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		671618432f
		
	
	
	
	
		
			
			Implement AsPageIter for VBox; this allows to iterate and borrow the backing pages of a VBox. This, for instance, is useful in combination with VBox backing a scatterlist. Reviewed-by: Alice Ryhl <aliceryhl@google.com> Reviewed-by: Alexandre Courbot <acourbot@nvidia.com> Tested-by: Alexandre Courbot <acourbot@nvidia.com> Link: https://lore.kernel.org/r/20250820145434.94745-6-dakr@kernel.org Signed-off-by: Danilo Krummrich <dakr@kernel.org>
		
			
				
	
	
		
			638 lines
		
	
	
	
		
			19 KiB
		
	
	
	
		
			Rust
		
	
	
	
	
	
			
		
		
	
	
			638 lines
		
	
	
	
		
			19 KiB
		
	
	
	
		
			Rust
		
	
	
	
	
	
| // SPDX-License-Identifier: GPL-2.0
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| 
 | ||
| //! Implementation of [`Box`].
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| 
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| #[allow(unused_imports)] // Used in doc comments.
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| use super::allocator::{KVmalloc, Kmalloc, Vmalloc, VmallocPageIter};
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| use super::{AllocError, Allocator, Flags};
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| use core::alloc::Layout;
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| use core::borrow::{Borrow, BorrowMut};
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| use core::fmt;
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| use core::marker::PhantomData;
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| use core::mem::ManuallyDrop;
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| use core::mem::MaybeUninit;
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| use core::ops::{Deref, DerefMut};
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| use core::pin::Pin;
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| use core::ptr::NonNull;
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| use core::result::Result;
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| 
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| use crate::ffi::c_void;
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| use crate::init::InPlaceInit;
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| use crate::page::AsPageIter;
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| use crate::types::ForeignOwnable;
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| use pin_init::{InPlaceWrite, Init, PinInit, ZeroableOption};
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| 
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| /// The kernel's [`Box`] type -- a heap allocation for a single value of type `T`.
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| ///
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| /// This is the kernel's version of the Rust stdlib's `Box`. There are several differences,
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| /// for example no `noalias` attribute is emitted and partially moving out of a `Box` is not
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| /// supported. There are also several API differences, e.g. `Box` always requires an [`Allocator`]
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| /// implementation to be passed as generic, page [`Flags`] when allocating memory and all functions
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| /// that may allocate memory are fallible.
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| ///
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| /// `Box` works with any of the kernel's allocators, e.g. [`Kmalloc`], [`Vmalloc`] or [`KVmalloc`].
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| /// There are aliases for `Box` with these allocators ([`KBox`], [`VBox`], [`KVBox`]).
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| ///
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| /// When dropping a [`Box`], the value is also dropped and the heap memory is automatically freed.
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| ///
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| /// # Examples
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| ///
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| /// ```
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| /// let b = KBox::<u64>::new(24_u64, GFP_KERNEL)?;
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| ///
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| /// assert_eq!(*b, 24_u64);
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| /// # Ok::<(), Error>(())
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| /// ```
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| ///
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| /// ```
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| /// # use kernel::bindings;
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| /// const SIZE: usize = bindings::KMALLOC_MAX_SIZE as usize + 1;
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| /// struct Huge([u8; SIZE]);
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| ///
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| /// assert!(KBox::<Huge>::new_uninit(GFP_KERNEL | __GFP_NOWARN).is_err());
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| /// ```
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| ///
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| /// ```
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| /// # use kernel::bindings;
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| /// const SIZE: usize = bindings::KMALLOC_MAX_SIZE as usize + 1;
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| /// struct Huge([u8; SIZE]);
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| ///
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| /// assert!(KVBox::<Huge>::new_uninit(GFP_KERNEL).is_ok());
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| /// ```
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| ///
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| /// [`Box`]es can also be used to store trait objects by coercing their type:
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| ///
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| /// ```
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| /// trait FooTrait {}
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| ///
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| /// struct FooStruct;
