960 lines
32 KiB
Rust
960 lines
32 KiB
Rust
// Copyright 2012-2016 The Rust Project Developers. See the COPYRIGHT
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// file at the top-level directory of this distribution and at
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// http://rust-lang.org/COPYRIGHT.
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//
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// Licensed under the Apache License, Version 2.0 <LICENSE-APACHE or
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// http://www.apache.org/licenses/LICENSE-2.0> or the MIT license
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// <LICENSE-MIT or http://opensource.org/licenses/MIT>, at your
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// option. This file may not be copied, modified, or distributed
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// except according to those terms.
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//! # Token Streams
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//!
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//! `TokenStream`s represent syntactic objects before they are converted into ASTs.
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//! A `TokenStream` is, roughly speaking, a sequence (eg stream) of `TokenTree`s,
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//! which are themselves a single `Token` or a `Delimited` subsequence of tokens.
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//!
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//! ## Ownership
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//! `TokenStreams` are persistent data structures constructed as ropes with reference
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//! counted-children. In general, this means that calling an operation on a `TokenStream`
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//! (such as `slice`) produces an entirely new `TokenStream` from the borrowed reference to
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//! the original. This essentially coerces `TokenStream`s into 'views' of their subparts,
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//! and a borrowed `TokenStream` is sufficient to build an owned `TokenStream` without taking
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//! ownership of the original.
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use syntax_pos::{BytePos, Mark, Span, DUMMY_SP};
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use ext::base;
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use ext::tt::{macro_parser, quoted};
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use parse::Directory;
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use parse::token::{self, Token};
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use print::pprust;
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use serialize::{Decoder, Decodable, Encoder, Encodable};
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use util::RcVec;
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use std::borrow::Cow;
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use std::{fmt, iter, mem};
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/// A delimited sequence of token trees
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#[derive(Clone, PartialEq, RustcEncodable, RustcDecodable, Debug)]
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pub struct Delimited {
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/// The type of delimiter
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pub delim: token::DelimToken,
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/// The delimited sequence of token trees
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pub tts: ThinTokenStream,
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}
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impl Delimited {
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/// Returns the opening delimiter as a token.
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pub fn open_token(&self) -> token::Token {
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token::OpenDelim(self.delim)
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}
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/// Returns the closing delimiter as a token.
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pub fn close_token(&self) -> token::Token {
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token::CloseDelim(self.delim)
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}
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/// Returns the opening delimiter as a token tree.
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pub fn open_tt(&self, span: Span) -> TokenTree {
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let open_span = if span.is_dummy() {
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span
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} else {
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span.with_hi(span.lo() + BytePos(self.delim.len() as u32))
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};
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TokenTree::Token(open_span, self.open_token())
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}
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/// Returns the closing delimiter as a token tree.
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pub fn close_tt(&self, span: Span) -> TokenTree {
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let close_span = if span.is_dummy() {
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span
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} else {
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span.with_lo(span.hi() - BytePos(self.delim.len() as u32))
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};
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TokenTree::Token(close_span, self.close_token())
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}
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/// Returns the token trees inside the delimiters.
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pub fn stream(&self) -> TokenStream {
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self.tts.clone().into()
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}
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}
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/// When the main rust parser encounters a syntax-extension invocation, it
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/// parses the arguments to the invocation as a token-tree. This is a very
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/// loose structure, such that all sorts of different AST-fragments can
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/// be passed to syntax extensions using a uniform type.
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///
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/// If the syntax extension is an MBE macro, it will attempt to match its
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/// LHS token tree against the provided token tree, and if it finds a
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/// match, will transcribe the RHS token tree, splicing in any captured
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/// `macro_parser::matched_nonterminals` into the `SubstNt`s it finds.
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///
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/// The RHS of an MBE macro is the only place `SubstNt`s are substituted.
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/// Nothing special happens to misnamed or misplaced `SubstNt`s.
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#[derive(Debug, Clone, PartialEq, RustcEncodable, RustcDecodable)]
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pub enum TokenTree {
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/// A single token
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Token(Span, token::Token),
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/// A delimited sequence of token trees
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Delimited(DelimSpan, Delimited),
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}
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impl TokenTree {
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/// Use this token tree as a matcher to parse given tts.
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pub fn parse(cx: &base::ExtCtxt, mtch: &[quoted::TokenTree], tts: TokenStream)
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-> macro_parser::NamedParseResult {
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// `None` is because we're not interpolating
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let directory = Directory {
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path: Cow::from(cx.current_expansion.module.directory.as_path()),
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ownership: cx.current_expansion.directory_ownership,
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};
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macro_parser::parse(cx.parse_sess(), tts, mtch, Some(directory), true)
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}
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/// Check if this TokenTree is equal to the other, regardless of span information.
