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1 //! "Collection" is the process of determining the type and other external
2 //! details of each item in Rust. Collection is specifically concerned
3 //! with *inter-procedural* things -- for example, for a function
4 //! definition, collection will figure out the type and signature of the
5 //! function, but it will not visit the *body* of the function in any way,
6 //! nor examine type annotations on local variables (that's the job of
7 //! type *checking*).
8 //!
9 //! Collecting is ultimately defined by a bundle of queries that
10 //! inquire after various facts about the items in the crate (e.g.,
11 //! `type_of`, `generics_of`, `predicates_of`, etc). See the `provide` function
12 //! for the full set.
13 //!
14 //! At present, however, we do run collection across all items in the
15 //! crate as a kind of pass. This should eventually be factored away.
16
17 use crate::astconv::{AstConv, Bounds, SizedByDefault};
18 use crate::check::intrinsic::intrinsic_operation_unsafety;
19 use crate::constrained_generic_params as cgp;
20 use crate::middle::resolve_lifetime as rl;
21 use rustc_ast::ast;
22 use rustc_ast::ast::MetaItemKind;
23 use rustc_attr::{list_contains_name, mark_used, InlineAttr, OptimizeAttr};
24 use rustc_data_structures::captures::Captures;
25 use rustc_data_structures::fx::{FxHashMap, FxHashSet};
26 use rustc_errors::{struct_span_err, Applicability};
27 use rustc_hir as hir;
28 use rustc_hir::def::{CtorKind, DefKind, Res};
29 use rustc_hir::def_id::{DefId, LocalDefId, LOCAL_CRATE};
30 use rustc_hir::intravisit::{self, NestedVisitorMap, Visitor};
31 use rustc_hir::weak_lang_items;
32 use rustc_hir::{GenericParamKind, HirId, Node};
33 use rustc_middle::hir::map::blocks::FnLikeNode;
34 use rustc_middle::hir::map::Map;
35 use rustc_middle::middle::codegen_fn_attrs::{CodegenFnAttrFlags, CodegenFnAttrs};
36 use rustc_middle::mir::mono::Linkage;
37 use rustc_middle::ty::query::Providers;
38 use rustc_middle::ty::subst::InternalSubsts;
39 use rustc_middle::ty::util::Discr;
40 use rustc_middle::ty::util::IntTypeExt;
41 use rustc_middle::ty::{self, AdtKind, Const, ToPolyTraitRef, Ty, TyCtxt};
42 use rustc_middle::ty::{ReprOptions, ToPredicate, WithConstness};
43 use rustc_session::config::SanitizerSet;
44 use rustc_session::lint;
45 use rustc_session::parse::feature_err;
46 use rustc_span::symbol::{kw, sym, Ident, Symbol};
47 use rustc_span::{Span, DUMMY_SP};
48 use rustc_target::spec::abi;
49 use rustc_trait_selection::traits::error_reporting::suggestions::NextTypeParamName;
50
51 mod type_of;
52
53 struct OnlySelfBounds(bool);
54
55 ///////////////////////////////////////////////////////////////////////////
56 // Main entry point
57
58 fn collect_mod_item_types(tcx: TyCtxt<'_>, module_def_id: LocalDefId) {
59     tcx.hir().visit_item_likes_in_module(
60         module_def_id,
61         &mut CollectItemTypesVisitor { tcx }.as_deep_visitor(),
62     );
63 }
64
65 pub fn provide(providers: &mut Providers) {
66     *providers = Providers {
67         opt_const_param_of: type_of::opt_const_param_of,
68         type_of: type_of::type_of,
69         generics_of,
70         predicates_of,
71         predicates_defined_on,
72         explicit_predicates_of,
73         super_predicates_of,
74         type_param_predicates,
75         trait_def,
76         adt_def,
77         fn_sig,
78         impl_trait_ref,
79         impl_polarity,
80         is_foreign_item,
81         static_mutability,
82         generator_kind,
83         codegen_fn_attrs,
84         collect_mod_item_types,
85         ..*providers
86     };
87 }
88
89 ///////////////////////////////////////////////////////////////////////////
90
91 /// Context specific to some particular item. This is what implements
92 /// `AstConv`. It has information about the predicates that are defined
93 /// on the trait. Unfortunately, this predicate information is
94 /// available in various different forms at various points in the
95 /// process. So we can't just store a pointer to e.g., the AST or the
96 /// parsed ty form, we have to be more flexible. To this end, the
97 /// `ItemCtxt` is parameterized by a `DefId` that it uses to satisfy
98 /// `get_type_parameter_bounds` requests, drawing the information from
99 /// the AST (`hir::Generics`), recursively.
100 pub struct ItemCtxt<'tcx> {
101     tcx: TyCtxt<'tcx>,
102     item_def_id: DefId,
103 }
104
105 ///////////////////////////////////////////////////////////////////////////
106
107 #[derive(Default)]
108 crate struct PlaceholderHirTyCollector(crate Vec<Span>);
109
110 impl<'v> Visitor<'v> for PlaceholderHirTyCollector {
111     type Map = intravisit::ErasedMap<'v>;
112
113     fn nested_visit_map(&mut self) -> NestedVisitorMap<Self::Map> {
114         NestedVisitorMap::None
115     }
116     fn visit_ty(&mut self, t: &'v hir::Ty<'v>) {
117         if let hir::TyKind::Infer = t.kind {
118             self.0.push(t.span);
119         }
120         intravisit::walk_ty(self, t)
121     }
122 }
123
124 struct CollectItemTypesVisitor<'tcx> {
125     tcx: TyCtxt<'tcx>,
126 }
127
128 /// If there are any placeholder types (`_`), emit an error explaining that this is not allowed
129 /// and suggest adding type parameters in the appropriate place, taking into consideration any and
130 /// all already existing generic type parameters to avoid suggesting a name that is already in use.
131 crate fn placeholder_type_error(
132     tcx: TyCtxt<'tcx>,
133     span: Option<Span>,
134     generics: &[hir::GenericParam<'_>],
135     placeholder_types: Vec<Span>,
136     suggest: bool,
137 ) {
138     if placeholder_types.is_empty() {
139         return;
140     }
141
142     let type_name = generics.next_type_param_name(None);
143     let mut sugg: Vec<_> =
144         placeholder_types.iter().map(|sp| (*sp, (*type_name).to_string())).collect();
145
146     if generics.is_empty() {
147         if let Some(span) = span {
148             sugg.push((span, format!("<{}>", type_name)));
149         }
150     } else if let Some(arg) = generics.iter().find(|arg| match arg.name {
151         hir::ParamName::Plain(Ident { name: kw::Underscore, .. }) => true,
152         _ => false,
153     }) {
154         // Account for `_` already present in cases like `struct S<_>(_);` and suggest
155         // `struct S<T>(T);` instead of `struct S<_, T>(T);`.
156         sugg.push((arg.span, (*type_name).to_string()));
157     } else {
158         let last = generics.iter().last().unwrap();
159         sugg.push((
160             // Account for bounds, we want `fn foo<T: E, K>(_: K)` not `fn foo<T, K: E>(_: K)`.
161             last.bounds_span().unwrap_or(last.span).shrink_to_hi(),
162             format!(", {}", type_name),
163         ));
164     }
165
166     let mut err = bad_placeholder_type(tcx, placeholder_types);
167     if suggest {
168         err.multipart_suggestion(
169             "use type parameters instead",
170             sugg,
171             Applicability::HasPlaceholders,
172         );
173     }
174     err.emit();
175 }
176
177 fn reject_placeholder_type_signatures_in_item(tcx: TyCtxt<'tcx>, item: &'tcx hir::Item<'tcx>) {
178     let (generics, suggest) = match &item.kind {
179         hir::ItemKind::Union(_, generics)
180         | hir::ItemKind::Enum(_, generics)
181         | hir::ItemKind::TraitAlias(generics, _)
182         | hir::ItemKind::Trait(_, _, generics, ..)
183         | hir::ItemKind::Impl { generics, .. }
184         | hir::ItemKind::Struct(_, generics) => (generics, true),
185         hir::ItemKind::OpaqueTy(hir::OpaqueTy { generics, .. })
186         | hir::ItemKind::TyAlias(_, generics) => (generics, false),
187         // `static`, `fn` and `const` are handled elsewhere to suggest appropriate type.
188         _ => return,
189     };
190
191     let mut visitor = PlaceholderHirTyCollector::default();
192     visitor.visit_item(item);
193
194     placeholder_type_error(tcx, Some(generics.span), &generics.params[..], visitor.0, suggest);
195 }
196
197 impl Visitor<'tcx> for CollectItemTypesVisitor<'tcx> {
198     type Map = Map<'tcx>;
199
200     fn nested_visit_map(&mut self) -> NestedVisitorMap<Self::Map> {
201         NestedVisitorMap::OnlyBodies(self.tcx.hir())
202     }
203
204     fn visit_item(&mut self, item: &'tcx hir::Item<'tcx>) {
205         convert_item(self.tcx, item.hir_id);
206         reject_placeholder_type_signatures_in_item(self.tcx, item);
207         intravisit::walk_item(self, item);
208     }
209
210     fn visit_generics(&mut self, generics: &'tcx hir::Generics<'tcx>) {
211         for param in generics.params {
212             match param.kind {
213                 hir::GenericParamKind::Lifetime { .. } => {}
214                 hir::GenericParamKind::Type { default: Some(_), .. } => {
215                     let def_id = self.tcx.hir().local_def_id(param.hir_id);
216                     self.tcx.ensure().type_of(def_id);
217                 }
218                 hir::GenericParamKind::Type { .. } => {}
219                 hir::GenericParamKind::Const { .. } => {
220                     let def_id = self.tcx.hir().local_def_id(param.hir_id);
221                     self.tcx.ensure().type_of(def_id);
222                 }
223             }
224         }
225         intravisit::walk_generics(self, generics);
226     }
227
228     fn visit_expr(&mut self, expr: &'tcx hir::Expr<'tcx>) {
229         if let hir::ExprKind::Closure(..) = expr.kind {
230             let def_id = self.tcx.hir().local_def_id(expr.hir_id);
231             self.tcx.ensure().generics_of(def_id);
232             self.tcx.ensure().type_of(def_id);
233         }
234         intravisit::walk_expr(self, expr);
235     }
236
237     fn visit_trait_item(&mut self, trait_item: &'tcx hir::TraitItem<'tcx>) {
238         convert_trait_item(self.tcx, trait_item.hir_id);
239         intravisit::walk_trait_item(self, trait_item);
240     }
241
242     fn visit_impl_item(&mut self, impl_item: &'tcx hir::ImplItem<'tcx>) {
243         convert_impl_item(self.tcx, impl_item.hir_id);
244         intravisit::walk_impl_item(self, impl_item);
245     }
246 }
247
248 ///////////////////////////////////////////////////////////////////////////
249 // Utility types and common code for the above passes.
250
251 fn bad_placeholder_type(
252     tcx: TyCtxt<'tcx>,
253     mut spans: Vec<Span>,
254 ) -> rustc_errors::DiagnosticBuilder<'tcx> {
255     spans.sort();
256     let mut err = struct_span_err!(
257         tcx.sess,
258         spans.clone(),
259         E0121,
260         "the type placeholder `_` is not allowed within types on item signatures",
261     );
262     for span in spans {
263         err.span_label(span, "not allowed in type signatures");
264     }
265     err
266 }
267
268 impl ItemCtxt<'tcx> {
269     pub fn new(tcx: TyCtxt<'tcx>, item_def_id: DefId) -> ItemCtxt<'tcx> {
270         ItemCtxt { tcx, item_def_id }
271     }
272
273     pub fn to_ty(&self, ast_ty: &'tcx hir::Ty<'tcx>) -> Ty<'tcx> {
274         AstConv::ast_ty_to_ty(self, ast_ty)
275     }
276
277     pub fn hir_id(&self) -> hir::HirId {
278         self.tcx.hir().as_local_hir_id(self.item_def_id.expect_local())
279     }
280
281     pub fn node(&self) -> hir::Node<'tcx> {
282         self.tcx.hir().get(self.hir_id())
283     }
284 }
285
286 impl AstConv<'tcx> for ItemCtxt<'tcx> {
287     fn tcx(&self) -> TyCtxt<'tcx> {
288         self.tcx
289     }
290
291     fn item_def_id(&self) -> Option<DefId> {
292         Some(self.item_def_id)
293     }
294
295     fn default_constness_for_trait_bounds(&self) -> hir::Constness {
296         if let Some(fn_like) = FnLikeNode::from_node(self.node()) {
297             fn_like.constness()
298         } else {
299             hir::Constness::NotConst
300         }
301     }
302
303     fn get_type_parameter_bounds(&self, span: Span, def_id: DefId) -> ty::GenericPredicates<'tcx> {
304         self.tcx.at(span).type_param_predicates((self.item_def_id, def_id.expect_local()))
305     }
306
307     fn re_infer(&self, _: Option<&ty::GenericParamDef>, _: Span) -> Option<ty::Region<'tcx>> {
308         None
309     }
310
311     fn allow_ty_infer(&self) -> bool {
312         false
313     }
314
315     fn ty_infer(&self, _: Option<&ty::GenericParamDef>, span: Span) -> Ty<'tcx> {
316         self.tcx().ty_error_with_message(span, "bad_placeholder_type")
317     }
318
319     fn ct_infer(
320         &self,
321         ty: Ty<'tcx>,
322         _: Option<&ty::GenericParamDef>,
323         span: Span,
324     ) -> &'tcx Const<'tcx> {
325         bad_placeholder_type(self.tcx(), vec![span]).emit();
326         self.tcx().const_error(ty)
327     }
328
329     fn projected_ty_from_poly_trait_ref(
330         &self,
331         span: Span,
332         item_def_id: DefId,
333         item_segment: &hir::PathSegment<'_>,
334         poly_trait_ref: ty::PolyTraitRef<'tcx>,
335     ) -> Ty<'tcx> {
336         if let Some(trait_ref) = poly_trait_ref.no_bound_vars() {
337             let item_substs = <dyn AstConv<'tcx>>::create_substs_for_associated_item(
338                 self,
339                 self.tcx,
340                 span,
341                 item_def_id,
342                 item_segment,
343                 trait_ref.substs,
344             );
345             self.tcx().mk_projection(item_def_id, item_substs)
346         } else {
347             // There are no late-bound regions; we can just ignore the binder.
