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What this really does is avoids shadowing names, so that we can comfortable have things like `Check::DiagnosticEmitter` or `Check::DiagnosticLoc` without shadowing being a concern. Note, down this path I'm also thinking about: - Renaming misc DiagnosticConsumer/DiagnosticEmitter classes, possibly just to DiagnosticConsumer/DiagnosticEmitter (so `Check::DiagnosticEmitter` instead of `SemIRLocDiagnosticEmitter`). - Dropping `Diagnostic` from `Emitter::DiagnosticBuilder`. - But not for `Check::DiagnosticBuilder`, because `Check::Builder` would be ambiguous. - Renaming diagnostics/diagnostic_* to drop "diagnostic". [Discussion about SemIRLoc -> DiagnosticLoc](https://discord.com/channels/655572317891461132/655578254970716160/1353771570463768698) reminded me of this (in particular the older [Check::DiagnosticBuilder discussion](https://discord.com/channels/655572317891461132/655578254970716160/1344363562608627763)), but I'd only do that rename if there's matching consensus about a path forward where we keep SemIRLoc, and in a way that it's only ever used for diagnostics (the divergence from which is at the root of current LocId discussion). I'm trying to keep that separate from a namespace addition for clarity.
532 lines
20 KiB
C++
532 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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#ifndef CARBON_TOOLCHAIN_LEX_TOKENIZED_BUFFER_H_
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#define CARBON_TOOLCHAIN_LEX_TOKENIZED_BUFFER_H_
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#include <cstdint>
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#include "common/ostream.h"
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#include "llvm/ADT/APInt.h"
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#include "llvm/ADT/SmallVector.h"
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#include "llvm/ADT/StringRef.h"
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#include "llvm/ADT/iterator_range.h"
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#include "llvm/Support/Allocator.h"
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#include "llvm/Support/raw_ostream.h"
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#include "toolchain/base/index_base.h"
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#include "toolchain/base/mem_usage.h"
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#include "toolchain/base/shared_value_stores.h"
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#include "toolchain/diagnostics/diagnostic_emitter.h"
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#include "toolchain/lex/token_index.h"
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#include "toolchain/lex/token_kind.h"
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#include "toolchain/source/source_buffer.h"
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namespace Carbon::Lex {
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class TokenizedBuffer;
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// A lightweight handle to a lexed line in a `TokenizedBuffer`.
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//
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// `LineIndex` objects are designed to be passed by value, not reference or
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// pointer. They are also designed to be small and efficient to store in data
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// structures.
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//
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// Each `LineIndex` object refers to a specific line in the source code that was
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// lexed. They can be compared directly to establish that they refer to the
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// same line or the relative position of different lines within the source.
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//
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// All other APIs to query a `LineIndex` are on the `TokenizedBuffer`.
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struct LineIndex : public IndexBase<LineIndex> {
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static constexpr llvm::StringLiteral Label = "line";
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static const LineIndex None;
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using IndexBase::IndexBase;
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};
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constexpr LineIndex LineIndex::None(NoneIndex);
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// Indices for comments within the buffer.
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struct CommentIndex : public IndexBase<CommentIndex> {
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static constexpr llvm::StringLiteral Label = "comment";
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static const CommentIndex None;
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using IndexBase::IndexBase;
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};
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constexpr CommentIndex CommentIndex::None(NoneIndex);
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// Random-access iterator over comments within the buffer.
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using CommentIterator = IndexIterator<CommentIndex>;
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// Random-access iterator over tokens within the buffer.
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using TokenIterator = IndexIterator<TokenIndex>;
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// A buffer of tokenized Carbon source code.
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//
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// This is constructed by lexing the source code text into a series of tokens.
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// The buffer provides lightweight handles to tokens and other lexed entities,
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// as well as iterations to walk the sequence of tokens found in the buffer.
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//
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// Lexing errors result in a potentially incomplete sequence of tokens and
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// `HasError` returning true.
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class TokenizedBuffer : public Printable<TokenizedBuffer> {
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public:
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// A comment, which can be a block of lines.
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//
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// This is the API version of `CommentData`.
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struct CommentInfo {
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// The comment's full text, including `//` symbols. This may have several
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// lines for block comments.
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llvm::StringRef text;
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// The comment's indent.
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int32_t indent;
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// The first line of the comment.
