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I am a python newbie. I was confused on how to access array element dynamically.

I have a list b= [1,2,5,8] that I dynamically obtain so its length can vary. With help of this list I need to update multi-dimensional array as mArr[1] [2] [5] [8] . The length of the list and array dimension matches as given in the example

Basically, I am looking a technique to access a multi dimensional array with respect to the list "b" as in the form of : marr[b]. This m-array is also dynamically created.

I tried looking on to tutorials of numpy but was not figure out the solution.Am I missing something?

Thanks in advance.

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2 Answers 2

up vote 2 down vote accepted

if the dimensions are [1,2,5,8] you can use numbers 0, 0..1, 0..4, 0..7 for each dimension.

Numpy lets you access positions with tuples:

shape = [1, 2, 5, 8]
pos = [0, 1, 1, 3]

my_array = np.ones(shape)
my_array[tuple(pos)] # will return 1
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no need to do that reshape thing. Just pass the shape as parameter to np.ones –  Winston Ewert Oct 17 '11 at 3:49
    
@WinstonEwert That's right :) –  JBernardo Oct 17 '11 at 3:51
    
tx for the quick reply..can you elaborate it more..i am confused in third line...what if, if I have b=[3,4,7,8,10,20] next time, how to access my array as myarr[3][4][7][8][10][20].... –  iinception Oct 17 '11 at 3:55
    
@iinception, the third line creates an array, only the fourth line is concerned with accessing. –  Winston Ewert Oct 17 '11 at 3:58
    
tx all...tuple was the keyword I was looking forr.. :) –  iinception Oct 17 '11 at 4:04

You could create a function like:

def array_update(b, marr, value):
  if len(b) > 1:
    return array_update(b[1:], marr[b[0]], value)
  marr[b[0]] = value

Given b=[1,2,5,8], to set the value of mArr[1][2][5][8] to foo, you would call:

array_update(b, mArr, 'foo')
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tx for the ans :) –  iinception Oct 17 '11 at 4:07

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