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I have a problem with my PHP form. Whenever I refresh the page, the old data automatically inserted to my database. My codes are:

<?php
   if(isset($_GET['send'])){
      isset($_GET['name'])?$name = $_GET['name']:"";
      isset($_GET['score'])?$score = $_GET['score']:0;

      $con = mysql_connect('localhost','root','') or die(mysql_error());
             mysql_select-db('student',$con) or die(mysql_error());
      $qry = mysql_query('INSERT INTO student(name, score) VALUES('$name', $score)') or die(mysql_error());

      $display = mysql_query('SELECT * FROM student',$con) or die(mysql_error());
      echo '<table border=1>';
      while($rows = mysql_fetch_array($display)){
          echo '<tr>';
          echo "<td>$rows['id']</td>";
          echo "<td>$rows['name']</td>";
          echo "<td>$rows['score']</td>";
          echo '</tr>';
      } 
      echo '</table>';
    }
    ?>

please help me solve this problem.

share|improve this question
1  
ofcourse...your insert query is executed everytime you refresh it.<br/>try making it that if a certain condition is meet..the insert query is executed... try putting it in an if. –  rrapuya Jul 6 '11 at 10:01
    
You have to check your from submit.I think. webmaster-forums.net/… –  newbie Jul 6 '11 at 10:01

3 Answers 3

A common way to prevent duplicate form submission is to make use of the Post/Redirect/Get Pattern.

You would need to change your forms method to Post then. After successful form submission you redirect to the form again but making the redirect a get request. The form will be reset then (empty values).

Edit:

Now as I see it, your script can actually do something similar: After insertion into the mysql Database you can redirect it to itself removing the get parameters:

<?php
if(isset($_GET['send'])){
  isset($_GET['name'])?$name = $_GET['name']:"";
  isset($_GET['score'])?$score = $_GET['score']:0;

  $con = mysql_connect('localhost','root','') or die(mysql_error());
         mysql_select-db('student',$con) or die(mysql_error());
  $qry = mysql_query('INSERT INTO student(name, score) VALUES('$name', $score)') or die(mysql_error());
  header('Location: myscriptsurl.php');
  exit;
}

$display = mysql_query('SELECT * FROM student',$con) or die(mysql_error());
echo '<table border=1>';
while($rows = mysql_fetch_array($display)){
  echo '<tr>';
  echo "<td>$rows['id']</td>";
  echo "<td>$rows['name']</td>";
  echo "<td>$rows['score']</td>";
  echo '</tr>';
} 
echo '</table>';
?>
share|improve this answer
    
guy, this seems to be displaying the result in another page. However, my purpose is to insert and display results on the same page –  Tepken Vannkorn Jul 6 '11 at 15:13
    
@tepkenvannkorn: You need to put your pages link in there. As I don't know it, I've put a placeholder in there ;) –  hakre Jul 6 '11 at 15:15
    
hmm, I tried, but it still in the manner of displaying in another page –  Tepken Vannkorn Jul 6 '11 at 15:23
1  
@tepkenvannkorn: The premise of the example code is, that it's assumed it's part of your "one" page that both has the form and the results displayed underneath. If that is not the case and you're still not sharing the URL of that page, there is nothing I can do about that. –  hakre Jul 6 '11 at 15:31

So you have a problem. And since you cannot avoid a refresh of the screen...

If you are doing a form post, you might consider sending a location header AFTER you inserted the record:

<form action="process.php" method="POST">
<input type="text" name="number">
<input type="sumbit">
</form>

then from process.php: // do you usual inserts in the database based on the post

header("Location: http://www.example.com/thanks.php");
// do not forget the exit, since your script will run on without it.
exit;

In that way your script will process the posting, and then redirects the browser to thanks.php. A reload of thanks.php will not result in a fresh db insert.

share|improve this answer

U have used GET method so every time page refresh it will fetch the value from URL. Try using POST method...It will solve your Problem and don't forget to Put Condition for POST

if(isset($_POST))
{
   /* Your Insert Code */

}
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