devela::_dep::_std::collections::vec_deque

Struct VecDeque

1.0.0 · Source
pub struct VecDeque<T, A = Global>
where A: Allocator,
{ /* private fields */ }
Available on crate feature std only.
Expand description

A double-ended queue implemented with a growable ring buffer.

The “default” usage of this type as a queue is to use push_back to add to the queue, and pop_front to remove from the queue. extend and append push onto the back in this manner, and iterating over VecDeque goes front to back.

A VecDeque with a known list of items can be initialized from an array:

use std::collections::VecDeque;

let deq = VecDeque::from([-1, 0, 1]);

Since VecDeque is a ring buffer, its elements are not necessarily contiguous in memory. If you want to access the elements as a single slice, such as for efficient sorting, you can use make_contiguous. It rotates the VecDeque so that its elements do not wrap, and returns a mutable slice to the now-contiguous element sequence.

Implementations§

Source§

impl<T> VecDeque<T>

1.0.0 (const: 1.68.0) · Source

pub const fn new() -> VecDeque<T>

Available on crate feature alloc only.

Creates an empty deque.

§Examples
use std::collections::VecDeque;

let deque: VecDeque<u32> = VecDeque::new();
1.0.0 · Source

pub fn with_capacity(capacity: usize) -> VecDeque<T>

Available on crate feature alloc only.

Creates an empty deque with space for at least capacity elements.

§Examples
use std::collections::VecDeque;

let deque: VecDeque<u32> = VecDeque::with_capacity(10);
Source

pub fn try_with_capacity( capacity: usize, ) -> Result<VecDeque<T>, TryReserveError>

🔬This is a nightly-only experimental API. (try_with_capacity)
Available on crate feature alloc only.

Creates an empty deque with space for at least capacity elements.

§Errors

Returns an error if the capacity exceeds isize::MAX bytes, or if the allocator reports allocation failure.

§Examples
use std::collections::VecDeque;

let deque: VecDeque<u32> = VecDeque::try_with_capacity(10)?;
Source§

impl<T, A> VecDeque<T, A>
where A: Allocator,

Source

pub const fn new_in(alloc: A) -> VecDeque<T, A>

🔬This is a nightly-only experimental API. (allocator_api)
Available on crate feature alloc only.

Creates an empty deque.

§Examples
use std::collections::VecDeque;

let deque: VecDeque<u32> = VecDeque::new();
Source

pub fn with_capacity_in(capacity: usize, alloc: A) -> VecDeque<T, A>

🔬This is a nightly-only experimental API. (allocator_api)
Available on crate feature alloc only.

Creates an empty deque with space for at least capacity elements.

§Examples
use std::collections::VecDeque;

let deque: VecDeque<u32> = VecDeque::with_capacity(10);
1.0.0 · Source

pub fn get(&self, index: usize) -> Option<&T>

Available on crate feature alloc only.

Provides a reference to the element at the given index.

Element at index 0 is the front of the queue.

§Examples
use std::collections::VecDeque;

let mut buf = VecDeque::new();
buf.push_back(3);
buf.push_back(4);
buf.push_back(5);
buf.push_back(6);
assert_eq!(buf.get(1), Some(&4));
1.0.0 · Source

pub fn get_mut(&mut self, index: usize) -> Option<&mut T>

Available on crate feature alloc only.

Provides a mutable reference to the element at the given index.

Element at index 0 is the front of the queue.

§Examples
use std::collections::VecDeque;

let mut buf = VecDeque::new();
buf.push_back(3);
buf.push_back(4);
buf.push_back(5);
buf.push_back(6);
assert_eq!(buf[1], 4);
if let Some(elem) = buf.get_mut(1) {
    *elem = 7;
}
assert_eq!(buf[1], 7);
1.0.0 · Source

pub fn swap(&mut self, i: usize, j: usize)

Available on crate feature alloc only.

Swaps elements at indices i and j.

i and j may be equal.

Element at index 0 is the front of the queue.

§Panics

Panics if either index is out of bounds.

§Examples
use std::collections::VecDeque;

let mut buf = VecDeque::new();
buf.push_back(3);
buf.push_back(4);
buf.push_back(5);
assert_eq!(buf, [3, 4, 5]);
buf.swap(0, 2);
assert_eq!(buf, [5, 4, 3]);
1.0.0 · Source

pub fn capacity(&self) -> usize

Available on crate feature alloc only.

Returns the number of elements the deque can hold without reallocating.

§Examples
use std::collections::VecDeque;

let buf: VecDeque<i32> = VecDeque::with_capacity(10);
assert!(buf.capacity() >= 10);
1.0.0 · Source

pub fn reserve_exact(&mut self, additional: usize)

Available on crate feature alloc only.

Reserves the minimum capacity for at least additional more elements to be inserted in the given deque. Does nothing if the capacity is already sufficient.

Note that the allocator may give the collection more space than it requests. Therefore capacity can not be relied upon to be precisely minimal. Prefer reserve if future insertions are expected.

§Panics

Panics if the new capacity overflows usize.

§Examples
use std::collections::VecDeque;

let mut buf: VecDeque<i32> = [1].into();
buf.reserve_exact(10);
assert!(buf.capacity() >= 11);
1.0.0 · Source

pub fn reserve(&mut self, additional: usize)

Available on crate feature alloc only.

Reserves capacity for at least additional more elements to be inserted in the given deque. The collection may reserve more space to speculatively avoid frequent reallocations.

§Panics

Panics if the new capacity overflows usize.

§Examples
use std::collections::VecDeque;

let mut buf: VecDeque<i32> = [1].into();
buf.reserve(10);
assert!(buf.capacity() >= 11);
1.57.0 · Source

pub fn try_reserve_exact( &mut self, additional: usize, ) -> Result<(), TryReserveError>

Available on crate feature alloc only.

Tries to reserve the minimum capacity for at least additional more elements to be inserted in the given deque. After calling try_reserve_exact, capacity will be greater than or equal to self.len() + additional if it returns Ok(()). Does nothing if the capacity is already sufficient.

Note that the allocator may give the collection more space than it requests. Therefore, capacity can not be relied upon to be precisely minimal. Prefer try_reserve if future insertions are expected.

§Errors

If the capacity overflows usize, or the allocator reports a failure, then an error is returned.

§Examples
use std::collections::TryReserveError;
use std::collections::VecDeque;

fn process_data(data: &[u32]) -> Result<VecDeque<u32>, TryReserveError> {
    let mut output = VecDeque::new();

    // Pre-reserve the memory, exiting if we can't
    output.try_reserve_exact(data.len())?;

    // Now we know this can't OOM(Out-Of-Memory) in the middle of our complex work
    output.extend(data.iter().map(|&val| {
        val * 2 + 5 // very complicated
    }));

    Ok(output)
}
1.57.0 · Source

pub fn try_reserve(&mut self, additional: usize) -> Result<(), TryReserveError>

Available on crate feature alloc only.

Tries to reserve capacity for at least additional more elements to be inserted in the given deque. The collection may reserve more space to speculatively avoid frequent reallocations. After calling try_reserve, capacity will be greater than or equal to self.len() + additional if it returns Ok(()). Does nothing if capacity is already sufficient. This method preserves the contents even if an error occurs.

§Errors

If the capacity overflows usize, or the allocator reports a failure, then an error is returned.

§Examples
use std::collections::TryReserveError;
use std::collections::VecDeque;

fn process_data(data: &[u32]) -> Result<VecDeque<u32>, TryReserveError> {
    let mut output = VecDeque::new();

    // Pre-reserve the memory, exiting if we can't
    output.try_reserve(data.len())?;

    // Now we know this can't OOM in the middle of our complex work
    output.extend(data.iter().map(|&val| {
        val * 2 + 5 // very complicated
    }));

    Ok(output)
}
1.5.0 · Source

pub fn shrink_to_fit(&mut self)

Available on crate feature alloc only.

Shrinks the capacity of the deque as much as possible.

It will drop down as close as possible to the length but the allocator may still inform the deque that there is space for a few more elements.

§Examples
use std::collections::VecDeque;

let mut buf = VecDeque::with_capacity(15);
buf.extend(0..4);
assert_eq!(buf.capacity(), 15);
buf.shrink_to_fit();
assert!(buf.capacity() >= 4);
1.56.0 · Source

pub fn shrink_to(&mut self, min_capacity: usize)

Available on crate feature alloc only.

Shrinks the capacity of the deque with a lower bound.

The capacity will remain at least as large as both the length and the supplied value.

If the current capacity is less than the lower limit, this is a no-op.

§Examples
use std::collections::VecDeque;

let mut buf = VecDeque::with_capacity(15);
buf.extend(0..4);
assert_eq!(buf.capacity(), 15);
buf.shrink_to(6);
assert!(buf.capacity() >= 6);
buf.shrink_to(0);
assert!(buf.capacity() >= 4);
1.16.0 · Source

pub fn truncate(&mut self, len: usize)

Available on crate feature alloc only.

Shortens the deque, keeping the first len elements and dropping the rest.

If len is greater or equal to the deque’s current length, this has no effect.

§Examples
use std::collections::VecDeque;

let mut buf = VecDeque::new();
buf.push_back(5);
buf.push_back(10);
buf.push_back(15);
assert_eq!(buf, [5, 10, 15]);
buf.truncate(1);
assert_eq!(buf, [5]);
Source

pub fn allocator(&self) -> &A

🔬This is a nightly-only experimental API. (allocator_api)
Available on crate feature alloc only.

Returns a reference to the underlying allocator.

1.0.0 · Source

pub fn iter(&self) -> Iter<'_, T>

Available on crate feature alloc only.

Returns a front-to-back iterator.

§Examples
use std::collections::VecDeque;

let mut buf = VecDeque::new();
buf.push_back(5);
buf.push_back(3);
buf.push_back(4);
let b: &[_] = &[&5, &3, &4];
let c: Vec<&i32> = buf.iter().collect();
assert_eq!(&c[..], b);
1.0.0 · Source

pub fn iter_mut(&mut self) -> IterMut<'_, T>

Available on crate feature alloc only.

Returns a front-to-back iterator that returns mutable references.

§Examples
use std::collections::VecDeque;

let mut buf = VecDeque::new();
buf.push_back(5);
buf.push_back(3);
buf.push_back(4);
for num in buf.iter_mut() {
    *num = *num - 2;
}
let b: &[_] = &[&mut 3, &mut 1, &mut 2];
assert_eq!(&buf.iter_mut().collect::<Vec<&mut i32>>()[..], b);
1.5.0 · Source

pub fn as_slices(&self) -> (&[T], &[T])

Available on crate feature alloc only.

