Refactor of the llvm-tblgen source into: - a "Basic" library, which contains the bare minimum utilities to build `llvm-min-tablegen` - a "Common" library which contains all of the helpers for TableGen backends. Such helpers can be shared by more than one backend, and even unit tested (e.g. CodeExpander is, maybe we can add more over time) Fixes #80647
853 lines
24 KiB
C++
853 lines
24 KiB
C++
//===- Patterns.cpp --------------------------------------------*- C++ -*-===//
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//
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// Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions.
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// See https://llvm.org/LICENSE.txt for license information.
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// SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
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//
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//===----------------------------------------------------------------------===//
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#include "Patterns.h"
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#include "Basic/CodeGenIntrinsics.h"
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#include "CXXPredicates.h"
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#include "CodeExpander.h"
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#include "CodeExpansions.h"
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#include "Common/CodeGenInstruction.h"
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#include "llvm/ADT/StringSet.h"
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#include "llvm/Support/Debug.h"
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#include "llvm/Support/raw_ostream.h"
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#include "llvm/TableGen/Error.h"
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#include "llvm/TableGen/Record.h"
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namespace llvm {
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namespace gi {
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//===- PatternType --------------------------------------------------------===//
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std::optional<PatternType> PatternType::get(ArrayRef<SMLoc> DiagLoc,
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const Record *R, Twine DiagCtx) {
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assert(R);
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if (R->isSubClassOf("ValueType")) {
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PatternType PT(PT_ValueType);
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PT.Data.Def = R;
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return PT;
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}
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if (R->isSubClassOf(TypeOfClassName)) {
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auto RawOpName = R->getValueAsString("OpName");
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if (!RawOpName.starts_with("$")) {
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PrintError(DiagLoc, DiagCtx + ": invalid operand name format '" +
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RawOpName + "' in " + TypeOfClassName +
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": expected '$' followed by an operand name");
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return std::nullopt;
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}
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PatternType PT(PT_TypeOf);
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PT.Data.Str = RawOpName.drop_front(1);
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return PT;
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}
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PrintError(DiagLoc, DiagCtx + ": unknown type '" + R->getName() + "'");
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return std::nullopt;
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}
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PatternType PatternType::getTypeOf(StringRef OpName) {
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PatternType PT(PT_TypeOf);
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PT.Data.Str = OpName;
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return PT;
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}
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StringRef PatternType::getTypeOfOpName() const {
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assert(isTypeOf());
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return Data.Str;
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}
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const Record *PatternType::getLLTRecord() const {
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assert(isLLT());
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return Data.Def;
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}
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bool PatternType::operator==(const PatternType &Other) const {
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if (Kind != Other.Kind)
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return false;
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switch (Kind) {
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case PT_None:
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return true;
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case PT_ValueType:
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return Data.Def == Other.Data.Def;
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case PT_TypeOf:
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return Data.Str == Other.Data.Str;
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}
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llvm_unreachable("Unknown Type Kind");
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}
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std::string PatternType::str() const {
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switch (Kind) {
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case PT_None:
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return "";
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case PT_ValueType:
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return Data.Def->getName().str();
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case PT_TypeOf:
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return (TypeOfClassName + "<$" + getTypeOfOpName() + ">").str();
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}
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llvm_unreachable("Unknown type!");
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}
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//===- Pattern ------------------------------------------------------------===//
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void Pattern::dump() const { return print(dbgs()); }
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const char *Pattern::getKindName() const {
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switch (Kind) {
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case K_AnyOpcode:
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return "AnyOpcodePattern";
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case K_CXX:
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return "CXXPattern";
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case K_CodeGenInstruction:
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return "CodeGenInstructionPattern";
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case K_PatFrag:
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return "PatFragPattern";
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case K_Builtin:
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return "BuiltinPattern";
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}
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llvm_unreachable("unknown pattern kind!");
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}
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void Pattern::printImpl(raw_ostream &OS, bool PrintName,
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function_ref<void()> ContentPrinter) const {
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OS << "(" << getKindName() << " ";
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if (PrintName)
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OS << "name:" << getName() << " ";
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ContentPrinter();
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OS << ")";
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}
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//===- AnyOpcodePattern ---------------------------------------------------===//
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void AnyOpcodePattern::print(raw_ostream &OS, bool PrintName) const {
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printImpl(OS, PrintName, [&OS, this]() {
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OS << "["
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<< join(map_range(Insts,
