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getting an unusual error:- 'void' type not allowed here

import javax.sound.midi.*;

 public class MiniMusicPlayer1 {
    public static void main(String[] args) {
            try {
                    Sequencer player = MidiSystem.getSequencer();
                    Sequence seq = new Sequence(Sequence.PPQ, 4);
                    Track track = seq.createTrack();
                    for (int i = 5; i < 61; i += 4) {
                            track.add(makeEvent(144, 1, i, 100, i));
                            track.add(makeEvent(128, 1, i, 100, i));
                    }

                            player.setSequence(seq);
                            player.setTempoInBPM(220);
                            player.start();



            } catch (Exception ex) {
                    System.out.println(ex.printStackTrace());
            }
    }

    public static MidiEvent makeEvent(int comd, int ch, int note, int vel,
                    int tick) {
            MidiEvent event = null;
            try
            {
                    ShortMessage a = new ShortMessage();
                    a.setMessage(comd, ch, note, vel);
                    event = new MidiEvent(a,tick);

            }
            catch(Exception e)
            {
                    System.out.println(e.getMessage());
            }
            return event;
    }

ankit@battlestar:/home/mount_150/Java$ javac MiniMusicPlayer1.java MiniMusicPlayer1.java:21: error: 'void' type not allowed here System.out.println(ex.printStackTrace()); ^

Please help.

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1 Answer 1

up vote 8 down vote accepted

You're calling printStackTrace and "passing" its void result to println.

println requires something to print: all you need is ex.printStackTrace().

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4  
@Arnab: what in Hades are you talking about? How can println possibly handle something if no viable information is passed to it? 1+ to Dave. –  Hovercraft Full Of Eels Jul 30 '12 at 0:14
1  
@Arnab: the compiler error is just fine and tells exactly what the problem is: that a method is being called with the wrong arguments. I think your point is a non-issue. The API also has all the information needed as to what the method is expecting. –  Hovercraft Full Of Eels Jul 30 '12 at 0:25
2  
@ArnabDatta - I think you are expecting too much of the Java compiler. It is simply not practical for a compiler to attempt to try and figure out what newbie users mean when they write something that is invalid. (Frankly, a lot of the time it is not even possible for a human to figure that out ... without relying on various high level hints in the newbie's questions / comments.) –  Stephen C Jul 30 '12 at 0:48
2  
"maybe avoid the awkward compiler error message" Having seen many code snippets that compiled fine but failed (silently) at run-time, I disagree. Whether the compiler message could be better is another matter. "What is it referring to when it says "void type not allowed here" ?" The compiler messages generally include a little ^ on the previous line, to show exactly where in the code line, nonsense was detected. My advice is to stop complaining about what the compiler reports, and learn to understand it. –  Andrew Thompson Jul 30 '12 at 1:00
3  
@ArnabDatta It's referring to the only thing that can't be void there, the parameter to println. What println accepts is documented, and what it "should" be is one of nine possibilities. It's not clear to me that it's better to pollute the compilation output with a paragraph of text already available in the Javadocs. Some languages do attempt to guess what was intended, but I'm at least as meh about that. You could always file an enhancement request to spew the Javadocs of the method being called if it doesn't get a valid argument, but I'd vote against it in terms of ROI. –  Dave Newton Jul 30 '12 at 1:07

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