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I am new to python and I would like to understand how one goes about manipulating the elements of an array. If I have for example:

a= ( a11 a12 a13 )  and b = (b11 b12 b13) 
     a21 a22 a23             b21 b22 b23

I have defined them in python as for example:

a=[[1,1],[2,1],[3,1]]
b=[[1,2],[2,2],[3,2]]

I saw that I cannot refer to a[1][1] but to a[1] which gives me a result of [2,1]. So, I don't understand how do I access the second row of these arrays? That would be a21, a22, a23, b21, b22, b23? And how would I do in order to multiply them as c1 = a21*b21, c2 = a22*b22, etc ?

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1  
best to start using numpy now! –  David Heffernan Aug 11 '11 at 7:23
2  
Did you get an error when trying to evaluate a[1][1]? That turns out to be 1. What did you find? –  Ray Toal Aug 11 '11 at 7:25

4 Answers 4

up vote 1 down vote accepted

If you have

a=[[1,1],[2,1],[3,1]]
b=[[1,2],[2,2],[3,2]]

Then

a[1][1]

Will work fine. It points to the second column, second row just like you wanted.

I'm not sure what you did wrong.

To multiply the cells in the third column you can just do

c = [a[2][i] * b[2][i] for i in range(len(a[2]))] 

Which will work for any number of rows.

Edit: The first number is the column, the second number is the row, with your current layout. They are both numbered from zero. If you want to switch the order you can do

a = zip(*a)

or you can create it that way:

a=[[1, 2, 3], [1, 1, 1]]
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That's because a[1] only has two items. Arrays are numbered starting from zero. a[1] is column 1, so there is only a[1][0] and a[1][1]. –  agf Aug 11 '11 at 7:50
    
wow!I am impressed with the fast answers. It was my mistake also because I simplified it to this a,b case from a bigger problem I had. And also indeed a[0][0], a[1][1] works, but as I kept trying a [1][2] I got the error:Traceback (most recent call last): File "<pyshell#20>", line 1, in <module> a[1][2] IndexError: list index out of range ... and this combined with reading on some forums that arrays are not exactly compatible with python, made me think I was doing something wrong. Thanks again everybody! –  caran Aug 11 '11 at 7:51

If you want do many calculation with 2d array, you should use NumPy array instead of nest list.

for your question, you can use:zip(*a) to transpose it:

In [55]: a=[[1,1],[2,1],[3,1]]
In [56]: zip(*a)
Out[56]: [(1, 2, 3), (1, 1, 1)]
In [57]: zip(*a)[0]
Out[57]: (1, 2, 3)
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Seems to work here:

>>> a=[[1,1],[2,1],[3,1]]
>>> a
[[1, 1], [2, 1], [3, 1]]
>>> a[1]
[2, 1]
>>> a[1][0]
2
>>> a[1][1]
1
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a[1][1] does work as expected. Do you mean a11 as the first element of the first row? Cause that would be a[0][0].

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