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pub fn eq_unspanned(&self, other: &TokenTree) -> bool {
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match (self, other) {
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(&TokenTree::Token(_, ref tk), &TokenTree::Token(_, ref tk2)) => tk == tk2,
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(&TokenTree::Delimited(_, ref dl), &TokenTree::Delimited(_, ref dl2)) => {
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dl.delim == dl2.delim &&
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dl.stream().eq_unspanned(&dl2.stream())
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}
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(_, _) => false,
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}
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}
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// See comments in `interpolated_to_tokenstream` for why we care about
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// *probably* equal here rather than actual equality
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//
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// This is otherwise the same as `eq_unspanned`, only recursing with a
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// different method.
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pub fn probably_equal_for_proc_macro(&self, other: &TokenTree) -> bool {
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match (self, other) {
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(&TokenTree::Token(_, ref tk), &TokenTree::Token(_, ref tk2)) => {
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tk.probably_equal_for_proc_macro(tk2)
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}
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(&TokenTree::Delimited(_, ref dl), &TokenTree::Delimited(_, ref dl2)) => {
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dl.delim == dl2.delim &&
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dl.stream().probably_equal_for_proc_macro(&dl2.stream())
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}
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(_, _) => false,
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}
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}
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/// Retrieve the TokenTree's span.
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pub fn span(&self) -> Span {
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match *self {
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TokenTree::Token(sp, _) => sp,
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TokenTree::Delimited(sp, _) => sp.entire(),
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}
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}
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/// Modify the `TokenTree`'s span inplace.
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pub fn set_span(&mut self, span: Span) {
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match *self {
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TokenTree::Token(ref mut sp, _) => *sp = span,
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TokenTree::Delimited(ref mut sp, _) => *sp = DelimSpan::from_single(span),
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}
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}
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/// Indicates if the stream is a token that is equal to the provided token.
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pub fn eq_token(&self, t: Token) -> bool {
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match *self {
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TokenTree::Token(_, ref tk) => *tk == t,
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_ => false,
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}
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}
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pub fn joint(self) -> TokenStream {
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TokenStream { kind: TokenStreamKind::JointTree(self) }
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}
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}
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/// # Token Streams
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///
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/// A `TokenStream` is an abstract sequence of tokens, organized into `TokenTree`s.
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/// The goal is for procedural macros to work with `TokenStream`s and `TokenTree`s
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/// instead of a representation of the abstract syntax tree.
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/// Today's `TokenTree`s can still contain AST via `Token::Interpolated` for back-compat.
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#[derive(Clone, Debug)]
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pub struct TokenStream {
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kind: TokenStreamKind,
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}
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impl TokenStream {
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/// Given a `TokenStream` with a `Stream` of only two arguments, return a new `TokenStream`
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/// separating the two arguments with a comma for diagnostic suggestions.
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pub(crate) fn add_comma(&self) -> Option<(TokenStream, Span)> {
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// Used to suggest if a user writes `foo!(a b);`
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if let TokenStreamKind::Stream(ref slice) = self.kind {
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let mut suggestion = None;
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let mut iter = slice.iter().enumerate().peekable();
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while let Some((pos, ts)) = iter.next() {
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if let Some((_, next)) = iter.peek() {
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let sp = match (&ts.kind, &next.kind) {
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(TokenStreamKind::Tree(TokenTree::Token(_, token::Token::Comma)), _) |
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(_, TokenStreamKind::Tree(TokenTree::Token(_, token::Token::Comma))) => {
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continue;
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}
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(TokenStreamKind::Tree(TokenTree::Token(sp, _)), _) => *sp,
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(TokenStreamKind::Tree(TokenTree::Delimited(sp, _)), _) => sp.entire(),
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_ => continue,
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};
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let sp = sp.shrink_to_hi();
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let comma = TokenStream {
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kind: TokenStreamKind::Tree(TokenTree::Token(sp, token::Comma)),
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};
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suggestion = Some((pos, comma, sp));
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}
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}
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if let Some((pos, comma, sp)) = suggestion {
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let mut new_slice = vec![];
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let parts = slice.split_at(pos + 1);
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new_slice.extend_from_slice(parts.0);
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new_slice.push(comma);
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new_slice.extend_from_slice(parts.1);
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let slice = RcVec::new(new_slice);
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return Some((TokenStream { kind: TokenStreamKind::Stream(slice) }, sp));
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}
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}
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None
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}
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}
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#[derive(Clone, Debug)]
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enum TokenStreamKind {
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Empty,
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Tree(TokenTree),
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JointTree(TokenTree),
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Stream(RcVec<TokenStream>),
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}
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impl From<TokenTree> for TokenStream {
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fn from(tt: TokenTree) -> TokenStream {
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TokenStream { kind: TokenStreamKind::Tree(tt) }
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}
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}
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impl From<Token> for TokenStream {
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fn from(token: Token) -> TokenStream {
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TokenTree::Token(DUMMY_SP, token).into()
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}
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}
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impl<T: Into<TokenStream>> iter::FromIterator<T> for TokenStream {
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fn from_iter<I: IntoIterator<Item = T>>(iter: I) -> Self {
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TokenStream::concat(iter.into_iter().map(Into::into).collect::<Vec<_>>())
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}
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}
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impl Extend<TokenStream> for TokenStream {
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fn extend<I: IntoIterator<Item = TokenStream>>(&mut self, iter: I) {
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let iter = iter.into_iter();
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let kind = mem::replace(&mut self.kind, TokenStreamKind::Empty);
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// Vector of token streams originally in self.
