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The goal of this change is to start refactoring the monolithic file into separate files that will hopefully pose fewer conflicts for developers, and make it easier to skip to handling of specific functionality. It additionally addresses a scaling issue with parser.cpp where the file would continue to get larger as more features are added. Switches Parser to a ParserContext, moves handlers to be free functions, and moves the controller logic into ParseTree. parser_handle_states.h does the declarations for handlers and little else; handlers are split out to individual files based on prefix (which is deliberately authored to cluster). A couple things I'm avoiding based on historical discussion are: - Having a subdirectory for all the handlers, such as `toolchain/parser/handlers/call_expression.cpp` - Putting handlers in a namespace, such as `Carbon::ParserHandler::CallExpression`. - The name of `Carbon::ParserHandlerCallExpression` is then necessary to minimize the chance of conflicts with semantics and lowering, where everything can be expected to be named similarly. I'm globbing handlers because it seems hard to see missed ones under this approach -- names are too boilerplate. I think this current setup could be split into target-per-file, but I'm not sure that's needed, so I'd delay until it becomes a build-time issue.
326 lines
13 KiB
C++
326 lines
13 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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#ifndef CARBON_TOOLCHAIN_PARSER_PARSER_CONTEXT_H_
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#define CARBON_TOOLCHAIN_PARSER_PARSER_CONTEXT_H_
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#include <optional>
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#include "common/check.h"
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#include "common/vlog.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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#include "toolchain/parser/parser_state.h"
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#include "toolchain/parser/precedence.h"
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namespace Carbon {
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// Context and shared functionality for parser handlers. See parser_state.def
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// for state documentation.
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class ParserContext {
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public:
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// Possible operator fixities for errors.
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enum class OperatorFixity { Prefix, Infix, Postfix };
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// Possible return values for FindListToken.
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enum class ListTokenKind { Comma, Close, CommaClose };
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// Supported kinds for HandlePattern.
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enum class PatternKind { DeducedParameter, Parameter, Variable };
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// Supported return values for GetDeclarationContext.
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enum class DeclarationContext {
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File, // Top-level context.
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Class,
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Interface,
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NamedConstraint,
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};
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// Used to track state on state_stack_.
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struct StateStackEntry {
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explicit StateStackEntry(ParserState state,
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PrecedenceGroup ambient_precedence,
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PrecedenceGroup lhs_precedence,
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TokenizedBuffer::Token token,
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int32_t subtree_start)
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: state(state),
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ambient_precedence(ambient_precedence),
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lhs_precedence(lhs_precedence),
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token(token),
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subtree_start(subtree_start) {}
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// Prints state information for verbose output.
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auto Print(llvm::raw_ostream& output) const -> void {
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output << state << " @" << token << " subtree_start=" << subtree_start
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<< " has_error=" << has_error;
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};
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// The state.
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ParserState state;
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// Set to true to indicate that an error was found, and that contextual
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// error recovery may be needed.
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bool has_error = false;
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// Precedence information used by expression states in order to determine
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// operator precedence. The ambient_precedence deals with how the expression
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// should interact with outside context, while the lhs_precedence is
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// specific to the lhs of an operator expression.
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PrecedenceGroup ambient_precedence;
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PrecedenceGroup lhs_precedence;
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// A token providing context based on the subtree. This will typically be
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// the first token in the subtree, but may sometimes be a token within. It
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// will typically be used for the subtree's root node.
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TokenizedBuffer::Token token;
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// The offset within the ParseTree of the subtree start.
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int32_t subtree_start;
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};
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// We expect StateStackEntry to fit into 12 bytes:
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// state = 1 byte
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// has_error = 1 byte
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// ambient_precedence = 1 byte
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// lhs_precedence = 1 byte
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// token = 4 bytes
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// subtree_start = 4 bytes
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// If it becomes bigger, it'd be worth examining better packing; it should be
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// feasible to pack the 1-byte entries more tightly.
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static_assert(sizeof(StateStackEntry) == 12,
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"StateStackEntry has unexpected size!");
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explicit ParserContext(ParseTree& tree, TokenizedBuffer& tokens,
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TokenDiagnosticEmitter& emitter,
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llvm::raw_ostream* vlog_stream);
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// Adds a node to the parse tree that has no children (a leaf).
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auto AddLeafNode(ParseNodeKind kind, TokenizedBuffer::Token token,
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bool has_error = false) -> void;
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// Adds a node to the parse tree that has children.
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auto AddNode(ParseNodeKind kind, TokenizedBuffer::Token token,
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int subtree_start, bool has_error) -> void;
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// Returns the current position and moves past it.