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[](const auto *I) { return I->TheDef->getName(); }),
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", ")
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<< "]";
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});
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}
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//===- CXXPattern ---------------------------------------------------------===//
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CXXPattern::CXXPattern(const StringInit &Code, StringRef Name)
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: CXXPattern(Code.getAsUnquotedString(), Name) {}
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const CXXPredicateCode &
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CXXPattern::expandCode(const CodeExpansions &CE, ArrayRef<SMLoc> Locs,
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function_ref<void(raw_ostream &)> AddComment) const {
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std::string Result;
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raw_string_ostream OS(Result);
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if (AddComment)
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AddComment(OS);
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CodeExpander Expander(RawCode, CE, Locs, /*ShowExpansions*/ false);
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Expander.emit(OS);
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if (IsApply)
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return CXXPredicateCode::getApplyCode(std::move(Result));
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return CXXPredicateCode::getMatchCode(std::move(Result));
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}
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void CXXPattern::print(raw_ostream &OS, bool PrintName) const {
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printImpl(OS, PrintName, [&OS, this] {
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OS << (IsApply ? "apply" : "match") << " code:\"";
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printEscapedString(getRawCode(), OS);
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OS << "\"";
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});
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}
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//===- InstructionOperand -------------------------------------------------===//
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std::string InstructionOperand::describe() const {
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if (!hasImmValue())
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return "MachineOperand $" + getOperandName().str() + "";
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std::string Str = "imm " + std::to_string(getImmValue());
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if (isNamedImmediate())
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Str += ":$" + getOperandName().str() + "";
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return Str;
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}
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void InstructionOperand::print(raw_ostream &OS) const {
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if (isDef())
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OS << "<def>";
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bool NeedsColon = true;
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if (Type) {
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if (hasImmValue())
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OS << "(" << Type.str() << " " << getImmValue() << ")";
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else
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OS << Type.str();
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} else if (hasImmValue())
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OS << getImmValue();
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else
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NeedsColon = false;
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if (isNamedOperand())
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OS << (NeedsColon ? ":" : "") << "$" << getOperandName();
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}
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void InstructionOperand::dump() const { return print(dbgs()); }
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//===- InstructionPattern -------------------------------------------------===//
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bool InstructionPattern::diagnoseAllSpecialTypes(ArrayRef<SMLoc> Loc,
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Twine Msg) const {
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bool HasDiag = false;
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for (const auto &[Idx, Op] : enumerate(operands())) {
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if (Op.getType().isSpecial()) {
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PrintError(Loc, Msg);
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PrintNote(Loc, "operand " + Twine(Idx) + " of '" + getName() +
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"' has type '" + Op.getType().str() + "'");
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HasDiag = true;
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}
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}
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return HasDiag;
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}
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void InstructionPattern::reportUnreachable(ArrayRef<SMLoc> Locs) const {
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PrintError(Locs, "pattern '" + getName() + "' ('" + getInstName() +
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"') is unreachable from the pattern root!");
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}
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bool InstructionPattern::checkSemantics(ArrayRef<SMLoc> Loc) {
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unsigned NumExpectedOperands = getNumInstOperands();
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if (isVariadic()) {
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if (Operands.size() < NumExpectedOperands) {
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PrintError(Loc, +"'" + getInstName() + "' expected at least " +
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Twine(NumExpectedOperands) + " operands, got " +
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Twine(Operands.size()));
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return false;
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}
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} else if (NumExpectedOperands != Operands.size()) {
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PrintError(Loc, +"'" + getInstName() + "' expected " +
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Twine(NumExpectedOperands) + " operands, got " +
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Twine(Operands.size()));
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return false;
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}
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unsigned OpIdx = 0;
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unsigned NumDefs = getNumInstDefs();
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for (auto &Op : Operands)
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Op.setIsDef(OpIdx++ < NumDefs);
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return true;
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}
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void InstructionPattern::print(raw_ostream &OS, bool PrintName) const {
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printImpl(OS, PrintName, [&OS, this] {
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OS << getInstName() << " operands:[";
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StringRef Sep;
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for (const auto &Op : Operands) {
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OS << Sep;
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Op.print(OS);
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Sep = ", ";
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}
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OS << "]";
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printExtras(OS);
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});
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}
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//===- OperandTable -------------------------------------------------------===//
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bool OperandTable::addPattern(InstructionPattern *P,
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function_ref<void(StringRef)> DiagnoseRedef) {
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for (const auto &Op : P->named_operands()) {
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StringRef OpName = Op.getOperandName();
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// We always create an entry in the OperandTable, even for uses.
