Is there a built-in that removes duplicates from list in Python, whilst preserving order? I know that I can use a set to remove duplicates, but that destroys the original order. I also know that I can roll my own like this:

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

(Thanks to unwind for that code sample.)

But I'd like to avail myself of a built-in or a more Pythonic idiom if possible.

Related question: In Python, what is the fastest algorithm for removing duplicates from a list so that all elements are unique while preserving order?

  • 6
    I think your implementation looks the cleanest.. – Pithikos Sep 30 '14 at 12:39

30 Answers 30

up vote 658 down vote accepted

Here you have some alternatives: http://www.peterbe.com/plog/uniqifiers-benchmark

Fastest one:

def f7(seq):
    seen = set()
    seen_add = seen.add
    return [x for x in seq if not (x in seen or seen_add(x))]

Why assign seen.add to seen_add instead of just calling seen.add? Python is a dynamic language, and resolving seen.add each iteration is more costly than resolving a local variable. seen.add could have changed between iterations, and the runtime isn't smart enough to rule that out. To play it safe, it has to check the object each time.

If you plan on using this function a lot on the same dataset, perhaps you would be better off with an ordered set: http://code.activestate.com/recipes/528878/

O(1) insertion, deletion and member-check per operation.

  • 15
    @JesseDhillon seen.add could have changed between iterations, and the runtime isn't smart enough to rule that out. To play safe, it has to check the object each time. -- If you look at the bytecode with dis.dis(f), you can see that it executes LOAD_ATTR for the add member on each iteration. ideone.com/tz1Tll – Markus Jarderot Mar 22 '13 at 17:24
  • 2
    @SergeyOrshanskiy Almost O(1). – Markus Jarderot Dec 18 '13 at 0:52
  • 4
    When I try this on a list of lists I get: TypeError: unhashable type: 'list' – Jens Timmerman Mar 11 '14 at 14:28
  • 5
    Your solution is not the fastest one. In Python 3 (did not test 2) this is faster (300k entries list - 0.045s (yours) vs 0.035s (this one): seen = set(); return [x for x in lines if x not in seen and not seen.add(x)]. I could not find any speed effect of the seen_add line you did. – user136036 Oct 24 '14 at 16:39
  • 2
    @user136036 Please link to your tests. How many times did you run them?seen_add is an improvement but timings can be affected by system resources at the time. Would be interested to see full timings – jamylak May 20 '15 at 6:22

Edit 2016

As Raymond pointed out, in python 3.5+ where OrderedDict is implemented in C, the list comprehension approach will be slower than OrderedDict (unless you actually need the list at the end - and even then, only if the input is very short). So the best solution for 3.5+ is OrderedDict.

Important Edit 2015

As @abarnert notes, the more_itertools library (pip install more_itertools) contains a unique_everseen function that is built to solve this problem without any unreadable (not seen.add) mutations in list comprehensions. This is also the fastest solution too:

>>> from  more_itertools import unique_everseen
>>> items = [1, 2, 0, 1, 3, 2]
>>> list(unique_everseen(items))
[1, 2, 0, 3]

Just one simple library import and no hacks. This comes from an implementation of the itertools recipe unique_everseen which looks like:

def unique_everseen(iterable, key=None):
    "List unique elements, preserving order. Remember all elements ever seen."
    # unique_everseen('AAAABBBCCDAABBB') --> A B C D
    # unique_everseen('ABBCcAD', str.lower) --> A B C D
    seen = set()
    seen_add = seen.add
    if key is None:
        for element in filterfalse(seen.__contains__, iterable):
            seen_add(element)
            yield element
    else:
        for element in iterable:
            k = key(element)
            if k not in seen:
                seen_add(k)
                yield element

In Python 2.7+ the accepted common idiom (which works but isn't optimized for speed, I would now use unique_everseen) for this uses collections.OrderedDict:

Runtime: O(N)

>>> from collections import OrderedDict
>>> items = [1, 2, 0, 1, 3, 2]
>>> list(OrderedDict.fromkeys(items))
[1, 2, 0, 3]

This looks much nicer than:

seen = set()
[x for x in seq if x not in seen and not seen.add(x)]

and doesn't utilize the ugly hack:

not seen.add(x)

which relies on the fact that set.add is an in-place method that always returns None so not None evaluates to True.

