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rustc_type_ir/relate/
combine.rs

1use std::iter;
2
3use tracing::debug;
4
5use super::{
6    ExpectedFound, RelateResult, TypeRelation, structurally_relate_consts, structurally_relate_tys,
7};
8use crate::error::TypeError;
9use crate::inherent::*;
10use crate::relate::VarianceDiagInfo;
11use crate::solve::Goal;
12use crate::visit::TypeVisitableExt as _;
13use crate::{self as ty, InferCtxtLike, Interner, TypingMode, Upcast};
14
15pub trait PredicateEmittingRelation<Infcx, I = <Infcx as InferCtxtLike>::Interner>:
16    TypeRelation<I>
17where
18    Infcx: InferCtxtLike<Interner = I>,
19    I: Interner,
20{
21    fn span(&self) -> I::Span;
22
23    fn param_env(&self) -> I::ParamEnv;
24
25    /// Register obligations that must hold in order for this relation to hold
26    fn register_goals(&mut self, obligations: impl IntoIterator<Item = Goal<I, I::Predicate>>);
27
28    /// Register predicates that must hold in order for this relation to hold.
29    /// This uses the default `param_env` of the obligation.
30    fn register_predicates(
31        &mut self,
32        obligations: impl IntoIterator<Item: Upcast<I, I::Predicate>>,
33    );
34
35    fn ambient_variance(&self) -> ty::Variance;
36}
37
38pub fn super_combine_tys<Infcx, I, R>(
39    infcx: &Infcx,
40    relation: &mut R,
41    a: I::Ty,
42    b: I::Ty,
43) -> RelateResult<I, I::Ty>
44where
45    Infcx: InferCtxtLike<Interner = I>,
46    I: Interner,
47    R: PredicateEmittingRelation<Infcx>,
48{
49    {
    use ::tracing::__macro_support::Callsite as _;
    static __CALLSITE: ::tracing::callsite::DefaultCallsite =
        {
            static META: ::tracing::Metadata<'static> =
                {
                    ::tracing_core::metadata::Metadata::new("event compiler/rustc_type_ir/src/relate/combine.rs:49",
                        "rustc_type_ir::relate::combine", ::tracing::Level::DEBUG,
                        ::tracing_core::__macro_support::Option::Some("compiler/rustc_type_ir/src/relate/combine.rs"),
                        ::tracing_core::__macro_support::Option::Some(49u32),
                        ::tracing_core::__macro_support::Option::Some("rustc_type_ir::relate::combine"),
                        ::tracing_core::field::FieldSet::new(&["message"],
                            ::tracing_core::callsite::Identifier(&__CALLSITE)),
                        ::tracing::metadata::Kind::EVENT)
                };
            ::tracing::callsite::DefaultCallsite::new(&META)
        };
    let enabled =
        ::tracing::Level::DEBUG <= ::tracing::level_filters::STATIC_MAX_LEVEL
                &&
                ::tracing::Level::DEBUG <=
                    ::tracing::level_filters::LevelFilter::current() &&
            {
                let interest = __CALLSITE.interest();
                !interest.is_never() &&
                    ::tracing::__macro_support::__is_enabled(__CALLSITE.metadata(),
                        interest)
            };
    if enabled {
        (|value_set: ::tracing::field::ValueSet|
                    {
                        let meta = __CALLSITE.metadata();
                        ::tracing::Event::dispatch(meta, &value_set);
                        ;
                    })({
                #[allow(unused_imports)]
                use ::tracing::field::{debug, display, Value};
                __CALLSITE.metadata().fields().value_set_all(&[(::tracing::__macro_support::Option::Some(&format_args!("super_combine_tys::<{0}>({1:?}, {2:?})",
                                                    std::any::type_name::<R>(), a, b) as
                                            &dyn ::tracing::field::Value))])