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| /// impl FooTrait for FooStruct {}
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| ///
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| /// let _ = KBox::new(FooStruct, GFP_KERNEL)? as KBox<dyn FooTrait>;
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| /// # Ok::<(), Error>(())
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| /// ```
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| ///
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| /// # Invariants
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| ///
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| /// `self.0` is always properly aligned and either points to memory allocated with `A` or, for
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| /// zero-sized types, is a dangling, well aligned pointer.
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| #[repr(transparent)]
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| #[cfg_attr(CONFIG_RUSTC_HAS_COERCE_POINTEE, derive(core::marker::CoercePointee))]
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| pub struct Box<#[cfg_attr(CONFIG_RUSTC_HAS_COERCE_POINTEE, pointee)] T: ?Sized, A: Allocator>(
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|     NonNull<T>,
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|     PhantomData<A>,
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| );
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| 
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| // This is to allow coercion from `Box<T, A>` to `Box<U, A>` if `T` can be converted to the
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| // dynamically-sized type (DST) `U`.
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| #[cfg(not(CONFIG_RUSTC_HAS_COERCE_POINTEE))]
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| impl<T, U, A> core::ops::CoerceUnsized<Box<U, A>> for Box<T, A>
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| where
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|     T: ?Sized + core::marker::Unsize<U>,
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|     U: ?Sized,
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|     A: Allocator,
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| {
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| }
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| 
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| // This is to allow `Box<U, A>` to be dispatched on when `Box<T, A>` can be coerced into `Box<U,
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| // A>`.
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| #[cfg(not(CONFIG_RUSTC_HAS_COERCE_POINTEE))]
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| impl<T, U, A> core::ops::DispatchFromDyn<Box<U, A>> for Box<T, A>
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| where
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|     T: ?Sized + core::marker::Unsize<U>,
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|     U: ?Sized,
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|     A: Allocator,
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| {
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| }
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| 
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| /// Type alias for [`Box`] with a [`Kmalloc`] allocator.
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| ///
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| /// # Examples
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| ///
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| /// ```
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| /// let b = KBox::new(24_u64, GFP_KERNEL)?;
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| ///
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| /// assert_eq!(*b, 24_u64);
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| /// # Ok::<(), Error>(())
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| /// ```
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| pub type KBox<T> = Box<T, super::allocator::Kmalloc>;
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| 
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| /// Type alias for [`Box`] with a [`Vmalloc`] allocator.
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| ///
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| /// # Examples
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| ///
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| /// ```
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| /// let b = VBox::new(24_u64, GFP_KERNEL)?;
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| ///
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| /// assert_eq!(*b, 24_u64);
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| /// # Ok::<(), Error>(())
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| /// ```
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| pub type VBox<T> = Box<T, super::allocator::Vmalloc>;
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| 
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| /// Type alias for [`Box`] with a [`KVmalloc`] allocator.
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| ///
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| /// # Examples
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| ///
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| /// ```
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| /// let b = KVBox::new(24_u64, GFP_KERNEL)?;
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| ///
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| /// assert_eq!(*b, 24_u64);
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| /// # Ok::<(), Error>(())
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| /// ```
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| pub type KVBox<T> = Box<T, super::allocator::KVmalloc>;
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| 
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| // SAFETY: All zeros is equivalent to `None` (option layout optimization guarantee:
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| // <https://doc.rust-lang.org/stable/std/option/index.html#representation>).
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| unsafe impl<T, A: Allocator> ZeroableOption for Box<T, A> {}
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| 
