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I have a Web Service that receives an image upload by a Multipart POST request. I would like to forward the file to another web service without storing it, as the environment does not have access to a file system, so basically just passing along the information that's being received.

How do I achieve this?

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2 Answers 2

up vote 1 down vote accepted

If the other webservice resides on the same server use:

String url = "<relative path>";
request.getRequestDispatcher(url).forward(request, response);
return;

otherwise use:

response.sendRedirect(url);
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Unfortunately, simply forwarding the request is not an option. I do need the image the POST'ed to the server before, and then just send it somewhere else. –  doque Feb 10 '12 at 19:58
    
so start by saving the image - by using a form with enctype="multipart/form-data" property, and after you're done saving the image - forward the request. –  alfasin Feb 10 '12 at 21:05
    
I did something similar - using CXF I was able to receive a byte[] as input, and then use a ByteArrayBody(byte[], filename) to attach it to the outgoing Http Request. The image does not need to be saved for this. –  doque Feb 16 '12 at 22:43

You could always try chaining the input and output streams from one to the other, but I suspect you won't get very far with this when there's a hiccup on either side of the connection.

Another option you have, depending on how much memory you have access to, is to save it as a variable after you fetch it, and then pass it along to the other webservice. This of course won't work with very large images but it's a starting point.

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The images are going to be rather small, so I might consider that approach. Thanks! –  doque Feb 10 '12 at 19:06

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