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I need to get the div containing the street address within the list. The div has a class called address ( div class="address" )

I cannot use jQuery("#storeList li .address"), because there are other elements I need to acces as well.

I have the following code:

jQuery("#storeList li").each(function() {
  var n = jQuery(this.address).text(); // <- This does not work
  alert(n);
});

How do I access each DIV element of type Address?

share|improve this question
up vote 9 down vote accepted
jQuery("#storeList li").each(function() {
  var n = jQuery(this).find(".address").text(); // <- This works
  alert(n);
});
share|improve this answer
    
Super. Thanks! :) – Steven Aug 9 '09 at 20:55
    
better to prefix the selectors with the node name also - jQuery(this).find("div.address") – redsquare Aug 9 '09 at 21:00
    
It depends. If you prefix the selector with the node name, you cannot change the structure of the elements (e.g. replace a div by a span) without having to change the javascript code. On the other hand, jQuery might select the element faster if you use node selectors. – Scharrels Aug 9 '09 at 21:04
    
Yes, node selectors will select an element faster. Conversely with CSS if you make your selector too specific, it slows down the selector process. – Will Morgan Aug 10 '09 at 8:28
    
I spent about an hour trying to build a similar query to no avail. It kept giving me objects and messages about "v" is not a function (I was using the standard "i" and "v" notation as is taught with JavaScript). I finally found this post. Eureka! My issue was that I was doing $('this') instead of $(this) (I didn't need quotes). Thanks so much! – CodeSlayer2010 Apr 23 at 22:49
$('#storeList li').each(function() 
{
  var n = $(this).find('div.address').html(); 
  alert(n);
});
share|improve this answer
jQuery("#storeList li:has(.address) .address").each(function() {
    alert(this.innerHTML);
});

An alternative that avoids using a second query. As a jQuery newbie I don't know what the tradeoffs really are though.

share|improve this answer
    
That's nice if you only care about address, but not if you have more fields, or what to handle li without addresses. Also, you don't need li:has(.address) .address, it's the same but slower than li .address - you're selecting the .address, so you know it's there. – Kobi Aug 10 '09 at 8:08
    
Very encouraging, Kobi. – Bill Bell Aug 10 '09 at 13:48
    
Is that cynical? I'm just trying to help... I didn't down vote it, by the way, though it's understandable. – Kobi Aug 10 '09 at 20:03
    
I was being sarcastic and I did assume you down-voted it. Apologies. I really can't see the point of that. Why would anyone offer a different possibility? – Bill Bell Aug 11 '09 at 13:10

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