0

I'm a beginner in both ObjectiveC and Swift (but have to develop an iOS share extension for a Cordova app).

I'm trying to implement this code snippet in my share extension

NSURL *destinationURL = [NSURL URLWithString:@"myapp://"];

// Get "UIApplication" class name through ASCII Character codes.
NSString *className = [[NSString alloc] initWithData:[NSData dataWithBytes:(unsigned char []){0x55, 0x49, 0x41, 0x70, 0x70, 0x6C, 0x69, 0x63, 0x61, 0x74, 0x69, 0x6F, 0x6E} length:13] encoding:NSASCIIStringEncoding];
if (NSClassFromString(className)) {
    id object = [NSClassFromString(className) performSelector:@selector(sharedApplication)];
    [object performSelector:@selector(openURL:) withObject:destinationURL];
}

For now I have the following, but I don't really know how to translate the "performSelector" part as it seems it's not in Swift.

    let bytesArray : [UInt8] = [0x55, 0x49, 0x41, 0x70, 0x70, 0x6C, 0x69, 0x63, 0x61, 0x74, 0x69, 0x6F, 0x6E]

    let classNameNs = NSString.init(data: NSData(bytes: bytesArray, length: bytesArray.count), encoding: NSASCIIStringEncoding) ?? ""

    let className = classNameNs as String

    NSClassFromString(className).map { clazz in
        let result = clazz.performSelector(Selector("sharedApplication"))
    }

Can someone help me complete this part please? thanks

  • Why not use this solution? – rmaddy Oct 15 '15 at 16:25
  • @rmaddy why would it be better? – Sebastien Lorber Oct 15 '15 at 16:35
  • I suggested it because it already has working Swift code. – rmaddy Oct 15 '15 at 16:36
  • It would be less bad in that it's not completely hideous, awful code. It's still more than a little questionable and likely to break in a future update to iOS 9, so "better" is not really a good way to think of it. – Tom Harrington Oct 15 '15 at 18:10
  • @TomHarrington I tested this solution and it seems to work in iOS 9 however I'll be interested to know why it's better – Sebastien Lorber Oct 16 '15 at 9:07
1

The simplest solution is update to Xcode 7 and Swift 2.0, where performSelector: does exist.

However, I have found that in nearly all situations where my Objective-C code used performSelector:, I don't need it in Swift, because in Swift a function is a first-class citizen and can be stored as a value and later retrieved and called. In general, the dynamism implied by performSelector: should not used — as all too frequently it is, in Objective-C — as a crutch to avoid having to know the actual class of a method's receiver.

  • My XCode seems to be 7.0 but I don't even know the Swift version I am using. What I can say is that my IDE autocompletes for "performSelector" but I don't really know how to use it. Remember I'm a total noob, developing for iOS since 1 day only :) I'm really looking for the fastest solution as I'm prototyping. – Sebastien Lorber Oct 15 '15 at 16:34
  • I don't really care what you are or how long you've been developing for iOS. If what you mean is "please write my code for me, right now, I'm in a hurry", you'll have to hope that someone other than me does that for you. In my view, that would not be a proper use of Stack Overflow. – matt Oct 15 '15 at 16:36
  • Arguably most beginners questions are not proper use of StackOverflow, a most of them could be answered by investing a lot of time reading language spec and gaining experience. I thought it was clear that my question was of this kind. But I understand your point and you'll notice I have provided what I have successfully transposed but I'm just missing the last bit :'( – Sebastien Lorber Oct 15 '15 at 16:43
  • "Arguably most beginners questions are not proper use of StackOverflow" That is not what I said. I answered the question as a beginner question. Your beginner question was: "I don't really know how to translate the performSelector part as it seems it's not in Swift." I explained that it is in Swift and also that you can probably do without it. That's a lot of useful information for you to be going on with, and a lot more than you knew before. – matt Oct 15 '15 at 17:01
1

You have to just provide a simple string into that method like this:

NSClassFromString(className).map { clazz in
    let result = clazz.performSelector("sharedApplication")
}
  • I don't know why but it says that I can't call performSelector on AnyObject (but actually clazz is a AnyClass so I don't understand – Sebastien Lorber Oct 16 '15 at 9:05

Your Answer

By clicking "Post Your Answer", you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.