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I am trying to find whether any number from one list exists in another list. I am doing it in following way:

print any([20.0,0.0,19.0,1.0]) in [20.0,0.0]

This prints

False

Whereas it should be

True

Can anyone explain why is this happening?

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Well, that's a bit different to the usual "why is 0 == 1 or 2 or 3 true?" –  lvc Nov 26 '13 at 8:17

3 Answers 3

up vote 6 down vote accepted

Because that's not what any does. any takes an iterable of values, interprets them as booleans, and returns a boolean indicating whether any of them were True. At least one of [20.0, 0.0, 19.0, 1.0] is nonzero, which means it counts as True, so any([20.0, 0.0, 19.0, 1.0]) evaluates to True, and your print statement is equivalent to print True in [20.0, 0.0]. Which is itself False.

To do this with any, use a generator expression:

print any(x in [20.0, 0.0] for x in [20.0, 0.0, 19.0, 1.0])

If you're doing this for any significant number of values, you'll get major performance improvements from using a set. in on a list is linear with the length of the list, while in on a set is constant time.

targets_set = set([20.0, 0.0])
print any(x in targets_set for x in [20.0, 0.0, 19.0, 1.0])
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any returns True if any item in the iterable is true. (non-zero number is true).

>>> any([20.0,0.0,19.0,1.0])
True

any([20.0,0.0,19.0,1.0]) in [20.0,0.0] is like True in [20.0, 0.0].

To get what you want, try following (using generator expression).

>>> any(n in [20.0, 0.0] for n in [20.0, 0.0, 19.0, 1.0])
True
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Nice explanation :) –  Games Brainiac Nov 26 '13 at 8:13

You could also create difference between two sets and check if there is any element in result set

intersection = set([20.0,0.0,19.0,1.0]) & set([20.0,0.0])
print (len(intersection) > 0)

set([20.0,0.0,19.0,1.0]) & set([20.0,0.0]) creates new set set([0.0, 20.0]) which contains elements which are in both left and right set and len(intersection) > 0 returns True if there is at least one element in iterable (in this case set)

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1  
Unless I'm overlooking something, that returns True iff there is at least one element in the left hand set that isn't in the right hand set. The OP asked for a way to tell whether there is at least one element in the left hand set that is in the right hand set. –  Peter DeGlopper Nov 26 '13 at 8:12
    
any isn't true if "there is at least one element" - it is true if there is at least one truthy element; try any({0}). You want bool(...), which is true if and only if the set is non-empty. But even then, this won't actually do what the OP wants: the whole expression is true if there is at least one element in the first set that isn't in the second. bool({1} - {0}) is true but it should be false; bool({1,2} - {1,2,3}) is false when it should be true. –  lvc Nov 26 '13 at 8:13
    
Yup, did not read well what is required, and made incorrect statement about any func. For example this will return false negative print any([0.0]). Thanks for point me out my answer is incorrect. I have changed it, I hope its ok now –  Igor Nov 26 '13 at 8:22
    
The set intersection method should work - although I'd just call bool(intersection) rather than bother looking up the length. It doesn't short-circuit, unlike any, but the set implementation is quite fast so I hesitate to say that it would be slower without profiling. –  Peter DeGlopper Nov 26 '13 at 8:24
    
Yup, just wanted to provide different approach to the problem and in hurry made stupid mistake with any. I gave upvote for both other answers –  Igor Nov 26 '13 at 8:26

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