348             let mut err = struct_span_err!(
349                 self.tcx().sess,
350                 span,
351                 E0212,
352                 "cannot extract an associated type from a higher-ranked trait bound \
353                  in this context"
354             );
355
356             match self.node() {
357                 hir::Node::Field(_) | hir::Node::Ctor(_) | hir::Node::Variant(_) => {
358                     let item =
359                         self.tcx.hir().expect_item(self.tcx.hir().get_parent_item(self.hir_id()));
360                     match &item.kind {
361                         hir::ItemKind::Enum(_, generics)
362                         | hir::ItemKind::Struct(_, generics)
363                         | hir::ItemKind::Union(_, generics) => {
364                             let lt_name = get_new_lifetime_name(self.tcx, poly_trait_ref, generics);
365                             let (lt_sp, sugg) = match &generics.params[..] {
366                                 [] => (generics.span, format!("<{}>", lt_name)),
367                                 [bound, ..] => {
368                                     (bound.span.shrink_to_lo(), format!("{}, ", lt_name))
369                                 }
370                             };
371                             let suggestions = vec![
372                                 (lt_sp, sugg),
373                                 (
374                                     span,
375                                     format!(
376                                         "{}::{}",
377                                         // Replace the existing lifetimes with a new named lifetime.
378                                         self.tcx
379                                             .replace_late_bound_regions(&poly_trait_ref, |_| {
380                                                 self.tcx.mk_region(ty::ReEarlyBound(
381                                                     ty::EarlyBoundRegion {
382                                                         def_id: item_def_id,
383                                                         index: 0,
384                                                         name: Symbol::intern(&lt_name),
385                                                     },
386                                                 ))
387                                             })
388                                             .0,
389                                         item_segment.ident
390                                     ),
391                                 ),
392                             ];
393                             err.multipart_suggestion(
394                                 "use a fully qualified path with explicit lifetimes",
395                                 suggestions,
396                                 Applicability::MaybeIncorrect,
397                             );
398                         }
399                         _ => {}
400                     }
401                 }
402                 hir::Node::Item(hir::Item {
403                     kind:
404                         hir::ItemKind::Struct(..) | hir::ItemKind::Enum(..) | hir::ItemKind::Union(..),
405                     ..
406                 }) => {}
407                 hir::Node::Item(_)
408                 | hir::Node::ForeignItem(_)
409                 | hir::Node::TraitItem(_)
410                 | hir::Node::ImplItem(_) => {
411                     err.span_suggestion(
412                         span,
413                         "use a fully qualified path with inferred lifetimes",
414                         format!(
415                             "{}::{}",
416                             // Erase named lt, we want `<A as B<'_>::C`, not `<A as B<'a>::C`.
417                             self.tcx.anonymize_late_bound_regions(&poly_trait_ref).skip_binder(),
418                             item_segment.ident
419                         ),
420                         Applicability::MaybeIncorrect,
421                     );
422                 }
423                 _ => {}
424             }
425             err.emit();
426             self.tcx().ty_error()
427         }
428     }
429
430     fn normalize_ty(&self, _span: Span, ty: Ty<'tcx>) -> Ty<'tcx> {
431         // Types in item signatures are not normalized to avoid undue dependencies.
432         ty
433     }
434
435     fn set_tainted_by_errors(&self) {
436         // There's no obvious place to track this, so just let it go.
437     }
438
439     fn record_ty(&self, _hir_id: hir::HirId, _ty: Ty<'tcx>, _span: Span) {
440         // There's no place to record types from signatures?
441     }
442 }
443
444 /// Synthesize a new lifetime name that doesn't clash with any of the lifetimes already present.
445 fn get_new_lifetime_name<'tcx>(
446     tcx: TyCtxt<'tcx>,
447     poly_trait_ref: ty::PolyTraitRef<'tcx>,
448     generics: &hir::Generics<'tcx>,
449 ) -> String {
450     let existing_lifetimes = tcx
451         .collect_referenced_late_bound_regions(&poly_trait_ref)
452         .into_iter()
453         .filter_map(|lt| {
454             if let ty::BoundRegion::BrNamed(_, name) = lt {
455                 Some(name.as_str().to_string())
456             } else {
457                 None
458             }
459         })
460         .chain(generics.params.iter().filter_map(|param| {
461             if let hir::GenericParamKind::Lifetime { .. } = &param.kind {
462                 Some(param.name.ident().as_str().to_string())
463             } else {
464                 None
465             }
466         }))
467         .collect::<FxHashSet<String>>();
468
469     let a_to_z_repeat_n = |n| {
470         (b'a'..=b'z').map(move |c| {
471             let mut s = '\''.to_string();
472             s.extend(std::iter::repeat(char::from(c)).take(n));
473             s
474         })
475     };
476
477     // If all single char lifetime names are present, we wrap around and double the chars.
478     (1..).flat_map(a_to_z_repeat_n).find(|lt| !existing_lifetimes.contains(lt.as_str())).unwrap()
479 }
480
481 /// Returns the predicates defined on `item_def_id` of the form
482 /// `X: Foo` where `X` is the type parameter `def_id`.
483 fn type_param_predicates(
484     tcx: TyCtxt<'_>,
485     (item_def_id, def_id): (DefId, LocalDefId),
486 ) -> ty::GenericPredicates<'_> {
487     use rustc_hir::*;
488
489     // In the AST, bounds can derive from two places. Either
490     // written inline like `<T: Foo>` or in a where-clause like
491     // `where T: Foo`.
492
493     let param_id = tcx.hir().as_local_hir_id(def_id);
494     let param_owner = tcx.hir().ty_param_owner(param_id);
495     let param_owner_def_id = tcx.hir().local_def_id(param_owner);
496     let generics = tcx.generics_of(param_owner_def_id);
497     let index = generics.param_def_id_to_index[&def_id.to_def_id()];
498     let ty = tcx.mk_ty_param(index, tcx.hir().ty_param_name(param_id));
499
500     // Don't look for bounds where the type parameter isn't in scope.
501     let parent = if item_def_id == param_owner_def_id.to_def_id() {
502         None
503     } else {
504         tcx.generics_of(item_def_id).parent
505     };
506
507     let mut result = parent
508         .map(|parent| {
509             let icx = ItemCtxt::new(tcx, parent);
510             icx.get_type_parameter_bounds(DUMMY_SP, def_id.to_def_id())
511         })
512         .unwrap_or_default();
513     let mut extend = None;
514
515     let item_hir_id = tcx.hir().as_local_hir_id(item_def_id.expect_local());
516     let ast_generics = match tcx.hir().get(item_hir_id) {
517         Node::TraitItem(item) => &item.generics,
518
519         Node::ImplItem(item) => &item.generics,
520
521         Node::Item(item) => {
522             match item.kind {
523                 ItemKind::Fn(.., ref generics, _)
524                 | ItemKind::Impl { ref generics, .. }
525                 | ItemKind::TyAlias(_, ref generics)
526                 | ItemKind::OpaqueTy(OpaqueTy { ref generics, impl_trait_fn: None, .. })
527                 | ItemKind::Enum(_, ref generics)
528                 | ItemKind::Struct(_, ref generics)
529                 | ItemKind::Union(_, ref generics) => generics,
530                 ItemKind::Trait(_, _, ref generics, ..) => {
531                     // Implied `Self: Trait` and supertrait bounds.
532                     if param_id == item_hir_id {
533                         let identity_trait_ref = ty::TraitRef::identity(tcx, item_def_id);
534                         extend =
535                             Some((identity_trait_ref.without_const().to_predicate(tcx), item.span));
536                     }
537                     generics
538                 }
539                 _ => return result,
540             }
541         }
542
543         Node::ForeignItem(item) => match item.kind {
544             ForeignItemKind::Fn(_, _, ref generics) => generics,
545             _ => return result,
546         },
547
548         _ => return result,
549     };
550
551     let icx = ItemCtxt::new(tcx, item_def_id);
552     let extra_predicates = extend.into_iter().chain(
553         icx.type_parameter_bounds_in_generics(ast_generics, param_id, ty, OnlySelfBounds(true))
554             .into_iter()
555             .filter(|(predicate, _)| match predicate.skip_binders() {
556                 ty::PredicateAtom::Trait(data, _) => data.self_ty().is_param(index),
557                 _ => false,
558             }),
559     );
560     result.predicates =
561         tcx.arena.alloc_from_iter(result.predicates.iter().copied().chain(extra_predicates));
562     result
563 }
564
565 impl ItemCtxt<'tcx> {
566     /// Finds bounds from `hir::Generics`. This requires scanning through the
567     /// AST. We do this to avoid having to convert *all* the bounds, which
568     /// would create artificial cycles. Instead, we can only convert the
569     /// bounds for a type parameter `X` if `X::Foo` is used.
570     fn type_parameter_bounds_in_generics(
571         &self,
572         ast_generics: &'tcx hir::Generics<'tcx>,
573         param_id: hir::HirId,
574         ty: Ty<'tcx>,
575         only_self_bounds: OnlySelfBounds,
576     ) -> Vec<(ty::Predicate<'tcx>, Span)> {
577         let constness = self.default_constness_for_trait_bounds();
578         let from_ty_params = ast_generics
579             .params
580             .iter()
581             .filter_map(|param| match param.kind {
582                 GenericParamKind::Type { .. } if param.hir_id == param_id => Some(&param.bounds),
583                 _ => None,
584             })
585             .flat_map(|bounds| bounds.iter())
586             .flat_map(|b| predicates_from_bound(self, ty, b, constness));
587
588         let from_where_clauses = ast_generics
589             .where_clause
590             .predicates
591             .iter()
592             .filter_map(|wp| match *wp {
593                 hir::WherePredicate::BoundPredicate(ref bp) => Some(bp),
594                 _ => None,
595             })
596             .flat_map(|bp| {
597                 let bt = if is_param(self.tcx, &bp.bounded_ty, param_id) {
598                     Some(ty)
599                 } else if !only_self_bounds.0 {
600                     Some(self.to_ty(&bp.bounded_ty))
601                 } else {
602                     None
603                 };
604                 bp.bounds.iter().filter_map(move |b| bt.map(|bt| (bt, b)))
605             })
606             .flat_map(|(bt, b)| predicates_from_bound(self, bt, b, constness));
607
608         from_ty_params.chain(from_where_clauses).collect()
609     }
610 }
611
612 /// Tests whether this is the AST for a reference to the type
613 /// parameter with ID `param_id`. We use this so as to avoid running
614 /// `ast_ty_to_ty`, because we want to avoid triggering an all-out
615 /// conversion of the type to avoid inducing unnecessary cycles.
616 fn is_param(tcx: TyCtxt<'_>, ast_ty: &hir::Ty<'_>, param_id: hir::HirId) -> bool {
617     if let hir::TyKind::Path(hir::QPath::Resolved(None, ref path)) = ast_ty.kind {
618         match path.res {
619             Res::SelfTy(Some(def_id), None) | Res::Def(DefKind::TyParam, def_id) => {
620                 def_id == tcx.hir().local_def_id(param_id).to_def_id()
621             }
622             _ => false,
623         }
624     } else {
625         false
626     }
627 }
628
629 fn convert_item(tcx: TyCtxt<'_>, item_id: hir::HirId) {
630     let it = tcx.hir().expect_item(item_id);
631     debug!("convert: item {} with id {}", it.ident, it.hir_id);
632     let def_id = tcx.hir().local_def_id(item_id);
633     match it.kind {
634         // These don't define types.
635         hir::ItemKind::ExternCrate(_)
636         | hir::ItemKind::Use(..)
637         | hir::ItemKind::Mod(_)
638         | hir::ItemKind::GlobalAsm(_) => {}
639         hir::ItemKind::ForeignMod(ref foreign_mod) => {
640             for item in foreign_mod.items {
641                 let def_id = tcx.hir().local_def_id(item.hir_id);
642                 tcx.ensure().generics_of(def_id);
643                 tcx.ensure().type_of(def_id);
644                 tcx.ensure().predicates_of(def_id);
645                 if let hir::ForeignItemKind::Fn(..) = item.kind {
646                     tcx.ensure().fn_sig(def_id);
647                 }
648             }
649         }
650         hir::ItemKind::Enum(ref enum_definition, _) => {
651             tcx.ensure().generics_of(def_id);
652             tcx.ensure().type_of(def_id);
653             tcx.ensure().predicates_of(def_id);
654             convert_enum_variant_types(tcx, def_id.to_def_id(), &enum_definition.variants);
655         }
656         hir::ItemKind::Impl { .. } => {
657             tcx.ensure().generics_of(def_id);
658             tcx.ensure().type_of(def_id);
659             tcx.ensure().impl_trait_ref(def_id);
660             tcx.ensure().predicates_of(def_id);
661         }
662         hir::ItemKind::Trait(..) => {
663             tcx.ensure().generics_of(def_id);
664             tcx.ensure().trait_def(def_id);
665             tcx.at(it.span).super_predicates_of(def_id);
666             tcx.ensure().predicates_of(def_id);
667         }
668         hir::ItemKind::TraitAlias(..) => {
669             tcx.ensure().generics_of(def_id);
670             tcx.at(it.span).super_predicates_of(def_id);
671             tcx.ensure().predicates_of(def_id);
672         }
673         hir::ItemKind::Struct(ref struct_def, _) | hir::ItemKind::Union(ref struct_def, _) => {
674             tcx.ensure().generics_of(def_id);
675             tcx.ensure().type_of(def_id);
676             tcx.ensure().predicates_of(def_id);
677
678             for f in struct_def.fields() {
679                 let def_id = tcx.hir().local_def_id(f.hir_id);
680                 tcx.ensure().generics_of(def_id);
681                 tcx.ensure().type_of(def_id);
682                 tcx.ensure().predicates_of(def_id);
683             }
684
685             if let Some(ctor_hir_id) = struct_def.ctor_hir_id() {
686                 convert_variant_ctor(tcx, ctor_hir_id);
687             }
688         }
689
690         // Desugared from `impl Trait`, so visited by the function's return type.
691         hir::ItemKind::OpaqueTy(hir::OpaqueTy { impl_trait_fn: Some(_), .. }) => {}
692
693         hir::ItemKind::OpaqueTy(..)
694         | hir::ItemKind::TyAlias(..)
695         | hir::ItemKind::Static(..)
696         | hir::ItemKind::Const(..)