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let tts: Vec<TokenStream> = match kind {
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TokenStreamKind::Empty => {
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let mut vec = Vec::new();
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vec.reserve(iter.size_hint().0);
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vec
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}
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TokenStreamKind::Tree(_) | TokenStreamKind::JointTree(_) => {
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let mut vec = Vec::new();
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vec.reserve(1 + iter.size_hint().0);
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vec.push(TokenStream { kind });
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vec
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}
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TokenStreamKind::Stream(rc_vec) => match RcVec::try_unwrap(rc_vec) {
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Ok(mut vec) => {
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// Extend in place using the existing capacity if possible.
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// This is the fast path for libraries like `quote` that
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// build a token stream.
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vec.reserve(iter.size_hint().0);
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vec
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}
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Err(rc_vec) => {
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// Self is shared so we need to copy and extend that.
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let mut vec = Vec::new();
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vec.reserve(rc_vec.len() + iter.size_hint().0);
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vec.extend_from_slice(&rc_vec);
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vec
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}
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}
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};
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// Perform the extend, joining tokens as needed along the way.
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let mut builder = TokenStreamBuilder(tts);
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for stream in iter {
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builder.push(stream);
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}
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// Build the resulting token stream. If it contains more than one token,
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// preserve capacity in the vector in anticipation of the caller
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// performing additional calls to extend.
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let mut tts = builder.0;
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*self = match tts.len() {
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0 => TokenStream::empty(),
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1 => tts.pop().unwrap(),
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_ => TokenStream::concat_rc_vec(RcVec::new_preserving_capacity(tts)),
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};
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}
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}
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impl Eq for TokenStream {}
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impl PartialEq<TokenStream> for TokenStream {
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fn eq(&self, other: &TokenStream) -> bool {
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self.trees().eq(other.trees())
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}
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}
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impl TokenStream {
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pub fn len(&self) -> usize {
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if let TokenStreamKind::Stream(ref slice) = self.kind {
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slice.len()
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} else {
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0
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}
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}
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pub fn empty() -> TokenStream {
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TokenStream { kind: TokenStreamKind::Empty }
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}
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pub fn is_empty(&self) -> bool {
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match self.kind {
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TokenStreamKind::Empty => true,
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_ => false,
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}
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}
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pub fn concat(mut streams: Vec<TokenStream>) -> TokenStream {
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match streams.len() {
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0 => TokenStream::empty(),
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1 => streams.pop().unwrap(),
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_ => TokenStream::concat_rc_vec(RcVec::new(streams)),
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}
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}
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fn concat_rc_vec(streams: RcVec<TokenStream>) -> TokenStream {
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TokenStream { kind: TokenStreamKind::Stream(streams) }
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}
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pub fn trees(&self) -> Cursor {
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self.clone().into_trees()
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}
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pub fn into_trees(self) -> Cursor {
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Cursor::new(self)
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}
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/// Compares two TokenStreams, checking equality without regarding span information.
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pub fn eq_unspanned(&self, other: &TokenStream) -> bool {
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let mut t1 = self.trees();
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let mut t2 = other.trees();
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for (t1, t2) in t1.by_ref().zip(t2.by_ref()) {
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if !t1.eq_unspanned(&t2) {
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return false;
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}
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}
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t1.next().is_none() && t2.next().is_none()
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}
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// See comments in `interpolated_to_tokenstream` for why we care about
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// *probably* equal here rather than actual equality
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//
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// This is otherwise the same as `eq_unspanned`, only recursing with a
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// different method.
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pub fn probably_equal_for_proc_macro(&self, other: &TokenStream) -> bool {
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let mut t1 = self.trees();
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let mut t2 = other.trees();
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for (t1, t2) in t1.by_ref().zip(t2.by_ref()) {
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if !t1.probably_equal_for_proc_macro(&t2) {
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return false;
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}
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}
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t1.next().is_none() && t2.next().is_none()
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}
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/// Precondition: `self` consists of a single token tree.
