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I have to get data from database but my head is broken since I didn't find any error but I don't know why it doesn't work!

JavaScript

var editdata = document.getElementById('editdata');
editdata.onclick = function() {
    $.ajax({
        url: "sendata.php",
        data :{ length : length, age : age, },
        type : 'POST',
        success: function(output_data){
            $('#mydata').html(output_data);
        }
    });
}

PHP

if (isset($_POST['editdata'])) {
    $sql4 = $db->setQuery(
        "SELECT * FROM people WHERE userid = "
        . $userid2 . " AND inf_id = " . $_SESSION['name'] . " "
    );
    $result4 = $sql4->loadAssocList() ;
    $output_data = "";
    $output_data .= "<table width='600' border='1' >";
    foreach ($result4 as $row4) {
        $output_data .= "<tr><td>".$row4['age'];
        $output_data .= "</td><td>".$row4['length'] ;
        $output_data .= "</td><td><input id ='".$row4['id']
            . "' type='button' value='Delete'/>";
        $output_data .= "</td></tr>" ;
    }
    $output_data .= "</table>" ;
    echo $output_data ;
}
echo "failure";

but I'm getting just a failure message if I do:

success: function(msg){
    alert(msg);
    $('#mydata').html(output_data);
}

What am I doing wrong?

share|improve this question
1  
Try taking out the comma after age:age, –  Wasim Nov 25 '12 at 0:18
    
done but its not this problem –  echo_Me Nov 25 '12 at 0:20
2  
Also you're checking for $_POST['editdata'] but you are not sending that variable from your Ajax request, so that if statement is failing. –  Wasim Nov 25 '12 at 0:21
    
Just some hints for your further debugging: - use FireBug and FireQuery for Firefox - double check Variablenames and filenames: maybe you named the server side script senddata.php? - do some error handling on php-side: use try/catch good luck! –  Enno Nov 25 '12 at 0:35
    
how to send this post['editdata'] from ajax request? –  echo_Me Nov 25 '12 at 1:01
show 1 more comment

closed as not constructive by mmmshuddup, markus, feeela, Jocelyn, Christian Nov 25 '12 at 1:33

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1 Answer

You are sending { length : length, age : age } with POST method.

This means that only $_POST['lenght'] and $_POST['age'] are set, therefore making (isset($_POST['editdata'])) return false and not execute the if block.

Did you mean:

if (isset($_POST['legth']) and isset($_POST['age'])) {
    ...
}

Also you can notice that echo "failure;" is executed every time. Maybe you meant:

if (isset($_POST['editdata'])) {
    ...
} else {
    echo "failure";
}

?

share|improve this answer
    
i mean if the button is set of editdata . then get data from database, i have editdata button. so i check if is clicked then get data –  echo_Me Nov 25 '12 at 1:00
    
i think u right but how should i send also editdata ? –  echo_Me Nov 25 '12 at 1:05
    
this is my button <input type="button" id="editdata" name="editdata" value="Edit my Data" /> –  echo_Me Nov 25 '12 at 1:12
    
@peter, what do you want to send as $_POST['editdata']? There's no value in it... –  Jefffrey Nov 25 '12 at 3:01
    
@peter using the name of the button as a $_POST variable only works when actually posting the form in HTML, but because you are using AJAX, only the parameters passed in the data section of the AJAX request data :{ length : length, age : age, } are passed to the page. –  Wasim Nov 25 '12 at 8:47
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