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rustc_parse/parser/
mod.rs

1pub mod attr;
2mod attr_wrapper;
3mod diagnostics;
4mod expr;
5mod function;
6mod generics;
7mod item;
8mod nonterminal;
9mod pat;
10mod path;
11mod stmt;
12pub mod token_type;
13mod ty;
14
15// Parsers for non-functionlike builtin macros are defined in rustc_parse so they can be used by
16// both rustc_builtin_macros and rustfmt.
17pub mod asm;
18pub mod cfg_select;
19
20use std::{debug_assert_matches, fmt, mem, slice};
21
22use attr_wrapper::{AttrWrapper, UsePreAttrPos};
23pub use diagnostics::AttemptLocalParseRecovery;
24// Public to use it for custom `if` expressions in rustfmt forks like https://github.com/tucant/rustfmt
25pub use expr::LetChainsPolicy;
26pub(crate) use function::{FnContext, FnParseMode, FrontMatterParsingMode, IsDotDotDot};
27pub use pat::{CommaRecoveryMode, RecoverColon, RecoverComma};
28pub use path::PathStyle;
29use rustc_ast::token::{
30    self, IdentIsRaw, InvisibleOrigin, MetaVarKind, NtExprKind, NtPatKind, Token, TokenKind,
31};
32use rustc_ast::tokenstream::{
33    ParserRange, ParserReplacement, Spacing, TokenCursor, TokenStream, TokenTree, WithTokens,
34};
35use rustc_ast::util::case::Case;
36use rustc_ast::util::classify;
37use rustc_ast::{
38    self as ast, AnonConst, AttrArgs, AttrId, BinOpKind, ByRef, Const, CoroutineKind,
39    CoroutineMarker, DUMMY_NODE_ID, DelimArgs, Expr, ExprKind, Extern, HasTokens, ImplRestriction,
40    MutRestriction, Mutability, Recovered, RestrictionKind, Safety, StrLit, Visibility,
41    VisibilityKind,
42};
43use rustc_ast_pretty::pprust;
44use rustc_data_structures::fx::FxHashMap;
45use rustc_errors::{Applicability, Diag, FatalError, MultiSpan, PResult};
46use rustc_index::interval::IntervalSet;
47use rustc_session::parse::ParseSess;
48use rustc_span::{ErrorGuaranteed, Ident, Span, Symbol, kw, sym};
49use thin_vec::ThinVec;
50use token_type::TokenTypeSet;
51pub use token_type::{ExpKeywordPair, ExpTokenPair, TokenType};
52use tracing::debug;
53
54use crate::diagnostics::{
55    IncorrectImplRestriction, IncorrectMutRestriction, IncorrectVisibilityRestriction,
56    NonStringAbiLiteral, TokenDescription,
57};
58use crate::exp;
59
60#[cfg(test)]
61mod tests;
62
63// Ideally, these tests would be in `rustc_ast`. But they depend on having a
64// parser, so they are here.
65#[cfg(test)]
66mod tokenstream {
67    mod tests;
68}
69
70bitflags::bitflags! {
71    /// Restrictions applied while parsing.
72    ///
73    /// The parser maintains a bitset of restrictions it will honor while
74    /// parsing. This is essentially used as a way of tracking state of what
75    /// is being parsed and to change behavior based on that.
76    #[derive(#[automatically_derived]
impl ::core::clone::Clone for Restrictions {
    #[inline]
    fn clone(&self) -> Restrictions {
        let _:
                ::core::clone::AssertParamIsClone<<Restrictions as
                ::bitflags::__private::PublicFlags>::Internal>;
        *self
    }
}
impl Restrictions {
    #[doc = r" Restricts expressions for use in statement position."]
    #[doc = r""]
    #[doc =
    r" When expressions are used in various places, like statements or"]
    #[doc =
    r" match arms, this is used to stop parsing once certain tokens are"]
    #[doc = r" reached."]
    #[doc = r""]
    #[doc =
    r" For example, `if true {} & 1` with `STMT_EXPR` in effect is parsed"]
    #[doc =
    r" as two separate expression statements (`if` and a reference to 1)."]
    #[doc =
    r" Otherwise it is parsed as a bitwise AND where `if` is on the left"]
    #[doc = r" and 1 is on the right."]
    #[allow(deprecated, non_upper_case_globals,)]
    pub const STMT_EXPR: Self = Self::from_bits_retain(1 << 0);
    #[doc = r" Do not allow struct literals."]
    #[doc = r""]
    #[doc =
    r" There are several places in the grammar where we don't want to"]
    #[doc = r" allow struct literals because they can require lookahead, or"]
    #[doc = r" otherwise could be ambiguous or cause confusion. For example,"]
    #[doc =
    r" `if Foo {} {}` isn't clear if it is `Foo{}` struct literal, or"]
    #[doc = r" just `Foo` is the condition, followed by a consequent block,"]
    #[doc = r" followed by an empty block."]
    #[doc = r""]
    #[doc =
    r" See [RFC 92](https://rust-lang.github.io/rfcs/0092-struct-grammar.html)."]
    #[allow(deprecated, non_upper_case_globals,)]
    pub const NO_STRUCT_LITERAL: Self = Self::from_bits_retain(1 << 1);
    #[doc =
    r" Used to provide better error messages for const generic arguments."]
    #[doc = r""]
    #[doc =
    r" An un-braced const generic argument is limited to a very small"]
    #[doc =
    r" subset of expressions. This is used to detect the situation where"]
    #[doc =
    r" an expression outside of that subset is used, and to suggest to"]
    #[doc = r" wrap the expression in braces."]
    #[allow(deprecated, non_upper_case_globals,)]
    pub const CONST_EXPR: Self = Self::from_bits_retain(1 << 2);
    #[doc = r" Allows `let` expressions."]
    #[doc = r""]
    #[doc =
    r" `let pattern = scrutinee` is parsed as an expression, but it is"]
    #[doc = r" only allowed in let chains (`if` and `while` conditions)."]
    #[doc =
    r" Otherwise it is not an expression (note that `let` in statement"]
    #[doc =
    r" positions is treated as a `StmtKind::Let` statement, which has a"]
    #[doc = r" slightly different grammar)."]
    #[allow(deprecated, non_upper_case_globals,)]
    pub const ALLOW_LET: Self = Self::from_bits_retain(1 << 3);
    #[doc = r" Used to detect a missing `=>` in a match guard."]
    #[doc = r""]
    #[doc =
    r" This is used for error handling in a match guard to give a better"]
    #[doc =
    r" error message if the `=>` is missing. It is set when parsing the"]
    #[doc = r" guard expression."]
    #[allow(deprecated, non_upper_case_globals,)]
    pub const IN_IF_GUARD: Self = Self::from_bits_retain(1 << 4);
    #[doc = r" Used to detect the incorrect use of expressions in patterns."]
    #[doc = r""]
    #[doc =
    r" This is used for error handling while parsing a pattern. During"]
    #[doc =
    r" error recovery, this will be set to try to parse the pattern as an"]
    #[doc =
    r" expression, but halts parsing the expression when reaching certain"]
    #[doc = r" tokens like `=`."]
    #[allow(deprecated, non_upper_case_globals,)]
    pub const IS_PAT: Self = Self::from_bits_retain(1 << 5);
}
impl ::bitflags::Flags for Restrictions {
    const FLAGS: &'static [::bitflags::Flag<Restrictions>] =
        &[{

                        #[allow(deprecated, non_upper_case_globals,)]
                        ::bitflags::Flag::new("STMT_EXPR", Restrictions::STMT_EXPR)
                    },
                    {

                        #[allow(deprecated, non_upper_case_globals,)]
                        ::bitflags::Flag::new("NO_STRUCT_LITERAL",
                            Restrictions::NO_STRUCT_LITERAL)
                    },
                    {

                        #[allow(deprecated, non_upper_case_globals,)]
                        ::bitflags::Flag::new("CONST_EXPR",
                            Restrictions::CONST_EXPR)
                    },
                    {

                        #[allow(deprecated, non_upper_case_globals,)]
                        ::bitflags::Flag::new("ALLOW_LET", Restrictions::ALLOW_LET)
                    },
                    {

                        #[allow(deprecated, non_upper_case_globals,)]
                        ::bitflags::Flag::new("IN_IF_GUARD",
                            Restrictions::IN_IF_GUARD)
                    },
                    {

                        #[allow(deprecated, non_upper_case_globals,)]
                        ::bitflags::Flag::new("IS_PAT", Restrictions::IS_PAT)
                    }];
    type Bits = u8;
    fn bits(&self) -> u8 { Restrictions::bits(self) }
    fn from_bits_retain(bits: u8) -> Restrictions {
        Restrictions::from_bits_retain(bits)
    }
}
#[allow(dead_code, deprecated, unused_doc_comments, unused_attributes,
unused_mut, unused_imports, non_upper_case_globals, clippy ::
assign_op_pattern, clippy :: indexing_slicing, clippy :: same_name_method,
clippy :: iter_without_into_iter,)]
const _: () =
    {
        #[repr(transparent)]
        struct InternalBitFlags(u8);
        #[automatically_derived]
        #[doc(hidden)]
        unsafe impl ::core::clone::TrivialClone for InternalBitFlags { }
        #[automatically_derived]
        impl ::core::clone::Clone for InternalBitFlags {
            #[inline]
            fn clone(&self) -> InternalBitFlags {
                let _: ::core::clone::AssertParamIsClone<u8>;
                *self
            }
        }
        #[automatically_derived]
        impl ::core::marker::Copy for InternalBitFlags { }
        #[automatically_derived]
        impl ::core::marker::StructuralPartialEq for InternalBitFlags { }
        #[automatically_derived]
        impl ::core::cmp::PartialEq for InternalBitFlags {
            #[inline]
            fn eq(&self, other: &InternalBitFlags) -> bool {
                self.0 == other.0
            }
        }
        #[automatically_derived]
        impl ::core::cmp::Eq for InternalBitFlags {
            #[inline]
            #[doc(hidden)]
            #[coverage(off)]
            fn assert_fields_are_eq(&self) {
                let _: ::core::cmp::AssertParamIsEq<u8>;
            }
        }
        #[automatically_derived]
        impl ::core::cmp::PartialOrd for InternalBitFlags {
            #[inline]
            fn partial_cmp(&self, other: &InternalBitFlags)
                -> ::core::option::Option<::core::cmp::Ordering> {
                ::core::option::Option::Some(::core::cmp::Ord::cmp(self,
                        other))
            }
        }
        #[automatically_derived]
        impl ::core::cmp::Ord for InternalBitFlags {
            #[inline]
            fn cmp(&self, other: &InternalBitFlags) -> ::core::cmp::Ordering {
                ::core::cmp::Ord::cmp(&self.0, &other.0)
            }
        }
        #[automatically_derived]
        impl ::core::hash::Hash for InternalBitFlags {
            #[inline]
            fn hash<__H: ::core::hash::Hasher>(&self, state: &mut __H) {
                ::core::hash::Hash::hash(&self.0, state)
            }
        }
        impl ::bitflags::__private::PublicFlags for Restrictions {
            type Primitive = u8;
            type Internal = InternalBitFlags;
        }
        impl ::bitflags::__private::core::default::Default for
            InternalBitFlags {
            #[inline]
            fn default() -> Self { InternalBitFlags::empty() }
        }
        impl ::bitflags::__private::core::fmt::Debug for InternalBitFlags {
            fn fmt(&self,
                f: &mut ::bitflags::__private::core::fmt::Formatter<'_>)
                -> ::bitflags::__private::core::fmt::Result {
                if self.is_empty() {
                    f.write_fmt(format_args!("{0:#x}",
                            <u8 as ::bitflags::Bits>::EMPTY))
                } else {
                    ::bitflags::__private::core::fmt::Display::fmt(self, f)
                }
            }
        }
        impl ::bitflags::__private::core::fmt::Display for InternalBitFlags {
            fn fmt(&self,
                f: &mut ::bitflags::__private::core::fmt::Formatter<'_>)
                -> ::bitflags::__private::core::fmt::Result {
                ::bitflags::parser::to_writer(&Restrictions(*self), f)
            }
        }
        impl ::bitflags::__private::core::str::FromStr for InternalBitFlags {
            type Err = ::bitflags::parser::ParseError;
            fn from_str(s: &str)
                ->
                    ::bitflags::__private::core::result::Result<Self,
                    Self::Err> {
                ::bitflags::parser::from_str::<Restrictions>(s).map(|flags|
                        flags.0)
            }
        }
        impl ::bitflags::__private::core::convert::AsRef<u8> for
            InternalBitFlags {
            fn as_ref(&self) -> &u8 { &self.0 }
        }
        impl ::bitflags::__private::core::convert::From<u8> for
            InternalBitFlags {
            fn from(bits: u8) -> Self { Self::from_bits_retain(bits) }
        }
        #[allow(dead_code, deprecated, unused_attributes)]
        impl InternalBitFlags {
            /// Get a flags value with all bits unset.
            #[inline]
            pub const fn empty() -> Self {
                Self(<u8 as ::bitflags::Bits>::EMPTY)
            }
            /// Get a flags value with all known bits set.
            #[inline]
            pub const fn all() -> Self {
                let mut truncated = <u8 as ::bitflags::Bits>::EMPTY;
                let mut i = 0;
                {
                    {
                        let flag =
                            <Restrictions as
                                            ::bitflags::Flags>::FLAGS[i].value().bits();
                        truncated = truncated | flag;
                        i += 1;
                    }
                };
                {
                    {
                        let flag =
                            <Restrictions as
                                            ::bitflags::Flags>::FLAGS[i].value().bits();
                        truncated = truncated | flag;
                        i += 1;
                    }
                };
                {
                    {
                        let flag =
                            <Restrictions as
                                            ::bitflags::Flags>::FLAGS[i].value().bits();
                        truncated = truncated | flag;
                        i += 1;
                    }
                };
                {
                    {
                        let flag =
                            <Restrictions as
                                            ::bitflags::Flags>::FLAGS[i].value().bits();
                        truncated = truncated | flag;
                        i += 1;
                    }
                };
                {
                    {
                        let flag =
                            <Restrictions as
                                            ::bitflags::Flags>::FLAGS[i].value().bits();
                        truncated = truncated | flag;
                        i += 1;
                    }
                };
                {
                    {
                        let flag =
                            <Restrictions as
                                            ::bitflags::Flags>::FLAGS[i].value().bits();
                        truncated = truncated | flag;
                        i += 1;
                    }
                };
                let _ = i;
                Self(truncated)
            }
            /// Get the underlying bits value.
            ///
            /// The returned value is exactly the bits set in this flags value.
            #[inline]
            pub const fn bits(&self) -> u8 { self.0 }
            /// Convert from a bits value.
            ///
            /// This method will return `None` if any unknown bits are set.
            #[inline]
            pub const fn from_bits(bits: u8)
                -> ::bitflags::__private::core::option::Option<Self> {
                let truncated = Self::from_bits_truncate(bits).0;
                if truncated == bits {
                    ::bitflags::__private::core::option::Option::Some(Self(bits))
                } else { ::bitflags::__private::core::option::Option::None }
            }
            /// Convert from a bits value, unsetting any unknown bits.
            #[inline]
            pub const fn from_bits_truncate(bits: u8) -> Self {
                Self(bits & Self::all().0)
            }
            /// Convert from a bits value exactly.
            #[inline]
            pub const fn from_bits_retain(bits: u8) -> Self { Self(bits) }
            /// Get a flags value with the bits of a flag with the given name set.
            ///
            /// This method will return `None` if `name` is empty or doesn't
            /// correspond to any named flag.
            #[inline]
            pub fn from_name(name: &str)
                -> ::bitflags::__private::core::option::Option<Self> {
                {
                    if name == "STMT_EXPR" {
                        return ::bitflags::__private::core::option::Option::Some(Self(Restrictions::STMT_EXPR.bits()));
                    }
                };
                ;
                {
                    if name == "NO_STRUCT_LITERAL" {
                        return ::bitflags::__private::core::option::Option::Some(Self(Restrictions::NO_STRUCT_LITERAL.bits()));
                    }
                };
                ;
                {
                    if name == "CONST_EXPR" {
                        return ::bitflags::__private::core::option::Option::Some(Self(Restrictions::CONST_EXPR.bits()));
                    }
                };
                ;
                {
                    if name == "ALLOW_LET" {
                        return ::bitflags::__private::core::option::Option::Some(Self(Restrictions::ALLOW_LET.bits()));
                    }
                };
                ;
                {
                    if name == "IN_IF_GUARD" {
                        return ::bitflags::__private::core::option::Option::Some(Self(Restrictions::IN_IF_GUARD.bits()));
                    }
                };
                ;
                {
                    if name == "IS_PAT" {
                        return ::bitflags::__private::core::option::Option::Some(Self(Restrictions::IS_PAT.bits()));
                    }
                };
                ;
                let _ = name;
                ::bitflags::__private::core::option::Option::None
            }
            /// Whether all bits in this flags value are unset.
            #[inline]
            pub const fn is_empty(&self) -> bool {
                self.0 == <u8 as ::bitflags::Bits>::EMPTY
            }
            /// Whether all known bits in this flags value are set.
            #[inline]
            pub const fn is_all(&self) -> bool {
                Self::all().0 | self.0 == self.0
            }
            /// Whether any set bits in a source flags value are also set in a target flags value.
