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I am trying to change an image on the fact of the CSS of .slidingDiv. This is the code I have so far:

$(document).ready(function(){
    var a = $('.slidingDiv').css({'display':'none'});
    var b = $('.slidingDiv').css({'display' : 'table-row'});

    if (a > b) {
        a.find('.imgchange img').attr('src','http://illiweb.com/fa/m/tabs_less1.gif');
    } else  if (a<b){
        $('.imgchange img').attr('src','http://illiweb.com/fa/m/tabs_more1.gif');
    }
});​

Can anyone explain what I am doing wrong?

EDIT: I am trying to make the tabs_more1.gif appear if the div is closed (display:none;) and the tabs_less1.gif appear if they are opened (display:table-row;

Code to open and close the divs:

$(document).ready(function() {
  $(".slidingDiv").hide();  
$('.secondarytitle').click(function() {  
    $(this).closest('tr').siblings('.slidingDiv').slideToggle(); 
});  
  });
share|improve this question
6  
Why are you comparing a and b? They're not numbers. –  Juhana Dec 20 '12 at 21:23
    
There are a lot of reasons this code doesn't work. Could you explain what you are trying to accomplish? –  Jason Whitted Dec 20 '12 at 21:26
1  
Yea I'm not sure this is doing what you need. Based on the image name it looks like you want to swap out a less or more image if the div is visible or not - is that correct? If so your if should check for :visible –  Syon Dec 20 '12 at 21:27
    
a and b need to be a numbers? This is first time using if else on a code like this. so we can't do this a>b? –  EasyBB Dec 20 '12 at 21:44
    
edited the above to explain more guys –  EasyBB Dec 20 '12 at 21:45
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2 Answers

up vote 2 down vote accepted

Just test for the visibility of the .slidingDiv.

In your code, a and b are returning jQuery itself, not numbers. jQuery.fn.css passed with two arguments or an object as its first argument will set the CSS to your 2nd argument's string value or object's value. You are hiding your slidingDiv element, and then showing it again so fast the eye probably wouldn't notice it. jQuery is being returned so you can chain methods together.

What you want to do depends on when you want to do it.

If you want to change the image after, provide a callback function as the second argument to slideToggle in your code. It is the function that executes when .slidingDiv stops sliding/animating. Within the function you can check for anything you want after that; it is guaranteed that your div will either be fully displayed or fully hidden and that jQuery will correctly evaluate the currently applied CSS styles to .slidingDiv.

$(document).ready(function() {
    $(".slidingDiv").hide();  
    $('.secondarytitle').click(function() {  
        $(this).closest('tr').siblings('.slidingDiv').slideToggle(undefined, changeImage); 
    });  
});

function changeImage() {
    var slidingEl = $('.slidingDiv'),
        isVisibleBool = slidingEl.is(':visible'),
        imgToChangeEl = $('.imgchange img');

    if (true === isVisibleBool) {
        imgToChangeEl.attr('src','http://illiweb.com/fa/m/tabs_less1.gif');
    } else {
        imgToChangeEl.attr('src','http://illiweb.com/fa/m/tabs_more1.gif');
    }
}

If you want to change the image before, put the changeImage call before the slideToggle call. You can save the callback function for another day. However, note that hide does accept a callback function as a parameter.

share|improve this answer
    
this code changes them to the tabs_more1 but when opened it doesn't change em to the less1.gif? –  EasyBB Dec 20 '12 at 21:43
    
You're going to have to add an event handler to when it's opened. Or wrap the code in a setInterval/setTimeout. –  danronmoon Dec 20 '12 at 21:50
    
@danronmoon, do you have code that opens/closes the divs ? if so edit you question and add that code as well –  Gaby aka G. Petrioli Dec 20 '12 at 21:52
    
I do have code that opens and closes, i believe @GabyakaG.Petrioli was talking to me :) and an event handler like so onClick="" –  EasyBB Dec 20 '12 at 22:05
1  
I edited my answer and included your code. –  danronmoon Dec 21 '12 at 1:39
show 3 more comments

First

var a = $('.slidingDiv').css({'display':'none'});
var b = $('.slidingDiv').css({'display' : 'table-row'});

These two line target the same elements, so the second is overriding what the first one does.


Then you are comparing (a > b). What do you expect from this ? you are comparing two jquery objects (with the same contents at this moment)


In the else you do

('.imgchange img').

You seem to be missing the $ at the start..

share|improve this answer
    
oops about the $, though I figured they were different variables since I change the display from none to table-row –  EasyBB Dec 20 '12 at 21:41
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