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I have a PHP with jQuery and jqGrd web application; one of the features of the application is the ability to upload files (on the client side this is handled by jqGrid) and insert the contents into a database. This all works. My problem is I also need to provide a command-line mechanism for manual (or automated) file uploads. So I have the following Python code. The code successfully logs into my API and I can see my POST data in PHP but I'm doing something wrong handling the file.

I need to POST the file in the same way it would be via the web interface... which results in PHP's $_FILES being populated. With my code below $_FILES is empty though. Not sure what I'm missing.

import base64
import cookielib
import getopt
import os
import sys
import urllib
import urllib2
import MultipartPostHandler

...code to process command line args, log into api, get sessionId...

#
# import
#
opener = urllib2.build_opener(MultipartPostHandler.MultipartPostHandler)
headers = {'Cookie': 'PHPSESSID=' + sessionId}

params = {
    'action': 'import', 
    'import': 'api', 
    'file': sourceFile, 
    'data': base64.b64encode(open(sourceFile, "rb").read()), 
    'id': id
}

urllib2.install_opener(urllib2.build_opener(MultipartPostHandler.MultipartPostHandler))
response = urllib2.urlopen(urllib2.Request(api, params, headers))

print response.read()

Probably important to know that sourceFile is simply a string supplied on the command-line; it is not the file itself. I think this is the problem. I am sending the filename string in params['name'] and its contents in params['data']. How do I send the file as if interactively submitting it from a web form and have it in params['file']? Is this what I need to do?

=== EDIT ===
I can't use any modules but what I have imported. Thanks for alternate suggestions such as Requests though.

share|improve this question
    
I think you don't need to specify data. try params = {'id':'id','file':open(sourceFile, 'rb')} –  Pixou Sep 26 '13 at 17:11
    
Then there will be no data. Again, sourceFile is a string - not the file itself (not a file object). –  user1801810 Sep 26 '13 at 17:13
    
personaly i would use github.com/kennethreitz/requests instead of urllib2 –  Foo Bar User Sep 26 '13 at 17:14
    
I had tried setting param['file'] to open(sourceFile, "rb") and that didn't work. –  user1801810 Sep 26 '13 at 17:15
    
@user1801810 : sourceFile is the file path, isn't it ? then open(sourceFile,'rb') would create a file object –  Pixou Sep 26 '13 at 17:16

1 Answer 1

up vote 1 down vote accepted

You probably don't need to specify data in the params, but just give a file object. try

params = {
    'id':'id',
    'file':open(sourceFile, 'rb')
}
share|improve this answer
    
That fixed my problem. Thank you. –  user1801810 Sep 26 '13 at 17:34

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