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rustc_hir_typeck/
expr.rs

1// ignore-tidy-filelength
2// FIXME: we should move the field error reporting code somewhere else.
3
4//! Type checking expressions.
5//!
6//! See [`rustc_hir_analysis::check`] for more context on type checking in general.
7
8use rustc_abi::{FIRST_VARIANT, FieldIdx};
9use rustc_ast::util::parser::ExprPrecedence;
10use rustc_data_structures::fx::{FxHashMap, FxHashSet};
11use rustc_data_structures::stack::ensure_sufficient_stack;
12use rustc_data_structures::unord::UnordMap;
13use rustc_errors::codes::*;
14use rustc_errors::{
15    Applicability, Diag, ErrorGuaranteed, MultiSpan, StashKey, Subdiagnostic, listify, pluralize,
16    struct_span_code_err,
17};
18use rustc_hir::def::{CtorKind, DefKind, Res};
19use rustc_hir::def_id::DefId;
20use rustc_hir::lang_items::LangItem;
21use rustc_hir::{ExprKind, HirId, QPath, find_attr, is_range_literal};
22use rustc_hir_analysis::NoVariantNamed;
23use rustc_hir_analysis::errors::NoFieldOnType;
24use rustc_hir_analysis::hir_ty_lowering::HirTyLowerer as _;
25use rustc_infer::infer::{self, DefineOpaqueTypes, InferOk, RegionVariableOrigin};
26use rustc_infer::traits::query::NoSolution;
27use rustc_middle::ty::adjustment::{Adjust, Adjustment, AllowTwoPhase};
28use rustc_middle::ty::error::{ExpectedFound, TypeError};
29use rustc_middle::ty::{self, AdtKind, GenericArgsRef, Ty, TypeVisitableExt};
30use rustc_middle::{bug, span_bug};
31use rustc_session::errors::ExprParenthesesNeeded;
32use rustc_session::parse::feature_err;
33use rustc_span::edit_distance::find_best_match_for_name;
34use rustc_span::hygiene::DesugaringKind;
35use rustc_span::source_map::Spanned;
36use rustc_span::{Ident, Span, Symbol, kw, sym};
37use rustc_trait_selection::infer::InferCtxtExt;
38use rustc_trait_selection::traits::{self, ObligationCauseCode, ObligationCtxt};
39use tracing::{debug, instrument, trace};
40use {rustc_ast as ast, rustc_hir as hir};
41
42use crate::Expectation::{self, ExpectCastableToType, ExpectHasType, NoExpectation};
43use crate::coercion::CoerceMany;
44use crate::errors::{
45    AddressOfTemporaryTaken, BaseExpressionDoubleDot, BaseExpressionDoubleDotAddExpr,
46    BaseExpressionDoubleDotRemove, CantDereference, FieldMultiplySpecifiedInInitializer,
47    FunctionalRecordUpdateOnNonStruct, HelpUseLatestEdition, NakedAsmOutsideNakedFn,
48    NoFieldOnVariant, ReturnLikeStatementKind, ReturnStmtOutsideOfFnBody, StructExprNonExhaustive,
49    TypeMismatchFruTypo, YieldExprOutsideOfCoroutine,
50};
51use crate::op::contains_let_in_chain;
52use crate::{
53    BreakableCtxt, CoroutineTypes, Diverges, FnCtxt, GatherLocalsVisitor, Needs,
54    TupleArgumentsFlag, cast, fatally_break_rust, report_unexpected_variant_res, type_error_struct,
55};
56
57impl<'a, 'tcx> FnCtxt<'a, 'tcx> {
58    pub(crate) fn precedence(&self, expr: &hir::Expr<'_>) -> ExprPrecedence {
59        let has_attr = |id: HirId| -> bool {
60            for attr in self.tcx.hir_attrs(id) {
61                // For the purpose of rendering suggestions, disregard attributes
62                // that originate from desugaring of any kind. For example, `x?`
63                // desugars to `#[allow(unreachable_code)] match ...`. Failing to
64                // ignore the prefix attribute in the desugaring would cause this
65                // suggestion:
66                //
67                //     let y: u32 = x?.try_into().unwrap();
68                //                    ++++++++++++++++++++
69                //
70                // to be rendered as:
71                //
72                //     let y: u32 = (x?).try_into().unwrap();
73                //                  +  +++++++++++++++++++++
74                if attr.span().desugaring_kind().is_none() {
75                    return true;
76                }
77            }
78            false
79        };
80
81        // Special case: range expressions are desugared to struct literals in HIR,
82        // so they would normally return `Unambiguous` precedence in expr.precedence.
83        // we should return `Range` precedence for correct parenthesization in suggestions.
84        if is_range_literal(expr) {
85            return ExprPrecedence::Range;
86        }
87
88        expr.precedence(&has_attr)
89    }
90
91    /// Check an expr with an expectation type, and also demand that the expr's
92    /// evaluated type is a subtype of the expectation at the end. This is a
93    /// *hard* requirement.
94    pub(crate) fn check_expr_has_type_or_error(
95        &self,
96        expr: &'tcx hir::Expr<'tcx>,
97        expected_ty: Ty<'tcx>,
98        extend_err: impl FnOnce(&mut Diag<'_>),
99    ) -> Ty<'tcx> {
100        let mut ty = self.check_expr_with_expectation(expr, ExpectHasType(expected_ty));
101
102        // While we don't allow *arbitrary* coercions here, we *do* allow
103        // coercions from ! to `expected`.
104        if self.try_structurally_resolve_type(expr.span, ty).is_never()
105            && self.tcx.expr_guaranteed_to_constitute_read_for_never(expr)
106        {
107            if let Some(adjustments) = self.typeck_results.borrow().adjustments().get(expr.hir_id) {
108                let reported = self.dcx().span_delayed_bug(
109                    expr.span,
110                    "expression with never type wound up being adjusted",
111                );
112
113                return if let [Adjustment { kind: Adjust::NeverToAny, target }] = &adjustments[..] {
114                    target.to_owned()
115                } else {
116                    Ty::new_error(self.tcx(), reported)
117                };
118            }
119
120            let adj_ty = self.next_ty_var(expr.span);
121            self.apply_adjustments(
122                expr,
123                ::alloc::boxed::box_assume_init_into_vec_unsafe(::alloc::intrinsics::write_box_via_move(::alloc::boxed::Box::new_uninit(),
        [Adjustment { kind: Adjust::NeverToAny, target: adj_ty }]))vec![Adjustment { kind: Adjust::NeverToAny, target: adj_ty }],
124            );
125            ty = adj_ty;
126        }
127
128        if let Err(mut err) = self.demand_suptype_diag(expr.span, expected_ty, ty) {
129            let _ = self.emit_type_mismatch_suggestions(
130                &mut err,
131                expr.peel_drop_temps(),
132                ty,
133                expected_ty,
134                None,
135                None,
136            );
137            extend_err(&mut err);
138            err.emit();
139        }
140        ty
141    }
142
143    /// Check an expr with an expectation type, and also demand that the expr's
144    /// evaluated type is a coercible to the expectation at the end. This is a
145    /// *hard* requirement.
146    pub(super) fn check_expr_coercible_to_type(
147        &self,
148        expr: &'tcx hir::Expr<'tcx>,
149        expected: Ty<'tcx>,
150        expected_ty_expr: Option<&'tcx hir::Expr<'tcx>>,
151    ) -> Ty<'tcx> {
152        self.check_expr_coercible_to_type_or_error(expr, expected, expected_ty_expr, |_, _| {})
153    }
154
155    pub(crate) fn check_expr_coercible_to_type_or_error(
156        &self,
157        expr: &'tcx hir::Expr<'tcx>,
158        expected: Ty<'tcx>,
159        expected_ty_expr: Option<&'tcx hir::Expr<'tcx>>,
160        extend_err: impl FnOnce(&mut Diag<'_>, Ty<'tcx>),
161    ) -> Ty<'tcx> {
162        let ty = self.check_expr_with_hint(expr, expected);
163        // checks don't need two phase
164        match self.demand_coerce_diag(expr, ty, expected, expected_ty_expr, AllowTwoPhase::No) {
165            Ok(ty) => ty,
166            Err(mut err) => {
167                extend_err(&mut err, ty);
168                err.emit();
169                // Return the original type instead of an error type here, otherwise the type of `x` in
170                // `let x: u32 = ();` will be a type error, causing all subsequent usages of `x` to not
171                // report errors, even though `x` is definitely `u32`.
172                expected
173            }
174        }
175    }
176
177    /// Check an expr with an expectation type. Don't actually enforce that expectation
178    /// is related to the expr's evaluated type via subtyping or coercion. This is
179    /// usually called because we want to do that subtype/coerce call manually for better
180    /// diagnostics.
181    pub(super) fn check_expr_with_hint(
182        &self,
183        expr: &'tcx hir::Expr<'tcx>,
184        expected: Ty<'tcx>,
185    ) -> Ty<'tcx> {
186        self.check_expr_with_expectation(expr, ExpectHasType(expected))
187    }
188
189    /// Check an expr with an expectation type, and also [`Needs`] which will
190    /// prompt typeck to convert any implicit immutable derefs to mutable derefs.
191    fn check_expr_with_expectation_and_needs(
192        &self,
193        expr: &'tcx hir::Expr<'tcx>,
194        expected: Expectation<'tcx>,
195        needs: Needs,
196    ) -> Ty<'tcx> {
197        let ty = self.check_expr_with_expectation(expr, expected);
198
199        // If the expression is used in a place whether mutable place is required
200        // e.g. LHS of assignment, perform the conversion.
201        if let Needs::MutPlace = needs {
202            self.convert_place_derefs_to_mutable(expr);
203        }
204
205        ty
206    }
207
208    /// Check an expr with no expectations.
209    pub(super) fn check_expr(&self, expr: &'tcx hir::Expr<'tcx>) -> Ty<'tcx> {
210        self.check_expr_with_expectation(expr, NoExpectation)
211    }
212
213    /// Check an expr with no expectations, but with [`Needs`] which will
214    /// prompt typeck to convert any implicit immutable derefs to mutable derefs.
215    pub(super) fn check_expr_with_needs(
216        &self,
217        expr: &'tcx hir::Expr<'tcx>,
218        needs: Needs,
219    ) -> Ty<'tcx> {
220        self.check_expr_with_expectation_and_needs(expr, NoExpectation, needs)
221    }
222
223    /// Check an expr with an expectation type which may be used to eagerly
224    /// guide inference when evaluating that expr.
225    #[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("check_expr_with_expectation",
                                    "rustc_hir_typeck::expr", ::tracing::Level::DEBUG,
                                    ::tracing_core::__macro_support::Option::Some("compiler/rustc_hir_typeck/src/expr.rs"),
                                    ::tracing_core::__macro_support::Option::Some(225u32),
                                    ::tracing_core::__macro_support::Option::Some("rustc_hir_typeck::expr"),
                                    ::tracing_core::field::FieldSet::new(&["expected"],
                                        ::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(&expected)
                                                            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: Ty<'tcx> = loop {};
            return __tracing_attr_fake_return;
        }
        { self.check_expr_with_expectation_and_args(expr, expected, None) }
    }
}#[instrument(skip(self, expr), level = "debug")]
226    pub(super) fn check_expr_with_expectation(
227        &self,
228        expr: &'tcx hir::Expr<'tcx>,
229        expected: Expectation<'tcx>,
230    ) -> Ty<'tcx> {
231        self.check_expr_with_expectation_and_args(expr, expected, None)
232    }
233
234    /// Same as [`Self::check_expr_with_expectation`], but allows us to pass in
235    /// the arguments of a [`ExprKind::Call`] when evaluating its callee that
236    /// is an [`ExprKind::Path`]. We use this to refine the spans for certain
237    /// well-formedness guarantees for the path expr.
238    pub(super) fn check_expr_with_expectation_and_args(
239        &self,
240        expr: &'tcx hir::Expr<'tcx>,
241        expected: Expectation<'tcx>,
242        call_expr_and_args: Option<(&'tcx hir::Expr<'tcx>, &'tcx [hir::Expr<'tcx>])>,
243    ) -> Ty<'tcx> {
244        if self.tcx().sess.verbose_internals() {
245            // make this code only run with -Zverbose-internals because it is probably slow
246            if let Ok(lint_str) = self.tcx.sess.source_map().span_to_snippet(expr.span) {
247                if !lint_str.contains('\n') {
248                    {
    use ::tracing::__macro_support::Callsite as _;
    static __CALLSITE: ::tracing::callsite::DefaultCallsite =
        {
            static META: ::tracing::Metadata<'static> =
                {
                    ::tracing_core::metadata::Metadata::new("event compiler/rustc_hir_typeck/src/expr.rs:248",
                        "rustc_hir_typeck::expr", ::tracing::Level::DEBUG,
                        ::tracing_core::__macro_support::Option::Some("compiler/rustc_hir_typeck/src/expr.rs"),
                        ::tracing_core::__macro_support::Option::Some(248u32),
                        ::tracing_core::__macro_support::Option::Some("rustc_hir_typeck::expr"),
                        ::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!("expr text: {0}",
                                                    lint_str) as &dyn Value))])
            });
    } else { ; }
};debug!("expr text: {lint_str}");
249                } else {
250                    let mut lines = lint_str.lines();
251                    if let Some(line0) = lines.next() {
252                        let remaining_lines = lines.count();
253                        {
    use ::tracing::__macro_support::Callsite as _;
    static __CALLSITE: ::tracing::callsite::DefaultCallsite =
        {
            static META: ::tracing::Metadata<'static> =
                {
                    ::tracing_core::metadata::Metadata::new("event compiler/rustc_hir_typeck/src/expr.rs:253",
                        "rustc_hir_typeck::expr", ::tracing::Level::DEBUG,
                        ::tracing_core::__macro_support::Option::Some("compiler/rustc_hir_typeck/src/expr.rs"),
                        ::tracing_core::__macro_support::Option::Some(253u32),
                        ::tracing_core::__macro_support::Option::Some("rustc_hir_typeck::expr"),
                        ::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!("expr text: {0}",
                                                    line0) as &dyn Value))])
            });
    } else { ; }
};debug!("expr text: {line0}");
254                        {
    use ::tracing::__macro_support::Callsite as _;
    static __CALLSITE: ::tracing::callsite::DefaultCallsite =
        {
            static META: ::tracing::Metadata<'static> =
                {
                    ::tracing_core::metadata::Metadata::new("event compiler/rustc_hir_typeck/src/expr.rs:254",
                        "rustc_hir_typeck::expr", ::tracing::Level::DEBUG,
                        ::tracing_core::__macro_support::Option::Some("compiler/rustc_hir_typeck/src/expr.rs"),
                        ::tracing_core::__macro_support::Option::Some(254u32),
                        ::tracing_core::__macro_support::Option::Some("rustc_hir_typeck::expr"),
                        ::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!("expr text: ...(and {0} more lines)",
                                                    remaining_lines) as &dyn Value))])
            });
    } else { ; }
};debug!("expr text: ...(and {remaining_lines} more lines)");
255                    }
256                }
257            }
258        }
259
260        // True if `expr` is a `Try::from_ok(())` that is a result of desugaring a try block
261        // without the final expr (e.g. `try { return; }`). We don't want to generate an
262        // unreachable_code lint for it since warnings for autogenerated code are confusing.
263        let is_try_block_generated_unit_expr = match expr.kind {
264            ExprKind::Call(_, [arg]) => {
265                expr.span.is_desugaring(DesugaringKind::TryBlock)
266                    && arg.span.is_desugaring(DesugaringKind::TryBlock)
267            }
268            _ => false,
269        };
270
271        // Warn for expressions after diverging siblings.
272        if !is_try_block_generated_unit_expr {
273            self.warn_if_unreachable(expr.hir_id, expr.span, "expression");
274        }
275
276        // Whether a past expression diverges doesn't affect typechecking of this expression, so we
277        // reset `diverges` while checking `expr`.
278        let old_diverges = self.diverges.replace(Diverges::Maybe);
279
280        if self.is_whole_body.replace(false) {
281            // If this expression is the whole body and the function diverges because of its
282            // arguments, we check this here to ensure the body is considered to diverge.
283            self.diverges.set(self.function_diverges_because_of_empty_arguments.get())
284        };
285
286        let ty = ensure_sufficient_stack(|| match &expr.kind {
287            // Intercept the callee path expr and give it better spans.
288            hir::ExprKind::Path(
289                qpath @ (hir::QPath::Resolved(..) | hir::QPath::TypeRelative(..)),
290            ) => self.check_expr_path(qpath, expr, call_expr_and_args),
291            _ => self.check_expr_kind(expr, expected),
292        });
293        let ty = self.resolve_vars_if_possible(ty);
294
295        // Warn for non-block expressions with diverging children.
296        match expr.kind {
297            ExprKind::Block(..)
298            | ExprKind::If(..)
299            | ExprKind::Let(..)
300            | ExprKind::Loop(..)
301            | ExprKind::Match(..) => {}
302            // Do not warn on `as` casts from never to any,
303            // they are sometimes required to appeal typeck.
304            ExprKind::Cast(_, _) => {}
305            // If `expr` is a result of desugaring the try block and is an ok-wrapped
306            // diverging expression (e.g. it arose from desugaring of `try { return }`),
307            // we skip issuing a warning because it is autogenerated code.
308            ExprKind::Call(..) if expr.span.is_desugaring(DesugaringKind::TryBlock) => {}
309            // Likewise, do not lint unreachable code injected via contracts desugaring.
310            ExprKind::Call(..) if expr.span.is_desugaring(DesugaringKind::Contract) => {}
311            ExprKind::Call(callee, _) => self.warn_if_unreachable(expr.hir_id, callee.span, "call"),
312            ExprKind::MethodCall(segment, ..) => {
313                self.warn_if_unreachable(expr.hir_id, segment.ident.span, "call")
314            }
315            _ => self.warn_if_unreachable(expr.hir_id, expr.span, "expression"),
316        }
317
318        // Any expression that produces a value of type `!` must have diverged,
319        // unless it's a place expression that isn't being read from, in which case
320        // diverging would be unsound since we may never actually read the `!`.
321        // e.g. `let _ = *never_ptr;` with `never_ptr: *const !`.
322        if self.try_structurally_resolve_type(expr.span, ty).is_never()
323            && self.tcx.expr_guaranteed_to_constitute_read_for_never(expr)
324        {
325            self.diverges.set(self.diverges.get() | Diverges::always(expr.span));
326        }
327
328        // Record the type, which applies it effects.
329        // We need to do this after the warning above, so that
330        // we don't warn for the diverging expression itself.
331        self.write_ty(expr.hir_id, ty);
332
333        // Combine the diverging and has_error flags.
334        self.diverges.set(self.diverges.get() | old_diverges);
335
336        {
    use ::tracing::__macro_support::Callsite as _;
    static __CALLSITE: ::tracing::callsite::DefaultCallsite =
        {
            static META: ::tracing::Metadata<'static> =
                {
                    ::tracing_core::metadata::Metadata::new("event compiler/rustc_hir_typeck/src/expr.rs:336",
                        "rustc_hir_typeck::expr", ::tracing::Level::DEBUG,
                        ::tracing_core::__macro_support::Option::Some("compiler/rustc_hir_typeck/src/expr.rs"),
                        ::tracing_core::__macro_support::Option::Some(336u32),
                        ::tracing_core::__macro_support::Option::Some("rustc_hir_typeck::expr"),
                        ::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!("type of {0} is...",
                                                    self.tcx.hir_id_to_string(expr.hir_id)) as &dyn Value))])
            });
    } else { ; }
};debug!("type of {} is...", self.tcx.hir_id_to_string(expr.hir_id));
337        {
    use ::tracing::__macro_support::Callsite as _;
    static __CALLSITE: ::tracing::callsite::DefaultCallsite =
        {
            static META: ::tracing::Metadata<'static> =
                {
                    ::tracing_core::metadata::Metadata::new("event compiler/rustc_hir_typeck/src/expr.rs:337",
                        "rustc_hir_typeck::expr", ::tracing::Level::DEBUG,
                        ::tracing_core::__macro_support::Option::Some("compiler/rustc_hir_typeck/src/expr.rs"),
                        ::tracing_core::__macro_support::Option::Some(337u32),
                        ::tracing_core::__macro_support::Option::Some("rustc_hir_typeck::expr"),
                        ::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!("... {0:?}, expected is {1:?}",
                                                    ty, expected) as &dyn Value))])
            });
    } else { ; }
};debug!("... {:?}, expected is {:?}", ty, expected);
338
339        ty
340    }
341
342    #[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("check_expr_kind",
                                    "rustc_hir_typeck::expr", ::tracing::Level::DEBUG,
                                    ::tracing_core::__macro_support::Option::Some("compiler/rustc_hir_typeck/src/expr.rs"),
                                    ::tracing_core::__macro_support::Option::Some(342u32),
                                    ::tracing_core::__macro_support::Option::Some("rustc_hir_typeck::expr"),
                                    ::tracing_core::field::FieldSet::new(&["expected"],
                                        ::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(&expected)
                                                            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: Ty<'tcx> = loop {};
            return __tracing_attr_fake_return;
        }
        {
            {
                use ::tracing::__macro_support::Callsite as _;
                static __CALLSITE: ::tracing::callsite::DefaultCallsite =
                    {
                        static META: ::tracing::Metadata<'static> =
                            {
                                ::tracing_core::metadata::Metadata::new("event compiler/rustc_hir_typeck/src/expr.rs:348",
                                    "rustc_hir_typeck::expr", ::tracing::Level::TRACE,
                                    ::tracing_core::__macro_support::Option::Some("compiler/rustc_hir_typeck/src/expr.rs"),
                                    ::tracing_core::__macro_support::Option::Some(348u32),
                                    ::tracing_core::__macro_support::Option::Some("rustc_hir_typeck::expr"),
                                    ::tracing_core::field::FieldSet::new(&["message"],
                                        ::tracing_core::callsite::Identifier(&__CALLSITE)),
                                    ::tracing::metadata::Kind::EVENT)
                            };
                        ::tracing::callsite::DefaultCallsite::new(&META)
                    };
                let enabled =
                    ::tracing::Level::TRACE <=
                                ::tracing::level_filters::STATIC_MAX_LEVEL &&
                            ::tracing::Level::TRACE <=
                                ::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!("expr={0:#?}",
                                                                expr) as &dyn Value))])
                        });
                } else { ; }
            };
            let tcx = self.tcx;
            match expr.kind {
                ExprKind::Lit(ref lit) => self.check_expr_lit(lit, expected),
                ExprKind::Binary(op, lhs, rhs) =>
                    self.check_expr_binop(expr, op, lhs, rhs, expected),
                ExprKind::Assign(lhs, rhs, span) => {
                    self.check_expr_assign(expr, expected, lhs, rhs, span)
                }
                ExprKind::AssignOp(op, lhs, rhs) => {
                    self.check_expr_assign_op(expr, op, lhs, rhs, expected)
                }
                ExprKind::Unary(unop, oprnd) =>
                    self.check_expr_unop(unop, oprnd, expected, expr),
                ExprKind::AddrOf(kind, mutbl, oprnd) => {
                    self.check_expr_addr_of(kind, mutbl, oprnd, expected, expr)
                }
                ExprKind::Path(ref qpath) =>
                    self.check_expr_path(qpath, expr, None),
                ExprKind::InlineAsm(asm) => {
                    self.deferred_asm_checks.borrow_mut().push((asm,
                            expr.hir_id));
                    self.check_expr_asm(asm, expr.span)
                }
                ExprKind::OffsetOf(container, fields) => {
                    self.check_expr_offset_of(container, fields, expr)
                }
                ExprKind::Break(destination, ref expr_opt) => {
                    self.check_expr_break(destination, expr_opt.as_deref(),
                        expr)
                }
                ExprKind::Continue(destination) =>
                    self.check_expr_continue(destination, expr),
                ExprKind::Ret(ref expr_opt) =>
                    self.check_expr_return(expr_opt.as_deref(), expr),
                ExprKind::Become(call) => self.check_expr_become(call, expr),
                ExprKind::Let(let_expr) =>
                    self.check_expr_let(let_expr, expr.hir_id),
                ExprKind::Loop(body, _, source, _) => {
                    self.check_expr_loop(body, source, expected, expr)
                }
                ExprKind::Match(discrim, arms, match_src) => {
                    self.check_expr_match(expr, discrim, arms, expected,
                        match_src)
                }
                ExprKind::Closure(closure) =>
                    self.check_expr_closure(closure, expr.span, expected),
                ExprKind::Block(body, _) =>
                    self.check_expr_block(body, expected),
                ExprKind::Call(callee, args) =>
                    self.check_expr_call(expr, callee, args, expected),
                ExprKind::Use(used_expr, _) =>
                    self.check_expr_use(used_expr, expected),
                ExprKind::MethodCall(segment, receiver, args, _) => {
                    self.check_expr_method_call(expr, segment, receiver, args,
                        expected)
                }
                ExprKind::Cast(e, t) => self.check_expr_cast(e, t, expr),
                ExprKind::Type(e, t) => {
                    let ascribed_ty = self.lower_ty_saving_user_provided_ty(t);
                    let ty = self.check_expr_with_hint(e, ascribed_ty);
                    self.demand_eqtype(e.span, ascribed_ty, ty);
                    ascribed_ty
                }
                ExprKind::If(cond, then_expr, opt_else_expr) => {
                    self.check_expr_if(expr.hir_id, cond, then_expr,
                        opt_else_expr, expr.span, expected)
                }
                ExprKind::DropTemps(e) =>
                    self.check_expr_with_expectation(e, expected),
                ExprKind::Array(args) =>
                    self.check_expr_array(args, expected, expr),
                ExprKind::ConstBlock(ref block) =>
                    self.check_expr_const_block(block, expected),
                ExprKind::Repeat(element, ref count) => {
                    self.check_expr_repeat(element, count, expected, expr)
                }
                ExprKind::Tup(elts) =>
                    self.check_expr_tuple(elts, expected, expr),
                ExprKind::Struct(qpath, fields, ref base_expr) => {
                    self.check_expr_struct(expr, expected, qpath, fields,
                        base_expr)
                }
                ExprKind::Field(base, field) =>
                    self.check_expr_field(expr, base, field, expected),
                ExprKind::Index(base, idx, brackets_span) => {
                    self.check_expr_index(base, idx, expr, brackets_span)
                }
                ExprKind::Yield(value, _) =>
                    self.check_expr_yield(value, expr),
                ExprKind::UnsafeBinderCast(kind, inner_expr, ty) => {
                    self.check_expr_unsafe_binder_cast(expr.span, kind,
                        inner_expr, ty, expected)
                }
                ExprKind::Err(guar) => Ty::new_error(tcx, guar),
            }
        }
    }
}#[instrument(skip(self, expr), level = "debug")]
343    fn check_expr_kind(
344        &self,
345        expr: &'tcx hir::Expr<'tcx>,
346        expected: Expectation<'tcx>,
347    ) -> Ty<'tcx> {
348        trace!("expr={:#?}", expr);
349
350        let tcx = self.tcx;
351        match expr.kind {
352            ExprKind::Lit(ref lit) => self.check_expr_lit(lit, expected),
353            ExprKind::Binary(op, lhs, rhs) => self.check_expr_binop(expr, op, lhs, rhs, expected),
354            ExprKind::Assign(lhs, rhs, span) => {
355                self.check_expr_assign(expr, expected, lhs, rhs, span)
356            }
357            ExprKind::AssignOp(op, lhs, rhs) => {
358                self.check_expr_assign_op(expr, op, lhs, rhs, expected)
359            }
360            ExprKind::Unary(unop, oprnd) => self.check_expr_unop(unop, oprnd, expected, expr),
361            ExprKind::AddrOf(kind, mutbl, oprnd) => {
362                self.check_expr_addr_of(kind, mutbl, oprnd, expected, expr)
363            }
364            ExprKind::Path(ref qpath) => self.check_expr_path(qpath, expr, None),
365            ExprKind::InlineAsm(asm) => {
366                // We defer some asm checks as we may not have resolved the input and output types yet (they may still be infer vars).
