alloc/vec/mod.rs
1//! A contiguous growable array type with heap-allocated contents, written
2//! `Vec<T>`.
3//!
4//! Vectors have *O*(1) indexing, amortized *O*(1) push (to the end) and
5//! *O*(1) pop (from the end).
6//!
7//! Vectors ensure they never allocate more than `isize::MAX` bytes.
8//!
9//! # Examples
10//!
11//! You can explicitly create a [`Vec`] with [`Vec::new`]:
12//!
13//! ```
14//! let v: Vec<i32> = Vec::new();
15//! ```
16//!
17//! ...or by using the [`vec!`] macro:
18//!
19//! ```
20//! let v: Vec<i32> = vec![];
21//!
22//! let v = vec![1, 2, 3, 4, 5];
23//!
24//! let v = vec![0; 10]; // ten zeroes
25//! ```
26//!
27//! You can [`push`] values onto the end of a vector (which will grow the vector
28//! as needed):
29//!
30//! ```
31//! let mut v = vec![1, 2];
32//!
33//! v.push(3);
34//! ```
35//!
36//! Popping values works in much the same way:
37//!
38//! ```
39//! let mut v = vec![1, 2];
40//!
41//! let two = v.pop();
42//! ```
43//!
44//! Vectors also support indexing (through the [`Index`] and [`IndexMut`] traits):
45//!
46//! ```
47//! let mut v = vec![1, 2, 3];
48//! let three = v[2];
49//! v[1] = v[1] + 5;
50//! ```
51//!
52//! # Memory layout
53//!
54//! When the type is non-zero-sized and the capacity is nonzero, [`Vec`] uses the [`Global`]
55//! allocator for its allocation. It is valid to convert both ways between such a [`Vec`] and a raw
56//! pointer allocated with the [`Global`] allocator, provided that the [`Layout`] used with the
57//! allocator is correct for a sequence of `capacity` elements of the type, and the first `len`
58//! values pointed to by the raw pointer are valid. More precisely, a `ptr: *mut T` that has been
59//! allocated with the [`Global`] allocator with [`Layout::array::<T>(capacity)`][Layout::array] may
60//! be converted into a vec using
61//! [`Vec::<T>::from_raw_parts(ptr, len, capacity)`](Vec::from_raw_parts). Conversely, the memory
62//! backing a `value: *mut T` obtained from [`Vec::<T>::as_mut_ptr`] may be deallocated using the
63//! [`Global`] allocator with the same layout.
64//!
65//! For zero-sized types (ZSTs), or when the capacity is zero, the `Vec` pointer must be non-null
66//! and sufficiently aligned. The recommended way to build a `Vec` of ZSTs if [`vec!`] cannot be
67//! used is to use [`ptr::NonNull::dangling`].
68//!
69//! [`push`]: Vec::push
70//! [`ptr::NonNull::dangling`]: NonNull::dangling
71//! [`Layout`]: crate::alloc::Layout
72//! [Layout::array]: crate::alloc::Layout::array
73
74#![stable(feature = "rust1", since = "1.0.0")]
75
76#[cfg(not(no_global_oom_handling))]
77use core::clone::TrivialClone;
78use core::cmp::Ordering;
79use core::hash::{Hash, Hasher};
80#[cfg(not(no_global_oom_handling))]
81use core::iter;
82#[cfg(not(no_global_oom_handling))]
83use core::marker::Destruct;
84use core::marker::{Freeze, PhantomData};
85use core::mem::{self, Assume, ManuallyDrop, MaybeUninit, SizedTypeProperties, TransmuteFrom};
86use core::ops::{self, Index, IndexMut, Range, RangeBounds};
87use core::ptr::{self, NonNull};
88use core::slice::{self, SliceIndex};
89use core::{cmp, fmt, hint, intrinsics, ub_checks};
90
91#[stable(feature = "extract_if", since = "1.87.0")]
92pub use self::extract_if::ExtractIf;
93use crate::alloc::{Allocator, Global};
94use crate::borrow::{Cow, ToOwned};
95use crate::boxed::Box;
96use crate::collections::TryReserveError;
97use crate::raw_vec::RawVec;
98
99mod extract_if;
100
101#[cfg(not(no_global_oom_handling))]
102#[stable(feature = "vec_splice", since = "1.21.0")]
103pub use self::splice::Splice;
104
105#[cfg(not(no_global_oom_handling))]
106mod splice;
107
108#[stable(feature = "drain", since = "1.6.0")]
109pub use self::drain::Drain;
110
111mod drain;
112
113#[cfg(not(no_global_oom_handling))]
114mod cow;
115
116#[cfg(not(no_global_oom_handling))]
117pub(crate) use self::in_place_collect::AsVecIntoIter;
118#[stable(feature = "rust1", since = "1.0.0")]
119pub use self::into_iter::IntoIter;
120
121mod into_iter;
122
123#[cfg(not(no_global_oom_handling))]
124use self::is_zero::IsZero;
125
126#[cfg(not(no_global_oom_handling))]
127mod is_zero;
128
129#[cfg(not(no_global_oom_handling))]
130mod in_place_collect;
131
132mod partial_eq;
133
134#[unstable(feature = "vec_peek_mut", issue = "122742")]
135pub use self::peek_mut::PeekMut;
136
137mod peek_mut;
138
139#[cfg(not(no_global_oom_handling))]
140use self::spec_from_elem::SpecFromElem;
141
142#[cfg(not(no_global_oom_handling))]
143mod spec_from_elem;
144
145#[cfg(not(no_global_oom_handling))]
146use self::set_len_on_drop::SetLenOnDrop;
147
148#[cfg(not(no_global_oom_handling))]
149mod set_len_on_drop;
150
151#[cfg(not(no_global_oom_handling))]
152use self::in_place_drop::{InPlaceDrop, InPlaceDstDataSrcBufDrop};
153
154#[cfg(not(no_global_oom_handling))]
155mod in_place_drop;
156
157#[cfg(not(no_global_oom_handling))]
158use self::spec_from_iter_nested::SpecFromIterNested;
159
160#[cfg(not(no_global_oom_handling))]
161mod spec_from_iter_nested;
162
163#[cfg(not(no_global_oom_handling))]
164use self::spec_from_iter::SpecFromIter;
165
166#[cfg(not(no_global_oom_handling))]
167mod spec_from_iter;
168
169#[cfg(not(no_global_oom_handling))]
170use self::spec_extend::SpecExtend;
171
172#[cfg(not(no_global_oom_handling))]
173mod spec_extend;
174
175/// A contiguous growable array type, written as `Vec<T>`, short for 'vector'.
176///
177/// # Examples
178///
179/// ```
180/// let mut vec = Vec::new();
181/// vec.push(1);
182/// vec.push(2);
183///
184/// assert_eq!(vec.len(), 2);
185/// assert_eq!(vec[0], 1);
186///
187/// assert_eq!(vec.pop(), Some(2));
188/// assert_eq!(vec.len(), 1);
189///
190/// vec[0] = 7;
191/// assert_eq!(vec[0], 7);
192///
193/// vec.extend([1, 2, 3]);
194///
195/// for x in &vec {
196/// println!("{x}");
197/// }
198/// assert_eq!(vec, [7, 1, 2, 3]);
199/// ```
200///
201/// The [`vec!`] macro is provided for convenient initialization:
202///
203/// ```
204/// let mut vec1 = vec![1, 2, 3];
205/// vec1.push(4);
206/// let vec2 = Vec::from([1, 2, 3, 4]);
207/// assert_eq!(vec1, vec2);
208/// ```
209///
210/// It can also initialize each element of a `Vec<T>` with a given value.
211/// This may be more efficient than performing allocation and initialization
212/// in separate steps, especially when initializing a vector of zeros:
213///
214/// ```
215/// let vec = vec![0; 5];
216/// assert_eq!(vec, [0, 0, 0, 0, 0]);
217///
218/// // The following is equivalent, but potentially slower:
219/// let mut vec = Vec::with_capacity(5);
220/// vec.resize(5, 0);
221/// assert_eq!(vec, [0, 0, 0, 0, 0]);
222/// ```
223///
224/// For more information, see
225/// [Capacity and Reallocation](#capacity-and-reallocation).
226///
227/// Use a `Vec<T>` as an efficient stack:
228///
229/// ```
230/// let mut stack = Vec::new();
231///
232/// stack.push(1);
233/// stack.push(2);
234/// stack.push(3);
235///
236/// while let Some(top) = stack.pop() {
237/// // Prints 3, 2, 1
238/// println!("{top}");
239/// }
240/// ```
241///
242/// # Indexing
243///
244/// The `Vec` type allows access to values by index, because it implements the
245/// [`Index`] trait. An example will be more explicit:
246///
247/// ```
248/// let v = vec![0, 2, 4, 6];
249/// println!("{}", v[1]); // it will display '2'
250/// ```
251///
252/// However be careful: if you try to access an index which isn't in the `Vec`,
253/// your software will panic! You cannot do this:
254///
255/// ```should_panic
256/// let v = vec![0, 2, 4, 6];
257/// println!("{}", v[6]); // it will panic!
258/// ```
259///
260/// Use [`get`] and [`get_mut`] if you want to check whether the index is in
261/// the `Vec`.
262///
263/// # Slicing
264///
265/// A `Vec` can be mutable. On the other hand, slices are read-only objects.
266/// To get a [slice][prim@slice], use [`&`]. Example:
267///
268/// ```
269/// fn read_slice(slice: &[usize]) {
270/// // ...
271/// }
272///
273/// let v = vec![0, 1];
274/// read_slice(&v);
275///
276/// // ... and that's all!
277/// // you can also do it like this:
278/// let u: &[usize] = &v;
279/// // or like this:
280/// let u: &[_] = &v;
281/// ```
282///
283/// In Rust, it's more common to pass slices as arguments rather than vectors
284/// when you just want to provide read access. The same goes for [`String`] and
285/// [`&str`].
286///
287/// # Capacity and reallocation
288///
289/// The capacity of a vector is the amount of space allocated for any future
290/// elements that will be added onto the vector. This is not to be confused with
291/// the *length* of a vector, which specifies the number of actual elements
292/// within the vector. If a vector's length exceeds its capacity, its capacity
293/// will automatically be increased, but its elements will have to be
294/// reallocated.
295///
296/// For example, a vector with capacity 10 and length 0 would be an empty vector
297/// with space for 10 more elements. Pushing 10 or fewer elements onto the
298/// vector will not change its capacity or cause reallocation to occur. However,
299/// if the vector's length is increased to 11, it will have to reallocate, which
300/// can be slow. For this reason, it is recommended to use [`Vec::with_capacity`]
301/// whenever possible to specify how big the vector is expected to get.
302///
303/// # Guarantees
304///
305/// Due to its incredibly fundamental nature, `Vec` makes a lot of guarantees
306/// about its design. This ensures that it's as low-overhead as possible in
307/// the general case, and can be correctly manipulated in primitive ways
308/// by unsafe code. Note that these guarantees refer to an unqualified `Vec<T>`.
309/// If additional type parameters are added (e.g., to support custom allocators),
310/// overriding their defaults may change the behavior.
311///
312/// Most fundamentally, `Vec` is and always will be a (pointer, capacity, length)
313/// triplet. No more, no less. The order of these fields is completely
314/// unspecified, and you should use the appropriate methods to modify these.
315/// The pointer will never be null, so this type is null-pointer-optimized.
316///
317/// However, the pointer might not actually point to allocated memory. In particular,
318/// if you construct a `Vec` with capacity 0 via [`Vec::new`], [`vec![]`][`vec!`],
319/// [`Vec::with_capacity(0)`][`Vec::with_capacity`], or by calling [`shrink_to_fit`]
320/// on an empty Vec, it will not allocate memory. Similarly, if you store zero-sized
321/// types inside a `Vec`, it will not allocate space for them. *Note that in this case
322/// the `Vec` might not report a [`capacity`] of 0*. `Vec` will allocate if and only
323/// if <code>[size_of::\<T>]\() * [capacity]\() > 0</code>. In general, `Vec`'s allocation
324/// details are very subtle --- if you intend to allocate memory using a `Vec`
325/// and use it for something else (either to pass to unsafe code, or to build your
326/// own memory-backed collection), be sure to deallocate this memory by using
327/// `from_raw_parts` to recover the `Vec` and then dropping it.
328///
329/// If a `Vec` *has* allocated memory, then the memory it points to is on the heap
330/// (as defined by the allocator Rust is configured to use by default), and its
331/// pointer points to [`len`] initialized, contiguous elements in order (what
332/// you would see if you coerced it to a slice), followed by <code>[capacity] - [len]</code>
333/// logically uninitialized, contiguous elements.
334///
335/// A vector containing the elements `'a'` and `'b'` with capacity 4 can be
336/// visualized as below. The top part is the `Vec` struct, it contains a
337/// pointer to the head of the allocation in the heap, length and capacity.
338/// The bottom part is the allocation on the heap, a contiguous memory block.
339///
340/// ```text
341/// ptr len capacity
342/// +--------+--------+--------+
343/// | 0x0123 | 2 | 4 |
344/// +--------+--------+--------+
345/// |
346/// v
347/// Heap +--------+--------+--------+--------+
348/// | 'a' | 'b' | uninit | uninit |
349/// +--------+--------+--------+--------+
350/// ```
351///
352/// - **uninit** represents memory that is not initialized, see [`MaybeUninit`].
353/// - Note: the ABI is not stable and `Vec` makes no guarantees about its memory
354/// layout (including the order of fields).
355///
356/// `Vec` will never perform a "small optimization" where elements are actually
357/// stored on the stack for two reasons:
358///
359/// * It would make it more difficult for unsafe code to correctly manipulate
360/// a `Vec`. The contents of a `Vec` wouldn't have a stable address if it were
361/// only moved, and it would be more difficult to determine if a `Vec` had
362/// actually allocated memory.
363///
364/// * It would penalize the general case, incurring an additional branch
365/// on every access.
366///
367/// `Vec` will never automatically shrink itself, even if completely empty. This
368/// ensures no unnecessary allocations or deallocations occur. Emptying a `Vec`
369/// and then filling it back up to the same [`len`] should incur no calls to
370/// the allocator. If you wish to free up unused memory, use
371/// [`shrink_to_fit`] or [`shrink_to`].
372///
373/// [`push`] and [`insert`] will never (re)allocate if the reported capacity is
374/// sufficient. [`push`] and [`insert`] *will* (re)allocate if
375/// <code>[len] == [capacity]</code>. That is, the reported capacity is completely
376/// accurate, and can be relied on. It can even be used to manually free the memory
377/// allocated by a `Vec` if desired. Bulk insertion methods *may* reallocate, even
378/// when not necessary.
379///
380/// `Vec` does not guarantee any particular growth strategy when reallocating
381/// when full, nor when [`reserve`] is called. The current strategy is basic
382/// and it may prove desirable to use a non-constant growth factor. Whatever
383/// strategy is used will of course guarantee *O*(1) amortized [`push`].
384///
385/// It is guaranteed, in order to respect the intentions of the programmer, that
386/// all of `vec![e_1, e_2, ..., e_n]`, `vec![x; n]`, and [`Vec::with_capacity(n)`] produce a `Vec`
387/// that requests an allocation of the exact size needed for precisely `n` elements from the allocator,
388/// and no other size (such as, for example: a size rounded up to the nearest power of 2).
389/// The allocator will return an allocation that is at least as large as requested, but it may be larger.
390///
391/// It is guaranteed that the [`Vec::capacity`] method returns a value that is at least the requested capacity
392/// and not more than the allocated capacity.
393///
394/// The method [`Vec::shrink_to_fit`] will attempt to discard excess capacity an allocator has given to a `Vec`.
395/// If <code>[len] == [capacity]</code>, then a `Vec<T>` can be converted
396/// to and from a [`Box<[T]>`][owned slice] without reallocating or moving the elements.
397/// `Vec` exploits this fact as much as reasonable when implementing common conversions
398/// such as [`into_boxed_slice`].
399///
400/// `Vec` will not specifically overwrite any data that is removed from it,
401/// but also won't specifically preserve it. Its uninitialized memory is
402/// scratch space that it may use however it wants. It will generally just do
403/// whatever is most efficient or otherwise easy to implement. Do not rely on
404/// removed data to be erased for security purposes. Even if you drop a `Vec`, its
405/// buffer may simply be reused by another allocation. Even if you zero a `Vec`'s memory
406/// first, that might not actually happen because the optimizer does not consider
407/// this a side-effect that must be preserved. There is one case which we will
408/// not break, however: using `unsafe` code to write to the excess capacity,
409/// and then increasing the length to match, is always valid.
410///
411/// Currently, `Vec` does not guarantee the order in which elements are dropped.
412/// The order has changed in the past and may change again.
413///
414/// [`get`]: slice::get
415/// [`get_mut`]: slice::get_mut
416/// [`String`]: crate::string::String
417/// [`&str`]: type@str
418/// [`shrink_to_fit`]: Vec::shrink_to_fit
419/// [`shrink_to`]: Vec::shrink_to
420/// [capacity]: Vec::capacity
421/// [`capacity`]: Vec::capacity
422/// [`Vec::capacity`]: Vec::capacity
423/// [size_of::\<T>]: size_of
424/// [len]: Vec::len
425/// [`len`]: Vec::len
426/// [`push`]: Vec::push
427/// [`insert`]: Vec::insert
428/// [`reserve`]: Vec::reserve
429/// [`Vec::with_capacity(n)`]: Vec::with_capacity
430/// [`MaybeUninit`]: core::mem::MaybeUninit
431/// [owned slice]: Box
432/// [`into_boxed_slice`]: Vec::into_boxed_slice
433#[stable(feature = "rust1", since = "1.0.0")]
434#[rustc_diagnostic_item = "Vec"]
435#[rustc_insignificant_dtor]
436#[doc(alias = "list")]
437#[doc(alias = "vector")]
438pub struct Vec<T, #[unstable(feature = "allocator_api", issue = "32838")] A: Allocator = Global> {
439 buf: RawVec<T, A>,
440 len: usize,
441}
442
443////////////////////////////////////////////////////////////////////////////////
444// Inherent methods
445////////////////////////////////////////////////////////////////////////////////
446
447impl<T> Vec<T> {
448 /// Constructs a new, empty `Vec<T>`.
449 ///
450 /// The vector will not allocate until elements are pushed onto it.
451 ///
452 /// # Examples
453 ///
454 /// ```
455 /// # #![allow(unused_mut)]
456 /// let mut vec: Vec<i32> = Vec::new();
457 /// ```
458 #[inline]
459 #[rustc_const_stable(feature = "const_vec_new", since = "1.39.0")]
460 #[rustc_diagnostic_item = "vec_new"]
461 #[stable(feature = "rust1", since = "1.0.0")]
462 #[must_use]
463 pub const fn new() -> Self {
464 Vec { buf: RawVec::new(), len: 0 }
465 }
466
467 /// Constructs a new, empty `Vec<T>` with at least the specified capacity.
468 ///
469 /// The vector will be able to hold at least `capacity` elements without
470 /// reallocating. This method is allowed to allocate for more elements than
471 /// `capacity`. If `capacity` is zero, the vector will not allocate.
472 ///
473 /// It is important to note that although the returned vector has the
474 /// minimum *capacity* specified, the vector will have a zero *length*. For
475 /// an explanation of the difference between length and capacity, see
476 /// *[Capacity and reallocation]*.
477 ///
478 /// If it is important to know the exact allocated capacity of a `Vec`,
479 /// always use the [`capacity`] method after construction.
480 ///
481 /// For `Vec<T>` where `T` is a zero-sized type, there will be no allocation
482 /// and the capacity will always be `usize::MAX`.
483 ///
484 /// [Capacity and reallocation]: #capacity-and-reallocation
485 /// [`capacity`]: Vec::capacity
486 ///
487 /// # Panics
488 ///
489 /// Panics if the new capacity exceeds `isize::MAX` _bytes_.
490 ///
491 /// # Examples
492 ///
493 /// ```
494 /// let mut vec = Vec::with_capacity(10);
495 ///
496 /// // The vector contains no items, even though it has capacity for more
497 /// assert_eq!(vec.len(), 0);
498 /// assert!(vec.capacity() >= 10);
499 ///
500 /// // These are all done without reallocating...
501 /// for i in 0..10 {
502 /// vec.push(i);
503 /// }
504 /// assert_eq!(vec.len(), 10);
505 /// assert!(vec.capacity() >= 10);
506 ///
507 /// // ...but this may make the vector reallocate
508 /// vec.push(11);
509 /// assert_eq!(vec.len(), 11);
510 /// assert!(vec.capacity() >= 11);
511 ///
512 /// // A vector of a zero-sized type will always over-allocate, since no
513 /// // allocation is necessary
514 /// let vec_units = Vec::<()>::with_capacity(10);
515 /// assert_eq!(vec_units.capacity(), usize::MAX);
516 /// ```
517 #[cfg(not(no_global_oom_handling))]
518 #[inline]
519 #[stable(feature = "rust1", since = "1.0.0")]
520 #[must_use]
521 #[rustc_diagnostic_item = "vec_with_capacity"]
522 #[rustc_const_unstable(feature = "const_heap", issue = "79597")]
523 pub const fn with_capacity(capacity: usize) -> Self {
524 Self::with_capacity_in(capacity, Global)
525 }
526
527 /// Constructs a new, empty `Vec<T>` with at least the specified capacity.
528 ///
529 /// The vector will be able to hold at least `capacity` elements without
530 /// reallocating. This method is allowed to allocate for more elements than
531 /// `capacity`. If `capacity` is zero, the vector will not allocate.
532 ///
533 /// # Errors
534 ///
535 /// Returns an error if the capacity exceeds `isize::MAX` _bytes_,
536 /// or if the allocator reports allocation failure.
537 #[inline]
538 #[unstable(feature = "try_with_capacity", issue = "91913")]
539 pub fn try_with_capacity(capacity: usize) -> Result<Self, TryReserveError> {
540 Self::try_with_capacity_in(capacity, Global)
541 }
542
543 /// Creates a `Vec<T>` directly from a pointer, a length, and a capacity.
544 ///
545 /// # Safety
546 ///
547 /// This is highly unsafe, due to the number of invariants that aren't
548 /// checked:
549 ///
550 /// * If `T` is not a zero-sized type and the capacity is nonzero, `ptr` must have
551 /// been allocated using the global allocator, such as via the [`alloc::alloc`]
552 /// function. If `T` is a zero-sized type or the capacity is zero, `ptr` need
553 /// only be non-null and aligned.
554 /// * `T` needs to have the same alignment as what `ptr` was allocated with,
555 /// if the pointer is required to be allocated.
556 /// (`T` having a less strict alignment is not sufficient, the alignment really
557 /// needs to be equal to satisfy the [`dealloc`] requirement that memory must be
558 /// allocated and deallocated with the same layout.)
559 /// * The size of `T` times the `capacity` (i.e. the allocated size in bytes), if
560 /// nonzero, needs to be the same size as the pointer was allocated with.
561 /// (Because similar to alignment, [`dealloc`] must be called with the same
562 /// layout `size`.)
563 /// * `length` needs to be less than or equal to `capacity`.
564 /// * The first `length` values must be properly initialized values of type `T`.
565 /// * `capacity` needs to be the capacity that the pointer was allocated with,
566 /// if the pointer is required to be allocated.
567 /// * The allocated size in bytes must be no larger than `isize::MAX`.
568 /// See the safety documentation of [`pointer::offset`].
569 ///
570 /// These requirements are always upheld by any `ptr` that has been allocated
571 /// via `Vec<T>`. Other allocation sources are allowed if the invariants are
572 /// upheld.
573 ///
574 /// Violating these may cause problems like corrupting the allocator's
575 /// internal data structures. For example it is normally **not** safe
576 /// to build a `Vec<u8>` from a pointer to a C `char` array with length
577 /// `size_t`, doing so is only safe if the array was initially allocated by
578 /// a `Vec` or `String`.
