493 lines
13 KiB
Markdown
493 lines
13 KiB
Markdown
% The Rust Pointer Guide
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Rust's pointers are one of its more unique and compelling features. Pointers
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are also one of the more confusing topics for newcomers to Rust. They can also
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be confusing for people coming from other languages that support pointers, such
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as C++. This guide will help you understand this important topic.
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# You don't actually need pointers
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I have good news for you: you probably don't need to care about pointers,
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especially as you're getting started. Think of it this way: Rust is a language
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that emphasizes safety. Pointers, as the joke goes, are very pointy: it's easy
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to accidentally stab yourself. Therefore, Rust is made in a way such that you
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don't need them very often.
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"But guide!" you may cry. "My co-worker wrote a function that looks like this:
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~~~rust
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fn succ(x: &int) -> int { *x + 1 }
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~~~
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So I wrote this code to try it out:
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~~~rust{.ignore}
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fn main() {
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let number = 5;
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let succ_number = succ(number);
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println!("{}", succ_number);
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}
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~~~
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And now I get an error:
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~~~ {.notrust}
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error: mismatched types: expected `&int` but found `<VI0>` (expected &-ptr but found integral variable)
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~~~
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What gives? It needs a pointer! Therefore I have to use pointers!"
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Turns out, you don't. All you need is a reference. Try this on for size:
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~~~rust
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# fn succ(x: &int) -> int { *x + 1 }
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fn main() {
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let number = 5;
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let succ_number = succ(&number);
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println!("{}", succ_number);
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}
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~~~
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It's that easy! One extra little `&` there. This code will run, and print `6`.
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That's all you need to know. Your co-worker could have written the function
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like this:
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~~~rust
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fn succ(x: int) -> int { x + 1 }
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fn main() {
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let number = 5;
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let succ_number = succ(number);
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println!("{}", succ_number);
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}
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~~~
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No pointers even needed. Then again, this is a simple example. I assume that
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your real-world `succ` function is more complicated, and maybe your co-worker
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had a good reason for `x` to be a pointer of some kind. In that case, references
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are your best friend. Don't worry about it, life is too short.
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However.
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Here are the use-cases for pointers. I've prefixed them with the name of the
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pointer that satisfies that use-case:
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1. Owned: ~Trait must be a pointer, because you don't know the size of the
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object, so indirection is mandatory.
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2. Owned: You need a recursive data structure. These can be infinite sized, so
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indirection is mandatory.
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3. Owned: A very, very, very rare situation in which you have a *huge* chunk of
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data that you wish to pass to many methods. Passing a pointer will make this
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more efficient. If you're coming from another language where this technique is
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common, such as C++, please read "A note..." below.
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4. Managed: Having only a single owner to a piece of data would be inconvenient
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or impossible. This is only often useful when a program is very large or very
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complicated. Using a managed pointer will activate Rust's garbage collection
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mechanism.
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5. Reference: You're writing a function, and you need a pointer, but you don't
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care about its ownership. If you make the argument a reference, callers
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can send in whatever kind they want.
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Five exceptions. That's it. Otherwise, you shouldn't need them. Be sceptical
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of pointers in Rust: use them for a deliberate purpose, not just to make the
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compiler happy.
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## A note for those proficient in pointers
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If you're coming to Rust from a language like C or C++, you may be used to
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passing things by reference, or passing things by pointer. In some languages,
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like Java, you can't even have objects without a pointer to them. Therefore, if
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you were writing this Rust code:
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~~~rust
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# fn transform(p: Point) -> Point { p }
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struct Point {
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x: int,
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y: int,
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}
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fn main() {
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let p0 = Point { x: 5, y: 10};
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let p1 = transform(p0);
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println!("{:?}", p1);
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}
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~~~
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I think you'd implement `transform` like this:
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~~~rust
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# struct Point {
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# x: int,
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# y: int,
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# }
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# let p0 = Point { x: 5, y: 10};
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fn transform(p: &Point) -> Point {
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Point { x: p.x + 1, y: p.y + 1}
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}
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// and change this:
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let p1 = transform(&p0);
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~~~
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This does work, but you don't need to create those references! The better way to write this is simply:
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~~~rust
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struct Point {
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x: int,
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y: int,
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}
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fn transform(p: Point) -> Point {
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Point { x: p.x + 1, y: p.y + 1}
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}
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fn main() {
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let p0 = Point { x: 5, y: 10};
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let p1 = transform(p0);
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println!("{:?}", p1);
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}
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~~~
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But won't this be inefficient? Well, that's a complicated question, but it's
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important to know that Rust, like C and C++, store aggregate data types
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'unboxed,' whereas languages like Java and Ruby store these types as 'boxed.'