367                self.deferred_asm_checks.borrow_mut().push((asm, expr.hir_id));
368                self.check_expr_asm(asm, expr.span)
369            }
370            ExprKind::OffsetOf(container, fields) => {
371                self.check_expr_offset_of(container, fields, expr)
372            }
373            ExprKind::Break(destination, ref expr_opt) => {
374                self.check_expr_break(destination, expr_opt.as_deref(), expr)
375            }
376            ExprKind::Continue(destination) => self.check_expr_continue(destination, expr),
377            ExprKind::Ret(ref expr_opt) => self.check_expr_return(expr_opt.as_deref(), expr),
378            ExprKind::Become(call) => self.check_expr_become(call, expr),
379            ExprKind::Let(let_expr) => self.check_expr_let(let_expr, expr.hir_id),
380            ExprKind::Loop(body, _, source, _) => {
381                self.check_expr_loop(body, source, expected, expr)
382            }
383            ExprKind::Match(discrim, arms, match_src) => {
384                self.check_expr_match(expr, discrim, arms, expected, match_src)
385            }
386            ExprKind::Closure(closure) => self.check_expr_closure(closure, expr.span, expected),
387            ExprKind::Block(body, _) => self.check_expr_block(body, expected),
388            ExprKind::Call(callee, args) => self.check_expr_call(expr, callee, args, expected),
389            ExprKind::Use(used_expr, _) => self.check_expr_use(used_expr, expected),
390            ExprKind::MethodCall(segment, receiver, args, _) => {
391                self.check_expr_method_call(expr, segment, receiver, args, expected)
392            }
393            ExprKind::Cast(e, t) => self.check_expr_cast(e, t, expr),
394            ExprKind::Type(e, t) => {
395                let ascribed_ty = self.lower_ty_saving_user_provided_ty(t);
396                let ty = self.check_expr_with_hint(e, ascribed_ty);
397                self.demand_eqtype(e.span, ascribed_ty, ty);
398                ascribed_ty
399            }
400            ExprKind::If(cond, then_expr, opt_else_expr) => {
401                self.check_expr_if(expr.hir_id, cond, then_expr, opt_else_expr, expr.span, expected)
402            }
403            ExprKind::DropTemps(e) => self.check_expr_with_expectation(e, expected),
404            ExprKind::Array(args) => self.check_expr_array(args, expected, expr),
405            ExprKind::ConstBlock(ref block) => self.check_expr_const_block(block, expected),
406            ExprKind::Repeat(element, ref count) => {
407                self.check_expr_repeat(element, count, expected, expr)
408            }
409            ExprKind::Tup(elts) => self.check_expr_tuple(elts, expected, expr),
410            ExprKind::Struct(qpath, fields, ref base_expr) => {
411                self.check_expr_struct(expr, expected, qpath, fields, base_expr)
412            }
413            ExprKind::Field(base, field) => self.check_expr_field(expr, base, field, expected),
414            ExprKind::Index(base, idx, brackets_span) => {
415                self.check_expr_index(base, idx, expr, brackets_span)
416            }
417            ExprKind::Yield(value, _) => self.check_expr_yield(value, expr),
418            ExprKind::UnsafeBinderCast(kind, inner_expr, ty) => {
419                self.check_expr_unsafe_binder_cast(expr.span, kind, inner_expr, ty, expected)
420            }
421            ExprKind::Err(guar) => Ty::new_error(tcx, guar),
422        }
423    }
424
425    fn check_expr_unop(
426        &self,
427        unop: hir::UnOp,
428        oprnd: &'tcx hir::Expr<'tcx>,
429        expected: Expectation<'tcx>,
430        expr: &'tcx hir::Expr<'tcx>,
431    ) -> Ty<'tcx> {
432        let tcx = self.tcx;
433        let expected_inner = match unop {
434            hir::UnOp::Not | hir::UnOp::Neg => expected,
435            hir::UnOp::Deref => NoExpectation,
436        };
437        let oprnd_t = self.check_expr_with_expectation(oprnd, expected_inner);
438
439        if let Err(guar) = oprnd_t.error_reported() {
440            return Ty::new_error(tcx, guar);
441        }
442
443        let oprnd_t = self.structurally_resolve_type(expr.span, oprnd_t);
444        match unop {
445            hir::UnOp::Deref => self.lookup_derefing(expr, oprnd, oprnd_t).unwrap_or_else(|| {
446                let mut err =
447                    self.dcx().create_err(CantDereference { span: expr.span, ty: oprnd_t });
448                let sp = tcx.sess.source_map().start_point(expr.span).with_parent(None);
449                if let Some(sp) = tcx.sess.psess.ambiguous_block_expr_parse.borrow().get(&sp) {
450                    err.subdiagnostic(ExprParenthesesNeeded::surrounding(*sp));
451                }
452                Ty::new_error(tcx, err.emit())
453            }),
454            hir::UnOp::Not => {
455                let result = self.check_user_unop(expr, oprnd_t, unop, expected_inner);
456                // If it's builtin, we can reuse the type, this helps inference.
457                if oprnd_t.is_integral() || *oprnd_t.kind() == ty::Bool { oprnd_t } else { result }
458            }
459            hir::UnOp::Neg => {
460                let result = self.check_user_unop(expr, oprnd_t, unop, expected_inner);
461                // If it's builtin, we can reuse the type, this helps inference.
462                if oprnd_t.is_numeric() { oprnd_t } else { result }
463            }
464        }
465    }
466
467    fn check_expr_addr_of(
468        &self,
469        kind: hir::BorrowKind,
470        mutbl: hir::Mutability,
471        oprnd: &'tcx hir::Expr<'tcx>,
472        expected: Expectation<'tcx>,
473        expr: &'tcx hir::Expr<'tcx>,
474    ) -> Ty<'tcx> {
475        let hint = expected.only_has_type(self).map_or(NoExpectation, |ty| {
476            match self.try_structurally_resolve_type(expr.span, ty).kind() {
477                ty::Ref(_, ty, _) | ty::RawPtr(ty, _) => {
478                    if oprnd.is_syntactic_place_expr() {
479                        // Places may legitimately have unsized types.
480                        // For example, dereferences of a wide pointer and
481                        // the last field of a struct can be unsized.
482                        ExpectHasType(*ty)
483                    } else {
484                        Expectation::rvalue_hint(self, *ty)
485                    }
486                }
487                _ => NoExpectation,
488            }
489        });
490        let ty =
491            self.check_expr_with_expectation_and_needs(oprnd, hint, Needs::maybe_mut_place(mutbl));
492        if let Err(guar) = ty.error_reported() {
493            return Ty::new_error(self.tcx, guar);
494        }
495
496        match kind {
497            hir::BorrowKind::Raw => {
498                self.check_named_place_expr(oprnd);
499                Ty::new_ptr(self.tcx, ty, mutbl)
500            }
501            hir::BorrowKind::Ref | hir::BorrowKind::Pin => {
502                // Note: at this point, we cannot say what the best lifetime
503                // is to use for resulting pointer. We want to use the
504                // shortest lifetime possible so as to avoid spurious borrowck
505                // errors. Moreover, the longest lifetime will depend on the
506                // precise details of the value whose address is being taken
507                // (and how long it is valid), which we don't know yet until
508                // type inference is complete.
509                //
510                // Therefore, here we simply generate a region variable. The
511                // region inferencer will then select a suitable value.
512                // Finally, borrowck will infer the value of the region again,
513                // this time with enough precision to check that the value
514                // whose address was taken can actually be made to live as long
515                // as it needs to live.
516                let region = self.next_region_var(RegionVariableOrigin::BorrowRegion(expr.span));
517                match kind {
518                    hir::BorrowKind::Ref => Ty::new_ref(self.tcx, region, ty, mutbl),
519                    hir::BorrowKind::Pin => Ty::new_pinned_ref(self.tcx, region, ty, mutbl),
520                    _ => ::core::panicking::panic("internal error: entered unreachable code")unreachable!(),
521                }
522            }
523        }
524    }
525
526    /// Does this expression refer to a place that either:
527    /// * Is based on a local or static.
528    /// * Contains a dereference
529    /// Note that the adjustments for the children of `expr` should already
530    /// have been resolved.
531    fn check_named_place_expr(&self, oprnd: &'tcx hir::Expr<'tcx>) {
532        let is_named = oprnd.is_place_expr(|base| {
533            // Allow raw borrows if there are any deref adjustments.
534            //
535            // const VAL: (i32,) = (0,);
536            // const REF: &(i32,) = &(0,);
537            //
538            // &raw const VAL.0;            // ERROR
539            // &raw const REF.0;            // OK, same as &raw const (*REF).0;
540            //
541            // This is maybe too permissive, since it allows
542            // `let u = &raw const Box::new((1,)).0`, which creates an
543            // immediately dangling raw pointer.
544            self.typeck_results
545                .borrow()
546                .adjustments()
547                .get(base.hir_id)
548                .is_some_and(|x| x.iter().any(|adj| #[allow(non_exhaustive_omitted_patterns)] match adj.kind {
    Adjust::Deref(_) => true,
    _ => false,
}matches!(adj.kind, Adjust::Deref(_))))
549        });
550        if !is_named {
551            self.dcx().emit_err(AddressOfTemporaryTaken { span: oprnd.span });
552        }
553    }
554
555    pub(crate) fn check_expr_path(
556        &self,
557        qpath: &'tcx hir::QPath<'tcx>,
558        expr: &'tcx hir::Expr<'tcx>,
559        call_expr_and_args: Option<(&'tcx hir::Expr<'tcx>, &'tcx [hir::Expr<'tcx>])>,
560    ) -> Ty<'tcx> {
561        let tcx = self.tcx;
562
563        if let Some((_, [arg])) = call_expr_and_args
564            && let QPath::Resolved(_, path) = qpath
565            && let Res::Def(_, def_id) = path.res
566            && let Some(lang_item) = tcx.lang_items().from_def_id(def_id)
567        {
568            let code = match lang_item {
569                LangItem::IntoFutureIntoFuture
570                    if expr.span.is_desugaring(DesugaringKind::Await) =>
571                {
572                    Some(ObligationCauseCode::AwaitableExpr(arg.hir_id))
573                }
574                LangItem::IntoIterIntoIter | LangItem::IteratorNext
575                    if expr.span.is_desugaring(DesugaringKind::ForLoop) =>
576                {
577                    Some(ObligationCauseCode::ForLoopIterator)
578                }
579                LangItem::TryTraitFromOutput
580                    if expr.span.is_desugaring(DesugaringKind::TryBlock) =>
581                {
582                    // FIXME it's a try block, not a question mark
583                    Some(ObligationCauseCode::QuestionMark)
584                }
585                LangItem::TryTraitBranch | LangItem::TryTraitFromResidual
586                    if expr.span.is_desugaring(DesugaringKind::QuestionMark) =>
587                {
588                    Some(ObligationCauseCode::QuestionMark)
589                }
590                _ => None,
591            };
592            if let Some(code) = code {
593                let args = self.fresh_args_for_item(expr.span, def_id);
594                self.add_required_obligations_with_code(expr.span, def_id, args, |_, _| {
595                    code.clone()
596                });
597                return tcx.type_of(def_id).instantiate(tcx, args);
598            }
599        }
600
601        let (res, opt_ty, segs) =
602            self.resolve_ty_and_res_fully_qualified_call(qpath, expr.hir_id, expr.span);
603        let ty = match res {
604            Res::Err => {
605                self.suggest_assoc_method_call(segs);
606                let e =
607                    self.dcx().span_delayed_bug(qpath.span(), "`Res::Err` but no error emitted");
608                Ty::new_error(tcx, e)
609            }
610            Res::Def(DefKind::Variant, _) => {
611                let e = report_unexpected_variant_res(
612                    tcx,
613                    res,
614                    Some(expr),
615                    qpath,
616                    expr.span,
617                    E0533,
618                    "value",
619                );
620                Ty::new_error(tcx, e)
621            }
622            _ => {
623                self.instantiate_value_path(
624                    segs,
625                    opt_ty,
626                    res,
627                    call_expr_and_args.map_or(expr.span, |(e, _)| e.span),
628                    expr.span,
629                    expr.hir_id,
630                )
631                .0
632            }
633        };
634
635        if let ty::FnDef(did, _) = *ty.kind() {
636            let fn_sig = ty.fn_sig(tcx);
637
638            if tcx.is_intrinsic(did, sym::transmute) {
639                let Some(from) = fn_sig.inputs().skip_binder().get(0) else {
640                    ::rustc_middle::util::bug::span_bug_fmt(tcx.def_span(did),
    format_args!("intrinsic fn `transmute` defined with no parameters"));span_bug!(
641                        tcx.def_span(did),
642                        "intrinsic fn `transmute` defined with no parameters"
643                    );
644                };
645                let to = fn_sig.output().skip_binder();
646                // We defer the transmute to the end of typeck, once all inference vars have
647                // been resolved or we errored. This is important as we can only check transmute
648                // on concrete types, but the output type may not be known yet (it would only
649                // be known if explicitly specified via turbofish).
650                self.deferred_transmute_checks.borrow_mut().push((*from, to, expr.hir_id));
651            }
652            if !tcx.features().unsized_fn_params() {
653                // We want to remove some Sized bounds from std functions,
654                // but don't want to expose the removal to stable Rust.
655                // i.e., we don't want to allow
656                //
657                // ```rust
658                // drop as fn(str);
659                // ```
660                //
661                // to work in stable even if the Sized bound on `drop` is relaxed.
662                for i in 0..fn_sig.inputs().skip_binder().len() {
663                    // We just want to check sizedness, so instead of introducing
664                    // placeholder lifetimes with probing, we just replace higher lifetimes
665                    // with fresh vars.
666                    let span = call_expr_and_args
667                        .and_then(|(_, args)| args.get(i))
668                        .map_or(expr.span, |arg| arg.span);
669                    let input = self.instantiate_binder_with_fresh_vars(
670                        span,
671                        infer::BoundRegionConversionTime::FnCall,
672                        fn_sig.input(i),
673                    );
674                    self.require_type_is_sized_deferred(
675                        input,
676                        span,
677                        ObligationCauseCode::SizedArgumentType(None),
678                    );
679                }
680            }
681            // Here we want to prevent struct constructors from returning unsized types,
682            // which can happen with fn pointer coercion on stable.
683            // Also, as we just want to check sizedness, instead of introducing
684            // placeholder lifetimes with probing, we just replace higher lifetimes
685            // with fresh vars.
686            let output = self.instantiate_binder_with_fresh_vars(
687                expr.span,
688                infer::BoundRegionConversionTime::FnCall,
689                fn_sig.output(),
690            );
691            self.require_type_is_sized_deferred(
692                output,
693                call_expr_and_args.map_or(expr.span, |(e, _)| e.span),
694                ObligationCauseCode::SizedCallReturnType,
695            );
696        }
697
698        // We always require that the type provided as the value for
699        // a type parameter outlives the moment of instantiation.
700        let args = self.typeck_results.borrow().node_args(expr.hir_id);
701        self.add_wf_bounds(args, expr.span);
702
703        ty
704    }
705
706    fn check_expr_break(
707        &self,
708        destination: hir::Destination,
709        expr_opt: Option<&'tcx hir::Expr<'tcx>>,
710        expr: &'tcx hir::Expr<'tcx>,
711    ) -> Ty<'tcx> {
712        let tcx = self.tcx;
713        if let Ok(target_id) = destination.target_id {
714            let (e_ty, cause);
715            if let Some(e) = expr_opt {
716                // If this is a break with a value, we need to type-check
717                // the expression. Get an expected type from the loop context.
718                let opt_coerce_to = {
719                    // We should release `enclosing_breakables` before the `check_expr_with_hint`
720                    // below, so can't move this block of code to the enclosing scope and share
721                    // `ctxt` with the second `enclosing_breakables` borrow below.
722                    let mut enclosing_breakables = self.enclosing_breakables.borrow_mut();
723                    match enclosing_breakables.opt_find_breakable(target_id) {
724                        Some(ctxt) => ctxt.coerce.as_ref().map(|coerce| coerce.expected_ty()),
725                        None => {
726                            // Avoid ICE when `break` is inside a closure (#65383).
727                            return Ty::new_error_with_message(
728                                tcx,
729                                expr.span,
730                                "break was outside loop, but no error was emitted",
731                            );
732                        }
733                    }
734                };
735
736                // If the loop context is not a `loop { }`, then break with
737                // a value is illegal, and `opt_coerce_to` will be `None`.
738                // Set expectation to error in that case and set tainted
739                // by error (#114529)
740                let coerce_to = opt_coerce_to.unwrap_or_else(|| {
741                    let guar = self.dcx().span_delayed_bug(
742                        expr.span,
743                        "illegal break with value found but no error reported",
744                    );
745                    self.set_tainted_by_errors(guar);
746                    Ty::new_error(tcx, guar)
747                });
748
749                // Recurse without `enclosing_breakables` borrowed.
750                e_ty = self.check_expr_with_hint(e, coerce_to);
751                cause = self.misc(e.span);
752            } else {
753                // Otherwise, this is a break *without* a value. That's
754                // always legal, and is equivalent to `break ()`.
755                e_ty = tcx.types.unit;
756                cause = self.misc(expr.span);
757            }
758
759            // Now that we have type-checked `expr_opt`, borrow
760            // the `enclosing_loops` field and let's coerce the
761            // type of `expr_opt` into what is expected.
762            let mut enclosing_breakables = self.enclosing_breakables.borrow_mut();
763            let Some(ctxt) = enclosing_breakables.opt_find_breakable(target_id) else {
764                // Avoid ICE when `break` is inside a closure (#65383).
765                return Ty::new_error_with_message(
766                    tcx,
767                    expr.span,
768                    "break was outside loop, but no error was emitted",
769                );
770            };
771
772            if let Some(ref mut coerce) = ctxt.coerce {
773                if let Some(e) = expr_opt {
774                    coerce.coerce(self, &cause, e, e_ty);
775                } else {
776                    if !e_ty.is_unit() {
    ::core::panicking::panic("assertion failed: e_ty.is_unit()")
};assert!(e_ty.is_unit());
777                    let ty = coerce.expected_ty();
778                    coerce.coerce_forced_unit(
779                        self,
780                        &cause,
781                        |mut err| {
782                            self.suggest_missing_semicolon(&mut err, expr, e_ty, false, false);
783                            self.suggest_mismatched_types_on_tail(
784                                &mut err, expr, ty, e_ty, target_id,
785                            );
786                            let error =
787                                Some(TypeError::Sorts(ExpectedFound { expected: ty, found: e_ty }));
788                            self.annotate_loop_expected_due_to_inference(err, expr, error);
789                            if let Some(val) =
790                                self.err_ctxt().ty_kind_suggestion(self.param_env, ty)
791                            {
792                                err.span_suggestion_verbose(
793                                    expr.span.shrink_to_hi(),
794                                    "give the `break` a value of the expected type",
795                                    ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!(" {0}", val))
    })format!(" {val}"),
796                                    Applicability::HasPlaceholders,
797                                );
798                            }
799                        },
800                        false,
801                    );
802                }
803            } else {
804                // If `ctxt.coerce` is `None`, we can just ignore
805                // the type of the expression. This is because
806                // either this was a break *without* a value, in
807                // which case it is always a legal type (`()`), or
808                // else an error would have been flagged by the
809                // `loops` pass for using break with an expression
810                // where you are not supposed to.
