use core::{cmp::Ordering, fmt, hash, iter::FromIterator, mem::MaybeUninit, ops, ptr, slice};
pub struct Vec<T, const N: usize> {
len: usize,
buffer: [MaybeUninit<T>; N],
}
impl<T, const N: usize> Vec<T, N> {
const ELEM: MaybeUninit<T> = MaybeUninit::uninit();
const INIT: [MaybeUninit<T>; N] = [Self::ELEM; N];
pub const fn new() -> Self {
Self {
len: 0,
buffer: Self::INIT,
}
}
#[inline]
pub fn from_slice(other: &[T]) -> Result<Self, ()>
where
T: Clone,
{
let mut v = Vec::new();
v.extend_from_slice(other)?;
Ok(v)
}
pub(crate) fn clone(&self) -> Self
where
T: Clone,
{
let mut new = Self::new();
for elem in self {
unsafe {
new.push_unchecked(elem.clone());
}
}
new
}
pub fn as_ptr(&self) -> *const T {
self.buffer.as_ptr() as *const T
}
pub fn as_mut_ptr(&mut self) -> *mut T {
self.buffer.as_mut_ptr() as *mut T
}
pub fn as_slice(&self) -> &[T] {
unsafe { slice::from_raw_parts(self.buffer.as_ptr() as *const T, self.len) }
}
pub fn into_array<const M: usize>(self) -> Result<[T; M], Self> {
if self.len() == M {
let array = unsafe { (&self.buffer as *const _ as *const [T; M]).read() };
core::mem::forget(self);
Ok(array)
} else {
Err(self)
}
}
pub fn as_mut_slice(&mut self) -> &mut [T] {
unsafe { slice::from_raw_parts_mut(self.buffer.as_mut_ptr() as *mut T, self.len) }
}
pub const fn capacity(&self) -> usize {
N
}
pub fn clear(&mut self) {
self.truncate(0);
}
pub fn extend<I>(&mut self, iter: I)
where
I: IntoIterator<Item = T>,
{
for elem in iter {
self.push(elem).ok().unwrap()
}
}
pub fn extend_from_slice(&mut self, other: &[T]) -> Result<(), ()>
where
T: Clone,
{
if self.len + other.len() > self.capacity() {
Err(())
} else {
for elem in other {
unsafe {
self.push_unchecked(elem.clone());
}
}
Ok(())
}
}
pub fn pop(&mut self) -> Option<T> {
if self.len != 0 {
Some(unsafe { self.pop_unchecked() })
} else {
None
}
}
pub fn push(&mut self, item: T) -> Result<(), T> {
if self.len < self.capacity() {
unsafe { self.push_unchecked(item) }
Ok(())
} else {
Err(item)
}
}
pub unsafe fn pop_unchecked(&mut self) -> T {
debug_assert!(!self.is_empty());
self.len -= 1;
(self.buffer.get_unchecked_mut(self.len).as_ptr() as *const T).read()
}
pub unsafe fn push_unchecked(&mut self, item: T) {
debug_assert!(!self.is_full());
*self.buffer.get_unchecked_mut(self.len) = MaybeUninit::new(item);
self.len += 1;
}
pub fn truncate(&mut self, len: usize) {
unsafe {
if len > self.len {
return;
}
let remaining_len = self.len - len;
let s = ptr::slice_from_raw_parts_mut(self.as_mut_ptr().add(len), remaining_len);
self.len = len;
ptr::drop_in_place(s);
}
}
pub fn resize(&mut self, new_len: usize, value: T) -> Result<(), ()>
where
T: Clone,
{
if new_len > self.capacity() {
return Err(());
}
if new_len > self.len {
while self.len < new_len {
self.push(value.clone()).ok();
}
} else {
self.truncate(new_len);
}
Ok(())
}
pub fn resize_default(&mut self, new_len: usize) -> Result<(), ()>
where
T: Clone + Default,
{
self.resize(new_len, T::default())
}
pub unsafe fn set_len(&mut self, new_len: usize) {
debug_assert!(new_len <= self.capacity());
self.len = new_len
}
pub fn swap_remove(&mut self, index: usize) -> T {
assert!(index < self.len);
unsafe { self.swap_remove_unchecked(index) }
}
pub unsafe fn swap_remove_unchecked(&mut self, index: usize) -> T {
let length = self.len();
debug_assert!(index < length);
let value = ptr::read(self.as_ptr().add(index));
let base_ptr = self.as_mut_ptr();
ptr::copy(base_ptr.add(length - 1), base_ptr.add(index), 1);
self.len -= 1;
value
}
#[inline]
pub fn is_full(&self) -> bool {
self.len == self.capacity()
}
#[inline]
pub fn is_empty(&self) -> bool {
self.len == 0
}
#[inline]
pub fn starts_with(&self, needle: &[T]) -> bool
where
T: PartialEq,
{
let n = needle.len();
self.len >= n && needle == &self[..n]
}
#[inline]
pub fn ends_with(&self, needle: &[T]) -> bool
where
T: PartialEq,
{
let (v, n) = (self.len(), needle.len());
v >= n && needle == &self[v - n..]
