mirror of
https://github.com/carbon-language/carbon-lang.git
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Summary: Adds parsing support for the `package` directive as specified by the `Code and name organization` design doc. Co-authored-by: ergawy <kareem.ergawy@guardsquare.com>
1243 lines
45 KiB
C++
1243 lines
45 KiB
C++
// Part of the Carbon Language project, under the Apache License v2.0 with LLVM
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// Exceptions. See /LICENSE for license information.
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// SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
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#include "toolchain/parser/parser_impl.h"
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#include <cstdlib>
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#include "common/check.h"
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#include "llvm/ADT/Optional.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 "toolchain/lexer/token_kind.h"
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#include "toolchain/lexer/tokenized_buffer.h"
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#include "toolchain/parser/parse_node_kind.h"
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#include "toolchain/parser/parse_tree.h"
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namespace Carbon {
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CARBON_DIAGNOSTIC(ExpectedSemiAfterExpression, Error,
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"Expected `;` after expression.");
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// Manages the parser's stack depth, particularly decrementing on destruction.
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// This should only be instantiated through RETURN_IF_STACK_LIMITED.
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class ParseTree::Parser::ScopedStackStep {
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public:
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explicit ScopedStackStep(ParseTree::Parser* parser) : parser_(parser) {
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++parser_->stack_depth_;
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}
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~ScopedStackStep() { --parser_->stack_depth_; }
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auto VerifyUnderLimit() -> bool {
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if (parser_->stack_depth_ >= StackDepthLimit) {
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CARBON_DIAGNOSTIC(StackLimitExceeded, Error,
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"Exceeded recursion limit ({0})", int);
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parser_->emitter_.Emit(*parser_->position_, StackLimitExceeded,
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ParseTree::StackDepthLimit);
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return false;
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}
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return true;
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}
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private:
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ParseTree::Parser* parser_;
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};
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// Encapsulates checking the stack and erroring if needed. This should be called
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// at the start of every parse function.
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#define CARBON_RETURN_IF_STACK_LIMITED(error_return_expr) \
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ScopedStackStep scoped_stack_step(this); \
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if (!scoped_stack_step.VerifyUnderLimit()) { \
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return (error_return_expr); \
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}
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// A relative location for characters in errors.
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enum class RelativeLocation : int8_t {
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Around,
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After,
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Before,
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};
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// Adapts RelativeLocation for use with formatv.
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static auto operator<<(llvm::raw_ostream& out, RelativeLocation loc)
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-> llvm::raw_ostream& {
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switch (loc) {
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case RelativeLocation::Around:
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out << "around";
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break;
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case RelativeLocation::After:
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out << "after";
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break;
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case RelativeLocation::Before:
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out << "before";
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break;
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}
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return out;
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}
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ParseTree::Parser::Parser(ParseTree& tree_arg, TokenizedBuffer& tokens_arg,
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TokenDiagnosticEmitter& emitter)
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: tree_(tree_arg),
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tokens_(tokens_arg),
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emitter_(emitter),
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position_(tokens_.tokens().begin()),
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end_(tokens_.tokens().end()) {
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CARBON_CHECK(std::find_if(position_, end_,
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[&](TokenizedBuffer::Token t) {
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return tokens_.GetKind(t) ==
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TokenKind::EndOfFile();
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}) != end_)
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<< "No EndOfFileToken in token buffer.";
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}
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auto ParseTree::Parser::Parse(TokenizedBuffer& tokens,
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TokenDiagnosticEmitter& emitter) -> ParseTree {
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ParseTree tree(tokens);
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// We expect to have a 1:1 correspondence between tokens and tree nodes, so
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// reserve the space we expect to need here to avoid allocation and copying
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// overhead.
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tree.node_impls_.reserve(tokens.size());
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Parser parser(tree, tokens, emitter);
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while (!parser.AtEndOfFile()) {
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if (!parser.ParseDeclaration()) {
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// We don't have an enclosing parse tree node to mark as erroneous, so
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// just mark the tree as a whole.
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tree.has_errors_ = true;
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}
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}
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parser.AddLeafNode(ParseNodeKind::FileEnd(), *parser.position_);
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CARBON_CHECK(tree.Verify()) << "Parse tree built but does not verify!";
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return tree;
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}
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auto ParseTree::Parser::Consume(TokenKind kind) -> TokenizedBuffer::Token {
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CARBON_CHECK(kind != TokenKind::EndOfFile())
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<< "Cannot consume the EOF token!";
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CARBON_CHECK(NextTokenIs(kind)) << "The current token is the wrong kind!";
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TokenizedBuffer::Token t = *position_;
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++position_;
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CARBON_CHECK(position_ != end_)
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<< "Reached end of tokens without finding EOF token.";
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return t;
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}
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auto ParseTree::Parser::ConsumeIf(TokenKind kind)
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-> llvm::Optional<TokenizedBuffer::Token> {
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if (!NextTokenIs(kind)) {
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return {};
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}
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return Consume(kind);
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}
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auto ParseTree::Parser::AddLeafNode(ParseNodeKind kind,
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TokenizedBuffer::Token token) -> Node {
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Node n(tree_.node_impls_.size());
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tree_.node_impls_.push_back(NodeImpl(kind, token, /*subtree_size_arg=*/1));
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return n;
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}
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auto ParseTree::Parser::ConsumeAndAddLeafNodeIf(TokenKind t_kind,
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ParseNodeKind n_kind)
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-> llvm::Optional<Node> {
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auto t = ConsumeIf(t_kind);
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if (!t) {
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return {};
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}
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return AddLeafNode(n_kind, *t);
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}
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auto ParseTree::Parser::MarkNodeError(Node n) -> void {
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tree_.node_impls_[n.index_].has_error = true;
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tree_.has_errors_ = true;
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}
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// A marker for the start of a node's subtree.
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//
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// This is used to track the size of the node's subtree. It can be used
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// repeatedly if multiple subtrees start at the same position.
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struct ParseTree::Parser::SubtreeStart {
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int tree_size;
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};
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auto ParseTree::Parser::GetSubtreeStartPosition() -> SubtreeStart {
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return {static_cast<int>(tree_.node_impls_.size())};
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}
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auto ParseTree::Parser::AddNode(ParseNodeKind n_kind, TokenizedBuffer::Token t,
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SubtreeStart start, bool has_error) -> Node {
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// The size of the subtree is the change in size from when we started this
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// subtree to now, but including the node we're about to add.
