pub struct Consumer<T> { /* private fields */ }Expand description
Consumer handle for receiving items from a channel.
Implementations§
Source§impl<T> Consumer<T>
impl<T> Consumer<T>
Sourcepub fn poll(&self) -> Option<T>
pub fn poll(&self) -> Option<T>
Polls for the next item without blocking.
Returns Some(item) if available, None if the buffer is empty.
Sourcepub fn recv(&self) -> Result<T, RecvError>
pub fn recv(&self) -> Result<T, RecvError>
Receives the next item, blocking until one is available.
§Errors
Returns RecvError::Disconnected if all producers have dropped
and the buffer is empty.
Sourcepub fn recv_timeout(&self, timeout: Duration) -> Result<T, RecvError>
pub fn recv_timeout(&self, timeout: Duration) -> Result<T, RecvError>
Receives the next item with a timeout.
§Errors
Returns RecvError::Timeout if no item becomes available within the timeout.
Returns RecvError::Disconnected if all producers have dropped.
Sourcepub fn pop_batch(&self, max_count: usize) -> Vec<T>
pub fn pop_batch(&self, max_count: usize) -> Vec<T>
Pops multiple items from the buffer.
Returns a vector of up to max_count items.
§Performance Warning
This method allocates a Vec on every call. Do not use on hot paths
where allocation overhead matters. For zero-allocation consumption, use
pop_each or pop_batch_into.
Sourcepub fn pop_batch_into(&self, buffer: &mut Vec<T>, max_count: usize) -> usize
pub fn pop_batch_into(&self, buffer: &mut Vec<T>, max_count: usize) -> usize
Pops multiple items into a pre-allocated vector (zero-allocation).
Appends up to max_count items to the provided vector.
Returns the number of items added.
§Example
let mut buffer = Vec::with_capacity(100);
loop {
buffer.clear();
let count = consumer.pop_batch_into(&mut buffer, 100);
if count == 0 { break; }
for item in &buffer {
process(item);
}
}Sourcepub fn pop_each<F>(&self, max_count: usize, f: F) -> usize
pub fn pop_each<F>(&self, max_count: usize, f: F) -> usize
Pops items and calls a callback for each (zero-allocation).
Returns the number of items processed.
Sourcepub fn is_disconnected(&self) -> bool
pub fn is_disconnected(&self) -> bool
Returns true if all producers have dropped.
Sourcepub fn mode(&self) -> ChannelMode
pub fn mode(&self) -> ChannelMode
Returns the channel mode.
Sourcepub fn stats(&self) -> ChannelStats
pub fn stats(&self) -> ChannelStats
Returns statistics for this channel.
Trait Implementations§
Source§impl<T> Iterator for Consumer<T>
Iterator adapter for Consumer.
impl<T> Iterator for Consumer<T>
Iterator adapter for Consumer.
Source§fn next(&mut self) -> Option<Self::Item>
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Auto Trait Implementations§
impl<T> Freeze for Consumer<T>
impl<T> !RefUnwindSafe for Consumer<T>
impl<T> Send for Consumer<T>where
T: Send,
impl<T> Sync for Consumer<T>where
T: Send,
impl<T> Unpin for Consumer<T>
impl<T> UnsafeUnpin for Consumer<T>
impl<T> !UnwindSafe for Consumer<T>
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fn duplicates_by<V, F>(self, f: F) -> DuplicatesBy<Self, V, ByFn<F>>
§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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true, including the element for which the predicate
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§fn array_combinations<const K: usize>(
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) -> CombinationsGeneric<Self, [usize; K]>
