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rustc_trait_selection/error_reporting/traits/
fulfillment_errors.rs

1// ignore-tidy-filelength
2use core::ops::ControlFlow;
3use std::borrow::Cow;
4use std::collections::hash_set;
5use std::path::PathBuf;
6
7use rustc_ast::ast::LitKind;
8use rustc_ast::{LitIntType, TraitObjectSyntax};
9use rustc_data_structures::fx::{FxHashMap, FxHashSet};
10use rustc_data_structures::unord::UnordSet;
11use rustc_errors::codes::*;
12use rustc_errors::{
13    Applicability, Diag, ErrorGuaranteed, Level, MultiSpan, StashKey, StringPart, Suggestions, msg,
14    pluralize, struct_span_code_err,
15};
16use rustc_hir::attrs::diagnostic::CustomDiagnostic;
17use rustc_hir::def_id::{DefId, LOCAL_CRATE, LocalDefId};
18use rustc_hir::intravisit::Visitor;
19use rustc_hir::{self as hir, LangItem, Node, find_attr};
20use rustc_infer::infer::{InferOk, TypeTrace};
21use rustc_infer::traits::ImplSource;
22use rustc_infer::traits::solve::Goal;
23use rustc_middle::traits::SignatureMismatchData;
24use rustc_middle::traits::select::OverflowError;
25use rustc_middle::ty::abstract_const::NotConstEvaluatable;
26use rustc_middle::ty::error::{ExpectedFound, TypeError};
27use rustc_middle::ty::print::{
28    PrintPolyTraitPredicateExt, PrintPolyTraitRefExt as _, PrintTraitPredicateExt as _,
29    PrintTraitRefExt as _, with_forced_trimmed_paths,
30};
31use rustc_middle::ty::{
32    self, GenericArgKind, TraitRef, Ty, TyCtxt, TypeFoldable, TypeFolder, TypeSuperFoldable,
33    TypeVisitableExt, Unnormalized, Upcast,
34};
35use rustc_middle::{bug, span_bug};
36use rustc_span::def_id::CrateNum;
37use rustc_span::{BytePos, DUMMY_SP, STDLIB_STABLE_CRATES, Span, Symbol, sym};
38use tracing::{debug, instrument};
39
40use super::suggestions::get_explanation_based_on_obligation;
41use super::{ArgKind, CandidateSimilarity, GetSafeTransmuteErrorAndReason, ImplCandidate};
42use crate::diagnostics::{
43    ClosureFnMutLabel, ClosureFnOnceLabel, ClosureKindMismatch, CoroClosureNotFn,
44};
45use crate::error_reporting::TypeErrCtxt;
46use crate::error_reporting::infer::TyCategory;
47use crate::error_reporting::traits::report_dyn_incompatibility;
48use crate::infer::{self, InferCtxt, InferCtxtExt as _};
49use crate::traits::query::evaluate_obligation::InferCtxtExt as _;
50use crate::traits::{
51    MismatchedProjectionTypes, NormalizeExt, Obligation, ObligationCause, ObligationCauseCode,
52    ObligationCtxt, PredicateObligation, SelectionContext, SelectionError, elaborate,
53    specialization_graph,
54};
55
56impl<'a, 'tcx> TypeErrCtxt<'a, 'tcx> {
57    /// The `root_obligation` parameter should be the `root_obligation` field
58    /// from a `FulfillmentError`. If no `FulfillmentError` is available,
59    /// then it should be the same as `obligation`.
60    pub fn report_selection_error(
61        &self,
62        mut obligation: PredicateObligation<'tcx>,
63        root_obligation: &PredicateObligation<'tcx>,
64        error: &SelectionError<'tcx>,
65    ) -> ErrorGuaranteed {
66        let tcx = self.tcx;
67        let mut span = obligation.cause.span;
68        let mut long_ty_file = None;
69
70        let mut err = match *error {
71            SelectionError::Unimplemented => {
72                // If this obligation was generated as a result of well-formedness checking, see if we
73                // can get a better error message by performing HIR-based well-formedness checking.
74                if let ObligationCauseCode::WellFormed(Some(wf_loc)) =
75                    root_obligation.cause.code().peel_derives()
76                    && !obligation.predicate.has_non_region_infer()
77                {
78                    if let Some(cause) = self.tcx.diagnostic_hir_wf_check((
79                        tcx.erase_and_anonymize_regions(obligation.predicate),
80                        *wf_loc,
81                    )) {
82                        obligation.cause = cause.clone();
83                        span = obligation.cause.span;
84                    }
85                }
86
87                if let ObligationCauseCode::CompareImplItem {
88                    impl_item_def_id,
89                    trait_item_def_id,
90                    kind: _,
91                } = *obligation.cause.code()
92                {
93                    {
    use ::tracing::__macro_support::Callsite as _;
    static __CALLSITE: ::tracing::callsite::DefaultCallsite =
        {
            static META: ::tracing::Metadata<'static> =
                {
                    ::tracing_core::metadata::Metadata::new("event compiler/rustc_trait_selection/src/error_reporting/traits/fulfillment_errors.rs:93",
                        "rustc_trait_selection::error_reporting::traits::fulfillment_errors",
                        ::tracing::Level::DEBUG,
                        ::tracing_core::__macro_support::Option::Some("compiler/rustc_trait_selection/src/error_reporting/traits/fulfillment_errors.rs"),
                        ::tracing_core::__macro_support::Option::Some(93u32),
                        ::tracing_core::__macro_support::Option::Some("rustc_trait_selection::error_reporting::traits::fulfillment_errors"),
                        ::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!("ObligationCauseCode::CompareImplItemObligation")
                                            as &dyn Value))])
            });
    } else { ; }
};debug!("ObligationCauseCode::CompareImplItemObligation");
94                    return self
95                        .report_extra_impl_obligation(
96                            span,
97                            impl_item_def_id,
98                            trait_item_def_id,
99                            &::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("`{0}`", obligation.predicate))
    })format!("`{}`", obligation.predicate),
100                        )
101                        .emit();
102                }
103
104                // Report a const-param specific error
105                if let ObligationCauseCode::ConstParam(ty) = *obligation.cause.code().peel_derives()
106                {
107                    return self.report_const_param_not_wf(ty, &obligation).emit();
108                }
109
110                let bound_predicate = obligation.predicate.kind();
111                match bound_predicate.skip_binder() {
112                    ty::PredicateKind::Clause(ty::ClauseKind::Trait(trait_predicate)) => {
113                        let leaf_trait_predicate =
114                            self.resolve_vars_if_possible(bound_predicate.rebind(trait_predicate));
115
116                        // Let's use the root obligation as the main message, when we care about the
117                        // most general case ("X doesn't implement Pattern<'_>") over the case that
118                        // happened to fail ("char doesn't implement Fn(&mut char)").
119                        //
120                        // We rely on a few heuristics to identify cases where this root
121                        // obligation is more important than the leaf obligation:
122                        let (main_trait_predicate, main_obligation) =
123                            if let ty::PredicateKind::Clause(
124                            ty::ClauseKind::Trait(root_pred)
125                        ) = root_obligation.predicate.kind().skip_binder()
126                            && !leaf_trait_predicate.self_ty().skip_binder().has_escaping_bound_vars()
127                            && !root_pred.self_ty().has_escaping_bound_vars()
128                            // The type of the leaf predicate is (roughly) the same as the type
129                            // from the root predicate, as a proxy for "we care about the root"
130                            // FIXME: this doesn't account for trivial derefs, but works as a first
131                            // approximation.
132                            && (
133                                // `T: Trait` && `&&T: OtherTrait`, we want `OtherTrait`
134                                self.can_eq(
135                                    obligation.param_env,
136                                    leaf_trait_predicate.self_ty().skip_binder(),
137                                    root_pred.self_ty().peel_refs(),
138                                )
139                                // `&str: Iterator` && `&str: IntoIterator`, we want `IntoIterator`
140                                || self.can_eq(
141                                    obligation.param_env,
142                                    leaf_trait_predicate.self_ty().skip_binder(),
143                                    root_pred.self_ty(),
144                                )
145                            )
146                            // The leaf trait and the root trait are different, so as to avoid
147                            // talking about `&mut T: Trait` and instead remain talking about
148                            // `T: Trait` instead
149                            && leaf_trait_predicate.def_id() != root_pred.def_id()
150                            // The root trait is not `Unsize`, as to avoid talking about it in
151                            // `tests/ui/coercion/coerce-issue-49593-box-never.rs`.
152                            && !self.tcx.is_lang_item(root_pred.def_id(), LangItem::Unsize)
153                            {
154                                (
155                                    self.resolve_vars_if_possible(
156                                        root_obligation.predicate.kind().rebind(root_pred),
157                                    ),
158                                    root_obligation,
159                                )
160                            } else {
161                                (leaf_trait_predicate, &obligation)
162                            };
163
164                        if let Some(guar) = self
165                            .emit_specialized_closure_kind_error(&obligation, leaf_trait_predicate)
166                        {
167                            return guar;
168                        }
169
170                        if let Err(guar) = leaf_trait_predicate.error_reported() {
171                            return guar;
172                        }
173                        // Silence redundant errors on binding access that are already
174                        // reported on the binding definition (#56607).
175                        if let Err(guar) = self.fn_arg_obligation(&obligation) {
176                            return guar;
177                        }
178                        let (post_message, pre_message, type_def) = self
179                            .get_parent_trait_ref(obligation.cause.code())
180                            .map(|(t, s)| {
181                                let t = self.tcx.short_string(t, &mut long_ty_file);
182                                (
183                                    ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!(" in `{0}`", t))
    })format!(" in `{t}`"),
184                                    ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("within `{0}`, ", t))
    })format!("within `{t}`, "),
185                                    s.map(|s| (::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("within this `{0}`", t))
    })format!("within this `{t}`"), s)),
186                                )
187                            })
188                            .unwrap_or_default();
189
190                        let CustomDiagnostic { message, label, notes, parent_label } = self
191                            .on_unimplemented_note(
192                                main_trait_predicate,
193                                main_obligation,
194                                &mut long_ty_file,
195                            );
196
197                        let have_alt_message = message.is_some() || label.is_some();
198
199                        let message = message.unwrap_or_else(|| {
200                            self.get_standard_error_message(
201                                main_trait_predicate,
202                                None,
203                                post_message,
204                                &mut long_ty_file,
205                            )
206                        });
207                        let is_try_conversion =
208                            self.is_try_conversion(span, main_trait_predicate.def_id());
209                        let is_question_mark = #[allow(non_exhaustive_omitted_patterns)] match root_obligation.cause.code().peel_derives()
    {
    ObligationCauseCode::QuestionMark => true,
    _ => false,
}matches!(
210                            root_obligation.cause.code().peel_derives(),
211                            ObligationCauseCode::QuestionMark,
212                        ) && !(self
213                            .tcx
214                            .is_diagnostic_item(sym::FromResidual, main_trait_predicate.def_id())
215                            || self.tcx.is_lang_item(main_trait_predicate.def_id(), LangItem::Try));
216                        let is_unsize =
217                            self.tcx.is_lang_item(leaf_trait_predicate.def_id(), LangItem::Unsize);
218                        let question_mark_message = "the question mark operation (`?`) implicitly \
219                                                     performs a conversion on the error value \
220                                                     using the `From` trait";
221                        let (message, notes) = if is_try_conversion {
222                            let ty = self.tcx.short_string(
223                                main_trait_predicate.skip_binder().self_ty(),
224                                &mut long_ty_file,
225                            );
226                            // We have a `-> Result<_, E1>` and `gives_E2()?`.
227                            (
228                                ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("`?` couldn\'t convert the error to `{0}`",
                ty))
    })format!("`?` couldn't convert the error to `{ty}`"),
229                                ::alloc::boxed::box_assume_init_into_vec_unsafe(::alloc::intrinsics::write_box_via_move(::alloc::boxed::Box::new_uninit(),
        [question_mark_message.to_owned()]))vec![question_mark_message.to_owned()],
230                            )
231                        } else if is_question_mark {
232                            let main_trait_predicate =
233                                self.tcx.short_string(main_trait_predicate, &mut long_ty_file);
234                            // Similar to the case above, but in this case the conversion is for a
235                            // trait object: `-> Result<_, Box<dyn Error>` and `gives_E()?` when
236                            // `E: Error` isn't met.
237                            (
238                                ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("`?` couldn\'t convert the error: `{0}` is not satisfied",
                main_trait_predicate))
    })format!(
239                                    "`?` couldn't convert the error: `{main_trait_predicate}` is \
240                                     not satisfied",
241                                ),
242                                ::alloc::boxed::box_assume_init_into_vec_unsafe(::alloc::intrinsics::write_box_via_move(::alloc::boxed::Box::new_uninit(),
        [question_mark_message.to_owned()]))vec![question_mark_message.to_owned()],
243                            )
244                        } else {
245                            (message, notes)
246                        };
247
248                        let (err_msg, safe_transmute_explanation) = if self
249                            .tcx
250                            .is_lang_item(main_trait_predicate.def_id(), LangItem::TransmuteTrait)
251                        {
252                            // Recompute the safe transmute reason and use that for the error reporting
253                            let (report_obligation, report_pred) = self
254                                .select_transmute_obligation_for_reporting(
255                                    &obligation,
256                                    main_trait_predicate,
257                                    root_obligation,
258                                );
259
260                            match self.get_safe_transmute_error_and_reason(
261                                report_obligation,
262                                report_pred,
263                                span,
264                            ) {
265                                GetSafeTransmuteErrorAndReason::Silent => {
266                                    return self
267                                        .dcx()
268                                        .span_delayed_bug(span, "silent safe transmute error");
269                                }
270                                GetSafeTransmuteErrorAndReason::Default => (message, None),
271                                GetSafeTransmuteErrorAndReason::Error {
272                                    err_msg,
273                                    safe_transmute_explanation,
274                                } => (err_msg, safe_transmute_explanation),
275                            }
276                        } else {
277                            (message, None)
278                        };
279
280                        let mut err = {
    self.dcx().struct_span_err(span,
            ::alloc::__export::must_use({
                    ::alloc::fmt::format(format_args!("{0}", err_msg))
                })).with_code(E0277)
}struct_span_code_err!(self.dcx(), span, E0277, "{}", err_msg);
281
282                        let trait_def_id = main_trait_predicate.def_id();
283                        let leaf_trait_def_id = leaf_trait_predicate.def_id();
284                        if (self.tcx.is_diagnostic_item(sym::From, trait_def_id)
285                            || self.tcx.is_diagnostic_item(sym::TryFrom, trait_def_id))
286                            && (self.tcx.is_diagnostic_item(sym::From, leaf_trait_def_id)
287                                || self.tcx.is_diagnostic_item(sym::TryFrom, leaf_trait_def_id))
288                        {
289                            let trait_ref = leaf_trait_predicate.skip_binder().trait_ref;
290
291                            if let Some(found_ty) =
292                                trait_ref.args.get(1).and_then(|arg| arg.as_type())
293                            {
294                                let ty = main_trait_predicate.skip_binder().self_ty();
295
296                                if let Some(cast_ty) =
297                                    self.find_explicit_cast_type(obligation.param_env, found_ty, ty)
298                                {
299                                    let found_ty_str =
300                                        self.tcx.short_string(found_ty, &mut long_ty_file);
301                                    let cast_ty_str =
302                                        self.tcx.short_string(cast_ty, &mut long_ty_file);
303
304                                    err.help(::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("consider casting the `{0}` value to `{1}`",
                found_ty_str, cast_ty_str))
    })format!(
305                                        "consider casting the `{found_ty_str}` value to `{cast_ty_str}`",
306                                    ));
307                                }
308                            }
309                        }
310
311                        *err.long_ty_path() = long_ty_file;
312
313                        let mut suggested = false;
314                        let mut noted_missing_impl = false;
315                        if is_try_conversion || is_question_mark {
316                            (suggested, noted_missing_impl) = self.try_conversion_context(
317                                &obligation,
318                                main_trait_predicate,
319                                &mut err,
320                            );
321                        }
322
323                        suggested |= self.detect_negative_literal(
324                            &obligation,
325                            main_trait_predicate,
326                            &mut err,
327                        );
328
329                        if let Some(ret_span) = self.return_type_span(&obligation) {
330                            if is_try_conversion {
331                                let ty = self.tcx.short_string(
332                                    main_trait_predicate.skip_binder().self_ty(),
333                                    err.long_ty_path(),
334                                );
335                                err.span_label(
336                                    ret_span,
337                                    ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("expected `{0}` because of this",
                ty))
    })format!("expected `{ty}` because of this"),
338                                );
339                            } else if is_question_mark {
340                                let main_trait_predicate =
341                                    self.tcx.short_string(main_trait_predicate, err.long_ty_path());
342                                err.span_label(
343                                    ret_span,
344                                    ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("required `{0}` because of this",
                main_trait_predicate))
    })format!("required `{main_trait_predicate}` because of this"),
345                                );
346                            }
347                        }
348
349                        if tcx.is_lang_item(leaf_trait_predicate.def_id(), LangItem::Tuple) {
350                            self.add_tuple_trait_message(
351                                obligation.cause.code().peel_derives(),
352                                &mut err,
353                            );
354                        }
355
356                        let explanation = get_explanation_based_on_obligation(
357                            self.tcx,
358                            &obligation,
359                            leaf_trait_predicate,
360                            pre_message,
361                            err.long_ty_path(),
362                        );
363
364                        self.check_for_binding_assigned_block_without_tail_expression(
365                            &obligation,
366                            &mut err,
367                            leaf_trait_predicate,
368                        );
369                        self.suggest_add_result_as_return_type(
370                            &obligation,
371                            &mut err,
372                            leaf_trait_predicate,
373                        );
374
375                        if self.suggest_add_reference_to_arg(
376                            &obligation,
377                            &mut err,
378                            leaf_trait_predicate,
379                            have_alt_message,
380                        ) {
381                            self.note_obligation_cause(&mut err, &obligation);
382                            return err.emit();
383                        }
384
385                        let ty_span = match leaf_trait_predicate.self_ty().skip_binder().kind() {
386                            ty::Adt(def, _)
387                                if def.did().is_local()
388                                    && !self
389                                        .can_suggest_derive(&obligation, leaf_trait_predicate) =>
390                            {
391                                self.tcx.def_span(def.did())
392                            }
393                            _ => DUMMY_SP,
394                        };
395                        if let Some(s) = label {
396                            // If it has a custom `#[rustc_on_unimplemented]`
397                            // error message, let's display it as the label!
398                            err.span_label(span, s);
399                            if !#[allow(non_exhaustive_omitted_patterns)] match leaf_trait_predicate.skip_binder().self_ty().kind()
    {
    ty::Param(_) => true,
    _ => false,
}matches!(leaf_trait_predicate.skip_binder().self_ty().kind(), ty::Param(_))
400                                // When the self type is a type param We don't need to "the trait
401                                // `std::marker::Sized` is not implemented for `T`" as we will point
402                                // at the type param with a label to suggest constraining it.
403                                && !self.tcx.is_diagnostic_item(sym::FromResidual, leaf_trait_predicate.def_id())
404                            // Don't say "the trait `FromResidual<Option<Infallible>>` is
405                            // not implemented for `Result<T, E>`".
406                            {
407                                // We do this just so that the JSON output's `help` position is the
408                                // right one and not `file.rs:1:1`. The render is the same.
409                                if ty_span == DUMMY_SP {
410                                    err.help(explanation);
411                                } else {
412                                    err.span_help(ty_span, explanation);
413                                }
414                            }
415                        } else if let Some(custom_explanation) = safe_transmute_explanation {
416                            err.span_label(span, custom_explanation);
417                        } else if (explanation.len() > self.tcx.sess.diagnostic_width()
418                            || ty_span != DUMMY_SP)
419                            && !noted_missing_impl
420                        {
421                            // Really long types don't look good as span labels, instead move it
422                            // to a `help`.
423                            err.span_label(span, "unsatisfied trait bound");
424
425                            // We do this just so that the JSON output's `help` position is the
426                            // right one and not `file.rs:1:1`. The render is the same.
427                            if ty_span == DUMMY_SP {
428                                err.help(explanation);
429                            } else {
430                                err.span_help(ty_span, explanation);
431                            }
432                        } else {
433                            err.span_label(span, explanation);
434                        }
435
436                        if let ObligationCauseCode::Coercion { source, target } =
437                            *obligation.cause.code().peel_derives()
438                        {
439                            if self.tcx.is_lang_item(leaf_trait_predicate.def_id(), LangItem::Sized)
440                            {
441                                self.suggest_borrowing_for_object_cast(
442                                    &mut err,
443                                    root_obligation,
444                                    source,
445                                    target,
446                                );
447                            }
448                        }
449
450                        if let Some((msg, span)) = type_def {
451                            err.span_label(span, msg);
452                        }
453                        // `#[rustc_on_unimplemented]` notes for derivable traits (e.g. `Debug`'s
454                        // "add `#[derive(Debug)]` to `X` or manually `impl Debug for X`") duplicate
455                        // the `consider annotating X with #[derive(..)]` suggestion that
456                        // `suggest_derive` emits below, so skip them when that suggestion will be
457                        // shown. We keep the note otherwise (e.g. when a field isn't `Debug`, so
458                        // the derive can't be suggested) to avoid leaving the diagnostic without
459                        // actionable guidance.
460                        let derive_suggestion_will_be_shown = main_trait_predicate
461                            == leaf_trait_predicate
462                            && self.can_suggest_derive(&obligation, leaf_trait_predicate);
463                        if !derive_suggestion_will_be_shown {
464                            for note in notes {
465                                // If it has a custom `#[rustc_on_unimplemented]` note, let's display
466                                // it.
