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core/ptr/
mod.rs

1//! Manually manage memory through raw pointers.
2//!
3//! *[See also the pointer primitive types](pointer).*
4//!
5//! # Safety
6//!
7//! Many functions in this module take raw pointers as arguments and read from or write to them. For
8//! this to be safe, these pointers must be *valid* for the given access. Whether a pointer is valid
9//! depends on the operation it is used for (read or write), and the extent of the memory that is
10//! accessed (i.e., how many bytes are read/written) -- it makes no sense to ask "is this pointer
11//! valid"; one has to ask "is this pointer valid for a given access". Most functions use `*mut T`
12//! and `*const T` to access only a single value, in which case the documentation omits the size and
13//! implicitly assumes it to be `size_of::<T>()` bytes.
14//!
15//! The precise rules for validity are not determined yet. The guarantees that are
16//! provided at this point are very minimal:
17//!
18//! * A [null] pointer is *never* valid for reads/writes.
19//! * For memory accesses of [size zero][zst], *every* non-null pointer is valid for reads/writes.
20//!   The following points are only concerned with non-zero-sized accesses.
21//! * For a pointer to be valid for reads/writes, it is necessary, but not always sufficient, that
22//!   the pointer be *dereferenceable*. The [provenance] of the pointer is used to determine which
23//!   [allocation] it is derived from; a pointer is dereferenceable if the memory range of the given
24//!   size starting at the pointer is entirely contained within the bounds of that allocation. Note
25//!   that in Rust, every (stack-allocated) variable is considered a separate allocation.
26//! * All accesses performed by functions in this module are *non-atomic* in the sense
27//!   of [atomic operations] used to synchronize between threads. This means it is
28//!   undefined behavior to perform two concurrent accesses to the same location from different
29//!   threads unless both accesses only read from memory.
30//! * The result of casting a reference to a pointer is valid for reads/writes for as long as the
31//!   underlying allocation is live and no reference (just raw pointers) is used to
32//!   access the same memory. That is, reference and pointer accesses cannot be
33//!   interleaved.
34//!
35//! These axioms, along with careful use of [`offset`] for pointer arithmetic,
36//! are enough to correctly implement many useful things in unsafe code. Stronger guarantees
37//! will be provided eventually, as the [aliasing] rules are being determined. For more
38//! information, see the [book] as well as the section in the reference devoted
39//! to [undefined behavior][ub].
40//!
41//! Note that some operations such as [`read`] and [`write`][`write()`] do allow null pointers if
42//! the total size of the access is zero. However, other operations internally convert pointers into
43//! references. Therefore, the general notion of "valid for reads/writes" excludes null pointers,
44//! and the specific operations that permit null pointers mention that as an exception. Furthermore,
45//! [`read_volatile`] and [`write_volatile`] can be used in even more situations; see their
46//! documentation for details.
47//!
48//! We say that a pointer is "dangling" if it is not valid for any non-zero-sized accesses. This
49//! means out-of-bounds pointers, pointers to freed memory, null pointers, and pointers created with
50//! [`NonNull::dangling`] are all dangling.
51//!
52//! ## Alignment
53//!
54//! Valid raw pointers as defined above are not necessarily properly aligned (where
55//! "proper" alignment is defined by the pointee type, i.e., `*const T` must be
56//! aligned to `align_of::<T>()`). However, most functions require their
57//! arguments to be properly aligned, and will explicitly state
58//! this requirement in their documentation. Notable exceptions to this are
59//! [`read_unaligned`] and [`write_unaligned`].
60//!
61//! When a function requires proper alignment, it does so even if the access
62//! has size 0, i.e., even if memory is not actually touched. Consider using
63//! [`NonNull::dangling`] in such cases.
64//!
65//! ## Pointer to reference conversion
66//!
67//! When converting a pointer to a reference (e.g. via `&*ptr` or `&mut *ptr`),
68//! there are several rules that must be followed:
69//!
70//! * The pointer must be properly aligned.
71//!
72//! * It must be non-null.
73//!
74//! * It must be "dereferenceable" in the sense defined above.
75//!
76//! * The pointer must point to a [valid value] of type `T`.
77//!
78//! * You must enforce Rust's aliasing rules. The exact aliasing rules are not decided yet, so we
79//!   only give a rough overview here. The rules also depend on whether a mutable or a shared
80//!   reference is being created.
81//!   * When creating a mutable reference, then while this reference exists, the memory it points to
82//!     must not get accessed (read or written) through any other pointer or reference not derived
83//!     from this reference.
84//!   * When creating a shared reference, then while this reference exists, the memory it points to
85//!     must not get mutated (except inside `UnsafeCell`).
86//!
87//! If a pointer follows all of these rules, it is said to be
88//! *convertible to a (mutable or shared) reference*.
89// ^ we use this term instead of saying that the produced reference must
90// be valid, as the validity of a reference is easily confused for the
91// validity of the thing it refers to, and while the two concepts are
92// closely related, they are not identical.
93//!
94//! These rules apply even if the result is unused!
95//! (The part about being initialized is not yet fully decided, but until
96//! it is, the only safe approach is to ensure that they are indeed initialized.)
97//!
98//! An example of the implications of the above rules is that an expression such
99//! as `unsafe { &*(0 as *const u8) }` is Immediate Undefined Behavior.
100//!
101//! [valid value]: ../../reference/behavior-considered-undefined.html#invalid-values
102//!
103//! ## Allocation
104//!
105//! <a id="allocated-object"></a> <!-- keep old URLs working -->
106//!
107//! An *allocation* is a subset of program memory which is addressable
108//! from Rust, and within which pointer arithmetic is possible. Examples of
109//! allocations include heap allocations, stack-allocated variables,
110//! statics, and consts. The safety preconditions of some Rust operations -
111//! such as `offset` and field projections (`expr.field`) - are defined in
112//! terms of the allocations on which they operate.
113//!
114//! An allocation has a base address, a size, and a set of memory
115//! addresses. It is possible for an allocation to have zero size, but
116//! such an allocation will still have a base address. The base address
117//! of an allocation is not necessarily unique. While it is currently the
118//! case that an allocation always has a set of memory addresses which is
119//! fully contiguous (i.e., has no "holes"), there is no guarantee that this
120//! will not change in the future.
121//!
122//! An allocation can be either mutable (the common case) or *read-only*.
123//! Read-only allocations are implicitly introduced by the compiler for `static` items without
124//! interior mutability and for `const` items. Writing or creating a mutable reference to a
125//! read-only allocation is undefined behavior, and most atomic operations are not supported
126//! for read-only allocations either (see [here][atomic-ro] for exceptions).
127//! Additionally, some target-specific intrinsics are not supported on read-only
128//! allocations even if their memory write is masked off, such as [`_mm_maskmoveu_si128`].
129//!
130//! [atomic-ro]: crate::sync::atomic#atomic-accesses-to-read-only-memory
131//! [`_mm_maskmoveu_si128`]: ../../core/arch/x86/fn._mm_maskmoveu_si128.html
132//!
133//! Allocations must behave like "normal" memory: in particular, reads must not have
134//! side-effects, and writes must become visible to other threads using the usual synchronization
135//! primitives.
136//! Allocations must support all atomic operations that are available for the target (as
137//! determined by the `target_has_atomic*` set of cfg flags).
138//! Read-only allocations only have to support the operations [permitted there][atomic-ro].
139//! The precise instructions used for atomic operations are generally not guaranteed, so portable
140//! software should place all Rust allocations in memory regions that support all atomic
141//! instructions.
142//!
143//! For any allocation with `base` address, `size`, and a set of
144//! `addresses`, the following are guaranteed:
145//! - For all addresses `a` in `addresses`, `a` is in the range `base .. (base +
146//!   size)` (note that this requires `a < base + size`, not `a <= base + size`)
147//! - `base` is not equal to [`null()`] (i.e., the address with the numerical
148//!   value 0)
149//! - `base + size <= usize::MAX`
150//! - `size <= isize::MAX`
151//!
152//! As a consequence of these guarantees, given any address `a` within the set
153//! of addresses of an allocation:
154//! - It is guaranteed that `a - base` does not overflow `isize`
155//! - It is guaranteed that `a - base` is non-negative
156//! - It is guaranteed that, given `o = a - base` (i.e., the offset of `a` within
157//!   the allocation), `base + o` will not wrap around the address space (in
158//!   other words, will not overflow `usize`)
159//!
160//! Allocations typically have a fixed size that cannot change. However, allocations created by
161//! directly invoking page table operations of the operating system, e.g. via `mmap`, are allowed to
162//! grow by adding more pages to them at the end. Unmapping parts of an allocation (i.e., shrinking
163//! it or punching holes into it) is currently not supported. Allocations created via
164//! "compiler-recognized" operations, such as `std::alloc` methods or `libc::malloc`, can never
165//! change their size, even if they use `mmap` under the hood.
166//!
167//! [`null()`]: null
168//!
169//! # Provenance
170//!
171//! Pointers are not *simply* an "integer" or "address". For instance, it's uncontroversial
172//! to say that a Use After Free is clearly Undefined Behavior, even if you "get lucky"
173//! and the freed memory gets reallocated before your read/write (in fact this is the
174//! worst-case scenario, UAFs would be much less concerning if this didn't happen!).
175//! As another example, consider that [`wrapping_offset`] is documented to "remember"
176//! the allocation that the original pointer points to, even if it is offset far
177//! outside the memory range occupied by that allocation.
178//! To rationalize claims like this, pointers need to somehow be *more* than just their addresses:
179//! they must have **provenance**.
180//!
181//! A pointer value in Rust semantically contains the following information:
182//!
183//! * The **address** it points to, which can be represented by a `usize`.
184//! * The **provenance** it has, defining the memory it has permission to access. Provenance can be
185//!   absent, in which case the pointer does not have permission to access any memory.
186//!
187//! The exact structure of provenance is not yet specified, but the permission defined by a
188//! pointer's provenance have a *spatial* component, a *temporal* component, and a *mutability*
189//! component:
190//!
191//! * Spatial: The set of memory addresses that the pointer is allowed to access.
192//! * Temporal: The timespan during which the pointer is allowed to access those memory addresses.
193//! * Mutability: Whether the pointer may only access the memory for reads, or also access it for
194//!   writes. Note that this can interact with the other components, e.g. a pointer might permit
195//!   mutation only for a subset of addresses, or only for a subset of its maximal timespan.
196//!
197//! When an [allocation] is created, it has a unique Original Pointer. For alloc
198//! APIs this is literally the pointer the call returns, and for local variables and statics,
199//! this is the name of the variable/static. (This is mildly overloading the term "pointer"
200//! for the sake of brevity/exposition.)
201//!
202//! The Original Pointer for an allocation has provenance that constrains the *spatial*
203//! permissions of this pointer to the memory range of the allocation, and the *temporal*
204//! permissions to the lifetime of the allocation. Provenance is implicitly inherited by all
205//! pointers transitively derived from the Original Pointer through operations like [`offset`],
206//! borrowing, and pointer casts. Some operations may *shrink* the permissions of the derived
207//! provenance, limiting how much memory it can access or how long it's valid for (i.e. borrowing a
208//! subfield and subslicing can shrink the spatial component of provenance, and all borrowing can
209//! shrink the temporal component of provenance). However, no operation can ever *grow* the
210//! permissions of the derived provenance: even if you "know" there is a larger allocation, you
211//! can't derive a pointer with a larger provenance. Similarly, you cannot "recombine" two
212//! contiguous provenances back into one (i.e. with a `fn merge(&[T], &[T]) -> &[T]`).
213//!
214//! A reference to a place always has provenance over at least the memory that place occupies.
215//! A reference to a slice always has provenance over at least the range that slice describes.
216//! Whether and when exactly the provenance of a reference gets "shrunk" to *exactly* fit
217//! the memory it points to is not yet determined.
218//!
219//! A *shared* reference only ever has provenance that permits reading from memory,
220//! and never permits writes, except inside [`UnsafeCell`].
221//!
222//! Provenance can affect whether a program has undefined behavior:
223//!
224//! * It is undefined behavior to access memory through a pointer that does not have provenance over
225//!   that memory. Note that a pointer "at the end" of its provenance is not actually outside its
226//!   provenance, it just has 0 bytes it can load/store. Zero-sized accesses do not require any
227//!   provenance since they access an empty range of memory.
228//!
229//! * It is undefined behavior to [`offset`] a pointer across a memory range that is not contained
230//!   in the allocation it is derived from, or to [`offset_from`] two pointers not derived
231//!   from the same allocation. Provenance is used to say what exactly "derived from" even
232//!   means: the lineage of a pointer is traced back to the Original Pointer it descends from, and
233//!   that identifies the relevant allocation. In particular, it's always UB to offset a
234//!   pointer derived from something that is now deallocated, except if the offset is 0.
235//!
236//! But it *is* still sound to:
237//!
238//! * Create a pointer without provenance from just an address (see [`without_provenance`]). Such a
239//!   pointer cannot be used for memory accesses (except for zero-sized accesses). This can still be
240//!   useful for sentinel values like `null` *or* to represent a tagged pointer that will never be
241//!   dereferenceable. In general, it is always sound for an integer to pretend to be a pointer "for
242//!   fun" as long as you don't use operations on it which require it to be valid (non-zero-sized
243//!   offset, read, write, etc).
244//!
245//! * Forge an allocation of size zero at any sufficiently aligned non-null address.
246//!   i.e. the usual "ZSTs are fake, do what you want" rules apply.
247//!
248//! * [`wrapping_offset`] a pointer outside its provenance. This includes pointers
249//!   which have "no" provenance. In particular, this makes it sound to do pointer tagging tricks.
250//!
251//! * Compare arbitrary pointers by address. Pointer comparison ignores provenance and addresses
252//!   *are* just integers, so there is always a coherent answer, even if the pointers are dangling
253//!   or from different provenances. Note that if you get "lucky" and notice that a pointer at the
254//!   end of one allocation is the "same" address as the start of another allocation,
255//!   anything you do with that fact is *probably* going to be gibberish. The scope of that
256//!   gibberish is kept under control by the fact that the two pointers *still* aren't allowed to
257//!   access the other's allocation (bytes), because they still have different provenance.
258//!
259//! Note that the full definition of provenance in Rust is not decided yet, as this interacts
260//! with the as-yet undecided [aliasing] rules.
261//!
262//! ## Pointers Vs Integers
263//!
264//! From this discussion, it becomes very clear that a `usize` *cannot* accurately represent a pointer,
265//! and converting from a pointer to a `usize` is generally an operation which *only* extracts the
266//! address. Converting this address back into pointer requires somehow answering the question:
267//! which provenance should the resulting pointer have?
268//!
269//! Rust provides two ways of dealing with this situation: *Strict Provenance* and *Exposed Provenance*.
270//!
271//! Note that a pointer *can* represent a `usize` (via [`without_provenance`]), so the right type to
272//! use in situations where a value is "sometimes a pointer and sometimes a bare `usize`" is a
273//! pointer type.
274//!
275//! ## Strict Provenance
276//!
277//! "Strict Provenance" refers to a set of APIs designed to make working with provenance more
278//! explicit. They are intended as substitutes for casting a pointer to an integer and back.
279//!
280//! Entirely avoiding integer-to-pointer casts successfully side-steps the inherent ambiguity of
281//! that operation. This benefits compiler optimizations, and it is pretty much a requirement for
282//! using tools like [Miri] and architectures like [CHERI] that aim to detect and diagnose pointer
283//! misuse.
284//!
285//! The key insight to making programming without integer-to-pointer casts *at all* viable is the
286//! [`with_addr`] method:
287//!
288//! ```text
289//! /// Creates a new pointer with the given address and the provenance  of `self`.
290//! ///
291//! /// This is similar to a `addr as *const T` cast,
292//! /// but copies the provenance of `self` to the new pointer.
293//! /// This avoids the inherent ambiguity of the unary cast.
294//! ///
295//! /// This is equivalent to using `wrapping_offset` to offset `self` to the given address,
296//! /// and therefore has all the same capabilities and restrictions.
297//! pub fn with_addr(self, addr: usize) -> Self;
298//! ```
299//!
300//! So you're still able to drop down to the address representation and do whatever
301//! clever bit tricks you want *as long as* you're able to keep around a pointer
302//! into the allocation you care about that can "reconstitute" the provenance.
303//! Usually this is very easy, because you only are taking a pointer, messing with the address,
304//! and then immediately converting back to a pointer. To make this use case more ergonomic,
305//! we provide the [`map_addr`] method.
306//!
