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alloc/
sync.rs

1#![stable(feature = "rust1", since = "1.0.0")]
2
3//! Thread-safe reference-counting pointers.
4//!
5//! See the [`Arc<T>`][Arc] documentation for more details.
6//!
7//! **Note**: This module is only available on platforms that support atomic
8//! loads and stores of pointers. This may be detected at compile time using
9//! `#[cfg(target_has_atomic = "ptr")]`.
10
11use core::any::Any;
12use core::cell::CloneFromCell;
13#[cfg(not(no_global_oom_handling))]
14use core::clone::TrivialClone;
15use core::clone::{CloneToUninit, Share, UseCloned};
16use core::cmp::Ordering;
17use core::hash::{Hash, Hasher};
18use core::intrinsics::abort;
19#[cfg(not(no_global_oom_handling))]
20use core::iter;
21use core::marker::{PhantomData, Unsize};
22use core::mem::{self, Alignment, ManuallyDrop};
23use core::num::NonZeroUsize;
24use core::ops::{CoerceUnsized, Deref, DerefMut, DerefPure, DispatchFromDyn, LegacyReceiver};
25#[cfg(not(no_global_oom_handling))]
26use core::ops::{Residual, Try};
27use core::panic::{RefUnwindSafe, UnwindSafe};
28use core::pin::{Pin, PinSafePointer};
29use core::ptr::{self, NonNull};
30#[cfg(not(no_global_oom_handling))]
31use core::slice::from_raw_parts_mut;
32use core::sync::atomic::Ordering::{Acquire, Relaxed, Release};
33use core::sync::atomic::{self, Atomic};
34use core::{borrow, fmt, hint};
35
36#[cfg(not(no_global_oom_handling))]
37use crate::alloc::handle_alloc_error;
38use crate::alloc::{AllocError, Allocator, AllocatorClone, Global, Layout};
39use crate::borrow::{Cow, ToOwned};
40use crate::boxed::Box;
41use crate::rc::is_dangling;
42#[cfg(not(no_global_oom_handling))]
43use crate::string::String;
44#[cfg(not(no_global_oom_handling))]
45use crate::vec::Vec;
46
47/// A soft limit on the amount of references that may be made to an `Arc`.
48///
49/// Going above this limit will abort your program (although not
50/// necessarily) at _exactly_ `MAX_REFCOUNT + 1` references.
51/// Trying to go above it might call a `panic` (if not actually going above it).
52///
53/// This is a global invariant, and also applies when using a compare-exchange loop.
54///
55/// See comment in `Arc::clone`.
56const MAX_REFCOUNT: usize = (isize::MAX) as usize;
57
58#[cold]
59#[cfg_attr(not(panic = "immediate-abort"), inline(never))]
60#[cfg_attr(panic = "immediate-abort", inline)]
61#[track_caller]
62fn panic_arc_overflow() -> ! {
63    panic!("Arc counter overflow");
64}
65
66#[cfg(not(sanitize = "thread"))]
67macro_rules! acquire {
68    ($x:expr) => {
69        atomic::fence(Acquire)
70    };
71}
72
73// ThreadSanitizer does not support memory fences. To avoid false positive
74// reports in Arc / Weak implementation use atomic loads for synchronization
75// instead.
76#[cfg(sanitize = "thread")]
77macro_rules! acquire {
78    ($x:expr) => {
79        $x.load(Acquire)
80    };
81}
82
83/// A thread-safe reference-counting pointer. 'Arc' stands for 'Atomically
84/// Reference Counted'.
85///
86/// The type `Arc<T>` provides shared ownership of a value of type `T`,
87/// allocated in the heap. Invoking [`clone`][clone] on `Arc` produces
88/// a new `Arc` instance, which points to the same allocation on the heap as the
89/// source `Arc`, while increasing a reference count. When the last `Arc`
90/// pointer to a given allocation is destroyed, the value stored in that allocation (often
91/// referred to as "inner value") is also dropped.
92///
93/// Shared references in Rust disallow mutation by default, and `Arc` is no
94/// exception: you cannot generally obtain a mutable reference to something
95/// inside an `Arc`. If you do need to mutate through an `Arc`, you have several options:
96///
97/// 1. Use interior mutability with synchronization primitives like [`Mutex`][mutex],
98///    [`RwLock`][rwlock], or one of the [`Atomic`][atomic] types.
99///
100/// 2. Use clone-on-write semantics with [`Arc::make_mut`] which provides efficient mutation
101///    without requiring interior mutability. This approach clones the data only when
102///    needed (when there are multiple references) and can be more efficient when mutations
103///    are infrequent.
104///
105/// 3. Use [`Arc::get_mut`] when you know your `Arc` is not shared (has a reference count of 1),
106///    which provides direct mutable access to the inner value without any cloning.
107///
108/// ```
109/// use std::sync::Arc;
110///
111/// let mut data = Arc::new(vec![1, 2, 3]);
112///
113/// // This will clone the vector only if there are other references to it
114/// Arc::make_mut(&mut data).push(4);
115///
116/// assert_eq!(*data, vec![1, 2, 3, 4]);
117/// ```
118///
119/// **Note**: This type is only available on platforms that support atomic
120/// loads and stores of pointers, which includes all platforms that support
121/// the `std` crate but not all those which only support [`alloc`](crate).
122/// This may be detected at compile time using `#[cfg(target_has_atomic = "ptr")]`.
123///
124/// ## Thread Safety
125///
126/// Unlike [`Rc<T>`], `Arc<T>` uses atomic operations for its reference
127/// counting. This means that it is thread-safe. The disadvantage is that
128/// atomic operations are more expensive than ordinary memory accesses. If you
129/// are not sharing reference-counted allocations between threads, consider using
130/// [`Rc<T>`] for lower overhead. [`Rc<T>`] is a safe default, because the
131/// compiler will catch any attempt to send an [`Rc<T>`] between threads.
132/// However, a library might choose `Arc<T>` in order to give library consumers
133/// more flexibility.
134///
135/// `Arc<T>` will implement [`Send`] and [`Sync`] as long as the `T` implements
136/// [`Send`] and [`Sync`]. Why can't you put a non-thread-safe type `T` in an
137/// `Arc<T>` to make it thread-safe? This may be a bit counter-intuitive at
138/// first: after all, isn't the point of `Arc<T>` thread safety? The key is
139/// this: `Arc<T>` makes it thread safe to have multiple ownership of the same
140/// data, but it  doesn't add thread safety to its data. Consider
141/// <code>Arc<[RefCell\<T>]></code>. [`RefCell<T>`] isn't [`Sync`], and if `Arc<T>` was always
142/// [`Send`], <code>Arc<[RefCell\<T>]></code> would be as well. But then we'd have a problem:
143/// [`RefCell<T>`] is not thread safe; it keeps track of the borrowing count using
144/// non-atomic operations.
145///
146/// In the end, this means that you may need to pair `Arc<T>` with some sort of
147/// [`std::sync`] type, usually [`Mutex<T>`][mutex].
148///
149/// ## Breaking cycles with `Weak`
150///
151/// The [`downgrade`][downgrade] method can be used to create a non-owning
152/// [`Weak`] pointer. A [`Weak`] pointer can be [`upgrade`][upgrade]d
153/// to an `Arc`, but this will return [`None`] if the value stored in the allocation has
154/// already been dropped. In other words, `Weak` pointers do not keep the value
155/// inside the allocation alive; however, they *do* keep the allocation
156/// (the backing store for the value) alive.
157///
158/// A cycle between `Arc` pointers will never be deallocated. For this reason,
159/// [`Weak`] is used to break cycles. For example, a tree could have
160/// strong `Arc` pointers from parent nodes to children, and [`Weak`]
161/// pointers from children back to their parents.
162///
163/// # Cloning references
164///
165/// Creating a new reference from an existing reference-counted pointer is done using the
166/// `Clone` trait implemented for [`Arc<T>`][Arc] and [`Weak<T>`][Weak].
167///
168/// ```
169/// use std::sync::Arc;
170/// let foo = Arc::new(vec![1.0, 2.0, 3.0]);
171/// // The two syntaxes below are equivalent.
172/// let a = foo.clone();
173/// let b = Arc::clone(&foo);
174/// // a, b, and foo are all Arcs that point to the same memory location
175/// ```
176///
177/// ## `Deref` behavior
178///
179/// `Arc<T>` automatically dereferences to `T` (via the [`Deref`] trait),
180/// so you can call `T`'s methods on a value of type `Arc<T>`. To avoid name
181/// clashes with `T`'s methods, the methods of `Arc<T>` itself are associated
182/// functions, called using [fully qualified syntax]:
183///
184/// ```
185/// use std::sync::Arc;
186///
187/// let my_arc = Arc::new(());
188/// let my_weak = Arc::downgrade(&my_arc);
189/// ```
190///
191/// `Arc<T>`'s implementations of traits like `Clone` may also be called using
192/// fully qualified syntax. Some people prefer to use fully qualified syntax,
193/// while others prefer using method-call syntax.
194///
195/// ```
196/// use std::sync::Arc;
197///
198/// let arc = Arc::new(());
199/// // Method-call syntax
200/// let arc2 = arc.clone();
201/// // Fully qualified syntax
202/// let arc3 = Arc::clone(&arc);
203/// ```
204///
205/// [`Weak<T>`][Weak] does not auto-dereference to `T`, because the inner value may have
206/// already been dropped.
207///
208/// [`Rc<T>`]: crate::rc::Rc
209/// [clone]: Clone::clone
210/// [mutex]: ../../std/sync/struct.Mutex.html
211/// [rwlock]: ../../std/sync/struct.RwLock.html
212/// [atomic]: core::sync::atomic
213/// [downgrade]: Arc::downgrade
214/// [upgrade]: Weak::upgrade
215/// [RefCell\<T>]: core::cell::RefCell
216/// [`RefCell<T>`]: core::cell::RefCell
217/// [`std::sync`]: ../../std/sync/index.html
218/// [`Arc::clone(&from)`]: Arc::clone
219/// [fully qualified syntax]: https://doc.rust-lang.org/book/ch19-03-advanced-traits.html#fully-qualified-syntax-for-disambiguation-calling-methods-with-the-same-name
220///
221/// # Examples
222///
223/// Sharing some immutable data between threads:
224///
225/// ```
226/// use std::sync::Arc;
227/// use std::thread;
228///
229/// let five = Arc::new(5);
230///
231/// for _ in 0..10 {
232///     let five = Arc::clone(&five);
233///
234///     thread::spawn(move || {
235///         println!("{five:?}");
236///     });
237/// }
238/// ```
239///
240/// Sharing a mutable [`AtomicUsize`]:
241///
242/// [`AtomicUsize`]: core::sync::atomic::AtomicUsize "sync::atomic::AtomicUsize"
243///
244/// ```
245/// use std::sync::Arc;
246/// use std::sync::atomic::{AtomicUsize, Ordering};
247/// use std::thread;
248///
249/// let val = Arc::new(AtomicUsize::new(5));
250///
251/// for _ in 0..10 {
252///     let val = Arc::clone(&val);
253///
254///     thread::spawn(move || {
255///         let v = val.fetch_add(1, Ordering::Relaxed);
256///         println!("{v:?}");
257///     });
258/// }
259/// ```
260///
261/// See the [`rc` documentation][rc_examples] for more examples of reference
262/// counting in general.
263///
264/// [rc_examples]: crate::rc#examples
265#[doc(search_unbox)]
266#[rustc_diagnostic_item = "Arc"]
267#[stable(feature = "rust1", since = "1.0.0")]
268#[rustc_insignificant_dtor]
269#[diagnostic::on_move(
270    message = "the type `{Self}` does not implement `Copy`",
271    label = "this move could be avoided by cloning the original `{Self}`, which is inexpensive",
272    note = "consider using `Arc::clone`"
273)]
274pub struct Arc<
275    T: ?Sized,
276    #[unstable(feature = "allocator_api", issue = "32838")] A: Allocator = Global,
277> {
278    ptr: NonNull<ArcInner<T>>,
279    phantom: PhantomData<ArcInner<T>>,
280    alloc: A,
281}
282
283#[stable(feature = "rust1", since = "1.0.0")]
284unsafe impl<T: ?Sized + Sync + Send, A: Allocator + Send + Sync> Send for Arc<T, A> {}
285#[stable(feature = "rust1", since = "1.0.0")]
286unsafe impl<T: ?Sized + Sync + Send, A: Allocator + Send + Sync> Sync for Arc<T, A> {}
287
288#[stable(feature = "catch_unwind", since = "1.9.0")]
289impl<T: RefUnwindSafe + ?Sized, A: Allocator + UnwindSafe + RefUnwindSafe> UnwindSafe
290    for Arc<T, A>
291{
292}
293
294#[unstable(feature = "coerce_unsized", issue = "18598")]
295impl<T: ?Sized + Unsize<U>, U: ?Sized, A: Allocator> CoerceUnsized<Arc<U, A>> for Arc<T, A> {}
296
297#[unstable(feature = "dispatch_from_dyn", issue = "none")]
298impl<T: ?Sized + Unsize<U>, U: ?Sized> DispatchFromDyn<Arc<U>> for Arc<T> {}
299
300// SAFETY: `Arc::clone` doesn't access any `Cell`s which could contain the `Arc` being cloned.
301#[unstable(feature = "cell_get_cloned", issue = "145329")]
302unsafe impl<T: ?Sized> CloneFromCell for Arc<T> {}
303
304impl<T: ?Sized> Arc<T> {
305    unsafe fn from_inner(ptr: NonNull<ArcInner<T>>) -> Self {
306        unsafe { Self::from_inner_in(ptr, Global) }
307    }
308
309    unsafe fn from_ptr(ptr: *mut ArcInner<T>) -> Self {
310        unsafe { Self::from_ptr_in(ptr, Global) }
311    }
312}
313
314impl<T: ?Sized, A: Allocator> Arc<T, A> {
315    #[inline]
316    fn into_inner_with_allocator(this: Self) -> (NonNull<ArcInner<T>>, A) {
317        let this = mem::ManuallyDrop::new(this);
318        (this.ptr, unsafe { ptr::read(&this.alloc) })
319    }
320
321    #[inline]
322    unsafe fn from_inner_in(ptr: NonNull<ArcInner<T>>, alloc: A) -> Self {
323        Self { ptr, phantom: PhantomData, alloc }
324    }
325
326    #[inline]
327    unsafe fn from_ptr_in(ptr: *mut ArcInner<T>, alloc: A) -> Self {
328        unsafe { Self::from_inner_in(NonNull::new_unchecked(ptr), alloc) }
329    }
330}
331
332/// `Weak` is a version of [`Arc`] that holds a non-owning reference to the
333/// managed allocation.
334///
335/// The allocation is accessed by calling [`upgrade`] on the `Weak`
336/// pointer, which returns an <code>[Option]<[Arc]\<T>></code>.
337///
338/// Since a `Weak` reference does not count towards ownership, it will not
339/// prevent the value stored in the allocation from being dropped, and `Weak` itself makes no
340/// guarantees about the value still being present. Thus it may return [`None`]
341/// when [`upgrade`]d. Note however that a `Weak` reference *does* prevent the allocation
342/// itself (the backing store) from being deallocated.
343///
344/// A `Weak` pointer is useful for keeping a temporary reference to the allocation
345/// managed by [`Arc`] without preventing its inner value from being dropped. It is also used to
346/// prevent circular references between [`Arc`] pointers, since mutual owning references
347/// would never allow either [`Arc`] to be dropped. For example, a tree could
348/// have strong [`Arc`] pointers from parent nodes to children, and `Weak`
349/// pointers from children back to their parents.
350///
351/// The typical way to obtain a `Weak` pointer is to call [`Arc::downgrade`].
352///
353/// [`upgrade`]: Weak::upgrade
354#[stable(feature = "arc_weak", since = "1.4.0")]
355#[rustc_diagnostic_item = "ArcWeak"]
356pub struct Weak<
357    T: ?Sized,
358    #[unstable(feature = "allocator_api", issue = "32838")] A: Allocator = Global,
359> {
360    // This is a `NonNull` to allow optimizing the size of this type in enums,
361    // but it is not necessarily a valid pointer.
362    // `Weak::new` sets this to `usize::MAX` so that it doesn’t need
363    // to allocate space on the heap. That's not a value a real pointer
364    // will ever have because ArcInner has alignment at least 2.
365    ptr: NonNull<ArcInner<T>>,
366    alloc: A,
367}
368
369#[stable(feature = "arc_weak", since = "1.4.0")]
370unsafe impl<T: ?Sized + Sync + Send, A: Allocator + Send + Sync> Send for Weak<T, A> {}
371#[stable(feature = "arc_weak", since = "1.4.0")]
372unsafe impl<T: ?Sized + Sync + Send, A: Allocator + Send + Sync> Sync for Weak<T, A> {}
373
374#[unstable(feature = "coerce_unsized", issue = "18598")]
375impl<T: ?Sized + Unsize<U>, U: ?Sized, A: Allocator> CoerceUnsized<Weak<U, A>> for Weak<T, A> {}
376#[unstable(feature = "dispatch_from_dyn", issue = "none")]
377impl<T: ?Sized + Unsize<U>, U: ?Sized> DispatchFromDyn<Weak<U>> for Weak<T> {}
378
379// SAFETY: `Weak::clone` doesn't access any `Cell`s which could contain the `Weak` being cloned.
380#[unstable(feature = "cell_get_cloned", issue = "145329")]
381unsafe impl<T: ?Sized> CloneFromCell for Weak<T> {}
382
383#[stable(feature = "arc_weak", since = "1.4.0")]
384impl<T: ?Sized, A: Allocator> fmt::Debug for Weak<T, A> {
385    fn fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result {
386        write!(f, "(Weak)")
387    }
388}
389
390// This is repr(C) to future-proof against possible field-reordering, which
391// would interfere with otherwise safe [into|from]_raw() of transmutable
392// inner types.
393// Unlike RcInner, repr(align(2)) is not strictly required because atomic types
394// have the alignment same as its size, but we use it for consistency and clarity.
395#[repr(C, align(2))]
396struct ArcInner<T: ?Sized> {
397    strong: Atomic<usize>,
398
399    // the value usize::MAX acts as a sentinel for temporarily "locking" the
400    // weak count, preventing `Arc::downgrade` from racing to create new
401    // `Weak` references. `Arc::is_unique` (which backs `Arc::get_mut`)
402    // needs to observe both the strong and weak counts as indicating
403    // uniqueness in one logical atomic step; since they live in separate
404    // atomic words, it locks the weak count while reading the strong
405    // count to keep the two reads consistent.
406    weak: Atomic<usize>,
407
408    data: T,
409}
410
411/// Calculate layout for `ArcInner<T>` using the inner value's layout
412fn arcinner_layout_for_value_layout(layout: Layout) -> Layout {
413    // Calculate layout using the given value layout.
414    // Previously, layout was calculated on the expression
415    // `&*(ptr as *const ArcInner<T>)`, but this created a misaligned
416    // reference (see #54908).
417    Layout::new::<ArcInner<()>>()
418        .extend(layout)
419        .unwrap_or_else(|_| panic!("capacity overflow"))
420        .0
421        .pad_to_align()
422}
423
424unsafe impl<T: ?Sized + Sync + Send> Send for ArcInner<T> {}
425unsafe impl<T: ?Sized + Sync + Send> Sync for ArcInner<T> {}
426
427impl<T> Arc<T> {
428    /// Constructs a new `Arc<T>`.
429    ///
430    /// # Examples
431    ///
432    /// ```
433    /// use std::sync::Arc;
434    ///
435    /// let five = Arc::new(5);
436    /// ```
437    #[cfg(not(no_global_oom_handling))]
438    #[inline]
439    #[stable(feature = "rust1", since = "1.0.0")]
440    pub fn new(data: T) -> Arc<T> {
441        // Start the weak pointer count as 1 which is the weak pointer that's
442        // held by all the strong pointers (kinda), see std/rc.rs for more info
443        let x: Box<_> = Box::new(ArcInner {
444            strong: atomic::AtomicUsize::new(1),
445            weak: atomic::AtomicUsize::new(1),
446            data,
447        });
448        unsafe { Self::from_inner(Box::leak(x).into()) }
449    }
450
451    /// Constructs a new `Arc<T>` while giving you a `Weak<T>` to the allocation,
452    /// to allow you to construct a `T` which holds a weak pointer to itself.
453    ///
454    /// Generally, a structure circularly referencing itself, either directly or
455    /// indirectly, should not hold a strong reference to itself to prevent a memory leak.
456    /// Using this function, you get access to the weak pointer during the
457    /// initialization of `T`, before the `Arc<T>` is created, such that you can
458    /// clone and store it inside the `T`.
459    ///
460    /// `new_cyclic` first allocates the managed allocation for the `Arc<T>`,
461    /// then calls your closure, giving it a `Weak<T>` to this allocation,
462    /// and only afterwards completes the construction of the `Arc<T>` by placing
463    /// the `T` returned from your closure into the allocation.
464    ///
465    /// Since the new `Arc<T>` is not fully-constructed until `Arc<T>::new_cyclic`
466    /// returns, calling [`upgrade`] on the weak reference inside your closure will
467    /// fail and result in a `None` value.
468    ///
469    /// # Panics
470    ///
471    /// If `data_fn` panics, the panic is propagated to the caller, and the
472    /// temporary [`Weak<T>`] is dropped normally.
473    ///
474    /// # Example
475    ///
476    /// ```
477    /// # #![allow(dead_code)]
478    /// use std::sync::{Arc, Weak};
479    ///
480    /// struct Gadget {
481    ///     me: Weak<Gadget>,
482    /// }
483    ///
484    /// impl Gadget {
485    ///     /// Constructs a reference counted Gadget.
486    ///     fn new() -> Arc<Self> {
487    ///         // `me` is a `Weak<Gadget>` pointing at the new allocation of the
488    ///         // `Arc` we're constructing.
489    ///         Arc::new_cyclic(|me| {
490    ///             // Create the actual struct here.
491    ///             Gadget { me: me.clone() }
492    ///         })
493    ///     }
494    ///
495    ///     /// Returns a reference counted pointer to Self.
496    ///     fn me(&self) -> Arc<Self> {
497    ///         self.me.upgrade().unwrap()
498    ///     }
499    /// }
500    /// ```
501    /// [`upgrade`]: Weak::upgrade
502    #[cfg(not(no_global_oom_handling))]
503    #[inline]
504    #[stable(feature = "arc_new_cyclic", since = "1.60.0")]
505    pub fn new_cyclic<F>(data_fn: F) -> Arc<T>
506    where
507        F: FnOnce(&Weak<T>) -> T,
508    {
509        Self::new_cyclic_in(data_fn, Global)
510    }
511
512    /// Constructs a new `Arc` with uninitialized contents.
513    ///
514    /// # Examples
515    ///
516    /// ```
517    /// use std::sync::Arc;
518    ///
519    /// let mut five = Arc::<u32>::new_uninit();
520    ///
521    /// // Deferred initialization:
522    /// Arc::get_mut(&mut five).unwrap().write(5);
523    ///
524    /// let five = unsafe { five.assume_init() };
525    ///
526    /// assert_eq!(*five, 5)
527    /// ```
528    #[cfg(not(no_global_oom_handling))]
529    #[inline]
530    #[stable(feature = "new_uninit", since = "1.82.0")]
531    #[must_use]
532    pub fn new_uninit() -> Arc<mem::MaybeUninit<T>> {
533        unsafe {
534            Arc::from_ptr(Arc::allocate_for_layout(
535                Layout::new::<T>(),
536                |layout| Global.allocate(layout),
537                <*mut u8>::cast,
538            ))
539        }
540    }
541
542    /// Constructs a new `Arc` with uninitialized contents, with the memory
543    /// being filled with `0` bytes.
544    ///
545    /// See [`MaybeUninit::zeroed`][zeroed] for examples of correct and incorrect usage
546    /// of this method.
547    ///
548    /// # Examples
549    ///
550    /// ```
551    /// use std::sync::Arc;
552    ///
553    /// let zero = Arc::<u32>::new_zeroed();
554    /// let zero = unsafe { zero.assume_init() };
555    ///
556    /// assert_eq!(*zero, 0)
557    /// ```
558    ///
559    /// [zeroed]: mem::MaybeUninit::zeroed
560    #[cfg(not(no_global_oom_handling))]
561    #[inline]
562    #[stable(feature = "new_zeroed_alloc", since = "1.92.0")]
563    #[must_use]
564    pub fn new_zeroed() -> Arc<mem::MaybeUninit<T>> {
565        unsafe {
566            Arc::from_ptr(Arc::allocate_for_layout(
567                Layout::new::<T>(),
568                |layout| Global.allocate_zeroed(layout),
569                <*mut u8>::cast,
570            ))
571        }
572    }
573
574    /// Constructs a new `Pin<Arc<T>>`. If `T` does not implement `Unpin`, then
575    /// `data` will be pinned in memory and unable to be moved.
576    #[cfg(not(no_global_oom_handling))]
577    #[stable(feature = "pin", since = "1.33.0")]
578    #[must_use]
579    pub fn pin(data: T) -> Pin<Arc<T>> {
580        unsafe { Pin::new_unchecked(Arc::new(data)) }
581    }
582
583    /// Constructs a new `Pin<Arc<T>>`, return an error if allocation fails.
584    #[unstable(feature = "allocator_api", issue = "32838")]
585    #[inline]
586    pub fn try_pin(data: T) -> Result<Pin<Arc<T>>, AllocError> {
587        unsafe { Ok(Pin::new_unchecked(Arc::try_new(data)?)) }
588    }
589
590    /// Constructs a new `Arc<T>`, returning an error if allocation fails.
591    ///
592    /// # Examples
593    ///
594    /// ```
595    /// #![feature(allocator_api)]
596    /// use std::sync::Arc;
597    ///
598    /// let five = Arc::try_new(5)?;
599    /// # Ok::<(), std::alloc::AllocError>(())
600    /// ```
601    #[unstable(feature = "allocator_api", issue = "32838")]
602    #[inline]
603    pub fn try_new(data: T) -> Result<Arc<T>, AllocError> {
604        // Start the weak pointer count as 1 which is the weak pointer that's
605        // held by all the strong pointers (kinda), see std/rc.rs for more info
606        let x: Box<_> = Box::try_new(ArcInner {
607            strong: atomic::AtomicUsize::new(1),
608            weak: atomic::AtomicUsize::new(1),
609            data,
610        })?;
611        unsafe { Ok(Self::from_inner(Box::leak(x).into())) }
612    }
613
614    /// Constructs a new `Arc` with uninitialized contents, returning an error
615    /// if allocation fails.
