//
//===----------------------------------------------------------------------===//
-#include "DAGISelEmitter.h"
-#include "Record.h"
-#include "llvm/ADT/StringExtras.h"
+#include "CodeGenDAGPatterns.h"
+#include "DAGISelMatcher.h"
#include "llvm/Support/Debug.h"
-#include "llvm/Support/MathExtras.h"
-#include "llvm/Support/Streams.h"
-#include <algorithm>
+#include "llvm/TableGen/Record.h"
+#include "llvm/TableGen/TableGenBackend.h"
using namespace llvm;
+#define DEBUG_TYPE "dag-isel-emitter"
+
+namespace {
+/// DAGISelEmitter - The top-level class which coordinates construction
+/// and emission of the instruction selector.
+class DAGISelEmitter {
+ CodeGenDAGPatterns CGP;
+public:
+ explicit DAGISelEmitter(RecordKeeper &R) : CGP(R) {}
+ void run(raw_ostream &OS);
+};
+} // End anonymous namespace
+
//===----------------------------------------------------------------------===//
// DAGISelEmitter Helper methods
//
-/// NodeIsComplexPattern - return true if N is a leaf node and a subclass of
-/// ComplexPattern.
-static bool NodeIsComplexPattern(TreePatternNode *N) {
- return (N->isLeaf() &&
- dynamic_cast<DefInit*>(N->getLeafValue()) &&
- static_cast<DefInit*>(N->getLeafValue())->getDef()->
- isSubClassOf("ComplexPattern"));
-}
-
-/// NodeGetComplexPattern - return the pointer to the ComplexPattern if N
-/// is a leaf node and a subclass of ComplexPattern, else it returns NULL.
-static const ComplexPattern *NodeGetComplexPattern(TreePatternNode *N,
- CodeGenDAGPatterns &CGP) {
- if (N->isLeaf() &&
- dynamic_cast<DefInit*>(N->getLeafValue()) &&
- static_cast<DefInit*>(N->getLeafValue())->getDef()->
- isSubClassOf("ComplexPattern")) {
- return &CGP.getComplexPattern(static_cast<DefInit*>(N->getLeafValue())
- ->getDef());
- }
- return NULL;
-}
-
-/// getPatternSize - Return the 'size' of this pattern. We want to match large
-/// patterns before small ones. This is used to determine the size of a
-/// pattern.
-static unsigned getPatternSize(TreePatternNode *P, CodeGenDAGPatterns &CGP) {
- assert((MVT::isExtIntegerInVTs(P->getExtTypes()) ||
- MVT::isExtFloatingPointInVTs(P->getExtTypes()) ||
- P->getExtTypeNum(0) == MVT::isVoid ||
- P->getExtTypeNum(0) == MVT::Flag ||
- P->getExtTypeNum(0) == MVT::iPTR) &&
- "Not a valid pattern node to size!");
- unsigned Size = 3; // The node itself.
- // If the root node is a ConstantSDNode, increases its size.
- // e.g. (set R32:$dst, 0).
- if (P->isLeaf() && dynamic_cast<IntInit*>(P->getLeafValue()))
- Size += 2;
-
- // FIXME: This is a hack to statically increase the priority of patterns
- // which maps a sub-dag to a complex pattern. e.g. favors LEA over ADD.
- // Later we can allow complexity / cost for each pattern to be (optionally)
- // specified. To get best possible pattern match we'll need to dynamically
- // calculate the complexity of all patterns a dag can potentially map to.
- const ComplexPattern *AM = NodeGetComplexPattern(P, CGP);
- if (AM)
- Size += AM->getNumOperands() * 3;
-
- // If this node has some predicate function that must match, it adds to the
- // complexity of this node.
- if (!P->getPredicateFn().empty())
- ++Size;
-
- // Count children in the count if they are also nodes.
- for (unsigned i = 0, e = P->getNumChildren(); i != e; ++i) {
- TreePatternNode *Child = P->getChild(i);
- if (!Child->isLeaf() && Child->getExtTypeNum(0) != MVT::Other)
- Size += getPatternSize(Child, CGP);
- else if (Child->isLeaf()) {
- if (dynamic_cast<IntInit*>(Child->getLeafValue()))
- Size += 5; // Matches a ConstantSDNode (+3) and a specific value (+2).
- else if (NodeIsComplexPattern(Child))
- Size += getPatternSize(Child, CGP);
- else if (!Child->getPredicateFn().empty())
- ++Size;
- }
- }
-
- return Size;
-}
-
/// getResultPatternCost - Compute the number of instructions for this pattern.
/// This is a temporary hack. We should really include the instruction
/// latencies in this calculation.
static unsigned getResultPatternCost(TreePatternNode *P,
CodeGenDAGPatterns &CGP) {
if (P->isLeaf()) return 0;
-
+
unsigned Cost = 0;
Record *Op = P->getOperator();
if (Op->isSubClassOf("Instruction")) {
Cost++;
- CodeGenInstruction &II = CGP.getTargetInfo().getInstruction(Op->getName());
- if (II.usesCustomDAGSchedInserter)
+ CodeGenInstruction &II = CGP.getTargetInfo().getInstruction(Op);
+ if (II.usesCustomInserter)
Cost += 10;
}
for (unsigned i = 0, e = P->getNumChildren(); i != e; ++i)
/// getResultPatternCodeSize - Compute the code size of instructions for this
/// pattern.
-static unsigned getResultPatternSize(TreePatternNode *P,
+static unsigned getResultPatternSize(TreePatternNode *P,
CodeGenDAGPatterns &CGP) {
if (P->isLeaf()) return 0;
return Cost;
}
+namespace {
// PatternSortingPredicate - return true if we prefer to match LHS before RHS.
// In particular, we want to match maximal patterns first and lowest cost within
// a particular complexity first.
PatternSortingPredicate(CodeGenDAGPatterns &cgp) : CGP(cgp) {}
CodeGenDAGPatterns &CGP;
- bool operator()(const PatternToMatch *LHS,
- const PatternToMatch *RHS) {
- unsigned LHSSize = getPatternSize(LHS->getSrcPattern(), CGP);
- unsigned RHSSize = getPatternSize(RHS->getSrcPattern(), CGP);
- LHSSize += LHS->getAddedComplexity();
- RHSSize += RHS->getAddedComplexity();
+ bool operator()(const PatternToMatch *LHS, const PatternToMatch *RHS) {
+ const TreePatternNode *LHSSrc = LHS->getSrcPattern();
+ const TreePatternNode *RHSSrc = RHS->getSrcPattern();
+
+ MVT LHSVT = (LHSSrc->getNumTypes() != 0 ? LHSSrc->getType(0) : MVT::Other);
+ MVT RHSVT = (RHSSrc->getNumTypes() != 0 ? RHSSrc->getType(0) : MVT::Other);
+ if (LHSVT.isVector() != RHSVT.isVector())
+ return RHSVT.isVector();
+
+ if (LHSVT.isFloatingPoint() != RHSVT.isFloatingPoint())
+ return RHSVT.isFloatingPoint();
+
+ // Otherwise, if the patterns might both match, sort based on complexity,
+ // which means that we prefer to match patterns that cover more nodes in the
+ // input over nodes that cover fewer.
+ int LHSSize = LHS->getPatternComplexity(CGP);
+ int RHSSize = RHS->getPatternComplexity(CGP);
if (LHSSize > RHSSize) return true; // LHS -> bigger -> less cost
if (LHSSize < RHSSize) return false;
-
+
// If the patterns have equal complexity, compare generated instruction cost
unsigned LHSCost = getResultPatternCost(LHS->getDstPattern(), CGP);
unsigned RHSCost = getResultPatternCost(RHS->getDstPattern(), CGP);
if (LHSCost < RHSCost) return true;
if (LHSCost > RHSCost) return false;
- return getResultPatternSize(LHS->getDstPattern(), CGP) <
- getResultPatternSize(RHS->getDstPattern(), CGP);
- }
-};
-
-/// getRegisterValueType - Look up and return the first ValueType of specified
-/// RegisterClass record
-static MVT::ValueType getRegisterValueType(Record *R, const CodeGenTarget &T) {
- if (const CodeGenRegisterClass *RC = T.getRegisterClassForRegister(R))
- return RC->getValueTypeNum(0);
- return MVT::Other;
-}
-
+ unsigned LHSPatSize = getResultPatternSize(LHS->getDstPattern(), CGP);
+ unsigned RHSPatSize = getResultPatternSize(RHS->getDstPattern(), CGP);
+ if (LHSPatSize < RHSPatSize) return true;
+ if (LHSPatSize > RHSPatSize) return false;
-/// RemoveAllTypes - A quick recursive walk over a pattern which removes all
-/// type information from it.
-static void RemoveAllTypes(TreePatternNode *N) {
- N->removeTypes();
- if (!N->isLeaf())
- for (unsigned i = 0, e = N->getNumChildren(); i != e; ++i)
- RemoveAllTypes(N->getChild(i));
-}
-
-/// NodeHasProperty - return true if TreePatternNode has the specified
-/// property.
-static bool NodeHasProperty(TreePatternNode *N, SDNP Property,
- CodeGenDAGPatterns &CGP) {
- if (N->isLeaf()) {
- const ComplexPattern *CP = NodeGetComplexPattern(N, CGP);
- if (CP)
- return CP->hasProperty(Property);
- return false;
- }
- Record *Operator = N->getOperator();
- if (!Operator->isSubClassOf("SDNode")) return false;
-
- return CGP.getSDNodeInfo(Operator).hasProperty(Property);
-}
-
-static bool PatternHasProperty(TreePatternNode *N, SDNP Property,
- CodeGenDAGPatterns &CGP) {
- if (NodeHasProperty(N, Property, CGP))
- return true;
-
- for (unsigned i = 0, e = N->getNumChildren(); i != e; ++i) {
- TreePatternNode *Child = N->getChild(i);
- if (PatternHasProperty(Child, Property, CGP))
- return true;
+ // Sort based on the UID of the pattern, giving us a deterministic ordering
+ // if all other sorting conditions fail.
+ assert(LHS == RHS || LHS->ID != RHS->ID);
+ return LHS->ID < RHS->ID;
}
+};
+} // End anonymous namespace
- return false;
-}
-
-//===----------------------------------------------------------------------===//
-// Node Transformation emitter implementation.
-//
-void DAGISelEmitter::EmitNodeTransforms(std::ostream &OS) {
- // Walk the pattern fragments, adding them to a map, which sorts them by
- // name.
- typedef std::map<std::string, CodeGenDAGPatterns::NodeXForm> NXsByNameTy;
- NXsByNameTy NXsByName;
-
- for (CodeGenDAGPatterns::nx_iterator I = CGP.nx_begin(), E = CGP.nx_end();
- I != E; ++I)
- NXsByName.insert(std::make_pair(I->first->getName(), I->second));
-
- OS << "\n// Node transformations.\n";
-
- for (NXsByNameTy::iterator I = NXsByName.begin(), E = NXsByName.end();
- I != E; ++I) {
- Record *SDNode = I->second.first;
- std::string Code = I->second.second;
-
- if (Code.empty()) continue; // Empty code? Skip it.
-
- std::string ClassName = CGP.getSDNodeInfo(SDNode).getSDClassName();
- const char *C2 = ClassName == "SDNode" ? "N" : "inN";
-
- OS << "inline SDOperand Transform_" << I->first << "(SDNode *" << C2
- << ") {\n";
- if (ClassName != "SDNode")
- OS << " " << ClassName << " *N = cast<" << ClassName << ">(inN);\n";
- OS << Code << "\n}\n";
- }
-}
-//===----------------------------------------------------------------------===//
-// Predicate emitter implementation.
-//
+void DAGISelEmitter::run(raw_ostream &OS) {
+ emitSourceFileHeader("DAG Instruction Selector for the " +
+ CGP.getTargetInfo().getName() + " target", OS);
-void DAGISelEmitter::EmitPredicateFunctions(std::ostream &OS) {
- OS << "\n// Predicate functions.\n";
+ OS << "// *** NOTE: This file is #included into the middle of the target\n"
+ << "// *** instruction selector class. These functions are really "
+ << "methods.\n\n";
- // Walk the pattern fragments, adding them to a map, which sorts them by
- // name.
