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i have a python list whose items are objects of a class with various attributes such as birthday_score, anniversary_score , baby_score..... I want to to sort the list on the basis of one of these attributes ,say anniversary_score. How do i do it ?

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4 Answers 4

up vote 8 down vote accepted
your_list.sort(key = lambda x : x.anniversary_score)

or if the attribute name is a string then you can use :

import operator
your_list.sort(key=operator.attrgetter('anniversary_score'))
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2  
your_list.sort(key=operator.attrgetter('anniversary_score')) –  Burhan Khalid Jun 11 '13 at 7:34

attrgetter is handy if you don't know the name of the attribute in advance (eg. maybe it is from a file or a function parameter)

from operator import attrgetter

sorted(my_list, key=attrgetter('anniversary_score'))
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Using sorted:

class X():
     def __init__(self, a_s):
          self.anniversary_score = a_s

li = [X(1), X(2), X(3), X(4)]
sorted(li, key=lambda x: x.anniversary_score)

Generally, the Python Sorting Wiki has just about everything you'll ever need to know about sorting in Python.

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1  
You should really use attrgetter as shown in the wiki page you linked. –  lqc Jun 11 '13 at 7:34

One way is to define in your class the __lt__() and __eq__()methods, which will tell Python how one instance of your class should be sorted when compared to another:

class A():
    def __init__(self):
        self.sortattr = 'anniversary_score' # you can use 'baby_score', 'birthday_score' instead
    def __lt__(self, other):
        return getattr(self, self.sortattr) < getattr(other, other.sortattr)
    def __eq__(self, other):
        return getattr(self, self.sortattr) == getattr(other, other.sortattr)

Then, just use sort() as you do for a list of numbers, strings etc:

 mylist.sort() # to sort in-place

 sorted(mylist)  # to return a new sorted list
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1  
cmp is dead, use key instead –  jamylak Jun 11 '13 at 8:08
    
@jamylak I've updated the answer! Thank you for the feedback, I read that for Python 3.0 one should use __lt__() or __eq__() since __cmd__() is no longer supported. –  Saullo Castro Jun 11 '13 at 8:41

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