Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I'm trying to pass a variable by reference, but it isn't working like it should (or I've hoped it would).

boardCopy is still empty after callMeMaybe has been called and I don't know why. If I copy the board already in the first function with boardCopy = board.slice(0) and don't do this in the second function it's working, but that isn't an option, because the real board will be much bigger and callMeAnytime will be a recursive function and much more complex.

callMeAnytime(3, [], [1, 0, 1, 1]);

function callMeAnytime(index, moves, board) {
    for (var i = index; i >= 0; i--) {
        var boardCopy = [];
        callMeMaybe(i, board, boardCopy)
        console.log(board); // [1, 1, 1, 1]
        console.log(boardCopy); // []
    }
}

function callMeMaybe(i, board, boardCopy) {
    if (board[i] == 1) {
        boardCopy = board.slice(0);
        boardCopy[i] = 0;
        console.log(board); // [1, 1, 1, 1]
        console.log(boardCopy); // [1, 1, 1, 0]
    }
}
share|improve this question
    
So what does the Javascript debugger in your browser's developer tools say about all this? –  millimoose Jun 23 '13 at 0:24
    
Anyway, boardCopy = ... replaces the value of the local variable boardCopy with the right hand side of the assignment. Why would you expect it to change anything in the calling function? Javascript doesn't even have pass-by-reference semantics. –  millimoose Jun 23 '13 at 0:26
2  
Pass-by-reference is a well defined term for parameter passing. JavaScript does not support pass by reference, only pass by value. In case of arrays and objects the value is a reference to the object. You can modify the object itself, but you cannot assign a different value to variable (and expect it to be changed outside after the function call). –  Felix Kling Jun 23 '13 at 0:28
    
Thanks, got it now. :) –  Sam Jun 23 '13 at 1:19

2 Answers 2

up vote 2 down vote accepted

As has been mentioned, javascript uses pass-by-value, you can modify the objects elements/properties but not replace the object itself. slice returns a new array to the object. You will have to something like this instead.

slice does not alter the original array, but returns a new "one level deep" copy that contains copies of the elements sliced from the original array.

function callMeMaybe(i, board, boardCopy) {
    if (board[i] == 1) {
        //boardCopy = board.slice(0);
        var length = board.length,
            j = 0;

        boardCopy.length = 0;
        while (j < length) {
            if (Object.prototype.hasOwnProperty.call(board, j)) {
                boardCopy[j] = board[j];
            }

            j += 1;
        }

        boardCopy[i] = 0;
        console.log(board);
        console.log(boardCopy);
    }
}
share|improve this answer
    
Thanks, got it now, will do it like this. –  Sam Jun 23 '13 at 1:20
    
you can also use [].push.apply(boardCopy, board); instead of the loop and conditional, tends to be faster... –  dandavis Jun 23 '13 at 5:41
    
true, though depending on the size of the array you could exceed the maximum stack with that method. –  Xotic750 Jun 23 '13 at 11:47

You're assigning a new value to the local variable. It works when you do the splicing in callMeAnytime because that gets assigned to the "master/original variable" (which is passed to callMeMaybe, so callMeMaybe doesn't reassign the local variable)

Edit: And as millimoose stated, you can't pass by reference in Javascript in the first place. If you give us more details on what you're trying to do, we can probably point you in the right direction.

share|improve this answer
1  
The OP is passing the array by value, which is also the source of his problem. To the best of my knowledge you can't pass variables by reference in Javascript at all. –  millimoose Jun 23 '13 at 0:27
    
@millimoose good point. I forgot about that –  Raekye Jun 23 '13 at 0:28

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.