53

How does one create a JAR file programmatically using java.util.jar.JarOutputStream? The JAR file produced by my program looks correct (it extracts fine) but when I try loading a library from it Java complains that it cannot find files which are clearly stored inside it. If I extract the JAR file and use Sun's jar command-line tool to re-compress it the resulting library works fine. In short, something is wrong with my JAR file.

Please explain how to create a JAR file programmatically, complete with a manifest file.

  • 2
    Perhaps you should show your current (non-working) solution – ChssPly76 Aug 15 '09 at 6:14
94

It turns out that JarOutputStream has three undocumented quirks:

  1. Directory names must end with a '/' slash.
  2. Paths must use '/' slashes, not '\'
  3. Entries may not begin with a '/' slash.

Here is the correct way to create a Jar file:

public void run() throws IOException
{
  Manifest manifest = new Manifest();
  manifest.getMainAttributes().put(Attributes.Name.MANIFEST_VERSION, "1.0");
  JarOutputStream target = new JarOutputStream(new FileOutputStream("output.jar"), manifest);
  add(new File("inputDirectory"), target);
  target.close();
}

private void add(File source, JarOutputStream target) throws IOException
{
  BufferedInputStream in = null;
  try
  {
    if (source.isDirectory())
    {
      String name = source.getPath().replace("\\", "/");
      if (!name.isEmpty())
      {
        if (!name.endsWith("/"))
          name += "/";
        JarEntry entry = new JarEntry(name);
        entry.setTime(source.lastModified());
        target.putNextEntry(entry);
        target.closeEntry();
      }
      for (File nestedFile: source.listFiles())
        add(nestedFile, target);
      return;
    }

    JarEntry entry = new JarEntry(source.getPath().replace("\\", "/"));
    entry.setTime(source.lastModified());
    target.putNextEntry(entry);
    in = new BufferedInputStream(new FileInputStream(source));

    byte[] buffer = new byte[1024];
    while (true)
    {
      int count = in.read(buffer);
      if (count == -1)
        break;
      target.write(buffer, 0, count);
    }
    target.closeEntry();
  }
  finally
  {
    if (in != null)
      in.close();
  }
}
  • 18
    these 'quirks' are actually part of the zip specification (jar files are just zip files with a manifest and a different extension). I agree that it should be documented in the API docs, though - I suggest opening an issue (bugs.sun.com/bugdatabase) – Kevin Day Aug 15 '09 at 19:18
  • 5
    More importantly, the API should prevent you from creating invalid ZIP/JAR files by throwing exceptions if you pass in the wrong type of slash or by converting them automatically. With respect to directories ending with a slash, it should definitely be documented since there is no way to correct it automatically. I filed a bug report but it hasn't been accepted yet. – Gili Aug 16 '09 at 15:52
  • 1
    FYI - Zip spec: pkware.com/documents/casestudies/APPNOTE.TXT - search for "file name: (Variable)". – David Carboni Apr 3 '12 at 10:52
  • 1
    @Gili The api cannot "prevent" you from using the "wrong" slash; because, the "wrong" slash is a valid character in the file name. Not all operating systems recognize "\" as a directory separator, and those that do not allow (no-directory including) files names of "he\he\he". – Edwin Buck Apr 30 '12 at 14:22
  • 1
    This program result Strange output $ ls MyClass.class output.jar using this program i have created jar output.jar $ jar tf output.jar META-INF/MANIFEST.MF /Users/aninath/Documents/workspace/interview/.metadata/.plugins/org.eclipse.wst.server.core/tmp0/work/Catalina/localhost/mywebapp2/tmp/ /Users/aninath/Documents/workspace/interview/.metadata/.plugins/org.eclipse.wst.server.core/tmp0/work/Catalina/localhost/mywebapp2/tmp/MyClass.class /Users/aninath/Documents/workspace/interview/.metadata/.plugins/org.eclipse.wst.server.core/tmp0/work/Catalina/localhost/mywebapp2/tmp/output.jar – anish Feb 28 '14 at 19:07
10

There's another "quirk" to pay attention: All JarEntry's names should NOT begin with "/".

For example: The jar entry name for the manifest file is "META-INF/MANIFEST.MF" and not "/META-INF/MANIFEST.MF".

The same rule should be followed for all jar entries.