Note however that the hack solution is faster in raw speed though it has the same runtime complexity O(N).

  • 4
    Converting to some custom kind of dict just to take keys? Just another crutch. – Nakilon Jun 14 '13 at 13:40
  • @Nakilon Are you saying it's not clear? Or are you expecting Python to be more pure? – jamylak Jun 14 '13 at 13:49
  • 2
    @Nakilon I don't really see how it's a crutch. It doesn't expose any mutable state, so its very clean in that sense. Internally, Python sets are implemented with dict() (stackoverflow.com/questions/3949310/…), so basically you're just doing what the interpreter would've done anyway. – Imran Jun 18 '13 at 6:58
  • 14
    +1 This is a good and pythonic way, and is vetted by a python core developer here. – wim Oct 18 '13 at 0:58
  • 1
    @CommuSoft I agree, although practically it's almost always O(n) due to the super highly unlikely worst case – jamylak May 20 '15 at 5:22

In Python 2.7, the new way of removing duplicates from an iterable while keeping it in the original order is:

>>> from collections import OrderedDict
>>> list(OrderedDict.fromkeys('abracadabra'))
['a', 'b', 'r', 'c', 'd']

In Python 3.5, the OrderedDict has a C implementation. My timings show that this is now both the fastest and shortest of the various approaches for Python 3.5.

In Python 3.6, the regular dict became both ordered and compact. (This feature is holds for CPython and PyPy but may not present in other implementations). That gives us a new fastest way of deduping while retaining order:

>>> list(dict.fromkeys('abracadabra'))
['a', 'b', 'r', 'c', 'd']

In Python 3.7, the regular dict is guaranteed to both ordered across all implementations. So, the shortest and fastest solution is:

>>> list(dict.fromkeys('abracadabra'))
['a', 'b', 'r', 'c', 'd']

Response to @max: Once you move to 3.6 or 3.7 and use the regular dict instead of OrderedDict, you can't really beat the performance in any other way. The dictionary is dense and readily converts to a list with almost no overhead. The target list is pre-sized to len(d) which saves all the resizes that occur in a list comprehension. Also, since the internal key list is dense, copying the pointers is about almost fast as a list copy.

  • It is faster than any other approach on my machine (python 3.5) as long as I don't convert OrderedDict to a list in the end. If I do need to convert it to a list, for small inputs the list comprehension approach is still faster by up to 1.5 times. That said, this solution is much cleaner. – max Dec 14 '16 at 20:20
  • 1
    The only gotcha is that the iterable "elements" must be hashable - would be nice to have the equivalent for iterables with arbitrary elements (as a list of lists) – Mr_and_Mrs_D May 31 at 12:37
sequence = ['1', '2', '3', '3', '6', '4', '5', '6']
unique = []
[unique.append(item) for item in sequence if item not in unique]

unique → ['1', '2', '3', '6', '4', '5']

  • 6
    This may not be the most concise, but I like it for its clarity. Thanks – Mayur Patel May 27 '13 at 18:30
  • 24
    It's worth noting that this runs in n^2 – goncalopp Mar 19 '14 at 17:13
  • 23
    Ick. 2 strikes: Using a list for membership testing (slow, O(N)) and using a list comprehension for the side effects (building another list of Nonereferences in the process!) – Martijn Pieters Mar 3 '15 at 14:32
  • I agree with @MartijnPieters there's absolutely no reason for the list comprehension with side effects. Just use a for loop instead – jamylak Feb 17 at 7:43
from itertools import groupby
[ key for key,_ in groupby(sortedList)]

The list doesn't even have to be sorted, the sufficient condition is that equal values are grouped together.

Edit: I assumed that "preserving order" implies that the list is actually ordered. If this is not the case, then the solution from MizardX is the right one.

Community edit: This is however the most elegant way to "compress duplicate consecutive elements into a single element".

