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is there a builtin function of Python that does on python.array what argsort() does on a numpy.array?

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marked as duplicate by unutbu Jun 8 at 9:32

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4 Answers 4

up vote 20 down vote accepted

I timed the suggestions above and here are my results.

First of all, the functions:

def f(seq):
    # http://stackoverflow.com/questions/3382352/equivalent-of-numpy-argsort-in-basic-python/3383106#3383106
    #non-lambda version by Tony Veijalainen
    return [i for (v, i) in sorted((v, i) for (i, v) in enumerate(seq))]

def g(seq):
    # http://stackoverflow.com/questions/3382352/equivalent-of-numpy-argsort-in-basic-python/3383106#3383106
    #lambda version by Tony Veijalainen
    return [x for x,y in sorted(enumerate(seq), key = lambda x: x[1])]


def h(seq):
    #http://stackoverflow.com/questions/3382352/equivalent-of-numpy-argsort-in-basic-python/3382369#3382369
    #by unutbu
    return sorted(range(len(seq)), key=seq.__getitem__)

Now, the IPython session:

In [16]: seq = rand(10000).tolist()

In [17]: %timeit f(seq)
100 loops, best of 3: 10.5 ms per loop

In [18]: %timeit g(seq)
100 loops, best of 3: 8.83 ms per loop

In [19]: %timeit h(seq)
100 loops, best of 3: 6.44 ms per loop

FWIW

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Interesting - probably the average is more important than the 'best' of 3(?) –  JPH Feb 26 '13 at 11:02

There is no built-in function, but it's easy to assemble one out of the terrific tools Python makes available:

def argsort(seq):
    # http://stackoverflow.com/questions/3071415/efficient-method-to-calculate-the-rank-vector-of-a-list-in-python
    return sorted(range(len(seq)), key=seq.__getitem__)

x = [5,2,1,10]

print(argsort(x))
# [2, 1, 0, 3]

It works on Python array.arrays the same way:

import array
x = array.array('d', [5, 2, 1, 10])
print(argsort(x))
# [2, 1, 0, 3]
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3  
+1 Very Pythonic! –  katrielalex Aug 1 '10 at 15:07
1  
Instead of using the (theoretically private) getitem, you can also use operator.itemgetter / operator.attrgetter docs.python.org/library/operator.html –  Ender Aug 1 '10 at 17:58
    
If operator.itemgetter could be used as a drop-in replacement for __getitem__, I think I'd agreed with you Ender, but as far as I can see, operator.itemgetter would also require wrapping it in a lambda expression. I'd rather avoid the extra lambda if I could. –  unutbu Aug 1 '10 at 19:57
1  
@Ender: itemgetter is no use here: x.__getitem__(i) returns x[i], whereas itemgetter(x)(i) will return i[x]. –  Ferdinand Beyer Apr 24 '12 at 13:03
    
Err. Okay. Leave it. :( I will del the comments –  Bhargav Rao Jun 4 at 23:34

Found this question, but needed argsort for a list of objects based on an object property.

Extending unutbu's answer, this would be:

sorted(range(len(seq)), key = lambda x: seq[x].sort_property)
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My alternative with enumerate:

def argsort(seq):
    return [x for x,y in sorted(enumerate(seq), key = lambda x: x[1])]

seq=[5,2,1,10]
print(argsort(seq))
# Output:
# [2, 1, 0, 3]

Better though to use answer from http://stackoverflow.com/users/9990/marcelo-cantos answer to thread http://stackoverflow.com/questions/3407414/python-sort-without-lambda-expressions

[i for (v, i) in sorted((v, i) for (i, v) in enumerate(seq))]
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