Returns a pair of slices which contain, in order, the contents of the deque.

If make_contiguous was previously called, all elements of the deque will be in the first slice and the second slice will be empty.

§Examples
use std::collections::VecDeque;

let mut deque = VecDeque::new();

deque.push_back(0);
deque.push_back(1);
deque.push_back(2);

assert_eq!(deque.as_slices(), (&[0, 1, 2][..], &[][..]));

deque.push_front(10);
deque.push_front(9);

assert_eq!(deque.as_slices(), (&[9, 10][..], &[0, 1, 2][..]));
1.5.0 · Source

pub fn as_mut_slices(&mut self) -> (&mut [T], &mut [T])

Available on crate feature alloc only.

Returns a pair of slices which contain, in order, the contents of the deque.

If make_contiguous was previously called, all elements of the deque will be in the first slice and the second slice will be empty.

§Examples
use std::collections::VecDeque;

let mut deque = VecDeque::new();

deque.push_back(0);
deque.push_back(1);

deque.push_front(10);
deque.push_front(9);

deque.as_mut_slices().0[0] = 42;
deque.as_mut_slices().1[0] = 24;
assert_eq!(deque.as_slices(), (&[42, 10][..], &[24, 1][..]));
1.0.0 · Source

pub fn len(&self) -> usize

Available on crate feature alloc only.

Returns the number of elements in the deque.

§Examples
use std::collections::VecDeque;

let mut deque = VecDeque::new();
assert_eq!(deque.len(), 0);
deque.push_back(1);
assert_eq!(deque.len(), 1);
1.0.0 · Source

pub fn is_empty(&self) -> bool

Available on crate feature alloc only.

Returns true if the deque is empty.

§Examples
use std::collections::VecDeque;

let mut deque = VecDeque::new();
assert!(deque.is_empty());
deque.push_front(1);
assert!(!deque.is_empty());
1.51.0 · Source

pub fn range<R>(&self, range: R) -> Iter<'_, T>
where R: RangeBounds<usize>,

Available on crate feature alloc only.

Creates an iterator that covers the specified range in the deque.

§Panics

Panics if the starting point is greater than the end point or if the end point is greater than the length of the deque.

§Examples
use std::collections::VecDeque;

let deque: VecDeque<_> = [1, 2, 3].into();
let range = deque.range(2..).copied().collect::<VecDeque<_>>();
assert_eq!(range, [3]);

// A full range covers all contents
let all = deque.range(..);
assert_eq!(all.len(), 3);
1.51.0 · Source

pub fn range_mut<R>(&mut self, range: R) -> IterMut<'_, T>
where R: RangeBounds<usize>,

Available on crate feature alloc only.

Creates an iterator that covers the specified mutable range in the deque.

§Panics

Panics if the starting point is greater than the end point or if the end point is greater than the length of the deque.

§Examples
use std::collections::VecDeque;

let mut deque: VecDeque<_> = [1, 2, 3].into();
for v in deque.range_mut(2..) {
  *v *= 2;
}
assert_eq!(deque, [1, 2, 6]);

// A full range covers all contents
for v in deque.range_mut(..) {
  *v *= 2;
}
assert_eq!(deque, [2, 4, 12]);
1.6.0 · Source

pub fn drain<R>(&mut self, range: R) -> Drain<'_, T, A>
where R: RangeBounds<usize>,

Available on crate feature alloc only.

Removes the specified range from the deque in bulk, returning all removed elements as an iterator. If the iterator is dropped before being fully consumed, it drops the remaining removed elements.

The returned iterator keeps a mutable borrow on the queue to optimize its implementation.

§Panics

Panics if the starting point is greater than the end point or if the end point is greater than the length of the deque.

§Leaking

If the returned iterator goes out of scope without being dropped (due to mem::forget, for example), the deque may have lost and leaked elements arbitrarily, including elements outside the range.

§Examples
use std::collections::VecDeque;

let mut deque: VecDeque<_> = [1, 2, 3].into();
let drained = deque.drain(2..).collect::<VecDeque<_>>();
assert_eq!(drained, [3]);
assert_eq!(deque, [1, 2]);

// A full range clears all contents, like `clear()` does
deque.drain(..);
assert!(deque.is_empty());
1.0.0 · Source

pub fn clear(&mut self)

Available on crate feature alloc only.

Clears the deque, removing all values.

§Examples
use std::collections::VecDeque;

let mut deque = VecDeque::new();
deque.push_back(1);
deque.clear();
assert!(deque.is_empty());
1.12.0 · Source

pub fn contains(&self, x: &T) -> bool
where T: PartialEq,

Available on crate feature alloc only.

Returns true if the deque contains an element equal to the given value.

This operation is O(n).

Note that if you have a sorted VecDeque, binary_search may be faster.

§Examples
use std::collections::VecDeque;

let mut deque: VecDeque<u32> = VecDeque::new();

deque.push_back(0);
deque.push_back(1);

assert_eq!(deque.contains(&1), true);
assert_eq!(deque.contains(&10), false);
1.0.0 · Source

pub fn front(&self) -> Option<&T>

Available on crate feature alloc only.

Provides a reference to the front element, or None if the deque is empty.

§Examples
use std::collections::VecDeque;

let mut d = VecDeque::new();
assert_eq!(d.front(), None);

d.push_back(1);
d.push_back(2);
assert_eq!(d.front(), Some(&1));
1.0.0 · Source

pub fn front_mut(&mut self) -> Option<&mut T>

Available on crate feature alloc only.

Provides a mutable reference to the front element, or None if the deque is empty.

§Examples
use std::collections::VecDeque;

let mut d = VecDeque::new();
assert_eq!(d.front_mut(), None);

d.push_back(1);
d.push_back(2);
match d.front_mut() {
    Some(x) => *x = 9,
    None => (),
}
assert_eq!(d.front(), Some(&9));
1.0.0 · Source

pub fn back(&self) -> Option<&T>

Available on crate feature alloc only.

Provides a reference to the back element, or None if the deque is empty.

§Examples
use std::collections::VecDeque;

let mut d = VecDeque::new();
assert_eq!(d.back(), None);

d.push_back(1);
d.push_back(2);
assert_eq!(d.back(), Some(&2));
1.0.0 · Source

pub fn back_mut(&mut self) -> Option<&mut T>

Available on crate feature alloc only.

Provides a mutable reference to the back element, or None if the deque is empty.

§Examples
use std::collections::VecDeque;

let mut d = VecDeque::new();
assert_eq!(d.back(), None);

d.push_back(1);
d.push_back(2);
match d.back_mut() {
    Some(x) => *x = 9,
    None => (),
}
assert_eq!(d.back(), Some(&9));
1.0.0 · Source

pub fn pop_front(&mut self) -> Option<T>

Available on crate feature alloc only.

Removes the first element and returns it, or None if the deque is empty.

§Examples
use std::collections::VecDeque;

let mut d = VecDeque::new();
d.push_back(1);
d.push_back(2);

assert_eq!(d.pop_front(), Some(1));
assert_eq!(d.pop_front(), Some(2));
assert_eq!(d.pop_front(), None);
1.0.0 · Source

pub fn pop_back(&mut self) -> Option<T>

Available on crate feature alloc only.

Removes the last element from the deque and returns it, or None if it is empty.

§Examples
use std::collections::VecDeque;

let mut buf = VecDeque::new();
assert_eq!(buf.pop_back(), None);
buf.push_back(1);
buf.push_back(3);
assert_eq!(buf.pop_back(), Some(3));
1.0.0 · Source

pub fn push_front(&mut self, value: T)

Available on crate feature alloc only.

Prepends an element to the deque.

§Examples
use std::collections::VecDeque;

let mut d = VecDeque::new();
d.push_front(1);
d.push_front(2);
assert_eq!(d.front(), Some(&2));
1.0.0 · Source

pub fn push_back(&mut self, value: T)

Available on crate feature alloc only.

Appends an element to the back of the deque.

§Examples
use std::collections::VecDeque;

let mut buf = VecDeque::new();
buf.push_back(1);
buf.push_back(3);
assert_eq!(3, *buf.back().unwrap());
1.5.0 · Source

pub fn swap_remove_front(&mut self, index: usize) -> Option<T>

Available on crate feature alloc only.

Removes an element from anywhere in the deque and returns it, replacing it with the first element.

This does not preserve ordering, but is O(1).

Returns None if index is out of bounds.

Element at index 0 is the front of the queue.

§Examples
use std::collections::VecDeque;

let mut buf = VecDeque::new();
assert_eq!(buf.swap_remove_front(0), None);
buf.push_back(1);
buf.push_back(2);
buf.push_back(3);
assert_eq!(buf, [1, 2, 3]);

assert_eq!(buf.swap_remove_front(2), Some(3));
assert_eq!(buf, [2, 1]);
1.5.0 · Source

pub fn swap_remove_back(&mut self, index: usize) -> Option<T>

Available on crate feature alloc only.

Removes an element from anywhere in the deque and returns it, replacing it with the last element.

This does not preserve ordering, but is O(1).

Returns None if index is out of bounds.

Element at index 0 is the front of the queue.

§Examples
use std::collections::VecDeque;

let mut buf = VecDeque::new();
assert_eq!(buf.swap_remove_back(0), None);
buf.push_back(1);
buf.push_back(2);
buf.push_back(3);
assert_eq!(buf, [1, 2, 3]);

assert_eq!(buf.swap_remove_back(0), Some(1));
assert_eq!(buf, [3, 2]);
1.5.0 · Source

pub fn insert(&mut self, index: usize, value: T)

Available on crate feature alloc only.

Inserts an element at index within the deque, shifting all elements with indices greater than or equal to index towards the back.

Element at index 0 is the front of the queue.

§Panics

Panics if index is strictly greater than deque’s length

§Examples
use std::collections::VecDeque;

let mut vec_deque = VecDeque::new();
vec_deque.push_back('a');
vec_deque.push_back('b');
vec_deque.push_back('c');
assert_eq!(vec_deque, &['a', 'b', 'c']);

vec_deque.insert(1, 'd');
assert_eq!(vec_deque, &['a', 'd', 'b', 'c']);

vec_deque.insert(4, 'e');
assert_eq!(vec_deque, &['a', 'd', 'b', 'c', 'e']);
1.0.0 · Source

pub fn remove(&mut self, index: usize) -> Option<T>

Available on crate feature alloc only.

Removes and returns the element at index from the deque. Whichever end is closer to the removal point will be moved to make room, and all the affected elements will be moved to new positions. Returns None if index is out of bounds.

Element at index 0 is the front of the queue.

