From 034dd340b08be1f2f0477ad16131d609f9dbd53c Mon Sep 17 00:00:00 2001 From: Linus Torvalds Date: Sun, 30 Aug 2026 09:22:00 -0700 Subject: Merge tag 'trace-v7.3-2' of git://git.kernel.org/pub/scm/linux/kernel/git/trace/linux-trace Pull tracing fixes from Steven Rostedt: - Fix error output of boot instance creation failure Currently if a boot instance creation fails, instead of printing out the name of the instance that failed, it prints "(null)". That is because it prints "cur_str" that had already been processed by strsep(). Print the saved name instead. While at it, print the error code of the failure. - Fix use-after-free for same named historgrams Histograms can be named so that they can be used in multiple events. But if the named histogram has a variable attached, the second event that uses the named histogram which duplicates it and needs to free the original after duplication leaves the old variable in place and still visible. If another histogram uses than variable, it will use the stale one which will try to reference the freed duplicate histogram and crash the kernel. Free the duplicate variables along with the duplicated histogram data. - Check return value of kthread_run() in event self test The events self tests uses a kthread for testing but does not check if it succeeded in creating a kthread. If the kthread creation were to fail, the code will still try to call kthread_stop() on the error returned. - Fix race between reading trace_pipe and updating subbuffer size If a user is reading the trace_pipe file at the same time they update the ring buffer sub-buffer size, can cause the trace_pipe read to read stale data. Add trace_access_lock() around updating the ring buffer sub-buffer size. - Fix eventfs_inode on failure path in creation of the events directory In the creation of the "events" directory, if after allocating the eventfs_inode a failure is detected, it calls cleanup_ei() which calls free_ei(). The free_ei() will test if eventfs_inode being freed has no children. It is a bug if it does. But on the failure case of the creation of the "events" directory, the children lists have not yet been initialized and the free will trigger a warning because list_empty() on an uninitialized list returns false. Move the initialization into init_ei() where it makes more sense and makes sure that a created eventfs_inode has its lists initialized upon creation. - Check return value of kthread_run() in ftrace direct sample code The sample code that shows how to use the ftrace direct calls does not test the return of kthread_run() to see if it succeeds. Return a failure if the kthread_run() doesn't succeed. - Clear user events state on fork in case of alloc failure On fork, the child gets a pointer to the parent's user events state. It makes a copy of it then updates the child's pointer to it. But if the allocation fails, the duplication function leaves the child with a pointer to its parent's descriptor. When the child cleans up its data, it will free the parent's descriptor while the parent is still using it. In the duplication function, set the child's user_event_mm to NULL before testing if the allocation succeeded, and when it exits it will not free the parent's descriptor. - Fix retry exhaustion in simple ring buffer reader swap simple_ring_buffer_swap_reader_page() starts with retry set to 8 and post-decrements it only after a failed link replacement. On the final attempt, a successful replacement leaves retry at zero, while a failed replacement leaves it at -1. But the check for success expects the retry value to be non-zero and exits with an error on zero. This is the opposite result. Fix it. - Fail nicely when the remote swap_reader_page() returns an error Currently, if the swap_reader_page() of a remote buffer fails, it triggers a WARN_ON_ONCE() and continues normally. Instead, have it exit with an error and a pr_warn() print instead of a full WARNING. * tag 'trace-v7.3-2' of git://git.kernel.org/pub/scm/linux/kernel/git/trace/linux-trace: ring-buffer: Stop remote reader update when page swap fails tracing: Fix retry exhaustion in simple ring buffer reader swap tracing/user_events: Clear copied tracing state before fork duplication samples/ftrace: Fix kthread_stop() on ERR_PTR in ftrace-direct-multi-modify samples/ftrace: Fix kthread_stop() on ERR_PTR in ftrace-direct-modify eventfs: Initialize ei->children and ei->list in init_ei() tracing: Fix use-after-free in trace_pipe read on sub-buffer order change tracing: Fix crash passing ERR_PTR to kthread_stop() tracing: Fix use-after-free with same-name named triggers tracing: Fix logged instance name on creation failure --- rust/pin-init/src/__internal.rs | 409 +++++++++ rust/pin-init/src/alloc.rs | 160 ++++ rust/pin-init/src/lib.rs | 1803 +++++++++++++++++++++++++++++++++++++++ 3 files changed, 2372 insertions(+) create mode 100644 rust/pin-init/src/__internal.rs create mode 100644 rust/pin-init/src/alloc.rs create mode 100644 rust/pin-init/src/lib.rs (limited to 'rust/pin-init/src') diff --git a/rust/pin-init/src/__internal.rs b/rust/pin-init/src/__internal.rs new file mode 100644 index 000000000..8e9fd18b9 --- /dev/null +++ b/rust/pin-init/src/__internal.rs @@ -0,0 +1,409 @@ +// SPDX-License-Identifier: Apache-2.0 OR MIT + +//! This module contains library internal items. +//! +//! These items must not be used outside of this crate and the pin-init-internal crate located at +//! `../internal`. + +use super::*; + +/// Zero-sized type used to mark a type as invariant. +/// +/// This is a polyfill for the [unstable type] in the standard library of the same name. +/// +/// See the [nomicon] for what subtyping is. See also [this table]. +/// +/// [unstable type]: https://doc.rust-lang.org/nightly/std/marker/struct.PhantomInvariant.html +/// [nomicon]: https://doc.rust-lang.org/nomicon/subtyping.html +/// [this table]: https://doc.rust-lang.org/nomicon/phantom-data.html#table-of-phantomdata-patterns +#[repr(transparent)] +pub struct PhantomInvariant(PhantomData T>); + +impl Clone for PhantomInvariant { + #[inline(always)] + fn clone(&self) -> Self { + *self + } +} + +impl Copy for PhantomInvariant {} + +impl Default for PhantomInvariant { + #[inline(always)] + fn default() -> Self { + Self::new() + } +} + +impl PhantomInvariant { + #[inline(always)] + pub const fn new() -> Self { + Self(PhantomData) + } +} + +/// Zero-sized type used to mark a lifetime as invariant. +/// +/// This is a polyfill for the [unstable type] in the standard library of the same name. +/// +/// [unstable type]: https://doc.rust-lang.org/nightly/std/marker/struct.PhantomInvariantLifetime.html +#[repr(transparent)] +#[derive(Clone, Copy, Default)] +pub struct PhantomInvariantLifetime<'a>(PhantomInvariant<&'a ()>); + +impl PhantomInvariantLifetime<'_> { + #[inline(always)] + pub const fn new() -> Self { + Self(PhantomInvariant::new()) + } +} + +/// Token type to signify successful initialization. +/// +/// Can only be constructed via the unsafe [`Self::new`] function. The initializer macros use this +/// token type to prevent returning `Ok` from an initializer without initializing all fields. +pub struct InitOk(()); + +impl InitOk { + /// Creates a new token. + /// + /// # Safety + /// + /// This function may only be called from the `init!` macro in `../internal/src/init.rs`. + #[inline(always)] + pub unsafe fn new() -> Self { + Self(()) + } +} + +/// This trait is only implemented via the `#[pin_data]` proc-macro. It is used to facilitate +/// the pin projections within the initializers. +/// +/// # Safety +/// +/// Only the `init` module is allowed to use this trait. +pub unsafe trait HasPinData { + type PinData; + + #[expect(clippy::missing_safety_doc)] + unsafe fn __pin_data() -> Self::PinData; +} + +/// This trait is automatically implemented for every type. It aims to provide the same type +/// inference help as `HasPinData`. +/// +/// # Safety +/// +/// Only the `init` module is allowed to use this trait. +pub unsafe trait HasInitData { + type InitData; + + #[expect(clippy::missing_safety_doc)] + unsafe fn __init_data() -> Self::InitData; +} + +pub struct AllData(PhantomInvariant); + +impl Clone for AllData { + #[inline] + fn clone(&self) -> Self { + *self + } +} + +impl Copy for AllData {} + +impl AllData { + /// Type inference helper function. + #[inline(always)] + pub fn __make_closure(self, f: F) -> F + where + F: FnOnce(*mut T) -> Result, + { + f + } +} + +// SAFETY: TODO. +unsafe impl HasInitData for T { + type InitData = AllData; + + #[inline] + unsafe fn __init_data() -> Self::InitData { + AllData(PhantomInvariant::new()) + } +} + +/// Stack initializer helper type. Use [`stack_pin_init`] instead of this primitive. +/// +/// # Invariants +/// +/// If `self.is_init` is true, then `self.value` is initialized. +/// +/// [`stack_pin_init`]: crate::stack_pin_init +pub struct StackInit { + value: MaybeUninit, + is_init: bool, +} + +impl Drop for StackInit { + #[inline] + fn drop(&mut self) { + if self.is_init { + // SAFETY: As we are being dropped, we only call this once. And since `self.is_init` is + // true, `self.value` is initialized. + unsafe { self.value.assume_init_drop() }; + } + } +} + +impl StackInit { + /// Creates a new [`StackInit`] that is uninitialized. Use [`stack_pin_init`] instead of this + /// primitive. + /// + /// [`stack_pin_init`]: crate::stack_pin_init + #[inline] + pub fn uninit() -> Self { + Self { + value: MaybeUninit::uninit(), + is_init: false, + } + } + + /// Initializes the contents and returns the result. + #[inline] + pub fn init(self: Pin<&mut Self>, init: impl PinInit) -> Result, E> { + // SAFETY: We never move out of `this`. + let this = unsafe { Pin::into_inner_unchecked(self) }; + // The value is currently initialized, so it needs to be dropped before we can reuse + // the memory (this is a safety guarantee of `Pin`). + if this.is_init { + this.is_init = false; + // SAFETY: `this.is_init` was true and therefore `this.value` is initialized. + unsafe { this.value.assume_init_drop() }; + } + // SAFETY: The memory slot is valid and this type ensures that it will stay pinned. + unsafe { init.