Module core::pin 1.33.0[−][src]
Expand description
Types that pin data to its location in memory.
It is sometimes useful to have objects that are guaranteed not to move, in the sense that their placement in memory does not change, and can thus be relied upon. A prime example of such a scenario would be building self-referential structs, as moving an object with pointers to itself will invalidate them, which could cause undefined behavior.
At a high level, a Pin<P>
ensures that the pointee of any pointer type
P
has a stable location in memory, meaning it cannot be moved elsewhere
and its memory cannot be deallocated until it gets dropped. We say that the
pointee is “pinned”. Things get more subtle when discussing types that
combine pinned with non-pinned data; see below
for more details.
By default, all types in Rust are movable. Rust allows passing all types by-value,
and common smart-pointer types such as Box<T>
and &mut T
allow
replacing and moving the values they contain: you can move out of a Box<T>
,
or you can use mem::swap
. Pin<P>
wraps a pointer type P
, so
Pin<Box<T>>
functions much like a regular Box<T>
:
when a Pin<Box<T>>
gets dropped, so do its contents, and the memory gets
deallocated. Similarly, Pin<&mut T>
is a lot like &mut T
.
However, Pin<P>
does not let clients actually obtain a Box<T>
or &mut T
to pinned data, which implies that you cannot use operations such
as mem::swap
:
use std::pin::Pin;
fn swap_pins<T>(x: Pin<&mut T>, y: Pin<&mut T>) {
// `mem::swap` needs `&mut T`, but we cannot get it.
// We are stuck, we cannot swap the contents of these references.
// We could use `Pin::get_unchecked_mut`, but that is unsafe for a reason:
// we are not allowed to use it for moving things out of the `Pin`.
}
RunIt is worth reiterating that Pin<P>
does not change the fact that a Rust
compiler considers all types movable. mem::swap
remains callable for any T
. Instead,
Pin<P>
prevents certain values (pointed to by pointers wrapped in
Pin<P>
) from being moved by making it impossible to call methods that require
&mut T
on them (like mem::swap
).
Pin<P>
can be used to wrap any pointer type P
, and as such it interacts with
Deref
and DerefMut
. A Pin<P>
where P: Deref
should be
considered as a “P
-style pointer” to a pinned P::Target
– so, a
Pin<Box<T>>
is an owned pointer to a pinned T
, and a
Pin<Rc<T>>
is a reference-counted pointer to a pinned T
.
For correctness, Pin<P>
relies on the implementations of Deref
and
DerefMut
not to move out of their self
parameter, and only ever to
return a pointer to pinned data when they are called on a pinned pointer.
Unpin
Many types are always freely movable, even when pinned, because they do not
rely on having a stable address. This includes all the basic types (like
bool
, i32
, and references) as well as types consisting solely of these
types. Types that do not care about pinning implement the Unpin
auto-trait, which cancels the effect of Pin<P>
. For T: Unpin
,
Pin<Box<T>>
and Box<T>
function identically, as do
Pin<&mut T>
and &mut T
.
Note that pinning and Unpin
only affect the pointed-to type P::Target
,
not the pointer type P
itself that got wrapped in Pin<P>
. For example,
whether or not Box<T>
is Unpin
has no effect on the behavior of
Pin<Box<T>>
(here, T
is the pointed-to type).
Example: self-referential struct
Before we go into more details to explain the guarantees and choices
associated with Pin<P>
, we discuss some examples for how it might be used.
Feel free to skip to where the theoretical discussion continues.
use std::pin::Pin;
use std::marker::PhantomPinned;
use std::ptr::NonNull;
// This is a self-referential struct because the slice field points to the data field.
// We cannot inform the compiler about that with a normal reference,
// as this pattern cannot be described with the usual borrowing rules.
// Instead we use a raw pointer, though one which is known not to be null,
// as we know it's pointing at the string.
struct Unmovable {
data: String,
slice: NonNull<String>,
_pin: PhantomPinned,
}
impl Unmovable {
// To ensure the data doesn't move when the function returns,
// we place it in the heap where it will stay for the lifetime of the object,
// and the only way to access it would be through a pointer to it.
fn new(data: String) -> Pin<Box<Self>> {
let res = Unmovable {
data,
// we only create the pointer once the data is in place
// otherwise it will have already moved before we even started
slice: NonNull::dangling(),
_pin: PhantomPinned,
};
let mut boxed = Box::pin(res);
let slice = NonNull::from(&boxed.data);
// we know this is safe because modifying a field doesn't move the whole struct
unsafe {
let mut_ref: Pin<&mut Self> = Pin::as_mut(&mut boxed);
Pin::get_unchecked_mut(mut_ref).slice = slice;
}
boxed
}
}
let unmoved = Unmovable::new("hello".to_string());
// The pointer should point to the correct location,
// so long as the struct hasn't moved.