§Examples
use std::collections::VecDeque;

let mut buf = VecDeque::new();
buf.push_back('a');
buf.push_back('b');
buf.push_back('c');
assert_eq!(buf, ['a', 'b', 'c']);

assert_eq!(buf.remove(1), Some('b'));
assert_eq!(buf, ['a', 'c']);
1.4.0 · Source

pub fn split_off(&mut self, at: usize) -> VecDeque<T, A>
where A: Clone,

Available on crate feature alloc only.

Splits the deque into two at the given index.

Returns a newly allocated VecDeque. self contains elements [0, at), and the returned deque contains elements [at, len).

Note that the capacity of self does not change.

Element at index 0 is the front of the queue.

§Panics

Panics if at > len.

§Examples
use std::collections::VecDeque;

let mut buf: VecDeque<_> = ['a', 'b', 'c'].into();
let buf2 = buf.split_off(1);
assert_eq!(buf, ['a']);
assert_eq!(buf2, ['b', 'c']);
1.4.0 · Source

pub fn append(&mut self, other: &mut VecDeque<T, A>)

Available on crate feature alloc only.

Moves all the elements of other into self, leaving other empty.

§Panics

Panics if the new number of elements in self overflows a usize.

§Examples
use std::collections::VecDeque;

let mut buf: VecDeque<_> = [1, 2].into();
let mut buf2: VecDeque<_> = [3, 4].into();
buf.append(&mut buf2);
assert_eq!(buf, [1, 2, 3, 4]);
assert_eq!(buf2, []);
1.4.0 · Source

pub fn retain<F>(&mut self, f: F)
where F: FnMut(&T) -> bool,

Available on crate feature alloc only.

Retains only the elements specified by the predicate.

In other words, remove all elements e for which f(&e) returns false. This method operates in place, visiting each element exactly once in the original order, and preserves the order of the retained elements.

§Examples
use std::collections::VecDeque;

let mut buf = VecDeque::new();
buf.extend(1..5);
buf.retain(|&x| x % 2 == 0);
assert_eq!(buf, [2, 4]);

Because the elements are visited exactly once in the original order, external state may be used to decide which elements to keep.

use std::collections::VecDeque;

let mut buf = VecDeque::new();
buf.extend(1..6);

let keep = [false, true, true, false, true];
let mut iter = keep.iter();
buf.retain(|_| *iter.next().unwrap());
assert_eq!(buf, [2, 3, 5]);
1.61.0 · Source

pub fn retain_mut<F>(&mut self, f: F)
where F: FnMut(&mut T) -> bool,

Available on crate feature alloc only.

Retains only the elements specified by the predicate.

In other words, remove all elements e for which f(&mut e) returns false. This method operates in place, visiting each element exactly once in the original order, and preserves the order of the retained elements.

§Examples
use std::collections::VecDeque;

let mut buf = VecDeque::new();
buf.extend(1..5);
buf.retain_mut(|x| if *x % 2 == 0 {
    *x += 1;
    true
} else {
    false
});
assert_eq!(buf, [3, 5]);
1.33.0 · Source

pub fn resize_with(&mut self, new_len: usize, generator: impl FnMut() -> T)

Available on crate feature alloc only.

Modifies the deque in-place so that len() is equal to new_len, either by removing excess elements from the back or by appending elements generated by calling generator to the back.

§Examples
use std::collections::VecDeque;

let mut buf = VecDeque::new();
buf.push_back(5);
buf.push_back(10);
buf.push_back(15);
assert_eq!(buf, [5, 10, 15]);

buf.resize_with(5, Default::default);
assert_eq!(buf, [5, 10, 15, 0, 0]);

buf.resize_with(2, || unreachable!());
assert_eq!(buf, [5, 10]);

let mut state = 100;
buf.resize_with(5, || { state += 1; state });
assert_eq!(buf, [5, 10, 101, 102, 103]);
1.48.0 · Source

pub fn make_contiguous(&mut self) -> &mut [T]

Available on crate feature alloc only.

Rearranges the internal storage of this deque so it is one contiguous slice, which is then returned.

This method does not allocate and does not change the order of the inserted elements. As it returns a mutable slice, this can be used to sort a deque.

Once the internal storage is contiguous, the as_slices and as_mut_slices methods will return the entire contents of the deque in a single slice.

§Examples

Sorting the content of a deque.

use std::collections::VecDeque;

let mut buf = VecDeque::with_capacity(15);

buf.push_back(2);
buf.push_back(1);
buf.push_front(3);

// sorting the deque
buf.make_contiguous().sort();
assert_eq!(buf.as_slices(), (&[1, 2, 3] as &[_], &[] as &[_]));

// sorting it in reverse order
buf.make_contiguous().sort_by(|a, b| b.cmp(a));
assert_eq!(buf.as_slices(), (&[3, 2, 1] as &[_], &[] as &[_]));

Getting immutable access to the contiguous slice.

use std::collections::VecDeque;

let mut buf = VecDeque::new();

buf.push_back(2);
buf.push_back(1);
buf.push_front(3);

buf.make_contiguous();
if let (slice, &[]) = buf.as_slices() {
    // we can now be sure that `slice` contains all elements of the deque,
    // while still having immutable access to `buf`.
    assert_eq!(buf.len(), slice.len());
    assert_eq!(slice, &[3, 2, 1] as &[_]);
}
1.36.0 · Source

pub fn rotate_left(&mut self, n: usize)

Available on crate feature alloc only.

Rotates the double-ended queue n places to the left.

Equivalently,

  • Rotates item n into the first position.
  • Pops the first n items and pushes them to the end.
  • Rotates len() - n places to the right.
§Panics

If n is greater than len(). Note that n == len() does not panic and is a no-op rotation.

§Complexity

Takes *O*(min(n, len() - n)) time and no extra space.

§Examples
use std::collections::VecDeque;

let mut buf: VecDeque<_> = (0..10).collect();

buf.rotate_left(3);
assert_eq!(buf, [3, 4, 5, 6, 7, 8, 9, 0, 1, 2]);

for i in 1..10 {
    assert_eq!(i * 3 % 10, buf[0]);
    buf.rotate_left(3);
}
assert_eq!(buf, [0, 1, 2, 3, 4, 5, 6, 7, 8, 9]);
1.36.0 · Source

pub fn rotate_right(&mut self, n: usize)

Available on crate feature alloc only.

Rotates the double-ended queue n places to the right.

Equivalently,

  • Rotates the first item into position n.
  • Pops the last n items and pushes them to the front.
  • Rotates len() - n places to the left.
§Panics

If n is greater than len(). Note that n == len() does not panic and is a no-op rotation.

§Complexity

Takes *O*(min(n, len() - n)) time and no extra space.

§Examples
use std::collections::VecDeque;

let mut buf: VecDeque<_> = (0..10).collect();

buf.rotate_right(3);
assert_eq!(buf, [7, 8, 9, 0, 1, 2, 3, 4, 5, 6]);

for i in 1..10 {
    assert_eq!(0, buf[i * 3 % 10]);
    buf.rotate_right(3);
}
assert_eq!(buf, [0, 1, 2, 3, 4, 5, 6, 7, 8, 9]);
Available on crate feature alloc only.

Binary searches this VecDeque for a given element. If the VecDeque is not sorted, the returned result is unspecified and meaningless.

If the value is found then Result::Ok is returned, containing the index of the matching element. If there are multiple matches, then any one of the matches could be returned. If the value is not found then Result::Err is returned, containing the index where a matching element could be inserted while maintaining sorted order.

See also binary_search_by, binary_search_by_key, and partition_point.

§Examples

Looks up a series of four elements. The first is found, with a uniquely determined position; the second and third are not found; the fourth could match any position in [1, 4].

use std::collections::VecDeque;

let deque: VecDeque<_> = [0, 1, 1, 1, 1, 2, 3, 5, 8, 13, 21, 34, 55].into();

assert_eq!(deque.binary_search(&13),  Ok(9));
assert_eq!(deque.binary_search(&4),   Err(7));
assert_eq!(deque.binary_search(&100), Err(13));
let r = deque.binary_search(&1);
assert!(matches!(r, Ok(1..=4)));

If you want to insert an item to a sorted deque, while maintaining sort order, consider using partition_point:

use std::collections::VecDeque;

let mut deque: VecDeque<_> = [0, 1, 1, 1, 1, 2, 3, 5, 8, 13, 21, 34, 55].into();
let num = 42;
let idx = deque.partition_point(|&x| x <= num);
// If `num` is unique, `s.partition_point(|&x| x < num)` (with `<`) is equivalent to
// `s.binary_search(&num).unwrap_or_else(|x| x)`, but using `<=` may allow `insert`
// to shift less elements.
deque.insert(idx, num);
assert_eq!(deque, &[0, 1, 1, 1, 1, 2, 3, 5, 8, 13, 21, 34, 42, 55]);
1.54.0 · Source

pub fn binary_search_by<'a, F>(&'a self, f: F) -> Result<usize, usize>
where F: FnMut(&'a T) -> Ordering,

Available on crate feature alloc only.

Binary searches this VecDeque with a comparator function.

The comparator function should return an order code that indicates whether its argument is Less, Equal or Greater the desired target. If the VecDeque is not sorted or if the comparator function does not implement an order consistent with the sort order of the underlying VecDeque, the returned result is unspecified and meaningless.

If the value is found then Result::Ok is returned, containing the index of the matching element. If there are multiple matches, then any one of the matches could be returned. If the value is not found then Result::Err is returned, containing the index where a matching element could be inserted while maintaining sorted order.

See also binary_search, binary_search_by_key, and partition_point.

§Examples

Looks up a series of four elements. The first is found, with a uniquely determined position; the second and third are not found; the fourth could match any position in [1, 4].

use std::collections::VecDeque;

let deque: VecDeque<_> = [0, 1, 1, 1, 1, 2, 3, 5, 8, 13, 21, 34, 55].into();

assert_eq!(deque.binary_search_by(|x| x.cmp(&13)),  Ok(9));
assert_eq!(deque.binary_search_by(|x| x.cmp(&4)),   Err(7));
assert_eq!(deque.binary_search_by(|x| x.cmp(&100)), Err(13));
let r = deque.binary_search_by(|x| x.cmp(&1));
assert!(matches!(r, Ok(1..=4)));
1.54.0 · Source

pub fn binary_search_by_key<'a, B, F>( &'a self, b: &B, f: F, ) -> Result<usize, usize>
where F: FnMut(&'a T) -> B, B: Ord,

Available on crate feature alloc only.

Binary searches this VecDeque with a key extraction function.

