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I would like to upload a file to a web server. From what I have read, the best way to do this is to use the multipart/form-data encoding type on an HTTP POST request.

My research seems to indicate that there is no simple way to do this using the Python standard library. I am using Python 3.

(Note: see a package called requests (PyPI Link) to easily accomplish this)

I am currently using this method:

import mimetypes, http.client
boundary = 'wL36Yn8afVp8Ag7AmP8qZ0SA4n1v9T' # Randomly generated
for fileName in fileList:
    # Add boundary and header
    dataList.append('--' + boundary)
    dataList.append('Content-Disposition: form-data; name={0}; filename={0}'.format(fileName))

    fileType = mimetypes.guess_type(fileName)[0] or 'application/octet-stream'
    dataList.append('Content-Type: {}'.format(fileType))
    dataList.append('')

    with open(fileName) as f: 
        # Bad for large files
        dataList.append(f.read())

dataList.append('--'+boundary+'--')
dataList.append('')
contentType = 'multipart/form-data; boundary={}'.format(boundary)

body = '\r\n'.join(dataList)
headers = {'Content-type': contentType}

conn = http.client.HTTPConnection('http://...')
req = conn.request('POST', '/test/', body, headers)

print(conn.getresponse().read())

This works to send text.

There are two issues: This is text only, and the whole text file must be stored in memory as a giant string.

How can I upload any binary file? Is there a way to do this without reading the whole file into memory?

share|improve this question
    
You should REALLY use the requests package you mentioned already. There is a lot of stuff which is not handled by the standard library, like session management, authentication, checking SSL certificates, ... What's your reason for not using the request module? –  Achim Apr 3 '13 at 7:54
    
We don't want to package so many modules with our product, that is all. We are not completely against using it, but I figured there might be a way of doing it in the standard library that wasn't too hard. –  William Apr 3 '13 at 12:50
    
You could just copy code out of the requests module that does what you need. –  User Apr 3 '13 at 18:09
    
It's of course your decission. But if I can choose between packaging a high quality, well tested, "mission proved", ... library or my own custom code, I would always choose the first one. ;-) –  Achim Apr 3 '13 at 20:23

2 Answers 2

up vote 1 down vote accepted

I had a look at this module

class HTTPConnection:
    # ...
    def send(self, data): # line 820
        """Send `data' to the server.
        ``data`` can be a string object, a bytes object, an array object, a
        file-like object that supports a .read() method, or an iterable object.
        """

data is exactly body. You may pass an iterator like this: (I did not try it out)

def body():
  for fileName in fileList:
    # Add boundary and header
    yield('--' + boundary) + '\r\n'
    yield('Content-Disposition: form-data; name={0}; filename=    {0}'.format(fileName)) + '\r\n'

    fileType = mimetypes.guess_type(fileName)[0] or 'application/octet-stream'
    yield('Content-Type: {}'.format(fileType)) + '\r\n'
    yield('\r\n')

    with open(fileName) as f: 
        # Bad for large files
        yield f.read()
    yield('--'+boundary+'--') + '\r\n'
    yield('') + '\r\n'
share|improve this answer
    
This is a good idea, and works with a few modifications in 3.2 or 3.3. If an iterable is given to HTTPConnection.request or HTTPConnection.send then the content-length header also must be specified. However, I am using Python 3.1. Perhaps it is not feasible. –  William Apr 3 '13 at 12:58
    
What problem do you get with python 3.1? –  User Apr 3 '13 at 18:08
    
In 3.1 body cannot be an iterable. We actually have moved away from 3.1, so this answers my question. –  William Apr 3 '13 at 18:12

Take a look at small Doug Hellmann's urllib2, translated by me to python3.

I use it nearly this way:

import urllib.request
import urllib.parse
from lib.multipart_sender import MultiPartForm

myfile = open('path/to/file', 'rb')
form = MultiPartForm()
form.add_field('token', apipost[mycgi['domain']]._token)
form.add_field('domain', mycgi['domain'])
form.add_file('file', 'logo.jpg', fileHandle=myfile)
form.make_result()

url = 'http://myurl'
req1 = urllib.request.Request(url)
req1.add_header('Content-type', form.get_content_type())
req1.add_header('Content-length', len(form.form_data))
req1.add_data(form.form_data)
fp = urllib.request.urlopen(req1)
print(fp.read()) # to view status
share|improve this answer
    
Thank you, but the idea is to use the standard library. –  William Apr 3 '13 at 12:29

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