697         | hir::ItemKind::Fn(..) => {
698             tcx.ensure().generics_of(def_id);
699             tcx.ensure().type_of(def_id);
700             tcx.ensure().predicates_of(def_id);
701             if let hir::ItemKind::Fn(..) = it.kind {
702                 tcx.ensure().fn_sig(def_id);
703             }
704         }
705     }
706 }
707
708 fn convert_trait_item(tcx: TyCtxt<'_>, trait_item_id: hir::HirId) {
709     let trait_item = tcx.hir().expect_trait_item(trait_item_id);
710     let def_id = tcx.hir().local_def_id(trait_item.hir_id);
711     tcx.ensure().generics_of(def_id);
712
713     match trait_item.kind {
714         hir::TraitItemKind::Fn(..) => {
715             tcx.ensure().type_of(def_id);
716             tcx.ensure().fn_sig(def_id);
717         }
718
719         hir::TraitItemKind::Const(.., Some(_)) => {
720             tcx.ensure().type_of(def_id);
721         }
722
723         hir::TraitItemKind::Const(..) | hir::TraitItemKind::Type(_, Some(_)) => {
724             tcx.ensure().type_of(def_id);
725             // Account for `const C: _;` and `type T = _;`.
726             let mut visitor = PlaceholderHirTyCollector::default();
727             visitor.visit_trait_item(trait_item);
728             placeholder_type_error(tcx, None, &[], visitor.0, false);
729         }
730
731         hir::TraitItemKind::Type(_, None) => {
732             // #74612: Visit and try to find bad placeholders
733             // even if there is no concrete type.
734             let mut visitor = PlaceholderHirTyCollector::default();
735             visitor.visit_trait_item(trait_item);
736             placeholder_type_error(tcx, None, &[], visitor.0, false);
737         }
738     };
739
740     tcx.ensure().predicates_of(def_id);
741 }
742
743 fn convert_impl_item(tcx: TyCtxt<'_>, impl_item_id: hir::HirId) {
744     let def_id = tcx.hir().local_def_id(impl_item_id);
745     tcx.ensure().generics_of(def_id);
746     tcx.ensure().type_of(def_id);
747     tcx.ensure().predicates_of(def_id);
748     let impl_item = tcx.hir().expect_impl_item(impl_item_id);
749     match impl_item.kind {
750         hir::ImplItemKind::Fn(..) => {
751             tcx.ensure().fn_sig(def_id);
752         }
753         hir::ImplItemKind::TyAlias(_) => {
754             // Account for `type T = _;`
755             let mut visitor = PlaceholderHirTyCollector::default();
756             visitor.visit_impl_item(impl_item);
757             placeholder_type_error(tcx, None, &[], visitor.0, false);
758         }
759         hir::ImplItemKind::Const(..) => {}
760     }
761 }
762
763 fn convert_variant_ctor(tcx: TyCtxt<'_>, ctor_id: hir::HirId) {
764     let def_id = tcx.hir().local_def_id(ctor_id);
765     tcx.ensure().generics_of(def_id);
766     tcx.ensure().type_of(def_id);
767     tcx.ensure().predicates_of(def_id);
768 }
769
770 fn convert_enum_variant_types(tcx: TyCtxt<'_>, def_id: DefId, variants: &[hir::Variant<'_>]) {
771     let def = tcx.adt_def(def_id);
772     let repr_type = def.repr.discr_type();
773     let initial = repr_type.initial_discriminant(tcx);
774     let mut prev_discr = None::<Discr<'_>>;
775
776     // fill the discriminant values and field types
777     for variant in variants {
778         let wrapped_discr = prev_discr.map_or(initial, |d| d.wrap_incr(tcx));
779         prev_discr = Some(
780             if let Some(ref e) = variant.disr_expr {
781                 let expr_did = tcx.hir().local_def_id(e.hir_id);
782                 def.eval_explicit_discr(tcx, expr_did.to_def_id())
783             } else if let Some(discr) = repr_type.disr_incr(tcx, prev_discr) {
784                 Some(discr)
785             } else {
786                 struct_span_err!(tcx.sess, variant.span, E0370, "enum discriminant overflowed")
787                     .span_label(
788                         variant.span,
789                         format!("overflowed on value after {}", prev_discr.unwrap()),
790                     )
791                     .note(&format!(
792                         "explicitly set `{} = {}` if that is desired outcome",
793                         variant.ident, wrapped_discr
794                     ))
795                     .emit();
796                 None
797             }
798             .unwrap_or(wrapped_discr),
799         );
800
801         for f in variant.data.fields() {
802             let def_id = tcx.hir().local_def_id(f.hir_id);
803             tcx.ensure().generics_of(def_id);
804             tcx.ensure().type_of(def_id);
805             tcx.ensure().predicates_of(def_id);
806         }
807
808         // Convert the ctor, if any. This also registers the variant as
809         // an item.
810         if let Some(ctor_hir_id) = variant.data.ctor_hir_id() {
811             convert_variant_ctor(tcx, ctor_hir_id);
812         }
813     }
814 }
815
816 fn convert_variant(
817     tcx: TyCtxt<'_>,
818     variant_did: Option<LocalDefId>,
819     ctor_did: Option<LocalDefId>,
820     ident: Ident,
821     discr: ty::VariantDiscr,
822     def: &hir::VariantData<'_>,
823     adt_kind: ty::AdtKind,
824     parent_did: LocalDefId,
825 ) -> ty::VariantDef {
826     let mut seen_fields: FxHashMap<Ident, Span> = Default::default();
827     let hir_id = tcx.hir().as_local_hir_id(variant_did.unwrap_or(parent_did));
828     let fields = def
829         .fields()
830         .iter()
831         .map(|f| {
832             let fid = tcx.hir().local_def_id(f.hir_id);
833             let dup_span = seen_fields.get(&f.ident.normalize_to_macros_2_0()).cloned();
834             if let Some(prev_span) = dup_span {
835                 struct_span_err!(
836                     tcx.sess,
837                     f.span,
838                     E0124,
839                     "field `{}` is already declared",
840                     f.ident
841                 )
842                 .span_label(f.span, "field already declared")
843                 .span_label(prev_span, format!("`{}` first declared here", f.ident))
844                 .emit();
845             } else {
846                 seen_fields.insert(f.ident.normalize_to_macros_2_0(), f.span);
847             }
848
849             ty::FieldDef {
850                 did: fid.to_def_id(),
851                 ident: f.ident,
852                 vis: ty::Visibility::from_hir(&f.vis, hir_id, tcx),
853             }
854         })
855         .collect();
856     let recovered = match def {
857         hir::VariantData::Struct(_, r) => *r,
858         _ => false,
859     };
860     ty::VariantDef::new(
861         ident,
862         variant_did.map(LocalDefId::to_def_id),
863         ctor_did.map(LocalDefId::to_def_id),
864         discr,
865         fields,
866         CtorKind::from_hir(def),
867         adt_kind,
868         parent_did.to_def_id(),
869         recovered,
870         adt_kind == AdtKind::Struct && tcx.has_attr(parent_did.to_def_id(), sym::non_exhaustive)
871             || variant_did.map_or(false, |variant_did| {
872                 tcx.has_attr(variant_did.to_def_id(), sym::non_exhaustive)
873             }),
874     )
875 }
876
877 fn adt_def(tcx: TyCtxt<'_>, def_id: DefId) -> &ty::AdtDef {
878     use rustc_hir::*;
879
880     let def_id = def_id.expect_local();
881     let hir_id = tcx.hir().as_local_hir_id(def_id);
882     let item = match tcx.hir().get(hir_id) {
883         Node::Item(item) => item,
884         _ => bug!(),
885     };
886
887     let repr = ReprOptions::new(tcx, def_id.to_def_id());
888     let (kind, variants) = match item.kind {
889         ItemKind::Enum(ref def, _) => {
890             let mut distance_from_explicit = 0;
891             let variants = def
892                 .variants
893                 .iter()
894                 .map(|v| {
895                     let variant_did = Some(tcx.hir().local_def_id(v.id));
896                     let ctor_did =
897                         v.data.ctor_hir_id().map(|hir_id| tcx.hir().local_def_id(hir_id));
898
899                     let discr = if let Some(ref e) = v.disr_expr {
900                         distance_from_explicit = 0;
901                         ty::VariantDiscr::Explicit(tcx.hir().local_def_id(e.hir_id).to_def_id())
902                     } else {
903                         ty::VariantDiscr::Relative(distance_from_explicit)
904                     };
905                     distance_from_explicit += 1;
906
907                     convert_variant(
908                         tcx,
909                         variant_did,
910                         ctor_did,
911                         v.ident,
912                         discr,
913                         &v.data,
914                         AdtKind::Enum,
915                         def_id,
916                     )
917                 })
918                 .collect();
919
920             (AdtKind::Enum, variants)
921         }
922         ItemKind::Struct(ref def, _) => {
923             let variant_did = None::<LocalDefId>;
924             let ctor_did = def.ctor_hir_id().map(|hir_id| tcx.hir().local_def_id(hir_id));
925
926             let variants = std::iter::once(convert_variant(
927                 tcx,
928                 variant_did,
929                 ctor_did,
930                 item.ident,
931                 ty::VariantDiscr::Relative(0),
932                 def,
933                 AdtKind::Struct,
934                 def_id,
935             ))
936             .collect();
937
938             (AdtKind::Struct, variants)
939         }
940         ItemKind::Union(ref def, _) => {
941             let variant_did = None;
942             let ctor_did = def.ctor_hir_id().map(|hir_id| tcx.hir().local_def_id(hir_id));
943
944             let variants = std::iter::once(convert_variant(
945                 tcx,
946                 variant_did,
947                 ctor_did,
948                 item.ident,
949                 ty::VariantDiscr::Relative(0),
950                 def,
951                 AdtKind::Union,
952                 def_id,
953             ))
954             .collect();
955
956             (AdtKind::Union, variants)
957         }
958         _ => bug!(),
959     };
960     tcx.alloc_adt_def(def_id.to_def_id(), kind, variants, repr)
961 }
962
963 /// Ensures that the super-predicates of the trait with a `DefId`
964 /// of `trait_def_id` are converted and stored. This also ensures that
965 /// the transitive super-predicates are converted.
966 fn super_predicates_of(tcx: TyCtxt<'_>, trait_def_id: DefId) -> ty::GenericPredicates<'_> {
967     debug!("super_predicates(trait_def_id={:?})", trait_def_id);
968     let trait_hir_id = tcx.hir().as_local_hir_id(trait_def_id.expect_local());
969
970     let item = match tcx.hir().get(trait_hir_id) {
971         Node::Item(item) => item,
972         _ => bug!("trait_node_id {} is not an item", trait_hir_id),
973     };
974
975     let (generics, bounds) = match item.kind {
976         hir::ItemKind::Trait(.., ref generics, ref supertraits, _) => (generics, supertraits),
977         hir::ItemKind::TraitAlias(ref generics, ref supertraits) => (generics, supertraits),
978         _ => span_bug!(item.span, "super_predicates invoked on non-trait"),
979     };
980
981     let icx = ItemCtxt::new(tcx, trait_def_id);
982
983     // Convert the bounds that follow the colon, e.g., `Bar + Zed` in `trait Foo: Bar + Zed`.
984     let self_param_ty = tcx.types.self_param;
985     let superbounds1 =
986         AstConv::compute_bounds(&icx, self_param_ty, bounds, SizedByDefault::No, item.span);
987
988     let superbounds1 = superbounds1.predicates(tcx, self_param_ty);
989
990     // Convert any explicit superbounds in the where-clause,
991     // e.g., `trait Foo where Self: Bar`.
992     // In the case of trait aliases, however, we include all bounds in the where-clause,
993     // so e.g., `trait Foo = where u32: PartialEq<Self>` would include `u32: PartialEq<Self>`
994     // as one of its "superpredicates".
995     let is_trait_alias = tcx.is_trait_alias(trait_def_id);
996     let superbounds2 = icx.type_parameter_bounds_in_generics(
997         generics,
998         item.hir_id,
999         self_param_ty,
1000         OnlySelfBounds(!is_trait_alias),
1001     );
1002
1003     // Combine the two lists to form the complete set of superbounds:
1004     let superbounds = &*tcx.arena.alloc_from_iter(superbounds1.into_iter().chain(superbounds2));
1005
1006     // Now require that immediate supertraits are converted,
1007     // which will, in turn, reach indirect supertraits.
1008     for &(pred, span) in superbounds {
1009         debug!("superbound: {:?}", pred);
1010         if let ty::PredicateAtom::Trait(bound, _) = pred.skip_binders() {
1011             tcx.at(span).super_predicates_of(bound.def_id());
1012         }
1013     }
1014
1015     ty::GenericPredicates { parent: None, predicates: superbounds }
1016 }
1017
1018 fn trait_def(tcx: TyCtxt<'_>, def_id: DefId) -> ty::TraitDef {
1019     let hir_id = tcx.hir().as_local_hir_id(def_id.expect_local());
1020     let item = tcx.hir().expect_item(hir_id);
1021
1022     let (is_auto, unsafety) = match item.kind {
1023         hir::ItemKind::Trait(is_auto, unsafety, ..) => (is_auto == hir::IsAuto::Yes, unsafety),
1024         hir::ItemKind::TraitAlias(..) => (false, hir::Unsafety::Normal),
1025         _ => span_bug!(item.span, "trait_def_of_item invoked on non-trait"),
1026     };
1027
1028     let paren_sugar = tcx.has_attr(def_id, sym::rustc_paren_sugar);
1029     if paren_sugar && !tcx.features().unboxed_closures {
1030         tcx.sess
1031             .struct_span_err(
1032                 item.span,
1033                 "the `#[rustc_paren_sugar]` attribute is a temporary means of controlling \
1034                  which traits can use parenthetical notation",
1035             )
1036             .help("add `#![feature(unboxed_closures)]` to the crate attributes to use it")
1037             .emit();
1038     }
1039
1040     let is_marker = tcx.has_attr(def_id, sym::marker);
1041     let spec_kind = if tcx.has_attr(def_id, sym::rustc_unsafe_specialization_marker) {
1042         ty::trait_def::TraitSpecializationKind::Marker
1043     } else if tcx.has_attr(def_id, sym::rustc_specialization_trait) {
1044         ty::trait_def::TraitSpecializationKind::AlwaysApplicable
1045     } else {
1046         ty::trait_def::TraitSpecializationKind::None
1047     };
1048     let def_path_hash = tcx.def_path_hash(def_id);
1049     ty::TraitDef::new(def_id, unsafety, paren_sugar, is_auto, is_marker, spec_kind, def_path_hash)
1050 }
1051
1052 fn has_late_bound_regions<'tcx>(tcx: TyCtxt<'tcx>, node: Node<'tcx>) -> Option<Span> {
1053     struct LateBoundRegionsDetector<'tcx> {
1054         tcx: TyCtxt<'tcx>,
1055         outer_index: ty::DebruijnIndex,
1056         has_late_bound_regions: Option<Span>,
1057     }
1058
1059     impl Visitor<'tcx> for LateBoundRegionsDetector<'tcx> {
1060         type Map = intravisit::ErasedMap<'tcx>;
1061
1062         fn nested_visit_map(&mut self) -> NestedVisitorMap<Self::Map> {
1063             NestedVisitorMap::None
1064         }
1065
1066         fn visit_ty(&mut self, ty: &'tcx hir::Ty<'tcx>) {
1067             if self.has_late_bound_regions.is_some() {
1068                 return;
1069             }
1070             match ty.kind {
1071                 hir::TyKind::BareFn(..) => {
1072                     self.outer_index.shift_in(1);
1073                     intravisit::walk_ty(self, ty);
1074                     self.outer_index.shift_out(1);
1075                 }
1076                 _ => intravisit::walk_ty(self, ty),
1077             }
1078         }
1079
1080         fn visit_poly_trait_ref(
1081             &mut self,
1082             tr: &'tcx hir::PolyTraitRef<'tcx>,
1083             m: hir::TraitBoundModifier,
1084         ) {
1085             if self.has_late_bound_regions.is_some() {
1086                 return;
1087             }
1088             self.outer_index.shift_in(1);
1089             intravisit::walk_poly_trait_ref(self, tr, m);
1090             self.outer_index.shift_out(1);
1091         }
1092
1093         fn visit_lifetime(&mut self, lt: &'tcx hir::Lifetime) {
1094             if self.has_late_bound_regions.is_some() {
1095                 return;
1096             }
1097
1098             match self.tcx.named_region(lt.hir_id) {
1099                 Some(rl::Region::Static | rl::Region::EarlyBound(..)) => {}
1100                 Some(
1101                     rl::Region::LateBound(debruijn, _, _) | rl::Region::LateBoundAnon(debruijn, _),
1102                 ) if debruijn < self.outer_index => {}
1103                 Some(
1104                     rl::Region::LateBound(..)