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/// Returns true if the token tree is a joint operation w.r.t. `proc_macro::TokenNode`.
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pub fn as_tree(self) -> (TokenTree, bool /* joint? */) {
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match self.kind {
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TokenStreamKind::Tree(tree) => (tree, false),
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TokenStreamKind::JointTree(tree) => (tree, true),
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_ => unreachable!(),
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}
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}
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pub fn map_enumerated<F: FnMut(usize, TokenTree) -> TokenTree>(self, mut f: F) -> TokenStream {
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let mut trees = self.into_trees();
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let mut result = Vec::new();
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let mut i = 0;
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while let Some(stream) = trees.next_as_stream() {
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result.push(match stream.kind {
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TokenStreamKind::Tree(tree) => f(i, tree).into(),
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TokenStreamKind::JointTree(tree) => f(i, tree).joint(),
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_ => unreachable!()
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});
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i += 1;
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}
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TokenStream::concat(result)
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}
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pub fn map<F: FnMut(TokenTree) -> TokenTree>(self, mut f: F) -> TokenStream {
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let mut trees = self.into_trees();
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let mut result = Vec::new();
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while let Some(stream) = trees.next_as_stream() {
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result.push(match stream.kind {
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TokenStreamKind::Tree(tree) => f(tree).into(),
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TokenStreamKind::JointTree(tree) => f(tree).joint(),
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_ => unreachable!()
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});
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}
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TokenStream::concat(result)
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}
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fn first_tree_and_joint(&self) -> Option<(TokenTree, bool)> {
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match self.kind {
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TokenStreamKind::Empty => None,
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TokenStreamKind::Tree(ref tree) => Some((tree.clone(), false)),
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TokenStreamKind::JointTree(ref tree) => Some((tree.clone(), true)),
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TokenStreamKind::Stream(ref stream) => stream.first().unwrap().first_tree_and_joint(),
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}
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}
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fn last_tree_if_joint(&self) -> Option<TokenTree> {
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match self.kind {
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TokenStreamKind::Empty | TokenStreamKind::Tree(..) => None,
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TokenStreamKind::JointTree(ref tree) => Some(tree.clone()),
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TokenStreamKind::Stream(ref stream) => stream.last().unwrap().last_tree_if_joint(),
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}
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}
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}
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#[derive(Clone)]
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pub struct TokenStreamBuilder(Vec<TokenStream>);
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impl TokenStreamBuilder {
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pub fn new() -> TokenStreamBuilder {
