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rustc_expand/
expand.rs

1use std::path::PathBuf;
2use std::rc::Rc;
3use std::sync::Arc;
4use std::{iter, mem, slice};
5
6use rustc_ast::mut_visit::*;
7use rustc_ast::tokenstream::TokenStream;
8use rustc_ast::visit::{AssocCtxt, Visitor, VisitorResult, try_visit, walk_list};
9use rustc_ast::{
10    self as ast, AssocItemKind, AstNodeWrapper, AttrArgs, AttrItemKind, AttrStyle, AttrVec,
11    DUMMY_NODE_ID, DelegationSource, DelegationSuffixes, EarlyParsedAttribute, ExprKind,
12    ForeignItemKind, HasAttrs, HasNodeId, Inline, ItemKind, MacStmtStyle, MetaItemInner,
13    MetaItemKind, ModKind, NodeId, PatKind, StmtKind, TyKind, token,
14};
15use rustc_ast_pretty::pprust;
16use rustc_attr_parsing::parser::AllowExprMetavar;
17use rustc_attr_parsing::{
18    AttributeParser, AttributeSafety, CFG_TEMPLATE, EvalConfigResult, ShouldEmit,
19    eval_config_entry, parse_cfg, validate_attr,
20};
21use rustc_data_structures::flat_map_in_place::FlatMapInPlace;
22use rustc_data_structures::stack::ensure_sufficient_stack;
23use rustc_errors::PResult;
24use rustc_feature::Features;
25use rustc_hir::Target;
26use rustc_hir::def::MacroKinds;
27use rustc_hir::limit::Limit;
28use rustc_parse::parser::{
29    AllowConstBlockItems, AttemptLocalParseRecovery, CommaRecoveryMode, ForceCollect, Parser,
30    RecoverColon, RecoverComma, Recovery, token_descr,
31};
32use rustc_session::errors::feature_err;
33use rustc_session::lint::builtin::{UNUSED_ATTRIBUTES, UNUSED_DOC_COMMENTS};
34use rustc_span::hygiene::SyntaxContext;
35use rustc_span::{ErrorGuaranteed, FileName, Ident, LocalExpnId, Span, Symbol, sym};
36use smallvec::SmallVec;
37
38use crate::base::*;
39use crate::config::{StripUnconfigured, attr_into_trace};
40use crate::diagnostics::{
41    EmptyDelegationMac, GlobDelegationOutsideImpls, GlobDelegationTraitlessQpath, IncompleteParse,
42    RecursionLimitReached, RemoveExprNotSupported, RemoveNodeNotSupported, UnsupportedKeyValue,
43    WrongFragmentKind,
44};
45use crate::mbe::diagnostics::annotate_err_with_kind;
46use crate::module::{
47    DirOwnership, ParsedExternalMod, mod_dir_path, mod_file_path_from_attr, parse_external_mod,
48};
49use crate::placeholders::{PlaceholderExpander, placeholder};
50use crate::stats::*;
51
52macro_rules! ast_fragments {
53    (
54        $($Kind:ident($AstTy:ty) {
55            $kind_name:expr;
56            $(one
57                fn $visit_ast:ident;
58            )?
59            $(many
60                fn $flat_map_ast_elt:ident;
61                fn $visit_ast_elt:ident($($args:tt)*);
62            )?
63            fn $make_ast:ident;
64        })*
65    ) => {
66        /// A fragment of AST that can be produced by a single macro expansion.
67        /// Can also serve as an input and intermediate result for macro expansion operations.
68        pub enum AstFragment {
69            OptExpr(Option<Box<ast::Expr>>),
70            MethodReceiverExpr(Box<ast::Expr>),
71            $($Kind($AstTy),)*
72        }
73
74        /// "Discriminant" of an AST fragment.
75        #[derive(Copy, Clone, Debug, PartialEq, Eq)]
76        pub enum AstFragmentKind {
77            OptExpr,
78            MethodReceiverExpr,
79            $($Kind,)*
80        }
81
82        impl AstFragmentKind {
83            pub fn name(self) -> &'static str {
84                match self {
85                    AstFragmentKind::OptExpr => "expression",
86                    AstFragmentKind::MethodReceiverExpr => "expression",
87                    $(AstFragmentKind::$Kind => $kind_name,)*
88                }
89            }
90
91            fn make_from(self, result: Box<dyn MacResult + '_>) -> Option<AstFragment> {
92                match self {
93                    AstFragmentKind::OptExpr =>
94                        result.make_expr().map(Some).map(AstFragment::OptExpr),
95                    AstFragmentKind::MethodReceiverExpr =>
96                        result.make_expr().map(AstFragment::MethodReceiverExpr),
97                    $(AstFragmentKind::$Kind => result.$make_ast().map(AstFragment::$Kind),)*
98                }
99            }
100        }
101
102        impl AstFragment {
103            fn add_placeholders(&mut self, placeholders: &[NodeId]) {
104                if placeholders.is_empty() {
105                    return;
106                }
107                match self {
108                    $($(AstFragment::$Kind(ast) => ast.extend(placeholders.iter().flat_map(|id| {
109                        ${ignore($flat_map_ast_elt)}
110                        placeholder(AstFragmentKind::$Kind, *id, None).$make_ast()
111                    })),)?)*
112                    _ => panic!("unexpected AST fragment kind")
113                }
114            }
115
116            pub(crate) fn make_opt_expr(self) -> Option<Box<ast::Expr>> {
117                match self {
118                    AstFragment::OptExpr(expr) => expr,
119                    _ => panic!("AstFragment::make_opt_expr called on the wrong kind of fragment"),
120                }
121            }
122
123            pub(crate) fn make_method_receiver_expr(self) -> Box<ast::Expr> {
124                match self {
125                    AstFragment::MethodReceiverExpr(expr) => expr,
126                    _ => panic!("AstFragment::make_method_receiver_expr called on the wrong kind of fragment"),
127                }
128            }
129
130            $(pub fn $make_ast(self) -> $AstTy {
131                match self {
132                    AstFragment::$Kind(ast) => ast,
133                    _ => panic!("AstFragment::{} called on the wrong kind of fragment", stringify!($make_ast)),
134                }
135            })*
136
137            fn make_ast<T: InvocationCollectorNode>(self) -> T::OutputTy {
138                T::fragment_to_output(self)
139            }
140
141            pub(crate) fn mut_visit_with(&mut self, vis: &mut impl MutVisitor) {
142                match self {
143                    AstFragment::OptExpr(opt_expr) => {
144                        if let Some(expr) = opt_expr.take() {
145                            *opt_expr = vis.filter_map_expr(expr)
146                        }
147                    }
148                    AstFragment::MethodReceiverExpr(expr) => vis.visit_method_receiver_expr(expr),
149                    $($(AstFragment::$Kind(ast) => vis.$visit_ast(ast),)?)*
150                    $($(AstFragment::$Kind(ast) =>
151                        ast.flat_map_in_place(|ast| vis.$flat_map_ast_elt(ast, $($args)*)),)?)*
152                }
153            }
154
155            pub fn visit_with<'a, V: Visitor<'a>>(&'a self, visitor: &mut V) -> V::Result {
156                match self {
157                    AstFragment::OptExpr(Some(expr)) => try_visit!(visitor.visit_expr(expr)),
158                    AstFragment::OptExpr(None) => {}
159                    AstFragment::MethodReceiverExpr(expr) => try_visit!(visitor.visit_method_receiver_expr(expr)),
160                    $($(AstFragment::$Kind(ast) => try_visit!(visitor.$visit_ast(ast)),)?)*
161                    $($(AstFragment::$Kind(ast) => walk_list!(visitor, $visit_ast_elt, &ast[..], $($args)*),)?)*
162                }
163                V::Result::output()
164            }
165        }
166
167        impl<'a, 'b> MacResult for crate::mbe::macro_rules::ParserAnyMacro<'a, 'b> {
168            $(fn $make_ast(self: Box<crate::mbe::macro_rules::ParserAnyMacro<'a, 'b>>)
169                           -> Option<$AstTy> {
170                Some(self.make(AstFragmentKind::$Kind).$make_ast())
171            })*
172        }
173    }
174}
175
176/// A fragment of AST that can be produced by a single macro expansion.
/// Can also serve as an input and intermediate result for macro expansion operations.
pub enum AstFragment {
    OptExpr(Option<Box<ast::Expr>>),
    MethodReceiverExpr(Box<ast::Expr>),
    Expr(Box<ast::Expr>),
    Pat(Box<ast::Pat>),
    Ty(Box<ast::Ty>),
    Stmts(SmallVec<[ast::Stmt; 1]>),
    Items(SmallVec<[Box<ast::Item>; 1]>),
    TraitItems(SmallVec<[Box<ast::AssocItem>; 1]>),
    ImplItems(SmallVec<[Box<ast::AssocItem>; 1]>),
    TraitImplItems(SmallVec<[Box<ast::AssocItem>; 1]>),
    ForeignItems(SmallVec<[Box<ast::ForeignItem>; 1]>),
    Arms(SmallVec<[ast::Arm; 1]>),
    ExprFields(SmallVec<[ast::ExprField; 1]>),
    PatFields(SmallVec<[ast::PatField; 1]>),
    GenericParams(SmallVec<[ast::GenericParam; 1]>),
    Params(SmallVec<[ast::Param; 1]>),
    FieldDefs(SmallVec<[ast::FieldDef; 1]>),
    Variants(SmallVec<[ast::Variant; 1]>),
    WherePredicates(SmallVec<[ast::WherePredicate; 1]>),
    Crate(ast::Crate),
}
/// "Discriminant" of an AST fragment.
pub enum AstFragmentKind {
    OptExpr,
    MethodReceiverExpr,
    Expr,
    Pat,
    Ty,
    Stmts,
    Items,
    TraitItems,
    ImplItems,
    TraitImplItems,
    ForeignItems,
    Arms,
    ExprFields,
    PatFields,
    GenericParams,
    Params,
    FieldDefs,
    Variants,
    WherePredicates,
    Crate,
}
#[automatically_derived]
impl ::core::marker::Copy for AstFragmentKind { }
#[automatically_derived]
#[doc(hidden)]
unsafe impl ::core::clone::TrivialClone for AstFragmentKind { }
#[automatically_derived]
impl ::core::clone::Clone for AstFragmentKind {
    #[inline]
    fn clone(&self) -> AstFragmentKind { *self }
}
#[automatically_derived]
impl ::core::fmt::Debug for AstFragmentKind {
    #[inline]
    fn fmt(&self, f: &mut ::core::fmt::Formatter) -> ::core::fmt::Result {
        ::core::fmt::Formatter::write_str(f,
            match self {
                AstFragmentKind::OptExpr => "OptExpr",
                AstFragmentKind::MethodReceiverExpr => "MethodReceiverExpr",
                AstFragmentKind::Expr => "Expr",
                AstFragmentKind::Pat => "Pat",
                AstFragmentKind::Ty => "Ty",
                AstFragmentKind::Stmts => "Stmts",
                AstFragmentKind::Items => "Items",
                AstFragmentKind::TraitItems => "TraitItems",
                AstFragmentKind::ImplItems => "ImplItems",
                AstFragmentKind::TraitImplItems => "TraitImplItems",
                AstFragmentKind::ForeignItems => "ForeignItems",
                AstFragmentKind::Arms => "Arms",
                AstFragmentKind::ExprFields => "ExprFields",
                AstFragmentKind::PatFields => "PatFields",
                AstFragmentKind::GenericParams => "GenericParams",
                AstFragmentKind::Params => "Params",
                AstFragmentKind::FieldDefs => "FieldDefs",
                AstFragmentKind::Variants => "Variants",
                AstFragmentKind::WherePredicates => "WherePredicates",
                AstFragmentKind::Crate => "Crate",
            })
    }
}
#[automatically_derived]
impl ::core::marker::StructuralPartialEq for AstFragmentKind { }
#[automatically_derived]
impl ::core::cmp::PartialEq for AstFragmentKind {
    #[inline]
    fn eq(&self, other: &AstFragmentKind) -> bool {
        let __self_discr = ::core::intrinsics::discriminant_value(self);
        let __arg1_discr = ::core::intrinsics::discriminant_value(other);
        __self_discr == __arg1_discr
    }
}
#[automatically_derived]
impl ::core::cmp::Eq for AstFragmentKind {
    #[inline]
    #[doc(hidden)]
    #[coverage(off)]
    fn assert_fields_are_eq(&self) {}
}
impl AstFragmentKind {
    pub fn name(self) -> &'static str {
        match self {
            AstFragmentKind::OptExpr => "expression",
            AstFragmentKind::MethodReceiverExpr => "expression",
            AstFragmentKind::Expr => "expression",
            AstFragmentKind::Pat => "pattern",
            AstFragmentKind::Ty => "type",
            AstFragmentKind::Stmts => "statement",
            AstFragmentKind::Items => "item",
            AstFragmentKind::TraitItems => "trait item",
            AstFragmentKind::ImplItems => "impl item",
            AstFragmentKind::TraitImplItems => "impl item",
            AstFragmentKind::ForeignItems => "foreign item",
            AstFragmentKind::Arms => "match arm",
            AstFragmentKind::ExprFields => "field expression",
            AstFragmentKind::PatFields => "field pattern",
            AstFragmentKind::GenericParams => "generic parameter",
            AstFragmentKind::Params => "function parameter",
            AstFragmentKind::FieldDefs => "field",
            AstFragmentKind::Variants => "variant",
            AstFragmentKind::WherePredicates => "where predicate",
            AstFragmentKind::Crate => "crate",
        }
    }
    fn make_from(self, result: Box<dyn MacResult + '_>)
        -> Option<AstFragment> {
        match self {
            AstFragmentKind::OptExpr =>
                result.make_expr().map(Some).map(AstFragment::OptExpr),
            AstFragmentKind::MethodReceiverExpr =>
                result.make_expr().map(AstFragment::MethodReceiverExpr),
            AstFragmentKind::Expr =>
                result.make_expr().map(AstFragment::Expr),
            AstFragmentKind::Pat => result.make_pat().map(AstFragment::Pat),
            AstFragmentKind::Ty => result.make_ty().map(AstFragment::Ty),
            AstFragmentKind::Stmts =>
                result.make_stmts().map(AstFragment::Stmts),
            AstFragmentKind::Items =>
                result.make_items().map(AstFragment::Items),
            AstFragmentKind::TraitItems =>
                result.make_trait_items().map(AstFragment::TraitItems),
            AstFragmentKind::ImplItems =>
                result.make_impl_items().map(AstFragment::ImplItems),
            AstFragmentKind::TraitImplItems =>
                result.make_trait_impl_items().map(AstFragment::TraitImplItems),
            AstFragmentKind::ForeignItems =>
                result.make_foreign_items().map(AstFragment::ForeignItems),
            AstFragmentKind::Arms =>
                result.make_arms().map(AstFragment::Arms),
            AstFragmentKind::ExprFields =>
                result.make_expr_fields().map(AstFragment::ExprFields),
            AstFragmentKind::PatFields =>
                result.make_pat_fields().map(AstFragment::PatFields),
            AstFragmentKind::GenericParams =>
                result.make_generic_params().map(AstFragment::GenericParams),
            AstFragmentKind::Params =>
                result.make_params().map(AstFragment::Params),
            AstFragmentKind::FieldDefs =>
                result.make_field_defs().map(AstFragment::FieldDefs),
            AstFragmentKind::Variants =>
                result.make_variants().map(AstFragment::Variants),
            AstFragmentKind::WherePredicates =>
                result.make_where_predicates().map(AstFragment::WherePredicates),
            AstFragmentKind::Crate =>
                result.make_crate().map(AstFragment::Crate),
        }
    }
}
impl AstFragment {
    fn add_placeholders(&mut self, placeholders: &[NodeId]) {
        if placeholders.is_empty() { return; }
        match self {
            AstFragment::Stmts(ast) =>
                ast.extend(placeholders.iter().flat_map(|id|
                            {
                                placeholder(AstFragmentKind::Stmts, *id, None).make_stmts()
                            })),
            AstFragment::Items(ast) =>
                ast.extend(placeholders.iter().flat_map(|id|
                            {
                                placeholder(AstFragmentKind::Items, *id, None).make_items()
                            })),
            AstFragment::TraitItems(ast) =>
                ast.extend(placeholders.iter().flat_map(|id|
                            {
                                placeholder(AstFragmentKind::TraitItems, *id,
                                        None).make_trait_items()
                            })),
            AstFragment::ImplItems(ast) =>
                ast.extend(placeholders.iter().flat_map(|id|
                            {
                                placeholder(AstFragmentKind::ImplItems, *id,
                                        None).make_impl_items()
                            })),
            AstFragment::TraitImplItems(ast) =>
                ast.extend(placeholders.iter().flat_map(|id|
                            {
                                placeholder(AstFragmentKind::TraitImplItems, *id,
                                        None).make_trait_impl_items()
                            })),
            AstFragment::ForeignItems(ast) =>
                ast.extend(placeholders.iter().flat_map(|id|
                            {
                                placeholder(AstFragmentKind::ForeignItems, *id,
                                        None).make_foreign_items()
                            })),
            AstFragment::Arms(ast) =>
                ast.extend(placeholders.iter().flat_map(|id|
                            {
                                placeholder(AstFragmentKind::Arms, *id, None).make_arms()
                            })),
            AstFragment::ExprFields(ast) =>
                ast.extend(placeholders.iter().flat_map(|id|
                            {
                                placeholder(AstFragmentKind::ExprFields, *id,
                                        None).make_expr_fields()
                            })),
            AstFragment::PatFields(ast) =>
                ast.extend(placeholders.iter().flat_map(|id|
                            {
                                placeholder(AstFragmentKind::PatFields, *id,
                                        None).make_pat_fields()
                            })),
            AstFragment::GenericParams(ast) =>
                ast.extend(placeholders.iter().flat_map(|id|
                            {
                                placeholder(AstFragmentKind::GenericParams, *id,
                                        None).make_generic_params()
                            })),
            AstFragment::Params(ast) =>
                ast.extend(placeholders.iter().flat_map(|id|
                            {
                                placeholder(AstFragmentKind::Params, *id,
                                        None).make_params()
                            })),
            AstFragment::FieldDefs(ast) =>
                ast.extend(placeholders.iter().flat_map(|id|
                            {
                                placeholder(AstFragmentKind::FieldDefs, *id,
                                        None).make_field_defs()
                            })),
            AstFragment::Variants(ast) =>
                ast.extend(placeholders.iter().flat_map(|id|
                            {
                                placeholder(AstFragmentKind::Variants, *id,
                                        None).make_variants()
                            })),
            AstFragment::WherePredicates(ast) =>
                ast.extend(placeholders.iter().flat_map(|id|
                            {
                                placeholder(AstFragmentKind::WherePredicates, *id,
                                        None).make_where_predicates()
                            })),
            _ => {
                ::core::panicking::panic_fmt(format_args!("unexpected AST fragment kind"));
            }
        }
    }
    pub(crate) fn make_opt_expr(self) -> Option<Box<ast::Expr>> {
        match self {
            AstFragment::OptExpr(expr) => expr,
            _ => {
                ::core::panicking::panic_fmt(format_args!("AstFragment::make_opt_expr called on the wrong kind of fragment"));
            }
        }
    }