            });
    } else { ; }
};debug!("super_combine_tys::<{}>({:?}, {:?})", std::any::type_name::<R>(), a, b);
50    if true {
    if !!a.has_escaping_bound_vars() {
        ::core::panicking::panic("assertion failed: !a.has_escaping_bound_vars()")
    };
};debug_assert!(!a.has_escaping_bound_vars());
51    if true {
    if !!b.has_escaping_bound_vars() {
        ::core::panicking::panic("assertion failed: !b.has_escaping_bound_vars()")
    };
};debug_assert!(!b.has_escaping_bound_vars());
52
53    match (a.kind(), b.kind()) {
54        (ty::Error(e), _) | (_, ty::Error(e)) => {
55            infcx.set_tainted_by_errors(e);
56            return Ok(Ty::new_error(infcx.cx(), e));
57        }
58
59        // Relate integral variables to other types
60        (ty::Infer(ty::IntVar(a_id)), ty::Infer(ty::IntVar(b_id))) => {
61            infcx.equate_int_vids_raw(a_id, b_id);
62            Ok(a)
63        }
64        (ty::Infer(ty::IntVar(v_id)), ty::Int(v)) => {
65            infcx.instantiate_int_var_raw(v_id, ty::IntVarValue::IntType(v));
66            Ok(b)
67        }
68        (ty::Int(v), ty::Infer(ty::IntVar(v_id))) => {
69            infcx.instantiate_int_var_raw(v_id, ty::IntVarValue::IntType(v));
70            Ok(a)
71        }
72        (ty::Infer(ty::IntVar(v_id)), ty::Uint(v)) => {
73            infcx.instantiate_int_var_raw(v_id, ty::IntVarValue::UintType(v));
74            Ok(b)
75        }
76        (ty::Uint(v), ty::Infer(ty::IntVar(v_id))) => {
77            infcx.instantiate_int_var_raw(v_id, ty::IntVarValue::UintType(v));
78            Ok(a)
79        }
80
81        // Relate floating-point variables to other types
82        (ty::Infer(ty::FloatVar(a_id)), ty::Infer(ty::FloatVar(b_id))) => {
83            infcx.equate_float_vids_raw(a_id, b_id);
84            Ok(a)
85        }
86        (ty::Infer(ty::FloatVar(v_id)), ty::Float(v)) => {
87            infcx.instantiate_float_var_raw(v_id, ty::FloatVarValue::Known(v));
88            Ok(b)
89        }
90        (ty::Float(v), ty::Infer(ty::FloatVar(v_id))) => {
91            infcx.instantiate_float_var_raw(v_id, ty::FloatVarValue::Known(v));
92            Ok(a)
93        }
94
95        // We don't expect `TyVar` or `Fresh*` vars at this point with lazy norm.
96        (ty::Alias(..), ty::Infer(ty::TyVar(_))) | (ty::Infer(ty::TyVar(_)), ty::Alias(..))
97            if infcx.next_trait_solver() =>
98        {
99            {
    ::core::panicking::panic_fmt(format_args!("We do not expect to encounter `TyVar` this late in combine -- they should have been handled earlier"));
}panic!(
100                "We do not expect to encounter `TyVar` this late in combine \
101                    -- they should have been handled earlier"
102            )
103        }
104        (_, ty::Infer(ty::FreshTy(_) | ty::FreshIntTy(_) | ty::FreshFloatTy(_)))
105        | (ty::Infer(ty::FreshTy(_) | ty::FreshIntTy(_) | ty::FreshFloatTy(_)), _)
106            if infcx.next_trait_solver() =>
107        {
108            {
    ::core::panicking::panic_fmt(format_args!("We do not expect to encounter `Fresh` variables in the new solver"));
}panic!("We do not expect to encounter `Fresh` variables in the new solver")
109        }
110
111        (ty::Alias(ty::IsRigid::No, alias), _) | (_, ty::Alias(ty::IsRigid::No, alias))
112            if infcx.next_trait_solver() =>
113        {
114            // If both sides are aliases, arbitrarily do the LHS first
115            let terms_are_inverted = !#[allow(non_exhaustive_omitted_patterns)] match a.kind() {
    ty::Alias(ty::IsRigid::No, _) => true,
    _ => false,
}matches!(a.kind(), ty::Alias(ty::IsRigid::No, _));
116            let other = if terms_are_inverted { a } else { b };
