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Most concise way to check whether a list is empty or contains only None?

I understand that I can test:

if MyList:
    pass

and:

if not MyList:
    pass

but what if the list has an item (or multiple items), but those item/s are None:

MyList = [None, None, None]
if ???:
    pass
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4 Answers 4

up vote 15 down vote accepted

One way is to use all and a list comprehension:

if all(e is None for e in myList):
    print('all empty or None')

This works for empty lists as well. More generally, to test whether the list only contains things that evaluate to False, you can use any:

if not any(myList):
    print('all empty or evaluating to False')
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1  
It should be e is None. –  nikow Aug 13 '09 at 10:01
    
That is probably more efficient, yes, but using == is not wrong. –  Stephan202 Aug 13 '09 at 10:17
    
Small note: The link to all is actually to any... –  Mr Shark Aug 13 '09 at 11:11
4  
Using == could be wrong if type(x).__eq__() is broken. –  ilya n. Aug 13 '09 at 12:39
    
@ilya: good point! –  Stephan202 Aug 13 '09 at 15:11

You can use the all() function to test is all elements are None:

a = []
b = [None, None, None]
all(e is None for e in a) # True
all(e is None for e in b) # True
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You can directly compare lists with ==:

if x == [None,None,None]:

if x == [1,2,3]
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If you are concerned with elements in the list which evaluate as true:

if mylist and filter(None, mylist):
    print "List is not empty and contains some true values"
else:
    print "Either list is empty, or it contains no true values"

If you want to strictly check for None, use filter(lambda x: x is not None, mylist) instead of filter(None, mylist) in the if statement above.

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