  • But this doesn't preserve order! – unbeknown Jan 26 '09 at 15:51
  • Hrm, this is problematic, since I cannot guarantee that equal values are grouped together without looping once over the list, by which time I could have pruned the duplicates. – Josh Glover Jan 26 '09 at 15:54
  • I assumed that "preserving order" implied that the list is actually ordered. – Rafał Dowgird Jan 26 '09 at 15:56
  • 1
    Added clarification. – Rafał Dowgird Jan 26 '09 at 15:59
  • 1
    Maybe the specification of the input list is a little bit unclear. The values don't even need to be grouped together: [2, 1, 3, 1]. So which values to keep and which to delete? – unbeknown Jan 26 '09 at 16:00

I think if you wanna maintain the order,

you can try this:

list1 = ['b','c','d','b','c','a','a']    
list2 = list(set(list1))    
list2.sort(key=list1.index)    
print list2

OR similarly you can do this:

list1 = ['b','c','d','b','c','a','a']  
list2 = sorted(set(list1),key=list1.index)  
print list2 

You can also do this:

list1 = ['b','c','d','b','c','a','a']    
list2 = []    
for i in list1:    
    if not i in list2:  
        list2.append(i)`    
print list2

It can also be written as this:

list1 = ['b','c','d','b','c','a','a']    
list2 = []    
[list2.append(i) for i in list1 if not i in list2]    
print list2 
  • 3
    Your first two answers assume that the order of the list can be rebuilt using a sorting function, but this may not be so. – Richard Sep 3 '13 at 19:11
  • 2
    It's also O(n^2), worst case on an already sorted list – cod3monk3y Jan 14 '14 at 16:59
  • 4
    Most answers are focused on performance. For lists that aren't large enough to worry about performance, the sorted(set(list1),key=list1.index) is the best thing I've seen. No extra import, no extra function, no extra variable, and it's fairly simple and readable. – Derek Veit Jan 8 '16 at 20:53

For another very late answer to another very old question:

The itertools recipes have a function that does this, using the seen set technique, but:

  • Handles a standard key function.
  • Uses no unseemly hacks.
  • Optimizes the loop by pre-binding seen.add instead of looking it up N times. (f7 also does this, but some versions don't.)
  • Optimizes the loop by using ifilterfalse, so you only have to loop over the unique elements in Python, instead of all of them. (You still iterate over all of them inside ifilterfalse, of course, but that's in C, and much faster.)

Is it actually faster than f7? It depends on your data, so you'll have to test it and see. If you want a list in the end, f7 uses a listcomp, and there's no way to do that here. (You can directly append instead of yielding, or you can feed the generator into the list function, but neither one can be as fast as the LIST_APPEND inside a listcomp.) At any rate, usually, squeezing out a few microseconds is not going to be as important as having an easily-understandable, reusable, already-written function that doesn't require DSU when you want to decorate.

As with all of the recipes, it's also available in more-iterools.

If you just want the no-key case, you can simplify it as:

def unique(iterable):
    seen = set()
    seen_add = seen.add
    for element in itertools.ifilterfalse(seen.__contains__, iterable):
        seen_add(element)
        yield element
  • I completely overlooked more-itertools this is clearly the best answer. A simple from more_itertools import unique_everseen list(unique_everseen(items)) A much faster approach than mine and much better than the accepted answer, I think the library download is worth it. I am going to community wiki my answer and add this in. – jamylak Jun 7 '15 at 15:24

Just to add another (very performant) implementation of such a functionality from an external module1: iteration_utilities.unique_everseen:

>>> from iteration_utilities import unique_everseen
>>> lst = [1,1,1,2,3,2,2,2,1,3,4]

>>> list(unique_everseen(lst))
[1, 2, 3, 4]

Timings

I did some timings (Python 3.6) and these show that it's faster than all other alternatives I tested, including OrderedDict.fromkeys, f7 and more_itertools.unique_everseen:

%matplotlib notebook

from iteration_utilities import unique_everseen
from collections import OrderedDict
from more_itertools import unique_everseen as mi_unique_everseen

def f7(seq):
    seen = set()
    seen_add = seen.add
    return [x for x in seq if not (x in seen or seen_add(x))]

def iteration_utilities_unique_everseen(seq):
    return list(unique_everseen(seq))

def more_itertools_unique_everseen(seq):
    return list(mi_unique_everseen(seq))

def odict(seq):
    return list(OrderedDict.fromkeys(seq))

