问题
I'm trying to write a binary searching tree in Rust, but I don't understand what is going on:
enum BST<'a, T: Ord> {
Leaf,
BinTree { value: T, left: &'a mut BST<'a, T>, right: &'a mut BST<'a, T> }
}
impl<'a, T: Ord> BST<'a, T> {
fn new() -> BST<'a, T> {
BST::Leaf
}
fn add(self, val: T) {
match self {
BST::Leaf => self = BST::BinTree {
value: val,
left: &mut BST::<'a, T>::new(),
right: &mut BST::<'a, T>::new()
},
BST::BinTree{value: v, left: l, right: r} => if val < v {
l.add(val);
} else {
r.add(val);
}
}
}
}
fn main() {
}
When I try to compile this, I get the following errors:
error[E0309]: the parameter type `T` may not live long enough
--> heap.rs:3:25
|
3 | BinTree { value: T, left: &'a mut BST<'a, T>, right: &'a mut BST<'a, T> }
| ^^^^^^^^^^^^^^^^^^^^^^^^
|
= help: consider adding an explicit lifetime bound `T: 'a`...
note: ...so that the reference type `&'a mut BST<'a, T>` does not outlive the data it points at
--> heap.rs:3:25
|
3 | BinTree { value: T, left: &'a mut BST<'a, T>, right: &'a mut BST<'a, T> }
| ^^^^^^^^^^^^^^^^^^^^^^^^
Well, after doing lots of research and doing the things that the compiler suggests I came up with this code:
enum BST<'a, T: Ord + 'a> {
Leaf,
BinTree {
value: T,
left: &'a mut BST<'a, T>,
right: &'a mut BST<'a, T>
}
}
impl<'a, T: Ord + 'a > BST<'a, T> {
fn new() -> BST<'a, T> {
BST::Leaf
}
fn add(&mut self, val: T) {
match *self {
BST::Leaf => *self = BST::BinTree {
value: val,
left: &mut BST::<'a, T>::new() as &'a mut BST<'a, T>,
right: &mut BST::<'a, T>::new() as &'a mut BST<'a, T>
},
BST::BinTree{value: ref v, left: ref mut l, right: ref mut r} => if val < *v {
l.add(val);
} else {
r.add(val);
}
}
}
}
fn main() {
}
But I still get errors:
error: borrowed value does not live long enough
--> heap.rs:19:16
|
19 | left: &mut BST::<'a, T>::new() as &'a mut BST<'a, T>,
| ^^^^^^^^^^^^^^^^^^^ does not live long enough
20 | right: &mut BST::<'a, T>::new() as &'a mut BST<'a, T>
21 | },
| - temporary value only lives until here
|
note: borrowed value must be valid for the lifetime 'a as defined on the body at 15:27...
--> heap.rs:15:28
|
15 | fn add(&mut self, val: T) {
| ____________________________^
16 | | match *self {
17 | | BST::Leaf => *self = BST::BinTree {
18 | | value: val,
... |
27 | | }
28 | | }
| |__^
error: borrowed value does not live long enough
--> heap.rs:20:17
|
20 | right: &mut BST::<'a, T>::new() as &'a mut BST<'a, T>
| ^^^^^^^^^^^^^^^^^^^ does not live long enough
21 | },
| - temporary value only lives until here
|
note: borrowed value must be valid for the lifetime 'a as defined on the body at 15:27...
--> heap.rs:15:28
|
15 | fn add(&mut self, val: T) {
| ____________________________^
16 | | match *self {
17 | | BST::Leaf => *self = BST::BinTree {
18 | | value: val,
... |
27 | | }
28 | | }
| |__^
error: aborting due to 2 previous errors
I know this can be fixed by using Boxes instead of references, but I want to make it like this for exercise.
回答1:
As the error message says, that specific error can be fixed by adding a lifetime bound T: 'a. But then you'll get many other errors, because what you are trying to do is unsound: You are trying to store references to objects which don't have an owner elsewhere.
When you do something like storing &mut BST::<'a, T>::new() in your node, BST::<'a, T>::new() returns a temporary value which will soon be destroyed, so you can't store a reference to it and expect it to live on.
Instead of references, you need your node to own its children. You can do this by changing the child type to left: Box<BST<T>> and using Box::new when you create a new child node. Once you do this, you can get rid of all the 'a everywhere and won't get the lifetime-related errors.
Another issue is that your add consumes the self parameter so it won't be able to be used anymore by the caller. You should make it take &mut self instead so that it can modify the tree owned by the caller.
来源:https://stackoverflow.com/questions/45194762/the-parameter-type-t-may-not-live-long-enough-when-writing-a-binary-searching