117            match (relation.ambient_variance(), terms_are_inverted) {
118                (ty::Invariant, _) => relation.register_predicates([ty::ProjectionPredicate {
119                    projection_term: alias.into(),
120                    term: other.into(),
121                }]),
122                (ty::Covariant, false) | (ty::Contravariant, true) => {
123                    // Generate a new var to represent `alias <: other`
124                    // with `alias == ?A && ?A <: other`
125                    let new_var = infcx.next_ty_infer();
126                    relation.register_predicates([
127                        ty::PredicateKind::Clause(ty::ClauseKind::Projection(
128                            ty::ProjectionPredicate {
129                                projection_term: alias.into(),
130                                term: new_var.into(),
131                            },
132                        )),
133                        ty::PredicateKind::Subtype(ty::SubtypePredicate {
134                            a_is_expected: !terms_are_inverted,
135                            a: new_var,
136                            b: other,
137                        }),
138                    ]);
139                }
140                (ty::Contravariant, false) | (ty::Covariant, true) => {
141                    // a :> b is b <: a
142                    let new_var = infcx.next_ty_infer();
143                    relation.register_predicates([
144                        ty::PredicateKind::Clause(ty::ClauseKind::Projection(
145                            ty::ProjectionPredicate {
146                                projection_term: alias.into(),
147                                term: new_var.into(),
148                            },
149                        )),
150                        ty::PredicateKind::Subtype(ty::SubtypePredicate {
151                            a_is_expected: terms_are_inverted,
152                            a: other,
153                            b: new_var,
154                        }),
155                    ]);
156                }
157                (ty::Bivariant, _) => {
158                    {
    ::core::panicking::panic_fmt(format_args!("internal error: entered unreachable code: {0}",
            format_args!("cannot handle bivariant aliases in register_projection_with_variance")));
}unreachable!(
159                        "cannot handle bivariant aliases in register_projection_with_variance"
160                    )
161                }
162            }
163            Ok(a)
164        }
165
166        // All other cases of inference are errors
167        (ty::Infer(_), _) | (_, ty::Infer(_)) => Err(TypeError::Sorts(ExpectedFound::new(a, b))),
168
169        (ty::Alias(_, ty::AliasTy { kind: ty::Opaque { .. }, .. }), _)
170        | (_, ty::Alias(_, ty::AliasTy { kind: ty::Opaque { .. }, .. }))
171            if !infcx.next_trait_solver() =>
172        {
173            match infcx.typing_mode_raw().assert_not_erased() {
174                // During coherence, opaque types should be treated as *possibly*
175                // equal to any other type. This is an
176                // extremely heavy hammer, but can be relaxed in a forwards-compatible
177                // way later.
178                TypingMode::Coherence => {
179                    relation.register_predicates([ty::Binder::dummy(ty::PredicateKind::Ambiguous)]);
180                    Ok(a)
181                }
182                TypingMode::Typeck { .. }
183                | TypingMode::PostTypeckUntilBorrowck { .. }
184                | TypingMode::PostBorrowck { .. }
185                | TypingMode::PostAnalysis
