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I want to improve my website and figured out a good way to do it was by submitting forms via AJAX. But, I have so many forms that it would be inpractical to do $('#formx').submit(). I was wondering if there was a way to do this automatically by making an universal markup like;

<form class="ajax_form" meta-submit="ajax/pagename.php">
 <input type="text" name="inputx" value="x_value">
 <input type="text" name="inputy" value="y_value">
</form>

And have this submit to ajax/pagename.php, where it automatically includes inputx and inputy? This would not only save me a lot of time but also a lot of lines of code to be written.

First question so I hope it's not a stupid one :)

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up vote 0 down vote accepted

Something like this should work for all forms. It uses jQuery - is this available in your project? This specific code chunk hasn't been tested per say, but I use this method all the time. It is a wonderful time saver. Notice I changed meta-submit to data-submit so that its value can be fetched using $('.elemenet_class').data('submit');

HTML

<!-- NOTE: All Form items must have a unique 'name' attribute -->
<form action="javascript:void(0);" class="ajax_form" data-submit="ajax/pagename.php">
    <input type="text" name="inputx" value="x_value">
    <input type="text" name="inputy" value="y_value">

    <input type="submit" value="go" />
</form>

JavaScript

$('.ajax_form').submit(function(e){
    var path = $(this).attr('data-submit'); //Path to Action
    var data = $(this).serialize();    //Form Data
    $.post(path, {data:data}, function(obj){

    });
    return false;
})

PHP

//DEBUGGING CODE
//var_dump($_POST);
//die(null);

$data = $_POST['data'];
$inputx = $data['inputx'];
$inputy = $data['inputy'];
share|improve this answer
    
Thanks for your answer, the form submits as it shoulds but when I set up a test page that echo's $_POST['inputx'] it gives me an error where it says that it is not defined. ` – Orhun Akdeniz May 21 '13 at 10:20
    
You need to do $data = $_POST['data'] and then $x=$data['inputx']; instead of echoing anything, make your PHP page just have var_dump($_POST); and you will see the passed structure. See Updated Answer which includes the PHP. – Dutchie432 May 21 '13 at 10:21
    
Also, you should add action="javascript:void(0);" to your form. All Forms should have an action parameter, even if it does nothing. – Dutchie432 May 21 '13 at 10:26
    
One more update... $(form) should be $(this) – Dutchie432 May 21 '13 at 10:27
    
My js code = prntscr.com/15xjou My html code = prntscr.com/15xjr8 My php code = prntscr.com/15xjsa My result = prntscr.com/15xjta :'( And yea, saw it and fixed it already. {data:data} should also be just data – Orhun Akdeniz May 21 '13 at 10:31

you can create ajax fot text boxes so that it can update to database whenever change the focus from it.

<form id="ajax_form1">
<fieldset> 
    <input type="text" id="inputx" value="x_value" />
    <input type="text" id="inputy" value="y_value" /> 
</fieldset>
</form>

<script>

$(document).ready(function()
{
$("form#ajax_form1").find(":input").change(function()
 {
   var field_name=$(this).attr("id");
   var field_val=$(this).val();
   var params ={ param1:field_name, param2:field_val };

   $.ajax({ url: "ajax/pagename.php",
            dataType: "json",
            data: params,           
            success: setResult      
         });
});
});
</script>
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1  
This looks like a bit of a messy way to do it, because not all forms will have 2 inputs, and $.post is essentially the same thing as $.ajax – Orhun Akdeniz May 21 '13 at 10:32

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