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I am submitting a form without leaving my page through a post call Using JQuery.

After I submit I want to replace the div with the form in it with a thank you message. The problem is the message is showing before I submit and not replacing, below is my code.

$(document).ready(function() {
            //When the form with id="myform" is submitted...
            $("#myform").submit(function() {
                //Send the serialized data to mailer.php.
                $.post("mailer.php", $("#myform").serialize(),
                    //Take our repsonse, and replace whatever is in the "formResponse"
                    //div with it.
                    function(data) {
                        $("#formResponse").html(data);
                    }
                );
                return false;
            });
        });

and the HTML

<div data-role="content">
<form id="myform">
  <div data-role="fieldcontain">
    <label for="name">Name:</label>
    <input type="text" name="name" id="name" value=""  />
</div>
<div data-role="fieldcontain">
  <label for="email">Email:</label>
  <input type="email" name="email" id="email" value=""  />
</div>
<div data-role="fieldcontain">
  <label for="company">Company Name:</label>
  <input type="text" name="company" id="company" value=""  />
</div>        
<input type="submit" name="submit" value="Submit" data-icon="star" data-theme="b" />
</form>

</div>
<div data-role="content" div id="formResponse">
    thank you, your quote has been received and you will hear back from us shortly.
    </div>
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1  
@Dan - I think this makes sense... "After I submit I want to replace the div with the form in it with a thank you message." –  Neurofluxation Oct 12 '12 at 12:48
1  
please improve your acceptance level –  sakhunzai Oct 12 '12 at 12:56
    
I will accept in a minute I like Nelsons answer and am working through it, still having a small issue, but almost got it. –  Nate Norman Oct 12 '12 at 13:15
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2 Answers 2

up vote 1 down vote accepted

Try replacing your following code:

<div data-role="content" div id="formResponse">

for this one:

<div data-role="content" style="display:none" id="formResponse">

and then replace your following javascript function:

function(data) {
  $("#formResponse").html(data);
}

for this one:

function(data) {
  $("#myForm").html( $("#formResponse").html() );
}

UPDATE:
If you just want to show the result obtained from the ajax call, instead of showing the content of the #formResponse div, just remove the #formResponse div at all, and just do the following:

function(data) {
  $("#myForm").html( data );
}

UPDATE 2:
You can also hide the form div and show the "thank you" div, like this:

function(data) {
  $("#myForm").hide('slide', function() {$("#formResponse").show('slide');});
}
share|improve this answer
    
That makes sense and hid the div, however it didnt replace it with form response? Do I need to name the div my form is in id="myform"? –  Nate Norman Oct 12 '12 at 13:02
    
If you just want to show the text returned from ajax call, you can go without the #formResponse div, so remove it and just directly replace your submit form content with the content returned by your ajax call. See my updated answer. –  Nelson Oct 12 '12 at 13:07
    
I'm sorry, I wasn't very clear there. I want to show the content of #formResponse div, but when I ran this and clicked submit nothing happened. The form submitted fine, but it just stayed on the page instead of being replaced by my thank you message in #formResponse and I was wondering if it was because it wasn't sure what to replace? So your first answer was great, but something didn't work correctly –  Nate Norman Oct 12 '12 at 13:10
    
Look at your javascript console for some error that could be stopping execution, also I've updated my answer with an alternative way. –  Nelson Oct 12 '12 at 13:22
    
Both ways I get an error Uncaught SyntaxError: Unexpected token < –  Nate Norman Oct 12 '12 at 13:28
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use success(data) A callback function that is executed if the request succeeds.

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