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1 //! Type inference for expressions.
2
3 use std::iter::{repeat, repeat_with};
4 use std::{mem, sync::Arc};
5
6 use chalk_ir::{cast::Cast, Mutability, TyVariableKind};
7 use hir_def::{
8     expr::{Array, BinaryOp, Expr, ExprId, Literal, Statement, UnaryOp},
9     path::{GenericArg, GenericArgs},
10     resolver::resolver_for_expr,
11     AssocContainerId, FieldId, Lookup,
12 };
13 use hir_expand::name::{name, Name};
14 use stdx::always;
15 use syntax::ast::RangeOp;
16
17 use crate::{
18     autoderef, dummy_usize_const,
19     lower::lower_to_chalk_mutability,
20     method_resolution, op,
21     primitive::{self, UintTy},
22     static_lifetime, to_chalk_trait_id,
23     traits::{chalk::from_chalk, FnTrait},
24     utils::{generics, variant_data, Generics},
25     AdtId, Binders, CallableDefId, FnPointer, FnSig, FnSubst, InEnvironment, Interner,
26     ProjectionTyExt, Rawness, Scalar, Substitution, TraitRef, Ty, TyBuilder, TyKind, TypeWalk,
27 };
28
29 use super::{
30     find_breakable, BindingMode, BreakableContext, Diverges, Expectation, InferenceContext,
31     InferenceDiagnostic, TypeMismatch,
32 };
33
34 impl<'a> InferenceContext<'a> {
35     pub(super) fn infer_expr(&mut self, tgt_expr: ExprId, expected: &Expectation) -> Ty {
36         let ty = self.infer_expr_inner(tgt_expr, expected);
37         if ty.is_never() {
38             // Any expression that produces a value of type `!` must have diverged
39             self.diverges = Diverges::Always;
40         }
41         let could_unify = self.unify(&ty, &expected.ty);
42         if !could_unify {
43             self.result.type_mismatches.insert(
44                 tgt_expr,
45                 TypeMismatch { expected: expected.ty.clone(), actual: ty.clone() },
46             );
47         }
48         self.resolve_ty_as_possible(ty)
49     }
50
51     /// Infer type of expression with possibly implicit coerce to the expected type.
52     /// Return the type after possible coercion.
53     pub(super) fn infer_expr_coerce(&mut self, expr: ExprId, expected: &Expectation) -> Ty {
54         let ty = self.infer_expr_inner(expr, &expected);
55         let ty = if !self.coerce(&ty, &expected.coercion_target()) {
56             self.result
57                 .type_mismatches
58                 .insert(expr, TypeMismatch { expected: expected.ty.clone(), actual: ty.clone() });
59             // Return actual type when type mismatch.
60             // This is needed for diagnostic when return type mismatch.
61             ty
62         } else if expected.coercion_target().is_unknown() {
63             ty
64         } else {
65             expected.ty.clone()
66         };
67
68         self.resolve_ty_as_possible(ty)
69     }
70
71     fn callable_sig_from_fn_trait(&mut self, ty: &Ty, num_args: usize) -> Option<(Vec<Ty>, Ty)> {
72         let krate = self.resolver.krate()?;
73         let fn_once_trait = FnTrait::FnOnce.get_id(self.db, krate)?;
74         let output_assoc_type =
75             self.db.trait_data(fn_once_trait).associated_type_by_name(&name![Output])?;
76
77         let mut arg_tys = vec![];
78         let arg_ty = TyBuilder::tuple(num_args)
79             .fill(repeat_with(|| {
80                 let arg = self.table.new_type_var();
81                 arg_tys.push(arg.clone());
82                 arg
83             }))
84             .build();
85
86         let projection = {
87             let b = TyBuilder::assoc_type_projection(self.db, output_assoc_type);
88             if b.remaining() != 2 {
89                 return None;
90             }
91             b.push(ty.clone()).push(arg_ty).build()
92         };
93
94         let trait_env = self.trait_env.env.clone();
95         let obligation = InEnvironment {
96             goal: projection.trait_ref(self.db).cast(&Interner),
97             environment: trait_env,
98         };
99         let canonical = self.canonicalizer().canonicalize_obligation(obligation.clone());
100         if self.db.trait_solve(krate, canonical.value).is_some() {
101             self.push_obligation(obligation.goal);
102             let return_ty = self.normalize_projection_ty(projection);
103             Some((arg_tys, return_ty))
104         } else {
105             None
106         }
107     }
108
109     pub(crate) fn callable_sig(&mut self, ty: &Ty, num_args: usize) -> Option<(Vec<Ty>, Ty)> {
110         match ty.callable_sig(self.db) {
111             Some(sig) => Some((sig.params().to_vec(), sig.ret().clone())),
112             None => self.callable_sig_from_fn_trait(ty, num_args),
113         }
114     }
115
116     fn infer_expr_inner(&mut self, tgt_expr: ExprId, expected: &Expectation) -> Ty {
117         self.db.check_canceled();
118
119         let body = Arc::clone(&self.body); // avoid borrow checker problem
120         let ty = match &body[tgt_expr] {
121             Expr::Missing => self.err_ty(),
122             Expr::If { condition, then_branch, else_branch } => {
123                 // if let is desugared to match, so this is always simple if
124                 self.infer_expr(
125                     *condition,
126                     &Expectation::has_type(TyKind::Scalar(Scalar::Bool).intern(&Interner)),
127                 );
128
129                 let condition_diverges = mem::replace(&mut self.diverges, Diverges::Maybe);
130                 let mut both_arms_diverge = Diverges::Always;
131
132                 let then_ty = self.infer_expr_inner(*then_branch, &expected);
133                 both_arms_diverge &= mem::replace(&mut self.diverges, Diverges::Maybe);
134                 let else_ty = match else_branch {
135                     Some(else_branch) => self.infer_expr_inner(*else_branch, &expected),
136                     None => TyBuilder::unit(),
137                 };
138                 both_arms_diverge &= self.diverges;
139
140                 self.diverges = condition_diverges | both_arms_diverge;
141
142                 self.coerce_merge_branch(&then_ty, &else_ty)
143             }
144             Expr::Block { statements, tail, label, id: _ } => {
145                 let old_resolver = mem::replace(
146                     &mut self.resolver,
147                     resolver_for_expr(self.db.upcast(), self.owner, tgt_expr),
148                 );
149                 let ty = match label {
150                     Some(_) => {
151                         let break_ty = self.table.new_type_var();
