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Expand or-patterns as a separate step
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@ -190,7 +190,18 @@ impl<'p, Cx: PatCx> PatOrWild<'p, Cx> {
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}
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}
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/// Expand this (possibly-nested) or-pattern into its alternatives.
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/// Expand this or-pattern into its alternatives. This only expands one or-pattern; use
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/// `flatten_or_pat` to recursively expand nested or-patterns.
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pub(crate) fn expand_or_pat(self) -> SmallVec<[Self; 1]> {
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match self {
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PatOrWild::Pat(pat) if pat.is_or_pat() => {
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pat.iter_fields().map(|ipat| PatOrWild::Pat(&ipat.pat)).collect()
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}
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_ => smallvec![self],
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}
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}
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/// Recursively expand this (possibly-nested) or-pattern into its alternatives.
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pub(crate) fn flatten_or_pat(self) -> SmallVec<[Self; 1]> {
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match self {
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PatOrWild::Pat(pat) if pat.is_or_pat() => pat
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@ -462,8 +462,9 @@
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//! # Or-patterns
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//!
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//! What we have described so far works well if there are no or-patterns. To handle them, if the
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//! first pattern of a row in the matrix is an or-pattern, we expand it by duplicating the rest of
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//! the row as necessary. This is handled automatically in [`Matrix`].
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//! first pattern of any row in the matrix is an or-pattern, we expand it by duplicating the rest of
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//! the row as necessary. For code reuse, this is implemented as "specializing with the `Or`
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//! constructor".
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//!
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//! This makes usefulness tracking subtle, because we also want to compute whether an alternative of
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//! an or-pattern is redundant, e.g. in `Some(_) | Some(0)`. We therefore track usefulness of each
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@ -875,6 +876,11 @@ impl<Cx: PatCx> PlaceInfo<Cx> {
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return Ok((smallvec![Constructor::PrivateUninhabited], vec![]));
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}
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if ctors.clone().any(|c| matches!(c, Constructor::Or)) {
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// If any constructor is `Or`, we expand or-patterns.
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return Ok((smallvec![Constructor::Or], vec![]));
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}
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let ctors_for_ty = cx.ctors_for_ty(&self.ty)?;
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debug!(?ctors_for_ty);
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@ -968,10 +974,6 @@ impl<'p, Cx: PatCx> PatStack<'p, Cx> {
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PatStack { pats: smallvec![PatOrWild::Pat(pat)], relevant: true }
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}
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fn is_empty(&self) -> bool {
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self.pats.is_empty()
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}
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fn len(&self) -> usize {
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self.pats.len()
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}
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@ -984,10 +986,10 @@ impl<'p, Cx: PatCx> PatStack<'p, Cx> {
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self.pats.iter().copied()
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}
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// Recursively expand the first or-pattern into its subpatterns. Only useful if the pattern is
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// an or-pattern. Panics if `self` is empty.
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// Expand the first or-pattern into its subpatterns. Only useful if the pattern is an
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// or-pattern. Panics if `self` is empty.
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fn expand_or_pat(&self) -> impl Iterator<Item = PatStack<'p, Cx>> + Captures<'_> {
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self.head().flatten_or_pat().into_iter().map(move |pat| {
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self.head().expand_or_pat().into_iter().map(move |pat| {
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let mut new = self.clone();
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new.pats[0] = pat;
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new
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@ -1057,10 +1059,6 @@ struct MatrixRow<'p, Cx: PatCx> {
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}
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impl<'p, Cx: PatCx> MatrixRow<'p, Cx> {
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fn is_empty(&self) -> bool {
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self.pats.is_empty()
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}
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fn len(&self) -> usize {
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self.pats.len()
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}
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@ -1073,12 +1071,14 @@ impl<'p, Cx: PatCx> MatrixRow<'p, Cx> {
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self.pats.iter()
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}
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// Recursively expand the first or-pattern into its subpatterns. Only useful if the pattern is
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// an or-pattern. Panics if `self` is empty.
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fn expand_or_pat(&self) -> impl Iterator<Item = MatrixRow<'p, Cx>> + Captures<'_> {
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self.pats.expand_or_pat().map(|patstack| MatrixRow {
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// Expand the first or-pattern (if any) into its subpatterns. Panics if `self` is empty.
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fn expand_or_pat(
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&self,
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parent_row: usize,
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) -> impl Iterator<Item = MatrixRow<'p, Cx>> + Captures<'_> {
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self.pats.expand_or_pat().map(move |patstack| MatrixRow {
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pats: patstack,
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parent_row: self.parent_row,
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parent_row,
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is_under_guard: self.is_under_guard,
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useful: false,
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intersects: BitSet::new_empty(0), // Initialized in `Matrix::expand_and_push`.
