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Is there a way to set ac.getPage() as a hyperlink to open in broswer when clicked on? ac.getPage() returns a string which is an actual fact a url of a persons blog. I tried attaching the following java.awt.Desktop.getDesktop().browse(java.net.URI.create(ac.getPage()) and error says void is not allowed? How can i correct this?

pageLabel.setText("Page:    " + ac.getPage());
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seems similar with this question stackoverflow.com/questions/527719/… –  Mahan Dec 31 '12 at 11:34
    
@JoopEggen yes i did that –  Hoody Dec 31 '12 at 11:46
    
@Mahan that seems too long and i would like to be able to keep the text "Page" too –  Hoody Dec 31 '12 at 11:50
    
1) Alternately use a JTextField for the link component as shown in this answer. A text field is an accessible component. 2) For better help sooner, post an SSCCE. –  Andrew Thompson Dec 31 '12 at 11:50
    
That "void is not allowed" seems to be caused by the void browse(URI). Do you assign it? Is a semicolon ; missing before that code? browse opens the system browser with an URI. –  Joop Eggen Dec 31 '12 at 11:57

1 Answer 1

You could use a JTextPane instead of a JLabel,

JTextPane pageLabel = new JTextPane();
pageLabel.setEditable(false);
pageLabel.setText("<html>Page: <a href='http://eo.wikipedia.org/'>vikipedio</a>"):
pageLabel.addHyperLinkListener(new HyperLinkListener() {
    @Override
    public hyperlinkUpdate(HyperlinkEvent event) {
        if (event.getEventType() == HyperlinkEvent.EventType.ACTIVATED) {
            String url = event.getURL().toString();
            Desktop.getDesktop().browse(URI.create(url));
        }
    }
});
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Depends on the context of the OP's question, but this might be a bit of an overkill... –  11684 Dec 31 '12 at 12:40
    
It is an answer to the comment with youtube in it. –  Joop Eggen Dec 31 '12 at 12:59

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