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I'm coding a small website with Python and CGI where users can upload zip files and download files uploaded by other users. Currently I'm able to upload correctly the zip's, but I'm having some trouble to correctly send files to the user. My first approach was:

file = open('../../data/code/' + filename + '.zip','rb')

print("Content-type: application/octet-stream")
print("Content-Disposition: filename=%s.zip" %(filename))
print(file.read())

file.close()

But soon I realized that I had to send the file as binary, so I tried:

print("Content-type: application/octet-stream")
print("Content-Disposition: filename=%s.zip" %(filename))
print('Content-transfer-encoding: base64\r')
print( base64.b64encode(file.read()).decode(encoding='UTF-8') )

And different variants of it. It just doesn't works; Apache raises "malformed header from script" error, so I guess I should encode the file in some other way.

share|improve this question
up vote 2 down vote accepted

You need to print an empty line after the headers, and you Content-disposition header is missing the type (attachment):

print("Content-type: application/octet-stream")
print("Content-Disposition: attachment; filename=%s.zip" %(filename))
print()

You may also want to use a more efficient method of uploading the resulting file; use shutil.copyfileobj() to copy the data to sys.stdout.buffer:

from shutil import copyfileobj
import sys

print("Content-type: application/octet-stream")
print("Content-Disposition: attachment; filename=%s.zip" %(filename))
print()

with open('../../data/code/' + filename + '.zip','rb') as zipfile:
    copyfileobj(zipfile, sys.stdout.buffer)

You should not use print() for binary data in any case; all you get is b'...' byte literal syntax. The sys.stdout.buffer object is the underlying binary I/O buffer, copy binary data directly to that.

share|improve this answer
    
I'm already printing an empty line. Note the '\r' at the end of print('Content-transfer-encoding: base64\r'), and remember that 'print' automatically adds a '\n' at the end. I've just tried your code but Apache keeps complaining about malformed header. Anyway, it seems a much better approach. – derkomai Aug 20 '13 at 16:54
    
Right; it looks like your header is malformed as well; see RFC 2616. – Martijn Pieters Aug 20 '13 at 17:03
    
I can't see where the header is malformed. But I've just tested succesfully that if I create a link to the file, it is automatically sent without the need to use the previous code. Which is the correct way? – derkomai Aug 21 '13 at 8:02
    
Linking to the file; use a CGI only if you have to do more processing. – Martijn Pieters Aug 21 '13 at 8:17
1  
I'm using Python 2.7, which may make a difference, but to get this code to work I had to change the final line copyfileobj(zipfile, sys.stdout). – Daniel Griscom Jul 19 '15 at 20:14

The header is malformed because, for some reason, Python sends it after sending the file.

What you need to do is flush stdout right after the header:

sys.stdout.flush()

Then put the file copy

share|improve this answer
1  
Not sure if this is a good answer, but might be good to explain a bit more. – Aaron Hall Jun 16 '14 at 3:43

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