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rustc_resolve/
lib.rs

1//! This crate is responsible for the part of name resolution that doesn't require type checker.
2//!
3//! Module structure of the crate is built here.
4//! Paths in macros, imports, expressions, types, patterns are resolved here.
5//! Label and lifetime names are resolved here as well.
6//!
7//! Type-relative name resolution (methods, fields, associated items) happens in `rustc_hir_analysis`.
8
9// tidy-alphabetical-start
10#![allow(internal_features)]
11#![feature(arbitrary_self_types)]
12#![feature(const_default)]
13#![feature(const_trait_impl)]
14#![feature(control_flow_into_value)]
15#![feature(default_field_values)]
16#![feature(deref_patterns)]
17#![feature(iter_intersperse)]
18#![feature(rustc_attrs)]
19#![feature(trim_prefix_suffix)]
20#![recursion_limit = "256"]
21// tidy-alphabetical-end
22
23use std::cell::Ref;
24use std::collections::BTreeSet;
25use std::ops::ControlFlow;
26use std::sync::Arc;
27use std::{fmt, mem};
28
29use diagnostics::{ParamKindInEnumDiscriminant, ParamKindInNonTrivialAnonConst};
30use effective_visibilities::EffectiveVisibilitiesVisitor;
31use error_helper::{ImportSuggestion, LabelSuggestion, StructCtor, Suggestion};
32use hygiene::Macros20NormalizedSyntaxContext;
33use imports::{Import, ImportData, ImportKind, NameResolution, PendingDecl};
34use late::{
35    ForwardGenericParamBanReason, HasGenericParams, PathSource, PatternSource,
36    UnnecessaryQualification,
37};
38pub use macros::registered_tools_ast;
39use macros::{MacroRulesDecl, MacroRulesScope, MacroRulesScopeRef};
40use rustc_arena::{DroplessArena, TypedArena};
41use rustc_ast::node_id::NodeMap;
42use rustc_ast::{
43    self as ast, AngleBracketedArg, CRATE_NODE_ID, Crate, DUMMY_NODE_ID, Expr, ExprKind,
44    GenericArg, GenericArgs, Generics, NodeId, Path, attr,
45};
46use rustc_data_structures::fx::{FxHashMap, FxHashSet, FxIndexMap, FxIndexSet, default};
47use rustc_data_structures::intern::Interned;
48use rustc_data_structures::steal::Steal;
49use rustc_data_structures::sync::{FreezeReadGuard, FreezeWriteGuard};
50use rustc_data_structures::unord::{UnordItems, UnordMap, UnordSet};
51use rustc_errors::{Applicability, Diag, ErrCode, ErrorGuaranteed, LintBuffer};
52use rustc_expand::base::{DeriveResolution, SyntaxExtension, SyntaxExtensionKind};
53use rustc_feature::{BUILTIN_ATTRIBUTES, Features};
54use rustc_hir::attrs::StrippedCfgItem;
55use rustc_hir::def::Namespace::{self, *};
56use rustc_hir::def::{
57    self, CtorOf, DefKind, DocLinkResMap, MacroKinds, NonMacroAttrKind, PartialRes, PerNS,
58};
59use rustc_hir::def_id::{CRATE_DEF_ID, CrateNum, DefId, LOCAL_CRATE, LocalDefId, LocalDefIdMap};
60use rustc_hir::definitions::{PerParentDisambiguatorState, PerParentDisambiguatorsMap};
61use rustc_hir::{MissingLifetimeKind, PrimTy, TraitCandidate, find_attr};
62use rustc_index::bit_set::DenseBitSet;
63use rustc_metadata::creader::CStore;
64use rustc_middle::metadata::{AmbigModChild, ModChild, Reexport};
65use rustc_middle::middle::privacy::EffectiveVisibilities;
66use rustc_middle::query::Providers;
67use rustc_middle::ty::{
68    self, DelegationInfo, MainDefinition, PerOwnerResolverData, RegisteredTools,
69    ResolverAstLowering, ResolverGlobalCtxt, TyCtxt, TyCtxtFeed, Visibility,
70};
71use rustc_middle::{bug, span_bug};
72use rustc_session::config::CrateType;
73use rustc_session::lint::builtin::PRIVATE_MACRO_USE;
74use rustc_span::hygiene::{ExpnId, LocalExpnId, MacroKind, SyntaxContext, Transparency};
75use rustc_span::{DUMMY_SP, Ident, Span, Symbol, kw, sym};
76use smallvec::{SmallVec, smallvec};
77use tracing::{debug, instrument};
78
79use crate::error_helper::OnUnknownData;
80use crate::imports::NameResolutionRef;
81use crate::ref_mut::{CmCell, CmRefCell};
82
83mod build_reduced_graph;
84mod check_unused;
85mod def_collector;
86mod diagnostics;
87mod effective_visibilities;
88mod error_helper;
89mod ident;
90mod imports;
91mod late;
92mod macros;
93pub mod rustdoc;
94
95type Res = def::Res<NodeId>;
96
97#[derive(#[automatically_derived]
impl ::core::marker::Copy for Determinacy { }Copy, #[automatically_derived]
impl ::core::clone::Clone for Determinacy {
    #[inline]
    fn clone(&self) -> Determinacy { *self }
}Clone, #[automatically_derived]
impl ::core::cmp::PartialEq for Determinacy {
    #[inline]
    fn eq(&self, other: &Determinacy) -> bool {
        let __self_discr = ::core::intrinsics::discriminant_value(self);
        let __arg1_discr = ::core::intrinsics::discriminant_value(other);
        __self_discr == __arg1_discr
    }
}PartialEq, #[automatically_derived]
impl ::core::fmt::Debug for Determinacy {
    #[inline]
    fn fmt(&self, f: &mut ::core::fmt::Formatter) -> ::core::fmt::Result {
        ::core::fmt::Formatter::write_str(f,
            match self {
                Determinacy::Determined => "Determined",
                Determinacy::Undetermined => "Undetermined",
            })
    }
}Debug)]
98enum Determinacy {
99    Determined,
100    Undetermined,
101}
102
103impl Determinacy {
104    fn determined(determined: bool) -> Determinacy {
105        if determined { Determinacy::Determined } else { Determinacy::Undetermined }
106    }
107}
108
109/// A specific scope in which a name can be looked up.
110#[derive(#[automatically_derived]
impl<'ra> ::core::clone::Clone for Scope<'ra> {
    #[inline]
    fn clone(&self) -> Scope<'ra> {
        let _: ::core::clone::AssertParamIsClone<LocalExpnId>;
        let _: ::core::clone::AssertParamIsClone<MacroRulesScopeRef<'ra>>;
        let _: ::core::clone::AssertParamIsClone<Module<'ra>>;
        let _: ::core::clone::AssertParamIsClone<Option<NodeId>>;
        let _: ::core::clone::AssertParamIsClone<Module<'ra>>;
        let _: ::core::clone::AssertParamIsClone<Option<NodeId>>;
        *self
    }
}Clone, #[automatically_derived]
impl<'ra> ::core::marker::Copy for Scope<'ra> { }Copy, #[automatically_derived]
impl<'ra> ::core::fmt::Debug for Scope<'ra> {
    #[inline]
    fn fmt(&self, f: &mut ::core::fmt::Formatter) -> ::core::fmt::Result {
        match self {
            Scope::DeriveHelpers(__self_0) =>
                ::core::fmt::Formatter::debug_tuple_field1_finish(f,
                    "DeriveHelpers", &__self_0),
            Scope::DeriveHelpersCompat =>
                ::core::fmt::Formatter::write_str(f, "DeriveHelpersCompat"),
            Scope::MacroRules(__self_0) =>
                ::core::fmt::Formatter::debug_tuple_field1_finish(f,
                    "MacroRules", &__self_0),
            Scope::ModuleNonGlobs(__self_0, __self_1) =>
                ::core::fmt::Formatter::debug_tuple_field2_finish(f,
                    "ModuleNonGlobs", __self_0, &__self_1),
            Scope::ModuleGlobs(__self_0, __self_1) =>
                ::core::fmt::Formatter::debug_tuple_field2_finish(f,
                    "ModuleGlobs", __self_0, &__self_1),
            Scope::MacroUsePrelude =>
                ::core::fmt::Formatter::write_str(f, "MacroUsePrelude"),
            Scope::BuiltinAttrs =>
                ::core::fmt::Formatter::write_str(f, "BuiltinAttrs"),
            Scope::ExternPreludeItems =>
                ::core::fmt::Formatter::write_str(f, "ExternPreludeItems"),
            Scope::ExternPreludeFlags =>
                ::core::fmt::Formatter::write_str(f, "ExternPreludeFlags"),
            Scope::ToolPrelude =>
                ::core::fmt::Formatter::write_str(f, "ToolPrelude"),
            Scope::StdLibPrelude =>
                ::core::fmt::Formatter::write_str(f, "StdLibPrelude"),
            Scope::BuiltinTypes =>
                ::core::fmt::Formatter::write_str(f, "BuiltinTypes"),
        }
    }
}Debug)]
111enum Scope<'ra> {
112    /// Inert attributes registered by derive macros.
113    DeriveHelpers(LocalExpnId),
114    /// Inert attributes registered by derive macros, but used before they are actually declared.
115    /// This scope will exist until the compatibility lint `LEGACY_DERIVE_HELPERS`
116    /// is turned into a hard error.
117    DeriveHelpersCompat,
118    /// Textual `let`-like scopes introduced by `macro_rules!` items.
119    MacroRules(MacroRulesScopeRef<'ra>),
120    /// Non-glob names declared in the given module.
121    /// The node ID is for reporting the `PROC_MACRO_DERIVE_RESOLUTION_FALLBACK`
122    /// lint if it should be reported.
123    ModuleNonGlobs(Module<'ra>, Option<NodeId>),
124    /// Glob names declared in the given module.
125    /// The node ID is for reporting the `PROC_MACRO_DERIVE_RESOLUTION_FALLBACK`
126    /// lint if it should be reported.
127    ModuleGlobs(Module<'ra>, Option<NodeId>),
128    /// Names introduced by `#[macro_use]` attributes on `extern crate` items.
129    MacroUsePrelude,
130    /// Built-in attributes.
131    BuiltinAttrs,
132    /// Extern prelude names introduced by `extern crate` items.
133    ExternPreludeItems,
134    /// Extern prelude names introduced by `--extern` flags.
135    ExternPreludeFlags,
136    /// Tool modules introduced with `#![register_tool]`.
137    ToolPrelude,
138    /// Standard library prelude introduced with an internal `#[prelude_import]` import.
139    StdLibPrelude,
140    /// Built-in types.
141    BuiltinTypes,
142}
143
144/// Names from different contexts may want to visit different subsets of all specific scopes
145/// with different restrictions when looking up the resolution.
146#[derive(#[automatically_derived]
impl<'ra> ::core::clone::Clone for ScopeSet<'ra> {
    #[inline]
    fn clone(&self) -> ScopeSet<'ra> {
        let _: ::core::clone::AssertParamIsClone<Namespace>;
        let _: ::core::clone::AssertParamIsClone<Module<'ra>>;
        let _: ::core::clone::AssertParamIsClone<Module<'ra>>;
        let _: ::core::clone::AssertParamIsClone<MacroKind>;
        *self
    }
}Clone, #[automatically_derived]
impl<'ra> ::core::marker::Copy for ScopeSet<'ra> { }Copy, #[automatically_derived]
impl<'ra> ::core::fmt::Debug for ScopeSet<'ra> {
    #[inline]
    fn fmt(&self, f: &mut ::core::fmt::Formatter) -> ::core::fmt::Result {
        match self {
            ScopeSet::All(__self_0) =>
                ::core::fmt::Formatter::debug_tuple_field1_finish(f, "All",
                    &__self_0),
            ScopeSet::Module(__self_0, __self_1) =>
                ::core::fmt::Formatter::debug_tuple_field2_finish(f, "Module",
                    __self_0, &__self_1),
            ScopeSet::ModuleAndExternPrelude(__self_0, __self_1) =>
                ::core::fmt::Formatter::debug_tuple_field2_finish(f,
                    "ModuleAndExternPrelude", __self_0, &__self_1),
            ScopeSet::ExternPrelude =>
                ::core::fmt::Formatter::write_str(f, "ExternPrelude"),
            ScopeSet::Macro(__self_0) =>
                ::core::fmt::Formatter::debug_tuple_field1_finish(f, "Macro",
                    &__self_0),
        }
    }
}Debug)]
147enum ScopeSet<'ra> {
148    /// All scopes with the given namespace.
149    All(Namespace),
150    /// Two scopes inside a module, for non-glob and glob bindings.
151    Module(Namespace, Module<'ra>),
152    /// A module, then extern prelude (used for mixed 2015-2018 mode in macros).
153    ModuleAndExternPrelude(Namespace, Module<'ra>),
154    /// Just two extern prelude scopes.
155    ExternPrelude,
156    /// Same as `All(MacroNS)`, but with the given macro kind restriction.
157    Macro(MacroKind),
158}
159
160/// Everything you need to know about a name's location to resolve it.
161/// Serves as a starting point for the scope visitor.
162/// This struct is currently used only for early resolution (imports and macros),
163/// but not for late resolution yet.
164#[derive(#[automatically_derived]
impl<'ra> ::core::clone::Clone for ParentScope<'ra> {
    #[inline]
    fn clone(&self) -> ParentScope<'ra> {
        let _: ::core::clone::AssertParamIsClone<Module<'ra>>;
        let _: ::core::clone::AssertParamIsClone<LocalExpnId>;
        let _: ::core::clone::AssertParamIsClone<MacroRulesScopeRef<'ra>>;
        let _: ::core::clone::AssertParamIsClone<&'ra [ast::Path]>;
        *self
    }
}Clone, #[automatically_derived]
impl<'ra> ::core::marker::Copy for ParentScope<'ra> { }Copy, #[automatically_derived]
impl<'ra> ::core::fmt::Debug for ParentScope<'ra> {
    #[inline]
    fn fmt(&self, f: &mut ::core::fmt::Formatter) -> ::core::fmt::Result {
        ::core::fmt::Formatter::debug_struct_field4_finish(f, "ParentScope",
            "module", &self.module, "expansion", &self.expansion,
            "macro_rules", &self.macro_rules, "derives", &&self.derives)
    }
}Debug)]
165struct ParentScope<'ra> {
166    module: Module<'ra>,
167    expansion: LocalExpnId,
168    macro_rules: MacroRulesScopeRef<'ra>,
169    derives: &'ra [ast::Path],
170}
171
172impl<'ra> ParentScope<'ra> {
173    /// Creates a parent scope with the passed argument used as the module scope component,
174    /// and other scope components set to default empty values.
175    fn module(module: LocalModule<'ra>, arenas: &'ra ResolverArenas<'ra>) -> ParentScope<'ra> {
176        ParentScope {
177            module: module.to_module(),
178            expansion: LocalExpnId::ROOT,
179            macro_rules: arenas.alloc_macro_rules_scope(MacroRulesScope::Empty),
180            derives: &[],
181        }
182    }
183}
184
185#[derive(#[automatically_derived]
impl ::core::marker::Copy for InvocationParent { }Copy, #[automatically_derived]
impl ::core::fmt::Debug for InvocationParent {
    #[inline]
    fn fmt(&self, f: &mut ::core::fmt::Formatter) -> ::core::fmt::Result {
        ::core::fmt::Formatter::debug_struct_field5_finish(f,
            "InvocationParent", "parent_def", &self.parent_def,
            "impl_trait_context", &self.impl_trait_context, "in_attr",
            &self.in_attr, "const_arg_context", &self.const_arg_context,
            "owner", &&self.owner)
    }
}Debug, #[automatically_derived]
impl ::core::clone::Clone for InvocationParent {
    #[inline]
    fn clone(&self) -> InvocationParent {
        let _: ::core::clone::AssertParamIsClone<LocalDefId>;
        let _: ::core::clone::AssertParamIsClone<ImplTraitContext>;
        let _: ::core::clone::AssertParamIsClone<bool>;
        let _: ::core::clone::AssertParamIsClone<ConstArgContext>;
        let _: ::core::clone::AssertParamIsClone<NodeId>;
        *self
    }
}Clone)]
186struct InvocationParent {
187    parent_def: LocalDefId,
188    impl_trait_context: ImplTraitContext,
189    in_attr: bool,
190    const_arg_context: ConstArgContext,
191    owner: NodeId,
192}
193
194impl InvocationParent {
195    const ROOT: Self = Self {
196        parent_def: CRATE_DEF_ID,
197        impl_trait_context: ImplTraitContext::Existential,
198        in_attr: false,
199        const_arg_context: ConstArgContext::NonDirect,
200        owner: CRATE_NODE_ID,
201    };
202}
203
204#[derive(#[automatically_derived]
impl ::core::marker::Copy for ImplTraitContext { }Copy, #[automatically_derived]
impl ::core::fmt::Debug for ImplTraitContext {
    #[inline]
    fn fmt(&self, f: &mut ::core::fmt::Formatter) -> ::core::fmt::Result {
        ::core::fmt::Formatter::write_str(f,
            match self {
                ImplTraitContext::Existential => "Existential",
                ImplTraitContext::Universal => "Universal",
                ImplTraitContext::InBinding => "InBinding",
            })
    }
}Debug, #[automatically_derived]
impl ::core::clone::Clone for ImplTraitContext {
    #[inline]
    fn clone(&self) -> ImplTraitContext { *self }
}Clone)]
205enum ImplTraitContext {
206    Existential,
207    Universal,
208    InBinding,
209}
210
211#[derive(#[automatically_derived]
impl ::core::marker::Copy for ConstArgContext { }Copy, #[automatically_derived]
impl ::core::clone::Clone for ConstArgContext {
    #[inline]
    fn clone(&self) -> ConstArgContext { *self }
}Clone, #[automatically_derived]
impl ::core::fmt::Debug for ConstArgContext {
    #[inline]
    fn fmt(&self, f: &mut ::core::fmt::Formatter) -> ::core::fmt::Result {
        ::core::fmt::Formatter::write_str(f,
            match self {
                ConstArgContext::Direct => "Direct",
                ConstArgContext::NonDirect => "NonDirect",
            })
    }
}Debug)]
212enum ConstArgContext {
213    Direct,
214    /// Either inside of an `AnonConst` or not inside a const argument at all.
215    NonDirect,
216}
217
218/// Used for tracking import use types which will be used for redundant import checking.
219///
220/// ### Used::Scope Example
221///
222/// ```rust,compile_fail
223/// #![deny(redundant_imports)]
224/// use std::mem::drop;
225/// fn main() {
226///     let s = Box::new(32);
227///     drop(s);
228/// }
229/// ```
230///
231/// Used::Other is for other situations like module-relative uses.
232#[derive(#[automatically_derived]
impl ::core::clone::Clone for Used {
    #[inline]
    fn clone(&self) -> Used { *self }
}Clone, #[automatically_derived]
impl ::core::marker::Copy for Used { }Copy, #[automatically_derived]
impl ::core::cmp::PartialEq for Used {
    #[inline]
    fn eq(&self, other: &Used) -> bool {
        let __self_discr = ::core::intrinsics::discriminant_value(self);
        let __arg1_discr = ::core::intrinsics::discriminant_value(other);
        __self_discr == __arg1_discr
    }
}PartialEq, #[automatically_derived]
impl ::core::cmp::PartialOrd for Used {
    #[inline]
    fn partial_cmp(&self, other: &Used)
        -> ::core::option::Option<::core::cmp::Ordering> {
        let __self_discr = ::core::intrinsics::discriminant_value(self);
        let __arg1_discr = ::core::intrinsics::discriminant_value(other);
        ::core::cmp::PartialOrd::partial_cmp(&__self_discr, &__arg1_discr)
    }
}PartialOrd, #[automatically_derived]
impl ::core::fmt::Debug for Used {
    #[inline]
    fn fmt(&self, f: &mut ::core::fmt::Formatter) -> ::core::fmt::Result {
        ::core::fmt::Formatter::write_str(f,
            match self { Used::Scope => "Scope", Used::Other => "Other", })
    }
}Debug)]
233enum Used {
234    Scope,
235    Other,
236}
237
238#[derive(#[automatically_derived]
impl ::core::fmt::Debug for BindingError {
    #[inline]
    fn fmt(&self, f: &mut ::core::fmt::Formatter) -> ::core::fmt::Result {
        ::core::fmt::Formatter::debug_struct_field4_finish(f, "BindingError",
            "name", &self.name, "origin", &self.origin, "target",
            &self.target, "could_be_path", &&self.could_be_path)
    }
}Debug)]
239struct BindingError {
240    name: Ident,
241    origin: Vec<(Span, ast::Pat)>,
242    target: Vec<ast::Pat>,
243    could_be_path: bool,
244}
245
246#[derive(#[automatically_derived]
impl<'ra> ::core::fmt::Debug for ResolutionError<'ra> {
    #[inline]
    fn fmt(&self, f: &mut ::core::fmt::Formatter) -> ::core::fmt::Result {
        match self {
            ResolutionError::GenericParamsFromOuterItem {
                outer_res: __self_0,
                has_generic_params: __self_1,
                def_kind: __self_2,
                inner_item: __self_3,
                current_self_ty: __self_4 } =>
                ::core::fmt::Formatter::debug_struct_field5_finish(f,
                    "GenericParamsFromOuterItem", "outer_res", __self_0,
                    "has_generic_params", __self_1, "def_kind", __self_2,
                    "inner_item", __self_3, "current_self_ty", &__self_4),
            ResolutionError::NameAlreadyUsedInParameterList(__self_0,
                __self_1) =>
                ::core::fmt::Formatter::debug_tuple_field2_finish(f,
                    "NameAlreadyUsedInParameterList", __self_0, &__self_1),
            ResolutionError::MethodNotMemberOfTrait(__self_0, __self_1,
                __self_2) =>
                ::core::fmt::Formatter::debug_tuple_field3_finish(f,
                    "MethodNotMemberOfTrait", __self_0, __self_1, &__self_2),
            ResolutionError::TypeNotMemberOfTrait(__self_0, __self_1,
                __self_2) =>
                ::core::fmt::Formatter::debug_tuple_field3_finish(f,
                    "TypeNotMemberOfTrait", __self_0, __self_1, &__self_2),
            ResolutionError::ConstNotMemberOfTrait(__self_0, __self_1,
                __self_2) =>
                ::core::fmt::Formatter::debug_tuple_field3_finish(f,
                    "ConstNotMemberOfTrait", __self_0, __self_1, &__self_2),
            ResolutionError::VariableNotBoundInPattern(__self_0, __self_1) =>
                ::core::fmt::Formatter::debug_tuple_field2_finish(f,
                    "VariableNotBoundInPattern", __self_0, &__self_1),
            ResolutionError::VariableBoundWithDifferentMode(__self_0,
                __self_1) =>
                ::core::fmt::Formatter::debug_tuple_field2_finish(f,
                    "VariableBoundWithDifferentMode", __self_0, &__self_1),
            ResolutionError::IdentifierBoundMoreThanOnceInParameterList(__self_0)
                =>
                ::core::fmt::Formatter::debug_tuple_field1_finish(f,
                    "IdentifierBoundMoreThanOnceInParameterList", &__self_0),
            ResolutionError::IdentifierBoundMoreThanOnceInSamePattern(__self_0)
                =>
                ::core::fmt::Formatter::debug_tuple_field1_finish(f,
                    "IdentifierBoundMoreThanOnceInSamePattern", &__self_0),
            ResolutionError::UndeclaredLabel {
                name: __self_0, suggestion: __self_1 } =>
                ::core::fmt::Formatter::debug_struct_field2_finish(f,
                    "UndeclaredLabel", "name", __self_0, "suggestion",
                    &__self_1),
            ResolutionError::FailedToResolve {
                segment: __self_0,
                label: __self_1,
                suggestion: __self_2,
                module: __self_3,
                message: __self_4 } =>
                ::core::fmt::Formatter::debug_struct_field5_finish(f,
                    "FailedToResolve", "segment", __self_0, "label", __self_1,
                    "suggestion", __self_2, "module", __self_3, "message",
                    &__self_4),
            ResolutionError::CannotCaptureDynamicEnvironmentInFnItem =>
                ::core::fmt::Formatter::write_str(f,
                    "CannotCaptureDynamicEnvironmentInFnItem"),
            ResolutionError::AttemptToUseNonConstantValueInConstant {
                ident: __self_0,
                suggestion: __self_1,
                current: __self_2,
                type_span: __self_3 } =>
                ::core::fmt::Formatter::debug_struct_field4_finish(f,
                    "AttemptToUseNonConstantValueInConstant", "ident", __self_0,
                    "suggestion", __self_1, "current", __self_2, "type_span",
                    &__self_3),
            ResolutionError::BindingShadowsSomethingUnacceptable {
                shadowing_binding: __self_0,
                name: __self_1,
                participle: __self_2,
                article: __self_3,
                shadowed_binding: __self_4,
                shadowed_binding_span: __self_5 } => {
                let names: &'static _ =
                    &["shadowing_binding", "name", "participle", "article",
                                "shadowed_binding", "shadowed_binding_span"];
                let values: &[&dyn ::core::fmt::Debug] =
                    &[__self_0, __self_1, __self_2, __self_3, __self_4,
                                &__self_5];
                ::core::fmt::Formatter::debug_struct_fields_finish(f,
                    "BindingShadowsSomethingUnacceptable", names, values)
            }
            ResolutionError::ForwardDeclaredGenericParam(__self_0, __self_1)
                =>
                ::core::fmt::Formatter::debug_tuple_field2_finish(f,
                    "ForwardDeclaredGenericParam", __self_0, &__self_1),
            ResolutionError::ParamInTyOfConstParam { name: __self_0 } =>
                ::core::fmt::Formatter::debug_struct_field1_finish(f,
                    "ParamInTyOfConstParam", "name", &__self_0),
            ResolutionError::ParamInNonTrivialAnonConst {
                is_gca: __self_0, name: __self_1, param_kind: __self_2 } =>
                ::core::fmt::Formatter::debug_struct_field3_finish(f,
                    "ParamInNonTrivialAnonConst", "is_gca", __self_0, "name",
                    __self_1, "param_kind", &__self_2),
            ResolutionError::ParamInEnumDiscriminant {
                name: __self_0, param_kind: __self_1 } =>
                ::core::fmt::Formatter::debug_struct_field2_finish(f,
                    "ParamInEnumDiscriminant", "name", __self_0, "param_kind",
                    &__self_1),
            ResolutionError::ForwardDeclaredSelf(__self_0) =>
                ::core::fmt::Formatter::debug_tuple_field1_finish(f,
                    "ForwardDeclaredSelf", &__self_0),
            ResolutionError::UnreachableLabel {
                name: __self_0,
                definition_span: __self_1,
                suggestion: __self_2 } =>
                ::core::fmt::Formatter::debug_struct_field3_finish(f,
                    "UnreachableLabel", "name", __self_0, "definition_span",
                    __self_1, "suggestion", &__self_2),
            ResolutionError::TraitImplMismatch {
                name: __self_0,
                kind: __self_1,
                trait_path: __self_2,
                trait_item_span: __self_3,
                code: __self_4 } =>
                ::core::fmt::Formatter::debug_struct_field5_finish(f,
                    "TraitImplMismatch", "name", __self_0, "kind", __self_1,
                    "trait_path", __self_2, "trait_item_span", __self_3, "code",
                    &__self_4),
            ResolutionError::TraitImplDuplicate {
                name: __self_0, trait_item_span: __self_1, old_span: __self_2
                } =>
                ::core::fmt::Formatter::debug_struct_field3_finish(f,
                    "TraitImplDuplicate", "name", __self_0, "trait_item_span",
                    __self_1, "old_span", &__self_2),
            ResolutionError::InvalidAsmSym =>
                ::core::fmt::Formatter::write_str(f, "InvalidAsmSym"),
            ResolutionError::LowercaseSelf =>
                ::core::fmt::Formatter::write_str(f, "LowercaseSelf"),
            ResolutionError::BindingInNeverPattern =>
                ::core::fmt::Formatter::write_str(f, "BindingInNeverPattern"),
        }
    }
}Debug)]
247enum ResolutionError<'ra> {
248    /// Error E0401: can't use type or const parameters from outer item.