1105                     | rl::Region::LateBoundAnon(..)
1106                     | rl::Region::Free(..),
1107                 )
1108                 | None => {
1109                     self.has_late_bound_regions = Some(lt.span);
1110                 }
1111             }
1112         }
1113     }
1114
1115     fn has_late_bound_regions<'tcx>(
1116         tcx: TyCtxt<'tcx>,
1117         generics: &'tcx hir::Generics<'tcx>,
1118         decl: &'tcx hir::FnDecl<'tcx>,
1119     ) -> Option<Span> {
1120         let mut visitor = LateBoundRegionsDetector {
1121             tcx,
1122             outer_index: ty::INNERMOST,
1123             has_late_bound_regions: None,
1124         };
1125         for param in generics.params {
1126             if let GenericParamKind::Lifetime { .. } = param.kind {
1127                 if tcx.is_late_bound(param.hir_id) {
1128                     return Some(param.span);
1129                 }
1130             }
1131         }
1132         visitor.visit_fn_decl(decl);
1133         visitor.has_late_bound_regions
1134     }
1135
1136     match node {
1137         Node::TraitItem(item) => match item.kind {
1138             hir::TraitItemKind::Fn(ref sig, _) => {
1139                 has_late_bound_regions(tcx, &item.generics, &sig.decl)
1140             }
1141             _ => None,
1142         },
1143         Node::ImplItem(item) => match item.kind {
1144             hir::ImplItemKind::Fn(ref sig, _) => {
1145                 has_late_bound_regions(tcx, &item.generics, &sig.decl)
1146             }
1147             _ => None,
1148         },
1149         Node::ForeignItem(item) => match item.kind {
1150             hir::ForeignItemKind::Fn(ref fn_decl, _, ref generics) => {
1151                 has_late_bound_regions(tcx, generics, fn_decl)
1152             }
1153             _ => None,
1154         },
1155         Node::Item(item) => match item.kind {
1156             hir::ItemKind::Fn(ref sig, .., ref generics, _) => {
1157                 has_late_bound_regions(tcx, generics, &sig.decl)
1158             }
1159             _ => None,
1160         },
1161         _ => None,
1162     }
1163 }
1164
1165 struct AnonConstInParamListDetector {
1166     in_param_list: bool,
1167     found_anon_const_in_list: bool,
1168     ct: HirId,
1169 }
1170
1171 impl<'v> Visitor<'v> for AnonConstInParamListDetector {
1172     type Map = intravisit::ErasedMap<'v>;
1173
1174     fn nested_visit_map(&mut self) -> NestedVisitorMap<Self::Map> {
1175         NestedVisitorMap::None
1176     }
1177
1178     fn visit_generic_param(&mut self, p: &'v hir::GenericParam<'v>) {
1179         let prev = self.in_param_list;
1180         self.in_param_list = true;
1181         intravisit::walk_generic_param(self, p);
1182         self.in_param_list = prev;
1183     }
1184
1185     fn visit_anon_const(&mut self, c: &'v hir::AnonConst) {
1186         if self.in_param_list && self.ct == c.hir_id {
1187             self.found_anon_const_in_list = true;
1188         } else {
1189             intravisit::walk_anon_const(self, c)
1190         }
1191     }
1192 }
1193
1194 fn generics_of(tcx: TyCtxt<'_>, def_id: DefId) -> ty::Generics {
1195     use rustc_hir::*;
1196
1197     let hir_id = tcx.hir().as_local_hir_id(def_id.expect_local());
1198
1199     let node = tcx.hir().get(hir_id);
1200     let parent_def_id = match node {
1201         Node::ImplItem(_)
1202         | Node::TraitItem(_)
1203         | Node::Variant(_)
1204         | Node::Ctor(..)
1205         | Node::Field(_) => {
1206             let parent_id = tcx.hir().get_parent_item(hir_id);
1207             Some(tcx.hir().local_def_id(parent_id).to_def_id())
1208         }
1209         // FIXME(#43408) always enable this once `lazy_normalization` is
1210         // stable enough and does not need a feature gate anymore.
1211         Node::AnonConst(_) => {
1212             let parent_id = tcx.hir().get_parent_item(hir_id);
1213             let parent_def_id = tcx.hir().local_def_id(parent_id);
1214
1215             let mut in_param_list = false;
1216             for (_parent, node) in tcx.hir().parent_iter(hir_id) {
1217                 if let Some(generics) = node.generics() {
1218                     let mut visitor = AnonConstInParamListDetector {
1219                         in_param_list: false,
1220                         found_anon_const_in_list: false,
1221                         ct: hir_id,
1222                     };
1223
1224                     visitor.visit_generics(generics);
1225                     in_param_list = visitor.found_anon_const_in_list;
1226                     break;
1227                 }
1228             }
1229
1230             if in_param_list {
1231                 // We do not allow generic parameters in anon consts if we are inside
1232                 // of a param list.
1233                 //
1234                 // This affects both default type bindings, e.g. `struct<T, U = [u8; std::mem::size_of::<T>()]>(T, U)`,
1235                 // and the types of const parameters, e.g. `struct V<const N: usize, const M: [u8; N]>();`.
1236                 None
1237             } else if tcx.lazy_normalization() {
1238                 // HACK(eddyb) this provides the correct generics when
1239                 // `feature(const_generics)` is enabled, so that const expressions
1240                 // used with const generics, e.g. `Foo<{N+1}>`, can work at all.
1241                 Some(parent_def_id.to_def_id())
1242             } else {
1243                 let parent_node = tcx.hir().get(tcx.hir().get_parent_node(hir_id));
1244                 match parent_node {
1245                     // HACK(eddyb) this provides the correct generics for repeat
1246                     // expressions' count (i.e. `N` in `[x; N]`), and explicit
1247                     // `enum` discriminants (i.e. `D` in `enum Foo { Bar = D }`),
1248                     // as they shouldn't be able to cause query cycle errors.
1249                     Node::Expr(&Expr { kind: ExprKind::Repeat(_, ref constant), .. })
1250                     | Node::Variant(Variant { disr_expr: Some(ref constant), .. })
1251                         if constant.hir_id == hir_id =>
1252                     {
1253                         Some(parent_def_id.to_def_id())
1254                     }
1255
1256                     _ => None,
1257                 }
1258             }
1259         }
1260         Node::Expr(&hir::Expr { kind: hir::ExprKind::Closure(..), .. }) => {
1261             Some(tcx.closure_base_def_id(def_id))
1262         }
1263         Node::Item(item) => match item.kind {
1264             ItemKind::OpaqueTy(hir::OpaqueTy { impl_trait_fn, .. }) => {
1265                 impl_trait_fn.or_else(|| {
1266                     let parent_id = tcx.hir().get_parent_item(hir_id);
1267                     assert!(parent_id != hir_id && parent_id != CRATE_HIR_ID);
1268                     debug!("generics_of: parent of opaque ty {:?} is {:?}", def_id, parent_id);
1269                     // Opaque types are always nested within another item, and
1270                     // inherit the generics of the item.
1271                     Some(tcx.hir().local_def_id(parent_id).to_def_id())
1272                 })
1273             }
1274             _ => None,
1275         },
1276         _ => None,
1277     };
1278
1279     let mut opt_self = None;
1280     let mut allow_defaults = false;
1281
1282     let no_generics = hir::Generics::empty();
1283     let ast_generics = match node {
1284         Node::TraitItem(item) => &item.generics,
1285
1286         Node::ImplItem(item) => &item.generics,
1287
1288         Node::Item(item) => {
1289             match item.kind {
1290                 ItemKind::Fn(.., ref generics, _) | ItemKind::Impl { ref generics, .. } => generics,
1291
1292                 ItemKind::TyAlias(_, ref generics)
1293                 | ItemKind::Enum(_, ref generics)
1294                 | ItemKind::Struct(_, ref generics)
1295                 | ItemKind::OpaqueTy(hir::OpaqueTy { ref generics, .. })
1296                 | ItemKind::Union(_, ref generics) => {
1297                     allow_defaults = true;
1298                     generics
1299                 }
1300
1301                 ItemKind::Trait(_, _, ref generics, ..)
1302                 | ItemKind::TraitAlias(ref generics, ..) => {
1303                     // Add in the self type parameter.
1304                     //
1305                     // Something of a hack: use the node id for the trait, also as
1306                     // the node id for the Self type parameter.
1307                     let param_id = item.hir_id;
1308
1309                     opt_self = Some(ty::GenericParamDef {
1310                         index: 0,
1311                         name: kw::SelfUpper,
1312                         def_id: tcx.hir().local_def_id(param_id).to_def_id(),
1313                         pure_wrt_drop: false,
1314                         kind: ty::GenericParamDefKind::Type {
1315                             has_default: false,
1316                             object_lifetime_default: rl::Set1::Empty,
1317                             synthetic: None,
1318                         },
1319                     });
1320
1321                     allow_defaults = true;
1322                     generics
1323                 }
1324
1325                 _ => &no_generics,
1326             }
1327         }
1328
1329         Node::ForeignItem(item) => match item.kind {
1330             ForeignItemKind::Static(..) => &no_generics,
1331             ForeignItemKind::Fn(_, _, ref generics) => generics,
1332             ForeignItemKind::Type => &no_generics,
1333         },
1334
1335         _ => &no_generics,
1336     };
1337
1338     let has_self = opt_self.is_some();
1339     let mut parent_has_self = false;
1340     let mut own_start = has_self as u32;
1341     let parent_count = parent_def_id.map_or(0, |def_id| {
1342         let generics = tcx.generics_of(def_id);
1343         assert_eq!(has_self, false);
1344         parent_has_self = generics.has_self;
1345         own_start = generics.count() as u32;
1346         generics.parent_count + generics.params.len()
1347     });
1348
1349     let mut params: Vec<_> = opt_self.into_iter().collect();
1350
1351     let early_lifetimes = early_bound_lifetimes_from_generics(tcx, ast_generics);
1352     params.extend(early_lifetimes.enumerate().map(|(i, param)| ty::GenericParamDef {
1353         name: param.name.ident().name,
1354         index: own_start + i as u32,
1355         def_id: tcx.hir().local_def_id(param.hir_id).to_def_id(),
1356         pure_wrt_drop: param.pure_wrt_drop,
1357         kind: ty::GenericParamDefKind::Lifetime,
1358     }));
1359
1360     let object_lifetime_defaults = tcx.object_lifetime_defaults(hir_id);
1361
1362     // Now create the real type and const parameters.
1363     let type_start = own_start - has_self as u32 + params.len() as u32;
1364     let mut i = 0;
1365
1366     params.extend(ast_generics.params.iter().filter_map(|param| match param.kind {
1367         GenericParamKind::Lifetime { .. } => None,
1368         GenericParamKind::Type { ref default, synthetic, .. } => {
1369             if !allow_defaults && default.is_some() {
1370                 if !tcx.features().default_type_parameter_fallback {
1371                     tcx.struct_span_lint_hir(
1372                         lint::builtin::INVALID_TYPE_PARAM_DEFAULT,
1373                         param.hir_id,
1374                         param.span,
1375                         |lint| {
1376                             lint.build(
1377                                 "defaults for type parameters are only allowed in \
1378                                  `struct`, `enum`, `type`, or `trait` definitions.",
1379                             )
1380                             .emit();
1381                         },
1382                     );
1383                 }
1384             }
1385
1386             let kind = ty::GenericParamDefKind::Type {
1387                 has_default: default.is_some(),
1388                 object_lifetime_default: object_lifetime_defaults
1389                     .as_ref()
1390                     .map_or(rl::Set1::Empty, |o| o[i]),
1391                 synthetic,
1392             };
1393
1394             let param_def = ty::GenericParamDef {
1395                 index: type_start + i as u32,
1396                 name: param.name.ident().name,
1397                 def_id: tcx.hir().local_def_id(param.hir_id).to_def_id(),
1398                 pure_wrt_drop: param.pure_wrt_drop,
1399                 kind,
1400             };
1401             i += 1;
1402             Some(param_def)
1403         }
1404         GenericParamKind::Const { .. } => {
1405             let param_def = ty::GenericParamDef {
1406                 index: type_start + i as u32,
1407                 name: param.name.ident().name,
1408                 def_id: tcx.hir().local_def_id(param.hir_id).to_def_id(),
1409                 pure_wrt_drop: param.pure_wrt_drop,
1410                 kind: ty::GenericParamDefKind::Const,
1411             };
1412             i += 1;
1413             Some(param_def)
1414         }
1415     }));
1416
1417     // provide junk type parameter defs - the only place that
1418     // cares about anything but the length is instantiation,
1419     // and we don't do that for closures.