467                                err.note(note);
468                            }
469                        }
470                        if let Some(s) = parent_label {
471                            let body = obligation.cause.body_id;
472                            err.span_label(tcx.def_span(body), s);
473                        }
474
475                        self.suggest_floating_point_literal(
476                            &obligation,
477                            &mut err,
478                            leaf_trait_predicate,
479                        );
480                        self.suggest_dereferencing_index(
481                            &obligation,
482                            &mut err,
483                            leaf_trait_predicate,
484                        );
485                        suggested |=
486                            self.suggest_dereferences(&obligation, &mut err, leaf_trait_predicate);
487                        suggested |=
488                            self.suggest_fn_call(&obligation, &mut err, leaf_trait_predicate);
489                        suggested |= self.suggest_cast_to_fn_pointer(
490                            &obligation,
491                            &mut err,
492                            leaf_trait_predicate,
493                            main_trait_predicate,
494                            span,
495                        );
496                        suggested |= self.suggest_remove_reference(
497                            &obligation,
498                            &mut err,
499                            leaf_trait_predicate,
500                        );
501                        suggested |= self.suggest_semicolon_removal(
502                            &obligation,
503                            &mut err,
504                            span,
505                            leaf_trait_predicate,
506                        );
507                        self.note_different_trait_with_same_name(
508                            &mut err,
509                            &obligation,
510                            leaf_trait_predicate,
511                        );
512                        self.note_adt_version_mismatch(&mut err, leaf_trait_predicate);
513                        self.suggest_remove_await(&obligation, &mut err);
514                        self.suggest_derive(&obligation, &mut err, leaf_trait_predicate);
515
516                        if tcx.is_lang_item(leaf_trait_predicate.def_id(), LangItem::Try) {
517                            self.suggest_await_before_try(
518                                &mut err,
519                                &obligation,
520                                leaf_trait_predicate,
521                                span,
522                            );
523                        }
524
525                        if self.suggest_add_clone_to_arg(
526                            &obligation,
527                            &mut err,
528                            leaf_trait_predicate,
529                        ) {
530                            return err.emit();
531                        }
532
533                        if self.suggest_impl_trait(&mut err, &obligation, leaf_trait_predicate) {
534                            return err.emit();
535                        }
536
537                        if is_unsize {
538                            // If the obligation failed due to a missing implementation of the
539                            // `Unsize` trait, give a pointer to why that might be the case
540                            err.note(
541                                "all implementations of `Unsize` are provided \
542                                automatically by the compiler, see \
543                                <https://doc.rust-lang.org/stable/std/marker/trait.Unsize.html> \
544                                for more information",
545                            );
546                        }
547
548                        let is_fn_trait = tcx.is_fn_trait(leaf_trait_predicate.def_id());
549                        let is_target_feature_fn = if let ty::FnDef(def_id, _) =
550                            *leaf_trait_predicate.skip_binder().self_ty().kind()
551                        {
552                            !self.tcx.codegen_fn_attrs(def_id).target_features.is_empty()
553                        } else {
554                            false
555                        };
556                        if is_fn_trait && is_target_feature_fn {
557                            err.note(
558                                "`#[target_feature]` functions do not implement the `Fn` traits",
559                            );
560                            err.note(
561                                "try casting the function to a `fn` pointer or wrapping it in a closure",
562                            );
563                        }
564
565                        self.note_field_shadowed_by_private_candidate_in_cause(
566                            &mut err,
567                            &obligation.cause,
568                            obligation.param_env,
569                        );
570                        self.try_to_add_help_message(
571                            &root_obligation,
572                            &obligation,
573                            leaf_trait_predicate,
574                            &mut err,
575                            span,
576                            is_fn_trait,
577                            suggested,
578                        );
579
580                        // Changing mutability doesn't make a difference to whether we have
581                        // an `Unsize` impl (Fixes ICE in #71036)
582                        if !is_unsize {
583                            self.suggest_change_mut(&obligation, &mut err, leaf_trait_predicate);
584                        }
585
586                        // If this error is due to `!: Trait` not implemented but `(): Trait` is
587                        // implemented, and fallback has occurred, then it could be due to a
588                        // variable that used to fallback to `()` now falling back to `!`. Issue a
589                        // note informing about the change in behaviour.
590                        if leaf_trait_predicate.skip_binder().self_ty().is_never()
591                            && self.diverging_fallback_has_occurred
592                        {
593                            let predicate = leaf_trait_predicate.map_bound(|trait_pred| {
594                                trait_pred.with_replaced_self_ty(self.tcx, tcx.types.unit)
595                            });
596                            let unit_obligation = obligation.with(tcx, predicate);
597                            if self.predicate_may_hold(&unit_obligation) {
598                                err.note(
599                                    "this error might have been caused by changes to \
600                                    Rust's type-inference algorithm (see issue #148922 \
601                                    <https://github.com/rust-lang/rust/issues/148922> \
602                                    for more information)",
603                                );
604                                err.help(
605                                    "you might have intended to use the type `()` here instead",
606                                );
607                            }
608                        }
609
610                        self.explain_hrtb_projection(
611                            &mut err,
612                            leaf_trait_predicate,
613                            obligation.param_env,
614                            &obligation.cause,
615                        );
616                        self.suggest_desugaring_async_fn_in_trait(&mut err, main_trait_predicate);
617
618                        // Return early if the trait is Debug or Display and the invocation
619                        // originates within a standard library macro, because the output
620                        // is otherwise overwhelming and unhelpful (see #85844 for an
621                        // example).
622
623                        let in_std_macro =
624                            match obligation.cause.span.ctxt().outer_expn_data().macro_def_id {
625                                Some(macro_def_id) => {
626                                    let crate_name = tcx.crate_name(macro_def_id.krate);
627                                    STDLIB_STABLE_CRATES.contains(&crate_name)
628                                }
629                                None => false,
630                            };
631
632                        if in_std_macro
633                            && #[allow(non_exhaustive_omitted_patterns)] match self.tcx.get_diagnostic_name(leaf_trait_predicate.def_id())
    {
    Some(sym::Debug | sym::Display) => true,
    _ => false,
}matches!(
634                                self.tcx.get_diagnostic_name(leaf_trait_predicate.def_id()),
635                                Some(sym::Debug | sym::Display)
636                            )
637                        {
638                            return err.emit();
639                        }
640
641                        err
642                    }
643
644                    ty::PredicateKind::Clause(ty::ClauseKind::HostEffect(predicate)) => self
645                        .report_host_effect_error(
646                            bound_predicate.rebind(predicate),
647                            &obligation,
648                            span,
649                        ),
650
651                    ty::PredicateKind::Subtype(predicate) => {
652                        // Errors for Subtype predicates show up as
653                        // `FulfillmentErrorCode::SubtypeError`,
654                        // not selection error.
655                        ::rustc_middle::util::bug::span_bug_fmt(span,
    format_args!("subtype requirement gave wrong error: `{0:?}`", predicate))span_bug!(span, "subtype requirement gave wrong error: `{:?}`", predicate)
656                    }
657
658                    ty::PredicateKind::Coerce(predicate) => {
659                        // Errors for Coerce predicates show up as
660                        // `FulfillmentErrorCode::SubtypeError`,
661                        // not selection error.
662                        ::rustc_middle::util::bug::span_bug_fmt(span,
    format_args!("coerce requirement gave wrong error: `{0:?}`", predicate))span_bug!(span, "coerce requirement gave wrong error: `{:?}`", predicate)
663                    }
664
665                    ty::PredicateKind::Clause(ty::ClauseKind::RegionOutlives(..))
666                    | ty::PredicateKind::Clause(ty::ClauseKind::TypeOutlives(..)) => {
667                        ::rustc_middle::util::bug::span_bug_fmt(span,
    format_args!("outlives clauses should not error outside borrowck. obligation: `{0:?}`",
        obligation))span_bug!(
668                            span,
669                            "outlives clauses should not error outside borrowck. obligation: `{:?}`",
670                            obligation
671                        )
672                    }
673
674                    ty::PredicateKind::Clause(ty::ClauseKind::Projection(..)) => {
675                        ::rustc_middle::util::bug::span_bug_fmt(span,
    format_args!("projection clauses should be implied from elsewhere. obligation: `{0:?}`",
        obligation))span_bug!(
676                            span,
677                            "projection clauses should be implied from elsewhere. obligation: `{:?}`",
678                            obligation
679                        )
680                    }
681
682                    ty::PredicateKind::DynCompatible(trait_def_id) => {
683                        let violations = self.tcx.dyn_compatibility_violations(trait_def_id);
684                        let mut err = report_dyn_incompatibility(
685                            self.tcx,
686                            span,
687                            None,
688                            trait_def_id,
689                            violations,
690                        );
691                        if let hir::Node::Item(item) =
692                            self.tcx.hir_node_by_def_id(obligation.cause.body_id)
693                            && let hir::ItemKind::Impl(impl_) = item.kind
694                            && let None = impl_.of_trait
695                            && let hir::TyKind::TraitObject(_, tagged_ptr) = impl_.self_ty.kind
696                            && let TraitObjectSyntax::None = tagged_ptr.tag()
697                            && impl_.self_ty.span.edition().at_least_rust_2021()
698                        {
699                            // Silence the dyn-compatibility error in favor of the missing dyn on
700                            // self type error. #131051.
701                            err.downgrade_to_delayed_bug();
702                        }
703                        err
704                    }
705
706                    ty::PredicateKind::Clause(ty::ClauseKind::WellFormed(ty)) => {
707                        let ty = self.resolve_vars_if_possible(ty);
708                        if self.next_trait_solver() {
709                            if let Err(guar) = ty.error_reported() {
710                                return guar;
711                            }
712
713                            // FIXME: we'll need a better message which takes into account
714                            // which bounds actually failed to hold.
715                            self.dcx().struct_span_err(
716                                span,
717                                ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("the type `{0}` is not well-formed",
                ty))
    })format!("the type `{ty}` is not well-formed"),
718                            )
719                        } else {
720                            // WF predicates cannot themselves make
721                            // errors. They can only block due to
722                            // ambiguity; otherwise, they always
723                            // degenerate into other obligations
724                            // (which may fail).
725                            ::rustc_middle::util::bug::span_bug_fmt(span,
    format_args!("WF predicate not satisfied for {0:?}", ty));span_bug!(span, "WF predicate not satisfied for {:?}", ty);
726                        }
727                    }
728
729                    // Errors for `ConstEvaluatable`, `ConstEquate` predicates show up as
730                    // `SelectionError::ConstEvalFailure`, not `Unimplemented`.
731                    // Ambiguous predicates should never error.
732                    // We never return `Err` when proving `UnstableFeature` goal.
733                    ty::PredicateKind::Clause(ty::ClauseKind::ConstEvaluatable(..))
734                    | ty::PredicateKind::ConstEquate { .. }
735                    | ty::PredicateKind::Ambiguous
736                    | ty::PredicateKind::Clause(ty::ClauseKind::UnstableFeature { .. })
737                    | ty::PredicateKind::NormalizesTo { .. }
738                    | ty::PredicateKind::AliasRelate { .. }
739                    | ty::PredicateKind::Clause(ty::ClauseKind::ConstArgHasType { .. }) => {
740                        ::rustc_middle::util::bug::span_bug_fmt(span,
    format_args!("Unexpected `Predicate` for `SelectionError`: `{0:?}`",
        obligation))span_bug!(
741                            span,
742                            "Unexpected `Predicate` for `SelectionError`: `{:?}`",
743                            obligation
744                        )
745                    }
746                }
747            }
748
749            SelectionError::SignatureMismatch(SignatureMismatchData {
750                found_trait_ref,
751                expected_trait_ref,
752                terr: terr @ TypeError::CyclicTy(_),
753            }) => self.report_cyclic_signature_error(
754                &obligation,
755                found_trait_ref,
756                expected_trait_ref,
757                terr,
758            ),
759            SelectionError::SignatureMismatch(SignatureMismatchData {
760                found_trait_ref,
761                expected_trait_ref,
762                terr: _,
763            }) => {
764                match self.report_signature_mismatch_error(
765                    &obligation,
766                    span,
767                    found_trait_ref,
768                    expected_trait_ref,
769                ) {
770                    Ok(err) => err,
771                    Err(guar) => return guar,
772                }
773            }
774
775            SelectionError::TraitDynIncompatible(did) => {
776                let violations = self.tcx.dyn_compatibility_violations(did);
777                report_dyn_incompatibility(self.tcx, span, None, did, violations)
778            }
779
780            SelectionError::NotConstEvaluatable(NotConstEvaluatable::MentionsInfer) => {
781                ::rustc_middle::util::bug::bug_fmt(format_args!("MentionsInfer should have been handled in `traits/fulfill.rs` or `traits/select/mod.rs`"))bug!(
782                    "MentionsInfer should have been handled in `traits/fulfill.rs` or `traits/select/mod.rs`"
783                )
784            }
785            SelectionError::NotConstEvaluatable(NotConstEvaluatable::MentionsParam) => {
786                match self.report_not_const_evaluatable_error(&obligation, span) {
787                    Ok(err) => err,
788                    Err(guar) => return guar,
789                }
790            }
791
792            // Already reported in the query.
793            SelectionError::NotConstEvaluatable(NotConstEvaluatable::Error(guar))
794            | SelectionError::Overflow(OverflowError::Error(guar)) => {
795                self.set_tainted_by_errors(guar);
796                return guar;
797            }
798
799            SelectionError::Overflow(_) => {
800                ::rustc_middle::util::bug::bug_fmt(format_args!("overflow should be handled before the `report_selection_error` path"));bug!("overflow should be handled before the `report_selection_error` path");
801            }
802
803            SelectionError::ConstArgHasWrongType { ct, ct_ty, expected_ty } => {
804                let expected_ty_str = self.tcx.short_string(expected_ty, &mut long_ty_file);
805                let ct_str = self.tcx.short_string(ct, &mut long_ty_file);
806                let mut diag = self.dcx().struct_span_err(
807                    span,
808                    ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("the constant `{0}` is not of type `{1}`",
                ct_str, expected_ty_str))
    })format!("the constant `{ct_str}` is not of type `{expected_ty_str}`"),
809                );
810                diag.long_ty_path = long_ty_file;
811
812                self.note_type_err(
813                    &mut diag,
814                    &obligation.cause,
815                    None,
816                    None,
817                    TypeError::Sorts(ty::error::ExpectedFound::new(expected_ty, ct_ty)),
818                    false,
819                    None,
820                );
821                diag
822            }
823        };
824
825        self.note_obligation_cause(&mut err, &obligation);
826        err.emit()
827    }
828}
829
830impl<'a, 'tcx> TypeErrCtxt<'a, 'tcx> {
831    pub(super) fn apply_do_not_recommend(
832        &self,
833        obligation: &mut PredicateObligation<'tcx>,
834        root_obligation: &PredicateObligation<'tcx>,
835    ) -> bool {
836        let mut base_cause = obligation.cause.code().clone();
837        let mut applied_do_not_recommend = false;
838        loop {
839            if let ObligationCauseCode::ImplDerived(ref c) = base_cause {
840                if self.tcx.do_not_recommend_impl(c.impl_or_alias_def_id) {
841                    let code = (*c.derived.parent_code).clone();
842                    // Keep more precise spans that still point within the parent obligation,
843                    // but do not let hidden impl details move the span outside of it.
844                    if code == *root_obligation.cause.code()
845                        && root_obligation.cause.span.eq_ctxt(obligation.cause.span)
846                        && !root_obligation.cause.span.contains(obligation.cause.span)
847                    {
848                        obligation.cause.span = root_obligation.cause.span;
849                    }
850                    obligation.cause.map_code(|_| code);
851                    obligation.predicate = c.derived.parent_trait_pred.upcast(self.tcx);
852                    applied_do_not_recommend = true;
853                }
854            }
855            if let Some(parent_cause) = base_cause.parent() {
856                base_cause = parent_cause.clone();
857            } else {
858                break;
859            }
860        }
861
862        applied_do_not_recommend
863    }
864
865    fn report_host_effect_error(
866        &self,
867        predicate: ty::Binder<'tcx, ty::HostEffectPredicate<'tcx>>,
868        main_obligation: &PredicateObligation<'tcx>,
869        span: Span,
870    ) -> Diag<'a> {
871        // FIXME(const_trait_impl): We should recompute the predicate with `[const]`
872        // if it's `const`, and if it holds, explain that this bound only
873        // *conditionally* holds.
874        let trait_ref = predicate.map_bound(|predicate| ty::TraitPredicate {
875            trait_ref: predicate.trait_ref,
876            polarity: ty::PredicatePolarity::Positive,
877        });
878        let mut file = None;
879
880        let err_msg = self.get_standard_error_message(
881            trait_ref,
882            Some(predicate.constness()),
883            String::new(),
884            &mut file,
885        );
886        let mut diag = {
    self.dcx().struct_span_err(span,
            ::alloc::__export::must_use({
                    ::alloc::fmt::format(format_args!("{0}", err_msg))
                })).with_code(E0277)
}struct_span_code_err!(self.dcx(), span, E0277, "{}", err_msg);
887        *diag.long_ty_path() = file;
888        let obligation = Obligation::new(
889            self.tcx,
890            ObligationCause::dummy(),
891            main_obligation.param_env,
892            trait_ref,
893        );
894        if !self.predicate_may_hold(&obligation) {
895            diag.downgrade_to_delayed_bug();
896        }
897
898        if let Ok(Some(ImplSource::UserDefined(impl_data))) =
899            self.enter_forall(trait_ref, |trait_ref_for_select| {
900                SelectionContext::new(self).select(&obligation.with(self.tcx, trait_ref_for_select))
901            })
902        {
903            let impl_did = impl_data.impl_def_id;
904            let trait_did = trait_ref.def_id();
905            let impl_span = self.tcx.def_span(impl_did);
906            let trait_name = self.tcx.item_name(trait_did);
907
908            if self.tcx.is_const_trait(trait_did) && !self.tcx.is_const_trait_impl(impl_did) {
909                if !impl_did.is_local() {
910                    diag.span_note(
911                        impl_span,
912                        ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("trait `{0}` is implemented but not `const`",
                trait_name))
    })format!("trait `{trait_name}` is implemented but not `const`"),
913                    );
914                }
915
916                if let Some(command) =
917                    {
    {
        'done:
            {
            for i in
                ::rustc_hir::attrs::HasAttrs::get_attrs(impl_did, &self.tcx) {
                #[allow(unused_imports)]
                use rustc_hir::attrs::AttributeKind::*;
                let i: &rustc_hir::Attribute = i;
                match i {
                    rustc_hir::Attribute::Parsed(OnConst { directive, .. }) => {
                        break 'done Some(directive.as_deref());
                    }
                    rustc_hir::Attribute::Unparsed(..) =>
                        {}
                        #[deny(unreachable_patterns)]
                        _ => {}
                }
            }
            None
        }
    }
}find_attr!(self.tcx, impl_did, OnConst {directive, ..} => directive.as_deref())
918                        .flatten()
919                {
920                    let (_, format_args) = self.on_unimplemented_components(
921                        trait_ref,
922                        main_obligation,
923                        diag.long_ty_path(),
924                    );
925                    let CustomDiagnostic { message, label, notes, parent_label: _ } =
926                        command.eval(None, &format_args);
927
928                    if let Some(message) = message {
929                        diag.primary_message(message);
930                    }
931                    if let Some(label) = label {
932                        diag.span_label(span, label);
933                    }
934                    for note in notes {
935                        diag.note(note);
936                    }
937                } else if let Some(impl_did) = impl_did.as_local()
938                    && let item = self.tcx.hir_expect_item(impl_did)
939                    && let hir::ItemKind::Impl(item) = item.kind
940                    && let Some(of_trait) = item.of_trait
941                {
942                    // trait is const, impl is local and not const
943                    diag.span_suggestion_verbose(
944                        of_trait.trait_ref.path.span.shrink_to_lo(),
945                        ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("make the `impl` of trait `{0}` `const`",
                trait_name))
    })format!("make the `impl` of trait `{trait_name}` `const`"),
946                        "const ".to_string(),
947                        Applicability::MaybeIncorrect,
948                    );
949                }
950            }
951        } else if let ty::Param(param) = trait_ref.self_ty().skip_binder().kind()
952            && let Some(generics) =
953                self.tcx.hir_node_by_def_id(main_obligation.cause.body_id).generics()
954        {
955            let constraint = {
    let _guard = NoTrimmedGuard::new();
    ::alloc::__export::must_use({
            ::alloc::fmt::format(format_args!("[const] {0}",
                    trait_ref.map_bound(|tr|
                                tr.trait_ref).print_trait_sugared()))
        })
}ty::print::with_no_trimmed_paths!(format!(
956                "[const] {}",
957                trait_ref.map_bound(|tr| tr.trait_ref).print_trait_sugared(),
958            ));
959            ty::suggest_constraining_type_param(
960                self.tcx,
961                generics,
962                &mut diag,
963                param.name.as_str(),
964                &constraint,
965                Some(trait_ref.def_id()),
966                None,
967            );
968        }
969        diag
970    }
971
972    fn emit_specialized_closure_kind_error(
973        &self,
974        obligation: &PredicateObligation<'tcx>,
975        mut trait_pred: ty::PolyTraitPredicate<'tcx>,
976    ) -> Option<ErrorGuaranteed> {
977        // If we end up on an `AsyncFnKindHelper` goal, try to unwrap the parent
978        // `AsyncFn*` goal.
979        if self.tcx.is_lang_item(trait_pred.def_id(), LangItem::AsyncFnKindHelper) {
980            let mut code = obligation.cause.code();
981            // Unwrap a `FunctionArg` cause, which has been refined from a derived obligation.
982            if let ObligationCauseCode::FunctionArg { parent_code, .. } = code {
983                code = &**parent_code;
984            }
985            // If we have a derived obligation, then the parent will be a `AsyncFn*` goal.
986            if let Some((_, Some(parent))) = code.parent_with_predicate() {
987                trait_pred = parent;
988            }
989        }
990
991        let self_ty = trait_pred.self_ty().skip_binder();
992
993        let (expected_kind, trait_prefix) =
994            if let Some(expected_kind) = self.tcx.fn_trait_kind_from_def_id(trait_pred.def_id()) {
995                (expected_kind, "")
996            } else if let Some(expected_kind) =
997                self.tcx.async_fn_trait_kind_from_def_id(trait_pred.def_id())
998            {
999                (expected_kind, "Async")
1000            } else {
1001                return None;
1002            };
1003
1004        let (closure_def_id, found_args, has_self_borrows) = match *self_ty.kind() {
1005            ty::Closure(def_id, args) => {
1006                (def_id, args.as_closure().sig().map_bound(|sig| sig.inputs()[0]), false)
1007            }
1008            ty::CoroutineClosure(def_id, args) => (
1009                def_id,
1010                args.as_coroutine_closure()
1011                    .coroutine_closure_sig()
1012                    .map_bound(|sig| sig.tupled_inputs_ty),
1013                !args.as_coroutine_closure().tupled_upvars_ty().is_ty_var()
1014                    && args.as_coroutine_closure().has_self_borrows(),
1015            ),
1016            _ => return None,
1017        };
1018
1019        let expected_args = trait_pred.map_bound(|trait_pred| trait_pred.trait_ref.args.type_at(1));
1020
1021        // Verify that the arguments are compatible. If the signature is
1022        // mismatched, then we have a totally different error to report.
