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alloc/
boxed.rs

1//! The `Box<T>` type for heap allocation.
2//!
3//! [`Box<T>`], casually referred to as a 'box', provides the simplest form of
4//! heap allocation in Rust. Boxes provide ownership for this allocation, and
5//! drop their contents when they go out of scope. Boxes also ensure that they
6//! never allocate more than `isize::MAX` bytes.
7//!
8//! # Examples
9//!
10//! Move a value from the stack to the heap by creating a [`Box`]:
11//!
12//! ```
13//! let val: u8 = 5;
14//! let boxed: Box<u8> = Box::new(val);
15//! ```
16//!
17//! Move a value from a [`Box`] back to the stack by [dereferencing]:
18//!
19//! ```
20//! let boxed: Box<u8> = Box::new(5);
21//! let val: u8 = *boxed;
22//! ```
23//!
24//! Creating a recursive data structure:
25//!
26//! ```
27//! # #[allow(dead_code)]
28//! #[derive(Debug)]
29//! enum List<T> {
30//!     Cons(T, Box<List<T>>),
31//!     Nil,
32//! }
33//!
34//! let list: List<i32> = List::Cons(1, Box::new(List::Cons(2, Box::new(List::Nil))));
35//! println!("{list:?}");
36//! ```
37//!
38//! This will print `Cons(1, Cons(2, Nil))`.
39//!
40//! Recursive structures must be boxed, because if the definition of `Cons`
41//! looked like this:
42//!
43//! ```compile_fail,E0072
44//! # enum List<T> {
45//! Cons(T, List<T>),
46//! # }
47//! ```
48//!
49//! It wouldn't work. This is because the size of a `List` depends on how many
50//! elements are in the list, and so we don't know how much memory to allocate
51//! for a `Cons`. By introducing a [`Box<T>`], which has a defined size, we know how
52//! big `Cons` needs to be.
53//!
54//! # Memory layout
55//!
56//! For non-zero-sized values, a [`Box`] will use the [`Global`] allocator for its allocation. It is
57//! valid to convert both ways between a [`Box`] and a raw pointer allocated with the [`Global`]
58//! allocator, given that the [`Layout`] used with the allocator is correct for the type and the raw
59//! pointer points to a valid value of the right type. More precisely, a `value: *mut T` that has
60//! been allocated with the [`Global`] allocator with `Layout::for_value(&*value)` may be converted
61//! into a box using [`Box::<T>::from_raw(value)`]. Conversely, the memory backing a `value: *mut T`
62//! obtained from [`Box::<T>::into_raw`] may be deallocated using the [`Global`] allocator with
63//! [`Layout::for_value(&*value)`].
64//!
65//! For zero-sized values, the `Box` pointer has to be non-null and sufficiently aligned. The
66//! recommended way to build a Box to a ZST if `Box::new` cannot be used is to use
67//! [`ptr::NonNull::dangling`].
68//!
69//! On top of these basic layout requirements, a `Box<T>` must point to a valid value of `T`.
70//!
71//! So long as `T: Sized`, a `Box<T>` is guaranteed to be represented
72//! as a single pointer and is also ABI-compatible with C pointers
73//! (i.e. the C type `T*`). This means that if you have extern "C"
74//! Rust functions that will be called from C, you can define those
75//! Rust functions using `Box<T>` types, and use `T*` as corresponding
76//! type on the C side. As an example, consider this C header which
77//! declares functions that create and destroy some kind of `Foo`
78//! value:
79//!
80//! ```c
81//! /* C header */
82//!
83//! /* Returns ownership to the caller */
84//! struct Foo* foo_new(void);
85//!
86//! /* Takes ownership from the caller; no-op when invoked with null */
87//! void foo_delete(struct Foo*);
88//! ```
89//!
90//! These two functions might be implemented in Rust as follows. Here, the
91//! `struct Foo*` type from C is translated to `Box<Foo>`, which captures
92//! the ownership constraints. Note also that the nullable argument to
93//! `foo_delete` is represented in Rust as `Option<Box<Foo>>`, since `Box<Foo>`
94//! cannot be null.
95//!
96//! ```
97//! #[repr(C)]
98//! pub struct Foo;
99//!
100//! #[unsafe(no_mangle)]
101//! pub extern "C" fn foo_new() -> Box<Foo> {
102//!     Box::new(Foo)
103//! }
104//!
105//! #[unsafe(no_mangle)]
106//! pub extern "C" fn foo_delete(_: Option<Box<Foo>>) {}
107//! ```
108//!
109//! Even though `Box<T>` has the same representation and C ABI as a C pointer,
110//! this does not mean that you can convert an arbitrary `T*` into a `Box<T>`
111//! and expect things to work. `Box<T>` values will always be fully aligned,
112//! non-null pointers. Moreover, the destructor for `Box<T>` will attempt to
113//! free the value with the global allocator. In general, the best practice
114//! is to only use `Box<T>` for pointers that originated from the global
115//! allocator.
116//!
117//! **Important.** At least at present, you should avoid using
118//! `Box<T>` types for functions that are defined in C but invoked
119//! from Rust. In those cases, you should directly mirror the C types
120//! as closely as possible. Using types like `Box<T>` where the C
121//! definition is just using `T*` can lead to undefined behavior, as
122//! described in [rust-lang/unsafe-code-guidelines#198][ucg#198].
123//!
124//! # Considerations for unsafe code
125//!
126//! **Warning: This section is not normative and is subject to change, possibly
127//! being relaxed in the future! It is a simplified summary of the rules
128//! currently implemented in the compiler.**
129//!
130//! The aliasing rules for `Box<T>` are the same as for `&mut T`. `Box<T>`
131//! asserts uniqueness over its content. Using raw pointers derived from a box
132//! after that box has been mutated through, moved or borrowed as `&mut T`
133//! is not allowed. For more guidance on working with box from unsafe code, see
134//! [rust-lang/unsafe-code-guidelines#326][ucg#326].
135//!
136//! # Editions
137//!
138//! A special case exists for the implementation of `IntoIterator` for arrays on the Rust 2021
139//! edition, as documented [here][array]. Unfortunately, it was later found that a similar
140//! workaround should be added for boxed slices, and this was applied in the 2024 edition.
141//!
142//! Specifically, `IntoIterator` is implemented for `Box<[T]>` on all editions, but specific calls
143//! to `into_iter()` for boxed slices will defer to the slice implementation on editions before
144//! 2024:
145//!
146//! ```rust,edition2021
147//! // Rust 2015, 2018, and 2021:
148//!
149//! # #![allow(boxed_slice_into_iter)] // override our `deny(warnings)`
150//! let boxed_slice: Box<[i32]> = vec![0; 3].into_boxed_slice();
151//!
152//! // This creates a slice iterator, producing references to each value.
153//! for item in boxed_slice.into_iter().enumerate() {
154//!     let (i, x): (usize, &i32) = item;
155//!     println!("boxed_slice[{i}] = {x}");
156//! }
157//!
158//! // The `boxed_slice_into_iter` lint suggests this change for future compatibility:
159//! for item in boxed_slice.iter().enumerate() {
160//!     let (i, x): (usize, &i32) = item;
161//!     println!("boxed_slice[{i}] = {x}");
162//! }
163//!
164//! // You can explicitly iterate a boxed slice by value using `IntoIterator::into_iter`
165//! for item in IntoIterator::into_iter(boxed_slice).enumerate() {
166//!     let (i, x): (usize, i32) = item;
167//!     println!("boxed_slice[{i}] = {x}");
168//! }
169//! ```
170//!
171//! Similar to the array implementation, this may be modified in the future to remove this override,
172//! and it's best to avoid relying on this edition-dependent behavior if you wish to preserve
173//! compatibility with future versions of the compiler.
174//!
175//! [ucg#198]: https://github.com/rust-lang/unsafe-code-guidelines/issues/198
176//! [ucg#326]: https://github.com/rust-lang/unsafe-code-guidelines/issues/326
177//! [dereferencing]: core::ops::Deref
178//! [`Box::<T>::from_raw(value)`]: Box::from_raw
179//! [`Global`]: crate::alloc::Global
180//! [`Layout`]: crate::alloc::Layout
181//! [`Layout::for_value(&*value)`]: crate::alloc::Layout::for_value
182//! [valid]: ptr#safety
183
184#![stable(feature = "rust1", since = "1.0.0")]
185
186use core::borrow::{Borrow, BorrowMut};
187use core::clone::CloneToUninit;
188use core::cmp::Ordering;
189use core::error::{self, Error};
190use core::fmt;
191use core::future::Future;
192use core::hash::{Hash, Hasher};
193use core::marker::{Tuple, Unsize};
194#[cfg(not(no_global_oom_handling))]
195use core::mem::MaybeUninit;
196use core::mem::{self, SizedTypeProperties};
197use core::ops::{
198    AsyncFn, AsyncFnMut, AsyncFnOnce, CoerceUnsized, Coroutine, CoroutineState, Deref, DerefMut,
199    DerefPure, DispatchFromDyn, LegacyReceiver,
200};
201#[cfg(not(no_global_oom_handling))]
202use core::ops::{Residual, Try};
203use core::pin::{Pin, PinSafePointer};
204use core::ptr::{self, NonNull, Unique};
205use core::task::{Context, Poll};
206
207#[cfg(not(no_global_oom_handling))]
208use crate::alloc::handle_alloc_error;
209use crate::alloc::{AllocError, Allocator, Global, Layout, StaticAllocator};
210use crate::raw_vec::RawVec;
211#[cfg(not(no_global_oom_handling))]
212use crate::str::from_boxed_utf8_unchecked_in;
213
214/// Conversion related impls for `Box<_>` (`From`, `downcast`, etc)
215mod convert;
216/// Iterator related impls for `Box<_>`.
217mod iter;
218/// [`ThinBox`] implementation.
219mod thin;
220
221#[stable(feature = "boxed_array_value_iter", since = "1.99.0")]
222pub use iter::BoxedArrayIntoIter;
223#[unstable(feature = "thin_box", issue = "92791")]
224pub use thin::ThinBox;
225
226/// A pointer type that uniquely owns a heap allocation of type `T`.
227///
228/// See the [module-level documentation](../../std/boxed/index.html) for more.
229#[lang = "owned_box"]
230#[fundamental]
231#[stable(feature = "rust1", since = "1.0.0")]
232#[rustc_insignificant_dtor]
233#[doc(search_unbox)]
234// The declaration of the `Box` struct must be kept in sync with the
235// compiler or ICEs will happen.
236pub struct Box<
237    T: ?Sized,
238    #[unstable(feature = "allocator_api", issue = "32838")] A: Allocator = Global,
239>(Unique<T>, A);
240
241/// Monomorphic function for allocating an uninit `Box`.
242#[inline]
243// The is a separate function to avoid doing it in every generic version, but it
244// looks small to the mir inliner (particularly in panic=abort) so leave it to
245// the backend to decide whether pulling it in everywhere is worth doing.
246#[rustc_no_mir_inline]
247#[cfg_attr(miri, track_caller)] // even without panics, this helps for Miri backtraces
248#[cfg(not(no_global_oom_handling))]
249#[rustc_const_unstable(feature = "const_heap", issue = "79597")]
250const fn box_new_uninit(layout: Layout) -> *mut u8 {
251    match Global.allocate(layout) {
252        Ok(ptr) => ptr.as_mut_ptr(),
253        Err(_) => handle_alloc_error(layout),
254    }
255}
256
257/// Helper for `vec!`.
258///
259/// This is unsafe, but has to be marked as safe or else we couldn't use it in `vec!`.
260#[doc(hidden)]
261#[unstable(feature = "liballoc_internals", issue = "none")]
262#[rustc_const_unstable(feature = "const_heap", issue = "79597")]
263#[inline(always)]
264#[cfg(not(no_global_oom_handling))]
265#[rustc_diagnostic_item = "box_assume_init_into_vec_unsafe"]
266pub const fn box_assume_init_into_vec_unsafe<T, const N: usize>(
267    b: Box<MaybeUninit<[T; N]>>,
268) -> crate::vec::Vec<T> {
269    unsafe { (b.assume_init() as Box<[T]>).into_vec() }
270}
271
272impl<T> Box<T> {
273    /// Allocates memory on the heap and then places `x` into it.
274    ///
275    /// This doesn't actually allocate if `T` is zero-sized.
276    ///
277    /// # Examples
278    ///
279    /// ```
280    /// let five = Box::new(5);
281    /// ```
282    #[cfg(not(no_global_oom_handling))]
283    #[inline(always)]
284    #[stable(feature = "rust1", since = "1.0.0")]
285    #[must_use]
286    #[rustc_diagnostic_item = "box_new"]
287    #[cfg_attr(miri, track_caller)] // even without panics, this helps for Miri backtraces
288    pub fn new(x: T) -> Self {
289        // This is `Box::new_uninit` but inlined to avoid build time regressions.
290        let ptr = box_new_uninit(<T as SizedTypeProperties>::LAYOUT) as *mut T;
291        // Nothing below can panic so we do not have to worry about deallocating `ptr`.
292        // SAFETY: we just allocated the box to store `x`.
293        unsafe { core::intrinsics::write_via_move(ptr, x) };
294        // SAFETY: we just initialized the memory `ptr` points to.
295        unsafe { mem::transmute(ptr) }
296    }
297
298    /// Constructs a new box with uninitialized contents.