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int tree_stop_size = static_cast<int>(tree_.node_impls_.size()) + 1;
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int subtree_size = tree_stop_size - start.tree_size;
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Node n(tree_.node_impls_.size());
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tree_.node_impls_.push_back(NodeImpl(n_kind, t, subtree_size));
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if (has_error) {
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MarkNodeError(n);
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}
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return n;
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}
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auto ParseTree::Parser::SkipMatchingGroup() -> bool {
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TokenizedBuffer::Token t = *position_;
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TokenKind t_kind = tokens_.GetKind(t);
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if (!t_kind.IsOpeningSymbol()) {
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return false;
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}
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SkipTo(tokens_.GetMatchedClosingToken(t));
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Consume(t_kind.GetClosingSymbol());
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return true;
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}
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auto ParseTree::Parser::SkipTo(TokenizedBuffer::Token t) -> void {
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CARBON_CHECK(t >= *position_) << "Tried to skip backwards.";
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position_ = TokenizedBuffer::TokenIterator(t);
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CARBON_CHECK(position_ != end_) << "Skipped past EOF.";
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}
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auto ParseTree::Parser::FindNextOf(
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std::initializer_list<TokenKind> desired_kinds)
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-> llvm::Optional<TokenizedBuffer::Token> {
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auto new_position = position_;
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while (true) {
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TokenizedBuffer::Token token = *new_position;
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TokenKind kind = tokens_.GetKind(token);
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if (kind.IsOneOf(desired_kinds)) {
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return token;
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}
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// Step to the next token at the current bracketing level.
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if (kind.IsClosingSymbol() || kind == TokenKind::EndOfFile()) {
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// There are no more tokens at this level.
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return llvm::None;
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} else if (kind.IsOpeningSymbol()) {
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new_position =
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TokenizedBuffer::TokenIterator(tokens_.GetMatchedClosingToken(token));
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// Advance past the closing token.
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++new_position;
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} else {
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++new_position;
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}
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}
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}
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auto ParseTree::Parser::SkipPastLikelyEnd(TokenizedBuffer::Token skip_root,
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SemiHandler on_semi)
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-> llvm::Optional<Node> {
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if (AtEndOfFile()) {
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return llvm::None;
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}
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TokenizedBuffer::Line root_line = tokens_.GetLine(skip_root);
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int root_line_indent = tokens_.GetIndentColumnNumber(root_line);
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// We will keep scanning through tokens on the same line as the root or
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// lines with greater indentation than root's line.
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auto is_same_line_or_indent_greater_than_root =
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[&](TokenizedBuffer::Token t) {
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TokenizedBuffer::Line l = tokens_.GetLine(t);
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if (l == root_line) {
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return true;
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}
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return tokens_.GetIndentColumnNumber(l) > root_line_indent;
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};
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do {
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if (NextTokenKind() == TokenKind::CloseCurlyBrace()) {
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// Immediately bail out if we hit an unmatched close curly, this will
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// pop us up a level of the syntax grouping.
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return llvm::None;
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}
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// We assume that a semicolon is always intended to be the end of the
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// current construct.
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if (auto semi = ConsumeIf(TokenKind::Semi())) {
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return on_semi(*semi);
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}
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// Skip over any matching group of tokens_.
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if (SkipMatchingGroup()) {
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continue;
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}
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// Otherwise just step forward one token.
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Consume(NextTokenKind());
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} while (!AtEndOfFile() &&
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is_same_line_or_indent_greater_than_root(*position_));
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return llvm::None;
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}
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auto ParseTree::Parser::ParseCloseParen(TokenizedBuffer::Token open_paren,
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ParseNodeKind kind)
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-> llvm::Optional<Node> {
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if (auto close_paren =
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ConsumeAndAddLeafNodeIf(TokenKind::CloseParen(), kind)) {
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return close_paren;
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}
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// TODO: Include the location of the matching open_paren in the diagnostic.
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CARBON_DIAGNOSTIC(ExpectedCloseParen, Error, "Unexpected tokens before `)`.");
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emitter_.Emit(*position_, ExpectedCloseParen);
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SkipTo(tokens_.GetMatchedClosingToken(open_paren));
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AddLeafNode(kind, Consume(TokenKind::CloseParen()));
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return llvm::None;
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}
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template <typename ListElementParser, typename ListCompletionHandler>
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auto ParseTree::Parser::ParseList(TokenKind open, TokenKind close,
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ListElementParser list_element_parser,
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ParseNodeKind comma_kind,
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ListCompletionHandler list_handler,
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bool allow_trailing_comma)
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-> llvm::Optional<Node> {
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// `(` element-list[opt] `)`
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//
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// element-list ::= element
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// ::= element `,` element-list
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TokenizedBuffer::Token open_paren = Consume(open);
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bool has_errors = false;
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bool any_commas = false;
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int64_t num_elements = 0;
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// Parse elements, if any are specified.
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if (!NextTokenIs(close)) {
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while (true) {
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bool element_error = !list_element_parser();
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has_errors |= element_error;
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++num_elements;
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if (!NextTokenIsOneOf({close, TokenKind::Comma()})) {
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if (!element_error) {
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CARBON_DIAGNOSTIC(UnexpectedTokenAfterListElement, Error,
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"Expected `,` or `{0}`.", TokenKind);
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emitter_.Emit(*position_, UnexpectedTokenAfterListElement, close);
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}
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has_errors = true;
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auto end_of_element = FindNextOf({TokenKind::Comma(), close});
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// The lexer guarantees that parentheses are balanced.
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CARBON_CHECK(end_of_element) << "missing matching `)` for `(`";
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SkipTo(*end_of_element);
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}
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if (NextTokenIs(close)) {
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break;
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}
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AddLeafNode(comma_kind, Consume(TokenKind::Comma()));
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any_commas = true;
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if (allow_trailing_comma && NextTokenIs(close)) {
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break;
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}
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}
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}
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bool is_single_item = num_elements == 1 && !any_commas;
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return list_handler(open_paren, is_single_item, Consume(close), has_errors);
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}
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auto ParseTree::Parser::ParsePattern(PatternKind kind) -> llvm::Optional<Node> {
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CARBON_RETURN_IF_STACK_LIMITED(llvm::None);
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if (NextTokenIs(TokenKind::Identifier()) &&
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tokens_.GetKind(*(position_ + 1)) == TokenKind::Colon()) {
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// identifier `:` type
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auto start = GetSubtreeStartPosition();
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AddLeafNode(ParseNodeKind::DeclaredName(),
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Consume(TokenKind::Identifier()));
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auto colon = Consume(TokenKind::Colon());
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auto type = ParseType();
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return AddNode(ParseNodeKind::PatternBinding(), colon, start,
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/*has_error=*/!type);
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}
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switch (kind) {
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case PatternKind::Parameter:
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CARBON_DIAGNOSTIC(ExpectedParameterName, Error,
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"Expected parameter declaration.");
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emitter_.Emit(*position_, ExpectedParameterName);
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break;
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case PatternKind::Variable:
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CARBON_DIAGNOSTIC(ExpectedVariableName, Error,
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"Expected pattern in `var` declaration.");
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emitter_.Emit(*position_, ExpectedVariableName);
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break;
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}
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return llvm::None;
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}
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auto ParseTree::Parser::ParseFunctionParameter() -> llvm::Optional<Node> {
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CARBON_RETURN_IF_STACK_LIMITED(llvm::None);
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return ParsePattern(PatternKind::Parameter);
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}
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auto ParseTree::Parser::ParseFunctionSignature() -> bool {
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CARBON_RETURN_IF_STACK_LIMITED(false);
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auto start = GetSubtreeStartPosition();
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auto params = ParseParenList(
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[&] { return ParseFunctionParameter(); },
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ParseNodeKind::ParameterListComma(),
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[&](TokenizedBuffer::Token open_paren, bool /*is_single_item*/,
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TokenizedBuffer::Token close_paren, bool has_errors) {
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AddLeafNode(ParseNodeKind::ParameterListEnd(), close_paren);
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return AddNode(ParseNodeKind::ParameterList(), open_paren, start,
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has_errors);
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});
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auto start_return_type = GetSubtreeStartPosition();
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if (auto arrow = ConsumeIf(TokenKind::MinusGreater())) {
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auto return_type = ParseType();
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AddNode(ParseNodeKind::ReturnType(), *arrow, start_return_type,
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/*has_error=*/!return_type);
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if (!return_type) {
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return false;
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}
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}
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return params.hasValue();
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}
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auto ParseTree::Parser::ParseCodeBlock() -> llvm::Optional<Node> {
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CARBON_RETURN_IF_STACK_LIMITED(llvm::None);
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llvm::Optional<TokenizedBuffer::Token> maybe_open_curly =
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ConsumeIf(TokenKind::OpenCurlyBrace());
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if (!maybe_open_curly) {
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// Recover by parsing a single statement.
