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I have two lists

L1 = ['tom', 'jerry', 'spike', 'fido', 'donald', 'mickey']
L2 = [3,5,7,6,9,3]
dictionary = dict(zip(L1, L2))
print dictionary

sorted_friends = sorted(dictionary.iteritems(), key = operator.itemgetter(1), reverse= True)
print sorted_friends

Basically, I am creating a dictionary from L1 and L2. {'mickey': 3, 'tom': 3, 'jerry': 5, 'donald': 9, 'fido': 6, 'spike': 7} Sorting (reverse) sorting it by value, which gives me:[('donald', 9), ('spike', 7), ('fido', 6), ('jerry', 5), ('mickey', 3), ('tom', 3)]

I want a list of the top 3 keys: like [donald,spike,fido] But the problem is if I use any method that I know like casting to dict() etc its spoiling the sorting.

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up vote 5 down vote accepted

No need to use a dict; just create the list of tuples and sort them by the appropriate field.

sorted(zip(L1, L2), key=lambda x: x[1], reverse=True)[:3]

You can of course use operator.itemgetter(1) instead of the lambda, as you please.

If you just want the names after the fact, you can modify this:

[a for a,_ in sorted(zip(L1, L2), key=lambda x: x[1], reverse=True)][:3]

Note that you could also conveniently avoid having to specify a custom sort function at all by simply reversing the order:

[b for _,b in sorted(zip(L2, L1), reverse=True)][:3]

This works because the default sort order for tuples sorts them according to their first element, then their second, and so on - so it will sort by the values first.

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2  
operator.itemgetter() is better than a lambda here. – Gareth Latty Oct 7 '12 at 22:52
    
Also, you'll need to use the reversed flag in the sort. Right now, you're getting the 3 smallest – inspectorG4dget Oct 7 '12 at 22:52
    
@Lattyware Depends. For a quick one-off, it's an extra import and a lot longer. For large datasets, yes, it might be slightly faster, but for small sets, the difference is negligible. – Amber Oct 7 '12 at 22:52
    
@Amber thanks a lot this works like magic. Actually, my set could be large and if I wish to use operator.itemgetter() then would thsi be correct sorted(zip(L1, L2), key=operator.itemgetter(1) x: x[1])[:3] – Deepak B Oct 7 '12 at 22:58
    
No, just key=operator.itemgetter(1). The lambda x:x[1] part is the equivalent of the itemgetter call. – Amber Oct 7 '12 at 22:58

If you just want the 3 largest, why not just use heapq?

>>> L1 = ['tom', 'jerry', 'spike', 'fido', 'donald', 'mickey']
>>> L2 = [3,5,7,6,9,3]
>>> dictionary = dict(zip(L1, L2))
>>> import heapq
>>> heapq.nlargest(3, dictionary, key=dictionary.get)
['donald', 'spike', 'fido']

It's also possible, but a little tricky to skip creating the dictionary

>>> heapq.nlargest(3, L1, key=lambda x, i2=iter(L2): next(i2))
['donald', 'spike', 'fido']
share|improve this answer
    
I am not familiar with heapq, will learn and try thanks. – Deepak B Oct 8 '12 at 0:49

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