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I am using Python. How to make a subselection of a vector, based on the values of two other vectors with the same length?

For example this three vectors

c1 = np.array([1,9,3,5])
c2 = np.array([2,2,3,2])
c3 = np.array([2,3,2,3])

c2==2
array([ True,  True, False,  True], dtype=bool)
c3==3
array([False,  True, False,  True], dtype=bool)

I want to do something like this:

elem  = (c2==2 and c3==3)
c1sel = c1[elem]

But the first statement results in an error:

Traceback (most recent call last):
File "<stdin>", line 1, in <module>
ValueError: The truth value of an array with more than one element is ambiguous. 
Use a.any() or a.all()

In Matlab, I would use:

elem  = find(c2==2 & c3==3);
c1sel = c1(elem);

How to do this in Python?

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3 Answers 3

up vote 4 down vote accepted

You can use numpy.logical_and:

>>> c1[np.logical_and(c2==2, c3==3)]
array([9, 5])
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Thank you, this works fine! –  vincentv Apr 16 '14 at 12:31
    
As far as I can see, this does not work for more than two conditions. For three or more, I use the solution of mskimm. –  vincentv Apr 17 '14 at 14:42

Alternatively, try

>>> c1[(c2==2) & (c3==3)]
array([9, 5])

cf) By Python Operator Precedence, the priority of & is upper than ==. See the follow results.

>>> 1 == 1 & 2 == 2
False

>>> (1 == 1) & (2 == 2)
True
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I still don't understand the difference between 'and' and '&'. I will read more about it. –  vincentv Apr 16 '14 at 12:46
    
see stackoverflow.com/questions/3845018/… –  mskimm Apr 16 '14 at 12:51

You have to keep each of your conditions inside parenthesis:

In []: c1[(c2 == 2) & (c3 == 3)]
Out[]: array([9, 5])
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