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Possible Duplicate:
PHP: “Notice: Undefined variable” and “Notice: Undefined index”

I need some help on this coding error. I have tried different things but still getting this error. I don't understand what it means by line 1. Any help will be helpful

Here is the error:

Notice: Undefined index: question0 in G:\xampp\htdocs\xampp\quizPhp\demo.php on line 7

Notice: Undefined index: aee in G:\xampp\htdocs\xampp\quizPhp\demo.php on line 8

Notice: Undefined index: bee in G:\xampp\htdocs\xampp\quizPhp\demo.php on line 9

Notice: Undefined index: cee in G:\xampp\htdocs\xampp\quizPhp\demo.php on line 10

Notice: Undefined index: dee in G:\xampp\htdocs\xampp\quizPhp\demo.php on line 11

Notice: Undefined index: eee in G:\xampp\htdocs\xampp\quizPhp\demo.php on line 12

Notice: Undefined index: fee in G:\xampp\htdocs\xampp\quizPhp\demo.php on line 13
Information was added successfulyError: You have an error in your SQL syntax; check the manual that corresponds to your MySQL server version for the right syntax to use near 'What process determines the identity of a user?','','','','','','','','value9')' at line 1

This is my code:

<?php

//MySQL Database Connect
include 'db_connect.php'; 

$value1 = $_POST['question'];
$value2 = $_POST['question0'];
$value3 = $_POST['aee'];
$value4 = $_POST['bee'];
$value5 = $_POST['cee'];
$value6 = $_POST['dee'];
$value7 = $_POST['eee'];
$value8 = $_POST['fee'];
$value9 = $_POST['answer'];


$sql = "INSERT INTO quiz1question (question,question0,aee,bee,cee,dee,tee,fee,quizAnswer) VALUES ($value1','$value2','$value3','$value4','$value5','$value6','$value7','$value8','value9')";



echo ('Information was added successfuly');

if (!mysql_query($sql)) {
    die('Error: ' . mysql_error());
}

?>
<html>
<head>
<script type="text/javascript">
<!--
function delayer(){
    window.location = "http://localhost:1234/xampp/quizPhp/demo-form.php"
}
//-->
</script>
</head>
<body onLoad="setTimeout('delayer()', 5000)">
<h2>Prepare to be redirected!</h2>
<p>This page is a time delay redirect, please update your bookmarks to our new 
location!</p>

</body>
</html>
share|improve this question

marked as duplicate by lanzz, Quentin, mario, Mike Mackintosh, H2CO3 Oct 6 '12 at 20:30

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

4  
bobby-tables.com (sigh) – Quentin Oct 6 '12 at 20:11
2  
Do not interpolate user-provided variables, unescaped, directly into your SQL query; at the moment, you are vulnerable to SQL injection. Regardless, you should be using prepared statements instead of interpolating in the first place. Check your POST variables before using them. Do not pass a string to setTimeout. "Successfully" is the correct spelling. echo is not a function. That include should likely be a require_once. $value1' is missing a quote, and 'value9' is missing a dollar sign. Semicolons, though automatically inserted, should nevertheless be included in JavaScript. – user1479055 Oct 6 '12 at 20:13
    
And why bother redirecting with the silly message and waste of time when you could send a Location header and avoid the whole problem? – user1479055 Oct 6 '12 at 20:16

I see 4 things wrong

A. Always check if variable exist

    $var = isset($_POST['key']) ? $_POST['key'] : null;

B. Always validate and never trust user input

if(!filter_var($var,FILTER_VALIDATE_INT))
{
    // This is not what i expect 
}

C. To avoid SQL Injection use

    $var = mysqli_real_escape_string($link, $var);

D. PHP doc on mysql_**

Use of this extension is discouraged. Instead, the MySQLi or PDO_MySQL extension should be used. See also MySQL: choosing an API guide and related FAQ for more information. Alternatives to this function include:

share|improve this answer
    
Filtering is incorrect here. – user1479055 Oct 6 '12 at 20:18

The first errors are because your POST variables are not set... did you submit the form or are you just visiting the page?

The other one is because you have just one a single quote....

VALUES ($value1',

should be

VALUES ('$value1',

The following won't cause any error but it's still wrong:

value9 should be $value9

ALSO, the usual spiel about sanitizing your input: Your code can suffer from a SQL injection attack because I can put anything I want in those variables and it'll execute it.

And regarding the use of mysql_query...

Use of this extension is discouraged. Instead, the MySQLi or PDO_MySQL extension should be used.

share|improve this answer

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