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I'm running an offline script which posts to facebook using pyfacebook. Today, I ran it and found that checking permissions(hasAppPermission) and stream_publish were failing. This is code that was working last week(for the last few months actually). It seem that now I get "Error 102: Requires a valid user is specified (either via the session or via the API parameter for specifying the user." even though I still am specifying a user for both the permissions check and the stream_publish. Seems like something has changed on the facebook side.

So I started experimenting with the new python sdk from facebook which uses the graph api. MY issue is that my posts contains an mp3 and the new graph API doesn't seem to have a way(yet) to do this.

So it seems I can't use the old rest api by using pyfacebook and I can't post mp3's using the new graph api so what can I do or is there something I don't know about the new graph api that I'm missing and could solve my issue.

Cheers,

D

I used the following:

def send_request(url, data):

data = urllib.urlencode(data)

req = urllib2.Request(url, data)
response = urllib2.urlopen(req)
return response.read()

and then my post function looks like so:

def post(message, access_token, logging):

data = {}  
data['message'] = message['body']    

if message.get('attachment') is not None:
    data['attachment'] = message['attachment']    

if message.get('action_links') is not None:
    data['action_links'] = message['action_links']

logging.info('sending to facebook with user id: %s' % str(access_token))

url = 'https://api.facebook.com/method/stream.publish?access_token=%s' % access_token

r = send_request(url, data)

xml = minidom.parseString(r)

logging.info('facebook response %s'  % r)

element_name = xml.firstChild.nodeName

if element_name != 'error_response':
    return True
else:
    return False

as you can see I just append the access_token the to url. I hope this helps someone else.

share|improve this question
1  
Indeed, i've tried attaching stuff to posts and the new API doesn't accept that yet. –  Jorge Nov 19 '10 at 1:04
    
I actually figured out by doing the following. I wrote a small function called send_request defined as follows:data = urllib.urlencode(data) req = urllib2.Request(url, data) response = urllib2.urlopen(req) return response.read() –  deecodameeko Jan 3 '11 at 16:11
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closed as too localized by Robert Harvey Jan 5 '12 at 0:35

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