1420     if let Node::Expr(&hir::Expr { kind: hir::ExprKind::Closure(.., gen), .. }) = node {
1421         let dummy_args = if gen.is_some() {
1422             &["<resume_ty>", "<yield_ty>", "<return_ty>", "<witness>", "<upvars>"][..]
1423         } else {
1424             &["<closure_kind>", "<closure_signature>", "<upvars>"][..]
1425         };
1426
1427         params.extend(dummy_args.iter().enumerate().map(|(i, &arg)| ty::GenericParamDef {
1428             index: type_start + i as u32,
1429             name: Symbol::intern(arg),
1430             def_id,
1431             pure_wrt_drop: false,
1432             kind: ty::GenericParamDefKind::Type {
1433                 has_default: false,
1434                 object_lifetime_default: rl::Set1::Empty,
1435                 synthetic: None,
1436             },
1437         }));
1438     }
1439
1440     let param_def_id_to_index = params.iter().map(|param| (param.def_id, param.index)).collect();
1441
1442     ty::Generics {
1443         parent: parent_def_id,
1444         parent_count,
1445         params,
1446         param_def_id_to_index,
1447         has_self: has_self || parent_has_self,
1448         has_late_bound_regions: has_late_bound_regions(tcx, node),
1449     }
1450 }
1451
1452 fn are_suggestable_generic_args(generic_args: &[hir::GenericArg<'_>]) -> bool {
1453     generic_args
1454         .iter()
1455         .filter_map(|arg| match arg {
1456             hir::GenericArg::Type(ty) => Some(ty),
1457             _ => None,
1458         })
1459         .any(is_suggestable_infer_ty)
1460 }
1461
1462 /// Whether `ty` is a type with `_` placeholders that can be inferred. Used in diagnostics only to
1463 /// use inference to provide suggestions for the appropriate type if possible.
1464 fn is_suggestable_infer_ty(ty: &hir::Ty<'_>) -> bool {
1465     use hir::TyKind::*;
1466     match &ty.kind {
1467         Infer => true,
1468         Slice(ty) | Array(ty, _) => is_suggestable_infer_ty(ty),
1469         Tup(tys) => tys.iter().any(is_suggestable_infer_ty),
1470         Ptr(mut_ty) | Rptr(_, mut_ty) => is_suggestable_infer_ty(mut_ty.ty),
1471         OpaqueDef(_, generic_args) => are_suggestable_generic_args(generic_args),
1472         Path(hir::QPath::TypeRelative(ty, segment)) => {
1473             is_suggestable_infer_ty(ty) || are_suggestable_generic_args(segment.generic_args().args)
1474         }
1475         Path(hir::QPath::Resolved(ty_opt, hir::Path { segments, .. })) => {
1476             ty_opt.map_or(false, is_suggestable_infer_ty)
1477                 || segments
1478                     .iter()
1479                     .any(|segment| are_suggestable_generic_args(segment.generic_args().args))
1480         }
1481         _ => false,
1482     }
1483 }
1484
1485 pub fn get_infer_ret_ty(output: &'hir hir::FnRetTy<'hir>) -> Option<&'hir hir::Ty<'hir>> {
1486     if let hir::FnRetTy::Return(ref ty) = output {
1487         if is_suggestable_infer_ty(ty) {
1488             return Some(&**ty);
1489         }
1490     }
1491     None
1492 }
1493
1494 fn fn_sig(tcx: TyCtxt<'_>, def_id: DefId) -> ty::PolyFnSig<'_> {
1495     use rustc_hir::Node::*;
1496     use rustc_hir::*;
1497
1498     let def_id = def_id.expect_local();
1499     let hir_id = tcx.hir().as_local_hir_id(def_id);
1500
1501     let icx = ItemCtxt::new(tcx, def_id.to_def_id());
1502
1503     match tcx.hir().get(hir_id) {
1504         TraitItem(hir::TraitItem {
1505             kind: TraitItemKind::Fn(sig, TraitFn::Provided(_)),
1506             ident,
1507             generics,
1508             ..
1509         })
1510         | ImplItem(hir::ImplItem { kind: ImplItemKind::Fn(sig, _), ident, generics, .. })
1511         | Item(hir::Item { kind: ItemKind::Fn(sig, generics, _), ident, .. }) => {
1512             match get_infer_ret_ty(&sig.decl.output) {
1513                 Some(ty) => {
1514                     let fn_sig = tcx.typeck(def_id).liberated_fn_sigs()[hir_id];
1515                     let mut visitor = PlaceholderHirTyCollector::default();
1516                     visitor.visit_ty(ty);
1517                     let mut diag = bad_placeholder_type(tcx, visitor.0);
1518                     let ret_ty = fn_sig.output();
1519                     if ret_ty != tcx.ty_error() {
1520                         diag.span_suggestion(
1521                             ty.span,
1522                             "replace with the correct return type",
1523                             ret_ty.to_string(),
1524                             Applicability::MaybeIncorrect,
1525                         );
1526                     }
1527                     diag.emit();
1528                     ty::Binder::bind(fn_sig)
1529                 }
1530                 None => AstConv::ty_of_fn(
1531                     &icx,
1532                     sig.header.unsafety,
1533                     sig.header.abi,
1534                     &sig.decl,
1535                     &generics,
1536                     Some(ident.span),
1537                 ),
1538             }
1539         }
1540
1541         TraitItem(hir::TraitItem {
1542             kind: TraitItemKind::Fn(FnSig { header, decl }, _),
1543             ident,
1544             generics,
1545             ..
1546         }) => {
1547             AstConv::ty_of_fn(&icx, header.unsafety, header.abi, decl, &generics, Some(ident.span))
1548         }
1549
1550         ForeignItem(&hir::ForeignItem {
1551             kind: ForeignItemKind::Fn(ref fn_decl, _, _),
1552             ident,
1553             ..
1554         }) => {
1555             let abi = tcx.hir().get_foreign_abi(hir_id);
1556             compute_sig_of_foreign_fn_decl(tcx, def_id.to_def_id(), fn_decl, abi, ident)
1557         }
1558
1559         Ctor(data) | Variant(hir::Variant { data, .. }) if data.ctor_hir_id().is_some() => {
1560             let ty = tcx.type_of(tcx.hir().get_parent_did(hir_id).to_def_id());
1561             let inputs =
1562                 data.fields().iter().map(|f| tcx.type_of(tcx.hir().local_def_id(f.hir_id)));
1563             ty::Binder::bind(tcx.mk_fn_sig(
1564                 inputs,
1565                 ty,
1566                 false,
1567                 hir::Unsafety::Normal,
1568                 abi::Abi::Rust,
1569             ))
1570         }
1571
1572         Expr(&hir::Expr { kind: hir::ExprKind::Closure(..), .. }) => {
1573             // Closure signatures are not like other function
1574             // signatures and cannot be accessed through `fn_sig`. For
1575             // example, a closure signature excludes the `self`
1576             // argument. In any case they are embedded within the
1577             // closure type as part of the `ClosureSubsts`.
1578             //
1579             // To get the signature of a closure, you should use the
1580             // `sig` method on the `ClosureSubsts`:
1581             //
1582             //    substs.as_closure().sig(def_id, tcx)
1583             bug!(
1584                 "to get the signature of a closure, use `substs.as_closure().sig()` not `fn_sig()`",
1585             );
1586         }
1587
1588         x => {
1589             bug!("unexpected sort of node in fn_sig(): {:?}", x);
1590         }
1591     }
1592 }
1593
1594 fn impl_trait_ref(tcx: TyCtxt<'_>, def_id: DefId) -> Option<ty::TraitRef<'_>> {
1595     let icx = ItemCtxt::new(tcx, def_id);
1596
1597     let hir_id = tcx.hir().as_local_hir_id(def_id.expect_local());
1598     match tcx.hir().expect_item(hir_id).kind {
1599         hir::ItemKind::Impl { ref of_trait, .. } => of_trait.as_ref().map(|ast_trait_ref| {
1600             let selfty = tcx.type_of(def_id);
1601             AstConv::instantiate_mono_trait_ref(&icx, ast_trait_ref, selfty)
1602         }),
1603         _ => bug!(),
1604     }
1605 }
1606
1607 fn impl_polarity(tcx: TyCtxt<'_>, def_id: DefId) -> ty::ImplPolarity {
1608     let hir_id = tcx.hir().as_local_hir_id(def_id.expect_local());
1609     let is_rustc_reservation = tcx.has_attr(def_id, sym::rustc_reservation_impl);
1610     let item = tcx.hir().expect_item(hir_id);
1611     match &item.kind {
1612         hir::ItemKind::Impl { polarity: hir::ImplPolarity::Negative(span), of_trait, .. } => {
1613             if is_rustc_reservation {
1614                 let span = span.to(of_trait.as_ref().map(|t| t.path.span).unwrap_or(*span));
1615                 tcx.sess.span_err(span, "reservation impls can't be negative");
1616             }
1617             ty::ImplPolarity::Negative
1618         }
1619         hir::ItemKind::Impl { polarity: hir::ImplPolarity::Positive, of_trait: None, .. } => {
1620             if is_rustc_reservation {
1621                 tcx.sess.span_err(item.span, "reservation impls can't be inherent");
1622             }
1623             ty::ImplPolarity::Positive
1624         }
1625         hir::ItemKind::Impl {
1626             polarity: hir::ImplPolarity::Positive, of_trait: Some(_), ..
1627         } => {
1628             if is_rustc_reservation {
1629                 ty::ImplPolarity::Reservation
1630             } else {
1631                 ty::ImplPolarity::Positive
1632             }
1633         }
1634         ref item => bug!("impl_polarity: {:?} not an impl", item),
1635     }
1636 }
1637
1638 /// Returns the early-bound lifetimes declared in this generics
1639 /// listing. For anything other than fns/methods, this is just all
1640 /// the lifetimes that are declared. For fns or methods, we have to
1641 /// screen out those that do not appear in any where-clauses etc using
1642 /// `resolve_lifetime::early_bound_lifetimes`.
1643 fn early_bound_lifetimes_from_generics<'a, 'tcx: 'a>(
1644     tcx: TyCtxt<'tcx>,
1645     generics: &'a hir::Generics<'a>,
1646 ) -> impl Iterator<Item = &'a hir::GenericParam<'a>> + Captures<'tcx> {
1647     generics.params.iter().filter(move |param| match param.kind {
1648         GenericParamKind::Lifetime { .. } => !tcx.is_late_bound(param.hir_id),
1649         _ => false,
1650     })
1651 }
1652
1653 /// Returns a list of type predicates for the definition with ID `def_id`, including inferred
1654 /// lifetime constraints. This includes all predicates returned by `explicit_predicates_of`, plus
1655 /// inferred constraints concerning which regions outlive other regions.
1656 fn predicates_defined_on(tcx: TyCtxt<'_>, def_id: DefId) -> ty::GenericPredicates<'_> {
1657     debug!("predicates_defined_on({:?})", def_id);
1658     let mut result = tcx.explicit_predicates_of(def_id);
1659     debug!("predicates_defined_on: explicit_predicates_of({:?}) = {:?}", def_id, result,);
1660     let inferred_outlives = tcx.inferred_outlives_of(def_id);
1661     if !inferred_outlives.is_empty() {
1662         debug!(
1663             "predicates_defined_on: inferred_outlives_of({:?}) = {:?}",
1664             def_id, inferred_outlives,
1665         );
1666         if result.predicates.is_empty() {
1667             result.predicates = inferred_outlives;
1668         } else {
1669             result.predicates = tcx
1670                 .arena
1671                 .alloc_from_iter(result.predicates.iter().chain(inferred_outlives).copied());
1672         }
1673     }
1674     debug!("predicates_defined_on({:?}) = {:?}", def_id, result);
1675     result
1676 }
1677
1678 /// Returns a list of all type predicates (explicit and implicit) for the definition with
1679 /// ID `def_id`. This includes all predicates returned by `predicates_defined_on`, plus
1680 /// `Self: Trait` predicates for traits.
1681 fn predicates_of(tcx: TyCtxt<'_>, def_id: DefId) -> ty::GenericPredicates<'_> {
1682     let mut result = tcx.predicates_defined_on(def_id);
1683
1684     if tcx.is_trait(def_id) {
1685         // For traits, add `Self: Trait` predicate. This is
1686         // not part of the predicates that a user writes, but it
1687         // is something that one must prove in order to invoke a
1688         // method or project an associated type.
1689         //
1690         // In the chalk setup, this predicate is not part of the
1691         // "predicates" for a trait item. But it is useful in
1692         // rustc because if you directly (e.g.) invoke a trait
1693         // method like `Trait::method(...)`, you must naturally
1694         // prove that the trait applies to the types that were
1695         // used, and adding the predicate into this list ensures
1696         // that this is done.
1697         let span = tcx.sess.source_map().guess_head_span(tcx.def_span(def_id));
1698         result.predicates =
1699             tcx.arena.alloc_from_iter(result.predicates.iter().copied().chain(std::iter::once((
1700                 ty::TraitRef::identity(tcx, def_id).without_const().to_predicate(tcx),
1701                 span,
1702             ))));
1703     }
1704     debug!("predicates_of(def_id={:?}) = {:?}", def_id, result);
1705     result
1706 }
1707
1708 /// Returns a list of user-specified type predicates for the definition with ID `def_id`.
1709 /// N.B., this does not include any implied/inferred constraints.
1710 fn explicit_predicates_of(tcx: TyCtxt<'_>, def_id: DefId) -> ty::GenericPredicates<'_> {
1711     use rustc_hir::*;
1712
1713     debug!("explicit_predicates_of(def_id={:?})", def_id);
1714
1715     /// A data structure with unique elements, which preserves order of insertion.
1716     /// Preserving the order of insertion is important here so as not to break
1717     /// compile-fail UI tests.
1718     // FIXME(eddyb) just use `IndexSet` from `indexmap`.