- typedef std::map<std::string, std::pair<Record*, TreePattern*> > PFsByNameTy;
- PFsByNameTy PFsByName;
+ DEBUG(errs() << "\n\nALL PATTERNS TO MATCH:\n\n";
+ for (CodeGenDAGPatterns::ptm_iterator I = CGP.ptm_begin(),
+ E = CGP.ptm_end(); I != E; ++I) {
+ errs() << "PATTERN: "; I->getSrcPattern()->dump();
+ errs() << "\nRESULT: "; I->getDstPattern()->dump();
+ errs() << "\n";
+ });
- for (CodeGenDAGPatterns::pf_iterator I = CGP.pf_begin(), E = CGP.pf_end();
+ // Add all the patterns to a temporary list so we can sort them.
+ std::vector<const PatternToMatch*> Patterns;
+ for (CodeGenDAGPatterns::ptm_iterator I = CGP.ptm_begin(), E = CGP.ptm_end();
I != E; ++I)
- PFsByName.insert(std::make_pair(I->first->getName(), *I));
-
-
- for (PFsByNameTy::iterator I = PFsByName.begin(), E = PFsByName.end();
- I != E; ++I) {
- Record *PatFragRecord = I->second.first;// Record that derives from PatFrag.
- TreePattern *P = I->second.second;
-
- // If there is a code init for this fragment, emit the predicate code.
- std::string Code = PatFragRecord->getValueAsCode("Predicate");
- if (Code.empty()) continue;
-
- if (P->getOnlyTree()->isLeaf())
- OS << "inline bool Predicate_" << PatFragRecord->getName()
- << "(SDNode *N) {\n";
- else {
- std::string ClassName =
- CGP.getSDNodeInfo(P->getOnlyTree()->getOperator()).getSDClassName();
- const char *C2 = ClassName == "SDNode" ? "N" : "inN";
-
- OS << "inline bool Predicate_" << PatFragRecord->getName()
- << "(SDNode *" << C2 << ") {\n";
- if (ClassName != "SDNode")
- OS << " " << ClassName << " *N = cast<" << ClassName << ">(inN);\n";
- }
- OS << Code << "\n}\n";
- }
-
- OS << "\n\n";
-}
-
-
-//===----------------------------------------------------------------------===//
-// PatternCodeEmitter implementation.
-//
-class PatternCodeEmitter {
-private:
- CodeGenDAGPatterns &CGP;
-
- // Predicates.
- ListInit *Predicates;
- // Pattern cost.
- unsigned Cost;
- // Instruction selector pattern.
- TreePatternNode *Pattern;
- // Matched instruction.
- TreePatternNode *Instruction;
-
- // Node to name mapping
- std::map<std::string, std::string> VariableMap;
- // Node to operator mapping
- std::map<std::string, Record*> OperatorMap;
- // Names of all the folded nodes which produce chains.
- std::vector<std::pair<std::string, unsigned> > FoldedChains;
- // Original input chain(s).
- std::vector<std::pair<std::string, std::string> > OrigChains;
- std::set<std::string> Duplicates;
-
- /// LSI - Load/Store information.
- /// Save loads/stores matched by a pattern, and generate a MemOperandSDNode
- /// for each memory access. This facilitates the use of AliasAnalysis in
- /// the backend.
- std::vector<std::string> LSI;
-
- /// GeneratedCode - This is the buffer that we emit code to. The first int
- /// indicates whether this is an exit predicate (something that should be
- /// tested, and if true, the match fails) [when 1], or normal code to emit
- /// [when 0], or initialization code to emit [when 2].
- std::vector<std::pair<unsigned, std::string> > &GeneratedCode;
- /// GeneratedDecl - This is the set of all SDOperand declarations needed for
- /// the set of patterns for each top-level opcode.
- std::set<std::string> &GeneratedDecl;
- /// TargetOpcodes - The target specific opcodes used by the resulting
- /// instructions.
- std::vector<std::string> &TargetOpcodes;
- std::vector<std::string> &TargetVTs;
-
- std::string ChainName;
- unsigned TmpNo;
- unsigned OpcNo;
- unsigned VTNo;
-
- void emitCheck(const std::string &S) {
- if (!S.empty())
- GeneratedCode.push_back(std::make_pair(1, S));
- }
- void emitCode(const std::string &S) {
- if (!S.empty())
- GeneratedCode.push_back(std::make_pair(0, S));
- }
- void emitInit(const std::string &S) {
- if (!S.empty())
- GeneratedCode.push_back(std::make_pair(2, S));
- }
- void emitDecl(const std::string &S) {
- assert(!S.empty() && "Invalid declaration");
- GeneratedDecl.insert(S);
- }
- void emitOpcode(const std::string &Opc) {
- TargetOpcodes.push_back(Opc);
- OpcNo++;
- }
- void emitVT(const std::string &VT) {
- TargetVTs.push_back(VT);
- VTNo++;
- }
-public:
- PatternCodeEmitter(CodeGenDAGPatterns &cgp, ListInit *preds,
- TreePatternNode *pattern, TreePatternNode *instr,
- std::vector<std::pair<unsigned, std::string> > &gc,
- std::set<std::string> &gd,
- std::vector<std::string> &to,
- std::vector<std::string> &tv)
- : CGP(cgp), Predicates(preds), Pattern(pattern), Instruction(instr),
- GeneratedCode(gc), GeneratedDecl(gd),
- TargetOpcodes(to), TargetVTs(tv),
- TmpNo(0), OpcNo(0), VTNo(0) {}
-
- /// EmitMatchCode - Emit a matcher for N, going to the label for PatternNo
- /// if the match fails. At this point, we already know that the opcode for N
- /// matches, and the SDNode for the result has the RootName specified name.
- void EmitMatchCode(TreePatternNode *N, TreePatternNode *P,
- const std::string &RootName, const std::string &ChainSuffix,
- bool &FoundChain) {
-
- // Save loads/stores matched by a pattern.
- if (!N->isLeaf() && N->getName().empty() &&
- ((N->getOperator()->getName() == "ld") ||
- (N->getOperator()->getName() == "st") ||
- (N->getOperator()->getName() == "ist"))) {
- LSI.push_back(RootName);
- }
-
- bool isRoot = (P == NULL);
- // Emit instruction predicates. Each predicate is just a string for now.
- if (isRoot) {
- std::string PredicateCheck;
- for (unsigned i = 0, e = Predicates->getSize(); i != e; ++i) {
- if (DefInit *Pred = dynamic_cast<DefInit*>(Predicates->getElement(i))) {
- Record *Def = Pred->getDef();
- if (!Def->isSubClassOf("Predicate")) {
-#ifndef NDEBUG
- Def->dump();
-#endif
- assert(0 && "Unknown predicate type!");
- }
- if (!PredicateCheck.empty())
- PredicateCheck += " && ";
- PredicateCheck += "(" + Def->getValueAsString("CondString") + ")";
- }
- }
-
- emitCheck(PredicateCheck);
- }
-
- if (N->isLeaf()) {
- if (IntInit *II = dynamic_cast<IntInit*>(N->getLeafValue())) {
- emitCheck("cast<ConstantSDNode>(" + RootName +
- ")->getSignExtended() == " + itostr(II->getValue()));
- return;
- } else if (!NodeIsComplexPattern(N)) {
- assert(0 && "Cannot match this as a leaf value!");
- abort();
- }
- }
-
- // If this node has a name associated with it, capture it in VariableMap. If
- // we already saw this in the pattern, emit code to verify dagness.
- if (!N->getName().empty()) {
- std::string &VarMapEntry = VariableMap[N->getName()];
- if (VarMapEntry.empty()) {
- VarMapEntry = RootName;
- } else {
- // If we get here, this is a second reference to a specific name. Since
- // we already have checked that the first reference is valid, we don't
- // have to recursively match it, just check that it's the same as the
- // previously named thing.
- emitCheck(VarMapEntry + " == " + RootName);
- return;
- }
-
- if (!N->isLeaf())
- OperatorMap[N->getName()] = N->getOperator();
- }
-
-
- // Emit code to load the child nodes and match their contents recursively.
- unsigned OpNo = 0;
- bool NodeHasChain = NodeHasProperty (N, SDNPHasChain, CGP);
- bool HasChain = PatternHasProperty(N, SDNPHasChain, CGP);
- bool EmittedUseCheck = false;
- if (HasChain) {
- if (NodeHasChain)
- OpNo = 1;
- if (!isRoot) {
- // Multiple uses of actual result?
- emitCheck(RootName + ".hasOneUse()");
- EmittedUseCheck = true;
- if (NodeHasChain) {
- // If the immediate use can somehow reach this node through another
- // path, then can't fold it either or it will create a cycle.
- // e.g. In the following diagram, XX can reach ld through YY. If
- // ld is folded into XX, then YY is both a predecessor and a successor
- // of XX.
- //
- // [ld]
- // ^ ^
- // | |
- // / \---
- // / [YY]
- // | ^
- // [XX]-------|
- bool NeedCheck = false;
- if (P != Pattern)
- NeedCheck = true;
- else {
- const SDNodeInfo &PInfo = CGP.getSDNodeInfo(P->getOperator());
- NeedCheck =
- P->getOperator() == CGP.get_intrinsic_void_sdnode() ||
- P->getOperator() == CGP.get_intrinsic_w_chain_sdnode() ||
- P->getOperator() == CGP.get_intrinsic_wo_chain_sdnode() ||
- PInfo.getNumOperands() > 1 ||
- PInfo.hasProperty(SDNPHasChain) ||
- PInfo.hasProperty(SDNPInFlag) ||
- PInfo.hasProperty(SDNPOptInFlag);
- }
-
- if (NeedCheck) {
- std::string ParentName(RootName.begin(), RootName.end()-1);
- emitCheck("CanBeFoldedBy(" + RootName + ".Val, " + ParentName +
- ".Val, N.Val)");
- }
- }
- }
-
- if (NodeHasChain) {
- if (FoundChain) {
- emitCheck("(" + ChainName + ".Val == " + RootName + ".Val || "
- "IsChainCompatible(" + ChainName + ".Val, " +
- RootName + ".Val))");
- OrigChains.push_back(std::make_pair(ChainName, RootName));
- } else
- FoundChain = true;
- ChainName = "Chain" + ChainSuffix;
- emitInit("SDOperand " + ChainName + " = " + RootName +
- ".getOperand(0);");
- }
- }
-
- // Don't fold any node which reads or writes a flag and has multiple uses.
- // FIXME: We really need to separate the concepts of flag and "glue". Those
- // real flag results, e.g. X86CMP output, can have multiple uses.
- // FIXME: If the optional incoming flag does not exist. Then it is ok to
- // fold it.
- if (!isRoot &&
- (PatternHasProperty(N, SDNPInFlag, CGP) ||
- PatternHasProperty(N, SDNPOptInFlag, CGP) ||
- PatternHasProperty(N, SDNPOutFlag, CGP))) {
- if (!EmittedUseCheck) {
- // Multiple uses of actual result?
- emitCheck(RootName + ".hasOneUse()");
- }
- }
-
- // If there is a node predicate for this, emit the call.
- if (!N->getPredicateFn().empty())
- emitCheck(N->getPredicateFn() + "(" + RootName + ".Val)");
-
-
- // If this is an 'and R, 1234' where the operation is AND/OR and the RHS is
- // a constant without a predicate fn that has more that one bit set, handle
- // this as a special case. This is usually for targets that have special
- // handling of certain large constants (e.g. alpha with it's 8/16/32-bit
- // handling stuff). Using these instructions is often far more efficient
- // than materializing the constant. Unfortunately, both the instcombiner
- // and the dag combiner can often infer that bits are dead, and thus drop
- // them from the mask in the dag. For example, it might turn 'AND X, 255'
- // into 'AND X, 254' if it knows the low bit is set. Emit code that checks
- // to handle this.