152                         self.breakables.push(BreakableContext {
153                             may_break: false,
154                             break_ty: break_ty.clone(),
155                             label: label.map(|label| self.body[label].name.clone()),
156                         });
157                         let ty =
158                             self.infer_block(statements, *tail, &Expectation::has_type(break_ty));
159                         let ctxt = self.breakables.pop().expect("breakable stack broken");
160                         if ctxt.may_break {
161                             ctxt.break_ty
162                         } else {
163                             ty
164                         }
165                     }
166                     None => self.infer_block(statements, *tail, expected),
167                 };
168                 self.resolver = old_resolver;
169                 ty
170             }
171             Expr::Unsafe { body } | Expr::Const { body } => self.infer_expr(*body, expected),
172             Expr::TryBlock { body } => {
173                 let _inner = self.infer_expr(*body, expected);
174                 // FIXME should be std::result::Result<{inner}, _>
175                 self.err_ty()
176             }
177             Expr::Async { body } => {
178                 // Use the first type parameter as the output type of future.
179                 // existenail type AsyncBlockImplTrait<InnerType>: Future<Output = InnerType>
180                 let inner_ty = self.infer_expr(*body, &Expectation::none());
181                 let impl_trait_id = crate::ImplTraitId::AsyncBlockTypeImplTrait(self.owner, *body);
182                 let opaque_ty_id = self.db.intern_impl_trait_id(impl_trait_id).into();
183                 TyKind::OpaqueType(opaque_ty_id, Substitution::from1(&Interner, inner_ty))
184                     .intern(&Interner)
185             }
186             Expr::Loop { body, label } => {
187                 self.breakables.push(BreakableContext {
188                     may_break: false,
189                     break_ty: self.table.new_type_var(),
190                     label: label.map(|label| self.body[label].name.clone()),
191                 });
192                 self.infer_expr(*body, &Expectation::has_type(TyBuilder::unit()));
193
194                 let ctxt = self.breakables.pop().expect("breakable stack broken");
195                 if ctxt.may_break {
196                     self.diverges = Diverges::Maybe;
197                 }
198
199                 if ctxt.may_break {
200                     ctxt.break_ty
201                 } else {
202                     TyKind::Never.intern(&Interner)
203                 }
204             }
205             Expr::While { condition, body, label } => {
206                 self.breakables.push(BreakableContext {
207                     may_break: false,
208                     break_ty: self.err_ty(),
209                     label: label.map(|label| self.body[label].name.clone()),
210                 });
211                 // while let is desugared to a match loop, so this is always simple while
212                 self.infer_expr(
213                     *condition,
214                     &Expectation::has_type(TyKind::Scalar(Scalar::Bool).intern(&Interner)),
215                 );
216                 self.infer_expr(*body, &Expectation::has_type(TyBuilder::unit()));
217                 let _ctxt = self.breakables.pop().expect("breakable stack broken");
218                 // the body may not run, so it diverging doesn't mean we diverge
219                 self.diverges = Diverges::Maybe;
220                 TyBuilder::unit()
221             }
222             Expr::For { iterable, body, pat, label } => {
223                 let iterable_ty = self.infer_expr(*iterable, &Expectation::none());
224
225                 self.breakables.push(BreakableContext {
226                     may_break: false,
227                     break_ty: self.err_ty(),
228                     label: label.map(|label| self.body[label].name.clone()),
229                 });
230                 let pat_ty =
231                     self.resolve_associated_type(iterable_ty, self.resolve_into_iter_item());
232
233                 self.infer_pat(*pat, &pat_ty, BindingMode::default());
234
235                 self.infer_expr(*body, &Expectation::has_type(TyBuilder::unit()));
236                 let _ctxt = self.breakables.pop().expect("breakable stack broken");
237                 // the body may not run, so it diverging doesn't mean we diverge
238                 self.diverges = Diverges::Maybe;
239                 TyBuilder::unit()
240             }
241             Expr::Lambda { body, args, ret_type, arg_types } => {
242                 assert_eq!(args.len(), arg_types.len());
243
244                 let mut sig_tys = Vec::new();
245
246                 // collect explicitly written argument types
247                 for arg_type in arg_types.iter() {
248                     let arg_ty = if let Some(type_ref) = arg_type {
249                         self.make_ty(type_ref)
250                     } else {
251                         self.table.new_type_var()
252                     };
253                     sig_tys.push(arg_ty);
254                 }
255
256                 // add return type
257                 let ret_ty = match ret_type {
258                     Some(type_ref) => self.make_ty(type_ref),
259                     None => self.table.new_type_var(),
260                 };
261                 sig_tys.push(ret_ty.clone());
262                 let sig_ty = TyKind::Function(FnPointer {
263                     num_binders: 0,
264                     sig: FnSig { abi: (), safety: chalk_ir::Safety::Safe, variadic: false },
265                     substitution: FnSubst(
266                         Substitution::from_iter(&Interner, sig_tys.clone()).shifted_in(&Interner),
267                     ),
268                 })
269                 .intern(&Interner);
270                 let closure_id = self.db.intern_closure((self.owner, tgt_expr)).into();
271                 let closure_ty =
272                     TyKind::Closure(closure_id, Substitution::from1(&Interner, sig_ty))
273                         .intern(&Interner);
274
275                 // Eagerly try to relate the closure type with the expected
276                 // type, otherwise we often won't have enough information to
277                 // infer the body.