}
pub fn insert(&mut self, index: usize, element: T) -> Result<(), T> {
let len = self.len();
if index > len {
panic!(
"insertion index (is {}) should be <= len (is {})",
index, len
);
}
if self.is_full() {
return Err(element);
}
unsafe {
{
let p = self.as_mut_ptr().add(index);
ptr::copy(p, p.offset(1), len - index);
ptr::write(p, element);
}
self.set_len(len + 1);
}
Ok(())
}
pub fn remove(&mut self, index: usize) -> T {
let len = self.len();
if index >= len {
panic!("removal index (is {}) should be < len (is {})", index, len);
}
unsafe {
let ret;
{
let ptr = self.as_mut_ptr().add(index);
ret = ptr::read(ptr);
ptr::copy(ptr.offset(1), ptr, len - index - 1);
}
self.set_len(len - 1);
ret
}
}
pub fn retain<F>(&mut self, mut f: F)
where
F: FnMut(&T) -> bool,
{
self.retain_mut(|elem| f(elem));
}
pub fn retain_mut<F>(&mut self, mut f: F)
where
F: FnMut(&mut T) -> bool,
{
let original_len = self.len();
unsafe { self.set_len(0) };
struct BackshiftOnDrop<'a, T, const N: usize> {
v: &'a mut Vec<T, N>,
processed_len: usize,
deleted_cnt: usize,
original_len: usize,
}
impl<T, const N: usize> Drop for BackshiftOnDrop<'_, T, N> {
fn drop(&mut self) {
if self.deleted_cnt > 0 {
unsafe {
ptr::copy(
self.v.as_ptr().add(self.processed_len),
self.v
.as_mut_ptr()
.add(self.processed_len - self.deleted_cnt),
self.original_len - self.processed_len,
);
}
}
unsafe {
self.v.set_len(self.original_len - self.deleted_cnt);
}
}
}
let mut g = BackshiftOnDrop {
v: self,
processed_len: 0,
deleted_cnt: 0,
original_len,
};
fn process_loop<F, T, const N: usize, const DELETED: bool>(
original_len: usize,
f: &mut F,
g: &mut BackshiftOnDrop<'_, T, N>,
) where
F: FnMut(&mut T) -> bool,
{
while g.processed_len != original_len {
let p = g.v.as_mut_ptr();
let cur = unsafe { &mut *p.add(g.processed_len) };
if !f(cur) {
g.processed_len += 1;
g.deleted_cnt += 1;
unsafe { ptr::drop_in_place(cur) };
if DELETED {
continue;
} else {
break;
}
}
if DELETED {
unsafe {
let hole_slot = p.add(g.processed_len - g.deleted_cnt);
ptr::copy_nonoverlapping(cur, hole_slot, 1);
}
}
g.processed_len += 1;
}
}
process_loop::<F, T, N, false>(original_len, &mut f, &mut g);
process_loop::<F, T, N, true>(original_len, &mut f, &mut g);
drop(g);
}
}
impl<T, const N: usize> Default for Vec<T, N> {
fn default() -> Self {
Self::new()
}
}
impl<T, const N: usize> fmt::Debug for Vec<T, N>
where
T: fmt::Debug,
{
fn fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result {
<[T] as fmt::Debug>::fmt(self, f)
}
}
impl<const N: usize> fmt::Write for Vec<u8, N> {
fn write_str(&mut self, s: &str) -> fmt::Result {
match self.extend_from_slice(s.as_bytes()) {
Ok(()) => Ok(()),
Err(_) => Err(fmt::Error),
}
}
}
impl<T, const N: usize> Drop for Vec<T, N> {
fn drop(&mut self) {
unsafe {
ptr::drop_in_place(self.as_mut_slice());
}
}
}
impl<'a, T: Clone, const N: usize> TryFrom<&'a [T]> for Vec<T, N> {
type Error = ();
fn try_from(slice: &'a [T]) -> Result<Self, Self::Error> {