616    ///
617    /// # Examples
618    ///
619    /// ```
620    /// #![feature(allocator_api)]
621    ///
622    /// use std::sync::Arc;
623    ///
624    /// let mut five = Arc::<u32>::try_new_uninit()?;
625    ///
626    /// // Deferred initialization:
627    /// Arc::get_mut(&mut five).unwrap().write(5);
628    ///
629    /// let five = unsafe { five.assume_init() };
630    ///
631    /// assert_eq!(*five, 5);
632    /// # Ok::<(), std::alloc::AllocError>(())
633    /// ```
634    #[unstable(feature = "allocator_api", issue = "32838")]
635    pub fn try_new_uninit() -> Result<Arc<mem::MaybeUninit<T>>, AllocError> {
636        unsafe {
637            Ok(Arc::from_ptr(Arc::try_allocate_for_layout(
638                Layout::new::<T>(),
639                |layout| Global.allocate(layout),
640                <*mut u8>::cast,
641            )?))
642        }
643    }
644
645    /// Constructs a new `Arc` with uninitialized contents, with the memory
646    /// being filled with `0` bytes, returning an error if allocation fails.
647    ///
648    /// See [`MaybeUninit::zeroed`][zeroed] for examples of correct and incorrect usage
649    /// of this method.
650    ///
651    /// # Examples
652    ///
653    /// ```
654    /// #![feature( allocator_api)]
655    ///
656    /// use std::sync::Arc;
657    ///
658    /// let zero = Arc::<u32>::try_new_zeroed()?;
659    /// let zero = unsafe { zero.assume_init() };
660    ///
661    /// assert_eq!(*zero, 0);
662    /// # Ok::<(), std::alloc::AllocError>(())
663    /// ```
664    ///
665    /// [zeroed]: mem::MaybeUninit::zeroed
666    #[unstable(feature = "allocator_api", issue = "32838")]
667    pub fn try_new_zeroed() -> Result<Arc<mem::MaybeUninit<T>>, AllocError> {
668        unsafe {
669            Ok(Arc::from_ptr(Arc::try_allocate_for_layout(
670                Layout::new::<T>(),
671                |layout| Global.allocate_zeroed(layout),
672                <*mut u8>::cast,
673            )?))
674        }
675    }
676}
677
678impl<T, A: Allocator> Arc<T, A> {
679    /// Constructs a new `Arc<T>` in the provided allocator.
680    ///
681    /// # Examples
682    ///
683    /// ```
684    /// #![feature(allocator_api)]
685    ///
686    /// use std::sync::Arc;
687    /// use std::alloc::System;
688    ///
689    /// let five = Arc::new_in(5, System);
690    /// ```
691    #[inline]
692    #[cfg(not(no_global_oom_handling))]
693    #[unstable(feature = "allocator_api", issue = "32838")]
694    pub fn new_in(data: T, alloc: A) -> Arc<T, A> {
695        // Start the weak pointer count as 1 which is the weak pointer that's
696        // held by all the strong pointers (kinda), see std/rc.rs for more info
697        let x = Box::new_in(
698            ArcInner {
699                strong: atomic::AtomicUsize::new(1),
700                weak: atomic::AtomicUsize::new(1),
701                data,
702            },
703            alloc,
704        );
705        let (ptr, alloc) = Box::into_unique(x);
706        unsafe { Self::from_inner_in(ptr.into(), alloc) }
707    }
708
709    /// Constructs a new `Arc` with uninitialized contents in the provided allocator.
710    ///
711    /// # Examples
712    ///
713    /// ```
714    /// #![feature(get_mut_unchecked)]
715    /// #![feature(allocator_api)]
716    ///
717    /// use std::sync::Arc;
718    /// use std::alloc::System;
719    ///
720    /// let mut five = Arc::<u32, _>::new_uninit_in(System);
721    ///
722    /// let five = unsafe {
723    ///     // Deferred initialization:
724    ///     Arc::get_mut_unchecked(&mut five).as_mut_ptr().write(5);
725    ///
726    ///     five.assume_init()
727    /// };
728    ///
729    /// assert_eq!(*five, 5)
730    /// ```
731    #[cfg(not(no_global_oom_handling))]
732    #[unstable(feature = "allocator_api", issue = "32838")]
733    #[inline]
734    pub fn new_uninit_in(alloc: A) -> Arc<mem::MaybeUninit<T>, A> {
735        unsafe {
736            Arc::from_ptr_in(
737                Arc::allocate_for_layout(
738                    Layout::new::<T>(),
739                    |layout| alloc.allocate(layout),
740                    <*mut u8>::cast,
741                ),
742                alloc,
743            )
744        }
745    }
746
747    /// Constructs a new `Arc` with uninitialized contents, with the memory
748    /// being filled with `0` bytes, in the provided allocator.
749    ///
750    /// See [`MaybeUninit::zeroed`][zeroed] for examples of correct and incorrect usage
751    /// of this method.
752    ///
753    /// # Examples
754    ///
755    /// ```
756    /// #![feature(allocator_api)]
757    ///
758    /// use std::sync::Arc;
759    /// use std::alloc::System;
760    ///
761    /// let zero = Arc::<u32, _>::new_zeroed_in(System);
762    /// let zero = unsafe { zero.assume_init() };
763    ///
764    /// assert_eq!(*zero, 0)
765    /// ```
766    ///
767    /// [zeroed]: mem::MaybeUninit::zeroed
768    #[cfg(not(no_global_oom_handling))]
769    #[unstable(feature = "allocator_api", issue = "32838")]
770    #[inline]
771    pub fn new_zeroed_in(alloc: A) -> Arc<mem::MaybeUninit<T>, A> {
772        unsafe {
773            Arc::from_ptr_in(
774                Arc::allocate_for_layout(
775                    Layout::new::<T>(),
776                    |layout| alloc.allocate_zeroed(layout),
777                    <*mut u8>::cast,
778                ),
779                alloc,
780            )
781        }
782    }
783
784    /// Constructs a new `Arc<T, A>` in the given allocator while giving you a `Weak<T, A>` to the allocation,
785    /// to allow you to construct a `T` which holds a weak pointer to itself.
786    ///
787    /// Generally, a structure circularly referencing itself, either directly or
788    /// indirectly, should not hold a strong reference to itself to prevent a memory leak.
789    /// Using this function, you get access to the weak pointer during the
790    /// initialization of `T`, before the `Arc<T, A>` is created, such that you can
791    /// clone and store it inside the `T`.
792    ///
793    /// `new_cyclic_in` first allocates the managed allocation for the `Arc<T, A>`,
794    /// then calls your closure, giving it a `Weak<T, A>` to this allocation,
795    /// and only afterwards completes the construction of the `Arc<T, A>` by placing
796    /// the `T` returned from your closure into the allocation.
797    ///
798    /// Since the new `Arc<T, A>` is not fully-constructed until `Arc<T, A>::new_cyclic_in`
799    /// returns, calling [`upgrade`] on the weak reference inside your closure will
800    /// fail and result in a `None` value.
801    ///
802    /// # Panics
803    ///
804    /// If `data_fn` panics, the panic is propagated to the caller, and the
805    /// temporary [`Weak<T>`] is dropped normally.
806    ///
807    /// # Example
808    ///
809    /// See [`new_cyclic`]
810    ///
811    /// [`new_cyclic`]: Arc::new_cyclic
812    /// [`upgrade`]: Weak::upgrade
813    #[cfg(not(no_global_oom_handling))]
814    #[inline]
815    #[unstable(feature = "allocator_api", issue = "32838")]
816    pub fn new_cyclic_in<F>(data_fn: F, alloc: A) -> Arc<T, A>
817    where
818        F: FnOnce(&Weak<T, A>) -> T,
819    {
820        // Construct the inner in the "uninitialized" state with a single
821        // weak reference.
822        let (uninit_raw_ptr, alloc) = Box::into_raw_with_allocator(Box::new_in(
823            ArcInner {
824                strong: atomic::AtomicUsize::new(0),
825                weak: atomic::AtomicUsize::new(1),
826                data: mem::MaybeUninit::<T>::uninit(),
827            },
828            alloc,
829        ));
830        let uninit_ptr: NonNull<_> = (unsafe { &mut *uninit_raw_ptr }).into();
831        let init_ptr: NonNull<ArcInner<T>> = uninit_ptr.cast();
832
833        let weak = Weak { ptr: init_ptr, alloc };
834
835        // It's important we don't give up ownership of the weak pointer, or
836        // else the memory might be freed by the time `data_fn` returns. If
837        // we really wanted to pass ownership, we could create an additional
838        // weak pointer for ourselves, but this would result in additional
839        // updates to the weak reference count which might not be necessary
840        // otherwise.
841        let data = data_fn(&weak);
842
843        // Now we can properly initialize the inner value and turn our weak
844        // reference into a strong reference.
845        unsafe {
846            let inner = init_ptr.as_ptr();
847            ptr::write(&raw mut (*inner).data, data);
848
849            // The above write to the data field must be visible to any threads which
850            // observe a non-zero strong count. Therefore we need at least "Release" ordering
851            // in order to synchronize with the `compare_exchange_weak` in `Weak::upgrade`.
852            //
853            // "Acquire" ordering is not required. When considering the possible behaviors
854            // of `data_fn` we only need to look at what it could do with a reference to a
855            // non-upgradeable `Weak`:
856            // - It can *clone* the `Weak`, increasing the weak reference count.
857            // - It can drop those clones, decreasing the weak reference count (but never to zero).
858            //
859            // These side effects do not impact us in any way, and no other side effects are
860            // possible with safe code alone.
861            let prev_value = (*inner).strong.fetch_add(1, Release);
862            debug_assert_eq!(prev_value, 0, "No prior strong references should exist");
863
864            // Strong references should collectively own a shared weak reference,
865            // so don't run the destructor for our old weak reference.
866            // Calling into_raw_with_allocator has the double effect of giving us back the allocator,
867            // and forgetting the weak reference.
868            let alloc = weak.into_raw_with_allocator().1;
869
870            Arc::from_inner_in(init_ptr, alloc)
871        }
872    }
873
874    /// Constructs a new `Pin<Arc<T, A>>` in the provided allocator. If `T` does not implement `Unpin`,
875    /// then `data` will be pinned in memory and unable to be moved.
876    #[cfg(not(no_global_oom_handling))]
877    #[unstable(feature = "allocator_api", issue = "32838")]
878    #[inline]
879    pub fn pin_in(data: T, alloc: A) -> Pin<Arc<T, A>>
880    where
881        A: 'static,
882    {
883        unsafe { Pin::new_unchecked(Arc::new_in(data, alloc)) }
884    }
885
886    /// Constructs a new `Pin<Arc<T, A>>` in the provided allocator, return an error if allocation
887    /// fails.
888    #[inline]
889    #[unstable(feature = "allocator_api", issue = "32838")]
890    pub fn try_pin_in(data: T, alloc: A) -> Result<Pin<Arc<T, A>>, AllocError>
891    where
892        A: 'static,
893    {
894        unsafe { Ok(Pin::new_unchecked(Arc::try_new_in(data, alloc)?)) }
895    }
896
897    /// Constructs a new `Arc<T, A>` in the provided allocator, returning an error if allocation fails.
898    ///
899    /// # Examples
900    ///
901    /// ```
902    /// #![feature(allocator_api)]
903    ///
904    /// use std::sync::Arc;
905    /// use std::alloc::System;
906    ///
907    /// let five = Arc::try_new_in(5, System)?;
908    /// # Ok::<(), std::alloc::AllocError>(())
909    /// ```
910    #[unstable(feature = "allocator_api", issue = "32838")]
911    #[inline]
912    pub fn try_new_in(data: T, alloc: A) -> Result<Arc<T, A>, AllocError> {
913        // Start the weak pointer count as 1 which is the weak pointer that's
914        // held by all the strong pointers (kinda), see std/rc.rs for more info
915        let x = Box::try_new_in(
916            ArcInner {
917                strong: atomic::AtomicUsize::new(1),
918                weak: atomic::AtomicUsize::new(1),
919                data,
920            },
921            alloc,
922        )?;
923        let (ptr, alloc) = Box::into_unique(x);
924        Ok(unsafe { Self::from_inner_in(ptr.into(), alloc) })
925    }
926
927    /// Constructs a new `Arc` with uninitialized contents, in the provided allocator, returning an
928    /// error if allocation fails.
929    ///
930    /// # Examples
931    ///
932    /// ```
933    /// #![feature(allocator_api)]
934    /// #![feature(get_mut_unchecked)]
935    ///
936    /// use std::sync::Arc;
937    /// use std::alloc::System;
938    ///
939    /// let mut five = Arc::<u32, _>::try_new_uninit_in(System)?;
940    ///
941    /// let five = unsafe {
942    ///     // Deferred initialization:
943    ///     Arc::get_mut_unchecked(&mut five).as_mut_ptr().write(5);
944    ///
945    ///     five.assume_init()
946    /// };
947    ///
948    /// assert_eq!(*five, 5);
949    /// # Ok::<(), std::alloc::AllocError>(())
950    /// ```
951    #[unstable(feature = "allocator_api", issue = "32838")]
952    #[inline]
953    pub fn try_new_uninit_in(alloc: A) -> Result<Arc<mem::MaybeUninit<T>, A>, AllocError> {
954        unsafe {
955            Ok(Arc::from_ptr_in(
956                Arc::try_allocate_for_layout(
957                    Layout::new::<T>(),
958                    |layout| alloc.allocate(layout),
959                    <*mut u8>::cast,
960                )?,
961                alloc,
962            ))
963        }
964    }
965
966    /// Constructs a new `Arc` with uninitialized contents, with the memory
967    /// being filled with `0` bytes, in the provided allocator, returning an error if allocation
968    /// fails.
969    ///
970    /// See [`MaybeUninit::zeroed`][zeroed] for examples of correct and incorrect usage
971    /// of this method.
972    ///
973    /// # Examples
974    ///
975    /// ```
976    /// #![feature(allocator_api)]
977    ///
978    /// use std::sync::Arc;
979    /// use std::alloc::System;
980    ///
981    /// let zero = Arc::<u32, _>::try_new_zeroed_in(System)?;
982    /// let zero = unsafe { zero.assume_init() };
983    ///
984    /// assert_eq!(*zero, 0);
985    /// # Ok::<(), std::alloc::AllocError>(())
986    /// ```
987    ///
988    /// [zeroed]: mem::MaybeUninit::zeroed
989    #[unstable(feature = "allocator_api", issue = "32838")]
990    #[inline]
991    pub fn try_new_zeroed_in(alloc: A) -> Result<Arc<mem::MaybeUninit<T>, A>, AllocError> {
992        unsafe {
993            Ok(Arc::from_ptr_in(
994                Arc::try_allocate_for_layout(
995                    Layout::new::<T>(),
996                    |layout| alloc.allocate_zeroed(layout),
997                    <*mut u8>::cast,
998                )?,
999                alloc,
1000            ))
1001        }
1002    }
1003    /// Returns the inner value, if the `Arc` has exactly one strong reference.
1004    ///
1005    /// Otherwise, an [`Err`] is returned with the same `Arc` that was
1006    /// passed in.
1007    ///
1008    /// This will succeed even if there are outstanding weak references.
1009    ///
1010    /// It is strongly recommended to use [`Arc::into_inner`] instead if you don't
1011    /// keep the `Arc` in the [`Err`] case.
1012    /// Immediately dropping the [`Err`]-value, as the expression
1013    /// `Arc::try_unwrap(this).ok()` does, can cause the strong count to
1014    /// drop to zero and the inner value of the `Arc` to be dropped.
1015    /// For instance, if two threads execute such an expression in parallel,
1016    /// there is a race condition without the possibility of unsafety:
1017    /// The threads could first both check whether they own the last instance
1018    /// in `Arc::try_unwrap`, determine that they both do not, and then both
1019    /// discard and drop their instance in the call to [`ok`][`Result::ok`].
1020    /// In this scenario, the value inside the `Arc` is safely destroyed
1021    /// by exactly one of the threads, but neither thread will ever be able
1022    /// to use the value.
1023    ///
1024    /// # Examples
1025    ///
1026    /// ```
1027    /// use std::sync::Arc;
1028    ///
1029    /// let x = Arc::new(3);
1030    /// assert_eq!(Arc::try_unwrap(x), Ok(3));
1031    ///
1032    /// let x = Arc::new(4);
1033    /// let _y = Arc::clone(&x);
1034    /// assert_eq!(*Arc::try_unwrap(x).unwrap_err(), 4);
1035    /// ```
1036    #[inline]
1037    #[stable(feature = "arc_unique", since = "1.4.0")]
1038    pub fn try_unwrap(this: Self) -> Result<T, Self> {
1039        if this.inner().strong.compare_exchange(1, 0, Relaxed, Relaxed).is_err() {
1040            return Err(this);
1041        }
1042
1043        acquire!(this.inner().strong);
1044
1045        let this = ManuallyDrop::new(this);
1046        let elem: T = unsafe { ptr::read(&this.ptr.as_ref().data) };
1047        let alloc: A = unsafe { ptr::read(&this.alloc) }; // copy the allocator
1048
1049        // Make a weak pointer to clean up the implicit strong-weak reference
1050        let _weak = Weak { ptr: this.ptr, alloc };
1051
1052        Ok(elem)
1053    }
1054
1055    /// Returns the inner value, if the `Arc` has exactly one strong reference.
1056    ///
1057    /// Otherwise, [`None`] is returned and the `Arc` is dropped.
1058    ///
1059    /// This will succeed even if there are outstanding weak references.
1060    ///
1061    /// If `Arc::into_inner` is called on every clone of this `Arc`,
1062    /// it is guaranteed that exactly one of the calls returns the inner value.
1063    /// This means in particular that the inner value is not dropped.
1064    ///
1065    /// [`Arc::try_unwrap`] is conceptually similar to `Arc::into_inner`, but it
1066    /// is meant for different use-cases. If used as a direct replacement
1067    /// for `Arc::into_inner` anyway, such as with the expression
1068    /// <code>[Arc::try_unwrap]\(this).[ok][Result::ok]()</code>, then it does
1069    /// **not** give the same guarantee as described in the previous paragraph.
1070    /// For more information, see the examples below and read the documentation
1071    /// of [`Arc::try_unwrap`].
1072    ///
1073    /// # Examples
1074    ///
1075    /// Minimal example demonstrating the guarantee that `Arc::into_inner` gives.
1076    /// ```
1077    /// use std::sync::Arc;
1078    ///
1079    /// let x = Arc::new(3);
1080    /// let y = Arc::clone(&x);
1081    ///
1082    /// // Two threads calling `Arc::into_inner` on both clones of an `Arc`:
1083    /// let x_thread = std::thread::spawn(|| Arc::into_inner(x));
1084    /// let y_thread = std::thread::spawn(|| Arc::into_inner(y));
1085    ///
1086    /// let x_inner_value = x_thread.join().unwrap();
1087    /// let y_inner_value = y_thread.join().unwrap();
1088    ///
1089    /// // One of the threads is guaranteed to receive the inner value:
1090    /// assert!(matches!(
1091    ///     (x_inner_value, y_inner_value),
1092    ///     (None, Some(3)) | (Some(3), None)
1093    /// ));
1094    /// // The result could also be `(None, None)` if the threads called
1095    /// // `Arc::try_unwrap(x).ok()` and `Arc::try_unwrap(y).ok()` instead.
1096    /// ```
1097    ///
1098    /// A more practical example demonstrating the need for `Arc::into_inner`:
1099    /// ```
1100    /// use std::sync::Arc;
1101    ///
1102    /// // Definition of a simple singly linked list using `Arc`:
1103    /// #[derive(Clone)]
1104    /// struct LinkedList<T>(Option<Arc<Node<T>>>);
1105    /// struct Node<T>(T, Option<Arc<Node<T>>>);
1106    ///
1107    /// // Dropping a long `LinkedList<T>` relying on the destructor of `Arc`
1108    /// // can cause a stack overflow. To prevent this, we can provide a
1109    /// // manual `Drop` implementation that does the destruction in a loop:
1110    /// impl<T> Drop for LinkedList<T> {
1111    ///     fn drop(&mut self) {
1112    ///         let mut link = self.0.take();
1113    ///         while let Some(arc_node) = link.take() {
1114    ///             if let Some(Node(_value, next)) = Arc::into_inner(arc_node) {
1115    ///                 link = next;
1116    ///             }
1117    ///         }
1118    ///     }
1119    /// }
1120    ///
1121    /// // Implementation of `new` and `push` omitted
1122    /// impl<T> LinkedList<T> {
1123    ///     /* ... */
1124    /// #   fn new() -> Self {
1125    /// #       LinkedList(None)
1126    /// #   }
1127    /// #   fn push(&mut self, x: T) {
1128    /// #       self.0 = Some(Arc::new(Node(x, self.0.take())));
1129    /// #   }
1130    /// }
1131    ///
1132    /// // The following code could have still caused a stack overflow
1133    /// // despite the manual `Drop` impl if that `Drop` impl had used
1134    /// // `Arc::try_unwrap(arc).ok()` instead of `Arc::into_inner(arc)`.
1135    ///
1136    /// // Create a long list and clone it
1137    /// let mut x = LinkedList::new();
1138    /// let size = 100000;
1139    /// # let size = if cfg!(miri) { 100 } else { size };
1140    /// for i in 0..size {
1141    ///     x.push(i); // Adds i to the front of x
1142    /// }
1143    /// let y = x.clone();
1144    ///
1145    /// // Drop the clones in parallel
1146    /// let x_thread = std::thread::spawn(|| drop(x));
1147    /// let y_thread = std::thread::spawn(|| drop(y));
1148    /// x_thread.join().unwrap();
1149    /// y_thread.join().unwrap();
1150    /// ```
1151    #[inline]
1152    #[stable(feature = "arc_into_inner", since = "1.70.0")]
1153    pub fn into_inner(this: Self) -> Option<T> {
1154        // Make sure that the ordinary `Drop` implementation isn’t called as well
1155        let mut this = mem::ManuallyDrop::new(this);
1156
1157        // Following the implementation of `drop` and `drop_slow`
1158        if this.inner().strong.fetch_sub(1, Release) != 1 {
1159            return None;
1160        }
1161
1162        acquire!(this.inner().strong);
1163
1164        // SAFETY: This mirrors the line
1165        //
1166        //     unsafe { ptr::drop_in_place(Self::get_mut_unchecked(self)) };
1167        //
1168        // in `drop_slow`. Instead of dropping the value behind the pointer,
1169        // it is read and eventually returned; `ptr::read` has the same
1170        // safety conditions as `ptr::drop_in_place`.
1171
1172        let inner = unsafe { ptr::read(Self::get_mut_unchecked(&mut this)) };
1173        let alloc = unsafe { ptr::read(&this.alloc) };
1174
1175        drop(Weak { ptr: this.ptr, alloc });
1176
1177        Some(inner)
1178    }
1179
1180    /// Maps the value in an `Arc`, reusing the allocation if possible.
1181    ///
1182    /// `f` is called on a reference to the value in the `Arc`, and the result is returned, also in
1183    /// an `Arc`.
1184    ///
1185    /// Note: this is an associated function, which means that you have
1186    /// to call it as `Arc::map(a, f)` instead of `r.map(a)`. This
1187    /// is so that there is no conflict with a method on the inner type.
1188    ///
1189    /// # Examples
1190    ///
1191    /// ```
1192    /// #![feature(smart_pointer_try_map)]
1193    ///
1194    /// use std::sync::Arc;
1195    ///
1196    /// let r = Arc::new(7);
1197    /// let new = Arc::map(r, |i| i + 7);
1198    /// assert_eq!(*new, 14);
1199    /// ```
1200    #[cfg(not(no_global_oom_handling))]
1201    #[unstable(feature = "smart_pointer_try_map", issue = "144419")]
1202    pub fn map<U>(this: Self, f: impl FnOnce(&T) -> U) -> Arc<U, A> {
1203        if size_of::<T>() == size_of::<U>()
1204            && align_of::<T>() == align_of::<U>()
1205            && Arc::is_unique(&this)
1206        {
1207            unsafe {
1208                let (ptr, alloc) = Arc::into_raw_with_allocator(this);
1209                let value = ptr.read();
1210                let mut allocation = Arc::from_raw_in(ptr.cast::<mem::MaybeUninit<U>>(), alloc);
1211
1212                Arc::get_mut_unchecked(&mut allocation).write(f(&value));
1213                allocation.assume_init()
1214            }
1215        } else {
1216            let output = f(&*this);
1217            let (ptr, alloc) = Arc::into_raw_with_allocator(this);
1218            unsafe { Arc::decrement_strong_count_in(ptr, &alloc) }
1219
1220            Arc::new_in(output, alloc)
1221        }
1222    }
1223
1224    /// Attempts to map the value in an `Arc`, reusing the allocation if possible.
1225    ///
1226    /// `f` is called on a reference to the value in the `Arc`, and if the operation succeeds, the
1227    /// result is returned, also in an `Arc`.
1228    ///
1229    /// Note: this is an associated function, which means that you have
1230    /// to call it as `Arc::try_map(a, f)` instead of `a.try_map(f)`. This
1231    /// is so that there is no conflict with a method on the inner type.
1232    ///
1233    /// # Examples
1234    ///
1235    /// ```
1236    /// #![feature(smart_pointer_try_map)]
1237    ///
1238    /// use std::sync::Arc;
1239    ///
1240    /// let b = Arc::new(7);
1241    /// let new = Arc::try_map(b, |&i| u32::try_from(i)).unwrap();
1242    /// assert_eq!(*new, 7);
1243    /// ```
1244    #[cfg(not(no_global_oom_handling))]
1245    #[unstable(feature = "smart_pointer_try_map", issue = "144419")]
1246    pub fn try_map<R>(
1247        this: Self,
1248        f: impl FnOnce(&T) -> R,
1249    ) -> <R::Residual as Residual<Arc<R::Output, A>>>::TryType
1250    where
1251        R: Try,
1252        R::Residual: Residual<Arc<R::Output, A>>,
1253    {
1254        if size_of::<T>() == size_of::<R::Output>()
1255            && align_of::<T>() == align_of::<R::Output>()
1256            && Arc::is_unique(&this)
1257        {
1258            unsafe {
1259                let (ptr, alloc) = Arc::into_raw_with_allocator(this);
1260                let value = ptr.read();
1261                let mut allocation =
1262                    Arc::from_raw_in(ptr.cast::<mem::MaybeUninit<R::Output>>(), alloc);
1263
1264                Arc::get_mut_unchecked(&mut allocation).write(f(&value)?);
1265                try { allocation.assume_init() }
1266            }
1267        } else {
1268            let output = f(&*this)?;
1269            let (ptr, alloc) = Arc::into_raw_with_allocator(this);
1270            unsafe { Arc::decrement_strong_count_in(ptr, &alloc) }
1271
1272            try { Arc::new_in(output, alloc) }
1273        }
1274    }
1275}
1276
1277impl<T> Arc<[T]> {
1278    /// Constructs a new atomically reference-counted slice with uninitialized contents.