299    ///
300    /// # Examples
301    ///
302    /// ```
303    /// let mut five = Box::<u32>::new_uninit();
304    /// // Deferred initialization:
305    /// five.write(5);
306    /// let five = unsafe { five.assume_init() };
307    ///
308    /// assert_eq!(*five, 5)
309    /// ```
310    #[cfg(not(no_global_oom_handling))]
311    #[stable(feature = "new_uninit", since = "1.82.0")]
312    #[rustc_const_unstable(feature = "const_heap", issue = "79597")]
313    #[must_use]
314    #[inline(always)]
315    #[cfg_attr(miri, track_caller)] // even without panics, this helps for Miri backtraces
316    pub const fn new_uninit() -> Box<mem::MaybeUninit<T>> {
317        // This is the same as `Self::new_uninit_in(Global)`, but manually inlined (just like
318        // `Box::new`).
319
320        // SAFETY:
321        // - If `allocate` succeeds, the returned pointer exactly matches what `Box` needs.
322        unsafe { mem::transmute(box_new_uninit(<T as SizedTypeProperties>::LAYOUT)) }
323    }
324
325    /// Constructs a new `Box` with uninitialized contents, with the memory
326    /// being filled with `0` bytes.
327    ///
328    /// See [`MaybeUninit::zeroed`][zeroed] for examples of correct and incorrect usage
329    /// of this method.
330    ///
331    /// # Examples
332    ///
333    /// ```
334    /// let zero = Box::<u32>::new_zeroed();
335    /// let zero = unsafe { zero.assume_init() };
336    ///
337    /// assert_eq!(*zero, 0)
338    /// ```
339    ///
340    /// [zeroed]: mem::MaybeUninit::zeroed
341    #[cfg(not(no_global_oom_handling))]
342    #[inline]
343    #[stable(feature = "new_zeroed_alloc", since = "1.92.0")]
344    #[must_use]
345    pub fn new_zeroed() -> Box<mem::MaybeUninit<T>> {
346        Self::new_zeroed_in(Global)
347    }
348
349    /// Constructs a new `Pin<Box<T>>`. If `T` does not implement [`Unpin`], then
350    /// `x` will be pinned in memory and unable to be moved.
351    ///
352    /// Constructing and pinning of the `Box` can also be done in two steps: `Box::pin(x)`
353    /// does the same as <code>[Box::into_pin]\([Box::new]\(x))</code>. Consider using
354    /// [`into_pin`](Box::into_pin) if you already have a `Box<T>`, or if you want to
355    /// construct a (pinned) `Box` in a different way than with [`Box::new`].
356    #[cfg(not(no_global_oom_handling))]
357    #[stable(feature = "pin", since = "1.33.0")]
358    #[must_use]
359    #[inline(always)]
360    pub fn pin(x: T) -> Pin<Box<T>> {
361        Box::new(x).into()
362    }
363
364    /// Allocates memory on the heap then places `x` into it,
365    /// returning an error if the allocation fails
366    ///
367    /// This doesn't actually allocate if `T` is zero-sized.
368    ///
369    /// # Examples
370    ///
371    /// ```
372    /// #![feature(allocator_api)]
373    ///
374    /// let five = Box::try_new(5)?;
375    /// # Ok::<(), std::alloc::AllocError>(())
376    /// ```
377    #[unstable(feature = "allocator_api", issue = "32838")]
378    #[inline]
379    pub fn try_new(x: T) -> Result<Self, AllocError> {
380        Self::try_new_in(x, Global)
381    }
382
383    /// Constructs a new box with uninitialized contents on the heap,
384    /// returning an error if the allocation fails
385    ///
386    /// # Examples
387    ///
388    /// ```
389    /// #![feature(allocator_api)]
390    ///
391    /// let mut five = Box::<u32>::try_new_uninit()?;
392    /// // Deferred initialization:
393    /// five.write(5);
394    /// let five = unsafe { five.assume_init() };
395    ///
396    /// assert_eq!(*five, 5);
397    /// # Ok::<(), std::alloc::AllocError>(())
398    /// ```
399    #[unstable(feature = "allocator_api", issue = "32838")]
400    #[inline]
401    pub fn try_new_uninit() -> Result<Box<mem::MaybeUninit<T>>, AllocError> {
402        Box::try_new_uninit_in(Global)
403    }
404
405    /// Constructs a new `Box` with uninitialized contents, with the memory
406    /// being filled with `0` bytes on the heap
407    ///
408    /// See [`MaybeUninit::zeroed`][zeroed] for examples of correct and incorrect usage
409    /// of this method.
410    ///
411    /// # Examples
412    ///
413    /// ```
414    /// #![feature(allocator_api)]
415    ///
416    /// let zero = Box::<u32>::try_new_zeroed()?;
417    /// let zero = unsafe { zero.assume_init() };
418    ///
419    /// assert_eq!(*zero, 0);
420    /// # Ok::<(), std::alloc::AllocError>(())
421    /// ```
422    ///
423    /// [zeroed]: mem::MaybeUninit::zeroed
424    #[unstable(feature = "allocator_api", issue = "32838")]
425    #[inline]
426    pub fn try_new_zeroed() -> Result<Box<mem::MaybeUninit<T>>, AllocError> {
427        Box::try_new_zeroed_in(Global)
428    }
429}
430
431impl<T, A: Allocator> Box<T, A> {
432    /// Allocates memory in the given allocator then places `x` into it.
433    ///
434    /// This doesn't actually allocate if `T` is zero-sized.
435    ///
436    /// # Examples
437    ///
438    /// ```
439    /// #![feature(allocator_api)]
440    ///
441    /// use std::alloc::System;
442    ///
443    /// let five = Box::new_in(5, System);
444    /// ```
445    #[cfg(not(no_global_oom_handling))]
446    #[unstable(feature = "allocator_api", issue = "32838")]
447    #[must_use]
448    #[inline]
449    pub fn new_in(x: T, alloc: A) -> Self
450    where
451        A: Allocator,
452    {
453        let mut boxed = Self::new_uninit_in(alloc);
454        boxed.write(x);
455        unsafe { boxed.assume_init() }
456    }
457
458    /// Allocates memory in the given allocator then places `x` into it,
459    /// returning an error if the allocation fails
460    ///
461    /// This doesn't actually allocate if `T` is zero-sized.
462    ///
463    /// # Examples
464    ///
465    /// ```
466    /// #![feature(allocator_api)]
467    ///
468    /// use std::alloc::System;
469    ///
470    /// let five = Box::try_new_in(5, System)?;
471    /// # Ok::<(), std::alloc::AllocError>(())
472    /// ```
473    #[unstable(feature = "allocator_api", issue = "32838")]
474    #[inline]
475    pub fn try_new_in(x: T, alloc: A) -> Result<Self, AllocError>
476    where
477        A: Allocator,
478    {
479        let mut boxed = Self::try_new_uninit_in(alloc)?;
480        boxed.write(x);
481        unsafe { Ok(boxed.assume_init()) }
482    }
483
484    /// Constructs a new box with uninitialized contents in the provided allocator.
485    ///
486    /// # Examples
487    ///
488    /// ```
489    /// #![feature(allocator_api)]
490    ///
491    /// use std::alloc::System;
492    ///
493    /// let mut five = Box::<u32, _>::new_uninit_in(System);
494    /// // Deferred initialization:
495    /// five.write(5);
496    /// let five = unsafe { five.assume_init() };
497    ///
498    /// assert_eq!(*five, 5)
499    /// ```
500    #[unstable(feature = "allocator_api", issue = "32838")]
501    #[cfg(not(no_global_oom_handling))]
502    #[must_use]
503    pub fn new_uninit_in(alloc: A) -> Box<mem::MaybeUninit<T>, A>
504    where
505        A: Allocator,
506    {
507        let layout = Layout::new::<mem::MaybeUninit<T>>();
508        // NOTE: Prefer match over unwrap_or_else since closure sometimes not inlineable.
509        // That would make code size bigger.
510        match Box::try_new_uninit_in(alloc) {
511            Ok(m) => m,
512            Err(_) => handle_alloc_error(layout),
513        }
514    }
515
516    /// Constructs a new box with uninitialized contents in the provided allocator,
517    /// returning an error if the allocation fails
518    ///
519    /// # Examples
520    ///
521    /// ```
522    /// #![feature(allocator_api)]
523    ///
524    /// use std::alloc::System;
525    ///
526    /// let mut five = Box::<u32, _>::try_new_uninit_in(System)?;
527    /// // Deferred initialization:
528    /// five.write(5);
529    /// let five = unsafe { five.assume_init() };
530    ///
531    /// assert_eq!(*five, 5);
532    /// # Ok::<(), std::alloc::AllocError>(())
533    /// ```
534    #[unstable(feature = "allocator_api", issue = "32838")]
535    pub fn try_new_uninit_in(alloc: A) -> Result<Box<mem::MaybeUninit<T>, A>, AllocError>
536    where
537        A: Allocator,
538    {
539        let ptr = if T::IS_ZST {
540            NonNull::dangling()
541        } else {
542            let layout = Layout::new::<mem::MaybeUninit<T>>();
543            alloc.allocate(layout)?.cast()
544        };
545        unsafe { Ok(Box::from_raw_in(ptr.as_ptr(), alloc)) }
546    }
547
548    /// Constructs a new `Box` with uninitialized contents, with the memory
549    /// being filled with `0` bytes in the provided allocator.
550    ///
551    /// See [`MaybeUninit::zeroed`][zeroed] for examples of correct and incorrect usage
552    /// of this method.
553    ///
554    /// # Examples
555    ///
556    /// ```
557    /// #![feature(allocator_api)]
558    ///
559    /// use std::alloc::System;
560    ///
561    /// let zero = Box::<u32, _>::new_zeroed_in(System);
562    /// let zero = unsafe { zero.assume_init() };
563    ///
564    /// assert_eq!(*zero, 0)
565    /// ```
566    ///
567    /// [zeroed]: mem::MaybeUninit::zeroed
568    #[unstable(feature = "allocator_api", issue = "32838")]
569    #[cfg(not(no_global_oom_handling))]
570    #[must_use]
571    pub fn new_zeroed_in(alloc: A) -> Box<mem::MaybeUninit<T>, A>
572    where
573        A: Allocator,
574    {
575        let layout = Layout::new::<mem::MaybeUninit<T>>();
576        // NOTE: Prefer match over unwrap_or_else since closure sometimes not inlineable.
577        // That would make code size bigger.
578        match Box::try_new_zeroed_in(alloc) {
579            Ok(m) => m,
580            Err(_) => handle_alloc_error(layout),
581        }
582    }
583
584    /// Constructs a new `Box` with uninitialized contents, with the memory
585    /// being filled with `0` bytes in the provided allocator,
586    /// returning an error if the allocation fails,
587    ///
588    /// See [`MaybeUninit::zeroed`][zeroed] for examples of correct and incorrect usage
589    /// of this method.
590    ///
591    /// # Examples
592    ///
593    /// ```
594    /// #![feature(allocator_api)]
595    ///
596    /// use std::alloc::System;
597    ///
598    /// let zero = Box::<u32, _>::try_new_zeroed_in(System)?;
599    /// let zero = unsafe { zero.assume_init() };
600    ///
601    /// assert_eq!(*zero, 0);
602    /// # Ok::<(), std::alloc::AllocError>(())
603    /// ```
604    ///
605    /// [zeroed]: mem::MaybeUninit::zeroed
606    #[unstable(feature = "allocator_api", issue = "32838")]
607    pub fn try_new_zeroed_in(alloc: A) -> Result<Box<mem::MaybeUninit<T>, A>, AllocError>
608    where
609        A: Allocator,
610    {
611        let ptr = if T::IS_ZST {
612            NonNull::dangling()
613        } else {
614            let layout = Layout::new::<mem::MaybeUninit<T>>();
615            alloc.allocate_zeroed(layout)?.cast()
616        };
617        unsafe { Ok(Box::from_raw_in(ptr.as_ptr(), alloc)) }
618    }
619
620    /// Constructs a new `Pin<Box<T, A>>`. If `T` does not implement [`Unpin`], then
621    /// `x` will be pinned in memory and unable to be moved.
622    ///
623    /// Constructing and pinning of the `Box` can also be done in two steps: `Box::pin_in(x, alloc)`
624    /// does the same as <code>[Box::into_pin]\([Box::new_in]\(x, alloc))</code>. Consider using
625    /// [`into_pin`](Box::into_pin) if you already have a `Box<T, A>`, or if you want to
626    /// construct a (pinned) `Box` in a different way than with [`Box::new_in`].
627    ///
628    /// # Examples
629    ///
630    /// ```
631    /// #![feature(allocator_api)]
632    /// use std::alloc::System;
633    ///
634    /// let x = Box::pin_in(1, System);
635    /// ```
636    #[cfg(not(no_global_oom_handling))]
637    #[unstable(feature = "allocator_api", issue = "32838")]
638    #[must_use]
639    #[inline(always)]
640    pub fn pin_in(x: T, alloc: A) -> Pin<Self>
641    where
642        A: StaticAllocator,
643    {
644        Self::into_pin(Self::new_in(x, alloc))
645    }
646
647    /// Converts a `Box<T>` into a `Box<[T]>`
648    ///
649    /// This conversion does not allocate on the heap and happens in place.
650    #[unstable(feature = "box_into_boxed_slice", issue = "71582")]
651    pub fn into_boxed_slice(boxed: Self) -> Box<[T], A> {
652        let (raw, alloc) = Box::into_raw_with_allocator(boxed);
653        unsafe { Box::from_raw_in(raw as *mut [T; 1], alloc) }
654    }
655
656    /// Consumes the `Box`, returning the wrapped value.
