Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I am trying to persist a uploaded file to database using JPA. The most "natural" way (to me) is to define domain object as:

@Entity
class UploadFile {
  ...
  public CommonsMultipartFile getFileData()
  {
    return fileData;
  }
}

But this won't work since there is not such a database mapping type. Searching online, I found that people seems to adapt one of the two methods:

  • Define the field as java.sql.blob;
  • Define the field as byte[]

In the @Controller class, the incoming HttpServletRequest gets cast to MultipartHttpServletRequest in order to access the MultipartFile and convert it back to byte[] stream.

However, with this scheme, I have "random" results which puzzles me: from time to time, I ran into "bean property not readable" error, possible mismatch of return type of getter method on the byte[] field. I double and triple checked my Bean definition, and couldn't find anything wrong.

I guess my questions are two folds: (1) Any idea why this error can happen in this context? (2) more importantly, what are the "recommended" way of handling uploaded file like this?

thanks

Oliver

share|improve this question

1 Answer 1

up vote 2 down vote accepted

You are correct that either a java.sql.blob or a byte[] would be the most appropriate way to store an uploaded file in a database.

You should not store a MultipartFile or a CommonsMultipartFile in a database because these are intended to be temporary objects. Note this from the MultipartFile javadoc:

The file contents are either stored in memory or temporarily on disk. In either case, the user is responsible for copying file contents to a session-level or persistent store as and if desired. The temporary storages will be cleared at the end of request processing.

I don't quite follow what you're doing with your HttpServletRequest but it doesn't sound like the easiest way to handle the upload. The easiest way to handle an upload is to make the MultipartFile a parameter on your controller method (if you're using Spring 3.0 or later, I think):

@RequestMapping(value = "/upload", method = RequestMethod.POST)
public void exampleFileUpload(@RequestParam("file") MultipartFile file) {
    if (!file.isEmpty()) {
        try {
            byte[] fileBytes = file.getBytes();

            // Persist those bytes using JPA here

        } catch (IOException e) {
            // Exception handling here
        }
    }
}

This should work reliably because you've extracted the bytes into your byte[] array before the request has finished — and thus before the any temporary files used to handle the upload have been deleted.

share|improve this answer
    
thanks for your reply. A quick question though: say I am using <form: form> in JSP to display upload form, and using modelAttribute to bound form object to UpLoadFile, path field is set to fileData. So it should be @RequestParam('fileData')? will this cause the type mismatch problem? –  Oliver Mar 8 '11 at 12:24
    
I just checked, it did cause the type mismatch problem. –  Oliver Mar 8 '11 at 17:26
    
If you're using a model attribute with a file upload, then you can (should, I think) put the MultipartFile in your form (model) object instead of using it as a method parameter. So your controller method would be exampleFileUpload(@ModelAttribute('fileData') UpLoadFile model), your UpLoadFile form object would contain a property MultipartFile file; and you would access the file via the form object, ie model.getFile().getBytes();. –  gutch Mar 8 '11 at 22:36
    
I finally got it working. As a closure note, the key is not to use <form:input> to define input file, Spring will complain mismatch type, unless additional Binder is place to aid it. –  Oliver Mar 9 '11 at 3:49

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.