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I am developing a web application that allows a user to add entries to a MySQL database through a web form. The web form posts to the same page, some PHP code captures that data and sends it to MySQL. For whatever reason, nothing ever makes it to MySQL. This is the code I have so far that isn't working:

    <?php
    include("config.inc.php");
    $Name=$_POST['AddName'];
    $Group=$_POST['AddGroup'];
    $Grade=$_POST['AddGrade'];
    $Position=$_POST['AddPosition'];
    $Email=$_POST['AddEmail'];
    $HomeAddress=$_POST['AddHomeAddress'];
    $City=$_POST['AddCity'];
    $State="SC";
    $Zip=$_POST['AddZIP'];
    $CellPhone=$_POST['AddCellNumber'];
    $HomePhone=$_POST['AddHomeNumber'];
    $FirstPeriod=$_POST['AddFirstPeriod'];
    $SecondPeriod=$_POST['AddSecondPeriod'];
    $ThirdPeriod=$_POST['AddThirdPeriod'];
    $FourthPeriod=$_POST['AddFourthPeriod'];
    $FifthPeriod=$_POST['AddFifthPeriod'];
    $SixthPeriod=$_POST['AddSixthPeriod'];
    $SeventhPeriod=$_POST['AddSeventhPeriod'];
    $Homeroom=$_POST['AddHomeroom'];
    $dbpassword=$_POST['AddPassword'];

    $con = mysql_connect("127.0.0.1","$username","******");
    if (!$con)
      {
      die();
      }        

    mysql_select_db("$database", $con);
    $sql="INSERT INTO names     (Name,Grp,Grade,Position,Email,HomeAddress,City,State,Zip,CellPhone,HomePhone,FirstPeriod,SecondPeriod,ThirdPeriod,FourthPeriod,FifthPeriod,SixthPeriod,SeventhPeriod,Homeroom)
    VALUES('$Name','$Group','$Grade','$Position','$Email','$HomeAddress,'$City','$State','$Zip','$CellPhone','$HomePhone','$FirstPeriod','$SecondPeriod','$ThirdPeriod','$FourthPeriod','$FifthPeriod','$SixthPeriod','$SeventhPeriod','$Homeroom')";

    if (!mysql_query($sql,$con))
      {
      die();
      }
    echo "1 record added";

    mysql_close($con)
    ?>
            </body>
    </html>
share|improve this question
5  
Advice: Ross read about the sql injection –  Aurelio De Rosa Nov 15 '11 at 22:32
7  
Second advice: NEVER leave password when you post the code! –  Aurelio De Rosa Nov 15 '11 at 22:33
1  
Oops. :) Thanks for that fix. –  Ross Nov 15 '11 at 22:36
1  
Ross, please be aware that the password is still visible in the edit history. You may be better off deleting this question and starting over, or at the very least, change your password now. –  George Cummins Nov 15 '11 at 22:37
1  
@Ross: And what happens later when this becomes accessible from the internet (or from another internal server, or whatever). Bad practices are bad practices - get in the habit of doing it right in the first place. :) –  Ken White Nov 16 '11 at 3:25

7 Answers 7

up vote 2 down vote accepted

Try this and see what it says:

if (!mysql_query($sql,$con))
{
    die(mysql_error());
}
share|improve this answer
    
That helped a lot. Something wrong with my SQL string. 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 'City','SC','ZIP','Cell','Home','First','Second','Third','Fourth','Fifth','Sixth‌​'' at line 2 –  Ross Nov 15 '11 at 22:44
1  
Your '$HomeAddress is missing a single-quote. Should be '$HomeAddress' –  budwiser Nov 15 '11 at 22:53
    
Still the same error even with fixes (except for excape_string) suggested below. –  Ross Nov 15 '11 at 22:54
    
I keep missing these additional comments. Grr Chrome. Trying that now. –  Ross Nov 15 '11 at 22:55
    
YAY! That fixed it!! THANK YOU SO MUCH! :) Now to implement the escape_string method to prevent SQL injection. –  Ross Nov 15 '11 at 22:56

Try inserting echo mysql_error();. This should give you at least a starting place to where your query is incorrect.

