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How can I send data with xmpppy using this method: http://xmpp.org/extensions/xep-0047.html#send

I suppose I should use IBB class but have no idea how to do it. http://xmpppy.sourceforge.net/apidocs/

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No, it is not standard message it is data, that should be sent by another way. xmpp.org/extensions/xep-0047.html#send –  Maria Jul 10 '12 at 9:37
    
can you describe what your goal is in a broader sense? –  Otto Allmendinger Jul 10 '12 at 9:39
    
I have cleared up your question - the base64 is beside the point –  Otto Allmendinger Jul 10 '12 at 9:49
    
Note: question is not a duplicate since this is about data transfer –  Otto Allmendinger Jul 10 '12 at 9:50
    
free to edit your question and write down what you have found out so far, it makes it more likely for people to help –  Otto Allmendinger Jul 10 '12 at 10:23

2 Answers 2

up vote 1 down vote accepted

First, if you're on GoogleTalk, ensure that the sender is on the receiver's roster. Next, on the sender side:

from xmpp import *
cl=Client('example.com')
cl.connect()
cl.auth('sender', 'sender_pass')
ibb = filetransfer.IBB()
ibb.PlugIn(cl)

f = open('/tmp/foo')
ibb.OpenStream('123', 'receiver@example.com/resource', f)

It doesn't matter what the stream ID is if you're not doing XEP-95/XEP-96 correctly first.

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What should I do if I don't want to send data from file? If it is just set of numbers or string? Should I write them to the file first or there is another way? –  Maria Jul 11 '12 at 9:13

I think something like that:

import StringIO
...
output = StringIO.StringIO()
output.write('String data')
output.close()


client.OpenStream('123', 'receiver@example.com/resource', output)
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