[−][src]Struct sized_chunks::ring_buffer::RingBuffer
A fixed capacity ring buffer.
A ring buffer is an array where the first logical index is at some arbitrary location inside the array, and the indices wrap around to the start of the array once they overflow its bounds.
This gives us the ability to push to either the front or the end of the array in constant time, at the cost of losing the ability to get a single contiguous slice reference to the contents.
It differs from the Chunk
in that the latter will have mostly
constant time pushes, but may occasionally need to shift its contents around
to make room. They both have constant time pop, and they both have linear
time insert and remove.
The RingBuffer
offers its own Slice
and SliceMut
types to compensate for the loss of being able to take a slice, but they're
somewhat less efficient, so the general rule should be that you shouldn't
choose a RingBuffer
if you really need to take slices - but if you don't,
it's probably a marginally better choice overall than Chunk
.
Methods
impl<A, N> RingBuffer<A, N> where
N: ChunkLength<A>,
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N: ChunkLength<A>,
pub const CAPACITY: usize
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The capacity of this ring buffer, as a usize
.
#[must_use]
pub fn new() -> Self
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Construct an empty ring buffer.
#[must_use]
pub fn unit(value: A) -> Self
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Construct a ring buffer with a single item.
#[must_use]
pub fn pair(value1: A, value2: A) -> Self
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Construct a ring buffer with two items.
#[must_use]
pub fn drain_from(other: &mut Self) -> Self
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Construct a new ring buffer and move every item from other
into the
new buffer.
Time: O(n)
#[must_use]
pub fn collect_from<I>(iter: &mut I, count: usize) -> Self where
I: Iterator<Item = A>,
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I: Iterator<Item = A>,
Construct a new ring buffer and populate it by taking count
items from
the iterator iter
.
Panics if the iterator contains less than count
items.
Time: O(n)
#[must_use]
pub fn from_front(other: &mut Self, count: usize) -> Self
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Construct a new ring buffer and populate it by taking count
items from
the front of other
.
Time: O(n) for the number of items moved
#[must_use]
pub fn from_back(other: &mut Self, count: usize) -> Self
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Construct a new ring buffer and populate it by taking count
items from
the back of other
.
Time: O(n) for the number of items moved
#[must_use]
pub fn len(&self) -> usize
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Get the length of the ring buffer.
#[must_use]
pub fn is_empty(&self) -> bool
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Test if the ring buffer is empty.
#[must_use]
pub fn is_full(&self) -> bool
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Test if the ring buffer is full.
#[must_use]
pub fn iter(&self) -> Iter<A, N>
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Get an iterator over references to the items in the ring buffer in order.
#[must_use]
pub fn iter_mut(&mut self) -> IterMut<A, N>
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Get an iterator over mutable references to the items in the ring buffer in order.
#[must_use]
pub fn slice<R: RangeBounds<usize>>(&self, range: R) -> Slice<A, N>
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Get a Slice
for a subset of the ring buffer.
#[must_use]
pub fn slice_mut<R: RangeBounds<usize>>(&mut self, range: R) -> SliceMut<A, N>
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Get a SliceMut
for a subset of the ring buffer.
#[must_use]
pub fn get(&self, index: usize) -> Option<&A>
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Get a reference to the value at a given index.
#[must_use]
pub fn get_mut(&mut self, index: usize) -> Option<&mut A>
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Get a mutable reference to the value at a given index.
#[must_use]
pub fn first(&self) -> Option<&A>
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Get a reference to the first value in the buffer.
#[must_use]
pub fn first_mut(&mut self) -> Option<&mut A>
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Get a mutable reference to the first value in the buffer.
#[must_use]
pub fn last(&self) -> Option<&A>
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Get a reference to the last value in the buffer.
#[must_use]
pub fn last_mut(&mut self) -> Option<&mut A>
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Get a mutable reference to the last value in the buffer.
pub fn push_back(&mut self, value: A)
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Push a value to the back of the buffer.
Panics if the capacity of the buffer is exceeded.
Time: O(1)
pub fn push_front(&mut self, value: A)
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Push a value to the front of the buffer.
Panics if the capacity of the buffer is exceeded.
Time: O(1)
pub fn pop_back(&mut self) -> Option<A>
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Pop a value from the back of the buffer.
Returns None
if the buffer is empty.
Time: O(1)
pub fn pop_front(&mut self) -> Option<A>
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Pop a value from the front of the buffer.