186                | TypingMode::Codegen => structurally_relate_tys(relation, a, b),
187            }
188        }
189
190        _ => structurally_relate_tys(relation, a, b),
191    }
192}
193
194pub fn super_combine_consts<Infcx, I, R>(
195    infcx: &Infcx,
196    relation: &mut R,
197    a: I::Const,
198    b: I::Const,
199) -> RelateResult<I, I::Const>
200where
201    Infcx: InferCtxtLike<Interner = I>,
202    I: Interner,
203    R: PredicateEmittingRelation<Infcx>,
204{
205    {
    use ::tracing::__macro_support::Callsite as _;
    static __CALLSITE: ::tracing::callsite::DefaultCallsite =
        {
            static META: ::tracing::Metadata<'static> =
                {
                    ::tracing_core::metadata::Metadata::new("event compiler/rustc_type_ir/src/relate/combine.rs:205",
                        "rustc_type_ir::relate::combine", ::tracing::Level::DEBUG,
                        ::tracing_core::__macro_support::Option::Some("compiler/rustc_type_ir/src/relate/combine.rs"),
                        ::tracing_core::__macro_support::Option::Some(205u32),
                        ::tracing_core::__macro_support::Option::Some("rustc_type_ir::relate::combine"),
                        ::tracing_core::field::FieldSet::new(&["message"],
                            ::tracing_core::callsite::Identifier(&__CALLSITE)),
                        ::tracing::metadata::Kind::EVENT)
                };
            ::tracing::callsite::DefaultCallsite::new(&META)
        };
    let enabled =
        ::tracing::Level::DEBUG <= ::tracing::level_filters::STATIC_MAX_LEVEL
                &&
                ::tracing::Level::DEBUG <=
                    ::tracing::level_filters::LevelFilter::current() &&
            {
                let interest = __CALLSITE.interest();
                !interest.is_never() &&
                    ::tracing::__macro_support::__is_enabled(__CALLSITE.metadata(),
                        interest)
            };
    if enabled {
        (|value_set: ::tracing::field::ValueSet|
                    {
                        let meta = __CALLSITE.metadata();
                        ::tracing::Event::dispatch(meta, &value_set);
                        ;
                    })({
                #[allow(unused_imports)]
                use ::tracing::field::{debug, display, Value};
                __CALLSITE.metadata().fields().value_set_all(&[(::tracing::__macro_support::Option::Some(&format_args!("super_combine_consts::<{0}>({1:?}, {2:?})",
                                                    std::any::type_name::<R>(), a, b) as
                                            &dyn ::tracing::field::Value))])
            });
    } else { ; }
};debug!("super_combine_consts::<{}>({:?}, {:?})", std::any::type_name::<R>(), a, b);
206    if true {
    if !!a.has_escaping_bound_vars() {
        ::core::panicking::panic("assertion failed: !a.has_escaping_bound_vars()")
    };
};debug_assert!(!a.has_escaping_bound_vars());
207    if true {
    if !!b.has_escaping_bound_vars() {
        ::core::panicking::panic("assertion failed: !b.has_escaping_bound_vars()")
    };
};debug_assert!(!b.has_escaping_bound_vars());
208
209    if a == b {
210        return Ok(a);
211    }
212
213    let a = infcx.shallow_resolve_const(a);
214    let b = infcx.shallow_resolve_const(b);
215
216    match (a.kind(), b.kind()) {
217        (
218            ty::ConstKind::Infer(ty::InferConst::Var(a_vid)),
219            ty::ConstKind::Infer(ty::InferConst::Var(b_vid)),
220        ) => {
221            infcx.equate_const_vids_raw(a_vid, b_vid);
222            Ok(a)
223        }
224
225        // All other cases of inference with other variables are errors.
