core/array/mod.rs
1//! Utilities for the array primitive type.
2//!
3//! *[See also the array primitive type](array).*
4
5#![stable(feature = "core_array", since = "1.35.0")]
6
7use crate::borrow::{Borrow, BorrowMut};
8use crate::clone::TrivialClone;
9use crate::cmp::Ordering;
10use crate::convert::Infallible;
11use crate::error::Error;
12use crate::hash::{self, Hash};
13use crate::intrinsics::transmute_unchecked;
14use crate::iter::{TrustedLen, repeat_n};
15use crate::marker::Destruct;
16use crate::mem::{self, ManuallyDrop, MaybeUninit};
17use crate::ops::{
18 ChangeOutputType, ControlFlow, FromResidual, Index, IndexMut, NeverShortCircuit, Residual, Try,
19};
20use crate::ptr::{null, null_mut};
21use crate::slice::{Iter, IterMut};
22use crate::{fmt, ptr};
23
24mod ascii;
25mod drain;
26mod equality;
27mod iter;
28
29#[stable(feature = "array_value_iter", since = "1.51.0")]
30pub use iter::IntoIter;
31
32/// Creates an array of type `[T; N]` by repeatedly cloning a value.
33///
34/// This is the same as `[val; N]`, but it also works for types that do not
35/// implement [`Copy`].
36///
37/// The provided value will be used as an element of the resulting array and
38/// will be cloned N - 1 times to fill up the rest. If N is zero, the value
39/// will be dropped.
40///
41/// # Example
42///
43/// Creating multiple copies of a `String`:
44/// ```rust
45/// use std::array;
46///
47/// let string = "Hello there!".to_string();
48/// let strings = array::repeat(string);
49/// assert_eq!(strings, ["Hello there!", "Hello there!"]);
50/// ```
51#[inline]
52#[must_use = "cloning is often expensive and is not expected to have side effects"]
53#[stable(feature = "array_repeat", since = "1.91.0")]
54pub fn repeat<T: Clone, const N: usize>(val: T) -> [T; N] {
55 let mut iter = repeat_n(val, N);
56 // SAFETY: Unless a panic occurs, from_fn will call the closure N times,
57 // and repeat_n's next() will return Some for N times.
58 from_fn(move |_| unsafe { iter.next().unwrap_unchecked() })
59}
60
61/// Creates an array where each element is produced by calling `f` with
62/// that element's index while walking forward through the array.
63///
64/// This is essentially the same as writing
65/// ```text
66/// [f(0), f(1), f(2), …, f(N - 2), f(N - 1)]
67/// ```
68/// and is similar to `(0..i).map(f)`, just for arrays not iterators.
69///
70/// If `N == 0`, this produces an empty array without ever calling `f`.
71///
72/// # Example
73///
74/// ```rust
75/// // type inference is helping us here, the way `from_fn` knows how many
76/// // elements to produce is the length of array down there: only arrays of
77/// // equal lengths can be compared, so the const generic parameter `N` is
78/// // inferred to be 5, thus creating array of 5 elements.
79///
80/// let array = core::array::from_fn(|i| i);
81/// // indexes are: 0 1 2 3 4
82/// assert_eq!(array, [0, 1, 2, 3, 4]);
83///
84/// let array2: [usize; 8] = core::array::from_fn(|i| i * 2);
85/// // indexes are: 0 1 2 3 4 5 6 7
86/// assert_eq!(array2, [0, 2, 4, 6, 8, 10, 12, 14]);
87///
88/// let bool_arr = core::array::from_fn::<_, 5, _>(|i| i % 2 == 0);
89/// // indexes are: 0 1 2 3 4
90/// assert_eq!(bool_arr, [true, false, true, false, true]);
91/// ```
92///
93/// You can also capture things, for example to create an array full of clones
94/// where you can't just use `[item; N]` because it's not `Copy`:
95/// ```
96/// let my_string: [String; 2] = std::array::from_fn(|i| format!("Hello {i}"));
97/// assert_eq!(my_string, ["Hello 0", "Hello 1"]);
98/// ```
99///
100/// The array is generated in ascending index order, starting from the front
101/// and going towards the back, so you can use closures with mutable state:
102/// ```
103/// let mut state = 1;
104/// let a = std::array::from_fn(|_| { let x = state; state *= 2; x });
105/// assert_eq!(a, [1, 2, 4, 8, 16, 32]);
106/// ```
107#[inline]
108#[stable(feature = "array_from_fn", since = "1.63.0")]
109#[rustc_const_unstable(feature = "const_array", issue = "147606")]
110pub const fn from_fn<T: [const] Destruct, const N: usize, F>(f: F) -> [T; N]
111where
112 F: [const] FnMut(usize) -> T + [const] Destruct,
113{
114 try_from_fn(NeverShortCircuit::wrap_mut_1(f)).0
115}
116
117/// Creates an array `[T; N]` where each fallible array element `T` is returned by the `cb` call.
118/// Unlike [`from_fn`], where the element creation can't fail, this version will return an error
119/// if any element creation was unsuccessful.
120///
121/// The return type of this function depends on the return type of the closure.
122/// If you return `Result<T, E>` from the closure, you'll get a `Result<[T; N], E>`.
123/// If you return `Option<T>` from the closure, you'll get an `Option<[T; N]>`.
124///
125/// # Arguments
126///
127/// * `cb`: Callback where the passed argument is the current array index.
128///
129/// # Example
130///
131/// ```rust
132/// #![feature(array_try_from_fn)]
133///
134/// let array: Result<[u8; 5], _> = std::array::try_from_fn(|i| i.try_into());
135/// assert_eq!(array, Ok([0, 1, 2, 3, 4]));
136///
137/// let array: Result<[i8; 200], _> = std::array::try_from_fn(|i| i.try_into());
138/// assert!(array.is_err());
139///
140/// let array: Option<[_; 4]> = std::array::try_from_fn(|i| i.checked_add(100));
141/// assert_eq!(array, Some([100, 101, 102, 103]));
142///
143/// let array: Option<[_; 4]> = std::array::try_from_fn(|i| i.checked_sub(100));
144/// assert_eq!(array, None);
145/// ```
146#[inline]
147#[unstable(feature = "array_try_from_fn", issue = "89379")]
148#[rustc_const_unstable(feature = "array_try_from_fn", issue = "89379")]
149pub const fn try_from_fn<R, const N: usize, F>(cb: F) -> ChangeOutputType<R, [R::Output; N]>
150where
151 R: [const] Try<Residual: [const] Residual<[R::Output; N]>, Output: [const] Destruct>,
152 F: [const] FnMut(usize) -> R + [const] Destruct,
153{
154 let mut array = [const { MaybeUninit::uninit() }; N];
155 match try_from_fn_erased(&mut array, cb) {
156 ControlFlow::Break(r) => FromResidual::from_residual(r),
157 ControlFlow::Continue(()) => {
158 // SAFETY: All elements of the array were populated.