811                if !(expr_opt.is_none() || self.tainted_by_errors().is_some()) {
    ::core::panicking::panic("assertion failed: expr_opt.is_none() || self.tainted_by_errors().is_some()")
};assert!(expr_opt.is_none() || self.tainted_by_errors().is_some());
812            }
813
814            // If we encountered a `break`, then (no surprise) it may be possible to break from the
815            // loop... unless the value being returned from the loop diverges itself, e.g.
816            // `break return 5` or `break loop {}`.
817            ctxt.may_break |= !self.diverges.get().is_always();
818
819            // the type of a `break` is always `!`, since it diverges
820            tcx.types.never
821        } else {
822            // Otherwise, we failed to find the enclosing loop;
823            // this can only happen if the `break` was not
824            // inside a loop at all, which is caught by the
825            // loop-checking pass.
826            let err = Ty::new_error_with_message(
827                self.tcx,
828                expr.span,
829                "break was outside loop, but no error was emitted",
830            );
831
832            // We still need to assign a type to the inner expression to
833            // prevent the ICE in #43162.
834            if let Some(e) = expr_opt {
835                self.check_expr_with_hint(e, err);
836
837                // ... except when we try to 'break rust;'.
838                // ICE this expression in particular (see #43162).
839                if let ExprKind::Path(QPath::Resolved(_, path)) = e.kind {
840                    if let [segment] = path.segments
841                        && segment.ident.name == sym::rust
842                    {
843                        fatally_break_rust(self.tcx, expr.span);
844                    }
845                }
846            }
847
848            // There was an error; make type-check fail.
849            err
850        }
851    }
852
853    fn check_expr_continue(
854        &self,
855        destination: hir::Destination,
856        expr: &'tcx hir::Expr<'tcx>,
857    ) -> Ty<'tcx> {
858        if let Ok(target_id) = destination.target_id {
859            if let hir::Node::Expr(hir::Expr { kind: ExprKind::Loop(..), .. }) =
860                self.tcx.hir_node(target_id)
861            {
862                self.tcx.types.never
863            } else {
864                // Liveness linting assumes `continue`s all point to loops. We'll report an error
865                // in `check_mod_loops`, but make sure we don't run liveness (#113379, #121623).
866                let guar = self.dcx().span_delayed_bug(
867                    expr.span,
868                    "found `continue` not pointing to loop, but no error reported",
869                );
870                Ty::new_error(self.tcx, guar)
871            }
872        } else {
873            // There was an error; make type-check fail.
874            Ty::new_misc_error(self.tcx)
875        }
876    }
877
878    fn check_expr_return(
879        &self,
880        expr_opt: Option<&'tcx hir::Expr<'tcx>>,
881        expr: &'tcx hir::Expr<'tcx>,
882    ) -> Ty<'tcx> {
883        if self.ret_coercion.is_none() {
884            self.emit_return_outside_of_fn_body(expr, ReturnLikeStatementKind::Return);
885
886            if let Some(e) = expr_opt {
887                // We still have to type-check `e` (issue #86188), but calling
888                // `check_return_expr` only works inside fn bodies.
889                self.check_expr(e);
890            }
891        } else if let Some(e) = expr_opt {
892            if self.ret_coercion_span.get().is_none() {
893                self.ret_coercion_span.set(Some(e.span));
894            }
895            self.check_return_or_body_tail(e, true);
896        } else {
897            let mut coercion = self.ret_coercion.as_ref().unwrap().borrow_mut();
898            if self.ret_coercion_span.get().is_none() {
899                self.ret_coercion_span.set(Some(expr.span));
900            }
901            let cause = self.cause(expr.span, ObligationCauseCode::ReturnNoExpression);
902            if let Some((_, fn_decl)) = self.get_fn_decl(expr.hir_id) {
903                coercion.coerce_forced_unit(
904                    self,
905                    &cause,
906                    |db| {
907                        let span = fn_decl.output.span();
908                        if let Ok(snippet) = self.tcx.sess.source_map().span_to_snippet(span) {
909                            db.span_label(
910                                span,
911                                ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("expected `{0}` because of this return type",
                snippet))
    })format!("expected `{snippet}` because of this return type"),
912                            );
913                        }
914                    },
915                    true,
916                );
917            } else {
918                coercion.coerce_forced_unit(self, &cause, |_| (), true);
919            }
920        }
921        self.tcx.types.never
922    }
923
924    fn check_expr_become(
925        &self,
926        call: &'tcx hir::Expr<'tcx>,
927        expr: &'tcx hir::Expr<'tcx>,
928    ) -> Ty<'tcx> {
929        match &self.ret_coercion {
930            Some(ret_coercion) => {
931                let ret_ty = ret_coercion.borrow().expected_ty();
932                let call_expr_ty = self.check_expr_with_hint(call, ret_ty);
933
934                // N.B. don't coerce here, as tail calls can't support most/all coercions
935                // FIXME(explicit_tail_calls): add a diagnostic note that `become` doesn't allow coercions
936                self.demand_suptype(expr.span, ret_ty, call_expr_ty);
937            }
938            None => {
939                self.emit_return_outside_of_fn_body(expr, ReturnLikeStatementKind::Become);
940
941                // Fallback to simply type checking `call` without hint/demanding the right types.
942                // Best effort to highlight more errors.
943                self.check_expr(call);
944            }
945        }
946
947        self.tcx.types.never
948    }
949
950    /// Check an expression that _is being returned_.
951    /// For example, this is called with `return_expr: $expr` when `return $expr`
952    /// is encountered.
953    ///
954    /// Note that this function must only be called in function bodies.
955    ///
956    /// `explicit_return` is `true` if we're checking an explicit `return expr`,
957    /// and `false` if we're checking a trailing expression.
958    pub(super) fn check_return_or_body_tail(
959        &self,
960        return_expr: &'tcx hir::Expr<'tcx>,
961        explicit_return: bool,
962    ) {
963        let ret_coercion = self.ret_coercion.as_ref().unwrap_or_else(|| {
964            ::rustc_middle::util::bug::span_bug_fmt(return_expr.span,
    format_args!("check_return_expr called outside fn body"))span_bug!(return_expr.span, "check_return_expr called outside fn body")
965        });
966
967        let ret_ty = ret_coercion.borrow().expected_ty();
968        let return_expr_ty = self.check_expr_with_hint(return_expr, ret_ty);
969        let mut span = return_expr.span;
970        let mut hir_id = return_expr.hir_id;
971        // Use the span of the trailing expression for our cause,
972        // not the span of the entire function
973        if !explicit_return
974            && let ExprKind::Block(body, _) = return_expr.kind
975            && let Some(last_expr) = body.expr
976        {
977            span = last_expr.span;
978            hir_id = last_expr.hir_id;
979        }
980        ret_coercion.borrow_mut().coerce(
981            self,
982            &self.cause(span, ObligationCauseCode::ReturnValue(return_expr.hir_id)),
983            return_expr,
984            return_expr_ty,
985        );
986
987        if let Some(fn_sig) = self.body_fn_sig()
988            && fn_sig.output().has_opaque_types()
989        {
990            // Point any obligations that were registered due to opaque type
991            // inference at the return expression.
992            self.select_obligations_where_possible(|errors| {
993                self.point_at_return_for_opaque_ty_error(
994                    errors,
995                    hir_id,
996                    span,
997                    return_expr_ty,
998                    return_expr.span,
999                );
1000            });
1001        }
1002    }
1003
1004    /// Emit an error because `return` or `become` is used outside of a function body.
1005    ///
1006    /// `expr` is the `return` (`become`) "statement", `kind` is the kind of the statement
1007    /// either `Return` or `Become`.
1008    fn emit_return_outside_of_fn_body(&self, expr: &hir::Expr<'_>, kind: ReturnLikeStatementKind) {
1009        let mut err = ReturnStmtOutsideOfFnBody {
1010            span: expr.span,
1011            encl_body_span: None,
1012            encl_fn_span: None,
1013            statement_kind: kind,
1014        };
1015
1016        let encl_item_id = self.tcx.hir_get_parent_item(expr.hir_id);
1017
1018        if let hir::Node::Item(hir::Item {
1019            kind: hir::ItemKind::Fn { .. },
1020            span: encl_fn_span,
1021            ..
1022        })
1023        | hir::Node::TraitItem(hir::TraitItem {
1024            kind: hir::TraitItemKind::Fn(_, hir::TraitFn::Provided(_)),
1025            span: encl_fn_span,
1026            ..
1027        })
1028        | hir::Node::ImplItem(hir::ImplItem {
1029            kind: hir::ImplItemKind::Fn(..),
1030            span: encl_fn_span,
1031            ..
1032        }) = self.tcx.hir_node_by_def_id(encl_item_id.def_id)
1033        {
1034            // We are inside a function body, so reporting "return statement
1035            // outside of function body" needs an explanation.
1036
1037            let encl_body_owner_id = self.tcx.hir_enclosing_body_owner(expr.hir_id);
1038
1039            // If this didn't hold, we would not have to report an error in
1040            // the first place.
1041            match (&encl_item_id.def_id, &encl_body_owner_id) {
    (left_val, right_val) => {
        if *left_val == *right_val {
            let kind = ::core::panicking::AssertKind::Ne;
            ::core::panicking::assert_failed(kind, &*left_val, &*right_val,
                ::core::option::Option::None);
        }
    }
};assert_ne!(encl_item_id.def_id, encl_body_owner_id);
1042
1043            let encl_body = self.tcx.hir_body_owned_by(encl_body_owner_id);
1044
1045            err.encl_body_span = Some(encl_body.value.span);
1046            err.encl_fn_span = Some(*encl_fn_span);
1047        }
1048
1049        self.dcx().emit_err(err);
1050    }
1051
1052    fn point_at_return_for_opaque_ty_error(
1053        &self,
1054        errors: &mut Vec<traits::FulfillmentError<'tcx>>,
1055        hir_id: HirId,
1056        span: Span,
1057        return_expr_ty: Ty<'tcx>,
1058        return_span: Span,
1059    ) {
1060        // Don't point at the whole block if it's empty
1061        if span == return_span {
1062            return;
1063        }
1064        for err in errors {
1065            let cause = &mut err.obligation.cause;
1066            if let ObligationCauseCode::OpaqueReturnType(None) = cause.code() {
1067                let new_cause = self.cause(
1068                    cause.span,
1069                    ObligationCauseCode::OpaqueReturnType(Some((return_expr_ty, hir_id))),
1070                );
1071                *cause = new_cause;
1072            }
1073        }
1074    }
1075
1076    pub(crate) fn check_lhs_assignable(
1077        &self,
1078        lhs: &'tcx hir::Expr<'tcx>,
1079        code: ErrCode,
1080        op_span: Span,
1081        adjust_err: impl FnOnce(&mut Diag<'_>),
1082    ) {
1083        if lhs.is_syntactic_place_expr() {
1084            return;
1085        }
1086
1087        // Skip suggestion if LHS contains a let-chain at this would likely be spurious
1088        // cc: https://github.com/rust-lang/rust/issues/147664
1089        if contains_let_in_chain(lhs) {
1090            return;
1091        }
1092
1093        let mut err = self.dcx().struct_span_err(op_span, "invalid left-hand side of assignment");
1094        err.code(code);
1095        err.span_label(lhs.span, "cannot assign to this expression");
1096
1097        self.comes_from_while_condition(lhs.hir_id, |expr| {
1098            err.span_suggestion_verbose(
1099                expr.span.shrink_to_lo(),
1100                "you might have meant to use pattern destructuring",
1101                "let ",
1102                Applicability::MachineApplicable,
1103            );
1104        });
1105        self.check_for_missing_semi(lhs, &mut err);
1106
1107        adjust_err(&mut err);
1108
1109        err.emit();
1110    }
1111
1112    /// Check if the expression that could not be assigned to was a typoed expression that
1113    pub(crate) fn check_for_missing_semi(
1114        &self,
1115        expr: &'tcx hir::Expr<'tcx>,
1116        err: &mut Diag<'_>,
1117    ) -> bool {
1118        if let hir::ExprKind::Binary(binop, lhs, rhs) = expr.kind
1119            && let hir::BinOpKind::Mul = binop.node
1120            && self.tcx.sess.source_map().is_multiline(lhs.span.between(rhs.span))
1121            && rhs.is_syntactic_place_expr()
1122        {
1123            //      v missing semicolon here
1124            // foo()
1125            // *bar = baz;
1126            // (#80446).
1127            err.span_suggestion_verbose(
1128                lhs.span.shrink_to_hi(),
1129                "you might have meant to write a semicolon here",
1130                ";",
1131                Applicability::MachineApplicable,
1132            );
1133            return true;
1134        }
1135        false
1136    }
1137
1138    // Check if an expression `original_expr_id` comes from the condition of a while loop,
1139    /// as opposed from the body of a while loop, which we can naively check by iterating
1140    /// parents until we find a loop...
1141    pub(super) fn comes_from_while_condition(
1142        &self,
1143        original_expr_id: HirId,
1144        then: impl FnOnce(&hir::Expr<'_>),
1145    ) {
1146        let mut parent = self.tcx.parent_hir_id(original_expr_id);
1147        loop {
1148            let node = self.tcx.hir_node(parent);
1149            match node {
1150                hir::Node::Expr(hir::Expr {
1151                    kind:
1152                        hir::ExprKind::Loop(
1153                            hir::Block {
1154                                expr:
1155                                    Some(hir::Expr {
1156                                        kind:
1157                                            hir::ExprKind::Match(expr, ..) | hir::ExprKind::If(expr, ..),
1158                                        ..
1159                                    }),
1160                                ..
1161                            },
1162                            _,
1163                            hir::LoopSource::While,
1164                            _,
1165                        ),
1166                    ..
1167                }) => {
1168                    // Check if our original expression is a child of the condition of a while loop.
1169                    // If it is, then we have a situation like `while Some(0) = value.get(0) {`,
1170                    // where `while let` was more likely intended.
1171                    if self.tcx.hir_parent_id_iter(original_expr_id).any(|id| id == expr.hir_id) {
1172                        then(expr);
1173                    }
1174                    break;
1175                }
1176                hir::Node::Item(_)
1177                | hir::Node::ImplItem(_)
1178                | hir::Node::TraitItem(_)
1179                | hir::Node::Crate(_) => break,
1180                _ => {
1181                    parent = self.tcx.parent_hir_id(parent);
1182                }
1183            }
1184        }
1185    }
1186
1187    // A generic function for checking the 'then' and 'else' clauses in an 'if'
1188    // or 'if-else' expression.
1189    fn check_expr_if(
1190        &self,
1191        expr_id: HirId,
1192        cond_expr: &'tcx hir::Expr<'tcx>,
1193        then_expr: &'tcx hir::Expr<'tcx>,
1194        opt_else_expr: Option<&'tcx hir::Expr<'tcx>>,
1195        sp: Span,
1196        orig_expected: Expectation<'tcx>,
1197    ) -> Ty<'tcx> {
1198        let cond_ty = self.check_expr_has_type_or_error(cond_expr, self.tcx.types.bool, |_| {});
1199
1200        self.warn_if_unreachable(
1201            cond_expr.hir_id,
1202            then_expr.span,
1203            "block in `if` or `while` expression",
1204        );
1205
1206        let cond_diverges = self.diverges.get();
1207        self.diverges.set(Diverges::Maybe);
1208
1209        let expected = orig_expected.try_structurally_resolve_and_adjust_for_branches(self, sp);
1210        let then_ty = self.check_expr_with_expectation(then_expr, expected);
1211        let then_diverges = self.diverges.get();
1212        self.diverges.set(Diverges::Maybe);
1213
1214        // We've already taken the expected type's preferences
1215        // into account when typing the `then` branch. To figure
1216        // out the initial shot at a LUB, we thus only consider
1217        // `expected` if it represents a *hard* constraint
1218        // (`only_has_type`); otherwise, we just go with a
1219        // fresh type variable.
1220        let coerce_to_ty = expected.coercion_target_type(self, sp);
1221        let mut coerce = CoerceMany::with_capacity(coerce_to_ty, 2);
1222
1223        coerce.coerce(self, &self.misc(sp), then_expr, then_ty);
1224
1225        if let Some(else_expr) = opt_else_expr {
1226            let else_ty = self.check_expr_with_expectation(else_expr, expected);
1227            let else_diverges = self.diverges.get();
1228
1229            let tail_defines_return_position_impl_trait =
1230                self.return_position_impl_trait_from_match_expectation(orig_expected);
1231            let if_cause =
1232                self.if_cause(expr_id, else_expr, tail_defines_return_position_impl_trait);
1233
1234            coerce.coerce(self, &if_cause, else_expr, else_ty);
1235
1236            // We won't diverge unless both branches do (or the condition does).
1237            self.diverges.set(cond_diverges | then_diverges & else_diverges);
1238        } else {
1239            self.if_fallback_coercion(sp, cond_expr, then_expr, &mut coerce);
1240
1241            // If the condition is false we can't diverge.
1242            self.diverges.set(cond_diverges);
1243        }
1244
1245        let result_ty = coerce.complete(self);
1246        if let Err(guar) = cond_ty.error_reported() {
1247            Ty::new_error(self.tcx, guar)
1248        } else {
1249            result_ty
1250        }
1251    }
1252
1253    /// Type check assignment expression `expr` of form `lhs = rhs`.
1254    /// The expected type is `()` and is passed to the function for the purposes of diagnostics.
1255    fn check_expr_assign(
1256        &self,
1257        expr: &'tcx hir::Expr<'tcx>,
1258        expected: Expectation<'tcx>,
1259        lhs: &'tcx hir::Expr<'tcx>,
1260        rhs: &'tcx hir::Expr<'tcx>,
1261        span: Span,
1262    ) -> Ty<'tcx> {
1263        let expected_ty = expected.only_has_type(self);
1264        if expected_ty == Some(self.tcx.types.bool) {
1265            let guar = self.expr_assign_expected_bool_error(expr, lhs, rhs, span);
1266            return Ty::new_error(self.tcx, guar);
1267        }
1268
1269        let lhs_ty = self.check_expr_with_needs(lhs, Needs::MutPlace);
1270
1271        let suggest_deref_binop = |err: &mut Diag<'_>, rhs_ty: Ty<'tcx>| {
1272            if let Some(lhs_deref_ty) = self.deref_once_mutably_for_diagnostic(lhs_ty) {
1273                // Can only assign if the type is sized, so if `DerefMut` yields a type that is
1274                // unsized, do not suggest dereferencing it.
1275                let lhs_deref_ty_is_sized = self
1276                    .infcx
1277                    .type_implements_trait(
1278                        self.tcx.require_lang_item(LangItem::Sized, span),
1279                        [lhs_deref_ty],
1280                        self.param_env,
1281                    )
1282                    .may_apply();
1283                if lhs_deref_ty_is_sized && self.may_coerce(rhs_ty, lhs_deref_ty) {
1284                    err.span_suggestion_verbose(
1285                        lhs.span.shrink_to_lo(),
1286                        "consider dereferencing here to assign to the mutably borrowed value",
1287                        "*",
1288                        Applicability::MachineApplicable,
1289                    );
1290                }
1291            }
1292        };
1293
1294        // This is (basically) inlined `check_expr_coercible_to_type`, but we want
1295        // to suggest an additional fixup here in `suggest_deref_binop`.
1296        let rhs_ty = self.check_expr_with_hint(rhs, lhs_ty);
1297        if let Err(mut diag) =
1298            self.demand_coerce_diag(rhs, rhs_ty, lhs_ty, Some(lhs), AllowTwoPhase::No)
1299        {
1300            suggest_deref_binop(&mut diag, rhs_ty);
1301            diag.emit();
1302        }
1303
1304        self.check_lhs_assignable(lhs, E0070, span, |err| {
1305            if let Some(rhs_ty) = self.typeck_results.borrow().expr_ty_opt(rhs) {
1306                suggest_deref_binop(err, rhs_ty);
1307            }
1308        });
1309
1310        self.require_type_is_sized(lhs_ty, lhs.span, ObligationCauseCode::AssignmentLhsSized);
1311
1312        if let Err(guar) = (lhs_ty, rhs_ty).error_reported() {
1313            Ty::new_error(self.tcx, guar)
1314        } else {
1315            self.tcx.types.unit
1316        }
1317    }
1318
1319    /// The expected type is `bool` but this will result in `()` so we can reasonably
1320    /// say that the user intended to write `lhs == rhs` instead of `lhs = rhs`.
1321    /// The likely cause of this is `if foo = bar { .. }`.
1322    fn expr_assign_expected_bool_error(
1323        &self,
1324        expr: &'tcx hir::Expr<'tcx>,
1325        lhs: &'tcx hir::Expr<'tcx>,
1326        rhs: &'tcx hir::Expr<'tcx>,
1327        span: Span,
1328    ) -> ErrorGuaranteed {
1329        let actual_ty = self.tcx.types.unit;
1330        let expected_ty = self.tcx.types.bool;
1331        let mut err = self.demand_suptype_diag(expr.span, expected_ty, actual_ty).unwrap_err();
1332        let lhs_ty = self.check_expr(lhs);
1333        let rhs_ty = self.check_expr(rhs);
1334        let refs_can_coerce = |lhs: Ty<'tcx>, rhs: Ty<'tcx>| {
1335            let lhs = Ty::new_imm_ref(self.tcx, self.tcx.lifetimes.re_erased, lhs.peel_refs());
1336            let rhs = Ty::new_imm_ref(self.tcx, self.tcx.lifetimes.re_erased, rhs.peel_refs());
1337            self.may_coerce(rhs, lhs)
1338        };
1339        let (applicability, eq) = if self.may_coerce(rhs_ty, lhs_ty) {
1340            (Applicability::MachineApplicable, true)
1341        } else if refs_can_coerce(rhs_ty, lhs_ty) {
1342            // The lhs and rhs are likely missing some references in either side. Subsequent
1343            // suggestions will show up.
1344            (Applicability::MaybeIncorrect, true)
1345        } else if let ExprKind::Binary(
1346            Spanned { node: hir::BinOpKind::And | hir::BinOpKind::Or, .. },
1347            _,
1348            rhs_expr,
1349        ) = lhs.kind
1350        {
1351            // if x == 1 && y == 2 { .. }
1352            //                 +
1353            let actual_lhs = self.check_expr(rhs_expr);
1354            let may_eq = self.may_coerce(rhs_ty, actual_lhs) || refs_can_coerce(rhs_ty, actual_lhs);
1355            (Applicability::MaybeIncorrect, may_eq)
1356        } else if let ExprKind::Binary(
1357            Spanned { node: hir::BinOpKind::And | hir::BinOpKind::Or, .. },
1358            lhs_expr,
1359            _,
1360        ) = rhs.kind
1361        {
1362            // if x == 1 && y == 2 { .. }
1363            //       +
1364            let actual_rhs = self.check_expr(lhs_expr);
1365            let may_eq = self.may_coerce(actual_rhs, lhs_ty) || refs_can_coerce(actual_rhs, lhs_ty);
1366            (Applicability::MaybeIncorrect, may_eq)
1367        } else {
1368            (Applicability::MaybeIncorrect, false)
1369        };
1370
1371        if !lhs.is_syntactic_place_expr()
1372            && lhs.is_approximately_pattern()
1373            && !#[allow(non_exhaustive_omitted_patterns)] match lhs.kind {
    hir::ExprKind::Lit(_) => true,
    _ => false,
}matches!(lhs.kind, hir::ExprKind::Lit(_))
1374        {
1375            // Do not suggest `if let x = y` as `==` is way more likely to be the intention.
