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I have a drop down menu in java with 3 options and right next to it a run button. I am using eclipse in java and using apache wicket and html to run the program in a web browser. my question is, if i choose print data from the drop down and click on the run button it should print printing successful in the console. i have tried various methods, and its compiling but just not showing me the message that it should do according to the system.out.println statement.

    Button b = new Button("Ausführen");
    b.addActionListener(new ActionListener() {

      public void actionPerformed(ActionEvent e) {
        if(role.getValue().equals("Print Data")) {
          System.out.println("Printing successfull!");
        }
      }

    });

    form.add(b);

any ideas why?

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what kind of object is form? is the onSubmit method called at all, or just the if condition is not satisfied? What kind of Button is that? –  peshkira Jul 6 '12 at 14:07
    
form is the interface where i have added the objects (buttons, dropdown) onto. what do you mean by whether the onSubmit button is called at all? do i have to call it elsewhere as well? –  Pita Jul 6 '12 at 14:10
    
generally, how would you write that IF the value of the selected dropdown item is equal to xyz, then do xyz. –  Pita Jul 6 '12 at 14:10
    
You don't call the method in this snippet. You only provide an implementation via the anonymous class. That is why I ask if you really call it somewhere (via listener, or some other way). Is this a java.awt.Button or something else? –  peshkira Jul 6 '12 at 14:11
1  
Priya , I havent worked much on apache wicket , but I can say this should be easy to debug - first , try sys out outside the if condition - if you see that printed - that means the if condition is evaluating to be false - may be the String value selected is not exactly "Print Data" - try trim()ming the string value from role. If you dont see the outside print as well , that means your actionPerformed() handler is not getting invoked. I would check if the button that is clicked is indeed the same button to which you are attaching the actionListener. Just some steps to debug. HTH. –  Bhaskar Jul 7 '12 at 10:08

1 Answer 1

up vote 0 down vote accepted

ActionListener is not going to work with Apache Wicket I guess. Just use a normal Form Button, then create a seperate Print Class and write a print method in your onSubmit method.

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