579 /// It's also not safe to build one from a `Vec<u16>` and its length, because
580 /// the allocator cares about the alignment, and these two types have different
581 /// alignments. The buffer was allocated with alignment 2 (for `u16`), but after
582 /// turning it into a `Vec<u8>` it'll be deallocated with alignment 1. To avoid
583 /// these issues, it is often preferable to do casting/transmuting using
584 /// [`slice::from_raw_parts`] instead.
585 ///
586 /// The ownership of `ptr` is effectively transferred to the
587 /// `Vec<T>` which may then deallocate, reallocate or change the
588 /// contents of memory pointed to by the pointer at will. Ensure
589 /// that nothing else uses the pointer after calling this
590 /// function.
591 ///
592 /// [`String`]: crate::string::String
593 /// [`alloc::alloc`]: crate::alloc::alloc
594 /// [`dealloc`]: crate::alloc::GlobalAlloc::dealloc
595 ///
596 /// # Examples
597 ///
598 /// ```
599 /// use std::ptr;
600 ///
601 /// let v = vec![1, 2, 3];
602 ///
603 /// // Deconstruct the vector into parts.
604 /// let (p, len, cap) = v.into_raw_parts();
605 ///
606 /// unsafe {
607 /// // Overwrite memory with 4, 5, 6
608 /// for i in 0..len {
609 /// ptr::write(p.add(i), 4 + i);
610 /// }
611 ///
612 /// // Put everything back together into a Vec
613 /// let rebuilt = Vec::from_raw_parts(p, len, cap);
614 /// assert_eq!(rebuilt, [4, 5, 6]);
615 /// }
616 /// ```
617 ///
618 /// Using memory that was allocated elsewhere:
619 ///
620 /// ```rust
621 /// use std::alloc::{alloc, Layout};
622 ///
623 /// fn main() {
624 /// let layout = Layout::array::<u32>(16).expect("overflow cannot happen");
625 ///
626 /// let vec = unsafe {
627 /// let mem = alloc(layout).cast::<u32>();
628 /// if mem.is_null() {
629 /// return;
630 /// }
631 ///
632 /// mem.write(1_000_000);
633 ///
634 /// Vec::from_raw_parts(mem, 1, 16)
635 /// };
636 ///
637 /// assert_eq!(vec, &[1_000_000]);
638 /// assert_eq!(vec.capacity(), 16);
639 /// }
640 /// ```
641 #[inline]
642 #[stable(feature = "rust1", since = "1.0.0")]
643 #[rustc_const_unstable(feature = "const_heap", issue = "79597")]
644 pub const unsafe fn from_raw_parts(ptr: *mut T, length: usize, capacity: usize) -> Self {
645 unsafe { Self::from_raw_parts_in(ptr, length, capacity, Global) }
646 }
647
648 #[doc(alias = "from_non_null_parts")]
649 /// Creates a `Vec<T>` directly from a `NonNull` pointer, a length, and a capacity.
650 ///
651 /// # Safety
652 ///
653 /// This is highly unsafe, due to the number of invariants that aren't
654 /// checked:
655 ///
656 /// * `ptr` must have been allocated using the global allocator, such as via
657 /// the [`alloc::alloc`] function.
658 /// * `T` needs to have the same alignment as what `ptr` was allocated with.
659 /// (`T` having a less strict alignment is not sufficient, the alignment really
660 /// needs to be equal to satisfy the [`dealloc`] requirement that memory must be
661 /// allocated and deallocated with the same layout.)
662 /// * The size of `T` times the `capacity` (i.e. the allocated size in bytes) needs
663 /// to be the same size as the pointer was allocated with. (Because similar to
664 /// alignment, [`dealloc`] must be called with the same layout `size`.)
665 /// * `length` needs to be less than or equal to `capacity`.
666 /// * The first `length` values must be properly initialized values of type `T`.
667 /// * `capacity` needs to be the capacity that the pointer was allocated with.
668 /// * The allocated size in bytes must be no larger than `isize::MAX`.
669 /// See the safety documentation of [`pointer::offset`].
670 ///
671 /// These requirements are always upheld by any `ptr` that has been allocated
672 /// via `Vec<T>`. Other allocation sources are allowed if the invariants are
673 /// upheld.
674 ///
675 /// Violating these may cause problems like corrupting the allocator's
676 /// internal data structures. For example it is normally **not** safe
677 /// to build a `Vec<u8>` from a pointer to a C `char` array with length
678 /// `size_t`, doing so is only safe if the array was initially allocated by
679 /// a `Vec` or `String`.
680 /// It's also not safe to build one from a `Vec<u16>` and its length, because
681 /// the allocator cares about the alignment, and these two types have different
682 /// alignments. The buffer was allocated with alignment 2 (for `u16`), but after
683 /// turning it into a `Vec<u8>` it'll be deallocated with alignment 1. To avoid
684 /// these issues, it is often preferable to do casting/transmuting using
685 /// [`NonNull::slice_from_raw_parts`] instead.
686 ///
687 /// The ownership of `ptr` is effectively transferred to the
688 /// `Vec<T>` which may then deallocate, reallocate or change the
689 /// contents of memory pointed to by the pointer at will. Ensure
690 /// that nothing else uses the pointer after calling this
691 /// function.
692 ///
693 /// [`String`]: crate::string::String
694 /// [`alloc::alloc`]: crate::alloc::alloc
695 /// [`dealloc`]: crate::alloc::GlobalAlloc::dealloc
696 ///
697 /// # Examples
698 ///
699 /// ```
700 /// #![feature(box_vec_non_null)]
701 ///
702 /// let v = vec![1, 2, 3];
703 ///
704 /// // Deconstruct the vector into parts.
705 /// let (p, len, cap) = v.into_parts();
706 ///
707 /// unsafe {
708 /// // Overwrite memory with 4, 5, 6
709 /// for i in 0..len {
710 /// p.add(i).write(4 + i);
711 /// }
712 ///
713 /// // Put everything back together into a Vec
714 /// let rebuilt = Vec::from_parts(p, len, cap);
715 /// assert_eq!(rebuilt, [4, 5, 6]);
716 /// }
717 /// ```
718 ///
719 /// Using memory that was allocated elsewhere:
720 ///
721 /// ```rust
722 /// #![feature(box_vec_non_null)]
723 ///
724 /// use std::alloc::{alloc, Layout};
725 /// use std::ptr::NonNull;
726 ///
727 /// fn main() {
728 /// let layout = Layout::array::<u32>(16).expect("overflow cannot happen");
729 ///
730 /// let vec = unsafe {
731 /// let Some(mem) = NonNull::new(alloc(layout).cast::<u32>()) else {
732 /// return;
733 /// };
734 ///
735 /// mem.write(1_000_000);
736 ///
737 /// Vec::from_parts(mem, 1, 16)
738 /// };
739 ///
740 /// assert_eq!(vec, &[1_000_000]);
741 /// assert_eq!(vec.capacity(), 16);
742 /// }
743 /// ```
744 #[inline]
745 #[unstable(feature = "box_vec_non_null", issue = "130364")]
746 #[rustc_const_unstable(feature = "box_vec_non_null", issue = "130364")]
747 pub const unsafe fn from_parts(ptr: NonNull<T>, length: usize, capacity: usize) -> Self {
748 unsafe { Self::from_parts_in(ptr, length, capacity, Global) }
749 }
750
751 /// Creates a `Vec<T>` where each element is produced by calling `f` with
752 /// that element's index while walking forward through the `Vec<T>`.
753 ///
754 /// This is essentially the same as writing
755 ///
756 /// ```text
757 /// vec![f(0), f(1), f(2), …, f(length - 2), f(length - 1)]
758 /// ```
759 /// and is similar to `(0..i).map(f)`, just for `Vec<T>`s not iterators.
760 ///
761 /// If `length == 0`, this produces an empty `Vec<T>` without ever calling `f`.
762 ///
763 /// # Example
764 ///
765 /// ```rust
766 /// #![feature(vec_from_fn)]
767 ///
768 /// let vec = Vec::from_fn(5, |i| i);
769 ///
770 /// // indexes are: 0 1 2 3 4
771 /// assert_eq!(vec, [0, 1, 2, 3, 4]);
772 ///
773 /// let vec2 = Vec::from_fn(8, |i| i * 2);
774 ///
775 /// // indexes are: 0 1 2 3 4 5 6 7
776 /// assert_eq!(vec2, [0, 2, 4, 6, 8, 10, 12, 14]);
777 ///
778 /// let bool_vec = Vec::from_fn(5, |i| i % 2 == 0);
779 ///
780 /// // indexes are: 0 1 2 3 4
781 /// assert_eq!(bool_vec, [true, false, true, false, true]);
782 /// ```
783 ///
784 /// The `Vec<T>` is generated in ascending index order, starting from the front
785 /// and going towards the back, so you can use closures with mutable state:
786 /// ```
787 /// #![feature(vec_from_fn)]
788 ///
789 /// let mut state = 1;
790 /// let a = Vec::from_fn(6, |_| { let x = state; state *= 2; x });
791 ///
792 /// assert_eq!(a, [1, 2, 4, 8, 16, 32]);
793 /// ```
794 #[cfg(not(no_global_oom_handling))]
795 #[inline]
796 #[unstable(feature = "vec_from_fn", issue = "149698")]
797 pub fn from_fn<F>(length: usize, f: F) -> Self
798 where
799 F: FnMut(usize) -> T,
800 {
801 (0..length).map(f).collect()
802 }
803
804 /// Decomposes a `Vec<T>` into its raw components: `(pointer, length, capacity)`.
805 ///
806 /// Returns the raw pointer to the underlying data, the length of
807 /// the vector (in elements), and the allocated capacity of the
808 /// data (in elements). These are the same arguments in the same
809 /// order as the arguments to [`from_raw_parts`].
810 ///
811 /// After calling this function, the caller is responsible for the
812 /// memory previously managed by the `Vec`. Most often, one does
813 /// this by converting the raw pointer, length, and capacity back
814 /// into a `Vec` with the [`from_raw_parts`] function; more generally,
815 /// if `T` is non-zero-sized and the capacity is nonzero, one may use
816 /// any method that calls [`dealloc`] with a layout of
817 /// `Layout::array::<T>(capacity)`; if `T` is zero-sized or the
818 /// capacity is zero, nothing needs to be done.
819 ///
820 /// [`from_raw_parts`]: Vec::from_raw_parts
821 /// [`dealloc`]: crate::alloc::GlobalAlloc::dealloc
822 ///
823 /// # Examples
824 ///
825 /// ```
826 /// let v: Vec<i32> = vec![-1, 0, 1];
827 ///
828 /// let (ptr, len, cap) = v.into_raw_parts();
829 ///
830 /// let rebuilt = unsafe {
831 /// // We can now make changes to the components, such as
832 /// // transmuting the raw pointer to a compatible type.
833 /// let ptr = ptr as *mut u32;
834 ///
835 /// Vec::from_raw_parts(ptr, len, cap)
836 /// };
837 /// assert_eq!(rebuilt, [4294967295, 0, 1]);
838 /// ```
839 #[must_use = "losing the pointer will leak memory"]
840 #[stable(feature = "vec_into_raw_parts", since = "1.93.0")]
841 #[rustc_const_unstable(feature = "const_heap", issue = "79597")]
842 pub const fn into_raw_parts(self) -> (*mut T, usize, usize) {
843 let mut me = ManuallyDrop::new(self);
844 (me.as_mut_ptr(), me.len(), me.capacity())
845 }
846
847 #[doc(alias = "into_non_null_parts")]
848 /// Decomposes a `Vec<T>` into its raw components: `(NonNull pointer, length, capacity)`.
849 ///
850 /// Returns the `NonNull` pointer to the underlying data, the length of
851 /// the vector (in elements), and the allocated capacity of the
852 /// data (in elements). These are the same arguments in the same
853 /// order as the arguments to [`from_parts`].
854 ///
855 /// After calling this function, the caller is responsible for the
856 /// memory previously managed by the `Vec`. The only way to do
857 /// this is to convert the `NonNull` pointer, length, and capacity back
858 /// into a `Vec` with the [`from_parts`] function, allowing
859 /// the destructor to perform the cleanup.
860 ///
861 /// [`from_parts`]: Vec::from_parts
862 ///
863 /// # Examples
864 ///
865 /// ```
866 /// #![feature(box_vec_non_null)]
867 ///
868 /// let v: Vec<i32> = vec![-1, 0, 1];
869 ///
870 /// let (ptr, len, cap) = v.into_parts();
871 ///
872 /// let rebuilt = unsafe {
873 /// // We can now make changes to the components, such as
874 /// // transmuting the raw pointer to a compatible type.
875 /// let ptr = ptr.cast::<u32>();
876 ///
877 /// Vec::from_parts(ptr, len, cap)
878 /// };
879 /// assert_eq!(rebuilt, [4294967295, 0, 1]);
880 /// ```
881 #[must_use = "losing the pointer will leak memory"]
882 #[unstable(feature = "box_vec_non_null", issue = "130364")]
883 #[rustc_const_unstable(feature = "box_vec_non_null", issue = "130364")]
884 pub const fn into_parts(self) -> (NonNull<T>, usize, usize) {
885 let (ptr, len, capacity) = self.into_raw_parts();
886 // SAFETY: A `Vec` always has a non-null pointer.
887 (unsafe { NonNull::new_unchecked(ptr) }, len, capacity)
888 }
889
890 /// Interns the `Vec<T>`, making the underlying memory read-only. This method should be
891 /// called during compile time. (This is a no-op if called during runtime)
892 ///
893 /// This method must be called if the memory used by `Vec` needs to appear in the final
894 /// values of constants.
895 #[unstable(feature = "const_heap", issue = "79597")]
896 #[rustc_const_unstable(feature = "const_heap", issue = "79597")]
897 pub const fn const_make_global(mut self) -> &'static [T]
898 where
899 T: Freeze,
900 {
901 // `const_make_global` requires the pointer to point to the beginning of a heap allocation,
902 // which is not the case when `self.capacity()` is 0, or if `T::IS_ZST`,
903 // which is why we instead return a new slice in this case.
904 if self.capacity() == 0 || T::IS_ZST {
905 let me = ManuallyDrop::new(self);
906 unsafe { slice::from_raw_parts(NonNull::<T>::dangling().as_ptr(), me.len) }
907 } else {
908 unsafe { core::intrinsics::const_make_global(self.as_mut_ptr().cast()) };
909 let me = ManuallyDrop::new(self);
910 unsafe { slice::from_raw_parts(me.as_ptr(), me.len) }
911 }
912 }
913}
914
915#[cfg(not(no_global_oom_handling))]
916#[rustc_const_unstable(feature = "const_heap", issue = "79597")]
917#[rustfmt::skip] // FIXME(fee1-dead): temporary measure before rustfmt is bumped
918const impl<T, A: [const] Allocator + [const] Destruct> Vec<T, A> {
919 /// Constructs a new, empty `Vec<T, A>` with at least the specified capacity
920 /// with the provided allocator.
921 ///
922 /// The vector will be able to hold at least `capacity` elements without
923 /// reallocating. This method is allowed to allocate for more elements than
924 /// `capacity`. If `capacity` is zero, the vector will not allocate.
925 ///
926 /// It is important to note that although the returned vector has the
927 /// minimum *capacity* specified, the vector will have a zero *length*. For
928 /// an explanation of the difference between length and capacity, see
929 /// *[Capacity and reallocation]*.
930 ///
931 /// If it is important to know the exact allocated capacity of a `Vec`,
932 /// always use the [`capacity`] method after construction.
933 ///
934 /// For `Vec<T, A>` where `T` is a zero-sized type, there will be no allocation
935 /// and the capacity will always be `usize::MAX`.
936 ///
937 /// [Capacity and reallocation]: #capacity-and-reallocation
938 /// [`capacity`]: Vec::capacity
939 ///
940 /// # Panics
941 ///
942 /// Panics if the new capacity exceeds `isize::MAX` _bytes_.
943 ///
944 /// # Examples
945 ///
946 /// ```
947 /// #![feature(allocator_api)]
948 ///
949 /// use std::alloc::System;
950 ///
951 /// let mut vec = Vec::with_capacity_in(10, System);
952 ///
953 /// // The vector contains no items, even though it has capacity for more
954 /// assert_eq!(vec.len(), 0);
955 /// assert!(vec.capacity() >= 10);
956 ///
957 /// // These are all done without reallocating...
958 /// for i in 0..10 {
959 /// vec.push(i);
960 /// }
961 /// assert_eq!(vec.len(), 10);
962 /// assert!(vec.capacity() >= 10);
963 ///
964 /// // ...but this may make the vector reallocate
965 /// vec.push(11);
966 /// assert_eq!(vec.len(), 11);
967 /// assert!(vec.capacity() >= 11);
968 ///
969 /// // A vector of a zero-sized type will always over-allocate, since no
970 /// // allocation is necessary
971 /// let vec_units = Vec::<(), System>::with_capacity_in(10, System);
972 /// assert_eq!(vec_units.capacity(), usize::MAX);
973 /// ```
974 #[inline]
975 #[unstable(feature = "allocator_api", issue = "32838")]
976 pub fn with_capacity_in(capacity: usize, alloc: A) -> Self {
977 Vec { buf: RawVec::with_capacity_in(capacity, alloc), len: 0 }
978 }
979
980 /// Appends an element to the back of a collection.
981 ///
982 /// # Panics
983 ///
984 /// Panics if the new capacity exceeds `isize::MAX` _bytes_.
985 ///
986 /// # Examples
987 ///
988 /// ```
989 /// let mut vec = vec![1, 2];
990 /// vec.push(3);
991 /// assert_eq!(vec, [1, 2, 3]);
992 /// ```
993 ///
994 /// # Time complexity
995 ///
996 /// Takes amortized *O*(1) time. If the vector's length would exceed its
997 /// capacity after the push, *O*(*capacity*) time is taken to copy the
998 /// vector's elements to a larger allocation. This expensive operation is
999 /// offset by the *capacity* *O*(1) insertions it allows.
1000 #[inline]
1001 #[stable(feature = "rust1", since = "1.0.0")]
1002 #[rustc_confusables("push_back", "put", "append")]
1003 pub fn push(&mut self, value: T) {
1004 let _ = self.push_mut(value);
1005 }
1006
1007 /// Appends an element to the back of a collection, returning a reference to it.
1008 ///
1009 /// # Panics
1010 ///
1011 /// Panics if the new capacity exceeds `isize::MAX` _bytes_.
1012 ///
1013 /// # Examples
1014 ///
1015 /// ```
1016 /// let mut vec = vec![1, 2];
1017 /// let last = vec.push_mut(3);
1018 /// assert_eq!(*last, 3);
1019 /// assert_eq!(vec, [1, 2, 3]);
1020 ///
1021 /// let last = vec.push_mut(3);
1022 /// *last += 1;
1023 /// assert_eq!(vec, [1, 2, 3, 4]);
1024 /// ```
1025 ///
1026 /// # Time complexity
1027 ///
1028 /// Takes amortized *O*(1) time. If the vector's length would exceed its
1029 /// capacity after the push, *O*(*capacity*) time is taken to copy the
1030 /// vector's elements to a larger allocation. This expensive operation is
1031 /// offset by the *capacity* *O*(1) insertions it allows.
1032 #[inline]
1033 #[stable(feature = "push_mut", since = "1.95.0")]
1034 #[must_use = "if you don't need a reference to the value, use `Vec::push` instead"]
1035 pub fn push_mut(&mut self, value: T) -> &mut T {
1036 // Inform codegen that the length does not change across grow_one().
1037 let len = self.len;
1038 // This will panic or abort if we would allocate > isize::MAX bytes
1039 // or if the length increment would overflow for zero-sized types.
1040 if len == self.buf.capacity() {
1041 self.buf.grow_one();
1042 }
1043 unsafe {
1044 let end = self.as_mut_ptr().add(len);
1045 ptr::write(end, value);
1046 self.len = len + 1;
1047 // SAFETY: We just wrote a value to the pointer that will live the lifetime of the reference.
1048 &mut *end
1049 }
1050 }
1051}
1052
1053impl<T, A: Allocator> Vec<T, A> {
1054 /// Constructs a new, empty `Vec<T, A>`.
1055 ///
1056 /// The vector will not allocate until elements are pushed onto it.
1057 ///
1058 /// # Examples
1059 ///
1060 /// ```
1061 /// #![feature(allocator_api)]
1062 ///
1063 /// use std::alloc::System;
1064 ///
1065 /// let vec: Vec<i32, System> = Vec::new_in(System);
1066 /// ```
1067 #[inline]
1068 #[unstable(feature = "allocator_api", issue = "32838")]
1069 pub const fn new_in(alloc: A) -> Self {
1070 Vec { buf: RawVec::new_in(alloc), len: 0 }
1071 }
1072
1073 /// Constructs a new, empty `Vec<T, A>` with at least the specified capacity
1074 /// with the provided allocator.
1075 ///
1076 /// The vector will be able to hold at least `capacity` elements without
1077 /// reallocating. This method is allowed to allocate for more elements than
1078 /// `capacity`. If `capacity` is zero, the vector will not allocate.
1079 ///
1080 /// # Errors
1081 ///
1082 /// Returns an error if the capacity exceeds `isize::MAX` _bytes_,
1083 /// or if the allocator reports allocation failure.
1084 #[inline]
1085 #[unstable(feature = "allocator_api", issue = "32838")]
1086 // #[unstable(feature = "try_with_capacity", issue = "91913")]
1087 pub fn try_with_capacity_in(capacity: usize, alloc: A) -> Result<Self, TryReserveError> {
1088 Ok(Vec { buf: RawVec::try_with_capacity_in(capacity, alloc)?, len: 0 })
1089 }
1090
1091 /// Creates a `Vec<T, A>` directly from a pointer, a length, a capacity,
1092 /// and an allocator.
1093 ///
1094 /// # Safety
1095 ///
1096 /// This is highly unsafe, due to the number of invariants that aren't
1097 /// checked:
1098 ///
1099 /// * `ptr` must be [*currently allocated*] via the given allocator `alloc`.
1100 /// * `T` needs to have the same alignment as what `ptr` was allocated with.
1101 /// (`T` having a less strict alignment is not sufficient, the alignment really
1102 /// needs to be equal to satisfy the [`dealloc`] requirement that memory must be
1103 /// allocated and deallocated with the same layout.)
1104 /// * The size of `T` times the `capacity` (i.e. the allocated size in bytes) needs
1105 /// to be the same size as the pointer was allocated with. (Because similar to
1106 /// alignment, [`dealloc`] must be called with the same layout `size`.)
1107 /// * `length` needs to be less than or equal to `capacity`.
1108 /// * The first `length` values must be properly initialized values of type `T`.
1109 /// * `capacity` needs to [*fit*] the layout size that the pointer was allocated with.
1110 /// * The allocated size in bytes must be no larger than `isize::MAX`.
1111 /// See the safety documentation of [`pointer::offset`].
1112 ///
1113 /// These requirements are always upheld by any `ptr` that has been allocated
1114 /// via `Vec<T, A>`. Other allocation sources are allowed if the invariants are
1115 /// upheld.
1116 ///
1117 /// Violating these may cause problems like corrupting the allocator's
1118 /// internal data structures. For example it is **not** safe
1119 /// to build a `Vec<u8>` from a pointer to a C `char` array with length `size_t`.
1120 /// It's also not safe to build one from a `Vec<u16>` and its length, because
1121 /// the allocator cares about the alignment, and these two types have different
1122 /// alignments. The buffer was allocated with alignment 2 (for `u16`), but after
1123 /// turning it into a `Vec<u8>` it'll be deallocated with alignment 1.
1124 ///
1125 /// The ownership of `ptr` is effectively transferred to the
1126 /// `Vec<T>` which may then deallocate, reallocate or change the
1127 /// contents of memory pointed to by the pointer at will. Ensure
1128 /// that nothing else uses the pointer after calling this
1129 /// function.