1719     struct UniquePredicates<'tcx> {
1720         predicates: Vec<(ty::Predicate<'tcx>, Span)>,
1721         uniques: FxHashSet<(ty::Predicate<'tcx>, Span)>,
1722     }
1723
1724     impl<'tcx> UniquePredicates<'tcx> {
1725         fn new() -> Self {
1726             UniquePredicates { predicates: vec![], uniques: FxHashSet::default() }
1727         }
1728
1729         fn push(&mut self, value: (ty::Predicate<'tcx>, Span)) {
1730             if self.uniques.insert(value) {
1731                 self.predicates.push(value);
1732             }
1733         }
1734
1735         fn extend<I: IntoIterator<Item = (ty::Predicate<'tcx>, Span)>>(&mut self, iter: I) {
1736             for value in iter {
1737                 self.push(value);
1738             }
1739         }
1740     }
1741
1742     let hir_id = tcx.hir().as_local_hir_id(def_id.expect_local());
1743     let node = tcx.hir().get(hir_id);
1744
1745     let mut is_trait = None;
1746     let mut is_default_impl_trait = None;
1747     let mut is_trait_associated_type = None;
1748
1749     let icx = ItemCtxt::new(tcx, def_id);
1750     let constness = icx.default_constness_for_trait_bounds();
1751
1752     const NO_GENERICS: &hir::Generics<'_> = &hir::Generics::empty();
1753
1754     let mut predicates = UniquePredicates::new();
1755
1756     let ast_generics = match node {
1757         Node::TraitItem(item) => {
1758             if let hir::TraitItemKind::Type(bounds, _) = item.kind {
1759                 is_trait_associated_type = Some((bounds, item.span));
1760             }
1761             &item.generics
1762         }
1763
1764         Node::ImplItem(item) => &item.generics,
1765
1766         Node::Item(item) => {
1767             match item.kind {
1768                 ItemKind::Impl { defaultness, ref generics, .. } => {
1769                     if defaultness.is_default() {
1770                         is_default_impl_trait = tcx.impl_trait_ref(def_id);
1771                     }
1772                     generics
1773                 }
1774                 ItemKind::Fn(.., ref generics, _)
1775                 | ItemKind::TyAlias(_, ref generics)
1776                 | ItemKind::Enum(_, ref generics)
1777                 | ItemKind::Struct(_, ref generics)
1778                 | ItemKind::Union(_, ref generics) => generics,
1779
1780                 ItemKind::Trait(_, _, ref generics, .., items) => {
1781                     is_trait = Some((ty::TraitRef::identity(tcx, def_id), items));
1782                     generics
1783                 }
1784                 ItemKind::TraitAlias(ref generics, _) => {
1785                     is_trait = Some((ty::TraitRef::identity(tcx, def_id), &[]));
1786                     generics
1787                 }
1788                 ItemKind::OpaqueTy(OpaqueTy {
1789                     ref bounds,
1790                     impl_trait_fn,
1791                     ref generics,
1792                     origin: _,
1793                 }) => {
1794                     let bounds_predicates = ty::print::with_no_queries(|| {
1795                         let substs = InternalSubsts::identity_for_item(tcx, def_id);
1796                         let opaque_ty = tcx.mk_opaque(def_id, substs);
1797
1798                         // Collect the bounds, i.e., the `A + B + 'c` in `impl A + B + 'c`.
1799                         let bounds = AstConv::compute_bounds(
1800                             &icx,
1801                             opaque_ty,
1802                             bounds,
1803                             SizedByDefault::Yes,
1804                             tcx.def_span(def_id),
1805                         );
1806
1807                         bounds.predicates(tcx, opaque_ty)
1808                     });
1809                     if impl_trait_fn.is_some() {
1810                         // opaque types
1811                         return ty::GenericPredicates {
1812                             parent: None,
1813                             predicates: tcx.arena.alloc_from_iter(bounds_predicates),
1814                         };
1815                     } else {
1816                         // named opaque types
1817                         predicates.extend(bounds_predicates);
1818                         generics
1819                     }
1820                 }
1821
1822                 _ => NO_GENERICS,
1823             }
1824         }
1825
1826         Node::ForeignItem(item) => match item.kind {
1827             ForeignItemKind::Static(..) => NO_GENERICS,
1828             ForeignItemKind::Fn(_, _, ref generics) => generics,
1829             ForeignItemKind::Type => NO_GENERICS,
1830         },
1831
1832         _ => NO_GENERICS,
1833     };
1834
1835     let generics = tcx.generics_of(def_id);
1836     let parent_count = generics.parent_count as u32;
1837     let has_own_self = generics.has_self && parent_count == 0;
1838
1839     // Below we'll consider the bounds on the type parameters (including `Self`)
1840     // and the explicit where-clauses, but to get the full set of predicates
1841     // on a trait we need to add in the supertrait bounds and bounds found on
1842     // associated types.
1843     if let Some((_trait_ref, _)) = is_trait {
1844         predicates.extend(tcx.super_predicates_of(def_id).predicates.iter().cloned());
1845     }
1846
1847     // In default impls, we can assume that the self type implements
1848     // the trait. So in:
1849     //
1850     //     default impl Foo for Bar { .. }
1851     //
1852     // we add a default where clause `Foo: Bar`. We do a similar thing for traits
1853     // (see below). Recall that a default impl is not itself an impl, but rather a
1854     // set of defaults that can be incorporated into another impl.
1855     if let Some(trait_ref) = is_default_impl_trait {
1856         predicates.push((
1857             trait_ref.to_poly_trait_ref().without_const().to_predicate(tcx),
1858             tcx.def_span(def_id),
1859         ));
1860     }
1861
1862     // Collect the region predicates that were declared inline as
1863     // well. In the case of parameters declared on a fn or method, we
1864     // have to be careful to only iterate over early-bound regions.
1865     let mut index = parent_count + has_own_self as u32;
1866     for param in early_bound_lifetimes_from_generics(tcx, ast_generics) {
1867         let region = tcx.mk_region(ty::ReEarlyBound(ty::EarlyBoundRegion {
1868             def_id: tcx.hir().local_def_id(param.hir_id).to_def_id(),
1869             index,
1870             name: param.name.ident().name,
1871         }));
1872         index += 1;
1873
1874         match param.kind {
1875             GenericParamKind::Lifetime { .. } => {
1876                 param.bounds.iter().for_each(|bound| match bound {
1877                     hir::GenericBound::Outlives(lt) => {
1878                         let bound = AstConv::ast_region_to_region(&icx, &lt, None);
1879                         let outlives = ty::Binder::bind(ty::OutlivesPredicate(region, bound));
1880                         predicates.push((outlives.to_predicate(tcx), lt.span));
1881                     }
1882                     _ => bug!(),
1883                 });
1884             }
1885             _ => bug!(),
1886         }
1887     }
1888
1889     // Collect the predicates that were written inline by the user on each
1890     // type parameter (e.g., `<T: Foo>`).
1891     for param in ast_generics.params {
1892         match param.kind {
1893             // We already dealt with early bound lifetimes above.
1894             GenericParamKind::Lifetime { .. } => (),
1895             GenericParamKind::Type { .. } => {
1896                 let name = param.name.ident().name;
1897                 let param_ty = ty::ParamTy::new(index, name).to_ty(tcx);
1898                 index += 1;
1899
1900                 let sized = SizedByDefault::Yes;
1901                 let bounds =
1902                     AstConv::compute_bounds(&icx, param_ty, &param.bounds, sized, param.span);
1903                 predicates.extend(bounds.predicates(tcx, param_ty));
1904             }
1905             GenericParamKind::Const { .. } => {
1906                 // Bounds on const parameters are currently not possible.
1907                 debug_assert!(param.bounds.is_empty());
1908                 index += 1;
1909             }
1910         }
1911     }
1912
1913     // Add in the bounds that appear in the where-clause.
1914     let where_clause = &ast_generics.where_clause;
1915     for predicate in where_clause.predicates {
1916         match predicate {
1917             &hir::WherePredicate::BoundPredicate(ref bound_pred) => {
1918                 let ty = icx.to_ty(&bound_pred.bounded_ty);
1919
1920                 // Keep the type around in a dummy predicate, in case of no bounds.
1921                 // That way, `where Ty:` is not a complete noop (see #53696) and `Ty`
1922                 // is still checked for WF.
1923                 if bound_pred.bounds.is_empty() {
1924                     if let ty::Param(_) = ty.kind {
1925                         // This is a `where T:`, which can be in the HIR from the
1926                         // transformation that moves `?Sized` to `T`'s declaration.
1927                         // We can skip the predicate because type parameters are
1928                         // trivially WF, but also we *should*, to avoid exposing
1929                         // users who never wrote `where Type:,` themselves, to
1930                         // compiler/tooling bugs from not handling WF predicates.
1931                     } else {
1932                         let span = bound_pred.bounded_ty.span;
1933                         let re_root_empty = tcx.lifetimes.re_root_empty;
1934                         let predicate = ty::OutlivesPredicate(ty, re_root_empty);
1935                         predicates.push((
1936                             ty::PredicateAtom::TypeOutlives(predicate)
1937                                 .potentially_quantified(tcx, ty::PredicateKind::ForAll),
1938                             span,
1939                         ));
1940                     }
1941                 }
1942
1943                 for bound in bound_pred.bounds.iter() {
1944                     match bound {
1945                         &hir::GenericBound::Trait(ref poly_trait_ref, modifier) => {
1946                             let constness = match modifier {
1947                                 hir::TraitBoundModifier::MaybeConst => hir::Constness::NotConst,
1948                                 hir::TraitBoundModifier::None => constness,
1949                                 hir::TraitBoundModifier::Maybe => bug!("this wasn't handled"),
1950                             };
1951
1952                             let mut bounds = Bounds::default();
1953                             let _ = AstConv::instantiate_poly_trait_ref(
1954                                 &icx,
1955                                 poly_trait_ref,
1956                                 constness,
1957                                 ty,
1958                                 &mut bounds,
1959                             );
1960                             predicates.extend(bounds.predicates(tcx, ty));
1961                         }
1962
1963                         &hir::GenericBound::Outlives(ref lifetime) => {
1964                             let region = AstConv::ast_region_to_region(&icx, lifetime, None);
1965                             predicates.push((
1966                                 ty::PredicateAtom::TypeOutlives(ty::OutlivesPredicate(ty, region))
1967                                     .potentially_quantified(tcx, ty::PredicateKind::ForAll),
1968                                 lifetime.span,
1969                             ))
1970                         }
1971                     }
1972                 }
1973             }
1974
1975             &hir::WherePredicate::RegionPredicate(ref region_pred) => {
1976                 let r1 = AstConv::ast_region_to_region(&icx, &region_pred.lifetime, None);
1977                 predicates.extend(region_pred.bounds.iter().map(|bound| {
1978                     let (r2, span) = match bound {
1979                         hir::GenericBound::Outlives(lt) => {
1980                             (AstConv::ast_region_to_region(&icx, lt, None), lt.span)
1981                         }
1982                         _ => bug!(),
1983                     };
1984                     let pred = ty::PredicateAtom::RegionOutlives(ty::OutlivesPredicate(r1, r2));
1985
1986                     (pred.potentially_quantified(icx.tcx, ty::PredicateKind::ForAll), span)
1987                 }))
1988             }
1989
1990             &hir::WherePredicate::EqPredicate(..) => {
1991                 // FIXME(#20041)
1992             }
1993         }
1994     }
1995
1996     // Add predicates from associated type bounds (`type X: Bound`)
1997     if tcx.features().generic_associated_types {
1998         // New behavior: bounds declared on associate type are predicates of that
1999         // associated type. Not the default because it needs more testing.
2000         if let Some((bounds, span)) = is_trait_associated_type {
2001             let projection_ty =
2002                 tcx.mk_projection(def_id, InternalSubsts::identity_for_item(tcx, def_id));
2003
2004             predicates.extend(associated_item_bounds(tcx, def_id, bounds, projection_ty, span))
2005         }
2006     } else if let Some((self_trait_ref, trait_items)) = is_trait {
2007         // Current behavior: bounds declared on associate type are predicates
2008         // of its parent trait.
2009         predicates.extend(trait_items.iter().flat_map(|trait_item_ref| {
2010             trait_associated_item_predicates(tcx, def_id, self_trait_ref, trait_item_ref)
2011         }))
2012     }
2013
2014     let mut predicates = predicates.predicates;
2015
2016     // Subtle: before we store the predicates into the tcx, we
2017     // sort them so that predicates like `T: Foo<Item=U>` come
2018     // before uses of `U`.  This avoids false ambiguity errors
2019     // in trait checking. See `setup_constraining_predicates`
2020     // for details.
2021     if let Node::Item(&Item { kind: ItemKind::Impl { .. }, .. }) = node {
2022         let self_ty = tcx.type_of(def_id);
2023         let trait_ref = tcx.impl_trait_ref(def_id);
2024         cgp::setup_constraining_predicates(
2025             tcx,
2026             &mut predicates,
2027             trait_ref,
2028             &mut cgp::parameters_for_impl(self_ty, trait_ref),
2029         );
2030     }
2031
2032     let result = ty::GenericPredicates {
2033         parent: generics.parent,
2034         predicates: tcx.arena.alloc_from_iter(predicates),
2035     };
2036     debug!("explicit_predicates_of(def_id={:?}) = {:?}", def_id, result);
2037     result
2038 }
2039
2040 fn trait_associated_item_predicates(
2041     tcx: TyCtxt<'tcx>,
2042     def_id: DefId,
2043     self_trait_ref: ty::TraitRef<'tcx>,
2044     trait_item_ref: &hir::TraitItemRef,
2045 ) -> Vec<(ty::Predicate<'tcx>, Span)> {
2046     let trait_item = tcx.hir().trait_item(trait_item_ref.id);
2047     let item_def_id = tcx.hir().local_def_id(trait_item_ref.id.hir_id);
2048     let bounds = match trait_item.kind {
2049         hir::TraitItemKind::Type(ref bounds, _) => bounds,
2050         _ => return Vec::new(),
2051     };
2052
2053     if !tcx.generics_of(item_def_id).params.is_empty() {
2054         // For GATs the substs provided to the mk_projection call below are
2055         // wrong. We should emit a feature gate error if we get here so skip
2056         // this type.
2057         tcx.sess.delay_span_bug(trait_item.span, "gats used without feature gate");
2058         return Vec::new();
2059     }
2060
2061     let assoc_ty = tcx.mk_projection(
2062         tcx.hir().local_def_id(trait_item.hir_id).to_def_id(),
2063         self_trait_ref.substs,
2064     );
2065
2066     associated_item_bounds(tcx, def_id, bounds, assoc_ty, trait_item.span)
2067 }
2068
2069 fn associated_item_bounds(
2070     tcx: TyCtxt<'tcx>,
2071     def_id: DefId,
2072     bounds: &'tcx [hir::GenericBound<'tcx>],
2073     projection_ty: Ty<'tcx>,
2074     span: Span,
2075 ) -> Vec<(ty::Predicate<'tcx>, Span)> {
2076     let bounds = AstConv::compute_bounds(
2077         &ItemCtxt::new(tcx, def_id),
2078         projection_ty,
2079         bounds,
2080         SizedByDefault::Yes,
2081         span,
2082     );
2083
2084     let predicates = bounds.predicates(tcx, projection_ty);
2085
2086     predicates
2087 }
2088
2089 /// Converts a specific `GenericBound` from the AST into a set of
2090 /// predicates that apply to the self type. A vector is returned
2091 /// because this can be anywhere from zero predicates (`T: ?Sized` adds no
2092 /// predicates) to one (`T: Foo`) to many (`T: Bar<X = i32>` adds `T: Bar`
2093 /// and `<T as Bar>::X == i32`).