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| // SAFETY: `Box` is `Send` if `T` is `Send` because the `Box` owns a `T`.
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| unsafe impl<T, A> Send for Box<T, A>
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| where
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|     T: Send + ?Sized,
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|     A: Allocator,
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| {
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| }
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| 
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| // SAFETY: `Box` is `Sync` if `T` is `Sync` because the `Box` owns a `T`.
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| unsafe impl<T, A> Sync for Box<T, A>
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| where
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|     T: Sync + ?Sized,
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|     A: Allocator,
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| {
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| }
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| 
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| impl<T, A> Box<T, A>
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| where
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|     T: ?Sized,
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|     A: Allocator,
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| {
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|     /// Creates a new `Box<T, A>` from a raw pointer.
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|     ///
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|     /// # Safety
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|     ///
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|     /// For non-ZSTs, `raw` must point at an allocation allocated with `A` that is sufficiently
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|     /// aligned for and holds a valid `T`. The caller passes ownership of the allocation to the
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|     /// `Box`.
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|     ///
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|     /// For ZSTs, `raw` must be a dangling, well aligned pointer.
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|     #[inline]
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|     pub const unsafe fn from_raw(raw: *mut T) -> Self {
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|         // INVARIANT: Validity of `raw` is guaranteed by the safety preconditions of this function.
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|         // SAFETY: By the safety preconditions of this function, `raw` is not a NULL pointer.
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|         Self(unsafe { NonNull::new_unchecked(raw) }, PhantomData)
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|     }
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| 
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|     /// Consumes the `Box<T, A>` and returns a raw pointer.
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|     ///
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|     /// This will not run the destructor of `T` and for non-ZSTs the allocation will stay alive
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|     /// indefinitely. Use [`Box::from_raw`] to recover the [`Box`], drop the value and free the
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|     /// allocation, if any.
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|     ///
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|     /// # Examples
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|     ///
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|     /// ```
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|     /// let x = KBox::new(24, GFP_KERNEL)?;
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|     /// let ptr = KBox::into_raw(x);
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|     /// // SAFETY: `ptr` comes from a previous call to `KBox::into_raw`.
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|     /// let x = unsafe { KBox::from_raw(ptr) };
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|     ///
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|     /// assert_eq!(*x, 24);
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|     /// # Ok::<(), Error>(())
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|     /// ```
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|     #[inline]
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|     pub fn into_raw(b: Self) -> *mut T {
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|         ManuallyDrop::new(b).0.as_ptr()
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|     }
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| 
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|     /// Consumes and leaks the `Box<T, A>` and returns a mutable reference.
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|     ///
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|     /// See [`Box::into_raw`] for more details.
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|     #[inline]
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|     pub fn leak<'a>(b: Self) -> &'a mut T {
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|         // SAFETY: `Box::into_raw` always returns a properly aligned and dereferenceable pointer
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|         // which points to an initialized instance of `T`.
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|         unsafe { &mut *Box::into_raw(b) }
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|     }
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| }
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| 
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| impl<T, A> Box<MaybeUninit<T>, A>
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| where
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|     A: Allocator,
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| {
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|     /// Converts a `Box<MaybeUninit<T>, A>` to a `Box<T, A>`.
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|     ///
