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I've just wrote an HTTP server that receive POST request via HTTP. In particular it receives requests as multipart form data:

POST / HTTP/1.1
Host: 192.168.7.4:5000
User-Agent: Mozilla/5.0 (X11; Linux i686; rv:5.0) Gecko/20100101 Firefox/5.0
Accept: text/html,application/xhtml+xml,application/xml;q=0.9,*/*;q=0.8
Accept-Language: en-us,en;q=0.5
Accept-Encoding: gzip, deflate
Accept-Charset: ISO-8859-1,utf-8;q=0.7,*;q=0.7
Connection: keep-alive
Content-Type: multipart/form-data; boundary=---------------------------197987737412371961922053527775
Content-Length: 4306786


-----------------------------197987737412371961922053527775
Content-Disposition: form-data; name="filename"

poison.mp3
-----------------------------197987737412371961922053527775
Content-Disposition: form-data; name="prova"

provaV
-----------------------------197987737412371961922053527775
Content-Disposition: form-data; name="datafile"; filename="01-Poison.mp3"
Content-Type: audio/mpeg

file......

After the Header every input is encripted in the form:

-----------------------------197987737412371961922053527775 Conten_disposition ...\r\n\r\n "input content"

The last one contains the file in binary form.

This is my Server that first grabs all informations contained in the header then try to rebuild the file. If i send a request from my local machines it works fine, but if I try to send a file from a remote client it corrupts the file. I'm using a simple InputStream directly opened from the socket.

This is the method that tries to created the sent file:

private void payloadFileCreation(InputStream in,boolean t1, FileOutputStream fos, long filesize ) throws IOException{

    int dyn_data_index=0;
    int chunk=2048;
    byte[] dyn_data = new byte[chunk];
    int av = in.available();
    while (filesize>chunk){
           in.read(dyn_data,0,chunk);
           fos.write(dyn_data,0,chunk);
       fos.flush();
       filesize -= chunk;

    }
    in.read(dyn_data,0,(int) filesize );
    fos.write(dyn_data,0, (int) filesize);
    fos.flush();
    fos.close();

    }

any ideas? Thanks

share|improve this question
    
Explain what you mean by corruption. Also, are the two machines byte-order compatible? –  g051051 Jul 19 '11 at 11:47

1 Answer 1

You can use Apache Commons FileUpload library to parse multipart form requests.

share|improve this answer
    
Yes I know that library, however the server receives very huge files (about ~Gbytes) in the post request. I need to buffer those files and create a file by adding the buffer contained. I'm afraid that the Apache Commons FileUpload library tries to put the entire streamed file into an object first, this may cause an OutOfMemory error. –  Sashimi Jul 19 '11 at 13:33
    
Don't be afraid, Commons FileUpload has streaming api for this purpose: commons.apache.org/fileupload/streaming.html –  Sergey Aslanov Jul 19 '11 at 13:45
    
ok, seems to be fine :) thanks. However should i run my application into a servlet? Because I took a look to those libraries and they use ServletFileUpload() I have my own threaded server. Thanks again –  Sashimi Jul 19 '11 at 13:53
    
Yes, I think you can go ahead without servlets with using FileUpload.parseRequest and implementing your own RequestContext. –  Sergey Aslanov Jul 19 '11 at 14:19

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