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There are may button son php page. I want to submit value of button and the delete record from table using that value. Ajaxz code is

$('#product-table td #delete').live("click", function () {
                var doDelete = confirm('Are you sure you want to delete this record?');
                deleteLinkObj = $(this);

                if (doDelete) {


                    var id = $(this).attr('accesskey');
        $("#deleteid").val(id); 
        $.ajax({
                    url: "purchase.php",
                    data: {deleteid:id},
                    dataType: 'html',
                    success: function() {

                    }
                });


                }
                else { return false; }
                });

On PHP I am trying to use value of deleteid but its not coming PHP code is

if(@$_POST['deleteid']!="")
                    {
                    $sql="delete from purchasedetails where purchaseid='".$_POST['deleteid']."'";
                    if(!mysql_query($sql))
                            {
                            die('Error: ' . mysql_error());
                            }
                            else
                            {
                            $msg="Data is deleted";
                            }
                    }   

I have tried usinng isset($_POST['deleteid']) then also its showing error

share|improve this question
3  
WARNING! Your code contains an SQL injection vulnerability -- you are passing raw, unfiltered, unvalidated user input directly into an SQL string. SQL injection is very easy to fix. Consider switching to PDO or mysqli so you can use prepared statements with parameterized queries. Also, dude, stop using the @ operator. Don't hide errors, fix errors. –  Charles Jan 3 '13 at 8:58
    
...also, post the error you received.... –  user985189 Jan 3 '13 at 8:59
    
There is No error shown by it. It deosn't delete the record after confirming it is to be deleted.'@' is used to hide the warning Message ' variable not initialized'. –  Dharmender Jan 3 '13 at 9:17
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2 Answers

up vote 1 down vote accepted

In your ajax call you aren't setting the request method to POST, therefore it will default to GET, that is why your post var is never present:

    $.ajax({
                type: 'POST',
                url: "purchase.php",
                data: {deleteid:id},
                dataType: 'html',
                success: function() {

                }
            });

As a quick fix for your SQL Injection vulnerability you can cast the id as int, but you should consider upgrading to PDO or MySQLi because the library you're using is deprecated.

$sql="delete from purchasedetails where purchaseid='".(int)$_POST['deleteid']."'";

Storing your purchaseid as the elements accesskey is not the best place, it would be better as a data-myid attribute, so you can access it with $(this).data('myid').

share|improve this answer
    
I have tried it using POST but still the problem is same.The value is not getting submitted –  Dharmender Jan 3 '13 at 9:15
    
Move the id from the accesskey and verify it's present in the HTML (view->source). Then watch the request in Firebug or Chrome dev tools to see what is sent. –  MrCode Jan 3 '13 at 9:19
    
used data-myid and then done casting of id in delete command it has worked.Thanks. –  Dharmender Jan 3 '13 at 9:28
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By default $.ajax take type as GET, hence you need to define the type in you code

You can try like this $.ajax syntax-

    $.ajax({
                url: "purchase.php",
                data: $("#deleteid").val(id),
                type: POST
                dataType: 'html',
                success: function() {
share|improve this answer
    
Tried using POSt but still it doesn't submit the value. –  Dharmender Jan 3 '13 at 9:17
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