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I'm trying to implement Quick Sort in Swift and having issues recursively parsing the array into the quick_sort function. I'm receiving the error:

error: ambiguous subscript with base type '[String]' and index type 'CountableRange<Int>'

The function is:

func quick_sort(_ array: inout [String]) {
    if array.count > 0 {
        let pivot = array[0]
        var (left, right) = partition(&array, pivot)
        quick_sort(&array[0..<left])
    }
}

The error is occurring on the line quick_sort(&array[0..<left]).
It may have to do with it potentially being an ArraySlice?

  • 2
    You're correct. The line gives ArraySlice type where you need to convert it to array. But I'm not sure if you can do that without creating a new array. I suggest just edit your function signature to accept startIndex & endIndex for your next iteration. In that case, you case still pass the array as reference. – TheNitram Jun 29 '18 at 15:36
  • 1
    Generally, it's better to make a mutating func instance member in an extension, than a free function with an inout parameter. – Alexander Jun 29 '18 at 17:37
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When you slice an Array, you get an ArraySlice. When you slice an ArraySlice, you get another ArraySlice. This property, that T.SubSequence == T, is vital to making a recursive algorithm like this, so that you only have to work with a single type.

You need your recursive function work with ArraySlice, but you can make a wrapper function that takes an Array and does the necessary conversion.

func quickSort(_ array: inout [String]) {
    func quickSort(_ slice: inout ArraySlice<String>) {
        if let first = slice.first {
            var (left, right) = partition(&slice, pivot)
            quickSort(&slice[0..<left]) // This part of the algorithm will break...
        }
    }

    quickSort(ArraySlice(array))
}
  • quickSort(ArraySlice(array)) – this will not work because quickSort takes an inout parameter. – Tim Vermeulen Jun 29 '18 at 18:53
  • @TimVermeulen Yeah, a local copy will need to be made. – Alexander Jun 29 '18 at 19:35
  • You could also do quickSort(&array[...]) :) – Hamish Jun 30 '18 at 9:42

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