278                 self.coerce(&closure_ty, &expected.ty);
279
280                 // Now go through the argument patterns
281                 for (arg_pat, arg_ty) in args.iter().zip(sig_tys) {
282                     let resolved = self.resolve_ty_as_possible(arg_ty);
283                     self.infer_pat(*arg_pat, &resolved, BindingMode::default());
284                 }
285
286                 let prev_diverges = mem::replace(&mut self.diverges, Diverges::Maybe);
287                 let prev_ret_ty = mem::replace(&mut self.return_ty, ret_ty.clone());
288
289                 self.infer_expr_coerce(*body, &Expectation::has_type(ret_ty));
290
291                 self.diverges = prev_diverges;
292                 self.return_ty = prev_ret_ty;
293
294                 closure_ty
295             }
296             Expr::Call { callee, args } => {
297                 let callee_ty = self.infer_expr(*callee, &Expectation::none());
298                 let canonicalized = self.canonicalizer().canonicalize_ty(callee_ty.clone());
299                 let mut derefs = autoderef(
300                     self.db,
301                     self.resolver.krate(),
302                     InEnvironment {
303                         goal: canonicalized.value.clone(),
304                         environment: self.trait_env.env.clone(),
305                     },
306                 );
307                 let (param_tys, ret_ty): (Vec<Ty>, Ty) = derefs
308                     .find_map(|callee_deref_ty| {
309                         self.callable_sig(
310                             &canonicalized.decanonicalize_ty(callee_deref_ty.value),
311                             args.len(),
312                         )
313                     })
314                     .unwrap_or((Vec::new(), self.err_ty()));
315                 self.register_obligations_for_call(&callee_ty);
316                 self.check_call_arguments(args, &param_tys);
317                 self.normalize_associated_types_in(ret_ty)
318             }
319             Expr::MethodCall { receiver, args, method_name, generic_args } => self
320                 .infer_method_call(tgt_expr, *receiver, &args, &method_name, generic_args.as_ref()),
321             Expr::Match { expr, arms } => {
322                 let input_ty = self.infer_expr(*expr, &Expectation::none());
323
324                 let mut result_ty = if arms.is_empty() {
325                     TyKind::Never.intern(&Interner)
326                 } else {
327                     self.table.new_type_var()
328                 };
329
330                 let matchee_diverges = self.diverges;
331                 let mut all_arms_diverge = Diverges::Always;
332
333                 for arm in arms {
334                     self.diverges = Diverges::Maybe;
335                     let _pat_ty = self.infer_pat(arm.pat, &input_ty, BindingMode::default());
336                     if let Some(guard_expr) = arm.guard {
337                         self.infer_expr(
338                             guard_expr,
339                             &Expectation::has_type(TyKind::Scalar(Scalar::Bool).intern(&Interner)),
340                         );
341                     }
342
343                     let arm_ty = self.infer_expr_inner(arm.expr, &expected);
344                     all_arms_diverge &= self.diverges;
345                     result_ty = self.coerce_merge_branch(&result_ty, &arm_ty);
346                 }
347
348                 self.diverges = matchee_diverges | all_arms_diverge;
349
350                 result_ty
351             }
352             Expr::Path(p) => {
353                 // FIXME this could be more efficient...