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LineIndex start_line;
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};
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auto GetKind(TokenIndex token) const -> TokenKind;
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auto GetLine(TokenIndex token) const -> LineIndex;
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// Returns the 1-based line number.
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auto GetLineNumber(TokenIndex token) const -> int;
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// Returns the 1-based column number.
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auto GetColumnNumber(TokenIndex token) const -> int;
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// Returns the line and 1-based column number of the first character after
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// this token.
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auto GetEndLoc(TokenIndex token) const -> std::pair<LineIndex, int>;
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// Returns the source text lexed into this token.
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auto GetTokenText(TokenIndex token) const -> llvm::StringRef;
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// Returns the identifier associated with this token. The token kind must be
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// an `Identifier`.
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auto GetIdentifier(TokenIndex token) const -> IdentifierId;
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// Returns the value of an `IntLiteral()` token.
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auto GetIntLiteral(TokenIndex token) const -> IntId;
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// Returns the value of an `RealLiteral()` token.
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auto GetRealLiteral(TokenIndex token) const -> RealId;
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// Returns the value of a `StringLiteral()` token.
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auto GetStringLiteralValue(TokenIndex token) const -> StringLiteralValueId;
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// Returns the size specified in a `*TypeLiteral()` token.
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auto GetTypeLiteralSize(TokenIndex token) const -> IntId;
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// Returns the closing token matched with the given opening token.
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//
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// The given token must be an opening token kind.
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auto GetMatchedClosingToken(TokenIndex opening_token) const -> TokenIndex;
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// Returns the opening token matched with the given closing token.
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//
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// The given token must be a closing token kind.
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auto GetMatchedOpeningToken(TokenIndex closing_token) const -> TokenIndex;
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// Returns whether the given token has leading whitespace.
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auto HasLeadingWhitespace(TokenIndex token) const -> bool;
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// Returns whether the given token has trailing whitespace.
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auto HasTrailingWhitespace(TokenIndex token) const -> bool;
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// Returns whether the token was created as part of an error recovery effort.
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//
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// For example, a closing paren inserted to match an unmatched paren.
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auto IsRecoveryToken(TokenIndex token) const -> bool;
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// Returns the 1-based indentation column number.
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auto GetIndentColumnNumber(LineIndex line) const -> int;
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// Returns the next line handle.
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auto GetNextLine(LineIndex line) const -> LineIndex;
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// Returns the previous line handle.
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auto GetPrevLine(LineIndex line) const -> LineIndex;
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auto GetByteOffset(TokenIndex token) const -> int32_t {
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return GetTokenInfo(token).byte_offset();
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}
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// Returns true if the token comes after the comment.
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auto IsAfterComment(TokenIndex token, CommentIndex comment_index) const
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-> bool;
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// Returns the comment's full text range.
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auto GetCommentText(CommentIndex comment_index) const -> llvm::StringRef;
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// Returns tokens as YAML. This prints the tracked token information on a
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// single line for each token. We use the single-line format so that output is
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// compact, and so that tools like `grep` are compatible.
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//
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// An example token looks like:
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//
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// - { index: 1, kind: 'Semi', line: 1, column: 1, indent: 1, spelling: ';' }
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auto Print(llvm::raw_ostream& out,
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bool omit_file_boundary_tokens = false) const -> void;
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// Prints a description of a single token. See `Print` for details on the
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// format.
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auto PrintToken(llvm::raw_ostream& output_stream, TokenIndex token) const
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-> void;
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// Collects memory usage of members.
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auto CollectMemUsage(MemUsage& mem_usage, llvm::StringRef label) const
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-> void;
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// Converts a token to a diagnostic location.
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auto TokenToDiagnosticLoc(TokenIndex token) const
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-> Diagnostics::ConvertedLoc;
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// Returns true if the buffer has errors that were detected at lexing time.
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auto has_errors() const -> bool { return has_errors_; }
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auto tokens() const -> llvm::iterator_range<TokenIterator> {
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return llvm::make_range(TokenIterator(TokenIndex(0)),
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TokenIterator(TokenIndex(token_infos_.size())));
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}
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auto size() const -> int { return token_infos_.size(); }
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auto comments() const -> llvm::iterator_range<CommentIterator> {
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return llvm::make_range(CommentIterator(CommentIndex(0)),
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CommentIterator(CommentIndex(comments_.size())));
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}
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auto comments_size() const -> size_t { return comments_.size(); }
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// This is an upper bound on the number of output parse nodes in the absence
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// of errors.