Assumes that the deque is sorted by the key, for instance with make_contiguous().sort_by_key() using the same key extraction function. If the deque is not sorted by the key, the returned result is unspecified and meaningless.

If the value is found then Result::Ok is returned, containing the index of the matching element. If there are multiple matches, then any one of the matches could be returned. If the value is not found then Result::Err is returned, containing the index where a matching element could be inserted while maintaining sorted order.

See also binary_search, binary_search_by, and partition_point.

§Examples

Looks up a series of four elements in a slice of pairs sorted by their second elements. The first is found, with a uniquely determined position; the second and third are not found; the fourth could match any position in [1, 4].

use std::collections::VecDeque;

let deque: VecDeque<_> = [(0, 0), (2, 1), (4, 1), (5, 1),
         (3, 1), (1, 2), (2, 3), (4, 5), (5, 8), (3, 13),
         (1, 21), (2, 34), (4, 55)].into();

assert_eq!(deque.binary_search_by_key(&13, |&(a, b)| b),  Ok(9));
assert_eq!(deque.binary_search_by_key(&4, |&(a, b)| b),   Err(7));
assert_eq!(deque.binary_search_by_key(&100, |&(a, b)| b), Err(13));
let r = deque.binary_search_by_key(&1, |&(a, b)| b);
assert!(matches!(r, Ok(1..=4)));
1.54.0 · Source

pub fn partition_point<P>(&self, pred: P) -> usize
where P: FnMut(&T) -> bool,

Available on crate feature alloc only.

Returns the index of the partition point according to the given predicate (the index of the first element of the second partition).

The deque is assumed to be partitioned according to the given predicate. This means that all elements for which the predicate returns true are at the start of the deque and all elements for which the predicate returns false are at the end. For example, [7, 15, 3, 5, 4, 12, 6] is partitioned under the predicate x % 2 != 0 (all odd numbers are at the start, all even at the end).

If the deque is not partitioned, the returned result is unspecified and meaningless, as this method performs a kind of binary search.

See also binary_search, binary_search_by, and binary_search_by_key.

§Examples
use std::collections::VecDeque;

let deque: VecDeque<_> = [1, 2, 3, 3, 5, 6, 7].into();
let i = deque.partition_point(|&x| x < 5);

assert_eq!(i, 4);
assert!(deque.iter().take(i).all(|&x| x < 5));
assert!(deque.iter().skip(i).all(|&x| !(x < 5)));

If you want to insert an item to a sorted deque, while maintaining sort order:

use std::collections::VecDeque;

let mut deque: VecDeque<_> = [0, 1, 1, 1, 1, 2, 3, 5, 8, 13, 21, 34, 55].into();
let num = 42;
let idx = deque.partition_point(|&x| x < num);
deque.insert(idx, num);
assert_eq!(deque, &[0, 1, 1, 1, 1, 2, 3, 5, 8, 13, 21, 34, 42, 55]);
Source§

impl<T, A> VecDeque<T, A>
where T: Clone, A: Allocator,

1.16.0 · Source

pub fn resize(&mut self, new_len: usize, value: T)

Available on crate feature alloc only.

Modifies the deque in-place so that len() is equal to new_len, either by removing excess elements from the back or by appending clones of value to the back.

§Examples
use std::collections::VecDeque;

let mut buf = VecDeque::new();
buf.push_back(5);
buf.push_back(10);
buf.push_back(15);
assert_eq!(buf, [5, 10, 15]);

buf.resize(2, 0);
assert_eq!(buf, [5, 10]);

buf.resize(5, 20);
assert_eq!(buf, [5, 10, 20, 20, 20]);

Trait Implementations§

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impl<T> Archive for VecDeque<T>
where T: Archive,

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type Archived = ArchivedVec<<T as Archive>::Archived>

The archived representation of this type. Read more
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type Resolver = VecResolver

The resolver for this type. It must contain all the additional information from serializing needed to make the archived type from the normal type.
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fn resolve( &self, resolver: <VecDeque<T> as Archive>::Resolver, out: Place<<VecDeque<T> as Archive>::Archived>, )

Creates the archived version of this value at the given position and writes it to the given output. Read more
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const COPY_OPTIMIZATION: CopyOptimization<Self> = _

An optimization flag that allows the bytes of this type to be copied directly to a writer instead of calling serialize. Read more
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impl<T> BitSized<{$PTR_BITS * 3}> for VecDeque<T>

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const BIT_SIZE: usize = _

The bit size of this type (only the relevant data part, without padding). Read more
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const MIN_BYTE_SIZE: usize = _

The rounded up byte size for this type. Read more
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fn bit_size(&self) -> usize

Returns the bit size of this type (only the relevant data part, without padding). Read more
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fn min_byte_size(&self) -> usize

Returns the rounded up byte size for this type. Read more
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impl Buf for VecDeque<u8>

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fn remaining(&self) -> usize

Returns the number of bytes between the current position and the end of the buffer. Read more
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fn chunk(&self) -> &[u8]

Returns a slice starting at the current position and of length between 0 and Buf::remaining(). Note that this can return a shorter slice (this allows non-continuous internal representation). Read more
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fn advance(&mut self, cnt: usize)

Advance the internal cursor of the Buf Read more
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fn chunks_vectored<'a>(&'a self, dst: &mut [IoSlice<'a>]) -> usize

Fills dst with potentially multiple slices starting at self’s current position. Read more
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fn has_remaining(&self) -> bool

Returns true if there are any more bytes to consume Read more
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fn copy_to_slice(&mut self, dst: &mut [u8])

Copies bytes from self into dst. Read more
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fn get_u8(&mut self) -> u8

Gets an unsigned 8 bit integer from self. Read more
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fn get_i8(&mut self) -> i8

Gets a signed 8 bit integer from self. Read more
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fn get_u16(&mut self) -> u16

Gets an unsigned 16 bit integer from self in big-endian byte order. Read more
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fn get_u16_le(&mut self) -> u16

Gets an unsigned 16 bit integer from self in little-endian byte order. Read more
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fn get_u16_ne(&mut self) -> u16

Gets an unsigned 16 bit integer from self in native-endian byte order. Read more
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fn get_i16(&mut self) -> i16

Gets a signed 16 bit integer from self in big-endian byte order. Read more
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fn get_i16_le(&mut self) -> i16

Gets a signed 16 bit integer from self in little-endian byte order. Read more
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fn get_i16_ne(&mut self) -> i16

Gets a signed 16 bit integer from self in native-endian byte order. Read more
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fn get_u32(&mut self) -> u32

Gets an unsigned 32 bit integer from self in the big-endian byte order. Read more
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fn get_u32_le(&mut self) -> u32

Gets an unsigned 32 bit integer from self in the little-endian byte order. Read more
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fn get_u32_ne(&mut self) -> u32

Gets an unsigned 32 bit integer from self in native-endian byte order. Read more
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fn get_i32(&mut self) -> i32

Gets a signed 32 bit integer from self in big-endian byte order. Read more
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fn get_i32_le(&mut self) -> i32

Gets a signed 32 bit integer from self in little-endian byte order. Read more
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fn get_i32_ne(&mut self) -> i32

Gets a signed 32 bit integer from self in native-endian byte order. Read more
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fn get_u64(&mut self) -> u64

Gets an unsigned 64 bit integer from self in big-endian byte order. Read more
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fn get_u64_le(&mut self) -> u64

Gets an unsigned 64 bit integer from self in little-endian byte order. Read more
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fn get_u64_ne(&mut self) -> u64

Gets an unsigned 64 bit integer from self in native-endian byte order. Read more
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fn get_i64(&mut self) -> i64

Gets a signed 64 bit integer from self in big-endian byte order. Read more
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fn get_i64_le(&mut self) -> i64

Gets a signed 64 bit integer from self in little-endian byte order. Read more
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fn get_i64_ne(&mut self) -> i64

Gets a signed 64 bit integer from self in native-endian byte order. Read more
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fn get_u128(&mut self) -> u128

Gets an unsigned 128 bit integer from self in big-endian byte order. Read more
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fn get_u128_le(&mut self) -> u128

Gets an unsigned 128 bit integer from self in little-endian byte order. Read more
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fn get_u128_ne(&mut self) -> u128

Gets an unsigned 128 bit integer from self in native-endian byte order. Read more
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fn get_i128(&mut self) -> i128

Gets a signed 128 bit integer from self in big-endian byte order. Read more
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fn get_i128_le(&mut self) -> i128

Gets a signed 128 bit integer from self in little-endian byte order. Read more
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fn get_i128_ne(&mut self) -> i128

Gets a signed 128 bit integer from self in native-endian byte order. Read more
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fn get_uint(&mut self, nbytes: usize) -> u64

Gets an unsigned n-byte integer from self in big-endian byte order. Read more
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fn get_uint_le(&mut self, nbytes: usize) -> u64

Gets an unsigned n-byte integer from self in little-endian byte order. Read more
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fn get_uint_ne(&mut self, nbytes: usize) -> u64

Gets an unsigned n-byte integer from self in native-endian byte order. Read more
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fn get_int(&mut self, nbytes: usize) -> i64

Gets a signed n-byte integer from self in big-endian byte order. Read more
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fn get_int_le(&mut self, nbytes: usize) -> i64

Gets a signed n-byte integer from self in little-endian byte order. Read more
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fn get_int_ne(&mut self, nbytes: usize) -> i64

Gets a signed n-byte integer from self in native-endian byte order. Read more
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fn get_f32(&mut self) -> f32

Gets an IEEE754 single-precision (4 bytes) floating point number from self in big-endian byte order. Read more
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fn get_f32_le(&mut self) -> f32

Gets an IEEE754 single-precision (4 bytes) floating point number from self in little-endian byte order. Read more
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fn get_f32_ne(&mut self) -> f32

Gets an IEEE754 single-precision (4 bytes) floating point number from self in native-endian byte order. Read more
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fn get_f64(&mut self) -> f64

Gets an IEEE754 double-precision (8 bytes) floating point number from self in big-endian byte order. Read more
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fn get_f64_le(&mut self) -> f64

Gets an IEEE754 double-precision (8 bytes) floating point number from self in little-endian byte order. Read more
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fn get_f64_ne(&mut self) -> f64

Gets an IEEE754 double-precision (8 bytes) floating point number from self in native-endian byte order. Read more
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fn copy_to_bytes(&mut self, len: usize) -> Bytes

Consumes len bytes inside self and returns new instance of Bytes with this data. Read more
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fn take(self, limit: usize) -> Take<Self>
where Self: Sized,

Creates an adaptor which will read at most limit bytes from self. Read more
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fn chain<U>(self, next: U) -> Chain<Self, U>
where U: Buf, Self: Sized,

Creates an adaptor which will chain this buffer with another. Read more
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fn reader(self) -> Reader<Self>
where Self: Sized,

Creates an adaptor which implements the Read trait for self. Read more
1.75.0 · Source§

impl<A> BufRead for VecDeque<u8, A>
where A: Allocator,

BufRead is implemented for VecDeque<u8> by reading bytes from the front of the VecDeque.