307//! To help make it clear that code is "following" Strict Provenance semantics, we also provide an
308//! [`addr`] method which promises that the returned address is not part of a
309//! pointer-integer-pointer roundtrip. In the future we may provide a lint for pointer<->integer
310//! casts to help you audit if your code conforms to strict provenance.
311//!
312//! ### Using Strict Provenance
313//!
314//! Most code needs no changes to conform to strict provenance, as the only really concerning
315//! operation is casts from `usize` to a pointer. For code which *does* cast a `usize` to a pointer,
316//! the scope of the change depends on exactly what you're doing.
317//!
318//! In general, you just need to make sure that if you want to convert a `usize` address to a
319//! pointer and then use that pointer to read/write memory, you need to keep around a pointer
320//! that has sufficient provenance to perform that read/write itself. In this way all of your
321//! casts from an address to a pointer are essentially just applying offsets/indexing.
322//!
323//! This is generally trivial to do for simple cases like tagged pointers *as long as you
324//! represent the tagged pointer as an actual pointer and not a `usize`*. For instance:
325//!
326//! ```
327//! // A flag we want to pack into our pointer
328//! static HAS_DATA: usize = 0x1;
329//! static FLAG_MASK: usize = !HAS_DATA;
330//!
331//! // Our value, which must have enough alignment to have spare least-significant-bits.
332//! let my_precious_data: u32 = 17;
333//! assert!(align_of::<u32>() > 1);
334//!
335//! // Create a tagged pointer
336//! let ptr = &my_precious_data as *const u32;
337//! let tagged = ptr.map_addr(|addr| addr | HAS_DATA);
338//!
339//! // Check the flag:
340//! if tagged.addr() & HAS_DATA != 0 {
341//!     // Untag and read the pointer
342//!     let data = unsafe { *tagged.map_addr(|addr| addr & FLAG_MASK) };
343//!     assert_eq!(data, 17);
344//! } else {
345//!     unreachable!()
346//! }
347//! ```
348//!
349//! (Yes, if you've been using [`AtomicUsize`] for pointers in concurrent datastructures, you should
350//! be using [`AtomicPtr`] instead. If that messes up the way you atomically manipulate pointers,
351//! we would like to know why, and what needs to be done to fix it.)
352//!
353//! Situations where a valid pointer *must* be created from just an address, such as baremetal code
354//! accessing a memory-mapped interface at a fixed address, cannot currently be handled with strict
355//! provenance APIs and should use [exposed provenance](#exposed-provenance).
356//!
357//! ## Exposed Provenance
358//!
359//! As discussed above, integer-to-pointer casts are not possible with Strict Provenance APIs.
360//! This is by design: the goal of Strict Provenance is to provide a clear specification that we are
361//! confident can be formalized unambiguously and can be subject to precise formal reasoning.
362//! Integer-to-pointer casts do not (currently) have such a clear specification.
363//!
364//! However, there exist situations where integer-to-pointer casts cannot be avoided, or
365//! where avoiding them would require major refactoring. Legacy platform APIs also regularly assume
366//! that `usize` can capture all the information that makes up a pointer.
367//! Bare-metal platforms can also require the synthesis of a pointer "out of thin air" without
368//! anywhere to obtain proper provenance from.
369//!
370//! Rust's model for dealing with integer-to-pointer casts is called *Exposed Provenance*. However,
371//! the semantics of Exposed Provenance are on much less solid footing than Strict Provenance, and
372//! at this point it is not yet clear whether a satisfying unambiguous semantics can be defined for
373//! Exposed Provenance. (If that sounds bad, be reassured that other popular languages that provide
374//! integer-to-pointer casts are not faring any better.) Furthermore, Exposed Provenance will not
375//! work (well) with tools like [Miri] and [CHERI].
376//!
377//! Exposed Provenance is provided by the [`expose_provenance`] and [`with_exposed_provenance`] methods,
378//! which are equivalent to `as` casts between pointers and integers.
379//! - [`expose_provenance`] is a lot like [`addr`], but additionally adds the provenance of the
380//!   pointer to a global list of 'exposed' provenances. (This list is purely conceptual, it exists
381//!   for the purpose of specifying Rust but is not materialized in actual executions, except in
382//!   tools like [Miri].)
383//!   Memory which is outside the control of the Rust abstract machine (MMIO registers, for example)
384//!   is always considered to be exposed, so long as this memory is disjoint from memory that will
385//!   be used by the abstract machine such as the stack, heap, and statics.
386//! - [`with_exposed_provenance`] can be used to construct a pointer with one of these previously
387//!   'exposed' provenances. [`with_exposed_provenance`] takes only `addr: usize` as arguments, so
388//!   unlike in [`with_addr`] there is no indication of what the correct provenance for the returned
389//!   pointer is -- and that is exactly what makes integer-to-pointer casts so tricky to rigorously
390//!   specify! The compiler will do its best to pick the right provenance for you, but currently we
391//!   cannot provide any guarantees about which provenance the resulting pointer will have. Only one
392//!   thing is clear: if there is *no* previously 'exposed' provenance that justifies the way the
393//!   returned pointer will be used, the program has undefined behavior.
394//!
395//! If at all possible, we encourage code to be ported to [Strict Provenance] APIs, thus avoiding
396//! the need for Exposed Provenance. Maximizing the amount of such code is a major win for avoiding
397//! specification complexity and to facilitate adoption of tools like [CHERI] and [Miri] that can be
398//! a big help in increasing the confidence in (unsafe) Rust code. However, we acknowledge that this
399//! is not always possible, and offer Exposed Provenance as a way to explicit "opt out" of the
400//! well-defined semantics of Strict Provenance, and "opt in" to the unclear semantics of
401//! integer-to-pointer casts.
402//!
403//! [aliasing]: ../../nomicon/aliasing.html
404//! [allocation]: #allocation
405//! [provenance]: #provenance
406//! [book]: ../../book/ch19-01-unsafe-rust.html#dereferencing-a-raw-pointer
407//! [ub]: ../../reference/behavior-considered-undefined.html
408//! [zst]: ../../nomicon/exotic-sizes.html#zero-sized-types-zsts
409//! [atomic operations]: crate::sync::atomic
410//! [`offset`]: pointer::offset
411//! [`offset_from`]: pointer::offset_from
412//! [`wrapping_offset`]: pointer::wrapping_offset
413//! [`with_addr`]: pointer::with_addr
414//! [`map_addr`]: pointer::map_addr
415//! [`addr`]: pointer::addr
416//! [`AtomicUsize`]: crate::sync::atomic::AtomicUsize
417//! [`AtomicPtr`]: crate::sync::atomic::AtomicPtr
418//! [`expose_provenance`]: pointer::expose_provenance
419//! [`with_exposed_provenance`]: with_exposed_provenance
420//! [Miri]: https://github.com/rust-lang/miri
421//! [CHERI]: https://www.cl.cam.ac.uk/research/security/ctsrd/cheri/
422//! [Strict Provenance]: #strict-provenance
423//! [`UnsafeCell`]: core::cell::UnsafeCell
424
425#![stable(feature = "rust1", since = "1.0.0")]
426// There are many unsafe functions taking pointers that don't dereference them.
427#![allow(clippy::not_unsafe_ptr_arg_deref)]
428
429use crate::cmp::Ordering;
430use crate::intrinsics::const_eval_select;
431use crate::marker::{Destruct, PointeeSized};
432use crate::mem::{self, MaybeUninit, SizedTypeProperties};
433use crate::num::NonZero;
434use crate::ops::FnPtr;
435use crate::{fmt, hash, intrinsics, ub_checks};
436
437#[unstable(feature = "ptr_alignment_type", issue = "102070")]
438#[deprecated(since = "1.96.0", note = "moved from `ptr` to `mem`")]
439/// Deprecated re-export of [mem::Alignment].
440pub type Alignment = mem::Alignment;
441
442mod metadata;
443#[unstable(feature = "ptr_metadata", issue = "81513")]
444pub use metadata::{DynMetadata, Pointee, Thin, from_raw_parts, from_raw_parts_mut, metadata};
445
446mod non_null;
447#[stable(feature = "nonnull", since = "1.25.0")]
448pub use non_null::NonNull;
449
450mod unique;
451#[unstable(feature = "ptr_internals", issue = "none")]
452pub use unique::Unique;
453
454mod const_ptr;
455mod mut_ptr;
456
457// Some functions are defined here because they accidentally got made
458// available in this module on stable. See <https://github.com/rust-lang/rust/issues/15702>.
459// (`transmute` also falls into this category, but it cannot be wrapped due to the
460// check that `T` and `U` have the same size.)
461
462/// Copies `count * size_of::<T>()` bytes from `src` to `dst`. The source
463/// and destination must *not* overlap.
464///
465/// For regions of memory which might overlap, use [`copy`] instead.
466///
467/// `copy_nonoverlapping` is semantically equivalent to C's [`memcpy`], but
468/// with the source and destination arguments swapped,
469/// and `count` counting the number of `T`s instead of bytes.
470///
471/// The copy is "untyped" in the sense that data may be uninitialized or otherwise violate the
472/// requirements of `T`. The initialization state is preserved exactly.
473///
474/// [`memcpy`]: https://en.cppreference.com/w/c/string/byte/memcpy
475///
476/// # Safety
477///
478/// Behavior is undefined if any of the following conditions are violated:
479///
480/// * `src` must be [valid] for reads of `count * size_of::<T>()` bytes or that number must be 0.
481///
482/// * `dst` must be [valid] for writes of `count * size_of::<T>()` bytes or that number must be 0.
483///
484/// * Both `src` and `dst` must be properly aligned.
485///
486/// * The region of memory beginning at `src` with a size of `count *
487///   size_of::<T>()` bytes must *not* overlap with the region of memory
488///   beginning at `dst` with the same size.
489///
490/// Like [`read`], `copy_nonoverlapping` creates a bitwise copy of `T`, regardless of
491/// whether `T` is [`Copy`]. If `T` is not [`Copy`], using *both* the values
492/// in the region beginning at `*src` and the region beginning at `*dst` can
493/// [violate memory safety][read-ownership].
494///
495/// Note that even if the effectively copied size (`count * size_of::<T>()`) is
496/// `0`, the pointers must be properly aligned.
497///
498/// [`read`]: crate::ptr::read
499/// [read-ownership]: crate::ptr::read#ownership-of-the-returned-value
500/// [valid]: crate::ptr#safety
501///
502/// # Examples
503///
504/// Manually implement [`Vec::append`]:
505///
506/// ```
507/// use std::ptr;
508///
509/// /// Moves all the elements of `src` into `dst`, leaving `src` empty.
510/// fn append<T>(dst: &mut Vec<T>, src: &mut Vec<T>) {
511///     let src_len = src.len();
512///     let dst_len = dst.len();
513///
514///     // Ensure that `dst` has enough capacity to hold all of `src`.
515///     dst.reserve(src_len);
516///
517///     unsafe {
518///         // The call to add is always safe because `Vec` will never
519///         // allocate more than `isize::MAX` bytes.
520///         let dst_ptr = dst.as_mut_ptr().add(dst_len);
521///         let src_ptr = src.as_ptr();
522///
523///         // Truncate `src` without dropping its contents. We do this first,
524///         // to avoid problems in case something further down panics.
525///         src.set_len(0);
526///
527///         // The two regions cannot overlap because mutable references do
528///         // not alias, and two different vectors cannot own the same
529///         // memory.
530///         ptr::copy_nonoverlapping(src_ptr, dst_ptr, src_len);
531///
532///         // Notify `dst` that it now holds the contents of `src`.
533///         dst.set_len(dst_len + src_len);
534///     }
535/// }
536///
537/// let mut a = vec!['r'];
538/// let mut b = vec!['u', 's', 't'];
539///
540/// append(&mut a, &mut b);
541///
542/// assert_eq!(a, &['r', 'u', 's', 't']);
543/// assert!(b.is_empty());
544/// ```
545///
546/// [`Vec::append`]: ../../std/vec/struct.Vec.html#method.append
547#[doc(alias = "memcpy")]
548#[stable(feature = "rust1", since = "1.0.0")]
549#[rustc_const_stable(feature = "const_intrinsic_copy", since = "1.83.0")]
550#[inline(always)]
551#[cfg_attr(miri, track_caller)] // even without panics, this helps for Miri backtraces
552#[rustc_diagnostic_item = "ptr_copy_nonoverlapping"]
553pub const unsafe fn copy_nonoverlapping<T>(src: *const T, dst: *mut T, count: usize) {
554    ub_checks::assert_unsafe_precondition!(
555        check_language_ub,
556        "ptr::copy_nonoverlapping requires that both pointer arguments are aligned and non-null \
557        and the specified memory ranges do not overlap",
558        (
559            src: *const () = src as *const (),
560            dst: *mut () = dst as *mut (),
561            size: usize = size_of::<T>(),
562            align: usize = align_of::<T>(),
563            count: usize = count,
564        ) => {
565            let zero_size = count == 0 || size == 0;
566            ub_checks::maybe_is_aligned_and_not_null(src, align, zero_size)
567                && ub_checks::maybe_is_aligned_and_not_null(dst, align, zero_size)
568                && ub_checks::maybe_is_nonoverlapping(src, dst, size, count)
569        }
570    );
571
572    // SAFETY: the safety contract for `copy_nonoverlapping` must be
573    // upheld by the caller.
574    unsafe { crate::intrinsics::copy_nonoverlapping(src, dst, count) }
575}
576
577/// Copies `count * size_of::<T>()` bytes from `src` to `dst`. The source
578/// and destination may overlap.
579///
580/// If the source and destination will *never* overlap,
581/// [`copy_nonoverlapping`] can be used instead.
582///
583/// `copy` is semantically equivalent to C's [`memmove`], but
584/// with the source and destination arguments swapped,
585/// and `count` counting the number of `T`s instead of bytes.
586/// Copying takes place as if the bytes were copied from `src`
587/// to a temporary array and then copied from the array to `dst`.
588///
589/// The copy is "untyped" in the sense that data may be uninitialized or otherwise violate the
590/// requirements of `T`. The initialization state is preserved exactly.
591///
592/// [`memmove`]: https://en.cppreference.com/w/c/string/byte/memmove
593///
594/// # Safety
595///
596/// Behavior is undefined if any of the following conditions are violated:
597///
598/// * `src` must be [valid] for reads of `count * size_of::<T>()` bytes or that number must be 0.
599///
600/// * `dst` must be [valid] for writes of `count * size_of::<T>()` bytes or that number must be 0,
601///   and `dst` must remain valid even when `src` is read for `count * size_of::<T>()` bytes. (This
602///   means if the memory ranges overlap, the `dst` pointer must not be invalidated by `src` reads.)
603///
604/// * Both `src` and `dst` must be properly aligned.
605///
606/// Like [`read`], `copy` creates a bitwise copy of `T`, regardless of
607/// whether `T` is [`Copy`]. If `T` is not [`Copy`], using both the values
608/// in the region beginning at `*src` and the region beginning at `*dst` can
609/// [violate memory safety][read-ownership].
610///
611/// Note that even if the effectively copied size (`count * size_of::<T>()`) is
612/// `0`, the pointers must be properly aligned.
613///
614/// [`read`]: crate::ptr::read
615/// [read-ownership]: crate::ptr::read#ownership-of-the-returned-value
616/// [valid]: crate::ptr#safety
617///
618/// # Examples
619///
620/// Efficiently create a Rust vector from an unsafe buffer:
621///
622/// ```
623/// use std::ptr;
624///
625/// /// # Safety
626/// ///
627/// /// * `ptr` must be correctly aligned for its type and non-zero.
628/// /// * `ptr` must be valid for reads of `elts` contiguous elements of type `T`.
629/// /// * Those elements must not be used after calling this function unless `T: Copy`.
630/// # #[allow(dead_code)]
631/// unsafe fn from_buf_raw<T>(ptr: *const T, elts: usize) -> Vec<T> {
632///     let mut dst = Vec::with_capacity(elts);
633///
634///     // SAFETY: Our precondition ensures the source is aligned and valid,
635///     // and `Vec::with_capacity` ensures that we have usable space to write them.
636///     unsafe { ptr::copy(ptr, dst.as_mut_ptr(), elts); }
637///
638///     // SAFETY: We created it with this much capacity earlier,
639///     // and the previous `copy` has initialized these elements.
640///     unsafe { dst.set_len(elts); }
641///     dst
642/// }
643/// ```
644#[doc(alias = "memmove")]
645#[stable(feature = "rust1", since = "1.0.0")]
646#[rustc_const_stable(feature = "const_intrinsic_copy", since = "1.83.0")]
647#[inline(always)]
648#[cfg_attr(miri, track_caller)] // even without panics, this helps for Miri backtraces
649#[rustc_diagnostic_item = "ptr_copy"]
650pub const unsafe fn copy<T>(src: *const T, dst: *mut T, count: usize) {
651    // SAFETY: the safety contract for `copy` must be upheld by the caller.
