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I got a form with some data that needs to be sent and I want to do it with ajax. I got a function that respond on an onclick event of a button. When I click the button I got some post data in firebug but it just doesn't reach my PHP script. Does anyone know what's wrong?

JS:

function newItem() {
var dataSet = $("#createItem :input").serialize();


confirm(dataSet); //Below this code box is the output of this variable to check whether it is filled or not

    var request = $.ajax({
        type: "POST",
        url: "/earnings.php",
        data: dataSet,
        dataType: "json"
    });

    request.done(function(){
        $('.create_item').children(".row").slideUp('100', 'swing');
        $('.create_item').children("h2").slideUp('100', 'swing');
        confirm("succes");
    });

    request.fail(function(jqXHR, textStatus) {
        confirm( "Request failed:" + textStatus );
    });
}

dataSet result when the form is completly filled in: id=123&date=13-09-2013&amount=5&total=6%2C05&customer=HP&invoicenumber=0232159&quarter=1&description=Test

The PHP:

<?php 

    include('includes/dbconn.php');

    function clean_up($string){
        $html = htmlspecialchars($string);
        $string = mysql_real_escape_string($html);
        return $string;
    }

    if($_POST){

        $date = clean_up($_POST['date']);
        $amount = clean_up($_POST['amount']);
        $total = clean_up($_POST['total']);
        $customer = clean_up($_POST['customer']);
        $invoicenumber = clean_up($_POST['invoicenumber']);
        $quarter = clean_up($_POST['quarter']);
        $description = clean_up($_POST['description']);

        $sql = ("INSERT INTO earnings (e_date, e_amount, e_total, e_customer, e_invoicenumber, e_quarter, e_description) 
            VALUES ($date, '$amount', '$total', '$customer', $invoicenumber, $quarter, '$description')");
        echo $sql;
        if($mysqli->query($sql) === true){
            echo("Successfully added");
        }else{
            echo "<br /> \n" . $mysqli->error;
        }
    }
?>

The form works fine without the ajax but with it it just doesn't work.

Your help is appreciated!

share|improve this question
    
add print_r($_POST); check under net>response in firebug –  Dagon Sep 2 '13 at 20:42
    
Double check url path man.. url: "/earnings.php", –  DontVoteMeDown Sep 2 '13 at 20:43
    
The path is right and I can't see a PHP response in firebug since the page does not go to the PHP script but just refreshes the html form. –  Tom Sep 2 '13 at 20:46
    
how do you call newItem() ? sounds like you're submitting the from before the ajax call –  andrew Sep 2 '13 at 20:48
    
With <button onclick="newItem()">Save</button>. –  Tom Sep 2 '13 at 21:05

2 Answers 2

Try this snippet code bro...

<form id="F_login">
    <input type="text" name="email" placeholder="Email">
    <input type="password" name="password" placeholder="Password">
    <button id="btn_login" type="submit">Login</button>
</form>

$("#btn_login").click(function(){
    var parm = $("#F_login").serializeArray();
    $.ajax({
        type: 'POST',
        url: '/earnings.php',
        data: parm,
        success: function (data,status,xhr) {
            console.info("sukses");
        },
        error: function (error) {
            console.info("Error post : "+error);
        }
    });
});

Reply me if you try this...

share|improve this answer
    
I got the following error "Error post : [object Object]". This is with serializeArray() and also with serialize(). –  Tom Sep 3 '13 at 16:53
    
check the error using firebug... and, have you check in your php when this ajax do POST ??? –  Eko Junaidi Salam Sep 4 '13 at 19:56

prevent your form submitting and use ajax like this:

<form id="createItem">
<input id="foo"/>
<input id="bar"/>
<input type="submit" value="New Item"/>
</form>

$('#createItem).on("submit",function(e){
e.preventDefault;
newItem();
});
share|improve this answer
    
That did unfortunately not work. –  Tom Sep 2 '13 at 21:13
    
@Tom ok well as I say, to me it sounds like your from is being submitted and the page reloading before your javascript gets a look in. Post your html form and show us how you're calling newItem(); –  andrew Sep 2 '13 at 21:22
    
@Tom ok I didnt see your comment,its typical to use '<input type="submit" value="New Item"/>' at the end of a form, that way pressing return will submit the form which is the expected behavior –  andrew Sep 2 '13 at 21:26
    
@Tom perhaps try var dataSet = $("#createItem").serialize(); instead, this assumes your forms id = createItem –  andrew Sep 2 '13 at 21:30
    
I've tried all your suggestions but without any luck. The page still just refreshes on submit and no data is send to the script. –  Tom Sep 3 '13 at 7:48

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