- if (!N->isLeaf() &&
- (N->getOperator()->getName() == "and" ||
- N->getOperator()->getName() == "or") &&
- N->getChild(1)->isLeaf() &&
- N->getChild(1)->getPredicateFn().empty()) {
- if (IntInit *II = dynamic_cast<IntInit*>(N->getChild(1)->getLeafValue())) {
- if (!isPowerOf2_32(II->getValue())) { // Don't bother with single bits.
- emitInit("SDOperand " + RootName + "0" + " = " +
- RootName + ".getOperand(" + utostr(0) + ");");
- emitInit("SDOperand " + RootName + "1" + " = " +
- RootName + ".getOperand(" + utostr(1) + ");");
-
- emitCheck("isa<ConstantSDNode>(" + RootName + "1)");
- const char *MaskPredicate = N->getOperator()->getName() == "or"
- ? "CheckOrMask(" : "CheckAndMask(";
- emitCheck(MaskPredicate + RootName + "0, cast<ConstantSDNode>(" +
- RootName + "1), " + itostr(II->getValue()) + ")");
-
- EmitChildMatchCode(N->getChild(0), N, RootName + utostr(0), RootName,
- ChainSuffix + utostr(0), FoundChain);
- return;
- }
- }
- }
-
- for (unsigned i = 0, e = N->getNumChildren(); i != e; ++i, ++OpNo) {
- emitInit("SDOperand " + RootName + utostr(OpNo) + " = " +
- RootName + ".getOperand(" +utostr(OpNo) + ");");
-
- EmitChildMatchCode(N->getChild(i), N, RootName + utostr(OpNo), RootName,
- ChainSuffix + utostr(OpNo), FoundChain);
- }
-
- // Handle cases when root is a complex pattern.
- const ComplexPattern *CP;
- if (isRoot && N->isLeaf() && (CP = NodeGetComplexPattern(N, CGP))) {
- std::string Fn = CP->getSelectFunc();
- unsigned NumOps = CP->getNumOperands();
- for (unsigned i = 0; i < NumOps; ++i) {
- emitDecl("CPTmp" + utostr(i));
- emitCode("SDOperand CPTmp" + utostr(i) + ";");
- }
- if (CP->hasProperty(SDNPHasChain)) {
- emitDecl("CPInChain");
- emitDecl("Chain" + ChainSuffix);
- emitCode("SDOperand CPInChain;");
- emitCode("SDOperand Chain" + ChainSuffix + ";");
- }
-
- std::string Code = Fn + "(" + RootName + ", " + RootName;
- for (unsigned i = 0; i < NumOps; i++)
- Code += ", CPTmp" + utostr(i);
- if (CP->hasProperty(SDNPHasChain)) {
- ChainName = "Chain" + ChainSuffix;
- Code += ", CPInChain, Chain" + ChainSuffix;
- }
- emitCheck(Code + ")");
- }
- }
-
- void EmitChildMatchCode(TreePatternNode *Child, TreePatternNode *Parent,
- const std::string &RootName,
- const std::string &ParentRootName,
- const std::string &ChainSuffix, bool &FoundChain) {
- if (!Child->isLeaf()) {
- // If it's not a leaf, recursively match.
- const SDNodeInfo &CInfo = CGP.getSDNodeInfo(Child->getOperator());
- emitCheck(RootName + ".getOpcode() == " +
- CInfo.getEnumName());
- EmitMatchCode(Child, Parent, RootName, ChainSuffix, FoundChain);
- if (NodeHasProperty(Child, SDNPHasChain, CGP))
- FoldedChains.push_back(std::make_pair(RootName, CInfo.getNumResults()));
- } else {
- // If this child has a name associated with it, capture it in VarMap. If
- // we already saw this in the pattern, emit code to verify dagness.
- if (!Child->getName().empty()) {
- std::string &VarMapEntry = VariableMap[Child->getName()];
- if (VarMapEntry.empty()) {
- VarMapEntry = RootName;
- } else {
- // If we get here, this is a second reference to a specific name.
- // Since we already have checked that the first reference is valid,
- // we don't have to recursively match it, just check that it's the
- // same as the previously named thing.
- emitCheck(VarMapEntry + " == " + RootName);
- Duplicates.insert(RootName);
- return;
- }
- }
-
- // Handle leaves of various types.
- if (DefInit *DI = dynamic_cast<DefInit*>(Child->getLeafValue())) {
- Record *LeafRec = DI->getDef();
- if (LeafRec->isSubClassOf("RegisterClass") ||
- LeafRec->getName() == "ptr_rc") {
- // Handle register references. Nothing to do here.
- } else if (LeafRec->isSubClassOf("Register")) {
- // Handle register references.
- } else if (LeafRec->isSubClassOf("ComplexPattern")) {
- // Handle complex pattern.
- const ComplexPattern *CP = NodeGetComplexPattern(Child, CGP);
- std::string Fn = CP->getSelectFunc();
- unsigned NumOps = CP->getNumOperands();
- for (unsigned i = 0; i < NumOps; ++i) {
- emitDecl("CPTmp" + utostr(i));
- emitCode("SDOperand CPTmp" + utostr(i) + ";");
- }
- if (CP->hasProperty(SDNPHasChain)) {
- const SDNodeInfo &PInfo = CGP.getSDNodeInfo(Parent->getOperator());
- FoldedChains.push_back(std::make_pair("CPInChain",
- PInfo.getNumResults()));
- ChainName = "Chain" + ChainSuffix;
- emitDecl("CPInChain");
- emitDecl(ChainName);
- emitCode("SDOperand CPInChain;");
- emitCode("SDOperand " + ChainName + ";");
- }
-
- std::string Code = Fn + "(";
- if (CP->hasAttribute(CPAttrParentAsRoot)) {
- Code += ParentRootName + ", ";
- } else {
- Code += "N, ";
- }
- if (CP->hasProperty(SDNPHasChain)) {
- std::string ParentName(RootName.begin(), RootName.end()-1);
- Code += ParentName + ", ";
- }
- Code += RootName;
- for (unsigned i = 0; i < NumOps; i++)
- Code += ", CPTmp" + utostr(i);
- if (CP->hasProperty(SDNPHasChain))
- Code += ", CPInChain, Chain" + ChainSuffix;
- emitCheck(Code + ")");
- } else if (LeafRec->getName() == "srcvalue") {
- // Place holder for SRCVALUE nodes. Nothing to do here.
- } else if (LeafRec->isSubClassOf("ValueType")) {
- // Make sure this is the specified value type.
- emitCheck("cast<VTSDNode>(" + RootName +
- ")->getVT() == MVT::" + LeafRec->getName());
- } else if (LeafRec->isSubClassOf("CondCode")) {
- // Make sure this is the specified cond code.
- emitCheck("cast<CondCodeSDNode>(" + RootName +
- ")->get() == ISD::" + LeafRec->getName());
- } else {
-#ifndef NDEBUG
- Child->dump();
- cerr << " ";
-#endif
- assert(0 && "Unknown leaf type!");
- }
-
- // If there is a node predicate for this, emit the call.
- if (!Child->getPredicateFn().empty())
- emitCheck(Child->getPredicateFn() + "(" + RootName +
- ".Val)");
- } else if (IntInit *II =
- dynamic_cast<IntInit*>(Child->getLeafValue())) {
- emitCheck("isa<ConstantSDNode>(" + RootName + ")");
- unsigned CTmp = TmpNo++;
- emitCode("int64_t CN"+utostr(CTmp)+" = cast<ConstantSDNode>("+
- RootName + ")->getSignExtended();");
-
- emitCheck("CN" + utostr(CTmp) + " == " +itostr(II->getValue()));
- } else {
-#ifndef NDEBUG
- Child->dump();
-#endif
- assert(0 && "Unknown leaf type!");
- }
- }
- }
-
- /// EmitResultCode - Emit the action for a pattern. Now that it has matched
- /// we actually have to build a DAG!
- std::vector<std::string>
- EmitResultCode(TreePatternNode *N, std::vector<Record*> DstRegs,
- bool InFlagDecled, bool ResNodeDecled,
- bool LikeLeaf = false, bool isRoot = false) {
- // List of arguments of getTargetNode() or SelectNodeTo().
- std::vector<std::string> NodeOps;
- // This is something selected from the pattern we matched.
- if (!N->getName().empty()) {
- const std::string &VarName = N->getName();
- std::string Val = VariableMap[VarName];
- bool ModifiedVal = false;
- assert(!Val.empty() &&
- "Variable referenced but not defined and not caught earlier!");
- if (Val[0] == 'T' && Val[1] == 'm' && Val[2] == 'p') {
- // Already selected this operand, just return the tmpval.
- NodeOps.push_back(Val);
- return NodeOps;
- }
-
- const ComplexPattern *CP;
- unsigned ResNo = TmpNo++;
- if (!N->isLeaf() && N->getOperator()->getName() == "imm") {
- assert(N->getExtTypes().size() == 1 && "Multiple types not handled!");
- std::string CastType;
- std::string TmpVar = "Tmp" + utostr(ResNo);
- switch (N->getTypeNum(0)) {
- default:
- cerr << "Cannot handle " << getEnumName(N->getTypeNum(0))
- << " type as an immediate constant. Aborting\n";
- abort();
- case MVT::i1: CastType = "bool"; break;
- case MVT::i8: CastType = "unsigned char"; break;
- case MVT::i16: CastType = "unsigned short"; break;
- case MVT::i32: CastType = "unsigned"; break;
- case MVT::i64: CastType = "uint64_t"; break;
- }
- emitCode("SDOperand " + TmpVar +
- " = CurDAG->getTargetConstant(((" + CastType +
- ") cast<ConstantSDNode>(" + Val + ")->getValue()), " +
- getEnumName(N->getTypeNum(0)) + ");");
- // Add Tmp<ResNo> to VariableMap, so that we don't multiply select this
- // value if used multiple times by this pattern result.
- Val = TmpVar;
- ModifiedVal = true;
- NodeOps.push_back(Val);
- } else if (!N->isLeaf() && N->getOperator()->getName() == "texternalsym"){
- Record *Op = OperatorMap[N->getName()];
- // Transform ExternalSymbol to TargetExternalSymbol
- if (Op && Op->getName() == "externalsym") {
- std::string TmpVar = "Tmp"+utostr(ResNo);
- emitCode("SDOperand " + TmpVar + " = CurDAG->getTarget"
- "ExternalSymbol(cast<ExternalSymbolSDNode>(" +
- Val + ")->getSymbol(), " +
- getEnumName(N->getTypeNum(0)) + ");");
- // Add Tmp<ResNo> to VariableMap, so that we don't multiply select
- // this value if used multiple times by this pattern result.
- Val = TmpVar;
- ModifiedVal = true;
- }
- NodeOps.push_back(Val);
- } else if (!N->isLeaf() && (N->getOperator()->getName() == "tglobaladdr"
- || N->getOperator()->getName() == "tglobaltlsaddr")) {
- Record *Op = OperatorMap[N->getName()];
- // Transform GlobalAddress to TargetGlobalAddress
- if (Op && (Op->getName() == "globaladdr" ||
- Op->getName() == "globaltlsaddr")) {
- std::string TmpVar = "Tmp" + utostr(ResNo);
- emitCode("SDOperand " + TmpVar + " = CurDAG->getTarget"
- "GlobalAddress(cast<GlobalAddressSDNode>(" + Val +
- ")->getGlobal(), " + getEnumName(N->getTypeNum(0)) +
- ");");
- // Add Tmp<ResNo> to VariableMap, so that we don't multiply select
- // this value if used multiple times by this pattern result.
- Val = TmpVar;
- ModifiedVal = true;
- }
- NodeOps.push_back(Val);
- } else if (!N->isLeaf()
- && (N->getOperator()->getName() == "texternalsym"
- || N->getOperator()->getName() == "tconstpool")) {
- // Do not rewrite the variable name, since we don't generate a new
- // temporary.
- NodeOps.push_back(Val);
- } else if (N->isLeaf() && (CP = NodeGetComplexPattern(N, CGP))) {
- for (unsigned i = 0; i < CP->getNumOperands(); ++i) {
- emitCode("AddToISelQueue(CPTmp" + utostr(i) + ");");
- NodeOps.push_back("CPTmp" + utostr(i));
- }
- } else {
- // This node, probably wrapped in a SDNodeXForm, behaves like a leaf
- // node even if it isn't one. Don't select it.