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TokenStreamBuilder(Vec::new())
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}
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pub fn push<T: Into<TokenStream>>(&mut self, stream: T) {
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let stream = stream.into();
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let last_tree_if_joint = self.0.last().and_then(TokenStream::last_tree_if_joint);
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if let Some(TokenTree::Token(last_span, last_tok)) = last_tree_if_joint {
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if let Some((TokenTree::Token(span, tok), is_joint)) = stream.first_tree_and_joint() {
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if let Some(glued_tok) = last_tok.glue(tok) {
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let last_stream = self.0.pop().unwrap();
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self.push_all_but_last_tree(&last_stream);
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let glued_span = last_span.to(span);
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let glued_tt = TokenTree::Token(glued_span, glued_tok);
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let glued_tokenstream = if is_joint {
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glued_tt.joint()
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} else {
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glued_tt.into()
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};
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self.0.push(glued_tokenstream);
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self.push_all_but_first_tree(&stream);
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return
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}
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}
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}
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self.0.push(stream);
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}
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pub fn add<T: Into<TokenStream>>(mut self, stream: T) -> Self {
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self.push(stream);
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self
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}
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pub fn build(self) -> TokenStream {
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TokenStream::concat(self.0)
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}
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fn push_all_but_last_tree(&mut self, stream: &TokenStream) {
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if let TokenStreamKind::Stream(ref streams) = stream.kind {
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let len = streams.len();
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match len {
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1 => {}
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2 => self.0.push(streams[0].clone().into()),
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_ => self.0.push(TokenStream::concat_rc_vec(streams.sub_slice(0 .. len - 1))),
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}
|
|
self.push_all_but_last_tree(&streams[len - 1])
|
|
}
|
|
}
|
|
|
|
fn push_all_but_first_tree(&mut self, stream: &TokenStream) {
|
|
if let TokenStreamKind::Stream(ref streams) = stream.kind {
|
|
let len = streams.len();
|
|
match len {
|
|
1 => {}
|
|
2 => self.0.push(streams[1].clone().into()),
|
|
_ => self.0.push(TokenStream::concat_rc_vec(streams.sub_slice(1 .. len))),
|
|
}
|
|
self.push_all_but_first_tree(&streams[0])
|
|
}
|
|
}
|
|
}
|
|
|
|
#[derive(Clone)]
|
|
pub struct Cursor(CursorKind);
|
|
|
|
#[derive(Clone)]
|
|
enum CursorKind {
|
|
Empty,
|
|
Tree(TokenTree, bool /* consumed? */),
|
|
JointTree(TokenTree, bool /* consumed? */),
|
|
Stream(StreamCursor),
|
|
}
|
|
|
|
#[derive(Clone)]
|
|
struct StreamCursor {
|
|
stream: RcVec<TokenStream>,
|
|
index: usize,
|
|
stack: Vec<(RcVec<TokenStream>, usize)>,
|
|
}
|
|
|
|
impl StreamCursor {
|
|
fn new(stream: RcVec<TokenStream>) -> Self {
|
|
StreamCursor { stream: stream, index: 0, stack: Vec::new() }
|
|
}
|
|
|
|
fn next_as_stream(&mut self) -> Option<TokenStream> {
|
|
loop {
|
|
if self.index < self.stream.len() {
|
|
self.index += 1;
|
|
let next = self.stream[self.index - 1].clone();
|
|
match next.kind {
|
|
TokenStreamKind::Tree(..) | TokenStreamKind::JointTree(..) => return Some(next),
|
|
TokenStreamKind::Stream(stream) => self.insert(stream),
|
|
TokenStreamKind::Empty => {}
|
|
}
|
|
