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When I try to return object from the function and assign it to smalls variable, the variable smalls is empty as it's length is returned as 0.

var smalls = function(){
        var table = $("#box-table-a");
        return table.find("small");
    }, smallContent;
    for(var i = 0; i<smalls.length; i++){
        smallContent = smalls[i].innerHTML;
        smalls[i].parentElement.className += "relative";
        smalls[i].className += "form-absolute-right";
        smalls[i].innerHTML = "<span class='bubble'>" + smallContent + "<span>";
    }

While this works and variable smalls has the desired length.

    var table = $("#box-table-a");
    var smalls = table.find("small");       //fetch the tr's with <small> tag
    var smallContent;
    for(var i = 0; i<smalls.length; i++){
        smallContent = smalls[i].innerHTML;
        smalls[i].parentElement.className += "relative";
        smalls[i].className += "form-absolute-right";
        smalls[i].innerHTML = "<span class='bubble'>" + smallContent + "<span>";
    }

From the knowledge I have on Javascript, one can assign function to a variable. What am I doing wrong?

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1  
What do you mean by "does not work"? –  Paul Butcher Jul 27 '12 at 10:53
    
Yes, you do assign a function to a variable. But why do you need it? –  Bergi Jul 27 '12 at 11:06
    
Paul Butcher - edited the question to be more meaningful! –  Aakash Goel Jul 27 '12 at 11:18

4 Answers 4

up vote 2 down vote accepted

As others have mentioned, you loop over a function reference and not the result from executing smalls.

Yet, as you use jQuery, you can write shorter/simpler code:

var smalls = $("#box-table-a").find("small"); // this var really contains the elements
smalls.addClass("form-absolute-right").wrapInner("<span class='bubble' />");
smalls.parent().addClass("relative");

This has various advantages:

  • the classes are simply added to the list and you don't have to worry about the whitespaces.
  • wrapInner does preserve the DOM (with all listeners etc) instead of messing with html strings
  • the parent() traversing methods uniques the set, so elements with more than one table-box do get only one class
  • you don't need a loop at all, jQuery methods are executed on every item in the set.
share|improve this answer
    
Bergi - wow. Never knew that I didn't needed a loop for that. Thanks for sharing the knowledge! –  Aakash Goel Jul 27 '12 at 11:23

You forgot to execute smalls here

var smalls = function(){
        var table = $("#box-table-a");
        return table.find("small");
    }, smallContent;
    for(var i = 0; i<smalls.length; i++)
//                   ^smalls is a function pointer

var smalls = function(){
            var table = $("#box-table-a");
            return table.find("small");
        }(), smallContent;
//       ^execute the function
        for(var i = 0; i<smalls.length; i++)
//                       ^smalls is a nodeList
share|improve this answer

It's because you have to actually execute the function, not only assign it. Change your function assignment to a self-executing anonymous function, this should work.

var smalls = (function(){
    var table = $("#box-table-a");
    return table.find("small");
})(), smallContent;
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Try

var smalls = function(){
    var table = $("#box-table-a");
    return table.find("small");
}, smallContent;
for(var i = 0; i<smalls().length; i++){
    smallContent = smalls()[i].innerHTML;
    smalls()[i].parentElement.className += "relative";
    smalls()[i].className += "form-absolute-right";
    smalls()[i].innerHTML = "<span class='bubble'>" + smallContent + "<span>";
}

Because the return will never has been called without the call of the whole function.

BTW:

$('#box-table-a .small')
    .toggleClass('form-absolute-right',true)
    .wrap('<span class="bouble" />')
    .parent()
    .toggleClass('relative',tru);

may even better.

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