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CARBON_DIAGNOSTIC(ExpectedCodeBlock, Error, "Expected braced code block.");
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emitter_.Emit(*position_, ExpectedCodeBlock);
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return ParseStatement();
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}
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TokenizedBuffer::Token open_curly = *maybe_open_curly;
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auto start = GetSubtreeStartPosition();
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bool has_errors = false;
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// Loop over all the different possibly nested elements in the code block.
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while (!NextTokenIs(TokenKind::CloseCurlyBrace())) {
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if (!ParseStatement()) {
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// We detected and diagnosed an error of some kind. We can trivially skip
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// to the actual close curly brace from here.
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// TODO: It would be better to skip to the next semicolon, or the next
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// token at the start of a line with the same indent as this one.
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SkipTo(tokens_.GetMatchedClosingToken(open_curly));
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has_errors = true;
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break;
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}
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}
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// We always reach here having set our position in the token stream to the
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// close curly brace.
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AddLeafNode(ParseNodeKind::CodeBlockEnd(),
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Consume(TokenKind::CloseCurlyBrace()));
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return AddNode(ParseNodeKind::CodeBlock(), open_curly, start, has_errors);
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}
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auto ParseTree::Parser::ParsePackageDirective() -> Node {
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TokenizedBuffer::Token package_intro_token = Consume(TokenKind::Package());
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auto package_start = GetSubtreeStartPosition();
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auto create_error_node = [&]() {
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return AddNode(ParseNodeKind::PackageDirective(), package_intro_token,
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package_start,
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/*has_error=*/true);
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};
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CARBON_RETURN_IF_STACK_LIMITED(create_error_node());
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auto exit_on_parse_error = [&]() {
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SkipPastLikelyEnd(package_intro_token, [&](TokenizedBuffer::Token semi) {
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return AddLeafNode(ParseNodeKind::PackageEnd(), semi);
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});
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return create_error_node();
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};
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if (!NextTokenIs(TokenKind::Identifier())) {
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CARBON_DIAGNOSTIC(ExpectedIdentifierAfterPackage, Error,
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"Expected identifier after `package`.");
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emitter_.Emit(*position_, ExpectedIdentifierAfterPackage);
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return exit_on_parse_error();
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}
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AddLeafNode(ParseNodeKind::DeclaredName(), Consume(TokenKind::Identifier()));
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bool library_parsed = false;
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if (tokens_.GetKind(*(position_)) == TokenKind::Library()) {
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auto library_start = GetSubtreeStartPosition();
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auto library_decl_token = Consume(TokenKind::Library());
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if (tokens_.GetKind(*(position_)) != TokenKind::StringLiteral()) {
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CARBON_DIAGNOSTIC(
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ExpectedLibraryName, Error,
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"Expected a string literal to specify the library name.");
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emitter_.Emit(*position_, ExpectedLibraryName);
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return exit_on_parse_error();
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}
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AddLeafNode(ParseNodeKind::Literal(), Consume(TokenKind::StringLiteral()));
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AddNode(ParseNodeKind::PackageLibrary(), library_decl_token, library_start,
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/*has_error=*/false);
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library_parsed = true;
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}
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auto api_or_impl_token = tokens_.GetKind(*(position_));
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if (api_or_impl_token == TokenKind::Api()) {
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AddLeafNode(ParseNodeKind::PackageApi(), Consume(TokenKind::Api()));
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} else if (api_or_impl_token == TokenKind::Impl()) {
|
|
AddLeafNode(ParseNodeKind::PackageImpl(), Consume(TokenKind::Impl()));
|
|
} else if (!library_parsed &&
|
|
api_or_impl_token == TokenKind::StringLiteral()) {
|
|
// If we come acroess a string literal and we didn't parse `library "..."`
|
|
// yet, then most probably the user forgot to add `library` before the
|
|
// library name.
|
|
CARBON_DIAGNOSTIC(MissingLibraryKeyword, Error,
|
|
"Missing `library` keyword.");
|
|
emitter_.Emit(*position_, MissingLibraryKeyword);
|
|
return exit_on_parse_error();
|
|
} else {
|
|
CARBON_DIAGNOSTIC(ExpectedApiOrImpl, Error, "Expected a `api` or `impl`.");
|
|
emitter_.Emit(*position_, ExpectedApiOrImpl);
|
|
return exit_on_parse_error();
|
|
}
|
|
|
|
if (tokens_.GetKind(*(position_)) != TokenKind::Semi()) {
|
|
CARBON_DIAGNOSTIC(ExpectedSemiToEndPackageDirective, Error,
|
|
"Expected `;` to end package directive.");
|
|
emitter_.Emit(*position_, ExpectedSemiToEndPackageDirective);
|
|
return exit_on_parse_error();
|
|
}
|
|
|
|
AddLeafNode(ParseNodeKind::PackageEnd(), Consume(TokenKind::Semi()));
|
|
|
|
return AddNode(ParseNodeKind::PackageDirective(), package_intro_token,
|
|
package_start, /*has_error=*/false);
|
|
}
|
|
|
|
auto ParseTree::Parser::ParseFunctionDeclaration() -> Node {
|
|
TokenizedBuffer::Token function_intro_token = Consume(TokenKind::Fn());
|
|
auto start = GetSubtreeStartPosition();
|
|
|
|
auto add_error_function_node = [&] {
|
|
return AddNode(ParseNodeKind::FunctionDeclaration(), function_intro_token,
|
|
start, /*has_error=*/true);
|
|
};
|
|
CARBON_RETURN_IF_STACK_LIMITED(add_error_function_node());
|
|
|
|
auto handle_semi_in_error_recovery = [&](TokenizedBuffer::Token semi) {
|
|
return AddLeafNode(ParseNodeKind::DeclarationEnd(), semi);
|
|
};
|
|
|
|
auto name_n = ConsumeAndAddLeafNodeIf(TokenKind::Identifier(),
|
|
ParseNodeKind::DeclaredName());
|
|
if (!name_n) {
|
|
CARBON_DIAGNOSTIC(ExpectedFunctionName, Error,
|
|
"Expected function name after `fn` keyword.");
|
|
emitter_.Emit(*position_, ExpectedFunctionName);
|
|
// TODO: We could change the lexer to allow us to synthesize certain
|
|
// kinds of tokens and try to "recover" here, but unclear that this is
|
|
// really useful.