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// Uses of operands that don't have a def (= live-ins) will remain with a
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// nullptr as the Def.
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//
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// This allows us tell whether an operand exists in a pattern or not. If
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// there is no entry for it, it doesn't exist, if there is an entry, it's
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// used/def'd at least once.
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auto &Def = Table[OpName];
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if (!Op.isDef())
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continue;
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if (Def) {
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DiagnoseRedef(OpName);
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return false;
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}
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Def = P;
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}
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return true;
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}
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void OperandTable::print(raw_ostream &OS, StringRef Name,
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StringRef Indent) const {
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OS << Indent << "(OperandTable ";
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if (!Name.empty())
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OS << Name << " ";
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if (Table.empty()) {
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OS << "<empty>)\n";
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return;
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}
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SmallVector<StringRef, 0> Keys(Table.keys());
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sort(Keys);
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OS << '\n';
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for (const auto &Key : Keys) {
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const auto *Def = Table.at(Key);
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OS << Indent << " " << Key << " -> "
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<< (Def ? Def->getName() : "<live-in>") << '\n';
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}
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OS << Indent << ")\n";
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}
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void OperandTable::dump() const { print(dbgs()); }
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//===- MIFlagsInfo --------------------------------------------------------===//
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void MIFlagsInfo::addSetFlag(const Record *R) {
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SetF.insert(R->getValueAsString("EnumName"));
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}
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void MIFlagsInfo::addUnsetFlag(const Record *R) {
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UnsetF.insert(R->getValueAsString("EnumName"));
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}
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void MIFlagsInfo::addCopyFlag(StringRef InstName) { CopyF.insert(InstName); }
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//===- CodeGenInstructionPattern ------------------------------------------===//
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bool CodeGenInstructionPattern::is(StringRef OpcodeName) const {
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return I.TheDef->getName() == OpcodeName;
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}
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bool CodeGenInstructionPattern::isVariadic() const {
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return !isIntrinsic() && I.Operands.isVariadic;
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}
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bool CodeGenInstructionPattern::hasVariadicDefs() const {
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// Note: we cannot use variadicOpsAreDefs, it's not set for
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// GenericInstructions.
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if (!isVariadic())
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return false;
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if (I.variadicOpsAreDefs)
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return true;
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DagInit *OutOps = I.TheDef->getValueAsDag("OutOperandList");
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if (OutOps->arg_empty())
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return false;
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auto *LastArgTy = dyn_cast<DefInit>(OutOps->getArg(OutOps->arg_size() - 1));
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return LastArgTy && LastArgTy->getDef()->getName() == "variable_ops";
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}
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unsigned CodeGenInstructionPattern::getNumInstDefs() const {
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if (isIntrinsic())
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return IntrinInfo->IS.RetTys.size();
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if (!isVariadic() || !hasVariadicDefs())
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return I.Operands.NumDefs;
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unsigned NumOuts = I.Operands.size() - I.Operands.NumDefs;
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assert(Operands.size() > NumOuts);
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return std::max<unsigned>(I.Operands.NumDefs, Operands.size() - NumOuts);
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}
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unsigned CodeGenInstructionPattern::getNumInstOperands() const {
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if (isIntrinsic())
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return IntrinInfo->IS.RetTys.size() + IntrinInfo->IS.ParamTys.size();
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unsigned NumCGIOps = I.Operands.size();
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return isVariadic() ? std::max<unsigned>(NumCGIOps, Operands.size())
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: NumCGIOps;
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}
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MIFlagsInfo &CodeGenInstructionPattern::getOrCreateMIFlagsInfo() {
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if (!FI)
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FI = std::make_unique<MIFlagsInfo>();
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return *FI;
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}
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StringRef CodeGenInstructionPattern::getInstName() const {
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return I.TheDef->getName();
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}
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void CodeGenInstructionPattern::printExtras(raw_ostream &OS) const {
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if (isIntrinsic())
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OS << " intrinsic(@" << IntrinInfo->Name << ")";
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if (!FI)
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return;
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OS << " (MIFlags";
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if (!FI->set_flags().empty())
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OS << " (set " << join(FI->set_flags(), ", ") << ")";
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if (!FI->unset_flags().empty())
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OS << " (unset " << join(FI->unset_flags(), ", ") << ")";
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if (!FI->copy_flags().empty())
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OS << " (copy " << join(FI->copy_flags(), ", ") << ")";
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OS << ')';
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}
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//===- OperandTypeChecker -------------------------------------------------===//