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|     /// It is undefined behavior to call this function while the value inside of `b` is not yet
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|     /// fully initialized.
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|     ///
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|     /// # Safety
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|     ///
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|     /// Callers must ensure that the value inside of `b` is in an initialized state.
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|     pub unsafe fn assume_init(self) -> Box<T, A> {
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|         let raw = Self::into_raw(self);
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| 
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|         // SAFETY: `raw` comes from a previous call to `Box::into_raw`. By the safety requirements
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|         // of this function, the value inside the `Box` is in an initialized state. Hence, it is
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|         // safe to reconstruct the `Box` as `Box<T, A>`.
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|         unsafe { Box::from_raw(raw.cast()) }
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|     }
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| 
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|     /// Writes the value and converts to `Box<T, A>`.
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|     pub fn write(mut self, value: T) -> Box<T, A> {
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|         (*self).write(value);
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| 
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|         // SAFETY: We've just initialized `b`'s value.
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|         unsafe { self.assume_init() }
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|     }
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| }
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| 
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| impl<T, A> Box<T, A>
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| where
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|     A: Allocator,
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| {
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|     /// Creates a new `Box<T, A>` and initializes its contents with `x`.
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|     ///
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|     /// New memory is allocated with `A`. The allocation may fail, in which case an error is
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|     /// returned. For ZSTs no memory is allocated.
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|     pub fn new(x: T, flags: Flags) -> Result<Self, AllocError> {
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|         let b = Self::new_uninit(flags)?;
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|         Ok(Box::write(b, x))
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|     }
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| 
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|     /// Creates a new `Box<T, A>` with uninitialized contents.
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|     ///
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|     /// New memory is allocated with `A`. The allocation may fail, in which case an error is
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|     /// returned. For ZSTs no memory is allocated.
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|     ///
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|     /// # Examples
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|     ///
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|     /// ```
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|     /// let b = KBox::<u64>::new_uninit(GFP_KERNEL)?;
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|     /// let b = KBox::write(b, 24);
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|     ///
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|     /// assert_eq!(*b, 24_u64);
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|     /// # Ok::<(), Error>(())
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|     /// ```
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|     pub fn new_uninit(flags: Flags) -> Result<Box<MaybeUninit<T>, A>, AllocError> {
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|         let layout = Layout::new::<MaybeUninit<T>>();
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|         let ptr = A::alloc(layout, flags)?;
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| 
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|         // INVARIANT: `ptr` is either a dangling pointer or points to memory allocated with `A`,
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|         // which is sufficient in size and alignment for storing a `T`.
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|         Ok(Box(ptr.cast(), PhantomData))
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|     }
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| 
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|     /// Constructs a new `Pin<Box<T, A>>`. If `T` does not implement [`Unpin`], then `x` will be
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|     /// pinned in memory and can't be moved.
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|     #[inline]
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|     pub fn pin(x: T, flags: Flags) -> Result<Pin<Box<T, A>>, AllocError>
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|     where
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|         A: 'static,
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|     {
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|         Ok(Self::new(x, flags)?.into())
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|     }
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| 
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|     /// Convert a [`Box<T,A>`] to a [`Pin<Box<T,A>>`]. If `T` does not implement
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|     /// [`Unpin`], then `x` will be pinned in memory and can't be moved.