652    unsafe {
653        ub_checks::assert_unsafe_precondition!(
654            check_language_ub,
655            "ptr::copy requires that both pointer arguments are aligned and non-null",
656            (
657                src: *const () = src as *const (),
658                dst: *mut () = dst as *mut (),
659                align: usize = align_of::<T>(),
660                zero_size: bool = T::IS_ZST || count == 0,
661            ) =>
662            ub_checks::maybe_is_aligned_and_not_null(src, align, zero_size)
663                && ub_checks::maybe_is_aligned_and_not_null(dst, align, zero_size)
664        );
665        crate::intrinsics::copy(src, dst, count)
666    }
667}
668
669/// Sets `count * size_of::<T>()` bytes of memory starting at `dst` to
670/// `val`.
671///
672/// `write_bytes` is similar to C's [`memset`], but sets `count *
673/// size_of::<T>()` bytes to `val`.
674///
675/// [`memset`]: https://en.cppreference.com/w/c/string/byte/memset
676///
677/// # Safety
678///
679/// Behavior is undefined if any of the following conditions are violated:
680///
681/// * `dst` must be [valid] for writes of `count * size_of::<T>()` bytes.
682///
683/// * `dst` must be properly aligned.
684///
685/// Note that even if the effectively copied size (`count * size_of::<T>()`) is
686/// `0`, the pointer must be properly aligned.
687///
688/// Additionally, note that changing `*dst` in this way can easily lead to undefined behavior (UB)
689/// later if the written bytes are not a valid representation of some `T`. For instance, the
690/// following is an **incorrect** use of this function:
691///
692/// ```rust,no_run
693/// unsafe {
694///     let mut value: u8 = 0;
695///     let ptr: *mut bool = &mut value as *mut u8 as *mut bool;
696///     let _bool = ptr.read(); // This is fine, `ptr` points to a valid `bool`.
697///     ptr.write_bytes(42u8, 1); // This function itself does not cause UB...
698///     let _bool = ptr.read(); // ...but it makes this operation UB! ⚠️
699/// }
700/// ```
701///
702/// [valid]: crate::ptr#safety
703///
704/// # Examples
705///
706/// Basic usage:
707///
708/// ```
709/// use std::ptr;
710///
711/// let mut vec = vec![0u32; 4];
712/// unsafe {
713///     let vec_ptr = vec.as_mut_ptr();
714///     ptr::write_bytes(vec_ptr, 0xfe, 2);
715/// }
716/// assert_eq!(vec, [0xfefefefe, 0xfefefefe, 0, 0]);
717/// ```
718#[doc(alias = "memset")]
719#[stable(feature = "rust1", since = "1.0.0")]
720#[rustc_const_stable(feature = "const_ptr_write", since = "1.83.0")]
721#[inline(always)]
722#[cfg_attr(miri, track_caller)] // even without panics, this helps for Miri backtraces
723#[rustc_diagnostic_item = "ptr_write_bytes"]
724pub const unsafe fn write_bytes<T>(dst: *mut T, val: u8, count: usize) {
725    // SAFETY: the safety contract for `write_bytes` must be upheld by the caller.
726    unsafe {
727        ub_checks::assert_unsafe_precondition!(
728            check_language_ub,
729            "ptr::write_bytes requires that the destination pointer is aligned and non-null",
730            (
731                addr: *const () = dst as *const (),
732                align: usize = align_of::<T>(),
733                zero_size: bool = T::IS_ZST || count == 0,
734            ) => ub_checks::maybe_is_aligned_and_not_null(addr, align, zero_size)
735        );
736        crate::intrinsics::write_bytes(dst, val, count)
737    }
738}
739
740/// Executes the destructor (if any) of the pointed-to value.
741///
742/// This is almost the same as calling [`ptr::read`] and discarding
743/// the result, but has the following advantages:
744// FIXME: say something more useful than "almost the same"?
745// There are open questions here: `read` requires the value to be fully valid, e.g. if `T` is a
746// `bool` it must be 0 or 1, if it is a reference then it must be dereferenceable. `drop_in_place`
747// only requires that `*to_drop` be "valid for dropping" and we have not defined what that means. In
748// Miri it currently (May 2024) requires nothing at all for types without drop glue.
749///
750/// * It is *required* to use `drop_in_place` to drop unsized types like
751///   trait objects, because they can't be read out onto the stack and
752///   dropped normally.
753///
754/// * It is friendlier to the optimizer to do this over [`ptr::read`] when
755///   dropping manually allocated memory (e.g., in the implementations of
756///   `Box`/`Rc`/`Vec`), as the compiler doesn't need to prove that it's
757///   sound to elide the copy.
758///
759/// * It can be used to drop [pinned] data when `T` is not `repr(packed)`
760///   (pinned data must not be moved before it is dropped).
761///
762/// Unaligned values cannot be dropped in place, they must be copied to an aligned
763/// location first using [`ptr::read_unaligned`]. For packed structs, this move is
764/// done automatically by the compiler. This means the fields of packed structs
765/// are not dropped in-place.
766///
767/// [`ptr::read`]: self::read
768/// [`ptr::read_unaligned`]: self::read_unaligned
769/// [pinned]: crate::pin
770///
771/// # Safety
772///
773/// Behavior is undefined if any of the following conditions are violated:
774///
775/// * `to_drop` must be [valid] for both reads and writes.
776///
777/// * `to_drop` must be properly aligned, even if `T` has size 0.
778///
779/// * `to_drop` must be nonnull, even if `T` has size 0.
780///
781/// * The value `to_drop` points to must be valid for dropping, which may mean
782///   it must uphold additional invariants. These invariants depend on the type
783///   of the value being dropped. For instance, when dropping a Box, the box's
784///   pointer to the heap must be valid.
785///
786/// * While `drop_in_place` is executing, the only way to access parts of
787///   `to_drop` is through the `&mut self` references supplied to the
788///   `Drop::drop` methods that `drop_in_place` invokes.
789///
790/// Additionally, if `T` is not [`Copy`], using the pointed-to value after
791/// calling `drop_in_place` can cause undefined behavior. Note that `*to_drop =
792/// foo` counts as a use because it will cause the value to be dropped
793/// again. [`write()`] can be used to overwrite data without causing it to be
794/// dropped.
795///
796/// [valid]: self#safety
797///
798/// # Examples
799///
800/// Manually remove the last item from a vector:
801///
802/// ```
803/// use std::ptr;
804/// use std::rc::Rc;
805///
806/// let last = Rc::new(1);
807/// let weak = Rc::downgrade(&last);
808///
809/// let mut v = vec![Rc::new(0), last];
810///
811/// unsafe {
812///     // Get a raw pointer to the last element in `v`.
813///     let ptr = &mut v[1] as *mut _;
814///     // Shorten `v` to prevent the last item from being dropped. We do that first,
815///     // to prevent issues if the `drop_in_place` below panics.
816///     v.set_len(1);
817///     // Without a call `drop_in_place`, the last item would never be dropped,
818///     // and the memory it manages would be leaked.
819///     ptr::drop_in_place(ptr);
820/// }
821///
822/// assert_eq!(v, &[0.into()]);
823///
824/// // Ensure that the last item was dropped.
825/// assert!(weak.upgrade().is_none());
826/// ```
827#[inline(always)]
828#[stable(feature = "drop_in_place", since = "1.8.0")]
829#[rustc_diagnostic_item = "ptr_drop_in_place"]
830#[rustc_const_unstable(feature = "const_drop_in_place", issue = "109342")]
831pub const unsafe fn drop_in_place<T: PointeeSized>(to_drop: *mut T)
832where
833    T: [const] Destruct,
834{
835    // Due to historic reasons, `drop_in_place` takes a pointer rather than a reference,
836    // which results in worse codegen since we don't apply noalias/dereferenceable llvm
837    // attributes to pointer arguments. To workaround this without breaking public
838    // interface, `drop_in_place` calls the lang item, rather than being one directly.
839
840    // SAFETY:
841    // - compiler glue has the same safety requirements as this function
842    // - the pointer must be valid as per the safety requirement of this function
843    unsafe { drop_glue(&mut *to_drop) }
844}
845
846/// Helper function for `drop_in_place`. The compiler replaces this by the actual drop glue.
847#[lang = "drop_glue"]
848pub(crate) const unsafe fn drop_glue<T: PointeeSized>(_: &mut T)
849where
850    T: [const] Destruct,
851{
852    // Code here does not matter - this is replaced by the
853    // real drop glue by the compiler.
854}
855
856/// Creates a null raw pointer.
857///
858/// This function is equivalent to zero-initializing the pointer:
859/// `MaybeUninit::<*const T>::zeroed().assume_init()`.
860/// The resulting pointer has the address 0.
861///
862/// # Examples
863///
864/// ```
865/// use std::ptr;
866///
867/// let p: *const i32 = ptr::null();
868/// assert!(p.is_null());
869/// assert_eq!(p as usize, 0); // this pointer has the address 0
870/// ```
871#[inline(always)]
872#[must_use]
873#[stable(feature = "rust1", since = "1.0.0")]
874#[rustc_promotable]
875#[rustc_const_stable(feature = "const_ptr_null", since = "1.24.0")]
876#[rustc_diagnostic_item = "ptr_null"]
877pub const fn null<T: PointeeSized + Thin>() -> *const T {
878    from_raw_parts(without_provenance::<()>(0), ())
879}
880
881/// Creates a null mutable raw pointer.
882///
883/// This function is equivalent to zero-initializing the pointer:
884/// `MaybeUninit::<*mut T>::zeroed().assume_init()`.
885/// The resulting pointer has the address 0.
886///
887/// # Examples
888///
889/// ```
890/// use std::ptr;
891///
892/// let p: *mut i32 = ptr::null_mut();
893/// assert!(p.is_null());
894/// assert_eq!(p as usize, 0); // this pointer has the address 0
895/// ```
896#[inline(always)]
897#[must_use]
898#[stable(feature = "rust1", since = "1.0.0")]
899#[rustc_promotable]
900#[rustc_const_stable(feature = "const_ptr_null", since = "1.24.0")]
901#[rustc_diagnostic_item = "ptr_null_mut"]
902pub const fn null_mut<T: PointeeSized + Thin>() -> *mut T {
903    from_raw_parts_mut(without_provenance_mut::<()>(0), ())
904}
905
906/// Creates a pointer with the given address and no [provenance][crate::ptr#provenance].
907///
908/// This is equivalent to `ptr::null().with_addr(addr)`.
909///
910/// Without provenance, this pointer is not associated with any actual allocation. Such a
911/// no-provenance pointer may be used for zero-sized memory accesses (if suitably aligned), but
912/// non-zero-sized memory accesses with a no-provenance pointer are UB. No-provenance pointers are
913/// little more than a `usize` address in disguise.
914///
915/// This is different from `addr as *const T`, which creates a pointer that picks up a previously
916/// exposed provenance. See [`with_exposed_provenance`] for more details on that operation.
917///
918/// This is a [Strict Provenance][crate::ptr#strict-provenance] API.
919#[inline(always)]
920#[must_use]
921#[stable(feature = "strict_provenance", since = "1.84.0")]
922#[rustc_const_stable(feature = "strict_provenance", since = "1.84.0")]
923#[rustc_diagnostic_item = "ptr_without_provenance"]
924pub const fn without_provenance<T>(addr: usize) -> *const T {
925    without_provenance_mut(addr)
926}
927
928/// Creates a new pointer that is dangling, but non-null and well-aligned.
929///
930/// This is useful for initializing types which lazily allocate, like
931/// `Vec::new` does.
932///
933/// Note that the address of the returned pointer may potentially
934/// be that of a valid pointer, which means this must not be used
935/// as a "not yet initialized" sentinel value.
936/// Types that lazily allocate must track initialization by some other means.
937#[inline(always)]
938#[must_use]
939#[stable(feature = "strict_provenance", since = "1.84.0")]
940#[rustc_const_stable(feature = "strict_provenance", since = "1.84.0")]
941pub const fn dangling<T>() -> *const T {
942    dangling_mut()
943}
944
945/// Creates a pointer with the given address and no [provenance][crate::ptr#provenance].
946///
947/// This is equivalent to `ptr::null_mut().with_addr(addr)`.
948///
949/// Without provenance, this pointer is not associated with any actual allocation. Such a
950/// no-provenance pointer may be used for zero-sized memory accesses (if suitably aligned), but
951/// non-zero-sized memory accesses with a no-provenance pointer are UB. No-provenance pointers are
952/// little more than a `usize` address in disguise.
953///
954/// This is different from `addr as *mut T`, which creates a pointer that picks up a previously
955/// exposed provenance. See [`with_exposed_provenance_mut`] for more details on that operation.
956///
957/// This is a [Strict Provenance][crate::ptr#strict-provenance] API.
958#[inline(always)]
959#[must_use]
960#[stable(feature = "strict_provenance", since = "1.84.0")]
961#[rustc_const_stable(feature = "strict_provenance", since = "1.84.0")]
962#[rustc_diagnostic_item = "ptr_without_provenance_mut"]
963#[allow(integer_to_ptr_transmutes)] // Expected semantics here.
964pub const fn without_provenance_mut<T>(addr: usize) -> *mut T {
965    // An int-to-pointer transmute currently has exactly the intended semantics: it creates a
966    // pointer without provenance. Note that this is *not* a stable guarantee about transmute
967    // semantics, it relies on sysroot crates having special status.
968    // SAFETY: every valid integer is also a valid pointer (as long as you don't dereference that
969    // pointer).
970    unsafe { mem::transmute(addr) }
971}
972
973/// Creates a new pointer that is dangling, but non-null and well-aligned.
974///
975/// This is useful for initializing types which lazily allocate, like
976/// `Vec::new` does.
977///
978/// Note that the address of the returned pointer may potentially
979/// be that of a valid pointer, which means this must not be used
980/// as a "not yet initialized" sentinel value.
981/// Types that lazily allocate must track initialization by some other means.
982#[inline(always)]
983#[must_use]
984#[stable(feature = "strict_provenance", since = "1.84.0")]
985#[rustc_const_stable(feature = "strict_provenance", since = "1.84.0")]
986pub const fn dangling_mut<T>() -> *mut T {
987    NonNull::dangling().as_ptr()
988}
989
990/// Converts an address back to a pointer, picking up some previously 'exposed'
991/// [provenance][crate::ptr#provenance].
992///
993/// This is fully equivalent to `addr as *const T`. The provenance of the returned pointer is that
994/// of *some* pointer that was previously exposed by passing it to
995/// [`expose_provenance`][pointer::expose_provenance], or a `ptr as usize` cast. In addition, memory
996/// which is outside the control of the Rust abstract machine (MMIO registers, for example) is
997/// always considered to be accessible with an exposed provenance, so long as this memory is disjoint
998/// from memory that will be used by the abstract machine such as the stack, heap, and statics.
999///
1000/// The exact provenance that gets picked is not specified. The compiler will do its best to pick
1001/// the "right" provenance for you (whatever that may be), but currently we cannot provide any
1002/// guarantees about which provenance the resulting pointer will have -- and therefore there
1003/// is no definite specification for which memory the resulting pointer may access.
1004///
1005/// If there is *no* previously 'exposed' provenance that justifies the way the returned pointer
1006/// will be used, the program has undefined behavior. In particular, the aliasing rules still apply:
1007/// pointers and references that have been invalidated due to aliasing accesses cannot be used
1008/// anymore, even if they have been exposed!
1009///
1010/// Due to its inherent ambiguity, this operation may not be supported by tools that help you to
1011/// stay conformant with the Rust memory model. It is recommended to use [Strict
1012/// Provenance][self#strict-provenance] APIs such as [`with_addr`][pointer::with_addr] wherever
1013/// possible.
1014///
1015/// On most platforms this will produce a value with the same bytes as the address. Platforms
1016/// which need to store additional information in a pointer may not support this operation,
1017/// since it is generally not possible to actually *compute* which provenance the returned
1018/// pointer has to pick up.
1019///
1020/// This is an [Exposed Provenance][crate::ptr#exposed-provenance] API.
1021#[must_use]
1022#[inline(always)]
1023#[stable(feature = "exposed_provenance", since = "1.84.0")]
1024#[rustc_const_stable(feature = "const_exposed_provenance", since = "1.91.0")]
1025#[cfg_attr(miri, track_caller)] // even without panics, this helps for Miri backtraces
1026#[allow(implicit_provenance_casts)] // this *is* the explicit provenance API one should use instead
1027pub const fn with_exposed_provenance<T>(addr: usize) -> *const T {
1028    addr as *const T
1029}
1030
1031/// Converts an address back to a mutable pointer, picking up some previously 'exposed'
1032/// [provenance][crate::ptr#provenance].