657    ///
658    /// # Examples
659    ///
660    /// ```
661    /// #![feature(box_into_inner)]
662    ///
663    /// let c = Box::new(5);
664    ///
665    /// assert_eq!(Box::into_inner(c), 5);
666    /// ```
667    #[unstable(feature = "box_into_inner", issue = "80437")]
668    #[inline]
669    pub fn into_inner(boxed: Self) -> T {
670        *boxed
671    }
672
673    /// Consumes the `Box` without consuming its allocation, returning the wrapped value and a `Box`
674    /// to the uninitialized memory where the wrapped value used to live.
675    ///
676    /// This can be used together with [`write`](Box::write) to reuse the allocation for multiple
677    /// boxed values.
678    ///
679    /// # Examples
680    ///
681    /// ```
682    /// #![feature(box_take)]
683    ///
684    /// let c = Box::new(5);
685    ///
686    /// // take the value out of the box
687    /// let (value, uninit) = Box::take(c);
688    /// assert_eq!(value, 5);
689    ///
690    /// // reuse the box for a second value
691    /// let c = Box::write(uninit, 6);
692    /// assert_eq!(*c, 6);
693    /// ```
694    #[unstable(feature = "box_take", issue = "147212")]
695    pub fn take(boxed: Self) -> (T, Box<mem::MaybeUninit<T>, A>) {
696        unsafe {
697            let (raw, alloc) = Box::into_non_null_with_allocator(boxed);
698            let value = raw.read();
699            let uninit = Box::from_non_null_in(raw.cast_uninit(), alloc);
700            (value, uninit)
701        }
702    }
703
704    /// Maps the value in a box, reusing the allocation if possible.
705    ///
706    /// `f` is called on the value in the box, and the result is returned, also boxed.
707    ///
708    /// Note: this is an associated function, which means that you have
709    /// to call it as `Box::map(b, f)` instead of `b.map(f)`. This
710    /// is so that there is no conflict with a method on the inner type.
711    ///
712    /// # Examples
713    ///
714    /// ```
715    /// #![feature(smart_pointer_try_map)]
716    ///
717    /// let b = Box::new(7);
718    /// let new = Box::map(b, |i| i + 7);
719    /// assert_eq!(*new, 14);
720    /// ```
721    #[cfg(not(no_global_oom_handling))]
722    #[unstable(feature = "smart_pointer_try_map", issue = "144419")]
723    pub fn map<U>(this: Self, f: impl FnOnce(T) -> U) -> Box<U, A> {
724        let (value, allocation) = Box::take(this);
725        let (raw, alloc) = Box::into_non_null_with_allocator(allocation);
726        if size_of::<T>() == size_of::<U>() && align_of::<T>() == align_of::<U>() {
727            let allocation = unsafe { Box::from_non_null_in(raw.cast::<MaybeUninit<U>>(), alloc) };
728            Box::write(allocation, f(value))
729        } else {
730            unsafe { alloc.deallocate(raw.cast(), Layout::for_value(&value)) }
731            Box::new_in(f(value), alloc)
732        }
733    }
734
735    /// Attempts to map the value in a box, reusing the allocation if possible.
736    ///
737    /// `f` is called on the value in the box, and if the operation succeeds, the result is
738    /// returned, also boxed.
739    ///
740    /// Note: this is an associated function, which means that you have
741    /// to call it as `Box::try_map(b, f)` instead of `b.try_map(f)`. This
742    /// is so that there is no conflict with a method on the inner type.
743    ///
744    /// # Examples
745    ///
746    /// ```
747    /// #![feature(smart_pointer_try_map)]
748    ///
749    /// let b = Box::new(7);
750    /// let new = Box::try_map(b, u32::try_from).unwrap();
751    /// assert_eq!(*new, 7);
752    /// ```
753    #[cfg(not(no_global_oom_handling))]
754    #[unstable(feature = "smart_pointer_try_map", issue = "144419")]
755    pub fn try_map<R>(
756        this: Self,
757        f: impl FnOnce(T) -> R,
758    ) -> <R::Residual as Residual<Box<R::Output, A>>>::TryType
759    where
760        R: Try,
761        R::Residual: Residual<Box<R::Output, A>>,
762    {
763        let (value, allocation) = Box::take(this);
764        let (raw, alloc) = Box::into_non_null_with_allocator(allocation);
765        if size_of::<T>() == size_of::<R::Output>() && align_of::<T>() == align_of::<R::Output>() {
766            let allocation =
767                unsafe { Box::from_non_null_in(raw.cast::<MaybeUninit<R::Output>>(), alloc) };
768            try { Box::write(allocation, f(value)?) }
769        } else {
770            unsafe { alloc.deallocate(raw.cast(), Layout::for_value(&value)) }
771            try { Box::new_in(f(value)?, alloc) }
772        }
773    }
774}
775
776impl<T: ?Sized + CloneToUninit> Box<T> {
777    /// Allocates memory on the heap then clones `src` into it.
778    ///
779    /// This doesn't actually allocate if `src` is zero-sized.
780    ///
781    /// # Examples
782    ///
783    /// ```
784    /// #![feature(clone_from_ref)]
785    ///
786    /// let hello: Box<str> = Box::clone_from_ref("hello");
787    /// ```
788    #[cfg(not(no_global_oom_handling))]
789    #[unstable(feature = "clone_from_ref", issue = "149075")]
790    #[must_use]
791    #[inline]
792    pub fn clone_from_ref(src: &T) -> Box<T> {
793        Box::clone_from_ref_in(src, Global)
794    }
795
796    /// Allocates memory on the heap then clones `src` into it, returning an error if allocation fails.
797    ///
798    /// This doesn't actually allocate if `src` is zero-sized.
799    ///
800    /// # Examples
801    ///
802    /// ```
803    /// #![feature(clone_from_ref)]
804    /// #![feature(allocator_api)]
805    ///
806    /// let hello: Box<str> = Box::try_clone_from_ref("hello")?;
807    /// # Ok::<(), std::alloc::AllocError>(())
808    /// ```
809    #[unstable(feature = "clone_from_ref", issue = "149075")]
810    //#[unstable(feature = "allocator_api", issue = "32838")]
811    #[must_use]
812    #[inline]
813    pub fn try_clone_from_ref(src: &T) -> Result<Box<T>, AllocError> {
814        Box::try_clone_from_ref_in(src, Global)
815    }
816}
817
818impl<T: ?Sized + CloneToUninit, A: Allocator> Box<T, A> {
819    /// Allocates memory in the given allocator then clones `src` into it.
820    ///
821    /// This doesn't actually allocate if `src` is zero-sized.
822    ///
823    /// # Examples
824    ///
825    /// ```
826    /// #![feature(clone_from_ref)]
827    /// #![feature(allocator_api)]
828    ///
829    /// use std::alloc::System;
830    ///
831    /// let hello: Box<str, System> = Box::clone_from_ref_in("hello", System);
832    /// ```
833    #[cfg(not(no_global_oom_handling))]
834    #[unstable(feature = "clone_from_ref", issue = "149075")]
835    //#[unstable(feature = "allocator_api", issue = "32838")]
836    #[must_use]
837    #[inline]
838    pub fn clone_from_ref_in(src: &T, alloc: A) -> Box<T, A> {
839        let layout = Layout::for_value::<T>(src);
840        match Box::try_clone_from_ref_in(src, alloc) {
841            Ok(bx) => bx,
842            Err(_) => handle_alloc_error(layout),
843        }
844    }
845
846    /// Allocates memory in the given allocator then clones `src` into it, returning an error if allocation fails.
847    ///
848    /// This doesn't actually allocate if `src` is zero-sized.
849    ///
850    /// # Examples
851    ///
852    /// ```
853    /// #![feature(clone_from_ref)]
854    /// #![feature(allocator_api)]
855    ///
856    /// use std::alloc::System;
857    ///
858    /// let hello: Box<str, System> = Box::try_clone_from_ref_in("hello", System)?;
859    /// # Ok::<(), std::alloc::AllocError>(())
860    /// ```
861    #[unstable(feature = "clone_from_ref", issue = "149075")]
862    //#[unstable(feature = "allocator_api", issue = "32838")]
863    #[must_use]
864    #[inline]
865    pub fn try_clone_from_ref_in(src: &T, alloc: A) -> Result<Box<T, A>, AllocError> {
866        struct DeallocDropGuard<'a, A: Allocator>(Layout, &'a A, NonNull<u8>);
867        impl<'a, A: Allocator> Drop for DeallocDropGuard<'a, A> {
868            fn drop(&mut self) {
869                let &mut DeallocDropGuard(layout, alloc, ptr) = self;
870                // Safety: `ptr` was allocated by `*alloc` with layout `layout`
871                unsafe {
872                    alloc.deallocate(ptr, layout);
873                }
874            }
875        }
876        let layout = Layout::for_value::<T>(src);
877        let (ptr, guard) = if layout.size() == 0 {
878            (layout.dangling_ptr(), None)
879        } else {
880            // Safety: layout is non-zero-sized
881            let ptr = alloc.allocate(layout)?.cast();
882            (ptr, Some(DeallocDropGuard(layout, &alloc, ptr)))
883        };
884        let ptr = ptr.as_ptr();
885        // Safety: `*ptr` is newly allocated, correctly aligned to `align_of_val(src)`,
886        // and is valid for writes for `size_of_val(src)`.
887        // If this panics, then `guard` will deallocate for us (if allocation occuured)
888        unsafe {
889            <T as CloneToUninit>::clone_to_uninit(src, ptr);
890        }
891        // Defuse the deallocate guard
892        core::mem::forget(guard);
893        // Safety: We just initialized `*ptr` as a clone of `src`
894        Ok(unsafe { Box::from_raw_in(ptr.with_metadata_of(src), alloc) })
895    }
896}
897
898impl<T> Box<[T]> {
899    /// Constructs a new boxed slice with uninitialized contents.
900    ///
901    /// # Examples
902    ///
903    /// ```
904    /// let mut values = Box::<[u32]>::new_uninit_slice(3);
905    /// // Deferred initialization:
906    /// values[0].write(1);
907    /// values[1].write(2);
908    /// values[2].write(3);
909    /// let values = unsafe { values.assume_init() };
910    ///
911    /// assert_eq!(*values, [1, 2, 3])
912    /// ```
913    #[cfg(not(no_global_oom_handling))]
914    #[stable(feature = "new_uninit", since = "1.82.0")]
915    #[must_use]
916    pub fn new_uninit_slice(len: usize) -> Box<[mem::MaybeUninit<T>]> {
917        unsafe { RawVec::with_capacity(len).into_box(len) }
918    }
919
920    /// Constructs a new boxed slice with uninitialized contents, with the memory
921    /// being filled with `0` bytes.
922    ///
923    /// See [`MaybeUninit::zeroed`][zeroed] for examples of correct and incorrect usage
924    /// of this method.
925    ///
926    /// # Examples
927    ///
928    /// ```
929    /// let values = Box::<[u32]>::new_zeroed_slice(3);
930    /// let values = unsafe { values.assume_init() };
931    ///
932    /// assert_eq!(*values, [0, 0, 0])
933    /// ```
934    ///
935    /// [zeroed]: mem::MaybeUninit::zeroed
936    #[cfg(not(no_global_oom_handling))]
937    #[stable(feature = "new_zeroed_alloc", since = "1.92.0")]
938    #[must_use]
939    pub fn new_zeroed_slice(len: usize) -> Box<[mem::MaybeUninit<T>]> {
940        unsafe { RawVec::with_capacity_zeroed(len).into_box(len) }
941    }
942
943    /// Constructs a new boxed slice with uninitialized contents. Returns an error if
944    /// the allocation fails.
945    ///
946    /// # Examples
947    ///
948    /// ```
949    /// #![feature(allocator_api)]
950    ///
951    /// let mut values = Box::<[u32]>::try_new_uninit_slice(3)?;
952    /// // Deferred initialization:
953    /// values[0].write(1);
954    /// values[1].write(2);
955    /// values[2].write(3);
956    /// let values = unsafe { values.assume_init() };
957    ///
958    /// assert_eq!(*values, [1, 2, 3]);
959    /// # Ok::<(), std::alloc::AllocError>(())
960    /// ```
961    #[unstable(feature = "allocator_api", issue = "32838")]
962    #[inline]
963    pub fn try_new_uninit_slice(len: usize) -> Result<Box<[mem::MaybeUninit<T>]>, AllocError> {
964        let ptr = if T::IS_ZST || len == 0 {
965            NonNull::dangling()
966        } else {
967            let layout = match Layout::array::<mem::MaybeUninit<T>>(len) {
968                Ok(l) => l,
969                Err(_) => return Err(AllocError),
970            };
971            Global.allocate(layout)?.cast()
972        };
973        unsafe { Ok(RawVec::from_raw_parts_in(ptr.as_ptr(), len, Global).into_box(len)) }
974    }
975
976    /// Constructs a new boxed slice with uninitialized contents, with the memory
977    /// being filled with `0` bytes. Returns an error if the allocation fails.
978    ///
979    /// See [`MaybeUninit::zeroed`][zeroed] for examples of correct and incorrect usage
980    /// of this method.