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|     pub fn into_pin(this: Self) -> Pin<Self> {
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|         this.into()
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|     }
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| 
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|     /// Forgets the contents (does not run the destructor), but keeps the allocation.
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|     fn forget_contents(this: Self) -> Box<MaybeUninit<T>, A> {
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|         let ptr = Self::into_raw(this);
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| 
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|         // SAFETY: `ptr` is valid, because it came from `Box::into_raw`.
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|         unsafe { Box::from_raw(ptr.cast()) }
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|     }
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| 
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|     /// Drops the contents, but keeps the allocation.
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|     ///
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|     /// # Examples
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|     ///
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|     /// ```
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|     /// let value = KBox::new([0; 32], GFP_KERNEL)?;
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|     /// assert_eq!(*value, [0; 32]);
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|     /// let value = KBox::drop_contents(value);
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|     /// // Now we can re-use `value`:
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|     /// let value = KBox::write(value, [1; 32]);
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|     /// assert_eq!(*value, [1; 32]);
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|     /// # Ok::<(), Error>(())
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|     /// ```
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|     pub fn drop_contents(this: Self) -> Box<MaybeUninit<T>, A> {
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|         let ptr = this.0.as_ptr();
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| 
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|         // SAFETY: `ptr` is valid, because it came from `this`. After this call we never access the
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|         // value stored in `this` again.
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|         unsafe { core::ptr::drop_in_place(ptr) };
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| 
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|         Self::forget_contents(this)
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|     }
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| 
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|     /// Moves the `Box`'s value out of the `Box` and consumes the `Box`.
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|     pub fn into_inner(b: Self) -> T {
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|         // SAFETY: By the type invariant `&*b` is valid for `read`.
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|         let value = unsafe { core::ptr::read(&*b) };
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|         let _ = Self::forget_contents(b);
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|         value
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|     }
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| }
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| 
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| impl<T, A> From<Box<T, A>> for Pin<Box<T, A>>
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| where
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|     T: ?Sized,
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|     A: Allocator,
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| {
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|     /// Converts a `Box<T, A>` into a `Pin<Box<T, A>>`. If `T` does not implement [`Unpin`], then
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|     /// `*b` will be pinned in memory and can't be moved.
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|     ///
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|     /// This moves `b` into `Pin` without moving `*b` or allocating and copying any memory.
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|     fn from(b: Box<T, A>) -> Self {
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|         // SAFETY: The value wrapped inside a `Pin<Box<T, A>>` cannot be moved or replaced as long
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|         // as `T` does not implement `Unpin`.
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|         unsafe { Pin::new_unchecked(b) }
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|     }
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| }
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| 
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| impl<T, A> InPlaceWrite<T> for Box<MaybeUninit<T>, A>
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| where
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|     A: Allocator + 'static,
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| {
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|     type Initialized = Box<T, A>;
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| 
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|     fn write_init<E>(mut self, init: impl Init<T, E>) -> Result<Self::Initialized, E> {
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|         let slot = self.as_mut_ptr();
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|         // SAFETY: When init errors/panics, slot will get deallocated but not dropped,
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|         // slot is valid.
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|         unsafe { init.__init(slot)? };
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|         // SAFETY: All fields have been initialized.
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|         Ok(unsafe { Box::assume_init(self) })