1033///
1034/// This is fully equivalent to `addr as *mut T`. The provenance of the returned pointer is that
1035/// of *some* pointer that was previously exposed by passing it to
1036/// [`expose_provenance`][pointer::expose_provenance], or a `ptr as usize` cast. In addition, memory
1037/// which is outside the control of the Rust abstract machine (MMIO registers, for example) is
1038/// always considered to be accessible with an exposed provenance, so long as this memory is disjoint
1039/// from memory that will be used by the abstract machine such as the stack, heap, and statics.
1040///
1041/// The exact provenance that gets picked is not specified. The compiler will do its best to pick
1042/// the "right" provenance for you (whatever that may be), but currently we cannot provide any
1043/// guarantees about which provenance the resulting pointer will have -- and therefore there
1044/// is no definite specification for which memory the resulting pointer may access.
1045///
1046/// If there is *no* previously 'exposed' provenance that justifies the way the returned pointer
1047/// will be used, the program has undefined behavior. In particular, the aliasing rules still apply:
1048/// pointers and references that have been invalidated due to aliasing accesses cannot be used
1049/// anymore, even if they have been exposed!
1050///
1051/// Due to its inherent ambiguity, this operation may not be supported by tools that help you to
1052/// stay conformant with the Rust memory model. It is recommended to use [Strict
1053/// Provenance][self#strict-provenance] APIs such as [`with_addr`][pointer::with_addr] wherever
1054/// possible.
1055///
1056/// On most platforms this will produce a value with the same bytes as the address. Platforms
1057/// which need to store additional information in a pointer may not support this operation,
1058/// since it is generally not possible to actually *compute* which provenance the returned
1059/// pointer has to pick up.
1060///
1061/// This is an [Exposed Provenance][crate::ptr#exposed-provenance] API.
1062#[must_use]
1063#[inline(always)]
1064#[stable(feature = "exposed_provenance", since = "1.84.0")]
1065#[rustc_const_stable(feature = "const_exposed_provenance", since = "1.91.0")]
1066#[cfg_attr(miri, track_caller)] // even without panics, this helps for Miri backtraces
1067#[allow(implicit_provenance_casts)] // this *is* the explicit provenance API one should use instead
1068pub const fn with_exposed_provenance_mut<T>(addr: usize) -> *mut T {
1069    addr as *mut T
1070}
1071
1072/// Converts a reference to a raw pointer.
1073///
1074/// For `r: &T`, `from_ref(r)` is equivalent to `r as *const T` (except for the caveat noted below),
1075/// but is a bit safer since it will never silently change type or mutability, in particular if the
1076/// code is refactored.
1077///
1078/// The caller must ensure that the pointee outlives the pointer this function returns, or else it
1079/// will end up dangling.
1080///
1081/// The caller must also ensure that the memory the pointer (non-transitively) points to is never
1082/// written to (except inside an `UnsafeCell`) using this pointer or any pointer derived from it. If
1083/// you need to mutate the pointee, use [`from_mut`]. Specifically, to turn a mutable reference `m:
1084/// &mut T` into `*const T`, prefer `from_mut(m).cast_const()` to obtain a pointer that can later be
1085/// used for mutation.
1086///
1087/// ## Interaction with lifetime extension
1088///
1089/// Note that this has subtle interactions with the rules for lifetime extension of temporaries in
1090/// tail expressions. This code is valid, albeit in a non-obvious way:
1091/// ```rust
1092/// # type T = i32;
1093/// # fn foo() -> T { 42 }
1094/// // The temporary holding the return value of `foo` has its lifetime extended,
1095/// // because the surrounding expression involves no function call.
1096/// let p = &foo() as *const T;
1097/// unsafe { p.read() };
1098/// ```
1099/// Naively replacing the cast with `from_ref` is not valid:
1100/// ```rust,no_run
1101/// # use std::ptr;
1102/// # type T = i32;
1103/// # fn foo() -> T { 42 }
1104/// // The temporary holding the return value of `foo` does *not* have its lifetime extended,
1105/// // because the surrounding expression involves a function call.
1106/// let p = ptr::from_ref(&foo());
1107/// unsafe { p.read() }; // UB! Reading from a dangling pointer ⚠️
1108/// ```
1109/// The recommended way to write this code is to avoid relying on lifetime extension
1110/// when raw pointers are involved:
1111/// ```rust
1112/// # use std::ptr;
1113/// # type T = i32;
1114/// # fn foo() -> T { 42 }
1115/// let x = foo();
1116/// let p = ptr::from_ref(&x);
1117/// unsafe { p.read() };
1118/// ```
1119#[inline(always)]
1120#[must_use]
1121#[stable(feature = "ptr_from_ref", since = "1.76.0")]
1122#[rustc_const_stable(feature = "ptr_from_ref", since = "1.76.0")]
1123#[rustc_never_returns_null_ptr]
1124#[rustc_diagnostic_item = "ptr_from_ref"]
1125pub const fn from_ref<T: PointeeSized>(r: &T) -> *const T {
1126    r
1127}
1128
1129/// Converts a mutable reference to a raw pointer.
1130///
1131/// For `r: &mut T`, `from_mut(r)` is equivalent to `r as *mut T` (except for the caveat noted
1132/// below), but is a bit safer since it will never silently change type or mutability, in particular
1133/// if the code is refactored.
1134///
1135/// The caller must ensure that the pointee outlives the pointer this function returns, or else it
1136/// will end up dangling.
1137///
1138/// ## Interaction with lifetime extension
1139///
1140/// Note that this has subtle interactions with the rules for lifetime extension of temporaries in
1141/// tail expressions. This code is valid, albeit in a non-obvious way:
1142/// ```rust
1143/// # type T = i32;
1144/// # fn foo() -> T { 42 }
1145/// // The temporary holding the return value of `foo` has its lifetime extended,
1146/// // because the surrounding expression involves no function call.
1147/// let p = &mut foo() as *mut T;
1148/// unsafe { p.write(T::default()) };
1149/// ```
1150/// Naively replacing the cast with `from_mut` is not valid:
1151/// ```rust,no_run
1152/// # use std::ptr;
1153/// # type T = i32;
1154/// # fn foo() -> T { 42 }
1155/// // The temporary holding the return value of `foo` does *not* have its lifetime extended,
1156/// // because the surrounding expression involves a function call.
1157/// let p = ptr::from_mut(&mut foo());
1158/// unsafe { p.write(T::default()) }; // UB! Writing to a dangling pointer ⚠️
1159/// ```
1160/// The recommended way to write this code is to avoid relying on lifetime extension
1161/// when raw pointers are involved:
1162/// ```rust
1163/// # use std::ptr;
1164/// # type T = i32;
1165/// # fn foo() -> T { 42 }
1166/// let mut x = foo();
1167/// let p = ptr::from_mut(&mut x);
1168/// unsafe { p.write(T::default()) };
1169/// ```
1170#[inline(always)]
1171#[must_use]
1172#[stable(feature = "ptr_from_ref", since = "1.76.0")]
1173#[rustc_const_stable(feature = "ptr_from_ref", since = "1.76.0")]
1174#[rustc_never_returns_null_ptr]
1175pub const fn from_mut<T: PointeeSized>(r: &mut T) -> *mut T {
1176    r
1177}
1178
1179/// Forms a raw slice from a pointer and a length.
1180///
1181/// The `len` argument is the number of **elements**, not the number of bytes.
1182///
1183/// This function is safe, but actually using the return value is unsafe.
1184/// See the documentation of [`slice::from_raw_parts`] for slice safety requirements.
1185///
1186/// [`slice::from_raw_parts`]: crate::slice::from_raw_parts
1187///
1188/// # Examples
1189///
1190/// ```rust
1191/// use std::ptr;
1192///
1193/// // create a slice pointer when starting out with a pointer to the first element
1194/// let x = [5, 6, 7];
1195/// let raw_pointer = x.as_ptr();
1196/// let slice = ptr::slice_from_raw_parts(raw_pointer, 3);
1197/// assert_eq!(unsafe { &*slice }[2], 7);
1198/// ```
1199///
1200/// You must ensure that the pointer is valid and not null before dereferencing
1201/// the raw slice. A slice reference must never have a null pointer, even if it's empty.
1202///
1203/// ```rust,should_panic
1204/// use std::ptr;
1205/// let danger: *const [u8] = ptr::slice_from_raw_parts(ptr::null(), 0);
1206/// unsafe {
1207///     danger.as_ref().expect("references must not be null");
1208/// }
1209/// ```
1210#[inline]
1211#[stable(feature = "slice_from_raw_parts", since = "1.42.0")]
1212#[rustc_const_stable(feature = "const_slice_from_raw_parts", since = "1.64.0")]
1213#[rustc_diagnostic_item = "ptr_slice_from_raw_parts"]
1214pub const fn slice_from_raw_parts<T>(data: *const T, len: usize) -> *const [T] {
1215    from_raw_parts(data, len)
1216}
1217
1218/// Forms a raw mutable slice from a pointer and a length.
1219///
1220/// The `len` argument is the number of **elements**, not the number of bytes.
1221///
1222/// Performs the same functionality as [`slice_from_raw_parts`], except that a
1223/// raw mutable slice is returned, as opposed to a raw immutable slice.
1224///
1225/// This function is safe, but actually using the return value is unsafe.
1226/// See the documentation of [`slice::from_raw_parts_mut`] for slice safety requirements.
1227///
1228/// [`slice::from_raw_parts_mut`]: crate::slice::from_raw_parts_mut
1229///
1230/// # Examples
1231///
1232/// ```rust
1233/// use std::ptr;
1234///
1235/// let x = &mut [5, 6, 7];
1236/// let raw_pointer = x.as_mut_ptr();
1237/// let slice = ptr::slice_from_raw_parts_mut(raw_pointer, 3);
1238///
1239/// unsafe {
1240///     (*slice)[2] = 99; // assign a value at an index in the slice
1241/// };
1242///
1243/// assert_eq!(unsafe { &*slice }[2], 99);
1244/// ```
1245///
1246/// You must ensure that the pointer is valid and not null before dereferencing
1247/// the raw slice. A slice reference must never have a null pointer, even if it's empty.
1248///
1249/// ```rust,should_panic
1250/// use std::ptr;
1251/// let danger: *mut [u8] = ptr::slice_from_raw_parts_mut(ptr::null_mut(), 0);
1252/// unsafe {
1253///     danger.as_mut().expect("references must not be null");
1254/// }
1255/// ```
1256#[inline]
1257#[stable(feature = "slice_from_raw_parts", since = "1.42.0")]
1258#[rustc_const_stable(feature = "const_slice_from_raw_parts_mut", since = "1.83.0")]
1259#[rustc_diagnostic_item = "ptr_slice_from_raw_parts_mut"]
1260pub const fn slice_from_raw_parts_mut<T>(data: *mut T, len: usize) -> *mut [T] {
1261    from_raw_parts_mut(data, len)
1262}
1263
1264/// Swaps the values at two mutable locations of the same type, without
1265/// deinitializing either.
1266///
1267/// But for the following exceptions, this function is semantically
1268/// equivalent to [`mem::swap`]:
1269///
1270/// * It operates on raw pointers instead of references. When references are
1271///   available, [`mem::swap`] should be preferred.
1272///
1273/// * The two pointed-to values may overlap. If the values do overlap, then the
1274///   overlapping region of memory from `x` will be used. This is demonstrated
1275///   in the second example below.
1276///
1277/// * The operation is "untyped" in the sense that data may be uninitialized or otherwise violate
1278///   the requirements of `T`. The initialization state is preserved exactly.
1279///
1280/// # Safety
1281///
1282/// Behavior is undefined if any of the following conditions are violated:
1283///
1284/// * Both `x` and `y` must be [valid] for both reads and writes. They must remain valid even when the
1285///   other pointer is written. (This means if the memory ranges overlap, the two pointers must not
1286///   be subject to aliasing restrictions relative to each other.)
1287///
1288/// * Both `x` and `y` must be properly aligned.
1289///
1290/// Note that even if `T` has size `0`, the pointers must be properly aligned.
1291///
1292/// [valid]: self#safety
1293///
1294/// # Examples
1295///
1296/// Swapping two non-overlapping regions:
1297///
1298/// ```
1299/// use std::ptr;
1300///
1301/// let mut array = [0, 1, 2, 3];
1302///
1303/// let (x, y) = array.split_at_mut(2);
1304/// let x = x.as_mut_ptr().cast::<[u32; 2]>(); // this is `array[0..2]`
1305/// let y = y.as_mut_ptr().cast::<[u32; 2]>(); // this is `array[2..4]`
1306///
1307/// unsafe {
1308///     ptr::swap(x, y);
1309///     assert_eq!([2, 3, 0, 1], array);
1310/// }
1311/// ```
1312///
1313/// Swapping two overlapping regions:
1314///
1315/// ```
1316/// use std::ptr;
1317///
1318/// let mut array: [i32; 4] = [0, 1, 2, 3];
1319///
1320/// let array_ptr: *mut i32 = array.as_mut_ptr();
1321///
1322/// let x = array_ptr as *mut [i32; 3]; // this is `array[0..3]`
1323/// let y = unsafe { array_ptr.add(1) } as *mut [i32; 3]; // this is `array[1..4]`
1324///
1325/// unsafe {
1326///     ptr::swap(x, y);
1327///     // The indices `1..3` of the slice overlap between `x` and `y`.
1328///     // Reasonable results would be for to them be `[2, 3]`, so that indices `0..3` are
1329///     // `[1, 2, 3]` (matching `y` before the `swap`); or for them to be `[0, 1]`
1330///     // so that indices `1..4` are `[0, 1, 2]` (matching `x` before the `swap`).
1331///     // This implementation is defined to make the latter choice.
1332///     assert_eq!([1, 0, 1, 2], array);
1333/// }
1334/// ```
1335#[inline(always)]
1336#[stable(feature = "rust1", since = "1.0.0")]
1337#[rustc_const_stable(feature = "const_swap", since = "1.85.0")]
1338#[rustc_diagnostic_item = "ptr_swap"]
1339pub const unsafe fn swap<T>(x: *mut T, y: *mut T) {
1340    // Give ourselves some scratch space to work with.
1341    // We do not have to worry about drops: `MaybeUninit` does nothing when dropped.
1342    let mut tmp = MaybeUninit::<T>::uninit();
1343
1344    // Perform the swap
1345    // SAFETY: the caller must guarantee that `x` and `y` are
1346    // valid for writes and properly aligned. `tmp` cannot be
1347    // overlapping either `x` or `y` because `tmp` was just allocated
1348    // on the stack as a separate allocation.
1349    unsafe {
1350        copy_nonoverlapping(x, tmp.as_mut_ptr(), 1);
1351        copy(y, x, 1); // `x` and `y` may overlap
1352        copy_nonoverlapping(tmp.as_ptr(), y, 1);
1353    }
1354}
1355
1356/// Swaps `count * size_of::<T>()` bytes between the two regions of memory
1357/// beginning at `x` and `y`. The two regions must *not* overlap.
1358///
1359/// The operation is "untyped" in the sense that data may be uninitialized or otherwise violate the
1360/// requirements of `T`. The initialization state is preserved exactly.
1361///
1362/// # Safety
1363///
1364/// Behavior is undefined if any of the following conditions are violated:
1365///
1366/// * Both `x` and `y` must be [valid] for both reads and writes of `count *
1367///   size_of::<T>()` bytes.
1368///
1369/// * Both `x` and `y` must be properly aligned.
1370///
1371/// * The region of memory beginning at `x` with a size of `count *
1372///   size_of::<T>()` bytes must *not* overlap with the region of memory
1373///   beginning at `y` with the same size.
1374///
1375/// Note that even if the effectively copied size (`count * size_of::<T>()`) is `0`,
1376/// the pointers must be properly aligned.
