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.

In my application I want to create one Search widget which would be Reusable as .java file , i need to reflect it into layout.xml file so that i can use it. Directly.....Here is my code having one edit box , two buttons.

public class SearchWidget extends ViewGroup{

    Context mContext;
    LinearLayout layout;
    EditText edit;
    Button searchButton;
    Button clear;

    LinearLayout.LayoutParams params=new LinearLayout.LayoutParams(LayoutParams.WRAP_CONTENT,LayoutParams.WRAP_CONTENT);

    public SearchWidget(Context context) {
        super(context);
        this.mContext=context;
        layout=new LinearLayout(context);
        edit=new EditText(context);
        searchButton=new Button(context);
        clear=new Button(context);
        params.setMargins(10, 10, 10, 10);
        layout.setOrientation(LinearLayout.HORIZONTAL);
        layout.setLayoutParams(params);
        edit.setMaxLines(1);
        edit.setWidth(100);
        layout.addView(searchButton);
        layout.addView(clear);
    }

}

Please Suggest me how to give reference of this java file to my layout.xml Thanks in Advance.

share|improve this question

3 Answers 3

up vote 2 down vote accepted

You can use it by using your package name along with the file name like

<com.myapp.SearchWidget android:layout_width="fill_parent" 
    android:layout_height="wrap_content">
</com.myapp.SearchWidget>

When you use the xml to put your custom view, you need to use the constructor with 2 parameters.

After checking your code, there are many mistakes such as you are finally not adding 'layout' to the search widget. So nothing will show up. Im not sure what your end result is. But this is what I think you are trying to do.

public class SearchWidget extends LinearLayout {
    public SearchWidget(Context context, AttributeSet attrs) {
        super(context, attrs);      
            EditText edit = new EditText(context);
        LinearLayout.LayoutParams elp = new LinearLayout.LayoutParams(0,
            LayoutParams.WRAP_CONTENT, 1.0f);
        edit.setLayoutParams(elp);

        Button searchButton = new Button(context);
        searchButton.setLayoutParams(new ViewGroup.LayoutParams(
            LayoutParams.WRAP_CONTENT,LayoutParams.FILL_PARENT));
        searchButton.setText("Search");

        Button clearButton = new Button(context);
        clearButton.setLayoutParams(new ViewGroup.LayoutParams(
            LayoutParams.WRAP_CONTENT,LayoutParams.FILL_PARENT));
        clearButton.setText("Clear");

        addView(edit);
        addView(searchButton);
        addView(clearButton);       
    }
}

Here I extended the LinearLayout

share|improve this answer
    
Hi @Blessenm i got this, but Now i`m not getting my Layout screen it is showing only Black Screen , can you provide any link where complete example is given Thanks.... –  Raj Gaurav Dubey Nov 11 '11 at 7:16
    
Ive updated my answer –  blessenm Nov 11 '11 at 8:22
    
it is Not solved the problem by applying this......there is only black screen being displayed/// –  Raj Gaurav Dubey Nov 11 '11 at 8:59
    
Ive uopdated my answer –  blessenm Nov 11 '11 at 9:58
    
I was unable to edit text in edit textbox –  Android Developer Jul 3 at 8:52

In you xml code. Add complete package name before class name to reference and then add you class name e.g

<com.my.test.SearchWidget
            android:id="@+id/large_photo_gallery"
            android:layout_height="fill_parent"
            android:layout_width="fill_parent"
            />
share|improve this answer
package yourpackage;
... ...
public class SearchWidget extends ViewGroup
{
    // Please use this constructor.
    public SearchWidget(Context context, AttributeSet attrs)
    {
        super(context, attrs);
    }
    ... ...
}


<yourpackage.SearchWidget 
    android:id="@+id/searchWidget"
    android:layout_width="fill_parent"
    android:layout_height="fill_parent"/>
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.