    pub(crate) fn make_method_receiver_expr(self) -> Box<ast::Expr> {
        match self {
            AstFragment::MethodReceiverExpr(expr) => expr,
            _ => {
                ::core::panicking::panic_fmt(format_args!("AstFragment::make_method_receiver_expr called on the wrong kind of fragment"));
            }
        }
    }
    pub fn make_expr(self) -> Box<ast::Expr> {
        match self {
            AstFragment::Expr(ast) => ast,
            _ => {
                ::core::panicking::panic_fmt(format_args!("AstFragment::{0} called on the wrong kind of fragment",
                        "make_expr"));
            }
        }
    }
    pub fn make_pat(self) -> Box<ast::Pat> {
        match self {
            AstFragment::Pat(ast) => ast,
            _ => {
                ::core::panicking::panic_fmt(format_args!("AstFragment::{0} called on the wrong kind of fragment",
                        "make_pat"));
            }
        }
    }
    pub fn make_ty(self) -> Box<ast::Ty> {
        match self {
            AstFragment::Ty(ast) => ast,
            _ => {
                ::core::panicking::panic_fmt(format_args!("AstFragment::{0} called on the wrong kind of fragment",
                        "make_ty"));
            }
        }
    }
    pub fn make_stmts(self) -> SmallVec<[ast::Stmt; 1]> {
        match self {
            AstFragment::Stmts(ast) => ast,
            _ => {
                ::core::panicking::panic_fmt(format_args!("AstFragment::{0} called on the wrong kind of fragment",
                        "make_stmts"));
            }
        }
    }
    pub fn make_items(self) -> SmallVec<[Box<ast::Item>; 1]> {
        match self {
            AstFragment::Items(ast) => ast,
            _ => {
                ::core::panicking::panic_fmt(format_args!("AstFragment::{0} called on the wrong kind of fragment",
                        "make_items"));
            }
        }
    }
    pub fn make_trait_items(self) -> SmallVec<[Box<ast::AssocItem>; 1]> {
        match self {
            AstFragment::TraitItems(ast) => ast,
            _ => {
                ::core::panicking::panic_fmt(format_args!("AstFragment::{0} called on the wrong kind of fragment",
                        "make_trait_items"));
            }
        }
    }
    pub fn make_impl_items(self) -> SmallVec<[Box<ast::AssocItem>; 1]> {
        match self {
            AstFragment::ImplItems(ast) => ast,
            _ => {
                ::core::panicking::panic_fmt(format_args!("AstFragment::{0} called on the wrong kind of fragment",
                        "make_impl_items"));
            }
        }
    }
    pub fn make_trait_impl_items(self) -> SmallVec<[Box<ast::AssocItem>; 1]> {
        match self {
            AstFragment::TraitImplItems(ast) => ast,
            _ => {
                ::core::panicking::panic_fmt(format_args!("AstFragment::{0} called on the wrong kind of fragment",
                        "make_trait_impl_items"));
            }
        }
    }
    pub fn make_foreign_items(self) -> SmallVec<[Box<ast::ForeignItem>; 1]> {
        match self {
            AstFragment::ForeignItems(ast) => ast,
            _ => {
                ::core::panicking::panic_fmt(format_args!("AstFragment::{0} called on the wrong kind of fragment",
                        "make_foreign_items"));
            }
        }
    }
    pub fn make_arms(self) -> SmallVec<[ast::Arm; 1]> {
        match self {
            AstFragment::Arms(ast) => ast,
            _ => {
                ::core::panicking::panic_fmt(format_args!("AstFragment::{0} called on the wrong kind of fragment",
                        "make_arms"));
            }
        }
    }
    pub fn make_expr_fields(self) -> SmallVec<[ast::ExprField; 1]> {
        match self {
            AstFragment::ExprFields(ast) => ast,
            _ => {
                ::core::panicking::panic_fmt(format_args!("AstFragment::{0} called on the wrong kind of fragment",
                        "make_expr_fields"));
            }
        }
    }
    pub fn make_pat_fields(self) -> SmallVec<[ast::PatField; 1]> {
        match self {
            AstFragment::PatFields(ast) => ast,
            _ => {
                ::core::panicking::panic_fmt(format_args!("AstFragment::{0} called on the wrong kind of fragment",
                        "make_pat_fields"));
            }
        }
    }
    pub fn make_generic_params(self) -> SmallVec<[ast::GenericParam; 1]> {
        match self {
            AstFragment::GenericParams(ast) => ast,
            _ => {
                ::core::panicking::panic_fmt(format_args!("AstFragment::{0} called on the wrong kind of fragment",
                        "make_generic_params"));
            }
        }
    }
    pub fn make_params(self) -> SmallVec<[ast::Param; 1]> {
        match self {
            AstFragment::Params(ast) => ast,
            _ => {
                ::core::panicking::panic_fmt(format_args!("AstFragment::{0} called on the wrong kind of fragment",
                        "make_params"));
            }
        }
    }
    pub fn make_field_defs(self) -> SmallVec<[ast::FieldDef; 1]> {
        match self {
            AstFragment::FieldDefs(ast) => ast,
            _ => {
                ::core::panicking::panic_fmt(format_args!("AstFragment::{0} called on the wrong kind of fragment",
                        "make_field_defs"));
            }
        }
    }
    pub fn make_variants(self) -> SmallVec<[ast::Variant; 1]> {
        match self {
            AstFragment::Variants(ast) => ast,
            _ => {
                ::core::panicking::panic_fmt(format_args!("AstFragment::{0} called on the wrong kind of fragment",
                        "make_variants"));
            }
        }
    }
    pub fn make_where_predicates(self) -> SmallVec<[ast::WherePredicate; 1]> {
        match self {
            AstFragment::WherePredicates(ast) => ast,
            _ => {
                ::core::panicking::panic_fmt(format_args!("AstFragment::{0} called on the wrong kind of fragment",
                        "make_where_predicates"));
            }
        }
    }
    pub fn make_crate(self) -> ast::Crate {
        match self {
            AstFragment::Crate(ast) => ast,
            _ => {
                ::core::panicking::panic_fmt(format_args!("AstFragment::{0} called on the wrong kind of fragment",
                        "make_crate"));
            }
        }
    }
    fn make_ast<T: InvocationCollectorNode>(self) -> T::OutputTy {
        T::fragment_to_output(self)
    }
    pub(crate) fn mut_visit_with(&mut self, vis: &mut impl MutVisitor) {
        match self {
            AstFragment::OptExpr(opt_expr) => {
                if let Some(expr) = opt_expr.take() {
                    *opt_expr = vis.filter_map_expr(expr)
                }
            }
            AstFragment::MethodReceiverExpr(expr) =>
                vis.visit_method_receiver_expr(expr),
            AstFragment::Expr(ast) => vis.visit_expr(ast),
            AstFragment::Pat(ast) => vis.visit_pat(ast),
            AstFragment::Ty(ast) => vis.visit_ty(ast),
            AstFragment::Crate(ast) => vis.visit_crate(ast),
            AstFragment::Stmts(ast) =>
                ast.flat_map_in_place(|ast| vis.flat_map_stmt(ast)),
            AstFragment::Items(ast) =>
                ast.flat_map_in_place(|ast| vis.flat_map_item(ast)),
            AstFragment::TraitItems(ast) =>
                ast.flat_map_in_place(|ast|
                        vis.flat_map_assoc_item(ast, AssocCtxt::Trait)),
            AstFragment::ImplItems(ast) =>
                ast.flat_map_in_place(|ast|
                        vis.flat_map_assoc_item(ast,
                            AssocCtxt::Impl { of_trait: false })),
            AstFragment::TraitImplItems(ast) =>
                ast.flat_map_in_place(|ast|
                        vis.flat_map_assoc_item(ast,
                            AssocCtxt::Impl { of_trait: true })),
            AstFragment::ForeignItems(ast) =>
                ast.flat_map_in_place(|ast| vis.flat_map_foreign_item(ast)),
            AstFragment::Arms(ast) =>
                ast.flat_map_in_place(|ast| vis.flat_map_arm(ast)),
            AstFragment::ExprFields(ast) =>
                ast.flat_map_in_place(|ast| vis.flat_map_expr_field(ast)),
            AstFragment::PatFields(ast) =>
                ast.flat_map_in_place(|ast| vis.flat_map_pat_field(ast)),
            AstFragment::GenericParams(ast) =>
                ast.flat_map_in_place(|ast| vis.flat_map_generic_param(ast)),
            AstFragment::Params(ast) =>
                ast.flat_map_in_place(|ast| vis.flat_map_param(ast)),
            AstFragment::FieldDefs(ast) =>
                ast.flat_map_in_place(|ast| vis.flat_map_field_def(ast)),
            AstFragment::Variants(ast) =>
                ast.flat_map_in_place(|ast| vis.flat_map_variant(ast)),
            AstFragment::WherePredicates(ast) =>
                ast.flat_map_in_place(|ast|
                        vis.flat_map_where_predicate(ast)),
        }
    }
    pub fn visit_with<'a, V: Visitor<'a>>(&'a self, visitor: &mut V)
        -> V::Result {
        match self {
            AstFragment::OptExpr(Some(expr)) =>
                match ::rustc_ast_ir::visit::VisitorResult::branch(visitor.visit_expr(expr))
                    {
                    core::ops::ControlFlow::Continue(()) =>
                        (),
                        #[allow(unreachable_code)]
                        core::ops::ControlFlow::Break(r) => {
                        return ::rustc_ast_ir::visit::VisitorResult::from_residual(r);
                    }
                },
            AstFragment::OptExpr(None) => {}
            AstFragment::MethodReceiverExpr(expr) =>
                match ::rustc_ast_ir::visit::VisitorResult::branch(visitor.visit_method_receiver_expr(expr))
                    {
                    core::ops::ControlFlow::Continue(()) =>
                        (),
                        #[allow(unreachable_code)]
                        core::ops::ControlFlow::Break(r) => {
                        return ::rustc_ast_ir::visit::VisitorResult::from_residual(r);
                    }
                },
            AstFragment::Expr(ast) =>
                match ::rustc_ast_ir::visit::VisitorResult::branch(visitor.visit_expr(ast))
                    {
                    core::ops::ControlFlow::Continue(()) =>
                        (),
                        #[allow(unreachable_code)]
                        core::ops::ControlFlow::Break(r) => {
                        return ::rustc_ast_ir::visit::VisitorResult::from_residual(r);
                    }
                },
            AstFragment::Pat(ast) =>
                match ::rustc_ast_ir::visit::VisitorResult::branch(visitor.visit_pat(ast))
                    {
                    core::ops::ControlFlow::Continue(()) =>
                        (),
                        #[allow(unreachable_code)]
                        core::ops::ControlFlow::Break(r) => {
                        return ::rustc_ast_ir::visit::VisitorResult::from_residual(r);
                    }
                },
            AstFragment::Ty(ast) =>
                match ::rustc_ast_ir::visit::VisitorResult::branch(visitor.visit_ty(ast))
                    {
                    core::ops::ControlFlow::Continue(()) =>
                        (),
                        #[allow(unreachable_code)]
                        core::ops::ControlFlow::Break(r) => {
                        return ::rustc_ast_ir::visit::VisitorResult::from_residual(r);
                    }
                },
            AstFragment::Crate(ast) =>
                match ::rustc_ast_ir::visit::VisitorResult::branch(visitor.visit_crate(ast))
                    {
                    core::ops::ControlFlow::Continue(()) =>
                        (),
                        #[allow(unreachable_code)]
                        core::ops::ControlFlow::Break(r) => {
                        return ::rustc_ast_ir::visit::VisitorResult::from_residual(r);
                    }
                },
            AstFragment::Stmts(ast) =>
                for elem in &ast[..] {
                    match ::rustc_ast_ir::visit::VisitorResult::branch(visitor.visit_stmt(elem))
                        {
                        core::ops::ControlFlow::Continue(()) =>
                            (),
                            #[allow(unreachable_code)]
                            core::ops::ControlFlow::Break(r) => {
                            return ::rustc_ast_ir::visit::VisitorResult::from_residual(r);
                        }
                    };
                },
            AstFragment::Items(ast) =>
                for elem in &ast[..] {
                    match ::rustc_ast_ir::visit::VisitorResult::branch(visitor.visit_item(elem))
                        {
                        core::ops::ControlFlow::Continue(()) =>
                            (),
                            #[allow(unreachable_code)]
                            core::ops::ControlFlow::Break(r) => {
                            return ::rustc_ast_ir::visit::VisitorResult::from_residual(r);
                        }
                    };
                },
            AstFragment::TraitItems(ast) =>
                for elem in &ast[..] {
                    match ::rustc_ast_ir::visit::VisitorResult::branch(visitor.visit_assoc_item(elem,
                                AssocCtxt::Trait)) {
                        core::ops::ControlFlow::Continue(()) =>
                            (),
                            #[allow(unreachable_code)]
                            core::ops::ControlFlow::Break(r) => {
                            return ::rustc_ast_ir::visit::VisitorResult::from_residual(r);
                        }
                    };
                },
            AstFragment::ImplItems(ast) =>
                for elem in &ast[..] {
                    match ::rustc_ast_ir::visit::VisitorResult::branch(visitor.visit_assoc_item(elem,
                                AssocCtxt::Impl { of_trait: false })) {
                        core::ops::ControlFlow::Continue(()) =>
                            (),
                            #[allow(unreachable_code)]
                            core::ops::ControlFlow::Break(r) => {
                            return ::rustc_ast_ir::visit::VisitorResult::from_residual(r);
                        }
                    };
                },
            AstFragment::TraitImplItems(ast) =>
                for elem in &ast[..] {
                    match ::rustc_ast_ir::visit::VisitorResult::branch(visitor.visit_assoc_item(elem,
                                AssocCtxt::Impl { of_trait: true })) {
                        core::ops::ControlFlow::Continue(()) =>
                            (),
                            #[allow(unreachable_code)]
                            core::ops::ControlFlow::Break(r) => {
                            return ::rustc_ast_ir::visit::VisitorResult::from_residual(r);
                        }
                    };
                },
            AstFragment::ForeignItems(ast) =>
                for elem in &ast[..] {
                    match ::rustc_ast_ir::visit::VisitorResult::branch(visitor.visit_foreign_item(elem))
                        {
                        core::ops::ControlFlow::Continue(()) =>
                            (),
                            #[allow(unreachable_code)]
                            core::ops::ControlFlow::Break(r) => {
                            return ::rustc_ast_ir::visit::VisitorResult::from_residual(r);
                        }
                    };
                },
            AstFragment::Arms(ast) =>
                for elem in &ast[..] {
                    match ::rustc_ast_ir::visit::VisitorResult::branch(visitor.visit_arm(elem))
                        {
                        core::ops::ControlFlow::Continue(()) =>
                            (),
                            #[allow(unreachable_code)]
                            core::ops::ControlFlow::Break(r) => {
                            return ::rustc_ast_ir::visit::VisitorResult::from_residual(r);
                        }
                    };
                },
            AstFragment::ExprFields(ast) =>
                for elem in &ast[..] {
                    match ::rustc_ast_ir::visit::VisitorResult::branch(visitor.visit_expr_field(elem))
                        {
                        core::ops::ControlFlow::Continue(()) =>
                            (),
                            #[allow(unreachable_code)]
                            core::ops::ControlFlow::Break(r) => {
                            return ::rustc_ast_ir::visit::VisitorResult::from_residual(r);
                        }
                    };
                },
            AstFragment::PatFields(ast) =>
                for elem in &ast[..] {
                    match ::rustc_ast_ir::visit::VisitorResult::branch(visitor.visit_pat_field(elem))
                        {
                        core::ops::ControlFlow::Continue(()) =>
                            (),
                            #[allow(unreachable_code)]
                            core::ops::ControlFlow::Break(r) => {
                            return ::rustc_ast_ir::visit::VisitorResult::from_residual(r);
                        }
                    };
                },
            AstFragment::GenericParams(ast) =>
                for elem in &ast[..] {
                    match ::rustc_ast_ir::visit::VisitorResult::branch(visitor.visit_generic_param(elem))
                        {
                        core::ops::ControlFlow::Continue(()) =>
                            (),
                            #[allow(unreachable_code)]
                            core::ops::ControlFlow::Break(r) => {
                            return ::rustc_ast_ir::visit::VisitorResult::from_residual(r);
                        }
                    };
                },
            AstFragment::Params(ast) =>
                for elem in &ast[..] {
                    match ::rustc_ast_ir::visit::VisitorResult::branch(visitor.visit_param(elem))
                        {
                        core::ops::ControlFlow::Continue(()) =>
                            (),
                            #[allow(unreachable_code)]
                            core::ops::ControlFlow::Break(r) => {
                            return ::rustc_ast_ir::visit::VisitorResult::from_residual(r);
                        }
                    };
                },
            AstFragment::FieldDefs(ast) =>
                for elem in &ast[..] {
                    match ::rustc_ast_ir::visit::VisitorResult::branch(visitor.visit_field_def(elem))
                        {
                        core::ops::ControlFlow::Continue(()) =>
                            (),
                            #[allow(unreachable_code)]
                            core::ops::ControlFlow::Break(r) => {
                            return ::rustc_ast_ir::visit::VisitorResult::from_residual(r);
                        }
                    };
                },
            AstFragment::Variants(ast) =>
                for elem in &ast[..] {
                    match ::rustc_ast_ir::visit::VisitorResult::branch(visitor.visit_variant(elem))
                        {
                        core::ops::ControlFlow::Continue(()) =>
                            (),
                            #[allow(unreachable_code)]