|
|
SkipPastLikelyEnd(function_intro_token, handle_semi_in_error_recovery);
|
|
return add_error_function_node();
|
|
}
|
|
|
|
TokenizedBuffer::Token open_paren = *position_;
|
|
if (tokens_.GetKind(open_paren) != TokenKind::OpenParen()) {
|
|
CARBON_DIAGNOSTIC(ExpectedFunctionParams, Error,
|
|
"Expected `(` after function name.");
|
|
emitter_.Emit(open_paren, ExpectedFunctionParams);
|
|
SkipPastLikelyEnd(function_intro_token, handle_semi_in_error_recovery);
|
|
return add_error_function_node();
|
|
}
|
|
TokenizedBuffer::Token close_paren =
|
|
tokens_.GetMatchedClosingToken(open_paren);
|
|
|
|
if (!ParseFunctionSignature()) {
|
|
// Don't try to parse more of the function declaration, but consume a
|
|
// declaration ending semicolon if found (without going to a new line).
|
|
SkipPastLikelyEnd(function_intro_token, handle_semi_in_error_recovery);
|
|
return add_error_function_node();
|
|
}
|
|
|
|
// See if we should parse a definition which is represented as a code block.
|
|
if (NextTokenIs(TokenKind::OpenCurlyBrace())) {
|
|
if (!ParseCodeBlock()) {
|
|
return add_error_function_node();
|
|
}
|
|
} else if (!ConsumeAndAddLeafNodeIf(TokenKind::Semi(),
|
|
ParseNodeKind::DeclarationEnd())) {
|
|
CARBON_DIAGNOSTIC(
|
|
ExpectedFunctionBodyOrSemi, Error,
|
|
"Expected function definition or `;` after function declaration.");
|
|
emitter_.Emit(*position_, ExpectedFunctionBodyOrSemi);
|
|
if (tokens_.GetLine(*position_) == tokens_.GetLine(close_paren)) {
|
|
// Only need to skip if we've not already found a new line.
|
|
SkipPastLikelyEnd(function_intro_token, handle_semi_in_error_recovery);
|
|
}
|
|
return add_error_function_node();
|
|
}
|
|
|
|
// Successfully parsed the function, add that node.
|
|
return AddNode(ParseNodeKind::FunctionDeclaration(), function_intro_token,
|
|
start);
|
|
}
|
|
|
|
auto ParseTree::Parser::ParseVariableDeclaration() -> Node {
|
|
// `var` pattern [= expression] `;`
|
|
TokenizedBuffer::Token var_token = Consume(TokenKind::Var());
|
|
auto start = GetSubtreeStartPosition();
|
|
|
|
CARBON_RETURN_IF_STACK_LIMITED(AddNode(ParseNodeKind::VariableDeclaration(),
|
|
var_token, start,
|
|
/*has_error=*/true));
|
|
|
|
auto pattern = ParsePattern(PatternKind::Variable);
|
|
if (!pattern) {
|
|
if (auto after_pattern =
|
|
FindNextOf({TokenKind::Equal(), TokenKind::Semi()})) {
|
|
SkipTo(*after_pattern);
|
|
}
|
|
}
|
|
|
|
auto start_init = GetSubtreeStartPosition();
|
|
if (auto equal_token = ConsumeIf(TokenKind::Equal())) {
|
|
auto init = ParseExpression();
|
|
AddNode(ParseNodeKind::VariableInitializer(), *equal_token, start_init,
|
|
/*has_error=*/!init);
|
|
}
|
|
|
|
auto semi = ConsumeAndAddLeafNodeIf(TokenKind::Semi(),
|
|
ParseNodeKind::DeclarationEnd());
|
|
if (!semi) {
|
|
emitter_.Emit(*position_, ExpectedSemiAfterExpression);
|
|
SkipPastLikelyEnd(var_token, [&](TokenizedBuffer::Token semi) {
|
|
return AddLeafNode(ParseNodeKind::DeclarationEnd(), semi);
|
|
});
|
|
}
|
|
|
|
return AddNode(ParseNodeKind::VariableDeclaration(), var_token, start,
|
|
/*has_error=*/!pattern || !semi);
|
|
}
|
|
|
|
auto ParseTree::Parser::ParseEmptyDeclaration() -> Node {
|
|
return AddLeafNode(ParseNodeKind::EmptyDeclaration(),
|
|
Consume(TokenKind::Semi()));
|
|
}
|
|
|
|
auto ParseTree::Parser::ParseDeclaration() -> llvm::Optional<Node> {
|
|
CARBON_RETURN_IF_STACK_LIMITED(llvm::None);
|
|
switch (NextTokenKind()) {
|
|
case TokenKind::Package():
|
|
return ParsePackageDirective();
|
|
case TokenKind::Fn():
|
|
return ParseFunctionDeclaration();
|
|
case TokenKind::Var():
|
|
return ParseVariableDeclaration();
|
|
case TokenKind::Semi():
|
|
return ParseEmptyDeclaration();
|
|
case TokenKind::EndOfFile():
|
|
return llvm::None;
|
|
default:
|
|
// Errors are handled outside the switch.
|
|
break;
|
|
}
|
|
|
|
// Should happen for packages now.
|
|
// We didn't recognize an introducer for a valid declaration.
|
|
CARBON_DIAGNOSTIC(UnrecognizedDeclaration, Error,
|
|
"Unrecognized declaration introducer.");
|
|
emitter_.Emit(*position_, UnrecognizedDeclaration);
|
|
|
|
// Skip forward past any end of a declaration we simply didn't understand so
|
|
// that we can find the start of the next declaration or the end of a scope.
|
|
if (auto found_semi_n =
|
|
SkipPastLikelyEnd(*position_, [&](TokenizedBuffer::Token semi) {
|
|
return AddLeafNode(ParseNodeKind::EmptyDeclaration(), semi);
|
|
})) {
|
|
MarkNodeError(*found_semi_n);
|
|
return *found_semi_n;
|
|
}
|
|
|
|
// Nothing, not even a semicolon found.
