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I've developed an Android Application. I've defined an intent-filter so that my app is used to view some links:

<intent-filter>
            <data
                android:host="my_url.com"
                android:pathPrefix="/some_prefix/"
                android:scheme="http" />
            <action android:name="android.intent.action.VIEW" />
            <category android:name="android.intent.category.DEFAULT" />
            <category android:name="android.intent.category.BROWSABLE" />
</intent-filter>

When I open one link like "my_url.com/some_prefix", my app appears on the selector and, if chosen, its open to display the link.

However, my Activity is opened attached to the application that lauched it. Lets say, for example, that the link is displayed in a WhatsApp message, after opening the link my app is displayed. If I try to open WhatsApp again, my Activity is displayed, instead of WhatsApp.

How can I detach my Application from the Application that called it?

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1 Answer 1

up vote 1 down vote accepted

Your activity is being opened in the current 'task', which is the WhatsApp task.

What you are wanting is for your app to be opened in a new task.

There is a flag you can set on your activity in the manifest:

android:launchMode="singleTask"

This will tell android to open your activity in another task.

Read more about tasks here

share|improve this answer
    
Perfect, thanks! –  Mateu Dec 12 '13 at 10:30
    
I've fond a problem. If my Application is allready started, and then, I open the link that's opened with my app, as the Activity is not created (due to singleTask), I can't obtain the url with getIntent().getData();. How can I get the link? Thanks. –  Mateu Dec 12 '13 at 12:16
    
I've found the solution and added it to your awnser. –  Mateu Dec 12 '13 at 12:33

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