981    ///
982    /// # Examples
983    ///
984    /// ```
985    /// #![feature(allocator_api)]
986    ///
987    /// let values = Box::<[u32]>::try_new_zeroed_slice(3)?;
988    /// let values = unsafe { values.assume_init() };
989    ///
990    /// assert_eq!(*values, [0, 0, 0]);
991    /// # Ok::<(), std::alloc::AllocError>(())
992    /// ```
993    ///
994    /// [zeroed]: mem::MaybeUninit::zeroed
995    #[unstable(feature = "allocator_api", issue = "32838")]
996    #[inline]
997    pub fn try_new_zeroed_slice(len: usize) -> Result<Box<[mem::MaybeUninit<T>]>, AllocError> {
998        let ptr = if T::IS_ZST || len == 0 {
999            NonNull::dangling()
1000        } else {
1001            let layout = match Layout::array::<mem::MaybeUninit<T>>(len) {
1002                Ok(l) => l,
1003                Err(_) => return Err(AllocError),
1004            };
1005            Global.allocate_zeroed(layout)?.cast()
1006        };
1007        unsafe { Ok(RawVec::from_raw_parts_in(ptr.as_ptr(), len, Global).into_box(len)) }
1008    }
1009}
1010
1011impl<T, A: Allocator> Box<[T], A> {
1012    /// Constructs a new boxed slice with uninitialized contents in the provided allocator.
1013    ///
1014    /// # Examples
1015    ///
1016    /// ```
1017    /// #![feature(allocator_api)]
1018    ///
1019    /// use std::alloc::System;
1020    ///
1021    /// let mut values = Box::<[u32], _>::new_uninit_slice_in(3, System);
1022    /// // Deferred initialization:
1023    /// values[0].write(1);
1024    /// values[1].write(2);
1025    /// values[2].write(3);
1026    /// let values = unsafe { values.assume_init() };
1027    ///
1028    /// assert_eq!(*values, [1, 2, 3])
1029    /// ```
1030    #[cfg(not(no_global_oom_handling))]
1031    #[unstable(feature = "allocator_api", issue = "32838")]
1032    #[must_use]
1033    pub fn new_uninit_slice_in(len: usize, alloc: A) -> Box<[mem::MaybeUninit<T>], A> {
1034        unsafe { RawVec::with_capacity_in(len, alloc).into_box(len) }
1035    }
1036
1037    /// Constructs a new boxed slice with uninitialized contents in the provided allocator,
1038    /// with the memory being filled with `0` bytes.
1039    ///
1040    /// See [`MaybeUninit::zeroed`][zeroed] for examples of correct and incorrect usage
1041    /// of this method.
1042    ///
1043    /// # Examples
1044    ///
1045    /// ```
1046    /// #![feature(allocator_api)]
1047    ///
1048    /// use std::alloc::System;
1049    ///
1050    /// let values = Box::<[u32], _>::new_zeroed_slice_in(3, System);
1051    /// let values = unsafe { values.assume_init() };
1052    ///
1053    /// assert_eq!(*values, [0, 0, 0])
1054    /// ```
1055    ///
1056    /// [zeroed]: mem::MaybeUninit::zeroed
1057    #[cfg(not(no_global_oom_handling))]
1058    #[unstable(feature = "allocator_api", issue = "32838")]
1059    #[must_use]
1060    pub fn new_zeroed_slice_in(len: usize, alloc: A) -> Box<[mem::MaybeUninit<T>], A> {
1061        unsafe { RawVec::with_capacity_zeroed_in(len, alloc).into_box(len) }
1062    }
1063
1064    /// Constructs a new boxed slice with uninitialized contents in the provided allocator. Returns an error if
1065    /// the allocation fails.
1066    ///
1067    /// # Examples
1068    ///
1069    /// ```
1070    /// #![feature(allocator_api)]
1071    ///
1072    /// use std::alloc::System;
1073    ///
1074    /// let mut values = Box::<[u32], _>::try_new_uninit_slice_in(3, System)?;
1075    /// // Deferred initialization:
1076    /// values[0].write(1);
1077    /// values[1].write(2);
1078    /// values[2].write(3);
1079    /// let values = unsafe { values.assume_init() };
1080    ///
1081    /// assert_eq!(*values, [1, 2, 3]);
1082    /// # Ok::<(), std::alloc::AllocError>(())
1083    /// ```
1084    #[unstable(feature = "allocator_api", issue = "32838")]
1085    #[inline]
1086    pub fn try_new_uninit_slice_in(
1087        len: usize,
1088        alloc: A,
1089    ) -> Result<Box<[mem::MaybeUninit<T>], A>, AllocError> {
1090        let ptr = if T::IS_ZST || len == 0 {
1091            NonNull::dangling()
1092        } else {
1093            let layout = match Layout::array::<mem::MaybeUninit<T>>(len) {
1094                Ok(l) => l,
1095                Err(_) => return Err(AllocError),
1096            };
1097            alloc.allocate(layout)?.cast()
1098        };
1099        unsafe { Ok(RawVec::from_raw_parts_in(ptr.as_ptr(), len, alloc).into_box(len)) }
1100    }
1101
1102    /// Constructs a new boxed slice with uninitialized contents in the provided allocator, with the memory
1103    /// being filled with `0` bytes. Returns an error if the allocation fails.
1104    ///
1105    /// See [`MaybeUninit::zeroed`][zeroed] for examples of correct and incorrect usage
1106    /// of this method.
1107    ///
1108    /// # Examples
1109    ///
1110    /// ```
1111    /// #![feature(allocator_api)]
1112    ///
1113    /// use std::alloc::System;
1114    ///
1115    /// let values = Box::<[u32], _>::try_new_zeroed_slice_in(3, System)?;
1116    /// let values = unsafe { values.assume_init() };
1117    ///
1118    /// assert_eq!(*values, [0, 0, 0]);
1119    /// # Ok::<(), std::alloc::AllocError>(())
1120    /// ```
1121    ///
1122    /// [zeroed]: mem::MaybeUninit::zeroed
1123    #[unstable(feature = "allocator_api", issue = "32838")]
1124    #[inline]
1125    pub fn try_new_zeroed_slice_in(
1126        len: usize,
1127        alloc: A,
1128    ) -> Result<Box<[mem::MaybeUninit<T>], A>, AllocError> {
1129        let ptr = if T::IS_ZST || len == 0 {
1130            NonNull::dangling()
1131        } else {
1132            let layout = match Layout::array::<mem::MaybeUninit<T>>(len) {
1133                Ok(l) => l,
1134                Err(_) => return Err(AllocError),
1135            };
1136            alloc.allocate_zeroed(layout)?.cast()
1137        };
1138        unsafe { Ok(RawVec::from_raw_parts_in(ptr.as_ptr(), len, alloc).into_box(len)) }
1139    }
1140
1141    /// Converts the boxed slice into a boxed array.
1142    ///
1143    /// This operation does not reallocate; the underlying array of the slice is simply reinterpreted as an array type.
1144    ///
1145    /// # Errors
1146    ///
1147    /// Returns the original `Box<[T]>` in the `Err` variant if `self.len()` does not equal `N`.
1148    ///
1149    /// # Examples
1150    ///
1151    /// ```
1152    /// #![feature(alloc_slice_into_array)]
1153    /// let box_slice: Box<[i32]> = Box::new([1, 2, 3]);
1154    ///
1155    /// let box_array: Box<[i32; 3]> = box_slice.into_array().unwrap();
1156    /// ```
1157    #[unstable(feature = "alloc_slice_into_array", issue = "148082")]
1158    #[inline]
1159    #[must_use]
1160    pub fn into_array<const N: usize>(self) -> Result<Box<[T; N], A>, Self> {
1161        if self.len() == N {
1162            let (ptr, alloc) = Self::into_raw_with_allocator(self);
1163            let ptr = ptr as *mut [T; N];
1164
1165            // SAFETY: The underlying array of a slice has the exact same layout as an actual array `[T; N]` if `N` is equal to the slice's length.
1166            let me = unsafe { Box::from_raw_in(ptr, alloc) };
1167            Ok(me)
1168        } else {
1169            Err(self)
1170        }
1171    }
1172}
1173
1174impl<T, A: Allocator> Box<mem::MaybeUninit<T>, A> {
1175    /// Converts to `Box<T, A>`.
1176    ///
1177    /// # Safety
1178    ///
1179    /// As with [`MaybeUninit::assume_init`],
1180    /// it is up to the caller to guarantee that the value
1181    /// really is in an initialized state.
1182    /// Calling this when the content is not yet fully initialized
1183    /// causes immediate undefined behavior.
1184    ///
1185    /// [`MaybeUninit::assume_init`]: mem::MaybeUninit::assume_init
1186    ///
1187    /// # Examples
1188    ///
1189    /// ```
1190    /// let mut five = Box::<u32>::new_uninit();
1191    /// // Deferred initialization:
1192    /// five.write(5);
1193    /// let five: Box<u32> = unsafe { five.assume_init() };
1194    ///
1195    /// assert_eq!(*five, 5)
1196    /// ```
1197    #[stable(feature = "new_uninit", since = "1.82.0")]
1198    #[rustc_const_unstable(feature = "const_heap", issue = "79597")]
1199    #[inline(always)]
1200    pub const unsafe fn assume_init(self) -> Box<T, A> {
1201        // This is used in the `vec!` macro, so we optimize for minimal IR generation
1202        // even in debug builds.
1203        // SAFETY: `Box<T>` and `Box<MaybeUninit<T>>` have the same layout.
1204        unsafe { core::intrinsics::transmute_unchecked(self) }
1205    }
1206
1207    /// Writes the value and converts to `Box<T, A>`.
1208    ///
1209    /// This method converts the box similarly to [`Box::assume_init`] but
1210    /// writes `value` into it before conversion thus guaranteeing safety.
1211    /// In some scenarios use of this method may improve performance because
1212    /// the compiler may be able to optimize copying from stack.
1213    ///
1214    /// # Examples
1215    ///
1216    /// ```
1217    /// let big_box = Box::<[usize; 1024]>::new_uninit();
1218    ///
1219    /// let mut array = [0; 1024];
1220    /// for (i, place) in array.iter_mut().enumerate() {
1221    ///     *place = i;
1222    /// }
1223    ///
1224    /// // The optimizer may be able to elide this copy, so previous code writes
1225    /// // to heap directly.
1226    /// let big_box = Box::write(big_box, array);
1227    ///
1228    /// for (i, x) in big_box.iter().enumerate() {
1229    ///     assert_eq!(*x, i);
1230    /// }
1231    /// ```
1232    #[stable(feature = "box_uninit_write", since = "1.87.0")]
1233    #[inline]
1234    pub fn write(mut boxed: Self, value: T) -> Box<T, A> {
1235        unsafe {
1236            (*boxed).write(value);
1237            boxed.assume_init()
1238        }
1239    }
1240}
1241
1242impl<T, A: Allocator> Box<[mem::MaybeUninit<T>], A> {
1243    /// Converts to `Box<[T], A>`.
1244    ///
1245    /// # Safety
1246    ///
1247    /// As with [`MaybeUninit::assume_init`],
1248    /// it is up to the caller to guarantee that the values
1249    /// really are in an initialized state.
1250    /// Calling this when the content is not yet fully initialized
1251    /// causes immediate undefined behavior.
1252    ///
1253    /// [`MaybeUninit::assume_init`]: mem::MaybeUninit::assume_init
1254    ///
1255    /// # Examples
1256    ///
1257    /// ```
1258    /// let mut values = Box::<[u32]>::new_uninit_slice(3);
1259    /// // Deferred initialization:
1260    /// values[0].write(1);
1261    /// values[1].write(2);
1262    /// values[2].write(3);
1263    /// let values = unsafe { values.assume_init() };
1264    ///
1265    /// assert_eq!(*values, [1, 2, 3])
1266    /// ```
1267    #[stable(feature = "new_uninit", since = "1.82.0")]
1268    #[inline]
1269    pub unsafe fn assume_init(self) -> Box<[T], A> {
1270        let (raw, alloc) = Box::into_raw_with_allocator(self);
1271        unsafe { Box::from_raw_in(raw as *mut [T], alloc) }
1272    }
1273}
1274
1275impl<T: ?Sized> Box<T> {
1276    /// Constructs a box from a raw pointer.
1277    ///
1278    /// After calling this function, the raw pointer is owned by the
1279    /// resulting `Box`. Specifically, the `Box` destructor will call
1280    /// the destructor of `T` and free the allocated memory. For this
1281    /// to be safe, the memory must have been allocated in accordance
1282    /// with the [memory layout] used by `Box` .
1283    ///
1284    /// # Safety
1285    ///
1286    /// This function is unsafe because improper use may lead to
1287    /// memory problems. For example, a double-free may occur if the
1288    /// function is called twice on the same raw pointer.
1289    ///
1290    /// The raw pointer must point to a block of memory allocated by the global allocator.
1291    ///
1292    /// The safety conditions are described in the [memory layout] section.
1293    /// Note that the [considerations for unsafe code] apply to all `Box<T>` values.
1294    ///
1295    /// # Examples
1296    ///
1297    /// Recreate a `Box` which was previously converted to a raw pointer
1298    /// using [`Box::into_raw`]:
1299    /// ```
1300    /// let x = Box::new(5);
1301    /// let ptr = Box::into_raw(x);
1302    /// let x = unsafe { Box::from_raw(ptr) };
1303    /// ```
1304    /// Manually create a `Box` from scratch by using the global allocator:
1305    /// ```
1306    /// use std::alloc::{alloc, Layout};
1307    ///
1308    /// unsafe {
1309    ///     let ptr = alloc(Layout::new::<i32>()) as *mut i32;
1310    ///     // In general .write is required to avoid attempting to destruct
1311    ///     // the (uninitialized) previous contents of `ptr`, though for this
1312    ///     // simple example `*ptr = 5` would have worked as well.
