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Implementing an app where the user can log in I have the following situation: If the user is logged in perform the action else start the login activity for result and if the result is Activity.RESULT_OK do the action.

My problem is that the action to perfom is to show a DialogFragment, but calling

DialogFragment newFragment = MyDialogFragment.newInstance(mStackLevel);
newFragment.show(ft, "dialog")

in the onActivityResult callback throws an exception:

Caused by: java.lang.IllegalStateException:  
Can not perform this action after onSaveInstanceState

So how can I solve this? I'm thinking in raising a flag there and show the dialog in the onResume but I see this solution a little dirty

Edit: Added more code (Im following this example for showing the DialogFragment

When the action is requested by the user:

... 
if (!user.isLogged()){
 startActivityForResult(new Intent(cnt, Login.class), REQUEST_LOGIN_FOR_COMMENT);
}

In the same fragment

@Override
public void onActivityResult(int requestCode, int resultCode, Intent data) {
    super.onActivityResult(requestCode, resultCode, data);
    if (requestCode == REQUEST_LOGIN_FOR_COMMENT && resultCode == Activity.RESULT_OK) {
        FragmentTransaction ft = getFragmentManager().beginTransaction();
        DialogFragment newFragment = MyDialogFragment.newInstance();
        newFragment.show(ft, "dialog")
    }
}

And if the user logs in the Login activity calls;

setResult(Activity.RESULT_OK);
finish();
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i think you should post the whole code. Seems like you are trying to show dialog after onpause –  nandeesh Aug 24 '12 at 7:57
    
Edited the question :D –  Addev Aug 24 '12 at 8:29
    
Check androiddesignpatterns.com/2013/08/… to understand why this is happening –  Maragues Sep 18 '13 at 13:44

3 Answers 3

up vote 41 down vote accepted

Best thing I've come up with is to not use .show() but rather do this.

CheckinSuccessDialog dialog = new CheckinSuccessDialog();
//dialog.show(getSupportFragmentManager(), null);
FragmentTransaction ft = getSupportFragmentManager().beginTransaction();
ft.add(dialog, null);
ft.commitAllowingStateLoss();
share|improve this answer
    
Although it works for me, I feel unsafe cause we left out 2 variables : mDismissed = false; mShownByMe = true; The above variables are being modified in original show function. –  Cheok Yan Cheng May 31 '13 at 14:11
2  
thank you, commitAllowingStateLoss resolved the issue for me –  Elijah Saounkine Oct 22 '13 at 22:35
    
mDismissed and mShowByMe seem to be variables specifically to track if the dialog was shown/hidden by outside calls. In other words they compensate for exactly this kind of thing. –  Vince Blas Nov 5 '13 at 23:01
    
How you can "remove" the dialog –  zen Nov 26 '13 at 23:40
3  
have you tried to call super.onActivityResult() at the first line of activityOnResult? –  letroll Jul 15 '14 at 8:53

Here is the workaround that works fine for me.

private void alert(final String message) {
    Handler handler = new Handler(Looper.getMainLooper());
    handler.post(new Runnable() {
        public void run() {
            AlertDialogFragment alertDialogFragment = AlertDialogFragment.newInstance(message);
            alertDialogFragment.show(getFragmentManager(), ALERT_DIALOG_FRAGMENT);
        }
    });        
}
share|improve this answer
    
thnx. solved my prob –  steelbytes Mar 22 '14 at 2:13

If using a DialogFragment, the only thing that worked for me was to dismiss the Fragment with dissmissAllowingStateLoss()

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