1279    ///
1280    /// # Examples
1281    ///
1282    /// ```
1283    /// use std::sync::Arc;
1284    ///
1285    /// let mut values = Arc::<[u32]>::new_uninit_slice(3);
1286    ///
1287    /// // Deferred initialization:
1288    /// let data = Arc::get_mut(&mut values).unwrap();
1289    /// data[0].write(1);
1290    /// data[1].write(2);
1291    /// data[2].write(3);
1292    ///
1293    /// let values = unsafe { values.assume_init() };
1294    ///
1295    /// assert_eq!(*values, [1, 2, 3])
1296    /// ```
1297    #[cfg(not(no_global_oom_handling))]
1298    #[inline]
1299    #[stable(feature = "new_uninit", since = "1.82.0")]
1300    #[must_use]
1301    pub fn new_uninit_slice(len: usize) -> Arc<[mem::MaybeUninit<T>]> {
1302        unsafe { Arc::from_ptr(Arc::allocate_for_slice(len)) }
1303    }
1304
1305    /// Constructs a new atomically reference-counted slice with uninitialized contents, with the memory being
1306    /// filled with `0` bytes.
1307    ///
1308    /// See [`MaybeUninit::zeroed`][zeroed] for examples of correct and
1309    /// incorrect usage of this method.
1310    ///
1311    /// # Examples
1312    ///
1313    /// ```
1314    /// use std::sync::Arc;
1315    ///
1316    /// let values = Arc::<[u32]>::new_zeroed_slice(3);
1317    /// let values = unsafe { values.assume_init() };
1318    ///
1319    /// assert_eq!(*values, [0, 0, 0])
1320    /// ```
1321    ///
1322    /// [zeroed]: mem::MaybeUninit::zeroed
1323    #[cfg(not(no_global_oom_handling))]
1324    #[inline]
1325    #[stable(feature = "new_zeroed_alloc", since = "1.92.0")]
1326    #[must_use]
1327    pub fn new_zeroed_slice(len: usize) -> Arc<[mem::MaybeUninit<T>]> {
1328        unsafe {
1329            Arc::from_ptr(Arc::allocate_for_layout(
1330                Layout::array::<T>(len).unwrap(),
1331                |layout| Global.allocate_zeroed(layout),
1332                |mem| mem.cast::<T>().cast_slice(len) as *mut ArcInner<[mem::MaybeUninit<T>]>,
1333            ))
1334        }
1335    }
1336}
1337
1338impl<T, A: Allocator> Arc<[T], A> {
1339    /// Constructs a new atomically reference-counted slice with uninitialized contents in the
1340    /// provided allocator.
1341    ///
1342    /// # Examples
1343    ///
1344    /// ```
1345    /// #![feature(get_mut_unchecked)]
1346    /// #![feature(allocator_api)]
1347    ///
1348    /// use std::sync::Arc;
1349    /// use std::alloc::System;
1350    ///
1351    /// let mut values = Arc::<[u32], _>::new_uninit_slice_in(3, System);
1352    ///
1353    /// let values = unsafe {
1354    ///     // Deferred initialization:
1355    ///     Arc::get_mut_unchecked(&mut values)[0].as_mut_ptr().write(1);
1356    ///     Arc::get_mut_unchecked(&mut values)[1].as_mut_ptr().write(2);
1357    ///     Arc::get_mut_unchecked(&mut values)[2].as_mut_ptr().write(3);
1358    ///
1359    ///     values.assume_init()
1360    /// };
1361    ///
1362    /// assert_eq!(*values, [1, 2, 3])
1363    /// ```
1364    #[cfg(not(no_global_oom_handling))]
1365    #[unstable(feature = "allocator_api", issue = "32838")]
1366    #[inline]
1367    pub fn new_uninit_slice_in(len: usize, alloc: A) -> Arc<[mem::MaybeUninit<T>], A> {
1368        unsafe { Arc::from_ptr_in(Arc::allocate_for_slice_in(len, &alloc), alloc) }
1369    }
1370
1371    /// Constructs a new atomically reference-counted slice with uninitialized contents, with the memory being
1372    /// filled with `0` bytes, in the provided allocator.
1373    ///
1374    /// See [`MaybeUninit::zeroed`][zeroed] for examples of correct and
1375    /// incorrect usage of this method.
1376    ///
1377    /// # Examples
1378    ///
1379    /// ```
1380    /// #![feature(allocator_api)]
1381    ///
1382    /// use std::sync::Arc;
1383    /// use std::alloc::System;
1384    ///
1385    /// let values = Arc::<[u32], _>::new_zeroed_slice_in(3, System);
1386    /// let values = unsafe { values.assume_init() };
1387    ///
1388    /// assert_eq!(*values, [0, 0, 0])
1389    /// ```
1390    ///
1391    /// [zeroed]: mem::MaybeUninit::zeroed
1392    #[cfg(not(no_global_oom_handling))]
1393    #[unstable(feature = "allocator_api", issue = "32838")]
1394    #[inline]
1395    pub fn new_zeroed_slice_in(len: usize, alloc: A) -> Arc<[mem::MaybeUninit<T>], A> {
1396        unsafe {
1397            Arc::from_ptr_in(
1398                Arc::allocate_for_layout(
1399                    Layout::array::<T>(len).unwrap(),
1400                    |layout| alloc.allocate_zeroed(layout),
1401                    |mem| mem.cast::<T>().cast_slice(len) as *mut ArcInner<[mem::MaybeUninit<T>]>,
1402                ),
1403                alloc,
1404            )
1405        }
1406    }
1407
1408    /// Converts the reference-counted slice into a reference-counted array.
1409    ///
1410    /// This operation does not reallocate; the underlying array of the slice is simply reinterpreted as an array type.
1411    ///
1412    /// # Errors
1413    ///
1414    /// Returns the original `Arc<[T]>` in the `Err` variant if `self.len()` does not equal `N`.
1415    ///
1416    /// # Examples
1417    ///
1418    /// ```
1419    /// #![feature(alloc_slice_into_array)]
1420    /// use std::sync::Arc;
1421    ///
1422    /// let arc_slice: Arc<[i32]> = Arc::new([1, 2, 3]);
1423    ///
1424    /// let arc_array: Arc<[i32; 3]> = arc_slice.into_array().unwrap();
1425    /// ```
1426    #[unstable(feature = "alloc_slice_into_array", issue = "148082")]
1427    #[inline]
1428    #[must_use]
1429    pub fn into_array<const N: usize>(self) -> Result<Arc<[T; N], A>, Self> {
1430        if self.len() == N {
1431            let (ptr, alloc) = Self::into_raw_with_allocator(self);
1432            let ptr = ptr as *const [T; N];
1433
1434            // 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.
1435            let me = unsafe { Arc::from_raw_in(ptr, alloc) };
1436            Ok(me)
1437        } else {
1438            Err(self)
1439        }
1440    }
1441}
1442
1443impl<T, A: Allocator> Arc<mem::MaybeUninit<T>, A> {
1444    /// Converts to `Arc<T>`.
1445    ///
1446    /// # Safety
1447    ///
1448    /// As with [`MaybeUninit::assume_init`],
1449    /// it is up to the caller to guarantee that the inner value
1450    /// really is in an initialized state.
1451    /// Calling this when the content is not yet fully initialized
1452    /// causes immediate undefined behavior.
1453    ///
1454    /// [`MaybeUninit::assume_init`]: mem::MaybeUninit::assume_init
1455    ///
1456    /// # Examples
1457    ///
1458    /// ```
1459    /// use std::sync::Arc;
1460    ///
1461    /// let mut five = Arc::<u32>::new_uninit();
1462    ///
1463    /// // Deferred initialization:
1464    /// Arc::get_mut(&mut five).unwrap().write(5);
1465    ///
1466    /// let five = unsafe { five.assume_init() };
1467    ///
1468    /// assert_eq!(*five, 5)
1469    /// ```
1470    #[stable(feature = "new_uninit", since = "1.82.0")]
1471    #[must_use = "`self` will be dropped if the result is not used"]
1472    #[inline]
1473    pub unsafe fn assume_init(self) -> Arc<T, A> {
1474        let (ptr, alloc) = Arc::into_inner_with_allocator(self);
1475        unsafe { Arc::from_inner_in(ptr.cast(), alloc) }
1476    }
1477}
1478
1479impl<T: ?Sized + CloneToUninit> Arc<T> {
1480    /// Constructs a new `Arc<T>` with a clone of `value`.
1481    ///
1482    /// # Examples
1483    ///
1484    /// ```
1485    /// #![feature(clone_from_ref)]
1486    /// use std::sync::Arc;
1487    ///
1488    /// let hello: Arc<str> = Arc::clone_from_ref("hello");
1489    /// ```
1490    #[cfg(not(no_global_oom_handling))]
1491    #[unstable(feature = "clone_from_ref", issue = "149075")]
1492    pub fn clone_from_ref(value: &T) -> Arc<T> {
1493        Arc::clone_from_ref_in(value, Global)
1494    }
1495
1496    /// Constructs a new `Arc<T>` with a clone of `value`, returning an error if allocation fails
1497    ///
1498    /// # Examples
1499    ///
1500    /// ```
1501    /// #![feature(clone_from_ref)]
1502    /// #![feature(allocator_api)]
1503    /// use std::sync::Arc;
1504    ///
1505    /// let hello: Arc<str> = Arc::try_clone_from_ref("hello")?;
1506    /// # Ok::<(), std::alloc::AllocError>(())
1507    /// ```
1508    #[unstable(feature = "clone_from_ref", issue = "149075")]
1509    //#[unstable(feature = "allocator_api", issue = "32838")]
1510    pub fn try_clone_from_ref(value: &T) -> Result<Arc<T>, AllocError> {
1511        Arc::try_clone_from_ref_in(value, Global)
1512    }
1513}
1514
1515impl<T: ?Sized + CloneToUninit, A: Allocator> Arc<T, A> {
1516    /// Constructs a new `Arc<T>` with a clone of `value` in the provided allocator.
1517    ///
1518    /// # Examples
1519    ///
1520    /// ```
1521    /// #![feature(clone_from_ref)]
1522    /// #![feature(allocator_api)]
1523    /// use std::sync::Arc;
1524    /// use std::alloc::System;
1525    ///
1526    /// let hello: Arc<str, System> = Arc::clone_from_ref_in("hello", System);
1527    /// ```
1528    #[cfg(not(no_global_oom_handling))]
1529    #[unstable(feature = "clone_from_ref", issue = "149075")]
1530    //#[unstable(feature = "allocator_api", issue = "32838")]
1531    pub fn clone_from_ref_in(value: &T, alloc: A) -> Arc<T, A> {
1532        // `in_progress` drops the allocation if we panic before finishing initializing it.
1533        let mut in_progress: UniqueArcUninit<T, A> = UniqueArcUninit::new(value, alloc);
1534
1535        // Initialize with clone of value.
1536        unsafe {
1537            // Clone. If the clone panics, `in_progress` will be dropped and clean up.
1538            value.clone_to_uninit(in_progress.data_ptr().cast());
1539            // Cast type of pointer, now that it is initialized.
1540            in_progress.into_arc()
1541        }
1542    }
1543
1544    /// Constructs a new `Arc<T>` with a clone of `value` in the provided allocator, returning an error if allocation fails
1545    ///
1546    /// # Examples
1547    ///
1548    /// ```
1549    /// #![feature(clone_from_ref)]
1550    /// #![feature(allocator_api)]
1551    /// use std::sync::Arc;
1552    /// use std::alloc::System;
1553    ///
1554    /// let hello: Arc<str, System> = Arc::try_clone_from_ref_in("hello", System)?;
1555    /// # Ok::<(), std::alloc::AllocError>(())
1556    /// ```
1557    #[unstable(feature = "clone_from_ref", issue = "149075")]
1558    //#[unstable(feature = "allocator_api", issue = "32838")]
1559    pub fn try_clone_from_ref_in(value: &T, alloc: A) -> Result<Arc<T, A>, AllocError> {
1560        // `in_progress` drops the allocation if we panic before finishing initializing it.
1561        let mut in_progress: UniqueArcUninit<T, A> = UniqueArcUninit::try_new(value, alloc)?;
1562
1563        // Initialize with clone of value.
1564        let initialized_clone = unsafe {
1565            // Clone. If the clone panics, `in_progress` will be dropped and clean up.
1566            value.clone_to_uninit(in_progress.data_ptr().cast());
1567            // Cast type of pointer, now that it is initialized.
1568            in_progress.into_arc()
1569        };
1570
1571        Ok(initialized_clone)
1572    }
1573}
1574
1575impl<T, A: Allocator> Arc<[mem::MaybeUninit<T>], A> {
1576    /// Converts to `Arc<[T]>`.
1577    ///
1578    /// # Safety
1579    ///
1580    /// As with [`MaybeUninit::assume_init`],
1581    /// it is up to the caller to guarantee that the inner value
1582    /// really is in an initialized state.
1583    /// Calling this when the content is not yet fully initialized
1584    /// causes immediate undefined behavior.
1585    ///
1586    /// [`MaybeUninit::assume_init`]: mem::MaybeUninit::assume_init
1587    ///
1588    /// # Examples
1589    ///
1590    /// ```
1591    /// use std::sync::Arc;
1592    ///
1593    /// let mut values = Arc::<[u32]>::new_uninit_slice(3);
1594    ///
1595    /// // Deferred initialization:
1596    /// let data = Arc::get_mut(&mut values).unwrap();
1597    /// data[0].write(1);
1598    /// data[1].write(2);
1599    /// data[2].write(3);
1600    ///
1601    /// let values = unsafe { values.assume_init() };
1602    ///
1603    /// assert_eq!(*values, [1, 2, 3])
1604    /// ```
1605    #[stable(feature = "new_uninit", since = "1.82.0")]
1606    #[must_use = "`self` will be dropped if the result is not used"]
1607    #[inline]
1608    pub unsafe fn assume_init(self) -> Arc<[T], A> {
1609        let (ptr, alloc) = Arc::into_inner_with_allocator(self);
1610        unsafe { Arc::from_ptr_in(ptr.as_ptr() as _, alloc) }
1611    }
1612}
1613
1614impl<T: ?Sized> Arc<T> {
1615    /// Constructs an `Arc<T>` from a raw pointer.
1616    ///
1617    /// The raw pointer must have been previously returned by a call to
1618    /// [`Arc<U>::into_raw`][into_raw] or [`Arc<U>::into_raw_with_allocator`][into_raw_with_allocator].
1619    ///
1620    /// # Safety
1621    ///
1622    /// * Creating a `Arc<T>` from a pointer other than one returned from
1623    ///   [`Arc<U>::into_raw`][into_raw] or [`Arc<U>::into_raw_with_allocator`][into_raw_with_allocator]
1624    ///   is undefined behavior.
1625    /// * If `U` is sized, it must have the same size and alignment as `T`. This
1626    ///   is trivially true if `U` is `T`.
1627    /// * If `U` is unsized, its data pointer must have the same size and
1628    ///   alignment as `T`. This is trivially true if `Arc<U>` was constructed
1629    ///   through `Arc<T>` and then converted to `Arc<U>` through an [unsized
1630    ///   coercion].
1631    /// * Note that if `U` or `U`'s data pointer is not `T` but has the same size
1632    ///   and alignment, this is basically like transmuting references of
1633    ///   different types. See [`mem::transmute`][transmute] for more information
1634    ///   on what restrictions apply in this case.
1635    /// * The raw pointer must point to a block of memory allocated by the global allocator.
1636    /// * The user of `from_raw` has to make sure a specific value of `T` is only
1637    ///   dropped once.
1638    ///
1639    /// This function is unsafe because improper use may lead to memory unsafety,
1640    /// even if the returned `Arc<T>` is never accessed.
1641    ///
1642    /// [into_raw]: Arc::into_raw
1643    /// [into_raw_with_allocator]: Arc::into_raw_with_allocator
1644    /// [transmute]: core::mem::transmute
1645    /// [unsized coercion]: https://doc.rust-lang.org/reference/type-coercions.html#unsized-coercions
1646    ///
1647    /// # Examples
1648    ///
1649    /// ```
1650    /// use std::sync::Arc;
1651    ///
1652    /// let x = Arc::new("hello".to_owned());
1653    /// let x_ptr = Arc::into_raw(x);
1654    ///
1655    /// unsafe {
1656    ///     // Convert back to an `Arc` to prevent leak.
1657    ///     let x = Arc::from_raw(x_ptr);
1658    ///     assert_eq!(&*x, "hello");
1659    ///
1660    ///     // Further calls to `Arc::from_raw(x_ptr)` would be memory-unsafe.
1661    /// }
1662    ///
1663    /// // The memory was freed when `x` went out of scope above, so `x_ptr` is now dangling!
1664    /// ```
1665    ///
1666    /// Convert a slice back into its original array:
1667    ///
1668    /// ```
1669    /// use std::sync::Arc;
1670    ///
1671    /// let x: Arc<[u32]> = Arc::new([1, 2, 3]);
1672    /// let x_ptr: *const [u32] = Arc::into_raw(x);
1673    ///
1674    /// unsafe {
1675    ///     let x: Arc<[u32; 3]> = Arc::from_raw(x_ptr.cast::<[u32; 3]>());
1676    ///     assert_eq!(&*x, &[1, 2, 3]);
1677    /// }
1678    /// ```
1679    #[inline]
1680    #[stable(feature = "rc_raw", since = "1.17.0")]
1681    pub unsafe fn from_raw(ptr: *const T) -> Self {
1682        unsafe { Arc::from_raw_in(ptr, Global) }
1683    }
1684
1685    /// Consumes the `Arc`, returning the wrapped pointer.
1686    ///
1687    /// To avoid a memory leak the pointer must be converted back to an `Arc` using
1688    /// [`Arc::from_raw`].
1689    ///
1690    /// # Examples
1691    ///
1692    /// ```
1693    /// use std::sync::Arc;
1694    ///
1695    /// let x = Arc::new("hello".to_owned());
1696    /// let x_ptr = Arc::into_raw(x);
1697    /// assert_eq!(unsafe { &*x_ptr }, "hello");
1698    /// # // Prevent leaks for Miri.
1699    /// # drop(unsafe { Arc::from_raw(x_ptr) });
1700    /// ```
1701    #[must_use = "losing the pointer will leak memory"]
1702    #[stable(feature = "rc_raw", since = "1.17.0")]
1703    #[rustc_never_returns_null_ptr]
1704    pub fn into_raw(this: Self) -> *const T {
1705        let this = ManuallyDrop::new(this);
1706        Self::as_ptr(&*this)
1707    }
1708
1709    /// Increments the strong reference count on the `Arc<T>` associated with the
1710    /// provided pointer by one.
1711    ///
1712    /// # Safety
1713    ///
1714    /// The pointer must have been obtained through `Arc::into_raw` and must satisfy the
1715    /// same layout requirements specified in [`Arc::from_raw_in`][from_raw_in].
1716    /// The associated `Arc` instance must be valid (i.e. the strong count must be at
1717    /// least 1) for the duration of this method, and `ptr` must point to a block of memory
1718    /// allocated by the global allocator.
1719    ///
1720    /// [from_raw_in]: Arc::from_raw_in
1721    ///
1722    /// # Examples
1723    ///
1724    /// ```
1725    /// use std::sync::Arc;
1726    ///
1727    /// let five = Arc::new(5);
1728    ///
1729    /// unsafe {
1730    ///     let ptr = Arc::into_raw(five);
1731    ///     Arc::increment_strong_count(ptr);
1732    ///
1733    ///     // This assertion is deterministic because we haven't shared
1734    ///     // the `Arc` between threads.
1735    ///     let five = Arc::from_raw(ptr);
1736    ///     assert_eq!(2, Arc::strong_count(&five));
1737    /// #   // Prevent leaks for Miri.
1738    /// #   Arc::decrement_strong_count(ptr);
1739    /// }
1740    /// ```
1741    #[inline]
1742    #[stable(feature = "arc_mutate_strong_count", since = "1.51.0")]
1743    pub unsafe fn increment_strong_count(ptr: *const T) {
1744        unsafe { Arc::increment_strong_count_in(ptr, Global) }
1745    }
1746
1747    /// Decrements the strong reference count on the `Arc<T>` associated with the
1748    /// provided pointer by one.
1749    ///
1750    /// # Safety
1751    ///
1752    /// The pointer must have been obtained through `Arc::into_raw` and must satisfy the
1753    /// same layout requirements specified in [`Arc::from_raw_in`][from_raw_in].
1754    /// The associated `Arc` instance must be valid (i.e. the strong count must be at
1755    /// least 1) when invoking this method, and `ptr` must point to a block of memory
1756    /// allocated by the global allocator. This method can be used to release the final
1757    /// `Arc` and backing storage, but **should not** be called after the final `Arc` has been
1758    /// released.
1759    ///
1760    /// [from_raw_in]: Arc::from_raw_in
1761    ///
1762    /// # Examples
1763    ///
1764    /// ```
1765    /// use std::sync::Arc;
1766    ///
1767    /// let five = Arc::new(5);
1768    ///
1769    /// unsafe {
1770    ///     let ptr = Arc::into_raw(five);
1771    ///     Arc::increment_strong_count(ptr);
1772    ///
1773    ///     // Those assertions are deterministic because we haven't shared
1774    ///     // the `Arc` between threads.
1775    ///     let five = Arc::from_raw(ptr);
1776    ///     assert_eq!(2, Arc::strong_count(&five));
1777    ///     Arc::decrement_strong_count(ptr);
1778    ///     assert_eq!(1, Arc::strong_count(&five));
1779    /// }
1780    /// ```
1781    #[inline]
1782    #[stable(feature = "arc_mutate_strong_count", since = "1.51.0")]
1783    pub unsafe fn decrement_strong_count(ptr: *const T) {
1784        unsafe { Arc::decrement_strong_count_in(ptr, Global) }
1785    }
1786
1787    /// Gets the number of strong (`Arc`) pointers to the allocation behind the given raw
1788    /// pointer.
1789    ///
1790    /// This method does not consume or drop the `Arc` behind this pointer.
1791    ///
1792    /// # Safety
1793    ///
1794    /// The pointer must point to (and have valid metadata for) the value inside a live `Arc`
1795    /// allocation, such as a pointer returned by [`Arc::into_raw`],
1796    /// [`Arc::into_raw_with_allocator`], or [`Arc::as_ptr`].
1797    /// `T` must have the same alignment as that value.
1798    /// The associated `Arc` instance must be valid (i.e. the strong count must be at
1799    /// least 1) for the duration of this method.
1800    ///
1801    /// Using this method correctly also requires extra care: another thread can change the
1802    /// strong count at any time, including between calling this method and acting on the
1803    /// result.
1804    ///
1805    /// # Examples
1806    ///
1807    /// ```
1808    /// #![feature(arc_raw_get_strong)]
1809    /// use std::sync::Arc;
1810    ///
1811    /// let five = Arc::new(5);
1812    /// let _also_five = Arc::clone(&five);
1813    /// let ptr = Arc::into_raw(five);
1814    ///
1815    /// unsafe {
1816    ///     // This assertion is deterministic because we haven't shared
1817    ///     // the `Arc` between threads.
1818    ///     assert_eq!(2, Arc::strong_count_from_raw(ptr));
1819    ///
1820    ///     // Convert back to an `Arc` to avoid leaking memory.
1821    ///     let five = Arc::from_raw(ptr);
1822    ///     assert_eq!(2, Arc::strong_count(&five));
1823    /// }
1824    /// ```
1825    #[inline]
1826    #[must_use]
1827    #[unstable(feature = "arc_raw_get_strong", issue = "157021")]
1828    pub unsafe fn strong_count_from_raw(ptr: *const T) -> usize {
1829        let offset = unsafe { data_offset(ptr) };
1830        // Reverse the offset to find the original ArcInner.
1831        let arc_ptr = unsafe { ptr.byte_sub(offset) as *mut ArcInner<T> };
1832        unsafe { (*arc_ptr).strong.load(Relaxed) }
1833    }
1834}
1835
1836impl<T: ?Sized, A: Allocator> Arc<T, A> {
1837    /// Returns a reference to the underlying allocator.
1838    ///
1839    /// Note: this is an associated function, which means that you have
1840    /// to call it as `Arc::allocator(&a)` instead of `a.allocator()`. This
1841    /// is so that there is no conflict with a method on the inner type.
1842    #[inline]
1843    #[unstable(feature = "allocator_api", issue = "32838")]
1844    pub fn allocator(this: &Self) -> &A {
1845        &this.alloc
1846    }
1847
1848    /// Consumes the `Arc`, returning the wrapped pointer and allocator.
1849    ///
1850    /// To avoid a memory leak the pointer must be converted back to an `Arc` using
1851    /// [`Arc::from_raw_in`].
1852    ///
1853    /// # Examples
1854    ///
1855    /// ```
1856    /// #![feature(allocator_api)]
1857    /// use std::sync::Arc;
1858    /// use std::alloc::System;
1859    ///
1860    /// let x = Arc::new_in("hello".to_owned(), System);
1861    /// let (ptr, alloc) = Arc::into_raw_with_allocator(x);
1862    /// assert_eq!(unsafe { &*ptr }, "hello");
1863    /// let x = unsafe { Arc::from_raw_in(ptr, alloc) };
1864    /// assert_eq!(&*x, "hello");
1865    /// ```
1866    #[must_use = "losing the pointer will leak memory"]
1867    #[unstable(feature = "allocator_api", issue = "32838")]
1868    pub fn into_raw_with_allocator(this: Self) -> (*const T, A) {
1869        let this = mem::ManuallyDrop::new(this);
1870        let ptr = Self::as_ptr(&this);
1871        // Safety: `this` is ManuallyDrop so the allocator will not be double-dropped
1872        let alloc = unsafe { ptr::read(&this.alloc) };
1873        (ptr, alloc)
1874    }
1875
1876    /// Provides a raw pointer to the data.
1877    ///
1878    /// The counts are not affected in any way and the `Arc` is not consumed. The pointer is valid for
1879    /// as long as there are strong counts in the `Arc`.
1880    ///
1881    /// # Examples
1882    ///
1883    /// ```
1884    /// use std::sync::Arc;
1885    ///
1886    /// let x = Arc::new("hello".to_owned());
1887    /// let y = Arc::clone(&x);
1888    /// let x_ptr = Arc::as_ptr(&x);
1889    /// assert_eq!(x_ptr, Arc::as_ptr(&y));
1890    /// assert_eq!(unsafe { &*x_ptr }, "hello");
1891    /// ```
1892    #[must_use]
1893    #[stable(feature = "rc_as_ptr", since = "1.45.0")]
1894    #[rustc_never_returns_null_ptr]
1895    pub fn as_ptr(this: &Self) -> *const T {
1896        let ptr: *mut ArcInner<T> = NonNull::as_ptr(this.ptr);
1897
1898        // SAFETY: This cannot go through Deref::deref or ArcInnerPtr::inner because
1899        // this is required to retain raw/mut provenance such that e.g. `get_mut` can
1900        // write through the pointer after the Arc is recovered through `from_raw`.
