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['b','b','b','a','a','c','c']

numpy.unique gives

['a','b','c']

How can I get the original order preserved

['b','a','c']

Great answers. Bonus question. Why do none of these methods work with this dataset? http://www.uploadmb.com/dw.php?id=1364341573 Here's the question numpy sort wierd behavior

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4 Answers

up vote 10 down vote accepted

unique() is slow, O(Nlog(N)), but you can do this by following code:

import numpy as np
a = np.array(['b','a','b','b','d','a','a','c','c'])
_, idx = np.unique(a, return_index=True)
print a[np.sort(idx)]

output:

['b' 'a' 'd' 'c']

Pandas.unique() is much faster for big array O(N):

import pandas as pd

a = np.random.randint(0, 1000, 10000)
%timeit np.unique(a)
%timeit pd.unique(a)

1000 loops, best of 3: 644 us per loop
10000 loops, best of 3: 144 us per loop
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The O(N) complexity is not mentioned anywhere and is thus only an implementation detail. The documentation simply states that it is significantly faster than numpy.unique, but this may simply mean that it has smaller constants or the complexity might be between linear and NlogN. –  Bakuriu Mar 26 '13 at 17:57
2  
It's mentioned here: slideshare.net/fullscreen/wesm/… –  HYRY Mar 26 '13 at 22:40
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a = ['b','b','b','a','a','c','c']
[a[i] for i in sorted(np.unique(a, return_index=True)[1])]
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Use the return_index functionality of np.unique. That returns the indices at which the elements first occurred in the input. Then argsort those indices.

>>> u, ind = np.unique(['b','b','b','a','a','c','c'], return_index=True)
>>> u[np.argsort(ind)]
array(['b', 'a', 'c'], 
      dtype='|S1')
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If you're trying to remove duplication of an already sorted iterable, you can use itertools.groupby function:

>>> from itertools import groupby
>>> a = ['b','b','b','a','a','c','c']
>>> [x[0] for x in groupby(a)]
['b', 'a', 'c']

This works more like unix 'uniq' command, because it assumes the list is already sorted. When you try it on unsorted list you will get something like this:

>>> b = ['b','b','b','a','a','c','c','a','a']
>>> [x[0] for x in groupby(b)]
['b', 'a', 'c', 'a']
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Almost all of the time numpy problems get solved way faster using numpy, pure python solutions will be slow since numpy is specialised. –  jamylak Mar 26 '13 at 13:09
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