDClassName();
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const char *C2 = ClassName == "SDNode" ? "N" : "inN";
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OS << "static inline bool Predicate_" << Fragments[i]->getName()
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<< "(SDNode *" << C2 << ") {\n";
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if (ClassName != "SDNode")
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OS << " " << ClassName << " *N = cast<" << ClassName << ">(inN);\n";
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OS << Code << "\n}\n";
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P->getOnlyTree()->setPredicateFn("Predicate_"+Fragments[i]->getName());
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}
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}
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OS << "\n\n";
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// Now that we've parsed all of the tree fragments, do a closure on them so
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// that there are not references to PatFrags left inside of them.
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for (std::map<Record*, TreePattern*>::iterator I = PatternFragments.begin(),
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E = PatternFragments.end(); I != E; ++I) {
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TreePattern *ThePat = I->second;
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ThePat->InlinePatternFragments();
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// Infer as many types as possible. Don't worry about it if we don't infer
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// all of them, some may depend on the inputs of the pattern.
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try {
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ThePat->InferAllTypes();
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} catch (...) {
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// If this pattern fragment is not supported by this target (no types can
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// satisfy its constraints), just ignore it. If the bogus pattern is
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// actually used by instructions, the type consistency error will be
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// reported there.
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}
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// If debugging, print out the pattern fragment result.
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DEBUG(ThePat->dump());
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}
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}
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/// ParseAndResolveInstructions - Parse all of the instructions, inlining and
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/// resolving any fragments involved. This populates the Instructions list with
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/// fully resolved instructions.
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void DAGISelEmitter::ParseAndResolveInstructions() {
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std::vector<Record*> Instrs = Records.getAllDerivedDefinitions("Instruction");
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for (unsigned i = 0, e = Instrs.size(); i != e; ++i) {
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if (!dynamic_cast<ListInit*>(Instrs[i]->getValueInit("Pattern")))
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continue; // no pattern yet, ignore it.
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ListInit *LI = Instrs[i]->getValueAsListInit("Pattern");
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if (LI->getSize() == 0) continue; // no pattern.
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std::vector<DagInit*> Trees;
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for (unsigned j = 0, e = LI->getSize(); j != e; ++j)
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Trees.push_back((DagInit*)LI->getElement(j));
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// Parse the instruction.
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TreePattern *I = new TreePattern(Instrs[i], Trees, *this);
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// Inline pattern fragments into it.
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I->InlinePatternFragments();
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// Infer as many types as possible. If we cannot infer all of them, we can
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// never do anything with this instruction pattern: report it to the user.
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if (!I->InferAllTypes()) {
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I->dump();
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I->error("Could not infer all types in pattern!");
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}
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// Verify that the top-level forms in the instruction are of void type.
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for (unsigned j = 0, e = I->getNumTrees(); j != e; ++j)
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if (I->getTree(j)->getType() != MVT::isVoid) {
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I->dump();
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I->error("Top-level forms in instruction pattern should have"
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" void types");
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}
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DEBUG(I->dump());
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Instructions.push_back(I);
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}
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}
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void DAGISelEmitter::EmitInstructionSelector(std::ostream &OS) {
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// Emit boilerplate.
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OS << "// The main instruction selector code.\n"
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<< "SDOperand " << Target.getName()
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<< "DAGToDAGISel::SelectCode(SDOperand Op) {\n"
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<< " SDNode *N = Op.Val;\n"
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<< " if (N->getOpcode() >= ISD::BUILTIN_OP_END &&\n"
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<< " N->getOpcode() < PPCISD::FIRST_NUMBER)\n"
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<< " return Op; // Already selected.\n\n"
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<< " switch (N->getOpcode()) {\n"
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<< " default: break;\n"
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<< " case ISD::EntryToken: // These leaves remain the same.\n"
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<< " return Op;\n"
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<< " case ISD::AssertSext:\n"
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<< " case ISD::AssertZext:\n"
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<< " return Select(N->getOperand(0));\n";
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OS << " } // end of big switch.\n\n"
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<< " std::cerr << \"Cannot yet select: \";\n"
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<< " N->dump();\n"
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<< " std::cerr << '\\n';\n"
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<< " abort();\n"
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<< "}\n";
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}
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void DAGISelEmitter::run(std::ostream &OS) {
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EmitSourceFileHeader("DAG Instruction Selector for the " + Target.getName() +
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" target", OS);
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ParseNodeInfo();
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ParseNodeTransforms(OS);
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ParseAndResolvePatternFragments(OS);
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ParseAndResolveInstructions();
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// TODO: convert some instructions to expanders if needed or something.
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EmitInstructionSelector(OS);
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for (std::map<Record*, TreePattern*>::iterator I = PatternFragments.begin(),
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E = PatternFragments.end(); I != E; ++I)
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delete I->second;
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PatternFragments.clear();
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for (unsigned i = 0, e = Instructions.size(); i != e; ++i)
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delete Instructions[i];
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Instructions.clear();
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}
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