1901        unsafe { &raw mut (*ptr).data }
1902    }
1903
1904    /// Constructs an `Arc<T, A>` from a raw pointer.
1905    ///
1906    /// The raw pointer must have been previously returned by a call to [`Arc<U,
1907    /// A>::into_raw`][into_raw] or [`Arc<U, A>::into_raw_with_allocator`][into_raw_with_allocator].
1908    ///
1909    /// # Safety
1910    ///
1911    /// * Creating a `Arc<T, A>` from a pointer other than one returned from
1912    ///   [`Arc<U, A>::into_raw`][into_raw] or [`Arc<U, A>::into_raw_with_allocator`][into_raw_with_allocator]
1913    ///   is undefined behavior.
1914    /// * If `U` is sized, it must have the same size and alignment as `T`. This
1915    ///   is trivially true if `U` is `T`.
1916    /// * If `U` is unsized, its data pointer must have the same size and
1917    ///   alignment as `T`. This is trivially true if `Arc<U, A>` was constructed
1918    ///   through `Arc<T, A>` and then converted to `Arc<U, A>` through an [unsized
1919    ///   coercion].
1920    /// * Note that if `U` or `U`'s data pointer is not `T` but has the same size
1921    ///   and alignment, this is basically like transmuting references of
1922    ///   different types. See [`mem::transmute`][transmute] for more information
1923    ///   on what restrictions apply in this case.
1924    /// * The raw pointer must point to a block of memory allocated by `alloc`
1925    /// * The user of `from_raw` has to make sure a specific value of `T` is only
1926    ///   dropped once.
1927    ///
1928    /// This function is unsafe because improper use may lead to memory unsafety,
1929    /// even if the returned `Arc<T>` is never accessed.
1930    ///
1931    /// [into_raw]: Arc::into_raw
1932    /// [into_raw_with_allocator]: Arc::into_raw_with_allocator
1933    /// [transmute]: core::mem::transmute
1934    /// [unsized coercion]: https://doc.rust-lang.org/reference/type-coercions.html#unsized-coercions
1935    ///
1936    /// # Examples
1937    ///
1938    /// ```
1939    /// #![feature(allocator_api)]
1940    ///
1941    /// use std::sync::Arc;
1942    /// use std::alloc::System;
1943    ///
1944    /// let x = Arc::new_in("hello".to_owned(), System);
1945    /// let (x_ptr, alloc) = Arc::into_raw_with_allocator(x);
1946    ///
1947    /// unsafe {
1948    ///     // Convert back to an `Arc` to prevent leak.
1949    ///     let x = Arc::from_raw_in(x_ptr, System);
1950    ///     assert_eq!(&*x, "hello");
1951    ///
1952    ///     // Further calls to `Arc::from_raw(x_ptr)` would be memory-unsafe.
1953    /// }
1954    ///
1955    /// // The memory was freed when `x` went out of scope above, so `x_ptr` is now dangling!
1956    /// ```
1957    ///
1958    /// Convert a slice back into its original array:
1959    ///
1960    /// ```
1961    /// #![feature(allocator_api)]
1962    ///
1963    /// use std::sync::Arc;
1964    /// use std::alloc::System;
1965    ///
1966    /// let x: Arc<[u32], _> = Arc::new_in([1, 2, 3], System);
1967    /// let x_ptr: *const [u32] = Arc::into_raw_with_allocator(x).0;
1968    ///
1969    /// unsafe {
1970    ///     let x: Arc<[u32; 3], _> = Arc::from_raw_in(x_ptr.cast::<[u32; 3]>(), System);
1971    ///     assert_eq!(&*x, &[1, 2, 3]);
1972    /// }
1973    /// ```
1974    #[inline]
1975    #[unstable(feature = "allocator_api", issue = "32838")]
1976    pub unsafe fn from_raw_in(ptr: *const T, alloc: A) -> Self {
1977        unsafe {
1978            let offset = data_offset(ptr);
1979
1980            // Reverse the offset to find the original ArcInner.
1981            let arc_ptr = ptr.byte_sub(offset) as *mut ArcInner<T>;
1982
1983            Self::from_ptr_in(arc_ptr, alloc)
1984        }
1985    }
1986
1987    /// Creates a new [`Weak`] pointer to this allocation.
1988    ///
1989    /// # Examples
1990    ///
1991    /// ```
1992    /// use std::sync::Arc;
1993    ///
1994    /// let five = Arc::new(5);
1995    ///
1996    /// let weak_five = Arc::downgrade(&five);
1997    /// ```
1998    #[must_use = "this returns a new `Weak` pointer, \
1999                  without modifying the original `Arc`"]
2000    #[stable(feature = "arc_weak", since = "1.4.0")]
2001    pub fn downgrade(this: &Self) -> Weak<T, A>
2002    where
2003        A: AllocatorClone,
2004    {
2005        // This Relaxed is OK because we're checking the value in the CAS
2006        // below.
2007        let mut cur = this.inner().weak.load(Relaxed);
2008
2009        loop {
2010            // check if the weak counter is currently "locked"; if so, spin.
2011            if cur == usize::MAX {
2012                hint::spin_loop();
2013                cur = this.inner().weak.load(Relaxed);
2014                continue;
2015            }
2016
2017            // We can't allow the refcount to increase much past `MAX_REFCOUNT`.
2018            if cur > MAX_REFCOUNT {
2019                panic_arc_overflow();
2020            }
2021            // NOTE: this code currently ignores the possibility of overflow
2022            // into usize::MAX; in general both Rc and Arc need to be adjusted
2023            // to deal with overflow.
2024
2025            // Unlike with Clone(), we need this to be an Acquire read to
2026            // synchronize with the write coming from `is_unique`, so that the
2027            // events prior to that write happen before this read.
2028            match this.inner().weak.compare_exchange_weak(cur, cur + 1, Acquire, Relaxed) {
2029                Ok(_) => {
2030                    // Make sure we do not create a dangling Weak
2031                    debug_assert!(!is_dangling(this.ptr.as_ptr()));
2032                    return Weak { ptr: this.ptr, alloc: this.alloc.clone() };
2033                }
2034                Err(old) => cur = old,
2035            }
2036        }
2037    }
2038
2039    /// Gets the number of [`Weak`] pointers to this allocation.
2040    ///
2041    /// # Safety
2042    ///
2043    /// This method by itself is safe, but using it correctly requires extra care.
2044    /// Another thread can change the weak count at any time,
2045    /// including potentially between calling this method and acting on the result.
2046    ///
2047    /// # Examples
2048    ///
2049    /// ```
2050    /// use std::sync::Arc;
2051    ///
2052    /// let five = Arc::new(5);
2053    /// let _weak_five = Arc::downgrade(&five);
2054    ///
2055    /// // This assertion is deterministic because we haven't shared
2056    /// // the `Arc` or `Weak` between threads.
2057    /// assert_eq!(1, Arc::weak_count(&five));
2058    /// ```
2059    #[inline]
2060    #[must_use]
2061    #[stable(feature = "arc_counts", since = "1.15.0")]
2062    pub fn weak_count(this: &Self) -> usize {
2063        let cnt = this.inner().weak.load(Relaxed);
2064        // If the weak count is currently locked, the value of the
2065        // count was 0 just before taking the lock.
2066        if cnt == usize::MAX { 0 } else { cnt - 1 }
2067    }
2068
2069    /// Gets the number of strong (`Arc`) pointers to this allocation.
2070    ///
2071    /// # Safety
2072    ///
2073    /// This method by itself is safe, but using it correctly requires extra care.
2074    /// Another thread can change the strong count at any time,
2075    /// including potentially between calling this method and acting on the result.
2076    ///
2077    /// # Examples
2078    ///
2079    /// ```
2080    /// use std::sync::Arc;
2081    ///
2082    /// let five = Arc::new(5);
2083    /// let _also_five = Arc::clone(&five);
2084    ///
2085    /// // This assertion is deterministic because we haven't shared
2086    /// // the `Arc` between threads.
2087    /// assert_eq!(2, Arc::strong_count(&five));
2088    /// ```
2089    #[inline]
2090    #[must_use]
2091    #[stable(feature = "arc_counts", since = "1.15.0")]
2092    pub fn strong_count(this: &Self) -> usize {
2093        this.inner().strong.load(Relaxed)
2094    }
2095
2096    /// Increments the strong reference count on the `Arc<T>` associated with the
2097    /// provided pointer by one.
2098    ///
2099    /// # Safety
2100    ///
2101    /// The pointer must have been obtained through `Arc::into_raw` and must satisfy the
2102    /// same layout requirements specified in [`Arc::from_raw_in`][from_raw_in].
2103    /// The associated `Arc` instance must be valid (i.e. the strong count must be at
2104    /// least 1) for the duration of this method, and `ptr` must point to a block of memory
2105    /// allocated by `alloc`.
2106    ///
2107    /// [from_raw_in]: Arc::from_raw_in
2108    ///
2109    /// # Examples
2110    ///
2111    /// ```
2112    /// #![feature(allocator_api)]
2113    ///
2114    /// use std::sync::Arc;
2115    /// use std::alloc::System;
2116    ///
2117    /// let five = Arc::new_in(5, System);
2118    ///
2119    /// unsafe {
2120    ///     let (ptr, _alloc) = Arc::into_raw_with_allocator(five);
2121    ///     Arc::increment_strong_count_in(ptr, System);
2122    ///
2123    ///     // This assertion is deterministic because we haven't shared
2124    ///     // the `Arc` between threads.
2125    ///     let five = Arc::from_raw_in(ptr, System);
2126    ///     assert_eq!(2, Arc::strong_count(&five));
2127    /// #   // Prevent leaks for Miri.
2128    /// #   Arc::decrement_strong_count_in(ptr, System);
2129    /// }
2130    /// ```
2131    #[inline]
2132    #[unstable(feature = "allocator_api", issue = "32838")]
2133    pub unsafe fn increment_strong_count_in(ptr: *const T, alloc: A)
2134    where
2135        A: AllocatorClone,
2136    {
2137        // Retain Arc, but don't touch refcount by wrapping in ManuallyDrop
2138        let arc = unsafe { mem::ManuallyDrop::new(Arc::from_raw_in(ptr, alloc)) };
2139        // Now increase refcount, but don't drop new refcount either
2140        let _arc_clone: mem::ManuallyDrop<_> = arc.clone();
2141    }
2142
2143    /// Decrements the strong reference count on the `Arc<T>` associated with the
2144    /// provided pointer by one.
2145    ///
2146    /// # Safety
2147    ///
2148    /// The pointer must have been obtained through `Arc::into_raw` and must satisfy the
2149    /// same layout requirements specified in [`Arc::from_raw_in`][from_raw_in].
2150    /// The associated `Arc` instance must be valid (i.e. the strong count must be at
2151    /// least 1) when invoking this method, and `ptr` must point to a block of memory
2152    /// allocated by `alloc`. This method can be used to release the final
2153    /// `Arc` and backing storage, but **should not** be called after the final `Arc` has been
2154    /// released.
2155    ///
2156    /// [from_raw_in]: Arc::from_raw_in
2157    ///
2158    /// # Examples
2159    ///
2160    /// ```
2161    /// #![feature(allocator_api)]
2162    ///
2163    /// use std::sync::Arc;
2164    /// use std::alloc::System;
2165    ///
2166    /// let five = Arc::new_in(5, System);
2167    ///
2168    /// unsafe {
2169    ///     let (ptr, _alloc) = Arc::into_raw_with_allocator(five);
2170    ///     Arc::increment_strong_count_in(ptr, System);
2171    ///
2172    ///     // Those assertions are deterministic because we haven't shared
2173    ///     // the `Arc` between threads.
2174    ///     let five = Arc::from_raw_in(ptr, System);
2175    ///     assert_eq!(2, Arc::strong_count(&five));
2176    ///     Arc::decrement_strong_count_in(ptr, System);
2177    ///     assert_eq!(1, Arc::strong_count(&five));
2178    /// }
2179    /// ```
2180    #[inline]
2181    #[unstable(feature = "allocator_api", issue = "32838")]
2182    pub unsafe fn decrement_strong_count_in(ptr: *const T, alloc: A) {
2183        unsafe { drop(Arc::from_raw_in(ptr, alloc)) };
2184    }
2185
2186    #[inline]
2187    fn inner(&self) -> &ArcInner<T> {
2188        // This unsafety is ok because while this arc is alive we're guaranteed
2189        // that the inner pointer is valid. Furthermore, we know that the
2190        // `ArcInner` structure itself is `Sync` because the inner data is
2191        // `Sync` as well, so we're ok loaning out an immutable pointer to these
2192        // contents.
2193        unsafe { self.ptr.as_ref() }
2194    }
2195
2196    // Non-inlined part of `drop`.
2197    #[inline(never)]
2198    unsafe fn drop_slow(&mut self) {
2199        // Drop the weak ref collectively held by all strong references when this
2200        // variable goes out of scope. This ensures that the memory is deallocated
2201        // even if the destructor of `T` panics.
2202        // Take a reference to `self.alloc` instead of cloning because 1. it'll last long
2203        // enough, and 2. you should be able to drop `Arc`s with unclonable allocators
2204        let _weak = Weak { ptr: self.ptr, alloc: &self.alloc };
2205
2206        // Destroy the data at this time, even though we must not free the box
2207        // allocation itself (there might still be weak pointers lying around).
2208        // We cannot use `get_mut_unchecked` here, because `self.alloc` is borrowed.
2209        unsafe { ptr::drop_in_place(&mut (*self.ptr.as_ptr()).data) };
2210    }
2211
2212    /// Returns `true` if the two `Arc`s point to the same allocation in a vein similar to
2213    /// [`ptr::eq`]. This function ignores the metadata of  `dyn Trait` pointers.
2214    ///
2215    /// # Examples
2216    ///
2217    /// ```
2218    /// use std::sync::Arc;
2219    ///
2220    /// let five = Arc::new(5);
2221    /// let same_five = Arc::clone(&five);
2222    /// let other_five = Arc::new(5);
2223    ///
2224    /// assert!(Arc::ptr_eq(&five, &same_five));
2225    /// assert!(!Arc::ptr_eq(&five, &other_five));
2226    /// ```
2227    ///
2228    /// [`ptr::eq`]: core::ptr::eq "ptr::eq"
2229    #[inline]
2230    #[must_use]
2231    #[stable(feature = "ptr_eq", since = "1.17.0")]
2232    pub fn ptr_eq(this: &Self, other: &Self) -> bool {
2233        ptr::addr_eq(this.ptr.as_ptr(), other.ptr.as_ptr())
2234    }
2235}
2236
2237impl<T: ?Sized> Arc<T> {
2238    /// Allocates an `ArcInner<T>` with sufficient space for
2239    /// a possibly-unsized inner value where the value has the layout provided.
2240    ///
2241    /// The function `mem_to_arcinner` is called with the data pointer
2242    /// and must return back a (potentially fat)-pointer for the `ArcInner<T>`.
2243    #[cfg(not(no_global_oom_handling))]
2244    unsafe fn allocate_for_layout(
2245        value_layout: Layout,
2246        allocate: impl FnOnce(Layout) -> Result<NonNull<[u8]>, AllocError>,
2247        mem_to_arcinner: impl FnOnce(*mut u8) -> *mut ArcInner<T>,
2248    ) -> *mut ArcInner<T> {
2249        let layout = arcinner_layout_for_value_layout(value_layout);
2250
2251        let ptr = allocate(layout).unwrap_or_else(|_| handle_alloc_error(layout));
2252
2253        unsafe { Self::initialize_arcinner(ptr, layout, mem_to_arcinner) }
2254    }
2255
2256    /// Allocates an `ArcInner<T>` with sufficient space for
2257    /// a possibly-unsized inner value where the value has the layout provided,
2258    /// returning an error if allocation fails.
2259    ///
2260    /// The function `mem_to_arcinner` is called with the data pointer
2261    /// and must return back a (potentially fat)-pointer for the `ArcInner<T>`.
2262    unsafe fn try_allocate_for_layout(
2263        value_layout: Layout,
2264        allocate: impl FnOnce(Layout) -> Result<NonNull<[u8]>, AllocError>,
2265        mem_to_arcinner: impl FnOnce(*mut u8) -> *mut ArcInner<T>,
2266    ) -> Result<*mut ArcInner<T>, AllocError> {
2267        let layout = arcinner_layout_for_value_layout(value_layout);
2268
2269        let ptr = allocate(layout)?;
2270
2271        let inner = unsafe { Self::initialize_arcinner(ptr, layout, mem_to_arcinner) };
2272
2273        Ok(inner)
2274    }
2275
2276    unsafe fn initialize_arcinner(
2277        ptr: NonNull<[u8]>,
2278        layout: Layout,
2279        mem_to_arcinner: impl FnOnce(*mut u8) -> *mut ArcInner<T>,
2280    ) -> *mut ArcInner<T> {
2281        let inner = mem_to_arcinner(ptr.as_non_null_ptr().as_ptr());
2282        debug_assert_eq!(unsafe { Layout::for_value_raw(inner) }, layout);
2283
2284        unsafe {
2285            (&raw mut (*inner).strong).write(atomic::AtomicUsize::new(1));
2286            (&raw mut (*inner).weak).write(atomic::AtomicUsize::new(1));
2287        }
2288
2289        inner
2290    }
2291}
2292
2293impl<T: ?Sized, A: Allocator> Arc<T, A> {
2294    /// Allocates an `ArcInner<T>` with sufficient space for an unsized inner value.
2295    #[inline]
2296    #[cfg(not(no_global_oom_handling))]
2297    unsafe fn allocate_for_ptr_in(ptr: *const T, alloc: &A) -> *mut ArcInner<T> {
2298        // Allocate for the `ArcInner<T>` using the given value.
2299        unsafe {
2300            Arc::allocate_for_layout(
2301                Layout::for_value_raw(ptr),
2302                |layout| alloc.allocate(layout),
2303                |mem| mem.with_metadata_of(ptr as *const ArcInner<T>),
2304            )
2305        }
2306    }
2307
2308    #[cfg(not(no_global_oom_handling))]
2309    fn from_box_in(src: Box<T, A>) -> Arc<T, A> {
2310        unsafe {
2311            let value_size = size_of_val(&*src);
2312            let ptr = Self::allocate_for_ptr_in(&*src, Box::allocator(&src));
2313
2314            // Copy value as bytes
2315            ptr::copy_nonoverlapping(
2316                (&raw const *src) as *const u8,
2317                (&raw mut (*ptr).data) as *mut u8,
2318                value_size,
2319            );
2320
2321            // Free the allocation without dropping its contents
2322            let (bptr, alloc) = Box::into_raw_with_allocator(src);
2323            let src = Box::from_raw_in(bptr as *mut mem::ManuallyDrop<T>, &alloc);
2324            drop(src);
2325
2326            Self::from_ptr_in(ptr, alloc)
2327        }
2328    }
2329}
2330
2331impl<T> Arc<[T]> {
2332    /// Allocates an `ArcInner<[T]>` with the given length.
2333    #[cfg(not(no_global_oom_handling))]
2334    unsafe fn allocate_for_slice(len: usize) -> *mut ArcInner<[T]> {
2335        unsafe {
2336            Self::allocate_for_layout(
2337                Layout::array::<T>(len).unwrap(),
2338                |layout| Global.allocate(layout),
2339                |mem| mem.cast::<T>().cast_slice(len) as *mut ArcInner<[T]>,
2340            )
2341        }
2342    }
2343
2344    /// Copy elements from slice into newly allocated `Arc<[T]>`
2345    ///
2346    /// Unsafe because the caller must either take ownership, bind `T: Copy` or
2347    /// bind `T: TrivialClone`.
2348    #[cfg(not(no_global_oom_handling))]
2349    unsafe fn copy_from_slice(v: &[T]) -> Arc<[T]> {
2350        unsafe {
2351            let ptr = Self::allocate_for_slice(v.len());
2352
2353            ptr::copy_nonoverlapping(v.as_ptr(), (&raw mut (*ptr).data) as *mut T, v.len());
2354
2355            Self::from_ptr(ptr)
2356        }
2357    }
2358
2359    /// Constructs an `Arc<[T]>` from an iterator known to be of a certain size.
2360    ///
2361    /// Behavior is undefined should the size be wrong.
2362    #[cfg(not(no_global_oom_handling))]
2363    unsafe fn from_iter_exact(iter: impl Iterator<Item = T>, len: usize) -> Arc<[T]> {
2364        // Panic guard while cloning T elements.
2365        // In the event of a panic, elements that have been written
2366        // into the new ArcInner will be dropped, then the memory freed.
2367        struct Guard<T> {
2368            mem: NonNull<u8>,
2369            elems: *mut T,
2370            layout: Layout,
2371            n_elems: usize,
2372        }
2373
2374        impl<T> Drop for Guard<T> {
2375            fn drop(&mut self) {
2376                unsafe {
2377                    let slice = from_raw_parts_mut(self.elems, self.n_elems);
2378                    ptr::drop_in_place(slice);
2379
2380                    Global.deallocate(self.mem, self.layout);
2381                }
2382            }
2383        }
2384
2385        unsafe {
2386            let ptr = Self::allocate_for_slice(len);
2387
2388            let mem = ptr as *mut _ as *mut u8;
2389            let layout = Layout::for_value_raw(ptr);
2390
2391            // Pointer to first element
2392            let elems = (&raw mut (*ptr).data) as *mut T;
2393
2394            let mut guard = Guard { mem: NonNull::new_unchecked(mem), elems, layout, n_elems: 0 };
2395
2396            for (i, item) in iter.enumerate() {
2397                ptr::write(elems.add(i), item);
2398                guard.n_elems += 1;
2399            }
2400
2401            // All clear. Forget the guard so it doesn't free the new ArcInner.
2402            mem::forget(guard);
2403
2404            Self::from_ptr(ptr)
2405        }
2406    }
2407}
2408
2409impl<T, A: Allocator> Arc<[T], A> {
2410    /// Allocates an `ArcInner<[T]>` with the given length.
2411    #[inline]
2412    #[cfg(not(no_global_oom_handling))]
2413    unsafe fn allocate_for_slice_in(len: usize, alloc: &A) -> *mut ArcInner<[T]> {
2414        unsafe {
2415            Arc::allocate_for_layout(
2416                Layout::array::<T>(len).unwrap(),
2417                |layout| alloc.allocate(layout),
2418                |mem| mem.cast::<T>().cast_slice(len) as *mut ArcInner<[T]>,
2419            )
2420        }
2421    }
2422}
2423
2424/// Specialization trait used for `From<&[T]>`.
2425#[cfg(not(no_global_oom_handling))]
2426trait ArcFromSlice<T> {
2427    fn from_slice(slice: &[T]) -> Self;
2428}
2429
2430#[cfg(not(no_global_oom_handling))]
2431impl<T: Clone> ArcFromSlice<T> for Arc<[T]> {
2432    #[inline]
2433    default fn from_slice(v: &[T]) -> Self {
2434        unsafe { Self::from_iter_exact(v.iter().cloned(), v.len()) }
2435    }
2436}
2437
2438#[cfg(not(no_global_oom_handling))]
2439impl<T: TrivialClone> ArcFromSlice<T> for Arc<[T]> {
2440    #[inline]
2441    fn from_slice(v: &[T]) -> Self {
2442        // SAFETY: `T` implements `TrivialClone`, so this is sound and equivalent
2443        // to the above.
2444        unsafe { Arc::copy_from_slice(v) }
2445    }
2446}
2447
2448#[stable(feature = "rust1", since = "1.0.0")]
2449impl<T: ?Sized, A: AllocatorClone> Clone for Arc<T, A> {
2450    /// Makes a clone of the `Arc` pointer.
2451    ///
2452    /// This creates another pointer to the same allocation, increasing the
2453    /// strong reference count.
2454    ///
2455    /// # Examples
2456    ///
2457    /// ```
2458    /// use std::sync::Arc;
2459    ///
2460    /// let five = Arc::new(5);
2461    ///
2462    /// let _ = Arc::clone(&five);
2463    /// ```
2464    #[inline]
2465    fn clone(&self) -> Arc<T, A> {
2466        // Using a relaxed ordering is alright here, as knowledge of the
2467        // original reference prevents other threads from erroneously deleting
2468        // the object.
2469        //
2470        // As explained in the [Boost documentation][1], Increasing the
2471        // reference counter can always be done with memory_order_relaxed: New
2472        // references to an object can only be formed from an existing
2473        // reference, and passing an existing reference from one thread to
2474        // another must already provide any required synchronization.
2475        //
2476        // [1]: (www.boost.org/doc/libs/1_55_0/doc/html/atomic/usage_examples.html)
2477        let old_size = self.inner().strong.fetch_add(1, Relaxed);
2478
2479        // However we need to guard against massive refcounts in case someone is `mem::forget`ing
2480        // Arcs. If we don't do this the count can overflow and users will use-after free. This
2481        // branch will never be taken in any realistic program. We abort because such a program is
2482        // incredibly degenerate, and we don't care to support it.
2483        //
2484        // This check is not 100% water-proof: we error when the refcount grows beyond `isize::MAX`.
2485        // But we do that check *after* having done the increment, so there is a chance here that
2486        // the worst already happened and we actually do overflow the `usize` counter. However, that
2487        // requires the counter to grow from `isize::MAX` to `usize::MAX` between the increment
2488        // above and the `abort` below, which seems exceedingly unlikely.
2489        //
2490        // This is a global invariant, and also applies when using a compare-exchange loop to increment
2491        // counters in other methods.
2492        // Otherwise, the counter could be brought to an almost-overflow using a compare-exchange loop,
2493        // and then overflow using a few `fetch_add`s.
2494        if old_size > MAX_REFCOUNT {
2495            abort();
2496        }
2497
2498        unsafe { Self::from_inner_in(self.ptr, self.alloc.clone()) }
2499    }
2500}
2501
2502#[unstable(feature = "ergonomic_clones", issue = "132290")]
2503impl<T: ?Sized, A: AllocatorClone> UseCloned for Arc<T, A> {}
2504
2505#[unstable(feature = "share_trait", issue = "156756")]
2506impl<T: ?Sized, A: AllocatorClone> Share for Arc<T, A> {}
2507
2508#[stable(feature = "rust1", since = "1.0.0")]
2509impl<T: ?Sized, A: Allocator> Deref for Arc<T, A> {
2510    type Target = T;
2511
2512    #[inline]
2513    fn deref(&self) -> &T {
2514        &self.inner().data
2515    }
2516}
2517
2518// The API of this pointer type enforces that if the `T` is pinned, then *all*
2519// clones of this `Arc<T>` are wrapped as `Pin<Arc<T>>`. Since an `&Arc<T>`
2520// could be used to obtain an `Arc<T>` that is not wrapped in `Pin` (and later
2521// used with `Arc::get_mut`), this means that this type treats `&Arc<T>` as
2522// evidence that the `T` is not pinned. The implementations of various traits
2523// are written accordingly. Since this type is not fundamental, downstream
2524// crates cannot provide malicious implementations of any of the traits relevant
2525// for `Pin`.
