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I have 3 lists:

a = [True, False, True]
b = [False, False, True]
c = [True, True, False]

When I type

a or b or c

I want to get back a list that's

[True, True, True]

but I'm getting back

[True, False, True]

Any ideas on why? And how can I combine these masks?

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a is true... and thats what you get. –  corn3lius Nov 17 '13 at 4:21

5 Answers 5

up vote 4 down vote accepted

Your or operators are comparing the lists as entire objects, not their elements. Since a is not an empty list, it evaluates as true, and becomes the result of the or. b and c are not even evaluated.

To produce the logical OR of the three lists position-wise, you have to iterate over their contents and OR the values at each position. To convert a bunch of iterables into a list of their grouped elements, use zip(). To check if any element in an iterable is true (the OR of its entire contents), use any(). Do these two at once with a list comprehension:

mask = [any(tup) for tup in zip(a, b, c)]
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1  
Great answer, thanks! In case anyone is wondering, to check if all elements are True, use all() instead of any(). –  bard Nov 17 '13 at 4:31

or returns the first operand if it evaluates as true, and a non-empty list evaluates as true; so, a or b or c will always return a if it's a non-empty list.

Probably you want

[any(t) for t in zip(a, b, c)]

(this works also for element-wise and if you replace any with all)

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I see, that makes sense... –  bard Nov 17 '13 at 4:22

a is treated as true because it contains values; b, c is not evaluated.

>>> bool([])
False
>>> bool([True])
True
>>> bool([False])
True

>>> [False] or [True]
[False]

According to Boolean Operations:

The expression x or y first evaluates x; if x is true, its value is returned; otherwise, y is evaluated and the resulting value is returned.

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How about this:

from numpy import asarray as ar

a = [True, False, True]
b = [False, False, True]
c = [True, True, False]

Try:

>>> ar(a) | ar(b) | ar(c)                  #note also the use `|` instead of `or`
array([ True, True, True], dtype=bool)

So no need for zip etc.

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You need to convert back from array to list at the end there, but definitely a nice idea! –  Josh Caswell Nov 17 '13 at 21:28
    
Good alternative solution for those who are already using numpy data structures. It's probably not worth the conversion from list->array->list (plus the overhead of loading the numpy module) just for this. –  IceArdor Nov 20 '13 at 8:52

Try this:

a = [True, False, True]
b = [False, False, True]
c = [True, True, False]

res = [a[i] or b[i] or c[i] for i in range(len(a))]
print res
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6  
Iterate directly rather than by index: [any(tup) for tup in zip(a, b, c)] –  Josh Caswell Nov 17 '13 at 4:22
    
Rather than iterating by index (not pythonic), use either zip(a,b,c) or map(None,a,b,c) (if a,b,c are different sizes). –  IceArdor Nov 20 '13 at 8:56

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