alloc/raw_vec/mod.rs
1#![unstable(feature = "raw_vec_internals", reason = "unstable const warnings", issue = "none")]
2#![cfg_attr(test, allow(dead_code))]
3
4// Note: This module is also included in the alloctests crate using #[path] to
5// run the tests. See the comment there for an explanation why this is the case.
6
7use core::marker::{Destruct, PhantomData};
8use core::mem::{Alignment, ManuallyDrop, MaybeUninit, SizedTypeProperties};
9use core::ptr::{self, NonNull, Unique};
10use core::{cmp, hint};
11
12#[cfg(not(no_global_oom_handling))]
13use crate::alloc::handle_alloc_error;
14use crate::alloc::{Allocator, Global, Layout};
15use crate::boxed::Box;
16use crate::collections::TryReserveError;
17use crate::collections::TryReserveErrorKind::*;
18
19#[cfg(test)]
20mod tests;
21
22// One central function responsible for reporting capacity overflows. This'll
23// ensure that the code generation related to these panics is minimal as there's
24// only one location which panics rather than a bunch throughout the module.
25#[cfg(not(no_global_oom_handling))]
26#[cfg_attr(not(panic = "immediate-abort"), inline(never))]
27const fn capacity_overflow() -> ! {
28 panic!("capacity overflow");
29}
30
31enum AllocInit {
32 /// The contents of the new memory are uninitialized.
33 Uninitialized,
34 #[cfg(not(no_global_oom_handling))]
35 /// The new memory is guaranteed to be zeroed.
36 Zeroed,
37}
38
39type Cap = core::num::niche_types::UsizeNoHighBit;
40
41const ZERO_CAP: Cap = unsafe { Cap::new_unchecked(0) };
42
43/// `Cap(cap)`, except if `T` is a ZST then `Cap::ZERO`.
44///
45/// # Safety: cap must be <= `isize::MAX`.
46const unsafe fn new_cap<T>(cap: usize) -> Cap {
47 if T::IS_ZST { ZERO_CAP } else { unsafe { Cap::new_unchecked(cap) } }
48}
49
50/// A low-level utility for more ergonomically allocating, reallocating, and deallocating
51/// a buffer of memory on the heap without having to worry about all the corner cases
52/// involved. This type is excellent for building your own data structures like Vec and VecDeque.
53/// In particular:
54///
55/// * Produces `Unique::dangling()` on zero-sized types.
56/// * Produces `Unique::dangling()` on zero-length allocations.
57/// * Avoids freeing `Unique::dangling()`.
58/// * Catches all overflows in capacity computations (promotes them to "capacity overflow" panics).
59/// * Guards against 32-bit systems allocating more than `isize::MAX` bytes.
60/// * Guards against overflowing your length.
61/// * Calls `handle_alloc_error` for fallible allocations.
62/// * Contains a `ptr::Unique` and thus endows the user with all related benefits.
63/// * Uses the excess returned from the allocator to use the largest available capacity.
64///
65/// This type does not in anyway inspect the memory that it manages. When dropped it *will*
66/// free its memory, but it *won't* try to drop its contents. It is up to the user of `RawVec`
67/// to handle the actual things *stored* inside of a `RawVec`.
68///
69/// Note that the excess of a zero-sized types is always infinite, so `capacity()` always returns
70/// `usize::MAX`. This means that you need to be careful when round-tripping this type with a
71/// `Box<[T]>`, since `capacity()` won't yield the length.
72#[allow(missing_debug_implementations)]
73pub(crate) struct RawVec<T, A: Allocator = Global> {
74 inner: RawVecInner<A>,
75 _marker: PhantomData<T>,
76}
77
78/// Like a `RawVec`, but only generic over the allocator, not the type.
79///
80/// As such, all the methods need the layout passed-in as a parameter.
81///
82/// Having this separation reduces the amount of code we need to monomorphize,
83/// as most operations don't need the actual type, just its layout.
84#[allow(missing_debug_implementations)]
85struct RawVecInner<A: Allocator = Global> {
86 ptr: Unique<u8>,
87 /// Never used for ZSTs; it's `capacity()`'s responsibility to return usize::MAX in that case.
88 ///
89 /// # Safety
90 ///
91 /// `cap` must be in the `0..=isize::MAX` range.
92 cap: Cap,
93 alloc: A,
94}
95
96impl<T> RawVec<T, Global> {
97 /// Creates the biggest possible `RawVec` (on the system heap)
98 /// without allocating. If `T` has positive size, then this makes a
99 /// `RawVec` with capacity `0`. If `T` is zero-sized, then it makes a
100 /// `RawVec` with capacity `usize::MAX`. Useful for implementing
101 /// delayed allocation.
