Files
carbon-lang/toolchain/parser/parser_handle_expression.cpp
T
Richard SmithandChandler Carruth fc5a9541ce Update precedence rules to match design. (#3081)
- Only allow assignment at the top level in an expression statement.
- Allow both negation and complement as subexpressions of both bitwise
  and numeric operators.
- Remove parsing support for postincrement and postdecrement.
- Add parsing support for `as` operator.
- Use the same ambient precedence for types and non-type expressions.

---------

Co-authored-by: Chandler Carruth <chandlerc@gmail.com>
2023-08-10 18:39:37 +00:00

361 lines
13 KiB
C++

// Part of the Carbon Language project, under the Apache License v2.0 with LLVM
// Exceptions. See /LICENSE for license information.
// SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
#include "toolchain/parser/parser_context.h"
namespace Carbon {
static auto DiagnoseStatementOperatorAsSubexpression(ParserContext& context)
-> void {
CARBON_DIAGNOSTIC(StatementOperatorAsSubexpression, Error,
"Operator `{0}` can only be used as a complete statement.",
TokenKind);
context.emitter().Emit(*context.position(), StatementOperatorAsSubexpression,
context.PositionKind());
}
auto ParserHandleExpression(ParserContext& context) -> void {
auto state = context.PopState();
// Check for a prefix operator.
if (auto operator_precedence =
PrecedenceGroup::ForLeading(context.PositionKind())) {
if (PrecedenceGroup::GetPriority(state.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.
if (PrecedenceGroup::GetPriority(PrecedenceGroup::ForTopLevelExpression(),
*operator_precedence) ==
OperatorPriority::RightFirst) {
CARBON_DIAGNOSTIC(
UnaryOperatorRequiresParentheses, Error,
"Parentheses are required around this unary `{0}` operator.",
TokenKind);
context.emitter().Emit(*context.position(),
UnaryOperatorRequiresParentheses,
context.PositionKind());
} else {
// This operator wouldn't be allowed even if parenthesized.
DiagnoseStatementOperatorAsSubexpression(context);
}
} else {
// Check that this operator follows the proper whitespace rules.
context.DiagnoseOperatorFixity(ParserContext::OperatorFixity::Prefix);
}
if (context.PositionIs(TokenKind::If)) {
context.PushState(ParserState::IfExpressionFinish);
context.PushState(ParserState::IfExpressionFinishCondition);
} else {
context.PushStateForExpressionLoop(ParserState::ExpressionLoopForPrefix,
state.ambient_precedence,
*operator_precedence);
}
++context.position();
context.PushStateForExpression(*operator_precedence);
} else {
context.PushStateForExpressionLoop(ParserState::ExpressionLoop,
state.ambient_precedence,
PrecedenceGroup::ForPostfixExpression());
context.PushState(ParserState::ExpressionInPostfix);
}
}
auto ParserHandleExpressionInPostfix(ParserContext& context) -> void {
auto state = context.PopState();
// Continue to the loop state.
state.state = ParserState::ExpressionInPostfixLoop;
// Parses a primary expression, which is either a terminal portion of an
// expression tree, such as an identifier or literal, or a parenthesized
// expression.
switch (context.PositionKind()) {
case TokenKind::Identifier: {
context.AddLeafNode(ParseNodeKind::NameExpression, context.Consume());
context.PushState(state);
break;
}
case TokenKind::False:
case TokenKind::True:
case TokenKind::IntegerLiteral:
case TokenKind::RealLiteral:
case TokenKind::StringLiteral:
case TokenKind::Bool:
case TokenKind::IntegerTypeLiteral:
case TokenKind::UnsignedIntegerTypeLiteral:
case TokenKind::FloatingPointTypeLiteral:
case TokenKind::StringTypeLiteral:
case TokenKind::Type: {
context.AddLeafNode(ParseNodeKind::Literal, context.Consume());
context.PushState(state);
break;
}
case TokenKind::OpenCurlyBrace: {
context.PushState(state);
context.PushState(ParserState::BraceExpression);
break;
}
case TokenKind::OpenParen: {
context.PushState(state);
context.PushState(ParserState::ParenExpression);
break;
}
case TokenKind::OpenSquareBracket: {
context.PushState(state);
context.PushState(ParserState::ArrayExpression);
break;
}
case TokenKind::SelfValueIdentifier: {
context.AddLeafNode(ParseNodeKind::SelfValueName, context.Consume());
context.PushState(state);
break;
}
case TokenKind::SelfTypeIdentifier: {
context.AddLeafNode(ParseNodeKind::SelfTypeNameExpression,
context.Consume());
context.PushState(state);
break;
}
default: {
// Add a node to keep the parse tree balanced.
