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I am using the validate plugin for a form. I just want a contactform with no refresh. I guess it is possible.

This is my Javascript:

$().ready(function() {
// validate the comment form when it is submitted.

 $("#actualForm").validate({
focusInvalid: false,
onkeyup: true,
    rules: {
    // simple rule, converted to {required:true}
        name: "required",
        comment: "required",
        email: {
          required: true,
          email: true
        },
    },

submitHandler: function(form) {   
            var name = $('input[name="name"]').val();
            var email = $('input[name="email"]').val();
            var comment = $('input[name="comment"]').val();
            var params = {
                "name": name,
                "email": email,
                "comment": comment,
            };

            console.log(data);debugger;
            $.ajax({
            url: 'email.php',
            data: params,
            type: 'POST',
            dataType: json,
            success: function (data) {

                if (data.status) {
                    //Give success log to user
                } else {
                    //Do something
                }
            }
            });
        } 

And this is my PHP:

<?php
$name = $_POST['name'];
$email = $_POST['email'];
$comment = $_POST['comment'];
$to = 'myemail';
$from = $email;
$subject = 'subject';
$body = "Hello Admin<br><br>
        Name: <strong>$name</strong><br>
        Email: $email<br>
        Bericht: $comment<br>
            ";
$headers  = 'MIME-Version: 1.0' . "\r\n";
$headers .= "From: $from";
$ok = mail($to, $subject, $body, $headers);
if($ok)
    echo '1';
else
    echo '0';
?>

I also have an invalidHandler, but that thing is working so i guess it's useless to put it here.

But I am stuck for hours now and I hope someone could help me with this problem.

share|improve this question
    
Did you try to run your php script directly without ajax? –  Frederic Nault Mar 11 '14 at 20:39
    
What does it actually do? Any output, I see the console should log something? –  Aurel300 Mar 11 '14 at 20:42
    
@FredericNault no, i do not have tried that yet. Aurel300 It refreshed my page. And it does not send any email. That log outputs my data. –  Drogon Mar 11 '14 at 20:44
    
Sidenote: You're missing an important line of code to send Email in HTML $headers .= 'Content-type: text/html; charset=iso-8859-1' . "\r\n"; @Drogon –  Fred -ii- Mar 11 '14 at 20:44
    
@FredericNault, i have run the email without the ajax. It sends an email with only this: Name: <strong></strong><br> Email: <br> Bericht: <br> –  Drogon Mar 11 '14 at 20:46

2 Answers 2

up vote 1 down vote accepted

Your code have a little mistake inside the ajax function

replace:

dataType: json,

by:

dataType: 'json',

Without '', json is considered as a variable name, and in your case you want to pass 'json' as a value.

share|improve this answer
    
I have changed it. But a wonder just happend: I do not have changed email.php and it does not send any email anymore... How is this possible –  Drogon Mar 11 '14 at 21:31
    
hmm on my side that was working on the jsfiddle, did you have firebug or any tool to see all ajax request/answer? –  Frederic Nault Mar 11 '14 at 21:33
    
are you sure about this value : url: 'email.php' –  Frederic Nault Mar 11 '14 at 21:34
    
my ajax is doing well now. Because it he reached my success function I have put an alert and he reaches that. But if i go to email.php it returns 0. Where it first gave me 1. Yes, I am sure about the URL –  Drogon Mar 11 '14 at 21:40
    
Earlier we test the php directly and you said it was working fine. so I guess we have to test it again. if you replace your echo '0'; by var_dump($to, $subject, $body, $headers), we will see which variable broke the script –  Frederic Nault Mar 11 '14 at 21:49

I have a tendency to use var_dump to debug.

What's var_dump($_POST); giving you?

Do you get a 500 network response in your browser?

Type console.log(data); in your success function too. That will give you a hint on how to solve the problem.

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