159 try { unsafe { MaybeUninit::array_assume_init(array) } }
160 }
161 }
162}
163
164/// Converts a reference to `T` into a reference to an array of length 1 (without copying).
165#[stable(feature = "array_from_ref", since = "1.53.0")]
166#[rustc_const_stable(feature = "const_array_from_ref_shared", since = "1.63.0")]
167pub const fn from_ref<T>(s: &T) -> &[T; 1] {
168 // SAFETY: Converting `&T` to `&[T; 1]` is sound.
169 unsafe { &*(s as *const T).cast::<[T; 1]>() }
170}
171
172/// Converts a mutable reference to `T` into a mutable reference to an array of length 1 (without copying).
173#[stable(feature = "array_from_ref", since = "1.53.0")]
174#[rustc_const_stable(feature = "const_array_from_ref", since = "1.83.0")]
175pub const fn from_mut<T>(s: &mut T) -> &mut [T; 1] {
176 // SAFETY: Converting `&mut T` to `&mut [T; 1]` is sound.
177 unsafe { &mut *(s as *mut T).cast::<[T; 1]>() }
178}
179
180/// The error type returned when a conversion from a slice to an array fails.
181#[stable(feature = "try_from", since = "1.34.0")]
182#[derive(Debug, Copy, Clone)]
183pub struct TryFromSliceError(());
184
185#[stable(feature = "core_array", since = "1.35.0")]
186impl fmt::Display for TryFromSliceError {
187 #[inline]
188 fn fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result {
189 "could not convert slice to array".fmt(f)
190 }
191}
192
193#[stable(feature = "try_from", since = "1.34.0")]
194impl Error for TryFromSliceError {}
195
196#[stable(feature = "try_from_slice_error", since = "1.36.0")]
197#[rustc_const_unstable(feature = "const_convert", issue = "143773")]
198const impl From<Infallible> for TryFromSliceError {
199 fn from(x: Infallible) -> TryFromSliceError {
200 match x {}
201 }
202}
203
204#[stable(feature = "rust1", since = "1.0.0")]
205#[rustc_const_unstable(feature = "const_convert", issue = "143773")]
206const impl<T, const N: usize> AsRef<[T]> for [T; N] {
207 #[inline]
208 fn as_ref(&self) -> &[T] {
209 &self[..]
210 }
211}
212
213#[stable(feature = "rust1", since = "1.0.0")]
214#[rustc_const_unstable(feature = "const_convert", issue = "143773")]
215const impl<T, const N: usize> AsMut<[T]> for [T; N] {
216 #[inline]
217 fn as_mut(&mut self) -> &mut [T] {
218 &mut self[..]
219 }
220}
221
222#[stable(feature = "array_borrow", since = "1.4.0")]
223#[rustc_const_unstable(feature = "const_convert", issue = "143773")]
224const impl<T, const N: usize> Borrow<[T]> for [T; N] {
225 fn borrow(&self) -> &[T] {
226 self
227 }
228}
229
230#[stable(feature = "array_borrow", since = "1.4.0")]
231#[rustc_const_unstable(feature = "const_convert", issue = "143773")]
232const impl<T, const N: usize> BorrowMut<[T]> for [T; N] {
233 fn borrow_mut(&mut self) -> &mut [T] {
234 self
235 }
236}
237
238/// Tries to create an array `[T; N]` by copying from a slice `&[T]`.
239/// Succeeds if `slice.len() == N`.
240///
241/// ```
242/// let bytes: [u8; 3] = [1, 0, 2];
243///
244/// let bytes_head: [u8; 2] = <[u8; 2]>::try_from(&bytes[0..2]).unwrap();
245/// assert_eq!(1, u16::from_le_bytes(bytes_head));
246///
247/// let bytes_tail: [u8; 2] = bytes[1..3].try_into().unwrap();
248/// assert_eq!(512, u16::from_le_bytes(bytes_tail));
249/// ```
250#[stable(feature = "try_from", since = "1.34.0")]
251#[rustc_const_unstable(feature = "const_convert", issue = "143773")]
252const impl<T, const N: usize> TryFrom<&[T]> for [T; N]
253where
254 T: Copy,
255{
256 type Error = TryFromSliceError;
257
258 #[inline]
259 fn try_from(slice: &[T]) -> Result<[T; N], TryFromSliceError> {
260 <&Self>::try_from(slice).copied()
261 }
262}
263
264/// Tries to create an array `[T; N]` by copying from a mutable slice `&mut [T]`.
265/// Succeeds if `slice.len() == N`.
266///
267/// ```
268/// let mut bytes: [u8; 3] = [1, 0, 2];
269///
270/// let bytes_head: [u8; 2] = <[u8; 2]>::try_from(&mut bytes[0..2]).unwrap();
271/// assert_eq!(1, u16::from_le_bytes(bytes_head));
272///
273/// let bytes_tail: [u8; 2] = (&mut bytes[1..3]).try_into().unwrap();
274/// assert_eq!(512, u16::from_le_bytes(bytes_tail));
275/// ```
276#[stable(feature = "try_from_mut_slice_to_array", since = "1.59.0")]
277#[rustc_const_unstable(feature = "const_convert", issue = "143773")]
278const impl<T, const N: usize> TryFrom<&mut [T]> for [T; N]
279where
280 T: Copy,
281{
282 type Error = TryFromSliceError;
283
284 #[inline]
285 fn try_from(slice: &mut [T]) -> Result<[T; N], TryFromSliceError> {
286 <Self>::try_from(&*slice)
287 }
288}
289
290/// Tries to create an array ref `&[T; N]` from a slice ref `&[T]`. Succeeds if
291/// `slice.len() == N`.
