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I've been trying to find the largest result in a list - using the confidence value.

Examples of the lists:

[[{u'categories': [u'health-beauty'], u'confidence': 0.3333333333333333},
 {u'categories': [u'activities-events'], u'confidence': 0.6666666666666666}]]

Would return the activities-events dictionary

[[{u'categories': [u'home-garden'], u'confidence': 0.3333333333333333},
 {u'categories': [u'None of These'], u'confidence': 0.3333333333333333},
 {u'categories': [u'toys-kids-baby'], u'confidence': 0.3333333333333333}]]

Would return all three as they are equal

[[{u'categories': [u'entertainment'], u'confidence': 1.0}]]

Would return entertainment

I tried to utilise python's max function:

seq = [x['confidence'] for x in d[0]]
max(seq)

but that just returns the value

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'the largest result' using what rule? –  user647772 Nov 12 '12 at 8:30
    
Updated the question. Thanks @Tichodroma will go ahead and do that. –  AlexZ Nov 12 '12 at 8:32
    
question and what you want should be clear. –  raton Nov 12 '12 at 11:47

4 Answers 4

up vote 1 down vote accepted

You can find the maximum confidence as in your own example, then use filter to create a list of all the maximum records:

max_conf = max(x['confidence'] for x in d[0])
filter(lambda x: x['confidence']==max_conf, d[0])

As noted in the comment below, filter could be replaced with list comprehension:

max_records = [x for x in d[0] if x['confidence'] == max_conf]
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you might mean: max_conf = max(x['confidence'] for x in d[0]); result = [x for x in d[0] if x['confidence'] == max_conf] –  J.F. Sebastian Nov 12 '12 at 8:59
    
No, I did mean to use the filter function, although I see I got the arguments wrong so I'll correct it. Of course, list comprehension is another way to it. –  aquavitae Nov 12 '12 at 9:06
    
it is still incorrect: max(d[0], key=lambda x: x['confidence']) returns the whole dictionary, not just 'confidence' part. –  J.F. Sebastian Nov 12 '12 at 9:43
    
Thanks for pointing that out. I think I need more coffee... –  aquavitae Nov 12 '12 at 10:49
max(d[0], key=lambda x: x['confidence'])

returns the whole element from d[0] with the highest confidence attribute.

Another way:

import operator as op

max(d[0], key=op.attrgetter('confidence'))
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Was really hoping that it could return all three in the 0.3333 example. But this will do. Thanks. –  AlexZ Nov 12 '12 at 8:30
sorted(d[0], key=lambda k: k['confidence'])[-1]

Just one more approach. Also returns the whole element from d[0] with the highest confidence attribute.

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If you want to retrieve all the matches with highest confidence, max is not the option. You first need to sort it by key = confidence (you can use sorted for the purpose, and operator.itemgetter to retrieve the key) and then group the elements (you can use itertools.groupby) based on the confidence. Finally return the group with the highest confidence

from itertools import groupby
from operator import itemgetter
groups = groupby(sorted(inlist[0], key = itemgetter(u'confidence'), reverse = True),
                 key = itemgetter(u'confidence'))
[e[u'categories'] for e in next(groups)[-1]]

Examples

>>> inlist = [[{u'categories': [u'health-beauty'], u'confidence': 0.3333333333333333}, {u'categories': [u'activities-events'], u'confidence': 0.6666666666666666}]]
>>> groups = groupby(sorted(inlist[0], key = operator.itemgetter(u'confidence'), reverse = True),key = operator.itemgetter(u'confidence'))
>>> [e[u'categories'] for e in next(groups)[-1]]
[[u'activities-events']]
>>> inlist = [[{u'categories': [u'home-garden'], u'confidence': 0.3333333333333333}, {u'categories': [u'None of These'], u'confidence': 0.3333333333333333}, {u'categories': [u'toys-kids-baby'], u'confidence': 0.3333333333333333}]]
>>> groups = groupby(sorted(inlist[0], key = operator.itemgetter(u'confidence'), reverse = True),key = operator.itemgetter(u'confidence'))
>>> [e[u'categories'] for e in next(groups)[-1]]
[[u'home-garden'], [u'None of These'], [u'toys-kids-baby']]
>>> inlist = [[{u'categories': [u'entertainment'], u'confidence': 1.0}]]
>>> groups = groupby(sorted(inlist[0], key = operator.itemgetter(u'confidence'), reverse = True),key = operator.itemgetter(u'confidence'))
>>> [e[u'categories'] for e in next(groups)[-1]]
[[u'entertainment']]
>>> 
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