1023        if self.enter_forall(found_args, |found_args| {
1024            self.enter_forall(expected_args, |expected_args| {
1025                !self.can_eq(obligation.param_env, expected_args, found_args)
1026            })
1027        }) {
1028            return None;
1029        }
1030
1031        if let Some(found_kind) = self.closure_kind(self_ty)
1032            && !found_kind.extends(expected_kind)
1033        {
1034            let mut err = self.report_closure_error(
1035                &obligation,
1036                closure_def_id,
1037                found_kind,
1038                expected_kind,
1039                trait_prefix,
1040            );
1041            self.note_obligation_cause(&mut err, &obligation);
1042            return Some(err.emit());
1043        }
1044
1045        // If the closure has captures, then perhaps the reason that the trait
1046        // is unimplemented is because async closures don't implement `Fn`/`FnMut`
1047        // if they have captures.
1048        if has_self_borrows && expected_kind != ty::ClosureKind::FnOnce {
1049            let coro_kind = match self
1050                .tcx
1051                .coroutine_kind(self.tcx.coroutine_for_closure(closure_def_id))
1052                .unwrap()
1053            {
1054                rustc_hir::CoroutineKind::Desugared(desugaring, _) => desugaring.to_string(),
1055                coro => coro.to_string(),
1056            };
1057            let mut err = self.dcx().create_err(CoroClosureNotFn {
1058                span: self.tcx.def_span(closure_def_id),
1059                kind: expected_kind.as_str(),
1060                coro_kind,
1061            });
1062            self.note_obligation_cause(&mut err, &obligation);
1063            return Some(err.emit());
1064        }
1065
1066        None
1067    }
1068
1069    fn fn_arg_obligation(
1070        &self,
1071        obligation: &PredicateObligation<'tcx>,
1072    ) -> Result<(), ErrorGuaranteed> {
1073        if let ObligationCauseCode::FunctionArg { arg_hir_id, .. } = obligation.cause.code()
1074            && let Node::Expr(arg) = self.tcx.hir_node(*arg_hir_id)
1075            && let arg = arg.peel_borrows()
1076            && let hir::ExprKind::Path(hir::QPath::Resolved(
1077                None,
1078                hir::Path { res: hir::def::Res::Local(hir_id), .. },
1079            )) = arg.kind
1080            && let Node::Pat(pat) = self.tcx.hir_node(*hir_id)
1081            && let Some((preds, guar)) = self.reported_trait_errors.borrow().get(&pat.span)
1082            && preds.contains(&obligation.as_goal())
1083        {
1084            return Err(*guar);
1085        }
1086        Ok(())
1087    }
1088
1089    fn detect_negative_literal(
1090        &self,
1091        obligation: &PredicateObligation<'tcx>,
1092        trait_pred: ty::PolyTraitPredicate<'tcx>,
1093        err: &mut Diag<'_>,
1094    ) -> bool {
1095        if let ObligationCauseCode::UnOp { hir_id, .. } = obligation.cause.code()
1096            && let hir::Node::Expr(expr) = self.tcx.hir_node(*hir_id)
1097            && let hir::ExprKind::Unary(hir::UnOp::Neg, inner) = expr.kind
1098            && let hir::ExprKind::Lit(lit) = inner.kind
1099            && let LitKind::Int(_, LitIntType::Unsuffixed) = lit.node
1100        {
1101            err.span_suggestion_verbose(
1102                lit.span.shrink_to_hi(),
1103                "consider specifying an integer type that can be negative",
1104                match trait_pred.skip_binder().self_ty().kind() {
1105                    ty::Uint(ty::UintTy::Usize) => "isize",
1106                    ty::Uint(ty::UintTy::U8) => "i8",
1107                    ty::Uint(ty::UintTy::U16) => "i16",
1108                    ty::Uint(ty::UintTy::U32) => "i32",
1109                    ty::Uint(ty::UintTy::U64) => "i64",
1110                    ty::Uint(ty::UintTy::U128) => "i128",
1111                    _ => "i64",
1112                }
1113                .to_string(),
1114                Applicability::MaybeIncorrect,
1115            );
1116            return true;
1117        }
1118        false
1119    }
1120
1121    /// When the `E` of the resulting `Result<T, E>` in an expression `foo().bar().baz()?`,
1122    /// identify those method chain sub-expressions that could or could not have been annotated
1123    /// with `?`.
1124    fn try_conversion_context(
1125        &self,
1126        obligation: &PredicateObligation<'tcx>,
1127        trait_pred: ty::PolyTraitPredicate<'tcx>,
1128        err: &mut Diag<'_>,
1129    ) -> (bool, bool) {
1130        let span = obligation.cause.span;
1131        /// Look for the (direct) sub-expr of `?`, and return it if it's a `.` method call.
1132        struct FindMethodSubexprOfTry {
1133            search_span: Span,
1134        }
1135        impl<'v> Visitor<'v> for FindMethodSubexprOfTry {
1136            type Result = ControlFlow<&'v hir::Expr<'v>>;
1137            fn visit_expr(&mut self, ex: &'v hir::Expr<'v>) -> Self::Result {
1138                if let hir::ExprKind::Match(expr, _arms, hir::MatchSource::TryDesugar(_)) = ex.kind
1139                    && ex.span.with_lo(ex.span.hi() - BytePos(1)).source_equal(self.search_span)
1140                    && let hir::ExprKind::Call(_, [expr, ..]) = expr.kind
1141                {
1142                    ControlFlow::Break(expr)
1143                } else {
1144                    hir::intravisit::walk_expr(self, ex)
1145                }
1146            }
1147        }
1148        let hir_id = self.tcx.local_def_id_to_hir_id(obligation.cause.body_id);
1149        let Some(body_id) = self.tcx.hir_node(hir_id).body_id() else { return (false, false) };
1150        let ControlFlow::Break(expr) =
1151            (FindMethodSubexprOfTry { search_span: span }).visit_body(self.tcx.hir_body(body_id))
1152        else {
1153            return (false, false);
1154        };
1155        let Some(typeck) = &self.typeck_results else {
1156            return (false, false);
1157        };
1158        let ObligationCauseCode::QuestionMark = obligation.cause.code().peel_derives() else {
1159            return (false, false);
1160        };
1161        let self_ty = trait_pred.skip_binder().self_ty();
1162        let found_ty = trait_pred.skip_binder().trait_ref.args.get(1).and_then(|a| a.as_type());
1163        let noted_missing_impl =
1164            self.note_missing_impl_for_question_mark(err, self_ty, found_ty, trait_pred);
1165
1166        let mut prev_ty = self.resolve_vars_if_possible(
1167            typeck.expr_ty_adjusted_opt(expr).unwrap_or(Ty::new_misc_error(self.tcx)),
1168        );
1169
1170        // We always look at the `E` type, because that's the only one affected by `?`. If the
1171        // incorrect `Result<T, E>` is because of the `T`, we'll get an E0308 on the whole
1172        // expression, after the `?` has "unwrapped" the `T`.
1173        let get_e_type = |prev_ty: Ty<'tcx>| -> Option<Ty<'tcx>> {
1174            let ty::Adt(def, args) = prev_ty.kind() else {
1175                return None;
1176            };
1177            let Some(arg) = args.get(1) else {
1178                return None;
1179            };
1180            if !self.tcx.is_diagnostic_item(sym::Result, def.did()) {
1181                return None;
1182            }
1183            arg.as_type()
1184        };
1185
1186        let mut suggested = false;
1187        let mut chain = ::alloc::vec::Vec::new()vec![];
1188
1189        // The following logic is similar to `point_at_chain`, but that's focused on associated types
1190        let mut expr = expr;
1191        while let hir::ExprKind::MethodCall(path_segment, rcvr_expr, args, span) = expr.kind {
1192            // Point at every method call in the chain with the `Result` type.
1193            // let foo = bar.iter().map(mapper)?;
1194            //               ------ -----------
1195            expr = rcvr_expr;
1196            chain.push((span, prev_ty));
1197
1198            let next_ty = self.resolve_vars_if_possible(
1199                typeck.expr_ty_adjusted_opt(expr).unwrap_or(Ty::new_misc_error(self.tcx)),
1200            );
1201
1202            let is_diagnostic_item = |symbol: Symbol, ty: Ty<'tcx>| {
1203                let ty::Adt(def, _) = ty.kind() else {
1204                    return false;
1205                };
1206                self.tcx.is_diagnostic_item(symbol, def.did())
1207            };
1208            // For each method in the chain, see if this is `Result::map_err` or
1209            // `Option::ok_or_else` and if it is, see if the closure passed to it has an incorrect
1210            // trailing `;`.
1211            if let Some(ty) = get_e_type(prev_ty)
1212                && let Some(found_ty) = found_ty
1213                // Ideally we would instead use `FnCtxt::lookup_method_for_diagnostic` for 100%
1214                // accurate check, but we are in the wrong stage to do that and looking for
1215                // `Result::map_err` by checking the Self type and the path segment is enough.
1216                // sym::ok_or_else
1217                && (
1218                    ( // Result::map_err
1219                        path_segment.ident.name == sym::map_err
1220                            && is_diagnostic_item(sym::Result, next_ty)
1221                    ) || ( // Option::ok_or_else
1222                        path_segment.ident.name == sym::ok_or_else
1223                            && is_diagnostic_item(sym::Option, next_ty)
1224                    )
1225                )
1226                // Found `Result<_, ()>?`
1227                && let ty::Tuple(tys) = found_ty.kind()
1228                && tys.is_empty()
1229                // The current method call returns `Result<_, ()>`
1230                && self.can_eq(obligation.param_env, ty, found_ty)
1231                // There's a single argument in the method call and it is a closure
1232                && let [arg] = args
1233                && let hir::ExprKind::Closure(closure) = arg.kind
1234                // The closure has a block for its body with no tail expression
1235                && let body = self.tcx.hir_body(closure.body)
1236                && let hir::ExprKind::Block(block, _) = body.value.kind
1237                && let None = block.expr
1238                // The last statement is of a type that can be converted to the return error type
1239                && let [.., stmt] = block.stmts
1240                && let hir::StmtKind::Semi(expr) = stmt.kind
1241                && let expr_ty = self.resolve_vars_if_possible(
1242                    typeck.expr_ty_adjusted_opt(expr)
1243                        .unwrap_or(Ty::new_misc_error(self.tcx)),
1244                )
1245                && self
1246                    .infcx
1247                    .type_implements_trait(
1248                        self.tcx.get_diagnostic_item(sym::From).unwrap(),
1249                        [self_ty, expr_ty],
1250                        obligation.param_env,
1251                    )
1252                    .must_apply_modulo_regions()
1253            {
1254                suggested = true;
1255                err.span_suggestion_short(
1256                    stmt.span.with_lo(expr.span.hi()),
1257                    "remove this semicolon",
1258                    String::new(),
1259                    Applicability::MachineApplicable,
1260                );
1261            }
1262
1263            prev_ty = next_ty;
1264
1265            if let hir::ExprKind::Path(hir::QPath::Resolved(None, path)) = expr.kind
1266                && let hir::Path { res: hir::def::Res::Local(hir_id), .. } = path
1267                && let hir::Node::Pat(binding) = self.tcx.hir_node(*hir_id)
1268            {
1269                let parent = self.tcx.parent_hir_node(binding.hir_id);
1270                // We've reached the root of the method call chain...
1271                if let hir::Node::LetStmt(local) = parent
1272                    && let Some(binding_expr) = local.init
1273                {
1274                    // ...and it is a binding. Get the binding creation and continue the chain.
1275                    expr = binding_expr;
1276                }
1277                if let hir::Node::Param(_param) = parent {
1278                    // ...and it is an fn argument.
1279                    break;
1280                }
1281            }
1282        }
1283        // `expr` is now the "root" expression of the method call chain, which can be any
1284        // expression kind, like a method call or a path. If this expression is `Result<T, E>` as
1285        // well, then we also point at it.
1286        prev_ty = self.resolve_vars_if_possible(
1287            typeck.expr_ty_adjusted_opt(expr).unwrap_or(Ty::new_misc_error(self.tcx)),
1288        );
1289        chain.push((expr.span, prev_ty));
1290
1291        let mut prev = None;
1292        let mut iter = chain.into_iter().rev().peekable();
1293        while let Some((span, err_ty)) = iter.next() {
1294            let is_last = iter.peek().is_none();
1295            let err_ty = get_e_type(err_ty);
1296            let err_ty = match (err_ty, prev) {
1297                (Some(err_ty), Some(prev)) if !self.can_eq(obligation.param_env, err_ty, prev) => {
1298                    err_ty
1299                }
1300                (Some(err_ty), None) => err_ty,
1301                _ => {
1302                    prev = err_ty;
1303                    continue;
1304                }
1305            };
1306
1307            let implements_from = self
1308                .infcx
1309                .type_implements_trait(
1310                    self.tcx.get_diagnostic_item(sym::From).unwrap(),
1311                    [self_ty, err_ty],
1312                    obligation.param_env,
1313                )
1314                .must_apply_modulo_regions();
1315
1316            let err_ty_str = self.tcx.short_string(err_ty, err.long_ty_path());
1317            let label = if !implements_from && is_last {
1318                ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("this can\'t be annotated with `?` because it has type `Result<_, {0}>`",
                err_ty_str))
    })format!(
1319                    "this can't be annotated with `?` because it has type `Result<_, {err_ty_str}>`"
1320                )
1321            } else {
1322                ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("this has type `Result<_, {0}>`",
                err_ty_str))
    })format!("this has type `Result<_, {err_ty_str}>`")
1323            };
1324
1325            if !suggested || !implements_from {
1326                err.span_label(span, label);
1327            }
1328            prev = Some(err_ty);
1329        }
1330        (suggested, noted_missing_impl)
1331    }
1332
1333    fn note_missing_impl_for_question_mark(
1334        &self,
1335        err: &mut Diag<'_>,
1336        self_ty: Ty<'_>,
1337        found_ty: Option<Ty<'_>>,
1338        trait_pred: ty::PolyTraitPredicate<'tcx>,
1339    ) -> bool {
1340        match (self_ty.kind(), found_ty) {
1341            (ty::Adt(def, _), Some(ty))
1342                if let ty::Adt(found, _) = ty.kind()
1343                    && def.did().is_local()
1344                    && found.did().is_local() =>
1345            {
1346                err.span_note(
1347                    self.tcx.def_span(def.did()),
1348                    ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("`{0}` needs to implement `From<{1}>`",
                self_ty, ty))
    })format!("`{self_ty}` needs to implement `From<{ty}>`"),
1349                );
1350            }
1351            (ty::Adt(def, _), None) if def.did().is_local() => {
1352                let trait_path = self.tcx.short_string(
1353                    trait_pred.skip_binder().trait_ref.print_only_trait_path(),
1354                    err.long_ty_path(),
1355                );
1356                err.span_note(
1357                    self.tcx.def_span(def.did()),
1358                    ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("`{0}` needs to implement `{1}`",
                self_ty, trait_path))
    })format!("`{self_ty}` needs to implement `{trait_path}`"),
1359                );
1360            }
1361            (ty::Adt(def, _), Some(ty)) if def.did().is_local() => {
1362                err.span_note(
1363                    self.tcx.def_span(def.did()),
1364                    ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("`{0}` needs to implement `From<{1}>`",
                self_ty, ty))
    })format!("`{self_ty}` needs to implement `From<{ty}>`"),
1365                );
1366            }
1367            (_, Some(ty))
1368                if let ty::Adt(def, _) = ty.kind()
1369                    && def.did().is_local() =>
1370            {
1371                err.span_note(
1372                    self.tcx.def_span(def.did()),
1373                    ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("`{0}` needs to implement `Into<{1}>`",
                ty, self_ty))
    })format!("`{ty}` needs to implement `Into<{self_ty}>`"),
1374                );
1375            }
1376            _ => return false,
1377        }
1378        true
1379    }
1380
1381    fn report_const_param_not_wf(
1382        &self,
1383        ty: Ty<'tcx>,
1384        obligation: &PredicateObligation<'tcx>,
1385    ) -> Diag<'a> {
1386        let def_id = obligation.cause.body_id;
1387        let span = self.tcx.ty_span(def_id);
1388
1389        let mut file = None;
1390        let ty_str = self.tcx.short_string(ty, &mut file);
1391        let mut diag = match ty.kind() {
1392            ty::Float(_) => {
1393                {
    self.dcx().struct_span_err(span,
            ::alloc::__export::must_use({
                    ::alloc::fmt::format(format_args!("`{0}` is forbidden as the type of a const generic parameter",
                            ty_str))
                })).with_code(E0741)
}struct_span_code_err!(
1394                    self.dcx(),
1395                    span,
1396                    E0741,
1397                    "`{ty_str}` is forbidden as the type of a const generic parameter",
1398                )
1399            }
1400            ty::FnPtr(..) => {
1401                {
    self.dcx().struct_span_err(span,
            ::alloc::__export::must_use({
                    ::alloc::fmt::format(format_args!("using function pointers as const generic parameters is forbidden"))
                })).with_code(E0741)
}struct_span_code_err!(
1402                    self.dcx(),
1403                    span,
1404                    E0741,
1405                    "using function pointers as const generic parameters is forbidden",
1406                )
1407            }
1408            ty::RawPtr(_, _) => {
1409                {
    self.dcx().struct_span_err(span,
            ::alloc::__export::must_use({
                    ::alloc::fmt::format(format_args!("using raw pointers as const generic parameters is forbidden"))
                })).with_code(E0741)
}struct_span_code_err!(
1410                    self.dcx(),
1411                    span,
1412                    E0741,
1413                    "using raw pointers as const generic parameters is forbidden",
1414                )
1415            }
1416            ty::Adt(def, _) => {
1417                // We should probably see if we're *allowed* to derive `ConstParamTy` on the type...
1418                let mut diag = {
    self.dcx().struct_span_err(span,
            ::alloc::__export::must_use({
                    ::alloc::fmt::format(format_args!("`{0}` must implement `ConstParamTy` to be used as the type of a const generic parameter",
                            ty_str))
                })).with_code(E0741)
}struct_span_code_err!(
1419                    self.dcx(),
1420                    span,
1421                    E0741,
1422                    "`{ty_str}` must implement `ConstParamTy` to be used as the type of a const generic parameter",
1423                );
1424                // Only suggest derive if this isn't a derived obligation,
1425                // and the struct is local.
1426                if let Some(span) = self.tcx.hir_span_if_local(def.did())
1427                    && obligation.cause.code().parent().is_none()
1428                {
1429                    if ty.is_structural_eq_shallow(self.tcx) {
1430                        diag.span_suggestion(
1431                            span.shrink_to_lo(),
1432                            ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("add `#[derive(ConstParamTy)]` to the {0}",
                def.descr()))
    })format!("add `#[derive(ConstParamTy)]` to the {}", def.descr()),
1433                            "#[derive(ConstParamTy)]\n",
1434                            Applicability::MachineApplicable,
1435                        );
1436                    } else {
1437                        // FIXME(adt_const_params): We should check there's not already an
1438                        // overlapping `Eq`/`PartialEq` impl.
1439                        diag.span_suggestion(
1440                            span.shrink_to_lo(),
1441                            ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("add `#[derive(ConstParamTy, PartialEq, Eq)]` to the {0}",
                def.descr()))
    })format!(
1442                                "add `#[derive(ConstParamTy, PartialEq, Eq)]` to the {}",
1443                                def.descr()
1444                            ),
1445                            "#[derive(ConstParamTy, PartialEq, Eq)]\n",
1446                            Applicability::MachineApplicable,
1447                        );
1448                    }
1449                }
1450                diag
1451            }
1452            _ => {
1453                {
    self.dcx().struct_span_err(span,
            ::alloc::__export::must_use({
                    ::alloc::fmt::format(format_args!("`{0}` can\'t be used as a const parameter type",
                            ty_str))
                })).with_code(E0741)
}struct_span_code_err!(
1454                    self.dcx(),
1455                    span,
1456                    E0741,
1457                    "`{ty_str}` can't be used as a const parameter type",
1458                )
1459            }
1460        };
1461        diag.long_ty_path = file;
1462
1463        let mut code = obligation.cause.code();
1464        let mut pred = obligation.predicate.as_trait_clause();
1465        while let Some((next_code, next_pred)) = code.parent_with_predicate() {
1466            if let Some(pred) = pred {
1467                self.enter_forall(pred, |pred| {
1468                    let ty = self.tcx.short_string(pred.self_ty(), diag.long_ty_path());
1469                    let trait_path = self
1470                        .tcx
1471                        .short_string(pred.print_modifiers_and_trait_path(), diag.long_ty_path());
1472                    diag.note(::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("`{0}` must implement `{1}`, but it does not",
                ty, trait_path))
    })format!("`{ty}` must implement `{trait_path}`, but it does not"));
1473                })
1474            }
1475            code = next_code;
1476            pred = next_pred;
1477        }
1478
1479        diag
1480    }
1481}
1482
1483impl<'a, 'tcx> TypeErrCtxt<'a, 'tcx> {
1484    fn can_match_trait(
1485        &self,
1486        param_env: ty::ParamEnv<'tcx>,
1487        goal: ty::TraitPredicate<'tcx>,
1488        assumption: ty::PolyTraitPredicate<'tcx>,
1489    ) -> bool {
1490        // Fast path
1491        if goal.polarity != assumption.polarity() {
1492            return false;
1493        }
1494
1495        let trait_assumption = self.instantiate_binder_with_fresh_vars(
1496            DUMMY_SP,
1497            infer::BoundRegionConversionTime::HigherRankedType,
1498            assumption,
1499        );
1500
1501        self.can_eq(param_env, goal.trait_ref, trait_assumption.trait_ref)
1502    }
1503
1504    fn can_match_host_effect(
1505        &self,
1506        param_env: ty::ParamEnv<'tcx>,
1507        goal: ty::HostEffectPredicate<'tcx>,
1508        assumption: ty::Binder<'tcx, ty::HostEffectPredicate<'tcx>>,
1509    ) -> bool {
1510        let assumption = self.instantiate_binder_with_fresh_vars(
1511            DUMMY_SP,
1512            infer::BoundRegionConversionTime::HigherRankedType,
1513            assumption,
1514        );
1515
1516        assumption.constness.satisfies(goal.constness)
1517            && self.can_eq(param_env, goal.trait_ref, assumption.trait_ref)
1518    }
1519
1520    fn as_host_effect_clause(
1521        predicate: ty::Predicate<'tcx>,
1522    ) -> Option<ty::Binder<'tcx, ty::HostEffectPredicate<'tcx>>> {
1523        predicate.as_clause().and_then(|clause| match clause.kind().skip_binder() {
1524            ty::ClauseKind::HostEffect(pred) => Some(clause.kind().rebind(pred)),
1525            _ => None,
1526        })
1527    }
1528
1529    fn can_match_projection(
1530        &self,
1531        param_env: ty::ParamEnv<'tcx>,
1532        goal: ty::ProjectionPredicate<'tcx>,
1533        assumption: ty::PolyProjectionPredicate<'tcx>,
1534    ) -> bool {
1535        let assumption = self.instantiate_binder_with_fresh_vars(
1536            DUMMY_SP,
1537            infer::BoundRegionConversionTime::HigherRankedType,
1538            assumption,
1539        );
1540
1541        self.can_eq(param_env, goal.projection_term, assumption.projection_term)
1542            && self.can_eq(param_env, goal.term, assumption.term)
1543    }
1544
1545    // returns if `cond` not occurring implies that `error` does not occur - i.e., that
1546    // `error` occurring implies that `cond` occurs.