292///
293/// ```
294/// let bytes: [u8; 3] = [1, 0, 2];
295///
296/// let bytes_head: &[u8; 2] = <&[u8; 2]>::try_from(&bytes[0..2]).unwrap();
297/// assert_eq!(1, u16::from_le_bytes(*bytes_head));
298///
299/// let bytes_tail: &[u8; 2] = bytes[1..3].try_into().unwrap();
300/// assert_eq!(512, u16::from_le_bytes(*bytes_tail));
301/// ```
302#[stable(feature = "try_from", since = "1.34.0")]
303#[rustc_const_unstable(feature = "const_convert", issue = "143773")]
304const impl<'a, T, const N: usize> TryFrom<&'a [T]> for &'a [T; N] {
305 type Error = TryFromSliceError;
306
307 #[inline]
308 fn try_from(slice: &'a [T]) -> Result<&'a [T; N], TryFromSliceError> {
309 slice.as_array().ok_or(TryFromSliceError(()))
310 }
311}
312
313/// Tries to create a mutable array ref `&mut [T; N]` from a mutable slice ref
314/// `&mut [T]`. Succeeds if `slice.len() == N`.
315///
316/// ```
317/// let mut bytes: [u8; 3] = [1, 0, 2];
318///
319/// let bytes_head: &mut [u8; 2] = <&mut [u8; 2]>::try_from(&mut bytes[0..2]).unwrap();
320/// assert_eq!(1, u16::from_le_bytes(*bytes_head));
321///
322/// let bytes_tail: &mut [u8; 2] = (&mut bytes[1..3]).try_into().unwrap();
323/// assert_eq!(512, u16::from_le_bytes(*bytes_tail));
324/// ```
325#[stable(feature = "try_from", since = "1.34.0")]
326#[rustc_const_unstable(feature = "const_convert", issue = "143773")]
327const impl<'a, T, const N: usize> TryFrom<&'a mut [T]> for &'a mut [T; N] {
328 type Error = TryFromSliceError;
329
330 #[inline]
331 fn try_from(slice: &'a mut [T]) -> Result<&'a mut [T; N], TryFromSliceError> {
332 slice.as_mut_array().ok_or(TryFromSliceError(()))
333 }
334}
335
336/// The hash of an array is the same as that of the corresponding slice,
337/// as required by the `Borrow` implementation.
338///
339/// ```
340/// use std::hash::BuildHasher;
341///
342/// let b = std::hash::RandomState::new();
343/// let a: [u8; 3] = [0xa8, 0x3c, 0x09];
344/// let s: &[u8] = &[0xa8, 0x3c, 0x09];
345/// assert_eq!(b.hash_one(a), b.hash_one(s));
346/// ```
347#[stable(feature = "rust1", since = "1.0.0")]
348impl<T: Hash, const N: usize> Hash for [T; N] {
349 fn hash<H: hash::Hasher>(&self, state: &mut H) {
350 Hash::hash(&self[..], state)
351 }
352}
353
354#[stable(feature = "rust1", since = "1.0.0")]
355impl<T: fmt::Debug, const N: usize> fmt::Debug for [T; N] {
356 fn fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result {
357 fmt::Debug::fmt(&&self[..], f)
358 }
359}
360
361#[stable(feature = "rust1", since = "1.0.0")]
362impl<'a, T, const N: usize> IntoIterator for &'a [T; N] {
363 type Item = &'a T;
364 type IntoIter = Iter<'a, T>;
365
366 fn into_iter(self) -> Iter<'a, T> {
367 self.iter()
368 }
369}
370
371#[stable(feature = "rust1", since = "1.0.0")]
372impl<'a, T, const N: usize> IntoIterator for &'a mut [T; N] {
373 type Item = &'a mut T;
374 type IntoIter = IterMut<'a, T>;
375
376 fn into_iter(self) -> IterMut<'a, T> {
377 self.iter_mut()
378 }
379}
380
381#[stable(feature = "index_trait_on_arrays", since = "1.50.0")]
382#[rustc_const_unstable(feature = "const_index", issue = "143775")]
383const impl<T, I, const N: usize> Index<I> for [T; N]
384where
385 [T]: [const] Index<I>,
386{
387 type Output = <[T] as Index<I>>::Output;
388
389 #[inline]
390 fn index(&self, index: I) -> &Self::Output {
391 Index::index(self as &[T], index)
392 }
393}
394
395#[stable(feature = "index_trait_on_arrays", since = "1.50.0")]
396#[rustc_const_unstable(feature = "const_index", issue = "143775")]
397const impl<T, I, const N: usize> IndexMut<I> for [T; N]
398where
399 [T]: [const] IndexMut<I>,
400{
401 #[inline]
402 fn index_mut(&mut self, index: I) -> &mut Self::Output {
403 IndexMut::index_mut(self as &mut [T], index)
404 }
405}
406
407/// Implements comparison of arrays [lexicographically](Ord#lexicographical-comparison).
408#[stable(feature = "rust1", since = "1.0.0")]
409#[rustc_const_unstable(feature = "const_cmp", issue = "143800")]
410const impl<T: [const] PartialOrd, const N: usize> PartialOrd for [T; N] {
411 #[inline]
412 fn partial_cmp(&self, other: &[T; N]) -> Option<Ordering> {
413 <[T] as PartialOrd>::partial_cmp(self, other)
414 }
415
416 #[inline]
417 fn lt(&self, other: &[T; N]) -> bool {
418 <[T] as PartialOrd>::lt(self, other)
419 }
420 #[inline]
421 fn le(&self, other: &[T; N]) -> bool {
422 <[T] as PartialOrd>::le(self, other)
423 }
424 #[inline]
425 fn ge(&self, other: &[T; N]) -> bool {
426 <[T] as PartialOrd>::ge(self, other)
427 }
428 #[inline]
429 fn gt(&self, other: &[T; N]) -> bool {
430 <[T] as PartialOrd>::gt(self, other)
431 }
432
433 #[inline]
434 fn __chaining_lt(&self, other: &[T; N]) -> ControlFlow<bool> {
435 <[T] as PartialOrd>::__chaining_lt(self, other)
436 }
437 #[inline]
438 fn __chaining_le(&self, other: &[T; N]) -> ControlFlow<bool> {
439 <[T] as PartialOrd>::__chaining_le(self, other)
440 }
441 #[inline]
442 fn __chaining_ge(&self, other: &[T; N]) -> ControlFlow<bool> {
443 <[T] as PartialOrd>::__chaining_ge(self, other)
444 }
445 #[inline]
446 fn __chaining_gt(&self, other: &[T; N]) -> ControlFlow<bool> {
447 <[T] as PartialOrd>::__chaining_gt(self, other)
448 }
449}
450
451/// Implements comparison of arrays [lexicographically](Ord#lexicographical-comparison).
