Handle inference variables in nll_relate
and use it for chalk
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@ -11,30 +11,41 @@
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//! This code is kind of an alternate way of doing subtyping,
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//! supertyping, and type equating, distinct from the `combine.rs`
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//! code but very similar in its effect and design. Eventually the two
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//! ought to be merged. This code is intended for use in NLL.
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//! ought to be merged. This code is intended for use in NLL and chalk.
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//!
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//! Here are the key differences:
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//!
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//! - This code generally assumes that there are no unbound type
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//! inferences variables, because at NLL
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//! time types are fully inferred up-to regions.
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//! - Actually, to support user-given type annotations like
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//! `Vec<_>`, we do have some measure of support for type
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//! inference variables, but we impose some simplifying
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//! assumptions on them that would not be suitable for the infer
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//! code more generally. This could be fixed.
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//! - This code may choose to bypass some checks (e.g. the occurs check)
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//! in case we know that there are no unbound type inference variables.
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//! This is the case for NLL, because at NLL time types are fully inferred
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//! up-to regions.
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//! - This code uses "universes" to handle higher-ranked regions and
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//! not the leak-check. This is "more correct" than what rustc does
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//! and we are generally migrating in this direction, but NLL had to
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//! get there first.
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//!
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//! Also, this code assumes that there are no bound type vars at all, not even
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//! free ones. This is ok because:
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//! - we are not relating anything quantified over some type variable
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//! - we will have instantiated all the bound type vars already (the one
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//! thing we relate in chalk are basically domain goals and their
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//! constituents)
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use crate::infer::InferCtxt;
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use crate::ty::fold::{TypeFoldable, TypeVisitor};
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use crate::ty::relate::{self, Relate, RelateResult, TypeRelation};
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use crate::ty::subst::Kind;
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use crate::ty::{self, Ty, TyCtxt};
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use crate::ty::error::TypeError;
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use crate::traits::DomainGoal;
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use rustc_data_structures::fx::FxHashMap;
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#[derive(Copy, Clone, PartialEq, Eq, Hash, Debug)]
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pub enum NormalizationStrategy {
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Lazy,
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Eager,
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}
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pub struct TypeRelating<'me, 'gcx: 'tcx, 'tcx: 'me, D>
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where
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D: TypeRelatingDelegate<'tcx>,
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@ -75,6 +86,10 @@ pub trait TypeRelatingDelegate<'tcx> {
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/// delegate.
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fn push_outlives(&mut self, sup: ty::Region<'tcx>, sub: ty::Region<'tcx>);
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/// Push a domain goal that will need to be proved for the two types to
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/// be related. Used for lazy normalization.
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fn push_domain_goal(&mut self, domain_goal: DomainGoal<'tcx>);
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/// Creates a new universe index. Used when instantiating placeholders.
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fn create_next_universe(&mut self) -> ty::UniverseIndex;
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@ -105,6 +120,13 @@ pub trait TypeRelatingDelegate<'tcx> {
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/// relate `Foo<'?0>` with `Foo<'a>` (and probably add an outlives
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/// relation stating that `'?0: 'a`).
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fn generalize_existential(&mut self, universe: ty::UniverseIndex) -> ty::Region<'tcx>;
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/// Define the normalization strategy to use, eager or lazy.
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fn normalization() -> NormalizationStrategy;
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/// Enable some optimizations if we do not expect inference variables
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/// in the RHS of the relation.
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fn forbid_inference_vars() -> bool;
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}
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#[derive(Clone, Debug)]
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@ -242,15 +264,79 @@ fn push_outlives(&mut self, sup: ty::Region<'tcx>, sub: ty::Region<'tcx>) {
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self.delegate.push_outlives(sup, sub);
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}
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/// When we encounter a canonical variable `var` in the output,
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/// equate it with `kind`. If the variable has been previously
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/// equated, then equate it again.
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fn relate_var(&mut self, var_ty: Ty<'tcx>, value_ty: Ty<'tcx>) -> RelateResult<'tcx, Ty<'tcx>> {
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debug!("equate_var(var_ty={:?}, value_ty={:?})", var_ty, value_ty);
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/// Relate a projection type and some value type lazily. This will always
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/// succeed, but we are pushing an additional `ProjectionEq` goal depending
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/// on the value type:
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/// - if the value type is any type `T` which is not a projection, we push
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/// `ProjectionEq(projection = T)`.