__init(this.value.as_mut_ptr())? }; + // INVARIANT: `this.value` is initialized above. + this.is_init = true; + // SAFETY: The slot is now pinned, since we will never give access to `&mut T`. + Ok(unsafe { Pin::new_unchecked(this.value.assume_init_mut()) }) + } +} + +#[test] +#[cfg(feature = "std")] +fn stack_init_reuse() { + use ::std::{borrow::ToOwned, println, string::String}; + use core::pin::pin; + + #[derive(Debug)] + struct Foo { + a: usize, + b: String, + } + let mut slot: Pin<&mut StackInit> = pin!(StackInit::uninit()); + let value: Result, core::convert::Infallible> = + slot.as_mut().init(crate::init!(Foo { + a: 42, + b: "Hello".to_owned(), + })); + let value = value.unwrap(); + println!("{value:?}"); + let value: Result, core::convert::Infallible> = + slot.as_mut().init(crate::init!(Foo { + a: 24, + b: "world!".to_owned(), + })); + let value = value.unwrap(); + println!("{value:?}"); +} + +// Marker types that determines type of `DropGuard`'s let bindings. +pub struct Pinned; +pub struct Unpinned; + +/// Represent an uninitialized field. +/// +/// # Invariants +/// +/// - `ptr` is valid, properly aligned and points to uninitialized and exclusively accessed memory. +/// - If `P` is `Pinned`, then `ptr` is structurally pinned. +pub struct Slot { + ptr: *mut T, + _phantom: PhantomData

, +} + +impl Slot { + /// # Safety + /// + /// - `ptr` is valid, properly aligned and points to uninitialized and exclusively accessed + /// memory. + /// - If `P` is `Pinned`, then `ptr` is structurally pinned. + #[inline(always)] + pub unsafe fn new(ptr: *mut T) -> Self { + // INVARIANT: Per safety requirement. + Self { + ptr, + _phantom: PhantomData, + } + } + + /// Initialize the field by value. + #[inline(always)] + pub fn write(self, value: T) -> DropGuard + where + T: Sized, + { + // SAFETY: `self.ptr` is a valid and aligned pointer for write. + unsafe { self.ptr.write(value) } + // SAFETY: + // - `self.ptr` is valid and properly aligned per type invariant. + // - `*self.ptr` is initialized above and the ownership is transferred to the guard. + // - If `P` is `Pinned`, `self.ptr` is pinned. + unsafe { DropGuard::new(self.ptr) } + } +} + +impl Slot { + /// Initialize the field. + #[inline(always)] + pub fn init(self, init: impl Init) -> Result, E> { + // SAFETY: + // - `self.ptr` is valid and properly aligned. + // - when `Err` is returned, we also propagate the error without touching `slot`; + // also `self` is consumed so it cannot be touched further. + unsafe { init.__init(self.ptr)? }; + + // SAFETY: + // - `self.ptr` is valid and properly aligned per type invariant. + // - `*self.ptr` is initialized above and the ownership is transferred to the guard. + Ok(unsafe { DropGuard::new(self.ptr) }) + } +} + +impl Slot { + /// Initialize the field. + #[inline(always)] + pub fn init(self, init: impl PinInit) -> Result, E> { + // SAFETY: + // - `self.ptr` is valid and properly aligned. + // - when `Err` is returned, we also propagate the error without touching `ptr`; + // also `self` is consumed so it cannot be touched further. + // - the drop guard will not hand out `&mut` (only `Pin<&mut T>`). + unsafe { init.__init(self.ptr)? }; + + // SAFETY: + // - `self.ptr` is valid, properly aligned and pinned per type invariant. + // - `*self.ptr` is initialized above and the ownership is transferred to the guard. + Ok(unsafe { DropGuard::new(self.ptr) }) + } +} + +/// When a value of this type is dropped, it drops a `T`. +/// +/// Can be forgotten to prevent the drop. +/// +/// # Invariants +/// +/// - `ptr` is valid and properly aligned. +/// - `*ptr` is initialized and owned by this guard. +/// - if `P` is `Pinned`, `ptr` is pinned. +pub struct DropGuard { + ptr: *mut T, + phantom: PhantomData

, +} + +impl DropGuard { + /// Creates a drop guard and transfer the ownership of the pointer content. + /// + /// The ownership is only relinguished if the guard is forgotten via [`core::mem::forget`]. + /// + /// # Safety + /// + /// - `ptr` is valid and properly aligned. + /// - `*ptr` is initialized, and the ownership is transferred to this guard. + /// - if `P` is `Pinned`, `ptr` is pinned. + #[inline] + pub unsafe fn new(ptr: *mut T) -> Self { + // INVARIANT: By safety requirement. + Self { + ptr, + phantom: PhantomData, + } + } +} + +impl DropGuard { + /// Create a let binding for accessor use. + #[inline] + pub fn let_binding(&mut self) -> &mut T { + // SAFETY: Per type invariant. + unsafe { &mut *self.ptr } + } +} + +impl DropGuard { + /// Create a let binding for accessor use. + #[inline] + pub fn let_binding(&mut self) -> Pin<&mut T> { + // SAFETY: `self.ptr` is valid, properly aligned, initialized, exclusively accessible and + // pinned per type invariant. + unsafe { Pin::new_unchecked(&mut *self.ptr) } + } +} + +impl Drop for DropGuard { + #[inline] + fn drop(&mut self) { + // SAFETY: `self.ptr` is valid, properly aligned and `*self.ptr` is owned by this guard. + unsafe { ptr::drop_in_place(self.ptr) } + } +} + +/// Token used by `PinnedDrop` to prevent calling the function without creating this unsafely +/// created struct. This is needed, because the `drop` function is safe, but should not be called +/// manually. +pub struct OnlyCallFromDrop(()); + +impl OnlyCallFromDrop { + /// # Safety + /// + /// This function should only be called from the [`Drop::drop`] function and only be used to + /// delegate the destruction to the pinned destructor [`PinnedDrop::drop`] of the same type. + pub unsafe fn new() -> Self { + Self(()) + } +} + +/// Initializer that always fails. +/// +/// Used by [`assert_pinned!`]. +/// +/// [`assert_pinned!`]: crate::assert_pinned +pub struct AlwaysFail { + _t: PhantomData, +} + +impl AlwaysFail { + /// Creates a new initializer that always fails. + #[inline] + pub fn new() -> Self { + Self { _t: PhantomData } + } +} + +impl Default for AlwaysFail { + #[inline] + fn default() -> Self { + Self::new() + } +} + +// SAFETY: `__init` always fails, which is always okay. +unsafe impl PinInit for AlwaysFail { + #[inline] + unsafe fn __init(self, _slot: *mut T) -> Result<(), ()> { + Err(()) + } +} diff --git a/rust/pin-init/src/alloc.rs b/rust/pin-init/src/alloc.rs new file mode 100644 index 000000000..471652e86 --- /dev/null +++ b/rust/pin-init/src/alloc.rs @@ -0,0 +1,160 @@ +// SPDX-License-Identifier: Apache-2.0 OR MIT + +#[cfg(all(feature = "alloc", not(feature = "std")))] +use alloc::{boxed::Box, sync::Arc}; +#[cfg(feature = "alloc")] +use core::alloc::AllocError; +use core::{mem::MaybeUninit, pin::Pin}; +#[cfg(feature = "std")] +use std::sync::Arc; + +#[cfg(not(feature = "alloc"))] +type AllocError = core::convert::Infallible; + +use crate::{ + init_from_closure, pin_init_from_closure, InPlaceWrite, Init, PinInit, ZeroableOption, +}; + +pub extern crate alloc; + +// SAFETY: All zeros is equivalent to `None` (option layout optimization guarantee: +// ). +unsafe impl ZeroableOption for Box {} + +/// Smart pointer that can initialize memory in-place. +pub trait InPlaceInit: Sized { + /// Use the given pin-initializer to pin-initialize a `T` inside of a new smart pointer of this + /// type. + /// + /// If `T: !Unpin` it will not be able to move afterwards. + fn try_pin_init(init: impl PinInit) -> Result, E> + where + E: From; + + /// Use the given pin-initializer to pin-initialize a `T` inside of a new smart pointer of this + /// type. + /// + /// If `T: !Unpin` it will not be able to move afterwards. + #[inline] + fn pin_init(init: impl PinInit) -> Result, AllocError> { + // SAFETY: We delegate to `init` and only change the error type. + let init = unsafe { + pin_init_from_closure(|slot| match init.__init(slot) { + Ok(()) => Ok(()), + Err(i) => match i {}, + }) + }; + Self::try_pin_init(init) + } + + /// Use the given initializer to in-place initialize a `T`. + fn try_init(init: impl Init) -> Result + where + E: From; + + /// Use the given initializer to in-place initialize a `T`. + #[inline] + fn init(init: impl Init) -> Result { + // SAFETY: We delegate to `init` and only change the error type. + let init = unsafe { + init_from_closure(|slot| match init.__init(slot) { + Ok(()) => Ok(()), + Err(i) => match i {}, + }) + }; + Self::try_init(init) + } +} + +#[cfg(feature = "alloc")] +macro_rules! try_new_uninit { + ($type:ident) => { + $type::try_new_uninit()? + }; +} +#[cfg(all(feature = "std", not(feature = "alloc")))] +macro_rules! try_new_uninit { + ($type:ident) => { + $type::new_uninit() + }; +} + +impl InPlaceInit for Box { + #[inline] + fn try_pin_init(init: impl PinInit) -> Result, E> + where + E: From, + { + try_new_uninit!(Box).write_pin_init(init) + } + + #[inline] + fn try_init(init: impl Init) -> Result + where + E: From, + { + try_new_uninit!(Box).write_init(init) + } +} + +impl InPlaceInit for Arc { + #[inline] + fn try_pin_init(init: impl PinInit) -> Result, E> + where + E: From, + { + let mut this = try_new_uninit!