pub struct DoubleHasher { /* private fields */ }Expand description
Double hasher for bloom filter position generation.
Produces an infinite sequence of hash values derived from a single source hash using the double hashing technique.
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Source§impl DoubleHasher
impl DoubleHasher
Sourcepub fn new(h1: u64) -> Self
pub fn new(h1: u64) -> Self
Creates a DoubleHasher with two 64-bit hashes (h1, h2) from h1. Derives h2 by taking the upper 32 bits of h1 and multiplying it with H2_MULTIPLIER, a large number with mixed bits, to distribute the bits across h2.
Sourcepub fn with_value(value: &[u8], seed: u128) -> Self
pub fn with_value(value: &[u8], seed: u128) -> Self
Creates a DoubleHasher from a byte value we want to insert or check in the bloom filter (e.g., an object ID).
Entry point for bloom filter operations. Iterate through the DoubleHasher to produce the index of the block and the bit positions set in that block for a value and seed so we can
- set bit positions in a bloom filter for a value
- check if a value is in the bloom filter
Sourcepub fn next_hash(&mut self) -> u64
pub fn next_hash(&mut self) -> u64
Generate a new hash value from the current h1 and h2 with:
- modulo addition of two independent hashes with well distributed bits to ensure inputs diverge into uncorrelated bits.
- circular left shift by 5 (coprime to 64) to avoid evenly spaced distributions by mixing high and low bits after the addition.
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Source§impl Clone for DoubleHasher
impl Clone for DoubleHasher
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impl Iterator for DoubleHasher
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impl Copy for DoubleHasher
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impl Freeze for DoubleHasher
impl RefUnwindSafe for DoubleHasher
impl Send for DoubleHasher
impl Sync for DoubleHasher
impl Unpin for DoubleHasher
impl UnsafeUnpin for DoubleHasher
impl UnwindSafe for DoubleHasher
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fn positions<P>(self, predicate: P) -> Positions<Self, P>
§fn update<F>(self, updater: F) -> Update<Self, F>
fn update<F>(self, updater: F) -> Update<Self, F>
§fn next_tuple<T>(&mut self) -> Option<T>
fn next_tuple<T>(&mut self) -> Option<T>
§fn collect_tuple<T>(self) -> Option<T>
fn collect_tuple<T>(self) -> Option<T>
§fn find_position<P>(&mut self, pred: P) -> Option<(usize, Self::Item)>
fn find_position<P>(&mut self, pred: P) -> Option<(usize, Self::Item)>
§fn find_or_last<P>(self, predicate: P) -> Option<Self::Item>
fn find_or_last<P>(self, predicate: P) -> Option<Self::Item>
§fn find_or_first<P>(self, predicate: P) -> Option<Self::Item>
fn find_or_first<P>(self, predicate: P) -> Option<Self::Item>
§fn contains<Q>(&mut self, query: &Q) -> bool
fn contains<Q>(&mut self, query: &Q) -> bool
true if the given item is present in this iterator. Read more§fn all_equal_value(
&mut self,
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fn all_equal_value( &mut self, ) -> Result<Self::Item, Option<(Self::Item, Self::Item)>>
§fn all_unique(&mut self) -> bool
fn all_unique(&mut self) -> bool
§fn dropping(self, n: usize) -> Selfwhere
Self: Sized,
fn dropping(self, n: usize) -> Selfwhere
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n elements from the iterator eagerly,
and return the same iterator again. Read more§fn dropping_back(self, n: usize) -> Selfwhere
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.collect_vec() is simply a type specialization of Iterator::collect,
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fn try_collect<T, U, E>(self) -> Result<U, E>
§fn set_from<'a, A, J>(&mut self, from: J) -> usize
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fn format(self, sep: &str) -> Format<'_, Self>where