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/// - if the value type is another projection `other_projection`, we create
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/// a new inference variable `?U` and push the two goals
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/// `ProjectionEq(projection = ?U)`, `ProjectionEq(other_projection = ?U)`.
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fn relate_projection_ty(
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&mut self,
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projection_ty: ty::ProjectionTy<'tcx>,
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value_ty: ty::Ty<'tcx>
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) -> Ty<'tcx> {
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use crate::infer::type_variable::TypeVariableOrigin;
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use crate::traits::WhereClause;
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use syntax_pos::DUMMY_SP;
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let generalized_ty = self.generalize_value(value_ty);
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self.infcx
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.force_instantiate_unchecked(var_ty, generalized_ty);
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match value_ty.sty {
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ty::Projection(other_projection_ty) => {
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let var = self.infcx.next_ty_var(TypeVariableOrigin::MiscVariable(DUMMY_SP));
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self.relate_projection_ty(projection_ty, var);
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self.relate_projection_ty(other_projection_ty, var);
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var
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}
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_ => {
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let projection = ty::ProjectionPredicate {
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projection_ty,
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ty: value_ty,
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};
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self.delegate.push_domain_goal(
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DomainGoal::Holds(WhereClause::ProjectionEq(projection))
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);
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value_ty
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}
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}
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}
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/// Relate a type inference variable with a value type.
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fn relate_ty_var(
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&mut self,
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vid: ty::TyVid,
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value_ty: Ty<'tcx>
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) -> RelateResult<'tcx, Ty<'tcx>> {
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debug!("relate_ty_var(vid={:?}, value_ty={:?})", vid, value_ty);
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match value_ty.sty {
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ty::Infer(ty::TyVar(value_vid)) => {
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// Two type variables: just equate them.
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self.infcx.type_variables.borrow_mut().equate(vid, value_vid);
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return Ok(value_ty);
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}
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ty::Projection(projection_ty)
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if D::normalization() == NormalizationStrategy::Lazy =>
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{
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return Ok(self.relate_projection_ty(projection_ty, self.infcx.tcx.mk_var(vid)));
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}
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_ => (),
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}
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let generalized_ty = self.generalize_value(value_ty, vid)?;
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debug!("relate_ty_var: generalized_ty = {:?}", generalized_ty);
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if D::forbid_inference_vars() {
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// In NLL, we don't have type inference variables
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// floating around, so we can do this rather imprecise
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// variant of the occurs-check.
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assert!(!generalized_ty.has_infer_types());
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}
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self.infcx.type_variables.borrow_mut().instantiate(vid, generalized_ty);
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// The generalized values we extract from `canonical_var_values` have
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// been fully instantiated and hence the set of scopes we have
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@ -264,22 +350,27 @@ fn relate_var(&mut self, var_ty: Ty<'tcx>, value_ty: Ty<'tcx>) -> RelateResult<'
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// Restore the old scopes now.
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self.a_scopes = old_a_scopes;
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debug!("equate_var: complete, result = {:?}", result);
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debug!("relate_ty_var: complete, result = {:?}", result);
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result
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}
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fn generalize_value<T: Relate<'tcx>>(&mut self, value: T) -> T {
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TypeGeneralizer {
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tcx: self.infcx.tcx,
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fn generalize_value<T: Relate<'tcx>>(
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&mut self,
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value: T,
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for_vid: ty::TyVid
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) -> RelateResult<'tcx, T> {
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let universe = self.infcx.probe_ty_var(for_vid).unwrap_err();
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let mut generalizer = TypeGeneralizer {
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infcx: self.infcx,
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delegate: &mut self.delegate,
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first_free_index: ty::INNERMOST,
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ambient_variance: self.ambient_variance,
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for_vid_sub_root: self.infcx.type_variables.borrow_mut().sub_root_var(for_vid),
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universe,
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};
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// These always correspond to an `_` or `'_` written by
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// user, and those are always in the root universe.
