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Carbon currently requires a comment to be the only non-whitespace on its line. A `//` comment that follows other content on a line, called a _trailing comment_, is a lexer error. This proposal removes that restriction, allowing a comment to follow other content on a line. Everything else about comments is unchanged: a comment still begins with `//`, still requires whitespace after the `//`, and still runs to the end of the line. Carbon continues to provide only line comments; no block or intra-line comments are added. Three observations motivate the change. First, trailing comments are well suited to short _annotations_ attached to a specific entity or value on a line. Second, the lexer design now makes it trivial to lex trailing comments, and in fact requires extra logic and potentially cost to reject them. Third, C++ code routinely uses trailing comments, so allowing them lets Carbon carry the layout of migrated code over directly, rather than reworking each comment to read well in a different structure. Implementation notes (beyond the proposal's design): Keeping trailing comments cheap to lex required a few supporting changes, all of which keep the cost off the lexer's hot path: - The lexer already dispatches `//` to comment lexing wherever it appears, so classifying a comment as trailing is a single O(1) check of whether the `//` is the line's first non-whitespace (`start + indent`). The hot comment path is otherwise unchanged. - That check relies on each line's recorded indentation being its real leading whitespace. Multi-line string literals previously recorded the column where the literal opened for the lines they span; they now record the true (closing-delimiter) indentation instead. - Parser error recovery (`SkipPastLikelyEnd`) had relied on that opening-column indentation to keep tokens following a multi-line string literal attached to the same construct. It now reconstructs that relationship directly by consulting the line on which the literal opened, including when other tokens follow the closing delimiter (such as `''' + "more"`). This is on the cold recovery path. - `CommentData` records the trailing bit in the high bit of its length field, keeping it at 8 bytes. Assisted-by: Claude Code
528 lines
20 KiB
C++
528 lines
20 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/lex/tokenized_buffer.h"
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#include <algorithm>
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#include <cmath>
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#include <iterator>
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#include <optional>
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#include <utility>
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#include "common/check.h"
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#include "common/string_helpers.h"
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#include "llvm/ADT/StringRef.h"
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#include "llvm/Support/Format.h"
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#include "llvm/Support/FormatVariadic.h"
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#include "toolchain/base/shared_value_stores.h"
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#include "toolchain/base/value_store_impl.h"
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#include "toolchain/diagnostics/emitter.h"
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#include "toolchain/lex/character_set.h"
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#include "toolchain/lex/numeric_literal.h"
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#include "toolchain/lex/string_literal.h"
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namespace Carbon::Lex {
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auto TokenizedBuffer::GetLine(TokenIndex token) const -> LineIndex {
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return FindLineIndex(token_infos_.Get(token).byte_offset());
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}
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auto TokenizedBuffer::GetLineNumber(TokenIndex token) const -> int {
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return GetLine(token).index + 1;
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}
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auto TokenizedBuffer::GetColumnNumber(TokenIndex token) const -> int {
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const auto& token_info = token_infos_.Get(token);
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const auto& line_info =
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line_infos_.Get(FindLineIndex(token_info.byte_offset()));
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return token_info.byte_offset() - line_info.start + 1;
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}
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auto TokenizedBuffer::GetEndLoc(TokenIndex token) const
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-> std::pair<LineIndex, int> {
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auto line = GetLine(token);
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int column = GetColumnNumber(token);
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auto token_text = GetTokenText(token);
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if (auto [before_newline, after_newline] = token_text.rsplit('\n');
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before_newline.size() == token_text.size()) {
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// Token fits on one line, advance the column number.
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column += before_newline.size();
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} else {
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// Token contains newlines.