102 #[must_use]
103 pub(crate) const fn new() -> Self {
104 Self::new_in(Global)
105 }
106
107 /// Creates a `RawVec` (on the system heap) with exactly the
108 /// capacity and alignment requirements for a `[T; capacity]`. This is
109 /// equivalent to calling `RawVec::new` when `capacity` is `0` or `T` is
110 /// zero-sized. Note that if `T` is zero-sized this means you will
111 /// *not* get a `RawVec` with the requested capacity.
112 ///
113 /// Non-fallible version of `try_with_capacity`
114 ///
115 /// # Panics
116 ///
117 /// Panics if the requested capacity exceeds `isize::MAX` bytes.
118 ///
119 /// # Aborts
120 ///
121 /// Aborts on OOM.
122 #[cfg(not(any(no_global_oom_handling, test)))]
123 #[must_use]
124 #[inline]
125 pub(crate) fn with_capacity(capacity: usize) -> Self {
126 Self { inner: RawVecInner::with_capacity(capacity, T::LAYOUT), _marker: PhantomData }
127 }
128
129 /// Like `with_capacity`, but guarantees the buffer is zeroed.
130 #[cfg(not(any(no_global_oom_handling, test)))]
131 #[must_use]
132 #[inline]
133 pub(crate) fn with_capacity_zeroed(capacity: usize) -> Self {
134 Self {
135 inner: RawVecInner::with_capacity_zeroed_in(capacity, Global, T::LAYOUT),
136 _marker: PhantomData,
137 }
138 }
139}
140
141impl RawVecInner<Global> {
142 #[cfg(not(any(no_global_oom_handling, test)))]
143 #[must_use]
144 #[inline]
145 fn with_capacity(capacity: usize, elem_layout: Layout) -> Self {
146 match Self::try_allocate_in(capacity, AllocInit::Uninitialized, Global, elem_layout) {
147 Ok(res) => res,
148 Err(err) => handle_error(err),
149 }
150 }
151}
152
153// Tiny Vecs are dumb. Skip to:
154// - 8 if the element size is 1, because any heap allocator is likely
155// to round up a request of less than 8 bytes to at least 8 bytes.
156// - 4 if elements are moderate-sized (<= 1 KiB).
157// - 1 otherwise, to avoid wasting too much space for very short Vecs.
158const fn min_non_zero_cap(size: usize) -> usize {
159 if size == 1 {
160 8
161 } else if size <= 1024 {
162 4
163 } else {
164 1
165 }
166}
167
168#[rustc_const_unstable(feature = "const_heap", issue = "79597")]
169#[rustfmt::skip] // FIXME(fee1-dead): temporary measure before rustfmt is bumped
170const impl<T, A: [const] Allocator + [const] Destruct> RawVec<T, A> {
171 /// Like `with_capacity`, but parameterized over the choice of
172 /// allocator for the returned `RawVec`.
173 #[cfg(not(no_global_oom_handling))]
174 #[inline]
175 pub(crate) fn with_capacity_in(capacity: usize, alloc: A) -> Self {
176 Self {
177 inner: RawVecInner::with_capacity_in(capacity, alloc, T::LAYOUT),
178 _marker: PhantomData,
179 }
180 }
181
182 /// A specialized version of `self.reserve(len, 1)` which requires the
183 /// caller to ensure `len == self.capacity()`.
184 #[cfg(not(no_global_oom_handling))]
185 #[inline(never)]
186 pub(crate) fn grow_one(&mut self) {
187 // SAFETY: All calls on self.inner pass T::LAYOUT as the elem_layout
188 unsafe { self.inner.grow_one(T::LAYOUT) }
189 }
190}
191
192impl<T, A: Allocator> RawVec<T, A> {
193 #[cfg(not(no_global_oom_handling))]
194 pub(crate) const MIN_NON_ZERO_CAP: usize = min_non_zero_cap(size_of::<T>());
195
196 /// Like `new`, but parameterized over the choice of allocator for
197 /// the returned `RawVec`.
198 #[inline]
199 pub(crate) const fn new_in(alloc: A) -> Self {
200 // Check assumption made in `current_memory`
201 const { assert!(T::LAYOUT.size() % T::LAYOUT.align() == 0) };
202 Self { inner: RawVecInner::new_in(alloc, Alignment::of::<T>()), _marker: PhantomData }
203 }
204
205 /// Like `try_with_capacity`, but parameterized over the choice of
206 /// allocator for the returned `RawVec`.
207 #[inline]
208 pub(crate) fn try_with_capacity_in(capacity: usize, alloc: A) -> Result<Self, TryReserveError> {
209 match RawVecInner::try_with_capacity_in(capacity, alloc, T::LAYOUT) {
210 Ok(inner) => Ok(Self { inner, _marker: PhantomData }),
211 Err(e) => Err(e),
212 }
213 }
214
215 /// Like `with_capacity_zeroed`, but parameterized over the choice
216 /// of allocator for the returned `RawVec`.