2526#[unstable(feature = "pin_coerce_unsized_trait", issue = "150112")]
2527unsafe impl<T: ?Sized, A: Allocator + 'static> PinSafePointer for Arc<T, A> {}
2528
2529#[unstable(feature = "deref_pure_trait", issue = "87121")]
2530unsafe impl<T: ?Sized, A: Allocator> DerefPure for Arc<T, A> {}
2531
2532#[unstable(feature = "legacy_receiver_trait", issue = "none")]
2533impl<T: ?Sized> LegacyReceiver for Arc<T> {}
2534
2535#[cfg(not(no_global_oom_handling))]
2536impl<T: ?Sized + CloneToUninit, A: AllocatorClone> Arc<T, A> {
2537    /// Makes a mutable reference into the given `Arc`.
2538    ///
2539    /// If there are other `Arc` pointers to the same allocation, then `make_mut` will
2540    /// [`clone`] the inner value to a new allocation to ensure unique ownership.  This is also
2541    /// referred to as clone-on-write.
2542    ///
2543    /// However, if there are no other `Arc` pointers to this allocation, but some [`Weak`]
2544    /// pointers, then the [`Weak`] pointers will be dissociated and the inner value will not
2545    /// be cloned.
2546    ///
2547    /// See also [`get_mut`], which will fail rather than cloning the inner value
2548    /// or dissociating [`Weak`] pointers.
2549    ///
2550    /// [`clone`]: Clone::clone
2551    /// [`get_mut`]: Arc::get_mut
2552    ///
2553    /// # Examples
2554    ///
2555    /// ```
2556    /// use std::sync::Arc;
2557    ///
2558    /// let mut data = Arc::new(5);
2559    ///
2560    /// *Arc::make_mut(&mut data) += 1;         // Won't clone anything
2561    /// let mut other_data = Arc::clone(&data); // Won't clone inner data
2562    /// *Arc::make_mut(&mut data) += 1;         // Clones inner data
2563    /// *Arc::make_mut(&mut data) += 1;         // Won't clone anything
2564    /// *Arc::make_mut(&mut other_data) *= 2;   // Won't clone anything
2565    ///
2566    /// // Now `data` and `other_data` point to different allocations.
2567    /// assert_eq!(*data, 8);
2568    /// assert_eq!(*other_data, 12);
2569    /// ```
2570    ///
2571    /// [`Weak`] pointers will be dissociated:
2572    ///
2573    /// ```
2574    /// use std::sync::Arc;
2575    ///
2576    /// let mut data = Arc::new(75);
2577    /// let weak = Arc::downgrade(&data);
2578    ///
2579    /// assert!(75 == *data);
2580    /// assert!(75 == *weak.upgrade().unwrap());
2581    ///
2582    /// *Arc::make_mut(&mut data) += 1;
2583    ///
2584    /// assert!(76 == *data);
2585    /// assert!(weak.upgrade().is_none());
2586    /// ```
2587    #[inline]
2588    #[stable(feature = "arc_unique", since = "1.4.0")]
2589    pub fn make_mut(this: &mut Self) -> &mut T {
2590        let size_of_val = size_of_val::<T>(&**this);
2591
2592        // Note that we hold both a strong reference and a weak reference.
2593        // Thus, releasing our strong reference only will not, by itself, cause
2594        // the memory to be deallocated.
2595        //
2596        // Use Acquire to ensure that we see any writes to `weak` that happen
2597        // before release writes (i.e., decrements) to `strong`. Since we hold a
2598        // weak count, there's no chance the ArcInner itself could be
2599        // deallocated.
2600        if this.inner().strong.compare_exchange(1, 0, Acquire, Relaxed).is_err() {
2601            // Another strong pointer exists, so we must clone.
2602            *this = Arc::clone_from_ref_in(&**this, this.alloc.clone());
2603        } else if this.inner().weak.load(Relaxed) != 1 {
2604            // Relaxed suffices in the above because this is fundamentally an
2605            // optimization: we are always racing with weak pointers being
2606            // dropped. Worst case, we end up allocated a new Arc unnecessarily.
2607
2608            // We removed the last strong ref, but there are additional weak
2609            // refs remaining. We'll move the contents to a new Arc, and
2610            // invalidate the other weak refs.
2611
2612            // Note that it is not possible for the read of `weak` to yield
2613            // usize::MAX (i.e., locked), since the weak count can only be
2614            // locked by a thread with a strong reference.
2615
2616            // Guard against panics while using the allocator.
2617            // If we unwind before the Arc is overwritten, we expose a strong
2618            // count of 0, resulting in a UAF (#155746, #157203).
2619            // Until the new Arc is written, the old Arc must remain valid
2620            struct Guard<'a, T: ?Sized> {
2621                inner: &'a ArcInner<T>,
2622            }
2623            impl<'a, T: ?Sized> Drop for Guard<'a, T> {
2624                fn drop(&mut self) {
2625                    self.inner.strong.store(1, Release);
2626                }
2627            }
2628            let guard = Guard { inner: this.inner() };
2629
2630            // Can just steal the data, all that's left is Weaks
2631            // Note that this can panic in two ways:
2632            // - The allocation can fail
2633            // - The allocator clone can fail
2634            let mut in_progress: UniqueArcUninit<T, A> =
2635                UniqueArcUninit::new(&**this, this.alloc.clone());
2636
2637            unsafe {
2638                // Initialize `in_progress` with move of **this.
2639                // We have to express this in terms of bytes because `T: ?Sized`; there is no
2640                // operation that just copies a value based on its `size_of_val()`.
2641                ptr::copy_nonoverlapping(
2642                    ptr::from_ref(&**this).cast::<u8>(),
2643                    in_progress.data_ptr().cast::<u8>(),
2644                    size_of_val,
2645                );
2646
2647                // We are now safe from panics.
2648                mem::forget(guard);
2649
2650                // Materialize our own implicit weak pointer, so that it can clean
2651                // up the ArcInner as needed.
2652                // Make sure the allocator is not leaked when the Arc is overwritten.
2653                // Only drop at the end of the scope to avoid panics.
2654                let _weak = Weak { ptr: this.ptr, alloc: ptr::read(&this.alloc) };
2655
2656                ptr::write(this, in_progress.into_arc());
2657            }
2658        } else {
2659            // We were the sole reference of either kind; bump back up the
2660            // strong ref count.
2661            this.inner().strong.store(1, Release);
2662        }
2663
2664        // As with `get_mut()`, the unsafety is ok because our reference was
2665        // either unique to begin with, or became one upon cloning the contents.
2666        unsafe { Self::get_mut_unchecked(this) }
2667    }
2668}
2669
2670impl<T: Clone, A: Allocator> Arc<T, A> {
2671    /// If we have the only reference to `T` then unwrap it. Otherwise, clone `T` and return the
2672    /// clone.
2673    ///
2674    /// Assuming `arc_t` is of type `Arc<T>`, this function is functionally equivalent to
2675    /// `(*arc_t).clone()`, but will avoid cloning the inner value where possible.
2676    ///
2677    /// # Examples
2678    ///
2679    /// ```
2680    /// # use std::{ptr, sync::Arc};
2681    /// let inner = String::from("test");
2682    /// let ptr = inner.as_ptr();
2683    ///
2684    /// let arc = Arc::new(inner);
2685    /// let inner = Arc::unwrap_or_clone(arc);
2686    /// // The inner value was not cloned
2687    /// assert!(ptr::eq(ptr, inner.as_ptr()));
2688    ///
2689    /// let arc = Arc::new(inner);
2690    /// let arc2 = arc.clone();
2691    /// let inner = Arc::unwrap_or_clone(arc);
2692    /// // Because there were 2 references, we had to clone the inner value.
2693    /// assert!(!ptr::eq(ptr, inner.as_ptr()));
2694    /// // `arc2` is the last reference, so when we unwrap it we get back
2695    /// // the original `String`.
2696    /// let inner = Arc::unwrap_or_clone(arc2);
2697    /// assert!(ptr::eq(ptr, inner.as_ptr()));
2698    /// ```
2699    #[inline]
2700    #[stable(feature = "arc_unwrap_or_clone", since = "1.76.0")]
2701    pub fn unwrap_or_clone(this: Self) -> T {
2702        Arc::try_unwrap(this).unwrap_or_else(|arc| (*arc).clone())
2703    }
2704}
2705
2706impl<T: ?Sized, A: Allocator> Arc<T, A> {
2707    /// Returns a mutable reference into the given `Arc`, if there are
2708    /// no other `Arc` or [`Weak`] pointers to the same allocation.
2709    ///
2710    /// Returns [`None`] otherwise, because it is not safe to
2711    /// mutate a shared value.
2712    ///
2713    /// See also [`make_mut`][make_mut], which will [`clone`][clone]
2714    /// the inner value when there are other `Arc` pointers.
2715    ///
2716    /// [make_mut]: Arc::make_mut
2717    /// [clone]: Clone::clone
2718    ///
2719    /// # Examples
2720    ///
2721    /// ```
2722    /// use std::sync::Arc;
2723    ///
2724    /// let mut x = Arc::new(3);
2725    /// *Arc::get_mut(&mut x).unwrap() = 4;
2726    /// assert_eq!(*x, 4);
2727    ///
2728    /// let _y = Arc::clone(&x);
2729    /// assert!(Arc::get_mut(&mut x).is_none());
2730    /// ```
2731    #[inline]
2732    #[stable(feature = "arc_unique", since = "1.4.0")]
2733    pub fn get_mut(this: &mut Self) -> Option<&mut T> {
2734        if Self::is_unique(this) {
2735            // This unsafety is ok because we're guaranteed that the pointer
2736            // returned is the *only* pointer that will ever be returned to T. Our
2737            // reference count is guaranteed to be 1 at this point, and we required
2738            // the Arc itself to be `mut`, so we're returning the only possible
2739            // reference to the inner data.
2740            unsafe { Some(Arc::get_mut_unchecked(this)) }
2741        } else {
2742            None
2743        }
2744    }
2745
2746    /// Returns a mutable reference into the given `Arc`,
2747    /// without any check.
2748    ///
2749    /// See also [`get_mut`], which is safe and does appropriate checks.
2750    ///
2751    /// [`get_mut`]: Arc::get_mut
2752    ///
2753    /// # Safety
2754    ///
2755    /// If any other `Arc` or [`Weak`] pointers to the same allocation exist, then
2756    /// they must not be dereferenced or have active borrows for the duration
2757    /// of the returned borrow, and their inner type must be exactly the same as the
2758    /// inner type of this Arc (including lifetimes). This is trivially the case if no
2759    /// such pointers exist, for example immediately after `Arc::new`.
2760    ///
2761    /// # Examples
2762    ///
2763    /// ```
2764    /// #![feature(get_mut_unchecked)]
2765    ///
2766    /// use std::sync::Arc;
2767    ///
2768    /// let mut x = Arc::new(String::new());
2769    /// unsafe {
2770    ///     Arc::get_mut_unchecked(&mut x).push_str("foo")
2771    /// }
2772    /// assert_eq!(*x, "foo");
2773    /// ```
2774    /// Other `Arc` pointers to the same allocation must be to the same type.
2775    /// ```no_run
2776    /// #![feature(get_mut_unchecked)]
2777    ///
2778    /// use std::sync::Arc;
2779    ///
2780    /// let x: Arc<str> = Arc::from("Hello, world!");
2781    /// let mut y: Arc<[u8]> = x.clone().into();
2782    /// unsafe {
2783    ///     // this is Undefined Behavior, because x's inner type is str, not [u8]
2784    ///     Arc::get_mut_unchecked(&mut y).fill(0xff); // 0xff is invalid in UTF-8
2785    /// }
2786    /// println!("{}", &*x); // Invalid UTF-8 in a str
2787    /// ```
2788    /// Other `Arc` pointers to the same allocation must be to the exact same type, including lifetimes.
2789    /// ```no_run
2790    /// #![feature(get_mut_unchecked)]
2791    ///
2792    /// use std::sync::Arc;
2793    ///
2794    /// let x: Arc<&str> = Arc::new("Hello, world!");
2795    /// {
2796    ///     let s = String::from("Oh, no!");
2797    ///     let mut y: Arc<&str> = x.clone();
2798    ///     unsafe {
2799    ///         // this is Undefined Behavior, because x's inner type
2800    ///         // is &'long str, not &'short str
2801    ///         *Arc::get_mut_unchecked(&mut y) = &s;
2802    ///     }
2803    /// }
2804    /// println!("{}", &*x); // Use-after-free
2805    /// ```
2806    #[inline]
2807    #[unstable(feature = "get_mut_unchecked", issue = "63292")]
2808    pub unsafe fn get_mut_unchecked(this: &mut Self) -> &mut T {
2809        // We are careful to *not* create a reference covering the "count" fields, as
2810        // this would alias with concurrent access to the reference counts (e.g. by `Weak`).
2811        unsafe { &mut (*this.ptr.as_ptr()).data }
2812    }
2813
2814    /// Determine whether this is the unique reference to the underlying data.
2815    ///
2816    /// Returns `true` if there are no other `Arc` or [`Weak`] pointers to the same allocation;
2817    /// returns `false` otherwise.
2818    ///
2819    /// If this function returns `true`, then is guaranteed to be safe to call [`get_mut_unchecked`]
2820    /// on this `Arc`, so long as no clones occur in between.
2821    ///
2822    /// # Examples
2823    ///
2824    /// ```
2825    /// #![feature(arc_is_unique)]
2826    ///
2827    /// use std::sync::Arc;
2828    ///
2829    /// let x = Arc::new(3);
2830    /// assert!(Arc::is_unique(&x));
2831    ///
2832    /// let y = Arc::clone(&x);
2833    /// assert!(!Arc::is_unique(&x));
2834    /// drop(y);
2835    ///
2836    /// // Weak references also count, because they could be upgraded at any time.
2837    /// let z = Arc::downgrade(&x);
2838    /// assert!(!Arc::is_unique(&x));
2839    /// ```
2840    ///
2841    /// # Pointer invalidation
2842    ///
2843    /// This function will always return the same value as `Arc::get_mut(arc).is_some()`. However,
2844    /// unlike that operation it does not produce any mutable references to the underlying data,
2845    /// meaning no pointers to the data inside the `Arc` are invalidated by the call. Thus, the
2846    /// following code is valid, even though it would be UB if it used `Arc::get_mut`:
2847    ///
2848    /// ```
2849    /// #![feature(arc_is_unique)]
2850    ///
2851    /// use std::sync::Arc;
2852    ///
2853    /// let arc = Arc::new(5);
2854    /// let pointer: *const i32 = &*arc;
2855    /// assert!(Arc::is_unique(&arc));
2856    /// assert_eq!(unsafe { *pointer }, 5);
2857    /// ```
2858    ///
2859    /// # Atomic orderings
2860    ///
2861    /// Concurrent drops to other `Arc` pointers to the same allocation will synchronize with this
2862    /// call - that is, this call performs an `Acquire` operation on the underlying strong and weak
2863    /// ref counts. This ensures that calling `get_mut_unchecked` is safe.
2864    ///
2865    /// Note that this operation requires locking the weak ref count, so concurrent calls to
2866    /// `downgrade` may spin-loop for a short period of time.
2867    ///
2868    /// [`get_mut_unchecked`]: Self::get_mut_unchecked
2869    #[inline]
2870    #[unstable(feature = "arc_is_unique", issue = "138938")]
2871    pub fn is_unique(this: &Self) -> bool {
2872        // lock the weak pointer count if we appear to be the sole weak pointer
2873        // holder.
2874        //
2875        // The acquire label here ensures a happens-before relationship with any
2876        // writes to `strong` (in particular in `Weak::upgrade`) prior to decrements
2877        // of the `weak` count (via `Weak::drop`, which uses release). If the upgraded
2878        // weak ref was never dropped, the CAS here will fail so we do not care to synchronize.
2879        if this.inner().weak.compare_exchange(1, usize::MAX, Acquire, Relaxed).is_ok() {
2880            // This needs to be an `Acquire` to synchronize with the decrement of the `strong`
2881            // counter in `drop` -- the only access that happens when any but the last reference
2882            // is being dropped.
2883            let unique = this.inner().strong.load(Acquire) == 1;
2884
2885            // The release write here synchronizes with a read in `downgrade`,
2886            // effectively preventing the above read of `strong` from happening
2887            // after the write.
2888            this.inner().weak.store(1, Release); // release the lock
2889            unique
2890        } else {
2891            false
2892        }
2893    }
2894}
2895
2896#[stable(feature = "rust1", since = "1.0.0")]
2897unsafe impl<#[may_dangle] T: ?Sized, A: Allocator> Drop for Arc<T, A> {
2898    /// Drops the `Arc`.
2899    ///
2900    /// This will decrement the strong reference count. If the strong reference
2901    /// count reaches zero then the only other references (if any) are
2902    /// [`Weak`], so we `drop` the inner value.
2903    ///
2904    /// # Examples
2905    ///
2906    /// ```
2907    /// use std::sync::Arc;
2908    ///
2909    /// struct Foo;
2910    ///
2911    /// impl Drop for Foo {
2912    ///     fn drop(&mut self) {
2913    ///         println!("dropped!");
2914    ///     }
2915    /// }
2916    ///
2917    /// let foo  = Arc::new(Foo);
2918    /// let foo2 = Arc::clone(&foo);
2919    ///
2920    /// drop(foo);    // Doesn't print anything
2921    /// drop(foo2);   // Prints "dropped!"
2922    /// ```
2923    #[inline]
2924    fn drop(&mut self) {
2925        // Because `fetch_sub` is already atomic, we do not need to synchronize
2926        // with other threads unless we are going to delete the object. This
2927        // same logic applies to the below `fetch_sub` to the `weak` count.
2928        if self.inner().strong.fetch_sub(1, Release) != 1 {
2929            return;
2930        }
2931
2932        // This fence is needed to prevent reordering of use of the data and
2933        // deletion of the data. Because it is marked `Release`, the decreasing
2934        // of the reference count synchronizes with this `Acquire` fence. This
2935        // means that use of the data happens before decreasing the reference
2936        // count, which happens before this fence, which happens before the
2937        // deletion of the data.
2938        //
2939        // As explained in the [Boost documentation][1],
2940        //
2941        // > It is important to enforce any possible access to the object in one
2942        // > thread (through an existing reference) to *happen before* deleting
2943        // > the object in a different thread. This is achieved by a "release"
2944        // > operation after dropping a reference (any access to the object
2945        // > through this reference must obviously happened before), and an
2946        // > "acquire" operation before deleting the object.
2947        //
2948        // In particular, while the contents of an Arc are usually immutable, it's
2949        // possible to have interior writes to something like a Mutex<T>. Since a
2950        // Mutex is not acquired when it is deleted, we can't rely on its
2951        // synchronization logic to make writes in thread A visible to a destructor
2952        // running in thread B.
2953        //
2954        // Also note that the Acquire fence here could probably be replaced with an
2955        // Acquire load, which could improve performance in highly-contended
2956        // situations. See [2].
2957        //
2958        // [1]: (www.boost.org/doc/libs/1_55_0/doc/html/atomic/usage_examples.html)
2959        // [2]: (https://github.com/rust-lang/rust/pull/41714)
2960        acquire!(self.inner().strong);
2961
2962        // Make sure we aren't trying to "drop" the shared static for empty slices
2963        // used by Default::default.
2964        debug_assert!(
2965            !ptr::addr_eq(self.ptr.as_ptr(), &STATIC_INNER_SLICE.inner),
2966            "Arcs backed by a static should never reach a strong count of 0. \
2967            Likely decrement_strong_count or from_raw were called too many times.",
2968        );
2969
2970        unsafe {
2971            self.drop_slow();
2972        }
2973    }
2974}
2975
2976impl<A: Allocator> Arc<dyn Any + Send + Sync, A> {
2977    /// Attempts to downcast the `Arc<dyn Any + Send + Sync>` to a concrete type.
2978    ///
2979    /// # Examples
2980    ///
2981    /// ```
2982    /// use std::any::Any;
2983    /// use std::sync::Arc;
2984    ///
2985    /// fn print_if_string(value: Arc<dyn Any + Send + Sync>) {
2986    ///     if let Ok(string) = value.downcast::<String>() {
2987    ///         println!("String ({}): {}", string.len(), string);
2988    ///     }
2989    /// }
2990    ///
2991    /// let my_string = "Hello World".to_string();
2992    /// print_if_string(Arc::new(my_string));
2993    /// print_if_string(Arc::new(0i8));
2994    /// ```
2995    #[inline]
2996    #[stable(feature = "rc_downcast", since = "1.29.0")]
2997    pub fn downcast<T>(self) -> Result<Arc<T, A>, Self>
2998    where
2999        T: Any + Send + Sync,
3000    {
3001        if (*self).is::<T>() {
3002            unsafe {
3003                let (ptr, alloc) = Arc::into_inner_with_allocator(self);
3004                Ok(Arc::from_inner_in(ptr.cast(), alloc))
3005            }
3006        } else {
3007            Err(self)
3008        }
3009    }
3010
3011    /// Downcasts the `Arc<dyn Any + Send + Sync>` to a concrete type.
3012    ///
3013    /// For a safe alternative see [`downcast`].
3014    ///
3015    /// # Examples
3016    ///
3017    /// ```
3018    /// #![feature(downcast_unchecked)]
3019    ///
3020    /// use std::any::Any;
3021    /// use std::sync::Arc;
3022    ///
3023    /// let x: Arc<dyn Any + Send + Sync> = Arc::new(1_usize);
3024    ///
3025    /// unsafe {
3026    ///     assert_eq!(*x.downcast_unchecked::<usize>(), 1);
3027    /// }
3028    /// ```
3029    ///
3030    /// # Safety
3031    ///
3032    /// The contained value must be of type `T`. Calling this method
3033    /// with the incorrect type is *undefined behavior*.
3034    ///
3035    ///
3036    /// [`downcast`]: Self::downcast
3037    #[inline]
3038    #[unstable(feature = "downcast_unchecked", issue = "90850")]
3039    pub unsafe fn downcast_unchecked<T>(self) -> Arc<T, A>
3040    where
3041        T: Any + Send + Sync,
3042    {
3043        unsafe {
3044            let (ptr, alloc) = Arc::into_inner_with_allocator(self);
3045            Arc::from_inner_in(ptr.cast(), alloc)
3046        }
3047    }
3048}
3049
3050impl<T> Weak<T> {
3051    /// Constructs a new `Weak<T>`, without allocating any memory.
3052    /// Calling [`upgrade`] on the return value always gives [`None`].
3053    ///
3054    /// [`upgrade`]: Weak::upgrade
3055    ///
3056    /// # Examples
3057    ///
3058    /// ```
3059    /// use std::sync::Weak;
3060    ///
3061    /// let empty: Weak<i64> = Weak::new();
3062    /// assert!(empty.upgrade().is_none());
3063    /// ```
3064    #[inline]
3065    #[stable(feature = "downgraded_weak", since = "1.10.0")]
3066    #[rustc_const_stable(feature = "const_weak_new", since = "1.73.0")]
3067    #[must_use]
3068    pub const fn new() -> Weak<T> {
3069        Weak { ptr: NonNull::without_provenance(NonZeroUsize::MAX), alloc: Global }
3070    }
3071}
3072
3073impl<T, A: Allocator> Weak<T, A> {
3074    /// Constructs a new `Weak<T, A>`, without allocating any memory, technically in the provided
3075    /// allocator.
3076    /// Calling [`upgrade`] on the return value always gives [`None`].
3077    ///
3078    /// [`upgrade`]: Weak::upgrade
3079    ///
3080    /// # Examples
3081    ///
3082    /// ```
3083    /// #![feature(allocator_api)]
3084    ///
3085    /// use std::sync::Weak;
3086    /// use std::alloc::System;
3087    ///
3088    /// let empty: Weak<i64, _> = Weak::new_in(System);
3089    /// assert!(empty.upgrade().is_none());
3090    /// ```
3091    #[inline]
3092    #[unstable(feature = "allocator_api", issue = "32838")]
3093    pub fn new_in(alloc: A) -> Weak<T, A> {
3094        Weak { ptr: NonNull::without_provenance(NonZeroUsize::MAX), alloc }
3095    }
3096}
3097
3098/// Helper type to allow accessing the reference counts without
3099/// making any assertions about the data field.
3100struct WeakInner<'a> {
3101    weak: &'a Atomic<usize>,
3102    strong: &'a Atomic<usize>,
3103}
3104
3105impl<T: ?Sized> Weak<T> {
3106    /// Converts a raw pointer previously created by [`into_raw`] back into `Weak<T>`.
3107    ///
3108    /// This can be used to safely get a strong reference (by calling [`upgrade`]
3109    /// later) or to deallocate the weak count by dropping the `Weak<T>`.
3110    ///
3111    /// It takes ownership of one weak reference (with the exception of pointers created by [`new`],
3112    /// as these don't own anything; the method still works on them).
3113    ///
3114    /// # Safety
3115    ///
3116    /// The pointer must have originated from the [`into_raw`] and must still own its potential
3117    /// weak reference, and must point to a block of memory allocated by global allocator.
3118    ///
3119    /// It is allowed for the strong count to be 0 at the time of calling this. Nevertheless, this
3120    /// takes ownership of one weak reference currently represented as a raw pointer (the weak
3121    /// count is not modified by this operation) and therefore it must be paired with a previous
3122    /// call to [`into_raw`].
3123    /// # Examples
3124    ///
3125    /// ```
3126    /// use std::sync::{Arc, Weak};
3127    ///
3128    /// let strong = Arc::new("hello".to_owned());
3129    ///
3130    /// let raw_1 = Arc::downgrade(&strong).into_raw();
3131    /// let raw_2 = Arc::downgrade(&strong).into_raw();
3132    ///
3133    /// assert_eq!(2, Arc::weak_count(&strong));
3134    ///
3135    /// assert_eq!("hello", &*unsafe { Weak::from_raw(raw_1) }.upgrade().unwrap());
3136    /// assert_eq!(1, Arc::weak_count(&strong));
3137    ///
3138    /// drop(strong);
3139    ///
3140    /// // Decrement the last weak count.
3141    /// assert!(unsafe { Weak::from_raw(raw_2) }.upgrade().is_none());
3142    /// ```
3143    ///
3144    /// [`new`]: Weak::new
3145    /// [`into_raw`]: Weak::into_raw
3146    /// [`upgrade`]: Weak::upgrade
3147    #[inline]
3148    #[stable(feature = "weak_into_raw", since = "1.45.0")]
3149    pub unsafe fn from_raw(ptr: *const T) -> Self {
3150        unsafe { Weak::from_raw_in(ptr, Global) }
3151    }
3152
3153    /// Consumes the `Weak<T>` and turns it into a raw pointer.
3154    ///
3155    /// This converts the weak pointer into a raw pointer, while still preserving the ownership of
3156    /// one weak reference (the weak count is not modified by this operation). It can be turned
3157    /// back into the `Weak<T>` with [`from_raw`].