2094 fn predicates_from_bound<'tcx>(
2095     astconv: &dyn AstConv<'tcx>,
2096     param_ty: Ty<'tcx>,
2097     bound: &'tcx hir::GenericBound<'tcx>,
2098     constness: hir::Constness,
2099 ) -> Vec<(ty::Predicate<'tcx>, Span)> {
2100     match *bound {
2101         hir::GenericBound::Trait(ref tr, modifier) => {
2102             let constness = match modifier {
2103                 hir::TraitBoundModifier::Maybe => return vec![],
2104                 hir::TraitBoundModifier::MaybeConst => hir::Constness::NotConst,
2105                 hir::TraitBoundModifier::None => constness,
2106             };
2107
2108             let mut bounds = Bounds::default();
2109             let _ = astconv.instantiate_poly_trait_ref(tr, constness, param_ty, &mut bounds);
2110             bounds.predicates(astconv.tcx(), param_ty)
2111         }
2112         hir::GenericBound::Outlives(ref lifetime) => {
2113             let region = astconv.ast_region_to_region(lifetime, None);
2114             let pred = ty::PredicateAtom::TypeOutlives(ty::OutlivesPredicate(param_ty, region))
2115                 .potentially_quantified(astconv.tcx(), ty::PredicateKind::ForAll);
2116             vec![(pred, lifetime.span)]
2117         }
2118     }
2119 }
2120
2121 fn compute_sig_of_foreign_fn_decl<'tcx>(
2122     tcx: TyCtxt<'tcx>,
2123     def_id: DefId,
2124     decl: &'tcx hir::FnDecl<'tcx>,
2125     abi: abi::Abi,
2126     ident: Ident,
2127 ) -> ty::PolyFnSig<'tcx> {
2128     let unsafety = if abi == abi::Abi::RustIntrinsic {
2129         intrinsic_operation_unsafety(tcx.item_name(def_id))
2130     } else {
2131         hir::Unsafety::Unsafe
2132     };
2133     let fty = AstConv::ty_of_fn(
2134         &ItemCtxt::new(tcx, def_id),
2135         unsafety,
2136         abi,
2137         decl,
2138         &hir::Generics::empty(),
2139         Some(ident.span),
2140     );
2141
2142     // Feature gate SIMD types in FFI, since I am not sure that the
2143     // ABIs are handled at all correctly. -huonw
2144     if abi != abi::Abi::RustIntrinsic
2145         && abi != abi::Abi::PlatformIntrinsic
2146         && !tcx.features().simd_ffi
2147     {
2148         let check = |ast_ty: &hir::Ty<'_>, ty: Ty<'_>| {
2149             if ty.is_simd() {
2150                 let snip = tcx
2151                     .sess
2152                     .source_map()
2153                     .span_to_snippet(ast_ty.span)
2154                     .map_or(String::new(), |s| format!(" `{}`", s));
2155                 tcx.sess
2156                     .struct_span_err(
2157                         ast_ty.span,
2158                         &format!(
2159                             "use of SIMD type{} in FFI is highly experimental and \
2160                              may result in invalid code",
2161                             snip
2162                         ),
2163                     )
2164                     .help("add `#![feature(simd_ffi)]` to the crate attributes to enable")
2165                     .emit();
2166             }
2167         };
2168         for (input, ty) in decl.inputs.iter().zip(fty.inputs().skip_binder()) {
2169             check(&input, ty)
2170         }
2171         if let hir::FnRetTy::Return(ref ty) = decl.output {
2172             check(&ty, fty.output().skip_binder())
2173         }
2174     }
2175
2176     fty
2177 }
2178
2179 fn is_foreign_item(tcx: TyCtxt<'_>, def_id: DefId) -> bool {
2180     match tcx.hir().get_if_local(def_id) {
2181         Some(Node::ForeignItem(..)) => true,
2182         Some(_) => false,
2183         _ => bug!("is_foreign_item applied to non-local def-id {:?}", def_id),
2184     }
2185 }
2186
2187 fn static_mutability(tcx: TyCtxt<'_>, def_id: DefId) -> Option<hir::Mutability> {
2188     match tcx.hir().get_if_local(def_id) {
2189         Some(
2190             Node::Item(&hir::Item { kind: hir::ItemKind::Static(_, mutbl, _), .. })
2191             | Node::ForeignItem(&hir::ForeignItem {
2192                 kind: hir::ForeignItemKind::Static(_, mutbl),
2193                 ..
2194             }),
2195         ) => Some(mutbl),
2196         Some(_) => None,
2197         _ => bug!("static_mutability applied to non-local def-id {:?}", def_id),
2198     }
2199 }
2200
2201 fn generator_kind(tcx: TyCtxt<'_>, def_id: DefId) -> Option<hir::GeneratorKind> {
2202     match tcx.hir().get_if_local(def_id) {
2203         Some(Node::Expr(&rustc_hir::Expr {
2204             kind: rustc_hir::ExprKind::Closure(_, _, body_id, _, _),
2205             ..
2206         })) => tcx.hir().body(body_id).generator_kind(),
2207         Some(_) => None,
2208         _ => bug!("generator_kind applied to non-local def-id {:?}", def_id),
2209     }
2210 }
2211
2212 fn from_target_feature(
2213     tcx: TyCtxt<'_>,
2214     id: DefId,
2215     attr: &ast::Attribute,
2216     supported_target_features: &FxHashMap<String, Option<Symbol>>,
2217     target_features: &mut Vec<Symbol>,
2218 ) {
2219     let list = match attr.meta_item_list() {
2220         Some(list) => list,
2221         None => return,
2222     };
2223     let bad_item = |span| {
2224         let msg = "malformed `target_feature` attribute input";
2225         let code = "enable = \"..\"".to_owned();
2226         tcx.sess
2227             .struct_span_err(span, &msg)
2228             .span_suggestion(span, "must be of the form", code, Applicability::HasPlaceholders)
2229             .emit();
2230     };
2231     let rust_features = tcx.features();
2232     for item in list {
2233         // Only `enable = ...` is accepted in the meta-item list.
2234         if !item.has_name(sym::enable) {
2235             bad_item(item.span());
2236             continue;
2237         }
2238
2239         // Must be of the form `enable = "..."` (a string).
2240         let value = match item.value_str() {
2241             Some(value) => value,
2242             None => {
2243                 bad_item(item.span());
2244                 continue;
2245             }
2246         };
2247
2248         // We allow comma separation to enable multiple features.
2249         target_features.extend(value.as_str().split(',').filter_map(|feature| {
2250             let feature_gate = match supported_target_features.get(feature) {
2251                 Some(g) => g,
2252                 None => {
2253                     let msg =
2254                         format!("the feature named `{}` is not valid for this target", feature);
2255                     let mut err = tcx.sess.struct_span_err(item.span(), &msg);
2256                     err.span_label(
2257                         item.span(),
2258                         format!("`{}` is not valid for this target", feature),
2259                     );
2260                     if feature.starts_with('+') {
2261                         let valid = supported_target_features.contains_key(&feature[1..]);
2262                         if valid {
2263                             err.help("consider removing the leading `+` in the feature name");
2264                         }
2265                     }
2266                     err.emit();
2267                     return None;
2268                 }
2269             };
2270
2271             // Only allow features whose feature gates have been enabled.
2272             let allowed = match feature_gate.as_ref().copied() {
2273                 Some(sym::arm_target_feature) => rust_features.arm_target_feature,
2274                 Some(sym::aarch64_target_feature) => rust_features.aarch64_target_feature,
2275                 Some(sym::hexagon_target_feature) => rust_features.hexagon_target_feature,
2276                 Some(sym::powerpc_target_feature) => rust_features.powerpc_target_feature,
2277                 Some(sym::mips_target_feature) => rust_features.mips_target_feature,
2278                 Some(sym::riscv_target_feature) => rust_features.riscv_target_feature,
2279                 Some(sym::avx512_target_feature) => rust_features.avx512_target_feature,
2280                 Some(sym::mmx_target_feature) => rust_features.mmx_target_feature,
2281                 Some(sym::sse4a_target_feature) => rust_features.sse4a_target_feature,
2282                 Some(sym::tbm_target_feature) => rust_features.tbm_target_feature,
2283                 Some(sym::wasm_target_feature) => rust_features.wasm_target_feature,
2284                 Some(sym::cmpxchg16b_target_feature) => rust_features.cmpxchg16b_target_feature,
2285                 Some(sym::adx_target_feature) => rust_features.adx_target_feature,
2286                 Some(sym::movbe_target_feature) => rust_features.movbe_target_feature,
2287                 Some(sym::rtm_target_feature) => rust_features.rtm_target_feature,
2288                 Some(sym::f16c_target_feature) => rust_features.f16c_target_feature,
2289                 Some(name) => bug!("unknown target feature gate {}", name),
2290                 None => true,
2291             };
2292             if !allowed && id.is_local() {
2293                 feature_err(
2294                     &tcx.sess.parse_sess,
2295                     feature_gate.unwrap(),
2296                     item.span(),
2297                     &format!("the target feature `{}` is currently unstable", feature),
2298                 )
2299                 .emit();
2300             }
2301             Some(Symbol::intern(feature))
2302         }));
2303     }
2304 }
2305
2306 fn linkage_by_name(tcx: TyCtxt<'_>, def_id: DefId, name: &str) -> Linkage {
2307     use rustc_middle::mir::mono::Linkage::*;
2308
2309     // Use the names from src/llvm/docs/LangRef.rst here. Most types are only
2310     // applicable to variable declarations and may not really make sense for
2311     // Rust code in the first place but allow them anyway and trust that the
2312     // user knows what s/he's doing. Who knows, unanticipated use cases may pop
2313     // up in the future.
2314     //
2315     // ghost, dllimport, dllexport and linkonce_odr_autohide are not supported
2316     // and don't have to be, LLVM treats them as no-ops.
2317     match name {
2318         "appending" => Appending,
2319         "available_externally" => AvailableExternally,
2320         "common" => Common,
2321         "extern_weak" => ExternalWeak,
2322         "external" => External,
2323         "internal" => Internal,
2324         "linkonce" => LinkOnceAny,
2325         "linkonce_odr" => LinkOnceODR,
2326         "private" => Private,
2327         "weak" => WeakAny,
2328         "weak_odr" => WeakODR,
2329         _ => {
2330             let span = tcx.hir().span_if_local(def_id);
2331             if let Some(span) = span {
2332                 tcx.sess.span_fatal(span, "invalid linkage specified")
2333             } else {
2334                 tcx.sess.fatal(&format!("invalid linkage specified: {}", name))
2335             }
2336         }
2337     }
2338 }
2339
2340 fn codegen_fn_attrs(tcx: TyCtxt<'_>, id: DefId) -> CodegenFnAttrs {
2341     let attrs = tcx.get_attrs(id);
2342
2343     let mut codegen_fn_attrs = CodegenFnAttrs::new();
2344     if should_inherit_track_caller(tcx, id) {
2345         codegen_fn_attrs.flags |= CodegenFnAttrFlags::TRACK_CALLER;
2346     }
2347
2348     let supported_target_features = tcx.supported_target_features(LOCAL_CRATE);
2349
2350     let mut inline_span = None;
2351     let mut link_ordinal_span = None;
2352     let mut no_sanitize_span = None;
2353     for attr in attrs.iter() {
2354         if attr.check_name(sym::cold) {
2355             codegen_fn_attrs.flags |= CodegenFnAttrFlags::COLD;
2356         } else if attr.check_name(sym::rustc_allocator) {
2357             codegen_fn_attrs.flags |= CodegenFnAttrFlags::ALLOCATOR;
2358         } else if attr.check_name(sym::unwind) {
2359             codegen_fn_attrs.flags |= CodegenFnAttrFlags::UNWIND;
2360         } else if attr.check_name(sym::ffi_returns_twice) {
2361             if tcx.is_foreign_item(id) {
2362                 codegen_fn_attrs.flags |= CodegenFnAttrFlags::FFI_RETURNS_TWICE;
2363             } else {
2364                 // `#[ffi_returns_twice]` is only allowed `extern fn`s.
2365                 struct_span_err!(
2366                     tcx.sess,
2367                     attr.span,
2368                     E0724,
2369                     "`#[ffi_returns_twice]` may only be used on foreign functions"
2370                 )
2371                 .emit();
2372             }
2373         } else if attr.check_name(sym::ffi_pure) {
2374             if tcx.is_foreign_item(id) {
2375                 if attrs.iter().any(|a| a.check_name(sym::ffi_const)) {
2376                     // `#[ffi_const]` functions cannot be `#[ffi_pure]`
2377                     struct_span_err!(
2378                         tcx.sess,
2379                         attr.span,
2380                         E0757,
2381                         "`#[ffi_const]` function cannot be `#[ffi_pure]`"
2382                     )
2383                     .emit();
2384                 } else {
2385                     codegen_fn_attrs.flags |= CodegenFnAttrFlags::FFI_PURE;
2386                 }
2387             } else {
2388                 // `#[ffi_pure]` is only allowed on foreign functions
2389                 struct_span_err!(
2390                     tcx.sess,
2391                     attr.span,
2392                     E0755,
2393                     "`#[ffi_pure]` may only be used on foreign functions"
2394                 )
2395                 .emit();
2396             }
2397         } else if attr.check_name(sym::ffi_const) {
2398             if tcx.is_foreign_item(id) {
2399                 codegen_fn_attrs.flags |= CodegenFnAttrFlags::FFI_CONST;
2400             } else {
2401                 // `#[ffi_const]` is only allowed on foreign functions
2402                 struct_span_err!(
2403                     tcx.sess,
2404                     attr.span,
2405                     E0756,
2406                     "`#[ffi_const]` may only be used on foreign functions"
2407                 )
2408                 .emit();
2409             }
2410         } else if attr.check_name(sym::rustc_allocator_nounwind) {
2411             codegen_fn_attrs.flags |= CodegenFnAttrFlags::RUSTC_ALLOCATOR_NOUNWIND;
2412         } else if attr.check_name(sym::naked) {
2413             codegen_fn_attrs.flags |= CodegenFnAttrFlags::NAKED;
2414         } else if attr.check_name(sym::no_mangle) {
2415             codegen_fn_attrs.flags |= CodegenFnAttrFlags::NO_MANGLE;
2416         } else if attr.check_name(sym::rustc_std_internal_symbol) {
2417             codegen_fn_attrs.flags |= CodegenFnAttrFlags::RUSTC_STD_INTERNAL_SYMBOL;
2418         } else if attr.check_name(sym::used) {
2419             codegen_fn_attrs.flags |= CodegenFnAttrFlags::USED;
2420         } else if attr.check_name(sym::thread_local) {
2421             codegen_fn_attrs.flags |= CodegenFnAttrFlags::THREAD_LOCAL;
2422         } else if attr.check_name(sym::track_caller) {
2423             if tcx.is_closure(id) || tcx.fn_sig(id).abi() != abi::Abi::Rust {
2424                 struct_span_err!(tcx.sess, attr.span, E0737, "`#[track_caller]` requires Rust ABI")
2425                     .emit();
2426             }
2427             codegen_fn_attrs.flags |= CodegenFnAttrFlags::TRACK_CALLER;
2428         } else if attr.check_name(sym::export_name) {
2429             if let Some(s) = attr.value_str() {
2430                 if s.as_str().contains('\0') {
2431                     // `#[export_name = ...]` will be converted to a null-terminated string,
2432                     // so it may not contain any null characters.
