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The Array type in Swift has a member function called sort, with its signature being sort(isOrderedBefore: (T, T) -> Bool). This function differs from the global version of sort, which has the signature sort(array: T[], pred: (T, T) -> Bool).

If one extends an Array (see Why does the same method fail when inside an Array extension in Swift?), calling sort from inside the scope of the Array extension will naturally result in the local version being used.

Is it possible to explicitly call a function from an outer scope, or specifically from the global scope, even if its name coincides with that of a function from an inner scope?

This would be similar to the C++ scoping resolution operator, ::

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  • 1
    Ah, you mean like C++'s global scoping operator ::? Interesting question.
    – Yawar
    Commented Jun 5, 2014 at 2:06
  • @Yawar, yes, exactly.
    – Cezar
    Commented Jun 5, 2014 at 2:19

2 Answers 2

38

Chris Lattner suggests qualifying the name of the global function with Swift's default namespace, Swift. So you should be able to access the global version using: Swift.sort.

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    ah, but what if it's not in Swift, but in the local module?
    – Alex Brown
    Commented Mar 23, 2015 at 17:01
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    @AlexBrown if your target name is "MyApp" you can call the global function with MyApp.theGlobalFunction(). I had a similar conflict with the global functions of Alamofire (to target iOS7 you can't use embedded frameworks and so the lib isn't namespaced) Commented Apr 17, 2015 at 18:02
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    @MathieuLescure I didn't find that MyApp.theGlobal works. Has that feature gone away since you wrote this?
    – Grumdrig
    Commented Dec 29, 2015 at 0:36
-1

Wrap the global sort, for example,

func my_sort<T>(arr: T[], pred: (T, T) -> Bool) -> T[] {
    return sort(arr, pred)
}
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