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i have a sequence of pairs (name, score), with recurring names. i would like to get the maximum score for each name. the name labels themselves are optional for the end result. this is a working implementation:

from collections import defaultdict
scores = (('eyal', 76), ('alex', 50), ('oded', 90), ('eyal', 100), ('alex', 99))
distinct = defaultdict(set)
for score in scores:
    distinct[score[0]].add(score[1])
max_scores = [max(distinct[k]) for k in distinct]
print (max_scores)

i am wondering, can this be done in one step using dictionary comprehensions?

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i understand the desire to want to reduce code, but aren't you potentially causing a maintenance nightmare for someone else? –  Woot4Moo Dec 14 '12 at 17:33
    
cant help it i am curious –  eyaler Dec 14 '12 at 17:40

1 Answer 1

up vote 5 down vote accepted
In [22]: dict(sorted(scores))
Out[22]: {'alex': 99, 'eyal': 100, 'oded': 90}

This is based on the observation that, once we sort the tuples, we only want to keep the last tuple for every name, and dict() does that nicely.

Alternatively,

In [16]: [max(vals) for _,vals in itertools.groupby(sorted(scores), lambda x:x[0])]
Out[16]: [('alex', 99), ('eyal', 100), ('oded', 90)]

This is more verbose, but also more general. For example, it can be easily adapted to compute the average score, whereas the first solution can't.

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2  
dict(sorted(scores)) should do the trick in one line then. [Damn I'm fast ;)] –  Lev Levitsky Dec 14 '12 at 17:37
2  
dict(sorted(scores)). [Wow, 4 seconds too slow!] –  DSM Dec 14 '12 at 17:37
    
Thanks guys, been a long day... –  NPE Dec 14 '12 at 17:38
1  
I liked the groupby solution too -- it scales up better to more complicated problems, even though it's not as slick at first glance. –  DSM Dec 14 '12 at 17:40
    
nice. i tested performance with timeit: op=45.6, groupby=59.6, dict(sorted)=13.5, –  eyaler Dec 14 '12 at 19:08

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