|
|
return llvm::None;
|
|
}
|
|
|
|
auto ParseTree::Parser::ParseParenExpression() -> llvm::Optional<Node> {
|
|
CARBON_RETURN_IF_STACK_LIMITED(llvm::None);
|
|
// parenthesized-expression ::= `(` expression `)`
|
|
// tuple-literal ::= `(` `)`
|
|
// ::= `(` expression `,` [expression-list [`,`]] `)`
|
|
//
|
|
// Parse the union of these, `(` [expression-list [`,`]] `)`, and work out
|
|
// whether it's a tuple or a parenthesized expression afterwards.
|
|
auto start = GetSubtreeStartPosition();
|
|
return ParseParenList(
|
|
[&] { return ParseExpression(); }, ParseNodeKind::TupleLiteralComma(),
|
|
[&](TokenizedBuffer::Token open_paren, bool is_single_item,
|
|
TokenizedBuffer::Token close_paren, bool has_arg_errors) {
|
|
AddLeafNode(is_single_item ? ParseNodeKind::ParenExpressionEnd()
|
|
: ParseNodeKind::TupleLiteralEnd(),
|
|
close_paren);
|
|
return AddNode(is_single_item ? ParseNodeKind::ParenExpression()
|
|
: ParseNodeKind::TupleLiteral(),
|
|
open_paren, start, has_arg_errors);
|
|
},
|
|
/*allow_trailing_comma=*/true);
|
|
}
|
|
|
|
auto ParseTree::Parser::ParseBraceExpression() -> llvm::Optional<Node> {
|
|
CARBON_RETURN_IF_STACK_LIMITED(llvm::None);
|
|
// braced-expression ::= `{` [field-value-list] `}`
|
|
// ::= `{` field-type-list `}`
|
|
// field-value-list ::= field-value [`,`]
|
|
// ::= field-value `,` field-value-list
|
|
// field-value ::= `.` identifier `=` expression
|
|
// field-type-list ::= field-type [`,`]
|
|
// ::= field-type `,` field-type-list
|
|
// field-type ::= `.` identifier `:` type
|
|
//
|
|
// Note that `{` `}` is the first form (an empty struct), but that an empty
|
|
// struct value also behaves as an empty struct type.
|
|
auto start = GetSubtreeStartPosition();
|
|
enum Kind { Unknown, Value, Type };
|
|
Kind kind = Unknown;
|
|
return ParseList(
|
|
TokenKind::OpenCurlyBrace(), TokenKind::CloseCurlyBrace(),
|
|
[&]() -> llvm::Optional<Node> {
|
|
auto start_elem = GetSubtreeStartPosition();
|
|
|
|
auto diagnose_invalid_syntax = [&] {
|
|
CARBON_DIAGNOSTIC(ExpectedStructLiteralField, Error,
|
|
"Expected {0}{1}{2}.", llvm::StringRef,
|
|
llvm::StringRef, llvm::StringRef);
|
|
bool can_be_type = kind != Value;
|
|
bool can_be_value = kind != Type;
|
|
emitter_.Emit(*position_, ExpectedStructLiteralField,
|
|
can_be_type ? "`.field: type`" : "",
|
|
(can_be_type && can_be_value) ? " or " : "",
|
|
can_be_value ? "`.field = value`" : "");
|
|
return llvm::None;
|
|
};
|
|
|
|
if (!NextTokenIs(TokenKind::Period())) {
|
|
return diagnose_invalid_syntax();
|
|
}
|
|
auto designator = ParseDesignatorExpression(
|
|
start_elem, ParseNodeKind::StructFieldDesignator(),
|
|
/*has_errors=*/false);
|
|
if (!designator) {
|
|
auto recovery_pos = FindNextOf(
|
|
{TokenKind::Equal(), TokenKind::Colon(), TokenKind::Comma()});
|
|
if (!recovery_pos ||
|
|
tokens_.GetKind(*recovery_pos) == TokenKind::Comma()) {
|
|
return llvm::None;
|
|
}
|
|
SkipTo(*recovery_pos);
|
|
}
|
|
|
|
// Work out the kind of this element
|
|
Kind elem_kind = (NextTokenIs(TokenKind::Equal()) ? Value
|
|
: NextTokenIs(TokenKind::Colon()) ? Type
|
|
: Unknown);
|
|
if (elem_kind == Unknown || (kind != Unknown && elem_kind != kind)) {
|
|
return diagnose_invalid_syntax();
|
|
}
|
|
kind = elem_kind;
|
|
|
|
// Struct type fields and value fields use the same grammar except that
|
|
// one has a `:` separator and the other has an `=` separator.
|
|
auto equal_or_colon_token =
|
|
Consume(kind == Type ? TokenKind::Colon() : TokenKind::Equal());
|
|
auto type_or_value = ParseExpression();
|
|
return AddNode(kind == Type ? ParseNodeKind::StructFieldType()
|
|
: ParseNodeKind::StructFieldValue(),
|
|
equal_or_colon_token, start_elem,
|
|
/*has_error=*/!designator || !type_or_value);
|
|
},
|
|
ParseNodeKind::StructComma(),
|
|
[&](TokenizedBuffer::Token open_brace, bool /*is_single_item*/,
|
|
TokenizedBuffer::Token close_brace, bool has_errors) {
|
|
AddLeafNode(ParseNodeKind::StructEnd(), close_brace);
|
|
return AddNode(kind == Type ? ParseNodeKind::StructTypeLiteral()
|
|
: ParseNodeKind::StructLiteral(),
|
|
open_brace, start, has_errors);
|
|
},
|
|
/*allow_trailing_comma=*/true);
|
|
}
|
|
|
|
auto ParseTree::Parser::ParsePrimaryExpression() -> llvm::Optional<Node> {
|
|
CARBON_RETURN_IF_STACK_LIMITED(llvm::None);
|
|
llvm::Optional<ParseNodeKind> kind;
|
|
switch (NextTokenKind()) {
|
|
case TokenKind::Identifier():
|
|
kind = ParseNodeKind::NameReference();
|
|
break;
|
|
|
|
case TokenKind::IntegerLiteral():
|
|
case TokenKind::RealLiteral():
|
|
case TokenKind::StringLiteral():
|
|
case TokenKind::IntegerTypeLiteral():
|
|
case TokenKind::UnsignedIntegerTypeLiteral():
|
|
case TokenKind::FloatingPointTypeLiteral():
|
|
kind = ParseNodeKind::Literal();
|
|
break;
|
|
|
|
case TokenKind::OpenParen():
|
|
return ParseParenExpression();
|
|
|
|
case TokenKind::OpenCurlyBrace():
|
|
return ParseBraceExpression();
|
|
|
|
default:
|
|
CARBON_DIAGNOSTIC(ExpectedExpression, Error, "Expected expression.");
|
|
emitter_.Emit(*position_, ExpectedExpression);
|
|
return llvm::None;
|
|
}
|
|
|
|
return AddLeafNode(*kind, Consume(NextTokenKind()));
|
|
}
|
|
|
|
auto ParseTree::Parser::ParseDesignatorExpression(SubtreeStart start,
|
|
ParseNodeKind kind,
|
|
bool has_errors)
|
|
-> llvm::Optional<Node> {
|
|
// `.` identifier
|
|
auto dot = Consume(TokenKind::Period());
|
|
auto name = ConsumeIf(TokenKind::Identifier());
|
|
if (name) {
|
|
AddLeafNode(ParseNodeKind::DesignatedName(), *name);
|
|
} else {
|
|
CARBON_DIAGNOSTIC(ExpectedIdentifierAfterDot, Error,
|
|
"Expected identifier after `.`.");
|
|
emitter_.Emit(*position_, ExpectedIdentifierAfterDot);
|
|
// If we see a keyword, assume it was intended to be the designated name.
