41

I have two arrays like this:

var arrayA = ["Mike", "James", "Stacey", "Steve"]
var arrayB = ["Steve", "Gemma", "James", "Lucy"]

As you can see, James and Steve match and I want to be able to remove them from arrayA. How would I write this?

0
20

Like this:

var arrayA = ["Mike", "James", "Stacey", "Steve"]
var arrayB = ["Steve", "Gemma", "James", "Lucy"]
for word in arrayB {
    if let ix = find(arrayA, word) {
        arrayA.removeAtIndex(ix)
    }
}
// now arrayA is ["Mike", "Stacey"]
1
  • 13
    This solution works pretty well for small arrays, but it must be kept into account that its complexity is O(n^2). For larger arrays I would consider converting arrayA into a set and using it for the find - that should reduce complexity to O(2n) – Antonio Apr 16 '15 at 10:43
64

@francesco-vadicamo's answer in Swift 2/3/4+

 arrayA = arrayA.filter { !arrayB.contains($0) }
4
  • 1
    Should still turn arrayB into a Set first. – BallpointBen Mar 8 '17 at 19:45
  • @BallpointBen I've added a demo link on the answer: as you can see, it works as expected. – Federico Zanetello Mar 9 '17 at 2:30
  • @cleexiang there’s a demo in my answer, you can run it with Swift 4 :) – Federico Zanetello Dec 14 '17 at 15:02
  • Have you? I just did in Xcode 9.2 (and previously in 9.0) and it works. If it doesn't for you, please show some code and I'll try to help. – Federico Zanetello Dec 15 '17 at 12:31
36

The easiest way is by using the new Set container (added in Swift 1.2 / Xcode 6.3):

var setA = Set(arrayA)
var setB = Set(arrayB)

// Return a set with all values contained in both A and B
let intersection = setA.intersect(setB) 

// Return a set with all values in A which are not contained in B
let diff = setA.subtract(setB)

If you want to reassign the resulting set to arrayA, simply create a new instance using the copy constructor and assign it to arrayA:

arrayA = Array(intersection)

The downside is that you have to create 2 new data sets. Note that intersect doesn't mutate the instance it is invoked in, it just returns a new set.

There are similar methods to add, subtract, etc., you can take a look at them

8
  • Sorry I've never used Set before. I've just dropped it into playground and it's saying: Use of unresolved identifier 'Set'. Can you elaborate more? – Henry Brown Apr 13 '15 at 19:07
  • Forgot to mention that it's available in Swift 1.2 - I presume you're not using Xcode 6.3 – Antonio Apr 13 '15 at 19:08
  • Ahh Ok, You assume right, I'll update tonight and give it a go. Thanks for your help. – Henry Brown Apr 13 '15 at 19:09
  • Sorry I've just realised, this actually does the opposite of what I want to do, I want to take the match names away, not be left with them? Can this be done with a similar process? – Henry Brown Apr 15 '15 at 19:14
  • @HenryBrown Yeah my mistake - you should use substract, see udpated answer. Take also a look at the documentation if you need to know more - there are other useful methods. – Antonio Apr 15 '15 at 19:28
13

I agree with Antonio's answer, however for small array subtractions you can also use a filter closure like this:

let res = arrayA.filter { !contains(arrayB, $0) }
2
  • 1
    This is nice because it preserves ordering – Alexander Jun 20 '16 at 12:26
  • 1
    arrayA = arrayA.filter { !arrayB.contains($0) } => works, above NOT work – coders Jul 15 '19 at 23:42
12

matt and freytag's solutions are the ONLY ones that account for duplicates and should be receiving more +1s than the other answers.

Here is an updated version of matt's answer for Swift 3.0:

var arrayA = ["Mike", "James", "Stacey", "Steve"]
var arrayB = ["Steve", "Gemma", "James", "Lucy"]
for word in arrayB {
    if let ix = arrayA.index(of: word) {
        arrayA.remove(at: ix)
    }
}
8

Original answer

This can also be implemented as a minus func:

func -<T:RangeReplaceableCollectionType where T.Generator.Element:Equatable>( lhs:T, rhs:T ) -> T {

    var lhs = lhs
    for element in rhs {
        if let index = lhs.indexOf(element) { lhs.removeAtIndex(index) }
    }

    return lhs
}

Now you can use

arrayA - arrayB

Updated implementation for Swift 5

func -<T: RangeReplaceableCollection>(lhs: T, rhs: T) -> T where T.Iterator.Element: Equatable {

    var lhs = lhs
    for element in rhs {
        if let index = lhs.firstIndex(of: element) { lhs.remove(at: index) }
    }

    return lhs
}
5

Using the Array → Set → Array method mentioned by Antonio, and with the convenience of an operator, as freytag pointed out, I've been very satisfied using this:

// Swift 3.x/4.x
func - <Element: Hashable>(lhs: [Element], rhs: [Element]) -> [Element]
{
    return Array(Set<Element>(lhs).subtracting(Set<Element>(rhs)))
}
1

Remove elements using indexes array:

  1. Array of Strings and indexes

    let animals = ["cats", "dogs", "chimps", "moose", "squarrel", "cow"]
    let indexAnimals = [0, 3, 4]
    let arrayRemainingAnimals = animals
        .enumerated()
        .filter { !indexAnimals.contains($0.offset) }
        .map { $0.element }
    
    print(arrayRemainingAnimals)
    
    //result - ["dogs", "chimps", "cow"]
    
  2. Array of Integers and indexes

    var numbers = [0, 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12]
    let indexesToRemove = [3, 5, 8, 12]
    
    numbers = numbers
        .enumerated()
        .filter { !indexesToRemove.contains($0.offset) }
        .map { $0.element }
    
    print(numbers)
    
    //result - [0, 1, 2, 4, 6, 7, 9, 10, 11]
    



Remove elements using element value of another array

  1. Arrays of integers

    let arrayResult = numbers.filter { element in
        return !indexesToRemove.contains(element)
    }
    print(arrayResult)
    
    //result - [0, 1, 2, 4, 6, 7, 9, 10, 11]
    
  2. Arrays of strings

    let arrayLetters = ["a", "b", "c", "d", "e", "f", "g", "h", "i"]
    let arrayRemoveLetters = ["a", "e", "g", "h"]
    let arrayRemainingLetters = arrayLetters.filter {
        !arrayRemoveLetters.contains($0)
    }
    
    print(arrayRemainingLetters)
    
    //result - ["b", "c", "d", "f", "i"]
    
1

For smaller arrays I use:

/* poormans sub for Arrays */

extension Array where Element: Equatable {

    static func -=(lhs: inout Array, rhs: Array) {

        rhs.forEach {
            if let indexOfhit = lhs.firstIndex(of: $0) {
                lhs.remove(at: indexOfhit)
            }
        }
    }

    static func -(lhs: Array, rhs: Array) -> Array {

        return lhs.filter { return !rhs.contains($0) }
    }
}

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