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universe: ty::UniverseIndex::ROOT,
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}.relate(&value, &value)
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.unwrap()
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generalizer.relate(&value, &value)
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}
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}
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@ -327,11 +418,35 @@ fn relate_with_variance<T: Relate<'tcx>>(
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Ok(r)
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}
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fn tys(&mut self, a: Ty<'tcx>, b: Ty<'tcx>) -> RelateResult<'tcx, Ty<'tcx>> {
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fn tys(&mut self, a: Ty<'tcx>, mut b: Ty<'tcx>) -> RelateResult<'tcx, Ty<'tcx>> {
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let a = self.infcx.shallow_resolve(a);
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match a.sty {
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ty::Infer(ty::TyVar(_)) | ty::Infer(ty::IntVar(_)) | ty::Infer(ty::FloatVar(_)) => {
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self.relate_var(a.into(), b.into())
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if !D::forbid_inference_vars() {
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b = self.infcx.shallow_resolve(b);
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}
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match (&a.sty, &b.sty) {
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(_, &ty::Infer(ty::TyVar(vid))) => {
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if D::forbid_inference_vars() {
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// Forbid inference variables in the RHS.
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bug!("unexpected inference var {:?}", b)
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} else {
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self.relate_ty_var(vid, a)
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}
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}
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(&ty::Infer(ty::TyVar(vid)), _) => self.relate_ty_var(vid, b),
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(&ty::Projection(projection_ty), _)
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if D::normalization() == NormalizationStrategy::Lazy =>
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{
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Ok(self.relate_projection_ty(projection_ty, b))
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}
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(_, &ty::Projection(projection_ty))
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if D::normalization() == NormalizationStrategy::Lazy =>
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{
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Ok(self.relate_projection_ty(projection_ty, a))
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}
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_ => {
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@ -340,7 +455,8 @@ fn tys(&mut self, a: Ty<'tcx>, b: Ty<'tcx>) -> RelateResult<'tcx, Ty<'tcx>> {
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a, b, self.ambient_variance
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);
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relate::super_relate_tys(self, a, b)
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// Will also handle unification of `IntVar` and `FloatVar`.
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self.infcx.super_combine_tys(self, a, b)
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}
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}
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}
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@ -551,7 +667,7 @@ struct TypeGeneralizer<'me, 'gcx: 'tcx, 'tcx: 'me, D>
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where
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D: TypeRelatingDelegate<'tcx> + 'me,
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{
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tcx: TyCtxt<'me, 'gcx, 'tcx>,
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infcx: &'me InferCtxt<'me, 'gcx, 'tcx>,
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delegate: &'me mut D,
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@ -561,6 +677,14 @@ struct TypeGeneralizer<'me, 'gcx: 'tcx, 'tcx: 'me, D>
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first_free_index: ty::DebruijnIndex,
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/// The vid of the type variable that is in the process of being
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/// instantiated. If we find this within the value we are folding,
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/// that means we would have created a cyclic value.
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for_vid_sub_root: ty::TyVid,
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/// The universe of the type variable that is in the process of being
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/// instantiated. If we find anything that this universe cannot name,
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/// we reject the relation.
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universe: ty::UniverseIndex,
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}
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@ -569,7 +693,7 @@ impl<D> TypeRelation<'me, 'gcx, 'tcx> for TypeGeneralizer<'me, 'gcx, 'tcx, D>
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D: TypeRelatingDelegate<'tcx>,
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{
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fn tcx(&self) -> TyCtxt<'me, 'gcx, 'tcx> {
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self.tcx
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self.infcx.tcx
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}
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fn tag(&self) -> &'static str {
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@ -609,17 +733,89 @@ fn relate_with_variance<T: Relate<'tcx>>(
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}
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fn tys(&mut self, a: Ty<'tcx>, _: Ty<'tcx>) -> RelateResult<'tcx, Ty<'tcx>> {
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use crate::infer::type_variable::TypeVariableValue;
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debug!("TypeGeneralizer::tys(a={:?})", a,);
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match a.sty {
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ty::Infer(ty::TyVar(_)) | ty::Infer(ty::IntVar(_)) | ty::Infer(ty::FloatVar(_)) => {
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ty::Infer(ty::TyVar(_)) | ty::Infer(ty::IntVar(_)) | ty::Infer(ty::FloatVar(_))
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if D::forbid_inference_vars() =>
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{
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bug!(
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"unexpected inference variable encountered in NLL generalization: {:?}",
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a
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);
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}
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_ => relate::super_relate_tys(self, a, a),
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ty::Infer(ty::TyVar(vid)) => {
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let mut variables = self.infcx.type_variables.borrow_mut();
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let vid = variables.root_var(vid);
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let sub_vid = variables.sub_root_var(vid);
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if sub_vid == self.for_vid_sub_root {
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// If sub-roots are equal, then `for_vid` and
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// `vid` are related via subtyping.