(Arc); + let Some(slot) = Arc::get_mut(&mut this) else { + // SAFETY: the Arc has just been created and has no external references + unsafe { core::hint::unreachable_unchecked() } + }; + let slot = slot.as_mut_ptr(); + // SAFETY: When init errors/panics, slot will get deallocated but not dropped, + // slot is valid and will not be moved, because we pin it later. + unsafe { init.__init(slot)? }; + // SAFETY: All fields have been initialized and this is the only `Arc` to that data. + Ok(unsafe { Pin::new_unchecked(this.assume_init()) }) + } + + #[inline] + fn try_init(init: impl Init) -> Result + where + E: From, + { + let mut this = try_new_uninit!(Arc); + let Some(slot) = Arc::get_mut(&mut this) else { + // SAFETY: the Arc has just been created and has no external references + unsafe { core::hint::unreachable_unchecked() } + }; + let slot = slot.as_mut_ptr(); + // SAFETY: When init errors/panics, slot will get deallocated but not dropped, + // slot is valid. + unsafe { init.__init(slot)? }; + // SAFETY: All fields have been initialized. + Ok(unsafe { this.assume_init() }) + } +} + +impl InPlaceWrite for Box> { + type Initialized = Box; + + #[inline] + fn write_init(mut self, init: impl Init) -> Result { + let slot = self.as_mut_ptr(); + // SAFETY: When init errors/panics, slot will get deallocated but not dropped, + // slot is valid. + unsafe { init.__init(slot)? }; + // SAFETY: All fields have been initialized. + Ok(unsafe { self.assume_init() }) + } + + #[inline] + fn write_pin_init(mut self, init: impl PinInit) -> Result, E> { + let slot = self.as_mut_ptr(); + // SAFETY: When init errors/panics, slot will get deallocated but not dropped, + // slot is valid and will not be moved, because we pin it later. + unsafe { init.__init(slot)? }; + // SAFETY: All fields have been initialized. + Ok(unsafe { self.assume_init() }.into()) + } +} diff --git a/rust/pin-init/src/lib.rs b/rust/pin-init/src/lib.rs new file mode 100644 index 000000000..7600cdbbb --- /dev/null +++ b/rust/pin-init/src/lib.rs @@ -0,0 +1,1803 @@ +// SPDX-License-Identifier: Apache-2.0 OR MIT + +//! Library to safely and fallibly initialize pinned `struct`s using in-place constructors. +//! +//! [Pinning][pinning] is Rust's way of ensuring data does not move. +//! +//! It also allows in-place initialization of big `struct`s that would otherwise produce a stack +//! overflow. +//! +//! This library's main use-case is in [Rust-for-Linux]. Although this version can be used +//! standalone. +//! +//! There are cases when you want to in-place initialize a struct. For example when it is very big +//! and moving it from the stack is not an option, because it is bigger than the stack itself. +//! Another reason would be that you need the address of the object to initialize it. This stands +//! in direct conflict with Rust's normal process of first initializing an object and then moving +//! it into it's final memory location. For more information, see +//! . +//! +//! This library allows you to do in-place initialization safely. +//! +//! ## Nightly Needed for `alloc` feature +//! +//! This library requires the [`allocator_api` unstable feature] when the `alloc` feature is +//! enabled and thus this feature can only be used with a nightly compiler. When enabling the +//! `alloc` feature, the user will be required to activate `allocator_api` as well. +//! +//! [`allocator_api` unstable feature]: https://doc.rust-lang.org/nightly/unstable-book/library-features/allocator-api.html +//! +//! The feature is enabled by default, thus by default `pin-init` will require a nightly compiler. +//! However, using the crate on stable compilers is possible by disabling `alloc`. In practice this +//! will require the `std` feature, because stable compilers have neither `Box` nor `Arc` in no-std +//! mode. +//! +//! ## Nightly needed for `unsafe-pinned` feature +//! +//! This feature enables the `Wrapper` implementation on the unstable `core::pin::UnsafePinned` type. +//! This requires the [`unsafe_pinned` unstable feature](https://github.com/rust-lang/rust/issues/125735) +//! and therefore a nightly compiler. Note that this feature is not enabled by default. +//! +//! # Overview +//! +//! To initialize a `struct` with an in-place constructor you will need two things: +//! - an in-place constructor, +//! - a memory location that can hold your `struct` (this can be the [stack], an [`Arc`], +//! [`Box`] or any other smart pointer that supports this library). +//! +//! To get an in-place constructor there are generally three options: +//! - directly creating an in-place constructor using the [`pin_init!`] macro, +//! - a custom function/macro returning an in-place constructor provided by someone else, +//! - using the unsafe function [`pin_init_from_closure()`] to manually create an initializer. +//! +//! Aside from pinned initialization, this library also supports in-place construction without +//! pinning, the macros/types/functions are generally named like the pinned variants without the +//! `pin_` prefix. +//! +//! # Examples +//! +//! Throughout the examples we will often make use of the `CMutex` type which can be found in +//! `../examples/mutex.rs`. It is essentially a userland rebuild of the `struct mutex` type from +//! the Linux kernel. It also uses a wait list and a basic spinlock. Importantly the wait list +//! requires it to be pinned to be locked and thus is a prime candidate for using this library. +//! +//! ## Using the [`pin_init!`] macro +//! +//! If you want to use [`PinInit`], then you will have to annotate your `struct` with +//! `#[`[`pin_data`]`]`. It is a macro that uses `#[pin]` as a marker for +//! [structurally pinned fields]. After doing this, you can then create an in-place constructor via +//! [`pin_init!`]. The syntax is almost the same as normal `struct` initializers. The difference is +//! that you need to write `<-` instead of `:` for fields that you want to initialize in-place. +//! +//! ```rust +//! # #![feature(allocator_api)] +//! # #[path = "../examples/mutex.rs"] mod mutex; use mutex::*; +//! # use core::pin::Pin; +//! use pin_init::{pin_data, pin_init, InPlaceInit}; +//! +//! #[pin_data] +//! struct Foo { +//! #[pin] +//! a: CMutex, +//! b: u32, +//! } +//! +//! let foo = pin_init!(Foo { +//! a <- CMutex::new(42), +//! b: 24, +//! }); +//! # let _ = Box::pin_init(foo); +//! ``` +//! +//! `foo` now is of the type [`impl PinInit`]. We can now use any smart pointer that we like +//! (or just the stack) to actually initialize a `Foo`: +//! +//! ```rust +//! # #![feature(allocator_api)] +//! # #[path = "../examples/mutex.rs"] mod mutex; use mutex::*; +//! # use core::{alloc::AllocError, pin::Pin}; +//! # use pin_init::*; +//! # +//! # #[pin_data] +//! # struct Foo { +//! # #[pin] +//! # a: CMutex, +//! # b: u32, +//! # } +//! # +//! # let foo = pin_init!(Foo { +//! # a <- CMutex::new(42), +//! # b: 24, +//! # }); +//! let foo: Result>, AllocError> = Box::pin_init(foo); +//! ``` +//! +//! For more information see the [`pin_init!`] macro. +//! +//! ## Using a custom function/macro that returns an initializer +//! +//! Many types that use this library supply a function/macro that returns an initializer, because +//! the above method only works for types where you can access the fields. +//! +//! ```rust +//! # #![feature(allocator_api)] +//! # #[path = "../examples/mutex.rs"] mod mutex; use mutex::*; +//! # use pin_init::*; +//! # use std::sync::Arc; +//! # use core::pin::Pin; +//! let mtx: Result>>, _> = Arc::pin_init(CMutex::new(42)); +//! ``` +//! +//! To declare an init macro/function you just return an [`impl PinInit`]: +//! +//! ```rust +//! # #![feature(allocator_api)] +//! # use pin_init::*; +//! # #[path = "../examples/error.rs"] mod error; use error::Error; +//! # #[path = "../examples/mutex.rs"] mod mutex; use mutex::*; +//! #[pin_data] +//! struct DriverData { +//! #[pin] +//! status: CMutex, +//! buffer: Box<[u8; 1_000_000]>, +//! } +//! +//! impl DriverData { +//! fn new() -> impl PinInit { +//! pin_init!(Self { +//! status <- CMutex::new(0), +//! buffer: Box::init(pin_init::init_zeroed())?, +//! }? Error) +//! } +//! } +//! ``` +//! +//! ## Manual creation of an initializer +//! +//! Often when working with primitives the previous approaches are not sufficient. That is where +//! [`pin_init_from_closure()`] comes in. This `unsafe` function allows you to create a +//! [`impl PinInit`] directly from a closure. Of course you have to ensure that the closure +//! actually does the initialization in the correct way. Here are the things to look out for +//! (we are calling the parameter to the closure `slot`): +//! - when the closure returns `Ok(())`, then it has completed the initialization successfully, so +//! `slot` now contains a valid bit pattern for the type `T`, +//! - when the closure returns `Err(e)`, then the caller may deallocate the memory at `slot`, so +//! you need to take care to clean up anything if your initialization fails mid-way, +//! - you may assume that `slot` will stay pinned even after the closure returns until `drop` of +//! `slot` gets called. +//! +//! ```rust +//! # #![feature(extern_types)] +//! use pin_init::{pin_data, pinned_drop, PinInit, PinnedDrop, pin_init_from_closure}; +//! use core::{ +//! marker::PhantomPinned, +//! cell::UnsafeCell, +//! pin::Pin, +//! mem::MaybeUninit, +//! }; +//! mod bindings { +//! #[repr(C)] +//! pub struct foo { +//! /* fields from C ... */ +//! } +//! extern "C" { +//! pub fn init_foo(ptr: *mut foo); +//! pub fn destroy_foo(ptr: *mut foo); +//! #[must_use = "you must check the error return code"] +//! pub fn enable_foo(ptr: *mut foo, flags: u32) -> i32; +//! } +//! } +//! +//! /// # Invariants +//! /// +//! /// `foo` is always initialized +//! #[pin_data(PinnedDrop)] +//! pub struct RawFoo { +//! #[pin] +//! _p: PhantomPinned, +//! #[pin] +//! foo: UnsafeCell>, +//! } +//! +//! impl RawFoo { +//! pub fn new(flags: u32) -> impl PinInit { +//! // SAFETY: +//! // - when the closure returns `Ok(())`, then it has successfully initialized and +//! // enabled `foo`, +//! // - when it returns `Err(e)`, then it has cleaned up before +//! unsafe { +//! pin_init_from_closure(move |slot: *mut Self| { +//! // `slot` contains uninit memory, avoid creating a reference. +//! let foo = &raw mut (*slot).foo; +//! let foo = UnsafeCell::raw_get(foo).cast::(); +//! +//! // Initialize the `foo` +//! bindings::init_foo(foo); +//! +//! // Try to enable it. +//! let err = bindings::enable_foo(foo, flags); +//! if err != 0 { +//! // Enabling has failed, first clean up the foo and then return the error. +//! bindings::destroy_foo(foo); +//! Err(err) +//! } else { +//! // All fields of `RawFoo` have been initialized, since `_p` is a ZST. +//! Ok(()) +//! } +//! }) +//! } +//! } +//! } +//! +//! #[pinned_drop] +//! impl PinnedDrop for RawFoo { +//! fn drop(self: Pin<&mut Self>) { +//! // SAFETY: Since `foo` is initialized, destroying is safe. +//! unsafe { bindings::destroy_foo(self.foo.get().cast::()) }; +//! } +//! } +//! ``` +//! +//! For more information on how to use [`pin_init_from_closure()`], take a look at the uses inside +//! the `kernel` crate. The [`sync`] module is a good starting point. +//! +//! [`sync`]: https://rust.docs.kernel.org/kernel/sync/index.html +//! [pinning]: https://doc.rust-lang.org/std/pin/index.html +//! [structurally pinned fields]: +//! https://doc.rust-lang.org/std/pin/index.html#projections-and-structural-pinning +//! [stack]: crate::stack_pin_init +#![cfg_attr( + kernel, + doc = "[`Arc`]: https://rust.docs.kernel.org/kernel/sync/struct.Arc.html" +)] +#![cfg_attr( + kernel, + doc = "[`Box`]: https://rust.docs.kernel.org/kernel/alloc/kbox/struct.Box.html" +)] +#![cfg_attr(not(kernel), doc = "[`Arc`]: alloc::alloc::sync::Arc")] +#![cfg_attr(not(kernel), doc = "[`Box`]: alloc::alloc::boxed::Box")] +//! [`impl PinInit`]: crate::PinInit +//! [`impl PinInit`]: crate::PinInit +//! [`impl Init`]: crate::Init +//! [Rust-for-Linux]: https://rust-for-linux.com/ + +#![forbid(missing_docs, unsafe_op_in_unsafe_fn)] +#![cfg_attr(not(feature = "std"), no_std)] +#![cfg_attr(feature = "alloc", feature(allocator_api))] +#![cfg_attr( + all(feature = "unsafe-pinned", CONFIG_RUSTC_HAS_UNSAFE_PINNED), + feature(unsafe_pinned) +)] +#![cfg_attr(all(USE_RUSTC_FEATURES, doc), allow(internal_features))] +#![cfg_attr(all(USE_RUSTC_FEATURES, doc), feature(rustdoc_internals))] + +use core::{ + cell::UnsafeCell, + convert::Infallible, + marker::PhantomData, + mem::MaybeUninit, + num::*, + pin::Pin, + ptr::{self, NonNull}, +}; + +// This is used by doc-tests -- the proc-macros expand to `::pin_init::...` and without this the +// doc-tests wouldn't have an extern crate named `pin_init`. +#[allow(unused_extern_crates)] +extern crate self as pin_init; + +#[doc(hidden)] +pub mod __internal; + +#[cfg(any(feature = "std", feature = "alloc"))] +mod alloc; +#[cfg(any(feature = "std", feature = "alloc"))] +pub use alloc::InPlaceInit; + +/// Used to specify the pinning information of the fields of a struct. +/// +/// This is somewhat similar in purpose as +/// [pin-project-lite](https://crates.io/crates/pin-project-lite). +/// Place this macro on a struct definition and then `#[pin]` in front of the attributes of each +/// field you want to structurally pin. +/// +/// This macro enables the use of the [`pin_init!`] macro. When pin-initializing a `struct`, +/// then `#[pin]` directs the type of initializer that is required. +/// +/// If your `struct` implements `Drop`, then you need to add `PinnedDrop` as arguments to this +/// macro, and change your `Drop` implementation to `PinnedDrop` annotated with +/// `#[`[`macro@pinned_drop`]`]`, since dropping pinned values requires extra care. +/// +/// # Examples +/// +/// ``` +/// # #![feature(allocator_api)] +/// # #[path = "../examples/mutex.rs"] mod mutex; use mutex::*; +/// use pin_init::pin_data; +/// +/// enum Command { +/// /* ... */ +/// } +/// +/// #[pin_data] +/// struct DriverData { +/// #[pin] +/// queue: CMutex>, +/// buf: Box<[u8; 1024 * 1024]>, +/// } +/// ``` +/// +/// ``` +/// # #![feature(allocator_api)] +/// # #[path = "../examples/mutex.rs"] mod mutex; use mutex::*; +/// # mod bindings { pub struct info; pub unsafe fn destroy_info(_: *mut info) {} } +/// use core::pin::Pin; +/// use pin_init::{pin_data, pinned_drop, PinnedDrop}; +/// +/// enum Command { +/// /* ... */ +/// } +/// +/// #[pin_data(PinnedDrop)] +/// struct DriverData { +/// #[pin] +/// queue: CMutex>, +/// buf: Box<[u8; 1024 * 1024]>, +/// raw_info: *mut bindings::info, +/// } +/// +/// #[pinned_drop] +/// impl PinnedDrop for DriverData { +/// fn drop(self: Pin<&mut Self>) { +/// unsafe { bindings::destroy_info(self.raw_info) }; +/// } +/// } +/// ``` +pub use ::pin_init_internal::pin_data; + +/// Used to implement `PinnedDrop` safely. +/// +/// Only works on structs that are annotated via `#[`[`macro@pin_data`]`]`. +/// +/// # Examples +/// +/// ``` +/// # #![feature(allocator_api)] +/// # #[path = "../examples/mutex.rs"] mod mutex; use mutex::*; +/// # mod bindings { pub struct info; pub unsafe fn destroy_info(_: *mut info) {} } +/// use core::pin::Pin; +/// use pin_init::{pin_data, pinned_drop, PinnedDrop}; +/// +/// enum Command { +/// /* ... */ +/// } +/// +/// #[pin_data(PinnedDrop)] +/// struct DriverData { +/// #[pin] +/// queue: CMutex>, +/// buf: Box<[u8; 1024 * 1024]>, +/// raw_info: *mut bindings::info, +/// } +/// +/// #[pinned_drop] +/// impl PinnedDrop for DriverData { +/// fn drop(self: Pin<&mut Self>) { +/// unsafe { bindings::destroy_info(self.raw_info) }; +/// } +/// } +/// ``` +pub use ::pin_init_internal::pinned_drop; + +/// Derives the [`Zeroable`] trait for the given `struct` or `union`. +/// +/// This can only be used for `struct`s/`union`s where every field implements the [`Zeroable`] +/// trait. +/// +/// # Examples +/// +/// ``` +/// use pin_init::Zeroable; +/// +/// #[derive(Zeroable)] +/// pub struct DriverData { +/// pub(crate) id: i64, +/// buf_ptr: *mut u8, +/// len: usize, +/// } +/// ``` +/// +/// ``` +/// use pin_init::Zeroable; +/// +/// #[derive(Zeroable)] +/// pub union SignCast { +/// signed: i64, +/// unsigned: u64, +/// } +/// ``` +pub use ::pin_init_internal::Zeroable; + +/// Derives the [`Zeroable`] trait for the given `struct` or `union` if all fields implement +/// [`Zeroable`]. +/// +/// Contrary to the derive macro named [`macro@Zeroable`], this one silently fails when a field +/// doesn't implement [`Zeroable`]. +/// +/// # Examples +/// +/// ``` +/// use pin_init::MaybeZeroable; +/// +/// // implements `Zeroable` +/// #[derive(MaybeZeroable)] +/// pub struct DriverData { +/// pub(crate) id: i64, +/// buf_ptr: *mut u8, +/// len: usize, +/// } +/// +/// // does not implement `Zeroable` +/// #[derive(MaybeZeroable)] +/// pub struct DriverData2 { +/// pub(crate) id: i64, +/// buf_ptr: *mut u8, +/// len: usize, +/// // this field doesn't implement `Zeroable` +/// other_data: &'static i32, +/// } +/// ``` +pub use ::pin_init_internal::MaybeZeroable; + +/// Initialize and pin a type directly on the stack. +/// +/// # Examples +/// +/// ```rust +/// # #![feature(allocator_api)] +/// # #[path = "../examples/mutex.rs"] mod mutex; use mutex::*; +/// # use pin_init::*; +/// # use core::pin::Pin; +/// #[pin_data] +/// struct Foo { +/// #[pin] +/// a: CMutex, +/// b: Bar, +/// } +/// +/// #[pin_data] +/// struct Bar { +/// x: u32, +/// } +/// +/// stack_pin_init!(let foo = pin_init!(Foo { +/// a <- CMutex::new(42), +/// b: Bar { +/// x: 64, +/// }, +/// })); +/// let foo: Pin<&mut Foo> = foo; +/// println!("a: {}", &*foo.a.lock()); +/// ``` +/// +/// # Syntax +/// +/// A normal `let` binding with optional type annotation. The expression is expected to implement +/// [`PinInit`]/[`Init`] with the error type [`Infallible`]. If you want to use a different error +/// type, then use [`stack_try_pin_init!`]. +#[macro_export] +macro_rules! stack_pin_init { + (let $var:ident $(: $t:ty)? = $val:expr) => { + let val = $val; + let mut $var = ::core::pin::pin!($crate::__internal::StackInit$(::<$t>)?::uninit()); + let mut $var = match $crate::__internal::StackInit::init($var, val) { + Ok(res) => res, + Err(x) => { + let x: ::core::convert::Infallible = x; + match x {} + } + }; + }; +} + +/// Initialize and pin a type directly on the stack. +/// +/// # Examples +/// +/// ```rust +/// # #![feature(allocator_api)] +/// # #[path = "../examples/error.rs"] mod error; use error::Error; +/// # #[path = "../examples/mutex.rs"] mod mutex; use mutex::*; +/// # use pin_init::*; +/// #[pin_data] +/// struct Foo { +/// #[pin] +/// a: CMutex, +/// b: Box, +/// } +/// +/// struct Bar { +/// x: u32, +/// } +/// +/// stack_try_pin_init!(let foo: Foo = pin_init!(Foo { +/// a <- CMutex::new(42), +/// b: Box::try_new(Bar { +/// x: 64, +/// })?, +/// }? Error)); +/// let foo = foo.unwrap(); +/// println!("a: {}", &*foo.a.lock()); +/// ``` +/// +/// ```rust +/// # #![feature(allocator_api)] +/// # #[path = "../examples/error.rs"] mod error; use error::Error; +/// # #[path = "../examples/mutex.rs"] mod mutex; use mutex::*; +/// # use pin_init::*; +/// #[pin_data] +/// struct Foo { +/// #[pin] +/// a: CMutex, +/// b: Box, +/// } +/// +/// struct Bar { +/// x: u32, +/// } +/// +/// stack_try_pin_init!