1313    ///     ptr.write(5);
1314    ///     let x = Box::from_raw(ptr);
1315    /// }
1316    /// ```
1317    ///
1318    /// [memory layout]: self#memory-layout
1319    /// [considerations for unsafe code]: self#considerations-for-unsafe-code
1320    #[stable(feature = "box_raw", since = "1.4.0")]
1321    #[inline]
1322    #[must_use = "call `drop(Box::from_raw(ptr))` if you intend to drop the `Box`"]
1323    pub unsafe fn from_raw(raw: *mut T) -> Self {
1324        unsafe { Self::from_raw_in(raw, Global) }
1325    }
1326
1327    /// Constructs a box from a `NonNull` pointer.
1328    ///
1329    /// After calling this function, the `NonNull` pointer is owned by
1330    /// the resulting `Box`. Specifically, the `Box` destructor will call
1331    /// the destructor of `T` and free the allocated memory. For this
1332    /// to be safe, the memory must have been allocated in accordance
1333    /// with the [memory layout] used by `Box` .
1334    ///
1335    /// # Safety
1336    ///
1337    /// This function is unsafe because improper use may lead to
1338    /// memory problems. For example, a double-free may occur if the
1339    /// function is called twice on the same `NonNull` pointer.
1340    ///
1341    /// The non-null pointer must point to a block of memory allocated by the global allocator.
1342    ///
1343    /// The safety conditions are described in the [memory layout] section.
1344    /// Note that the [considerations for unsafe code] apply to all `Box<T>` values.
1345    ///
1346    /// # Examples
1347    ///
1348    /// Recreate a `Box` which was previously converted to a `NonNull`
1349    /// pointer using [`Box::into_non_null`]:
1350    /// ```
1351    /// let x = Box::new(5);
1352    /// let non_null = Box::into_non_null(x);
1353    /// let x = unsafe { Box::from_non_null(non_null) };
1354    /// ```
1355    /// Manually create a `Box` from scratch by using the global allocator:
1356    /// ```
1357    /// use std::alloc::{alloc, Layout};
1358    /// use std::ptr::NonNull;
1359    ///
1360    /// unsafe {
1361    ///     let non_null = NonNull::new(alloc(Layout::new::<i32>()).cast::<i32>())
1362    ///         .expect("alloc should have successfully allocated memory");
1363    ///     // In general .write is required to avoid attempting to destruct
1364    ///     // the (uninitialized) previous contents of `non_null`.
1365    ///     non_null.write(5);
1366    ///     let x = Box::from_non_null(non_null);
1367    /// }
1368    /// ```
1369    ///
1370    /// [memory layout]: self#memory-layout
1371    /// [considerations for unsafe code]: self#considerations-for-unsafe-code
1372    #[stable(feature = "box_vec_non_null", since = "1.99.0")]
1373    #[inline]
1374    #[must_use = "call `drop(Box::from_non_null(ptr))` if you intend to drop the `Box`"]
1375    pub unsafe fn from_non_null(ptr: NonNull<T>) -> Self {
1376        unsafe { Self::from_raw(ptr.as_ptr()) }
1377    }
1378
1379    /// Consumes the `Box`, returning a wrapped raw pointer.
1380    ///
1381    /// The pointer will be properly aligned and non-null.
1382    ///
1383    /// After calling this function, the caller is responsible for the
1384    /// memory previously managed by the `Box`. In particular, the
1385    /// caller should properly destroy `T` and release the memory, taking
1386    /// into account the [memory layout] used by `Box`. The easiest way to
1387    /// do this is to convert the raw pointer back into a `Box` with the
1388    /// [`Box::from_raw`] function, allowing the `Box` destructor to perform
1389    /// the cleanup.
1390    ///
1391    /// Note: this is an associated function, which means that you have
1392    /// to call it as `Box::into_raw(b)` instead of `b.into_raw()`. This
1393    /// is so that there is no conflict with a method on the inner type.
1394    ///
1395    /// # Examples
1396    /// Converting the raw pointer back into a `Box` with [`Box::from_raw`]
1397    /// for automatic cleanup:
1398    /// ```
1399    /// let x = Box::new(String::from("Hello"));
1400    /// let ptr = Box::into_raw(x);
1401    /// let x = unsafe { Box::from_raw(ptr) };
1402    /// ```
1403    /// Manual cleanup by explicitly running the destructor and deallocating
1404    /// the memory:
1405    /// ```
1406    /// use std::alloc::{dealloc, Layout};
1407    /// use std::ptr;
1408    ///
1409    /// let x = Box::new(String::from("Hello"));
1410    /// let ptr = Box::into_raw(x);
1411    /// unsafe {
1412    ///     ptr::drop_in_place(ptr);
1413    ///     dealloc(ptr as *mut u8, Layout::new::<String>());
1414    /// }
1415    /// ```
1416    /// Note: This is equivalent to the following:
1417    /// ```
1418    /// let x = Box::new(String::from("Hello"));
1419    /// let ptr = Box::into_raw(x);
1420    /// unsafe {
1421    ///     drop(Box::from_raw(ptr));
1422    /// }
1423    /// ```
1424    ///
1425    /// [memory layout]: self#memory-layout
1426    #[must_use = "losing the pointer will leak memory"]
1427    #[stable(feature = "box_raw", since = "1.4.0")]
1428    #[inline]
1429    pub fn into_raw(b: Self) -> *mut T {
1430        // Avoid `into_raw_with_allocator` as that interacts poorly with Miri's Stacked Borrows.
1431        let mut b = mem::ManuallyDrop::new(b);
1432        // We need to give Miri (specifically, Stacked Borrows) a chance to recognize this as a
1433        // safe-to-raw-pointer cast. To achieve this, we first create a mutable reference, and then
1434        // cast that to a raw pointer -- this cast is recognized by the aliasing model and leads to
1435        // a suitable retag.
1436        // It would be wrong for `into_raw_with_allocator` to do the same as that would induce
1437        // uniqueness assumptions (from the `&mut`) that we only want with the default allocator.
1438        (&mut **b) as *mut T
1439    }
1440
1441    /// Consumes the `Box`, returning a wrapped `NonNull` pointer.
1442    ///
1443    /// The pointer will be properly aligned.
1444    ///
1445    /// After calling this function, the caller is responsible for the
1446    /// memory previously managed by the `Box`. In particular, the
1447    /// caller should properly destroy `T` and release the memory, taking
1448    /// into account the [memory layout] used by `Box`. The easiest way to
1449    /// do this is to convert the `NonNull` pointer back into a `Box` with the
1450    /// [`Box::from_non_null`] function, allowing the `Box` destructor to
1451    /// perform the cleanup.
1452    ///
1453    /// Note: this is an associated function, which means that you have
1454    /// to call it as `Box::into_non_null(b)` instead of `b.into_non_null()`.
1455    /// This is so that there is no conflict with a method on the inner type.
1456    ///
1457    /// # Examples
1458    /// Converting the `NonNull` pointer back into a `Box` with [`Box::from_non_null`]
1459    /// for automatic cleanup:
1460    /// ```
1461    /// let x = Box::new(String::from("Hello"));
1462    /// let non_null = Box::into_non_null(x);
1463    /// let x = unsafe { Box::from_non_null(non_null) };
1464    /// ```
1465    /// Manual cleanup by explicitly running the destructor and deallocating
1466    /// the memory:
1467    /// ```
1468    /// use std::alloc::{dealloc, Layout};
1469    ///
1470    /// let x = Box::new(String::from("Hello"));
1471    /// let non_null = Box::into_non_null(x);
1472    /// unsafe {
1473    ///     non_null.drop_in_place();
1474    ///     dealloc(non_null.as_ptr().cast::<u8>(), Layout::new::<String>());
1475    /// }
1476    /// ```
1477    /// Note: This is equivalent to the following:
1478    /// ```
1479    /// let x = Box::new(String::from("Hello"));
1480    /// let non_null = Box::into_non_null(x);
1481    /// unsafe {
1482    ///     drop(Box::from_non_null(non_null));
1483    /// }
1484    /// ```
1485    ///
1486    /// [memory layout]: self#memory-layout
1487    #[must_use = "losing the pointer will leak memory"]
1488    #[stable(feature = "box_vec_non_null", since = "1.99.0")]
1489    #[inline]
1490    pub fn into_non_null(b: Self) -> NonNull<T> {
1491        // As of August 2026, we cannot utilize `Box::leak`
1492        // because whether or not you can reconstruct the `Box`
1493        // later using `Box::from_raw` or `Box::from_non_null` is
1494        // an open question.
1495        // SAFETY: `Box` is guaranteed to be non-null.
1496        unsafe { NonNull::new_unchecked(Self::into_raw(b)) }
1497    }
1498}
1499
1500impl<T: ?Sized, A: Allocator> Box<T, A> {
1501    /// Constructs a box from a raw pointer in the given allocator.
1502    ///
1503    /// After calling this function, the raw pointer is owned by the
1504    /// resulting `Box`. Specifically, the `Box` destructor will call
1505    /// the destructor of `T` and free the allocated memory. For this
1506    /// to be safe, the memory must have been allocated in accordance
1507    /// with the [memory layout] used by `Box` .
1508    ///
1509    /// # Safety
1510    ///
1511    /// This function is unsafe because improper use may lead to
1512    /// memory problems. For example, a double-free may occur if the
1513    /// function is called twice on the same raw pointer.
1514    ///
1515    /// The raw pointer must point to a block of memory allocated by `alloc`.
1516    ///
1517    /// The safety conditions are described in the [memory layout] section.
1518    /// Note that the [considerations for unsafe code] apply to all `Box<T, A>` values.
1519    ///
1520    /// # Examples
1521    ///
1522    /// Recreate a `Box` which was previously converted to a raw pointer
1523    /// using [`Box::into_raw_with_allocator`]:
1524    /// ```
1525    /// #![feature(allocator_api)]
1526    ///
1527    /// use std::alloc::System;
1528    ///
1529    /// let x = Box::new_in(5, System);
1530    /// let (ptr, alloc) = Box::into_raw_with_allocator(x);
1531    /// let x = unsafe { Box::from_raw_in(ptr, alloc) };
1532    /// ```
1533    /// Manually create a `Box` from scratch by using the system allocator:
1534    /// ```
1535    /// #![feature(allocator_api, slice_ptr_get)]
1536    ///
1537    /// use std::alloc::{Allocator, Layout, System};
1538    ///
1539    /// unsafe {
1540    ///     let ptr = System.allocate(Layout::new::<i32>())?.as_mut_ptr() as *mut i32;
1541    ///     // In general .write is required to avoid attempting to destruct
1542    ///     // the (uninitialized) previous contents of `ptr`, though for this
1543    ///     // simple example `*ptr = 5` would have worked as well.
1544    ///     ptr.write(5);
1545    ///     let x = Box::from_raw_in(ptr, System);
1546    /// }
1547    /// # Ok::<(), std::alloc::AllocError>(())
1548    /// ```
1549    ///
1550    /// [memory layout]: self#memory-layout
1551    /// [considerations for unsafe code]: self#considerations-for-unsafe-code
1552    #[unstable(feature = "allocator_api", issue = "32838")]
1553    #[inline]
1554    pub unsafe fn from_raw_in(raw: *mut T, alloc: A) -> Self {
1555        Box(unsafe { Unique::new_unchecked(raw) }, alloc)
1556    }
1557
1558    /// Constructs a box from a `NonNull` pointer in the given allocator.
1559    ///
1560    /// After calling this function, the `NonNull` pointer is owned by
1561    /// the resulting `Box`. Specifically, the `Box` destructor will call
1562    /// the destructor of `T` and free the allocated memory. For this
1563    /// to be safe, the memory must have been allocated in accordance
1564    /// with the [memory layout] used by `Box` .
1565    ///
1566    /// # Safety
1567    ///
1568    /// This function is unsafe because improper use may lead to
1569    /// memory problems. For example, a double-free may occur if the
1570    /// function is called twice on the same raw pointer.
1571    ///
1572    /// The non-null pointer must point to a block of memory allocated by `alloc`.
1573    ///
1574    /// The safety conditions are described in the [memory layout] section.
1575    /// Note that the [considerations for unsafe code] apply to all `Box<T, A>` values.
1576    ///
1577    /// # Examples
1578    ///
1579    /// Recreate a `Box` which was previously converted to a `NonNull` pointer
1580    /// using [`Box::into_non_null_with_allocator`]:
1581    /// ```
1582    /// #![feature(allocator_api)]
1583    ///
1584    /// use std::alloc::System;
1585    ///
1586    /// let x = Box::new_in(5, System);
1587    /// let (non_null, alloc) = Box::into_non_null_with_allocator(x);
1588    /// let x = unsafe { Box::from_non_null_in(non_null, alloc) };
1589    /// ```
1590    /// Manually create a `Box` from scratch by using the system allocator:
1591    /// ```
1592    /// #![feature(allocator_api)]
1593    ///
1594    /// use std::alloc::{Allocator, Layout, System};
1595    ///
1596    /// unsafe {
1597    ///     let non_null = System.allocate(Layout::new::<i32>())?.cast::<i32>();
1598    ///     // In general .write is required to avoid attempting to destruct
1599    ///     // the (uninitialized) previous contents of `non_null`.
1600    ///     non_null.write(5);
1601    ///     let x = Box::from_non_null_in(non_null, System);
1602    /// }
1603    /// # Ok::<(), std::alloc::AllocError>(())
1604    /// ```
1605    ///
1606    /// [memory layout]: self#memory-layout
1607    /// [considerations for unsafe code]: self#considerations-for-unsafe-code
1608    #[unstable(feature = "allocator_api", issue = "32838")]
1609    #[inline]
1610    pub unsafe fn from_non_null_in(raw: NonNull<T>, alloc: A) -> Self {
1611        // SAFETY: guaranteed by the caller.