                            core::ops::ControlFlow::Break(r) => {
                            return ::rustc_ast_ir::visit::VisitorResult::from_residual(r);
                        }
                    };
                },
            AstFragment::WherePredicates(ast) =>
                for elem in &ast[..] {
                    match ::rustc_ast_ir::visit::VisitorResult::branch(visitor.visit_where_predicate(elem))
                        {
                        core::ops::ControlFlow::Continue(()) =>
                            (),
                            #[allow(unreachable_code)]
                            core::ops::ControlFlow::Break(r) => {
                            return ::rustc_ast_ir::visit::VisitorResult::from_residual(r);
                        }
                    };
                },
        }
        V::Result::output()
    }
}
impl<'a, 'b> MacResult for crate::mbe::macro_rules::ParserAnyMacro<'a, 'b> {
    fn make_expr(self: Box<crate::mbe::macro_rules::ParserAnyMacro<'a, 'b>>)
        -> Option<Box<ast::Expr>> {
        Some(self.make(AstFragmentKind::Expr).make_expr())
    }
    fn make_pat(self: Box<crate::mbe::macro_rules::ParserAnyMacro<'a, 'b>>)
        -> Option<Box<ast::Pat>> {
        Some(self.make(AstFragmentKind::Pat).make_pat())
    }
    fn make_ty(self: Box<crate::mbe::macro_rules::ParserAnyMacro<'a, 'b>>)
        -> Option<Box<ast::Ty>> {
        Some(self.make(AstFragmentKind::Ty).make_ty())
    }
    fn make_stmts(self: Box<crate::mbe::macro_rules::ParserAnyMacro<'a, 'b>>)
        -> Option<SmallVec<[ast::Stmt; 1]>> {
        Some(self.make(AstFragmentKind::Stmts).make_stmts())
    }
    fn make_items(self: Box<crate::mbe::macro_rules::ParserAnyMacro<'a, 'b>>)
        -> Option<SmallVec<[Box<ast::Item>; 1]>> {
        Some(self.make(AstFragmentKind::Items).make_items())
    }
    fn make_trait_items(self:
            Box<crate::mbe::macro_rules::ParserAnyMacro<'a, 'b>>)
        -> Option<SmallVec<[Box<ast::AssocItem>; 1]>> {
        Some(self.make(AstFragmentKind::TraitItems).make_trait_items())
    }
    fn make_impl_items(self:
            Box<crate::mbe::macro_rules::ParserAnyMacro<'a, 'b>>)
        -> Option<SmallVec<[Box<ast::AssocItem>; 1]>> {
        Some(self.make(AstFragmentKind::ImplItems).make_impl_items())
    }
    fn make_trait_impl_items(self:
            Box<crate::mbe::macro_rules::ParserAnyMacro<'a, 'b>>)
        -> Option<SmallVec<[Box<ast::AssocItem>; 1]>> {
        Some(self.make(AstFragmentKind::TraitImplItems).make_trait_impl_items())
    }
    fn make_foreign_items(self:
            Box<crate::mbe::macro_rules::ParserAnyMacro<'a, 'b>>)
        -> Option<SmallVec<[Box<ast::ForeignItem>; 1]>> {
        Some(self.make(AstFragmentKind::ForeignItems).make_foreign_items())
    }
    fn make_arms(self: Box<crate::mbe::macro_rules::ParserAnyMacro<'a, 'b>>)
        -> Option<SmallVec<[ast::Arm; 1]>> {
        Some(self.make(AstFragmentKind::Arms).make_arms())
    }
    fn make_expr_fields(self:
            Box<crate::mbe::macro_rules::ParserAnyMacro<'a, 'b>>)
        -> Option<SmallVec<[ast::ExprField; 1]>> {
        Some(self.make(AstFragmentKind::ExprFields).make_expr_fields())
    }
    fn make_pat_fields(self:
            Box<crate::mbe::macro_rules::ParserAnyMacro<'a, 'b>>)
        -> Option<SmallVec<[ast::PatField; 1]>> {
        Some(self.make(AstFragmentKind::PatFields).make_pat_fields())
    }
    fn make_generic_params(self:
            Box<crate::mbe::macro_rules::ParserAnyMacro<'a, 'b>>)
        -> Option<SmallVec<[ast::GenericParam; 1]>> {
        Some(self.make(AstFragmentKind::GenericParams).make_generic_params())
    }
    fn make_params(self: Box<crate::mbe::macro_rules::ParserAnyMacro<'a, 'b>>)
        -> Option<SmallVec<[ast::Param; 1]>> {
        Some(self.make(AstFragmentKind::Params).make_params())
    }
    fn make_field_defs(self:
            Box<crate::mbe::macro_rules::ParserAnyMacro<'a, 'b>>)
        -> Option<SmallVec<[ast::FieldDef; 1]>> {
        Some(self.make(AstFragmentKind::FieldDefs).make_field_defs())
    }
    fn make_variants(self:
            Box<crate::mbe::macro_rules::ParserAnyMacro<'a, 'b>>)
        -> Option<SmallVec<[ast::Variant; 1]>> {
        Some(self.make(AstFragmentKind::Variants).make_variants())
    }
    fn make_where_predicates(self:
            Box<crate::mbe::macro_rules::ParserAnyMacro<'a, 'b>>)
        -> Option<SmallVec<[ast::WherePredicate; 1]>> {
        Some(self.make(AstFragmentKind::WherePredicates).make_where_predicates())
    }
    fn make_crate(self: Box<crate::mbe::macro_rules::ParserAnyMacro<'a, 'b>>)
        -> Option<ast::Crate> {
        Some(self.make(AstFragmentKind::Crate).make_crate())
    }
}ast_fragments! {
177    Expr(Box<ast::Expr>) {
178        "expression";
179        one fn visit_expr;
180        fn make_expr;
181    }
182    Pat(Box<ast::Pat>) {
183        "pattern";
184        one fn visit_pat;
185        fn make_pat;
186    }
187    Ty(Box<ast::Ty>) {
188        "type";
189        one fn visit_ty;
190        fn make_ty;
191    }
192    Stmts(SmallVec<[ast::Stmt; 1]>) {
193        "statement";
194        many fn flat_map_stmt; fn visit_stmt();
195        fn make_stmts;
196    }
197    Items(SmallVec<[Box<ast::Item>; 1]>) {
198        "item";
199        many fn flat_map_item; fn visit_item();
200        fn make_items;
201    }
202    TraitItems(SmallVec<[Box<ast::AssocItem>; 1]>) {
203        "trait item";
204        many fn flat_map_assoc_item; fn visit_assoc_item(AssocCtxt::Trait);
205        fn make_trait_items;
206    }
207    ImplItems(SmallVec<[Box<ast::AssocItem>; 1]>) {
208        "impl item";
209        many fn flat_map_assoc_item; fn visit_assoc_item(AssocCtxt::Impl { of_trait: false });
210        fn make_impl_items;
211    }
212    TraitImplItems(SmallVec<[Box<ast::AssocItem>; 1]>) {
213        "impl item";
214        many fn flat_map_assoc_item; fn visit_assoc_item(AssocCtxt::Impl { of_trait: true });
215        fn make_trait_impl_items;
216    }
217    ForeignItems(SmallVec<[Box<ast::ForeignItem>; 1]>) {
218        "foreign item";
219        many fn flat_map_foreign_item; fn visit_foreign_item();
220        fn make_foreign_items;
221    }
222    Arms(SmallVec<[ast::Arm; 1]>) {
223        "match arm";
224        many fn flat_map_arm; fn visit_arm();
225        fn make_arms;
226    }
227    ExprFields(SmallVec<[ast::ExprField; 1]>) {
228        "field expression";
229        many fn flat_map_expr_field; fn visit_expr_field();
230        fn make_expr_fields;
231    }
232    PatFields(SmallVec<[ast::PatField; 1]>) {
233        "field pattern";
234        many fn flat_map_pat_field; fn visit_pat_field();
235        fn make_pat_fields;
236    }
237    GenericParams(SmallVec<[ast::GenericParam; 1]>) {
238        "generic parameter";
239        many fn flat_map_generic_param; fn visit_generic_param();
240        fn make_generic_params;
241    }
242    Params(SmallVec<[ast::Param; 1]>) {
243        "function parameter";
244        many fn flat_map_param; fn visit_param();
245        fn make_params;
246    }
247    FieldDefs(SmallVec<[ast::FieldDef; 1]>) {
248        "field";
249        many fn flat_map_field_def; fn visit_field_def();
250        fn make_field_defs;
251    }
252    Variants(SmallVec<[ast::Variant; 1]>) {
253        "variant";
254        many fn flat_map_variant; fn visit_variant();
255        fn make_variants;
256    }
257    WherePredicates(SmallVec<[ast::WherePredicate; 1]>) {
258        "where predicate";
259        many fn flat_map_where_predicate; fn visit_where_predicate();
260        fn make_where_predicates;
261    }
262    Crate(ast::Crate) {
263        "crate";
264        one fn visit_crate;
265        fn make_crate;
266    }
267}
268
269pub enum SupportsMacroExpansion {
270    No,
271    Yes { supports_inner_attrs: bool },
272}
273
274impl AstFragmentKind {
275    pub(crate) fn dummy(self, span: Span, guar: ErrorGuaranteed) -> AstFragment {
276        self.make_from(DummyResult::any(span, guar)).expect("couldn't create a dummy AST fragment")
277    }
278
279    pub fn supports_macro_expansion(self) -> SupportsMacroExpansion {
280        match self {
281            AstFragmentKind::OptExpr
282            | AstFragmentKind::Expr
283            | AstFragmentKind::MethodReceiverExpr
284            | AstFragmentKind::Stmts
285            | AstFragmentKind::Ty
286            | AstFragmentKind::Pat => SupportsMacroExpansion::Yes { supports_inner_attrs: false },
287            AstFragmentKind::Items
288            | AstFragmentKind::TraitItems
289            | AstFragmentKind::ImplItems
290            | AstFragmentKind::TraitImplItems
291            | AstFragmentKind::ForeignItems
292            | AstFragmentKind::Crate => SupportsMacroExpansion::Yes { supports_inner_attrs: true },
293            AstFragmentKind::Arms
294            | AstFragmentKind::ExprFields
295            | AstFragmentKind::PatFields
296            | AstFragmentKind::GenericParams
297            | AstFragmentKind::Params
298            | AstFragmentKind::FieldDefs
299            | AstFragmentKind::Variants
300            | AstFragmentKind::WherePredicates => SupportsMacroExpansion::No,
301        }
302    }
303
304    pub(crate) fn expect_from_annotatables(
305        self,
306        items: impl IntoIterator<Item = Annotatable>,
307    ) -> AstFragment {
308        let mut items = items.into_iter();
309        match self {
310            AstFragmentKind::Arms => {
311                AstFragment::Arms(items.map(Annotatable::expect_arm).collect())
312            }
313            AstFragmentKind::ExprFields => {
314                AstFragment::ExprFields(items.map(Annotatable::expect_expr_field).collect())
315            }
316            AstFragmentKind::PatFields => {
317                AstFragment::PatFields(items.map(Annotatable::expect_pat_field).collect())
318            }
319            AstFragmentKind::GenericParams => {
320                AstFragment::GenericParams(items.map(Annotatable::expect_generic_param).collect())
321            }
322            AstFragmentKind::Params => {
323                AstFragment::Params(items.map(Annotatable::expect_param).collect())
324            }
325            AstFragmentKind::FieldDefs => {
326                AstFragment::FieldDefs(items.map(Annotatable::expect_field_def).collect())
327            }
328            AstFragmentKind::Variants => {
329                AstFragment::Variants(items.map(Annotatable::expect_variant).collect())
330            }
331            AstFragmentKind::WherePredicates => AstFragment::WherePredicates(
332                items.map(Annotatable::expect_where_predicate).collect(),
333            ),
334            AstFragmentKind::Items => {
335                AstFragment::Items(items.map(Annotatable::expect_item).collect())
336            }
337            AstFragmentKind::ImplItems => {
338                AstFragment::ImplItems(items.map(Annotatable::expect_impl_item).collect())
339            }
340            AstFragmentKind::TraitImplItems => {
341                AstFragment::TraitImplItems(items.map(Annotatable::expect_impl_item).collect())
342            }
343            AstFragmentKind::TraitItems => {
344                AstFragment::TraitItems(items.map(Annotatable::expect_trait_item).collect())
345            }
346            AstFragmentKind::ForeignItems => {
347                AstFragment::ForeignItems(items.map(Annotatable::expect_foreign_item).collect())
348            }
349            AstFragmentKind::Stmts => {
350                AstFragment::Stmts(items.map(Annotatable::expect_stmt).collect())
351            }
352            AstFragmentKind::Expr => AstFragment::Expr(
353                items.next().expect("expected exactly one expression").expect_expr(),
354            ),
355            AstFragmentKind::MethodReceiverExpr => AstFragment::MethodReceiverExpr(
356                items.next().expect("expected exactly one expression").expect_expr(),
357            ),
358            AstFragmentKind::OptExpr => {
359                AstFragment::OptExpr(items.next().map(Annotatable::expect_expr))
360            }
361            AstFragmentKind::Crate => {
362                AstFragment::Crate(items.next().expect("expected exactly one crate").expect_crate())
363            }
364            AstFragmentKind::Pat | AstFragmentKind::Ty => {
365                {
    ::core::panicking::panic_fmt(format_args!("patterns and types aren\'t annotatable"));
}panic!("patterns and types aren't annotatable")
366            }
367        }
368    }
369}
370
371pub struct Invocation {
372    pub kind: InvocationKind,
373    pub fragment_kind: AstFragmentKind,
374    pub expansion_data: ExpansionData,
375}
376
377pub enum InvocationKind {
378    Bang {
379        mac: Box<ast::MacCall>,
380        span: Span,
381    },
382    Attr {
383        attr: ast::Attribute,
384        /// Re-insertion position for inert attributes.
385        pos: usize,
386        item: Annotatable,
387        /// Required for resolving derive helper attributes.
388        derives: Vec<ast::Path>,
389    },
390    Derive {
391        path: ast::Path,
392        is_const: bool,
393        item: Annotatable,
394    },
395    GlobDelegation {
396        item: Box<ast::AssocItem>,
397        /// Whether this is a trait impl or an inherent impl
398        of_trait: bool,
399    },
400}
401
402impl InvocationKind {
403    fn placeholder_visibility(&self) -> Option<ast::Visibility> {
404        // HACK: For unnamed fields placeholders should have the same visibility as the actual
405        // fields because for tuple structs/variants resolve determines visibilities of their
406        // constructor using these field visibilities before attributes on them are expanded.
407        // The assumption is that the attribute expansion cannot change field visibilities,
408        // and it holds because only inert attributes are supported in this position.
409        match self {
410            InvocationKind::Attr { item: Annotatable::FieldDef(field), .. }
411            | InvocationKind::Derive { item: Annotatable::FieldDef(field), .. }
412                if field.ident.is_none() =>
413            {
414                Some(field.vis.clone())
415            }
416            _ => None,
417        }
418    }
419}
420
421impl Invocation {
422    pub fn span(&self) -> Span {
423        match &self.kind {
424            InvocationKind::Bang { span, .. } => *span,
425            InvocationKind::Attr { attr, .. } => attr.span,
426            InvocationKind::Derive { path, .. } => path.span,
427            InvocationKind::GlobDelegation { item, .. } => item.span,
428        }
429    }
430
431    fn span_mut(&mut self) -> &mut Span {
432        match &mut self.kind {
433            InvocationKind::Bang { span, .. } => span,
434            InvocationKind::Attr { attr, .. } => &mut attr.span,
435            InvocationKind::Derive { path, .. } => &mut path.span,
436            InvocationKind::GlobDelegation { item, .. } => &mut item.span,
437        }
438    }
439}
440
441pub struct MacroExpander<'a, 'b> {
442    pub cx: &'a mut ExtCtxt<'b>,
443    monotonic: bool, // cf. `cx.monotonic_expander()`
444}
445
446impl<'a, 'b> MacroExpander<'a, 'b> {
447    pub fn new(cx: &'a mut ExtCtxt<'b>, monotonic: bool) -> Self {
448        MacroExpander { cx, monotonic }
449    }
450
451    pub fn expand_crate(&mut self, krate: ast::Crate) -> ast::Crate {
452        let file_path = match self.cx.source_map().span_to_filename(krate.spans.inner_span) {
453            FileName::Real(name) => name
454                .into_local_path()
455                .expect("attempting to resolve a file path in an external file"),
456            other => PathBuf::from(other.prefer_local_unconditionally().to_string()),
457        };
458        let dir_path = file_path.parent().unwrap_or(&file_path).to_owned();
459        self.cx.root_path = dir_path.clone();
460        self.cx.current_expansion.module = Rc::new(ModuleData {
461            mod_path: ::alloc::boxed::box_assume_init_into_vec_unsafe(::alloc::intrinsics::write_box_via_move(::alloc::boxed::Box::new_uninit(),
        [Ident::with_dummy_span(self.cx.ecfg.crate_name)]))vec![Ident::with_dummy_span(self.cx.ecfg.crate_name)],
462            file_path_stack: ::alloc::boxed::box_assume_init_into_vec_unsafe(::alloc::intrinsics::write_box_via_move(::alloc::boxed::Box::new_uninit(),
        [file_path]))vec![file_path],
463            dir_path,
464        });
465        let krate = self.fully_expand_fragment(AstFragment::Crate(krate)).make_crate();
466        {
    match (&krate.id, &ast::CRATE_NODE_ID) {
        (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);
            }
        }
    }
};assert_eq!(krate.id, ast::CRATE_NODE_ID);
467        self.cx.trace_macros_diag();
468        krate
469    }
470
471    /// Recursively expand all macro invocations in this AST fragment.
472    pub fn fully_expand_fragment(&mut self, input_fragment: AstFragment) -> AstFragment {
473        let orig_expansion_data = self.cx.current_expansion.clone();
474        let orig_force_mode = self.cx.force_mode;
475
476        // Collect all macro invocations and replace them with placeholders.
477        let (mut fragment_with_placeholders, mut invocations) =
478            self.collect_invocations(input_fragment, &[]);
479
480        // Optimization: if we resolve all imports now,
481        // we'll be able to immediately resolve most of imported macros.
482        self.resolve_imports();
483
484        // Resolve paths in all invocations and produce output expanded fragments for them, but
485        // do not insert them into our input AST fragment yet, only store in `expanded_fragments`.
486        // The output fragments also go through expansion recursively until no invocations are left.
487        // Unresolved macros produce dummy outputs as a recovery measure.
488        invocations.reverse();
489        let mut expanded_fragments = Vec::new();
490        let mut expanded_fragments_len = 0;
491        let mut undetermined_invocations = Vec::new();
492        let (mut progress, mut force) = (false, !self.monotonic);
493        loop {
494            let Some((invoc, ext)) = invocations.pop() else {
495                self.resolve_imports();
496                if undetermined_invocations.is_empty() {
497                    break;
498                }
499                invocations = mem::take(&mut undetermined_invocations);
500                force = !progress;
501                progress = false;
502                if force && self.monotonic {
503                    self.cx.dcx().span_delayed_bug(
504                        invocations.last().unwrap().0.span(),
505                        "expansion entered force mode without producing any errors",
506                    );
507                }
508                continue;
509            };
510
511            let ext = match ext {
512                Some(ext) => ext,
513                None => {
514                    let eager_expansion_root = if self.monotonic {
515                        invoc.expansion_data.id
516                    } else {
517                        orig_expansion_data.id
518                    };
519                    match self.cx.resolver.resolve_macro_invocation(
520                        &invoc,
521                        eager_expansion_root,
522                        force,
523                    ) {
524                        Ok(ext) => ext,
525                        Err(Indeterminate) => {
526                            // Cannot resolve, will retry this invocation later.
