1

The Rust book calls the ref keyword "legacy". As I want to follow the implicit advice to avoid ref, how can I do it in the following toy example? You can find the code also on the playground.

struct OwnBox(i32);

impl OwnBox {
    fn ref_mut(&mut self) -> &mut i32 {
        match *self {
            OwnBox(ref mut i) => i,
        }

        // This doesn't work. -- Even not, if the signature of the signature of the function is
        // adapted to take an explcit lifetime 'a and use it here like `&'a mut i`.
        // match *self {
        //     OwnBox(mut i) => &mut i,
        // }

        // This doesn't work
        // match self {
        //     &mut OwnBox(mut i) => &mut i,
        // }
    }
}
  • 1
    I think the book is wrong to call these "legacy"; as it points out, you still need them in some situations, and sometimes it can be clearer to use ref. So, definitely be aware of "pattern ergonomics" and how it works, but also I don't think you should go out of your way to avoid ref and ref mut. – trentcl Mar 12 at 21:49
5

Since self is of type &mut Self, it is enough to match against itself, while omitting ref entirely. Either dereferencing it with *self or adding & to the match arm would cause an unwanted move.

fn ref_mut(&mut self) -> &mut i32 {
    match self {
        OwnBox(i) => i,
    }
}

For newtypes such as this one however, &mut self.0 would have been enough.

This is thanks to RFC 2005 — Match Ergonomics.

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