22

Is it possible to remove more than one item from an array, at the same time, using index locations as per .remove(at: i) kind of like:

Pseudo code:

myArray.remove(at: 3, 5, 8, 12)

And if so, what's the syntax for doing this?


UPDATE:

I was trying this, it worked, but the extension in the answer below is much more readable, and sensible, and achieves the goal of one that's exactly as the pseudo code.

an array of "positions" is created: [3, 5, 8, 12]

let sorted = positions.sorted(by: { $1 < $0 })
for index in sorted
{
    myArray.remove(at: index)
}
3

7 Answers 7

37

It's possible if the indexes are continuous using removeSubrange method. For example, if you would like to remove items at index 3 to 5:

myArray.removeSubrange(ClosedRange(uncheckedBounds: (lower: 3, upper: 5)))

For non-continuous indexes, I would recommend remove items with larger index to smaller one. There is no benefit I could think of of removing items "at the same time" in one-liner except the code could be shorter. You can do so with an extension method:

extension Array {
  mutating func remove(at indexes: [Int]) {
    for index in indexes.sorted(by: >) {
      remove(at: index)
    }
  }
}

Then:

myArray.remove(at: [3, 5, 8, 12])

UPDATE: using the solution above, you would need to ensure the indexes array does not contain duplicated indexes. Or you can avoid the duplicates as below:

extension Array {
    mutating func remove(at indexes: [Int]) {
        var lastIndex: Int? = nil
        for index in indexes.sorted(by: >) {
            guard lastIndex != index else {
                continue
            }
            remove(at: index)
            lastIndex = index
        }
    }
}


var myArray = [0, 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13]
myArray.remove(at: [5, 3, 5, 12]) // duplicated index 5
// result: [0, 1, 2, 4, 6, 7, 8, 9, 10, 11, 13] only 3 elements are removed
14
  • The reason I'm giving the example of indices as (3, 5, 8, 12) is because they'll not be contiguous.
    – Confused
    Oct 11, 2016 at 10:34
  • The filter solution calls index(of:), which not only iterates over the array unnecessarily a second time, but is also not guaranteed to find the correct index (e.g., if there are duplicate elements).
    – Arkku
    Oct 11, 2016 at 10:41
  • I have updated the answer @Confused although it could still not be as ideal as you would expect :D
    – Thanh Pham
    Oct 11, 2016 at 10:52
  • thanks Thanh! I updated my question with the approach I was using. But I like yours much better, and am now using that. Is it also possible to do the same sort of extension that creates and array from these positions, based on objects at these positions in another array? I probably need to ask another question about this...
    – Confused
    Oct 11, 2016 at 17:38
  • what I found interesting, when I tried to rename your some of the parts of your technique, the final function in the extension required an array rather than an Int. I tried to rename remove(at: _) to removes(from: _) to cover the plural nature of it. Why does this simple change change the required type of "index" to [index]?
    – Confused
    Oct 11, 2016 at 17:41
25

Remove elements using indexes of an array elements:

  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

    var numbers = [0, 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12]
    let elementsTobeRemoved = [3, 5, 8, 12]
    let arrayResult = numbers.filter { element in
        return !elementsTobeRemoved.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
  • I used answer 1. Everything else I tried was recursing the "new" array which was re-indexed so using a let constant instead of var is a must. I'm trying to understand better exactly how it works.
    – AMC08
    Jan 12, 2023 at 21:27
9

Simple and clear solution, just Array extension:

extension Array {

    mutating func remove(at indices: [Int]) {
        Set(indices)
            .sorted(by: >)
            .forEach { rmIndex in
                self.remove(at: rmIndex)
            }
    }
}
  • Set(indices) - ensures uniqueness
  • .sorted(by: >) - function removes elements from last to first, so during removal we are sure that indexes are proper
7

Swift 4

extension Array {

    mutating func remove(at indexs: [Int]) {
        guard !isEmpty else { return }
        let newIndexs = Set(indexs).sorted(by: >)
        newIndexs.forEach {
            guard $0 < count, $0 >= 0 else { return }
            remove(at: $0)  
        }
    }

}

var arr = ["a", "b", "c", "d", "e", "f"]

arr.remove(at: [2, 3, 1, 4])

result: ["a", "f"]
4

You can make a set of indexes you want to remove.

var array = [1, 2, 3, 4, 5, 6, 7, 8, 9, 10]
let indexSet = [3, 5, 8, 12]
indexSet.reversed().forEach{ array.remove(at: $0) }
print(array)

Output: [0, 1, 2, 4, 6, 7, 9, 10, 11]

In case indexes are continuous then use removeSubrange

array.removeSubrange(1...3) /// Will remove the elements from 1, 2 and 3 positions.
2

According to the NSMutableArray API I recommend to implement the indexes as IndexSet.

You just need to inverse the order.

extension Array {

    mutating func remove(at indexes: IndexSet) {
        indexes.reversed().forEach{ self.remove(at: $0) }
    }
}

Please see also this answer providing a more efficient algorithm.

0

Swift 5.6

I had a situation where I needed to remove values in one list using values from another list, so I used this:

var mainList = [1,2,3,4,5,6,7,8]
let otherList = [3,4,6,8]

mainList.remove(where: { otherList.contains($0) })

print(mainList) // [1, 2, 5, 7]

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service and acknowledge you have read our privacy policy.

Not the answer you're looking for? Browse other questions tagged or ask your own question.