1130 ///
1131 /// [`String`]: crate::string::String
1132 /// [`dealloc`]: crate::alloc::GlobalAlloc::dealloc
1133 /// [*currently allocated*]: crate::alloc::Allocator#currently-allocated-memory
1134 /// [*fit*]: crate::alloc::Allocator#memory-fitting
1135 ///
1136 /// # Examples
1137 ///
1138 /// ```
1139 /// #![feature(allocator_api)]
1140 ///
1141 /// use std::alloc::System;
1142 ///
1143 /// use std::ptr;
1144 ///
1145 /// let mut v = Vec::with_capacity_in(3, System);
1146 /// v.push(1);
1147 /// v.push(2);
1148 /// v.push(3);
1149 ///
1150 /// // Deconstruct the vector into parts.
1151 /// let (p, len, cap, alloc) = v.into_raw_parts_with_alloc();
1152 ///
1153 /// unsafe {
1154 /// // Overwrite memory with 4, 5, 6
1155 /// for i in 0..len {
1156 /// ptr::write(p.add(i), 4 + i);
1157 /// }
1158 ///
1159 /// // Put everything back together into a Vec
1160 /// let rebuilt = Vec::from_raw_parts_in(p, len, cap, alloc.clone());
1161 /// assert_eq!(rebuilt, [4, 5, 6]);
1162 /// }
1163 /// ```
1164 ///
1165 /// Using memory that was allocated elsewhere:
1166 ///
1167 /// ```rust
1168 /// #![feature(allocator_api)]
1169 ///
1170 /// use std::alloc::{AllocError, Allocator, Global, Layout};
1171 ///
1172 /// fn main() {
1173 /// let layout = Layout::array::<u32>(16).expect("overflow cannot happen");
1174 ///
1175 /// let vec = unsafe {
1176 /// let mem = match Global.allocate(layout) {
1177 /// Ok(mem) => mem.cast::<u32>().as_ptr(),
1178 /// Err(AllocError) => return,
1179 /// };
1180 ///
1181 /// mem.write(1_000_000);
1182 ///
1183 /// Vec::from_raw_parts_in(mem, 1, 16, Global)
1184 /// };
1185 ///
1186 /// assert_eq!(vec, &[1_000_000]);
1187 /// assert_eq!(vec.capacity(), 16);
1188 /// }
1189 /// ```
1190 #[inline]
1191 #[unstable(feature = "allocator_api", issue = "32838")]
1192 #[rustc_const_unstable(feature = "allocator_api", issue = "32838")]
1193 pub const unsafe fn from_raw_parts_in(
1194 ptr: *mut T,
1195 length: usize,
1196 capacity: usize,
1197 alloc: A,
1198 ) -> Self {
1199 ub_checks::assert_unsafe_precondition!(
1200 check_library_ub,
1201 "Vec::from_raw_parts_in requires that length <= capacity",
1202 (length: usize = length, capacity: usize = capacity) => length <= capacity
1203 );
1204 unsafe { Vec { buf: RawVec::from_raw_parts_in(ptr, capacity, alloc), len: length } }
1205 }
1206
1207 #[doc(alias = "from_non_null_parts_in")]
1208 /// Creates a `Vec<T, A>` directly from a `NonNull` pointer, a length, a capacity,
1209 /// and an allocator.
1210 ///
1211 /// # Safety
1212 ///
1213 /// This is highly unsafe, due to the number of invariants that aren't
1214 /// checked:
1215 ///
1216 /// * `ptr` must be [*currently allocated*] via the given allocator `alloc`.
1217 /// * `T` needs to have the same alignment as what `ptr` was allocated with.
1218 /// (`T` having a less strict alignment is not sufficient, the alignment really
1219 /// needs to be equal to satisfy the [`dealloc`] requirement that memory must be
1220 /// allocated and deallocated with the same layout.)
1221 /// * The size of `T` times the `capacity` (i.e. the allocated size in bytes) needs
1222 /// to be the same size as the pointer was allocated with. (Because similar to
1223 /// alignment, [`dealloc`] must be called with the same layout `size`.)
1224 /// * `length` needs to be less than or equal to `capacity`.
1225 /// * The first `length` values must be properly initialized values of type `T`.
1226 /// * `capacity` needs to [*fit*] the layout size that the pointer was allocated with.
1227 /// * The allocated size in bytes must be no larger than `isize::MAX`.
1228 /// See the safety documentation of [`pointer::offset`].
1229 ///
1230 /// These requirements are always upheld by any `ptr` that has been allocated
1231 /// via `Vec<T, A>`. Other allocation sources are allowed if the invariants are
1232 /// upheld.
1233 ///
1234 /// Violating these may cause problems like corrupting the allocator's
1235 /// internal data structures. For example it is **not** safe
1236 /// to build a `Vec<u8>` from a pointer to a C `char` array with length `size_t`.
1237 /// It's also not safe to build one from a `Vec<u16>` and its length, because
1238 /// the allocator cares about the alignment, and these two types have different
1239 /// alignments. The buffer was allocated with alignment 2 (for `u16`), but after
1240 /// turning it into a `Vec<u8>` it'll be deallocated with alignment 1.
1241 ///
1242 /// The ownership of `ptr` is effectively transferred to the
1243 /// `Vec<T>` which may then deallocate, reallocate or change the
1244 /// contents of memory pointed to by the pointer at will. Ensure
1245 /// that nothing else uses the pointer after calling this
1246 /// function.
1247 ///
1248 /// [`String`]: crate::string::String
1249 /// [`dealloc`]: crate::alloc::GlobalAlloc::dealloc
1250 /// [*currently allocated*]: crate::alloc::Allocator#currently-allocated-memory
1251 /// [*fit*]: crate::alloc::Allocator#memory-fitting
1252 ///
1253 /// # Examples
1254 ///
1255 /// ```
1256 /// #![feature(allocator_api)]
1257 ///
1258 /// use std::alloc::System;
1259 ///
1260 /// let mut v = Vec::with_capacity_in(3, System);
1261 /// v.push(1);
1262 /// v.push(2);
1263 /// v.push(3);
1264 ///
1265 /// // Deconstruct the vector into parts.
1266 /// let (p, len, cap, alloc) = v.into_parts_with_alloc();
1267 ///
1268 /// unsafe {
1269 /// // Overwrite memory with 4, 5, 6
1270 /// for i in 0..len {
1271 /// p.add(i).write(4 + i);
1272 /// }
1273 ///
1274 /// // Put everything back together into a Vec
1275 /// let rebuilt = Vec::from_parts_in(p, len, cap, alloc.clone());
1276 /// assert_eq!(rebuilt, [4, 5, 6]);
1277 /// }
1278 /// ```
1279 ///
1280 /// Using memory that was allocated elsewhere:
1281 ///
1282 /// ```rust
1283 /// #![feature(allocator_api)]
1284 ///
1285 /// use std::alloc::{AllocError, Allocator, Global, Layout};
1286 ///
1287 /// fn main() {
1288 /// let layout = Layout::array::<u32>(16).expect("overflow cannot happen");
1289 ///
1290 /// let vec = unsafe {
1291 /// let mem = match Global.allocate(layout) {
1292 /// Ok(mem) => mem.cast::<u32>(),
1293 /// Err(AllocError) => return,
1294 /// };
1295 ///
1296 /// mem.write(1_000_000);
1297 ///
1298 /// Vec::from_parts_in(mem, 1, 16, Global)
1299 /// };
1300 ///
1301 /// assert_eq!(vec, &[1_000_000]);
1302 /// assert_eq!(vec.capacity(), 16);
1303 /// }
1304 /// ```
1305 #[inline]
1306 #[unstable(feature = "allocator_api", issue = "32838")]
1307 #[rustc_const_unstable(feature = "allocator_api", issue = "32838")]
1308 // #[unstable(feature = "box_vec_non_null", issue = "130364")]
1309 pub const unsafe fn from_parts_in(
1310 ptr: NonNull<T>,
1311 length: usize,
1312 capacity: usize,
1313 alloc: A,
1314 ) -> Self {
1315 ub_checks::assert_unsafe_precondition!(
1316 check_library_ub,
1317 "Vec::from_parts_in requires that length <= capacity",
1318 (length: usize = length, capacity: usize = capacity) => length <= capacity
1319 );
1320 unsafe { Vec { buf: RawVec::from_nonnull_in(ptr, capacity, alloc), len: length } }
1321 }
1322
1323 /// Decomposes a `Vec<T>` into its raw components: `(pointer, length, capacity, allocator)`.
1324 ///
1325 /// Returns the raw pointer to the underlying data, the length of the vector (in elements),
1326 /// the allocated capacity of the data (in elements), and the allocator. These are the same
1327 /// arguments in the same order as the arguments to [`from_raw_parts_in`].
1328 ///
1329 /// After calling this function, the caller is responsible for the
1330 /// memory previously managed by the `Vec`. The only way to do
1331 /// this is to convert the raw pointer, length, and capacity back
1332 /// into a `Vec` with the [`from_raw_parts_in`] function, allowing
1333 /// the destructor to perform the cleanup.
1334 ///
1335 /// [`from_raw_parts_in`]: Vec::from_raw_parts_in
1336 ///
1337 /// # Examples
1338 ///
1339 /// ```
1340 /// #![feature(allocator_api)]
1341 ///
1342 /// use std::alloc::System;
1343 ///
1344 /// let mut v: Vec<i32, System> = Vec::new_in(System);
1345 /// v.push(-1);
1346 /// v.push(0);
1347 /// v.push(1);
1348 ///
1349 /// let (ptr, len, cap, alloc) = v.into_raw_parts_with_alloc();
1350 ///
1351 /// let rebuilt = unsafe {
1352 /// // We can now make changes to the components, such as
1353 /// // transmuting the raw pointer to a compatible type.
1354 /// let ptr = ptr as *mut u32;
1355 ///
1356 /// Vec::from_raw_parts_in(ptr, len, cap, alloc)
1357 /// };
1358 /// assert_eq!(rebuilt, [4294967295, 0, 1]);
1359 /// ```
1360 #[must_use = "losing the pointer will leak memory"]
1361 #[unstable(feature = "allocator_api", issue = "32838")]
1362 #[rustc_const_unstable(feature = "allocator_api", issue = "32838")]
1363 pub const fn into_raw_parts_with_alloc(self) -> (*mut T, usize, usize, A) {
1364 let mut me = ManuallyDrop::new(self);
1365 let len = me.len();
1366 let capacity = me.capacity();
1367 let ptr = me.as_mut_ptr();
1368 let alloc = unsafe { ptr::read(me.allocator()) };
1369 (ptr, len, capacity, alloc)
1370 }
1371
1372 #[doc(alias = "into_non_null_parts_with_alloc")]
1373 /// Decomposes a `Vec<T>` into its raw components: `(NonNull pointer, length, capacity, allocator)`.
1374 ///
1375 /// Returns the `NonNull` pointer to the underlying data, the length of the vector (in elements),
1376 /// the allocated capacity of the data (in elements), and the allocator. These are the same
1377 /// arguments in the same order as the arguments to [`from_parts_in`].
1378 ///
1379 /// After calling this function, the caller is responsible for the
1380 /// memory previously managed by the `Vec`. The only way to do
1381 /// this is to convert the `NonNull` pointer, length, and capacity back
1382 /// into a `Vec` with the [`from_parts_in`] function, allowing
1383 /// the destructor to perform the cleanup.
1384 ///
1385 /// [`from_parts_in`]: Vec::from_parts_in
1386 ///
1387 /// # Examples
1388 ///
1389 /// ```
1390 /// #![feature(allocator_api)]
1391 ///
1392 /// use std::alloc::System;
1393 ///
1394 /// let mut v: Vec<i32, System> = Vec::new_in(System);
1395 /// v.push(-1);
1396 /// v.push(0);
1397 /// v.push(1);
1398 ///
1399 /// let (ptr, len, cap, alloc) = v.into_parts_with_alloc();
1400 ///
1401 /// let rebuilt = unsafe {
1402 /// // We can now make changes to the components, such as
1403 /// // transmuting the raw pointer to a compatible type.
1404 /// let ptr = ptr.cast::<u32>();
1405 ///
1406 /// Vec::from_parts_in(ptr, len, cap, alloc)
1407 /// };
1408 /// assert_eq!(rebuilt, [4294967295, 0, 1]);
1409 /// ```
1410 #[must_use = "losing the pointer will leak memory"]
1411 #[unstable(feature = "allocator_api", issue = "32838")]
1412 #[rustc_const_unstable(feature = "allocator_api", issue = "32838")]
1413 // #[unstable(feature = "box_vec_non_null", issue = "130364")]
1414 pub const fn into_parts_with_alloc(self) -> (NonNull<T>, usize, usize, A) {
1415 let (ptr, len, capacity, alloc) = self.into_raw_parts_with_alloc();
1416 // SAFETY: A `Vec` always has a non-null pointer.
1417 (unsafe { NonNull::new_unchecked(ptr) }, len, capacity, alloc)
1418 }
1419
1420 /// Returns the total number of elements the vector can hold without
1421 /// reallocating.
1422 ///
1423 /// # Examples
1424 ///
1425 /// ```
1426 /// let mut vec: Vec<i32> = Vec::with_capacity(10);
1427 /// vec.push(42);
1428 /// assert!(vec.capacity() >= 10);
1429 /// ```
1430 ///
1431 /// A vector with zero-sized elements will always have a capacity of usize::MAX:
1432 ///
1433 /// ```
1434 /// #[derive(Clone)]
1435 /// struct ZeroSized;
1436 ///
1437 /// fn main() {
1438 /// assert_eq!(std::mem::size_of::<ZeroSized>(), 0);
1439 /// let v = vec![ZeroSized; 0];
1440 /// assert_eq!(v.capacity(), usize::MAX);
1441 /// }
1442 /// ```
1443 #[inline]
1444 #[stable(feature = "rust1", since = "1.0.0")]
1445 #[rustc_const_stable(feature = "const_vec_string_slice", since = "1.87.0")]
1446 pub const fn capacity(&self) -> usize {
1447 self.buf.capacity()
1448 }
1449
1450 /// Reserves capacity for at least `additional` more elements to be inserted
1451 /// in the given `Vec<T>`. The collection may reserve more space to
1452 /// speculatively avoid frequent reallocations. After calling `reserve`,
1453 /// capacity will be greater than or equal to `self.len() + additional`.
1454 /// Does nothing if capacity is already sufficient.
1455 ///
1456 /// # Panics
1457 ///
1458 /// Panics if the new capacity exceeds `isize::MAX` _bytes_.
1459 ///
1460 /// # Examples
1461 ///
1462 /// ```
1463 /// let mut vec = vec![1];
1464 /// vec.reserve(10);
1465 /// assert!(vec.capacity() >= 11);
1466 /// ```
1467 #[cfg(not(no_global_oom_handling))]
1468 #[stable(feature = "rust1", since = "1.0.0")]
1469 #[rustc_diagnostic_item = "vec_reserve"]
1470 pub fn reserve(&mut self, additional: usize) {
1471 self.buf.reserve(self.len, additional);
1472 }
1473
1474 /// Reserves the minimum capacity for at least `additional` more elements to
1475 /// be inserted in the given `Vec<T>`. Unlike [`reserve`], this will not
1476 /// deliberately over-allocate to speculatively avoid frequent allocations.
1477 /// After calling `reserve_exact`, capacity will be greater than or equal to
1478 /// `self.len() + additional`. Does nothing if the capacity is already
1479 /// sufficient.
1480 ///
1481 /// Note that the allocator may give the collection more space than it
1482 /// requests. Therefore, capacity can not be relied upon to be precisely
1483 /// minimal. Prefer [`reserve`] if future insertions are expected.
1484 ///
1485 /// [`reserve`]: Vec::reserve
1486 ///
1487 /// # Panics
1488 ///
1489 /// Panics if the new capacity exceeds `isize::MAX` _bytes_.
1490 ///
1491 /// # Examples
1492 ///
1493 /// ```
1494 /// let mut vec = vec![1];
1495 /// vec.reserve_exact(10);
1496 /// assert!(vec.capacity() >= 11);
1497 /// ```
1498 #[cfg(not(no_global_oom_handling))]
1499 #[stable(feature = "rust1", since = "1.0.0")]
1500 pub fn reserve_exact(&mut self, additional: usize) {
1501 self.buf.reserve_exact(self.len, additional);
1502 }
1503
1504 /// Tries to reserve capacity for at least `additional` more elements to be inserted
1505 /// in the given `Vec<T>`. The collection may reserve more space to speculatively avoid
1506 /// frequent reallocations. After calling `try_reserve`, capacity will be
1507 /// greater than or equal to `self.len() + additional` if it returns
1508 /// `Ok(())`. Does nothing if capacity is already sufficient. This method
1509 /// preserves the contents even if an error occurs.
1510 ///
1511 /// # Errors
1512 ///
1513 /// If the capacity overflows, or the allocator reports a failure, then an error
1514 /// is returned.
1515 ///
1516 /// # Examples
1517 ///
1518 /// ```
1519 /// use std::collections::TryReserveError;
1520 ///
1521 /// fn process_data(data: &[u32]) -> Result<Vec<u32>, TryReserveError> {
1522 /// let mut output = Vec::new();
1523 ///
1524 /// // Pre-reserve the memory, exiting if we can't
1525 /// output.try_reserve(data.len())?;
1526 ///
1527 /// // Now we know this can't OOM in the middle of our complex work
1528 /// output.extend(data.iter().map(|&val| {
1529 /// val * 2 + 5 // very complicated
1530 /// }));
1531 ///
1532 /// Ok(output)
1533 /// }
1534 /// # process_data(&[1, 2, 3]).expect("why is the test harness OOMing on 12 bytes?");
1535 /// ```
1536 #[stable(feature = "try_reserve", since = "1.57.0")]
1537 pub fn try_reserve(&mut self, additional: usize) -> Result<(), TryReserveError> {
1538 self.buf.try_reserve(self.len, additional)
1539 }
1540
1541 /// Tries to reserve the minimum capacity for at least `additional`
1542 /// elements to be inserted in the given `Vec<T>`. Unlike [`try_reserve`],
1543 /// this will not deliberately over-allocate to speculatively avoid frequent
1544 /// allocations. After calling `try_reserve_exact`, capacity will be greater
1545 /// than or equal to `self.len() + additional` if it returns `Ok(())`.
1546 /// Does nothing if the capacity is already sufficient.
1547 ///
1548 /// Note that the allocator may give the collection more space than it
1549 /// requests. Therefore, capacity can not be relied upon to be precisely
1550 /// minimal. Prefer [`try_reserve`] if future insertions are expected.
1551 ///
1552 /// [`try_reserve`]: Vec::try_reserve
1553 ///
1554 /// # Errors
1555 ///
1556 /// If the capacity overflows, or the allocator reports a failure, then an error
1557 /// is returned.
1558 ///
1559 /// # Examples
1560 ///
1561 /// ```
1562 /// use std::collections::TryReserveError;
1563 ///
1564 /// fn process_data(data: &[u32]) -> Result<Vec<u32>, TryReserveError> {
1565 /// let mut output = Vec::new();
1566 ///
1567 /// // Pre-reserve the memory, exiting if we can't
1568 /// output.try_reserve_exact(data.len())?;
1569 ///
1570 /// // Now we know this can't OOM in the middle of our complex work
1571 /// output.extend(data.iter().map(|&val| {
1572 /// val * 2 + 5 // very complicated
1573 /// }));
1574 ///
1575 /// Ok(output)
1576 /// }
1577 /// # process_data(&[1, 2, 3]).expect("why is the test harness OOMing on 12 bytes?");
1578 /// ```
1579 #[stable(feature = "try_reserve", since = "1.57.0")]
1580 pub fn try_reserve_exact(&mut self, additional: usize) -> Result<(), TryReserveError> {
1581 self.buf.try_reserve_exact(self.len, additional)
1582 }
1583
1584 /// Shrinks the capacity of the vector as much as possible.
1585 ///
1586 /// The behavior of this method depends on the allocator, which may either shrink the vector
1587 /// in-place or reallocate. The resulting vector might still have some excess capacity, just as
1588 /// is the case for [`with_capacity`]. See [`Allocator::shrink`] for more details.
1589 ///
1590 /// [`with_capacity`]: Vec::with_capacity
1591 ///
1592 /// # Examples
1593 ///
1594 /// ```
1595 /// let mut vec = Vec::with_capacity(10);
1596 /// vec.extend([1, 2, 3]);
1597 /// assert!(vec.capacity() >= 10);
1598 /// vec.shrink_to_fit();
1599 /// assert!(vec.capacity() >= 3);
1600 /// ```
1601 #[cfg(not(no_global_oom_handling))]
1602 #[stable(feature = "rust1", since = "1.0.0")]
1603 #[inline]
1604 pub fn shrink_to_fit(&mut self) {
1605 // The capacity is never less than the length, and there's nothing to do when
1606 // they are equal, so we can avoid the panic case in `RawVec::shrink_to_fit`
1607 // by only calling it with a greater capacity.
1608 if self.capacity() > self.len {
1609 self.buf.shrink_to_fit(self.len);
1610 }
1611 }
1612
1613 /// Shrinks the capacity of the vector with a lower bound.
1614 ///
1615 /// The capacity will remain at least as large as both the length
1616 /// and the supplied value.
1617 ///
1618 /// If the current capacity is less than the lower limit, this is a no-op.
1619 ///
1620 /// # Examples
1621 ///
1622 /// ```
1623 /// let mut vec = Vec::with_capacity(10);
1624 /// vec.extend([1, 2, 3]);
1625 /// assert!(vec.capacity() >= 10);
1626 /// vec.shrink_to(4);
1627 /// assert!(vec.capacity() >= 4);
1628 /// vec.shrink_to(0);
1629 /// assert!(vec.capacity() >= 3);
1630 /// ```
1631 #[cfg(not(no_global_oom_handling))]
1632 #[stable(feature = "shrink_to", since = "1.56.0")]
1633 pub fn shrink_to(&mut self, min_capacity: usize) {
1634 if self.capacity() > min_capacity {
1635 self.buf.shrink_to_fit(cmp::max(self.len, min_capacity));
1636 }
1637 }
1638
1639 /// Tries to shrink the capacity of the vector as much as possible
1640 ///
1641 /// The behavior of this method depends on the allocator, which may either shrink the vector
1642 /// in-place or reallocate. The resulting vector might still have some excess capacity, just as
1643 /// is the case for [`with_capacity`]. See [`Allocator::shrink`] for more details.
1644 ///
1645 /// [`with_capacity`]: Vec::with_capacity
1646 ///
1647 /// # Errors
1648 ///
1649 /// This function returns an error if the allocator fails to shrink the allocation,
1650 /// the vector thereafter is still safe to use, the capacity remains unchanged
1651 /// however. See [`Allocator::shrink`].
1652 ///
1653 /// # Examples
1654 ///
1655 /// ```
1656 /// #![feature(vec_fallible_shrink)]
1657 ///
1658 /// let mut vec = Vec::with_capacity(10);
1659 /// vec.extend([1, 2, 3]);
1660 /// assert!(vec.capacity() >= 10);
1661 /// vec.try_shrink_to_fit().expect("why is the test harness failing to shrink to 12 bytes");
1662 /// assert!(vec.capacity() >= 3);
1663 /// ```
1664 #[unstable(feature = "vec_fallible_shrink", issue = "152350")]
1665 #[inline]
1666 pub fn try_shrink_to_fit(&mut self) -> Result<(), TryReserveError> {
1667 if self.capacity() > self.len { self.buf.try_shrink_to_fit(self.len) } else { Ok(()) }
1668 }
1669
1670 /// Shrinks the capacity of the vector with a lower bound.
1671 ///
1672 /// The capacity will remain at least as large as both the length
1673 /// and the supplied value.
1674 ///
1675 /// If the current capacity is less than the lower limit, this is a no-op.