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§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,
) -> CombinationsWithReplacement<Self>
fn combinations_with_replacement( self, k: usize, ) -> CombinationsWithReplacement<Self>
k-length combinations of
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fn permutations(self, k: usize) -> Permutations<Self>
§fn powerset(self) -> Powerset<Self>
fn powerset(self) -> Powerset<Self>
§fn pad_using<F>(self, min: usize, f: F) -> PadUsing<Self, F>
fn pad_using<F>(self, min: usize, f: F) -> PadUsing<Self, F>
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fn with_position(self) -> WithPosition<Self>where
Self: Sized,
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fn update<F>(self, updater: F) -> Update<Self, F>
§fn next_array<const N: usize>(&mut self) -> Option<[Self::Item; N]>where
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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
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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>
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§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
Self: Sized,
n elements from the iterator eagerly,
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Self: Sized + DoubleEndedIterator,
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.collect_vec() is simply a type specialization of Iterator::collect,
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§fn set_from<'a, A, J>(&mut self, from: J) -> usize
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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>
Result values from an iterator. Read more§fn fold_options<A, B, F>(&mut self, start: B, f: F) -> Option<B>
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Option values from an iterator. Read more§fn fold1<F>(self, f: F) -> Option<Self::Item>
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§fn tree_reduce<F>(self, f: F) -> Option<Self::Item>
fn tree_reduce<F>(self, f: F) -> Option<Self::Item>
§fn tree_fold1<F>(self, f: F) -> Option<Self::Item>
fn tree_fold1<F>(self, f: F) -> Option<Self::Item>
Use .tree_reduce() instead
.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>
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§fn k_smallest_by_key<F, K>(self, k: usize, key: F) -> IntoIter<Self::Item>
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§fn k_smallest_relaxed(self, k: usize) -> IntoIter<Self::Item>
fn k_smallest_relaxed(self, k: usize) -> IntoIter<Self::Item>
§fn k_smallest_relaxed_by<F>(self, k: usize, cmp: F) -> IntoIter<Self::Item>
fn k_smallest_relaxed_by<F>(self, k: usize, cmp: F) -> IntoIter<Self::Item>
§fn k_smallest_relaxed_by_key<F, K>(
self,
k: usize,
key: F,
) -> IntoIter<Self::Item>
fn k_smallest_relaxed_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 k_largest_relaxed(self, k: usize) -> IntoIter<Self::Item>
fn k_largest_relaxed(self, k: usize) -> IntoIter<Self::Item>
§fn k_largest_relaxed_by<F>(self, k: usize, cmp: F) -> IntoIter<Self::Item>
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§fn k_largest_relaxed_by_key<F, K>(
self,
k: usize,
key: F,
) -> IntoIter<Self::Item>
fn k_largest_relaxed_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
Self: Sized,