            #[inline]
            pub const fn intersects(&self, other: Self) -> bool {
                self.0 & other.0 != <u8 as ::bitflags::Bits>::EMPTY
            }
            /// Whether all set bits in a source flags value are also set in a target flags value.
            #[inline]
            pub const fn contains(&self, other: Self) -> bool {
                self.0 & other.0 == other.0
            }
            /// The bitwise or (`|`) of the bits in two flags values.
            #[inline]
            pub fn insert(&mut self, other: Self) {
                *self = Self(self.0).union(other);
            }
            /// The intersection of a source flags value with the complement of a target flags
            /// value (`&!`).
            ///
            /// This method is not equivalent to `self & !other` when `other` has unknown bits set.
            /// `remove` won't truncate `other`, but the `!` operator will.
            #[inline]
            pub fn remove(&mut self, other: Self) {
                *self = Self(self.0).difference(other);
            }
            /// The bitwise exclusive-or (`^`) of the bits in two flags values.
            #[inline]
            pub fn toggle(&mut self, other: Self) {
                *self = Self(self.0).symmetric_difference(other);
            }
            /// Call `insert` when `value` is `true` or `remove` when `value` is `false`.
            #[inline]
            pub fn set(&mut self, other: Self, value: bool) {
                if value { self.insert(other); } else { self.remove(other); }
            }
            /// The bitwise and (`&`) of the bits in two flags values.
            #[inline]
            #[must_use]
            pub const fn intersection(self, other: Self) -> Self {
                Self(self.0 & other.0)
            }
            /// The bitwise or (`|`) of the bits in two flags values.
            #[inline]
            #[must_use]
            pub const fn union(self, other: Self) -> Self {
                Self(self.0 | other.0)
            }
            /// The intersection of a source flags value with the complement of a target flags
            /// value (`&!`).
            ///
            /// This method is not equivalent to `self & !other` when `other` has unknown bits set.
            /// `difference` won't truncate `other`, but the `!` operator will.
            #[inline]
            #[must_use]
            pub const fn difference(self, other: Self) -> Self {
                Self(self.0 & !other.0)
            }
            /// The bitwise exclusive-or (`^`) of the bits in two flags values.
            #[inline]
            #[must_use]
            pub const fn symmetric_difference(self, other: Self) -> Self {
                Self(self.0 ^ other.0)
            }
            /// The bitwise negation (`!`) of the bits in a flags value, truncating the result.
            #[inline]
            #[must_use]
            pub const fn complement(self) -> Self {
                Self::from_bits_truncate(!self.0)
            }
        }
        impl ::bitflags::__private::core::fmt::Binary for InternalBitFlags {
            fn fmt(&self, f: &mut ::bitflags::__private::core::fmt::Formatter)
                -> ::bitflags::__private::core::fmt::Result {
                let inner = self.0;
                ::bitflags::__private::core::fmt::Binary::fmt(&inner, f)
            }
        }
        impl ::bitflags::__private::core::fmt::Octal for InternalBitFlags {
            fn fmt(&self, f: &mut ::bitflags::__private::core::fmt::Formatter)
                -> ::bitflags::__private::core::fmt::Result {
                let inner = self.0;
                ::bitflags::__private::core::fmt::Octal::fmt(&inner, f)
            }
        }
        impl ::bitflags::__private::core::fmt::LowerHex for InternalBitFlags {
            fn fmt(&self, f: &mut ::bitflags::__private::core::fmt::Formatter)
                -> ::bitflags::__private::core::fmt::Result {
                let inner = self.0;
                ::bitflags::__private::core::fmt::LowerHex::fmt(&inner, f)
            }
        }
        impl ::bitflags::__private::core::fmt::UpperHex for InternalBitFlags {
            fn fmt(&self, f: &mut ::bitflags::__private::core::fmt::Formatter)
                -> ::bitflags::__private::core::fmt::Result {
                let inner = self.0;
                ::bitflags::__private::core::fmt::UpperHex::fmt(&inner, f)
            }
        }
        impl ::bitflags::__private::core::ops::BitOr for InternalBitFlags {
            type Output = Self;
            /// The bitwise or (`|`) of the bits in two flags values.
            #[inline]
            fn bitor(self, other: InternalBitFlags) -> Self {
                self.union(other)
            }
        }
        impl ::bitflags::__private::core::ops::BitOrAssign for
            InternalBitFlags {
            /// The bitwise or (`|`) of the bits in two flags values.
            #[inline]
            fn bitor_assign(&mut self, other: Self) { self.insert(other); }
        }
        impl ::bitflags::__private::core::ops::BitXor for InternalBitFlags {
            type Output = Self;
            /// The bitwise exclusive-or (`^`) of the bits in two flags values.
            #[inline]
            fn bitxor(self, other: Self) -> Self {
                self.symmetric_difference(other)
            }
        }
        impl ::bitflags::__private::core::ops::BitXorAssign for
            InternalBitFlags {
            /// The bitwise exclusive-or (`^`) of the bits in two flags values.
            #[inline]
            fn bitxor_assign(&mut self, other: Self) { self.toggle(other); }
        }
        impl ::bitflags::__private::core::ops::BitAnd for InternalBitFlags {
            type Output = Self;
            /// The bitwise and (`&`) of the bits in two flags values.
            #[inline]
            fn bitand(self, other: Self) -> Self { self.intersection(other) }
        }
        impl ::bitflags::__private::core::ops::BitAndAssign for
            InternalBitFlags {
            /// The bitwise and (`&`) of the bits in two flags values.
            #[inline]
            fn bitand_assign(&mut self, other: Self) {
                *self =
                    Self::from_bits_retain(self.bits()).intersection(other);
            }
        }
        impl ::bitflags::__private::core::ops::Sub for InternalBitFlags {
            type Output = Self;
            /// The intersection of a source flags value with the complement of a target flags value (`&!`).
            ///
            /// This method is not equivalent to `self & !other` when `other` has unknown bits set.
            /// `difference` won't truncate `other`, but the `!` operator will.
            #[inline]
            fn sub(self, other: Self) -> Self { self.difference(other) }
        }
        impl ::bitflags::__private::core::ops::SubAssign for InternalBitFlags
            {
            /// The intersection of a source flags value with the complement of a target flags value (`&!`).
            ///
            /// This method is not equivalent to `self & !other` when `other` has unknown bits set.
            /// `difference` won't truncate `other`, but the `!` operator will.
            #[inline]
            fn sub_assign(&mut self, other: Self) { self.remove(other); }
        }
        impl ::bitflags::__private::core::ops::Not for InternalBitFlags {
            type Output = Self;
            /// The bitwise negation (`!`) of the bits in a flags value, truncating the result.
            #[inline]
            fn not(self) -> Self { self.complement() }
        }
        impl ::bitflags::__private::core::iter::Extend<InternalBitFlags> for
            InternalBitFlags {
            /// The bitwise or (`|`) of the bits in each flags value.
            fn extend<T: ::bitflags::__private::core::iter::IntoIterator<Item
                = Self>>(&mut self, iterator: T) {
                for item in iterator { self.insert(item) }
            }
        }
        impl ::bitflags::__private::core::iter::FromIterator<InternalBitFlags>
            for InternalBitFlags {
            /// The bitwise or (`|`) of the bits in each flags value.
            fn from_iter<T: ::bitflags::__private::core::iter::IntoIterator<Item
                = Self>>(iterator: T) -> Self {
                use ::bitflags::__private::core::iter::Extend;
                let mut result = Self::empty();
                result.extend(iterator);
                result
            }
        }
        impl InternalBitFlags {
            /// Yield a set of contained flags values.
            ///
            /// Each yielded flags value will correspond to a defined named flag. Any unknown bits
            /// will be yielded together as a final flags value.
            #[inline]
            pub const fn iter(&self) -> ::bitflags::iter::Iter<Restrictions> {
                ::bitflags::iter::Iter::__private_const_new(<Restrictions as
                        ::bitflags::Flags>::FLAGS,
                    Restrictions::from_bits_retain(self.bits()),
                    Restrictions::from_bits_retain(self.bits()))
            }
            /// Yield a set of contained named flags values.
            ///
            /// This method is like [`iter`](#method.iter), except only yields bits in contained named flags.
            /// Any unknown bits, or bits not corresponding to a contained flag will not be yielded.
            #[inline]
            pub const fn iter_names(&self)
                -> ::bitflags::iter::IterNames<Restrictions> {
                ::bitflags::iter::IterNames::__private_const_new(<Restrictions
                        as ::bitflags::Flags>::FLAGS,
                    Restrictions::from_bits_retain(self.bits()),
                    Restrictions::from_bits_retain(self.bits()))
            }
        }
        impl ::bitflags::__private::core::iter::IntoIterator for
            InternalBitFlags {
            type Item = Restrictions;
            type IntoIter = ::bitflags::iter::Iter<Restrictions>;
            fn into_iter(self) -> Self::IntoIter { self.iter() }
        }
        impl InternalBitFlags {
            /// Returns a mutable reference to the raw value of the flags currently stored.
            #[inline]
            pub fn bits_mut(&mut self) -> &mut u8 { &mut self.0 }
        }
        #[allow(dead_code, deprecated, unused_attributes)]
        impl Restrictions {
            /// Get a flags value with all bits unset.
            #[inline]
            pub const fn empty() -> Self { Self(InternalBitFlags::empty()) }
            /// Get a flags value with all known bits set.
            #[inline]
            pub const fn all() -> Self { Self(InternalBitFlags::all()) }
            /// Get the underlying bits value.
            ///
            /// The returned value is exactly the bits set in this flags value.
            #[inline]
            pub const fn bits(&self) -> u8 { self.0.bits() }
            /// Convert from a bits value.
            ///
            /// This method will return `None` if any unknown bits are set.
            #[inline]
            pub const fn from_bits(bits: u8)
                -> ::bitflags::__private::core::option::Option<Self> {
                match InternalBitFlags::from_bits(bits) {
                    ::bitflags::__private::core::option::Option::Some(bits) =>
                        ::bitflags::__private::core::option::Option::Some(Self(bits)),
                    ::bitflags::__private::core::option::Option::None =>
                        ::bitflags::__private::core::option::Option::None,
                }
            }
            /// Convert from a bits value, unsetting any unknown bits.
            #[inline]
            pub const fn from_bits_truncate(bits: u8) -> Self {
                Self(InternalBitFlags::from_bits_truncate(bits))
            }
            /// Convert from a bits value exactly.
            #[inline]
            pub const fn from_bits_retain(bits: u8) -> Self {
                Self(InternalBitFlags::from_bits_retain(bits))
            }
            /// Get a flags value with the bits of a flag with the given name set.
            ///
            /// This method will return `None` if `name` is empty or doesn't
            /// correspond to any named flag.
            #[inline]
            pub fn from_name(name: &str)
                -> ::bitflags::__private::core::option::Option<Self> {
                match InternalBitFlags::from_name(name) {
                    ::bitflags::__private::core::option::Option::Some(bits) =>
                        ::bitflags::__private::core::option::Option::Some(Self(bits)),
                    ::bitflags::__private::core::option::Option::None =>
                        ::bitflags::__private::core::option::Option::None,
                }
            }
            /// Whether all bits in this flags value are unset.
            #[inline]
            pub const fn is_empty(&self) -> bool { self.0.is_empty() }
            /// Whether all known bits in this flags value are set.
            #[inline]
            pub const fn is_all(&self) -> bool { self.0.is_all() }
            /// Whether any set bits in a source flags value are also set in a target flags value.
            #[inline]
            pub const fn intersects(&self, other: Self) -> bool {
                self.0.intersects(other.0)
            }
            /// Whether all set bits in a source flags value are also set in a target flags value.
            #[inline]
            pub const fn contains(&self, other: Self) -> bool {
                self.0.contains(other.0)
            }
            /// The bitwise or (`|`) of the bits in two flags values.
            #[inline]
            pub fn insert(&mut self, other: Self) { self.0.insert(other.0) }
            /// The intersection of a source flags value with the complement of a target flags
            /// value (`&!`).
            ///
            /// This method is not equivalent to `self & !other` when `other` has unknown bits set.
            /// `remove` won't truncate `other`, but the `!` operator will.
            #[inline]
            pub fn remove(&mut self, other: Self) { self.0.remove(other.0) }
            /// The bitwise exclusive-or (`^`) of the bits in two flags values.
            #[inline]
            pub fn toggle(&mut self, other: Self) { self.0.toggle(other.0) }
            /// Call `insert` when `value` is `true` or `remove` when `value` is `false`.
            #[inline]
            pub fn set(&mut self, other: Self, value: bool) {
                self.0.set(other.0, value)
            }
            /// The bitwise and (`&`) of the bits in two flags values.
            #[inline]
            #[must_use]
            pub const fn intersection(self, other: Self) -> Self {
                Self(self.0.intersection(other.0))
            }
            /// The bitwise or (`|`) of the bits in two flags values.
            #[inline]
            #[must_use]
            pub const fn union(self, other: Self) -> Self {
                Self(self.0.union(other.0))
            }
            /// The intersection of a source flags value with the complement of a target flags
            /// value (`&!`).
            ///
            /// This method is not equivalent to `self & !other` when `other` has unknown bits set.
            /// `difference` won't truncate `other`, but the `!` operator will.
            #[inline]
            #[must_use]
            pub const fn difference(self, other: Self) -> Self {
                Self(self.0.difference(other.0))
            }
            /// The bitwise exclusive-or (`^`) of the bits in two flags values.
            #[inline]
            #[must_use]
            pub const fn symmetric_difference(self, other: Self) -> Self {
                Self(self.0.symmetric_difference(other.0))
            }
            /// The bitwise negation (`!`) of the bits in a flags value, truncating the result.
            #[inline]
            #[must_use]
            pub const fn complement(self) -> Self {
                Self(self.0.complement())
            }
        }
        impl ::bitflags::__private::core::fmt::Binary for Restrictions {
            fn fmt(&self, f: &mut ::bitflags::__private::core::fmt::Formatter)
                -> ::bitflags::__private::core::fmt::Result {
                let inner = self.0;
                ::bitflags::__private::core::fmt::Binary::fmt(&inner, f)
            }
        }
        impl ::bitflags::__private::core::fmt::Octal for Restrictions {
            fn fmt(&self, f: &mut ::bitflags::__private::core::fmt::Formatter)
                -> ::bitflags::__private::core::fmt::Result {
                let inner = self.0;
                ::bitflags::__private::core::fmt::Octal::fmt(&inner, f)
            }
        }
        impl ::bitflags::__private::core::fmt::LowerHex for Restrictions {
            fn fmt(&self, f: &mut ::bitflags::__private::core::fmt::Formatter)
                -> ::bitflags::__private::core::fmt::Result {
                let inner = self.0;
                ::bitflags::__private::core::fmt::LowerHex::fmt(&inner, f)
            }
        }
        impl ::bitflags::__private::core::fmt::UpperHex for Restrictions {
            fn fmt(&self, f: &mut ::bitflags::__private::core::fmt::Formatter)
                -> ::bitflags::__private::core::fmt::Result {
                let inner = self.0;
                ::bitflags::__private::core::fmt::UpperHex::fmt(&inner, f)
            }
        }
        impl ::bitflags::__private::core::ops::BitOr for Restrictions {
            type Output = Self;
            /// The bitwise or (`|`) of the bits in two flags values.
            #[inline]
            fn bitor(self, other: Restrictions) -> Self { self.union(other) }
        }
        impl ::bitflags::__private::core::ops::BitOrAssign for Restrictions {
            /// The bitwise or (`|`) of the bits in two flags values.
            #[inline]
            fn bitor_assign(&mut self, other: Self) { self.insert(other); }
        }
        impl ::bitflags::__private::core::ops::BitXor for Restrictions {
            type Output = Self;
            /// The bitwise exclusive-or (`^`) of the bits in two flags values.
            #[inline]
            fn bitxor(self, other: Self) -> Self {
                self.symmetric_difference(other)
            }
        }
        impl ::bitflags::__private::core::ops::BitXorAssign for Restrictions {
            /// The bitwise exclusive-or (`^`) of the bits in two flags values.
            #[inline]
            fn bitxor_assign(&mut self, other: Self) { self.toggle(other); }
        }
        impl ::bitflags::__private::core::ops::BitAnd for Restrictions {
            type Output = Self;
            /// The bitwise and (`&`) of the bits in two flags values.
            #[inline]
            fn bitand(self, other: Self) -> Self { self.intersection(other) }
        }
        impl ::bitflags::__private::core::ops::BitAndAssign for Restrictions {
            /// The bitwise and (`&`) of the bits in two flags values.
            #[inline]
            fn bitand_assign(&mut self, other: Self) {
                *self =
                    Self::from_bits_retain(self.bits()).intersection(other);
            }
        }
        impl ::bitflags::__private::core::ops::Sub for Restrictions {
            type Output = Self;
            /// The intersection of a source flags value with the complement of a target flags value (`&!`).
            ///
            /// This method is not equivalent to `self & !other` when `other` has unknown bits set.
            /// `difference` won't truncate `other`, but the `!` operator will.
            #[inline]
            fn sub(self, other: Self) -> Self { self.difference(other) }
        }
        impl ::bitflags::__private::core::ops::SubAssign for Restrictions {
            /// The intersection of a source flags value with the complement of a target flags value (`&!`).
