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I have the following structure below. Using jQuery I need to take each link and display the href below it. I can use some child selectors to write code for each but I simply want to write something that does it for all div's with the 'col' class, and will allow for future additions...

<div class="col">
    <a href="http://google.com">Google</a>
</div>

<div class="col">
    <a href="http://yahoo.com">Yahoo!</a>
</div>

<div class="col">
    <a href="http://facebook.com">Facebook</a>
</div>

<div class="col">
    <a href="http://twitter.com">Twitter</a>
</div>

The above should turn into...

<div class="col">
    <a href="http://google.com">Google</a>
    <span>http://google.com</span>
</div>

<div class="col">
    <a href="http://yahoo.com">Yahoo!</a>
    <span>http://yahoo.com</span>
</div>

<div class="col">
    <a href="http://facebook.com">Facebook</a>
    <span>http://facebook.com</span>
</div>

<div class="col">
    <a href="http://twitter.com">Twitter</a>
    <span>http://twitter.com</span>
</div>

Any help is appreciated!

share|improve this question
2  
Obligatory whathaveyoutried.com – Colin Mar 1 '12 at 18:47
    
Don't even know where to begin..If I store '.col a' href into a variable, it will be overwritten by each..haven't done something like this in a while – stewart715 Mar 1 '12 at 18:48
up vote 3 down vote accepted

This smacks of you not having tried to write the code at all. You should really be able to do this on your own.

$('.col a').each(function() {
    var $this = $(this);
    $("<span>"+$this.attr('href')+"</span>").insertAfter($this);
});
share|improve this answer
$('div.col').each(function(){
  alert($(this).find("a").attr("href"));
  //figure out the rest yourself
});
share|improve this answer
1  
+1 for being brave enough to do what I didn't :P – Interrobang Mar 1 '12 at 18:51
$('.col > a').after(function() { 
    return $('<span>', {text:this.href});
});
share|improve this answer
1  
Very simplified solution, I like it. – Josh Jones Mar 1 '12 at 18:57
    
demo: jsfiddle.net/HffG6 – squint Mar 1 '12 at 19:00

this should do it. you can use each. read more about selectors.

$(document).ready(function(){
   $("div.col").each(function(){
      var hreftext = $(this).find("a").attr("href"); 
      $(this).append("<span>" + hreftext + "</span>");
   });

}); ​

share|improve this answer

Something like this would work:

$('div.col').each(function() {
    var $a = $(this).find('a:first'),
        href = $a.attr('href');
    $('<span>').text(href).insertAfter($a);
});
share|improve this answer
$(".col").each(function(){
 var v= $(this).find("a");       
 $("<span/>",{text:v.attr('href')}).insertAfter(v);
 });

DEMO

share|improve this answer

This can be done with a basic jQuery 'append()'

JsFiddle Example

$('div.col').each(function(){
        var href = $(this).children('a:first').attr('href');
        $(this).append('<span>' + href + '</span>');
    });
share|improve this answer

yes I agree with each solution. But it would be better if you cache your selector.Otherwise each time jQuery has to dive into DOM. If its a big list may affect performance.

var col = $('.col a');
col.each(function(){
  var val = $(this).text();
  $(this).append("<span>"+val);
})​

http://jsfiddle.net/cXkqc/2/

Update

There was a mistake from my part to interpreting the question. Updated code & link.

 var col = $('.col a');
   col.each(function(){
   var val = $(this).attr('href');
   $(this).after("<span>"+val);
 })​

http://jsfiddle.net/cXkqc/3/

thanks @am not i am

share|improve this answer
    
"Otherwise each time jQuery has to dive into DOM..." That's not right. That's only the case if you're going to reuse the .col a selection. If you're only using it once, then jQuery will only do one DOM selection. – squint Mar 1 '12 at 19:29
    
oh sorry.. that sentence was a mistake. Please read it - "But it would be better to cache your selector, if you are planning to use it somewhere else". thanks - @amnotiam – Praveen Vijayan Mar 1 '12 at 19:41
    
negative mark :(? – Praveen Vijayan Mar 2 '12 at 3:30
    
I didn't down vote you, but your answer doesn't do what the question asked. I don't know why yours was accepted. – squint Mar 2 '12 at 13:32
2  
Your code does not do that. If you tested it, you would see that the output is entirely different. – squint Mar 2 '12 at 16:36

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