// Meanwhile, we are free to move the pointer around.
let mut still_unmoved = unmoved;
assert_eq!(still_unmoved.slice, NonNull::from(&still_unmoved.data));
// Since our type doesn't implement Unpin, this will fail to compile:
// let mut new_unmoved = Unmovable::new("world".to_string());
// std::mem::swap(&mut *still_unmoved, &mut *new_unmoved);
RunExample: intrusive doubly-linked list
In an intrusive doubly-linked list, the collection does not actually allocate the memory for the elements itself. Allocation is controlled by the clients, and elements can live on a stack frame that lives shorter than the collection does.
To make this work, every element has pointers to its predecessor and successor in
the list. Elements can only be added when they are pinned, because moving the elements
around would invalidate the pointers. Moreover, the Drop
implementation of a linked
list element will patch the pointers of its predecessor and successor to remove itself
from the list.
Crucially, we have to be able to rely on drop
being called. If an element
could be deallocated or otherwise invalidated without calling drop
, the pointers into it
from its neighboring elements would become invalid, which would break the data structure.
Therefore, pinning also comes with a drop
-related guarantee.
Drop
guarantee
The purpose of pinning is to be able to rely on the placement of some data in memory.
To make this work, not just moving the data is restricted; deallocating, repurposing, or
otherwise invalidating the memory used to store the data is restricted, too.
Concretely, for pinned data you have to maintain the invariant
that its memory will not get invalidated or repurposed from the moment it gets pinned until
when drop
is called. Only once drop
returns or panics, the memory may be reused.
Memory can be “invalidated” by deallocation, but also by
replacing a Some(v)
by None
, or calling Vec::set_len
to “kill” some
elements off of a vector. It can be repurposed by using ptr::write
to overwrite it without
calling the destructor first. None of this is allowed for pinned data without calling drop
.
This is exactly the kind of guarantee that the intrusive linked list from the previous section needs to function correctly.
Notice that this guarantee does not mean that memory does not leak! It is still
completely okay to not ever call drop
on a pinned element (e.g., you can still
call mem::forget
on a Pin<Box<T>>
). In the example of the doubly-linked
list, that element would just stay in the list. However you must not free or reuse the storage
without calling drop
.
Drop
implementation
If your type uses pinning (such as the two examples above), you have to be careful
when implementing Drop
. The drop
function takes &mut self
, but this
is called even if your type was previously pinned! It is as if the
compiler automatically called Pin::get_unchecked_mut
.
This can never cause a problem in safe code because implementing a type that
relies on pinning requires unsafe code, but be aware that deciding to make
use of pinning in your type (for example by implementing some operation on
Pin<&Self>
or Pin<&mut Self>
) has consequences for your
Drop
implementation as well: if an element of your type could have been pinned,
you must treat Drop
as implicitly taking Pin<&mut Self>
.
For example, you could implement Drop
as follows:
impl Drop for Type {
fn drop(&mut self) {
// `new_unchecked` is okay because we know this value is never used
// again after being dropped.
inner_drop(unsafe { Pin::new_unchecked(self)});
fn inner_drop(this: Pin<&mut Type>) {
// Actual drop code goes here.
}
}
}
RunThe function inner_drop
has the type that drop
should have, so this makes sure that
you do not accidentally use self
/this
in a way that is in conflict with pinning.
Moreover, if your type is #[repr(packed)]
, the compiler will automatically
move fields around to be able to drop them. It might even do
that for fields that happen to be sufficiently aligned. As a consequence, you cannot use
pinning with a #[repr(packed)]
type.
Projections and Structural Pinning
When working with pinned structs, the question arises how one can access the
fields of that struct in a method that takes just Pin<&mut Struct>
.
The usual approach is to write helper methods (so called projections)
that turn Pin<&mut Struct>
into a reference to the field, but what type should
that reference have? Is it Pin<&mut Field>
or &mut Field
?
The same question arises with the fields of an enum
, and also when considering
container/wrapper types such as Vec<T>
, Box<T>
,
or RefCell<T>
. (This question applies to both mutable and shared references,
we just use the more common case of mutable references here for illustration.)
It turns out that it is actually up to the author of the data structure to decide whether
the pinned projection for a particular field turns Pin<&mut Struct>
into Pin<&mut Field>
or &mut Field
. There are some
constraints though, and the most important constraint is consistency:
every field can be either projected to a pinned reference, or have
pinning removed as part of the projection. If both are done for the same field,
that will likely be unsound!
As the author of a data structure you get to decide for each field whether pinning “propagates” to this field or not. Pinning that propagates is also called “structural”, because it follows the structure of the type. In the following subsections, we describe the considerations that have to be made for either choice.
Pinning is not structural for field
It may seem counter-intuitive that the field of a pinned struct might not be pinned,
but that is actually the easiest choice: if a Pin<&mut Field>
is never created,
nothing can go wrong! So, if you decide that some field does not have structural pinning,
all you have to ensure is that you never create a pinned reference to that field.