from simple_benchmark import benchmark

b = benchmark([f7, iteration_utilities_unique_everseen, more_itertools_unique_everseen, odict],
              {2**i: list(range(2**i)) for i in range(1, 20)},
              'list size (no duplicates)')
b.plot()

enter image description here

And just to make sure I also did a test with more duplicates just to check if it makes a difference:

import random

b = benchmark([f7, iteration_utilities_unique_everseen, more_itertools_unique_everseen, odict],
              {2**i: [random.randint(0, 2**(i-1)) for _ in range(2**i)] for i in range(1, 20)},
              'list size (lots of duplicates)')
b.plot()

enter image description here

And one containing only one value:

b = benchmark([f7, iteration_utilities_unique_everseen, more_itertools_unique_everseen, odict],
              {2**i: [1]*(2**i) for i in range(1, 20)},
              'list size (only duplicates)')
b.plot()

enter image description here

In all of these cases the iteration_utilities.unique_everseen function is the fastest (on my computer).


This iteration_utilities.unique_everseen function can also handle unhashable values in the input (however with an O(n*n) performance instead of the O(n) performance when the values are hashable).

>>> lst = [{1}, {1}, {2}, {1}, {3}]

>>> list(unique_everseen(lst))
[{1}, {2}, {3}]

1 Disclaimer: I'm the author of that package.

Not to kick a dead horse (this question is very old and already has lots of good answers), but here is a solution using pandas that is quite fast in many circumstances and is dead simple to use.

import pandas as pd

my_list = my_list = [0, 1, 2, 3, 4, 1, 2, 3, 5]

>>> pd.Series(my_list).drop_duplicates().tolist()
# Output:
# [0, 1, 2, 3, 4, 5]
  • man it did the trick :) thanks a lot!!! – Ashu Kumar Sep 28 at 3:24

For no hashable types (e.g. list of lists), based on MizardX's:

def f7_noHash(seq)
    seen = set()
    return [ x for x in seq if str( x ) not in seen and not seen.add( str( x ) )]

Borrowing the recursive idea used in definining Haskell's nub function for lists, this would be a recursive approach:

def unique(lst):
    return [] if lst==[] else [lst[0]] + unique(filter(lambda x: x!= lst[0], lst[1:]))

e.g.:

In [118]: unique([1,5,1,1,4,3,4])
Out[118]: [1, 5, 4, 3]

I tried it for growing data sizes and saw sub-linear time-complexity (not definitive, but suggests this should be fine for normal data).

In [122]: %timeit unique(np.random.randint(5, size=(1)))
10000 loops, best of 3: 25.3 us per loop

In [123]: %timeit unique(np.random.randint(5, size=(10)))
10000 loops, best of 3: 42.9 us per loop

In [124]: %timeit unique(np.random.randint(5, size=(100)))
10000 loops, best of 3: 132 us per loop

In [125]: %timeit unique(np.random.randint(5, size=(1000)))
1000 loops, best of 3: 1.05 ms per loop

In [126]: %timeit unique(np.random.randint(5, size=(10000)))
100 loops, best of 3: 11 ms per loop

I also think it's interesting that this could be readily generalized to uniqueness by other operations. Like this:

import operator
def unique(lst, cmp_op=operator.ne):
    return [] if lst==[] else [lst[0]] + unique(filter(lambda x: cmp_op(x, lst[0]), lst[1:]), cmp_op)

For example, you could pass in a function that uses the notion of rounding to the same integer as if it was "equality" for uniqueness purposes, like this:

def test_round(x,y):
    return round(x) != round(y)

then unique(some_list, test_round) would provide the unique elements of the list where uniqueness no longer meant traditional equality (which is implied by using any sort of set-based or dict-key-based approach to this problem) but instead meant to take only the first element that rounds to K for each possible integer K that the elements might round to, e.g.:

In [6]: unique([1.2, 5, 1.9, 1.1, 4.2, 3, 4.8], test_round)
Out[6]: [1.2, 5, 1.9, 4.2, 3]
  • 1
    Note that performance will get bad when the number of unique elements is very large relative to the total number of elements, since each successive recursive call's use of filter will barely benefit from the previous call at all. But if the number of unique elements is small relative to the array size, this should perform pretty well. – ely Sep 11 '13 at 14:05

