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I am playing in Python a bit again, and I found a neat book with examples. One of the examples is to plot some data. I have a .txt file with two columns and I have the data. I plotted the data just fine, but in the exercise it says: Modify your program further to calculate and plot the running average of the data, defined by:

$Y_k=\frac{1}{2r}\sum_{m=-r}^r y_{k+m}$

where r=5 in this case (and the y_k is the second column in the data file). Have the program plot both the original data and the running average on the same graph.

So far I have this:

from pylab import plot, ylim, xlim, show, xlabel, ylabel
from numpy import linspace, loadtxt

data = loadtxt("sunspots.txt", float)

x = data[:,0]
y = data[:,1]

xlabel("Months since Jan 1749.")
ylabel("No. of Sun spots")

So how do I calculate the sum? In Mathematica it's simple since it's symbolic manipulation (Sum[i, {i,0,10}] for example), but how to calculate sum in python which takes every ten points in the data and averages it, and does so until the end of points?

I looked at the book, but found nothing that would explain this :\

heltonbiker's code did the trick ^^ :D

from __future__ import division
from pylab import plot, ylim, xlim, show, xlabel, ylabel, grid
from numpy import linspace, loadtxt, ones, convolve
import numpy as numpy

data = loadtxt("sunspots.txt", float)

def movingaverage(interval, window_size):
    window= numpy.ones(int(window_size))/float(window_size)
    return numpy.convolve(interval, window, 'same')

x = data[:,0]
y = data[:,1]

y_av = movingaverage(y, 10)
plot(x, y_av,"r")
xlabel("Months since Jan 1749.")
ylabel("No. of Sun spots")

And I got this:


Thank you very much ^^ :)

share|improve this question
That's weird. Since we don't have your txt file, it's not possible to test here, but I think the xlim line should not be used (just in case) –  heltonbiker Jul 5 '12 at 21:11
I got the points from here: And removing xlim didn't help :\ –  dingo_d Jul 5 '12 at 21:14
I made a mistake in the code! you have to perform the average on the y array, not x: y_av = movingaverage(y, r) plot(x, y_av). And you can use xlim again, I think. –  heltonbiker Jul 5 '12 at 21:20
Awesome! :D Thank you ^^ –  dingo_d Jul 5 '12 at 21:26
I think we need to use "valid" instead of "same" here - return numpy.convolve(interval, window, 'same') –  ekta Oct 29 '14 at 4:12

5 Answers 5

up vote 53 down vote accepted

Best way to apply a moving/sliding average (or any other sliding window function) to a signal is by using numpy.convolve().

def movingaverage(interval, window_size):
    window = numpy.ones(int(window_size))/float(window_size)
    return numpy.convolve(interval, window, 'same')

Here, interval is your x array, and window_size is the number of samples to consider. The window will be centered on each sample, so it takes samples before and after the current sample in order to calculate the average. Your code would become:


x_av = movingaverage(interval, r)
plot(x_av, y)

xlabel("Months since Jan 1749.")
ylabel("No. of Sun spots")

Hope this helps!

share|improve this answer
Here I get error: Traceback (most recent call last): File "C:/Users/*****/Desktop/", line 18, in <module> x_av = movingaverage(x, 5) File "C:/Users/*****/Desktop/", line 8, in movingaverage window= numpy.ones(int(window_size))/float(window_size) NameError: global name 'numpy' is not defined –  dingo_d Jul 5 '12 at 20:57
Well, that means you didn't import numpy. In fact, you imported just some functions from it: linspace and loadtxt. You should add ones and convolve to that ;o) –  heltonbiker Jul 5 '12 at 21:04
I edited my code and now I have the image, but the average is only on last part of the graph, should I manually change interval to sort that out? –  dingo_d Jul 5 '12 at 21:09

A moving average is a convolution, and numpy will be faster than most pure python operations. This will give you the 10 point moving average.

import numpy as np
smoothed = np.convolve(data, np.ones(10)/10)

I would also strongly suggest using the great pandas package if you are working with timeseries data. There are some nice moving average operations built in.

