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I am working on a system and i want to check if a record exist. If a record exist then it will not record the data and instead will return to the form. If the data does not exist then it will proceed to recording the data to DB.

HTML form:

 <form name="studentform" onSubmit="return validate_form ( );" action="queries/insert.php" method="post">

Student Number: <input type="text" name="studentnumber"/>
    College:
 <select name="college" id=a></select>

&nbsp;&nbsp;Course:
<select name="course" id=b></select>

 <input type="radio" name="status" value="regular" />Regular&nbsp;&nbsp;
<input type="radio" name="status" value="irregular" />Irregular 
    <br><br>
    <hr>
    <br>
   Name:
    <input type="text" name="lname"> &nbsp;
    <input type="text" name="fname"> &nbsp;
    <input type="text" name="mname">   


Address: 
<input type="text" name="address" />

<br><br>

 Gender: 
 <select name="gender">
<option value="">---</option>  
<option value="Male">Male</option>
<option value="Female">Female</option>
</select>



<input type="submit" value="Submit">
</form>

PHP form:

 $query = ("SELECT studentnumber FROM students where studentnumber = '$_POST[studentnumber]'");
 $result=mysql_query($query);

 if($result)
    {
      if(mysql_num_rows($result) >= 1)
      { 
      echo "<script type='text/javascript'>alert('User already exist'); location.href = '../admin_home.php';</script>";
      }
      }
   else{

$sql="INSERT INTO students (studentnumber, college, course, status, lname, fname, mname, address, gender)
VALUES
('$_POST[studentnumber]','$_POST[college]','$_POST[course]','$_POST[status]','$_POST[lname]','$_POST[fname]','$_POST[mname]','$_POST[address]','$_POST[gender]')";

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

  echo "<script type='text/javascript'>alert('Record Successfully Added'); location.href = '../admin_home.php';</script>";
}

I don't know why but i always get the undefined index error. Maybe i've done something wrong somewhere. Thanks !!

share|improve this question
    
First things first - read up on "SQL injection" - your code is not secure. –  Grim... Jan 25 '12 at 12:00
    
A line number for the error would be helpful –  xbonez Jan 25 '12 at 12:02
    
write the complete error –  jogesh_pi Jan 25 '12 at 12:02
    
Notice: Undefined index: studentnumber in C:\xampp\htdocs\SIS\WEW\queries\insert.php on line 11 this is the error and line 11 would be this "$query = ("SELECT studentnumber FROM students where studentnumber = '$_POST[studentnumber]'");" –  kcire arraveug Jan 25 '12 at 12:05
    
possible duplicate of PHP: "Notice: Undefined variable" and "Notice: Undefined index" –  Jocelyn Mar 29 '13 at 12:00

3 Answers 3

"Undefined index" is referring to your array ($_POST, probably), and it should be a notice, not an error. Can you post the exact message?

In the meantime, switch your first line for

$query = "SELECT studentnumber FROM students where studentnumber = '".mysql_real_escape_string($_POST['studentnumber'])."'";

Also, it's helpful for debugging to print out the query to make sure it looks like you'd expect:

print $query."<br />";  // obviously

[edit]As you've now posted the error message, it becomes far more simple - $_POST['studentnumber'] does not exist. Check your form.

A good way to debug posted results is to use the code

print '<pre>';
print_r($_POST);
print '</pre>';
share|improve this answer
    
I would recommend using prepared statements. –  user215361 Jan 25 '12 at 12:05
    
@MatthiasVance I agree, but I think we would be running before we could walk... –  Grim... Jan 25 '12 at 12:06
    
Agreed. I figured I'd just put it here as a reminder for everyone else. –  user215361 Jan 25 '12 at 12:25

The problem is in your queries:

 $query = ("SELECT studentnumber FROM students where studentnumber = '$_POST[studentnumber]'");

$_POST[studentnumber] is not correct. It needs to be $_POST['studentnumber']. Notice the quotes around the key.

I suggest doing it this way:

$query = sprintf("SELECT studentnumber FROM students where studentnumber = '%s'"
                  , mysql_real_escape_string($_POST['studentnumber']));

Change all your queries accordingly.

share|improve this answer
    
i don't think so this will effected $_POST[studentnumber] in the query. –  jogesh_pi Jan 25 '12 at 12:19
    
It will, because $_POST has keys as strings. In her case, she is calling a key as a constant –  xbonez Jan 25 '12 at 12:21
    
but the key also work without '' single quotes like $_POST[studentnumber] –  jogesh_pi Jan 25 '12 at 12:24
2  
True, it will work. But only because PHP won't recognize the constant studentnumber and thus assume it to be 'studentnumber'. But it will throw a NOTICE - the purpose of which is to inform the programmer of the error he made so he can rectify it. This should not be used unless its a mistake. –  xbonez Jan 25 '12 at 13:11
    
hummm, now understand but in php 4.4.9 its not providing notice, cause i run the same in php 4.4.9 and php 5.3, and got the NOTICE in php 5.3, Thanks –  jogesh_pi Jan 25 '12 at 17:23

try with this:

if( isset($_POST['submit']) ){

  $student_num = mysql_real_escape_string( $_POST['studentnumber'] );
  // Set all the require form fields here with mysql_real_escape_string() fun

  if( !empty($student_num) ){
    // Your Query Here
  }
  else{
   echo 'Value not Set in Student Number Field!';
  }
}

Edit: first check all the fields after isset($_POST['submit']) so that you confirm about all the values are properly getting or not

after getting all the required values start your query

share|improve this answer

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