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debug!("TypeGeneralizer::tys: occurs check failed");
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return Err(TypeError::Mismatch);
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} else {
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match variables.probe(vid) {
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TypeVariableValue::Known { value: u } => {
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drop(variables);
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self.relate(&u, &u)
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}
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TypeVariableValue::Unknown { universe } => {
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if self.universe.cannot_name(universe) {
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debug!(
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"TypeGeneralizer::tys: root universe {:?} cannot name\
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variable in universe {:?}",
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self.universe,
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universe
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);
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return Err(TypeError::Mismatch);
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}
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if self.ambient_variance == ty::Bivariant {
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// FIXME: we may need a WF predicate (related to #54105).
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}
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let origin = *variables.var_origin(vid);
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let new_var_id = variables.new_var(self.universe, false, origin);
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let u = self.tcx().mk_var(new_var_id);
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debug!(
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"generalize: replacing original vid={:?} with new={:?}",
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vid,
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u
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);
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return Ok(u);
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}
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}
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}
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}
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ty::Infer(ty::IntVar(_)) |
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ty::Infer(ty::FloatVar(_)) => {
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// No matter what mode we are in,
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// integer/floating-point types must be equal to be
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// relatable.
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Ok(a)
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}
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ty::Placeholder(placeholder) => {
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if self.universe.cannot_name(placeholder.universe) {
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debug!(
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"TypeGeneralizer::tys: root universe {:?} cannot name\
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placeholder in universe {:?}",
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self.universe,
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placeholder.universe
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);
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Err(TypeError::Mismatch)
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} else {
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Ok(a)
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}
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}
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_ => {
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relate::super_relate_tys(self, a, a)
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}
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}
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}
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@ -673,64 +869,3 @@ fn binders<T>(
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Ok(ty::Binder::bind(result))
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}
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}
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impl InferCtxt<'_, '_, 'tcx> {
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/// A hacky sort of method used by the NLL type-relating code:
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///
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/// - `var` must be some unbound type variable.
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/// - `value` must be a suitable type to use as its value.
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///
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/// `var` will then be equated with `value`. Note that this
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/// sidesteps a number of important checks, such as the "occurs
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/// check" that prevents cyclic types, so it is important not to
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/// use this method during regular type-check.
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fn force_instantiate_unchecked(&self, var: Ty<'tcx>, value: Ty<'tcx>) {
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match (&var.sty, &value.sty) {
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(&ty::Infer(ty::TyVar(vid)), _) => {
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let mut type_variables = self.type_variables.borrow_mut();
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// In NLL, we don't have type inference variables
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// floating around, so we can do this rather imprecise
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// variant of the occurs-check.
