问题
I've been trying to teach myself some Rust lately and wanted to practice a bit by implementing a simple linked list. I took some inspiration from the Rust library's linked list and tried to replicate the parts I already understood. Also I decided to make it singly-linked for now.
struct Node<T> {
element: T,
next: Option<Box<Node<T>>>,
}
impl<T> Node<T> {
fn new(element: T) -> Self {
Node {
element: element,
next: None,
}
}
fn append(&mut self, element: Box<Node<T>>) {
self.next = Some(element);
}
}
pub struct LinkedList<T> {
head: Option<Box<Node<T>>>,
tail: Option<Box<Node<T>>>,
len: u32,
}
impl<T> LinkedList<T> {
pub fn new() -> Self {
head: None,
tail: None,
len: 0,
}
pub fn push(&mut self, element: T) {
let node: Box<Node<T>> = Box::new(Node::new(element));
match self.tail {
None => self.head = Some(node),
Some(mut ref tail) => tail.append(node),
}
self.tail = Some(node);
self.len += 1;
}
pub fn pop(&mut self) -> Option<T> {
//not implemented
}
pub fn get(&self, index: u32) -> Option<T> {
//not implemented
}
}
This is what I've got so far; from what I understand, the problem with this code is that the Box can not have more than one reference to it in order to preserve memory safety.
So when I set the list head to node in
None => self.head = Some(node),
I can't then go ahead and set
self.tail = Some(node);
later, am I correct so far in my understanding? What would be the correct way to do this? Do I have to use Shared like in the library or is there a way in which the Box or some other type can be utilized?
回答1:
Your issue is that you are attempting to use a value (node) after having moved it; since Box<Node<T>> does not implement Copy, when you use it in the match expression:
match self.tail {
None => self.head = Some(node),
Some(ref mut tail) => tail.append(node),
}
node is moved either to self.head or to self.tail and can no longer be used later. Other than reading the obligatory Learning Rust With Entirely Too Many Linked Lists to see the different ways in which you can implement linked lists in Rust, I suggest that you first do some more research in the field of Rust's basic concepts, especially:
- Ownership
- References and Borrowing
- What are move semantics?
回答2:
You can go with something simpler than that, only using your nodes
use std::fmt;
struct Payload {
id: i32,
value: i32,
}
impl fmt::Display for Payload {
fn fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result {
write!(f, "({}, {})", self.id, self.value)
}
}
struct Node<T> {
element: T,
next: Option<Box<Node<T>>>,
}
impl<T> Node<T> where T: std::fmt::Display{
fn new(element: T) -> Self {
Node {
element: element,
next: None,
}
}
fn append(&mut self, element: T) {
match &mut self.next {
None => {let n = Node {
element: element,
next: None,
};
self.next = Some(Box::new(n));
},
Some(ref mut x) => x.append(element),
}
}
fn list(& self) {
println!("{}", self.element);
match &self.next {
None => {},
Some(x) => x.list(),
}
}
}
fn main(){
let mut h = Node::new(Payload {id:1, value:1});
h.append(Payload {id:2, value:2});
h.append(Payload {id:3, value:3});
h.append(Payload {id:4, value:4});
h.append(Payload {id:5, value:5});
h.list();
h.append(Payload {id:6, value:6});
h.list();
}
来源:https://stackoverflow.com/questions/41653148/singly-linked-list-in-rust