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i am trying to store data in three dimensional array i.e, x[0][0][0] in python. how to initialize x. and add values to it. i tried this.

x=[]
x[0][0][0]=value1 
x[0][0].append(value1)

both lines are giving out of range error. how to do it. i want it like. x[0][0][0]=value1, x[1][0][0]=value2, x[0][1][0]=value3 etc. how to achieve this in python.

i am looking to generate this kind of array

x=[[[11,[111],[112]],[12],[13]],[[21,[211],[212]],[22],[23],[24]],[[31],[32]]]
x[0][0][0] will give 11
x[1][0][0]  21
x[0][0][1] 111

etc

share|improve this question
    
Make x three dimensional first. –  Volatility Mar 16 '13 at 11:20
    
It's not a 3-dimensional array, it's a list of lists of lists. If you want to work with it you need to do all work manually. –  wRAR Mar 16 '13 at 11:24
    
@Volatility how to do that? –  lokesh Mar 16 '13 at 11:30
    
@wRAR manually in the sense? –  lokesh Mar 16 '13 at 11:31
    
@lokesh creating all intermediate lists –  wRAR Mar 16 '13 at 11:34

4 Answers 4

up vote 5 down vote accepted

I recommend using numpy for multidimensional arrays. It makes it much more convenient, and much faster. This would look like

import numpy as np
x = np.zeros((10,20,30)) # Make a 10 by 20 by 30 array
x[0,0,0] = value1

Still, if you don't want to use numpy, or need non-rectangular multi-dimensional arrays, you will need to treat it as a list of lists of lists, and initialize each list:

x = []
x.append([])
x[0].append([])
x[0][0].append(value1)

Edit: Or you could use the compact notation shown in ndpu's answer (x = [[[value1]]]).

share|improve this answer
    
buses[0]=[] IndexError: list assignment index out of range.. i am not interested to use numpy. with out numpy how to do? –  lokesh Mar 16 '13 at 11:29
    
@lokesh you cannot assign values to items that don't exist. Please read how to work with lists in Python. –  wRAR Mar 16 '13 at 11:35
    
@lokesh: I was a bit too quick with my initial answer. I have edited it now. Why don't you want to use numpy, by the way? –  amaurea Mar 16 '13 at 11:38
    
i can use that. but how can i initialize not as fixed array. i mean i dont know my array size at first. –  lokesh Mar 16 '13 at 11:43
    
In cases like that, I usually append all elements to a one-dimensional, flat list, and then, when I am finished reading, convert it to a numpy array and reshape it to the correct, three-dimensional shape. I.e. something like a = np.array([float(word) for line in file for word in line]); a = np.reshape(a, (a.size/10,10)). But of course, there is nothing wrong with building up the full multidimensional list first, and then converting it to an array. –  amaurea Mar 16 '13 at 11:47

If you can use numpy, you can initialize a fixed size array as:

import numpy
x = numpy.zeros((i, j, k))

where i, j and k are the dimensions required.

You can then index into that array using slice notation:

x[0, 0, 0] = value1
x[1, 0, 0] = value2
share|improve this answer
    
my array size is not fixed. can i initialize variable size –  lokesh Mar 16 '13 at 11:28
>>> x=[[[[]]]]
>>> x[0][0][0]=0
>>> x
[[[0]]]
>>> x[0][0].append(1)
>>> x
[[[0, 1]]]
share|improve this answer

If you are creating some 3D sparse array, you can save all the data in a dict:

x={}
x[0,0,0] = 11
x[1,0,0] = 21
x[0,1,1] = 111

or:

from collections import defaultdict
x = defaultdict(lambda :defaultdict(lambda :defaultdict(int)))

x[0][0][0] = 11
x[1][0][0] = 21
x[0][0][1] = 111
share|improve this answer
    
i want something mutable. x={} i can't set item to it. –  lokesh Mar 19 '13 at 10:41
    
What is "x={} i can't set item to it" means? –  HYRY Mar 19 '13 at 10:42
    
in your suggestion i want to remove x[0,0,0]. how can i remove once x created. –  lokesh Mar 19 '13 at 11:03
    
del x[0, 0, 0] –  HYRY Mar 19 '13 at 11:04
    
del x[0,0,0] working... sory for stupid question –  lokesh Mar 19 '13 at 11:04

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