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assert!(!value.has_infer_types());
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type_variables.instantiate(vid, value);
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}
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(&ty::Infer(ty::IntVar(vid)), &ty::Int(value)) => {
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let mut int_unification_table = self.int_unification_table.borrow_mut();
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int_unification_table
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.unify_var_value(vid, Some(ty::IntVarValue::IntType(value)))
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.unwrap_or_else(|_| {
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bug!("failed to unify int var `{:?}` with `{:?}`", vid, value);
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});
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}
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(&ty::Infer(ty::IntVar(vid)), &ty::Uint(value)) => {
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let mut int_unification_table = self.int_unification_table.borrow_mut();
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int_unification_table
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.unify_var_value(vid, Some(ty::IntVarValue::UintType(value)))
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.unwrap_or_else(|_| {
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bug!("failed to unify int var `{:?}` with `{:?}`", vid, value);
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});
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}
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(&ty::Infer(ty::FloatVar(vid)), &ty::Float(value)) => {
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let mut float_unification_table = self.float_unification_table.borrow_mut();
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float_unification_table
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.unify_var_value(vid, Some(ty::FloatVarValue(value)))
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.unwrap_or_else(|_| {
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bug!("failed to unify float var `{:?}` with `{:?}`", vid, value)
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});
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}
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_ => {
|
||||
bug!(
|
||||
"force_instantiate_unchecked invoked with bad combination: var={:?} value={:?}",
|
||||
var,
|
||||
value,
|
||||
);
|
||||
}
|
||||
}
|
||||
}
|
||||
}
|
||||
|
@ -371,6 +371,10 @@ pub fn super_relate_tys<'a, 'gcx, 'tcx, R>(relation: &mut R,
|
||||
bug!("var types encountered in super_relate_tys")
|
||||
}
|
||||
|
||||
(ty::Bound(..), _) | (_, ty::Bound(..)) => {
|
||||
bug!("bound types encountered in super_relate_tys")
|
||||
}
|
||||
|
||||
(&ty::Error, _) | (_, &ty::Error) =>
|
||||
{
|
||||
Ok(tcx.types.err)
|
||||
@ -394,6 +398,10 @@ pub fn super_relate_tys<'a, 'gcx, 'tcx, R>(relation: &mut R,
|
||||
Ok(a)
|
||||
}
|
||||
|
||||
(ty::Placeholder(p1), ty::Placeholder(p2)) if p1 == p2 => {
|
||||
Ok(a)
|
||||
}
|
||||
|
||||
(&ty::Adt(a_def, a_substs), &ty::Adt(b_def, b_substs))
|
||||
if a_def == b_def =>
|
||||
{
|
||||
@ -556,8 +564,13 @@ pub fn super_relate_tys<'a, 'gcx, 'tcx, R>(relation: &mut R,
|
||||
Ok(tcx.mk_fn_ptr(fty))
|
||||
}
|
||||
|
||||
(&ty::Projection(ref a_data), &ty::Projection(ref b_data)) =>
|
||||
{
|
||||
(ty::UnnormalizedProjection(a_data), ty::UnnormalizedProjection(b_data)) => {
|
||||
let projection_ty = relation.relate(a_data, b_data)?;
|
||||
Ok(tcx.mk_ty(ty::UnnormalizedProjection(projection_ty)))
|
||||
}
|
||||
|
||||
// these two are already handled downstream in case of lazy normalization
|
||||
(ty::Projection(a_data), ty::Projection(b_data)) => {
|
||||
let projection_ty = relation.relate(a_data, b_data)?;
|
||||
Ok(tcx.mk_projection(projection_ty.item_def_id, projection_ty.substs))
|
||||
}
|
||||
|
@ -10,10 +10,11 @@
|
||||
|
||||
use borrow_check::nll::constraints::OutlivesConstraint;
|
||||
use borrow_check::nll::type_check::{BorrowCheckContext, Locations};
|
||||
use rustc::infer::nll_relate::{TypeRelating, TypeRelatingDelegate};
|
||||
use rustc::infer::nll_relate::{TypeRelating, TypeRelatingDelegate, NormalizationStrategy};
|
||||
use rustc::infer::{InferCtxt, NLLRegionVariableOrigin};
|
||||
use rustc::mir::ConstraintCategory;
|
||||
use rustc::traits::query::Fallible;
|
||||
use rustc::traits::DomainGoal;
|
||||
use rustc::ty::relate::TypeRelation;
|
||||
use rustc::ty::{self, Ty};
|
||||
|
||||
@ -38,7 +39,7 @@ pub(super) fn relate_types<'tcx>(
|
||||
TypeRelating::new(
|
||||
infcx,
|
||||
NllTypeRelatingDelegate::new(infcx, borrowck_context, locations, category),
|
||||
v,
|
||||
v
|
||||
).relate(&a, &b)?;
|
||||
Ok(())
|
||||
}
|
||||
@ -115,4 +116,16 @@ fn push_outlives(&mut self, sup: ty::Region<'tcx>, sub: ty::Region<'tcx>) {
|
||||
});
|
||||
}
|
||||
}
|
||||
|
||||
fn push_domain_goal(&mut self, _: DomainGoal<'tcx>) {
|
||||
// No-op
|
||||
}
|
||||
|
||||
fn normalization() -> NormalizationStrategy {
|
||||
NormalizationStrategy::Eager
|
||||
}
|
||||
|
||||
fn forbid_inference_vars() -> bool {
|
||||
true
|
||||
}
|
||||
}
|
||||
|
@ -9,13 +9,14 @@
|
||||
// except according to those terms.