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@ -1100,7 +1100,7 @@ impl<'p, Cx: PatCx> MatrixRow<'p, Cx> {
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parent_row,
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is_under_guard: self.is_under_guard,
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useful: false,
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intersects: BitSet::new_empty(0), // Initialized in `Matrix::expand_and_push`.
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intersects: BitSet::new_empty(0), // Initialized in `Matrix::push`.
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})
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}
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}
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@ -1116,7 +1116,7 @@ impl<'p, Cx: PatCx> fmt::Debug for MatrixRow<'p, Cx> {
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/// Invariant: each row must have the same length, and each column must have the same type.
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///
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/// Invariant: the first column must not contain or-patterns. This is handled by
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/// [`Matrix::expand_and_push`].
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/// [`Matrix::push`].
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///
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/// In fact each column corresponds to a place inside the scrutinee of the match. E.g. after
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/// specializing `(,)` and `Some` on a pattern of type `(Option<u32>, bool)`, the first column of
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@ -1136,19 +1136,10 @@ struct Matrix<'p, Cx: PatCx> {
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}
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impl<'p, Cx: PatCx> Matrix<'p, Cx> {
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/// Pushes a new row to the matrix. If the row starts with an or-pattern, this recursively
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/// expands it. Internal method, prefer [`Matrix::new`].
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fn expand_and_push(&mut self, mut row: MatrixRow<'p, Cx>) {
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if !row.is_empty() && row.head().is_or_pat() {
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// Expand nested or-patterns.
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for mut new_row in row.expand_or_pat() {
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new_row.intersects = BitSet::new_empty(self.rows.len());
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self.rows.push(new_row);
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}
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} else {
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row.intersects = BitSet::new_empty(self.rows.len());
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self.rows.push(row);
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}
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/// Pushes a new row to the matrix. Internal method, prefer [`Matrix::new`].
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fn push(&mut self, mut row: MatrixRow<'p, Cx>) {
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row.intersects = BitSet::new_empty(self.rows.len());
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self.rows.push(row);
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}
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/// Build a new matrix from an iterator of `MatchArm`s.
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@ -1170,9 +1161,9 @@ impl<'p, Cx: PatCx> Matrix<'p, Cx> {
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parent_row: arm_id,
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is_under_guard: arm.has_guard,
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useful: false,
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intersects: BitSet::new_empty(0), // Initialized in `Matrix::expand_and_push`.
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intersects: BitSet::new_empty(0), // Initialized in `Matrix::push`.
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};
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matrix.expand_and_push(v);
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matrix.push(v);
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}
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matrix
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}
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@ -1209,22 +1200,38 @@ impl<'p, Cx: PatCx> Matrix<'p, Cx> {
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ctor: &Constructor<Cx>,
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ctor_is_relevant: bool,
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) -> Result<Matrix<'p, Cx>, Cx::Error> {
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let subfield_place_info = self.place_info[0].specialize(pcx.cx, ctor);
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let arity = subfield_place_info.len();
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let specialized_place_info =
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subfield_place_info.chain(self.place_info[1..].iter().cloned()).collect();
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let mut matrix = Matrix {
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rows: Vec::new(),
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place_info: specialized_place_info,
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wildcard_row_is_relevant: self.wildcard_row_is_relevant && ctor_is_relevant,
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};
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for (i, row) in self.rows().enumerate() {
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if ctor.is_covered_by(pcx.cx, row.head().ctor())? {
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let new_row = row.pop_head_constructor(pcx.cx, ctor, arity, ctor_is_relevant, i)?;
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matrix.expand_and_push(new_row);
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if matches!(ctor, Constructor::Or) {
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// Specializing with `Or` means expanding rows with or-patterns.
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let mut matrix = Matrix {
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rows: Vec::new(),
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place_info: self.place_info.clone(),
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wildcard_row_is_relevant: self.wildcard_row_is_relevant,
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};
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for (i, row) in self.rows().enumerate() {
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for new_row in row.expand_or_pat(i) {
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matrix.push(new_row);
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}
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}
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Ok(matrix)
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} else {
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let subfield_place_info = self.place_info[0].specialize(pcx.cx, ctor);
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let arity = subfield_place_info.len();
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let specialized_place_info =
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subfield_place_info.chain(self.place_info[1..].iter().cloned()).collect();
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let mut matrix = Matrix {
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rows: Vec::new(),
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place_info: specialized_place_info,
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wildcard_row_is_relevant: self.wildcard_row_is_relevant && ctor_is_relevant,
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};
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for (i, row) in self.rows().enumerate() {
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if ctor.is_covered_by(pcx.cx, row.head().ctor())? {
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let new_row =
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row.pop_head_constructor(pcx.cx, ctor, arity, ctor_is_relevant, i)?;
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matrix.push(new_row);
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}
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}
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Ok(matrix)
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}
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Ok(matrix)
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}
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/// Recover row usefulness and intersection information from a processed specialized matrix.