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line.index += before_newline.count('\n') + 1;
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column = 1 + after_newline.size();
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}
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return {line, column};
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}
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auto TokenizedBuffer::GetTokenText(TokenIndex token) const -> llvm::StringRef {
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const auto& token_info = token_infos_.Get(token);
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llvm::StringRef fixed_spelling = token_info.kind().fixed_spelling();
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if (!fixed_spelling.empty()) {
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return fixed_spelling;
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}
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if (token_info.kind() == TokenKind::Error) {
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return source_->text().substr(token_info.byte_offset(),
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token_info.error_length());
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}
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// Refer back to the source text to preserve oddities like radix or digit
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// separators the author included.
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if (token_info.kind() == TokenKind::IntLiteral ||
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token_info.kind() == TokenKind::RealLiteral) {
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std::optional<NumericLiteral> relexed_token =
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NumericLiteral::Lex(source_->text().substr(token_info.byte_offset()),
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token_info.kind() == TokenKind::RealLiteral);
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CARBON_CHECK(relexed_token, "Could not reform numeric literal token.");
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return relexed_token->text();
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}
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// Refer back to the source text to find the original spelling, including
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// escape sequences etc.
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if (token_info.kind() == TokenKind::StringLiteral ||
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token_info.kind() == TokenKind::CharLiteral) {
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std::optional<StringLiteral> relexed_token =
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StringLiteral::Lex(source_->text().substr(token_info.byte_offset()));
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CARBON_CHECK(relexed_token, "Could not reform string literal token.");
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return relexed_token->text();
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}
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// Refer back to the source text to avoid needing to reconstruct the
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// spelling from the size.
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if (token_info.kind().is_sized_type_literal()) {
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llvm::StringRef suffix = source_->text()
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.substr(token_info.byte_offset() + 1)
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.take_while(IsDecimalDigit);
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return llvm::StringRef(suffix.data() - 1, suffix.size() + 1);
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}
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if (token_info.kind() == TokenKind::FileStart ||
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token_info.kind() == TokenKind::FileEnd) {
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return llvm::StringRef();
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}
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CARBON_CHECK(token_info.kind() == TokenKind::Identifier, "{0}",
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token_info.kind());
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// If this is a raw identifier, obtain its spelling from the source text.
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auto ident = value_stores_->identifiers().Get(token_info.ident_id());
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if (IsRawIdentifier(token)) {
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llvm::StringRef raw_ident =
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source_->text().substr(token_info.byte_offset(), ident.size() + 2);
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CARBON_CHECK(raw_ident[0] == 'r' && raw_ident[1] == '#' &&
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raw_ident.substr(2) == ident,
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"`{0}` != `r#` + `{1}`", raw_ident, ident);
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return raw_ident;
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}
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return ident;
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}
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auto TokenizedBuffer::GetIdentifier(TokenIndex token) const -> IdentifierId {
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const auto& token_info = token_infos_.Get(token);
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CARBON_CHECK(token_info.kind() == TokenKind::Identifier, "{0}",
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token_info.kind());
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return token_info.ident_id();
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}
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auto TokenizedBuffer::GetIntLiteral(TokenIndex token) const -> IntId {
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const auto& token_info = token_infos_.Get(token);
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CARBON_CHECK(token_info.kind() == TokenKind::IntLiteral, "{0}",
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token_info.kind());
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return token_info.int_id();
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}
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auto TokenizedBuffer::GetRealLiteral(TokenIndex token) const -> RealId {
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const auto& token_info = token_infos_.Get(token);
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CARBON_CHECK(token_info.kind() == TokenKind::RealLiteral, "{0}",
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token_info.kind());
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return token_info.real_id();
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}
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auto TokenizedBuffer::GetStringLiteralValue(TokenIndex token) const
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-> StringLiteralValueId {
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const auto& token_info = token_infos_.Get(token);
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CARBON_CHECK(token_info.kind() == TokenKind::StringLiteral, "{0}",
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token_info.kind());
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return token_info.string_literal_id();
