core/cell.rs
1//! Shareable mutable containers.
2//!
3//! Rust memory safety is based on this rule: Given an object `T`, it is only possible to
4//! have one of the following:
5//!
6//! - Several immutable references (`&T`) to the object (also known as **aliasing**).
7//! - One mutable reference (`&mut T`) to the object (also known as **mutability**).
8//!
9//! This is enforced by the Rust compiler. However, there are situations where this rule is not
10//! flexible enough. Sometimes it is required to have multiple references to an object and yet
11//! mutate it.
12//!
13//! Shareable mutable containers exist to permit mutability in a controlled manner, even in the
14//! presence of aliasing. [`Cell<T>`], [`RefCell<T>`], and [`OnceCell<T>`] allow doing this in
15//! a single-threaded way—they do not implement [`Sync`]. (If you need to do aliasing and
16//! mutation among multiple threads, [`Mutex<T>`], [`RwLock<T>`], [`OnceLock<T>`] or [`atomic`]
17//! types are the correct data structures to do so).
18//!
19//! Values of the `Cell<T>`, `RefCell<T>`, and `OnceCell<T>` types may be mutated through shared
20//! references (i.e. the common `&T` type), whereas most Rust types can only be mutated through
21//! unique (`&mut T`) references. We say these cell types provide 'interior mutability'
22//! (mutable via `&T`), in contrast with typical Rust types that exhibit 'inherited mutability'
23//! (mutable only via `&mut T`).
24//!
25//! Cell types come in four flavors: `Cell<T>`, `RefCell<T>`, `OnceCell<T>`, and `LazyCell<T>`.
26//! Each provides a different way of providing safe interior mutability.
27//!
28//! ## `Cell<T>`
29//!
30//! [`Cell<T>`] implements interior mutability by moving values in and out of the cell. That is, an
31//! `&mut T` to the inner value can never be obtained, and the value itself cannot be directly
32//! obtained without replacing it with something else. Both of these rules ensure that there is
33//! never more than one reference pointing to the inner value. This type provides the following
34//! methods:
35//!
36//! - For types that implement [`Copy`], the [`get`](Cell::get) method retrieves the current
37//! interior value by duplicating it.
38//! - For types that implement [`Default`], the [`take`](Cell::take) method replaces the current
39//! interior value with [`Default::default()`] and returns the replaced value.
40//! - All types have:
41//! - [`replace`](Cell::replace): replaces the current interior value and returns the replaced
42//! value.
43//! - [`into_inner`](Cell::into_inner): this method consumes the `Cell<T>` and returns the
44//! interior value.
45//! - [`set`](Cell::set): this method replaces the interior value, dropping the replaced value.
46//!
47//! `Cell<T>` is typically used for more simple types where copying or moving values isn't too
48//! resource intensive (e.g. numbers), and should usually be preferred over other cell types when
49//! possible. For larger and non-copy types, `RefCell` provides some advantages.
50//!
51//! ## `RefCell<T>`
52//!
53//! [`RefCell<T>`] uses Rust's lifetimes to implement "dynamic borrowing", a process whereby one can
54//! claim temporary, exclusive, mutable access to the inner value. Borrows for `RefCell<T>`s are
55//! tracked at _runtime_, unlike Rust's native reference types which are entirely tracked
56//! statically, at compile time.
57//!
58//! An immutable reference to a `RefCell`'s inner value (`&T`) can be obtained with
59//! [`borrow`](`RefCell::borrow`), and a mutable borrow (`&mut T`) can be obtained with
60//! [`borrow_mut`](`RefCell::borrow_mut`). When these functions are called, they first verify that
61//! Rust's borrow rules will be satisfied: any number of immutable borrows are allowed or a
62//! single mutable borrow is allowed, but never both. If a borrow is attempted that would violate
63//! these rules, the thread will panic.
64//!
65//! The corresponding [`Sync`] version of `RefCell<T>` is [`RwLock<T>`].
66//!
67//! ## `OnceCell<T>`
68//!
69//! [`OnceCell<T>`] is somewhat of a hybrid of `Cell` and `RefCell` that works for values that
70//! typically only need to be set once. This means that a reference `&T` can be obtained without
71//! moving or copying the inner value (unlike `Cell`) but also without runtime checks (unlike
72//! `RefCell`). However, its value can also not be updated once set unless you have a mutable
73//! reference to the `OnceCell`.
74//!
75//! `OnceCell` provides the following methods:
76//!
77//! - [`get`](OnceCell::get): obtain a reference to the inner value
78//! - [`set`](OnceCell::set): set the inner value if it is unset (returns a `Result`)
79//! - [`get_or_init`](OnceCell::get_or_init): return the inner value, initializing it if needed
80//! - [`get_mut`](OnceCell::get_mut): provide a mutable reference to the inner value, only available
81//! if you have a mutable reference to the cell itself.
82//!
83//! The corresponding [`Sync`] version of `OnceCell<T>` is [`OnceLock<T>`].
84//!
85//! ## `LazyCell<T, F>`
86//!
87//! A common pattern with OnceCell is, for a given OnceCell, to use the same function on every
88//! call to [`OnceCell::get_or_init`] with that cell. This is what is offered by [`LazyCell`],
89//! which pairs cells of `T` with functions of `F`, and always calls `F` before it yields `&T`.
90//! This happens implicitly by simply attempting to dereference the LazyCell to get its contents,
91//! so its use is much more transparent with a place which has been initialized by a constant.
92//!
93//! More complicated patterns that don't fit this description can be built on `OnceCell<T>` instead.
94//!
95//! `LazyCell` works by providing an implementation of `impl Deref` that calls the function,
96//! so you can just use it by dereference (e.g. `*lazy_cell` or `lazy_cell.deref()`).
97//!
98//! The corresponding [`Sync`] version of `LazyCell<T, F>` is [`LazyLock<T, F>`].
99//!
100//! # When to choose interior mutability
101//!
102//! The more common inherited mutability, where one must have unique access to mutate a value, is
103//! one of the key language elements that enables Rust to reason strongly about pointer aliasing,
104//! statically preventing crash bugs. Because of that, inherited mutability is preferred, and
105//! interior mutability is something of a last resort. Since cell types enable mutation where it
106//! would otherwise be disallowed though, there are occasions when interior mutability might be
107//! appropriate, or even *must* be used, e.g.
108//!
109//! * Introducing mutability 'inside' of something immutable
110//! * Implementation details of logically-immutable methods.
111//! * Mutating implementations of [`Clone`].
112//!
113//! ## Introducing mutability 'inside' of something immutable
114//!
115//! Many shared smart pointer types, including [`Rc<T>`] and [`Arc<T>`], provide containers that can
116//! be cloned and shared between multiple parties. Because the contained values may be
117//! multiply-aliased, they can only be borrowed with `&`, not `&mut`. Without cells it would be
118//! impossible to mutate data inside of these smart pointers at all.
119//!
120//! It's very common then to put a `RefCell<T>` inside shared pointer types to reintroduce
121//! mutability:
122//!
123//! ```
124//! use std::cell::{RefCell, RefMut};
125//! use std::collections::HashMap;
126//! use std::rc::Rc;
127//!
128//! fn main() {
129//! let shared_map: Rc<RefCell<_>> = Rc::new(RefCell::new(HashMap::new()));
130//! // Create a new block to limit the scope of the dynamic borrow
131//! {
132//! let mut map: RefMut<'_, _> = shared_map.borrow_mut();
133//! map.insert("africa", 92388);
134//! map.insert("kyoto", 11837);
135//! map.insert("piccadilly", 11826);
136//! map.insert("marbles", 38);
137//! }
138//!
139//! // Note that if we had not let the previous borrow of the cache fall out
140//! // of scope then the subsequent borrow would cause a dynamic thread panic.
141//! // This is the major hazard of using `RefCell`.
142//! let total: i32 = shared_map.borrow().values().sum();
143//! println!("{total}");
144//! }
145//! ```
146//!
147//! Note that this example uses `Rc<T>` and not `Arc<T>`. `RefCell<T>`s are for single-threaded
148//! scenarios. Consider using [`RwLock<T>`] or [`Mutex<T>`] if you need shared mutability in a
149//! multi-threaded situation.
150//!
151//! ## Implementation details of logically-immutable methods
152//!
153//! Occasionally it may be desirable not to expose in an API that there is mutation happening
154//! "under the hood". This may be because logically the operation is immutable, but e.g., caching
155//! forces the implementation to perform mutation; or because you must employ mutation to implement
156//! a trait method that was originally defined to take `&self`.
157//!
158//! ```
159//! # #![allow(dead_code)]
160//! use std::cell::OnceCell;
161//!
162//! struct Graph {
163//! edges: Vec<(i32, i32)>,
164//! span_tree_cache: OnceCell<Vec<(i32, i32)>>
165//! }
166//!
167//! impl Graph {
168//! fn minimum_spanning_tree(&self) -> Vec<(i32, i32)> {
169//! self.span_tree_cache
170//! .get_or_init(|| self.calc_span_tree())
171//! .clone()
172//! }
173//!
174//! fn calc_span_tree(&self) -> Vec<(i32, i32)> {
175//! // Expensive computation goes here
176//! vec![]
177//! }
178//! }
179//! ```
180//!
181//! ## Mutating implementations of `Clone`
182//!
183//! This is simply a special - but common - case of the previous: hiding mutability for operations
184//! that appear to be immutable. The [`clone`](Clone::clone) method is expected to not change the
185//! source value, and is declared to take `&self`, not `&mut self`. Therefore, any mutation that
186//! happens in the `clone` method must use cell types. For example, [`Rc<T>`] maintains its
187//! reference counts within a `Cell<T>`.
188//!
189//! ```
190//! use std::cell::Cell;
191//! use std::ptr::NonNull;
192//! use std::process::abort;
193//! use std::marker::PhantomData;
194//!
195//! struct Rc<T: ?Sized> {
196//! ptr: NonNull<RcInner<T>>,
197//! phantom: PhantomData<RcInner<T>>,
198//! }
199//!
200//! struct RcInner<T: ?Sized> {
201//! strong: Cell<usize>,
202//! refcount: Cell<usize>,
203//! value: T,
204//! }
205//!
206//! impl<T: ?Sized> Clone for Rc<T> {
207//! fn clone(&self) -> Rc<T> {
208//! self.inc_strong();
209//! Rc {
210//! ptr: self.ptr,
211//! phantom: PhantomData,
212//! }
213//! }
214//! }
215//!
216//! trait RcInnerPtr<T: ?Sized> {
217//!
218//! fn inner(&self) -> &RcInner<T>;
219//!
220//! fn strong(&self) -> usize {
221//! self.inner().strong.get()
222//! }
223//!
224//! fn inc_strong(&self) {
225//! self.inner()
226//! .strong
227//! .set(self.strong()
228//! .checked_add(1)
229//! .unwrap_or_else(|| abort() ));
230//! }
231//! }
232//!
233//! impl<T: ?Sized> RcInnerPtr<T> for Rc<T> {
234//! fn inner(&self) -> &RcInner<T> {
235//! unsafe {
236//! self.ptr.as_ref()
237//! }
238//! }
239//! }
240//! ```
241//!
242//! [`Arc<T>`]: ../../std/sync/struct.Arc.html
243//! [`Rc<T>`]: ../../std/rc/struct.Rc.html
244//! [`RwLock<T>`]: ../../std/sync/struct.RwLock.html
245//! [`Mutex<T>`]: ../../std/sync/struct.Mutex.html
246//! [`OnceLock<T>`]: ../../std/sync/struct.OnceLock.html
247//! [`LazyLock<T, F>`]: ../../std/sync/struct.LazyLock.html
248//! [`Sync`]: ../../std/marker/trait.Sync.html
249//! [`atomic`]: crate::sync::atomic
250
251#![stable(feature = "rust1", since = "1.0.0")]
252
253use crate::cmp::Ordering;
254use crate::fmt::{self, Debug, Display};
255use crate::marker::{PhantomData, PointerLike, Unsize};
256use crate::mem;
257use crate::ops::{CoerceUnsized, Deref, DerefMut, DerefPure, DispatchFromDyn};
258use crate::pin::PinCoerceUnsized;
259use crate::ptr::{self, NonNull};
260
261mod lazy;
262mod once;
263
264#[stable(feature = "lazy_cell", since = "1.80.0")]
265pub use lazy::LazyCell;
266#[stable(feature = "once_cell", since = "1.70.0")]
267pub use once::OnceCell;
268
269/// A mutable memory location.
270///
271/// # Memory layout
272///
273/// `Cell<T>` has the same [memory layout and caveats as
274/// `UnsafeCell<T>`](UnsafeCell#memory-layout). In particular, this means that
275/// `Cell<T>` has the same in-memory representation as its inner type `T`.
276///
277/// # Examples
278///
279/// In this example, you can see that `Cell<T>` enables mutation inside an
280/// immutable struct. In other words, it enables "interior mutability".
