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I am looking to do what the title says. As I am new to client side programming with java script all to together I do not know the "right" and "proper" way of achieveing what I need done.

I wish to use a simple javascript function

var x;
var items = {};

for (x = 0, x < 7; x++) {
    items[x] = new num;
}

$("li").addclass("items" + num);

Is this right? Am I on the right track even?

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I would suggest getting a good book on JavaScript and jQuery. I recommend "jQuery in Action" and here's a link to the top JavaScript books on Amazon.com: amazon.com/gp/bestsellers/books/3617/ref=pd_zg_hrsr_b_1_5_last –  Chris Pietschmann Jul 27 '09 at 22:13

3 Answers 3

up vote 5 down vote accepted

I don't know what is num in your code but I suspect you want to get something like this:

$('li').each(function (i) {
    $(this).addClass('items' + i);
});

This will add a class with incrementing index to every li element. If you run $("li").addClass("items" + num) this will add the same class to all li elements.

BTW. JavaScript is case sensitive so you must write addClass instead of addclass.

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2  
You can also use the index argument with $().each() to eliminate the counter. (docs.jquery.com/Core/each) –  brianng Jul 27 '09 at 17:48
    
Updated my code. Thanks for finding that. –  RaYell Jul 27 '09 at 17:51
    
Oh I just noticed your method... That's the JQuery way (= that also solved my problem... thank you so much! –  Erik Jul 27 '09 at 18:19

More tampering....

and I found that if i did

for(var x = 0; x < 7; x++){
    $(".nav li").addClass("items_" + x);
}

I'm still not sure why the above didn't work...

oh well...

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This will add the class to all .nav li elements on each iteration. To set something different on every item, you need to lopp using $.each –  RaYell Jul 27 '09 at 19:13

RaYell is correct. You need to use $.each or you could use .eq(i).. i.e.

for(var x = 0; x < $(".nav li).length(); x++){
    $(".nav li").eq(x).addClass("items_" + x);
}
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