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by IshKebab 304 days ago
How is that different to

  Fn(_: &mut T)

?
1 comments
Soft 304 days ago
In the former the caller does not retain access to T until Fn returns.
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andyferris 304 days ago
I think I'm lost. If I give a mutable reference to a function... I can't access it (even read it) until it returns, no?

What is different?

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zbentley 303 days ago
Let's say a function "foo" calls "fn bar(_: &mut T) -> ()".

When passing a mutable reference, the lifetime of the object is largely decided by "foo" (with some caveats).

Now, let's say that "foo" instead calls "fn bar(_: T) -> T".

When passing the object itself, the lifetime is largely decided/decide-able by "bar".

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IshKebab 304 days ago
That's true of mutable references too though isn't it? In fact lots of people have suggested they should really have been called "exclusive references", since you can actually mutate some objects through non-exclusive references (called "interior mutability" normally).
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