249    GenericParamsFromOuterItem {
250        outer_res: Res,
251        has_generic_params: HasGenericParams,
252        def_kind: DefKind,
253        /// 1. label span, 2. item span, 3. item kind
254        inner_item: Option<(Span, Span, ast::ItemKind)>,
255        current_self_ty: Option<String>,
256    },
257    /// Error E0403: the name is already used for a type or const parameter in this generic
258    /// parameter list.
259    NameAlreadyUsedInParameterList(Ident, Span),
260    /// Error E0407: method is not a member of trait.
261    MethodNotMemberOfTrait(Ident, String, Option<Symbol>),
262    /// Error E0437: type is not a member of trait.
263    TypeNotMemberOfTrait(Ident, String, Option<Symbol>),
264    /// Error E0438: const is not a member of trait.
265    ConstNotMemberOfTrait(Ident, String, Option<Symbol>),
266    /// Error E0408: variable `{}` is not bound in all patterns.
267    VariableNotBoundInPattern(BindingError, ParentScope<'ra>),
268    /// Error E0409: variable `{}` is bound in inconsistent ways within the same match arm.
269    VariableBoundWithDifferentMode(Ident, Span),
270    /// Error E0415: identifier is bound more than once in this parameter list.
271    IdentifierBoundMoreThanOnceInParameterList(Ident),
272    /// Error E0416: identifier is bound more than once in the same pattern.
273    IdentifierBoundMoreThanOnceInSamePattern(Ident),
274    /// Error E0426: use of undeclared label.
275    UndeclaredLabel { name: Symbol, suggestion: Option<LabelSuggestion> },
276    /// Error E0433: failed to resolve.
277    FailedToResolve {
278        segment: Symbol,
279        label: String,
280        suggestion: Option<Suggestion>,
281        module: Option<ModuleOrUniformRoot<'ra>>,
282        message: String,
283    },
284    /// Error E0434: can't capture dynamic environment in a fn item.
285    CannotCaptureDynamicEnvironmentInFnItem,
286    /// Error E0435: attempt to use a non-constant value in a constant.
287    AttemptToUseNonConstantValueInConstant {
288        ident: Ident,
289        suggestion: &'static str,
290        current: &'static str,
291        type_span: Option<Span>,
292    },
293    /// Error E0530: `X` bindings cannot shadow `Y`s.
294    BindingShadowsSomethingUnacceptable {
295        shadowing_binding: PatternSource,
296        name: Symbol,
297        participle: &'static str,
298        article: &'static str,
299        shadowed_binding: Res,
300        shadowed_binding_span: Span,
301    },
302    /// Error E0128: generic parameters with a default cannot use forward-declared identifiers.
303    ForwardDeclaredGenericParam(Symbol, ForwardGenericParamBanReason),
304    // FIXME(generic_const_parameter_types): This should give custom output specifying it's only
305    // problematic to use *forward declared* parameters when the feature is enabled.
306    /// ERROR E0770: the type of const parameters must not depend on other generic parameters.
307    ParamInTyOfConstParam { name: Symbol },
308    /// generic parameters must not be used inside const evaluations.
309    ///
310    /// This error is only emitted when using `min_const_generics`.
311    ParamInNonTrivialAnonConst {
312        is_gca: bool,
313        name: Symbol,
314        param_kind: ParamKindInNonTrivialAnonConst,
315    },
316    /// generic parameters must not be used inside enum discriminants.
317    ///
318    /// This error is emitted even with `generic_const_exprs`.
319    ParamInEnumDiscriminant { name: Symbol, param_kind: ParamKindInEnumDiscriminant },
320    /// Error E0735: generic parameters with a default cannot use `Self`
321    ForwardDeclaredSelf(ForwardGenericParamBanReason),
322    /// Error E0767: use of unreachable label
323    UnreachableLabel { name: Symbol, definition_span: Span, suggestion: Option<LabelSuggestion> },
324    /// Error E0323, E0324, E0325: mismatch between trait item and impl item.
325    TraitImplMismatch {
326        name: Ident,
327        kind: &'static str,
328        trait_path: String,
329        trait_item_span: Span,
330        code: ErrCode,
331    },
332    /// Error E0201: multiple impl items for the same trait item.
333    TraitImplDuplicate { name: Ident, trait_item_span: Span, old_span: Span },
334    /// Inline asm `sym` operand must refer to a `fn` or `static`.
335    InvalidAsmSym,
336    /// `self` used instead of `Self` in a generic parameter
337    LowercaseSelf,
338    /// A never pattern has a binding.
339    BindingInNeverPattern,
340}
341
342#[derive(#[automatically_derived]
impl ::core::fmt::Debug for VisResolutionError {
    #[inline]
    fn fmt(&self, f: &mut ::core::fmt::Formatter) -> ::core::fmt::Result {
        match self {
            VisResolutionError::Relative2018(__self_0, __self_1) =>
                ::core::fmt::Formatter::debug_tuple_field2_finish(f,
                    "Relative2018", __self_0, &__self_1),
            VisResolutionError::AncestorOnly(__self_0) =>
                ::core::fmt::Formatter::debug_tuple_field1_finish(f,
                    "AncestorOnly", &__self_0),
            VisResolutionError::FailedToResolve(__self_0, __self_1, __self_2,
                __self_3, __self_4) =>
                ::core::fmt::Formatter::debug_tuple_field5_finish(f,
                    "FailedToResolve", __self_0, __self_1, __self_2, __self_3,
                    &__self_4),
            VisResolutionError::ExpectedFound(__self_0, __self_1, __self_2) =>
                ::core::fmt::Formatter::debug_tuple_field3_finish(f,
                    "ExpectedFound", __self_0, __self_1, &__self_2),
            VisResolutionError::Indeterminate(__self_0) =>
                ::core::fmt::Formatter::debug_tuple_field1_finish(f,
                    "Indeterminate", &__self_0),
            VisResolutionError::ModuleOnly(__self_0) =>
                ::core::fmt::Formatter::debug_tuple_field1_finish(f,
                    "ModuleOnly", &__self_0),
        }
    }
}Debug)]
343enum VisResolutionError {
344    Relative2018(Span, ast::Path),
345    AncestorOnly(Span),
346    FailedToResolve(Span, Symbol, String, Option<Suggestion>, String),
347    ExpectedFound(Span, String, Res),
348    Indeterminate(Span),
349    ModuleOnly(Span),
350}
351
352/// A minimal representation of a path segment. We use this in resolve because we synthesize 'path
353/// segments' which don't have the rest of an AST or HIR `PathSegment`.
354#[derive(#[automatically_derived]
impl ::core::clone::Clone for Segment {
    #[inline]
    fn clone(&self) -> Segment {
        let _: ::core::clone::AssertParamIsClone<Ident>;
        let _: ::core::clone::AssertParamIsClone<Option<NodeId>>;
        let _: ::core::clone::AssertParamIsClone<bool>;
        let _: ::core::clone::AssertParamIsClone<Span>;
        *self
    }
}Clone, #[automatically_derived]
impl ::core::marker::Copy for Segment { }Copy, #[automatically_derived]
impl ::core::fmt::Debug for Segment {
    #[inline]
    fn fmt(&self, f: &mut ::core::fmt::Formatter) -> ::core::fmt::Result {
        ::core::fmt::Formatter::debug_struct_field5_finish(f, "Segment",
            "ident", &self.ident, "id", &self.id, "has_generic_args",
            &self.has_generic_args, "has_lifetime_args",
            &self.has_lifetime_args, "args_span", &&self.args_span)
    }
}Debug)]
355struct Segment {
356    ident: Ident,
357    id: Option<NodeId>,
358    /// Signals whether this `PathSegment` has generic arguments.
359    has_generic_args: bool,
360    /// Signals whether this `PathSegment` has lifetime arguments.
361    has_lifetime_args: bool,
362    args_span: Span,
363}
364
365impl Segment {
366    fn from_path(path: &Path) -> Vec<Segment> {
367        path.segments.iter().map(|s| s.into()).collect()
368    }
369
370    fn from_ident(ident: Ident) -> Segment {
371        Segment {
372            ident,
373            id: None,
374            has_generic_args: false,
375            has_lifetime_args: false,
376            args_span: DUMMY_SP,
377        }
378    }
379
380    fn names_to_string(segments: &[Segment]) -> String {
381        names_to_string(segments.iter().map(|seg| seg.ident.name))
382    }
383}
384
385impl<'a> From<&'a ast::PathSegment> for Segment {
386    fn from(seg: &'a ast::PathSegment) -> Segment {
387        let has_generic_args = seg.args.is_some();
388        let (args_span, has_lifetime_args) = if let Some(args) = seg.args.as_deref() {
389            match args {
390                GenericArgs::AngleBracketed(args) => {
391                    let found_lifetimes = args
392                        .args
393                        .iter()
394                        .any(|arg| #[allow(non_exhaustive_omitted_patterns)] match arg {
    AngleBracketedArg::Arg(GenericArg::Lifetime(_)) => true,
    _ => false,
}matches!(arg, AngleBracketedArg::Arg(GenericArg::Lifetime(_))));
395                    (args.span, found_lifetimes)
396                }
397                GenericArgs::Parenthesized(args) => (args.span, true),
398                GenericArgs::ParenthesizedElided(span) => (*span, true),
399            }
400        } else {
401            (DUMMY_SP, false)
402        };
403        Segment {
404            ident: seg.ident,
405            id: Some(seg.id),
406            has_generic_args,
407            has_lifetime_args,
408            args_span,
409        }
410    }
411}
412
413/// Name declaration used during late resolution.
414#[derive(#[automatically_derived]
impl<'ra> ::core::fmt::Debug for LateDecl<'ra> {
    #[inline]
    fn fmt(&self, f: &mut ::core::fmt::Formatter) -> ::core::fmt::Result {
        match self {
            LateDecl::Decl(__self_0) =>
                ::core::fmt::Formatter::debug_tuple_field1_finish(f, "Decl",
                    &__self_0),
            LateDecl::RibDef(__self_0) =>
                ::core::fmt::Formatter::debug_tuple_field1_finish(f, "RibDef",
                    &__self_0),
        }
    }
}Debug, #[automatically_derived]
impl<'ra> ::core::marker::Copy for LateDecl<'ra> { }Copy, #[automatically_derived]
impl<'ra> ::core::clone::Clone for LateDecl<'ra> {
    #[inline]
    fn clone(&self) -> LateDecl<'ra> {
        let _: ::core::clone::AssertParamIsClone<Decl<'ra>>;
        let _: ::core::clone::AssertParamIsClone<Res>;
        *self
    }
}Clone)]
415enum LateDecl<'ra> {
416    /// A regular name declaration.
417    Decl(Decl<'ra>),
418    /// A name definition from a rib, e.g. a local variable.
419    /// Omits most of the data from regular `Decl` for performance reasons.
420    RibDef(Res),
421}
422
423impl<'ra> LateDecl<'ra> {
424    fn res(self) -> Res {
425        match self {
426            LateDecl::Decl(binding) => binding.res(),
427            LateDecl::RibDef(res) => res,
428        }
429    }
430}
431
432#[derive(#[automatically_derived]
impl<'ra> ::core::marker::Copy for ModuleOrUniformRoot<'ra> { }Copy, #[automatically_derived]
impl<'ra> ::core::clone::Clone for ModuleOrUniformRoot<'ra> {
    #[inline]
    fn clone(&self) -> ModuleOrUniformRoot<'ra> {
        let _: ::core::clone::AssertParamIsClone<Module<'ra>>;
        let _: ::core::clone::AssertParamIsClone<Module<'ra>>;
        let _: ::core::clone::AssertParamIsClone<Symbol>;
        *self
    }
}Clone, #[automatically_derived]
impl<'ra> ::core::cmp::PartialEq for ModuleOrUniformRoot<'ra> {
    #[inline]
    fn eq(&self, other: &ModuleOrUniformRoot<'ra>) -> bool {
        let __self_discr = ::core::intrinsics::discriminant_value(self);
        let __arg1_discr = ::core::intrinsics::discriminant_value(other);
        __self_discr == __arg1_discr &&
            match (self, other) {
                (ModuleOrUniformRoot::Module(__self_0),
                    ModuleOrUniformRoot::Module(__arg1_0)) =>
                    __self_0 == __arg1_0,
                (ModuleOrUniformRoot::ModuleAndExternPrelude(__self_0),
                    ModuleOrUniformRoot::ModuleAndExternPrelude(__arg1_0)) =>
                    __self_0 == __arg1_0,
                (ModuleOrUniformRoot::OpenModule(__self_0),
                    ModuleOrUniformRoot::OpenModule(__arg1_0)) =>
                    __self_0 == __arg1_0,
                _ => true,
            }
    }
}PartialEq, #[automatically_derived]
impl<'ra> ::core::fmt::Debug for ModuleOrUniformRoot<'ra> {
    #[inline]
    fn fmt(&self, f: &mut ::core::fmt::Formatter) -> ::core::fmt::Result {
        match self {
            ModuleOrUniformRoot::Module(__self_0) =>
                ::core::fmt::Formatter::debug_tuple_field1_finish(f, "Module",
                    &__self_0),
            ModuleOrUniformRoot::ModuleAndExternPrelude(__self_0) =>
                ::core::fmt::Formatter::debug_tuple_field1_finish(f,
                    "ModuleAndExternPrelude", &__self_0),
            ModuleOrUniformRoot::ExternPrelude =>
                ::core::fmt::Formatter::write_str(f, "ExternPrelude"),
            ModuleOrUniformRoot::CurrentScope =>
                ::core::fmt::Formatter::write_str(f, "CurrentScope"),
            ModuleOrUniformRoot::OpenModule(__self_0) =>
                ::core::fmt::Formatter::debug_tuple_field1_finish(f,
                    "OpenModule", &__self_0),
        }
    }
}Debug)]
433enum ModuleOrUniformRoot<'ra> {
434    /// Regular module.
435    Module(Module<'ra>),
436
437    /// Virtual module that denotes resolution in a module with fallback to extern prelude.
438    /// Used for paths starting with `::` coming from 2015 edition macros
439    /// used in 2018+ edition crates.
440    ModuleAndExternPrelude(Module<'ra>),
441
442    /// Virtual module that denotes resolution in extern prelude.
443    /// Used for paths starting with `::` on 2018 edition.
444    ExternPrelude,
445
446    /// Virtual module that denotes resolution in current scope.
447    /// Used only for resolving single-segment imports. The reason it exists is that import paths
448    /// are always split into two parts, the first of which should be some kind of module.
449    CurrentScope,
450
451    /// Virtual module for the resolution of base names of namespaced crates,
452    /// where the base name doesn't correspond to a module in the extern prelude.
453    /// E.g. `my_api::utils` is in the prelude, but `my_api` is not.
454    OpenModule(Symbol),
455}
456
457#[derive(#[automatically_derived]
impl<'ra> ::core::fmt::Debug for PathResult<'ra> {
    #[inline]
    fn fmt(&self, f: &mut ::core::fmt::Formatter) -> ::core::fmt::Result {
        match self {
            PathResult::Module(__self_0) =>
                ::core::fmt::Formatter::debug_tuple_field1_finish(f, "Module",
                    &__self_0),
            PathResult::NonModule(__self_0) =>
                ::core::fmt::Formatter::debug_tuple_field1_finish(f,
                    "NonModule", &__self_0),
            PathResult::Indeterminate =>
                ::core::fmt::Formatter::write_str(f, "Indeterminate"),
            PathResult::Failed {
                span: __self_0,
                label: __self_1,
                suggestion: __self_2,
                is_error_from_last_segment: __self_3,
                module: __self_4,
                segment: __self_5,
                error_implied_by_parse_error: __self_6,
                message: __self_7,
                note: __self_8 } => {
                let names: &'static _ =
                    &["span", "label", "suggestion",
                                "is_error_from_last_segment", "module", "segment",
                                "error_implied_by_parse_error", "message", "note"];
                let values: &[&dyn ::core::fmt::Debug] =
                    &[__self_0, __self_1, __self_2, __self_3, __self_4,
                                __self_5, __self_6, __self_7, &__self_8];
                ::core::fmt::Formatter::debug_struct_fields_finish(f,
                    "Failed", names, values)
            }
        }
    }
}Debug)]
458enum PathResult<'ra> {
459    Module(ModuleOrUniformRoot<'ra>),
460    NonModule(PartialRes),
461    Indeterminate,
462    Failed {
463        span: Span,
464        label: String,
465        suggestion: Option<Suggestion>,
466        is_error_from_last_segment: bool,
467        /// The final module being resolved, for instance:
468        ///
469        /// ```compile_fail
470        /// mod a {
471        ///     mod b {
472        ///         mod c {}
473        ///     }
474        /// }
475        ///
476        /// use a::not_exist::c;
477        /// ```
478        ///
479        /// In this case, `module` will point to `a`.
480        module: Option<ModuleOrUniformRoot<'ra>>,
481        /// The segment of target
482        segment: Ident,
483        error_implied_by_parse_error: bool,
484        message: String,
485        note: Option<String>,
486    },
487}
488
489impl<'ra> PathResult<'ra> {
490    fn failed(
491        ident: Ident,
492        is_error_from_last_segment: bool,
493        finalize: bool,
494        error_implied_by_parse_error: bool,
495        module: Option<ModuleOrUniformRoot<'ra>>,
496        label_and_suggestion_and_note: impl FnOnce() -> (
497            String,
498            String,
499            Option<Suggestion>,
500            Option<String>,
501        ),
502    ) -> PathResult<'ra> {
503        let (message, label, suggestion, note) = if finalize {
504            label_and_suggestion_and_note()
505        } else {
506            // FIXME: this output isn't actually present in the test suite.
507            (::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("cannot find `{0}` in this scope",
                ident))
    })format!("cannot find `{ident}` in this scope"), String::new(), None, None)
508        };
509        PathResult::Failed {
510            span: ident.span,
511            segment: ident,
512            label,
513            suggestion,
514            is_error_from_last_segment,
515            module,
516            error_implied_by_parse_error,
517            message,
518            note,
519        }
520    }
521}
522
523#[derive(#[automatically_derived]
impl ::core::fmt::Debug for ModuleKind {
    #[inline]
    fn fmt(&self, f: &mut ::core::fmt::Formatter) -> ::core::fmt::Result {
        match self {
            ModuleKind::Block =>
                ::core::fmt::Formatter::write_str(f, "Block"),
            ModuleKind::Def(__self_0, __self_1, __self_2, __self_3) =>
                ::core::fmt::Formatter::debug_tuple_field4_finish(f, "Def",
                    __self_0, __self_1, __self_2, &__self_3),
        }
    }
}Debug)]
524enum ModuleKind {
525    /// An anonymous module; e.g., just a block.
526    ///
527    /// ```
528    /// fn main() {
529    ///     fn f() {} // (1)
530    ///     { // This is an anonymous module
531    ///         f(); // This resolves to (2) as we are inside the block.
532    ///         fn f() {} // (2)
533    ///     }
534    ///     f(); // Resolves to (1)
535    /// }
536    /// ```
537    Block,
538    /// Any module with a name.
539    ///
540    /// This could be:
541    ///
542    /// * A normal module – either `mod from_file;` or `mod from_block { }` –
543    ///   or the crate root (which is conceptually a top-level module).
544    ///   The crate root will have `None` for the symbol.
545    /// * A trait or an enum (it implicitly contains associated types, methods and variant
546    ///   constructors).
547    Def(DefKind, DefId, NodeId, Option<Symbol>),
548}
549
550impl ModuleKind {
551    fn opt_def_id(&self) -> Option<DefId> {
552        match self {
553            ModuleKind::Def(_, def_id, _, _) => Some(*def_id),
554            _ => None,
555        }
556    }
557
558    fn def_id(&self) -> DefId {
559        self.opt_def_id().expect("`Module::def_id` is called on a block module")
560    }
561
562    fn is_local(&self) -> bool {
563        match self {
564            ModuleKind::Def(_, def_id, ..) => def_id.is_local(),
565            ModuleKind::Block => true,
566        }
567    }
568}
569
570/// Combination of a symbol and its macros 2.0 normalized hygiene context.
571/// Used as a key in various kinds of name containers, including modules (as a part of slightly
572/// larger `BindingKey`) and preludes.
573///
574/// Often passed around together with `orig_ident_span: Span`, which is an unnormalized span
575/// of the original `Ident` from which `IdentKey` was obtained. This span is not used in map keys,
576/// but used in a number of other scenarios - diagnostics, edition checks, `allow_unstable` checks
577/// and similar. This is required because macros 2.0 normalization is lossy and the normalized
578/// spans / syntax contexts no longer contain parts of macro backtraces, while the original span
579/// contains everything.
580#[derive(#[automatically_derived]
impl ::core::clone::Clone for IdentKey {
    #[inline]
    fn clone(&self) -> IdentKey {
        let _: ::core::clone::AssertParamIsClone<Symbol>;
        let _:
                ::core::clone::AssertParamIsClone<Macros20NormalizedSyntaxContext>;
        *self
    }
}Clone, #[automatically_derived]
impl ::core::marker::Copy for IdentKey { }Copy, #[automatically_derived]
impl ::core::cmp::PartialEq for IdentKey {
    #[inline]
    fn eq(&self, other: &IdentKey) -> bool {
        self.name == other.name && self.ctxt == other.ctxt
    }
}PartialEq, #[automatically_derived]
impl ::core::cmp::Eq for IdentKey {
    #[inline]
    #[doc(hidden)]
    #[coverage(off)]
    fn assert_fields_are_eq(&self) {
        let _: ::core::cmp::AssertParamIsEq<Symbol>;
        let _: ::core::cmp::AssertParamIsEq<Macros20NormalizedSyntaxContext>;
    }
}Eq, #[automatically_derived]
impl ::core::hash::Hash for IdentKey {
    #[inline]
    fn hash<__H: ::core::hash::Hasher>(&self, state: &mut __H) {
        ::core::hash::Hash::hash(&self.name, state);
        ::core::hash::Hash::hash(&self.ctxt, state)
    }
}Hash, #[automatically_derived]
impl ::core::fmt::Debug for IdentKey {
    #[inline]
    fn fmt(&self, f: &mut ::core::fmt::Formatter) -> ::core::fmt::Result {
        ::core::fmt::Formatter::debug_struct_field2_finish(f, "IdentKey",
            "name", &self.name, "ctxt", &&self.ctxt)
    }
}Debug)]
581struct IdentKey {
582    name: Symbol,
583    ctxt: Macros20NormalizedSyntaxContext,
584}
585
586impl IdentKey {
587    #[inline]
588    fn new(ident: Ident) -> IdentKey {
589        IdentKey { name: ident.name, ctxt: Macros20NormalizedSyntaxContext::new(ident.span.ctxt()) }
590    }
591
592    #[inline]
593    fn new_adjusted(ident: Ident, expn_id: ExpnId) -> (IdentKey, Option<ExpnId>) {
594        let (ctxt, def) = Macros20NormalizedSyntaxContext::new_adjusted(ident.span.ctxt(), expn_id);
595        (IdentKey { name: ident.name, ctxt }, def)
596    }
597
598    #[inline]
599    fn with_root_ctxt(name: Symbol) -> Self {
600        let ctxt = Macros20NormalizedSyntaxContext::new_unchecked(SyntaxContext::root());
601        IdentKey { name, ctxt }
602    }
603
604    #[inline]
605    fn orig(self, orig_ident_span: Span) -> Ident {
606        Ident::new(self.name, orig_ident_span)
607    }
608}
609
610/// A key that identifies a binding in a given `Module`.