281///
282/// ```
283/// use std::cell::Cell;
284///
285/// struct SomeStruct {
286/// regular_field: u8,
287/// special_field: Cell<u8>,
288/// }
289///
290/// let my_struct = SomeStruct {
291/// regular_field: 0,
292/// special_field: Cell::new(1),
293/// };
294///
295/// let new_value = 100;
296///
297/// // ERROR: `my_struct` is immutable
298/// // my_struct.regular_field = new_value;
299///
300/// // WORKS: although `my_struct` is immutable, `special_field` is a `Cell`,
301/// // which can always be mutated
302/// my_struct.special_field.set(new_value);
303/// assert_eq!(my_struct.special_field.get(), new_value);
304/// ```
305///
306/// See the [module-level documentation](self) for more.
307#[rustc_diagnostic_item = "Cell"]
308#[stable(feature = "rust1", since = "1.0.0")]
309#[repr(transparent)]
310#[rustc_pub_transparent]
311pub struct Cell<T: ?Sized> {
312 value: UnsafeCell<T>,
313}
314
315#[stable(feature = "rust1", since = "1.0.0")]
316unsafe impl<T: ?Sized> Send for Cell<T> where T: Send {}
317
318// Note that this negative impl isn't strictly necessary for correctness,
319// as `Cell` wraps `UnsafeCell`, which is itself `!Sync`.
320// However, given how important `Cell`'s `!Sync`-ness is,
321// having an explicit negative impl is nice for documentation purposes
322// and results in nicer error messages.
323#[stable(feature = "rust1", since = "1.0.0")]
324impl<T: ?Sized> !Sync for Cell<T> {}
325
326#[stable(feature = "rust1", since = "1.0.0")]
327impl<T: Copy> Clone for Cell<T> {
328 #[inline]
329 fn clone(&self) -> Cell<T> {
330 Cell::new(self.get())
331 }
332}
333
334#[stable(feature = "rust1", since = "1.0.0")]
335impl<T: Default> Default for Cell<T> {
336 /// Creates a `Cell<T>`, with the `Default` value for T.
337 #[inline]
338 fn default() -> Cell<T> {
339 Cell::new(Default::default())
340 }
341}
342
343#[stable(feature = "rust1", since = "1.0.0")]
344impl<T: PartialEq + Copy> PartialEq for Cell<T> {
345 #[inline]
346 fn eq(&self, other: &Cell<T>) -> bool {
347 self.get() == other.get()
348 }
349}
350
351#[stable(feature = "cell_eq", since = "1.2.0")]
352impl<T: Eq + Copy> Eq for Cell<T> {}
353
354#[stable(feature = "cell_ord", since = "1.10.0")]
355impl<T: PartialOrd + Copy> PartialOrd for Cell<T> {
356 #[inline]
357 fn partial_cmp(&self, other: &Cell<T>) -> Option<Ordering> {
358 self.get().partial_cmp(&other.get())
359 }
360
361 #[inline]
362 fn lt(&self, other: &Cell<T>) -> bool {
363 self.get() < other.get()
364 }
365
366 #[inline]
367 fn le(&self, other: &Cell<T>) -> bool {
368 self.get() <= other.get()
369 }
370
371 #[inline]
372 fn gt(&self, other: &Cell<T>) -> bool {
373 self.get() > other.get()
374 }
375
376 #[inline]
377 fn ge(&self, other: &Cell<T>) -> bool {
378 self.get() >= other.get()
379 }
380}
381
382#[stable(feature = "cell_ord", since = "1.10.0")]
383impl<T: Ord + Copy> Ord for Cell<T> {
384 #[inline]
385 fn cmp(&self, other: &Cell<T>) -> Ordering {
386 self.get().cmp(&other.get())
387 }
388}
389
390#[stable(feature = "cell_from", since = "1.12.0")]
391impl<T> From<T> for Cell<T> {
392 /// Creates a new `Cell<T>` containing the given value.
393 fn from(t: T) -> Cell<T> {
394 Cell::new(t)
395 }
396}
397
398impl<T> Cell<T> {
399 /// Creates a new `Cell` containing the given value.
400 ///
401 /// # Examples
402 ///
403 /// ```
404 /// use std::cell::Cell;
405 ///
406 /// let c = Cell::new(5);
407 /// ```
408 #[stable(feature = "rust1", since = "1.0.0")]
409 #[rustc_const_stable(feature = "const_cell_new", since = "1.24.0")]
410 #[inline]
411 pub const fn new(value: T) -> Cell<T> {
412 Cell { value: UnsafeCell::new(value) }
413 }
414
415 /// Sets the contained value.
416 ///
417 /// # Examples
418 ///
419 /// ```
420 /// use std::cell::Cell;
421 ///
422 /// let c = Cell::new(5);
423 ///
424 /// c.set(10);
425 /// ```
426 #[inline]
427 #[stable(feature = "rust1", since = "1.0.0")]
428 pub fn set(&self, val: T) {
429 self.replace(val);
430 }
431
432 /// Swaps the values of two `Cell`s.
433 ///
434 /// The difference with `std::mem::swap` is that this function doesn't
435 /// require a `&mut` reference.
436 ///
437 /// # Panics
438 ///
439 /// This function will panic if `self` and `other` are different `Cell`s that partially overlap.
440 /// (Using just standard library methods, it is impossible to create such partially overlapping `Cell`s.
441 /// However, unsafe code is allowed to e.g. create two `&Cell<[i32; 2]>` that partially overlap.)
442 ///
443 /// # Examples
444 ///
445 /// ```
446 /// use std::cell::Cell;
447 ///
448 /// let c1 = Cell::new(5i32);
449 /// let c2 = Cell::new(10i32);
450 /// c1.swap(&c2);
451 /// assert_eq!(10, c1.get());
452 /// assert_eq!(5, c2.get());
453 /// ```
454 #[inline]
455 #[stable(feature = "move_cell", since = "1.17.0")]
456 pub fn swap(&self, other: &Self) {
457 // This function documents that it *will* panic, and intrinsics::is_nonoverlapping doesn't
458 // do the check in const, so trying to use it here would be inviting unnecessary fragility.
459 fn is_nonoverlapping<T>(src: *const T, dst: *const T) -> bool {
460 let src_usize = src.addr();
461 let dst_usize = dst.addr();
462 let diff = src_usize.abs_diff(dst_usize);
463 diff >= size_of::<T>()
464 }
465
466 if ptr::eq(self, other) {
467 // Swapping wouldn't change anything.
468 return;
469 }
470 if !is_nonoverlapping(self, other) {
471 // See <https://github.com/rust-lang/rust/issues/80778> for why we need to stop here.
472 panic!("`Cell::swap` on overlapping non-identical `Cell`s");
473 }
474 // SAFETY: This can be risky if called from separate threads, but `Cell`
475 // is `!Sync` so this won't happen. This also won't invalidate any
476 // pointers since `Cell` makes sure nothing else will be pointing into
477 // either of these `Cell`s. We also excluded shenanigans like partially overlapping `Cell`s,
478 // so `swap` will just properly copy two full values of type `T` back and forth.
479 unsafe {
480 mem::swap(&mut *self.value.get(), &mut *other.value.get());
481 }
482 }
483
484 /// Replaces the contained value with `val`, and returns the old contained value.
485 ///
486 /// # Examples
487 ///
488 /// ```
489 /// use std::cell::Cell;
490 ///
491 /// let cell = Cell::new(5);
492 /// assert_eq!(cell.get(), 5);
493 /// assert_eq!(cell.replace(10), 5);
494 /// assert_eq!(cell.get(), 10);
495 /// ```
496 #[inline]
497 #[stable(feature = "move_cell", since = "1.17.0")]
498 #[rustc_const_stable(feature = "const_cell", since = "CURRENT_RUSTC_VERSION")]
499 #[rustc_confusables("swap")]
500 pub const fn replace(&self, val: T) -> T {
501 // SAFETY: This can cause data races if called from a separate thread,
502 // but `Cell` is `!Sync` so this won't happen.
503 mem::replace(unsafe { &mut *self.value.get() }, val)
504 }
505
506 /// Unwraps the value, consuming the cell.
507 ///
508 /// # Examples
509 ///
510 /// ```
511 /// use std::cell::Cell;
512 ///
513 /// let c = Cell::new(5);
514 /// let five = c.into_inner();
515 ///
516 /// assert_eq!(five, 5);
517 /// ```
518 #[stable(feature = "move_cell", since = "1.17.0")]
519 #[rustc_const_stable(feature = "const_cell_into_inner", since = "1.83.0")]
520 #[rustc_allow_const_fn_unstable(const_precise_live_drops)]
521 pub const fn into_inner(self) -> T {
522 self.value.into_inner()
523 }
524}
525
526impl<T: Copy> Cell<T> {
527 /// Returns a copy of the contained value.
528 ///
529 /// # Examples
530 ///
531 /// ```
532 /// use std::cell::Cell;
533 ///
534 /// let c = Cell::new(5);
535 ///
536 /// let five = c.get();
537 /// ```
538 #[inline]
539 #[stable(feature = "rust1", since = "1.0.0")]
540 #[rustc_const_stable(feature = "const_cell", since = "CURRENT_RUSTC_VERSION")]
541 pub const fn get(&self) -> T {
542 // SAFETY: This can cause data races if called from a separate thread,
543 // but `Cell` is `!Sync` so this won't happen.
544 unsafe { *self.value.get() }
545 }
546
547 /// Updates the contained value using a function.
548 ///
549 /// # Examples
550 ///
551 /// ```
552 /// #![feature(cell_update)]
553 ///
554 /// use std::cell::Cell;
555 ///
556 /// let c = Cell::new(5);
557 /// c.update(|x| x + 1);
558 /// assert_eq!(c.get(), 6);
559 /// ```
560 #[inline]
561 #[unstable(feature = "cell_update", issue = "50186")]
562 pub fn update(&self, f: impl FnOnce(T) -> T) {
563 let old = self.get();
564 self.set(f(old));
565 }
566}
567
568impl<T: ?Sized> Cell<T> {
569 /// Returns a raw pointer to the underlying data in this cell.
570 ///
571 /// # Examples
572 ///
573 /// ```
574 /// use std::cell::Cell;
575 ///
576 /// let c = Cell::new(5);
577 ///
578 /// let ptr = c.as_ptr();
579 /// ```
580 #[inline]
581 #[stable(feature = "cell_as_ptr", since = "1.12.0")]
582 #[rustc_const_stable(feature = "const_cell_as_ptr", since = "1.32.0")]
583 #[rustc_as_ptr]
584 #[rustc_never_returns_null_ptr]
585 pub const fn as_ptr(&self) -> *mut T {
586 self.value.get()
587 }
588
589 /// Returns a mutable reference to the underlying data.
590 ///
591 /// This call borrows `Cell` mutably (at compile-time) which guarantees
592 /// that we possess the only reference.
593 ///
594 /// However be cautious: this method expects `self` to be mutable, which is
595 /// generally not the case when using a `Cell`. If you require interior
596 /// mutability by reference, consider using `RefCell` which provides
597 /// run-time checked mutable borrows through its [`borrow_mut`] method.
598 ///
599 /// [`borrow_mut`]: RefCell::borrow_mut()
600 ///
601 /// # Examples
602 ///
603 /// ```
604 /// use std::cell::Cell;
605 ///
606 /// let mut c = Cell::new(5);
607 /// *c.get_mut() += 1;
608 ///
609 /// assert_eq!(c.get(), 6);
610 /// ```
611 #[inline]
612 #[stable(feature = "cell_get_mut", since = "1.11.0")]
613 #[rustc_const_stable(feature = "const_cell", since = "CURRENT_RUSTC_VERSION")]
614 pub const fn get_mut(&mut self) -> &mut T {
615 self.value.get_mut()
616 }
617
618 /// Returns a `&Cell<T>` from a `&mut T`
619 ///
620 /// # Examples
621 ///
622 /// ```
623 /// use std::cell::Cell;
624 ///
625 /// let slice: &mut [i32] = &mut [1, 2, 3];
626 /// let cell_slice: &Cell<[i32]> = Cell::from_mut(slice);
627 /// let slice_cell: &[Cell<i32>] = cell_slice.as_slice_of_cells();
628 ///
629 /// assert_eq!(slice_cell.len(), 3);
630 /// ```
631 #[inline]
632 #[stable(feature = "as_cell", since = "1.37.0")]
633 #[rustc_const_stable(feature = "const_cell", since = "CURRENT_RUSTC_VERSION")]
634 pub const fn from_mut(t: &mut T) -> &Cell<T> {
635 // SAFETY: `&mut` ensures unique access.
636 unsafe { &*(t as *mut T as *const Cell<T>) }
637 }
638}
639
640impl<T: Default> Cell<T> {
641 /// Takes the value of the cell, leaving `Default::default()` in its place.
642 ///
643 /// # Examples
644 ///
645 /// ```
646 /// use std::cell::Cell;
647 ///
648 /// let c = Cell::new(5);
649 /// let five = c.take();
650 ///
651 /// assert_eq!(five, 5);
652 /// assert_eq!(c.into_inner(), 0);
653 /// ```
654 #[stable(feature = "move_cell", since = "1.17.0")]
655 pub fn take(&self) -> T {
656 self.replace(Default::default())
657 }
658}
659
660#[unstable(feature = "coerce_unsized", issue = "18598")]
661impl<T: CoerceUnsized<U>, U> CoerceUnsized<Cell<U>> for Cell<T> {}
662
663// Allow types that wrap `Cell` to also implement `DispatchFromDyn`
664// and become dyn-compatible method receivers.
