42

I get an error when declaring i

var users =  Array<Dictionary<String,Any>>()
users.append(["Name":"user1","Age":20])
var i:Int = Int(users[0]["Age"])

How to get the int value?

5 Answers 5

46

var i = users[0]["Age"] as Int

As GoZoner points out, if you don't know that the downcast will succeed, use:

var i = users[0]["Age"] as? Int

The result will be nil if it fails

1
  • 1
    sometimes it returns nil. I used this method to parse from WKBridge Jun 21, 2017 at 12:32
27

Swift 4 answer :

if let str = users[0]["Age"] as? String, let i = Int(str) {
  // do what you want with i
}
1
  • I have encountered the issue by unwrapping content which looked like Optional(3). I tried to cast it as? Int then as? String - both failed. Then tried to unwrap and use the type which caused the exception which revealed that Swift decided to use Int8 for this value. So folk, Int8 is not convertable to Int, thinking Swift engineers. Ended up checking all int types in if/else flow. Jun 4, 2018 at 13:57
13

If you are sure the result is an Int then use:

var i = users[0]["Age"] as! Int

but if you are unsure and want a nil value if it is not an Int then use:

var i = users[0]["Age"] as? Int

“Use the optional form of the type cast operator (as?) when you are not sure if the downcast will succeed. This form of the operator will always return an optional value, and the value will be nil if the downcast was not possible. This enables you to check for a successful downcast.”

Excerpt From: Apple Inc. “The Swift Programming Language.” iBooks. https://itun.es/us/jEUH0.l

3
  • 2
    It's worth noting that the type of i in the first example is Int but the type of i in the second example will be Int?.
    – Ephemera
    Jun 7, 2014 at 1:03
  • Right. I think Apple might think of as Int and as Int? instead of introducing as?
    – GoZoner
    Jun 7, 2014 at 4:52
  • That's a good point actually. I suppose as? is equivalent to -isKindOfClass:, but moving the ? would make sense.
    – Ephemera
    Jun 8, 2014 at 0:16
2

This may have worked previously, but it's not the answer for Swift 3. Just to clarify, I don't have the answer for Swift 3, below is my testing using the above answer, and clearly it doesn't work.

My data comes from an NSDictionary

print("subvalue[multi] = \(subvalue["multi"]!)")
print("as Int = \(subvalue["multi"]! as? Int)")
if let multiString = subvalue["multi"] as? String {
  print("as String = \(multiString)")
  print("as Int = \(Int(multiString)!)")
}

The output generated is:

subvalue[multi] = 1
as Int = nil

Just to spell it out:
a) The original value is of type Any? and the value is: 1
b) Casting to Int results in nil
c) Casting to String results in nil (the print lines never execute)

EDIT
The answer is to use NSNumber
let num = subvalue["multi"] as? NSNumber

Then we can convert the number to an integer
let myint = num.intValue

2
  • Maybe the problem is that you're using NSDictionary instead of Dictionary? as? Int should work in fine in Swift 3. Jun 1, 2017 at 5:18
  • 1
    Actually, yeah, that's definitely the problem. NSDictionary values are AnyObject, which can't cast to Int because it's not an object type. Use a Swift dictionary instead and it should work. Jun 1, 2017 at 5:27
0
if let id = json["productID"] as? String {
   self.productID = Int32(id, radix: 10)!
}

This worked for me. json["productID"] is of type Any. If it can be cast to a string, then convert it to an Integer.

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