452#[stable(feature = "rust1", since = "1.0.0")]
453#[rustc_const_unstable(feature = "const_cmp", issue = "143800")]
454const impl<T: [const] Ord, const N: usize> Ord for [T; N] {
455 #[inline]
456 fn cmp(&self, other: &[T; N]) -> Ordering {
457 Ord::cmp(&&self[..], &&other[..])
458 }
459}
460
461#[stable(feature = "copy_clone_array_lib", since = "1.58.0")]
462impl<T: Copy, const N: usize> Copy for [T; N] {}
463
464#[stable(feature = "copy_clone_array_lib", since = "1.58.0")]
465impl<T: Clone, const N: usize> Clone for [T; N] {
466 #[inline]
467 fn clone(&self) -> Self {
468 SpecArrayClone::clone(self)
469 }
470
471 #[inline]
472 fn clone_from(&mut self, other: &Self) {
473 self.clone_from_slice(other);
474 }
475}
476
477#[doc(hidden)]
478#[unstable(feature = "trivial_clone", issue = "none")]
479unsafe impl<T: TrivialClone, const N: usize> TrivialClone for [T; N] {}
480
481trait SpecArrayClone: Clone {
482 fn clone<const N: usize>(array: &[Self; N]) -> [Self; N];
483}
484
485impl<T: Clone> SpecArrayClone for T {
486 #[inline]
487 default fn clone<const N: usize>(array: &[T; N]) -> [T; N] {
488 let mut ptr: *const T = array.as_ptr();
489 // SAFETY: Unless a panic occurs, from_fn will call the closure N times,
490 // so our pointer arithmetic will be in bounds for the N-element array.
491 // This works even for ZSTs, since in that case, add() is a no-op.
492 from_fn(move |_| unsafe {
493 let old = ptr;
494 ptr = ptr.add(1);
495 (&*old).clone()
496 })
497 }
498}
499
500impl<T: TrivialClone> SpecArrayClone for T {
501 #[inline]
502 fn clone<const N: usize>(array: &[T; N]) -> [T; N] {
503 // SAFETY: `TrivialClone` implies that this is equivalent to calling
504 // `Clone` on every element.
505 unsafe { ptr::read(array) }
506 }
507}
508
509// The Default impls cannot be done with const generics because `[T; 0]` doesn't
510// require Default to be implemented, and having different impl blocks for
511// different numbers isn't supported yet.
512//
513// Trying to improve the `[T; 0]` situation has proven to be difficult.
514// Please see these issues for more context on past attempts and crater runs:
515// - https://github.com/rust-lang/rust/issues/61415
516// - https://github.com/rust-lang/rust/pull/145457
517
518macro_rules! array_impl_default {
519 {$n:expr, $t:ident $($ts:ident)*} => {
520 #[stable(since = "1.4.0", feature = "array_default")]
521 impl<T> Default for [T; $n] where T: Default {
522 fn default() -> [T; $n] {
523 [$t::default(), $($ts::default()),*]
524 }
525 }
526 array_impl_default!{($n - 1), $($ts)*}
527 };
528 {$n:expr,} => {
529 #[stable(since = "1.4.0", feature = "array_default")]
530 impl<T> Default for [T; $n] {
531 fn default() -> [T; $n] { [] }
532 }
533 };
534}
535
536array_impl_default! {32, T T T T T T T T T T T T T T T T T T T T T T T T T T T T T T T T}
537
538impl<T, const N: usize> [T; N] {
539 /// Returns an array of the same size as `self`, with function `f` applied to each element
540 /// in order.
541 ///
542 /// If you don't necessarily need a new fixed-size array, consider using
543 /// [`Iterator::map`] instead.
544 ///
545 ///
546 /// # Note on performance and stack usage
547 ///
548 /// Note that this method is *eager*. It evaluates `f` all `N` times before
549 /// returning the new array.
550 ///
551 /// That means that `arr.map(f).map(g)` is, in general, *not* equivalent to
552 /// `array.map(|x| g(f(x)))`, as the former calls `f` 4 times then `g` 4 times,
553 /// whereas the latter interleaves the calls (`fgfgfgfg`).
554 ///
555 /// A consequence of this is that it can have fairly-high stack usage, especially
556 /// in debug mode or for long arrays. The backend may be able to optimize it
557 /// away, but especially for complicated mappings it might not be able to.
558 ///
559 /// If you're doing a one-step `map` and really want an array as the result,
560 /// then absolutely use this method. Its implementation uses a bunch of tricks
561 /// to help the optimizer handle it well. Particularly for simple arrays,
562 /// like `[u8; 3]` or `[f32; 4]`, there's nothing to be concerned about.
563 ///
564 /// However, if you don't actually need an *array* of the results specifically,
565 /// just to process them, then you likely want [`Iterator::map`] instead.
566 ///
567 /// For example, rather than doing an array-to-array map of all the elements
568 /// in the array up-front and only iterating after that completes,
569 ///
570 /// ```
571 /// # let my_array = [1, 2, 3];
572 /// # let f = |x: i32| x + 1;
573 /// for x in my_array.map(f) {
574 /// // ...
575 /// }
576 /// ```
577 ///
578 /// It's often better to use an iterator along the lines of
579 ///
580 /// ```
581 /// # let my_array = [1, 2, 3];
582 /// # let f = |x: i32| x + 1;
583 /// for x in my_array.into_iter().map(f) {
584 /// // ...
585 /// }
586 /// ```
587 ///
588 /// as that's more likely to avoid large temporaries.
589 ///
590 ///
591 /// # Examples
592 ///
593 /// ```
594 /// let x = [1, 2, 3];
595 /// let y = x.map(|v| v + 1);
596 /// assert_eq!(y, [2, 3, 4]);
597 ///
598 /// let x = [1, 2, 3];
599 /// let mut temp = 0;
600 /// let y = x.map(|v| { temp += 1; v * temp });
601 /// assert_eq!(y, [1, 4, 9]);
602 ///
603 /// let x = ["Ferris", "Bueller's", "Day", "Off"];
604 /// let y = x.map(|v| v.len());
605 /// assert_eq!(y, [6, 9, 3, 3]);
606 /// ```
607 #[must_use]
608 #[stable(feature = "array_map", since = "1.55.0")]
609 #[rustc_const_unstable(feature = "const_array", issue = "147606")]
610 pub const fn map<F, U>(self, f: F) -> [U; N]
611 where
612 F: [const] FnMut(T) -> U + [const] Destruct,
613 U: [const] Destruct,
614 T: [const] Destruct,
615 {
616 self.try_map(NeverShortCircuit::wrap_mut_1(f)).0
617 }
618
619 /// A fallible function `f` applied to each element on array `self` in order to
620 /// return an array the same size as `self` or the first error encountered.
621 ///
622 /// The return type of this function depends on the return type of the closure.
623 /// If you return `Result<T, E>` from the closure, you'll get a `Result<[T; N], E>`.