|
||||
|
||||
mod program_clauses;
|
||||
mod unify;
|
||||
|
||||
use chalk_engine::fallible::Fallible as ChalkEngineFallible;
|
||||
use chalk_engine::fallible::{Fallible, NoSolution};
|
||||
use chalk_engine::{context, hh::HhGoal, DelayedLiteral, Literal, ExClause};
|
||||
use rustc::infer::canonical::{
|
||||
Canonical, CanonicalVarValues, OriginalQueryValues, QueryRegionConstraint, QueryResponse,
|
||||
Canonical, CanonicalVarValues, OriginalQueryValues, QueryResponse,
|
||||
};
|
||||
use rustc::infer::{InferCtxt, InferOk, LateBoundRegionConversionTime};
|
||||
use rustc::infer::{InferCtxt, LateBoundRegionConversionTime};
|
||||
use rustc::traits::{
|
||||
DomainGoal,
|
||||
ExClauseFold,
|
||||
@ -30,11 +31,12 @@
|
||||
use rustc::ty::fold::{TypeFoldable, TypeFolder, TypeVisitor};
|
||||
use rustc::ty::subst::{Kind, UnpackedKind};
|
||||
use rustc::ty::{self, TyCtxt};
|
||||
use syntax_pos::DUMMY_SP;
|
||||
|
||||
use std::fmt::{self, Debug};
|
||||
use std::marker::PhantomData;
|
||||
|
||||
use syntax_pos::DUMMY_SP;
|
||||
use self::unify::*;
|
||||
|
||||
#[derive(Copy, Clone, Debug)]
|
||||
crate struct ChalkArenas<'gcx> {
|
||||
@ -55,10 +57,12 @@
|
||||
#[derive(Copy, Clone, Debug)]
|
||||
crate struct UniverseMap;
|
||||
|
||||
crate type RegionConstraint<'tcx> = ty::OutlivesPredicate<Kind<'tcx>, ty::Region<'tcx>>;
|
||||
|
||||
#[derive(Clone, Debug, PartialEq, Eq, Hash)]
|
||||
crate struct ConstrainedSubst<'tcx> {
|
||||
subst: CanonicalVarValues<'tcx>,
|
||||
constraints: Vec<QueryRegionConstraint<'tcx>>,
|
||||
constraints: Vec<RegionConstraint<'tcx>>,
|
||||
}
|
||||
|
||||
BraceStructTypeFoldableImpl! {
|
||||
@ -86,7 +90,7 @@ impl context::Context for ChalkArenas<'tcx> {
|
||||
|
||||
type GoalInEnvironment = InEnvironment<'tcx, Goal<'tcx>>;
|
||||
|
||||
type RegionConstraint = QueryRegionConstraint<'tcx>;
|
||||
type RegionConstraint = RegionConstraint<'tcx>;
|
||||
|
||||
type Substitution = CanonicalVarValues<'tcx>;
|
||||
|
||||
@ -104,7 +108,7 @@ impl context::Context for ChalkArenas<'tcx> {
|
||||
|
||||
type ProgramClauses = Vec<Clause<'tcx>>;
|
||||
|
||||
type UnificationResult = InferOk<'tcx, ()>;
|
||||
type UnificationResult = UnificationResult<'tcx>;
|
||||
|
||||
fn goal_in_environment(
|
||||
env: &Environment<'tcx>,
|
||||
@ -291,7 +295,7 @@ fn resolvent_clause(
|
||||
_goal: &DomainGoal<'tcx>,
|
||||
_subst: &CanonicalVarValues<'tcx>,
|
||||
_clause: &Clause<'tcx>,
|
||||
) -> chalk_engine::fallible::Fallible<Canonical<'gcx, ChalkExClause<'gcx>>> {
|
||||
) -> Fallible<Canonical<'gcx, ChalkExClause<'gcx>>> {
|
||||
panic!()
|
||||
}
|
||||
|
||||
@ -301,7 +305,7 @@ fn apply_answer_subst(
|
||||
_selected_goal: &InEnvironment<'tcx, Goal<'tcx>>,