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
have a distinct type. Read more§fn partition_result<A, B, T, E>(self) -> (A, B)
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Results into one list of all the Ok elements
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fn into_group_map<K, V>(self) -> HashMap<K, Vec<V>>
HashMap of keys mapped to Vecs of values. Keys and values
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fn into_group_map_by<K, V, F>(self, f: F) -> HashMap<K, Vec<V>>
HashMap of keys mapped to Vecs of values. The key is specified
in the closure. The values are taken from the input iterator. Read more§fn into_grouping_map<K, V>(self) -> GroupingMap<Self>
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GroupingMap to be used later with one of the efficient
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self,
key_mapper: F,
) -> 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
group-and-fold operations it allows to perform. Read more§fn min_set_by<F>(self, compare: F) -> Vec<Self::Item>
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>,
fn multiunzip<FromI>(self) -> FromIwhere
Self: Sized + MultiUnzip<FromI>,
§impl<T> LayoutRaw for T
impl<T> LayoutRaw for T
§fn layout_raw(_: <T as Pointee>::Metadata) -> Result<Layout, LayoutError>
fn layout_raw(_: <T as Pointee>::Metadata) -> Result<Layout, LayoutError>
§impl<IT> MultiUnzip<()> for IT
impl<IT> MultiUnzip<()> for IT
§fn multiunzip(self)
fn multiunzip(self)
§impl<IT, A, FromA> MultiUnzip<(FromA,)> for IT
impl<IT, A, FromA> MultiUnzip<(FromA,)> for IT
§fn multiunzip(self) -> (FromA,)
fn multiunzip(self) -> (FromA,)
§impl<IT, A, FromA, B, FromB> MultiUnzip<(FromA, FromB)> for IT
impl<IT, A, FromA, B, FromB> MultiUnzip<(FromA, FromB)> for IT
§fn multiunzip(self) -> (FromA, FromB)
fn multiunzip(self) -> (FromA, FromB)
§impl<IT, A, FromA, B, FromB, C, FromC> MultiUnzip<(FromA, FromB, FromC)> for IT
impl<IT, A, FromA, B, FromB, C, FromC> MultiUnzip<(FromA, FromB, FromC)> for IT
§fn multiunzip(self) -> (FromA, FromB, FromC)
fn multiunzip(self) -> (FromA, FromB, FromC)
§impl<IT, A, FromA, B, FromB, C, FromC, D, FromD> MultiUnzip<(FromA, FromB, FromC, FromD)> for IT
impl<IT, A, FromA, B, FromB, C, FromC, D, FromD> MultiUnzip<(FromA, FromB, FromC, FromD)> for IT
§fn multiunzip(self) -> (FromA, FromB, FromC, FromD)
fn multiunzip(self) -> (FromA, FromB, FromC, FromD)
§impl<IT, A, FromA, B, FromB, C, FromC, D, FromD, E, FromE> MultiUnzip<(FromA, FromB, FromC, FromD, FromE)> for IT
impl<IT, A, FromA, B, FromB, C, FromC, D, FromD, E, FromE> MultiUnzip<(FromA, FromB, FromC, FromD, FromE)> for IT
§fn multiunzip(self) -> (FromA, FromB, FromC, FromD, FromE)
fn multiunzip(self) -> (FromA, FromB, FromC, FromD, FromE)
§impl<IT, A, FromA, B, FromB, C, FromC, D, FromD, E, FromE, F, FromF> MultiUnzip<(FromA, FromB, FromC, FromD, FromE, FromF)> for IT
impl<IT, A, FromA, B, FromB, C, FromC, D, FromD, E, FromE, F, FromF> MultiUnzip<(FromA, FromB, FromC, FromD, FromE, FromF)> for IT
§fn multiunzip(self) -> (FromA, FromB, FromC, FromD, FromE, FromF)
fn multiunzip(self) -> (FromA, FromB, FromC, FromD, FromE, FromF)
§impl<IT, A, FromA, B, FromB, C, FromC, D, FromD, E, FromE, F, FromF, G, FromG> MultiUnzip<(FromA, FromB, FromC, FromD, FromE, FromF, FromG)> for IT
impl<IT, A, FromA, B, FromB, C, FromC, D, FromD, E, FromE, F, FromF, G, FromG> MultiUnzip<(FromA, FromB, FromC, FromD, FromE, FromF, FromG)> for IT