624 /// If you return `Option<T>` from the closure, you'll get an `Option<[T; N]>`.
625 ///
626 /// # Examples
627 ///
628 /// ```
629 /// #![feature(array_try_map)]
630 ///
631 /// let a = ["1", "2", "3"];
632 /// let b = a.try_map(|v| v.parse::<u32>()).unwrap().map(|v| v + 1);
633 /// assert_eq!(b, [2, 3, 4]);
634 ///
635 /// let a = ["1", "2a", "3"];
636 /// let b = a.try_map(|v| v.parse::<u32>());
637 /// assert!(b.is_err());
638 ///
639 /// use std::num::NonZero;
640 ///
641 /// let z = [1, 2, 0, 3, 4];
642 /// assert_eq!(z.try_map(NonZero::new), None);
643 ///
644 /// let a = [1, 2, 3];
645 /// let b = a.try_map(NonZero::new);
646 /// let c = b.map(|x| x.map(NonZero::get));
647 /// assert_eq!(c, Some(a));
648 /// ```
649 #[unstable(feature = "array_try_map", issue = "79711")]
650 #[rustc_const_unstable(feature = "array_try_map", issue = "79711")]
651 pub const fn try_map<R>(
652 self,
653 mut f: impl [const] FnMut(T) -> R + [const] Destruct,
654 ) -> ChangeOutputType<R, [R::Output; N]>
655 where
656 R: [const] Try<Residual: [const] Residual<[R::Output; N]>, Output: [const] Destruct>,
657 T: [const] Destruct,
658 {
659 let mut me = ManuallyDrop::new(self);
660 // SAFETY: try_from_fn calls `f` N times.
661 let mut f = unsafe { drain::Drain::new(&mut me, &mut f) };
662 try_from_fn(&mut f)
663 }
664
665 /// Returns a slice containing the entire array. Equivalent to `&s[..]`.
666 #[stable(feature = "array_as_slice", since = "1.57.0")]
667 #[rustc_const_stable(feature = "array_as_slice", since = "1.57.0")]
668 pub const fn as_slice(&self) -> &[T] {
669 self
670 }
671
672 /// Returns a mutable slice containing the entire array. Equivalent to
673 /// `&mut s[..]`.
674 #[stable(feature = "array_as_slice", since = "1.57.0")]
675 #[rustc_const_stable(feature = "const_array_as_mut_slice", since = "1.89.0")]
676 pub const fn as_mut_slice(&mut self) -> &mut [T] {
677 self
678 }
679
680 /// Borrows each element and returns an array of references with the same
681 /// size as `self`.
682 ///
683 ///
684 /// # Example
685 ///
686 /// ```
687 /// let floats = [3.1, 2.7, -1.0];
688 /// let float_refs: [&f64; 3] = floats.each_ref();
689 /// assert_eq!(float_refs, [&3.1, &2.7, &-1.0]);
690 /// ```
691 ///
692 /// This method is particularly useful if combined with other methods, like
693 /// [`map`](#method.map). This way, you can avoid moving the original
694 /// array if its elements are not [`Copy`].
695 ///
696 /// ```
697 /// let strings = ["Ferris".to_string(), "♥".to_string(), "Rust".to_string()];
698 /// let is_ascii = strings.each_ref().map(|s| s.is_ascii());
699 /// assert_eq!(is_ascii, [true, false, true]);
700 ///
701 /// // We can still access the original array: it has not been moved.
702 /// assert_eq!(strings.len(), 3);
703 /// ```
704 #[stable(feature = "array_methods", since = "1.77.0")]
705 #[rustc_const_stable(feature = "const_array_each_ref", since = "1.91.0")]
706 pub const fn each_ref(&self) -> [&T; N] {
707 let mut buf = [null::<T>(); N];
708
709 // FIXME(const_trait_impl): We would like to simply use iterators for this (as in the original implementation), but this is not allowed in constant expressions.
710 let mut i = 0;
711 while i < N {
712 buf[i] = &raw const self[i];
713
714 i += 1;
715 }
716
717 // SAFETY: `*const T` has the same layout as `&T`, and we've also initialised each pointer as a valid reference.
718 unsafe { transmute_unchecked(buf) }
719 }
720
721 /// Borrows each element mutably and returns an array of mutable references
722 /// with the same size as `self`.
723 ///
724 ///
725 /// # Example
726 ///
727 /// ```
728 ///
729 /// let mut floats = [3.1, 2.7, -1.0];
730 /// let float_refs: [&mut f64; 3] = floats.each_mut();
731 /// *float_refs[0] = 0.0;
732 /// assert_eq!(float_refs, [&mut 0.0, &mut 2.7, &mut -1.0]);
733 /// assert_eq!(floats, [0.0, 2.7, -1.0]);
734 /// ```
735 #[stable(feature = "array_methods", since = "1.77.0")]
736 #[rustc_const_stable(feature = "const_array_each_ref", since = "1.91.0")]
737 pub const fn each_mut(&mut self) -> [&mut T; N] {
738 let mut buf = [null_mut::<T>(); N];
739
740 // FIXME(const_trait_impl): We would like to simply use iterators for this (as in the original implementation), but this is not allowed in constant expressions.
741 let mut i = 0;
742 while i < N {
743 buf[i] = &raw mut self[i];
744
745 i += 1;
746 }
747
748 // SAFETY: `*mut T` has the same layout as `&mut T`, and we've also initialised each pointer as a valid reference.
749 unsafe { transmute_unchecked(buf) }
750 }
751
752 /// Divides one array reference into two at an index.
753 ///
754 /// The first will contain all indices from `[0, M)` (excluding
755 /// the index `M` itself) and the second will contain all
756 /// indices from `[M, N)` (excluding the index `N` itself).
757 ///
758 /// # Panics
759 ///
760 /// Panics if `M > N`.
761 ///
762 /// # Examples
763 ///
764 /// ```
765 /// #![feature(split_array)]
766 ///
767 /// let v = [1, 2, 3, 4, 5, 6];
768 ///
769 /// {
770 /// let (left, right) = v.split_array_ref::<0>();
771 /// assert_eq!(left, &[]);
772 /// assert_eq!(right, &[1, 2, 3, 4, 5, 6]);
773 /// }
774 ///
775 /// {
776 /// let (left, right) = v.split_array_ref::<2>();
777 /// assert_eq!(left, &[1, 2]);
778 /// assert_eq!(right, &[3, 4, 5, 6]);
779 /// }
780 ///
781 /// {
782 /// let (left, right) = v.split_array_ref::<6>();
783 /// assert_eq!(left, &[1, 2, 3, 4, 5, 6]);
784 /// assert_eq!(right, &[]);
785 /// }
786 /// ```
787 #[unstable(
788 feature = "split_array",
789 reason = "return type should have array as 2nd element",
790 issue = "90091"
791 )]
792 #[inline]
793 pub fn split_array_ref<const M: usize>(&self) -> (&[T; M], &[T]) {
794 self.split_first_chunk::<M>().unwrap()
795 }
796
797 /// Divides one mutable array reference into two at an index.