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|     }
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| 
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|     fn write_pin_init<E>(mut self, init: impl PinInit<T, E>) -> Result<Pin<Self::Initialized>, E> {
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|         let slot = self.as_mut_ptr();
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|         // SAFETY: When init errors/panics, slot will get deallocated but not dropped,
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|         // slot is valid and will not be moved, because we pin it later.
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|         unsafe { init.__pinned_init(slot)? };
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|         // SAFETY: All fields have been initialized.
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|         Ok(unsafe { Box::assume_init(self) }.into())
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|     }
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| }
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| 
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| impl<T, A> InPlaceInit<T> for Box<T, A>
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| where
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|     A: Allocator + 'static,
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| {
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|     type PinnedSelf = Pin<Self>;
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| 
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|     #[inline]
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|     fn try_pin_init<E>(init: impl PinInit<T, E>, flags: Flags) -> Result<Pin<Self>, E>
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|     where
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|         E: From<AllocError>,
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|     {
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|         Box::<_, A>::new_uninit(flags)?.write_pin_init(init)
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|     }
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| 
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|     #[inline]
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|     fn try_init<E>(init: impl Init<T, E>, flags: Flags) -> Result<Self, E>
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|     where
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|         E: From<AllocError>,
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|     {
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|         Box::<_, A>::new_uninit(flags)?.write_init(init)
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|     }
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| }
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| 
 | ||
| // SAFETY: The pointer returned by `into_foreign` comes from a well aligned
 | ||
| // pointer to `T`.
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| unsafe impl<T: 'static, A> ForeignOwnable for Box<T, A>
 | ||
| where
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|     A: Allocator,
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| {
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|     const FOREIGN_ALIGN: usize = core::mem::align_of::<T>();
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|     type Borrowed<'a> = &'a T;
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|     type BorrowedMut<'a> = &'a mut T;
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| 
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|     fn into_foreign(self) -> *mut c_void {
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|         Box::into_raw(self).cast()
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|     }
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| 
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|     unsafe fn from_foreign(ptr: *mut c_void) -> Self {
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|         // SAFETY: The safety requirements of this function ensure that `ptr` comes from a previous
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|         // call to `Self::into_foreign`.
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|         unsafe { Box::from_raw(ptr.cast()) }
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|     }
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| 
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|     unsafe fn borrow<'a>(ptr: *mut c_void) -> &'a T {
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|         // SAFETY: The safety requirements of this method ensure that the object remains alive and
 | ||
|         // immutable for the duration of 'a.
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|         unsafe { &*ptr.cast() }
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|     }
 | ||
| 
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|     unsafe fn borrow_mut<'a>(ptr: *mut c_void) -> &'a mut T {
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|         let ptr = ptr.cast();
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|         // SAFETY: The safety requirements of this method ensure that the pointer is valid and that
 | ||
|         // nothing else will access the value for the duration of 'a.
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|         unsafe { &mut *ptr }
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|     }
 | ||
| }
 | ||
| 
 | ||
| // SAFETY: The pointer returned by `into_foreign` comes from a well aligned
 | ||
| // pointer to `T`.
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| unsafe impl<T: 'static, A> ForeignOwnable for Pin<Box<T, A>>
 | ||
| where
 | ||
|     A: Allocator,
 | ||
| {
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|     const FOREIGN_ALIGN: usize = core::mem::align_of::<T>();
 | ||
|     type Borrowed<'a> = Pin<&'a T>;
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|     type BorrowedMut<'a> = Pin<&'a mut T>;
 | ||
| 
 | ||
|     fn into_foreign(self) -> *mut c_void {
 | ||
|         // SAFETY: We are still treating the box as pinned.
 | ||
|         Box::into_raw(unsafe { Pin::into_inner_unchecked(self) }).cast()
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|     }
 | ||
| 
 | ||
|     unsafe fn from_foreign(ptr: *mut c_void) -> Self {
 | ||