611///
612/// Multiple bindings in the same module can have the same key (in a valid
613/// program) if all but one of them come from glob imports.
614#[derive(#[automatically_derived]
impl ::core::marker::Copy for BindingKey { }Copy, #[automatically_derived]
impl ::core::clone::Clone for BindingKey {
    #[inline]
    fn clone(&self) -> BindingKey {
        let _: ::core::clone::AssertParamIsClone<IdentKey>;
        let _: ::core::clone::AssertParamIsClone<Namespace>;
        let _: ::core::clone::AssertParamIsClone<u32>;
        *self
    }
}Clone, #[automatically_derived]
impl ::core::cmp::PartialEq for BindingKey {
    #[inline]
    fn eq(&self, other: &BindingKey) -> bool {
        self.disambiguator == other.disambiguator && self.ident == other.ident
            && self.ns == other.ns
    }
}PartialEq, #[automatically_derived]
impl ::core::cmp::Eq for BindingKey {
    #[inline]
    #[doc(hidden)]
    #[coverage(off)]
    fn assert_fields_are_eq(&self) {
        let _: ::core::cmp::AssertParamIsEq<IdentKey>;
        let _: ::core::cmp::AssertParamIsEq<Namespace>;
        let _: ::core::cmp::AssertParamIsEq<u32>;
    }
}Eq, #[automatically_derived]
impl ::core::hash::Hash for BindingKey {
    #[inline]
    fn hash<__H: ::core::hash::Hasher>(&self, state: &mut __H) {
        ::core::hash::Hash::hash(&self.ident, state);
        ::core::hash::Hash::hash(&self.ns, state);
        ::core::hash::Hash::hash(&self.disambiguator, state)
    }
}Hash, #[automatically_derived]
impl ::core::fmt::Debug for BindingKey {
    #[inline]
    fn fmt(&self, f: &mut ::core::fmt::Formatter) -> ::core::fmt::Result {
        ::core::fmt::Formatter::debug_struct_field3_finish(f, "BindingKey",
            "ident", &self.ident, "ns", &self.ns, "disambiguator",
            &&self.disambiguator)
    }
}Debug)]
615struct BindingKey {
616    /// The identifier for the binding, always the `normalize_to_macros_2_0` version of the
617    /// identifier.
618    ident: IdentKey,
619    ns: Namespace,
620    /// When we add an underscore binding (with ident `_`) to some module, this field has
621    /// a non-zero value that uniquely identifies this binding in that module.
622    /// For non-underscore bindings this field is zero.
623    /// When a key is constructed for name lookup (as opposed to name definition), this field is
624    /// also zero, even for underscore names, so for underscores the lookup will never succeed.
625    disambiguator: u32,
626}
627
628impl BindingKey {
629    fn new(ident: IdentKey, ns: Namespace) -> Self {
630        BindingKey { ident, ns, disambiguator: 0 }
631    }
632
633    fn new_disambiguated(
634        ident: IdentKey,
635        ns: Namespace,
636        disambiguator: impl FnOnce() -> u32,
637    ) -> BindingKey {
638        let disambiguator = if ident.name == kw::Underscore { disambiguator() } else { 0 };
639        BindingKey { ident, ns, disambiguator }
640    }
641}
642
643type Resolutions<'ra> = CmRefCell<FxIndexMap<BindingKey, NameResolutionRef<'ra>>>;
644
645/// One node in the tree of modules.
646///
647/// Note that a "module" in resolve is broader than a `mod` that you declare in Rust code. It may be one of these:
648///
649/// * `mod`
650/// * crate root (aka, top-level anonymous module)
651/// * `enum`
652/// * `trait`
653/// * curly-braced block with statements
654///
655/// You can use [`ModuleData::kind`] to determine the kind of module this is.
656struct ModuleData<'ra> {
657    /// The direct parent module (it may not be a `mod`, however).
658    parent: Option<Module<'ra>>,
659    /// What kind of module this is, because this may not be a `mod`.
660    kind: ModuleKind,
661
662    /// Mapping between names and their (possibly in-progress) resolutions in this module.
663    /// Resolutions in modules from other crates are not populated until accessed.
664    lazy_resolutions: Resolutions<'ra>,
665    /// True if this is a module from other crate that needs to be populated on access.
666    populate_on_access: CacheCell<bool>,
667    /// Used to disambiguate underscore items (`const _: T = ...`) in the module.
668    underscore_disambiguator: CmCell<u32>,
669
670    /// Macro invocations that can expand into items in this module.
671    unexpanded_invocations: CmRefCell<FxHashSet<LocalExpnId>>,
672
673    /// Whether `#[no_implicit_prelude]` is active.
674    no_implicit_prelude: bool,
675
676    glob_importers: CmRefCell<Vec<Import<'ra>>>,
677    globs: CmRefCell<Vec<Import<'ra>>>,
678
679    /// Used to memoize the traits in this module for faster searches through all traits in scope.
680    traits: CmRefCell<
681        Option<Box<[(Symbol, Decl<'ra>, Option<Module<'ra>>, bool /* lint ambiguous */)]>>,
682    >,
683
684    /// Span of the module itself. Used for error reporting.
685    span: Span,
686
687    expansion: ExpnId,
688
689    /// Declaration for implicitly declared names that come with a module,
690    /// like `self` (not yet used), or `crate`/`$crate` (for root modules).
691    self_decl: Option<Decl<'ra>>,
692}
693
694/// All modules are unique and allocated on a same arena,
695/// so we can use referential equality to compare them.
696#[derive(#[automatically_derived]
impl<'ra> ::core::clone::Clone for Module<'ra> {
    #[inline]
    fn clone(&self) -> Module<'ra> {
        let _:
                ::core::clone::AssertParamIsClone<Interned<'ra,
                ModuleData<'ra>>>;
        *self
    }
}Clone, #[automatically_derived]
impl<'ra> ::core::marker::Copy for Module<'ra> { }Copy, #[automatically_derived]
impl<'ra> ::core::cmp::PartialEq for Module<'ra> {
    #[inline]
    fn eq(&self, other: &Module<'ra>) -> bool { self.0 == other.0 }
}PartialEq, #[automatically_derived]
impl<'ra> ::core::cmp::Eq for Module<'ra> {
    #[inline]
    #[doc(hidden)]
    #[coverage(off)]
    fn assert_fields_are_eq(&self) {
        let _: ::core::cmp::AssertParamIsEq<Interned<'ra, ModuleData<'ra>>>;
    }
}Eq, #[automatically_derived]
impl<'ra> ::core::hash::Hash for Module<'ra> {
    #[inline]
    fn hash<__H: ::core::hash::Hasher>(&self, state: &mut __H) {
        ::core::hash::Hash::hash(&self.0, state)
    }
}Hash)]
697#[rustc_pass_by_value]
698struct Module<'ra>(Interned<'ra, ModuleData<'ra>>);
699
700/// Same as `Module`, but is guaranteed to be from the current crate.
701#[derive(#[automatically_derived]
impl<'ra> ::core::clone::Clone for LocalModule<'ra> {
    #[inline]
    fn clone(&self) -> LocalModule<'ra> {
        let _:
                ::core::clone::AssertParamIsClone<Interned<'ra,
                ModuleData<'ra>>>;
        *self
    }
}Clone, #[automatically_derived]
impl<'ra> ::core::marker::Copy for LocalModule<'ra> { }Copy, #[automatically_derived]
impl<'ra> ::core::cmp::PartialEq for LocalModule<'ra> {
    #[inline]
    fn eq(&self, other: &LocalModule<'ra>) -> bool { self.0 == other.0 }
}PartialEq, #[automatically_derived]
impl<'ra> ::core::cmp::Eq for LocalModule<'ra> {
    #[inline]
    #[doc(hidden)]
    #[coverage(off)]
    fn assert_fields_are_eq(&self) {
        let _: ::core::cmp::AssertParamIsEq<Interned<'ra, ModuleData<'ra>>>;
    }
}Eq, #[automatically_derived]
impl<'ra> ::core::hash::Hash for LocalModule<'ra> {
    #[inline]
    fn hash<__H: ::core::hash::Hasher>(&self, state: &mut __H) {
        ::core::hash::Hash::hash(&self.0, state)
    }
}Hash)]
702#[rustc_pass_by_value]
703struct LocalModule<'ra>(Interned<'ra, ModuleData<'ra>>);
704
705/// Same as `Module`, but is guaranteed to be from an external crate.
706#[derive(#[automatically_derived]
impl<'ra> ::core::clone::Clone for ExternModule<'ra> {
    #[inline]
    fn clone(&self) -> ExternModule<'ra> {
        let _:
                ::core::clone::AssertParamIsClone<Interned<'ra,
                ModuleData<'ra>>>;
        *self
    }
}Clone, #[automatically_derived]
impl<'ra> ::core::marker::Copy for ExternModule<'ra> { }Copy, #[automatically_derived]
impl<'ra> ::core::cmp::PartialEq for ExternModule<'ra> {
    #[inline]
    fn eq(&self, other: &ExternModule<'ra>) -> bool { self.0 == other.0 }
}PartialEq, #[automatically_derived]
impl<'ra> ::core::cmp::Eq for ExternModule<'ra> {
    #[inline]
    #[doc(hidden)]
    #[coverage(off)]
    fn assert_fields_are_eq(&self) {
        let _: ::core::cmp::AssertParamIsEq<Interned<'ra, ModuleData<'ra>>>;
    }
}Eq, #[automatically_derived]
impl<'ra> ::core::hash::Hash for ExternModule<'ra> {
    #[inline]
    fn hash<__H: ::core::hash::Hasher>(&self, state: &mut __H) {
        ::core::hash::Hash::hash(&self.0, state)
    }
}Hash)]
707#[rustc_pass_by_value]
708struct ExternModule<'ra>(Interned<'ra, ModuleData<'ra>>);
709
710// Allows us to use Interned without actually enforcing (via Hash/PartialEq/...) uniqueness of the
711// contained data.
712// FIXME: We may wish to actually have at least debug-level assertions that Interned's guarantees
713// are upheld.
714impl std::hash::Hash for ModuleData<'_> {
715    fn hash<H>(&self, _: &mut H)
716    where
717        H: std::hash::Hasher,
718    {
719        ::core::panicking::panic("internal error: entered unreachable code")unreachable!()
720    }
721}
722
723impl<'ra> ModuleData<'ra> {
724    fn new(
725        parent: Option<Module<'ra>>,
726        kind: ModuleKind,
727        expansion: ExpnId,
728        span: Span,
729        no_implicit_prelude: bool,
730        vis: Visibility<DefId>,
731        arenas: &'ra ResolverArenas<'ra>,
732    ) -> Self {
733        let is_foreign = !kind.is_local();
734        let self_decl = match kind {
735            ModuleKind::Def(def_kind, def_id, ..) => {
736                let expn_id = expansion.as_local().unwrap_or(LocalExpnId::ROOT);
737                Some(arenas.new_def_decl(Res::Def(def_kind, def_id), vis, span, expn_id, parent))
738            }
739            ModuleKind::Block => None,
740        };
741        ModuleData {
742            parent,
743            kind,
744            lazy_resolutions: Default::default(),
745            populate_on_access: CacheCell::new(is_foreign),
746            underscore_disambiguator: CmCell::new(0),
747            unexpanded_invocations: Default::default(),
748            no_implicit_prelude,
749            glob_importers: CmRefCell::new(Vec::new()),
750            globs: CmRefCell::new(Vec::new()),
751            traits: CmRefCell::new(None),
752            span,
753            expansion,
754            self_decl,
755        }
756    }
757
758    /// Get name of the module.
759    fn name(&self) -> Option<Symbol> {
760        match self.kind {
761            ModuleKind::Block => None,
762            ModuleKind::Def(.., name) => name,
763        }
764    }
765
766    fn opt_def_id(&self) -> Option<DefId> {
767        self.kind.opt_def_id()
768    }
769
770    fn def_id(&self) -> DefId {
771        self.kind.def_id()
772    }
773
774    fn is_local(&self) -> bool {
775        self.kind.is_local()
776    }
777
778    fn has_unexpanded_invocations(&self) -> bool {
779        !self.unexpanded_invocations.borrow().is_empty()
780    }
781
782    fn res(&self) -> Option<Res> {
783        match self.kind {
784            ModuleKind::Def(kind, def_id, _, _) => Some(Res::Def(kind, def_id)),
785            _ => None,
786        }
787    }
788
789    fn def_kind(&self) -> Option<DefKind> {
790        match self.kind {
791            ModuleKind::Def(def_kind, ..) => Some(def_kind),
792            ModuleKind::Block => None,
793        }
794    }
795}
796
797impl<'ra> Module<'ra> {
798    fn for_each_child<'tcx, R: AsRef<Resolver<'ra, 'tcx>>>(
799        self,
800        resolver: &R,
801        mut f: impl FnMut(&R, IdentKey, Span, Namespace, Decl<'ra>),
802    ) {
803        for (key, name_resolution) in resolver.as_ref().resolutions(self).borrow().iter() {
804            let name_resolution = name_resolution.borrow();
805            if let Some(decl) = name_resolution.best_decl() {
806                f(resolver, key.ident, name_resolution.orig_ident_span, key.ns, decl);
807            }
808        }
809    }
810
811    fn for_each_child_mut<'tcx, R: AsMut<Resolver<'ra, 'tcx>>>(
812        self,
813        resolver: &mut R,
814        mut f: impl FnMut(&mut R, IdentKey, Span, Namespace, Decl<'ra>),
815    ) {
816        for (key, name_resolution) in resolver.as_mut().resolutions(self).borrow().iter() {
817            let name_resolution = name_resolution.borrow();
818            if let Some(decl) = name_resolution.best_decl() {
819                f(resolver, key.ident, name_resolution.orig_ident_span, key.ns, decl);
820            }
821        }
822    }
823
824    /// This modifies `self` in place. The traits will be stored in `self.traits`.
825    fn ensure_traits<'tcx>(self, resolver: &Resolver<'ra, 'tcx>) {
826        let mut traits = self.traits.borrow_mut(resolver.as_ref());
827        if traits.is_none() {
828            let mut collected_traits = Vec::new();
829            self.for_each_child(resolver, |r, ident, _, ns, binding| {
830                if ns != TypeNS {
831                    return;
832                }
833                if let Res::Def(DefKind::Trait | DefKind::TraitAlias, def_id) = binding.res() {
834                    collected_traits.push((
835                        ident.name,
836                        binding,
837                        r.as_ref().get_module(def_id),
838                        binding.is_ambiguity_recursive(),
839                    ));
840                }
841            });
842            *traits = Some(collected_traits.into_boxed_slice());
843        }
844    }
845
846    // `self` resolves to the first module ancestor that `is_normal`.
847    fn is_normal(self) -> bool {
848        self.def_kind() == Some(DefKind::Mod)
849    }
850
851    fn is_trait(self) -> bool {
852        #[allow(non_exhaustive_omitted_patterns)] match self.def_kind() {
    Some(DefKind::Trait) => true,
    _ => false,
}matches!(self.def_kind(), Some(DefKind::Trait))
853    }
854
855    fn nearest_item_scope(self) -> Module<'ra> {
856        match self.def_kind() {
857            Some(DefKind::Enum | DefKind::Trait) => {
858                self.parent.expect("enum or trait module without a parent")
859            }
860            _ => self,
861        }
862    }
863
864    /// The [`DefId`] of the nearest `mod` item ancestor (which may be this module).
865    /// This may be the crate root.
866    fn nearest_parent_mod(self) -> DefId {
867        match self.kind {
868            ModuleKind::Def(DefKind::Mod, def_id, _, _) => def_id,
869            _ => self.parent.expect("non-root module without parent").nearest_parent_mod(),
870        }
871    }
872
873    /// The [`NodeId`] of the nearest `mod` item ancestor (which may be this module).
874    /// This may be the crate root.
875    fn nearest_parent_mod_node_id(self) -> NodeId {
876        match self.kind {
877            ModuleKind::Def(DefKind::Mod, _, node_id, _) => node_id,
878            _ => self.parent.expect("non-root module without parent").nearest_parent_mod_node_id(),
879        }
880    }
881
882    fn is_ancestor_of(self, mut other: Self) -> bool {
883        while self != other {
884            if let Some(parent) = other.parent {
885                other = parent;
886            } else {
887                return false;
888            }
889        }
890        true
891    }
892
893    #[track_caller]
894    fn expect_local(self) -> LocalModule<'ra> {
895        match self.kind {
896            ModuleKind::Def(_, def_id, _, _) if !def_id.is_local() => {
897                ::rustc_middle::util::bug::span_bug_fmt(self.span,
    format_args!("unexpected extern module: {0:?}", self))span_bug!(self.span, "unexpected extern module: {self:?}")
898            }
899            ModuleKind::Def(..) | ModuleKind::Block => LocalModule(self.0),
900        }
901    }
902
903    #[track_caller]
904    fn expect_extern(self) -> ExternModule<'ra> {
905        match self.kind {
906            ModuleKind::Def(_, def_id, _, _) if !def_id.is_local() => ExternModule(self.0),
907            ModuleKind::Def(..) | ModuleKind::Block => {
908                ::rustc_middle::util::bug::span_bug_fmt(self.span,
    format_args!("unexpected local module: {0:?}", self))span_bug!(self.span, "unexpected local module: {self:?}")
909            }
910        }
911    }
912}
913
914impl<'ra> LocalModule<'ra> {
915    fn new(
916        parent: Option<LocalModule<'ra>>,
917        kind: ModuleKind,
918        vis: Visibility<DefId>,
919        expn_id: ExpnId,
920        span: Span,
921        no_implicit_prelude: bool,
922        arenas: &'ra ResolverArenas<'ra>,
923    ) -> LocalModule<'ra> {
924        if !kind.is_local() {
    ::core::panicking::panic("assertion failed: kind.is_local()")
};assert!(kind.is_local());
925        let parent = parent.map(|m| m.to_module());
926        let data = ModuleData::new(parent, kind, expn_id, span, no_implicit_prelude, vis, arenas);
927        LocalModule(Interned::new_unchecked(arenas.modules.alloc(data)))
928    }
929
930    fn to_module(self) -> Module<'ra> {
931        Module(self.0)
932    }
933}
934
935impl<'ra> ExternModule<'ra> {
936    fn new(
937        parent: Option<ExternModule<'ra>>,
938        kind: ModuleKind,
939        vis: Visibility<DefId>,
940        expn_id: ExpnId,
941        span: Span,
942        no_implicit_prelude: bool,
943        arenas: &'ra ResolverArenas<'ra>,
944    ) -> ExternModule<'ra> {
945        if !!kind.is_local() {
    ::core::panicking::panic("assertion failed: !kind.is_local()")
};assert!(!kind.is_local());
946        let parent = parent.map(|m| m.to_module());
947        let data = ModuleData::new(parent, kind, expn_id, span, no_implicit_prelude, vis, arenas);
948        ExternModule(Interned::new_unchecked(arenas.modules.alloc(data)))
949    }
950
951    fn to_module(self) -> Module<'ra> {
952        Module(self.0)
953    }
954}
955
956impl<'ra> std::ops::Deref for Module<'ra> {
957    type Target = ModuleData<'ra>;
958
959    fn deref(&self) -> &Self::Target {
960        &self.0
961    }
962}
963
964impl<'ra> std::ops::Deref for LocalModule<'ra> {
965    type Target = ModuleData<'ra>;
966
967    fn deref(&self) -> &Self::Target {
968        &self.0
969    }
970}
971
972impl<'ra> std::ops::Deref for ExternModule<'ra> {
973    type Target = ModuleData<'ra>;
974
975    fn deref(&self) -> &Self::Target {
976        &self.0
977    }
978}
979
980impl<'ra> fmt::Debug for Module<'ra> {
981    fn fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result {
982        match self.res() {
983            None => f.write_fmt(format_args!("block"))write!(f, "block"),
984            Some(res) => f.write_fmt(format_args!("{0:?}", res))write!(f, "{:?}", res),
985        }
986    }
987}
988
989impl<'ra> fmt::Debug for LocalModule<'ra> {
990    fn fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result {
991        self.to_module().fmt(f)
992    }
993}
994
995/// Data associated with any name declaration.
996#[derive(#[automatically_derived]
impl<'ra> ::core::clone::Clone for DeclData<'ra> {
    #[inline]
    fn clone(&self) -> DeclData<'ra> {
        DeclData {
            kind: ::core::clone::Clone::clone(&self.kind),
            ambiguity: ::core::clone::Clone::clone(&self.ambiguity),
            expansion: ::core::clone::Clone::clone(&self.expansion),
            span: ::core::clone::Clone::clone(&self.span),
            initial_vis: ::core::clone::Clone::clone(&self.initial_vis),
            ambiguity_vis_max: ::core::clone::Clone::clone(&self.ambiguity_vis_max),
            ambiguity_vis_min: ::core::clone::Clone::clone(&self.ambiguity_vis_min),
            parent_module: ::core::clone::Clone::clone(&self.parent_module),
        }
    }
}Clone, #[automatically_derived]
impl<'ra> ::core::fmt::Debug for DeclData<'ra> {
    #[inline]
    fn fmt(&self, f: &mut ::core::fmt::Formatter) -> ::core::fmt::Result {
        let names: &'static _ =
            &["kind", "ambiguity", "expansion", "span", "initial_vis",
                        "ambiguity_vis_max", "ambiguity_vis_min", "parent_module"];
        let values: &[&dyn ::core::fmt::Debug] =
            &[&self.kind, &self.ambiguity, &self.expansion, &self.span,
                        &self.initial_vis, &self.ambiguity_vis_max,
                        &self.ambiguity_vis_min, &&self.parent_module];
        ::core::fmt::Formatter::debug_struct_fields_finish(f, "DeclData",
            names, values)
    }
}Debug)]
997struct DeclData<'ra> {
998    kind: DeclKind<'ra>,
999    ambiguity: CmCell<Option<(Decl<'ra>, bool /*warning*/)>>,
1000    expansion: LocalExpnId,
1001    span: Span,
1002    initial_vis: Visibility<DefId>,
1003    /// If the declaration refers to an ambiguous glob set, then this is the most visible
1004    /// declaration from the set, if its visibility is different from `initial_vis`.
1005    ambiguity_vis_max: CmCell<Option<Decl<'ra>>>,
1006    /// If the declaration refers to an ambiguous glob set, then this is the least visible
1007    /// declaration from the set, if its visibility is different from `initial_vis`.
1008    ambiguity_vis_min: CmCell<Option<Decl<'ra>>>,
1009    parent_module: Option<Module<'ra>>,
1010}
1011
1012/// All name declarations are unique and allocated on a same arena,
1013/// so we can use referential equality to compare them.
1014type Decl<'ra> = Interned<'ra, DeclData<'ra>>;
1015
1016// Allows us to use Interned without actually enforcing (via Hash/PartialEq/...) uniqueness of the
1017// contained data.
1018// FIXME: We may wish to actually have at least debug-level assertions that Interned's guarantees
1019// are upheld.
1020impl std::hash::Hash for DeclData<'_> {
1021    fn hash<H>(&self, _: &mut H)
1022    where
1023        H: std::hash::Hasher,
1024    {
1025        ::core::panicking::panic("internal error: entered unreachable code")unreachable!()
1026    }
1027}
1028
1029/// Name declaration kind.
1030#[derive(#[automatically_derived]
impl<'ra> ::core::clone::Clone for DeclKind<'ra> {
    #[inline]
    fn clone(&self) -> DeclKind<'ra> {
        let _: ::core::clone::AssertParamIsClone<Res>;
        let _: ::core::clone::AssertParamIsClone<Decl<'ra>>;
        let _: ::core::clone::AssertParamIsClone<Import<'ra>>;
        *self
    }
}Clone, #[automatically_derived]
impl<'ra> ::core::marker::Copy for DeclKind<'ra> { }Copy, #[automatically_derived]
impl<'ra> ::core::fmt::Debug for DeclKind<'ra> {
    #[inline]
    fn fmt(&self, f: &mut ::core::fmt::Formatter) -> ::core::fmt::Result {
        match self {
            DeclKind::Def(__self_0) =>
                ::core::fmt::Formatter::debug_tuple_field1_finish(f, "Def",
                    &__self_0),
            DeclKind::Import { source_decl: __self_0, import: __self_1 } =>
                ::core::fmt::Formatter::debug_struct_field2_finish(f,
                    "Import", "source_decl", __self_0, "import", &__self_1),
        }
    }
}Debug)]
1031enum DeclKind<'ra> {
1032    /// The name declaration is a definition (possibly without a `DefId`),
1033    /// can be provided by source code or built into the language.
