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.

How can i load all files from a folder in a jar file?

Untill now i was loading files from a folder like this File[] files = new File("res/Models/" + dir).listFiles(); but it doesnt in a fat jar file (i get a NullPointerException).

Note: The class that should load files and the files i want to load are in the same jar file. The line i wrote up there works when i run my program in eclipse, but when i expoort a jar file i get a NullPointerException for that line

share|improve this question
2  
Possible duplicate of Accessing files packaged into a jar file –  Baz Aug 24 '12 at 21:28
1  
I did, but I don't see the difference. Maybe you can explain... –  Baz Aug 24 '12 at 21:32
2  
As explained in the link Baz gave, you will need to extract the contents of the file first. –  Code-Apprentice Aug 24 '12 at 21:35
1  
@Code-Guru Thank you. Maybe now it's more obvious, why this is a duplicate... –  Baz Aug 24 '12 at 21:38
2  
@Chorche Yes. However, inside of a jar file there is no such thing as a "file" or a "folder". In order to reconstruct these things, you need to extract the contents of the Jar file. –  Code-Apprentice Aug 24 '12 at 22:46

2 Answers 2

A jar file is a zip file, so you can read its contents using a ZipInputStream like this:

  ZipFile zipFile = new ZipFile(file);
  ZipInputStream stream = new ZipInputStream(new BufferedInputStream(new FileInputStream(file)));
  ZipEntry entry = null;
  List<String> filePaths = new ArrayList<String>();
  while ((entry = stream.getNextEntry()) != null) {
    // this will get you the contents of the file
    InputStream inputStream = zipFile.getInputStream(entry);
    // this add the file path to the list
    filePaths.add(entry.getName());
  }

You can also do the follo

share|improve this answer
    
Can the "file" in this line ZipInputStream stream = new ZipInputStream(new BufferedInputStream(new FileInputStream(file))); be a directory? –  Vitalius Kuchalskis Aug 24 '12 at 21:47
    
No, but you can have another method that recursively goes through the directory and if it finds a .zip file it calls the code I gave you, otherwise it does whatever you want it to do. –  Dan Aug 24 '12 at 21:51
    
so i have to place my files into a zip archive? I think you dont understand what my question is. The class that should load files and the files i want to load are in the same folder. The line i wrote in my question works when i run my program in eclipse, but when i expoort a jar file i get a NullPointerException for that line. You should see this question stackoverflow.com/questions/12116151/fat-jar-instantly-closes/… –  Vitalius Kuchalskis Aug 24 '12 at 21:58
    
In this case, I think nobody understood what you asked. You should take your time to write questions that others can understand. –  Dan Aug 24 '12 at 22:00
    
okay............. –  Vitalius Kuchalskis Aug 24 '12 at 22:03

Let's look at how a File object works.

First, say we have the following code in a file named FileTest.java:

public class FileTest {
    public static void main() {
        File[] files = new File("temp").listFiles();

        for (File f : files) System.out.println(f.getName());
    }
}

When we compile this, javac creates a file named FileTest.class. (Even Eclipse will do this; it just places the .class files in a separate folder from the .java files.) Now when we run this program, it will look for a folder named "temp" located in the same folder as the FileTest.class file.

Now suppose that we create a JAR file named filetest.jar and add FileTest.class to it. Now if we run the program from the JAR file, it will look for a folder named "temp" located in the same folder as the filetest.jar file. In other words, File only looks for files and folders in the file system on your hard drive. It knows absolutely nothing about the contents of any files, including filetest.jar.

In order to read the contents of a JAR file, you must find a different solution. To start, you need to understand that inside a JAR file there is no such thing as "files" and "folders". A JAR file is simply a ZIP file with a few extra features. With the information you have given here so far, I believe that to solve your problem you will need to use java.util.zip.ZipFile. I suggest you start by googling for a tutorial or browing the API doc which I have linked here.

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.