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First:

I know, this question was asked about 100 times already. I know, someone already could have gave the right answer.

But anyway, i have to ask this again. I didnt found a solution working for me. sorry.

Im writing a game in java. Of course i have many packages (folders) with sounds and pictures and so on. But these folders are each of variable size. So i want to save the content of such a folder dinamicly in a list.

Usually, i was making this:

File f[] = new File(getClass.getResource("/home/res/").toURI()).listFiles();

Now i can iterate though this file object and save each file. Perfect. Really?

No. When i extract this Project into a jar archive, this fails. All because a uri isnt "hierarchical" or some stuff like this. See this exception:

C:\Users\Administrator\Desktop>java -jar Homework.jar
java.lang.IllegalArgumentException: URI is not hierarchical
        at java.io.File.<init>(Unknown Source)
        at homework.moonface.src.Moonface.loadSounds(Moonface.java:94)
        at homework.moonface.src.Moonface.<init>(Moonface.java:55)
        at control.Overview.main(Overview.java:16)

Ok, i thought, so i need to get this path and add it manual into the file object. (new File("path"); But... this doesnt work. Im getting the known error that the input wasnt written correctly, or when i try to cut of "file:" from the resource url, it breaks because in a jar its "jar:file:" and not "file:". But also if i cut of jar:file: im getting null.

So, please dont mark this as a duplicate, and try to explain this shortly for me. It would help thousand other, who dont understand other solutions who arent solutions. Please spend 5 minutes time for this.

Thank you!

share|improve this question
    
Don't ask for pity and don't suck-up. If you ask a proper question with proper details (like it seems you have), someone will help you. –  Sotirios Delimanolis Oct 1 '13 at 21:13
    
Just to be clear: you have a jar with a bunch of files that you want to write to the file system? –  Sotirios Delimanolis Oct 1 '13 at 21:14
    
Time to learn Ant. With Ant scrip you can manage all your resources –  Maxim Shoustin Oct 1 '13 at 21:15
    
@SotiriosDelimanolis my hole project is in the jar. (double click file) main class, other classes and resources. –  T_01 Oct 1 '13 at 21:20
    
I dont suck up, i just want to ask for pardon because of this question, which was asked already... –  T_01 Oct 1 '13 at 21:22

1 Answer 1

Try this :

    URL jarResourceURL = getClass().getResource("/home/res/");
    JarURLConnection jarURLConnection = (JarURLConnection) jarResourceURL.openConnection();
    Enumeration<JarEntry> entries = jarURLConnection.getJarFile().entries();
    while (entries.hasMoreElements()){
        entries.nextElement(); // iterate over entries and do something
    }

UPD: I was thinking about how spring framework's ClassPathXmlApplicationContext resolves the resources from jars. So i investigated the source code and foud that there is an utility class org.springframework.core.io.ClassPathResource which have a convenient interface (moreover there is a possibility to get the corresponding java.io.File instance using it) and can help you to solve the problem. Here is the doc : http://docs.spring.io/spring/docs/2.5.x/api/org/springframework/core/io/ClassPathResource.html

share|improve this answer
    
getting this exception: java.lang.ClassCastException: sun.net.www.protocol.file.FileURLConnection cannot be cast to java.net.JarURLConnection at homework.moonface.src.Moonface.loadSounds(Moonface.java:93) at homework.moonface.src.Moonface.<init>(Moonface.java:55) at control.Overview.main(Overview.java:16) –  T_01 Oct 2 '13 at 7:54
    
Did you tried to work with classpath member which is not in jar ? –  oleg.lukyrych Oct 2 '13 at 8:22
    
not, but the resources have to be in the jar.. or what do you mean? –  T_01 Oct 2 '13 at 8:37

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