Vec::from_slice(slice)
}
}
impl<T, const N: usize> Extend<T> for Vec<T, N> {
fn extend<I>(&mut self, iter: I)
where
I: IntoIterator<Item = T>,
{
self.extend(iter)
}
}
impl<'a, T, const N: usize> Extend<&'a T> for Vec<T, N>
where
T: 'a + Copy,
{
fn extend<I>(&mut self, iter: I)
where
I: IntoIterator<Item = &'a T>,
{
self.extend(iter.into_iter().cloned())
}
}
impl<T, const N: usize> hash::Hash for Vec<T, N>
where
T: core::hash::Hash,
{
fn hash<H: hash::Hasher>(&self, state: &mut H) {
<[T] as hash::Hash>::hash(self, state)
}
}
impl<'a, T, const N: usize> IntoIterator for &'a Vec<T, N> {
type Item = &'a T;
type IntoIter = slice::Iter<'a, T>;
fn into_iter(self) -> Self::IntoIter {
self.iter()
}
}
impl<'a, T, const N: usize> IntoIterator for &'a mut Vec<T, N> {
type Item = &'a mut T;
type IntoIter = slice::IterMut<'a, T>;
fn into_iter(self) -> Self::IntoIter {
self.iter_mut()
}
}
impl<T, const N: usize> FromIterator<T> for Vec<T, N> {
fn from_iter<I>(iter: I) -> Self
where
I: IntoIterator<Item = T>,
{
let mut vec = Vec::new();
for i in iter {
vec.push(i).ok().expect("Vec::from_iter overflow");
}
vec
}
}
pub struct IntoIter<T, const N: usize> {
vec: Vec<T, N>,
next: usize,
}
impl<T, const N: usize> Iterator for IntoIter<T, N> {
type Item = T;
fn next(&mut self) -> Option<Self::Item> {
if self.next < self.vec.len() {
let item = unsafe {
(self.vec.buffer.get_unchecked_mut(self.next).as_ptr() as *const T).read()
};
self.next += 1;
Some(item)
} else {
None
}
}
}
impl<T, const N: usize> Clone for IntoIter<T, N>
where
T: Clone,
{
fn clone(&self) -> Self {
let mut vec = Vec::new();
if self.next < self.vec.len() {
let s = unsafe {
slice::from_raw_parts(
(self.vec.buffer.as_ptr() as *const T).add(self.next),
self.vec.len() - self.next,
)
};
vec.extend_from_slice(s).ok();
}
Self { vec, next: 0 }
}
}
impl<T, const N: usize> Drop for IntoIter<T, N> {
fn drop(&mut self) {
unsafe {
ptr::drop_in_place(&mut self.vec.as_mut_slice()[self.next..]);
self.vec.len = 0;
}
}
}
impl<T, const N: usize> IntoIterator for Vec<T, N> {
type Item = T;
type IntoIter = IntoIter<T, N>;
fn into_iter(self) -> Self::IntoIter {
IntoIter { vec: self, next: 0 }
}
}
impl<A, B, const N1: usize, const N2: usize> PartialEq<Vec<B, N2>> for Vec<A, N1>
where
A: PartialEq<B>,
{
fn eq(&self, other: &Vec<B, N2>) -> bool {
<[A]>::eq(self, &**other)
}
}
impl<A, B, const N: usize> PartialEq<[B]> for Vec<A, N>
where
A: PartialEq<B>,
{
fn eq(&self, other: &[B]) -> bool {
<[A]>::eq(self, &other[..])
}
}
impl<A, B, const N: usize> PartialEq<Vec<A, N>> for [B]
where
A: PartialEq<B>,
{
fn eq(&self, other: &Vec<A, N>) -> bool {
<[A]>::eq(other, &self[..])
}
}
impl<A, B, const N: usize> PartialEq<&[B]> for Vec<A, N>
where
A: PartialEq<B>,
{
fn eq(&self, other: &&[B]) -> bool {
<[A]>::eq(self, &other[..])
}
}
impl<A, B, const N: usize> PartialEq<Vec<A, N>> for &[B]
where
A: PartialEq<B>,
{
fn eq(&self, other: &Vec<A, N>) -> bool {
<[A]>::eq(other, &self[..])
