This question already has an answer here:

Given a list of strings, I want to sort it alphabetically and remove duplicates. I know I can do this:

from sets import Set
[...]
myHash = Set(myList)

but I don't know how to retrieve the list members from the hash in alphabetical order.

I'm not married to the hash, so any way to accomplish this will work. Also, performance is not an issue, so I'd prefer a solution that is expressed in code clearly to a fast but more opaque one.

marked as duplicate by jfs python Oct 11 '16 at 20:55

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

up vote 183 down vote accepted

A list can be sorted and deduplicated using built-in functions:

myList = sorted(set(myList))
  • set is a built-in function for Python >= 2.3
  • sorted is a built-in function for Python >= 2.4
  • 7
    Perfect blend of expressiveness and brevity. Thanks, Rod! – Josh Glover Jan 26 '09 at 15:01
  • 11
    This does not work if your myList has unhashable objects. – J_Zar Nov 14 '12 at 11:30
  • wouldn't set(sorted(myList)) be faster? I mean isn't it faster to first sort a list and then remove its duplicates than first removing its duplicates and only sort it afterwards? – Corneliu Zuzu Jan 26 '17 at 19:27
  • 1
    @CorneliuZuzu Removing duplicates with set() changes order, so you have to do it this way – Dimali Jun 13 '17 at 9:25
  • @CorneliuZuzu set uses a hash table rather than a tree or sorted list internally, so its speed is unaffected by whether the elements are already sorted. This also means that the items end up in hash order, which isn't the same as sorted order (as Dimali said). – Arthur Tacca May 18 at 9:22

If your input is already sorted, then there may be a simpler way to do it:

from operator import itemgetter
from itertools import groupby
unique_list = list(map(itemgetter(0), groupby(yourList)))
  • 4
    This can also be expressed as [e for e, _ in groupby(sortedList)] – Rafał Dowgird Jan 26 '09 at 15:25
  • This is O(n) rather than O(n log n) right? – Colonel Panic Oct 19 '15 at 14:55
  • FWIW something similar was added to the list of recipes from the documentation for itertools. – Cristian Ciupitu Feb 16 '16 at 10:58

If you want to keep order of the original list, just use OrderedDict with None as values.

In Python2:

    from collections import OrderedDict
    from itertools import izip, repeat

    unique_list = list(OrderedDict(izip(my_list, repeat(None))))

In Python3 it's even simpler:

    from collections import OrderedDict
    from itertools import repeat

    unique_list = list(OrderedDict(zip(my_list, repeat(None))))

If you don't like iterators (zip and repeat) you can use a generator (works both in 2 & 3):

    from collections import OrderedDict
    unique_list = list(OrderedDict((element, None) for element in my_list))

If it's clarity you're after, rather than speed, I think this is very clear:

def sortAndUniq(input):
  output = []
  for x in input:
    if x not in output:
      output.append(x)
  output.sort()
  return output

It's O(n^2) though, with the repeated use of not in for each element of the input list.

  • I prefer the solution using set due to the brevity it affords without sacrificing clarity. – Josh Glover Jan 26 '09 at 15:04

> but I don't know how to retrieve the list members from the hash in alphabetical order.

Not really your main question, but for future reference Rod's answer using sorted can be used for traversing a dict's keys in sorted order:

for key in sorted(my_dict.keys()):
   print key, my_dict[key]
   ...

and also because tuple's are ordered by the first member of the tuple, you can do the same with items:

for key, val in sorted(my_dict.items()):
    print key, val
    ...

For the string data

 output = []

     def uniq(input):
         if input not in output:
            output.append(input)
 print output     

Not the answer you're looking for? Browse other questions tagged or ask your own question.