1377///
1378/// [valid]: self#safety
1379///
1380/// # Examples
1381///
1382/// Basic usage:
1383///
1384/// ```
1385/// use std::ptr;
1386///
1387/// let mut x = [1, 2, 3, 4];
1388/// let mut y = [7, 8, 9];
1389///
1390/// unsafe {
1391///     ptr::swap_nonoverlapping(x.as_mut_ptr(), y.as_mut_ptr(), 2);
1392/// }
1393///
1394/// assert_eq!(x, [7, 8, 3, 4]);
1395/// assert_eq!(y, [1, 2, 9]);
1396/// ```
1397#[inline]
1398#[stable(feature = "swap_nonoverlapping", since = "1.27.0")]
1399#[rustc_const_stable(feature = "const_swap_nonoverlapping", since = "1.88.0")]
1400#[rustc_diagnostic_item = "ptr_swap_nonoverlapping"]
1401#[rustc_allow_const_fn_unstable(const_eval_select)] // both implementations behave the same
1402#[track_caller]
1403pub const unsafe fn swap_nonoverlapping<T>(x: *mut T, y: *mut T, count: usize) {
1404    ub_checks::assert_unsafe_precondition!(
1405        check_library_ub,
1406        "ptr::swap_nonoverlapping requires that both pointer arguments are aligned and non-null \
1407        and the specified memory ranges do not overlap",
1408        (
1409            x: *mut () = x as *mut (),
1410            y: *mut () = y as *mut (),
1411            size: usize = size_of::<T>(),
1412            align: usize = align_of::<T>(),
1413            count: usize = count,
1414        ) => {
1415            let zero_size = size == 0 || count == 0;
1416            ub_checks::maybe_is_aligned_and_not_null(x, align, zero_size)
1417                && ub_checks::maybe_is_aligned_and_not_null(y, align, zero_size)
1418                && ub_checks::maybe_is_nonoverlapping(x, y, size, count)
1419        }
1420    );
1421
1422    const_eval_select!(
1423        @capture[T] { x: *mut T, y: *mut T, count: usize }:
1424        if const {
1425            // At compile-time we don't need all the special code below.
1426            // SAFETY: Same preconditions as this function
1427            unsafe { swap_nonoverlapping_const(x, y, count) }
1428        } else {
1429            // Going though a slice here helps codegen know the size fits in `isize`
1430            let slice = slice_from_raw_parts_mut(x, count);
1431            // SAFETY: This is all readable from the pointer, meaning it's one
1432            // allocation, and thus cannot be more than isize::MAX bytes.
1433            let bytes = unsafe { mem::size_of_val_raw::<[T]>(slice) };
1434            if let Some(bytes) = NonZero::new(bytes) {
1435                // SAFETY: These are the same ranges, just expressed in a different
1436                // type, so they're still non-overlapping.
1437                unsafe { swap_nonoverlapping_bytes(x.cast(), y.cast(), bytes) };
1438            }
1439        }
1440    )
1441}
1442
1443/// Same behavior and safety conditions as [`swap_nonoverlapping`]
1444#[inline]
1445const unsafe fn swap_nonoverlapping_const<T>(x: *mut T, y: *mut T, count: usize) {
1446    let mut i = 0;
1447    while i < count {
1448        // SAFETY: By precondition, `i` is in-bounds because it's below `n`
1449        let x = unsafe { x.add(i) };
1450        // SAFETY: By precondition, `i` is in-bounds because it's below `n`
1451        // and it's distinct from `x` since the ranges are non-overlapping
1452        let y = unsafe { y.add(i) };
1453
1454        // SAFETY: we're only ever given pointers that are valid to read/write,
1455        // including being aligned, and nothing here panics so it's drop-safe.
1456        unsafe {
1457            // Note that it's critical that these use `copy_nonoverlapping`,
1458            // rather than `read`/`write`, to avoid #134713 if T has padding.
1459            let mut temp = MaybeUninit::<T>::uninit();
1460            copy_nonoverlapping(x, temp.as_mut_ptr(), 1);
1461            copy_nonoverlapping(y, x, 1);
1462            copy_nonoverlapping(temp.as_ptr(), y, 1);
1463        }
1464
1465        i += 1;
1466    }
1467}
1468
1469// Don't let MIR inline this, because we really want it to keep its noalias metadata
1470#[rustc_no_mir_inline]
1471#[inline]
1472fn swap_chunk<const N: usize>(x: &mut MaybeUninit<[u8; N]>, y: &mut MaybeUninit<[u8; N]>) {
1473    let a = *x;
1474    let b = *y;
1475    *x = b;
1476    *y = a;
1477}
1478
1479#[inline]
1480unsafe fn swap_nonoverlapping_bytes(x: *mut u8, y: *mut u8, bytes: NonZero<usize>) {
1481    // Same as `swap_nonoverlapping::<[u8; N]>`.
1482    unsafe fn swap_nonoverlapping_chunks<const N: usize>(
1483        x: *mut MaybeUninit<[u8; N]>,
1484        y: *mut MaybeUninit<[u8; N]>,
1485        chunks: NonZero<usize>,
1486    ) {
1487        let chunks = chunks.get();
1488        for i in 0..chunks {
1489            // SAFETY: i is in [0, chunks) so the adds and dereferences are in-bounds.
1490            unsafe { swap_chunk(&mut *x.add(i), &mut *y.add(i)) };
1491        }
1492    }
1493
1494    // Same as `swap_nonoverlapping_bytes`, but accepts at most 1+2+4=7 bytes
1495    #[inline]
1496    unsafe fn swap_nonoverlapping_short(x: *mut u8, y: *mut u8, bytes: NonZero<usize>) {
1497        // Tail handling for auto-vectorized code sometimes has element-at-a-time behaviour,
1498        // see <https://github.com/rust-lang/rust/issues/134946>.
1499        // By swapping as different sizes, rather than as a loop over bytes,
1500        // we make sure not to end up with, say, seven byte-at-a-time copies.
1501
1502        let bytes = bytes.get();
1503        let mut i = 0;
1504        macro_rules! swap_prefix {
1505            ($($n:literal)+) => {$(
1506                if (bytes & $n) != 0 {
1507                    // SAFETY: `i` can only have the same bits set as those in bytes,
1508                    // so these `add`s are in-bounds of `bytes`.  But the bit for
1509                    // `$n` hasn't been set yet, so the `$n` bytes that `swap_chunk`
1510                    // will read and write are within the usable range.
1511                    unsafe { swap_chunk::<$n>(&mut*x.add(i).cast(), &mut*y.add(i).cast()) };
1512                    i |= $n;
1513                }
1514            )+};
1515        }
1516        swap_prefix!(4 2 1);
1517        debug_assert_eq!(i, bytes);
1518    }
1519
1520    const CHUNK_SIZE: usize = size_of::<*const ()>();
1521    let bytes = bytes.get();
1522
1523    let chunks = bytes / CHUNK_SIZE;
1524    let tail = bytes % CHUNK_SIZE;
1525    if let Some(chunks) = NonZero::new(chunks) {
1526        // SAFETY: this is bytes/CHUNK_SIZE*CHUNK_SIZE bytes, which is <= bytes,
1527        // so it's within the range of our non-overlapping bytes.
1528        unsafe { swap_nonoverlapping_chunks::<CHUNK_SIZE>(x.cast(), y.cast(), chunks) };
1529    }
1530    if let Some(tail) = NonZero::new(tail) {
1531        const { assert!(CHUNK_SIZE <= 8) };
1532        let delta = chunks * CHUNK_SIZE;
1533        // SAFETY: the tail length is below CHUNK SIZE because of the remainder,
1534        // and CHUNK_SIZE is at most 8 by the const assert, so tail <= 7
1535        unsafe { swap_nonoverlapping_short(x.add(delta), y.add(delta), tail) };
1536    }
1537}
1538
1539/// Moves `src` into the pointed `dst`, returning the previous `dst` value.
1540///
1541/// Neither value is dropped.
1542///
1543/// This function is semantically equivalent to [`mem::replace`] except that it
1544/// operates on raw pointers instead of references. When references are
1545/// available, [`mem::replace`] should be preferred.
1546///
1547/// # Safety
1548///
1549/// Behavior is undefined if any of the following conditions are violated:
1550///
1551/// * `dst` must be [valid] for both reads and writes or `T` must be a ZST.
1552///
1553/// * `dst` must be properly aligned.
1554///
1555/// * `dst` must point to a properly initialized value of type `T`.
1556///
1557/// Note that even if `T` has size `0`, the pointer must be properly aligned.
1558///
1559/// [valid]: self#safety
1560///
1561/// # Examples
1562///
1563/// ```
1564/// use std::ptr;
1565///
1566/// let mut rust = vec!['b', 'u', 's', 't'];
1567///
1568/// // `mem::replace` would have the same effect without requiring the unsafe
1569/// // block.
1570/// let b = unsafe {
1571///     ptr::replace(&mut rust[0], 'r')
1572/// };
1573///
1574/// assert_eq!(b, 'b');
1575/// assert_eq!(rust, &['r', 'u', 's', 't']);
1576/// ```
1577#[inline(always)]
1578#[stable(feature = "rust1", since = "1.0.0")]
1579#[rustc_const_stable(feature = "const_replace", since = "1.83.0")]
1580#[rustc_diagnostic_item = "ptr_replace"]
1581#[track_caller]
1582pub const unsafe fn replace<T>(dst: *mut T, src: T) -> T {
1583    // SAFETY: the caller must guarantee that `dst` is valid to be
1584    // cast to a mutable reference (valid for writes, aligned, initialized),
1585    // and cannot overlap `src` since `dst` must point to a distinct
1586    // allocation. We are excluding null (with a ZST check) before creating a reference.
1587    unsafe {
1588        ub_checks::assert_unsafe_precondition!(
1589            check_language_ub,
1590            "ptr::replace requires that the pointer argument is aligned and non-null",
1591            (
1592                addr: *const () = dst as *const (),
1593                align: usize = align_of::<T>(),
1594                is_zst: bool = T::IS_ZST,
1595            ) => ub_checks::maybe_is_aligned_and_not_null(addr, align, is_zst)
1596        );
1597        if T::IS_ZST {
1598            // If `T` is a ZST, `dst` is allowed to be null. However, we also don't have to actually
1599            // do anything since there isn't actually any data to be copied anyway. All values of
1600            // type `T` are bit-identical, so we can just return `src` here.
1601            return src;
1602        }
1603        mem::replace(&mut *dst, src)
1604    }
1605}
1606
1607/// Reads the value from `src` without moving it. This leaves the
1608/// memory in `src` unchanged.
1609///
1610/// # Safety
1611///
1612/// Behavior is undefined if any of the following conditions are violated:
1613///
1614/// * `src` must be [valid] for reads or `T` must be a ZST.
1615///
1616/// * `src` must be properly aligned. Use [`read_unaligned`] if this is not the
1617///   case.
1618///
1619/// * `src` must point to a properly initialized value of type `T`.
1620///
1621/// Note that even if `T` has size `0`, the pointer must be properly aligned.
1622///
1623/// # Examples
1624///
1625/// Basic usage:
1626///
1627/// ```
1628/// let x = 12;
1629/// let y = &x as *const i32;
1630///
1631/// unsafe {
1632///     assert_eq!(std::ptr::read(y), 12);
1633/// }
1634/// ```
1635///
1636/// Manually implement [`mem::swap`]:
1637///
1638/// ```
1639/// use std::ptr;
1640///
1641/// fn swap<T>(a: &mut T, b: &mut T) {
1642///     unsafe {
1643///         // Create a bitwise copy of the value at `a` in `tmp`.
1644///         let tmp = ptr::read(a);
1645///
1646///         // Exiting at this point (either by explicitly returning or by
1647///         // calling a function which panics) would cause the value in `tmp` to
1648///         // be dropped while the same value is still referenced by `a`. This
1649///         // could trigger undefined behavior if `T` is not `Copy`.
1650///
1651///         // Create a bitwise copy of the value at `b` in `a`.
1652///         // This is safe because mutable references cannot alias.
1653///         ptr::copy_nonoverlapping(b, a, 1);
1654///
1655///         // As above, exiting here could trigger undefined behavior because
1656///         // the same value is referenced by `a` and `b`.
1657///
1658///         // Move `tmp` into `b`.
1659///         ptr::write(b, tmp);
1660///
1661///         // `tmp` has been moved (`write` takes ownership of its second argument),
1662///         // so nothing is dropped implicitly here.
1663///     }
1664/// }
1665///
1666/// let mut foo = "foo".to_owned();
1667/// let mut bar = "bar".to_owned();
1668///
1669/// swap(&mut foo, &mut bar);
1670///
1671/// assert_eq!(foo, "bar");
1672/// assert_eq!(bar, "foo");
1673/// ```
1674///
1675/// ## Ownership of the Returned Value
1676///
1677/// `read` creates a bitwise copy of `T`, regardless of whether `T` is [`Copy`].
1678/// If `T` is not [`Copy`], using both the returned value and the value at
1679/// `*src` can violate memory safety. Note that assigning to `*src` counts as a
1680/// use because it will attempt to drop the value at `*src`.
1681///
1682/// [`write()`] can be used to overwrite data without causing it to be dropped.
1683///
1684/// ```
1685/// use std::ptr;
1686///
1687/// let mut s = String::from("foo");
1688/// unsafe {
1689///     // `s2` now points to the same underlying memory as `s`.
1690///     let mut s2: String = ptr::read(&s);
1691///
1692///     assert_eq!(s2, "foo");
1693///
1694///     // Assigning to `s2` causes its original value to be dropped. Beyond
1695///     // this point, `s` must no longer be used, as the underlying memory has
1696///     // been freed.
1697///     s2 = String::default();
1698///     assert_eq!(s2, "");
1699///
1700///     // Assigning to `s` would cause the old value to be dropped again,
1701///     // resulting in undefined behavior.
1702///     // s = String::from("bar"); // ERROR
1703///
1704///     // `ptr::write` can be used to overwrite a value without dropping it.
1705///     ptr::write(&mut s, String::from("bar"));
1706/// }
1707///
1708/// assert_eq!(s, "bar");
1709/// ```
1710///
1711/// [valid]: self#safety
1712#[inline(always)]
1713#[stable(feature = "rust1", since = "1.0.0")]
1714#[rustc_const_stable(feature = "const_ptr_read", since = "1.71.0")]
1715#[track_caller]
1716#[rustc_diagnostic_item = "ptr_read"]
1717pub const unsafe fn read<T>(src: *const T) -> T {
1718    // It would be semantically correct to implement this via `copy_nonoverlapping`
1719    // and `MaybeUninit`, as was done before PR #109035. Calling `assume_init`
1720    // provides enough information to know that this is a typed operation.
1721
1722    // However, as of March 2023 the compiler was not capable of taking advantage
1723    // of that information. Thus, the implementation here switched to an intrinsic,
1724    // which lowers to `_0 = *src` in MIR, to address a few issues:
1725    //
1726    // - Using `MaybeUninit::assume_init` after a `copy_nonoverlapping` was not
1727    //   turning the untyped copy into a typed load. As such, the generated
1728    //   `load` in LLVM didn't get various metadata, such as `!range` (#73258),
1729    //   `!nonnull`, and `!noundef`, resulting in poorer optimization.
1730    // - Going through the extra local resulted in multiple extra copies, even
1731    //   in optimized MIR.  (Ignoring StorageLive/Dead, the intrinsic is one
1732    //   MIR statement, while the previous implementation was eight.)  LLVM
1733    //   could sometimes optimize them away, but because `read` is at the core
1734    //   of so many things, not having them in the first place improves what we
1735    //   hand off to the backend.  For example, `mem::replace::<Big>` previously
1736    //   emitted 4 `alloca` and 6 `memcpy`s, but is now 1 `alloc` and 3 `memcpy`s.
1737    // - In general, this approach keeps us from getting any more bugs (like
1738    //   #106369) that boil down to "`read(p)` is worse than `*p`", as this
1739    //   makes them look identical to the backend (or other MIR consumers).
1740    //
1741    // Future enhancements to MIR optimizations might well allow this to return
1742    // to the previous implementation, rather than using an intrinsic.
1743
1744    // SAFETY: the caller must guarantee that `src` is valid for reads.
1745    unsafe {
1746        #[cfg(debug_assertions)] // Too expensive to always enable (for now?)
1747        ub_checks::assert_unsafe_precondition!(
1748            check_language_ub,
1749            "ptr::read requires that the pointer argument is aligned and non-null",
1750            (
1751                addr: *const () = src as *const (),
1752                align: usize = align_of::<T>(),
1753                is_zst: bool = T::IS_ZST,
1754            ) => ub_checks::maybe_is_aligned_and_not_null(addr, align, is_zst)
1755        );
1756        crate::intrinsics::read_via_copy(src)
1757    }
1758}
1759
1760/// Reads the value from `src` without moving it. This leaves the
1761/// memory in `src` unchanged.
1762///
1763/// Unlike [`read`], `read_unaligned` works with unaligned pointers.
1764///
1765/// # Safety
1766///
1767/// Behavior is undefined if any of the following conditions are violated:
1768///
1769/// * `src` must be [valid] for reads.
1770///
1771/// * `src` must point to a properly initialized value of type `T`.
