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I want the default "CSS class"to be black, and when using this select function for "selected" to have white text. I don't know where I'm going wrong

$(function() {
   $('a.link').click(function() {
       $('a.link').removeClass('selected');
       $(this).addClass('selected');
       $(this).css('color', 'white');
       $(this).addClass('result-holder');
       $(this).css('color', 'black');


   });
});

Image demonstrating the problem:

enter image description here

http://imgur.com/AquDa

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2  
I'd guess it's because you turn the link back to black at the end of the function? –  Etienne Perot Feb 12 '12 at 7:28
    
Thanks Etienne. However, as I move down using onClick, the item above is "whited out" because there is no black. I have the problem where I want the default color (except for selected) to be black, and the selected item to be white because its on a blueish colored background. I hope I make some sort of sense (new to this!) –  Matt Cohen Feb 12 '12 at 7:31
    
You are messing inline css with classes css. Not a good idea. stick with one of them. –  gdoron Feb 12 '12 at 7:33
    
Thanks gdron - Would you propose not having "CSS classes" and using jquery to set them? –  Matt Cohen Feb 12 '12 at 7:35
    
.addClass and removeClass should be used instead of .css add to the classes definition 'color' property. –  gdoron Feb 12 '12 at 7:37

2 Answers 2

up vote 1 down vote accepted

Here is your existing code with an explanation of what it does any time any anchor tag with the class "link" is clicked:

$('a.link').removeClass('selected');   // remove 'selected' from all links
$(this).addClass('selected');          // add 'selected' to clicked link
$(this).css('color', 'white');         // turn clicked link 'white'
$(this).addClass('result-holder');     // add 'result-holder' to clicked link
$(this).css('color', 'black');         // turn clicked link 'black'

You are turning the clicked link white and then turning it back to black all in the same block of code so you'll never see it displayed as white.

I'm pretty sure what you really want to do is as follows:

$('a.link').removeClass('selected')    // remove 'selected' from all links
           .css('color', 'black');     // and make them black again

$(this).addClass('selected')           // add 'selected' to clicked link
       .css('color', 'white').         // and turn it 'white'

(Note if calling more than one function on a jQuery object you can "chain" them, like $(this).addClass('selected').css('color','white');)

I can't really tell what you want to do with the 'result-holder' class, because your current code adds it to the clicked link but doesn't remove it from anything. If you want to add it to the clicked link say $(this).addClass('result-holder') like you already do.

Note that you can simplify this by just adding color:white; to your 'selected' class definition, and setting color:black; in your default a.link styling:

a.link {
   color : black;
}    

a.selected {
   /* your existing style settings here, then: */
   color : white;
}

Here's a demo: http://jsfiddle.net/nnnnnn/6qURY/

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Here was my take on the code improvements: jsfiddle.net/Qb3Yr/1 –  Jared Farrish Feb 12 '12 at 7:46
    
And the class approach: jsfiddle.net/Qb3Yr/2 –  Jared Farrish Feb 12 '12 at 7:49
    
I solved it with this. <script> $(function() { $('a.link').click(function() { $('a.link').removeClass('selected'); $('a.link').css('color', 'black'); $(this).addClass('selected'); $(this).css('color', 'white'); }); }); </script> –  Matt Cohen Feb 12 '12 at 8:02
    
@MattCohen - You don't need to use $.css() for this; put it in the classes, that's what they're for. –  Jared Farrish Feb 12 '12 at 8:04
    
@JaredFarrish Thanks for all your help –  Matt Cohen Feb 12 '12 at 8:06

You are changing it to black again...

  $(this).css('color', 'white');
   $(this).addClass('result-holder');
   $(this).css('color', 'black');  // <====

it's equals to:

var color = 'white';
color = 'black';
alert(color); //black...
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Demo: jsfiddle.net/Qb3Yr/1 –  Jared Farrish Feb 12 '12 at 7:43
    
@JaredFarrish. Thanks for the demo. But I think it's pretty obvious what's wrong in his code... =) –  gdoron Feb 12 '12 at 7:46
    
I'm not quite sure what your comment is getting at; it was literally meant to show in practice what you were demonstrating in the answer. If you don't want it as a comment, I can remove it, but it wasn't really for you, per se. –  Jared Farrish Feb 12 '12 at 7:52
    
@JaredFarrish. Thanks! no need for that. =) –  gdoron Feb 12 '12 at 7:54
    
Thanks Jared. Can you have a look at the image and see if you see a solution to this problem? –  Matt Cohen Feb 12 '12 at 7:54

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