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sep. Read more§fn fold_ok<A, E, B, F>(&mut self, start: B, f: F) -> Result<B, E>
fn fold_ok<A, E, B, F>(&mut self, start: B, f: F) -> Result<B, E>
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§fn tree_reduce<F>(self, f: F) -> Option<Self::Item>
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§fn tree_fold1<F>(self, f: F) -> Option<Self::Item>
fn tree_fold1<F>(self, f: F) -> Option<Self::Item>
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.tree_reduce().§fn fold_while<B, F>(&mut self, init: B, f: F) -> FoldWhile<B>
fn fold_while<B, F>(&mut self, init: B, f: F) -> FoldWhile<B>
§fn product1<P>(self) -> Option<P>
fn product1<P>(self) -> Option<P>
§fn sorted_unstable(self) -> IntoIter<Self::Item>
fn sorted_unstable(self) -> IntoIter<Self::Item>
§fn sorted_unstable_by<F>(self, cmp: F) -> IntoIter<Self::Item>
fn sorted_unstable_by<F>(self, cmp: F) -> IntoIter<Self::Item>
§fn sorted_unstable_by_key<K, F>(self, f: F) -> IntoIter<Self::Item>
fn sorted_unstable_by_key<K, F>(self, f: F) -> IntoIter<Self::Item>
§fn sorted(self) -> IntoIter<Self::Item>
fn sorted(self) -> IntoIter<Self::Item>
§fn sorted_by<F>(self, cmp: F) -> IntoIter<Self::Item>
fn sorted_by<F>(self, cmp: F) -> IntoIter<Self::Item>
§fn sorted_by_key<K, F>(self, f: F) -> IntoIter<Self::Item>
fn sorted_by_key<K, F>(self, f: F) -> IntoIter<Self::Item>
§fn sorted_by_cached_key<K, F>(self, f: F) -> IntoIter<Self::Item>
fn sorted_by_cached_key<K, F>(self, f: F) -> IntoIter<Self::Item>
§fn k_smallest(self, k: usize) -> IntoIter<Self::Item>
fn k_smallest(self, k: usize) -> IntoIter<Self::Item>
§fn k_smallest_by<F>(self, k: usize, cmp: F) -> IntoIter<Self::Item>
fn k_smallest_by<F>(self, k: usize, cmp: F) -> IntoIter<Self::Item>
§fn k_smallest_by_key<F, K>(self, k: usize, key: F) -> IntoIter<Self::Item>
fn k_smallest_by_key<F, K>(self, k: usize, key: F) -> IntoIter<Self::Item>
§fn k_largest(self, k: usize) -> IntoIter<Self::Item>
fn k_largest(self, k: usize) -> IntoIter<Self::Item>
§fn k_largest_by<F>(self, k: usize, cmp: F) -> IntoIter<Self::Item>
fn k_largest_by<F>(self, k: usize, cmp: F) -> IntoIter<Self::Item>
§fn k_largest_by_key<F, K>(self, k: usize, key: F) -> IntoIter<Self::Item>
fn k_largest_by_key<F, K>(self, k: usize, key: F) -> IntoIter<Self::Item>
§fn tail(self, n: usize) -> IntoIter<Self::Item>where
Self: Sized,
fn tail(self, n: usize) -> IntoIter<Self::Item>where
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n elements. Read more§fn partition_map<A, B, F, L, R>(self, predicate: F) -> (A, B)
fn partition_map<A, B, F, L, R>(self, predicate: F) -> (A, B)
Iterator::partition, each partition may
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Results into one list of all the Ok elements
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in the closure. Read more§fn into_grouping_map<K, V>(self) -> GroupingMap<Self>
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self,
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) -> GroupingMap<MapSpecialCase<Self, GroupingMapFn<F>>>
fn into_grouping_map_by<K, V, F>( self, key_mapper: F, ) -> GroupingMap<MapSpecialCase<Self, GroupingMapFn<F>>>
GroupingMap to be used later with one of the efficient
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fn min_set_by<F>(self, compare: F) -> Vec<Self::Item>
§fn min_set_by_key<K, F>(self, key: F) -> Vec<Self::Item>
fn min_set_by_key<K, F>(self, key: F) -> Vec<Self::Item>
§fn max_set_by<F>(self, compare: F) -> Vec<Self::Item>
fn max_set_by<F>(self, compare: F) -> Vec<Self::Item>
§fn max_set_by_key<K, F>(self, key: F) -> Vec<Self::Item>
fn max_set_by_key<K, F>(self, key: F) -> Vec<Self::Item>
§fn minmax(self) -> MinMaxResult<Self::Item>
fn minmax(self) -> MinMaxResult<Self::Item>
