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I'm trying to shake my login form on the basis of a variable, which is empty if the login credentials are correct. This variable is msg.

Now if you see this jsfiddle example (test by clicking on Run, it will shake), it works fine but if I try to use in my application then it gives error as $this is not defined in line $this.css({.

I have written $(this).css({ in my code but the console shows error with $this.css({.

Note that it does not have to do anything with the variable because I'm getting the variable from server side like when the user fills wrong credentials $message is non empty. I've checked this condition using the alert box.

I'm using jQuery 1.7 in my application.

Code used in my app is:

<meta http-equiv="Content-Type" content="text/html;">
<script type="text/javascript" src="xyz/js/jquery.js"></script>  
<script type="text/javascript">
$(function() {
var msg = "$message"
if (msg.length!==0){
alert("message is not empty");
jQuery.fn.shake = function(intShakes, intDistance, intDuration) {
  this.each(function() {
      position: "relative"
    for (var x = 1; x <= intShakes; x++) {
        left: (intDistance * -1)
      }, (((intDuration / intShakes) / 4))).animate({
        left: intDistance
      }, ((intDuration / intShakes) / 2)).animate({
        left: 0
      }, (((intDuration / intShakes) / 4)));
  return this;
$('#login').shake(2, 13, 250); }   });</script>

<body class="login login-action-login wp-core-ui">
<div id="wrapper">
<div id="login">
    <form name="form_login1" action="$action" method="post">
        <input type="hidden" name="command" value="login">

    <if condition="enable_password_cookie">
        <input type="text" name="login2" value="$login_from_password_cookie" onchange="document.form_login2.login.value = this.value" id="user_login" class="input" size="20" tabindex="1">
        <input type="text" id="user_login" class="input" name="login2" size="20" onchange="document.form_login2.login.value = this.value">

    <form name="form_login2" action="$action" method="post">
        <input type="hidden" name="login">
        <input type="hidden" name="command" value="login">
        <input type="hidden" name="extra_param" value="$extra_param">
        <input type="password" name="password" is="password" id="password" class="input" value="" size="20">

  <p class="submit">
    <input type="submit" value="Login" onclick="javascript:submit_login();" id="wp-submit" class="button button-primary button-large">
     <p class="error">$message</p>  




PS: I've tried cleaning cache, but still I get this error:

EDIT 2: I've cleaned cache and all the browser data but still I can see that it's changing $(this).css to $this.css. I don't get why? :/

share|improve this question
can you tell more about error you are getting? –  Milind Anantwar Jun 7 '13 at 8:39
Have you clear the cache? –  A. Wolff Jun 7 '13 at 8:40
there is no $this in your code, clear your cache –  Arun P Johny Jun 7 '13 at 8:41
See the updated question with imgur link. –  Chankey Pathak Jun 7 '13 at 8:43
So, have you clear the cache??? –  A. Wolff Jun 7 '13 at 8:47

2 Answers 2

1) this in your case is not jquery object. Use $(this)

2) Update cache of your application if browser shows code different from what you have in actual directory.

3) what you see in your browser debugger is actual code your browser getting. If you're sure that the code with $this instead of $(this) is actual code, just replace $this with $(this)

share|improve this answer
See the updated question with imgur link. –  Chankey Pathak Jun 7 '13 at 8:44
@Chankey Pathak, your browser getting piece of old code. Make sure your browser is getting up-to-date code. There is nothing wrong in code you posted here –  Daniil Ryzhkov Jun 7 '13 at 8:46
Yes, it's changing $(this) to $this. But I never wrote $this. I have cleared the cache too. –  Chankey Pathak Jun 7 '13 at 8:47
What is the problem then? Is the error with '$this' removed? –  A. Wolff Jun 7 '13 at 8:48
I don't get why it's changing $(this) to $this –  Chankey Pathak Jun 7 '13 at 8:49
up vote 0 down vote accepted

roasted's comment solved my problem.

I had to change $(this) to $( this ).

share|improve this answer

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