354                 let resolver = resolver_for_expr(self.db.upcast(), self.owner, tgt_expr);
355                 self.infer_path(&resolver, p, tgt_expr.into()).unwrap_or(self.err_ty())
356             }
357             Expr::Continue { .. } => TyKind::Never.intern(&Interner),
358             Expr::Break { expr, label } => {
359                 let val_ty = if let Some(expr) = expr {
360                     self.infer_expr(*expr, &Expectation::none())
361                 } else {
362                     TyBuilder::unit()
363                 };
364
365                 let last_ty =
366                     if let Some(ctxt) = find_breakable(&mut self.breakables, label.as_ref()) {
367                         ctxt.break_ty.clone()
368                     } else {
369                         self.err_ty()
370                     };
371
372                 let merged_type = self.coerce_merge_branch(&last_ty, &val_ty);
373
374                 if let Some(ctxt) = find_breakable(&mut self.breakables, label.as_ref()) {
375                     ctxt.break_ty = merged_type;
376                     ctxt.may_break = true;
377                 } else {
378                     self.push_diagnostic(InferenceDiagnostic::BreakOutsideOfLoop {
379                         expr: tgt_expr,
380                     });
381                 }
382                 TyKind::Never.intern(&Interner)
383             }
384             Expr::Return { expr } => {
385                 if let Some(expr) = expr {
386                     self.infer_expr_coerce(*expr, &Expectation::has_type(self.return_ty.clone()));
387                 } else {
388                     let unit = TyBuilder::unit();
389                     self.coerce(&unit, &self.return_ty.clone());
390                 }
391                 TyKind::Never.intern(&Interner)
392             }
393             Expr::Yield { expr } => {
394                 // FIXME: track yield type for coercion
395                 if let Some(expr) = expr {
396                     self.infer_expr(*expr, &Expectation::none());
397                 }
398                 TyKind::Never.intern(&Interner)
399             }
400             Expr::RecordLit { path, fields, spread } => {
401                 let (ty, def_id) = self.resolve_variant(path.as_ref());
402                 if let Some(variant) = def_id {
403                     self.write_variant_resolution(tgt_expr.into(), variant);
404                 }
405
406                 self.unify(&ty, &expected.ty);
407
408                 let substs = ty.substs().cloned().unwrap_or_else(|| Substitution::empty(&Interner));
409                 let field_types = def_id.map(|it| self.db.field_types(it)).unwrap_or_default();
410                 let variant_data = def_id.map(|it| variant_data(self.db.upcast(), it));
411                 for field in fields.iter() {
412                     let field_def =
413                         variant_data.as_ref().and_then(|it| match it.field(&field.name) {
414                             Some(local_id) => Some(FieldId { parent: def_id.unwrap(), local_id }),
415                             None => {
416                                 self.push_diagnostic(InferenceDiagnostic::NoSuchField {
417                                     expr: field.expr,
418                                 });
419                                 None
420                             }
421                         });
422                     if let Some(field_def) = field_def {
423                         self.result.record_field_resolutions.insert(field.expr, field_def);
424                     }
425                     let field_ty = field_def.map_or(self.err_ty(), |it| {
426                         field_types[it.local_id].clone().substitute(&Interner, &substs)
427                     });
428                     self.infer_expr_coerce(field.expr, &Expectation::has_type(field_ty));
429                 }
430                 if let Some(expr) = spread {
431                     self.infer_expr(*expr, &Expectation::has_type(ty.clone()));
432                 }
433                 ty
434             }
435             Expr::Field { expr, name } => {
436                 let receiver_ty = self.infer_expr_inner(*expr, &Expectation::none());
437                 let canonicalized = self.canonicalizer().canonicalize_ty(receiver_ty);
438                 let ty = autoderef::autoderef(
439                     self.db,
440                     self.resolver.krate(),
441                     InEnvironment {
442                         goal: canonicalized.value.clone(),
443                         environment: self.trait_env.env.clone(),
444                     },
445                 )
446                 .find_map(|derefed_ty| {
447                     let def_db = self.db.upcast();
448                     let module = self.resolver.module();
449                     let is_visible = |field_id: &FieldId| {
450                         module
451                             .map(|mod_id| {
452                                 self.db.field_visibilities(field_id.parent)[field_id.local_id]
453                                     .is_visible_from(def_db, mod_id)
454                             })
455                             .unwrap_or(true)
456                     };
457                     match canonicalized.decanonicalize_ty(derefed_ty.value).kind(&Interner) {
458                         TyKind::Tuple(_, substs) => name.as_tuple_index().and_then(|idx| {
459                             substs.interned().get(idx).map(|a| a.assert_ty_ref(&Interner)).cloned()
460                         }),
461                         TyKind::Adt(AdtId(hir_def::AdtId::StructId(s)), parameters) => {
462                             let local_id = self.db.struct_data(*s).variant_data.field(name)?;
463                             let field = FieldId { parent: (*s).into(), local_id };
464                             if is_visible(&field) {
465                                 self.write_field_resolution(tgt_expr, field);
466                                 Some(
467                                     self.db.field_types((*s).into())[field.local_id]
468                                         .clone()
469                                         .substitute(&Interner, &parameters),
470                                 )
471                             } else {
472                                 None
473                             }
474                         }
475                         TyKind::Adt(AdtId(hir_def::AdtId::UnionId(u)), parameters) => {
476                             let local_id = self.db.union_data(*u).variant_data.field(name)?;
477                             let field = FieldId { parent: (*u).into(), local_id };
478                             if is_visible(&field) {
479                                 self.write_field_resolution(tgt_expr, field);
480                                 Some(
481                                     self.db.field_types((*u).into())[field.local_id]
482                                         .clone()
483                                         .substitute(&Interner, &parameters),
484                                 )
485                             } else {
486                                 None
487                             }
488                         }
489                         _ => None,
490                     }
491                 })
492                 .unwrap_or(self.err_ty());
493                 let ty = self.insert_type_vars(ty);
494                 self.normalize_associated_types_in(ty)
495             }
496             Expr::Await { expr } => {
497                 let inner_ty = self.infer_expr_inner(*expr, &Expectation::none());
498                 self.resolve_associated_type(inner_ty, self.resolve_future_future_output())
499             }
500             Expr::Try { expr } => {
501                 let inner_ty = self.infer_expr_inner(*expr, &Expectation::none());
502                 self.resolve_associated_type(inner_ty, self.resolve_ops_try_ok())
503             }
504             Expr::Cast { expr, type_ref } => {
505                 let _inner_ty = self.infer_expr_inner(*expr, &Expectation::none());
506                 let cast_ty = self.make_ty(type_ref);
507                 // FIXME check the cast...
