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212 lines
7.3 KiB
C++
212 lines
7.3 KiB
C++
//===--- SyntaxParsingContext.cpp - Syntax Tree Parsing Support------------===//
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//
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// This source file is part of the Swift.org open source project
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//
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// Copyright (c) 2014 - 2017 Apple Inc. and the Swift project authors
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// Licensed under Apache License v2.0 with Runtime Library Exception
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//
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// See https://swift.org/LICENSE.txt for license information
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// See https://swift.org/CONTRIBUTORS.txt for the list of Swift project authors
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//
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//===----------------------------------------------------------------------===//
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#include "swift/AST/Module.h"
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#include "swift/Basic/Defer.h"
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#include "swift/Parse/Parser.h"
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#include "swift/Syntax/TokenSyntax.h"
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#include "swift/Syntax/SyntaxParsingContext.h"
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#include "swift/Syntax/SyntaxFactory.h"
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using namespace swift;
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using namespace swift::syntax;
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namespace {
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static Syntax makeUnknownSyntax(SyntaxKind Kind, ArrayRef<Syntax> SubExpr) {
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RawSyntax::LayoutList Layout;
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std::transform(SubExpr.begin(), SubExpr.end(), std::back_inserter(Layout),
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[](const Syntax &S) { return S.getRaw(); });
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return make<Syntax>(RawSyntax::make(Kind, Layout, SourcePresence::Present));
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}
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} // End of anonymous namespace
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struct SyntaxParsingContext::ContextInfo {
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bool Enabled;
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std::vector<Syntax> PendingSyntax;
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ContextInfo(bool Enabled): Enabled(Enabled) {}
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// Check if the pending syntax is a token syntax in the given kind.
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bool checkTokenFromBack(tok Kind, unsigned OffsetFromBack = 0) {
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if (PendingSyntax.size() - 1 < OffsetFromBack)
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return false;
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auto Back = PendingSyntax[PendingSyntax.size() - 1 - OffsetFromBack].
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getAs<TokenSyntax>();
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return Back.hasValue() && Back->getTokenKind() == Kind;
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}
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void addPendingSyntax(ArrayRef<Syntax> More) {
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std::transform(More.begin(), More.end(), std::back_inserter(PendingSyntax),
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[](const Syntax &S) { return make<Syntax>(S.getRaw()); });
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}
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// Squash N syntax nodex from the back of the pending list into one.
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void createFromBack(SyntaxKind Kind, unsigned N = 0) {
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auto Size = PendingSyntax.size();
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assert(Size >= N);
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if (!N)
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N = Size;
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auto Parts = llvm::makeArrayRef(PendingSyntax).slice(Size - N);
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// Try to create the node of the given syntax.
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Optional<Syntax> Result = SyntaxFactory::createSyntax(Kind, Parts);
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if (!Result) {
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// If unable to create, we should create an unknown node.
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Result.emplace(makeUnknownSyntax(SyntaxFactory::getUnknownKind(Kind),
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Parts));
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}
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// Remove the building bricks and re-append the result.
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for (unsigned I = 0; I < N; I ++)
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PendingSyntax.pop_back();
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addPendingSyntax({ *Result });
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assert(Size - N + 1 == PendingSyntax.size());
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}
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};
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SyntaxParsingContext::SyntaxParsingContext(bool Enabled):
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ContextData(*new ContextInfo(Enabled)) {}
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SyntaxParsingContext::SyntaxParsingContext(SyntaxParsingContext &Another):
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SyntaxParsingContext(Another.ContextData.Enabled) {}
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SyntaxParsingContext::~SyntaxParsingContext() { delete &ContextData; }
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void SyntaxParsingContext::disable() { ContextData.Enabled = false; }
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struct SyntaxParsingContextRoot::GlobalInfo {
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// The source file under parsing.
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SourceFile &File;
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// All tokens in the source file. This list will shrink from the start when
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// we start to build syntax nodes.