527                            undetermined_invocations.push((invoc, None));
528                            continue;
529                        }
530                    }
531                }
532            };
533
534            let ExpansionData { depth, id: expn_id, .. } = invoc.expansion_data;
535            let depth = depth - orig_expansion_data.depth;
536            self.cx.current_expansion = invoc.expansion_data.clone();
537            self.cx.force_mode = force;
538
539            let fragment_kind = invoc.fragment_kind;
540            match self.expand_invoc(invoc, &ext.kind) {
541                ExpandResult::Ready(fragment) => {
542                    let mut derive_invocations = Vec::new();
543                    let derive_placeholders = self
544                        .cx
545                        .resolver
546                        .take_derive_resolutions(expn_id)
547                        .map(|derives| {
548                            derive_invocations.reserve(derives.len());
549                            derives
550                                .into_iter()
551                                .map(|DeriveResolution { path, item, exts: _, is_const }| {
552                                    // FIXME: Consider using the derive resolutions (`_exts`)
553                                    // instead of enqueuing the derives to be resolved again later.
554                                    // Note that this can result in duplicate diagnostics.
555                                    let expn_id = LocalExpnId::fresh_empty();
556                                    derive_invocations.push((
557                                        Invocation {
558                                            kind: InvocationKind::Derive { path, item, is_const },
559                                            fragment_kind,
560                                            expansion_data: ExpansionData {
561                                                id: expn_id,
562                                                ..self.cx.current_expansion.clone()
563                                            },
564                                        },
565                                        None,
566                                    ));
567                                    NodeId::placeholder_from_expn_id(expn_id)
568                                })
569                                .collect::<Vec<_>>()
570                        })
571                        .unwrap_or_default();
572
573                    let (expanded_fragment, collected_invocations) =
574                        self.collect_invocations(fragment, &derive_placeholders);
575                    // We choose to expand any derive invocations associated with this macro
576                    // invocation *before* any macro invocations collected from the output
577                    // fragment.
578                    derive_invocations.extend(collected_invocations);
579
580                    progress = true;
581                    if expanded_fragments.len() < depth {
582                        expanded_fragments.push(Vec::new());
583                    }
584                    expanded_fragments[depth - 1].push((expn_id, expanded_fragment));
585                    expanded_fragments_len += 1;
586                    invocations.extend(derive_invocations.into_iter().rev());
587                }
588                ExpandResult::Retry(invoc) => {
589                    if force {
590                        self.cx.dcx().span_bug(
591                            invoc.span(),
592                            "expansion entered force mode but is still stuck",
593                        );
594                    } else {
595                        // Cannot expand, will retry this invocation later.
596                        undetermined_invocations.push((invoc, Some(ext)));
597                    }
598                }
599            }
600        }
601
602        self.cx.current_expansion = orig_expansion_data;
603        self.cx.force_mode = orig_force_mode;
604
605        // Finally incorporate all the expanded macros into the input AST fragment.
606        let mut placeholder_expander = PlaceholderExpander::with_capacity(expanded_fragments_len);
607        while let Some(expanded_fragments) = expanded_fragments.pop() {
608            for (expn_id, expanded_fragment) in expanded_fragments.into_iter().rev() {
609                placeholder_expander
610                    .add(NodeId::placeholder_from_expn_id(expn_id), expanded_fragment);
611            }
612        }
613        fragment_with_placeholders.mut_visit_with(&mut placeholder_expander);
614        fragment_with_placeholders
615    }
616
617    fn resolve_imports(&mut self) {
618        if self.monotonic {
619            self.cx.resolver.resolve_imports();
620        }
621    }
622
623    /// Collects all macro invocations reachable at this time in this AST fragment, and replace
624    /// them with "placeholders" - dummy macro invocations with specially crafted `NodeId`s.
625    /// Then call into resolver that builds a skeleton ("reduced graph") of the fragment and
626    /// prepares data for resolving paths of macro invocations.
627    fn collect_invocations(
628        &mut self,
629        mut fragment: AstFragment,
630        extra_placeholders: &[NodeId],
631    ) -> (AstFragment, Vec<(Invocation, Option<Arc<SyntaxExtension>>)>) {
632        // Resolve `$crate`s in the fragment for pretty-printing.
633        self.cx.resolver.resolve_dollar_crates();
634
635        let mut invocations = {
636            let mut collector = InvocationCollector {
637                // Non-derive macro invocations cannot see the results of cfg expansion - they
638                // will either be removed along with the item, or invoked before the cfg/cfg_attr
639                // attribute is expanded. Therefore, we don't need to configure the tokens
640                // Derive macros *can* see the results of cfg-expansion - they are handled
641                // specially in `fully_expand_fragment`
642                cx: self.cx,
643                invocations: Vec::new(),
644                monotonic: self.monotonic,
645            };
646            fragment.mut_visit_with(&mut collector);
647            fragment.add_placeholders(extra_placeholders);
648            collector.invocations
649        };
650
651        if self.monotonic {
652            self.cx
653                .resolver
654                .visit_ast_fragment_with_placeholders(self.cx.current_expansion.id, &fragment);
655
656            if self.cx.sess.opts.incremental.is_some() {
657                for (invoc, _) in invocations.iter_mut() {
658                    let expn_id = invoc.expansion_data.id;
659                    let parent_def = self.cx.resolver.invocation_parent(expn_id);
660                    let span = invoc.span_mut();
661                    *span = span.with_parent(Some(parent_def));
662                }
663            }
664        }
665
666        (fragment, invocations)
667    }
668
669    fn error_recursion_limit_reached(&mut self) -> ErrorGuaranteed {
670        let expn_data = self.cx.current_expansion.id.expn_data();
671        let suggested_limit = match self.cx.ecfg.recursion_limit {
672            Limit(0) => Limit(2),
673            limit => limit * 2,
674        };
675
676        let guar = self.cx.dcx().emit_err(RecursionLimitReached {
677            span: expn_data.call_site,
678            descr: expn_data.kind.descr(),
679            suggested_limit,
680            crate_name: self.cx.ecfg.crate_name,
681        });
682
683        self.cx.macro_error_and_trace_macros_diag();
684        guar
685    }
686
687    /// A macro's expansion does not fit in this fragment kind.
688    /// For example, a non-type macro in a type position.
689    fn error_wrong_fragment_kind(
690        &mut self,
691        kind: AstFragmentKind,
692        mac: &ast::MacCall,
693        span: Span,
694    ) -> ErrorGuaranteed {
695        let name = pprust::path_to_string(&mac.path);
696        let guar = self.cx.dcx().emit_err(WrongFragmentKind { span, kind: kind.name(), name });
697        self.cx.macro_error_and_trace_macros_diag();
698        guar
699    }
700
701    fn expand_invoc(
702        &mut self,
703        invoc: Invocation,
704        ext: &SyntaxExtensionKind,
705    ) -> ExpandResult<AstFragment, Invocation> {
706        let recursion_limit = match self.cx.reduced_recursion_limit {
707            Some((limit, _)) => limit,
708            None => self.cx.ecfg.recursion_limit,
709        };
710
711        if !recursion_limit.value_within_limit(self.cx.current_expansion.depth) {
712            let guar = match self.cx.reduced_recursion_limit {
713                Some((_, guar)) => guar,
714                None => self.error_recursion_limit_reached(),
715            };
716
717            // Reduce the recursion limit by half each time it triggers.
718            self.cx.reduced_recursion_limit = Some((recursion_limit / 2, guar));
719
720            return ExpandResult::Ready(invoc.fragment_kind.dummy(invoc.span(), guar));
721        }
722
723        let macro_stats = self.cx.sess.opts.unstable_opts.macro_stats;
724
725        let (fragment_kind, span) = (invoc.fragment_kind, invoc.span());
726        ExpandResult::Ready(match invoc.kind {
727            InvocationKind::Bang { mac, span } => {
728                if let SyntaxExtensionKind::Bang(expander) = ext {
729                    match expander.expand(self.cx, span, mac.args.tokens.clone()) {
730                        Ok(tok_result) => {
731                            let fragment =
732                                self.parse_ast_fragment(tok_result, fragment_kind, &mac.path, span);
733                            if macro_stats {
734                                update_bang_macro_stats(
735                                    self.cx,
736                                    fragment_kind,
737                                    span,
738                                    mac,
739                                    &fragment,
740                                );
741                            }
742                            fragment
743                        }
744                        Err(guar) => return ExpandResult::Ready(fragment_kind.dummy(span, guar)),
745                    }
746                } else if let Some(expander) = ext.as_legacy_bang() {
747                    let tok_result = match expander.expand(self.cx, span, mac.args.tokens.clone()) {
748                        ExpandResult::Ready(tok_result) => tok_result,
749                        ExpandResult::Retry(_) => {
750                            // retry the original
751                            return ExpandResult::Retry(Invocation {
752                                kind: InvocationKind::Bang { mac, span },
753                                ..invoc
754                            });
755                        }
756                    };
757                    if let Some(fragment) = fragment_kind.make_from(tok_result) {
758                        if macro_stats {
759                            update_bang_macro_stats(self.cx, fragment_kind, span, mac, &fragment);
760                        }
761                        fragment
762                    } else {
763                        let guar = self.error_wrong_fragment_kind(fragment_kind, &mac, span);
764                        fragment_kind.dummy(span, guar)
765                    }
766                } else {
767                    ::core::panicking::panic("internal error: entered unreachable code");unreachable!();
768                }
769            }
770            InvocationKind::Attr { attr, pos, mut item, derives } => {
771                if let Some(expander) = ext.as_attr() {
772                    self.gate_proc_macro_attr_item(span, &item);
773                    let tokens = match &item {
774                        // FIXME: Collect tokens and use them instead of generating
775                        // fake ones. These are unstable, so it needs to be
776                        // fixed prior to stabilization
777                        // Fake tokens when we are invoking an inner attribute, and
778                        // we are invoking it on an out-of-line module or crate.
779                        Annotatable::Crate(krate) => {
780                            rustc_parse::fake_token_stream_for_crate(&self.cx.sess.psess, krate)
781                        }
782                        Annotatable::Item(item_inner)
783                            if #[allow(non_exhaustive_omitted_patterns)] match attr.style {
    AttrStyle::Inner => true,
    _ => false,
}matches!(attr.style, AttrStyle::Inner)
784                                && #[allow(non_exhaustive_omitted_patterns)] match item_inner.kind {
    ItemKind::Mod(_, _,
        ModKind::Unloaded | ModKind::Loaded(_, Inline::No { .. }, _)) => true,
    _ => false,
}matches!(
785                                    item_inner.kind,
786                                    ItemKind::Mod(
787                                        _,
788                                        _,
789                                        ModKind::Unloaded
790                                            | ModKind::Loaded(_, Inline::No { .. }, _),
791                                    )
792                                ) =>
793                        {
794                            rustc_parse::fake_token_stream_for_item(&self.cx.sess.psess, item_inner)
795                        }
796                        Annotatable::Item(item_inner) if item_inner.tokens.is_none() => {
797                            rustc_parse::fake_token_stream_for_item(&self.cx.sess.psess, item_inner)
798                        }
799                        // When a function has EII implementations attached (via `eii_impls`),
800                        // use fake tokens so the pretty-printer re-emits the EII attribute
801                        // (e.g. `#[hello]`) in the token stream. Without this, the EII
802                        // attribute is lost during the token roundtrip performed by
803                        // `AttrProcMacro` expanders like `contracts::requires/ensures`,
804                        // breaking the EII link on the resulting re-parsed item.
805                        Annotatable::Item(item_inner)
806                            if #[allow(non_exhaustive_omitted_patterns)] match &item_inner.kind {
    ItemKind::Fn(f) if !f.eii_impls.is_empty() => true,
    _ => false,
}matches!(&item_inner.kind,
807                                ItemKind::Fn(f) if !f.eii_impls.is_empty()) =>
808                        {
809                            rustc_parse::fake_token_stream_for_item(&self.cx.sess.psess, item_inner)
810                        }
811                        Annotatable::ForeignItem(item_inner) if item_inner.tokens.is_none() => {
812                            rustc_parse::fake_token_stream_for_foreign_item(
813                                &self.cx.sess.psess,
814                                item_inner,
815                            )
816                        }
817                        _ => item.to_tokens(),
818                    };
819                    let attr_item = attr.get_normal_item();
820                    let safety = attr_item.unsafety;
821                    if let AttrArgs::Eq { .. } = attr_item.args.unparsed_ref().unwrap() {
822                        self.cx.dcx().emit_err(UnsupportedKeyValue { span });
823                    }
824                    let inner_tokens = attr_item.args.unparsed_ref().unwrap().inner_tokens();
825                    match expander.expand_with_safety(self.cx, safety, span, inner_tokens, tokens) {
826                        Ok(tok_result) => {
827                            let fragment = self.parse_ast_fragment(
828                                tok_result,
829                                fragment_kind,
830                                &attr_item.path,
831                                span,
832                            );
833                            if macro_stats {
834                                update_attr_macro_stats(
835                                    self.cx,
836                                    fragment_kind,
837                                    span,
838                                    &attr_item.path,
839                                    &attr,
840                                    item,
841                                    &fragment,
842                                );
843                            }
844                            fragment
845                        }
846                        Err(guar) => return ExpandResult::Ready(fragment_kind.dummy(span, guar)),
847                    }
848                } else if let SyntaxExtensionKind::LegacyAttr(expander) = ext {
849                    // `LegacyAttr` is only used for builtin attribute macros, which have their
850                    // safety checked by `check_builtin_meta_item`, so we don't need to check
851                    // `unsafety` here.
852                    match validate_attr::parse_meta(&self.cx.sess.psess, &attr) {
853                        Ok(meta) => {
854                            let item_clone = macro_stats.then(|| item.clone());
855                            let items = match expander.expand(self.cx, span, &meta, item, false) {
856                                ExpandResult::Ready(items) => items,
857                                ExpandResult::Retry(item) => {
858                                    // Reassemble the original invocation for retrying.
859                                    return ExpandResult::Retry(Invocation {
860                                        kind: InvocationKind::Attr { attr, pos, item, derives },
861                                        ..invoc
862                                    });
863                                }
864                            };
865                            if #[allow(non_exhaustive_omitted_patterns)] match fragment_kind {
    AstFragmentKind::Expr | AstFragmentKind::MethodReceiverExpr => true,
    _ => false,
}matches!(
866                                fragment_kind,
867                                AstFragmentKind::Expr | AstFragmentKind::MethodReceiverExpr
868                            ) && items.is_empty()
869                            {
870                                let guar = self.cx.dcx().emit_err(RemoveExprNotSupported { span });
871                                fragment_kind.dummy(span, guar)
872                            } else {
873                                let fragment = fragment_kind.expect_from_annotatables(items);
874                                if macro_stats {
875                                    update_attr_macro_stats(
876                                        self.cx,
877                                        fragment_kind,
878                                        span,
879                                        &meta.path,
880                                        &attr,
881                                        item_clone.unwrap(),
882                                        &fragment,
883                                    );
884                                }
885                                fragment
886                            }
887                        }
888                        Err(err) => {
889                            let _guar = err.emit();
890                            fragment_kind.expect_from_annotatables(iter::once(item))
891                        }
892                    }
893                } else if let SyntaxExtensionKind::NonMacroAttr = ext {
894                    // `-Zmacro-stats` ignores these because they don't do any real expansion.
895                    self.cx.expanded_inert_attrs.mark(&attr);
896                    item.visit_attrs(|attrs| attrs.insert(pos, attr));
897                    fragment_kind.expect_from_annotatables(iter::once(item))
898                } else {
899                    ::core::panicking::panic("internal error: entered unreachable code");unreachable!();
900                }
901            }
902            InvocationKind::Derive { path, item, is_const } => match ext {
903                SyntaxExtensionKind::Derive(expander)
904                | SyntaxExtensionKind::LegacyDerive(expander) => {
905                    // The `MetaItem` representing the trait to derive can't
906                    // have an unsafe around it (as of now).
907                    let meta = ast::MetaItem {
908                        unsafety: ast::Safety::Default,
909                        kind: MetaItemKind::Word,
910                        span,
911                        path,
912                    };
913                    let items = match expander.expand(self.cx, span, &meta, item, is_const) {
914                        ExpandResult::Ready(items) => items,
915                        ExpandResult::Retry(item) => {
916                            // Reassemble the original invocation for retrying.
917                            return ExpandResult::Retry(Invocation {
918                                kind: InvocationKind::Derive { path: meta.path, item, is_const },
919                                ..invoc
920                            });
921                        }
922                    };
923                    let fragment = fragment_kind.expect_from_annotatables(items);
924                    if macro_stats {
925                        update_derive_macro_stats(
926                            self.cx,
927                            fragment_kind,
928                            span,
929                            &meta.path,
930                            &fragment,
931                        );
932                    }
933                    fragment
934                }
935                SyntaxExtensionKind::MacroRules(expander)
936                    if expander.kinds().contains(MacroKinds::DERIVE) =>
937                {
938                    if is_const {
939                        let guar = self
940                            .cx
941                            .dcx()
942                            .span_err(span, "macro `derive` does not support const derives");
943                        return ExpandResult::Ready(fragment_kind.dummy(span, guar));
944                    }
945                    let body = item.to_tokens();
946                    match expander.expand_derive(self.cx, span, &body) {
947                        Ok(tok_result) => {
948                            let fragment =
949                                self.parse_ast_fragment(tok_result, fragment_kind, &path, span);
950                            if macro_stats {
951                                update_derive_macro_stats(
952                                    self.cx,
953                                    fragment_kind,
954                                    span,
955                                    &path,
956                                    &fragment,
957                                );
958                            }
959                            fragment
960                        }
961                        Err(guar) => return ExpandResult::Ready(fragment_kind.dummy(span, guar)),
962                    }
963                }
964                _ => ::core::panicking::panic("internal error: entered unreachable code")unreachable!(),
965            },
966            InvocationKind::GlobDelegation { item, of_trait } => {
967                let AssocItemKind::DelegationMac(deleg) = &item.kind else { ::core::panicking::panic("internal error: entered unreachable code")unreachable!() };
968                let suffixes = match ext {
969                    SyntaxExtensionKind::GlobDelegation(expander) => match expander.expand(self.cx)
970                    {
971                        ExpandResult::Ready(suffixes) => suffixes,
972                        ExpandResult::Retry(()) => {
973                            // Reassemble the original invocation for retrying.
974                            return ExpandResult::Retry(Invocation {
975                                kind: InvocationKind::GlobDelegation { item, of_trait },
976                                ..invoc
977                            });
978                        }
979                    },
980                    SyntaxExtensionKind::Bang(..) => {
981                        let msg = "expanded a dummy glob delegation";
982                        let guar = self.cx.dcx().span_delayed_bug(span, msg);
983                        return ExpandResult::Ready(fragment_kind.dummy(span, guar));
984                    }
985                    _ => ::core::panicking::panic("internal error: entered unreachable code")unreachable!(),
986                };
987
988                type Node = AstNodeWrapper<Box<ast::AssocItem>, ImplItemTag>;
989                let single_delegations = build_single_delegations::<Node>(
990                    self.cx,
991                    deleg,
992                    &item,
993                    &suffixes,
994                    item.span,
995                    DelegationSource::Glob,
996                );
997                // `-Zmacro-stats` ignores these because they don't seem important.
