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In the examples, they create Intent as:

Intent intent = new Intent(this, AlarmReceiver.class);

But suppose my AlarmReceiver class is in another app, how do I create this intent?

I've tried with

new Intent("com.app.AlarmReceiver")

but nothing happens.. It was not called..

Any idea?

--Broadcast definition added using the manifest editor on Eclipse:

<receiver android:name="AlarmReceiver"></receiver>
</application>

--
Related:
http://stackoverflow.com/questions/3259912/how-do-i-start-my-app-from-my-other-app/3259975#3259975 (but this same code is not working for broadcasts..)

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How is the broadcast defined in the XML? –  Pentium10 Jul 23 '10 at 15:07
    
@Pentium10 updated –  Tom Brito Jul 23 '10 at 15:17
    
I think you have to define it with the complete name 'com.app.AlarmReceiver' and inside the activity. –  Cristian Jul 23 '10 at 15:20
    
@Cristian C. tried inside and outside with the full name (calling the full name either), but still nothing happens.. –  Tom Brito Jul 23 '10 at 15:25
    
@Tom I had a dejavu. I think I already answered that question to you: stackoverflow.com/questions/3259912/… –  Cristian Jul 23 '10 at 15:28

1 Answer 1

up vote 3 down vote accepted

But my suppose my AlarmReceiver class is in another app, how do I create this intent?

If you wrote the other app, add an <intent-filter> with a custom action string to the other app's <receiver> element, then use an Intent with that action string.

If you did not write the other app, ask whoever wrote it what the Intent should look like.

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I've written it, and I already add to it: <receiver android:name="AlarmReceiver"></receiver> But it still not working.. –  Tom Brito Jul 23 '10 at 17:38
    
Oh god.. I had forgotten the intent-filter.. Actually, I was writing it in the name attribute.. XD Thanks! –  Tom Brito Jul 23 '10 at 17:51

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