Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I am in a situation where I have a form with some fields.

I have 5 input fields and I want to validate 2 fields which are username and purchase code using jquery ajax. If these two fields are valid, submit the form natural way like borwser does (not ajax).

Here is my jquery for this

$(document).ready(function() {  

  $('#submit').click({status:'initial'}, function(e) {  

     e.preventDefault(); 

     $('.error').hide();
     $('.success').hide();

     // get data from form
     var username = $("input#username").val(); 
     var itemCode = $("input#itemCode").val(); 
     var dataString = 'username ='+ username + '&itemCode=' + itemCode;  

     $.ajax({  
      type: "POST",  
      url: "verify_purchase.php",  
      data: dataString,  
      success: function(html) {  

         // valid purchase
         if (html == 'valid') {
             form.submit();
         } else{
             // if wrong purchase details
             // do some stuff 
         };                  
      }  
    });  

});

The problem is when I submit form, ajax works perfectly but my form is not submitted afterwards like the way browsers submits the form.

Any help??

share|improve this question
    
$('#form').trigger('submit'); this is not working either –  Mohd Sakib May 25 '13 at 11:43
    
did you check the data returned by jsno through console.log(html)? is it really == 'valid'? –  akhilless May 25 '13 at 11:49
    
yes the returned data is "valid". I have also tested by placing an alert inside if(html == 'valid'){alert('yes')} its working –  Mohd Sakib May 25 '13 at 11:55

4 Answers 4

up vote 1 down vote accepted

In the code that you have, I think the error is this line:

form.submit();

I can’t see form defined anywhere. Going purely on the code you’ve supplied, you could do this instead:

$('#submit').parents('form').submit()

However, I think a better overall approach would be to add a submit event handler to the form, and stop the “natural” submission if validation fails, instead of dealing with the submit button’s click event. Depending on the form and the browser, it could be submitted by someone hitting return when in a text field, so the submit button’s click event isn’t necessarily reliable.

So, if you have a form like this:

<form id="my_form" action="purchase.php" method="post">

Then the script might look like this:

$('#my_form').submit(function (e) {
    $('.error').hide();
    $('.success').hide();

    // get data from form
    var username = $(this).find("input#username").val(); 
    var itemCode = $(this).find("input#itemCode").val(); 
    var dataString = 'username ='+ username + '&itemCode=' + itemCode;  

    $.ajax({  
        type: "POST",  
        async: false,
        url: "verify_purchase.php",  
        data: dataString,  
        success: function(html) {  

        // valid purchase
        if (html == 'valid') {
            return true;
        } else{
            // if wrong purchase details
            e.preventDefault();

            // do some stuff
            return false;
        };                  
  } 
});
share|improve this answer
    
This is also I nice approach –  Mohd Sakib May 25 '13 at 12:20
    
async false is deprecated –  A. Wolff May 25 '13 at 12:23
1  
sorry for off topic but i just checked your website: browsersupport.net bookmark it, usefull site thx :) –  A. Wolff May 25 '13 at 12:34
    
@roasted: cheers! (It’s long overdue an update though; you’ll want to check out caniuse.com too.) On async:false, isn’t that just when you’re making an AJAX call “with jqXHR ($.Deferred)”, as per the documentation? –  Paul D. Waite May 25 '13 at 12:41
    
"Documentation updated to clarify that async: false is still allowed but that use with $.Deferred is deprecated." You got it even i cannot think about any reason to use this option. –  A. Wolff May 25 '13 at 12:46

Instead of checking if the user has clicked a submit button, just use javascript to block a natural submission if the validation return an error.

So like this:

<form action="/somewhere.php" action="post" 
    onsubmit="return startValidatingForm();">

The javascript function would look something like:

function startValidatingForm(){
    // Do ajax and validation

    return html == "valid";
}

Now, if the ajax request found any error, the function returns false which will prevent the form from being actually submitted. If the function returns true, the form will be submitted the natural way.

share|improve this answer

generally in order to submit a form you should supply its id to JQuery because JQuery needs a selector in order to find the element in the DOM and call a function on it. For example, you have a form looking like that:

<form id="orderForm" action="orderhandler.php" ...>
some fields...
</form>

here in order to submit the form via jQuery to write

$('form#orderForm').submit();

or

$('form#orderForm').trigger('submit');
share|improve this answer
    
this also does not works :( –  Mohd Sakib May 25 '13 at 11:56

Instead of:

form.submit();

Try this:

//use $('#submit') not $(this) {ajax context}
$('#submit').off('click').click(); //this should reaffect native click behaviour on submit 
share|improve this answer
    
This worked exactly how I wanted!! –  Mohd Sakib May 25 '13 at 12:19

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.