} else if let Some((stream, index)) = self.stack.pop() {
|
|
self.stream = stream;
|
|
self.index = index;
|
|
} else {
|
|
return None;
|
|
}
|
|
}
|
|
}
|
|
|
|
fn insert(&mut self, stream: RcVec<TokenStream>) {
|
|
self.stack.push((mem::replace(&mut self.stream, stream),
|
|
mem::replace(&mut self.index, 0)));
|
|
}
|
|
}
|
|
|
|
impl Iterator for Cursor {
|
|
type Item = TokenTree;
|
|
|
|
fn next(&mut self) -> Option<TokenTree> {
|
|
self.next_as_stream().map(|stream| match stream.kind {
|
|
TokenStreamKind::Tree(tree) | TokenStreamKind::JointTree(tree) => tree,
|
|
_ => unreachable!()
|
|
})
|
|
}
|
|
}
|
|
|
|
impl Cursor {
|
|
fn new(stream: TokenStream) -> Self {
|
|
Cursor(match stream.kind {
|
|
TokenStreamKind::Empty => CursorKind::Empty,
|
|
TokenStreamKind::Tree(tree) => CursorKind::Tree(tree, false),
|
|
TokenStreamKind::JointTree(tree) => CursorKind::JointTree(tree, false),
|
|
TokenStreamKind::Stream(stream) => CursorKind::Stream(StreamCursor::new(stream)),
|
|
})
|
|
}
|
|
|
|
pub fn next_as_stream(&mut self) -> Option<TokenStream> {
|
|
let (stream, consumed) = match self.0 {
|
|
CursorKind::Tree(ref tree, ref mut consumed @ false) =>
|
|
(tree.clone().into(), consumed),
|
|
CursorKind::JointTree(ref tree, ref mut consumed @ false) =>
|
|
(tree.clone().joint(), consumed),
|
|
CursorKind::Stream(ref mut cursor) => return cursor.next_as_stream(),
|
|
_ => return None,
|
|
};
|
|
|
|
*consumed = true;
|
|
Some(stream)
|
|
}
|
|
|
|
pub fn insert(&mut self, stream: TokenStream) {
|
|
match self.0 {
|
|
_ if stream.is_empty() => return,
|
|
CursorKind::Empty => *self = stream.trees(),
|
|
CursorKind::Tree(_, consumed) | CursorKind::JointTree(_, consumed) => {
|
|
*self = TokenStream::concat(vec![self.original_stream(), stream]).trees();
|
|
if consumed {
|
|
self.next();
|
|
}
|
|
}
|
|
CursorKind::Stream(ref mut cursor) => {
|
|
cursor.insert(ThinTokenStream::from(stream).0.unwrap());
|
|
}
|
|
}
|
|
}
|
|
|
|
pub fn original_stream(&self) -> TokenStream {
|
|
match self.0 {
|
|
CursorKind::Empty => TokenStream::empty(),
|
|
CursorKind::Tree(ref tree, _) => tree.clone().into(),
|
|
CursorKind::JointTree(ref tree, _) => tree.clone().joint(),
|
|
CursorKind::Stream(ref cursor) => TokenStream::concat_rc_vec({
|
|
cursor.stack.get(0).cloned().map(|(stream, _)| stream)
|
|
.unwrap_or_else(|| cursor.stream.clone())
|
|
}),
|
|
}
|
|
}
|
|
|
|
pub fn look_ahead(&self, n: usize) -> Option<TokenTree> {
|
|
fn look_ahead(streams: &[TokenStream], mut n: usize) -> Result<TokenTree, usize> {
|
|
for stream in streams {
|
|
n = match stream.kind {
|
|
TokenStreamKind::Tree(ref tree) | TokenStreamKind::JointTree(ref tree)
|
|
if n == 0 => return Ok(tree.clone()),
|
|
TokenStreamKind::Tree(..) | TokenStreamKind::JointTree(..) => n - 1,
|
|
TokenStreamKind::Stream(ref stream) => match look_ahead(stream, n) {
|
|
Ok(tree) => return Ok(tree),
|
|
Err(n) => n,
|
|
},
|
|
_ => n,
|
|
};
|
|
}
|
|
Err(n)
|
|
}
|
|
|
|
match self.0 {
|
|
CursorKind::Empty |
|
|
CursorKind::Tree(_, true) |
|
|
CursorKind::JointTree(_, true) => Err(n),
|
|
CursorKind::Tree(ref tree, false) |
|
|
CursorKind::JointTree(ref tree, false) => look_ahead(&[tree.clone().into()], n),
|
|
CursorKind::Stream(ref cursor) => {
|
|
look_ahead(&cursor.stream[cursor.index ..], n).or_else(|mut n| {
|
|
for &(ref stream, index) in cursor.stack.iter().rev() {
|
|
n = match look_ahead(&stream[index..], n) {
|
|
Ok(tree) => return Ok(tree),
|
|
Err(n) => n,
|
|
}
|
|
}
|
|
|
|
Err(n)
|
|
})
|
|
}
|
|
}.ok()
|
|
}
|
|
}
|
|
|
|
/// The `TokenStream` type is large enough to represent a single `TokenTree` without allocation.
|
|
/// `ThinTokenStream` is smaller, but needs to allocate to represent a single `TokenTree`.
|
|
/// We must use `ThinTokenStream` in `TokenTree::Delimited` to avoid infinite size due to recursion.
|
|
#[derive(Debug, Clone)]
|
|
pub struct ThinTokenStream(Option<RcVec<TokenStream>>);
|
|
|
|
impl From<TokenStream> for ThinTokenStream {
|
|
fn from(stream: TokenStream) -> ThinTokenStream {
|
|
ThinTokenStream(match stream.kind {
|
|
TokenStreamKind::Empty => None,
|
|
TokenStreamKind::Tree(tree) => Some(RcVec::new(vec![tree.into()])),
|
|
TokenStreamKind::JointTree(tree) => Some(RcVec::new(vec![tree.joint()])),
|
|
TokenStreamKind::Stream(stream) => Some(stream),
|
|
})
|
|
}
|
|
}
|
|
|
|
impl From<ThinTokenStream> for TokenStream {
|
|
fn from(stream: ThinTokenStream) -> TokenStream {
|
|
stream.0.map(TokenStream::concat_rc_vec).unwrap_or_else(TokenStream::empty)
|
|
}
|
|
}
|
|
|
|
impl Eq for ThinTokenStream {}
|
|
|
|
impl PartialEq<ThinTokenStream> for ThinTokenStream {
|
|
fn eq(&self, other: &ThinTokenStream) -> bool {
|
|
