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After reading Automatically growing lists in Python, I'm now attempting to create an automatically growing 2 dimensional list. Basically I would say

>>> l = 2DGrowingList(' ') # Fills the inner lists with space (' ') character
>>> l[1][2] = 'x'
>>> print(l)
[[], [' ', ' ', 'x']]
>>> l[0][1] = 'a'
>>> print(l)
[[' ', 'a'], [' ', ' ', 'x']]

What I attempted was this:

class GrowingList(list):

    def __init__(self, fill):
        super().__init__()
        self.fill = fill

    def __setitem__(self, index, value):
        if index > len(self) - 1:
            self.extend([self.fill] * (index + 1 - len(self)))
        list.__setitem__(self, index, value)

Now I tried to create a new 2D list like so:

l = GrowingList(GrowingList(' '))

But it doesn't work as intented, since it uses the same instance for filling the lists:

>>> l[3][0] = 'x'
>>> print(l)
[[], [], [], ['x']]
>>> l[1][0] = 'y'
>>> print(l)
[['y'], ['y'], ['y'], 'x']

Besides, it doesn't allow me to use l[0][2] = ... instantly, but I must first call l[0] before I can access l[0][2]

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marked as duplicate by Ashwini Chaudhary, thefourtheye, roippi, Ansgar Wiechers, Lorenz Meyer Mar 16 at 13:35

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

    
@Aशwiniचhaudhary Not really, even if I used list comprehension, the same instance would still be copied... –  Skamah One Mar 16 at 11:53
    
Isn't that obvious, you need to create new instances in the list comprehension. –  Ashwini Chaudhary Mar 16 at 11:54
    
@Aशwiniचhaudhary How's that possible, the instance isn't always of the same class with sama attributes? And that doesn't fix the issue where I must set l[0] before I can access l[0][0] –  Skamah One Mar 16 at 11:58
    
Just override __getitem__ too. (and yes, the rest of the thread is a dup of the linked thread) –  roippi Mar 16 at 11:59
    
On a side note: You could just use a dict as a potential sparse container for your rows, and possibly the same for your columns... Then when you need lists, just materialise as many rows/columns as needed with suitable defaults... –  Jon Clements Mar 16 at 12:03

2 Answers 2

It would be possible to solve this by changing your class to use a factory function, rather than a fill value. But if you want to do 2D indexing directly, without ever setting anything in the outer list directly, you'll need to make __getitem__ extend the list in addition to __setitem__. That's because l[x][y] tries to get l[x] first, before setting the yth index within it.

A better approach may be to use a dictionary with keys that are row, column tuples. You can use dict.get to check for values and get a default for missing keys.

l = {}
l[3, 5] = "x"
l[0, 0] = "y"
l[9, 9] = "z"
for i in range(10):
    print("".join(l.get((i, j), ".") for j in range(10))) # "." is default value

This prints:

y.........
..........
..........
.....x....
..........
..........
..........
..........
..........
.........z
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The easiest solution for your problem might be using a callable tu build the fill value, in order to have different instances in the matrix.

    class GrowingList(list):

    def __init__(self, fill):
        super().__init__()
        self.fill = fill

    def __setitem__(self, index, value):
        if index > len(self) - 1:
            self.extend(self.fill() for i in range(index + 1 - len(self)))
        list.__setitem__(self, index, value)

Note that fill is now a callable, so you need to wrap it inside a function:

l = GrowingList(lambda: GrowingList(lambda: ' '))

You can't rely on the item multiplication idiom either, as it just repeats the value n times. To avoid this, a list comprehension is used.

This approach still has a problem, though:

l = GrowingList(lambda: GrowingList(lambda: ' '))
l[1][3] = 1

IndexError: list index out of range

You may want to consider using a dictionary for a disperse matrix as suggested by Blckknght.

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