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I need a Javascript equivalent to the following code. I am converting a php website into a django website and on a static page I have the following:

<li<?if($page == "home") {?> class="active"<?}?>><a href="/home" title="Home">Home</a></li>

The problem is I would like to remove the php here and have the class="active" when on that page using javascript

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That would be javascript you are looking at. CSS for the styling, and JS for the dynamic changes. However, I would avoid that as some browsers have JS disabled. Never rely on JS for accessibility. Only use it for enhancements. –  Cole Johnson Jul 12 '12 at 0:37
    
I'll just pray && hope you'll never be able to do that with CSS. –  iccthedral Jul 12 '12 at 0:38
    
@ColeJohnson: This would definitely be an enhancement. You are correct but I think the fear of disabled JS goes a little too far sometimes. –  Wesley Murch Jul 12 '12 at 0:40
    
@WesleyMurch always play it safe. –  Cole Johnson Jul 12 '12 at 0:41
    
yes I know CSS is mainly for styling, but I was curious if there was some small method added into CSS since this I feel is a common part of many webpages –  Christopher H Jul 12 '12 at 0:46

5 Answers 5

up vote 1 down vote accepted

If you REALLY need to do this, you can use .addClass() in jquery http://api.jquery.com/addClass/

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How would you select the correct element to addClass to it? –  Wesley Murch Jul 12 '12 at 0:49
    
@WesleyMurch .ready() then he'd have to dig through the DOM a bit to get to menu, or simply add an id to it and target that after the page loads –  Paul Dessert Jul 12 '12 at 0:51
    
I think I will just use jquery... just thought I would ask if there was some CSS hack for this –  Christopher H Jul 12 '12 at 0:52
    
If he can "add an id" then I would assume he could add a class... I guess I don't understand. I guess you could search for the links that have element.href === window.location.href –  Wesley Murch Jul 12 '12 at 0:53
    
@WesleyMurch - that's what I was getting at. It's a major hack, but I guess would work if it needed to –  Paul Dessert Jul 12 '12 at 0:55

You don't need javascript for this. You can dynamically add a class to the body tag, like so:

<body class="blog">

...and add a class to each of your links like so:

<a class="home" href="" >...</a>
<a class="blog" href="" >...</a>
<a class="about" href="" >...</a>

...and then add this rule to your css:

body.blog a.blog, body.home a.home, body.about a.about
{
    // Do stuff that you only want applied to the "active" page link
}

The basic idea is that this only applies your 'active' styling to the element on the page with the correct match between the body tags class, and the element you want styled's class

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Please use the "Answer" box for solutions, not comments. –  Wesley Murch Jul 12 '12 at 0:55
    
updated, just wanted to catch @Christopher's attention before he did the more complex solution. My apologies for the confusion –  JoeCortopassi Jul 12 '12 at 0:58
    
OK, but in the future don't use placeholder answers such as "You don't need javascript for this.". –  Wesley Murch Jul 12 '12 at 0:59
    
Agreed. Can you remove your delete vote? –  JoeCortopassi Jul 12 '12 at 1:00
    
Actually I'll upvote instead because this is a rather clever approach. –  Wesley Murch Jul 12 '12 at 1:01

to get current page in js,

var currentpage = document.location.href
// this will return the full path e.g. http://www.home/home.html
var homepage = currentpage.search(/home.html/);

if (homepage >-1)...
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There is no CSS equivalent. CSS isn't that smart (yet). You can do something in JavaScript but that would be silly if you already can do it with a server side language.

Note The original title asked for CSS, not JavaScript. It has since been edited.

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CSS is a language for styling HTML elements.

PHP is a server-side scripting language.

There's a big difference with that. You cannot do what CSS can do in PHP, and vice versa. Imagine an artist, and an engineer.

JavaScript is your closest way. It's a client-side scripting language. And to do what you want to do, in jQuery:

$('li').addClass('active');

But of course, you need to post more of your code.

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