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auto expected_max_parse_tree_size() const -> int {
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return expected_max_parse_tree_size_;
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}
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auto source() const -> const SourceBuffer& { return *source_; }
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private:
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friend class Lexer;
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class SourcePointerDiagnosticEmitter
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: public Diagnostics::Emitter<const char*> {
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public:
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explicit SourcePointerDiagnosticEmitter(Diagnostics::Consumer* consumer,
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const TokenizedBuffer* tokens)
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: Emitter(consumer), tokens_(tokens) {}
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protected:
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auto ConvertLoc(const char* loc, ContextFnT /*context_fn*/) const
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-> Diagnostics::ConvertedLoc override {
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return tokens_->SourcePointerToDiagnosticLoc(loc);
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}
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private:
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const TokenizedBuffer* tokens_;
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};
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class TokenDiagnosticEmitter : public Diagnostics::Emitter<TokenIndex> {
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public:
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explicit TokenDiagnosticEmitter(Diagnostics::Consumer* consumer,
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const TokenizedBuffer* tokens)
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: Emitter(consumer), tokens_(tokens) {}
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protected:
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auto ConvertLoc(TokenIndex token, ContextFnT /*context_fn*/) const
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-> Diagnostics::ConvertedLoc override {
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return tokens_->TokenToDiagnosticLoc(token);
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}
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private:
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const TokenizedBuffer* tokens_;
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};
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// Converts a pointer into the source to a diagnostic location.
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auto SourcePointerToDiagnosticLoc(const char* loc) const
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-> Diagnostics::ConvertedLoc;
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// Specifies minimum widths to use when printing a token's fields via
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// `printToken`.
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struct PrintWidths {
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// Widens `this` to the maximum of `this` and `new_width` for each
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// dimension.
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auto Widen(const PrintWidths& widths) -> void;
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int index;
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int kind;
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int line;
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int column;
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int indent;
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};
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// Storage for the information about a specific token in the buffer.
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//
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// This provides a friendly accessor API to the carefully space-optimized
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// storage model of the information we associated with each token.
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//
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// There are four pieces of information stored here:
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// - The kind of the token.
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// - Whether that token has leading whitespace before it.
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// - A kind-specific payload that can be compressed into a small integer.
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// - This class provides dedicated accessors for each different form of
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// payload that check the kind and payload correspond correctly.
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// - A 32-bit byte offset of the token within the source text.
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//
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// These are compressed and stored in 8-bytes for each token.
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//
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// Note that while the class provides some limited setters for payloads and
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// mutating methods, setters on this type may be unexpectedly expensive due to
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// the bit-packed representation and should be avoided. As such, only the
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// minimal necessary setters are provided.
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//
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// TODO: It might be worth considering a struct-of-arrays data layout in order
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// to move the byte offset to a separate array from the rest as it is only hot
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// during lexing, and then cold during parsing and semantic analysis. However,
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// a trivial approach to that adds more overhead than it saves due to tracking
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// two separate vectors and their growth. Making this profitable would likely
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// at least require a highly specialized single vector that manages the growth
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// once and then provides separate storage areas for the two arrays.
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class TokenInfo {
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public:
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// The kind for this token.
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auto kind() const -> TokenKind { return kind_; }
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// Whether this token is preceded by whitespace. We only store the preceding
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// state, and look at the next token to check for trailing whitespace.
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auto has_leading_space() const -> bool { return has_leading_space_; }
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// A collection of methods to access the specific payload included with
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// particular kinds of tokens. Only the specific payload accessor below may
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// be used for an info entry of a token with a particular kind, and these
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// check that the kind is valid. Some tokens do not include a payload at all
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// and none of these methods may be called.