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bool OperandTypeChecker::check(
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InstructionPattern &P,
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std::function<bool(const PatternType &)> VerifyTypeOfOperand) {
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Pats.push_back(&P);
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for (auto &Op : P.operands()) {
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const auto Ty = Op.getType();
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if (!Ty)
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continue;
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if (Ty.isTypeOf() && !VerifyTypeOfOperand(Ty))
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return false;
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if (!Op.isNamedOperand())
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continue;
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StringRef OpName = Op.getOperandName();
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auto &Info = Types[OpName];
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if (!Info.Type) {
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Info.Type = Ty;
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Info.PrintTypeSrcNote = [this, OpName, Ty, &P]() {
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PrintSeenWithTypeIn(P, OpName, Ty);
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};
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continue;
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}
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if (Info.Type != Ty) {
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PrintError(DiagLoc, "conflicting types for operand '" +
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Op.getOperandName() + "': '" + Info.Type.str() +
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"' vs '" + Ty.str() + "'");
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PrintSeenWithTypeIn(P, OpName, Ty);
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Info.PrintTypeSrcNote();
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return false;
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}
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}
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return true;
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}
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void OperandTypeChecker::propagateTypes() {
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for (auto *Pat : Pats) {
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for (auto &Op : Pat->named_operands()) {
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if (auto &Info = Types[Op.getOperandName()]; Info.Type)
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Op.setType(Info.Type);
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}
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}
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}
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void OperandTypeChecker::PrintSeenWithTypeIn(InstructionPattern &P,
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StringRef OpName,
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PatternType Ty) const {
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PrintNote(DiagLoc, "'" + OpName + "' seen with type '" + Ty.str() + "' in '" +
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P.getName() + "'");
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}
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StringRef PatFrag::getParamKindStr(ParamKind OK) {
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switch (OK) {
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case PK_Root:
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return "root";
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case PK_MachineOperand:
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return "machine_operand";
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case PK_Imm:
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return "imm";
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}
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llvm_unreachable("Unknown operand kind!");
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}
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//===- PatFrag -----------------------------------------------------------===//
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PatFrag::PatFrag(const Record &Def) : Def(Def) {
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assert(Def.isSubClassOf(ClassName));
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}
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StringRef PatFrag::getName() const { return Def.getName(); }
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ArrayRef<SMLoc> PatFrag::getLoc() const { return Def.getLoc(); }
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void PatFrag::addInParam(StringRef Name, ParamKind Kind) {
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Params.emplace_back(Param{Name, Kind});
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}
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iterator_range<PatFrag::ParamIt> PatFrag::in_params() const {
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return {Params.begin() + NumOutParams, Params.end()};
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}
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void PatFrag::addOutParam(StringRef Name, ParamKind Kind) {
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assert(NumOutParams == Params.size() &&
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"Adding out-param after an in-param!");
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Params.emplace_back(Param{Name, Kind});
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++NumOutParams;
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}
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iterator_range<PatFrag::ParamIt> PatFrag::out_params() const {
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return {Params.begin(), Params.begin() + NumOutParams};
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}
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unsigned PatFrag::num_roots() const {
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return count_if(out_params(),
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[&](const auto &P) { return P.Kind == PK_Root; });
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}
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unsigned PatFrag::getParamIdx(StringRef Name) const {
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for (const auto &[Idx, Op] : enumerate(Params)) {
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if (Op.Name == Name)
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return Idx;
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}
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return -1;
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}
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bool PatFrag::checkSemantics() {
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for (const auto &Alt : Alts) {
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for (const auto &Pat : Alt.Pats) {
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switch (Pat->getKind()) {
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case Pattern::K_AnyOpcode:
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PrintError("wip_match_opcode cannot be used in " + ClassName);
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return false;
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case Pattern::K_Builtin:
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PrintError("Builtin instructions cannot be used in " + ClassName);
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return false;
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case Pattern::K_CXX:
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continue;
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case Pattern::K_CodeGenInstruction:
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if (cast<CodeGenInstructionPattern>(Pat.get())->diagnoseAllSpecialTypes(
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Def.getLoc(), PatternType::SpecialTyClassName +
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" is not supported in " + ClassName))
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return false;
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continue;
|
|
case Pattern::K_PatFrag:
|
|
// TODO: It's just that the emitter doesn't handle it but technically
|
|
// there is no reason why we can't. We just have to be careful with
|
|
// operand mappings, it could get complex.
