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I am trying to make a board game, since every move has to be valid, so I am making a copy of board and make a move so I can verify if that move is valid or not.

First I initialize all the positions on the board to be 0 (iterate through the board and set every p to 0

 pair<int, int> p(y, x); 
 board_[p] = 0;

This is the copy board method

void Board::copy(Board & gb) {
for (int y = MIN_Y; y <= MAX_Y; ++y) {
    for (int x = MIN_X; x <= MAX_X; ++x) {
        pair<int, int> p(y, x); 
        if (gb.board_.at(p) != 0) {
            board_[p] = new Pieces(*gb.board_.at(p));  // **where I am confused**
        } else {
            board_[p] = 0;
        }   
    }
}
}

My container in Board is:

map<pair<int,int>, Pieces*> board_;

Now in a play method, I make a copy of the board

unsigned int play(Board & b){
   b.copy(*this);
}

My question: both

board_[p] = new Pieces(*gb.board_.at(p)); //Pieces is a class I defined

and

board_[p] = gb.board_.at(p);

compile without any errors or warnings. Which one should I use though?

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5 Answers 5

up vote 1 down vote accepted

Either may be correct, but you probably want the first one. The first will copy each of the Pieces over to the new board - this is known as a deep copy. The second will only copy the pointers to each Pieces over, so both boards point at the same set of Pieces - this is a shallow copy.

However, there is a bigger issue here. You are defining a copy function, but C++ gives us a language feature for doing this - copy constructors. You should instead define a function like so:

Board::Board(const Board& other_board) {
  // Copy everything from other_board to this board
}

And you would use it like so:

Board board;
Board newBoard(b);
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In fact I had: Board::Board(Board & gb): board_() { copy(gb); } –  HoKy22 Feb 19 '13 at 22:52
    
Is it essentially a copy constructor? –  HoKy22 Feb 19 '13 at 22:53
    
@HoKy22 It should take a const Board& to be a copy constructor. –  Joseph Mansfield Feb 19 '13 at 23:05
    
Why do I need the const? Looks it's working fine without const –  HoKy22 Feb 19 '13 at 23:25

This is a shallow copy:

board_[p] = gb.board_.at(p);

This is a deep copy:

board_[p] = new Pieces(*gb.board_.at(p));

The first one only copies a pointer, so a change to a piece in board_ will result in a change to the same piece in gb.board_. The second one actually copies the data, so changes are isolated.

Which to use depends on your application. If you want changes to propagate, then shallow copy. Otherwise, you'll need a deep copy.

It's worth noting that your code snippet makes it look like you are at risk for a serious memory leak. You are creating new pieces, but never delete-ing them.

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So, board_[p] can be a pointer to a Pieces ?

Then the first one is correct. the second one is the piece id number (not the pointer that you really intended to assign, from my understanding).

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Since you wouldn't like to modify the original, you need a deep copy. The second one is a shallow copy. So you will need the first one.

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The first would make a deep copy, i.e. copying the objects (cloning them), while the second would make a shallow copy, i.e. copying the pointers to the objects. In the later case you'd have to boards having references to the same instances of the Piece objects. The problem with this is that if one of the boards deletes the pieces, the other will point to dangling memory.

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