§fn minmax_by_key<K, F>(self, key: F) -> MinMaxResult<Self::Item>
fn minmax_by_key<K, F>(self, key: F) -> MinMaxResult<Self::Item>
§fn minmax_by<F>(self, compare: F) -> MinMaxResult<Self::Item>
fn minmax_by<F>(self, compare: F) -> MinMaxResult<Self::Item>
§fn position_max(self) -> Option<usize>
fn position_max(self) -> Option<usize>
§fn position_max_by_key<K, F>(self, key: F) -> Option<usize>
fn position_max_by_key<K, F>(self, key: F) -> Option<usize>
§fn position_max_by<F>(self, compare: F) -> Option<usize>
fn position_max_by<F>(self, compare: F) -> Option<usize>
§fn position_min(self) -> Option<usize>
fn position_min(self) -> Option<usize>
§fn position_min_by_key<K, F>(self, key: F) -> Option<usize>
fn position_min_by_key<K, F>(self, key: F) -> Option<usize>
§fn position_min_by<F>(self, compare: F) -> Option<usize>
fn position_min_by<F>(self, compare: F) -> Option<usize>
§fn position_minmax(self) -> MinMaxResult<usize>
fn position_minmax(self) -> MinMaxResult<usize>
§fn position_minmax_by_key<K, F>(self, key: F) -> MinMaxResult<usize>
fn position_minmax_by_key<K, F>(self, key: F) -> MinMaxResult<usize>
§fn position_minmax_by<F>(self, compare: F) -> MinMaxResult<usize>
fn position_minmax_by<F>(self, compare: F) -> MinMaxResult<usize>
§fn exactly_one(self) -> Result<Self::Item, ExactlyOneError<Self>>where
Self: Sized,
fn exactly_one(self) -> Result<Self::Item, ExactlyOneError<Self>>where
Self: Sized,
§fn at_most_one(self) -> Result<Option<Self::Item>, ExactlyOneError<Self>>where
Self: Sized,
fn at_most_one(self) -> Result<Option<Self::Item>, ExactlyOneError<Self>>where
Self: Sized,
Ok(None) will be returned. If the iterator yields
exactly one element, that element will be returned, otherwise an error will be returned
containing an iterator that has the same output as the input iterator. Read more§fn multipeek(self) -> MultiPeek<Self>where
Self: Sized,
fn multipeek(self) -> MultiPeek<Self>where
Self: Sized,
.next()
values without advancing the base iterator. Read more§fn counts(self) -> HashMap<Self::Item, usize>
fn counts(self) -> HashMap<Self::Item, usize>
HashMap which
contains each item that appears in the iterator and the number
of times it appears. Read more§fn counts_by<K, F>(self, f: F) -> HashMap<K, usize>
fn counts_by<K, F>(self, f: F) -> HashMap<K, usize>
HashMap which
contains each item that appears in the iterator and the number
of times it appears,
determining identity using a keying function. Read more§fn multiunzip<FromI>(self) -> FromIwhere
Self: Sized + MultiUnzip<FromI>,
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§impl<T> Itertools for T
impl<T> Itertools for T
§fn interleave<J>(
self,
other: J,
) -> Interleave<Self, <J as IntoIterator>::IntoIter>
fn interleave<J>( self, other: J, ) -> Interleave<Self, <J as IntoIterator>::IntoIter>
§fn interleave_shortest<J>(
self,
other: J,
) -> InterleaveShortest<Self, <J as IntoIterator>::IntoIter>
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§fn intersperse(
self,
element: Self::Item,
) -> IntersperseWith<Self, IntersperseElementSimple<Self::Item>>
fn intersperse( self, element: Self::Item, ) -> IntersperseWith<Self, IntersperseElementSimple<Self::Item>>
§fn intersperse_with<F>(self, element: F) -> IntersperseWith<Self, F>
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§fn get<R>(self, index: R) -> <R as IteratorIndex<Self>>::Outputwhere
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R: IteratorIndex<Self>,
fn get<R>(self, index: R) -> <R as IteratorIndex<Self>>::Outputwhere
Self: Sized,
R: IteratorIndex<Self>,
§fn zip_longest<J>(
self,
other: J,
) -> ZipLongest<Self, <J as IntoIterator>::IntoIter>where
J: IntoIterator,
Self: Sized,
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self,
other: J,
) -> ZipLongest<Self, <J as IntoIterator>::IntoIter>where
