When trying to connect a Navigation Bar Button to the Exit item of a ViewController in Xcode 6 (not really sure if it's an Xcode 6 problem but worth mentioning as it is in beta) it does not find the Swift function in the custom class.

Button to Exit with whip

The function it should be finding:

@IBAction func unwindToList(segue: UIStoryboardSegue) {

}

I made another button on the view just to make sure I could get an IBAction working with Swift and that I was writing it correctly. This works fine:

@IBAction func test(sender: AnyObject) {

    NSLog("Test")
}

I have seen this question that seems like the same issue but according to the answers there this should be working.

Xcode 6 is in beta and, of course, Swift is very new, but wanted to see if anyone has come across this before considering it a potential bug.

  • 2
    Please check the Xcode release notes. – Jack Lawrence Jun 4 '14 at 5:34
  • @JackLawrence Thanks Jack. There was a note in there about this and I was able to figure it out. I'll updated this answer here. – skabob11 Jun 4 '14 at 5:49
  • 2
    Sounds like you're working through apple's ToDo app tutorial in swift, too. Here's a working swift version, in case you get stuck: github.com/SimpleAsCouldBe/ios-swift-todo – SimplGy Jun 9 '14 at 6:24
  • @SimpleAsCouldBe Thanks, yeah I am. I'll take a look at your repo. – skabob11 Jun 10 '14 at 13:23
  • Hello! everyone. I'm using Xcode 6.3 and I'm encountering the same problem mentioned above. But for me, the exit can identify the IBAction in view controllers other than my ViewController.swift i.e. the IBAction function if written in other view controllers get shown in exit but not the ones written in ViewController.swift. Any help would be appreciated thanks! – ritvik1512 Apr 24 '15 at 16:14

11 Answers 11

up vote 55 down vote accepted

This is a known issue with Xcode 6:

Unwind segue actions declared in Swift classes are not recognized by Interface Builder

In order to get around it you need to:

  1. Change class MyViewController to @objc(MyViewController) class MyViewController
  2. Create an Objective-C header file with a category for MyViewController that redeclares the segue action.

    @interface MyViewController (Workaround)
    - (IBAction)unwindToMyViewController: (UIStoryboardSegue *)segue;
    @end
    
  3. In the storyboard, select the instance of MyViewController, clear its custom class, then set it back to MyViewController.

After these steps you are able to connect buttons to the exit item again.

Xcode 6 Release Notes PDF, Page 10

  • 1
    You're right that the documentation does say this is the workaround for the issue, but I can't seem to get it to work. I've added the header file and edited the swift class file (and reset the custom class for the view controller) but nothing seems to work. Is there anything I might be missing that you can think of? – itsmequinn Jun 6 '14 at 22:45
  • @itsmequinn I had the same problem you did. See rajeev's answer below — worked for me. – ehfeng Jun 11 '14 at 0:05
  • That Xcode Release Notes link is not valid anymore. Anyone knows where it is now? – aseba Jun 29 '14 at 17:57
  • @aseba Updated release notes link. – skabob11 Jul 1 '14 at 13:06
  • 3
    This is fixed in Xcode 6 GM. Dunno if it was working in prior betas. – swilliams Sep 11 '14 at 3:18

Instead of using the Objective-C workaround, Xcode 6 Beta 4, which can now be installed, supports the connection of unwind segues in the Interface Builder. You can update now from the iOS Dev center. Control-click and drag from the UI item you want to trigger the segue to the exit icon, and select the function unwindToSegue after having put the following code in the destination view controller.

@IBAction func unwindToSegue (segue : UIStoryboardSegue) {}
  • 20
    One thing that is not clear in the workaround is that the unwind segue function must be in the target view of the unwind segue. i.e. it must be in the view TO WHICH you unwind, not the view FROM WHICH you unwind. That threw me off but once I fixed that it worked. – Laurent Jul 24 '14 at 21:36
  • 3
    @IBAction func unwindToSegue(segue: UIStoryboardSegue) {} UIUnwindSegue is not available – Haider Ghaleb Jul 27 '14 at 21:00
  • 2
    This is the correct answer now. – Sean Dec 26 '14 at 20:09
  • 2
    @Laurent Gorse saved me after long long time trying to crack this – vim Dec 27 '14 at 20:19
  • 1
    @LaurentGorse thanks, without you I wouldn't have been able to solve it. – Gaston Sanchez Jan 2 '15 at 23:50

I was able to finally get it to work; the xcode6 IB is really fragile right now (crashes a lot too). I had to restart the IDE before I could connect the nav bar button item to the exit item. I ended up re-creating my test project and following the above suggestion (Xcode 6 Release Notes PDF, Page 10) to get it to work. In addition, when adding the .h file, I made sure to select my project target, which was unchecked by default. I also created my controller swift stub via the Cocoa Touch Class template (vs empty swift file). I used a modal segue in my nav controller.

