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I working on a project which works on a very large amount of data. I have a lot(thousands) of zip files, each containing ONE simple txt file with thousands of lines(about 80k lines). What I am currently doing is the following:

for(File zipFile: dir.listFiles()){
ZipFile zf = new ZipFile(zipFile);
ZipEntry ze = (ZipEntry) zf.entries().nextElement();
BufferedReader in = new BufferedReader(new InputStreamReader(zf.getInputStream(ze)));
...

In this way I can read the file line by line, but it is definetely too slow. Given the large number of files and lines that need to be read, I need to read them in a more efficient way.

I have looked for a different approach, but I haven't been able to find anything. What I think I should use are the java nio APIs intended right for intensive I/O operations, but I don't know how to use them with zip files.

Any help would really be appreciated.

Thanks,

Marco

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How large are the files? How long does it take to read them using this code? How long does it take to copy them to /dev/null? –  NPE May 24 '12 at 15:13
2  
You should first determine whether most of your time is spent reading from the zip files, or processing the lines of text. What are you doing with each line in the text files? –  Jack Edmonds May 24 '12 at 15:14
    
@aix The zipped files are about 30MB each, while the txt inside the zip file is about 60/70 MB. Either the size and the number of lines are not fixed, they can change, but theoretically they should be always similar in size and number of lines. Reading and processing the files with this code takes a lot of hours, around 15, but it depends on many factors. –  Marco Galassi May 24 '12 at 15:22
1  
I suggest it is the processing that takes the time here. You need to measure. Try just the reading part, without any processing at all. –  EJP May 25 '12 at 12:48
1  
you make the classic mistake of thinking that the nio APIs make your code faster. the nio APIs can make your code more scalable handling more streams w/ fewer threads, but that doesn't necessarily make things faster. –  jtahlborn May 30 '12 at 16:01

3 Answers 3

I have a lot(thousands) of zip files. The zipped files are about 30MB each, while the txt inside the zip file is about 60/70 MB. Reading and processing the files with this code takes a lot of hours, around 15, but it depends.

Let's do some back-of-the-envelope calculations.

Let's say you have 5000 files. If it takes 15 hours to process them, this equates to ~10 seconds per file. The files are about 30MB each, so the throughput is ~3MB/s.

This is between one and two orders of magnitude slower than the rate at which ZipFile can decompress stuff.

Either there's a problem with the disks (are they local, or a network share?), or it is the actual processing that is taking most of the time.

The best way to find out for sure is by using a profiler.

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Well, here's the point. I am currently workingon a small portion of the total files: I sincerly don't remember the time needed to process them, neither the time elapsed to process ALL the file(not only those I have). Anyway, we're talking about hours. However, I would like to know what is the best efficient way to read these file. With the Java nio APIs we can efficiently read files using file channels, but this does not seem possible with zip files. If you know if there is the possibility to do this with other kind of compressed files instead of zips, please let me know. Thank you all, Marco –  Marco Galassi May 25 '12 at 10:57

You can use the new file API like this:

Path jarPath = Paths.get(...);
try (FileSystem jarFS = FileSystems.newFileSystem(jarPath, null)) {
    Path someFileInJarPath = jarFS.getPath("/...");
    try (ReadableByteChannel rbc = Files.newByteChannel(someFileInJarPath, EnumSet.of(StandardOpenOption.READ))) {
        // read file
    }
}

The code is for jar files, but I think it should work for zips as well.

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Not an answer. He claims his time is spent reading the files, not finding them. –  EJP May 30 '12 at 0:12
    
? The OP explicitly asked for a "java nio APIs" approach. On second thought the OP might have looked for a java.nio.channels approach not java.nio.file, though. –  Puce May 30 '12 at 15:28
    
I've updated my sample to use the java.nio.channels API as well. I haven't done any performance analysis though, and don't know if it will help in this case. That said, java.nio.file is the preferred API in Java SE 7. –  Puce May 30 '12 at 15:36

You can try this code

try
    {

        final ZipFile zf = new ZipFile("C:/Documents and Settings/satheesh/Desktop/POTL.Zip");

        final Enumeration<? extends ZipEntry> entries = zf.entries();
        ZipInputStream zipInput = null;

        while (entries.hasMoreElements())
        {
            final ZipEntry zipEntry=entries.nextElement();
            final String fileName = zipEntry.getName();
        // zipInput = new ZipInputStream(new FileInputStream(fileName));
            InputStream inputs=zf.getInputStream(zipEntry);
            //  final RandomAccessFile br = new RandomAccessFile(fileName, "r");
                BufferedReader br = new BufferedReader(new InputStreamReader(inputs, "UTF-8"));
                FileWriter fr=new FileWriter(f2);
            BufferedWriter wr=new BufferedWriter(new FileWriter(f2) );

            while((line = br.readLine()) != null)
            {
                wr.write(line);
                System.out.println(line);
                wr.newLine();
                wr.flush();
            }
            br.close();
            zipInput.closeEntry();
        }


    }
    catch(Exception e)
    {
        System.out.print(e);
    }
    finally
    {
        System.out.println("\n\n\nThe had been extracted successfully");

    }

this code works in a good manner.

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