107

How to return False if all elements are in a list are False?

The given list is:

data = [False, False, False]

5 Answers 5

194

Using any:

>>> data = [False, False, False]
>>> not any(data)
True

any will return True if there's any truth value in the iterable.

9
  • 11
    @Ajay, To use all: all(not x for x in data)
    – falsetru
    Jun 28, 2015 at 12:04
  • Note: this won't work if you are including non-boolean data in the array.
    – Static
    Jun 28, 2015 at 12:06
  • 1
    @HaroldSeefeld, Try not any([0, 0, 0])
    – falsetru
    Jun 28, 2015 at 12:08
  • 3
    @HaroldSeefeld it will, python can test the truthiness of all built in types
    – maniexx
    Jun 28, 2015 at 12:09
  • 2
    0, [], {},()..etc are all False non-boolean data..:)
    – Iron Fist
    Jun 28, 2015 at 12:11
40

Basically there are two functions that deal with an iterable and return True or False depending on which boolean values elements of the sequence evaluate to.

  1. all(iterable) returns True if all elements of the iterable are considered as true values (like reduce(operator.and_, iterable)).

  2. any(iterable) returns True if at least one element of the iterable is a true value (again, using functional stuff, reduce(operator.or_, iterable)).

Using the all function, you can map operator.not_ over your list or just build a new sequence with negated values and check that all the elements of the new sequence are true:

>>> all(not element for element in data)

With the any function, you can check that at least one element is true and then negate the result since you need to return False if there's a true element:

>>> not any(data)

According to De Morgan's law, these two variants will return the same result, but I would prefer the last one (which uses any) because it is shorter, more readable (and can be intuitively understood as "there isn't a true value in data") and more efficient (since you don't build any extra sequences).

1
  • 8
    The any() solution will stop as soon as it finds a True value and so will usually be faster. Jun 28, 2015 at 12:48
1

Here is another approach using the generator expression:

data = [False, False, False]
try:
    out = next(elt for elt in data if elt) # holds the value of first non-empty element
except StopIteration:
    print("all elements are empty")

data = [[], [], [1], [2]]
try:
    out = next(elt for elt in data if elt) # [1]
except StopIteration:
    print("all elements are empty")
1

We all know that False is also considered 0, So if sum of all elements is 0, which means all elements within list are False.
But since you want:

to return 'false' because all elements are 'false'

To do that use negation operator not or !.

data = [False, False, False]
print(sum(data)!=0) #False
0

True and False are the Boolean representations of 0 and 1. True = 1 and Flase = 0

data = [False, False, False]    
if sum(data)== 0:
   return False
if sum(data) == len(data):
   return True

sum(data) represents the addition of 1 and 0 with respective values of True(1) and False(0) in a list.

In the case of all False sum is 0, and in the case of all True sum is equal to the length of the list. any sum value other than 0 & 1 means not all is False or True.

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