|
||||
_answer_table_goal: &Canonical<'gcx, InEnvironment<'gcx, Goal<'gcx>>>,
|
||||
_canonical_answer_subst: &Canonical<'gcx, ConstrainedSubst<'gcx>>,
|
||||
) -> chalk_engine::fallible::Fallible<ChalkExClause<'tcx>> {
|
||||
) -> Fallible<ChalkExClause<'tcx>> {
|
||||
panic!()
|
||||
}
|
||||
}
|
||||
@ -376,7 +380,7 @@ fn canonicalize_ex_clause(
|
||||
fn canonicalize_constrained_subst(
|
||||
&mut self,
|
||||
subst: CanonicalVarValues<'tcx>,
|
||||
constraints: Vec<QueryRegionConstraint<'tcx>>,
|
||||
constraints: Vec<RegionConstraint<'tcx>>,
|
||||
) -> Canonical<'gcx, ConstrainedSubst<'gcx>> {
|
||||
self.infcx.canonicalize_response(&ConstrainedSubst { subst, constraints })
|
||||
}
|
||||
@ -400,11 +404,13 @@ fn invert_goal(
|
||||
|
||||
fn unify_parameters(
|
||||
&mut self,
|
||||
_environment: &Environment<'tcx>,
|
||||
_a: &Kind<'tcx>,
|
||||
_b: &Kind<'tcx>,
|
||||
) -> ChalkEngineFallible<InferOk<'tcx, ()>> {
|
||||
panic!()
|
||||
environment: &Environment<'tcx>,
|
||||
a: &Kind<'tcx>,
|
||||
b: &Kind<'tcx>,
|
||||
) -> Fallible<UnificationResult<'tcx>> {
|
||||
self.infcx.commit_if_ok(|_| {
|
||||
unify(self.infcx, *environment, a, b).map_err(|_| NoSolution)
|
||||
})
|
||||
}
|
||||
|
||||
fn sink_answer_subset(
|
||||
@ -421,11 +427,22 @@ fn lift_delayed_literal(
|
||||
panic!("lift")
|
||||
}
|
||||
|
||||
fn into_ex_clause(&mut self, _result: InferOk<'tcx, ()>, _ex_clause: &mut ChalkExClause<'tcx>) {
|
||||
panic!("TBD")
|
||||
fn into_ex_clause(
|
||||
&mut self,
|
||||
result: UnificationResult<'tcx>,
|
||||
ex_clause: &mut ChalkExClause<'tcx>
|
||||
) {
|
||||
into_ex_clause(result, ex_clause);
|
||||
}
|
||||
}
|
||||
|
||||
crate fn into_ex_clause(result: UnificationResult<'tcx>, ex_clause: &mut ChalkExClause<'tcx>) {
|
||||
ex_clause.subgoals.extend(
|
||||
result.goals.into_iter().map(Literal::Positive)
|
||||
);
|
||||
ex_clause.constraints.extend(result.constraints);
|
||||
}
|
||||
|
||||
type ChalkHhGoal<'tcx> = HhGoal<ChalkArenas<'tcx>>;
|
||||
|
||||
type ChalkExClause<'tcx> = ExClause<ChalkArenas<'tcx>>;
|
||||
|
98
src/librustc_traits/chalk_context/unify.rs
Normal file
98
src/librustc_traits/chalk_context/unify.rs
Normal file
@ -0,0 +1,98 @@
|
||||
use rustc::infer::nll_relate::{TypeRelating, TypeRelatingDelegate, NormalizationStrategy};
|
||||
use rustc::infer::{InferCtxt, RegionVariableOrigin};
|
||||
use rustc::traits::{DomainGoal, Goal, Environment, InEnvironment};
|
||||
use rustc::ty::relate::{Relate, TypeRelation, RelateResult};
|
||||
use rustc::ty;
|
||||
use syntax_pos::DUMMY_SP;
|
||||
|
||||
crate struct UnificationResult<'tcx> {
|
||||
crate goals: Vec<InEnvironment<'tcx, Goal<'tcx>>>,
|
||||