217 #[cfg(not(no_global_oom_handling))]
218 #[inline]
219 pub(crate) fn with_capacity_zeroed_in(capacity: usize, alloc: A) -> Self {
220 Self {
221 inner: RawVecInner::with_capacity_zeroed_in(capacity, alloc, T::LAYOUT),
222 _marker: PhantomData,
223 }
224 }
225
226 /// Converts the entire buffer into `Box<[MaybeUninit<T>]>` with the specified `len`.
227 ///
228 /// Note that this will correctly reconstitute any `cap` changes
229 /// that may have been performed. (See description of type for details.)
230 ///
231 /// # Safety
232 ///
233 /// * `len` must be greater than or equal to the most recently requested capacity, and
234 /// * `len` must be less than or equal to `self.capacity()`.
235 ///
236 /// Note, that the requested capacity and `self.capacity()` could differ, as
237 /// an allocator could overallocate and return a greater memory block than requested.
238 pub(crate) unsafe fn into_box(self, len: usize) -> Box<[MaybeUninit<T>], A> {
239 // Sanity-check one half of the safety requirement (we cannot check the other half).
240 debug_assert!(
241 len <= self.capacity(),
242 "`len` must be smaller than or equal to `self.capacity()`"
243 );
244
245 let me = ManuallyDrop::new(self);
246 unsafe {
247 let slice = me.ptr().cast::<MaybeUninit<T>>().cast_slice(len);
248 Box::from_raw_in(slice, ptr::read(&me.inner.alloc))
249 }
250 }
251
252 /// Reconstitutes a `RawVec` from a pointer, capacity, and allocator.
253 ///
254 /// # Safety
255 ///
256 /// The `ptr` must be allocated (via the given allocator `alloc`), and with the given
257 /// `capacity`.
258 /// The `capacity` cannot exceed `isize::MAX` for sized types. (only a concern on 32-bit
259 /// systems). For ZSTs capacity is ignored.
260 /// If the `ptr` and `capacity` come from a `RawVec` created via `alloc`, then this is
261 /// guaranteed.
262 #[inline]
263 pub(crate) const unsafe fn from_raw_parts_in(ptr: *mut T, capacity: usize, alloc: A) -> Self {
264 // SAFETY: Precondition passed to the caller
265 unsafe {
266 let ptr = ptr.cast();
267 let capacity = new_cap::<T>(capacity);
268 Self {
269 inner: RawVecInner::from_raw_parts_in(ptr, capacity, alloc),
270 _marker: PhantomData,
271 }
272 }
273 }
274
275 /// A convenience method for hoisting the non-null precondition out of [`RawVec::from_raw_parts_in`].
276 ///
277 /// # Safety
278 ///
279 /// See [`RawVec::from_raw_parts_in`].
280 #[inline]
281 #[rustc_const_unstable(feature = "const_heap", issue = "79597")]
282 pub(crate) const unsafe fn from_nonnull_in(ptr: NonNull<T>, capacity: usize, alloc: A) -> Self {
283 // SAFETY: Precondition passed to the caller
284 unsafe {
285 let ptr = ptr.cast();
286 let capacity = new_cap::<T>(capacity);
287 Self { inner: RawVecInner::from_nonnull_in(ptr, capacity, alloc), _marker: PhantomData }
288 }
289 }
290
291 /// Gets a raw pointer to the start of the allocation. Note that this is
292 /// `Unique::dangling()` if `capacity == 0` or `T` is zero-sized. In the former case, you must
293 /// be careful.
294 #[inline]
295 pub(crate) const fn ptr(&self) -> *mut T {
296 self.inner.ptr()
297 }
298
299 #[inline]
300 pub(crate) const fn non_null(&self) -> NonNull<T> {
301 self.inner.non_null()
302 }
303
304 /// Gets the capacity of the allocation.
305 ///
306 /// This will always be `usize::MAX` if `T` is zero-sized.
307 #[inline]
308 pub(crate) const fn capacity(&self) -> usize {
309 self.inner.capacity(size_of::<T>())
310 }
311
312 /// Returns a shared reference to the allocator backing this `RawVec`.
313 #[inline]
314 pub(crate) const fn allocator(&self) -> &A {
315 self.inner.allocator()
316 }
317
318 /// Ensures that the buffer contains at least enough space to hold `len +
319 /// additional` elements. If it doesn't already have enough capacity, will
320 /// reallocate enough space plus comfortable slack space to get amortized
321 /// *O*(1) behavior. Will limit this behavior if it would needlessly cause
322 /// itself to panic.
323 ///
324 /// If `len` exceeds `self.capacity()`, this may fail to actually allocate
325 /// the requested space. This is not really unsafe, but the unsafe
326 /// code *you* write that relies on the behavior of this function may break.
327 ///
328 /// This is ideal for implementing a bulk-push operation like `extend`.
329 ///
330 /// # Panics
331 ///
332 /// Panics if the new capacity exceeds `isize::MAX` _bytes_.
