
Summary: Most of the statements mirror the ones provided by clang AST. Major differences are: - expressions are wrapped into 'ExpressionStatement' instead of being a subclass of statement, - semicolons are always consumed by the leaf expressions (return, expression satement, etc), - some clang statements are not handled yet, we wrap those into an UnknownStatement class, which is not present in clang. We also define an 'Expression' and 'UnknownExpression' classes in order to produce 'ExpressionStatement' where needed. The actual implementation of expressions is not yet ready, it will follow later. Reviewers: sammccall Reviewed By: sammccall Subscribers: cfe-commits Tags: #clang Differential Revision: https://reviews.llvm.org/D63835
476 lines
18 KiB
C++
476 lines
18 KiB
C++
//===- BuildTree.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 "clang/Tooling/Syntax/BuildTree.h"
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#include "clang/AST/RecursiveASTVisitor.h"
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#include "clang/AST/Stmt.h"
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#include "clang/Basic/LLVM.h"
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#include "clang/Basic/SourceLocation.h"
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#include "clang/Basic/SourceManager.h"
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#include "clang/Basic/TokenKinds.h"
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#include "clang/Lex/Lexer.h"
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#include "clang/Tooling/Syntax/Nodes.h"
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#include "clang/Tooling/Syntax/Tokens.h"
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#include "clang/Tooling/Syntax/Tree.h"
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#include "llvm/ADT/ArrayRef.h"
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#include "llvm/ADT/STLExtras.h"
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#include "llvm/ADT/SmallVector.h"
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#include "llvm/Support/Allocator.h"
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#include "llvm/Support/Casting.h"
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#include "llvm/Support/FormatVariadic.h"
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#include "llvm/Support/raw_ostream.h"
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#include <map>
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using namespace clang;
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static bool isImplicitExpr(clang::Expr *E) { return E->IgnoreImplicit() != E; }
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/// A helper class for constructing the syntax tree while traversing a clang
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/// AST.
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///
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/// At each point of the traversal we maintain a list of pending nodes.
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/// Initially all tokens are added as pending nodes. When processing a clang AST
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/// node, the clients need to:
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/// - create a corresponding syntax node,
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/// - assign roles to all pending child nodes with 'markChild' and
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/// 'markChildToken',
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/// - replace the child nodes with the new syntax node in the pending list
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/// with 'foldNode'.
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///
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/// Note that all children are expected to be processed when building a node.
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///
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/// Call finalize() to finish building the tree and consume the root node.
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class syntax::TreeBuilder {
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public:
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TreeBuilder(syntax::Arena &Arena) : Arena(Arena), Pending(Arena) {}
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llvm::BumpPtrAllocator &allocator() { return Arena.allocator(); }
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/// Populate children for \p New node, assuming it covers tokens from \p
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/// Range.
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void foldNode(llvm::ArrayRef<syntax::Token> Range, syntax::Tree *New);
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/// Mark the \p Child node with a corresponding \p Role. All marked children
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/// should be consumed by foldNode.
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/// (!) when called on expressions (clang::Expr is derived from clang::Stmt),
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/// wraps expressions into expression statement.
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void markStmtChild(Stmt *Child, NodeRole Role);
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/// Should be called for expressions in non-statement position to avoid
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/// wrapping into expression statement.
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void markExprChild(Expr *Child, NodeRole Role);
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/// Set role for a token starting at \p Loc.
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void markChildToken(SourceLocation Loc, tok::TokenKind Kind, NodeRole R);
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/// Finish building the tree and consume the root node.
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syntax::TranslationUnit *finalize() && {
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auto Tokens = Arena.tokenBuffer().expandedTokens();
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assert(!Tokens.empty());
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assert(Tokens.back().kind() == tok::eof);
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// Build the root of the tree, consuming all the children.
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Pending.foldChildren(Tokens.drop_back(),
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new (Arena.allocator()) syntax::TranslationUnit);
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return cast<syntax::TranslationUnit>(std::move(Pending).finalize());
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}
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/// getRange() finds the syntax tokens corresponding to the passed source
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/// locations.
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/// \p First is the start position of the first token and \p Last is the start
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/// position of the last token.