1034    Def(Res),
1035    /// The name declaration is a link to another name declaration.
1036    Import { source_decl: Decl<'ra>, import: Import<'ra> },
1037}
1038
1039impl<'ra> DeclKind<'ra> {
1040    /// Is this an import declaration?
1041    fn is_import(&self) -> bool {
1042        #[allow(non_exhaustive_omitted_patterns)] match *self {
    DeclKind::Import { .. } => true,
    _ => false,
}matches!(*self, DeclKind::Import { .. })
1043    }
1044}
1045
1046#[derive(#[automatically_derived]
impl<'ra> ::core::fmt::Debug for PrivacyError<'ra> {
    #[inline]
    fn fmt(&self, f: &mut ::core::fmt::Formatter) -> ::core::fmt::Result {
        let names: &'static _ =
            &["ident", "decl", "dedup_span", "outermost_res", "parent_scope",
                        "single_nested", "source"];
        let values: &[&dyn ::core::fmt::Debug] =
            &[&self.ident, &self.decl, &self.dedup_span, &self.outermost_res,
                        &self.parent_scope, &self.single_nested, &&self.source];
        ::core::fmt::Formatter::debug_struct_fields_finish(f, "PrivacyError",
            names, values)
    }
}Debug)]
1047struct PrivacyError<'ra> {
1048    ident: Ident,
1049    decl: Decl<'ra>,
1050    dedup_span: Span,
1051    outermost_res: Option<(Res, Ident)>,
1052    parent_scope: ParentScope<'ra>,
1053    /// Is the format `use a::{b,c}`?
1054    single_nested: bool,
1055    source: Option<ast::Expr>,
1056}
1057
1058#[derive(#[automatically_derived]
impl<'a> ::core::fmt::Debug for UseError<'a> {
    #[inline]
    fn fmt(&self, f: &mut ::core::fmt::Formatter) -> ::core::fmt::Result {
        let names: &'static _ =
            &["err", "candidates", "node_id", "instead", "suggestion", "path",
                        "is_call"];
        let values: &[&dyn ::core::fmt::Debug] =
            &[&self.err, &self.candidates, &self.node_id, &self.instead,
                        &self.suggestion, &self.path, &&self.is_call];
        ::core::fmt::Formatter::debug_struct_fields_finish(f, "UseError",
            names, values)
    }
}Debug)]
1059struct UseError<'a> {
1060    err: Diag<'a>,
1061    /// Candidates which user could `use` to access the missing type.
1062    candidates: Vec<ImportSuggestion>,
1063    /// The `NodeId` of the module to place the use-statements in.
1064    node_id: NodeId,
1065    /// Whether the diagnostic should say "instead" (as in `consider importing ... instead`).
1066    instead: bool,
1067    /// Extra free-form suggestion.
1068    suggestion: Option<(Span, &'static str, String, Applicability)>,
1069    /// Path `Segment`s at the place of use that failed. Used for accurate suggestion after telling
1070    /// the user to import the item directly.
1071    path: Vec<Segment>,
1072    /// Whether the expected source is a call
1073    is_call: bool,
1074}
1075
1076#[derive(#[automatically_derived]
impl<'ra> ::core::fmt::Debug for DelayedVisResolutionError<'ra> {
    #[inline]
    fn fmt(&self, f: &mut ::core::fmt::Formatter) -> ::core::fmt::Result {
        ::core::fmt::Formatter::debug_struct_field3_finish(f,
            "DelayedVisResolutionError", "vis", &self.vis, "parent_scope",
            &self.parent_scope, "error", &&self.error)
    }
}Debug)]
1077struct DelayedVisResolutionError<'ra> {
1078    vis: ast::Visibility,
1079    parent_scope: ParentScope<'ra>,
1080    error: VisResolutionError,
1081}
1082
1083#[derive(#[automatically_derived]
impl ::core::clone::Clone for AmbiguityKind {
    #[inline]
    fn clone(&self) -> AmbiguityKind { *self }
}Clone, #[automatically_derived]
impl ::core::marker::Copy for AmbiguityKind { }Copy, #[automatically_derived]
impl ::core::cmp::PartialEq for AmbiguityKind {
    #[inline]
    fn eq(&self, other: &AmbiguityKind) -> bool {
        let __self_discr = ::core::intrinsics::discriminant_value(self);
        let __arg1_discr = ::core::intrinsics::discriminant_value(other);
        __self_discr == __arg1_discr
    }
}PartialEq, #[automatically_derived]
impl ::core::fmt::Debug for AmbiguityKind {
    #[inline]
    fn fmt(&self, f: &mut ::core::fmt::Formatter) -> ::core::fmt::Result {
        ::core::fmt::Formatter::write_str(f,
            match self {
                AmbiguityKind::BuiltinAttr => "BuiltinAttr",
                AmbiguityKind::DeriveHelper => "DeriveHelper",
                AmbiguityKind::MacroRulesVsModularized =>
                    "MacroRulesVsModularized",
                AmbiguityKind::GlobVsOuter => "GlobVsOuter",
                AmbiguityKind::GlobVsGlob => "GlobVsGlob",
                AmbiguityKind::GlobVsExpanded => "GlobVsExpanded",
                AmbiguityKind::MoreExpandedVsOuter => "MoreExpandedVsOuter",
            })
    }
}Debug)]
1084enum AmbiguityKind {
1085    BuiltinAttr,
1086    DeriveHelper,
1087    MacroRulesVsModularized,
1088    GlobVsOuter,
1089    GlobVsGlob,
1090    GlobVsExpanded,
1091    MoreExpandedVsOuter,
1092}
1093
1094impl AmbiguityKind {
1095    fn descr(self) -> &'static str {
1096        match self {
1097            AmbiguityKind::BuiltinAttr => "a name conflict with a builtin attribute",
1098            AmbiguityKind::DeriveHelper => "a name conflict with a derive helper attribute",
1099            AmbiguityKind::MacroRulesVsModularized => {
1100                "a conflict between a `macro_rules` name and a non-`macro_rules` name from another module"
1101            }
1102            AmbiguityKind::GlobVsOuter => {
1103                "a conflict between a name from a glob import and an outer scope during import or macro resolution"
1104            }
1105            AmbiguityKind::GlobVsGlob => "multiple glob imports of a name in the same module",
1106            AmbiguityKind::GlobVsExpanded => {
1107                "a conflict between a name from a glob import and a macro-expanded name in the same module during import or macro resolution"
1108            }
1109            AmbiguityKind::MoreExpandedVsOuter => {
1110                "a conflict between a macro-expanded name and a less macro-expanded name from outer scope during import or macro resolution"
1111            }
1112        }
1113    }
1114}
1115
1116#[derive(#[automatically_derived]
impl ::core::clone::Clone for AmbiguityWarning {
    #[inline]
    fn clone(&self) -> AmbiguityWarning { *self }
}Clone, #[automatically_derived]
impl ::core::marker::Copy for AmbiguityWarning { }Copy, #[automatically_derived]
impl ::core::cmp::PartialEq for AmbiguityWarning {
    #[inline]
    fn eq(&self, other: &AmbiguityWarning) -> bool {
        let __self_discr = ::core::intrinsics::discriminant_value(self);
        let __arg1_discr = ::core::intrinsics::discriminant_value(other);
        __self_discr == __arg1_discr
    }
}PartialEq)]
1117enum AmbiguityWarning {
1118    GlobImport,
1119    PanicImport,
1120}
1121
1122struct AmbiguityError<'ra> {
1123    kind: AmbiguityKind,
1124    ambig_vis: Option<(Visibility, Visibility)>,
1125    ident: Ident,
1126    b1: Decl<'ra>,
1127    b2: Decl<'ra>,
1128    scope1: Scope<'ra>,
1129    scope2: Scope<'ra>,
1130    warning: Option<AmbiguityWarning>,
1131}
1132
1133impl<'ra> DeclData<'ra> {
1134    fn vis(&self) -> Visibility<DefId> {
1135        // Select the maximum visibility if there are multiple ambiguous glob imports.
1136        self.ambiguity_vis_max.get().map(|d| d.vis()).unwrap_or_else(|| self.initial_vis)
1137    }
1138
1139    fn min_vis(&self) -> Visibility<DefId> {
1140        // Select the minimum visibility if there are multiple ambiguous glob imports.
1141        self.ambiguity_vis_min.get().map(|d| d.vis()).unwrap_or_else(|| self.initial_vis)
1142    }
1143
1144    fn res(&self) -> Res {
1145        match self.kind {
1146            DeclKind::Def(res) => res,
1147            DeclKind::Import { source_decl, .. } => source_decl.res(),
1148        }
1149    }
1150
1151    fn import_source(&self) -> Decl<'ra> {
1152        match self.kind {
1153            DeclKind::Import { source_decl, .. } => source_decl,
1154            _ => ::core::panicking::panic("internal error: entered unreachable code")unreachable!(),
1155        }
1156    }
1157
1158    fn descent_to_ambiguity(self: Decl<'ra>) -> Option<(Decl<'ra>, Decl<'ra>)> {
1159        match self.ambiguity.get() {
1160            Some((ambig_binding, _)) => Some((self, ambig_binding)),
1161            None => match self.kind {
1162                DeclKind::Import { source_decl, .. } => source_decl.descent_to_ambiguity(),
1163                _ => None,
1164            },
1165        }
1166    }
1167
1168    fn is_ambiguity_recursive(&self) -> bool {
1169        self.ambiguity.get().is_some()
1170            || match self.kind {
1171                DeclKind::Import { source_decl, .. } => source_decl.is_ambiguity_recursive(),
1172                _ => false,
1173            }
1174    }
1175
1176    fn is_possibly_imported_variant(&self) -> bool {
1177        match self.kind {
1178            DeclKind::Import { source_decl, .. } => source_decl.is_possibly_imported_variant(),
1179            DeclKind::Def(Res::Def(DefKind::Variant | DefKind::Ctor(CtorOf::Variant, ..), _)) => {
1180                true
1181            }
1182            DeclKind::Def(..) => false,
1183        }
1184    }
1185
1186    fn is_extern_crate(&self) -> bool {
1187        match self.kind {
1188            DeclKind::Import { import, .. } => {
1189                #[allow(non_exhaustive_omitted_patterns)] match import.kind {
    ImportKind::ExternCrate { .. } => true,
    _ => false,
}matches!(import.kind, ImportKind::ExternCrate { .. })
1190            }
1191            DeclKind::Def(Res::Def(_, def_id)) => def_id.is_crate_root(),
1192            _ => false,
1193        }
1194    }
1195
1196    fn is_import(&self) -> bool {
1197        #[allow(non_exhaustive_omitted_patterns)] match self.kind {
    DeclKind::Import { .. } => true,
    _ => false,
}matches!(self.kind, DeclKind::Import { .. })
1198    }
1199
1200    /// The binding introduced by `#[macro_export] macro_rules` is a public import, but it might
1201    /// not be perceived as such by users, so treat it as a non-import in some diagnostics.
1202    fn is_import_user_facing(&self) -> bool {
1203        #[allow(non_exhaustive_omitted_patterns)] match self.kind {
    DeclKind::Import { import, .. } if
        !#[allow(non_exhaustive_omitted_patterns)] match import.kind {
                ImportKind::MacroExport => true,
                _ => false,
            } => true,
    _ => false,
}matches!(self.kind, DeclKind::Import { import, .. }
1204            if !matches!(import.kind, ImportKind::MacroExport))
1205    }
1206
1207    fn is_glob_import(&self) -> bool {
1208        match self.kind {
1209            DeclKind::Import { import, .. } => import.is_glob(),
1210            _ => false,
1211        }
1212    }
1213
1214    fn is_assoc_item(&self) -> bool {
1215        #[allow(non_exhaustive_omitted_patterns)] match self.res() {
    Res::Def(DefKind::AssocConst { .. } | DefKind::AssocFn | DefKind::AssocTy,
        _) => true,
    _ => false,
}matches!(
1216            self.res(),
1217            Res::Def(DefKind::AssocConst { .. } | DefKind::AssocFn | DefKind::AssocTy, _)
1218        )
1219    }
1220
1221    fn macro_kinds(&self) -> Option<MacroKinds> {
1222        self.res().macro_kinds()
1223    }
1224
1225    fn reexport_chain(self: Decl<'ra>) -> SmallVec<[Reexport; 2]> {
1226        let mut reexport_chain = SmallVec::new();
1227        let mut next_binding = self;
1228        while let DeclKind::Import { source_decl, import, .. } = next_binding.kind {
1229            reexport_chain.push(import.simplify());
1230            next_binding = source_decl;
1231        }
1232        reexport_chain
1233    }
1234
1235    // Suppose that we resolved macro invocation with `invoc_parent_expansion` to binding `binding`
1236    // at some expansion round `max(invoc, binding)` when they both emerged from macros.
1237    // Then this function returns `true` if `self` may emerge from a macro *after* that
1238    // in some later round and screw up our previously found resolution.
1239    // See more detailed explanation in
1240    // https://github.com/rust-lang/rust/pull/53778#issuecomment-419224049
1241    fn may_appear_after(&self, invoc_parent_expansion: LocalExpnId, decl: Decl<'_>) -> bool {
1242        // self > max(invoc, decl) => !(self <= invoc || self <= decl)
1243        // Expansions are partially ordered, so "may appear after" is an inversion of
1244        // "certainly appears before or simultaneously" and includes unordered cases.
1245        let self_parent_expansion = self.expansion;
1246        let other_parent_expansion = decl.expansion;
1247        let certainly_before_other_or_simultaneously =
1248            other_parent_expansion.is_descendant_of(self_parent_expansion);
1249        let certainly_before_invoc_or_simultaneously =
1250            invoc_parent_expansion.is_descendant_of(self_parent_expansion);
1251        !(certainly_before_other_or_simultaneously || certainly_before_invoc_or_simultaneously)
1252    }
1253
1254    /// Returns whether this declaration may be shadowed or overwritten by something else later.
1255    /// FIXME: this function considers `unexpanded_invocations`, but not `single_imports`, so
1256    /// the declaration may not be as "determined" as we think.
1257    /// FIXME: relationship between this function and similar `NameResolution::determined_decl`
1258    /// is unclear.
1259    fn determined(&self) -> bool {
1260        match &self.kind {
1261            DeclKind::Import { source_decl, import, .. } if import.is_glob() => {
1262                !import.parent_scope.module.has_unexpanded_invocations() && source_decl.determined()
1263            }
1264            _ => true,
1265        }
1266    }
1267}
1268
1269#[derive(#[automatically_derived]
impl<'ra> ::core::fmt::Debug for ExternPreludeEntry<'ra> {
    #[inline]
    fn fmt(&self, f: &mut ::core::fmt::Formatter) -> ::core::fmt::Result {
        ::core::fmt::Formatter::debug_struct_field2_finish(f,
            "ExternPreludeEntry", "item_decl", &self.item_decl, "flag_decl",
            &&self.flag_decl)
    }
}Debug)]
1270struct ExternPreludeEntry<'ra> {
1271    /// Name declaration from an `extern crate` item.
1272    /// The boolean flag is true is `item_decl` is non-redundant, happens either when
1273    /// `flag_decl` is `None`, or when `extern crate` introducing `item_decl` used renaming.
1274    item_decl: Option<(Decl<'ra>, Span, /* introduced by item */ bool)>,
1275    /// Name declaration from an `--extern` flag, lazily populated on first use.
1276    flag_decl: Option<
1277        CacheCell<(
1278            PendingDecl<'ra>,
1279            /* finalized */ bool,
1280            /* open flag (namespaced crate) */ bool,
1281        )>,
1282    >,
1283}
1284
1285impl ExternPreludeEntry<'_> {
1286    fn introduced_by_item(&self) -> bool {
1287        #[allow(non_exhaustive_omitted_patterns)] match self.item_decl {
    Some((.., true)) => true,
    _ => false,
}matches!(self.item_decl, Some((.., true)))
1288    }
1289
1290    fn flag() -> Self {
1291        ExternPreludeEntry {
1292            item_decl: None,
1293            flag_decl: Some(CacheCell::new((PendingDecl::Pending, false, false))),
1294        }
1295    }
1296
1297    fn open_flag() -> Self {
1298        ExternPreludeEntry {
1299            item_decl: None,
1300            flag_decl: Some(CacheCell::new((PendingDecl::Pending, false, true))),
1301        }
1302    }
1303
1304    fn span(&self) -> Span {
1305        match self.item_decl {
1306            Some((_, span, _)) => span,
1307            None => DUMMY_SP,
1308        }
1309    }
1310}
1311
1312struct DeriveData {
1313    resolutions: Vec<DeriveResolution>,
1314    helper_attrs: Vec<(usize, IdentKey, Span)>,
1315    // if this list keeps getting extended, we could use `bitflags`,
1316    // something like what [`rustc_type_ir::flags::TypeFlags`] is doing.
1317    has_derive_copy: bool,
1318    has_derive_ord: bool,
1319}
1320
1321pub struct ResolverOutputs<'tcx> {
1322    pub global_ctxt: ResolverGlobalCtxt,
1323    pub ast_lowering: ResolverAstLowering<'tcx>,
1324}
1325
1326#[derive(#[automatically_derived]
impl ::core::fmt::Debug for DelegationFnSig {
    #[inline]
    fn fmt(&self, f: &mut ::core::fmt::Formatter) -> ::core::fmt::Result {
        ::core::fmt::Formatter::debug_struct_field1_finish(f,
            "DelegationFnSig", "has_self", &&self.has_self)
    }
}Debug)]
1327struct DelegationFnSig {
1328    pub has_self: bool,
1329}
1330
1331/// The main resolver class.
1332///
1333/// This is the visitor that walks the whole crate.
1334pub struct Resolver<'ra, 'tcx> {
1335    tcx: TyCtxt<'tcx>,
1336
1337    /// Item with a given `LocalDefId` was defined during macro expansion with ID `ExpnId`.
1338    expn_that_defined: UnordMap<LocalDefId, ExpnId> = Default::default(),
1339
1340    graph_root: LocalModule<'ra>,
1341
1342    /// Assert that we are in speculative resolution mode.
1343    assert_speculative: bool,
1344
1345    prelude: Option<Module<'ra>> = None,
1346    extern_prelude: FxIndexMap<IdentKey, ExternPreludeEntry<'ra>>,
1347
1348    /// N.B., this is used only for better diagnostics, not name resolution itself.
1349    field_names: LocalDefIdMap<Vec<Ident>> = Default::default(),
1350    field_defaults: LocalDefIdMap<Vec<Symbol>> = Default::default(),
1351
1352    /// Span of the privacy modifier in fields of an item `DefId` accessible with dot syntax.
1353    /// Used for hints during error reporting.
1354    field_visibility_spans: FxHashMap<DefId, Vec<Span>> = default::fx_hash_map(),
1355
1356    /// All imports known to succeed or fail.
1357    determined_imports: Vec<Import<'ra>> = Vec::new(),
1358
1359    /// All non-determined imports.
1360    indeterminate_imports: Vec<Import<'ra>> = Vec::new(),
1361
1362    // Spans for local variables found during pattern resolution.
1363    // Used for suggestions during error reporting.
1364    pat_span_map: NodeMap<Span> = Default::default(),
1365
1366    /// Resolutions for nodes that have a single resolution.
1367    partial_res_map: NodeMap<PartialRes> = Default::default(),
1368    /// An import will be inserted into this map if it has been used.
1369    import_use_map: FxHashMap<Import<'ra>, Used> = default::fx_hash_map(),
1370    /// Lifetime parameters that lowering will have to introduce.
1371    extra_lifetime_params_map: NodeMap<Vec<(Ident, NodeId, MissingLifetimeKind)>> = Default::default(),
1372
1373    /// `CrateNum` resolutions of `extern crate` items.
1374    extern_crate_map: UnordMap<LocalDefId, CrateNum> = Default::default(),
1375    module_children: LocalDefIdMap<Vec<ModChild>> = Default::default(),
1376    ambig_module_children: LocalDefIdMap<Vec<AmbigModChild>> = Default::default(),
1377
1378    /// A map from nodes to anonymous modules.
1379    /// Anonymous modules are pseudo-modules that are implicitly created around items
1380    /// contained within blocks.
1381    ///
1382    /// For example, if we have this:
1383    ///
1384    ///  fn f() {
1385    ///      fn g() {
1386    ///          ...
1387    ///      }
1388    ///  }
1389    ///
1390    /// There will be an anonymous module created around `g` with the ID of the
1391    /// entry block for `f`.
1392    block_map: NodeMap<LocalModule<'ra>> = Default::default(),
1393    /// A fake module that contains no definition and no prelude. Used so that
1394    /// some AST passes can generate identifiers that only resolve to local or
1395    /// lang items.
1396    empty_module: LocalModule<'ra>,
1397    /// All local modules, including blocks.
1398    local_modules: Vec<LocalModule<'ra>>,
1399    /// Eagerly populated map of all local non-block modules.
1400    local_module_map: FxIndexMap<LocalDefId, LocalModule<'ra>>,
1401    /// Lazily populated cache of modules loaded from external crates.
1402    extern_module_map: CacheRefCell<FxIndexMap<DefId, ExternModule<'ra>>>,
1403
1404    /// Maps glob imports to the names of items actually imported.
1405    glob_map: FxIndexMap<LocalDefId, FxIndexSet<Symbol>>,
1406    glob_error: Option<ErrorGuaranteed> = None,
1407    visibilities_for_hashing: Vec<(LocalDefId, Visibility)> = Vec::new(),
1408    used_imports: FxHashSet<NodeId> = default::fx_hash_set(),
1409    maybe_unused_trait_imports: FxIndexSet<LocalDefId>,
1410
1411    /// Privacy errors are delayed until the end in order to deduplicate them.
1412    privacy_errors: Vec<PrivacyError<'ra>> = Vec::new(),
1413    /// Ambiguity errors are delayed for deduplication.
1414    ambiguity_errors: Vec<AmbiguityError<'ra>> = Vec::new(),
1415    issue_145575_hack_applied: bool = false,
1416    /// `use` injections are delayed for better placement and deduplication.
1417    use_injections: Vec<UseError<'tcx>> = Vec::new(),
1418    /// Visibility path resolution failures are delayed until all modules are collected.
1419    delayed_vis_resolution_errors: Vec<DelayedVisResolutionError<'ra>> = Vec::new(),
1420    /// Crate-local macro expanded `macro_export` referred to by a module-relative path.
1421    macro_expanded_macro_export_errors: BTreeSet<(Span, Span)> = BTreeSet::new(),
1422
1423    arenas: &'ra ResolverArenas<'ra>,
1424    dummy_decl: Decl<'ra>,
1425    builtin_type_decls: FxHashMap<Symbol, Decl<'ra>>,
1426    builtin_attr_decls: FxHashMap<Symbol, Decl<'ra>>,
1427    registered_tool_decls: FxHashMap<IdentKey, Decl<'ra>>,
1428    macro_names: FxHashSet<IdentKey> = default::fx_hash_set(),
1429    builtin_macros: FxHashMap<Symbol, SyntaxExtensionKind> = default::fx_hash_map(),
1430    registered_tools: &'tcx RegisteredTools,
1431    macro_use_prelude: FxIndexMap<Symbol, Decl<'ra>>,
1432    /// Eagerly populated map of all local macro definitions.
1433    local_macro_map: FxHashMap<LocalDefId, &'ra Arc<SyntaxExtension>> = default::fx_hash_map(),
1434    /// Lazily populated cache of macro definitions loaded from external crates.
1435    extern_macro_map: CacheRefCell<FxHashMap<DefId, &'ra Arc<SyntaxExtension>>>,
1436    dummy_ext_bang: &'ra Arc<SyntaxExtension>,
1437    dummy_ext_derive: &'ra Arc<SyntaxExtension>,
1438    non_macro_attr: &'ra Arc<SyntaxExtension>,
1439    local_macro_def_scopes: FxHashMap<LocalDefId, LocalModule<'ra>> = default::fx_hash_map(),
1440    ast_transform_scopes: FxHashMap<LocalExpnId, LocalModule<'ra>> = default::fx_hash_map(),
1441    unused_macros: FxIndexMap<LocalDefId, (NodeId, Ident)>,
1442    /// A map from the macro to all its potentially unused arms and the `LocalDefId` of the macro itself.
1443    unused_macro_rules: FxIndexMap<NodeId, (LocalDefId, DenseBitSet<usize>)>,
1444    proc_macro_stubs: FxHashSet<LocalDefId> = default::fx_hash_set(),
1445    /// Traces collected during macro resolution and validated when it's complete.
1446    single_segment_macro_resolutions:
1447        CmRefCell<Vec<(Ident, MacroKind, ParentScope<'ra>, Option<Decl<'ra>>, Option<Span>)>>,
1448    multi_segment_macro_resolutions:
1449        CmRefCell<Vec<(Vec<Segment>, Span, MacroKind, ParentScope<'ra>, Option<Res>, Namespace)>>,
1450    builtin_attrs: Vec<(Ident, ParentScope<'ra>)> = Vec::new(),
1451    /// `derive(Copy)` marks items they are applied to so they are treated specially later.
1452    /// Derive macros cannot modify the item themselves and have to store the markers in the global
1453    /// context, so they attach the markers to derive container IDs using this resolver table.
1454    containers_deriving_copy: FxHashSet<LocalExpnId> = default::fx_hash_set(),
1455    containers_deriving_ord: FxHashSet<LocalExpnId> = default::fx_hash_set(),
1456    /// Parent scopes in which the macros were invoked.
