34

I'm trying to count things that are not None, but I want False and numeric zeros to be accepted too. Reversed logic: I want to count everything except what it's been explicitly declared as None.

Example

Just the 5th element it's not included in the count:

>>> list = ['hey', 'what', 0, False, None, 14]
>>> print(magic_count(list))
5

I know this isn't Python normal behavior, but how can I override Python's behavior?

What I've tried

So far I founded people suggesting that a if a is not None else "too bad", but it does not work.

I've also tried isinstance, but with no luck.

8 Answers 8

56

Just use sum checking if each object is not None which will be True or False so 1 or 0.

lst = ['hey','what',0,False,None,14]
print(sum(x is not None for x in lst))

Or using filter with python2:

print(len(filter(lambda x: x is not None, lst))) # py3 -> tuple(filter(lambda x: x is not None, lst))

With python3 there is None.__ne__() which will only ignore None's and filter without the need for a lambda.

sum(1 for _ in filter(None.__ne__, lst))

The advantage of sum is it lazily evaluates an element at a time instead of creating a full list of values.

On a side note avoid using list as a variable name as it shadows the python list.

3
  • 1
    The second approach fails in Python 3 in TypeError: object of type 'filter' has no len() Commented Jan 24, 2017 at 2:27
  • @SeppoEnarvi. that is because filter in python3 returns a filter object which is an iterator, not a list. I added another way specific to py3 to filter None's. Commented Jan 24, 2017 at 11:17
  • Thank you! I didn't realize you could use a "list comprehension" like that. One clarification - I actually found it worked better without print(). Just use sum(x is not None for x in lst) so it returns an int not NoneType.
    – JJAN
    Commented Oct 24, 2019 at 15:03
19

Two ways:

One, with a list expression

len([x for x in lst if x is not None])

Two, count the Nones and subtract them from the length:

len(lst) - lst.count(None)
3
  • I think your first solution is the most Pythonic and should be the accepted answer
    – drkvogel
    Commented Jun 4, 2020 at 2:47
  • 1
    your second option should be used more. it's just faster
    – CyanBook
    Commented Jul 24, 2020 at 22:20
  • The second option does not work when one element of the list is e.g. a numpy array. [np.array([1, 2, 3, None]), None, 1].count(None) will get you ValueError: The truth value of an array with more than one element is ambiguous. Use a.any() or a.all().
    – Paloha
    Commented Jun 3, 2022 at 7:35
4
lst = ['hey','what',0,False,None,14]
print sum(1 for i in lst if i != None)
3
  • 1
    This is how to count how many list elements are not equal to None.
    – alexis
    Commented Apr 2, 2015 at 21:58
  • The author wants to count things that are not None. In Python statements obj != None and obj is not None are equivalent.
    – kvorobiev
    Commented Apr 2, 2015 at 22:03
  • Yes, and you're the only one who's not counting False as zero. (That was praise, not a correction ;-)
    – alexis
    Commented Apr 2, 2015 at 22:04
2

You could use Counter from collections.

from collections import Counter

my_list = ['foo', 'bar', 'foo', None, None]

resulted_counter = Counter(my_list) # {'foo': 2, 'bar': 1, None: 2}

resulted_counter[None] # 2
1

I recently released a library containing a function iteration_utilities.count_items (ok, actually 3 because I also use the helpers is_None and is_not_None) for that purpose:

>>> from iteration_utilities import count_items, is_not_None, is_None
>>> lst = ['hey', 'what', 0, False, None, 14]
>>> count_items(lst, pred=is_not_None)  # number of items that are not None
5

>>> count_items(lst, pred=is_None)      # number of items that are None
1
1

Use numpy for large arrays

import numpy as np

mylist = np.array(['hey', 'what', 0, False, None, 14])
print(sum(mylist != None))
0

I needed to make sure that only one param was send on each call. Therefore at least 2 of the variables must be None and this worked for me.

a_list = [param_1, param_2, param_3] 
count = a_list.count(None) 
if count < 2:
    raise error
0

im pretty sure that using the length of the list minus the number of Nones here sould be the best option for performance and simplicity

>>> list = ['hey', 'what', 0, False, None, 14]
>>> print(len(list) - list.count(None))
5

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