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Im making a Tcp client and therefore using the CFStreamCreatePairWithSocketToHost which is expecting an UInt32 for the second parameter.

Here is a sample of what I'm trying to do.:

func initNetwork(IP: String, Port: Int) {
    // relevant stuff

    //Convert Port:Int to UInt32 to make this shit work!

    CFStreamCreatePairWithSocketToHost(kCFAllocatorDefault, IP as NSString , Port , &readStream, &writeStream)

    // Irelevant stuff
}

I have been looking around for a solution for some time now, and i can't seem to find one!

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4 Answers 4

up vote 24 down vote accepted

You can do it easily:

var x = UInt32(yourInt)
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4  
It's not casting. UInt provides an initializer that accepts Int. –  akashivskyy Aug 30 '14 at 9:08

It's very simple:

let int: Int = 40
let uint = UInt32(i)

in your case, just pass

UInt32(Port)

For a port is not a problem, but in other cases be sure to take care of overflow

Side note: in swift it's good practice to name variables using lower camel case, so with the first letter in lowercase

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Nikos M.'s answer might overflow because Swift Ints are 64 bit now, and Swift will crash when the default UInt32 initializer overflows. If you want to avoid overflow, use the truncatingBitPattern initializer.

If you're sure your data won't overflow, then you should use the default initializer because an overflow represents invalid data for your application. If you're sure your data will overflow, but you don't care about truncation (like if you're building hash values or something) then you probably want to truncate.

let myInt: Int = 576460752303423504
let myUInt32 = UInt32(truncatingBitPattern: myInt)
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I disagree. This is silently changing the data. Triggering an explicit panic due to out-of-range port is better than pretending a different value was passed. Swift defaults to panic-on-overflow for a reason. –  Kevin Ballard May 28 at 20:58
    
Fair enough. I'll update the answer. –  Heath Borders May 29 at 19:40

Still more easier:

var x = Int32(yourInt)
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