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How can I retrieve foo2.x the same way as I retrieve foo1.x?

var foo1 = {x: 4};
var foo2 = {x: function(){return addOne(foo1.x);}}

function addOne(var1){return (var1 + 1);}

alert(foo1.x);
alert(foo2.x()); // needs parentheses, but argument is never needed
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1  
The value is the function, so what do you want? –  Bergi Mar 6 '13 at 18:47
    
Answer: Don't do that. You should fix your objects so that they're consistent. –  SLaks Mar 6 '13 at 18:48
    
I need a way to handle them in a similar way. Say I want to draw a line, then I need something like lineFunc(foo1.x, foo2.x()). I don't want the program to check if it needs to use () or not. –  wubbewubbewubbe Mar 6 '13 at 18:50
    
@wubbewubbewubbe: Then why don't you just set foo2.x to 5? What are you trying to do with that, what are those objects made for? Some context please. –  Bergi Mar 6 '13 at 18:53

3 Answers 3

up vote 0 down vote accepted

I assume that you want to store the result of that function in foo2.x, not the function itself.

Try the following:

function addOne(n) {
    return n + 1;
}

var
foo1 = {
    x: 4
},
foo2 = {
    x: (function () {
        return addOne(foo1.x);
    }())
};

alert(foo1.x); // 4
alert(foo2.x); // 5

I've wrapped the function in foo2.x with parentheses, and put an extra pair of parens after it to execute it. So it's no longer a function, but the result of the function.

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wow! thank you so so much! –  wubbewubbewubbe Mar 6 '13 at 20:14
    
Why not just foo2 = {x: addOne(foo1.x)}? The IEFE is so useless. –  Bergi Mar 7 '13 at 12:18

It seems you want a getter function:

var foo1 = {x: 4},
    foo2 = {get x() { return foo1.x + 1; }};

foo2.x; // 5
foo1.x = 0;
foo2.x; // 1
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1  
That is cool, i have not seen this before –  Justin Bicknell Mar 6 '13 at 18:57
    
thank you, this comment proved to be more useful than I thought it would be when I first looked at it –  wubbewubbewubbe Mar 6 '13 at 23:44
    
yep, done. I used Object.defineProperty to attach it at a later time and it seems to work. Thanks! –  wubbewubbewubbe Mar 7 '13 at 0:05

foo2.x is a function, so you need to add parenthesis

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