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}
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auto TokenizedBuffer::GetCharLiteralValue(TokenIndex token) const
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-> CharLiteralValue {
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const auto& token_info = token_infos_.Get(token);
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CARBON_CHECK(token_info.kind() == TokenKind::CharLiteral, "{0}",
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token_info.kind());
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return token_info.char_literal();
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}
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auto TokenizedBuffer::GetTypeLiteralSize(TokenIndex token) const -> IntId {
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const auto& token_info = token_infos_.Get(token);
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CARBON_CHECK(token_info.kind().is_sized_type_literal(), "{0}",
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token_info.kind());
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return token_info.int_id();
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}
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auto TokenizedBuffer::GetMatchedClosingToken(TokenIndex opening_token) const
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-> TokenIndex {
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const auto& opening_token_info = token_infos_.Get(opening_token);
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CARBON_CHECK(opening_token_info.kind().is_opening_symbol(), "{0}",
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opening_token_info.kind());
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return opening_token_info.closing_token_index();
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}
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auto TokenizedBuffer::GetMatchedOpeningToken(TokenIndex closing_token) const
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-> TokenIndex {
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const auto& closing_token_info = token_infos_.Get(closing_token);
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CARBON_CHECK(closing_token_info.kind().is_closing_symbol(), "{0}",
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closing_token_info.kind());
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return closing_token_info.opening_token_index();
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}
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auto TokenizedBuffer::IsRawIdentifier(TokenIndex token) const -> bool {
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const auto& token_info = token_infos_.Get(token);
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if (token_info.kind() != TokenKind::Identifier) {
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return false;
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}
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// Check if the spelling starts `r#`. A small nuance here: we also need to
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// check the character after the `#` is an identifier start character, because
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// `r#<non-identifier-character>` is lexed as an `r` token followed by a token
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// starting with `#`. It suffices to check that character is the first
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// character of the identifier.
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auto token_text = source_->text().substr(token_info.byte_offset());
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return token_text.size() > 2 && token_text.starts_with("r#") &&
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token_text[2] ==
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value_stores_->identifiers().Get(token_info.ident_id()).front();
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}
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auto TokenizedBuffer::IsRecoveryToken(TokenIndex token) const -> bool {
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if (recovery_tokens_.empty()) {
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return false;
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}
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return recovery_tokens_[token.index];
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}
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auto TokenizedBuffer::AddPostLexingRecoveryTokenAsIdentifier(TokenIndex token)
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-> TokenIndex {
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auto kind = GetKind(token);
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CARBON_CHECK(kind.is_word(),
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"Invalid token kind {0} for recovery as identifier", kind);
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CARBON_CHECK(kind != TokenKind::Identifier, "Recovery not required");
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auto identifier_id = value_stores_->identifiers().Add(GetTokenText(token));
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return AddPostLexingRecoveryToken(
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token_infos_.Get(token).AsErrorRecoveryIdentifier(identifier_id));
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}
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auto TokenizedBuffer::AddPostLexingRecoveryToken(TokenInfo info) -> TokenIndex {
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// Only resize once to avoid quadratic behavior if lots of recovery tokens are
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// added.
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if (recovery_tokens_.empty()) {
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recovery_tokens_.resize(token_infos_.size());
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}
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auto token = token_infos_.Add(info);
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recovery_tokens_.push_back(true);
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++post_lexing_recovery_tokens_;
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return token;
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}
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auto TokenizedBuffer::GetIndentColumnNumber(LineIndex line) const -> int {
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return line_infos_.Get(line).indent + 1;
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}
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auto TokenizedBuffer::PrintWidths::Widen(const PrintWidths& widths) -> void {
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index = std::max(widths.index, index);
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kind = std::max(widths.kind, kind);
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column = std::max(widths.column, column);
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line = std::max(widths.line, line);
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indent = std::max(widths.indent, indent);
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}
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// Compute the printed width of a number. When numbers are printed in decimal,
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// the number of digits needed is one more than the log-base-10 of the
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// value. We handle a value of `zero` explicitly.