1457    /// FIXME: `derives` are missing in these parent scopes and need to be taken from elsewhere.
1458    invocation_parent_scopes: FxHashMap<LocalExpnId, ParentScope<'ra>> = default::fx_hash_map(),
1459    /// `macro_rules` scopes *produced* by expanding the macro invocations,
1460    /// include all the `macro_rules` items and other invocations generated by them.
1461    output_macro_rules_scopes: FxHashMap<LocalExpnId, MacroRulesScopeRef<'ra>> = default::fx_hash_map(),
1462    /// `macro_rules` scopes produced by `macro_rules` item definitions.
1463    macro_rules_scopes: FxHashMap<LocalDefId, MacroRulesScopeRef<'ra>> = default::fx_hash_map(),
1464    /// Helper attributes that are in scope for the given expansion.
1465    helper_attrs: FxHashMap<LocalExpnId, Vec<(IdentKey, Span, Decl<'ra>)>> = default::fx_hash_map(),
1466    /// Ready or in-progress results of resolving paths inside the `#[derive(...)]` attribute
1467    /// with the given `ExpnId`.
1468    derive_data: FxHashMap<LocalExpnId, DeriveData> = default::fx_hash_map(),
1469
1470    /// Avoid duplicated errors for "name already defined".
1471    name_already_seen: FxHashMap<Symbol, Span> = default::fx_hash_map(),
1472
1473    potentially_unused_imports: Vec<Import<'ra>> = Vec::new(),
1474
1475    potentially_unnecessary_qualifications: Vec<UnnecessaryQualification<'ra>> = Vec::new(),
1476
1477    /// Table for mapping struct IDs into struct constructor IDs,
1478    /// it's not used during normal resolution, only for better error reporting.
1479    /// Also includes of list of each fields visibility
1480    struct_ctors: LocalDefIdMap<StructCtor> = Default::default(),
1481
1482    /// for all the struct
1483    /// it's not used during normal resolution, only for better error reporting.
1484    struct_generics: LocalDefIdMap<Generics> = Default::default(),
1485
1486    lint_buffer: LintBuffer,
1487
1488    next_node_id: NodeId = CRATE_NODE_ID,
1489
1490    /// Preserves per owner data once the owner is finished resolving.
1491    owners: NodeMap<PerOwnerResolverData<'tcx>>,
1492
1493    /// An entry of `owners` that gets taken out and reinserted whenever an owner is handled.
1494    current_owner: PerOwnerResolverData<'tcx>,
1495
1496    disambiguators: LocalDefIdMap<PerParentDisambiguatorState>,
1497
1498    /// Indices of unnamed struct or variant fields with unresolved attributes.
1499    placeholder_field_indices: FxHashMap<NodeId, usize> = default::fx_hash_map(),
1500    /// When collecting definitions from an AST fragment produced by a macro invocation `ExpnId`
1501    /// we know what parent node that fragment should be attached to thanks to this table,
1502    /// and how the `impl Trait` fragments were introduced.
1503    invocation_parents: FxHashMap<LocalExpnId, InvocationParent>,
1504
1505    /// Amount of lifetime parameters for each item in the crate.
1506    item_generics_num_lifetimes: FxHashMap<LocalDefId, usize> = default::fx_hash_map(),
1507    /// Generic args to suggest for required params (e.g. `<'_>`, `<_, _>`), if any.
1508    item_required_generic_args_suggestions: FxHashMap<LocalDefId, String> = default::fx_hash_map(),
1509    delegation_fn_sigs: LocalDefIdMap<DelegationFnSig> = Default::default(),
1510    delegation_infos: FxIndexMap<LocalDefId, DelegationInfo>,
1511
1512    main_def: Option<MainDefinition> = None,
1513    trait_impls: FxIndexMap<DefId, Vec<LocalDefId>>,
1514    /// A list of proc macro LocalDefIds, written out in the order in which
1515    /// they are declared in the static array generated by proc_macro_harness.
1516    proc_macros: Vec<LocalDefId> = Vec::new(),
1517    confused_type_with_std_module: FxIndexMap<Span, Span>,
1518
1519    /// Names of items that were stripped out via cfg with their corresponding cfg meta item.
1520    stripped_cfg_items: Vec<StrippedCfgItem<NodeId>> = Vec::new(),
1521
1522    effective_visibilities: EffectiveVisibilities,
1523    macro_reachable_adts: FxIndexMap<LocalDefId, FxIndexSet<LocalDefId>>,
1524
1525    doc_link_resolutions: FxIndexMap<LocalDefId, DocLinkResMap>,
1526    doc_link_traits_in_scope: FxIndexMap<LocalDefId, Vec<DefId>>,
1527    all_macro_rules: UnordSet<Symbol> = Default::default(),
1528
1529    /// Invocation ids of all glob delegations.
1530    glob_delegation_invoc_ids: FxHashSet<LocalExpnId> = default::fx_hash_set(),
1531    /// Analogue of module `unexpanded_invocations` but in trait impls, excluding glob delegations.
1532    /// Needed because glob delegations wait for all other neighboring macros to expand.
1533    impl_unexpanded_invocations: FxHashMap<LocalDefId, FxHashSet<LocalExpnId>> = default::fx_hash_map(),
1534    /// Simplified analogue of module `resolutions` but in trait impls, excluding glob delegations.
1535    /// Needed because glob delegations exclude explicitly defined names.
1536    impl_binding_keys: FxHashMap<LocalDefId, FxHashSet<BindingKey>> = default::fx_hash_map(),
1537
1538    /// This is the `Span` where an `extern crate foo;` suggestion would be inserted, if `foo`
1539    /// could be a crate that wasn't imported. For diagnostics use only.
1540    current_crate_outer_attr_insert_span: Span,
1541
1542    mods_with_parse_errors: FxHashSet<DefId> = default::fx_hash_set(),
1543
1544    /// Whether `Resolver::register_macros_for_all_crates` has been called once already, as we
1545    /// don't need to run it more than once.
1546    all_crate_macros_already_registered: bool = false,
1547
1548    // Stores pre-expansion and pre-placeholder-fragment-insertion names for `impl Trait` types
1549    // that were encountered during resolution. These names are used to generate item names
1550    // for APITs, so we don't want to leak details of resolution into these names.
1551    impl_trait_names: FxHashMap<NodeId, Symbol> = default::fx_hash_map(),
1552
1553    /// Stores `#[diagnostic::on_unknown]` attributes placed on module declarations.
1554    on_unknown_data: FxHashMap<LocalDefId, OnUnknownData> = default::fx_hash_map(),
1555    features: &'tcx Features,
1556}
1557
1558/// This provides memory for the rest of the crate. The `'ra` lifetime that is
1559/// used by many types in this crate is an abbreviation of `ResolverArenas`.
1560#[derive(#[automatically_derived]
impl<'ra> ::core::default::Default for ResolverArenas<'ra> {
    #[inline]
    fn default() -> ResolverArenas<'ra> {
        ResolverArenas {
            modules: ::core::default::Default::default(),
            imports: ::core::default::Default::default(),
            name_resolutions: ::core::default::Default::default(),
            ast_paths: ::core::default::Default::default(),
            macros: ::core::default::Default::default(),
            dropless: ::core::default::Default::default(),
        }
    }
}Default)]
1561pub struct ResolverArenas<'ra> {
1562    modules: TypedArena<ModuleData<'ra>>,
1563    imports: TypedArena<ImportData<'ra>>,
1564    name_resolutions: TypedArena<CmRefCell<NameResolution<'ra>>>,
1565    ast_paths: TypedArena<ast::Path>,
1566    macros: TypedArena<Arc<SyntaxExtension>>,
1567    dropless: DroplessArena,
1568}
1569
1570impl<'ra> ResolverArenas<'ra> {
1571    fn new_def_decl(
1572        &'ra self,
1573        res: Res,
1574        vis: Visibility<DefId>,
1575        span: Span,
1576        expansion: LocalExpnId,
1577        parent_module: Option<Module<'ra>>,
1578    ) -> Decl<'ra> {
1579        self.alloc_decl(DeclData {
1580            kind: DeclKind::Def(res),
1581            ambiguity: CmCell::new(None),
1582            initial_vis: vis,
1583            ambiguity_vis_max: CmCell::new(None),
1584            ambiguity_vis_min: CmCell::new(None),
1585            span,
1586            expansion,
1587            parent_module,
1588        })
1589    }
1590
1591    fn new_pub_def_decl(&'ra self, res: Res, span: Span, expn_id: LocalExpnId) -> Decl<'ra> {
1592        self.new_def_decl(res, Visibility::Public, span, expn_id, None)
1593    }
1594
1595    fn alloc_decl(&'ra self, data: DeclData<'ra>) -> Decl<'ra> {
1596        Interned::new_unchecked(self.dropless.alloc(data))
1597    }
1598    fn alloc_import(&'ra self, import: ImportData<'ra>) -> Import<'ra> {
1599        Interned::new_unchecked(self.imports.alloc(import))
1600    }
1601    fn alloc_name_resolution(&'ra self, orig_ident_span: Span) -> NameResolutionRef<'ra> {
1602        Interned::new_unchecked(
1603            self.name_resolutions.alloc(CmRefCell::new(NameResolution::new(orig_ident_span))),
1604        )
1605    }
1606    fn alloc_macro_rules_scope(&'ra self, scope: MacroRulesScope<'ra>) -> MacroRulesScopeRef<'ra> {
1607        self.dropless.alloc(CacheCell::new(scope))
1608    }
1609    fn alloc_macro_rules_decl(&'ra self, decl: MacroRulesDecl<'ra>) -> &'ra MacroRulesDecl<'ra> {
1610        self.dropless.alloc(decl)
1611    }
1612    fn alloc_ast_paths(&'ra self, paths: &[ast::Path]) -> &'ra [ast::Path] {
1613        self.ast_paths.alloc_from_iter(paths.iter().cloned())
1614    }
1615    fn alloc_macro(&'ra self, ext: SyntaxExtension) -> &'ra Arc<SyntaxExtension> {
1616        self.macros.alloc(Arc::new(ext))
1617    }
1618    fn alloc_pattern_spans(&'ra self, spans: impl Iterator<Item = Span>) -> &'ra [Span] {
1619        self.dropless.alloc_from_iter(spans)
1620    }
1621}
1622
1623impl<'ra, 'tcx> AsMut<Resolver<'ra, 'tcx>> for Resolver<'ra, 'tcx> {
1624    fn as_mut(&mut self) -> &mut Resolver<'ra, 'tcx> {
1625        self
1626    }
1627}
1628
1629impl<'ra, 'tcx> AsRef<Resolver<'ra, 'tcx>> for Resolver<'ra, 'tcx> {
1630    fn as_ref(&self) -> &Resolver<'ra, 'tcx> {
1631        self
1632    }
1633}
1634
1635impl<'tcx> Resolver<'_, 'tcx> {
1636    /// Only call this in analyses after the resolver has finished.
1637    /// Panics if the node id is currently not in the owner storage,
1638    /// e.g. because it's further up in the current visitor stack.
1639    fn owner_def_id(&self, owner: NodeId) -> LocalDefId {
1640        self.owners[&owner].def_id
1641    }
1642
1643    /// Only call this in analyses after the resolver has finished.
1644    /// Panics if the node id is currently not in the owner storage,
1645    /// e.g. because it's further up in the current visitor stack.
1646    fn child_def_id(&self, owner: NodeId, id: NodeId) -> LocalDefId {
1647        self.owners[&owner].node_id_to_def_id[&id]
1648    }
1649
1650    /// Get the `DefId` of a child of the current owner
1651    fn opt_local_def_id(&self, node: NodeId) -> Option<LocalDefId> {
1652        self.current_owner.node_id_to_def_id.get(&node).copied()
1653    }
1654
1655    /// Get the `DefId` of a child of the current owner
1656    fn local_def_id(&self, node: NodeId) -> LocalDefId {
1657        self.opt_local_def_id(node).unwrap_or_else(|| {
    ::core::panicking::panic_fmt(format_args!("no entry for node id: `{0:?}`",
            node));
}panic!("no entry for node id: `{node:?}`"))
1658    }
1659
1660    /// Adds a definition with a parent definition.
1661    fn create_def(
1662        &mut self,
1663        parent: LocalDefId,
1664        node_id: ast::NodeId,
1665        name: Option<Symbol>,
1666        def_kind: DefKind,
1667        expn_id: ExpnId,
1668        span: Span,
1669        is_owner: bool,
1670    ) -> TyCtxtFeed<'tcx, LocalDefId> {
1671        if !!self.current_owner.node_id_to_def_id.contains_key(&node_id) {
    {
        ::core::panicking::panic_fmt(format_args!("adding a def for node-id {0:?}, name {1:?}, data {2:?} but a previous def exists: {3:?}",
                node_id, name, def_kind,
                self.tcx.definitions_untracked().def_key(self.current_owner.node_id_to_def_id[&node_id])));
    }
};assert!(
1672            !self.current_owner.node_id_to_def_id.contains_key(&node_id),
1673            "adding a def for node-id {:?}, name {:?}, data {:?} but a previous def exists: {:?}",
1674            node_id,
1675            name,
1676            def_kind,
1677            self.tcx
1678                .definitions_untracked()
1679                .def_key(self.current_owner.node_id_to_def_id[&node_id]),
1680        );
1681
1682        let disambiguator = self.disambiguators.get_or_create(parent);
1683
1684        // FIXME: remove `def_span` body, pass in the right spans here and call `tcx.at().create_def()`
1685        let feed = self.tcx.create_def(parent, name, def_kind, None, disambiguator);
1686        let def_id = feed.def_id();
1687
1688        // Create the definition.
1689        if expn_id != ExpnId::root() {
1690            self.expn_that_defined.insert(def_id, expn_id);
1691        }
1692
1693        // A relative span's parent must be an absolute span.
1694        if true {
    {
        match (&span.data_untracked().parent, &None) {
            (left_val, right_val) => {
                if !(*left_val == *right_val) {
                    let kind = ::core::panicking::AssertKind::Eq;
                    ::core::panicking::assert_failed(kind, &*left_val,
                        &*right_val, ::core::option::Option::None);
                }
            }
        }
    };
};debug_assert_eq!(span.data_untracked().parent, None);
1695        let _id = self.tcx.untracked().source_span.push(span);
1696        if true {
    {
        match (&_id, &def_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);
                }
            }
        }
    };
};debug_assert_eq!(_id, def_id);
1697
1698        // Some things for which we allocate `LocalDefId`s don't correspond to
1699        // anything in the AST, so they don't have a `NodeId`. For these cases
1700        // we don't need a mapping from `NodeId` to `LocalDefId`.
1701        if node_id != ast::DUMMY_NODE_ID && !is_owner {
1702            {
    use ::tracing::__macro_support::Callsite as _;
    static __CALLSITE: ::tracing::callsite::DefaultCallsite =
        {
            static META: ::tracing::Metadata<'static> =
                {
                    ::tracing_core::metadata::Metadata::new("event compiler/rustc_resolve/src/lib.rs:1702",
                        "rustc_resolve", ::tracing::Level::DEBUG,
                        ::tracing_core::__macro_support::Option::Some("compiler/rustc_resolve/src/lib.rs"),
                        ::tracing_core::__macro_support::Option::Some(1702u32),
                        ::tracing_core::__macro_support::Option::Some("rustc_resolve"),
                        ::tracing_core::field::FieldSet::new(&["message"],
                            ::tracing_core::callsite::Identifier(&__CALLSITE)),
                        ::tracing::metadata::Kind::EVENT)
                };
            ::tracing::callsite::DefaultCallsite::new(&META)
        };
    let enabled =
        ::tracing::Level::DEBUG <= ::tracing::level_filters::STATIC_MAX_LEVEL
                &&
                ::tracing::Level::DEBUG <=
                    ::tracing::level_filters::LevelFilter::current() &&
            {
                let interest = __CALLSITE.interest();
                !interest.is_never() &&
                    ::tracing::__macro_support::__is_enabled(__CALLSITE.metadata(),
                        interest)
            };
    if enabled {
        (|value_set: ::tracing::field::ValueSet|
                    {
                        let meta = __CALLSITE.metadata();
                        ::tracing::Event::dispatch(meta, &value_set);
                        ;
                    })({
                #[allow(unused_imports)]
                use ::tracing::field::{debug, display, Value};
                let mut iter = __CALLSITE.metadata().fields().iter();
                __CALLSITE.metadata().fields().value_set(&[(&::tracing::__macro_support::Iterator::next(&mut iter).expect("FieldSet corrupted (this is a bug)"),
                                    ::tracing::__macro_support::Option::Some(&format_args!("create_def: def_id_to_node_id[{0:?}] <-> {1:?}",
                                                    def_id, node_id) as &dyn Value))])
            });
    } else { ; }
};debug!("create_def: def_id_to_node_id[{:?}] <-> {:?}", def_id, node_id);
1703            self.current_owner.node_id_to_def_id.insert(node_id, def_id);
1704        }
1705
1706        feed
1707    }
1708
1709    fn item_generics_num_lifetimes(&self, def_id: DefId) -> usize {
1710        if let Some(def_id) = def_id.as_local() {
1711            self.item_generics_num_lifetimes[&def_id]
1712        } else {
1713            self.tcx.generics_of(def_id).own_counts().lifetimes
1714        }
1715    }
1716
1717    fn item_required_generic_args_suggestion(&self, def_id: DefId) -> String {
1718        if let Some(def_id) = def_id.as_local() {
1719            self.item_required_generic_args_suggestions.get(&def_id).cloned().unwrap_or_default()
1720        } else {
1721            let required = self
1722                .tcx
1723                .generics_of(def_id)
1724                .own_params
1725                .iter()
1726                .filter_map(|param| match param.kind {
1727                    ty::GenericParamDefKind::Lifetime => Some("'_"),
1728                    ty::GenericParamDefKind::Type { has_default, .. }
1729                    | ty::GenericParamDefKind::Const { has_default } => {
1730                        if has_default {
1731                            None
1732                        } else {
1733                            Some("_")
1734                        }
1735                    }
1736                })
1737                .collect::<Vec<_>>();
1738
1739            if required.is_empty() { String::new() } else { ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("<{0}>", required.join(", ")))
    })format!("<{}>", required.join(", ")) }
1740        }
1741    }
1742
1743    pub fn tcx(&self) -> TyCtxt<'tcx> {
1744        self.tcx
1745    }
1746
1747    /// This function is very slow, as it iterates over the entire
1748    /// [PerOwnerResolverData::node_id_to_def_id] map for all [Resolver::owners]
1749    /// just to find the [NodeId]
1750    /// that corresponds to the given [LocalDefId]. Only use this in
1751    /// diagnostics code paths. Do not use this during macro expansion,
1752    /// as it will not find any node ids within your current expansion's stack.
1753    fn def_id_to_node_id(&self, def_id: LocalDefId) -> NodeId {
1754        self.owners
1755            .items()
1756            .flat_map(|(_, data)| {
1757                data.node_id_to_def_id
1758                    .items()
1759                    .chain(UnordItems::new([(&data.id, &data.def_id)].into_iter()))
1760            })
1761            .filter(|(_, v)| **v == def_id)
1762            .map(|(k, _)| *k)
1763            .get_only()
1764            .unwrap()
1765    }
1766}
1767
1768impl<'ra, 'tcx> Resolver<'ra, 'tcx> {
1769    pub fn new(
1770        tcx: TyCtxt<'tcx>,
1771        attrs: &[ast::Attribute],
1772        crate_span: Span,
1773        current_crate_outer_attr_insert_span: Span,
1774        arenas: &'ra ResolverArenas<'ra>,
1775    ) -> Resolver<'ra, 'tcx> {
1776        let root_def_id = CRATE_DEF_ID.to_def_id();
1777        let graph_root = LocalModule::new(
1778            None,
1779            ModuleKind::Def(DefKind::Mod, root_def_id, CRATE_NODE_ID, None),
1780            Visibility::Public,
1781            ExpnId::root(),
1782            crate_span,
1783            attr::contains_name(attrs, sym::no_implicit_prelude),
1784            arenas,
1785        );
1786        let local_modules = ::alloc::boxed::box_assume_init_into_vec_unsafe(::alloc::intrinsics::write_box_via_move(::alloc::boxed::Box::new_uninit(),
        [graph_root]))vec![graph_root];
1787        let local_module_map = FxIndexMap::from_iter([(CRATE_DEF_ID, graph_root)]);
1788        let empty_module = LocalModule::new(
1789            None,
1790            ModuleKind::Def(DefKind::Mod, root_def_id, CRATE_NODE_ID, None),
1791            Visibility::Public,
1792            ExpnId::root(),
1793            DUMMY_SP,
1794            true,
1795            arenas,
1796        );
1797
1798        let owner_data = PerOwnerResolverData::new(CRATE_NODE_ID, CRATE_DEF_ID);
1799        let crate_feed = tcx.create_local_crate_def_id(crate_span);
1800
1801        crate_feed.def_kind(DefKind::Mod);
1802        let mut owners = NodeMap::default();
1803        owners.insert(CRATE_NODE_ID, owner_data);
1804
1805        let mut invocation_parents = FxHashMap::default();
1806        invocation_parents.insert(LocalExpnId::ROOT, InvocationParent::ROOT);
1807
1808        let extern_prelude = build_extern_prelude(tcx, attrs);
1809        let registered_tools = tcx.registered_tools(());
1810        let edition = tcx.sess.edition();
1811
1812        let mut resolver = Resolver {
1813            tcx,
1814
1815            // The outermost module has def ID 0; this is not reflected in the
1816            // AST.
1817            graph_root,
1818            assert_speculative: false, // Only set/cleared in Resolver::resolve_imports for now
1819            extern_prelude,
1820
1821            empty_module,
1822            local_modules,
1823            local_module_map,
1824            extern_module_map: Default::default(),
1825
1826            glob_map: Default::default(),
1827            maybe_unused_trait_imports: Default::default(),
1828
1829            arenas,
1830            dummy_decl: arenas.new_pub_def_decl(Res::Err, DUMMY_SP, LocalExpnId::ROOT),
1831            builtin_type_decls: PrimTy::ALL
1832                .iter()
1833                .map(|prim_ty| {
1834                    let res = Res::PrimTy(*prim_ty);
1835                    let decl = arenas.new_pub_def_decl(res, DUMMY_SP, LocalExpnId::ROOT);
1836                    (prim_ty.name(), decl)
1837                })
1838                .collect(),
1839            builtin_attr_decls: BUILTIN_ATTRIBUTES
1840                .iter()
1841                .map(|builtin_attr| {
1842                    let res = Res::NonMacroAttr(NonMacroAttrKind::Builtin(*builtin_attr));
1843                    let decl = arenas.new_pub_def_decl(res, DUMMY_SP, LocalExpnId::ROOT);
1844                    (*builtin_attr, decl)
1845                })
1846                .collect(),
1847            registered_tool_decls: registered_tools
1848                .iter()
1849                .map(|&ident| {
1850                    let res = Res::ToolMod;
1851                    let decl = arenas.new_pub_def_decl(res, ident.span, LocalExpnId::ROOT);
1852                    (IdentKey::new(ident), decl)
1853                })
1854                .collect(),
1855            registered_tools,
1856            macro_use_prelude: Default::default(),
1857            extern_macro_map: Default::default(),
1858            dummy_ext_bang: arenas.alloc_macro(SyntaxExtension::dummy_bang(edition)),
1859            dummy_ext_derive: arenas.alloc_macro(SyntaxExtension::dummy_derive(edition)),
1860            non_macro_attr: arenas.alloc_macro(SyntaxExtension::non_macro_attr(edition)),
1861            unused_macros: Default::default(),
1862            unused_macro_rules: Default::default(),
1863            single_segment_macro_resolutions: Default::default(),
1864            multi_segment_macro_resolutions: Default::default(),
1865            lint_buffer: LintBuffer::default(),
1866            owners,
1867            current_owner: PerOwnerResolverData::new(DUMMY_NODE_ID, CRATE_DEF_ID),
1868            invocation_parents,
1869            trait_impls: Default::default(),
1870            confused_type_with_std_module: Default::default(),
1871            stripped_cfg_items: Default::default(),
1872            effective_visibilities: Default::default(),
1873            macro_reachable_adts: Default::default(),
1874            doc_link_resolutions: Default::default(),
1875            doc_link_traits_in_scope: Default::default(),
1876            current_crate_outer_attr_insert_span,
1877            disambiguators: Default::default(),
1878            delegation_infos: Default::default(),
1879            features: tcx.features(),
1880            ..