798 ///
799 /// The first will contain all indices from `[0, M)` (excluding
800 /// the index `M` itself) and the second will contain all
801 /// indices from `[M, N)` (excluding the index `N` itself).
802 ///
803 /// # Panics
804 ///
805 /// Panics if `M > N`.
806 ///
807 /// # Examples
808 ///
809 /// ```
810 /// #![feature(split_array)]
811 ///
812 /// let mut v = [1, 0, 3, 0, 5, 6];
813 /// let (left, right) = v.split_array_mut::<2>();
814 /// assert_eq!(left, &mut [1, 0][..]);
815 /// assert_eq!(right, &mut [3, 0, 5, 6]);
816 /// left[1] = 2;
817 /// right[1] = 4;
818 /// assert_eq!(v, [1, 2, 3, 4, 5, 6]);
819 /// ```
820 #[unstable(
821 feature = "split_array",
822 reason = "return type should have array as 2nd element",
823 issue = "90091"
824 )]
825 #[inline]
826 pub fn split_array_mut<const M: usize>(&mut self) -> (&mut [T; M], &mut [T]) {
827 self.split_first_chunk_mut::<M>().unwrap()
828 }
829
830 /// Divides one array reference into two at an index from the end.
831 ///
832 /// The first will contain all indices from `[0, N - M)` (excluding
833 /// the index `N - M` itself) and the second will contain all
834 /// indices from `[N - M, N)` (excluding the index `N` itself).
835 ///
836 /// # Panics
837 ///
838 /// Panics if `M > N`.
839 ///
840 /// # Examples
841 ///
842 /// ```
843 /// #![feature(split_array)]
844 ///
845 /// let v = [1, 2, 3, 4, 5, 6];
846 ///
847 /// {
848 /// let (left, right) = v.rsplit_array_ref::<0>();
849 /// assert_eq!(left, &[1, 2, 3, 4, 5, 6]);
850 /// assert_eq!(right, &[]);
851 /// }
852 ///
853 /// {
854 /// let (left, right) = v.rsplit_array_ref::<2>();
855 /// assert_eq!(left, &[1, 2, 3, 4]);
856 /// assert_eq!(right, &[5, 6]);
857 /// }
858 ///
859 /// {
860 /// let (left, right) = v.rsplit_array_ref::<6>();
861 /// assert_eq!(left, &[]);
862 /// assert_eq!(right, &[1, 2, 3, 4, 5, 6]);
863 /// }
864 /// ```
865 #[unstable(
866 feature = "split_array",
867 reason = "return type should have array as 2nd element",
868 issue = "90091"
869 )]
870 #[inline]
871 pub fn rsplit_array_ref<const M: usize>(&self) -> (&[T], &[T; M]) {
872 self.split_last_chunk::<M>().unwrap()
873 }
874
875 /// Divides one mutable array reference into two at an index from the end.
876 ///
877 /// The first will contain all indices from `[0, N - M)` (excluding
878 /// the index `N - M` itself) and the second will contain all
879 /// indices from `[N - M, N)` (excluding the index `N` itself).
880 ///
881 /// # Panics
882 ///
883 /// Panics if `M > N`.
884 ///
885 /// # Examples
886 ///
887 /// ```
888 /// #![feature(split_array)]
889 ///
890 /// let mut v = [1, 0, 3, 0, 5, 6];
891 /// let (left, right) = v.rsplit_array_mut::<4>();
892 /// assert_eq!(left, &mut [1, 0]);
893 /// assert_eq!(right, &mut [3, 0, 5, 6][..]);
894 /// left[1] = 2;
895 /// right[1] = 4;
896 /// assert_eq!(v, [1, 2, 3, 4, 5, 6]);
897 /// ```
898 #[unstable(
899 feature = "split_array",
900 reason = "return type should have array as 2nd element",
901 issue = "90091"
902 )]
903 #[inline]
904 pub fn rsplit_array_mut<const M: usize>(&mut self) -> (&mut [T], &mut [T; M]) {
905 self.split_last_chunk_mut::<M>().unwrap()
906 }
907}
908
909/// Version of [`try_from_fn`] using a passed-in slice in order to avoid
910/// needing to monomorphize for every array length.
911///
912/// This takes a generator rather than an iterator so that *at the type level*
913/// it never needs to worry about running out of items. When combined with
914/// an infallible `Try` type, that means the loop canonicalizes easily, allowing
915/// it to optimize well.
916///
917/// It would be *possible* to unify this and [`iter_next_chunk_erased`] into one
918/// function that does the union of both things, but last time it was that way
919/// it resulted in poor codegen from the "are there enough source items?" checks
920/// not optimizing away. So if you give it a shot, make sure to watch what
921/// happens in the codegen tests.
922#[inline]
923#[rustc_const_unstable(feature = "array_try_from_fn", issue = "89379")]
924const fn try_from_fn_erased<R: [const] Try<Output: [const] Destruct>>(
925 buffer: &mut [MaybeUninit<R::Output>],
926 mut generator: impl [const] FnMut(usize) -> R + [const] Destruct,
927) -> ControlFlow<R::Residual> {
928 let mut guard = Guard { array_mut: buffer, initialized: 0 };
929
930 while guard.initialized < guard.array_mut.len() {
931 let item = generator(guard.initialized).branch()?;
932
933 // SAFETY: The loop condition ensures we have space to push the item
934 unsafe { guard.push_unchecked(item) };
935 }
936
937 mem::forget(guard);
938 ControlFlow::Continue(())
939}
940
941/// Panic guard for incremental initialization of arrays.
942///
943/// Disarm the guard with `mem::forget` once the array has been initialized.
944///
945/// # Safety
946///
947/// All write accesses to this structure are unsafe and must maintain a correct
948/// count of `initialized` elements.
949///
950/// To minimize indirection, fields are still pub but callers should at least use
951/// `push_unchecked` to signal that something unsafe is going on.
952struct Guard<'a, T> {
953 /// The array to be initialized.
954 pub array_mut: &'a mut [MaybeUninit<T>],
955 /// The number of items that have been initialized so far.