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auto ident_id() const -> IdentifierId {
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CARBON_DCHECK(kind() == TokenKind::Identifier);
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return IdentifierId(token_payload_);
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}
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auto set_ident_id(IdentifierId ident_id) -> void {
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CARBON_DCHECK(kind() == TokenKind::Identifier);
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token_payload_ = ident_id.index;
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}
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auto string_literal_id() const -> StringLiteralValueId {
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CARBON_DCHECK(kind() == TokenKind::StringLiteral);
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return StringLiteralValueId(token_payload_);
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}
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auto int_id() const -> IntId {
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CARBON_DCHECK(kind() == TokenKind::IntLiteral ||
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kind() == TokenKind::IntTypeLiteral ||
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kind() == TokenKind::UnsignedIntTypeLiteral ||
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kind() == TokenKind::FloatTypeLiteral);
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return IntId::MakeFromTokenPayload(token_payload_);
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}
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auto real_id() const -> RealId {
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CARBON_DCHECK(kind() == TokenKind::RealLiteral);
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return RealId(token_payload_);
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}
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auto closing_token_index() const -> TokenIndex {
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CARBON_DCHECK(kind().is_opening_symbol());
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return TokenIndex(token_payload_);
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}
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auto set_closing_token_index(TokenIndex closing_index) -> void {
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CARBON_DCHECK(kind().is_opening_symbol());
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token_payload_ = closing_index.index;
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}
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auto opening_token_index() const -> TokenIndex {
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CARBON_DCHECK(kind().is_closing_symbol());
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return TokenIndex(token_payload_);
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}
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auto set_opening_token_index(TokenIndex opening_index) -> void {
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CARBON_DCHECK(kind().is_closing_symbol());
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token_payload_ = opening_index.index;
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}
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auto error_length() const -> int {
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CARBON_DCHECK(kind() == TokenKind::Error);
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return token_payload_;
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}
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// Zero-based byte offset of the token within the file. This can be combined
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// with the buffer's line information to locate the line and column of the
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// token as well.
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auto byte_offset() const -> int32_t { return byte_offset_; }
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// Transforms the token into an error token of the given length but at its
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// original position and with the same whitespace adjacency.
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auto ResetAsError(int error_length) -> void {
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// Construct a fresh token to establish any needed invariants and replace
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// this token with it.
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TokenInfo error(TokenKind::Error, has_leading_space(), error_length,
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byte_offset());
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*this = error;
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}
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private:
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friend class Lexer;
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static constexpr int PayloadBits = 23;
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// Make sure we have enough payload bits to represent token-associated IDs.
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static_assert(PayloadBits >= IntId::TokenIdBits);
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static_assert(PayloadBits >= TokenIndex::Bits);
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// Constructor for a TokenKind that carries no payload, or where the payload
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// will be set later.
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//
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// Only used by the lexer which enforces only the correct kinds are used.
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//
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// When the payload is not being set, we leave it uninitialized. At least in
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// some cases, this will allow MSan to correctly detect erroneous attempts
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// to access the payload, as it works to track uninitialized memory
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// bit-for-bit specifically to handle complex cases like bitfields.
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TokenInfo(TokenKind kind, bool has_leading_space, int32_t byte_offset)
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: kind_(kind),
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has_leading_space_(has_leading_space),
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byte_offset_(byte_offset) {}
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// Constructor for a TokenKind that carries a payload.
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//
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// Only used by the lexer which enforces the correct kind and payload types.
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TokenInfo(TokenKind kind, bool has_leading_space, int payload,
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int32_t byte_offset)
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: kind_(kind),
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has_leading_space_(has_leading_space),
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token_payload_(payload),
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byte_offset_(byte_offset) {}
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// A bitfield that encodes the token's kind, the leading space flag, and the
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// remaining bits in a payload. These are encoded together as a bitfield for
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// density and because these are the hottest fields of tokens for consumers
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// after lexing.
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//
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// Payload values are typically ID types for which we create at most one per
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// token, so we ensure that `token_payload_` is large enough to fit any
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// token index. Stores to this field may overflow, but we produce an error
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// in `Lexer::Finalize` if the file has more than `TokenIndex::Max` tokens,
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// so this value never overflows if lexing succeeds.
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TokenKind kind_;
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static_assert(sizeof(kind_) == 1, "TokenKind must pack to 8 bits");
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bool has_leading_space_ : 1;
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unsigned token_payload_ : PayloadBits;
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// Separate storage for the byte offset, this is hot while lexing but then
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// generally cold.
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int32_t byte_offset_;
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};
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static_assert(sizeof(TokenInfo) == 8,
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"Expected `TokenInfo` to pack to an 8-byte structure.");
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// A comment, which can be a block of lines. These are tracked separately from
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// tokens because they don't affect parse; if they were part of tokens, we'd
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// need more general special-casing within token logic.