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For smaller structs, this way will be more efficient. For larger ones, it may
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be less so. But don't reach for that pointer until you must! Make sure that the
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struct is large enough by performing some tests before you add in the
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complexity of pointers.
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# Owned Pointers
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Owned pointers are the conceptually simplest kind of pointer in Rust. A rough
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approximation of owned pointers follows:
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1. Only one owned pointer may exist to a particular place in memory. It may be
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borrowed from that owner, however.
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2. The Rust compiler uses static analysis to determine where the pointer is in
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scope, and handles allocating and de-allocating that memory. Owned pointers are
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not garbage collected.
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These two properties make for three use cases.
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## References to Traits
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Traits must be referenced through a pointer, because the struct that implements
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the trait may be a different size than a different struct that implements the
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trait. Therefore, unboxed traits don't make any sense, and aren't allowed.
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## Recursive Data Structures
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Sometimes, you need a recursive data structure. The simplest is known as a 'cons list':
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~~~rust
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enum List<T> {
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Nil,
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Cons(T, ~List<T>),
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}
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fn main() {
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let list: List<int> = Cons(1, ~Cons(2, ~Cons(3, ~Nil)));
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println!("{:?}", list);
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}
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~~~
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This prints:
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~~~ {.notrust}
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Cons(1, ~Cons(2, ~Cons(3, ~Nil)))
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~~~
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The inner lists _must_ be an owned pointer, because we can't know how many
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elements are in the list. Without knowing the length, we don't know the size,
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and therefore require the indirection that pointers offer.
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## Efficiency
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This should almost never be a concern, but because creating an owned pointer
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boxes its value, it therefore makes referring to the value the size of the box.
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This may make passing an owned pointer to a function less expensive than
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passing the value itself. Don't worry yourself with this case until you've
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proved that it's an issue through benchmarks.
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For example, this will work:
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~~~rust
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struct Point {
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x: int,
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y: int,
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}
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fn main() {
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let a = Point { x: 10, y: 20 };
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spawn(proc() {
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println!("{}", a.x);
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});
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}
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~~~
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This struct is tiny, so it's fine. If `Point` were large, this would be more
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efficient:
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~~~rust
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struct Point {
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x: int,
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y: int,
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}
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fn main() {
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let a = ~Point { x: 10, y: 20 };
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spawn(proc() {
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println!("{}", a.x);
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});
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}
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~~~
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Now it'll be copying a pointer-sized chunk of memory rather than the whole
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struct.
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# Managed Pointers
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> **Note**: the `@` form of managed pointers is deprecated and behind a
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> feature gate (it requires a `#[feature(managed_pointers)];` attribute on
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> the crate root; remember the semicolon!). There are replacements, currently
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> there is `std::rc::Rc` and `std::gc::Gc` for shared ownership via reference
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> counting and garbage collection respectively.
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Managed pointers, notated by an `@`, are used when having a single owner for
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some data isn't convenient or possible. This generally happens when your
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program is very large and complicated.
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For example, let's say you're using an owned pointer, and you want to do this:
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~~~rust{.ignore}
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struct Point {
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x: int,
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y: int,
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}
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fn main() {
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let a = ~Point { x: 10, y: 20 };
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let b = a;
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println!("{}", b.x);
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println!("{}", a.x);
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}
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~~~
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You'll get this error:
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~~~ {.notrust}
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test.rs:10:20: 10:21 error: use of moved value: `a`
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test.rs:10 println!("{}", a.x);
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^
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note: in expansion of format_args!
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<std-macros>:158:27: 158:81 note: expansion site
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<std-macros>:157:5: 159:6 note: in expansion of println!
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test.rs:10:5: 10:25 note: expansion site
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test.rs:8:9: 8:10 note: `a` moved here because it has type `~Point`, which is moved by default (use `ref` to override)
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test.rs:8 let b = a;
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^
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~~~
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As the message says, owned pointers only allow for one owner at a time. When you assign `a` to `b`, `a` becomes invalid. Change your code to this, however:
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~~~rust
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struct Point {
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x: int,
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y: int,
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}
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fn main() {
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let a = @Point { x: 10, y: 20 };
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let b = a;
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println!("{}", b.x);
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println!("{}", a.x);
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}
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~~~
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And it works:
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~~~ {.notrust}
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10
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10
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~~~
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So why not just use managed pointers everywhere? There are two big drawbacks to
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managed pointers:
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1. They activate Rust's garbage collector. Other pointer types don't share this
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drawback.
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2. You cannot pass this data to another task. Shared ownership across
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concurrency boundaries is the source of endless pain in other languages, so
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Rust does not let you do this.