1772///
1773/// Like [`read`], `read_unaligned` creates a bitwise copy of `T`, regardless of
1774/// whether `T` is [`Copy`]. If `T` is not [`Copy`], using both the returned
1775/// value and the value at `*src` can [violate memory safety][read-ownership].
1776///
1777/// [read-ownership]: read#ownership-of-the-returned-value
1778/// [valid]: self#safety
1779///
1780/// ## On `packed` structs
1781///
1782/// Attempting to create a raw pointer to an `unaligned` struct field with
1783/// an expression such as `&packed.unaligned as *const FieldType` creates an
1784/// intermediate unaligned reference before converting that to a raw pointer.
1785/// That this reference is temporary and immediately cast is inconsequential
1786/// as the compiler always expects references to be properly aligned.
1787/// As a result, using `&packed.unaligned as *const FieldType` causes immediate
1788/// *undefined behavior* in your program.
1789///
1790/// Instead you must use the `&raw const` syntax to create the pointer.
1791/// You may use that constructed pointer together with this function.
1792///
1793/// An example of what not to do and how this relates to `read_unaligned` is:
1794///
1795/// ```
1796/// #[repr(packed, C)]
1797/// struct Packed {
1798///     _padding: u8,
1799///     unaligned: u32,
1800/// }
1801///
1802/// let packed = Packed {
1803///     _padding: 0x00,
1804///     unaligned: 0x01020304,
1805/// };
1806///
1807/// // Take the address of a 32-bit integer which is not aligned.
1808/// // In contrast to `&packed.unaligned as *const _`, this has no undefined behavior.
1809/// let unaligned = &raw const packed.unaligned;
1810///
1811/// let v = unsafe { std::ptr::read_unaligned(unaligned) };
1812/// assert_eq!(v, 0x01020304);
1813/// ```
1814///
1815/// Accessing unaligned fields directly with e.g. `packed.unaligned` is safe however.
1816///
1817/// # Examples
1818///
1819/// Read a `usize` value from a byte buffer:
1820///
1821/// ```
1822/// fn read_usize(x: &[u8]) -> usize {
1823///     assert!(x.len() >= size_of::<usize>());
1824///
1825///     let ptr = x.as_ptr() as *const usize;
1826///
1827///     unsafe { ptr.read_unaligned() }
1828/// }
1829/// ```
1830#[inline(always)]
1831#[stable(feature = "ptr_unaligned", since = "1.17.0")]
1832#[rustc_const_stable(feature = "const_ptr_read", since = "1.71.0")]
1833#[track_caller]
1834#[rustc_diagnostic_item = "ptr_read_unaligned"]
1835pub const unsafe fn read_unaligned<T>(src: *const T) -> T {
1836    // Always true thanks to the repr, but to demonstrate
1837    const {
1838        assert!(mem::offset_of!(Unaligned::<T>, 0) == 0);
1839        assert!(size_of::<T>() == size_of::<Unaligned<T>>());
1840    }
1841
1842    let src = src.cast::<Unaligned<T>>();
1843    // SAFETY: the caller must guarantee that `src` is valid for reads.
1844    // Reading it as `Unaligned<T>` instead of `T` reads those same bytes because
1845    // it's the same size (thus zero offset), but with alignment 1 instead.
1846    //
1847    // Similarly, because it's the same bytes it's sound to transmute from the
1848    // `Unaligned<T>` to `T`.  Transmute is a value-based (not a place-based)
1849    // operation that doesn't care about alignment.
1850    unsafe {
1851        let unaligned = read(src);
1852        // Can't just destructure because that's not allowed in const fn
1853        mem::transmute_neo(unaligned)
1854    }
1855}
1856
1857/// Overwrites a memory location with the given value without reading or
1858/// dropping the old value.
1859///
1860/// `write` does not drop the contents of `dst`. This is safe, but it could leak
1861/// allocations or resources, so care should be taken not to overwrite an object
1862/// that should be dropped.
1863///
1864/// Additionally, it does not drop `src`. Semantically, `src` is moved into the
1865/// location pointed to by `dst`.
1866///
1867/// This is appropriate for initializing uninitialized memory, or overwriting
1868/// memory that has previously been [`read`] from.
1869///
1870/// # Safety
1871///
1872/// Behavior is undefined if any of the following conditions are violated:
1873///
1874/// * `dst` must be [valid] for writes or `T` must be a ZST.
1875///
1876/// * `dst` must be properly aligned. Use [`write_unaligned`] if this is not the
1877///   case.
1878///
1879/// Note that even if `T` has size `0`, the pointer must be properly aligned.
1880///
1881/// [valid]: self#safety
1882///
1883/// # Examples
1884///
1885/// Basic usage:
1886///
1887/// ```
1888/// let mut x = 0;
1889/// let y = &mut x as *mut i32;
1890/// let z = 12;
1891///
1892/// unsafe {
1893///     std::ptr::write(y, z);
1894///     assert_eq!(std::ptr::read(y), 12);
1895/// }
1896/// ```
1897///
1898/// Manually implement [`mem::swap`]:
1899///
1900/// ```
1901/// use std::ptr;
1902///
1903/// fn swap<T>(a: &mut T, b: &mut T) {
1904///     unsafe {
1905///         // Create a bitwise copy of the value at `a` in `tmp`.
1906///         let tmp = ptr::read(a);
1907///
1908///         // Exiting at this point (either by explicitly returning or by
1909///         // calling a function which panics) would cause the value in `tmp` to
1910///         // be dropped while the same value is still referenced by `a`. This
1911///         // could trigger undefined behavior if `T` is not `Copy`.
1912///
1913///         // Create a bitwise copy of the value at `b` in `a`.
1914///         // This is safe because mutable references cannot alias.
1915///         ptr::copy_nonoverlapping(b, a, 1);
1916///
1917///         // As above, exiting here could trigger undefined behavior because
1918///         // the same value is referenced by `a` and `b`.
1919///
1920///         // Move `tmp` into `b`.
1921///         ptr::write(b, tmp);
1922///
1923///         // `tmp` has been moved (`write` takes ownership of its second argument),
1924///         // so nothing is dropped implicitly here.
1925///     }
1926/// }
1927///
1928/// let mut foo = "foo".to_owned();
1929/// let mut bar = "bar".to_owned();
1930///
1931/// swap(&mut foo, &mut bar);
1932///
1933/// assert_eq!(foo, "bar");
1934/// assert_eq!(bar, "foo");
1935/// ```
1936#[inline(always)]
1937#[stable(feature = "rust1", since = "1.0.0")]
1938#[rustc_const_stable(feature = "const_ptr_write", since = "1.83.0")]
1939#[rustc_diagnostic_item = "ptr_write"]
1940#[track_caller]
1941pub const unsafe fn write<T>(dst: *mut T, src: T) {
1942    // Semantically, it would be fine for this to be implemented as a
1943    // `copy_nonoverlapping` and appropriate drop suppression of `src`.
1944
1945    // However, implementing via that currently produces more MIR than is ideal.
1946    // Using an intrinsic keeps it down to just the simple `*dst = move src` in
1947    // MIR (11 statements shorter, at the time of writing), and also allows
1948    // `src` to stay an SSA value in codegen_ssa, rather than a memory one.
1949
1950    // SAFETY: the caller must guarantee that `dst` is valid for writes.
1951    // `dst` cannot overlap `src` because the caller has mutable access
1952    // to `dst` while `src` is owned by this function.
1953    unsafe {
1954        #[cfg(debug_assertions)] // Too expensive to always enable (for now?)
1955        ub_checks::assert_unsafe_precondition!(
1956            check_language_ub,
1957            "ptr::write requires that the pointer argument is aligned and non-null",
1958            (
1959                addr: *mut () = dst as *mut (),
1960                align: usize = align_of::<T>(),
1961                is_zst: bool = T::IS_ZST,
1962            ) => ub_checks::maybe_is_aligned_and_not_null(addr, align, is_zst)
1963        );
1964        intrinsics::write_via_move(dst, src)
1965    }
1966}
1967
1968/// Overwrites a memory location with the given value without reading or
1969/// dropping the old value.
1970///
1971/// Unlike [`write()`], the pointer may be unaligned.
1972///
1973/// `write_unaligned` does not drop the contents of `dst`. This is safe, but it
1974/// could leak allocations or resources, so care should be taken not to overwrite
1975/// an object that should be dropped.
1976///
1977/// Additionally, it does not drop `src`. Semantically, `src` is moved into the
1978/// location pointed to by `dst`.
1979///
1980/// This is appropriate for initializing uninitialized memory, or overwriting
1981/// memory that has previously been read with [`read_unaligned`].
1982///
1983/// # Safety
1984///
1985/// Behavior is undefined if any of the following conditions are violated:
1986///
1987/// * `dst` must be [valid] for writes.
1988///
1989/// [valid]: self#safety
1990///
1991/// ## On `packed` structs
1992///
1993/// Attempting to create a raw pointer to an `unaligned` struct field with
1994/// an expression such as `&packed.unaligned as *const FieldType` creates an
1995/// intermediate unaligned reference before converting that to a raw pointer.
1996/// That this reference is temporary and immediately cast is inconsequential
1997/// as the compiler always expects references to be properly aligned.
1998/// As a result, using `&packed.unaligned as *const FieldType` causes immediate
1999/// *undefined behavior* in your program.
2000///
2001/// Instead, you must use the `&raw mut` syntax to create the pointer.
2002/// You may use that constructed pointer together with this function.
2003///
2004/// An example of how to do it and how this relates to `write_unaligned` is:
2005///
2006/// ```
2007/// #[repr(packed, C)]
2008/// struct Packed {
2009///     _padding: u8,
2010///     unaligned: u32,
2011/// }
2012///
2013/// let mut packed: Packed = unsafe { std::mem::zeroed() };
2014///
2015/// // Take the address of a 32-bit integer which is not aligned.
2016/// // In contrast to `&packed.unaligned as *mut _`, this has no undefined behavior.
2017/// let unaligned = &raw mut packed.unaligned;
2018///
2019/// unsafe { std::ptr::write_unaligned(unaligned, 42) };
2020///
2021/// assert_eq!({packed.unaligned}, 42); // `{...}` forces copying the field instead of creating a reference.
2022/// ```
2023///
2024/// Accessing unaligned fields directly with e.g. `packed.unaligned` is safe however
2025/// (as can be seen in the `assert_eq!` above).
2026///
2027/// # Examples
2028///
2029/// Write a `usize` value to a byte buffer:
2030///
2031/// ```
2032/// fn write_usize(x: &mut [u8], val: usize) {
2033///     assert!(x.len() >= size_of::<usize>());
2034///
2035///     let ptr = x.as_mut_ptr() as *mut usize;
2036///
2037///     unsafe { ptr.write_unaligned(val) }
2038/// }
2039/// ```
2040#[inline(always)]
2041#[stable(feature = "ptr_unaligned", since = "1.17.0")]
2042#[rustc_const_stable(feature = "const_ptr_write", since = "1.83.0")]
2043#[rustc_diagnostic_item = "ptr_write_unaligned"]
2044#[track_caller]
2045pub const unsafe fn write_unaligned<T>(dst: *mut T, src: T) {
2046    // Always true thanks to the repr, but to demonstrate
2047    const {
2048        assert!(mem::offset_of!(Unaligned::<T>, 0) == 0);
2049        assert!(size_of::<T>() == size_of::<Unaligned<T>>());
2050    }
2051
2052    let dst = dst.cast::<Unaligned<T>>();
2053    let src = Unaligned(src);
2054    // SAFETY: the caller must guarantee that `dst` is valid for writes.
2055    // Writing it as `Unaligned<T>` instead of `T` writes those same bytes because
2056    // it's the same size (thus zero offset), but with alignment 1 instead.
2057    unsafe { write(dst, src) }
2058}
2059
2060/// Performs a volatile read of the value from `src` without moving it.
2061///
2062/// Volatile operations are intended to act on I/O memory. As such, they are considered externally
2063/// observable events (just like syscalls, but less opaque), and are guaranteed to not be elided or
2064/// reordered by the compiler across other externally observable events. With this in mind, there
2065/// are two cases of usage that need to be distinguished:
2066///
2067/// - When a volatile operation is used for memory inside an [allocation], it behaves exactly like
2068///   [`read`], except for the additional guarantee that it won't be elided or reordered (see
2069///   above). This implies that the operation will actually access memory and not e.g. be lowered to
2070///   reusing data from a previous read. Other than that, all the usual rules for memory accesses
2071///   apply (including provenance).  In particular, just like in C, whether an operation is volatile
2072///   has no bearing whatsoever on questions involving concurrent accesses from multiple threads.
2073///   Volatile accesses behave exactly like non-atomic accesses in that regard.
2074///
2075/// - Volatile operations, however, may also be used to access memory that is _outside_ of any Rust
2076///   allocation. In this use-case, the pointer does *not* have to be [valid] for reads. This is
2077///   typically used for CPU and peripheral registers that must be accessed via an I/O memory
2078///   mapping, most commonly at fixed addresses reserved by the hardware. These often have special
2079///   semantics associated to their manipulation, and cannot be used as general purpose memory.
2080///   Here, any address value is possible, including 0 and [`usize::MAX`], so long as the semantics
2081///   of such a read are well-defined by the target hardware. The provenance of the pointer is
2082///   irrelevant, and it can be created with [`without_provenance`]. The access must not trap. It
2083///   can cause side-effects, but those must not affect Rust-allocated memory in any way. This
2084///   access is still not considered [atomic], and as such it cannot be used for inter-thread
2085///   synchronization.
2086///
2087/// Note that volatile memory operations where T is a zero-sized type are noops and may be ignored.
2088///
2089/// When invoked during const evaluation, this behaves like a regular read. In particular, such
2090/// reads must always follow the first of the two cases above.
2091///
2092/// [allocation]: crate::ptr#allocated-object
2093/// [atomic]: crate::sync::atomic#memory-model-for-atomic-accesses
2094///
2095/// # Load splitting
2096///
2097/// Exactly which hardware loads are performed by this function is, in general, highly target-dependent.
2098///
2099/// For a simple scalar, such as when `T` is a thin pointer, this will typically be one load assuming
2100/// your target supports a load of exactly that size and alignment.
2101///
2102/// For anything else, it will be split into multiple loads in some unspecified way.
2103/// This can happen even for scalars: notably, on many targets loading a `u128` will still need to be split,
2104/// despite being "one" scalar.  On many targets loading anything larger than a pointer will need to be split.
2105/// On all current targets a load larger than 64 bytes will need to be split.
2106/// Any load whose size is not a power of two will also almost certainly need to be split.
2107///
2108/// There is no stability guarantee on how that splitting happens.  It may change at any point.
2109///
2110/// # Safety
2111///
2112/// Like [`read`], `read_volatile` creates a bitwise copy of `T`, regardless of whether `T` is
2113/// [`Copy`]. If `T` is not [`Copy`], using both the returned value and the value at `*src` can
2114/// [violate memory safety][read-ownership]. However, storing non-[`Copy`] types in volatile memory
2115/// is almost certainly incorrect.
2116///
2117/// Behavior is undefined if any of the following conditions are violated:
2118///
2119/// * `src` must be either [valid] for reads, or `T` must be a ZST, or `src` must point to memory
2120///   outside of all Rust allocations and reading from that memory must:
2121///   - not trap, and
2122///   - not cause any memory inside a Rust allocation to be modified.
2123///
2124/// * `src` must be properly aligned.
2125///
2126/// * Reading from `src` must produce a properly initialized value of type `T`.
2127///
2128/// Note that even if `T` has size `0`, the pointer must be properly aligned.
2129///
2130/// [valid]: self#safety
2131/// [read-ownership]: read#ownership-of-the-returned-value
2132///
2133/// # Examples
2134///
2135/// Basic usage:
2136///
2137/// ```
2138/// let x = 12;
2139/// let y = &x as *const i32;
2140///
2141/// unsafe {
2142///     assert_eq!(std::ptr::read_volatile(y), 12);
2143/// }
2144/// ```
2145#[inline(always)]
2146#[stable(feature = "volatile", since = "1.9.0")]
2147#[rustc_const_unstable(feature = "const_volatile", issue = "159094")]
2148#[track_caller]
2149#[rustc_diagnostic_item = "ptr_read_volatile"]
2150pub const unsafe fn read_volatile<T>(src: *const T) -> T {
2151    // SAFETY: the caller must uphold the safety contract for `volatile_load`.
2152    unsafe {
2153        ub_checks::assert_unsafe_precondition!(
2154            check_language_ub,
2155            "ptr::read_volatile requires that the pointer argument is aligned",
2156            (
2157                addr: *const () = src as *const (),
2158                align: usize = align_of::<T>(),
2159            ) => ub_checks::maybe_is_aligned(addr, align)
2160        );
2161        intrinsics::volatile_load(src)
2162    }
2163}
2164
2165/// Performs a volatile write of a memory location with the given value without reading or dropping
2166/// the old value.