|
|
PrintError("nested " + ClassName + " are not supported");
|
|
return false;
|
|
}
|
|
}
|
|
}
|
|
|
|
StringSet<> SeenOps;
|
|
for (const auto &Op : in_params()) {
|
|
if (SeenOps.count(Op.Name)) {
|
|
PrintError("duplicate parameter '" + Op.Name + "'");
|
|
return false;
|
|
}
|
|
|
|
// Check this operand is NOT defined in any alternative's patterns.
|
|
for (const auto &Alt : Alts) {
|
|
if (Alt.OpTable.lookup(Op.Name).Def) {
|
|
PrintError("input parameter '" + Op.Name + "' cannot be redefined!");
|
|
return false;
|
|
}
|
|
}
|
|
|
|
if (Op.Kind == PK_Root) {
|
|
PrintError("input parameterr '" + Op.Name + "' cannot be a root!");
|
|
return false;
|
|
}
|
|
|
|
SeenOps.insert(Op.Name);
|
|
}
|
|
|
|
for (const auto &Op : out_params()) {
|
|
if (Op.Kind != PK_Root && Op.Kind != PK_MachineOperand) {
|
|
PrintError("output parameter '" + Op.Name +
|
|
"' must be 'root' or 'gi_mo'");
|
|
return false;
|
|
}
|
|
|
|
if (SeenOps.count(Op.Name)) {
|
|
PrintError("duplicate parameter '" + Op.Name + "'");
|
|
return false;
|
|
}
|
|
|
|
// Check this operand is defined in all alternative's patterns.
|
|
for (const auto &Alt : Alts) {
|
|
const auto *OpDef = Alt.OpTable.getDef(Op.Name);
|
|
if (!OpDef) {
|
|
PrintError("output parameter '" + Op.Name +
|
|
"' must be defined by all alternative patterns in '" +
|
|
Def.getName() + "'");
|
|
return false;
|
|
}
|
|
|
|
if (Op.Kind == PK_Root && OpDef->getNumInstDefs() != 1) {
|
|
// The instruction that defines the root must have a single def.
|
|
// Otherwise we'd need to support multiple roots and it gets messy.
|
|
//
|
|
// e.g. this is not supported:
|
|
// (pattern (G_UNMERGE_VALUES $x, $root, $vec))
|
|
PrintError("all instructions that define root '" + Op.Name + "' in '" +
|
|
Def.getName() + "' can only have a single output operand");
|
|
return false;
|
|
}
|
|
}
|
|
|
|
SeenOps.insert(Op.Name);
|
|
}
|
|
|
|
if (num_out_params() != 0 && num_roots() == 0) {
|
|
PrintError(ClassName + " must have one root in its 'out' operands");
|
|
return false;
|
|
}
|
|
|
|
if (num_roots() > 1) {
|
|
PrintError(ClassName + " can only have one root");
|
|
return false;
|
|
}
|
|
|
|
// TODO: find unused params
|
|
|
|
const auto CheckTypeOf = [&](const PatternType &) -> bool {
|
|
llvm_unreachable("GITypeOf should have been rejected earlier!");
|
|
};
|
|
|
|
// Now, typecheck all alternatives.
|
|
for (auto &Alt : Alts) {
|
|
OperandTypeChecker OTC(Def.getLoc());
|
|
for (auto &Pat : Alt.Pats) {
|
|
if (auto *IP = dyn_cast<InstructionPattern>(Pat.get())) {
|
|
if (!OTC.check(*IP, CheckTypeOf))
|
|
return false;
|
|
}
|
|
}
|
|
OTC.propagateTypes();
|
|
}
|
|
|
|
return true;
|
|
}
|
|
|
|
bool PatFrag::handleUnboundInParam(StringRef ParamName, StringRef ArgName,
|
|
ArrayRef<SMLoc> DiagLoc) const {
|
|
// The parameter must be a live-in of all alternatives for this to work.
