18

Is there a simple way to remove an element from a Vec<T>?

There's a method called remove(), and it takes an index: usize, but there isn't even an index_of() method that I can see.

I'm looking for something (hopefully) simple and O(n).

22

This is what I have come up so far (that also makes the borrow checker happy):

let index = xs.iter().position(|x| *x == some_x).unwrap();
xs.remove(index);

I'm still waiting to find a better way to do this as this is pretty ugly.

Note: my code assumes the element does exist (hence the .unwrap()).

  • Note that the stdlib is still being designed, so it may lack some functions common in other languages. Feel free to submit a PR adding this! – aochagavia Oct 8 '14 at 8:52
  • After using rust for some time, removals are often done in index lists and so the filter/retain on indices is actually much cheaper than removing from the middle – Kamil Tomšík Sep 2 '19 at 18:46
13

You can use the retain method but it will delete every instance of the value:

fn main() {
    let mut xs = vec![1, 2, 3];
    let some_x = 2;
    xs.retain(|&x| x != some_x);
    println!("{:?}", xs); // prints [1, 3]
}
  • The comparison made after the element is found are unnecessary – malbarbo Nov 18 '16 at 11:42
  • 1
    @malbarbo Yes, this is because this method removes every instance of the value. – antoyo Nov 18 '16 at 13:41
10

There is an experimental API, called Vec::remove_item(). It's still unstable, so it's not usable with the stable compiler. But it will probably get stabilized eventually (tracking issue).

With that method, doing what you want really is easy:

let removed = xs.remove_item(&some_x); 
9

There is a position() method for iterators which returns the index of the first element matching a predicate. Related question: Is there an equivalent of JavaScript's indexOf for Rust arrays?

And a code example:

fn main() {
    let mut vec = vec![1, 2, 3, 4];

    println!("Before: {:?}", vec);

    let removed = vec.iter()
        .position(|&n| n > 2)
        .map(|e| vec.remove(e))
        .is_some();

    println!("Did we remove anything? {}", removed);

    println!("After: {:?}", vec);
}
  • 1
    This does not compile: xs.remove(xs.iter().position(|x| *x == some_x).unwrap()); -- "cannot borrow xs as immutable because it is also borrowed as mutable" – Kai Sellgren Oct 7 '14 at 18:53
  • 1
    @Kai Sellgren: Also known as: do not modify a container you are iterating on. – Matthieu M. Oct 10 '14 at 13:11
-1

If your data is sorted, please use binary search for O(log n) removal, which could be much much faster for large inputs.

match values.binary_search(value) {
  Ok(removal_index) => values.remove(removal_index),
  Err(_) => {} // value not contained.
}

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