508                 cast_ty
509             }
510             Expr::Ref { expr, rawness, mutability } => {
511                 let mutability = lower_to_chalk_mutability(*mutability);
512                 let expectation = if let Some((exp_inner, exp_rawness, exp_mutability)) =
513                     &expected.ty.as_reference_or_ptr()
514                 {
515                     if *exp_mutability == Mutability::Mut && mutability == Mutability::Not {
516                         // FIXME: throw type error - expected mut reference but found shared ref,
517                         // which cannot be coerced
518                     }
519                     if *exp_rawness == Rawness::Ref && *rawness == Rawness::RawPtr {
520                         // FIXME: throw type error - expected reference but found ptr,
521                         // which cannot be coerced
522                     }
523                     Expectation::rvalue_hint(Ty::clone(exp_inner))
524                 } else {
525                     Expectation::none()
526                 };
527                 let inner_ty = self.infer_expr_inner(*expr, &expectation);
528                 match rawness {
529                     Rawness::RawPtr => TyKind::Raw(mutability, inner_ty),
530                     Rawness::Ref => TyKind::Ref(mutability, static_lifetime(), inner_ty),
531                 }
532                 .intern(&Interner)
533             }
534             Expr::Box { expr } => {
535                 let inner_ty = self.infer_expr_inner(*expr, &Expectation::none());
536                 if let Some(box_) = self.resolve_boxed_box() {
537                     TyBuilder::adt(self.db, box_)
538                         .push(inner_ty)
539                         .fill_with_defaults(self.db, || self.table.new_type_var())
540                         .build()
541                 } else {
542                     self.err_ty()
543                 }
544             }
545             Expr::UnaryOp { expr, op } => {
546                 let inner_ty = self.infer_expr_inner(*expr, &Expectation::none());
547                 match op {
548                     UnaryOp::Deref => match self.resolver.krate() {
549                         Some(krate) => {
550                             let canonicalized = self.canonicalizer().canonicalize_ty(inner_ty);
551                             match autoderef::deref(
552                                 self.db,
553                                 krate,
554                                 InEnvironment {
555                                     goal: &canonicalized.value,
556                                     environment: self.trait_env.env.clone(),
557                                 },
558                             ) {
559                                 Some(derefed_ty) => {
560                                     canonicalized.decanonicalize_ty(derefed_ty.value)
561                                 }
562                                 None => self.err_ty(),
563                             }
564                         }
565                         None => self.err_ty(),
566                     },
567                     UnaryOp::Neg => {
568                         match inner_ty.kind(&Interner) {
569                             // Fast path for builtins
570                             TyKind::Scalar(Scalar::Int(_))
571                             | TyKind::Scalar(Scalar::Uint(_))
572                             | TyKind::Scalar(Scalar::Float(_))
573                             | TyKind::InferenceVar(_, TyVariableKind::Integer)
574                             | TyKind::InferenceVar(_, TyVariableKind::Float) => inner_ty,
575                             // Otherwise we resolve via the std::ops::Neg trait
576                             _ => self
577                                 .resolve_associated_type(inner_ty, self.resolve_ops_neg_output()),
578                         }
579                     }
580                     UnaryOp::Not => {
581                         match inner_ty.kind(&Interner) {
582                             // Fast path for builtins
583                             TyKind::Scalar(Scalar::Bool)
584                             | TyKind::Scalar(Scalar::Int(_))
585                             | TyKind::Scalar(Scalar::Uint(_))
586                             | TyKind::InferenceVar(_, TyVariableKind::Integer) => inner_ty,
587                             // Otherwise we resolve via the std::ops::Not trait
588                             _ => self
589                                 .resolve_associated_type(inner_ty, self.resolve_ops_not_output()),
590                         }
591                     }
592                 }
593             }
594             Expr::BinaryOp { lhs, rhs, op } => match op {
595                 Some(op) => {
596                     let lhs_expectation = match op {
597                         BinaryOp::LogicOp(..) => {
598                             Expectation::has_type(TyKind::Scalar(Scalar::Bool).intern(&Interner))
599                         }
600                         _ => Expectation::none(),
601                     };
602                     let lhs_ty = self.infer_expr(*lhs, &lhs_expectation);
603                     let rhs_expectation = op::binary_op_rhs_expectation(*op, lhs_ty.clone());
604                     let rhs_ty = self.infer_expr(*rhs, &Expectation::has_type(rhs_expectation));
605
606                     let ret = op::binary_op_return_ty(*op, lhs_ty.clone(), rhs_ty.clone());
607
608                     if ret.is_unknown() {
609                         cov_mark::hit!(infer_expr_inner_binary_operator_overload);
610
611                         self.resolve_associated_type_with_params(
612                             lhs_ty,
613                             self.resolve_binary_op_output(op),
614                             &[rhs_ty],
615                         )
616                     } else {
617                         ret
618                     }
619                 }
620                 _ => self.err_ty(),
621             },
622             Expr::Range { lhs, rhs, range_type } => {
623                 let lhs_ty = lhs.map(|e| self.infer_expr_inner(e, &Expectation::none()));
624                 let rhs_expect = lhs_ty
625                     .as_ref()
626                     .map_or_else(Expectation::none, |ty| Expectation::has_type(ty.clone()));
627                 let rhs_ty = rhs.map(|e| self.infer_expr(e, &rhs_expect));
628                 match (range_type, lhs_ty, rhs_ty) {