            ///
            /// This method is not equivalent to `self & !other` when `other` has unknown bits set.
            /// `difference` won't truncate `other`, but the `!` operator will.
            #[inline]
            fn sub_assign(&mut self, other: Self) { self.remove(other); }
        }
        impl ::bitflags::__private::core::ops::Not for Restrictions {
            type Output = Self;
            /// The bitwise negation (`!`) of the bits in a flags value, truncating the result.
            #[inline]
            fn not(self) -> Self { self.complement() }
        }
        impl ::bitflags::__private::core::iter::Extend<Restrictions> for
            Restrictions {
            /// The bitwise or (`|`) of the bits in each flags value.
            fn extend<T: ::bitflags::__private::core::iter::IntoIterator<Item
                = Self>>(&mut self, iterator: T) {
                for item in iterator { self.insert(item) }
            }
        }
        impl ::bitflags::__private::core::iter::FromIterator<Restrictions> for
            Restrictions {
            /// The bitwise or (`|`) of the bits in each flags value.
            fn from_iter<T: ::bitflags::__private::core::iter::IntoIterator<Item
                = Self>>(iterator: T) -> Self {
                use ::bitflags::__private::core::iter::Extend;
                let mut result = Self::empty();
                result.extend(iterator);
                result
            }
        }
        impl Restrictions {
            /// Yield a set of contained flags values.
            ///
            /// Each yielded flags value will correspond to a defined named flag. Any unknown bits
            /// will be yielded together as a final flags value.
            #[inline]
            pub const fn iter(&self) -> ::bitflags::iter::Iter<Restrictions> {
                ::bitflags::iter::Iter::__private_const_new(<Restrictions as
                        ::bitflags::Flags>::FLAGS,
                    Restrictions::from_bits_retain(self.bits()),
                    Restrictions::from_bits_retain(self.bits()))
            }
            /// Yield a set of contained named flags values.
            ///
            /// This method is like [`iter`](#method.iter), except only yields bits in contained named flags.
            /// Any unknown bits, or bits not corresponding to a contained flag will not be yielded.
            #[inline]
            pub const fn iter_names(&self)
                -> ::bitflags::iter::IterNames<Restrictions> {
                ::bitflags::iter::IterNames::__private_const_new(<Restrictions
                        as ::bitflags::Flags>::FLAGS,
                    Restrictions::from_bits_retain(self.bits()),
                    Restrictions::from_bits_retain(self.bits()))
            }
        }
        impl ::bitflags::__private::core::iter::IntoIterator for Restrictions
            {
            type Item = Restrictions;
            type IntoIter = ::bitflags::iter::Iter<Restrictions>;
            fn into_iter(self) -> Self::IntoIter { self.iter() }
        }
    };Clone, #[automatically_derived]
impl ::core::marker::Copy for Restrictions { }Copy, #[automatically_derived]
impl ::core::fmt::Debug for Restrictions {
    #[inline]
    fn fmt(&self, f: &mut ::core::fmt::Formatter) -> ::core::fmt::Result {
        ::core::fmt::Formatter::debug_tuple_field1_finish(f, "Restrictions",
            &&self.0)
    }
}Debug)]
77    struct Restrictions: u8 {
78        /// Restricts expressions for use in statement position.
79        ///
80        /// When expressions are used in various places, like statements or
81        /// match arms, this is used to stop parsing once certain tokens are
82        /// reached.
83        ///
84        /// For example, `if true {} & 1` with `STMT_EXPR` in effect is parsed
85        /// as two separate expression statements (`if` and a reference to 1).
86        /// Otherwise it is parsed as a bitwise AND where `if` is on the left
87        /// and 1 is on the right.
88        const STMT_EXPR         = 1 << 0;
89        /// Do not allow struct literals.
90        ///
91        /// There are several places in the grammar where we don't want to
92        /// allow struct literals because they can require lookahead, or
93        /// otherwise could be ambiguous or cause confusion. For example,
94        /// `if Foo {} {}` isn't clear if it is `Foo{}` struct literal, or
95        /// just `Foo` is the condition, followed by a consequent block,
96        /// followed by an empty block.
97        ///
98        /// See [RFC 92](https://rust-lang.github.io/rfcs/0092-struct-grammar.html).
99        const NO_STRUCT_LITERAL = 1 << 1;
100        /// Used to provide better error messages for const generic arguments.
101        ///
102        /// An un-braced const generic argument is limited to a very small
103        /// subset of expressions. This is used to detect the situation where
104        /// an expression outside of that subset is used, and to suggest to
105        /// wrap the expression in braces.
106        const CONST_EXPR        = 1 << 2;
107        /// Allows `let` expressions.
108        ///
109        /// `let pattern = scrutinee` is parsed as an expression, but it is
110        /// only allowed in let chains (`if` and `while` conditions).
111        /// Otherwise it is not an expression (note that `let` in statement
112        /// positions is treated as a `StmtKind::Let` statement, which has a
113        /// slightly different grammar).
114        const ALLOW_LET         = 1 << 3;
115        /// Used to detect a missing `=>` in a match guard.
116        ///
117        /// This is used for error handling in a match guard to give a better
118        /// error message if the `=>` is missing. It is set when parsing the
119        /// guard expression.
120        const IN_IF_GUARD       = 1 << 4;
121        /// Used to detect the incorrect use of expressions in patterns.
122        ///
123        /// This is used for error handling while parsing a pattern. During
124        /// error recovery, this will be set to try to parse the pattern as an
125        /// expression, but halts parsing the expression when reaching certain
126        /// tokens like `=`.
127        const IS_PAT            = 1 << 5;
128    }
129}
130
131#[derive(#[automatically_derived]
impl ::core::clone::Clone for SemiColonMode {
    #[inline]
    fn clone(&self) -> SemiColonMode { *self }
}Clone, #[automatically_derived]
impl ::core::marker::Copy for SemiColonMode { }Copy, #[automatically_derived]
impl ::core::cmp::PartialEq for SemiColonMode {
    #[inline]
    fn eq(&self, other: &SemiColonMode) -> bool {
        let __self_discr = ::core::intrinsics::discriminant_value(self);
        let __arg1_discr = ::core::intrinsics::discriminant_value(other);
        __self_discr == __arg1_discr
    }
}PartialEq, #[automatically_derived]
impl ::core::fmt::Debug for SemiColonMode {
    #[inline]
    fn fmt(&self, f: &mut ::core::fmt::Formatter) -> ::core::fmt::Result {
        ::core::fmt::Formatter::write_str(f,
            match self {
                SemiColonMode::Break => "Break",
                SemiColonMode::Ignore => "Ignore",
                SemiColonMode::Comma => "Comma",
            })
    }
}Debug)]
132enum SemiColonMode {
133    Break,
134    Ignore,
135    Comma,
136}
137
138#[derive(#[automatically_derived]
impl ::core::clone::Clone for BlockMode {
    #[inline]
    fn clone(&self) -> BlockMode { *self }
}Clone, #[automatically_derived]
impl ::core::marker::Copy for BlockMode { }Copy, #[automatically_derived]
impl ::core::cmp::PartialEq for BlockMode {
    #[inline]
    fn eq(&self, other: &BlockMode) -> bool {
        let __self_discr = ::core::intrinsics::discriminant_value(self);
        let __arg1_discr = ::core::intrinsics::discriminant_value(other);
        __self_discr == __arg1_discr
    }
}PartialEq, #[automatically_derived]
impl ::core::fmt::Debug for BlockMode {
    #[inline]
    fn fmt(&self, f: &mut ::core::fmt::Formatter) -> ::core::fmt::Result {
        ::core::fmt::Formatter::write_str(f,
            match self {
                BlockMode::Break => "Break",
                BlockMode::Ignore => "Ignore",
            })
    }
}Debug)]
139enum BlockMode {
140    Break,
141    Ignore,
142}
143
144/// Whether or not we should force collection of tokens for an AST node,
145/// regardless of whether or not it has attributes
146#[derive(#[automatically_derived]
impl ::core::clone::Clone for ForceCollect {
    #[inline]
    fn clone(&self) -> ForceCollect { *self }
}Clone, #[automatically_derived]
impl ::core::marker::Copy for ForceCollect { }Copy, #[automatically_derived]
impl ::core::fmt::Debug for ForceCollect {
    #[inline]
    fn fmt(&self, f: &mut ::core::fmt::Formatter) -> ::core::fmt::Result {
        ::core::fmt::Formatter::write_str(f,
            match self {
                ForceCollect::Yes => "Yes",
                ForceCollect::No => "No",
            })
    }
}Debug, #[automatically_derived]
impl ::core::cmp::PartialEq for ForceCollect {
    #[inline]
    fn eq(&self, other: &ForceCollect) -> bool {
        let __self_discr = ::core::intrinsics::discriminant_value(self);
        let __arg1_discr = ::core::intrinsics::discriminant_value(other);
        __self_discr == __arg1_discr
    }
}PartialEq)]
147pub enum ForceCollect {
148    Yes,
149    No,
150}
151
152/// Whether to accept `const { ... }` as a shorthand for `const _: () = const { ... }`.
153#[derive(#[automatically_derived]
impl ::core::clone::Clone for AllowConstBlockItems {
    #[inline]
    fn clone(&self) -> AllowConstBlockItems { *self }
}Clone, #[automatically_derived]
impl ::core::marker::Copy for AllowConstBlockItems { }Copy, #[automatically_derived]
impl ::core::fmt::Debug for AllowConstBlockItems {
    #[inline]
    fn fmt(&self, f: &mut ::core::fmt::Formatter) -> ::core::fmt::Result {
        ::core::fmt::Formatter::write_str(f,
            match self {
                AllowConstBlockItems::Yes => "Yes",
                AllowConstBlockItems::No => "No",
                AllowConstBlockItems::DoesNotMatter => "DoesNotMatter",
            })
    }
}Debug, #[automatically_derived]
impl ::core::cmp::PartialEq for AllowConstBlockItems {
    #[inline]
    fn eq(&self, other: &AllowConstBlockItems) -> bool {
        let __self_discr = ::core::intrinsics::discriminant_value(self);
        let __arg1_discr = ::core::intrinsics::discriminant_value(other);
        __self_discr == __arg1_discr
    }
}PartialEq, #[automatically_derived]
impl ::core::cmp::Eq for AllowConstBlockItems {
    #[inline]
    #[doc(hidden)]
    #[coverage(off)]
    fn assert_fields_are_eq(&self) {}
}Eq)]
154pub enum AllowConstBlockItems {
155    Yes,
156    No,
157    DoesNotMatter,
158}
159
160/// If the next tokens are ill-formed `$ty::` recover them as `<$ty>::`.
161#[macro_export]
162macro_rules! maybe_recover_from_interpolated_ty_qpath {
163    ($self: expr, $allow_qpath_recovery: expr) => {
164        if $allow_qpath_recovery
165            && $self.may_recover()
166            && let Some(mv_kind) = $self.token.is_metavar_seq()
167            && let token::MetaVarKind::Ty { .. } = mv_kind
168            && $self.check_noexpect_past_close_delim(&token::PathSep)
169        {
170            // Reparse the type, then move to recovery.
171            let ty = $self
172                .eat_metavar_seq(mv_kind, |this| this.parse_ty_no_question_mark_recover())
173                .expect("metavar seq ty");
174
175            return $self.maybe_recover_from_bad_qpath_stage_2($self.prev_token.span, ty);
176        }
177    };
178}
179
180#[derive(#[automatically_derived]
impl ::core::clone::Clone for Recovery {
    #[inline]
    fn clone(&self) -> Recovery { *self }
}Clone, #[automatically_derived]
impl ::core::marker::Copy for Recovery { }Copy, #[automatically_derived]
impl ::core::fmt::Debug for Recovery {
    #[inline]
    fn fmt(&self, f: &mut ::core::fmt::Formatter) -> ::core::fmt::Result {
        ::core::fmt::Formatter::write_str(f,
            match self {
                Recovery::Allowed => "Allowed",
                Recovery::Forbidden => "Forbidden",
            })
    }
}Debug)]
181pub enum Recovery {
182    Allowed,
183    Forbidden,
184}
185
186#[derive(#[automatically_derived]
impl<'a> ::core::clone::Clone for Parser<'a> {
    #[inline]
    fn clone(&self) -> Parser<'a> {
        Parser {
            psess: ::core::clone::Clone::clone(&self.psess),
            token: ::core::clone::Clone::clone(&self.token),
            token_spacing: ::core::clone::Clone::clone(&self.token_spacing),
            prev_token: ::core::clone::Clone::clone(&self.prev_token),
            capture_cfg: ::core::clone::Clone::clone(&self.capture_cfg),
            restrictions: ::core::clone::Clone::clone(&self.restrictions),
            expected_token_types: ::core::clone::Clone::clone(&self.expected_token_types),
            token_cursor: ::core::clone::Clone::clone(&self.token_cursor),
            num_bump_calls: ::core::clone::Clone::clone(&self.num_bump_calls),
            break_last_token: ::core::clone::Clone::clone(&self.break_last_token),
            unmatched_angle_bracket_count: ::core::clone::Clone::clone(&self.unmatched_angle_bracket_count),
            angle_bracket_nesting: ::core::clone::Clone::clone(&self.angle_bracket_nesting),
            parsing_generics: ::core::clone::Clone::clone(&self.parsing_generics),
            last_unexpected_token_span: ::core::clone::Clone::clone(&self.last_unexpected_token_span),
            subparser_name: ::core::clone::Clone::clone(&self.subparser_name),
            capture_state: ::core::clone::Clone::clone(&self.capture_state),
            current_closure: ::core::clone::Clone::clone(&self.current_closure),
            recovery: ::core::clone::Clone::clone(&self.recovery),
            in_fn_body: ::core::clone::Clone::clone(&self.in_fn_body),
            fn_body_missing_semi_guar: ::core::clone::Clone::clone(&self.fn_body_missing_semi_guar),
        }
    }
}Clone)]
187pub struct Parser<'a> {
188    pub psess: &'a ParseSess,
189    /// The current token.
190    pub token: Token = Token::dummy(),
191    /// The spacing for the current token.
192    token_spacing: Spacing = Spacing::Alone,
193    /// The previous token.
194    pub prev_token: Token = Token::dummy(),
195    pub capture_cfg: bool = false,
196    restrictions: Restrictions = Restrictions::empty(),
197    expected_token_types: TokenTypeSet = TokenTypeSet::new(),
198    token_cursor: TokenCursor,
199    // The number of calls to `bump`, i.e. the position in the token stream.
200    num_bump_calls: u32 = 0,
201    // During parsing we may sometimes need to "unglue" a glued token into two
202    // or three component tokens (e.g. `>>` into `>` and `>`, or `>>=` into `>`
203    // and `>` and `=`), so the parser can consume them one at a time. This
204    // process bypasses the normal capturing mechanism (e.g. `num_bump_calls`
205    // will not be incremented), since the "unglued" tokens due not exist in
206    // the original `TokenStream`.
207    //
208    // If we end up consuming all the component tokens, this is not an issue,
209    // because we'll end up capturing the single "glued" token.
210    //
211    // However, sometimes we may want to capture not all of the original
212    // token. For example, capturing the `Vec<u8>` in `Option<Vec<u8>>`
213    // requires us to unglue the trailing `>>` token. The `break_last_token`
214    // field is used to track these tokens. They get appended to the captured
215    // stream when we evaluate a `LazyAttrTokenStream`.
216    //
217    // This value is always 0, 1, or 2. It can only reach 2 when splitting
218    // `>>=` or `<<=`.
219    break_last_token: u32 = 0,
220    /// This field is used to keep track of how many left angle brackets we have seen. This is
221    /// required in order to detect extra leading left angle brackets (`<` characters) and error
222    /// appropriately.
223    ///
224    /// See the comments in the `parse_path_segment` function for more details.
225    unmatched_angle_bracket_count: u16 = 0,
226    angle_bracket_nesting: u16 = 0,
227    /// Keep track of when we're within `<...>` for proper error recovery.
228    parsing_generics: bool = false,
229
230    last_unexpected_token_span: Option<Span> = None,
231    /// If present, this `Parser` is not parsing Rust code but rather a macro call.
232    subparser_name: Option<&'static str>,
233    capture_state: CaptureState,
234    /// This allows us to recover when the user forget to add braces around
235    /// multiple statements in the closure body.
236    current_closure: Option<ClosureSpans> = None,
237    /// Whether the parser is allowed to do recovery.
238    /// This is disabled when parsing macro arguments, see #103534
239    recovery: Recovery = Recovery::Allowed,
240    /// Whether we're parsing a function body.
241    in_fn_body: bool = false,
242    /// Whether we have detected a missing semicolon in function body.
243    pub fn_body_missing_semi_guar: Option<ErrorGuaranteed> = None,
244}
245
246// This type is used a lot, e.g. it's cloned when matching many declarative macro rules with
247// nonterminals. Make sure it doesn't unintentionally get bigger. We only check a few arches
248// though, because `TokenTypeSet(u128)` alignment varies on others, changing the total size.
249#[cfg(all(target_pointer_width = "64", any(target_arch = "aarch64", target_arch = "x86_64")))]
250const _: [(); 288] = [(); ::std::mem::size_of::<Parser<'_>>()];rustc_data_structures::static_assert_size!(Parser<'_>, 288);
251
252/// Stores span information about a closure.