1676 ///
1677 /// # Errors
1678 ///
1679 /// This function returns an error if the allocator fails to shrink the allocation,
1680 /// the vector thereafter is still safe to use, the capacity remains unchanged
1681 /// however. See [`Allocator::shrink`].
1682 ///
1683 /// # Examples
1684 ///
1685 /// ```
1686 /// #![feature(vec_fallible_shrink)]
1687 ///
1688 /// let mut vec = Vec::with_capacity(10);
1689 /// vec.extend([1, 2, 3]);
1690 /// assert!(vec.capacity() >= 10);
1691 /// vec.try_shrink_to(4).expect("why is the test harness failing to shrink to 12 bytes");
1692 /// assert!(vec.capacity() >= 4);
1693 /// vec.try_shrink_to(0).expect("this is a no-op and thus the allocator isn't involved.");
1694 /// assert!(vec.capacity() >= 3);
1695 /// ```
1696 #[unstable(feature = "vec_fallible_shrink", issue = "152350")]
1697 #[inline]
1698 pub fn try_shrink_to(&mut self, min_capacity: usize) -> Result<(), TryReserveError> {
1699 if self.capacity() > min_capacity {
1700 self.buf.try_shrink_to_fit(cmp::max(self.len, min_capacity))
1701 } else {
1702 Ok(())
1703 }
1704 }
1705
1706 /// Converts the vector into [`Box<[T]>`][owned slice].
1707 ///
1708 /// Before doing the conversion, this method discards excess capacity like [`shrink_to_fit`].
1709 ///
1710 /// [owned slice]: Box
1711 /// [`shrink_to_fit`]: Vec::shrink_to_fit
1712 ///
1713 /// # Examples
1714 ///
1715 /// ```
1716 /// let v = vec![1, 2, 3];
1717 ///
1718 /// let slice = v.into_boxed_slice();
1719 /// ```
1720 ///
1721 /// Any excess capacity is removed:
1722 ///
1723 /// ```
1724 /// let mut vec = Vec::with_capacity(10);
1725 /// vec.extend([1, 2, 3]);
1726 ///
1727 /// assert!(vec.capacity() >= 10);
1728 /// let slice = vec.into_boxed_slice();
1729 /// assert_eq!(slice.into_vec().capacity(), 3);
1730 /// ```
1731 #[cfg(not(no_global_oom_handling))]
1732 #[stable(feature = "rust1", since = "1.0.0")]
1733 pub fn into_boxed_slice(mut self) -> Box<[T], A> {
1734 unsafe {
1735 self.shrink_to_fit();
1736 let me = ManuallyDrop::new(self);
1737 let buf = ptr::read(&me.buf);
1738 let len = me.len();
1739 buf.into_box(len).assume_init()
1740 }
1741 }
1742
1743 /// Converts the Vec into a boxed array. This conversion will discard any spare capacity, if there is any, see [`Vec::shrink_to_fit`].
1744 /// If you merely wish for a reference to an array, use [`as_array`](https://doc.rust-lang.org/stable/std/primitive.slice.html#method.as_array).
1745 ///
1746 /// If `N` is not exactly equal to [`Vec::len`], then this method returns `None`.
1747 ///
1748 /// # Examples
1749 ///
1750 /// ```
1751 /// #![feature(alloc_slice_into_array)]
1752 /// let vec: Vec<i32> = vec![1, 2, 3];
1753 /// let box_array: Box<[i32; 3]> = vec.clone().into_array().unwrap();
1754 /// let not_enough_elements: Result<Box<[i32; 4]>, Vec<i32>> = vec.into_array::<4>();
1755 /// assert_eq!(not_enough_elements, Err(vec![1, 2, 3]));
1756 /// ```
1757 #[cfg(not(no_global_oom_handling))]
1758 #[unstable(feature = "alloc_slice_into_array", issue = "148082")]
1759 #[must_use]
1760 pub fn into_array<const N: usize>(self) -> Result<Box<[T; N], A>, Self> {
1761 if self.len() == N { Ok(self.into_boxed_slice().into_array().unwrap()) } else { Err(self) }
1762 }
1763
1764 /// Shortens the vector, keeping the first `len` elements and dropping
1765 /// the rest.
1766 ///
1767 /// If `len` is greater or equal to the vector's current length, this has
1768 /// no effect.
1769 ///
1770 /// The [`drain`] method can emulate `truncate`, but causes the excess
1771 /// elements to be returned instead of dropped.
1772 ///
1773 /// Note that this method has no effect on the allocated capacity
1774 /// of the vector.
1775 ///
1776 /// # Examples
1777 ///
1778 /// Truncating a five element vector to two elements:
1779 ///
1780 /// ```
1781 /// let mut vec = vec![1, 2, 3, 4, 5];
1782 /// vec.truncate(2);
1783 /// assert_eq!(vec, [1, 2]);
1784 /// ```
1785 ///
1786 /// No truncation occurs when `len` is greater than the vector's current
1787 /// length:
1788 ///
1789 /// ```
1790 /// let mut vec = vec![1, 2, 3];
1791 /// vec.truncate(8);
1792 /// assert_eq!(vec, [1, 2, 3]);
1793 /// ```
1794 ///
1795 /// Truncating when `len == 0` is equivalent to calling the [`clear`]
1796 /// method.
1797 ///
1798 /// ```
1799 /// let mut vec = vec![1, 2, 3];
1800 /// vec.truncate(0);
1801 /// assert_eq!(vec, []);
1802 /// ```
1803 ///
1804 /// [`clear`]: Vec::clear
1805 /// [`drain`]: Vec::drain
1806 #[stable(feature = "rust1", since = "1.0.0")]
1807 pub fn truncate(&mut self, len: usize) {
1808 // SAFETY: `BufWriter::flush_buf` assumes that this will not
1809 // de-initialize any elements of the spare capacity.
1810
1811 // This is safe because:
1812 //
1813 // * the slice passed to `drop_in_place` is valid; the `len > self.len`
1814 // case avoids creating an invalid slice, and
1815 // * the `len` of the vector is shrunk before calling `drop_in_place`,
1816 // such that no value will be dropped twice in case `drop_in_place`
1817 // were to panic once (if it panics twice, the program aborts).
1818 unsafe {
1819 // Note: It's intentional that this is `>` and not `>=`.
1820 // Changing it to `>=` has negative performance
1821 // implications in some cases. See #78884 for more.
1822 if len > self.len {
1823 return;
1824 }
1825 let remaining_len = self.len - len;
1826 let s = ptr::slice_from_raw_parts_mut(self.as_mut_ptr().add(len), remaining_len);
1827 self.len = len;
1828 ptr::drop_in_place(s);
1829 }
1830 }
1831
1832 /// Extracts a slice containing the entire vector.
1833 ///
1834 /// Equivalent to `&s[..]`.
1835 ///
1836 /// # Examples
1837 ///
1838 /// ```
1839 /// use std::io::{self, Write};
1840 /// let buffer = vec![1, 2, 3, 5, 8];
1841 /// io::sink().write(buffer.as_slice()).unwrap();
1842 /// ```
1843 #[inline]
1844 #[stable(feature = "vec_as_slice", since = "1.7.0")]
1845 #[rustc_diagnostic_item = "vec_as_slice"]
1846 #[rustc_const_stable(feature = "const_vec_string_slice", since = "1.87.0")]
1847 pub const fn as_slice(&self) -> &[T] {
1848 // SAFETY: `slice::from_raw_parts` requires pointee is a contiguous, aligned buffer of size
1849 // `len` containing properly-initialized `T`s. Data must not be mutated for the returned
1850 // lifetime. Further, `len * size_of::<T>` <= `isize::MAX`, and allocation does not
1851 // "wrap" through overflowing memory addresses.
1852 //
1853 // * Vec API guarantees that self.buf:
1854 // * contains only properly-initialized items within 0..len
1855 // * is aligned, contiguous, and valid for `len` reads
1856 // * obeys size and address-wrapping constraints
1857 //
1858 // * We only construct `&mut` references to `self.buf` through `&mut self` methods; borrow-
1859 // check ensures that it is not possible to mutably alias `self.buf` within the
1860 // returned lifetime.
1861 unsafe {
1862 // normally this would use `slice::from_raw_parts`, but it's
1863 // instantiated often enough that avoiding the UB check is worth it
1864 &*core::intrinsics::aggregate_raw_ptr::<*const [T], _, _>(self.as_ptr(), self.len)
1865 }
1866 }
1867
1868 /// Extracts a mutable slice of the entire vector.
1869 ///
1870 /// Equivalent to `&mut s[..]`.
1871 ///
1872 /// # Examples
1873 ///
1874 /// ```
1875 /// use std::io::{self, Read};
1876 /// let mut buffer = vec![0; 3];
1877 /// io::repeat(0b101).read_exact(buffer.as_mut_slice()).unwrap();
1878 /// ```
1879 #[inline]
1880 #[stable(feature = "vec_as_slice", since = "1.7.0")]
1881 #[rustc_diagnostic_item = "vec_as_mut_slice"]
1882 #[rustc_const_stable(feature = "const_vec_string_slice", since = "1.87.0")]
1883 pub const fn as_mut_slice(&mut self) -> &mut [T] {
1884 // SAFETY: `BufWriter::flush_buf` assumes that this will not
1885 // de-initialize any elements of the spare capacity.
1886
1887 // SAFETY: `slice::from_raw_parts_mut` requires pointee is a contiguous, aligned buffer of
1888 // size `len` containing properly-initialized `T`s. Data must not be accessed through any
1889 // other pointer for the returned lifetime. Further, `len * size_of::<T>` <=
1890 // `isize::MAX` and allocation does not "wrap" through overflowing memory addresses.
1891 //
1892 // * Vec API guarantees that self.buf:
1893 // * contains only properly-initialized items within 0..len
1894 // * is aligned, contiguous, and valid for `len` reads
1895 // * obeys size and address-wrapping constraints
1896 //
1897 // * We only construct references to `self.buf` through `&self` and `&mut self` methods;
1898 // borrow-check ensures that it is not possible to construct a reference to `self.buf`
1899 // within the returned lifetime.
1900 unsafe {
1901 // normally this would use `slice::from_raw_parts_mut`, but it's
1902 // instantiated often enough that avoiding the UB check is worth it
1903 &mut *core::intrinsics::aggregate_raw_ptr::<*mut [T], _, _>(self.as_mut_ptr(), self.len)
1904 }
1905 }
1906
1907 /// Returns a raw pointer to the vector's buffer, or a dangling raw pointer
1908 /// valid for zero sized reads if the vector didn't allocate.
1909 ///
1910 /// The caller must ensure that the vector outlives the pointer this
1911 /// function returns, or else it will end up dangling.
1912 /// Modifying the vector may cause its buffer to be reallocated,
1913 /// which would also make any pointers to it invalid.
1914 ///
1915 /// The caller must also ensure that the memory the pointer (non-transitively) points to
1916 /// is never written to (except inside an `UnsafeCell`) using this pointer or any pointer
1917 /// derived from it. If you need to mutate the contents of the slice, use [`as_mut_ptr`].
1918 ///
1919 /// This method guarantees that for the purpose of the aliasing model, this method
1920 /// does not materialize a reference to the underlying slice, and thus the returned pointer
1921 /// will remain valid when mixed with other calls to [`as_ptr`], [`as_mut_ptr`],
1922 /// and [`as_non_null`].
1923 /// Note that calling other methods that materialize mutable references to the slice,
1924 /// or mutable references to specific elements you are planning on accessing through this pointer,
1925 /// as well as writing to those elements, may still invalidate this pointer.
1926 /// See the second example below for how this guarantee can be used.
1927 ///
1928 ///
1929 /// # Examples
1930 ///
1931 /// ```
1932 /// let x = vec![1, 2, 4];
1933 /// let x_ptr = x.as_ptr();
1934 ///
1935 /// unsafe {
1936 /// for i in 0..x.len() {
1937 /// assert_eq!(*x_ptr.add(i), 1 << i);
1938 /// }
1939 /// }
1940 /// ```
1941 ///
1942 /// Due to the aliasing guarantee, the following code is legal:
1943 ///
1944 /// ```rust
1945 /// unsafe {
1946 /// let mut v = vec![0, 1, 2];
1947 /// let ptr1 = v.as_ptr();
1948 /// let _ = ptr1.read();
1949 /// let ptr2 = v.as_mut_ptr().offset(2);
1950 /// ptr2.write(2);
1951 /// // Notably, the write to `ptr2` did *not* invalidate `ptr1`
1952 /// // because it mutated a different element:
1953 /// let _ = ptr1.read();
1954 /// }
1955 /// ```
1956 ///
1957 /// [`as_mut_ptr`]: Vec::as_mut_ptr
1958 /// [`as_ptr`]: Vec::as_ptr
1959 /// [`as_non_null`]: Vec::as_non_null
1960 #[stable(feature = "vec_as_ptr", since = "1.37.0")]
1961 #[rustc_const_stable(feature = "const_vec_string_slice", since = "1.87.0")]
1962 #[rustc_never_returns_null_ptr]
1963 #[rustc_as_ptr]
1964 #[inline]
1965 pub const fn as_ptr(&self) -> *const T {
1966 // We shadow the slice method of the same name to avoid going through
1967 // `deref`, which creates an intermediate reference.
1968 self.buf.ptr()
1969 }
1970
1971 /// Returns a raw mutable pointer to the vector's buffer, or a dangling
1972 /// raw pointer valid for zero sized reads if the vector didn't allocate.
1973 ///
1974 /// The caller must ensure that the vector outlives the pointer this
1975 /// function returns, or else it will end up dangling.
1976 /// Modifying the vector may cause its buffer to be reallocated,
1977 /// which would also make any pointers to it invalid.
1978 ///
1979 /// This method guarantees that for the purpose of the aliasing model, this method
1980 /// does not materialize a reference to the underlying slice, and thus the returned pointer
1981 /// will remain valid when mixed with other calls to [`as_ptr`], [`as_mut_ptr`],
1982 /// and [`as_non_null`].
1983 /// Note that calling other methods that materialize references to the slice,
1984 /// or references to specific elements you are planning on accessing through this pointer,
1985 /// may still invalidate this pointer.
1986 /// See the second example below for how this guarantee can be used.
1987 ///
1988 /// The method also guarantees that, as long as `T` is not zero-sized and the capacity is
1989 /// nonzero, the pointer may be passed into [`dealloc`] with a layout of
1990 /// `Layout::array::<T>(capacity)` in order to deallocate the backing memory. If this is done,
1991 /// be careful not to run the destructor of the `Vec`, as dropping it will result in
1992 /// double-frees. Wrapping the `Vec` in a [`ManuallyDrop`] is the typical way to achieve this.
1993 ///
1994 /// # Examples
1995 ///
1996 /// ```
1997 /// // Allocate vector big enough for 4 elements.
1998 /// let size = 4;
1999 /// let mut x: Vec<i32> = Vec::with_capacity(size);
2000 /// let x_ptr = x.as_mut_ptr();
2001 ///
2002 /// // Initialize elements via raw pointer writes, then set length.
2003 /// unsafe {
2004 /// for i in 0..size {
2005 /// *x_ptr.add(i) = i as i32;
2006 /// }
2007 /// x.set_len(size);
2008 /// }
2009 /// assert_eq!(&*x, &[0, 1, 2, 3]);
2010 /// ```
2011 ///
2012 /// Due to the aliasing guarantee, the following code is legal:
2013 ///
2014 /// ```rust
2015 /// unsafe {
2016 /// let mut v = vec![0];
2017 /// let ptr1 = v.as_mut_ptr();
2018 /// ptr1.write(1);
2019 /// let ptr2 = v.as_mut_ptr();
2020 /// ptr2.write(2);
2021 /// // Notably, the write to `ptr2` did *not* invalidate `ptr1`:
2022 /// ptr1.write(3);
2023 /// }
2024 /// ```
2025 ///
2026 /// Deallocating a vector using [`Box`] (which uses [`dealloc`] internally):
2027 ///
2028 /// ```
2029 /// use std::mem::{ManuallyDrop, MaybeUninit};
2030 ///
2031 /// let mut v = ManuallyDrop::new(vec![0, 1, 2]);
2032 /// let ptr = v.as_mut_ptr();
2033 /// let capacity = v.capacity();
2034 /// let slice_ptr: *mut [MaybeUninit<i32>] =
2035 /// std::ptr::slice_from_raw_parts_mut(ptr.cast(), capacity);
2036 /// drop(unsafe { Box::from_raw(slice_ptr) });
2037 /// ```
2038 ///
2039 /// [`as_mut_ptr`]: Vec::as_mut_ptr
2040 /// [`as_ptr`]: Vec::as_ptr
2041 /// [`as_non_null`]: Vec::as_non_null
2042 /// [`dealloc`]: crate::alloc::GlobalAlloc::dealloc
2043 /// [`ManuallyDrop`]: core::mem::ManuallyDrop
2044 #[stable(feature = "vec_as_ptr", since = "1.37.0")]
2045 #[rustc_const_stable(feature = "const_vec_string_slice", since = "1.87.0")]
2046 #[rustc_never_returns_null_ptr]
2047 #[rustc_as_ptr]
2048 #[inline]
2049 pub const fn as_mut_ptr(&mut self) -> *mut T {
2050 // We shadow the slice method of the same name to avoid going through
2051 // `deref_mut`, which creates an intermediate reference.
2052 self.buf.ptr()
2053 }
2054
2055 /// Returns a `NonNull` pointer to the vector's buffer, or a dangling
2056 /// `NonNull` pointer valid for zero sized reads if the vector didn't allocate.
2057 ///
2058 /// The caller must ensure that the vector outlives the pointer this
2059 /// function returns, or else it will end up dangling.
2060 /// Modifying the vector may cause its buffer to be reallocated,
2061 /// which would also make any pointers to it invalid.
2062 ///
2063 /// This method guarantees that for the purpose of the aliasing model, this method
2064 /// does not materialize a reference to the underlying slice, and thus the returned pointer
2065 /// will remain valid when mixed with other calls to [`as_ptr`], [`as_mut_ptr`],
2066 /// and [`as_non_null`].
2067 /// Note that calling other methods that materialize references to the slice,
2068 /// or references to specific elements you are planning on accessing through this pointer,
2069 /// may still invalidate this pointer.
2070 /// See the second example below for how this guarantee can be used.
2071 ///
2072 /// # Examples
2073 ///
2074 /// ```
2075 /// #![feature(box_vec_non_null)]
2076 ///
2077 /// // Allocate vector big enough for 4 elements.
2078 /// let size = 4;
2079 /// let mut x: Vec<i32> = Vec::with_capacity(size);
2080 /// let x_ptr = x.as_non_null();
2081 ///
2082 /// // Initialize elements via raw pointer writes, then set length.
2083 /// unsafe {
2084 /// for i in 0..size {
2085 /// x_ptr.add(i).write(i as i32);
2086 /// }
2087 /// x.set_len(size);
2088 /// }
2089 /// assert_eq!(&*x, &[0, 1, 2, 3]);
2090 /// ```
2091 ///
2092 /// Due to the aliasing guarantee, the following code is legal:
2093 ///
2094 /// ```rust
2095 /// #![feature(box_vec_non_null)]
2096 ///
2097 /// unsafe {
2098 /// let mut v = vec![0];
2099 /// let ptr1 = v.as_non_null();
2100 /// ptr1.write(1);
2101 /// let ptr2 = v.as_non_null();
2102 /// ptr2.write(2);
2103 /// // Notably, the write to `ptr2` did *not* invalidate `ptr1`:
2104 /// ptr1.write(3);
2105 /// }
2106 /// ```
2107 ///
2108 /// [`as_mut_ptr`]: Vec::as_mut_ptr
2109 /// [`as_ptr`]: Vec::as_ptr
2110 /// [`as_non_null`]: Vec::as_non_null
2111 #[unstable(feature = "box_vec_non_null", issue = "130364")]
2112 #[rustc_const_unstable(feature = "box_vec_non_null", issue = "130364")]
2113 #[inline]
2114 pub const fn as_non_null(&mut self) -> NonNull<T> {
2115 self.buf.non_null()
2116 }
2117
2118 /// Returns a reference to the underlying allocator.
2119 #[unstable(feature = "allocator_api", issue = "32838")]
2120 #[rustc_const_unstable(feature = "const_heap", issue = "79597")]
2121 #[inline]
2122 pub const fn allocator(&self) -> &A {
2123 self.buf.allocator()
2124 }
2125
2126 /// Forces the length of the vector to `new_len`.
2127 ///
2128 /// This is a low-level operation that maintains none of the normal
2129 /// invariants of the type. Normally changing the length of a vector
2130 /// is done using one of the safe operations instead, such as
2131 /// [`truncate`], [`resize`], [`extend`], or [`clear`].
2132 ///
2133 /// [`truncate`]: Vec::truncate
2134 /// [`resize`]: Vec::resize
2135 /// [`extend`]: Extend::extend
2136 /// [`clear`]: Vec::clear
2137 ///
2138 /// # Safety
2139 ///
2140 /// - `new_len` must be less than or equal to [`capacity()`].
2141 /// - The elements at `old_len..new_len` must be initialized.
2142 ///
2143 /// [`capacity()`]: Vec::capacity
2144 ///
2145 /// # Examples
2146 ///
2147 /// See [`spare_capacity_mut()`] for an example with safe
2148 /// initialization of capacity elements and use of this method.
2149 ///
2150 /// `set_len()` can be useful for situations in which the vector
2151 /// is serving as a buffer for other code, particularly over FFI:
2152 ///
2153 /// ```no_run
2154 /// # #![allow(dead_code)]
2155 /// # // This is just a minimal skeleton for the doc example;
2156 /// # // don't use this as a starting point for a real library.
2157 /// # pub struct StreamWrapper { strm: *mut std::ffi::c_void }
2158 /// # const Z_OK: i32 = 0;
2159 /// # unsafe extern "C" {
2160 /// # fn deflateGetDictionary(
2161 /// # strm: *mut std::ffi::c_void,
2162 /// # dictionary: *mut u8,
2163 /// # dictLength: *mut usize,
2164 /// # ) -> i32;
2165 /// # }
2166 /// # impl StreamWrapper {
2167 /// pub fn get_dictionary(&self) -> Option<Vec<u8>> {
2168 /// // Per the FFI method's docs, "32768 bytes is always enough".
2169 /// let mut dict = Vec::with_capacity(32_768);
2170 /// let mut dict_length = 0;
2171 /// // SAFETY: When `deflateGetDictionary` returns `Z_OK`, it holds that:
2172 /// // 1. `dict_length` elements were initialized.
2173 /// // 2. `dict_length` <= the capacity (32_768)
2174 /// // which makes `set_len` safe to call.
2175 /// unsafe {
2176 /// // Make the FFI call...
2177 /// let r = deflateGetDictionary(self.strm, dict.as_mut_ptr(), &mut dict_length);
2178 /// if r == Z_OK {
2179 /// // ...and update the length to what was initialized.
2180 /// dict.set_len(dict_length);
2181 /// Some(dict)
2182 /// } else {
2183 /// None
2184 /// }
2185 /// }
2186 /// }
2187 /// # }
2188 /// ```
2189 ///
2190 /// While the following example is sound, there is a memory leak since
2191 /// the inner vectors were not freed prior to the `set_len` call:
2192 ///
2193 /// ```
2194 /// let mut vec = vec![vec![1, 0, 0],
2195 /// vec![0, 1, 0],
2196 /// vec![0, 0, 1]];
2197 /// // SAFETY:
2198 /// // 1. `old_len..0` is empty so no elements need to be initialized.
2199 /// // 2. `0 <= capacity` always holds whatever `capacity` is.
2200 /// unsafe {
2201 /// vec.set_len(0);
2202 /// # // FIXME(https://github.com/rust-lang/miri/issues/3670):
2203 /// # // use -Zmiri-disable-leak-check instead of unleaking in tests meant to leak.
2204 /// # vec.set_len(3);
2205 /// }
2206 /// ```
2207 ///
2208 /// Normally, here, one would use [`clear`] instead to correctly drop
2209 /// the contents and thus not leak memory.