956 pub initialized: usize,
957}
958
959impl<T> Guard<'_, T> {
960 /// Adds an item to the array and updates the initialized item counter.
961 ///
962 /// # Safety
963 ///
964 /// No more than N elements must be initialized.
965 #[inline]
966 #[rustc_const_unstable(feature = "array_try_from_fn", issue = "89379")]
967 pub(crate) const unsafe fn push_unchecked(&mut self, item: T) {
968 // SAFETY: If `initialized` was correct before and the caller does not
969 // invoke this method more than N times, then writes will be in-bounds
970 // and slots will not be initialized more than once.
971 unsafe {
972 self.array_mut.get_unchecked_mut(self.initialized).write(item);
973 self.initialized = self.initialized.unchecked_add(1);
974 }
975 }
976}
977
978#[rustc_const_unstable(feature = "array_try_from_fn", issue = "89379")]
979const impl<T: [const] Destruct> Drop for Guard<'_, T> {
980 #[inline]
981 fn drop(&mut self) {
982 debug_assert!(self.initialized <= self.array_mut.len());
983 // SAFETY: this slice will contain only initialized objects.
984 unsafe {
985 self.array_mut.get_unchecked_mut(..self.initialized).assume_init_drop();
986 }
987 }
988}
989
990/// Panic guard for incremental initialization of arrays from the back.
991///
992/// Elements of the array are populated starting from the end towards the beginning.
993/// Disarm the guard with `mem::forget` once the array has been fully initialized.
994///
995/// # Safety
996///
997/// All write accesses to this structure are unsafe and must maintain a correct
998/// count of `initialized` elements.
999struct GuardBack<'a, T> {
1000 /// The array to be initialized (will be filled from the end).
1001 pub array_mut: &'a mut [MaybeUninit<T>],
1002 /// The number of items that have been initialized so far.
1003 pub initialized: usize,
1004}
1005
1006impl<T> GuardBack<'_, T> {
1007 /// Adds an item to the array and updates the initialized item counter.
1008 ///
1009 /// # Safety
1010 ///
1011 /// No more than N elements must be initialized.
1012 #[inline]
1013 pub(crate) unsafe fn push_unchecked(&mut self, item: T) {
1014 // SAFETY: If `initialized` was correct before and the caller does not
1015 // invoke this method more than N times, then writes will be in-bounds
1016 // and slots will not be initialized more than once.
1017 unsafe {
1018 let offset = self.initialized.unchecked_add(1);
1019 let index = self.array_mut.len().unchecked_sub(offset);
1020 self.array_mut.get_unchecked_mut(index).write(item);
1021 self.initialized = offset;
1022 }
1023 }
1024}
1025
1026impl<T: Destruct> Drop for GuardBack<'_, T> {
1027 #[inline]
1028 fn drop(&mut self) {
1029 debug_assert!(self.initialized <= self.array_mut.len());
1030 let len = self.array_mut.len();
1031 // SAFETY: this slice will contain only initialized objects.
1032 unsafe {
1033 self.array_mut.get_unchecked_mut(len - self.initialized..len).assume_init_drop();
1034 }
1035 }
1036}
1037
1038/// Pulls `N` items from `iter` and returns them as an array. If the iterator
1039/// yields fewer than `N` items, `Err` is returned containing an iterator over
1040/// the already yielded items.
1041///
1042/// Since the iterator is passed as a mutable reference and this function calls
1043/// `next` at most `N` times, the iterator can still be used afterwards to
1044/// retrieve the remaining items.
1045///
1046/// If `iter.next()` panics, all items already yielded by the iterator are
1047/// dropped.
1048///
1049/// Used for [`Iterator::next_chunk`].
1050#[rustc_const_unstable(feature = "const_iter", issue = "92476")]
1051#[inline]
1052pub(crate) const fn iter_next_chunk<T, const N: usize>(
1053 iter: &mut impl [const] Iterator<Item = T>,
1054) -> Result<[T; N], IntoIter<T, N>> {
1055 iter.spec_next_chunk()
1056}
1057
1058pub(crate) const trait SpecNextChunk<T, const N: usize>: Iterator<Item = T> {
1059 fn spec_next_chunk(&mut self) -> Result<[T; N], IntoIter<T, N>>;
1060}
1061#[rustc_const_unstable(feature = "const_iter", issue = "92476")]
1062const impl<I: [const] Iterator<Item = T>, T, const N: usize> SpecNextChunk<T, N> for I {
1063 #[inline]
1064 default fn spec_next_chunk(&mut self) -> Result<[T; N], IntoIter<T, N>> {
1065 let mut array = [const { MaybeUninit::uninit() }; N];
1066 let r = iter_next_chunk_erased(&mut array, self);
1067 match r {
1068 Ok(()) => {
1069 // SAFETY: All elements of `array` were populated.
1070 Ok(unsafe { MaybeUninit::array_assume_init(array) })
1071 }
1072 Err(initialized) => {
1073 // SAFETY: Only the first `initialized` elements were populated
1074 Err(unsafe { IntoIter::new_unchecked(array, 0..initialized) })
1075 }
1076 }
1077 }
1078}
1079#[rustc_const_unstable(feature = "const_iter", issue = "92476")]
1080const impl<I: [const] Iterator<Item = T> + TrustedLen, T, const N: usize> SpecNextChunk<T, N>
1081 for I
1082{
1083 fn spec_next_chunk(&mut self) -> Result<[T; N], IntoIter<T, N>> {
1084 let len = (*self).size_hint().0;
1085 let mut array = [const { MaybeUninit::uninit() }; N];
1086 if len < N {
1087 // SAFETY: `TrustedLen`, an unsafe trait, requires that i can get len items out of it.
1088 unsafe { write(&mut array, self, len) };
1089 // SAFETY: Only the first `len` elements were populated
1090 Err(unsafe { IntoIter::new_unchecked(array, 0..len) })
1091 } else {
1092 // SAFETY: `TrustedLen`, an unsafe trait, requires that i can get N items out of it.
1093 unsafe { write(&mut array, self, N) };
1094 // SAFETY: All N items were populated
1095 Ok(unsafe { MaybeUninit::array_assume_init(array) })
1096 }
1097 }
1098}
1099// SAFETY: `from` must have len items, and len items must be < N.
1100#[rustc_const_unstable(feature = "const_iter", issue = "92476")]
1101const unsafe fn write<T, const N: usize>(
1102 to: &mut [MaybeUninit<T>; N],
1103 from: &mut impl [const] Iterator<Item = T>,
1104 len: usize,
1105) {
1106 let mut guard = Guard { array_mut: to, initialized: 0 };
1107 while guard.initialized < len {
1108 // SAFETY: caller has guaranteed, from has len items.