253#[derive(#[automatically_derived]
impl ::core::clone::Clone for ClosureSpans {
    #[inline]
    fn clone(&self) -> ClosureSpans {
        ClosureSpans {
            whole_closure: ::core::clone::Clone::clone(&self.whole_closure),
            closing_pipe: ::core::clone::Clone::clone(&self.closing_pipe),
            body: ::core::clone::Clone::clone(&self.body),
        }
    }
}Clone, #[automatically_derived]
impl ::core::fmt::Debug for ClosureSpans {
    #[inline]
    fn fmt(&self, f: &mut ::core::fmt::Formatter) -> ::core::fmt::Result {
        ::core::fmt::Formatter::debug_struct_field3_finish(f, "ClosureSpans",
            "whole_closure", &self.whole_closure, "closing_pipe",
            &self.closing_pipe, "body", &&self.body)
    }
}Debug)]
254struct ClosureSpans {
255    whole_closure: Span,
256    closing_pipe: Span,
257    body: Span,
258}
259
260/// Controls how we capture tokens. Capturing can be expensive,
261/// so we try to avoid performing capturing in cases where
262/// we will never need an `AttrTokenStream`.
263#[derive(#[automatically_derived]
impl ::core::marker::Copy for Capturing { }Copy, #[automatically_derived]
impl ::core::clone::Clone for Capturing {
    #[inline]
    fn clone(&self) -> Capturing { *self }
}Clone, #[automatically_derived]
impl ::core::fmt::Debug for Capturing {
    #[inline]
    fn fmt(&self, f: &mut ::core::fmt::Formatter) -> ::core::fmt::Result {
        ::core::fmt::Formatter::write_str(f,
            match self { Capturing::No => "No", Capturing::Yes => "Yes", })
    }
}Debug)]
264enum Capturing {
265    /// We aren't performing any capturing - this is the default mode.
266    No,
267    /// We are capturing tokens
268    Yes,
269}
270
271// This state is used by `Parser::collect_tokens`.
272#[derive(#[automatically_derived]
impl ::core::clone::Clone for CaptureState {
    #[inline]
    fn clone(&self) -> CaptureState {
        CaptureState {
            capturing: ::core::clone::Clone::clone(&self.capturing),
            parser_replacements: ::core::clone::Clone::clone(&self.parser_replacements),
            inner_attr_parser_ranges: ::core::clone::Clone::clone(&self.inner_attr_parser_ranges),
            seen_attrs: ::core::clone::Clone::clone(&self.seen_attrs),
        }
    }
}Clone, #[automatically_derived]
impl ::core::fmt::Debug for CaptureState {
    #[inline]
    fn fmt(&self, f: &mut ::core::fmt::Formatter) -> ::core::fmt::Result {
        ::core::fmt::Formatter::debug_struct_field4_finish(f, "CaptureState",
            "capturing", &self.capturing, "parser_replacements",
            &self.parser_replacements, "inner_attr_parser_ranges",
            &self.inner_attr_parser_ranges, "seen_attrs", &&self.seen_attrs)
    }
}Debug)]
273struct CaptureState {
274    capturing: Capturing,
275    parser_replacements: Vec<ParserReplacement>,
276    inner_attr_parser_ranges: FxHashMap<AttrId, ParserRange>,
277    // `IntervalSet` is good for perf because attrs are mostly added to this
278    // set in contiguous ranges.
279    seen_attrs: IntervalSet<AttrId>,
280}
281
282/// A sequence separator.
283#[derive(#[automatically_derived]
impl ::core::fmt::Debug for SeqSep {
    #[inline]
    fn fmt(&self, f: &mut ::core::fmt::Formatter) -> ::core::fmt::Result {
        ::core::fmt::Formatter::debug_struct_field2_finish(f, "SeqSep", "sep",
            &self.sep, "trailing_sep_allowed", &&self.trailing_sep_allowed)
    }
}Debug)]
284struct SeqSep {
285    /// The separator token.
286    sep: Option<ExpTokenPair>,
287    /// `true` if a trailing separator is allowed.
288    trailing_sep_allowed: bool,
289}
290
291impl SeqSep {
292    fn trailing_allowed(sep: ExpTokenPair) -> SeqSep {
293        SeqSep { sep: Some(sep), trailing_sep_allowed: true }
294    }
295
296    fn none() -> SeqSep {
297        SeqSep { sep: None, trailing_sep_allowed: false }
298    }
299}
300
301/// Whether parsing `impl` or `mut` restrictions.
302#[derive(#[automatically_derived]
impl ::core::clone::Clone for ParsingRestrictionKind {
    #[inline]
    fn clone(&self) -> ParsingRestrictionKind { *self }
}Clone, #[automatically_derived]
impl ::core::marker::Copy for ParsingRestrictionKind { }Copy, #[automatically_derived]
impl ::core::fmt::Debug for ParsingRestrictionKind {
    #[inline]
    fn fmt(&self, f: &mut ::core::fmt::Formatter) -> ::core::fmt::Result {
        ::core::fmt::Formatter::write_str(f,
            match self {
                ParsingRestrictionKind::Impl => "Impl",
                ParsingRestrictionKind::Mut => "Mut",
            })
    }
}Debug)]
303enum ParsingRestrictionKind {
304    Impl,
305    Mut,
306}
307
308#[derive(#[automatically_derived]
impl ::core::fmt::Debug for FollowedByType {
    #[inline]
    fn fmt(&self, f: &mut ::core::fmt::Formatter) -> ::core::fmt::Result {
        ::core::fmt::Formatter::write_str(f,
            match self {
                FollowedByType::Yes => "Yes",
                FollowedByType::No => "No",
            })
    }
}Debug)]
309pub enum FollowedByType {
310    Yes,
311    No,
312}
313
314#[derive(#[automatically_derived]
impl ::core::marker::Copy for Trailing { }Copy, #[automatically_derived]
impl ::core::clone::Clone for Trailing {
    #[inline]
    fn clone(&self) -> Trailing { *self }
}Clone, #[automatically_derived]
impl ::core::fmt::Debug for Trailing {
    #[inline]
    fn fmt(&self, f: &mut ::core::fmt::Formatter) -> ::core::fmt::Result {
        ::core::fmt::Formatter::write_str(f,
            match self { Trailing::No => "No", Trailing::Yes => "Yes", })
    }
}Debug)]
315pub enum Trailing {
316    No,
317    Yes,
318}
319
320impl From<bool> for Trailing {
321    fn from(b: bool) -> Trailing {
322        if b { Trailing::Yes } else { Trailing::No }
323    }
324}
325
326pub fn token_descr(token: &Token) -> String {
327    let s = pprust::token_to_string(token).to_string();
328
329    match (TokenDescription::from_token(token), &token.kind) {
330        (Some(TokenDescription::ReservedIdentifier), _) => ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("reserved identifier `{0}`", s))
    })format!("reserved identifier `{s}`"),
331        (Some(TokenDescription::Keyword), _) => ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("keyword `{0}`", s))
    })format!("keyword `{s}`"),
332        (Some(TokenDescription::ReservedKeyword), _) => ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("reserved keyword `{0}`", s))
    })format!("reserved keyword `{s}`"),
333        (Some(TokenDescription::DocComment), _) => ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("doc comment `{0}`", s))
    })format!("doc comment `{s}`"),
334        // Deliberately doesn't print `s`, which is empty.
335        (Some(TokenDescription::MetaVar(kind)), _) => ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("`{0}` metavariable", kind))
    })format!("`{kind}` metavariable"),
336        (None, TokenKind::NtIdent(..)) => ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("identifier `{0}`", s))
    })format!("identifier `{s}`"),
337        (None, TokenKind::NtLifetime(..)) => ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("lifetime `{0}`", s))
    })format!("lifetime `{s}`"),
338        (None, _) => ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("`{0}`", s))
    })format!("`{s}`"),
339    }
340}
341
342impl<'a> Parser<'a> {
343    pub fn new(
344        psess: &'a ParseSess,
345        stream: TokenStream,
346        subparser_name: Option<&'static str>,
347    ) -> Self {
348        let mut parser = Parser {
349            psess,
350            token_cursor: TokenCursor::new(stream),
351            subparser_name,
352            capture_state: CaptureState {
353                capturing: Capturing::No,
354                parser_replacements: Vec::new(),
355                inner_attr_parser_ranges: Default::default(),
356                seen_attrs: IntervalSet::new(u32::MAX as usize),
357            },
358            ..
359        };
360
361        // Make parser point to the first token.
362        parser.bump();
363
364        // Change this from 1 back to 0 after the bump. This eases debugging of
365        // `Parser::collect_tokens` because 0-indexed token positions are nicer
366        // than 1-indexed token positions.
367        parser.num_bump_calls = 0;
368
369        parser
370    }
371
372    #[inline]
373    pub fn recovery(mut self, recovery: Recovery) -> Self {
374        self.recovery = recovery;
375        self
376    }
377
378    #[inline]
379    fn with_recovery<T>(&mut self, recovery: Recovery, f: impl FnOnce(&mut Self) -> T) -> T {
380        let old = mem::replace(&mut self.recovery, recovery);
381        let res = f(self);
382        self.recovery = old;
383        res
384    }
385
386    /// Whether the parser is allowed to recover from broken code.
387    ///
388    /// If this returns false, recovering broken code into valid code (especially if this recovery does lookahead)
389    /// is not allowed. All recovery done by the parser must be gated behind this check.
390    ///
391    /// Technically, this only needs to restrict eager recovery by doing lookahead at more tokens.
392    /// But making the distinction is very subtle, and simply forbidding all recovery is a lot simpler to uphold.
393    #[inline]
394    fn may_recover(&self) -> bool {
395        #[allow(non_exhaustive_omitted_patterns)] match self.recovery {
    Recovery::Allowed => true,
    _ => false,
}matches!(self.recovery, Recovery::Allowed)
396    }
397
398    /// Version of [`unexpected`](Parser::unexpected) that "returns" any type in the `Ok`
399    /// (both those functions never return "Ok", and so can lie like that in the type).
400    pub fn unexpected_any<T>(&mut self) -> PResult<'a, T> {
401        match self.expect_one_of(&[], &[]) {
402            Err(e) => Err(e),
403            // We can get `Ok(true)` from `recover_closing_delimiter`
404            // which is called in `expected_one_of_not_found`.
405            Ok(_) => FatalError.raise(),
406        }
407    }
408
409    pub fn unexpected(&mut self) -> PResult<'a, ()> {
410        self.unexpected_any()
411    }
412
413    /// Expects and consumes the token `t`. Signals an error if the next token is not `t`.
414    pub fn expect(&mut self, exp: ExpTokenPair) -> PResult<'a, Recovered> {
415        if self.expected_token_types.is_empty() {
416            if self.token == exp.tok {
417                self.bump();
418                Ok(Recovered::No)
419            } else {
420                Err(self.unexpected_err(&exp.tok))
421            }
422        } else {
423            self.expect_one_of(slice::from_ref(&exp), &[])
424        }
425    }
426
427    /// Expect next token to be edible or inedible token. If edible,
428    /// then consume it; if inedible, then return without consuming
429    /// anything. Signal a fatal error if next token is unexpected.
430    fn expect_one_of(
431        &mut self,
432        edible: &[ExpTokenPair],
433        inedible: &[ExpTokenPair],
434    ) -> PResult<'a, Recovered> {
435        if edible.iter().any(|exp| exp.tok == self.token.kind) {
436            self.bump();
437            Ok(Recovered::No)
438        } else if inedible.iter().any(|exp| exp.tok == self.token.kind) {
439            // leave it in the input
440            Ok(Recovered::No)
441        } else if self.token != token::Eof
442            && self.last_unexpected_token_span == Some(self.token.span)
443        {
444            FatalError.raise();
445        } else {
446            self.expected_one_of_not_found(edible, inedible)
447                .map(|error_guaranteed| Recovered::Yes(error_guaranteed))
448        }
449    }
450
451    // Public for rustfmt usage.
452    pub fn parse_ident(&mut self) -> PResult<'a, Ident> {
453        self.parse_ident_common(self.may_recover())
454    }
455
456    pub(crate) fn parse_ident_common(&mut self, recover: bool) -> PResult<'a, Ident> {
457        let (ident, is_raw) = self.ident_or_err(recover)?;
458
459        if is_raw == IdentIsRaw::No && ident.is_reserved() {
460            let err = self.expected_ident_found_err();
461            if recover {
462                err.emit();
463            } else {
464                return Err(err);
465            }
466        }
467        self.bump();
468        Ok(ident)
469    }
470
471    fn ident_or_err(&mut self, recover: bool) -> PResult<'a, (Ident, IdentIsRaw)> {
472        match self.token.ident() {
473            Some(ident) => Ok(ident),
474            None => self.expected_ident_found(recover),
475        }
476    }
477
478    /// Checks if the next token is `tok`, and returns `true` if so.
479    ///
480    /// This method will automatically add `tok` to `expected_token_types` if `tok` is not
481    /// encountered.
482    #[inline]
483    pub fn check(&mut self, exp: ExpTokenPair) -> bool {
484        let is_present = self.token == exp.tok;
485        if !is_present {
486            self.expected_token_types.insert(exp.token_type);
487        }
488        is_present
489    }
490
491    #[inline]
492    #[must_use]
493    fn check_noexpect(&self, tok: &TokenKind) -> bool {
494        self.token == *tok
495    }
496
497    // Check the first token after the delimiter that closes the current
498    // delimited sequence. (Panics if used in the outermost token stream, which
499    // has no delimiters.)
500    //
501    // Primarily used when `self.token` matches `OpenInvisible(_))`, to look
502    // ahead through the current metavar expansion.
503    fn check_noexpect_past_close_delim(&self, tok: &TokenKind) -> bool {
504        #[allow(non_exhaustive_omitted_patterns)] match self.token_cursor.look_ahead_past_close_delim()
    {
    Some(TokenTree::Token(token::Token { kind, .. }, _)) if kind == tok =>
        true,
    _ => false,
}matches!(
505            self.token_cursor.look_ahead_past_close_delim(),
506            Some(TokenTree::Token(token::Token { kind, .. }, _)) if kind == tok
507        )
508    }
509
510    /// Consumes a token 'tok' if it exists. Returns whether the given token was present.
511    ///
512    /// the main purpose of this function is to reduce the cluttering of the suggestions list
513    /// which using the normal eat method could introduce in some cases.
514    #[inline]
515    #[must_use]
516    fn eat_noexpect(&mut self, tok: &TokenKind) -> bool {
517        let is_present = self.check_noexpect(tok);
518        if is_present {
519            self.bump()
520        }
521        is_present
522    }
523
524    /// Consumes a token 'tok' if it exists. Returns whether the given token was present.
525    #[inline]
526    #[must_use]
527    pub fn eat(&mut self, exp: ExpTokenPair) -> bool {
528        let is_present = self.check(exp);
529        if is_present {
530            self.bump()
531        }
532        is_present
533    }
534
535    /// If the next token is the given keyword, returns `true` without eating it.
536    /// An expectation is also added for diagnostics purposes.
537    #[inline]
538    #[must_use]
539    fn check_keyword(&mut self, exp: ExpKeywordPair) -> bool {
540        let is_keyword = self.token.is_keyword(exp.kw);
541        if !is_keyword {
542            self.expected_token_types.insert(exp.token_type);
543        }
544        is_keyword
545    }
546
547    #[inline]
548    #[must_use]
549    fn check_keyword_case(&mut self, exp: ExpKeywordPair, case: Case) -> bool {
550        if self.check_keyword(exp) {
551            true
552        } else if case == Case::Insensitive
553            && let Some((ident, IdentIsRaw::No)) = self.token.ident()
554            // Do an ASCII case-insensitive match, because all keywords are ASCII.
555            && ident.as_str().eq_ignore_ascii_case(exp.kw.as_str())
556        {
557            true
558        } else {
559            false
560        }
561    }
562
563    /// If the next token is the given keyword, eats it and returns `true`.
564    /// Otherwise, returns `false`. An expectation is also added for diagnostics purposes.
565    // Public for rustc_builtin_macros and rustfmt usage.
566    #[inline]
567    #[must_use]
568    pub fn eat_keyword(&mut self, exp: ExpKeywordPair) -> bool {
569        let is_keyword = self.check_keyword(exp);
570        if is_keyword {
571            self.bump();
572        }
573        is_keyword
574    }
575
576    /// Eats a keyword, optionally ignoring the case.
577    /// If the case differs (and is ignored) an error is issued.
578    /// This is useful for recovery.
579    #[inline]
580    #[must_use]
581    fn eat_keyword_case(&mut self, exp: ExpKeywordPair, case: Case) -> bool {
582        if self.eat_keyword(exp) {
583            true
584        } else if case == Case::Insensitive
585            && let Some((ident, IdentIsRaw::No)) = self.token.ident()
586            // Do an ASCII case-insensitive match, because all keywords are ASCII.
587            && ident.as_str().eq_ignore_ascii_case(exp.kw.as_str())
588        {
589            let kw = exp.kw.as_str();
590            let is_upper = kw.chars().all(char::is_uppercase);
591            let is_lower = kw.chars().all(char::is_lowercase);
592
593            let case = match (is_upper, is_lower) {
594                (true, true) => {
595                    {
    ::core::panicking::panic_fmt(format_args!("internal error: entered unreachable code: {0}",
            format_args!("keyword that is both fully upper- and fully lowercase")));
}unreachable!("keyword that is both fully upper- and fully lowercase")
596                }
597                (true, false) => crate::diagnostics::Case::Upper,
598                (false, true) => crate::diagnostics::Case::Lower,
599                (false, false) => crate::diagnostics::Case::Mixed,
600            };
601
602            self.dcx().emit_err(crate::diagnostics::KwBadCase { span: ident.span, kw, case });
603            self.bump();
604            true
605        } else {
606            false
607        }
608    }
609
610    /// If the next token is the given keyword, eats it and returns `true`.
