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Going to be outputting percentages dynamically 0-100%

Want to add CSS class based on percentage. Red for 0% and Blue for 100% progressively.

Markup would be

<span class="blue">100%</span>

Originally I had thought something along this line....

$("span:contains('100%')").css("color", "#0000ff");

But contains only searching first integer and applying different classes for 1,2,3,4,5,6,7,8,9 only problem with this method is single digit numbers would be treated the same as double. IE 7% and 70% would have the same class and wouldn't be correct.

These aren't specific amounts, they are going to dynamically change all the time. I am not very good at writing my own jquery so any help is appreciated.

share|improve this question
    
I don't understand the question. Regardless of the code used to create it, what output are you expecting for values other than 0% or 100%? Let's say we have 70%: what should the class name look like? –  KOGI Jun 8 '11 at 19:56
    
Is this written in another language - PHP, ASP...etc? Or just straight HTML? –  Dave Jun 8 '11 at 19:57
    
I tried what I think you described above in jsfiddle, jsfiddle.net/PPwEq, in both Firefox 4 and IE 9, and I don't see any problem...that is, if I understood the question correctly, which I'm not sure I have... –  Cupcake Jun 8 '11 at 20:00

3 Answers 3

DEMO: http://jsfiddle.net/JAAulde/GJh3j/

Contains is going to be a pretty expensive query if you have a lot of elements on the page. I would:

Add a class to all elements:

<span class="percent-holder">100%</span>
<span class="percent-holder">100%</span>
<span class="percent-holder">0%</span>
<span class="percent-holder">100%</span>

Find all those elements, analyze their text, do what you want:

$( '.percent-holder' ).each( function()
{
    var $this = $( this ),
        classToAdd = null;

    switch( $this.text() )
    {
        case '100%':
            classToAdd = 'blue';
            break;

        case '0%':
            classToAdd = 'red';
            break;
    }

    if( classToAdd !== null )
    {
        $this.addClass( classToAdd );
    }
} );
share|improve this answer
    
Why does the variable name $this have a $ in front of it? –  Wex Jun 8 '11 at 20:07
    
Because it's this after having been run through the jQuery factory ( $( this ) ). Could be named anything. I just like that particular style. –  JAAulde Jun 8 '11 at 20:08
1  
Gotcha. Wasn't sure if it was a naming convention, or if it had any special meaning. Thanks –  Wex Jun 8 '11 at 20:10

I see nothing wrong with using :contains() (see http://jsfiddle.net/b3tUf/), but if you want to change your code, you could always just use conditional statements.

if( $("span").text() == "0%" ) {
    $("span").css("color", "#0000ff");
} elseif ( $("span").text() == "100%" ) {
    ...
}

or for classes:

if( $("span").text() == "0%" ) {
    $("span").removeClass().addClass("red");
} elseif ( $("span").text() == "100%" ) {
    $("span").removeClass().addClass("blue");
}
share|improve this answer

If you wanna manage the percentage colors yourself manually, you could do it like this:

$('span').css('color', function() {
 var percentage = parseInt($(this).text());  
    switch(percentage){
        case 100:
          return "red";
        case 90:
          return "gray";                 
    }
});

example: http://jsfiddle.net/niklasvh/zqwqe/

edit: alternatively you could calculate the color value dynamically, so you wouldn't have to define each percentage seperately.

    $('<span />').appendTo($('body')).text(i+"%").css('color', function() {
        var percentage = parseInt($(this).text());  
        var colors = [Math.round(255*(percentage/100)),0,255-Math.round(255*(percentage/100))];
        return "rgb("+colors+")";   
        });

example: http://jsfiddle.net/niklasvh/zqwqe/29/

share|improve this answer
    
If the text is 100%, parseInt probably wouldn't do the job for you. –  Wex Jun 8 '11 at 20:06
    
@Wex 100 is an integer? It seems to be working fine in the example. Could you please elaborate why it wouldn't work? –  Niklas Jun 8 '11 at 20:07
    
My mistake, I'm far too used to working with C++ to be jumping to conclusions like that. –  Wex Jun 8 '11 at 20:09
    
@Wex I'm not denying it could be the case, I just don't see why it would do that. Isn't a string in C++ which contains "100%", when parsed to an integer, also 100? –  Niklas Jun 8 '11 at 20:19

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