1881        };
1882
1883        if let Some(directive) = OnUnknownData::from_attrs(&resolver, attrs) {
1884            resolver.on_unknown_data.insert(CRATE_DEF_ID, directive);
1885        }
1886
1887        let root_parent_scope = ParentScope::module(graph_root, resolver.arenas);
1888        resolver.invocation_parent_scopes.insert(LocalExpnId::ROOT, root_parent_scope);
1889        resolver.feed_visibility(crate_feed, Visibility::Public);
1890
1891        resolver
1892    }
1893
1894    fn new_local_module(
1895        &mut self,
1896        parent: Option<LocalModule<'ra>>,
1897        kind: ModuleKind,
1898        expn_id: ExpnId,
1899        span: Span,
1900        no_implicit_prelude: bool,
1901    ) -> LocalModule<'ra> {
1902        let vis =
1903            kind.opt_def_id().map_or(Visibility::Public, |def_id| self.tcx.visibility(def_id));
1904        let module =
1905            LocalModule::new(parent, kind, vis, expn_id, span, no_implicit_prelude, self.arenas);
1906        self.local_modules.push(module);
1907        if let Some(def_id) = module.opt_def_id() {
1908            self.local_module_map.insert(def_id.expect_local(), module);
1909        }
1910        module
1911    }
1912
1913    fn new_extern_module(
1914        &self,
1915        parent: Option<ExternModule<'ra>>,
1916        kind: ModuleKind,
1917        expn_id: ExpnId,
1918        span: Span,
1919        no_implicit_prelude: bool,
1920    ) -> ExternModule<'ra> {
1921        let def_id = kind.def_id();
1922        let module = ExternModule::new(
1923            parent,
1924            kind,
1925            self.tcx.visibility(def_id),
1926            expn_id,
1927            span,
1928            no_implicit_prelude,
1929            self.arenas,
1930        );
1931        self.extern_module_map.borrow_mut().insert(def_id, module);
1932        module
1933    }
1934
1935    fn next_node_id(&mut self) -> NodeId {
1936        let start = self.next_node_id;
1937        let next = start.as_u32().checked_add(1).expect("input too large; ran out of NodeIds");
1938        self.next_node_id = ast::NodeId::from_u32(next);
1939        start
1940    }
1941
1942    fn next_node_ids(&mut self, count: usize) -> std::ops::Range<NodeId> {
1943        let start = self.next_node_id;
1944        let end = start.as_usize().checked_add(count).expect("input too large; ran out of NodeIds");
1945        self.next_node_id = ast::NodeId::from_usize(end);
1946        start..self.next_node_id
1947    }
1948
1949    pub fn lint_buffer(&mut self) -> &mut LintBuffer {
1950        &mut self.lint_buffer
1951    }
1952
1953    pub fn arenas() -> ResolverArenas<'ra> {
1954        Default::default()
1955    }
1956
1957    fn feed_visibility(&mut self, feed: TyCtxtFeed<'tcx, LocalDefId>, vis: Visibility) {
1958        feed.visibility(vis.to_def_id());
1959        self.visibilities_for_hashing.push((feed.def_id(), vis));
1960    }
1961
1962    pub fn into_outputs(self) -> ResolverOutputs<'tcx> {
1963        let proc_macros = self.proc_macros;
1964        let expn_that_defined = self.expn_that_defined;
1965        let extern_crate_map = self.extern_crate_map;
1966        let maybe_unused_trait_imports = self.maybe_unused_trait_imports;
1967        let glob_map = self.glob_map;
1968        let main_def = self.main_def;
1969        let confused_type_with_std_module = self.confused_type_with_std_module;
1970        let effective_visibilities = self.effective_visibilities;
1971
1972        let stripped_cfg_items = self
1973            .stripped_cfg_items
1974            .into_iter()
1975            .filter_map(|item| {
1976                let parent_scope = self.owners.get(&item.parent_scope)?.def_id.to_def_id();
1977                Some(StrippedCfgItem { parent_scope, ident: item.ident, cfg: item.cfg })
1978            })
1979            .collect();
1980        let disambiguators = self
1981            .disambiguators
1982            .into_items()
1983            .map(|(def_id, disamb)| (def_id, Steal::new(disamb)))
1984            .collect();
1985
1986        let global_ctxt = ResolverGlobalCtxt {
1987            expn_that_defined,
1988            visibilities_for_hashing: self.visibilities_for_hashing,
1989            effective_visibilities,
1990            macro_reachable_adts: self.macro_reachable_adts,
1991            extern_crate_map,
1992            module_children: self.module_children,
1993            ambig_module_children: self.ambig_module_children,
1994            glob_map,
1995            maybe_unused_trait_imports,
1996            main_def,
1997            trait_impls: self.trait_impls,
1998            proc_macros,
1999            confused_type_with_std_module,
2000            doc_link_resolutions: self.doc_link_resolutions,
2001            doc_link_traits_in_scope: self.doc_link_traits_in_scope,
2002            all_macro_rules: self.all_macro_rules,
2003            stripped_cfg_items,
2004            delegation_infos: self.delegation_infos,
2005        };
2006        let ast_lowering = ty::ResolverAstLowering {
2007            partial_res_map: self.partial_res_map,
2008            extra_lifetime_params_map: self.extra_lifetime_params_map,
2009            next_node_id: self.next_node_id,
2010            owners: self.owners,
2011            lint_buffer: Steal::new(self.lint_buffer),
2012            disambiguators,
2013        };
2014        ResolverOutputs { global_ctxt, ast_lowering }
2015    }
2016
2017    fn cstore(&self) -> FreezeReadGuard<'_, CStore> {
2018        CStore::from_tcx(self.tcx)
2019    }
2020
2021    fn cstore_mut(&self) -> FreezeWriteGuard<'_, CStore> {
2022        CStore::from_tcx_mut(self.tcx)
2023    }
2024
2025    fn dummy_ext(&self, macro_kind: MacroKind) -> &'ra Arc<SyntaxExtension> {
2026        match macro_kind {
2027            MacroKind::Bang => self.dummy_ext_bang,
2028            MacroKind::Derive => self.dummy_ext_derive,
2029            MacroKind::Attr => self.non_macro_attr,
2030        }
2031    }
2032
2033    /// Returns a conditionally mutable resolver.
2034    ///
2035    /// Currently only dependent on `assert_speculative`, if `assert_speculative` is false,
2036    /// the resolver will allow mutation; otherwise, it will be immutable.
2037    fn cm(&mut self) -> CmResolver<'_, 'ra, 'tcx> {
2038        CmResolver::new(self, !self.assert_speculative)
2039    }
2040
2041    /// Runs the function on each namespace.
2042    fn per_ns<F: FnMut(&mut Self, Namespace)>(&mut self, mut f: F) {
2043        f(self, TypeNS);
2044        f(self, ValueNS);
2045        f(self, MacroNS);
2046    }
2047
2048    fn per_ns_cm<'r, F: FnMut(CmResolver<'_, 'ra, 'tcx>, Namespace)>(
2049        mut self: CmResolver<'r, 'ra, 'tcx>,
2050        mut f: F,
2051    ) {
2052        f(self.reborrow(), TypeNS);
2053        f(self.reborrow(), ValueNS);
2054        f(self, MacroNS);
2055    }
2056
2057    fn is_builtin_macro(&self, res: Res) -> bool {
2058        self.get_macro(res).is_some_and(|ext| ext.builtin_name.is_some())
2059    }
2060
2061    fn is_specific_builtin_macro(&self, res: Res, symbol: Symbol) -> bool {
2062        self.get_macro(res).is_some_and(|ext| ext.builtin_name == Some(symbol))
2063    }
2064
2065    fn macro_def(&self, mut ctxt: SyntaxContext) -> DefId {
2066        loop {
2067            match ctxt.outer_expn_data().macro_def_id {
2068                Some(def_id) => return def_id,
2069                None => ctxt.remove_mark(),
2070            };
2071        }
2072    }
2073
2074    /// Entry point to crate resolution.
2075    pub fn resolve_crate(&mut self, krate: &Crate) {
2076        self.tcx.sess.time("resolve_crate", || {
2077            self.tcx.sess.time("finalize_imports", || self.finalize_imports());
2078            let exported_ambiguities = self.tcx.sess.time("compute_effective_visibilities", || {
2079                EffectiveVisibilitiesVisitor::compute_effective_visibilities(self, krate)
2080            });
2081            self.tcx.sess.time("lint_reexports", || self.lint_reexports(exported_ambiguities));
2082            self.tcx
2083                .sess
2084                .time("finalize_macro_resolutions", || self.finalize_macro_resolutions(krate));
2085            let use_items =
2086                self.tcx.sess.time("late_resolve_crate", || self.late_resolve_crate(krate));
2087            self.tcx.sess.time("resolve_main", || self.resolve_main());
2088            self.tcx.sess.time("resolve_check_unused", || self.check_unused(use_items));
2089            self.tcx.sess.time("resolve_report_errors", || self.report_errors(krate));
2090            self.tcx
2091                .sess
2092                .time("resolve_postprocess", || self.cstore_mut().postprocess(self.tcx, krate));
2093        });
2094
2095        // Don't mutate the cstore or stable crate id map from here on.
2096        self.tcx.untracked().freeze_cstore();
2097    }
2098
2099    fn traits_in_scope(
2100        &mut self,
2101        current_trait: Option<Module<'ra>>,
2102        parent_scope: &ParentScope<'ra>,
2103        sp: Span,
2104        assoc_item: Option<(Symbol, Namespace)>,
2105    ) -> &'tcx [TraitCandidate<'tcx>] {
2106        let mut found_traits = Vec::new();
2107
2108        if let Some(module) = current_trait {
2109            if self.trait_may_have_item(Some(module), assoc_item) {
2110                let def_id = module.def_id();
2111                found_traits.push(TraitCandidate {
2112                    def_id,
2113                    import_ids: &[],
2114                    lint_ambiguous: false,
2115                });
2116            }
2117        }
2118
2119        let scope_set = ScopeSet::All(TypeNS);
2120        let ctxt = Macros20NormalizedSyntaxContext::new(sp.ctxt());
2121        self.cm().visit_scopes(scope_set, parent_scope, ctxt, sp, None, |mut this, scope, _, _| {
2122            match scope {
2123                Scope::ModuleNonGlobs(module, _) => {
2124                    this.get_mut().traits_in_module(module, assoc_item, &mut found_traits);
2125                }
2126                Scope::ModuleGlobs(..) => {
2127                    // Already handled in `ModuleNonGlobs` (but see #144993).
2128                }
2129                Scope::StdLibPrelude => {
2130                    if let Some(module) = this.prelude {
2131                        this.get_mut().traits_in_module(module, assoc_item, &mut found_traits);
2132                    }
2133                }
2134                Scope::ExternPreludeItems
2135                | Scope::ExternPreludeFlags
2136                | Scope::ToolPrelude
2137                | Scope::BuiltinTypes => {}
2138                _ => ::core::panicking::panic("internal error: entered unreachable code")unreachable!(),
2139            }
2140            ControlFlow::<()>::Continue(())
2141        });
2142
2143        self.tcx.hir_arena.alloc_slice(&found_traits)
2144    }
2145
2146    fn traits_in_module(
2147        &mut self,
2148        module: Module<'ra>,
2149        assoc_item: Option<(Symbol, Namespace)>,
2150        found_traits: &mut Vec<TraitCandidate<'tcx>>,
2151    ) {
2152        module.ensure_traits(self);
2153        let traits = module.traits.borrow();
2154        for &(trait_name, trait_binding, trait_module, lint_ambiguous) in
2155            traits.as_ref().unwrap().iter()
2156        {
2157            if self.trait_may_have_item(trait_module, assoc_item) {
2158                let def_id = trait_binding.res().def_id();
2159                let import_ids = self.find_transitive_imports(&trait_binding.kind, trait_name);
2160                found_traits.push(TraitCandidate { def_id, import_ids, lint_ambiguous });
2161            }
2162        }
2163    }
2164
2165    // List of traits in scope is pruned on best effort basis. We reject traits not having an
2166    // associated item with the given name and namespace (if specified). This is a conservative
2167    // optimization, proper hygienic type-based resolution of associated items is done in typeck.
2168    // We don't reject trait aliases (`trait_module == None`) because we don't have access to their
2169    // associated items.
2170    fn trait_may_have_item(
2171        &self,
2172        trait_module: Option<Module<'ra>>,
2173        assoc_item: Option<(Symbol, Namespace)>,
2174    ) -> bool {
2175        match (trait_module, assoc_item) {
2176            (Some(trait_module), Some((name, ns))) => self
2177                .resolutions(trait_module)
2178                .borrow()
2179                .iter()
2180                .any(|(key, _name_resolution)| key.ns == ns && key.ident.name == name),
2181            _ => true,
2182        }
2183    }
2184
2185    fn find_transitive_imports(
2186        &mut self,
2187        mut kind: &DeclKind<'_>,
2188        trait_name: Symbol,
2189    ) -> &'tcx [LocalDefId] {
2190        let mut import_ids: SmallVec<[LocalDefId; 1]> = ::smallvec::SmallVec::new()smallvec![];
2191        while let DeclKind::Import { import, source_decl, .. } = kind {
2192            if let Some(def_id) = import.def_id() {
2193                self.maybe_unused_trait_imports.insert(def_id);
2194                import_ids.push(def_id);
2195            }
2196            self.add_to_glob_map(*import, trait_name);
2197            kind = &source_decl.kind;
2198        }
2199
2200        self.tcx.hir_arena.alloc_slice(&import_ids)
2201    }
2202
2203    fn resolutions(&self, module: Module<'ra>) -> &'ra Resolutions<'ra> {
2204        if module.populate_on_access.get() {
2205            module.populate_on_access.set(false);
2206            self.build_reduced_graph_external(module.expect_extern());
2207        }
2208        &module.0.0.lazy_resolutions
2209    }
2210
2211    fn resolution(
2212        &self,
2213        module: Module<'ra>,
2214        key: BindingKey,
2215    ) -> Option<Ref<'ra, NameResolution<'ra>>> {
2216        self.resolutions(module).borrow().get(&key).map(|resolution| resolution.0.borrow())
2217    }
2218
2219    fn resolution_or_default(
2220        &self,
2221        module: Module<'ra>,
2222        key: BindingKey,
2223        orig_ident_span: Span,
2224    ) -> NameResolutionRef<'ra> {
2225        *self
2226            .resolutions(module)
2227            .borrow_mut_unchecked()
2228            .entry(key)
2229            .or_insert_with(|| self.arenas.alloc_name_resolution(orig_ident_span))
2230    }
2231
2232    /// Test if AmbiguityError ambi is any identical to any one inside ambiguity_errors
2233    fn matches_previous_ambiguity_error(&self, ambi: &AmbiguityError<'_>) -> bool {
2234        for ambiguity_error in &self.ambiguity_errors {
2235            // if the span location and ident as well as its span are the same
2236            if ambiguity_error.kind == ambi.kind
2237                && ambiguity_error.ident == ambi.ident
2238                && ambiguity_error.ident.span == ambi.ident.span
2239                && ambiguity_error.b1.span == ambi.b1.span
2240                && ambiguity_error.b2.span == ambi.b2.span
2241            {
2242                return true;
2243            }
2244        }
2245        false
2246    }
2247
2248    fn record_use(&mut self, ident: Ident, used_decl: Decl<'ra>, used: Used) {
2249        if let Some((b2, warning)) = used_decl.ambiguity.get() {
2250            let ambiguity_error = AmbiguityError {
2251                kind: AmbiguityKind::GlobVsGlob,
2252                ambig_vis: None,
2253                ident,
2254                b1: used_decl,
2255                b2,
2256                scope1: Scope::ModuleGlobs(used_decl.parent_module.unwrap(), None),
2257                scope2: Scope::ModuleGlobs(b2.parent_module.unwrap(), None),
2258                warning: if warning { Some(AmbiguityWarning::GlobImport) } else { None },
2259            };
2260            if !self.matches_previous_ambiguity_error(&ambiguity_error) {
2261                // avoid duplicated span information to be emit out
2262                self.ambiguity_errors.push(ambiguity_error);
2263            }
2264        }
2265        if let DeclKind::Import { import, source_decl } = used_decl.kind {
2266            if let ImportKind::MacroUse { warn_private: true } = import.kind {
2267                // Do not report the lint if the macro name resolves in stdlib prelude
2268                // even without the problematic `macro_use` import.
2269                let found_in_stdlib_prelude = self.prelude.is_some_and(|prelude| {
2270                    let empty_module = self.empty_module;
2271                    let arenas = self.arenas;
2272                    self.cm()
2273                        .maybe_resolve_ident_in_module(
2274                            ModuleOrUniformRoot::Module(prelude),
2275                            ident,
2276                            MacroNS,
2277                            &ParentScope::module(empty_module, arenas),
2278                            None,
2279                        )
2280                        .is_ok()
2281                });
2282                if !found_in_stdlib_prelude {
2283                    self.lint_buffer().buffer_lint(
2284                        PRIVATE_MACRO_USE,
2285                        import.root_id,
2286                        ident.span,
2287                        diagnostics::MacroIsPrivate { ident },
2288                    );
2289                }
2290            }
2291            // Avoid marking `extern crate` items that refer to a name from extern prelude,
2292            // but not introduce it, as used if they are accessed from lexical scope.
2293            if used == Used::Scope
2294                && let Some(entry) = self.extern_prelude.get(&IdentKey::new(ident))
2295                && let Some((item_decl, _, false)) = entry.item_decl
2296                && item_decl == used_decl
2297            {
2298                return;
2299            }
2300            let old_used = self.import_use_map.entry(import).or_insert(used);
2301            if *old_used < used {
2302                *old_used = used;
2303            }
2304            if let Some(id) = import.id() {
2305                self.used_imports.insert(id);
2306            }
2307            self.add_to_glob_map(import, ident.name);
2308            self.record_use(ident, source_decl, Used::Other);
2309        }
2310    }
2311
2312    #[inline]
2313    fn add_to_glob_map(&mut self, import: Import<'_>, name: Symbol) {
2314        if let ImportKind::Glob { def_id, .. } = import.kind {
2315            self.glob_map.entry(def_id).or_default().insert(name);
2316        }
2317    }
2318
2319    fn resolve_crate_root(&self, ident: Ident) -> Module<'ra> {
2320        {
    use ::tracing::__macro_support::Callsite as _;
    static __CALLSITE: ::tracing::callsite::DefaultCallsite =
        {
            static META: ::tracing::Metadata<'static> =
                {
                    ::tracing_core::metadata::Metadata::new("event compiler/rustc_resolve/src/lib.rs:2320",
                        "rustc_resolve", ::tracing::Level::DEBUG,
                        ::tracing_core::__macro_support::Option::Some("compiler/rustc_resolve/src/lib.rs"),
                        ::tracing_core::__macro_support::Option::Some(2320u32),
                        ::tracing_core::__macro_support::Option::Some("rustc_resolve"),
                        ::tracing_core::field::FieldSet::new(&["message"],
                            ::tracing_core::callsite::Identifier(&__CALLSITE)),
                        ::tracing::metadata::Kind::EVENT)
                };
            ::tracing::callsite::DefaultCallsite::new(&META)
        };
    let enabled =
        ::tracing::Level::DEBUG <= ::tracing::level_filters::STATIC_MAX_LEVEL
                &&
                ::tracing::Level::DEBUG <=
                    ::tracing::level_filters::LevelFilter::current() &&
            {
                let interest = __CALLSITE.interest();
                !interest.is_never() &&
                    ::tracing::__macro_support::__is_enabled(__CALLSITE.metadata(),
                        interest)
            };
    if enabled {
        (|value_set: ::tracing::field::ValueSet|
                    {
                        let meta = __CALLSITE.metadata();
                        ::tracing::Event::dispatch(meta, &value_set);
                        ;
                    })({
                #[allow(unused_imports)]
                use ::tracing::field::{debug, display, Value};
                let mut iter = __CALLSITE.metadata().fields().iter();
                __CALLSITE.metadata().fields().value_set(&[(&::tracing::__macro_support::Iterator::next(&mut iter).expect("FieldSet corrupted (this is a bug)"),
                                    ::tracing::__macro_support::Option::Some(&format_args!("resolve_crate_root({0:?})",
                                                    ident) as &dyn Value))])
            });
    } else { ; }
};debug!("resolve_crate_root({:?})", ident);
2321        let mut ctxt = ident.span.ctxt();
2322        let mark = if ident.name == kw::DollarCrate {
2323            // When resolving `$crate` from a `macro_rules!` invoked in a `macro`,
2324            // we don't want to pretend that the `macro_rules!` definition is in the `macro`
2325            // as described in `SyntaxContext::apply_mark`, so we ignore prepended opaque marks.
2326            // FIXME: This is only a guess and it doesn't work correctly for `macro_rules!`
2327            // definitions actually produced by `macro` and `macro` definitions produced by
2328            // `macro_rules!`, but at least such configurations are not stable yet.
2329            ctxt = ctxt.normalize_to_macro_rules();
2330            {
    use ::tracing::__macro_support::Callsite as _;
    static __CALLSITE: ::tracing::callsite::DefaultCallsite =
        {
            static META: ::tracing::Metadata<'static> =
                {
                    ::tracing_core::metadata::Metadata::new("event compiler/rustc_resolve/src/lib.rs:2330",
                        "rustc_resolve", ::tracing::Level::DEBUG,
                        ::tracing_core::__macro_support::Option::Some("compiler/rustc_resolve/src/lib.rs"),
                        ::tracing_core::__macro_support::Option::Some(2330u32),
                        ::tracing_core::__macro_support::Option::Some("rustc_resolve"),
                        ::tracing_core::field::FieldSet::new(&["message"],
                            ::tracing_core::callsite::Identifier(&__CALLSITE)),
                        ::tracing::metadata::Kind::EVENT)
                };
            ::tracing::callsite::DefaultCallsite::new(&META)
        };
    let enabled =
        ::tracing::Level::DEBUG <= ::tracing::level_filters::STATIC_MAX_LEVEL
                &&
                ::tracing::Level::DEBUG <=
                    ::tracing::level_filters::LevelFilter::current() &&
            {
                let interest = __CALLSITE.interest();
                !interest.is_never() &&
                    ::tracing::__macro_support::__is_enabled(__CALLSITE.metadata(),
                        interest)
            };
    if enabled {
        (|value_set: ::tracing::field::ValueSet|
                    {
                        let meta = __CALLSITE.metadata();
                        ::tracing::Event::dispatch(meta, &value_set);
                        ;
                    })({
                #[allow(unused_imports)]
                use ::tracing::field::{debug, display, Value};
                let mut iter = __CALLSITE.metadata().fields().iter();
                __CALLSITE.metadata().fields().value_set(&[(&::tracing::__macro_support::Iterator::next(&mut iter).expect("FieldSet corrupted (this is a bug)"),
                                    ::tracing::__macro_support::Option::Some(&format_args!("resolve_crate_root: marks={0:?}",
                                                    ctxt.marks().into_iter().map(|(i, t)|
                                                                (i.expn_data(), t)).collect::<Vec<_>>()) as &dyn Value))])
            });
    } else { ; }
};debug!(
2331                "resolve_crate_root: marks={:?}",
2332                ctxt.marks().into_iter().map(|(i, t)| (i.expn_data(), t)).collect::<Vec<_>>()
2333            );
2334            let mut iter = ctxt.marks().into_iter().rev().peekable();
2335            let mut result = None;
2336            // Find the last opaque mark from the end if it exists.
2337            while let Some(&(mark, transparency)) = iter.peek() {
2338                if transparency == Transparency::Opaque {
2339                    result = Some(mark);
2340                    iter.next();
2341                } else {
2342                    break;
2343                }
2344            }
2345            {
    use ::tracing::__macro_support::Callsite as _;
    static __CALLSITE: ::tracing::callsite::DefaultCallsite =
        {
            static META: ::tracing::Metadata<'static> =
                {
                    ::tracing_core::metadata::Metadata::new("event compiler/rustc_resolve/src/lib.rs:2345",
                        "rustc_resolve", ::tracing::Level::DEBUG,
                        ::tracing_core::__macro_support::Option::Some("compiler/rustc_resolve/src/lib.rs"),
                        ::tracing_core::__macro_support::Option::Some(2345u32),
                        ::tracing_core::__macro_support::Option::Some("rustc_resolve"),
                        ::tracing_core::field::FieldSet::new(&["message"],
                            ::tracing_core::callsite::Identifier(&__CALLSITE)),
                        ::tracing::metadata::Kind::EVENT)
                };
            ::tracing::callsite::DefaultCallsite::new(&META)
        };
    let enabled =
        ::tracing::Level::DEBUG <= ::tracing::level_filters::STATIC_MAX_LEVEL
                &&
                ::tracing::Level::DEBUG <=
                    ::tracing::level_filters::LevelFilter::current() &&
            {
                let interest = __CALLSITE.interest();
                !interest.is_never() &&
                    ::tracing::__macro_support::__is_enabled(__CALLSITE.metadata(),
                        interest)
            };
    if enabled {
        (|value_set: ::tracing::field::ValueSet|
                    {
                        let meta = __CALLSITE.metadata();
                        ::tracing::Event::dispatch(meta, &value_set);
                        ;
                    })({
                #[allow(unused_imports)]
                use ::tracing::field::{debug, display, Value};
                let mut iter = __CALLSITE.metadata().fields().iter();
                __CALLSITE.metadata().fields().value_set(&[(&::tracing::__macro_support::Iterator::next(&mut iter).expect("FieldSet corrupted (this is a bug)"),
                                    ::tracing::__macro_support::Option::Some(&format_args!("resolve_crate_root: found opaque mark {0:?} {1:?}",
                                                    result, result.map(|r| r.expn_data())) as &dyn Value))])
            });
    } else { ; }
};debug!(
2346                "resolve_crate_root: found opaque mark {:?} {:?}",
2347                result,
2348                result.map(|r| r.expn_data())
2349            );
2350            // Then find the last semi-opaque mark from the end if it exists.
