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Given these 2 lists

L2 = [A,B,C,D,A,B]
L3 = [3,2,1,2,2,1]

I want to obtain

L2_WANTED = [A,B,C,D]
L3_WANTED = [5,3,1,2]

The lists are always ordered and same size and elements correspond as key value pairs eg A:3, B:2 and so on.

The objective is to eliminate the dups in L2 and sum the corresponding terms in L3 to obtain a new list with matching pairs. This is to keep a running list of items as they are added to the lists.

I tried to write a function with index but it started to get ugly. I checked itertools but could not find anything that relates; I looked at starmap() but couldn't make it work. Probably this can be done with list comprehension as well. I would appreciate any clues or directions about how to achieve this most simple way. Thank you.

EDİT

@SimonC:

>>> l2_sum = {}
>>> for i in range(0, len(L2)):
        key = L2[i]
        num = L3[i]
        l2_sum[key] = l2_sum.get(key, 0) + num


>>> l2_sum
{'A': 5, 'C': 1, 'B': 3, 'D': 2}
>>>

How does this eliminate the dupes and add the numbers? Can you give a clue? Thanks.

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3 Answers 3

up vote 2 down vote accepted

I am sure there are more elegant answer there and would come in the replies.

But for some simple answers:

L2 = ['A','B','C','D','A','B']
L3 = [3,2,1,2,2,1]

L4 = zip(L2, L3)

L5 = []
L6 = []
def freduce(l):
    for x, y in l:
        print x , y
        if x in L5:
            k = L5.index(x)
            L6[k] += y
        else:
            L5.append(x)
            L6.append(y)

freduce(L4)  
print L5
print L6

Output:

['A', 'B', 'C', 'D']
[5, 3, 1, 2]

[Edited answer for understanding the second implementation]

>>> L3 = [3,2,1,2,2,1]
>>> L2 = ['A','B','C','D','A','B']
>>> range(0, len(L2))
[0, 1, 2, 3, 4, 5]
>>> 

Hence in for i in range(0, len(L2)): ... i becomes an index

Using this index, you could extract information from L3 and L2 by doing:

key = L2[i]
num = L3[i]

Then you add information to the dict

l2_sum[key] = l2_sum.get(key, 0) + num

Here l2_sum.get(key, 0) returns 0 if the key is not present otherwise the current value.

I hope it is clear enough.

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This looks elegant to me! Thanks so much. –  Zeynel Nov 3 '10 at 5:37
    
I'm not trying to be inflammatory, but I think my answer is slightly clearer in it's intent. Although maybe that's because I come from a more procedural background and functional programming makes my head hurt... –  SimonC Nov 3 '10 at 5:54
    
Thanks. Yes, I agree. I just got a chance to look at it and I edited my question if you want to take a look. –  Zeynel Nov 4 '10 at 0:43
    
@Zeynel: I have provided a verbose explanation. –  pyfunc Nov 4 '10 at 0:54
1  
I just saw this page about Google's szl language: code.google.com/p/szl. The example they give is an answer about how to solve my question with szl language. I thought it was interesting. –  Zeynel Nov 4 '10 at 1:19

I think using zip is a nice way to combine the lists. The dict.update portion will do the summing since I fetch the previous value and update it:

foo = dict()
for x, y in zip(['A', 'B', 'C', 'D', 'A', 'B'],
                [3, 2, 1, 2, 2, 1]):
    foo[x] = y + foo.get(x, 0)

print foo

Outputs: {'A': 5, 'C': 1, 'B': 3, 'D': 2}

Edit:

While the above is fine, I'd also consider using itertools.izip which allows you to do the zip as you build the dictionary. This way you'll save on memory. All you'd need to do is replace zip with itertools.izip after importing iterools

share|improve this answer
    
nice and with a OrderedDict docs.python.org/library/… you get the order too! –  Jochen Ritzel Nov 4 '10 at 1:05
    
Totally! I think I'd consider using izip as well so you dont need to calculated the entire zip first. –  dcolish Nov 4 '10 at 1:07
    
thou foo.update({x: y + foo.get(x, 0)}) is kind of wierd, foo[x] = foo.get(x,0) + y is straight forward. –  Jochen Ritzel Nov 4 '10 at 1:11
    
Ah yes, and that's faster too... at least it has less bytecode operations. Here's proof: paste.pocoo.org/show/285810 –  dcolish Nov 4 '10 at 1:19

This will do it, but as per pyfunc, there are better ways:

l2_sum = {}
for i in range(0,len(L2)):
    key = L2[i]
    num = L3[i]
    l2_sum[key] = l2_sum.get(key, 0) + num

L2_WANTED = sorted(l2_sum.keys())
L3_WANTED = [l2_sum[key] for key in L2_WANTED]
share|improve this answer
    
Thanks for the answer. I'll look at this more carefully tomorrow but a quick try in IDLE gives an error: ` TypeError: unsupported operand type(s) for +: 'int' and 'str'` (it may be my mistake) –  Zeynel Nov 3 '10 at 5:39
    
My definitions of L2 and L3 look like: L2 = ['A','B','C','D','A','B'] L3 = [3,2,1,2,2,1] –  SimonC Nov 3 '10 at 5:50
    
Sorry, hitting enter seems to post the comment... I meant to add that you will need to change to 'num = int(L3[i])' if your L3 list contains strings. –  SimonC Nov 3 '10 at 5:52

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