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//
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// Note that `CommentInfo` is used for an API to expose the comment.
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struct CommentData {
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// Zero-based byte offset of the start of the comment within the source
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// buffer provided.
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int32_t start;
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// The comment's length.
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int32_t length;
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};
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struct LineInfo {
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explicit LineInfo(int32_t start) : start(start), indent(0) {}
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// Zero-based byte offset of the start of the line within the source buffer
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// provided.
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int32_t start;
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// The byte offset from the start of the line of the first non-whitespace
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// character.
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int32_t indent;
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};
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// The constructor is merely responsible for trivial initialization of
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// members. A working object of this type is built with `Lex::Lex` so that its
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// return can indicate if an error was encountered while lexing.
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explicit TokenizedBuffer(SharedValueStores& value_stores
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[[clang::lifetimebound]],
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SourceBuffer& source [[clang::lifetimebound]])
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: value_stores_(&value_stores), source_(&source) {}
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auto FindLineIndex(int32_t byte_offset) const -> LineIndex;
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auto GetLineInfo(LineIndex line) -> LineInfo&;
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auto GetLineInfo(LineIndex line) const -> const LineInfo&;
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auto AddLine(LineInfo info) -> LineIndex;
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auto GetTokenInfo(TokenIndex token) -> TokenInfo&;
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auto GetTokenInfo(TokenIndex token) const -> const TokenInfo&;
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auto AddToken(TokenInfo info) -> TokenIndex;
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auto GetTokenPrintWidths(TokenIndex token) const -> PrintWidths;
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auto PrintToken(llvm::raw_ostream& output_stream, TokenIndex token,
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PrintWidths widths) const -> void;
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// Adds a comment. This uses the indent to potentially stitch together two
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// adjacent comments.
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auto AddComment(int32_t indent, int32_t start, int32_t end) -> void;
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// Used to allocate computed string literals.
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llvm::BumpPtrAllocator allocator_;
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SharedValueStores* value_stores_;
|
|
SourceBuffer* source_;
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|
|
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llvm::SmallVector<TokenInfo> token_infos_;
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|
|
|
llvm::SmallVector<LineInfo> line_infos_;
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|
|
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// Comments in the file.
|
|
llvm::SmallVector<CommentData> comments_;
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|
|
|
// An upper bound on the number of parse tree nodes that we expect to be
|
|
// created for the tokens in this buffer.
|
|
int expected_max_parse_tree_size_ = 0;
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|
|
|
bool has_errors_ = false;
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|
|
|
// A vector of flags for recovery tokens. If empty, there are none. When doing
|
|
// token recovery, this will be extended to be indexable by token indices and
|
|
// contain true for the tokens that were synthesized for recovery.
|
|
llvm::BitVector recovery_tokens_;
|
|
};
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|
|
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inline auto TokenizedBuffer::GetKind(TokenIndex token) const -> TokenKind {
|
|
return GetTokenInfo(token).kind();
|
|
}
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|
|
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inline auto TokenizedBuffer::HasLeadingWhitespace(TokenIndex token) const
|
|
-> bool {
|
|
return GetTokenInfo(token).has_leading_space();
|
|
}
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|
|
|
inline auto TokenizedBuffer::HasTrailingWhitespace(TokenIndex token) const
|
|
-> bool {
|
|
TokenIterator it(token);
|
|
++it;
|
|
return it != tokens().end() && GetTokenInfo(*it).has_leading_space();
|
|
}
|
|
|
|
inline auto TokenizedBuffer::GetTokenInfo(TokenIndex token) -> TokenInfo& {
|
|
return token_infos_[token.index];
|
|
}
|
|
|
|
inline auto TokenizedBuffer::GetTokenInfo(TokenIndex token) const
|
|
-> const TokenInfo& {
|
|
return token_infos_[token.index];
|
|
}
|
|
|
|
inline auto TokenizedBuffer::AddToken(TokenInfo info) -> TokenIndex {
|
|
TokenIndex index(token_infos_.size());
|
|
token_infos_.push_back(info);
|
|
expected_max_parse_tree_size_ += info.kind().expected_max_parse_tree_size();
|
|
return index;
|
|
}
|
|
|
|
} // namespace Carbon::Lex
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|
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#endif // CARBON_TOOLCHAIN_LEX_TOKENIZED_BUFFER_H_
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