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.

Here is my JavaScript code:

$("#reset_passwd").click(function(){
     $.ajax({
         url: '/theme/reset.php',
         type: "POST",
         data: $("#password_reset").serialize(),
         success: function(ht){
         alert(ht);
         },
         error: function(){
             alert(" Error");
         }
     });
});

and here is my PHP code, the reset.php file

<?php 
    print_r($_POST);
?>

The output is "Error" and I can't understand why. Can anybody help me? I'm new in javascript and ajax.

share|improve this question
    
Remove your error function temporarily and watch what exception is thrown by the success function in your browser's JavaScript console. –  Michael Berkowski Jul 30 '12 at 15:21
    
why don't you echo that? –  Onheiron Jul 30 '12 at 15:22
    
@Onheiron Obviously it's just to debug the ajax call before returning real data. –  Michael Berkowski Jul 30 '12 at 15:23
    
The error callback give you some useful info, let's print that out and see if it helps. error: function(jqXHR, textStatus, errorThrown){ console.log(textStatus,errorThrown); } –  Rocket Hazmat Jul 30 '12 at 15:35
    
console log returns: error (an empty string) –  Dan Cantir Jul 30 '12 at 15:39

2 Answers 2

Change your code to simply output the returned page to a div:

$.post('/theme/reset.php', {
        data: $("#password_reset").serailize()
    }, function(data) {
        $("#errorDiv").html(data);
    }
);
share|improve this answer

Start by putting your url in " " ex. url: "/theme/reset.php", your data needs to be named:

data: ({pass: $("#password_rest").serialize()}),

I would try those for start and use a debugging program to see what it says.

EDIT: Your php file is not returning any information. All you are asking it to do is print_r($_POST) at a minimum you would need to return something like json_encode($some_var); and add datatype: "json", to your $.ajax.

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.