share|improve this answer

mysql_close($con) should have a semi-colon at the end.

check your log for errors.

use mysql_real_escape_string

share|improve this answer
    
Semicolon didn't fix it. And oddly enough, there aren't any MySQL errors in the logs at all pertaining to this. What else should I try? –  Ross Nov 15 '11 at 22:39
    
I just tried the escape string and that killed the form. My error log is filled with this now: [Tue Nov 15 19:05:36 2011] [error] [client XX.XX.XX.XX] PHP Notice: Undefined variable: AddSixthPeriod in /var/www/<REDACTED>/directory/dbadd2.php on line 25, referer: http://<REDACTED>/directory/dbadd.php [Tue Nov 15 19:05:36 2011] [error] [client XX.XX.XX.XX] PHP Warning: mysql_real_escape_string(): Access denied for user '<REDACTED>'@'localhost' (using password: NO) in /var/www/<REDACTED>/directory/dbadd2.php on line 25, referer: http://<REDACTED>/directory/dbadd.php –  Ross Nov 16 '11 at 0:08

PHP hides errors. To debug, start by placing these two lines as the first lines within the <?php tag

error_reporting(E_ALL);
ini_set('display_errors', '1');

Also in case the error was in mysql you can do:

print_r(mysql_fetch_array(mysql_query("SHOW WARNINGS", $con)));

or

print_r(mysql_fetch_array(mysql_query("SHOW ERRORS", $con)));

Directly after the mysql query you think may have failed.

share|improve this answer

die(mysql_error()); will fix it. Also have a look at escaping. It would be very easy to inject into the current code.

If you are not going to escape (I don't know when you would do that) you might as well use the $_POST rather than assigning to a variable and using the variable.

share|improve this answer
    
Tried escaping, but got the error messages seen above. –  Ross Nov 16 '11 at 0:12

change your database selection to

mysql_select_db("database name")

or

mysql_select_db($database);

your are trying to select a database named "$database" with a dollar sign as a string, not the name in that variable. also, use

mysql_real_escape_string($sql) to escape those variables.(avoiding sql injecion) you can find links about it in other comments.

share|improve this answer
    
Thanks for the escape_string tip. Will change it. –  Ross Nov 15 '11 at 22:49
    
And the $database is a variable pulled from config.inc.php. –  Ross Nov 15 '11 at 22:50
    
remove the quote marks mysql_select_db($database); –  Uğur Gümüşhan Nov 15 '11 at 23:07
    
Done. Thanks... –  Ross Nov 16 '11 at 0:12

change

$sql="INSERT INTO names     (Name,Grp,Grade,Position,Email,HomeAddress,City,State,Zip,CellPhone,HomePhone,FirstPeriod,SecondPeriod,ThirdPeriod,FourthPeriod,FifthPeriod,SixthPeriod,SeventhPeriod,Homeroom)
    VALUES('$Name','$Group','$Grade','$Position','$Email','$HomeAddress,'$City','$State','$Zip','$CellPhone','$HomePhone','$FirstPeriod','$SecondPeriod','$ThirdPeriod','$FourthPeriod','$FifthPeriod','$SixthPeriod','$SeventhPeriod','$Homeroom')";

to

$sql="INSERT INTO names     (Name,Grp,Grade,Position,Email,HomeAddress,City,State,Zip,CellPhone,HomePhone,FirstPeriod,SecondPeriod,ThirdPeriod,FourthPeriod,FifthPeriod,SixthPeriod,SeventhPeriod,Homeroom)
    VALUES('$Name','$Group','$Grade','$Position','$Email','$HomeAddress','$City','$State','$Zip','$CellPhone','$HomePhone','$FirstPeriod','$SecondPeriod','$ThirdPeriod','$FourthPeriod','$FifthPeriod','$SixthPeriod','$SeventhPeriod','$Homeroom')";
share|improve this answer
    
notice the extra ' on after $homeAddress. –  encodes Nov 16 '11 at 16:03
    
have you tried the above code, it fixes the problem in the question –  encodes Nov 18 '11 at 14:21

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