- if (!LikeLeaf) {
- emitCode("AddToISelQueue(" + Val + ");");
- if (isRoot && N->isLeaf()) {
- emitCode("ReplaceUses(N, " + Val + ");");
- emitCode("return NULL;");
- }
- }
- NodeOps.push_back(Val);
- }
-
- if (ModifiedVal) {
- VariableMap[VarName] = Val;
- }
- return NodeOps;
- }
- if (N->isLeaf()) {
- // If this is an explicit register reference, handle it.
- if (DefInit *DI = dynamic_cast<DefInit*>(N->getLeafValue())) {
- unsigned ResNo = TmpNo++;
- if (DI->getDef()->isSubClassOf("Register")) {
- emitCode("SDOperand Tmp" + utostr(ResNo) + " = CurDAG->getRegister(" +
- getQualifiedName(DI->getDef()) + ", " +
- getEnumName(N->getTypeNum(0)) + ");");
- NodeOps.push_back("Tmp" + utostr(ResNo));
- return NodeOps;
- } else if (DI->getDef()->getName() == "zero_reg") {
- emitCode("SDOperand Tmp" + utostr(ResNo) +
- " = CurDAG->getRegister(0, " +
- getEnumName(N->getTypeNum(0)) + ");");
- NodeOps.push_back("Tmp" + utostr(ResNo));
- return NodeOps;
- }
- } else if (IntInit *II = dynamic_cast<IntInit*>(N->getLeafValue())) {
- unsigned ResNo = TmpNo++;
- assert(N->getExtTypes().size() == 1 && "Multiple types not handled!");
- emitCode("SDOperand Tmp" + utostr(ResNo) +
- " = CurDAG->getTargetConstant(" + itostr(II->getValue()) +
- ", " + getEnumName(N->getTypeNum(0)) + ");");
- NodeOps.push_back("Tmp" + utostr(ResNo));
- return NodeOps;
- }
-
-#ifndef NDEBUG
- N->dump();
-#endif
- assert(0 && "Unknown leaf type!");
- return NodeOps;
- }
+ Patterns.push_back(&*I);
- Record *Op = N->getOperator();
- if (Op->isSubClassOf("Instruction")) {
- const CodeGenTarget &CGT = CGP.getTargetInfo();
- CodeGenInstruction &II = CGT.getInstruction(Op->getName());
- const DAGInstruction &Inst = CGP.getInstruction(Op);
- const TreePattern *InstPat = Inst.getPattern();
- // FIXME: Assume actual pattern comes before "implicit".
- TreePatternNode *InstPatNode =
- isRoot ? (InstPat ? InstPat->getTree(0) : Pattern)
- : (InstPat ? InstPat->getTree(0) : NULL);
- if (InstPatNode && InstPatNode->getOperator()->getName() == "set") {
- InstPatNode = InstPatNode->getChild(InstPatNode->getNumChildren()-1);
- }
- bool HasVarOps = isRoot && II.isVariadic;
- // FIXME: fix how we deal with physical register operands.
- bool HasImpInputs = isRoot && Inst.getNumImpOperands() > 0;
- bool HasImpResults = isRoot && DstRegs.size() > 0;
- bool NodeHasOptInFlag = isRoot &&
- PatternHasProperty(Pattern, SDNPOptInFlag, CGP);
- bool NodeHasInFlag = isRoot &&
- PatternHasProperty(Pattern, SDNPInFlag, CGP);
- bool NodeHasOutFlag = isRoot &&
- PatternHasProperty(Pattern, SDNPOutFlag, CGP);
- bool NodeHasChain = InstPatNode &&
- PatternHasProperty(InstPatNode, SDNPHasChain, CGP);
- bool InputHasChain = isRoot &&
- NodeHasProperty(Pattern, SDNPHasChain, CGP);
- unsigned NumResults = Inst.getNumResults();
- unsigned NumDstRegs = HasImpResults ? DstRegs.size() : 0;
+ // We want to process the matches in order of minimal cost. Sort the patterns
+ // so the least cost one is at the start.
+ std::sort(Patterns.begin(), Patterns.end(), PatternSortingPredicate(CGP));
- if (NodeHasOptInFlag) {
- emitCode("bool HasInFlag = "
- "(N.getOperand(N.getNumOperands()-1).getValueType() == MVT::Flag);");
- }
- if (HasVarOps)
- emitCode("SmallVector<SDOperand, 8> Ops" + utostr(OpcNo) + ";");
- // How many results is this pattern expected to produce?
- unsigned NumPatResults = 0;
- for (unsigned i = 0, e = Pattern->getExtTypes().size(); i != e; i++) {
- MVT::ValueType VT = Pattern->getTypeNum(i);
- if (VT != MVT::isVoid && VT != MVT::Flag)
- NumPatResults++;
- }
-
- if (OrigChains.size() > 0) {
- // The original input chain is being ignored. If it is not just
- // pointing to the op that's being folded, we should create a
- // TokenFactor with it and the chain of the folded op as the new chain.
- // We could potentially be doing multiple levels of folding, in that
- // case, the TokenFactor can have more operands.
- emitCode("SmallVector<SDOperand, 8> InChains;");
- for (unsigned i = 0, e = OrigChains.size(); i < e; ++i) {
- emitCode("if (" + OrigChains[i].first + ".Val != " +
- OrigChains[i].second + ".Val) {");
- emitCode(" AddToISelQueue(" + OrigChains[i].first + ");");
- emitCode(" InChains.push_back(" + OrigChains[i].first + ");");
- emitCode("}");
- }
- emitCode("AddToISelQueue(" + ChainName + ");");
- emitCode("InChains.push_back(" + ChainName + ");");
- emitCode(ChainName + " = CurDAG->getNode(ISD::TokenFactor, MVT::Other, "
- "&InChains[0], InChains.size());");
- }
-
- // Loop over all of the operands of the instruction pattern, emitting code
- // to fill them all in. The node 'N' usually has number children equal to
- // the number of input operands of the instruction. However, in cases
- // where there are predicate operands for an instruction, we need to fill
- // in the 'execute always' values. Match up the node operands to the
- // instruction operands to do this.
- std::vector<std::string> AllOps;
- unsigned NumEAInputs = 0; // # of synthesized 'execute always' inputs.
- for (unsigned ChildNo = 0, InstOpNo = NumResults;
- InstOpNo != II.OperandList.size(); ++InstOpNo) {
- std::vector<std::string> Ops;
-
- // If this is a normal operand or a predicate operand without
- // 'execute always', emit it.
- Record *OperandNode = II.OperandList[InstOpNo].Rec;
- if ((!OperandNode->isSubClassOf("PredicateOperand") &&
- !OperandNode->isSubClassOf("OptionalDefOperand")) ||
- CGP.getDefaultOperand(OperandNode).DefaultOps.empty()) {
- Ops = EmitResultCode(N->getChild(ChildNo), DstRegs,
- InFlagDecled, ResNodeDecled);
- AllOps.insert(AllOps.end(), Ops.begin(), Ops.end());
- ++ChildNo;
- } else {
- // Otherwise, this is a predicate or optional def operand, emit the
- // 'default ops' operands.
- const DAGDefaultOperand &DefaultOp =
- CGP.getDefaultOperand(II.OperandList[InstOpNo].Rec);
- for (unsigned i = 0, e = DefaultOp.DefaultOps.size(); i != e; ++i) {
- Ops = EmitResultCode(DefaultOp.DefaultOps[i], DstRegs,
- InFlagDecled, ResNodeDecled);
- AllOps.insert(AllOps.end(), Ops.begin(), Ops.end());
- NumEAInputs += Ops.size();
- }
- }
- }
-
- // Generate MemOperandSDNodes nodes for each memory accesses covered by this
- // pattern.
- if (isRoot) {
- std::vector<std::string>::const_iterator mi, mie;
- for (mi = LSI.begin(), mie = LSI.end(); mi != mie; ++mi) {
- emitCode("SDOperand LSI_" + *mi + " = "
- "CurDAG->getMemOperand(cast<LSBaseSDNode>(" +
- *mi + ")->getMemOperand());");
- AllOps.push_back("LSI_" + *mi);
- }
- }
-
- // Emit all the chain and CopyToReg stuff.
- bool ChainEmitted = NodeHasChain;
- if (NodeHasChain)
- emitCode("AddToISelQueue(" + ChainName + ");");
- if (NodeHasInFlag || HasImpInputs)
- EmitInFlagSelectCode(Pattern, "N", ChainEmitted,
- InFlagDecled, ResNodeDecled, true);
- if (NodeHasOptInFlag || NodeHasInFlag || HasImpInputs) {
- if (!InFlagDecled) {
- emitCode("SDOperand InFlag(0, 0);");
- InFlagDecled = true;
- }
- if (NodeHasOptInFlag) {
- emitCode("if (HasInFlag) {");
- emitCode(" InFlag = N.getOperand(N.getNumOperands()-1);");
- emitCode(" AddToISelQueue(InFlag);");
- emitCode("}");
- }
- }
-
- unsigned ResNo = TmpNo++;
- if (!isRoot || InputHasChain || NodeHasChain || NodeHasOutFlag ||
- NodeHasOptInFlag || HasImpResults) {
- std::string Code;
- std::string Code2;
- std::string NodeName;
- if (!isRoot) {
- NodeName = "Tmp" + utostr(ResNo);
- Code2 = "SDOperand " + NodeName + "(";
- } else {
- NodeName = "ResNode";
- if (!ResNodeDecled) {
- Code2 = "SDNode *" + NodeName + " = ";
- ResNodeDecled = true;
- } else
- Code2 = NodeName + " = ";
- }
-
- Code += "CurDAG->getTargetNode(Opc" + utostr(OpcNo);
- unsigned OpsNo = OpcNo;
- emitOpcode(II.Namespace + "::" + II.TheDef->getName());
-
- // Output order: results, chain, flags
- // Result types.
- if (NumResults > 0 && N->getTypeNum(0) != MVT::isVoid) {
- Code += ", VT" + utostr(VTNo);
- emitVT(getEnumName(N->getTypeNum(0)));
- }
- // Add types for implicit results in physical registers, scheduler will
- // care of adding copyfromreg nodes.
- for (unsigned i = 0; i < NumDstRegs; i++) {
- Record *RR = DstRegs[i];
- if (RR->isSubClassOf("Register")) {
- MVT::ValueType RVT = getRegisterValueType(RR, CGT);
- Code += ", " + getEnumName(RVT);
- }
- }
- if (NodeHasChain)
- Code += ", MVT::Other";
- if (NodeHasOutFlag)
- Code += ", MVT::Flag";
-
- // Figure out how many fixed inputs the node has. This is important to
- // know which inputs are the variable ones if present.
- unsigned NumInputs = AllOps.size();
- NumInputs += NodeHasChain;
-
- // Inputs.
- if (HasVarOps) {
- for (unsigned i = 0, e = AllOps.size(); i != e; ++i)
- emitCode("Ops" + utostr(OpsNo) + ".push_back(" + AllOps[i] + ");");
- AllOps.clear();
- }
-
- if (HasVarOps) {
- // Figure out whether any operands at the end of the op list are not
- // part of the variable section.
- std::string EndAdjust;
- if (NodeHasInFlag || HasImpInputs)
- EndAdjust = "-1"; // Always has one flag.
- else if (NodeHasOptInFlag)
- EndAdjust = "-(HasInFlag?1:0)"; // May have a flag.
