Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

ok so im working on my program which will play a song once a button is clicked, i have the code down, and my audio is playing when the button is clicked,but the only problem now is that my program is going completely bonkers and just playing the audio when the button is clicked!!!! the program just freezes the audio keeps playing but the program will not do it's other functions! What am i doing wrong? and how do i fix it?

heres the code for the action listeners button

in myFrame.java

sound sound = new sound();
private File pokemonBattle = new File(".\\audio\\"+"sound.wav");


private void dualButtonActionPerformed(java.awt.event.ActionEvent evt)       
    {                                           
    // TODO add your handling code here:
    for (int i = 0; i<1; i++){
    c = deck.getNextCard();
    p1hand[i] = c;
    p1.setCard(c);                   //ignore all this
    c = deck.getNextCard();
    p2hand[i] = c;
    p2.setCard(c);
     }

    pokemon1.setEnabled(true);
    pokemon2.setEnabled(true);
    pokemon1.setIcon(p1hand[0].getImage()); //ignore all this as well
    pokemon2.setIcon(p2hand[0].getImage());
    textArea.setText("Pokemon 1:"+p1hand[0].toString()+"\nPokemon 2:   
 "+p2hand[0].toString());
    p1ResultLabel.setText("");
    p2ResultLabel.setText("");

      //this is where im calling my audio
     sound.playAudio(pokemonBattle);//this is where im calling my play audio method

 }

sound.java where i have playAudio()

import java.io.File;
import javax.sound.sampled.*;



public class sound {

public void playAudio(File sf){
    AudioFormat audioFormat;
    AudioInputStream audioInputStream;
    SourceDataLine sourceDataLine;

    try
    {
        audioInputStream = AudioSystem.getAudioInputStream(sf);
        audioFormat = audioInputStream.getFormat();
        System.out.println(audioFormat);

        DataLine.Info dataLineInfo = new  
  DataLine.Info(SourceDataLine.class,audioFormat);

        sourceDataLine =(SourceDataLine)AudioSystem.getLine(dataLineInfo);

        byte tempBuffer[]=new byte[100000];
        int cnt;
        sourceDataLine.open(audioFormat);
        sourceDataLine.start();
        while((cnt=audioInputStream.read
                     (tempBuffer,0,tempBuffer.length))!=-1){
            if(cnt>0){
                sourceDataLine.write(tempBuffer,0,cnt);
            }

        }

    }
    catch (Exception e)
    {
        e.printStackTrace();
        System.exit(0);
        }
    }

}
share|improve this question

2 Answers 2

up vote 1 down vote accepted

You need to play the audio in a separate thread. The program becomes unresponsive because it is playing your audio on the event dispatch thread instead of drawing the UI and responding to user interaction.

instead of:

sound.playAudio(pokemonBattle);

do:

Thread t = new Thread( new SoundPlayer( sound, pokemonBattle );
t.start();

and also:

public class SoundPlayer implements Runnable
{
    private final sound sound;
    private final File soundFile;

    public SoundPlayer( sound sound, File soundFile )
    {
        this.sound = sound;
        this.soundFile = soundFile;
    }

    public void run()
    {
       sound.playAudio( soundFile );
    }
}
share|improve this answer
    
I'm sorry but I'm completely confused How exactly would I play the audio in a seperate thread? –  John Acosta Jul 10 '12 at 2:12
    
thank you joseph. got it working! –  John Acosta Jul 10 '12 at 3:00

Joseph is right. But in this instance the problem is

 while((cnt=audioInputStream.read
                     (tempBuffer,0,tempBuffer.length))!=-1){
            if(cnt>0){
                sourceDataLine.write(tempBuffer,0,cnt);
            }

        }

You while loop will run infinitely hence freezing up your application. Since you are reading and writing the entire buffer at once there is no need for the while loop. Do this outside of a loop and you will be fine.

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.