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I'd like to build a running sum over a pandas dataframe. I have something like:

10/10/2012:  50,  0
10/11/2012: -10, 90
10/12/2012: 100, -5

And I would like to get:

10/10/2012:  50,  0
10/11/2012:  40, 90
10/12/2012: 140, 85

So every cell should be the sum of itself and all previous cells, how should I do this without using a loop.

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1  
What have you tried? –  Al G Dec 14 '12 at 12:46
5  
Hint - the normal name for "running sum" is "cumulative sum" - commonly shortened to cumsum - a quick search in the docs and you should be good to go :) –  Jon Clements Dec 14 '12 at 12:54
    
Thanks @JonClements, that was what I did search for. I just couldn't find the term I was searching for. –  leo Dec 14 '12 at 12:55
    
(Somewhat) related: stackoverflow.com/questions/12370349/… –  codeape Dec 14 '12 at 13:24

2 Answers 2

up vote 8 down vote accepted

As @JonClements mentions, you can do this using the cumsum DataFrame method:

from pandas import DataFrame
df = DataFrame({0: {'10/10/2012': 50, '10/11/2012': -10, '10/12/2012': 100}, 1: {'10/10/2012': 0, '10/11/2012': 90, '10/12/2012': -5}})

In [3]: df
Out[3]: 
              0   1
10/10/2012   50   0
10/11/2012  -10  90
10/12/2012  100  -5

In [4]: df.cumsum()
Out[4]: 
              0   1
10/10/2012   50   0
10/11/2012   40  90
10/12/2012  140  85
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For some reason, this did not work for my case. I had to do: df['XYX'] = df['XYZ'].cumsum() –  Lokesh A. R. Sep 29 '13 at 15:27
    
@user1815357 very strange! Do you mind posting an example as an issue on github (perhaps it's a bug) github.com/pydata/pandas/… –  Andy Hayden Sep 29 '13 at 17:15
    
Sure. Will do in few hours. –  Lokesh A. R. Sep 30 '13 at 12:18

In pandas it is called 'expanding' instead of cumulative I think:

http://pandas.pydata.org/pandas-docs/dev/computation.html#expanding-window-moment-functions

Anyway, you can use the exanding_sum function to achieve what you want: http://pandas.pydata.org/pandas-docs/dev/generated/pandas.stats.moments.expanding_sum.html

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