(let foo: Foo =? pin_init!(Foo { +/// a <- CMutex::new(42), +/// b: Box::try_new(Bar { +/// x: 64, +/// })?, +/// }? Error)); +/// println!("a: {}", &*foo.a.lock()); +/// # Ok::<_, Error>(()) +/// ``` +/// +/// # Syntax +/// +/// A normal `let` binding with optional type annotation. The expression is expected to implement +/// [`PinInit`]/[`Init`]. This macro assigns a result to the given variable, adding a `?` after the +/// `=` will propagate this error. +#[macro_export] +macro_rules! stack_try_pin_init { + (let $var:ident $(: $t:ty)? = $val:expr) => { + let val = $val; + let mut $var = ::core::pin::pin!($crate::__internal::StackInit$(::<$t>)?::uninit()); + let mut $var = $crate::__internal::StackInit::init($var, val); + }; + (let $var:ident $(: $t:ty)? =? $val:expr) => { + let val = $val; + let mut $var = ::core::pin::pin!($crate::__internal::StackInit$(::<$t>)?::uninit()); + let mut $var = $crate::__internal::StackInit::init($var, val)?; + }; +} + +/// Construct an in-place, fallible pinned initializer for `struct`s. +/// +/// The error type defaults to [`Infallible`]; if you need a different one, write `? Error` at the +/// end, after the struct initializer. +/// +/// The syntax is almost identical to that of a normal `struct` initializer: +/// +/// ```rust +/// # use pin_init::*; +/// # use core::pin::Pin; +/// #[pin_data] +/// struct Foo { +/// a: usize, +/// b: Bar, +/// } +/// +/// #[pin_data] +/// struct Bar { +/// x: u32, +/// } +/// +/// # fn demo() -> impl PinInit { +/// let a = 42; +/// +/// let initializer = pin_init!(Foo { +/// a, +/// b: Bar { +/// x: 64, +/// }, +/// }); +/// # initializer } +/// # Box::pin_init(demo()).unwrap(); +/// ``` +/// +/// Arbitrary Rust expressions can be used to set the value of a variable. +/// +/// The fields are initialized in the order that they appear in the initializer. So it is possible +/// to read already initialized fields using raw pointers. +/// +/// IMPORTANT: You are not allowed to create references to fields of the struct inside of the +/// initializer. +/// +/// # Init-functions +/// +/// When working with this library it is often desired to let others construct your types without +/// giving access to all fields. This is where you would normally write a plain function `new` that +/// would return a new instance of your type. With this library that is also possible. However, +/// there are a few extra things to keep in mind. +/// +/// To create an initializer function, simply declare it like this: +/// +/// ```rust +/// # use pin_init::*; +/// # use core::pin::Pin; +/// # #[pin_data] +/// # struct Foo { +/// # a: usize, +/// # b: Bar, +/// # } +/// # #[pin_data] +/// # struct Bar { +/// # x: u32, +/// # } +/// impl Foo { +/// fn new() -> impl PinInit { +/// pin_init!(Self { +/// a: 42, +/// b: Bar { +/// x: 64, +/// }, +/// }) +/// } +/// } +/// ``` +/// +/// Users of `Foo` can now create it like this: +/// +/// ```rust +/// # use pin_init::*; +/// # use core::pin::Pin; +/// # #[pin_data] +/// # struct Foo { +/// # a: usize, +/// # b: Bar, +/// # } +/// # #[pin_data] +/// # struct Bar { +/// # x: u32, +/// # } +/// # impl Foo { +/// # fn new() -> impl PinInit { +/// # pin_init!(Self { +/// # a: 42, +/// # b: Bar { +/// # x: 64, +/// # }, +/// # }) +/// # } +/// # } +/// let foo = Box::pin_init(Foo::new()); +/// ``` +/// +/// They can also easily embed it into their own `struct`s: +/// +/// ```rust +/// # use pin_init::*; +/// # use core::pin::Pin; +/// # #[pin_data] +/// # struct Foo { +/// # a: usize, +/// # b: Bar, +/// # } +/// # #[pin_data] +/// # struct Bar { +/// # x: u32, +/// # } +/// # impl Foo { +/// # fn new() -> impl PinInit { +/// # pin_init!(Self { +/// # a: 42, +/// # b: Bar { +/// # x: 64, +/// # }, +/// # }) +/// # } +/// # } +/// #[pin_data] +/// struct FooContainer { +/// #[pin] +/// foo1: Foo, +/// #[pin] +/// foo2: Foo, +/// other: u32, +/// } +/// +/// impl FooContainer { +/// fn new(other: u32) -> impl PinInit { +/// pin_init!(Self { +/// foo1 <- Foo::new(), +/// foo2 <- Foo::new(), +/// other, +/// }) +/// } +/// } +/// ``` +/// +/// Here we see that when using `pin_init!` with `PinInit`, one needs to write `<-` instead of `:`. +/// This signifies that the given field is initialized in-place. As with `struct` initializers, just +/// writing the field (in this case `other`) without `:` or `<-` means `other: other,`. +/// +/// # Syntax +/// +/// As already mentioned in the examples above, inside of `pin_init!` a `struct` initializer with +/// the following modifications is expected: +/// - Fields that you want to initialize in-place have to use `<-` instead of `:`. +/// - You can use `_: { /* run any user-code here */ },` anywhere where you can place fields in +/// order to run arbitrary code. +/// - In front of the initializer you can write `&this in` to have access to a [`NonNull`] +/// pointer named `this` inside of the initializer. +/// - Using struct update syntax one can place `..Zeroable::init_zeroed()` at the very end of the +/// struct, this initializes every field with 0 and then runs all initializers specified in the +/// body. This can only be done if [`Zeroable`] is implemented for the struct. +/// +/// For instance: +/// +/// ```rust +/// # use pin_init::*; +/// # use core::marker::PhantomPinned; +/// #[pin_data] +/// #[derive(Zeroable)] +/// struct Buf { +/// // `ptr` points into `buf`. +/// ptr: *mut u8, +/// buf: [u8; 64], +/// #[pin] +/// pin: PhantomPinned, +/// } +/// +/// let init = pin_init!(&this in Buf { +/// buf: [0; 64], +/// // SAFETY: TODO. +/// ptr: unsafe { (&raw mut (*this.as_ptr()).buf).cast() }, +/// pin: PhantomPinned, +/// }); +/// let init = pin_init!(Buf { +/// buf: [1; 64], +/// ..Zeroable::init_zeroed() +/// }); +/// ``` +/// +/// [`NonNull`]: core::ptr::NonNull +pub use pin_init_internal::pin_init; + +/// Construct an in-place, fallible initializer for `struct`s. +/// +/// This macro defaults the error to [`Infallible`]; if you need a different one, write `? Error` +/// at the end, after the struct initializer. +/// +/// The syntax is identical to [`pin_init!`] and its safety caveats also apply: +/// - `unsafe` code must guarantee either full initialization or return an error and allow +/// deallocation of the memory. +/// - the fields are initialized in the order given in the initializer. +/// - no references to fields are allowed to be created inside of the initializer. +/// +/// This initializer is for initializing data in-place that might later be moved. If you want to +/// pin-initialize, use [`pin_init!`]. +/// +/// # Examples +/// +/// ```rust +/// # #![feature(allocator_api)] +/// # #[path = "../examples/error.rs"] mod error; use error::Error; +/// # #[path = "../examples/mutex.rs"] mod mutex; use mutex::*; +/// # use pin_init::InPlaceInit; +/// use pin_init::{init, Init, init_zeroed}; +/// +/// struct BigBuf { +/// small: [u8; 1024 * 1024], +/// } +/// +/// impl BigBuf { +/// fn new() -> impl Init { +/// init!(Self { +/// small <- init_zeroed(), +/// }) +/// } +/// } +/// # let _ = Box::init(BigBuf::new()); +/// ``` +pub use pin_init_internal::init; + +/// Asserts that a field on a struct using `#[pin_data]` is marked with `#[pin]` ie. that it is +/// structurally pinned. +/// +/// # Examples +/// +/// This will succeed: +/// ``` +/// use pin_init::{pin_data, assert_pinned}; +/// +/// #[pin_data] +/// struct MyStruct { +/// #[pin] +/// some_field: u64, +/// } +/// +/// assert_pinned!(MyStruct, some_field, u64); +/// ``` +/// +/// This will fail: +/// ```compile_fail +/// use pin_init::{pin_data, assert_pinned}; +/// +/// #[pin_data] +/// struct MyStruct { +/// some_field: u64, +/// } +/// +/// assert_pinned!(MyStruct, some_field, u64); +/// ``` +/// +/// Some uses of the macro may trigger the `can't use generic parameters from outer item` error. To +/// work around this, you may pass the `inline` parameter to the macro. The `inline` parameter can +/// only be used when the macro is invoked from a function body. +/// ``` +/// # use core::pin::Pin; +/// use pin_init::{pin_data, assert_pinned}; +/// +/// #[pin_data] +/// struct Foo { +/// #[pin] +/// elem: T, +/// } +/// +/// impl Foo { +/// fn project_this(self: Pin<&mut Self>) -> Pin<&mut T> { +/// assert_pinned!(Foo, elem, T, inline); +/// +/// // SAFETY: The field is structurally pinned. +/// unsafe { self.map_unchecked_mut(|me| &mut me.elem) } +/// } +/// } +/// ``` +#[macro_export] +macro_rules! assert_pinned { + ($ty:ty, $field:ident, $field_ty:ty, inline) => { + // SAFETY: This code is unreachable. + let _ = move |ptr: *mut $ty| unsafe { + let data = <$ty as $crate::__internal::HasPinData>::__pin_data(); + _ = data + .$field(ptr) + .init($crate::__internal::AlwaysFail::<$field_ty>::new()); + }; + }; + + ($ty:ty, $field:ident, $field_ty:ty) => { + const _: () = { + $crate::assert_pinned!($ty, $field, $field_ty, inline); + }; + }; +} + +/// A pin-initializer for the type `T`. +/// +/// To use this initializer, you will need a suitable memory location that can hold a `T`. This can +/// be [`Box`], [`Arc`] or even the stack (see [`stack_pin_init!