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I have a list of tuples like this:

[(1, 0), (2, 1), (3, 1), (6, 2), (3, 2), (2, 3)]

I want to keep the tuples which have the max first value of every tuple with the same second value. For example (2, 1) and (3, 1) share the same second (key) value, so I just want to keep the one with the max first value -> (3, 1). In the end I would get this:

[(1, 0), (3, 1), (6, 2), (2, 3)]

I don't mind at all if it is not a one-liner but I was wondering about an efficient way to go about this...

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I can't tell what you're asking... The max of what? –  TorelTwiddler Sep 28 '11 at 23:50
    
I tried to make it clear but I am not sure I was successful –  VascoP Sep 28 '11 at 23:55

4 Answers 4

up vote 5 down vote accepted
from operator import itemgetter
from itertools import groupby

[max(items) for key, items in groupby(L,key = itemgetter(1))]

It's assuming that you initial list of tuples is sorted by key values.

groupby creates an iterator that yields objects like (0, <itertools._grouper object at 0x01321330>), where the first value is the key value, the second one is another iterator which gives all the tuples with that key.

max(items) just selects the tuple with the maximum value, and since all the second values of the group are the same (and is also the key), it gives the tuple with the maximum first value.

A list comprehension is used to form an output list of tuples based on the output of these functions.

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1  
If its not you could make it so: L.sort(key=itemgetter(1)). Of course, we don't know if the OP wants stability... –  Zach Snow Sep 29 '11 at 0:01
    
@Zach Yeah, I was contemplating sorting. But I'm not sure if it's more effective that using dictionary like in the answer if KQ. Since don't need the whole initial list in the sorted order, we just need only some of the tuples. –  ovgolovin Sep 29 '11 at 0:12
    
And sorting may take more rearrangements of the items of the initial list that just passing once trough them to form a dictionary. –  ovgolovin Sep 29 '11 at 0:14
    
Since my tuples were already naturally sorted, I used this code. Thanks for the explanation. –  VascoP Sep 29 '11 at 0:21
    
More "code-dump style" answers should be updated with explanations like this, nice! –  Zach Snow Sep 29 '11 at 0:23

Probably using a dict:

rd = {}
for V,K in my_tuples:
  if V > rd.setdefault(K,V):
    rd[K] = V
result = [ (V,K) for K,V in rd.items() ]
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+1 for very nice short hand. –  Serdalis Sep 29 '11 at 0:02
    
I think this approach is more effective if the initial list is unsorted, since it takes only one passing through the tuples of initial list, hence O(n) complexity. And using groupby iterator would require initial sorting of unsorted list, so O(n*log(n)) complexity. –  ovgolovin Sep 29 '11 at 0:27
import itertools
import operator
l = [(1, 0), (2, 1), (3, 1), (6, 2), (3, 2), (2, 3)]
result = list(max(v, key=operator.itemgetter(0)) for k, v in itertools.groupby(l, operator.itemgetter(1)))
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You could use a dictionary keyed on the second element of the tuple:

l = [(1, 0), (2, 1), (3, 1), (6, 2), (3, 2), (2, 3)]
d = dict([(t[1], None) for t in l])
for v, k in l:
  if d[k] < v:
    d[k] = v 
l2 = [ (v, k) for (k, v) in d.items() if v != None ]
print l2
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1  
The itertools based solutions are a) likely to be faster and b) considerably more elegant. Use one of them. –  James Felix Black Sep 29 '11 at 0:07

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