-
- emitCode("for (unsigned i = " + utostr(NumInputs - NumEAInputs) +
- ", e = N.getNumOperands()" + EndAdjust + "; i != e; ++i) {");
-
- emitCode(" AddToISelQueue(N.getOperand(i));");
- emitCode(" Ops" + utostr(OpsNo) + ".push_back(N.getOperand(i));");
- emitCode("}");
- }
-
- if (NodeHasChain) {
- if (HasVarOps)
- emitCode("Ops" + utostr(OpsNo) + ".push_back(" + ChainName + ");");
- else
- AllOps.push_back(ChainName);
- }
-
- if (HasVarOps) {
- if (NodeHasInFlag || HasImpInputs)
- emitCode("Ops" + utostr(OpsNo) + ".push_back(InFlag);");
- else if (NodeHasOptInFlag) {
- emitCode("if (HasInFlag)");
- emitCode(" Ops" + utostr(OpsNo) + ".push_back(InFlag);");
- }
- Code += ", &Ops" + utostr(OpsNo) + "[0], Ops" + utostr(OpsNo) +
- ".size()";
- } else if (NodeHasInFlag || NodeHasOptInFlag || HasImpInputs)
- AllOps.push_back("InFlag");
-
- unsigned NumOps = AllOps.size();
- if (NumOps) {
- if (!NodeHasOptInFlag && NumOps < 4) {
- for (unsigned i = 0; i != NumOps; ++i)
- Code += ", " + AllOps[i];
- } else {
- std::string OpsCode = "SDOperand Ops" + utostr(OpsNo) + "[] = { ";
- for (unsigned i = 0; i != NumOps; ++i) {
- OpsCode += AllOps[i];
- if (i != NumOps-1)
- OpsCode += ", ";
- }
- emitCode(OpsCode + " };");
- Code += ", Ops" + utostr(OpsNo) + ", ";
- if (NodeHasOptInFlag) {
- Code += "HasInFlag ? ";
- Code += utostr(NumOps) + " : " + utostr(NumOps-1);
- } else
- Code += utostr(NumOps);
- }
- }
-
- if (!isRoot)
- Code += "), 0";
- emitCode(Code2 + Code + ");");
-
- if (NodeHasChain)
- // Remember which op produces the chain.
- if (!isRoot)
- emitCode(ChainName + " = SDOperand(" + NodeName +
- ".Val, " + utostr(NumResults+NumDstRegs) + ");");
- else
- emitCode(ChainName + " = SDOperand(" + NodeName +
- ", " + utostr(NumResults+NumDstRegs) + ");");
-
- if (!isRoot) {
- NodeOps.push_back("Tmp" + utostr(ResNo));
- return NodeOps;
- }
-
- bool NeedReplace = false;
- if (NodeHasOutFlag) {
- if (!InFlagDecled) {
- emitCode("SDOperand InFlag(ResNode, " +
- utostr(NumResults+NumDstRegs+(unsigned)NodeHasChain) + ");");
- InFlagDecled = true;
- } else
- emitCode("InFlag = SDOperand(ResNode, " +
- utostr(NumResults+NumDstRegs+(unsigned)NodeHasChain) + ");");
- }
-
- if (FoldedChains.size() > 0) {
- std::string Code;
- for (unsigned j = 0, e = FoldedChains.size(); j < e; j++)
- emitCode("ReplaceUses(SDOperand(" +
- FoldedChains[j].first + ".Val, " +
- utostr(FoldedChains[j].second) + "), SDOperand(ResNode, " +
- utostr(NumResults+NumDstRegs) + "));");
- NeedReplace = true;
- }
-
- if (NodeHasOutFlag) {
- emitCode("ReplaceUses(SDOperand(N.Val, " +
- utostr(NumPatResults + (unsigned)InputHasChain)
- +"), InFlag);");
- NeedReplace = true;
- }
-
- if (NeedReplace && InputHasChain)
- emitCode("ReplaceUses(SDOperand(N.Val, " +
- utostr(NumPatResults) + "), SDOperand(" + ChainName
- + ".Val, " + ChainName + ".ResNo" + "));");
-
- // User does not expect the instruction would produce a chain!
- if ((!InputHasChain && NodeHasChain) && NodeHasOutFlag) {
- ;
- } else if (InputHasChain && !NodeHasChain) {
- // One of the inner node produces a chain.
- if (NodeHasOutFlag)
- emitCode("ReplaceUses(SDOperand(N.Val, " + utostr(NumPatResults+1) +
- "), SDOperand(ResNode, N.ResNo-1));");
- emitCode("ReplaceUses(SDOperand(N.Val, " + utostr(NumPatResults) +
- "), " + ChainName + ");");
- }
-
- emitCode("return ResNode;");
- } else {
- std::string Code = "return CurDAG->SelectNodeTo(N.Val, Opc" +
- utostr(OpcNo);
- if (N->getTypeNum(0) != MVT::isVoid)
- Code += ", VT" + utostr(VTNo);
- if (NodeHasOutFlag)
- Code += ", MVT::Flag";
-
- if (NodeHasInFlag || NodeHasOptInFlag || HasImpInputs)
- AllOps.push_back("InFlag");
-
- unsigned NumOps = AllOps.size();
- if (NumOps) {
- if (!NodeHasOptInFlag && NumOps < 4) {
- for (unsigned i = 0; i != NumOps; ++i)
- Code += ", " + AllOps[i];
- } else {
- std::string OpsCode = "SDOperand Ops" + utostr(OpcNo) + "[] = { ";
- for (unsigned i = 0; i != NumOps; ++i) {
- OpsCode += AllOps[i];
- if (i != NumOps-1)
- OpsCode += ", ";
- }
- emitCode(OpsCode + " };");
- Code += ", Ops" + utostr(OpcNo) + ", ";
- Code += utostr(NumOps);
- }
- }
- emitCode(Code + ");");
- emitOpcode(II.Namespace + "::" + II.TheDef->getName());
- if (N->getTypeNum(0) != MVT::isVoid)
- emitVT(getEnumName(N->getTypeNum(0)));
- }
-
- return NodeOps;
- } else if (Op->isSubClassOf("SDNodeXForm")) {
- assert(N->getNumChildren() == 1 && "node xform should have one child!");
- // PatLeaf node - the operand may or may not be a leaf node. But it should
- // behave like one.
- std::vector<std::string> Ops =
- EmitResultCode(N->getChild(0), DstRegs, InFlagDecled,
- ResNodeDecled, true);
- unsigned ResNo = TmpNo++;
- emitCode("SDOperand Tmp" + utostr(ResNo) + " = Transform_" + Op->getName()
- + "(" + Ops.back() + ".Val);");
- NodeOps.push_back("Tmp" + utostr(ResNo));
- if (isRoot)
- emitCode("return Tmp" + utostr(ResNo) + ".Val;");
- return NodeOps;
- } else {
- N->dump();
- cerr << "\n";
- throw std::string("Unknown node in result pattern!");
- }
- }
-
- /// InsertOneTypeCheck - Insert a type-check for an unresolved type in 'Pat'
- /// and add it to the tree. 'Pat' and 'Other' are isomorphic trees except that
- /// 'Pat' may be missing types. If we find an unresolved type to add a check
- /// for, this returns true otherwise false if Pat has all types.
- bool InsertOneTypeCheck(TreePatternNode *Pat, TreePatternNode *Other,
- const std::string &Prefix, bool isRoot = false) {
- // Did we find one?
- if (Pat->getExtTypes() != Other->getExtTypes()) {
- // Move a type over from 'other' to 'pat'.
- Pat->setTypes(Other->getExtTypes());
- // The top level node type is checked outside of the select function.
- if (!isRoot)
- emitCheck(Prefix + ".Val->getValueType(0) == " +
- getName(Pat->getTypeNum(0)));
- return true;
- }
-
- unsigned OpNo =
- (unsigned) NodeHasProperty(Pat, SDNPHasChain, CGP);
- for (unsigned i = 0, e = Pat->getNumChildren(); i != e; ++i, ++OpNo)
- if (InsertOneTypeCheck(Pat->getChild(i), Other->getChild(i),
- Prefix + utostr(OpNo)))
- return true;
- return false;
- }
-
-private:
- /// EmitInFlagSelectCode - Emit the flag operands for the DAG that is
- /// being built.
- void EmitInFlagSelectCode(TreePatternNode *N, const std::string &RootName,
- bool &ChainEmitted, bool &InFlagDecled,
- bool &ResNodeDecled, bool isRoot = false) {
- const CodeGenTarget &T = CGP.getTargetInfo();
- unsigned OpNo =
- (unsigned) NodeHasProperty(N, SDNPHasChain, CGP);
- bool HasInFlag = NodeHasProperty(N, SDNPInFlag, CGP);
- for (unsigned i = 0, e = N->getNumChildren(); i != e; ++i, ++OpNo) {
- TreePatternNode *Child = N->getChild(i);
- if (!Child->isLeaf()) {
- EmitInFlagSelectCode(Child, RootName + utostr(OpNo), ChainEmitted,
- InFlagDecled, ResNodeDecled);
- } else {
- if (DefInit *DI = dynamic_cast<DefInit*>(Child->getLeafValue())) {
- if (!Child->getName().empty()) {
- std::string Name = RootName + utostr(OpNo);
- if (Duplicates.find(Name) != Duplicates.end())
- // A duplicate! Do not emit a copy for this node.
- continue;
- }
-
- Record *RR = DI->getDef();
- if (RR->isSubClassOf("Register")) {
- MVT::ValueType RVT = getRegisterValueType(RR, T);
- if (RVT == MVT::Flag) {
- if (!InFlagDecled) {
- emitCode("SDOperand InFlag = " + RootName + utostr(OpNo) + ";");
- InFlagDecled = true;
- } else
- emitCode("InFlag = " + RootName + utostr(OpNo) + ";");
- emitCode("AddToISelQueue(InFlag);");
- } else {
- if (!ChainEmitted) {
- emitCode("SDOperand Chain = CurDAG->getEntryNode();");
- ChainName = "Chain";
- ChainEmitted = true;
- }
- emitCode("AddToISelQueue(" + RootName + utostr(OpNo) + ");");
- if (!InFlagDecled) {
- emitCode("SDOperand InFlag(0, 0);");
- InFlagDecled = true;
- }
- std::string Decl = (!ResNodeDecled) ? "SDNode *" : "";
- emitCode(Decl + "ResNode = CurDAG->getCopyToReg(" + ChainName +
- ", " + getQualifiedName(RR) +
- ", " + RootName + utostr(OpNo) + ", InFlag).Val;");
- ResNodeDecled = true;
- emitCode(ChainName + " = SDOperand(ResNode, 0);");
- emitCode("InFlag = SDOperand(ResNode, 1);");
- }
- }
- }
- }
- }
-
- if (HasInFlag) {
- if (!InFlagDecled) {
- emitCode("SDOperand InFlag = " + RootName +
- ".getOperand(" + utostr(OpNo) + ");");
- InFlagDecled = true;
- } else
- emitCode("InFlag = " + RootName +
- ".getOperand(" + utostr(OpNo) + ");");
- emitCode("AddToISelQueue(InFlag);");
- }
- }
-};
-
-/// EmitCodeForPattern - Given a pattern to match, emit code to the specified
-/// stream to match the pattern, and generate the code for the match if it
-/// succeeds. Returns true if the pattern is not guaranteed to match.
-void DAGISelEmitter::GenerateCodeForPattern(const PatternToMatch &Pattern,
- std::vector<std::pair<unsigned, std::string> > &GeneratedCode,
- std::set<std::string> &GeneratedDecl,
- std::vector<std::string> &TargetOpcodes,
- std::vector<std::string> &TargetVTs) {
- PatternCodeEmitter Emitter(CGP, Pattern.getPredicates(),
- Pattern.getSrcPattern(), Pattern.getDstPattern(),
- GeneratedCode, GeneratedDecl,
- TargetOpcodes, TargetVTs);
-
- // Emit the matcher, capturing named arguments in VariableMap.
- bool FoundChain = false;
- Emitter.EmitMatchCode(Pattern.getSrcPattern(), NULL, "N", "", FoundChain);
-
- // TP - Get *SOME* tree pattern, we don't care which.
- TreePattern &TP = *CGP.pf_begin()->second;
-
- // At this point, we know that we structurally match the pattern, but the
- // types of the nodes may not match. Figure out the fewest number of type
- // comparisons we need to emit. For example, if there is only one integer
- // type supported by a target, there should be no type comparisons at all for
- // integer patterns!
- //
- // To figure out the fewest number of type checks needed, clone the pattern,
- // remove the types, then perform type inference on the pattern as a whole.
