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I'm writing a program that removes duplicates in a list and I just can't figure out how to find where the duplicates are?

#list
lis=[1,2,45,223,1,23,546,488,223,5688]
print(lis,"Im going to remove the duplicate numbers.")
#check for duplicates

#removes duplicates
#print list

marked as duplicate by jwodder, Tim Peters, zengr, wim, user764357 Oct 18 '13 at 1:03

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  • Do you need to preserve order? – wim Oct 18 '13 at 0:46
0

You can use Python's set() abilities. And transfer that back to a list in the same manner that set() is implemented.

set(lis)
7

set(my_list) return the unique values from my_list. You can convert it back to a list like list(set(my_list)).

One way to preserve order is to use collections.OrderedDict.

list(OrderedDict.fromkeys(my_list))

4

This list comprehension will preserve order and remove all duplicates occurring after an initial item:

>>> lis=[1,2,45,223,1,23,546,488,223,5688]
>>> [el for i, el in enumerate(lis) if el not in lis[:i]]
[1, 2, 45, 223, 23, 546, 488, 5688]

This will remove all preceding duplicates, leaving the rest in order:

>>> [el for i, el in enumerate(lis) if el not in lis[i+1:]]
[2, 45, 1, 23, 546, 488, 223, 5688]
1

You can use the set() function to achieve this.

    a = [1,2,3,4,5,5,5,5,5,5] 
    print list(set(a)) # [1, 2, 3, 4, 5]

Keep in mind that this may will mess up the order of your list.

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