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I have a set of buttons, when they're clicked I want the first child to have the css display none, and the second child to have the css display block, for all of the buttons, it's not quite working, this is what I have.

JS:

$(".btn").click(function () {
  $(".btn:nth-child(2)").css ({
    display: "none"
  });
  $(".btn:nth-child(1)").css ({
    display: "block"
  });  
});

the structure of the .btn

<div id="bow" class="btn" data-filter=".bow">
  <img class="filter_icon" src="http://www.klossal.com/klossviolins/icons/bow_icon.png" alt="">
  <img class="filter_icon not_selected" src="http://www.klossal.com/klossviolins/icons/bow_icon_selected.png" alt="">  
</div>
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Per your description your :nth-child(1) and :nth-child(2) are reversed. You want your first child to be display:none but you have nth-child(2) set to display:none –  Jason Whitted Dec 27 '12 at 17:36

1 Answer 1

up vote 1 down vote accepted
$(".btn").click(function () {
  $(this).find("img:nth-child(1)").css ({
    display: "none"
  })
  .end()
  .find("img:nth-child(2)").css ({
    display: "block"
  });  
});
share|improve this answer
    
wham bam yes that's the answer, thanks. why does it have to specifically indicate img? –  loriensleafs Dec 27 '12 at 17:38
    
also, how would you do the same thing, except instead of the .btn class using this? –  loriensleafs Dec 27 '12 at 17:39
    
Because nth-child finds the nth child that matches the selector, so before you were searching for the nth .btn not the nth child of .btn. (Already updated to use this) –  nbrooks Dec 27 '12 at 17:40
    
got it, that makes sense. –  loriensleafs Dec 27 '12 at 17:40
    
for the updated answer, why do you have to put .end()? why can't you just go right to the second find? –  loriensleafs Dec 27 '12 at 17:41

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