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I wrote a piece of code that will give the user a prompt asking them to press back again if they would like to exit. I currently have my code working to an extent but I know it is written poorly and I assume there is a better way to do it. Any suggestions would be helpful!

Code:

public void onBackPressed(){
    backpress = (backpress + 1);
    Toast.makeText(getApplicationContext(), " Press Back again to Exit ", Toast.LENGTH_SHORT).show();


    if (backpress>1) {
        this.finish();
    }

}
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1  
Replace this.finish() with super.onBackPressed();. –  Fred Apr 10 at 16:42

5 Answers 5

up vote 75 down vote accepted

I would implement a dialog asking the user if they wanted to exit and then call super.onBackPressed() if they did.

@Override
public void onBackPressed() {
    new AlertDialog.Builder(this)
        .setTitle("Really Exit?")
        .setMessage("Are you sure you want to exit?")
        .setNegativeButton(android.R.string.no, null)
        .setPositiveButton(android.R.string.yes, new OnClickListener() {

            public void onClick(DialogInterface arg0, int arg1) {
                WelcomeActivity.super.onBackPressed();
            }
        }).create().show();
}

In the above example, you'll need to replace WelcomeActivity with the name of your activity.

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thank you, This method looks much more polished then mine. Appreciate it! –  Nick Jun 20 '11 at 15:56
    
this works, but in my case the popup is showed only for few millisecond and after disappear and the new window is showed. I don't have the time to click yes or no, and if I debug it, it doesn't pass for onClick method. Why? –  Accollativo Oct 3 '13 at 14:07
1  
@Accollativo, sounds like you still have a call to super.onBackPressed() in your onBackPressed() definition (other than the one inside the onClick method)? –  Steve Prentice Oct 3 '13 at 15:13
    
you've right! now it works –  Accollativo Oct 4 '13 at 8:11
    
Every app I've seen favors the "second back press" method. A user accidentally hitting the back key will get annoyed if a dialog shows. The toast is less intrusive. –  Karmic Coder Jun 6 at 16:43

You don't need a counter for back presses.

Just store a reference to the toast that is shown:

private Toast backtoast;

Then,

public void onBackPressed() {
    if(USER_IS_GOING_TO_EXIT) {
        if(backtoast!=null&&backtoast.getView().getWindowToken()!=null) {
            finish();
        } else {
            backtoast = Toast.makeText(this, "Press back to exit", Toast.LENGTH_SHORT);
            backtoast.show();
        }
    } else {
        //other stuff...
        super.onBackPressed();
    }
}

This will call finish() if you press back while the toast is still visible, and only if the back press would result in exiting the application.

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I use this much simpler approach...

public class XYZ extends Activity {
    private long backPressedTime = 0;    // used by onBackPressed()


    @Override
    public void onBackPressed() {        // to prevent irritating accidental logouts
        long t = System.currentTimeMillis();
        if (t - backPressedTime > 2000) {    // 2 secs
            backPressedTime = t;
            Toast.makeText(this, "Press back again to logout",
                                Toast.LENGTH_SHORT).show();
        } else {    // this guy is serious
            // clean up
            super.onBackPressed();       // bye
        }
    }
}
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Something strange happens on a Samsung Note tablet. Need to hit back several times fast. It doesn't like the 'backToast' approach either... –  SoloPilot Feb 27 at 19:39

Both your way and @Steve's way are acceptable ways to prevent accidental exits.

If choosing to continue with your implementation, you will need to make sure to have backpress initialized to 0, and probably implement a Timer of some sort to reset it back to 0 on keypress, after a cooldown period. (~5 seconds seems right)

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You may also need to reset counter in onPause to prevent cases when user presses home or navigates away by some other means after first back press. Otherwise, I don't see an issue.

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