}
}
impl<A, B, const N: usize> PartialEq<&mut [B]> for Vec<A, N>
where
A: PartialEq<B>,
{
fn eq(&self, other: &&mut [B]) -> bool {
<[A]>::eq(self, &other[..])
}
}
impl<A, B, const N: usize> PartialEq<Vec<A, N>> for &mut [B]
where
A: PartialEq<B>,
{
fn eq(&self, other: &Vec<A, N>) -> bool {
<[A]>::eq(other, &self[..])
}
}
impl<A, B, const N: usize, const M: usize> PartialEq<[B; M]> for Vec<A, N>
where
A: PartialEq<B>,
{
fn eq(&self, other: &[B; M]) -> bool {
<[A]>::eq(self, &other[..])
}
}
impl<A, B, const N: usize, const M: usize> PartialEq<Vec<A, N>> for [B; M]
where
A: PartialEq<B>,
{
fn eq(&self, other: &Vec<A, N>) -> bool {
<[A]>::eq(other, &self[..])
}
}
impl<A, B, const N: usize, const M: usize> PartialEq<&[B; M]> for Vec<A, N>
where
A: PartialEq<B>,
{
fn eq(&self, other: &&[B; M]) -> bool {
<[A]>::eq(self, &other[..])
}
}
impl<A, B, const N: usize, const M: usize> PartialEq<Vec<A, N>> for &[B; M]
where
A: PartialEq<B>,
{
fn eq(&self, other: &Vec<A, N>) -> bool {
<[A]>::eq(other, &self[..])
}
}
impl<T, const N: usize> Eq for Vec<T, N> where T: Eq {}
impl<T, const N1: usize, const N2: usize> PartialOrd<Vec<T, N2>> for Vec<T, N1>
where
T: PartialOrd,
{
fn partial_cmp(&self, other: &Vec<T, N2>) -> Option<Ordering> {
PartialOrd::partial_cmp(&**self, &**other)
}
}
impl<T, const N: usize> Ord for Vec<T, N>
where
T: Ord,
{
#[inline]
fn cmp(&self, other: &Self) -> Ordering {
Ord::cmp(&**self, &**other)
}
}
impl<T, const N: usize> ops::Deref for Vec<T, N> {
type Target = [T];
fn deref(&self) -> &[T] {
self.as_slice()
}
}
impl<T, const N: usize> ops::DerefMut for Vec<T, N> {
fn deref_mut(&mut self) -> &mut [T] {
self.as_mut_slice()
}
}
impl<T, const N: usize> AsRef<Vec<T, N>> for Vec<T, N> {
#[inline]
fn as_ref(&self) -> &Self {
self
}
}
impl<T, const N: usize> AsMut<Vec<T, N>> for Vec<T, N> {
#[inline]
fn as_mut(&mut self) -> &mut Self {
self
}
}
impl<T, const N: usize> AsRef<[T]> for Vec<T, N> {
#[inline]
fn as_ref(&self) -> &[T] {
self
}
}
impl<T, const N: usize> AsMut<[T]> for Vec<T, N> {
#[inline]
fn as_mut(&mut self) -> &mut [T] {
self
}
}
impl<T, const N: usize> Clone for Vec<T, N>
where
T: Clone,
{
fn clone(&self) -> Self {
self.clone()
}
}
#[cfg(test)]
mod tests {
use crate::Vec;
use core::fmt::Write;
#[test]
fn static_new() {
static mut _V: Vec<i32, 4> = Vec::new();
}
#[test]
fn stack_new() {
let mut _v: Vec<i32, 4> = Vec::new();
}
#[test]
fn is_full_empty() {
let mut v: Vec<i32, 4> = Vec::new();
assert!(v.is_empty());
assert!(!v.is_full());
v.push(1).unwrap();
assert!(!v.is_empty());
assert!(!v.is_full());
v.push(1).unwrap();
assert!(!v.is_empty());
assert!(!v.is_full());
v.push(1).unwrap();
assert!(!v.is_empty());
assert!(!v.is_full());
v.push(1).unwrap();
assert!(!v.is_empty());
assert!(v.is_full());
}
#[test]
fn drop() {
droppable!();
{
let mut v: Vec<Droppable, 2> = Vec::new();
v.push(Droppable::new()).ok().unwrap();
v.push(Droppable::new()).ok().unwrap();
v.pop().unwrap();
}
assert_eq!(Droppable::count(), 0);
{
let mut v: Vec<Droppable, 2> = Vec::new();
