64

Assuming that I have a list with huge number of items.

l = [ 1, 4, 6, 30, 2, ... ]

I want to get the number of items from that list, where an item should satisfy certain condition. My first thought was:

count = len([i for i in l if my_condition(l)])

But if the my_condition() filtered list has also great number of items, I think that creating new list for filtered result is just waste of memory. For efficiency, IMHO, above call can't be better than:

count = 0
for i in l:
    if my_condition(l):
        count += 1

Is there any functional-style way to achieve to get the # of items that satisfy certain condition without generating temporary list?

Thanks in advance.

  • 3
    The choice between generators and lists is a choice between execution time and memory consumption. You would be surprised how often the results are counter intuitive if you profile the code. Premature optimization is the root of all evil. – Paulo Scardine Mar 13 '13 at 1:00
86

You can use a generator expression:

>>> l = [1, 3, 7, 2, 6, 8, 10]
>>> sum(1 for i in l if i % 4 == 3)
2

or even

>>> sum(i % 4 == 3 for i in l)
2

which uses the fact that int(True) == 1.

Alternatively, you could use itertools.imap (python 2) or simply map (python 3):

>>> def my_condition(x):
...     return x % 4 == 3
... 
>>> sum(map(my_condition, l))
2
  • 4
    More to the point, it uses the fact that True + True == 2 – mgilson Mar 13 '13 at 0:56
  • 1
    @mgilson: I don't think it ever does that computation -- start defaults to 0, so the first addition is True + 0, no? – DSM Mar 13 '13 at 0:58
  • 4
    Yes. Maybe I should be more clear ... It doesn't matter what int(True) is. int("1") == 1 also, but that doesn't mean you can do "1" + 0. What matters is how python evaluates integer + True or integer + False. – mgilson Mar 13 '13 at 1:00
  • 2
    @mgilson: hmm, okay, you've convinced me. – DSM Mar 13 '13 at 1:01
  • 4
    The point is that bool is a subclass of int and you so you can easily add bools and ints (with True having a value of 1 and False having a value of 0). – mgilson Mar 13 '13 at 1:02
16

You want a generator comprehension rather than a list here.

For example,

l = [1, 4, 6, 7, 30, 2]

def my_condition(x):
    return x > 5 and x < 20

print sum(1 for x in l if my_condition(x))
# -> 2
print sum(1 for x in range(1000000) if my_condition(x))
# -> 14

Or use itertools.imap (though I think the explicit list and generator expressions look somewhat more Pythonic).

Note that, though it's not obvious from the sum example, you can compose generator comprehensions nicely. For example,

inputs = xrange(1000000)      # In Python 3 and above, use range instead of xrange
odds = (x for x in inputs if x % 2)  # Pick odd numbers
sq_inc = (x**2 + 1 for x in odds)    # Square and add one
print sum(x/2 for x in sq_inc)       # Actually evaluate each one
# -> 83333333333500000

The cool thing about this technique is that you can specify conceptually separate steps in code without forcing evaluation and storage in memory until the final result is evaluated.

6

you could do something like:

l = [1,2,3,4,5,..]
count = sum(1 for i in l if my_condition(i))

which just adds 1 for each element that satisfies the condition.

6

This can also be done using reduce if you prefer functional programming

reduce(lambda count, i: count + my_condition(i), l, 0)

This way you only do 1 pass and no intermediate list is generated.

1
from itertools import imap
sum(imap(my_condition, l))
  • 1
    imap is not available with current Python. – Torsten Bronger Jun 1 at 17:58

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