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I have Button, which on clicking, displays a Dialog. Everything works like a charm, but if I double click the button or click the button fast, the Dialog opens twice or three times. I have to click the back button twice or thrice to dismiss the dialog.

I have searched for related questions on SO, but most of the answers suggest disabling the button or use of variable and set to true and false, which is not my requirement.

If anyone knows how to solve this problem, please help me.

Code I have used

// Delete item on click of delete button
holder.butDelete.setOnClickListener(new OnClickListener()    {          
@Override
    public void onClick(View v)    {
    Dialog passwordDialog = new Dialog(SettingsActivity.this);      
    passwordDialog.show();
    }
});
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how about making code inside onClick() synchronized, and putting an check for if the dialog is already open. –  Amandeep Jiddewar Sep 11 '12 at 12:55
    
Look at my updated answer.. –  user370305 Sep 11 '12 at 13:04
1  
Dayuuuum! you are way too faster than a processor ;) –  waqaslam Sep 11 '12 at 13:07
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5 Answers

up vote 4 down vote accepted

You have to just check whether your Dialog is already shown or not

Dialog passwordDialog = new Dialog(SettingsActivity.this);
holder.butDelete.setOnClickListener(new OnClickListener()
{           
 @Override
  public void onClick(View v)
  {                  
     if(!passwordDialog.isShowing())
     {
      passwordDialog.show();
     }
   }
});

Update:

If this not work in your case, then

In your activity declare globally..

Dialog passwordDialog = null;

and on button's Click..

holder.butDelete.setOnClickListener(new OnClickListener()
{           
 @Override
  public void onClick(View v)
  {                  
     if(passwordDialog == null) 
     {
      passwordDialog = new Dialog(SettingsActivity.this); 
      passwordDialog.show(); 
     }
});
share|improve this answer
    
I used this...it works but sometimes on fast click it show dialog twice...that's why i posted the question. –  Rahul Sep 11 '12 at 12:54
    
But in my Dialog passwordDialog is a local variable...as i used in one place only so i dont declare it globally –  Rahul Sep 11 '12 at 13:05
    
ok...i will try and let u know. –  Rahul Sep 11 '12 at 13:07
1  
I tried your code..so what happend it open the dialog, and as i dismiss the dialog using ok or back button and again tried to open the dialog it doesn't open..becoz it doesnt found dialog null –  Rahul Sep 11 '12 at 13:14
1  
wow......its work like a charm.......thanks for ur support.......... –  Rahul Sep 11 '12 at 13:25
show 5 more comments

disable the button once you clicked it and enable again once you cancel the dialog. like below

 holder.butDelete.setOnClickListener(new OnClickListener()
            {           
                @Override
                public void onClick(View v)
                {   
                    holder.butDelete.setEnabled(false);
                    Dialog passwordDialog = new Dialog(SettingsActivity.this);      
                    passwordDialog.show();
                }
            });

if it didn't work you have to take one boolean variable and use that to show and cancel the dialog.

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I dont think u read my question...i have written in bold letter about this. –  Rahul Sep 11 '12 at 12:51
    
oh sorry, i didn't see that. –  sankar Sep 11 '12 at 13:00
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try like this...

Dialog passwordDialog = null;


holder.butDelete.setOnClickListener(new OnClickListener()
{           
            @Override
            public void onClick(View v)
            {   
                passwordDialog  = new Dialog(SettingsActivity.this);   
                if(!passwordDialog.isShowing()) {   
                   passwordDialog.show();
                }
            }
});
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You should probably have your dialogs managed by your activity, by overriding onCreateDialog() method and then calling showDialog(). That would solve your problem.

See http://developer.android.com/reference/android/app/Activity.html#onCreateDialog(int, android.os.Bundle)

Callback for creating dialogs that are managed (saved and restored) for you by the activity. The default implementation calls through to onCreateDialog(int) for compatibility. If you are targeting HONEYCOMB or later, consider instead using a DialogFragment instead.

Example:

public class TestActivity extends Activity {

private static final int TEST_DIALOG_ID = 1;

@Override
protected void onCreate(Bundle savedInstanceState) {
    super.onCreate(savedInstanceState);

    showDialog(TEST_DIALOG_ID);
}

@Override
protected Dialog onCreateDialog(int id) {
    if(id == TEST_DIALOG_ID) {
        Dialog passwordDialog = new Dialog(this);      
        return passwordDialog;
    }
    return super.onCreateDialog(id);
}

}
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can u show me with an example........ –  Rahul Sep 11 '12 at 12:55
    
See code in my edit –  fiddler Sep 11 '12 at 13:02
    
showDialog worked great, but it has been deprecated. –  Alon Amir Dec 20 '12 at 7:44
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You should really be using FragmentManager to show the dialogFragment. Then it will be easy to inquire if the fragmentManager knows about a specific tagged dialogFragment:

Fragment foundFragment = getFragmentManager().findFragmentByTag("myItemEditDialogFragment");
if (foundFragment == null) {
    DialogFragment df = ItemEditDialogFragment.newInstance(o);
    df.setTargetFragment(this, 0);
    df.show(getFragmentManager().beginTransaction(), "myItemEditDialogFragment");
}

This is what the DialogFramgnet static newInstance method looks like:

public static ItemEditDialogFragment newInstance(Item o) {
    ItemEditDialogFragment df = new ItemEditDialogFragment();

    Bundle args = new Bundle();
    args.putParcelable(ARG_INSTANCE, o);
    df.setArguments(args);

    return df;
}
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