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auto Consume() -> TokenizedBuffer::Token { return *(position_++); }
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// Parses an open paren token, possibly diagnosing if necessary. Creates a
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// leaf parse node of the specified start kind. The default_token is used when
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// there's no open paren.
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auto ConsumeAndAddOpenParen(TokenizedBuffer::Token default_token,
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ParseNodeKind start_kind) -> void;
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// Parses a close paren token corresponding to the given open paren token,
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// possibly skipping forward and diagnosing if necessary. Creates a parse node
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// of the specified close kind.
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auto ConsumeAndAddCloseParen(StateStackEntry state, ParseNodeKind close_kind)
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-> void;
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// Composes `ConsumeIf` and `AddLeafNode`, returning false when ConsumeIf
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// fails.
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auto ConsumeAndAddLeafNodeIf(TokenKind token_kind, ParseNodeKind node_kind)
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-> bool;
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// Returns the current position and moves past it. Requires the token is the
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// expected kind.
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auto ConsumeChecked(TokenKind kind) -> TokenizedBuffer::Token;
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// If the current position's token matches this `Kind`, returns it and
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// advances to the next position. Otherwise returns an empty optional.
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auto ConsumeIf(TokenKind kind) -> std::optional<TokenizedBuffer::Token>;
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// Find the next token of any of the given kinds at the current bracketing
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// level.
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auto FindNextOf(std::initializer_list<TokenKind> desired_kinds)
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-> std::optional<TokenizedBuffer::Token>;
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// If the token is an opening symbol for a matched group, skips to the matched
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// closing symbol and returns true. Otherwise, returns false.
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auto SkipMatchingGroup() -> bool;
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// Skips forward to move past the likely end of a declaration or statement.
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//
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// Looks forward, skipping over any matched symbol groups, to find the next
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// position that is likely past the end of a declaration or statement. This
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// is a heuristic and should only be called when skipping past parse errors.
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//
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// The strategy for recognizing when we have likely passed the end of a
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// declaration or statement:
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// - If we get to a close curly brace, we likely ended the entire context.
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// - If we get to a semicolon, that should have ended the declaration or
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// statement.
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// - If we get to a new line from the `SkipRoot` token, but with the same or
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// less indentation, there is likely a missing semicolon. Continued
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// declarations or statements across multiple lines should be indented.
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//
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// Returns a semicolon token if one is the likely end.
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auto SkipPastLikelyEnd(TokenizedBuffer::Token skip_root)
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-> std::optional<TokenizedBuffer::Token>;
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// Skip forward to the given token. Verifies that it is actually forward.
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auto SkipTo(TokenizedBuffer::Token t) -> void;
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// Returns true if the current token satisfies the lexical validity rules
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// for an infix operator.
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auto IsLexicallyValidInfixOperator() -> bool;
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// Determines whether the current trailing operator should be treated as
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// infix.
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auto IsTrailingOperatorInfix() -> bool;
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// Diagnoses whether the current token is not written properly for the given
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// fixity. For example, because mandatory whitespace is missing. Regardless of
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// whether there's an error, it's expected that parsing continues.
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auto DiagnoseOperatorFixity(OperatorFixity fixity) -> void;
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// If the current position is a `,`, consumes it, adds the provided token, and
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// returns `Comma`. Returns `Close` if the current position is close_token
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// (for example, `)`). `CommaClose` indicates it found both (for example,
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// `,)`). Handles cases where invalid tokens are present by advancing the
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// position, and may emit errors. Pass already_has_error in order to suppress
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// duplicate errors.
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auto ConsumeListToken(ParseNodeKind comma_kind, TokenKind close_kind,
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bool already_has_error) -> ListTokenKind;
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// Gets the kind of the next token to be consumed.
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auto PositionKind() const -> TokenKind {
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return tokens_->GetKind(*position_);
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}
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// Tests whether the next token to be consumed is of the specified kind.
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auto PositionIs(TokenKind kind) const -> bool {
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return PositionKind() == kind;
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}
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// Pops the state and keeps the value for inspection.
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auto PopState() -> StateStackEntry {
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auto back = state_stack_.pop_back_val();
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CARBON_VLOG() << "Pop " << state_stack_.size() << ": " << back << "\n";
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return back;
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}
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// Pops the state and discards it.
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auto PopAndDiscardState() -> void {
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CARBON_VLOG() << "PopAndDiscard " << state_stack_.size() - 1 << ": "
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<< state_stack_.back() << "\n";
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state_stack_.pop_back();
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}
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// Pushes a new state with the current position for context.
