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I want to find out a java Panel is on the screen or not. It doesn't mean that isVisible() method could be used for this situation. I mean I want to find out whether a component that has been initiated before, presently is one of components on my main panel or not.

Edit and more explain: I have several panels initiated before in my program and use them on my form as needed. I want to know for example jpanel1 in now on any of panels that now are present on my form.

exampe:

public class GUI extends JFrame(){

private JPanel1 , jPanel2;

    public static void mamin(String [] args){
    GUI gui = new GUI();
    jPanel1 = new JPanel();
    jPanel2 = new JPanel();
    gui.setContentpane(jPanel1);
    gui.setVisible(true);
}

}

now jPanel1 is visible on screen bu jPanel2 is not visible. How can I find out this?

share|improve this question
    
yes is possible, can you please edit your question with a SSCCE , maybe there are another choices –  mKorbel Mar 7 '12 at 13:50
1  
DO you mean isShowing()?: docs.oracle.com/javase/6/docs/api/java/awt/… –  Guillaume Polet Mar 7 '12 at 13:50
    
@mKorbel : is clear and I explained as I mean. –  sajad Mar 7 '12 at 13:56
    
@Guillaume PoletIt: I have investigated it before but I didn't find my goal –  sajad Mar 7 '12 at 13:56
    
@sajad, What is the goal? Your explanation of the problem did not help! –  Moonbeam Mar 7 '12 at 13:58

3 Answers 3

up vote 5 down vote accepted

After investigation I find out this method represents that the component is displayed on screen or not:

isDisplayable()

in my Example:

jPanel1.isDisplayable() // returns true

jPanel2.isDisplayable() // returns false

as Simple as this!

share|improve this answer
    
one of possible ways +1 –  mKorbel Mar 7 '12 at 14:58
    
@mKorbel so i reinvented the wheel? :) –  Juvanis Mar 7 '12 at 15:04
    
@deporter I think so no :-), basically your answer goes correct direction, because you must to know in every moments what, where and how your code works –  mKorbel Mar 7 '12 at 16:20
    
@mKorbel it's not a wheel, it's more like an triangle ;-) –  kleopatra Mar 10 '12 at 10:52

If you're looking for children of a main panel, you could call getComponents() on the main panel to return an array of its Components, then iterate through them to check if any of them are the Panel you are looking for. You may need to call this recursively if the panel is not a direct child of the main panel.

share|improve this answer
    
no Mr. I have several panels initiated before in my program and use them on my form as needed. I want to know for example jpanel1 in now on any of panels that now are present on my form. –  sajad Mar 7 '12 at 13:59

Write your own panel class that extends JPanel. Add a new method to this class named isOnTheScreen() which return a boolean indicating whether the panel is added to the window or not.

public class MyPanel extends JPanel
{
    boolean isAdded = false;

    public boolean isOnTheScreen()
    {
       return isAdded;
    }

    public void setOnTheScreen(boolean isAdded)
    {
       this.isAdded = isAdded;
    }
}

After creating your own panel objects, use the methods above to learn whether a panel is added to main panel/frame or not. Suppose you have added a panel to a frame:

JFrame frame = new JFrame()
MyPanel panel = new MyPanel();
frame.getContentPane().add(panel);
panel.setOnTheScreen(true);

As soon as you add it to the main screen, in this case a frame, call setOnTheScreen(true) And similarly call setOnTheScreen(false) when you remove the panel.

After this design you can determine whether a panel is added to the main window or not by just invoking isOnTheScreen() anywhere else in your code. I hope this design helps you.

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1  
thank you but this is not a very clean way. This is hard to apply this in all of my panels. I added an example of my pourpse. Please see it –  sajad Mar 7 '12 at 14:15
    
@sajad this is a very clean way. if you believe in the power of inheritance, extending jpanel shouldn't be difficult. anyway, it's just a suggestion, then you have to find another solution. –  Juvanis Mar 7 '12 at 14:19
    
-1 a) duplicating existing functionality, only worse (needs calling from client code to be effective) b) don't subclass if you don't have to (shouldn't be difficult is not a good enough reason). @sajad well spotted :-) –  kleopatra Mar 10 '12 at 10:49

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