mirror of
https://github.com/pezkuwichain/pezkuwi-subxt.git
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483 lines
12 KiB
Rust
483 lines
12 KiB
Rust
// This file is part of Substrate.
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// Copyright (C) 2022 Parity Technologies (UK) Ltd.
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// SPDX-License-Identifier: Apache-2.0
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// Licensed under the Apache License, Version 2.0 (the "License");
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// you may not use this file except in compliance with the License.
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// You may obtain a copy of the License at
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//
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// http://www.apache.org/licenses/LICENSE-2.0
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//
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// Unless required by applicable law or agreed to in writing, software
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// distributed under the License is distributed on an "AS IS" BASIS,
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// WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
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// See the License for the specific language governing permissions and
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// limitations under the License.
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//! Traits, types and structs to support a bounded `BTreeSet`.
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use crate::traits::{Get, TryCollect};
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use codec::{Decode, Encode, MaxEncodedLen};
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use sp_std::{borrow::Borrow, collections::btree_set::BTreeSet, marker::PhantomData, ops::Deref};
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/// A bounded set based on a B-Tree.
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///
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/// B-Trees represent a fundamental compromise between cache-efficiency and actually minimizing
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/// the amount of work performed in a search. See [`BTreeSet`] for more details.
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///
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/// Unlike a standard `BTreeSet`, there is an enforced upper limit to the number of items in the
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/// set. All internal operations ensure this bound is respected.
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#[derive(Encode, scale_info::TypeInfo)]
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#[scale_info(skip_type_params(S))]
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pub struct BoundedBTreeSet<T, S>(BTreeSet<T>, PhantomData<S>);
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impl<T, S> Decode for BoundedBTreeSet<T, S>
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where
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T: Decode + Ord,
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S: Get<u32>,
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{
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fn decode<I: codec::Input>(input: &mut I) -> Result<Self, codec::Error> {
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let inner = BTreeSet::<T>::decode(input)?;
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if inner.len() > S::get() as usize {
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return Err("BoundedBTreeSet exceeds its limit".into())
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}
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Ok(Self(inner, PhantomData))
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}
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fn skip<I: codec::Input>(input: &mut I) -> Result<(), codec::Error> {
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BTreeSet::<T>::skip(input)
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}
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}
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impl<T, S> BoundedBTreeSet<T, S>
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where
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S: Get<u32>,
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{
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/// Get the bound of the type in `usize`.
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pub fn bound() -> usize {
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S::get() as usize
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}
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}
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impl<T, S> BoundedBTreeSet<T, S>
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where
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T: Ord,
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S: Get<u32>,
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{
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/// Create `Self` from `t` without any checks.
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fn unchecked_from(t: BTreeSet<T>) -> Self {
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Self(t, Default::default())
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}
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/// Create a new `BoundedBTreeSet`.
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///
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/// Does not allocate.
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pub fn new() -> Self {
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BoundedBTreeSet(BTreeSet::new(), PhantomData)
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}
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/// Consume self, and return the inner `BTreeSet`.
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///
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/// This is useful when a mutating API of the inner type is desired, and closure-based mutation
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/// such as provided by [`try_mutate`][Self::try_mutate] is inconvenient.
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pub fn into_inner(self) -> BTreeSet<T> {
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debug_assert!(self.0.len() <= Self::bound());
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self.0
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}
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/// Consumes self and mutates self via the given `mutate` function.
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///
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/// If the outcome of mutation is within bounds, `Some(Self)` is returned. Else, `None` is
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/// returned.
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///
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/// This is essentially a *consuming* shorthand [`Self::into_inner`] -> `...` ->
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/// [`Self::try_from`].
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pub fn try_mutate(mut self, mut mutate: impl FnMut(&mut BTreeSet<T>)) -> Option<Self> {
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mutate(&mut self.0);
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(self.0.len() <= Self::bound()).then(move || self)
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}
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/// Clears the set, removing all elements.
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pub fn clear(&mut self) {
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self.0.clear()
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}
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/// Exactly the same semantics as [`BTreeSet::insert`], but returns an `Err` (and is a noop) if
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/// the new length of the set exceeds `S`.
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///
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/// In the `Err` case, returns the inserted item so it can be further used without cloning.
