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I've got a list:

myList = [-3, -3, 6, 10, 10, 16, 16, 40, 40, 60, 60, 100, 100, 140, 140, 211, -8]

how can I efficiently remove all the duplicated items from the, i.e. to have a new list like this:

[6,211,-8]

I know a way to do it, by keeping a track of duplicated items, and then removing them using python set(), i.e.

listOfDuplicates = [x for x, y in collections.Counter(myList).items() if y > 1]
newList = list(set(myList) - set(listOfDuplicates))

Is there any better way of doing this (preserving the order) in python?

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5  
Turn that > around and ditch the second line. Or just use a set in the first place. –  Jonathon Reinhart Mar 31 at 11:57
3  
@JonathonReinhart You meant ==, right? ;) –  thefourtheye Mar 31 at 11:58
    
@thefourtheye Yes, sorry De Morgan :-) –  Jonathon Reinhart Mar 31 at 11:59
    
Ignore the "or use a set" part of my comment; I misunderstood the problem statement. The first part still stands, however. –  Jonathon Reinhart Mar 31 at 12:06
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2 Answers 2

up vote 7 down vote accepted

The best way is to invert the condition, as suggested by Jonathon Reinhart

import collections
print [x for x, y in collections.Counter(myList).iteritems() if y == 1]
# [6, 211, -8]

Note: This method will not be able to maintain the order of elements. For example, when

myList = [1, 1000, 10]

the result is

[1000, 1, 10]

Because collections.Counter is internally a dictionary only. As dictionaries use hashing, the order cannot be guaranteed.

To preserver Order, you can do like this, as suggested by DSM

c = Counter(myList)
print [x for x in myList if c[x] == 1]
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3  
If you wanted to preserve order, you could do c = Counter(myList); nd = [x for x in myList if c[x] == 1] or something. –  DSM Mar 31 at 12:08
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myList = [-3, -3, 6, 10, 10, 16, 16, 40, 40, 60, 60, 100, 100, 140, 140, 211, -8]

b=[]

d=[]

for x in myList:

  try:
      w=b.index(x)
      if w!=None:
           d.append(x)
           del b[w]
  except:
       b.append(x)

b=set(b)-set(d)

print list(b)

this will not preserve order too

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