1612        unsafe { Box::from_raw_in(raw.as_ptr(), alloc) }
1613    }
1614
1615    /// Consumes the `Box`, returning a wrapped raw pointer and the allocator.
1616    ///
1617    /// The pointer will be properly aligned and non-null.
1618    ///
1619    /// After calling this function, the caller is responsible for the
1620    /// memory previously managed by the `Box`. In particular, the
1621    /// caller should properly destroy `T` and release the memory, taking
1622    /// into account the [memory layout] used by `Box`. The easiest way to
1623    /// do this is to convert the raw pointer back into a `Box` with the
1624    /// [`Box::from_raw_in`] function, allowing the `Box` destructor to perform
1625    /// the cleanup.
1626    ///
1627    /// Note: this is an associated function, which means that you have
1628    /// to call it as `Box::into_raw_with_allocator(b)` instead of `b.into_raw_with_allocator()`. This
1629    /// is so that there is no conflict with a method on the inner type.
1630    ///
1631    /// # Examples
1632    /// Converting the raw pointer back into a `Box` with [`Box::from_raw_in`]
1633    /// for automatic cleanup:
1634    /// ```
1635    /// #![feature(allocator_api)]
1636    ///
1637    /// use std::alloc::System;
1638    ///
1639    /// let x = Box::new_in(String::from("Hello"), System);
1640    /// let (ptr, alloc) = Box::into_raw_with_allocator(x);
1641    /// let x = unsafe { Box::from_raw_in(ptr, alloc) };
1642    /// ```
1643    /// Manual cleanup by explicitly running the destructor and deallocating
1644    /// the memory:
1645    /// ```
1646    /// #![feature(allocator_api)]
1647    ///
1648    /// use std::alloc::{Allocator, Layout, System};
1649    /// use std::ptr::{self, NonNull};
1650    ///
1651    /// let x = Box::new_in(String::from("Hello"), System);
1652    /// let (ptr, alloc) = Box::into_raw_with_allocator(x);
1653    /// unsafe {
1654    ///     ptr::drop_in_place(ptr);
1655    ///     let non_null = NonNull::new_unchecked(ptr);
1656    ///     alloc.deallocate(non_null.cast(), Layout::new::<String>());
1657    /// }
1658    /// ```
1659    ///
1660    /// [memory layout]: self#memory-layout
1661    #[must_use = "losing the pointer will leak memory"]
1662    #[unstable(feature = "allocator_api", issue = "32838")]
1663    #[rustc_const_unstable(feature = "const_heap", issue = "79597")]
1664    #[inline]
1665    pub const fn into_raw_with_allocator(b: Self) -> (*mut T, A) {
1666        let mut b = mem::ManuallyDrop::new(b);
1667        // We carefully get the raw pointer out in a way that Miri's aliasing model understands what
1668        // is happening: using the primitive "deref" of `Box`. In case `A` is *not* `Global`, we
1669        // want *no* aliasing requirements here!
1670        // In case `A` *is* `Global`, this does not quite have the right behavior; `into_raw`
1671        // works around that.
1672        let ptr = &raw mut **b;
1673        let alloc = unsafe { ptr::read(&b.1) };
1674        (ptr, alloc)
1675    }
1676
1677    /// Consumes the `Box`, returning a wrapped `NonNull` pointer and the allocator.
1678    ///
1679    /// The pointer will be properly aligned.
1680    ///
1681    /// After calling this function, the caller is responsible for the
1682    /// memory previously managed by the `Box`. In particular, the
1683    /// caller should properly destroy `T` and release the memory, taking
1684    /// into account the [memory layout] used by `Box`. The easiest way to
1685    /// do this is to convert the `NonNull` pointer back into a `Box` with the
1686    /// [`Box::from_non_null_in`] function, allowing the `Box` destructor to
1687    /// perform the cleanup.
1688    ///
1689    /// Note: this is an associated function, which means that you have
1690    /// to call it as `Box::into_non_null_with_allocator(b)` instead of
1691    /// `b.into_non_null_with_allocator()`. This is so that there is no
1692    /// conflict with a method on the inner type.
1693    ///
1694    /// # Examples
1695    /// Converting the `NonNull` pointer back into a `Box` with
1696    /// [`Box::from_non_null_in`] for automatic cleanup:
1697    /// ```
1698    /// #![feature(allocator_api)]
1699    ///
1700    /// use std::alloc::System;
1701    ///
1702    /// let x = Box::new_in(String::from("Hello"), System);
1703    /// let (non_null, alloc) = Box::into_non_null_with_allocator(x);
1704    /// let x = unsafe { Box::from_non_null_in(non_null, alloc) };
1705    /// ```
1706    /// Manual cleanup by explicitly running the destructor and deallocating
1707    /// the memory:
1708    /// ```
1709    /// #![feature(allocator_api)]
1710    ///
1711    /// use std::alloc::{Allocator, Layout, System};
1712    ///
1713    /// let x = Box::new_in(String::from("Hello"), System);
1714    /// let (non_null, alloc) = Box::into_non_null_with_allocator(x);
1715    /// unsafe {
1716    ///     non_null.drop_in_place();
1717    ///     alloc.deallocate(non_null.cast::<u8>(), Layout::new::<String>());
1718    /// }
1719    /// ```
1720    ///
1721    /// [memory layout]: self#memory-layout
1722    #[must_use = "losing the pointer will leak memory"]
1723    #[unstable(feature = "allocator_api", issue = "32838")]
1724    #[inline]
1725    pub fn into_non_null_with_allocator(b: Self) -> (NonNull<T>, A) {
1726        let (ptr, alloc) = Box::into_raw_with_allocator(b);
1727        // SAFETY: `Box` is guaranteed to be non-null.
1728        unsafe { (NonNull::new_unchecked(ptr), alloc) }
1729    }
1730
1731    #[unstable(
1732        feature = "ptr_internals",
1733        issue = "none",
1734        reason = "use `Box::leak(b).into()` or `Unique::from(Box::leak(b))` instead"
1735    )]
1736    #[inline]
1737    #[doc(hidden)]
1738    pub fn into_unique(b: Self) -> (Unique<T>, A) {
1739        let (ptr, alloc) = Box::into_raw_with_allocator(b);
1740        unsafe { (Unique::from(&mut *ptr), alloc) }
1741    }
1742
1743    /// Returns a raw mutable pointer to the `Box`'s contents.
1744    ///
1745    /// The caller must ensure that the `Box` outlives the pointer this
1746    /// function returns, or else it will end up dangling.
1747    ///
1748    /// This method guarantees that for the purpose of the aliasing model, this method
1749    /// does not materialize a reference to the underlying memory, and thus the returned pointer
1750    /// will remain valid when mixed with other calls to [`as_ptr`], [`as_mut_ptr`], and [`as_non_null`].
1751    /// Note that calling other methods that materialize references to the memory
1752    /// may still invalidate this pointer.
1753    /// See the example below for how this guarantee can be used.
1754    ///
1755    /// # Examples
1756    ///
1757    /// Due to the aliasing guarantee, the following code is legal:
1758    ///
1759    /// ```rust
1760    /// unsafe {
1761    ///     let mut b = Box::new(0);
1762    ///     let ptr1 = Box::as_mut_ptr(&mut b);
1763    ///     ptr1.write(1);
1764    ///     let ptr2 = Box::as_mut_ptr(&mut b);
1765    ///     ptr2.write(2);
1766    ///     // Notably, the write to `ptr2` did *not* invalidate `ptr1`:
1767    ///     ptr1.write(3);
1768    /// }
1769    /// ```
1770    ///
1771    /// [`as_mut_ptr`]: Self::as_mut_ptr
1772    /// [`as_ptr`]: Self::as_ptr
1773    /// [`as_non_null`]: Self::as_non_null
1774    #[must_use]
1775    #[stable(feature = "box_as_ptr", since = "1.98.0")]
1776    #[rustc_never_returns_null_ptr]
1777    #[rustc_as_ptr]
1778    #[inline]
1779    pub fn as_mut_ptr(b: &mut Self) -> *mut T {
1780        // This is a primitive deref, not going through `DerefMut`, and therefore not materializing
1781        // any references.
1782        &raw mut **b
1783    }
1784
1785    /// Returns a raw pointer to the `Box`'s contents.
1786    ///
1787    /// The caller must ensure that the `Box` outlives the pointer this
1788    /// function returns, or else it will end up dangling.
1789    ///
1790    /// The caller must also ensure that the memory the pointer (non-transitively) points to
1791    /// is never written to (except inside an `UnsafeCell`) using this pointer or any pointer
1792    /// derived from it. If you need to mutate the contents of the `Box`, use [`as_mut_ptr`].
1793    ///
1794    /// This method guarantees that for the purpose of the aliasing model, this method
1795    /// does not materialize a reference to the underlying memory, and thus the returned pointer
1796    /// will remain valid when mixed with other calls to [`as_ptr`], [`as_mut_ptr`], and [`as_non_null`].
1797    /// Note that calling other methods that materialize mutable references to the memory,
1798    /// as well as writing to this memory, may still invalidate this pointer.
1799    /// See the example below for how this guarantee can be used.
1800    ///
1801    /// # Examples
1802    ///
1803    /// Due to the aliasing guarantee, the following code is legal:
1804    ///
1805    /// ```rust
1806    /// unsafe {
1807    ///     let mut v = Box::new(0);
1808    ///     let ptr1 = Box::as_ptr(&v);
1809    ///     let ptr2 = Box::as_mut_ptr(&mut v);
1810    ///     let _val = ptr2.read();
1811    ///     // No write to this memory has happened yet, so `ptr1` is still valid.
1812    ///     let _val = ptr1.read();
1813    ///     // However, once we do a write...
1814    ///     ptr2.write(1);
1815    ///     // ... `ptr1` is no longer valid.
1816    ///     // This would be UB: let _val = ptr1.read();
1817    /// }
1818    /// ```
1819    ///
1820    /// [`as_mut_ptr`]: Self::as_mut_ptr
1821    /// [`as_ptr`]: Self::as_ptr
1822    /// [`as_non_null`]: Self::as_non_null
1823    #[must_use]
1824    #[stable(feature = "box_as_ptr", since = "1.98.0")]
1825    #[rustc_never_returns_null_ptr]
1826    #[rustc_as_ptr]
1827    #[inline]
1828    pub fn as_ptr(b: &Self) -> *const T {
1829        // This is a primitive deref, not going through `DerefMut`, and therefore not materializing
1830        // any references.
1831        &raw const **b
1832    }
1833
1834    /// Returns a `NonNull` pointer to the `Box`'s contents.
1835    ///
1836    /// The caller must ensure that the `Box` outlives the pointer this
1837    /// function returns, or else it will end up dangling.
1838    ///
1839    /// This method guarantees that for the purpose of the aliasing model, this method
1840    /// does not materialize a reference to the underlying memory, and thus the returned pointer
1841    /// will remain valid when mixed with other calls to [`as_ptr`], [`as_mut_ptr`], and [`as_non_null`].
1842    /// Note that calling other methods that materialize references to the memory
1843    /// may still invalidate this pointer.
1844    /// See the example below for how this guarantee can be used.
1845    ///
1846    /// # Examples
1847    ///
1848    /// Due to the aliasing guarantee, the following code is legal:
1849    ///
1850    /// ```rust
1851    /// #![feature(box_as_non_null)]
1852    ///
1853    /// unsafe {
1854    ///     let mut b = Box::new(0);
1855    ///     let ptr1 = Box::as_non_null(&mut b);
1856    ///     ptr1.write(1);
1857    ///     let ptr2 = Box::as_non_null(&mut b);
1858    ///     ptr2.write(2);
1859    ///     // Notably, the write to `ptr2` did *not* invalidate `ptr1`:
1860    ///     ptr1.write(3);
1861    /// }
1862    /// ```
1863    ///
1864    /// [`as_mut_ptr`]: Self::as_mut_ptr
1865    /// [`as_ptr`]: Self::as_ptr
1866    /// [`as_non_null`]: Self::as_non_null
1867    #[must_use]
1868    #[unstable(feature = "box_as_non_null", issue = "157345")]
1869    #[rustc_as_ptr]
1870    #[inline]
1871    pub fn as_non_null(b: &mut Self) -> NonNull<T> {
1872        // SAFETY: `Box` is guaranteed to be non-null.
1873        unsafe { NonNull::new_unchecked(Self::as_mut_ptr(b)) }
1874    }
1875
1876    /// Returns a reference to the underlying allocator.
1877    ///
1878    /// Note: this is an associated function, which means that you have
1879    /// to call it as `Box::allocator(&b)` instead of `b.allocator()`. This
1880    /// is so that there is no conflict with a method on the inner type.
1881    #[unstable(feature = "allocator_api", issue = "32838")]
1882    #[inline]
1883    pub fn allocator(b: &Self) -> &A {
1884        &b.1
1885    }
1886
1887    /// Consumes and leaks the `Box`, returning a mutable reference,
1888    /// `&'a mut T`.
1889    ///
1890    /// Note that the type `T` must outlive the chosen lifetime `'a`. If the type
1891    /// has only static references, or none at all, then this may be chosen to be
1892    /// `'static`.
1893    ///
1894    /// This function is mainly useful for data that lives for the remainder of the program's life,
1895    /// i.e., memory that is meant to leak. If the memory should eventually be freed, prefer to use
1896    /// [`Box::into_raw`] or [`Box::into_non_null`] instead. Reconstructing ("unleaking") a `Box` from
1897    /// the mutable reference returned here (e.g. via [`Box::from_raw`]) is only possible if the
1898    /// allocator is `Global`, and even then it is a grey area (meaning it is possible under specific
1899    /// circumstances but many seemingly harmless ways of doing it are undefined behavior) and should
1900    /// be avoided.