611    /// Otherwise, returns `false`. No expectation is added.
612    // Public for rustc_builtin_macros usage.
613    #[inline]
614    #[must_use]
615    pub fn eat_keyword_noexpect(&mut self, kw: Symbol) -> bool {
616        let is_keyword = self.token.is_keyword(kw);
617        if is_keyword {
618            self.bump();
619        }
620        is_keyword
621    }
622
623    /// If the given word is not a keyword, signals an error.
624    /// If the next token is not the given word, signals an error.
625    /// Otherwise, eats it.
626    pub fn expect_keyword(&mut self, exp: ExpKeywordPair) -> PResult<'a, ()> {
627        if !self.eat_keyword(exp) { self.unexpected() } else { Ok(()) }
628    }
629
630    /// Consume a sequence produced by a metavar expansion, if present.
631    pub fn eat_metavar_seq<T>(
632        &mut self,
633        mv_kind: MetaVarKind,
634        f: impl FnMut(&mut Parser<'a>) -> PResult<'a, T>,
635    ) -> Option<T> {
636        self.eat_metavar_seq_with_matcher(|mvk| mvk == mv_kind, f)
637    }
638
639    /// A slightly more general form of `eat_metavar_seq`, for use with the
640    /// `MetaVarKind` variants that have parameters, where an exact match isn't
641    /// desired.
642    fn eat_metavar_seq_with_matcher<T>(
643        &mut self,
644        match_mv_kind: impl Fn(MetaVarKind) -> bool,
645        mut f: impl FnMut(&mut Parser<'a>) -> PResult<'a, T>,
646    ) -> Option<T> {
647        if let token::OpenInvisible(InvisibleOrigin::MetaVar(mv_kind)) = self.token.kind
648            && match_mv_kind(mv_kind)
649        {
650            self.bump();
651
652            // Recovery is disabled when parsing macro arguments, so it must
653            // also be disabled when reparsing pasted macro arguments,
654            // otherwise we get inconsistent results (e.g. #137874).
655            let res = self.with_recovery(Recovery::Forbidden, |this| f(this));
656
657            let res = match res {
658                Ok(res) => res,
659                Err(err) => {
660                    // This can occur in unusual error cases, e.g. #139445.
661                    err.delay_as_bug();
662                    return None;
663                }
664            };
665
666            if let token::CloseInvisible(InvisibleOrigin::MetaVar(mv_kind)) = self.token.kind
667                && match_mv_kind(mv_kind)
668            {
669                self.bump();
670                Some(res)
671            } else {
672                // This can occur when invalid syntax is passed to a decl macro. E.g. see #139248,
673                // where the reparse attempt of an invalid expr consumed the trailing invisible
674                // delimiter.
675                self.dcx()
676                    .span_delayed_bug(self.token.span, "no close delim with reparsing {mv_kind:?}");
677                None
678            }
679        } else {
680            None
681        }
682    }
683
684    /// Is the given keyword `kw` followed by a non-reserved identifier?
685    fn is_kw_followed_by_ident(&self, kw: Symbol) -> bool {
686        self.token.is_keyword(kw) && self.look_ahead(1, |t| t.is_non_reserved_ident())
687    }
688
689    #[inline]
690    fn check_or_expected(&mut self, ok: bool, token_type: TokenType) -> bool {
691        if !ok {
692            self.expected_token_types.insert(token_type);
693        }
694        ok
695    }
696
697    fn check_ident(&mut self) -> bool {
698        self.check_or_expected(self.token.is_ident(), TokenType::Ident)
699    }
700
701    fn check_path(&mut self) -> bool {
702        self.check_or_expected(self.token.is_path_start(), TokenType::Path)
703    }
704
705    fn check_type(&mut self) -> bool {
706        self.check_or_expected(self.token.can_begin_type(), TokenType::Type)
707    }
708
709    fn check_const_arg(&mut self) -> bool {
710        let is_mcg_arg = self.check_or_expected(self.token.can_begin_const_arg(), TokenType::Const);
711        let is_mgca_arg = self.is_keyword_ahead(0, &[kw::Const])
712            && self.look_ahead(1, |t| *t == token::OpenBrace);
713        is_mcg_arg || is_mgca_arg
714    }
715
716    fn check_const_closure(&self) -> bool {
717        self.is_keyword_ahead(0, &[kw::Const])
718            && self.look_ahead(1, |t| match &t.kind {
719                // async closures do not work with const closures, so we do not parse that here.
720                token::Ident(kw::Move | kw::Use | kw::Static, IdentIsRaw::No)
721                | token::OrOr
722                | token::Or => true,
723                _ => false,
724            })
725    }
726
727    fn check_inline_const(&self, dist: usize) -> bool {
728        self.is_keyword_ahead(dist, &[kw::Const])
729            && self.look_ahead(dist + 1, |t| match &t.kind {
730                token::OpenBrace => true,
731                token::OpenInvisible(InvisibleOrigin::MetaVar(MetaVarKind::Block)) => true,
732                _ => false,
733            })
734    }
735
736    /// Checks to see if the next token is either `+` or `+=`.
737    /// Otherwise returns `false`.
738    #[inline]
739    fn check_plus(&mut self) -> bool {
740        self.check_or_expected(self.token.is_like_plus(), TokenType::Plus)
741    }
742
743    /// Eats the expected token if it's present possibly breaking
744    /// compound tokens like multi-character operators in process.
745    /// Returns `true` if the token was eaten.
746    fn break_and_eat(&mut self, exp: ExpTokenPair) -> bool {
747        if self.token == exp.tok {
748            self.bump();
749            return true;
750        }
751        match self.token.kind.break_two_token_op(1) {
752            Some((first, second)) if first == exp.tok => {
753                let first_span = self.psess.source_map().start_point(self.token.span);
754                let second_span = self.token.span.with_lo(first_span.hi());
755                self.token = Token::new(first, first_span);
756                // Keep track of this token - if we end token capturing now,
757                // we'll want to append this token to the captured stream.
758                //
759                // If we consume any additional tokens, then this token
760                // is not needed (we'll capture the entire 'glued' token),
761                // and `bump` will set this field to 0.
762                self.break_last_token += 1;
763                // Use the spacing of the glued token as the spacing of the
764                // unglued second token.
765                self.bump_with((Token::new(second, second_span), self.token_spacing));
766                true
767            }
768            _ => {
769                self.expected_token_types.insert(exp.token_type);
770                false
771            }
772        }
773    }
774
775    /// Eats `+` possibly breaking tokens like `+=` in process.
776    fn eat_plus(&mut self) -> bool {
777        self.break_and_eat(crate::parser::token_type::ExpTokenPair {
    tok: rustc_ast::token::Plus,
    token_type: crate::parser::token_type::TokenType::Plus,
}exp!(Plus))
778    }
779
780    /// Eats `&` possibly breaking tokens like `&&` in process.
781    /// Signals an error if `&` is not eaten.
782    fn expect_and(&mut self) -> PResult<'a, ()> {
783        if self.break_and_eat(crate::parser::token_type::ExpTokenPair {
    tok: rustc_ast::token::And,
    token_type: crate::parser::token_type::TokenType::And,
}exp!(And)) { Ok(()) } else { self.unexpected() }
784    }
785
786    /// Eats `|` possibly breaking tokens like `||` in process.
787    /// Signals an error if `|` was not eaten.
788    fn expect_or(&mut self) -> PResult<'a, ()> {
789        if self.break_and_eat(crate::parser::token_type::ExpTokenPair {
    tok: rustc_ast::token::Or,
    token_type: crate::parser::token_type::TokenType::Or,
}exp!(Or)) { Ok(()) } else { self.unexpected() }
790    }
791
792    /// Eats `<` possibly breaking tokens like `<<` in process.
793    fn eat_lt(&mut self) -> bool {
794        let ate = self.break_and_eat(crate::parser::token_type::ExpTokenPair {
    tok: rustc_ast::token::Lt,
    token_type: crate::parser::token_type::TokenType::Lt,
}exp!(Lt));
795        if ate {
796            // See doc comment for `unmatched_angle_bracket_count`.
797            self.unmatched_angle_bracket_count += 1;
798            {
    use ::tracing::__macro_support::Callsite as _;
    static __CALLSITE: ::tracing::callsite::DefaultCallsite =
        {
            static META: ::tracing::Metadata<'static> =
                {
                    ::tracing_core::metadata::Metadata::new("event compiler/rustc_parse/src/parser/mod.rs:798",
                        "rustc_parse::parser", ::tracing::Level::DEBUG,
                        ::tracing_core::__macro_support::Option::Some("compiler/rustc_parse/src/parser/mod.rs"),
                        ::tracing_core::__macro_support::Option::Some(798u32),
                        ::tracing_core::__macro_support::Option::Some("rustc_parse::parser"),
                        ::tracing_core::field::FieldSet::new(&["message"],
                            ::tracing_core::callsite::Identifier(&__CALLSITE)),
                        ::tracing::metadata::Kind::EVENT)
                };
            ::tracing::callsite::DefaultCallsite::new(&META)
        };
    let enabled =
        ::tracing::Level::DEBUG <= ::tracing::level_filters::STATIC_MAX_LEVEL
                &&
                ::tracing::Level::DEBUG <=
                    ::tracing::level_filters::LevelFilter::current() &&
            {
                let interest = __CALLSITE.interest();
                !interest.is_never() &&
                    ::tracing::__macro_support::__is_enabled(__CALLSITE.metadata(),
                        interest)
            };
    if enabled {
        (|value_set: ::tracing::field::ValueSet|
                    {
                        let meta = __CALLSITE.metadata();
                        ::tracing::Event::dispatch(meta, &value_set);
                        ;
                    })({
                #[allow(unused_imports)]
                use ::tracing::field::{debug, display, Value};
                __CALLSITE.metadata().fields().value_set_all(&[(::tracing::__macro_support::Option::Some(&format_args!("eat_lt: (increment) count={0:?}",
                                                    self.unmatched_angle_bracket_count) as
                                            &dyn ::tracing::field::Value))])
            });
    } else { ; }
};debug!("eat_lt: (increment) count={:?}", self.unmatched_angle_bracket_count);
799        }
800        ate
801    }
802
803    /// Eats `<` possibly breaking tokens like `<<` in process.
804    /// Signals an error if `<` was not eaten.
805    fn expect_lt(&mut self) -> PResult<'a, ()> {
806        if self.eat_lt() { Ok(()) } else { self.unexpected() }
807    }
808
809    /// Eats `>` possibly breaking tokens like `>>` in process.
810    /// Signals an error if `>` was not eaten.
811    fn expect_gt(&mut self) -> PResult<'a, ()> {
812        if self.break_and_eat(crate::parser::token_type::ExpTokenPair {
    tok: rustc_ast::token::Gt,
    token_type: crate::parser::token_type::TokenType::Gt,
}exp!(Gt)) {
813            // See doc comment for `unmatched_angle_bracket_count`.
814            if self.unmatched_angle_bracket_count > 0 {
815                self.unmatched_angle_bracket_count -= 1;
816                {
    use ::tracing::__macro_support::Callsite as _;
    static __CALLSITE: ::tracing::callsite::DefaultCallsite =
        {
            static META: ::tracing::Metadata<'static> =
                {
                    ::tracing_core::metadata::Metadata::new("event compiler/rustc_parse/src/parser/mod.rs:816",
                        "rustc_parse::parser", ::tracing::Level::DEBUG,
                        ::tracing_core::__macro_support::Option::Some("compiler/rustc_parse/src/parser/mod.rs"),
                        ::tracing_core::__macro_support::Option::Some(816u32),
                        ::tracing_core::__macro_support::Option::Some("rustc_parse::parser"),
                        ::tracing_core::field::FieldSet::new(&["message"],
                            ::tracing_core::callsite::Identifier(&__CALLSITE)),
                        ::tracing::metadata::Kind::EVENT)
                };
            ::tracing::callsite::DefaultCallsite::new(&META)
        };
    let enabled =
        ::tracing::Level::DEBUG <= ::tracing::level_filters::STATIC_MAX_LEVEL
                &&
                ::tracing::Level::DEBUG <=
                    ::tracing::level_filters::LevelFilter::current() &&
            {
                let interest = __CALLSITE.interest();
                !interest.is_never() &&
                    ::tracing::__macro_support::__is_enabled(__CALLSITE.metadata(),
                        interest)
            };
    if enabled {
        (|value_set: ::tracing::field::ValueSet|
                    {
                        let meta = __CALLSITE.metadata();
                        ::tracing::Event::dispatch(meta, &value_set);
                        ;
                    })({
                #[allow(unused_imports)]
                use ::tracing::field::{debug, display, Value};
                __CALLSITE.metadata().fields().value_set_all(&[(::tracing::__macro_support::Option::Some(&format_args!("expect_gt: (decrement) count={0:?}",
                                                    self.unmatched_angle_bracket_count) as
                                            &dyn ::tracing::field::Value))])
            });
    } else { ; }
};debug!("expect_gt: (decrement) count={:?}", self.unmatched_angle_bracket_count);
817            }
818            Ok(())
819        } else {
820            self.unexpected()
821        }
822    }
823
824    /// Checks if the next token is contained within `closes`, and returns `true` if so.
825    fn expect_any_with_type(
826        &mut self,
827        closes_expected: &[ExpTokenPair],
828        closes_not_expected: &[&TokenKind],
829    ) -> bool {
830        closes_expected.iter().any(|&close| self.check(close))
831            || closes_not_expected.iter().any(|k| self.check_noexpect(k))
832    }
833
834    /// Parses a sequence until the specified delimiters. The function
835    /// `f` must consume tokens until reaching the next separator or
836    /// closing bracket.
837    fn parse_seq_to_before_tokens<T>(
838        &mut self,
839        closes_expected: &[ExpTokenPair],
840        closes_not_expected: &[&TokenKind],
841        sep: SeqSep,
842        mut f: impl FnMut(&mut Parser<'a>) -> PResult<'a, T>,
843    ) -> PResult<'a, (ThinVec<T>, Trailing, Recovered)> {
844        let mut first = true;
845        let mut recovered = Recovered::No;
846        let mut trailing = Trailing::No;
847        let mut v = ThinVec::new();
848
849        while !self.expect_any_with_type(closes_expected, closes_not_expected) {
850            if self.token.kind.is_close_delim_or_eof() {
851                break;
852            }
853            if let Some(exp) = sep.sep {
854                if first {
855                    // no separator for the first element
856                    first = false;
857                } else {
858                    // check for separator
859                    match self.expect(exp) {
860                        Ok(Recovered::No) => {
861                            self.current_closure.take();
862                        }
863                        Ok(Recovered::Yes(guar)) => {
864                            self.current_closure.take();
865                            recovered = Recovered::Yes(guar);
866                            break;
867                        }
868                        Err(mut expect_err) => {
869                            let sp = self.prev_token.span.shrink_to_hi();
870                            let token_str = pprust::token_kind_to_string(&exp.tok);
871
872                            match self.current_closure.take() {
873                                Some(closure_spans) if self.token == TokenKind::Semi => {
874                                    // Finding a semicolon instead of a comma
875                                    // after a closure body indicates that the
876                                    // closure body may be a block but the user
877                                    // forgot to put braces around its
878                                    // statements.
879
880                                    self.recover_missing_braces_around_closure_body(
881                                        closure_spans,
882                                        expect_err,
883                                    )?;
884
885                                    continue;
886                                }
887
888                                _ => {
889                                    // Attempt to keep parsing if it was a similar separator.
890                                    if exp.tok.similar_tokens().contains(&self.token.kind) {
891                                        self.bump();
892                                    }
893                                }
894                            }
895
896                            // If this was a missing `@` in a binding pattern
897                            // bail with a suggestion
898                            // https://github.com/rust-lang/rust/issues/72373
899                            if self.prev_token.is_ident() && self.token == token::DotDot {
900                                let msg = ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("if you meant to bind the contents of the rest of the array pattern into `{0}`, use `@`",
                pprust::token_to_string(&self.prev_token)))
    })format!(
901                                    "if you meant to bind the contents of the rest of the array \
902                                     pattern into `{}`, use `@`",
903                                    pprust::token_to_string(&self.prev_token)
904                                );
905                                expect_err
906                                    .with_span_suggestion_verbose(
907                                        self.prev_token.span.shrink_to_hi().until(self.token.span),
908                                        msg,
909                                        " @ ",
910                                        Applicability::MaybeIncorrect,
911                                    )
912                                    .emit();
913                                break;
914                            }
915
916                            // Attempt to keep parsing if it was an omitted separator.
917                            // `&raw <expr>` already has a specific suggestion for missing
918                            // `const`/`mut`, so don't recover `<expr>` as the next element in
919                            // a comma-separated list.