J: IntoIterator,
Self: Sized,
§fn zip_eq<J>(self, other: J) -> ZipEq<Self, <J as IntoIterator>::IntoIter>where
J: IntoIterator,
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fn zip_eq<J>(self, other: J) -> ZipEq<Self, <J as IntoIterator>::IntoIter>where
J: IntoIterator,
Self: Sized,
§fn batching<B, F>(self, f: F) -> Batching<Self, F>
fn batching<B, F>(self, f: F) -> Batching<Self, F>
§fn chunk_by<K, F>(self, key: F) -> ChunkBy<K, Self, F>
fn chunk_by<K, F>(self, key: F) -> ChunkBy<K, Self, F>
§fn group_by<K, F>(self, key: F) -> ChunkBy<K, Self, F>
fn group_by<K, F>(self, key: F) -> ChunkBy<K, Self, F>
Use .chunk_by() instead
.chunk_by().§fn chunks(self, size: usize) -> IntoChunks<Self>where
Self: Sized,
fn chunks(self, size: usize) -> IntoChunks<Self>where
Self: Sized,
§fn tuple_windows<T>(self) -> TupleWindows<Self, T>
fn tuple_windows<T>(self) -> TupleWindows<Self, T>
§fn circular_tuple_windows<T>(self) -> CircularTupleWindows<Self, T>
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§fn tuples<T>(self) -> Tuples<Self, T>
fn tuples<T>(self) -> Tuples<Self, T>
§fn tee(self) -> (Tee<Self>, Tee<Self>)
fn tee(self) -> (Tee<Self>, Tee<Self>)
§fn map_ok<F, T, U, E>(self, f: F) -> MapSpecialCase<Self, MapSpecialCaseFnOk<F>>
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Result::Ok value. Result::Err values are
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Result::Ok value with the provided closure. Result::Err
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Result::Ok value into
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Result values instead. Read more§fn merge<J>(
self,
other: J,
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fn merge<J>( self, other: J, ) -> MergeBy<Self, <J as IntoIterator>::IntoIter, MergeLte>
§fn merge_by<J, F>(
self,
other: J,
is_first: F,
) -> MergeBy<Self, <J as IntoIterator>::IntoIter, F>
fn merge_by<J, F>( self, other: J, is_first: F, ) -> MergeBy<Self, <J as IntoIterator>::IntoIter, F>
§fn merge_join_by<J, F, T>(
self,
other: J,
cmp_fn: F,
) -> MergeBy<Self, <J as IntoIterator>::IntoIter, MergeFuncLR<F, <F as FuncLR<Self::Item, <<J as IntoIterator>::IntoIter as Iterator>::Item>>::T>>
fn merge_join_by<J, F, T>( self, other: J, cmp_fn: F, ) -> MergeBy<Self, <J as IntoIterator>::IntoIter, MergeFuncLR<F, <F as FuncLR<Self::Item, <<J as IntoIterator>::IntoIter as Iterator>::Item>>::T>>
§fn kmerge(self) -> KMergeBy<<Self::Item as IntoIterator>::IntoIter, KMergeByLt>
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§fn kmerge_by<F>(
self,
first: F,
) -> KMergeBy<<Self::Item as IntoIterator>::IntoIter, F>where
Self: Sized,
Self::Item: IntoIterator,
F: FnMut(&<Self::Item as IntoIterator>::Item, &<Self::Item as IntoIterator>::Item) -> bool,
fn kmerge_by<F>(
self,
first: F,
) -> KMergeBy<<Self::Item as IntoIterator>::IntoIter, F>where
Self: Sized,
Self::Item: IntoIterator,
F: FnMut(&<Self::Item as IntoIterator>::Item, &<Self::Item as IntoIterator>::Item) -> bool,
§fn cartesian_product<J>(
self,
other: J,
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fn cartesian_product<J>( self, other: J, ) -> Product<Self, <J as IntoIterator>::IntoIter>
self and J. Read more§fn multi_cartesian_product(
self,
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Self::Item: IntoIterator,
<Self::Item as IntoIterator>::IntoIter: Clone,
<Self::Item as IntoIterator>::Item: Clone,
fn multi_cartesian_product(
self,
) -> MultiProduct<<Self::Item as IntoIterator>::IntoIter>where
Self: Sized,
Self::Item: IntoIterator,
<Self::Item as IntoIterator>::IntoIter: Clone,
<Self::Item as IntoIterator>::Item: Clone,
self. Read more§fn coalesce<F>(self, f: F) -> CoalesceBy<Self, F, NoCount>
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§fn dedup(self) -> CoalesceBy<Self, DedupPred2CoalescePred<DedupEq>, NoCount>
