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I have an array a like this:

a=[]
a.append([40,10])
a.append([50,11])

so it looks like this:

 >>> a
[[40, 10], [50, 11]]

I need to calculate the mean for each dimension separately, the result should be this:

[45,10.5]

45 being the mean of a[*][0] and 10.5 the mean of `a[*][1].

What is the most elegant way of solving this without going to a loop?

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3 Answers 3

a.mean() takes an axis argument:

In [1]: import numpy as np

In [2]: a = np.array([[40, 10], [50, 11]])

In [3]: a.mean(axis=1)     # to take the mean of each row
Out[3]: array([ 25. ,  30.5])

In [4]: a.mean(axis=0)     # to take the mean of each col
Out[4]: array([ 45. ,  10.5])

Or, as a standalone function:

In [5]: np.mean(a, axis=1)
Out[5]: array([ 25. ,  30.5])

The reason your slicing wasn't working is because this is the syntax for slicing:

In [6]: a[:,0].mean() # first column
Out[6]: 45.0

In [7]: a[:,1].mean() # second column
Out[7]: 10.5
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thanks for your quick response. What does In [n]: means? is this part of the code? –  otmezger Apr 4 '13 at 19:31
    
That's because I'm using IPython. –  askewchan Apr 4 '13 at 19:32
    
I'm using numpy, so line 2 and 3 works great, but with axis=0 instead of axis=1 –  otmezger Apr 4 '13 at 19:32
    
I see, iPhython..... thanks –  otmezger Apr 4 '13 at 19:33
1  
@otmezger You're welcome. Take note that many numpy array methods take an axis argument just like this. –  askewchan Apr 4 '13 at 19:38

Here is a non-numpy solution:

>>> a = [[40, 10], [50, 11]]
>>> [float(sum(l))/len(l) for l in zip(*a)]
[45.0, 10.5]
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If you do this a lot, NumPy is the way to go.

If for some reason you can't use NumPy:

>>> map(lambda x:sum(x)/float(len(x)), zip(*a))
[45.0, 10.5]
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