3158    ///
3159    /// The same restrictions of accessing the target of the pointer as with
3160    /// [`as_ptr`] apply.
3161    ///
3162    /// # Examples
3163    ///
3164    /// ```
3165    /// use std::sync::{Arc, Weak};
3166    ///
3167    /// let strong = Arc::new("hello".to_owned());
3168    /// let weak = Arc::downgrade(&strong);
3169    /// let raw = weak.into_raw();
3170    ///
3171    /// assert_eq!(1, Arc::weak_count(&strong));
3172    /// assert_eq!("hello", unsafe { &*raw });
3173    ///
3174    /// drop(unsafe { Weak::from_raw(raw) });
3175    /// assert_eq!(0, Arc::weak_count(&strong));
3176    /// ```
3177    ///
3178    /// [`from_raw`]: Weak::from_raw
3179    /// [`as_ptr`]: Weak::as_ptr
3180    #[must_use = "losing the pointer will leak memory"]
3181    #[stable(feature = "weak_into_raw", since = "1.45.0")]
3182    pub fn into_raw(self) -> *const T {
3183        ManuallyDrop::new(self).as_ptr()
3184    }
3185}
3186
3187impl<T: ?Sized, A: Allocator> Weak<T, A> {
3188    /// Returns a reference to the underlying allocator.
3189    #[inline]
3190    #[unstable(feature = "allocator_api", issue = "32838")]
3191    pub fn allocator(&self) -> &A {
3192        &self.alloc
3193    }
3194
3195    /// Returns a raw pointer to the object `T` pointed to by this `Weak<T>`.
3196    ///
3197    /// The pointer is valid only if there are some strong references. The pointer may be dangling,
3198    /// unaligned or even [`null`] otherwise.
3199    ///
3200    /// # Examples
3201    ///
3202    /// ```
3203    /// use std::sync::Arc;
3204    /// use std::ptr;
3205    ///
3206    /// let strong = Arc::new("hello".to_owned());
3207    /// let weak = Arc::downgrade(&strong);
3208    /// // Both point to the same object
3209    /// assert!(ptr::eq(&*strong, weak.as_ptr()));
3210    /// // The strong here keeps it alive, so we can still access the object.
3211    /// assert_eq!("hello", unsafe { &*weak.as_ptr() });
3212    ///
3213    /// drop(strong);
3214    /// // But not any more. We can do weak.as_ptr(), but accessing the pointer would lead to
3215    /// // undefined behavior.
3216    /// // assert_eq!("hello", unsafe { &*weak.as_ptr() });
3217    /// ```
3218    ///
3219    /// [`null`]: core::ptr::null "ptr::null"
3220    #[must_use]
3221    #[stable(feature = "weak_into_raw", since = "1.45.0")]
3222    pub fn as_ptr(&self) -> *const T {
3223        let ptr: *mut ArcInner<T> = NonNull::as_ptr(self.ptr);
3224
3225        if is_dangling(ptr) {
3226            // If the pointer is dangling, we return the sentinel directly. This cannot be
3227            // a valid payload address, as the payload is at least as aligned as ArcInner (usize).
3228            ptr as *const T
3229        } else {
3230            // SAFETY: if is_dangling returns false, then the pointer is dereferenceable.
3231            // The payload may be dropped at this point, and we have to maintain provenance,
3232            // so use raw pointer manipulation.
3233            unsafe { &raw mut (*ptr).data }
3234        }
3235    }
3236
3237    /// Consumes the `Weak<T>`, returning the wrapped pointer and allocator.
3238    ///
3239    /// This converts the weak pointer into a raw pointer, while still preserving the ownership of
3240    /// one weak reference (the weak count is not modified by this operation). It can be turned
3241    /// back into the `Weak<T>` with [`from_raw_in`].
3242    ///
3243    /// The same restrictions of accessing the target of the pointer as with
3244    /// [`as_ptr`] apply.
3245    ///
3246    /// # Examples
3247    ///
3248    /// ```
3249    /// #![feature(allocator_api)]
3250    /// use std::sync::{Arc, Weak};
3251    /// use std::alloc::System;
3252    ///
3253    /// let strong = Arc::new_in("hello".to_owned(), System);
3254    /// let weak = Arc::downgrade(&strong);
3255    /// let (raw, alloc) = weak.into_raw_with_allocator();
3256    ///
3257    /// assert_eq!(1, Arc::weak_count(&strong));
3258    /// assert_eq!("hello", unsafe { &*raw });
3259    ///
3260    /// drop(unsafe { Weak::from_raw_in(raw, alloc) });
3261    /// assert_eq!(0, Arc::weak_count(&strong));
3262    /// ```
3263    ///
3264    /// [`from_raw_in`]: Weak::from_raw_in
3265    /// [`as_ptr`]: Weak::as_ptr
3266    #[must_use = "losing the pointer will leak memory"]
3267    #[unstable(feature = "allocator_api", issue = "32838")]
3268    pub fn into_raw_with_allocator(self) -> (*const T, A) {
3269        let this = mem::ManuallyDrop::new(self);
3270        let result = this.as_ptr();
3271        // Safety: `this` is ManuallyDrop so the allocator will not be double-dropped
3272        let alloc = unsafe { ptr::read(&this.alloc) };
3273        (result, alloc)
3274    }
3275
3276    /// Converts a raw pointer previously created by [`into_raw`] back into `Weak<T>` in the provided
3277    /// allocator.
3278    ///
3279    /// This can be used to safely get a strong reference (by calling [`upgrade`]
3280    /// later) or to deallocate the weak count by dropping the `Weak<T>`.
3281    ///
3282    /// It takes ownership of one weak reference (with the exception of pointers created by [`new`],
3283    /// as these don't own anything; the method still works on them).
3284    ///
3285    /// # Safety
3286    ///
3287    /// The pointer must have originated from the [`into_raw`] and must still own its potential
3288    /// weak reference, and must point to a block of memory allocated by `alloc`.
3289    ///
3290    /// It is allowed for the strong count to be 0 at the time of calling this. Nevertheless, this
3291    /// takes ownership of one weak reference currently represented as a raw pointer (the weak
3292    /// count is not modified by this operation) and therefore it must be paired with a previous
3293    /// call to [`into_raw`].
3294    /// # Examples
3295    ///
3296    /// ```
3297    /// use std::sync::{Arc, Weak};
3298    ///
3299    /// let strong = Arc::new("hello".to_owned());
3300    ///
3301    /// let raw_1 = Arc::downgrade(&strong).into_raw();
3302    /// let raw_2 = Arc::downgrade(&strong).into_raw();
3303    ///
3304    /// assert_eq!(2, Arc::weak_count(&strong));
3305    ///
3306    /// assert_eq!("hello", &*unsafe { Weak::from_raw(raw_1) }.upgrade().unwrap());
3307    /// assert_eq!(1, Arc::weak_count(&strong));
3308    ///
3309    /// drop(strong);
3310    ///
3311    /// // Decrement the last weak count.
3312    /// assert!(unsafe { Weak::from_raw(raw_2) }.upgrade().is_none());
3313    /// ```
3314    ///
3315    /// [`new`]: Weak::new
3316    /// [`into_raw`]: Weak::into_raw
3317    /// [`upgrade`]: Weak::upgrade
3318    #[inline]
3319    #[unstable(feature = "allocator_api", issue = "32838")]
3320    pub unsafe fn from_raw_in(ptr: *const T, alloc: A) -> Self {
3321        // See Weak::as_ptr for context on how the input pointer is derived.
3322
3323        let ptr = if is_dangling(ptr) {
3324            // This is a dangling Weak.
3325            ptr as *mut ArcInner<T>
3326        } else {
3327            // Otherwise, we're guaranteed the pointer came from a nondangling Weak.
3328            // SAFETY: data_offset is safe to call, as ptr references a real (potentially dropped) T.
3329            let offset = unsafe { data_offset(ptr) };
3330            // Thus, we reverse the offset to get the whole ArcInner.
3331            // SAFETY: the pointer originated from a Weak, so this offset is safe.
3332            unsafe { ptr.byte_sub(offset) as *mut ArcInner<T> }
3333        };
3334
3335        // SAFETY: we now have recovered the original Weak pointer, so can create the Weak.
3336        Weak { ptr: unsafe { NonNull::new_unchecked(ptr) }, alloc }
3337    }
3338}
3339
3340impl<T: ?Sized, A: Allocator> Weak<T, A> {
3341    /// Attempts to upgrade the `Weak` pointer to an [`Arc`], delaying
3342    /// dropping of the inner value if successful.
3343    ///
3344    /// Returns [`None`] in the following cases:
3345    ///
3346    /// 1. The inner value has since been dropped or moved out.
3347    ///
3348    /// 2. This `Weak` does not point to an allocation.
3349    ///
3350    /// 3. The owning reference this `Weak` is associated with is either not fully-constructed or does not allow an upgrade.
3351    ///
3352    /// # Examples
3353    ///
3354    /// ```
3355    /// use std::sync::Arc;
3356    ///
3357    /// let five = Arc::new(5);
3358    ///
3359    /// let weak_five = Arc::downgrade(&five);
3360    ///
3361    /// let strong_five: Option<Arc<_>> = weak_five.upgrade();
3362    /// assert!(strong_five.is_some());
3363    ///
3364    /// // Destroy all strong pointers.
3365    /// drop(strong_five);
3366    /// drop(five);
3367    ///
3368    /// assert!(weak_five.upgrade().is_none());
3369    /// ```
3370    #[must_use = "this returns a new `Arc`, \
3371                  without modifying the original weak pointer"]
3372    #[stable(feature = "arc_weak", since = "1.4.0")]
3373    pub fn upgrade(&self) -> Option<Arc<T, A>>
3374    where
3375        A: AllocatorClone,
3376    {
3377        #[inline]
3378        fn checked_increment(n: usize) -> Option<usize> {
3379            // Any write of 0 we can observe leaves the field in permanently zero state.
3380            if n == 0 {
3381                return None;
3382            }
3383            // See comments in `Arc::clone` for why we do this (for `mem::forget`).
3384            if n > MAX_REFCOUNT {
3385                panic_arc_overflow();
3386            }
3387            Some(n + 1)
3388        }
3389
3390        // We use a CAS loop to increment the strong count instead of a
3391        // fetch_add as this function should never take the reference count
3392        // from zero to one.
3393        //
3394        // Relaxed is fine for the failure case because we don't have any expectations about the new state.
3395        // Acquire is necessary for the success case to synchronise with `Arc::new_cyclic`, when the inner
3396        // value can be initialized after `Weak` references have already been created. In that case, we
3397        // expect to observe the fully initialized value.
3398        if self.inner()?.strong.try_update(Acquire, Relaxed, checked_increment).is_ok() {
3399            // SAFETY: pointer is not null, verified in checked_increment
3400            unsafe { Some(Arc::from_inner_in(self.ptr, self.alloc.clone())) }
3401        } else {
3402            None
3403        }
3404    }
3405
3406    /// Gets the number of strong (`Arc`) pointers pointing to this allocation.
3407    ///
3408    /// If `self` was created using [`Weak::new`], this will return 0.
3409    #[must_use]
3410    #[stable(feature = "weak_counts", since = "1.41.0")]
3411    pub fn strong_count(&self) -> usize {
3412        if let Some(inner) = self.inner() { inner.strong.load(Relaxed) } else { 0 }
3413    }
3414
3415    /// Gets an approximation of the number of `Weak` pointers pointing to this
3416    /// allocation.
3417    ///
3418    /// If `self` was created using [`Weak::new`], or if there are no remaining
3419    /// strong pointers, this will return 0.
3420    ///
3421    /// # Accuracy
3422    ///
3423    /// Due to implementation details, the returned value can be off by 1 in
3424    /// either direction when other threads are manipulating any `Arc`s or
3425    /// `Weak`s pointing to the same allocation.
3426    #[must_use]
3427    #[stable(feature = "weak_counts", since = "1.41.0")]
3428    pub fn weak_count(&self) -> usize {
3429        if let Some(inner) = self.inner() {
3430            let weak = inner.weak.load(Acquire);
3431            let strong = inner.strong.load(Relaxed);
3432            if strong == 0 {
3433                0
3434            } else {
3435                // Since we observed that there was at least one strong pointer
3436                // after reading the weak count, we know that the implicit weak
3437                // reference (present whenever any strong references are alive)
3438                // was still around when we observed the weak count, and can
3439                // therefore safely subtract it.
3440                weak - 1
3441            }
3442        } else {
3443            0
3444        }
3445    }
3446
3447    /// Returns `None` when the pointer is dangling and there is no allocated `ArcInner`,
3448    /// (i.e., when this `Weak` was created by `Weak::new`).
3449    #[inline]
3450    fn inner(&self) -> Option<WeakInner<'_>> {
3451        let ptr = self.ptr.as_ptr();
3452        if is_dangling(ptr) {
3453            None
3454        } else {
3455            // We are careful to *not* create a reference covering the "data" field, as
3456            // the field may be mutated concurrently (for example, if the last `Arc`
3457            // is dropped, the data field will be dropped in-place).
3458            Some(unsafe { WeakInner { strong: &(*ptr).strong, weak: &(*ptr).weak } })
3459        }
3460    }
3461
3462    /// Returns `true` if the two `Weak`s point to the same allocation similar to [`ptr::eq`], or if
3463    /// both don't point to any allocation (because they were created with `Weak::new()`). However,
3464    /// this function ignores the metadata of  `dyn Trait` pointers.
3465    ///
3466    /// # Notes
3467    ///
3468    /// Since this compares pointers it means that `Weak::new()` will equal each
3469    /// other, even though they don't point to any allocation.
3470    ///
3471    /// # Examples
3472    ///
3473    /// ```
3474    /// use std::sync::Arc;
3475    ///
3476    /// let first_rc = Arc::new(5);
3477    /// let first = Arc::downgrade(&first_rc);
3478    /// let second = Arc::downgrade(&first_rc);
3479    ///
3480    /// assert!(first.ptr_eq(&second));
3481    ///
3482    /// let third_rc = Arc::new(5);
3483    /// let third = Arc::downgrade(&third_rc);
3484    ///
3485    /// assert!(!first.ptr_eq(&third));
3486    /// ```
3487    ///
3488    /// Comparing `Weak::new`.
3489    ///
3490    /// ```
3491    /// use std::sync::{Arc, Weak};
3492    ///
3493    /// let first = Weak::new();
3494    /// let second = Weak::new();
3495    /// assert!(first.ptr_eq(&second));
3496    ///
3497    /// let third_rc = Arc::new(());
3498    /// let third = Arc::downgrade(&third_rc);
3499    /// assert!(!first.ptr_eq(&third));
3500    /// ```
3501    ///
3502    /// [`ptr::eq`]: core::ptr::eq "ptr::eq"
3503    #[inline]
3504    #[must_use]
3505    #[stable(feature = "weak_ptr_eq", since = "1.39.0")]
3506    pub fn ptr_eq(&self, other: &Self) -> bool {
3507        ptr::addr_eq(self.ptr.as_ptr(), other.ptr.as_ptr())
3508    }
3509}
3510
3511#[stable(feature = "arc_weak", since = "1.4.0")]
3512impl<T: ?Sized, A: AllocatorClone> Clone for Weak<T, A> {
3513    /// Makes a clone of the `Weak` pointer that points to the same allocation.
3514    ///
3515    /// # Examples
3516    ///
3517    /// ```
3518    /// use std::sync::{Arc, Weak};
3519    ///
3520    /// let weak_five = Arc::downgrade(&Arc::new(5));
3521    ///
3522    /// let _ = Weak::clone(&weak_five);
3523    /// ```
3524    #[inline]
3525    fn clone(&self) -> Weak<T, A> {
3526        if let Some(inner) = self.inner() {
3527            // See comments in Arc::clone() for why this is relaxed. This can use a
3528            // fetch_add (ignoring the lock) because the weak count is only locked
3529            // where are *no other* weak pointers in existence. (So we can't be
3530            // running this code in that case).
3531            let old_size = inner.weak.fetch_add(1, Relaxed);
3532
3533            // See comments in Arc::clone() for why we do this (for mem::forget).
3534            if old_size > MAX_REFCOUNT {
3535                abort();
3536            }
3537        }
3538
3539        Weak { ptr: self.ptr, alloc: self.alloc.clone() }
3540    }
3541}
3542
3543#[unstable(feature = "ergonomic_clones", issue = "132290")]
3544impl<T: ?Sized, A: AllocatorClone> UseCloned for Weak<T, A> {}
3545
3546#[stable(feature = "downgraded_weak", since = "1.10.0")]
3547impl<T> Default for Weak<T> {
3548    /// Constructs a new `Weak<T>`, without allocating memory.
3549    /// Calling [`upgrade`] on the return value always
3550    /// gives [`None`].
3551    ///
3552    /// [`upgrade`]: Weak::upgrade
3553    ///
3554    /// # Examples
3555    ///
3556    /// ```
3557    /// use std::sync::Weak;
3558    ///
3559    /// let empty: Weak<i64> = Default::default();
3560    /// assert!(empty.upgrade().is_none());
3561    /// ```
3562    fn default() -> Weak<T> {
3563        Weak::new()
3564    }
3565}
3566
3567#[stable(feature = "arc_weak", since = "1.4.0")]
3568unsafe impl<#[may_dangle] T: ?Sized, A: Allocator> Drop for Weak<T, A> {
3569    /// Drops the `Weak` pointer.
3570    ///
3571    /// # Examples
3572    ///
3573    /// ```
3574    /// use std::sync::{Arc, Weak};
3575    ///
3576    /// struct Foo;
3577    ///
3578    /// impl Drop for Foo {
3579    ///     fn drop(&mut self) {
3580    ///         println!("dropped!");
3581    ///     }
3582    /// }
3583    ///
3584    /// let foo = Arc::new(Foo);
3585    /// let weak_foo = Arc::downgrade(&foo);
3586    /// let other_weak_foo = Weak::clone(&weak_foo);
3587    ///
3588    /// drop(weak_foo);   // Doesn't print anything
3589    /// drop(foo);        // Prints "dropped!"
3590    ///
3591    /// assert!(other_weak_foo.upgrade().is_none());
3592    /// ```
3593    fn drop(&mut self) {
3594        // If we find out that we were the last weak pointer, then its time to
3595        // deallocate the data entirely. See the discussion in Arc::drop() about
3596        // the memory orderings
3597        //
3598        // It's not necessary to check for the locked state here, because the
3599        // weak count can only be locked if there was precisely one weak ref,
3600        // meaning that drop could only subsequently run ON that remaining weak
3601        // ref, which can only happen after the lock is released.
3602        let inner = if let Some(inner) = self.inner() { inner } else { return };
3603
3604        if inner.weak.fetch_sub(1, Release) == 1 {
3605            acquire!(inner.weak);
3606
3607            // Make sure we aren't trying to "deallocate" the shared static for empty slices
3608            // used by Default::default.
3609            debug_assert!(
3610                !ptr::addr_eq(self.ptr.as_ptr(), &STATIC_INNER_SLICE.inner),
3611                "Arc/Weaks backed by a static should never be deallocated. \
3612                Likely decrement_strong_count or from_raw were called too many times.",
3613            );
3614
3615            unsafe {
3616                self.alloc.deallocate(self.ptr.cast(), Layout::for_value_raw(self.ptr.as_ptr()))
3617            }
3618        }
3619    }
3620}
3621
3622#[stable(feature = "rust1", since = "1.0.0")]
3623trait ArcEqIdent<T: ?Sized + PartialEq, A: Allocator> {
3624    fn eq(&self, other: &Arc<T, A>) -> bool;
3625    fn ne(&self, other: &Arc<T, A>) -> bool;
3626}
3627
3628#[stable(feature = "rust1", since = "1.0.0")]
3629impl<T: ?Sized + PartialEq, A: Allocator> ArcEqIdent<T, A> for Arc<T, A> {
3630    #[inline]
3631    default fn eq(&self, other: &Arc<T, A>) -> bool {
3632        **self == **other
3633    }
3634    #[inline]
3635    default fn ne(&self, other: &Arc<T, A>) -> bool {
3636        **self != **other
3637    }
3638}
3639
3640/// We're doing this specialization here, and not as a more general optimization on `&T`, because it
3641/// would otherwise add a cost to all equality checks on refs. We assume that `Arc`s are used to
3642/// store large values, that are slow to clone, but also heavy to check for equality, causing this
3643/// cost to pay off more easily. It's also more likely to have two `Arc` clones, that point to
3644/// the same value, than two `&T`s.
3645///
3646/// We can only do this when `T: Eq` as a `PartialEq` might be deliberately irreflexive.
3647#[stable(feature = "rust1", since = "1.0.0")]
3648impl<T: ?Sized + crate::rc::MarkerEq, A: Allocator> ArcEqIdent<T, A> for Arc<T, A> {
3649    #[inline]
3650    fn eq(&self, other: &Arc<T, A>) -> bool {
3651        ptr::eq(self.ptr.as_ptr(), other.ptr.as_ptr()) || **self == **other
3652    }
3653
3654    #[inline]
3655    fn ne(&self, other: &Arc<T, A>) -> bool {
3656        !ptr::eq(self.ptr.as_ptr(), other.ptr.as_ptr()) && **self != **other
3657    }
3658}
3659
3660#[stable(feature = "rust1", since = "1.0.0")]
3661impl<T: ?Sized + PartialEq, A: Allocator> PartialEq for Arc<T, A> {
3662    /// Equality for two `Arc`s.
3663    ///
3664    /// Two `Arc`s are equal if their inner values are equal, even if they are
3665    /// stored in different allocation.
3666    ///
3667    /// If `T` also implements `Eq` (implying reflexivity of equality),
3668    /// two `Arc`s that point to the same allocation are always equal.
3669    ///
3670    /// # Examples
3671    ///
3672    /// ```
3673    /// use std::sync::Arc;
3674    ///
3675    /// let five = Arc::new(5);
3676    ///
3677    /// assert!(five == Arc::new(5));
3678    /// ```
3679    #[inline]
3680    fn eq(&self, other: &Arc<T, A>) -> bool {
3681        ArcEqIdent::eq(self, other)
3682    }
3683
3684    /// Inequality for two `Arc`s.
3685    ///
3686    /// Two `Arc`s are not equal if their inner values are not equal.
3687    ///
3688    /// If `T` also implements `Eq` (implying reflexivity of equality),
3689    /// two `Arc`s that point to the same value are always equal.
3690    ///
3691    /// # Examples
3692    ///
3693    /// ```
3694    /// use std::sync::Arc;
3695    ///
3696    /// let five = Arc::new(5);
3697    ///
3698    /// assert!(five != Arc::new(6));
3699    /// ```
3700    #[inline]
3701    fn ne(&self, other: &Arc<T, A>) -> bool {
3702        ArcEqIdent::ne(self, other)
3703    }
3704}
3705
3706#[stable(feature = "rust1", since = "1.0.0")]
3707impl<T: ?Sized + PartialOrd, A: Allocator> PartialOrd for Arc<T, A> {
3708    /// Partial comparison for two `Arc`s.
3709    ///
3710    /// The two are compared by calling `partial_cmp()` on their inner values.
3711    ///
3712    /// # Examples
3713    ///
3714    /// ```
3715    /// use std::sync::Arc;
3716    /// use std::cmp::Ordering;
3717    ///
3718    /// let five = Arc::new(5);
3719    ///
3720    /// assert_eq!(Some(Ordering::Less), five.partial_cmp(&Arc::new(6)));
3721    /// ```
3722    fn partial_cmp(&self, other: &Arc<T, A>) -> Option<Ordering> {
3723        (**self).partial_cmp(&**other)
3724    }
3725
3726    /// Less-than comparison for two `Arc`s.
3727    ///
3728    /// The two are compared by calling `<` on their inner values.
3729    ///
3730    /// # Examples
3731    ///
3732    /// ```
3733    /// use std::sync::Arc;
3734    ///
3735    /// let five = Arc::new(5);
3736    ///
3737    /// assert!(five < Arc::new(6));
3738    /// ```
3739    fn lt(&self, other: &Arc<T, A>) -> bool {
3740        *(*self) < *(*other)
3741    }
3742
3743    /// 'Less than or equal to' comparison for two `Arc`s.
3744    ///
3745    /// The two are compared by calling `<=` on their inner values.
3746    ///
3747    /// # Examples
3748    ///
3749    /// ```
3750    /// use std::sync::Arc;
3751    ///
3752    /// let five = Arc::new(5);
3753    ///
3754    /// assert!(five <= Arc::new(5));
3755    /// ```
3756    fn le(&self, other: &Arc<T, A>) -> bool {
3757        *(*self) <= *(*other)
3758    }
3759
3760    /// Greater-than comparison for two `Arc`s.
3761    ///
3762    /// The two are compared by calling `>` on their inner values.
3763    ///
3764    /// # Examples
3765    ///
3766    /// ```
3767    /// use std::sync::Arc;
3768    ///
3769    /// let five = Arc::new(5);
3770    ///
3771    /// assert!(five > Arc::new(4));
3772    /// ```
3773    fn gt(&self, other: &Arc<T, A>) -> bool {
3774        *(*self) > *(*other)
3775    }
3776
3777    /// 'Greater than or equal to' comparison for two `Arc`s.
3778    ///
3779    /// The two are compared by calling `>=` on their inner values.
3780    ///
3781    /// # Examples
3782    ///
3783    /// ```
3784    /// use std::sync::Arc;
3785    ///
3786    /// let five = Arc::new(5);
3787    ///
3788    /// assert!(five >= Arc::new(5));
3789    /// ```
3790    fn ge(&self, other: &Arc<T, A>) -> bool {
3791        *(*self) >= *(*other)
3792    }
3793}
3794#[stable(feature = "rust1", since = "1.0.0")]
3795impl<T: ?Sized + Ord, A: Allocator> Ord for Arc<T, A> {
3796    /// Comparison for two `Arc`s.
3797    ///
3798    /// The two are compared by calling `cmp()` on their inner values.
3799    ///
3800    /// # Examples
3801    ///
3802    /// ```
3803    /// use std::sync::Arc;
3804    /// use std::cmp::Ordering;
3805    ///
3806    /// let five = Arc::new(5);
3807    ///
3808    /// assert_eq!(Ordering::Less, five.cmp(&Arc::new(6)));
3809    /// ```
3810    fn cmp(&self, other: &Arc<T, A>) -> Ordering {
3811        (**self).cmp(&**other)
3812    }
3813}
3814#[stable(feature = "rust1", since = "1.0.0")]
3815impl<T: ?Sized + Eq, A: Allocator> Eq for Arc<T, A> {}
3816
3817#[stable(feature = "rust1", since = "1.0.0")]
3818impl<T: ?Sized + fmt::Display, A: Allocator> fmt::Display for Arc<T, A> {
3819    fn fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result {
3820        fmt::Display::fmt(&**self, f)
3821    }
3822}
3823
3824#[stable(feature = "rust1", since = "1.0.0")]
3825impl<T: ?Sized + fmt::Debug, A: Allocator> fmt::Debug for Arc<T, A> {
3826    fn fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result {
3827        fmt::Debug::fmt(&**self, f)
3828    }
3829}
3830
3831#[stable(feature = "rust1", since = "1.0.0")]
3832impl<T: ?Sized, A: Allocator> fmt::Pointer for Arc<T, A> {
3833    fn fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result {
3834        fmt::Pointer::fmt(&(&raw const **self), f)
3835    }
3836}
3837
3838#[cfg(not(no_global_oom_handling))]
3839#[stable(feature = "rust1", since = "1.0.0")]
3840impl<T: Default> Default for Arc<T> {
3841    /// Creates a new `Arc<T>`, with the `Default` value for `T`.