998                fragment_kind.expect_from_annotatables(single_delegations.map(|item| {
999                    Annotatable::AssocItem(Box::new(item), AssocCtxt::Impl { of_trait })
1000                }))
1001            }
1002        })
1003    }
1004
1005    fn gate_proc_macro_attr_item(&self, span: Span, item: &Annotatable) {
1006        let kind = match item {
1007            Annotatable::Item(_)
1008            | Annotatable::AssocItem(..)
1009            | Annotatable::ForeignItem(_)
1010            | Annotatable::Crate(..) => return,
1011            Annotatable::Stmt(stmt) => {
1012                // Attributes are stable on item statements,
1013                // but unstable on all other kinds of statements
1014                if stmt.is_item() {
1015                    return;
1016                }
1017                "statements"
1018            }
1019            Annotatable::Expr(_) => "expressions",
1020            Annotatable::Arm(..)
1021            | Annotatable::ExprField(..)
1022            | Annotatable::PatField(..)
1023            | Annotatable::GenericParam(..)
1024            | Annotatable::Param(..)
1025            | Annotatable::FieldDef(..)
1026            | Annotatable::Variant(..)
1027            | Annotatable::WherePredicate(..) => { ::core::panicking::panic_fmt(format_args!("unexpected annotatable")); }panic!("unexpected annotatable"),
1028        };
1029        if self.cx.ecfg.features.proc_macro_hygiene() {
1030            return;
1031        }
1032        feature_err(
1033            self.cx.sess,
1034            sym::proc_macro_hygiene,
1035            span,
1036            ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("custom attributes cannot be applied to {0}",
                kind))
    })format!("custom attributes cannot be applied to {kind}"),
1037        )
1038        .emit();
1039    }
1040
1041    fn parse_ast_fragment(
1042        &mut self,
1043        toks: TokenStream,
1044        kind: AstFragmentKind,
1045        path: &ast::Path,
1046        span: Span,
1047    ) -> AstFragment {
1048        let mut parser = self.cx.new_parser_from_tts(toks);
1049        match parse_ast_fragment(&mut parser, kind) {
1050            Ok(fragment) => {
1051                ensure_complete_parse(&parser, path, kind.name(), span);
1052                fragment
1053            }
1054            Err(mut err) => {
1055                if err.span.is_dummy() {
1056                    err.span(span);
1057                }
1058                annotate_err_with_kind(&mut err, kind, span);
1059                let guar = err.emit();
1060                self.cx.macro_error_and_trace_macros_diag();
1061                kind.dummy(span, guar)
1062            }
1063        }
1064    }
1065}
1066
1067pub fn parse_ast_fragment<'a>(
1068    this: &mut Parser<'a>,
1069    kind: AstFragmentKind,
1070) -> PResult<'a, AstFragment> {
1071    Ok(match kind {
1072        AstFragmentKind::Items => {
1073            let mut items = SmallVec::new();
1074            while let Some(item) = this.parse_item(ForceCollect::No, AllowConstBlockItems::Yes)? {
1075                items.push(item);
1076            }
1077            AstFragment::Items(items)
1078        }
1079        AstFragmentKind::TraitItems => {
1080            let mut items = SmallVec::new();
1081            while let Some(item) = this.parse_trait_item(ForceCollect::No)? {
1082                items.extend(item);
1083            }
1084            AstFragment::TraitItems(items)
1085        }
1086        AstFragmentKind::ImplItems => {
1087            let mut items = SmallVec::new();
1088            while let Some(item) = this.parse_impl_item(ForceCollect::No)? {
1089                items.extend(item);
1090            }
1091            AstFragment::ImplItems(items)
1092        }
1093        AstFragmentKind::TraitImplItems => {
1094            let mut items = SmallVec::new();
1095            while let Some(item) = this.parse_impl_item(ForceCollect::No)? {
1096                items.extend(item);
1097            }
1098            AstFragment::TraitImplItems(items)
1099        }
1100        AstFragmentKind::ForeignItems => {
1101            let mut items = SmallVec::new();
1102            while let Some(item) = this.parse_foreign_item(ForceCollect::No)? {
1103                items.extend(item);
1104            }
1105            AstFragment::ForeignItems(items)
1106        }
1107        AstFragmentKind::Stmts => {
1108            let mut stmts = SmallVec::new();
1109            // Won't make progress on a `}`.
1110            while this.token != token::Eof && this.token != token::CloseBrace {
1111                if let Some(stmt) = this.parse_full_stmt(AttemptLocalParseRecovery::Yes)? {
1112                    stmts.push(stmt);
1113                }
1114            }
1115            AstFragment::Stmts(stmts)
1116        }
1117        AstFragmentKind::Expr => AstFragment::Expr(this.parse_expr()?),
1118        AstFragmentKind::MethodReceiverExpr => AstFragment::MethodReceiverExpr(this.parse_expr()?),
1119        AstFragmentKind::OptExpr => {
1120            if this.token != token::Eof {
1121                AstFragment::OptExpr(Some(this.parse_expr()?))
1122            } else {
1123                AstFragment::OptExpr(None)
1124            }
1125        }
1126        AstFragmentKind::Ty => AstFragment::Ty(this.parse_ty()?),
1127        AstFragmentKind::Pat => AstFragment::Pat(Box::new(this.parse_pat_allow_top_guard(
1128            None,
1129            RecoverComma::No,
1130            RecoverColon::Yes,
1131            CommaRecoveryMode::LikelyTuple,
1132        )?)),
1133        AstFragmentKind::Crate => AstFragment::Crate(this.parse_crate_mod()?),
1134        AstFragmentKind::Arms
1135        | AstFragmentKind::ExprFields
1136        | AstFragmentKind::PatFields
1137        | AstFragmentKind::GenericParams
1138        | AstFragmentKind::Params
1139        | AstFragmentKind::FieldDefs
1140        | AstFragmentKind::Variants
1141        | AstFragmentKind::WherePredicates => {
    ::core::panicking::panic_fmt(format_args!("unexpected AST fragment kind"));
}panic!("unexpected AST fragment kind"),
1142    })
1143}
1144
1145pub(crate) fn ensure_complete_parse<'a>(
1146    parser: &Parser<'a>,
1147    macro_path: &ast::Path,
1148    kind_name: &str,
1149    span: Span,
1150) {
1151    if parser.token != token::Eof {
1152        let descr = token_descr(&parser.token);
1153        // Avoid emitting backtrace info twice.
1154        let def_site_span = parser.token.span.with_ctxt(SyntaxContext::root());
1155
1156        let semi_span = parser.psess.source_map().next_point(span);
1157        let add_semicolon = match &parser.psess.source_map().span_to_snippet(semi_span) {
1158            Ok(snippet) if &snippet[..] != ";" && kind_name == "expression" => {
1159                Some(span.shrink_to_hi())
1160            }
1161            _ => None,
1162        };
1163
1164        let expands_to_match_arm = kind_name == "pattern" && parser.token == token::FatArrow;
1165
1166        parser.dcx().emit_err(IncompleteParse {
1167            span: def_site_span,
1168            descr,
1169            label_span: span,
1170            macro_path: pprust::path_to_string(macro_path),
1171            kind_name,
1172            expands_to_match_arm,
1173            add_semicolon,
1174        });
1175    }
1176}
1177
1178/// Wraps a call to `walk_*` / `walk_flat_map_*`
1179/// for an AST node that supports attributes
1180/// (see the `Annotatable` enum)
1181/// This method assigns a `NodeId`, and sets that `NodeId`
1182/// as our current 'lint node id'. If a macro call is found
1183/// inside this AST node, we will use this AST node's `NodeId`
1184/// to emit lints associated with that macro (allowing
1185/// `#[allow]` / `#[deny]` to be applied close to
1186/// the macro invocation).
1187///
1188/// Do *not* call this for a macro AST node
1189/// (e.g. `ExprKind::MacCall`) - we cannot emit lints
1190/// at these AST nodes, since they are removed and
1191/// replaced with the result of macro expansion.
1192///
1193/// All other `NodeId`s are assigned by `visit_id`.
1194/// * `self` is the 'self' parameter for the current method,
1195/// * `id` is a mutable reference to the `NodeId` field
1196///    of the current AST node.
1197/// * `closure` is a closure that executes the
1198///   `walk_*` / `walk_flat_map_*` method
1199///   for the current AST node.
1200macro_rules! assign_id {
1201    ($self:ident, $id:expr, $closure:expr) => {{
1202        let old_id = $self.cx.current_expansion.lint_node_id;
1203        if $self.monotonic {
1204            debug_assert_eq!(*$id, ast::DUMMY_NODE_ID);
1205            let new_id = $self.cx.resolver.next_node_id();
1206            *$id = new_id;
1207            $self.cx.current_expansion.lint_node_id = new_id;
1208        }
1209        let ret = ($closure)();
1210        $self.cx.current_expansion.lint_node_id = old_id;
1211        ret
1212    }};
1213}
1214
1215enum AddSemicolon {
1216    Yes,
1217    No,
1218}
1219
1220/// A trait implemented for all `AstFragment` nodes and providing all pieces
1221/// of functionality used by `InvocationCollector`.
1222trait InvocationCollectorNode: HasAttrs + HasNodeId + Sized {
1223    type OutputTy = SmallVec<[Self; 1]>;
1224    type ItemKind = ItemKind;
1225    const KIND: AstFragmentKind;
1226    fn to_annotatable(self) -> Annotatable;
1227    fn fragment_to_output(fragment: AstFragment) -> Self::OutputTy;
1228    fn descr() -> &'static str {
1229        ::core::panicking::panic("internal error: entered unreachable code")unreachable!()
1230    }
1231    fn walk_flat_map(self, _collector: &mut InvocationCollector<'_, '_>) -> Self::OutputTy {
1232        ::core::panicking::panic("internal error: entered unreachable code")unreachable!()
1233    }
1234    fn walk(&mut self, _collector: &mut InvocationCollector<'_, '_>) {
1235        ::core::panicking::panic("internal error: entered unreachable code")unreachable!()
1236    }
1237    fn is_mac_call(&self) -> bool {
1238        false
1239    }
1240    fn take_mac_call(self) -> (Box<ast::MacCall>, ast::AttrVec, AddSemicolon) {
1241        ::core::panicking::panic("internal error: entered unreachable code")unreachable!()
1242    }
1243    fn delegation(&self) -> Option<(&ast::DelegationMac, &ast::Item<Self::ItemKind>)> {
1244        None
1245    }
1246    fn delegation_item_kind(_deleg: Box<ast::Delegation>) -> Self::ItemKind {
1247        ::core::panicking::panic("internal error: entered unreachable code")unreachable!()
1248    }
1249    fn from_item(_item: ast::Item<Self::ItemKind>) -> Self {
1250        ::core::panicking::panic("internal error: entered unreachable code")unreachable!()
1251    }
1252    fn flatten_outputs(_outputs: impl Iterator<Item = Self::OutputTy>) -> Self::OutputTy {
1253        ::core::panicking::panic("internal error: entered unreachable code")unreachable!()
1254    }
1255    fn pre_flat_map_node_collect_attr(_cfg: &StripUnconfigured<'_>, _attr: &ast::Attribute) {}
1256    fn post_flat_map_node_collect_bang(_output: &mut Self::OutputTy, _add_semicolon: AddSemicolon) {
1257    }
1258    fn wrap_flat_map_node_walk_flat_map(
1259        node: Self,
1260        collector: &mut InvocationCollector<'_, '_>,
1261        walk_flat_map: impl FnOnce(Self, &mut InvocationCollector<'_, '_>) -> Self::OutputTy,
1262    ) -> Result<Self::OutputTy, Self> {
1263        Ok(walk_flat_map(node, collector))
1264    }
1265    fn expand_cfg_false(
1266        &mut self,
1267        collector: &mut InvocationCollector<'_, '_>,
1268        _pos: usize,
1269        span: Span,
1270    ) {
1271        collector.cx.dcx().emit_err(RemoveNodeNotSupported { span, descr: Self::descr() });
1272    }
1273
1274    /// All of the identifiers (items) declared by this node.
1275    /// This is an approximation and should only be used for diagnostics.
1276    fn declared_idents(&self) -> Vec<Ident> {
1277        ::alloc::vec::Vec::new()vec![]
1278    }
1279
1280    fn as_target(&self) -> Target;
1281}
1282
1283impl InvocationCollectorNode for Box<ast::Item> {
1284    const KIND: AstFragmentKind = AstFragmentKind::Items;
1285    fn to_annotatable(self) -> Annotatable {
1286        Annotatable::Item(self)
1287    }
1288    fn fragment_to_output(fragment: AstFragment) -> Self::OutputTy {
1289        fragment.make_items()
1290    }
1291    fn walk_flat_map(self, collector: &mut InvocationCollector<'_, '_>) -> Self::OutputTy {
1292        walk_flat_map_item(collector, self)
1293    }
1294    fn is_mac_call(&self) -> bool {
1295        #[allow(non_exhaustive_omitted_patterns)] match self.kind {
    ItemKind::MacCall(..) => true,
    _ => false,
}matches!(self.kind, ItemKind::MacCall(..))
1296    }
1297    fn take_mac_call(self) -> (Box<ast::MacCall>, ast::AttrVec, AddSemicolon) {
1298        match self.kind {
1299            ItemKind::MacCall(mac) => (mac, self.attrs, AddSemicolon::No),
1300            _ => ::core::panicking::panic("internal error: entered unreachable code")unreachable!(),
1301        }
1302    }
1303    fn delegation(&self) -> Option<(&ast::DelegationMac, &ast::Item<Self::ItemKind>)> {
1304        match &self.kind {
1305            ItemKind::DelegationMac(deleg) => Some((deleg, self)),
1306            _ => None,
1307        }
1308    }
1309    fn delegation_item_kind(deleg: Box<ast::Delegation>) -> Self::ItemKind {
1310        ItemKind::Delegation(deleg)
1311    }
1312    fn from_item(item: ast::Item<Self::ItemKind>) -> Self {
1313        Box::new(item)
1314    }
1315    fn flatten_outputs(items: impl Iterator<Item = Self::OutputTy>) -> Self::OutputTy {
1316        items.flatten().collect()
1317    }
1318    fn wrap_flat_map_node_walk_flat_map(
1319        mut node: Self,
1320        collector: &mut InvocationCollector<'_, '_>,
1321        walk_flat_map: impl FnOnce(Self, &mut InvocationCollector<'_, '_>) -> Self::OutputTy,
1322    ) -> Result<Self::OutputTy, Self> {
1323        if !#[allow(non_exhaustive_omitted_patterns)] match node.kind {
    ItemKind::Mod(..) => true,
    _ => false,
}matches!(node.kind, ItemKind::Mod(..)) {
1324            return Ok(walk_flat_map(node, collector));
1325        }
1326
1327        // Work around borrow checker not seeing through `P`'s deref.
1328        let (span, mut attrs) = (node.span, mem::take(&mut node.attrs));
1329        let ItemKind::Mod(_, ident, ref mut mod_kind) = node.kind else { ::core::panicking::panic("internal error: entered unreachable code")unreachable!() };
1330        let ecx = &mut collector.cx;
1331        let (file_path, dir_path, dir_ownership) = match mod_kind {
1332            ModKind::Loaded(_, inline, _) => {
1333                // Inline `mod foo { ... }`, but we still need to push directories.
1334                let (dir_path, dir_ownership) = mod_dir_path(
1335                    ecx.sess,
1336                    ident,
1337                    &attrs,
1338                    &ecx.current_expansion.module,
1339                    ecx.current_expansion.dir_ownership,
1340                    *inline,
1341                );
1342                // If the module was parsed from an external file, recover its path.
1343                // This lets `parse_external_mod` catch cycles if it's self-referential.
1344                let file_path = match inline {
1345                    Inline::Yes => None,
1346                    Inline::No { .. } => mod_file_path_from_attr(ecx.sess, &attrs, &dir_path),
1347                };
1348                node.attrs = attrs;
1349                (file_path, dir_path, dir_ownership)
1350            }
1351            ModKind::Unloaded => {
1352                // We have an outline `mod foo;` so we need to parse the file.
1353                let old_attrs_len = attrs.len();
1354                let ParsedExternalMod {
1355                    items,
1356                    spans,
1357                    file_path,
1358                    dir_path,
1359                    dir_ownership,
1360                    had_parse_error,
1361                } = parse_external_mod(
1362                    ecx.sess,
1363                    ident,
1364                    span,
1365                    &ecx.current_expansion.module,
1366                    ecx.current_expansion.dir_ownership,
1367                    &mut attrs,
1368                );
1369
1370                if let Some(lint_store) = ecx.lint_store {
1371                    lint_store.pre_expansion_lint(
1372                        ecx.sess,
1373                        ecx.ecfg.features,
1374                        ecx.resolver.registered_tools(),
1375                        ecx.current_expansion.lint_node_id,
1376                        &attrs,
1377                        &items,
1378                        ident.name,
1379                    );
1380                }
1381
1382                *mod_kind = ModKind::Loaded(items, Inline::No { had_parse_error }, spans);
1383                node.attrs = attrs;
1384                if node.attrs.len() > old_attrs_len {
1385                    // If we loaded an out-of-line module and added some inner attributes,
1386                    // then we need to re-configure it and re-collect attributes for
1387                    // resolution and expansion.
1388                    return Err(node);
1389                }
1390                (Some(file_path), dir_path, dir_ownership)
1391            }
1392        };
1393
1394        // Set the module info before we flat map.
