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count_element_has_1 = 0
count_all_0 = 0   

my_list = [[0,0,1],[1,1,0,1],[0,0,0,0]]

i want to check if each element of the list has at least 1 then add +1 to count_element_has_1 and if they are all 0 then add +1 to count_all_0

so in this case it would look like

count_element_has_1 = 2
count_all_0 = 1
share|improve this question
    
the only way i know how to do is to add it for each value of 1 and that's not what i want – O.rka Feb 14 '13 at 22:13
up vote 2 down vote accepted
for lst in my_list:
    if 1 in lst:
       count_element_has_1 += 1
    elif lst.count(0) == len(lst):
       count_all_0 += 1

Depending on the lists, the second condition might be better to do something like:

elif all(x==0 for x in lst):
    count_all_0 += 1

Since that allows for short-circuiting.

share|improve this answer
2  
+1, Alternatively, in horrific one-liner mode: count_element_has_1, count_all_0 = map(sum, zip(*((1 in l, all(i == 0 for i in l)) for l in my_list))) – Gareth Latty Feb 14 '13 at 22:16
2  
@Lattyware -- I'm not sure whether to be impressed, or to throw my laptop at you ... – mgilson Feb 14 '13 at 22:19
1  
I did say horrific. – Gareth Latty Feb 14 '13 at 22:28

You could use the sum function, combined with list comprehensions.

If the lists can contain other numbers than 0 and 1, try this:

count_has_1 = sum(1 for element in my_list if 1 in element)
count_all_0 = sum(1 for element in my_list if all(e == 0 for e in element))

If you know for sure that the lists contain only 0 and 1, you could also do this:

count_has_1 = sum(map(any, my_list))
count_all_0 = len(my_list) - count_has_1

The first line is using the fact that Python interprets 1 and 0 as True and False, and vice versa, by first mapping each sublist to whether any of the values is true, e.g. [0,1,0] -> True, and then summing up the resulting list of booleans, e.g. [True, False, True] -> 2.

share|improve this answer
    
As a note, this does mean multiple loops, which isn't as good, performance-wise. – Gareth Latty Feb 14 '13 at 22:27
    
@tobias_k count_has_1 = sum(1 in element for element in my_list) works – eyquem Feb 15 '13 at 0:21
    
@eyquem Ah, right. The magic of interpreting integers as booleans, and booleans as integers... how about this one? count_has_1 = sum(map(any, my_list)) (assuming all numbers are either 1 or 0). – tobias_k Feb 15 '13 at 13:04
    
@tobias_k I think it's perfect. Non-zero elements don't have even to be only digits 1. I think you should rewrite your answer with only: count_has_1 = sum(map(any, my_list)) and count_all_0 = len(my_list) - count_has_1 and then I would upvote it and ask @dracontheOry to accept it ! – eyquem Feb 15 '13 at 14:30
    
@eyquem Edited. Still, we should keep the case for other numbers than 0 and 1, as otherwise a list like [0,2,3] would be counted towards count_has_1 as well. – tobias_k Feb 15 '13 at 14:45

You can use collections.Counter(), O(N^2) complexity:

In [22]: lis=[[0,0,1],[1,1,0,1],[0,0,0,0]]

In [23]: from collections import Counter

In [24]: count_element_has_1 = 0

In [25]: count_all_0 = 0

In [26]: for x in lis:
    c=Counter(x)
    if c[0]==len(x):
        count_all_0 +=1
    elif c[1]>0:    
        count_element_has_1 +=1
   ....:         

In [27]: count_element_has_1
Out[27]: 2

In [28]: count_all_0
Out[28]: 1
share|improve this answer
my_list = [[0,0,1],[1,1,0,1],[0,0,0,0],[4,0,88]]
#
count_has_1 = sum(1 in sub for sub in my_list)
print count_has_1 # prints 2
#
count_all_0 = sum(not any(sub) for sub in my_list)
print count_all_0 # prints 1

.

If there are only 0 and 1 in the sublists, it's useless to count the two categories:

my_list = [[0,0,1],[1,1,0,1],[0,0,0,0]]
#
count_has_non0 = sum(map(any,my_list))
print count_has_non0 # prints 2
#
print len(my_list) - count_has_1  # prints 1
share|improve this answer

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