1547    x;#[instrument(level = "debug", skip(self), ret)]
1548    pub(super) fn error_implies(
1549        &self,
1550        cond: Goal<'tcx, ty::Predicate<'tcx>>,
1551        error: Goal<'tcx, ty::Predicate<'tcx>>,
1552    ) -> bool {
1553        if cond == error {
1554            return true;
1555        }
1556
1557        // FIXME: We could be smarter about this, i.e. if cond's param-env is a
1558        // subset of error's param-env. This only matters when binders will carry
1559        // predicates though, and obviously only matters for error reporting.
1560        if cond.param_env != error.param_env {
1561            return false;
1562        }
1563        let param_env = error.param_env;
1564
1565        if let Some(error) = error.predicate.as_trait_clause() {
1566            self.enter_forall(error, |error| {
1567                elaborate(self.tcx, std::iter::once(cond.predicate))
1568                    .filter_map(|implied| implied.as_trait_clause())
1569                    .any(|implied| self.can_match_trait(param_env, error, implied))
1570            })
1571        } else if let Some(error) = Self::as_host_effect_clause(error.predicate) {
1572            self.enter_forall(error, |error| {
1573                elaborate(self.tcx, std::iter::once(cond.predicate))
1574                    .filter_map(Self::as_host_effect_clause)
1575                    .any(|implied| self.can_match_host_effect(param_env, error, implied))
1576            })
1577        } else if let Some(error) = error.predicate.as_projection_clause() {
1578            self.enter_forall(error, |error| {
1579                elaborate(self.tcx, std::iter::once(cond.predicate))
1580                    .filter_map(|implied| implied.as_projection_clause())
1581                    .any(|implied| self.can_match_projection(param_env, error, implied))
1582            })
1583        } else {
1584            false
1585        }
1586    }
1587
1588    #[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("report_projection_error",
                                    "rustc_trait_selection::error_reporting::traits::fulfillment_errors",
                                    ::tracing::Level::DEBUG,
                                    ::tracing_core::__macro_support::Option::Some("compiler/rustc_trait_selection/src/error_reporting/traits/fulfillment_errors.rs"),
                                    ::tracing_core::__macro_support::Option::Some(1588u32),
                                    ::tracing_core::__macro_support::Option::Some("rustc_trait_selection::error_reporting::traits::fulfillment_errors"),
                                    ::tracing_core::field::FieldSet::new(&[],
                                        ::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,
                        &{ meta.fields().value_set(&[]) })
                } 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: ErrorGuaranteed = loop {};
            return __tracing_attr_fake_return;
        }
        {
            let predicate =
                self.resolve_vars_if_possible(obligation.predicate);
            if let Err(e) = predicate.error_reported() { return e; }
            self.probe(|_|
                    {
                        let bound_predicate = predicate.kind();
                        let (values, err) =
                            match bound_predicate.skip_binder() {
                                ty::PredicateKind::Clause(ty::ClauseKind::Projection(data))
                                    => {
                                    let ocx = ObligationCtxt::new(self);
                                    let data =
                                        self.instantiate_binder_with_fresh_vars(obligation.cause.span,
                                            infer::BoundRegionConversionTime::HigherRankedType,
                                            bound_predicate.rebind(data));
                                    let unnormalized_term =
                                        data.projection_term.to_term(self.tcx);
                                    let normalized_term =
                                        ocx.normalize(&obligation.cause, obligation.param_env,
                                            Unnormalized::new_wip(unnormalized_term));
                                    let _ = ocx.try_evaluate_obligations();
                                    if let Err(new_err) =
                                            ocx.eq(&obligation.cause, obligation.param_env, data.term,
                                                normalized_term) {
                                        (Some((data.projection_term,
                                                    self.resolve_vars_if_possible(normalized_term), data.term)),
                                            new_err)
                                    } else { (None, error.err) }
                                }
                                ty::PredicateKind::AliasRelate(lhs, rhs, _) => {
                                    let derive_better_type_error =
                                        |alias_term: ty::AliasTerm<'tcx>,
                                            expected_term: ty::Term<'tcx>|
                                            {
                                                let ocx = ObligationCtxt::new(self);
                                                let normalized_term =
                                                    ocx.normalize(&ObligationCause::dummy(),
                                                        obligation.param_env,
                                                        Unnormalized::new_wip(alias_term.to_term(self.tcx)));
                                                if let Err(terr) =
                                                        ocx.eq(&ObligationCause::dummy(), obligation.param_env,
                                                            expected_term, normalized_term) {
                                                    Some((terr, self.resolve_vars_if_possible(normalized_term)))
                                                } else { None }
                                            };
                                    if let Some(lhs) = lhs.to_alias_term() &&
                                                let ty::AliasTermKind::ProjectionTy { .. } |
                                                    ty::AliasTermKind::ProjectionConst { .. } = lhs.kind &&
                                            let Some((better_type_err, expected_term)) =
                                                derive_better_type_error(lhs, rhs) {
                                        (Some((lhs, self.resolve_vars_if_possible(expected_term),
                                                    rhs)), better_type_err)
                                    } else if let Some(rhs) = rhs.to_alias_term() &&
                                                let ty::AliasTermKind::ProjectionTy { .. } |
                                                    ty::AliasTermKind::ProjectionConst { .. } = rhs.kind &&
                                            let Some((better_type_err, expected_term)) =
                                                derive_better_type_error(rhs, lhs) {
                                        (Some((rhs, self.resolve_vars_if_possible(expected_term),
                                                    lhs)), better_type_err)
                                    } else { (None, error.err) }
                                }
                                _ => (None, error.err),
                            };
                        let mut file = None;
                        let (msg, span, closure_span) =
                            values.and_then(|(predicate, normalized_term,
                                            expected_term)|
                                        {
                                            self.maybe_detailed_projection_msg(obligation.cause.span,
                                                predicate, normalized_term, expected_term, &mut file)
                                        }).unwrap_or_else(||
                                    {
                                        ({
                                                let _guard = ForceTrimmedGuard::new();
                                                ::alloc::__export::must_use({
                                                        ::alloc::fmt::format(format_args!("type mismatch resolving `{0}`",
                                                                self.tcx.short_string(self.resolve_vars_if_possible(predicate),
                                                                    &mut file)))
                                                    })
                                            }, obligation.cause.span, None)
                                    });
                        let mut diag =
                            {
                                self.dcx().struct_span_err(span,
                                        ::alloc::__export::must_use({
                                                ::alloc::fmt::format(format_args!("{0}", msg))
                                            })).with_code(E0271)
                            };
                        *diag.long_ty_path() = file;
                        if let Some(span) = closure_span {
                            diag.span_label(span, "this closure");
                            if !span.overlaps(obligation.cause.span) {
                                diag.span_label(obligation.cause.span, "closure used here");
                            }
                        }
                        let secondary_span =
                            self.probe(|_|
                                    {
                                        let ty::PredicateKind::Clause(ty::ClauseKind::Projection(proj)) =
                                            predicate.kind().skip_binder() else { return None; };
                                        let trait_ref =
                                            self.enter_forall_and_leak_universe(predicate.kind().rebind(proj.projection_term.trait_ref(self.tcx)));
                                        let Ok(Some(ImplSource::UserDefined(impl_data))) =
                                            SelectionContext::new(self).select(&obligation.with(self.tcx,
                                                        trait_ref)) else { return None; };
                                        let Ok(node) =
                                            specialization_graph::assoc_def(self.tcx,
                                                impl_data.impl_def_id, proj.def_id()) else { return None; };
                                        if !node.is_final() { return None; }
                                        match self.tcx.hir_get_if_local(node.item.def_id) {
                                            Some(hir::Node::TraitItem(hir::TraitItem {
                                                kind: hir::TraitItemKind::Type(_, Some(ty)), .. }) |
                                                hir::Node::ImplItem(hir::ImplItem {
                                                kind: hir::ImplItemKind::Type(ty), .. })) =>
                                                Some((ty.span,
                                                        {
                                                            let _guard = ForceTrimmedGuard::new();
                                                            Cow::from(::alloc::__export::must_use({
                                                                        ::alloc::fmt::format(format_args!("type mismatch resolving `{0}`",
                                                                                self.tcx.short_string(self.resolve_vars_if_possible(predicate),
                                                                                    diag.long_ty_path())))
                                                                    }))
                                                        }, true)),
                                            _ => None,
                                        }
                                    });
                        self.note_type_err(&mut diag, &obligation.cause,
                            secondary_span,
                            values.map(|(_, normalized_ty, expected_ty)|
                                    {
                                        obligation.param_env.and(infer::ValuePairs::Terms(ExpectedFound::new(expected_ty,
                                                    normalized_ty)))
                                    }), err, false, Some(span));
                        self.note_obligation_cause(&mut diag, obligation);
                        diag.emit()
                    })
        }
    }
}#[instrument(level = "debug", skip_all)]
1589    pub(super) fn report_projection_error(
1590        &self,
1591        obligation: &PredicateObligation<'tcx>,
1592        error: &MismatchedProjectionTypes<'tcx>,
1593    ) -> ErrorGuaranteed {
1594        let predicate = self.resolve_vars_if_possible(obligation.predicate);
1595
1596        if let Err(e) = predicate.error_reported() {
1597            return e;
1598        }
1599
1600        self.probe(|_| {
1601            // try to find the mismatched types to report the error with.
1602            //
1603            // this can fail if the problem was higher-ranked, in which
1604            // cause I have no idea for a good error message.
1605            let bound_predicate = predicate.kind();
1606            let (values, err) = match bound_predicate.skip_binder() {
1607                ty::PredicateKind::Clause(ty::ClauseKind::Projection(data)) => {
1608                    let ocx = ObligationCtxt::new(self);
1609
1610                    let data = self.instantiate_binder_with_fresh_vars(
1611                        obligation.cause.span,
1612                        infer::BoundRegionConversionTime::HigherRankedType,
1613                        bound_predicate.rebind(data),
1614                    );
1615                    let unnormalized_term = data.projection_term.to_term(self.tcx);
1616                    // FIXME(-Znext-solver): For diagnostic purposes, it would be nice
1617                    // to deeply normalize this type.
1618                    let normalized_term = ocx.normalize(
1619                        &obligation.cause,
1620                        obligation.param_env,
1621                        Unnormalized::new_wip(unnormalized_term),
1622                    );
1623
1624                    // constrain inference variables a bit more to nested obligations from normalize so
1625                    // we can have more helpful errors.
1626                    //
1627                    // we intentionally drop errors from normalization here,
1628                    // since the normalization is just done to improve the error message.
1629                    let _ = ocx.try_evaluate_obligations();
1630
1631                    if let Err(new_err) =
1632                        ocx.eq(&obligation.cause, obligation.param_env, data.term, normalized_term)
1633                    {
1634                        (
1635                            Some((
1636                                data.projection_term,
1637                                self.resolve_vars_if_possible(normalized_term),
1638                                data.term,
1639                            )),
1640                            new_err,
1641                        )
1642                    } else {
1643                        (None, error.err)
1644                    }
1645                }
1646                ty::PredicateKind::AliasRelate(lhs, rhs, _) => {
1647                    let derive_better_type_error =
1648                        |alias_term: ty::AliasTerm<'tcx>, expected_term: ty::Term<'tcx>| {
1649                            let ocx = ObligationCtxt::new(self);
1650
1651                            let normalized_term = ocx.normalize(
1652                                &ObligationCause::dummy(),
1653                                obligation.param_env,
1654                                Unnormalized::new_wip(alias_term.to_term(self.tcx)),
1655                            );
1656
1657                            if let Err(terr) = ocx.eq(
1658                                &ObligationCause::dummy(),
1659                                obligation.param_env,
1660                                expected_term,
1661                                normalized_term,
1662                            ) {
1663                                Some((terr, self.resolve_vars_if_possible(normalized_term)))
1664                            } else {
1665                                None
1666                            }
1667                        };
1668
1669                    if let Some(lhs) = lhs.to_alias_term()
1670                        && let ty::AliasTermKind::ProjectionTy { .. }
1671                        | ty::AliasTermKind::ProjectionConst { .. } = lhs.kind
1672                        && let Some((better_type_err, expected_term)) =
1673                            derive_better_type_error(lhs, rhs)
1674                    {
1675                        (
1676                            Some((lhs, self.resolve_vars_if_possible(expected_term), rhs)),
1677                            better_type_err,
1678                        )
1679                    } else if let Some(rhs) = rhs.to_alias_term()
1680                        && let ty::AliasTermKind::ProjectionTy { .. }
1681                        | ty::AliasTermKind::ProjectionConst { .. } = rhs.kind
1682                        && let Some((better_type_err, expected_term)) =
1683                            derive_better_type_error(rhs, lhs)
1684                    {
1685                        (
1686                            Some((rhs, self.resolve_vars_if_possible(expected_term), lhs)),
1687                            better_type_err,
1688                        )
1689                    } else {
1690                        (None, error.err)
1691                    }
1692                }
1693                _ => (None, error.err),
1694            };
1695
1696            let mut file = None;
1697            let (msg, span, closure_span) = values
1698                .and_then(|(predicate, normalized_term, expected_term)| {
1699                    self.maybe_detailed_projection_msg(
1700                        obligation.cause.span,
1701                        predicate,
1702                        normalized_term,
1703                        expected_term,
1704                        &mut file,
1705                    )
1706                })
1707                .unwrap_or_else(|| {
1708                    (
1709                        with_forced_trimmed_paths!(format!(
1710                            "type mismatch resolving `{}`",
1711                            self.tcx
1712                                .short_string(self.resolve_vars_if_possible(predicate), &mut file),
1713                        )),
1714                        obligation.cause.span,
1715                        None,
1716                    )
1717                });
1718            let mut diag = struct_span_code_err!(self.dcx(), span, E0271, "{msg}");
1719            *diag.long_ty_path() = file;
1720            if let Some(span) = closure_span {
1721                // Mark the closure decl so that it is seen even if we are pointing at the return
1722                // type or expression.
1723                //
1724                // error[E0271]: expected `{closure@foo.rs:41:16}` to be a closure that returns
1725                //               `Unit3`, but it returns `Unit4`
1726                //   --> $DIR/foo.rs:43:17
1727                //    |
1728                // LL |     let v = Unit2.m(
1729                //    |                   - required by a bound introduced by this call
1730                // ...
1731                // LL |             f: |x| {
1732                //    |                --- /* this span */
1733                // LL |                 drop(x);
1734                // LL |                 Unit4
1735                //    |                 ^^^^^ expected `Unit3`, found `Unit4`
1736                //    |
1737                diag.span_label(span, "this closure");
1738                if !span.overlaps(obligation.cause.span) {
1739                    // Point at the binding corresponding to the closure where it is used.
1740                    diag.span_label(obligation.cause.span, "closure used here");
1741                }
1742            }
1743
1744            let secondary_span = self.probe(|_| {
1745                let ty::PredicateKind::Clause(ty::ClauseKind::Projection(proj)) =
1746                    predicate.kind().skip_binder()
1747                else {
1748                    return None;
1749                };
1750
1751                let trait_ref = self.enter_forall_and_leak_universe(
1752                    predicate.kind().rebind(proj.projection_term.trait_ref(self.tcx)),
1753                );
1754                let Ok(Some(ImplSource::UserDefined(impl_data))) =
1755                    SelectionContext::new(self).select(&obligation.with(self.tcx, trait_ref))
1756                else {
1757                    return None;
1758                };
1759
1760                let Ok(node) =
1761                    specialization_graph::assoc_def(self.tcx, impl_data.impl_def_id, proj.def_id())
1762                else {
1763                    return None;
1764                };
1765
1766                if !node.is_final() {
1767                    return None;
1768                }
1769
1770                match self.tcx.hir_get_if_local(node.item.def_id) {
1771                    Some(
1772                        hir::Node::TraitItem(hir::TraitItem {
1773                            kind: hir::TraitItemKind::Type(_, Some(ty)),
1774                            ..
1775                        })
1776                        | hir::Node::ImplItem(hir::ImplItem {
1777                            kind: hir::ImplItemKind::Type(ty),
1778                            ..
1779                        }),
1780                    ) => Some((
1781                        ty.span,
1782                        with_forced_trimmed_paths!(Cow::from(format!(
1783                            "type mismatch resolving `{}`",
1784                            self.tcx.short_string(
1785                                self.resolve_vars_if_possible(predicate),
1786                                diag.long_ty_path()
1787                            ),
1788                        ))),
1789                        true,
1790                    )),
1791                    _ => None,
1792                }
1793            });
1794
1795            self.note_type_err(
1796                &mut diag,
1797                &obligation.cause,
1798                secondary_span,
1799                values.map(|(_, normalized_ty, expected_ty)| {
1800                    obligation.param_env.and(infer::ValuePairs::Terms(ExpectedFound::new(
1801                        expected_ty,
1802                        normalized_ty,
1803                    )))
1804                }),
1805                err,
1806                false,
1807                Some(span),
1808            );
1809            self.note_obligation_cause(&mut diag, obligation);
1810            diag.emit()
1811        })
1812    }
1813
1814    fn maybe_detailed_projection_msg(
1815        &self,
1816        mut span: Span,
1817        projection_term: ty::AliasTerm<'tcx>,
1818        normalized_ty: ty::Term<'tcx>,
1819        expected_ty: ty::Term<'tcx>,
1820        long_ty_path: &mut Option<PathBuf>,
1821    ) -> Option<(String, Span, Option<Span>)> {
1822        let projection_def_id = projection_term.expect_projection_def_id();
1823        let trait_def_id = projection_term.trait_def_id(self.tcx);
1824        let self_ty = projection_term.self_ty();
1825
1826        {
    let _guard = ForceTrimmedGuard::new();
    if self.tcx.is_lang_item(projection_def_id, LangItem::FnOnceOutput) {
        let (span, closure_span) =
            if let ty::Closure(def_id, _) = *self_ty.kind() {
                let def_span = self.tcx.def_span(def_id);
                if let Some(local_def_id) = def_id.as_local() &&
                                let node = self.tcx.hir_node_by_def_id(local_def_id) &&
                            let Some(fn_decl) = node.fn_decl() &&
                        let Some(id) = node.body_id() {
                    span =
                        match fn_decl.output {
                            hir::FnRetTy::Return(ty) => ty.span,
                            hir::FnRetTy::DefaultReturn(_) => {
                                let body = self.tcx.hir_body(id);
                                match body.value.kind {
                                    hir::ExprKind::Block(hir::Block { expr: Some(expr), .. }, _)
                                        => expr.span,
                                    hir::ExprKind::Block(hir::Block {
                                        expr: None, stmts: [.., last], .. }, _) => last.span,
                                    _ => body.value.span,
                                }
                            }
                        };
                }
                (span, Some(def_span))
            } else { (span, None) };
        let item =
            match self_ty.kind() {
                ty::FnDef(def, _) => self.tcx.item_name(*def).to_string(),
                _ => self.tcx.short_string(self_ty, long_ty_path),
            };
        let expected_ty = self.tcx.short_string(expected_ty, long_ty_path);
        let normalized_ty =
            self.tcx.short_string(normalized_ty, long_ty_path);
        Some((::alloc::__export::must_use({
                        ::alloc::fmt::format(format_args!("expected `{0}` to return `{1}`, but it returns `{2}`",
                                item, expected_ty, normalized_ty))
                    }), span, closure_span))
    } else if self.tcx.is_lang_item(trait_def_id, LangItem::Future) {
        let self_ty = self.tcx.short_string(self_ty, long_ty_path);
        let expected_ty = self.tcx.short_string(expected_ty, long_ty_path);
        let normalized_ty =
            self.tcx.short_string(normalized_ty, long_ty_path);
        Some((::alloc::__export::must_use({
                        ::alloc::fmt::format(format_args!("expected `{0}` to be a future that resolves to `{1}`, but it resolves to `{2}`",
                                self_ty, expected_ty, normalized_ty))
                    }), span, None))
    } else if Some(trait_def_id) ==
            self.tcx.get_diagnostic_item(sym::Iterator) {
        let self_ty = self.tcx.short_string(self_ty, long_ty_path);
        let expected_ty = self.tcx.short_string(expected_ty, long_ty_path);
        let normalized_ty =
            self.tcx.short_string(normalized_ty, long_ty_path);
        Some((::alloc::__export::must_use({
                        ::alloc::fmt::format(format_args!("expected `{0}` to be an iterator that yields `{1}`, but it yields `{2}`",
                                self_ty, expected_ty, normalized_ty))
                    }), span, None))
    } else { None }
}with_forced_trimmed_paths! {
1827            if self.tcx.is_lang_item(projection_def_id, LangItem::FnOnceOutput) {
1828                let (span, closure_span) = if let ty::Closure(def_id, _) = *self_ty.kind() {
1829                    let def_span = self.tcx.def_span(def_id);
1830                    if let Some(local_def_id) = def_id.as_local()
1831                        && let node = self.tcx.hir_node_by_def_id(local_def_id)
1832                        && let Some(fn_decl) = node.fn_decl()
1833                        && let Some(id) = node.body_id()
1834                    {
1835                        span = match fn_decl.output {
1836                            hir::FnRetTy::Return(ty) => ty.span,
1837                            hir::FnRetTy::DefaultReturn(_) => {
1838                                let body = self.tcx.hir_body(id);
1839                                match body.value.kind {
1840                                    hir::ExprKind::Block(
1841                                        hir::Block { expr: Some(expr), .. },
1842                                        _,
1843                                    ) => expr.span,
1844                                    hir::ExprKind::Block(
1845                                        hir::Block {
1846                                            expr: None, stmts: [.., last], ..