1395        let mut module = ecx.current_expansion.module.with_dir_path(dir_path);
1396        module.mod_path.push(ident);
1397        if let Some(file_path) = file_path {
1398            module.file_path_stack.push(file_path);
1399        }
1400
1401        let orig_module = mem::replace(&mut ecx.current_expansion.module, Rc::new(module));
1402        let orig_dir_ownership =
1403            mem::replace(&mut ecx.current_expansion.dir_ownership, dir_ownership);
1404
1405        let res = Ok(walk_flat_map(node, collector));
1406
1407        collector.cx.current_expansion.dir_ownership = orig_dir_ownership;
1408        collector.cx.current_expansion.module = orig_module;
1409        res
1410    }
1411
1412    fn declared_idents(&self) -> Vec<Ident> {
1413        if let ItemKind::Use(ut) = &self.kind {
1414            fn collect_use_tree_leaves(ut: &ast::UseTree, idents: &mut Vec<Ident>) {
1415                match &ut.kind {
1416                    ast::UseTreeKind::Glob(_) => {}
1417                    ast::UseTreeKind::Simple(_) => idents.push(ut.ident()),
1418                    ast::UseTreeKind::Nested { items, .. } => {
1419                        for (ut, _) in items {
1420                            collect_use_tree_leaves(ut, idents);
1421                        }
1422                    }
1423                }
1424            }
1425            let mut idents = Vec::new();
1426            collect_use_tree_leaves(ut, &mut idents);
1427            idents
1428        } else {
1429            self.kind.ident().into_iter().collect()
1430        }
1431    }
1432
1433    fn as_target(&self) -> Target {
1434        Target::from_ast_item(self)
1435    }
1436}
1437
1438struct TraitItemTag;
1439impl InvocationCollectorNode for AstNodeWrapper<Box<ast::AssocItem>, TraitItemTag> {
1440    type OutputTy = SmallVec<[Box<ast::AssocItem>; 1]>;
1441    type ItemKind = AssocItemKind;
1442    const KIND: AstFragmentKind = AstFragmentKind::TraitItems;
1443    fn to_annotatable(self) -> Annotatable {
1444        Annotatable::AssocItem(self.wrapped, AssocCtxt::Trait)
1445    }
1446    fn fragment_to_output(fragment: AstFragment) -> Self::OutputTy {
1447        fragment.make_trait_items()
1448    }
1449    fn walk_flat_map(self, collector: &mut InvocationCollector<'_, '_>) -> Self::OutputTy {
1450        walk_flat_map_assoc_item(collector, self.wrapped, AssocCtxt::Trait)
1451    }
1452    fn is_mac_call(&self) -> bool {
1453        #[allow(non_exhaustive_omitted_patterns)] match self.wrapped.kind {
    AssocItemKind::MacCall(..) => true,
    _ => false,
}matches!(self.wrapped.kind, AssocItemKind::MacCall(..))
1454    }
1455    fn take_mac_call(self) -> (Box<ast::MacCall>, ast::AttrVec, AddSemicolon) {
1456        let item = self.wrapped;
1457        match item.kind {
1458            AssocItemKind::MacCall(mac) => (mac, item.attrs, AddSemicolon::No),
1459            _ => ::core::panicking::panic("internal error: entered unreachable code")unreachable!(),
1460        }
1461    }
1462    fn delegation(&self) -> Option<(&ast::DelegationMac, &ast::Item<Self::ItemKind>)> {
1463        match &self.wrapped.kind {
1464            AssocItemKind::DelegationMac(deleg) => Some((deleg, &self.wrapped)),
1465            _ => None,
1466        }
1467    }
1468    fn delegation_item_kind(deleg: Box<ast::Delegation>) -> Self::ItemKind {
1469        AssocItemKind::Delegation(deleg)
1470    }
1471    fn from_item(item: ast::Item<Self::ItemKind>) -> Self {
1472        AstNodeWrapper::new(Box::new(item), TraitItemTag)
1473    }
1474    fn flatten_outputs(items: impl Iterator<Item = Self::OutputTy>) -> Self::OutputTy {
1475        items.flatten().collect()
1476    }
1477    fn as_target(&self) -> Target {
1478        Target::from_assoc_item_kind(&self.wrapped.kind, AssocCtxt::Trait)
1479    }
1480}
1481
1482struct ImplItemTag;
1483impl InvocationCollectorNode for AstNodeWrapper<Box<ast::AssocItem>, ImplItemTag> {
1484    type OutputTy = SmallVec<[Box<ast::AssocItem>; 1]>;
1485    type ItemKind = AssocItemKind;
1486    const KIND: AstFragmentKind = AstFragmentKind::ImplItems;
1487    fn to_annotatable(self) -> Annotatable {
1488        Annotatable::AssocItem(self.wrapped, AssocCtxt::Impl { of_trait: false })
1489    }
1490    fn fragment_to_output(fragment: AstFragment) -> Self::OutputTy {
1491        fragment.make_impl_items()
1492    }
1493    fn walk_flat_map(self, collector: &mut InvocationCollector<'_, '_>) -> Self::OutputTy {
1494        walk_flat_map_assoc_item(collector, self.wrapped, AssocCtxt::Impl { of_trait: false })
1495    }
1496    fn is_mac_call(&self) -> bool {
1497        #[allow(non_exhaustive_omitted_patterns)] match self.wrapped.kind {
    AssocItemKind::MacCall(..) => true,
    _ => false,
}matches!(self.wrapped.kind, AssocItemKind::MacCall(..))
1498    }
1499    fn take_mac_call(self) -> (Box<ast::MacCall>, ast::AttrVec, AddSemicolon) {
1500        let item = self.wrapped;
1501        match item.kind {
1502            AssocItemKind::MacCall(mac) => (mac, item.attrs, AddSemicolon::No),
1503            _ => ::core::panicking::panic("internal error: entered unreachable code")unreachable!(),
1504        }
1505    }
1506    fn delegation(&self) -> Option<(&ast::DelegationMac, &ast::Item<Self::ItemKind>)> {
1507        match &self.wrapped.kind {
1508            AssocItemKind::DelegationMac(deleg) => Some((deleg, &self.wrapped)),
1509            _ => None,
1510        }
1511    }
1512    fn delegation_item_kind(deleg: Box<ast::Delegation>) -> Self::ItemKind {
1513        AssocItemKind::Delegation(deleg)
1514    }
1515    fn from_item(item: ast::Item<Self::ItemKind>) -> Self {
1516        AstNodeWrapper::new(Box::new(item), ImplItemTag)
1517    }
1518    fn flatten_outputs(items: impl Iterator<Item = Self::OutputTy>) -> Self::OutputTy {
1519        items.flatten().collect()
1520    }
1521    fn as_target(&self) -> Target {
1522        Target::from_assoc_item_kind(&self.wrapped.kind, AssocCtxt::Impl { of_trait: false })
1523    }
1524}
1525
1526struct TraitImplItemTag;
1527impl InvocationCollectorNode for AstNodeWrapper<Box<ast::AssocItem>, TraitImplItemTag> {
1528    type OutputTy = SmallVec<[Box<ast::AssocItem>; 1]>;
1529    type ItemKind = AssocItemKind;
1530    const KIND: AstFragmentKind = AstFragmentKind::TraitImplItems;
1531    fn to_annotatable(self) -> Annotatable {
1532        Annotatable::AssocItem(self.wrapped, AssocCtxt::Impl { of_trait: true })
1533    }
1534    fn fragment_to_output(fragment: AstFragment) -> Self::OutputTy {
1535        fragment.make_trait_impl_items()
1536    }
1537    fn walk_flat_map(self, collector: &mut InvocationCollector<'_, '_>) -> Self::OutputTy {
1538        walk_flat_map_assoc_item(collector, self.wrapped, AssocCtxt::Impl { of_trait: true })
1539    }
1540    fn is_mac_call(&self) -> bool {
1541        #[allow(non_exhaustive_omitted_patterns)] match self.wrapped.kind {
    AssocItemKind::MacCall(..) => true,
    _ => false,
}matches!(self.wrapped.kind, AssocItemKind::MacCall(..))
1542    }
1543    fn take_mac_call(self) -> (Box<ast::MacCall>, ast::AttrVec, AddSemicolon) {
1544        let item = self.wrapped;
1545        match item.kind {
1546            AssocItemKind::MacCall(mac) => (mac, item.attrs, AddSemicolon::No),
1547            _ => ::core::panicking::panic("internal error: entered unreachable code")unreachable!(),
1548        }
1549    }
1550    fn delegation(&self) -> Option<(&ast::DelegationMac, &ast::Item<Self::ItemKind>)> {
1551        match &self.wrapped.kind {
1552            AssocItemKind::DelegationMac(deleg) => Some((deleg, &self.wrapped)),
1553            _ => None,
1554        }
1555    }
1556    fn delegation_item_kind(deleg: Box<ast::Delegation>) -> Self::ItemKind {
1557        AssocItemKind::Delegation(deleg)
1558    }
1559    fn from_item(item: ast::Item<Self::ItemKind>) -> Self {
1560        AstNodeWrapper::new(Box::new(item), TraitImplItemTag)
1561    }
1562    fn flatten_outputs(items: impl Iterator<Item = Self::OutputTy>) -> Self::OutputTy {
1563        items.flatten().collect()
1564    }
1565    fn as_target(&self) -> Target {
1566        Target::from_assoc_item_kind(&self.wrapped.kind, AssocCtxt::Impl { of_trait: true })
1567    }
1568}
1569
1570impl InvocationCollectorNode for Box<ast::ForeignItem> {
1571    const KIND: AstFragmentKind = AstFragmentKind::ForeignItems;
1572    fn to_annotatable(self) -> Annotatable {
1573        Annotatable::ForeignItem(self)
1574    }
1575    fn fragment_to_output(fragment: AstFragment) -> Self::OutputTy {
1576        fragment.make_foreign_items()
1577    }
1578    fn walk_flat_map(self, collector: &mut InvocationCollector<'_, '_>) -> Self::OutputTy {
1579        walk_flat_map_foreign_item(collector, self)
1580    }
1581    fn is_mac_call(&self) -> bool {
1582        #[allow(non_exhaustive_omitted_patterns)] match self.kind {
    ForeignItemKind::MacCall(..) => true,
    _ => false,
}matches!(self.kind, ForeignItemKind::MacCall(..))
1583    }
1584    fn take_mac_call(self) -> (Box<ast::MacCall>, ast::AttrVec, AddSemicolon) {
1585        match self.kind {
1586            ForeignItemKind::MacCall(mac) => (mac, self.attrs, AddSemicolon::No),
1587            _ => ::core::panicking::panic("internal error: entered unreachable code")unreachable!(),
1588        }
1589    }
1590    fn as_target(&self) -> Target {
1591        match &self.kind {
1592            ForeignItemKind::Static(_) => Target::ForeignStatic,
1593            ForeignItemKind::Fn(_) => Target::ForeignFn,
1594            ForeignItemKind::TyAlias(_) => Target::ForeignTy,
1595            ForeignItemKind::MacCall(_) => Target::MacroCall,
1596        }
1597    }
1598}
1599
1600impl InvocationCollectorNode for ast::Variant {
1601    const KIND: AstFragmentKind = AstFragmentKind::Variants;
1602    fn to_annotatable(self) -> Annotatable {
1603        Annotatable::Variant(self)
1604    }
1605    fn fragment_to_output(fragment: AstFragment) -> Self::OutputTy {
1606        fragment.make_variants()
1607    }
1608    fn walk_flat_map(self, collector: &mut InvocationCollector<'_, '_>) -> Self::OutputTy {
1609        walk_flat_map_variant(collector, self)
1610    }
1611    fn as_target(&self) -> Target {
1612        Target::Variant
1613    }
1614}
1615
1616impl InvocationCollectorNode for ast::WherePredicate {
1617    const KIND: AstFragmentKind = AstFragmentKind::WherePredicates;
1618    fn to_annotatable(self) -> Annotatable {
1619        Annotatable::WherePredicate(self)
1620    }
1621    fn fragment_to_output(fragment: AstFragment) -> Self::OutputTy {
1622        fragment.make_where_predicates()
1623    }
1624    fn walk_flat_map(self, collector: &mut InvocationCollector<'_, '_>) -> Self::OutputTy {
1625        walk_flat_map_where_predicate(collector, self)
1626    }
1627    fn as_target(&self) -> Target {
1628        Target::WherePredicate
1629    }
1630}
1631
1632impl InvocationCollectorNode for ast::FieldDef {
1633    const KIND: AstFragmentKind = AstFragmentKind::FieldDefs;
1634    fn to_annotatable(self) -> Annotatable {
1635        Annotatable::FieldDef(self)
1636    }
1637    fn fragment_to_output(fragment: AstFragment) -> Self::OutputTy {
1638        fragment.make_field_defs()
1639    }
1640    fn walk_flat_map(self, collector: &mut InvocationCollector<'_, '_>) -> Self::OutputTy {
1641        walk_flat_map_field_def(collector, self)
1642    }
1643    fn as_target(&self) -> Target {
1644        Target::Field
1645    }
1646}
1647
1648impl InvocationCollectorNode for ast::PatField {
1649    const KIND: AstFragmentKind = AstFragmentKind::PatFields;
1650    fn to_annotatable(self) -> Annotatable {
1651        Annotatable::PatField(self)
1652    }
1653    fn fragment_to_output(fragment: AstFragment) -> Self::OutputTy {
1654        fragment.make_pat_fields()
1655    }
1656    fn walk_flat_map(self, collector: &mut InvocationCollector<'_, '_>) -> Self::OutputTy {
1657        walk_flat_map_pat_field(collector, self)
1658    }
1659    fn as_target(&self) -> Target {
1660        Target::PatField
1661    }
1662}
1663
1664impl InvocationCollectorNode for ast::ExprField {
1665    const KIND: AstFragmentKind = AstFragmentKind::ExprFields;
1666    fn to_annotatable(self) -> Annotatable {
1667        Annotatable::ExprField(self)
1668    }
1669    fn fragment_to_output(fragment: AstFragment) -> Self::OutputTy {
1670        fragment.make_expr_fields()
1671    }
1672    fn walk_flat_map(self, collector: &mut InvocationCollector<'_, '_>) -> Self::OutputTy {
1673        walk_flat_map_expr_field(collector, self)
1674    }
1675    fn as_target(&self) -> Target {
1676        Target::ExprField
1677    }
1678}
1679
1680impl InvocationCollectorNode for ast::Param {
1681    const KIND: AstFragmentKind = AstFragmentKind::Params;
1682    fn to_annotatable(self) -> Annotatable {
1683        Annotatable::Param(self)
1684    }
1685    fn fragment_to_output(fragment: AstFragment) -> Self::OutputTy {
1686        fragment.make_params()
1687    }
1688    fn walk_flat_map(self, collector: &mut InvocationCollector<'_, '_>) -> Self::OutputTy {
1689        walk_flat_map_param(collector, self)
1690    }
1691    fn as_target(&self) -> Target {
1692        Target::Param
1693    }
1694}
1695
1696impl InvocationCollectorNode for ast::GenericParam {
1697    const KIND: AstFragmentKind = AstFragmentKind::GenericParams;
1698    fn to_annotatable(self) -> Annotatable {
1699        Annotatable::GenericParam(self)
1700    }
1701    fn fragment_to_output(fragment: AstFragment) -> Self::OutputTy {
1702        fragment.make_generic_params()
1703    }
1704    fn walk_flat_map(self, collector: &mut InvocationCollector<'_, '_>) -> Self::OutputTy {
1705        walk_flat_map_generic_param(collector, self)
1706    }
1707    fn as_target(&self) -> Target {
1708        let mut has_default = false;
1709        Target::GenericParam {
1710            kind: match &self.kind {
1711                rustc_ast::GenericParamKind::Lifetime => {
1712                    rustc_hir::target::GenericParamKind::Lifetime
1713                }
1714                rustc_ast::GenericParamKind::Type { default } => {
1715                    has_default = default.is_some();
1716                    rustc_hir::target::GenericParamKind::Type
1717                }
1718                rustc_ast::GenericParamKind::Const { default, .. } => {
1719                    has_default = default.is_some();
1720                    rustc_hir::target::GenericParamKind::Const
1721                }
1722            },
1723            has_default,
1724        }
1725    }
1726}
1727
1728impl InvocationCollectorNode for ast::Arm {
1729    const KIND: AstFragmentKind = AstFragmentKind::Arms;
1730    fn to_annotatable(self) -> Annotatable {
1731        Annotatable::Arm(self)
1732    }
1733    fn fragment_to_output(fragment: AstFragment) -> Self::OutputTy {
1734        fragment.make_arms()
1735    }
1736    fn walk_flat_map(self, collector: &mut InvocationCollector<'_, '_>) -> Self::OutputTy {
1737        walk_flat_map_arm(collector, self)
1738    }
1739    fn as_target(&self) -> Target {
1740        Target::Arm
1741    }
1742}
1743
1744impl InvocationCollectorNode for ast::Stmt {
1745    const KIND: AstFragmentKind = AstFragmentKind::Stmts;
1746    fn to_annotatable(self) -> Annotatable {
1747        Annotatable::Stmt(Box::new(self))
1748    }
1749    fn fragment_to_output(fragment: AstFragment) -> Self::OutputTy {
1750        fragment.make_stmts()
1751    }
1752    fn walk_flat_map(self, collector: &mut InvocationCollector<'_, '_>) -> Self::OutputTy {
1753        walk_flat_map_stmt(collector, self)
1754    }
1755    fn is_mac_call(&self) -> bool {
1756        match &self.kind {
1757            StmtKind::MacCall(..) => true,
1758            StmtKind::Item(item) => #[allow(non_exhaustive_omitted_patterns)] match item.kind {
    ItemKind::MacCall(..) => true,
    _ => false,
}matches!(item.kind, ItemKind::MacCall(..)),
1759            StmtKind::Semi(expr) => #[allow(non_exhaustive_omitted_patterns)] match expr.kind {
    ExprKind::MacCall(..) => true,
    _ => false,
}matches!(expr.kind, ExprKind::MacCall(..)),
1760            StmtKind::Expr(..) => ::core::panicking::panic("internal error: entered unreachable code")unreachable!(),
1761            StmtKind::Let(..) | StmtKind::Empty => false,
1762        }
1763    }
1764    fn take_mac_call(self) -> (Box<ast::MacCall>, ast::AttrVec, AddSemicolon) {
1765        // We pull macro invocations (both attributes and fn-like macro calls) out of their
1766        // `StmtKind`s and treat them as statement macro invocations, not as items or expressions.
1767        let (add_semicolon, mac, attrs) = match self.kind {
1768            StmtKind::MacCall(mac) => {
1769                let ast::MacCallStmt { mac, style, attrs, .. } = *mac;
1770                (style == MacStmtStyle::Semicolon, mac, attrs)
1771            }
1772            StmtKind::Item(item) => match *item {
1773                ast::Item { kind: ItemKind::MacCall(mac), attrs, .. } => {
1774                    (mac.args.need_semicolon(), mac, attrs)
1775                }
1776                _ => ::core::panicking::panic("internal error: entered unreachable code")unreachable!(),
1777            },
1778            StmtKind::Semi(expr) => match *expr {
1779                ast::Expr { kind: ExprKind::MacCall(mac), attrs, .. } => {
1780                    (mac.args.need_semicolon(), mac, attrs)
1781                }
1782                _ => ::core::panicking::panic("internal error: entered unreachable code")unreachable!(),
1783            },
1784            _ => ::core::panicking::panic("internal error: entered unreachable code")unreachable!(),
1785        };
1786        (mac, attrs, if add_semicolon { AddSemicolon::Yes } else { AddSemicolon::No })
1787    }
1788    fn delegation(&self) -> Option<(&ast::DelegationMac, &ast::Item<Self::ItemKind>)> {
1789        match &self.kind {
1790            StmtKind::Item(item) => match &item.kind {
1791                ItemKind::DelegationMac(deleg) => Some((deleg, item)),
1792                _ => None,
1793            },
1794            _ => None,
1795        }
1796    }
1797    fn delegation_item_kind(deleg: Box<ast::Delegation>) -> Self::ItemKind {
1798        ItemKind::Delegation(deleg)
1799    }
1800    fn from_item(item: ast::Item<Self::ItemKind>) -> Self {
1801        ast::Stmt { id: ast::DUMMY_NODE_ID, span: item.span, kind: StmtKind::Item(Box::new(item)) }
1802    }
1803    fn flatten_outputs(items: impl Iterator<Item = Self::OutputTy>) -> Self::OutputTy {
1804        items.flatten().collect()
1805    }
1806    fn post_flat_map_node_collect_bang(stmts: &mut Self::OutputTy, add_semicolon: AddSemicolon) {
1807        // If this is a macro invocation with a semicolon, then apply that
1808        // semicolon to the final statement produced by expansion.