share|improve this answer
I get Error: Traceback (most recent call last): File "C:/Users/*****/Desktop/", line 7, in <module> smoothed = np.convolve(data, np.ones(10)/(10)) File "C:\Python26\lib\site-packages\numpy\core\", line 787, in convolve return multiarray.correlate(a, v[::-1], mode) ValueError: object too deep for desired array –  dingo_d Jul 5 '12 at 20:49
Thats b/c data in your case is a multiple dimension numpy array, and you should be passing a one dimension array. In your case, it would be smoothed = np.convolve(y, np.ones/10) –  reptilicus Jul 6 '12 at 14:55

There is a problem with the accepted answer. I think we need to use "valid" instead of "same" here - return numpy.convolve(interval, window, 'same') .

As an Example try out the MA of this data-set = [1,5,7,2,6,7,8,2,2,7,8,3,7,3,7,3,15,6] - the result should be [4.2,5.4,6.0,5.0,5.0,5.2,5.4,4.4,5.4,5.6,5.6,4.6,7.0,6.8], but having "same" gives us an incorrect output of [2.6,3.0,4.2,5.4,6.0,5.0,5.0,5.2,5.4,4.4,5.4,5.6,5.6, 4.6,7.0,6.8,6.2,4.8]

Rusty code to try this out -:

for index in xrange(len(dataset)):
    if index <=len(dataset)-window_size :
        tmp=(dataset[index]+ dataset[index+1]+ dataset[index+2]+ dataset[index+3]+ dataset[index+4])/5.0

result==movingaverage(y, window_size) 

Try this with valid & same and see whether the math makes sense.

See also -:

share|improve this answer
Haven't tried this out, but I'll look into it, It's been a while since I've coded in Python. –  dingo_d Oct 29 '14 at 7:07
@dingo_d Why don't you quickly try this out with the rusty code (and the sample data-set(as a simple list), I posted ? For some lazy people(like I had been at first) - its masks out the fact that moving average is incorrect.Probably you should consider editing your original answer. I tried it just yesterday and double checking saved me face from looking bad at reporting to Cxo level. All you need to do, is to try your same moving average once with "valid" and other time with "same" - and once you are convinced give me some love(aka-up-vote) –  ekta Oct 29 '14 at 7:16
I'm at work currently so I don't have the access to Python, but when I'm at home I'll try it :) –  dingo_d Oct 29 '14 at 7:25
I'm sorry I haven't gotten back to you, I couldn't get the Python to work on my comp back then so I forgot about this. I've installed it again, and I tried to put the 'valid' in convolve, and got the error ValueError: x and y must have same first dimension. I checked the length of my array and they were the same. I even did the x = numpy.array(data[:,0]) y = numpy.array(data[:,1]), but I still got the same error. –  dingo_d Aug 29 at 13:07
ravgs = [sum(data[i:i+5])/5. for i in range(len(data)-4)]

This isn't the most efficient approach but it will give your answer and I'm unclear if your window is 5 points or 10. If its 10, replace each 5 with 10 and the 4 with 9.

share|improve this answer

I think something like:

aves = [sum(data[i:i+6]) for i in range(0, len(data), 5)]

But I always have to double check the indices are doing what I expect. The range you want is (0, 5, 10, ...) and data[0:6] will give you data[0][5]

ETA: oops, and you want ave rather than sum, of course. So actually using your code and the formula:

r = 5
x = data[:,0]
y1 = data[:,1]
y2 = [ave(y1[i-r:i+r]) for i in range(r, len(y1), 2*r)]
y = [y1, y2]
share|improve this answer
With this I am getting a bunch of arrays, and I get errors when I try to plot them :\ –  dingo_d Jul 5 '12 at 20:36
Sorry, didn't fix a typo, should be y1[i-r:i+r] instead of data –  dreadsci Jul 5 '12 at 20:41
And anyway, y1 has len(y1) points and y2 has len(y1)/2r points want to add them separately to the graph. Go with the convolve solutions instead! –  dreadsci Jul 5 '12 at 20:46
Again, for y2 I get that they are [array[number, number], array[number, number]...] :\ I need to get numbers to plot :\ –  dingo_d Jul 5 '12 at 20:58

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