629                     (RangeOp::Exclusive, None, None) => match self.resolve_range_full() {
630                         Some(adt) => TyBuilder::adt(self.db, adt).build(),
631                         None => self.err_ty(),
632                     },
633                     (RangeOp::Exclusive, None, Some(ty)) => match self.resolve_range_to() {
634                         Some(adt) => TyBuilder::adt(self.db, adt).push(ty).build(),
635                         None => self.err_ty(),
636                     },
637                     (RangeOp::Inclusive, None, Some(ty)) => {
638                         match self.resolve_range_to_inclusive() {
639                             Some(adt) => TyBuilder::adt(self.db, adt).push(ty).build(),
640                             None => self.err_ty(),
641                         }
642                     }
643                     (RangeOp::Exclusive, Some(_), Some(ty)) => match self.resolve_range() {
644                         Some(adt) => TyBuilder::adt(self.db, adt).push(ty).build(),
645                         None => self.err_ty(),
646                     },
647                     (RangeOp::Inclusive, Some(_), Some(ty)) => {
648                         match self.resolve_range_inclusive() {
649                             Some(adt) => TyBuilder::adt(self.db, adt).push(ty).build(),
650                             None => self.err_ty(),
651                         }
652                     }
653                     (RangeOp::Exclusive, Some(ty), None) => match self.resolve_range_from() {
654                         Some(adt) => TyBuilder::adt(self.db, adt).push(ty).build(),
655                         None => self.err_ty(),
656                     },
657                     (RangeOp::Inclusive, _, None) => self.err_ty(),
658                 }
659             }
660             Expr::Index { base, index } => {
661                 let base_ty = self.infer_expr_inner(*base, &Expectation::none());
662                 let index_ty = self.infer_expr(*index, &Expectation::none());
663
664                 if let (Some(index_trait), Some(krate)) =
665                     (self.resolve_ops_index(), self.resolver.krate())
666                 {
667                     let canonicalized = self.canonicalizer().canonicalize_ty(base_ty);
668                     let self_ty = method_resolution::resolve_indexing_op(
669                         self.db,
670                         &canonicalized.value,
671                         self.trait_env.clone(),
672                         krate,
673                         index_trait,
674                     );
675                     let self_ty =
676                         self_ty.map_or(self.err_ty(), |t| canonicalized.decanonicalize_ty(t.value));
677                     self.resolve_associated_type_with_params(
678                         self_ty,
679                         self.resolve_ops_index_output(),
680                         &[index_ty],
681                     )
682                 } else {
683                     self.err_ty()
684                 }
685             }
686             Expr::Tuple { exprs } => {
687                 let mut tys = match expected.ty.kind(&Interner) {
688                     TyKind::Tuple(_, substs) => substs
689                         .iter(&Interner)
690                         .map(|a| a.assert_ty_ref(&Interner).clone())
691                         .chain(repeat_with(|| self.table.new_type_var()))
692                         .take(exprs.len())
693                         .collect::<Vec<_>>(),
694                     _ => (0..exprs.len()).map(|_| self.table.new_type_var()).collect(),
695                 };
696
697                 for (expr, ty) in exprs.iter().zip(tys.iter_mut()) {
698                     self.infer_expr_coerce(*expr, &Expectation::has_type(ty.clone()));
699                 }
700
701                 TyKind::Tuple(tys.len(), Substitution::from_iter(&Interner, tys)).intern(&Interner)
702             }
703             Expr::Array(array) => {
704                 let elem_ty = match expected.ty.kind(&Interner) {
705                     TyKind::Array(st, _) | TyKind::Slice(st) => st.clone(),
706                     _ => self.table.new_type_var(),
707                 };
708
709                 match array {
710                     Array::ElementList(items) => {
711                         for expr in items.iter() {
712                             self.infer_expr_coerce(*expr, &Expectation::has_type(elem_ty.clone()));
713                         }
714                     }
715                     Array::Repeat { initializer, repeat } => {
716                         self.infer_expr_coerce(
717                             *initializer,
718                             &Expectation::has_type(elem_ty.clone()),
719                         );
720                         self.infer_expr(
721                             *repeat,
722                             &Expectation::has_type(
723                                 TyKind::Scalar(Scalar::Uint(UintTy::Usize)).intern(&Interner),
724                             ),
725                         );
726                     }
727                 }
728
729                 TyKind::Array(elem_ty, dummy_usize_const()).intern(&Interner)
730             }
731             Expr::Literal(lit) => match lit {
732                 Literal::Bool(..) => TyKind::Scalar(Scalar::Bool).intern(&Interner),
733                 Literal::String(..) => {
734                     TyKind::Ref(Mutability::Not, static_lifetime(), TyKind::Str.intern(&Interner))
735                         .intern(&Interner)
736                 }
737                 Literal::ByteString(..) => {
738                     let byte_type = TyKind::Scalar(Scalar::Uint(UintTy::U8)).intern(&Interner);
739                     let array_type =
740                         TyKind::Array(byte_type, dummy_usize_const()).intern(&Interner);
741                     TyKind::Ref(Mutability::Not, static_lifetime(), array_type).intern(&Interner)
742                 }
743                 Literal::Char(..) => TyKind::Scalar(Scalar::Char).intern(&Interner),
744                 Literal::Int(_v, ty) => match ty {
745                     Some(int_ty) => {
746                         TyKind::Scalar(Scalar::Int(primitive::int_ty_from_builtin(*int_ty)))
747                             .intern(&Interner)
748                     }
749                     None => self.table.new_integer_var(),
750                 },
751                 Literal::Uint(_v, ty) => match ty {
752                     Some(int_ty) => {
