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This code really messes me up.. Could you help? There is 5 elements, with the #newlinks. In all #newlinks, there is childs of a. This code runs perfect on the first #newlinks, but after that one, it won't give the even a-elements a gray background. #newlinks.

$(function(){
    var bg  = 0;
    $("#newlinks").children("a").each(function(){
        if(bg % 2 == 0){
            $(this).css("backgroundColor", "#F2F2F2");
            bg++;
        }else{
            bg++;
        }
    });
});

I have also tried this, but i guess it won't work, because $(this) could be both the newlinks-element selected and the a-element selected.

$(function(){
    var bg  = 0;
    $("#newlinks").each(function(){
        $(this).children("a").each(function(){
            if(bg % 2 == 0){
                $(this).css("backgroundColor", "#F2F2F2");
                bg++;
            }else{
                bg++;
            }
        });
    });
});
share|improve this question
4  
IDs (i.e "newlink") must be unique on a page. Try using a class <ul class="newlink"> instead, and use the class selector; .newlink. – Matt Jun 2 '13 at 10:09
    
possible duplicate of How can i apply Jquery function to all same id – Felix Kling Jun 2 '13 at 11:08
up vote 3 down vote accepted

You can not give the same ID for more than one elements. They must be unique.

You must use classes. So that $(".newlinks") selector should work.

share|improve this answer
1  
You can also use the name="customName" property with a $("[name=customName]") selector. – KrisWebDev Jun 2 '13 at 12:02

ID should be only one per page. Please change to class like <div class="newlinks"> and then use the code below :

$(function(){
  $(".newlinks").children("a").each(function(index){
        if(index % 2 == 0){
            $(this).css("background", "#000000");
        }
    });
});
share|improve this answer

Try this jssfiddle :

$(function () {
    $("#newlinks a").each(function (index) {
        if (index % 2 == 0) {
            $(this).css("backgroundColor", "#F2F2F2");
        }
    });
});
share|improve this answer

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