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auto PushState(ParserState state) -> void {
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PushState(StateStackEntry(state, PrecedenceGroup::ForTopLevelExpression(),
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PrecedenceGroup::ForTopLevelExpression(),
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*position_, tree_->size()));
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}
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// Pushes a new expression state with specific precedence.
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auto PushStateForExpression(PrecedenceGroup ambient_precedence) -> void {
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PushState(StateStackEntry(ParserState::Expression, ambient_precedence,
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PrecedenceGroup::ForTopLevelExpression(),
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*position_, tree_->size()));
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}
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// Pushes a new state with detailed precedence for expression resume states.
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auto PushStateForExpressionLoop(ParserState state,
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PrecedenceGroup ambient_precedence,
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PrecedenceGroup lhs_precedence) -> void {
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PushState(StateStackEntry(state, ambient_precedence, lhs_precedence,
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*position_, tree_->size()));
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}
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// Pushes a constructed state onto the stack.
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auto PushState(StateStackEntry state) -> void {
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CARBON_VLOG() << "Push " << state_stack_.size() << ": " << state << "\n";
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state_stack_.push_back(state);
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CARBON_CHECK(state_stack_.size() < (1 << 20))
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<< "Excessive stack size: likely infinite loop";
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}
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// Returns the current declaration context according to state_stack_.
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// This is expected to be called in cases which are close to a context.
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// Although it looks like it could be O(n) for state_stack_'s depth, valid
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// parses should only need to look down a couple steps.
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//
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// This currently assumes it's being called from within the declaration's
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// DeclarationScopeLoop.
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auto GetDeclarationContext() -> DeclarationContext;
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// Propagates an error up the state stack, to the parent state.
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auto ReturnErrorOnState() -> void { state_stack_.back().has_error = true; }
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// For ParserHandlePattern, tries to consume a wrapping keyword.
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auto ConsumeIfPatternKeyword(TokenKind keyword_token,
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ParserState keyword_state, int subtree_start)
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-> void;
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// Handles error recovery in a declaration, particularly before any possible
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// definition has started (although one could be present). Recover to a
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// semicolon when it makes sense as a possible end, otherwise use the
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// introducer token for the error.
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auto RecoverFromDeclarationError(StateStackEntry state,
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ParseNodeKind parse_node_kind,
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bool skip_past_likely_end) -> void;
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auto tree() const -> const ParseTree& { return *tree_; }
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auto tokens() const -> const TokenizedBuffer& { return *tokens_; }
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auto emitter() -> TokenDiagnosticEmitter& { return *emitter_; }
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auto position() -> TokenizedBuffer::TokenIterator& { return position_; }
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auto position() const -> TokenizedBuffer::TokenIterator { return position_; }
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auto state_stack() -> llvm::SmallVector<StateStackEntry>& {
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return state_stack_;
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}
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auto state_stack() const -> const llvm::SmallVector<StateStackEntry>& {
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return state_stack_;
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}
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private:
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ParseTree* tree_;
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TokenizedBuffer* tokens_;
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TokenDiagnosticEmitter* emitter_;
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// Whether to print verbose output.
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llvm::raw_ostream* vlog_stream_;
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// The current position within the token buffer.
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TokenizedBuffer::TokenIterator position_;
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// The EndOfFile token.
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TokenizedBuffer::TokenIterator end_;
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llvm::SmallVector<StateStackEntry> state_stack_;
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};
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// `clang-format` has a bug with spacing around `->` returns in macros. See
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// https://bugs.llvm.org/show_bug.cgi?id=48320 for details.
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#define CARBON_PARSER_STATE(Name) \
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auto ParserHandle##Name(ParserContext& context)->void;
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#include "toolchain/parser/parser_state.def"
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// The diagnostics below may be emitted a couple different ways as part of
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// operator parsing.
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// TODO: Clean these up, maybe as context functions?
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CARBON_DIAGNOSTIC(
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OperatorRequiresParentheses, Error,
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"Parentheses are required to disambiguate operator precedence.");
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CARBON_DIAGNOSTIC(ExpectedSemiAfterExpression, Error,
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"Expected `;` after expression.");
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CARBON_DIAGNOSTIC(ExpectedDeclarationName, Error,
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"`{0}` introducer should be followed by a name.", TokenKind);
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CARBON_DIAGNOSTIC(ExpectedDeclarationSemiOrDefinition, Error,
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"`{0}` should either end with a `;` for a declaration or "
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"have a `{{ ... }` block for a definition.",
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TokenKind);
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} // namespace Carbon
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#endif // CARBON_TOOLCHAIN_PARSER_PARSER_CONTEXT_H_
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