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llvm::ArrayRef<syntax::Token> getRange(SourceLocation First,
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SourceLocation Last) const {
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assert(First.isValid());
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assert(Last.isValid());
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assert(First == Last ||
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Arena.sourceManager().isBeforeInTranslationUnit(First, Last));
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return llvm::makeArrayRef(findToken(First), std::next(findToken(Last)));
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}
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llvm::ArrayRef<syntax::Token> getRange(const Decl *D) const {
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return getRange(D->getBeginLoc(), D->getEndLoc());
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}
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llvm::ArrayRef<syntax::Token> getExprRange(const Expr *E) const {
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return getRange(E->getBeginLoc(), E->getEndLoc());
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}
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/// Find the adjusted range for the statement, consuming the trailing
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/// semicolon when needed.
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llvm::ArrayRef<syntax::Token> getStmtRange(const Stmt *S) const {
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auto Tokens = getRange(S->getBeginLoc(), S->getEndLoc());
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if (isa<CompoundStmt>(S))
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return Tokens;
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// Some statements miss a trailing semicolon, e.g. 'return', 'continue' and
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// all statements that end with those. Consume this semicolon here.
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//
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// (!) statements never consume 'eof', so looking at the next token is ok.
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if (Tokens.back().kind() != tok::semi && Tokens.end()->kind() == tok::semi)
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return llvm::makeArrayRef(Tokens.begin(), Tokens.end() + 1);
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return Tokens;
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}
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private:
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/// Finds a token starting at \p L. The token must exist.
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const syntax::Token *findToken(SourceLocation L) const;
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/// A collection of trees covering the input tokens.
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/// When created, each tree corresponds to a single token in the file.
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/// Clients call 'foldChildren' to attach one or more subtrees to a parent
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/// node and update the list of trees accordingly.
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///
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/// Ensures that added nodes properly nest and cover the whole token stream.
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struct Forest {
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Forest(syntax::Arena &A) {
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assert(!A.tokenBuffer().expandedTokens().empty());
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assert(A.tokenBuffer().expandedTokens().back().kind() == tok::eof);
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// Create all leaf nodes.
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// Note that we do not have 'eof' in the tree.
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for (auto &T : A.tokenBuffer().expandedTokens().drop_back())
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Trees.insert(Trees.end(),
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{&T, NodeAndRole{new (A.allocator()) syntax::Leaf(&T)}});
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}
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void assignRole(llvm::ArrayRef<syntax::Token> Range,
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syntax::NodeRole Role) {
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assert(!Range.empty());
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auto It = Trees.lower_bound(Range.begin());
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assert(It != Trees.end() && "no node found");
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assert(It->first == Range.begin() && "no child with the specified range");
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assert((std::next(It) == Trees.end() ||
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std::next(It)->first == Range.end()) &&
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"no child with the specified range");
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It->second.Role = Role;
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}
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/// Add \p Node to the forest and fill its children nodes based on the \p
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/// NodeRange.
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void foldChildren(llvm::ArrayRef<syntax::Token> NodeTokens,
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syntax::Tree *Node) {
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assert(!NodeTokens.empty());
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assert(Node->firstChild() == nullptr && "node already has children");
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auto *FirstToken = NodeTokens.begin();
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auto BeginChildren = Trees.lower_bound(FirstToken);
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assert(BeginChildren != Trees.end() &&
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BeginChildren->first == FirstToken &&
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"fold crosses boundaries of existing subtrees");
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auto EndChildren = Trees.lower_bound(NodeTokens.end());
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assert((EndChildren == Trees.end() ||
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EndChildren->first == NodeTokens.end()) &&
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"fold crosses boundaries of existing subtrees");
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// (!) we need to go in reverse order, because we can only prepend.
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for (auto It = EndChildren; It != BeginChildren; --It)
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Node->prependChildLowLevel(std::prev(It)->second.Node,
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std::prev(It)->second.Role);
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Trees.erase(BeginChildren, EndChildren);
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Trees.insert({FirstToken, NodeAndRole(Node)});
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}
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// EXPECTS: all tokens were consumed and are owned by a single root node.
