151

I'm looking for a simple method to remove at once all subviews from a superview instead of removing them one by one.

//I'm trying something like this, but is not working
let theSubviews : Array = container_view.subviews
for (view : NSView) in theSubviews {
    view.removeFromSuperview(container_view)
}

What I am missing?

UPDATE

My app has a main container_view. I have to add different other views as subviews to container_view in order to provide a sort of navigation.

So, when clicking the button to "open" a particular page, I need to remove allsubviews and add the new one.

UPDATE 2 - A working solution (OS X)

I guess Apple fixed it.

Now it is more easy than ever, just call:

for view in containerView.subviews{
    view.removeFromSuperview()
}
  • 2
    I'd like to point out that @sulthan's answer, while buried with the rags, is the superior answer: stackoverflow.com/questions/24312760/… – Christopher Swasey Jun 15 '15 at 21:47
  • @ChristopherSwasey Swift 4 gives an error: Cannot assign to property: 'subviews' is a get-only property. :( – William T. Mallard Feb 9 '18 at 19:33
  • 2
    @WilliamT.Mallard how many times does it have to be repeated that this method and question is about MacOS and not iOS? – Fogmeister Jun 20 '18 at 7:22

19 Answers 19

305

EDIT: (thanks Jeremiah / Rollo)

By far the best way to do this in Swift for iOS is:

view.subviews.forEach({ $0.removeFromSuperview() }) // this gets things done
view.subviews.map({ $0.removeFromSuperview() }) // this returns modified array

^^ These features are fun!

let funTimes = ["Awesome","Crazy","WTF"]
extension String { 
    func readIt() {
        print(self)
    }
}

funTimes.forEach({ $0.readIt() })

//// END EDIT

Just do this:

for view in self.view.subviews {
    view.removeFromSuperview()
}

Or if you are looking for a specific class

for view:CustomViewClass! in self.view.subviews {
        if view.isKindOfClass(CustomViewClass) {
            view.doClassThing()
        }
    }
  • In Xcode 7.0 beta 6 this generates a warning: "result of call to 'map' is unused". I hope this gets fixed in the final version. – Ferschae Naej Sep 1 '15 at 6:21
  • I noticed that as well! I'll update the post once Xcode comes out of beta and the problem still persists. – Bseaborn Sep 1 '15 at 13:02
  • 8
    The warning, result of call to 'map' is unused , is not an error. Array.map in most languages will return the modified array. The equivalent method which doesn't return an array, would be view.subviews.forEach. – Rollo Sep 3 '15 at 13:45
  • for view:CustomViewClass! in self.view.subviews where view.isKindOfClass(CustomViewClass) { view.doClassThing() } – iTSangar Oct 22 '15 at 4:31
  • I would argue that this is"By far the best way to do this in Swift" , see stackoverflow.com/a/24314054/1974224 – Cristik Jan 24 '16 at 10:18
34

For iOS/Swift, to get rid of all subviews I use:

for v in view.subviews{
   v.removeFromSuperview()
}

to get rid of all subviews of a particular class (like UILabel) I use:

for v in view.subviews{
   if v is UILabel{
      v.removeFromSuperview()
   }
}
  • concise and working thanks! – afinom Mar 16 '16 at 18:04
29

The code can be written simpler as following.

view.subviews.forEach { $0.removeFromSuperview() }
16
+50

This should be the simplest solution.

let container_view: NSView = ...
container_view.subviews = []

(see Remove all subviews? for other methods)


Note this is a MacOS question and this answer works only for MacOS. It does not work on iOS.

  • This is definitely the simplest way... removeFromSuperview is automatically called for each view that is no longer in the subviews array. – Christopher Swasey Jun 15 '15 at 21:44
  • 4
    FYI: subviews is a read-only property in swift now. – datayeah Jan 26 '16 at 20:05
  • 2
    @datayeah They are not but there is a big difference between NSView (OS X) and UIView (iOS). – Sulthan Jan 26 '16 at 20:29
  • 1
    Swift 4 gives an error: Cannot assign to property: 'subviews' is a get-only property. :( – William T. Mallard Feb 9 '18 at 19:32
  • 1
    @AmrAngry Again, I repeat, this was always a Mac OS question, for NSView, not iOS and UIView. Only people don't care to read the question and tags therefore it got filled with iOS answers. – Sulthan Mar 8 '18 at 11:03
9

Try this:

for view in container_view.subviews {
    view.removeFromSuperview()
}
9

I don't know if you managed to resolve this but I have recently experienced a similar problem where the For loop left one view each time. I found this was because the self.subviews was mutated (maybe) when the removeFromSuperview() was called.

To fix this I did:

let subViews: Array = self.subviews.copy()
for (var subview: NSView!) in subViews
{
    subview.removeFromSuperview()
}

By doing .copy(), I could perform the removal of each subview while mutating the self.subviews array. This is because the copied array (subViews) contains all of the references to the objects and is not mutated.