333 ///
334 /// # Aborts
335 ///
336 /// Aborts on OOM.
337 #[cfg(not(no_global_oom_handling))]
338 #[inline]
339 pub(crate) fn reserve(&mut self, len: usize, additional: usize) {
340 // SAFETY: All calls on self.inner pass T::LAYOUT as the elem_layout
341 unsafe { self.inner.reserve(len, additional, T::LAYOUT) }
342 }
343
344 /// The same as `reserve`, but returns on errors instead of panicking or aborting.
345 pub(crate) fn try_reserve(
346 &mut self,
347 len: usize,
348 additional: usize,
349 ) -> Result<(), TryReserveError> {
350 // SAFETY: All calls on self.inner pass T::LAYOUT as the elem_layout
351 unsafe { self.inner.try_reserve(len, additional, T::LAYOUT) }
352 }
353
354 /// Ensures that the buffer contains at least enough space to hold `len +
355 /// additional` elements. If it doesn't already, will reallocate the
356 /// minimum possible amount of memory necessary. Generally this will be
357 /// exactly the amount of memory necessary, but in principle the allocator
358 /// is free to give back more than we asked for.
359 ///
360 /// If `len` exceeds `self.capacity()`, this may fail to actually allocate
361 /// the requested space. This is not really unsafe, but the unsafe code
362 /// *you* write that relies on the behavior of this function may break.
363 ///
364 /// # Panics
365 ///
366 /// Panics if the new capacity exceeds `isize::MAX` _bytes_.
367 ///
368 /// # Aborts
369 ///
370 /// Aborts on OOM.
371 #[cfg(not(no_global_oom_handling))]
372 pub(crate) fn reserve_exact(&mut self, len: usize, additional: usize) {
373 // SAFETY: All calls on self.inner pass T::LAYOUT as the elem_layout
374 unsafe { self.inner.reserve_exact(len, additional, T::LAYOUT) }
375 }
376
377 /// The same as `reserve_exact`, but returns on errors instead of panicking or aborting.
378 pub(crate) fn try_reserve_exact(
379 &mut self,
380 len: usize,
381 additional: usize,
382 ) -> Result<(), TryReserveError> {
383 // SAFETY: All calls on self.inner pass T::LAYOUT as the elem_layout
384 unsafe { self.inner.try_reserve_exact(len, additional, T::LAYOUT) }
385 }
386
387 /// Shrinks the buffer down to the specified capacity. If the given amount
388 /// is 0, actually completely deallocates.
389 ///
390 /// # Panics
391 ///
392 /// Panics if the given amount is *larger* than the current capacity.
393 ///
394 /// # Aborts
395 ///
396 /// Aborts on OOM.
397 #[cfg(not(no_global_oom_handling))]
398 #[inline]
399 pub(crate) fn shrink_to_fit(&mut self, cap: usize) {
400 // SAFETY: All calls on self.inner pass T::LAYOUT as the elem_layout
401 unsafe { self.inner.shrink_to_fit(cap, T::LAYOUT) }
402 }
403
404 /// Shrinks the buffer down to the specified capacity. If the given amount
405 /// is 0, actually completely deallocates.
406 ///
407 /// # Errors
408 ///
409 /// This function returns an error if the allocator cannot shrink the allocation.
410 ///
411 /// # Panics
412 ///
413 /// Panics if the given amount is *larger* than the current capacity.
414 #[inline]
415 pub(crate) fn try_shrink_to_fit(&mut self, cap: usize) -> Result<(), TryReserveError> {
416 unsafe { self.inner.try_shrink_to_fit(cap, T::LAYOUT) }
417 }
418}
419
420#[rustc_const_unstable(feature = "const_heap", issue = "79597")]
421const unsafe impl<#[may_dangle] T, A: [const] Allocator + [const] Destruct> Drop for RawVec<T, A> {
422 /// Frees the memory owned by the `RawVec` *without* trying to drop its contents.
423 fn drop(&mut self) {
424 // SAFETY: We are in a Drop impl, self.inner will not be used again.
425 unsafe { self.inner.deallocate(T::LAYOUT) }
426 }
427}
428
429#[rustc_const_unstable(feature = "const_heap", issue = "79597")]
430#[rustfmt::skip] // FIXME(fee1-dead): temporary measure before rustfmt is bumped
431const impl<A: [const] Allocator + [const] Destruct> RawVecInner<A> {
432 #[cfg(not(no_global_oom_handling))]
433 #[inline]
434 fn with_capacity_in(capacity: usize, alloc: A, elem_layout: Layout) -> Self {
435 match Self::try_allocate_in(capacity, AllocInit::Uninitialized, alloc, elem_layout) {
436 Ok(this) => {
437 unsafe {
438 // Make it more obvious that a subsequent Vec::reserve(capacity) will not allocate.