|
|
// Otherwise, we risk having unbound parameters being used (= crashes).
|
|
//
|
|
// Examples:
|
|
//
|
|
// in (ins $y), (patterns (G_FNEG $dst, $y), "return matchFnegOp(${y})")
|
|
// even if $y is unbound, we'll lazily bind it when emitting the G_FNEG.
|
|
//
|
|
// in (ins $y), (patterns "return matchFnegOp(${y})")
|
|
// if $y is unbound when this fragment is emitted, C++ code expansion will
|
|
// fail.
|
|
for (const auto &Alt : Alts) {
|
|
auto &OT = Alt.OpTable;
|
|
if (!OT.lookup(ParamName).Found) {
|
|
llvm::PrintError(DiagLoc, "operand '" + ArgName + "' (for parameter '" +
|
|
ParamName + "' of '" + getName() +
|
|
"') cannot be unbound");
|
|
PrintNote(
|
|
DiagLoc,
|
|
"one or more alternatives of '" + getName() + "' do not bind '" +
|
|
ParamName +
|
|
"' to an instruction operand; either use a bound operand or "
|
|
"ensure '" +
|
|
Def.getName() + "' binds '" + ParamName +
|
|
"' in all alternatives");
|
|
return false;
|
|
}
|
|
}
|
|
|
|
return true;
|
|
}
|
|
|
|
bool PatFrag::buildOperandsTables() {
|
|
// enumerate(...) doesn't seem to allow lvalues so we need to count the old
|
|
// way.
|
|
unsigned Idx = 0;
|
|
|
|
const auto DiagnoseRedef = [this, &Idx](StringRef OpName) {
|
|
PrintError("Operand '" + OpName +
|
|
"' is defined multiple times in patterns of alternative #" +
|
|
std::to_string(Idx));
|
|
};
|
|
|
|
for (auto &Alt : Alts) {
|
|
for (auto &Pat : Alt.Pats) {
|
|
auto *IP = dyn_cast<InstructionPattern>(Pat.get());
|
|
if (!IP)
|
|
continue;
|
|
|
|
if (!Alt.OpTable.addPattern(IP, DiagnoseRedef))
|
|
return false;
|
|
}
|
|
|
|
++Idx;
|
|
}
|
|
|
|
return true;
|
|
}
|
|
|
|
void PatFrag::print(raw_ostream &OS, StringRef Indent) const {
|
|
OS << Indent << "(PatFrag name:" << getName() << '\n';
|
|
if (!in_params().empty()) {
|
|
OS << Indent << " (ins ";
|
|
printParamsList(OS, in_params());
|
|
OS << ")\n";
|
|
}
|
|
|
|
if (!out_params().empty()) {
|
|
OS << Indent << " (outs ";
|
|
printParamsList(OS, out_params());
|
|
OS << ")\n";
|
|
}
|
|
|
|
// TODO: Dump OperandTable as well.
|
|
OS << Indent << " (alternatives [\n";
|
|
for (const auto &Alt : Alts) {
|
|
OS << Indent << " [\n";
|
|
for (const auto &Pat : Alt.Pats) {
|
|
OS << Indent << " ";
|
|
Pat->print(OS, /*PrintName=*/true);
|
|
OS << ",\n";
|
|
}
|
|
OS << Indent << " ],\n";
|
|
}
|
|
OS << Indent << " ])\n";
|
|
|
|
OS << Indent << ')';
|
|
}
|
|
|
|
void PatFrag::dump() const { print(dbgs()); }
|
|
|
|
void PatFrag::printParamsList(raw_ostream &OS, iterator_range<ParamIt> Params) {
|
|
OS << '['
|
|
<< join(map_range(Params,
|
|
[](auto &O) {
|
|
return (O.Name + ":" + getParamKindStr(O.Kind)).str();
|
|
}),
|
|
", ")
|
|
<< ']';
|
|
}
|
|
|
|
void PatFrag::PrintError(Twine Msg) const { llvm::PrintError(&Def, Msg); }
|
|
|
|
ArrayRef<InstructionOperand> PatFragPattern::getApplyDefsNeeded() const {
|
|
assert(PF.num_roots() == 1);
|
|
// Only roots need to be redef.