1901    ///
1902    /// Note: this is an associated function, which means that you have
1903    /// to call it as `Box::leak(b)` instead of `b.leak()`. This
1904    /// is so that there is no conflict with a method on the inner type.
1905    ///
1906    /// # Examples
1907    ///
1908    /// Simple usage:
1909    ///
1910    /// ```
1911    /// let x = Box::new(41);
1912    /// let static_ref: &'static mut usize = Box::leak(x);
1913    /// *static_ref += 1;
1914    /// assert_eq!(*static_ref, 42);
1915    /// # // FIXME(https://github.com/rust-lang/miri/issues/3670):
1916    /// # // use -Zmiri-disable-leak-check instead of unleaking in tests meant to leak.
1917    /// # drop(unsafe { Box::from_raw(static_ref) });
1918    /// ```
1919    ///
1920    /// Unsized data:
1921    ///
1922    /// ```
1923    /// let x = vec![1, 2, 3].into_boxed_slice();
1924    /// let static_ref = Box::leak(x);
1925    /// static_ref[0] = 4;
1926    /// assert_eq!(*static_ref, [4, 2, 3]);
1927    /// # // FIXME(https://github.com/rust-lang/miri/issues/3670):
1928    /// # // use -Zmiri-disable-leak-check instead of unleaking in tests meant to leak.
1929    /// # drop(unsafe { Box::from_raw(static_ref) });
1930    /// ```
1931    #[stable(feature = "box_leak", since = "1.26.0")]
1932    #[inline]
1933    pub fn leak<'a>(b: Self) -> &'a mut T
1934    where
1935        A: 'a,
1936    {
1937        let (ptr, alloc) = Box::into_raw_with_allocator(b);
1938        mem::forget(alloc);
1939        unsafe { &mut *ptr }
1940    }
1941
1942    /// Converts a `Box<T>` into a `Pin<Box<T>>`. If `T` does not implement [`Unpin`], then
1943    /// `*boxed` will be pinned in memory and unable to be moved.
1944    ///
1945    /// This conversion does not allocate on the heap and happens in place.
1946    ///
1947    /// This is also available via [`From`].
1948    ///
1949    /// Constructing and pinning a `Box` with <code>Box::into_pin([Box::new]\(x))</code>
1950    /// can also be written more concisely using <code>[Box::pin]\(x)</code>.
1951    /// This `into_pin` method is useful if you already have a `Box<T>`, or you are
1952    /// constructing a (pinned) `Box` in a different way than with [`Box::new`].
1953    ///
1954    /// # Notes
1955    ///
1956    /// It's not recommended that crates add an impl like `From<Box<T>> for Pin<T>`,
1957    /// as it'll introduce an ambiguity when calling `Pin::from`.
1958    /// A demonstration of such a poor impl is shown below.
1959    ///
1960    /// ```compile_fail
1961    /// # use std::pin::Pin;
1962    /// struct Foo; // A type defined in this crate.
1963    /// impl From<Box<()>> for Pin<Foo> {
1964    ///     fn from(_: Box<()>) -> Pin<Foo> {
1965    ///         Pin::new(Foo)
1966    ///     }
1967    /// }
1968    ///
1969    /// let foo = Box::new(());
1970    /// let bar = Pin::from(foo);
1971    /// ```
1972    #[stable(feature = "box_into_pin", since = "1.63.0")]
1973    pub fn into_pin(boxed: Self) -> Pin<Self>
1974    where
1975        A: StaticAllocator,
1976    {
1977        // It's not possible to move or replace the insides of a `Pin<Box<T>>`
1978        // when `T: !Unpin`, so it's safe to pin it directly without any
1979        // additional requirements.
1980        unsafe { Pin::new_unchecked(boxed) }
1981    }
1982}
1983
1984#[stable(feature = "rust1", since = "1.0.0")]
1985unsafe impl<#[may_dangle] T: ?Sized, A: Allocator> Drop for Box<T, A> {
1986    #[inline]
1987    fn drop(&mut self) {
1988        // the T in the Box is dropped by the compiler before the destructor is run
1989
1990        let ptr = self.0;
1991
1992        unsafe {
1993            let layout = Layout::for_value_raw(ptr.as_ptr());
1994            if layout.size() != 0 {
1995                self.1.deallocate(From::from(ptr.cast()), layout);
1996            }
1997        }
1998    }
1999}
2000
2001#[cfg(not(no_global_oom_handling))]
2002#[stable(feature = "rust1", since = "1.0.0")]
2003impl<T: Default> Default for Box<T> {
2004    /// Creates a `Box<T>`, with the `Default` value for `T`.
2005    #[inline]
2006    fn default() -> Self {
2007        let mut x: Box<mem::MaybeUninit<T>> = Box::new_uninit();
2008        unsafe {
2009            // SAFETY: `x` is valid for writing and has the same layout as `T`.
2010            // If `T::default()` panics, dropping `x` will just deallocate the Box as `MaybeUninit<T>`
2011            // does not have a destructor.
2012            //
2013            // We use `ptr::write` as `MaybeUninit::write` creates
2014            // extra stack copies of `T` in debug mode.
2015            //
2016            // See https://github.com/rust-lang/rust/issues/136043 for more context.
2017            ptr::write(&raw mut *x as *mut T, T::default());
2018            // SAFETY: `x` was just initialized above.
2019            x.assume_init()
2020        }
2021    }
2022}
2023
2024#[cfg(not(no_global_oom_handling))]
2025#[stable(feature = "rust1", since = "1.0.0")]
2026impl<T> Default for Box<[T]> {
2027    /// Creates an empty `[T]` inside a `Box`.
2028    #[inline]
2029    fn default() -> Self {
2030        let ptr: Unique<[T]> = Unique::<[T; 0]>::dangling();
2031        Box(ptr, Global)
2032    }
2033}
2034
2035#[cfg(not(no_global_oom_handling))]
2036#[stable(feature = "default_box_extra", since = "1.17.0")]
2037impl Default for Box<str> {
2038    #[inline]
2039    fn default() -> Self {
2040        // SAFETY: This is the same as `Unique::cast<U>` but with an unsized `U = str`.
2041        let ptr: Unique<str> = unsafe {
2042            let bytes: Unique<[u8]> = Unique::<[u8; 0]>::dangling();
2043            Unique::new_unchecked(bytes.as_ptr() as *mut str)
2044        };
2045        Box(ptr, Global)
2046    }
2047}
2048
2049#[cfg(not(no_global_oom_handling))]
2050#[stable(feature = "pin_default_impls", since = "1.91.0")]
2051impl<T> Default for Pin<Box<T>>
2052where
2053    T: ?Sized,
2054    Box<T>: Default,
2055{
2056    #[inline]
2057    fn default() -> Self {
2058        Box::into_pin(Box::<T>::default())
2059    }
2060}
2061
2062#[cfg(not(no_global_oom_handling))]
2063#[stable(feature = "rust1", since = "1.0.0")]
2064// NB: This is not `AllocatorClone` since we don't care about allocator
2065// equivalence when cloning boxes.
2066impl<T: Clone, A: Allocator + Clone> Clone for Box<T, A> {
2067    /// Returns a new box with a `clone()` of this box's contents.
2068    ///
2069    /// # Examples
2070    ///
2071    /// ```
2072    /// let x = Box::new(5);
2073    /// let y = x.clone();
2074    ///
2075    /// // The value is the same
2076    /// assert_eq!(x, y);
2077    ///
2078    /// // But they are unique objects
2079    /// assert_ne!(&*x as *const i32, &*y as *const i32);
2080    /// ```
2081    #[inline]
2082    fn clone(&self) -> Self {
2083        // Pre-allocate memory to allow writing the cloned value directly.
2084        let mut boxed = Self::new_uninit_in(self.1.clone());
2085        unsafe {
2086            (**self).clone_to_uninit(boxed.as_mut_ptr().cast());
2087            boxed.assume_init()
2088        }
2089    }
2090
2091    /// Copies `source`'s contents into `self` without creating a new allocation.
2092    ///
2093    /// # Examples
2094    ///
2095    /// ```
2096    /// let x = Box::new(5);
2097    /// let mut y = Box::new(10);
2098    /// let yp: *const i32 = &*y;
2099    ///
2100    /// y.clone_from(&x);
2101    ///
2102    /// // The value is the same
2103    /// assert_eq!(x, y);
2104    ///
2105    /// // And no allocation occurred
2106    /// assert_eq!(yp, &*y);
2107    /// ```
2108    #[inline]
2109    fn clone_from(&mut self, source: &Self) {
2110        (**self).clone_from(&(**source));
2111    }
2112}
2113
2114#[cfg(not(no_global_oom_handling))]
2115#[stable(feature = "box_slice_clone", since = "1.3.0")]
2116impl<T: Clone, A: Allocator + Clone> Clone for Box<[T], A> {
2117    fn clone(&self) -> Self {
2118        let alloc = Box::allocator(self).clone();
2119        self.to_vec_in(alloc).into_boxed_slice()
2120    }
2121
2122    /// Copies `source`'s contents into `self` without creating a new allocation,
2123    /// so long as the two are of the same length.
2124    ///
2125    /// # Examples
2126    ///
2127    /// ```
2128    /// let x = Box::new([5, 6, 7]);
2129    /// let mut y = Box::new([8, 9, 10]);
2130    /// let yp: *const [i32] = &*y;
2131    ///
2132    /// y.clone_from(&x);
2133    ///
2134    /// // The value is the same
2135    /// assert_eq!(x, y);
2136    ///
2137    /// // And no allocation occurred
2138    /// assert_eq!(yp, &*y);
2139    /// ```
2140    fn clone_from(&mut self, source: &Self) {
2141        if self.len() == source.len() {
2142            self.clone_from_slice(source);
2143        } else {
2144            *self = source.clone();
2145        }
2146    }
2147}
2148
2149#[cfg(not(no_global_oom_handling))]
2150#[stable(feature = "box_slice_clone", since = "1.3.0")]
2151impl<A: Allocator + Clone> Clone for Box<str, A> {
2152    fn clone(&self) -> Self {
2153        let buf = Box::clone_from_ref_in(self.as_bytes(), self.1.clone());
2154        unsafe { from_boxed_utf8_unchecked_in(buf) }
2155    }
2156}
2157
2158#[stable(feature = "rust1", since = "1.0.0")]
2159impl<T: ?Sized + PartialEq, A: Allocator> PartialEq for Box<T, A> {
2160    #[inline]
2161    fn eq(&self, other: &Self) -> bool {
2162        PartialEq::eq(&**self, &**other)
2163    }
2164    #[inline]
2165    fn ne(&self, other: &Self) -> bool {
2166        PartialEq::ne(&**self, &**other)
2167    }
2168}
2169
2170#[stable(feature = "rust1", since = "1.0.0")]
2171impl<T: ?Sized + PartialOrd, A: Allocator> PartialOrd for Box<T, A> {
2172    #[inline]
2173    fn partial_cmp(&self, other: &Self) -> Option<Ordering> {
2174        PartialOrd::partial_cmp(&**self, &**other)
2175    }
2176    #[inline]
2177    fn lt(&self, other: &Self) -> bool {
2178        PartialOrd::lt(&**self, &**other)
2179    }
2180    #[inline]
2181    fn le(&self, other: &Self) -> bool {
2182        PartialOrd::le(&**self, &**other)
2183    }
2184    #[inline]
2185    fn ge(&self, other: &Self) -> bool {
2186        PartialOrd::ge(&**self, &**other)
2187    }
2188    #[inline]
2189    fn gt(&self, other: &Self) -> bool {
2190        PartialOrd::gt(&**self, &**other)
2191    }
2192}
2193
2194#[stable(feature = "rust1", since = "1.0.0")]
2195impl<T: ?Sized + Ord, A: Allocator> Ord for Box<T, A> {
2196    #[inline]
2197    fn cmp(&self, other: &Self) -> Ordering {
2198        Ord::cmp(&**self, &**other)
2199    }
2200}
2201
2202#[stable(feature = "rust1", since = "1.0.0")]
2203impl<T: ?Sized + Eq, A: Allocator> Eq for Box<T, A> {}
2204
2205#[stable(feature = "rust1", since = "1.0.0")]
2206impl<T: ?Sized + Hash, A: Allocator> Hash for Box<T, A> {
2207    fn hash<H: Hasher>(&self, state: &mut H) {
2208        (**self).hash(state);
2209    }
2210}
2211
2212#[stable(feature = "indirect_hasher_impl", since = "1.22.0")]
2213impl<T: ?Sized + Hasher, A: Allocator> Hasher for Box<T, A> {
2214    fn finish(&self) -> u64 {
2215        (**self).finish()
2216    }
2217    fn write(&mut self, bytes: &[u8]) {
2218        (**self).write(bytes)
2219    }
2220    fn write_u8(&mut self, i: u8) {
2221        (**self).write_u8(i)
2222    }
2223    fn write_u16(&mut self, i: u16) {
2224        (**self).write_u16(i)
2225    }
2226    fn write_u32(&mut self, i: u32) {
2227        (**self).write_u32(i)
2228    }
2229    fn write_u64(&mut self, i: u64) {
2230        (**self).write_u64(i)
2231    }
2232    fn write_u128(&mut self, i: u128) {
2233        (**self).write_u128(i)
2234    }
2235    fn write_usize(&mut self, i: usize) {
2236        (**self).write_usize(i)
2237    }