920                            if exp.token_type == TokenType::Comma && self.is_expected_raw_ref_mut()
921                            {
922                                return Err(expect_err);
923                            }
924                            self.last_unexpected_token_span = None;
925                            match f(self) {
926                                Ok(t) => {
927                                    // Parsed successfully, therefore most probably the code only
928                                    // misses a separator.
929                                    expect_err
930                                        .with_span_suggestion_short(
931                                            sp,
932                                            ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("missing `{0}`", token_str))
    })format!("missing `{token_str}`"),
933                                            token_str,
934                                            Applicability::MaybeIncorrect,
935                                        )
936                                        .emit();
937
938                                    v.push(t);
939                                    continue;
940                                }
941                                Err(e) => {
942                                    // Parsing failed, therefore it must be something more serious
943                                    // than just a missing separator.
944                                    for xx in &e.children {
945                                        // Propagate the help message from sub error `e` to main
946                                        // error `expect_err`.
947                                        expect_err.children.push(xx.clone());
948                                    }
949                                    e.cancel();
950                                    if self.token == token::Colon {
951                                        // We will try to recover in
952                                        // `maybe_recover_struct_lit_bad_delims`.
953                                        return Err(expect_err);
954                                    } else if let [exp] = closes_expected
955                                        && exp.token_type == TokenType::CloseParen
956                                    {
957                                        return Err(expect_err);
958                                    } else {
959                                        expect_err.emit();
960                                        break;
961                                    }
962                                }
963                            }
964                        }
965                    }
966                }
967            }
968            if sep.trailing_sep_allowed
969                && self.expect_any_with_type(closes_expected, closes_not_expected)
970            {
971                trailing = Trailing::Yes;
972                break;
973            }
974
975            let t = f(self)?;
976            v.push(t);
977        }
978
979        Ok((v, trailing, recovered))
980    }
981
982    fn recover_missing_braces_around_closure_body(
983        &mut self,
984        closure_spans: ClosureSpans,
985        mut expect_err: Diag<'_>,
986    ) -> PResult<'a, ()> {
987        let initial_semicolon = self.token.span;
988
989        while self.eat(crate::parser::token_type::ExpTokenPair {
    tok: rustc_ast::token::Semi,
    token_type: crate::parser::token_type::TokenType::Semi,
}exp!(Semi)) {
990            if let Err(e) = self.parse_stmt_without_recovery(false, ForceCollect::No, false) {
991                e.cancel();
992            }
993        }
994
995        expect_err
996            .primary_message("closure bodies that contain statements must be surrounded by braces");
997
998        let preceding_pipe_span = closure_spans.closing_pipe;
999        let following_token_span = self.token.span;
1000
1001        let mut first_note = MultiSpan::from(::alloc::boxed::box_assume_init_into_vec_unsafe(::alloc::intrinsics::write_box_via_move(::alloc::boxed::Box::new_uninit(),
        [initial_semicolon]))vec![initial_semicolon]);
1002        first_note.push_span_label(
1003            initial_semicolon,
1004            "this `;` turns the preceding closure into a statement",
1005        );
1006        first_note.push_span_label(
1007            closure_spans.body,
1008            "this expression is a statement because of the trailing semicolon",
1009        );
1010        expect_err.span_note(first_note, "statement found outside of a block");
1011
1012        let mut second_note = MultiSpan::from(::alloc::boxed::box_assume_init_into_vec_unsafe(::alloc::intrinsics::write_box_via_move(::alloc::boxed::Box::new_uninit(),
        [closure_spans.whole_closure]))vec![closure_spans.whole_closure]);
1013        second_note.push_span_label(closure_spans.whole_closure, "this is the parsed closure...");
1014        second_note.push_span_label(
1015            following_token_span,
1016            "...but likely you meant the closure to end here",
1017        );
1018        expect_err.span_note(second_note, "the closure body may be incorrectly delimited");
1019
1020        expect_err.span(::alloc::boxed::box_assume_init_into_vec_unsafe(::alloc::intrinsics::write_box_via_move(::alloc::boxed::Box::new_uninit(),
        [preceding_pipe_span, following_token_span]))vec![preceding_pipe_span, following_token_span]);
1021
1022        let opening_suggestion_str = " {".to_string();
1023        let closing_suggestion_str = "}".to_string();
1024
1025        expect_err.multipart_suggestion(
1026            "try adding braces",
1027            ::alloc::boxed::box_assume_init_into_vec_unsafe(::alloc::intrinsics::write_box_via_move(::alloc::boxed::Box::new_uninit(),
        [(preceding_pipe_span.shrink_to_hi(), opening_suggestion_str),
                (following_token_span.shrink_to_lo(),
                    closing_suggestion_str)]))vec![
1028                (preceding_pipe_span.shrink_to_hi(), opening_suggestion_str),
1029                (following_token_span.shrink_to_lo(), closing_suggestion_str),
1030            ],
1031            Applicability::MaybeIncorrect,
1032        );
1033
1034        expect_err.emit();
1035
1036        Ok(())
1037    }
1038
1039    /// Parses a sequence, not including the delimiters. The function
1040    /// `f` must consume tokens until reaching the next separator or
1041    /// closing bracket.
1042    fn parse_seq_to_before_end<T>(
1043        &mut self,
1044        close: ExpTokenPair,
1045        sep: SeqSep,
1046        f: impl FnMut(&mut Parser<'a>) -> PResult<'a, T>,
1047    ) -> PResult<'a, (ThinVec<T>, Trailing, Recovered)> {
1048        self.parse_seq_to_before_tokens(&[close], &[], sep, f)
1049    }
1050
1051    /// Parses a sequence, including only the closing delimiter. The function
1052    /// `f` must consume tokens until reaching the next separator or
1053    /// closing bracket.
1054    fn parse_seq_to_end<T>(
1055        &mut self,
1056        close: ExpTokenPair,
1057        sep: SeqSep,
1058        f: impl FnMut(&mut Parser<'a>) -> PResult<'a, T>,
1059    ) -> PResult<'a, (ThinVec<T>, Trailing)> {
1060        let (val, trailing, recovered) = self.parse_seq_to_before_end(close, sep, f)?;
1061        if #[allow(non_exhaustive_omitted_patterns)] match recovered {
    Recovered::No => true,
    _ => false,
}matches!(recovered, Recovered::No) && !self.eat(close) {
1062            self.dcx().span_delayed_bug(
1063                self.token.span,
1064                "recovered but `parse_seq_to_before_end` did not give us the close token",
1065            );
1066        }
1067        Ok((val, trailing))
1068    }
1069
1070    /// Parses a sequence, including both delimiters. The function
1071    /// `f` must consume tokens until reaching the next separator or
1072    /// closing bracket.
1073    fn parse_unspanned_seq<T>(
1074        &mut self,
1075        open: ExpTokenPair,
1076        close: ExpTokenPair,
1077        sep: SeqSep,
1078        f: impl FnMut(&mut Parser<'a>) -> PResult<'a, T>,
1079    ) -> PResult<'a, (ThinVec<T>, Trailing)> {
1080        self.expect(open)?;
1081        self.parse_seq_to_end(close, sep, f)
1082    }
1083
1084    /// Parses a comma-separated sequence, including both delimiters.
1085    /// The function `f` must consume tokens until reaching the next separator or
1086    /// closing bracket.
1087    pub fn parse_delim_comma_seq<T>(
1088        &mut self,
1089        open: ExpTokenPair,
1090        close: ExpTokenPair,
1091        f: impl FnMut(&mut Parser<'a>) -> PResult<'a, T>,
1092    ) -> PResult<'a, (ThinVec<T>, Trailing)> {
1093        self.parse_unspanned_seq(open, close, SeqSep::trailing_allowed(crate::parser::token_type::ExpTokenPair {
    tok: rustc_ast::token::Comma,
    token_type: crate::parser::token_type::TokenType::Comma,
}exp!(Comma)), f)
1094    }
1095
1096    /// Parses a comma-separated sequence delimited by parentheses (e.g. `(x, y)`).
1097    /// The function `f` must consume tokens until reaching the next separator or
1098    /// closing bracket.
1099    pub fn parse_paren_comma_seq<T>(
1100        &mut self,
1101        f: impl FnMut(&mut Parser<'a>) -> PResult<'a, T>,
1102    ) -> PResult<'a, (ThinVec<T>, Trailing)> {
1103        self.parse_delim_comma_seq(crate::parser::token_type::ExpTokenPair {
    tok: rustc_ast::token::OpenParen,
    token_type: crate::parser::token_type::TokenType::OpenParen,
}exp!(OpenParen), crate::parser::token_type::ExpTokenPair {
    tok: rustc_ast::token::CloseParen,
    token_type: crate::parser::token_type::TokenType::CloseParen,
}exp!(CloseParen), f)
1104    }
1105
1106    /// Advance the parser by one token using provided token as the next one.
1107    fn bump_with(&mut self, next: (Token, Spacing)) {
1108        self.inlined_bump_with(next)
1109    }
1110
1111    /// This always-inlined version should only be used on hot code paths.
1112    #[inline(always)]
1113    fn inlined_bump_with(&mut self, (next_token, next_spacing): (Token, Spacing)) {
1114        // Update the current and previous tokens.
1115        self.prev_token = mem::replace(&mut self.token, next_token);
1116        self.token_spacing = next_spacing;
1117
1118        // Diagnostics.
1119        self.expected_token_types.clear();
1120    }
1121
1122    /// Advance the parser by one token.
1123    pub fn bump(&mut self) {
1124        // Note: destructuring here would give nicer code, but it was found in #96210 to be slower
1125        // than `.0`/`.1` access.
1126        let mut next = self.token_cursor.inlined_next_and_bump();
1127        self.num_bump_calls += 1;
1128        // We got a token from the underlying cursor and no longer need to
1129        // worry about an unglued token. See `break_and_eat` for more details.
1130        self.break_last_token = 0;
1131        if next.0.span.is_dummy() {
1132            // Tweak the location for better diagnostics, but keep syntactic context intact.
1133            let fallback_span = self.token.span;
1134            next.0.span = fallback_span.with_ctxt(next.0.span.ctxt());
1135        }
1136        if true {
    if !!#[allow(non_exhaustive_omitted_patterns)] match next.0.kind {
                    token::OpenInvisible(origin) | token::CloseInvisible(origin)
                        if origin.skip() => true,
                    _ => false,
                } {
        ::core::panicking::panic("assertion failed: !matches!(next.0.kind, token::OpenInvisible(origin) |\n        token::CloseInvisible(origin) if origin.skip())")
    };
};debug_assert!(!matches!(
1137            next.0.kind,
1138            token::OpenInvisible(origin) | token::CloseInvisible(origin) if origin.skip()
1139        ));
1140        self.inlined_bump_with(next)
1141    }
1142
1143    /// Look-ahead `dist` tokens of `self.token` and get access to that token there.
1144    /// When `dist == 0` then the current token is looked at. `Eof` will be
1145    /// returned if the look-ahead is any distance past the end of the tokens.
1146    pub fn look_ahead<R>(&self, dist: usize, looker: impl FnOnce(&Token) -> R) -> R {
1147        if dist == 0 {
1148            return looker(&self.token);
1149        }
1150
1151        // Typically around 98% of the `dist > 0` cases have `dist == 1`, so we
1152        // have a fast special case for that.
1153        if dist == 1 {
1154            // `look_ahead(1)` returns the next token.
1155            match self.token_cursor.look_ahead(1) {
1156                Some(tree) => {
1157                    // Indexing stayed within the current token tree.
1158                    match tree {
1159                        TokenTree::Token(token, _) => return looker(token),
1160                        &TokenTree::Delimited(dspan, _, delim, _) => {
1161                            if !delim.skip() {
1162                                return looker(&Token::new(delim.as_open_token_kind(), dspan.open));
1163                            }
1164                        }
1165                    }
1166                }
1167                None => {
1168                    // The tree cursor lookahead went (one) past the end of the
1169                    // current token tree. Try to return a close delimiter.
1170                    if let Some((delim, span)) = self.token_cursor.parent_delim_and_span()
1171                        && !delim.skip()
1172                    {
1173                        // We are not in the outermost token stream, so we have
1174                        // delimiters. Also, those delimiters are not skipped.
1175                        return looker(&Token::new(delim.as_close_token_kind(), span.close));
1176                    }
1177                }
1178            }
1179        }
1180
1181        // Just clone the token cursor and use `next_and_bump`, skipping delimiters as
1182        // necessary. Slow but simple.
1183        let mut cursor = self.token_cursor.clone();
1184        let mut i = 0;
1185        let mut token = Token::dummy();
1186        while i < dist {
1187            token = cursor.next_and_bump().0;
1188            if let token::OpenInvisible(origin) | token::CloseInvisible(origin) = token.kind
1189                && origin.skip()
1190            {
1191                continue;
1192            }
1193            i += 1;
1194        }
1195        looker(&token)
1196    }
1197
1198    /// Like `look_ahead`, but skips over token trees rather than tokens. Useful
1199    /// when looking past possible metavariable pasting sites. Panics if `dist` is zero.
1200    pub fn tree_look_ahead<R>(
1201        &self,
1202        dist: usize,
1203        looker: impl FnOnce(&TokenTree) -> R,
1204    ) -> Option<R> {
1205        self.token_cursor.look_ahead(dist).map(looker)
1206    }
1207
1208    /// Returns whether any of the given keywords are `dist` tokens ahead of the current one.
1209    pub(crate) fn is_keyword_ahead(&self, dist: usize, kws: &[Symbol]) -> bool {
1210        self.look_ahead(dist, |t| kws.iter().any(|&kw| t.is_keyword(kw)))
1211    }
1212
1213    /// Parses optional coroutine marker: `async`/`gen`/`async gen`.
1214    fn parse_coroutine_marker(&mut self, case: Case) -> Option<CoroutineMarker> {
1215        let span = self.token_uninterpolated_span();
1216        if self.eat_keyword_case(crate::parser::token_type::ExpKeywordPair {
    kw: rustc_span::symbol::kw::Async,
    token_type: crate::parser::token_type::TokenType::KwAsync,
}exp!(Async), case) {
1217            // FIXME(gen_blocks): Do we want to unconditionally parse `gen` and then
1218            // error if edition <= 2024, like we do with async and edition <= 2018?
1219            if self.token_uninterpolated_span().at_least_rust_2024()
1220                && self.eat_keyword_case(crate::parser::token_type::ExpKeywordPair {
    kw: rustc_span::symbol::kw::Gen,
    token_type: crate::parser::token_type::TokenType::KwGen,
}exp!(Gen), case)
1221            {
1222                let gen_span = self.prev_token_uninterpolated_span();
1223                Some((CoroutineKind::AsyncGen, span.to(gen_span)))
1224            } else {
1225                Some((CoroutineKind::Async, span))
1226            }
1227        } else if self.token_uninterpolated_span().at_least_rust_2024()
1228            && self.eat_keyword_case(crate::parser::token_type::ExpKeywordPair {
    kw: rustc_span::symbol::kw::Gen,
    token_type: crate::parser::token_type::TokenType::KwGen,
}exp!(Gen), case)
1229        {
1230            Some((CoroutineKind::Gen, span))
1231        } else {
1232            None
1233        }
1234        .map(|(kind, span)| CoroutineMarker::new(kind, span))
1235    }
1236
1237    /// Parses fn unsafety: `unsafe`, `safe` or nothing.
1238    fn parse_safety(&mut self, case: Case) -> Safety {
1239        if self.eat_keyword_case(crate::parser::token_type::ExpKeywordPair {
    kw: rustc_span::symbol::kw::Unsafe,
    token_type: crate::parser::token_type::TokenType::KwUnsafe,
}exp!(Unsafe), case) {
1240            Safety::Unsafe(self.prev_token_uninterpolated_span())
1241        } else if self.eat_keyword_case(crate::parser::token_type::ExpKeywordPair {
    kw: rustc_span::symbol::kw::Safe,
    token_type: crate::parser::token_type::TokenType::KwSafe,
}exp!(Safe), case) {
1242            Safety::Safe(self.prev_token_uninterpolated_span())
1243        } else {
1244            Safety::Default
1245        }
1246    }
1247
1248    /// Parses constness: `const` or nothing.
1249    fn parse_constness(&mut self, case: Case) -> Const {
1250        self.parse_constness_(case, false)
1251    }
1252
1253    /// Parses constness for closures (case sensitive, feature-gated)
1254    fn parse_closure_constness(&mut self) -> Const {
1255        let constness = self.parse_constness_(Case::Sensitive, true);
1256        if let Const::Yes(span) = constness {
1257            self.psess.gated_spans.gate(sym::const_closures, span);
1258        }
1259        constness
1260    }
1261
1262    fn parse_constness_(&mut self, case: Case, is_closure: bool) -> Const {
1263        // Avoid const blocks and const closures to be parsed as const items
1264        if (self.check_const_closure() == is_closure)
1265            && !self.look_ahead(1, |t| *t == token::OpenBrace || t.is_metavar_block())
1266            && self.eat_keyword_case(crate::parser::token_type::ExpKeywordPair {
    kw: rustc_span::symbol::kw::Const,
    token_type: crate::parser::token_type::TokenType::KwConst,
}exp!(Const), case)
1267        {
1268            Const::Yes(self.prev_token_uninterpolated_span())
1269        } else {
1270            Const::No
1271        }
1272    }
1273
1274    /// Parses inline const expressions.
