2

The following example does not compile as long as 'a is used in &'a mut self:

struct Foo<'a> {
    a: &'a u64,
}

impl<'a> Foo<'a> {
    fn mutate_internal(&'a mut self) {}

    fn mutate(&'a mut self) {
        self.mutate_internal();
        self.mutate_internal(); // <- This call fails the borrow-check
    }
}

The compiler surprised me with the following error message:

tests/lang.rs:1116:13: 1116:17 error: cannot borrow `*self` as mutable more than once at a time
tests/lang.rs:1116             self.mutate_internal();
                               ^~~~
tests/lang.rs:1115:13: 1115:17 note: previous borrow of `*self` occurs here; the mutable borrow prevents subsequent moves, borrows, or modification of `*self` until the borrow ends
tests/lang.rs:1115             self.mutate_internal();
                               ^~~~
tests/lang.rs:1117:10: 1117:10 note: previous borrow ends here
tests/lang.rs:1114         fn mutate(&'a mut self) {
tests/lang.rs:1115             self.mutate_internal();
tests/lang.rs:1116             self.mutate_internal();
tests/lang.rs:1117         }
                           ^

Can you explain why that is ? Please note that the issue goes away if &'a mut self becomes &mut self.

Meta

✗ rustc --version
rustc 1.0.0-nightly (e2fa53e59 2015-03-20) (built 2015-03-20)

1 Answer 1

8

if you drop the 'a named lifetime in mutate_internal, what you get is a fresh (anonymous) lifetime parameter, not 'a. I.e. you get something equivalent to:

fn mutate_internal<'b>(&'b mut self) {}

this means that self is borrowed until mutate_internal is done, but no longer than that. That's why the second call to mutate_internal compiles.

By contrast, with fn mutate_internal(&'a mut self) {} you're telling the compiler that self will be borrowed as long as 'a (which is the entire lifetime of Foo). That's why the second mutate_internal can't be called

0

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