TokenStream::from(self.clone()) == TokenStream::from(other.clone())
|
|
}
|
|
}
|
|
|
|
impl fmt::Display for TokenStream {
|
|
fn fmt(&self, f: &mut fmt::Formatter) -> fmt::Result {
|
|
f.write_str(&pprust::tokens_to_string(self.clone()))
|
|
}
|
|
}
|
|
|
|
impl Encodable for TokenStream {
|
|
fn encode<E: Encoder>(&self, encoder: &mut E) -> Result<(), E::Error> {
|
|
self.trees().collect::<Vec<_>>().encode(encoder)
|
|
}
|
|
}
|
|
|
|
impl Decodable for TokenStream {
|
|
fn decode<D: Decoder>(decoder: &mut D) -> Result<TokenStream, D::Error> {
|
|
Vec::<TokenTree>::decode(decoder).map(|vec| vec.into_iter().collect())
|
|
}
|
|
}
|
|
|
|
impl Encodable for ThinTokenStream {
|
|
fn encode<E: Encoder>(&self, encoder: &mut E) -> Result<(), E::Error> {
|
|
TokenStream::from(self.clone()).encode(encoder)
|
|
}
|
|
}
|
|
|
|
impl Decodable for ThinTokenStream {
|
|
fn decode<D: Decoder>(decoder: &mut D) -> Result<ThinTokenStream, D::Error> {
|
|
TokenStream::decode(decoder).map(Into::into)
|
|
}
|
|
}
|
|
|
|
#[derive(Debug, Copy, Clone, PartialEq, RustcEncodable, RustcDecodable)]
|
|
pub struct DelimSpan {
|
|
pub open: Span,
|
|
pub close: Span,
|
|
}
|
|
|
|
impl DelimSpan {
|
|
pub fn from_single(sp: Span) -> Self {
|
|
DelimSpan {
|
|
open: sp,
|
|
close: sp,
|
|
}
|
|
}
|
|
|
|
pub fn from_pair(open: Span, close: Span) -> Self {
|
|
DelimSpan { open, close }
|
|
}
|
|
|
|
pub fn dummy() -> Self {
|
|
Self::from_single(DUMMY_SP)
|
|
}
|
|
|
|
pub fn entire(self) -> Span {
|
|
self.open.with_hi(self.close.hi())
|
|
}
|
|
|
|
pub fn apply_mark(self, mark: Mark) -> Self {
|
|
DelimSpan {
|
|
open: self.open.apply_mark(mark),
|
|
close: self.close.apply_mark(mark),
|
|
}
|
|
}
|
|
}
|
|
|
|
#[cfg(test)]
|
|
mod tests {
|
|
use super::*;
|
|
use syntax::ast::Ident;
|
|
use with_globals;
|
|
use syntax_pos::{Span, BytePos, NO_EXPANSION};
|
|
use parse::token::Token;
|
|
use util::parser_testing::string_to_stream;
|
|
|
|
fn string_to_ts(string: &str) -> TokenStream {
|
|
string_to_stream(string.to_owned())
|
|
}
|
|
|
|
fn sp(a: u32, b: u32) -> Span {
|
|
Span::new(BytePos(a), BytePos(b), NO_EXPANSION)
|
|
}
|
|
|
|
#[test]
|
|
fn test_concat() {
|
|
with_globals(|| {
|
|
let test_res = string_to_ts("foo::bar::baz");
|
|
let test_fst = string_to_ts("foo::bar");
|
|
let test_snd = string_to_ts("::baz");
|
|
let eq_res = TokenStream::concat(vec![test_fst, test_snd]);
|
|
assert_eq!(test_res.trees().count(), 5);
|
|
assert_eq!(eq_res.trees().count(), 5);
|
|
assert_eq!(test_res.eq_unspanned(&eq_res), true);
|
|
})
|
|
}
|
|
|
|
#[test]
|
|
fn test_to_from_bijection() {
|
|
with_globals(|| {
|
|
let test_start = string_to_ts("foo::bar(baz)");
|
|
let test_end = test_start.trees().collect();
|
|
assert_eq!(test_start, test_end)
|
|
})
|
|
}
|
|
|
|
#[test]
|
|
fn test_eq_0() {
|
|
with_globals(|| {
|
|
let test_res = string_to_ts("foo");
|
|
let test_eqs = string_to_ts("foo");
|
|
assert_eq!(test_res, test_eqs)
|
|
})
|
|
}
|
|
|
|
#[test]
|
|
fn test_eq_1() {
|
|
with_globals(|| {
|
|
let test_res = string_to_ts("::bar::baz");
|
|
let test_eqs = string_to_ts("::bar::baz");
|
|
assert_eq!(test_res, test_eqs)
|
|
})
|
|
}
|
|
|
|
#[test]
|
|
fn test_eq_3() {
|
|
with_globals(|| {
|
|
let test_res = string_to_ts("");
|
|
let test_eqs = string_to_ts("");
|
|
assert_eq!(test_res, test_eqs)
|
|
})
|
|
}
|
|
|
|
#[test]
|
|
fn test_diseq_0() {
|
|
with_globals(|| {
|
|
let test_res = string_to_ts("::bar::baz");
|
|
let test_eqs = string_to_ts("bar::baz");
|
|
assert_eq!(test_res == test_eqs, false)
|
|
})
|
|
}
|
|
|
|
#[test]
|
|
fn test_diseq_1() {
|
|
with_globals(|| {
|
|
let test_res = string_to_ts("(bar,baz)");
|
|
let test_eqs = string_to_ts("bar,baz");
|
|
assert_eq!(test_res == test_eqs, false)
|
|
})
|
|
}
|
|
|
|
#[test]
|
|
fn test_is_empty() {
|
|
with_globals(|| {
|
|
let test0: TokenStream = Vec::<TokenTree>::new().into_iter().collect();
|
|
let test1: TokenStream =
|
|
TokenTree::Token(sp(0, 1), Token::Ident(Ident::from_str("a"), false)).into();
|
|
let test2 = string_to_ts("foo(bar::baz)");
|
|
|
|
assert_eq!(test0.is_empty(), true);
|
|
assert_eq!(test1.is_empty(), false);
|
|
assert_eq!(test2.is_empty(), false);
|
|
})
|
|
}
|
|
|
|
#[test]
|
|
fn test_dotdotdot() {
|
|
let mut builder = TokenStreamBuilder::new();
|
|
builder.push(TokenTree::Token(sp(0, 1), Token::Dot).joint());
|
|
builder.push(TokenTree::Token(sp(1, 2), Token::Dot).joint());
|
|
builder.push(TokenTree::Token(sp(2, 3), Token::Dot));
|
|
let stream = builder.build();
|
|
assert!(stream.eq_unspanned(&string_to_ts("...")));
|
|
assert_eq!(stream.trees().count(), 1);
|
|
}
|
|
|
|
#[test]
|
|
fn test_extend_empty() {
|
|
with_globals(|| {
|
|
// Append a token onto an empty token stream.
