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I've got a page which shows (html output from asp.net code behind) houses/properties. I've constructed the following javascript which, on the push of a button, changes all the css classes on the properties so the html does not change, but the css class does, to get a 2 column view.

This works fine. But then I was figuring, if the users picks the 2 column view, and navigates to the next page (it's sort of a paged list), the view is reset back to the original (begin 1 column).

So I've done the following. If the users clicks the button, and goes from 1 columnview, to 2 columnview, I save that value in window.name as 1 or 2.

Afterwards I buil this little script here:

 $(document).ready(setView());

 function setView() {
     if (window.name != null) {
         if (window.name == 2) {
             window.Show2Cols();
         }
         if (window.name == 1) {
             window.Show1Col();
         }

     }
 }

This works. The method Show2Cols() begins as following:

 function Show2Cols() {

 alert("Show2Cols is executed");
     var nodes = document.getElementById("panden").getElementsByTagName("div");
     alert("Just got all nodes.");
     for (i = 0; i < nodes.length; i++) 
     {....

So, when I change the page, it pop's up saying "Show2Cols is executed", but it does not say "just got all nodes".

As this is my first JS ever, and it's not gonna get more complicated, I'd like to ask you guys where the problem exists?

My guess is that on (document).ready() works, but then the .getElementById() methods don't work yet, as there is nothing on the page yet (visually).

Thanks in advance.

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2  
why do you combine jQuery with pure javascritp - use jQuery all the way –  scibuff Apr 12 '12 at 11:49
7  
$(document).ready(setView());; this executes setView immediately (the parens make it a call) If you want to run the function when the DOM is loaded you would $(document).ready(setView); –  Alex K. Apr 12 '12 at 11:52

1 Answer 1

up vote 5 down vote accepted

The problem is your reference to your function

$(document).ready(setView());

You are executing the function and returning its value as the DOM ready event handler,here is what you need

$(document).ready(setView);
share|improve this answer
    
Not sure I agree with the editing, it's slightly clearer for inexperienced jQuery users what the code does but it doesn't promote code optimization. We often see $(document).ready() on questions when most experienced developer will use the $(function) approach. –  gillesc Apr 12 '12 at 14:37

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