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pub fn try_insert(&mut self, item: T) -> Result<bool, T> {
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if self.len() < Self::bound() || self.0.contains(&item) {
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Ok(self.0.insert(item))
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} else {
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Err(item)
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}
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}
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/// Remove an item from the set, returning whether it was previously in the set.
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///
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/// The item may be any borrowed form of the set's item type, but the ordering on the borrowed
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/// form _must_ match the ordering on the item type.
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pub fn remove<Q>(&mut self, item: &Q) -> bool
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where
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T: Borrow<Q>,
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Q: Ord + ?Sized,
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{
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self.0.remove(item)
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}
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/// Removes and returns the value in the set, if any, that is equal to the given one.
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///
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/// The value may be any borrowed form of the set's value type, but the ordering on the borrowed
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/// form _must_ match the ordering on the value type.
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pub fn take<Q>(&mut self, value: &Q) -> Option<T>
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where
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T: Borrow<Q> + Ord,
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Q: Ord + ?Sized,
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{
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self.0.take(value)
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}
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}
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impl<T, S> Default for BoundedBTreeSet<T, S>
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where
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T: Ord,
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S: Get<u32>,
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{
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fn default() -> Self {
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Self::new()
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}
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}
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impl<T, S> Clone for BoundedBTreeSet<T, S>
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where
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BTreeSet<T>: Clone,
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{
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fn clone(&self) -> Self {
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BoundedBTreeSet(self.0.clone(), PhantomData)
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}
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}
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impl<T, S> sp_std::fmt::Debug for BoundedBTreeSet<T, S>
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where
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BTreeSet<T>: sp_std::fmt::Debug,
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S: Get<u32>,
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{
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fn fmt(&self, f: &mut sp_std::fmt::Formatter<'_>) -> sp_std::fmt::Result {
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f.debug_tuple("BoundedBTreeSet").field(&self.0).field(&Self::bound()).finish()
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}
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}
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impl<T, S1, S2> PartialEq<BoundedBTreeSet<T, S1>> for BoundedBTreeSet<T, S2>
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where
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BTreeSet<T>: PartialEq,
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S1: Get<u32>,
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S2: Get<u32>,
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{
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fn eq(&self, other: &BoundedBTreeSet<T, S1>) -> bool {
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S1::get() == S2::get() && self.0 == other.0
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}
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}
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impl<T, S> Eq for BoundedBTreeSet<T, S>
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where
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BTreeSet<T>: Eq,
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S: Get<u32>,
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{
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}
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impl<T, S> PartialEq<BTreeSet<T>> for BoundedBTreeSet<T, S>
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where
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BTreeSet<T>: PartialEq,
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S: Get<u32>,
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{
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fn eq(&self, other: &BTreeSet<T>) -> bool {
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self.0 == *other
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}
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}
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impl<T, S> PartialOrd for BoundedBTreeSet<T, S>
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where
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BTreeSet<T>: PartialOrd,
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S: Get<u32>,
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{
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fn partial_cmp(&self, other: &Self) -> Option<sp_std::cmp::Ordering> {
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self.0.partial_cmp(&other.0)
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}
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}
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impl<T, S> Ord for BoundedBTreeSet<T, S>
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where
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BTreeSet<T>: Ord,
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S: Get<u32>,
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{
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fn cmp(&self, other: &Self) -> sp_std::cmp::Ordering {
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self.0.cmp(&other.0)
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}
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}
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impl<T, S> IntoIterator for BoundedBTreeSet<T, S> {
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type Item = T;
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type IntoIter = sp_std::collections::btree_set::IntoIter<T>;
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fn into_iter(self) -> Self::IntoIter {
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self.0.into_iter()
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}
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}
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impl<'a, T, S> IntoIterator for &'a BoundedBTreeSet<T, S> {
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type Item = &'a T;
