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Okei, I got my 'main.xml' where I've designed my 'standard layout'. This layout is supposed to be all over the app (every activity/class/whatever). The application is going to connect to a database, download some information, and list it up in a ListView in 'main.xml'.
I tried to use:

setListAdapter(new ArrayAdapter<String>(Activity1.this,
            android.R.layout.simple_list_item_1, list_of_Items));

..but 'simple_list_item_1' is standard type in android and doesn't solve my problem. Is it a way to do this, without creating the whole layout by scratch in every '*.java' file?

Here's a quick draft of my application, and how it's supposed to look.

EDIT: ok, I wasn't allowed to post a picture, but it displays an app with a list of items in a ListView.
Here is the link:
http://i.stack.imgur.com/S5hKs.png

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you are aware that a view CAN be found within a listview? As as such any view in that listview can be built dynamically. And yes this requires you to build a custom adapter. –  JoxTraex Jan 10 '12 at 4:22

3 Answers 3

up vote 0 down vote accepted

You will need to use a custom adapter for doing this. You can specify your own xml layout for each row. This tutorial will help you.

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As blessenm said you can use custom adapter for this. check the following link

ListView

ListView without ListActivity

It may help you.

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First, I would think you'd need to cast .simple_list_item_1 but I couldn't be sure...

As for your second question.. I believe so:

It looks like you should create a view heirarchy in xml that will allow you to findViewById(R.Id.mFrameLayout). Put a FrameLayout in your xml where the list should go, then, onCreate, you need to set the child or content of the view to your new ListView every time...

But that wouldn't be quite ideal...

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