2210 ///
2211 /// [`spare_capacity_mut()`]: Vec::spare_capacity_mut
2212 #[inline]
2213 #[stable(feature = "rust1", since = "1.0.0")]
2214 pub unsafe fn set_len(&mut self, new_len: usize) {
2215 ub_checks::assert_unsafe_precondition!(
2216 check_library_ub,
2217 "Vec::set_len requires that new_len <= capacity()",
2218 (new_len: usize = new_len, capacity: usize = self.capacity()) => new_len <= capacity
2219 );
2220
2221 self.len = new_len;
2222 }
2223
2224 /// Removes an element from the vector and returns it.
2225 ///
2226 /// The removed element is replaced by the last element of the vector.
2227 ///
2228 /// This does not preserve ordering of the remaining elements, but is *O*(1).
2229 /// If you need to preserve the element order, use [`remove`] instead.
2230 ///
2231 /// [`remove`]: Vec::remove
2232 ///
2233 /// # Panics
2234 ///
2235 /// Panics if `index` is out of bounds.
2236 ///
2237 /// # Examples
2238 ///
2239 /// ```
2240 /// let mut v = vec!["foo", "bar", "baz", "qux"];
2241 ///
2242 /// assert_eq!(v.swap_remove(1), "bar");
2243 /// assert_eq!(v, ["foo", "qux", "baz"]);
2244 ///
2245 /// assert_eq!(v.swap_remove(0), "foo");
2246 /// assert_eq!(v, ["baz", "qux"]);
2247 /// ```
2248 #[inline]
2249 #[stable(feature = "rust1", since = "1.0.0")]
2250 pub fn swap_remove(&mut self, index: usize) -> T {
2251 #[cold]
2252 #[cfg_attr(not(panic = "immediate-abort"), inline(never))]
2253 #[optimize(size)]
2254 fn assert_failed(index: usize, len: usize) -> ! {
2255 panic!("swap_remove index (is {index}) should be < len (is {len})");
2256 }
2257
2258 let len = self.len();
2259 if index >= len {
2260 assert_failed(index, len);
2261 }
2262 unsafe {
2263 // We replace self[index] with the last element. Note that if the
2264 // bounds check above succeeds there must be a last element (which
2265 // can be self[index] itself).
2266 let value = ptr::read(self.as_ptr().add(index));
2267 let base_ptr = self.as_mut_ptr();
2268 ptr::copy(base_ptr.add(len - 1), base_ptr.add(index), 1);
2269 self.set_len(len - 1);
2270 value
2271 }
2272 }
2273
2274 /// Inserts an element at position `index` within the vector, shifting all
2275 /// elements after it to the right.
2276 ///
2277 /// # Panics
2278 ///
2279 /// Panics if `index > len`.
2280 ///
2281 /// # Examples
2282 ///
2283 /// ```
2284 /// let mut vec = vec!['a', 'b', 'c'];
2285 /// vec.insert(1, 'd');
2286 /// assert_eq!(vec, ['a', 'd', 'b', 'c']);
2287 /// vec.insert(4, 'e');
2288 /// assert_eq!(vec, ['a', 'd', 'b', 'c', 'e']);
2289 /// ```
2290 ///
2291 /// # Time complexity
2292 ///
2293 /// Takes *O*([`Vec::len`]) time. All items after the insertion index must be
2294 /// shifted to the right. In the worst case, all elements are shifted when
2295 /// the insertion index is 0.
2296 #[cfg(not(no_global_oom_handling))]
2297 #[stable(feature = "rust1", since = "1.0.0")]
2298 #[track_caller]
2299 pub fn insert(&mut self, index: usize, element: T) {
2300 let _ = self.insert_mut(index, element);
2301 }
2302
2303 /// Inserts an element at position `index` within the vector, shifting all
2304 /// elements after it to the right, and returning a reference to the new
2305 /// element.
2306 ///
2307 /// # Panics
2308 ///
2309 /// Panics if `index > len`.
2310 ///
2311 /// # Examples
2312 ///
2313 /// ```
2314 /// let mut vec = vec![1, 3, 5, 9];
2315 /// let x = vec.insert_mut(3, 6);
2316 /// *x += 1;
2317 /// assert_eq!(vec, [1, 3, 5, 7, 9]);
2318 /// ```
2319 ///
2320 /// # Time complexity
2321 ///
2322 /// Takes *O*([`Vec::len`]) time. All items after the insertion index must be
2323 /// shifted to the right. In the worst case, all elements are shifted when
2324 /// the insertion index is 0.
2325 #[cfg(not(no_global_oom_handling))]
2326 #[inline]
2327 #[stable(feature = "push_mut", since = "1.95.0")]
2328 #[track_caller]
2329 #[must_use = "if you don't need a reference to the value, use `Vec::insert` instead"]
2330 pub fn insert_mut(&mut self, index: usize, element: T) -> &mut T {
2331 #[cold]
2332 #[cfg_attr(not(panic = "immediate-abort"), inline(never))]
2333 #[track_caller]
2334 #[optimize(size)]
2335 fn assert_failed(index: usize, len: usize) -> ! {
2336 panic!("insertion index (is {index}) should be <= len (is {len})");
2337 }
2338
2339 let len = self.len();
2340 if index > len {
2341 assert_failed(index, len);
2342 }
2343
2344 // space for the new element
2345 if len == self.buf.capacity() {
2346 self.buf.grow_one();
2347 }
2348
2349 unsafe {
2350 // infallible
2351 // The spot to put the new value
2352 let p = self.as_mut_ptr().add(index);
2353 {
2354 if index < len {
2355 // Shift everything over to make space. (Duplicating the
2356 // `index`th element into two consecutive places.)
2357 ptr::copy(p, p.add(1), len - index);
2358 }
2359 // Write it in, overwriting the first copy of the `index`th
2360 // element.
2361 ptr::write(p, element);
2362 }
2363 self.set_len(len + 1);
2364 &mut *p
2365 }
2366 }
2367
2368 /// Removes and returns the element at position `index` within the vector,
2369 /// shifting all elements after it to the left.
2370 ///
2371 /// Note: Because this shifts over the remaining elements, it has a
2372 /// worst-case performance of *O*(*n*). If you don't need the order of elements
2373 /// to be preserved, use [`swap_remove`] instead. If you'd like to remove
2374 /// elements from the beginning of the `Vec`, consider using
2375 /// [`VecDeque::pop_front`] instead.
2376 ///
2377 /// [`swap_remove`]: Vec::swap_remove
2378 /// [`VecDeque::pop_front`]: crate::collections::VecDeque::pop_front
2379 ///
2380 /// # Panics
2381 ///
2382 /// Panics if `index` is out of bounds.
2383 ///
2384 /// # Examples
2385 ///
2386 /// ```
2387 /// let mut v = vec!['a', 'b', 'c'];
2388 /// assert_eq!(v.remove(1), 'b');
2389 /// assert_eq!(v, ['a', 'c']);
2390 /// ```
2391 #[stable(feature = "rust1", since = "1.0.0")]
2392 #[track_caller]
2393 #[rustc_confusables("delete", "take")]
2394 pub fn remove(&mut self, index: usize) -> T {
2395 #[cold]
2396 #[cfg_attr(not(panic = "immediate-abort"), inline(never))]
2397 #[track_caller]
2398 #[optimize(size)]
2399 fn assert_failed(index: usize, len: usize) -> ! {
2400 panic!("removal index (is {index}) should be < len (is {len})");
2401 }
2402
2403 match self.try_remove(index) {
2404 Some(elem) => elem,
2405 None => assert_failed(index, self.len()),
2406 }
2407 }
2408
2409 /// Remove and return the element at position `index` within the vector,
2410 /// shifting all elements after it to the left, or [`None`] if it does not
2411 /// exist.
2412 ///
2413 /// Note: Because this shifts over the remaining elements, it has a
2414 /// worst-case performance of *O*(*n*). If you'd like to remove
2415 /// elements from the beginning of the `Vec`, consider using
2416 /// [`VecDeque::pop_front`] instead.
2417 ///
2418 /// [`VecDeque::pop_front`]: crate::collections::VecDeque::pop_front
2419 ///
2420 /// # Examples
2421 ///
2422 /// ```
2423 /// #![feature(vec_try_remove)]
2424 /// let mut v = vec![1, 2, 3];
2425 /// assert_eq!(v.try_remove(0), Some(1));
2426 /// assert_eq!(v.try_remove(2), None);
2427 /// ```
2428 #[unstable(feature = "vec_try_remove", issue = "146954")]
2429 #[rustc_confusables("delete", "take", "remove")]
2430 pub fn try_remove(&mut self, index: usize) -> Option<T> {
2431 let len = self.len();
2432 if index >= len {
2433 return None;
2434 }
2435 unsafe {
2436 // infallible
2437 let ret;
2438 {
2439 // the place we are taking from.
2440 let ptr = self.as_mut_ptr().add(index);
2441 // copy it out, unsafely having a copy of the value on
2442 // the stack and in the vector at the same time.
2443 ret = ptr::read(ptr);
2444
2445 // Shift everything down to fill in that spot.
2446 ptr::copy(ptr.add(1), ptr, len - index - 1);
2447 }
2448 self.set_len(len - 1);
2449 Some(ret)
2450 }
2451 }
2452
2453 /// Retains only the elements specified by the predicate.
2454 ///
2455 /// In other words, remove all elements `e` for which `f(&e)` returns `false`.
2456 /// This method operates in place, visiting each element exactly once in the
2457 /// original order, and preserves the order of the retained elements.
2458 ///
2459 /// # Examples
2460 ///
2461 /// ```
2462 /// let mut vec = vec![1, 2, 3, 4];
2463 /// vec.retain(|&x| x % 2 == 0);
2464 /// assert_eq!(vec, [2, 4]);
2465 /// ```
2466 ///
2467 /// Because the elements are visited exactly once in the original order,
2468 /// external state may be used to decide which elements to keep.
2469 ///
2470 /// ```
2471 /// let mut vec = vec![1, 2, 3, 4, 5];
2472 /// let keep = [false, true, true, false, true];
2473 /// let mut iter = keep.iter();
2474 /// vec.retain(|_| *iter.next().unwrap());
2475 /// assert_eq!(vec, [2, 3, 5]);
2476 /// ```
2477 #[stable(feature = "rust1", since = "1.0.0")]
2478 pub fn retain<F>(&mut self, mut f: F)
2479 where
2480 F: FnMut(&T) -> bool,
2481 {
2482 self.retain_mut(|elem| f(elem));
2483 }
2484
2485 /// Retains only the elements specified by the predicate, passing a mutable reference to it.
2486 ///
2487 /// In other words, remove all elements `e` such that `f(&mut e)` returns `false`.
2488 /// This method operates in place, visiting each element exactly once in the
2489 /// original order, and preserves the order of the retained elements.
2490 ///
2491 /// # Examples
2492 ///
2493 /// ```
2494 /// let mut vec = vec![1, 2, 3, 4];
2495 /// vec.retain_mut(|x| if *x <= 3 {
2496 /// *x += 1;
2497 /// true
2498 /// } else {
2499 /// false
2500 /// });
2501 /// assert_eq!(vec, [2, 3, 4]);
2502 /// ```
2503 #[stable(feature = "vec_retain_mut", since = "1.61.0")]
2504 pub fn retain_mut<F>(&mut self, mut f: F)
2505 where
2506 F: FnMut(&mut T) -> bool,
2507 {
2508 let original_len = self.len();
2509
2510 if original_len == 0 {
2511 // Empty case: explicit return allows better optimization, vs letting compiler infer it
2512 return;
2513 }
2514
2515 // Vec: [Kept, Kept, Hole, Hole, Hole, Hole, Unchecked, Unchecked]
2516 // | ^- write ^- read |
2517 // |<- original_len ->|
2518 // Kept: Elements which predicate returns true on.
2519 // Hole: Moved or dropped element slot.
2520 // Unchecked: Unchecked valid elements.
2521 //
2522 // This drop guard will be invoked when predicate or `drop` of element panicked.
2523 // It shifts unchecked elements to cover holes and `set_len` to the correct length.
2524 // In cases when predicate and `drop` never panick, it will be optimized out.
2525 struct PanicGuard<'a, T, A: Allocator> {
2526 v: &'a mut Vec<T, A>,
2527 read: usize,
2528 write: usize,
2529 original_len: usize,
2530 }
2531
2532 impl<T, A: Allocator> Drop for PanicGuard<'_, T, A> {
2533 #[cold]
2534 fn drop(&mut self) {
2535 let remaining = self.original_len - self.read;
2536 // SAFETY: Trailing unchecked items must be valid since we never touch them.
2537 unsafe {
2538 ptr::copy(
2539 self.v.as_ptr().add(self.read),
2540 self.v.as_mut_ptr().add(self.write),
2541 remaining,
2542 );
2543 }
2544 // SAFETY: After filling holes, all items are in contiguous memory.
2545 unsafe {
2546 self.v.set_len(self.write + remaining);
2547 }
2548 }
2549 }
2550
2551 let mut read = 0;
2552 loop {
2553 // SAFETY: read < original_len
2554 let cur = unsafe { self.get_unchecked_mut(read) };
2555 if hint::unlikely(!f(cur)) {
2556 break;
2557 }
2558 read += 1;
2559 if read == original_len {
2560 // All elements are kept, return early.
2561 return;
2562 }
2563 }
2564
2565 // Critical section starts here and at least one element is going to be removed.
2566 // Advance `g.read` early to avoid double drop if `drop_in_place` panicked.
2567 let mut g = PanicGuard { v: self, read: read + 1, write: read, original_len };
2568 // SAFETY: previous `read` is always less than original_len.
2569 unsafe { ptr::drop_in_place(&mut *g.v.as_mut_ptr().add(read)) };
2570
2571 while g.read < g.original_len {
2572 // SAFETY: `read` is always less than original_len.
2573 let cur = unsafe { &mut *g.v.as_mut_ptr().add(g.read) };
2574 if !f(cur) {
2575 // Advance `read` early to avoid double drop if `drop_in_place` panicked.
2576 g.read += 1;
2577 // SAFETY: We never touch this element again after dropped.
2578 unsafe { ptr::drop_in_place(cur) };
2579 } else {
2580 // SAFETY: `read` > `write`, so the slots don't overlap.
2581 // We use copy for move, and never touch the source element again.
2582 unsafe {
2583 let hole = g.v.as_mut_ptr().add(g.write);
2584 ptr::copy_nonoverlapping(cur, hole, 1);
2585 }
2586 g.write += 1;
2587 g.read += 1;
2588 }
2589 }
2590
2591 // We are leaving the critical section and no panic happened,
2592 // Commit the length change and forget the guard.
2593 // SAFETY: `write` is always less than or equal to original_len.
2594 unsafe { g.v.set_len(g.write) };
2595 mem::forget(g);
2596 }
2597
2598 /// Removes all but the first of consecutive elements in the vector that resolve to the same
2599 /// key.
2600 ///
2601 /// If the vector is sorted, this removes all duplicates.
2602 ///
2603 /// # Examples
2604 ///
2605 /// ```
2606 /// let mut vec = vec![10, 20, 21, 30, 20];
2607 ///
2608 /// vec.dedup_by_key(|i| *i / 10);
2609 ///
2610 /// assert_eq!(vec, [10, 20, 30, 20]);
2611 /// ```
2612 #[stable(feature = "dedup_by", since = "1.16.0")]
2613 #[inline]
2614 pub fn dedup_by_key<F, K>(&mut self, mut key: F)
2615 where
2616 F: FnMut(&mut T) -> K,
2617 K: PartialEq,
2618 {
2619 self.dedup_by(|a, b| key(a) == key(b))
2620 }
2621
2622 /// Removes all but the first of consecutive elements in the vector satisfying a given equality
2623 /// relation.
2624 ///
2625 /// The `same_bucket` function is passed references to two elements from the vector and
2626 /// must determine if the elements compare equal. The elements are passed in opposite order
2627 /// from their order in the slice, so if `same_bucket(a, b)` returns `true`, `a` is removed.
2628 ///
2629 /// If the vector is sorted, this removes all duplicates.
2630 ///
2631 /// # Examples
2632 ///
2633 /// ```
2634 /// let mut vec = vec!["foo", "bar", "Bar", "baz", "bar"];
2635 ///
2636 /// vec.dedup_by(|a, b| a.eq_ignore_ascii_case(b));
2637 ///
2638 /// assert_eq!(vec, ["foo", "bar", "baz", "bar"]);
2639 /// ```
2640 #[stable(feature = "dedup_by", since = "1.16.0")]
2641 pub fn dedup_by<F>(&mut self, mut same_bucket: F)
2642 where
2643 F: FnMut(&mut T, &mut T) -> bool,
2644 {
2645 let len = self.len();
2646 if len <= 1 {
2647 return;
2648 }
2649
2650 // Check if we ever want to remove anything.
2651 // This allows to use copy_non_overlapping in next cycle.
2652 // And avoids any memory writes if we don't need to remove anything.
2653 let mut first_duplicate_idx: usize = 1;
2654 let start = self.as_mut_ptr();
2655 while first_duplicate_idx != len {
2656 let found_duplicate = unsafe {
2657 // SAFETY: first_duplicate always in range [1..len)
2658 // Note that we start iteration from 1 so we never overflow.
2659 let prev = start.add(first_duplicate_idx.wrapping_sub(1));
2660 let current = start.add(first_duplicate_idx);
2661 // We explicitly say in docs that references are reversed.
2662 same_bucket(&mut *current, &mut *prev)
2663 };
2664 if found_duplicate {
2665 break;
2666 }
2667 first_duplicate_idx += 1;
2668 }
2669 // Don't need to remove anything.
2670 // We cannot get bigger than len.
2671 if first_duplicate_idx == len {
2672 return;
2673 }
2674
2675 /* INVARIANT: vec.len() > read > write > write-1 >= 0 */
2676 struct FillGapOnDrop<'a, T, A: core::alloc::Allocator> {
2677 /* Offset of the element we want to check if it is duplicate */
2678 read: usize,
2679
2680 /* Offset of the place where we want to place the non-duplicate
2681 * when we find it. */
2682 write: usize,
2683
2684 /* The Vec that would need correction if `same_bucket` panicked */
2685 vec: &'a mut Vec<T, A>,
2686 }
2687
2688 impl<'a, T, A: core::alloc::Allocator> Drop for FillGapOnDrop<'a, T, A> {
2689 fn drop(&mut self) {
2690 /* This code gets executed when `same_bucket` panics */
2691
2692 /* SAFETY: invariant guarantees that `read - write`
2693 * and `len - read` never overflow and that the copy is always
2694 * in-bounds. */
2695 unsafe {
2696 let ptr = self.vec.as_mut_ptr();
2697 let len = self.vec.len();
2698
2699 /* How many items were left when `same_bucket` panicked.
2700 * Basically vec[read..].len() */
2701 let items_left = len.wrapping_sub(self.read);
2702
2703 /* Pointer to first item in vec[write..write+items_left] slice */
2704 let dropped_ptr = ptr.add(self.write);
2705 /* Pointer to first item in vec[read..] slice */
2706 let valid_ptr = ptr.add(self.read);
2707
2708 /* Copy `vec[read..]` to `vec[write..write+items_left]`.
2709 * The slices can overlap, so `copy_nonoverlapping` cannot be used */
2710 ptr::copy(valid_ptr, dropped_ptr, items_left);
2711
2712 /* How many items have been already dropped
2713 * Basically vec[read..write].len() */
2714 let dropped = self.read.wrapping_sub(self.write);
2715
2716 self.vec.set_len(len - dropped);
2717 }
2718 }
2719 }
2720
2721 /* Drop items while going through Vec, it should be more efficient than
2722 * doing slice partition_dedup + truncate */
2723
2724 // Construct gap first and then drop item to avoid memory corruption if `T::drop` panics.
2725 let mut gap =
2726 FillGapOnDrop { read: first_duplicate_idx + 1, write: first_duplicate_idx, vec: self };
2727 unsafe {
2728 // SAFETY: we checked that first_duplicate_idx in bounds before.
2729 // If drop panics, `gap` would remove this item without drop.
2730 ptr::drop_in_place(start.add(first_duplicate_idx));
2731 }
2732
2733 /* SAFETY: Because of the invariant, read_ptr, prev_ptr and write_ptr
2734 * are always in-bounds and read_ptr never aliases prev_ptr */
2735 unsafe {
2736 while gap.read < len {
2737 let read_ptr = start.add(gap.read);
2738 let prev_ptr = start.add(gap.write.wrapping_sub(1));
2739
2740 // We explicitly say in docs that references are reversed.
2741 let found_duplicate = same_bucket(&mut *read_ptr, &mut *prev_ptr);
2742 if found_duplicate {
2743 // Increase `gap.read` now since the drop may panic.
2744 gap.read += 1;
2745 /* We have found duplicate, drop it in-place */
2746 ptr::drop_in_place(read_ptr);
2747 } else {
2748 let write_ptr = start.add(gap.write);
2749
2750 /* read_ptr cannot be equal to write_ptr because at this point
2751 * we guaranteed to skip at least one element (before loop starts).
2752 */
2753 ptr::copy_nonoverlapping(read_ptr, write_ptr, 1);
2754
2755 /* We have filled that place, so go further */
2756 gap.write += 1;
2757 gap.read += 1;
2758 }
2759 }
2760
2761 /* Technically we could let `gap` clean up with its Drop, but
2762 * when `same_bucket` is guaranteed to not panic, this bloats a little
2763 * the codegen, so we just do it manually */
2764 gap.vec.set_len(gap.write);
2765 mem::forget(gap);
2766 }
2767 }
2768
2769 /// Appends an element and returns a reference to it if there is sufficient spare capacity,
2770 /// otherwise an error is returned with the element.
2771 ///
2772 /// Unlike [`push`] this method will not reallocate when there's insufficient capacity.
2773 /// The caller should use [`reserve`] or [`try_reserve`] to ensure that there is enough capacity.
2774 ///
2775 /// [`push`]: Vec::push
2776 /// [`reserve`]: Vec::reserve
2777 /// [`try_reserve`]: Vec::try_reserve
2778 ///
2779 /// # Examples
2780 ///
2781 /// A manual, panic-free alternative to [`FromIterator`]:
2782 ///
2783 /// ```
2784 /// #![feature(vec_push_within_capacity)]
2785 ///
2786 /// use std::collections::TryReserveError;
2787 /// fn from_iter_fallible<T>(iter: impl Iterator<Item=T>) -> Result<Vec<T>, TryReserveError> {
2788 /// let mut vec = Vec::new();
2789 /// for value in iter {
2790 /// if let Err(value) = vec.push_within_capacity(value) {
2791 /// vec.try_reserve(1)?;
2792 /// // this cannot fail, the previous line either returned or added at least 1 free slot
2793 /// let _ = vec.push_within_capacity(value);
2794 /// }
2795 /// }
2796 /// Ok(vec)
2797 /// }
2798 /// assert_eq!(from_iter_fallible(0..100), Ok(Vec::from_iter(0..100)));
2799 /// ```
2800 ///
2801 /// # Time complexity
2802 ///
2803 /// Takes *O*(1) time.
2804 #[inline]
2805 #[unstable(feature = "vec_push_within_capacity", issue = "100486")]
2806 pub fn push_within_capacity(&mut self, value: T) -> Result<&mut T, T> {
2807 if self.len == self.buf.capacity() {
2808 return Err(value);
2809 }
2810
2811 unsafe {
2812 let end = self.as_mut_ptr().add(self.len);
2813 ptr::write(end, value);
2814 self.len += 1;
2815
2816 // SAFETY: We just wrote a value to the pointer that will live the lifetime of the reference.
2817 Ok(&mut *end)
2818 }
2819 }
2820
2821 /// Removes the last element from a vector and returns it, or [`None`] if it
2822 /// is empty.
2823 ///
2824 /// If you'd like to pop the first element, consider using
2825 /// [`VecDeque::pop_front`] instead.