|
|
// TODO: Should keywords be valid in designators?
|
|
if (NextTokenKind().IsKeyword()) {
|
|
name = Consume(NextTokenKind());
|
|
auto name_node = AddLeafNode(ParseNodeKind::DesignatedName(), *name);
|
|
MarkNodeError(name_node);
|
|
} else {
|
|
has_errors = true;
|
|
}
|
|
}
|
|
|
|
Node result = AddNode(kind, dot, start, has_errors);
|
|
return name ? result : llvm::Optional<Node>();
|
|
}
|
|
|
|
auto ParseTree::Parser::ParseCallExpression(SubtreeStart start, bool has_errors)
|
|
-> llvm::Optional<Node> {
|
|
CARBON_RETURN_IF_STACK_LIMITED(llvm::None);
|
|
// `(` expression-list[opt] `)`
|
|
//
|
|
// expression-list ::= expression
|
|
// ::= expression `,` expression-list
|
|
return ParseParenList(
|
|
[&] { return ParseExpression(); }, ParseNodeKind::CallExpressionComma(),
|
|
[&](TokenizedBuffer::Token open_paren, bool /*is_single_item*/,
|
|
TokenizedBuffer::Token close_paren, bool has_arg_errors) {
|
|
AddLeafNode(ParseNodeKind::CallExpressionEnd(), close_paren);
|
|
return AddNode(ParseNodeKind::CallExpression(), open_paren, start,
|
|
has_errors || has_arg_errors);
|
|
});
|
|
}
|
|
|
|
auto ParseTree::Parser::ParsePostfixExpression() -> llvm::Optional<Node> {
|
|
CARBON_RETURN_IF_STACK_LIMITED(llvm::None);
|
|
auto start = GetSubtreeStartPosition();
|
|
llvm::Optional<Node> expression = ParsePrimaryExpression();
|
|
|
|
TokenizedBuffer::TokenIterator last_position = position_;
|
|
while (true) {
|
|
switch (NextTokenKind()) {
|
|
case TokenKind::Period():
|
|
expression = ParseDesignatorExpression(
|
|
start, ParseNodeKind::DesignatorExpression(), !expression);
|
|
break;
|
|
|
|
case TokenKind::OpenParen():
|
|
expression = ParseCallExpression(start, !expression);
|
|
break;
|
|
|
|
default:
|
|
return expression;
|
|
}
|
|
// This is subject to an infinite loop if a child call fails, so monitor for
|
|
// stalling.
|
|
if (last_position == position_) {
|
|
CARBON_CHECK(expression == llvm::None);
|
|
return expression;
|
|
}
|
|
last_position = position_;
|
|
}
|
|
}
|
|
|
|
// Determines whether the given token is considered to be the start of an
|
|
// operand according to the rules for infix operator parsing.
|
|
static auto IsAssumedStartOfOperand(TokenKind kind) -> bool {
|
|
return kind.IsOneOf({TokenKind::OpenParen(), TokenKind::Identifier(),
|
|
TokenKind::IntegerLiteral(), TokenKind::RealLiteral(),
|
|
TokenKind::StringLiteral()});
|
|
}
|
|
|
|
// Determines whether the given token is considered to be the end of an operand
|
|
// according to the rules for infix operator parsing.
|
|
static auto IsAssumedEndOfOperand(TokenKind kind) -> bool {
|
|
return kind.IsOneOf({TokenKind::CloseParen(), TokenKind::CloseCurlyBrace(),
|
|
TokenKind::CloseSquareBracket(), TokenKind::Identifier(),
|
|
TokenKind::IntegerLiteral(), TokenKind::RealLiteral(),
|
|
TokenKind::StringLiteral()});
|
|
}
|
|
|
|
// Determines whether the given token could possibly be the start of an operand.
|
|
// This is conservatively correct, and will never incorrectly return `false`,
|
|
// but can incorrectly return `true`.
|
|
static auto IsPossibleStartOfOperand(TokenKind kind) -> bool {
|
|
return !kind.IsOneOf({TokenKind::CloseParen(), TokenKind::CloseCurlyBrace(),
|
|
TokenKind::CloseSquareBracket(), TokenKind::Comma(),
|
|
TokenKind::Semi(), TokenKind::Colon()});
|
|
}
|
|
|
|
auto ParseTree::Parser::IsLexicallyValidInfixOperator() -> bool {
|
|
CARBON_CHECK(!AtEndOfFile()) << "Expected an operator token.";
|
|
|
|
bool leading_space = tokens_.HasLeadingWhitespace(*position_);
|
|
bool trailing_space = tokens_.HasTrailingWhitespace(*position_);
|
|
|
|
// If there's whitespace on both sides, it's an infix operator.
|
|
if (leading_space && trailing_space) {
|
|
return true;
|
|
}
|
|
|
|
// If there's whitespace on exactly one side, it's not an infix operator.
|
|
if (leading_space || trailing_space) {
|
|
return false;
|
|
}
|
|
|
|
// Otherwise, for an infix operator, the preceding token must be any close
|
|
// bracket, identifier, or literal and the next token must be an open paren,
|
|
// identifier, or literal.
|
|
if (position_ == tokens_.tokens().begin() ||
|
|
!IsAssumedEndOfOperand(tokens_.GetKind(*(position_ - 1))) ||
|
|
!IsAssumedStartOfOperand(tokens_.GetKind(*(position_ + 1)))) {
|
|
return false;
|
|
}
|
|
|
|
return true;
|
|
}
|
|
|
|
auto ParseTree::Parser::DiagnoseOperatorFixity(OperatorFixity fixity) -> void {
|
|
bool is_valid_as_infix = IsLexicallyValidInfixOperator();
|
|
|
|
if (fixity == OperatorFixity::Infix) {
|
|
// Infix operators must satisfy the infix operator rules.