439 hint::assert_unchecked(!this.needs_to_grow(0, capacity, elem_layout));
440 }
441 this
442 }
443 Err(err) => handle_error(err),
444 }
445 }
446
447 fn try_allocate_in(
448 capacity: usize,
449 init: AllocInit,
450 alloc: A,
451 elem_layout: Layout,
452 ) -> Result<Self, TryReserveError> {
453 // We avoid `unwrap_or_else` here because it bloats the amount of
454 // LLVM IR generated.
455 let layout = match layout_array(capacity, elem_layout) {
456 Ok(layout) => layout,
457 Err(_) => return Err(CapacityOverflow.into()),
458 };
459
460 // Don't allocate here because `Drop` will not deallocate when `capacity` is 0.
461 if layout.size() == 0 {
462 return Ok(Self::new_in(alloc, elem_layout.alignment()));
463 }
464
465 let result = match init {
466 AllocInit::Uninitialized => alloc.allocate(layout),
467 #[cfg(not(no_global_oom_handling))]
468 AllocInit::Zeroed => alloc.allocate_zeroed(layout),
469 };
470 let ptr = match result {
471 Ok(ptr) => ptr,
472 Err(_) => return Err(AllocError { layout, non_exhaustive: () }.into()),
473 };
474
475 // Allocators currently return a `NonNull<[u8]>` whose length
476 // matches the size requested. If that ever changes, the capacity
477 // here should change to `ptr.len() / size_of::<T>()`.
478 Ok(Self {
479 ptr: Unique::from(ptr.cast()),
480 cap: unsafe { Cap::new_unchecked(capacity) },
481 alloc,
482 })
483 }
484
485 /// # Safety
486 /// - `elem_layout` must be valid for `self`, i.e. it must be the same `elem_layout` used to
487 /// initially construct `self`
488 /// - `elem_layout`'s size must be a multiple of its alignment
489 #[cfg(not(no_global_oom_handling))]
490 #[inline]
491 unsafe fn grow_one(&mut self, elem_layout: Layout) {
492 // SAFETY: Precondition passed to caller
493 if let Err(err) = unsafe { self.grow_amortized(self.cap.as_inner(), 1, elem_layout) } {
494 handle_error(err);
495 }
496 }
497
498 /// # Safety
499 /// - `elem_layout` must be valid for `self`, i.e. it must be the same `elem_layout` used to
500 /// initially construct `self`
501 /// - `elem_layout`'s size must be a multiple of its alignment
502 /// - The sum of `len` and `additional` must be greater than the current capacity
503 unsafe fn grow_amortized(
504 &mut self,
505 len: usize,
506 additional: usize,
507 elem_layout: Layout,
508 ) -> Result<(), TryReserveError> {
509 // This is ensured by the calling contexts.
510 debug_assert!(additional > 0);
511
512 if elem_layout.size() == 0 {
513 // Since we return a capacity of `usize::MAX` when `elem_size` is
514 // 0, getting to here necessarily means the `RawVec` is overfull.
515 return Err(CapacityOverflow.into());
516 }
517
518 // Nothing we can really do about these checks, sadly.
519 let required_cap = len.checked_add(additional).ok_or(CapacityOverflow)?;
520
521 // This guarantees exponential growth. The doubling cannot overflow
522 // because `cap <= isize::MAX` and the type of `cap` is `usize`.
523 let cap = cmp::max(self.cap.as_inner() * 2, required_cap);
524 let cap = cmp::max(min_non_zero_cap(elem_layout.size()), cap);
525
526 // SAFETY:
527 // - cap >= len + additional
528 // - other preconditions passed to caller
529 let ptr = unsafe { self.finish_grow(cap, elem_layout)? };
530
531 // SAFETY: `finish_grow` would have failed if `cap > isize::MAX`
532 unsafe { self.set_ptr_and_cap(ptr, cap) };
533 Ok(())
534 }
535
536 /// # Safety
537 /// - `elem_layout` must be valid for `self`, i.e. it must be the same `elem_layout` used to
538 /// initially construct `self`
539 /// - `elem_layout`'s size must be a multiple of its alignment
540 /// - `cap` must be greater than the current capacity
541 // not marked inline(never) since we want optimizers to be able to observe the specifics of this
542 // function, see tests/codegen-llvm/vec-reserve-extend.rs.
543 #[cold]
544 unsafe fn finish_grow(
545 &self,
546 cap: usize,
547 elem_layout: Layout,
548 ) -> Result<NonNull<[u8]>, TryReserveError> {
549 let new_layout = layout_array(cap, elem_layout)?;
550
551 let memory = if let Some((ptr, old_layout)) = unsafe { self.current_memory(elem_layout) } {
552 // FIXME(const-hack): switch to `debug_assert_eq`
553 debug_assert!(old_layout.align() == new_layout.align());
554 unsafe {
555 // The allocator checks for alignment equality
556 hint::assert_unchecked(old_layout.align() == new_layout.align());
557 self.alloc.grow(ptr, old_layout, new_layout)
558 }
559 } else {
560 self.alloc.allocate(new_layout)
561 };
562
563 memory.map_err(const |_| AllocError { layout: new_layout, non_exhaustive: () }.into())
564 }
565}
566
567impl<A: Allocator> RawVecInner<A> {
568 #[inline]
569 const fn new_in(alloc: A, align: Alignment) -> Self {
570 let ptr = Unique::from_non_null(NonNull::without_provenance(align.as_nonzero_usize()));
571 // `cap: 0` means "unallocated". zero-sized types are ignored.