context.AddLeafNode(ParseNodeKind::InvalidParse, *context.position(),
/*has_error=*/true);
CARBON_DIAGNOSTIC(ExpectedExpression, Error, "Expected expression.");
context.emitter().Emit(*context.position(), ExpectedExpression);
context.ReturnErrorOnState();
break;
}
}
}
auto ParserHandleExpressionInPostfixLoop(ParserContext& context) -> void {
// This is a cyclic state that repeats, so this state is typically pushed back
// on.
auto state = context.PopState();
state.token = *context.position();
switch (context.PositionKind()) {
case TokenKind::Period: {
context.PushState(state);
state.state = ParserState::PeriodAsExpression;
context.PushState(state);
break;
}
case TokenKind::MinusGreater: {
context.PushState(state);
state.state = ParserState::ArrowExpression;
context.PushState(state);
break;
}
case TokenKind::OpenParen: {
context.PushState(state);
state.state = ParserState::CallExpression;
context.PushState(state);
break;
}
case TokenKind::OpenSquareBracket: {
context.PushState(state);
state.state = ParserState::IndexExpression;
context.PushState(state);
break;
}
default: {
if (state.has_error) {
context.ReturnErrorOnState();
}
break;
}
}
}
auto ParserHandleExpressionLoop(ParserContext& context) -> void {
auto state = context.PopState();
auto operator_kind = context.PositionKind();
auto trailing_operator = PrecedenceGroup::ForTrailing(
operator_kind, context.IsTrailingOperatorInfix());
if (!trailing_operator) {
if (state.has_error) {
context.ReturnErrorOnState();
}
return;
}
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(state.ambient_precedence,
operator_precedence) !=
OperatorPriority::RightFirst) {
// The precedence rules don't permit this operator in this context. Try
// again in the enclosing expression context.
if (state.has_error) {
context.ReturnErrorOnState();
}
return;
}
if (PrecedenceGroup::GetPriority(state.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.
if (PrecedenceGroup::GetPriority(PrecedenceGroup::ForTopLevelExpression(),
operator_precedence) ==
OperatorPriority::RightFirst) {
CARBON_DIAGNOSTIC(
OperatorRequiresParentheses, Error,
"Parentheses are required to disambiguate operator precedence.");
context.emitter().Emit(*context.position(), OperatorRequiresParentheses);
} else {
// This operator wouldn't be allowed even if parenthesized.
DiagnoseStatementOperatorAsSubexpression(context);
}
state.has_error = true;
} else {
context.DiagnoseOperatorFixity(
is_binary ? ParserContext::OperatorFixity::Infix
: ParserContext::OperatorFixity::Postfix);
}
state.token = context.Consume();
state.lhs_precedence = operator_precedence;
if (is_binary) {
if (operator_kind == TokenKind::And || operator_kind == TokenKind::Or) {
// For `and` and `or`, wrap the first operand in a virtual parse tree
// node so that semantics can insert control flow here.
