Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

I changed my coding style for php and jQuery, but my Registration

$("#reg_form_company").bind("submit", function() {
    $.fancybox.showActivity();
    $.ajax({
            type     : "POST",
            cache    : false,
            url      : $(this).attr('action'),
            data     : $(this).serializeArray(),
            success  : function(data) {
                $(".printArea").empty().append(data).css('visibility','visible');
            }
    });
    return false;
});

Then this is my Form

<form id="reg_form_company" action="index.php?module=register&actionregister" method="post" >
      <input>[...]</input>
</form>

Then after clicking the "Submit" button, it doesn't work, I assume that somebody can help me to solve this problem, coz the $.ajax might confuse about POST(for inputs) and the GET(for the parameters of the "action" form)

I appreciate for your help, you can also modify the entire jQuery code if it's required.

Sorry guys for not including the #reg_form_company, and the fancybox

share|improve this question
    
I took a second look at your code and I think I found your mistake. Take a look at my answer: stackoverflow.com/questions/10041496/… – Alex Apr 6 '12 at 16:54

You need to do something like this: http://jsfiddle.net/xSJTs/2/

$('form').on('submit',function(e){
    e.preventDefault();
    $.ajax({
        type     : "POST",
        cache    : false,
        url      : $(this).attr('action'),
        data     : $(this).serialize(),
        success  : function(data) {
            $(".printArea").empty().append(data).css('visibility','visible');
        }
    });

});

You have to use serialize() instead of serializeArray(). serializeArray() creates a JavaScript-object, serialize() creates a query-string.

Serialize: http://api.jquery.com/serialize/

SerializeArray: http://api.jquery.com/serializeArray/

Basically you wait until the form is submitted and then you interrupt it (e.preventDefault();).

share|improve this answer
    
NB : The button you are using to trigger the event that causes the submit of the form via ajax post should not be of type submit! Else this will always fail. – Biki Oct 9 '15 at 6:21

You must intercept the click/submit event for your form and refer the form as shown bellow:

 $("#myForm").submit(function(){
    var $form = $(this);

    $.ajax({
     type     : "POST",
     cache    : false,
     url      : $form.attr('action'),
     data     : $form.serializeArray(),
     success  : function(data) {
         $(".printArea").empty().append(data).css('visibility','visible');
     }
    });
 })

And add an id to your form like:

<form id="myForm" action="index.php?module=register&actionregister" method="post" >
      <input>[...]</input>
</form>
share|improve this answer
    
yah sir, I already have the id, but the the $.ajax cant reach the server side code, while If I turned off the jQuery, the php is working... – daison12006013 Apr 6 '12 at 9:47

you must refere your form instead of $(this)

give your form an id or class ex :

<form action="index.php?module=register&actionregister" method="post" id="MyForm">
      <input>[...]</input>
</form>

and in JQuery :

$.ajax({
        type     : "POST",
        cache    : false,
        url      : $('#MyForm').attr('action'),
        data     : $('#MyForm').serializeArray(),
        success  : function(data) {
            $(".printArea").empty().append(data).css('visibility','visible');
        }
});
share|improve this answer
    
yah sir, I already have the id, but the the $.ajax cant reach the server side code, while If I turned off the jQuery, the php is working... – daison12006013 Apr 6 '12 at 9:49
    //This is still showing the cgi output of my script in the browser
 $('#myForm').submit(function()){
                 $('#myForm').preventDefault();
        $.ajax({
            type     : "POST",
            cache    : false,
            url      : $('#myForm').attr('action'),
            data     : $('#myForm').serialize(),
            success  : function(data) {
                $(".printArea").empty().append(data).css('visibility','visible');
            };

    <form id = "myForm" action="cgi-bin/matt/matt-test.cgi?module=register&actionregister" method ="post">
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.