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Hello there community :), So I'm a real java newb, right? I can't seem to get a URL to open from my LINK GUI. At the moment, it just shows the fields value.

Here is my handler.java code:

google = new JButton("Google");
google.setToolTipText("Open Google");
add(google);

I want it to open a URL instead of showing the fields value. This is my actionlistener code:

    private class HandlerClass implements ActionListener {

    public void actionPerformed(ActionEvent event) {

        JOptionPane.showMessageDialog(null, String.format("%s", event.getActionCommand()));

    }

}

If this is possible, can I get some assistance? :) Thanks

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2 Answers 2

up vote 4 down vote accepted

See Desktop.browse(URI).

I get an error, Cannot make a static reference to the non-static method browse(URI) from the type Desktop

No, that is what will happen when you attempt to call an instance method on a class. You need a Desktop object.

URI uri = new URI("http://google.com/");
Desktop dt = Desktop.getDesktop();
dt.browse(uri.toURL());
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URI url = new URI("http://google.com/"); Desktop.browse(url); I get an error, Cannot make a static reference to the non-static method browse(URI) from the type Desktop –  jdersen Apr 6 '12 at 0:33
1  
Retreive the system's desktop object: public static Desktop getDesktop() Please read the API linked in the answer. –  Michael Apr 6 '12 at 0:50
    
@Andrew Thompson, I used your snippet, but now it says this error: The method browse(URI) in the type Desktop is not applicable for the arguments (URL) –  jdersen Apr 6 '12 at 4:09
    
What happened when you searched SO on the error output? Key words are "method in type not applicable for the arguments". Programmers deal with many of these types of simple compilation errors, and need to be able to go some way to figuring them out. Also, for better help sooner, post an SSCCE of your best attempt. –  Andrew Thompson Apr 6 '12 at 5:27
    
@AndrewThompson This was back when I didn't know the etiquette of SO. I've accepted your answer after all this time. :) –  jdersen Jun 10 '13 at 1:54

This may be of use to others. Andrew Thompson's answer is almost there.

try {

     String url ="http://www.stackoverflow.com";

     Desktop dt = Desktop.getDesktop();
     URI uri = new URI(url);
     dt.browse(uri.resolve(uri));


 } catch (URISyntaxException ex) {
     Logger.getLogger(Setting.class.getName()).log(Level.SEVERE, null, ex);
 } catch (IOException ex) {
     Logger.getLogger(Setting.class.getName()).log(Level.SEVERE, null, ex);
 }

The code above needs to be surrounded with a try catch block, that includes both a URISyntaxException and an IOException.

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