665// Note that currently `Cell` itself cannot be a method receiver
666// because it does not implement Deref.
667// In other words:
668// `self: Cell<&Self>` won't work
669// `self: CellWrapper<Self>` becomes possible
670#[unstable(feature = "dispatch_from_dyn", issue = "none")]
671impl<T: DispatchFromDyn<U>, U> DispatchFromDyn<Cell<U>> for Cell<T> {}
672
673#[unstable(feature = "pointer_like_trait", issue = "none")]
674impl<T: PointerLike> PointerLike for Cell<T> {}
675
676impl<T> Cell<[T]> {
677 /// Returns a `&[Cell<T>]` from a `&Cell<[T]>`
678 ///
679 /// # Examples
680 ///
681 /// ```
682 /// use std::cell::Cell;
683 ///
684 /// let slice: &mut [i32] = &mut [1, 2, 3];
685 /// let cell_slice: &Cell<[i32]> = Cell::from_mut(slice);
686 /// let slice_cell: &[Cell<i32>] = cell_slice.as_slice_of_cells();
687 ///
688 /// assert_eq!(slice_cell.len(), 3);
689 /// ```
690 #[stable(feature = "as_cell", since = "1.37.0")]
691 #[rustc_const_stable(feature = "const_cell", since = "CURRENT_RUSTC_VERSION")]
692 pub const fn as_slice_of_cells(&self) -> &[Cell<T>] {
693 // SAFETY: `Cell<T>` has the same memory layout as `T`.
694 unsafe { &*(self as *const Cell<[T]> as *const [Cell<T>]) }
695 }
696}
697
698impl<T, const N: usize> Cell<[T; N]> {
699 /// Returns a `&[Cell<T>; N]` from a `&Cell<[T; N]>`
700 ///
701 /// # Examples
702 ///
703 /// ```
704 /// #![feature(as_array_of_cells)]
705 /// use std::cell::Cell;
706 ///
707 /// let mut array: [i32; 3] = [1, 2, 3];
708 /// let cell_array: &Cell<[i32; 3]> = Cell::from_mut(&mut array);
709 /// let array_cell: &[Cell<i32>; 3] = cell_array.as_array_of_cells();
710 /// ```
711 #[unstable(feature = "as_array_of_cells", issue = "88248")]
712 pub const fn as_array_of_cells(&self) -> &[Cell<T>; N] {
713 // SAFETY: `Cell<T>` has the same memory layout as `T`.
714 unsafe { &*(self as *const Cell<[T; N]> as *const [Cell<T>; N]) }
715 }
716}
717
718/// A mutable memory location with dynamically checked borrow rules
719///
720/// See the [module-level documentation](self) for more.
721#[rustc_diagnostic_item = "RefCell"]
722#[stable(feature = "rust1", since = "1.0.0")]
723pub struct RefCell<T: ?Sized> {
724 borrow: Cell<BorrowFlag>,
725 // Stores the location of the earliest currently active borrow.
726 // This gets updated whenever we go from having zero borrows
727 // to having a single borrow. When a borrow occurs, this gets included
728 // in the generated `BorrowError`/`BorrowMutError`
729 #[cfg(feature = "debug_refcell")]
730 borrowed_at: Cell<Option<&'static crate::panic::Location<'static>>>,
731 value: UnsafeCell<T>,
732}
733
734/// An error returned by [`RefCell::try_borrow`].
735#[stable(feature = "try_borrow", since = "1.13.0")]
736#[non_exhaustive]
737pub struct BorrowError {
738 #[cfg(feature = "debug_refcell")]
739 location: &'static crate::panic::Location<'static>,
740}
741
742#[stable(feature = "try_borrow", since = "1.13.0")]
743impl Debug for BorrowError {
744 fn fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result {
745 let mut builder = f.debug_struct("BorrowError");
746
747 #[cfg(feature = "debug_refcell")]
748 builder.field("location", self.location);
749
750 builder.finish()
751 }
752}
753
754#[stable(feature = "try_borrow", since = "1.13.0")]
755impl Display for BorrowError {
756 fn fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result {
757 Display::fmt("already mutably borrowed", f)
758 }
759}
760
761/// An error returned by [`RefCell::try_borrow_mut`].
762#[stable(feature = "try_borrow", since = "1.13.0")]
763#[non_exhaustive]
764pub struct BorrowMutError {
765 #[cfg(feature = "debug_refcell")]
766 location: &'static crate::panic::Location<'static>,
767}
768
769#[stable(feature = "try_borrow", since = "1.13.0")]
770impl Debug for BorrowMutError {
771 fn fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result {
772 let mut builder = f.debug_struct("BorrowMutError");
773
774 #[cfg(feature = "debug_refcell")]
775 builder.field("location", self.location);
776
777 builder.finish()
778 }
779}
780
781#[stable(feature = "try_borrow", since = "1.13.0")]
782impl Display for BorrowMutError {
783 fn fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result {
784 Display::fmt("already borrowed", f)
785 }
786}
787
788// This ensures the panicking code is outlined from `borrow_mut` for `RefCell`.
789#[cfg_attr(not(feature = "panic_immediate_abort"), inline(never))]
790#[track_caller]
791#[cold]
792fn panic_already_borrowed(err: BorrowMutError) -> ! {
793 panic!("already borrowed: {:?}", err)
794}
795
796// This ensures the panicking code is outlined from `borrow` for `RefCell`.
797#[cfg_attr(not(feature = "panic_immediate_abort"), inline(never))]
798#[track_caller]
799#[cold]
800fn panic_already_mutably_borrowed(err: BorrowError) -> ! {
801 panic!("already mutably borrowed: {:?}", err)
802}
803
804// Positive values represent the number of `Ref` active. Negative values
805// represent the number of `RefMut` active. Multiple `RefMut`s can only be
806// active at a time if they refer to distinct, nonoverlapping components of a
807// `RefCell` (e.g., different ranges of a slice).
808//
809// `Ref` and `RefMut` are both two words in size, and so there will likely never
810// be enough `Ref`s or `RefMut`s in existence to overflow half of the `usize`
811// range. Thus, a `BorrowFlag` will probably never overflow or underflow.
812// However, this is not a guarantee, as a pathological program could repeatedly
813// create and then mem::forget `Ref`s or `RefMut`s. Thus, all code must
814// explicitly check for overflow and underflow in order to avoid unsafety, or at
815// least behave correctly in the event that overflow or underflow happens (e.g.,
816// see BorrowRef::new).
817type BorrowFlag = isize;
818const UNUSED: BorrowFlag = 0;
819
820#[inline(always)]
821fn is_writing(x: BorrowFlag) -> bool {
822 x < UNUSED
823}
824
825#[inline(always)]
826fn is_reading(x: BorrowFlag) -> bool {
827 x > UNUSED
828}
829
830impl<T> RefCell<T> {
831 /// Creates a new `RefCell` containing `value`.
832 ///
833 /// # Examples
834 ///
835 /// ```
836 /// use std::cell::RefCell;
837 ///
838 /// let c = RefCell::new(5);
839 /// ```
840 #[stable(feature = "rust1", since = "1.0.0")]
841 #[rustc_const_stable(feature = "const_refcell_new", since = "1.24.0")]
842 #[inline]
843 pub const fn new(value: T) -> RefCell<T> {
844 RefCell {
845 value: UnsafeCell::new(value),
846 borrow: Cell::new(UNUSED),
847 #[cfg(feature = "debug_refcell")]
848 borrowed_at: Cell::new(None),
849 }
850 }
851
852 /// Consumes the `RefCell`, returning the wrapped value.
853 ///
854 /// # Examples
855 ///
856 /// ```
857 /// use std::cell::RefCell;
858 ///
859 /// let c = RefCell::new(5);
860 ///
861 /// let five = c.into_inner();
862 /// ```
863 #[stable(feature = "rust1", since = "1.0.0")]
864 #[rustc_const_stable(feature = "const_cell_into_inner", since = "1.83.0")]
865 #[rustc_allow_const_fn_unstable(const_precise_live_drops)]
866 #[inline]
867 pub const fn into_inner(self) -> T {
868 // Since this function takes `self` (the `RefCell`) by value, the
869 // compiler statically verifies that it is not currently borrowed.
870 self.value.into_inner()
871 }
872
873 /// Replaces the wrapped value with a new one, returning the old value,
874 /// without deinitializing either one.
875 ///
876 /// This function corresponds to [`std::mem::replace`](../mem/fn.replace.html).
877 ///
878 /// # Panics
879 ///
880 /// Panics if the value is currently borrowed.
881 ///
882 /// # Examples
883 ///
884 /// ```
885 /// use std::cell::RefCell;
886 /// let cell = RefCell::new(5);
887 /// let old_value = cell.replace(6);
888 /// assert_eq!(old_value, 5);
889 /// assert_eq!(cell, RefCell::new(6));
890 /// ```
891 #[inline]
892 #[stable(feature = "refcell_replace", since = "1.24.0")]
893 #[track_caller]
894 #[rustc_confusables("swap")]
895 pub fn replace(&self, t: T) -> T {
896 mem::replace(&mut *self.borrow_mut(), t)
897 }
898
899 /// Replaces the wrapped value with a new one computed from `f`, returning
900 /// the old value, without deinitializing either one.
901 ///
902 /// # Panics
903 ///
904 /// Panics if the value is currently borrowed.
905 ///
906 /// # Examples
907 ///
908 /// ```
909 /// use std::cell::RefCell;
910 /// let cell = RefCell::new(5);
911 /// let old_value = cell.replace_with(|&mut old| old + 1);
912 /// assert_eq!(old_value, 5);
913 /// assert_eq!(cell, RefCell::new(6));
914 /// ```
915 #[inline]
916 #[stable(feature = "refcell_replace_swap", since = "1.35.0")]
917 #[track_caller]
918 pub fn replace_with<F: FnOnce(&mut T) -> T>(&self, f: F) -> T {
919 let mut_borrow = &mut *self.borrow_mut();
920 let replacement = f(mut_borrow);
921 mem::replace(mut_borrow, replacement)
922 }
923
924 /// Swaps the wrapped value of `self` with the wrapped value of `other`,
925 /// without deinitializing either one.
926 ///
927 /// This function corresponds to [`std::mem::swap`](../mem/fn.swap.html).
928 ///
929 /// # Panics
930 ///
931 /// Panics if the value in either `RefCell` is currently borrowed, or
932 /// if `self` and `other` point to the same `RefCell`.
933 ///
934 /// # Examples
935 ///
936 /// ```
937 /// use std::cell::RefCell;
938 /// let c = RefCell::new(5);
939 /// let d = RefCell::new(6);
940 /// c.swap(&d);
941 /// assert_eq!(c, RefCell::new(6));
942 /// assert_eq!(d, RefCell::new(5));
943 /// ```
944 #[inline]
945 #[stable(feature = "refcell_swap", since = "1.24.0")]
946 pub fn swap(&self, other: &Self) {
947 mem::swap(&mut *self.borrow_mut(), &mut *other.borrow_mut())
948 }
949}
950
951impl<T: ?Sized> RefCell<T> {
952 /// Immutably borrows the wrapped value.
953 ///
954 /// The borrow lasts until the returned `Ref` exits scope. Multiple
955 /// immutable borrows can be taken out at the same time.
956 ///
957 /// # Panics
958 ///
959 /// Panics if the value is currently mutably borrowed. For a non-panicking variant, use
960 /// [`try_borrow`](#method.try_borrow).
961 ///
962 /// # Examples
963 ///
964 /// ```
965 /// use std::cell::RefCell;
966 ///
967 /// let c = RefCell::new(5);
968 ///
969 /// let borrowed_five = c.borrow();
970 /// let borrowed_five2 = c.borrow();
971 /// ```
972 ///
973 /// An example of panic:
974 ///
975 /// ```should_panic
976 /// use std::cell::RefCell;
977 ///
978 /// let c = RefCell::new(5);
979 ///
980 /// let m = c.borrow_mut();
981 /// let b = c.borrow(); // this causes a panic
982 /// ```
983 #[stable(feature = "rust1", since = "1.0.0")]
984 #[inline]
985 #[track_caller]
986 pub fn borrow(&self) -> Ref<'_, T> {
987 match self.try_borrow() {
988 Ok(b) => b,
989 Err(err) => panic_already_mutably_borrowed(err),
990 }
991 }
992
993 /// Immutably borrows the wrapped value, returning an error if the value is currently mutably
994 /// borrowed.
995 ///
996 /// The borrow lasts until the returned `Ref` exits scope. Multiple immutable borrows can be
997 /// taken out at the same time.
998 ///
999 /// This is the non-panicking variant of [`borrow`](#method.borrow).
