Sign up ×
Stack Overflow is a community of 4.7 million programmers, just like you, helping each other. Join them; it only takes a minute:

I have a php form but everytime I open up the php document it is on, I keep getting these php notice errors:

Notice: Undefined index: sessionid in /web/stud/u0867587/MOBILEPHP/exam_interface.php on line 37

Notice: Undefined index: moduleid in /web/stud/u0867587/MOBILEPHP/exam_interface.php on line 38

Notice: Undefined index: teacherid in /web/stud/u0867587/MOBILEPHP/exam_interface.php on line 39

Notice: Undefined index: studentid in /web/stud/u0867587/MOBILEPHP/exam_interface.php on line 40

Notice: Undefined index: grade in /web/stud/u0867587/MOBILEPHP/exam_interface.php on line 41

When I click on the submit button the notices go away but what do I need to do so that when I open up the php document, there are no notice errors on undefined index?

Below is the coding:

<!DOCTYPE html PUBLIC "-//W3C//DTD XHTML 1.0 Transitional//EN" "">
<html xmlns="">

<title>Exam Interface</title>
<meta http-equiv="Content-Type" content="text/html; charset=utf-8" />

<form action="exam_interface.php" method="post" name="sessionform">        <!-- This will post the form to its own page"-->
<p>Session ID: <input type="text" name="sessionid" /></p>      <!-- Enter Session Id here-->
<p>Module Number: <input type="text" name="moduleid" /></p>      <!-- Enter Module Id here-->
<p>Teacher Username: <input type="text" name="teacherid" /></p>      <!-- Enter Teacher here-->
<p>Student Username: <input type="text" name="studentid" /></p>      <!-- Enter User Id here-->
<p>Grade: <input type="text" name="grade" /></p>      <!-- Enter Grade here-->
<p>Order Results By: <select name="order">
<option name="noorder">Don't Order Results</option>
<option name="ordersessionid">Session ID</option>
<option name="ordermoduleid">Module Number</option>
<option name="orderteacherid">Teacher Username</option>
<option name="orderstudentid">Student Username</option>
<option name="ordergrade">Grade</option>
<p><input type="submit" value="Submit" /></p>




@mysql_select_db($database) or die("Unable to select database");

$sessionid = $_POST['sessionid'];
$moduleid = $_POST['moduleid'];
$teacherid = $_POST['teacherid'];
$studentid = $_POST['studentid'];
$grade = $_POST['grade'];

$result = mysql_query("SELECT * FROM Module m INNER JOIN Session s ON m.ModuleId = s.ModuleId JOIN Grade_Report gr ON s.SessionId = gr.SessionId JOIN Student st ON gr.StudentId = st.StudentId WHERE ('$sessionid' = '' OR gr.SessionId = '$sessionid') AND ('$moduleid' = '' OR m.ModuleId = '$moduleid') AND ('$teacherid' = '' OR s.TeacherId = '$teacherid') AND ('$studentid' = '' OR gr.StudentId = '$studentid') AND ('$grade' = '' OR gr.Grade = '$grade')");


echo "<table border='1'>
<th>Student Id</th>
<th>Session Id</th>

while ($row = mysql_fetch_array($result)){

 echo "<tr>";
  echo "<td>" . $row['StudentId'] . "</td>";
  echo "<td>" . $row['Forename'] . "</td>";
  echo "<td>" . $row['SessionId'] . "</td>";
  echo "<td>" . $row['Grade'] . "</td>";
  echo "<td>" . $row['Mark'] . "</td>";
  echo "<td>" . $row['ModuleName'] . "</td>";
  echo "<td>" . $row['TeacherId'] . "</td>";
  echo "</tr>";

echo "</table>";



share|improve this question

7 Answers 7

up vote 2 down vote accepted

That is because the form hasn't posted yet, and these values are empty. Replace with something like:

$sessionid = isset($_POST['sessionid']) ? $_POST['sessionid'] : "";
$moduleid = isset($_POST['moduleid']) ? $_POST['moduleid'] : "";
$teacherid = isset($_POST['teacherid']) ? $_POST['teacherid'] : "";
$studentid = isset($_POST['studentid']) ? $_POST['studentid'] : "";
$grade = isset($_POST['grade']) ? $_POST['grade'] : NULL;

And these must be sanitized before used in a database query, to protect your application from SQL injection attacks.