§fn multiunzip(self) -> (FromA, FromB, FromC, FromD, FromE, FromF, FromG)
fn multiunzip(self) -> (FromA, FromB, FromC, FromD, FromE, FromF, FromG)
§impl<IT, A, FromA, B, FromB, C, FromC, D, FromD, E, FromE, F, FromF, G, FromG, H, FromH> MultiUnzip<(FromA, FromB, FromC, FromD, FromE, FromF, FromG, FromH)> for IT
impl<IT, A, FromA, B, FromB, C, FromC, D, FromD, E, FromE, F, FromF, G, FromG, H, FromH> MultiUnzip<(FromA, FromB, FromC, FromD, FromE, FromF, FromG, FromH)> for IT
§fn multiunzip(self) -> (FromA, FromB, FromC, FromD, FromE, FromF, FromG, FromH)
fn multiunzip(self) -> (FromA, FromB, FromC, FromD, FromE, FromF, FromG, FromH)
§impl<IT, A, FromA, B, FromB, C, FromC, D, FromD, E, FromE, F, FromF, G, FromG, H, FromH, I, FromI> MultiUnzip<(FromA, FromB, FromC, FromD, FromE, FromF, FromG, FromH, FromI)> for ITwhere
IT: Iterator<Item = (A, B, C, D, E, F, G, H, I)>,
FromA: Default + Extend<A>,
FromB: Default + Extend<B>,
FromC: Default + Extend<C>,
FromD: Default + Extend<D>,
FromE: Default + Extend<E>,
FromF: Default + Extend<F>,
FromG: Default + Extend<G>,
FromH: Default + Extend<H>,
FromI: Default + Extend<I>,
impl<IT, A, FromA, B, FromB, C, FromC, D, FromD, E, FromE, F, FromF, G, FromG, H, FromH, I, FromI> MultiUnzip<(FromA, FromB, FromC, FromD, FromE, FromF, FromG, FromH, FromI)> for ITwhere
IT: Iterator<Item = (A, B, C, D, E, F, G, H, I)>,
FromA: Default + Extend<A>,
FromB: Default + Extend<B>,
FromC: Default + Extend<C>,
FromD: Default + Extend<D>,
FromE: Default + Extend<E>,
FromF: Default + Extend<F>,
FromG: Default + Extend<G>,
FromH: Default + Extend<H>,
FromI: Default + Extend<I>,
§fn multiunzip(
self,
) -> (FromA, FromB, FromC, FromD, FromE, FromF, FromG, FromH, FromI)
fn multiunzip( self, ) -> (FromA, FromB, FromC, FromD, FromE, FromF, FromG, FromH, FromI)
§impl<IT, A, FromA, B, FromB, C, FromC, D, FromD, E, FromE, F, FromF, G, FromG, H, FromH, I, FromI, J, FromJ> MultiUnzip<(FromA, FromB, FromC, FromD, FromE, FromF, FromG, FromH, FromI, FromJ)> for ITwhere
IT: Iterator<Item = (A, B, C, D, E, F, G, H, I, J)>,
FromA: Default + Extend<A>,
FromB: Default + Extend<B>,
FromC: Default + Extend<C>,
FromD: Default + Extend<D>,
FromE: Default + Extend<E>,
FromF: Default + Extend<F>,
FromG: Default + Extend<G>,
FromH: Default + Extend<H>,
FromI: Default + Extend<I>,
FromJ: Default + Extend<J>,
impl<IT, A, FromA, B, FromB, C, FromC, D, FromD, E, FromE, F, FromF, G, FromG, H, FromH, I, FromI, J, FromJ> MultiUnzip<(FromA, FromB, FromC, FromD, FromE, FromF, FromG, FromH, FromI, FromJ)> for ITwhere
IT: Iterator<Item = (A, B, C, D, E, F, G, H, I, J)>,
FromA: Default + Extend<A>,
FromB: Default + Extend<B>,
FromC: Default + Extend<C>,
FromD: Default + Extend<D>,
FromE: Default + Extend<E>,
FromF: Default + Extend<F>,
FromG: Default + Extend<G>,
FromH: Default + Extend<H>,
FromI: Default + Extend<I>,
FromJ: Default + Extend<J>,
§fn multiunzip(
self,
) -> (FromA, FromB, FromC, FromD, FromE, FromF, FromG, FromH, FromI, FromJ)
fn multiunzip( self, ) -> (FromA, FromB, FromC, FromD, FromE, FromF, FromG, FromH, FromI, FromJ)
§impl<IT, A, FromA, B, FromB, C, FromC, D, FromD, E, FromE, F, FromF, G, FromG, H, FromH, I, FromI, J, FromJ, K, FromK> MultiUnzip<(FromA, FromB, FromC, FromD, FromE, FromF, FromG, FromH, FromI, FromJ, FromK)> for ITwhere
