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.

Currently, my code on the HTML side looks like this:

<form action="newstory.php" method="post">
<input type="hidden" name="author" value="<?php echo $loggedInUser->display_username; ?>"
/>
<input type="hidden" name="userid" value="<?php echo $loggedInUser->user_id ?>" />
Story Title: <input type="text" name="story_name" /><br>
Story: <textarea rows="10" cols="30" name="story" /></textarea><br>
<input type="submit" />
</form>

Here's the PHP side:

include("dbconnect.php");

mysql_select_db("scratch", $con);

$author     = mysql_real_escape_string($_POST['author']);
$author_id  = mysql_real_escape_string($_POST['userid']);
$story_name = mysql_real_escape_string($_POST['story_name']);
$story      = mysql_real_escape_string($_POST['story']);

$sql= "
INSERT INTO stories (author, author_id, story_name, story)
VALUES ('$author', '$author_id','$story_name', '$story')
";


if (!mysql_query($sql,$con))
{
die('Error: ' . mysql_error());
}
echo "Story Submitted! Redirecting to Homepage...";
//User is shown this for about 3 seconds
header('Refresh: 3; URL=index.php');

mysql_close($con)

I want to get rid of the

<input type="hidden" name="author" value="<?php echo $loggedInUser->display_username; ?
>"/>

Since people could easily edit that and post as any user, but I'm unsure of a good way. Same goes for userid.

Help is appreciated!

share|improve this question
6  
If the user is logged in, use a session to store his ID and insert that into the database. –  Second Rikudo Feb 11 '12 at 20:24
2  
Look up PDO and don't use mysql_* functions while you're at it. –  N.B. Feb 11 '12 at 20:37
    
Don't send userdata in forms.. Use $_SESSION data for authentication –  Richard Feb 11 '12 at 20:42

2 Answers 2

Sending the userid via a hidden input field in a form is a HUGE security threat. Anybody can change that value with e.g. Chrome's inspector or FireBug. When someone log's in; you must store at least their user_id in a session. You can also store more info in the session so that you don't have to query the database on every request to e.g. show the logged-in user's username somewhere on the page.

I don't know how you handle log-ins at the moment, and I don't know how $loggedInUser is populated, but it should be a session variable, e.g. $_SESSION['user']['id']. That way you always know who the user is without having to send the data via a form; that is a real no-go.

Make sure to have session_start() at the top of each page, and ideally you'd use templates and you only have to add session_start() to the top of index.php.

And

$sql= "
INSERT INTO stories (author, author_id, story_name, story)
VALUES ('$author', '$author_id','$story_name', '$story')
";

Should at least be

$sql= "
INSERT INTO stories (author, author_id, story_name, story)
VALUES ('". $author ."', '". $author_id ."', '". $story_name ."', '". $story ."')
";

And I would personally recommend:

$q = "
INSERT INTO stories
        SET author_id = ". $_SESSION['user']['id'] ." # This is an integer (I assume) so don't use apostrophe's
          , story_name = '". mysql_real_escape_string($_POST['story_name']) ."'
          , story = '". mysql_real_escape_string($_POST['story']) ."'
";

Remove the field author from the table. Just use the author_id for table referencing, otherwise you're going to store duplicate data and when someone changes their author name, the author name in the stories is outdates/incorrect/obsolete.

share|improve this answer
    
Updated my answer –  Richard Feb 11 '12 at 21:32
    
Did this sort your issue? p.s. I see in your code that mysql_close($con) doesn't have a semi-colon at the end of the line. A semi-colon after the last line before PHP is close is optional, but will cause an error if you decide to add more code below :-) –  Richard Feb 11 '12 at 22:11

Check if the user is set, and just show that form if the user object is valid. Right before saving with mysql use the values from the user object instead of reading that from the POST-data.

<?php if ( isset($_POST['story_name']) ) {
// story posted.. check if user is set
if ( isset($loggedInUser->user_id) ) {
    // save into database using $loggedInUser->user_id and $loggedInUser->author_name
}
?>

<?php
// just show the form if the user object is set
if ( isset($loggedInUser->user_id) ){
?>
<form> <!-- and show the form over here --> </form>
<?php } ?>

Oh, and your mysql_real_escape_string() is good! another best practice is to add variables into your query using sprintf():

$author     = mysql_real_escape_string($loggedInUser->author_name);
$author_id  = mysql_real_escape_string($loggedInUser->user_id);
$story_name = mysql_real_escape_string($_POST['story_name']);
$story      = mysql_real_escape_string($_POST['story']);

$sql= sprintf("
INSERT INTO stories (author, author_id, story_name, story)
VALUES ('%s', '%s', '%s', '%s')
", $author, $author_id, $story_name, $story); // %s accepts the value to be a string. %d accepts a decimal for example.
share|improve this answer
    
You shouldn't send userdata in requests, because it can be manipulated. Anyone can edit the hidden fields from the browser and post as someone else now.. –  Richard Feb 11 '12 at 20:44
    
You are right. Exactly what I rood at line 4 above, but not edited,in THE second codeblock. –  user1204156 Feb 11 '12 at 21:14

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.