2238    fn write_i8(&mut self, i: i8) {
2239        (**self).write_i8(i)
2240    }
2241    fn write_i16(&mut self, i: i16) {
2242        (**self).write_i16(i)
2243    }
2244    fn write_i32(&mut self, i: i32) {
2245        (**self).write_i32(i)
2246    }
2247    fn write_i64(&mut self, i: i64) {
2248        (**self).write_i64(i)
2249    }
2250    fn write_i128(&mut self, i: i128) {
2251        (**self).write_i128(i)
2252    }
2253    fn write_isize(&mut self, i: isize) {
2254        (**self).write_isize(i)
2255    }
2256    fn write_length_prefix(&mut self, len: usize) {
2257        (**self).write_length_prefix(len)
2258    }
2259    fn write_str(&mut self, s: &str) {
2260        (**self).write_str(s)
2261    }
2262}
2263
2264#[stable(feature = "rust1", since = "1.0.0")]
2265impl<T: fmt::Display + ?Sized, A: Allocator> fmt::Display for Box<T, A> {
2266    fn fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result {
2267        fmt::Display::fmt(&**self, f)
2268    }
2269}
2270
2271#[stable(feature = "rust1", since = "1.0.0")]
2272impl<T: fmt::Debug + ?Sized, A: Allocator> fmt::Debug for Box<T, A> {
2273    fn fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result {
2274        fmt::Debug::fmt(&**self, f)
2275    }
2276}
2277
2278#[stable(feature = "rust1", since = "1.0.0")]
2279impl<T: ?Sized, A: Allocator> fmt::Pointer for Box<T, A> {
2280    fn fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result {
2281        // It's not possible to extract the inner Uniq directly from the Box,
2282        // instead we cast it to a *const which aliases the Unique
2283        let ptr: *const T = &**self;
2284        fmt::Pointer::fmt(&ptr, f)
2285    }
2286}
2287
2288#[stable(feature = "rust1", since = "1.0.0")]
2289impl<T: ?Sized, A: Allocator> Deref for Box<T, A> {
2290    type Target = T;
2291
2292    fn deref(&self) -> &T {
2293        self
2294    }
2295}
2296
2297#[stable(feature = "rust1", since = "1.0.0")]
2298impl<T: ?Sized, A: Allocator> DerefMut for Box<T, A> {
2299    fn deref_mut(&mut self) -> &mut T {
2300        self
2301    }
2302}
2303
2304#[unstable(feature = "deref_pure_trait", issue = "87121")]
2305unsafe impl<T: ?Sized, A: Allocator> DerefPure for Box<T, A> {}
2306
2307#[unstable(feature = "legacy_receiver_trait", issue = "none")]
2308impl<T: ?Sized, A: Allocator> LegacyReceiver for Box<T, A> {}
2309
2310#[stable(feature = "boxed_closure_impls", since = "1.35.0")]
2311impl<Args: Tuple, F: FnOnce<Args> + ?Sized, A: Allocator> FnOnce<Args> for Box<F, A> {
2312    type Output = <F as FnOnce<Args>>::Output;
2313
2314    extern "rust-call" fn call_once(self, args: Args) -> Self::Output {
2315        <F as FnOnce<Args>>::call_once(*self, args)
2316    }
2317}
2318
2319#[stable(feature = "boxed_closure_impls", since = "1.35.0")]
2320impl<Args: Tuple, F: FnMut<Args> + ?Sized, A: Allocator> FnMut<Args> for Box<F, A> {
2321    extern "rust-call" fn call_mut(&mut self, args: Args) -> Self::Output {
2322        <F as FnMut<Args>>::call_mut(self, args)
2323    }
2324}
2325
2326#[stable(feature = "boxed_closure_impls", since = "1.35.0")]
2327impl<Args: Tuple, F: Fn<Args> + ?Sized, A: Allocator> Fn<Args> for Box<F, A> {
2328    extern "rust-call" fn call(&self, args: Args) -> Self::Output {
2329        <F as Fn<Args>>::call(self, args)
2330    }
2331}
2332
2333#[stable(feature = "async_closure", since = "1.85.0")]
2334impl<Args: Tuple, F: AsyncFnOnce<Args> + ?Sized, A: Allocator> AsyncFnOnce<Args> for Box<F, A> {
2335    type Output = F::Output;
2336    type CallOnceFuture = F::CallOnceFuture;
2337
2338    extern "rust-call" fn async_call_once(self, args: Args) -> Self::CallOnceFuture {
2339        F::async_call_once(*self, args)
2340    }
2341}
2342
2343#[stable(feature = "async_closure", since = "1.85.0")]
2344impl<Args: Tuple, F: AsyncFnMut<Args> + ?Sized, A: Allocator> AsyncFnMut<Args> for Box<F, A> {
2345    type CallRefFuture<'a>
2346        = F::CallRefFuture<'a>
2347    where
2348        Self: 'a;
2349
2350    extern "rust-call" fn async_call_mut(&mut self, args: Args) -> Self::CallRefFuture<'_> {
2351        F::async_call_mut(self, args)
2352    }
2353}
2354
2355#[stable(feature = "async_closure", since = "1.85.0")]
2356impl<Args: Tuple, F: AsyncFn<Args> + ?Sized, A: Allocator> AsyncFn<Args> for Box<F, A> {
2357    extern "rust-call" fn async_call(&self, args: Args) -> Self::CallRefFuture<'_> {
2358        F::async_call(self, args)
2359    }
2360}
2361
2362#[unstable(feature = "coerce_unsized", issue = "18598")]
2363impl<T: ?Sized + Unsize<U>, U: ?Sized, A: Allocator> CoerceUnsized<Box<U, A>> for Box<T, A> {}
2364
2365// A pointer can only be pin safe if it does not implement certain safe traits
2366// maliciously. Since `Box` is fundamental, downstream crates may be able to
2367// implement those traits for `Box<LocalType>`, so we must carefully check that
2368// this is not a problem for each trait.
2369//
2370// The `Box` type always implements `Deref` and `DerefMut`, so despite being
2371// fundamental, downstream crates cannot implement these traits for
2372// `Box<LocalType>`.
2373//
2374// Conversely, downstream crates are able to implement `Clone`, `Debug`, and
2375// `Display` for `Box<LocalType>` as long as `LocalType` does not implement
2376// said trait. However, the `Box<T>` type does not treat the existence of an
2377// `&Box<T>` as evidence that the `T` is not pinned, so this is not
2378// problematic.
2379//
2380// Finally, even if downstream crates provide their own implementation of
2381// `Clone` for `Box<LocalType>`, it is not problematic for the cloned box to be
2382// wrapped in `Pin`, since the same conversion could have been carried out
2383// safely as `Box::pin((*p).clone())`.
2384#[unstable(feature = "pin_coerce_unsized_trait", issue = "150112")]
2385unsafe impl<T: ?Sized, A: StaticAllocator> PinSafePointer for Box<T, A> {}
2386
2387// It is quite crucial that we only allow the `Global` allocator here.
2388// Handling arbitrary custom allocators (which can affect the `Box` layout heavily!)
2389// would need a lot of codegen and interpreter adjustments.
2390#[unstable(feature = "dispatch_from_dyn", issue = "none")]
2391impl<T: ?Sized + Unsize<U>, U: ?Sized> DispatchFromDyn<Box<U>> for Box<T, Global> {}
2392
2393#[stable(feature = "box_borrow", since = "1.1.0")]
2394impl<T: ?Sized, A: Allocator> Borrow<T> for Box<T, A> {
2395    fn borrow(&self) -> &T {
2396        self
2397    }
2398}
2399
2400#[stable(feature = "box_borrow", since = "1.1.0")]
2401impl<T: ?Sized, A: Allocator> BorrowMut<T> for Box<T, A> {
2402    fn borrow_mut(&mut self) -> &mut T {
2403        self
2404    }
2405}
2406
2407#[stable(since = "1.5.0", feature = "smart_ptr_as_ref")]
2408impl<T: ?Sized, A: Allocator> AsRef<T> for Box<T, A> {
2409    fn as_ref(&self) -> &T {
2410        self
2411    }
2412}
2413
2414#[stable(since = "1.5.0", feature = "smart_ptr_as_ref")]
2415impl<T: ?Sized, A: Allocator> AsMut<T> for Box<T, A> {
2416    fn as_mut(&mut self) -> &mut T {
2417        self
2418    }
2419}
2420
2421/* Nota bene
2422 *
2423 *  We could have chosen not to add this impl, and instead have written a
2424 *  function of Pin<Box<T>> to Pin<T>. Such a function would not be sound,
2425 *  because Box<T> implements Unpin even when T does not, as a result of
2426 *  this impl.
2427 *
2428 *  We chose this API instead of the alternative for a few reasons:
2429 *      - Logically, it is helpful to understand pinning in regard to the
2430 *        memory region being pointed to. For this reason none of the
2431 *        standard library pointer types support projecting through a pin
2432 *        (Box<T> is the only pointer type in std for which this would be
2433 *        safe.)
2434 *      - It is in practice very useful to have Box<T> be unconditionally
2435 *        Unpin because of trait objects, for which the structural auto
2436 *        trait functionality does not apply (e.g., Box<dyn Foo> would
2437 *        otherwise not be Unpin).
2438 *
2439 *  Another type with the same semantics as Box but only a conditional
2440 *  implementation of `Unpin` (where `T: Unpin`) would be valid/safe, and
2441 *  could have a method to project a Pin<T> from it.
2442 */
2443#[stable(feature = "pin", since = "1.33.0")]
2444impl<T: ?Sized, A: Allocator> Unpin for Box<T, A> {}
2445
2446#[unstable(feature = "coroutine_trait", issue = "43122")]
2447impl<G: ?Sized + Coroutine<R> + Unpin, R, A: Allocator> Coroutine<R> for Box<G, A> {
2448    type Yield = G::Yield;
2449    type Return = G::Return;
2450
2451    fn resume(mut self: Pin<&mut Self>, arg: R) -> CoroutineState<Self::Yield, Self::Return> {
2452        G::resume(Pin::new(&mut *self), arg)
2453    }
2454}
2455
2456#[unstable(feature = "coroutine_trait", issue = "43122")]
2457impl<G: ?Sized + Coroutine<R>, R, A: Allocator> Coroutine<R> for Pin<Box<G, A>>
2458where
2459    A: 'static,
2460{
2461    type Yield = G::Yield;
2462    type Return = G::Return;
2463
2464    fn resume(mut self: Pin<&mut Self>, arg: R) -> CoroutineState<Self::Yield, Self::Return> {
2465        G::resume((*self).as_mut(), arg)
2466    }
2467}
2468
2469#[stable(feature = "futures_api", since = "1.36.0")]
2470impl<F: ?Sized + Future + Unpin, A: Allocator> Future for Box<F, A> {
2471    type Output = F::Output;
2472
2473    fn poll(mut self: Pin<&mut Self>, cx: &mut Context<'_>) -> Poll<Self::Output> {
2474        F::poll(Pin::new(&mut *self), cx)
2475    }
2476}
2477
2478#[stable(feature = "box_error", since = "1.8.0")]
2479impl<E: Error> Error for Box<E> {
2480    #[allow(deprecated)]
2481    fn cause(&self) -> Option<&dyn Error> {
2482        Error::cause(&**self)
2483    }
2484
2485    fn source(&self) -> Option<&(dyn Error + 'static)> {
2486        Error::source(&**self)
2487    }
2488
2489    fn provide<'b>(&'b self, request: &mut error::Request<'b>) {
2490        Error::provide(&**self, request);
2491    }
2492}
2493
2494#[unstable(feature = "allocator_api", issue = "32838")]
2495unsafe impl<T: ?Sized + Allocator, A: Allocator> Allocator for Box<T, A> {
2496    #[inline]
2497    fn allocate(&self, layout: Layout) -> Result<NonNull<[u8]>, AllocError> {
2498        (**self).allocate(layout)
2499    }
2500
2501    #[inline]
2502    fn allocate_zeroed(&self, layout: Layout) -> Result<NonNull<[u8]>, AllocError> {
2503        (**self).allocate_zeroed(layout)
2504    }
2505
2506    #[inline]
2507    unsafe fn deallocate(&self, ptr: NonNull<u8>, layout: Layout) {
2508        // SAFETY: the safety contract must be upheld by the caller
2509        unsafe { (**self).deallocate(ptr, layout) }
2510    }
2511
2512    #[inline]
2513    unsafe fn grow(
2514        &self,
2515        ptr: NonNull<u8>,
2516        old_layout: Layout,
2517        new_layout: Layout,
2518    ) -> Result<NonNull<[u8]>, AllocError> {
2519        // SAFETY: the safety contract must be upheld by the caller
2520        unsafe { (**self).grow(ptr, old_layout, new_layout) }
2521    }
2522
2523    #[inline]
2524    unsafe fn grow_zeroed(
2525        &self,
2526        ptr: NonNull<u8>,
2527        old_layout: Layout,
2528        new_layout: Layout,
2529    ) -> Result<NonNull<[u8]>, AllocError> {
2530        // SAFETY: the safety contract must be upheld by the caller
2531        unsafe { (**self).grow_zeroed(ptr, old_layout, new_layout) }
2532    }
2533
2534    #[inline]
2535    unsafe fn shrink(
2536        &self,
2537        ptr: NonNull<u8>,
2538        old_layout: Layout,
2539        new_layout: Layout,
2540    ) -> Result<NonNull<[u8]>, AllocError> {
2541        // SAFETY: the safety contract must be upheld by the caller
2542        unsafe { (**self).shrink(ptr, old_layout, new_layout) }
2543    }
2544}