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Is there some way iterating over a list and summing a column once there is a chnage in the name of one element.

[['a','1'],['a','2'],['a','3']....on and on, ['b','1'],['b','2'],['b','3']...
on and on....]]

So while there's 'a's at [0], sum the index 1 column, then if [0] changes (ie. 'b'), then start summing again. So I guess it could be a sort of while loop but just can't figure it out. I was thinking along the lines of (but is obviously wrong)...

    for row in list:
        for i in row:  #iterate through each row
            var = i[0] #assign first index to 'var'
            while True: #while var is one name
                for num in lst:
                    sum(float(num[1]) for num in lst if num[1])   #add column [1]
            ....then something else...

A few things- I don't want to specify the elements name ('a','b'..) because it will change. The number of element types may also change- sometimes just 'a','b' and sometimes 'c', 'd','e', etc And I need to somehow store the summed values each time the first element changes

Is this possible without using dict or modules, etc?

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3  
What's wrong with dictionaries? –  Blender May 29 '13 at 23:35
1  
You mention you don't want to use dict... do you mean you don't want to store as a dict, or don't want use to use a dict in your solution? I ask because using a dict in the solution might make it easier. –  SethMMorton May 29 '13 at 23:37
1  
Not using dict or modules makes it seem like a homework problem. If that's the case you should mention that –  gnibbler May 29 '13 at 23:43
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3 Answers

Use itertools.groupby() to group your items:

from itertools import groupby
from operator import itemgetter

sums = [(key, sum(float(i[1]) for i in group))
        for key, group in groupby(row, key=itemgetter(0))]

This produces a list of ('a', 10.0), etc. values.

The groupby() tool splits up your input sequence into groups, where the next group is determined by the key callable; when the value returned by the key callable changes, a new group is produced.

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so the 0 referred to in key=itemgetter(0) is actually the index number of the item that changes?? –  Op.Ivy May 30 '13 at 1:16
    
@Op.Ivy: Yes, itemgetter(0) returns the item at index 0 for each value in your list. So row[0][0] is a, row[1][0] is also a, so that's the same group, etc. until you get to row[n][0] and it's b, so that's a new group. –  Martijn Pieters May 30 '13 at 7:30
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This is a perfect use case for itertools.groupby(), which allows you to group elements from one iterable. It might look something like this:

from itertools import groupby
from operator import itemgetter
data = [['a','1'],['a','2'],['a','3'], ['b','1'],['b','2'],['b','3'],['b','4']]
sums = [(k, sum(float(v) for k, v in g)) for k, g in groupby(data, key=itemgetter(0))]

Result:

>>> sums
[('a', 6.0), ('b', 10.0)]
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It'd be worth noting that if the values are always integers, as in the OP's question, int() might be preferable to float(). Also, if the data is not sorted to begin with (although it appears to be in the example), it will need to be. –  Lattyware May 29 '13 at 23:38
1  
Agreed, I only used float() to be consistent with the OP's code. –  F.J May 29 '13 at 23:39
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In this case, since you are adding things, you can use a Counter

>>> from collections import Counter
>>> L = [['a', '1'], ['a', '2'], ['a', '3'], ['b', '1'], ['b', '2'], ['b', '3']]
>>> c = Counter()
>>> for i,j in L:
...  c.update({i: float(j)})
... 
>>> c
Counter({'a': 6.0, 'b': 6.0})
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What if the a key comes back again later on and the OP wants that group to be summed separately? From the question I infer that only consecutive keys should be summed. –  Martijn Pieters May 29 '13 at 23:44
    
@MartijnPieters, then it might not be what the OP wants. Depends whether keys can come up again I guess. –  gnibbler May 29 '13 at 23:46
    
They will always be consecutive –  Op.Ivy May 30 '13 at 0:03
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