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Asked: 2026-06-01T05:53:11+00:00

[Sorry, I’m new in Python. Although it seems to be a very basic question,

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[Sorry, I’m new in Python. Although it seems to be a very basic question, I did my share of due diligence before asking this audience, trying to avoid really stupid questions].

I’m trying to figure out the correct idiom for returning an l-value from a function. Assume I’ve a container of 64 objects, and I want to be able to return a reference to these objects.

class ChessBoard:
    def __init__(self):
        self.squares = [None for x in range(64)]

    square( row, col ):
        return self.squares(row*8+col)    <---- I'd like this to be l-value

Then, from outside the class I want to:

board = ChessBoard()
board.square(0,0) = Piece( Shapes.ROOK, Colors.White )    <-- I'm getting an error here
board.square(0,1) = Piece( Shapes.BISHOP, Colors.White )
... etc.

So, I would like the function ‘at’ to return a lvalue (Something like a reference in C++), but I can’t find anything resembling a reference or a pointer in the language. If I stored a list in each square containing one Piece, it is possible I could do something like: board.square(0,0)[0] = Piece – but it seems crazy (or maybe not – as I said, I’m new to the language).

How would you approach this data structure?

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1 Answer

  1. Editorial Team

    In Python, everything is a reference. The only problem is that None is immutable, so you can’t use the returned reference to change the value.

    You also can’t override the assignment operator, so you won’t get this particular kind of behaviour. However, a good and very flexible solution would be to override the __setitem__ and __getitem__ methods to implement the subscription operator ([]) for the class:

    class ChessBoard(object):
  def __init__(self):
    self.squares = [None] * 64

  def __setitem__(self, key, value):
    row, col = key
    self.squares[row*8 + col] = value

  def __getitem__(self, key):
    row, col = key
    return self.squares[row*8 + col]

    Usage:

    >>> c = ChessBoard()
>>> c[1,2] = 5
>>> c[1,2]
5
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