`]). +/// +/// Also see the [module description](self). +/// +/// # Safety +/// +/// When implementing this trait you will need to take great care. Also there are probably very few +/// cases where a manual implementation is necessary. Use [`pin_init_from_closure`] where possible. +/// +/// The [`PinInit::__init`] function: +/// - returns `Ok(())` if it initialized every field of `slot`, +/// - returns `Err(err)` if it encountered an error and then cleaned `slot`, this means: +/// - `slot` can be deallocated without UB occurring, +/// - `slot` does not need to be dropped, +/// - `slot` is not partially initialized. +/// - while constructing the `T` at `slot` it upholds the pinning invariants of `T`. +/// +#[cfg_attr( + kernel, + doc = "[`Arc`]: https://rust.docs.kernel.org/kernel/sync/struct.Arc.html" +)] +#[cfg_attr( + kernel, + doc = "[`Box`]: https://rust.docs.kernel.org/kernel/alloc/kbox/struct.Box.html" +)] +#[cfg_attr(not(kernel), doc = "[`Arc`]: alloc::alloc::sync::Arc")] +#[cfg_attr(not(kernel), doc = "[`Box`]: alloc::alloc::boxed::Box")] +#[must_use = "An initializer must be used in order to create its value."] +pub unsafe trait PinInit: Sized { + /// Alias of [`PinInit::__init`]. + /// + /// New code should use `__init` instead. + /// + /// # Safety + /// + /// Same as `__init`. + #[inline(always)] + #[cfg(not(kernel))] + #[deprecated = "use `raw_try_init` instead"] + unsafe fn __pinned_init(self, slot: *mut T) -> Result<(), E> { + // SAFETY: Per safety requirement. + unsafe { self.__init(slot) } + } + + /// Initializes `slot`. + /// + /// It is not recommended to call this directly. Use [`raw_init`] or [`raw_try_init`]. + /// + /// # Safety + /// + /// - `slot` is a valid pointer to uninitialized memory. + /// - the caller does not touch `slot` when `Err` is returned, they are only permitted to + /// deallocate. + /// - `slot` will not move until it is dropped, i.e. it will be pinned. + /// If `Self: Init`, this requirement is cancelled and it may be moved. + unsafe fn __init(self, slot: *mut T) -> Result<(), E>; + + /// First initializes the value using `self` then calls the function `f` with the initialized + /// value. + /// + /// If `f` returns an error the value is dropped and the initializer will forward the error. + /// + /// # Examples + /// + /// ```rust + /// # #![feature(allocator_api)] + /// # #[path = "../examples/mutex.rs"] mod mutex; use mutex::*; + /// # use pin_init::*; + /// let mtx_init = CMutex::new(42); + /// // Make the initializer print the value. + /// let mtx_init = mtx_init.pin_chain(|mtx| { + /// println!("{:?}", mtx.get_data_mut()); + /// Ok(()) + /// }); + /// ``` + #[inline] + fn pin_chain(self, f: F) -> ChainPinInit + where + F: FnOnce(Pin<&mut T>) -> Result<(), E>, + { + ChainPinInit(self, f, __internal::PhantomInvariant::new()) + } +} + +/// Initializes `slot` with an initializer. +/// +/// # Safety +/// +/// - `slot` is a valid pointer to uninitialized memory. +/// - `slot` will not move until it is dropped, i.e. it will be pinned. +/// If `init` implements `Init`, this requirement is cancelled and it may be moved. +#[inline(always)] +pub unsafe fn raw_init(slot: *mut T, init: impl PinInit) { + // SAFETY: Per safety requirement. + unsafe { init.__init(slot).unwrap_or_else(|e| match e {}) } +} + +/// Fallibly initializes `slot` with an initializer. +/// +/// # Safety +/// +/// - `slot` is a valid pointer to uninitialized memory. +/// - the caller does not touch `slot` when `Err` is returned, they are only permitted to +/// deallocate. +/// - `slot` will not move until it is dropped, i.e. it will be pinned. +/// If `init` implements `Init`, this requirement is cancelled and it may be moved. +#[inline(always)] +pub unsafe fn raw_try_init(slot: *mut T, init: impl PinInit) -> Result<(), E> { + // SAFETY: Per safety requirement. + unsafe { init.__init(slot) } +} + +/// An initializer returned by [`PinInit::pin_chain`]. +pub struct ChainPinInit(I, F, __internal::PhantomInvariant<(E, T)>); + +// SAFETY: The `__init` function is implemented such that it +// - returns `Ok(())` on successful initialization, +// - returns `Err(err)` on error and in this case `slot` will be dropped. +// - considers `slot` pinned. +unsafe impl PinInit for ChainPinInit +where + I: PinInit, + F: FnOnce(Pin<&mut T>) -> Result<(), E>, +{ + #[inline] + unsafe fn __init(self, slot: *mut T) -> Result<(), E> { + // SAFETY: All requirements fulfilled since this function is `__init`. + let slot = unsafe { __internal::Slot::<__internal::Pinned, _>::new(slot) }; + let mut guard = slot.init(self.0)?; + (self.1)(guard.let_binding())?; + core::mem::forget(guard); + Ok(()) + } +} + +/// An initializer for `T`. +/// +/// To use this initializer, you will need a suitable memory location that can hold a `T`. This can +/// be [`Box`], [`Arc`] or even the stack (see [`stack_pin_init!`]). Because +/// [`PinInit`] is a super trait, you can use every function that takes it as well. +/// +/// Also see the [module description](self). +/// +/// # Safety +/// +/// When implementing this trait you will need to take great care. Also there are probably very few +/// cases where a manual implementation is necessary. Use [`init_from_closure`] where possible. +/// +/// The [`PinInit::__init`] function must work without the pinning requirement; the caller is +/// allowed to move the pointee after initialization. +/// +#[cfg_attr( + kernel, + doc = "[`Arc`]: https://rust.docs.kernel.org/kernel/sync/struct.Arc.html" +)] +#[cfg_attr( + kernel, + doc = "[`Box`]: https://rust.docs.kernel.org/kernel/alloc/kbox/struct.Box.html" +)] +#[cfg_attr(not(kernel), doc = "[`Arc`]: alloc::alloc::sync::Arc")] +#[cfg_attr(not(kernel), doc = "[`Box`]: alloc::alloc::boxed::Box")] +#[must_use = "An initializer must be used in order to create its value."] +pub unsafe trait Init: PinInit { + /// First initializes the value using `self` then calls the function `f` with the initialized + /// value. + /// + /// If `f` returns an error the value is dropped and the initializer will forward the error. + /// + /// # Examples + /// + /// ```rust + /// use pin_init::{init, init_zeroed, Init}; + /// + /// struct Foo { + /// buf: [u8; 1_000_000], + /// } + /// + /// impl Foo { + /// fn setup(&mut self) { + /// println!("Setting up foo"); + /// } + /// } + /// + /// let foo = init!(Foo { + /// buf <- init_zeroed() + /// }).chain(|foo| { + /// foo.setup(); + /// Ok(()) + /// }); + /// ``` + #[inline] + fn chain(self, f: F) -> ChainInit + where + F: FnOnce(&mut T) -> Result<(), E>, + { + ChainInit(self, f, __internal::PhantomInvariant::new()) + } +} + +/// An initializer returned by [`Init::chain`]. +pub struct ChainInit(I, F, __internal::PhantomInvariant<(E, T)>); + +// SAFETY: The `__init` function does not rely on the pinning requirement. +unsafe impl Init for ChainInit +where + I: Init, + F: FnOnce(&mut T) -> Result<(), E>, +{ +} + +// SAFETY: The `__init` function is implemented such that it +// - returns `Ok(())` on successful initialization, +// - returns `Err(err)` on error and in this case `slot` will be dropped. +unsafe impl PinInit for ChainInit +where + I: Init, + F: FnOnce(&mut T) -> Result<(), E>, +{ + #[inline] + unsafe fn __init(self, slot: *mut T) -> Result<(), E> { + // SAFETY: All requirements fulfilled since this function is `__init`. + let slot = unsafe { __internal::Slot::<__internal::Unpinned, _>::new(slot) }; + let mut guard = slot.init(self.0)?; + (self.1)(guard.let_binding())?; + core::mem::forget(guard); + Ok(()) + } +} + +/// Implement `PinInit` and `Init` for closures. +/// +/// It is unsafe to create this type, since the closure needs to fulfill the same safety +/// requirement as the `__init` functions. +struct InitClosure(F, __internal::PhantomInvariant); + +// SAFETY: When constructing via `init_from_closure`, the `__init` function does not rely on the +// pinning requirement. When constructing via `pin_init_from_closure`, the opaque type prevents this +// implementation from being visible. +unsafe impl Init for InitClosure where + F: FnOnce(*mut T) -> Result<(), E> +{ +} + +// SAFETY: While constructing the `InitClosure`, the user promised that it upholds the +// `__init` invariants. +unsafe impl PinInit for InitClosure +where + F: FnOnce(*mut T) -> Result<(), E>, +{ + #[inline] + unsafe fn __init(self, slot: *mut T) -> Result<(), E> { + (self.0)(slot) + } +} + +/// Creates a new [`PinInit`] from the given closure. +/// +/// # Safety +/// +/// The closure: +/// - returns `Ok(())` if it initialized every field of `slot`, +/// - returns `Err(err)` if it encountered an error and then cleaned `slot`, this means: +/// - `slot` can be deallocated without UB occurring, +/// - `slot` does not need to be dropped, +/// - `slot` is not partially initialized. +/// - may assume that the `slot` does not move if `T: !Unpin`, +/// - while constructing the `T` at `slot` it upholds the pinning invariants of `T`. +#[inline] +pub const unsafe fn pin_init_from_closure( + f: impl FnOnce(*mut T) -> Result<(), E>, +) -> impl PinInit { + InitClosure(f, __internal::PhantomInvariant::new()) +} + +/// Creates a new [`Init`] from the given closure. +/// +/// # Safety +/// +/// The closure: +/// - returns `Ok(())` if it initialized every field of `slot`, +/// - returns `Err(err)` if it encountered an error and then cleaned `slot`, this means: +/// - `slot` can be deallocated without UB occurring, +/// - `slot` does not need to be dropped, +/// - `slot` is not partially initialized. +/// - the `slot` may move after initialization. +/// - while constructing the `T` at `slot` it upholds the pinning invariants of `T`. +#[inline] +pub const unsafe fn init_from_closure( + f: impl FnOnce(*mut T) -> Result<(), E>, +) -> impl Init { + InitClosure(f, __internal::PhantomInvariant::new()) +} + +/// Changes the to be initialized type. +/// +/// # Safety +/// +/// - `*mut U` must be castable to `*mut T` and any value of type `T` written through such a +/// pointer must result in a valid `U`. +#[inline] +pub const unsafe fn cast_pin_init(init: impl PinInit) -> impl PinInit { + // SAFETY: initialization delegated to a valid initializer. Cast is valid by function safety + // requirements. + unsafe { pin_init_from_closure(|ptr: *mut U| init.