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//
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// This routine requires its argument to be *non-negative*.
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static auto ComputeDecimalPrintedWidth(int number) -> int {
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CARBON_CHECK(number >= 0, "Negative numbers are not supported.");
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if (number == 0) {
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return 1;
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}
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return static_cast<int>(std::log10(number)) + 1;
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}
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auto TokenizedBuffer::GetTokenPrintWidths(TokenIndex token) const
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-> PrintWidths {
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PrintWidths widths = {};
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widths.index = ComputeDecimalPrintedWidth(token_infos_.size());
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widths.kind = GetKind(token).name().size();
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widths.line = ComputeDecimalPrintedWidth(GetLineNumber(token));
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widths.column = ComputeDecimalPrintedWidth(GetColumnNumber(token));
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widths.indent =
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ComputeDecimalPrintedWidth(GetIndentColumnNumber(GetLine(token)));
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return widths;
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}
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auto TokenizedBuffer::Print(llvm::raw_ostream& output_stream,
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bool omit_file_boundary_tokens) const -> void {
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output_stream << "- filename: " << source_->filename() << "\n"
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<< " tokens:\n";
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PrintWidths widths = {};
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widths.index = ComputeDecimalPrintedWidth((token_infos_.size()));
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for (TokenIndex token : tokens()) {
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widths.Widen(GetTokenPrintWidths(token));
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}
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for (TokenIndex token : tokens()) {
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if (omit_file_boundary_tokens) {
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auto kind = GetKind(token);
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if (kind == TokenKind::FileStart || kind == TokenKind::FileEnd) {
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continue;
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}
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}
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PrintToken(output_stream, token, widths);
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output_stream << "\n";
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}
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if (has_include_in_dumps_) {
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output_stream << " has_include_in_dumps: true\n";
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}
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if (!dump_sem_ir_ranges_.empty()) {
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output_stream << " dump_sem_ir_ranges:\n";
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for (auto range : dump_sem_ir_ranges_) {
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output_stream << " - {begin: " << range.begin.index
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<< ", end: " << range.end.index << "}\n";
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}
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}
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}
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auto TokenizedBuffer::PrintToken(llvm::raw_ostream& output_stream,
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TokenIndex token) const -> void {
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PrintToken(output_stream, token, {});
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}
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auto TokenizedBuffer::PrintToken(llvm::raw_ostream& output_stream,
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TokenIndex token, PrintWidths widths) const
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-> void {
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widths.Widen(GetTokenPrintWidths(token));
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int token_index = token.index;
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const auto& token_info = token_infos_.Get(token);
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LineIndex line_index = FindLineIndex(token_info.byte_offset());
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llvm::StringRef token_text = GetTokenText(token);
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// Output the main chunk using one format string. We have to do the
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// justification manually in order to use the dynamically computed widths
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// and get the quotes included.
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output_stream << llvm::formatv(
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" - { index: {0}, kind: {1}, line: {2}, column: {3}, indent: {4}, "
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"spelling: \"{5}\"",
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llvm::format_decimal(token_index, widths.index),
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llvm::right_justify(
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llvm::formatv("\"{0}\"", token_info.kind().name()).str(),
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widths.kind + 2),
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llvm::format_decimal(GetLineNumber(token), widths.line),
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llvm::format_decimal(GetColumnNumber(token), widths.column),
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llvm::format_decimal(GetIndentColumnNumber(line_index), widths.indent),
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FormatEscaped(token_text, /*use_hex_escapes=*/true));
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switch (token_info.kind()) {
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case TokenKind::Identifier:
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output_stream << ", identifier: " << GetIdentifier(token).index;
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break;
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case TokenKind::IntLiteral:
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output_stream << ", value: \"";
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value_stores_->ints()
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.Get(GetIntLiteral(token))
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.print(output_stream, /*isSigned=*/false);
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output_stream << "\"";
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break;
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case TokenKind::RealLiteral:
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output_stream << ", value: \""
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<< value_stores_->reals().Get(GetRealLiteral(token))
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<< "\"";
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break;
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case TokenKind::StringLiteral:
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output_stream << ", value: \""
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<< FormatEscaped(value_stores_->string_literal_values().Get(
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GetStringLiteralValue(token)),
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/*use_hex_escapes=*/true)
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<< "\"";
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break;
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default:
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if (token_info.kind().is_opening_symbol()) {
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output_stream << ", closing_token: "
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<< GetMatchedClosingToken(token).index;
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} else if (token_info.kind().is_closing_symbol()) {
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output_stream << ", opening_token: "
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<< GetMatchedOpeningToken(token).index;
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}
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break;
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}
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if (token_info.has_leading_space()) {
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output_stream << ", has_leading_space: true";
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}
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if (IsRecoveryToken(token)) {
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output_stream << ", recovery: true";
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}
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output_stream << " }";
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}
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// Find the line index corresponding to a specific byte offset within the source
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// text for this tokenized buffer.