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type IntoIter = sp_std::collections::btree_set::Iter<'a, T>;
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fn into_iter(self) -> Self::IntoIter {
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self.0.iter()
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}
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}
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impl<T, S> MaxEncodedLen for BoundedBTreeSet<T, S>
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where
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T: MaxEncodedLen,
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S: Get<u32>,
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{
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fn max_encoded_len() -> usize {
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Self::bound()
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.saturating_mul(T::max_encoded_len())
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.saturating_add(codec::Compact(S::get()).encoded_size())
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}
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}
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impl<T, S> Deref for BoundedBTreeSet<T, S>
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where
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T: Ord,
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{
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type Target = BTreeSet<T>;
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fn deref(&self) -> &Self::Target {
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&self.0
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}
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}
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impl<T, S> AsRef<BTreeSet<T>> for BoundedBTreeSet<T, S>
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where
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T: Ord,
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{
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fn as_ref(&self) -> &BTreeSet<T> {
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&self.0
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}
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}
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impl<T, S> From<BoundedBTreeSet<T, S>> for BTreeSet<T>
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where
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T: Ord,
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{
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fn from(set: BoundedBTreeSet<T, S>) -> Self {
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set.0
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}
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}
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impl<T, S> TryFrom<BTreeSet<T>> for BoundedBTreeSet<T, S>
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where
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T: Ord,
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S: Get<u32>,
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{
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type Error = ();
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fn try_from(value: BTreeSet<T>) -> Result<Self, Self::Error> {
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(value.len() <= Self::bound())
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.then(move || BoundedBTreeSet(value, PhantomData))
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.ok_or(())
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}
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}
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impl<T, S> codec::DecodeLength for BoundedBTreeSet<T, S> {
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fn len(self_encoded: &[u8]) -> Result<usize, codec::Error> {
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// `BoundedBTreeSet<T, S>` is stored just a `BTreeSet<T>`, which is stored as a
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// `Compact<u32>` with its length followed by an iteration of its items. We can just use
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// the underlying implementation.
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<BTreeSet<T> as codec::DecodeLength>::len(self_encoded)
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}
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}
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impl<T, S> codec::EncodeLike<BTreeSet<T>> for BoundedBTreeSet<T, S> where BTreeSet<T>: Encode {}
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impl<I, T, Bound> TryCollect<BoundedBTreeSet<T, Bound>> for I
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where
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T: Ord,
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I: ExactSizeIterator + Iterator<Item = T>,
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Bound: Get<u32>,
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{
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type Error = &'static str;
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fn try_collect(self) -> Result<BoundedBTreeSet<T, Bound>, Self::Error> {
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if self.len() > Bound::get() as usize {
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Err("iterator length too big")
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} else {
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Ok(BoundedBTreeSet::<T, Bound>::unchecked_from(self.collect::<BTreeSet<T>>()))
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}
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}
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}
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#[cfg(test)]
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pub mod test {
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use super::*;
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use crate::traits::ConstU32;
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fn set_from_keys<T>(keys: &[T]) -> BTreeSet<T>
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where
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T: Ord + Copy,
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{
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keys.iter().copied().collect()
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}
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fn boundedset_from_keys<T, S>(keys: &[T]) -> BoundedBTreeSet<T, S>
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where
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T: Ord + Copy,
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S: Get<u32>,
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{
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set_from_keys(keys).try_into().unwrap()
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}
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#[test]
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fn try_insert_works() {
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let mut bounded = boundedset_from_keys::<u32, ConstU32<4>>(&[1, 2, 3]);
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bounded.try_insert(0).unwrap();
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assert_eq!(*bounded, set_from_keys(&[1, 0, 2, 3]));
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assert!(bounded.try_insert(9).is_err());
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assert_eq!(*bounded, set_from_keys(&[1, 0, 2, 3]));
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}
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#[test]
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fn deref_coercion_works() {
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let bounded = boundedset_from_keys::<u32, ConstU32<7>>(&[1, 2, 3]);
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// these methods come from deref-ed vec.
