Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I start an activity when a widget icon is clicked.What i want is to send the position of that widget to that activity.I have tried

        Intent intent=new Intent(context, WidgetActivity.class);
        Bundle bundle = new Bundle();
        bundle.putString("rect", bound);  
        intent.putExtras(bundle);

        //intent.putExtra("rect", bound.toString());
        PendingIntent pendingIntent = PendingIntent.getActivity(context, 0,intent, 0);
        RemoteViews views = new RemoteViews(context.getPackageName(),R.layout.pic1);

        views.setOnClickPendingIntent(R.id.wbutton1, pendingIntent);

        appWidgetManager.updateAppWidget(appWidgetId, views);

in my onUpdate procedure.But this crashes the activity. I have heard that the position is returned using intent.getsourceBounds() .Thats in onReceive ryt?i have tried making bound a global variable.setting its value from onReceive as bound=intent.getsourceBounds(); That didn't work either.

So my question is 1.How do i get the widget position using intent.getsourceBounds() in onUpdate? 2.How can i send it to the activity?

Thank you for your time.

edit:i managed to send string from widget to activity like this:

        Intent intent=new Intent(context, WidgetActivity.class);
        Bundle bundle = new Bundle();
        bundle.putString("pos", "hello");
        intent.putExtras(bundle);
        intent.addFlags(Intent.FLAG_ACTIVITY_NEW_TASK);
        PendingIntent pendingIntent = PendingIntent.getActivity(context,0,intent,PendingIntent.FLAG_CANCEL_CURRENT);

edit 2: I found http://stackoverflow.com/a/5324918/1685829 which says it can be done using getSourceBounds().Can anyone explain how i can use it in onUpdate.

share|improve this question

1 Answer 1

You don't need to send it; Android does it for you. getSourceBounds() can only be used from inside the activity. This information is not available inside onUpdate().

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.