v.push(Droppable::new()).ok().unwrap();
v.push(Droppable::new()).ok().unwrap();
}
assert_eq!(Droppable::count(), 0);
}
#[test]
fn eq() {
let mut xs: Vec<i32, 4> = Vec::new();
let mut ys: Vec<i32, 8> = Vec::new();
assert_eq!(xs, ys);
xs.push(1).unwrap();
ys.push(1).unwrap();
assert_eq!(xs, ys);
}
#[test]
fn cmp() {
let mut xs: Vec<i32, 4> = Vec::new();
let mut ys: Vec<i32, 4> = Vec::new();
assert_eq!(xs, ys);
xs.push(1).unwrap();
ys.push(2).unwrap();
assert!(xs < ys);
}
#[test]
fn cmp_heterogenous_size() {
let mut xs: Vec<i32, 4> = Vec::new();
let mut ys: Vec<i32, 8> = Vec::new();
assert_eq!(xs, ys);
xs.push(1).unwrap();
ys.push(2).unwrap();
assert!(xs < ys);
}
#[test]
fn cmp_with_arrays_and_slices() {
let mut xs: Vec<i32, 12> = Vec::new();
xs.push(1).unwrap();
let array = [1];
assert_eq!(xs, array);
assert_eq!(array, xs);
assert_eq!(xs, array.as_slice());
assert_eq!(array.as_slice(), xs);
assert_eq!(xs, &array);
assert_eq!(&array, xs);
let longer_array = [1; 20];
assert_ne!(xs, longer_array);
assert_ne!(longer_array, xs);
}
#[test]
fn full() {
let mut v: Vec<i32, 4> = Vec::new();
v.push(0).unwrap();
v.push(1).unwrap();
v.push(2).unwrap();
v.push(3).unwrap();
assert!(v.push(4).is_err());
}
#[test]
fn iter() {
let mut v: Vec<i32, 4> = Vec::new();
v.push(0).unwrap();
v.push(1).unwrap();
v.push(2).unwrap();
v.push(3).unwrap();
let mut items = v.iter();
assert_eq!(items.next(), Some(&0));
assert_eq!(items.next(), Some(&1));
assert_eq!(items.next(), Some(&2));
assert_eq!(items.next(), Some(&3));
assert_eq!(items.next(), None);
}
#[test]
fn iter_mut() {
let mut v: Vec<i32, 4> = Vec::new();
v.push(0).unwrap();
v.push(1).unwrap();
v.push(2).unwrap();
v.push(3).unwrap();
let mut items = v.iter_mut();
assert_eq!(items.next(), Some(&mut 0));
assert_eq!(items.next(), Some(&mut 1));
assert_eq!(items.next(), Some(&mut 2));
assert_eq!(items.next(), Some(&mut 3));
assert_eq!(items.next(), None);
}
#[test]
fn collect_from_iter() {
let slice = &[1, 2, 3];
let vec: Vec<i32, 4> = slice.iter().cloned().collect();
assert_eq!(&vec, slice);
}
#[test]
#[should_panic]
fn collect_from_iter_overfull() {
let slice = &[1, 2, 3];
let _vec = slice.iter().cloned().collect::<Vec<_, 2>>();
}
#[test]
fn iter_move() {
let mut v: Vec<i32, 4> = Vec::new();
v.push(0).unwrap();
v.push(1).unwrap();
v.push(2).unwrap();
v.push(3).unwrap();
let mut items = v.into_iter();
assert_eq!(items.next(), Some(0));
assert_eq!(items.next(), Some(1));
assert_eq!(items.next(), Some(2));
assert_eq!(items.next(), Some(3));
assert_eq!(items.next(), None);
}
#[test]
fn iter_move_drop() {
droppable!();
{
let mut vec: Vec<Droppable, 2> = Vec::new();
vec.push(Droppable::new()).ok().unwrap();
vec.push(Droppable::new()).ok().unwrap();
let mut items = vec.into_iter();
let _ = items.next();
let _ = items.next();
}
assert_eq!(Droppable::count(), 0);
{
let mut vec: Vec<Droppable, 2> = Vec::new();
vec.push(Droppable::new()).ok().unwrap();
vec.push(Droppable::new()).ok().unwrap();
let _items = vec.into_iter();
}