Fields without structural pinning may have a projection method that turns
Pin<&mut Struct>
into &mut Field
:
impl Struct {
fn pin_get_field(self: Pin<&mut Self>) -> &mut Field {
// This is okay because `field` is never considered pinned.
unsafe { &mut self.get_unchecked_mut().field }
}
}
RunYou may also impl Unpin for Struct
even if the type of field
is not Unpin
. What that type thinks about pinning is not relevant
when no Pin<&mut Field>
is ever created.
Pinning is structural for field
The other option is to decide that pinning is “structural” for field
,
meaning that if the struct is pinned then so is the field.
This allows writing a projection that creates a Pin<&mut Field>
, thus
witnessing that the field is pinned:
impl Struct {
fn pin_get_field(self: Pin<&mut Self>) -> Pin<&mut Field> {
// This is okay because `field` is pinned when `self` is.
unsafe { self.map_unchecked_mut(|s| &mut s.field) }
}
}
RunHowever, structural pinning comes with a few extra requirements:
-
The struct must only be
Unpin
if all the structural fields areUnpin
. This is the default, butUnpin
is a safe trait, so as the author of the struct it is your responsibility not to add something likeimpl<T> Unpin for Struct<T>
. (Notice that adding a projection operation requires unsafe code, so the fact thatUnpin
is a safe trait does not break the principle that you only have to worry about any of this if you useunsafe
.) -
The destructor of the struct must not move structural fields out of its argument. This is the exact point that was raised in the previous section:
drop
takes&mut self
, but the struct (and hence its fields) might have been pinned before. You have to guarantee that you do not move a field inside yourDrop
implementation. In particular, as explained previously, this means that your struct must not be#[repr(packed)]
. See that section for how to writedrop
in a way that the compiler can help you not accidentally break pinning. -
You must make sure that you uphold the
Drop
guarantee: once your struct is pinned, the memory that contains the content is not overwritten or deallocated without calling the content’s destructors. This can be tricky, as witnessed byVecDeque<T>
: the destructor ofVecDeque<T>
can fail to calldrop
on all elements if one of the destructors panics. This violates theDrop
guarantee, because it can lead to elements being deallocated without their destructor being called. (VecDeque<T>
has no pinning projections, so this does not cause unsoundness.) -
You must not offer any other operations that could lead to data being moved out of the structural fields when your type is pinned. For example, if the struct contains an
Option<T>
and there is atake
-like operation with typefn(Pin<&mut Struct<T>>) -> Option<T>
, that operation can be used to move aT
out of a pinnedStruct<T>
– which means pinning cannot be structural for the field holding this data.For a more complex example of moving data out of a pinned type, imagine if
RefCell<T>
had a methodfn get_pin_mut(self: Pin<&mut Self>) -> Pin<&mut T>
. Then we could do the following:ⓘ
Runfn exploit_ref_cell<T>(rc: Pin<&mut RefCell<T>>) { { let p = rc.as_mut().get_pin_mut(); } // Here we get pinned access to the `T`. let rc_shr: &RefCell<T> = rc.into_ref().get_ref(); let b = rc_shr.borrow_mut(); let content = &mut *b; // And here we have `&mut T` to the same data. }
This is catastrophic, it means we can first pin the content of the
RefCell<T>
(usingRefCell::get_pin_mut
) and then move that content using the mutable reference we got later.
Examples
For a type like Vec<T>
, both possibilities (structural pinning or not) make
sense. A Vec<T>
with structural pinning could have get_pin
/get_pin_mut
methods to get pinned references to elements. However, it could not allow calling
pop
on a pinned Vec<T>
because that would move the (structurally
pinned) contents! Nor could it allow push
, which might reallocate and thus also
move the contents.
A Vec<T>
without structural pinning could
impl<T> Unpin for Vec<T>
, because the contents are never pinned
and the Vec<T>
itself is fine with being moved as well.
At that point pinning just has no effect on the vector at all.
In the standard library, pointer types generally do not have structural pinning,
and thus they do not offer pinning projections. This is why Box<T>: Unpin
holds for all T
. It makes sense to do this for pointer types, because moving the
Box<T>
does not actually move the T
: the Box<T>
can be freely
movable (aka Unpin
) even if the T
is not. In fact, even Pin<Box<T>>
and
Pin<&mut T>
are always Unpin
themselves, for the same reason:
their contents (the T
) are pinned, but the pointers themselves can be moved without moving
the pinned data. For both Box<T>
and Pin<Box<T>>
,
whether the content is pinned is entirely independent of whether the
pointer is pinned, meaning pinning is not structural.
When implementing a Future
combinator, you will usually need structural pinning
for the nested futures, as you need to get pinned references to them to call poll
.
But if your combinator contains any other data that does not need to be pinned,
you can make those fields not structural and hence freely access them with a
mutable reference even when you just have Pin<&mut Self>
(such as in your own
poll
implementation).
Structs
A pinned pointer.