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I have a situation where I have invoice spreadsheets incoming with single rows that span multiple months with a quantity column containing the summation of the quantity for all months spanned.

In order to run month-by-month analytics, we need to split the total quantity into equal(ish) quantities across n rows where n is the number of months spanned.

These numbers can be off by one or two, but the smaller the difference between each element the better.

I have a rough mockup I did in python but I feel there's a better way to do this somehow. Note: Please excuse... everything:

from __future__ import division
import math
def evenDivide(num, div):
    splits = []
    sNum = str(num/div)
    remainder = float(sNum[sNum.index('.'):])
    #print "Remainder is " + str(remainder)
    integer = math.floor(num/div)
    #print "Integer is " + str(integer)
    totRemainder = round(remainder * div, 2)
    #print "Total Remainder is " + str(totRemainder)
    for index in range(div):
        if (totRemainder > 0):
            totRemainder -= 1 if (index%2 == 0) else 0
            if (index % 2 == 0):
                splits.append(int(integer + 1)) 
            else:
                splits.append(int(integer))
        else:
            splits.append(int(integer))
    for index in range(div):
        if(totRemainder > 0):
            if (index % 2 == 1):
                splits[index] += 1
                totRemainder -= 1

    return splits

def EvalSolution(splits):
    total = 0
    for index in range(len(splits)):
        total += splits[index]
    return total

def testEvenDivide():
    for index in range(20000):
        for jndex in range(3, 200):
            if (EvalSolution(evenDivide(index, jndex)) != index):
                print "Error for " + str(index) + ", " + str(jndex)
share|improve this question
    
what is the question exactly? Does your code do what you want? In that case you should post on codereview.stackexchange.com –  usethedeathstar Dec 3 '13 at 10:37
    
Can you give example inputs/outputs? –  Dogbert Dec 3 '13 at 10:38

1 Answer 1

I assume both num and div are integers (you should mention it in your question).

You can use the modulo operator to find the remainder of the division:

remainder=num%div   # i.e. 124/12 will give you 4

Integer division will give you the integer part of the result without using math.floor

integer = num/div    # i.e. 124/12 will give you 10

I would return now the (integer,remainder) tuple, but if you really need all the splits in a list, you can do:

splits=[]
for i in range(div):
   splits.append(integer)
for i in range(remainder):
   splits[i]+=1
share|improve this answer
    
BTW, Python has a built-in named divmod() which would be good for doing the first part. –  martineau Dec 3 '13 at 11:51

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