In Swift, is there any way to check if an index exists in an array without a fatal error being thrown?

I was hoping I could do something like this:

let arr: [String] = ["foo", "bar"]
let str: String? = arr[1]
if let str2 = arr[2] as String? {
    // this wouldn't run
    println(str2)
} else {
    // this would be run
}

But I get

fatal error: Array index out of range

up vote 297 down vote accepted

An elegant way in Swift:

let isIndexValid = array.indices.contains(index)
  • 5
    In real life, it shouldn't matter but time-complexity-wise wouldn't it be much better to use index < array.count? – funct7 Sep 3 '16 at 8:15
  • 1
    I honestly think the example you gave is a bit contrived since I've never experienced having a negative index value, but if that should really be the case, two true/false checks would be still better: i.e. index >= 0 && index < array.count instead of the worst case being n comparisons. – funct7 Sep 3 '16 at 8:25
  • 9
    In case you wonder what the speed difference is, I measured it with Xcode's tools and it's negligible. gist.github.com/masonmark/a79bfa1204c957043687f4bdaef0c2ad – Mason Sep 18 '16 at 10:59
  • 3
    Just to add another point on why this is right: if you apply the same logic when working on an ArraySlice, the first index won't be 0, so doing index >= 0 won't be a good-enough check. .indices instead works in any case. – DeFrenZ Apr 20 '17 at 10:35
  • 1
    I love Swift for this. Here's my use case: building shitty JSON structure for service so had to do this: "attendee3" : names.indices.contains(2) ? names[2] : "" – Lee Probert Aug 1 '17 at 19:44

Swift 3 & 4 extension:

extension Collection {

    subscript(optional i: Index) -> Iterator.Element? {
        return self.indices.contains(i) ? self[i] : nil
    }

}

Using this you get an optional value back when adding the keyword optional to your index which means your program doesn't crash even if the index is out of range. In your example:

let arr = ["foo", "bar"]
let str1 = arr[optional: 1] // --> str1 is now Optional("bar")
if let str2 = arr[optional: 2] {
    print(str2) // --> this still wouldn't run
} else {
    print("No string found at that index") // --> this would be printed
}
  • 2
    Excellent answer 👏 Most important it's readable while using optional in parameter. Thanks! – Jakub Oct 25 '17 at 14:37
  • 1
    Awesomeness :D Saved my day. – Satnam Sync Sep 22 at 11:04

Just check if the index is less than the array size:

if 2 < arr.count {
    ...
} else {
    ...
}
  • 2
    What if the array size is unknown? – Nathan McKaskle Dec 16 '15 at 14:37
  • 5
    @NathanMcKaskle The array always knows how many elements it contains, so the size cannot be unknown – Antonio Dec 16 '15 at 18:40
  • 12
    Sorry I wasn't thinking there. Morning coffee was still entering bloodstream. – Nathan McKaskle Dec 16 '15 at 19:22
  • 2
    @NathanMcKaskle no worries... sometimes that happens to me, even after several coffees ;-) – Antonio Dec 16 '15 at 21:33

Add some extension sugar:

extension Collection {
  subscript(safe index: Index) -> Iterator.Element? {
    guard indices.contains(index) else { return nil }
    return self[index]
  }
}

if let item = ["a","b","c","d"][safe:3] {print(item)}//Output: "c"
//or with guard:
guard let anotherItem = ["a","b","c","d"][safe:3] else {return}
print(anotherItem)//"c"

Enhances readability when doing if let style coding in conjunction with arrays

  • honestly, this is the most swifty way to do it with maximum readability and clarity – barndog Feb 14 at 9:08
  • @barndog Love it too. I usually add this as Sugar in any project i Start. Added guard example as well. Credit to the swift slack community for coming up with this one. – eonist Feb 26 at 12:22

You can rewrite this in a safer way to check the size of the array, and use a ternary conditional:

if let str2 = (arr.count > 2 ? arr[2] : nil) as String?
  • What Antonio suggests is much more transparent (and efficient) Where the ternary would be appropriate is if you had a readily available value to use and eliminate the if altogether, just leaving a let statement. – David Berry Sep 22 '14 at 15:43
  • @David What Antonio suggests requires two if statements instead of one if statement in the original code. My code replaces the second if with a conditional operator, letting you keep a single else instead of forcing two separate else blocks. – dasblinkenlight Sep 22 '14 at 15:51
  • I'm not seeing two if statements in his code, put let str2 = arr[1] in for his ellipsis and it's done. If you replace the OP if let statement with antonio's if statement, and move the assignment inside (or not, since the only usage of str2 is to print it there's no need at all, just put the dereference inline in the println. Not to mention that the ternary operator is just an obscure (to some:)) if/else. If arr. count > 2, then arr[2] can never be nil, so why map it to String? just so you can apply yet another if statement. – David Berry Sep 22 '14 at 21:53
  • @David The entire if from OP's question will end up inside the "then" branch of Antonio's answer, so there would be two nested ifs. I am viewing OPs code as a small example, so I am assuming that he would still want an if. I agree with you that in his example if is not necessary. But then again, the entire statement is pointless, because OP knows that the array does not have enough length, and that none of its elements is nil, so he could remove the if and keep only its else block. – dasblinkenlight Sep 23 '14 at 0:42
  • No it wouldn't. Antonio's if replaces the OP's if statement. Since the array type is [String] you know that it can never contain a nil, so don't need to check anything beyond the length. – David Berry Sep 23 '14 at 1:56

Swift 4 extension:

For me i prefer like method.

// MARK: - Extension Collection

extension Collection {

    /// Get at index object
    ///
    /// - Parameter index: Index of object
    /// - Returns: Element at index or nil
    func get(at index: Index) -> Iterator.Element? {
        return self.indices.contains(index) ? self[index] : nil
    }
}

Thanks to @Benno Kress

Asserting if an array index exist:

This methodology is great if you don't want to add extension sugar:

let arr = [1,2,3]
if let fourthItem = (3 < arr.count ?  arr[3] : nil ) {
     Swift.print("fourthItem:  \(fourthItem)")
}else if let thirdItem = (2 < arr.count ?  arr[2] : nil) {
     Swift.print("thirdItem:  \(thirdItem)")
}
//Output: thirdItem: 3

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