2433                     struct_span_err!(
2434                         tcx.sess,
2435                         attr.span,
2436                         E0648,
2437                         "`export_name` may not contain null characters"
2438                     )
2439                     .emit();
2440                 }
2441                 codegen_fn_attrs.export_name = Some(s);
2442             }
2443         } else if attr.check_name(sym::target_feature) {
2444             if !tcx.features().target_feature_11 {
2445                 check_target_feature_safe_fn(tcx, id, attr.span);
2446             } else if let Some(local_id) = id.as_local() {
2447                 if tcx.fn_sig(id).unsafety() == hir::Unsafety::Normal {
2448                     check_target_feature_trait_unsafe(tcx, local_id, attr.span);
2449                 }
2450             }
2451             from_target_feature(
2452                 tcx,
2453                 id,
2454                 attr,
2455                 &supported_target_features,
2456                 &mut codegen_fn_attrs.target_features,
2457             );
2458         } else if attr.check_name(sym::linkage) {
2459             if let Some(val) = attr.value_str() {
2460                 codegen_fn_attrs.linkage = Some(linkage_by_name(tcx, id, &val.as_str()));
2461             }
2462         } else if attr.check_name(sym::link_section) {
2463             if let Some(val) = attr.value_str() {
2464                 if val.as_str().bytes().any(|b| b == 0) {
2465                     let msg = format!(
2466                         "illegal null byte in link_section \
2467                          value: `{}`",
2468                         &val
2469                     );
2470                     tcx.sess.span_err(attr.span, &msg);
2471                 } else {
2472                     codegen_fn_attrs.link_section = Some(val);
2473                 }
2474             }
2475         } else if attr.check_name(sym::link_name) {
2476             codegen_fn_attrs.link_name = attr.value_str();
2477         } else if attr.check_name(sym::link_ordinal) {
2478             link_ordinal_span = Some(attr.span);
2479             if let ordinal @ Some(_) = check_link_ordinal(tcx, attr) {
2480                 codegen_fn_attrs.link_ordinal = ordinal;
2481             }
2482         } else if attr.check_name(sym::no_sanitize) {
2483             no_sanitize_span = Some(attr.span);
2484             if let Some(list) = attr.meta_item_list() {
2485                 for item in list.iter() {
2486                     if item.has_name(sym::address) {
2487                         codegen_fn_attrs.no_sanitize |= SanitizerSet::ADDRESS;
2488                     } else if item.has_name(sym::memory) {
2489                         codegen_fn_attrs.no_sanitize |= SanitizerSet::MEMORY;
2490                     } else if item.has_name(sym::thread) {
2491                         codegen_fn_attrs.no_sanitize |= SanitizerSet::THREAD;
2492                     } else {
2493                         tcx.sess
2494                             .struct_span_err(item.span(), "invalid argument for `no_sanitize`")
2495                             .note("expected one of: `address`, `memory` or `thread`")
2496                             .emit();
2497                     }
2498                 }
2499             }
2500         }
2501     }
2502
2503     codegen_fn_attrs.inline = attrs.iter().fold(InlineAttr::None, |ia, attr| {
2504         if !attr.has_name(sym::inline) {
2505             return ia;
2506         }
2507         match attr.meta().map(|i| i.kind) {
2508             Some(MetaItemKind::Word) => {
2509                 mark_used(attr);
2510                 InlineAttr::Hint
2511             }
2512             Some(MetaItemKind::List(ref items)) => {
2513                 mark_used(attr);
2514                 inline_span = Some(attr.span);
2515                 if items.len() != 1 {
2516                     struct_span_err!(
2517                         tcx.sess.diagnostic(),
2518                         attr.span,
2519                         E0534,
2520                         "expected one argument"
2521                     )
2522                     .emit();
2523                     InlineAttr::None
2524                 } else if list_contains_name(&items[..], sym::always) {
2525                     InlineAttr::Always
2526                 } else if list_contains_name(&items[..], sym::never) {
2527                     InlineAttr::Never
2528                 } else {
2529                     struct_span_err!(
2530                         tcx.sess.diagnostic(),
2531                         items[0].span(),
2532                         E0535,
2533                         "invalid argument"
2534                     )
2535                     .emit();
2536
2537                     InlineAttr::None
2538                 }
2539             }
2540             Some(MetaItemKind::NameValue(_)) => ia,
2541             None => ia,
2542         }
2543     });
2544
2545     codegen_fn_attrs.optimize = attrs.iter().fold(OptimizeAttr::None, |ia, attr| {
2546         if !attr.has_name(sym::optimize) {
2547             return ia;
2548         }
2549         let err = |sp, s| struct_span_err!(tcx.sess.diagnostic(), sp, E0722, "{}", s).emit();
2550         match attr.meta().map(|i| i.kind) {
2551             Some(MetaItemKind::Word) => {
2552                 err(attr.span, "expected one argument");
2553                 ia
2554             }
2555             Some(MetaItemKind::List(ref items)) => {
2556                 mark_used(attr);
2557                 inline_span = Some(attr.span);
2558                 if items.len() != 1 {
2559                     err(attr.span, "expected one argument");
2560                     OptimizeAttr::None
2561                 } else if list_contains_name(&items[..], sym::size) {
2562                     OptimizeAttr::Size
2563                 } else if list_contains_name(&items[..], sym::speed) {
2564                     OptimizeAttr::Speed
2565                 } else {
2566                     err(items[0].span(), "invalid argument");
2567                     OptimizeAttr::None
2568                 }
2569             }
2570             Some(MetaItemKind::NameValue(_)) => ia,
2571             None => ia,
2572         }
2573     });
2574
2575     // If a function uses #[target_feature] it can't be inlined into general
2576     // purpose functions as they wouldn't have the right target features
2577     // enabled. For that reason we also forbid #[inline(always)] as it can't be
2578     // respected.
2579     if !codegen_fn_attrs.target_features.is_empty() {
2580         if codegen_fn_attrs.inline == InlineAttr::Always {
2581             if let Some(span) = inline_span {
2582                 tcx.sess.span_err(
2583                     span,
2584                     "cannot use `#[inline(always)]` with \
2585                      `#[target_feature]`",
2586                 );
2587             }
2588         }
2589     }
2590
2591     if !codegen_fn_attrs.no_sanitize.is_empty() {
2592         if codegen_fn_attrs.inline == InlineAttr::Always {
2593             if let (Some(no_sanitize_span), Some(inline_span)) = (no_sanitize_span, inline_span) {
2594                 let hir_id = tcx.hir().as_local_hir_id(id.expect_local());
2595                 tcx.struct_span_lint_hir(
2596                     lint::builtin::INLINE_NO_SANITIZE,
2597                     hir_id,
2598                     no_sanitize_span,
2599                     |lint| {
2600                         lint.build("`no_sanitize` will have no effect after inlining")
2601                             .span_note(inline_span, "inlining requested here")
2602                             .emit();
2603                     },
2604                 )
2605             }
2606         }
2607     }
2608
2609     // Weak lang items have the same semantics as "std internal" symbols in the
2610     // sense that they're preserved through all our LTO passes and only
2611     // strippable by the linker.
2612     //
2613     // Additionally weak lang items have predetermined symbol names.
2614     if tcx.is_weak_lang_item(id) {
2615         codegen_fn_attrs.flags |= CodegenFnAttrFlags::RUSTC_STD_INTERNAL_SYMBOL;
2616     }
2617     if let Some(name) = weak_lang_items::link_name(&attrs) {
2618         codegen_fn_attrs.export_name = Some(name);
2619         codegen_fn_attrs.link_name = Some(name);
2620     }
2621     check_link_name_xor_ordinal(tcx, &codegen_fn_attrs, link_ordinal_span);
2622
2623     // Internal symbols to the standard library all have no_mangle semantics in
2624     // that they have defined symbol names present in the function name. This
2625     // also applies to weak symbols where they all have known symbol names.
2626     if codegen_fn_attrs.flags.contains(CodegenFnAttrFlags::RUSTC_STD_INTERNAL_SYMBOL) {
2627         codegen_fn_attrs.flags |= CodegenFnAttrFlags::NO_MANGLE;
2628     }
2629
2630     codegen_fn_attrs
2631 }
2632
2633 /// Checks if the provided DefId is a method in a trait impl for a trait which has track_caller
2634 /// applied to the method prototype.
2635 fn should_inherit_track_caller(tcx: TyCtxt<'_>, def_id: DefId) -> bool {
2636     if let Some(impl_item) = tcx.opt_associated_item(def_id) {
2637         if let ty::AssocItemContainer::ImplContainer(impl_def_id) = impl_item.container {
2638             if let Some(trait_def_id) = tcx.trait_id_of_impl(impl_def_id) {
2639                 if let Some(trait_item) = tcx
2640                     .associated_items(trait_def_id)
2641                     .filter_by_name_unhygienic(impl_item.ident.name)
2642                     .find(move |trait_item| {
2643                         trait_item.kind == ty::AssocKind::Fn
2644                             && tcx.hygienic_eq(impl_item.ident, trait_item.ident, trait_def_id)
2645                     })
2646                 {
2647                     return tcx
2648                         .codegen_fn_attrs(trait_item.def_id)
2649                         .flags
2650                         .intersects(CodegenFnAttrFlags::TRACK_CALLER);
2651                 }
2652             }
2653         }
2654     }
2655
2656     false
2657 }
2658
2659 fn check_link_ordinal(tcx: TyCtxt<'_>, attr: &ast::Attribute) -> Option<usize> {
2660     use rustc_ast::ast::{Lit, LitIntType, LitKind};
2661     let meta_item_list = attr.meta_item_list();
2662     let meta_item_list: Option<&[ast::NestedMetaItem]> = meta_item_list.as_ref().map(Vec::as_ref);
2663     let sole_meta_list = match meta_item_list {
2664         Some([item]) => item.literal(),
2665         _ => None,
2666     };
2667     if let Some(Lit { kind: LitKind::Int(ordinal, LitIntType::Unsuffixed), .. }) = sole_meta_list {
2668         if *ordinal <= usize::MAX as u128 {
2669             Some(*ordinal as usize)
2670         } else {
2671             let msg = format!("ordinal value in `link_ordinal` is too large: `{}`", &ordinal);
2672             tcx.sess
2673                 .struct_span_err(attr.span, &msg)
2674                 .note("the value may not exceed `usize::MAX`")
2675                 .emit();
2676             None
2677         }
2678     } else {
2679         tcx.sess
2680             .struct_span_err(attr.span, "illegal ordinal format in `link_ordinal`")
2681             .note("an unsuffixed integer value, e.g., `1`, is expected")
2682             .emit();
2683         None
2684     }
2685 }
2686
2687 fn check_link_name_xor_ordinal(
2688     tcx: TyCtxt<'_>,
2689     codegen_fn_attrs: &CodegenFnAttrs,
2690     inline_span: Option<Span>,
2691 ) {
2692     if codegen_fn_attrs.link_name.is_none() || codegen_fn_attrs.link_ordinal.is_none() {
2693         return;
2694     }
2695     let msg = "cannot use `#[link_name]` with `#[link_ordinal]`";
2696     if let Some(span) = inline_span {
2697         tcx.sess.span_err(span, msg);
2698     } else {
2699         tcx.sess.err(msg);
2700     }
2701 }
2702
2703 /// Checks the function annotated with `#[target_feature]` is unsafe,
2704 /// reporting an error if it isn't.
2705 fn check_target_feature_safe_fn(tcx: TyCtxt<'_>, id: DefId, attr_span: Span) {
2706     if tcx.is_closure(id) || tcx.fn_sig(id).unsafety() == hir::Unsafety::Normal {
2707         let mut err = feature_err(
2708             &tcx.sess.parse_sess,
2709             sym::target_feature_11,
2710             attr_span,
2711             "`#[target_feature(..)]` can only be applied to `unsafe` functions",
2712         );
2713         err.span_label(tcx.def_span(id), "not an `unsafe` function");
2714         err.emit();
2715     }
2716 }
2717
2718 /// Checks the function annotated with `#[target_feature]` is not a safe
2719 /// trait method implementation, reporting an error if it is.
2720 fn check_target_feature_trait_unsafe(tcx: TyCtxt<'_>, id: LocalDefId, attr_span: Span) {
2721     let hir_id = tcx.hir().as_local_hir_id(id);
2722     let node = tcx.hir().get(hir_id);
2723     if let Node::ImplItem(hir::ImplItem { kind: hir::ImplItemKind::Fn(..), .. }) = node {
2724         let parent_id = tcx.hir().get_parent_item(hir_id);
2725         let parent_item = tcx.hir().expect_item(parent_id);
2726         if let hir::ItemKind::Impl { of_trait: Some(_), .. } = parent_item.kind {
2727             tcx.sess
2728                 .struct_span_err(
2729                     attr_span,
2730                     "`#[target_feature(..)]` cannot be applied to safe trait method",
2731                 )
2732                 .span_label(attr_span, "cannot be applied to safe trait method")
2733                 .span_label(tcx.def_span(id), "not an `unsafe` function")
2734                 .emit();
2735         }
2736     }
2737 }