- // If there are unresolved types, emit an explicit check for those types,
- // apply the type to the tree, then rerun type inference. Iterate until all
- // types are resolved.
- //
- TreePatternNode *Pat = Pattern.getSrcPattern()->clone();
- RemoveAllTypes(Pat);
-
- do {
- // Resolve/propagate as many types as possible.
- try {
- bool MadeChange = true;
- while (MadeChange)
- MadeChange = Pat->ApplyTypeConstraints(TP,
- true/*Ignore reg constraints*/);
- } catch (...) {
- assert(0 && "Error: could not find consistent types for something we"
- " already decided was ok!");
- abort();
- }
-
- // Insert a check for an unresolved type and add it to the tree. If we find
- // an unresolved type to add a check for, this returns true and we iterate,
- // otherwise we are done.
- } while (Emitter.InsertOneTypeCheck(Pat, Pattern.getSrcPattern(), "N", true));
-
- Emitter.EmitResultCode(Pattern.getDstPattern(), Pattern.getDstRegs(),
- false, false, false, true);
- delete Pat;
-}
-
-/// EraseCodeLine - Erase one code line from all of the patterns. If removing
-/// a line causes any of them to be empty, remove them and return true when
-/// done.
-static bool EraseCodeLine(std::vector<std::pair<const PatternToMatch*,
- std::vector<std::pair<unsigned, std::string> > > >
- &Patterns) {
- bool ErasedPatterns = false;
+ // Convert each variant of each pattern into a Matcher.
+ std::vector<Matcher*> PatternMatchers;
for (unsigned i = 0, e = Patterns.size(); i != e; ++i) {
- Patterns[i].second.pop_back();
- if (Patterns[i].second.empty()) {
- Patterns.erase(Patterns.begin()+i);
- --i; --e;
- ErasedPatterns = true;
- }
- }
- return ErasedPatterns;
-}
-
-/// EmitPatterns - Emit code for at least one pattern, but try to group common
-/// code together between the patterns.
-void DAGISelEmitter::EmitPatterns(std::vector<std::pair<const PatternToMatch*,
- std::vector<std::pair<unsigned, std::string> > > >
- &Patterns, unsigned Indent,
- std::ostream &OS) {
- typedef std::pair<unsigned, std::string> CodeLine;
- typedef std::vector<CodeLine> CodeList;
- typedef std::vector<std::pair<const PatternToMatch*, CodeList> > PatternList;
-
- if (Patterns.empty()) return;
-
- // Figure out how many patterns share the next code line. Explicitly copy
- // FirstCodeLine so that we don't invalidate a reference when changing
- // Patterns.
- const CodeLine FirstCodeLine = Patterns.back().second.back();
- unsigned LastMatch = Patterns.size()-1;
- while (LastMatch != 0 && Patterns[LastMatch-1].second.back() == FirstCodeLine)
- --LastMatch;
-
- // If not all patterns share this line, split the list into two pieces. The
- // first chunk will use this line, the second chunk won't.
- if (LastMatch != 0) {
- PatternList Shared(Patterns.begin()+LastMatch, Patterns.end());
- PatternList Other(Patterns.begin(), Patterns.begin()+LastMatch);
-
- // FIXME: Emit braces?
- if (Shared.size() == 1) {
- const PatternToMatch &Pattern = *Shared.back().first;
- OS << "\n" << std::string(Indent, ' ') << "// Pattern: ";
- Pattern.getSrcPattern()->print(OS);
- OS << "\n" << std::string(Indent, ' ') << "// Emits: ";
- Pattern.getDstPattern()->print(OS);
- OS << "\n";
- unsigned AddedComplexity = Pattern.getAddedComplexity();
- OS << std::string(Indent, ' ') << "// Pattern complexity = "
- << getPatternSize(Pattern.getSrcPattern(), CGP) + AddedComplexity
- << " cost = "
- << getResultPatternCost(Pattern.getDstPattern(), CGP)
- << " size = "
- << getResultPatternSize(Pattern.getDstPattern(), CGP) << "\n";
- }
- if (FirstCodeLine.first != 1) {
- OS << std::string(Indent, ' ') << "{\n";
- Indent += 2;
- }
- EmitPatterns(Shared, Indent, OS);
- if (FirstCodeLine.first != 1) {
- Indent -= 2;
- OS << std::string(Indent, ' ') << "}\n";
+ for (unsigned Variant = 0; ; ++Variant) {
+ if (Matcher *M = ConvertPatternToMatcher(*Patterns[i], Variant, CGP))
+ PatternMatchers.push_back(M);
+ else
+ break;
}
-
- if (Other.size() == 1) {
- const PatternToMatch &Pattern = *Other.back().first;
- OS << "\n" << std::string(Indent, ' ') << "// Pattern: ";
- Pattern.getSrcPattern()->print(OS);
- OS << "\n" << std::string(Indent, ' ') << "// Emits: ";
- Pattern.getDstPattern()->print(OS);
- OS << "\n";
- unsigned AddedComplexity = Pattern.getAddedComplexity();
- OS << std::string(Indent, ' ') << "// Pattern complexity = "
- << getPatternSize(Pattern.getSrcPattern(), CGP) + AddedComplexity
- << " cost = "
- << getResultPatternCost(Pattern.getDstPattern(), CGP)
- << " size = "
- << getResultPatternSize(Pattern.getDstPattern(), CGP) << "\n";
- }
- EmitPatterns(Other, Indent, OS);
- return;
- }
-
- // Remove this code from all of the patterns that share it.
- bool ErasedPatterns = EraseCodeLine(Patterns);
-
- bool isPredicate = FirstCodeLine.first == 1;
-
- // Otherwise, every pattern in the list has this line. Emit it.
- if (!isPredicate) {
- // Normal code.
- OS << std::string(Indent, ' ') << FirstCodeLine.second << "\n";
- } else {
- OS << std::string(Indent, ' ') << "if (" << FirstCodeLine.second;
-
- // If the next code line is another predicate, and if all of the pattern
- // in this group share the same next line, emit it inline now. Do this
- // until we run out of common predicates.
- while (!ErasedPatterns && Patterns.back().second.back().first == 1) {
- // Check that all of fhe patterns in Patterns end with the same predicate.
- bool AllEndWithSamePredicate = true;
- for (unsigned i = 0, e = Patterns.size(); i != e; ++i)
- if (Patterns[i].second.back() != Patterns.back().second.back()) {
- AllEndWithSamePredicate = false;
- break;
- }
- // If all of the predicates aren't the same, we can't share them.
- if (!AllEndWithSamePredicate) break;
-
- // Otherwise we can. Emit it shared now.
- OS << " &&\n" << std::string(Indent+4, ' ')
- << Patterns.back().second.back().second;
- ErasedPatterns = EraseCodeLine(Patterns);
- }
-
- OS << ") {\n";
- Indent += 2;
}
-
- EmitPatterns(Patterns, Indent, OS);
-
- if (isPredicate)
- OS << std::string(Indent-2, ' ') << "}\n";
-}
-static std::string getOpcodeName(Record *Op, CodeGenDAGPatterns &CGP) {
- return CGP.getSDNodeInfo(Op).getEnumName();
-}
+ Matcher *TheMatcher = new ScopeMatcher(PatternMatchers);
-static std::string getLegalCName(std::string OpName) {
- std::string::size_type pos = OpName.find("::");
- if (pos != std::string::npos)
- OpName.replace(pos, 2, "_");
- return OpName;
+ TheMatcher = OptimizeMatcher(TheMatcher, CGP);
+ //Matcher->dump();
+ EmitMatcherTable(TheMatcher, CGP, OS);
+ delete TheMatcher;
}
-void DAGISelEmitter::EmitInstructionSelector(std::ostream &OS) {
- const CodeGenTarget &Target = CGP.getTargetInfo();
-
- // Get the namespace to insert instructions into. Make sure not to pick up
- // "TargetInstrInfo" by accidentally getting the namespace off the PHI
- // instruction or something.
- std::string InstNS;
- for (CodeGenTarget::inst_iterator i = Target.inst_begin(),
- e = Target.inst_end(); i != e; ++i) {
- InstNS = i->second.Namespace;
- if (InstNS != "TargetInstrInfo")
- break;
- }
-
- if (!InstNS.empty()) InstNS += "::";
-
- // Group the patterns by their top-level opcodes.
- std::map<std::string, std::vector<const PatternToMatch*> > PatternsByOpcode;
- // All unique target node emission functions.
- std::map<std::string, unsigned> EmitFunctions;
- for (CodeGenDAGPatterns::ptm_iterator I = CGP.ptm_begin(),
- E = CGP.ptm_end(); I != E; ++I) {
- const PatternToMatch &Pattern = *I;
-
- TreePatternNode *Node = Pattern.getSrcPattern();
- if (!Node->isLeaf()) {
- PatternsByOpcode[getOpcodeName(Node->getOperator(), CGP)].
- push_back(&Pattern);
- } else {
- const ComplexPattern *CP;
- if (dynamic_cast<IntInit*>(Node->getLeafValue())) {
- PatternsByOpcode[getOpcodeName(CGP.getSDNodeNamed("imm"), CGP)].
- push_back(&Pattern);
- } else if ((CP = NodeGetComplexPattern(Node, CGP))) {
- std::vector<Record*> OpNodes = CP->getRootNodes();
- for (unsigned j = 0, e = OpNodes.size(); j != e; j++) {
- PatternsByOpcode[getOpcodeName(OpNodes[j], CGP)]
- .insert(PatternsByOpcode[getOpcodeName(OpNodes[j], CGP)].begin(),
- &Pattern);
- }
- } else {
- cerr << "Unrecognized opcode '";
- Node->dump();
- cerr << "' on tree pattern '";
- cerr << Pattern.getDstPattern()->getOperator()->getName() << "'!\n";
- exit(1);
- }
- }
- }
-
- // For each opcode, there might be multiple select functions, one per
- // ValueType of the node (or its first operand if it doesn't produce a
- // non-chain result.
- std::map<std::string, std::vector<std::string> > OpcodeVTMap;
-
- // Emit one Select_* method for each top-level opcode. We do this instead of
- // emitting one giant switch statement to support compilers where this will
- // result in the recursive functions taking less stack space.
- for (std::map<std::string, std::vector<const PatternToMatch*> >::iterator
- PBOI = PatternsByOpcode.begin(), E = PatternsByOpcode.end();
- PBOI != E; ++PBOI) {
- const std::string &OpName = PBOI->first;
- std::vector<const PatternToMatch*> &PatternsOfOp = PBOI->second;
- assert(!PatternsOfOp.empty() && "No patterns but map has entry?");
-
- // We want to emit all of the matching code now. However, we want to emit
- // the matches in order of minimal cost. Sort the patterns so the least
- // cost one is at the start.
- std::stable_sort(PatternsOfOp.begin(), PatternsOfOp.end(),
- PatternSortingPredicate(CGP));
-
- // Split them into groups by type.
- std::map<MVT::ValueType, std::vector<const PatternToMatch*> >PatternsByType;
- for (unsigned i = 0, e = PatternsOfOp.size(); i != e; ++i) {
- const PatternToMatch *Pat = PatternsOfOp[i];
- TreePatternNode *SrcPat = Pat->getSrcPattern();
- MVT::ValueType VT = SrcPat->getTypeNum(0);
- std::map<MVT::ValueType,
- std::vector<const PatternToMatch*> >::iterator TI =
- PatternsByType.find(VT);
- if (TI != PatternsByType.end())
- TI->second.push_back(Pat);
- else {
- std::vector<const PatternToMatch*> PVec;
- PVec.push_back(Pat);
- PatternsByType.insert(std::make_pair(VT, PVec));
- }
- }
-
- for (std::map<MVT::ValueType, std::vector<const PatternToMatch*> >::iterator
- II = PatternsByType.begin(), EE = PatternsByType.end(); II != EE;
- ++II) {
- MVT::ValueType OpVT = II->first;
- std::vector<const PatternToMatch*> &Patterns = II->second;
- typedef std::vector<std::pair<unsigned,std::string> > CodeList;
- typedef std::vector<std::pair<unsigned,std::string> >::iterator CodeListI;
-
- std::vector<std::pair<const PatternToMatch*, CodeList> > CodeForPatterns;
- std::vector<std::vector<std::string> > PatternOpcodes;
- std::vector<std::vector<std::string> > PatternVTs;
- std::vector<std::set<std::string> > PatternDecls;
- for (unsigned i = 0, e = Patterns.size(); i != e; ++i) {
- CodeList GeneratedCode;
- std::set<std::string> GeneratedDecl;
- std::vector<std::string> TargetOpcodes;
- std::vector<std::string> TargetVTs;
- GenerateCodeForPattern(*Patterns[i], GeneratedCode, GeneratedDecl,
- TargetOpcodes, TargetVTs);
- CodeForPatterns.push_back(std::make_pair(Patterns[i], GeneratedCode));
- PatternDecls.push_back(GeneratedDecl);
- PatternOpcodes.push_back(TargetOpcodes);
- PatternVTs.push_back(TargetVTs);
- }
-
- // Scan the code to see if all of the patterns are reachable and if it is
- // possible that the last one might not match.