1376            if let hir::Node::Expr(hir::Expr { kind: ExprKind::If { .. }, .. }) =
1377                self.tcx.parent_hir_node(expr.hir_id)
1378            {
1379                err.span_suggestion_verbose(
1380                    expr.span.shrink_to_lo(),
1381                    "you might have meant to use pattern matching",
1382                    "let ",
1383                    applicability,
1384                );
1385            };
1386        }
1387        if eq {
1388            err.span_suggestion_verbose(
1389                span.shrink_to_hi(),
1390                "you might have meant to compare for equality",
1391                '=',
1392                applicability,
1393            );
1394        }
1395
1396        // If the assignment expression itself is ill-formed, don't
1397        // bother emitting another error
1398        err.emit_unless_delay(lhs_ty.references_error() || rhs_ty.references_error())
1399    }
1400
1401    pub(super) fn check_expr_let(
1402        &self,
1403        let_expr: &'tcx hir::LetExpr<'tcx>,
1404        hir_id: HirId,
1405    ) -> Ty<'tcx> {
1406        GatherLocalsVisitor::gather_from_let_expr(self, let_expr, hir_id);
1407
1408        // for let statements, this is done in check_stmt
1409        let init = let_expr.init;
1410        self.warn_if_unreachable(init.hir_id, init.span, "block in `let` expression");
1411
1412        // otherwise check exactly as a let statement
1413        self.check_decl((let_expr, hir_id).into());
1414
1415        // but return a bool, for this is a boolean expression
1416        if let ast::Recovered::Yes(error_guaranteed) = let_expr.recovered {
1417            self.set_tainted_by_errors(error_guaranteed);
1418            Ty::new_error(self.tcx, error_guaranteed)
1419        } else {
1420            self.tcx.types.bool
1421        }
1422    }
1423
1424    fn check_expr_loop(
1425        &self,
1426        body: &'tcx hir::Block<'tcx>,
1427        source: hir::LoopSource,
1428        expected: Expectation<'tcx>,
1429        expr: &'tcx hir::Expr<'tcx>,
1430    ) -> Ty<'tcx> {
1431        let coerce = match source {
1432            // you can only use break with a value from a normal `loop { }`
1433            hir::LoopSource::Loop => {
1434                let coerce_to = expected.coercion_target_type(self, body.span);
1435                Some(CoerceMany::new(coerce_to))
1436            }
1437
1438            hir::LoopSource::While | hir::LoopSource::ForLoop => None,
1439        };
1440
1441        let ctxt = BreakableCtxt {
1442            coerce,
1443            may_break: false, // Will get updated if/when we find a `break`.
1444        };
1445
1446        let (ctxt, ()) = self.with_breakable_ctxt(expr.hir_id, ctxt, || {
1447            self.check_block_no_value(body);
1448        });
1449
1450        if ctxt.may_break {
1451            // No way to know whether it's diverging because
1452            // of a `break` or an outer `break` or `return`.
1453            self.diverges.set(Diverges::Maybe);
1454        } else {
1455            self.diverges.set(self.diverges.get() | Diverges::always(expr.span));
1456        }
1457
1458        // If we permit break with a value, then result type is
1459        // the LUB of the breaks (possibly ! if none); else, it
1460        // is nil. This makes sense because infinite loops
1461        // (which would have type !) are only possible iff we
1462        // permit break with a value.
1463        if ctxt.coerce.is_none() && !ctxt.may_break {
1464            self.dcx().span_bug(body.span, "no coercion, but loop may not break");
1465        }
1466        ctxt.coerce.map(|c| c.complete(self)).unwrap_or_else(|| self.tcx.types.unit)
1467    }
1468
1469    /// Checks a method call.
1470    fn check_expr_method_call(
1471        &self,
1472        expr: &'tcx hir::Expr<'tcx>,
1473        segment: &'tcx hir::PathSegment<'tcx>,
1474        rcvr: &'tcx hir::Expr<'tcx>,
1475        args: &'tcx [hir::Expr<'tcx>],
1476        expected: Expectation<'tcx>,
1477    ) -> Ty<'tcx> {
1478        let rcvr_t = self.check_expr(rcvr);
1479        let rcvr_t = self.try_structurally_resolve_type(rcvr.span, rcvr_t);
1480
1481        match self.lookup_method(rcvr_t, segment, segment.ident.span, expr, rcvr, args) {
1482            Ok(method) => {
1483                self.write_method_call_and_enforce_effects(expr.hir_id, expr.span, method);
1484
1485                self.check_argument_types(
1486                    segment.ident.span,
1487                    expr,
1488                    &method.sig.inputs()[1..],
1489                    method.sig.output(),
1490                    expected,
1491                    args,
1492                    method.sig.c_variadic,
1493                    TupleArgumentsFlag::DontTupleArguments,
1494                    Some(method.def_id),
1495                );
1496
1497                self.check_call_abi(method.sig.abi, expr.span);
1498
1499                method.sig.output()
1500            }
1501            Err(error) => {
1502                let guar = self.report_method_error(expr.hir_id, rcvr_t, error, expected, false);
1503
1504                let err_inputs = self.err_args(args.len(), guar);
1505                let err_output = Ty::new_error(self.tcx, guar);
1506
1507                self.check_argument_types(
1508                    segment.ident.span,
1509                    expr,
1510                    &err_inputs,
1511                    err_output,
1512                    NoExpectation,
1513                    args,
1514                    false,
1515                    TupleArgumentsFlag::DontTupleArguments,
1516                    None,
1517                );
1518
1519                err_output
1520            }
1521        }
1522    }
1523
1524    /// Checks use `x.use`.
1525    fn check_expr_use(
1526        &self,
1527        used_expr: &'tcx hir::Expr<'tcx>,
1528        expected: Expectation<'tcx>,
1529    ) -> Ty<'tcx> {
1530        self.check_expr_with_expectation(used_expr, expected)
1531    }
1532
1533    fn check_expr_cast(
1534        &self,
1535        e: &'tcx hir::Expr<'tcx>,
1536        t: &'tcx hir::Ty<'tcx>,
1537        expr: &'tcx hir::Expr<'tcx>,
1538    ) -> Ty<'tcx> {
1539        // Find the type of `e`. Supply hints based on the type we are casting to,
1540        // if appropriate.
1541        let t_cast = self.lower_ty_saving_user_provided_ty(t);
1542        let t_cast = self.resolve_vars_if_possible(t_cast);
1543        let t_expr = self.check_expr_with_expectation(e, ExpectCastableToType(t_cast));
1544        let t_expr = self.resolve_vars_if_possible(t_expr);
1545
1546        // Eagerly check for some obvious errors.
1547        if let Err(guar) = (t_expr, t_cast).error_reported() {
1548            Ty::new_error(self.tcx, guar)
1549        } else {
1550            // Defer other checks until we're done type checking.
1551            let mut deferred_cast_checks = self.deferred_cast_checks.borrow_mut();
1552            match cast::CastCheck::new(self, e, t_expr, t_cast, t.span, expr.span) {
1553                Ok(cast_check) => {
1554                    {
    use ::tracing::__macro_support::Callsite as _;
    static __CALLSITE: ::tracing::callsite::DefaultCallsite =
        {
            static META: ::tracing::Metadata<'static> =
                {
                    ::tracing_core::metadata::Metadata::new("event compiler/rustc_hir_typeck/src/expr.rs:1554",
                        "rustc_hir_typeck::expr", ::tracing::Level::DEBUG,
                        ::tracing_core::__macro_support::Option::Some("compiler/rustc_hir_typeck/src/expr.rs"),
                        ::tracing_core::__macro_support::Option::Some(1554u32),
                        ::tracing_core::__macro_support::Option::Some("rustc_hir_typeck::expr"),
                        ::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!("check_expr_cast: deferring cast from {0:?} to {1:?}: {2:?}",
                                                    t_cast, t_expr, cast_check) as &dyn Value))])
            });
    } else { ; }
};debug!(
1555                        "check_expr_cast: deferring cast from {:?} to {:?}: {:?}",
1556                        t_cast, t_expr, cast_check,
1557                    );
1558                    deferred_cast_checks.push(cast_check);
1559                    t_cast
1560                }
1561                Err(guar) => Ty::new_error(self.tcx, guar),
1562            }
1563        }
1564    }
1565
1566    fn check_expr_unsafe_binder_cast(
1567        &self,
1568        span: Span,
1569        kind: ast::UnsafeBinderCastKind,
1570        inner_expr: &'tcx hir::Expr<'tcx>,
1571        hir_ty: Option<&'tcx hir::Ty<'tcx>>,
1572        expected: Expectation<'tcx>,
1573    ) -> Ty<'tcx> {
1574        match kind {
1575            ast::UnsafeBinderCastKind::Wrap => {
1576                let ascribed_ty =
1577                    hir_ty.map(|hir_ty| self.lower_ty_saving_user_provided_ty(hir_ty));
1578                let expected_ty = expected.only_has_type(self);
1579                let binder_ty = match (ascribed_ty, expected_ty) {
1580                    (Some(ascribed_ty), Some(expected_ty)) => {
1581                        self.demand_eqtype(inner_expr.span, expected_ty, ascribed_ty);
1582                        expected_ty
1583                    }
1584                    (Some(ty), None) | (None, Some(ty)) => ty,
1585                    // This will always cause a structural resolve error, but we do it
1586                    // so we don't need to manually report an E0282 both on this codepath
1587                    // and in the others; it all happens in `structurally_resolve_type`.
1588                    (None, None) => self.next_ty_var(inner_expr.span),
1589                };
1590
1591                let binder_ty = self.structurally_resolve_type(inner_expr.span, binder_ty);
1592                let hint_ty = match *binder_ty.kind() {
1593                    ty::UnsafeBinder(binder) => self.instantiate_binder_with_fresh_vars(
1594                        inner_expr.span,
1595                        infer::BoundRegionConversionTime::HigherRankedType,
1596                        binder.into(),
1597                    ),
1598                    ty::Error(e) => Ty::new_error(self.tcx, e),
1599                    _ => {
1600                        let guar = self
1601                            .dcx()
1602                            .struct_span_err(
1603                                hir_ty.map_or(span, |hir_ty| hir_ty.span),
1604                                ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("`wrap_binder!()` can only wrap into unsafe binder, not {0}",
                binder_ty.sort_string(self.tcx)))
    })format!(
1605                                    "`wrap_binder!()` can only wrap into unsafe binder, not {}",
1606                                    binder_ty.sort_string(self.tcx)
1607                                ),
1608                            )
1609                            .with_note("unsafe binders are the only valid output of wrap")
1610                            .emit();
1611                        Ty::new_error(self.tcx, guar)
1612                    }
1613                };
1614
1615                self.check_expr_has_type_or_error(inner_expr, hint_ty, |_| {});
1616
1617                binder_ty
1618            }
1619            ast::UnsafeBinderCastKind::Unwrap => {
1620                let ascribed_ty =
1621                    hir_ty.map(|hir_ty| self.lower_ty_saving_user_provided_ty(hir_ty));
1622                let hint_ty = ascribed_ty.unwrap_or_else(|| self.next_ty_var(inner_expr.span));
1623                // FIXME(unsafe_binders): coerce here if needed?
1624                let binder_ty = self.check_expr_has_type_or_error(inner_expr, hint_ty, |_| {});
1625
1626                // Unwrap the binder. This will be ambiguous if it's an infer var, and will error
1627                // if it's not an unsafe binder.
1628                let binder_ty = self.structurally_resolve_type(inner_expr.span, binder_ty);
1629                match *binder_ty.kind() {
1630                    ty::UnsafeBinder(binder) => self.instantiate_binder_with_fresh_vars(
1631                        inner_expr.span,
1632                        infer::BoundRegionConversionTime::HigherRankedType,
1633                        binder.into(),
1634                    ),
1635                    ty::Error(e) => Ty::new_error(self.tcx, e),
1636                    _ => {
1637                        let guar = self
1638                            .dcx()
1639                            .struct_span_err(
1640                                hir_ty.map_or(inner_expr.span, |hir_ty| hir_ty.span),
1641                                ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("expected unsafe binder, found {0} as input of `unwrap_binder!()`",
                binder_ty.sort_string(self.tcx)))
    })format!(
1642                                    "expected unsafe binder, found {} as input of \
1643                                    `unwrap_binder!()`",
1644                                    binder_ty.sort_string(self.tcx)
1645                                ),
1646                            )
1647                            .with_note("only an unsafe binder type can be unwrapped")
1648                            .emit();
1649                        Ty::new_error(self.tcx, guar)
1650                    }
1651                }
1652            }
1653        }
1654    }
1655
1656    fn check_expr_array(
1657        &self,
1658        args: &'tcx [hir::Expr<'tcx>],
1659        expected: Expectation<'tcx>,
1660        expr: &'tcx hir::Expr<'tcx>,
1661    ) -> Ty<'tcx> {
1662        let element_ty = if !args.is_empty() {
1663            // This shouldn't happen unless there's another error
1664            // (e.g., never patterns in inappropriate contexts).
1665            if self.diverges.get() != Diverges::Maybe {
1666                self.dcx()
1667                    .struct_span_err(expr.span, "unexpected divergence state in checking array")
1668                    .delay_as_bug();
1669            }
1670
1671            let coerce_to = expected
1672                .to_option(self)
1673                .and_then(|uty| {
1674                    self.try_structurally_resolve_type(expr.span, uty)
1675                        .builtin_index()
1676                        // Avoid using the original type variable as the coerce_to type, as it may resolve
1677                        // during the first coercion instead of being the LUB type.
1678                        .filter(|t| !self.try_structurally_resolve_type(expr.span, *t).is_ty_var())
1679                })
1680                .unwrap_or_else(|| self.next_ty_var(expr.span));
1681            let mut coerce = CoerceMany::with_capacity(coerce_to, args.len());
1682
1683            for e in args {
1684                // FIXME: the element expectation should use
1685                // `try_structurally_resolve_and_adjust_for_branches` just like in `if` and `match`.
1686                // While that fixes nested coercion, it will break [some
1687                // code like this](https://github.com/rust-lang/rust/pull/140283#issuecomment-2958776528).
1688                // If we find a way to support recursive tuple coercion, this break can be avoided.
1689                let e_ty = self.check_expr_with_hint(e, coerce_to);
1690                let cause = self.misc(e.span);
1691                coerce.coerce(self, &cause, e, e_ty);
1692            }
1693            coerce.complete(self)
1694        } else {
1695            self.next_ty_var(expr.span)
1696        };
1697        let array_len = args.len() as u64;
1698        self.suggest_array_len(expr, array_len);
1699        Ty::new_array(self.tcx, element_ty, array_len)
1700    }
1701
1702    fn suggest_array_len(&self, expr: &'tcx hir::Expr<'tcx>, array_len: u64) {
1703        let parent_node = self.tcx.hir_parent_iter(expr.hir_id).find(|(_, node)| {
1704            !#[allow(non_exhaustive_omitted_patterns)] match node {
    hir::Node::Expr(hir::Expr { kind: hir::ExprKind::AddrOf(..), .. }) =>
        true,
    _ => false,
}matches!(node, hir::Node::Expr(hir::Expr { kind: hir::ExprKind::AddrOf(..), .. }))
1705        });
1706        let Some((_, hir::Node::LetStmt(hir::LetStmt { ty: Some(ty), .. }))) = parent_node else {
1707            return;
1708        };
1709        if let hir::TyKind::Array(_, ct) = ty.peel_refs().kind {
1710            let span = ct.span;
1711            self.dcx().try_steal_modify_and_emit_err(
1712                span,
1713                StashKey::UnderscoreForArrayLengths,
1714                |err| {
1715                    err.span_suggestion(
1716                        span,
1717                        "consider specifying the array length",
1718                        array_len,
1719                        Applicability::MaybeIncorrect,
1720                    );
1721                },
1722            );
1723        }
1724    }
1725
1726    pub(super) fn check_expr_const_block(
1727        &self,
1728        block: &'tcx hir::ConstBlock,
1729        expected: Expectation<'tcx>,
1730    ) -> Ty<'tcx> {
1731        let body = self.tcx.hir_body(block.body);
1732
1733        // Create a new function context.
1734        let def_id = block.def_id;
1735        let fcx = FnCtxt::new(self, self.param_env, def_id);
1736
1737        let ty = fcx.check_expr_with_expectation(body.value, expected);
1738        fcx.require_type_is_sized(ty, body.value.span, ObligationCauseCode::SizedConstOrStatic);
1739        fcx.write_ty(block.hir_id, ty);
1740        ty
1741    }
1742
1743    fn check_expr_repeat(
1744        &self,
1745        element: &'tcx hir::Expr<'tcx>,
1746        count: &'tcx hir::ConstArg<'tcx>,
1747        expected: Expectation<'tcx>,
1748        expr: &'tcx hir::Expr<'tcx>,
1749    ) -> Ty<'tcx> {
1750        let tcx = self.tcx;
1751        let count_span = count.span;
1752        let count = self.try_structurally_resolve_const(
1753            count_span,
1754            self.normalize(count_span, self.lower_const_arg(count, tcx.types.usize)),
1755        );
1756
1757        if let Some(count) = count.try_to_target_usize(tcx) {
1758            self.suggest_array_len(expr, count);
1759        }
1760
1761        let uty = match expected {
1762            ExpectHasType(uty) => uty.builtin_index(),
1763            _ => None,
1764        };
1765
1766        let (element_ty, t) = match uty {
1767            Some(uty) => {
1768                self.check_expr_coercible_to_type(element, uty, None);
1769                (uty, uty)
1770            }
1771            None => {
1772                let ty = self.next_ty_var(element.span);
1773                let element_ty = self.check_expr_has_type_or_error(element, ty, |_| {});
1774                (element_ty, ty)
1775            }
1776        };
1777
1778        if let Err(guar) = element_ty.error_reported() {
1779            return Ty::new_error(tcx, guar);
1780        }
1781
1782        // We defer checking whether the element type is `Copy` as it is possible to have
1783        // an inference variable as a repeat count and it seems unlikely that `Copy` would
1784        // have inference side effects required for type checking to succeed.
1785        self.deferred_repeat_expr_checks.borrow_mut().push((element, element_ty, count));
1786
1787        let ty = Ty::new_array_with_const_len(tcx, t, count);
1788        self.register_wf_obligation(ty.into(), expr.span, ObligationCauseCode::WellFormed(None));
1789        ty
1790    }
1791
1792    fn check_expr_tuple(
1793        &self,
1794        elts: &'tcx [hir::Expr<'tcx>],
1795        expected: Expectation<'tcx>,
1796        expr: &'tcx hir::Expr<'tcx>,
1797    ) -> Ty<'tcx> {
1798        let flds = expected.only_has_type(self).and_then(|ty| {
1799            let ty = self.try_structurally_resolve_type(expr.span, ty);
1800            match ty.kind() {
1801                ty::Tuple(flds) => Some(&flds[..]),
1802                _ => None,
1803            }
1804        });
1805
1806        let elt_ts_iter = elts.iter().enumerate().map(|(i, e)| match flds {
1807            Some(fs) if i < fs.len() => {
1808                let ety = fs[i];
1809                self.check_expr_coercible_to_type(e, ety, None);
1810                ety
1811            }
1812            _ => self.check_expr_with_expectation(e, NoExpectation),
1813        });
1814        let tuple = Ty::new_tup_from_iter(self.tcx, elt_ts_iter);
1815        if let Err(guar) = tuple.error_reported() {
1816            Ty::new_error(self.tcx, guar)
1817        } else {
1818            self.require_type_is_sized(
1819                tuple,
1820                expr.span,
1821                ObligationCauseCode::TupleInitializerSized,
1822            );
1823            tuple
1824        }
1825    }
1826
1827    fn check_expr_struct(
1828        &self,
1829        expr: &hir::Expr<'tcx>,
1830        expected: Expectation<'tcx>,
1831        qpath: &'tcx QPath<'tcx>,
1832        fields: &'tcx [hir::ExprField<'tcx>],
1833        base_expr: &'tcx hir::StructTailExpr<'tcx>,
1834    ) -> Ty<'tcx> {
1835        // Find the relevant variant
1836        let (variant, adt_ty) = match self.check_struct_path(qpath, expr.hir_id) {
1837            Ok(data) => data,
1838            Err(guar) => {
1839                self.check_struct_fields_on_error(fields, base_expr);
1840                return Ty::new_error(self.tcx, guar);
1841            }
1842        };
1843
1844        // Prohibit struct expressions when non-exhaustive flag is set.
1845        let adt = adt_ty.ty_adt_def().expect("`check_struct_path` returned non-ADT type");
1846        if variant.field_list_has_applicable_non_exhaustive() {
1847            self.dcx()
1848                .emit_err(StructExprNonExhaustive { span: expr.span, what: adt.variant_descr() });
1849        }
1850
1851        self.check_expr_struct_fields(
1852            adt_ty,
1853            expected,
1854            expr,
1855            qpath.span(),
1856            variant,
1857            fields,
1858            base_expr,
1859        );
1860
1861        self.require_type_is_sized(adt_ty, expr.span, ObligationCauseCode::StructInitializerSized);
1862        adt_ty
1863    }
1864
1865    fn check_expr_struct_fields(
1866        &self,
1867        adt_ty: Ty<'tcx>,
1868        expected: Expectation<'tcx>,
1869        expr: &hir::Expr<'_>,
1870        path_span: Span,
1871        variant: &'tcx ty::VariantDef,
1872        hir_fields: &'tcx [hir::ExprField<'tcx>],
1873        base_expr: &'tcx hir::StructTailExpr<'tcx>,
1874    ) {
1875        let tcx = self.tcx;
1876
1877        let adt_ty = self.try_structurally_resolve_type(path_span, adt_ty);
1878        let adt_ty_hint = expected.only_has_type(self).and_then(|expected| {
1879            self.fudge_inference_if_ok(|| {
1880                let ocx = ObligationCtxt::new(self);
1881                ocx.sup(&self.misc(path_span), self.param_env, expected, adt_ty)?;
1882                if !ocx.try_evaluate_obligations().is_empty() {
1883                    return Err(TypeError::Mismatch);
1884                }
1885                Ok(self.resolve_vars_if_possible(adt_ty))
1886            })
1887            .ok()
1888        });
1889        if let Some(adt_ty_hint) = adt_ty_hint {
1890            // re-link the variables that the fudging above can create.
1891            self.demand_eqtype(path_span, adt_ty_hint, adt_ty);
1892        }
1893
1894        let ty::Adt(adt, args) = adt_ty.kind() else {
1895            ::rustc_middle::util::bug::span_bug_fmt(path_span,
    format_args!("non-ADT passed to check_expr_struct_fields"));span_bug!(path_span, "non-ADT passed to check_expr_struct_fields");
1896        };
1897        let adt_kind = adt.adt_kind();
1898
1899        let mut remaining_fields = variant
1900            .fields
1901            .iter_enumerated()
1902            .map(|(i, field)| (field.ident(tcx).normalize_to_macros_2_0(), (i, field)))
1903            .collect::<UnordMap<_, _>>();
1904
1905        let mut seen_fields = FxHashMap::default();
1906
1907        let mut error_happened = false;
1908
1909        if variant.fields.len() != remaining_fields.len() {
1910            // Some field is defined more than once. Make sure we don't try to
1911            // instantiate this struct in static/const context.
1912            let guar =
1913                self.dcx().span_delayed_bug(expr.span, "struct fields have non-unique names");
1914            self.set_tainted_by_errors(guar);
1915            error_happened = true;
1916        }
1917
1918        // Type-check each field.
1919        for (idx, field) in hir_fields.iter().enumerate() {
1920            let ident = tcx.adjust_ident(field.ident, variant.def_id);
1921            let field_type = if let Some((i, v_field)) = remaining_fields.remove(&ident) {
1922                seen_fields.insert(ident, field.span);
1923                self.write_field_index(field.hir_id, i);
1924
1925                // We don't look at stability attributes on
1926                // struct-like enums (yet...), but it's definitely not
1927                // a bug to have constructed one.