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fn fill_buf(&mut self) -> Result<&[u8], Error>

Returns the contents of the “front” slice as returned by as_slices. If the contained byte slices of the VecDeque are discontiguous, multiple calls to fill_buf will be needed to read the entire content.

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fn consume(&mut self, amt: usize)

Tells this buffer that amt bytes have been consumed from the buffer, so they should no longer be returned in calls to read. Read more
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fn has_data_left(&mut self) -> Result<bool, Error>

🔬This is a nightly-only experimental API. (buf_read_has_data_left)
Checks if the underlying Read has any data left to be read. Read more
1.0.0 · Source§

fn read_until(&mut self, byte: u8, buf: &mut Vec<u8>) -> Result<usize, Error>

Reads all bytes into buf until the delimiter byte or EOF is reached. Read more
1.83.0 · Source§

fn skip_until(&mut self, byte: u8) -> Result<usize, Error>

Skips all bytes until the delimiter byte or EOF is reached. Read more
1.0.0 · Source§

fn read_line(&mut self, buf: &mut String) -> Result<usize, Error>

Reads all bytes until a newline (the 0xA byte) is reached, and append them to the provided String buffer. Read more
1.0.0 · Source§

fn split(self, byte: u8) -> Split<Self>
where Self: Sized,

Returns an iterator over the contents of this reader split on the byte byte. Read more
1.0.0 · Source§

fn lines(self) -> Lines<Self>
where Self: Sized,

Returns an iterator over the lines of this reader. Read more
1.0.0 · Source§

impl<T, A> Clone for VecDeque<T, A>
where T: Clone, A: Allocator + Clone,

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fn clone_from(&mut self, source: &VecDeque<T, A>)

Overwrites the contents of self with a clone of the contents of source.

This method is preferred over simply assigning source.clone() to self, as it avoids reallocation if possible.

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fn clone(&self) -> VecDeque<T, A>

Returns a copy of the value. Read more
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impl<T> ConstDefault for VecDeque<T>

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const DEFAULT: Self

Returns the compile-time “default value” for a type.
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impl<T> DataCollection for VecDeque<T>

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type Element = T

The element type of the collection.
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fn collection_capacity(&self) -> Result<usize, NotAvailable>

Returns the reserved capacity for elements in the collection.
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fn collection_len(&self) -> Result<usize, NotAvailable>

Returns the current number of elements in the collection.
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fn collection_is_empty(&self) -> Result<bool, NotAvailable>

Returns true if the collection is empty, false if it’s not.
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fn collection_is_full(&self) -> Result<bool, NotAvailable>

Returns true if the collection is full, false if it’s not.
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fn collection_contains( &self, element: Self::Element, ) -> Result<bool, NotAvailable>
where T: PartialEq,

Returns true if the collection contains the given element.
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fn collection_count( &self, element: &Self::Element, ) -> Result<usize, NotAvailable>
where T: PartialEq,

Counts the number of times a given element appears in the collection.
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impl<T> DataDeque for VecDeque<T>

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fn queue_pop_back( &mut self, ) -> Result<<Self as DataCollection>::Element, NotEnoughElements>

Remove an element from the back of the queue. Read more
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fn queue_push_front( &mut self, element: <Self as DataCollection>::Element, ) -> Result<(), NotEnoughSpace>

Add an element to the front of the queue. Read more
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fn queue_pop_front( &mut self, ) -> Result<<Self as DataCollection>::Element, NotEnoughElements>

Remove an element from the front of the queue (calls queue_pop). Read more
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fn queue_push_back( &mut self, element: <Self as DataCollection>::Element, ) -> Result<(), NotEnoughSpace>

Remove an element from the back of the queue (calls queue_push). Read more
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impl<T> DataDesta for VecDeque<T>

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fn stack_pop_front( &mut self, ) -> Result<<Self as DataCollection>::Element, NotEnoughElements>

Remove an element from the front of the stack.
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fn stack_push_front( &mut self, element: <Self as DataCollection>::Element, ) -> Result<(), NotEnoughSpace>

Add an element to the front of the stack.
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fn stack_pop_back( &mut self, ) -> Result<<Self as DataCollection>::Element, NotEnoughElements>

Remove an element from the back of the stack (calls DataStack::stack_pop).
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fn stack_push_back( &mut self, element: <Self as DataCollection>::Element, ) -> Result<(), NotEnoughSpace>

Remove an element from the back of the stack (calls DataStack::stack_push).
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impl<T> DataQueue for VecDeque<T>

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fn queue_pop( &mut self, ) -> Result<<Self as DataCollection>::Element, NotEnoughElements>

Remove an element from the (front of the) queue. Read more
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fn queue_push( &mut self, element: <Self as DataCollection>::Element, ) -> Result<(), NotEnoughSpace>

Add an element to the (back of the) queue. Read more
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impl<T> DataStack for VecDeque<T>

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fn stack_pop( &mut self, ) -> Result<<Self as DataCollection>::Element, NotEnoughElements>

Remove an element from the (back of the) stack.
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fn stack_push( &mut self, element: <Self as DataCollection>::Element, ) -> Result<(), NotEnoughSpace>

Add an element to the (back of the) stack.
1.0.0 · Source§

impl<T, A> Debug for VecDeque<T, A>
where T: Debug, A: Allocator,

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fn fmt(&self, f: &mut Formatter<'_>) -> Result<(), Error>

Formats the value using the given formatter. Read more
1.0.0 · Source§

impl<T> Default for VecDeque<T>

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fn default() -> VecDeque<T>

Creates an empty deque.

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impl<'de, T> Deserialize<'de> for VecDeque<T>
where T: Deserialize<'de>,

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fn deserialize<D>( deserializer: D, ) -> Result<VecDeque<T>, <D as Deserializer<'de>>::Error>
where D: Deserializer<'de>,

Deserialize this value from the given Serde deserializer. Read more
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impl<T, D> Deserialize<VecDeque<T>, D> for ArchivedVec<<T as Archive>::Archived>
where T: Archive, [<T as Archive>::Archived]: DeserializeUnsized<[T], D>, D: Fallible + ?Sized, <D as Fallible>::Error: Source,

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fn deserialize( &self, deserializer: &mut D, ) -> Result<VecDeque<T>, <D as Fallible>::Error>

Deserializes using the given deserializer
1.0.0 · Source§

impl<T, A> Drop for VecDeque<T, A>
where A: Allocator,

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fn drop(&mut self)

Executes the destructor for this type. Read more
1.2.0 · Source§

impl<'a, T, A> Extend<&'a T> for VecDeque<T, A>
where T: 'a + Copy, A: Allocator,

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fn extend<I>(&mut self, iter: I)
where I: IntoIterator<Item = &'a T>,

Extends a collection with the contents of an iterator. Read more
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fn extend_one(&mut self, _: &'a T)

🔬This is a nightly-only experimental API. (extend_one)
Extends a collection with exactly one element.
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fn extend_reserve(&mut self, additional: usize)

🔬This is a nightly-only experimental API. (extend_one)
Reserves capacity in a collection for the given number of additional elements. Read more
1.0.0 · Source§

impl<T, A> Extend<T> for VecDeque<T, A>
where A: Allocator,

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fn extend<I>(&mut self, iter: I)
where I: IntoIterator<Item = T>,

Extends a collection with the contents of an iterator. Read more
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fn extend_one(&mut self, elem: T)

🔬This is a nightly-only experimental API. (extend_one)
Extends a collection with exactly one element.
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fn extend_reserve(&mut self, additional: usize)

🔬This is a nightly-only experimental API. (extend_one)
Reserves capacity in a collection for the given number of additional elements. Read more
1.56.0 · Source§

impl<T, const N: usize> From<[T; N]> for VecDeque<T>

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fn from(arr: [T; N]) -> VecDeque<T>

Converts a [T; N] into a VecDeque<T>.

use std::collections::VecDeque;

let deq1 = VecDeque::from([1, 2, 3, 4]);
let deq2: VecDeque<_> = [1, 2, 3, 4].into();
assert_eq!(deq1, deq2);
1.10.0 · Source§

impl<T, A> From<Vec<T, A>> for VecDeque<T, A>
where A: Allocator,

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fn from(other: Vec<T, A>) -> VecDeque<T, A>

Turn a Vec<T> into a VecDeque<T>.

This conversion is guaranteed to run in O(1) time and to not re-allocate the Vec’s buffer or allocate any additional memory.

1.10.0 · Source§

impl<T, A> From<VecDeque<T, A>> for Vec<T, A>
where A: Allocator,

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fn from(other: VecDeque<T, A>) -> Vec<T, A>

Turn a VecDeque<T> into a Vec<T>.

This never needs to re-allocate, but does need to do O(n) data movement if the circular buffer doesn’t happen to be at the beginning of the allocation.

§Examples
use std::collections::VecDeque;

// This one is *O*(1).
let deque: VecDeque<_> = (1..5).collect();
let ptr = deque.as_slices().0.as_ptr();
let vec = Vec::from(deque);
assert_eq!(vec, [1, 2, 3, 4]);
assert_eq!(vec.as_ptr(), ptr);

// This one needs data rearranging.
let mut deque: VecDeque<_> = (1..5).collect();
deque.push_front(9);
deque.push_front(8);
let ptr = deque.as_slices().1.as_ptr();
let vec = Vec::from(deque);
assert_eq!(vec, [8, 9, 1, 2, 3, 4]);
assert_eq!(vec.as_ptr(), ptr);
1.0.0 · Source§

impl<T> FromIterator<T> for VecDeque<T>

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fn from_iter<I>(iter: I) -> VecDeque<T>
where I: IntoIterator<Item = T>,

Creates a value from an iterator. Read more
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impl<T> FromParallelIterator<T> for VecDeque<T>
where T: Send,

Collects items from a parallel iterator into a vecdeque.