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ArrayRef<RawTokenInfo> Tokens;
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GlobalInfo(SourceFile &File) : File(File) {}
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TokenSyntax retrieveTokenSyntax(SourceLoc Loc) {
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auto TargetLoc = Loc.getOpaquePointerValue();
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for (unsigned I = 0, N = Tokens.size(); I < N; I ++) {
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auto Info = Tokens[I];
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auto InfoLoc = Info.Loc.getOpaquePointerValue();
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if (InfoLoc < TargetLoc)
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continue;
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assert(InfoLoc == TargetLoc);
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Tokens = Tokens.slice(I + 1);
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return make<TokenSyntax>(Info.Token);
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}
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llvm_unreachable("can not find token at Loc");
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}
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};
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SyntaxParsingContextRoot::
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SyntaxParsingContextRoot(SourceFile &File, unsigned BufferID):
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SyntaxParsingContext(File.shouldKeepTokens()),
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GlobalData(*new GlobalInfo(File)) {
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populateTokenSyntaxMap(File.getASTContext().LangOpts,
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File.getASTContext().SourceMgr,
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BufferID, File.AllRawTokenSyntax);
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// Keep track of the raw tokens.
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GlobalData.Tokens = llvm::makeArrayRef(File.AllRawTokenSyntax);
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}
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SyntaxParsingContextRoot::~SyntaxParsingContextRoot() {
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std::vector<DeclSyntax> AllTopLevel;
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if (GlobalData.File.hasSyntaxRoot()) {
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for (auto It: GlobalData.File.getSyntaxRoot().getTopLevelDecls()) {
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AllTopLevel.push_back(It);
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}
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}
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for (auto S: ContextData.PendingSyntax) {
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std::vector<StmtSyntax> AllStmts;
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if (S.isDecl()) {
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AllStmts.push_back(SyntaxFactory::makeDeclarationStmt(
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S.getAs<DeclSyntax>().getValue(), None));
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} else if (S.isExpr()) {
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AllStmts.push_back(SyntaxFactory::makeExpressionStmt(
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S.getAs<ExprSyntax>().getValue(), None));
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} else if (S.isStmt()) {
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AllStmts.push_back(S.getAs<StmtSyntax>().getValue());
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} else {
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// If this is a standalone token, we create an unknown expression wrapper
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// for it.
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AllStmts.push_back(SyntaxFactory::makeExpressionStmt(
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*makeUnknownSyntax(SyntaxKind::UnknownExpr,
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{ *S.getAs<TokenSyntax>() }).getAs<ExprSyntax>(),
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None));
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}
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AllTopLevel.push_back(SyntaxFactory::makeTopLevelCodeDecl(
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SyntaxFactory::makeStmtList(AllStmts)));
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}
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Trivia Leading = Trivia::newlines(1), Trailing;
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GlobalData.File.setSyntaxRoot(
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SyntaxFactory::makeSourceFile(SyntaxFactory::makeDeclList(AllTopLevel),
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SyntaxFactory::makeToken(tok::eof, "", SourcePresence::Present,
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Leading, Trailing)));
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delete &GlobalData;
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}
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SyntaxParsingContextRoot &SyntaxParsingContextChild::getRoot() {
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for (SyntaxParsingContext *Root = getParent(); ;
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Root = static_cast<SyntaxParsingContextChild*>(Root)->getParent()){
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if (Root->getKind() == SyntaxParsingContextKind::Root)
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return *static_cast<SyntaxParsingContextRoot*>(Root);
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}
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llvm_unreachable("can not find root");
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}
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void SyntaxParsingContextChild::addTokenSyntax(SourceLoc Loc) {
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if (ContextData.Enabled)
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ContextData.PendingSyntax.push_back(getRoot().GlobalData.
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retrieveTokenSyntax(Loc));
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}
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void SyntaxParsingContextChild::makeNode(SyntaxKind Kind) {
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if (!ContextData.Enabled)
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return;
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// Create syntax nodes according to the given kind.
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switch (Kind) {
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case SyntaxKind::IntegerLiteralExpr: {
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// Integer may include the signs before the digits, so check if the sign
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// exists and create.
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ContextData.createFromBack(Kind, ContextData.
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checkTokenFromBack(tok::oper_prefix, 1) ? 2 : 1);
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break;
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}
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case SyntaxKind::StringLiteralExpr: {
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ContextData.createFromBack(Kind, 1);
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break;
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}
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default:
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break;
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}
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}
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SyntaxParsingContextChild::~SyntaxParsingContextChild() {
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SWIFT_DEFER {
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// Parent should take care of the created syntax.
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Parent->ContextData.addPendingSyntax(ContextData.PendingSyntax);
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// Reset the context holder to be Parent.
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ContextHolder = Parent;
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};
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// If we've created more than one syntax node, we should try building by using
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// the final kind.
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if (ContextData.PendingSyntax.size() > 1) {
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ContextData.createFromBack(FinalKind);
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}
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}
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