1928                if adt_kind != AdtKind::Enum {
1929                    tcx.check_stability(v_field.did, Some(field.hir_id), field.span, None);
1930                }
1931
1932                self.field_ty(field.span, v_field, args)
1933            } else {
1934                error_happened = true;
1935                let guar = if let Some(prev_span) = seen_fields.get(&ident) {
1936                    self.dcx().emit_err(FieldMultiplySpecifiedInInitializer {
1937                        span: field.ident.span,
1938                        prev_span: *prev_span,
1939                        ident,
1940                    })
1941                } else {
1942                    self.report_unknown_field(
1943                        adt_ty,
1944                        variant,
1945                        expr,
1946                        field,
1947                        hir_fields,
1948                        adt.variant_descr(),
1949                    )
1950                };
1951
1952                Ty::new_error(tcx, guar)
1953            };
1954
1955            // Check that the expected field type is WF. Otherwise, we emit no use-site error
1956            // in the case of coercions for non-WF fields, which leads to incorrect error
1957            // tainting. See issue #126272.
1958            self.register_wf_obligation(
1959                field_type.into(),
1960                field.expr.span,
1961                ObligationCauseCode::WellFormed(None),
1962            );
1963
1964            // Make sure to give a type to the field even if there's
1965            // an error, so we can continue type-checking.
1966            let ty = self.check_expr_with_hint(field.expr, field_type);
1967            let diag = self.demand_coerce_diag(field.expr, ty, field_type, None, AllowTwoPhase::No);
1968
1969            if let Err(diag) = diag {
1970                if idx == hir_fields.len() - 1 {
1971                    if remaining_fields.is_empty() {
1972                        self.suggest_fru_from_range_and_emit(field, variant, args, diag);
1973                    } else {
1974                        diag.stash(field.span, StashKey::MaybeFruTypo);
1975                    }
1976                } else {
1977                    diag.emit();
1978                }
1979            }
1980        }
1981
1982        // Make sure the programmer specified correct number of fields.
1983        if adt_kind == AdtKind::Union && hir_fields.len() != 1 {
1984            {
    self.dcx().struct_span_err(path_span,
            ::alloc::__export::must_use({
                    ::alloc::fmt::format(format_args!("union expressions should have exactly one field"))
                })).with_code(E0784)
}struct_span_code_err!(
1985                self.dcx(),
1986                path_span,
1987                E0784,
1988                "union expressions should have exactly one field",
1989            )
1990            .emit();
1991        }
1992
1993        // If check_expr_struct_fields hit an error, do not attempt to populate
1994        // the fields with the base_expr. This could cause us to hit errors later
1995        // when certain fields are assumed to exist that in fact do not.
1996        if error_happened {
1997            if let hir::StructTailExpr::Base(base_expr) = base_expr {
1998                self.check_expr(base_expr);
1999            }
2000            return;
2001        }
2002
2003        match *base_expr {
2004            hir::StructTailExpr::DefaultFields(span) => {
2005                let mut missing_mandatory_fields = Vec::new();
2006                let mut missing_optional_fields = Vec::new();
2007                for f in &variant.fields {
2008                    let ident = self.tcx.adjust_ident(f.ident(self.tcx), variant.def_id);
2009                    if let Some(_) = remaining_fields.remove(&ident) {
2010                        if f.value.is_none() {
2011                            missing_mandatory_fields.push(ident);
2012                        } else {
2013                            missing_optional_fields.push(ident);
2014                        }
2015                    }
2016                }
2017                if !self.tcx.features().default_field_values() {
2018                    let sugg = self.tcx.crate_level_attribute_injection_span();
2019                    self.dcx().emit_err(BaseExpressionDoubleDot {
2020                        span: span.shrink_to_hi(),
2021                        // We only mention enabling the feature if this is a nightly rustc *and* the
2022                        // expression would make sense with the feature enabled.
2023                        default_field_values_suggestion: if self.tcx.sess.is_nightly_build()
2024                            && missing_mandatory_fields.is_empty()
2025                            && !missing_optional_fields.is_empty()
2026                        {
2027                            Some(sugg)
2028                        } else {
2029                            None
2030                        },
2031                        add_expr: if !missing_mandatory_fields.is_empty()
2032                            || !missing_optional_fields.is_empty()
2033                        {
2034                            Some(BaseExpressionDoubleDotAddExpr { span: span.shrink_to_hi() })
2035                        } else {
2036                            None
2037                        },
2038                        remove_dots: if missing_mandatory_fields.is_empty()
2039                            && missing_optional_fields.is_empty()
2040                        {
2041                            Some(BaseExpressionDoubleDotRemove { span })
2042                        } else {
2043                            None
2044                        },
2045                    });
2046                    return;
2047                }
2048                if variant.fields.is_empty() {
2049                    let mut err = self.dcx().struct_span_err(
2050                        span,
2051                        ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("`{0}` has no fields, `..` needs at least one default field in the struct definition",
                adt_ty))
    })format!(
2052                            "`{adt_ty}` has no fields, `..` needs at least one default field in \
2053                            the struct definition",
2054                        ),
2055                    );
2056                    err.span_label(path_span, "this type has no fields");
2057                    err.emit();
2058                }
2059                if !missing_mandatory_fields.is_empty() {
2060                    let s = if missing_mandatory_fields.len() == 1 { "" } else { "s" }pluralize!(missing_mandatory_fields.len());
2061                    let fields = listify(&missing_mandatory_fields, |f| ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("`{0}`", f))
    })format!("`{f}`")).unwrap();
2062                    self.dcx()
2063                        .struct_span_err(
2064                            span.shrink_to_lo(),
2065                            ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("missing field{0} {1} in initializer",
                s, fields))
    })format!("missing field{s} {fields} in initializer"),
2066                        )
2067                        .with_span_label(
2068                            span.shrink_to_lo(),
2069                            "fields that do not have a defaulted value must be provided explicitly",
2070                        )
2071                        .emit();
2072                    return;
2073                }
2074                let fru_tys = match adt_ty.kind() {
2075                    ty::Adt(adt, args) if adt.is_struct() => variant
2076                        .fields
2077                        .iter()
2078                        .map(|f| self.normalize(span, f.ty(self.tcx, args)))
2079                        .collect(),
2080                    ty::Adt(adt, args) if adt.is_enum() => variant
2081                        .fields
2082                        .iter()
2083                        .map(|f| self.normalize(span, f.ty(self.tcx, args)))
2084                        .collect(),
2085                    _ => {
2086                        self.dcx().emit_err(FunctionalRecordUpdateOnNonStruct { span });
2087                        return;
2088                    }
2089                };
2090                self.typeck_results.borrow_mut().fru_field_types_mut().insert(expr.hir_id, fru_tys);
2091            }
2092            hir::StructTailExpr::Base(base_expr) => {
2093                // FIXME: We are currently creating two branches here in order to maintain
2094                // consistency. But they should be merged as much as possible.
2095                let fru_tys = if self.tcx.features().type_changing_struct_update() {
2096                    if adt.is_struct() {
2097                        // Make some fresh generic parameters for our ADT type.
2098                        let fresh_args = self.fresh_args_for_item(base_expr.span, adt.did());
2099                        // We do subtyping on the FRU fields first, so we can
2100                        // learn exactly what types we expect the base expr
2101                        // needs constrained to be compatible with the struct
2102                        // type we expect from the expectation value.
2103                        let fru_tys = variant
2104                            .fields
2105                            .iter()
2106                            .map(|f| {
2107                                let fru_ty = self.normalize(
2108                                    expr.span,
2109                                    self.field_ty(base_expr.span, f, fresh_args),
2110                                );
2111                                let ident =
2112                                    self.tcx.adjust_ident(f.ident(self.tcx), variant.def_id);
2113                                if let Some(_) = remaining_fields.remove(&ident) {
2114                                    let target_ty = self.field_ty(base_expr.span, f, args);
2115                                    let cause = self.misc(base_expr.span);
2116                                    match self.at(&cause, self.param_env).sup(
2117                                        // We're already using inference variables for any params,
2118                                        // and don't allow converting between different structs,
2119                                        // so there is no way this ever actually defines an opaque
2120                                        // type. Thus choosing `Yes` is fine.
2121                                        DefineOpaqueTypes::Yes,
2122                                        target_ty,
2123                                        fru_ty,
2124                                    ) {
2125                                        Ok(InferOk { obligations, value: () }) => {
2126                                            self.register_predicates(obligations)
2127                                        }
2128                                        Err(_) => {
2129                                            ::rustc_middle::util::bug::span_bug_fmt(cause.span,
    format_args!("subtyping remaining fields of type changing FRU failed: {2} != {3}: {0}::{1}",
        variant.name, ident.name, target_ty, fru_ty));span_bug!(
2130                                                cause.span,
2131                                                "subtyping remaining fields of type changing FRU \
2132                                                failed: {target_ty} != {fru_ty}: {}::{}",
2133                                                variant.name,
2134                                                ident.name,
2135                                            );
2136                                        }
2137                                    }
2138                                }
2139                                self.resolve_vars_if_possible(fru_ty)
2140                            })
2141                            .collect();
2142                        // The use of fresh args that we have subtyped against
2143                        // our base ADT type's fields allows us to guide inference
2144                        // along so that, e.g.
2145                        // ```
2146                        // MyStruct<'a, F1, F2, const C: usize> {
2147                        //     f: F1,
2148                        //     // Other fields that reference `'a`, `F2`, and `C`
2149                        // }
2150                        //
2151                        // let x = MyStruct {
2152                        //    f: 1usize,
2153                        //    ..other_struct
2154                        // };
2155                        // ```
2156                        // will have the `other_struct` expression constrained to
2157                        // `MyStruct<'a, _, F2, C>`, as opposed to just `_`...
2158                        // This is important to allow coercions to happen in
2159                        // `other_struct` itself. See `coerce-in-base-expr.rs`.
2160                        let fresh_base_ty = Ty::new_adt(self.tcx, *adt, fresh_args);
2161                        self.check_expr_has_type_or_error(
2162                            base_expr,
2163                            self.resolve_vars_if_possible(fresh_base_ty),
2164                            |_| {},
2165                        );
2166                        fru_tys
2167                    } else {
2168                        // Check the base_expr, regardless of a bad expected adt_ty, so we can get
2169                        // type errors on that expression, too.
2170                        self.check_expr(base_expr);
2171                        self.dcx()
2172                            .emit_err(FunctionalRecordUpdateOnNonStruct { span: base_expr.span });
2173                        return;
2174                    }
2175                } else {
2176                    self.check_expr_has_type_or_error(base_expr, adt_ty, |_| {
2177                        let base_ty = self.typeck_results.borrow().expr_ty(base_expr);
2178                        let same_adt = #[allow(non_exhaustive_omitted_patterns)] match (adt_ty.kind(),
        base_ty.kind()) {
    (ty::Adt(adt, _), ty::Adt(base_adt, _)) if adt == base_adt => true,
    _ => false,
}matches!((adt_ty.kind(), base_ty.kind()),
2179                            (ty::Adt(adt, _), ty::Adt(base_adt, _)) if adt == base_adt);
2180                        if self.tcx.sess.is_nightly_build() && same_adt {
2181                            feature_err(
2182                                &self.tcx.sess,
2183                                sym::type_changing_struct_update,
2184                                base_expr.span,
2185                                "type changing struct updating is experimental",
2186                            )
2187                            .emit();
2188                        }
2189                    });
2190                    match adt_ty.kind() {
2191                        ty::Adt(adt, args) if adt.is_struct() => variant
2192                            .fields
2193                            .iter()
2194                            .map(|f| self.normalize(expr.span, f.ty(self.tcx, args)))
2195                            .collect(),
2196                        _ => {
2197                            self.dcx().emit_err(FunctionalRecordUpdateOnNonStruct {
2198                                span: base_expr.span,
2199                            });
2200                            return;
2201                        }
2202                    }
2203                };
2204                self.typeck_results.borrow_mut().fru_field_types_mut().insert(expr.hir_id, fru_tys);
2205            }
2206            rustc_hir::StructTailExpr::NoneWithError(ErrorGuaranteed { .. }) => {
2207                // If parsing the struct recovered from a syntax error, do not report missing
2208                // fields. This prevents spurious errors when a field is intended to be present
2209                // but a preceding syntax error caused it not to be parsed. For example, if a
2210                // struct type `StructName` has fields `foo` and `bar`, then
2211                //     StructName { foo(), bar: 2 }
2212                // will not successfully parse a field `foo`, but we will not mention that,
2213                // since the syntax error has already been reported.
2214            }
2215            rustc_hir::StructTailExpr::None => {
2216                if adt_kind != AdtKind::Union
2217                    && !remaining_fields.is_empty()
2218                    //~ non_exhaustive already reported, which will only happen for extern modules
2219                    && !variant.field_list_has_applicable_non_exhaustive()
2220                {
2221                    {
    use ::tracing::__macro_support::Callsite as _;
    static __CALLSITE: ::tracing::callsite::DefaultCallsite =
        {
            static META: ::tracing::Metadata<'static> =
                {
                    ::tracing_core::metadata::Metadata::new("event compiler/rustc_hir_typeck/src/expr.rs:2221",
                        "rustc_hir_typeck::expr", ::tracing::Level::DEBUG,
                        ::tracing_core::__macro_support::Option::Some("compiler/rustc_hir_typeck/src/expr.rs"),
                        ::tracing_core::__macro_support::Option::Some(2221u32),
                        ::tracing_core::__macro_support::Option::Some("rustc_hir_typeck::expr"),
                        ::tracing_core::field::FieldSet::new(&["remaining_fields"],
                            ::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(&debug(&remaining_fields)
                                            as &dyn Value))])
            });
    } else { ; }
};debug!(?remaining_fields);
2222
2223                    // Report missing fields.
2224
2225                    let private_fields: Vec<&ty::FieldDef> = variant
2226                        .fields
2227                        .iter()
2228                        .filter(|field| {
2229                            !field.vis.is_accessible_from(tcx.parent_module(expr.hir_id), tcx)
2230                        })
2231                        .collect();
2232
2233                    if !private_fields.is_empty() {
2234                        self.report_private_fields(
2235                            adt_ty,
2236                            path_span,
2237                            expr.span,
2238                            private_fields,
2239                            hir_fields,
2240                        );
2241                    } else {
2242                        self.report_missing_fields(
2243                            adt_ty,
2244                            path_span,
2245                            expr.span,
2246                            remaining_fields,
2247                            variant,
2248                            hir_fields,
2249                            args,
2250                        );
2251                    }
2252                }
2253            }
2254        }
2255    }
2256
2257    fn check_struct_fields_on_error(
2258        &self,
2259        fields: &'tcx [hir::ExprField<'tcx>],
2260        base_expr: &'tcx hir::StructTailExpr<'tcx>,
2261    ) {
2262        for field in fields {
2263            self.check_expr(field.expr);
2264        }
2265        if let hir::StructTailExpr::Base(base) = *base_expr {
2266            self.check_expr(base);
2267        }
2268    }
2269
2270    /// Report an error for a struct field expression when there are fields which aren't provided.
2271    ///
2272    /// ```text
2273    /// error: missing field `you_can_use_this_field` in initializer of `foo::Foo`
2274    ///  --> src/main.rs:8:5
2275    ///   |
2276    /// 8 |     foo::Foo {};
2277    ///   |     ^^^^^^^^ missing `you_can_use_this_field`
2278    ///
2279    /// error: aborting due to 1 previous error
2280    /// ```
2281    fn report_missing_fields(
2282        &self,
2283        adt_ty: Ty<'tcx>,
2284        span: Span,
2285        full_span: Span,
2286        remaining_fields: UnordMap<Ident, (FieldIdx, &ty::FieldDef)>,
2287        variant: &'tcx ty::VariantDef,
2288        hir_fields: &'tcx [hir::ExprField<'tcx>],
2289        args: GenericArgsRef<'tcx>,
2290    ) {
2291        let len = remaining_fields.len();
2292
2293        let displayable_field_names: Vec<&str> =
2294            remaining_fields.items().map(|(ident, _)| ident.as_str()).into_sorted_stable_ord();
2295
2296        let mut truncated_fields_error = String::new();
2297        let remaining_fields_names = match &displayable_field_names[..] {
2298            [field1] => ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("`{0}`", field1))
    })format!("`{field1}`"),
2299            [field1, field2] => ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("`{0}` and `{1}`", field1, field2))
    })format!("`{field1}` and `{field2}`"),
2300            [field1, field2, field3] => ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("`{0}`, `{1}` and `{2}`", field1,
                field2, field3))
    })format!("`{field1}`, `{field2}` and `{field3}`"),
2301            _ => {
2302                truncated_fields_error =
2303                    ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!(" and {0} other field{1}", len - 3,
                if len - 3 == 1 { "" } else { "s" }))
    })format!(" and {} other field{}", len - 3, pluralize!(len - 3));
2304                displayable_field_names
2305                    .iter()
2306                    .take(3)
2307                    .map(|n| ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("`{0}`", n))
    })format!("`{n}`"))
2308                    .collect::<Vec<_>>()
2309                    .join(", ")
2310            }
2311        };
2312
2313        let mut err = {
    self.dcx().struct_span_err(span,
            ::alloc::__export::must_use({
                    ::alloc::fmt::format(format_args!("missing field{0} {1}{2} in initializer of `{3}`",
                            if len == 1 { "" } else { "s" }, remaining_fields_names,
                            truncated_fields_error, adt_ty))
                })).with_code(E0063)
}struct_span_code_err!(
2314            self.dcx(),
2315            span,
2316            E0063,
2317            "missing field{} {}{} in initializer of `{}`",
2318            pluralize!(len),
2319            remaining_fields_names,
2320            truncated_fields_error,
2321            adt_ty
2322        );
2323        err.span_label(span, ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("missing {0}{1}",
                remaining_fields_names, truncated_fields_error))
    })format!("missing {remaining_fields_names}{truncated_fields_error}"));
2324
2325        if remaining_fields.items().all(|(_, (_, field))| field.value.is_some())
2326            && self.tcx.sess.is_nightly_build()
2327        {
2328            let msg = ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("all remaining fields have default values, {0} use those values with `..`",
                if self.tcx.features().default_field_values() {
                    "you can"
                } else {
                    "if you added `#![feature(default_field_values)]` to your crate you could"
                }))
    })format!(
2329                "all remaining fields have default values, {you_can} use those values with `..`",
2330                you_can = if self.tcx.features().default_field_values() {
2331                    "you can"
2332                } else {
2333                    "if you added `#![feature(default_field_values)]` to your crate you could"
2334                },
2335            );
2336            if let Some(hir_field) = hir_fields.last() {
2337                err.span_suggestion_verbose(
2338                    hir_field.span.shrink_to_hi(),
2339                    msg,
2340                    ", ..".to_string(),
2341                    Applicability::MachineApplicable,
2342                );
2343            } else if hir_fields.is_empty() {
2344                err.span_suggestion_verbose(
2345                    span.shrink_to_hi().with_hi(full_span.hi()),
2346                    msg,
2347                    " { .. }".to_string(),
2348                    Applicability::MachineApplicable,
2349                );
2350            }
2351        }
2352
2353        if let Some(hir_field) = hir_fields.last() {
2354            self.suggest_fru_from_range_and_emit(hir_field, variant, args, err);
2355        } else {
2356            err.emit();
2357        }
2358    }
2359
2360    /// If the last field is a range literal, but it isn't supposed to be, then they probably
2361    /// meant to use functional update syntax.
2362    fn suggest_fru_from_range_and_emit(
2363        &self,
2364        last_expr_field: &hir::ExprField<'tcx>,
2365        variant: &ty::VariantDef,
2366        args: GenericArgsRef<'tcx>,
2367        mut err: Diag<'_>,
2368    ) {
2369        if is_range_literal(last_expr_field.expr)
2370            && let ExprKind::Struct(&qpath, [range_start, range_end], _) = last_expr_field.expr.kind
2371            && self.tcx.qpath_is_lang_item(qpath, LangItem::Range)
2372            && let variant_field =
2373                variant.fields.iter().find(|field| field.ident(self.tcx) == last_expr_field.ident)
2374            && let range_def_id = self.tcx.lang_items().range_struct()
2375            && variant_field
2376                .and_then(|field| field.ty(self.tcx, args).ty_adt_def())
2377                .map(|adt| adt.did())
2378                != range_def_id
2379        {
2380            // Use a (somewhat arbitrary) filtering heuristic to avoid printing
2381            // expressions that are either too long, or have control character
2382            // such as newlines in them.
2383            let expr = self
2384                .tcx
2385                .sess
2386                .source_map()
2387                .span_to_snippet(range_end.expr.span)
2388                .ok()
2389                .filter(|s| s.len() < 25 && !s.contains(|c: char| c.is_control()));
2390
2391            let fru_span = self
2392                .tcx
2393                .sess
2394                .source_map()
2395                .span_extend_while_whitespace(range_start.expr.span)
2396                .shrink_to_hi()
2397                .to(range_end.expr.span);
2398
2399            err.subdiagnostic(TypeMismatchFruTypo {
2400                expr_span: range_start.expr.span,
2401                fru_span,
2402                expr,
2403            });
2404
2405            // Suppress any range expr type mismatches
2406            self.dcx().try_steal_replace_and_emit_err(
2407                last_expr_field.span,
2408                StashKey::MaybeFruTypo,
2409                err,
2410            );
2411        } else {
2412            err.emit();
2413        }
2414    }
2415
2416    /// Report an error for a struct field expression when there are invisible fields.
2417    ///
2418    /// ```text
2419    /// error: cannot construct `Foo` with struct literal syntax due to private fields
2420    ///  --> src/main.rs:8:5
2421    ///   |
2422    /// 8 |     foo::Foo {};
2423    ///   |     ^^^^^^^^
2424    ///
2425    /// error: aborting due to 1 previous error
2426    /// ```
2427    fn report_private_fields(
2428        &self,
2429        adt_ty: Ty<'tcx>,
2430        span: Span,
2431        expr_span: Span,
2432        private_fields: Vec<&ty::FieldDef>,
2433        used_fields: &'tcx [hir::ExprField<'tcx>],
2434    ) {
2435        let mut err =
2436            self.dcx().struct_span_err(
2437                span,
2438                ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("cannot construct `{0}` with struct literal syntax due to private fields",
                adt_ty))
    })format!(
2439                    "cannot construct `{adt_ty}` with struct literal syntax due to private fields",
2440                ),
2441            );
2442        let (used_private_fields, remaining_private_fields): (
2443            Vec<(Symbol, Span, bool)>,
2444            Vec<(Symbol, Span, bool)>,
2445        ) = private_fields
2446            .iter()
2447            .map(|field| {
2448                match used_fields.iter().find(|used_field| field.name == used_field.ident.name) {
2449                    Some(used_field) => (field.name, used_field.span, true),
2450                    None => (field.name, self.tcx.def_span(field.did), false),
2451                }
2452            })
2453            .partition(|field| field.2);
2454        err.span_labels(used_private_fields.iter().map(|(_, span, _)| *span), "private field");
2455        if !remaining_private_fields.is_empty() {
2456            let names = if remaining_private_fields.len() > 6 {
2457                String::new()
2458            } else {
2459                ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("{0} ",
                listify(&remaining_private_fields,
                        |(name, _, _)|
                            ::alloc::__export::must_use({
                                    ::alloc::fmt::format(format_args!("`{0}`", name))
                                })).expect("expected at least one private field to report")))
    })format!(
2460                    "{} ",
2461                    listify(&remaining_private_fields, |(name, _, _)| format!("`{name}`"))
2462                        .expect("expected at least one private field to report")
2463                )
2464            };
2465            err.note(::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("{0}private field{1} {3}that {2} not provided",
                if used_fields.is_empty() { "" } else { "...and other " },
                if remaining_private_fields.len() == 1 { "" } else { "s" },
                if remaining_private_fields.len() == 1 {
                    "was"
                } else { "were" }, names))
    })format!(
2466                "{}private field{s} {names}that {were} not provided",
2467                if used_fields.is_empty() { "" } else { "...and other " },
2468                s = pluralize!(remaining_private_fields.len()),
2469                were = pluralize!("was", remaining_private_fields.len()),
2470            ));
2471        }
2472
2473        if let ty::Adt(def, _) = adt_ty.kind() {
2474            let def_id = def.did();
2475            let mut items = self
2476                .tcx
2477                .inherent_impls(def_id)
2478                .into_iter()
2479                .flat_map(|&i| self.tcx.associated_items(i).in_definition_order())
2480                // Only assoc fn with no receivers.