§

fn from_par_iter<I>(par_iter: I) -> VecDeque<T>
where I: IntoParallelIterator<Item = T>,

Creates an instance of the collection from the parallel iterator par_iter. Read more
1.0.0 · Source§

impl<T, A> Hash for VecDeque<T, A>
where T: Hash, A: Allocator,

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fn hash<H>(&self, state: &mut H)
where H: Hasher,

Feeds this value into the given Hasher. Read more
1.3.0 · Source§

fn hash_slice<H>(data: &[Self], state: &mut H)
where H: Hasher, Self: Sized,

Feeds a slice of this type into the given Hasher. Read more
1.0.0 · Source§

impl<T, A> Index<usize> for VecDeque<T, A>
where A: Allocator,

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type Output = T

The returned type after indexing.
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fn index(&self, index: usize) -> &T

Performs the indexing (container[index]) operation. Read more
1.0.0 · Source§

impl<T, A> IndexMut<usize> for VecDeque<T, A>
where A: Allocator,

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fn index_mut(&mut self, index: usize) -> &mut T

Performs the mutable indexing (container[index]) operation. Read more
1.0.0 · Source§

impl<'a, T, A> IntoIterator for &'a VecDeque<T, A>
where A: Allocator,

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type Item = &'a T

The type of the elements being iterated over.
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type IntoIter = Iter<'a, T>

Which kind of iterator are we turning this into?
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fn into_iter(self) -> Iter<'a, T>

Creates an iterator from a value. Read more
1.0.0 · Source§

impl<'a, T, A> IntoIterator for &'a mut VecDeque<T, A>
where A: Allocator,

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type Item = &'a mut T

The type of the elements being iterated over.
Source§

type IntoIter = IterMut<'a, T>

Which kind of iterator are we turning this into?
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fn into_iter(self) -> IterMut<'a, T>

Creates an iterator from a value. Read more
1.0.0 · Source§

impl<T, A> IntoIterator for VecDeque<T, A>
where A: Allocator,

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fn into_iter(self) -> IntoIter<T, A>

Consumes the deque into a front-to-back iterator yielding elements by value.

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type Item = T

The type of the elements being iterated over.
Source§

type IntoIter = IntoIter<T, A>

Which kind of iterator are we turning this into?
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impl<'a, T> IntoParallelIterator for &'a VecDeque<T>
where T: Sync,

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type Item = &'a T

The type of item that the parallel iterator will produce.
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type Iter = Iter<'a, T>

The parallel iterator type that will be created.
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fn into_par_iter(self) -> <&'a VecDeque<T> as IntoParallelIterator>::Iter

Converts self into a parallel iterator. Read more
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impl<'a, T> IntoParallelIterator for &'a mut VecDeque<T>
where T: Send,

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type Item = &'a mut T

The type of item that the parallel iterator will produce.
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type Iter = IterMut<'a, T>

The parallel iterator type that will be created.
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fn into_par_iter(self) -> <&'a mut VecDeque<T> as IntoParallelIterator>::Iter

Converts self into a parallel iterator. Read more
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impl<T> IntoParallelIterator for VecDeque<T>
where T: Send,

§

type Item = T

The type of item that the parallel iterator will produce.
§

type Iter = IntoIter<T>

The parallel iterator type that will be created.
§

fn into_par_iter(self) -> <VecDeque<T> as IntoParallelIterator>::Iter

Converts self into a parallel iterator. Read more
1.0.0 · Source§

impl<T, A> Ord for VecDeque<T, A>
where T: Ord, A: Allocator,

Source§

fn cmp(&self, other: &VecDeque<T, A>) -> Ordering

This method returns an Ordering between self and other. Read more
1.21.0 · Source§

fn max(self, other: Self) -> Self
where Self: Sized,

Compares and returns the maximum of two values. Read more
1.21.0 · Source§

fn min(self, other: Self) -> Self
where Self: Sized,

Compares and returns the minimum of two values. Read more
1.50.0 · Source§

fn clamp(self, min: Self, max: Self) -> Self
where Self: Sized,

Restrict a value to a certain interval. Read more
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impl<'a, T> ParallelDrainRange for &'a mut VecDeque<T>
where T: Send,

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type Iter = Drain<'a, T>

The draining parallel iterator type that will be created.
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type Item = T

The type of item that the parallel iterator will produce. This is usually the same as IntoParallelIterator::Item.
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fn par_drain<R>( self, range: R, ) -> <&'a mut VecDeque<T> as ParallelDrainRange>::Iter
where R: RangeBounds<usize>,

Returns a draining parallel iterator over a range of the collection. Read more
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impl<'a, T> ParallelExtend<&'a T> for VecDeque<T>
where T: 'a + Copy + Send + Sync,

Extends a deque with copied items from a parallel iterator.

§

fn par_extend<I>(&mut self, par_iter: I)
where I: IntoParallelIterator<Item = &'a T>,

Extends an instance of the collection with the elements drawn from the parallel iterator par_iter. Read more
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impl<T> ParallelExtend<T> for VecDeque<T>
where T: Send,

Extends a deque with items from a parallel iterator.

§

fn par_extend<I>(&mut self, par_iter: I)
where I: IntoParallelIterator<Item = T>,

Extends an instance of the collection with the elements drawn from the parallel iterator par_iter. Read more
1.17.0 · Source§

impl<T, U, A> PartialEq<&[U]> for VecDeque<T, A>
where A: Allocator, T: PartialEq<U>,

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fn eq(&self, other: &&[U]) -> bool

Tests for self and other values to be equal, and is used by ==.
1.0.0 · Source§

fn ne(&self, other: &Rhs) -> bool

Tests for !=. The default implementation is almost always sufficient, and should not be overridden without very good reason.
1.17.0 · Source§

impl<T, U, A, const N: usize> PartialEq<&[U; N]> for VecDeque<T, A>
where A: Allocator, T: PartialEq<U>,

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fn eq(&self, other: &&[U; N]) -> bool

Tests for self and other values to be equal, and is used by ==.
1.0.0 · Source§

fn ne(&self, other: &Rhs) -> bool

Tests for !=. The default implementation is almost always sufficient, and should not be overridden without very good reason.
1.17.0 · Source§

impl<T, U, A> PartialEq<&mut [U]> for VecDeque<T, A>
where A: Allocator, T: PartialEq<U>,

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fn eq(&self, other: &&mut [U]) -> bool

Tests for self and other values to be equal, and is used by ==.
1.0.0 · Source§

fn ne(&self, other: &Rhs) -> bool

Tests for !=. The default implementation is almost always sufficient, and should not be overridden without very good reason.
1.17.0 · Source§

impl<T, U, A, const N: usize> PartialEq<&mut [U; N]> for VecDeque<T, A>
where A: Allocator, T: PartialEq<U>,

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fn eq(&self, other: &&mut [U; N]) -> bool

Tests for self and other values to be equal, and is used by ==.
1.0.0 · Source§

fn ne(&self, other: &Rhs) -> bool

Tests for !=. The default implementation is almost always sufficient, and should not be overridden without very good reason.
1.17.0 · Source§

impl<T, U, A, const N: usize> PartialEq<[U; N]> for VecDeque<T, A>
where A: Allocator, T: PartialEq<U>,

Source§

fn eq(&self, other: &[U; N]) -> bool

Tests for self and other values to be equal, and is used by ==.
1.0.0 · Source§

fn ne(&self, other: &Rhs) -> bool

Tests for !=. The default implementation is almost always sufficient, and should not be overridden without very good reason.
1.17.0 · Source§

impl<T, U, A> PartialEq<Vec<U, A>> for VecDeque<T, A>
where A: Allocator, T: PartialEq<U>,

Source§

fn eq(&self, other: &Vec<U, A>) -> bool

Tests for self and other values to be equal, and is used by ==.
1.0.0 · Source§

fn ne(&self, other: &Rhs) -> bool

Tests for !=. The default implementation is almost always sufficient, and should not be overridden without very good reason.
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impl<T, U> PartialEq<VecDeque<U>> for ArchivedVec<T>
where T: PartialEq<U>,

§

fn eq(&self, other: &VecDeque<U>) -> bool

Tests for self and other values to be equal, and is used by ==.
1.0.0 · Source§

fn ne(&self, other: &Rhs) -> bool

Tests for !=. The default implementation is almost always sufficient, and should not be overridden without very good reason.
1.0.0 · Source§

impl<T, A> PartialEq for VecDeque<T, A>
where T: PartialEq, A: Allocator,

Source§

fn eq(&self, other: &VecDeque<T, A>) -> bool

Tests for self and other values to be equal, and is used by ==.
1.0.0 · Source§

fn ne(&self, other: &Rhs) -> bool

Tests for !=. The default implementation is almost always sufficient, and should not be overridden without very good reason.
§

impl<T> PartialOrd<VecDeque<T>> for ArchivedVec<T>
where T: PartialOrd,

§

fn partial_cmp(&self, other: &VecDeque<T>) -> Option<Ordering>

This method returns an ordering between self and other values if one exists. Read more
1.0.0 · Source§

fn lt(&self, other: &Rhs) -> bool

Tests less than (for self and other) and is used by the < operator. Read more
1.0.0 · Source§

fn le(&self, other: &Rhs) -> bool

Tests less than or equal to (for self and other) and is used by the <= operator. Read more
1.0.0 · Source§

fn gt(&self, other: &Rhs) -> bool

Tests greater than (for self and other) and is used by the > operator. Read more
1.0.0 · Source§

fn ge(&self, other: &Rhs) -> bool

Tests greater than or equal to (for self and other) and is used by the >= operator. Read more
1.0.0 · Source§

impl<T, A> PartialOrd for VecDeque<T, A>
where T: PartialOrd, A: Allocator,

Source§

fn partial_cmp(&self, other: &VecDeque<T, A>) -> Option<Ordering>

This method returns an ordering between self and other values if one exists. Read more
1.0.0 · Source§

fn lt(&self, other: &Rhs) -> bool

Tests less than (for self and other) and is used by the < operator. Read more
1.0.0 · Source§

fn le(&self, other: &Rhs) -> bool

Tests less than or equal to (for self and other) and is used by the <= operator. Read more
1.0.0 · Source§

fn gt(&self, other: &Rhs) -> bool

Tests greater than (for self and other) and is used by the > operator. Read more
1.0.0 · Source§

fn ge(&self, other: &Rhs) -> bool

Tests greater than or equal to (for self and other) and is used by the >= operator. Read more
1.63.0 · Source§

impl<A> Read for VecDeque<u8, A>
where A: Allocator,

Read is implemented for VecDeque<u8> by consuming bytes from the front of the VecDeque.

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fn read(&mut self, buf: &mut [u8]) -> Result<usize, Error>

Fill buf with the contents of the “front” slice as returned by as_slices. If the contained byte slices of the VecDeque are discontiguous, multiple calls to read will be needed to read the entire content.

