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I can't see where i am going wrong, it just won't let me connect to the mysql database and i only get error message when trying to save details.?????? i think there may be a problem where it shows $sql for inserting the values into the table. the first part newstudent.php works, but sql.php does not work.

//new student.php
<html>
  <head>
  </head>
  <body>
     <h2>Your details</h2>
     <form name="frmdetails" action="sql.php" method="post">
        ID Number :
     <input name="txtid" type="text" />
        <br/>
    Password :
     <input name="txtpassword" type="text" />
        <br/>
    Date of Birth :
     <input name="txtdob" type="text" />
        <br/>
    First Name :
    <input name="txtfirstname" type="text" />
        <br/>
        Surname :
        <input name="txtlastname" type="text" />
    <br/>
        Number and Street :
    <input name="txthouse" type="text"   />
        <br/>
        Town :
        <input name="txttown" type="text"  />
    <br/>
        County :
    <input name="txtcounty" type="text"   />
        <br/>
         Country :
    <input name="txtcountry" type="text"   />
        <br/>
        Postcode :
        <input name="txtpostcode" type="text"   />
        <br/>
        <input type="submit" value="Save" name="submit"/>
      </form>
   </body>
   </html>

//sql.php
$conn=mysql_connect("localhost", "20915184", "mysqluser"); 
 mysql_select_db("db5_20915184", $conn);

// If the form has been submitted

$id=$_POST['txtstudentid'];
$password=$_POST['txtpassword'];
$dob=$_POST['txtdob'];
$firstname=$_POST['txtfirstname'];
$lastname=$_POST['txtlastname'];
$house=$_POST['txthouse'];
$town=$_POST['txttown'];
$county=$_POST['txtcounty'];
$country=$_POST['txtcountry'];
$postcode=$_POST['txtpostcode'];



    // Build an sql statment to add the student details
    $sql="INSERT INTO student

(studentid,password,dob,firstname,lastname,house,town,county,country,postcode) VALUES

('$id','$password','$dob','$firstname','$lastname','$house','$town','$county','$country','$postcode')";
    $result = mysql_query($sql,$conn);
        if($result){
echo"<br/>Your details have been updated";
echo "<BR>";
echo "<a href='Home.html'>Back to main page</a>";
}

else {
echo "ERROR";
}

// close connection 
mysql_close($conn);
?>
share|improve this question
    
20915184 is your db user or db password? –  Michael Berkowski Mar 5 '12 at 18:38
    
it is db user.. –  W_K Mar 5 '12 at 18:39
    
Note, that your script is vulnerable to tampering via SQL injection. Escape all your $_POST input values with mysql_real_escape_string() as in $password = mysql_real_escape_string($_POST['password']); –  Michael Berkowski Mar 5 '12 at 18:40
    
If you're getting your ERROR message, echo mysql_error() to see what failed. –  Michael Berkowski Mar 5 '12 at 18:41
    
Another note on style & security -- it is not safe to store passwords in plain text in your database. Instead store a hash like sha1($password) in the database, and on subsequent logins, check that sha1($password) is equal to the value in the database. –  Michael Berkowski Mar 5 '12 at 18:48
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3 Answers

The username comes before the password in mysql_connect(); Try running the sql statement in phpmyadmin and see if it works there!

share|improve this answer
    
the username is 20915184 and password is mysqluser –  W_K Mar 5 '12 at 18:40
    
You sure?! If yes then sorry! See edit. –  yehuda Mar 5 '12 at 18:43
    
i tried phpmyadmin, it doesn't seem to show anything –  W_K Mar 5 '12 at 19:44
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With in your if else statement, where you echo "ERROR", try printing mysql_error() this would show that your mysql_connect() is wrong If the username/password combo is wrong.

To clean this up a bit, Here is what the if/else should look like

if($result){
  echo"<br/>Your details have been updated";
  echo "<BR>";
  echo "<a href='Home.html'>Back to main page</a>";
} else {
  echo "There has been an error <br/>";
  print mysql_error();
}

EDIT :

Also, Prevent sql injection with mysql_real_escape_string() on all posted values

share|improve this answer
    
Agreed. This will tell you why SQL rejected your insert. If it doesn't help you, post the results here. –  octern Mar 5 '12 at 18:45
    
i now get 'there has been an error duplicate entry " for key 1 –  W_K Mar 5 '12 at 19:14
    
It sounds like you are trying to duplicate some data in the table then. Something that is set as a primary key is already in there. example. If you have your first name set as primary key, you can only use the first name one time. –  bretterer Mar 5 '12 at 19:36
    
i think the id is set to primary key –  W_K Mar 5 '12 at 19:40
    
When testing this then, make sure that you are using a unique id number. If you are entering it in and not making it an auto inc number, this will always have to be different as the database will not allow a duplicate primary key –  bretterer Mar 5 '12 at 19:44
show 1 more comment

Remove the parameter from your with the inside inside and put in an empty string. i.e

 VALUES('','$password','$dob', 

etc etc

share|improve this answer
    
From the example given. A student or person entering in the data would supply studentID so you would not want to leave this blank. I would guess it is not an auto inc number –  bretterer Mar 5 '12 at 19:44
    
How do you know. Perhaps it is a primary number. In fact, most probably it is. –  yehuda Mar 5 '12 at 20:02
    
| studentid | varchar(8) | NO | PRI | NULL this is the data type for student id –  W_K Mar 5 '12 at 20:10
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