5 x faster reduce variant but more sophisticated

>>> l = [5, 6, 6, 1, 1, 2, 2, 3, 4]
>>> reduce(lambda r, v: v in r[1] and r or (r[0].append(v) or r[1].add(v)) or r, l, ([], set()))[0]
[5, 6, 1, 2, 3, 4]

Explanation:

default = (list(), set())
# use list to keep order
# use set to make lookup faster

def reducer(result, item):
    if item not in result[1]:
        result[0].append(item)
        result[1].add(item)
    return result

>>> reduce(reducer, l, default)[0]
[5, 6, 1, 2, 3, 4]

You can reference a list comprehension as it is being built by the symbol '_[1]'.
For example, the following function unique-ifies a list of elements without changing their order by referencing its list comprehension.

def unique(my_list): 
    return [x for x in my_list if x not in locals()['_[1]']]

Demo:

l1 = [1, 2, 3, 4, 1, 2, 3, 4, 5]
l2 = [x for x in l1 if x not in locals()['_[1]']]
print l2

Output:

[1, 2, 3, 4, 5]
  • 6
    Please note it won't work in Python 2.7+. – d33tah Mar 17 '13 at 11:29
  • 2
    Also note that it would make it an O(n^2) operation, where as creating a set/dict (which has constant look up time) and adding only previously unseen elements will be linear. – ely Sep 4 '13 at 19:45
  • This is Python 2.6 only I believe. And yes it is O(N^2) – jamylak Jun 7 '15 at 15:15

MizardX's answer gives a good collection of multiple approaches.

This is what I came up with while thinking aloud:

mylist = [x for i,x in enumerate(mylist) if x not in mylist[i+1:]]
  • Your solution is nice, but it takes the last appearance of each element. To take the first appearance use: [x for i,x in enumerate(mylist) if x not in mylist[:i]] – Rivka Sep 2 '12 at 12:05
  • 6
    Since searching in a list is an O(n) operation and you perform it on each item, the resulting complexity of your solution would be O(n^2). This is just unacceptable for such a trivial problem. – Nikita Volkov Sep 5 '12 at 15:06

You could do a sort of ugly list comprehension hack.

[l[i] for i in range(len(l)) if l.index(l[i]) == i]
  • Prefer i,e in enumerate(l) to l[i] for i in range(len(l)). – Evpok Feb 27 '15 at 17:56

Relatively effective approach with _sorted_ a numpy arrays:

b = np.array([1,3,3, 8, 12, 12,12])    
numpy.hstack([b[0], [x[0] for x in zip(b[1:], b[:-1]) if x[0]!=x[1]]])

Outputs:

array([ 1,  3,  8, 12])
l = [1,2,2,3,3,...]
n = []
n.extend(ele for ele in l if ele not in set(n))

A generator expression that uses the O(1) look up of a set to determine whether or not to include an element in the new list.

  • Clever use of extend with a generator expression which depends on the thing being extended (so +1), but set(n) is recomputed at each stage (which is linear) and this bumps the overall approach to being quadratic. In fact, this is almost certainly worse than simply using ele in n. Making a set for a single membership test isn't worth the expense of the set creation. Still -- it is an interesting approach. – John Coleman Jan 3 '17 at 20:14

A simple recursive solution:

def uniquefy_list(a):
    return uniquefy_list(a[1:]) if a[0] in a[1:] else [a[0]]+uniquefy_list(a[1:]) if len(a)>1 else [a[0]]

In Python 3.7 and above, dictionaries are guaranteed to remember their key insertion order. The answer to this question summarizes the current state of affairs.

The OrderedDict solution thus becomes obsolete and without any import statements we can simply issue:

>>> lst = [1, 2, 1, 3, 3, 2, 4]
>>> list(dict.fromkeys(lst))
[1, 2, 3, 4]
  • 2
    Note that raymonds answer already mentions that approach. – MSeifert Mar 13 at 17:41

If you need one liner then maybe this would help:

reduce(lambda x, y: x + y if y[0] not in x else x, map(lambda x: [x],lst))

... should work but correct me if i'm wrong

  • can lambda work with if ? I think it's not correct. – samuel Dec 17 '13 at 5:39
  • it's a conditional expression so it's good – code22 Dec 17 '13 at 15:28
  • yes, it's correct. I'm sorry for my mistake. I tried it just now. – samuel Dec 18 '13 at 6:30