1000 ///
1001 /// # Examples
1002 ///
1003 /// ```
1004 /// use std::cell::RefCell;
1005 ///
1006 /// let c = RefCell::new(5);
1007 ///
1008 /// {
1009 /// let m = c.borrow_mut();
1010 /// assert!(c.try_borrow().is_err());
1011 /// }
1012 ///
1013 /// {
1014 /// let m = c.borrow();
1015 /// assert!(c.try_borrow().is_ok());
1016 /// }
1017 /// ```
1018 #[stable(feature = "try_borrow", since = "1.13.0")]
1019 #[inline]
1020 #[cfg_attr(feature = "debug_refcell", track_caller)]
1021 pub fn try_borrow(&self) -> Result<Ref<'_, T>, BorrowError> {
1022 match BorrowRef::new(&self.borrow) {
1023 Some(b) => {
1024 #[cfg(feature = "debug_refcell")]
1025 {
1026 // `borrowed_at` is always the *first* active borrow
1027 if b.borrow.get() == 1 {
1028 self.borrowed_at.set(Some(crate::panic::Location::caller()));
1029 }
1030 }
1031
1032 // SAFETY: `BorrowRef` ensures that there is only immutable access
1033 // to the value while borrowed.
1034 let value = unsafe { NonNull::new_unchecked(self.value.get()) };
1035 Ok(Ref { value, borrow: b })
1036 }
1037 None => Err(BorrowError {
1038 // If a borrow occurred, then we must already have an outstanding borrow,
1039 // so `borrowed_at` will be `Some`
1040 #[cfg(feature = "debug_refcell")]
1041 location: self.borrowed_at.get().unwrap(),
1042 }),
1043 }
1044 }
1045
1046 /// Mutably borrows the wrapped value.
1047 ///
1048 /// The borrow lasts until the returned `RefMut` or all `RefMut`s derived
1049 /// from it exit scope. The value cannot be borrowed while this borrow is
1050 /// active.
1051 ///
1052 /// # Panics
1053 ///
1054 /// Panics if the value is currently borrowed. For a non-panicking variant, use
1055 /// [`try_borrow_mut`](#method.try_borrow_mut).
1056 ///
1057 /// # Examples
1058 ///
1059 /// ```
1060 /// use std::cell::RefCell;
1061 ///
1062 /// let c = RefCell::new("hello".to_owned());
1063 ///
1064 /// *c.borrow_mut() = "bonjour".to_owned();
1065 ///
1066 /// assert_eq!(&*c.borrow(), "bonjour");
1067 /// ```
1068 ///
1069 /// An example of panic:
1070 ///
1071 /// ```should_panic
1072 /// use std::cell::RefCell;
1073 ///
1074 /// let c = RefCell::new(5);
1075 /// let m = c.borrow();
1076 ///
1077 /// let b = c.borrow_mut(); // this causes a panic
1078 /// ```
1079 #[stable(feature = "rust1", since = "1.0.0")]
1080 #[inline]
1081 #[track_caller]
1082 pub fn borrow_mut(&self) -> RefMut<'_, T> {
1083 match self.try_borrow_mut() {
1084 Ok(b) => b,
1085 Err(err) => panic_already_borrowed(err),
1086 }
1087 }
1088
1089 /// Mutably borrows the wrapped value, returning an error if the value is currently borrowed.
1090 ///
1091 /// The borrow lasts until the returned `RefMut` or all `RefMut`s derived
1092 /// from it exit scope. The value cannot be borrowed while this borrow is
1093 /// active.
1094 ///
1095 /// This is the non-panicking variant of [`borrow_mut`](#method.borrow_mut).
1096 ///
1097 /// # Examples
1098 ///
1099 /// ```
1100 /// use std::cell::RefCell;
1101 ///
1102 /// let c = RefCell::new(5);
1103 ///
1104 /// {
1105 /// let m = c.borrow();
1106 /// assert!(c.try_borrow_mut().is_err());
1107 /// }
1108 ///
1109 /// assert!(c.try_borrow_mut().is_ok());
1110 /// ```
1111 #[stable(feature = "try_borrow", since = "1.13.0")]
1112 #[inline]
1113 #[cfg_attr(feature = "debug_refcell", track_caller)]
1114 pub fn try_borrow_mut(&self) -> Result<RefMut<'_, T>, BorrowMutError> {
1115 match BorrowRefMut::new(&self.borrow) {
1116 Some(b) => {
1117 #[cfg(feature = "debug_refcell")]
1118 {
1119 self.borrowed_at.set(Some(crate::panic::Location::caller()));
1120 }
1121
1122 // SAFETY: `BorrowRefMut` guarantees unique access.
1123 let value = unsafe { NonNull::new_unchecked(self.value.get()) };
1124 Ok(RefMut { value, borrow: b, marker: PhantomData })
1125 }
1126 None => Err(BorrowMutError {
1127 // If a borrow occurred, then we must already have an outstanding borrow,
1128 // so `borrowed_at` will be `Some`
1129 #[cfg(feature = "debug_refcell")]
1130 location: self.borrowed_at.get().unwrap(),
1131 }),
1132 }
1133 }
1134
1135 /// Returns a raw pointer to the underlying data in this cell.
1136 ///
1137 /// # Examples
1138 ///
1139 /// ```
1140 /// use std::cell::RefCell;
1141 ///
1142 /// let c = RefCell::new(5);
1143 ///
1144 /// let ptr = c.as_ptr();
1145 /// ```
1146 #[inline]
1147 #[stable(feature = "cell_as_ptr", since = "1.12.0")]
1148 #[rustc_as_ptr]
1149 #[rustc_never_returns_null_ptr]
1150 pub fn as_ptr(&self) -> *mut T {
1151 self.value.get()
1152 }
1153
1154 /// Returns a mutable reference to the underlying data.
1155 ///
1156 /// Since this method borrows `RefCell` mutably, it is statically guaranteed
1157 /// that no borrows to the underlying data exist. The dynamic checks inherent
1158 /// in [`borrow_mut`] and most other methods of `RefCell` are therefore
1159 /// unnecessary.
1160 ///
1161 /// This method can only be called if `RefCell` can be mutably borrowed,
1162 /// which in general is only the case directly after the `RefCell` has
1163 /// been created. In these situations, skipping the aforementioned dynamic
1164 /// borrowing checks may yield better ergonomics and runtime-performance.
1165 ///
1166 /// In most situations where `RefCell` is used, it can't be borrowed mutably.
1167 /// Use [`borrow_mut`] to get mutable access to the underlying data then.
1168 ///
1169 /// [`borrow_mut`]: RefCell::borrow_mut()
1170 ///
1171 /// # Examples
1172 ///
1173 /// ```
1174 /// use std::cell::RefCell;
1175 ///
1176 /// let mut c = RefCell::new(5);
1177 /// *c.get_mut() += 1;
1178 ///
1179 /// assert_eq!(c, RefCell::new(6));
1180 /// ```
1181 #[inline]
1182 #[stable(feature = "cell_get_mut", since = "1.11.0")]
1183 pub fn get_mut(&mut self) -> &mut T {
1184 self.value.get_mut()
1185 }
1186
1187 /// Undo the effect of leaked guards on the borrow state of the `RefCell`.
1188 ///
1189 /// This call is similar to [`get_mut`] but more specialized. It borrows `RefCell` mutably to
1190 /// ensure no borrows exist and then resets the state tracking shared borrows. This is relevant
1191 /// if some `Ref` or `RefMut` borrows have been leaked.
1192 ///
1193 /// [`get_mut`]: RefCell::get_mut()
1194 ///
1195 /// # Examples
1196 ///
1197 /// ```
1198 /// #![feature(cell_leak)]
1199 /// use std::cell::RefCell;
1200 ///
1201 /// let mut c = RefCell::new(0);
1202 /// std::mem::forget(c.borrow_mut());
1203 ///
1204 /// assert!(c.try_borrow().is_err());
1205 /// c.undo_leak();
1206 /// assert!(c.try_borrow().is_ok());
1207 /// ```
1208 #[unstable(feature = "cell_leak", issue = "69099")]
1209 pub fn undo_leak(&mut self) -> &mut T {
1210 *self.borrow.get_mut() = UNUSED;
1211 self.get_mut()
1212 }
1213
1214 /// Immutably borrows the wrapped value, returning an error if the value is
1215 /// currently mutably borrowed.
1216 ///
1217 /// # Safety
1218 ///
1219 /// Unlike `RefCell::borrow`, this method is unsafe because it does not
1220 /// return a `Ref`, thus leaving the borrow flag untouched. Mutably
1221 /// borrowing the `RefCell` while the reference returned by this method
1222 /// is alive is undefined behavior.
1223 ///
1224 /// # Examples
1225 ///
1226 /// ```
1227 /// use std::cell::RefCell;
1228 ///
1229 /// let c = RefCell::new(5);
1230 ///
1231 /// {
1232 /// let m = c.borrow_mut();
1233 /// assert!(unsafe { c.try_borrow_unguarded() }.is_err());
1234 /// }
1235 ///
1236 /// {
1237 /// let m = c.borrow();
1238 /// assert!(unsafe { c.try_borrow_unguarded() }.is_ok());
1239 /// }
1240 /// ```
1241 #[stable(feature = "borrow_state", since = "1.37.0")]
1242 #[inline]
1243 pub unsafe fn try_borrow_unguarded(&self) -> Result<&T, BorrowError> {
1244 if !is_writing(self.borrow.get()) {
1245 // SAFETY: We check that nobody is actively writing now, but it is
1246 // the caller's responsibility to ensure that nobody writes until
1247 // the returned reference is no longer in use.
1248 // Also, `self.value.get()` refers to the value owned by `self`
1249 // and is thus guaranteed to be valid for the lifetime of `self`.
1250 Ok(unsafe { &*self.value.get() })
1251 } else {
1252 Err(BorrowError {
1253 // If a borrow occurred, then we must already have an outstanding borrow,
1254 // so `borrowed_at` will be `Some`
1255 #[cfg(feature = "debug_refcell")]
1256 location: self.borrowed_at.get().unwrap(),
1257 })
1258 }
1259 }
1260}
1261
1262impl<T: Default> RefCell<T> {
1263 /// Takes the wrapped value, leaving `Default::default()` in its place.
1264 ///
1265 /// # Panics
1266 ///
1267 /// Panics if the value is currently borrowed.
1268 ///
1269 /// # Examples
1270 ///
1271 /// ```
1272 /// use std::cell::RefCell;
1273 ///
1274 /// let c = RefCell::new(5);
1275 /// let five = c.take();
1276 ///
1277 /// assert_eq!(five, 5);
1278 /// assert_eq!(c.into_inner(), 0);
1279 /// ```
1280 #[stable(feature = "refcell_take", since = "1.50.0")]
1281 pub fn take(&self) -> T {
1282 self.replace(Default::default())
1283 }
1284}
1285
1286#[stable(feature = "rust1", since = "1.0.0")]
1287unsafe impl<T: ?Sized> Send for RefCell<T> where T: Send {}
1288
1289#[stable(feature = "rust1", since = "1.0.0")]
1290impl<T: ?Sized> !Sync for RefCell<T> {}
1291
1292#[stable(feature = "rust1", since = "1.0.0")]
1293impl<T: Clone> Clone for RefCell<T> {
1294 /// # Panics
1295 ///
1296 /// Panics if the value is currently mutably borrowed.
1297 #[inline]
1298 #[track_caller]
1299 fn clone(&self) -> RefCell<T> {
1300 RefCell::new(self.borrow().clone())
1301 }
1302
1303 /// # Panics
1304 ///
1305 /// Panics if `source` is currently mutably borrowed.
1306 #[inline]
1307 #[track_caller]
1308 fn clone_from(&mut self, source: &Self) {
1309 self.get_mut().clone_from(&source.borrow())
1310 }
1311}
1312
1313#[stable(feature = "rust1", since = "1.0.0")]
1314impl<T: Default> Default for RefCell<T> {
1315 /// Creates a `RefCell<T>`, with the `Default` value for T.
1316 #[inline]
1317 fn default() -> RefCell<T> {
1318 RefCell::new(Default::default())
1319 }
1320}
1321
1322#[stable(feature = "rust1", since = "1.0.0")]
1323impl<T: ?Sized + PartialEq> PartialEq for RefCell<T> {
1324 /// # Panics
1325 ///
1326 /// Panics if the value in either `RefCell` is currently mutably borrowed.
1327 #[inline]
1328 fn eq(&self, other: &RefCell<T>) -> bool {
1329 *self.borrow() == *other.borrow()
1330 }
1331}
1332
1333#[stable(feature = "cell_eq", since = "1.2.0")]
1334impl<T: ?Sized + Eq> Eq for RefCell<T> {}
1335
1336#[stable(feature = "cell_ord", since = "1.10.0")]
1337impl<T: ?Sized + PartialOrd> PartialOrd for RefCell<T> {
1338 /// # Panics
1339 ///
1340 /// Panics if the value in either `RefCell` is currently mutably borrowed.
1341 #[inline]
1342 fn partial_cmp(&self, other: &RefCell<T>) -> Option<Ordering> {
1343 self.borrow().partial_cmp(&*other.borrow())
1344 }
1345
1346 /// # Panics
1347 ///
1348 /// Panics if the value in either `RefCell` is currently mutably borrowed.
