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I have a long string of numbers seperated by commas. I can search and count the number of occurences of most numbers, or more accurately, 2 digit numbers.

IF I have a number sequences like: 1,2,3,4,5,1,6,7,1,8,9,10,11,12,1,1,2 and I want to count how many times the number 1 appears I should really get 5.

However, because it is counting the 1 in 10,11 and 12, I am getting 9.

Does anyone know how to make the below code match ONLY whole "strings"? Thanks.

def mostfreq(numString):
    import json 
    maxNum=45
    count=1
    list={}
    while count <= maxNum:
        list[count] = 0
        count+=1
    #numString is the array with all the numbers in it
    count=1
    topTen = ""
    while count <= maxNum:
        list[count]=numString.count(str(count))
        topTen = topTen+json.dumps(
        {count: list[count]},
        sort_keys=True,
        indent=4)+","
        count+=1
    response_generator = ( "["+topTen[:-1]+"]" )
    return HttpResponse(response_generator)
share|improve this question
up vote 8 down vote accepted

On 2.7+, just split and use the collections.Counter:

from collections import Counter
numstring = "1,2,3,4,5,1,6,7,1,8,9,10,11,12,1,1,2"
numcount = Counter(numstring.split(','))

or, Pre-2.7:

from collections import defaultdict
numstring = "1,2,3,4,5,1,6,7,1,8,9,10,11,12,1,1,2"
numcount = defaultdict(int)
for num in numstring.split(','):
    numcount[num] += 1

If you want to use count:

numstring = "1,2,3,4,5,1,6,7,1,8,9,10,11,12,1,1,2"
numlist = numstring.split(',')
numcount = dict((num, numlist.count(num)) for num in set(numlist))

but it's O(m*n) rather than O(n) because it iterates the list of numbers once for each unique number.

share|improve this answer
    
Which version of Python is this for? I tried it on 2.6.7 and I don't have Counter inside collections. – fncomp Sep 16 '11 at 2:48
    
@Josh Counter is 2.7+, as I said (maybe I added it after you saw it), but the defaultdict replacement is 2.5+. – agf Sep 16 '11 at 2:51
    
Plus one for backwards compatibiliy (a lot of people use Django etc with 2.6). – fncomp Sep 16 '11 at 2:52
    
Very true. I'm actually using Django/python 2.6 myself! @agf, I've gotten part of the code working. The problem is, I'm tryin to sort by the frequency. I've tried using the above code with sortedString=sorted(numcount, key=operator.itemgetter(1), reverse=True) but I get an error saying global name 'operator' is not defined even though I've imported from operator import itemgetter. Any help?? Thanks.` – eoinzy Sep 16 '11 at 14:23
1  
@eoinzy You need to do numcount.iteritems() not just numcount or you'll just get the keys not the keys and values. If you do from operator import itemgetter then you just use key=itemgetter(1). If you do import operator, then you do key=operator.itemgetter(1). – agf Sep 16 '11 at 19:11

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