2351            for (mark, transparency) in iter {
2352                if transparency == Transparency::SemiOpaque {
2353                    result = Some(mark);
2354                } else {
2355                    break;
2356                }
2357            }
2358            {
    use ::tracing::__macro_support::Callsite as _;
    static __CALLSITE: ::tracing::callsite::DefaultCallsite =
        {
            static META: ::tracing::Metadata<'static> =
                {
                    ::tracing_core::metadata::Metadata::new("event compiler/rustc_resolve/src/lib.rs:2358",
                        "rustc_resolve", ::tracing::Level::DEBUG,
                        ::tracing_core::__macro_support::Option::Some("compiler/rustc_resolve/src/lib.rs"),
                        ::tracing_core::__macro_support::Option::Some(2358u32),
                        ::tracing_core::__macro_support::Option::Some("rustc_resolve"),
                        ::tracing_core::field::FieldSet::new(&["message"],
                            ::tracing_core::callsite::Identifier(&__CALLSITE)),
                        ::tracing::metadata::Kind::EVENT)
                };
            ::tracing::callsite::DefaultCallsite::new(&META)
        };
    let enabled =
        ::tracing::Level::DEBUG <= ::tracing::level_filters::STATIC_MAX_LEVEL
                &&
                ::tracing::Level::DEBUG <=
                    ::tracing::level_filters::LevelFilter::current() &&
            {
                let interest = __CALLSITE.interest();
                !interest.is_never() &&
                    ::tracing::__macro_support::__is_enabled(__CALLSITE.metadata(),
                        interest)
            };
    if enabled {
        (|value_set: ::tracing::field::ValueSet|
                    {
                        let meta = __CALLSITE.metadata();
                        ::tracing::Event::dispatch(meta, &value_set);
                        ;
                    })({
                #[allow(unused_imports)]
                use ::tracing::field::{debug, display, Value};
                let mut iter = __CALLSITE.metadata().fields().iter();
                __CALLSITE.metadata().fields().value_set(&[(&::tracing::__macro_support::Iterator::next(&mut iter).expect("FieldSet corrupted (this is a bug)"),
                                    ::tracing::__macro_support::Option::Some(&format_args!("resolve_crate_root: found semi-opaque mark {0:?} {1:?}",
                                                    result, result.map(|r| r.expn_data())) as &dyn Value))])
            });
    } else { ; }
};debug!(
2359                "resolve_crate_root: found semi-opaque mark {:?} {:?}",
2360                result,
2361                result.map(|r| r.expn_data())
2362            );
2363            result
2364        } else {
2365            {
    use ::tracing::__macro_support::Callsite as _;
    static __CALLSITE: ::tracing::callsite::DefaultCallsite =
        {
            static META: ::tracing::Metadata<'static> =
                {
                    ::tracing_core::metadata::Metadata::new("event compiler/rustc_resolve/src/lib.rs:2365",
                        "rustc_resolve", ::tracing::Level::DEBUG,
                        ::tracing_core::__macro_support::Option::Some("compiler/rustc_resolve/src/lib.rs"),
                        ::tracing_core::__macro_support::Option::Some(2365u32),
                        ::tracing_core::__macro_support::Option::Some("rustc_resolve"),
                        ::tracing_core::field::FieldSet::new(&["message"],
                            ::tracing_core::callsite::Identifier(&__CALLSITE)),
                        ::tracing::metadata::Kind::EVENT)
                };
            ::tracing::callsite::DefaultCallsite::new(&META)
        };
    let enabled =
        ::tracing::Level::DEBUG <= ::tracing::level_filters::STATIC_MAX_LEVEL
                &&
                ::tracing::Level::DEBUG <=
                    ::tracing::level_filters::LevelFilter::current() &&
            {
                let interest = __CALLSITE.interest();
                !interest.is_never() &&
                    ::tracing::__macro_support::__is_enabled(__CALLSITE.metadata(),
                        interest)
            };
    if enabled {
        (|value_set: ::tracing::field::ValueSet|
                    {
                        let meta = __CALLSITE.metadata();
                        ::tracing::Event::dispatch(meta, &value_set);
                        ;
                    })({
                #[allow(unused_imports)]
                use ::tracing::field::{debug, display, Value};
                let mut iter = __CALLSITE.metadata().fields().iter();
                __CALLSITE.metadata().fields().value_set(&[(&::tracing::__macro_support::Iterator::next(&mut iter).expect("FieldSet corrupted (this is a bug)"),
                                    ::tracing::__macro_support::Option::Some(&format_args!("resolve_crate_root: not DollarCrate")
                                            as &dyn Value))])
            });
    } else { ; }
};debug!("resolve_crate_root: not DollarCrate");
2366            ctxt = ctxt.normalize_to_macros_2_0();
2367            ctxt.adjust(ExpnId::root())
2368        };
2369        let module = match mark {
2370            Some(def) => self.expn_def_scope(def),
2371            None => {
2372                {
    use ::tracing::__macro_support::Callsite as _;
    static __CALLSITE: ::tracing::callsite::DefaultCallsite =
        {
            static META: ::tracing::Metadata<'static> =
                {
                    ::tracing_core::metadata::Metadata::new("event compiler/rustc_resolve/src/lib.rs:2372",
                        "rustc_resolve", ::tracing::Level::DEBUG,
                        ::tracing_core::__macro_support::Option::Some("compiler/rustc_resolve/src/lib.rs"),
                        ::tracing_core::__macro_support::Option::Some(2372u32),
                        ::tracing_core::__macro_support::Option::Some("rustc_resolve"),
                        ::tracing_core::field::FieldSet::new(&["message"],
                            ::tracing_core::callsite::Identifier(&__CALLSITE)),
                        ::tracing::metadata::Kind::EVENT)
                };
            ::tracing::callsite::DefaultCallsite::new(&META)
        };
    let enabled =
        ::tracing::Level::DEBUG <= ::tracing::level_filters::STATIC_MAX_LEVEL
                &&
                ::tracing::Level::DEBUG <=
                    ::tracing::level_filters::LevelFilter::current() &&
            {
                let interest = __CALLSITE.interest();
                !interest.is_never() &&
                    ::tracing::__macro_support::__is_enabled(__CALLSITE.metadata(),
                        interest)
            };
    if enabled {
        (|value_set: ::tracing::field::ValueSet|
                    {
                        let meta = __CALLSITE.metadata();
                        ::tracing::Event::dispatch(meta, &value_set);
                        ;
                    })({
                #[allow(unused_imports)]
                use ::tracing::field::{debug, display, Value};
                let mut iter = __CALLSITE.metadata().fields().iter();
                __CALLSITE.metadata().fields().value_set(&[(&::tracing::__macro_support::Iterator::next(&mut iter).expect("FieldSet corrupted (this is a bug)"),
                                    ::tracing::__macro_support::Option::Some(&format_args!("resolve_crate_root({0:?}): found no mark (ident.span = {1:?})",
                                                    ident, ident.span) as &dyn Value))])
            });
    } else { ; }
};debug!(
2373                    "resolve_crate_root({:?}): found no mark (ident.span = {:?})",
2374                    ident, ident.span
2375                );
2376                return self.graph_root.to_module();
2377            }
2378        };
2379        let module = self.expect_module(
2380            module.opt_def_id().map_or(LOCAL_CRATE, |def_id| def_id.krate).as_def_id(),
2381        );
2382        {
    use ::tracing::__macro_support::Callsite as _;
    static __CALLSITE: ::tracing::callsite::DefaultCallsite =
        {
            static META: ::tracing::Metadata<'static> =
                {
                    ::tracing_core::metadata::Metadata::new("event compiler/rustc_resolve/src/lib.rs:2382",
                        "rustc_resolve", ::tracing::Level::DEBUG,
                        ::tracing_core::__macro_support::Option::Some("compiler/rustc_resolve/src/lib.rs"),
                        ::tracing_core::__macro_support::Option::Some(2382u32),
                        ::tracing_core::__macro_support::Option::Some("rustc_resolve"),
                        ::tracing_core::field::FieldSet::new(&["message"],
                            ::tracing_core::callsite::Identifier(&__CALLSITE)),
                        ::tracing::metadata::Kind::EVENT)
                };
            ::tracing::callsite::DefaultCallsite::new(&META)
        };
    let enabled =
        ::tracing::Level::DEBUG <= ::tracing::level_filters::STATIC_MAX_LEVEL
                &&
                ::tracing::Level::DEBUG <=
                    ::tracing::level_filters::LevelFilter::current() &&
            {
                let interest = __CALLSITE.interest();
                !interest.is_never() &&
                    ::tracing::__macro_support::__is_enabled(__CALLSITE.metadata(),
                        interest)
            };
    if enabled {
        (|value_set: ::tracing::field::ValueSet|
                    {
                        let meta = __CALLSITE.metadata();
                        ::tracing::Event::dispatch(meta, &value_set);
                        ;
                    })({
                #[allow(unused_imports)]
                use ::tracing::field::{debug, display, Value};
                let mut iter = __CALLSITE.metadata().fields().iter();
                __CALLSITE.metadata().fields().value_set(&[(&::tracing::__macro_support::Iterator::next(&mut iter).expect("FieldSet corrupted (this is a bug)"),
                                    ::tracing::__macro_support::Option::Some(&format_args!("resolve_crate_root({0:?}): got module {1:?} ({2:?}) (ident.span = {3:?})",
                                                    ident, module, module.name(), ident.span) as &dyn Value))])
            });
    } else { ; }
};debug!(
2383            "resolve_crate_root({:?}): got module {:?} ({:?}) (ident.span = {:?})",
2384            ident,
2385            module,
2386            module.name(),
2387            ident.span
2388        );
2389        module
2390    }
2391
2392    fn resolve_self(&self, ctxt: &mut SyntaxContext, module: Module<'ra>) -> Module<'ra> {
2393        let mut module = self.expect_module(module.nearest_parent_mod());
2394        while module.span.ctxt().normalize_to_macros_2_0() != *ctxt {
2395            let parent = module.parent.unwrap_or_else(|| self.expn_def_scope(ctxt.remove_mark()));
2396            module = self.expect_module(parent.nearest_parent_mod());
2397        }
2398        module
2399    }
2400
2401    fn record_partial_res(&mut self, node_id: NodeId, resolution: PartialRes) {
2402        {
    use ::tracing::__macro_support::Callsite as _;
    static __CALLSITE: ::tracing::callsite::DefaultCallsite =
        {
            static META: ::tracing::Metadata<'static> =
                {
                    ::tracing_core::metadata::Metadata::new("event compiler/rustc_resolve/src/lib.rs:2402",
                        "rustc_resolve", ::tracing::Level::DEBUG,
                        ::tracing_core::__macro_support::Option::Some("compiler/rustc_resolve/src/lib.rs"),
                        ::tracing_core::__macro_support::Option::Some(2402u32),
                        ::tracing_core::__macro_support::Option::Some("rustc_resolve"),
                        ::tracing_core::field::FieldSet::new(&["message"],
                            ::tracing_core::callsite::Identifier(&__CALLSITE)),
                        ::tracing::metadata::Kind::EVENT)
                };
            ::tracing::callsite::DefaultCallsite::new(&META)
        };
    let enabled =
        ::tracing::Level::DEBUG <= ::tracing::level_filters::STATIC_MAX_LEVEL
                &&
                ::tracing::Level::DEBUG <=
                    ::tracing::level_filters::LevelFilter::current() &&
            {
                let interest = __CALLSITE.interest();
                !interest.is_never() &&
                    ::tracing::__macro_support::__is_enabled(__CALLSITE.metadata(),
                        interest)
            };
    if enabled {
        (|value_set: ::tracing::field::ValueSet|
                    {
                        let meta = __CALLSITE.metadata();
                        ::tracing::Event::dispatch(meta, &value_set);
                        ;
                    })({
                #[allow(unused_imports)]
                use ::tracing::field::{debug, display, Value};
                let mut iter = __CALLSITE.metadata().fields().iter();
                __CALLSITE.metadata().fields().value_set(&[(&::tracing::__macro_support::Iterator::next(&mut iter).expect("FieldSet corrupted (this is a bug)"),
                                    ::tracing::__macro_support::Option::Some(&format_args!("(recording res) recording {0:?} for {1}",
                                                    resolution, node_id) as &dyn Value))])
            });
    } else { ; }
};debug!("(recording res) recording {:?} for {}", resolution, node_id);
2403        if let Some(prev_res) = self.partial_res_map.insert(node_id, resolution) {
2404            {
    ::core::panicking::panic_fmt(format_args!("path resolved multiple times ({0:?} before, {1:?} now)",
            prev_res, resolution));
};panic!("path resolved multiple times ({prev_res:?} before, {resolution:?} now)");
2405        }
2406    }
2407
2408    fn record_pat_span(&mut self, node: NodeId, span: Span) {
2409        {
    use ::tracing::__macro_support::Callsite as _;
    static __CALLSITE: ::tracing::callsite::DefaultCallsite =
        {
            static META: ::tracing::Metadata<'static> =
                {
                    ::tracing_core::metadata::Metadata::new("event compiler/rustc_resolve/src/lib.rs:2409",
                        "rustc_resolve", ::tracing::Level::DEBUG,
                        ::tracing_core::__macro_support::Option::Some("compiler/rustc_resolve/src/lib.rs"),
                        ::tracing_core::__macro_support::Option::Some(2409u32),
                        ::tracing_core::__macro_support::Option::Some("rustc_resolve"),
                        ::tracing_core::field::FieldSet::new(&["message"],
                            ::tracing_core::callsite::Identifier(&__CALLSITE)),
                        ::tracing::metadata::Kind::EVENT)
                };
            ::tracing::callsite::DefaultCallsite::new(&META)
        };
    let enabled =
        ::tracing::Level::DEBUG <= ::tracing::level_filters::STATIC_MAX_LEVEL
                &&
                ::tracing::Level::DEBUG <=
                    ::tracing::level_filters::LevelFilter::current() &&
            {
                let interest = __CALLSITE.interest();
                !interest.is_never() &&
                    ::tracing::__macro_support::__is_enabled(__CALLSITE.metadata(),
                        interest)
            };
    if enabled {
        (|value_set: ::tracing::field::ValueSet|
                    {
                        let meta = __CALLSITE.metadata();
                        ::tracing::Event::dispatch(meta, &value_set);
                        ;
                    })({
                #[allow(unused_imports)]
                use ::tracing::field::{debug, display, Value};
                let mut iter = __CALLSITE.metadata().fields().iter();
                __CALLSITE.metadata().fields().value_set(&[(&::tracing::__macro_support::Iterator::next(&mut iter).expect("FieldSet corrupted (this is a bug)"),
                                    ::tracing::__macro_support::Option::Some(&format_args!("(recording pat) recording {0:?} for {1:?}",
                                                    node, span) as &dyn Value))])
            });
    } else { ; }
};debug!("(recording pat) recording {:?} for {:?}", node, span);
2410        self.pat_span_map.insert(node, span);
2411    }
2412
2413    fn is_accessible_from(&self, vis: Visibility<impl Into<DefId>>, module: Module<'ra>) -> bool {
2414        vis.is_accessible_from(module.nearest_parent_mod(), self.tcx)
2415    }
2416
2417    fn disambiguate_macro_rules_vs_modularized(
2418        &self,
2419        macro_rules: Decl<'ra>,
2420        modularized: Decl<'ra>,
2421    ) -> bool {
2422        // Some non-controversial subset of ambiguities "modularized macro name" vs "macro_rules"
2423        // is disambiguated to mitigate regressions from macro modularization.
2424        // Scoping for `macro_rules` behaves like scoping for `let` at module level, in general.
2425        //
2426        // Panic on unwrap should be impossible, the only name_bindings passed in should be from
2427        // `resolve_ident_in_scope_set` which will always refer to a local binding from an
2428        // import or macro definition.
2429        let macro_rules = macro_rules.parent_module.unwrap();
2430        let modularized = modularized.parent_module.unwrap();
2431        macro_rules.nearest_parent_mod() == modularized.nearest_parent_mod()
2432            && modularized.is_ancestor_of(macro_rules)
2433    }
2434
2435    fn extern_prelude_get_item<'r>(
2436        mut self: CmResolver<'r, 'ra, 'tcx>,
2437        ident: IdentKey,
2438        orig_ident_span: Span,
2439        finalize: bool,
2440    ) -> Option<Decl<'ra>> {
2441        let entry = self.extern_prelude.get(&ident);
2442        entry.and_then(|entry| entry.item_decl).map(|(decl, ..)| {
2443            if finalize {
2444                self.get_mut().record_use(ident.orig(orig_ident_span), decl, Used::Scope);
2445            }
2446            decl
2447        })
2448    }
2449
2450    fn extern_prelude_get_flag(
2451        &self,
2452        ident: IdentKey,
2453        orig_ident_span: Span,
2454        finalize: bool,
2455    ) -> Option<Decl<'ra>> {
2456        let entry = self.extern_prelude.get(&ident);
2457        entry.and_then(|entry| entry.flag_decl.as_ref()).and_then(|flag_decl| {
2458            let (pending_decl, finalized, is_open) = flag_decl.get();
2459            let decl = match pending_decl {
2460                PendingDecl::Ready(decl) => {
2461                    if finalize && !finalized && !is_open {
2462                        self.cstore_mut().process_path_extern(
2463                            self.tcx,
2464                            ident.name,
2465                            orig_ident_span,
2466                        );
2467                    }
2468                    decl
2469                }
2470                PendingDecl::Pending => {
2471                    if true {
    if !!finalized {
        ::core::panicking::panic("assertion failed: !finalized")
    };
};debug_assert!(!finalized);
2472                    if is_open {
2473                        let res = Res::OpenMod(ident.name);
2474                        Some(self.arenas.new_pub_def_decl(res, DUMMY_SP, LocalExpnId::ROOT))
2475                    } else {
2476                        let crate_id = if finalize {
2477                            self.cstore_mut().process_path_extern(
2478                                self.tcx,
2479                                ident.name,
2480                                orig_ident_span,
2481                            )
2482                        } else {
2483                            self.cstore_mut().maybe_process_path_extern(self.tcx, ident.name)
2484                        };
2485                        crate_id.map(|crate_id| {
2486                            let def_id = crate_id.as_def_id();
2487                            let res = Res::Def(DefKind::Mod, def_id);
2488                            self.arenas.new_pub_def_decl(res, DUMMY_SP, LocalExpnId::ROOT)
2489                        })
2490                    }
2491                }
2492            };
2493            flag_decl.set((PendingDecl::Ready(decl), finalize || finalized, is_open));
2494            decl.or_else(|| finalize.then_some(self.dummy_decl))
2495        })
2496    }
2497
2498    /// Rustdoc uses this to resolve doc link paths in a recoverable way. `PathResult<'a>`
2499    /// isn't something that can be returned because it can't be made to live that long,
2500    /// and also it's a private type. Fortunately rustdoc doesn't need to know the error,
2501    /// just that an error occurred.
2502    fn resolve_rustdoc_path(
2503        &mut self,
2504        path_str: &str,
2505        ns: Namespace,
2506        parent_scope: ParentScope<'ra>,
2507    ) -> Option<Res> {
2508        let segments: Result<Vec<_>, ()> = path_str
2509            .split("::")
2510            .enumerate()
2511            .map(|(i, s)| {
2512                let sym = if s.is_empty() {
2513                    if i == 0 {
2514                        // For a path like `::a::b`, use `kw::PathRoot` as the leading segment.
2515                        kw::PathRoot
2516                    } else {
2517                        return Err(()); // occurs in cases like `String::`
2518                    }
2519                } else {
2520                    Symbol::intern(s)
2521                };
2522                Ok(Segment::from_ident(Ident::with_dummy_span(sym)))
2523            })
2524            .collect();
2525        let Ok(segments) = segments else { return None };
2526
2527        match self.cm().maybe_resolve_path(&segments, Some(ns), &parent_scope, None) {
2528            PathResult::Module(ModuleOrUniformRoot::Module(module)) => Some(module.res().unwrap()),
2529            PathResult::NonModule(path_res) => {
2530                path_res.full_res().filter(|res| !#[allow(non_exhaustive_omitted_patterns)] match res {
    Res::Def(DefKind::Ctor(..), _) => true,
    _ => false,
}matches!(res, Res::Def(DefKind::Ctor(..), _)))
2531            }
2532            PathResult::Module(ModuleOrUniformRoot::ExternPrelude) | PathResult::Failed { .. } => {
2533                None
2534            }
2535            path_result @ (PathResult::Module(..) | PathResult::Indeterminate) => {
2536                ::rustc_middle::util::bug::bug_fmt(format_args!("got invalid path_result: {0:?}",
        path_result))bug!("got invalid path_result: {path_result:?}")
2537            }
2538        }
2539    }
2540
2541    /// Retrieves definition span of the given `DefId`.
2542    fn def_span(&self, def_id: DefId) -> Span {
2543        match def_id.as_local() {
2544            Some(def_id) => self.tcx.source_span(def_id),
2545            // Query `def_span` is not used because hashing its result span is expensive.
2546            None => self.cstore().def_span_untracked(self.tcx(), def_id),
2547        }
2548    }
2549
2550    fn field_idents(&self, def_id: DefId) -> Option<Vec<Ident>> {
2551        match def_id.as_local() {
2552            Some(def_id) => self.field_names.get(&def_id).cloned(),
2553            None if #[allow(non_exhaustive_omitted_patterns)] match self.tcx.def_kind(def_id) {
    DefKind::Struct | DefKind::Union | DefKind::Variant => true,
    _ => false,
}matches!(
2554                self.tcx.def_kind(def_id),
2555                DefKind::Struct | DefKind::Union | DefKind::Variant
2556            ) =>
2557            {
2558                Some(
2559                    self.tcx
2560                        .associated_item_def_ids(def_id)
2561                        .iter()
2562                        .map(|&def_id| {
2563                            Ident::new(self.tcx.item_name(def_id), self.tcx.def_span(def_id))
2564                        })
2565                        .collect(),
2566                )
2567            }
2568            _ => None,
2569        }
2570    }
2571
2572    fn field_defaults(&self, def_id: DefId) -> Option<Vec<Symbol>> {
2573        match def_id.as_local() {
2574            Some(def_id) => self.field_defaults.get(&def_id).cloned(),
2575            None if #[allow(non_exhaustive_omitted_patterns)] match self.tcx.def_kind(def_id) {
    DefKind::Struct | DefKind::Union | DefKind::Variant => true,
    _ => false,
}matches!(
2576                self.tcx.def_kind(def_id),
2577                DefKind::Struct | DefKind::Union | DefKind::Variant
2578            ) =>
2579            {
2580                Some(
2581                    self.tcx
2582                        .associated_item_def_ids(def_id)
2583                        .iter()
2584                        .filter_map(|&def_id| {
2585                            self.tcx.default_field(def_id).map(|_| self.tcx.item_name(def_id))
2586                        })
2587                        .collect(),
2588                )
2589            }
2590            _ => None,
2591        }
2592    }
2593
2594    /// Checks if an expression refers to a function marked with
2595    /// `#[rustc_legacy_const_generics]` and returns the argument index list
2596    /// from the attribute.
2597    fn legacy_const_generic_args(&mut self, expr: &Expr) -> Option<Vec<usize>> {
2598        let ExprKind::Path(None, path) = &expr.kind else {
2599            return None;
2600        };
2601        // Don't perform legacy const generics rewriting if the path already
2602        // has generic arguments.
2603        if path.segments.last().unwrap().args.is_some() {
2604            return None;
2605        }
2606
2607        let def_id = self.partial_res_map.get(&expr.id)?.full_res()?.opt_def_id()?;
2608
2609        // We only support cross-crate argument rewriting. Uses
2610        // within the same crate should be updated to use the new
2611        // const generics style.