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# References
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References are the third major kind of pointer Rust supports. They are
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simultaneously the simplest and the most complicated kind. Let me explain:
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references are considered 'borrowed' because they claim no ownership over the
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data they're pointing to. They're just borrowing it for a while. So in that
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sense, they're simple: just keep whatever ownership the data already has. For
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example:
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~~~rust
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use std::num::sqrt;
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struct Point {
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x: f32,
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y: f32,
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}
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fn compute_distance(p1: &Point, p2: &Point) -> f32 {
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let x_d = p1.x - p2.x;
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let y_d = p1.y - p2.y;
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sqrt(x_d * x_d + y_d * y_d)
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}
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fn main() {
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let origin = @Point { x: 0.0, y: 0.0 };
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let p1 = ~Point { x: 5.0, y: 3.0 };
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println!("{:?}", compute_distance(origin, p1));
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}
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~~~
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This prints `5.83095189`. You can see that the `compute_distance` function
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takes in two references, but we give it a managed and unique pointer. Of
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course, if this were a real program, we wouldn't have any of these pointers,
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they're just there to demonstrate the concepts.
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So how is this hard? Well, because we're ignoring ownership, the compiler needs
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to take great care to make sure that everything is safe. Despite their complete
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safety, a reference's representation at runtime is the same as that of
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an ordinary pointer in a C program. They introduce zero overhead. The compiler
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does all safety checks at compile time.
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This theory is called 'region pointers,' and involve a concept called
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'lifetimes'. Here's the simple explanation: would you expect this code to
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compile?
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~~~rust{.ignore}
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fn main() {
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println!("{}", x);
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let x = 5;
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}
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~~~
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Probably not. That's because you know that the name `x` is valid from where
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it's declared to when it goes out of scope. In this case, that's the end of
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the `main` function. So you know this code will cause an error. We call this
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duration a 'lifetime'. Let's try a more complex example:
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~~~rust
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fn main() {
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let mut x = ~5;
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if *x < 10 {
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let y = &x;
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println!("Oh no: {:?}", y);
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return;
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}
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*x -= 1;
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println!("Oh no: {:?}", x);
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}
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~~~
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Here, we're borrowing a pointer to `x` inside of the `if`. The compiler, however,
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is able to determine that that pointer will go out of scope without `x` being
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mutated, and therefore, lets us pass. This wouldn't work:
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~~~rust{.ignore}
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fn main() {
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let mut x = ~5;
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if *x < 10 {
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let y = &x;
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*x -= 1;
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println!("Oh no: {:?}", y);
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return;
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}
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*x -= 1;
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println!("Oh no: {:?}", x);
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}
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~~~
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It gives this error:
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~~~ {.notrust}
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test.rs:5:8: 5:10 error: cannot assign to `*x` because it is borrowed
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test.rs:5 *x -= 1;
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^~
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test.rs:4:16: 4:18 note: borrow of `*x` occurs here
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test.rs:4 let y = &x;
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^~
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~~~
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As you might guess, this kind of analysis is complex for a human, and therefore
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hard for a computer, too! There is an entire [guide devoted to references
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and lifetimes](guide-lifetimes.html) that goes into lifetimes in
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great detail, so if you want the full details, check that out.
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# Returning Pointers
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We've talked a lot about functions that accept various kinds of pointers, but
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what about returning them? Here's the rule of thumb: only return a unique or
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managed pointer if you were given one in the first place.
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What does that mean? Don't do this:
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~~~rust
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fn foo(x: ~int) -> ~int {
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return ~*x;
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}
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fn main() {
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let x = ~5;
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let y = foo(x);
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}
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~~~
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Do this:
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~~~rust
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fn foo(x: ~int) -> int {
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return *x;
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}
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fn main() {
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let x = ~5;
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let y = ~foo(x);
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}
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~~~
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This gives you flexibility, without sacrificing performance. For example, this will
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also work:
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~~~rust
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fn foo(x: ~int) -> int {
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return *x;
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}
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fn main() {
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let x = ~5;
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let y = @foo(x);
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}
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~~~
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You may think that this gives us terrible performance: return a value and then
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immediately box it up?!?! Isn't that the worst of both worlds? Rust is smarter
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than that. There is no copy in this code. `main` allocates enough room for the
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`@int`, passes a pointer to that memory into `foo` as `x`, and then `foo` writes
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the value straight into that pointer. This writes the return value directly into
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the allocated box.
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This is important enough that it bears repeating: pointers are not for optimizing
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returning values from your code. Allow the caller to choose how they want to
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use your output.
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# Related Resources
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* [Lifetimes guide](guide-lifetimes.html)
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