1109 let item = unsafe { from.next().unwrap_unchecked() };
1110 // SAFETY: guard.initialized < len < N
1111 unsafe { guard.push_unchecked(item) };
1112 }
1113 crate::mem::forget(guard);
1114}
1115
1116/// Version of [`iter_next_chunk`] using a passed-in slice in order to avoid
1117/// needing to monomorphize for every array length.
1118///
1119/// Unfortunately this loop has two exit conditions, the buffer filling up
1120/// or the iterator running out of items, making it tend to optimize poorly.
1121#[rustc_const_unstable(feature = "const_iter", issue = "92476")]
1122#[inline]
1123const fn iter_next_chunk_erased<T>(
1124 buffer: &mut [MaybeUninit<T>],
1125 iter: &mut impl [const] Iterator<Item = T>,
1126) -> Result<(), usize> {
1127 // if `Iterator::next` panics, this guard will drop already initialized items
1128 let mut guard = Guard { array_mut: buffer, initialized: 0 };
1129 while guard.initialized < guard.array_mut.len() {
1130 let Some(item) = iter.next() else {
1131 // Unlike `try_from_fn_erased`, we want to keep the partial results,
1132 // so we need to defuse the guard instead of using `?`.
1133 let initialized = guard.initialized;
1134 mem::forget(guard);
1135 return Err(initialized);
1136 };
1137
1138 // SAFETY: The loop condition ensures we have space to push the item
1139 unsafe { guard.push_unchecked(item) };
1140 }
1141
1142 mem::forget(guard);
1143 Ok(())
1144}
1145
1146/// Pulls `N` items from the back of `iter` and returns them as an array.
1147/// If the iterator yields fewer than `N` items, `Err` is returned containing
1148/// an iterator over the already yielded items.
1149///
1150/// Since the iterator is passed as a mutable reference and this function calls
1151/// `next_back` at most `N` times, the iterator can still be used afterwards to
1152/// retrieve the remaining items.
1153///
1154/// If `iter.next_back()` panics, all items already yielded by the iterator are
1155/// dropped.
1156///
1157/// Used for [`DoubleEndedIterator::next_chunk_back`].
1158#[inline]
1159pub(crate) fn iter_next_chunk_back<T, const N: usize>(
1160 iter: &mut impl DoubleEndedIterator<Item = T>,
1161) -> Result<[T; N], IntoIter<T, N>> {
1162 iter.spec_next_chunk_back()
1163}
1164
1165pub(crate) trait SpecNextChunkBack<T, const N: usize>:
1166 DoubleEndedIterator<Item = T>
1167{
1168 fn spec_next_chunk_back(&mut self) -> Result<[T; N], IntoIter<T, N>>;
1169}
1170
1171impl<I: DoubleEndedIterator<Item = T>, T, const N: usize> SpecNextChunkBack<T, N> for I {
1172 #[inline]
1173 default fn spec_next_chunk_back(&mut self) -> Result<[T; N], IntoIter<T, N>> {
1174 let mut array = [const { MaybeUninit::uninit() }; N];
1175 let r = iter_next_chunk_back_erased(&mut array, self);
1176 match r {
1177 Ok(()) => {
1178 // SAFETY: All elements of `array` were populated.
1179 Ok(unsafe { MaybeUninit::array_assume_init(array) })
1180 }
1181 Err(initialized) => {
1182 // SAFETY: Only the last `initialized` elements were populated
1183 Err(unsafe { IntoIter::new_unchecked(array, N - initialized..N) })
1184 }
1185 }
1186 }
1187}
1188
1189impl<I: DoubleEndedIterator<Item = T> + TrustedLen, T, const N: usize> SpecNextChunkBack<T, N>
1190 for I
1191{
1192 fn spec_next_chunk_back(&mut self) -> Result<[T; N], IntoIter<T, N>> {
1193 let len = (*self).size_hint().0;
1194 let mut array = [const { MaybeUninit::uninit() }; N];
1195 if len < N {
1196 // SAFETY: `TrustedLen`, an unsafe trait, requires that i can get len items out of it.
1197 unsafe { write_back(&mut array, self, len) };
1198 // SAFETY: Only the last `len` elements were populated
1199 Err(unsafe { IntoIter::new_unchecked(array, N - len..N) })
1200 } else {
1201 // SAFETY: `TrustedLen`, an unsafe trait, requires that i can get N items out of it.
1202 unsafe { write_back(&mut array, self, N) };
1203 // SAFETY: All N items were populated
1204 Ok(unsafe { MaybeUninit::array_assume_init(array) })
1205 }
1206 }
1207}
1208
1209// SAFETY: `from` must have len items, and len items must be < N.
1210unsafe fn write_back<T, const N: usize>(
1211 to: &mut [MaybeUninit<T>; N],
1212 from: &mut impl DoubleEndedIterator<Item = T>,
1213 len: usize,
1214) {
1215 let mut guard = GuardBack { array_mut: to, initialized: 0 };
1216 while guard.initialized < len {
1217 // SAFETY: caller has guaranteed, from has len items.
1218 let item = unsafe { from.next_back().unwrap_unchecked() };
1219 // SAFETY: guard.initialized < len < N
1220 unsafe { guard.push_unchecked(item) };
1221 }
1222 crate::mem::forget(guard);
1223}
1224
1225/// Version of [`iter_next_chunk_back`] using a passed-in slice
1226/// in order to avoid needing to monomorphize for every array length.
1227///
1228/// Unfortunately this loop has two exit conditions, the buffer filling up
1229/// or the iterator running out of items, making it tend to optimize poorly.
1230#[inline]
1231fn iter_next_chunk_back_erased<T>(
1232 buffer: &mut [MaybeUninit<T>],
1233 iter: &mut impl DoubleEndedIterator<Item = T>,
1234) -> Result<(), usize> {
1235 // if `Iterator::next_back` panics, this guard will drop already initialized items
1236 let mut guard = GuardBack { array_mut: buffer, initialized: 0 };
1237 while guard.initialized < guard.array_mut.len() {
1238 let Some(item) = iter.next_back() else {
1239 let initialized = guard.initialized;
1240 mem::forget(guard);
1241 return Err(initialized);
1242 };
1243
1244 // SAFETY: The loop condition ensures we have space to push the item
1245 unsafe { guard.push_unchecked(item) };
1246 }
1247
1248 mem::forget(guard);
1249 Ok(())
1250}