Returns None
if the buffer is empty.
Time: O(1)
pub fn drop_left(&mut self, index: usize)
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Discard all items up to but not including index
.
Panics if index
is out of bounds.
Time: O(n) for the number of items dropped
pub fn drop_right(&mut self, index: usize)
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Discard all items from index
onward.
Panics if index
is out of bounds.
Time: O(n) for the number of items dropped
#[must_use]
pub fn split_off(&mut self, index: usize) -> Self
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Split a buffer into two, the original buffer containing
everything up to index
and the returned buffer containing
everything from index
onwards.
Panics if index
is out of bounds.
Time: O(n) for the number of items in the new buffer
pub fn append(&mut self, other: &mut Self)
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Remove all items from other
and append them to the back of self
.
Panics if the capacity of self
is exceeded.
other
will be an empty buffer after this operation.
Time: O(n) for the number of items moved
pub fn drain_from_front(&mut self, other: &mut Self, count: usize)
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Remove count
items from the front of other
and append them to the
back of self
.
Panics if self
doesn't have count
items left, or if other
has
fewer than count
items.
Time: O(n) for the number of items moved
pub fn drain_from_back(&mut self, other: &mut Self, count: usize)
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Remove count
items from the back of other
and append them to the
front of self
.
Panics if self
doesn't have count
items left, or if other
has
fewer than count
items.
Time: O(n) for the number of items moved
pub fn set(&mut self, index: usize, value: A) -> A
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Update the value at index index
, returning the old value.
Panics if index
is out of bounds.
Time: O(1)
pub fn insert(&mut self, index: usize, value: A)
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Insert a new value at index index
, shifting all the following values
to the right.
Panics if the index is out of bounds.
Time: O(n) for the number of items shifted
pub fn remove(&mut self, index: usize) -> A
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Remove the value at index index
, shifting all the following values to
the left.
Returns the removed value.
Panics if the index is out of bounds.
Time: O(n) for the number of items shifted
pub fn drain(&mut self) -> Drain<A, N>
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Construct an iterator that drains values from the front of the buffer.
pub fn clear(&mut self)
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Discard the contents of the buffer.
Time: O(n)
Trait Implementations
impl<A, N> Arbitrary for RingBuffer<A, N> where
A: Arbitrary,
N: ChunkLength<A> + 'static,
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A: Arbitrary,
N: ChunkLength<A> + 'static,
fn arbitrary(u: &mut Unstructured) -> Result<Self>
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fn arbitrary_take_rest(u: Unstructured) -> Result<Self>
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fn size_hint(depth: usize) -> (usize, Option<usize>)
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fn shrink(&self) -> Box<dyn Iterator<Item = Self>>
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impl<A: Clone, N: ChunkLength<A>> Clone for RingBuffer<A, N>
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fn clone(&self) -> Self
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fn clone_from(&mut self, source: &Self)
1.0.0[src]
impl<A: Debug, N: ChunkLength<A>> Debug for RingBuffer<A, N>
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impl<A, N: ChunkLength<A>> Default for RingBuffer<A, N>
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impl<A, N: ChunkLength<A>> Drop for RingBuffer<A, N>
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impl<A: Eq, N: ChunkLength<A>> Eq for RingBuffer<A, N>
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impl<'a, A: Clone + 'a, N: ChunkLength<A>> Extend<&'a A> for RingBuffer<A, N>
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fn extend<I: IntoIterator<Item = &'a A>>(&mut self, iter: I)
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impl<A, N: ChunkLength<A>> Extend<A> for RingBuffer<A, N>
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fn extend<I: IntoIterator<Item = A>>(&mut self, iter: I)
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impl<'a, A: 'a, N: ChunkLength<A> + 'a> From<&'a RingBuffer<A, N>> for Slice<'a, A, N>
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#[must_use]
fn from(buffer: &'a RingBuffer<A, N>) -> Self
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impl<'a, A: 'a, N: ChunkLength<A> + 'a> From<&'a mut RingBuffer<A, N>> for SliceMut<'a, A, N>
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#[must_use]
fn from(buffer: &'a mut RingBuffer<A, N>) -> Self
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impl<A, N: ChunkLength<A>> FromIterator<A> for RingBuffer<A, N>
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#[must_use]
fn from_iter<I: IntoIterator<Item = A>>(iter: I) -> Self
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impl<A: Hash, N: ChunkLength<A>> Hash for RingBuffer<A, N>
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fn hash<H: Hasher>(&self, hasher: &mut H)
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fn hash_slice<H>(data: &[Self], state: &mut H) where
H: Hasher,
1.3.0[src]
H: Hasher,
impl<A, N> Index<usize> for RingBuffer<A, N> where
N: ChunkLength<A>,
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N: ChunkLength<A>,
type Output = A
The returned type after indexing.
