0

I want to protect my action page so that whenever user or hacker directly hits www.something.com/process.php That should not have any effect .Please help me securing the process.php page when user directly hits from browser address bar .

I have following code in index.html

<form method="post" action="process.php">
    Name:<input type="text" name="txtname"><br/>
    Age :<input type="text" name="age"><br/>
    <input type="submit" value="submit">
</form>

I have following in process.php

<?php
//connection code to connect and use database...

$name=mysql_real_escape_string($_POST['txtname']);
$age=mysql_real_escape_string($_POST['age']);

$sql="insert into table values('$name','$age')";
$result=mysql_query($sql);

?>
  • my code is sql injection safe .Not talking about this . – rajkumar Jun 29 '15 at 8:37
  • 4
    Your code is not SQL injection safe, you are using deprecated and not supported MySQL driver (and it is deprecated and not supported anymore, for good reasons). – Siim Kallari Jun 29 '15 at 8:40
  • You should look at using a CSRF token and as above stop using the deprecated mysql driver – Mike Miller Jun 29 '15 at 8:48
2

Add the following line to the top of process.php

if (empty($_POST)) {
    header('HTTP/1.0 403 Forbidden');
    die('Restricted');
}
  • Thanks Bogdan your code is simple nice effective to achieve my goal :) – rajkumar Jun 29 '15 at 8:57
1

What about making sure that the user opened index.html first before navigating to process.php?

You have two options:

From the process.php make sure that the $_SERVER['HTTP_REFERER'] value matches your index.html page

if($_SERVER['HTTP_REFERER'] == "http://localhost/index.html"){
    //do your work here
}

Another solution, you can for example create a random variable in a hidden input in the index.html, store it in the session, then in the process.php page you can check if the variable that you stored in the session matches the variable sent by the form.

this is some basic ways to secure your applications from an attack called CSRF you can read more about it here:

https://en.wikipedia.org/wiki/Cross-site_request_forgery

http://www.gnucitizen.org/blog/csrf-demystified/

preventing csrf in php

0

You should try something like that

<form method="post" action="process.php">
    Name:<input type="text" name="txtname"><br/>
    Age :<input type="text" name="age"><br/>
    <input type="submit" value="submit" **name="ButtonName"**>
</form>

Add a name of your button. Then change your process.php file to something like this :

<?php
if (!isset($_POST['ButtonName'])) // If the submit button hadn't been hit
{
// Kick the user off the page
echo "<script typer=\"text/javascript\">window.location='index.html';</script>"
}
else
{
//connection code to connect and use database...

$name=mysql_real_escape_string($_POST['txtname']);
$age=mysql_real_escape_string($_POST['age']);

$sql="insert into table values('$name','$age')";
$result=mysql_query($sql);
}
?>

Now if you try to enter into process.php without submitting the form, you will automaticaly be "kicked"

0
$name=mysql_real_escape_string($_POST['txtname']);
$age=mysql_real_escape_string($_POST['age']);

What happens is this is not a POST request? Or if it is a POST request, but those two fields are not present? This code is broken. Now, your configuration may ignore that error and treat $_POST['age'] as a blank when it is not set, but that’s not something you should be relying on.

class Request {
    public static function value($arr, $field, $default=null) {
        return isset($arr[$field]) ? $arr[$field] : $default;
    }
    public static function get($field, $default=null) {
        return self::value($_GET, $field, $default);
    }
    public static function post($field, $default=null) {
        return self::value($_POST, $field, $default);
    }
}

That should exist as a useful class you can call when you want it. And then, in this file, you can have

$name = mysql_real_escape_string(Request::post('txtname'));
$age  = mysql_real_escape_string(Request::post('age'));

if ($name && $age) {
    // Do database stuff here.
}

For a quicker solution, you could just stick

if ($_SERVER['REQUEST_METHOD'] !== 'POST') {
    exit;
}

at the top of the file.

Incidentally, the mysql_* family of functions have been removed from the latest versions of PHP. You should migrate to the mysqli_* family or to PDO if you want your code to continue to work when you upgrade your PHP installation.

0

one way would be checking if the form is submitted and binding all the actions inside it as following

    <?php
if(isset($_POST['txtname']))
{
    //connection code to connect and use database...

    $name=mysql_real_escape_string($_POST['txtname']);
    $age=mysql_real_escape_string($_POST['age']);

    $sql="insert into table values('$name','$age')";
    $result=mysql_query($sql);
}
else 
{
// form not submitted


 }

        ?>

extra security can be added by binding whole inside another condition if the user has logged in or not as following

<?php
if(checkUserLogin())
{
    if(isset($_POST['txtname']))
    {
        //connection code to connect and use database...

        $name=mysql_real_escape_string($_POST['txtname']);
        $age=mysql_real_escape_string($_POST['age']);

        $sql="insert into table values('$name','$age')";
        $result=mysql_query($sql);
    }
    else 
    {
    // form not submitted


     }
}
else
{
// user has not logged in yet. redirect to login-page using header("location:....");

}
?>

where checkUserLogin() can be a function to check user logged in details for example

function checkUserLogin()
{
    $return= false;
    if($_SESSION['userloggedin']==1)
    {
        $return=true;
    }
    return $return;
}
-1

check on the data you sent first like the and make your code ad the followings

<?php
//connection code to connect and use database...

$name=mysql_real_escape_string($_POST['txtname']);
$age=mysql_real_escape_string($_POST['age']);

if((isset($name) && $name != '') || (isset($age) && $age != '')){
   $sql="insert into table values('$name','$age')";
   $result=mysql_query($sql);
}

?>

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

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