572 Self { ptr, cap: ZERO_CAP, alloc }
573 }
574
575 #[inline]
576 fn try_with_capacity_in(
577 capacity: usize,
578 alloc: A,
579 elem_layout: Layout,
580 ) -> Result<Self, TryReserveError> {
581 Self::try_allocate_in(capacity, AllocInit::Uninitialized, alloc, elem_layout)
582 }
583
584 #[cfg(not(no_global_oom_handling))]
585 #[inline]
586 fn with_capacity_zeroed_in(capacity: usize, alloc: A, elem_layout: Layout) -> Self {
587 match Self::try_allocate_in(capacity, AllocInit::Zeroed, alloc, elem_layout) {
588 Ok(res) => res,
589 Err(err) => handle_error(err),
590 }
591 }
592
593 #[inline]
594 const unsafe fn from_raw_parts_in(ptr: *mut u8, cap: Cap, alloc: A) -> Self {
595 Self { ptr: unsafe { Unique::new_unchecked(ptr) }, cap, alloc }
596 }
597
598 #[inline]
599 #[rustc_const_unstable(feature = "const_heap", issue = "79597")]
600 const unsafe fn from_nonnull_in(ptr: NonNull<u8>, cap: Cap, alloc: A) -> Self {
601 Self { ptr: Unique::from(ptr), cap, alloc }
602 }
603
604 #[inline]
605 const fn ptr<T>(&self) -> *mut T {
606 self.non_null::<T>().as_ptr()
607 }
608
609 #[inline]
610 const fn non_null<T>(&self) -> NonNull<T> {
611 self.ptr.cast().as_non_null_ptr()
612 }
613
614 #[inline]
615 const fn capacity(&self, elem_size: usize) -> usize {
616 if elem_size == 0 { usize::MAX } else { self.cap.as_inner() }
617 }
618
619 #[inline]
620 const fn allocator(&self) -> &A {
621 &self.alloc
622 }
623
624 /// # Safety
625 /// - `elem_layout` must be valid for `self`, i.e. it must be the same `elem_layout` used to
626 /// initially construct `self`
627 /// - `elem_layout`'s size must be a multiple of its alignment
628 #[inline]
629 #[rustc_const_unstable(feature = "const_heap", issue = "79597")]
630 const unsafe fn current_memory(&self, elem_layout: Layout) -> Option<(NonNull<u8>, Layout)> {
631 if elem_layout.size() == 0 || self.cap.as_inner() == 0 {
632 None
633 } else {
634 // We could use Layout::array here which ensures the absence of isize and usize overflows
635 // and could hypothetically handle differences between stride and size, but this memory
636 // has already been allocated so we know it can't overflow and currently Rust does not
637 // support such types. So we can do better by skipping some checks and avoid an unwrap.
638 unsafe {
639 let alloc_size = elem_layout.size().unchecked_mul(self.cap.as_inner());
640 let layout = Layout::from_size_align_unchecked(alloc_size, elem_layout.align());
641 Some((self.ptr.into(), layout))
642 }
643 }
644 }
645
646 /// # Safety
647 /// - `elem_layout` must be valid for `self`, i.e. it must be the same `elem_layout` used to
648 /// initially construct `self`
649 /// - `elem_layout`'s size must be a multiple of its alignment
650 #[cfg(not(no_global_oom_handling))]
651 #[inline]
652 unsafe fn reserve(&mut self, len: usize, additional: usize, elem_layout: Layout) {
653 // Callers expect this function to be very cheap when there is already sufficient capacity.
654 // Therefore, we move all the resizing and error-handling logic from grow_amortized and
655 // handle_reserve behind a call, while making sure that this function is likely to be
656 // inlined as just a comparison and a call if the comparison fails.