#[must_use]
fn index(&self, index: usize) -> &Self::Output
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impl<A, N> IndexMut<usize> for RingBuffer<A, N> where
N: ChunkLength<A>,
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N: ChunkLength<A>,
impl<A, N: ChunkLength<A>> IntoIterator for RingBuffer<A, N>
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type Item = A
The type of the elements being iterated over.
type IntoIter = OwnedIter<A, N>
Which kind of iterator are we turning this into?
#[must_use]
fn into_iter(self) -> Self::IntoIter
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impl<'a, A, N: ChunkLength<A>> IntoIterator for &'a RingBuffer<A, N>
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type Item = &'a A
The type of the elements being iterated over.
type IntoIter = Iter<'a, A, N>
Which kind of iterator are we turning this into?
#[must_use]
fn into_iter(self) -> Self::IntoIter
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impl<'a, A, N: ChunkLength<A>> IntoIterator for &'a mut RingBuffer<A, N>
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type Item = &'a mut A
The type of the elements being iterated over.
type IntoIter = IterMut<'a, A, N>
Which kind of iterator are we turning this into?
#[must_use]
fn into_iter(self) -> Self::IntoIter
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impl<A: Ord, N: ChunkLength<A>> Ord for RingBuffer<A, N>
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#[must_use]
fn cmp(&self, other: &Self) -> Ordering
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#[must_use]
fn max(self, other: Self) -> Self
1.21.0[src]
#[must_use]
fn min(self, other: Self) -> Self
1.21.0[src]
#[must_use]
fn clamp(self, min: Self, max: Self) -> Self
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impl<A: PartialEq, N: ChunkLength<A>> PartialEq<RingBuffer<A, N>> for RingBuffer<A, N>
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#[must_use]
fn eq(&self, other: &Self) -> bool
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#[must_use]
fn ne(&self, other: &Rhs) -> bool
1.0.0[src]
impl<A, N, Slice> PartialEq<Slice> for RingBuffer<A, N> where
Slice: Borrow<[A]>,
A: PartialEq,
N: ChunkLength<A>,
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Slice: Borrow<[A]>,
A: PartialEq,
N: ChunkLength<A>,
#[must_use]
fn eq(&self, other: &Slice) -> bool
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#[must_use]
fn ne(&self, other: &Rhs) -> bool
1.0.0[src]
impl<A: PartialOrd, N: ChunkLength<A>> PartialOrd<RingBuffer<A, N>> for RingBuffer<A, N>
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#[must_use]
fn partial_cmp(&self, other: &Self) -> Option<Ordering>
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#[must_use]
fn lt(&self, other: &Rhs) -> bool
1.0.0[src]
#[must_use]
fn le(&self, other: &Rhs) -> bool
1.0.0[src]
#[must_use]
fn gt(&self, other: &Rhs) -> bool
1.0.0[src]
#[must_use]
fn ge(&self, other: &Rhs) -> bool
1.0.0[src]
impl<A, N> PoolClone for RingBuffer<A, N> where
A: Clone,
N: ChunkLength<A>,
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A: Clone,
N: ChunkLength<A>,
unsafe fn clone_uninit(&self, target: &mut MaybeUninit<Self>)
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impl<A, N> PoolDefault for RingBuffer<A, N> where
N: ChunkLength<A>,
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N: ChunkLength<A>,
unsafe fn default_uninit(target: &mut MaybeUninit<Self>)
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impl<N: ChunkLength<u8>> Read for RingBuffer<u8, N>
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fn read(&mut self, buf: &mut [u8]) -> Result<usize>
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fn read_vectored(&mut self, bufs: &mut [IoSliceMut]) -> Result<usize, Error>
1.36.0[src]
unsafe fn initializer(&self) -> Initializer
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fn read_to_end(&mut self, buf: &mut Vec<u8>) -> Result<usize, Error>
1.0.0[src]