2481                .filter(|item| item.is_fn() && !item.is_method())
2482                .filter_map(|item| {
2483                    // Only assoc fns that return `Self`
2484                    let fn_sig = self
2485                        .tcx
2486                        .fn_sig(item.def_id)
2487                        .instantiate(self.tcx, self.fresh_args_for_item(span, item.def_id));
2488                    let ret_ty = self.tcx.instantiate_bound_regions_with_erased(fn_sig.output());
2489                    if !self.can_eq(self.param_env, ret_ty, adt_ty) {
2490                        return None;
2491                    }
2492                    let input_len = fn_sig.inputs().skip_binder().len();
2493                    let name = item.name();
2494                    let order = !name.as_str().starts_with("new");
2495                    Some((order, name, input_len))
2496                })
2497                .collect::<Vec<_>>();
2498            items.sort_by_key(|(order, _, _)| *order);
2499            let suggestion = |name, args| {
2500                ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("::{1}({0})",
                std::iter::repeat_n("_", args).collect::<Vec<_>>().join(", "),
                name))
    })format!(
2501                    "::{name}({})",
2502                    std::iter::repeat_n("_", args).collect::<Vec<_>>().join(", ")
2503                )
2504            };
2505            match &items[..] {
2506                [] => {}
2507                [(_, name, args)] => {
2508                    err.span_suggestion_verbose(
2509                        span.shrink_to_hi().with_hi(expr_span.hi()),
2510                        ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("you might have meant to use the `{0}` associated function",
                name))
    })format!("you might have meant to use the `{name}` associated function"),
2511                        suggestion(name, *args),
2512                        Applicability::MaybeIncorrect,
2513                    );
2514                }
2515                _ => {
2516                    err.span_suggestions(
2517                        span.shrink_to_hi().with_hi(expr_span.hi()),
2518                        "you might have meant to use an associated function to build this type",
2519                        items.iter().map(|(_, name, args)| suggestion(name, *args)),
2520                        Applicability::MaybeIncorrect,
2521                    );
2522                }
2523            }
2524            if let Some(default_trait) = self.tcx.get_diagnostic_item(sym::Default)
2525                && self
2526                    .infcx
2527                    .type_implements_trait(default_trait, [adt_ty], self.param_env)
2528                    .may_apply()
2529            {
2530                err.multipart_suggestion(
2531                    "consider using the `Default` trait",
2532                    ::alloc::boxed::box_assume_init_into_vec_unsafe(::alloc::intrinsics::write_box_via_move(::alloc::boxed::Box::new_uninit(),
        [(span.shrink_to_lo(), "<".to_string()),
                (span.shrink_to_hi().with_hi(expr_span.hi()),
                    " as std::default::Default>::default()".to_string())]))vec![
2533                        (span.shrink_to_lo(), "<".to_string()),
2534                        (
2535                            span.shrink_to_hi().with_hi(expr_span.hi()),
2536                            " as std::default::Default>::default()".to_string(),
2537                        ),
2538                    ],
2539                    Applicability::MaybeIncorrect,
2540                );
2541            }
2542        }
2543
2544        err.emit();
2545    }
2546
2547    fn report_unknown_field(
2548        &self,
2549        ty: Ty<'tcx>,
2550        variant: &'tcx ty::VariantDef,
2551        expr: &hir::Expr<'_>,
2552        field: &hir::ExprField<'_>,
2553        skip_fields: &[hir::ExprField<'_>],
2554        kind_name: &str,
2555    ) -> ErrorGuaranteed {
2556        // we don't care to report errors for a struct if the struct itself is tainted
2557        if let Err(guar) = variant.has_errors() {
2558            return guar;
2559        }
2560        let mut err = self.err_ctxt().type_error_struct_with_diag(
2561            field.ident.span,
2562            |actual| match ty.kind() {
2563                ty::Adt(adt, ..) if adt.is_enum() => {
    self.dcx().struct_span_err(field.ident.span,
            ::alloc::__export::must_use({
                    ::alloc::fmt::format(format_args!("{0} `{1}::{2}` has no field named `{3}`",
                            kind_name, actual, variant.name, field.ident))
                })).with_code(E0559)
}struct_span_code_err!(
2564                    self.dcx(),
2565                    field.ident.span,
2566                    E0559,
2567                    "{} `{}::{}` has no field named `{}`",
2568                    kind_name,
2569                    actual,
2570                    variant.name,
2571                    field.ident
2572                ),
2573                _ => {
    self.dcx().struct_span_err(field.ident.span,
            ::alloc::__export::must_use({
                    ::alloc::fmt::format(format_args!("{0} `{1}` has no field named `{2}`",
                            kind_name, actual, field.ident))
                })).with_code(E0560)
}struct_span_code_err!(
2574                    self.dcx(),
2575                    field.ident.span,
2576                    E0560,
2577                    "{} `{}` has no field named `{}`",
2578                    kind_name,
2579                    actual,
2580                    field.ident
2581                ),
2582            },
2583            ty,
2584        );
2585
2586        let variant_ident_span = self.tcx.def_ident_span(variant.def_id).unwrap();
2587        match variant.ctor {
2588            Some((CtorKind::Fn, def_id)) => match ty.kind() {
2589                ty::Adt(adt, ..) if adt.is_enum() => {
2590                    err.span_label(
2591                        variant_ident_span,
2592                        ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("`{0}::{1}` defined here", ty,
                variant.name))
    })format!(
2593                            "`{adt}::{variant}` defined here",
2594                            adt = ty,
2595                            variant = variant.name,
2596                        ),
2597                    );
2598                    err.span_label(field.ident.span, "field does not exist");
2599                    let fn_sig = self.tcx.fn_sig(def_id).instantiate_identity();
2600                    let inputs = fn_sig.inputs().skip_binder();
2601                    let fields = ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("({0})",
                inputs.iter().map(|i|
                                ::alloc::__export::must_use({
                                        ::alloc::fmt::format(format_args!("/* {0} */", i))
                                    })).collect::<Vec<_>>().join(", ")))
    })format!(
2602                        "({})",
2603                        inputs.iter().map(|i| format!("/* {i} */")).collect::<Vec<_>>().join(", ")
2604                    );
2605                    let (replace_span, sugg) = match expr.kind {
2606                        hir::ExprKind::Struct(qpath, ..) => {
2607                            (qpath.span().shrink_to_hi().with_hi(expr.span.hi()), fields)
2608                        }
2609                        _ => {
2610                            (expr.span, ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("{1}::{0}{2}", variant.name, ty,
                fields))
    })format!("{ty}::{variant}{fields}", variant = variant.name))
2611                        }
2612                    };
2613                    err.span_suggestion_verbose(
2614                        replace_span,
2615                        ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("`{0}::{1}` is a tuple {2}, use the appropriate syntax",
                ty, variant.name, kind_name))
    })format!(
2616                            "`{adt}::{variant}` is a tuple {kind_name}, use the appropriate syntax",
2617                            adt = ty,
2618                            variant = variant.name,
2619                        ),
2620                        sugg,
2621                        Applicability::HasPlaceholders,
2622                    );
2623                }
2624                _ => {
2625                    err.span_label(variant_ident_span, ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("`{0}` defined here", ty))
    })format!("`{ty}` defined here"));
2626                    err.span_label(field.ident.span, "field does not exist");
2627                    let fn_sig = self.tcx.fn_sig(def_id).instantiate_identity();
2628                    let inputs = fn_sig.inputs().skip_binder();
2629                    let fields = ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("({0})",
                inputs.iter().map(|i|
                                ::alloc::__export::must_use({
                                        ::alloc::fmt::format(format_args!("/* {0} */", i))
                                    })).collect::<Vec<_>>().join(", ")))
    })format!(
2630                        "({})",
2631                        inputs.iter().map(|i| format!("/* {i} */")).collect::<Vec<_>>().join(", ")
2632                    );
2633                    err.span_suggestion_verbose(
2634                        expr.span,
2635                        ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("`{0}` is a tuple {1}, use the appropriate syntax",
                ty, kind_name))
    })format!("`{ty}` is a tuple {kind_name}, use the appropriate syntax",),
2636                        ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("{0}{1}", ty, fields))
    })format!("{ty}{fields}"),
2637                        Applicability::HasPlaceholders,
2638                    );
2639                }
2640            },
2641            _ => {
2642                // prevent all specified fields from being suggested
2643                let available_field_names = self.available_field_names(variant, expr, skip_fields);
2644                if let Some(field_name) =
2645                    find_best_match_for_name(&available_field_names, field.ident.name, None)
2646                    && !(field.ident.name.as_str().parse::<usize>().is_ok()
2647                        && field_name.as_str().parse::<usize>().is_ok())
2648                {
2649                    err.span_label(field.ident.span, "unknown field");
2650                    err.span_suggestion_verbose(
2651                        field.ident.span,
2652                        "a field with a similar name exists",
2653                        field_name,
2654                        Applicability::MaybeIncorrect,
2655                    );
2656                } else {
2657                    match ty.kind() {
2658                        ty::Adt(adt, ..) => {
2659                            if adt.is_enum() {
2660                                err.span_label(
2661                                    field.ident.span,
2662                                    ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("`{0}::{1}` does not have this field",
                ty, variant.name))
    })format!("`{}::{}` does not have this field", ty, variant.name),
2663                                );
2664                            } else {
2665                                err.span_label(
2666                                    field.ident.span,
2667                                    ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("`{0}` does not have this field",
                ty))
    })format!("`{ty}` does not have this field"),
2668                                );
2669                            }
2670                            if available_field_names.is_empty() {
2671                                err.note("all struct fields are already assigned");
2672                            } else {
2673                                err.note(::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("available fields are: {0}",
                self.name_series_display(available_field_names)))
    })format!(
2674                                    "available fields are: {}",
2675                                    self.name_series_display(available_field_names)
2676                                ));
2677                            }
2678                        }
2679                        _ => ::rustc_middle::util::bug::bug_fmt(format_args!("non-ADT passed to report_unknown_field"))bug!("non-ADT passed to report_unknown_field"),
2680                    }
2681                };
2682            }
2683        }
2684        err.emit()
2685    }
2686
2687    fn available_field_names(
2688        &self,
2689        variant: &'tcx ty::VariantDef,
2690        expr: &hir::Expr<'_>,
2691        skip_fields: &[hir::ExprField<'_>],
2692    ) -> Vec<Symbol> {
2693        variant
2694            .fields
2695            .iter()
2696            .filter(|field| {
2697                skip_fields.iter().all(|&skip| skip.ident.name != field.name)
2698                    && self.is_field_suggestable(field, expr.hir_id, expr.span)
2699            })
2700            .map(|field| field.name)
2701            .collect()
2702    }
2703
2704    fn name_series_display(&self, names: Vec<Symbol>) -> String {
2705        // dynamic limit, to never omit just one field
2706        let limit = if names.len() == 6 { 6 } else { 5 };
2707        let mut display =
2708            names.iter().take(limit).map(|n| ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("`{0}`", n))
    })format!("`{n}`")).collect::<Vec<_>>().join(", ");
2709        if names.len() > limit {
2710            display = ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("{0} ... and {1} others", display,
                names.len() - limit))
    })format!("{} ... and {} others", display, names.len() - limit);
2711        }
2712        display
2713    }
2714
2715    /// Find the position of a field named `ident` in `base_def`, accounting for unnammed fields.
2716    /// Return whether such a field has been found. The path to it is stored in `nested_fields`.
2717    /// `ident` must have been adjusted beforehand.
2718    fn find_adt_field(
2719        &self,
2720        base_def: ty::AdtDef<'tcx>,
2721        ident: Ident,
2722    ) -> Option<(FieldIdx, &'tcx ty::FieldDef)> {
2723        // No way to find a field in an enum.
2724        if base_def.is_enum() {
2725            return None;
2726        }
2727
2728        for (field_idx, field) in base_def.non_enum_variant().fields.iter_enumerated() {
2729            if field.ident(self.tcx).normalize_to_macros_2_0() == ident {
2730                // We found the field we wanted.
2731                return Some((field_idx, field));
2732            }
2733        }
2734
2735        None
2736    }
2737
2738    /// Check field access expressions, this works for both structs and tuples.
2739    /// Returns the Ty of the field.
2740    ///
2741    /// ```ignore (illustrative)
2742    /// base.field
2743    /// ^^^^^^^^^^ expr
2744    /// ^^^^       base
2745    ///      ^^^^^ field
2746    /// ```
2747    fn check_expr_field(
2748        &self,
2749        expr: &'tcx hir::Expr<'tcx>,
2750        base: &'tcx hir::Expr<'tcx>,
2751        field: Ident,
2752        // The expected type hint of the field.
2753        expected: Expectation<'tcx>,
2754    ) -> Ty<'tcx> {
2755        {
    use ::tracing::__macro_support::Callsite as _;
    static __CALLSITE: ::tracing::callsite::DefaultCallsite =
        {
            static META: ::tracing::Metadata<'static> =
                {
                    ::tracing_core::metadata::Metadata::new("event compiler/rustc_hir_typeck/src/expr.rs:2755",
                        "rustc_hir_typeck::expr", ::tracing::Level::DEBUG,
                        ::tracing_core::__macro_support::Option::Some("compiler/rustc_hir_typeck/src/expr.rs"),
                        ::tracing_core::__macro_support::Option::Some(2755u32),
                        ::tracing_core::__macro_support::Option::Some("rustc_hir_typeck::expr"),
                        ::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!("check_field(expr: {0:?}, base: {1:?}, field: {2:?})",
                                                    expr, base, field) as &dyn Value))])
            });
    } else { ; }
};debug!("check_field(expr: {:?}, base: {:?}, field: {:?})", expr, base, field);
2756        let base_ty = self.check_expr(base);
2757        let base_ty = self.structurally_resolve_type(base.span, base_ty);
2758
2759        // Whether we are trying to access a private field. Used for error reporting.
2760        let mut private_candidate = None;
2761
2762        // Field expressions automatically deref
2763        let mut autoderef = self.autoderef(expr.span, base_ty);
2764        while let Some((deref_base_ty, _)) = autoderef.next() {
2765            {
    use ::tracing::__macro_support::Callsite as _;
    static __CALLSITE: ::tracing::callsite::DefaultCallsite =
        {
            static META: ::tracing::Metadata<'static> =
                {
                    ::tracing_core::metadata::Metadata::new("event compiler/rustc_hir_typeck/src/expr.rs:2765",
                        "rustc_hir_typeck::expr", ::tracing::Level::DEBUG,
                        ::tracing_core::__macro_support::Option::Some("compiler/rustc_hir_typeck/src/expr.rs"),
                        ::tracing_core::__macro_support::Option::Some(2765u32),
                        ::tracing_core::__macro_support::Option::Some("rustc_hir_typeck::expr"),
                        ::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!("deref_base_ty: {0:?}",
                                                    deref_base_ty) as &dyn Value))])
            });
    } else { ; }
};debug!("deref_base_ty: {:?}", deref_base_ty);
2766            match deref_base_ty.kind() {
2767                ty::Adt(base_def, args) if !base_def.is_enum() => {
2768                    {
    use ::tracing::__macro_support::Callsite as _;
    static __CALLSITE: ::tracing::callsite::DefaultCallsite =
        {
            static META: ::tracing::Metadata<'static> =
                {
                    ::tracing_core::metadata::Metadata::new("event compiler/rustc_hir_typeck/src/expr.rs:2768",
                        "rustc_hir_typeck::expr", ::tracing::Level::DEBUG,
                        ::tracing_core::__macro_support::Option::Some("compiler/rustc_hir_typeck/src/expr.rs"),
                        ::tracing_core::__macro_support::Option::Some(2768u32),
                        ::tracing_core::__macro_support::Option::Some("rustc_hir_typeck::expr"),
                        ::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!("struct named {0:?}",
                                                    deref_base_ty) as &dyn Value))])
            });
    } else { ; }
};debug!("struct named {:?}", deref_base_ty);
2769                    // we don't care to report errors for a struct if the struct itself is tainted
2770                    if let Err(guar) = base_def.non_enum_variant().has_errors() {
2771                        return Ty::new_error(self.tcx(), guar);
2772                    }
2773
2774                    let fn_body_hir_id = self.tcx.local_def_id_to_hir_id(self.body_id);
2775                    let (ident, def_scope) =
2776                        self.tcx.adjust_ident_and_get_scope(field, base_def.did(), fn_body_hir_id);
2777
2778                    if let Some((idx, field)) = self.find_adt_field(*base_def, ident) {
2779                        self.write_field_index(expr.hir_id, idx);
2780
2781                        let adjustments = self.adjust_steps(&autoderef);
2782                        if field.vis.is_accessible_from(def_scope, self.tcx) {
2783                            self.apply_adjustments(base, adjustments);
2784                            self.register_predicates(autoderef.into_obligations());
2785
2786                            self.tcx.check_stability(field.did, Some(expr.hir_id), expr.span, None);
2787                            return self.field_ty(expr.span, field, args);
2788                        }
2789
2790                        // The field is not accessible, fall through to error reporting.
2791                        private_candidate = Some((adjustments, base_def.did()));
2792                    }
2793                }
2794                ty::Tuple(tys) => {
2795                    if let Ok(index) = field.as_str().parse::<usize>() {
2796                        if field.name == sym::integer(index) {
2797                            if let Some(&field_ty) = tys.get(index) {
2798                                let adjustments = self.adjust_steps(&autoderef);
2799                                self.apply_adjustments(base, adjustments);
2800                                self.register_predicates(autoderef.into_obligations());
2801
2802                                self.write_field_index(expr.hir_id, FieldIdx::from_usize(index));
2803                                return field_ty;
2804                            }
2805                        }
2806                    }
2807                }
2808                _ => {}
2809            }
2810        }
2811        // We failed to check the expression, report an error.
2812
2813        // Emits an error if we deref an infer variable, like calling `.field` on a base type
2814        // of `&_`. We can also use this to suppress unnecessary "missing field" errors that
2815        // will follow ambiguity errors.
2816        let final_ty = self.structurally_resolve_type(autoderef.span(), autoderef.final_ty());
2817        if let ty::Error(_) = final_ty.kind() {
2818            return final_ty;
2819        }
2820
2821        if let Some((adjustments, did)) = private_candidate {
2822            // (#90483) apply adjustments to avoid ExprUseVisitor from
2823            // creating erroneous projection.
2824            self.apply_adjustments(base, adjustments);
2825            let guar = self.ban_private_field_access(
2826                expr,
2827                base_ty,
2828                field,
2829                did,
2830                expected.only_has_type(self),
2831            );
2832            return Ty::new_error(self.tcx(), guar);
2833        }
2834
2835        let guar = if self.method_exists_for_diagnostic(
2836            field,
2837            base_ty,
2838            expr.hir_id,
2839            expected.only_has_type(self),
2840        ) {
2841            // If taking a method instead of calling it
2842            self.ban_take_value_of_method(expr, base_ty, field)
2843        } else if !base_ty.is_primitive_ty() {
2844            self.ban_nonexisting_field(field, base, expr, base_ty)
2845        } else {
2846            let field_name = field.to_string();
2847            let mut err = {
    let mut err =
        {
            self.dcx().struct_span_err(field.span,
                    ::alloc::__export::must_use({
                            ::alloc::fmt::format(format_args!("`{0}` is a primitive type and therefore doesn\'t have fields",
                                    base_ty))
                        })).with_code(E0610)
        };
    if base_ty.references_error() { err.downgrade_to_delayed_bug(); }
    err
}type_error_struct!(
2848                self.dcx(),
2849                field.span,
2850                base_ty,
2851                E0610,
2852                "`{base_ty}` is a primitive type and therefore doesn't have fields",
2853            );
2854            let is_valid_suffix = |field: &str| {
2855                if field == "f32" || field == "f64" {
2856                    return true;
2857                }
2858                let mut chars = field.chars().peekable();
2859                match chars.peek() {
2860                    Some('e') | Some('E') => {
2861                        chars.next();
2862                        if let Some(c) = chars.peek()
2863                            && !c.is_numeric()
2864                            && *c != '-'
2865                            && *c != '+'
2866                        {
2867                            return false;
2868                        }
2869                        while let Some(c) = chars.peek() {
2870                            if !c.is_numeric() {
2871                                break;
2872                            }
2873                            chars.next();
2874                        }
2875                    }
2876                    _ => (),
2877                }
2878                let suffix = chars.collect::<String>();
2879                suffix.is_empty() || suffix == "f32" || suffix == "f64"
2880            };
2881            let maybe_partial_suffix = |field: &str| -> Option<&str> {
2882                let first_chars = ['f', 'l'];
2883                if field.len() >= 1
2884                    && field.to_lowercase().starts_with(first_chars)
2885                    && field[1..].chars().all(|c| c.is_ascii_digit())
2886                {
2887                    if field.to_lowercase().starts_with(['f']) { Some("f32") } else { Some("f64") }
2888                } else {
2889                    None
2890                }
2891            };
2892            if let ty::Infer(ty::IntVar(_)) = base_ty.kind()
2893                && let ExprKind::Lit(Spanned {
2894                    node: ast::LitKind::Int(_, ast::LitIntType::Unsuffixed),
2895                    ..