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assert_eq!(bounded.len(), 3);
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assert!(bounded.iter().next().is_some());
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assert!(!bounded.is_empty());
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}
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#[test]
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fn try_mutate_works() {
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let bounded = boundedset_from_keys::<u32, ConstU32<7>>(&[1, 2, 3, 4, 5, 6]);
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let bounded = bounded
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.try_mutate(|v| {
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v.insert(7);
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})
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.unwrap();
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assert_eq!(bounded.len(), 7);
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assert!(bounded
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.try_mutate(|v| {
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v.insert(8);
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})
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.is_none());
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}
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#[test]
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fn btree_map_eq_works() {
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let bounded = boundedset_from_keys::<u32, ConstU32<7>>(&[1, 2, 3, 4, 5, 6]);
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assert_eq!(bounded, set_from_keys(&[1, 2, 3, 4, 5, 6]));
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}
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#[test]
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fn too_big_fail_to_decode() {
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let v: Vec<u32> = vec![1, 2, 3, 4, 5];
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assert_eq!(
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BoundedBTreeSet::<u32, ConstU32<4>>::decode(&mut &v.encode()[..]),
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Err("BoundedBTreeSet exceeds its limit".into()),
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);
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}
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#[test]
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fn unequal_eq_impl_insert_works() {
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// given a struct with a strange notion of equality
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#[derive(Debug)]
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struct Unequal(u32, bool);
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impl PartialEq for Unequal {
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fn eq(&self, other: &Self) -> bool {
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self.0 == other.0
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}
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}
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impl Eq for Unequal {}
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impl Ord for Unequal {
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fn cmp(&self, other: &Self) -> std::cmp::Ordering {
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self.0.cmp(&other.0)
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}
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}
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impl PartialOrd for Unequal {
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fn partial_cmp(&self, other: &Self) -> Option<std::cmp::Ordering> {
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Some(self.cmp(other))
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}
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}
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let mut set = BoundedBTreeSet::<Unequal, ConstU32<4>>::new();
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// when the set is full
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for i in 0..4 {
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set.try_insert(Unequal(i, false)).unwrap();
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}
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// can't insert a new distinct member
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set.try_insert(Unequal(5, false)).unwrap_err();
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// but _can_ insert a distinct member which compares equal, though per the documentation,
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// neither the set length nor the actual member are changed
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set.try_insert(Unequal(0, true)).unwrap();
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assert_eq!(set.len(), 4);
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let zero_item = set.get(&Unequal(0, true)).unwrap();
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assert_eq!(zero_item.0, 0);
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assert_eq!(zero_item.1, false);
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}
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#[test]
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fn eq_works() {
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// of same type
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let b1 = boundedset_from_keys::<u32, ConstU32<7>>(&[1, 2]);
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let b2 = boundedset_from_keys::<u32, ConstU32<7>>(&[1, 2]);
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assert_eq!(b1, b2);
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// of different type, but same value and bound.
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crate::parameter_types! {
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B1: u32 = 7;
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B2: u32 = 7;
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}
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let b1 = boundedset_from_keys::<u32, B1>(&[1, 2]);
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let b2 = boundedset_from_keys::<u32, B2>(&[1, 2]);
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assert_eq!(b1, b2);
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}
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#[test]
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fn can_be_collected() {
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let b1 = boundedset_from_keys::<u32, ConstU32<5>>(&[1, 2, 3, 4]);
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let b2: BoundedBTreeSet<u32, ConstU32<5>> = b1.iter().map(|k| k + 1).try_collect().unwrap();
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assert_eq!(b2.into_iter().collect::<Vec<_>>(), vec![2, 3, 4, 5]);
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// can also be collected into a collection of length 4.
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let b2: BoundedBTreeSet<u32, ConstU32<4>> = b1.iter().map(|k| k + 1).try_collect().unwrap();
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assert_eq!(b2.into_iter().collect::<Vec<_>>(), vec![2, 3, 4, 5]);
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// can be mutated further into iterators that are `ExactSizedIterator`.
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let b2: BoundedBTreeSet<u32, ConstU32<5>> =
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b1.iter().map(|k| k + 1).rev().skip(2).try_collect().unwrap();
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// note that the binary tree will re-sort this, so rev() is not really seen
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assert_eq!(b2.into_iter().collect::<Vec<_>>(), vec![2, 3]);
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let b2: BoundedBTreeSet<u32, ConstU32<5>> =
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b1.iter().map(|k| k + 1).take(2).try_collect().unwrap();
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assert_eq!(b2.into_iter().collect::<Vec<_>>(), vec![2, 3]);
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// but these worn't work
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let b2: Result<BoundedBTreeSet<u32, ConstU32<3>>, _> =
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b1.iter().map(|k| k + 1).try_collect();
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assert!(b2.is_err());
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let b2: Result<BoundedBTreeSet<u32, ConstU32<1>>, _> =
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b1.iter().map(|k| k + 1).skip(2).try_collect();
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assert!(b2.is_err());
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}
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}
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