1809        if #[allow(non_exhaustive_omitted_patterns)] match add_semicolon {
    AddSemicolon::Yes => true,
    _ => false,
}matches!(add_semicolon, AddSemicolon::Yes) {
1810            if let Some(stmt) = stmts.pop() {
1811                stmts.push(stmt.add_trailing_semicolon());
1812            }
1813        }
1814    }
1815    fn as_target(&self) -> Target {
1816        Target::Statement
1817    }
1818}
1819
1820impl InvocationCollectorNode for ast::Crate {
1821    type OutputTy = ast::Crate;
1822    const KIND: AstFragmentKind = AstFragmentKind::Crate;
1823    fn to_annotatable(self) -> Annotatable {
1824        Annotatable::Crate(self)
1825    }
1826    fn fragment_to_output(fragment: AstFragment) -> Self::OutputTy {
1827        fragment.make_crate()
1828    }
1829    fn walk(&mut self, collector: &mut InvocationCollector<'_, '_>) {
1830        walk_crate(collector, self)
1831    }
1832    fn expand_cfg_false(
1833        &mut self,
1834        collector: &mut InvocationCollector<'_, '_>,
1835        pos: usize,
1836        _span: Span,
1837    ) {
1838        // Attributes above `cfg(FALSE)` are left in place, because we may want to configure
1839        // some global crate properties even on fully unconfigured crates.
1840        self.attrs.truncate(pos);
1841        // Standard prelude imports are left in the crate for backward compatibility.
1842        self.items.truncate(collector.cx.num_standard_library_imports);
1843    }
1844    fn as_target(&self) -> Target {
1845        Target::Crate
1846    }
1847}
1848
1849impl InvocationCollectorNode for ast::Ty {
1850    type OutputTy = Box<ast::Ty>;
1851    const KIND: AstFragmentKind = AstFragmentKind::Ty;
1852    fn to_annotatable(self) -> Annotatable {
1853        ::core::panicking::panic("internal error: entered unreachable code")unreachable!()
1854    }
1855    fn fragment_to_output(fragment: AstFragment) -> Self::OutputTy {
1856        fragment.make_ty()
1857    }
1858    fn walk(&mut self, collector: &mut InvocationCollector<'_, '_>) {
1859        // Save the pre-expanded name of this `ImplTrait`, so that later when defining
1860        // an APIT we use a name that doesn't have any placeholder fragments in it.
1861        if let ast::TyKind::ImplTrait(..) = self.kind {
1862            // HACK: pprust breaks strings with newlines when the type
1863            // gets too long. We don't want these to show up in compiler
1864            // output or built artifacts, so replace them here...
1865            // Perhaps we should instead format APITs more robustly.
1866            let name = Symbol::intern(&pprust::ty_to_string(self).replace('\n', " "));
1867            collector.cx.resolver.insert_impl_trait_name(self.id, name);
1868        }
1869        walk_ty(collector, self)
1870    }
1871    fn is_mac_call(&self) -> bool {
1872        #[allow(non_exhaustive_omitted_patterns)] match self.kind {
    ast::TyKind::MacCall(..) => true,
    _ => false,
}matches!(self.kind, ast::TyKind::MacCall(..))
1873    }
1874    fn take_mac_call(self) -> (Box<ast::MacCall>, ast::AttrVec, AddSemicolon) {
1875        match self.kind {
1876            TyKind::MacCall(mac) => (mac, AttrVec::new(), AddSemicolon::No),
1877            _ => ::core::panicking::panic("internal error: entered unreachable code")unreachable!(),
1878        }
1879    }
1880    fn as_target(&self) -> Target {
1881        // This is only used for attribute parsing, which are not allowed on types.
1882        ::core::panicking::panic("internal error: entered unreachable code")unreachable!()
1883    }
1884}
1885
1886impl InvocationCollectorNode for ast::Pat {
1887    type OutputTy = Box<ast::Pat>;
1888    const KIND: AstFragmentKind = AstFragmentKind::Pat;
1889    fn to_annotatable(self) -> Annotatable {
1890        ::core::panicking::panic("internal error: entered unreachable code")unreachable!()
1891    }
1892    fn fragment_to_output(fragment: AstFragment) -> Self::OutputTy {
1893        fragment.make_pat()
1894    }
1895    fn walk(&mut self, collector: &mut InvocationCollector<'_, '_>) {
1896        walk_pat(collector, self)
1897    }
1898    fn is_mac_call(&self) -> bool {
1899        #[allow(non_exhaustive_omitted_patterns)] match self.kind {
    PatKind::MacCall(..) => true,
    _ => false,
}matches!(self.kind, PatKind::MacCall(..))
1900    }
1901    fn take_mac_call(self) -> (Box<ast::MacCall>, ast::AttrVec, AddSemicolon) {
1902        match self.kind {
1903            PatKind::MacCall(mac) => (mac, AttrVec::new(), AddSemicolon::No),
1904            _ => ::core::panicking::panic("internal error: entered unreachable code")unreachable!(),
1905        }
1906    }
1907    fn as_target(&self) -> Target {
1908        ::core::panicking::panic("not yet implemented");todo!();
1909    }
1910}
1911
1912impl InvocationCollectorNode for ast::Expr {
1913    type OutputTy = Box<ast::Expr>;
1914    const KIND: AstFragmentKind = AstFragmentKind::Expr;
1915    fn to_annotatable(self) -> Annotatable {
1916        Annotatable::Expr(Box::new(self))
1917    }
1918    fn fragment_to_output(fragment: AstFragment) -> Self::OutputTy {
1919        fragment.make_expr()
1920    }
1921    fn descr() -> &'static str {
1922        "an expression"
1923    }
1924    fn walk(&mut self, collector: &mut InvocationCollector<'_, '_>) {
1925        walk_expr(collector, self)
1926    }
1927    fn is_mac_call(&self) -> bool {
1928        #[allow(non_exhaustive_omitted_patterns)] match self.kind {
    ExprKind::MacCall(..) => true,
    _ => false,
}matches!(self.kind, ExprKind::MacCall(..))
1929    }
1930    fn take_mac_call(self) -> (Box<ast::MacCall>, ast::AttrVec, AddSemicolon) {
1931        match self.kind {
1932            ExprKind::MacCall(mac) => (mac, self.attrs, AddSemicolon::No),
1933            _ => ::core::panicking::panic("internal error: entered unreachable code")unreachable!(),
1934        }
1935    }
1936    fn as_target(&self) -> Target {
1937        Target::Expression
1938    }
1939}
1940
1941struct OptExprTag;
1942impl InvocationCollectorNode for AstNodeWrapper<Box<ast::Expr>, OptExprTag> {
1943    type OutputTy = Option<Box<ast::Expr>>;
1944    const KIND: AstFragmentKind = AstFragmentKind::OptExpr;
1945    fn to_annotatable(self) -> Annotatable {
1946        Annotatable::Expr(self.wrapped)
1947    }
1948    fn fragment_to_output(fragment: AstFragment) -> Self::OutputTy {
1949        fragment.make_opt_expr()
1950    }
1951    fn walk_flat_map(mut self, collector: &mut InvocationCollector<'_, '_>) -> Self::OutputTy {
1952        walk_expr(collector, &mut self.wrapped);
1953        Some(self.wrapped)
1954    }
1955    fn is_mac_call(&self) -> bool {
1956        #[allow(non_exhaustive_omitted_patterns)] match self.wrapped.kind {
    ast::ExprKind::MacCall(..) => true,
    _ => false,
}matches!(self.wrapped.kind, ast::ExprKind::MacCall(..))
1957    }
1958    fn take_mac_call(self) -> (Box<ast::MacCall>, ast::AttrVec, AddSemicolon) {
1959        let node = self.wrapped;
1960        match node.kind {
1961            ExprKind::MacCall(mac) => (mac, node.attrs, AddSemicolon::No),
1962            _ => ::core::panicking::panic("internal error: entered unreachable code")unreachable!(),
1963        }
1964    }
1965    fn pre_flat_map_node_collect_attr(cfg: &StripUnconfigured<'_>, attr: &ast::Attribute) {
1966        cfg.maybe_emit_expr_attr_err(attr);
1967    }
1968    fn as_target(&self) -> Target {
1969        Target::Expression
1970    }
1971}
1972
1973/// This struct is a hack to workaround unstable of `stmt_expr_attributes`.
1974/// It can be removed once that feature is stabilized.
1975struct MethodReceiverTag;
1976
1977impl InvocationCollectorNode for AstNodeWrapper<ast::Expr, MethodReceiverTag> {
1978    type OutputTy = AstNodeWrapper<Box<ast::Expr>, MethodReceiverTag>;
1979    const KIND: AstFragmentKind = AstFragmentKind::MethodReceiverExpr;
1980    fn descr() -> &'static str {
1981        "an expression"
1982    }
1983    fn to_annotatable(self) -> Annotatable {
1984        Annotatable::Expr(Box::new(self.wrapped))
1985    }
1986    fn fragment_to_output(fragment: AstFragment) -> Self::OutputTy {
1987        AstNodeWrapper::new(fragment.make_method_receiver_expr(), MethodReceiverTag)
1988    }
1989    fn walk(&mut self, collector: &mut InvocationCollector<'_, '_>) {
1990        walk_expr(collector, &mut self.wrapped)
1991    }
1992    fn is_mac_call(&self) -> bool {
1993        #[allow(non_exhaustive_omitted_patterns)] match self.wrapped.kind {
    ast::ExprKind::MacCall(..) => true,
    _ => false,
}matches!(self.wrapped.kind, ast::ExprKind::MacCall(..))
1994    }
1995    fn take_mac_call(self) -> (Box<ast::MacCall>, ast::AttrVec, AddSemicolon) {
1996        let node = self.wrapped;
1997        match node.kind {
1998            ExprKind::MacCall(mac) => (mac, node.attrs, AddSemicolon::No),
1999            _ => ::core::panicking::panic("internal error: entered unreachable code")unreachable!(),
2000        }
2001    }
2002    fn as_target(&self) -> Target {
2003        Target::Expression
2004    }
2005}
2006
2007fn build_single_delegations<'a, Node: InvocationCollectorNode>(
2008    ecx: &ExtCtxt<'_>,
2009    deleg: &'a ast::DelegationMac,
2010    item: &'a ast::Item<Node::ItemKind>,
2011    suffixes: &'a [(Ident, Option<Ident>)],
2012    item_span: Span,
2013    source: DelegationSource,
2014) -> impl Iterator<Item = ast::Item<Node::ItemKind>> + 'a {
2015    if true {
    {
        match (&source, &DelegationSource::Single) {
            (left_val, right_val) => {
                if *left_val == *right_val {
                    let kind = ::core::panicking::AssertKind::Ne;
                    ::core::panicking::assert_failed(kind, &*left_val,
                        &*right_val, ::core::option::Option::None);
                }
            }
        }
    };
};debug_assert_ne!(source, DelegationSource::Single);
2016
2017    let from_glob = source == DelegationSource::Glob;
2018
2019    if suffixes.is_empty() {
2020        // Report an error for now, to avoid keeping stem for resolution and
2021        // stability checks.
2022        let kind = String::from(if from_glob { "glob" } else { "list" });
2023        ecx.dcx().emit_err(EmptyDelegationMac { span: item.span, kind });
2024    }
2025
2026    suffixes.iter().map(move |&(ident, rename)| {
2027        let mut path = deleg.prefix.clone();
2028        path.segments.push(ast::PathSegment { ident, id: ast::DUMMY_NODE_ID, args: None });
2029
2030        ast::Item {
2031            attrs: item.attrs.clone(),
2032            id: ast::DUMMY_NODE_ID,
2033            span: if from_glob { item_span } else { ident.span },
2034            vis: item.vis.clone(),
2035            kind: Node::delegation_item_kind(Box::new(ast::Delegation {
2036                id: ast::DUMMY_NODE_ID,
2037                qself: deleg.qself.clone(),
2038                path,
2039                ident: rename.unwrap_or(ident),
2040                rename,
2041                body: deleg.body.clone(),
2042                source,
2043            })),
2044            tokens: None,
2045        }
2046    })
2047}
2048
2049/// Required for `visit_node` obtained an owned `Node` from `&mut Node`.
2050trait DummyAstNode {
2051    fn dummy() -> Self;
2052}
2053
2054impl DummyAstNode for ast::Crate {
2055    fn dummy() -> Self {
2056        ast::Crate {
2057            attrs: Default::default(),
2058            items: Default::default(),
2059            spans: Default::default(),
2060            id: DUMMY_NODE_ID,
2061            is_placeholder: Default::default(),
2062        }
2063    }
2064}
2065
2066impl DummyAstNode for ast::Ty {
2067    fn dummy() -> Self {
2068        ast::Ty { id: DUMMY_NODE_ID, kind: TyKind::Dummy, span: Default::default() }
2069    }
2070}
2071
2072impl DummyAstNode for ast::Pat {
2073    fn dummy() -> Self {
2074        ast::Pat { id: DUMMY_NODE_ID, kind: PatKind::Wild, span: Default::default() }
2075    }
2076}
2077
2078impl DummyAstNode for ast::Expr {
2079    fn dummy() -> Self {
2080        ast::Expr::dummy()
2081    }
2082}
2083
2084impl DummyAstNode for AstNodeWrapper<ast::Expr, MethodReceiverTag> {
2085    fn dummy() -> Self {
2086        AstNodeWrapper::new(ast::Expr::dummy(), MethodReceiverTag)
2087    }
2088}
2089
2090struct InvocationCollector<'a, 'b> {
2091    cx: &'a mut ExtCtxt<'b>,
2092    invocations: Vec<(Invocation, Option<Arc<SyntaxExtension>>)>,
2093    monotonic: bool,
2094}
2095
2096impl<'a, 'b> InvocationCollector<'a, 'b> {
2097    fn cfg(&self) -> StripUnconfigured<'_> {
2098        StripUnconfigured {
2099            sess: self.cx.sess,
2100            features: Some(self.cx.ecfg.features),
2101            config_tokens: false,
2102            lint_node_id: self.cx.current_expansion.lint_node_id,
2103        }
2104    }
2105
2106    fn collect(&mut self, fragment_kind: AstFragmentKind, kind: InvocationKind) -> AstFragment {
2107        let expn_id = LocalExpnId::fresh_empty();
2108        if #[allow(non_exhaustive_omitted_patterns)] match kind {
    InvocationKind::GlobDelegation { .. } => true,
    _ => false,
}matches!(kind, InvocationKind::GlobDelegation { .. }) {
2109            // In resolver we need to know which invocation ids are delegations early,
2110            // before their `ExpnData` is filled.
2111            self.cx.resolver.register_glob_delegation(expn_id);
2112        }
2113        let vis = kind.placeholder_visibility();
2114        self.invocations.push((
2115            Invocation {
2116                kind,
2117                fragment_kind,
2118                expansion_data: ExpansionData {
2119                    id: expn_id,
2120                    depth: self.cx.current_expansion.depth + 1,
2121                    ..self.cx.current_expansion.clone()
2122                },
2123            },
2124            None,
2125        ));
2126        placeholder(fragment_kind, NodeId::placeholder_from_expn_id(expn_id), vis)
2127    }
2128
2129    fn collect_bang(&mut self, mac: Box<ast::MacCall>, kind: AstFragmentKind) -> AstFragment {
2130        // cache the macro call span so that it can be
2131        // easily adjusted for incremental compilation
2132        let span = mac.span();
2133        self.collect(kind, InvocationKind::Bang { mac, span })
2134    }
2135
2136    fn collect_attr(
2137        &mut self,
2138        (attr, pos, derives): (ast::Attribute, usize, Vec<ast::Path>),
2139        item: Annotatable,
2140        kind: AstFragmentKind,
2141    ) -> AstFragment {
2142        self.collect(kind, InvocationKind::Attr { attr, pos, item, derives })
2143    }
2144
2145    fn collect_glob_delegation(
2146        &mut self,
2147        item: Box<ast::AssocItem>,
2148        of_trait: bool,
2149        kind: AstFragmentKind,
2150    ) -> AstFragment {
2151        self.collect(kind, InvocationKind::GlobDelegation { item, of_trait })
2152    }
2153
2154    /// If `item` is an attribute invocation, remove the attribute and return it together with
2155    /// its position and derives following it. We have to collect the derives in order to resolve
2156    /// legacy derive helpers (helpers written before derives that introduce them).
2157    fn take_first_attr(
2158        &self,
2159        item: &mut impl HasAttrs,
2160    ) -> Option<(ast::Attribute, usize, Vec<ast::Path>)> {
2161        let mut attr = None;
2162
2163        let mut cfg_pos = None;
2164        let mut attr_pos = None;
2165        for (pos, attr) in item.attrs().iter().enumerate() {
2166            if !attr.is_doc_comment() && !self.cx.expanded_inert_attrs.is_marked(attr) {
2167                let name = attr.name();
2168                if name == Some(sym::cfg) || name == Some(sym::cfg_attr) {
2169                    cfg_pos = Some(pos); // a cfg attr found, no need to search anymore
2170                    break;
2171                } else if attr_pos.is_none()
2172                    && !name.is_some_and(rustc_feature::is_builtin_attr_name)
2173                {
2174                    attr_pos = Some(pos); // a non-cfg attr found, still may find a cfg attr
2175                }
2176            }
2177        }
2178
2179        item.visit_attrs(|attrs| {
2180            attr = Some(match (cfg_pos, attr_pos) {
2181                (Some(pos), _) => (attrs.remove(pos), pos, Vec::new()),
2182                (_, Some(pos)) => {
2183                    let attr = attrs.remove(pos);
2184                    let following_derives = attrs[pos..]
2185                        .iter()
2186                        .filter(|a| a.has_name(sym::derive))
2187                        .flat_map(|a| a.meta_item_list().unwrap_or_default())
2188                        .filter_map(|meta_item_inner| match meta_item_inner {
2189                            MetaItemInner::MetaItem(ast::MetaItem {
2190                                kind: MetaItemKind::Word,
2191                                path,
2192                                ..