753                         TyKind::Scalar(Scalar::Uint(primitive::uint_ty_from_builtin(*int_ty)))
754                             .intern(&Interner)
755                     }
756                     None => self.table.new_integer_var(),
757                 },
758                 Literal::Float(_v, ty) => match ty {
759                     Some(float_ty) => {
760                         TyKind::Scalar(Scalar::Float(primitive::float_ty_from_builtin(*float_ty)))
761                             .intern(&Interner)
762                     }
763                     None => self.table.new_float_var(),
764                 },
765             },
766             Expr::MacroStmts { tail } => self.infer_expr(*tail, expected),
767         };
768         // use a new type variable if we got unknown here
769         let ty = self.insert_type_vars_shallow(ty);
770         let ty = self.resolve_ty_as_possible(ty);
771         self.write_expr_ty(tgt_expr, ty.clone());
772         ty
773     }
774
775     fn infer_block(
776         &mut self,
777         statements: &[Statement],
778         tail: Option<ExprId>,
779         expected: &Expectation,
780     ) -> Ty {
781         for stmt in statements {
782             match stmt {
783                 Statement::Let { pat, type_ref, initializer } => {
784                     let decl_ty =
785                         type_ref.as_ref().map(|tr| self.make_ty(tr)).unwrap_or(self.err_ty());
786
787                     // Always use the declared type when specified
788                     let mut ty = decl_ty.clone();
789
790                     if let Some(expr) = initializer {
791                         let actual_ty =
792                             self.infer_expr_coerce(*expr, &Expectation::has_type(decl_ty.clone()));
793                         if decl_ty.is_unknown() {
794                             ty = actual_ty;
795                         }
796                     }
797
798                     let ty = self.resolve_ty_as_possible(ty);
799                     self.infer_pat(*pat, &ty, BindingMode::default());
800                 }
801                 Statement::Expr(expr) => {
802                     self.infer_expr(*expr, &Expectation::none());
803                 }
804             }
805         }
806
807         let ty = if let Some(expr) = tail {
808             self.infer_expr_coerce(expr, expected)
809         } else {
810             // Citing rustc: if there is no explicit tail expression,
811             // that is typically equivalent to a tail expression
812             // of `()` -- except if the block diverges. In that
813             // case, there is no value supplied from the tail
814             // expression (assuming there are no other breaks,
815             // this implies that the type of the block will be
816             // `!`).
817             if self.diverges.is_always() {
818                 // we don't even make an attempt at coercion
819                 self.table.new_maybe_never_var()
820             } else {
821                 self.coerce(&TyBuilder::unit(), &expected.coercion_target());
822                 TyBuilder::unit()
823             }
824         };
825         ty
826     }
827
828     fn infer_method_call(
829         &mut self,
830         tgt_expr: ExprId,
831         receiver: ExprId,
832         args: &[ExprId],
833         method_name: &Name,
834         generic_args: Option<&GenericArgs>,
835     ) -> Ty {
836         let receiver_ty = self.infer_expr(receiver, &Expectation::none());
837         let canonicalized_receiver = self.canonicalizer().canonicalize_ty(receiver_ty.clone());
838
839         let traits_in_scope = self.resolver.traits_in_scope(self.db.upcast());
840
841         let resolved = self.resolver.krate().and_then(|krate| {
842             method_resolution::lookup_method(
843                 &canonicalized_receiver.value,
844                 self.db,
845                 self.trait_env.clone(),
846                 krate,
847                 &traits_in_scope,
848                 self.resolver.module(),
849                 method_name,
850             )
851         });
852         let (derefed_receiver_ty, method_ty, def_generics) = match resolved {
853             Some((ty, func)) => {
854                 let ty = canonicalized_receiver.decanonicalize_ty(ty);
855                 self.write_method_resolution(tgt_expr, func);
856                 (ty, self.db.value_ty(func.into()), Some(generics(self.db.upcast(), func.into())))
857             }
858             None => (receiver_ty, Binders::empty(&Interner, self.err_ty()), None),
859         };
860         let substs = self.substs_for_method_call(def_generics, generic_args, &derefed_receiver_ty);
861         let method_ty = method_ty.substitute(&Interner, &substs);
862         let method_ty = self.insert_type_vars(method_ty);
863         self.register_obligations_for_call(&method_ty);
864         let (expected_receiver_ty, param_tys, ret_ty) = match method_ty.callable_sig(self.db) {
865             Some(sig) => {
866                 if !sig.params().is_empty() {
867                     (sig.params()[0].clone(), sig.params()[1..].to_vec(), sig.ret().clone())
868                 } else {
869                     (self.err_ty(), Vec::new(), sig.ret().clone())
870                 }
871             }
872             None => (self.err_ty(), Vec::new(), self.err_ty()),
873         };
874         // Apply autoref so the below unification works correctly
875         // FIXME: return correct autorefs from lookup_method
876         let actual_receiver_ty = match expected_receiver_ty.as_reference() {
877             Some((_, lifetime, mutability)) => {
878                 TyKind::Ref(mutability, lifetime, derefed_receiver_ty).intern(&Interner)
879             }
880             _ => derefed_receiver_ty,
881         };
882         self.unify(&expected_receiver_ty, &actual_receiver_ty);
883
884         self.check_call_arguments(args, &param_tys);
885         self.normalize_associated_types_in(ret_ty)
886     }
887
888     fn check_call_arguments(&mut self, args: &[ExprId], param_tys: &[Ty]) {
889         // Quoting https://github.com/rust-lang/rust/blob/6ef275e6c3cb1384ec78128eceeb4963ff788dca/src/librustc_typeck/check/mod.rs#L3325 --
890         // We do this in a pretty awful way: first we type-check any arguments
891         // that are not closures, then we type-check the closures. This is so
892         // that we have more information about the types of arguments when we
893         // type-check the functions. This isn't really the right way to do this.