$sessionid = mysql_real_escape_string($sessionid);
$moduleid = mysql_real_escape_string($moduleid);
$teacherid = mysql_real_escape_string($teacherid);
$studentid = mysql_real_escape_string($studentid);
$grade = mysql_real_escape_string($grade);

It is highly advisable to remove the @ from your database calls, as it hides error messages that may result from those calls. Instead, use ini_set("display_errors", 0); to avoid errors showing onscreen in your production code.

// Remove the @
share|improve this answer
+1, good detailed answer – psynnott Oct 13 '11 at 16:47
Thank You this has worked perfectly. That was a big help. – BruceyBandit Oct 13 '11 at 16:58
@user992147 Happy to help, and welcome to Stack Overflow. Please mark the answer as accepted by clicking the checkmark, and also upvote all answers you found helpful. – Michael Berkowski Oct 13 '11 at 16:59

Replace these lines:

$sessionid = $_POST['sessionid'];
$moduleid = $_POST['moduleid'];
$teacherid = $_POST['teacherid'];
$studentid = $_POST['studentid'];
$grade = $_POST['grade'];


$sessionid = isset($_POST['sessionid']) ? $_POST['sessionid'] : '';
$moduleid = isset($_POST['moduleid']) ? $_POST['moduleid'] : '';
$teacherid = isset($_POST['teacherid']) ? $_POST['teacherid'] : '';
$studentid = isset($_POST['studentid']) ? $_POST['studentid'] : '';
$grade = isset($_POST['grade']) ? $_POST['grade'] : '';

Also, I recommend you remove the password from your source code pasted here!

share|improve this answer
The first answer worked but yours was same as first answer except you didn't include the SQL injection which was on the first answer. But you would of answered my question as well so thank you – BruceyBandit Oct 13 '11 at 16:59

The first time you open up your php file, you already assign $_POST values to variables. However, these are not set yet at the moment. Try an if(isset($_POST['name'])) before the assignments to prevent this.

share|improve this answer

you need to give the :


variables a default value like this :

$sessionid = 0;
$moduleid = 0;
$teacherid = 0;
$studentid = 0;
$grade = 0;

then use them to get the $_POST array values like this :

$sessionid = $_POST['sessionid'];
$moduleid = $_POST['moduleid'];
$teacherid = $_POST['teacherid'];
$studentid = $_POST['studentid'];
$grade = $_POST['grade'];

so the final code will be :

$sessionid = 0;
$moduleid = 0;
$teacherid = 0;
$studentid = 0;
$grade = 0;
$sessionid = $_POST['sessionid'];
$moduleid = $_POST['moduleid'];
$teacherid = $_POST['teacherid'];
$studentid = $_POST['studentid'];
$grade = $_POST['grade'];
share|improve this answer
Top answer worked but thank you anyway – BruceyBandit Oct 13 '11 at 17:00

That's because you're assigning the variables even when they are not set.

Use isset(); or empty(); for the $_POST[] variables

if isset($_POST['variable']){
    $variable  = $_POST['variable'];

Don't just leave it open.

share|improve this answer
Michael's answer worked but thank you with your post – BruceyBandit Oct 13 '11 at 17:00

The first time you open the page the code will try to look for the data that it expects was posted but since you didnt submit the form yet, it isnt there. You need to check to see if the $_POST['sessionid']; etc etc is posted THEN assign he values to the variables.

share|improve this answer

I recommend using only one verification at the beginning.

if (!empty($_POST)) {
    // Get variables from $_POST
share|improve this answer
Or perhaps you could write a function like isPost() like: function isPost() { return !empty($_POST);} – Saul Martínez Oct 13 '11 at 17:59

Your Answer


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.