6

Let's say I have three optional strings, string1, string2, and string3. I don't know which, if any, is not nil so I am using if-let statements, and then I want to do something with that non-nil String regardless of which one it is.

Right now, this works in Swift but is cumbersome:

if let newString = string1 {
   doSomething()
} else if let newString = string2 {
   doSomething()
} else if let newString = string3 {
   doSomething()
}

Can I do something similar to this (which gives me an error):

if let newString = string1 || let newString = string2 || let newString = string3 {
   doSomething()
}
3
  • Could you pack those in an array? – tadman Jul 25 '19 at 18:49
  • put them in an array and use if let newString = [string1,string2, string3].compactMap({$0}).first { – Leo Dabus Jul 25 '19 at 18:51
  • Since you don't seem to need newString, why not if string1 != nil || string2 != nil || string3 != nil { doSomething() }. – rmaddy Jul 25 '19 at 19:59
7

Solution 1 :

if let newString = [string1, string2, string3].compactMap({$0}).first {
    print(newString)
}

The compactMap function will generate an array of non-null values and you'll be taking the first value of it

Solution 2 :

if let newString = [string1, string2, string3].first(where: {$0 != nil}) {
  print(newString)
}

Note: As suggested by @Connor and the brilliant solutions by @vacawama, the above solution would generate a double optional ( The first optional coming from the array of optionals and then the first function contributing to the second optional). This can be fixed by either:

  1. if let newString = [str1, str2, str3].first(where: {$0 != nil}) as? String {

  2. if let newString = [str1, str2, str3].first(where: {$0 != nil}) ?? nil {

  3. if case let newString?? = [str1, str2, str3].first(where: {$0 != nil}) {

  4. if let first = [str1, str2, str3].first(where: { $0 != nil }), let newString = first

Solution 3 :

(This won't scale and quite frankly is pretty weird)

if let newString = string1 ?? string2 ?? string3 {
   print(newString)
}
7
  • 1
    Worth noting that in the second code block, newString is still an optional. The type of [string1, string2, string3].first(where: {$0 != nil}) is String??, and the if let will only unwrap one layer. – Connor Neville Jul 25 '19 at 20:13
  • You can fix that with if let newString = [str1, str2, str3].first(where: {$0 != nil}) as? String { – vacawama Jul 25 '19 at 20:21
  • or with if let newString = [str1, str2, str3].first(where: {$0 != nil}) ?? nil { – vacawama Jul 25 '19 at 20:23
  • or with if case let newString?? = [str1, str2, str3].first(where: {$0 != nil}) { – vacawama Jul 25 '19 at 20:25
  • or with if let first = [str1, str2, str3].first(where: { $0 != nil }), let newString = first { – vacawama Jul 25 '19 at 20:37
1

@MayRestinPeace has 3 great answers. Here's one that uses switch pattern matching and tuple matching to unwrap and bind the first non-nil String:

switch (string1, string2, string3) {
case (let newString?, _, _), (_, let newString?, _), (_, _, let newString?):
    print(newString)
default:
    print("alas! they're all nil")
}

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