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If I have a list with say 10 million objects, how do I filter the list quickly. It takes about 4-5 seconds for a complete iteration thru a list comprehension. Are there any efficient data structures or libraries for this in python? Or is python not suited for large sets of data?

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Why is it a list? You have other choices. A mapping of some kind is probably much, much smarter than a flat list. What is your real problem? – S.Lott Jan 26 '11 at 2:18
or is your filtering function slow? – Jochen Ritzel Jan 26 '11 at 2:24
up vote 2 down vote accepted

Itertools is designed for efficient looping. Particularly, you might find that ifilter suits your purpose. Iterating through large data structures is always expensive, but if you only need some of the data at a time lazy evaluation can help a lot.

You can also try using generator expressions, which are usually identical to their list comprehension counterparts (though usage can be different) or a generator, which also have the benefits of lazy evaluation.

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If you have uniform types of numbers & if speed is your primary goal (and you want to use python), use a Numpy array.

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How do we know his objects are numbers? – Fred Nurk Jan 26 '11 at 2:24
I don't. I'll qualify my answer. – Gerrat Jan 26 '11 at 2:25

Even using the builtin functions on a very primitive integer array takes several seconds to evaluate on my computer.

>>> l=[1]*10000000
>>> s=filter(lambda x:True,l)

I'd suggest you using a different approach such as using Numpy or lazy evaluation with generators and/or using iteration module itertools

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