Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free.

I am totally fresh in handling zip file using Java, and I have encountered a strange situation.

Here is the method I am using for unzip:

public void unzip(File zipFile, File rootDir) throws IOException
{
    ZipFile zip = new ZipFile(zipFile);
    Enumeration<ZipEntry> entries = (Enumeration<ZipEntry>) zip.entries();

    while(entries.hasMoreElements()) {
        ZipEntry entry = entries.nextElement();
        java.io.File f = new java.io.File(rootDir, entry.getName());
        if (entry.isDirectory()) { // if its a directory, create it
            continue;
        }

        if (!f.exists()) {
            f.getParentFile().mkdirs();
            f.createNewFile();
        }

        /*BufferedInputStream bis = new BufferedInputStream(zip.getInputStream(entry)); // get the input stream
        BufferedOutputStream bos = new BufferedOutputStream(new java.io.FileOutputStream(f));
        while (bis.available() > 0) {  // write contents of 'is' to 'fos'
            bos.write(bis.read());
        }
        bos.close();
        bis.close();*/

        InputStream is = zip.getInputStream(entry);
        OutputStream os = new java.io.FileOutputStream(f);
        byte[] buf = new byte[4096];
        int r ;
        while ((r = is.read(buf)) != -1) {
            os.write(buf, 0, r);
        }
        os.close();
        is.close();
    }   
}

However, a IOException has been thrown and the message is:

INFO | jvm 1 | 2012/11/30 01:58:05 | java.util.zip.ZipException: error in opening zip file

INFO | jvm 1 | 2012/11/30 01:58:05 | at java.util.zip.ZipFile.open(Native Method)

INFO | jvm 1 | 2012/11/30 01:58:05 | at java.util.zip.ZipFile.(ZipFile.java:127)

INFO | jvm 1 | 2012/11/30 01:58:05 | at java.util.zip.ZipFile.(ZipFile.java:143)

Could anyone help me on this?

Thanks a lot.

Update:

I am using Linux as a testing environment. The permission for the unzip directory is drwxr-xr-x –

Update 02:

By adopting the suggestion from @heikkim,

I have just tried to use unzip commend in linux, trying to unzip my file manually. I have the following message:

Archive: TMA_Template.zip caution: zipfile comment truncated warning [TMA_Template.zip]: zipfile claims to be last disk of a multi-part archive; attempting to process anyway, assuming all parts have been concatenated together in order. Expect "errors" and warnings...true multi-part support doesn't exist yet (coming soon). error [TMA_Template.zip]: missing 6366880279 bytes in zipfile (attempting to process anyway) error [TMA_Template.zip]: attempt to seek before beginning of zipfile (please check that you have transferred or created the zipfile in the appropriate BINARY mode and that you have compiled UnZip properly)

share|improve this question
    
corrupted file? –  Jan Dvorak Nov 30 '12 at 9:38
    
related to file permission ? –  Swagatika Nov 30 '12 at 9:39
    
Jan: I have created another zip file and tested, still the same exception. Swagatika: I am not quite familiar with handling zip file using Java, my testing environment is Linux and I have checked with the permission, the parent directory shows me drwxr-xr-x –  Hei Nov 30 '12 at 9:44
    
is there a causedBy in the stacktrace? –  bvanvelsen Nov 30 '12 at 9:46
1  
check this question, similar issue stackoverflow.com/questions/325202/… –  Toni Toni Chopper Nov 30 '12 at 9:47

1 Answer 1

Could you try with this method:

private void unzip() throws IOException {
    int BUFFER = 2048;
    BufferedOutputStream dest = null;
    BufferedInputStream is = null;
    ZipEntry entry;
    ZipFile zipfile = new ZipFile("latest.zip");
    Enumeration e = zipfile.entries();
    (new File(root)).mkdir();
    while (e.hasMoreElements()) {
        entry = (ZipEntry) e.nextElement();
        //outText.setText(outText.getText() + "\nExtracting: " + entry);
        if (entry.isDirectory()) {
            (new File(root + entry.getName())).mkdir();
        } else {
            (new File(root + entry.getName())).createNewFile();
            is = new BufferedInputStream(zipfile.getInputStream(entry));
            int count;
            byte data[] = new byte[BUFFER];
            FileOutputStream fos = new FileOutputStream(root + entry.getName());
            dest = new BufferedOutputStream(fos, BUFFER);
            while ((count = is.read(data, 0, BUFFER)) != -1) {
                dest.write(data, 0, count);
            }
            dest.flush();
            dest.close();
            is.close();
        }
    }
}
share|improve this answer
    
Thanks for the suggestion, but unfortunately, the exact same exception has been thrown. –  Hei Nov 30 '12 at 10:12

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.