If a have a list within a another list that looks like this...

[['Harry',9,1],['Harry',17,1],['Jake',4,1], ['Dave',9,2],['Sam',17,2],['Sam',4,2]]

How can I add the middle element together so so for 'Harry' for example, it shows up as ['Harry', 26] and also for Python to look at the group number (3rd element) and output the winner only (the one with the highest score which is the middle element). So for each group, there needs to be one winner. So the final output shows:

[['Harry', 26],['Sam',21]]

THIS QUESTION IS NOT A DUPLICATE: It has a third element as well which I am stuck about

The similar question gave me an answer of:

grouped_scores = {}
for name, score, group_number in players_info:
    if name not in grouped_scores:
        grouped_scores[name] = score
        grouped_scores[group_number] = group_number 
    else:
        grouped_scores[name] += score

But that only adds the scores up, it doesn't take out the winner from each group. Please help.

I had thought doing something like this, but I'm not sure exactly what to do...

grouped_scores = {}
for name, score, group_number in players_info:
    if name not in grouped_scores:
        grouped_scores[name] = score
    else:
        grouped_scores[name] += score
    for group in group_number:
        if grouped_scores[group_number] = group_number:
            [don't know what to do here]
up vote 5 down vote accepted

Use itertools.groupby, and collections.defaultdict:

l=[['Harry',9,1],['Harry',17,1],['Jake',4,1], ['Dave',9,2],['Sam',17,2],['Sam',4,2]]
from itertools import groupby
from collections import defaultdict
l2=[list(y) for x,y in groupby(l,key=lambda x: x[-1])]
l3=[]
for x in l2:
    d=defaultdict(int)
    for x,y,z in x:
       d[x]+=y
    l3.append(max(list(map(list,dict(d).items())),key=lambda x: x[-1]))

Now:

print(l3)

Is:

[['Harry', 26], ['Sam', 21]]
  • 1
    Can you please just add in comments so I can learn and understand what each line is doing? – user10650570 Nov 14 at 9:29
  • 1
    @Harry First two lines are importing modules, then next line is using groupby to separate in to two groups based on last element of each sub-list, next line to create empty list, next loop iterating trough the grouped ones, then create a defaultdict, then the sub-loop is adding the stuff to the defaultdict, then last line to manage how to make that dictionary into a list. – U9-Forward Nov 14 at 9:39
  • @Harry Happy to help, :-), 😊😊😊😊 – U9-Forward Nov 14 at 9:39
  • 1
    Thank you more the help!! – user10650570 Nov 14 at 9:47
  • @Harry YW. again. :D – U9-Forward Nov 14 at 10:05

you can try to use Counter and it's method most_common

Return a list of the n most common elements and their counts from the most common to the least

from collections import Counter
l = [['Harry',9,1],['Harry',17,1],['Jake',4,1], ['Dave',9,2],['Sam',17,2],['Sam',4,2]]
step = 3
results = list()
for x in range(0, len(l), step):
    cnt = Counter()
    for y in l[x: x+step]:
        cnt.update({y[0]: y[1]})
    results.append(cnt.most_common(1)[0])

will give you:

print(results)
[('Harry', 26), ('Sam', 21)]

I would aggregate the data first with a defaultdict.

>>> from collections import defaultdict
>>> 
>>> combined = defaultdict(lambda: defaultdict(int))
>>> data = [['Harry',9,1],['Harry',17,1],['Jake',4,1], ['Dave',9,2],['Sam',17,2],['Sam',4,2]]
>>> 
>>> for name, score, group in data:
...:    combined[group][name] += score
...:    
>>> combined
>>> 
defaultdict(<function __main__.<lambda>()>,
            {1: defaultdict(int, {'Harry': 26, 'Jake': 4}),
             2: defaultdict(int, {'Dave': 9, 'Sam': 21})})

Then apply max to each value in that dict.

>>> from operator import itemgetter
>>> [list(max(v.items(), key=itemgetter(1))) for v in combined.values()]
>>> [['Harry', 26], ['Sam', 21]]

use itertools.groupby and then take the middle value from the grouped element and then append it to a list passed on the maximum condition

import itertools
l=[['Harry',9,1],['Harry',17,1],['Jake',4,1], ['Dave',9,2],['Sam',17,2],['Sam',4,2]]
maxlist=[]
maxmiddleindexvalue=0
for key,value in itertools.groupby(l,key=lambda x:x[0]):
    s=0
    m=0
    for element in value:
        s+=element[1]
        m=max(m,element[1])
    if(m==maxmiddleindexvalue):
        maxlist.append([(key,s)])

    if(m>maxmiddleindexvalue):
        maxlist=[(key,s)]
        maxmiddleindexvalue=m

print(maxlist)

OUTPUT

[('Harry', 26), [('Sam', 21)]]

I created groups which hold every group's players (name and score) and extract the player with the highest score for every group:

from collections import defaultdict

data = [['Harry',9,1],['Harry',17,1],['Jake',4,1], ['Dave',9,2],['Sam',17,2],['Sam',4,2]]

# Divide the players into groups and calculate their score
groups = defaultdict(lambda: defaultdict(int))
for item in data:
    name, score, group = item[0], item[1], item[2]
    groups[group][name] += score

# Find out who are the winners                                            
winners = []                                                              
for group in groups.values():                                             
    # Take the player with highest score                                  
    winner = list(max(group.iteritems(), key=lambda x: x[1]))             
    winners.append(winner)                                                                                                                                                                            

print(winners)  # >>> [['Harry', 26], ['Sam', 21]]
  • Less readable IMO but winners calculation could be also shortened to: winners = [list(max(group.iteritems(), key=lambda x: x[1])) for group in groups.values()] – Maor Refaeli Nov 14 at 12:33

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