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syntax::Node *finalize() && {
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assert(Trees.size() == 1);
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auto *Root = Trees.begin()->second.Node;
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Trees = {};
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return Root;
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}
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std::string str(const syntax::Arena &A) const {
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std::string R;
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for (auto It = Trees.begin(); It != Trees.end(); ++It) {
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unsigned CoveredTokens =
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It != Trees.end()
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? (std::next(It)->first - It->first)
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: A.tokenBuffer().expandedTokens().end() - It->first;
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R += llvm::formatv("- '{0}' covers '{1}'+{2} tokens\n",
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It->second.Node->kind(),
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It->first->text(A.sourceManager()), CoveredTokens);
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R += It->second.Node->dump(A);
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}
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return R;
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}
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private:
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/// A with a role that should be assigned to it when adding to a parent.
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struct NodeAndRole {
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explicit NodeAndRole(syntax::Node *Node)
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: Node(Node), Role(NodeRole::Unknown) {}
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syntax::Node *Node;
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NodeRole Role;
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};
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/// Maps from the start token to a subtree starting at that token.
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/// FIXME: storing the end tokens is redundant.
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/// FIXME: the key of a map is redundant, it is also stored in NodeForRange.
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std::map<const syntax::Token *, NodeAndRole> Trees;
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};
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/// For debugging purposes.
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std::string str() { return Pending.str(Arena); }
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syntax::Arena &Arena;
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Forest Pending;
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};
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namespace {
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class BuildTreeVisitor : public RecursiveASTVisitor<BuildTreeVisitor> {
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public:
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explicit BuildTreeVisitor(ASTContext &Ctx, syntax::TreeBuilder &Builder)
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: Builder(Builder), LangOpts(Ctx.getLangOpts()) {}
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bool shouldTraversePostOrder() const { return true; }
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bool TraverseDecl(Decl *D) {
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if (!D || isa<TranslationUnitDecl>(D))
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return RecursiveASTVisitor::TraverseDecl(D);
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if (!llvm::isa<TranslationUnitDecl>(D->getDeclContext()))
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return true; // Only build top-level decls for now, do not recurse.
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return RecursiveASTVisitor::TraverseDecl(D);
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}
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bool VisitDecl(Decl *D) {
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assert(llvm::isa<TranslationUnitDecl>(D->getDeclContext()) &&
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"expected a top-level decl");
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assert(!D->isImplicit());
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Builder.foldNode(Builder.getRange(D),
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new (allocator()) syntax::TopLevelDeclaration());
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return true;
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}
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bool WalkUpFromTranslationUnitDecl(TranslationUnitDecl *TU) {
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// (!) we do not want to call VisitDecl(), the declaration for translation
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// unit is built by finalize().
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return true;
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}
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bool WalkUpFromCompoundStmt(CompoundStmt *S) {
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using NodeRole = syntax::NodeRole;
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Builder.markChildToken(S->getLBracLoc(), tok::l_brace, NodeRole::OpenParen);
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for (auto *Child : S->body())
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Builder.markStmtChild(Child, NodeRole::CompoundStatement_statement);
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Builder.markChildToken(S->getRBracLoc(), tok::r_brace,
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NodeRole::CloseParen);
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Builder.foldNode(Builder.getStmtRange(S),
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new (allocator()) syntax::CompoundStatement);
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return true;
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}
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// Some statements are not yet handled by syntax trees.
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bool WalkUpFromStmt(Stmt *S) {
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Builder.foldNode(Builder.getStmtRange(S),
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new (allocator()) syntax::UnknownStatement);
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return true;
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}
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bool TraverseCXXForRangeStmt(CXXForRangeStmt *S) {
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// We override to traverse range initializer as VarDecl.
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// RAV traverses it as a statement, we produce invalid node kinds in that
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// case.
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// FIXME: should do this in RAV instead?
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if (S->getInit() && !TraverseStmt(S->getInit()))
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return false;
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if (S->getLoopVariable() && !TraverseDecl(S->getLoopVariable()))
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return false;
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if (S->getRangeInit() && !TraverseStmt(S->getRangeInit()))
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return false;
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if (S->getBody() && !TraverseStmt(S->getBody()))
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return false;
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return true;
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}
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bool TraverseStmt(Stmt *S) {
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if (auto *E = llvm::dyn_cast_or_null<Expr>(S)) {
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// (!) do not recurse into subexpressions.