If you routinely use pandas, and aesthetics is preferred over performance, then consider the built-in function pandas.Series.drop_duplicates:

    import pandas as pd
    import numpy as np

    uniquifier = lambda alist: pd.Series(alist).drop_duplicates().tolist()

    # from the chosen answer 
    def f7(seq):
        seen = set()
        seen_add = seen.add
        return [ x for x in seq if not (x in seen or seen_add(x))]

    alist = np.random.randint(low=0, high=1000, size=10000).tolist()

    print uniquifier(alist) == f7(alist)  # True

Timing:

    In [104]: %timeit f7(alist)
    1000 loops, best of 3: 1.3 ms per loop
    In [110]: %timeit uniquifier(alist)
    100 loops, best of 3: 4.39 ms per loop

this will preserve order and run in O(n) time. basically the idea is to create a hole wherever there is a duplicate found and sink it down to the bottom. makes use of a read and write pointer. whenever a duplicate is found only the read pointer advances and write pointer stays on the duplicate entry to overwrite it.

def deduplicate(l):
    count = {}
    (read,write) = (0,0)
    while read < len(l):
        if l[read] in count:
            read += 1
            continue
        count[l[read]] = True
        l[write] = l[read]
        read += 1
        write += 1
    return l[0:write]

A solution without using imported modules or sets:

text = "ask not what your country can do for you ask what you can do for your country"
sentence = text.split(" ")
noduplicates = [(sentence[i]) for i in range (0,len(sentence)) if sentence[i] not in sentence[:i]]
print(noduplicates)

Gives output:

['ask', 'not', 'what', 'your', 'country', 'can', 'do', 'for', 'you']

An in-place method

This method is quadratic, because we have a linear lookup into the list for every element of the list (to that we have to add the cost of rearranging the list because of the del s).

That said, it is possible to operate in place if we start from the end of the list and proceed toward the origin removing each term that is present in the sub-list at its left

This idea in code is simply

for i in range(len(l)-1,0,-1): 
    if l[i] in l[:i]: del l[i] 

A simple test of the implementation

In [91]: from random import randint, seed                                                                                            
In [92]: seed('20080808') ; l = [randint(1,6) for _ in range(12)] # Beijing Olympics                                                                 
In [93]: for i in range(len(l)-1,0,-1): 
    ...:     print(l) 
    ...:     print(i, l[i], l[:i], end='') 
    ...:     if l[i] in l[:i]: 
    ...:          print( ': remove', l[i]) 
    ...:          del l[i] 
    ...:     else: 
    ...:          print() 
    ...: print(l)
[6, 5, 1, 4, 6, 1, 6, 2, 2, 4, 5, 2]
11 2 [6, 5, 1, 4, 6, 1, 6, 2, 2, 4, 5]: remove 2
[6, 5, 1, 4, 6, 1, 6, 2, 2, 4, 5]
10 5 [6, 5, 1, 4, 6, 1, 6, 2, 2, 4]: remove 5
[6, 5, 1, 4, 6, 1, 6, 2, 2, 4]
9 4 [6, 5, 1, 4, 6, 1, 6, 2, 2]: remove 4
[6, 5, 1, 4, 6, 1, 6, 2, 2]
8 2 [6, 5, 1, 4, 6, 1, 6, 2]: remove 2
[6, 5, 1, 4, 6, 1, 6, 2]
7 2 [6, 5, 1, 4, 6, 1, 6]
[6, 5, 1, 4, 6, 1, 6, 2]
6 6 [6, 5, 1, 4, 6, 1]: remove 6
[6, 5, 1, 4, 6, 1, 2]
5 1 [6, 5, 1, 4, 6]: remove 1
[6, 5, 1, 4, 6, 2]
4 6 [6, 5, 1, 4]: remove 6
[6, 5, 1, 4, 2]
3 4 [6, 5, 1]
[6, 5, 1, 4, 2]
2 1 [6, 5]
[6, 5, 1, 4, 2]
1 5 [6]
[6, 5, 1, 4, 2]

In [94]:                                                                                                                             
  • Before posting I have searched the body of the answers for 'place' to no avail. If others have solved the problem in a similar way please alert me and I'll remove my answer asap. – gboffi Nov 4 at 17:44

Because I was looking at a dup and collected some related but different, related, useful information that isn't part of the other answers, here are two other possible solutions.

