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Given a list of dictionaries like this:

x = [
        {'name':'a', 'student': 1 , 'age':19}, 
        {'name':'b', 'student': 0 , 'age':10}

I want to sort it by age only if student is equal to 1. Can I somehow put that if in the following statement?

sortedlist = sorted(x, key=lambda k: k['age'])


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And what of the others? – Ignacio Vazquez-Abrams Mar 26 '12 at 18:56
What do you want to do if student!=1? Throw it out? – istruble Mar 26 '12 at 18:56
and how do you want to with sorting students who are not equel to 1? , also is the lambda necessarily? – alonisser Mar 26 '12 at 18:57
yes, I just want to throw it out sort of saying... – Amir Mar 26 '12 at 19:18
I am surprised that of the 3 answers you had to choose from, you went with the slowest option :-) – jdi Mar 26 '12 at 19:46

3 Answers 3

up vote 1 down vote accepted

In the case where you want to throw out the students that aren't equal to one:

sortedlist = sorted([x for x in dicts if x['student']==1], key=lambda k:k['age'])
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If you use itemgetter + a generator, instead of a lambda + list comp, you get the best performance I have found so far. This was tested on a dicts list of 10k elements. Almost a 30% speed increase over list comp + lambda. Also, if you can safely assume 'student' is always a valid key and access it directly, you again gain more speed over having to use d.get('student', 0) == 1

from operator import itemgetter

sorted((d for d in x if d['student']==1), key=itemgetter('age'))
  • Note about lambda vs itemgetter: The reason itemgetter is faster (and I am mostly sure about this) is because the lookup is done on the C side of code. Whereas when you use a lambda you are doing it on the python side which is slower.
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Nice example of using generators instead of list comprehensions. Fastest and most pythonic answer, imo. – istruble Mar 26 '12 at 21:29
istruble: Thanks. I actually did test the numbers between all three answers. With the 10k element list, yours was ~13% faster than @sys.stderr – jdi Mar 26 '12 at 21:36

If you are just throwing out the values you can do something like this:

sorted([d for d in x if d.get('student', 0) == 1], key=itemgetter('age'))

The lambda function that you were using is a very common operation and can be replaced with itemgetter.

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I think you might have meant to use itemgetter? You cant use attrgetter on a dict I dont think. This is broken :-/ – jdi Mar 26 '12 at 19:22
Spot on comment @jdi. Thanks for the catch. I think you can tell I only use them often enough to be dangerous ;) – istruble Mar 26 '12 at 19:28
No prob. +1 for also going with itemgetter – jdi Mar 26 '12 at 20:48

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