2896                }) = base.kind
2897                && !base.span.from_expansion()
2898            {
2899                if is_valid_suffix(&field_name) {
2900                    err.span_suggestion_verbose(
2901                        field.span.shrink_to_lo(),
2902                        "if intended to be a floating point literal, consider adding a `0` after the period",
2903                        '0',
2904                        Applicability::MaybeIncorrect,
2905                    );
2906                } else if let Some(correct_suffix) = maybe_partial_suffix(&field_name) {
2907                    err.span_suggestion_verbose(
2908                        field.span,
2909                        ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("if intended to be a floating point literal, consider adding a `0` after the period and a `{0}` suffix",
                correct_suffix))
    })format!("if intended to be a floating point literal, consider adding a `0` after the period and a `{correct_suffix}` suffix"),
2910                        ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("0{0}", correct_suffix))
    })format!("0{correct_suffix}"),
2911                        Applicability::MaybeIncorrect,
2912                    );
2913                }
2914            }
2915            err.emit()
2916        };
2917
2918        Ty::new_error(self.tcx(), guar)
2919    }
2920
2921    fn suggest_await_on_field_access(
2922        &self,
2923        err: &mut Diag<'_>,
2924        field_ident: Ident,
2925        base: &'tcx hir::Expr<'tcx>,
2926        ty: Ty<'tcx>,
2927    ) {
2928        let Some(output_ty) = self.err_ctxt().get_impl_future_output_ty(ty) else {
2929            err.span_label(field_ident.span, "unknown field");
2930            return;
2931        };
2932        let ty::Adt(def, _) = output_ty.kind() else {
2933            err.span_label(field_ident.span, "unknown field");
2934            return;
2935        };
2936        // no field access on enum type
2937        if def.is_enum() {
2938            err.span_label(field_ident.span, "unknown field");
2939            return;
2940        }
2941        if !def.non_enum_variant().fields.iter().any(|field| field.ident(self.tcx) == field_ident) {
2942            err.span_label(field_ident.span, "unknown field");
2943            return;
2944        }
2945        err.span_label(
2946            field_ident.span,
2947            "field not available in `impl Future`, but it is available in its `Output`",
2948        );
2949        match self.tcx.coroutine_kind(self.body_id) {
2950            Some(hir::CoroutineKind::Desugared(hir::CoroutineDesugaring::Async, _)) => {
2951                err.span_suggestion_verbose(
2952                    base.span.shrink_to_hi(),
2953                    "consider `await`ing on the `Future` to access the field",
2954                    ".await",
2955                    Applicability::MaybeIncorrect,
2956                );
2957            }
2958            _ => {
2959                let mut span: MultiSpan = base.span.into();
2960                span.push_span_label(self.tcx.def_span(self.body_id), "this is not `async`");
2961                err.span_note(
2962                    span,
2963                    "this implements `Future` and its output type has the field, \
2964                    but the future cannot be awaited in a synchronous function",
2965                );
2966            }
2967        }
2968    }
2969
2970    fn ban_nonexisting_field(
2971        &self,
2972        ident: Ident,
2973        base: &'tcx hir::Expr<'tcx>,
2974        expr: &'tcx hir::Expr<'tcx>,
2975        base_ty: Ty<'tcx>,
2976    ) -> ErrorGuaranteed {
2977        {
    use ::tracing::__macro_support::Callsite as _;
    static __CALLSITE: ::tracing::callsite::DefaultCallsite =
        {
            static META: ::tracing::Metadata<'static> =
                {
                    ::tracing_core::metadata::Metadata::new("event compiler/rustc_hir_typeck/src/expr.rs:2977",
                        "rustc_hir_typeck::expr", ::tracing::Level::DEBUG,
                        ::tracing_core::__macro_support::Option::Some("compiler/rustc_hir_typeck/src/expr.rs"),
                        ::tracing_core::__macro_support::Option::Some(2977u32),
                        ::tracing_core::__macro_support::Option::Some("rustc_hir_typeck::expr"),
                        ::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!("ban_nonexisting_field: field={0:?}, base={1:?}, expr={2:?}, base_ty={3:?}",
                                                    ident, base, expr, base_ty) as &dyn Value))])
            });
    } else { ; }
};debug!(
2978            "ban_nonexisting_field: field={:?}, base={:?}, expr={:?}, base_ty={:?}",
2979            ident, base, expr, base_ty
2980        );
2981        let mut err = self.no_such_field_err(ident, base_ty, expr);
2982
2983        match *base_ty.peel_refs().kind() {
2984            ty::Array(_, len) => {
2985                self.maybe_suggest_array_indexing(&mut err, base, ident, len);
2986            }
2987            ty::RawPtr(..) => {
2988                self.suggest_first_deref_field(&mut err, base, ident);
2989            }
2990            ty::Param(param_ty) => {
2991                err.span_label(ident.span, "unknown field");
2992                self.point_at_param_definition(&mut err, param_ty);
2993            }
2994            ty::Alias(ty::Opaque, _) => {
2995                self.suggest_await_on_field_access(&mut err, ident, base, base_ty.peel_refs());
2996            }
2997            _ => {
2998                err.span_label(ident.span, "unknown field");
2999            }
3000        }
3001
3002        self.suggest_fn_call(&mut err, base, base_ty, |output_ty| {
3003            if let ty::Adt(def, _) = output_ty.kind()
3004                && !def.is_enum()
3005            {
3006                def.non_enum_variant().fields.iter().any(|field| {
3007                    field.ident(self.tcx) == ident
3008                        && field.vis.is_accessible_from(expr.hir_id.owner.def_id, self.tcx)
3009                })
3010            } else if let ty::Tuple(tys) = output_ty.kind()
3011                && let Ok(idx) = ident.as_str().parse::<usize>()
3012            {
3013                idx < tys.len()
3014            } else {
3015                false
3016            }
3017        });
3018
3019        if ident.name == kw::Await {
3020            // We know by construction that `<expr>.await` is either on Rust 2015
3021            // or results in `ExprKind::Await`. Suggest switching the edition to 2018.
3022            err.note("to `.await` a `Future`, switch to Rust 2018 or later");
3023            HelpUseLatestEdition::new().add_to_diag(&mut err);
3024        }
3025
3026        err.emit()
3027    }
3028
3029    fn ban_private_field_access(
3030        &self,
3031        expr: &hir::Expr<'tcx>,
3032        expr_t: Ty<'tcx>,
3033        field: Ident,
3034        base_did: DefId,
3035        return_ty: Option<Ty<'tcx>>,
3036    ) -> ErrorGuaranteed {
3037        let mut err = self.private_field_err(field, base_did);
3038
3039        // Also check if an accessible method exists, which is often what is meant.
3040        if self.method_exists_for_diagnostic(field, expr_t, expr.hir_id, return_ty)
3041            && !self.expr_in_place(expr.hir_id)
3042        {
3043            self.suggest_method_call(
3044                &mut err,
3045                ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("a method `{0}` also exists, call it with parentheses",
                field))
    })format!("a method `{field}` also exists, call it with parentheses"),
3046                field,
3047                expr_t,
3048                expr,
3049                None,
3050            );
3051        }
3052        err.emit()
3053    }
3054
3055    fn ban_take_value_of_method(
3056        &self,
3057        expr: &hir::Expr<'tcx>,
3058        expr_t: Ty<'tcx>,
3059        field: Ident,
3060    ) -> ErrorGuaranteed {
3061        let mut err = {
    let mut err =
        {
            self.dcx().struct_span_err(field.span,
                    ::alloc::__export::must_use({
                            ::alloc::fmt::format(format_args!("attempted to take value of method `{0}` on type `{1}`",
                                    field, expr_t))
                        })).with_code(E0615)
        };
    if expr_t.references_error() { err.downgrade_to_delayed_bug(); }
    err
}type_error_struct!(
3062            self.dcx(),
3063            field.span,
3064            expr_t,
3065            E0615,
3066            "attempted to take value of method `{field}` on type `{expr_t}`",
3067        );
3068        err.span_label(field.span, "method, not a field");
3069        let expr_is_call =
3070            if let hir::Node::Expr(hir::Expr { kind: ExprKind::Call(callee, _args), .. }) =
3071                self.tcx.parent_hir_node(expr.hir_id)
3072            {
3073                expr.hir_id == callee.hir_id
3074            } else {
3075                false
3076            };
3077        let expr_snippet =
3078            self.tcx.sess.source_map().span_to_snippet(expr.span).unwrap_or_default();
3079        let is_wrapped = expr_snippet.starts_with('(') && expr_snippet.ends_with(')');
3080        let after_open = expr.span.lo() + rustc_span::BytePos(1);
3081        let before_close = expr.span.hi() - rustc_span::BytePos(1);
3082
3083        if expr_is_call && is_wrapped {
3084            err.multipart_suggestion(
3085                "remove wrapping parentheses to call the method",
3086                ::alloc::boxed::box_assume_init_into_vec_unsafe(::alloc::intrinsics::write_box_via_move(::alloc::boxed::Box::new_uninit(),
        [(expr.span.with_hi(after_open), String::new()),
                (expr.span.with_lo(before_close), String::new())]))vec![
3087                    (expr.span.with_hi(after_open), String::new()),
3088                    (expr.span.with_lo(before_close), String::new()),
3089                ],
3090                Applicability::MachineApplicable,
3091            );
3092        } else if !self.expr_in_place(expr.hir_id) {
3093            // Suggest call parentheses inside the wrapping parentheses
3094            let span = if is_wrapped {
3095                expr.span.with_lo(after_open).with_hi(before_close)
3096            } else {
3097                expr.span
3098            };
3099            self.suggest_method_call(
3100                &mut err,
3101                "use parentheses to call the method",
3102                field,
3103                expr_t,
3104                expr,
3105                Some(span),
3106            );
3107        } else if let ty::RawPtr(ptr_ty, _) = expr_t.kind()
3108            && let ty::Adt(adt_def, _) = ptr_ty.kind()
3109            && let ExprKind::Field(base_expr, _) = expr.kind
3110            && let [variant] = &adt_def.variants().raw
3111            && variant.fields.iter().any(|f| f.ident(self.tcx) == field)
3112        {
3113            err.multipart_suggestion(
3114                "to access the field, dereference first",
3115                ::alloc::boxed::box_assume_init_into_vec_unsafe(::alloc::intrinsics::write_box_via_move(::alloc::boxed::Box::new_uninit(),
        [(base_expr.span.shrink_to_lo(), "(*".to_string()),
                (base_expr.span.shrink_to_hi(), ")".to_string())]))vec![
3116                    (base_expr.span.shrink_to_lo(), "(*".to_string()),
3117                    (base_expr.span.shrink_to_hi(), ")".to_string()),
3118                ],
3119                Applicability::MaybeIncorrect,
3120            );
3121        } else {
3122            err.help("methods are immutable and cannot be assigned to");
3123        }
3124
3125        // See `StashKey::GenericInFieldExpr` for more info
3126        self.dcx().try_steal_replace_and_emit_err(field.span, StashKey::GenericInFieldExpr, err)
3127    }
3128
3129    fn point_at_param_definition(&self, err: &mut Diag<'_>, param: ty::ParamTy) {
3130        let generics = self.tcx.generics_of(self.body_id);
3131        let generic_param = generics.type_param(param, self.tcx);
3132        if let ty::GenericParamDefKind::Type { synthetic: true, .. } = generic_param.kind {
3133            return;
3134        }
3135        let param_def_id = generic_param.def_id;
3136        let param_hir_id = match param_def_id.as_local() {
3137            Some(x) => self.tcx.local_def_id_to_hir_id(x),
3138            None => return,
3139        };
3140        let param_span = self.tcx.hir_span(param_hir_id);
3141        let param_name = self.tcx.hir_ty_param_name(param_def_id.expect_local());
3142
3143        err.span_label(param_span, ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("type parameter \'{0}\' declared here",
                param_name))
    })format!("type parameter '{param_name}' declared here"));
3144    }
3145
3146    fn maybe_suggest_array_indexing(
3147        &self,
3148        err: &mut Diag<'_>,
3149        base: &hir::Expr<'_>,
3150        field: Ident,
3151        len: ty::Const<'tcx>,
3152    ) {
3153        err.span_label(field.span, "unknown field");
3154        if let (Some(len), Ok(user_index)) = (
3155            self.try_structurally_resolve_const(base.span, len).try_to_target_usize(self.tcx),
3156            field.as_str().parse::<u64>(),
3157        ) {
3158            let help = "instead of using tuple indexing, use array indexing";
3159            let applicability = if len < user_index {
3160                Applicability::MachineApplicable
3161            } else {
3162                Applicability::MaybeIncorrect
3163            };
3164            err.multipart_suggestion(
3165                help,
3166                ::alloc::boxed::box_assume_init_into_vec_unsafe(::alloc::intrinsics::write_box_via_move(::alloc::boxed::Box::new_uninit(),
        [(base.span.between(field.span), "[".to_string()),
                (field.span.shrink_to_hi(), "]".to_string())]))vec![
3167                    (base.span.between(field.span), "[".to_string()),
3168                    (field.span.shrink_to_hi(), "]".to_string()),
3169                ],
3170                applicability,
3171            );
3172        }
3173    }
3174
3175    fn suggest_first_deref_field(&self, err: &mut Diag<'_>, base: &hir::Expr<'_>, field: Ident) {
3176        err.span_label(field.span, "unknown field");
3177        let val = if let Ok(base) = self.tcx.sess.source_map().span_to_snippet(base.span)
3178            && base.len() < 20
3179        {
3180            ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("`{0}`", base))
    })format!("`{base}`")
3181        } else {
3182            "the value".to_string()
3183        };
3184        err.multipart_suggestion(
3185            ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("{0} is a raw pointer; try dereferencing it",
                val))
    })format!("{val} is a raw pointer; try dereferencing it"),
3186            ::alloc::boxed::box_assume_init_into_vec_unsafe(::alloc::intrinsics::write_box_via_move(::alloc::boxed::Box::new_uninit(),
        [(base.span.shrink_to_lo(), "(*".into()),
                (base.span.between(field.span),
                    ::alloc::__export::must_use({
                            ::alloc::fmt::format(format_args!(")."))
                        }))]))vec![
3187                (base.span.shrink_to_lo(), "(*".into()),
3188                (base.span.between(field.span), format!(").")),
3189            ],
3190            Applicability::MaybeIncorrect,
3191        );
3192    }
3193
3194    fn no_such_field_err(
3195        &self,
3196        field: Ident,
3197        base_ty: Ty<'tcx>,
3198        expr: &hir::Expr<'tcx>,
3199    ) -> Diag<'_> {
3200        let span = field.span;
3201        {
    use ::tracing::__macro_support::Callsite as _;
    static __CALLSITE: ::tracing::callsite::DefaultCallsite =
        {
            static META: ::tracing::Metadata<'static> =
                {
                    ::tracing_core::metadata::Metadata::new("event compiler/rustc_hir_typeck/src/expr.rs:3201",
                        "rustc_hir_typeck::expr", ::tracing::Level::DEBUG,
                        ::tracing_core::__macro_support::Option::Some("compiler/rustc_hir_typeck/src/expr.rs"),
                        ::tracing_core::__macro_support::Option::Some(3201u32),
                        ::tracing_core::__macro_support::Option::Some("rustc_hir_typeck::expr"),
                        ::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!("no_such_field_err(span: {0:?}, field: {1:?}, expr_t: {2:?})",
                                                    span, field, base_ty) as &dyn Value))])
            });
    } else { ; }
};debug!("no_such_field_err(span: {:?}, field: {:?}, expr_t: {:?})", span, field, base_ty);
3202
3203        let mut err = self.dcx().create_err(NoFieldOnType { span, ty: base_ty, field });
3204        if base_ty.references_error() {
3205            err.downgrade_to_delayed_bug();
3206        }
3207
3208        if let Some(within_macro_span) = span.within_macro(expr.span, self.tcx.sess.source_map()) {
3209            err.span_label(within_macro_span, "due to this macro variable");
3210        }
3211
3212        // Check if there is an associated function with the same name.
3213        if let Some(def_id) = base_ty.peel_refs().ty_adt_def().map(|d| d.did()) {
3214            for &impl_def_id in self.tcx.inherent_impls(def_id) {
3215                for item in self.tcx.associated_items(impl_def_id).in_definition_order() {
3216                    if let ExprKind::Field(base_expr, _) = expr.kind
3217                        && item.name() == field.name
3218                        && #[allow(non_exhaustive_omitted_patterns)] match item.kind {
    ty::AssocKind::Fn { has_self: false, .. } => true,
    _ => false,
}matches!(item.kind, ty::AssocKind::Fn { has_self: false, .. })
3219                    {
3220                        err.span_label(field.span, "this is an associated function, not a method");
3221                        err.note("found the following associated function; to be used as method, it must have a `self` parameter");
3222                        let impl_ty = self.tcx.type_of(impl_def_id).instantiate_identity();
3223                        err.span_note(
3224                            self.tcx.def_span(item.def_id),
3225                            ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("the candidate is defined in an impl for the type `{0}`",
                impl_ty))
    })format!("the candidate is defined in an impl for the type `{impl_ty}`"),
3226                        );
3227
3228                        let ty_str = match base_ty.peel_refs().kind() {
3229                            ty::Adt(def, args) => self.tcx.def_path_str_with_args(def.did(), args),
3230                            _ => base_ty.peel_refs().to_string(),
3231                        };
3232                        err.multipart_suggestion(
3233                            "use associated function syntax instead",
3234                            ::alloc::boxed::box_assume_init_into_vec_unsafe(::alloc::intrinsics::write_box_via_move(::alloc::boxed::Box::new_uninit(),
        [(base_expr.span, ty_str),
                (base_expr.span.between(field.span), "::".to_string())]))vec![
3235                                (base_expr.span, ty_str),
3236                                (base_expr.span.between(field.span), "::".to_string()),
3237                            ],
3238                            Applicability::MaybeIncorrect,
3239                        );
3240                        return err;
3241                    }
3242                }
3243            }
3244        }
3245
3246        // try to add a suggestion in case the field is a nested field of a field of the Adt
3247        let mod_id = self.tcx.parent_module(expr.hir_id).to_def_id();
3248        let (ty, unwrap) = if let ty::Adt(def, args) = base_ty.kind()
3249            && (self.tcx.is_diagnostic_item(sym::Result, def.did())
3250                || self.tcx.is_diagnostic_item(sym::Option, def.did()))
3251            && let Some(arg) = args.get(0)
3252            && let Some(ty) = arg.as_type()
3253        {
3254            (ty, "unwrap().")
3255        } else {
3256            (base_ty, "")
3257        };
3258        for found_fields in
3259            self.get_field_candidates_considering_privacy_for_diag(span, ty, mod_id, expr.hir_id)
3260        {
3261            let field_names = found_fields.iter().map(|field| field.0.name).collect::<Vec<_>>();
3262            let mut candidate_fields: Vec<_> = found_fields
3263                .into_iter()
3264                .filter_map(|candidate_field| {
3265                    self.check_for_nested_field_satisfying_condition_for_diag(
3266                        span,
3267                        &|candidate_field, _| candidate_field == field,
3268                        candidate_field,
3269                        ::alloc::vec::Vec::new()vec![],
3270                        mod_id,
3271                        expr.hir_id,
3272                    )
3273                })
3274                .map(|mut field_path| {
3275                    field_path.pop();
3276                    field_path.iter().map(|id| ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("{0}.", id))
    })format!("{}.", id)).collect::<String>()
3277                })
3278                .collect::<Vec<_>>();
3279            candidate_fields.sort();
3280
3281            let len = candidate_fields.len();
3282            // Don't suggest `.field` if the base expr is from a different
3283            // syntax context than the field.
3284            if len > 0 && expr.span.eq_ctxt(field.span) {
3285                err.span_suggestions(
3286                    field.span.shrink_to_lo(),
3287                    ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("{0} of the expressions\' fields {1} a field of the same name",
                if len > 1 { "some" } else { "one" },
                if len > 1 { "have" } else { "has" }))
    })format!(
3288                        "{} of the expressions' fields {} a field of the same name",
3289                        if len > 1 { "some" } else { "one" },
3290                        if len > 1 { "have" } else { "has" },
3291                    ),
3292                    candidate_fields.iter().map(|path| ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("{0}{1}", unwrap, path))
    })format!("{unwrap}{path}")),
3293                    Applicability::MaybeIncorrect,
3294                );
3295            } else if let Some(field_name) =
3296                find_best_match_for_name(&field_names, field.name, None)
3297                && !(field.name.as_str().parse::<usize>().is_ok()
3298                    && field_name.as_str().parse::<usize>().is_ok())
3299            {
3300                err.span_suggestion_verbose(
3301                    field.span,
3302                    "a field with a similar name exists",
3303                    ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("{1}{0}", field_name, unwrap))
    })format!("{unwrap}{}", field_name),
3304                    Applicability::MaybeIncorrect,
3305                );
3306            } else if !field_names.is_empty() {
3307                let is = if field_names.len() == 1 { " is" } else { "s are" };
3308                err.note(
3309                    ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("available field{1}: {0}",
                self.name_series_display(field_names), is))
    })format!("available field{is}: {}", self.name_series_display(field_names),),
3310                );
3311            }
3312        }
3313        err
3314    }
3315
3316    fn private_field_err(&self, field: Ident, base_did: DefId) -> Diag<'_> {
3317        let struct_path = self.tcx().def_path_str(base_did);
3318        let kind_name = self.tcx().def_descr(base_did);
3319        {
    self.dcx().struct_span_err(field.span,
            ::alloc::__export::must_use({
                    ::alloc::fmt::format(format_args!("field `{0}` of {1} `{2}` is private",
                            field, kind_name, struct_path))
                })).with_code(E0616)
}struct_span_code_err!(
3320            self.dcx(),
3321            field.span,
3322            E0616,
3323            "field `{field}` of {kind_name} `{struct_path}` is private",
3324        )
3325        .with_span_label(field.span, "private field")
3326    }
3327
3328    pub(crate) fn get_field_candidates_considering_privacy_for_diag(
3329        &self,
3330        span: Span,
3331        base_ty: Ty<'tcx>,
3332        mod_id: DefId,
3333        hir_id: HirId,
3334    ) -> Vec<Vec<(Ident, Ty<'tcx>)>> {
3335        {
    use ::tracing::__macro_support::Callsite as _;
    static __CALLSITE: ::tracing::callsite::DefaultCallsite =
        {
            static META: ::tracing::Metadata<'static> =
                {
                    ::tracing_core::metadata::Metadata::new("event compiler/rustc_hir_typeck/src/expr.rs:3335",
                        "rustc_hir_typeck::expr", ::tracing::Level::DEBUG,
                        ::tracing_core::__macro_support::Option::Some("compiler/rustc_hir_typeck/src/expr.rs"),
                        ::tracing_core::__macro_support::Option::Some(3335u32),
                        ::tracing_core::__macro_support::Option::Some("rustc_hir_typeck::expr"),
                        ::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!("get_field_candidates(span: {0:?}, base_t: {1:?}",
                                                    span, base_ty) as &dyn Value))])
            });
    } else { ; }
};debug!("get_field_candidates(span: {:?}, base_t: {:?}", span, base_ty);
3336
3337        let mut autoderef = self.autoderef(span, base_ty).silence_errors();
3338        let deref_chain: Vec<_> = autoderef.by_ref().collect();
3339
3340        // Don't probe if we hit the recursion limit, since it may result in
3341        // quadratic blowup if we then try to further deref the results of this
3342        // function. This is a best-effort method, after all.
3343        if autoderef.reached_recursion_limit() {
3344            return ::alloc::vec::Vec::new()vec![];
3345        }
3346
3347        deref_chain
3348            .into_iter()
3349            .filter_map(move |(base_t, _)| {
3350                match base_t.kind() {
3351                    ty::Adt(base_def, args) if !base_def.is_enum() => {
3352                        let tcx = self.tcx;
3353                        let fields = &base_def.non_enum_variant().fields;
3354                        // Some struct, e.g. some that impl `Deref`, have all private fields
3355                        // because you're expected to deref them to access the _real_ fields.
3356                        // This, for example, will help us suggest accessing a field through a `Box<T>`.
