Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Given an item, how to count its occurrences in a list in Python?

share|improve this question
add comment

9 Answers

up vote 236 down vote accepted
>>> [1, 2, 3, 4, 1, 4, 1].count(1)
3
share|improve this answer
add comment

If you are using Python 2.7 or 3 and you want number of occurrences for each element:

>>> from collections import Counter
>>> z = ['blue', 'red', 'blue', 'yellow', 'blue', 'red']
>>> Counter(z)
Counter({'blue': 3, 'red': 2, 'yellow': 1})
share|improve this answer
18  
You just made my week. Thank you. –  Peter McMahan Aug 25 '11 at 19:16
14  
+1 for collections, amazingly underused –  danodonovan Jun 11 '12 at 13:22
1  
Counter(z).most_common(n) will list elements and counts as tuples in decreasing order, where n is the number of elements to list. Omit n to list everything. –  davidjb Apr 2 at 0:24
1  
sometimes scrolling down really pays off. thanks! –  multiphrenic Apr 11 at 17:26
add comment

list.count(x) returns the number of times x appears in a list

see: http://docs.python.org/tutorial/datastructures.html#more-on-lists

share|improve this answer
add comment

Another way to get the number of ocurrences of each item:

dict((i,a.count(i)) for i in a)
share|improve this answer
11  
this looks like one of the constructs I often come up with in the heat of the battle, but it will run through a len(a) times which means quadratic runtime complexity (as each run depends on len(a) again). –  Nicolas78 Oct 10 '12 at 0:30
    
Very beautiful, thank you! –  Michael Dorner Jan 6 '13 at 15:50
1  
would dict((i,a.count(i)) for i in set(a)) be more correct and faster? –  hugo24 Aug 23 '13 at 9:20
1  
@hugo24: A bit, but it won't be asymptotically faster in the worst case; it will take n * (number of different items) operations, not counting the time it takes to build the set. Using collections.Counter is really much better. –  Clément Oct 7 '13 at 9:46
add comment
# Python >= 2.6 (defaultdict) && < 2.7 (Counter, OrderedDict)
from collections import defaultdict
def count_unsorted_list_items(items):
    """
    :param items: iterable of hashable items to count
    :type items: iterable

    :returns: dict of counts like Py2.7 Counter
    :rtype: dict
    """
    counts = defaultdict(int)
    for item in items:
        counts[item] += 1
    return dict(counts)


# Python >= 2.2 (generators)
def count_sorted_list_items(items):
    """
    :param items: sorted iterable of items to count
    :type items: sorted iterable

    :returns: generator of (item,count) tuples
    :rtype: generator
    """
    if not items:
        return
    elif len(items) == 1:
        yield (items[0], 1)
        return
    prev_item = items[0]
    count = 1
    for item in items[1:]:
        if prev_item == item:
            count += 1
        else:
            yield (prev_item, count)
            count = 1
            prev_item = item
    yield (item, count)
    return


import unittest
class TestListCounters(unittest.TestCase):
    def test_count_unsorted_list_items(self):
        D = (
            ([], []),
            ([2], [(2,1)]),
            ([2,2], [(2,2)]),
            ([2,2,2,2,3,3,5,5], [(2,4), (3,2), (5,2)]),
            )
        for inp, exp_outp in D:
            counts = count_unsorted_list_items(inp) 
            print inp, exp_outp, counts
            self.assertEqual(counts, dict( exp_outp ))

        inp, exp_outp = UNSORTED_WIN = ([2,2,4,2], [(2,3), (4,1)])
        self.assertEqual(dict( exp_outp ), count_unsorted_list_items(inp) )


    def test_count_sorted_list_items(self):
        D = (
            ([], []),
            ([2], [(2,1)]),
            ([2,2], [(2,2)]),
            ([2,2,2,2,3,3,5,5], [(2,4), (3,2), (5,2)]),
            )
        for inp, exp_outp in D:
            counts = list( count_sorted_list_items(inp) )
            print inp, exp_outp, counts
            self.assertEqual(counts, exp_outp)

        inp, exp_outp = UNSORTED_FAIL = ([2,2,4,2], [(2,3), (4,1)])
        self.assertEqual(exp_outp, list( count_sorted_list_items(inp) ))
        # ... [(2,2), (4,1), (2,1)]
share|improve this answer
3  
This is a bit "enterprisey"... –  plaes Aug 14 '11 at 8:58
1  
@Wes Turner Happily, you use Python. Imagine the same in Java or C.... –  eyquem Aug 14 '11 at 15:40
2  
@plaes : How so? If by 'enterprisey', you mean "documented" in preparation for Py3k annotations, I agree. –  Wes Turner Aug 21 '11 at 12:32
    
This is a great example, as I am developing mainly in 2.7, but have to have migration paths to 2.4. –  Adam Lewis Feb 27 '13 at 21:06
add comment

I had this problem today and rolled my own solution before I thought to check SO. This:

dict((i,a.count(i)) for i in a)

is really, really slow for large lists. My solution

def occurDict(items):
    d = {}
    for i in items:
        if i in d:
            d[i] = d[i]+1
        else:
            d[i] = 1
return d

is actually a bit faster than the Counter solution, at least for Python 2.7.

share|improve this answer
add comment

If you want to count all values at once you can do it very fast using numpy arrays and bincount as follows

import numpy as np
a = np.array([1, 2, 3, 4, 1, 4, 1])
np.bincount(a)

which gives

>>> array([0, 3, 1, 1, 2])
share|improve this answer
add comment

To count the number of diverse elements having a common type:

li = ['A0','c5','A8','A2','A5','c2','A3','A9']

print sum(1 for el in li if el[0]=='A' and el[1] in '01234')

gives

3 , not 6

share|improve this answer
add comment

I use if x in [] to test for the existence of values, count is meant for another purpose, and for huge lists it's also faster than count. It returns True or False:

Edit: Sorry, I misunderstood your question, my bad.

>>> lst = [1, 2, 3, 4, 5]
>>> 3 in lst
True
>>> 9 in lst
False
share|improve this answer
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.