Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

If i have a function that returns a function:

fn<'r, T> ( p : T ) -> (&'r fn(&'r str) -> ~[(T,int)]) {
     return |s| ~[(p, 0)]
}

However, This doesn't seem to work, I get the following (somewhat tautological) error:

playground.rs:10:8: 10:29 error: cannot infer an appropriate lifetime due to conflicting requirements
playground.rs:10         return |s| ~[(p, 0i)]
                         ^~~~~~~~~~~~~~~~~~~~~
playground.rs:9:70: 11:5 note: first, the lifetime cannot outlive the block at 9:70...
playground.rs:9     pub fn result<'r, T>( p : T ) -> (&'r fn(&'r str) -> ~[(T, int)] ){
playground.rs:10         return |s| ~[(p, 0i)]
playground.rs:11     }
playground.rs:10:8: 10:29 note: ...due to the following expression
playground.rs:10         return |s| ~[(p, 0i)]
                         ^~~~~~~~~~~~~~~~~~~~~
playground.rs:9:70: 11:5 note: but, the lifetime must be valid for the lifetime &'r  as defined on the block at 9:70...
playground.rs:9     pub fn result<'r, T>( p : T ) -> (&'r fn(&'r str) -> ~[(T, int)] ){
playground.rs:10         return |s| ~[(p, 0i)]
playground.rs:11     }
playground.rs:10:8: 10:29 note: ...due to the following expression
playground.rs:10         return |s| ~[(p, 0i)]
                         ^~~~~~~~~~~~~~~~~~~~~
error: aborting due to previous error

I believe this is saying that the lifetime of the return of the function signature and the return value don't match up. However, I'm not sure how to annotate the lambda with a lifetime to make this work.

share|improve this question

1 Answer 1

So this is a common mistake in rust, thinking that lifetime parameters actually affect lifetimes.

They do not, they only allow the compiler to know that a reference returned from a function lasts for a certain amount of time. This would be true anyway, but now the compiler knows it too and can allow more code to safe. This is a consequence of Rust only doing local analysis (looking at a single function at a time).

In this case, you are creating a stack closure. As the name suggests, a stack closure is created on the stack and you are then returning it up the stack. This is similar to this C code:

int *foo() { int a = 5; return &a; }

Clearly, the pointer (or "reference") to a is invalid the moment you return. This is what Rust prevents.

In this case, the lifetime of the stack closure lasts for the duration of the function, but the lifetime parameter requires it to last longer than that (though there is nothing to say how long that is exactly), hence the mismatch error.

A basic rule-of-thumb is that if you have lifetime parameters on a function, you need each parameter in a position in the argument list and the return type, otherwise you are probably doing something wrong.

If you really wish to return a closure, then you must use a heap closure, ~fn (&str) -> ~[(T, int)], since that is allocated on the heap and can be passed around more freely (though still not copied).

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.