3842    ///
3843    /// # Examples
3844    ///
3845    /// ```
3846    /// use std::sync::Arc;
3847    ///
3848    /// let x: Arc<i32> = Default::default();
3849    /// assert_eq!(*x, 0);
3850    /// ```
3851    fn default() -> Arc<T> {
3852        unsafe {
3853            Self::from_inner(
3854                Box::leak(Box::write(
3855                    Box::new_uninit(),
3856                    ArcInner {
3857                        strong: atomic::AtomicUsize::new(1),
3858                        weak: atomic::AtomicUsize::new(1),
3859                        data: T::default(),
3860                    },
3861                ))
3862                .into(),
3863            )
3864        }
3865    }
3866}
3867
3868/// Struct to hold the static `ArcInner` used for empty `Arc<str/CStr/[T]>` as
3869/// returned by `Default::default`.
3870///
3871/// Layout notes:
3872/// * `repr(align(16))` so we can use it for `[T]` with `align_of::<T>() <= 16`.
3873/// * `repr(C)` so `inner` is at offset 0 (and thus guaranteed to actually be aligned to 16).
3874/// * `[u8; 1]` (to be initialized with 0) so it can be used for `Arc<CStr>`.
3875#[repr(C, align(16))]
3876struct SliceArcInnerForStatic {
3877    inner: ArcInner<[u8; 1]>,
3878}
3879#[cfg(not(no_global_oom_handling))]
3880const MAX_STATIC_INNER_SLICE_ALIGNMENT: usize = 16;
3881
3882static STATIC_INNER_SLICE: SliceArcInnerForStatic = SliceArcInnerForStatic {
3883    inner: ArcInner {
3884        strong: atomic::AtomicUsize::new(1),
3885        weak: atomic::AtomicUsize::new(1),
3886        data: [0],
3887    },
3888};
3889
3890#[cfg(not(no_global_oom_handling))]
3891#[stable(feature = "more_rc_default_impls", since = "1.80.0")]
3892impl Default for Arc<str> {
3893    /// Creates an empty str inside an Arc
3894    ///
3895    /// This may or may not share an allocation with other Arcs.
3896    #[inline]
3897    fn default() -> Self {
3898        let arc: Arc<[u8]> = Default::default();
3899        debug_assert!(core::str::from_utf8(&arc).is_ok());
3900        let (ptr, alloc) = Arc::into_inner_with_allocator(arc);
3901        unsafe { Arc::from_ptr_in(ptr.as_ptr() as *mut ArcInner<str>, alloc) }
3902    }
3903}
3904
3905#[cfg(not(no_global_oom_handling))]
3906#[stable(feature = "more_rc_default_impls", since = "1.80.0")]
3907impl Default for Arc<core::ffi::CStr> {
3908    /// Creates an empty CStr inside an Arc
3909    ///
3910    /// This may or may not share an allocation with other Arcs.
3911    #[inline]
3912    fn default() -> Self {
3913        use core::ffi::CStr;
3914        let inner: NonNull<ArcInner<[u8]>> = NonNull::from(&STATIC_INNER_SLICE.inner);
3915        let inner: NonNull<ArcInner<CStr>> =
3916            NonNull::new(inner.as_ptr() as *mut ArcInner<CStr>).unwrap();
3917        // `this` semantically is the Arc "owned" by the static, so make sure not to drop it.
3918        let this: mem::ManuallyDrop<Arc<CStr>> =
3919            unsafe { mem::ManuallyDrop::new(Arc::from_inner(inner)) };
3920        (*this).clone()
3921    }
3922}
3923
3924#[cfg(not(no_global_oom_handling))]
3925#[stable(feature = "more_rc_default_impls", since = "1.80.0")]
3926impl<T> Default for Arc<[T]> {
3927    /// Creates an empty `[T]` inside an Arc
3928    ///
3929    /// This may or may not share an allocation with other Arcs.
3930    #[inline]
3931    fn default() -> Self {
3932        if align_of::<T>() <= MAX_STATIC_INNER_SLICE_ALIGNMENT {
3933            // We take a reference to the whole struct instead of the ArcInner<[u8; 1]> inside it so
3934            // we don't shrink the range of bytes the ptr is allowed to access under Stacked Borrows.
3935            // (Miri complains on 32-bit targets with Arc<[Align16]> otherwise.)
3936            // (Note that NonNull::from(&STATIC_INNER_SLICE.inner) is fine under Tree Borrows.)
3937            let inner: NonNull<SliceArcInnerForStatic> = NonNull::from(&STATIC_INNER_SLICE);
3938            let inner: NonNull<ArcInner<[T; 0]>> = inner.cast();
3939            // `this` semantically is the Arc "owned" by the static, so make sure not to drop it.
3940            let this: mem::ManuallyDrop<Arc<[T; 0]>> =
3941                unsafe { mem::ManuallyDrop::new(Arc::from_inner(inner)) };
3942            return (*this).clone();
3943        }
3944
3945        // If T's alignment is too large for the static, make a new unique allocation.
3946        let arr: [T; 0] = [];
3947        Arc::from(arr)
3948    }
3949}
3950
3951#[cfg(not(no_global_oom_handling))]
3952#[stable(feature = "pin_default_impls", since = "1.91.0")]
3953impl<T> Default for Pin<Arc<T>>
3954where
3955    T: ?Sized,
3956    Arc<T>: Default,
3957{
3958    #[inline]
3959    fn default() -> Self {
3960        unsafe { Pin::new_unchecked(Arc::<T>::default()) }
3961    }
3962}
3963
3964#[stable(feature = "rust1", since = "1.0.0")]
3965impl<T: ?Sized + Hash, A: Allocator> Hash for Arc<T, A> {
3966    fn hash<H: Hasher>(&self, state: &mut H) {
3967        (**self).hash(state)
3968    }
3969}
3970
3971#[cfg(not(no_global_oom_handling))]
3972#[stable(feature = "from_for_ptrs", since = "1.6.0")]
3973impl<T> From<T> for Arc<T> {
3974    /// Converts a `T` into an `Arc<T>`
3975    ///
3976    /// The conversion moves the value into a
3977    /// newly allocated `Arc`. It is equivalent to
3978    /// calling `Arc::new(t)`.
3979    ///
3980    /// # Example
3981    /// ```rust
3982    /// # use std::sync::Arc;
3983    /// let x = 5;
3984    /// let arc = Arc::new(5);
3985    ///
3986    /// assert_eq!(Arc::from(x), arc);
3987    /// ```
3988    fn from(t: T) -> Self {
3989        Arc::new(t)
3990    }
3991}
3992
3993#[cfg(not(no_global_oom_handling))]
3994#[stable(feature = "shared_from_array", since = "1.74.0")]
3995impl<T, const N: usize> From<[T; N]> for Arc<[T]> {
3996    /// Converts a [`[T; N]`](prim@array) into an `Arc<[T]>`.
3997    ///
3998    /// The conversion moves the array into a newly allocated `Arc`.
3999    ///
4000    /// # Example
4001    ///
4002    /// ```
4003    /// # use std::sync::Arc;
4004    /// let original: [i32; 3] = [1, 2, 3];
4005    /// let shared: Arc<[i32]> = Arc::from(original);
4006    /// assert_eq!(&[1, 2, 3], &shared[..]);
4007    /// ```
4008    #[inline]
4009    fn from(v: [T; N]) -> Arc<[T]> {
4010        Arc::<[T; N]>::from(v)
4011    }
4012}
4013
4014#[cfg(not(no_global_oom_handling))]
4015#[stable(feature = "shared_from_slice", since = "1.21.0")]
4016impl<T: Clone> From<&[T]> for Arc<[T]> {
4017    /// Allocates a reference-counted slice and fills it by cloning `v`'s items.
4018    ///
4019    /// # Example
4020    ///
4021    /// ```
4022    /// # use std::sync::Arc;
4023    /// let original: &[i32] = &[1, 2, 3];
4024    /// let shared: Arc<[i32]> = Arc::from(original);
4025    /// assert_eq!(&[1, 2, 3], &shared[..]);
4026    /// ```
4027    #[inline]
4028    fn from(v: &[T]) -> Arc<[T]> {
4029        <Self as ArcFromSlice<T>>::from_slice(v)
4030    }
4031}
4032
4033#[cfg(not(no_global_oom_handling))]
4034#[stable(feature = "shared_from_mut_slice", since = "1.84.0")]
4035impl<T: Clone> From<&mut [T]> for Arc<[T]> {
4036    /// Allocates a reference-counted slice and fills it by cloning `v`'s items.
4037    ///
4038    /// # Example
4039    ///
4040    /// ```
4041    /// # use std::sync::Arc;
4042    /// let mut original = [1, 2, 3];
4043    /// let original: &mut [i32] = &mut original;
4044    /// let shared: Arc<[i32]> = Arc::from(original);
4045    /// assert_eq!(&[1, 2, 3], &shared[..]);
4046    /// ```
4047    #[inline]
4048    fn from(v: &mut [T]) -> Arc<[T]> {
4049        Arc::from(&*v)
4050    }
4051}
4052
4053#[cfg(not(no_global_oom_handling))]
4054#[stable(feature = "shared_from_slice", since = "1.21.0")]
4055impl From<&str> for Arc<str> {
4056    /// Allocates a reference-counted `str` and copies `v` into it.
4057    ///
4058    /// # Example
4059    ///
4060    /// ```
4061    /// # use std::sync::Arc;
4062    /// let shared: Arc<str> = Arc::from("eggplant");
4063    /// assert_eq!("eggplant", &shared[..]);
4064    /// ```
4065    #[inline]
4066    fn from(v: &str) -> Arc<str> {
4067        let arc = Arc::<[u8]>::from(v.as_bytes());
4068        unsafe { Arc::from_raw(Arc::into_raw(arc) as *const str) }
4069    }
4070}
4071
4072#[cfg(not(no_global_oom_handling))]
4073#[stable(feature = "shared_from_mut_slice", since = "1.84.0")]
4074impl From<&mut str> for Arc<str> {
4075    /// Allocates a reference-counted `str` and copies `v` into it.
4076    ///
4077    /// # Example
4078    ///
4079    /// ```
4080    /// # use std::sync::Arc;
4081    /// let mut original = String::from("eggplant");
4082    /// let original: &mut str = &mut original;
4083    /// let shared: Arc<str> = Arc::from(original);
4084    /// assert_eq!("eggplant", &shared[..]);
4085    /// ```
4086    #[inline]
4087    fn from(v: &mut str) -> Arc<str> {
4088        Arc::from(&*v)
4089    }
4090}
4091
4092#[cfg(not(no_global_oom_handling))]
4093#[stable(feature = "shared_from_slice", since = "1.21.0")]
4094impl From<String> for Arc<str> {
4095    /// Allocates a reference-counted `str` and copies `v` into it.
4096    ///
4097    /// # Example
4098    ///
4099    /// ```
4100    /// # use std::sync::Arc;
4101    /// let unique: String = "eggplant".to_owned();
4102    /// let shared: Arc<str> = Arc::from(unique);
4103    /// assert_eq!("eggplant", &shared[..]);
4104    /// ```
4105    #[inline]
4106    fn from(v: String) -> Arc<str> {
4107        Arc::from(&v[..])
4108    }
4109}
4110
4111#[cfg(not(no_global_oom_handling))]
4112#[stable(feature = "shared_from_slice", since = "1.21.0")]
4113impl<T: ?Sized, A: Allocator> From<Box<T, A>> for Arc<T, A> {
4114    /// Move a boxed object to a new, reference-counted allocation.
4115    ///
4116    /// # Example
4117    ///
4118    /// ```
4119    /// # use std::sync::Arc;
4120    /// let unique: Box<str> = Box::from("eggplant");
4121    /// let shared: Arc<str> = Arc::from(unique);
4122    /// assert_eq!("eggplant", &shared[..]);
4123    /// ```
4124    #[inline]
4125    fn from(v: Box<T, A>) -> Arc<T, A> {
4126        Arc::from_box_in(v)
4127    }
4128}
4129
4130#[cfg(not(no_global_oom_handling))]
4131#[stable(feature = "shared_from_slice", since = "1.21.0")]
4132impl<T, A: AllocatorClone> From<Vec<T, A>> for Arc<[T], A> {
4133    /// Allocates a reference-counted slice and moves `v`'s items into it.
4134    ///
4135    /// # Example
4136    ///
4137    /// ```
4138    /// # use std::sync::Arc;
4139    /// let unique: Vec<i32> = vec![1, 2, 3];
4140    /// let shared: Arc<[i32]> = Arc::from(unique);
4141    /// assert_eq!(&[1, 2, 3], &shared[..]);
4142    /// ```
4143    #[inline]
4144    fn from(v: Vec<T, A>) -> Arc<[T], A> {
4145        unsafe {
4146            let (vec_ptr, len, cap, alloc) = v.into_raw_parts_with_allocator();
4147
4148            let rc_ptr = Self::allocate_for_slice_in(len, &alloc);
4149            ptr::copy_nonoverlapping(vec_ptr, (&raw mut (*rc_ptr).data) as *mut T, len);
4150
4151            // Create a `Vec<T, &A>` with length 0, to deallocate the buffer
4152            // without dropping its contents or the allocator
4153            let _ = Vec::from_raw_parts_in(vec_ptr, 0, cap, &alloc);
4154
4155            Self::from_ptr_in(rc_ptr, alloc)
4156        }
4157    }
4158}
4159
4160#[stable(feature = "shared_from_cow", since = "1.45.0")]
4161impl<'a, B> From<Cow<'a, B>> for Arc<B>
4162where
4163    B: ToOwned + ?Sized,
4164    Arc<B>: From<&'a B> + From<B::Owned>,
4165{
4166    /// Creates an atomically reference-counted pointer from a clone-on-write
4167    /// pointer by copying its content.
4168    ///
4169    /// # Example
4170    ///
4171    /// ```rust
4172    /// # use std::sync::Arc;
4173    /// # use std::borrow::Cow;
4174    /// let cow: Cow<'_, str> = Cow::Borrowed("eggplant");
4175    /// let shared: Arc<str> = Arc::from(cow);
4176    /// assert_eq!("eggplant", &shared[..]);
4177    /// ```
4178    #[inline]
4179    fn from(cow: Cow<'a, B>) -> Arc<B> {
4180        match cow {
4181            Cow::Borrowed(s) => Arc::from(s),
4182            Cow::Owned(s) => Arc::from(s),
4183        }
4184    }
4185}
4186
4187#[stable(feature = "shared_from_str", since = "1.62.0")]
4188impl From<Arc<str>> for Arc<[u8]> {
4189    /// Converts an atomically reference-counted string slice into a byte slice.
4190    ///
4191    /// # Example
4192    ///
4193    /// ```
4194    /// # use std::sync::Arc;
4195    /// let string: Arc<str> = Arc::from("eggplant");
4196    /// let bytes: Arc<[u8]> = Arc::from(string);
4197    /// assert_eq!("eggplant".as_bytes(), bytes.as_ref());
4198    /// ```
4199    #[inline]
4200    fn from(rc: Arc<str>) -> Self {
4201        // SAFETY: `str` has the same layout as `[u8]`.
4202        unsafe { Arc::from_raw(Arc::into_raw(rc) as *const [u8]) }
4203    }
4204}
4205
4206#[stable(feature = "boxed_slice_try_from", since = "1.43.0")]
4207impl<T, A: Allocator, const N: usize> TryFrom<Arc<[T], A>> for Arc<[T; N], A> {
4208    type Error = Arc<[T], A>;
4209
4210    fn try_from(boxed_slice: Arc<[T], A>) -> Result<Self, Self::Error> {
4211        if boxed_slice.len() == N {
4212            let (ptr, alloc) = Arc::into_inner_with_allocator(boxed_slice);
4213            Ok(unsafe { Arc::from_inner_in(ptr.cast(), alloc) })
4214        } else {
4215            Err(boxed_slice)
4216        }
4217    }
4218}
4219
4220#[cfg(not(no_global_oom_handling))]
4221#[stable(feature = "shared_from_iter", since = "1.37.0")]
4222impl<T> FromIterator<T> for Arc<[T]> {
4223    /// Takes each element in the `Iterator` and collects it into an `Arc<[T]>`.
4224    ///
4225    /// # Performance characteristics
4226    ///
4227    /// ## The general case
4228    ///
4229    /// In the general case, collecting into `Arc<[T]>` is done by first
4230    /// collecting into a `Vec<T>`. That is, when writing the following:
4231    ///
4232    /// ```rust
4233    /// # use std::sync::Arc;
4234    /// let evens: Arc<[u8]> = (0..10).filter(|&x| x % 2 == 0).collect();
4235    /// # assert_eq!(&*evens, &[0, 2, 4, 6, 8]);
4236    /// ```
4237    ///
4238    /// this behaves as if we wrote:
4239    ///
4240    /// ```rust
4241    /// # use std::sync::Arc;
4242    /// let evens: Arc<[u8]> = (0..10).filter(|&x| x % 2 == 0)
4243    ///     .collect::<Vec<_>>() // The first set of allocations happens here.
4244    ///     .into(); // A second allocation for `Arc<[T]>` happens here.
4245    /// # assert_eq!(&*evens, &[0, 2, 4, 6, 8]);
4246    /// ```
4247    ///
4248    /// This will allocate as many times as needed for constructing the `Vec<T>`
4249    /// and then it will allocate once for turning the `Vec<T>` into the `Arc<[T]>`.
4250    ///
4251    /// ## Iterators of known length
4252    ///
4253    /// When your `Iterator` implements `TrustedLen` and is of an exact size,
4254    /// a single allocation will be made for the `Arc<[T]>`. For example:
4255    ///
4256    /// ```rust
4257    /// # use std::sync::Arc;
4258    /// let evens: Arc<[u8]> = (0..10).collect(); // Just a single allocation happens here.
4259    /// # assert_eq!(&*evens, &*(0..10).collect::<Vec<_>>());
4260    /// ```
4261    fn from_iter<I: IntoIterator<Item = T>>(iter: I) -> Self {
4262        ToArcSlice::to_arc_slice(iter.into_iter())
4263    }
4264}
4265
4266#[cfg(not(no_global_oom_handling))]
4267/// Specialization trait used for collecting into `Arc<[T]>`.
4268trait ToArcSlice<T>: Iterator<Item = T> + Sized {
4269    fn to_arc_slice(self) -> Arc<[T]>;
4270}
4271
4272#[cfg(not(no_global_oom_handling))]
4273impl<T, I: Iterator<Item = T>> ToArcSlice<T> for I {
4274    default fn to_arc_slice(self) -> Arc<[T]> {
4275        self.collect::<Vec<T>>().into()
4276    }
4277}
4278
4279#[cfg(not(no_global_oom_handling))]
4280impl<T, I: iter::TrustedLen<Item = T>> ToArcSlice<T> for I {
4281    fn to_arc_slice(self) -> Arc<[T]> {
4282        // This is the case for a `TrustedLen` iterator.
4283        let (low, high) = self.size_hint();
4284        if let Some(high) = high {
4285            debug_assert_eq!(
4286                low,
4287                high,
4288                "TrustedLen iterator's size hint is not exact: {:?}",
4289                (low, high)
4290            );
4291
4292            unsafe {
4293                // SAFETY: We need to ensure that the iterator has an exact length and we have.
4294                Arc::from_iter_exact(self, low)
4295            }
4296        } else {
4297            // TrustedLen contract guarantees that `upper_bound == None` implies an iterator
4298            // length exceeding `usize::MAX`.
4299            // The default implementation would collect into a vec which would panic.
4300            // Thus we panic here immediately without invoking `Vec` code.
4301            panic!("capacity overflow");
4302        }
4303    }
4304}
4305
4306#[stable(feature = "rust1", since = "1.0.0")]
4307impl<T: ?Sized, A: Allocator> borrow::Borrow<T> for Arc<T, A> {
4308    fn borrow(&self) -> &T {
4309        self
4310    }
4311}
4312
4313#[stable(since = "1.5.0", feature = "smart_ptr_as_ref")]
4314impl<T: ?Sized, A: Allocator> AsRef<T> for Arc<T, A> {
4315    fn as_ref(&self) -> &T {
4316        self
4317    }
4318}
4319
4320#[stable(feature = "pin", since = "1.33.0")]
4321impl<T: ?Sized, A: Allocator> Unpin for Arc<T, A> {}
4322
4323/// Gets the offset within an `ArcInner` for the payload behind a pointer.
4324///
4325/// # Safety
4326///
4327/// The pointer must point to (and have valid metadata for) a previously
4328/// valid instance of T, but the T is allowed to be dropped.
4329unsafe fn data_offset<T: ?Sized>(ptr: *const T) -> usize {
4330    // Align the unsized value to the end of the ArcInner.
4331    // Because ArcInner is repr(C), it will always be the last field in memory.
4332    // SAFETY: since the only unsized types possible are slices, trait objects,
4333    // and extern types, the input safety requirement is currently enough to
4334    // satisfy the requirements of Alignment::of_val_raw; this is an implementation
4335    // detail of the language that must not be relied upon outside of std.
4336    unsafe { data_offset_alignment(Alignment::of_val_raw(ptr)) }
4337}
4338
4339#[inline]
4340fn data_offset_alignment(alignment: Alignment) -> usize {
4341    let layout = Layout::new::<ArcInner<()>>();
4342    layout.size() + layout.padding_needed_for(alignment)
4343}
4344
4345/// A unique owning pointer to an [`ArcInner`] **that does not imply the contents are initialized,**
4346/// but will deallocate it (without dropping the value) when dropped.
4347///
4348/// This is a helper for [`Arc::make_mut()`] to ensure correct cleanup on panic.
4349struct UniqueArcUninit<T: ?Sized, A: Allocator> {
4350    ptr: NonNull<ArcInner<T>>,
4351    layout_for_value: Layout,
4352    alloc: Option<A>,
4353}
4354
4355impl<T: ?Sized, A: Allocator> UniqueArcUninit<T, A> {
4356    /// Allocates an ArcInner with layout suitable to contain `for_value` or a clone of it.
4357    #[cfg(not(no_global_oom_handling))]
4358    fn new(for_value: &T, alloc: A) -> UniqueArcUninit<T, A> {
4359        let layout = Layout::for_value(for_value);
4360        let ptr = unsafe {
4361            Arc::allocate_for_layout(
4362                layout,
4363                |layout_for_arcinner| alloc.allocate(layout_for_arcinner),
4364                |mem| mem.with_metadata_of(ptr::from_ref(for_value) as *const ArcInner<T>),
4365            )
4366        };
4367        Self { ptr: NonNull::new(ptr).unwrap(), layout_for_value: layout, alloc: Some(alloc) }
4368    }
4369
4370    /// Allocates an ArcInner with layout suitable to contain `for_value` or a clone of it,
4371    /// returning an error if allocation fails.
4372    fn try_new(for_value: &T, alloc: A) -> Result<UniqueArcUninit<T, A>, AllocError> {
4373        let layout = Layout::for_value(for_value);
4374        let ptr = unsafe {
4375            Arc::try_allocate_for_layout(
4376                layout,
4377                |layout_for_arcinner| alloc.allocate(layout_for_arcinner),
4378                |mem| mem.with_metadata_of(ptr::from_ref(for_value) as *const ArcInner<T>),
4379            )?
4380        };
4381        Ok(Self { ptr: NonNull::new(ptr).unwrap(), layout_for_value: layout, alloc: Some(alloc) })
4382    }
4383
4384    /// Returns the pointer to be written into to initialize the [`Arc`].
4385    fn data_ptr(&mut self) -> *mut T {
4386        let offset = data_offset_alignment(self.layout_for_value.alignment());
4387        unsafe { self.ptr.as_ptr().byte_add(offset) as *mut T }
4388    }
4389
4390    /// Upgrade this into a normal [`Arc`].
4391    ///
4392    /// # Safety
4393    ///
4394    /// The data must have been initialized (by writing to [`Self::data_ptr()`]).
4395    unsafe fn into_arc(self) -> Arc<T, A> {
4396        let mut this = ManuallyDrop::new(self);
4397        let ptr = this.ptr.as_ptr();
4398        let alloc = this.alloc.take().unwrap();
4399
4400        // SAFETY: The pointer is valid as per `UniqueArcUninit::new`, and the caller is responsible
4401        // for having initialized the data.
4402        unsafe { Arc::from_ptr_in(ptr, alloc) }
4403    }
4404}
4405
4406impl<T: ?Sized, A: Allocator> Drop for UniqueArcUninit<T, A> {
4407    fn drop(&mut self) {
4408        // SAFETY:
4409        // * new() produced a pointer safe to deallocate.
4410        // * We own the pointer unless into_arc() was called, which forgets us.
4411        unsafe {
4412            self.alloc.take().unwrap().deallocate(
4413                self.ptr.cast(),
4414                arcinner_layout_for_value_layout(self.layout_for_value),
4415            );
4416        }
4417    }
4418}
4419
4420#[stable(feature = "arc_error", since = "1.52.0")]
4421impl<T: core::error::Error + ?Sized> core::error::Error for Arc<T> {
4422    #[allow(deprecated)]
4423    fn cause(&self) -> Option<&dyn core::error::Error> {
4424        core::error::Error::cause(&**self)
4425    }
4426
4427    fn source(&self) -> Option<&(dyn core::error::Error + 'static)> {
4428        core::error::Error::source(&**self)
4429    }
4430
4431    fn provide<'a>(&'a self, req: &mut core::error::Request<'a>) {
4432        core::error::Error::provide(&**self, req);
4433    }
4434}
4435
4436/// A uniquely owned [`Arc`].
4437///
4438/// This represents an `Arc` that is known to be uniquely owned -- that is, have exactly one strong
4439/// reference. Multiple weak pointers can be created, but attempts to upgrade those to strong
4440/// references will fail unless the `UniqueArc` they point to has been converted into a regular `Arc`.
4441///
4442/// Because it is uniquely owned, the contents of a `UniqueArc` can be freely mutated. A common
4443/// use case is to have an object be mutable during its initialization phase but then have it become
4444/// immutable and converted to a normal `Arc`.
4445///
4446/// This can be used as a flexible way to create cyclic data structures, as in the example below.