2193                            }) => Some(path),
2194                            _ => None,
2195                        })
2196                        .collect();
2197
2198                    (attr, pos, following_derives)
2199                }
2200                _ => return,
2201            });
2202        });
2203
2204        attr
2205    }
2206
2207    // Detect use of feature-gated or invalid attributes on macro invocations
2208    // since they will not be detected after macro expansion.
2209    fn check_attributes(&self, attrs: &[ast::Attribute], call: &ast::MacCall) {
2210        let features = self.cx.ecfg.features;
2211        let mut attrs = attrs.iter().peekable();
2212        let mut span: Option<Span> = None;
2213        while let Some(attr) = attrs.next() {
2214            rustc_ast_passes::feature_gate::check_attribute(attr, self.cx.sess, features);
2215            validate_attr::check_attr(&self.cx.sess.psess, attr);
2216            AttributeParser::parse_limited_all(
2217                self.cx.sess,
2218                slice::from_ref(attr),
2219                None,
2220                Target::MacroCall,
2221                call.span(),
2222                self.cx.current_expansion.lint_node_id,
2223                Some(self.cx.ecfg.features),
2224                ShouldEmit::ErrorsAndLints { recovery: Recovery::Allowed },
2225                Some(self.cx.resolver.registered_tools()),
2226            );
2227
2228            let current_span = if let Some(sp) = span { sp.to(attr.span) } else { attr.span };
2229            span = Some(current_span);
2230
2231            if attrs.peek().is_some_and(|next_attr| next_attr.doc_str().is_some()) {
2232                continue;
2233            }
2234
2235            if attr.doc_str_and_fragment_kind().is_some() {
2236                self.cx.sess.psess.buffer_lint(
2237                    UNUSED_DOC_COMMENTS,
2238                    current_span,
2239                    self.cx.current_expansion.lint_node_id,
2240                    crate::diagnostics::MacroCallUnusedDocComment { span: attr.span },
2241                );
2242            } else if rustc_attr_parsing::is_builtin_attr(attr)
2243                && !AttributeParser::is_parsed_attribute(&attr.path())
2244            {
2245                let attr_name = attr.name().unwrap();
2246                self.cx.sess.psess.buffer_lint(
2247                    UNUSED_ATTRIBUTES,
2248                    attr.span,
2249                    self.cx.current_expansion.lint_node_id,
2250                    crate::diagnostics::UnusedBuiltinAttribute {
2251                        attr_name,
2252                        macro_name: pprust::path_to_string(&call.path),
2253                        invoc_span: call.path.span,
2254                        attr_span: attr.span,
2255                    },
2256                );
2257            }
2258        }
2259    }
2260
2261    fn expand_cfg_true(
2262        &mut self,
2263        node: &mut impl InvocationCollectorNode,
2264        attr: ast::Attribute,
2265        pos: usize,
2266    ) -> EvalConfigResult {
2267        let Some(cfg) = AttributeParser::parse_single(
2268            self.cfg().sess,
2269            &attr,
2270            attr.span,
2271            self.cfg().lint_node_id,
2272            node.as_target(),
2273            self.cfg().features,
2274            ShouldEmit::ErrorsAndLints { recovery: Recovery::Allowed },
2275            parse_cfg,
2276            &CFG_TEMPLATE,
2277            AllowExprMetavar::Yes,
2278            AttributeSafety::Normal,
2279        ) else {
2280            // Cfg attribute was not parsable, give up
2281            return EvalConfigResult::True;
2282        };
2283
2284        let res = eval_config_entry(self.cfg().sess, &cfg);
2285        if res.as_bool() {
2286            // A trace attribute left in AST in place of the original `cfg` attribute.
2287            // It can later be used by lints or other diagnostics.
2288            let mut trace_attr = attr_into_trace(attr, sym::cfg_trace);
2289            trace_attr.replace_args(AttrItemKind::Parsed(EarlyParsedAttribute::CfgTrace(cfg)));
2290            node.visit_attrs(|attrs| attrs.insert(pos, trace_attr));
2291        }
2292
2293        res
2294    }
2295
2296    fn expand_cfg_attr(&self, node: &mut impl HasAttrs, attr: &ast::Attribute, pos: usize) {
2297        node.visit_attrs(|attrs| {
2298            // Repeated `insert` calls is inefficient, but the number of
2299            // insertions is almost always 0 or 1 in practice.
2300            for cfg in self.cfg().expand_cfg_attr(attr, false).into_iter().rev() {
2301                attrs.insert(pos, cfg)
2302            }
2303        });
2304    }
2305
2306    fn flat_map_node<Node: InvocationCollectorNode<OutputTy: Default>>(
2307        &mut self,
2308        mut node: Node,
2309    ) -> Node::OutputTy {
2310        loop {
2311            return match self.take_first_attr(&mut node) {
2312                Some((attr, pos, derives)) => match attr.name() {
2313                    Some(sym::cfg) => {
2314                        let res = self.expand_cfg_true(&mut node, attr, pos);
2315                        match res {
2316                            EvalConfigResult::True => continue,
2317                            EvalConfigResult::False { reason, reason_span } => {
2318                                for ident in node.declared_idents() {
2319                                    self.cx.resolver.append_stripped_cfg_item(
2320                                        self.cx.current_expansion.lint_node_id,
2321                                        ident,
2322                                        reason.clone(),
2323                                        reason_span,
2324                                    )
2325                                }
2326                            }
2327                        }
2328
2329                        Default::default()
2330                    }
2331                    Some(sym::cfg_attr) => {
2332                        self.expand_cfg_attr(&mut node, &attr, pos);
2333                        continue;
2334                    }
2335                    _ => {
2336                        Node::pre_flat_map_node_collect_attr(&self.cfg(), &attr);
2337                        self.collect_attr((attr, pos, derives), node.to_annotatable(), Node::KIND)
2338                            .make_ast::<Node>()
2339                    }
2340                },
2341                None if node.is_mac_call() => {
2342                    let (mac, attrs, add_semicolon) = node.take_mac_call();
2343                    self.check_attributes(&attrs, &mac);
2344                    let mut res = self.collect_bang(mac, Node::KIND).make_ast::<Node>();
2345                    Node::post_flat_map_node_collect_bang(&mut res, add_semicolon);
2346                    res
2347                }
2348                None if let Some((deleg, item)) = node.delegation() => {
2349                    let DelegationSuffixes::List(suffixes) = &deleg.suffixes else {
2350                        let traitless_qself =
2351                            #[allow(non_exhaustive_omitted_patterns)] match &deleg.qself {
    Some(qself) if qself.position == 0 => true,
    _ => false,
}matches!(&deleg.qself, Some(qself) if qself.position == 0);
2352                        let (item, of_trait) = match node.to_annotatable() {
2353                            Annotatable::AssocItem(item, AssocCtxt::Impl { of_trait }) => {
2354                                (item, of_trait)
2355                            }
2356                            ann @ (Annotatable::Item(_)
2357                            | Annotatable::AssocItem(..)
2358                            | Annotatable::Stmt(_)) => {
2359                                let span = ann.span();
2360                                self.cx.dcx().emit_err(GlobDelegationOutsideImpls { span });
2361                                return Default::default();
2362                            }
2363                            _ => ::core::panicking::panic("internal error: entered unreachable code")unreachable!(),
2364                        };
2365                        if traitless_qself {
2366                            let span = item.span;
2367                            self.cx.dcx().emit_err(GlobDelegationTraitlessQpath { span });
2368                            return Default::default();
2369                        }
2370                        return self
2371                            .collect_glob_delegation(item, of_trait, Node::KIND)
2372                            .make_ast::<Node>();
2373                    };
2374
2375                    let single_delegations = build_single_delegations::<Node>(
2376                        self.cx,
2377                        deleg,
2378                        item,
2379                        suffixes,
2380                        item.span,
2381                        DelegationSource::List(LocalExpnId::fresh_empty()),
2382                    );
2383                    Node::flatten_outputs(single_delegations.map(|item| {
2384                        let mut item = Node::from_item(item);
2385                        {
    let old_id = self.cx.current_expansion.lint_node_id;
    if self.monotonic {
        if true {
            {
                match (&*item.node_id_mut(), &ast::DUMMY_NODE_ID) {
                    (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);
                        }
                    }
                }
            };
        };
        let new_id = self.cx.resolver.next_node_id();
        *item.node_id_mut() = new_id;
        self.cx.current_expansion.lint_node_id = new_id;
    }
    let ret = (|| item.walk_flat_map(self))();
    self.cx.current_expansion.lint_node_id = old_id;
    ret
}assign_id!(self, item.node_id_mut(), || item.walk_flat_map(self))
2386                    }))
2387                }
2388                None => {
2389                    match Node::wrap_flat_map_node_walk_flat_map(node, self, |mut node, this| {
2390                        {
    let old_id = this.cx.current_expansion.lint_node_id;
    if this.monotonic {
        if true {
            {
                match (&*node.node_id_mut(), &ast::DUMMY_NODE_ID) {
                    (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);
                        }
                    }
                }
            };
        };
        let new_id = this.cx.resolver.next_node_id();
        *node.node_id_mut() = new_id;
        this.cx.current_expansion.lint_node_id = new_id;
    }
    let ret = (|| node.walk_flat_map(this))();
    this.cx.current_expansion.lint_node_id = old_id;
    ret
}assign_id!(this, node.node_id_mut(), || node.walk_flat_map(this))
2391                    }) {
2392                        Ok(output) => output,
2393                        Err(returned_node) => {
2394                            node = returned_node;
2395                            continue;
2396                        }
2397                    }
2398                }
2399            };
2400        }
2401    }
2402
2403    fn visit_node<Node: InvocationCollectorNode<OutputTy: Into<Node>> + DummyAstNode>(
2404        &mut self,
2405        node: &mut Node,
2406    ) {
2407        loop {
2408            return match self.take_first_attr(node) {
2409                Some((attr, pos, derives)) => match attr.name() {
2410                    Some(sym::cfg) => {
2411                        let span = attr.span;
2412                        if self.expand_cfg_true(node, attr, pos).as_bool() {
2413                            continue;
2414                        }
2415
2416                        node.expand_cfg_false(self, pos, span);
2417                        continue;
2418                    }
2419                    Some(sym::cfg_attr) => {
2420                        self.expand_cfg_attr(node, &attr, pos);
2421                        continue;
2422                    }
2423                    _ => {
2424                        let n = mem::replace(node, Node::dummy());
2425                        *node = self
2426                            .collect_attr((attr, pos, derives), n.to_annotatable(), Node::KIND)
2427                            .make_ast::<Node>()
2428                            .into()
2429                    }
2430                },
2431                None if node.is_mac_call() => {
2432                    let n = mem::replace(node, Node::dummy());
2433                    let (mac, attrs, _) = n.take_mac_call();
2434                    self.check_attributes(&attrs, &mac);
2435
2436                    *node = self.collect_bang(mac, Node::KIND).make_ast::<Node>().into()
2437                }
2438                None if node.delegation().is_some() => ::core::panicking::panic("internal error: entered unreachable code")unreachable!(),
2439                None => {
2440                    {
    let old_id = self.cx.current_expansion.lint_node_id;
    if self.monotonic {
        if true {
            {
                match (&*node.node_id_mut(), &ast::DUMMY_NODE_ID) {
                    (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);
                        }
                    }
                }
            };
        };
        let new_id = self.cx.resolver.next_node_id();
        *node.node_id_mut() = new_id;
        self.cx.current_expansion.lint_node_id = new_id;
    }
    let ret = (|| node.walk(self))();
    self.cx.current_expansion.lint_node_id = old_id;
    ret
}assign_id!(self, node.node_id_mut(), || node.walk(self))
2441                }
2442            };
2443        }
2444    }
2445}
2446
2447impl<'a, 'b> MutVisitor for InvocationCollector<'a, 'b> {
2448    fn flat_map_item(&mut self, node: Box<ast::Item>) -> SmallVec<[Box<ast::Item>; 1]> {
2449        self.flat_map_node(node)
2450    }
2451
2452    fn flat_map_assoc_item(
2453        &mut self,
2454        node: Box<ast::AssocItem>,
2455        ctxt: AssocCtxt,
2456    ) -> SmallVec<[Box<ast::AssocItem>; 1]> {
2457        match ctxt {
2458            AssocCtxt::Trait => self.flat_map_node(AstNodeWrapper::new(node, TraitItemTag)),
2459            AssocCtxt::Impl { of_trait: false, .. } => {
2460                self.flat_map_node(AstNodeWrapper::new(node, ImplItemTag))
2461            }
2462            AssocCtxt::Impl { of_trait: true, .. } => {
2463                self.flat_map_node(AstNodeWrapper::new(node, TraitImplItemTag))
2464            }
2465        }
2466    }
2467
2468    fn flat_map_foreign_item(
2469        &mut self,
2470        node: Box<ast::ForeignItem>,
2471    ) -> SmallVec<[Box<ast::ForeignItem>; 1]> {
2472        self.flat_map_node(node)
2473    }
2474
2475    fn flat_map_variant(&mut self, node: ast::Variant) -> SmallVec<[ast::Variant; 1]> {
2476        self.flat_map_node(node)
2477    }
2478
2479    fn flat_map_where_predicate(
2480        &mut self,
2481        node: ast::WherePredicate,
2482    ) -> SmallVec<[ast::WherePredicate; 1]> {
2483        self.flat_map_node(node)
2484    }
2485
2486    fn flat_map_field_def(&mut self, node: ast::FieldDef) -> SmallVec<[ast::FieldDef; 1]> {
2487        self.flat_map_node(node)
2488    }
2489
2490    fn flat_map_pat_field(&mut self, node: ast::PatField) -> SmallVec<[ast::PatField; 1]> {
2491        self.flat_map_node(node)
2492    }
2493
2494    fn flat_map_expr_field(&mut self, node: ast::ExprField) -> SmallVec<[ast::ExprField; 1]> {
2495        self.flat_map_node(node)
2496    }
2497
2498    fn flat_map_param(&mut self, node: ast::Param) -> SmallVec<[ast::Param; 1]> {
2499        self.flat_map_node(node)
2500    }
2501
2502    fn flat_map_generic_param(
2503        &mut self,
2504        node: ast::GenericParam,
2505    ) -> SmallVec<[ast::GenericParam; 1]> {
2506        self.flat_map_node(node)
2507    }
2508
2509    fn flat_map_arm(&mut self, node: ast::Arm) -> SmallVec<[ast::Arm; 1]> {
2510        self.flat_map_node(node)
2511    }
2512
2513    fn flat_map_stmt(&mut self, node: ast::Stmt) -> SmallVec<[ast::Stmt; 1]> {
2514        // FIXME: invocations in semicolon-less expressions positions are expanded as expressions,
2515        // changing that requires some compatibility measures.
2516        if node.is_expr() {
2517            // The only way that we can end up with a `MacCall` expression statement,
2518            // (as opposed to a `StmtKind::MacCall`) is if we have a macro as the
2519            // trailing expression in a block (e.g. `fn foo() { my_macro!() }`).
2520            // Record this information, so that we can report a more specific
2521            // `SEMICOLON_IN_EXPRESSIONS_FROM_MACROS` lint if needed.
2522            // See #78991 for an investigation of treating macros in this position
2523            // as statements, rather than expressions, during parsing.
2524            return match &node.kind {
2525                StmtKind::Expr(expr)
2526                    if #[allow(non_exhaustive_omitted_patterns)] match **expr {
    ast::Expr { kind: ExprKind::MacCall(..), .. } => true,
    _ => false,
}matches!(**expr, ast::Expr { kind: ExprKind::MacCall(..), .. }) =>
2527                {
2528                    self.cx.current_expansion.is_trailing_mac = true;
2529                    // Don't use `assign_id` for this statement - it may get removed
2530                    // entirely due to a `#[cfg]` on the contained expression
2531                    let res = walk_flat_map_stmt(self, node);
2532                    self.cx.current_expansion.is_trailing_mac = false;
2533                    res
2534                }
2535                _ => walk_flat_map_stmt(self, node),
2536            };
2537        }
2538
2539        self.flat_map_node(node)
2540    }
2541
2542    fn visit_crate(&mut self, node: &mut ast::Crate) {
2543        self.visit_node(node)
2544    }
2545
2546    fn visit_ty(&mut self, node: &mut ast::Ty) {
2547        self.visit_node(node)
2548    }
2549
2550    fn visit_pat(&mut self, node: &mut ast::Pat) {
2551        self.visit_node(node)
2552    }
2553
2554    fn visit_expr(&mut self, node: &mut ast::Expr) {
2555        // FIXME: Feature gating is performed inconsistently between `Expr` and `OptExpr`.
2556        if let Some(attr) = node.attrs.first() {
2557            self.cfg().maybe_emit_expr_attr_err(attr);
2558        }
2559        ensure_sufficient_stack(|| self.visit_node(node))
2560    }
2561
2562    fn visit_method_receiver_expr(&mut self, node: &mut ast::Expr) {
2563        self.visit_node(AstNodeWrapper::from_mut(node, MethodReceiverTag))
2564    }
2565
2566    fn filter_map_expr(&mut self, node: Box<ast::Expr>) -> Option<Box<ast::Expr>> {
2567        self.flat_map_node(AstNodeWrapper::new(node, OptExprTag))
2568    }
2569
2570    fn visit_block(&mut self, node: &mut ast::Block) {
2571        let orig_dir_ownership = mem::replace(
2572            &mut self.cx.current_expansion.dir_ownership,
2573            DirOwnership::UnownedViaBlock,
2574        );
2575        walk_block(self, node);
2576        self.cx.current_expansion.dir_ownership = orig_dir_ownership;
2577    }
2578
2579    fn visit_id(&mut self, id: &mut NodeId) {
2580        // We may have already assigned a `NodeId`
2581        // by calling `assign_id`
2582        if self.monotonic && *id == ast::DUMMY_NODE_ID {
2583            *id = self.cx.resolver.next_node_id();
2584        }
2585    }
2586}
2587
2588pub struct ExpansionConfig<'feat> {
2589    pub crate_name: Symbol,
2590    pub features: &'feat Features,
2591    pub recursion_limit: Limit,
2592    pub trace_mac: bool,
2593    /// If false, strip `#[test]` nodes
2594    pub should_test: bool,
2595    /// If true, use verbose debugging for `proc_macro::Span`
2596    pub span_debug: bool,
2597    /// If true, show backtraces for proc-macro panics
2598    pub proc_macro_backtrace: bool,
2599}
2600
2601impl ExpansionConfig<'_> {
2602    pub fn default(crate_name: Symbol, features: &Features) -> ExpansionConfig<'_> {
2603        ExpansionConfig {
2604            crate_name,
2605            features,
2606            // FIXME should this limit be configurable?
2607            recursion_limit: Limit::new(1024),
2608            trace_mac: false,
2609            should_test: false,
2610            span_debug: false,
2611            proc_macro_backtrace: false,
2612        }
2613    }
2614}