@@ -717,7 +717,7 @@ use std::fmt;
717717
718718use crate :: constructor:: { Constructor , ConstructorSet } ;
719719use crate :: pat:: { DeconstructedPat , WitnessPat } ;
720- use crate :: { Captures , MatchArm , MatchCtxt , TypeCx , TypedArena } ;
720+ use crate :: { Captures , MatchArm , MatchCtxt , TypeCx } ;
721721
722722use self :: ValidityConstraint :: * ;
723723
@@ -984,11 +984,13 @@ struct Matrix<'p, Cx: TypeCx> {
984984 /// each column must have the same type. Each column corresponds to a place within the
985985 /// scrutinee.
986986 rows : Vec < MatrixRow < ' p , Cx > > ,
987- /// Stores an extra fictitious row full of wildcards. Mostly used to keep track of the type of
988- /// each column. This must obey the same invariants as the real rows.
989- wildcard_row : PatStack < ' p , Cx > ,
987+ /// Track the type of each column/place.
988+ place_ty : SmallVec < [ Cx :: Ty ; 2 ] > ,
990989 /// Track for each column/place whether it contains a known valid value.
991990 place_validity : SmallVec < [ ValidityConstraint ; 2 ] > ,
991+ /// Track whether the virtual wildcard row used to compute exhaustiveness is relevant. See top
992+ /// of the file for details on relevancy.
993+ wildcard_row_is_relevant : bool ,
992994}
993995
994996impl < ' p , Cx : TypeCx > Matrix < ' p , Cx > {
@@ -1007,17 +1009,15 @@ impl<'p, Cx: TypeCx> Matrix<'p, Cx> {
10071009
10081010 /// Build a new matrix from an iterator of `MatchArm`s.
10091011 fn new (
1010- wildcard_arena : & ' p TypedArena < DeconstructedPat < ' p , Cx > > ,
10111012 arms : & [ MatchArm < ' p , Cx > ] ,
10121013 scrut_ty : Cx :: Ty ,
10131014 scrut_validity : ValidityConstraint ,
10141015 ) -> Self {
1015- let wild_pattern = wildcard_arena. alloc ( DeconstructedPat :: wildcard ( scrut_ty) ) ;
1016- let wildcard_row = PatStack :: from_pattern ( wild_pattern) ;
10171016 let mut matrix = Matrix {
10181017 rows : Vec :: with_capacity ( arms. len ( ) ) ,
1019- wildcard_row ,
1018+ place_ty : smallvec ! [ scrut_ty ] ,
10201019 place_validity : smallvec ! [ scrut_validity] ,
1020+ wildcard_row_is_relevant : true ,
10211021 } ;
10221022 for ( row_id, arm) in arms. iter ( ) . enumerate ( ) {
10231023 let v = MatrixRow {
@@ -1032,10 +1032,10 @@ impl<'p, Cx: TypeCx> Matrix<'p, Cx> {
10321032 }
10331033
10341034 fn head_ty ( & self ) -> Option < Cx :: Ty > {
1035- self . wildcard_row . head_opt ( ) . map ( |pat| pat . ty ( ) )
1035+ self . place_ty . first ( ) . copied ( )
10361036 }
10371037 fn column_count ( & self ) -> usize {
1038- self . wildcard_row . len ( )
1038+ self . place_ty . len ( )
10391039 }
10401040
10411041 fn rows (
@@ -1063,14 +1063,20 @@ impl<'p, Cx: TypeCx> Matrix<'p, Cx> {
10631063 ctor : & Constructor < Cx > ,
10641064 ctor_is_relevant : bool ,
10651065 ) -> Matrix < ' p , Cx > {
1066- let wildcard_row = self . wildcard_row . pop_head_constructor ( pcx, ctor, ctor_is_relevant) ;
1067- let new_validity = self . place_validity [ 0 ] . specialize ( ctor) ;
1068- let new_place_validity = std:: iter:: repeat ( new_validity)
1066+ let ctor_sub_tys = pcx. ctor_sub_tys ( ctor) ;
1067+ let specialized_place_ty =
1068+ ctor_sub_tys. iter ( ) . chain ( self . place_ty [ 1 ..] . iter ( ) ) . copied ( ) . collect ( ) ;
1069+ let ctor_sub_validity = self . place_validity [ 0 ] . specialize ( ctor) ;
1070+ let specialized_place_validity = std:: iter:: repeat ( ctor_sub_validity)
10691071 . take ( ctor. arity ( pcx) )
10701072 . chain ( self . place_validity [ 1 ..] . iter ( ) . copied ( ) )
10711073 . collect ( ) ;
1072- let mut matrix =
1073- Matrix { rows : Vec :: new ( ) , wildcard_row, place_validity : new_place_validity } ;
1074+ let mut matrix = Matrix {
1075+ rows : Vec :: new ( ) ,
1076+ place_ty : specialized_place_ty,
1077+ place_validity : specialized_place_validity,
1078+ wildcard_row_is_relevant : self . wildcard_row_is_relevant && ctor_is_relevant,
1079+ } ;
10741080 for ( i, row) in self . rows ( ) . enumerate ( ) {
10751081 if ctor. is_covered_by ( pcx, row. head ( ) . ctor ( ) ) {
10761082 let new_row = row. pop_head_constructor ( pcx, ctor, ctor_is_relevant, i) ;
@@ -1335,7 +1341,7 @@ fn compute_exhaustiveness_and_usefulness<'a, 'p, Cx: TypeCx>(
13351341) -> WitnessMatrix < Cx > {
13361342 debug_assert ! ( matrix. rows( ) . all( |r| r. len( ) == matrix. column_count( ) ) ) ;
13371343
1338- if !matrix. wildcard_row . relevant && matrix. rows ( ) . all ( |r| !r. pats . relevant ) {
1344+ if !matrix. wildcard_row_is_relevant && matrix. rows ( ) . all ( |r| !r. pats . relevant ) {
13391345 // Here we know that nothing will contribute further to exhaustiveness or usefulness. This
13401346 // is purely an optimization: skipping this check doesn't affect correctness. See the top of
13411347 // the file for details.
@@ -1356,7 +1362,7 @@ fn compute_exhaustiveness_and_usefulness<'a, 'p, Cx: TypeCx>(
13561362 }
13571363 // No (unguarded) rows, so the match is not exhaustive. We return a new witness unless
13581364 // irrelevant.
1359- return if matrix. wildcard_row . relevant {
1365+ return if matrix. wildcard_row_is_relevant {
13601366 WitnessMatrix :: unit_witness ( )
13611367 } else {
13621368 // We choose to not report anything here; see at the top for details.
@@ -1466,7 +1472,7 @@ pub fn compute_match_usefulness<'p, Cx: TypeCx>(
14661472 scrut_ty : Cx :: Ty ,
14671473 scrut_validity : ValidityConstraint ,
14681474) -> UsefulnessReport < ' p , Cx > {
1469- let mut matrix = Matrix :: new ( cx . wildcard_arena , arms, scrut_ty, scrut_validity) ;
1475+ let mut matrix = Matrix :: new ( arms, scrut_ty, scrut_validity) ;
14701476 let non_exhaustiveness_witnesses = compute_exhaustiveness_and_usefulness ( cx, & mut matrix, true ) ;
14711477
14721478 let non_exhaustiveness_witnesses: Vec < _ > = non_exhaustiveness_witnesses. single_column ( ) ;
0 commit comments