2612        if def_id.is_local() {
2613            return None;
2614        }
2615
2616        {
    {
        'done:
            {
            for i in
                ::rustc_hir::attrs::HasAttrs::get_attrs(def_id, &self.tcx) {
                #[allow(unused_imports)]
                use rustc_hir::attrs::AttributeKind::*;
                let i: &rustc_hir::Attribute = i;
                match i {
                    rustc_hir::Attribute::Parsed(RustcLegacyConstGenerics {
                        fn_indexes, .. }) => {
                        break 'done Some(fn_indexes);
                    }
                    rustc_hir::Attribute::Unparsed(..) =>
                        {}
                        #[deny(unreachable_patterns)]
                        _ => {}
                }
            }
            None
        }
    }
}find_attr!(
2617            // we can use parsed attrs here since for other crates they're already available
2618            self.tcx, def_id,
2619            RustcLegacyConstGenerics{fn_indexes,..} => fn_indexes
2620        )
2621        .map(|fn_indexes| fn_indexes.iter().map(|(num, _)| *num).collect())
2622    }
2623
2624    fn resolve_main(&mut self) {
2625        let any_exe = self.tcx.crate_types().contains(&CrateType::Executable);
2626        // Don't try to resolve main unless it's an executable
2627        if !any_exe {
2628            return;
2629        }
2630
2631        let module = self.graph_root;
2632        let ident = Ident::with_dummy_span(sym::main);
2633        let parent_scope = &ParentScope::module(module, self.arenas);
2634
2635        let Ok(name_binding) = self.cm().maybe_resolve_ident_in_module(
2636            ModuleOrUniformRoot::Module(module.to_module()),
2637            ident,
2638            ValueNS,
2639            parent_scope,
2640            None,
2641        ) else {
2642            return;
2643        };
2644
2645        let res = name_binding.res();
2646        let is_import = name_binding.is_import();
2647        let span = name_binding.span;
2648        if let Res::Def(DefKind::Fn, _) = res {
2649            self.record_use(ident, name_binding, Used::Other);
2650        }
2651        self.main_def = Some(MainDefinition { res, is_import, span });
2652    }
2653}
2654
2655fn with_owner<'ra, 'tcx, R: AsMut<Resolver<'ra, 'tcx>>, T>(
2656    this: &mut R,
2657    owner: NodeId,
2658    work: impl FnOnce(&mut R) -> T,
2659) -> T {
2660    let tables = this.as_mut().owners.remove(&owner).unwrap();
2661    with_owner_tables(this, owner, tables, work)
2662}
2663
2664#[allow(clippy :: suspicious_else_formatting)]
{
    let __tracing_attr_span;
    let __tracing_attr_guard;
    if ::tracing::Level::DEBUG <= ::tracing::level_filters::STATIC_MAX_LEVEL
                &&
                ::tracing::Level::DEBUG <=
                    ::tracing::level_filters::LevelFilter::current() ||
            { false } {
        __tracing_attr_span =
            {
                use ::tracing::__macro_support::Callsite as _;
                static __CALLSITE: ::tracing::callsite::DefaultCallsite =
                    {
                        static META: ::tracing::Metadata<'static> =
                            {
                                ::tracing_core::metadata::Metadata::new("with_owner_tables",
                                    "rustc_resolve", ::tracing::Level::DEBUG,
                                    ::tracing_core::__macro_support::Option::Some("compiler/rustc_resolve/src/lib.rs"),
                                    ::tracing_core::__macro_support::Option::Some(2664u32),
                                    ::tracing_core::__macro_support::Option::Some("rustc_resolve"),
                                    ::tracing_core::field::FieldSet::new(&["owner", "tables"],
                                        ::tracing_core::callsite::Identifier(&__CALLSITE)),
                                    ::tracing::metadata::Kind::SPAN)
                            };
                        ::tracing::callsite::DefaultCallsite::new(&META)
                    };
                let mut interest = ::tracing::subscriber::Interest::never();
                if ::tracing::Level::DEBUG <=
                                    ::tracing::level_filters::STATIC_MAX_LEVEL &&
                                ::tracing::Level::DEBUG <=
                                    ::tracing::level_filters::LevelFilter::current() &&
                            { interest = __CALLSITE.interest(); !interest.is_never() }
                        &&
                        ::tracing::__macro_support::__is_enabled(__CALLSITE.metadata(),
                            interest) {
                    let meta = __CALLSITE.metadata();
                    ::tracing::Span::new(meta,
                        &{
                                #[allow(unused_imports)]
                                use ::tracing::field::{debug, display, Value};
                                let mut iter = meta.fields().iter();
                                meta.fields().value_set(&[(&::tracing::__macro_support::Iterator::next(&mut iter).expect("FieldSet corrupted (this is a bug)"),
                                                    ::tracing::__macro_support::Option::Some(&::tracing::field::debug(&owner)
                                                            as &dyn Value)),
                                                (&::tracing::__macro_support::Iterator::next(&mut iter).expect("FieldSet corrupted (this is a bug)"),
                                                    ::tracing::__macro_support::Option::Some(&::tracing::field::debug(&tables)
                                                            as &dyn Value))])
                            })
                } else {
                    let span =
                        ::tracing::__macro_support::__disabled_span(__CALLSITE.metadata());
                    {};
                    span
                }
            };
        __tracing_attr_guard = __tracing_attr_span.enter();
    }

    #[warn(clippy :: suspicious_else_formatting)]
    {

        #[allow(unknown_lints, unreachable_code, clippy ::
        diverging_sub_expression, clippy :: empty_loop, clippy ::
        let_unit_value, clippy :: let_with_type_underscore, clippy ::
        needless_return, clippy :: unreachable)]
        if false {
            let __tracing_attr_fake_return: T = loop {};
            return __tracing_attr_fake_return;
        }
        {
            if true {
                if !!this.as_mut().owners.contains_key(&owner) {
                    ::core::panicking::panic("assertion failed: !this.as_mut().owners.contains_key(&owner)")
                };
            };
            let resolver = this.as_mut();
            let old_owner = mem::replace(&mut resolver.current_owner, tables);
            let ret = work(this);
            let resolver = this.as_mut();
            let overwritten =
                resolver.owners.insert(owner,
                    mem::replace(&mut resolver.current_owner, old_owner));
            if !overwritten.is_none() {
                ::core::panicking::panic("assertion failed: overwritten.is_none()")
            };
            ret
        }
    }
}#[instrument(level = "debug", skip(this, work))]
2665fn with_owner_tables<'ra, 'tcx, R: AsMut<Resolver<'ra, 'tcx>>, T>(
2666    this: &mut R,
2667    owner: NodeId,
2668    tables: PerOwnerResolverData<'tcx>,
2669    work: impl FnOnce(&mut R) -> T,
2670) -> T {
2671    debug_assert!(!this.as_mut().owners.contains_key(&owner));
2672    let resolver = this.as_mut();
2673    let old_owner = mem::replace(&mut resolver.current_owner, tables);
2674    let ret = work(this);
2675    let resolver = this.as_mut();
2676    let overwritten =
2677        resolver.owners.insert(owner, mem::replace(&mut resolver.current_owner, old_owner));
2678    assert!(overwritten.is_none());
2679    ret
2680}
2681
2682fn build_extern_prelude<'tcx, 'ra>(
2683    tcx: TyCtxt<'tcx>,
2684    attrs: &[ast::Attribute],
2685) -> FxIndexMap<IdentKey, ExternPreludeEntry<'ra>> {
2686    let mut extern_prelude: FxIndexMap<IdentKey, ExternPreludeEntry<'ra>> = tcx
2687        .sess
2688        .opts
2689        .externs
2690        .iter()
2691        .filter_map(|(name, entry)| {
2692            // Make sure `self`, `super`, `_` etc do not get into extern prelude.
2693            // FIXME: reject `--extern self` and similar in option parsing instead.
2694            if entry.add_prelude
2695                && let sym = Symbol::intern(name)
2696                && sym.can_be_raw()
2697            {
2698                Some((IdentKey::with_root_ctxt(sym), ExternPreludeEntry::flag()))
2699            } else {
2700                None
2701            }
2702        })
2703        .collect();
2704
2705    // Add open base entries for namespaced crates whose base segment
2706    // is missing from the prelude (e.g. `foo::bar` without `foo`).
2707    // These are necessary in order to resolve the open modules, whereas
2708    // the namespaced names are necessary in `extern_prelude` for actually
2709    // resolving the namespaced crates.
2710    let missing_open_bases: Vec<IdentKey> = extern_prelude
2711        .keys()
2712        .filter_map(|ident| {
2713            let (base, _) = ident.name.as_str().split_once("::")?;
2714            let base_sym = Symbol::intern(base);
2715            base_sym.can_be_raw().then(|| IdentKey::with_root_ctxt(base_sym))
2716        })
2717        .filter(|base_ident| !extern_prelude.contains_key(base_ident))
2718        .collect();
2719
2720    extern_prelude.extend(
2721        missing_open_bases.into_iter().map(|ident| (ident, ExternPreludeEntry::open_flag())),
2722    );
2723
2724    // Inject `core` / `std` unless suppressed by attributes.
2725    if !attr::contains_name(attrs, sym::no_core) {
2726        extern_prelude.insert(IdentKey::with_root_ctxt(sym::core), ExternPreludeEntry::flag());
2727
2728        if !attr::contains_name(attrs, sym::no_std) {
2729            extern_prelude.insert(IdentKey::with_root_ctxt(sym::std), ExternPreludeEntry::flag());
2730        }
2731    }
2732
2733    extern_prelude
2734}
2735
2736fn names_to_string(names: impl Iterator<Item = Symbol>) -> String {
2737    let mut result = String::new();
2738    for (i, name) in names.enumerate().filter(|(_, name)| *name != kw::PathRoot) {
2739        if i > 0 {
2740            result.push_str("::");
2741        }
2742        if Ident::with_dummy_span(name).is_raw_guess() {
2743            result.push_str("r#");
2744        }
2745        result.push_str(name.as_str());
2746    }
2747    result
2748}
2749
2750fn path_names_to_string(path: &Path) -> String {
2751    names_to_string(path.segments.iter().map(|seg| seg.ident.name))
2752}
2753
2754/// A somewhat inefficient routine to obtain the name of a module.
2755fn module_to_string(mut module: Module<'_>) -> Option<String> {
2756    let mut names = Vec::new();
2757    while let Some(parent) = module.parent {
2758        names.push(module.name().unwrap_or(sym::opaque_module_name_placeholder));
2759        module = parent;
2760    }
2761    if names.is_empty() {
2762        return None;
2763    }
2764    Some(names_to_string(names.iter().rev().copied()))
2765}
2766
2767#[derive(#[automatically_derived]
impl ::core::marker::Copy for Stage { }Copy, #[automatically_derived]
impl ::core::clone::Clone for Stage {
    #[inline]
    fn clone(&self) -> Stage { *self }
}Clone, #[automatically_derived]
impl ::core::cmp::PartialEq for Stage {
    #[inline]
    fn eq(&self, other: &Stage) -> bool {
        let __self_discr = ::core::intrinsics::discriminant_value(self);
        let __arg1_discr = ::core::intrinsics::discriminant_value(other);
        __self_discr == __arg1_discr
    }
}PartialEq, #[automatically_derived]
impl ::core::fmt::Debug for Stage {
    #[inline]
    fn fmt(&self, f: &mut ::core::fmt::Formatter) -> ::core::fmt::Result {
        ::core::fmt::Formatter::write_str(f,
            match self { Stage::Early => "Early", Stage::Late => "Late", })
    }
}Debug)]
2768enum Stage {
2769    /// Resolving an import or a macro.
2770    /// Used when macro expansion is either not yet finished, or we are finalizing its results.
2771    /// Used by default as a more restrictive variant that can produce additional errors.
2772    Early,
2773    /// Resolving something in late resolution when all imports are resolved
2774    /// and all macros are expanded.
2775    Late,
2776}
2777
2778/// Parts of import data required for finalizing import resolution.
2779/// Does not carry a lifetime, so it can be stored in `Finalize`.
2780#[derive(#[automatically_derived]
impl ::core::marker::Copy for ImportSummary { }Copy, #[automatically_derived]
impl ::core::clone::Clone for ImportSummary {
    #[inline]
    fn clone(&self) -> ImportSummary {
        let _: ::core::clone::AssertParamIsClone<Visibility>;
        let _: ::core::clone::AssertParamIsClone<LocalDefId>;
        let _: ::core::clone::AssertParamIsClone<bool>;
        let _: ::core::clone::AssertParamIsClone<Span>;
        *self
    }
}Clone, #[automatically_derived]
impl ::core::fmt::Debug for ImportSummary {
    #[inline]
    fn fmt(&self, f: &mut ::core::fmt::Formatter) -> ::core::fmt::Result {
        ::core::fmt::Formatter::debug_struct_field5_finish(f, "ImportSummary",
            "vis", &self.vis, "nearest_parent_mod", &self.nearest_parent_mod,
            "is_single", &self.is_single, "priv_macro_use",
            &self.priv_macro_use, "span", &&self.span)
    }
}Debug)]
2781struct ImportSummary {
2782    vis: Visibility,
2783    nearest_parent_mod: LocalDefId,
2784    is_single: bool,
2785    priv_macro_use: bool,
2786    span: Span,
2787}
2788
2789/// Invariant: if `Finalize` is used, expansion and import resolution must be complete.
2790#[derive(#[automatically_derived]
impl ::core::marker::Copy for Finalize { }Copy, #[automatically_derived]
impl ::core::clone::Clone for Finalize {
    #[inline]
    fn clone(&self) -> Finalize {
        let _: ::core::clone::AssertParamIsClone<NodeId>;
        let _: ::core::clone::AssertParamIsClone<Span>;
        let _: ::core::clone::AssertParamIsClone<bool>;
        let _: ::core::clone::AssertParamIsClone<Used>;
        let _: ::core::clone::AssertParamIsClone<Stage>;
        let _: ::core::clone::AssertParamIsClone<Option<ImportSummary>>;
        *self
    }
}Clone, #[automatically_derived]
impl ::core::fmt::Debug for Finalize {
    #[inline]
    fn fmt(&self, f: &mut ::core::fmt::Formatter) -> ::core::fmt::Result {
        let names: &'static _ =
            &["node_id", "path_span", "root_span", "report_private", "used",
                        "stage", "import"];
        let values: &[&dyn ::core::fmt::Debug] =
            &[&self.node_id, &self.path_span, &self.root_span,
                        &self.report_private, &self.used, &self.stage,
                        &&self.import];
        ::core::fmt::Formatter::debug_struct_fields_finish(f, "Finalize",
            names, values)
    }
}Debug)]
2791struct Finalize {
2792    /// Node ID for linting.
2793    node_id: NodeId,
2794    /// Span of the whole path or some its characteristic fragment.
2795    /// E.g. span of `b` in `foo::{a, b, c}`, or full span for regular paths.
2796    path_span: Span,
2797    /// Span of the path start, suitable for prepending something to it.
2798    /// E.g. span of `foo` in `foo::{a, b, c}`, or full span for regular paths.
2799    root_span: Span,
2800    /// Whether to report privacy errors or silently return "no resolution" for them,
2801    /// similarly to speculative resolution.
2802    report_private: bool = true,
2803    /// Tracks whether an item is used in scope or used relatively to a module.
2804    used: Used = Used::Other,
2805    /// Finalizing early or late resolution.
2806    stage: Stage = Stage::Early,
2807    /// Some import data, in case we are resolving an import's final segment.
2808    import: Option<ImportSummary> = None,
2809}
2810
2811impl Finalize {
2812    fn new(node_id: NodeId, path_span: Span) -> Finalize {
2813        Finalize::with_root_span(node_id, path_span, path_span)
2814    }
2815
2816    fn with_root_span(node_id: NodeId, path_span: Span, root_span: Span) -> Finalize {
2817        Finalize { node_id, path_span, root_span, .. }
2818    }
2819}
2820
2821pub fn provide(providers: &mut Providers) {
2822    providers.registered_tools = macros::registered_tools;
2823}
2824
2825/// A wrapper around `&mut Resolver` that may be mutable or immutable, depending on a conditions.
2826///
2827/// `Cm` stands for "conditionally mutable".
2828///
2829/// Prefer constructing it through [`Resolver::cm`] to ensure correctness.
2830type CmResolver<'r, 'ra, 'tcx> = ref_mut::RefOrMut<'r, Resolver<'ra, 'tcx>>;
2831
2832// FIXME: These are cells for caches that can be populated even during speculative resolution,
2833// and should be replaced with mutexes, atomics, or other synchronized data when migrating to
2834// parallel name resolution.
2835use std::cell::{Cell as CacheCell, RefCell as CacheRefCell};
2836
2837mod ref_mut {
2838    use std::cell::{BorrowMutError, Cell, Ref, RefCell, RefMut};
2839    use std::fmt;
2840    use std::ops::Deref;
2841
2842    use crate::Resolver;
2843
2844    /// A wrapper around a mutable reference that conditionally allows mutable access.
2845    pub(crate) struct RefOrMut<'a, T> {
2846        p: &'a mut T,
2847        mutable: bool,
2848    }
2849
2850    impl<'a, T> Deref for RefOrMut<'a, T> {
2851        type Target = T;
2852
2853        fn deref(&self) -> &Self::Target {
2854            self.p
2855        }
2856    }
2857
2858    impl<'a, T> AsRef<T> for RefOrMut<'a, T> {
2859        fn as_ref(&self) -> &T {
2860            self.p
2861        }
2862    }
2863
2864    impl<'a, T> RefOrMut<'a, T> {
2865        pub(crate) fn new(p: &'a mut T, mutable: bool) -> Self {
2866            RefOrMut { p, mutable }
2867        }
2868
2869        /// This is needed because this wraps a `&mut T` and is therefore not `Copy`.
2870        pub(crate) fn reborrow(&mut self) -> RefOrMut<'_, T> {
2871            RefOrMut { p: self.p, mutable: self.mutable }
2872        }
2873
2874        /// Returns a mutable reference to the inner value if allowed.
2875        ///
2876        /// # Panics
2877        /// Panics if the `mutable` flag is false.
2878        #[track_caller]
2879        pub(crate) fn get_mut(&mut self) -> &mut T {
2880            match self.mutable {
2881                false => {
    ::core::panicking::panic_fmt(format_args!("can\'t mutably borrow speculative resolver"));
}panic!("can't mutably borrow speculative resolver"),
2882                true => self.p,
2883            }
2884        }
2885    }
2886
2887    /// A wrapper around a [`Cell`] that only allows mutation based on a condition in the resolver.
2888    #[derive(#[automatically_derived]
impl<T: ::core::default::Default> ::core::default::Default for CmCell<T> {
    #[inline]
    fn default() -> CmCell<T> { CmCell(::core::default::Default::default()) }
}Default)]
2889    pub(crate) struct CmCell<T>(Cell<T>);
2890
2891    impl<T: Copy + fmt::Debug> fmt::Debug for CmCell<T> {
2892        fn fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result {
2893            f.debug_tuple("CmCell").field(&self.get()).finish()
2894        }
2895    }
2896
2897    impl<T: Copy> Clone for CmCell<T> {
2898        fn clone(&self) -> CmCell<T> {
2899            CmCell::new(self.get())
2900        }
2901    }
2902
2903    impl<T: Copy> CmCell<T> {
2904        pub(crate) const fn get(&self) -> T {
2905            self.0.get()
2906        }
2907
2908        pub(crate) fn update<'ra, 'tcx>(&self, r: &Resolver<'ra, 'tcx>, f: impl FnOnce(T) -> T)
2909        where
2910            T: Copy,
2911        {
2912            let old = self.get();
2913            self.set(f(old), r);
2914        }
2915    }
2916
2917    impl<T> CmCell<T> {
2918        pub(crate) const fn new(value: T) -> CmCell<T> {
2919            CmCell(Cell::new(value))
2920        }
2921
2922        pub(crate) fn set<'ra, 'tcx>(&self, val: T, r: &Resolver<'ra, 'tcx>) {
2923            if r.assert_speculative {
2924                {
    ::core::panicking::panic_fmt(format_args!("not allowed to mutate a `CmCell` during speculative resolution"));
}panic!("not allowed to mutate a `CmCell` during speculative resolution")
2925            }
2926            self.0.set(val);
2927        }
2928
2929        pub(crate) fn into_inner(self) -> T {
2930            self.0.into_inner()
2931        }
2932    }
2933
2934    /// A wrapper around a [`RefCell`] that only allows mutable borrows based on a condition in the resolver.
2935    #[derive(#[automatically_derived]
impl<T: ::core::default::Default> ::core::default::Default for CmRefCell<T> {
    #[inline]
    fn default() -> CmRefCell<T> {
        CmRefCell(::core::default::Default::default())
    }
}Default)]
2936    pub(crate) struct CmRefCell<T>(RefCell<T>);
2937
2938    impl<T> CmRefCell<T> {
2939        pub(crate) const fn new(value: T) -> CmRefCell<T> {
2940            CmRefCell(RefCell::new(value))
2941        }
2942
2943        #[track_caller]
2944        // FIXME: this should be eliminated in the process of migration
2945        // to parallel name resolution.
2946        pub(crate) fn borrow_mut_unchecked(&self) -> RefMut<'_, T> {
2947            self.0.borrow_mut()
2948        }
2949
2950        #[track_caller]
2951        pub(crate) fn borrow_mut<'ra, 'tcx>(&self, r: &Resolver<'ra, 'tcx>) -> RefMut<'_, T> {
2952            if r.assert_speculative {
2953                {
    ::core::panicking::panic_fmt(format_args!("not allowed to mutably borrow a `CmRefCell` during speculative resolution"));
};panic!("not allowed to mutably borrow a `CmRefCell` during speculative resolution");
2954            }
2955            self.0.borrow_mut()
2956        }
2957
2958        #[track_caller]
2959        pub(crate) fn try_borrow_mut<'ra, 'tcx>(
2960            &self,
2961            r: &Resolver<'ra, 'tcx>,
2962        ) -> Result<RefMut<'_, T>, BorrowMutError> {
2963            if r.assert_speculative {
2964                {
    ::core::panicking::panic_fmt(format_args!("not allowed to mutably borrow a `CmRefCell` during speculative resolution"));
};panic!("not allowed to mutably borrow a `CmRefCell` during speculative resolution");
2965            }
2966            self.0.try_borrow_mut()
2967        }
2968
2969        #[track_caller]
2970        pub(crate) fn borrow(&self) -> Ref<'_, T> {
2971            self.0.borrow()
2972        }
2973    }
2974
2975    impl<T: Default> CmRefCell<T> {
2976        pub(crate) fn take<'ra, 'tcx>(&self, r: &Resolver<'ra, 'tcx>) -> T {
2977            if r.assert_speculative {
2978                {
    ::core::panicking::panic_fmt(format_args!("not allowed to mutate a CmRefCell during speculative resolution"));
};panic!("not allowed to mutate a CmRefCell during speculative resolution");
2979            }
2980            self.0.take()
2981        }
2982    }
2983}
2984
2985mod hygiene {
2986    use rustc_span::{ExpnId, SyntaxContext};
2987
2988    /// A newtype around `SyntaxContext` that can only keep contexts produced by
2989    /// [SyntaxContext::normalize_to_macros_2_0].
2990    #[derive(#[automatically_derived]
impl ::core::clone::Clone for Macros20NormalizedSyntaxContext {
    #[inline]
    fn clone(&self) -> Macros20NormalizedSyntaxContext {
        let _: ::core::clone::AssertParamIsClone<SyntaxContext>;
        *self
    }
}Clone, #[automatically_derived]
impl ::core::marker::Copy for Macros20NormalizedSyntaxContext { }Copy, #[automatically_derived]
impl ::core::cmp::PartialEq for Macros20NormalizedSyntaxContext {
    #[inline]
    fn eq(&self, other: &Macros20NormalizedSyntaxContext) -> bool {
        self.0 == other.0
    }
}PartialEq, #[automatically_derived]
impl ::core::cmp::Eq for Macros20NormalizedSyntaxContext {
    #[inline]
    #[doc(hidden)]
    #[coverage(off)]
    fn assert_fields_are_eq(&self) {
        let _: ::core::cmp::AssertParamIsEq<SyntaxContext>;
    }
}Eq, #[automatically_derived]
impl ::core::hash::Hash for Macros20NormalizedSyntaxContext {
    #[inline]
    fn hash<__H: ::core::hash::Hasher>(&self, state: &mut __H) {
        ::core::hash::Hash::hash(&self.0, state)
    }
}Hash, #[automatically_derived]
impl ::core::fmt::Debug for Macros20NormalizedSyntaxContext {
    #[inline]
    fn fmt(&self, f: &mut ::core::fmt::Formatter) -> ::core::fmt::Result {
        ::core::fmt::Formatter::debug_tuple_field1_finish(f,
            "Macros20NormalizedSyntaxContext", &&self.0)
    }
}Debug)]
2991    pub(crate) struct Macros20NormalizedSyntaxContext(SyntaxContext);
2992
2993    impl Macros20NormalizedSyntaxContext {
2994        #[inline]
2995        pub(crate) fn new(ctxt: SyntaxContext) -> Macros20NormalizedSyntaxContext {
2996            Macros20NormalizedSyntaxContext(ctxt.normalize_to_macros_2_0())
2997        }
2998
2999        #[inline]
3000        pub(crate) fn new_adjusted(
3001            mut ctxt: SyntaxContext,
3002            expn_id: ExpnId,
3003        ) -> (Macros20NormalizedSyntaxContext, Option<ExpnId>) {
3004            let def = ctxt.normalize_to_macros_2_0_and_adjust(expn_id);
3005            (Macros20NormalizedSyntaxContext(ctxt), def)
3006        }
3007
3008        #[inline]
3009        pub(crate) fn new_unchecked(ctxt: SyntaxContext) -> Macros20NormalizedSyntaxContext {
3010            if true {
    {
        match (&ctxt, &ctxt.normalize_to_macros_2_0()) {
            (left_val, right_val) => {
                if !(*left_val == *right_val) {
                    let kind = ::core::panicking::AssertKind::Eq;
                    ::core::panicking::assert_failed(kind, &*left_val,
                        &*right_val, ::core::option::Option::None);
                }
            }
        }
    };
};debug_assert_eq!(ctxt, ctxt.normalize_to_macros_2_0());
3011            Macros20NormalizedSyntaxContext(ctxt)
3012        }
3013
3014        /// The passed closure must preserve the context's normalized-ness.
3015        #[inline]
3016        pub(crate) fn update_unchecked<R>(&mut self, f: impl FnOnce(&mut SyntaxContext) -> R) -> R {
3017            let ret = f(&mut self.0);
3018            if true {
    {
        match (&self.0, &self.0.normalize_to_macros_2_0()) {
            (left_val, right_val) => {
                if !(*left_val == *right_val) {
                    let kind = ::core::panicking::AssertKind::Eq;
                    ::core::panicking::assert_failed(kind, &*left_val,
                        &*right_val, ::core::option::Option::None);
                }
            }
        }
    };
};debug_assert_eq!(self.0, self.0.normalize_to_macros_2_0());
3019            ret
3020        }
3021    }
3022
3023    impl std::ops::Deref for Macros20NormalizedSyntaxContext {
3024        type Target = SyntaxContext;
3025        fn deref(&self) -> &Self::Target {
3026            &self.0
3027        }
3028    }
3029}