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How would I use python to check a list and delete all duplicates? I don't want to have to specify what the duplicate item is - I want the code to figure out if there are any and remove them if so, keeping only one instance of each. It also must work if there are multiple duplicates in a list.

For example, in my code below, the list lseparatedOrbList has 12 items - one is repeated six times, one is repeated five times, and there is only one instance of one. I want it to change the list so there are only three items - one of each, and in the same order they appeared before. I tried this:

for i in lseparatedOrbList:
   for j in lseparatedOrblist:
        if lseparatedOrbList[i] == lseparatedOrbList[j]:
            lseparatedOrbList.remove(lseparatedOrbList[j])

But I get the error:

Traceback (most recent call last):
  File "qchemOutputSearch.py", line 123, in <module>
    for j in lseparatedOrblist:
NameError: name 'lseparatedOrblist' is not defined

I'm guessing because it's because I'm trying to loop through lseparatedOrbList while I loop through it, but I can't think of another way to do it.

share|improve this question
    
Do you need to maintain the order of the list? –  Will McCutchen Jul 20 '11 at 16:06
    
A common question: stackoverflow.com/search?q=python+duplicates+list. –  S.Lott Jul 20 '11 at 19:56
    
possible duplicate of How to return a list containing common elements with no duplicates –  S.Lott Jul 20 '11 at 19:57

8 Answers 8

up vote 15 down vote accepted

Just make a new list to populate, if the item for your list is not yet in the new list input it, else just move on to the next item in your original list.

for i in mylist:
  if i not in newlist:
    newlist.append(i)

I think this is the correct syntax, but my python is a bit shaky, I hope you at least get the idea.

share|improve this answer
    
Works great and maintains the order, thanks! –  laplacian Jul 20 '11 at 16:19
5  
Good, I guess I haven't forgotten all my python, its only been two years. Just as a word of warning, I am pretty sure this is an O(n^2) operation so you might not want to use it on large lists (eg. 10,000 items). If you need it for big lists, I would create a hash table to check against (O(1), yielding an overall O(n) implementation), instead of checking against the list, but if you are dealing with large lists, I probably wouldn't want to use python then either. –  Jonathon Jul 20 '11 at 16:31
    
Yeah, the list shouldn't really be more than like fifteen so it's fine. –  laplacian Jul 20 '11 at 16:48
2  
The correct way to do this is to use a set(), see cilaris's answer below. –  Wes Mason Sep 29 '11 at 14:24
1  
What do you mean this is not correct way? This does the job that was asked for, without any overhead of creating a set. –  Jonathon Dec 7 '11 at 0:49

Use set():

woduplicates = set(lseparatedOrblist)

Returns a set without duplicates. If you, for some reason, need a list back:

woduplicates = list(set(lseperatedOrblist))
share|improve this answer
4  
It is worth noting that this will fail if you have either lists or sets in your list. –  Slater Tyranus Sep 12 '13 at 18:25

You can do this like that:

x = list(set(x))

Example: if you do something like that:

x = [1,2,3,4,5,6,7,8,9,10,2,1,6,31,20]
x = list(set(x))
x

you will see the following result:

[1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 20, 31]

There is only one thing you should think of: the resulting list will not be ordered as the original one (will lose the order in the process).

share|improve this answer
    
Smart and Pythonic :) –  mushfiq Feb 22 '13 at 14:38

This should be faster and will preserve the original order:

seen = {}
new_list = [seen.setdefault(x, x) for x in my_list if x not in seen]

If you don't care about order, you can just:

new_list = list(set(my_list))
share|improve this answer

It's because you are missing a capital letter, actually.

Purposely dedented:

for i in lseparatedOrbList:   # capital 'L'
for j in lseparatedOrblist:   # lowercase 'l'

Though the more efficient way to do it would be to insert the contents into a set.

If maintaining the list order matters (ie, it must be "stable"), check out the answers on this question

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This should do it for you:

new_list = list(set(old_list))

set will automatically remove duplicates. list will cast it back to a list.

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No, it's simply a typo, the "list" at the end must be capitalized. You can nest loops over the same variable just fine (although there's rarely a good reason to).

However, there are other problems with the code. For starters, you're iterating through lists, so i and j will be items not indices. Furthermore, you can't change a collection while iterating over it (well, you "can" in that it runs, but madness lies that way - for instance, you'll propably skip over items). And then there's the complexity problem, your code is O(n^2). Either convert the list into a set and back into a list (simple, but shuffles the remaining list items) or do something like this:

seen = set()
new_x = []
for x in xs:
    if x in seen:
        continue
    seen.add(x)
    new_xs.append(x)

Both solutions require the items to be hashable. If that's not possible, you'll probably have to stick with your current approach sans the mentioned problems.

share|improve this answer
    
I just upvoted your answer, but spotted you are suggesting list comprehension. That list comprehension will not work, as it will basically rewrite the xs list into ys if you use it like that: ys = [x for x in xs if x not in ys]. It is because the ys accessed within comprehension is the ys before assignement. –  Tadeck Jul 20 '11 at 18:18
    
@Tadeck: Damn, you're right. Good catch. –  delnan Jul 21 '11 at 15:39

for unhashable lists. It is faster as it does not iterate about already checked entries.

def purge_dublicates(X):
    unique_X = []
    for i, row in enumerate(X):
        if row not in X[i + 1:]:
            unique_X.append(row)
    return unique_X
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