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If got three nested elements:

<div class='container' fb-href='someUrl'>
   <span class='someText'>
         Lorem ipsum dolor sit amet, <a href='url'>consectetur</a> adipiscing.
   </span>
</div>

On the outer div I've got an click event:

$('.container').click(function(){
   window.open($(this).attr('fb-href'));
});

How can I avoid the event being fired if I click the url within .someText? (Because I off course want to let the user go to the a-link instead of the container-link.)

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1  
Take a look at event.stopPropagation –  elclanrs Mar 2 '13 at 23:09

2 Answers 2

up vote 1 down vote accepted

Make the callback accept an event parameter and see what kind of element initiated the event:

$('.container').click(function(event){
   if(event.target.tagName != 'A') {
     window.open($(this).attr('fb-href'));
   }
});
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How can I avoid the event being fired if I click the url within .someText? (Because I off course want to let the user go to the a-link instead of the container-link.)

Two ways:

  1. Hook the click event on .someText and use stopPropagation on the event object.

    $(".someText").click(function(e) {
        e.stopPropagation();
    });
    
  2. In the click handler on the .container, look at e.target and ignore the click if it's on a .someText.

    $(".container").click(function(e) {
        if ($(e.target).closest('.someText')[0]) {
            // Don't do anything
        }
    });
    

    e.target is the actualy element clicked. closest finds the first element that matches the selector by looking at the element you give it, then its parent element, etc., etc.

share|improve this answer
    
Wouldn't #1 erroneously disable the popup if the click occurred on the non-anchor part of the span? –  Jon Mar 2 '13 at 23:13
    
@Jon: Yes it would prevent the popup if on the non-anchor part of the span, but it's not clear from the question whether that's erroneous, as in part of the question it's anything in .someText, and in part of the question, it's only the anchor. –  T.J. Crowder Mar 2 '13 at 23:20
    
Sure, "erroneous" includes my own interpretation of the question. But in any case, #1 and #2 are not equivalent; IMHO the answer implies they are. A little clarification wouldn't hurt. –  Jon Mar 2 '13 at 23:23
    
@Jon: #1 and #2 are effectively equivalent. Neither checks specifically for the anchor. What makes you think they are different? –  T.J. Crowder Mar 2 '13 at 23:26
1  
True. It definitely looks like I should finally go to bed; sorry for wasting your time with these last comments. Cheers! –  Jon Mar 2 '13 at 23:49

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