Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I am doing a project work on php. During my work every single query work smoothly. But when I want to delete any object using it won't delete ...

Here's my php code

<?php
//delete item
if(isset($_GET['deletecat'])){
    $id_to_delete = $_GET['deletecat'];
    $sql = mysql_query("DELETE FROM `category` WHERE `Category_id`=$id_to_delete LIMIT 1") or die('Error: Could not delete.');
    }
    else{
    header('location: category.php');
    exit();
    }       
?>

and after that I only get the error message. GET value is OK. And on my phpmyadmin this SQL running OK. But there's a pop up message appear when I want to delete any object. what can I do now?

share|improve this question

migrated from askubuntu.com Apr 16 '13 at 3:27

This question came from our site for Ubuntu users and developers.

    
What is the pop up message and what is the result of mysql_error? –  Robbert Apr 16 '13 at 3:30
2  
1) SQL INJECTION ALERT! 2) Obsolete mysql API alert! 3) Delete data on GET request alert! 4) ALERT ALERT! –  deceze Apr 16 '13 at 3:33
    
Please see this tinypic.com/r/2rzwc9g/6 ... –  NewBiL Apr 16 '13 at 3:34
1  
What you're doing here is extremely dangerous and if you don't read up on SQL injection bugs you will be exposing yourself to all kind of very serious problems. You cannot code like this. There are so many things going horribly wrong here at once. –  tadman Apr 16 '13 at 3:37
1  
Stupid question, but have you issued: mysql_connect() and mysql_select_db(); –  Daryl Gill Apr 16 '13 at 4:06

2 Answers 2

up vote 0 down vote accepted

there's a few layers where you could be having issues: with the db connection, the query, or the data which you are sending.

also, you are not filtering for " and ' marks so you could be in trouble there, and you're not ensuring that your id is a number so your sql could also be failing there.

but, you can figure that out with a few adjustments to your code.... you can insert some diagnostics into your code to see what mysql is reporting the error as and get a better idea of how to fix it.

note that it is [generally recommended][1] to use mysqli extension instead of mysql extension, but irregardless, here's sample code with the extension you are currently using

hope this helps!

<?php

    if ( isset($_GET['deletecat'])) {

        #dbh -> database resource. 
        $dbh = mysql_connect()

        #mysql_connect returns false if it fails. capture error and echo to output.
        if (!$dbh) {
            die("Could not connect to database server: ".mysql_error()."\n");
            #if using mysqli use mysql_connect_error() instead
        }

        #never trust input. use an escape function.    
        $id_to_delete = mysql_real_escape_string($_GET['deletecat'],$dbh);

        #force $id_to_delete to be treated as a number, or make it safer in your sql. 
        #i used the latter method below.
        $sql = "DELETE FROM `category` WHERE `Category_id` = '$id_to_delete' LIMIT 1");

        #mysql_query returns false on failure
        $result = mysql_query($sql,$dbh);

        #on failure catch the error and display the exact contents of 'deletecat' in a web-friendly way.
        if (!$result) {
            $error=mysql_error($dbh);
            die ("Error: Could not delete '"
                 .htmlentities(print_r($_GET['deletecat'],true)).". Error: $error\n"
            );

       }

       #if we did not trigger die() above we are ok.
       header('location: category.php');
       exit();
    }
?>

:

[1]: see warning at http://php.net/manual/en/function.mysql-connect.php

share|improve this answer

You should escape the GET variable first to avoid any SQl injection attacks as already said by deceze. Then, you should understand that the message given by phpmyadmin is a confirmation if you need to execute the delete query. you can use mysql_real_escape_string($value) to escape but as php vendor says, this function will be removed very soon and is currently deprecated. bye..

share|improve this answer
    
Then why my script won't work? I know my script is sql vulnerable but this is not complete yet. –  NewBiL Apr 16 '13 at 3:52
    
What are the errors you get? Is it only the confirmation? can you please post the errors? –  isu3ru Apr 16 '13 at 4:27

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.