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Javascript closure inside loops - simple practical example

I seem to be struggling to understand the scope of variables in javascript.

I have the following code:

for (var i =2; i< 5;i++){
    var k = (i+1).toString()
    window['graph.point'+i].onMove = function(x,y){
        return [min(x,window['graph.point'+k].coord[0]],f(min(x,window['graph.point'+k].coord[0]))]}
    }
}

This code is supposed to put some constraints on the possible locations of some movable points I have on a graph. The problem seems to be that when the graph.point objects check to see if the constrain is satisfied, they use the last value of k, which is 6. How do I make sure these objects use the value of k that they are supposed to?

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marked as duplicate by Felix Kling, Brandan, xdazz, Musa, Dennis Aug 17 '12 at 2:47

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You have an extra end curly bracket in there –  Chris Laplante Aug 17 '12 at 2:23
    
Read up on the difference between function expressions and function declarations. Define your function within a closure to preserve the scope. –  Cecchi Aug 17 '12 at 2:26
    
@Cecchi: Function definitions and closures don't create scope. Only a function execution creates scope. –  Felix Kling Aug 17 '12 at 2:28
    
Correct you are, my mistake with the terminology. What I meant to say is to return the function from a self-executing function... which is certainly different than a closure, thanks for the correction. –  Cecchi Aug 17 '12 at 2:37
    
\@ Felix: it appears that you are correct. Should I delete this post? –  Steven Gubkin Aug 17 '12 at 2:44
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1 Answer 1

for blocks don't have their own variable scope so you need to create a new scope with an immediate function:

for (var i =2; i< 5;i++){
    var k = (i+1).toString();
    (function(k, i) {
        window['graph.point'+i].onMove = function(x,y){
            return [min(x,window['graph.point'+k].coord[0]],f(min(x,window['graph.point'+k].coord[0]))]}
        }
    })(k, i);
}
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Also, this is an excellent resource to explain references within loops (and much more): bonsaiden.github.com/JavaScript-Garden/#function.closures –  Jim Schubert Aug 17 '12 at 2:30
    
You wouldn't need to make a function(i,k) and apply to (i,k)? –  Steven Gubkin Aug 17 '12 at 2:37
    
@StevenGubkin Good point; edited. Thanks Steven. –  JohnnyHK Aug 17 '12 at 2:40
    
I tried out the code both ways and it doesn't work –  Steven Gubkin Aug 17 '12 at 2:40
    
What problem are you seeing? The statement with the return is messed up syntactically, but I'm not sure what you intended there. –  JohnnyHK Aug 17 '12 at 2:43
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