2826 ///
2827 /// [`VecDeque::pop_front`]: crate::collections::VecDeque::pop_front
2828 ///
2829 /// # Examples
2830 ///
2831 /// ```
2832 /// let mut vec = vec![1, 2, 3];
2833 /// assert_eq!(vec.pop(), Some(3));
2834 /// assert_eq!(vec, [1, 2]);
2835 /// ```
2836 ///
2837 /// # Time complexity
2838 ///
2839 /// Takes *O*(1) time.
2840 #[inline]
2841 #[stable(feature = "rust1", since = "1.0.0")]
2842 #[rustc_diagnostic_item = "vec_pop"]
2843 pub fn pop(&mut self) -> Option<T> {
2844 if self.len == 0 {
2845 None
2846 } else {
2847 unsafe {
2848 self.len -= 1;
2849 core::hint::assert_unchecked(self.len < self.capacity());
2850 Some(ptr::read(self.as_ptr().add(self.len())))
2851 }
2852 }
2853 }
2854
2855 /// Removes and returns the last element from a vector if the predicate
2856 /// returns `true`, or [`None`] if the predicate returns false or the vector
2857 /// is empty (the predicate will not be called in that case).
2858 ///
2859 /// # Examples
2860 ///
2861 /// ```
2862 /// let mut vec = vec![1, 2, 3, 4];
2863 /// let pred = |x: &mut i32| *x % 2 == 0;
2864 ///
2865 /// assert_eq!(vec.pop_if(pred), Some(4));
2866 /// assert_eq!(vec, [1, 2, 3]);
2867 /// assert_eq!(vec.pop_if(pred), None);
2868 /// ```
2869 #[stable(feature = "vec_pop_if", since = "1.86.0")]
2870 pub fn pop_if(&mut self, predicate: impl FnOnce(&mut T) -> bool) -> Option<T> {
2871 let last = self.last_mut()?;
2872 if predicate(last) { self.pop() } else { None }
2873 }
2874
2875 /// Returns a mutable reference to the last item in the vector, or
2876 /// `None` if it is empty.
2877 ///
2878 /// # Examples
2879 ///
2880 /// Basic usage:
2881 ///
2882 /// ```
2883 /// #![feature(vec_peek_mut)]
2884 /// let mut vec = Vec::new();
2885 /// assert!(vec.peek_mut().is_none());
2886 ///
2887 /// vec.push(1);
2888 /// vec.push(5);
2889 /// vec.push(2);
2890 /// assert_eq!(vec.last(), Some(&2));
2891 /// if let Some(mut val) = vec.peek_mut() {
2892 /// *val = 0;
2893 /// }
2894 /// assert_eq!(vec.last(), Some(&0));
2895 /// ```
2896 #[inline]
2897 #[unstable(feature = "vec_peek_mut", issue = "122742")]
2898 pub fn peek_mut(&mut self) -> Option<PeekMut<'_, T, A>> {
2899 PeekMut::new(self)
2900 }
2901
2902 /// Moves all the elements of `other` into `self`, leaving `other` empty.
2903 ///
2904 /// # Panics
2905 ///
2906 /// Panics if the new capacity exceeds `isize::MAX` _bytes_.
2907 ///
2908 /// # Examples
2909 ///
2910 /// ```
2911 /// let mut vec = vec![1, 2, 3];
2912 /// let mut vec2 = vec![4, 5, 6];
2913 /// vec.append(&mut vec2);
2914 /// assert_eq!(vec, [1, 2, 3, 4, 5, 6]);
2915 /// assert_eq!(vec2, []);
2916 /// ```
2917 #[cfg(not(no_global_oom_handling))]
2918 #[inline]
2919 #[stable(feature = "append", since = "1.4.0")]
2920 pub fn append(&mut self, other: &mut Self) {
2921 unsafe {
2922 self.append_elements(other.as_slice() as _);
2923 other.set_len(0);
2924 }
2925 }
2926
2927 /// Appends elements to `self` from other buffer.
2928 #[cfg(not(no_global_oom_handling))]
2929 #[inline]
2930 unsafe fn append_elements(&mut self, other: *const [T]) {
2931 let count = other.len();
2932 self.reserve(count);
2933 let len = self.len();
2934 if count > 0 {
2935 unsafe {
2936 ptr::copy_nonoverlapping(other as *const T, self.as_mut_ptr().add(len), count)
2937 };
2938 }
2939 self.len += count;
2940 }
2941
2942 /// Removes the subslice indicated by the given range from the vector,
2943 /// returning a double-ended iterator over the removed subslice.
2944 ///
2945 /// If the iterator is dropped before being fully consumed,
2946 /// it drops the remaining removed elements.
2947 ///
2948 /// The returned iterator keeps a mutable borrow on the vector to optimize
2949 /// its implementation.
2950 ///
2951 /// # Panics
2952 ///
2953 /// Panics if the range has `start_bound > end_bound`, or, if the range is
2954 /// bounded on either end and past the length of the vector.
2955 ///
2956 /// # Leaking
2957 ///
2958 /// If the returned iterator goes out of scope without being dropped (due to
2959 /// [`mem::forget`], for example), the vector may have lost and leaked
2960 /// elements arbitrarily, including elements outside the range.
2961 ///
2962 /// # Examples
2963 ///
2964 /// ```
2965 /// let mut v = vec![1, 2, 3];
2966 /// let u: Vec<_> = v.drain(1..).collect();
2967 /// assert_eq!(v, &[1]);
2968 /// assert_eq!(u, &[2, 3]);
2969 ///
2970 /// // A full range clears the vector, like `clear()` does
2971 /// v.drain(..);
2972 /// assert_eq!(v, &[]);
2973 /// ```
2974 #[stable(feature = "drain", since = "1.6.0")]
2975 pub fn drain<R>(&mut self, range: R) -> Drain<'_, T, A>
2976 where
2977 R: RangeBounds<usize>,
2978 {
2979 // Memory safety
2980 //
2981 // When the Drain is first created, it shortens the length of
2982 // the source vector to make sure no uninitialized or moved-from elements
2983 // are accessible at all if the Drain's destructor never gets to run.
2984 //
2985 // Drain will ptr::read out the values to remove.
2986 // When finished, remaining tail of the vec is copied back to cover
2987 // the hole, and the vector length is restored to the new length.
2988 //
2989 let len = self.len();
2990 let Range { start, end } = slice::range(range, ..len);
2991
2992 unsafe {
2993 // set self.vec length's to start, to be safe in case Drain is leaked
2994 self.set_len(start);
2995 let range_slice = slice::from_raw_parts(self.as_ptr().add(start), end - start);
2996 Drain {
2997 tail_start: end,
2998 tail_len: len - end,
2999 iter: range_slice.iter(),
3000 vec: NonNull::from(self),
3001 }
3002 }
3003 }
3004
3005 /// Clears the vector, removing all values.
3006 ///
3007 /// Note that this method has no effect on the allocated capacity
3008 /// of the vector.
3009 ///
3010 /// # Examples
3011 ///
3012 /// ```
3013 /// let mut v = vec![1, 2, 3];
3014 ///
3015 /// v.clear();
3016 ///
3017 /// assert!(v.is_empty());
3018 /// ```
3019 #[inline]
3020 #[stable(feature = "rust1", since = "1.0.0")]
3021 pub fn clear(&mut self) {
3022 // Though this is equivalent to `truncate(0)`, the manual version
3023 // optimizes better, justifying the additional complexity
3024 // (see #96002 and #154095 for context).
3025
3026 let elems: *mut [T] = self.as_mut_slice();
3027
3028 // SAFETY:
3029 // - `elems` comes directly from `as_mut_slice` and is therefore valid.
3030 // - Setting `self.len` before calling `drop_in_place` means that,
3031 // if an element's `Drop` impl panics, the vector's `Drop` impl will
3032 // do nothing (leaking the rest of the elements) instead of dropping
3033 // some twice.
3034 unsafe {
3035 self.len = 0;
3036 ptr::drop_in_place(elems);
3037 }
3038 }
3039
3040 /// Returns the number of elements in the vector, also referred to
3041 /// as its 'length'.
3042 ///
3043 /// # Examples
3044 ///
3045 /// ```
3046 /// let a = vec![1, 2, 3];
3047 /// assert_eq!(a.len(), 3);
3048 /// ```
3049 #[inline]
3050 #[stable(feature = "rust1", since = "1.0.0")]
3051 #[rustc_const_stable(feature = "const_vec_string_slice", since = "1.87.0")]
3052 #[rustc_confusables("length", "size")]
3053 pub const fn len(&self) -> usize {
3054 let len = self.len;
3055
3056 // SAFETY: The maximum capacity of `Vec<T>` is `isize::MAX` bytes, so the maximum value can
3057 // be returned is `usize::checked_div(size_of::<T>()).unwrap_or(usize::MAX)`, which
3058 // matches the definition of `T::MAX_SLICE_LEN`.
3059 unsafe { intrinsics::assume(len <= T::MAX_SLICE_LEN) };
3060
3061 len
3062 }
3063
3064 /// Returns `true` if the vector contains no elements.
3065 ///
3066 /// # Examples
3067 ///
3068 /// ```
3069 /// let mut v = Vec::new();
3070 /// assert!(v.is_empty());
3071 ///
3072 /// v.push(1);
3073 /// assert!(!v.is_empty());
3074 /// ```
3075 #[stable(feature = "rust1", since = "1.0.0")]
3076 #[rustc_diagnostic_item = "vec_is_empty"]
3077 #[rustc_const_stable(feature = "const_vec_string_slice", since = "1.87.0")]
3078 pub const fn is_empty(&self) -> bool {
3079 self.len() == 0
3080 }
3081
3082 /// Splits the collection into two at the given index.
3083 ///
3084 /// Returns a newly allocated vector containing the elements in the range
3085 /// `[at, len)`. After the call, the original vector will be left containing
3086 /// the elements `[0, at)` with its previous capacity unchanged.
3087 ///
3088 /// - If you want to take ownership of the entire contents and capacity of
3089 /// the vector, see [`mem::take`] or [`mem::replace`].
3090 /// - If you don't need the returned vector at all, see [`Vec::truncate`].
3091 /// - If you want to take ownership of an arbitrary subslice, or you don't
3092 /// necessarily want to store the removed items in a vector, see [`Vec::drain`].
3093 ///
3094 /// # Panics
3095 ///
3096 /// Panics if `at > len`.
3097 ///
3098 /// # Examples
3099 ///
3100 /// ```
3101 /// let mut vec = vec!['a', 'b', 'c'];
3102 /// let vec2 = vec.split_off(1);
3103 /// assert_eq!(vec, ['a']);
3104 /// assert_eq!(vec2, ['b', 'c']);
3105 /// ```
3106 #[cfg(not(no_global_oom_handling))]
3107 #[inline]
3108 #[must_use = "use `.truncate()` if you don't need the other half"]
3109 #[stable(feature = "split_off", since = "1.4.0")]
3110 #[track_caller]
3111 pub fn split_off(&mut self, at: usize) -> Self
3112 where
3113 A: Clone,
3114 {
3115 #[cold]
3116 #[cfg_attr(not(panic = "immediate-abort"), inline(never))]
3117 #[track_caller]
3118 #[optimize(size)]
3119 fn assert_failed(at: usize, len: usize) -> ! {
3120 panic!("`at` split index (is {at}) should be <= len (is {len})");
3121 }
3122
3123 if at > self.len() {
3124 assert_failed(at, self.len());
3125 }
3126
3127 let other_len = self.len - at;
3128 let mut other = Vec::with_capacity_in(other_len, self.allocator().clone());
3129
3130 // Unsafely `set_len` and copy items to `other`.
3131 unsafe {
3132 self.set_len(at);
3133 other.set_len(other_len);
3134
3135 ptr::copy_nonoverlapping(self.as_ptr().add(at), other.as_mut_ptr(), other.len());
3136 }
3137 other
3138 }
3139
3140 /// Resizes the `Vec` in-place so that `len` is equal to `new_len`.
3141 ///
3142 /// If `new_len` is greater than `len`, the `Vec` is extended by the
3143 /// difference, with each additional slot filled with the result of
3144 /// calling the closure `f`. The return values from `f` will end up
3145 /// in the `Vec` in the order they have been generated.
3146 ///
3147 /// If `new_len` is less than `len`, the `Vec` is simply truncated.
3148 ///
3149 /// This method uses a closure to create new values on every push. If
3150 /// you'd rather [`Clone`] a given value, use [`Vec::resize`]. If you
3151 /// want to use the [`Default`] trait to generate values, you can
3152 /// pass [`Default::default`] as the second argument.
3153 ///
3154 /// # Panics
3155 ///
3156 /// Panics if the new capacity exceeds `isize::MAX` _bytes_.
3157 ///
3158 /// # Examples
3159 ///
3160 /// ```
3161 /// let mut vec = vec![1, 2, 3];
3162 /// vec.resize_with(5, Default::default);
3163 /// assert_eq!(vec, [1, 2, 3, 0, 0]);
3164 ///
3165 /// let mut vec = vec![];
3166 /// let mut p = 1;
3167 /// vec.resize_with(4, || { p *= 2; p });
3168 /// assert_eq!(vec, [2, 4, 8, 16]);
3169 /// ```
3170 #[cfg(not(no_global_oom_handling))]
3171 #[stable(feature = "vec_resize_with", since = "1.33.0")]
3172 pub fn resize_with<F>(&mut self, new_len: usize, f: F)
3173 where
3174 F: FnMut() -> T,
3175 {
3176 let len = self.len();
3177 if new_len > len {
3178 self.extend_trusted(iter::repeat_with(f).take(new_len - len));
3179 } else {
3180 self.truncate(new_len);
3181 }
3182 }
3183
3184 /// Consumes and leaks the `Vec`, returning a mutable reference to the contents,
3185 /// `&'a mut [T]`.
3186 ///
3187 /// Note that the type `T` must outlive the chosen lifetime `'a`. If the type
3188 /// has only static references, or none at all, then this may be chosen to be
3189 /// `'static`.
3190 ///
3191 /// As of Rust 1.57, this method does not reallocate or shrink the `Vec`,
3192 /// so the leaked allocation may include unused capacity that is not part
3193 /// of the returned slice.
3194 ///
3195 /// This function is mainly useful for data that lives for the remainder of
3196 /// the program's life. Dropping the returned reference will cause a memory
3197 /// leak.
3198 ///
3199 /// # Examples
3200 ///
3201 /// Simple usage:
3202 ///
3203 /// ```
3204 /// let x = vec![1, 2, 3];
3205 /// let static_ref: &'static mut [usize] = x.leak();
3206 /// static_ref[0] += 1;
3207 /// assert_eq!(static_ref, &[2, 2, 3]);
3208 /// # // FIXME(https://github.com/rust-lang/miri/issues/3670):
3209 /// # // use -Zmiri-disable-leak-check instead of unleaking in tests meant to leak.
3210 /// # drop(unsafe { Box::from_raw(static_ref) });
3211 /// ```
3212 #[stable(feature = "vec_leak", since = "1.47.0")]
3213 #[inline]
3214 pub fn leak<'a>(self) -> &'a mut [T]
3215 where
3216 A: 'a,
3217 {
3218 let mut me = ManuallyDrop::new(self);
3219 unsafe { slice::from_raw_parts_mut(me.as_mut_ptr(), me.len) }
3220 }
3221
3222 /// Returns the remaining spare capacity of the vector as a slice of
3223 /// `MaybeUninit<T>`.
3224 ///
3225 /// The returned slice can be used to fill the vector with data (e.g. by
3226 /// reading from a file) before marking the data as initialized using the
3227 /// [`set_len`] method.
3228 ///
3229 /// [`set_len`]: Vec::set_len
3230 ///
3231 /// # Examples
3232 ///
3233 /// ```
3234 /// // Allocate vector big enough for 10 elements.
3235 /// let mut v = Vec::with_capacity(10);
3236 ///
3237 /// // Fill in the first 3 elements.
3238 /// let uninit = v.spare_capacity_mut();
3239 /// uninit[0].write(0);
3240 /// uninit[1].write(1);
3241 /// uninit[2].write(2);
3242 ///
3243 /// // Mark the first 3 elements of the vector as being initialized.
3244 /// unsafe {
3245 /// v.set_len(3);
3246 /// }
3247 ///
3248 /// assert_eq!(&v, &[0, 1, 2]);
3249 /// ```
3250 #[stable(feature = "vec_spare_capacity", since = "1.60.0")]
3251 #[inline]
3252 pub fn spare_capacity_mut(&mut self) -> &mut [MaybeUninit<T>] {
3253 // Note:
3254 // This method is not implemented in terms of `split_at_spare_mut`,
3255 // to prevent invalidation of pointers to the buffer.
3256 unsafe {
3257 slice::from_raw_parts_mut(
3258 self.as_mut_ptr().add(self.len) as *mut MaybeUninit<T>,
3259 self.buf.capacity() - self.len,
3260 )
3261 }
3262 }
3263
3264 /// Returns vector content as a slice of `T`, along with the remaining spare
3265 /// capacity of the vector as a slice of `MaybeUninit<T>`.
3266 ///
3267 /// The returned spare capacity slice can be used to fill the vector with data
3268 /// (e.g. by reading from a file) before marking the data as initialized using
3269 /// the [`set_len`] method.
3270 ///
3271 /// [`set_len`]: Vec::set_len
3272 ///
3273 /// Note that this is a low-level API, which should be used with care for
3274 /// optimization purposes. If you need to append data to a `Vec`
3275 /// you can use [`push`], [`extend`], [`extend_from_slice`],
3276 /// [`extend_from_within`], [`insert`], [`append`], [`resize`] or
3277 /// [`resize_with`], depending on your exact needs.
3278 ///
3279 /// [`push`]: Vec::push
3280 /// [`extend`]: Vec::extend
3281 /// [`extend_from_slice`]: Vec::extend_from_slice
3282 /// [`extend_from_within`]: Vec::extend_from_within
3283 /// [`insert`]: Vec::insert
3284 /// [`append`]: Vec::append
3285 /// [`resize`]: Vec::resize
3286 /// [`resize_with`]: Vec::resize_with
3287 ///
3288 /// # Examples
3289 ///
3290 /// ```
3291 /// #![feature(vec_split_at_spare)]
3292 ///
3293 /// let mut v = vec![1, 1, 2];
3294 ///
3295 /// // Reserve additional space big enough for 10 elements.
3296 /// v.reserve(10);
3297 ///
3298 /// let (init, uninit) = v.split_at_spare_mut();
3299 /// let sum = init.iter().copied().sum::<u32>();
3300 ///
3301 /// // Fill in the next 4 elements.
3302 /// uninit[0].write(sum);
3303 /// uninit[1].write(sum * 2);
3304 /// uninit[2].write(sum * 3);
3305 /// uninit[3].write(sum * 4);
3306 ///
3307 /// // Mark the 4 elements of the vector as being initialized.
3308 /// unsafe {
3309 /// let len = v.len();
3310 /// v.set_len(len + 4);
3311 /// }
3312 ///
3313 /// assert_eq!(&v, &[1, 1, 2, 4, 8, 12, 16]);
3314 /// ```
3315 #[unstable(feature = "vec_split_at_spare", issue = "81944")]
3316 #[inline]
3317 pub fn split_at_spare_mut(&mut self) -> (&mut [T], &mut [MaybeUninit<T>]) {
3318 // SAFETY:
3319 // - len is ignored and so never changed
3320 let (init, spare, _) = unsafe { self.split_at_spare_mut_with_len() };
3321 (init, spare)
3322 }
3323
3324 /// Safety: changing returned .2 (&mut usize) is considered the same as calling `.set_len(_)`.
3325 ///
3326 /// This method provides unique access to all vec parts at once in `extend_from_within`.
3327 unsafe fn split_at_spare_mut_with_len(
3328 &mut self,
3329 ) -> (&mut [T], &mut [MaybeUninit<T>], &mut usize) {
3330 let ptr = self.as_mut_ptr();
3331 // SAFETY:
3332 // - `ptr` is guaranteed to be valid for `self.len` elements
3333 // - but the allocation extends out to `self.buf.capacity()` elements, possibly
3334 // uninitialized
3335 let spare_ptr = unsafe { ptr.add(self.len) };
3336 let spare_ptr = spare_ptr.cast_uninit();
3337 let spare_len = self.buf.capacity() - self.len;
3338
3339 // SAFETY:
3340 // - `ptr` is guaranteed to be valid for `self.len` elements
3341 // - `spare_ptr` is pointing one element past the buffer, so it doesn't overlap with `initialized`
3342 unsafe {
3343 let initialized = slice::from_raw_parts_mut(ptr, self.len);
3344 let spare = slice::from_raw_parts_mut(spare_ptr, spare_len);
3345
3346 (initialized, spare, &mut self.len)
3347 }
3348 }
3349
3350 /// Groups every `N` elements in the `Vec<T>` into chunks to produce a `Vec<[T; N]>`, dropping
3351 /// elements in the remainder. `N` must be greater than zero.
3352 ///
3353 /// If the capacity is not a multiple of the chunk size, the buffer will shrink down to the
3354 /// nearest multiple with a reallocation or deallocation.
3355 ///
3356 /// This function can be used to reverse [`Vec::into_flattened`].
3357 ///
3358 /// # Examples
3359 ///
3360 /// ```
3361 /// #![feature(vec_into_chunks)]
3362 ///
3363 /// let vec = vec![0, 1, 2, 3, 4, 5, 6, 7];
3364 /// assert_eq!(vec.into_chunks::<3>(), [[0, 1, 2], [3, 4, 5]]);
3365 ///
3366 /// let vec = vec![0, 1, 2, 3];
3367 /// let chunks: Vec<[u8; 10]> = vec.into_chunks();
3368 /// assert!(chunks.is_empty());
3369 ///
3370 /// let flat = vec![0; 8 * 8 * 8];
3371 /// let reshaped: Vec<[[[u8; 8]; 8]; 8]> = flat.into_chunks().into_chunks().into_chunks();
3372 /// assert_eq!(reshaped.len(), 1);
3373 /// ```
3374 #[cfg(not(no_global_oom_handling))]
3375 #[unstable(feature = "vec_into_chunks", issue = "142137")]
3376 pub fn into_chunks<const N: usize>(mut self) -> Vec<[T; N], A> {
3377 const {
3378 assert!(N != 0, "chunk size must be greater than zero");
3379 }
3380
3381 let (len, cap) = (self.len(), self.capacity());
3382
3383 let len_remainder = len % N;
3384 if len_remainder != 0 {
3385 self.truncate(len - len_remainder);
3386 }
3387
3388 let cap_remainder = cap % N;
3389 if !T::IS_ZST && cap_remainder != 0 {
3390 self.buf.shrink_to_fit(cap - cap_remainder);
3391 }
3392
3393 let (ptr, _, _, alloc) = self.into_raw_parts_with_alloc();
3394
3395 // SAFETY:
3396 // - `ptr` and `alloc` were just returned from `self.into_raw_parts_with_alloc()`
3397 // - `[T; N]` has the same alignment as `T`
3398 // - `size_of::<[T; N]>() * cap / N == size_of::<T>() * cap`
3399 // - `len / N <= cap / N` because `len <= cap`
3400 // - the allocated memory consists of `len / N` valid values of type `[T; N]`
3401 // - `cap / N` fits the size of the allocated memory after shrinking
3402 unsafe { Vec::from_raw_parts_in(ptr.cast(), len / N, cap / N, alloc) }
3403 }
3404
3405 /// This clears out this `Vec` and recycles the allocation into a new `Vec`.
3406 /// The item type of the resulting `Vec` needs to have the same size and
3407 /// alignment as the item type of the original `Vec`.
