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I have the following list:

information = [[U1, b1, 12], [U1, b2, 15], [U1, b3, 1], [U2, b1, 6], [U2, b2, 7], [U2, b3, 43]]

I want to return a dictionary from this which will give me the highest values for a pair of U and b, in the case of the given list it would be:

bestvalues = {(U1, b2): 15, (U2, b3): 43}

how do I achieve this with simple python code, can not import extra modules.

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i don't understand. all your pairs have different U or b. How do you choose a pair of {U, b}? –  njzk2 Jul 31 '13 at 9:33

1 Answer 1

up vote 3 down vote accepted

You'd need to sort (using sorted(), then group (using itertools.groupby(), then use max() on each group.

from operator import itemgetter
from itertools import groupby

key = itemgetter(0)
bestvalues = {tuple(best[:2]): best[2] 
              for key, group in groupby(sorted(information, key=key), key=key)
              for best in (max(group, key=itemgetter(2)),)}

These are all standard-library modules.

Without any imports, you'd have to loop twice; first to group everything, then to find the maximum value for each group:

grouped = {}
for tup in information:
    grouped.setdefault(tup[0], []).append(tup)

bestvalues = {}
for group in grouped.itervalues():
    best = max(group, key=lambda g: g[2])
    bestvalues[tuple(best[:2])] = best[2]

Demo:

>>> information = [['U1', 'b1', 12], ['U1', 'b2', 15], ['U1', 'b3', 1], ['U2', 'b1', 6], ['U2', 'b2', 7], ['U2', 'b3', 43]]
>>> key = itemgetter(0)
>>> {tuple(best[:2]): best[2] 
...               for key, group in groupby(sorted(information, key=key), key=key)
...               for best in (max(group, key=itemgetter(2)),)}
{('U1', 'b2'): 15, ('U2', 'b3'): 43}

or without imports:

>>> grouped = {}
>>> for tup in information:
...     grouped.setdefault(tup[0], []).append(tup)
... 
>>> bestvalues = {}
>>> for group in grouped.itervalues():
...     best = max(group, key=lambda g: g[2])
...     bestvalues[tuple(best[:2])] = best[2]
... 
>>> bestvalues
{('U1', 'b2'): 15, ('U2', 'b3'): 43}
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Typo - operator. Also, key: max:) –  Sukrit Kalra Jul 31 '13 at 9:13
    
@SukritKalra: all fixed. –  Martijn Pieters Jul 31 '13 at 9:16
    
+1. I don't know if I should delete my answer now, you incorporated it better in your answer. :) –  Sukrit Kalra Jul 31 '13 at 9:21
    
That's up to you! If the OP found your answer to be more helpful, it'd be foolish to delete yours. –  Martijn Pieters Jul 31 '13 at 9:26
    
Deleted. You gave a great answer. :) –  Sukrit Kalra Jul 31 '13 at 9:27

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