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I have a list of Booleans:

[True, True, False, False, False, True]

and I am looking for a way to count the number of True in the list (so in the example above, I want the return to be 3.) I have found examples of looking for the number of occurrences of specific elements, but is there a more efficient way to do it since I'm working with Booleans? I'm thinking of something analogous to all or any.

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up vote 45 down vote accepted

True is equal to 1.

>>> sum([True, True, False, False, False, True])
3
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11  
That is not idiomatic and makes "abuse" of the type coercion of bool. – Jan Segre Sep 4 '14 at 22:19
1  
@Jan Segre, there's no coercion, bool is an integer type. – panda-34 Mar 2 at 17:28
3  
@panda-34, I checked and issubclass(bool, int) in fact holds, so there is no coercion. – Jan Segre Mar 10 at 20:30

You can use sum():

>>> sum([True, True, False, False, False, True])
3
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If you are only concerned with the constant True, a simple sum is fine. However, keep in mind that in Python other values evaluate as True as well. A more robust solution would be to use the bool builtin:

>>> l = [1, 2, True, False]
>>> sum(bool(x) for x in l)
3

UPDATE: Here's another similarly robust solution that has the advantage of being more transparent:

>>> sum(1 for x in l if x)
3

P.S. Python trivia: True could be true without being 1. Warning: do not try this at work!

>>> True = 2
>>> if True: print('true')
... 
true
>>> l = [True, True, False, True]
>>> sum(l)
6
>>> sum(bool(x) for x in l)
3
>>> sum(1 for x in l if x)
3

Much more evil:

True = False
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Ok, I see your example, and I see what it's doing. Apart from the LOL-ness of it, is there actually a good reason to do what you've shown here? – acs Oct 7 '12 at 4:43
    
Yes, for the top part. As I indicated, the Python test for a "true " (as in an if statement) is more complicated than just testing for True. See docs.python.org/py3k/library/stdtypes.html#truth. The True = 2 was just to reinforce that the concept of "true" is more complex; with a little bit of extra code (i.e. using bool()) you can make the solution more robust and more general. – Ned Deily Oct 7 '12 at 5:03
3  
In Python 3, True and False are keywords and you can't change them. – ThePiercingPrince Aug 17 '13 at 13:57

I prefer len([b for b in boollist if b is True]) (or the generator-expression equivalent), as it's quite self-explanatory. Less 'magical' than the answer proposed by Ignacio Vazquez-Abrams.

Alternatively, you can do this, which still assumes that bool is convertable to int, but makes no assumptions about the value of True: ntrue = sum(boollist) / int(True)

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Your solution has at least two problems. One, it suffers from the same robustness issue; that you could fix by just changing the test to if b. But, more importantly, you are constructing a throwaway list requiring all values to be in memory at once and you can't use len with a generator expression. Better to avoid such practices so that the solution can scale. – Ned Deily Oct 7 '12 at 4:29
    
@Ned Deily :if b is exactly wrong. It would only be correct if the question was about items that evaluate as True, rather than actual True booleans. I take your second point though. In that case there's the variant sum(1 if b is True else 0 for b in boollist). – kampu Oct 8 '12 at 6:24
    
As I noted elsewhere, it's not clear to me from the question whether the OP really means to count only objects of type bool with the value 1 or means the larger and generally more useful set of values that evaluate true. If the former, then an identity test is the right approach but it's also limiting. Objects of type bool are rather odd ducks in Python anyway, a relatively recent addition to the language. In any case I'd go for the simpler: sum(1 for b in boollist if b is True) – Ned Deily Oct 8 '12 at 7:16

list has a count method:

>>> [True,True,False].count(True)
2
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I can't count False values if there is 0 value also – Kostanos Aug 20 '15 at 18:55

It is safer to run through bool first. This is easily done:

>>> sum(map(bool,[True, True, False, False, False, True]))
3

Then you will catch everything that Python considers True or False into the appropriate bucket:

>>> allTrue=[True, not False, True+1,'0', ' ', 1, [0], {0:0}, set([0])]
>>> list(map(bool,allTrue))
[True, True, True, True, True, True, True, True, True]

If you prefer, you can use a comprehension:

>>> allFalse=['',[],{},False,0,set(),(), not True, True-1]
>>> [bool(i) for i in allFalse]
[False, False, False, False, False, False, False, False, False]
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Just for completeness' sake (sum is usually preferable), I wanted to mention that we can also use filter to get the truthy values. In the usual case, filter accepts a function as the first argument, but if you pass it None, it will filter for all "truthy" values. This feature is somewhat surprising, but is well documented and works in both Python 2 and 3.

The difference between the versions, is that in Python 2 filter returns a list, so we can use len:

>>> bool_list = [True, True, False, False, False, True]
>>> filter(None, bool_list)
[True, True, True]
>>> len(filter(None, bool_list))
3

But in Python 3, filter returns an iterator, so we can't use len, and if we want to avoid using sum (for any reason) we need to resort to converting the iterator to a list (which makes this much less pretty):

>>> bool_list = [True, True, False, False, False, True]
>>> filter(None, bool_list)
<builtins.filter at 0x7f64feba5710>
>>> list(filter(None, bool_list))
[True, True, True]
>>> len(list(filter(None, bool_list)))
3
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