0

I have an if statement with a variable, however the if statement does not work correctly and I am guessing it is because of an optional value on the variable.

The statement goes something like this

If (x == 6) {

}

x does = 6 but I cannot get the if statement to work.

When I do a "print x", the result is

Optional("6")

So I know the number is 6 but it seems that the optional value is making this if statement not work. I cannot get this unwrapped so I'm looking for another option.

  • 1
    Habermas if let x = x where Int(x) == 6 { ... } – Leo Dabus Dec 21 '15 at 5:14
4

See the double quotes? It means that x is String type not Int. You can do this way to make be more standard

if let x = x where x == "6" {

}
1

If you are getting:

Optional("6")

it means that the value is actually a string and not an int. If it was an int you would get:

Optional(6)

To double check you can try:

if x == "6"
{
}

I hope that helps.

0

How have you defined x You’ll not get an optional if it is like

let x = 6 \\or var x = 6

if x == 6 {

print(x)

}

Will return you 6 not Optional("6")

  • Its a variable from a common class between view controllers so when I call the variable is it like (sharedData.x) – Seth Haberman Dec 21 '15 at 5:03
  • What’s the problem in unwrapping it, when you want to use it? – Vakas Dec 21 '15 at 5:04
  • The class is setup like so class SharedData { static let sharedInstance = SharedData() var x: String? } – Seth Haberman Dec 21 '15 at 5:04
  • I changed something that made it unwrap so thats good. I still would like to know though why it won't work in a comparison when it is wrapped. – Seth Haberman Dec 21 '15 at 5:06
  • x is and optional, so you can’t compare it with a constant which is 6. – Vakas Dec 21 '15 at 5:08

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