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I'm new programming with android, and doing my first aplication i got something wrong with the lists. Here the code:

Cursor c = db.rawQuery("SELECT nombre FROM contactos", null);

        ArrayList<String> listaArray = new ArrayList<String>();
        ListView listadoContactos = (ListView)findViewById(R.id.listViewListaContactos);

        if (c.moveToFirst())
        {
            do {
                listaArray.add(c.getString(0));
            } while(c.moveToNext());
        }

        //Creamos un adaptador y lo asignamos al ListView.
        ArrayAdapter<String> adaptadorLista = new ArrayAdapter<String>(this, android.R.layout.simple_list_item_1, listaArray);

        listadoContactos.setAdapter(adaptadorLista);

When i see the result, my list its showing only the first item in the db that i'm querying. Can you help me, please?

Thanks in advice! George.

PS: "nombre" is the column 0. That is why i'm writting "getString(0)", because i just want to show 1 column of each row.

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Its always strange to me to see non-English identifiers. –  eternalmatt Mar 16 '11 at 20:00

3 Answers 3

Try to use SimpleCursorAdapter

// NOTE your query result should have id-field, named "_id"
    Cursor c = db.rawQuery("SELECT nombre, nombre_id as _id FROM contactos", null);

    SimpleCursorAdapter adaptorLista = new SimpleCursorAdapter(this, android.R.layout.simple_list_item_1, c, new String[]{"nombre"}, new int[]{android.R.id.text1} );
            listadoContactos.setAdapter(adaptadorLista);

Here android.R.layout.simple_list_item_1 is a layout of each row in ListView, new String[]{"nombre"} names of fields in cursor which values are set to TextViews in ListView row. TextView ids specified in the last argument new int[]{android.R.id.text1}

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Thank you very much. It worked for me. Now, i'm getting troubles showing the listview, it's shown half-cut. Any suggestion? –  JMasia Mar 16 '11 at 21:36
    
Show, please, screen layout and what do you mean saying "half-cut" ? –  Max K Mar 17 '11 at 11:28
    
Sorry for my bad english, i mean this with "half-cut": goo.gl/BYSGo Thank you again. –  JMasia Mar 17 '11 at 18:14
    
I need to look at xml with screen layout –  Max K Mar 17 '11 at 18:22
    
Here you have <?xml version="1.0" encoding="utf-8"?> <LinearLayout xmlns:android="schemas.android.com/apk/res/android"; android:orientation="vertical" android:layout_width="fill_parent" android:layout_height="fill_parent" android:background="@drawable/wall"> <ScrollView android:layout_width="fill_parent" android:id="@+id/ScrollView01" android:layout_height="match_parent" android:orientation="vertical"> <ListView android:id="@+id/listViewListaContactos" android:layout_height="wrap_content" android:layout_width="wrap_content"> </ListView> </ScrollView> </LinearLayout> –  JMasia Mar 17 '11 at 18:40

Use a CursorAdapter instead of an ArrayListAdapter. You are making extra work for yourself by copying the cursor into an Array just to feed it to the ListView. Here is a tutorial on CursorAdapters

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You could use a SimpleCursorAdapter and pass it the cursor directly:

Adapter adapter = new SimpleCursorAdapter(
    this,
    c,
    android.R.layout.simple_list_item_1,
    new String[] { "nombre" },
    new int[] { android.R.id.text1 },
    0);
listadoContactos.setAdapter(adapter);

and then you don't have to step through and build the list yourself.

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