657 #[cold]
658 unsafe fn do_reserve_and_handle<A: Allocator>(
659 slf: &mut RawVecInner<A>,
660 len: usize,
661 additional: usize,
662 elem_layout: Layout,
663 ) {
664 // SAFETY: Precondition passed to caller
665 if let Err(err) = unsafe { slf.grow_amortized(len, additional, elem_layout) } {
666 handle_error(err);
667 }
668 }
669
670 if self.needs_to_grow(len, additional, elem_layout) {
671 unsafe {
672 do_reserve_and_handle(self, len, additional, elem_layout);
673 }
674 }
675 }
676
677 /// # Safety
678 /// - `elem_layout` must be valid for `self`, i.e. it must be the same `elem_layout` used to
679 /// initially construct `self`
680 /// - `elem_layout`'s size must be a multiple of its alignment
681 unsafe fn try_reserve(
682 &mut self,
683 len: usize,
684 additional: usize,
685 elem_layout: Layout,
686 ) -> Result<(), TryReserveError> {
687 if self.needs_to_grow(len, additional, elem_layout) {
688 // SAFETY: Precondition passed to caller
689 unsafe {
690 self.grow_amortized(len, additional, elem_layout)?;
691 }
692 }
693 unsafe {
694 // Inform the optimizer that the reservation has succeeded or wasn't needed
695 hint::assert_unchecked(!self.needs_to_grow(len, additional, elem_layout));
696 }
697 Ok(())
698 }
699
700 /// # Safety
701 /// - `elem_layout` must be valid for `self`, i.e. it must be the same `elem_layout` used to
702 /// initially construct `self`
703 /// - `elem_layout`'s size must be a multiple of its alignment
704 #[cfg(not(no_global_oom_handling))]
705 unsafe fn reserve_exact(&mut self, len: usize, additional: usize, elem_layout: Layout) {
706 // SAFETY: Precondition passed to caller
707 if let Err(err) = unsafe { self.try_reserve_exact(len, additional, elem_layout) } {
708 handle_error(err);
709 }
710 }
711
712 /// # Safety
713 /// - `elem_layout` must be valid for `self`, i.e. it must be the same `elem_layout` used to
714 /// initially construct `self`
715 /// - `elem_layout`'s size must be a multiple of its alignment
716 unsafe fn try_reserve_exact(
717 &mut self,
718 len: usize,
719 additional: usize,
720 elem_layout: Layout,
721 ) -> Result<(), TryReserveError> {
722 if self.needs_to_grow(len, additional, elem_layout) {
723 // SAFETY: Precondition passed to caller
724 unsafe {
725 self.grow_exact(len, additional, elem_layout)?;
726 }
727 }
728 unsafe {
729 // Inform the optimizer that the reservation has succeeded or wasn't needed
730 hint::assert_unchecked(!self.needs_to_grow(len, additional, elem_layout));
731 }
732 Ok(())
733 }
734
735 /// # Safety
736 /// - `elem_layout` must be valid for `self`, i.e. it must be the same `elem_layout` used to
737 /// initially construct `self`
738 /// - `elem_layout`'s size must be a multiple of its alignment
739 /// - `cap` must be less than or equal to `self.capacity(elem_layout.size())`
740 #[cfg(not(no_global_oom_handling))]
741 #[inline]
742 unsafe fn shrink_to_fit(&mut self, cap: usize, elem_layout: Layout) {
743 if let Err(err) = unsafe { self.shrink(cap, elem_layout) } {
744 handle_error(err);
745 }
746 }
747
748 /// # Safety
749 ///
750 /// - `elem_layout` must be valid for `self`, i.e. it must be the same `elem_layout` used to
751 /// initially construct `self`
752 /// - `elem_layout`'s size must be a multiple of its alignment
753 /// - `cap` must be less than or equal to `self.capacity(elem_layout.size())`
754 unsafe fn try_shrink_to_fit(
755 &mut self,
756 cap: usize,
757 elem_layout: Layout,
758 ) -> Result<(), TryReserveError> {
759 unsafe { self.shrink(cap, elem_layout) }
760 }
761
762 #[inline]
763 const fn needs_to_grow(&self, len: usize, additional: usize, elem_layout: Layout) -> bool {
764 additional > self.capacity(elem_layout.size()).wrapping_sub(len)
765 }
766
767 #[inline]
768 #[rustc_const_unstable(feature = "const_heap", issue = "79597")]
769 const unsafe fn set_ptr_and_cap(&mut self, ptr: NonNull<[u8]>, cap: usize) {
770 // Allocators currently return a `NonNull<[u8]>` whose length matches
771 // the size requested. If that ever changes, the capacity here should
772 // change to `ptr.len() / size_of::<T>()`.
773 self.ptr = Unique::from(ptr.cast());
774 self.cap = unsafe { Cap::new_unchecked(cap) };
775 }
776
777 /// # Safety
778 /// - `elem_layout` must be valid for `self`, i.e. it must be the same `elem_layout` used to
779 /// initially construct `self`
780 /// - `elem_layout`'s size must be a multiple of its alignment
781 /// - The sum of `len` and `additional` must be greater than the current capacity
782 unsafe fn grow_exact(
783 &mut self,
784 len: usize,
785 additional: usize,
786 elem_layout: Layout,
787 ) -> Result<(), TryReserveError> {
788 if elem_layout.size() == 0 {
789 // Since we return a capacity of `usize::MAX` when the type size is
790 // 0, getting to here necessarily means the `RawVec` is overfull.