|
|
let mut stream = TokenStream::empty();
|
|
stream.extend(vec![string_to_ts("t")]);
|
|
|
|
let expected = string_to_ts("t");
|
|
assert!(stream.eq_unspanned(&expected));
|
|
});
|
|
}
|
|
|
|
#[test]
|
|
fn test_extend_nothing() {
|
|
with_globals(|| {
|
|
// Append nothing onto a token stream containing one token.
|
|
let mut stream = string_to_ts("t");
|
|
stream.extend(vec![]);
|
|
|
|
let expected = string_to_ts("t");
|
|
assert!(stream.eq_unspanned(&expected));
|
|
});
|
|
}
|
|
|
|
#[test]
|
|
fn test_extend_single() {
|
|
with_globals(|| {
|
|
// Append a token onto token stream containing a single token.
|
|
let mut stream = string_to_ts("t1");
|
|
stream.extend(vec![string_to_ts("t2")]);
|
|
|
|
let expected = string_to_ts("t1 t2");
|
|
assert!(stream.eq_unspanned(&expected));
|
|
});
|
|
}
|
|
|
|
#[test]
|
|
fn test_extend_in_place() {
|
|
with_globals(|| {
|
|
// Append a token onto token stream containing a reference counted
|
|
// vec of tokens. The token stream has a reference count of 1 so
|
|
// this can happen in place.
|
|
let mut stream = string_to_ts("t1 t2");
|
|
stream.extend(vec![string_to_ts("t3")]);
|
|
|
|
let expected = string_to_ts("t1 t2 t3");
|
|
assert!(stream.eq_unspanned(&expected));
|
|
});
|
|
}
|
|
|
|
#[test]
|
|
fn test_extend_copy() {
|
|
with_globals(|| {
|
|
// Append a token onto token stream containing a reference counted
|
|
// vec of tokens. The token stream is shared so the extend takes
|
|
// place on a copy.
|
|
let mut stream = string_to_ts("t1 t2");
|
|
let _incref = stream.clone();
|
|
stream.extend(vec![string_to_ts("t3")]);
|
|
|
|
let expected = string_to_ts("t1 t2 t3");
|
|
assert!(stream.eq_unspanned(&expected));
|
|
});
|
|
}
|
|
|
|
#[test]
|
|
fn test_extend_no_join() {
|
|
with_globals(|| {
|
|
let first = TokenTree::Token(DUMMY_SP, Token::Dot);
|
|
let second = TokenTree::Token(DUMMY_SP, Token::Dot);
|
|
|
|
// Append a dot onto a token stream containing a dot, but do not
|
|
// join them.
|
|
let mut stream = TokenStream::from(first);
|
|
stream.extend(vec![TokenStream::from(second)]);
|
|
|
|
let expected = string_to_ts(". .");
|
|
assert!(stream.eq_unspanned(&expected));
|
|
|
|
let unexpected = string_to_ts("..");
|
|
assert!(!stream.eq_unspanned(&unexpected));
|
|
});
|
|
}
|
|
|
|
#[test]
|
|
fn test_extend_join() {
|
|
with_globals(|| {
|
|
let first = TokenTree::Token(DUMMY_SP, Token::Dot).joint();
|
|
let second = TokenTree::Token(DUMMY_SP, Token::Dot);
|
|
|
|
// Append a dot onto a token stream containing a dot, forming a
|
|
// dotdot.
|
|
let mut stream = first;
|
|
stream.extend(vec![TokenStream::from(second)]);
|
|
|
|
let expected = string_to_ts("..");
|
|
assert!(stream.eq_unspanned(&expected));
|
|
|
|
let unexpected = string_to_ts(". .");
|
|
assert!(!stream.eq_unspanned(&unexpected));
|
|
});
|
|
}
|
|
}
|