  • This should be posted as a comment to the accepted answer because it doesn't answer the main question. – cdalxndr Aug 26 '19 at 11:28
2

Here's some sample code for creating a JAR file using the JarOutputStream:

  • 1
    I'm already doing this. In fact, the example you referenced to fails to point out that one must explicitly putNextEntry() on directory names or invoke JarOutputStream.closeEntry(). Something else must be wrong. – Gili Aug 15 '09 at 5:39
  • Ah, OK. It was a little hard to offer a better solution without seeing any code, so I just pointed you at that reference. Glad you figured it out though. – ars Aug 15 '09 at 7:53
  • I appreciate your help. Thank you! – Gili Aug 15 '09 at 17:15
2

You can do it with this code:

public void write(File[] files, String comment) throws IOException {
    FileOutputStream fos = new FileOutputStream(PATH + FILE);
    JarOutputStream jos = new JarOutputStream(fos, manifest);
    BufferedOutputStream bos = new BufferedOutputStream(jos);
    jos.setComment(comment);
    for (File f : files) {
        print("Writing file: " + f.toString());
        BufferedReader br = new BufferedReader(new FileReader(f));
        jos.putNextEntry(new JarEntry(f.getName()));
        int c;
        while ((c = br.read()) != -1) {
            bos.write(c);
        }
        br.close();
        bos.flush();
    }
    bos.close();
//  JarOutputStream jor = new JarOutputStream(new FileOutputStream(PATH + FILE), manifest);

}

PATH variable: path to JAR file

FILE variable: name and format

  • What does this add that the accepted answer does not already say? – Gili Oct 13 '16 at 12:36
  • The accepted answer use more code than my. I think, you don't want to write very much code when you can write a bit. – Muskovets Dec 10 '17 at 18:06
  • 2
    In all due fairness, your answer contains less code because it does less. The accepted answer contains code that massages the input to the format expected by JarOutputStream . Your code will fail silently if you run under Windows or if directory names do not end with a slash. – Gili Dec 12 '17 at 2:03
  • The accepted answer also includes the manifest and the top-level directory entry. (I agree it could be more terse, though.) – David Moles Sep 5 '18 at 19:17
  • Getting ClassFormatError with this - using the accepted answer works though. – K_7 Aug 16 '19 at 17:43
0

This answer would solve the relative path problem.

private static void createJar(File source, JarOutputStream target) {
        createJar(source, source, target);
    }

    private static void createJar(File source, File baseDir, JarOutputStream target) {
        BufferedInputStream in = null;

        try {
            if (!source.exists()){
                throw new IOException("Source directory is empty");
            }
            if (source.isDirectory()) {
                // For Jar entries, all path separates should be '/'(OS independent)
                String name = source.getPath().replace("\\", "/");
                if (!name.isEmpty()) {
                    if (!name.endsWith("/")) {
                        name += "/";
                    }
                    JarEntry entry = new JarEntry(name);
                    entry.setTime(source.lastModified());
                    target.putNextEntry(entry);
                    target.closeEntry();
                }
                for (File nestedFile : source.listFiles()) {
                    createJar(nestedFile, baseDir, target);
                }
                return;
            }

            String entryName = baseDir.toPath().relativize(source.toPath()).toFile().getPath().replace("\\", "/");
            JarEntry entry = new JarEntry(entryName);
            entry.setTime(source.lastModified());
            target.putNextEntry(entry);
            in = new BufferedInputStream(new FileInputStream(source));

            byte[] buffer = new byte[1024];
            while (true) {
                int count = in.read(buffer);
                if (count == -1)
                    break;
                target.write(buffer, 0, count);
            }
            target.closeEntry();
        } catch (Exception ignored) {

        } finally {
            if (in != null) {
                try {
                    in.close();
                } catch (Exception ignored) {
                    throw new RuntimeException(ignored);
                }
            }
        }
    }
0

Ok, so by request, here's Gili's code, modified to use relative paths rather than absolute ones. (Replace "inputDirectory" with the directory of your choice.) I just tested it, but if it doesn't work, lemme know.

   public void run() throws IOException
   {
      Manifest manifest = new Manifest();
      manifest.getMainAttributes().put(Attributes.Name.MANIFEST_VERSION, "1.0");
      JarOutputStream target = new JarOutputStream(new FileOutputStream("output.jar"), manifest);
      File inputDirectory = new File("inputDirectory");
      for (File nestedFile : inputDirectory.listFiles())
         add("", nestedFile, target);
      target.close();
   }

   private void add(String parents, File source, JarOutputStream target) throws IOException
   {
      BufferedInputStream in = null;
      try
      {
         String name = (parents + source.getName()).replace("\\", "/");

         if (source.isDirectory())
         {
            if (!name.isEmpty())
            {
               if (!name.endsWith("/"))
                  name += "/";
               JarEntry entry = new JarEntry(name);
               entry.setTime(source.lastModified());
               target.putNextEntry(entry);
               target.closeEntry();
            }
            for (File nestedFile : source.listFiles())
               add(name, nestedFile, target);
            return;
         }

         JarEntry entry = new JarEntry(name);
         entry.setTime(source.lastModified());
         target.putNextEntry(entry);
         in = new BufferedInputStream(new FileInputStream(source));

         byte[] buffer = new byte[1024];
         while (true)
         {
            int count = in.read(buffer);
            if (count == -1)
               break;
            target.write(buffer, 0, count);
         }
         target.closeEntry();
      }
      finally
      {
         if (in != null)
            in.close();
      }
   }

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