__init(ptr.cast::())) } +} + +/// Changes the to be initialized type. +/// +/// # Safety +/// +/// - `*mut U` must be castable to `*mut T` and any value of type `T` written through such a +/// pointer must result in a valid `U`. +#[inline] +pub const unsafe fn cast_init(init: impl Init) -> impl Init { + // SAFETY: initialization delegated to a valid initializer. Cast is valid by function safety + // requirements. + unsafe { init_from_closure(|ptr: *mut U| init.__init(ptr.cast::())) } +} + +/// An initializer that leaves the memory uninitialized. +/// +/// The initializer is a no-op. The `slot` memory is not changed. +#[inline] +pub fn uninit() -> impl Init, E> { + // SAFETY: The memory is allowed to be uninitialized. + unsafe { init_from_closure(|_| Ok(())) } +} + +/// Array initializer from element initializer. +struct ArrayInit(F, __internal::PhantomInvariant); + +// SAFETY: On success, all `N` elements of the array have been initialized. On error or panic, the +// elements that have been initialized so far are dropped, thus leaving the array uninitialized and +// ready to deallocate. +unsafe impl PinInit<[T; N], E> for ArrayInit +where + F: FnMut(usize) -> I, + I: PinInit, +{ + unsafe fn __init(mut self, slot: *mut [T; N]) -> Result<(), E> { + /// # Invariants + /// + /// - `ptr[..num_init]` contains initialized elements of type `T` + /// - `ptr[num_init..N]` (where N is the size of the array) contains uninitialized memory + struct ArrayInitGuard { + /// A pointer to the first element of the array. + ptr: *mut T, + /// The number of initialized elements in the array. + num_init: usize, + } + + impl Drop for ArrayInitGuard { + #[inline] + fn drop(&mut self) { + // SAFETY: Per type invariant, `self.ptr[..self.num_init]` are initialized. + unsafe { + core::ptr::drop_in_place(core::ptr::slice_from_raw_parts_mut( + self.ptr, + self.num_init, + )) + }; + } + } + + // INVARIANT: nothing is initialized yet. + let mut guard = ArrayInitGuard { + ptr: slot.cast::(), + num_init: 0, + }; + + for i in 0..N { + // INVARIANT: Elements `self.ptr[..self.num_init]` have been initialized + // thus far. This holds true for every `self.num_init = i`. + guard.num_init = i; + + let init = (self.0)(i); + // SAFETY: + // - The subslot is derived from `slot` with a valid offset. + // - If `Err` is touched, the subslot is not touched further, the guard will drop + // previously initialized elements only. + // - `slot` is pinned so is the subslot. + unsafe { init.__init(&raw mut (*slot)[i]) }?; + } + + // Dismiss the drop guard now that all elements are initialized. + core::mem::forget(guard); + Ok(()) + } +} + +// SAFETY: `I: Init` cancels out the pinning requirement on subslots, which is the only place in the +// `__init` function that relies on `slot` being pinned. +unsafe impl Init<[T; N], E> for ArrayInit +where + F: FnMut(usize) -> I, + I: Init, +{ +} + +/// Initializes an array by initializing each element via the provided initializer. +/// +/// # Examples +/// +/// ```rust +/// # use pin_init::*; +/// use pin_init::init_array_from_fn; +/// let array: Box<[usize; 1_000]> = Box::init(init_array_from_fn(|i| i)).unwrap(); +/// assert_eq!(array.len(), 1_000); +/// ``` +#[inline] +pub fn init_array_from_fn( + make_init: impl FnMut(usize) -> I, +) -> impl Init<[T; N], E> +where + I: Init, +{ + ArrayInit(make_init, __internal::PhantomInvariant::new()) +} + +/// Initializes an array by initializing each element via the provided initializer. +/// +/// # Examples +/// +/// ```rust +/// # #![feature(allocator_api)] +/// # #[path = "../examples/mutex.rs"] mod mutex; use mutex::*; +/// # use pin_init::*; +/// # use core::pin::Pin; +/// use pin_init::pin_init_array_from_fn; +/// use std::sync::Arc; +/// let array: Pin; 1_000]>> = +/// Arc::pin_init(pin_init_array_from_fn(|i| CMutex::new(i))).unwrap(); +/// assert_eq!(array.len(), 1_000); +/// ``` +#[inline] +pub fn pin_init_array_from_fn( + make_init: impl FnMut(usize) -> I, +) -> impl PinInit<[T; N], E> +where + I: PinInit, +{ + ArrayInit(make_init, __internal::PhantomInvariant::new()) +} + +/// Construct an initializer in a closure and run it. +/// +/// Returns an initializer that first runs the closure and then the initializer returned by it. +/// +/// See also [`init_scope`]. +/// +/// # Examples +/// +/// ``` +/// # use pin_init::*; +/// # #[pin_data] +/// # struct Foo { a: u64, b: isize } +/// # struct Bar { a: u32, b: isize } +/// # fn lookup_bar() -> Result { todo!() } +/// # struct Error; +/// fn init_foo() -> impl PinInit { +/// pin_init_scope(|| { +/// let bar = lookup_bar()?; +/// Ok(pin_init!(Foo { a: bar.a.into(), b: bar.b }? Error)) +/// }) +/// } +/// ``` +/// +/// This initializer will first execute `lookup_bar()`, match on it, if it returned an error, the +/// initializer itself will fail with that error. If it returned `Ok`, then it will run the +/// initializer returned by the [`pin_init!`] invocation. +#[inline] +pub fn pin_init_scope(make_init: F) -> impl PinInit +where + F: FnOnce() -> Result, + I: PinInit, +{ + // SAFETY: + // - If `make_init` returns `Err`, `Err` is returned and `slot` is completely uninitialized, + // - If `make_init` returns `Ok`, safety requirement are fulfilled by `init.__init`. + // - The safety requirements of `init.__init` are fulfilled, since it's being called from an + // initializer. + unsafe { + pin_init_from_closure(move |slot: *mut T| -> Result<(), E> { + let init = make_init()?; + init.__init(slot) + }) + } +} + +/// Construct an initializer in a closure and run it. +/// +/// Returns an initializer that first runs the closure and then the initializer returned by it. +/// +/// See also [`pin_init_scope`]. +/// +/// # Examples +/// +/// ``` +/// # use pin_init::*; +/// # struct Foo { a: u64, b: isize } +/// # struct Bar { a: u32, b: isize } +/// # fn lookup_bar() -> Result { todo!() } +/// # struct Error; +/// fn init_foo() -> impl Init { +/// init_scope(|| { +/// let bar = lookup_bar()?; +/// Ok(init!(Foo { a: bar.a.into(), b: bar.b }? Error)) +/// }) +/// } +/// ``` +/// +/// This initializer will first execute `lookup_bar()`, match on it, if it returned an error, the +/// initializer itself will fail with that error. If it returned `Ok`, then it will run the +/// initializer returned by the [`init!`] invocation. +#[inline] +pub fn init_scope(make_init: F) -> impl Init +where + F: FnOnce() -> Result, + I: Init, +{ + // SAFETY: + // - If `make_init` returns `Err`, `Err` is returned and `slot` is completely uninitialized, + // - If `make_init` returns `Ok`, safety requirement are fulfilled by `init.__init`. + // - The safety requirements of `init.__init` are fulfilled, since it's being called from an + // initializer. + unsafe { + init_from_closure(move |slot: *mut T| -> Result<(), E> { + let init = make_init()?; + init.__init(slot) + }) + } +} + +// SAFETY: The `__init` function does not rely on slot being pinned after it returns. +unsafe impl Init for T {} + +// SAFETY: the `__init` function always returns `Ok(())` and initializes every field of +// `slot`. Additionally, all pinning invariants of `T` are upheld. +unsafe impl PinInit for T { + #[inline] + unsafe fn __init(self, slot: *mut T) -> Result<(), Infallible> { + // SAFETY: `slot` is valid for writes by the safety requirements of this function. + unsafe { slot.write(self) }; + Ok(()) + } +} + +// SAFETY: The `__init` function does not rely on slot being pinned after it returns. +unsafe impl Init for Result {} + +// SAFETY: when the `__init` function returns with +// - `Ok(())`, `slot` was initialized and all pinned invariants of `T` are upheld. +// - `Err(err)`, slot was not written to. +unsafe impl PinInit for Result { + #[inline] + unsafe fn __init(self, slot: *mut T) -> Result<(), E> { + // SAFETY: `slot` is valid for writes by the safety requirements of this function. + unsafe { slot.write(self?) }; + Ok(()) + } +} + +/// Smart pointer containing uninitialized memory and that can write a value. +pub trait InPlaceWrite { + /// The type `Self` turns into when the contents are initialized. + type Initialized; + + /// Use the given initializer to write a value into `self`. + /// + /// Does not drop the current value and considers it as uninitialized memory. + fn write_init(self, init: impl Init) -> Result; + + /// Use the given pin-initializer to write a value into `self`. + /// + /// Does not drop the current value and considers it as uninitialized memory. + fn write_pin_init(self, init: impl PinInit) -> Result, E>; +} + +impl InPlaceWrite for &'static mut MaybeUninit { + type Initialized = &'static mut T; + + #[inline] + fn write_init(self, init: impl Init) -> Result { + let slot = self.as_mut_ptr(); + + // SAFETY: `slot` is a valid pointer to uninitialized memory. + unsafe { init.__init(slot)? }; + + // SAFETY: The above call initialized the memory. + unsafe { Ok(self.assume_init_mut()) } + } + + #[inline] + fn write_pin_init(self, init: impl PinInit) -> Result, E> { + let slot = self.as_mut_ptr(); + + // SAFETY: `slot` is a valid pointer to uninitialized memory. + // + // The `'static` borrow guarantees the data will not be + // moved/invalidated until it gets dropped (which is never). + unsafe { init.