1

This question already has an answer here:

I'm looking at the Condvar example and am curious how the tuples pair and pair2 are destructured:

let pair = Arc::new((Mutex::new(false), Condvar::new()));
let pair2 = pair.clone();
// ...

thread::spawn(move|| {
    let &(ref lock, ref cvar) = &*pair2;
    // ...
}

Doesn't Arc's Deref implementation return a reference to the inner data? But removing the & from pair2:

let &(ref lock, ref cvar) = *pair2;

gives a compiler error:

11 |     let &(ref lock, ref cvar) = *pair2;
   |         ^^^^^^^^^^^^^^^^^^^^^ expected tuple, found reference
   |
   = note: expected type `(std::sync::Mutex<bool>, std::sync::Condvar)`
              found type `&_`

This seems to imply that *pair2 returns a tuple and not a reference.

marked as duplicate by Community Jul 21 at 18:23

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0

The short answer is yes, Deref returns a reference but this reference is still dereferenced by *.

Before deciphering &*pair, first look at *pair in detail.

Arc implements the Deref trait, so the Rust compiler essentially transforms:

*pair

into

*(pair.deref())

Arc::deref() does return a reference but this will be dereferenced by *, resulting in a tuple.

The Condvar example adds a leading & because it only needs to borrow the tuple that *pair yields.

Also see:

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