.get(True) XOR .setdefault(False)

The first is very much like the accepted seen_add soultion but with explicit side effects using dictionary's get(x,<default>) and setdefault(x,<default>):

# Explanation of d.get(x,True) != d.setdefault(x,False)
#
# x in d | d[x]  | A = d.get(x,True) | x in d | B = d.setdefault(x,False) | x in d | d[x]    | A xor B
# False  | None  | True          (1) | False  | False                 (2) | True   | False   | True
# True   | False | False         (3) | True   | False                 (4) | True   | False   | False
#
# Notes
# (1) x is not in the dictionary, so get(x,<default>) returns True but does __not__ add the value to the dictionary
# (2) x is not in the dictionary, so setdefault(x,<default>) adds the {x:False} and returns False
# (3) since x is in the dictionary, the <default> argument is ignored, and the value of the key is returned, which was
#     set to False in (2)
# (4) since the key is already in the dictionary, its value is returned directly and the argument is ignored
#
# A != B is how to do boolean XOR in Python
#
def sort_with_order(s):
    d = dict()
    return [x for x in s if d.get(x,True) != d.setdefault(x,False)]

get(x,<default>) returns <default> if x is not in the dictionary, but does not add the key to the dictionary. set(x,<default>) returns the value if the key is in the dictionary, otherwise sets it to and returns <default>.

Aside: a != b is how to do an XOR in python

__OVERRIDING ___missing_____ (inspired by this answer)

The second technique is overriding the __missing__ method that gets called when the key doesn't exist in a dictionary, which is only called when using d[k] notation:

class Tracker(dict):
    # returns True if missing, otherwise sets the value to False
    # so next time d[key] is called, the value False will be returned
    # and __missing__ will not be called again
    def __missing__(self, key):
        self[key] = False
        return True

t = Tracker()
unique_with_order = [x for x in samples if t[x]]

From the docs:

New in version 2.5: If a subclass of dict defines a method _____missing_____(), if the key key is not present, the d[key] operation calls that method with the key key as argument. The d[key] operation then returns or raises whatever is returned or raised by the _____missing_____(key) call if the key is not present. No other operations or methods invoke _____missing_____(). If _____missing_____() is not defined, KeyError is raised. _____missing_____() must be a method; it cannot be an instance variable. For an example, see collections.defaultdict.

Here is my 2 cents on this:

def unique(nums):
    unique = []
    for n in nums:
        if n not in unique:
            unique.append(n)
    return unique

Regards, Yuriy

this is the smartes way to remove duplicates from a list in Python whilst preserving its order, you can even do it in one line of code:

a_list = ["a", "b", "a", "c"]

sorted_list = [x[0] for x in (sorted({x:a_list.index(x) for x in set(a_list)}.items(), key=lambda x: x[1]))]

print sorted_list

My buddy Wes gave me this sweet answer using list comprehensions.

Example Code:

>>> l = [3, 4, 3, 6, 4, 1, 4, 8]

>>> l = [l[i] for i in range(len(l)) if i == l.index(l[i])]

>>> l = [3, 4, 6, 1, 8]
  • 2
    @ Duplicate of Samantha's answer only with examples – corax Sep 19 '16 at 2:05

Just to add another answer I've not seen listed

>>> a = ['f', 'F', 'F', 'G', 'a', 'b', 'b', 'c', 'd', 'd', 'd', 'f']

>>> [a[i] for i in sorted(set([a.index(elem) for elem in a]))]

['f', 'F', 'G', 'a', 'b', 'c', 'd']
>>>

This is using .index to get the first index of every list element, and getting rid of duplicate results (for repeating elements) with set, then sorting because there's no order in sets. Note that we do not loose order information because the first index of every new element is always in ascending order. So sorted will always put it right.

I've just considered the easy syntax, not performance.

Quick and dirty way: list(set([1,2,2,1,3,4,5,5]))

  • Try list(set([3,2,1])). – Andras Deak Sep 30 at 19:24

protected by jamylak Oct 12 '16 at 23:16

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