__init(slot)? }; + + // SAFETY: The above call initialized the memory. + Ok(Pin::static_mut(unsafe { self.assume_init_mut() })) + } +} + +/// Trait facilitating pinned destruction. +/// +/// Use [`pinned_drop`] to implement this trait safely: +/// +/// ```rust +/// # #![feature(allocator_api)] +/// # #[path = "../examples/mutex.rs"] mod mutex; use mutex::*; +/// # use pin_init::*; +/// use core::pin::Pin; +/// #[pin_data(PinnedDrop)] +/// struct Foo { +/// #[pin] +/// mtx: CMutex, +/// } +/// +/// #[pinned_drop] +/// impl PinnedDrop for Foo { +/// fn drop(self: Pin<&mut Self>) { +/// println!("Foo is being dropped!"); +/// } +/// } +/// ``` +/// +/// # Safety +/// +/// This trait must be implemented via the [`pinned_drop`] proc-macro attribute on the impl. +pub unsafe trait PinnedDrop: __internal::HasPinData { + /// Executes the pinned destructor of this type. + /// + /// While this function is marked safe, it is actually unsafe to call it manually. For this + /// reason it takes an additional parameter. This type can only be constructed by `unsafe` code + /// and thus prevents this function from being called where it should not. + /// + /// This extra parameter will be generated by the `#[pinned_drop]` proc-macro attribute + /// automatically. + fn drop(self: Pin<&mut Self>, only_call_from_drop: __internal::OnlyCallFromDrop); +} + +/// Marker trait for types that can be initialized by writing just zeroes. +/// +/// # Safety +/// +/// The bit pattern consisting of only zeroes is a valid bit pattern for this type. In other words, +/// this is not UB: +/// +/// ```rust,ignore +/// let val: Self = unsafe { core::mem::zeroed() }; +/// ``` +pub unsafe trait Zeroable { + /// Create a new zeroed `Self`. + /// + /// The returned initializer will write `0x00` to every byte of the given `slot`. + #[inline] + fn init_zeroed() -> impl Init + where + Self: Sized, + { + init_zeroed() + } + + /// Create a `Self` consisting of all zeroes. + /// + /// Whenever a type implements [`Zeroable`], this function should be preferred over + /// [`core::mem::zeroed()`] or using `MaybeUninit::zeroed().assume_init()`. + /// + /// As const traits are not yet stable, [`pin_init::zeroed()`] can be used instead + /// when initialization is required in a `const` context. + /// + /// # Examples + /// + /// ``` + /// use pin_init::Zeroable; + /// + /// #[derive(Zeroable)] + /// struct Point { + /// x: u32, + /// y: u32, + /// } + /// + /// let point: Point = Zeroable::zeroed(); + /// assert_eq!(point.x, 0); + /// assert_eq!(point.y, 0); + /// ``` + #[inline] + fn zeroed() -> Self + where + Self: Sized, + { + zeroed() + } +} + +/// Create an initializer for a zeroed `T`. +/// +/// The returned initializer will write `0x00` to every byte of the given `slot`. +#[inline] +pub fn init_zeroed() -> impl Init { + // SAFETY: Because `T: Zeroable`, all bytes zero is a valid bit pattern for `T` + // and because we write all zeroes, the memory is initialized. + unsafe { + init_from_closure(|slot: *mut T| { + slot.write_bytes(0, 1); + Ok(()) + }) + } +} + +/// Create a `T` consisting of all zeroes. +/// +/// Whenever a type implements [`Zeroable`], this function should be preferred over +/// [`core::mem::zeroed()`] or using `MaybeUninit::zeroed().assume_init()`. +/// +/// While const traits remain unstable, this function serves as the `const` version of +/// [`Zeroable::zeroed()`]. +/// +/// # Examples +/// +/// ``` +/// use pin_init::{Zeroable, zeroed}; +/// +/// #[derive(Zeroable)] +/// struct Point { +/// x: u32, +/// y: u32, +/// } +/// +/// let point: Point = zeroed(); +/// assert_eq!(point.x, 0); +/// assert_eq!(point.y, 0); +/// ``` +#[inline] +pub const fn zeroed() -> T { + // SAFETY:By the type invariants of `Zeroable`, all zeroes is a valid bit pattern for `T`. + unsafe { core::mem::zeroed() } +} + +macro_rules! impl_zeroable { + ($($({$($generics:tt)*})? $t:ty, )*) => { + // SAFETY: Safety comments written in the macro invocation. + $(unsafe impl$($($generics)*)? Zeroable for $t {})* + }; +} + +impl_zeroable! { + // SAFETY: All primitives that are allowed to be zero. + bool, + char, + u8, u16, u32, u64, u128, usize, + i8, i16, i32, i64, i128, isize, + f32, f64, + + // Note: do not add uninhabited types (such as `!` or `core::convert::Infallible`) to this list; + // creating an instance of an uninhabited type is immediate undefined behavior. For more on + // uninhabited/empty types, consult The Rustonomicon: + // . The Rust Reference + // also has information on undefined behavior: + // . + // + // SAFETY: These are inhabited ZSTs; there is nothing to zero and a valid value exists. + {} PhantomData, core::marker::PhantomPinned, (), + + // SAFETY: Type is allowed to take any value, including all zeros. + {} MaybeUninit, + + // SAFETY: `T: Zeroable` and `UnsafeCell` is `repr(transparent)`. + {} UnsafeCell, + + // SAFETY: `null` pointer is valid. + // + // We cannot use `T: ?Sized`, since the VTABLE pointer part of fat pointers is not allowed to be + // null. + // + // When `Pointee` gets stabilized, we could use + // `T: ?Sized where ::Metadata: Zeroable` + {} *mut T, {} *const T, + + // SAFETY: `null` pointer is valid and the metadata part of these fat pointers is allowed to be + // zero. + {} *mut [T], {} *const [T], *mut str, *const str, + + // SAFETY: `T` is `Zeroable`. + {} [T; N], {} Wrapping, +} + +macro_rules! impl_tuple_zeroable { + ($first:ident, $(,)?) => { + #[cfg_attr(all(USE_RUSTC_FEATURES, doc), doc(fake_variadic))] + /// Implemented for tuples up to 10 items long. + // SAFETY: All elements are zeroable and padding can be zero. + unsafe impl<$first: Zeroable> Zeroable for ($first,) {} + }; + ($first:ident, $($t:ident),* $(,)?) => { + #[cfg_attr(doc, doc(hidden))] + // SAFETY: All elements are zeroable and padding can be zero. + unsafe impl<$first: Zeroable, $($t: Zeroable),*> Zeroable for ($first, $($t),*) {} + impl_tuple_zeroable!($($t),* ,); + } +} + +impl_tuple_zeroable!(A, B, C, D, E, F, G, H, I, J); + +/// Marker trait for types that allow `Option` to be set to all zeroes in order to write +/// `None` to that location. +/// +/// # Safety +/// +/// The implementer needs to ensure that `unsafe impl Zeroable for Option {}` is sound. +pub unsafe trait ZeroableOption {} + +// SAFETY: by the safety requirement of `ZeroableOption`, this is valid. +unsafe impl Zeroable for Option {} + +macro_rules! impl_fn_zeroable_option { + ([$($abi:literal),* $(,)?] $args:tt) => { + $(impl_fn_zeroable_option!({extern $abi} $args);)* + $(impl_fn_zeroable_option!({unsafe extern $abi} $args);)* + }; + ({$($prefix:tt)*} {$(,)?}) => {}; + ({$($prefix:tt)*} {$ret:ident, $arg:ident $(,)?}) => { + #[cfg_attr(all(USE_RUSTC_FEATURES, doc), doc(fake_variadic))] + /// Implemented for function pointers with up to 20 arity. + // SAFETY: function pointers are part of the option layout optimization: + // . + unsafe impl<$ret, $arg> ZeroableOption for $($prefix)* fn($arg) -> $ret {} + impl_fn_zeroable_option!({$($prefix)*} {$arg,}); + }; + ({$($prefix:tt)*} {$ret:ident, $($rest:ident),* $(,)?}) => { + #[cfg_attr(doc, doc(hidden))] + // SAFETY: function pointers are part of the option layout optimization: + // . + unsafe impl<$ret, $($rest),*> ZeroableOption for $($prefix)* fn($($rest),*) -> $ret {} + impl_fn_zeroable_option!({$($prefix)*} {$($rest),*,}); + }; +} + +impl_fn_zeroable_option!(["Rust", "C"] { A, B, C, D, E, F, G, H, I, J, K, L, M, N, O, P, Q, R, S, T, U }); + +macro_rules! impl_zeroable_option { + ($($({$($generics:tt)*})? $t:ty, )*) => { + // SAFETY: Safety comments written in the macro invocation. + $(unsafe impl$($($generics)*)? ZeroableOption for $t {})* + }; +} + +impl_zeroable_option! { + // SAFETY: `Option<&T>` is part of the option layout optimization guarantee: + // . + {} &T, + // SAFETY: `Option<&mut T>` is part of the option layout optimization guarantee: + // . + {} &mut T, + // SAFETY: `Option>` is part of the option layout optimization guarantee: + // . + {} NonNull, + // SAFETY: All zeros is equivalent to `None` (option layout optimization guarantee: + // ). + NonZero, NonZero, NonZero, NonZero, NonZero, NonZero, + NonZero, NonZero, NonZero, NonZero, NonZero, NonZero, +} + +/// This trait allows creating an instance of `Self` which contains exactly one +/// [structurally pinned value](https://doc.rust-lang.org/std/pin/index.html#projections-and-structural-pinning). +/// +/// This is useful when using wrapper `struct`s like [`UnsafeCell`] or with new-type `struct`s. +/// +/// # Examples +/// +/// ``` +/// # use core::cell::UnsafeCell; +/// # use pin_init::{pin_data, pin_init, Wrapper}; +/// +/// #[pin_data] +/// struct Foo {} +/// +/// #[pin_data] +/// struct Bar { +/// #[pin] +/// content: UnsafeCell +/// }; +/// +/// let foo_initializer = pin_init!(Foo{}); +/// let initializer = pin_init!(Bar { +/// content <- UnsafeCell::pin_init(foo_initializer) +/// }); +/// ``` +pub trait Wrapper { + /// Creates an pin-initializer for a [`Self`] containing `T` from the `value_init` initializer. + fn pin_init(value_init: impl PinInit) -> impl PinInit; +} + +impl Wrapper for UnsafeCell { + #[inline] + fn pin_init(value_init: impl PinInit) -> impl PinInit { + // SAFETY: `UnsafeCell` has a compatible layout to `T`. + unsafe { cast_pin_init(value_init) } + } +} + +impl Wrapper for MaybeUninit { + #[inline] + fn pin_init(value_init: impl PinInit) -> impl PinInit { + // SAFETY: `MaybeUninit` has a compatible layout to `T`. + unsafe { cast_pin_init(value_init) } + } +} + +#[cfg(all(feature = "unsafe-pinned", CONFIG_RUSTC_HAS_UNSAFE_PINNED))] +impl Wrapper for core::pin::UnsafePinned { + #[inline] + fn pin_init(init: impl PinInit) -> impl PinInit { + // SAFETY: `UnsafePinned` has a compatible layout to `T`. + unsafe { cast_pin_init(init) } + } +} -- cgit v1.3.1