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// we do not have syntax trees for expressions yet, so we only want to see
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// the first top-level expression.
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return WalkUpFromExpr(E->IgnoreImplicit());
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}
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return RecursiveASTVisitor::TraverseStmt(S);
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}
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// Some expressions are not yet handled by syntax trees.
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bool WalkUpFromExpr(Expr *E) {
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assert(!isImplicitExpr(E) && "should be handled by TraverseStmt");
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Builder.foldNode(Builder.getExprRange(E),
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new (allocator()) syntax::UnknownExpression);
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return true;
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}
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// The code below is very regular, it could even be generated with some
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// preprocessor magic. We merely assign roles to the corresponding children
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// and fold resulting nodes.
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bool WalkUpFromDeclStmt(DeclStmt *S) {
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Builder.foldNode(Builder.getStmtRange(S),
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new (allocator()) syntax::DeclarationStatement);
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return true;
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}
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bool WalkUpFromNullStmt(NullStmt *S) {
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Builder.foldNode(Builder.getStmtRange(S),
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new (allocator()) syntax::EmptyStatement);
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return true;
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}
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bool WalkUpFromSwitchStmt(SwitchStmt *S) {
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Builder.markChildToken(S->getSwitchLoc(), tok::kw_switch,
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syntax::NodeRole::IntroducerKeyword);
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Builder.markStmtChild(S->getBody(), syntax::NodeRole::BodyStatement);
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Builder.foldNode(Builder.getStmtRange(S),
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new (allocator()) syntax::SwitchStatement);
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return true;
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}
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bool WalkUpFromCaseStmt(CaseStmt *S) {
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Builder.markChildToken(S->getKeywordLoc(), tok::kw_case,
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syntax::NodeRole::IntroducerKeyword);
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Builder.markExprChild(S->getLHS(), syntax::NodeRole::CaseStatement_value);
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Builder.markStmtChild(S->getSubStmt(), syntax::NodeRole::BodyStatement);
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Builder.foldNode(Builder.getStmtRange(S),
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new (allocator()) syntax::CaseStatement);
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return true;
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}
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bool WalkUpFromDefaultStmt(DefaultStmt *S) {
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Builder.markChildToken(S->getKeywordLoc(), tok::kw_default,
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syntax::NodeRole::IntroducerKeyword);
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Builder.markStmtChild(S->getSubStmt(), syntax::NodeRole::BodyStatement);
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Builder.foldNode(Builder.getStmtRange(S),
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new (allocator()) syntax::DefaultStatement);
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return true;
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}
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bool WalkUpFromIfStmt(IfStmt *S) {
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Builder.markChildToken(S->getIfLoc(), tok::kw_if,
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syntax::NodeRole::IntroducerKeyword);
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Builder.markStmtChild(S->getThen(),
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syntax::NodeRole::IfStatement_thenStatement);
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Builder.markChildToken(S->getElseLoc(), tok::kw_else,
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syntax::NodeRole::IfStatement_elseKeyword);
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Builder.markStmtChild(S->getElse(),
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syntax::NodeRole::IfStatement_elseStatement);
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Builder.foldNode(Builder.getStmtRange(S),
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new (allocator()) syntax::IfStatement);
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return true;
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}
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bool WalkUpFromForStmt(ForStmt *S) {
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Builder.markChildToken(S->getForLoc(), tok::kw_for,
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syntax::NodeRole::IntroducerKeyword);
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Builder.markStmtChild(S->getBody(), syntax::NodeRole::BodyStatement);
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Builder.foldNode(Builder.getStmtRange(S),
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new (allocator()) syntax::ForStatement);
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return true;
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}
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bool WalkUpFromWhileStmt(WhileStmt *S) {
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Builder.markChildToken(S->getWhileLoc(), tok::kw_while,
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syntax::NodeRole::IntroducerKeyword);
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Builder.markStmtChild(S->getBody(), syntax::NodeRole::BodyStatement);
