rust/crates/mbe/src/parser.rs

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//! Parser recognizes special macro syntax, `$var` and `$(repeat)*`, in token
//! trees.
use smallvec::SmallVec;
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use syntax::SmolStr;
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use tt::Delimiter;
use crate::{tt_iter::TtIter, MetaTemplate, ParseError};
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#[derive(Clone, Debug, PartialEq, Eq)]
pub(crate) enum Op {
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Var { name: SmolStr, kind: Option<SmolStr>, id: tt::TokenId },
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Repeat { tokens: MetaTemplate, kind: RepeatKind, separator: Option<Separator> },
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Leaf(tt::Leaf),
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Subtree { tokens: MetaTemplate, delimiter: Option<Delimiter> },
}
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#[derive(Copy, Clone, Debug, PartialEq, Eq)]
pub(crate) enum RepeatKind {
ZeroOrMore,
OneOrMore,
ZeroOrOne,
}
#[derive(Clone, Debug, Eq)]
pub(crate) enum Separator {
Literal(tt::Literal),
Ident(tt::Ident),
Puncts(SmallVec<[tt::Punct; 3]>),
}
// Note that when we compare a Separator, we just care about its textual value.
impl PartialEq for Separator {
fn eq(&self, other: &Separator) -> bool {
use Separator::*;
match (self, other) {
(Ident(ref a), Ident(ref b)) => a.text == b.text,
(Literal(ref a), Literal(ref b)) => a.text == b.text,
(Puncts(ref a), Puncts(ref b)) if a.len() == b.len() => {
let a_iter = a.iter().map(|a| a.char);
let b_iter = b.iter().map(|b| b.char);
a_iter.eq(b_iter)
}
_ => false,
}
}
}
pub(crate) fn parse_template(template: &tt::Subtree) -> Result<Vec<Op>, ParseError> {
parse_inner(&template, Mode::Template).into_iter().collect()
}
pub(crate) fn parse_pattern(pattern: &tt::Subtree) -> Result<Vec<Op>, ParseError> {
parse_inner(&pattern, Mode::Pattern).into_iter().collect()
}
#[derive(Clone, Copy)]
enum Mode {
Pattern,
Template,
}
fn parse_inner(tt: &tt::Subtree, mode: Mode) -> Vec<Result<Op, ParseError>> {
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let mut src = TtIter::new(&tt);
std::iter::from_fn(move || {
let first = src.next()?;
Some(next_op(first, &mut src, mode))
})
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.collect()
}
macro_rules! err {
($($tt:tt)*) => {
ParseError::UnexpectedToken(($($tt)*).to_string())
};
}
macro_rules! bail {
($($tt:tt)*) => {
return Err(err!($($tt)*))
};
}
fn next_op<'a>(first: &tt::TokenTree, src: &mut TtIter<'a>, mode: Mode) -> Result<Op, ParseError> {
let res = match first {
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tt::TokenTree::Leaf(leaf @ tt::Leaf::Punct(tt::Punct { char: '$', .. })) => {
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// Note that the '$' itself is a valid token inside macro_rules.
let second = match src.next() {
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None => return Ok(Op::Leaf(leaf.clone())),
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Some(it) => it,
};
match second {
tt::TokenTree::Subtree(subtree) => {
let (separator, kind) = parse_repeat(src)?;
let tokens = parse_inner(&subtree, mode)
.into_iter()
.collect::<Result<Vec<Op>, ParseError>>()?;
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Op::Repeat { tokens: MetaTemplate(tokens), separator, kind }
}
tt::TokenTree::Leaf(leaf) => match leaf {
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tt::Leaf::Punct(punct) => {
static UNDERSCORE: SmolStr = SmolStr::new_inline("_");
if punct.char != '_' {
return Err(ParseError::Expected("_".to_string()));
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}
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let name = UNDERSCORE.clone();
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let kind = eat_fragment_kind(src, mode)?;
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let id = punct.id;
Op::Var { name, kind, id }
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}
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tt::Leaf::Ident(ident) if ident.text == "crate" => {
// We simply produce identifier `$crate` here. And it will be resolved when lowering ast to Path.
Op::Leaf(tt::Leaf::from(tt::Ident { text: "$crate".into(), id: ident.id }))
}
tt::Leaf::Ident(ident) => {
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let name = ident.text.clone();
let kind = eat_fragment_kind(src, mode)?;
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let id = ident.id;
Op::Var { name, kind, id }
}
tt::Leaf::Literal(lit) => {
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if is_boolean_literal(&lit) {
let name = lit.text.clone();
let kind = eat_fragment_kind(src, mode)?;
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let id = lit.id;
Op::Var { name, kind, id }
} else {
bail!("bad var 2");
}
}
},
}
}
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tt::TokenTree::Leaf(tt) => Op::Leaf(tt.clone()),
tt::TokenTree::Subtree(subtree) => {
let tokens =
parse_inner(&subtree, mode).into_iter().collect::<Result<Vec<Op>, ParseError>>()?;
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Op::Subtree { tokens: MetaTemplate(tokens), delimiter: subtree.delimiter }
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}
};
Ok(res)
}
fn eat_fragment_kind<'a>(src: &mut TtIter<'a>, mode: Mode) -> Result<Option<SmolStr>, ParseError> {
if let Mode::Pattern = mode {
src.expect_char(':').map_err(|()| err!("bad fragment specifier 1"))?;
let ident = src.expect_ident().map_err(|()| err!("bad fragment specifier 1"))?;
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return Ok(Some(ident.text.clone()));
};
Ok(None)
}
fn is_boolean_literal(lit: &tt::Literal) -> bool {
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matches!(lit.text.as_str(), "true" | "false")
}
fn parse_repeat(src: &mut TtIter) -> Result<(Option<Separator>, RepeatKind), ParseError> {
let mut separator = Separator::Puncts(SmallVec::new());
for tt in src {
let tt = match tt {
tt::TokenTree::Leaf(leaf) => leaf,
tt::TokenTree::Subtree(_) => return Err(ParseError::InvalidRepeat),
};
let has_sep = match &separator {
Separator::Puncts(puncts) => !puncts.is_empty(),
_ => true,
};
match tt {
tt::Leaf::Ident(_) | tt::Leaf::Literal(_) if has_sep => {
return Err(ParseError::InvalidRepeat)
}
tt::Leaf::Ident(ident) => separator = Separator::Ident(ident.clone()),
tt::Leaf::Literal(lit) => separator = Separator::Literal(lit.clone()),
tt::Leaf::Punct(punct) => {
let repeat_kind = match punct.char {
'*' => RepeatKind::ZeroOrMore,
'+' => RepeatKind::OneOrMore,
'?' => RepeatKind::ZeroOrOne,
_ => {
match &mut separator {
Separator::Puncts(puncts) => {
if puncts.len() == 3 {
return Err(ParseError::InvalidRepeat);
}
puncts.push(punct.clone())
}
_ => return Err(ParseError::InvalidRepeat),
}
continue;
}
};
let separator = if has_sep { Some(separator) } else { None };
return Ok((separator, repeat_kind));
}
}
}
Err(ParseError::InvalidRepeat)
}