FirstActivity.Java has a FragmentA.Java which calls startActivityForResult(). SecondActivity.Java call finish() but onActivityResult never get called which is written in FragmentA.Java.

FragmentA.Java code:

  @Override
  public void onActivityCreated(Bundle savedInstanceState) {
    super.onActivityCreated(savedInstanceState);
    // some code
    Intent i = new Intent(getActivity(), SecondActivity.class);
    i.putExtra("helloString", helloString);
    getActivity().startActivityForResult(i, 1);
  }

  @Override
  public void onActivityResult(int requestCode, int resultCode, Intent data) {
    super.onActivityResult(requestCode, resultCode, data);
    getActivity();
    if(requestCode == 1 && resultCode == Activity.RESULT_OK) {
       //some code
    }
  }

SecondActivity.Java code:

  @Override
  protected void onCreate(Bundle savedInstanceState) {
       super.onCreate(savedInstanceState);
       //some code
       Intent returnIntent = new Intent();
       returnIntent.putExtra("result", result);                          

       setResult(Activity.RESULT_OK,returnIntent);     
       finish();
  }

I have tried debugging the code, but onAcitvityResult() never get called.

up vote 202 down vote accepted

You must write onActivityResult() in your FirstActivity.Java as follows

@Override
public void onActivityResult(int requestCode, int resultCode, Intent data) {
   super.onActivityResult(requestCode, resultCode, data);
}

So this will call your fragment's onActivityResult()

Edit: the solution is to replace getActivity().startActivityForResult(i, 1); with startActivityForResult(i, 1);

  • 3
    Thanks @Kevin , i tried what you said but it's not working. But i debugged the code, i see onActivityresult() of FirstAcivity.Java gets called and onActivityresult() of FragmentA.Java never get called. Please help. – Mr Roshan Pawar Jun 13 '13 at 11:46
  • 48
    Please replace getActivity().startActivityForResult(i, 1); with startActivityForResult(i, 1); – Kevin Adesara Jun 13 '13 at 12:01
  • 10
    Could it be that the answer in the accepted solution is actually not what is wrong here, and the real solution is to just use startActivityForResult instead of getActivity().start...? Because as far as I can see, you are overriding the definition of onActivityResult with its own definition, in the Activity (i.e. this behaves exactly the same as if the override in the answer did not exist). – amnn Jul 17 '14 at 9:27
  • @asQuirreL Yes. this is probably the reason. – android developer Aug 17 '14 at 11:24
  • 1
    I do the same as you explain, override onActivityResult() in activity also in fragment with super in both and make startActivityForResult (intent ,i), but did not work, I need help please – Amal Kronz Jul 24 at 5:38

Kevin's answer works but It makes it hard to play with the data using that solution.

Best solution is don't start startActivityForResult() on activity level.

in your case don't call getActivity().startActivityForResult(i, 1);

Instead, just use startActivityForResult() and it will work perfectly fine! :)

You must write onActivityResult() in your FirstActivity.Java as follows

@Override
public void onActivityResult(int requestCode, int resultCode, Intent data) {
    for (Fragment fragment : getChildFragmentManager().getFragments()) {
        fragment.onActivityResult(requestCode, resultCode, data);
    }
}

This will trigger onActivityResult method of fragments on FirstActivity.java

  • thanks mate ! but it requiere a Level 26 API .. so in my case I used getSupportFragmentManager().findFragmentByTag method but with your idea – Dagnogo Jean-François Jan 25 at 14:51

The fragment already has startActivityForResult, which would call onActivityResult in the fragment if you use it, instead of getActivity()...

The most important thing, that all are missing here is... The launchMode of FirstActivity must be singleTop. If it is singleInstance, the onActivityResult in FragmentA will be called just after calling the startActivityForResult method. So, It will not wait for calling of the finish() method in SecondActivity.

So go through the following steps, It will definitely work as it worked for me too after a long research.

In AndroidManifest.xml file, make launchMode of FirstActivity.Java as singleTop.

<activity
        android:name=".FirstActivity"
        android:label="@string/title_activity_main"
        android:launchMode="singleTop"
        android:theme="@style/AppTheme.NoActionBar" />

In FirstActivity.java, override onActivityResult method. As this will call the onActivityResult of FragmentA.

@Override
public void onActivityResult(int requestCode, int resultCode, Intent data) {
    super.onActivityResult(requestCode, resultCode, data);
}

In FragmentA.Java, override onActivityResult method

@Override
public void onActivityResult(int requestCode, int resultCode, Intent data) {
    Log.d("FragmentA.java","onActivityResult called");
}

Call startActivityForResult(intent, HOMEWORK_POST_ACTIVITY); from FragmentA.Java

Call finish(); method in SecondActivity.java

Hope this will work.

  • This is the best answer. The detail of defining the "launchMode" in the Manifest is vital. – Pablo Insua May 28 at 16:22

onActivityResult() of MAinActivity will call , onActivityResult() of Fragement wont call because fragment is placed in Activity so obviously it come back to MainActivity

We could call startActivityForResult() directly from Fragment So You should call this.startActivityForResult(i, 1); instead of getActivity().startActivityForResult(i, 1);

Intent i = new Intent(getActivity(), SecondActivity.class);
i.putExtra("helloString", helloString);
this.startActivityForResult(i, 1);

Activity will send the Activity Result to your Fragment.

Don't call finish() in onCreate() method then it works fine.

call your onActivityresult() in ParentActivity .

  • Thanks for answer @URAndroid , but got the solution. Your Solution is not perfect. It's not good programming. – Mr Roshan Pawar Jun 13 '13 at 12:12
  • This is actually not recommended. – Lo-Tan Oct 17 '14 at 0:53
  • tried but not useful ! – kdblue Apr 4 at 11:54

Your Answer

 

By clicking "Post Your Answer", you acknowledge that you have read our updated terms of service, privacy policy and cookie policy, and that your continued use of the website is subject to these policies.

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