2167///
2168/// Volatile operations are intended to act on I/O memory. As such, they are considered externally
2169/// observable events (just like syscalls), and are guaranteed to not be elided or reordered by the
2170/// compiler across other externally observable events. With this in mind, there are two cases of
2171/// usage that need to be distinguished:
2172///
2173/// - When a volatile operation is used for memory inside an [allocation], it behaves exactly like
2174///   [`write`][write()], except for the additional guarantee that it won't be elided or reordered
2175///   (see above). This implies that the operation will actually access memory and not e.g. be
2176///   lowered to a register access. Other than that, all the usual rules for memory accesses apply
2177///   (including provenance). In particular, just like in C, whether an operation is volatile has no
2178///   bearing whatsoever on questions involving concurrent access from multiple threads. Volatile
2179///   accesses behave exactly like non-atomic accesses in that regard.
2180///
2181/// - Volatile operations, however, may also be used to access memory that is _outside_ of any Rust
2182///   allocation. In this use-case, the pointer does *not* have to be [valid] for writes. This is
2183///   typically used for CPU and peripheral registers that must be accessed via an I/O memory
2184///   mapping, most commonly at fixed addresses reserved by the hardware. These often have special
2185///   semantics associated to their manipulation, and cannot be used as general purpose memory.
2186///   Here, any address value is possible, including 0 and [`usize::MAX`], so long as the semantics
2187///   of such a write are well-defined by the target hardware. The provenance of the pointer is
2188///   irrelevant, and it can be created with [`without_provenance`]. The access must not trap. It
2189///   can cause side-effects, but those must not affect Rust-allocated memory in any way. This
2190///   access is still not considered [atomic], and as such it cannot be used for inter-thread
2191///   synchronization.
2192///
2193/// Note that volatile memory operations on zero-sized types (e.g., if a zero-sized type is passed
2194/// to `write_volatile`) are noops and may be ignored.
2195///
2196/// `write_volatile` does not drop the contents of `dst`. This is safe, but it could leak
2197/// allocations or resources, so care should be taken not to overwrite an object that should be
2198/// dropped when operating on Rust memory. Additionally, it does not drop `src`. Semantically, `src`
2199/// is moved into the location pointed to by `dst`.
2200///
2201/// When invoked during const evaluation, this behaves like a regular write. In particular, such
2202/// reads must always follow the first of the two cases above.
2203///
2204/// [allocation]: crate::ptr#allocated-object
2205/// [atomic]: crate::sync::atomic#memory-model-for-atomic-accesses
2206///
2207/// # Store splitting
2208///
2209/// Exactly which hardware stores are performed by this function is, in general, highly target-dependent.
2210///
2211/// For a simple scalar, such as when `T` is a thin pointer, this will typically be one store assuming
2212/// your target supports a store of exactly that size and alignment.
2213///
2214/// For anything else, it will be split into multiple stores in some unspecified way.
2215/// This can happen even for scalars: notably, on many targets storing a `u128` will still need to be split,
2216/// despite being "one" scalar.  On many targets storing anything larger than a pointer will need to be split.
2217/// On all current targets a store larger than 64 bytes will need to be split.
2218/// Any store whose size is not a power of two will also almost certainly need to be split.
2219///
2220/// There is no stability guarantee on how that splitting happens.  It may change at any point.
2221///
2222/// # Safety
2223///
2224/// Behavior is undefined if any of the following conditions are violated:
2225///
2226/// * `dst` must be either [valid] for writes, or `T` must be a ZST, or `dst` must point to memory
2227///   outside of all Rust allocations and writing to that memory must:
2228///   - not trap, and
2229///   - not cause any memory inside a Rust allocation to be modified.
2230///
2231/// * `dst` must be properly aligned.
2232///
2233/// Note that even if `T` has size `0`, the pointer must be properly aligned.
2234///
2235/// [valid]: self#safety
2236///
2237/// # Examples
2238///
2239/// Basic usage:
2240///
2241/// ```
2242/// let mut x = 0;
2243/// let y = &mut x as *mut i32;
2244/// let z = 12;
2245///
2246/// unsafe {
2247///     std::ptr::write_volatile(y, z);
2248///     assert_eq!(std::ptr::read_volatile(y), 12);
2249/// }
2250/// ```
2251#[inline(always)]
2252#[stable(feature = "volatile", since = "1.9.0")]
2253#[rustc_const_unstable(feature = "const_volatile", issue = "159094")]
2254#[rustc_diagnostic_item = "ptr_write_volatile"]
2255#[track_caller]
2256pub const unsafe fn write_volatile<T>(dst: *mut T, src: T) {
2257    // SAFETY: the caller must uphold the safety contract for `volatile_store`.
2258    unsafe {
2259        ub_checks::assert_unsafe_precondition!(
2260            check_language_ub,
2261            "ptr::write_volatile requires that the pointer argument is aligned",
2262            (
2263                addr: *mut () = dst as *mut (),
2264                align: usize = align_of::<T>(),
2265            ) => ub_checks::maybe_is_aligned(addr, align)
2266        );
2267        intrinsics::volatile_store(dst, src);
2268    }
2269}
2270
2271/// Calculate an element-offset that increases a pointer's alignment.
2272///
2273/// Calculate an element-offset (not byte-offset) that when added to a given pointer `p`, increases `p`'s alignment to at least the given alignment `a`.
2274///
2275/// # Safety
2276/// `a` must be a power of two.
2277///
2278/// # Notes
2279/// This implementation has been carefully tailored to not panic. It is UB for this to panic.
2280/// The only real change that can be made here is change of `INV_TABLE_MOD_16` and associated
2281/// constants.
2282///
2283/// If we ever decide to make it possible to call the intrinsic with `a` that is not a
2284/// power-of-two, it will probably be more prudent to just change to a naive implementation rather
2285/// than trying to adapt this to accommodate that change.
2286///
2287/// Any questions go to @nagisa.
2288#[allow(ptr_to_integer_transmute_in_consts)]
2289pub(crate) unsafe fn align_offset<T: Sized>(p: *const T, a: usize) -> usize {
2290    // FIXME(#75598): Direct use of these intrinsics improves codegen significantly at opt-level <=
2291    // 1, where the method versions of these operations are not inlined.
2292    use intrinsics::{
2293        assume, cttz_nonzero, exact_div, mul_with_overflow, unchecked_rem, unchecked_shl,
2294        unchecked_shr, unchecked_sub, wrapping_add, wrapping_mul, wrapping_sub,
2295    };
2296
2297    /// Calculate multiplicative modular inverse of `x` modulo `m`.
2298    ///
2299    /// This implementation is tailored for `align_offset` and has following preconditions:
2300    ///
2301    /// * `m` is a power-of-two;
2302    /// * `x < m`; (if `x ≥ m`, pass in `x % m` instead)
2303    ///
2304    /// Implementation of this function shall not panic. Ever.
2305    #[inline]
2306    const unsafe fn mod_inv(x: usize, m: usize) -> usize {
2307        /// Multiplicative modular inverse table modulo 2⁴ = 16.
2308        ///
2309        /// Note, that this table does not contain values where inverse does not exist (i.e., for
2310        /// `0⁻¹ mod 16`, `2⁻¹ mod 16`, etc.)
2311        const INV_TABLE_MOD_16: [u8; 8] = [1, 11, 13, 7, 9, 3, 5, 15];
2312        /// Modulo for which the `INV_TABLE_MOD_16` is intended.
2313        const INV_TABLE_MOD: usize = 16;
2314
2315        // SAFETY: `m` is required to be a power-of-two, hence non-zero.
2316        let m_minus_one = unsafe { unchecked_sub(m, 1) };
2317        let mut inverse = INV_TABLE_MOD_16[(x & (INV_TABLE_MOD - 1)) >> 1] as usize;
2318        let mut mod_gate = INV_TABLE_MOD;
2319        // We iterate "up" using the following formula:
2320        //
2321        // $$ xy ≡ 1 (mod 2ⁿ) → xy (2 - xy) ≡ 1 (mod 2²ⁿ) $$
2322        //
2323        // This application needs to be applied at least until `2²ⁿ ≥ m`, at which point we can
2324        // finally reduce the computation to our desired `m` by taking `inverse mod m`.
2325        //
2326        // This computation is `O(log log m)`, which is to say, that on 64-bit machines this loop
2327        // will always finish in at most 4 iterations.
2328        loop {
2329            // y = y * (2 - xy) mod n
2330            //
2331            // Note, that we use wrapping operations here intentionally – the original formula
2332            // uses e.g., subtraction `mod n`. It is entirely fine to do them `mod
2333            // usize::MAX` instead, because we take the result `mod n` at the end
2334            // anyway.
2335            if mod_gate >= m {
2336                break;
2337            }
2338            inverse = wrapping_mul(inverse, wrapping_sub(2usize, wrapping_mul(x, inverse)));
2339            let (new_gate, overflow) = mul_with_overflow(mod_gate, mod_gate);
2340            if overflow {
2341                break;
2342            }
2343            mod_gate = new_gate;
2344        }
2345        inverse & m_minus_one
2346    }
2347
2348    let stride = size_of::<T>();
2349
2350    let addr: usize = p.addr();
2351
2352    // SAFETY: `a` is a power-of-two, therefore non-zero.
2353    let a_minus_one = unsafe { unchecked_sub(a, 1) };
2354
2355    if stride == 0 {
2356        // SPECIAL_CASE: handle 0-sized types. No matter how many times we step, the address will
2357        // stay the same, so no offset will be able to align the pointer unless it is already
2358        // aligned. This branch _will_ be optimized out as `stride` is known at compile-time.
2359        let p_mod_a = addr & a_minus_one;
2360        return if p_mod_a == 0 { 0 } else { usize::MAX };
2361    }
2362
2363    // SAFETY: `stride == 0` case has been handled by the special case above.
2364    let a_mod_stride = unsafe { unchecked_rem(a, stride) };
2365    if a_mod_stride == 0 {
2366        // SPECIAL_CASE: In cases where the `a` is divisible by `stride`, byte offset to align a
2367        // pointer can be computed more simply through `-p (mod a)`. In the off-chance the byte
2368        // offset is not a multiple of `stride`, the input pointer was misaligned and no pointer
2369        // offset will be able to produce a `p` aligned to the specified `a`.
2370        //
2371        // The naive `-p (mod a)` equation inhibits LLVM's ability to select instructions
2372        // like `lea`. We compute `(round_up_to_next_alignment(p, a) - p)` instead. This
2373        // redistributes operations around the load-bearing, but pessimizing `and` instruction
2374        // sufficiently for LLVM to be able to utilize the various optimizations it knows about.
2375        //
2376        // LLVM handles the branch here particularly nicely. If this branch needs to be evaluated
2377        // at runtime, it will produce a mask `if addr_mod_stride == 0 { 0 } else { usize::MAX }`
2378        // in a branch-free way and then bitwise-OR it with whatever result the `-p mod a`
2379        // computation produces.
2380
2381        let aligned_address = wrapping_add(addr, a_minus_one) & wrapping_sub(0, a);
2382        let byte_offset = wrapping_sub(aligned_address, addr);
2383        // FIXME: Remove the assume after <https://github.com/llvm/llvm-project/issues/62502>
2384        // SAFETY: Masking by `-a` can only affect the low bits, and thus cannot have reduced
2385        // the value by more than `a-1`, so even though the intermediate values might have
2386        // wrapped, the byte_offset is always in `[0, a)`.
2387        unsafe { assume(byte_offset < a) };
2388
2389        // SAFETY: `stride == 0` case has been handled by the special case above.
2390        let addr_mod_stride = unsafe { unchecked_rem(addr, stride) };
2391
2392        return if addr_mod_stride == 0 {
2393            // SAFETY: `stride` is non-zero. This is guaranteed to divide exactly as well, because
2394            // addr has been verified to be aligned to the original type’s alignment requirements.
2395            unsafe { exact_div(byte_offset, stride) }
2396        } else {
2397            usize::MAX
2398        };
2399    }
2400
2401    // GENERAL_CASE: From here on we’re handling the very general case where `addr` may be
2402    // misaligned, there isn’t an obvious relationship between `stride` and `a` that we can take an
2403    // advantage of, etc. This case produces machine code that isn’t particularly high quality,
2404    // compared to the special cases above. The code produced here is still within the realm of
2405    // miracles, given the situations this case has to deal with.
2406
2407    // SAFETY: a is power-of-two hence non-zero. stride == 0 case is handled above.
2408    // FIXME(const-hack) replace with min
2409    let gcdpow = unsafe {
2410        let x = cttz_nonzero(stride);
2411        let y = cttz_nonzero(a);
2412        if x < y { x } else { y }
2413    };
2414    // SAFETY: gcdpow has an upper-bound that’s at most the number of bits in a `usize`.
2415    let gcd = unsafe { unchecked_shl(1usize, gcdpow) };
2416    // SAFETY: gcd is always greater or equal to 1.
2417    if addr & unsafe { unchecked_sub(gcd, 1) } == 0 {
2418        // This branch solves for the following linear congruence equation:
2419        //
2420        // ` p + so = 0 mod a `
2421        //
2422        // `p` here is the pointer value, `s` - stride of `T`, `o` offset in `T`s, and `a` - the
2423        // requested alignment.
2424        //
2425        // With `g = gcd(a, s)`, and the above condition asserting that `p` is also divisible by
2426        // `g`, we can denote `a' = a/g`, `s' = s/g`, `p' = p/g`, then this becomes equivalent to:
2427        //
2428        // ` p' + s'o = 0 mod a' `
2429        // ` o = (a' - (p' mod a')) * (s'^-1 mod a') `
2430        //
2431        // The first term is "the relative alignment of `p` to `a`" (divided by the `g`), the
2432        // second term is "how does incrementing `p` by `s` bytes change the relative alignment of
2433        // `p`" (again divided by `g`). Division by `g` is necessary to make the inverse well
2434        // formed if `a` and `s` are not co-prime.
2435        //
2436        // Furthermore, the result produced by this solution is not "minimal", so it is necessary
2437        // to take the result `o mod lcm(s, a)`. This `lcm(s, a)` is the same as `a'`.
2438
2439        // SAFETY: `gcdpow` has an upper-bound not greater than the number of trailing 0-bits in
2440        // `a`.
2441        let a2 = unsafe { unchecked_shr(a, gcdpow) };
2442        // SAFETY: `a2` is non-zero. Shifting `a` by `gcdpow` cannot shift out any of the set bits
2443        // in `a` (of which it has exactly one).
2444        let a2minus1 = unsafe { unchecked_sub(a2, 1) };
2445        // SAFETY: `gcdpow` has an upper-bound not greater than the number of trailing 0-bits in
2446        // `a`.
2447        let s2 = unsafe { unchecked_shr(stride & a_minus_one, gcdpow) };
2448        // SAFETY: `gcdpow` has an upper-bound not greater than the number of trailing 0-bits in
2449        // `a`. Furthermore, the subtraction cannot overflow, because `a2 = a >> gcdpow` will
2450        // always be strictly greater than `(p % a) >> gcdpow`.
2451        let minusp2 = unsafe { unchecked_sub(a2, unchecked_shr(addr & a_minus_one, gcdpow)) };
2452        // SAFETY: `a2` is a power-of-two, as proven above. `s2` is strictly less than `a2`
2453        // because `(s % a) >> gcdpow` is strictly less than `a >> gcdpow`.
2454        return wrapping_mul(minusp2, unsafe { mod_inv(s2, a2) }) & a2minus1;
2455    }
2456
2457    // Cannot be aligned at all.
2458    usize::MAX
2459}
2460
2461/// Compares raw pointers for equality.
2462///
2463/// This is the same as using the `==` operator, but less generic:
2464/// the arguments have to be `*const T` raw pointers,
2465/// not anything that implements `PartialEq`.
2466///
2467/// This can be used to compare `&T` references (which coerce to `*const T` implicitly)
2468/// by their address rather than comparing the values they point to
2469/// (which is what the `PartialEq for &T` implementation does).
2470///
2471/// When comparing wide pointers, both the address and the metadata are tested for equality.
2472/// However, note that comparing trait object pointers (`*const dyn Trait`) is unreliable: pointers
2473/// to values of the same underlying type can compare inequal (because vtables are duplicated in
2474/// multiple codegen units), and pointers to values of *different* underlying type can compare equal
2475/// (since identical vtables can be deduplicated within a codegen unit).
