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Use usize for slice arity
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@ -389,17 +389,17 @@ impl SplitIntRange {
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#[derive(Copy, Clone, Debug, PartialEq, Eq)]
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enum SliceKind {
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/// Patterns of length `n` (`[x, y]`).
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FixedLen(u64),
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FixedLen(usize),
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/// Patterns using the `..` notation (`[x, .., y]`).
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/// Captures any array constructor of `length >= i + j`.
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/// In the case where `array_len` is `Some(_)`,
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/// this indicates that we only care about the first `i` and the last `j` values of the array,
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/// and everything in between is a wildcard `_`.
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VarLen(u64, u64),
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VarLen(usize, usize),
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}
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impl SliceKind {
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fn arity(self) -> u64 {
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fn arity(self) -> usize {
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match self {
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FixedLen(length) => length,
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VarLen(prefix, suffix) => prefix + suffix,
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@ -407,7 +407,7 @@ impl SliceKind {
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}
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/// Whether this pattern includes patterns of length `other_len`.
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fn covers_length(self, other_len: u64) -> bool {
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fn covers_length(self, other_len: usize) -> bool {
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match self {
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FixedLen(len) => len == other_len,
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VarLen(prefix, suffix) => prefix + suffix <= other_len,
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@ -419,13 +419,13 @@ impl SliceKind {
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#[derive(Copy, Clone, Debug, PartialEq, Eq)]
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pub(super) struct Slice {
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/// `None` if the matched value is a slice, `Some(n)` if it is an array of size `n`.
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array_len: Option<u64>,
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array_len: Option<usize>,
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/// The kind of pattern it is: fixed-length `[x, y]` or variable length `[x, .., y]`.
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kind: SliceKind,
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}
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impl Slice {
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fn new(array_len: Option<u64>, kind: SliceKind) -> Self {
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fn new(array_len: Option<usize>, kind: SliceKind) -> Self {
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let kind = match (array_len, kind) {
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// If the middle `..` is empty, we effectively have a fixed-length pattern.
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(Some(len), VarLen(prefix, suffix)) if prefix + suffix >= len => FixedLen(len),
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@ -434,7 +434,7 @@ impl Slice {
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Slice { array_len, kind }
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}
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fn arity(self) -> u64 {
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fn arity(self) -> usize {
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self.kind.arity()
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}
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@ -508,16 +508,16 @@ impl Slice {
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#[derive(Debug)]
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struct SplitVarLenSlice {
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/// If the type is an array, this is its size.
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array_len: Option<u64>,
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array_len: Option<usize>,
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/// The arity of the input slice.
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arity: u64,
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arity: usize,
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/// The smallest slice bigger than any slice seen. `max_slice.arity()` is the length `L`
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/// described above.
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max_slice: SliceKind,
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}
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impl SplitVarLenSlice {
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fn new(prefix: u64, suffix: u64, array_len: Option<u64>) -> Self {
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fn new(prefix: usize, suffix: usize, array_len: Option<usize>) -> Self {
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SplitVarLenSlice { array_len, arity: prefix + suffix, max_slice: VarLen(prefix, suffix) }
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}
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@ -687,12 +687,12 @@ impl<'tcx> Constructor<'tcx> {
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}
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PatKind::Array { prefix, slice, suffix } | PatKind::Slice { prefix, slice, suffix } => {
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let array_len = match pat.ty.kind() {
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ty::Array(_, length) => Some(length.eval_usize(cx.tcx, cx.param_env)),
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ty::Array(_, length) => Some(length.eval_usize(cx.tcx, cx.param_env) as usize),
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ty::Slice(_) => None,
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_ => span_bug!(pat.span, "bad ty {:?} for slice pattern", pat.ty),
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};
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let prefix = prefix.len() as u64;
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let suffix = suffix.len() as u64;
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let prefix = prefix.len();
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let suffix = suffix.len();
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let kind = if slice.is_some() {
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VarLen(prefix, suffix)
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} else {
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@ -885,7 +885,7 @@ impl<'tcx> SplitWildcard<'tcx> {
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let all_ctors = match pcx.ty.kind() {
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ty::Bool => smallvec![make_range(0, 1)],
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ty::Array(sub_ty, len) if len.try_eval_usize(cx.tcx, cx.param_env).is_some() => {
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let len = len.eval_usize(cx.tcx, cx.param_env);
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let len = len.eval_usize(cx.tcx, cx.param_env) as usize;
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if len != 0 && cx.is_uninhabited(sub_ty) {
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smallvec![]
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} else {
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@ -1273,7 +1273,7 @@ impl<'p, 'tcx> Fields<'p, 'tcx> {
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PatKind::Slice { prefix: subpatterns.collect(), slice: None, suffix: vec![] }
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}
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VarLen(prefix, _) => {
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let mut prefix: Vec<_> = subpatterns.by_ref().take(prefix as usize).collect();
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let mut prefix: Vec<_> = subpatterns.by_ref().take(prefix).collect();
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if slice.array_len.is_some() {
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// Improves diagnostics a bit: if the type is a known-size array, instead
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// of reporting `[x, _, .., _, y]`, we prefer to report `[x, .., y]`.
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