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Builder.foldNode(Builder.getStmtRange(S),
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new (allocator()) syntax::WhileStatement);
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return true;
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}
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bool WalkUpFromContinueStmt(ContinueStmt *S) {
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Builder.markChildToken(S->getContinueLoc(), tok::kw_continue,
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syntax::NodeRole::IntroducerKeyword);
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Builder.foldNode(Builder.getStmtRange(S),
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new (allocator()) syntax::ContinueStatement);
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return true;
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}
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bool WalkUpFromBreakStmt(BreakStmt *S) {
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Builder.markChildToken(S->getBreakLoc(), tok::kw_break,
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syntax::NodeRole::IntroducerKeyword);
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Builder.foldNode(Builder.getStmtRange(S),
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new (allocator()) syntax::BreakStatement);
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return true;
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}
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bool WalkUpFromReturnStmt(ReturnStmt *S) {
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Builder.markChildToken(S->getReturnLoc(), tok::kw_return,
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syntax::NodeRole::IntroducerKeyword);
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Builder.markExprChild(S->getRetValue(),
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syntax::NodeRole::ReturnStatement_value);
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Builder.foldNode(Builder.getStmtRange(S),
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new (allocator()) syntax::ReturnStatement);
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return true;
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}
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bool WalkUpFromCXXForRangeStmt(CXXForRangeStmt *S) {
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Builder.markChildToken(S->getForLoc(), tok::kw_for,
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syntax::NodeRole::IntroducerKeyword);
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Builder.markStmtChild(S->getBody(), syntax::NodeRole::BodyStatement);
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Builder.foldNode(Builder.getStmtRange(S),
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new (allocator()) syntax::RangeBasedForStatement);
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return true;
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}
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private:
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/// A small helper to save some typing.
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llvm::BumpPtrAllocator &allocator() { return Builder.allocator(); }
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syntax::TreeBuilder &Builder;
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const LangOptions &LangOpts;
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};
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} // namespace
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void syntax::TreeBuilder::foldNode(llvm::ArrayRef<syntax::Token> Range,
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syntax::Tree *New) {
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Pending.foldChildren(Range, New);
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}
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void syntax::TreeBuilder::markChildToken(SourceLocation Loc,
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tok::TokenKind Kind, NodeRole Role) {
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if (Loc.isInvalid())
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return;
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Pending.assignRole(*findToken(Loc), Role);
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}
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void syntax::TreeBuilder::markStmtChild(Stmt *Child, NodeRole Role) {
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if (!Child)
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return;
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auto Range = getStmtRange(Child);
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// This is an expression in a statement position, consume the trailing
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// semicolon and form an 'ExpressionStatement' node.
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if (auto *E = dyn_cast<Expr>(Child)) {
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Pending.assignRole(getExprRange(E),
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NodeRole::ExpressionStatement_expression);
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// (!) 'getRange(Stmt)' ensures this already covers a trailing semicolon.
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Pending.foldChildren(Range, new (allocator()) syntax::ExpressionStatement);
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}
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Pending.assignRole(Range, Role);
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}
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void syntax::TreeBuilder::markExprChild(Expr *Child, NodeRole Role) {
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Pending.assignRole(getExprRange(Child), Role);
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}
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const syntax::Token *syntax::TreeBuilder::findToken(SourceLocation L) const {
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auto Tokens = Arena.tokenBuffer().expandedTokens();
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auto &SM = Arena.sourceManager();
|
|
auto It = llvm::partition_point(Tokens, [&](const syntax::Token &T) {
|
|
return SM.isBeforeInTranslationUnit(T.location(), L);
|
|
});
|
|
assert(It != Tokens.end());
|
|
assert(It->location() == L);
|
|
return &*It;
|
|
}
|
|
|
|
syntax::TranslationUnit *
|
|
syntax::buildSyntaxTree(Arena &A, const TranslationUnitDecl &TU) {
|
|
TreeBuilder Builder(A);
|
|
BuildTreeVisitor(TU.getASTContext(), Builder).TraverseAST(TU.getASTContext());
|
|
return std::move(Builder).finalize();
|
|
}
|