9

Am I correct to assume that, for the following code

let a = vec![1, 2, 3];
let b = &a;
let c = b;

The memory presentation will be something like this, assuming the value of b is "B"?

  _            _
b|B|         c|B|
  |____________|
  |
  V
  _________
a|_________|

I'm only asking about immutable references, as there can be only 1 mutable reference, as far as I remember.

2

1 Answer 1

11

Yes, this is correct.

In Rust terms, &T is Copy, which means that it can be copied bitwise without transferring ownership.

7
  • 2
    But &mut T is moved, right?
    – Exander
    Commented Mar 30, 2017 at 18:20
  • @Exander: Yes, this is necessary to ensure Aliasing XOR Mutability. Commented Mar 30, 2017 at 18:28
  • Thoughts on marking this as a duplicate to the second comment I added on OP?
    – Shepmaster
    Commented Mar 30, 2017 at 18:33
  • @Shepmaster: Does look like a dupe indeed, I'll leave you the honour since you hunted it down. Commented Mar 30, 2017 at 18:46
  • 2
    @raj: Excellent question. The lifetime is part of the type and therefore is copied too. However when calling a function, Rust may "align" lifetimes, possibly by re-borrowing, so it may look like the lifetime changed which may be where your confusion stems from. Commented Sep 25, 2021 at 12:30

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