1349 #[inline]
1350 fn lt(&self, other: &RefCell<T>) -> bool {
1351 *self.borrow() < *other.borrow()
1352 }
1353
1354 /// # Panics
1355 ///
1356 /// Panics if the value in either `RefCell` is currently mutably borrowed.
1357 #[inline]
1358 fn le(&self, other: &RefCell<T>) -> bool {
1359 *self.borrow() <= *other.borrow()
1360 }
1361
1362 /// # Panics
1363 ///
1364 /// Panics if the value in either `RefCell` is currently mutably borrowed.
1365 #[inline]
1366 fn gt(&self, other: &RefCell<T>) -> bool {
1367 *self.borrow() > *other.borrow()
1368 }
1369
1370 /// # Panics
1371 ///
1372 /// Panics if the value in either `RefCell` is currently mutably borrowed.
1373 #[inline]
1374 fn ge(&self, other: &RefCell<T>) -> bool {
1375 *self.borrow() >= *other.borrow()
1376 }
1377}
1378
1379#[stable(feature = "cell_ord", since = "1.10.0")]
1380impl<T: ?Sized + Ord> Ord for RefCell<T> {
1381 /// # Panics
1382 ///
1383 /// Panics if the value in either `RefCell` is currently mutably borrowed.
1384 #[inline]
1385 fn cmp(&self, other: &RefCell<T>) -> Ordering {
1386 self.borrow().cmp(&*other.borrow())
1387 }
1388}
1389
1390#[stable(feature = "cell_from", since = "1.12.0")]
1391impl<T> From<T> for RefCell<T> {
1392 /// Creates a new `RefCell<T>` containing the given value.
1393 fn from(t: T) -> RefCell<T> {
1394 RefCell::new(t)
1395 }
1396}
1397
1398#[unstable(feature = "coerce_unsized", issue = "18598")]
1399impl<T: CoerceUnsized<U>, U> CoerceUnsized<RefCell<U>> for RefCell<T> {}
1400
1401struct BorrowRef<'b> {
1402 borrow: &'b Cell<BorrowFlag>,
1403}
1404
1405impl<'b> BorrowRef<'b> {
1406 #[inline]
1407 fn new(borrow: &'b Cell<BorrowFlag>) -> Option<BorrowRef<'b>> {
1408 let b = borrow.get().wrapping_add(1);
1409 if !is_reading(b) {
1410 // Incrementing borrow can result in a non-reading value (<= 0) in these cases:
1411 // 1. It was < 0, i.e. there are writing borrows, so we can't allow a read borrow
1412 // due to Rust's reference aliasing rules
1413 // 2. It was isize::MAX (the max amount of reading borrows) and it overflowed
1414 // into isize::MIN (the max amount of writing borrows) so we can't allow
1415 // an additional read borrow because isize can't represent so many read borrows
1416 // (this can only happen if you mem::forget more than a small constant amount of
1417 // `Ref`s, which is not good practice)
1418 None
1419 } else {
1420 // Incrementing borrow can result in a reading value (> 0) in these cases:
1421 // 1. It was = 0, i.e. it wasn't borrowed, and we are taking the first read borrow
1422 // 2. It was > 0 and < isize::MAX, i.e. there were read borrows, and isize
1423 // is large enough to represent having one more read borrow
1424 borrow.set(b);
1425 Some(BorrowRef { borrow })
1426 }
1427 }
1428}
1429
1430impl Drop for BorrowRef<'_> {
1431 #[inline]
1432 fn drop(&mut self) {
1433 let borrow = self.borrow.get();
1434 debug_assert!(is_reading(borrow));
1435 self.borrow.set(borrow - 1);
1436 }
1437}
1438
1439impl Clone for BorrowRef<'_> {
1440 #[inline]
1441 fn clone(&self) -> Self {
1442 // Since this Ref exists, we know the borrow flag
1443 // is a reading borrow.
1444 let borrow = self.borrow.get();
1445 debug_assert!(is_reading(borrow));
1446 // Prevent the borrow counter from overflowing into
1447 // a writing borrow.
1448 assert!(borrow != BorrowFlag::MAX);
1449 self.borrow.set(borrow + 1);
1450 BorrowRef { borrow: self.borrow }
1451 }
1452}
1453
1454/// Wraps a borrowed reference to a value in a `RefCell` box.
1455/// A wrapper type for an immutably borrowed value from a `RefCell<T>`.
1456///
1457/// See the [module-level documentation](self) for more.
1458#[stable(feature = "rust1", since = "1.0.0")]
1459#[must_not_suspend = "holding a Ref across suspend points can cause BorrowErrors"]
1460#[rustc_diagnostic_item = "RefCellRef"]
1461pub struct Ref<'b, T: ?Sized + 'b> {
1462 // NB: we use a pointer instead of `&'b T` to avoid `noalias` violations, because a
1463 // `Ref` argument doesn't hold immutability for its whole scope, only until it drops.
1464 // `NonNull` is also covariant over `T`, just like we would have with `&T`.
1465 value: NonNull<T>,
1466 borrow: BorrowRef<'b>,
1467}
1468
1469#[stable(feature = "rust1", since = "1.0.0")]
1470impl<T: ?Sized> Deref for Ref<'_, T> {
1471 type Target = T;
1472
1473 #[inline]
1474 fn deref(&self) -> &T {
1475 // SAFETY: the value is accessible as long as we hold our borrow.
1476 unsafe { self.value.as_ref() }
1477 }
1478}
1479
1480#[unstable(feature = "deref_pure_trait", issue = "87121")]
1481unsafe impl<T: ?Sized> DerefPure for Ref<'_, T> {}
1482
1483impl<'b, T: ?Sized> Ref<'b, T> {
1484 /// Copies a `Ref`.
1485 ///
1486 /// The `RefCell` is already immutably borrowed, so this cannot fail.
1487 ///
1488 /// This is an associated function that needs to be used as
1489 /// `Ref::clone(...)`. A `Clone` implementation or a method would interfere
1490 /// with the widespread use of `r.borrow().clone()` to clone the contents of
1491 /// a `RefCell`.
1492 #[stable(feature = "cell_extras", since = "1.15.0")]
1493 #[must_use]
1494 #[inline]
1495 pub fn clone(orig: &Ref<'b, T>) -> Ref<'b, T> {
1496 Ref { value: orig.value, borrow: orig.borrow.clone() }
1497 }
1498
1499 /// Makes a new `Ref` for a component of the borrowed data.
1500 ///
1501 /// The `RefCell` is already immutably borrowed, so this cannot fail.
1502 ///
1503 /// This is an associated function that needs to be used as `Ref::map(...)`.
1504 /// A method would interfere with methods of the same name on the contents
1505 /// of a `RefCell` used through `Deref`.
1506 ///
1507 /// # Examples
1508 ///
1509 /// ```
1510 /// use std::cell::{RefCell, Ref};
1511 ///
1512 /// let c = RefCell::new((5, 'b'));
1513 /// let b1: Ref<'_, (u32, char)> = c.borrow();
1514 /// let b2: Ref<'_, u32> = Ref::map(b1, |t| &t.0);
1515 /// assert_eq!(*b2, 5)
1516 /// ```
1517 #[stable(feature = "cell_map", since = "1.8.0")]
1518 #[inline]
1519 pub fn map<U: ?Sized, F>(orig: Ref<'b, T>, f: F) -> Ref<'b, U>
1520 where
1521 F: FnOnce(&T) -> &U,
1522 {
1523 Ref { value: NonNull::from(f(&*orig)), borrow: orig.borrow }
1524 }
1525
1526 /// Makes a new `Ref` for an optional component of the borrowed data. The
1527 /// original guard is returned as an `Err(..)` if the closure returns
1528 /// `None`.
1529 ///
1530 /// The `RefCell` is already immutably borrowed, so this cannot fail.
1531 ///
1532 /// This is an associated function that needs to be used as
1533 /// `Ref::filter_map(...)`. A method would interfere with methods of the same
1534 /// name on the contents of a `RefCell` used through `Deref`.
1535 ///
1536 /// # Examples
1537 ///
1538 /// ```
1539 /// use std::cell::{RefCell, Ref};
1540 ///
1541 /// let c = RefCell::new(vec![1, 2, 3]);
1542 /// let b1: Ref<'_, Vec<u32>> = c.borrow();
1543 /// let b2: Result<Ref<'_, u32>, _> = Ref::filter_map(b1, |v| v.get(1));
1544 /// assert_eq!(*b2.unwrap(), 2);
1545 /// ```
1546 #[stable(feature = "cell_filter_map", since = "1.63.0")]
1547 #[inline]
1548 pub fn filter_map<U: ?Sized, F>(orig: Ref<'b, T>, f: F) -> Result<Ref<'b, U>, Self>
1549 where
1550 F: FnOnce(&T) -> Option<&U>,
1551 {
1552 match f(&*orig) {
1553 Some(value) => Ok(Ref { value: NonNull::from(value), borrow: orig.borrow }),
1554 None => Err(orig),
1555 }
1556 }
1557
1558 /// Splits a `Ref` into multiple `Ref`s for different components of the
1559 /// borrowed data.
1560 ///
1561 /// The `RefCell` is already immutably borrowed, so this cannot fail.
1562 ///
1563 /// This is an associated function that needs to be used as
1564 /// `Ref::map_split(...)`. A method would interfere with methods of the same
1565 /// name on the contents of a `RefCell` used through `Deref`.
1566 ///
1567 /// # Examples
1568 ///
1569 /// ```
1570 /// use std::cell::{Ref, RefCell};
1571 ///
1572 /// let cell = RefCell::new([1, 2, 3, 4]);
1573 /// let borrow = cell.borrow();
1574 /// let (begin, end) = Ref::map_split(borrow, |slice| slice.split_at(2));
1575 /// assert_eq!(*begin, [1, 2]);
1576 /// assert_eq!(*end, [3, 4]);
1577 /// ```
1578 #[stable(feature = "refcell_map_split", since = "1.35.0")]
1579 #[inline]
1580 pub fn map_split<U: ?Sized, V: ?Sized, F>(orig: Ref<'b, T>, f: F) -> (Ref<'b, U>, Ref<'b, V>)
1581 where
1582 F: FnOnce(&T) -> (&U, &V),
1583 {
1584 let (a, b) = f(&*orig);
1585 let borrow = orig.borrow.clone();
1586 (
1587 Ref { value: NonNull::from(a), borrow },
1588 Ref { value: NonNull::from(b), borrow: orig.borrow },
1589 )
1590 }
1591
1592 /// Converts into a reference to the underlying data.
1593 ///
1594 /// The underlying `RefCell` can never be mutably borrowed from again and will always appear
1595 /// already immutably borrowed. It is not a good idea to leak more than a constant number of
1596 /// references. The `RefCell` can be immutably borrowed again if only a smaller number of leaks
1597 /// have occurred in total.
1598 ///
1599 /// This is an associated function that needs to be used as
1600 /// `Ref::leak(...)`. A method would interfere with methods of the
1601 /// same name on the contents of a `RefCell` used through `Deref`.
1602 ///
1603 /// # Examples
1604 ///
1605 /// ```
1606 /// #![feature(cell_leak)]
1607 /// use std::cell::{RefCell, Ref};
1608 /// let cell = RefCell::new(0);
1609 ///
1610 /// let value = Ref::leak(cell.borrow());
1611 /// assert_eq!(*value, 0);
1612 ///
1613 /// assert!(cell.try_borrow().is_ok());
1614 /// assert!(cell.try_borrow_mut().is_err());
1615 /// ```
1616 #[unstable(feature = "cell_leak", issue = "69099")]
1617 pub fn leak(orig: Ref<'b, T>) -> &'b T {
1618 // By forgetting this Ref we ensure that the borrow counter in the RefCell can't go back to
1619 // UNUSED within the lifetime `'b`. Resetting the reference tracking state would require a
1620 // unique reference to the borrowed RefCell. No further mutable references can be created
1621 // from the original cell.
1622 mem::forget(orig.borrow);
1623 // SAFETY: after forgetting, we can form a reference for the rest of lifetime `'b`.
1624 unsafe { orig.value.as_ref() }
1625 }
1626}
1627
1628#[unstable(feature = "coerce_unsized", issue = "18598")]
1629impl<'b, T: ?Sized + Unsize<U>, U: ?Sized> CoerceUnsized<Ref<'b, U>> for Ref<'b, T> {}
1630
1631#[stable(feature = "std_guard_impls", since = "1.20.0")]
1632impl<T: ?Sized + fmt::Display> fmt::Display for Ref<'_, T> {
1633 fn fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result {
1634 (**self).fmt(f)
1635 }
1636}
1637
1638impl<'b, T: ?Sized> RefMut<'b, T> {
1639 /// Makes a new `RefMut` for a component of the borrowed data, e.g., an enum
1640 /// variant.
1641 ///
1642 /// The `RefCell` is already mutably borrowed, so this cannot fail.
1643 ///
1644 /// This is an associated function that needs to be used as
1645 /// `RefMut::map(...)`. A method would interfere with methods of the same
1646 /// name on the contents of a `RefCell` used through `Deref`.