226        (ty::ConstKind::Infer(ty::InferConst::Var(_)), ty::ConstKind::Infer(_))
227        | (ty::ConstKind::Infer(_), ty::ConstKind::Infer(ty::InferConst::Var(_))) => {
228            {
    ::core::panicking::panic_fmt(format_args!("tried to combine ConstKind::Infer/ConstKind::Infer(InferConst::Var): {0:?} and {1:?}",
            a, b));
}panic!(
229                "tried to combine ConstKind::Infer/ConstKind::Infer(InferConst::Var): {a:?} and {b:?}"
230            )
231        }
232
233        (ty::ConstKind::Infer(ty::InferConst::Var(vid)), _) => {
234            infcx.instantiate_const_var(relation, true, vid, b)?;
235            Ok(b)
236        }
237
238        (_, ty::ConstKind::Infer(ty::InferConst::Var(vid))) => {
239            infcx.instantiate_const_var(relation, false, vid, a)?;
240            Ok(a)
241        }
242
243        (ty::ConstKind::Alias(ty::IsRigid::No, alias), _)
244        | (_, ty::ConstKind::Alias(ty::IsRigid::No, alias))
245            if (infcx.cx().features().generic_const_exprs() || infcx.next_trait_solver()) =>
246        {
247            if infcx.next_trait_solver() {
248                let other = if #[allow(non_exhaustive_omitted_patterns)] match a.kind() {
    ty::ConstKind::Alias(..) => true,
    _ => false,
}matches!(a.kind(), ty::ConstKind::Alias(..)) { b } else { a };
249                relation.register_predicates([ty::ProjectionPredicate {
250                    projection_term: alias.into(),
251                    term: other.into(),
252                }])
253            } else {
254                relation.register_predicates([ty::PredicateKind::ConstEquate(a, b)]);
255            }
256
257            Ok(b)
258        }
259
260        _ => structurally_relate_consts(relation, a, b),
261    }
262}
263
264pub fn combine_ty_args<Infcx, I, R>(
265    infcx: &Infcx,
266    relation: &mut R,
267    a_ty: I::Ty,
268    b_ty: I::Ty,
269    variances: I::VariancesOf,
270    a_args: I::GenericArgs,
271    b_args: I::GenericArgs,
272    mk: impl FnOnce(I::GenericArgs) -> I::Ty,
273) -> RelateResult<I, I::Ty>
274where
275    Infcx: InferCtxtLike<Interner = I>,
276    I: Interner,
277    R: PredicateEmittingRelation<Infcx>,
278{
279    let cx = infcx.cx();
280    let mut has_unconstrained_bivariant_arg = false;
281    let args = iter::zip(a_args.iter(), b_args.iter()).enumerate().map(|(i, (a, b))| {
282        let variance = variances.get(i).unwrap();
283        let variance_info = match variance {
284            ty::Invariant => {
285                VarianceDiagInfo::Invariant { ty: a_ty, param_index: i.try_into().unwrap() }
286            }
287            ty::Covariant | ty::Contravariant => VarianceDiagInfo::default(),
288            ty::Bivariant => {
289                let has_non_region_infer = |arg: I::GenericArg| {
290                    arg.has_non_region_infer()
291                        && infcx.resolve_vars_if_possible(arg).has_non_region_infer()
292                };
293                if has_non_region_infer(a) || has_non_region_infer(b) {
294                    has_unconstrained_bivariant_arg = true;
295                }
296                VarianceDiagInfo::default()
297            }
298        };
299        relation.relate_with_variance(variance, variance_info, a, b)
300    });
301    let args = cx.mk_args_from_iter(args)?;
302
303    // In general, we do not check whether all types which occur during
304    // type checking are well-formed. We only check wf of user-provided types
305    // and when actually using a type, e.g. for method calls.
306    //
307    // This means that when subtyping, we may end up with unconstrained
308    // inference variables if a generalized type has bivariant parameters.
309    // A parameter may only be bivariant if it is constrained by a projection
310    // bound in a where-clause. As an example, imagine a type:
311    //
312    //     struct Foo<A, B> where A: Iterator<Item = B> {
313    //         data: A
314    //     }
315    //
316    // here, `A` will be covariant, but `B` is unconstrained. However, whatever it is,
317    // for `Foo` to be WF, it must be equal to `A::Item`.
318    //
319    // If we have an input `Foo<?A, ?B>`, then after generalization we will wind
320    // up with a type like `Foo<?C, ?D>`. When we enforce `Foo<?A, ?B> <: Foo<?C, ?D>`,
321    // we will wind up with the requirement that `?A <: ?C`, but no particular
322    // relationship between `?B` and `?D` (after all, these types may be completely
323    // different). If we do nothing else, this may mean that `?D` goes unconstrained
324    // (as in #41677). To avoid this we emit a `WellFormed` when relating types with
325    // bivariant arguments.
326    if has_unconstrained_bivariant_arg {
327        relation.register_predicates([
328            ty::ClauseKind::WellFormed(a_ty.into()),
329            ty::ClauseKind::WellFormed(b_ty.into()),
330        ]);
331    }
332
333    if a_args == args { Ok(a_ty) } else { Ok(mk(args)) }
334}