3408 ///
3409 /// # Examples
3410 ///
3411 /// ```
3412 /// #![feature(vec_recycle, transmutability)]
3413 /// let a: Vec<u8> = vec![0; 100];
3414 /// let capacity = a.capacity();
3415 /// let addr = a.as_ptr().addr();
3416 /// let b: Vec<i8> = a.recycle();
3417 /// assert_eq!(b.len(), 0);
3418 /// assert_eq!(b.capacity(), capacity);
3419 /// assert_eq!(b.as_ptr().addr(), addr);
3420 /// ```
3421 ///
3422 /// The `Recyclable` bound prevents this method from being called when `T` and `U` have different sizes; e.g.:
3423 ///
3424 /// ```compile_fail,E0277
3425 /// #![feature(vec_recycle, transmutability)]
3426 /// let vec: Vec<[u8; 2]> = Vec::new();
3427 /// let _: Vec<[u8; 1]> = vec.recycle();
3428 /// ```
3429 /// ...or different alignments:
3430 ///
3431 /// ```compile_fail,E0277
3432 /// #![feature(vec_recycle, transmutability)]
3433 /// let vec: Vec<[u16; 0]> = Vec::new();
3434 /// let _: Vec<[u8; 0]> = vec.recycle();
3435 /// ```
3436 ///
3437 /// However, due to temporary implementation limitations of `Recyclable`,
3438 /// this method is not yet callable when `T` or `U` are slices, trait objects,
3439 /// or other exotic types; e.g.:
3440 ///
3441 /// ```compile_fail,E0277
3442 /// #![feature(vec_recycle, transmutability)]
3443 /// # let inputs = ["a b c", "d e f"];
3444 /// # fn process(_: &[&str]) {}
3445 /// let mut storage: Vec<&[&str]> = Vec::new();
3446 ///
3447 /// for input in inputs {
3448 /// let mut buffer: Vec<&str> = storage.recycle();
3449 /// buffer.extend(input.split(" "));
3450 /// process(&buffer);
3451 /// storage = buffer.recycle();
3452 /// }
3453 /// ```
3454 #[unstable(feature = "vec_recycle", issue = "148227")]
3455 #[expect(private_bounds)]
3456 pub fn recycle<U>(mut self) -> Vec<U, A>
3457 where
3458 U: Recyclable<T>,
3459 {
3460 self.clear();
3461 const {
3462 // FIXME(const-hack, 146097): compare `Layout`s
3463 assert!(size_of::<T>() == size_of::<U>());
3464 assert!(align_of::<T>() == align_of::<U>());
3465 };
3466 let (ptr, length, capacity, alloc) = self.into_parts_with_alloc();
3467 debug_assert_eq!(length, 0);
3468 // SAFETY:
3469 // - `ptr` and `alloc` were just returned from `self.into_raw_parts_with_alloc()`
3470 // - `T` & `U` have the same layout, so `capacity` does not need to be changed and we can safely use `alloc.dealloc` later
3471 // - the original vector was cleared, so there is no problem with "transmuting" the stored values
3472 unsafe { Vec::from_parts_in(ptr.cast::<U>(), length, capacity, alloc) }
3473 }
3474}
3475
3476/// Denotes that an allocation of `From` can be recycled into an allocation of `Self`.
3477///
3478/// # Safety
3479///
3480/// `Self` is `Recyclable<From>` if `Layout::new::<Self>() == Layout::new::<From>()`.
3481unsafe trait Recyclable<From: Sized>: Sized {}
3482
3483#[unstable_feature_bound(transmutability)]
3484// SAFETY: enforced by `TransmuteFrom`
3485unsafe impl<From, To> Recyclable<From> for To
3486where
3487 for<'a> &'a MaybeUninit<To>: TransmuteFrom<&'a MaybeUninit<From>, { Assume::SAFETY }>,
3488 for<'a> &'a MaybeUninit<From>: TransmuteFrom<&'a MaybeUninit<To>, { Assume::SAFETY }>,
3489{
3490}
3491
3492impl<T: Clone, A: Allocator> Vec<T, A> {
3493 /// Resizes the `Vec` in-place so that `len` is equal to `new_len`.
3494 ///
3495 /// If `new_len` is greater than `len`, the `Vec` is extended by the
3496 /// difference, with each additional slot filled with `value`.
3497 /// If `new_len` is less than `len`, the `Vec` is simply truncated.
3498 ///
3499 /// This method requires `T` to implement [`Clone`],
3500 /// in order to be able to clone the passed value.
3501 /// If you need more flexibility (or want to rely on [`Default`] instead of
3502 /// [`Clone`]), use [`Vec::resize_with`].
3503 /// If you only need to resize to a smaller size, use [`Vec::truncate`].
3504 ///
3505 /// # Panics
3506 ///
3507 /// Panics if the new capacity exceeds `isize::MAX` _bytes_.
3508 ///
3509 /// # Examples
3510 ///
3511 /// ```
3512 /// let mut vec = vec!["hello"];
3513 /// vec.resize(3, "world");
3514 /// assert_eq!(vec, ["hello", "world", "world"]);
3515 ///
3516 /// let mut vec = vec!['a', 'b', 'c', 'd'];
3517 /// vec.resize(2, '_');
3518 /// assert_eq!(vec, ['a', 'b']);
3519 /// ```
3520 #[cfg(not(no_global_oom_handling))]
3521 #[stable(feature = "vec_resize", since = "1.5.0")]
3522 pub fn resize(&mut self, new_len: usize, value: T) {
3523 let len = self.len();
3524
3525 if new_len > len {
3526 self.extend_with(new_len - len, value)
3527 } else {
3528 self.truncate(new_len);
3529 }
3530 }
3531
3532 /// Clones and appends all elements in a slice to the `Vec`.
3533 ///
3534 /// Iterates over the slice `other`, clones each element, and then appends
3535 /// it to this `Vec`. The `other` slice is traversed in-order.
3536 ///
3537 /// Note that this function is the same as [`extend`],
3538 /// except that it also works with slice elements that are Clone but not Copy.
3539 /// If Rust gets specialization this function may be deprecated.
3540 ///
3541 /// # Panics
3542 ///
3543 /// Panics if the new capacity exceeds `isize::MAX` _bytes_.
3544 ///
3545 /// # Examples
3546 ///
3547 /// ```
3548 /// let mut vec = vec![1];
3549 /// vec.extend_from_slice(&[2, 3, 4]);
3550 /// assert_eq!(vec, [1, 2, 3, 4]);
3551 /// ```
3552 ///
3553 /// [`extend`]: Vec::extend
3554 #[cfg(not(no_global_oom_handling))]
3555 #[stable(feature = "vec_extend_from_slice", since = "1.6.0")]
3556 pub fn extend_from_slice(&mut self, other: &[T]) {
3557 self.spec_extend(other.iter())
3558 }
3559
3560 /// Given a range `src`, clones a slice of elements in that range and appends it to the end.
3561 ///
3562 /// `src` must be a range that can form a valid subslice of the `Vec`.
3563 ///
3564 /// # Panics
3565 ///
3566 /// Panics if starting index is greater than the end index, if the index is
3567 /// greater than the length of the vector, or if the new capacity exceeds
3568 /// `isize::MAX` _bytes_.
3569 ///
3570 /// # Examples
3571 ///
3572 /// ```
3573 /// let mut characters = vec!['a', 'b', 'c', 'd', 'e'];
3574 /// characters.extend_from_within(2..);
3575 /// assert_eq!(characters, ['a', 'b', 'c', 'd', 'e', 'c', 'd', 'e']);
3576 ///
3577 /// let mut numbers = vec![0, 1, 2, 3, 4];
3578 /// numbers.extend_from_within(..2);
3579 /// assert_eq!(numbers, [0, 1, 2, 3, 4, 0, 1]);
3580 ///
3581 /// let mut strings = vec![String::from("hello"), String::from("world"), String::from("!")];
3582 /// strings.extend_from_within(1..=2);
3583 /// assert_eq!(strings, ["hello", "world", "!", "world", "!"]);
3584 /// ```
3585 #[cfg(not(no_global_oom_handling))]
3586 #[stable(feature = "vec_extend_from_within", since = "1.53.0")]
3587 pub fn extend_from_within<R>(&mut self, src: R)
3588 where
3589 R: RangeBounds<usize>,
3590 {
3591 let range = slice::range(src, ..self.len());
3592 self.reserve(range.len());
3593
3594 // SAFETY:
3595 // - `slice::range` guarantees that the given range is valid for indexing self
3596 unsafe {
3597 self.spec_extend_from_within(range);
3598 }
3599 }
3600}
3601
3602impl<T, A: Allocator, const N: usize> Vec<[T; N], A> {
3603 /// Takes a `Vec<[T; N]>` and flattens it into a `Vec<T>`.
3604 ///
3605 /// # Panics
3606 ///
3607 /// Panics if the length of the resulting vector would overflow a `usize`.
3608 ///
3609 /// This is only possible when flattening a vector of arrays of zero-sized
3610 /// types, and thus tends to be irrelevant in practice. If
3611 /// `size_of::<T>() > 0`, this will never panic.
3612 ///
3613 /// # Examples
3614 ///
3615 /// ```
3616 /// let mut vec = vec![[1, 2, 3], [4, 5, 6], [7, 8, 9]];
3617 /// assert_eq!(vec.pop(), Some([7, 8, 9]));
3618 ///
3619 /// let mut flattened = vec.into_flattened();
3620 /// assert_eq!(flattened.pop(), Some(6));
3621 /// ```
3622 #[stable(feature = "slice_flatten", since = "1.80.0")]
3623 pub fn into_flattened(self) -> Vec<T, A> {
3624 let (ptr, len, cap, alloc) = self.into_raw_parts_with_alloc();
3625 let (new_len, new_cap) = if T::IS_ZST {
3626 (len.checked_mul(N).expect("vec len overflow"), usize::MAX)
3627 } else {
3628 // SAFETY:
3629 // - `cap * N` cannot overflow because the allocation is already in
3630 // the address space.
3631 // - Each `[T; N]` has `N` valid elements, so there are `len * N`
3632 // valid elements in the allocation.
3633 unsafe { (len.unchecked_mul(N), cap.unchecked_mul(N)) }
3634 };
3635 // SAFETY:
3636 // - `ptr` was allocated by `self`
3637 // - `ptr` is well-aligned because `[T; N]` has the same alignment as `T`.
3638 // - `new_cap` refers to the same sized allocation as `cap` because
3639 // `new_cap * size_of::<T>()` == `cap * size_of::<[T; N]>()`
3640 // - `len` <= `cap`, so `len * N` <= `cap * N`.
3641 unsafe { Vec::<T, A>::from_raw_parts_in(ptr.cast(), new_len, new_cap, alloc) }
3642 }
3643}
3644
3645impl<T: Clone, A: Allocator> Vec<T, A> {
3646 #[cfg(not(no_global_oom_handling))]
3647 /// Extend the vector by `n` clones of value.
3648 fn extend_with(&mut self, n: usize, value: T) {
3649 self.reserve(n);
3650
3651 unsafe {
3652 let mut ptr = self.as_mut_ptr().add(self.len());
3653 // Use SetLenOnDrop to work around bug where compiler
3654 // might not realize the store through `ptr` through self.set_len()
3655 // don't alias.
3656 let mut local_len = SetLenOnDrop::new(&mut self.len);
3657
3658 // Write all elements except the last one
3659 for _ in 1..n {
3660 ptr::write(ptr, value.clone());
3661 ptr = ptr.add(1);
3662 // Increment the length in every step in case clone() panics
3663 local_len.increment_len(1);
3664 }
3665
3666 if n > 0 {
3667 // We can write the last element directly without cloning needlessly
3668 ptr::write(ptr, value);
3669 local_len.increment_len(1);
3670 }
3671
3672 // len set by scope guard
3673 }
3674 }
3675}
3676
3677impl<T: PartialEq, A: Allocator> Vec<T, A> {
3678 /// Removes consecutive repeated elements in the vector according to the
3679 /// [`PartialEq`] trait implementation.
3680 ///
3681 /// If the vector is sorted, this removes all duplicates.
3682 ///
3683 /// # Examples
3684 ///
3685 /// ```
3686 /// let mut vec = vec![1, 2, 2, 3, 2];
3687 ///
3688 /// vec.dedup();
3689 ///
3690 /// assert_eq!(vec, [1, 2, 3, 2]);
3691 /// ```
3692 #[stable(feature = "rust1", since = "1.0.0")]
3693 #[inline]
3694 pub fn dedup(&mut self) {
3695 self.dedup_by(|a, b| a == b)
3696 }
3697}
3698
3699////////////////////////////////////////////////////////////////////////////////
3700// Internal methods and functions
3701////////////////////////////////////////////////////////////////////////////////
3702
3703#[doc(hidden)]
3704#[cfg(not(no_global_oom_handling))]
3705#[stable(feature = "rust1", since = "1.0.0")]
3706#[rustc_diagnostic_item = "vec_from_elem"]
3707pub fn from_elem<T: Clone>(elem: T, n: usize) -> Vec<T> {
3708 <T as SpecFromElem>::from_elem(elem, n, Global)
3709}
3710
3711#[doc(hidden)]
3712#[cfg(not(no_global_oom_handling))]
3713#[unstable(feature = "allocator_api", issue = "32838")]
3714pub fn from_elem_in<T: Clone, A: Allocator>(elem: T, n: usize, alloc: A) -> Vec<T, A> {
3715 <T as SpecFromElem>::from_elem(elem, n, alloc)
3716}
3717
3718#[cfg(not(no_global_oom_handling))]
3719trait ExtendFromWithinSpec {
3720 /// # Safety
3721 ///
3722 /// - `src` needs to be valid index
3723 /// - `self.capacity() - self.len()` must be `>= src.len()`
3724 unsafe fn spec_extend_from_within(&mut self, src: Range<usize>);
3725}
3726
3727#[cfg(not(no_global_oom_handling))]
3728impl<T: Clone, A: Allocator> ExtendFromWithinSpec for Vec<T, A> {
3729 default unsafe fn spec_extend_from_within(&mut self, src: Range<usize>) {
3730 // SAFETY:
3731 // - len is increased only after initializing elements
3732 let (this, spare, len) = unsafe { self.split_at_spare_mut_with_len() };
3733
3734 // SAFETY:
3735 // - caller guarantees that src is a valid index
3736 let to_clone = unsafe { this.get_unchecked(src) };
3737
3738 iter::zip(to_clone, spare)
3739 .map(|(src, dst)| dst.write(src.clone()))
3740 // Note:
3741 // - Element was just initialized with `MaybeUninit::write`, so it's ok to increase len
3742 // - len is increased after each element to prevent leaks (see issue #82533)
3743 .for_each(|_| *len += 1);
3744 }
3745}
3746
3747#[cfg(not(no_global_oom_handling))]
3748impl<T: TrivialClone, A: Allocator> ExtendFromWithinSpec for Vec<T, A> {
3749 unsafe fn spec_extend_from_within(&mut self, src: Range<usize>) {
3750 let count = src.len();
3751 {
3752 let (init, spare) = self.split_at_spare_mut();
3753
3754 // SAFETY:
3755 // - caller guarantees that `src` is a valid index
3756 let source = unsafe { init.get_unchecked(src) };
3757
3758 // SAFETY:
3759 // - Both pointers are created from unique slice references (`&mut [_]`)
3760 // so they are valid and do not overlap.
3761 // - Elements implement `TrivialClone` so this is equivalent to calling
3762 // `clone` on every one of them.
3763 // - `count` is equal to the len of `source`, so source is valid for
3764 // `count` reads
3765 // - `.reserve(count)` guarantees that `spare.len() >= count` so spare
3766 // is valid for `count` writes
3767 unsafe { ptr::copy_nonoverlapping(source.as_ptr(), spare.as_mut_ptr() as _, count) };
3768 }
3769
3770 // SAFETY:
3771 // - The elements were just initialized by `copy_nonoverlapping`
3772 self.len += count;
3773 }
3774}
3775
3776////////////////////////////////////////////////////////////////////////////////
3777// Common trait implementations for Vec
3778////////////////////////////////////////////////////////////////////////////////
3779
3780#[stable(feature = "rust1", since = "1.0.0")]
3781#[rustc_const_unstable(feature = "const_convert", issue = "143773")]
3782impl<T, A: Allocator> const ops::Deref for Vec<T, A> {
3783 type Target = [T];
3784
3785 #[inline]
3786 fn deref(&self) -> &[T] {
3787 self.as_slice()
3788 }
3789}
3790
3791#[stable(feature = "rust1", since = "1.0.0")]
3792#[rustc_const_unstable(feature = "const_convert", issue = "143773")]
3793impl<T, A: Allocator> const ops::DerefMut for Vec<T, A> {
3794 #[inline]
3795 fn deref_mut(&mut self) -> &mut [T] {
3796 self.as_mut_slice()
3797 }
3798}
3799
3800#[unstable(feature = "deref_pure_trait", issue = "87121")]
3801unsafe impl<T, A: Allocator> ops::DerefPure for Vec<T, A> {}
3802
3803#[cfg(not(no_global_oom_handling))]
3804#[stable(feature = "rust1", since = "1.0.0")]
3805impl<T: Clone, A: Allocator + Clone> Clone for Vec<T, A> {
3806 fn clone(&self) -> Self {
3807 let alloc = self.allocator().clone();
3808 <[T]>::to_vec_in(&**self, alloc)
3809 }
3810
3811 /// Overwrites the contents of `self` with a clone of the contents of `source`.
3812 ///
3813 /// This method is preferred over simply assigning `source.clone()` to `self`,
3814 /// as it avoids reallocation if possible. Additionally, if the element type
3815 /// `T` overrides `clone_from()`, this will reuse the resources of `self`'s
3816 /// elements as well.
3817 ///
3818 /// # Examples
3819 ///
3820 /// ```
3821 /// let x = vec![5, 6, 7];
3822 /// let mut y = vec![8, 9, 10];
3823 /// let yp: *const i32 = y.as_ptr();
3824 ///
3825 /// y.clone_from(&x);
3826 ///
3827 /// // The value is the same
3828 /// assert_eq!(x, y);
3829 ///
3830 /// // And no reallocation occurred
3831 /// assert_eq!(yp, y.as_ptr());
3832 /// ```
3833 fn clone_from(&mut self, source: &Self) {
3834 crate::slice::SpecCloneIntoVec::clone_into(source.as_slice(), self);
3835 }
3836}
3837
3838/// The hash of a vector is the same as that of the corresponding slice,
3839/// as required by the `core::borrow::Borrow` implementation.
3840///
3841/// ```
3842/// use std::hash::BuildHasher;
3843///
3844/// let b = std::hash::RandomState::new();
3845/// let v: Vec<u8> = vec![0xa8, 0x3c, 0x09];
3846/// let s: &[u8] = &[0xa8, 0x3c, 0x09];
3847/// assert_eq!(b.hash_one(v), b.hash_one(s));
3848/// ```
3849#[stable(feature = "rust1", since = "1.0.0")]
3850impl<T: Hash, A: Allocator> Hash for Vec<T, A> {
3851 #[inline]
3852 fn hash<H: Hasher>(&self, state: &mut H) {
3853 Hash::hash(&**self, state)
3854 }
3855}
3856
3857#[stable(feature = "rust1", since = "1.0.0")]
3858#[rustc_const_unstable(feature = "const_index", issue = "143775")]
3859impl<T, I: [const] SliceIndex<[T]>, A: Allocator> const Index<I> for Vec<T, A> {
3860 type Output = I::Output;
3861
3862 #[inline]
3863 fn index(&self, index: I) -> &Self::Output {
3864 Index::index(&**self, index)
3865 }
3866}
3867
3868#[stable(feature = "rust1", since = "1.0.0")]
3869#[rustc_const_unstable(feature = "const_index", issue = "143775")]
3870impl<T, I: [const] SliceIndex<[T]>, A: Allocator> const IndexMut<I> for Vec<T, A> {
3871 #[inline]
3872 fn index_mut(&mut self, index: I) -> &mut Self::Output {
3873 IndexMut::index_mut(&mut **self, index)
3874 }
3875}
3876
3877/// Collects an iterator into a Vec, commonly called via [`Iterator::collect()`]
3878///
3879/// # Allocation behavior
3880///
3881/// In general `Vec` does not guarantee any particular growth or allocation strategy.
3882/// That also applies to this trait impl.
3883///
3884/// **Note:** This section covers implementation details and is therefore exempt from
3885/// stability guarantees.
3886///
3887/// Vec may use any or none of the following strategies,
3888/// depending on the supplied iterator:
3889///
3890/// * preallocate based on [`Iterator::size_hint()`]
3891/// * and panic if the number of items is outside the provided lower/upper bounds
3892/// * use an amortized growth strategy similar to `pushing` one item at a time
3893/// * perform the iteration in-place on the original allocation backing the iterator
3894///
3895/// The last case warrants some attention. It is an optimization that in many cases reduces peak memory
3896/// consumption and improves cache locality. But when big, short-lived allocations are created,
3897/// only a small fraction of their items get collected, no further use is made of the spare capacity
3898/// and the resulting `Vec` is moved into a longer-lived structure, then this can lead to the large
3899/// allocations having their lifetimes unnecessarily extended which can result in increased memory
3900/// footprint.
3901///
3902/// In cases where this is an issue, the excess capacity can be discarded with [`Vec::shrink_to()`],
3903/// [`Vec::shrink_to_fit()`] or by collecting into [`Box<[T]>`][owned slice] instead, which additionally reduces
3904/// the size of the long-lived struct.
3905///
3906/// [owned slice]: Box
3907///
3908/// ```rust
3909/// # use std::sync::Mutex;
3910/// static LONG_LIVED: Mutex<Vec<Vec<u16>>> = Mutex::new(Vec::new());
3911///
3912/// for i in 0..10 {
3913/// let big_temporary: Vec<u16> = (0..1024).collect();
3914/// // discard most items
3915/// let mut result: Vec<_> = big_temporary.into_iter().filter(|i| i % 100 == 0).collect();
3916/// // without this a lot of unused capacity might be moved into the global
3917/// result.shrink_to_fit();
3918/// LONG_LIVED.lock().unwrap().push(result);
3919/// }
3920/// ```
3921#[cfg(not(no_global_oom_handling))]
3922#[stable(feature = "rust1", since = "1.0.0")]
3923impl<T> FromIterator<T> for Vec<T> {
3924 #[inline]
3925 fn from_iter<I: IntoIterator<Item = T>>(iter: I) -> Vec<T> {
3926 <Self as SpecFromIter<T, I::IntoIter>>::from_iter(iter.into_iter())
3927 }
3928}
3929
3930#[stable(feature = "rust1", since = "1.0.0")]
3931impl<T, A: Allocator> IntoIterator for Vec<T, A> {
3932 type Item = T;
3933 type IntoIter = IntoIter<T, A>;
3934
3935 /// Creates a consuming iterator, that is, one that moves each value out of
3936 /// the vector (from start to end). The vector cannot be used after calling
3937 /// this.