assert_eq!(Droppable::count(), 0);
{
let mut vec: Vec<Droppable, 2> = Vec::new();
vec.push(Droppable::new()).ok().unwrap();
vec.push(Droppable::new()).ok().unwrap();
let mut items = vec.into_iter();
let _ = items.next(); }
assert_eq!(Droppable::count(), 0);
}
#[test]
fn push_and_pop() {
let mut v: Vec<i32, 4> = Vec::new();
assert_eq!(v.len(), 0);
assert_eq!(v.pop(), None);
assert_eq!(v.len(), 0);
v.push(0).unwrap();
assert_eq!(v.len(), 1);
assert_eq!(v.pop(), Some(0));
assert_eq!(v.len(), 0);
assert_eq!(v.pop(), None);
assert_eq!(v.len(), 0);
}
#[test]
fn resize_size_limit() {
let mut v: Vec<u8, 4> = Vec::new();
v.resize(0, 0).unwrap();
v.resize(4, 0).unwrap();
v.resize(5, 0).err().expect("full");
}
#[test]
fn resize_length_cases() {
let mut v: Vec<u8, 4> = Vec::new();
assert_eq!(v.len(), 0);
v.resize(1, 0).unwrap();
assert_eq!(v.len(), 1);
v.resize(3, 0).unwrap();
assert_eq!(v.len(), 3);
v.resize(3, 0).unwrap();
assert_eq!(v.len(), 3);
v.resize(2, 0).unwrap();
assert_eq!(v.len(), 2);
v.resize(0, 0).unwrap();
assert_eq!(v.len(), 0);
}
#[test]
fn resize_contents() {
let mut v: Vec<u8, 4> = Vec::new();
v.resize(1, 17).unwrap();
assert_eq!(v[0], 17);
v.resize(2, 18).unwrap();
assert_eq!(v[0], 17);
assert_eq!(v[1], 18);
v.resize(2, 0).unwrap();
assert_eq!(v[0], 17);
assert_eq!(v[1], 18);
v.resize(1, 0).unwrap();
assert_eq!(v[0], 17);
}
#[test]
fn resize_default() {
let mut v: Vec<u8, 4> = Vec::new();
v.resize_default(1).unwrap();
assert_eq!(v[0], 0);
}
#[test]
fn write() {
let mut v: Vec<u8, 4> = Vec::new();
write!(v, "{:x}", 1234).unwrap();
assert_eq!(&v[..], b"4d2");
}
#[test]
fn extend_from_slice() {
let mut v: Vec<u8, 4> = Vec::new();
assert_eq!(v.len(), 0);
v.extend_from_slice(&[1, 2]).unwrap();
assert_eq!(v.len(), 2);
assert_eq!(v.as_slice(), &[1, 2]);
v.extend_from_slice(&[3]).unwrap();
assert_eq!(v.len(), 3);
assert_eq!(v.as_slice(), &[1, 2, 3]);
assert!(v.extend_from_slice(&[4, 5]).is_err());
assert_eq!(v.len(), 3);
assert_eq!(v.as_slice(), &[1, 2, 3]);
}
#[test]
fn from_slice() {
let v: Vec<u8, 4> = Vec::from_slice(&[1, 2, 3]).unwrap();
assert_eq!(v.len(), 3);
assert_eq!(v.as_slice(), &[1, 2, 3]);
assert!(Vec::<u8, 2>::from_slice(&[1, 2, 3]).is_err());
}
#[test]
fn starts_with() {
let v: Vec<_, 8> = Vec::from_slice(b"ab").unwrap();
assert!(v.starts_with(&[]));
assert!(v.starts_with(b""));
assert!(v.starts_with(b"a"));
assert!(v.starts_with(b"ab"));
assert!(!v.starts_with(b"abc"));
assert!(!v.starts_with(b"ba"));
assert!(!v.starts_with(b"b"));
}
#[test]
fn ends_with() {
let v: Vec<_, 8> = Vec::from_slice(b"ab").unwrap();
assert!(v.ends_with(&[]));
assert!(v.ends_with(b""));
assert!(v.ends_with(b"b"));
assert!(v.ends_with(b"ab"));
assert!(!v.ends_with(b"abc"));
assert!(!v.ends_with(b"ba"));
assert!(!v.ends_with(b"a"));
}
#[test]
fn zero_capacity() {
let mut v: Vec<u8, 0> = Vec::new();
assert_eq!(v.capacity(), 0);
assert!(v.push(1).is_err());
assert_eq!(v.len(), 0);
assert_eq!(v.pop(), None);
assert_eq!(v.as_slice(), &[]);
assert!(v.is_empty());
assert!(v.is_full());
}
}