Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free.

This question already has an answer here:

I need to sort a list and then return a list with the index of the sorted items in the list. For example, if the list I want to sort is [2,3,1,4,5], I need [2,0,1,3,4] to be returned.

This question was posted on bytes, but i thought i would repost it here. http://bytes.com/topic/python/answers/44513-sorting-list-then-return-index-sorted-item

my specific need to sort a list of objects based on a property of the objects. i then need to re-order a corresponding list to match the order of the newly sorted list.

is there a good way to do this?

share|improve this question

marked as duplicate by unutbu Jun 4 at 22:33

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.

    
One option could be to map the list of objects to a list of tuples [obj1, obj2, ...] -> [(0,obj1), (1, obj2), ...] and sort this list. Then you have the new order of the original indexes right away. –  Felix Kling Oct 21 '11 at 14:52
    
You don't really need the indices to sort the corresponding list. Just zip the list together before sorting, then unzip. (Updated my answer with an example). –  Shawn Chin Oct 21 '11 at 15:42
    
@FelixKling You'd need to do that, and specify the sort key to be the second element of the tuple. –  sykora Oct 21 '11 at 15:43
    
@sykora: Of course, but I thought OP is specifying a key anyway, as the objects are sorted by a certain property... –  Felix Kling Oct 21 '11 at 15:45
    
Related: stackoverflow.com/questions/6422700/… –  kevinarpe Oct 25 '14 at 18:28

7 Answers 7

up vote 56 down vote accepted

You can use the python sorting functions' key parameter to sort the index array instead.

>>> s = [2, 3, 1, 4, 5]
>>> sorted(range(len(s)), key=lambda k: s[k])
[2, 0, 1, 3, 4]
>>> 
share|improve this answer
8  
Use range(len(s)) to allow for different sizes of s –  Shawn Chin Oct 21 '11 at 15:09

You can do this with numpy's argsort method if you have numpy available:

>>> import numpy
>>> vals = numpy.array([2,3,1,4,5])
>>> vals
array([2, 3, 1, 4, 5])
>>> sort_index = numpy.argsort(vals)
>>> sort_index
array([2, 0, 1, 3, 4])

If not available, taken from this question, this is the fastest method:

>>> vals = [2,3,1,4,5]
>>> sorted(range(len(vals)), key=vals.__getitem__)
[2, 0, 1, 3, 4]
share|improve this answer
    
Very nice. So the NumPy version is faster than the sorted(...) version? –  Iulius Curt Aug 17 '13 at 9:26
1  
For large arrays, yes. –  jterrace Aug 17 '13 at 18:05

How about

l1 = [2,3,1,4,5]
l2 = [l1.index(x) for x in sorted(l1)]
share|improve this answer
5  
This is O(n^2)... –  Felix Kling Oct 21 '11 at 14:55

What I would do, looking at your specific need:

Say you have list a with some values, and your keys are in the attribute x of the objects stored in list b

keys = {i:j.x for i,j in zip(a, b)}
a.sort(key=keys.__get_item__)

With this method you get your list ordered without having to construct the intermediate permutation list you were asking for.

share|improve this answer

If you need both the sorted list and the list of indices, you could do:

>>> L = [2,3,1,4,5]
>>> from operator import itemgetter
>>> indices, L_sorted = zip(*sorted(enumerate(L), key=itemgetter(1)))
>>> list(L_sorted)
[1, 2, 3, 4, 5]
>>> list(indices)
[2, 0, 1, 3, 4]

Or, for Python <2.4 (no itemgetter or sorted):

>>> temp = [(v,i) for i,v in enumerate(L)]
>>> temp.sort
>>> indices, L_sorted = zip(*temp)

p.s. The zip(*iterable) idiom reverses the zip process (unzip).


Update:

To deal with your specific requirements:

"my specific need to sort a list of objects based on a property of the objects. i then need to re-order a corresponding list to match the order of the newly sorted list."

That's a long-winded way of doing it. You can achieve that with a single sort by zipping both lists together then sort using the object property as your sort key (and unzipping after).

zipped = zip(obj_list, secondary_list)
zipped_sorted = sorted(combined, key=lambda x: x[0].some_obj_attribute)
obj_list, secondary_list = map(list, zip(*zipped_sorted))

Here's a simple example, using strings to represent your object. Here we use the length of the string as the key for sorting.:

>>> str_list = ["banana", "apple", "nom", "Eeeeeeeeeeek"]
>>> sec_list = [0.123423, 9.231, 23, 10.11001]
>>> temp = sorted(zip(str_list, sec_list), key=lambda x: len(x[0]))
>>> str_list, sec_list = map(list, zip(*temp))
>>> str_list
['nom', 'apple', 'banana', 'Eeeeeeeeeeek']
>>> sec_list
[23, 9.231, 0.123423, 10.11001]
share|improve this answer

you can use numpy.argsort

or you can do:

test =  [2,3,1,4,5]
idxs = zip(*sorted([(val, i) for i, val in enumerate(test)]))[1]
share|improve this answer

Straight out of the documentation for collections.OrderedDict:

>>> # dictionary sorted by value
>>> OrderedDict(sorted(d.items(), key=lambda t: t[1]))
OrderedDict([('pear', 1), ('orange', 2), ('banana', 3), ('apple', 4)])

Adapted to the example in the original post:

>>> l=[2,3,1,4,5]
>>> OrderedDict(sorted(enumerate(l), key=lambda x: x[1])).keys()
[2, 0, 1, 3, 4]

See http://docs.python.org/library/collections.html#collections.OrderedDict for details.

share|improve this answer

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