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In Xcode 8 and iOS 10, I used the following code to shuffle values inside an array:

for i in 0..<appSingleton.paxArrayShared.count
{
    let r = Int(arc4random_uniform(UInt32(appSingleton.paxArrayShared.count)))
    // Check if you are not trying to swap an element with itself
    if i != r
    {
        swap(&appSingleton.paxArrayShared[i], &appSingleton.paxArrayShared[r])
    }
}

However, in Xcode 9 and iOS 11, I began receiving the following warning:

Simultaneous accesses to 0x########, but modification requires exclusive access.

enter image description here

Is there a better way to shuffle the array?

Thank you!

marked as duplicate by Rob, Paulw11 ios Oct 7 '17 at 2:18

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  • 2
    To get around this problem, use appSingleton.paxArrayShared.swapAt(i, r). Re better algorithms (i.e. Fisher-Yates) see stackoverflow.com/q/24026510/1271826. – Rob Oct 7 '17 at 1:57
  • That's a really poor way to shuffle. Not only can it never guarantee a truly random result, but it takes asymptotically more iterations to even come close. When's the last time you shuffled a deck by swapping 2 pairs of individual cards only 52 times? How awkward was that? – Alexander Oct 7 '17 at 4:05
  • @Alexander - I don't get your comment, "When's the last time you shuffled a deck by swapping 2 pairs of individual cards only 52 times? How awkward was that?" That is effectively what Fisher-Yates does. Sure, it would be an awkward way for a human to shuffle a deck, but it's a very efficient way for a computer to shuffle and avoid biases of techniques like the OP's code. – Rob Oct 7 '17 at 18:18
  • @Rob Fisher Yates essentially builds up a new "random" section of the array, by repeatedly drawing elements from the old "not random" section of the array. As a consequence, no swap during a fisher yates shuffle have the effect of undoing a previous swap, which is exactly what OP's code does – Alexander Oct 8 '17 at 17:33
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    @Rob Yes Rob, that's exactly my point. There's a difference between mindlessly swapping any two random cards a few times (OP's shuffle) vs building up a "shuffled" portion of the array in-place (fisher yates). For one, it guarantees that no swap operation ever undoes the effect of a previous shuffle. The issue isn't the swapping, it's the lack of regard for what's being swapped. – Alexander Oct 9 '17 at 7:51