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I have some stock data based on daily close values. I need to be able to insert these values into a python list and get a median for the last 30 closes. Is there a python library that does this?

Thank you~ Yueer

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It would be more efficient to do the median of the last 29 values. If 30 was an arbitrary choice, you can avoid having to calculate the mean of the middle two if you choose an odd-numbered window size. –  Jon Cage Mar 30 '11 at 12:54
    
That's why it's nice to have a specialized library so I don't have to manipulate my preferences over the fear that there is a bug in my algorithm. It looks like pandas handles arbitrary intervals and timestamps the data. Nice! –  yueerhu Mar 30 '11 at 13:03
    
Agreed, but my point was really: Understanding the algorithms you're using can often lead to improved performance. Worth bearing in mind if/when you nede to optomise further down the road... –  Jon Cage Mar 30 '11 at 14:24

4 Answers 4

up vote 4 down vote accepted

Have you considered pandas? It is based on numpy and can automatically associate timestamps with your data, and discards any unknown dates as long as you fill it with numpy.nan. It also offers some rather powerful graphing via matplotlib.

Basically it was designed for financial analysis in python.

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3  
Nice: pandas.sourceforge.net/generated/… –  Jon Cage Mar 30 '11 at 12:45

In pure Python, having your data in a Python list a, you could do

median = sum(sorted(a[-30:])[14:16]) / 2.0

(This assumes a has at least 30 items.)

Using the NumPy package, you could use

median = numpy.median(a[-30:])
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isn't the median just the middle value in a sorted range?

so, assuming your list is stock_data:

last_thirty = stock_data[-30:]
median = sorted(last_thirty)[15]

Now you just need to get the off-by-one errors found and fixed and also handle the case of stock_data being less than 30 elements...

let us try that here a bit:

def rolling_median(data, window):
    if len(data) < window:
       subject = data[:]
    else:
       subject = data[-30:]
    return sorted(subject)[len(subject)/2]
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1  
For an list with an even number of values the median is the mean of the two middle values. –  Dave Webb Mar 30 '11 at 12:39

Yes there is:

http://www.scipy.org/

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