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This question already has an answer here:

I would like to open, by a button click, an external application. In my case, this external application, is Quicksupport by teamviewer.

is Possible?

Tks.

marked as duplicate by AndroidMechanic - Viral Patel, Vogel612, Ebbe M. Pedersen, Jesper java Jul 13 '16 at 13:55

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

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mSomeButton.setOnClickListener(new View.OnClickListener() {
        @Override
        public void onClick(View v) {
            Intent intent = getPackageManager()
                  .getLaunchIntentForPackage("com.abc.def"); //Teamviewer's app ID
            if(intent != null) {
                Bundle extras = new Bundle(); // if you need to pass some info
                extras.putString(key1, "SomeEmail@gmail.com");
                extras.putString(key2, "ldkjgkjgioerjijbmgjQ2349487598");
                intent.putExtras(extras);
                startActivity(intent);
            }
        }
    });

For gist snippet, refer to this link.

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<activity
    android:name=".OtherAppActivity"
    android:label="@string/app_name" >
    <intent-filter>
        <action android:name="com.mycompany.DO_SOMETHING" />
    </intent-filter>
</activity>

This is in the manifest to allow you to connect to the activity.

Then to open the activity in the other app:

Intent intent = new Intent();
intent.setAction("com.mycompany.DO_SOMETHING");
context.startActivity(intent);

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