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Trying to unzip a file using Apache Camel, I tried the example given in but I can't find UnZippedMessageProcessor class. Here's the code:

import java.util.Iterator;
import org.apache.camel.builder.RouteBuilder;
import org.apache.camel.dataformat.zipfile.ZipFileDataFormat;

public class TestRoute extends RouteBuilder {

public void configure() throws Exception {

    ZipFileDataFormat zipFile = new ZipFileDataFormat();
            .process(new UnZippedMessageProcessor()).end();


Anyone tried to do this or have another way to unzip a file through a Camel route?

Thank you in advance!

share|improve this question
Have you got the camel-zipfile dependency on your classpath? ( described at the bottom of your link) – samlewis Jul 24 '13 at 16:30
Yes I have. I've already checked the camel-zipfile jar but I can't find the class in it, or in any other jar though. – Emowpy Jul 24 '13 at 22:47
You need to write the UnZippedMessageProcessor yourself, I guess it is just an example name. – samlewis Jul 24 '13 at 23:14
Well I guess so. – Emowpy Jul 24 '13 at 23:28

1 Answer 1

up vote 3 down vote accepted

You can also define the route like this, you can find the ZipSplitter inside of camel-zipfile.

  .split(new ZipSplitter())
share|improve this answer
That didn't unzip the file into a directory. But I doubt that Camel's ZipFile dataformat can unzip a file into a directory directly. We should get through streams to create directory and the files in it. – Emowpy Jul 25 '13 at 7:54
No, ZipSplitter doesn't unzip the files into directories. It just help camel to consume the input stream of the zipped files. – Willem Jiang Jul 29 '13 at 7:31

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