4
[3, 3, 3, 4, 4, 2]

Would be:

[ (3, 3), (4, 2), (2, 1) ]

The output should be sorted by highest count first to lowest count. In this case, 3 to 2 to 1.

  • Do the groups all occur together or could you have [3,4,2,3,4,3] and expect the same output? Does the order of the output list matter in any way? – Duncan Jan 25 '11 at 9:12
  • In your example, the output would still be the same. – TIMEX Jan 25 '11 at 9:13
  • 7
    At 855 Questions, I'm beginning to wonder if you ever try anything yourself first or are you trying to crowd-source a software project... – Johnsyweb Jan 25 '11 at 9:27
  • 1
    @John actually I like this kind of questions, I hope to see thousands more from TIMEX. – systempuntoout Jan 25 '11 at 9:32
  • 3
    Not only is this a duplicate. It's also homework. – S.Lott Jan 25 '11 at 11:00
3
data = [3, 3, 3, 4, 4, 2]
result = []
for entry in set(data):
    result.append((entry, data.count(entry)))
result.sort(key = lambda x: -x[1])
print result

>>[(3, 3), (4, 2), (2, 1)]
  • The output should be sorted by highest count first to lowest count. – TIMEX Jan 25 '11 at 9:19
  • so print sorted(result, key=lambda x: -x[1]) instead of print result – eumiro Jan 25 '11 at 9:22
  • and result = sorted(result, key = lambda x: -x[1]) can be written as result.sort(key = lambda x: -x[1]) – eumiro Jan 25 '11 at 9:38
  • 3
    See O(n**2) comments at stackoverflow.com/questions/1829470/… – Fred Nurk Jan 25 '11 at 9:41
  • @TIMEX: Yes, it's a loop bounded by O(n) (data.count) inside a loop bounded by O(n) (the outer for loop). In other words, each item has to do something to every other item, or n*n, which is n**2. – Fred Nurk Jan 26 '11 at 1:34
13

You can use a Counter in Python 2.7+ (this recipe works on 2.5+):

from collections import Counter
print Counter([3, 3, 3, 4, 4, 2]).most_common()
# [(3, 3), (4, 2), (2, 1)]
  • 4
    TIMEX, haven't you heard that Python comes with 'batteries included'? – Duncan Jan 25 '11 at 9:23
  • But Counter is a new collection class.:) This is correct answer if on 2.7 or 3.x – Senthil Kumaran Jan 25 '11 at 9:27
2

Try using a collections.Counter:

from collections import Counter
data = [3,4,2,3,4,3]
Counter(data).most_common()
  • Which version of Python are you using? I think Counter was introduced in 2.6. – Duncan Jan 25 '11 at 9:27
2

Why would you choose an O(n**2) algorithm to do this. The alternative to Counter (if you have <2.7) is not too difficult

>>> from operator import itemgetter
>>> from collections import defaultdict
>>> L=[3, 3, 3, 4, 4, 2]
>>> D=defaultdict(int)
>>> for i in L:
...     D[i]+=1
... 
>>> sorted(D.items(), key=itemgetter(1), reverse=True)
[(3, 3), (4, 2), (2, 1)]
0
def myfun(x,y):
    return x[1]-y[1]

list1 = [3, 3, 3, 4, 4, 2]
s1 = set(list1)
newlist = []
for e in s1:
    newlist.append((e,list1.count(e)))
print sorted(newlist,cmp=myfun)

I think, this is what you asked for. Sorry for hurry with the first answer. But just note that cmp argument for sorted is not available in python3

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