context.AddNode(ParseNodeKind::ShortCircuitOperand, state.token,
state.subtree_start, state.has_error);
}
state.state = ParserState::ExpressionLoopForBinary;
context.PushState(state);
context.PushStateForExpression(operator_precedence);
} else {
context.AddNode(ParseNodeKind::PostfixOperator, state.token,
state.subtree_start, state.has_error);
state.has_error = false;
context.PushState(state);
}
}
auto ParserHandleExpressionLoopForBinary(ParserContext& context) -> void {
auto state = context.PopState();
context.AddNode(ParseNodeKind::InfixOperator, state.token,
state.subtree_start, state.has_error);
state.state = ParserState::ExpressionLoop;
state.has_error = false;
context.PushState(state);
}
auto ParserHandleExpressionLoopForPrefix(ParserContext& context) -> void {
auto state = context.PopState();
context.AddNode(ParseNodeKind::PrefixOperator, state.token,
state.subtree_start, state.has_error);
state.state = ParserState::ExpressionLoop;
state.has_error = false;
context.PushState(state);
}
auto ParserHandleIfExpressionFinishCondition(ParserContext& context) -> void {
auto state = context.PopState();
context.AddNode(ParseNodeKind::IfExpressionIf, state.token,
state.subtree_start, state.has_error);
if (context.PositionIs(TokenKind::Then)) {
context.PushState(ParserState::IfExpressionFinishThen);
context.ConsumeChecked(TokenKind::Then);
context.PushStateForExpression(*PrecedenceGroup::ForLeading(TokenKind::If));
} else {
// TODO: Include the location of the `if` token.
CARBON_DIAGNOSTIC(ExpectedThenAfterIf, Error,
"Expected `then` after `if` condition.");
if (!state.has_error) {
context.emitter().Emit(*context.position(), ExpectedThenAfterIf);
}
// Add placeholders for `IfExpressionThen` and final `Expression`.
context.AddLeafNode(ParseNodeKind::InvalidParse, *context.position(),
/*has_error=*/true);
context.AddLeafNode(ParseNodeKind::InvalidParse, *context.position(),
/*has_error=*/true);
context.ReturnErrorOnState();
}
}
auto ParserHandleIfExpressionFinishThen(ParserContext& context) -> void {
auto state = context.PopState();
context.AddNode(ParseNodeKind::IfExpressionThen, state.token,
state.subtree_start, state.has_error);
if (context.PositionIs(TokenKind::Else)) {
context.PushState(ParserState::IfExpressionFinishElse);
context.ConsumeChecked(TokenKind::Else);
context.PushStateForExpression(*PrecedenceGroup::ForLeading(TokenKind::If));
} else {
// TODO: Include the location of the `if` token.
CARBON_DIAGNOSTIC(ExpectedElseAfterIf, Error,
"Expected `else` after `if ... then ...`.");
if (!state.has_error) {
context.emitter().Emit(*context.position(), ExpectedElseAfterIf);
}
// Add placeholder for the final `Expression`.
context.AddLeafNode(ParseNodeKind::InvalidParse, *context.position(),
/*has_error=*/true);
context.ReturnErrorOnState();
}
}
auto ParserHandleIfExpressionFinishElse(ParserContext& context) -> void {
auto else_state = context.PopState();
// Propagate the location of `else`.
auto if_state = context.PopState();
if_state.token = else_state.token;
if_state.has_error |= else_state.has_error;
context.PushState(if_state);
}
auto ParserHandleIfExpressionFinish(ParserContext& context) -> void {
auto state = context.PopState();
context.AddNode(ParseNodeKind::IfExpressionElse, state.token,
state.subtree_start, state.has_error);
}
auto ParserHandleExpressionStatementFinish(ParserContext& context) -> void {
auto state = context.PopState();
if (auto semi = context.ConsumeIf(TokenKind::Semi)) {
context.AddNode(ParseNodeKind::ExpressionStatement, *semi,
state.subtree_start, state.has_error);
return;
}
if (!state.has_error) {
CARBON_DIAGNOSTIC(ExpectedExpressionSemi, Error,
"Expected `;` after expression statement.");
context.emitter().Emit(*context.position(), ExpectedExpressionSemi);
}
if (auto semi_token = context.SkipPastLikelyEnd(state.token)) {
context.AddNode(ParseNodeKind::ExpressionStatement, *semi_token,
state.subtree_start,
/*has_error=*/true);
return;
}
// Found junk not even followed by a `;`, no node to add.
context.ReturnErrorOnState();
}
} // namespace Carbon