1847                                        },
1848                                        _,
1849                                    ) => last.span,
1850                                    _ => body.value.span,
1851                                }
1852                            }
1853                        };
1854                    }
1855                    (span, Some(def_span))
1856                } else {
1857                    (span, None)
1858                };
1859                let item = match self_ty.kind() {
1860                    ty::FnDef(def, _) => self.tcx.item_name(*def).to_string(),
1861                    _ => self.tcx.short_string(self_ty, long_ty_path),
1862                };
1863                let expected_ty = self.tcx.short_string(expected_ty, long_ty_path);
1864                let normalized_ty = self.tcx.short_string(normalized_ty, long_ty_path);
1865                Some((format!(
1866                    "expected `{item}` to return `{expected_ty}`, but it returns `{normalized_ty}`",
1867                ), span, closure_span))
1868            } else if self.tcx.is_lang_item(trait_def_id, LangItem::Future) {
1869                let self_ty = self.tcx.short_string(self_ty, long_ty_path);
1870                let expected_ty = self.tcx.short_string(expected_ty, long_ty_path);
1871                let normalized_ty = self.tcx.short_string(normalized_ty, long_ty_path);
1872                Some((format!(
1873                    "expected `{self_ty}` to be a future that resolves to `{expected_ty}`, but it \
1874                     resolves to `{normalized_ty}`"
1875                ), span, None))
1876            } else if Some(trait_def_id) == self.tcx.get_diagnostic_item(sym::Iterator) {
1877                let self_ty = self.tcx.short_string(self_ty, long_ty_path);
1878                let expected_ty = self.tcx.short_string(expected_ty, long_ty_path);
1879                let normalized_ty = self.tcx.short_string(normalized_ty, long_ty_path);
1880                Some((format!(
1881                    "expected `{self_ty}` to be an iterator that yields `{expected_ty}`, but it \
1882                     yields `{normalized_ty}`"
1883                ), span, None))
1884            } else {
1885                None
1886            }
1887        }
1888    }
1889
1890    pub fn fuzzy_match_tys(
1891        &self,
1892        mut a: Ty<'tcx>,
1893        mut b: Ty<'tcx>,
1894        ignoring_lifetimes: bool,
1895    ) -> Option<CandidateSimilarity> {
1896        /// returns the fuzzy category of a given type, or None
1897        /// if the type can be equated to any type.
1898        fn type_category(tcx: TyCtxt<'_>, t: Ty<'_>) -> Option<u32> {
1899            match t.kind() {
1900                ty::Bool => Some(0),
1901                ty::Char => Some(1),
1902                ty::Str => Some(2),
1903                ty::Adt(def, _) if tcx.is_lang_item(def.did(), LangItem::String) => Some(2),
1904                ty::Int(..)
1905                | ty::Uint(..)
1906                | ty::Float(..)
1907                | ty::Infer(ty::IntVar(..) | ty::FloatVar(..)) => Some(4),
1908                ty::Ref(..) | ty::RawPtr(..) => Some(5),
1909                ty::Array(..) | ty::Slice(..) => Some(6),
1910                ty::FnDef(..) | ty::FnPtr(..) => Some(7),
1911                ty::Dynamic(..) => Some(8),
1912                ty::Closure(..) => Some(9),
1913                ty::Tuple(..) => Some(10),
1914                ty::Param(..) => Some(11),
1915                ty::Alias(ty::AliasTy { kind: ty::Projection { .. }, .. }) => Some(12),
1916                ty::Alias(ty::AliasTy { kind: ty::Inherent { .. }, .. }) => Some(13),
1917                ty::Alias(ty::AliasTy { kind: ty::Opaque { .. }, .. }) => Some(14),
1918                ty::Alias(ty::AliasTy { kind: ty::Free { .. }, .. }) => Some(15),
1919                ty::Never => Some(16),
1920                ty::Adt(..) => Some(17),
1921                ty::Coroutine(..) => Some(18),
1922                ty::Foreign(..) => Some(19),
1923                ty::CoroutineWitness(..) => Some(20),
1924                ty::CoroutineClosure(..) => Some(21),
1925                ty::Pat(..) => Some(22),
1926                ty::UnsafeBinder(..) => Some(23),
1927                ty::Placeholder(..) | ty::Bound(..) | ty::Infer(..) | ty::Error(_) => None,
1928            }
1929        }
1930
1931        let strip_references = |mut t: Ty<'tcx>| -> Ty<'tcx> {
1932            loop {
1933                match t.kind() {
1934                    ty::Ref(_, inner, _) | ty::RawPtr(inner, _) => t = *inner,
1935                    _ => break t,
1936                }
1937            }
1938        };
1939
1940        if !ignoring_lifetimes {
1941            a = strip_references(a);
1942            b = strip_references(b);
1943        }
1944
1945        let cat_a = type_category(self.tcx, a)?;
1946        let cat_b = type_category(self.tcx, b)?;
1947        if a == b {
1948            Some(CandidateSimilarity::Exact { ignoring_lifetimes })
1949        } else if cat_a == cat_b {
1950            match (a.kind(), b.kind()) {
1951                (ty::Adt(def_a, _), ty::Adt(def_b, _)) => def_a == def_b,
1952                (ty::Foreign(def_a), ty::Foreign(def_b)) => def_a == def_b,
1953                // Matching on references results in a lot of unhelpful
1954                // suggestions, so let's just not do that for now.
1955                //
1956                // We still upgrade successful matches to `ignoring_lifetimes: true`
1957                // to prioritize that impl.
1958                (ty::Ref(..) | ty::RawPtr(..), ty::Ref(..) | ty::RawPtr(..)) => {
1959                    self.fuzzy_match_tys(a, b, true).is_some()
1960                }
1961                _ => true,
1962            }
1963            .then_some(CandidateSimilarity::Fuzzy { ignoring_lifetimes })
1964        } else if ignoring_lifetimes {
1965            None
1966        } else {
1967            self.fuzzy_match_tys(a, b, true)
1968        }
1969    }
1970
1971    pub(super) fn describe_closure(&self, kind: hir::ClosureKind) -> &'static str {
1972        match kind {
1973            hir::ClosureKind::Closure => "a closure",
1974            hir::ClosureKind::Coroutine(hir::CoroutineKind::Coroutine(_)) => "a coroutine",
1975            hir::ClosureKind::Coroutine(hir::CoroutineKind::Desugared(
1976                hir::CoroutineDesugaring::Async,
1977                hir::CoroutineSource::Block,
1978            )) => "an async block",
1979            hir::ClosureKind::Coroutine(hir::CoroutineKind::Desugared(
1980                hir::CoroutineDesugaring::Async,
1981                hir::CoroutineSource::Fn,
1982            )) => "an async function",
1983            hir::ClosureKind::Coroutine(hir::CoroutineKind::Desugared(
1984                hir::CoroutineDesugaring::Async,
1985                hir::CoroutineSource::Closure,
1986            ))
1987            | hir::ClosureKind::CoroutineClosure(hir::CoroutineDesugaring::Async) => {
1988                "an async closure"
1989            }
1990            hir::ClosureKind::Coroutine(hir::CoroutineKind::Desugared(
1991                hir::CoroutineDesugaring::AsyncGen,
1992                hir::CoroutineSource::Block,
1993            )) => "an async gen block",
1994            hir::ClosureKind::Coroutine(hir::CoroutineKind::Desugared(
1995                hir::CoroutineDesugaring::AsyncGen,
1996                hir::CoroutineSource::Fn,
1997            )) => "an async gen function",
1998            hir::ClosureKind::Coroutine(hir::CoroutineKind::Desugared(
1999                hir::CoroutineDesugaring::AsyncGen,
2000                hir::CoroutineSource::Closure,
2001            ))
2002            | hir::ClosureKind::CoroutineClosure(hir::CoroutineDesugaring::AsyncGen) => {
2003                "an async gen closure"
2004            }
2005            hir::ClosureKind::Coroutine(hir::CoroutineKind::Desugared(
2006                hir::CoroutineDesugaring::Gen,
2007                hir::CoroutineSource::Block,
2008            )) => "a gen block",
2009            hir::ClosureKind::Coroutine(hir::CoroutineKind::Desugared(
2010                hir::CoroutineDesugaring::Gen,
2011                hir::CoroutineSource::Fn,
2012            )) => "a gen function",
2013            hir::ClosureKind::Coroutine(hir::CoroutineKind::Desugared(
2014                hir::CoroutineDesugaring::Gen,
2015                hir::CoroutineSource::Closure,
2016            ))
2017            | hir::ClosureKind::CoroutineClosure(hir::CoroutineDesugaring::Gen) => "a gen closure",
2018        }
2019    }
2020
2021    pub(super) fn find_similar_impl_candidates(
2022        &self,
2023        trait_pred: ty::PolyTraitPredicate<'tcx>,
2024    ) -> Vec<ImplCandidate<'tcx>> {
2025        let mut candidates: Vec<_> = self
2026            .tcx
2027            .all_impls(trait_pred.def_id())
2028            .filter_map(|def_id| {
2029                let imp = self.tcx.impl_trait_header(def_id);
2030                if imp.polarity != ty::ImplPolarity::Positive
2031                    || !self.tcx.is_user_visible_dep(def_id.krate)
2032                {
2033                    return None;
2034                }
2035                let imp = imp.trait_ref.skip_binder();
2036
2037                self.fuzzy_match_tys(trait_pred.skip_binder().self_ty(), imp.self_ty(), false).map(
2038                    |similarity| ImplCandidate { trait_ref: imp, similarity, impl_def_id: def_id },
2039                )
2040            })
2041            .collect();
2042        if candidates.iter().any(|c| #[allow(non_exhaustive_omitted_patterns)] match c.similarity {
    CandidateSimilarity::Exact { .. } => true,
    _ => false,
}matches!(c.similarity, CandidateSimilarity::Exact { .. })) {
2043            // If any of the candidates is a perfect match, we don't want to show all of them.
2044            // This is particularly relevant for the case of numeric types (as they all have the
2045            // same category).
2046            candidates.retain(|c| #[allow(non_exhaustive_omitted_patterns)] match c.similarity {
    CandidateSimilarity::Exact { .. } => true,
    _ => false,
}matches!(c.similarity, CandidateSimilarity::Exact { .. }));
2047        }
2048        candidates
2049    }
2050
2051    pub(super) fn report_similar_impl_candidates(
2052        &self,
2053        impl_candidates: &[ImplCandidate<'tcx>],
2054        obligation: &PredicateObligation<'tcx>,
2055        trait_pred: ty::PolyTraitPredicate<'tcx>,
2056        body_def_id: LocalDefId,
2057        err: &mut Diag<'_>,
2058        other: bool,
2059        param_env: ty::ParamEnv<'tcx>,
2060    ) -> bool {
2061        let parent_map = self.tcx.visible_parent_map(());
2062        let alternative_candidates = |def_id: DefId| {
2063            let mut impl_candidates: Vec<_> = self
2064                .tcx
2065                .all_impls(def_id)
2066                // ignore `do_not_recommend` items
2067                .filter(|def_id| !self.tcx.do_not_recommend_impl(*def_id))
2068                // Ignore automatically derived impls and `!Trait` impls.
2069                .map(|def_id| (self.tcx.impl_trait_header(def_id), def_id))
2070                .filter_map(|(header, def_id)| {
2071                    (header.polarity == ty::ImplPolarity::Positive
2072                        || self.tcx.is_automatically_derived(def_id))
2073                    .then(|| (header.trait_ref.instantiate_identity().skip_norm_wip(), def_id))
2074                })
2075                .filter(|(trait_ref, _)| {
2076                    let self_ty = trait_ref.self_ty();
2077                    // Avoid mentioning type parameters.
2078                    if let ty::Param(_) = self_ty.kind() {
2079                        false
2080                    }
2081                    // Avoid mentioning types that are private to another crate
2082                    else if let ty::Adt(def, _) = self_ty.peel_refs().kind() {
2083                        // FIXME(compiler-errors): This could be generalized, both to
2084                        // be more granular, and probably look past other `#[fundamental]`
2085                        // types, too.
2086                        let mut did = def.did();
2087                        if self.tcx.visibility(did).is_accessible_from(body_def_id, self.tcx) {
2088                            // don't suggest foreign `#[doc(hidden)]` types
2089                            if !did.is_local() {
2090                                let mut previously_seen_dids: FxHashSet<DefId> = Default::default();
2091                                previously_seen_dids.insert(did);
2092                                while let Some(&parent) = parent_map.get(&did)
2093                                    && let hash_set::Entry::Vacant(v) =
2094                                        previously_seen_dids.entry(parent)
2095                                {
2096                                    if self.tcx.is_doc_hidden(did) {
2097                                        return false;
2098                                    }
2099                                    v.insert();
2100                                    did = parent;
2101                                }
2102                            }
2103                            true
2104                        } else {
2105                            false
2106                        }
2107                    } else {
2108                        true
2109                    }
2110                })
2111                .collect();
2112
2113            impl_candidates.sort_by_key(|(tr, _)| tr.to_string());
2114            impl_candidates.dedup();
2115            impl_candidates
2116        };
2117
2118        if let [single] = &impl_candidates {
2119            let self_ty = trait_pred.skip_binder().self_ty();
2120            if !self_ty.has_escaping_bound_vars() {
2121                let self_ty = self.tcx.instantiate_bound_regions_with_erased(trait_pred.self_ty());
2122                if let ty::Ref(_, inner_ty, _) = self_ty.kind()
2123                    && self.can_eq(param_env, single.trait_ref.self_ty(), *inner_ty)
2124                    && !self.where_clause_expr_matches_failed_self_ty(obligation, self_ty)
2125                {
2126                    // Avoid pointing at a nearby impl like `String: Borrow<str>` when the
2127                    // failing obligation comes from something nested inside an enclosing call
2128                    // expression such as `foo(&[String::from("a")])`.
2129                    return true;
2130                }
2131            }
2132
2133            // If we have a single implementation, try to unify it with the trait ref
2134            // that failed. This should uncover a better hint for what *is* implemented.
2135            if self.probe(|_| {
2136                let ocx = ObligationCtxt::new(self);
2137
2138                self.enter_forall(trait_pred, |obligation_trait_ref| {
2139                    let impl_args = self.fresh_args_for_item(DUMMY_SP, single.impl_def_id);
2140                    let impl_trait_ref = ocx.normalize(
2141                        &ObligationCause::dummy(),
2142                        param_env,
2143                        ty::EarlyBinder::bind(single.trait_ref).instantiate(self.tcx, impl_args),
2144                    );
2145
2146                    ocx.register_obligations(
2147                        self.tcx
2148                            .predicates_of(single.impl_def_id)
2149                            .instantiate(self.tcx, impl_args)
2150                            .into_iter()
2151                            .map(|(clause, _)| {
2152                                Obligation::new(
2153                                    self.tcx,
2154                                    ObligationCause::dummy(),
2155                                    param_env,
2156                                    clause.skip_norm_wip(),
2157                                )
2158                            }),
2159                    );
2160                    if !ocx.try_evaluate_obligations().is_empty() {
2161                        return false;
2162                    }
2163
2164                    let mut terrs = ::alloc::vec::Vec::new()vec![];
2165                    for (obligation_arg, impl_arg) in
2166                        std::iter::zip(obligation_trait_ref.trait_ref.args, impl_trait_ref.args)
2167                    {
2168                        if (obligation_arg, impl_arg).references_error() {
2169                            return false;
2170                        }
2171                        if let Err(terr) =
2172                            ocx.eq(&ObligationCause::dummy(), param_env, impl_arg, obligation_arg)
2173                        {
2174                            terrs.push(terr);
2175                        }
2176                        if !ocx.try_evaluate_obligations().is_empty() {
2177                            return false;
2178                        }
2179                    }
2180
2181                    // Literally nothing unified, just give up.
2182                    if terrs.len() == impl_trait_ref.args.len() {
2183                        return false;
2184                    }
2185
2186                    let impl_trait_ref = self.resolve_vars_if_possible(impl_trait_ref);
2187                    if impl_trait_ref.references_error() {
2188                        return false;
2189                    }
2190
2191                    if let [child, ..] = &err.children[..]
2192                        && child.level == Level::Help
2193                        && let Some(line) = child.messages.get(0)
2194                        && let Some(line) = line.0.as_str()
2195                        && line.starts_with("the trait")
2196                        && line.contains("is not implemented for")
2197                    {
2198                        // HACK(estebank): we remove the pre-existing
2199                        // "the trait `X` is not implemented for" note, which only happens if there
2200                        // was a custom label. We do this because we want that note to always be the
2201                        // first, and making this logic run earlier will get tricky. For now, we
2202                        // instead keep the logic the same and modify the already constructed error
2203                        // to avoid the wording duplication.
2204                        err.children.remove(0);
2205                    }
2206
2207                    let traits = self.cmp_traits(
2208                        obligation_trait_ref.def_id(),
2209                        &obligation_trait_ref.trait_ref.args[1..],
2210                        impl_trait_ref.def_id,
2211                        &impl_trait_ref.args[1..],
2212                    );
2213                    let traits_content = (traits.0.content(), traits.1.content());
2214                    let types = self.cmp(obligation_trait_ref.self_ty(), impl_trait_ref.self_ty());
2215                    let types_content = (types.0.content(), types.1.content());
2216                    let mut msg = ::alloc::boxed::box_assume_init_into_vec_unsafe(::alloc::intrinsics::write_box_via_move(::alloc::boxed::Box::new_uninit(),
        [StringPart::normal("the trait `")]))vec![StringPart::normal("the trait `")];
2217                    if traits_content.0 == traits_content.1 {
2218                        msg.push(StringPart::normal(
2219                            impl_trait_ref.print_trait_sugared().to_string(),
2220                        ));
2221                    } else {
2222                        msg.extend(traits.0.0);
2223                    }
2224                    msg.extend([
2225                        StringPart::normal("` "),
2226                        StringPart::highlighted("is not"),
2227                        StringPart::normal(" implemented for `"),
2228                    ]);
2229                    if types_content.0 == types_content.1 {
2230                        let ty = self
2231                            .tcx
2232                            .short_string(obligation_trait_ref.self_ty(), err.long_ty_path());
2233                        msg.push(StringPart::normal(ty));
2234                    } else {
2235                        msg.extend(types.0.0);
2236                    }
2237                    msg.push(StringPart::normal("`"));
2238                    if types_content.0 == types_content.1 {
2239                        msg.push(StringPart::normal("\nbut trait `"));
2240                        msg.extend(traits.1.0);
2241                        msg.extend([
2242                            StringPart::normal("` "),
2243                            StringPart::highlighted("is"),
2244                            StringPart::normal(" implemented for it"),
2245                        ]);
2246                    } else if traits_content.0 == traits_content.1 {
2247                        msg.extend([
2248                            StringPart::normal("\nbut it "),
2249                            StringPart::highlighted("is"),
2250                            StringPart::normal(" implemented for `"),
2251                        ]);
2252                        msg.extend(types.1.0);
2253                        msg.push(StringPart::normal("`"));
2254                    } else {
2255                        msg.push(StringPart::normal("\nbut trait `"));
2256                        msg.extend(traits.1.0);
2257                        msg.extend([
2258                            StringPart::normal("` "),
2259                            StringPart::highlighted("is"),
2260                            StringPart::normal(" implemented for `"),
2261                        ]);
2262                        msg.extend(types.1.0);
2263                        msg.push(StringPart::normal("`"));
2264                    }
2265                    err.highlighted_span_help(self.tcx.def_span(single.impl_def_id), msg);
2266
2267                    if let [TypeError::Sorts(exp_found)] = &terrs[..] {
2268                        let exp_found = self.resolve_vars_if_possible(*exp_found);
2269                        let expected =
2270                            self.tcx.short_string(exp_found.expected, err.long_ty_path());
2271                        let found = self.tcx.short_string(exp_found.found, err.long_ty_path());
2272                        err.highlighted_help(::alloc::boxed::box_assume_init_into_vec_unsafe(::alloc::intrinsics::write_box_via_move(::alloc::boxed::Box::new_uninit(),
        [StringPart::normal("for that trait implementation, "),
                StringPart::normal("expected `"),
                StringPart::highlighted(expected),
                StringPart::normal("`, found `"),
                StringPart::highlighted(found), StringPart::normal("`")]))vec![
2273                            StringPart::normal("for that trait implementation, "),
2274                            StringPart::normal("expected `"),
2275                            StringPart::highlighted(expected),
2276                            StringPart::normal("`, found `"),
2277                            StringPart::highlighted(found),
2278                            StringPart::normal("`"),
2279                        ]);
2280                        self.suggest_function_pointers_impl(None, &exp_found, err);
2281                    }
2282
2283                    if let ty::Adt(def, _) = trait_pred.self_ty().skip_binder().peel_refs().kind()
2284                        && let crates = self.tcx.duplicate_crate_names(def.did().krate)
2285                        && !crates.is_empty()
2286                    {
2287                        self.note_two_crate_versions(def.did().krate, MultiSpan::new(), err);
2288                        err.help("you can use `cargo tree` to explore your dependency tree");
2289                    }
2290                    true
2291                })
2292            }) {
2293                return true;
2294            }
2295        }
2296
2297        let other = if other { "other " } else { "" };
2298        let report = |mut candidates: Vec<(TraitRef<'tcx>, DefId)>, err: &mut Diag<'_>| {
2299            candidates.retain(|(tr, _)| !tr.references_error());
2300            if candidates.is_empty() {
2301                return false;
2302            }
2303            let mut specific_candidates = candidates.clone();
2304            specific_candidates.retain(|(tr, _)| {
2305                tr.with_replaced_self_ty(self.tcx, trait_pred.skip_binder().self_ty())
2306                    == trait_pred.skip_binder().trait_ref
2307            });
2308            if !specific_candidates.is_empty() {
2309                // We have found a subset of impls that fully satisfy the expected trait, only
2310                // mention those types.