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//
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// This takes advantage of the lines being sorted by their starting byte offsets
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// to do a binary search for the line that contains the provided offset.
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auto TokenizedBuffer::FindLineIndex(int32_t byte_offset) const -> LineIndex {
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CARBON_DCHECK(line_infos_.size() > 0);
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auto line_range = line_infos_.values();
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auto line_it =
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llvm::partition_point(line_range, [byte_offset](LineInfo line_info) {
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return line_info.start <= byte_offset;
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});
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--line_it;
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// If this isn't the first line but it starts past the end of the source, then
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// this is a synthetic line added for simplicity of lexing. Step back one
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// further to find the last non-synthetic line.
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if (line_it != line_range.begin() &&
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line_it->start == static_cast<int32_t>(source_->text().size())) {
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--line_it;
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}
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CARBON_DCHECK(line_it->start <= byte_offset);
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return LineIndex(line_it - line_range.begin());
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}
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auto TokenizedBuffer::IsAfterComment(TokenIndex token,
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CommentIndex comment_index) const -> bool {
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const auto& comment_data = comments_.Get(comment_index);
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return token_infos_.Get(token).byte_offset() > comment_data.start;
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}
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auto TokenizedBuffer::GetCommentText(CommentIndex comment_index) const
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-> llvm::StringRef {
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const auto& comment_data = comments_.Get(comment_index);
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return source_->text().substr(comment_data.start, comment_data.length);
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}
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auto TokenizedBuffer::IsTrailingComment(CommentIndex comment_index) const
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-> bool {
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return comments_.Get(comment_index).is_trailing;
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}
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auto TokenizedBuffer::AddComment(int32_t indent, int32_t start, int32_t end,
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bool is_trailing) -> void {
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// A comment runs forward from its start, and its length is stored in 31 bits
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// (the high bit holds `is_trailing`). A non-negative byte offset always fits
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// in 31 bits because the source size is bounded by `INT32_MAX`.
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CARBON_DCHECK(start <= end);
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// A block of identical full-line comments is coalesced into a single comment.
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// A trailing comment is always standalone: it never extends a preceding
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// comment, nor is it extended by a following one.
