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I have a list that looks like this:

 list1 = [1,2,4,6,8,9,2]

If I were to say

 if 2 in list1:
      print True

It prints True once. Is there a way to determine if 2 or any variable x is in the list multiple times and if so how many without iterating through the entire list like this?

for item in list1:
      if item = 2:
          duplicates +=1
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6 Answers 6

up vote 0 down vote accepted
list1 = [1,2,4,6,8,9,2]

dict1 = {}

for ele in list1:
    # you iterate through the list once
    if ele in dict1:
        # if a key is already in the dictionary
        # you increase the corresponding value by one
        dict1[ele] += 1 
    else:
        # if a key is not yet in the dictionary
        # you set its corresponding value to one
        dict1[ele] = 1

Result:

>>> dict1
{1: 1, 2: 2, 4: 1, 6: 1, 8: 1, 9: 1}
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I almost down-voted this---this is exactly what a counter does for you already. import collections as col then col.Counter(list1) and you're done/ –  BenDundee Feb 14 '13 at 3:25
    
@BenDundee, yes Counter does exactly that, and it was probably worth mentioning. I got an impression that OP would also like an explanation about what's going on, that's why a "long" answer. –  Akavall Feb 14 '13 at 15:01

I think you're looking for list.count:

if list1.count(2) > 1:
    print True

In Sequence Types:

s.count(i) total number of occurrences of i in s

Of course under the covers, the count method will iterate through the entire list (although it will do so a lot faster than a for loop). If you're trying to avoid that for performance reasons, or so you can use a lazy iterator instead of a list, you may want to consider other options. For example, sort the list and use itertools.groupby, or feed it into a collections.Counter, etc.

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You should generalize this into a method for any x. Regardless, +1. –  squiguy Feb 13 '13 at 22:08
    
@squiguy: list1.count already is a method for any x. –  abarnert Feb 13 '13 at 22:09
    
I was just talking about the OP saying any x. You're correct. –  squiguy Feb 13 '13 at 22:10
    
@squiguy: Do you think I need to clarify that? If so, I can add more to the answer, no problem. But hopefully, even if the OP (or a future searcher) is a total novice who doesn't get that immediately, the quote from the docs will make it clear? –  abarnert Feb 13 '13 at 22:13
1  
@squiguy: No problem; comments that help make the answer better only look superfluous after the fact. –  abarnert Feb 13 '13 at 22:19
from collections import Counter
y = Counter(list1)
print y[2]
print y[5] # and so on
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If you do a from collections import Counter, you need to do Counter(list1), not collections.Counter(list1). –  abarnert Feb 13 '13 at 22:13
    
yep, done already –  ogzd Feb 13 '13 at 22:14
list1 = [1,2,4,6,8,9,2]
print list1.count(2)
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I would use a collections.Counter object for this:

from collections import Counter
myCounter = Counter(list1)

print myCounter[2] > 1 #prints 'True'

If you only plan on doing this with one or a few elements of the list, I would go with abarnert's answer, however.

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You don't need myCounter.get(2, 0); 0 is already the default for myCounter[2]. –  abarnert Feb 13 '13 at 22:33
    
@abarnert: Oh, awesome! Editing. –  Joel Cornett Feb 13 '13 at 23:15

Collections.counter (as others have pointed out) is how I would do this. However, if you really want to get your hands dirty:

def count(L):
    answer = {}
    for elem in L:
        if elem not in answer:
            answer[elem] = 0
        answer[elem] += 1
    return answer

>>> counts = count(myList)
>>> duplicates = [k for k,v in counts.iteritems() if v>1]
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This is just building a (slightly less powerful equivalent to a) Counter manually. Also, you mean counts.iteritems(), not myList.iteritems(), right? –  abarnert Feb 13 '13 at 22:35
    
@abarnert: you're right. Which is why I mentioned that it's a "getting your hands dirty" way of doing it. I'd also mentioned that I would have otherwise used Collections.Counter. Also, thanks for the bug-report (fixed!) –  inspectorG4dget Feb 14 '13 at 4:33

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