|
|
if (!is_valid_as_infix) {
|
|
CARBON_DIAGNOSTIC(BinaryOperatorRequiresWhitespace, Error,
|
|
"Whitespace missing {0} binary operator.",
|
|
RelativeLocation);
|
|
emitter_.Emit(*position_, BinaryOperatorRequiresWhitespace,
|
|
tokens_.HasLeadingWhitespace(*position_)
|
|
? RelativeLocation::After
|
|
: (tokens_.HasTrailingWhitespace(*position_)
|
|
? RelativeLocation::Before
|
|
: RelativeLocation::Around));
|
|
}
|
|
} else {
|
|
bool prefix = fixity == OperatorFixity::Prefix;
|
|
|
|
// Whitespace is not permitted between a symbolic pre/postfix operator and
|
|
// its operand.
|
|
if (NextTokenKind().IsSymbol() &&
|
|
(prefix ? tokens_.HasTrailingWhitespace(*position_)
|
|
: tokens_.HasLeadingWhitespace(*position_))) {
|
|
CARBON_DIAGNOSTIC(UnaryOperatorHasWhitespace, Error,
|
|
"Whitespace is not allowed {0} this unary operator.",
|
|
RelativeLocation);
|
|
emitter_.Emit(
|
|
*position_, UnaryOperatorHasWhitespace,
|
|
prefix ? RelativeLocation::After : RelativeLocation::Before);
|
|
}
|
|
// Pre/postfix operators must not satisfy the infix operator rules.
|
|
if (is_valid_as_infix) {
|
|
CARBON_DIAGNOSTIC(UnaryOperatorRequiresWhitespace, Error,
|
|
"Whitespace is required {0} this unary operator.",
|
|
RelativeLocation);
|
|
emitter_.Emit(
|
|
*position_, UnaryOperatorRequiresWhitespace,
|
|
prefix ? RelativeLocation::Before : RelativeLocation::After);
|
|
}
|
|
}
|
|
}
|
|
|
|
auto ParseTree::Parser::IsTrailingOperatorInfix() -> bool {
|
|
if (AtEndOfFile()) {
|
|
return false;
|
|
}
|
|
|
|
// An operator that follows the infix operator rules is parsed as
|
|
// infix, unless the next token means that it can't possibly be.
|
|
if (IsLexicallyValidInfixOperator() &&
|
|
IsPossibleStartOfOperand(tokens_.GetKind(*(position_ + 1)))) {
|
|
return true;
|
|
}
|
|
|
|
// A trailing operator with leading whitespace that's not valid as infix is
|
|
// not valid at all. If the next token looks like the start of an operand,
|
|
// then parse as infix, otherwise as postfix. Either way we'll produce a
|
|
// diagnostic later on.
|
|
if (tokens_.HasLeadingWhitespace(*position_) &&
|
|
IsAssumedStartOfOperand(tokens_.GetKind(*(position_ + 1)))) {
|
|
return true;
|
|
}
|
|
|
|
return false;
|
|
}
|
|
|
|
auto ParseTree::Parser::ParseOperatorExpression(
|
|
PrecedenceGroup ambient_precedence) -> llvm::Optional<Node> {
|
|
// May be omitted a couple different ways here.
|
|
CARBON_DIAGNOSTIC(
|
|
OperatorRequiresParentheses, Error,
|
|
"Parentheses are required to disambiguate operator precedence.");
|
|
|
|
CARBON_RETURN_IF_STACK_LIMITED(llvm::None);
|
|
auto start = GetSubtreeStartPosition();
|
|
|
|
llvm::Optional<Node> lhs;
|
|
PrecedenceGroup lhs_precedence = PrecedenceGroup::ForPostfixExpression();
|
|
|
|
// Check for a prefix operator.
|
|
if (auto operator_precedence = PrecedenceGroup::ForLeading(NextTokenKind());
|
|
!operator_precedence) {
|
|
lhs = ParsePostfixExpression();
|
|
} else {
|
|
if (PrecedenceGroup::GetPriority(ambient_precedence,
|
|
*operator_precedence) !=
|
|
OperatorPriority::RightFirst) {
|
|
// The precedence rules don't permit this prefix operator in this
|
|
// context. Diagnose this, but carry on and parse it anyway.
|
|
emitter_.Emit(*position_, OperatorRequiresParentheses);
|
|
} else {
|
|
// Check that this operator follows the proper whitespace rules.
|
|
DiagnoseOperatorFixity(OperatorFixity::Prefix);
|
|
}
|
|
|
|
auto operator_token = Consume(NextTokenKind());
|
|
bool has_errors = !ParseOperatorExpression(*operator_precedence);
|
|
lhs = AddNode(ParseNodeKind::PrefixOperator(), operator_token, start,
|
|
has_errors);
|
|
lhs_precedence = *operator_precedence;
|
|
}
|
|
|
|
// Consume a sequence of infix and postfix operators.
|
|
while (auto trailing_operator = PrecedenceGroup::ForTrailing(
|
|
NextTokenKind(), IsTrailingOperatorInfix())) {
|
|
auto [operator_precedence, is_binary] = *trailing_operator;
|
|
|
|
// TODO: If this operator is ambiguous with either the ambient precedence
|
|
// or the LHS precedence, and there's a variant with a different fixity
|
|
// that would work, use that one instead for error recovery.
|
|
if (PrecedenceGroup::GetPriority(ambient_precedence, operator_precedence) !=
|
|
OperatorPriority::RightFirst) {
|
|
// The precedence rules don't permit this operator in this context. Try
|
|
// again in the enclosing expression context.
|
|
return lhs;
|
|
}
|
|
|
|
if (PrecedenceGroup::GetPriority(lhs_precedence, operator_precedence) !=
|
|
OperatorPriority::LeftFirst) {
|
|
// Either the LHS operator and this operator are ambiguous, or the
|
|
// LHS operator is a unary operator that can't be nested within
|
|
// this operator. Either way, parentheses are required.
