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Is it possible to get which values are duplicates in a list using python?

I have a list of items:

    mylist = [20, 30, 25, 20]

I know the best way of removing the duplicates is set(mylist), but is it possible to know what values are being duplicated? As you can see, in this list the duplicates are the first and last values. [0, 3].

Is it possible to get this result or something similar in python? I'm trying to avoid making a ridiculously big if elif conditional statement.

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1  
It's actually values 0 and 3 –  Hubro Jun 27 '12 at 23:10
    

6 Answers 6

up vote 15 down vote accepted

These answers are O(n), so a little more code than using mylist.count() but much more efficient as mylist gets longer

If you just want to know the duplicates, use collections.Counter

from collections import Counter
mylist = [20, 30, 25, 20]
[k for k,v in Counter(mylist).items() if v>1]

If you need to know the indices,

from collections import defaultdict
D = defaultdict(list)
for i,item in enumerate(mylist):
    D[item].append(i)
D = {k:v for k,v in D.items() if len(v)>1}
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1  
You could do this with the more compact [i for key in (key for key, count in Counter(mylist).items() if count > 1) for i, x in enumerate(mylist) if x == key] - although it's a bit of a monster, you might want to separate out the generator expression. –  Lattyware Jun 27 '12 at 23:16
1  
@Lattyware, eww –  gnibbler Jun 27 '12 at 23:20
2  
You could make def indices(seq, values):, return (i for value in values for i, x in enumerate(seq) if x == value), then do indices(mylist, (key for key, count in Counter(mylist).items() if count > 1). That's pretty neat (when not crammed into a comment). –  Lattyware Jun 27 '12 at 23:23

Here's a list comprehension that does what you want. As @Codemonkey says, the list starts at index 0, so the indices of the duplicates are 0 and 3.

>>> [i for i, x in enumerate(mylist) if mylist.count(x) > 1]
[0, 3]
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6  
That's O(n^2)... You can do better. –  JBernardo Jun 27 '12 at 23:13
2  
@Levon, it does search the whole list –  gnibbler Jun 27 '12 at 23:18
1  
thanks, it worked for what i needed... –  Hairo Jun 27 '12 at 23:34

You should sort the list:

mylist.sort()

After this, iterate through it like this:

doubles = []
for i, elem in enumerate(mylist):
    if i != 0:
        if elem == old:
            doubles.append(elem)
            old = None
            continue
    old = elem
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1  
This doesn't get the indices of the items, which the asker appears to want. Also, creating an empty list and looping through items to append some is an anti-pattern in Python, use a list comprehension. –  Lattyware Jun 27 '12 at 23:17

The following list comprehension will yield the duplicate values:

[x for x in mylist if mylist.count(x) >= 2]
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This gives the duplicate values, not their indices –  Junuxx Jun 27 '12 at 23:14
    
@Junuxx: Although he does mention the indices, he asks for the values, not the indices. –  Swiss Jun 27 '12 at 23:15
1  
"As you can see, in this list the duplicates are the first and last values. [0, 3]" seems to indicate the desired output. –  Junuxx Jun 27 '12 at 23:15
1  
@Swiss No, it isn't. A set comprehension only requires the curly braces, the brackets here are totally useless. –  Lattyware Jun 27 '12 at 23:22
2  
@Swiss I'm not a native speaker, I learned over time [ -> (square) braket, ( -> parenthesis, { -> (curly) braces in the US .. :) –  Levon Jun 27 '12 at 23:29

That's the simplest way I can think for finding duplicates in a list:

my_list = [3, 5, 2, 1, 4, 4, 1]

my_list.sort()
for i in range(0,len(my_list)-1):
               if my_list[i] == my_list[i+1]:
                   print str(my_list[i]) + ' is a duplicate'
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m = len(mylist)
for index,value in enumerate(mylist):
        for i in xrange(1,m):
                if(index != i):
                    if (L[i] == L[index]):
                        print "Location %d and location %d has same list-entry:  %r" % (index,i,value)

This has some redundancy that can be improved however.

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