2311                candidates = specific_candidates;
2312            }
2313            if let &[(cand, def_id)] = &candidates[..] {
2314                if self.tcx.is_diagnostic_item(sym::FromResidual, cand.def_id)
2315                    && !self.tcx.features().enabled(sym::try_trait_v2)
2316                {
2317                    return false;
2318                }
2319                let (desc, mention_castable) =
2320                    match (cand.self_ty().kind(), trait_pred.self_ty().skip_binder().kind()) {
2321                        (ty::FnPtr(..), ty::FnDef(..)) => {
2322                            (" implemented for fn pointer `", ", cast using `as`")
2323                        }
2324                        (ty::FnPtr(..), _) => (" implemented for fn pointer `", ""),
2325                        _ => (" implemented for `", ""),
2326                    };
2327                let trait_ = self.tcx.short_string(cand.print_trait_sugared(), err.long_ty_path());
2328                let self_ty = self.tcx.short_string(cand.self_ty(), err.long_ty_path());
2329                err.highlighted_span_help(
2330                    self.tcx.def_span(def_id),
2331                    ::alloc::boxed::box_assume_init_into_vec_unsafe(::alloc::intrinsics::write_box_via_move(::alloc::boxed::Box::new_uninit(),
        [StringPart::normal(::alloc::__export::must_use({
                            ::alloc::fmt::format(format_args!("the trait `{0}` ",
                                    trait_))
                        })), StringPart::highlighted("is"),
                StringPart::normal(desc), StringPart::highlighted(self_ty),
                StringPart::normal("`"),
                StringPart::normal(mention_castable)]))vec![
2332                        StringPart::normal(format!("the trait `{trait_}` ")),
2333                        StringPart::highlighted("is"),
2334                        StringPart::normal(desc),
2335                        StringPart::highlighted(self_ty),
2336                        StringPart::normal("`"),
2337                        StringPart::normal(mention_castable),
2338                    ],
2339                );
2340                return true;
2341            }
2342            let trait_ref = TraitRef::identity(self.tcx, candidates[0].0.def_id);
2343            // Check if the trait is the same in all cases. If so, we'll only show the type.
2344            let mut traits: Vec<_> =
2345                candidates.iter().map(|(c, _)| c.print_only_trait_path().to_string()).collect();
2346            traits.sort();
2347            traits.dedup();
2348            // FIXME: this could use a better heuristic, like just checking
2349            // that args[1..] is the same.
2350            let all_traits_equal = traits.len() == 1;
2351            let mut types: Vec<_> =
2352                candidates.iter().map(|(c, _)| c.self_ty().to_string()).collect();
2353            types.sort();
2354            types.dedup();
2355            let all_types_equal = types.len() == 1;
2356
2357            let end = if candidates.len() <= 9 || self.tcx.sess.opts.verbose {
2358                candidates.len()
2359            } else {
2360                8
2361            };
2362            if candidates.len() < 5 {
2363                let spans: Vec<_> =
2364                    candidates.iter().map(|&(_, def_id)| self.tcx.def_span(def_id)).collect();
2365                let mut span: MultiSpan = spans.into();
2366                for (c, def_id) in &candidates {
2367                    let msg = if all_traits_equal {
2368                        ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("`{0}`",
                self.tcx.short_string(c.self_ty(), err.long_ty_path())))
    })format!("`{}`", self.tcx.short_string(c.self_ty(), err.long_ty_path()))
2369                    } else if all_types_equal {
2370                        ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("`{0}`",
                self.tcx.short_string(c.print_only_trait_path(),
                    err.long_ty_path())))
    })format!(
2371                            "`{}`",
2372                            self.tcx.short_string(c.print_only_trait_path(), err.long_ty_path())
2373                        )
2374                    } else {
2375                        ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("`{0}` implements `{1}`",
                self.tcx.short_string(c.self_ty(), err.long_ty_path()),
                self.tcx.short_string(c.print_only_trait_path(),
                    err.long_ty_path())))
    })format!(
2376                            "`{}` implements `{}`",
2377                            self.tcx.short_string(c.self_ty(), err.long_ty_path()),
2378                            self.tcx.short_string(c.print_only_trait_path(), err.long_ty_path()),
2379                        )
2380                    };
2381                    span.push_span_label(self.tcx.def_span(*def_id), msg);
2382                }
2383                let msg = if all_types_equal {
2384                    ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("`{0}` implements trait `{1}`",
                self.tcx.short_string(candidates[0].0.self_ty(),
                    err.long_ty_path()),
                self.tcx.short_string(trait_ref.print_trait_sugared(),
                    err.long_ty_path())))
    })format!(
2385                        "`{}` implements trait `{}`",
2386                        self.tcx.short_string(candidates[0].0.self_ty(), err.long_ty_path()),
2387                        self.tcx.short_string(trait_ref.print_trait_sugared(), err.long_ty_path()),
2388                    )
2389                } else {
2390                    ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("the following {1}types implement trait `{0}`",
                self.tcx.short_string(trait_ref.print_trait_sugared(),
                    err.long_ty_path()), other))
    })format!(
2391                        "the following {other}types implement trait `{}`",
2392                        self.tcx.short_string(trait_ref.print_trait_sugared(), err.long_ty_path()),
2393                    )
2394                };
2395                err.span_help(span, msg);
2396            } else {
2397                let candidate_names: Vec<String> = candidates
2398                    .iter()
2399                    .map(|(c, _)| {
2400                        if all_traits_equal {
2401                            ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("\n  {0}",
                self.tcx.short_string(c.self_ty(), err.long_ty_path())))
    })format!(
2402                                "\n  {}",
2403                                self.tcx.short_string(c.self_ty(), err.long_ty_path())
2404                            )
2405                        } else if all_types_equal {
2406                            ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("\n  {0}",
                self.tcx.short_string(c.print_only_trait_path(),
                    err.long_ty_path())))
    })format!(
2407                                "\n  {}",
2408                                self.tcx
2409                                    .short_string(c.print_only_trait_path(), err.long_ty_path())
2410                            )
2411                        } else {
2412                            ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("\n  `{0}` implements `{1}`",
                self.tcx.short_string(c.self_ty(), err.long_ty_path()),
                self.tcx.short_string(c.print_only_trait_path(),
                    err.long_ty_path())))
    })format!(
2413                                "\n  `{}` implements `{}`",
2414                                self.tcx.short_string(c.self_ty(), err.long_ty_path()),
2415                                self.tcx
2416                                    .short_string(c.print_only_trait_path(), err.long_ty_path()),
2417                            )
2418                        }
2419                    })
2420                    .collect();
2421                let msg = if all_types_equal {
2422                    ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("`{0}` implements trait `{1}`",
                self.tcx.short_string(candidates[0].0.self_ty(),
                    err.long_ty_path()),
                self.tcx.short_string(trait_ref.print_trait_sugared(),
                    err.long_ty_path())))
    })format!(
2423                        "`{}` implements trait `{}`",
2424                        self.tcx.short_string(candidates[0].0.self_ty(), err.long_ty_path()),
2425                        self.tcx.short_string(trait_ref.print_trait_sugared(), err.long_ty_path()),
2426                    )
2427                } else {
2428                    ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("the following {1}types implement trait `{0}`",
                self.tcx.short_string(trait_ref.print_trait_sugared(),
                    err.long_ty_path()), other))
    })format!(
2429                        "the following {other}types implement trait `{}`",
2430                        self.tcx.short_string(trait_ref.print_trait_sugared(), err.long_ty_path()),
2431                    )
2432                };
2433
2434                err.help(::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("{2}:{0}{1}",
                candidate_names[..end].join(""),
                if candidates.len() > 9 && !self.tcx.sess.opts.verbose {
                    ::alloc::__export::must_use({
                            ::alloc::fmt::format(format_args!("\nand {0} others",
                                    candidates.len() - 8))
                        })
                } else { String::new() }, msg))
    })format!(
2435                    "{msg}:{}{}",
2436                    candidate_names[..end].join(""),
2437                    if candidates.len() > 9 && !self.tcx.sess.opts.verbose {
2438                        format!("\nand {} others", candidates.len() - 8)
2439                    } else {
2440                        String::new()
2441                    }
2442                ));
2443            }
2444
2445            if let ty::Adt(def, _) = trait_pred.self_ty().skip_binder().peel_refs().kind()
2446                && let crates = self.tcx.duplicate_crate_names(def.did().krate)
2447                && !crates.is_empty()
2448            {
2449                self.note_two_crate_versions(def.did().krate, MultiSpan::new(), err);
2450                err.help("you can use `cargo tree` to explore your dependency tree");
2451            }
2452            true
2453        };
2454
2455        // we filter before checking if `impl_candidates` is empty
2456        // to get the fallback solution if we filtered out any impls
2457        let impl_candidates = impl_candidates
2458            .into_iter()
2459            .cloned()
2460            .filter(|cand| !self.tcx.do_not_recommend_impl(cand.impl_def_id))
2461            .collect::<Vec<_>>();
2462
2463        let def_id = trait_pred.def_id();
2464        if impl_candidates.is_empty() {
2465            if self.tcx.trait_is_auto(def_id)
2466                || self.tcx.lang_items().iter().any(|(_, id)| id == def_id)
2467                || self.tcx.get_diagnostic_name(def_id).is_some()
2468            {
2469                // Mentioning implementers of `Copy`, `Debug` and friends is not useful.
2470                return false;
2471            }
2472            return report(alternative_candidates(def_id), err);
2473        }
2474
2475        // Sort impl candidates so that ordering is consistent for UI tests.
2476        // because the ordering of `impl_candidates` may not be deterministic:
2477        // https://github.com/rust-lang/rust/pull/57475#issuecomment-455519507
2478        //
2479        // Prefer more similar candidates first, then sort lexicographically
2480        // by their normalized string representation.
2481        let mut impl_candidates: Vec<_> = impl_candidates
2482            .iter()
2483            .cloned()
2484            .filter(|cand| !cand.trait_ref.references_error())
2485            .map(|mut cand| {
2486                // Normalize the trait ref in its *own* param-env so
2487                // that consts are folded and any trivial projections
2488                // are normalized.
2489                cand.trait_ref = self
2490                    .tcx
2491                    .try_normalize_erasing_regions(
2492                        ty::TypingEnv::non_body_analysis(self.tcx, cand.impl_def_id),
2493                        Unnormalized::new_wip(cand.trait_ref),
2494                    )
2495                    .unwrap_or(cand.trait_ref);
2496                cand
2497            })
2498            .collect();
2499        impl_candidates.sort_by_key(|cand| {
2500            // When suggesting array types, sort them by the length of the array, not lexicographically (#135098)
2501            let len = if let GenericArgKind::Type(ty) = cand.trait_ref.args[0].kind()
2502                && let ty::Array(_, len) = ty.kind()
2503            {
2504                // Deprioritize suggestions for parameterized arrays.
2505                len.try_to_target_usize(self.tcx).unwrap_or(u64::MAX)
2506            } else {
2507                0
2508            };
2509
2510            (cand.similarity, len, cand.trait_ref.to_string())
2511        });
2512        let mut impl_candidates: Vec<_> =
2513            impl_candidates.into_iter().map(|cand| (cand.trait_ref, cand.impl_def_id)).collect();
2514        impl_candidates.dedup();
2515
2516        report(impl_candidates, err)
2517    }
2518
2519    fn report_similar_impl_candidates_for_root_obligation(
2520        &self,
2521        obligation: &PredicateObligation<'tcx>,
2522        trait_predicate: ty::Binder<'tcx, ty::TraitPredicate<'tcx>>,
2523        body_def_id: LocalDefId,
2524        err: &mut Diag<'_>,
2525    ) {
2526        // This is *almost* equivalent to
2527        // `obligation.cause.code().peel_derives()`, but it gives us the
2528        // trait predicate for that corresponding root obligation. This
2529        // lets us get a derived obligation from a type parameter, like
2530        // when calling `string.strip_suffix(p)` where `p` is *not* an
2531        // implementer of `Pattern<'_>`.
2532        let mut code = obligation.cause.code();
2533        let mut trait_pred = trait_predicate;
2534        let mut peeled = false;
2535        while let Some((parent_code, parent_trait_pred)) = code.parent_with_predicate() {
2536            code = parent_code;
2537            if let Some(parent_trait_pred) = parent_trait_pred {
2538                trait_pred = parent_trait_pred;
2539                peeled = true;
2540            }
2541        }
2542        let def_id = trait_pred.def_id();
2543        // Mention *all* the `impl`s for the *top most* obligation, the
2544        // user might have meant to use one of them, if any found. We skip
2545        // auto-traits or fundamental traits that might not be exactly what
2546        // the user might expect to be presented with. Instead this is
2547        // useful for less general traits.
2548        if peeled && !self.tcx.trait_is_auto(def_id) && self.tcx.as_lang_item(def_id).is_none() {
2549            let impl_candidates = self.find_similar_impl_candidates(trait_pred);
2550            self.report_similar_impl_candidates(
2551                &impl_candidates,
2552                obligation,
2553                trait_pred,
2554                body_def_id,
2555                err,
2556                true,
2557                obligation.param_env,
2558            );
2559        }
2560    }
2561
2562    /// Gets the parent trait chain start
2563    fn get_parent_trait_ref(
2564        &self,
2565        code: &ObligationCauseCode<'tcx>,
2566    ) -> Option<(Ty<'tcx>, Option<Span>)> {
2567        match code {
2568            ObligationCauseCode::BuiltinDerived(data) => {
2569                let parent_trait_ref = self.resolve_vars_if_possible(data.parent_trait_pred);
2570                match self.get_parent_trait_ref(&data.parent_code) {
2571                    Some(t) => Some(t),
2572                    None => {
2573                        let ty = parent_trait_ref.skip_binder().self_ty();
2574                        let span = TyCategory::from_ty(self.tcx, ty)
2575                            .map(|(_, def_id)| self.tcx.def_span(def_id));
2576                        Some((ty, span))
2577                    }
2578                }
2579            }
2580            ObligationCauseCode::FunctionArg { parent_code, .. } => {
2581                self.get_parent_trait_ref(parent_code)
2582            }
2583            _ => None,
2584        }
2585    }
2586
2587    fn check_same_trait_different_version(
2588        &self,
2589        err: &mut Diag<'_>,
2590        trait_pred: ty::PolyTraitPredicate<'tcx>,
2591    ) -> bool {
2592        let get_trait_impls = |trait_def_id| {
2593            let mut trait_impls = ::alloc::vec::Vec::new()vec![];
2594            self.tcx.for_each_relevant_impl(
2595                trait_def_id,
2596                trait_pred.skip_binder().self_ty(),
2597                |impl_def_id| {
2598                    let impl_trait_header = self.tcx.impl_trait_header(impl_def_id);
2599                    trait_impls
2600                        .push(self.tcx.def_span(impl_trait_header.trait_ref.skip_binder().def_id));
2601                },
2602            );
2603            trait_impls
2604        };
2605        self.check_same_definition_different_crate(
2606            err,
2607            trait_pred.def_id(),
2608            self.tcx.visible_traits(),
2609            get_trait_impls,
2610            "trait",
2611        )
2612    }
2613
2614    pub fn note_two_crate_versions(
2615        &self,
2616        krate: CrateNum,
2617        sp: impl Into<MultiSpan>,
2618        err: &mut Diag<'_>,
2619    ) {
2620        let crate_name = self.tcx.crate_name(krate);
2621        let crate_msg = ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("there are multiple different versions of crate `{0}` in the dependency graph",
                crate_name))
    })format!(
2622            "there are multiple different versions of crate `{crate_name}` in the dependency graph"
2623        );
2624        err.span_note(sp, crate_msg);
2625    }
2626
2627    fn note_adt_version_mismatch(
2628        &self,
2629        err: &mut Diag<'_>,
2630        trait_pred: ty::PolyTraitPredicate<'tcx>,
2631    ) {
2632        let ty::Adt(impl_self_def, _) = trait_pred.self_ty().skip_binder().peel_refs().kind()
2633        else {
2634            return;
2635        };
2636
2637        let impl_self_did = impl_self_def.did();
2638
2639        // We only want to warn about different versions of a dependency.
2640        // If no dependency is involved, bail.
2641        if impl_self_did.krate == LOCAL_CRATE {
2642            return;
2643        }
2644
2645        let impl_self_path = self.comparable_path(impl_self_did);
2646        let impl_self_crate_name = self.tcx.crate_name(impl_self_did.krate);
2647        let similar_items: UnordSet<_> = self
2648            .tcx
2649            .visible_parent_map(())
2650            .items()
2651            .filter_map(|(&item, _)| {
2652                // If we found ourselves, ignore.
2653                if impl_self_did == item {
2654                    return None;
2655                }
2656                // We only want to warn about different versions of a dependency.
2657                // Ignore items from our own crate.
2658                if item.krate == LOCAL_CRATE {
2659                    return None;
2660                }
2661                // We want to warn about different versions of a dependency.
2662                // So make sure the crate names are the same.
2663                if impl_self_crate_name != self.tcx.crate_name(item.krate) {
2664                    return None;
2665                }
2666                // Filter out e.g. constructors that often have the same path
2667                // str as the relevant ADT.
2668                if !self.tcx.def_kind(item).is_adt() {
2669                    return None;
2670                }
2671                let path = self.comparable_path(item);
2672                // We don't know if our item or the one we found is the re-exported one.
2673                // Check both cases.
2674                let is_similar = path.ends_with(&impl_self_path) || impl_self_path.ends_with(&path);
2675                is_similar.then_some((item, path))
2676            })
2677            .collect();
2678
2679        let mut similar_items =
2680            similar_items.into_items().into_sorted_stable_ord_by_key(|(_, path)| path);
2681        similar_items.dedup();
2682
2683        for (similar_item, _) in similar_items {
2684            err.span_help(self.tcx.def_span(similar_item), "item with same name found");
2685            self.note_two_crate_versions(similar_item.krate, MultiSpan::new(), err);
2686        }
2687    }
2688
2689    fn check_same_name_different_path(
2690        &self,
2691        err: &mut Diag<'_>,
2692        obligation: &PredicateObligation<'tcx>,
2693        trait_pred: ty::PolyTraitPredicate<'tcx>,
2694    ) -> bool {
2695        let mut suggested = false;
2696        let trait_def_id = trait_pred.def_id();
2697        let trait_has_same_params = |other_trait_def_id: DefId| -> bool {
2698            let trait_generics = self.tcx.generics_of(trait_def_id);
2699            let other_trait_generics = self.tcx.generics_of(other_trait_def_id);
2700
2701            if trait_generics.count() != other_trait_generics.count() {
2702                return false;
2703            }
2704            trait_generics.own_params.iter().zip(other_trait_generics.own_params.iter()).all(
2705                |(a, b)| match (&a.kind, &b.kind) {
2706                    (ty::GenericParamDefKind::Lifetime, ty::GenericParamDefKind::Lifetime)
2707                    | (
2708                        ty::GenericParamDefKind::Type { .. },
2709                        ty::GenericParamDefKind::Type { .. },
2710                    )
2711                    | (
2712                        ty::GenericParamDefKind::Const { .. },
2713                        ty::GenericParamDefKind::Const { .. },
2714                    ) => true,
2715                    _ => false,
2716                },
2717            )
2718        };
2719        let trait_name = self.tcx.item_name(trait_def_id);
2720        if let Some(other_trait_def_id) = self.tcx.all_traits_including_private().find(|&def_id| {
2721            trait_def_id != def_id
2722                && trait_name == self.tcx.item_name(def_id)
2723                && trait_has_same_params(def_id)
2724                // `PointeeSized` is removed during lowering.
2725                && !self.tcx.is_lang_item(def_id, LangItem::PointeeSized)
2726                && self.predicate_must_hold_modulo_regions(&Obligation::new(
2727                    self.tcx,
2728                    obligation.cause.clone(),
2729                    obligation.param_env,
2730                    trait_pred.map_bound(|tr| ty::TraitPredicate {
2731                        trait_ref: ty::TraitRef::new(self.tcx, def_id, tr.trait_ref.args),
2732                        ..tr
2733                    }),
2734                ))
2735        }) {
2736            err.note(::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("`{0}` implements similarly named trait `{1}`, but not `{2}`",
                trait_pred.self_ty(),
                self.tcx.def_path_str(other_trait_def_id),
                trait_pred.print_modifiers_and_trait_path()))
    })format!(
2737                "`{}` implements similarly named trait `{}`, but not `{}`",
2738                trait_pred.self_ty(),
2739                self.tcx.def_path_str(other_trait_def_id),
2740                trait_pred.print_modifiers_and_trait_path()
2741            ));
2742            suggested = true;
2743        }
2744        suggested
2745    }
2746
2747    /// If the `Self` type of the unsatisfied trait `trait_ref` implements a trait
2748    /// with the same path as `trait_ref`, a help message about a multiple different
2749    /// versions of the same crate is added to `err`. Otherwise if it implements another
2750    /// trait with the same name, a note message about a similarly named trait is added to `err`.
2751    pub fn note_different_trait_with_same_name(
2752        &self,
2753        err: &mut Diag<'_>,
2754        obligation: &PredicateObligation<'tcx>,
2755        trait_pred: ty::PolyTraitPredicate<'tcx>,
2756    ) -> bool {
2757        if self.check_same_trait_different_version(err, trait_pred) {
2758            return true;
2759        }
2760        self.check_same_name_different_path(err, obligation, trait_pred)
2761    }
2762
2763    /// Add a `::` prefix when comparing paths so that paths with just one item
2764    /// like "Foo" does not equal the end of "OtherFoo".
2765    fn comparable_path(&self, did: DefId) -> String {
2766        ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("::{0}",
                self.tcx.def_path_str(did)))
    })format!("::{}", self.tcx.def_path_str(did))
2767    }
2768
2769    /// Creates a `PredicateObligation` with `new_self_ty` replacing the existing type in the
2770    /// `trait_ref`.
2771    ///
2772    /// For this to work, `new_self_ty` must have no escaping bound variables.
2773    pub(super) fn mk_trait_obligation_with_new_self_ty(
2774        &self,
2775        param_env: ty::ParamEnv<'tcx>,
2776        trait_ref_and_ty: ty::Binder<'tcx, (ty::TraitPredicate<'tcx>, Ty<'tcx>)>,
2777    ) -> PredicateObligation<'tcx> {
2778        let trait_pred = trait_ref_and_ty
2779            .map_bound(|(tr, new_self_ty)| tr.with_replaced_self_ty(self.tcx, new_self_ty));
2780
2781        Obligation::new(self.tcx, ObligationCause::dummy(), param_env, trait_pred)
2782    }
2783
2784    /// Returns `true` if the trait predicate may apply for *some* assignment
2785    /// to the type parameters.
