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My goal is to put multiple java.io.File objects into a zip file and print to HttpServletResponse for the user to download.

The files were created by the JAXB marshaller. It's a java.io.File object, but it's not actually on the file system (it's only in memory), so I can't create a FileInputStream.

All resources I've seen use the OutputStream to print zip file contents. But, all those resources use FileInputStream (which I can't use).

Anyone know how I can accomplish this?

share|improve this question
3  
What do you mean it's a java.io.File? A File object is just a fancy address object; it doesn't carry any file content. Where are your data? – erickson Jan 13 '11 at 21:34

Have a look at the Apache Commons Compress libary, it provied the functionalty you need.

Of course "erickson" is right whit his commment to your question. You will need the file conentet and not the java.io.File object. In my example I assume that you have a method byte[] getTheContentFormSomewhere(int fileNummer) which returns the file content (in memory) for the fileNummer-th file. -- Of course this function is poor design, but it is only for ilustration.

It should work a bit like this:

void compress(final OutputStream out) {
  ZipOutputStream zipOutputStream = new ZipOutputStream(out);
  zipOutputStream.setLevel(ZipOutputStream.STORED);

  for(int i = 0; i < 10; i++) {
     //of course you need the file content of the i-th file
     byte[] oneFileContent = getTheContentFormSomewhere(i);
     addOneFileToZipArchive(zipOutputStream, "file"+i+"."txt", oneFileContent);
  }

  zipOutputStream.close();
}

void addOneFileToZipArchive(final ZipOutputStream zipStream,
          String fileName,
          byte[] content) {
    ZipArchiveEntry zipEntry = new ZipArchiveEntry(fileName);
    zipStream.putNextEntry(zipEntry);
    zipStream.write(pdfBytes);
    zipStream.closeEntry();
}

Snipets of your http controller:

HttpServletResponse response
...
  response.setContentType("application/zip");
  response.addHeader("Content-Disposition", "attachment; filename=\"compress.zip\"");
  response.addHeader("Content-Transfer-Encoding", "binary");
  ByteArrayOutputStream outputBuffer = new ByteArrayOutputStream();
  compress(outputBuffer);
  response.getOutputStream().write(outputBuffer.toByteArray());
  response.getOutputStream().flush();
  outputBuffer.close();
share|improve this answer
up vote 2 down vote accepted

Turns out I'm an idiot :) The file that was being "created" was saving to invalid path and swallowing the exception, so I thought it was being "created" ok. When I tried to to instantiate a new FileInputStream, however, it complained that file didn't exist (rightly so). I had a brainfart and assumed that the java.io.File object actually contained file information in it somewhere. But as erickson pointed out, that was false.

Thanks Ralph for the code, I used it after I solved the invalid pathing issue.

My code:

ZipOutputStream out = new ZipOutputStream(response.getOutputStream());
byte[] buf = new byte[1024];

File file;
InputStream in;
// Loop through entities
for (TitleProductAccountApproval tpAccountApproval : tpAccountApprovals) {
    // Generate the file    
    file = xmlManager.getXML(
        tpAccountApproval.getTitleProduct().getTitleProductId(), 
        tpAccountApproval.getAccount().getAccountId(), 
        username);

    // Write to zip file
    in = new FileInputStream(file);
    out.putNextEntry(new ZipEntry(file.getName()));

    int len;
    while ((len = in.read(buf)) > 0) {
        out.write(buf, 0, len);
    }

    out.closeEntry();
    in.close();
}

out.close();
share|improve this answer
    
Invalide pathing issue? - what do you mean - is there a serios bug in the code of my answer? – Ralph Jan 20 '11 at 12:11
    
No your code was perfect. Was my fault. – Corey Feb 10 '11 at 23:30

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