1

look at my code, there is something wrong when I install my tables, I dont know what to do with it. And also Im trying to prevent from duplicated input for meno and priezvisko columns, when inserted in the form together with values that are already in database.

    / vytvorenie tabulky TRIEDA

  $sql = "CREATE TABLE IF NOT EXISTS trieda(
            id_triedy INT(4) NOT NULL AUTO_INCREMENT, 
            nazov CHAR(5),
            PRIMARY KEY (id_triedy),
            UNIQUE KEY (nazov))";

 // vytvorenie tabulky STUDENT


 $sql = "CREATE TABLE IF NOT EXISTS student(
                    id_student INT (5) NOT NULL AUTO_INCREMENT,
                    id_triedy INT (5) NOT NULL,
                    meno CHAR (15),
                    priezvisko CHAR (20),
                    PRIMARY KEY (`meno`, `priezvisko`),
                    KEY (id_student))";


  // spustenie dopytu
  if (mysqli_query($prip,$sql))
  {
    echo "Tabuľka vytvorená";
    echo "<br />";
    echo "<a href='./index.php'><strong>Späť</strong></a>";
  }
  else
  {
    echo "Chyba vytvorenia tabuľky: " . mysqli_error($prip);
    echo "<br />";
    echo "<a href='./index.php'><strong>Späť</strong></a>";
  }

EDIT: (gives error: Chyba vytvorenia tabuľky: 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 'CREATE TABLE IF NOT EXISTS student( id_student INT (5) NOT ' at line 7)

// vytvorenie tabuliek do DB

  $sql= "CREATE TABLE IF NOT EXISTS trieda(
            id_triedy INT(4) NOT NULL AUTO_INCREMENT, 
            nazov CHAR(5),
            PRIMARY KEY (id_triedy),
            UNIQUE KEY (nazov));

        CREATE TABLE IF NOT EXISTS student(
                    id_student INT (5) NOT NULL AUTO_INCREMENT,
                    id_triedy INT (5) NOT NULL,
                    meno CHAR (15),
                    priezvisko CHAR (20),
                    PRIMARY KEY (`meno`, `priezvisko`),
                    KEY (id_student))";



  // spustenie dopytu
  if (mysqli_query($prip,$sql))
  {
    echo "Tabuľka vytvorená";
....

EDIT2:

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


    //meno a priezvisko
    $student = $_POST['meno'];
    $priezvisko = $_POST['priezvisko'];
    $id_trieda = $_GET['id_triedy'];



    //connect to the database
    include 'config.php';

    //insert results from the form input

$row = mysqli_query("SELECT * FROM student WHERE meno='{$student}' AND priezvisko='{$priezvisko}'");

if($row){
  echo 'Duplicate!';
}else {
  mysqli_query("INSERT INTO student (meno, priezvisko, id_triedy) VALUES( '{$student}', '{$priezvisko}', {$id_trieda} )");   
}
/*  $add = "<table align='center'>
            <tr>
                <td> Študent bol úspešne pridaný do triedy. </td>
            </tr>
            <tr>
                <td><a href='./trieda.php?id_triedy=".$_GET['id_triedy']."'><strong>Späť</strong></a></td>
            </tr>
            </table>";
    $not_add = "<table align='center'>
            <tr>
                <td> Študent s týmto menom a priezviskom už je v tejto triede. </td>
            </tr>
            <tr>
                <td><a href='./trieda.php?id_triedy=".$_GET['id_triedy']."'><strong>Späť</strong></a></td>
            </tr>
            </table>";
*/  



mysqli_close($prip);
}
?>
1

The problem could be that you are overwriting $sql.

$sql= "CREATE TABLE IF NOT EXISTS trieda(
            id_triedy INT(4) NOT NULL AUTO_INCREMENT, 
            nazov CHAR(5),
            PRIMARY KEY (id_triedy),
            UNIQUE KEY (nazov));
CREATE TABLE IF NOT EXISTS student(
                    id_student INT (5) NOT NULL AUTO_INCREMENT,
                    id_triedy INT (5) NOT NULL,
                    meno CHAR (15),
                    priezvisko CHAR (20),
                    PRIMARY KEY (`meno`, `priezvisko`),
                    KEY (id_student))"

Link to mysqlfiddle.

EDIT: Like you can see here, your problem is that mysql_query() on PHP doesn't accept many queries in same string, so you must send it separately.

$sql1 = "CREATE TABLE IF NOT EXISTS trieda(
                id_triedy INT(4) NOT NULL AUTO_INCREMENT, 
                nazov CHAR(5),
                PRIMARY KEY (id_triedy),
                UNIQUE KEY (nazov));"
$sql2 = "CREATE TABLE IF NOT EXISTS student(
                    id_student INT (5) NOT NULL AUTO_INCREMENT,
                    id_triedy INT (5) NOT NULL,
                    meno CHAR (15),
                    priezvisko CHAR (20),
                    PRIMARY KEY (`meno`, `priezvisko`),
                    KEY (id_student));"
  • it might be a problem because it always creates only the student table...but I also tried to rename it and edit the if condition but gives me en error...any ideas? – frank17 Jan 21 '14 at 15:43
  • What error you get? (I edited the answer with your sql should do for the moment – carexcer Jan 21 '14 at 15:48
  • check my edit, I had to add a semicolon on the end of your code because I got error for my if condition...and now I get this error.. – frank17 Jan 21 '14 at 15:55
  • What version of MySQL are you using? I've tried on sqlfiddle and it works with all MySQL versions installed on it :/ – carexcer Jan 21 '14 at 16:01
  • try the new answer, I think this will works – carexcer Jan 21 '14 at 16:10
1

For prevent duplicate set composite unique key on fields meno and priezvisko ( you did it: "PRIMARY KEY (meno, priezvisko)"). Now do inserting like INSERT IGNORE INTO.... See more http://dev.mysql.com/doc/refman/5.5/en/insert.html.

EDIT

Classic way

try{

$sql = 'SELECT * FROM student WHERE meno="'.$student.'" AND priezvisko="'.$priezvisko.'"';
mysqli_real_escape_string($link, $sql); // escaping string 
$row = mysqli_query($link,$sql); // doing select - check on duplicate

if (mysqli_num_rows($row)){ // if return > 0 is means duplicate 
   echo 'Duplicate!';
}else{ 
     // not duplicate
     echo 'Inserting';
     mysqli_query($link,"INSERT INTO student (meno, priezvisko, id_triedy) VALUES( '{$student}', '{$priezvisko}', '{$id_trieda}') "); // inserting
 }

} catch (Exception $e){
      echo  $e->getMessage();
}
  • okay but if I use INSERT IGNORE, it doesnt give me error, it just doesnt add the value but it shows that the value was inserted ... – frank17 Jan 21 '14 at 18:44
  • u need check state : duplicate or not ? "it just doesnt add the value" - yes. show code where you do inserting – voodoo417 Jan 21 '14 at 18:48
  • $sql = "INSERT IGNORE INTO student (meno, priezvisko, id_triedy) VALUES( '{$student}', '{$priezvisko}', {$id_trieda} )"; – frank17 Jan 21 '14 at 18:57
  • @feri see updated answer – voodoo417 Jan 21 '14 at 19:10
  • not working, check my edit2... – frank17 Jan 21 '14 at 19:21

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