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fn read_exact(&mut self, buf: &mut [u8]) -> Result<(), Error>

Reads the exact number of bytes required to fill buf. Read more
Source§

fn read_buf(&mut self, cursor: BorrowedCursor<'_>) -> Result<(), Error>

🔬This is a nightly-only experimental API. (read_buf)
Pull some bytes from this source into the specified buffer. Read more
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fn read_buf_exact(&mut self, cursor: BorrowedCursor<'_>) -> Result<(), Error>

🔬This is a nightly-only experimental API. (read_buf)
Reads the exact number of bytes required to fill cursor. Read more
Source§

fn read_to_end(&mut self, buf: &mut Vec<u8>) -> Result<usize, Error>

Reads all bytes until EOF in this source, placing them into buf. Read more
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fn read_to_string(&mut self, buf: &mut String) -> Result<usize, Error>

Reads all bytes until EOF in this source, appending them to buf. Read more
1.36.0 · Source§

fn read_vectored(&mut self, bufs: &mut [IoSliceMut<'_>]) -> Result<usize, Error>

Like read, except that it reads into a slice of buffers. Read more
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fn is_read_vectored(&self) -> bool

🔬This is a nightly-only experimental API. (can_vector)
Determines if this Reader has an efficient read_vectored implementation. Read more
1.0.0 · Source§

fn by_ref(&mut self) -> &mut Self
where Self: Sized,

Creates a “by reference” adaptor for this instance of Read. Read more
1.0.0 · Source§

fn bytes(self) -> Bytes<Self>
where Self: Sized,

Transforms this Read instance to an Iterator over its bytes. Read more
1.0.0 · Source§

fn chain<R>(self, next: R) -> Chain<Self, R>
where R: Read, Self: Sized,

Creates an adapter which will chain this stream with another. Read more
1.0.0 · Source§

fn take(self, limit: u64) -> Take<Self>
where Self: Sized,

Creates an adapter which will read at most limit bytes from it. Read more
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impl<T, S> Serialize<S> for VecDeque<T>
where T: Serialize<S>, S: Fallible + Allocator + Writer + ?Sized,

§

fn serialize( &self, serializer: &mut S, ) -> Result<<VecDeque<T> as Archive>::Resolver, <S as Fallible>::Error>

Writes the dependencies for the object and returns a resolver that can create the archived type.
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impl<T> Serialize for VecDeque<T>
where T: Serialize,

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fn serialize<S>( &self, serializer: S, ) -> Result<<S as Serializer>::Ok, <S as Serializer>::Error>
where S: Serializer,

Serialize this value into the given Serde serializer. Read more
1.63.0 · Source§

impl<A> Write for VecDeque<u8, A>
where A: Allocator,

Write is implemented for VecDeque<u8> by appending to the VecDeque, growing it as needed.

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fn write(&mut self, buf: &[u8]) -> Result<usize, Error>

Writes a buffer into this writer, returning how many bytes were written. Read more
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fn write_vectored(&mut self, bufs: &[IoSlice<'_>]) -> Result<usize, Error>

Like write, except that it writes from a slice of buffers. Read more
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fn is_write_vectored(&self) -> bool

🔬This is a nightly-only experimental API. (can_vector)
Determines if this Writer has an efficient write_vectored implementation. Read more
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fn write_all(&mut self, buf: &[u8]) -> Result<(), Error>

Attempts to write an entire buffer into this writer. Read more
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fn flush(&mut self) -> Result<(), Error>

Flushes this output stream, ensuring that all intermediately buffered contents reach their destination. Read more
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fn write_all_vectored(&mut self, bufs: &mut [IoSlice<'_>]) -> Result<(), Error>

🔬This is a nightly-only experimental API. (write_all_vectored)
Attempts to write multiple buffers into this writer. Read more
1.0.0 · Source§

fn write_fmt(&mut self, fmt: Arguments<'_>) -> Result<(), Error>

Writes a formatted string into this writer, returning any error encountered. Read more
1.0.0 · Source§

fn by_ref(&mut self) -> &mut Self
where Self: Sized,

Creates a “by reference” adapter for this instance of Write. Read more
1.0.0 · Source§

impl<T, A> Eq for VecDeque<T, A>
where T: Eq, A: Allocator,

Auto Trait Implementations§

§

impl<T, A> Freeze for VecDeque<T, A>
where A: Freeze,

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impl<T, A> RefUnwindSafe for VecDeque<T, A>

§

impl<T, A> Send for VecDeque<T, A>
where A: Send, T: Send,

§

impl<T, A> Sync for VecDeque<T, A>
where A: Sync, T: Sync,

§

impl<T, A> Unpin for VecDeque<T, A>
where A: Unpin, T: Unpin,

§

impl<T, A> UnwindSafe for VecDeque<T, A>
where A: UnwindSafe, T: UnwindSafe,

Blanket Implementations§

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impl<T> Any for T
where T: 'static + ?Sized,

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fn type_id(&self) -> TypeId

Gets the TypeId of self. Read more
§

impl<T> ArchivePointee for T

§

type ArchivedMetadata = ()

The archived version of the pointer metadata for this type.
§

fn pointer_metadata( _: &<T as ArchivePointee>::ArchivedMetadata, ) -> <T as Pointee>::Metadata

Converts some archived metadata to the pointer metadata for itself.
§

impl<T> ArchiveUnsized for T
where T: Archive,

§

type Archived = <T as Archive>::Archived

The archived counterpart of this type. Unlike Archive, it may be unsized. Read more
§

fn archived_metadata( &self, ) -> <<T as ArchiveUnsized>::Archived as ArchivePointee>::ArchivedMetadata

Creates the archived version of the metadata for this value.
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impl<T> Borrow<T> for T
where T: ?Sized,

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fn borrow(&self) -> &T

Immutably borrows from an owned value. Read more
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impl<T> BorrowMut<T> for T
where T: ?Sized,

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fn borrow_mut(&mut self) -> &mut T

Mutably borrows from an owned value. Read more
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impl<T> ByteSized for T

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const BYTE_ALIGN: usize = _

The alignment of this type in bytes.
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const BYTE_SIZE: usize = _

The size of this type in bytes.
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fn byte_align(&self) -> usize

Returns the alignment of this type in bytes.
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fn byte_size(&self) -> usize

Returns the size of this type in bytes. Read more
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fn ptr_size_ratio(&self) -> [usize; 2]

Returns the size ratio between Ptr::BYTES and BYTE_SIZE. Read more
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impl<T, R> Chain<R> for T
where T: ?Sized,

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fn chain<F>(self, f: F) -> R
where F: FnOnce(Self) -> R, Self: Sized,

Chain a function which takes the parameter by value.
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fn chain_ref<F>(&self, f: F) -> R
where F: FnOnce(&Self) -> R,

Chain a function which takes the parameter by shared reference.
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fn chain_mut<F>(&mut self, f: F) -> R
where F: FnOnce(&mut Self) -> R,

Chain a function which takes the parameter by exclusive reference.
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impl<T> CloneToUninit for T
where T: Clone,

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unsafe fn clone_to_uninit(&self, dst: *mut u8)

🔬This is a nightly-only experimental API. (clone_to_uninit)
Performs copy-assignment from self to dst. Read more
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impl<Q, K> Comparable<K> for Q
where Q: Ord + ?Sized, K: Borrow<Q> + ?Sized,

§

fn compare(&self, key: &K) -> Ordering

Compare self to key and return their ordering.
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impl<Q, K> Equivalent<K> for Q
where Q: Eq + ?Sized, K: Borrow<Q> + ?Sized,

§

fn equivalent(&self, key: &K) -> bool

Compare self to key and return true if they are equal.
§

impl<T> ExecutableCommand for T
where T: Write + ?Sized,

§

fn execute(&mut self, command: impl Command) -> Result<&mut T, Error>

Executes the given command directly.

The given command its ANSI escape code will be written and flushed onto Self.

§Arguments
  • Command

    The command that you want to execute directly.

§Example
use std::io;
use crossterm::{ExecutableCommand, style::Print};

fn main() -> io::Result<()> {
     // will be executed directly
      io::stdout()
        .execute(Print("sum:\n".to_string()))?
        .execute(Print(format!("1 + 1= {} ", 1 + 1)))?;

      Ok(())

     // ==== Output ====
     // sum:
     // 1 + 1 = 2
}

Have a look over at the Command API for more details.

§Notes
  • In the case of UNIX and Windows 10, ANSI codes are written to the given ‘writer’.
  • In case of Windows versions lower than 10, a direct WinAPI call will be made. The reason for this is that Windows versions lower than 10 do not support ANSI codes, and can therefore not be written to the given writer. Therefore, there is no difference between execute and queue for those old Windows versions.
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impl<T> ExtAny for T
where T: Any + ?Sized,

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fn type_id() -> TypeId

Returns the TypeId of Self. Read more
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fn type_of(&self) -> TypeId

Returns the TypeId of self. Read more
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fn type_name(&self) -> &'static str

Returns the type name of self. Read more
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fn type_is<T: 'static>(&self) -> bool

Returns true if Self is of type T. Read more
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fn as_any_ref(&self) -> &dyn Any
where Self: Sized,

Upcasts &self as &dyn Any. Read more
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fn as_any_mut(&mut self) -> &mut dyn Any
where Self: Sized,

Upcasts &mut self as &mut dyn Any. Read more
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fn as_any_box(self: Box<Self>) -> Box<dyn Any>
where Self: Sized,

Upcasts Box<self> as Box<dyn Any>. Read more
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fn downcast_ref<T: 'static>(&self) -> Option<&T>

Available on crate feature unsafe_layout only.
Returns some shared reference to the inner value if it is of type T. Read more
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fn downcast_mut<T: 'static>(&mut self) -> Option<&mut T>

Available on crate feature unsafe_layout only.
Returns some exclusive reference to the inner value if it is of type T. Read more
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impl<T> ExtMem for T
where T: ?Sized,

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const NEEDS_DROP: bool = _

Know whether dropping values of this type matters, in compile-time.
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fn mem_align_of<T>() -> usize

Returns the minimum alignment of the type in bytes. Read more
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fn mem_align_of_val(&self) -> usize

Returns the alignment of the pointed-to value in bytes. Read more
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fn mem_size_of<T>() -> usize

Returns the size of a type in bytes. Read more
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fn mem_size_of_val(&self) -> usize

Returns the size of the pointed-to value in bytes. Read more
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fn mem_copy(&self) -> Self
where Self: Copy,

Bitwise-copies a value. Read more
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fn mem_needs_drop(&self) -> bool

Returns true if dropping values of this type matters. Read more
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fn mem_drop(self)
where Self: Sized,

Drops self by running its destructor. Read more
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fn mem_forget(self)
where Self: Sized,

Forgets about self without running its destructor. Read more
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fn mem_replace(&mut self, other: Self) -> Self
where Self: Sized,

Replaces self with other, returning the previous value of self. Read more
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fn mem_take(&mut self) -> Self
where Self: Default,

Replaces self with its default value, returning the previous value of self. Read more
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fn mem_swap(&mut self, other: &mut Self)
where Self: Sized,

Swaps the value of self and other without deinitializing either one. Read more
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unsafe fn mem_zeroed<T>() -> T

Available on crate feature unsafe_layout only.
Returns the value of type T represented by the all-zero byte-pattern. Read more
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unsafe fn mem_transmute_copy<Src, Dst>(src: &Src) -> Dst

Available on crate feature unsafe_layout only.
Returns the value of type T represented by the all-zero byte-pattern. Read more
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fn mem_as_bytes(&self) -> &[u8]
where Self: Sync + Unpin,

Available on crate feature unsafe_slice only.
View a Sync + Unpin self as &[u8]. Read more
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fn mem_as_bytes_mut(&mut self) -> &mut [u8]
where Self: Sync + Unpin,

Available on crate feature unsafe_slice only.
View a Sync + Unpin self as &mut [u8]. Read more
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impl<T> From<T> for T

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fn from(t: T) -> T

Returns the argument unchanged.