IT: Iterator<Item = (A, B, C, D, E, F, G, H, I, J, K)>,
FromA: Default + Extend<A>,
FromB: Default + Extend<B>,
FromC: Default + Extend<C>,
FromD: Default + Extend<D>,
FromE: Default + Extend<E>,
FromF: Default + Extend<F>,
FromG: Default + Extend<G>,
FromH: Default + Extend<H>,
FromI: Default + Extend<I>,
FromJ: Default + Extend<J>,
FromK: Default + Extend<K>,
impl<IT, A, FromA, B, FromB, C, FromC, D, FromD, E, FromE, F, FromF, G, FromG, H, FromH, I, FromI, J, FromJ, K, FromK> MultiUnzip<(FromA, FromB, FromC, FromD, FromE, FromF, FromG, FromH, FromI, FromJ, FromK)> for ITwhere
IT: Iterator<Item = (A, B, C, D, E, F, G, H, I, J, K)>,
FromA: Default + Extend<A>,
FromB: Default + Extend<B>,
FromC: Default + Extend<C>,
FromD: Default + Extend<D>,
FromE: Default + Extend<E>,
FromF: Default + Extend<F>,
FromG: Default + Extend<G>,
FromH: Default + Extend<H>,
FromI: Default + Extend<I>,
FromJ: Default + Extend<J>,
FromK: Default + Extend<K>,
§fn multiunzip(
self,
) -> (FromA, FromB, FromC, FromD, FromE, FromF, FromG, FromH, FromI, FromJ, FromK)
fn multiunzip( self, ) -> (FromA, FromB, FromC, FromD, FromE, FromF, FromG, FromH, FromI, FromJ, FromK)
§impl<IT, A, FromA, B, FromB, C, FromC, D, FromD, E, FromE, F, FromF, G, FromG, H, FromH, I, FromI, J, FromJ, K, FromK, L, FromL> MultiUnzip<(FromA, FromB, FromC, FromD, FromE, FromF, FromG, FromH, FromI, FromJ, FromK, FromL)> for ITwhere
IT: Iterator<Item = (A, B, C, D, E, F, G, H, I, J, K, L)>,
FromA: Default + Extend<A>,
FromB: Default + Extend<B>,
FromC: Default + Extend<C>,
FromD: Default + Extend<D>,
FromE: Default + Extend<E>,
FromF: Default + Extend<F>,
FromG: Default + Extend<G>,
FromH: Default + Extend<H>,
FromI: Default + Extend<I>,
FromJ: Default + Extend<J>,
FromK: Default + Extend<K>,
FromL: Default + Extend<L>,
impl<IT, A, FromA, B, FromB, C, FromC, D, FromD, E, FromE, F, FromF, G, FromG, H, FromH, I, FromI, J, FromJ, K, FromK, L, FromL> MultiUnzip<(FromA, FromB, FromC, FromD, FromE, FromF, FromG, FromH, FromI, FromJ, FromK, FromL)> for ITwhere
IT: Iterator<Item = (A, B, C, D, E, F, G, H, I, J, K, L)>,
FromA: Default + Extend<A>,
FromB: Default + Extend<B>,
FromC: Default + Extend<C>,
FromD: Default + Extend<D>,
FromE: Default + Extend<E>,
FromF: Default + Extend<F>,
FromG: Default + Extend<G>,
FromH: Default + Extend<H>,
FromI: Default + Extend<I>,
FromJ: Default + Extend<J>,
FromK: Default + Extend<K>,
FromL: Default + Extend<L>,
§fn multiunzip(
self,
) -> (FromA, FromB, FromC, FromD, FromE, FromF, FromG, FromH, FromI, FromJ, FromK, FromL)
fn multiunzip( self, ) -> (FromA, FromB, FromC, FromD, FromE, FromF, FromG, FromH, FromI, FromJ, FromK, FromL)
§impl<T, N1, N2> Niching<NichedOption<T, N1>> for N2where
T: SharedNiching<N1, N2>,
N1: Niching<T>,
N2: Niching<T>,
impl<T, N1, N2> Niching<NichedOption<T, N1>> for N2where
T: SharedNiching<N1, N2>,
N1: Niching<T>,
N2: Niching<T>,
§impl<T> Pointee for T
impl<T> Pointee for T
§impl<T> PolicyExt for Twhere
T: ?Sized,
impl<T> PolicyExt for Twhere
T: ?Sized,
§impl<T> Scope for T
impl<T> Scope for T
§impl<I> TreeNodeIterator for Iwhere
I: Iterator,
impl<I> TreeNodeIterator for Iwhere
I: Iterator,
§fn apply_until_stop<F>(self, f: F) -> Result<TreeNodeRecursion, DataFusionError>
fn apply_until_stop<F>(self, f: F) -> Result<TreeNodeRecursion, DataFusionError>
f to each item in this iterator Read more