fn read_to_string(&mut self, buf: &mut String) -> Result<usize, Error>
1.0.0[src]
fn read_exact(&mut self, buf: &mut [u8]) -> Result<(), Error>
1.6.0[src]
fn by_ref(&mut self) -> &mut Self
1.0.0[src]
fn bytes(self) -> Bytes<Self>
1.0.0[src]
fn chain<R>(self, next: R) -> Chain<Self, R> where
R: Read,
1.0.0[src]
R: Read,
fn take(self, limit: u64) -> Take<Self>
1.0.0[src]
impl<N: ChunkLength<u8>> Write for RingBuffer<u8, N>
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fn write(&mut self, buf: &[u8]) -> Result<usize>
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fn flush(&mut self) -> Result<()>
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fn write_vectored(&mut self, bufs: &[IoSlice]) -> Result<usize, Error>
1.36.0[src]
fn write_all(&mut self, buf: &[u8]) -> Result<(), Error>
1.0.0[src]
fn write_fmt(&mut self, fmt: Arguments) -> Result<(), Error>
1.0.0[src]
fn by_ref(&mut self) -> &mut Self
1.0.0[src]
Auto Trait Implementations
impl<A, N> RefUnwindSafe for RingBuffer<A, N> where
A: RefUnwindSafe,
N: RefUnwindSafe,
<N as ChunkLength<A>>::SizedType: RefUnwindSafe,
A: RefUnwindSafe,
N: RefUnwindSafe,
<N as ChunkLength<A>>::SizedType: RefUnwindSafe,
impl<A, N> Send for RingBuffer<A, N> where
A: Send,
N: Send,
<N as ChunkLength<A>>::SizedType: Send,
A: Send,
N: Send,
<N as ChunkLength<A>>::SizedType: Send,
impl<A, N> Sync for RingBuffer<A, N> where
A: Sync,
N: Sync,
<N as ChunkLength<A>>::SizedType: Sync,
A: Sync,
N: Sync,
<N as ChunkLength<A>>::SizedType: Sync,
impl<A, N> Unpin for RingBuffer<A, N> where
A: Unpin,
N: Unpin,
<N as ChunkLength<A>>::SizedType: Unpin,
A: Unpin,
N: Unpin,
<N as ChunkLength<A>>::SizedType: Unpin,
impl<A, N> UnwindSafe for RingBuffer<A, N> where
A: UnwindSafe,
N: UnwindSafe,
<N as ChunkLength<A>>::SizedType: UnwindSafe,
A: UnwindSafe,
N: UnwindSafe,
<N as ChunkLength<A>>::SizedType: UnwindSafe,
Blanket Implementations
impl<T> Any for T where
T: 'static + ?Sized,
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T: 'static + ?Sized,
impl<T> Borrow<T> for T where
T: ?Sized,
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T: ?Sized,
impl<T> BorrowMut<T> for T where
T: ?Sized,
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T: ?Sized,
fn borrow_mut(&mut self) -> &mut T
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impl<T> From<T> for T
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impl<T, U> Into<U> for T where
U: From<T>,
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U: From<T>,
impl<I> IntoIterator for I where
I: Iterator,
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I: Iterator,
type Item = <I as Iterator>::Item
The type of the elements being iterated over.
type IntoIter = I
Which kind of iterator are we turning this into?
fn into_iter(self) -> I
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impl<A> PoolClone for A where
A: PoolDefaultImpl + Clone,
A: PoolDefaultImpl + Clone,
unsafe fn clone_uninit(&self, target: &mut MaybeUninit<A>)
impl<A> PoolDefault for A where
A: PoolDefaultImpl,
A: PoolDefaultImpl,
unsafe fn default_uninit(target: &mut MaybeUninit<A>)
impl<T> Same<T> for T
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type Output = T
Should always be Self
impl<T> ToOwned for T where
T: Clone,
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T: Clone,
type Owned = T
The resulting type after obtaining ownership.
fn to_owned(&self) -> T
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fn clone_into(&self, target: &mut T)
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impl<T, U> TryFrom<U> for T where
U: Into<T>,
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U: Into<T>,
type Error = Infallible
The type returned in the event of a conversion error.
fn try_from(value: U) -> Result<T, <T as TryFrom<U>>::Error>
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impl<T, U> TryInto<U> for T where
U: TryFrom<T>,
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U: TryFrom<T>,