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if (!is_trailing && comments_.size() > 0) {
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auto& comment = comments_.Get(CommentIndex(comments_.size() - 1));
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if (!comment.is_trailing &&
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comment.start + comment.length + indent == start) {
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CARBON_DCHECK(comment.start <= end);
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comment.length = end - comment.start;
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return;
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}
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}
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comments_.Add({.start = start,
|
|
.length = static_cast<uint32_t>(end - start),
|
|
.is_trailing = is_trailing});
|
|
}
|
|
|
|
auto TokenizedBuffer::CollectMemUsage(MemUsage& mem_usage,
|
|
llvm::StringRef label) const -> void {
|
|
mem_usage.Collect(MemUsage::ConcatLabel(label, "allocator_"), allocator_);
|
|
mem_usage.Collect(MemUsage::ConcatLabel(label, "token_infos_"), token_infos_);
|
|
mem_usage.Collect(MemUsage::ConcatLabel(label, "line_infos_"), line_infos_);
|
|
mem_usage.Collect(MemUsage::ConcatLabel(label, "comments_"), comments_);
|
|
}
|
|
|
|
auto TokenizedBuffer::SourcePointerToDiagnosticLoc(const char* loc) const
|
|
-> Diagnostics::ConvertedLoc {
|
|
CARBON_CHECK(StringRefContainsPointer(source_->text(), loc),
|
|
"location not within buffer");
|
|
int32_t offset = loc - source_->text().begin();
|
|
|
|
auto line_range = line_infos_.values();
|
|
|
|
// Find the first line starting after the given location.
|
|
const auto next_line_it = llvm::partition_point(
|
|
line_range,
|
|
[offset](const LineInfo& line) { return line.start <= offset; });
|
|
|
|
// Step back one line to find the line containing the given position.
|
|
CARBON_CHECK(next_line_it != line_range.begin(),
|
|
"location precedes the start of the first line");
|
|
const auto line_it = std::prev(next_line_it);
|
|
int line_number = line_it - line_range.begin();
|
|
int column_number = offset - line_it->start;
|
|
|
|
// Grab the line from the buffer by slicing from this line to the next
|
|
// minus the newline. When on the last line, instead use the start to the end
|
|
// of the buffer.
|
|
llvm::StringRef text = source_->text();
|
|
llvm::StringRef line = next_line_it != line_range.end()
|
|
? text.slice(line_it->start, next_line_it->start)
|
|
: text.substr(line_it->start);
|
|
|
|
// Remove a newline at the end of the line if present.
|
|
// TODO: This should expand to remove all vertical whitespace bytes at the
|
|
// tail of the line such as CR+LF, etc.
|
|
line.consume_back("\n");
|
|
|
|
return {.loc = {.filename = source_->filename(),
|
|
.line = line,
|
|
.line_number = line_number + 1,
|
|
.column_number = column_number + 1},
|
|
.last_byte_offset = offset};
|
|
}
|
|
|
|
auto TokenizedBuffer::TokenToDiagnosticLoc(TokenIndex token) const
|
|
-> Diagnostics::ConvertedLoc {
|
|
// Map the token location into a position within the source buffer.
|
|
const char* token_start =
|
|
source_->text().begin() + token_infos_.Get(token).byte_offset();
|
|
|
|
// Find the corresponding file location.
|
|
// TODO: Should we somehow indicate in the diagnostic location if this token
|
|
// is a recovery token that doesn't correspond to the original source?
|
|
auto converted = SourcePointerToDiagnosticLoc(token_start);
|
|
converted.loc.length = GetTokenText(token).size();
|
|
return converted;
|
|
}
|
|
|
|
auto TokenizedBuffer::OverlapsWithDumpSemIRRange(
|
|
Lex::InclusiveTokenRange range) const -> bool {
|
|
CARBON_CHECK(!dump_sem_ir_ranges_.empty());
|
|
|
|
// Ranges are ordered, so we can decide overlap as soon as we find a range
|
|
// that ends after `begin`.
|
|
for (auto dump_range : dump_sem_ir_ranges_) {
|
|
if (dump_range.end >= range.begin) {
|
|
return dump_range.begin <= range.end;
|
|
}
|
|
}
|
|
return false;
|
|
}
|
|
|
|
} // namespace Carbon::Lex
|
|
|
|
namespace Carbon {
|
|
template class ValueStore<Lex::TokenIndex, Lex::TokenInfo>;
|
|
template class ValueStore<Lex::LineIndex, Lex::LineInfo>;
|
|
template class ValueStore<Lex::CommentIndex, Lex::CommentData>;
|
|
} // namespace Carbon
|