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I have a alert dialog with a editText area. When I call it a second time, the app crashes with error:

02-28 23:25:08.958: E/AndroidRuntime(11533): java.lang.IllegalStateException: The specified child already has a parent. You must call removeView() on the child's parent first.

Here is my code:

alert = new AlertDialog.Builder(this);

    String txt_title = context.getResources().getString(R.string.txt_head_search_coord);
    String txt_message = context.getResources().getString(R.string.txt_mess_search_coord);
    alert.setTitle(txt_title);
    alert.setMessage(txt_message);

    // Set an EditText view to get user input 
    final EditText input = new EditText(this);
    alert.setView(input);

    alert.setPositiveButton(context.getResources().getString(R.string.Accept), new DialogInterface.OnClickListener() {
    public void onClick(DialogInterface dialog, int whichButton) {
            String value = input.getText().toString();

            // Do something with value!

            dialog.dismiss();
        }
    });

    alert.setNegativeButton(context.getResources().getString(R.string.Cancel), new DialogInterface.OnClickListener() {
        public void onClick(DialogInterface dialog, int whichButton) {
            dialog.dismiss();
        }
    });

    //UTM Koordinate suchen
    btn_search_coord.setOnClickListener(new OnClickListener()
    {
        public void onClick(View v)
        {
            alert.show();
        }
    });

the alert is defined globally so I can call it in the onClickListener

I'm already dismissing my dialog...

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what line is causing the crash –  njzk2 Feb 28 at 22:36
    
in the line where i call alert.show(); –  tom_tom Feb 28 at 22:38
    
does it occurs when you click on the button twice ? –  njzk2 Feb 28 at 22:40
    
yes, on the first call it works, on the second it crashes –  tom_tom Feb 28 at 22:47

1 Answer 1

up vote 3 down vote accepted

AlertDialog.Builder.show create a new instance of Alert from the content of the Builder, including the view given in setView.

Therefore, your input will be added to both the alerts. To prevent this, use create to create a final instance of your AlertDialog and call show on this one:

final AlertDialog alertDialog = alert.create();

[...]
// in onClick
alertDialog.show();

On a broader perspective, you should use showDialog(int id) and the associated methods onCreateDialog and onPrepareDialog. However, all this is now deprecated if you use Fragments, in which case you should use a DialogFragment

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