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impl<S> FromSample<S> for S

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fn from_sample_(s: S) -> S

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impl<T> Hook for T

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fn hook_ref<F>(self, f: F) -> Self
where F: FnOnce(&Self),

Applies a function which takes the parameter by shared reference, and then returns the (possibly) modified owned value. Read more
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fn hook_mut<F>(self, f: F) -> Self
where F: FnOnce(&mut Self),

Applies a function which takes the parameter by exclusive reference, and then returns the (possibly) modified owned value. Read more
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impl<T> Instrument for T

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fn instrument(self, span: Span) -> Instrumented<Self>

Instruments this type with the provided Span, returning an Instrumented wrapper. Read more
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fn in_current_span(self) -> Instrumented<Self>

Instruments this type with the current Span, returning an Instrumented wrapper. Read more
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impl<T, U> Into<U> for T
where U: From<T>,

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fn into(self) -> U

Calls U::from(self).

That is, this conversion is whatever the implementation of From<T> for U chooses to do.

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impl<T> IntoEither for T

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fn into_either(self, into_left: bool) -> Either<Self, Self>

Converts self into a Left variant of Either<Self, Self> if into_left is true. Converts self into a Right variant of Either<Self, Self> otherwise. Read more
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fn into_either_with<F>(self, into_left: F) -> Either<Self, Self>
where F: FnOnce(&Self) -> bool,

Converts self into a Left variant of Either<Self, Self> if into_left(&self) returns true. Converts self into a Right variant of Either<Self, Self> otherwise. Read more
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impl<'data, I> IntoParallelRefIterator<'data> for I
where I: 'data + ?Sized, &'data I: IntoParallelIterator,

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type Iter = <&'data I as IntoParallelIterator>::Iter

The type of the parallel iterator that will be returned.
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type Item = <&'data I as IntoParallelIterator>::Item

The type of item that the parallel iterator will produce. This will typically be an &'data T reference type.
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fn par_iter(&'data self) -> <I as IntoParallelRefIterator<'data>>::Iter

Converts self into a parallel iterator. Read more
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impl<'data, I> IntoParallelRefMutIterator<'data> for I

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type Iter = <&'data mut I as IntoParallelIterator>::Iter

The type of iterator that will be created.
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type Item = <&'data mut I as IntoParallelIterator>::Item

The type of item that will be produced; this is typically an &'data mut T reference.
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fn par_iter_mut( &'data mut self, ) -> <I as IntoParallelRefMutIterator<'data>>::Iter

Creates the parallel iterator from self. Read more
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impl<'py, T, I> IntoPyDict<'py> for I
where T: PyDictItem<'py>, I: IntoIterator<Item = T>,

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fn into_py_dict(self, py: Python<'py>) -> Result<Bound<'py, PyDict>, PyErr>

Converts self into a PyDict object pointer. Whether pointer owned or borrowed depends on implementation.
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fn into_py_dict_bound(self, py: Python<'py>) -> Bound<'py, PyDict>

👎Deprecated since 0.23.0: renamed to IntoPyDict::into_py_dict
Deprecated name for IntoPyDict::into_py_dict.
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impl<F, T> IntoSample<T> for F
where T: FromSample<F>,

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fn into_sample(self) -> T

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impl<T> LayoutRaw for T

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fn layout_raw(_: <T as Pointee>::Metadata) -> Result<Layout, LayoutError>

Returns the layout of the type.
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impl<T, N1, N2> Niching<NichedOption<T, N1>> for N2
where T: SharedNiching<N1, N2>, N1: Niching<T>, N2: Niching<T>,

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unsafe fn is_niched(niched: *const NichedOption<T, N1>) -> bool

Returns whether the given value has been niched. Read more
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fn resolve_niched(out: Place<NichedOption<T, N1>>)

Writes data to out indicating that a T is niched.
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impl<T> Pointable for T

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const ALIGN: usize

The alignment of pointer.
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type Init = T

The type for initializers.
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unsafe fn init(init: <T as Pointable>::Init) -> usize

Initializes a with the given initializer. Read more
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unsafe fn deref<'a>(ptr: usize) -> &'a T

Dereferences the given pointer. Read more
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unsafe fn deref_mut<'a>(ptr: usize) -> &'a mut T

Mutably dereferences the given pointer. Read more
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unsafe fn drop(ptr: usize)

Drops the object pointed to by the given pointer. Read more
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impl<T> Pointee for T

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type Metadata = ()

The metadata type for pointers and references to this type.
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impl<T> QueueableCommand for T
where T: Write + ?Sized,

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fn queue(&mut self, command: impl Command) -> Result<&mut T, Error>

Queues the given command for further execution.

Queued commands will be executed in the following cases:

  • When flush is called manually on the given type implementing io::Write.
  • The terminal will flush automatically if the buffer is full.
  • Each line is flushed in case of stdout, because it is line buffered.
§Arguments
  • Command

    The command that you want to queue for later execution.

§Examples
use std::io::{self, Write};
use crossterm::{QueueableCommand, style::Print};

 fn main() -> io::Result<()> {
    let mut stdout = io::stdout();

    // `Print` will executed executed when `flush` is called.
    stdout
        .queue(Print("foo 1\n".to_string()))?
        .queue(Print("foo 2".to_string()))?;

    // some other code (no execution happening here) ...

    // when calling `flush` on `stdout`, all commands will be written to the stdout and therefore executed.
    stdout.flush()?;

    Ok(())

    // ==== Output ====
    // foo 1
    // foo 2
}

Have a look over at the Command API for more details.

§Notes
  • In the case of UNIX and Windows 10, ANSI codes are written to the given ‘writer’.
  • In case of Windows versions lower than 10, a direct WinAPI call will be made. The reason for this is that Windows versions lower than 10 do not support ANSI codes, and can therefore not be written to the given writer. Therefore, there is no difference between execute and queue for those old Windows versions.
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impl<T, S> SerializeUnsized<S> for T
where T: Serialize<S>, S: Fallible + Writer + ?Sized,

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fn serialize_unsized( &self, serializer: &mut S, ) -> Result<usize, <S as Fallible>::Error>

Writes the object and returns the position of the archived type.
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impl<W> SynchronizedUpdate for W
where W: Write + ?Sized,

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fn sync_update<T>( &mut self, operations: impl FnOnce(&mut W) -> T, ) -> Result<T, Error>

Performs a set of actions within a synchronous update.

Updates will be suspended in the terminal, the function will be executed against self, updates will be resumed, and a flush will be performed.

§Arguments
  • Function

    A function that performs the operations that must execute in a synchronized update.

§Examples
use std::io;
use crossterm::{ExecutableCommand, SynchronizedUpdate, style::Print};

fn main() -> io::Result<()> {
    let mut stdout = io::stdout();

    stdout.sync_update(|stdout| {
        stdout.execute(Print("foo 1\n".to_string()))?;
        stdout.execute(Print("foo 2".to_string()))?;
        // The effects of the print command will not be present in the terminal
        // buffer, but not visible in the terminal.
        std::io::Result::Ok(())
    })?;

    // The effects of the commands will be visible.

    Ok(())

    // ==== Output ====
    // foo 1
    // foo 2
}
§Notes

This command is performed only using ANSI codes, and will do nothing on terminals that do not support ANSI codes, or this specific extension.

When rendering the screen of the terminal, the Emulator usually iterates through each visible grid cell and renders its current state. With applications updating the screen a at higher frequency this can cause tearing.

This mode attempts to mitigate that.

When the synchronization mode is enabled following render calls will keep rendering the last rendered state. The terminal Emulator keeps processing incoming text and sequences. When the synchronized update mode is disabled again the renderer may fetch the latest screen buffer state again, effectively avoiding the tearing effect by unintentionally rendering in the middle a of an application screen update.

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impl<T> ToOwned for T
where T: Clone,

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type Owned = T

The resulting type after obtaining ownership.
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fn to_owned(&self) -> T

Creates owned data from borrowed data, usually by cloning. Read more
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fn clone_into(&self, target: &mut T)

Uses borrowed data to replace owned data, usually by cloning. Read more
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impl<T, U> ToSample<U> for T
where U: FromSample<T>,

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fn to_sample_(self) -> U

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impl<T, U> TryFrom<U> for T
where U: Into<T>,

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type Error = Infallible

The type returned in the event of a conversion error.
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fn try_from(value: U) -> Result<T, <T as TryFrom<U>>::Error>

Performs the conversion.
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impl<T, U> TryInto<U> for T
where U: TryFrom<T>,

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type Error = <U as TryFrom<T>>::Error

The type returned in the event of a conversion error.
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fn try_into(self) -> Result<U, <U as TryFrom<T>>::Error>

Performs the conversion.
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impl<T> WithSubscriber for T

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fn with_subscriber<S>(self, subscriber: S) -> WithDispatch<Self>
where S: Into<Dispatch>,

Attaches the provided Subscriber to this type, returning a WithDispatch wrapper. Read more
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fn with_current_subscriber(self) -> WithDispatch<Self>

Attaches the current default Subscriber to this type, returning a WithDispatch wrapper. Read more
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impl<T> DeserializeOwned for T
where T: for<'de> Deserialize<'de>,

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impl<S, T> Duplex<S> for T
where T: FromSample<S> + ToSample<S>,

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impl<T> Ungil for T
where T: Send,