2786    fn predicate_can_apply(
2787        &self,
2788        param_env: ty::ParamEnv<'tcx>,
2789        pred: impl Upcast<TyCtxt<'tcx>, ty::Predicate<'tcx>> + TypeFoldable<TyCtxt<'tcx>>,
2790    ) -> bool {
2791        struct ParamToVarFolder<'a, 'tcx> {
2792            infcx: &'a InferCtxt<'tcx>,
2793            var_map: FxHashMap<Ty<'tcx>, Ty<'tcx>>,
2794        }
2795
2796        impl<'a, 'tcx> TypeFolder<TyCtxt<'tcx>> for ParamToVarFolder<'a, 'tcx> {
2797            fn cx(&self) -> TyCtxt<'tcx> {
2798                self.infcx.tcx
2799            }
2800
2801            fn fold_ty(&mut self, ty: Ty<'tcx>) -> Ty<'tcx> {
2802                if let ty::Param(_) = *ty.kind() {
2803                    let infcx = self.infcx;
2804                    *self.var_map.entry(ty).or_insert_with(|| infcx.next_ty_var(DUMMY_SP))
2805                } else {
2806                    ty.super_fold_with(self)
2807                }
2808            }
2809        }
2810
2811        self.probe(|_| {
2812            let cleaned_pred =
2813                pred.fold_with(&mut ParamToVarFolder { infcx: self, var_map: Default::default() });
2814
2815            let InferOk { value: cleaned_pred, .. } = self
2816                .infcx
2817                .at(&ObligationCause::dummy(), param_env)
2818                .normalize(Unnormalized::new_wip(cleaned_pred));
2819
2820            let obligation =
2821                Obligation::new(self.tcx, ObligationCause::dummy(), param_env, cleaned_pred);
2822
2823            self.predicate_may_hold(&obligation)
2824        })
2825    }
2826
2827    pub fn note_obligation_cause(
2828        &self,
2829        err: &mut Diag<'_>,
2830        obligation: &PredicateObligation<'tcx>,
2831    ) {
2832        // First, attempt to add note to this error with an async-await-specific
2833        // message, and fall back to regular note otherwise.
2834        if !self.maybe_note_obligation_cause_for_async_await(err, obligation) {
2835            self.note_obligation_cause_code(
2836                obligation.cause.body_id,
2837                err,
2838                obligation.predicate,
2839                obligation.param_env,
2840                obligation.cause.code(),
2841                &mut ::alloc::vec::Vec::new()vec![],
2842                &mut Default::default(),
2843            );
2844            self.suggest_swapping_lhs_and_rhs(
2845                err,
2846                obligation.predicate,
2847                obligation.param_env,
2848                obligation.cause.code(),
2849            );
2850            self.suggest_borrow_for_unsized_closure_return(
2851                obligation.cause.body_id,
2852                err,
2853                obligation.predicate,
2854            );
2855            self.suggest_unsized_bound_if_applicable(err, obligation);
2856            if let Some(span) = err.span.primary_span()
2857                && let Some(mut diag) =
2858                    self.dcx().steal_non_err(span, StashKey::AssociatedTypeSuggestion)
2859                && let Suggestions::Enabled(ref mut s1) = err.suggestions
2860                && let Suggestions::Enabled(ref mut s2) = diag.suggestions
2861            {
2862                s1.append(s2);
2863                diag.cancel()
2864            }
2865        }
2866    }
2867
2868    pub(super) fn is_recursive_obligation(
2869        &self,
2870        obligated_types: &mut Vec<Ty<'tcx>>,
2871        cause_code: &ObligationCauseCode<'tcx>,
2872    ) -> bool {
2873        if let ObligationCauseCode::BuiltinDerived(data) = cause_code {
2874            let parent_trait_ref = self.resolve_vars_if_possible(data.parent_trait_pred);
2875            let self_ty = parent_trait_ref.skip_binder().self_ty();
2876            if obligated_types.iter().any(|ot| ot == &self_ty) {
2877                return true;
2878            }
2879            if let ty::Adt(def, args) = self_ty.kind()
2880                && let [arg] = &args[..]
2881                && let ty::GenericArgKind::Type(ty) = arg.kind()
2882                && let ty::Adt(inner_def, _) = ty.kind()
2883                && inner_def == def
2884            {
2885                return true;
2886            }
2887        }
2888        false
2889    }
2890
2891    fn get_standard_error_message(
2892        &self,
2893        trait_predicate: ty::PolyTraitPredicate<'tcx>,
2894        predicate_constness: Option<ty::BoundConstness>,
2895        post_message: String,
2896        long_ty_path: &mut Option<PathBuf>,
2897    ) -> String {
2898        ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("the trait bound `{0}` is not satisfied{1}",
                self.tcx.short_string(trait_predicate.print_with_bound_constness(predicate_constness),
                    long_ty_path), post_message))
    })format!(
2899            "the trait bound `{}` is not satisfied{post_message}",
2900            self.tcx.short_string(
2901                trait_predicate.print_with_bound_constness(predicate_constness),
2902                long_ty_path,
2903            ),
2904        )
2905    }
2906
2907    fn select_transmute_obligation_for_reporting(
2908        &self,
2909        obligation: &PredicateObligation<'tcx>,
2910        trait_predicate: ty::PolyTraitPredicate<'tcx>,
2911        root_obligation: &PredicateObligation<'tcx>,
2912    ) -> (PredicateObligation<'tcx>, ty::PolyTraitPredicate<'tcx>) {
2913        if obligation.predicate.has_non_region_param() || obligation.has_non_region_infer() {
2914            return (obligation.clone(), trait_predicate);
2915        }
2916
2917        let ocx = ObligationCtxt::new(self);
2918        let normalized_predicate = self.tcx.erase_and_anonymize_regions(
2919            self.tcx.instantiate_bound_regions_with_erased(trait_predicate),
2920        );
2921        let trait_ref = normalized_predicate.trait_ref;
2922
2923        let assume = ocx.normalize(
2924            &obligation.cause,
2925            obligation.param_env,
2926            Unnormalized::new_wip(trait_ref.args.const_at(2)),
2927        );
2928
2929        let Some(assume) = rustc_transmute::Assume::from_const(self.tcx, assume) else {
2930            return (obligation.clone(), trait_predicate);
2931        };
2932
2933        let is_normalized_yes = #[allow(non_exhaustive_omitted_patterns)] match rustc_transmute::TransmuteTypeEnv::new(self.tcx).is_transmutable(trait_ref.args.type_at(1),
        trait_ref.args.type_at(0), assume) {
    rustc_transmute::Answer::Yes => true,
    _ => false,
}matches!(
2934            rustc_transmute::TransmuteTypeEnv::new(self.tcx).is_transmutable(
2935                trait_ref.args.type_at(1),
2936                trait_ref.args.type_at(0),
2937                assume,
2938            ),
2939            rustc_transmute::Answer::Yes,
2940        );
2941
2942        // If the normalized check unexpectedly passes, fall back to root obligation for reporting.
2943        if is_normalized_yes
2944            && let ty::PredicateKind::Clause(ty::ClauseKind::Trait(root_pred)) =
2945                root_obligation.predicate.kind().skip_binder()
2946            && root_pred.def_id() == trait_predicate.def_id()
2947        {
2948            return (root_obligation.clone(), root_obligation.predicate.kind().rebind(root_pred));
2949        }
2950
2951        (obligation.clone(), trait_predicate)
2952    }
2953
2954    fn get_safe_transmute_error_and_reason(
2955        &self,
2956        obligation: PredicateObligation<'tcx>,
2957        trait_pred: ty::PolyTraitPredicate<'tcx>,
2958        span: Span,
2959    ) -> GetSafeTransmuteErrorAndReason {
2960        use rustc_transmute::Answer;
2961        self.probe(|_| {
2962            // We don't assemble a transmutability candidate for types that are generic
2963            // and we should have ambiguity for types that still have non-region infer.
2964            if obligation.predicate.has_non_region_param() || obligation.has_non_region_infer() {
2965                return GetSafeTransmuteErrorAndReason::Default;
2966            }
2967
2968            // Erase regions because layout code doesn't particularly care about regions.
2969            let trait_pred = self.tcx.erase_and_anonymize_regions(
2970                self.tcx.instantiate_bound_regions_with_erased(trait_pred),
2971            );
2972
2973            let ocx = ObligationCtxt::new(self);
2974            let assume = ocx.normalize(
2975                &obligation.cause,
2976                obligation.param_env,
2977                Unnormalized::new_wip(trait_pred.trait_ref.args.const_at(2)),
2978            );
2979
2980            let Some(assume) = rustc_transmute::Assume::from_const(self.infcx.tcx, assume) else {
2981                self.dcx().span_delayed_bug(
2982                    span,
2983                    "Unable to construct rustc_transmute::Assume where it was previously possible",
2984                );
2985                return GetSafeTransmuteErrorAndReason::Silent;
2986            };
2987
2988            let dst = trait_pred.trait_ref.args.type_at(0);
2989            let src = trait_pred.trait_ref.args.type_at(1);
2990            let err_msg = ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("`{0}` cannot be safely transmuted into `{1}`",
                src, dst))
    })format!("`{src}` cannot be safely transmuted into `{dst}`");
2991
2992            match rustc_transmute::TransmuteTypeEnv::new(self.infcx.tcx)
2993                .is_transmutable(src, dst, assume)
2994            {
2995                Answer::No(reason) => {
2996                    let safe_transmute_explanation = match reason {
2997                        rustc_transmute::Reason::SrcIsNotYetSupported => {
2998                            ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("analyzing the transmutability of `{0}` is not yet supported",
                src))
    })format!("analyzing the transmutability of `{src}` is not yet supported")
2999                        }
3000                        rustc_transmute::Reason::DstIsNotYetSupported => {
3001                            ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("analyzing the transmutability of `{0}` is not yet supported",
                dst))
    })format!("analyzing the transmutability of `{dst}` is not yet supported")
3002                        }
3003                        rustc_transmute::Reason::DstIsBitIncompatible => {
3004                            ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("at least one value of `{0}` isn\'t a bit-valid value of `{1}`",
                src, dst))
    })format!(
3005                                "at least one value of `{src}` isn't a bit-valid value of `{dst}`"
3006                            )
3007                        }
3008                        rustc_transmute::Reason::DstUninhabited => {
3009                            ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("`{0}` is uninhabited", dst))
    })format!("`{dst}` is uninhabited")
3010                        }
3011                        rustc_transmute::Reason::DstMayHaveSafetyInvariants => {
3012                            ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("`{0}` may carry safety invariants",
                dst))
    })format!("`{dst}` may carry safety invariants")
3013                        }
3014                        rustc_transmute::Reason::DstIsTooBig => {
3015                            ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("the size of `{0}` is smaller than the size of `{1}`",
                src, dst))
    })format!("the size of `{src}` is smaller than the size of `{dst}`")
3016                        }
3017                        rustc_transmute::Reason::DstRefIsTooBig {
3018                            src,
3019                            src_size,
3020                            dst,
3021                            dst_size,
3022                        } => {
3023                            ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("the size of `{0}` ({1} bytes) is smaller than that of `{2}` ({3} bytes)",
                src, src_size, dst, dst_size))
    })format!(
3024                                "the size of `{src}` ({src_size} bytes) \
3025                        is smaller than that of `{dst}` ({dst_size} bytes)"
3026                            )
3027                        }
3028                        rustc_transmute::Reason::SrcSizeOverflow => {
3029                            ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("values of the type `{0}` are too big for the target architecture",
                src))
    })format!(
3030                                "values of the type `{src}` are too big for the target architecture"
3031                            )
3032                        }
3033                        rustc_transmute::Reason::DstSizeOverflow => {
3034                            ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("values of the type `{0}` are too big for the target architecture",
                dst))
    })format!(
3035                                "values of the type `{dst}` are too big for the target architecture"
3036                            )
3037                        }
3038                        rustc_transmute::Reason::DstHasStricterAlignment {
3039                            src_min_align,
3040                            dst_min_align,
3041                        } => {
3042                            ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("the minimum alignment of `{0}` ({1}) should be greater than that of `{2}` ({3})",
                src, src_min_align, dst, dst_min_align))
    })format!(
3043                                "the minimum alignment of `{src}` ({src_min_align}) should be \
3044                                 greater than that of `{dst}` ({dst_min_align})"
3045                            )
3046                        }
3047                        rustc_transmute::Reason::DstIsMoreUnique => {
3048                            ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("`{0}` is a shared reference, but `{1}` is a unique reference",
                src, dst))
    })format!(
3049                                "`{src}` is a shared reference, but `{dst}` is a unique reference"
3050                            )
3051                        }
3052                        // Already reported by rustc
3053                        rustc_transmute::Reason::TypeError => {
3054                            return GetSafeTransmuteErrorAndReason::Silent;
3055                        }
3056                        rustc_transmute::Reason::SrcLayoutUnknown => {
3057                            ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("`{0}` has an unknown layout", src))
    })format!("`{src}` has an unknown layout")
3058                        }
3059                        rustc_transmute::Reason::DstLayoutUnknown => {
3060                            ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("`{0}` has an unknown layout", dst))
    })format!("`{dst}` has an unknown layout")
3061                        }
3062                    };
3063                    GetSafeTransmuteErrorAndReason::Error {
3064                        err_msg,
3065                        safe_transmute_explanation: Some(safe_transmute_explanation),
3066                    }
3067                }
3068                // Should never get a Yes at this point! We already ran it before, and did not get a Yes.
3069                Answer::Yes => ::rustc_middle::util::bug::span_bug_fmt(span,
    format_args!("Inconsistent rustc_transmute::is_transmutable(...) result, got Yes"))span_bug!(
3070                    span,
3071                    "Inconsistent rustc_transmute::is_transmutable(...) result, got Yes",
3072                ),
3073                // Reached when a different obligation (namely `Freeze`) causes the
3074                // transmutability analysis to fail. In this case, silence the
3075                // transmutability error message in favor of that more specific
3076                // error.
3077                Answer::If(_) => GetSafeTransmuteErrorAndReason::Error {
3078                    err_msg,
3079                    safe_transmute_explanation: None,
3080                },
3081            }
3082        })
3083    }
3084
3085    /// If `found_ty` is a reference that can be explicitly cast to another reference type for which
3086    /// a `From` / `TryFrom` impl exists for `self_ty`, return that type.
3087    fn find_explicit_cast_type(
3088        &self,
3089        param_env: ty::ParamEnv<'tcx>,
3090        found_ty: Ty<'tcx>,
3091        self_ty: Ty<'tcx>,
3092    ) -> Option<Ty<'tcx>> {
3093        let ty::Ref(region, inner_ty, mutbl) = *found_ty.kind() else {
3094            return None;
3095        };
3096
3097        let mut derefs = (self.autoderef_steps)(inner_ty).into_iter();
3098        derefs.next(); // skip the first one, which is inner_ty itself
3099        let deref_target = derefs.into_iter().next()?.0;
3100
3101        let cast_ty = Ty::new_ref(self.tcx, region, deref_target, mutbl);
3102
3103        let Some(from_def_id) = self.tcx.get_diagnostic_item(sym::From) else {
3104            return None;
3105        };
3106        let Some(try_from_def_id) = self.tcx.get_diagnostic_item(sym::TryFrom) else {
3107            return None;
3108        };
3109
3110        if self.has_impl_for_type(
3111            param_env,
3112            ty::TraitRef::new(
3113                self.tcx,
3114                from_def_id,
3115                self.tcx.mk_args(&[self_ty.into(), cast_ty.into()]),
3116            ),
3117        ) {
3118            Some(cast_ty)
3119        } else if self.has_impl_for_type(
3120            param_env,
3121            ty::TraitRef::new(
3122                self.tcx,
3123                try_from_def_id,
3124                self.tcx.mk_args(&[self_ty.into(), cast_ty.into()]),
3125            ),
3126        ) {
3127            Some(cast_ty)
3128        } else {
3129            None
3130        }
3131    }
3132
3133    fn has_impl_for_type(
3134        &self,
3135        param_env: ty::ParamEnv<'tcx>,
3136        trait_ref: ty::TraitRef<'tcx>,
3137    ) -> bool {
3138        let obligation = Obligation::new(
3139            self.tcx,
3140            ObligationCause::dummy(),
3141            param_env,
3142            ty::TraitPredicate { trait_ref, polarity: ty::PredicatePolarity::Positive },
3143        );
3144
3145        self.predicate_must_hold_modulo_regions(&obligation)
3146    }
3147
3148    fn add_tuple_trait_message(
3149        &self,
3150        obligation_cause_code: &ObligationCauseCode<'tcx>,
3151        err: &mut Diag<'_>,
3152    ) {
3153        match obligation_cause_code {
3154            ObligationCauseCode::RustCall => {
3155                err.primary_message("functions with the \"rust-call\" ABI must take a single non-self tuple argument");
3156            }
3157            ObligationCauseCode::WhereClause(def_id, _) if self.tcx.is_fn_trait(*def_id) => {
3158                err.code(E0059);
3159                err.primary_message(::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("type parameter to bare `{0}` trait must be a tuple",
                self.tcx.def_path_str(*def_id)))
    })format!(
3160                    "type parameter to bare `{}` trait must be a tuple",
3161                    self.tcx.def_path_str(*def_id)
3162                ));
3163            }
3164            _ => {}
3165        }
3166    }
3167
3168    fn try_to_add_help_message(
3169        &self,
3170        root_obligation: &PredicateObligation<'tcx>,
3171        obligation: &PredicateObligation<'tcx>,
3172        trait_predicate: ty::PolyTraitPredicate<'tcx>,
3173        err: &mut Diag<'_>,
3174        span: Span,
3175        is_fn_trait: bool,
3176        suggested: bool,
3177    ) {
3178        let body_def_id = obligation.cause.body_id;
3179        let span = if let ObligationCauseCode::BinOp { rhs_span, .. } = obligation.cause.code() {
3180            *rhs_span
3181        } else {
3182            span
3183        };
3184
3185        // Try to report a help message
3186        let trait_def_id = trait_predicate.def_id();
3187        if is_fn_trait
3188            && let Ok((implemented_kind, params)) = self.type_implements_fn_trait(
3189                obligation.param_env,
3190                trait_predicate.self_ty(),
3191                trait_predicate.skip_binder().polarity,
3192            )
3193        {
3194            self.add_help_message_for_fn_trait(trait_predicate, err, implemented_kind, params);
3195        } else if !trait_predicate.has_non_region_infer()
3196            && self.predicate_can_apply(obligation.param_env, trait_predicate)
3197        {
3198            // If a where-clause may be useful, remind the
3199            // user that they can add it.
3200            //
3201            // don't display an on-unimplemented note, as
3202            // these notes will often be of the form
3203            //     "the type `T` can't be frobnicated"
3204            // which is somewhat confusing.
3205            self.suggest_restricting_param_bound(
3206                err,
3207                trait_predicate,
3208                None,
3209                obligation.cause.body_id,
3210            );
3211        } else if trait_def_id.is_local()
3212            && self.tcx.trait_impls_of(trait_def_id).is_empty()
3213            && !self.tcx.trait_is_auto(trait_def_id)
3214            && !self.tcx.trait_is_alias(trait_def_id)
3215            && trait_predicate.polarity() == ty::PredicatePolarity::Positive
3216        {
3217            err.span_help(
3218                self.tcx.def_span(trait_def_id),
3219                rustc_errors::DiagMessage::Inline(std::borrow::Cow::Borrowed("this trait has no implementations, consider adding one"))msg!("this trait has no implementations, consider adding one"),
3220            );
3221        } else if !suggested && trait_predicate.polarity() == ty::PredicatePolarity::Positive {
3222            // Can't show anything else useful, try to find similar impls.
3223            let impl_candidates = self.find_similar_impl_candidates(trait_predicate);
3224            if !self.report_similar_impl_candidates(
3225                &impl_candidates,
3226                obligation,
3227                trait_predicate,
3228                body_def_id,
3229                err,
3230                true,
3231                obligation.param_env,
3232            ) {
3233                self.report_similar_impl_candidates_for_root_obligation(
3234                    obligation,
3235                    trait_predicate,
3236                    body_def_id,
3237                    err,
3238                );
3239            }
3240
3241            self.suggest_convert_to_slice(
3242                err,
3243                obligation,
3244                trait_predicate,
3245                impl_candidates.as_slice(),
3246                span,
3247            );
3248
3249            self.suggest_tuple_wrapping(err, root_obligation, obligation);
3250        }
3251        self.suggest_shadowed_inherent_method(err, obligation, trait_predicate);
3252    }
3253
3254    fn add_help_message_for_fn_trait(
3255        &self,
3256        trait_pred: ty::PolyTraitPredicate<'tcx>,
3257        err: &mut Diag<'_>,
3258        implemented_kind: ty::ClosureKind,
3259        params: ty::Binder<'tcx, Ty<'tcx>>,
3260    ) {
3261        // If the type implements `Fn`, `FnMut`, or `FnOnce`, suppress the following
3262        // suggestion to add trait bounds for the type, since we only typically implement
3263        // these traits once.
3264
3265        // Note if the `FnMut` or `FnOnce` is less general than the trait we're trying
3266        // to implement.
3267        let selected_kind = self
3268            .tcx
3269            .fn_trait_kind_from_def_id(trait_pred.def_id())
3270            .expect("expected to map DefId to ClosureKind");
3271        if !implemented_kind.extends(selected_kind) {
3272            err.note(::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("`{0}` implements `{1}`, but it must implement `{2}`, which is more general",
                trait_pred.skip_binder().self_ty(), implemented_kind,
                selected_kind))
    })format!(
3273                "`{}` implements `{}`, but it must implement `{}`, which is more general",
3274                trait_pred.skip_binder().self_ty(),
3275                implemented_kind,
3276                selected_kind
3277            ));
3278        }
3279
3280        // Note any argument mismatches
3281        let ty::Tuple(given) = *params.skip_binder().kind() else {
3282            return;
3283        };
3284
3285        let expected_ty = trait_pred.skip_binder().trait_ref.args.type_at(1);
3286        let ty::Tuple(expected) = *expected_ty.kind() else {
3287            return;
3288        };
3289
3290        if expected.len() != given.len() {
3291            // Note number of types that were expected and given
3292            err.note(::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("expected a closure taking {0} argument{1}, but one taking {2} argument{3} was given",
                given.len(), if given.len() == 1 { "" } else { "s" },
                expected.len(), if expected.len() == 1 { "" } else { "s" }))
    })format!(
3293                "expected a closure taking {} argument{}, but one taking {} argument{} was given",
3294                given.len(),
3295                pluralize!(given.len()),
3296                expected.len(),
3297                pluralize!(expected.len()),
3298            ));
3299            return;
3300        }
3301
3302        let given_ty = Ty::new_fn_ptr(
3303            self.tcx,
3304            params.rebind(self.tcx.mk_fn_sig_safe_rust_abi(given, self.tcx.types.unit)),
3305        );
3306        let expected_ty = Ty::new_fn_ptr(
3307            self.tcx,
3308            trait_pred.rebind(self.tcx.mk_fn_sig_safe_rust_abi(expected, self.tcx.types.unit)),
3309        );
3310
3311        if !self.same_type_modulo_infer(given_ty, expected_ty) {
3312            // Print type mismatch
3313            let (expected_args, given_args) = self.cmp(expected_ty, given_ty);
3314            err.note_expected_found(
3315                "a closure with signature",
3316                expected_args,
3317                "a closure with signature",
3318                given_args,
3319            );
3320        }
3321    }
3322
3323    fn report_closure_error(
3324        &self,
3325        obligation: &PredicateObligation<'tcx>,
3326        closure_def_id: DefId,
3327        found_kind: ty::ClosureKind,
3328        kind: ty::ClosureKind,
3329        trait_prefix: &'static str,
3330    ) -> Diag<'a> {
3331        let closure_span = self.tcx.def_span(closure_def_id);
3332
3333        let mut err = ClosureKindMismatch {
3334            closure_span,
3335            expected: kind,
3336            found: found_kind,
3337            cause_span: obligation.cause.span,
3338            trait_prefix,
3339            fn_once_label: None,
3340            fn_mut_label: None,
3341        };
3342
3343        // Additional context information explaining why the closure only implements
3344        // a particular trait.
