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One of the pycon2011 talks shared this any() function trick; the explanation was that the loop is in C.

Could someone explain more about it? What is the trick behind it and is there any other use cases?

>>> import itertools, hashlib, time
>>> _md5 = hashlib.md5()
>>> def run():
...   for i in itertools.repeat('foo', 10000000):
...     _md5.update(i)
... 
>>> a = time.time(); run(); time.time() -a
3.9815599918365479
>>> _md5 = hashlib.md5()
>>> def run():
...   any(itertools.imap(_md5.update, itertools.repeat('foo', 10000000)))
... 
>>> a = time.time(); run(); time.time() -a
2.1475138664245605
>>> 
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perhaps if you posted a link to the video. –  MK. Oct 19 '11 at 2:52
    
    
Possibly duplicate question stackoverflow.com/questions/2012611/… –  Shashi Oct 19 '11 at 3:51
    
you don't need any, in fact filter(_md5.update, itertools.repeat('foo', 10000000)) would be even faster. –  tomasz Oct 21 '11 at 0:01
    
@tomasz could you please tell me why it is even faster? –  alexband Oct 21 '11 at 6:56
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2 Answers

itertools.imap creates a lazy list which contains the function to be evaluated (md5) and it's argument ('foo' string). The md5 calls are not evaluated at this point but prepared along with their arguments (I think they are called thunks). When you then pass this iterator to any function, it goes through all the elements evaluating them. This happens faster than explicit Python evaluation from the first program, because any is implemented in C and everything happens in the C library code without returning to the interpreter after each iterator element.

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