1647 ///
1648 /// # Examples
1649 ///
1650 /// ```
1651 /// use std::cell::{RefCell, RefMut};
1652 ///
1653 /// let c = RefCell::new((5, 'b'));
1654 /// {
1655 /// let b1: RefMut<'_, (u32, char)> = c.borrow_mut();
1656 /// let mut b2: RefMut<'_, u32> = RefMut::map(b1, |t| &mut t.0);
1657 /// assert_eq!(*b2, 5);
1658 /// *b2 = 42;
1659 /// }
1660 /// assert_eq!(*c.borrow(), (42, 'b'));
1661 /// ```
1662 #[stable(feature = "cell_map", since = "1.8.0")]
1663 #[inline]
1664 pub fn map<U: ?Sized, F>(mut orig: RefMut<'b, T>, f: F) -> RefMut<'b, U>
1665 where
1666 F: FnOnce(&mut T) -> &mut U,
1667 {
1668 let value = NonNull::from(f(&mut *orig));
1669 RefMut { value, borrow: orig.borrow, marker: PhantomData }
1670 }
1671
1672 /// Makes a new `RefMut` for an optional component of the borrowed data. The
1673 /// original guard is returned as an `Err(..)` if the closure returns
1674 /// `None`.
1675 ///
1676 /// The `RefCell` is already mutably borrowed, so this cannot fail.
1677 ///
1678 /// This is an associated function that needs to be used as
1679 /// `RefMut::filter_map(...)`. A method would interfere with methods of the
1680 /// same name on the contents of a `RefCell` used through `Deref`.
1681 ///
1682 /// # Examples
1683 ///
1684 /// ```
1685 /// use std::cell::{RefCell, RefMut};
1686 ///
1687 /// let c = RefCell::new(vec![1, 2, 3]);
1688 ///
1689 /// {
1690 /// let b1: RefMut<'_, Vec<u32>> = c.borrow_mut();
1691 /// let mut b2: Result<RefMut<'_, u32>, _> = RefMut::filter_map(b1, |v| v.get_mut(1));
1692 ///
1693 /// if let Ok(mut b2) = b2 {
1694 /// *b2 += 2;
1695 /// }
1696 /// }
1697 ///
1698 /// assert_eq!(*c.borrow(), vec![1, 4, 3]);
1699 /// ```
1700 #[stable(feature = "cell_filter_map", since = "1.63.0")]
1701 #[inline]
1702 pub fn filter_map<U: ?Sized, F>(mut orig: RefMut<'b, T>, f: F) -> Result<RefMut<'b, U>, Self>
1703 where
1704 F: FnOnce(&mut T) -> Option<&mut U>,
1705 {
1706 // SAFETY: function holds onto an exclusive reference for the duration
1707 // of its call through `orig`, and the pointer is only de-referenced
1708 // inside of the function call never allowing the exclusive reference to
1709 // escape.
1710 match f(&mut *orig) {
1711 Some(value) => {
1712 Ok(RefMut { value: NonNull::from(value), borrow: orig.borrow, marker: PhantomData })
1713 }
1714 None => Err(orig),
1715 }
1716 }
1717
1718 /// Splits a `RefMut` into multiple `RefMut`s for different components of the
1719 /// borrowed data.
1720 ///
1721 /// The underlying `RefCell` will remain mutably borrowed until both
1722 /// returned `RefMut`s go out of scope.
1723 ///
1724 /// The `RefCell` is already mutably borrowed, so this cannot fail.
1725 ///
1726 /// This is an associated function that needs to be used as
1727 /// `RefMut::map_split(...)`. A method would interfere with methods of the
1728 /// same name on the contents of a `RefCell` used through `Deref`.
1729 ///
1730 /// # Examples
1731 ///
1732 /// ```
1733 /// use std::cell::{RefCell, RefMut};
1734 ///
1735 /// let cell = RefCell::new([1, 2, 3, 4]);
1736 /// let borrow = cell.borrow_mut();
1737 /// let (mut begin, mut end) = RefMut::map_split(borrow, |slice| slice.split_at_mut(2));
1738 /// assert_eq!(*begin, [1, 2]);
1739 /// assert_eq!(*end, [3, 4]);
1740 /// begin.copy_from_slice(&[4, 3]);
1741 /// end.copy_from_slice(&[2, 1]);
1742 /// ```
1743 #[stable(feature = "refcell_map_split", since = "1.35.0")]
1744 #[inline]
1745 pub fn map_split<U: ?Sized, V: ?Sized, F>(
1746 mut orig: RefMut<'b, T>,
1747 f: F,
1748 ) -> (RefMut<'b, U>, RefMut<'b, V>)
1749 where
1750 F: FnOnce(&mut T) -> (&mut U, &mut V),
1751 {
1752 let borrow = orig.borrow.clone();
1753 let (a, b) = f(&mut *orig);
1754 (
1755 RefMut { value: NonNull::from(a), borrow, marker: PhantomData },
1756 RefMut { value: NonNull::from(b), borrow: orig.borrow, marker: PhantomData },
1757 )
1758 }
1759
1760 /// Converts into a mutable reference to the underlying data.
1761 ///
1762 /// The underlying `RefCell` can not be borrowed from again and will always appear already
1763 /// mutably borrowed, making the returned reference the only to the interior.
1764 ///
1765 /// This is an associated function that needs to be used as
1766 /// `RefMut::leak(...)`. A method would interfere with methods of the
1767 /// same name on the contents of a `RefCell` used through `Deref`.
1768 ///
1769 /// # Examples
1770 ///
1771 /// ```
1772 /// #![feature(cell_leak)]
1773 /// use std::cell::{RefCell, RefMut};
1774 /// let cell = RefCell::new(0);
1775 ///
1776 /// let value = RefMut::leak(cell.borrow_mut());
1777 /// assert_eq!(*value, 0);
1778 /// *value = 1;
1779 ///
1780 /// assert!(cell.try_borrow_mut().is_err());
1781 /// ```
1782 #[unstable(feature = "cell_leak", issue = "69099")]
1783 pub fn leak(mut orig: RefMut<'b, T>) -> &'b mut T {
1784 // By forgetting this BorrowRefMut we ensure that the borrow counter in the RefCell can't
1785 // go back to UNUSED within the lifetime `'b`. Resetting the reference tracking state would
1786 // require a unique reference to the borrowed RefCell. No further references can be created
1787 // from the original cell within that lifetime, making the current borrow the only
1788 // reference for the remaining lifetime.
1789 mem::forget(orig.borrow);
1790 // SAFETY: after forgetting, we can form a reference for the rest of lifetime `'b`.
1791 unsafe { orig.value.as_mut() }
1792 }
1793}
1794
1795struct BorrowRefMut<'b> {
1796 borrow: &'b Cell<BorrowFlag>,
1797}
1798
1799impl Drop for BorrowRefMut<'_> {
1800 #[inline]
1801 fn drop(&mut self) {
1802 let borrow = self.borrow.get();
1803 debug_assert!(is_writing(borrow));
1804 self.borrow.set(borrow + 1);
1805 }
1806}
1807
1808impl<'b> BorrowRefMut<'b> {
1809 #[inline]
1810 fn new(borrow: &'b Cell<BorrowFlag>) -> Option<BorrowRefMut<'b>> {
1811 // NOTE: Unlike BorrowRefMut::clone, new is called to create the initial
1812 // mutable reference, and so there must currently be no existing
1813 // references. Thus, while clone increments the mutable refcount, here
1814 // we explicitly only allow going from UNUSED to UNUSED - 1.
1815 match borrow.get() {
1816 UNUSED => {
1817 borrow.set(UNUSED - 1);
1818 Some(BorrowRefMut { borrow })
1819 }
1820 _ => None,
1821 }
1822 }
1823
1824 // Clones a `BorrowRefMut`.
1825 //
1826 // This is only valid if each `BorrowRefMut` is used to track a mutable
1827 // reference to a distinct, nonoverlapping range of the original object.
1828 // This isn't in a Clone impl so that code doesn't call this implicitly.
1829 #[inline]
1830 fn clone(&self) -> BorrowRefMut<'b> {
1831 let borrow = self.borrow.get();
1832 debug_assert!(is_writing(borrow));
1833 // Prevent the borrow counter from underflowing.
1834 assert!(borrow != BorrowFlag::MIN);
1835 self.borrow.set(borrow - 1);
1836 BorrowRefMut { borrow: self.borrow }
1837 }
1838}
1839
1840/// A wrapper type for a mutably borrowed value from a `RefCell<T>`.
1841///
1842/// See the [module-level documentation](self) for more.
1843#[stable(feature = "rust1", since = "1.0.0")]
1844#[must_not_suspend = "holding a RefMut across suspend points can cause BorrowErrors"]
1845#[rustc_diagnostic_item = "RefCellRefMut"]
1846pub struct RefMut<'b, T: ?Sized + 'b> {
1847 // NB: we use a pointer instead of `&'b mut T` to avoid `noalias` violations, because a
1848 // `RefMut` argument doesn't hold exclusivity for its whole scope, only until it drops.
1849 value: NonNull<T>,
1850 borrow: BorrowRefMut<'b>,
1851 // `NonNull` is covariant over `T`, so we need to reintroduce invariance.
1852 marker: PhantomData<&'b mut T>,
1853}
1854
1855#[stable(feature = "rust1", since = "1.0.0")]
1856impl<T: ?Sized> Deref for RefMut<'_, T> {
1857 type Target = T;
1858
1859 #[inline]
1860 fn deref(&self) -> &T {
1861 // SAFETY: the value is accessible as long as we hold our borrow.
1862 unsafe { self.value.as_ref() }
1863 }
1864}
1865
1866#[stable(feature = "rust1", since = "1.0.0")]
1867impl<T: ?Sized> DerefMut for RefMut<'_, T> {
1868 #[inline]
1869 fn deref_mut(&mut self) -> &mut T {
1870 // SAFETY: the value is accessible as long as we hold our borrow.
1871 unsafe { self.value.as_mut() }
1872 }
1873}
1874
1875#[unstable(feature = "deref_pure_trait", issue = "87121")]
1876unsafe impl<T: ?Sized> DerefPure for RefMut<'_, T> {}
1877
1878#[unstable(feature = "coerce_unsized", issue = "18598")]
1879impl<'b, T: ?Sized + Unsize<U>, U: ?Sized> CoerceUnsized<RefMut<'b, U>> for RefMut<'b, T> {}
1880
1881#[stable(feature = "std_guard_impls", since = "1.20.0")]
1882impl<T: ?Sized + fmt::Display> fmt::Display for RefMut<'_, T> {
1883 fn fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result {
1884 (**self).fmt(f)
1885 }
1886}
1887
1888/// The core primitive for interior mutability in Rust.
1889///
1890/// If you have a reference `&T`, then normally in Rust the compiler performs optimizations based on
1891/// the knowledge that `&T` points to immutable data. Mutating that data, for example through an
1892/// alias or by transmuting a `&T` into a `&mut T`, is considered undefined behavior.
1893/// `UnsafeCell<T>` opts-out of the immutability guarantee for `&T`: a shared reference
1894/// `&UnsafeCell<T>` may point to data that is being mutated. This is called "interior mutability".
1895///
1896/// All other types that allow internal mutability, such as [`Cell<T>`] and [`RefCell<T>`], internally
1897/// use `UnsafeCell` to wrap their data.
1898///
1899/// Note that only the immutability guarantee for shared references is affected by `UnsafeCell`. The
1900/// uniqueness guarantee for mutable references is unaffected. There is *no* legal way to obtain
1901/// aliasing `&mut`, not even with `UnsafeCell<T>`.
1902///
1903/// `UnsafeCell` does nothing to avoid data races; they are still undefined behavior. If multiple
1904/// threads have access to the same `UnsafeCell`, they must follow the usual rules of the
1905/// [concurrent memory model]: conflicting non-synchronized accesses must be done via the APIs in
1906/// [`core::sync::atomic`].
1907///
1908/// The `UnsafeCell` API itself is technically very simple: [`.get()`] gives you a raw pointer
1909/// `*mut T` to its contents. It is up to _you_ as the abstraction designer to use that raw pointer
1910/// correctly.
1911///
1912/// [`.get()`]: `UnsafeCell::get`
1913/// [concurrent memory model]: ../sync/atomic/index.html#memory-model-for-atomic-accesses
1914///
1915/// The precise Rust aliasing rules are somewhat in flux, but the main points are not contentious:
1916///
1917/// - If you create a safe reference with lifetime `'a` (either a `&T` or `&mut T` reference), then
1918/// you must not access the data in any way that contradicts that reference for the remainder of
1919/// `'a`. For example, this means that if you take the `*mut T` from an `UnsafeCell<T>` and cast it
1920/// to an `&T`, then the data in `T` must remain immutable (modulo any `UnsafeCell` data found
1921/// within `T`, of course) until that reference's lifetime expires. Similarly, if you create a `&mut
1922/// T` reference that is released to safe code, then you must not access the data within the
1923/// `UnsafeCell` until that reference expires.