1275    fn parse_const_block(&mut self, span: Span, pat: bool) -> PResult<'a, Box<Expr>> {
1276        self.expect_keyword(crate::parser::token_type::ExpKeywordPair {
    kw: rustc_span::symbol::kw::Const,
    token_type: crate::parser::token_type::TokenType::KwConst,
}exp!(Const))?;
1277        let (attrs, blk) = self.parse_inner_attrs_and_block(None)?;
1278        let anon_const = AnonConst {
1279            id: DUMMY_NODE_ID,
1280            value: self.mk_expr(blk.span, ExprKind::Block(blk, None)),
1281        };
1282        let blk_span = anon_const.value.span;
1283        let kind = if pat {
1284            let guar = self
1285                .dcx()
1286                .struct_span_err(blk_span, "const blocks cannot be used as patterns")
1287                .with_help(
1288                    "use a named `const`-item or an `if`-guard (`x if x == const { ... }`) instead",
1289                )
1290                .emit();
1291            ExprKind::Err(guar)
1292        } else {
1293            ExprKind::ConstBlock(anon_const)
1294        };
1295        Ok(self.mk_expr_with_attrs(span.to(blk_span), kind, attrs))
1296    }
1297
1298    /// Parse nothing or `mut`.
1299    fn parse_mutability(&mut self) -> Mutability {
1300        if self.eat_keyword(crate::parser::token_type::ExpKeywordPair {
    kw: rustc_span::symbol::kw::Mut,
    token_type: crate::parser::token_type::TokenType::KwMut,
}exp!(Mut)) { Mutability::Mut } else { Mutability::Not }
1301    }
1302
1303    /// Parse nothing or a by-reference mode.
1304    ///
1305    /// ```ebnf
1306    /// ByRef = "ref" PinAndMut?
1307    /// ```
1308    fn parse_byref(&mut self) -> ByRef {
1309        if self.eat_keyword(crate::parser::token_type::ExpKeywordPair {
    kw: rustc_span::symbol::kw::Ref,
    token_type: crate::parser::token_type::TokenType::KwRef,
}exp!(Ref)) {
1310            let (pinnedness, mutability) = self.parse_pin_and_mut();
1311            ByRef::Yes(pinnedness, mutability)
1312        } else {
1313            ByRef::No
1314        }
1315    }
1316
1317    /// Parse nothing or "explicit" mutability.
1318    ///
1319    /// ```ebnf
1320    /// MutOrConst = "mut" | "const"
1321    /// ```
1322    fn parse_mut_or_const(&mut self) -> Option<Mutability> {
1323        if self.eat_keyword(crate::parser::token_type::ExpKeywordPair {
    kw: rustc_span::symbol::kw::Mut,
    token_type: crate::parser::token_type::TokenType::KwMut,
}exp!(Mut)) {
1324            Some(Mutability::Mut)
1325        } else if self.eat_keyword(crate::parser::token_type::ExpKeywordPair {
    kw: rustc_span::symbol::kw::Const,
    token_type: crate::parser::token_type::TokenType::KwConst,
}exp!(Const)) {
1326            Some(Mutability::Not)
1327        } else {
1328            None
1329        }
1330    }
1331
1332    /// Parse a field name.
1333    ///
1334    /// ```enbf
1335    /// FieldName = IntLit | Ident
1336    /// ```
1337    pub fn parse_field_name(&mut self) -> PResult<'a, Ident> {
1338        if let token::Literal(token::Lit { kind: token::Integer, symbol, suffix }) = self.token.kind
1339        {
1340            if let Some(suffix) = suffix {
1341                self.dcx().emit_err(crate::diagnostics::InvalidLiteralSuffixOnTupleIndex {
1342                    span: self.token.span,
1343                    suffix,
1344                });
1345            }
1346            self.bump();
1347            Ok(Ident::new(symbol, self.prev_token.span))
1348        } else {
1349            self.parse_ident_common(true)
1350        }
1351    }
1352
1353    fn parse_delim_args(&mut self) -> PResult<'a, Box<DelimArgs>> {
1354        if let Some(args) = self.parse_delim_args_inner() {
1355            Ok(Box::new(args))
1356        } else {
1357            self.unexpected_any()
1358        }
1359    }
1360
1361    fn parse_attr_args(&mut self) -> PResult<'a, AttrArgs> {
1362        Ok(if let Some(args) = self.parse_delim_args_inner() {
1363            AttrArgs::Delimited(args)
1364        } else if self.eat(crate::parser::token_type::ExpTokenPair {
    tok: rustc_ast::token::Eq,
    token_type: crate::parser::token_type::TokenType::Eq,
}exp!(Eq)) {
1365            let eq_span = self.prev_token.span;
1366            let expr = self.parse_expr_force_collect()?;
1367            AttrArgs::Eq { eq_span, expr }
1368        } else {
1369            AttrArgs::Empty
1370        })
1371    }
1372
1373    fn parse_delim_args_inner(&mut self) -> Option<DelimArgs> {
1374        let delimited = self.check(crate::parser::token_type::ExpTokenPair {
    tok: rustc_ast::token::OpenParen,
    token_type: crate::parser::token_type::TokenType::OpenParen,
}exp!(OpenParen))
1375            || self.check(crate::parser::token_type::ExpTokenPair {
    tok: rustc_ast::token::OpenBracket,
    token_type: crate::parser::token_type::TokenType::OpenBracket,
}exp!(OpenBracket))
1376            || self.check(crate::parser::token_type::ExpTokenPair {
    tok: rustc_ast::token::OpenBrace,
    token_type: crate::parser::token_type::TokenType::OpenBrace,
}exp!(OpenBrace));
1377
1378        delimited.then(|| {
1379            let TokenTree::Delimited(dspan, _, delim, tokens) = self.parse_token_tree() else {
1380                ::core::panicking::panic("internal error: entered unreachable code")unreachable!()
1381            };
1382            DelimArgs { dspan, delim, tokens }
1383        })
1384    }
1385
1386    /// Parses a single token tree from the input.
1387    pub fn parse_token_tree(&mut self) -> TokenTree {
1388        if self.token.kind.open_delim().is_some() {
1389            // Clone the `TokenTree::Delimited` that we are currently
1390            // within. That's what we are going to return.
1391            let tree = self.token_cursor.clone_enclosing_delim();
1392            if true {
    {
        match tree {
            TokenTree::Delimited(..) => {}
            ref left_val => {
                ::core::panicking::assert_matches_failed(left_val,
                    "TokenTree::Delimited(..)", ::core::option::Option::None);
            }
        }
    };
};debug_assert_matches!(tree, TokenTree::Delimited(..));
1393
1394            // Advance the token cursor through the entire delimited
1395            // sequence. After getting the `OpenDelim` we are *within* the
1396            // delimited sequence, i.e. at depth `d`. After getting the
1397            // matching `CloseDelim` we are *after* the delimited sequence,
1398            // i.e. at depth `d - 1`.
1399            let target_depth = self.token_cursor.depth() - 1;
1400
1401            if let Capturing::No = self.capture_state.capturing {
1402                // We are not capturing tokens, so skip to the end of the
1403                // delimited sequence. This is a perf win when dealing with
1404                // declarative macros that pass large `tt` fragments through
1405                // multiple rules, as seen in the uom-0.37.0 crate.
1406                self.token_cursor.bump_to_end();
1407                self.bump();
1408                if true {
    {
        match (&self.token_cursor.depth(), &target_depth) {
            (left_val, right_val) => {
                if !(*left_val == *right_val) {
                    let kind = ::core::panicking::AssertKind::Eq;
                    ::core::panicking::assert_failed(kind, &*left_val,
                        &*right_val, ::core::option::Option::None);
                }
            }
        }
    };
};debug_assert_eq!(self.token_cursor.depth(), target_depth);
1409            } else {
1410                loop {
1411                    // Advance one token at a time, so `TokenCursor::next_and_bump()`
1412                    // can capture these tokens if necessary.
1413                    self.bump();
1414                    if self.token_cursor.depth() == target_depth {
1415                        break;
1416                    }
1417                }
1418            }
1419            if true {
    if !self.token.kind.close_delim().is_some() {
        ::core::panicking::panic("assertion failed: self.token.kind.close_delim().is_some()")
    };
};debug_assert!(self.token.kind.close_delim().is_some());
1420
1421            // Consume close delimiter
1422            self.bump();
1423            tree
1424        } else {
1425            if !!self.token.kind.is_close_delim_or_eof() {
    ::core::panicking::panic("assertion failed: !self.token.kind.is_close_delim_or_eof()")
};assert!(!self.token.kind.is_close_delim_or_eof());
1426            let prev_spacing = self.token_spacing;
1427            self.bump();
1428            TokenTree::Token(self.prev_token, prev_spacing)
1429        }
1430    }
1431
1432    pub fn parse_tokens(&mut self) -> TokenStream {
1433        let mut result = Vec::new();
1434        loop {
1435            if self.token.kind.is_close_delim_or_eof() {
1436                break;
1437            } else {
1438                result.push(self.parse_token_tree());
1439            }
1440        }
1441        TokenStream::new(result)
1442    }
1443
1444    /// Evaluates the closure with restrictions in place.
1445    ///
1446    /// Afters the closure is evaluated, restrictions are reset.
1447    fn with_res<T>(&mut self, res: Restrictions, f: impl FnOnce(&mut Self) -> T) -> T {
1448        let old = self.restrictions;
1449        self.restrictions = res;
1450        let res = f(self);
1451        self.restrictions = old;
1452        res
1453    }
1454
1455    /// Parses `pub` and `pub(in path)` plus shortcuts `pub(crate)` for `pub(in crate)`, `pub(self)`
1456    /// for `pub(in self)` and `pub(super)` for `pub(in super)`.
1457    /// If the following element can't be a tuple (i.e., it's a function definition), then
1458    /// it's not a tuple struct field), and the contents within the parentheses aren't valid,
1459    /// so emit a proper diagnostic.
1460    // Public for rustfmt usage.
1461    pub fn parse_visibility(&mut self, fbt: FollowedByType) -> PResult<'a, Visibility> {
1462        if let Some(vis) = self
1463            .eat_metavar_seq(MetaVarKind::Vis, |this| this.parse_visibility(FollowedByType::Yes))
1464        {
1465            return Ok(vis);
1466        }
1467
1468        if !self.eat_keyword(crate::parser::token_type::ExpKeywordPair {
    kw: rustc_span::symbol::kw::Pub,
    token_type: crate::parser::token_type::TokenType::KwPub,
}exp!(Pub)) {
1469            // We need a span for our `Spanned<VisibilityKind>`, but there's inherently no
1470            // keyword to grab a span from for inherited visibility; an empty span at the
1471            // beginning of the current token would seem to be the "Schelling span".
1472            return Ok(Visibility {
1473                span: self.token.span.shrink_to_lo(),
1474                kind: VisibilityKind::Inherited,
1475            });
1476        }
1477        let lo = self.prev_token.span;
1478
1479        if self.check(crate::parser::token_type::ExpTokenPair {
    tok: rustc_ast::token::OpenParen,
    token_type: crate::parser::token_type::TokenType::OpenParen,
}exp!(OpenParen)) {
1480            // We don't `self.bump()` the `(` yet because this might be a struct definition where
1481            // `()` or a tuple might be allowed. For example, `struct Struct(pub (), pub (usize));`.
1482            // Because of this, we only `bump` the `(` if we're assured it is appropriate to do so
1483            // by the following tokens.
1484            if self.is_keyword_ahead(1, &[kw::In]) {
1485                // Parse `pub(in path)`.
1486                self.bump(); // `(`
1487                self.bump(); // `in`
1488                let path = self.parse_path(PathStyle::Mod)?; // `path`
1489                self.expect(crate::parser::token_type::ExpTokenPair {
    tok: rustc_ast::token::CloseParen,
    token_type: crate::parser::token_type::TokenType::CloseParen,
}exp!(CloseParen))?; // `)`
1490                let vis = VisibilityKind::Restricted {
1491                    path: Box::new(path),
1492                    id: ast::DUMMY_NODE_ID,
1493                    shorthand: false,
1494                };
1495                return Ok(Visibility { span: lo.to(self.prev_token.span), kind: vis });
1496            } else if self.look_ahead(2, |t| t == &token::CloseParen)
1497                && self.is_keyword_ahead(1, &[kw::Crate, kw::Super, kw::SelfLower])
1498            {
1499                // Parse `pub(crate)`, `pub(self)`, or `pub(super)`.
1500                self.bump(); // `(`
1501                let path = self.parse_path(PathStyle::Mod)?; // `crate`/`super`/`self`
1502                self.expect(crate::parser::token_type::ExpTokenPair {
    tok: rustc_ast::token::CloseParen,
    token_type: crate::parser::token_type::TokenType::CloseParen,
}exp!(CloseParen))?; // `)`
1503                let vis = VisibilityKind::Restricted {
1504                    path: Box::new(path),
1505                    id: ast::DUMMY_NODE_ID,
1506                    shorthand: true,
1507                };
1508                return Ok(Visibility { span: lo.to(self.prev_token.span), kind: vis });
1509            } else if let FollowedByType::No = fbt {
1510                // Provide this diagnostic if a type cannot follow;
1511                // in particular, if this is not a tuple struct.
1512                self.recover_incorrect_vis_restriction()?;
1513                // Emit diagnostic, but continue with public visibility.
1514            }
1515        }
1516
1517        Ok(Visibility { span: lo, kind: VisibilityKind::Public })
1518    }
1519
1520    /// Recovery for e.g. `pub(something) fn ...` or `struct X { pub(something) y: Z }`
1521    fn recover_incorrect_vis_restriction(&mut self) -> PResult<'a, ()> {
1522        self.bump(); // `(`
1523        let path = self.parse_path(PathStyle::Mod)?;
1524        self.expect(crate::parser::token_type::ExpTokenPair {
    tok: rustc_ast::token::CloseParen,
    token_type: crate::parser::token_type::TokenType::CloseParen,
}exp!(CloseParen))?; // `)`
1525
1526        let path_str = pprust::path_to_string(&path);
1527        self.dcx()
1528            .emit_err(IncorrectVisibilityRestriction { span: path.span, inner_str: path_str });
1529
1530        Ok(())
1531    }
1532
1533    /// Parses an optional `impl` restriction.
1534    /// Enforces the `impl_restriction` feature gate whenever an explicit restriction is encountered.
1535    fn parse_impl_restriction(&mut self) -> PResult<'a, ImplRestriction> {
1536        if self.eat_keyword(crate::parser::token_type::ExpKeywordPair {
    kw: rustc_span::symbol::kw::Impl,
    token_type: crate::parser::token_type::TokenType::KwImpl,
}exp!(Impl)) {
1537            let (kind, span, gated_span) = self.parse_restriction(ParsingRestrictionKind::Impl)?;
1538            self.psess.gated_spans.gate(sym::impl_restriction, gated_span);
1539            return Ok(ImplRestriction { kind, span });
1540        }
1541        Ok(ImplRestriction {
1542            kind: RestrictionKind::Unrestricted,
1543            span: self.token.span.shrink_to_lo(),
1544        })
1545    }
1546
1547    /// Parses an optional `mut` restriction.
1548    /// Enforces the `mut_restriction` feature gate whenever an explicit restriction is encountered.
1549    fn parse_mut_restriction(&mut self) -> PResult<'a, MutRestriction> {
1550        if self.eat_keyword(crate::parser::token_type::ExpKeywordPair {
    kw: rustc_span::symbol::kw::Mut,
    token_type: crate::parser::token_type::TokenType::KwMut,
}exp!(Mut)) {
1551            let (kind, span, gated_span) = self.parse_restriction(ParsingRestrictionKind::Mut)?;
1552            self.psess.gated_spans.gate(sym::mut_restriction, gated_span);
1553            return Ok(MutRestriction { kind, span });
1554        }
1555        Ok(MutRestriction {
1556            kind: RestrictionKind::Unrestricted,
1557            // NOTE: this span is later thrown away
1558            //  as a part of FieldDef size optimization.
1559            span: self.token.span.shrink_to_lo(),
1560        })
1561    }
1562
1563    /// Parses `impl` or `mut` restrictions.
1564    /// Returns the parsed restriction and its span, as well as the gated span.
1565    fn parse_restriction(
1566        &mut self,
1567        restriction_kind: ParsingRestrictionKind,
1568    ) -> PResult<'a, (RestrictionKind, Span, Span)> {
1569        let lo = self.prev_token.span;
1570        // No units or tuples are allowed to follow `impl` or `mut` here, so we can safely bump `(`.