- bool mightNotMatch = true;
- for (unsigned i = 0, e = CodeForPatterns.size(); i != e; ++i) {
- CodeList &GeneratedCode = CodeForPatterns[i].second;
- mightNotMatch = false;
-
- for (unsigned j = 0, e = GeneratedCode.size(); j != e; ++j) {
- if (GeneratedCode[j].first == 1) { // predicate.
- mightNotMatch = true;
- break;
- }
- }
-
- // If this pattern definitely matches, and if it isn't the last one, the
- // patterns after it CANNOT ever match. Error out.
- if (mightNotMatch == false && i != CodeForPatterns.size()-1) {
- cerr << "Pattern '";
- CodeForPatterns[i].first->getSrcPattern()->print(*cerr.stream());
- cerr << "' is impossible to select!\n";
- exit(1);
- }
- }
-
- // Factor target node emission code (emitted by EmitResultCode) into
- // separate functions. Uniquing and share them among all instruction
- // selection routines.
- for (unsigned i = 0, e = CodeForPatterns.size(); i != e; ++i) {
- CodeList &GeneratedCode = CodeForPatterns[i].second;
- std::vector<std::string> &TargetOpcodes = PatternOpcodes[i];
- std::vector<std::string> &TargetVTs = PatternVTs[i];
- std::set<std::string> Decls = PatternDecls[i];
- std::vector<std::string> AddedInits;
- int CodeSize = (int)GeneratedCode.size();
- int LastPred = -1;
- for (int j = CodeSize-1; j >= 0; --j) {
- if (LastPred == -1 && GeneratedCode[j].first == 1)
- LastPred = j;
- else if (LastPred != -1 && GeneratedCode[j].first == 2)
- AddedInits.push_back(GeneratedCode[j].second);
- }
-
- std::string CalleeCode = "(const SDOperand &N";
- std::string CallerCode = "(N";
- for (unsigned j = 0, e = TargetOpcodes.size(); j != e; ++j) {
- CalleeCode += ", unsigned Opc" + utostr(j);
- CallerCode += ", " + TargetOpcodes[j];
- }
- for (unsigned j = 0, e = TargetVTs.size(); j != e; ++j) {
- CalleeCode += ", MVT::ValueType VT" + utostr(j);
- CallerCode += ", " + TargetVTs[j];
- }
- for (std::set<std::string>::iterator
- I = Decls.begin(), E = Decls.end(); I != E; ++I) {
- std::string Name = *I;
- CalleeCode += ", SDOperand &" + Name;
- CallerCode += ", " + Name;
- }
- CallerCode += ");";
- CalleeCode += ") ";
- // Prevent emission routines from being inlined to reduce selection
- // routines stack frame sizes.
- CalleeCode += "DISABLE_INLINE ";
- CalleeCode += "{\n";
-
- for (std::vector<std::string>::const_reverse_iterator
- I = AddedInits.rbegin(), E = AddedInits.rend(); I != E; ++I)
- CalleeCode += " " + *I + "\n";
-
- for (int j = LastPred+1; j < CodeSize; ++j)
- CalleeCode += " " + GeneratedCode[j].second + "\n";
- for (int j = LastPred+1; j < CodeSize; ++j)
- GeneratedCode.pop_back();
- CalleeCode += "}\n";
+namespace llvm {
- // Uniquing the emission routines.
- unsigned EmitFuncNum;
- std::map<std::string, unsigned>::iterator EFI =
- EmitFunctions.find(CalleeCode);
- if (EFI != EmitFunctions.end()) {
- EmitFuncNum = EFI->second;
- } else {
- EmitFuncNum = EmitFunctions.size();
- EmitFunctions.insert(std::make_pair(CalleeCode, EmitFuncNum));
- OS << "SDNode *Emit_" << utostr(EmitFuncNum) << CalleeCode;
- }
-
- // Replace the emission code within selection routines with calls to the
- // emission functions.
- CallerCode = "return Emit_" + utostr(EmitFuncNum) + CallerCode;
- GeneratedCode.push_back(std::make_pair(false, CallerCode));
- }
-
- // Print function.
- std::string OpVTStr;
- if (OpVT == MVT::iPTR) {
- OpVTStr = "_iPTR";
- } else if (OpVT == MVT::isVoid) {
- // Nodes with a void result actually have a first result type of either
- // Other (a chain) or Flag. Since there is no one-to-one mapping from
- // void to this case, we handle it specially here.
- } else {
- OpVTStr = "_" + getEnumName(OpVT).substr(5); // Skip 'MVT::'
- }
- std::map<std::string, std::vector<std::string> >::iterator OpVTI =
- OpcodeVTMap.find(OpName);
- if (OpVTI == OpcodeVTMap.end()) {
- std::vector<std::string> VTSet;
- VTSet.push_back(OpVTStr);
- OpcodeVTMap.insert(std::make_pair(OpName, VTSet));
- } else
- OpVTI->second.push_back(OpVTStr);
-
- OS << "SDNode *Select_" << getLegalCName(OpName)
- << OpVTStr << "(const SDOperand &N) {\n";
-
- // Loop through and reverse all of the CodeList vectors, as we will be
- // accessing them from their logical front, but accessing the end of a
- // vector is more efficient.
- for (unsigned i = 0, e = CodeForPatterns.size(); i != e; ++i) {
- CodeList &GeneratedCode = CodeForPatterns[i].second;
- std::reverse(GeneratedCode.begin(), GeneratedCode.end());
- }
-
- // Next, reverse the list of patterns itself for the same reason.
- std::reverse(CodeForPatterns.begin(), CodeForPatterns.end());
-
- // Emit all of the patterns now, grouped together to share code.
- EmitPatterns(CodeForPatterns, 2, OS);
-
- // If the last pattern has predicates (which could fail) emit code to
- // catch the case where nothing handles a pattern.
- if (mightNotMatch) {
- OS << " cerr << \"Cannot yet select: \";\n";
- if (OpName != "ISD::INTRINSIC_W_CHAIN" &&
- OpName != "ISD::INTRINSIC_WO_CHAIN" &&
- OpName != "ISD::INTRINSIC_VOID") {
- OS << " N.Val->dump(CurDAG);\n";
- } else {
- OS << " unsigned iid = cast<ConstantSDNode>(N.getOperand("
- "N.getOperand(0).getValueType() == MVT::Other))->getValue();\n"
- << " cerr << \"intrinsic %\"<< "
- "Intrinsic::getName((Intrinsic::ID)iid);\n";
- }
- OS << " cerr << '\\n';\n"
- << " abort();\n"
- << " return NULL;\n";
- }
- OS << "}\n\n";
- }
- }
-
- // Emit boilerplate.
- OS << "SDNode *Select_INLINEASM(SDOperand N) {\n"
- << " std::vector<SDOperand> Ops(N.Val->op_begin(), N.Val->op_end());\n"
- << " SelectInlineAsmMemoryOperands(Ops, *CurDAG);\n\n"
-
- << " // Ensure that the asm operands are themselves selected.\n"
- << " for (unsigned j = 0, e = Ops.size(); j != e; ++j)\n"
- << " AddToISelQueue(Ops[j]);\n\n"
-
- << " std::vector<MVT::ValueType> VTs;\n"
- << " VTs.push_back(MVT::Other);\n"
- << " VTs.push_back(MVT::Flag);\n"
- << " SDOperand New = CurDAG->getNode(ISD::INLINEASM, VTs, &Ops[0], "
- "Ops.size());\n"
- << " return New.Val;\n"
- << "}\n\n";
-
- OS << "SDNode *Select_LABEL(const SDOperand &N) {\n"
- << " SDOperand Chain = N.getOperand(0);\n"
- << " SDOperand N1 = N.getOperand(1);\n"
- << " unsigned C = cast<ConstantSDNode>(N1)->getValue();\n"
- << " SDOperand Tmp = CurDAG->getTargetConstant(C, MVT::i32);\n"
- << " AddToISelQueue(Chain);\n"
- << " SDOperand Ops[] = { Tmp, Chain };\n"
- << " return CurDAG->getTargetNode(TargetInstrInfo::LABEL,\n"
- << " MVT::Other, Ops, 2);\n"
- << "}\n\n";
-
- OS << "SDNode *Select_EXTRACT_SUBREG(const SDOperand &N) {\n"
- << " SDOperand N0 = N.getOperand(0);\n"
- << " SDOperand N1 = N.getOperand(1);\n"
- << " unsigned C = cast<ConstantSDNode>(N1)->getValue();\n"
- << " SDOperand Tmp = CurDAG->getTargetConstant(C, MVT::i32);\n"
- << " AddToISelQueue(N0);\n"
- << " SDOperand Ops[] = { N0, Tmp };\n"
- << " return CurDAG->getTargetNode(TargetInstrInfo::EXTRACT_SUBREG,\n"
- << " N.getValueType(), Ops, 2);\n"
- << "}\n\n";
-
- OS << "SDNode *Select_INSERT_SUBREG(const SDOperand &N) {\n"
- << " SDOperand N0 = N.getOperand(0);\n"
- << " SDOperand N1 = N.getOperand(1);\n"
- << " SDOperand N2 = N.getOperand(2);\n"
- << " unsigned C = cast<ConstantSDNode>(N2)->getValue();\n"
- << " SDOperand Tmp = CurDAG->getTargetConstant(C, MVT::i32);\n"
- << " AddToISelQueue(N1);\n"
- << " SDOperand Ops[] = { N0, N1, Tmp };\n"
- << " if (N0.getOpcode() == ISD::UNDEF) {\n"
- << " return CurDAG->getTargetNode(TargetInstrInfo::INSERT_SUBREG,\n"
- << " N.getValueType(), Ops+1, 2);\n"
- << " } else {\n"
- << " AddToISelQueue(N0);\n"
- << " return CurDAG->getTargetNode(TargetInstrInfo::INSERT_SUBREG,\n"
- << " N.getValueType(), Ops, 3);\n"
- << " }\n"
- << "}\n\n";
-
- OS << "// The main instruction selector code.\n"
- << "SDNode *SelectCode(SDOperand N) {\n"
- << " if (N.getOpcode() >= ISD::BUILTIN_OP_END &&\n"
- << " N.getOpcode() < (ISD::BUILTIN_OP_END+" << InstNS
- << "INSTRUCTION_LIST_END)) {\n"
- << " return NULL; // Already selected.\n"
- << " }\n\n"
- << " MVT::ValueType NVT = N.Val->getValueType(0);\n"
- << " switch (N.getOpcode()) {\n"
- << " default: break;\n"
- << " case ISD::EntryToken: // These leaves remain the same.\n"
- << " case ISD::BasicBlock:\n"
- << " case ISD::Register:\n"
- << " case ISD::HANDLENODE:\n"
- << " case ISD::TargetConstant:\n"
- << " case ISD::TargetConstantPool:\n"
- << " case ISD::TargetFrameIndex:\n"
- << " case ISD::TargetExternalSymbol:\n"
- << " case ISD::TargetJumpTable:\n"
- << " case ISD::TargetGlobalTLSAddress:\n"
- << " case ISD::TargetGlobalAddress: {\n"
- << " return NULL;\n"
- << " }\n"
- << " case ISD::AssertSext:\n"
- << " case ISD::AssertZext: {\n"
- << " AddToISelQueue(N.getOperand(0));\n"
- << " ReplaceUses(N, N.getOperand(0));\n"
- << " return NULL;\n"
- << " }\n"
- << " case ISD::TokenFactor:\n"
- << " case ISD::CopyFromReg:\n"
- << " case ISD::CopyToReg: {\n"
- << " for (unsigned i = 0, e = N.getNumOperands(); i != e; ++i)\n"
- << " AddToISelQueue(N.getOperand(i));\n"
- << " return NULL;\n"
- << " }\n"
- << " case ISD::INLINEASM: return Select_INLINEASM(N);\n"
- << " case ISD::LABEL: return Select_LABEL(N);\n"
- << " case ISD::EXTRACT_SUBREG: return Select_EXTRACT_SUBREG(N);\n"
- << " case ISD::INSERT_SUBREG: return Select_INSERT_SUBREG(N);\n";
-
-
- // Loop over all of the case statements, emiting a call to each method we
- // emitted above.