ListTableViewController.h

#import <UIKit/UIKit.h>

@interface ListTableViewController
- (IBAction)unwindToList: (UIStoryboardSegue *)segue;
@end

ListTableViewController.swift

import UIKit

@objc(ListTableViewController) class ListTableViewController: UITableViewController {

    @IBAction func unwindToList(s:UIStoryboardSegue) {
        println("hello world");
    }

}

hope that helps

  • These steps worked for me. Thank you. – SimplGy Jun 8 '14 at 7:17
  • 1
    Worked for me as well, what had been missing in the other helps was the fact you need to still declare the @IBAction func unwindToList in your Swift file as well as the .h – Unome Oct 22 '14 at 19:05

In Xcode 6 Beta 4 which is available for download, unwind segues and interface builder is supported. I have tested it by myself in a little project.

  • Confirmed: it is working in Beta 4 – Imre Kelényi Jul 25 '14 at 16:24

In Swift 2.3 I found the external name of the parameter must be "withUnwindSegue":

@IBAction func unwindToThisView(withUnwindSegue unwindSegue: UIStoryboardSegue) {
    ...
}
  • The Interface Builder in Xcode 8 seems to use Swift 3 syntax (even for 2.3 projects), so if you had unwindToThisView(unwindSegue:) it expects unwindToThisViewWithUnwindSegue: and not unwindToThisView:. I solved it by renaming the method to unwindToThisView(_ unwindSegue:) – AcDcP Oct 20 '16 at 15:52

It appears that Xcode 6.1 has fixed this issue. You can now set up unwind segues in Swift with the following code:

@IBAction func unwindToList(segue: UIStoryboardSegue) {
    // Nothing needed here, maybe a log statement
    // print("\(segue)")
}

This method - which can remain empty - needs to have a method signature with the UIStoryboardSegue type and not AnyObject or Interface Builder will not see it.

For more detail check the TechNote 2298

  • Yes, but it doesn't seem to really connect, i.e. it does not being called – vim Nov 22 '14 at 10:20
  • @vim Huh, that's odd. It seems to be working for me. Did you remember to connect to the exit segue in IB? – Barlow Tucker Nov 24 '14 at 22:48

I had the same problem, also with Xcode Beta 4 at the beginning.. till I found out, that I simply forgot to add the @IBOutlet for the Cancel and Save Buttons in the respective controller. After this, I could connect the buttons with the Exit-Icon :))

  • Im on Beta 4 and have the outlet as well and it still wont unwind my segue thats presented modally. Any ideas? – Jason Storey Apr 5 '15 at 21:05

If it's always the same presenting view controller that you'd like to unwind to, you can always just do:

self.navigationController?.popViewControllerAnimated(true)

You may want to verify that the original controller destination that you're trying to unwind to is not embedded inside a Container object. Xcode 6 ain't having that.

The answers above rely on ObjC to fix the issue, I have found a pure Swift solution. While adding the segue handler in Swift allowed me to create the unwind segue in Interface Builder (Xcode 6.3), the handler was not being called.

@IBAction func unwindToParent(sender: UIStoryboardSegue) {
    dismissViewControllerAnimated(true, completion: nil)
}

So after digging in, the canPerformUnwindSegueAction:fromViewController:withSender from the super class returns false. So I've overridden the implementation, and it works:

override func canPerformUnwindSegueAction(action: Selector, fromViewController: UIViewController, withSender sender: AnyObject) -> Bool {
    return action == Selector("unwindToParent:")
}

Update
The code above is incorrect, as I resolved the issue without overriding canPerformUnwindSegueAction:fromViewController:withSender. The fundamental error was to make the distinction between the presenting viewcontroller and the presented viewcontroller.

When an unwind segue is initiated, it must first locate the nearest view controller in the navigation hierarchy which implements the unwind action specified when the unwind segue was created. This view controller becomes the destination of the unwind segue. If no suitable view controller is found, the unwind segue is aborted.
source: Technical Note TN2298

So, define the @IBAction on the presenting viewcontroller, not on the presented view controller. That way the segue will have meaningful values for the properties destinationViewController and sourceViewController as well, being respectively the presenting and presented viewcontroller.

  • Yes, it is correct to place the unwind in the presenting view controller. Also you don't need the dismissViewControllerAnimated shown above. By virtue of having the unwind segue it handles it automagically. – Cameron Lowell Palmer Aug 12 '16 at 8:59

Xcode --version 6.4 Swift 1.2

@IBAction func backButton(sender: AnyObject) { dismissViewControllerAnimated(true, completion: nil) }

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