1571        self.expect(crate::parser::token_type::ExpTokenPair {
    tok: rustc_ast::token::OpenParen,
    token_type: crate::parser::token_type::TokenType::OpenParen,
}exp!(OpenParen))?;
1572        if self.eat_keyword(crate::parser::token_type::ExpKeywordPair {
    kw: rustc_span::symbol::kw::In,
    token_type: crate::parser::token_type::TokenType::KwIn,
}exp!(In)) {
1573            let path = self.parse_path(PathStyle::Mod)?; // `in path`
1574            self.expect(crate::parser::token_type::ExpTokenPair {
    tok: rustc_ast::token::CloseParen,
    token_type: crate::parser::token_type::TokenType::CloseParen,
}exp!(CloseParen))?; // `)`
1575            let restriction = RestrictionKind::Restricted {
1576                path: Box::new(path),
1577                id: ast::DUMMY_NODE_ID,
1578                shorthand: false,
1579            };
1580            let span = lo.to(self.prev_token.span);
1581            Ok((restriction, span, span))
1582        } else if self.look_ahead(1, |t| t == &token::CloseParen)
1583            && self.is_keyword_ahead(0, &[kw::Crate, kw::Super, kw::SelfLower])
1584        {
1585            let path = self.parse_path(PathStyle::Mod)?; // `crate`/`super`/`self`
1586            self.expect(crate::parser::token_type::ExpTokenPair {
    tok: rustc_ast::token::CloseParen,
    token_type: crate::parser::token_type::TokenType::CloseParen,
}exp!(CloseParen))?; // `)`
1587            let restriction = RestrictionKind::Restricted {
1588                path: Box::new(path),
1589                id: ast::DUMMY_NODE_ID,
1590                shorthand: true,
1591            };
1592            let span = lo.to(self.prev_token.span);
1593            Ok((restriction, span, span))
1594        } else {
1595            // Emit diagnostic, but continue with no restrictions.
1596            // Recovery for `impl(something) trait` or `mut (something) field`.
1597            let path = self.parse_path(PathStyle::Mod)?;
1598            self.expect(crate::parser::token_type::ExpTokenPair {
    tok: rustc_ast::token::CloseParen,
    token_type: crate::parser::token_type::TokenType::CloseParen,
}exp!(CloseParen))?; // `)`
1599            let path_str = pprust::path_to_string(&path);
1600            let end = self.prev_token.span;
1601            match restriction_kind {
1602                ParsingRestrictionKind::Impl => {
1603                    self.dcx().emit_err(IncorrectImplRestriction {
1604                        span: path.span,
1605                        inner_str: path_str,
1606                    });
1607                }
1608                ParsingRestrictionKind::Mut => {
1609                    self.dcx()
1610                        .emit_err(IncorrectMutRestriction { span: path.span, inner_str: path_str });
1611                }
1612            }
1613            Ok((RestrictionKind::Unrestricted, self.token.span.shrink_to_lo(), lo.to(end)))
1614        }
1615    }
1616
1617    /// Parses `extern string_literal?`.
1618    fn parse_extern(&mut self, case: Case) -> Extern {
1619        if self.eat_keyword_case(crate::parser::token_type::ExpKeywordPair {
    kw: rustc_span::symbol::kw::Extern,
    token_type: crate::parser::token_type::TokenType::KwExtern,
}exp!(Extern), case) {
1620            let mut extern_span = self.prev_token.span;
1621            let abi = self.parse_abi();
1622            if let Some(abi) = abi {
1623                extern_span = extern_span.to(abi.span);
1624            }
1625            Extern::from_abi(abi, extern_span)
1626        } else {
1627            Extern::None
1628        }
1629    }
1630
1631    /// Parses a string literal as an ABI spec.
1632    fn parse_abi(&mut self) -> Option<StrLit> {
1633        match self.parse_str_lit() {
1634            Ok(str_lit) => Some(str_lit),
1635            Err(Some(lit)) => match lit.kind {
1636                ast::LitKind::Err(_) => None,
1637                _ => {
1638                    self.dcx().emit_err(NonStringAbiLiteral { span: lit.span });
1639                    None
1640                }
1641            },
1642            Err(None) => None,
1643        }
1644    }
1645
1646    fn collect_tokens_no_attrs<R: HasTokens>(
1647        &mut self,
1648        f: impl FnOnce(&mut Self) -> PResult<'a, R>,
1649    ) -> PResult<'a, R> {
1650        // The only reason to call `collect_tokens_no_attrs` is if you want tokens, so use
1651        // `ForceCollect::Yes`
1652        self.collect_tokens(None, AttrWrapper::empty(), ForceCollect::Yes, |this, _empty_attrs| {
1653            Ok((f(this)?, Trailing::No, UsePreAttrPos::No))
1654        })
1655    }
1656
1657    /// Checks for `::` or, potentially, `:::` and then look ahead after it.
1658    fn check_path_sep_and_look_ahead(&mut self, looker: impl Fn(&Token) -> bool) -> bool {
1659        if self.check(crate::parser::token_type::ExpTokenPair {
    tok: rustc_ast::token::PathSep,
    token_type: crate::parser::token_type::TokenType::PathSep,
}exp!(PathSep)) {
1660            if self.may_recover() && self.look_ahead(1, |t| t.kind == token::Colon) {
1661                if true {
    if !!self.look_ahead(1, &looker) {
        {
            ::core::panicking::panic_fmt(format_args!("Looker must not match on colon"));
        }
    };
};debug_assert!(!self.look_ahead(1, &looker), "Looker must not match on colon");
1662                self.look_ahead(2, looker)
1663            } else {
1664                self.look_ahead(1, looker)
1665            }
1666        } else {
1667            false
1668        }
1669    }
1670
1671    /// `::{` or `::*`
1672    fn is_import_coupler(&mut self) -> bool {
1673        self.check_path_sep_and_look_ahead(|t| #[allow(non_exhaustive_omitted_patterns)] match t.kind {
    token::OpenBrace | token::Star => true,
    _ => false,
}matches!(t.kind, token::OpenBrace | token::Star))
1674    }
1675
1676    // Debug view of the parser's token stream, up to `{lookahead}` tokens.
1677    // Only used when debugging.
1678    #[allow(unused)]
1679    pub(crate) fn debug_lookahead(&self, lookahead: usize) -> impl fmt::Debug {
1680        fmt::from_fn(move |f| {
1681            let mut dbg_fmt = f.debug_struct("Parser"); // or at least, one view of
1682
1683            // we don't need N spans, but we want at least one, so print all of prev_token
1684            dbg_fmt.field("prev_token", &self.prev_token);
1685            let mut tokens = ::alloc::vec::Vec::new()vec![];
1686            for i in 0..lookahead {
1687                let tok = self.look_ahead(i, |tok| tok.kind);
1688                let is_eof = tok == TokenKind::Eof;
1689                tokens.push(tok);
1690                if is_eof {
1691                    // Don't look ahead past EOF.
1692                    break;
1693                }
1694            }
1695            dbg_fmt.field_with("tokens", |field| field.debug_list().entries(tokens).finish());
1696            dbg_fmt.field("approx_token_stream_pos", &self.num_bump_calls);
1697
1698            // some fields are interesting for certain values, as they relate to macro parsing
1699            if let Some(subparser) = self.subparser_name {
1700                dbg_fmt.field("subparser_name", &subparser);
1701            }
1702            if let Recovery::Forbidden = self.recovery {
1703                dbg_fmt.field("recovery", &self.recovery);
1704            }
1705
1706            // imply there's "more to know" than this view
1707            dbg_fmt.finish_non_exhaustive()
1708        })
1709    }
1710
1711    pub fn clear_expected_token_types(&mut self) {
1712        self.expected_token_types.clear();
1713    }
1714
1715    pub fn approx_token_stream_pos(&self) -> u32 {
1716        self.num_bump_calls
1717    }
1718
1719    /// For interpolated `self.token`, returns a span of the fragment to which
1720    /// the interpolated token refers. For all other tokens this is just a
1721    /// regular span. It is particularly important to use this for identifiers
1722    /// and lifetimes for which spans affect name resolution and edition
1723    /// checks. Note that keywords are also identifiers, so they should use
1724    /// this if they keep spans or perform edition checks.
1725    pub fn token_uninterpolated_span(&self) -> Span {
1726        match &self.token.kind {
1727            token::NtIdent(ident, _) | token::NtLifetime(ident, _) => ident.span,
1728            token::OpenInvisible(InvisibleOrigin::MetaVar(_)) => self.look_ahead(1, |t| t.span),
1729            _ => self.token.span,
1730        }
1731    }
1732
1733    /// Like `token_uninterpolated_span`, but works on `self.prev_token`.
1734    pub fn prev_token_uninterpolated_span(&self) -> Span {
1735        match &self.prev_token.kind {
1736            token::NtIdent(ident, _) | token::NtLifetime(ident, _) => ident.span,
1737            token::OpenInvisible(InvisibleOrigin::MetaVar(_)) => self.look_ahead(0, |t| t.span),
1738            _ => self.prev_token.span,
1739        }
1740    }
1741
1742    fn missing_semi_from_binop(
1743        &self,
1744        kind_desc: &str,
1745        expr: &Expr,
1746        decl_lo: Option<Span>,
1747    ) -> Option<(Span, ErrorGuaranteed)> {
1748        if self.token == TokenKind::Semi {
1749            return None;
1750        }
1751        if !self.may_recover() || expr.span.from_expansion() {
1752            return None;
1753        }
1754        let sm = self.psess.source_map();
1755        if let ExprKind::Binary(op, lhs, rhs) = &expr.kind
1756            && sm.is_multiline(lhs.span.shrink_to_hi().until(rhs.span.shrink_to_lo()))
1757            && #[allow(non_exhaustive_omitted_patterns)] match op.node {
    BinOpKind::Mul | BinOpKind::BitAnd => true,
    _ => false,
}matches!(op.node, BinOpKind::Mul | BinOpKind::BitAnd)
1758            && classify::expr_requires_semi_to_be_stmt(rhs)
1759        {
1760            let lhs_end_span = lhs.span.shrink_to_hi();
1761            let token_str = token_descr(&self.token);
1762            let mut err = self
1763                .dcx()
1764                .struct_span_err(lhs_end_span, ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("expected `;`, found {0}",
                token_str))
    })format!("expected `;`, found {token_str}"));
1765            err.span_label(self.token.span, "unexpected token");
1766
1767            // Use the declaration start if provided, otherwise fall back to lhs_end_span.
1768            let continuation_start = decl_lo.unwrap_or(lhs_end_span);
1769            let continuation_span = continuation_start.until(rhs.span.shrink_to_hi());
1770            err.span_label(
1771                continuation_span,
1772                ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("to finish parsing this {0}, expected this to be followed by a `;`",
                kind_desc))
    })format!(
1773                    "to finish parsing this {kind_desc}, expected this to be followed by a `;`",
1774                ),
1775            );
1776            let op_desc = match op.node {
1777                BinOpKind::BitAnd => "a bit-and",
1778                BinOpKind::Mul => "a multiplication",
1779                _ => "a binary",
1780            };
1781            let mut note_spans = MultiSpan::new();
1782            note_spans.push_span_label(lhs.span, "parsed as the left-hand expression");
1783            note_spans.push_span_label(rhs.span, "parsed as the right-hand expression");
1784            note_spans.push_span_label(op.span, ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("this was parsed as {0}", op_desc))
    })format!("this was parsed as {op_desc}"));
1785            err.span_note(
1786                note_spans,
1787                ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("the {0} was parsed as having {1} binary expression",
                kind_desc, op_desc))
    })format!("the {kind_desc} was parsed as having {op_desc} binary expression"),
1788            );
1789
1790            err.span_suggestion_verbose(
1791                lhs_end_span,
1792                ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("you may have meant to write a `;` to terminate the {0} earlier",
                kind_desc))
    })format!("you may have meant to write a `;` to terminate the {kind_desc} earlier"),
1793                ";",
1794                Applicability::MaybeIncorrect,
1795            );
1796            return Some((lhs.span, err.emit()));
1797        }
1798        None
1799    }
1800}
1801
1802// Metavar captures of various kinds. The more complex node kinds (e.g. `Item`, `Expr`) store
1803// tokens in the node itself because those tokens are needed for non-terminal parsing and for other
1804// reasons (e.g. cfg expansion). Simpler node kinds (e.g. `Block`, `Path`) only need tokens for
1805// non-terminal parsing so here they store the tokens next to the node, keeping the node size
1806// smaller.
1807#[derive(#[automatically_derived]
impl ::core::clone::Clone for ParseNtResult {
    #[inline]
    fn clone(&self) -> ParseNtResult {
        match self {
            ParseNtResult::Tt(__self_0) =>
                ParseNtResult::Tt(::core::clone::Clone::clone(__self_0)),
            ParseNtResult::Ident(__self_0, __self_1) =>
                ParseNtResult::Ident(::core::clone::Clone::clone(__self_0),
                    ::core::clone::Clone::clone(__self_1)),
            ParseNtResult::Lifetime(__self_0, __self_1) =>
                ParseNtResult::Lifetime(::core::clone::Clone::clone(__self_0),
                    ::core::clone::Clone::clone(__self_1)),
            ParseNtResult::Item(__self_0) =>
                ParseNtResult::Item(::core::clone::Clone::clone(__self_0)),
            ParseNtResult::Block(__self_0) =>
                ParseNtResult::Block(::core::clone::Clone::clone(__self_0)),
            ParseNtResult::Stmt(__self_0) =>
                ParseNtResult::Stmt(::core::clone::Clone::clone(__self_0)),
            ParseNtResult::Pat(__self_0, __self_1) =>
                ParseNtResult::Pat(::core::clone::Clone::clone(__self_0),
                    ::core::clone::Clone::clone(__self_1)),
            ParseNtResult::Expr(__self_0, __self_1) =>
                ParseNtResult::Expr(::core::clone::Clone::clone(__self_0),
                    ::core::clone::Clone::clone(__self_1)),
            ParseNtResult::Literal(__self_0) =>
                ParseNtResult::Literal(::core::clone::Clone::clone(__self_0)),
            ParseNtResult::Ty(__self_0) =>
                ParseNtResult::Ty(::core::clone::Clone::clone(__self_0)),
            ParseNtResult::Meta(__self_0) =>
                ParseNtResult::Meta(::core::clone::Clone::clone(__self_0)),
            ParseNtResult::Path(__self_0) =>
                ParseNtResult::Path(::core::clone::Clone::clone(__self_0)),
            ParseNtResult::Vis(__self_0) =>
                ParseNtResult::Vis(::core::clone::Clone::clone(__self_0)),
            ParseNtResult::Guard(__self_0) =>
                ParseNtResult::Guard(::core::clone::Clone::clone(__self_0)),
        }
    }
}Clone, #[automatically_derived]
impl ::core::fmt::Debug for ParseNtResult {
    #[inline]
    fn fmt(&self, f: &mut ::core::fmt::Formatter) -> ::core::fmt::Result {
        match self {
            ParseNtResult::Tt(__self_0) =>
                ::core::fmt::Formatter::debug_tuple_field1_finish(f, "Tt",
                    &__self_0),
            ParseNtResult::Ident(__self_0, __self_1) =>
                ::core::fmt::Formatter::debug_tuple_field2_finish(f, "Ident",
                    __self_0, &__self_1),
            ParseNtResult::Lifetime(__self_0, __self_1) =>
                ::core::fmt::Formatter::debug_tuple_field2_finish(f,
                    "Lifetime", __self_0, &__self_1),
            ParseNtResult::Item(__self_0) =>
                ::core::fmt::Formatter::debug_tuple_field1_finish(f, "Item",
                    &__self_0),
            ParseNtResult::Block(__self_0) =>
                ::core::fmt::Formatter::debug_tuple_field1_finish(f, "Block",
                    &__self_0),
            ParseNtResult::Stmt(__self_0) =>
                ::core::fmt::Formatter::debug_tuple_field1_finish(f, "Stmt",
                    &__self_0),
            ParseNtResult::Pat(__self_0, __self_1) =>
                ::core::fmt::Formatter::debug_tuple_field2_finish(f, "Pat",
                    __self_0, &__self_1),
            ParseNtResult::Expr(__self_0, __self_1) =>
                ::core::fmt::Formatter::debug_tuple_field2_finish(f, "Expr",
                    __self_0, &__self_1),
            ParseNtResult::Literal(__self_0) =>
                ::core::fmt::Formatter::debug_tuple_field1_finish(f,
                    "Literal", &__self_0),
            ParseNtResult::Ty(__self_0) =>
                ::core::fmt::Formatter::debug_tuple_field1_finish(f, "Ty",
                    &__self_0),
            ParseNtResult::Meta(__self_0) =>
                ::core::fmt::Formatter::debug_tuple_field1_finish(f, "Meta",
                    &__self_0),
            ParseNtResult::Path(__self_0) =>
                ::core::fmt::Formatter::debug_tuple_field1_finish(f, "Path",
                    &__self_0),
            ParseNtResult::Vis(__self_0) =>
                ::core::fmt::Formatter::debug_tuple_field1_finish(f, "Vis",
                    &__self_0),
            ParseNtResult::Guard(__self_0) =>
                ::core::fmt::Formatter::debug_tuple_field1_finish(f, "Guard",
                    &__self_0),
        }
    }
}Debug)]
1808pub enum ParseNtResult {
1809    Tt(TokenTree),
1810    Ident(Ident, IdentIsRaw),
1811    Lifetime(Ident, IdentIsRaw),
1812    Item(Box<ast::Item>),
1813    Block(WithTokens<Box<ast::Block>>),
1814    Stmt(Box<ast::Stmt>),
1815    Pat(WithTokens<Box<ast::Pat>>, NtPatKind),
1816    Expr(Box<ast::Expr>, NtExprKind),
1817    Literal(Box<ast::Expr>),
1818    Ty(WithTokens<Box<ast::Ty>>),
1819    // These tokens are for the attr item, e.g. just the `foo` within `#[foo]` or `#![foo]`.
1820    Meta(WithTokens<Box<ast::AttrItem>>),
1821    Path(WithTokens<Box<ast::Path>>),
1822    Vis(WithTokens<Box<ast::Visibility>>),
1823    Guard(Box<ast::Guard>),
1824}