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@ -1465,7 +1472,9 @@ impl<Cx: PatCx> WitnessMatrix<Cx> {
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missing_ctors: &[Constructor<Cx>],
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ctor: &Constructor<Cx>,
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) {
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if self.is_empty() {
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// The `Or` constructor indicates that we expanded or-patterns. This doesn't affect
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// witnesses.
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if self.is_empty() || matches!(ctor, Constructor::Or) {
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return;
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}
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if matches!(ctor, Constructor::Missing) {
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@ -1715,48 +1724,6 @@ pub enum Usefulness<'p, Cx: PatCx> {
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Redundant,
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}
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/// Report whether this pattern was found useful, and its subpatterns that were not useful if any.
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fn collect_pattern_usefulness<'p, Cx: PatCx>(
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useful_subpatterns: &FxHashSet<PatId>,
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pat: &'p DeconstructedPat<Cx>,
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) -> Usefulness<'p, Cx> {
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fn pat_is_useful<'p, Cx: PatCx>(
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useful_subpatterns: &FxHashSet<PatId>,
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pat: &'p DeconstructedPat<Cx>,
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) -> bool {
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if useful_subpatterns.contains(&pat.uid) {
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true
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} else if pat.is_or_pat()
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&& pat.iter_fields().any(|f| pat_is_useful(useful_subpatterns, &f.pat))
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{
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// We always expand or patterns in the matrix, so we will never see the actual
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// or-pattern (the one with constructor `Or`) in the column. As such, it will not be
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// marked as useful itself, only its children will. We recover this information here.
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true
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} else {
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false
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}
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}
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let mut redundant_subpats = Vec::new();
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pat.walk(&mut |p| {
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if pat_is_useful(useful_subpatterns, p) {
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// The pattern is useful, so we recurse to find redundant subpatterns.
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true
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} else {
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// The pattern is redundant.
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redundant_subpats.push(p);
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false // stop recursing
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}
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});
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if pat_is_useful(useful_subpatterns, pat) {
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Usefulness::Useful(redundant_subpats)
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} else {
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Usefulness::Redundant
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}
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}
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/// The output of checking a match for exhaustiveness and arm usefulness.
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pub struct UsefulnessReport<'p, Cx: PatCx> {
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/// For each arm of the input, whether that arm is useful after the arms above it.
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@ -1793,25 +1760,26 @@ pub fn compute_match_usefulness<'p, Cx: PatCx>(
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.copied()
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.map(|arm| {
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debug!(?arm);
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let usefulness = collect_pattern_usefulness(&cx.useful_subpatterns, arm.pat);
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let usefulness = if cx.useful_subpatterns.contains(&arm.pat.uid) {
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let mut redundant_subpats = Vec::new();
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arm.pat.walk(&mut |subpat| {
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if cx.useful_subpatterns.contains(&subpat.uid) {
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true // keep recursing
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} else {
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redundant_subpats.push(subpat);
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false // stop recursing
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}
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});
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Usefulness::Useful(redundant_subpats)
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} else {
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Usefulness::Redundant
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};
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debug!(?usefulness);
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(arm, usefulness)
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})
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.collect();
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let mut arm_intersections: Vec<_> =
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arms.iter().enumerate().map(|(i, _)| BitSet::new_empty(i)).collect();
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for row in matrix.rows() {
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let arm_id = row.parent_row;
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for intersection in row.intersects.iter() {
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// Convert the matrix row ids into arm ids (they can differ because we expand or-patterns).
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let arm_intersection = matrix.rows[intersection].parent_row;
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// Note: self-intersection can happen with or-patterns.
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if arm_intersection != arm_id {
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arm_intersections[arm_id].insert(arm_intersection);
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}
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}
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}
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let arm_intersections: Vec<_> = matrix.rows().map(|row| row.intersects.clone()).collect();
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Ok(UsefulnessReport { arm_usefulness, non_exhaustiveness_witnesses, arm_intersections })
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}
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