791 return Err(CapacityOverflow.into());
792 }
793
794 let cap = len.checked_add(additional).ok_or(CapacityOverflow)?;
795
796 // SAFETY: preconditions passed to caller
797 let ptr = unsafe { self.finish_grow(cap, elem_layout)? };
798
799 // SAFETY: `finish_grow` would have failed if `cap > isize::MAX`
800 unsafe { self.set_ptr_and_cap(ptr, cap) };
801 Ok(())
802 }
803
804 /// # Safety
805 /// - `elem_layout` must be valid for `self`, i.e. it must be the same `elem_layout` used to
806 /// initially construct `self`
807 /// - `elem_layout`'s size must be a multiple of its alignment
808 /// - `cap` must be less than or equal to `self.capacity(elem_layout.size())`
809 #[inline]
810 unsafe fn shrink(&mut self, cap: usize, elem_layout: Layout) -> Result<(), TryReserveError> {
811 assert!(cap <= self.capacity(elem_layout.size()), "Tried to shrink to a larger capacity");
812 // SAFETY: Just checked this isn't trying to grow
813 unsafe { self.shrink_unchecked(cap, elem_layout) }
814 }
815
816 /// `shrink`, but without the capacity check.
817 ///
818 /// This is split out so that `shrink` can inline the check, since it
819 /// optimizes out in things like `shrink_to_fit`, without needing to
820 /// also inline all this code, as doing that ends up failing the
821 /// `vec-shrink-panic` codegen test when `shrink_to_fit` ends up being too
822 /// big for LLVM to be willing to inline.
823 ///
824 /// # Safety
825 /// `cap <= self.capacity()`
826 unsafe fn shrink_unchecked(
827 &mut self,
828 cap: usize,
829 elem_layout: Layout,
830 ) -> Result<(), TryReserveError> {
831 // SAFETY: Precondition passed to caller
832 let Some((ptr, layout)) = (unsafe { self.current_memory(elem_layout) }) else {
833 return Ok(());
834 };
835
836 // If shrinking to 0, deallocate the buffer. We don't reach this point
837 // for the T::IS_ZST case since current_memory() will have returned
838 // None.
839 if cap == 0 {
840 unsafe { self.alloc.deallocate(ptr, layout) };
841 self.ptr =
842 unsafe { Unique::new_unchecked(ptr::without_provenance_mut(elem_layout.align())) };
843 self.cap = ZERO_CAP;
844 } else {
845 let ptr = unsafe {
846 // Layout cannot overflow here because it would have
847 // overflowed earlier when capacity was larger.
848 let new_size = elem_layout.size().unchecked_mul(cap);
849 let new_layout = Layout::from_size_align_unchecked(new_size, layout.align());
850 self.alloc
851 .shrink(ptr, layout, new_layout)
852 .map_err(|_| AllocError { layout: new_layout, non_exhaustive: () })?
853 };
854 // SAFETY: if the allocation is valid, then the capacity is too
855 unsafe {
856 self.set_ptr_and_cap(ptr, cap);
857 }
858 }
859 Ok(())
860 }
861}
862
863#[rustc_const_unstable(feature = "const_heap", issue = "79597")]
864const impl<A: [const] Allocator> RawVecInner<A> {
865 /// # Safety
866 ///
867 /// This function deallocates the owned allocation, but does not update `ptr` or `cap` to
868 /// prevent double-free or use-after-free. Essentially, do not do anything with the caller
869 /// after this function returns.
870 /// Ideally this function would take `self` by move, but it cannot because it exists to be
871 /// called from a `Drop` impl.
872 unsafe fn deallocate(&mut self, elem_layout: Layout) {
873 // SAFETY: Precondition passed to caller
874 if let Some((ptr, layout)) = unsafe { self.current_memory(elem_layout) } {
875 unsafe {
876 self.alloc.deallocate(ptr, layout);
877 }
878 }
879 }
880}
881
882// Central function for reserve error handling.
883#[cfg(not(no_global_oom_handling))]
884#[cold]
885#[optimize(size)]
886#[rustc_const_unstable(feature = "const_heap", issue = "79597")]
887const fn handle_error(e: TryReserveError) -> ! {
888 match e.kind() {
889 CapacityOverflow => capacity_overflow(),
890 AllocError { layout, .. } => handle_alloc_error(layout),
891 }
892}
893
894#[inline]
895#[rustc_const_unstable(feature = "const_heap", issue = "79597")]
896const fn layout_array(cap: usize, elem_layout: Layout) -> Result<Layout, TryReserveError> {
897 // This is only used with `elem_layout`s which are those of real rust types,
898 // which lets us use the much-simpler `repeat_packed`.
899 debug_assert!(elem_layout.size() == elem_layout.pad_to_align().size());
900
901 elem_layout.repeat_packed(cap).map_err(const |_| CapacityOverflow.into())
902}