EDIT: In your case I think you would use:

let theSubviews: Array = container_view.subviews.copy()
for (var view: NSView!) in theSubviews
{
    view.removeFromSuperview()
}
  • Works just fine! Thanks – Alberto Bellini Aug 8 '14 at 14:45
  • Not working anymore – Alberto Bellini Sep 3 '14 at 13:02
  • Hello, try the following although there is probably a much more elegant way to do this: let subViewsArray: Array = (parentView.subviews as NSArray).copy() as Array<NSView> – Adam Richards Sep 3 '14 at 18:53
8

Extension for remove all subviews, it is quickly removed.

import Foundation
import UIKit

extension UIView {
    /// Remove allSubView in view
    func removeAllSubViews() {
        self.subviews.forEach({ $0.removeFromSuperview() })
    }

}
  • 1
    why map? foreach maybe ? subviews.forEach { $0.removeFromSuperview() } – Zaporozhchenko Aleksandr Nov 6 '17 at 11:23
  • 1
    Yes you right @Aleksandr i think when i was writing this, i did not have take my coffee – YannSteph Nov 6 '17 at 15:30
6

Try this:

var subViews = parentView.subviews as Array<UIView>

      for someView in subViews
      {
          someView.removeFromSuperview()
      }

UPDATE: If you are feeling adventurous then you can make an extension on the UIView as shown below:

extension UIView
{
    func removeAllSubViews()
    {
       for subView :AnyObject in self.subviews
       {
            subView.removeFromSuperview()
       }
    }

}

And call it like this:

parentView.removeAllSubViews()
  • 2 little things: I'm working on osx, therefore it would be <NSView> right ? Then, I am getting "fatal error: Array index out of range" :/ – Alberto Bellini Jun 19 '14 at 18:55
  • Yes, I think on OSX it is NSView. Where do you get the fatal error? – azamsharp Jun 19 '14 at 18:58
  • In the same line where the for loop is declared.. – Alberto Bellini Jun 19 '14 at 19:01
  • Are you sure that your parent view has child elements? – azamsharp Jun 19 '14 at 19:02
  • Yep ! If i make a println(parentView.subviews) i get 1 – Alberto Bellini Jun 19 '14 at 19:04
5

In xcodebeta6 this worked out.

    var subViews = self.parentView.subviews
    for subview in subViews as [UIView]   {
        subview.removeFromSuperview()
    }
  • That is iOS. I need a solution for OS X – Alberto Bellini Sep 3 '14 at 13:02
  • Great Solution for IOS +1 – inVINCEable Nov 12 '14 at 20:19
3

I wrote this extension:

extension UIView {
    func lf_removeAllSubviews() {
        for view in self.subviews {
            view.removeFromSuperview()
        }
    }
}

So that you can use self.view.lf_removeAllSubviews in a UIViewController. I'll put this in the swift version of my https://github.com/superarts/LFramework later, when I have more experience in swift (1 day exp so far, and yes, for API I gave up underscore).

2

Your syntax is slightly off. Make sure you cast explicitly.

 let theSubviews : Array<NSView> = container_view.subviews as Array<NSView>
 for view in theSubviews {
     view.removeFromSuperview()
 }
  • for view in container.subviews as NSView[] will work also. – David Berry Jun 19 '14 at 19:02
  • @David Yes it will, I tried to keep it as close to FoxNos's initial code as possible. – Jack Jun 19 '14 at 19:03
2

you have to try this

func clearAllScrollSubView ()
{
    let theSubviews = itemsScrollView.subviews

    for (var view) in theSubviews
    {

        if view is UIView
        {
            view.removeFromSuperview()
        }

    }
}
  • That is UI not NS. Here we're talking about OS X. If that works even with it by replacing UI with NS, my bad, you were right :) – Alberto Bellini Nov 25 '14 at 16:55
  • It worked with me fine :) – Ahmed Zaytoun Nov 26 '14 at 4:46
2

Swift 3

If you add a tag to your view you can remove a specific view.

for v in (view?.subviews)!
{
    if v.tag == 321
    {
         v.removeFromSuperview()
    }
 }
  • why not view.subviews.filter({$0.tag != 321}).forEach({$0.removeFromSuperview()})? – AlexanderZ Aug 8 '17 at 14:23
1

For removing just subviews of a specific class - this was the only Swift code that worked for me in Xcode6.1.1. Assuming the only subviews you want to remove are of type UIButton...

for subView in nameofmysuperview.subviews {
    if subView.isKindOfClass(UIButton) {
        subView.removeFromSuperview()
    }
}
1

One-liner:

while(view.subviews.count > 0) {(view.subviews[0] as NSView).removeFromSuperview()}

I think this approach is more readable than the "one-liners" using map or forEach. Short hand foreach and map can be difficult to understand, as the logic is more abstract.

1

For Swift 3

I did as following because just removing from superview did not erase the buttons from array.

    for k in 0..<buttons.count {

      buttons[k].removeFromSuperview()

    }


    buttons.removeAll()
1

Try this out , I tested this :

  let theSubviews = container_view.subviews
  for subview in theSubviews {
      subview.removeFromSuperview()
  }
1

For Swift 4.+

extension UIView {
     public func removeAllSubViews() {
          self.subviews.forEach({ $0.removeFromSuperview() })

}

i hope this is use full for you.

-2

did you try something like

for o : AnyObject in self.subviews {
     if let v = o as? NSView {
         v.removeFromSuperview()
     }
}

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