894         for &check_closures in &[false, true] {
895             let param_iter = param_tys.iter().cloned().chain(repeat(self.err_ty()));
896             for (&arg, param_ty) in args.iter().zip(param_iter) {
897                 let is_closure = matches!(&self.body[arg], Expr::Lambda { .. });
898                 if is_closure != check_closures {
899                     continue;
900                 }
901
902                 let param_ty = self.normalize_associated_types_in(param_ty);
903                 self.infer_expr_coerce(arg, &Expectation::has_type(param_ty.clone()));
904             }
905         }
906     }
907
908     fn substs_for_method_call(
909         &mut self,
910         def_generics: Option<Generics>,
911         generic_args: Option<&GenericArgs>,
912         receiver_ty: &Ty,
913     ) -> Substitution {
914         let (parent_params, self_params, type_params, impl_trait_params) =
915             def_generics.as_ref().map_or((0, 0, 0, 0), |g| g.provenance_split());
916         assert_eq!(self_params, 0); // method shouldn't have another Self param
917         let total_len = parent_params + type_params + impl_trait_params;
918         let mut substs = Vec::with_capacity(total_len);
919         // Parent arguments are unknown, except for the receiver type
920         if let Some(parent_generics) = def_generics.as_ref().map(|p| p.iter_parent()) {
921             for (_id, param) in parent_generics {
922                 if param.provenance == hir_def::generics::TypeParamProvenance::TraitSelf {
923                     substs.push(receiver_ty.clone());
924                 } else {
925                     substs.push(self.err_ty());
926                 }
927             }
928         }
929         // handle provided type arguments
930         if let Some(generic_args) = generic_args {
931             // if args are provided, it should be all of them, but we can't rely on that
932             for arg in generic_args
933                 .args
934                 .iter()
935                 .filter(|arg| matches!(arg, GenericArg::Type(_)))
936                 .take(type_params)
937             {
938                 match arg {
939                     GenericArg::Type(type_ref) => {
940                         let ty = self.make_ty(type_ref);
941                         substs.push(ty);
942                     }
943                     GenericArg::Lifetime(_) => {}
944                 }
945             }
946         };
947         let supplied_params = substs.len();
948         for _ in supplied_params..total_len {
949             substs.push(self.err_ty());
950         }
951         assert_eq!(substs.len(), total_len);
952         Substitution::from_iter(&Interner, substs)
953     }
954
955     fn register_obligations_for_call(&mut self, callable_ty: &Ty) {
956         if let TyKind::FnDef(fn_def, parameters) = callable_ty.kind(&Interner) {
957             let def: CallableDefId = from_chalk(self.db, *fn_def);
958             let generic_predicates = self.db.generic_predicates(def.into());
959             for predicate in generic_predicates.iter() {
960                 let (predicate, binders) = predicate
961                     .clone()
962                     .substitute(&Interner, parameters)
963                     .into_value_and_skipped_binders();
964                 always!(binders.len(&Interner) == 0); // quantified where clauses not yet handled
965                 self.push_obligation(predicate.cast(&Interner));
966             }
967             // add obligation for trait implementation, if this is a trait method
968             match def {
969                 CallableDefId::FunctionId(f) => {
970                     if let AssocContainerId::TraitId(trait_) = f.lookup(self.db.upcast()).container
971                     {
972                         // construct a TraitRef
973                         let substs = crate::subst_prefix(
974                             &*parameters,
975                             generics(self.db.upcast(), trait_.into()).len(),
976                         );
977                         self.push_obligation(
978                             TraitRef { trait_id: to_chalk_trait_id(trait_), substitution: substs }
979                                 .cast(&Interner),
980                         );
981                     }
982                 }
983                 CallableDefId::StructId(_) | CallableDefId::EnumVariantId(_) => {}
984             }
985         }
986     }
987 }