3938 ///
3939 /// # Examples
3940 ///
3941 /// ```
3942 /// let v = vec!["a".to_string(), "b".to_string()];
3943 /// let mut v_iter = v.into_iter();
3944 ///
3945 /// let first_element: Option<String> = v_iter.next();
3946 ///
3947 /// assert_eq!(first_element, Some("a".to_string()));
3948 /// assert_eq!(v_iter.next(), Some("b".to_string()));
3949 /// assert_eq!(v_iter.next(), None);
3950 /// ```
3951 #[inline]
3952 fn into_iter(self) -> Self::IntoIter {
3953 unsafe {
3954 let me = ManuallyDrop::new(self);
3955 let alloc = ManuallyDrop::new(ptr::read(me.allocator()));
3956 let buf = me.buf.non_null();
3957 let begin = buf.as_ptr();
3958 let end = if T::IS_ZST {
3959 begin.wrapping_byte_add(me.len())
3960 } else {
3961 begin.add(me.len()) as *const T
3962 };
3963 let cap = me.buf.capacity();
3964 IntoIter { buf, phantom: PhantomData, cap, alloc, ptr: buf, end }
3965 }
3966 }
3967}
3968
3969#[stable(feature = "rust1", since = "1.0.0")]
3970impl<'a, T, A: Allocator> IntoIterator for &'a Vec<T, A> {
3971 type Item = &'a T;
3972 type IntoIter = slice::Iter<'a, T>;
3973
3974 fn into_iter(self) -> Self::IntoIter {
3975 self.iter()
3976 }
3977}
3978
3979#[stable(feature = "rust1", since = "1.0.0")]
3980impl<'a, T, A: Allocator> IntoIterator for &'a mut Vec<T, A> {
3981 type Item = &'a mut T;
3982 type IntoIter = slice::IterMut<'a, T>;
3983
3984 fn into_iter(self) -> Self::IntoIter {
3985 self.iter_mut()
3986 }
3987}
3988
3989#[cfg(not(no_global_oom_handling))]
3990#[stable(feature = "rust1", since = "1.0.0")]
3991impl<T, A: Allocator> Extend<T> for Vec<T, A> {
3992 #[inline]
3993 fn extend<I: IntoIterator<Item = T>>(&mut self, iter: I) {
3994 <Self as SpecExtend<T, I::IntoIter>>::spec_extend(self, iter.into_iter())
3995 }
3996
3997 #[inline]
3998 fn extend_one(&mut self, item: T) {
3999 self.push(item);
4000 }
4001
4002 #[inline]
4003 fn extend_reserve(&mut self, additional: usize) {
4004 self.reserve(additional);
4005 }
4006
4007 #[inline]
4008 unsafe fn extend_one_unchecked(&mut self, item: T) {
4009 // SAFETY: Our preconditions ensure the space has been reserved, and `extend_reserve` is implemented correctly.
4010 unsafe {
4011 let len = self.len();
4012 ptr::write(self.as_mut_ptr().add(len), item);
4013 self.set_len(len + 1);
4014 }
4015 }
4016}
4017
4018impl<T, A: Allocator> Vec<T, A> {
4019 // leaf method to which various SpecFrom/SpecExtend implementations delegate when
4020 // they have no further optimizations to apply
4021 #[cfg(not(no_global_oom_handling))]
4022 fn extend_desugared<I: Iterator<Item = T>>(&mut self, mut iterator: I) {
4023 // This is the case for a general iterator.
4024 //
4025 // This function should be the moral equivalent of:
4026 //
4027 // for item in iterator {
4028 // self.push(item);
4029 // }
4030 while let Some(element) = iterator.next() {
4031 let len = self.len();
4032 if len == self.capacity() {
4033 let (lower, _) = iterator.size_hint();
4034 self.reserve(lower.saturating_add(1));
4035 }
4036 unsafe {
4037 ptr::write(self.as_mut_ptr().add(len), element);
4038 // Since next() executes user code which can panic we have to bump the length
4039 // after each step.
4040 // NB can't overflow since we would have had to alloc the address space
4041 self.set_len(len + 1);
4042 }
4043 }
4044 }
4045
4046 // specific extend for `TrustedLen` iterators, called both by the specializations
4047 // and internal places where resolving specialization makes compilation slower
4048 #[cfg(not(no_global_oom_handling))]
4049 fn extend_trusted(&mut self, iterator: impl iter::TrustedLen<Item = T>) {
4050 let (low, high) = iterator.size_hint();
4051 if let Some(additional) = high {
4052 debug_assert_eq!(
4053 low,
4054 additional,
4055 "TrustedLen iterator's size hint is not exact: {:?}",
4056 (low, high)
4057 );
4058 self.reserve(additional);
4059 unsafe {
4060 let ptr = self.as_mut_ptr();
4061 let mut local_len = SetLenOnDrop::new(&mut self.len);
4062 iterator.for_each(move |element| {
4063 ptr::write(ptr.add(local_len.current_len()), element);
4064 // Since the loop executes user code which can panic we have to update
4065 // the length every step to correctly drop what we've written.
4066 // NB can't overflow since we would have had to alloc the address space
4067 local_len.increment_len(1);
4068 });
4069 }
4070 } else {
4071 // Per TrustedLen contract a `None` upper bound means that the iterator length
4072 // truly exceeds usize::MAX, which would eventually lead to a capacity overflow anyway.
4073 // Since the other branch already panics eagerly (via `reserve()`) we do the same here.
4074 // This avoids additional codegen for a fallback code path which would eventually
4075 // panic anyway.
4076 panic!("capacity overflow");
4077 }
4078 }
4079
4080 /// Creates a splicing iterator that replaces the specified range in the vector
4081 /// with the given `replace_with` iterator and yields the removed items.
4082 /// `replace_with` does not need to be the same length as `range`.
4083 ///
4084 /// `range` is removed even if the `Splice` iterator is not consumed before it is dropped.
4085 ///
4086 /// It is unspecified how many elements are removed from the vector
4087 /// if the `Splice` value is leaked.
4088 ///
4089 /// The input iterator `replace_with` is only consumed when the `Splice` value is dropped.
4090 ///
4091 /// This is optimal if:
4092 ///
4093 /// * The tail (elements in the vector after `range`) is empty,
4094 /// * or `replace_with` yields fewer or equal elements than `range`'s length
4095 /// * or the lower bound of its `size_hint()` is exact.
4096 ///
4097 /// Otherwise, a temporary vector is allocated and the tail is moved twice.
4098 ///
4099 /// # Panics
4100 ///
4101 /// Panics if the range has `start_bound > end_bound`, or, if the range is
4102 /// bounded on either end and past the length of the vector.
4103 ///
4104 /// # Examples
4105 ///
4106 /// ```
4107 /// let mut v = vec![1, 2, 3, 4];
4108 /// let new = [7, 8, 9];
4109 /// let u: Vec<_> = v.splice(1..3, new).collect();
4110 /// assert_eq!(v, [1, 7, 8, 9, 4]);
4111 /// assert_eq!(u, [2, 3]);
4112 /// ```
4113 ///
4114 /// Using `splice` to insert new items into a vector efficiently at a specific position
4115 /// indicated by an empty range:
4116 ///
4117 /// ```
4118 /// let mut v = vec![1, 5];
4119 /// let new = [2, 3, 4];
4120 /// v.splice(1..1, new);
4121 /// assert_eq!(v, [1, 2, 3, 4, 5]);
4122 /// ```
4123 #[cfg(not(no_global_oom_handling))]
4124 #[inline]
4125 #[stable(feature = "vec_splice", since = "1.21.0")]
4126 pub fn splice<R, I>(&mut self, range: R, replace_with: I) -> Splice<'_, I::IntoIter, A>
4127 where
4128 R: RangeBounds<usize>,
4129 I: IntoIterator<Item = T>,
4130 {
4131 Splice { drain: self.drain(range), replace_with: replace_with.into_iter() }
4132 }
4133
4134 /// Creates an iterator which uses a closure to determine if an element in the range should be removed.
4135 ///
4136 /// If the closure returns `true`, the element is removed from the vector
4137 /// and yielded. If the closure returns `false`, or panics, the element
4138 /// remains in the vector and will not be yielded.
4139 ///
4140 /// Only elements that fall in the provided range are considered for extraction, but any elements
4141 /// after the range will still have to be moved if any element has been extracted.
4142 ///
4143 /// If the returned `ExtractIf` is not exhausted, e.g. because it is dropped without iterating
4144 /// or the iteration short-circuits, then the remaining elements will be retained.
4145 /// Use `extract_if().for_each(drop)` if you do not need the returned iterator,
4146 /// or [`retain_mut`] with a negated predicate if you also do not need to restrict the range.
4147 ///
4148 /// [`retain_mut`]: Vec::retain_mut
4149 ///
4150 /// Using this method is equivalent to the following code:
4151 ///
4152 /// ```
4153 /// # let some_predicate = |x: &mut i32| { *x % 2 == 1 };
4154 /// # let mut vec = vec![0, 1, 2, 3, 4, 5, 6];
4155 /// # let mut vec2 = vec.clone();
4156 /// # let range = 1..5;
4157 /// let mut i = range.start;
4158 /// let end_items = vec.len() - range.end;
4159 /// # let mut extracted = vec![];
4160 ///
4161 /// while i < vec.len() - end_items {
4162 /// if some_predicate(&mut vec[i]) {
4163 /// let val = vec.remove(i);
4164 /// // your code here
4165 /// # extracted.push(val);
4166 /// } else {
4167 /// i += 1;
4168 /// }
4169 /// }
4170 ///
4171 /// # let extracted2: Vec<_> = vec2.extract_if(range, some_predicate).collect();
4172 /// # assert_eq!(vec, vec2);
4173 /// # assert_eq!(extracted, extracted2);
4174 /// ```
4175 ///
4176 /// But `extract_if` is easier to use. `extract_if` is also more efficient,
4177 /// because it can backshift the elements of the array in bulk.
4178 ///
4179 /// The iterator also lets you mutate the value of each element in the
4180 /// closure, regardless of whether you choose to keep or remove it.
4181 ///
4182 /// # Panics
4183 ///
4184 /// If `range` is out of bounds.
4185 ///
4186 /// # Examples
4187 ///
4188 /// Splitting a vector into even and odd values, reusing the original vector:
4189 ///
4190 /// ```
4191 /// let mut numbers = vec![1, 2, 3, 4, 5, 6, 8, 9, 11, 13, 14, 15];
4192 ///
4193 /// let evens = numbers.extract_if(.., |x| *x % 2 == 0).collect::<Vec<_>>();
4194 /// let odds = numbers;
4195 ///
4196 /// assert_eq!(evens, vec![2, 4, 6, 8, 14]);
4197 /// assert_eq!(odds, vec![1, 3, 5, 9, 11, 13, 15]);
4198 /// ```
4199 ///
4200 /// Using the range argument to only process a part of the vector:
4201 ///
4202 /// ```
4203 /// let mut items = vec![0, 0, 0, 0, 0, 0, 0, 1, 2, 1, 2, 1, 2];
4204 /// let ones = items.extract_if(7.., |x| *x == 1).collect::<Vec<_>>();
4205 /// assert_eq!(items, vec![0, 0, 0, 0, 0, 0, 0, 2, 2, 2]);
4206 /// assert_eq!(ones.len(), 3);
4207 /// ```
4208 #[stable(feature = "extract_if", since = "1.87.0")]
4209 pub fn extract_if<F, R>(&mut self, range: R, filter: F) -> ExtractIf<'_, T, F, A>
4210 where
4211 F: FnMut(&mut T) -> bool,
4212 R: RangeBounds<usize>,
4213 {
4214 ExtractIf::new(self, filter, range)
4215 }
4216}
4217
4218/// Extend implementation that copies elements out of references before pushing them onto the Vec.
4219///
4220/// This implementation is specialized for slice iterators, where it uses [`copy_from_slice`] to
4221/// append the entire slice at once.
4222///
4223/// [`copy_from_slice`]: slice::copy_from_slice
4224#[cfg(not(no_global_oom_handling))]
4225#[stable(feature = "extend_ref", since = "1.2.0")]
4226impl<'a, T: Copy + 'a, A: Allocator> Extend<&'a T> for Vec<T, A> {
4227 fn extend<I: IntoIterator<Item = &'a T>>(&mut self, iter: I) {
4228 self.spec_extend(iter.into_iter())
4229 }
4230
4231 #[inline]
4232 fn extend_one(&mut self, &item: &'a T) {
4233 self.push(item);
4234 }
4235
4236 #[inline]
4237 fn extend_reserve(&mut self, additional: usize) {
4238 self.reserve(additional);
4239 }
4240
4241 #[inline]
4242 unsafe fn extend_one_unchecked(&mut self, &item: &'a T) {
4243 // SAFETY: Our preconditions ensure the space has been reserved, and `extend_reserve` is implemented correctly.
4244 unsafe {
4245 let len = self.len();
4246 ptr::write(self.as_mut_ptr().add(len), item);
4247 self.set_len(len + 1);
4248 }
4249 }
4250}
4251
4252/// Implements comparison of vectors, [lexicographically](Ord#lexicographical-comparison).
4253#[stable(feature = "rust1", since = "1.0.0")]
4254impl<T, A1, A2> PartialOrd<Vec<T, A2>> for Vec<T, A1>
4255where
4256 T: PartialOrd,
4257 A1: Allocator,
4258 A2: Allocator,
4259{
4260 #[inline]
4261 fn partial_cmp(&self, other: &Vec<T, A2>) -> Option<Ordering> {
4262 PartialOrd::partial_cmp(&**self, &**other)
4263 }
4264}
4265
4266#[stable(feature = "rust1", since = "1.0.0")]
4267impl<T: Eq, A: Allocator> Eq for Vec<T, A> {}
4268
4269/// Implements ordering of vectors, [lexicographically](Ord#lexicographical-comparison).
4270#[stable(feature = "rust1", since = "1.0.0")]
4271impl<T: Ord, A: Allocator> Ord for Vec<T, A> {
4272 #[inline]
4273 fn cmp(&self, other: &Self) -> Ordering {
4274 Ord::cmp(&**self, &**other)
4275 }
4276}
4277
4278#[stable(feature = "rust1", since = "1.0.0")]
4279unsafe impl<#[may_dangle] T, A: Allocator> Drop for Vec<T, A> {
4280 fn drop(&mut self) {
4281 unsafe {
4282 // use drop for [T]
4283 // use a raw slice to refer to the elements of the vector as weakest necessary type;
4284 // could avoid questions of validity in certain cases
4285 ptr::drop_in_place(ptr::slice_from_raw_parts_mut(self.as_mut_ptr(), self.len))
4286 }
4287 // RawVec handles deallocation
4288 }
4289}
4290
4291#[stable(feature = "rust1", since = "1.0.0")]
4292#[rustc_const_unstable(feature = "const_default", issue = "143894")]
4293impl<T> const Default for Vec<T> {
4294 /// Creates an empty `Vec<T>`.
4295 ///
4296 /// The vector will not allocate until elements are pushed onto it.
4297 fn default() -> Vec<T> {
4298 Vec::new()
4299 }
4300}
4301
4302#[stable(feature = "rust1", since = "1.0.0")]
4303impl<T: fmt::Debug, A: Allocator> fmt::Debug for Vec<T, A> {
4304 fn fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result {
4305 fmt::Debug::fmt(&**self, f)
4306 }
4307}
4308
4309#[stable(feature = "rust1", since = "1.0.0")]
4310impl<T, A: Allocator> AsRef<Vec<T, A>> for Vec<T, A> {
4311 fn as_ref(&self) -> &Vec<T, A> {
4312 self
4313 }
4314}
4315
4316#[stable(feature = "vec_as_mut", since = "1.5.0")]
4317impl<T, A: Allocator> AsMut<Vec<T, A>> for Vec<T, A> {
4318 fn as_mut(&mut self) -> &mut Vec<T, A> {
4319 self
4320 }
4321}
4322
4323#[stable(feature = "rust1", since = "1.0.0")]
4324impl<T, A: Allocator> AsRef<[T]> for Vec<T, A> {
4325 fn as_ref(&self) -> &[T] {
4326 self
4327 }
4328}
4329
4330#[stable(feature = "vec_as_mut", since = "1.5.0")]
4331impl<T, A: Allocator> AsMut<[T]> for Vec<T, A> {
4332 fn as_mut(&mut self) -> &mut [T] {
4333 self
4334 }
4335}
4336
4337#[cfg(not(no_global_oom_handling))]
4338#[stable(feature = "rust1", since = "1.0.0")]
4339impl<T: Clone> From<&[T]> for Vec<T> {
4340 /// Allocates a `Vec<T>` and fills it by cloning `s`'s items.
4341 ///
4342 /// # Examples
4343 ///
4344 /// ```
4345 /// assert_eq!(Vec::from(&[1, 2, 3][..]), vec![1, 2, 3]);
4346 /// ```
4347 fn from(s: &[T]) -> Vec<T> {
4348 s.to_vec()
4349 }
4350}
4351
4352#[cfg(not(no_global_oom_handling))]
4353#[stable(feature = "vec_from_mut", since = "1.19.0")]
4354impl<T: Clone> From<&mut [T]> for Vec<T> {
4355 /// Allocates a `Vec<T>` and fills it by cloning `s`'s items.
4356 ///
4357 /// # Examples
4358 ///
4359 /// ```
4360 /// assert_eq!(Vec::from(&mut [1, 2, 3][..]), vec![1, 2, 3]);
4361 /// ```
4362 fn from(s: &mut [T]) -> Vec<T> {
4363 s.to_vec()
4364 }
4365}
4366
4367#[cfg(not(no_global_oom_handling))]
4368#[stable(feature = "vec_from_array_ref", since = "1.74.0")]
4369impl<T: Clone, const N: usize> From<&[T; N]> for Vec<T> {
4370 /// Allocates a `Vec<T>` and fills it by cloning `s`'s items.
4371 ///
4372 /// # Examples
4373 ///
4374 /// ```
4375 /// assert_eq!(Vec::from(&[1, 2, 3]), vec![1, 2, 3]);
4376 /// ```
4377 fn from(s: &[T; N]) -> Vec<T> {
4378 Self::from(s.as_slice())
4379 }
4380}
4381
4382#[cfg(not(no_global_oom_handling))]
4383#[stable(feature = "vec_from_array_ref", since = "1.74.0")]
4384impl<T: Clone, const N: usize> From<&mut [T; N]> for Vec<T> {
4385 /// Allocates a `Vec<T>` and fills it by cloning `s`'s items.
4386 ///
4387 /// # Examples
4388 ///
4389 /// ```
4390 /// assert_eq!(Vec::from(&mut [1, 2, 3]), vec![1, 2, 3]);
4391 /// ```
4392 fn from(s: &mut [T; N]) -> Vec<T> {
4393 Self::from(s.as_mut_slice())
4394 }
4395}
4396
4397#[cfg(not(no_global_oom_handling))]
4398#[stable(feature = "vec_from_array", since = "1.44.0")]
4399impl<T, const N: usize> From<[T; N]> for Vec<T> {
4400 /// Allocates a `Vec<T>` and moves `s`'s items into it.
4401 ///
4402 /// # Examples
4403 ///
4404 /// ```
4405 /// assert_eq!(Vec::from([1, 2, 3]), vec![1, 2, 3]);
4406 /// ```
4407 fn from(s: [T; N]) -> Vec<T> {
4408 <[T]>::into_vec(Box::new(s))
4409 }
4410}
4411
4412#[stable(feature = "vec_from_cow_slice", since = "1.14.0")]
4413impl<'a, T> From<Cow<'a, [T]>> for Vec<T>
4414where
4415 [T]: ToOwned<Owned = Vec<T>>,
4416{
4417 /// Converts a clone-on-write slice into a vector.
4418 ///
4419 /// If `s` already owns a `Vec<T>`, it will be returned directly.
4420 /// If `s` is borrowing a slice, a new `Vec<T>` will be allocated and
4421 /// filled by cloning `s`'s items into it.
4422 ///
4423 /// # Examples
4424 ///
4425 /// ```
4426 /// # use std::borrow::Cow;
4427 /// let o: Cow<'_, [i32]> = Cow::Owned(vec![1, 2, 3]);
4428 /// let b: Cow<'_, [i32]> = Cow::Borrowed(&[1, 2, 3]);
4429 /// assert_eq!(Vec::from(o), Vec::from(b));
4430 /// ```
4431 fn from(s: Cow<'a, [T]>) -> Vec<T> {
4432 s.into_owned()
4433 }
4434}
4435
4436// note: test pulls in std, which causes errors here
4437#[stable(feature = "vec_from_box", since = "1.18.0")]
4438impl<T, A: Allocator> From<Box<[T], A>> for Vec<T, A> {
4439 /// Converts a boxed slice into a vector by transferring ownership of
4440 /// the existing heap allocation.
4441 ///
4442 /// # Examples
4443 ///
4444 /// ```
4445 /// let b: Box<[i32]> = vec![1, 2, 3].into_boxed_slice();
4446 /// assert_eq!(Vec::from(b), vec![1, 2, 3]);
4447 /// ```
4448 fn from(s: Box<[T], A>) -> Self {
4449 s.into_vec()
4450 }
4451}
4452
4453// note: test pulls in std, which causes errors here
4454#[cfg(not(no_global_oom_handling))]
4455#[stable(feature = "box_from_vec", since = "1.20.0")]
4456impl<T, A: Allocator> From<Vec<T, A>> for Box<[T], A> {
4457 /// Converts a vector into a boxed slice.
4458 ///
4459 /// Before doing the conversion, this method discards excess capacity like [`Vec::shrink_to_fit`].
4460 ///
4461 /// [owned slice]: Box
4462 /// [`Vec::shrink_to_fit`]: Vec::shrink_to_fit
4463 ///
4464 /// # Examples
4465 ///
4466 /// ```
4467 /// assert_eq!(Box::from(vec![1, 2, 3]), vec![1, 2, 3].into_boxed_slice());
4468 /// ```
4469 ///
4470 /// Any excess capacity is removed:
4471 /// ```
4472 /// let mut vec = Vec::with_capacity(10);
4473 /// vec.extend([1, 2, 3]);
4474 ///
4475 /// assert_eq!(Box::from(vec), vec![1, 2, 3].into_boxed_slice());
4476 /// ```
4477 fn from(v: Vec<T, A>) -> Self {
4478 v.into_boxed_slice()
4479 }
4480}
4481
4482#[cfg(not(no_global_oom_handling))]
4483#[stable(feature = "rust1", since = "1.0.0")]
4484impl From<&str> for Vec<u8> {
4485 /// Allocates a `Vec<u8>` and fills it with a UTF-8 string.
4486 ///
4487 /// # Examples
4488 ///
4489 /// ```
4490 /// assert_eq!(Vec::from("123"), vec![b'1', b'2', b'3']);
4491 /// ```
4492 fn from(s: &str) -> Vec<u8> {
4493 From::from(s.as_bytes())
4494 }
4495}
4496
4497#[stable(feature = "array_try_from_vec", since = "1.48.0")]
4498impl<T, A: Allocator, const N: usize> TryFrom<Vec<T, A>> for [T; N] {
4499 type Error = Vec<T, A>;
4500
4501 /// Gets the entire contents of the `Vec<T>` as an array,
4502 /// if its size exactly matches that of the requested array.
4503 ///
4504 /// # Examples
4505 ///
4506 /// ```
4507 /// assert_eq!(vec![1, 2, 3].try_into(), Ok([1, 2, 3]));
4508 /// assert_eq!(<Vec<i32>>::new().try_into(), Ok([]));
4509 /// ```
4510 ///
4511 /// If the length doesn't match, the input comes back in `Err`:
4512 /// ```
4513 /// let r: Result<[i32; 4], _> = (0..10).collect::<Vec<_>>().try_into();
4514 /// assert_eq!(r, Err(vec![0, 1, 2, 3, 4, 5, 6, 7, 8, 9]));
4515 /// ```
4516 ///
4517 /// If you're fine with just getting a prefix of the `Vec<T>`,
4518 /// you can call [`.truncate(N)`](Vec::truncate) first.
4519 /// ```
4520 /// let mut v = String::from("hello world").into_bytes();
4521 /// v.sort();
4522 /// v.truncate(2);
4523 /// let [a, b]: [_; 2] = v.try_into().unwrap();
4524 /// assert_eq!(a, b' ');
4525 /// assert_eq!(b, b'd');
4526 /// ```
4527 fn try_from(mut vec: Vec<T, A>) -> Result<[T; N], Vec<T, A>> {
4528 if vec.len() != N {
4529 return Err(vec);
4530 }
4531
4532 // SAFETY: `.set_len(0)` is always sound.
4533 unsafe { vec.set_len(0) };
4534
4535 // SAFETY: A `Vec`'s pointer is always aligned properly, and
4536 // the alignment the array needs is the same as the items.
4537 // We checked earlier that we have sufficient items.
4538 // The items will not double-drop as the `set_len`
4539 // tells the `Vec` not to also drop them.
4540 let array = unsafe { ptr::read(vec.as_ptr() as *const [T; N]) };
4541 Ok(array)
4542 }
4543}