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Hi there on a Saturday Fun Night,

I am getting around in python and I am quite enjoying it.

Assume I have a python array:

x = [1, 0, 0, 1, 3]

What is the fastest way to count all non zero elements in the list (ans: 3) ? Also I would like to do it without for loops if possible - the most succint and terse manner possibe, say something conceptually like

[counter += 1 for y in x if y > 0]

Now - my real problem is that I have a multi dimensional array and what I really want to avoid is doing the following:

for p in range(BINS):
    for q in range(BINS):
        for r in range(BINS):
            if (mat3D[p][q][r] > 0): some_feature_set_count += 1

From the little python I have seen, my gut feeling is that there is a really clean syntax (and efficient) way how to do this.

Ideas, anyone?

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7 Answers 7

up vote 10 down vote accepted

For the single-dimensional case:

sum(1 for i in x if i)

For the multi-dimensional case, you can either nest:

sum(sum(1 for i in row if i) for row in rows)

or do it all within the one construct:

sum(1 for row in rows
      for i in row if i)
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1  
+1 for dominating the syntax. @original poster: as for efficiency, your code is as efficient as you can get. It has the minimum complexity, both spatial and temporal, requiered for the task (if you are using Python < 3.0, use xrange instead of range, though) Also, I personally feel your code, though longer and less pythonesque, is much clearer than any syntactic trick. –  uʍop ǝpısdn Nov 27 '10 at 23:44
    
Something that also works (because True == 1) is sum(bool(i) for i in x) .. but its more useful for counting with other predicates like i>0 –  Jochen Ritzel Nov 28 '10 at 0:51
    
@Santiago You should time the two alternatives. This will probably smoke OP's code. –  aaronasterling Nov 28 '10 at 0:51
    
@THC4k: It will work, but it isn't as efficient (especially for a sparse matrix) because it has to yield a value for every element. –  Marcelo Cantos Nov 28 '10 at 0:58
1  
@Santiago: Back on topic, list comprehensions are idiomatic Python and I think users should be taught how to use them from day one, since they result in much cleaner, and often more efficient code. I always teach people this stuff as early as possible and I find that, though they have to go through a brief mental readjustment, they invariably become better programmers in the process, producing better code with less effort. –  Marcelo Cantos Nov 28 '10 at 14:03

If you are using numpy as suggested by the fact that you're using multi-dimensional arrays in Python, the following is similar to @Marcelo's answer, but a tad cleaner:

>>> a = numpy.array([[1,2,3,0],[0,4,2,0]])
>>> sum(1 for i in a.flat if i)
5
>>>
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If you have numpy, you can just write np.sum(a) (assuming the conventional import numpy as np). –  Marcelo Cantos Aug 7 '13 at 23:36

While perhaps not concise, this is my choice of how to solve this which works for any dimension:

def sum(li):
  s = 0
  for l in li:
    if isinstance(l, list):
      s += sum(l)
    elif l:
      s += 1
  return s
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2  
You really shouldn't shadow sum. It's a builtin. –  aaronasterling Nov 28 '10 at 2:12
def zeros(n):
    return len(filter(lambda x:type(x)==int and x!=0,n))+sum(map(zeros,filter(lambda x:type(x)==list,n)))

Can't really say if it is the fastest way but it is recursive and works with N dimensional lists.

zeros([1,2,3,4,0,[1,2,3,0,[1,2,3,0,0,0]]]) => 10
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I would have slightly changed Marcelo's answer to the following:

len([x for x in my_list if x != 0])

The sum() above tricked me for a second, as I thought he was getting the total value instead of count until I seen the 1 hovering at the start. I'd rather be explicit with len().

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That requires O(N) space, which is not ideal for large arrays, plus it's invalid Python syntax. I think you meant x != 0. –  Marcelo Cantos Nov 28 '10 at 0:45
    
the use of sum for counting elements is pretty idiomatic. You should get used to it so that you don't have to construct lists just to throw them away like you do here. Also, I think you mean x is not 0 which should really be x != 0 which, itself should really be x –  aaronasterling Nov 28 '10 at 0:48
    
Both fair points, thanks for the heads up. Changed the condition but left the len so others can see what not to do. List comprehensions are generators right? I may have forgotten that point. –  Josh Smeaton Nov 28 '10 at 0:52

Using chain to reduce array lookups:

from itertools import chain
BINS = [[[2,2,2],[0,0,0],[1,2,0]],
        [[1,0,0],[0,0,2],[1,2,0]],
        [[0,0,0],[1,1,1],[1,3,0]]]
sum(1 for c in chain.from_iterable(chain.from_iterable(BINS)) if c > 0)
14

I haven't done any performance checks on this. But it doesn't use any significant memory. Note that it is using a generator expression, not a list comprehension. Adding the [list comprehension] syntax will create an array to be summed instead of feeding one number at a time to sum.

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If you go with numpy and your 3D array is a numpy array, this one-liner will do the trick:

numpy.where(your_array_name != 0, 1, 0).sum()

example:

In [23]: import numpy

In [24]: a = numpy.array([ [[0, 1, 2], [0, 0, 7], [9, 2, 0]], [[0, 0, 0], [1, 4, 6], [9, 0, 3]], [[1, 3, 2], [3, 4, 0], [1, 7, 9]] ])

In [25]: numpy.where(a != 0, 1, 0).sum()
Out[25]: 18
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