|
|
for (auto [Idx, Param] : enumerate(PF.out_params())) {
|
|
if (Param.Kind == PatFrag::PK_Root)
|
|
return getOperand(Idx);
|
|
}
|
|
llvm_unreachable("root not found!");
|
|
}
|
|
|
|
//===- PatFragPattern -----------------------------------------------------===//
|
|
|
|
bool PatFragPattern::checkSemantics(ArrayRef<SMLoc> DiagLoc) {
|
|
if (!InstructionPattern::checkSemantics(DiagLoc))
|
|
return false;
|
|
|
|
for (const auto &[Idx, Op] : enumerate(Operands)) {
|
|
switch (PF.getParam(Idx).Kind) {
|
|
case PatFrag::PK_Imm:
|
|
if (!Op.hasImmValue()) {
|
|
PrintError(DiagLoc, "expected operand " + std::to_string(Idx) +
|
|
" of '" + getInstName() +
|
|
"' to be an immediate; got " + Op.describe());
|
|
return false;
|
|
}
|
|
if (Op.isNamedImmediate()) {
|
|
PrintError(DiagLoc, "operand " + std::to_string(Idx) + " of '" +
|
|
getInstName() +
|
|
"' cannot be a named immediate");
|
|
return false;
|
|
}
|
|
break;
|
|
case PatFrag::PK_Root:
|
|
case PatFrag::PK_MachineOperand:
|
|
if (!Op.isNamedOperand() || Op.isNamedImmediate()) {
|
|
PrintError(DiagLoc, "expected operand " + std::to_string(Idx) +
|
|
" of '" + getInstName() +
|
|
"' to be a MachineOperand; got " +
|
|
Op.describe());
|
|
return false;
|
|
}
|
|
break;
|
|
}
|
|
}
|
|
|
|
return true;
|
|
}
|
|
|
|
bool PatFragPattern::mapInputCodeExpansions(const CodeExpansions &ParentCEs,
|
|
CodeExpansions &PatFragCEs,
|
|
ArrayRef<SMLoc> DiagLoc) const {
|
|
for (const auto &[Idx, Op] : enumerate(operands())) {
|
|
StringRef ParamName = PF.getParam(Idx).Name;
|
|
|
|
// Operands to a PFP can only be named, or be an immediate, but not a named
|
|
// immediate.
|
|
assert(!Op.isNamedImmediate());
|
|
|
|
if (Op.isNamedOperand()) {
|
|
StringRef ArgName = Op.getOperandName();
|
|
// Map it only if it's been defined.
|
|
auto It = ParentCEs.find(ArgName);
|
|
if (It == ParentCEs.end()) {
|
|
if (!PF.handleUnboundInParam(ParamName, ArgName, DiagLoc))
|
|
return false;
|
|
} else
|
|
PatFragCEs.declare(ParamName, It->second);
|
|
continue;
|
|
}
|
|
|
|
if (Op.hasImmValue()) {
|
|
PatFragCEs.declare(ParamName, std::to_string(Op.getImmValue()));
|
|
continue;
|
|
}
|
|
|
|
llvm_unreachable("Unknown Operand Type!");
|
|
}
|
|
|
|
return true;
|
|
}
|
|
|
|
//===- BuiltinPattern -----------------------------------------------------===//
|
|
|
|
BuiltinPattern::BuiltinInfo BuiltinPattern::getBuiltinInfo(const Record &Def) {
|
|
assert(Def.isSubClassOf(ClassName));
|
|
|
|
StringRef Name = Def.getName();
|
|
for (const auto &KBI : KnownBuiltins) {
|
|
if (KBI.DefName == Name)
|
|
return KBI;
|
|
}
|
|
|
|
PrintFatalError(Def.getLoc(),
|
|
"Unimplemented " + ClassName + " def '" + Name + "'");
|
|
}
|
|
|
|
bool BuiltinPattern::checkSemantics(ArrayRef<SMLoc> Loc) {
|
|
if (!InstructionPattern::checkSemantics(Loc))
|
|
return false;
|
|
|
|
// For now all builtins just take names, no immediates.
|
|
for (const auto &[Idx, Op] : enumerate(operands())) {
|
|
if (!Op.isNamedOperand() || Op.isNamedImmediate()) {
|
|
PrintError(Loc, "expected operand " + std::to_string(Idx) + " of '" +
|
|
getInstName() + "' to be a name");
|
|
return false;
|
|
}
|
|
}
|
|
|
|
return true;
|
|
}
|
|
|
|
} // namespace gi
|
|
} // namespace llvm
|