2476///
2477/// # Examples
2478///
2479/// ```
2480/// use std::ptr;
2481///
2482/// let five = 5;
2483/// let other_five = 5;
2484/// let five_ref = &five;
2485/// let same_five_ref = &five;
2486/// let other_five_ref = &other_five;
2487///
2488/// assert!(five_ref == same_five_ref);
2489/// assert!(ptr::eq(five_ref, same_five_ref));
2490///
2491/// assert!(five_ref == other_five_ref);
2492/// assert!(!ptr::eq(five_ref, other_five_ref));
2493/// ```
2494///
2495/// Slices are also compared by their length (fat pointers):
2496///
2497/// ```
2498/// let a = [1, 2, 3];
2499/// assert!(std::ptr::eq(&a[..3], &a[..3]));
2500/// assert!(!std::ptr::eq(&a[..2], &a[..3]));
2501/// assert!(!std::ptr::eq(&a[0..2], &a[1..3]));
2502/// ```
2503#[stable(feature = "ptr_eq", since = "1.17.0")]
2504#[inline(always)]
2505#[must_use = "pointer comparison produces a value"]
2506#[rustc_diagnostic_item = "ptr_eq"]
2507#[allow(ambiguous_wide_pointer_comparisons)] // it's actually clear here
2508pub fn eq<T: PointeeSized>(a: *const T, b: *const T) -> bool {
2509    a == b
2510}
2511
2512/// Compares the *addresses* of the two pointers for equality,
2513/// ignoring any metadata in fat pointers.
2514///
2515/// If the arguments are thin pointers of the same type,
2516/// then this is the same as [`eq`].
2517///
2518/// # Examples
2519///
2520/// ```
2521/// use std::ptr;
2522///
2523/// let whole: &[i32; 3] = &[1, 2, 3];
2524/// let first: &i32 = &whole[0];
2525///
2526/// assert!(ptr::addr_eq(whole, first));
2527/// assert!(!ptr::eq::<dyn std::fmt::Debug>(whole, first));
2528/// ```
2529#[stable(feature = "ptr_addr_eq", since = "1.76.0")]
2530#[inline(always)]
2531#[must_use = "pointer comparison produces a value"]
2532pub fn addr_eq<T: PointeeSized, U: PointeeSized>(p: *const T, q: *const U) -> bool {
2533    (p as *const ()) == (q as *const ())
2534}
2535
2536/// Compares the *addresses* of the two function pointers for equality.
2537///
2538/// This is the same as `f == g`, but using this function makes clear that the potentially
2539/// surprising semantics of function pointer comparison are involved.
2540///
2541/// There are **very few guarantees** about how functions are compiled and they have no intrinsic
2542/// “identity”; in particular, this comparison:
2543///
2544/// * May return `true` unexpectedly, in cases where functions are equivalent.
2545///
2546///   For example, the following program is likely (but not guaranteed) to print `(true, true)`
2547///   when compiled with optimization:
2548///
2549///   ```
2550///   let f: fn(i32) -> i32 = |x| x;
2551///   let g: fn(i32) -> i32 = |x| x + 0;  // different closure, different body
2552///   let h: fn(u32) -> u32 = |x| x + 0;  // different signature too
2553///   dbg!(std::ptr::fn_addr_eq(f, g), std::ptr::fn_addr_eq(f, h)); // not guaranteed to be equal
2554///   ```
2555///
2556/// * May return `false` in any case.
2557///
2558///   This is particularly likely with generic functions but may happen with any function.
2559///   (From an implementation perspective, this is possible because functions may sometimes be
2560///   processed more than once by the compiler, resulting in duplicate machine code.)
2561///
2562/// Despite these false positives and false negatives, this comparison can still be useful.
2563/// Specifically, if
2564///
2565/// * `T` is the same type as `U`, `T` is a [subtype] of `U`, or `U` is a [subtype] of `T`, and
2566/// * `ptr::fn_addr_eq(f, g)` returns true,
2567///
2568/// then calling `f` and calling `g` will be equivalent.
2569///
2570///
2571/// # Examples
2572///
2573/// ```
2574/// use std::ptr;
2575///
2576/// fn a() { println!("a"); }
2577/// fn b() { println!("b"); }
2578/// assert!(!ptr::fn_addr_eq(a as fn(), b as fn()));
2579/// ```
2580///
2581/// [subtype]: https://doc.rust-lang.org/reference/subtyping.html
2582#[stable(feature = "ptr_fn_addr_eq", since = "1.85.0")]
2583#[inline(always)]
2584#[must_use = "function pointer comparison produces a value"]
2585pub fn fn_addr_eq<T: FnPtr, U: FnPtr>(f: T, g: U) -> bool {
2586    f.addr() == g.addr()
2587}
2588
2589/// Hash a raw pointer.
2590///
2591/// This can be used to hash a `&T` reference (which coerces to `*const T` implicitly)
2592/// by its address rather than the value it points to
2593/// (which is what the `Hash for &T` implementation does).
2594///
2595/// # Examples
2596///
2597/// ```
2598/// use std::hash::{DefaultHasher, Hash, Hasher};
2599/// use std::ptr;
2600///
2601/// let five = 5;
2602/// let five_ref = &five;
2603///
2604/// let mut hasher = DefaultHasher::new();
2605/// ptr::hash(five_ref, &mut hasher);
2606/// let actual = hasher.finish();
2607///
2608/// let mut hasher = DefaultHasher::new();
2609/// (five_ref as *const i32).hash(&mut hasher);
2610/// let expected = hasher.finish();
2611///
2612/// assert_eq!(actual, expected);
2613/// ```
2614#[stable(feature = "ptr_hash", since = "1.35.0")]
2615pub fn hash<T: PointeeSized, S: hash::Hasher>(hashee: *const T, into: &mut S) {
2616    use crate::hash::Hash;
2617    hashee.hash(into);
2618}
2619
2620#[stable(feature = "fnptr_impls", since = "1.4.0")]
2621#[diagnostic::on_const(
2622    message = "pointers cannot be reliably compared during const eval",
2623    note = "see issue #53020 <https://github.com/rust-lang/rust/issues/53020> for more information"
2624)]
2625impl<F: FnPtr> PartialEq for F {
2626    #[inline]
2627    fn eq(&self, other: &Self) -> bool {
2628        self.addr() == other.addr()
2629    }
2630}
2631#[stable(feature = "fnptr_impls", since = "1.4.0")]
2632#[diagnostic::on_const(
2633    message = "pointers cannot be reliably compared during const eval",
2634    note = "see issue #53020 <https://github.com/rust-lang/rust/issues/53020> for more information"
2635)]
2636impl<F: FnPtr> Eq for F {}
2637
2638#[stable(feature = "fnptr_impls", since = "1.4.0")]
2639#[diagnostic::on_const(
2640    message = "pointers cannot be reliably compared during const eval",
2641    note = "see issue #53020 <https://github.com/rust-lang/rust/issues/53020> for more information"
2642)]
2643impl<F: FnPtr> PartialOrd for F {
2644    #[inline]
2645    fn partial_cmp(&self, other: &Self) -> Option<Ordering> {
2646        self.addr().partial_cmp(&other.addr())
2647    }
2648}
2649#[stable(feature = "fnptr_impls", since = "1.4.0")]
2650#[diagnostic::on_const(
2651    message = "pointers cannot be reliably compared during const eval",
2652    note = "see issue #53020 <https://github.com/rust-lang/rust/issues/53020> for more information"
2653)]
2654impl<F: FnPtr> Ord for F {
2655    #[inline]
2656    fn cmp(&self, other: &Self) -> Ordering {
2657        self.addr().cmp(&other.addr())
2658    }
2659}
2660
2661#[stable(feature = "fnptr_impls", since = "1.4.0")]
2662impl<F: FnPtr> hash::Hash for F {
2663    fn hash<HH: hash::Hasher>(&self, state: &mut HH) {
2664        state.write_usize(self.addr())
2665    }
2666}
2667
2668#[stable(feature = "fnptr_impls", since = "1.4.0")]
2669impl<F: FnPtr> fmt::Pointer for F {
2670    fn fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result {
2671        fmt::pointer_fmt_inner(self.addr(), f)
2672    }
2673}
2674
2675#[stable(feature = "fnptr_impls", since = "1.4.0")]
2676impl<F: FnPtr> fmt::Debug for F {
2677    fn fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result {
2678        fmt::pointer_fmt_inner(self.addr(), f)
2679    }
2680}
2681
2682/// Creates a `const` raw pointer to a place, without creating an intermediate reference.
2683///
2684/// `addr_of!(expr)` is equivalent to `&raw const expr`. The macro is *soft-deprecated*;
2685/// use `&raw const` instead.
2686///
2687/// It is still an open question under which conditions writing through an `addr_of!`-created
2688/// pointer is permitted. If the place `expr` evaluates to is based on a raw pointer, then the
2689/// result of `addr_of!` inherits all permissions from that raw pointer. However, if the place is
2690/// based on a reference, local variable, or `static`, then until all details are decided, the same
2691/// rules as for shared references apply: it is UB to write through a pointer created with this
2692/// operation, except for bytes located inside an `UnsafeCell`. Use `&raw mut` (or [`addr_of_mut`])
2693/// to create a raw pointer that definitely permits mutation.
2694///
2695/// Creating a reference with `&`/`&mut` is only allowed if the pointer is properly aligned
2696/// and points to initialized data. For cases where those requirements do not hold,
2697/// raw pointers should be used instead. However, `&expr as *const _` creates a reference
2698/// before casting it to a raw pointer, and that reference is subject to the same rules
2699/// as all other references. This macro can create a raw pointer *without* creating
2700/// a reference first.
2701///
2702/// See [`addr_of_mut`] for how to create a pointer to uninitialized data.
2703/// Doing that with `addr_of` would not make much sense since one could only
2704/// read the data, and that would be Undefined Behavior.
2705///
2706/// # Safety
2707///
2708/// The `expr` in `addr_of!(expr)` is evaluated as a place expression, but never loads from the
2709/// place or requires the place to be dereferenceable. This means that `addr_of!((*ptr).field)`
2710/// still requires the projection to `field` to be in-bounds, using the same rules as [`offset`].
2711/// However, `addr_of!(*ptr)` is defined behavior even if `ptr` is null, dangling, or misaligned.
2712///
2713/// Note that `Deref`/`Index` coercions (and their mutable counterparts) are applied inside
2714/// `addr_of!` like everywhere else, in which case a reference is created to call `Deref::deref` or
2715/// `Index::index`, respectively. The statements above only apply when no such coercions are
2716/// applied.
2717///
2718/// [`offset`]: pointer::offset
2719///
2720/// # Example
2721///
2722/// **Correct usage: Creating a pointer to unaligned data**
2723///
2724/// ```
2725/// use std::ptr;
2726///
2727/// #[repr(packed)]
2728/// struct Packed {
2729///     f1: u8,
2730///     f2: u16,
2731/// }
2732///
2733/// let packed = Packed { f1: 1, f2: 2 };
2734/// // `&packed.f2` would create an unaligned reference, and thus be Undefined Behavior!
2735/// let raw_f2 = ptr::addr_of!(packed.f2);
2736/// assert_eq!(unsafe { raw_f2.read_unaligned() }, 2);
2737/// ```
2738///
2739/// **Incorrect usage: Out-of-bounds fields projection**
2740///
2741/// ```rust,no_run
2742/// use std::ptr;
2743///
2744/// #[repr(C)]
2745/// struct MyStruct {
2746///     field1: i32,
2747///     field2: i32,
2748/// }
2749///
2750/// let ptr: *const MyStruct = ptr::null();
2751/// let fieldptr = unsafe { ptr::addr_of!((*ptr).field2) }; // Undefined Behavior ⚠️
2752/// ```
2753///
2754/// The field projection `.field2` would offset the pointer by 4 bytes,
2755/// but the pointer is not in-bounds of an allocation for 4 bytes,
2756/// so this offset is Undefined Behavior.
2757/// See the [`offset`] docs for a full list of requirements for inbounds pointer arithmetic; the
2758/// same requirements apply to field projections, even inside `addr_of!`. (In particular, it makes
2759/// no difference whether the pointer is null or dangling.)
2760#[stable(feature = "raw_ref_macros", since = "1.51.0")]
2761#[rustc_macro_transparency = "semiopaque"]
2762pub macro addr_of($place:expr) {
2763    &raw const $place
2764}
2765
2766/// Creates a `mut` raw pointer to a place, without creating an intermediate reference.
2767///
2768/// `addr_of_mut!(expr)` is equivalent to `&raw mut expr`. The macro is *soft-deprecated*;
2769/// use `&raw mut` instead.
2770///
2771/// Creating a reference with `&`/`&mut` is only allowed if the pointer is properly aligned
2772/// and points to initialized data. For cases where those requirements do not hold,
2773/// raw pointers should be used instead. However, `&mut expr as *mut _` creates a reference
2774/// before casting it to a raw pointer, and that reference is subject to the same rules
2775/// as all other references. This macro can create a raw pointer *without* creating
2776/// a reference first.
2777///
2778/// # Safety
2779///
2780/// The `expr` in `addr_of_mut!(expr)` is evaluated as a place expression, but never loads from the
2781/// place or requires the place to be dereferenceable. This means that `addr_of_mut!((*ptr).field)`
2782/// still requires the projection to `field` to be in-bounds, using the same rules as [`offset`].
2783/// However, `addr_of_mut!(*ptr)` is defined behavior even if `ptr` is null, dangling, or misaligned.
2784///
2785/// Note that `Deref`/`Index` coercions (and their mutable counterparts) are applied inside
2786/// `addr_of_mut!` like everywhere else, in which case a reference is created to call `Deref::deref`
2787/// or `Index::index`, respectively. The statements above only apply when no such coercions are
2788/// applied.
2789///
2790/// [`offset`]: pointer::offset
2791///
2792/// # Examples
2793///
2794/// **Correct usage: Creating a pointer to unaligned data**
2795///
2796/// ```
2797/// use std::ptr;
2798///
2799/// #[repr(packed)]
2800/// struct Packed {
2801///     f1: u8,
2802///     f2: u16,
2803/// }
2804///
2805/// let mut packed = Packed { f1: 1, f2: 2 };
2806/// // `&mut packed.f2` would create an unaligned reference, and thus be Undefined Behavior!
2807/// let raw_f2 = ptr::addr_of_mut!(packed.f2);
2808/// unsafe { raw_f2.write_unaligned(42); }
2809/// assert_eq!({packed.f2}, 42); // `{...}` forces copying the field instead of creating a reference.
2810/// ```
2811///
2812/// **Correct usage: Creating a pointer to uninitialized data**
2813///
2814/// ```rust
2815/// use std::{ptr, mem::MaybeUninit};
2816///
2817/// struct Demo {
2818///     field: bool,
2819/// }
2820///
2821/// let mut uninit = MaybeUninit::<Demo>::uninit();
2822/// // `&uninit.as_mut().field` would create a reference to an uninitialized `bool`,
2823/// // and thus be Undefined Behavior!
2824/// let f1_ptr = unsafe { ptr::addr_of_mut!((*uninit.as_mut_ptr()).field) };
2825/// unsafe { f1_ptr.write(true); }
2826/// let init = unsafe { uninit.assume_init() };
2827/// ```
2828///
2829/// **Incorrect usage: Out-of-bounds fields projection**
2830///
2831/// ```rust,no_run
2832/// use std::ptr;
2833///
2834/// #[repr(C)]
2835/// struct MyStruct {
2836///     field1: i32,
2837///     field2: i32,
2838/// }
2839///
2840/// let ptr: *mut MyStruct = ptr::null_mut();
2841/// let fieldptr = unsafe { ptr::addr_of_mut!((*ptr).field2) }; // Undefined Behavior ⚠️
2842/// ```
2843///
2844/// The field projection `.field2` would offset the pointer by 4 bytes,
2845/// but the pointer is not in-bounds of an allocation for 4 bytes,
2846/// so this offset is Undefined Behavior.
2847/// See the [`offset`] docs for a full list of requirements for inbounds pointer arithmetic; the
2848/// same requirements apply to field projections, even inside `addr_of_mut!`. (In particular, it
2849/// makes no difference whether the pointer is null or dangling.)
2850#[stable(feature = "raw_ref_macros", since = "1.51.0")]
2851#[rustc_macro_transparency = "semiopaque"]
2852pub macro addr_of_mut($place:expr) {
2853    &raw mut $place
2854}
2855
2856/// Used in [`read_unaligned`] and [`write_unaligned`] to load and store `T`
2857/// with alignment 1 rather than its usual `align_of::<T>()` alignment.
2858#[repr(Rust, packed)]
2859struct Unaligned<T>(T);