1924///
1925/// - For both `&T` without `UnsafeCell<_>` and `&mut T`, you must also not deallocate the data
1926/// until the reference expires. As a special exception, given an `&T`, any part of it that is
1927/// inside an `UnsafeCell<_>` may be deallocated during the lifetime of the reference, after the
1928/// last time the reference is used (dereferenced or reborrowed). Since you cannot deallocate a part
1929/// of what a reference points to, this means the memory an `&T` points to can be deallocated only if
1930/// *every part of it* (including padding) is inside an `UnsafeCell`.
1931///
1932/// However, whenever a `&UnsafeCell<T>` is constructed or dereferenced, it must still point to
1933/// live memory and the compiler is allowed to insert spurious reads if it can prove that this
1934/// memory has not yet been deallocated.
1935///
1936/// To assist with proper design, the following scenarios are explicitly declared legal
1937/// for single-threaded code:
1938///
1939/// 1. A `&T` reference can be released to safe code and there it can co-exist with other `&T`
1940/// references, but not with a `&mut T`
1941///
1942/// 2. A `&mut T` reference may be released to safe code provided neither other `&mut T` nor `&T`
1943/// co-exist with it. A `&mut T` must always be unique.
1944///
1945/// Note that whilst mutating the contents of an `&UnsafeCell<T>` (even while other
1946/// `&UnsafeCell<T>` references alias the cell) is
1947/// ok (provided you enforce the above invariants some other way), it is still undefined behavior
1948/// to have multiple `&mut UnsafeCell<T>` aliases. That is, `UnsafeCell` is a wrapper
1949/// designed to have a special interaction with _shared_ accesses (_i.e._, through an
1950/// `&UnsafeCell<_>` reference); there is no magic whatsoever when dealing with _exclusive_
1951/// accesses (_e.g._, through a `&mut UnsafeCell<_>`): neither the cell nor the wrapped value
1952/// may be aliased for the duration of that `&mut` borrow.
1953/// This is showcased by the [`.get_mut()`] accessor, which is a _safe_ getter that yields
1954/// a `&mut T`.
1955///
1956/// [`.get_mut()`]: `UnsafeCell::get_mut`
1957///
1958/// # Memory layout
1959///
1960/// `UnsafeCell<T>` has the same in-memory representation as its inner type `T`. A consequence
1961/// of this guarantee is that it is possible to convert between `T` and `UnsafeCell<T>`.
1962/// Special care has to be taken when converting a nested `T` inside of an `Outer<T>` type
1963/// to an `Outer<UnsafeCell<T>>` type: this is not sound when the `Outer<T>` type enables [niche]
1964/// optimizations. For example, the type `Option<NonNull<u8>>` is typically 8 bytes large on
1965/// 64-bit platforms, but the type `Option<UnsafeCell<NonNull<u8>>>` takes up 16 bytes of space.
1966/// Therefore this is not a valid conversion, despite `NonNull<u8>` and `UnsafeCell<NonNull<u8>>>`
1967/// having the same memory layout. This is because `UnsafeCell` disables niche optimizations in
1968/// order to avoid its interior mutability property from spreading from `T` into the `Outer` type,
1969/// thus this can cause distortions in the type size in these cases.
1970///
1971/// Note that the only valid way to obtain a `*mut T` pointer to the contents of a
1972/// _shared_ `UnsafeCell<T>` is through [`.get()`] or [`.raw_get()`]. A `&mut T` reference
1973/// can be obtained by either dereferencing this pointer or by calling [`.get_mut()`]
1974/// on an _exclusive_ `UnsafeCell<T>`. Even though `T` and `UnsafeCell<T>` have the
1975/// same memory layout, the following is not allowed and undefined behavior:
1976///
1977/// ```rust,compile_fail
1978/// # use std::cell::UnsafeCell;
1979/// unsafe fn not_allowed<T>(ptr: &UnsafeCell<T>) -> &mut T {
1980/// let t = ptr as *const UnsafeCell<T> as *mut T;
1981/// // This is undefined behavior, because the `*mut T` pointer
1982/// // was not obtained through `.get()` nor `.raw_get()`:
1983/// unsafe { &mut *t }
1984/// }
1985/// ```
1986///
1987/// Instead, do this:
1988///
1989/// ```rust
1990/// # use std::cell::UnsafeCell;
1991/// // Safety: the caller must ensure that there are no references that
1992/// // point to the *contents* of the `UnsafeCell`.
1993/// unsafe fn get_mut<T>(ptr: &UnsafeCell<T>) -> &mut T {
1994/// unsafe { &mut *ptr.get() }
1995/// }
1996/// ```
1997///
1998/// Converting in the other direction from a `&mut T`
1999/// to an `&UnsafeCell<T>` is allowed:
2000///
2001/// ```rust
2002/// # use std::cell::UnsafeCell;
2003/// fn get_shared<T>(ptr: &mut T) -> &UnsafeCell<T> {
2004/// let t = ptr as *mut T as *const UnsafeCell<T>;
2005/// // SAFETY: `T` and `UnsafeCell<T>` have the same memory layout
2006/// unsafe { &*t }
2007/// }
2008/// ```
2009///
2010/// [niche]: https://rust-lang.github.io/unsafe-code-guidelines/glossary.html#niche
2011/// [`.raw_get()`]: `UnsafeCell::raw_get`
2012///
2013/// # Examples
2014///
2015/// Here is an example showcasing how to soundly mutate the contents of an `UnsafeCell<_>` despite
2016/// there being multiple references aliasing the cell:
2017///
2018/// ```
2019/// use std::cell::UnsafeCell;
2020///
2021/// let x: UnsafeCell<i32> = 42.into();
2022/// // Get multiple / concurrent / shared references to the same `x`.
2023/// let (p1, p2): (&UnsafeCell<i32>, &UnsafeCell<i32>) = (&x, &x);
2024///
2025/// unsafe {
2026/// // SAFETY: within this scope there are no other references to `x`'s contents,
2027/// // so ours is effectively unique.
2028/// let p1_exclusive: &mut i32 = &mut *p1.get(); // -- borrow --+
2029/// *p1_exclusive += 27; // |
2030/// } // <---------- cannot go beyond this point -------------------+
2031///
2032/// unsafe {
2033/// // SAFETY: within this scope nobody expects to have exclusive access to `x`'s contents,
2034/// // so we can have multiple shared accesses concurrently.
2035/// let p2_shared: &i32 = &*p2.get();
2036/// assert_eq!(*p2_shared, 42 + 27);
2037/// let p1_shared: &i32 = &*p1.get();
2038/// assert_eq!(*p1_shared, *p2_shared);
2039/// }
2040/// ```
2041///
2042/// The following example showcases the fact that exclusive access to an `UnsafeCell<T>`
2043/// implies exclusive access to its `T`:
2044///
2045/// ```rust
2046/// #![forbid(unsafe_code)] // with exclusive accesses,
2047/// // `UnsafeCell` is a transparent no-op wrapper,
2048/// // so no need for `unsafe` here.
2049/// use std::cell::UnsafeCell;
2050///
2051/// let mut x: UnsafeCell<i32> = 42.into();
2052///
2053/// // Get a compile-time-checked unique reference to `x`.
2054/// let p_unique: &mut UnsafeCell<i32> = &mut x;
2055/// // With an exclusive reference, we can mutate the contents for free.
2056/// *p_unique.get_mut() = 0;
2057/// // Or, equivalently:
2058/// x = UnsafeCell::new(0);
2059///
2060/// // When we own the value, we can extract the contents for free.
2061/// let contents: i32 = x.into_inner();
2062/// assert_eq!(contents, 0);
2063/// ```
2064#[lang = "unsafe_cell"]
2065#[stable(feature = "rust1", since = "1.0.0")]
2066#[repr(transparent)]
2067#[rustc_pub_transparent]
2068pub struct UnsafeCell<T: ?Sized> {
2069 value: T,
2070}
2071
2072#[stable(feature = "rust1", since = "1.0.0")]
2073impl<T: ?Sized> !Sync for UnsafeCell<T> {}
2074
2075impl<T> UnsafeCell<T> {
2076 /// Constructs a new instance of `UnsafeCell` which will wrap the specified
2077 /// value.
2078 ///
2079 /// All access to the inner value through `&UnsafeCell<T>` requires `unsafe` code.
2080 ///
2081 /// # Examples
2082 ///
2083 /// ```
2084 /// use std::cell::UnsafeCell;
2085 ///
2086 /// let uc = UnsafeCell::new(5);
2087 /// ```
2088 #[stable(feature = "rust1", since = "1.0.0")]
2089 #[rustc_const_stable(feature = "const_unsafe_cell_new", since = "1.32.0")]
2090 #[inline(always)]
2091 pub const fn new(value: T) -> UnsafeCell<T> {
2092 UnsafeCell { value }
2093 }
2094
2095 /// Unwraps the value, consuming the cell.
2096 ///
2097 /// # Examples
2098 ///
2099 /// ```
2100 /// use std::cell::UnsafeCell;
2101 ///
2102 /// let uc = UnsafeCell::new(5);
2103 ///
2104 /// let five = uc.into_inner();
2105 /// ```
2106 #[inline(always)]
2107 #[stable(feature = "rust1", since = "1.0.0")]
2108 #[rustc_const_stable(feature = "const_cell_into_inner", since = "1.83.0")]
2109 #[rustc_allow_const_fn_unstable(const_precise_live_drops)]
2110 pub const fn into_inner(self) -> T {
2111 self.value
2112 }
2113
2114 /// Replace the value in this `UnsafeCell` and return the old value.
2115 ///
2116 /// # Safety
2117 ///
2118 /// The caller must take care to avoid aliasing and data races.
2119 ///
2120 /// - It is Undefined Behavior to allow calls to race with
2121 /// any other access to the wrapped value.
2122 /// - It is Undefined Behavior to call this while any other
2123 /// reference(s) to the wrapped value are alive.
2124 ///
2125 /// # Examples
2126 ///
2127 /// ```
2128 /// #![feature(unsafe_cell_access)]
2129 /// use std::cell::UnsafeCell;
2130 ///
2131 /// let uc = UnsafeCell::new(5);
2132 ///
2133 /// let old = unsafe { uc.replace(10) };
2134 /// assert_eq!(old, 5);
2135 /// ```
2136 #[inline]
2137 #[unstable(feature = "unsafe_cell_access", issue = "136327")]
2138 pub const unsafe fn replace(&self, value: T) -> T {
2139 // SAFETY: pointer comes from `&self` so naturally satisfies invariants.
2140 unsafe { ptr::replace(self.get(), value) }
2141 }
2142}
2143
2144impl<T: ?Sized> UnsafeCell<T> {
2145 /// Converts from `&mut T` to `&mut UnsafeCell<T>`.
2146 ///
2147 /// # Examples
2148 ///
2149 /// ```
2150 /// use std::cell::UnsafeCell;
2151 ///
2152 /// let mut val = 42;
2153 /// let uc = UnsafeCell::from_mut(&mut val);
2154 ///
2155 /// *uc.get_mut() -= 1;
2156 /// assert_eq!(*uc.get_mut(), 41);
2157 /// ```
2158 #[inline(always)]
2159 #[stable(feature = "unsafe_cell_from_mut", since = "1.84.0")]
2160 #[rustc_const_stable(feature = "unsafe_cell_from_mut", since = "1.84.0")]
2161 pub const fn from_mut(value: &mut T) -> &mut UnsafeCell<T> {
2162 // SAFETY: `UnsafeCell<T>` has the same memory layout as `T` due to #[repr(transparent)].
2163 unsafe { &mut *(value as *mut T as *mut UnsafeCell<T>) }
2164 }
2165
2166 /// Gets a mutable pointer to the wrapped value.
2167 ///
2168 /// This can be cast to a pointer of any kind.
2169 /// Ensure that the access is unique (no active references, mutable or not)
2170 /// when casting to `&mut T`, and ensure that there are no mutations
2171 /// or mutable aliases going on when casting to `&T`
2172 ///
2173 /// # Examples
2174 ///
2175 /// ```
2176 /// use std::cell::UnsafeCell;
2177 ///
2178 /// let uc = UnsafeCell::new(5);
2179 ///
2180 /// let five = uc.get();
2181 /// ```
2182 #[inline(always)]
2183 #[stable(feature = "rust1", since = "1.0.0")]
2184 #[rustc_const_stable(feature = "const_unsafecell_get", since = "1.32.0")]
2185 #[rustc_as_ptr]
2186 #[rustc_never_returns_null_ptr]
2187 pub const fn get(&self) -> *mut T {
2188 // We can just cast the pointer from `UnsafeCell<T>` to `T` because of
2189 // #[repr(transparent)]. This exploits std's special status, there is
2190 // no guarantee for user code that this will work in future versions of the compiler!
2191 self as *const UnsafeCell<T> as *const T as *mut T
2192 }
2193
2194 /// Returns a mutable reference to the underlying data.
2195 ///
2196 /// This call borrows the `UnsafeCell` mutably (at compile-time) which
2197 /// guarantees that we possess the only reference.