|         // SAFETY: The safety requirements of this function ensure that `ptr` comes from a previous
 | ||
|         // call to `Self::into_foreign`.
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|         unsafe { Pin::new_unchecked(Box::from_raw(ptr.cast())) }
 | ||
|     }
 | ||
| 
 | ||
|     unsafe fn borrow<'a>(ptr: *mut c_void) -> Pin<&'a T> {
 | ||
|         // SAFETY: The safety requirements for this function ensure that the object is still alive,
 | ||
|         // so it is safe to dereference the raw pointer.
 | ||
|         // The safety requirements of `from_foreign` also ensure that the object remains alive for
 | ||
|         // the lifetime of the returned value.
 | ||
|         let r = unsafe { &*ptr.cast() };
 | ||
| 
 | ||
|         // SAFETY: This pointer originates from a `Pin<Box<T>>`.
 | ||
|         unsafe { Pin::new_unchecked(r) }
 | ||
|     }
 | ||
| 
 | ||
|     unsafe fn borrow_mut<'a>(ptr: *mut c_void) -> Pin<&'a mut T> {
 | ||
|         let ptr = ptr.cast();
 | ||
|         // SAFETY: The safety requirements for this function ensure that the object is still alive,
 | ||
|         // so it is safe to dereference the raw pointer.
 | ||
|         // The safety requirements of `from_foreign` also ensure that the object remains alive for
 | ||
|         // the lifetime of the returned value.
 | ||
|         let r = unsafe { &mut *ptr };
 | ||
| 
 | ||
|         // SAFETY: This pointer originates from a `Pin<Box<T>>`.
 | ||
|         unsafe { Pin::new_unchecked(r) }
 | ||
|     }
 | ||
| }
 | ||
| 
 | ||
| impl<T, A> Deref for Box<T, A>
 | ||
| where
 | ||
|     T: ?Sized,
 | ||
|     A: Allocator,
 | ||
| {
 | ||
|     type Target = T;
 | ||
| 
 | ||
|     fn deref(&self) -> &T {
 | ||
|         // SAFETY: `self.0` is always properly aligned, dereferenceable and points to an initialized
 | ||
|         // instance of `T`.
 | ||
|         unsafe { self.0.as_ref() }
 | ||
|     }
 | ||
| }
 | ||
| 
 | ||
| impl<T, A> DerefMut for Box<T, A>
 | ||
| where
 | ||
|     T: ?Sized,
 | ||
|     A: Allocator,
 | ||
| {
 | ||
|     fn deref_mut(&mut self) -> &mut T {
 | ||
|         // SAFETY: `self.0` is always properly aligned, dereferenceable and points to an initialized
 | ||
|         // instance of `T`.
 | ||
|         unsafe { self.0.as_mut() }
 | ||
|     }
 | ||
| }
 | ||
| 
 | ||
| /// # Examples
 | ||
| ///
 | ||
| /// ```
 | ||
| /// # use core::borrow::Borrow;
 | ||
| /// # use kernel::alloc::KBox;
 | ||
| /// struct Foo<B: Borrow<u32>>(B);
 | ||
| ///
 | ||
| /// // Owned instance.
 | ||
| /// let owned = Foo(1);
 | ||
| ///
 | ||
| /// // Owned instance using `KBox`.
 | ||
| /// let owned_kbox = Foo(KBox::new(1, GFP_KERNEL)?);
 | ||
| ///
 | ||
| /// let i = 1;
 | ||
| /// // Borrowed from `i`.
 | ||
| /// let borrowed = Foo(&i);
 | ||
| /// # Ok::<(), Error>(())
 | ||
| /// ```
 | ||
| impl<T, A> Borrow<T> for Box<T, A>
 | ||
| where
 | ||
|     T: ?Sized,
 | ||
|     A: Allocator,
 | ||
| {
 | ||
|     fn borrow(&self) -> &T {
 | ||
|         self.deref()
 | ||
|     }
 | ||
| }
 | ||
| 
 | ||
| /// # Examples
 | ||
| ///
 | ||
| /// ```
 | ||
| /// # use core::borrow::BorrowMut;
 | ||
| /// # use kernel::alloc::KBox;
 | ||
| /// struct Foo<B: BorrowMut<u32>>(B);
 | ||
| ///
 | ||
| /// // Owned instance.
 | ||
| /// let owned = Foo(1);
 | ||
| ///
 | ||
| /// // Owned instance using `KBox`.
 | ||
| /// let owned_kbox = Foo(KBox::new(1, GFP_KERNEL)?);
 | ||
| ///
 | ||
| /// let mut i = 1;
 | ||
| /// // Borrowed from `i`.
 | ||
| /// let borrowed = Foo(&mut i);
 | ||
| /// # Ok::<(), Error>(())
 | ||
| /// ```
 | ||
| impl<T, A> BorrowMut<T> for Box<T, A>
 | ||
| where
 | ||
|     T: ?Sized,
 | ||
|     A: Allocator,
 | ||
| {
 | ||
|     fn borrow_mut(&mut self) -> &mut T {
 | ||
|         self.deref_mut()
 | ||
|     }
 | ||
| }
 | ||
| 
 | ||
| impl<T, A> fmt::Display for Box<T, A>
 | ||
| where
 | ||
|     T: ?Sized + fmt::Display,
 | ||
|     A: Allocator,
 | ||
| {
 | ||
|     fn fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result {
 | ||
|         <T as fmt::Display>::fmt(&**self, f)
 | ||
|     }
 | ||
| }
 | ||
| 
 | ||
| impl<T, A> fmt::Debug for Box<T, A>
 | ||
| where
 | ||
|     T: ?Sized + fmt::Debug,
 | ||
|     A: Allocator,
 | ||
| {
 | ||
|     fn fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result {
 | ||
|         <T as fmt::Debug>::fmt(&**self, f)
 | ||
|     }
 | ||
| }
 | ||
| 
 | ||
| impl<T, A> Drop for Box<T, A>
 | ||
| where
 | ||
|     T: ?Sized,
 | ||
|     A: Allocator,
 | ||
| {
 | ||
|     fn drop(&mut self) {
 | ||
|         let layout = Layout::for_value::<T>(self);
 | ||
| 
 | ||
|         // SAFETY: The pointer in `self.0` is guaranteed to be valid by the type invariant.
 | ||
|         unsafe { core::ptr::drop_in_place::<T>(self.deref_mut()) };
 | ||
| 
 | ||
|         // SAFETY:
 | ||
|         // - `self.0` was previously allocated with `A`.
 | ||
|         // - `layout` is equal to the `Layout´ `self.0` was allocated with.
 | ||
|         unsafe { A::free(self.0.cast(), layout) };
 | ||
|     }
 | ||
| }
 | ||
| 
 | ||
| /// # Examples
 | ||
| ///
 | ||
| /// ```
 | ||
| /// # use kernel::prelude::*;
 | ||
| /// use kernel::alloc::allocator::VmallocPageIter;
 | ||
| /// use kernel::page::{AsPageIter, PAGE_SIZE};
 | ||
| ///
 | ||
| /// let mut vbox = VBox::new((), GFP_KERNEL)?;
 | ||
| ///
 | ||
| /// assert!(vbox.page_iter().next().is_none());
 | ||
| ///
 | ||
| /// let mut vbox = VBox::<[u8; PAGE_SIZE]>::new_uninit(GFP_KERNEL)?;
 | ||
| ///
 | ||
| /// let page = vbox.page_iter().next().expect("At least one page should be available.\n");
 | ||
| ///
 | ||
| /// // SAFETY: There is no concurrent read or write to the same page.
 | ||
| /// unsafe { page.fill_zero_raw(0, PAGE_SIZE)? };
 | ||
| /// # Ok::<(), Error>(())
 | ||
| /// ```
 | ||
| impl<T> AsPageIter for VBox<T> {
 | ||
|     type Iter<'a>
 | ||
|         = VmallocPageIter<'a>
 | ||
|     where
 | ||
|         T: 'a;
 | ||
| 
 | ||
|     fn page_iter(&mut self) -> Self::Iter<'_> {
 | ||
|         let ptr = self.0.cast();
 | ||
|         let size = core::mem::size_of::<T>();
 | ||
| 
 | ||
|         // SAFETY:
 | ||
|         // - `ptr` is a valid pointer to the beginning of a `Vmalloc` allocation.
 | ||
|         // - `ptr` is guaranteed to be valid for the lifetime of `'a`.
 | ||
|         // - `size` is the size of the `Vmalloc` allocation `ptr` points to.
 | ||
|         unsafe { VmallocPageIter::new(ptr, size) }
 | ||
|     }
 | ||
| }
 |