|
|
emitter_.Emit(*position_, OperatorRequiresParentheses);
|
|
lhs = llvm::None;
|
|
} else {
|
|
DiagnoseOperatorFixity(is_binary ? OperatorFixity::Infix
|
|
: OperatorFixity::Postfix);
|
|
}
|
|
|
|
auto operator_token = Consume(NextTokenKind());
|
|
|
|
if (is_binary) {
|
|
auto rhs = ParseOperatorExpression(operator_precedence);
|
|
lhs = AddNode(ParseNodeKind::InfixOperator(), operator_token, start,
|
|
/*has_error=*/!lhs || !rhs);
|
|
} else {
|
|
lhs = AddNode(ParseNodeKind::PostfixOperator(), operator_token, start,
|
|
/*has_error=*/!lhs);
|
|
}
|
|
lhs_precedence = operator_precedence;
|
|
}
|
|
|
|
return lhs;
|
|
}
|
|
|
|
auto ParseTree::Parser::ParseExpression() -> llvm::Optional<Node> {
|
|
CARBON_RETURN_IF_STACK_LIMITED(llvm::None);
|
|
return ParseOperatorExpression(PrecedenceGroup::ForTopLevelExpression());
|
|
}
|
|
|
|
auto ParseTree::Parser::ParseType() -> llvm::Optional<Node> {
|
|
CARBON_RETURN_IF_STACK_LIMITED(llvm::None);
|
|
return ParseOperatorExpression(PrecedenceGroup::ForType());
|
|
}
|
|
|
|
auto ParseTree::Parser::ParseExpressionStatement() -> llvm::Optional<Node> {
|
|
CARBON_RETURN_IF_STACK_LIMITED(llvm::None);
|
|
TokenizedBuffer::Token start_token = *position_;
|
|
auto start = GetSubtreeStartPosition();
|
|
|
|
bool has_errors = !ParseExpression();
|
|
|
|
if (auto semi = ConsumeIf(TokenKind::Semi())) {
|
|
return AddNode(ParseNodeKind::ExpressionStatement(), *semi, start,
|
|
has_errors);
|
|
}
|
|
|
|
if (!has_errors) {
|
|
emitter_.Emit(*position_, ExpectedSemiAfterExpression);
|
|
}
|
|
|
|
if (auto recovery_node =
|
|
SkipPastLikelyEnd(start_token, [&](TokenizedBuffer::Token semi) {
|
|
return AddNode(ParseNodeKind::ExpressionStatement(), semi, start,
|
|
true);
|
|
})) {
|
|
return recovery_node;
|
|
}
|
|
|
|
// Found junk not even followed by a `;`.
|
|
return llvm::None;
|
|
}
|
|
|
|
auto ParseTree::Parser::ParseParenCondition(TokenKind introducer)
|
|
-> llvm::Optional<Node> {
|
|
CARBON_RETURN_IF_STACK_LIMITED(llvm::None);
|
|
// `(` expression `)`
|
|
auto start = GetSubtreeStartPosition();
|
|
auto open_paren = ConsumeIf(TokenKind::OpenParen());
|
|
if (!open_paren) {
|
|
CARBON_DIAGNOSTIC(ExpectedParenAfter, Error, "Expected `(` after `{0}`.",
|
|
TokenKind);
|
|
emitter_.Emit(*position_, ExpectedParenAfter, introducer);
|
|
}
|
|
|
|
auto expr = ParseExpression();
|
|
|
|
if (!open_paren) {
|
|
// Don't expect a matching closing paren if there wasn't an opening paren.
|
|
return llvm::None;
|
|
}
|
|
|
|
auto close_paren =
|
|
ParseCloseParen(*open_paren, ParseNodeKind::ConditionEnd());
|
|
|
|
return AddNode(ParseNodeKind::Condition(), *open_paren, start,
|
|
/*has_error=*/!expr || !close_paren);
|
|
}
|
|
|
|
auto ParseTree::Parser::ParseIfStatement() -> llvm::Optional<Node> {
|
|
auto start = GetSubtreeStartPosition();
|
|
auto if_token = Consume(TokenKind::If());
|
|
auto cond = ParseParenCondition(TokenKind::If());
|
|
auto then_case = ParseCodeBlock();
|
|
bool else_has_errors = false;
|
|
if (ConsumeAndAddLeafNodeIf(TokenKind::Else(),
|
|
ParseNodeKind::IfStatementElse())) {
|
|
// 'else if' is permitted as a special case.
|
|
if (NextTokenIs(TokenKind::If())) {
|
|
else_has_errors = !ParseIfStatement();
|
|
} else {
|
|
else_has_errors = !ParseCodeBlock();
|
|
}
|
|
}
|
|
return AddNode(ParseNodeKind::IfStatement(), if_token, start,
|
|
/*has_error=*/!cond || !then_case || else_has_errors);
|
|
}
|
|
|
|
auto ParseTree::Parser::ParseWhileStatement() -> llvm::Optional<Node> {
|
|
CARBON_RETURN_IF_STACK_LIMITED(llvm::None);
|
|
auto start = GetSubtreeStartPosition();
|
|
auto while_token = Consume(TokenKind::While());
|
|
auto cond = ParseParenCondition(TokenKind::While());
|
|
auto body = ParseCodeBlock();
|
|
return AddNode(ParseNodeKind::WhileStatement(), while_token, start,
|
|
/*has_error=*/!cond || !body);
|
|
}
|
|
|
|
auto ParseTree::Parser::ParseKeywordStatement(ParseNodeKind kind,
|
|
KeywordStatementArgument argument)
|
|
-> llvm::Optional<Node> {
|
|
CARBON_RETURN_IF_STACK_LIMITED(llvm::None);
|
|
auto keyword_kind = NextTokenKind();
|
|
CARBON_CHECK(keyword_kind.IsKeyword());
|
|
|
|
auto start = GetSubtreeStartPosition();
|
|
auto keyword = Consume(keyword_kind);
|
|
|
|
bool arg_error = false;
|
|
if ((argument == KeywordStatementArgument::Optional &&
|
|
NextTokenKind() != TokenKind::Semi()) ||
|
|
argument == KeywordStatementArgument::Mandatory) {
|
|
arg_error = !ParseExpression();
|
|
}
|
|
|
|
auto semi =
|
|
ConsumeAndAddLeafNodeIf(TokenKind::Semi(), ParseNodeKind::StatementEnd());
|
|
if (!semi) {
|
|
CARBON_DIAGNOSTIC(ExpectedSemiAfter, Error, "Expected `;` after `{0}`.",
|
|
TokenKind);
|
|
emitter_.Emit(*position_, ExpectedSemiAfter, keyword_kind);
|
|
// TODO: Try to skip to a semicolon to recover.
|
|
}
|
|
return AddNode(kind, keyword, start, /*has_error=*/!semi || arg_error);
|
|
}
|
|
|
|
auto ParseTree::Parser::ParseStatement() -> llvm::Optional<Node> {
|
|
CARBON_RETURN_IF_STACK_LIMITED(llvm::None);
|
|
switch (NextTokenKind()) {
|
|
case TokenKind::Var():
|
|
return ParseVariableDeclaration();
|
|
|
|
case TokenKind::If():
|
|
return ParseIfStatement();
|
|
|
|
case TokenKind::While():
|
|
return ParseWhileStatement();
|
|
|
|
case TokenKind::Continue():
|
|
return ParseKeywordStatement(ParseNodeKind::ContinueStatement(),
|
|
KeywordStatementArgument::None);
|
|
|
|
case TokenKind::Break():
|
|
return ParseKeywordStatement(ParseNodeKind::BreakStatement(),
|
|
KeywordStatementArgument::None);
|
|
|
|
case TokenKind::Return():
|
|
return ParseKeywordStatement(ParseNodeKind::ReturnStatement(),
|
|
KeywordStatementArgument::Optional);
|
|
|
|
default:
|
|
// A statement with no introducer token can only be an expression
|
|
// statement.
|
|
return ParseExpressionStatement();
|
|
}
|
|
}
|
|
|
|
} // namespace Carbon
|