3357                        if fields.iter().all(|field| !field.vis.is_accessible_from(mod_id, tcx)) {
3358                            return None;
3359                        }
3360                        return Some(
3361                            fields
3362                                .iter()
3363                                .filter(move |field| {
3364                                    field.vis.is_accessible_from(mod_id, tcx)
3365                                        && self.is_field_suggestable(field, hir_id, span)
3366                                })
3367                                // For compile-time reasons put a limit on number of fields we search
3368                                .take(100)
3369                                .map(|field_def| {
3370                                    (
3371                                        field_def.ident(self.tcx).normalize_to_macros_2_0(),
3372                                        field_def.ty(self.tcx, args),
3373                                    )
3374                                })
3375                                .collect::<Vec<_>>(),
3376                        );
3377                    }
3378                    ty::Tuple(types) => {
3379                        return Some(
3380                            types
3381                                .iter()
3382                                .enumerate()
3383                                // For compile-time reasons put a limit on number of fields we search
3384                                .take(100)
3385                                .map(|(i, ty)| (Ident::from_str(&i.to_string()), ty))
3386                                .collect::<Vec<_>>(),
3387                        );
3388                    }
3389                    _ => None,
3390                }
3391            })
3392            .collect()
3393    }
3394
3395    /// This method is called after we have encountered a missing field error to recursively
3396    /// search for the field
3397    #[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("check_for_nested_field_satisfying_condition_for_diag",
                                    "rustc_hir_typeck::expr", ::tracing::Level::DEBUG,
                                    ::tracing_core::__macro_support::Option::Some("compiler/rustc_hir_typeck/src/expr.rs"),
                                    ::tracing_core::__macro_support::Option::Some(3397u32),
                                    ::tracing_core::__macro_support::Option::Some("rustc_hir_typeck::expr"),
                                    ::tracing_core::field::FieldSet::new(&["span",
                                                    "candidate_name", "candidate_ty", "field_path"],
                                        ::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(&span)
                                                            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(&candidate_name)
                                                            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(&candidate_ty)
                                                            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(&field_path)
                                                            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: Option<Vec<Ident>> = loop {};
            return __tracing_attr_fake_return;
        }
        {
            if field_path.len() > 3 { return None; }
            field_path.push(candidate_name);
            if matches(candidate_name, candidate_ty) {
                return Some(field_path);
            }
            for nested_fields in
                self.get_field_candidates_considering_privacy_for_diag(span,
                    candidate_ty, mod_id, hir_id) {
                for field in nested_fields {
                    if let Some(field_path) =
                            self.check_for_nested_field_satisfying_condition_for_diag(span,
                                matches, field, field_path.clone(), mod_id, hir_id) {
                        return Some(field_path);
                    }
                }
            }
            None
        }
    }
}#[instrument(skip(self, matches, mod_id, hir_id), level = "debug")]
3398    pub(crate) fn check_for_nested_field_satisfying_condition_for_diag(
3399        &self,
3400        span: Span,
3401        matches: &impl Fn(Ident, Ty<'tcx>) -> bool,
3402        (candidate_name, candidate_ty): (Ident, Ty<'tcx>),
3403        mut field_path: Vec<Ident>,
3404        mod_id: DefId,
3405        hir_id: HirId,
3406    ) -> Option<Vec<Ident>> {
3407        if field_path.len() > 3 {
3408            // For compile-time reasons and to avoid infinite recursion we only check for fields
3409            // up to a depth of three
3410            return None;
3411        }
3412        field_path.push(candidate_name);
3413        if matches(candidate_name, candidate_ty) {
3414            return Some(field_path);
3415        }
3416        for nested_fields in self.get_field_candidates_considering_privacy_for_diag(
3417            span,
3418            candidate_ty,
3419            mod_id,
3420            hir_id,
3421        ) {
3422            // recursively search fields of `candidate_field` if it's a ty::Adt
3423            for field in nested_fields {
3424                if let Some(field_path) = self.check_for_nested_field_satisfying_condition_for_diag(
3425                    span,
3426                    matches,
3427                    field,
3428                    field_path.clone(),
3429                    mod_id,
3430                    hir_id,
3431                ) {
3432                    return Some(field_path);
3433                }
3434            }
3435        }
3436        None
3437    }
3438
3439    fn check_expr_index(
3440        &self,
3441        base: &'tcx hir::Expr<'tcx>,
3442        idx: &'tcx hir::Expr<'tcx>,
3443        expr: &'tcx hir::Expr<'tcx>,
3444        brackets_span: Span,
3445    ) -> Ty<'tcx> {
3446        let base_t = self.check_expr(base);
3447        let idx_t = self.check_expr(idx);
3448
3449        if base_t.references_error() {
3450            base_t
3451        } else if idx_t.references_error() {
3452            idx_t
3453        } else {
3454            let base_t = self.structurally_resolve_type(base.span, base_t);
3455            match self.lookup_indexing(expr, base, base_t, idx, idx_t) {
3456                Some((index_ty, element_ty)) => {
3457                    // two-phase not needed because index_ty is never mutable
3458                    self.demand_coerce(idx, idx_t, index_ty, None, AllowTwoPhase::No);
3459                    self.select_obligations_where_possible(|errors| {
3460                        self.point_at_index(errors, idx.span);
3461                    });
3462                    element_ty
3463                }
3464                None => {
3465                    // Attempt to *shallowly* search for an impl which matches,
3466                    // but has nested obligations which are unsatisfied.
3467                    for (base_t, _) in self.autoderef(base.span, base_t).silence_errors() {
3468                        if let Some((_, index_ty, element_ty)) =
3469                            self.find_and_report_unsatisfied_index_impl(base, base_t)
3470                        {
3471                            self.demand_coerce(idx, idx_t, index_ty, None, AllowTwoPhase::No);
3472                            return element_ty;
3473                        }
3474                    }
3475
3476                    let mut err = {
    let mut err =
        {
            self.dcx().struct_span_err(brackets_span,
                    ::alloc::__export::must_use({
                            ::alloc::fmt::format(format_args!("cannot index into a value of type `{0}`",
                                    base_t))
                        })).with_code(E0608)
        };
    if base_t.references_error() { err.downgrade_to_delayed_bug(); }
    err
}type_error_struct!(
3477                        self.dcx(),
3478                        brackets_span,
3479                        base_t,
3480                        E0608,
3481                        "cannot index into a value of type `{base_t}`",
3482                    );
3483                    // Try to give some advice about indexing tuples.
3484                    if let ty::Tuple(types) = base_t.kind() {
3485                        err.help(
3486                            "tuples are indexed with a dot and a literal index: `tuple.0`, `tuple.1`, etc.",
3487                        );
3488                        // If index is an unsuffixed integer, show the fixed expression:
3489                        if let ExprKind::Lit(lit) = idx.kind
3490                            && let ast::LitKind::Int(i, ast::LitIntType::Unsuffixed) = lit.node
3491                            && i.get() < types.len().try_into().expect("tuple length fits in u128")
3492                        {
3493                            err.span_suggestion(
3494                                brackets_span,
3495                                ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("to access tuple element `{0}`, use",
                i))
    })format!("to access tuple element `{i}`, use"),
3496                                ::alloc::__export::must_use({ ::alloc::fmt::format(format_args!(".{0}", i)) })format!(".{i}"),
3497                                Applicability::MachineApplicable,
3498                            );
3499                        }
3500                    }
3501
3502                    if base_t.is_raw_ptr() && idx_t.is_integral() {
3503                        err.multipart_suggestion(
3504                            "consider using `wrapping_add` or `add` for indexing into raw pointer",
3505                            ::alloc::boxed::box_assume_init_into_vec_unsafe(::alloc::intrinsics::write_box_via_move(::alloc::boxed::Box::new_uninit(),
        [(base.span.between(idx.span), ".wrapping_add(".to_owned()),
                (idx.span.shrink_to_hi().until(expr.span.shrink_to_hi()),
                    ")".to_owned())]))vec![
3506                                (base.span.between(idx.span), ".wrapping_add(".to_owned()),
3507                                (
3508                                    idx.span.shrink_to_hi().until(expr.span.shrink_to_hi()),
3509                                    ")".to_owned(),
3510                                ),
3511                            ],
3512                            Applicability::MaybeIncorrect,
3513                        );
3514                    }
3515
3516                    let reported = err.emit();
3517                    Ty::new_error(self.tcx, reported)
3518                }
3519            }
3520        }
3521    }
3522
3523    /// Try to match an implementation of `Index` against a self type, and report
3524    /// the unsatisfied predicates that result from confirming this impl.
3525    ///
3526    /// Given an index expression, sometimes the `Self` type shallowly but does not
3527    /// deeply satisfy an impl predicate. Instead of simply saying that the type
3528    /// does not support being indexed, we want to point out exactly what nested
3529    /// predicates cause this to be, so that the user can add them to fix their code.
3530    fn find_and_report_unsatisfied_index_impl(
3531        &self,
3532        base_expr: &hir::Expr<'_>,
3533        base_ty: Ty<'tcx>,
3534    ) -> Option<(ErrorGuaranteed, Ty<'tcx>, Ty<'tcx>)> {
3535        let index_trait_def_id = self.tcx.lang_items().index_trait()?;
3536        let index_trait_output_def_id = self.tcx.get_diagnostic_item(sym::IndexOutput)?;
3537
3538        let mut relevant_impls = ::alloc::vec::Vec::new()vec![];
3539        self.tcx.for_each_relevant_impl(index_trait_def_id, base_ty, |impl_def_id| {
3540            relevant_impls.push(impl_def_id);
3541        });
3542        let [impl_def_id] = relevant_impls[..] else {
3543            // Only report unsatisfied impl predicates if there's one impl
3544            return None;
3545        };
3546
3547        self.commit_if_ok(|snapshot| {
3548            let outer_universe = self.universe();
3549
3550            let ocx = ObligationCtxt::new_with_diagnostics(self);
3551            let impl_args = self.fresh_args_for_item(base_expr.span, impl_def_id);
3552            let impl_trait_ref =
3553                self.tcx.impl_trait_ref(impl_def_id).instantiate(self.tcx, impl_args);
3554            let cause = self.misc(base_expr.span);
3555
3556            // Match the impl self type against the base ty. If this fails,
3557            // we just skip this impl, since it's not particularly useful.
3558            let impl_trait_ref = ocx.normalize(&cause, self.param_env, impl_trait_ref);
3559            ocx.eq(&cause, self.param_env, base_ty, impl_trait_ref.self_ty())?;
3560
3561            // Register the impl's predicates. One of these predicates
3562            // must be unsatisfied, or else we wouldn't have gotten here
3563            // in the first place.
3564            ocx.register_obligations(traits::predicates_for_generics(
3565                |idx, span| {
3566                    cause.clone().derived_cause(
3567                        ty::Binder::dummy(ty::TraitPredicate {
3568                            trait_ref: impl_trait_ref,
3569                            polarity: ty::PredicatePolarity::Positive,
3570                        }),
3571                        |derived| {
3572                            ObligationCauseCode::ImplDerived(Box::new(traits::ImplDerivedCause {
3573                                derived,
3574                                impl_or_alias_def_id: impl_def_id,
3575                                impl_def_predicate_index: Some(idx),
3576                                span,
3577                            }))
3578                        },
3579                    )
3580                },
3581                self.param_env,
3582                self.tcx.predicates_of(impl_def_id).instantiate(self.tcx, impl_args),
3583            ));
3584
3585            // Normalize the output type, which we can use later on as the
3586            // return type of the index expression...
3587            let element_ty = ocx.normalize(
3588                &cause,
3589                self.param_env,
3590                Ty::new_projection_from_args(
3591                    self.tcx,
3592                    index_trait_output_def_id,
3593                    impl_trait_ref.args,
3594                ),
3595            );
3596
3597            let true_errors = ocx.try_evaluate_obligations();
3598
3599            // Do a leak check -- we can't really report a useful error here,
3600            // but it at least avoids an ICE when the error has to do with higher-ranked
3601            // lifetimes.
3602            self.leak_check(outer_universe, Some(snapshot))?;
3603
3604            // Bail if we have ambiguity errors, which we can't report in a useful way.
3605            let ambiguity_errors = ocx.evaluate_obligations_error_on_ambiguity();
3606            if true_errors.is_empty() && !ambiguity_errors.is_empty() {
3607                return Err(NoSolution);
3608            }
3609
3610            // There should be at least one error reported. If not, we
3611            // will still delay a span bug in `report_fulfillment_errors`.
3612            Ok::<_, NoSolution>((
3613                self.err_ctxt().report_fulfillment_errors(true_errors),
3614                impl_trait_ref.args.type_at(1),
3615                element_ty,
3616            ))
3617        })
3618        .ok()
3619    }
3620
3621    fn point_at_index(&self, errors: &mut Vec<traits::FulfillmentError<'tcx>>, span: Span) {
3622        let mut seen_preds = FxHashSet::default();
3623        // We re-sort here so that the outer most root obligations comes first, as we have the
3624        // subsequent weird logic to identify *every* relevant obligation for proper deduplication
3625        // of diagnostics.
3626        errors.sort_by_key(|error| error.root_obligation.recursion_depth);
3627        for error in errors {
3628            match (
3629                error.root_obligation.predicate.kind().skip_binder(),
3630                error.obligation.predicate.kind().skip_binder(),
3631            ) {
3632                (ty::PredicateKind::Clause(ty::ClauseKind::Trait(predicate)), _)
3633                    if self.tcx.is_lang_item(predicate.trait_ref.def_id, LangItem::Index) =>
3634                {
3635                    seen_preds.insert(error.obligation.predicate.kind().skip_binder());
3636                }
3637                (_, ty::PredicateKind::Clause(ty::ClauseKind::Trait(predicate)))
3638                    if self.tcx.is_diagnostic_item(sym::SliceIndex, predicate.trait_ref.def_id) =>
3639                {
3640                    seen_preds.insert(error.obligation.predicate.kind().skip_binder());
3641                }
3642                (root, pred) if seen_preds.contains(&pred) || seen_preds.contains(&root) => {}
3643                _ => continue,
3644            }
3645            error.obligation.cause.span = span;
3646        }
3647    }
3648
3649    fn check_expr_yield(
3650        &self,
3651        value: &'tcx hir::Expr<'tcx>,
3652        expr: &'tcx hir::Expr<'tcx>,
3653    ) -> Ty<'tcx> {
3654        match self.coroutine_types {
3655            Some(CoroutineTypes { resume_ty, yield_ty }) => {
3656                self.check_expr_coercible_to_type(value, yield_ty, None);
3657
3658                resume_ty
3659            }
3660            _ => {
3661                self.dcx().emit_err(YieldExprOutsideOfCoroutine { span: expr.span });
3662                // Avoid expressions without types during writeback (#78653).
3663                self.check_expr(value);
3664                self.tcx.types.unit
3665            }
3666        }
3667    }
3668
3669    fn check_expr_asm_operand(&self, expr: &'tcx hir::Expr<'tcx>, is_input: bool) {
3670        let needs = if is_input { Needs::None } else { Needs::MutPlace };
3671        let ty = self.check_expr_with_needs(expr, needs);
3672        self.require_type_is_sized(ty, expr.span, ObligationCauseCode::InlineAsmSized);
3673
3674        if !is_input && !expr.is_syntactic_place_expr() {
3675            self.dcx()
3676                .struct_span_err(expr.span, "invalid asm output")
3677                .with_span_label(expr.span, "cannot assign to this expression")
3678                .emit();
3679        }
3680
3681        // If this is an input value, we require its type to be fully resolved
3682        // at this point. This allows us to provide helpful coercions which help
3683        // pass the type candidate list in a later pass.
3684        //
3685        // We don't require output types to be resolved at this point, which
3686        // allows them to be inferred based on how they are used later in the
3687        // function.
3688        if is_input {
3689            let ty = self.structurally_resolve_type(expr.span, ty);
3690            match *ty.kind() {
3691                ty::FnDef(..) => {
3692                    let fnptr_ty = Ty::new_fn_ptr(self.tcx, ty.fn_sig(self.tcx));
3693                    self.demand_coerce(expr, ty, fnptr_ty, None, AllowTwoPhase::No);
3694                }
3695                ty::Ref(_, base_ty, mutbl) => {
3696                    let ptr_ty = Ty::new_ptr(self.tcx, base_ty, mutbl);
3697                    self.demand_coerce(expr, ty, ptr_ty, None, AllowTwoPhase::No);
3698                }
3699                _ => {}
3700            }
3701        }
3702    }
3703
3704    fn check_expr_asm(&self, asm: &'tcx hir::InlineAsm<'tcx>, span: Span) -> Ty<'tcx> {
3705        if let rustc_ast::AsmMacro::NakedAsm = asm.asm_macro {
3706            if !{

        #[allow(deprecated)]
        {
            {
                'done:
                    {
                    for i in self.tcx.get_all_attrs(self.body_id) {
                        #[allow(unused_imports)]
                        use rustc_hir::attrs::AttributeKind::*;
                        let i: &rustc_hir::Attribute = i;
                        match i {
                            rustc_hir::Attribute::Parsed(Naked(..)) => {
                                break 'done Some(());
                            }
                            rustc_hir::Attribute::Unparsed(..) =>
                                {}
                                #[deny(unreachable_patterns)]
                                _ => {}
                        }
                    }
                    None
                }
            }
        }
    }.is_some()find_attr!(self.tcx, self.body_id, Naked(..)) {
3707                self.tcx.dcx().emit_err(NakedAsmOutsideNakedFn { span });
3708            }
3709        }
3710
3711        let mut diverge = asm.asm_macro.diverges(asm.options);
3712
3713        for (op, _op_sp) in asm.operands {
3714            match *op {
3715                hir::InlineAsmOperand::In { expr, .. } => {
3716                    self.check_expr_asm_operand(expr, true);
3717                }
3718                hir::InlineAsmOperand::Out { expr: Some(expr), .. }
3719                | hir::InlineAsmOperand::InOut { expr, .. } => {
3720                    self.check_expr_asm_operand(expr, false);
3721                }
3722                hir::InlineAsmOperand::Out { expr: None, .. } => {}
3723                hir::InlineAsmOperand::SplitInOut { in_expr, out_expr, .. } => {
3724                    self.check_expr_asm_operand(in_expr, true);
3725                    if let Some(out_expr) = out_expr {
3726                        self.check_expr_asm_operand(out_expr, false);
3727                    }
3728                }
3729                hir::InlineAsmOperand::Const { ref anon_const } => {
3730                    self.check_expr_const_block(anon_const, Expectation::NoExpectation);
3731                }
3732                hir::InlineAsmOperand::SymFn { expr } => {
3733                    self.check_expr(expr);
3734                }
3735                hir::InlineAsmOperand::SymStatic { .. } => {}
3736                hir::InlineAsmOperand::Label { block } => {
3737                    let previous_diverges = self.diverges.get();
3738
3739                    // The label blocks should have unit return value or diverge.
3740                    let ty = self.check_expr_block(block, ExpectHasType(self.tcx.types.unit));
3741                    if !ty.is_never() {
3742                        self.demand_suptype(block.span, self.tcx.types.unit, ty);
3743                        diverge = false;
3744                    }
3745
3746                    // We need this to avoid false unreachable warning when a label diverges.
3747                    self.diverges.set(previous_diverges);
3748                }
3749            }
3750        }
3751
3752        if diverge { self.tcx.types.never } else { self.tcx.types.unit }
3753    }
3754
3755    fn check_expr_offset_of(
3756        &self,
3757        container: &'tcx hir::Ty<'tcx>,
3758        fields: &[Ident],
3759        expr: &'tcx hir::Expr<'tcx>,
3760    ) -> Ty<'tcx> {
3761        let mut current_container = self.lower_ty(container).normalized;
3762        let mut field_indices = Vec::with_capacity(fields.len());
3763        let mut fields = fields.into_iter();
3764
3765        while let Some(&field) = fields.next() {
3766            let container = self.structurally_resolve_type(expr.span, current_container);
3767
3768            match container.kind() {
3769                ty::Adt(container_def, args) if container_def.is_enum() => {
3770                    let block = self.tcx.local_def_id_to_hir_id(self.body_id);
3771                    let (ident, _def_scope) =
3772                        self.tcx.adjust_ident_and_get_scope(field, container_def.did(), block);
3773
3774                    if !self.tcx.features().offset_of_enum() {
3775                        rustc_session::parse::feature_err(
3776                            &self.tcx.sess,
3777                            sym::offset_of_enum,
3778                            ident.span,
3779                            "using enums in offset_of is experimental",
3780                        )
3781                        .emit();
3782                    }
3783
3784                    let Some((index, variant)) = container_def
3785                        .variants()
3786                        .iter_enumerated()
3787                        .find(|(_, v)| v.ident(self.tcx).normalize_to_macros_2_0() == ident)
3788                    else {
3789                        self.dcx()
3790                            .create_err(NoVariantNamed { span: ident.span, ident, ty: container })
3791                            .with_span_label(field.span, "variant not found")
3792                            .emit_unless_delay(container.references_error());
3793                        break;
3794                    };
3795                    let Some(&subfield) = fields.next() else {
3796                        {
    let mut err =
        {
            self.dcx().struct_span_err(ident.span,
                    ::alloc::__export::must_use({
                            ::alloc::fmt::format(format_args!("`{0}` is an enum variant; expected field at end of `offset_of`",
                                    ident))
                        })).with_code(E0795)
        };
    if container.references_error() { err.downgrade_to_delayed_bug(); }
    err
}type_error_struct!(
3797                            self.dcx(),
3798                            ident.span,
3799                            container,
3800                            E0795,
3801                            "`{ident}` is an enum variant; expected field at end of `offset_of`",
3802                        )
3803                        .with_span_label(field.span, "enum variant")
3804                        .emit();
3805                        break;
3806                    };
3807                    let (subident, sub_def_scope) =
3808                        self.tcx.adjust_ident_and_get_scope(subfield, variant.def_id, block);
3809
3810                    let Some((subindex, field)) = variant
3811                        .fields
3812                        .iter_enumerated()
3813                        .find(|(_, f)| f.ident(self.tcx).normalize_to_macros_2_0() == subident)
3814                    else {
3815                        self.dcx()
3816                            .create_err(NoFieldOnVariant {
3817                                span: ident.span,
3818                                container,
3819                                ident,
3820                                field: subfield,
3821                                enum_span: field.span,
3822                                field_span: subident.span,
3823                            })
3824                            .emit_unless_delay(container.references_error());
3825                        break;
3826                    };
3827
3828                    let field_ty = self.field_ty(expr.span, field, args);
3829
3830                    // Enums are anyway always sized. But just to safeguard against future
3831                    // language extensions, let's double-check.
3832                    self.require_type_is_sized(
3833                        field_ty,
3834                        expr.span,
3835                        ObligationCauseCode::FieldSized {
3836                            adt_kind: AdtKind::Enum,
3837                            span: self.tcx.def_span(field.did),
3838                            last: false,
3839                        },
3840                    );
3841
3842                    if field.vis.is_accessible_from(sub_def_scope, self.tcx) {
3843                        self.tcx.check_stability(field.did, Some(expr.hir_id), expr.span, None);
3844                    } else {
3845                        self.private_field_err(ident, container_def.did()).emit();
3846                    }
3847
3848                    // Save the index of all fields regardless of their visibility in case
3849                    // of error recovery.
3850                    field_indices.push((current_container, index, subindex));
3851                    current_container = field_ty;
3852
3853                    continue;
3854                }
3855                ty::Adt(container_def, args) => {
3856                    let block = self.tcx.local_def_id_to_hir_id(self.body_id);
3857                    let (ident, def_scope) =
3858                        self.tcx.adjust_ident_and_get_scope(field, container_def.did(), block);
3859
3860                    let fields = &container_def.non_enum_variant().fields;
3861                    if let Some((index, field)) = fields
3862                        .iter_enumerated()
3863                        .find(|(_, f)| f.ident(self.tcx).normalize_to_macros_2_0() == ident)
3864                    {
3865                        let field_ty = self.field_ty(expr.span, field, args);
3866
3867                        if self.tcx.features().offset_of_slice() {
3868                            self.require_type_has_static_alignment(field_ty, expr.span);
3869                        } else {
3870                            self.require_type_is_sized(
3871                                field_ty,
3872                                expr.span,
3873                                ObligationCauseCode::Misc,
3874                            );
3875                        }
3876
3877                        if field.vis.is_accessible_from(def_scope, self.tcx) {
3878                            self.tcx.check_stability(field.did, Some(expr.hir_id), expr.span, None);
3879                        } else {
3880                            self.private_field_err(ident, container_def.did()).emit();
3881                        }
3882
3883                        // Save the index of all fields regardless of their visibility in case
3884                        // of error recovery.
3885                        field_indices.push((current_container, FIRST_VARIANT, index));
3886                        current_container = field_ty;
3887
3888                        continue;
3889                    }
3890                }
3891                ty::Tuple(tys) => {
3892                    if let Ok(index) = field.as_str().parse::<usize>()
3893                        && field.name == sym::integer(index)
3894                    {
3895                        if let Some(&field_ty) = tys.get(index) {
3896                            if self.tcx.features().offset_of_slice() {
3897                                self.require_type_has_static_alignment(field_ty, expr.span);
3898                            } else {
3899                                self.require_type_is_sized(
3900                                    field_ty,
3901                                    expr.span,
3902                                    ObligationCauseCode::Misc,
3903                                );
3904                            }
3905
3906                            field_indices.push((current_container, FIRST_VARIANT, index.into()));
3907                            current_container = field_ty;
3908
3909                            continue;
3910                        }
3911                    }
3912                }
3913                _ => (),
3914            };
3915
3916            self.no_such_field_err(field, container, expr).emit();
3917
3918            break;
3919        }
3920
3921        self.typeck_results.borrow_mut().offset_of_data_mut().insert(expr.hir_id, field_indices);
3922
3923        self.tcx.types.usize
3924    }
3925}