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I've got a list of Python objects that I'd like to sort by an attribute of the objects themselves. The list looks like:

>>> ut
[<Tag: 128>, <Tag: 2008>, <Tag: <>, <Tag: actionscript>, <Tag: addresses>, <Tag: aes>, <Tag: ajax> ...]

Each object has a count:

>>> ut[1].count
1L

I need to sort the list by number of counts descending.

I've seen several methods for this, but I'm looking for best practice in Python.

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6 Answers

up vote 175 down vote accepted
# To sort the list in place...
ut.sort(key=lambda x: x.count, reverse=True)

# To return a new list, use the sorted() built-in function...
newlist = sorted(ut, key=lambda x: x.count, reverse=True)

More on sorting by keys »

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1  
Perfect. Thanks! –  Nick Sergeant Dec 31 '08 at 17:08
    
No problem. btw, if muhuk is right and it's a list of Django objects, you should consider his solution. However, for the general case of sorting objects, my solution is probably best practice. –  Triptych Dec 31 '08 at 17:12
8  
On large lists you will get better performance using operator.attrgetter('count') as your key. This is just an optimized (lower level) form of the lambda function in this answer. –  David Eyk Dec 31 '08 at 19:35
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A way that can be fastest, especially if your list has a lot of records, is to use operator.attrgetter("count"). However, this might run on an pre-operator version of Python, so it would be nice to have a fallback mechanism. You might want to do the following, then:

try: import operator
except ImportError: cmpfun= lambda x: x.count # use a lambda if no operator module
else: cmpfun= operator.attrgetter("count") # use operator since it's faster than lambda

ut.sort(key=cmpfun, reverse=True) # sort in-place
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3  
Here I would use the variable name "keyfun" instead of "cmpfun" to avoid confusion. The sort() method does accept a comparison function through the cmp= argument as well. –  akaihola Jan 2 '09 at 12:16
    
This doesn't seems to work if the object has dynamically added attributes, (if you've done self.__dict__ = {'some':'dict'} after the __init__ method). I don't know why it sould be different, though. –  tutuca Jan 7 '13 at 20:40
    
@tutuca: I've never replaced the instance __dict__. Note that "an object having dynamically added attributes" and "setting an object's __dict__ attribute" are almost orthogonal concepts. I'm saying that because your comment seems to imply that setting the __dict__ attribute is a requirement for dynamically adding attributes. –  tzot Jan 9 '13 at 23:14
    
@tzot: I'm looking right at this: github.com/stochastic-technologies/goatfish/blob/master/… and using that iterator here: github.com/TallerTechnologies/dishey/blob/master/app.py#L28 raises attribute error. Maybe because of python3, but still... –  tutuca Jan 10 '13 at 4:06
    
@tutuca: I would do self.__dict__.update(kwargs) instead of self.__dict__= kwargs. In any case, perhaps it's a Python 3 issue, since 2.7.3 seems to run it ok. I will investigate with Python 3 some time later. –  tzot Jan 10 '13 at 21:26
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It looks much like a list of Django ORM model instances.

Why not sort them on query like this:

ut = Tag.objects.order_by('-count')
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It is, but using django-tagging, so I was using a built-in for grabbing a Tag set by usage for a particular query set, like so: Tag.objects.usage_for_queryset(QuerySet, counts=True) –  Nick Sergeant Dec 31 '08 at 17:39
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Readers should notice that the key= method:

ut.sort(key=lambda x: x.count, reverse=True)

is many times faster than adding rich comparison operators to the objects. I was surprised to read this (page 485 of "Python in a Nutshell"). You can confirm this by running tests on this little program:

#!/usr/bin/env python
import random

class C:
    def __init__(self,count):
        self.count = count

    def __cmp__(self,other):
        return cmp(self.count,other.count)

longList = [C(random.random()) for i in xrange(1000000)] #about 6.1 secs
longList2 = longList[:]

longList.sort() #about 52 - 6.1 = 46 secs
longList2.sort(key = lambda c: c.count) #about 9 - 6.1 = 3 secs

My, very minimal, tests show the first sort is more than 10 times slower, but the book says it is only about 5 times slower in general. The reason they say is due to the highly optimizes sort algorithm used in python (timsort).

Still, its very odd that .sort(lambda) is faster than plain old .sort(). I hope they fix that.

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from operator import attrgetter
ut.sort(key = attrgetter('count'), reverse = True)
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Add rich comparison operators to the object class, then use sort() method of the list.
See rich comparison in python.


Update: Although this method would work, I think solution from Triptych is better suited to your case because way simpler.

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+1. Not the best solution in this case, but good to know this way is possible as well. –  Triptych Dec 31 '08 at 17:16
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