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I have some HTML and Ajax set up so that if you click a certain image (the reply-quote class below), it initiates some Ajax to echo HTML elsewhere on the page.

As shown below, the HTML file contains the same block of divs multiple times. My problem is that, if a user clicks the image, how can I make Ajax show the HTML (within show-reply div) for that specific block and not all of them?

<!-- BLOCK ONE -->
<div class="style1">
  <div class="style2">
    <img src="image.png" class="reply-quote" />
      <div class="style3">
        <div class="style4">
          <div id="show-reply"></div>
          <div class="reply-box">
            <form class="reply-container no-margin" method="POST" action="">
              <textarea class="reply-field" name="new_comment" placeholder="Write a reply..."></textarea>
              <button name="submit" class="btn" type="submit">Post</button>
            </form>
          </div>
        </div>
      </div>
   </div>
 </div>

<!-- BLOCK TWO -->
<div class="style1">
  <div class="style2">
    <img src="image.png" class="reply-quote" />
      <div class="style3">
        <div class="style4">
          <div id="show-reply"></div>
          <div class="reply-box">
            <form class="reply-container no-margin" method="POST" action="">
              <textarea class="reply-field" name="new_comment" placeholder="Write a reply..."></textarea>
              <button name="submit" class="btn" type="submit">Post</button>
            </form>
          </div>
        </div>
      </div>
   </div>
 </div>

Here's the JQuery I have right now:

$(document).ready(function() {    
  $(".reply-quote").click(function() {
    $.ajax({
      url: 'assets/misc/show_reply.php', // this file simply echoes back the HTML to the `show-reply` div
      type: "POST",
      data: {post_id: $(this).attr('id')},
      success: function(data) {
        $("#show-reply").append(data); // this is where the problem lies
      }
    });
  });
});

To my understanding, I have to somehow implement $(this), parent(), find(), etc. instead of the current line I'm using ($("#show-reply").append(data);). The question is, what should that line be so that if I click the image, it only shows the HTML for that specific block?

Please help!

share|improve this question
up vote 1 down vote accepted

First: ID should be unique in a document, use class attribute instead for show-reply and other elements where id is repeated

<div class="show-reply"></div>

then you need to find the show-reply next to the clicked reply-quote image

$(document).ready(function() {   

    $(".reply-quote").click(function() {
        var $reply = $(this);
        $.ajax({
            url: 'assets/misc/show_reply.php', // this file simply echoes back the HTML to the `show-reply` div
            type: "POST",
            data: {post_id: $(this).attr('id')},
            success: function(data) {
                $reply.closest('.comment-container').find(".show-reply").append(data);
            }
        });
    });
});
share|improve this answer
    
Didn't work. When I clicked the image, it did nothing. :/ – John Sep 5 '13 at 0:07
    
@John there was a bug which I fixed now $reply.next().find(".show-reply") – Arun P Johny Sep 5 '13 at 0:08
    
Won't this cause undefined behavior? Since ajax is async there is no guarantee that $reply will still be the same value once you get to the success block. – Jordan Sep 5 '13 at 0:08
    
@Jordan no it won't as $reply is a closure variable its value will not change by another click execution – Arun P Johny Sep 5 '13 at 0:11
    
Unfortunately it's still not working. :( – John Sep 5 '13 at 0:19

try this

 $("div").click(function(e) {
            if($(e.target).is('.reply-quote')){
                e.preventDefault();
                return;
            }
            alert("work ");
        }); 
share|improve this answer

You should change the id="show-reply" to class="show-reply" in html, and then in JS change $("#show-reply").append(data); to $(this).parent(".show-reply").append(data);

share|improve this answer

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