4447///
4448/// ```
4449/// #![feature(unique_rc_arc)]
4450/// use std::sync::{Arc, Weak, UniqueArc};
4451///
4452/// struct Gadget {
4453///     me: Weak<Gadget>,
4454/// }
4455///
4456/// fn create_gadget() -> Option<Arc<Gadget>> {
4457///     let mut rc = UniqueArc::new(Gadget {
4458///         me: Weak::new(),
4459///     });
4460///     rc.me = UniqueArc::downgrade(&rc);
4461///     Some(UniqueArc::into_arc(rc))
4462/// }
4463///
4464/// create_gadget().unwrap();
4465/// ```
4466///
4467/// An advantage of using `UniqueArc` over [`Arc::new_cyclic`] to build cyclic data structures is that
4468/// [`Arc::new_cyclic`]'s `data_fn` parameter cannot be async or return a [`Result`]. As shown in the
4469/// previous example, `UniqueArc` allows for more flexibility in the construction of cyclic data,
4470/// including fallible or async constructors.
4471#[unstable(feature = "unique_rc_arc", issue = "112566")]
4472pub struct UniqueArc<
4473    T: ?Sized,
4474    #[unstable(feature = "allocator_api", issue = "32838")] A: Allocator = Global,
4475> {
4476    ptr: NonNull<ArcInner<T>>,
4477    // Define the ownership of `ArcInner<T>` for drop-check
4478    _marker: PhantomData<ArcInner<T>>,
4479    // Invariance is necessary for soundness: once other `Weak`
4480    // references exist, we already have a form of shared mutability!
4481    _marker2: PhantomData<*mut T>,
4482    alloc: A,
4483}
4484
4485#[unstable(feature = "unique_rc_arc", issue = "112566")]
4486unsafe impl<T: ?Sized + Sync + Send, A: Allocator + Send + Sync> Send for UniqueArc<T, A> {}
4487
4488#[unstable(feature = "unique_rc_arc", issue = "112566")]
4489unsafe impl<T: ?Sized + Sync + Send, A: Allocator + Send + Sync> Sync for UniqueArc<T, A> {}
4490
4491#[unstable(feature = "unique_rc_arc", issue = "112566")]
4492// #[unstable(feature = "coerce_unsized", issue = "18598")]
4493impl<T: ?Sized + Unsize<U>, U: ?Sized, A: Allocator> CoerceUnsized<UniqueArc<U, A>>
4494    for UniqueArc<T, A>
4495{
4496}
4497
4498//#[unstable(feature = "unique_rc_arc", issue = "112566")]
4499#[unstable(feature = "dispatch_from_dyn", issue = "none")]
4500impl<T: ?Sized + Unsize<U>, U: ?Sized> DispatchFromDyn<UniqueArc<U>> for UniqueArc<T> {}
4501
4502#[unstable(feature = "unique_rc_arc", issue = "112566")]
4503impl<T: ?Sized + fmt::Display, A: Allocator> fmt::Display for UniqueArc<T, A> {
4504    fn fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result {
4505        fmt::Display::fmt(&**self, f)
4506    }
4507}
4508
4509#[unstable(feature = "unique_rc_arc", issue = "112566")]
4510impl<T: ?Sized + fmt::Debug, A: Allocator> fmt::Debug for UniqueArc<T, A> {
4511    fn fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result {
4512        fmt::Debug::fmt(&**self, f)
4513    }
4514}
4515
4516#[unstable(feature = "unique_rc_arc", issue = "112566")]
4517impl<T: ?Sized, A: Allocator> fmt::Pointer for UniqueArc<T, A> {
4518    fn fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result {
4519        fmt::Pointer::fmt(&(&raw const **self), f)
4520    }
4521}
4522
4523#[unstable(feature = "unique_rc_arc", issue = "112566")]
4524impl<T: ?Sized, A: Allocator> borrow::Borrow<T> for UniqueArc<T, A> {
4525    fn borrow(&self) -> &T {
4526        self
4527    }
4528}
4529
4530#[unstable(feature = "unique_rc_arc", issue = "112566")]
4531impl<T: ?Sized, A: Allocator> borrow::BorrowMut<T> for UniqueArc<T, A> {
4532    fn borrow_mut(&mut self) -> &mut T {
4533        self
4534    }
4535}
4536
4537#[unstable(feature = "unique_rc_arc", issue = "112566")]
4538impl<T: ?Sized, A: Allocator> AsRef<T> for UniqueArc<T, A> {
4539    fn as_ref(&self) -> &T {
4540        self
4541    }
4542}
4543
4544#[unstable(feature = "unique_rc_arc", issue = "112566")]
4545impl<T: ?Sized, A: Allocator> AsMut<T> for UniqueArc<T, A> {
4546    fn as_mut(&mut self) -> &mut T {
4547        self
4548    }
4549}
4550
4551#[cfg(not(no_global_oom_handling))]
4552#[unstable(feature = "unique_rc_arc", issue = "112566")]
4553impl<T> From<T> for UniqueArc<T> {
4554    #[inline(always)]
4555    fn from(value: T) -> Self {
4556        Self::new(value)
4557    }
4558}
4559
4560#[unstable(feature = "unique_rc_arc", issue = "112566")]
4561impl<T: ?Sized, A: Allocator> Unpin for UniqueArc<T, A> {}
4562
4563#[unstable(feature = "unique_rc_arc", issue = "112566")]
4564impl<T: ?Sized + PartialEq, A: Allocator> PartialEq for UniqueArc<T, A> {
4565    /// Equality for two `UniqueArc`s.
4566    ///
4567    /// Two `UniqueArc`s are equal if their inner values are equal.
4568    ///
4569    /// # Examples
4570    ///
4571    /// ```
4572    /// #![feature(unique_rc_arc)]
4573    /// use std::sync::UniqueArc;
4574    ///
4575    /// let five = UniqueArc::new(5);
4576    ///
4577    /// assert!(five == UniqueArc::new(5));
4578    /// ```
4579    #[inline]
4580    fn eq(&self, other: &Self) -> bool {
4581        PartialEq::eq(&**self, &**other)
4582    }
4583}
4584
4585#[unstable(feature = "unique_rc_arc", issue = "112566")]
4586impl<T: ?Sized + PartialOrd, A: Allocator> PartialOrd for UniqueArc<T, A> {
4587    /// Partial comparison for two `UniqueArc`s.
4588    ///
4589    /// The two are compared by calling `partial_cmp()` on their inner values.
4590    ///
4591    /// # Examples
4592    ///
4593    /// ```
4594    /// #![feature(unique_rc_arc)]
4595    /// use std::sync::UniqueArc;
4596    /// use std::cmp::Ordering;
4597    ///
4598    /// let five = UniqueArc::new(5);
4599    ///
4600    /// assert_eq!(Some(Ordering::Less), five.partial_cmp(&UniqueArc::new(6)));
4601    /// ```
4602    #[inline(always)]
4603    fn partial_cmp(&self, other: &UniqueArc<T, A>) -> Option<Ordering> {
4604        (**self).partial_cmp(&**other)
4605    }
4606
4607    /// Less-than comparison for two `UniqueArc`s.
4608    ///
4609    /// The two are compared by calling `<` on their inner values.
4610    ///
4611    /// # Examples
4612    ///
4613    /// ```
4614    /// #![feature(unique_rc_arc)]
4615    /// use std::sync::UniqueArc;
4616    ///
4617    /// let five = UniqueArc::new(5);
4618    ///
4619    /// assert!(five < UniqueArc::new(6));
4620    /// ```
4621    #[inline(always)]
4622    fn lt(&self, other: &UniqueArc<T, A>) -> bool {
4623        **self < **other
4624    }
4625
4626    /// 'Less than or equal to' comparison for two `UniqueArc`s.
4627    ///
4628    /// The two are compared by calling `<=` on their inner values.
4629    ///
4630    /// # Examples
4631    ///
4632    /// ```
4633    /// #![feature(unique_rc_arc)]
4634    /// use std::sync::UniqueArc;
4635    ///
4636    /// let five = UniqueArc::new(5);
4637    ///
4638    /// assert!(five <= UniqueArc::new(5));
4639    /// ```
4640    #[inline(always)]
4641    fn le(&self, other: &UniqueArc<T, A>) -> bool {
4642        **self <= **other
4643    }
4644
4645    /// Greater-than comparison for two `UniqueArc`s.
4646    ///
4647    /// The two are compared by calling `>` on their inner values.
4648    ///
4649    /// # Examples
4650    ///
4651    /// ```
4652    /// #![feature(unique_rc_arc)]
4653    /// use std::sync::UniqueArc;
4654    ///
4655    /// let five = UniqueArc::new(5);
4656    ///
4657    /// assert!(five > UniqueArc::new(4));
4658    /// ```
4659    #[inline(always)]
4660    fn gt(&self, other: &UniqueArc<T, A>) -> bool {
4661        **self > **other
4662    }
4663
4664    /// 'Greater than or equal to' comparison for two `UniqueArc`s.
4665    ///
4666    /// The two are compared by calling `>=` on their inner values.
4667    ///
4668    /// # Examples
4669    ///
4670    /// ```
4671    /// #![feature(unique_rc_arc)]
4672    /// use std::sync::UniqueArc;
4673    ///
4674    /// let five = UniqueArc::new(5);
4675    ///
4676    /// assert!(five >= UniqueArc::new(5));
4677    /// ```
4678    #[inline(always)]
4679    fn ge(&self, other: &UniqueArc<T, A>) -> bool {
4680        **self >= **other
4681    }
4682}
4683
4684#[unstable(feature = "unique_rc_arc", issue = "112566")]
4685impl<T: ?Sized + Ord, A: Allocator> Ord for UniqueArc<T, A> {
4686    /// Comparison for two `UniqueArc`s.
4687    ///
4688    /// The two are compared by calling `cmp()` on their inner values.
4689    ///
4690    /// # Examples
4691    ///
4692    /// ```
4693    /// #![feature(unique_rc_arc)]
4694    /// use std::sync::UniqueArc;
4695    /// use std::cmp::Ordering;
4696    ///
4697    /// let five = UniqueArc::new(5);
4698    ///
4699    /// assert_eq!(Ordering::Less, five.cmp(&UniqueArc::new(6)));
4700    /// ```
4701    #[inline]
4702    fn cmp(&self, other: &UniqueArc<T, A>) -> Ordering {
4703        (**self).cmp(&**other)
4704    }
4705}
4706
4707#[unstable(feature = "unique_rc_arc", issue = "112566")]
4708impl<T: ?Sized + Eq, A: Allocator> Eq for UniqueArc<T, A> {}
4709
4710#[unstable(feature = "unique_rc_arc", issue = "112566")]
4711impl<T: ?Sized + Hash, A: Allocator> Hash for UniqueArc<T, A> {
4712    fn hash<H: Hasher>(&self, state: &mut H) {
4713        (**self).hash(state);
4714    }
4715}
4716
4717impl<T> UniqueArc<T, Global> {
4718    /// Creates a new `UniqueArc`.
4719    ///
4720    /// Weak references to this `UniqueArc` can be created with [`UniqueArc::downgrade`]. Upgrading
4721    /// these weak references will fail before the `UniqueArc` has been converted into an [`Arc`].
4722    /// After converting the `UniqueArc` into an [`Arc`], any weak references created beforehand will
4723    /// point to the new [`Arc`].
4724    #[cfg(not(no_global_oom_handling))]
4725    #[unstable(feature = "unique_rc_arc", issue = "112566")]
4726    #[must_use]
4727    pub fn new(value: T) -> Self {
4728        Self::new_in(value, Global)
4729    }
4730
4731    /// Maps the value in a `UniqueArc`, reusing the allocation if possible.
4732    ///
4733    /// `f` is called on a reference to the value in the `UniqueArc`, and the result is returned,
4734    /// also in a `UniqueArc`.
4735    ///
4736    /// Note: this is an associated function, which means that you have
4737    /// to call it as `UniqueArc::map(u, f)` instead of `u.map(f)`. This
4738    /// is so that there is no conflict with a method on the inner type.
4739    ///
4740    /// # Examples
4741    ///
4742    /// ```
4743    /// #![feature(smart_pointer_try_map)]
4744    /// #![feature(unique_rc_arc)]
4745    ///
4746    /// use std::sync::UniqueArc;
4747    ///
4748    /// let r = UniqueArc::new(7);
4749    /// let new = UniqueArc::map(r, |i| i + 7);
4750    /// assert_eq!(*new, 14);
4751    /// ```
4752    #[cfg(not(no_global_oom_handling))]
4753    #[unstable(feature = "smart_pointer_try_map", issue = "144419")]
4754    pub fn map<U>(this: Self, f: impl FnOnce(T) -> U) -> UniqueArc<U> {
4755        if size_of::<T>() == size_of::<U>()
4756            && align_of::<T>() == align_of::<U>()
4757            && UniqueArc::weak_count(&this) == 0
4758        {
4759            unsafe {
4760                let ptr = UniqueArc::into_raw(this);
4761                let value = ptr.read();
4762                let mut allocation = UniqueArc::from_raw(ptr.cast::<mem::MaybeUninit<U>>());
4763
4764                allocation.write(f(value));
4765                allocation.assume_init()
4766            }
4767        } else {
4768            UniqueArc::new(f(UniqueArc::unwrap(this)))
4769        }
4770    }
4771
4772    /// Attempts to map the value in a `UniqueArc`, reusing the allocation if possible.
4773    ///
4774    /// `f` is called on a reference to the value in the `UniqueArc`, and if the operation succeeds,
4775    /// the result is returned, also in a `UniqueArc`.
4776    ///
4777    /// Note: this is an associated function, which means that you have
4778    /// to call it as `UniqueArc::try_map(u, f)` instead of `u.try_map(f)`. This
4779    /// is so that there is no conflict with a method on the inner type.
4780    ///
4781    /// # Examples
4782    ///
4783    /// ```
4784    /// #![feature(smart_pointer_try_map)]
4785    /// #![feature(unique_rc_arc)]
4786    ///
4787    /// use std::sync::UniqueArc;
4788    ///
4789    /// let b = UniqueArc::new(7);
4790    /// let new = UniqueArc::try_map(b, u32::try_from).unwrap();
4791    /// assert_eq!(*new, 7);
4792    /// ```
4793    #[cfg(not(no_global_oom_handling))]
4794    #[unstable(feature = "smart_pointer_try_map", issue = "144419")]
4795    pub fn try_map<R>(
4796        this: Self,
4797        f: impl FnOnce(T) -> R,
4798    ) -> <R::Residual as Residual<UniqueArc<R::Output>>>::TryType
4799    where
4800        R: Try,
4801        R::Residual: Residual<UniqueArc<R::Output>>,
4802    {
4803        if size_of::<T>() == size_of::<R::Output>()
4804            && align_of::<T>() == align_of::<R::Output>()
4805            && UniqueArc::weak_count(&this) == 0
4806        {
4807            unsafe {
4808                let ptr = UniqueArc::into_raw(this);
4809                let value = ptr.read();
4810                let mut allocation = UniqueArc::from_raw(ptr.cast::<mem::MaybeUninit<R::Output>>());
4811
4812                allocation.write(f(value)?);
4813                try { allocation.assume_init() }
4814            }
4815        } else {
4816            try { UniqueArc::new(f(UniqueArc::unwrap(this))?) }
4817        }
4818    }
4819
4820    #[cfg(not(no_global_oom_handling))]
4821    fn unwrap(this: Self) -> T {
4822        let this = ManuallyDrop::new(this);
4823        let val: T = unsafe { ptr::read(&**this) };
4824
4825        let _weak = Weak { ptr: this.ptr, alloc: Global };
4826
4827        val
4828    }
4829}
4830
4831impl<T: ?Sized> UniqueArc<T> {
4832    #[cfg(not(no_global_oom_handling))]
4833    unsafe fn from_raw(ptr: *const T) -> Self {
4834        let offset = unsafe { data_offset(ptr) };
4835
4836        // Reverse the offset to find the original ArcInner.
4837        let rc_ptr = unsafe { ptr.byte_sub(offset) as *mut ArcInner<T> };
4838
4839        Self {
4840            ptr: unsafe { NonNull::new_unchecked(rc_ptr) },
4841            _marker: PhantomData,
4842            _marker2: PhantomData,
4843            alloc: Global,
4844        }
4845    }
4846
4847    #[cfg(not(no_global_oom_handling))]
4848    fn into_raw(this: Self) -> *const T {
4849        let this = ManuallyDrop::new(this);
4850        Self::as_ptr(&*this)
4851    }
4852}
4853
4854impl<T, A: Allocator> UniqueArc<T, A> {
4855    /// Creates a new `UniqueArc` in the provided allocator.
4856    ///
4857    /// Weak references to this `UniqueArc` can be created with [`UniqueArc::downgrade`]. Upgrading
4858    /// these weak references will fail before the `UniqueArc` has been converted into an [`Arc`].
4859    /// After converting the `UniqueArc` into an [`Arc`], any weak references created beforehand will
4860    /// point to the new [`Arc`].
4861    #[cfg(not(no_global_oom_handling))]
4862    #[unstable(feature = "unique_rc_arc", issue = "112566")]
4863    #[must_use]
4864    // #[unstable(feature = "allocator_api", issue = "32838")]
4865    pub fn new_in(data: T, alloc: A) -> Self {
4866        let (ptr, alloc) = Box::into_unique(Box::new_in(
4867            ArcInner {
4868                strong: atomic::AtomicUsize::new(0),
4869                // keep one weak reference so if all the weak pointers that are created are dropped
4870                // the UniqueArc still stays valid.
4871                weak: atomic::AtomicUsize::new(1),
4872                data,
4873            },
4874            alloc,
4875        ));
4876        Self { ptr: ptr.into(), _marker: PhantomData, _marker2: PhantomData, alloc }
4877    }
4878}
4879
4880impl<T: ?Sized, A: Allocator> UniqueArc<T, A> {
4881    /// Converts the `UniqueArc` into a regular [`Arc`].
4882    ///
4883    /// This consumes the `UniqueArc` and returns a regular [`Arc`] that contains the `value` that
4884    /// is passed to `into_arc`.
4885    ///
4886    /// Any weak references created before this method is called can now be upgraded to strong
4887    /// references.
4888    #[unstable(feature = "unique_rc_arc", issue = "112566")]
4889    #[must_use]
4890    pub fn into_arc(this: Self) -> Arc<T, A> {
4891        let this = ManuallyDrop::new(this);
4892
4893        // Move the allocator out.
4894        // SAFETY: `this.alloc` will not be accessed again, nor dropped because it is in
4895        // a `ManuallyDrop`.
4896        let alloc: A = unsafe { ptr::read(&this.alloc) };
4897
4898        // SAFETY: This pointer was allocated at creation time so we know it is valid.
4899        unsafe {
4900            // Convert our weak reference into a strong reference
4901            (*this.ptr.as_ptr()).strong.store(1, Release);
4902            Arc::from_inner_in(this.ptr, alloc)
4903        }
4904    }
4905
4906    #[cfg(not(no_global_oom_handling))]
4907    fn weak_count(this: &Self) -> usize {
4908        this.inner().weak.load(Acquire) - 1
4909    }
4910
4911    #[cfg(not(no_global_oom_handling))]
4912    fn inner(&self) -> &ArcInner<T> {
4913        // SAFETY: while this UniqueArc is alive we're guaranteed that the inner pointer is valid.
4914        unsafe { self.ptr.as_ref() }
4915    }
4916
4917    #[cfg(not(no_global_oom_handling))]
4918    fn as_ptr(this: &Self) -> *const T {
4919        let ptr: *mut ArcInner<T> = NonNull::as_ptr(this.ptr);
4920
4921        // SAFETY: This cannot go through Deref::deref or UniqueArc::inner because
4922        // this is required to retain raw/mut provenance such that e.g. `get_mut` can
4923        // write through the pointer after the Rc is recovered through `from_raw`.
4924        unsafe { &raw mut (*ptr).data }
4925    }
4926
4927    #[inline]
4928    #[cfg(not(no_global_oom_handling))]
4929    fn into_inner_with_allocator(this: Self) -> (NonNull<ArcInner<T>>, A) {
4930        let this = mem::ManuallyDrop::new(this);
4931        (this.ptr, unsafe { ptr::read(&this.alloc) })
4932    }
4933
4934    #[inline]
4935    #[cfg(not(no_global_oom_handling))]
4936    unsafe fn from_inner_in(ptr: NonNull<ArcInner<T>>, alloc: A) -> Self {
4937        Self { ptr, _marker: PhantomData, _marker2: PhantomData, alloc }
4938    }
4939}
4940
4941impl<T: ?Sized, A: AllocatorClone> UniqueArc<T, A> {
4942    /// Creates a new weak reference to the `UniqueArc`.
4943    ///
4944    /// Attempting to upgrade this weak reference will fail before the `UniqueArc` has been converted
4945    /// to a [`Arc`] using [`UniqueArc::into_arc`].
4946    #[unstable(feature = "unique_rc_arc", issue = "112566")]
4947    #[must_use]
4948    pub fn downgrade(this: &Self) -> Weak<T, A> {
4949        // Using a relaxed ordering is alright here, as knowledge of the
4950        // original reference prevents other threads from erroneously deleting
4951        // the object or converting the object to a normal `Arc<T, A>`.
4952        //
4953        // Note that we don't need to test if the weak counter is locked because there
4954        // are no such operations like `Arc::get_mut` or `Arc::make_mut` that will lock
4955        // the weak counter.
4956        //
4957        // SAFETY: This pointer was allocated at creation time so we know it is valid.
4958        let old_size = unsafe { (*this.ptr.as_ptr()).weak.fetch_add(1, Relaxed) };
4959
4960        // See comments in Arc::clone() for why we do this (for mem::forget).
4961        if old_size > MAX_REFCOUNT {
4962            abort();
4963        }
4964
4965        Weak { ptr: this.ptr, alloc: this.alloc.clone() }
4966    }
4967}
4968
4969#[cfg(not(no_global_oom_handling))]
4970impl<T, A: Allocator> UniqueArc<mem::MaybeUninit<T>, A> {
4971    unsafe fn assume_init(self) -> UniqueArc<T, A> {
4972        let (ptr, alloc) = UniqueArc::into_inner_with_allocator(self);
4973        unsafe { UniqueArc::from_inner_in(ptr.cast(), alloc) }
4974    }
4975}
4976
4977#[unstable(feature = "unique_rc_arc", issue = "112566")]
4978impl<T: ?Sized, A: Allocator> Deref for UniqueArc<T, A> {
4979    type Target = T;
4980
4981    fn deref(&self) -> &T {
4982        // SAFETY: This pointer was allocated at creation time so we know it is valid.
4983        unsafe { &self.ptr.as_ref().data }
4984    }
4985}
4986
4987// #[unstable(feature = "unique_rc_arc", issue = "112566")]
4988#[unstable(feature = "pin_coerce_unsized_trait", issue = "150112")]
4989unsafe impl<T: ?Sized, A: Allocator + 'static> PinSafePointer for UniqueArc<T, A> {}
4990
4991#[unstable(feature = "unique_rc_arc", issue = "112566")]
4992impl<T: ?Sized, A: Allocator> DerefMut for UniqueArc<T, A> {
4993    fn deref_mut(&mut self) -> &mut T {
4994        // SAFETY: This pointer was allocated at creation time so we know it is valid. We know we
4995        // have unique ownership and therefore it's safe to make a mutable reference because
4996        // `UniqueArc` owns the only strong reference to itself.
4997        // We also need to be careful to only create a mutable reference to the `data` field,
4998        // as a mutable reference to the entire `ArcInner` would assert uniqueness over the
4999        // ref count fields too, invalidating any attempt by `Weak`s to access the ref count.
5000        unsafe { &mut (*self.ptr.as_ptr()).data }
5001    }
5002}
5003
5004#[unstable(feature = "unique_rc_arc", issue = "112566")]
5005// #[unstable(feature = "deref_pure_trait", issue = "87121")]
5006unsafe impl<T: ?Sized, A: Allocator> DerefPure for UniqueArc<T, A> {}
5007
5008#[unstable(feature = "unique_rc_arc", issue = "112566")]
5009unsafe impl<#[may_dangle] T: ?Sized, A: Allocator> Drop for UniqueArc<T, A> {
5010    fn drop(&mut self) {
5011        // See `Arc::drop_slow` which drops an `Arc` with a strong count of 0.
5012        // SAFETY: This pointer was allocated at creation time so we know it is valid.
5013        let _weak = Weak { ptr: self.ptr, alloc: &self.alloc };
5014
5015        unsafe { ptr::drop_in_place(&mut (*self.ptr.as_ptr()).data) };
5016    }
5017}
5018
5019#[unstable(feature = "allocator_api", issue = "32838")]
5020unsafe impl<T: ?Sized + Allocator, A: Allocator> Allocator for Arc<T, A> {
5021    #[inline]
5022    fn allocate(&self, layout: Layout) -> Result<NonNull<[u8]>, AllocError> {
5023        (**self).allocate(layout)
5024    }
5025
5026    #[inline]
5027    fn allocate_zeroed(&self, layout: Layout) -> Result<NonNull<[u8]>, AllocError> {
5028        (**self).allocate_zeroed(layout)
5029    }
5030
5031    #[inline]
5032    unsafe fn deallocate(&self, ptr: NonNull<u8>, layout: Layout) {
5033        // SAFETY: the safety contract must be upheld by the caller
5034        unsafe { (**self).deallocate(ptr, layout) }
5035    }
5036
5037    #[inline]
5038    unsafe fn grow(
5039        &self,
5040        ptr: NonNull<u8>,
5041        old_layout: Layout,
5042        new_layout: Layout,
5043    ) -> Result<NonNull<[u8]>, AllocError> {
5044        // SAFETY: the safety contract must be upheld by the caller
5045        unsafe { (**self).grow(ptr, old_layout, new_layout) }
5046    }
5047
5048    #[inline]
5049    unsafe fn grow_zeroed(
5050        &self,
5051        ptr: NonNull<u8>,
5052        old_layout: Layout,
5053        new_layout: Layout,
5054    ) -> Result<NonNull<[u8]>, AllocError> {
5055        // SAFETY: the safety contract must be upheld by the caller
5056        unsafe { (**self).grow_zeroed(ptr, old_layout, new_layout) }
5057    }
5058
5059    #[inline]
5060    unsafe fn shrink(
5061        &self,
5062        ptr: NonNull<u8>,
5063        old_layout: Layout,
5064        new_layout: Layout,
5065    ) -> Result<NonNull<[u8]>, AllocError> {
5066        // SAFETY: the safety contract must be upheld by the caller
5067        unsafe { (**self).shrink(ptr, old_layout, new_layout) }
5068    }
5069}
5070
5071#[unstable(feature = "allocator_api", issue = "32838")]
5072unsafe impl<T: Allocator + ?Sized, A: AllocatorClone> AllocatorClone for Arc<T, A> {}