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§fn dedup_by<Cmp>(
self,
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) -> CoalesceBy<Self, DedupPred2CoalescePred<Cmp>, NoCount>
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§fn dedup_with_count(
self,
) -> CoalesceBy<Self, DedupPredWithCount2CoalescePred<DedupEq>, WithCount>where
Self: Sized,
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self,
) -> CoalesceBy<Self, DedupPredWithCount2CoalescePred<DedupEq>, WithCount>where
Self: Sized,
§fn dedup_by_with_count<Cmp>(
self,
cmp: Cmp,
) -> CoalesceBy<Self, DedupPredWithCount2CoalescePred<Cmp>, WithCount>
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§fn duplicates(self) -> DuplicatesBy<Self, Self::Item, ById>
fn duplicates(self) -> DuplicatesBy<Self, Self::Item, ById>
§fn duplicates_by<V, F>(self, f: F) -> DuplicatesBy<Self, V, ByFn<F>>
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§fn unique(self) -> Unique<Self>
fn unique(self) -> Unique<Self>
§fn unique_by<V, F>(self, f: F) -> UniqueBy<Self, V, F>
fn unique_by<V, F>(self, f: F) -> UniqueBy<Self, V, F>
§fn peeking_take_while<F>(&mut self, accept: F) -> PeekingTakeWhile<'_, Self, F>
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Clone-able iterator
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true, including the element for which the predicate
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fn while_some<A>(self) -> WhileSome<Self>
Option<A> iterator elements
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§fn array_combinations<const K: usize>(
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fn array_combinations<const K: usize>( self, ) -> CombinationsGeneric<Self, [usize; K]>
§fn combinations(self, k: usize) -> CombinationsGeneric<Self, Vec<usize>>
fn combinations(self, k: usize) -> CombinationsGeneric<Self, Vec<usize>>
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self,
k: usize,
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§fn powerset(self) -> Powerset<Self>
fn powerset(self) -> Powerset<Self>
§fn pad_using<F>(self, min: usize, f: F) -> PadUsing<Self, F>
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§fn update<F>(self, updater: F) -> Update<Self, F>
fn update<F>(self, updater: F) -> Update<Self, F>
§fn next_array<const N: usize>(&mut self) -> Option<[Self::Item; N]>where
Self: Sized,
fn next_array<const N: usize>(&mut self) -> Option<[Self::Item; N]>where
Self: Sized,
§fn collect_array<const N: usize>(self) -> Option<[Self::Item; N]>where
Self: Sized,
fn collect_array<const N: usize>(self) -> Option<[Self::Item; N]>where
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§fn next_tuple<T>(&mut self) -> Option<T>
fn next_tuple<T>(&mut self) -> Option<T>
§fn collect_tuple<T>(self) -> Option<T>
fn collect_tuple<T>(self) -> Option<T>
§fn find_position<P>(&mut self, pred: P) -> Option<(usize, Self::Item)>
fn find_position<P>(&mut self, pred: P) -> Option<(usize, Self::Item)>
§fn find_or_last<P>(self, predicate: P) -> Option<Self::Item>
fn find_or_last<P>(self, predicate: P) -> Option<Self::Item>
§fn find_or_first<P>(self, predicate: P) -> Option<Self::Item>
fn find_or_first<P>(self, predicate: P) -> Option<Self::Item>
§fn contains<Q>(&mut self, query: &Q) -> bool
fn contains<Q>(&mut self, query: &Q) -> bool
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fn all_equal_value( &mut self, ) -> Result<Self::Item, Option<(Self::Item, Self::Item)>>
§fn all_unique(&mut self) -> bool
fn all_unique(&mut self) -> bool
§fn dropping(self, n: usize) -> Selfwhere
Self: Sized,
fn dropping(self, n: usize) -> Selfwhere
Self: Sized,
n elements from the iterator eagerly,
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n elements from the iterator eagerly,
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