crate constraints: Vec<super::RegionConstraint<'tcx>>,
|
||||
}
|
||||
|
||||
crate fn unify<'me, 'gcx, 'tcx, T: Relate<'tcx>>(
|
||||
infcx: &'me InferCtxt<'me, 'gcx, 'tcx>,
|
||||
environment: Environment<'tcx>,
|
||||
a: &T,
|
||||
b: &T
|
||||
) -> RelateResult<'tcx, UnificationResult<'tcx>> {
|
||||
let mut delegate = ChalkTypeRelatingDelegate::new(
|
||||
infcx,
|
||||
environment
|
||||
);
|
||||
|
||||
TypeRelating::new(
|
||||
infcx,
|
||||
&mut delegate,
|
||||
ty::Variance::Invariant
|
||||
).relate(a, b)?;
|
||||
|
||||
Ok(UnificationResult {
|
||||
goals: delegate.goals,
|
||||
constraints: delegate.constraints,
|
||||
})
|
||||
}
|
||||
|
||||
struct ChalkTypeRelatingDelegate<'me, 'gcx: 'tcx, 'tcx: 'me> {
|
||||
infcx: &'me InferCtxt<'me, 'gcx, 'tcx>,
|
||||
environment: Environment<'tcx>,
|
||||
goals: Vec<InEnvironment<'tcx, Goal<'tcx>>>,
|
||||
constraints: Vec<super::RegionConstraint<'tcx>>,
|
||||
}
|
||||
|
||||
impl ChalkTypeRelatingDelegate<'me, 'gcx, 'tcx> {
|
||||
fn new(
|
||||
infcx: &'me InferCtxt<'me, 'gcx, 'tcx>,
|
||||
environment: Environment<'tcx>,
|
||||
) -> Self {
|
||||
Self {
|
||||
infcx,
|
||||
environment,
|
||||
goals: Vec::new(),
|
||||
constraints: Vec::new(),
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
impl TypeRelatingDelegate<'tcx> for &mut ChalkTypeRelatingDelegate<'_, '_, 'tcx> {
|
||||
fn create_next_universe(&mut self) -> ty::UniverseIndex {
|
||||
self.infcx.create_next_universe()
|
||||
}
|
||||
|
||||
fn next_existential_region_var(&mut self) -> ty::Region<'tcx> {
|
||||
self.infcx.next_region_var(RegionVariableOrigin::MiscVariable(DUMMY_SP))
|
||||
}
|
||||
|
||||
fn next_placeholder_region(
|
||||
&mut self,
|
||||
placeholder: ty::PlaceholderRegion
|
||||
) -> ty::Region<'tcx> {
|
||||
self.infcx.tcx.mk_region(ty::RePlaceholder(placeholder))
|
||||
}
|
||||
|
||||
fn generalize_existential(&mut self, universe: ty::UniverseIndex) -> ty::Region<'tcx> {
|
||||
self.infcx.next_region_var_in_universe(
|
||||
RegionVariableOrigin::MiscVariable(DUMMY_SP),
|
||||
universe
|
||||
)
|
||||
}
|
||||
|
||||
fn push_outlives(&mut self, sup: ty::Region<'tcx>, sub: ty::Region<'tcx>) {
|
||||
self.constraints.push(ty::OutlivesPredicate(sup.into(), sub));
|
||||
}
|
||||
|
||||
fn push_domain_goal(&mut self, domain_goal: DomainGoal<'tcx>) {
|
||||
let goal = self.environment.with(
|
||||
self.infcx.tcx.mk_goal(domain_goal.into_goal())
|
||||
);
|
||||
self.goals.push(goal);
|
||||
}
|
||||
|
||||
fn normalization() -> NormalizationStrategy {
|
||||
NormalizationStrategy::Lazy
|
||||
}
|
||||
|
||||
fn forbid_inference_vars() -> bool {
|
||||
false
|
||||
}
|
||||
}
|
Loading…
Reference in New Issue
Block a user