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I'm trying to update a div with an ajax post. Problem is...it's updating every div.

Here's the json.php:

//json.php

$data['months'] = $db->escape_value($_POST['check']);
$data['id'] = $db->escape_value($_POST['hidden']);


$query = "UPDATE month SET months = '{$data['months']}' WHERE monthID = '{$data['id']}'";
$result = $db->query($query);

if($result) {
  $data['success'] = true;
  $data['message'] = "Update Successful!";
  $data['text'] = $_POST['check'];
  echo json_encode($data);
} else {
  $data['message'] = "Update could not be completed.";
}

And the html:

<?php

$query = $db->query('SELECT * FROM month');


?>
<html>
 <head>
  <title>jQuery/Ajax - Update is updating all divs</title>
<link rel="stylesheet" type="text/css" href="test.css" />
<script type="text/javascript" src="http://ajax.googleapis.com/ajax/libs/jquery/1.3.2/jquery.min.js"></script>
<script type="text/javascript">
$(document).ready(function() {

  $("input.check, button.save, input.cancel, div.message").hide();

  $(".edit").click(function(){
      $(this).parent().siblings("li.liTwo").children("input.delete").hide();
      $(this).parent().siblings("li.liThree").children("button.save").show();
      $(this).parent().siblings("li.liFour").children("input.cancel").show();
      $(this).parents("ul").siblings("div.showText").hide();
      $(this).parents("ul").siblings("input.check").show();
      $(this).hide();
      return false;
    });

  $(".cancel").click(function(){
      $(this).parent().siblings("li.liTwo").children("input.delete").show();
      $(this).parent().siblings("li.liThree").children("button.save").hide();
      $(this).parent().siblings("li.liOne").children("input.edit").show();
      $(this).parents("ul").siblings("div.showText").show();
      $(this).parents("ul").siblings("input.check").hide();
      $(this).hide();
      return false;
    });


  $("form[name=form1]").submit(function(){
    var params = $(this);
    $.post("json.php", { hidden : $(this).find("[name=hidden]").val(), check :   $(this).find("[name=check]").val() },
      function (data){
        if(data.success) {
          $(".showText").html(data.text);
          $(".message").html(data.message).slideDown("fast");
          $(".check").hide();
          $("button.save").hide();
          $(".cancel").hide();
          $(".edit").show();
          $(".delete").show();
          $(".showText").show();
          return false;
        }
      }, "json");
    return false;
  });



});
</script>
 </head>
<body>
<div class="message">message</div>
    <?php while($row = $db->fetch_assoc($query)) { ?>
    <form action="json.php" name="form1" method="post">
      <div class="container">
          <div class="showText"><?php echo $row['months']; ?></div>
          <input name="check" type="text" class="check" value="<?php echo $row['months']; ?>" />
          <input name="hidden" type="hidden" class="hidden" value="<?php echo $row['monthID']; ?>" />
          <ul class="list">
            <li class="liOne">
              <input name="edit" type="button" class="edit" value="edit" />
            </li>
            <li class="liTwo">
              <input name="delete" type="submit" class="delete" value="delete" />
            </li>
            <li class="liThree">
              <button name="save" type="submit" class="save" value="<?php echo $row['monthID']; ?>">save</button>
            </li>
            <li class="liFour">
              <input name="cancel" type="button" class="cancel" value="cancel" />
            </li>
          </ul>
      </div>
    </form>
    <?php } ?>
<!--<a id="reset" href="test3.php">reset</a>--> 

</body>
</html>
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3 Answers

up vote 1 down vote accepted

You need to specify a context (the form) for the elements you're changing:

  $("form[name=form1]").submit(function(){
    var form = this;
    var params = $(this);
    $.post(form.action, { hidden : $(this).find("[name=hidden]").val(), check : $(this).find("[name=check]").val() },
      function (data){
        if(data.success) {
          $(".showText", form).html(data.text);
          $(".message", form).html(data.message).slideDown("fast");
          $(".check", form).hide();
          $("button.save", form).hide();
          $(".cancel", form).hide();
          $(".edit", form).show();
          $(".delete", form).show();
          $(".showText", form).show();
          return false;
        }
      }, "json");
    return false;
  });

Also, if you hide a parent element, the children are hidden, too, so you probably want to do that...

share|improve this answer
    
strager and tim....thanks a million! Success! –  Scott Sep 29 '09 at 1:49
add comment

Every div has the same class: showText. They need unique IDs instead, like Div1, Div2. Then update them by their ID: $("#Div1")

share|improve this answer
    
I'm pulling values from a database...so ID's won't work for me. –  Scott Sep 29 '09 at 0:43
    
How does the database keep them separate? –  lod3n Sep 29 '09 at 0:44
    
Not really following you. –  Scott Sep 29 '09 at 0:48
    
When you update the database, what are you using for the WHERE clause? Don't they have unique identifiers in the DB? –  lod3n Sep 29 '09 at 0:56
    
Yeah..there's a hidden field that passes the ID on post. The update isn't a problem...I just cant' get the new value to display on it's respective div...correction: it does display, only it shows up on every div. I've struggled with this for hours. –  Scott Sep 29 '09 at 0:59
show 1 more comment

Hint, instead of answer:

How many elements does $(".showText") return?

2nd Hint: It's more than one!

===

Edit for more clarity:

The first issue is that you're selecting by classes like .showText. But you're creating multiple forms, each of which has an element that matches .showText. You need some way to point at the right element in each form. One way to solve this is to add an ID on each FORM tag, so you can then select things like $('#form-number-$N .showtext) -- which selects any elements with class="showtext" inside the element with id "#form-number-$N"

You're looping over rows in your database and writing the forms. So you need some variable data to identify each individual form.

You've got a while loop that populates $row:

<?php while($row = $db->fetch_assoc($query)) { ?>

But currently, every form you create has a name attribute of "form1".

So what if, instead of:

 <?php while($row = $db->fetch_assoc($query)) { ?>
 <form action="json.php" name="form1" method="post">

You did something like:

 <?php while($row = $db->fetch_assoc($query)) { ?>
 <form action="json.php" name="form<?PHP echo $row['id']; ?>" id="<?PHP echo $row['id']; ?> class="myFormClass" method="post">

Then you could use a handler that looks something like:

  $("form.myFormClass").submit(function(){
    var params = $(this);
    $.post("json.php", { hidden : $(this).find("[name=hidden]").val(), check :   $(this).find("[name=check]").val() },
      function (data){
        if(data.success) {
          $(this.id + " .showText").html(data.text);

... return false; } }, "json"); return false; });

Do you see what's happening there?

share|improve this answer
    
I dunno...you got me. –  Scott Sep 29 '09 at 0:45
    
Geez...why oh why do these forums have to be sooooo condescending? –  Scott Sep 29 '09 at 0:59
    
Not being condescending... just thought you'd see it quickly. Editing for more clarity. –  timdev Sep 29 '09 at 1:16
    
Meant no harm...all apologies. Just frustrated..grr. –  Scott Sep 29 '09 at 1:18
    
okay, see my updated answer, and think it through. The key error you're making is that you're trying to use the same handler on each form. You need to devise a way to reference the appropriate form. My updates show you how to add an ID to each form, and then reference that ID in your handler. I'm not just going to fix it for you to copy paste (I'm very tired, and a little sick, otherwise I might), but I think I've given you enough direction to figure it out. If you're really burned out, take a break, and re-read the answers here when you get back. –  timdev Sep 29 '09 at 1:27
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