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I'm processing tweets with tweepy:

class StdOutListener(StreamListener):
    def on_data(self, data):
        return True

l = StdOutListener()
stream = Stream(auth, l)

The process function gets contents of URLs (with requests) included into tweets, processes the data with nltk (I guess this uses a bit of CPU) and saves the result into Mongo.

The problem is that getting contents of included URLs takes long time and hence limits my processing speed. How do I pythonically speed this thing up?

share|improve this question
up vote 1 down vote accepted

You can use python's 'threading' module:

import threading
class YourThreadSubclass(threading.Thread):
    def __init__(self,your_args):
            #do whatever setup you want
    def run(self):

threads = [YourThreadSubclass(args) for args in Iterable]
for t in threads:
for t in threads:
return reduce(combiner, (t.result_field for t in threads))

More info here:

edit: More directly, you could fork off a thread whenever on_data is called.

def on_data(self, data):

The forked thread would store its results asynchronously.

If you're dealing with a lot of requests, you might also want to use a thread pool to manage your threads. Docs here

share|improve this answer
I don't have any Iterable here, StreamListener treats incoming tweets as events, calls on_data function and blocks until it's done. I'm not sure about how should I adapt your example to my case. – Moonwalker Sep 17 '13 at 21:51
Edited for clarification. – akn320 Sep 18 '13 at 23:04

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