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I'm attempting to post a form from FoncyBox2 and have so far had no luck. The result of the following code is a closed overlay. Nothing else happens. No error. No nothing. All I want is for the result (which is in this case the content of the field) to appear in place of the form in the same overlay.

HTML:

<a class="fancybox fancybox.ajax" href="formPage.php">Open Overlay</a>

JavaScript:

$(document).ready(function(){
            $(".fancybox").fancybox();

            $("#question-form").bind("submit", function() {
                $.fancybox.showActivity();

                $.ajax({
                    type : "POST",
                    cache : false,
                    url: "formProcessing.php",
                    data: $(this).serializeArray(),
                    success:function(data){
                        $.fancybox(data);
                    }
                });
                return false;
            });
        });

Form (formPage.php):

<form id="question-form" action="" method="POST">
Name <input type="text" name="name">
<input type="submit" value="Send">
</form>

Form processing (formProcessing.php):

print_r($_POST);

Oh, I'm not worried about validation. I'm planning to do that another way.

Thanks, @rrfive

share|improve this question
    
Your problem seems to be here data: $(this).serializeArray(); try to add form selector like this: data: $('#question-form').serialize() – Daniel Feb 12 '13 at 7:20
    
Strange that you didn't have any errors .... anyway, check stackoverflow.com/a/11299547/1055987 (includes demo) – JFK Feb 12 '13 at 8:16
    
possible duplicate of FancyBox v2 - login box – JFK Feb 12 '13 at 8:17
up vote 1 down vote accepted

Right, I managed to solve the problem. It turns out I'm a dumb-ass and it was a simple case of moving the code $.ajax code to the form page. Here my final code.

HTML (index.html) - unchanged:

<a class="fancybox fancybox.ajax" href="formPage.php">Open Overlay</a>

JavaScript (index.html):

$(".fancybox").fancybox();

Form (formPage.php) - unchanged:

<form id="question-form" action="" method="POST">
Name <input type="text" name="name">
<input type="submit" value="Send">
</form>

JavaScript (formPage.php):

 $(document).ready(function(){
            $("#question-form").bind("submit", function() {
                $.ajax({
                    type : "POST",
                    cache : false,
                    url: "formProcessing.php",
                    data: $(this).serializeArray(),
                    success:function(data){
                        $.fancybox(data);
                    }
                });
                return false;
});
});

Form processing (formProcessing.php):

print_r($_POST);

Thanks to @JFK and @Daniel for your suggestions.

share|improve this answer

i am new user in this community. First all sorry for my bad english :)

I also use the above code, it work perfectly but i would like the document to be reloaded after the fancybox close.

I tried with this code:

<script type="text/javascript">
    $(document).ready(function() {
        // cart iframe
        $("#stocart").bind("submit", function() {
            $.ajax({
                type        : "POST",
                cache       : false,
                url         : "reloadpage.php",
                data        : $(this).serializeArray(),
                success: function(data) {$.fancybox(data);},
                afterClose: location.reload()   
            });
            return false;   
        });
    });
</script>

but this reload a page without display the fancybox... how reload page when i click fancybox close button? Thanks a lot

share|improve this answer
2  
Then, get to know what the community is about before posting... – brasofilo Jun 18 '14 at 14:13
    
This does not really answer the question. If you have a different question, you can ask it by clicking Ask Question. You can also add a bounty to draw more attention to this question once you have enough reputation. – Taifun Jun 18 '14 at 14:29

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