- for (std::map<std::string, std::vector<const PatternToMatch*> >::iterator
- PBOI = PatternsByOpcode.begin(), E = PatternsByOpcode.end();
- PBOI != E; ++PBOI) {
- const std::string &OpName = PBOI->first;
- // Potentially multiple versions of select for this opcode. One for each
- // ValueType of the node (or its first true operand if it doesn't produce a
- // result.
- std::map<std::string, std::vector<std::string> >::iterator OpVTI =
- OpcodeVTMap.find(OpName);
- std::vector<std::string> &OpVTs = OpVTI->second;
- OS << " case " << OpName << ": {\n";
- // Keep track of whether we see a pattern that has an iPtr result.
- bool HasPtrPattern = false;
- bool HasDefaultPattern = false;
-
- OS << " switch (NVT) {\n";
- for (unsigned i = 0, e = OpVTs.size(); i < e; ++i) {
- std::string &VTStr = OpVTs[i];
- if (VTStr.empty()) {
- HasDefaultPattern = true;
- continue;
- }
-
- // If this is a match on iPTR: don't emit it directly, we need special
- // code.
- if (VTStr == "_iPTR") {
- HasPtrPattern = true;
- continue;
- }
- OS << " case MVT::" << VTStr.substr(1) << ":\n"
- << " return Select_" << getLegalCName(OpName)
- << VTStr << "(N);\n";
- }
- OS << " default:\n";
-
- // If there is an iPTR result version of this pattern, emit it here.
- if (HasPtrPattern) {
- OS << " if (NVT == TLI.getPointerTy())\n";
- OS << " return Select_" << getLegalCName(OpName) <<"_iPTR(N);\n";
- }
- if (HasDefaultPattern) {
- OS << " return Select_" << getLegalCName(OpName) << "(N);\n";
- }
- OS << " break;\n";
- OS << " }\n";
- OS << " break;\n";
- OS << " }\n";
- }
-
- OS << " } // end of big switch.\n\n"
- << " cerr << \"Cannot yet select: \";\n"
- << " if (N.getOpcode() != ISD::INTRINSIC_W_CHAIN &&\n"
- << " N.getOpcode() != ISD::INTRINSIC_WO_CHAIN &&\n"
- << " N.getOpcode() != ISD::INTRINSIC_VOID) {\n"
- << " N.Val->dump(CurDAG);\n"
- << " } else {\n"
- << " unsigned iid = cast<ConstantSDNode>(N.getOperand("
- "N.getOperand(0).getValueType() == MVT::Other))->getValue();\n"
- << " cerr << \"intrinsic %\"<< "
- "Intrinsic::getName((Intrinsic::ID)iid);\n"
- << " }\n"
- << " cerr << '\\n';\n"
- << " abort();\n"
- << " return NULL;\n"
- << "}\n";
+void EmitDAGISel(RecordKeeper &RK, raw_ostream &OS) {
+ DAGISelEmitter(RK).run(OS);
}
-void DAGISelEmitter::run(std::ostream &OS) {
- EmitSourceFileHeader("DAG Instruction Selector for the " +
- CGP.getTargetInfo().getName() + " target", OS);
-
- OS << "// *** NOTE: This file is #included into the middle of the target\n"
- << "// *** instruction selector class. These functions are really "
- << "methods.\n\n";
-
- OS << "#include \"llvm/Support/Compiler.h\"\n";
-
- OS << "// Instruction selector priority queue:\n"
- << "std::vector<SDNode*> ISelQueue;\n";
- OS << "/// Keep track of nodes which have already been added to queue.\n"
- << "unsigned char *ISelQueued;\n";
- OS << "/// Keep track of nodes which have already been selected.\n"
- << "unsigned char *ISelSelected;\n";
- OS << "/// Dummy parameter to ReplaceAllUsesOfValueWith().\n"
- << "std::vector<SDNode*> ISelKilled;\n\n";
-
- OS << "/// IsChainCompatible - Returns true if Chain is Op or Chain does\n";
- OS << "/// not reach Op.\n";
- OS << "static bool IsChainCompatible(SDNode *Chain, SDNode *Op) {\n";
- OS << " if (Chain->getOpcode() == ISD::EntryToken)\n";
- OS << " return true;\n";
- OS << " else if (Chain->getOpcode() == ISD::TokenFactor)\n";
- OS << " return false;\n";
- OS << " else if (Chain->getNumOperands() > 0) {\n";
- OS << " SDOperand C0 = Chain->getOperand(0);\n";
- OS << " if (C0.getValueType() == MVT::Other)\n";
- OS << " return C0.Val != Op && IsChainCompatible(C0.Val, Op);\n";
- OS << " }\n";
- OS << " return true;\n";
- OS << "}\n";
-
- OS << "/// Sorting functions for the selection queue.\n"
- << "struct isel_sort : public std::binary_function"
- << "<SDNode*, SDNode*, bool> {\n"
- << " bool operator()(const SDNode* left, const SDNode* right) "
- << "const {\n"
- << " return (left->getNodeId() > right->getNodeId());\n"
- << " }\n"
- << "};\n\n";
-
- OS << "inline void setQueued(int Id) {\n";
- OS << " ISelQueued[Id / 8] |= 1 << (Id % 8);\n";
- OS << "}\n";
- OS << "inline bool isQueued(int Id) {\n";
- OS << " return ISelQueued[Id / 8] & (1 << (Id % 8));\n";
- OS << "}\n";
- OS << "inline void setSelected(int Id) {\n";
- OS << " ISelSelected[Id / 8] |= 1 << (Id % 8);\n";
- OS << "}\n";
- OS << "inline bool isSelected(int Id) {\n";
- OS << " return ISelSelected[Id / 8] & (1 << (Id % 8));\n";
- OS << "}\n\n";
-
- OS << "void AddToISelQueue(SDOperand N) DISABLE_INLINE {\n";
- OS << " int Id = N.Val->getNodeId();\n";
- OS << " if (Id != -1 && !isQueued(Id)) {\n";
- OS << " ISelQueue.push_back(N.Val);\n";
- OS << " std::push_heap(ISelQueue.begin(), ISelQueue.end(), isel_sort());\n";
- OS << " setQueued(Id);\n";
- OS << " }\n";
- OS << "}\n\n";
-
- OS << "inline void RemoveKilled() {\n";
-OS << " unsigned NumKilled = ISelKilled.size();\n";
- OS << " if (NumKilled) {\n";
- OS << " for (unsigned i = 0; i != NumKilled; ++i) {\n";
- OS << " SDNode *Temp = ISelKilled[i];\n";
- OS << " ISelQueue.erase(std::remove(ISelQueue.begin(), ISelQueue.end(), "
- << "Temp), ISelQueue.end());\n";
- OS << " };\n";
- OS << " std::make_heap(ISelQueue.begin(), ISelQueue.end(), isel_sort());\n";
- OS << " ISelKilled.clear();\n";
- OS << " }\n";
- OS << "}\n\n";
-
- OS << "void ReplaceUses(SDOperand F, SDOperand T) DISABLE_INLINE {\n";
- OS << " CurDAG->ReplaceAllUsesOfValueWith(F, T, &ISelKilled);\n";
- OS << " setSelected(F.Val->getNodeId());\n";
- OS << " RemoveKilled();\n";
- OS << "}\n";
- OS << "void ReplaceUses(SDNode *F, SDNode *T) DISABLE_INLINE {\n";
- OS << " unsigned FNumVals = F->getNumValues();\n";
- OS << " unsigned TNumVals = T->getNumValues();\n";
- OS << " if (FNumVals != TNumVals) {\n";
- OS << " for (unsigned i = 0, e = std::min(FNumVals, TNumVals); "
- << "i < e; ++i)\n";
- OS << " CurDAG->ReplaceAllUsesOfValueWith(SDOperand(F, i), "
- << "SDOperand(T, i), &ISelKilled);\n";
- OS << " } else {\n";
- OS << " CurDAG->ReplaceAllUsesWith(F, T, &ISelKilled);\n";
- OS << " }\n";
- OS << " setSelected(F->getNodeId());\n";
- OS << " RemoveKilled();\n";
- OS << "}\n\n";
-
- OS << "// SelectRoot - Top level entry to DAG isel.\n";
- OS << "SDOperand SelectRoot(SDOperand Root) {\n";
- OS << " SelectRootInit();\n";
- OS << " unsigned NumBytes = (DAGSize + 7) / 8;\n";
- OS << " ISelQueued = new unsigned char[NumBytes];\n";
- OS << " ISelSelected = new unsigned char[NumBytes];\n";
- OS << " memset(ISelQueued, 0, NumBytes);\n";
- OS << " memset(ISelSelected, 0, NumBytes);\n";
- OS << "\n";
- OS << " // Create a dummy node (which is not added to allnodes), that adds\n"
- << " // a reference to the root node, preventing it from being deleted,\n"
- << " // and tracking any changes of the root.\n"
- << " HandleSDNode Dummy(CurDAG->getRoot());\n"
- << " ISelQueue.push_back(CurDAG->getRoot().Val);\n";
- OS << " while (!ISelQueue.empty()) {\n";
- OS << " SDNode *Node = ISelQueue.front();\n";
- OS << " std::pop_heap(ISelQueue.begin(), ISelQueue.end(), isel_sort());\n";
- OS << " ISelQueue.pop_back();\n";
- OS << " if (!isSelected(Node->getNodeId())) {\n";
- OS << " SDNode *ResNode = Select(SDOperand(Node, 0));\n";
- OS << " if (ResNode != Node) {\n";
- OS << " if (ResNode)\n";
- OS << " ReplaceUses(Node, ResNode);\n";
- OS << " if (Node->use_empty()) { // Don't delete EntryToken, etc.\n";
- OS << " CurDAG->RemoveDeadNode(Node, ISelKilled);\n";
- OS << " RemoveKilled();\n";
- OS << " }\n";
- OS << " }\n";
- OS << " }\n";
- OS << " }\n";
- OS << "\n";
- OS << " delete[] ISelQueued;\n";
- OS << " ISelQueued = NULL;\n";
- OS << " delete[] ISelSelected;\n";
- OS << " ISelSelected = NULL;\n";
- OS << " return Dummy.getValue();\n";
- OS << "}\n";
-
- EmitNodeTransforms(OS);
- EmitPredicateFunctions(OS);
-
- DOUT << "\n\nALL PATTERNS TO MATCH:\n\n";
- for (CodeGenDAGPatterns::ptm_iterator I = CGP.ptm_begin(), E = CGP.ptm_end();
- I != E; ++I) {
- DOUT << "PATTERN: "; DEBUG(I->getSrcPattern()->dump());
- DOUT << "\nRESULT: "; DEBUG(I->getDstPattern()->dump());
- DOUT << "\n";
- }
-
- // At this point, we have full information about the 'Patterns' we need to
- // parse, both implicitly from instructions as well as from explicit pattern
- // definitions. Emit the resultant instruction selector.
- EmitInstructionSelector(OS);
-
-}
+} // End llvm namespace