3345        if let Some(typeck_results) = &self.typeck_results {
3346            let hir_id = self.tcx.local_def_id_to_hir_id(closure_def_id.expect_local());
3347            match (found_kind, typeck_results.closure_kind_origins().get(hir_id)) {
3348                (ty::ClosureKind::FnOnce, Some((span, place))) => {
3349                    err.fn_once_label = Some(ClosureFnOnceLabel {
3350                        span: *span,
3351                        place: ty::place_to_string_for_capture(self.tcx, place),
3352                        trait_prefix,
3353                    })
3354                }
3355                (ty::ClosureKind::FnMut, Some((span, place))) => {
3356                    err.fn_mut_label = Some(ClosureFnMutLabel {
3357                        span: *span,
3358                        place: ty::place_to_string_for_capture(self.tcx, place),
3359                        trait_prefix,
3360                    })
3361                }
3362                _ => {}
3363            }
3364        }
3365
3366        self.dcx().create_err(err)
3367    }
3368
3369    fn report_cyclic_signature_error(
3370        &self,
3371        obligation: &PredicateObligation<'tcx>,
3372        found_trait_ref: ty::TraitRef<'tcx>,
3373        expected_trait_ref: ty::TraitRef<'tcx>,
3374        terr: TypeError<'tcx>,
3375    ) -> Diag<'a> {
3376        let self_ty = found_trait_ref.self_ty();
3377        let (cause, terr) = if let ty::Closure(def_id, _) = *self_ty.kind() {
3378            (
3379                ObligationCause::dummy_with_span(self.tcx.def_span(def_id)),
3380                TypeError::CyclicTy(self_ty),
3381            )
3382        } else {
3383            (obligation.cause.clone(), terr)
3384        };
3385        self.report_and_explain_type_error(
3386            TypeTrace::trait_refs(&cause, expected_trait_ref, found_trait_ref),
3387            obligation.param_env,
3388            terr,
3389        )
3390    }
3391
3392    fn report_signature_mismatch_error(
3393        &self,
3394        obligation: &PredicateObligation<'tcx>,
3395        span: Span,
3396        found_trait_ref: ty::TraitRef<'tcx>,
3397        expected_trait_ref: ty::TraitRef<'tcx>,
3398    ) -> Result<Diag<'a>, ErrorGuaranteed> {
3399        let found_trait_ref = self.resolve_vars_if_possible(found_trait_ref);
3400        let expected_trait_ref = self.resolve_vars_if_possible(expected_trait_ref);
3401
3402        expected_trait_ref.self_ty().error_reported()?;
3403        let found_trait_ty = found_trait_ref.self_ty();
3404
3405        let found_did = match *found_trait_ty.kind() {
3406            ty::Closure(did, _) | ty::FnDef(did, _) | ty::Coroutine(did, ..) => Some(did),
3407            _ => None,
3408        };
3409
3410        let found_node = found_did.and_then(|did| self.tcx.hir_get_if_local(did));
3411        let found_span = found_did.and_then(|did| self.tcx.hir_span_if_local(did));
3412
3413        if !self.reported_signature_mismatch.borrow_mut().insert((span, found_span)) {
3414            // We check closures twice, with obligations flowing in different directions,
3415            // but we want to complain about them only once.
3416            return Err(self.dcx().span_delayed_bug(span, "already_reported"));
3417        }
3418
3419        let mut not_tupled = false;
3420
3421        let found = match found_trait_ref.args.type_at(1).kind() {
3422            ty::Tuple(tys) => ::alloc::vec::from_elem(ArgKind::empty(), tys.len())vec![ArgKind::empty(); tys.len()],
3423            _ => {
3424                not_tupled = true;
3425                ::alloc::boxed::box_assume_init_into_vec_unsafe(::alloc::intrinsics::write_box_via_move(::alloc::boxed::Box::new_uninit(),
        [ArgKind::empty()]))vec![ArgKind::empty()]
3426            }
3427        };
3428
3429        let expected_ty = expected_trait_ref.args.type_at(1);
3430        let expected = match expected_ty.kind() {
3431            ty::Tuple(tys) => {
3432                tys.iter().map(|t| ArgKind::from_expected_ty(t, Some(span))).collect()
3433            }
3434            _ => {
3435                not_tupled = true;
3436                ::alloc::boxed::box_assume_init_into_vec_unsafe(::alloc::intrinsics::write_box_via_move(::alloc::boxed::Box::new_uninit(),
        [ArgKind::Arg("_".to_owned(), expected_ty.to_string())]))vec![ArgKind::Arg("_".to_owned(), expected_ty.to_string())]
3437            }
3438        };
3439
3440        // If this is a `Fn` family trait and either the expected or found
3441        // is not tupled, then fall back to just a regular mismatch error.
3442        // This shouldn't be common unless manually implementing one of the
3443        // traits manually, but don't make it more confusing when it does
3444        // happen.
3445        if !self.tcx.is_lang_item(expected_trait_ref.def_id, LangItem::Coroutine) && not_tupled {
3446            return Ok(self.report_and_explain_type_error(
3447                TypeTrace::trait_refs(&obligation.cause, expected_trait_ref, found_trait_ref),
3448                obligation.param_env,
3449                ty::error::TypeError::Mismatch,
3450            ));
3451        }
3452        if found.len() != expected.len() {
3453            let (closure_span, closure_arg_span, found) = found_did
3454                .and_then(|did| {
3455                    let node = self.tcx.hir_get_if_local(did)?;
3456                    let (found_span, closure_arg_span, found) = self.get_fn_like_arguments(node)?;
3457                    Some((Some(found_span), closure_arg_span, found))
3458                })
3459                .unwrap_or((found_span, None, found));
3460
3461            // If the coroutine take a single () as its argument,
3462            // the trait argument would found the coroutine take 0 arguments,
3463            // but get_fn_like_arguments would give 1 argument.
3464            // This would result in "Expected to take 1 argument, but it takes 1 argument".
3465            // Check again to avoid this.
3466            if found.len() != expected.len() {
3467                return Ok(self.report_arg_count_mismatch(
3468                    span,
3469                    closure_span,
3470                    expected,
3471                    found,
3472                    found_trait_ty.is_closure(),
3473                    closure_arg_span,
3474                ));
3475            }
3476        }
3477        Ok(self.report_closure_arg_mismatch(
3478            span,
3479            found_span,
3480            found_trait_ref,
3481            expected_trait_ref,
3482            obligation.cause.code(),
3483            found_node,
3484            obligation.param_env,
3485        ))
3486    }
3487
3488    /// Given some node representing a fn-like thing in the HIR map,
3489    /// returns a span and `ArgKind` information that describes the
3490    /// arguments it expects. This can be supplied to
3491    /// `report_arg_count_mismatch`.
3492    pub fn get_fn_like_arguments(
3493        &self,
3494        node: Node<'_>,
3495    ) -> Option<(Span, Option<Span>, Vec<ArgKind>)> {
3496        let sm = self.tcx.sess.source_map();
3497        Some(match node {
3498            Node::Expr(&hir::Expr {
3499                kind: hir::ExprKind::Closure(&hir::Closure { body, fn_decl_span, fn_arg_span, .. }),
3500                ..
3501            }) => (
3502                fn_decl_span,
3503                fn_arg_span,
3504                self.tcx
3505                    .hir_body(body)
3506                    .params
3507                    .iter()
3508                    .map(|arg| {
3509                        if let hir::Pat { kind: hir::PatKind::Tuple(args, _), span, .. } = *arg.pat
3510                        {
3511                            Some(ArgKind::Tuple(
3512                                Some(span),
3513                                args.iter()
3514                                    .map(|pat| {
3515                                        sm.span_to_snippet(pat.span)
3516                                            .ok()
3517                                            .map(|snippet| (snippet, "_".to_owned()))
3518                                    })
3519                                    .collect::<Option<Vec<_>>>()?,
3520                            ))
3521                        } else {
3522                            let name = sm.span_to_snippet(arg.pat.span).ok()?;
3523                            Some(ArgKind::Arg(name, "_".to_owned()))
3524                        }
3525                    })
3526                    .collect::<Option<Vec<ArgKind>>>()?,
3527            ),
3528            Node::Item(&hir::Item { kind: hir::ItemKind::Fn { ref sig, .. }, .. })
3529            | Node::ImplItem(&hir::ImplItem { kind: hir::ImplItemKind::Fn(ref sig, _), .. })
3530            | Node::TraitItem(&hir::TraitItem {
3531                kind: hir::TraitItemKind::Fn(ref sig, _), ..
3532            })
3533            | Node::ForeignItem(&hir::ForeignItem {
3534                kind: hir::ForeignItemKind::Fn(ref sig, _, _),
3535                ..
3536            }) => (
3537                sig.span,
3538                None,
3539                sig.decl
3540                    .inputs
3541                    .iter()
3542                    .map(|arg| match arg.kind {
3543                        hir::TyKind::Tup(tys) => ArgKind::Tuple(
3544                            Some(arg.span),
3545                            ::alloc::vec::from_elem(("_".to_owned(), "_".to_owned()), tys.len())vec![("_".to_owned(), "_".to_owned()); tys.len()],
3546                        ),
3547                        _ => ArgKind::empty(),
3548                    })
3549                    .collect::<Vec<ArgKind>>(),
3550            ),
3551            Node::Ctor(variant_data) => {
3552                let span = variant_data.ctor_hir_id().map_or(DUMMY_SP, |id| self.tcx.hir_span(id));
3553                (span, None, ::alloc::vec::from_elem(ArgKind::empty(), variant_data.fields().len())vec![ArgKind::empty(); variant_data.fields().len()])
3554            }
3555            _ => {
    ::core::panicking::panic_fmt(format_args!("non-FnLike node found: {0:?}",
            node));
}panic!("non-FnLike node found: {node:?}"),
3556        })
3557    }
3558
3559    /// Reports an error when the number of arguments needed by a
3560    /// trait match doesn't match the number that the expression
3561    /// provides.
3562    pub fn report_arg_count_mismatch(
3563        &self,
3564        span: Span,
3565        found_span: Option<Span>,
3566        expected_args: Vec<ArgKind>,
3567        found_args: Vec<ArgKind>,
3568        is_closure: bool,
3569        closure_arg_span: Option<Span>,
3570    ) -> Diag<'a> {
3571        let kind = if is_closure { "closure" } else { "function" };
3572
3573        let args_str = |arguments: &[ArgKind], other: &[ArgKind]| {
3574            let arg_length = arguments.len();
3575            let distinct = #[allow(non_exhaustive_omitted_patterns)] match other {
    &[ArgKind::Tuple(..)] => true,
    _ => false,
}matches!(other, &[ArgKind::Tuple(..)]);
3576            match (arg_length, arguments.get(0)) {
3577                (1, Some(ArgKind::Tuple(_, fields))) => {
3578                    ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("a single {0}-tuple as argument",
                fields.len()))
    })format!("a single {}-tuple as argument", fields.len())
3579                }
3580                _ => ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("{0} {1}argument{2}", arg_length,
                if distinct && arg_length > 1 { "distinct " } else { "" },
                if arg_length == 1 { "" } else { "s" }))
    })format!(
3581                    "{} {}argument{}",
3582                    arg_length,
3583                    if distinct && arg_length > 1 { "distinct " } else { "" },
3584                    pluralize!(arg_length)
3585                ),
3586            }
3587        };
3588
3589        let expected_str = args_str(&expected_args, &found_args);
3590        let found_str = args_str(&found_args, &expected_args);
3591
3592        let mut err = {
    self.dcx().struct_span_err(span,
            ::alloc::__export::must_use({
                    ::alloc::fmt::format(format_args!("{0} is expected to take {1}, but it takes {2}",
                            kind, expected_str, found_str))
                })).with_code(E0593)
}struct_span_code_err!(
3593            self.dcx(),
3594            span,
3595            E0593,
3596            "{} is expected to take {}, but it takes {}",
3597            kind,
3598            expected_str,
3599            found_str,
3600        );
3601
3602        err.span_label(span, ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("expected {0} that takes {1}", kind,
                expected_str))
    })format!("expected {kind} that takes {expected_str}"));
3603
3604        if let Some(found_span) = found_span {
3605            err.span_label(found_span, ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("takes {0}", found_str))
    })format!("takes {found_str}"));
3606
3607            // Suggest to take and ignore the arguments with expected_args_length `_`s if
3608            // found arguments is empty (assume the user just wants to ignore args in this case).
3609            // For example, if `expected_args_length` is 2, suggest `|_, _|`.
3610            if found_args.is_empty() && is_closure {
3611                let underscores = ::alloc::vec::from_elem("_", expected_args.len())vec!["_"; expected_args.len()].join(", ");
3612                err.span_suggestion_verbose(
3613                    closure_arg_span.unwrap_or(found_span),
3614                    ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("consider changing the closure to take and ignore the expected argument{0}",
                if expected_args.len() == 1 { "" } else { "s" }))
    })format!(
3615                        "consider changing the closure to take and ignore the expected argument{}",
3616                        pluralize!(expected_args.len())
3617                    ),
3618                    ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("|{0}|", underscores))
    })format!("|{underscores}|"),
3619                    Applicability::MachineApplicable,
3620                );
3621            }
3622
3623            if let &[ArgKind::Tuple(_, ref fields)] = &found_args[..] {
3624                if fields.len() == expected_args.len() {
3625                    let sugg = fields
3626                        .iter()
3627                        .map(|(name, _)| name.to_owned())
3628                        .collect::<Vec<String>>()
3629                        .join(", ");
3630                    err.span_suggestion_verbose(
3631                        found_span,
3632                        "change the closure to take multiple arguments instead of a single tuple",
3633                        ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("|{0}|", sugg))
    })format!("|{sugg}|"),
3634                        Applicability::MachineApplicable,
3635                    );
3636                }
3637            }
3638            if let &[ArgKind::Tuple(_, ref fields)] = &expected_args[..]
3639                && fields.len() == found_args.len()
3640                && is_closure
3641            {
3642                let sugg = ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("|({0}){1}|",
                found_args.iter().map(|arg|
                                match arg {
                                    ArgKind::Arg(name, _) => name.to_owned(),
                                    _ => "_".to_owned(),
                                }).collect::<Vec<String>>().join(", "),
                if found_args.iter().any(|arg|
                            match arg { ArgKind::Arg(_, ty) => ty != "_", _ => false, })
                    {
                    ::alloc::__export::must_use({
                            ::alloc::fmt::format(format_args!(": ({0})",
                                    fields.iter().map(|(_, ty)|
                                                    ty.to_owned()).collect::<Vec<String>>().join(", ")))
                        })
                } else { String::new() }))
    })format!(
3643                    "|({}){}|",
3644                    found_args
3645                        .iter()
3646                        .map(|arg| match arg {
3647                            ArgKind::Arg(name, _) => name.to_owned(),
3648                            _ => "_".to_owned(),
3649                        })
3650                        .collect::<Vec<String>>()
3651                        .join(", "),
3652                    // add type annotations if available
3653                    if found_args.iter().any(|arg| match arg {
3654                        ArgKind::Arg(_, ty) => ty != "_",
3655                        _ => false,
3656                    }) {
3657                        format!(
3658                            ": ({})",
3659                            fields
3660                                .iter()
3661                                .map(|(_, ty)| ty.to_owned())
3662                                .collect::<Vec<String>>()
3663                                .join(", ")
3664                        )
3665                    } else {
3666                        String::new()
3667                    },
3668                );
3669                err.span_suggestion_verbose(
3670                    found_span,
3671                    "change the closure to accept a tuple instead of individual arguments",
3672                    sugg,
3673                    Applicability::MachineApplicable,
3674                );
3675            }
3676        }
3677
3678        err
3679    }
3680
3681    /// Checks if the type implements one of `Fn`, `FnMut`, or `FnOnce`
3682    /// in that order, and returns the generic type corresponding to the
3683    /// argument of that trait (corresponding to the closure arguments).
3684    pub fn type_implements_fn_trait(
3685        &self,
3686        param_env: ty::ParamEnv<'tcx>,
3687        ty: ty::Binder<'tcx, Ty<'tcx>>,
3688        polarity: ty::PredicatePolarity,
3689    ) -> Result<(ty::ClosureKind, ty::Binder<'tcx, Ty<'tcx>>), ()> {
3690        self.commit_if_ok(|_| {
3691            for trait_def_id in [
3692                self.tcx.lang_items().fn_trait(),
3693                self.tcx.lang_items().fn_mut_trait(),
3694                self.tcx.lang_items().fn_once_trait(),
3695            ] {
3696                let Some(trait_def_id) = trait_def_id else { continue };
3697                // Make a fresh inference variable so we can determine what the generic parameters
3698                // of the trait are.
3699                let var = self.next_ty_var(DUMMY_SP);
3700                // FIXME(const_trait_impl)
3701                let trait_ref = ty::TraitRef::new(self.tcx, trait_def_id, [ty.skip_binder(), var]);
3702                let obligation = Obligation::new(
3703                    self.tcx,
3704                    ObligationCause::dummy(),
3705                    param_env,
3706                    ty.rebind(ty::TraitPredicate { trait_ref, polarity }),
3707                );
3708                let ocx = ObligationCtxt::new(self);
3709                ocx.register_obligation(obligation);
3710                if ocx.evaluate_obligations_error_on_ambiguity().is_empty() {
3711                    return Ok((
3712                        self.tcx
3713                            .fn_trait_kind_from_def_id(trait_def_id)
3714                            .expect("expected to map DefId to ClosureKind"),
3715                        ty.rebind(self.resolve_vars_if_possible(var)),
3716                    ));
3717                }
3718            }
3719
3720            Err(())
3721        })
3722    }
3723
3724    fn report_not_const_evaluatable_error(
3725        &self,
3726        obligation: &PredicateObligation<'tcx>,
3727        span: Span,
3728    ) -> Result<Diag<'a>, ErrorGuaranteed> {
3729        if !self.tcx.features().generic_const_exprs()
3730            && !self.tcx.features().min_generic_const_args()
3731        {
3732            let guar = self
3733                .dcx()
3734                .struct_span_err(span, "constant expression depends on a generic parameter")
3735                // FIXME(const_generics): we should suggest to the user how they can resolve this
3736                // issue. However, this is currently not actually possible
3737                // (see https://github.com/rust-lang/rust/issues/66962#issuecomment-575907083).
3738                //
3739                // Note that with `feature(generic_const_exprs)` this case should not
3740                // be reachable.
3741                .with_note("this may fail depending on what value the parameter takes")
3742                .emit();
3743            return Err(guar);
3744        }
3745
3746        match obligation.predicate.kind().skip_binder() {
3747            ty::PredicateKind::Clause(ty::ClauseKind::ConstEvaluatable(ct)) => match ct.kind() {
3748                ty::ConstKind::Unevaluated(uv) => {
3749                    let mut err =
3750                        self.dcx().struct_span_err(span, "unconstrained generic constant");
3751                    let const_span = uv.kind.def_span(self.tcx);
3752
3753                    let const_ty = uv.type_of(self.tcx).skip_norm_wip();
3754                    let cast = if const_ty != self.tcx.types.usize { " as usize" } else { "" };
3755                    let msg = "try adding a `where` bound";
3756                    if let Ok(snippet) = self.tcx.sess.source_map().span_to_snippet(const_span) {
3757                        let code = ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("[(); {0}{1}]:", snippet, cast))
    })format!("[(); {snippet}{cast}]:");
3758                        let suggestion_def_id = if let ObligationCauseCode::CompareImplItem {
3759                            trait_item_def_id,
3760                            ..
3761                        } = obligation.cause.code()
3762                        {
3763                            trait_item_def_id.as_local()
3764                        } else {
3765                            Some(obligation.cause.body_id)
3766                        };
3767                        if let Some(suggestion_def_id) = suggestion_def_id
3768                            && let Some(generics) = self.tcx.hir_get_generics(suggestion_def_id)
3769                        {
3770                            err.span_suggestion_verbose(
3771                                generics.tail_span_for_predicate_suggestion(),
3772                                msg,
3773                                ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("{0} {1}",
                generics.add_where_or_trailing_comma(), code))
    })format!("{} {code}", generics.add_where_or_trailing_comma()),
3774                                Applicability::MaybeIncorrect,
3775                            );
3776                        } else {
3777                            err.help(::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("{0}: where {1}", msg, code))
    })format!("{msg}: where {code}"));
3778                        };
3779                    } else {
3780                        err.help(msg);
3781                    }
3782                    Ok(err)
3783                }
3784                ty::ConstKind::Expr(_) => {
3785                    let err = self
3786                        .dcx()
3787                        .struct_span_err(span, ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("unconstrained generic constant `{0}`",
                ct))
    })format!("unconstrained generic constant `{ct}`"));
3788                    Ok(err)
3789                }
3790                _ => {
3791                    ::rustc_middle::util::bug::bug_fmt(format_args!("const evaluatable failed for non-unevaluated const `{0:?}`",
        ct));bug!("const evaluatable failed for non-unevaluated const `{ct:?}`");
3792                }
3793            },
3794            _ => {
3795                ::rustc_middle::util::bug::span_bug_fmt(span,
    format_args!("unexpected non-ConstEvaluatable predicate, this should not be reachable"))span_bug!(
3796                    span,
3797                    "unexpected non-ConstEvaluatable predicate, this should not be reachable"
3798                )
3799            }
3800        }
3801    }
3802}