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 have 2 tabs in my layout. I am failing to get input value entered in EditText in inactive tab. So lets say tab that holds registerLoginFragment is selected. The following code returns expected value.

EditText editTextEmail = (EditText)registerLoginFragment.getView().findViewById(R.id.editTextEmail);

But getting value from 2nd tab which is inactive fails with NPE because getView() of inactive tab returns null. So following is failing:

EditText EditTextFirstName = (EditText)registerPersonalFragment.getView().findViewById(R.id.EditTextFirstName);

So I need to get input from both tabs when button on 1st tab is clicked. Both tabs are visited and have values entered.

Little more code:

public void onTabSelected(Tab tab, FragmentTransaction ft) {
    if(tab.getTag().toString().equals("LOGIN_TAB")){

        if(registerLoginFragment == null){
            registerLoginFragment = Fragment.instantiate(this, RegisterLoginFragment.class.getName());
            ft.add(R.id.linearLayoutRegister, (Fragment)registerLoginFragment);
        }
        else{
            ft.attach((Fragment)registerLoginFragment);
        }


        currentFragment = registerLoginFragment;
    }
    else if(tab.getTag().toString().equals("PERSONAL_TAB")){
        if(registerPersonalFragment == null){
            registerPersonalFragment = Fragment.instantiate(this, RegisterPersonalFragment.class.getName());
            ft.add(R.id.linearLayoutRegister, (Fragment)registerPersonalFragment);
        }
        else{
            ft.attach((Fragment)registerPersonalFragment);
        }

        currentFragment = registerPersonalFragment;
    }

}

So obviously this is not the right way to get values from inactive tab but I am failing to find the proper way.

I guess I can do this: Get text from edit text fields that are in multiple tabs

But is there a more "elegant" way?

Thanks Velja

share|improve this question

1 Answer 1

up vote 0 down vote accepted

I found funny way for achieving this task. Instead of detaching and attaching (or using FragmentTransaction.replace) I am showing and hiding my fragments on tab actions. Note that it is very important to use GONE value and not INVISIBLE since GONE doesn't use any space in the view: http://developer.android.com/reference/android/view/View.html#GONE I will leave question open to hear if there is still more "proper" way? So refactored code looks like this:

@Override
public void onTabSelected(Tab tab, FragmentTransaction ft) {
    if(tab.getTag().toString().equals("LOGIN_TAB")){

        if(registerLoginFragment == null){
            registerLoginFragment = Fragment.instantiate(this, RegisterLoginFragment.class.getName());
            ft.add(R.id.linearLayoutRegister, (Fragment)registerLoginFragment);
        }
        else{
            //ft.attach((Fragment)registerLoginFragment);
            registerLoginFragment.getView().setVisibility(View.VISIBLE);
        }


        currentFragment = registerLoginFragment;
    }
    else if(tab.getTag().toString().equals("PERSONAL_TAB")){
        if(registerPersonalFragment == null){
            registerPersonalFragment = Fragment.instantiate(this, RegisterPersonalFragment.class.getName());
            ft.add(R.id.linearLayoutRegister, (Fragment)registerPersonalFragment);
        }
        else{
            //ft.attach((Fragment)registerPersonalFragment);
            registerPersonalFragment.getView().setVisibility(View.VISIBLE);
        }

        currentFragment = registerPersonalFragment;
    }

}

@Override
public void onTabUnselected(Tab tab, FragmentTransaction ft) {
    if(currentFragment != null){
        //ft.detach((Fragment)currentFragment);
        currentFragment.getView().setVisibility(View.GONE);
    }

}
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.