2198 ///
2199 /// # Examples
2200 ///
2201 /// ```
2202 /// use std::cell::UnsafeCell;
2203 ///
2204 /// let mut c = UnsafeCell::new(5);
2205 /// *c.get_mut() += 1;
2206 ///
2207 /// assert_eq!(*c.get_mut(), 6);
2208 /// ```
2209 #[inline(always)]
2210 #[stable(feature = "unsafe_cell_get_mut", since = "1.50.0")]
2211 #[rustc_const_stable(feature = "const_unsafecell_get_mut", since = "1.83.0")]
2212 pub const fn get_mut(&mut self) -> &mut T {
2213 &mut self.value
2214 }
2215
2216 /// Gets a mutable pointer to the wrapped value.
2217 /// The difference from [`get`] is that this function accepts a raw pointer,
2218 /// which is useful to avoid the creation of temporary references.
2219 ///
2220 /// The result can be cast to a pointer of any kind.
2221 /// Ensure that the access is unique (no active references, mutable or not)
2222 /// when casting to `&mut T`, and ensure that there are no mutations
2223 /// or mutable aliases going on when casting to `&T`.
2224 ///
2225 /// [`get`]: UnsafeCell::get()
2226 ///
2227 /// # Examples
2228 ///
2229 /// Gradual initialization of an `UnsafeCell` requires `raw_get`, as
2230 /// calling `get` would require creating a reference to uninitialized data:
2231 ///
2232 /// ```
2233 /// use std::cell::UnsafeCell;
2234 /// use std::mem::MaybeUninit;
2235 ///
2236 /// let m = MaybeUninit::<UnsafeCell<i32>>::uninit();
2237 /// unsafe { UnsafeCell::raw_get(m.as_ptr()).write(5); }
2238 /// // avoid below which references to uninitialized data
2239 /// // unsafe { UnsafeCell::get(&*m.as_ptr()).write(5); }
2240 /// let uc = unsafe { m.assume_init() };
2241 ///
2242 /// assert_eq!(uc.into_inner(), 5);
2243 /// ```
2244 #[inline(always)]
2245 #[stable(feature = "unsafe_cell_raw_get", since = "1.56.0")]
2246 #[rustc_const_stable(feature = "unsafe_cell_raw_get", since = "1.56.0")]
2247 #[rustc_diagnostic_item = "unsafe_cell_raw_get"]
2248 pub const fn raw_get(this: *const Self) -> *mut T {
2249 // We can just cast the pointer from `UnsafeCell<T>` to `T` because of
2250 // #[repr(transparent)]. This exploits std's special status, there is
2251 // no guarantee for user code that this will work in future versions of the compiler!
2252 this as *const T as *mut T
2253 }
2254
2255 /// Get a shared reference to the value within the `UnsafeCell`.
2256 ///
2257 /// # Safety
2258 ///
2259 /// - It is Undefined Behavior to call this while any mutable
2260 /// reference to the wrapped value is alive.
2261 /// - Mutating the wrapped value while the returned
2262 /// reference is alive is Undefined Behavior.
2263 ///
2264 /// # Examples
2265 ///
2266 /// ```
2267 /// #![feature(unsafe_cell_access)]
2268 /// use std::cell::UnsafeCell;
2269 ///
2270 /// let uc = UnsafeCell::new(5);
2271 ///
2272 /// let val = unsafe { uc.as_ref_unchecked() };
2273 /// assert_eq!(val, &5);
2274 /// ```
2275 #[inline]
2276 #[unstable(feature = "unsafe_cell_access", issue = "136327")]
2277 pub const unsafe fn as_ref_unchecked(&self) -> &T {
2278 // SAFETY: pointer comes from `&self` so naturally satisfies ptr-to-ref invariants.
2279 unsafe { self.get().as_ref_unchecked() }
2280 }
2281
2282 /// Get an exclusive reference to the value within the `UnsafeCell`.
2283 ///
2284 /// # Safety
2285 ///
2286 /// - It is Undefined Behavior to call this while any other
2287 /// reference(s) to the wrapped value are alive.
2288 /// - Mutating the wrapped value through other means while the
2289 /// returned reference is alive is Undefined Behavior.
2290 ///
2291 /// # Examples
2292 ///
2293 /// ```
2294 /// #![feature(unsafe_cell_access)]
2295 /// use std::cell::UnsafeCell;
2296 ///
2297 /// let uc = UnsafeCell::new(5);
2298 ///
2299 /// unsafe { *uc.as_mut_unchecked() += 1; }
2300 /// assert_eq!(uc.into_inner(), 6);
2301 /// ```
2302 #[inline]
2303 #[unstable(feature = "unsafe_cell_access", issue = "136327")]
2304 #[allow(clippy::mut_from_ref)]
2305 pub const unsafe fn as_mut_unchecked(&self) -> &mut T {
2306 // SAFETY: pointer comes from `&self` so naturally satisfies ptr-to-ref invariants.
2307 unsafe { self.get().as_mut_unchecked() }
2308 }
2309}
2310
2311#[stable(feature = "unsafe_cell_default", since = "1.10.0")]
2312impl<T: Default> Default for UnsafeCell<T> {
2313 /// Creates an `UnsafeCell`, with the `Default` value for T.
2314 fn default() -> UnsafeCell<T> {
2315 UnsafeCell::new(Default::default())
2316 }
2317}
2318
2319#[stable(feature = "cell_from", since = "1.12.0")]
2320impl<T> From<T> for UnsafeCell<T> {
2321 /// Creates a new `UnsafeCell<T>` containing the given value.
2322 fn from(t: T) -> UnsafeCell<T> {
2323 UnsafeCell::new(t)
2324 }
2325}
2326
2327#[unstable(feature = "coerce_unsized", issue = "18598")]
2328impl<T: CoerceUnsized<U>, U> CoerceUnsized<UnsafeCell<U>> for UnsafeCell<T> {}
2329
2330// Allow types that wrap `UnsafeCell` to also implement `DispatchFromDyn`
2331// and become dyn-compatible method receivers.
2332// Note that currently `UnsafeCell` itself cannot be a method receiver
2333// because it does not implement Deref.
2334// In other words:
2335// `self: UnsafeCell<&Self>` won't work
2336// `self: UnsafeCellWrapper<Self>` becomes possible
2337#[unstable(feature = "dispatch_from_dyn", issue = "none")]
2338impl<T: DispatchFromDyn<U>, U> DispatchFromDyn<UnsafeCell<U>> for UnsafeCell<T> {}
2339
2340#[unstable(feature = "pointer_like_trait", issue = "none")]
2341impl<T: PointerLike> PointerLike for UnsafeCell<T> {}
2342
2343/// [`UnsafeCell`], but [`Sync`].
2344///
2345/// This is just an `UnsafeCell`, except it implements `Sync`
2346/// if `T` implements `Sync`.
2347///
2348/// `UnsafeCell` doesn't implement `Sync`, to prevent accidental mis-use.
2349/// You can use `SyncUnsafeCell` instead of `UnsafeCell` to allow it to be
2350/// shared between threads, if that's intentional.
2351/// Providing proper synchronization is still the task of the user,
2352/// making this type just as unsafe to use.
2353///
2354/// See [`UnsafeCell`] for details.
2355#[unstable(feature = "sync_unsafe_cell", issue = "95439")]
2356#[repr(transparent)]
2357#[rustc_diagnostic_item = "SyncUnsafeCell"]
2358#[rustc_pub_transparent]
2359pub struct SyncUnsafeCell<T: ?Sized> {
2360 value: UnsafeCell<T>,
2361}
2362
2363#[unstable(feature = "sync_unsafe_cell", issue = "95439")]
2364unsafe impl<T: ?Sized + Sync> Sync for SyncUnsafeCell<T> {}
2365
2366#[unstable(feature = "sync_unsafe_cell", issue = "95439")]
2367impl<T> SyncUnsafeCell<T> {
2368 /// Constructs a new instance of `SyncUnsafeCell` which will wrap the specified value.
2369 #[inline]
2370 pub const fn new(value: T) -> Self {
2371 Self { value: UnsafeCell { value } }
2372 }
2373
2374 /// Unwraps the value, consuming the cell.
2375 #[inline]
2376 #[rustc_const_unstable(feature = "sync_unsafe_cell", issue = "95439")]
2377 pub const fn into_inner(self) -> T {
2378 self.value.into_inner()
2379 }
2380}
2381
2382#[unstable(feature = "sync_unsafe_cell", issue = "95439")]
2383impl<T: ?Sized> SyncUnsafeCell<T> {
2384 /// Gets a mutable pointer to the wrapped value.
2385 ///
2386 /// This can be cast to a pointer of any kind.
2387 /// Ensure that the access is unique (no active references, mutable or not)
2388 /// when casting to `&mut T`, and ensure that there are no mutations
2389 /// or mutable aliases going on when casting to `&T`
2390 #[inline]
2391 #[rustc_as_ptr]
2392 #[rustc_never_returns_null_ptr]
2393 pub const fn get(&self) -> *mut T {
2394 self.value.get()
2395 }
2396
2397 /// Returns a mutable reference to the underlying data.
2398 ///
2399 /// This call borrows the `SyncUnsafeCell` mutably (at compile-time) which
2400 /// guarantees that we possess the only reference.
2401 #[inline]
2402 pub const fn get_mut(&mut self) -> &mut T {
2403 self.value.get_mut()
2404 }
2405
2406 /// Gets a mutable pointer to the wrapped value.
2407 ///
2408 /// See [`UnsafeCell::get`] for details.
2409 #[inline]
2410 pub const fn raw_get(this: *const Self) -> *mut T {
2411 // We can just cast the pointer from `SyncUnsafeCell<T>` to `T` because
2412 // of #[repr(transparent)] on both SyncUnsafeCell and UnsafeCell.
2413 // See UnsafeCell::raw_get.
2414 this as *const T as *mut T
2415 }
2416}
2417
2418#[unstable(feature = "sync_unsafe_cell", issue = "95439")]
2419impl<T: Default> Default for SyncUnsafeCell<T> {
2420 /// Creates an `SyncUnsafeCell`, with the `Default` value for T.
2421 fn default() -> SyncUnsafeCell<T> {
2422 SyncUnsafeCell::new(Default::default())
2423 }
2424}
2425
2426#[unstable(feature = "sync_unsafe_cell", issue = "95439")]
2427impl<T> From<T> for SyncUnsafeCell<T> {
2428 /// Creates a new `SyncUnsafeCell<T>` containing the given value.
2429 fn from(t: T) -> SyncUnsafeCell<T> {
2430 SyncUnsafeCell::new(t)
2431 }
2432}
2433
2434#[unstable(feature = "coerce_unsized", issue = "18598")]
2435//#[unstable(feature = "sync_unsafe_cell", issue = "95439")]
2436impl<T: CoerceUnsized<U>, U> CoerceUnsized<SyncUnsafeCell<U>> for SyncUnsafeCell<T> {}
2437
2438// Allow types that wrap `SyncUnsafeCell` to also implement `DispatchFromDyn`
2439// and become dyn-compatible method receivers.
2440// Note that currently `SyncUnsafeCell` itself cannot be a method receiver
2441// because it does not implement Deref.
2442// In other words:
2443// `self: SyncUnsafeCell<&Self>` won't work
2444// `self: SyncUnsafeCellWrapper<Self>` becomes possible
2445#[unstable(feature = "dispatch_from_dyn", issue = "none")]
2446//#[unstable(feature = "sync_unsafe_cell", issue = "95439")]
2447impl<T: DispatchFromDyn<U>, U> DispatchFromDyn<SyncUnsafeCell<U>> for SyncUnsafeCell<T> {}
2448
2449#[unstable(feature = "pointer_like_trait", issue = "none")]
2450impl<T: PointerLike> PointerLike for SyncUnsafeCell<T> {}
2451
2452#[allow(unused)]
2453fn assert_coerce_unsized(
2454 a: UnsafeCell<&i32>,
2455 b: SyncUnsafeCell<&i32>,
2456 c: Cell<&i32>,
2457 d: RefCell<&i32>,
2458) {
2459 let _: UnsafeCell<&dyn Send> = a;
2460 let _: SyncUnsafeCell<&dyn Send> = b;
2461 let _: Cell<&dyn Send> = c;
2462 let _: RefCell<&dyn Send> = d;
2463}
2464
2465#[unstable(feature = "pin_coerce_unsized_trait", issue = "123430")]
2466unsafe impl<T: ?Sized> PinCoerceUnsized for UnsafeCell<T> {}
2467
2468#[unstable(feature = "pin_coerce_unsized_trait", issue = "123430")]
2469unsafe impl<T: ?Sized> PinCoerceUnsized for SyncUnsafeCell<T> {}
2470
2471#[unstable(feature = "pin_coerce_unsized_trait", issue = "123430")]
2472unsafe impl<T: ?Sized> PinCoerceUnsized for Cell<T> {}
2473
2474#[unstable(feature = "pin_coerce_unsized_trait", issue = "123430")]
2475unsafe impl<T: ?Sized> PinCoerceUnsized for RefCell<T> {}
2476
2477#[unstable(feature = "pin_coerce_unsized_trait", issue = "123430")]
2478unsafe impl<'b, T: ?Sized> PinCoerceUnsized for Ref<'b, T> {}
2479
2480#[unstable(feature = "pin_coerce_unsized_trait", issue = "123430")]
2481unsafe impl<'b, T: ?Sized> PinCoerceUnsized for RefMut<'b, T> {}