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i'm trying to define a User registration class and this is the function i have for now

 <?php

///// SE SUPONE QUE AQUI EL USUARIO YA HA INTRODUCIDO SUS DATOS DE REGISTRO


/* Conectando la Base de Datos */
include("includes/basedatos.php");

require_once("includes/funciones.php");

class registro_usuarios
{

    var $pass;
    var $email;
    var $nombre;

     public function tratandovariables()
    {

        /* Eliminando Caracteres Especiales */
        $password = htmlspecialchars($_POST['pass']);
        $mail = htmlspecialchars(strip_tags($_POST['mail']));
        $nombre = htmlspecialchars(strip_tags($_POST['nombre']));

        if (preg_match("/^[a-zA-Z0-9\-_]{3,20}$/", $nombre))
        {
            /* Asignando Valor */
            $this->pass = md5($password);
            $this->email = $mail;
            $this->nombre = $nombre;
        }
        else
        {
            echo "El nombre de usuario no es válido<br>";
            exit;
        }
    }

    public function register()
    {
        $this->tratandovariables();




        /* Comprobando si existe el usuario */
        $check = "SELECT * FROM usuarios WHERE alias = '$this->nombre'";
        $qry = mysql_query($check);

        /* La compracion */
            if (mysql_num_rows($qry))
            {
                echo "Lo sentimos, el nombre de usuario ya esta registrado.<br />";
                mysql_free_result($qry);
                return false;
            } else
            {





                $insert = "INSERT INTO usuarios (alias, pass, email, fid, fechar, ultima, img_src, reputacion) VALUES ('".$this->nombre."','".$this->pass."','".$this->email."','-1', 'NOW()', 'NOW()',' ', '0' )";
                $qry = mysql_query($insert);
                    if(mysql_affected_rows())
                    {
                        echo "El Usuario $this->nombre se Registro Correctamente";
                        return true;
                    }
                    else
                    {
                        echo "Error Ingresando datos";
                        return false;
                    }
                return false;
            }
    }

}
?>

And the problem it's that i'm allways given this error (entering a simple varchar through a form with no weird chars):

Warning: mysql_fetch_array(): supplied argument is not a valid MySQL result resource in /home/piscolab/public_html/keepyourlinks.com/Recetas/registro.php on line 52 El Usuario toni se Registro Correctamente

  • $this->nombre has a not null value (checked)
  • Database its empty, so there should be never results.
  • The problem it's that the script goes on and pretends that user has been registered, even shows the name! and there is not an update on database..

I just can't see the problem.. can you?

thank you!

share|improve this question
    
Can you post line 52 from registro.php? I see no mysql_fetch_array here. Actually, post line 51, where you execute the query. show the exact query. Also, you can try to just add " or die(mysql_error())" behind the mysql_query() function (if you use it) to see if the query has a fault (such as a bad table name). –  Tjirp Dec 16 '10 at 17:44
    
Wow, You should be aware that you're wide open to SQL Injection attacks, right? Either escape your input (via mysql_real_escape_string) or use parameterized queries (the better alternative)... –  ircmaxell Dec 16 '10 at 17:52
    
MySQL only speaks English. </cheap_humor> –  mattbasta Dec 16 '10 at 20:00
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5 Answers

up vote 0 down vote accepted

Well, thank you very much for helping me,

it seems that there was a different error (with a atribute name, tipical...) but stills worthy because found out about those errors..

If some one needs it, the class code: (adapt your atributes)

class registro_usuarios
{

    var $pass;
    var $email;
    var $nombre;

     public function tratandovariables()
    {

        /* Eliminando Caracteres Especiales */
        $password = htmlspecialchars($_POST['pass']);
        $mail = htmlspecialchars(strip_tags($_POST['mail']));
        $nombre = htmlspecialchars(strip_tags($_POST['nombre']));

        if (preg_match("/^[a-zA-Z0-9\-_]{3,20}$/", $nombre))
        {
            /* Asignando Valor */
            $this->pass = md5($password);
            $this->email = $mail;
            $this->nombre = $nombre;
        }
        else
        {
            echo "El nombre de usuario no es válido<br>";
            exit;
        }
    }

    public function register()
    {
        $this->tratandovariables();




        /* Comprobando si existe el usuario */
        $check = "SELECT * FROM usuarios WHERE alias = '".$this->nombre."'";
        $qry = mysql_query($check);

        /* La compracion */
            if (mysql_num_rows($qry))
            {
                echo "Lo sentimos, el nombre de usuario ya esta registrado.<br />";
                mysql_free_result($qry);
                return false;
            } else
            {





                $insert = "INSERT INTO usuarios (alias, pass, mail, fid, fechar, ultima, img_src, reputacion) VALUES ('".$this->nombre."','".$this->pass."','".$this->email."','-1', NOW(), NOW(),' ', 0 )";
                $qry = mysql_query($insert);
                    if(mysql_affected_rows())
                    {
                        echo "El Usuario $this->nombre se Registro Correctamente";
                        return true;
                    }
                    else
                    {
                        echo "Error Ingresando datos";
                        return false;
                    }
                return false;
            }
    }

}

Thanks again!

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The PHP manual says:

resource mysql_query ( string $query [, resource $link_identifier ] ) mysql_query() sends a unique query (multiple queries are not supported) to the currently active database on the server that's associated with the specified link_identifier.

If you do not have a "currently active database" then your mysql_* calls will fail. It's always best practice to supply the MySQL connection link identifier with your calls.

Where are you calling mysql_connect?

share|improve this answer
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Try this one instead;

$check = "SELECT * FROM usuarios WHERE alias = '".$this->nombre."'";

And I don't see any mysql_fetch_array() statement in your code.

share|improve this answer
    
ok, did the concatenation, 'mysql_fetch_array()' where shall i place it? –  Toni Michel Caubet Dec 16 '10 at 17:50
    
Your error implies you are already using it somewhere. And this answer is not the problem, as stated by Rocket in the similar answer. –  Evan Mulawski Dec 16 '10 at 17:52
    
But really, stop using string manipulation and use placeholders/parametrized-queries. –  user166390 Dec 16 '10 at 17:57
    
$check = "SELECT * FROM usuarios WHERE alias = '$this->nombre'"; is perfectly valid and will produce the proper query except in the case where a ' character is present. In that case both solutions will fail without adding cslashes. –  01001111 Dec 16 '10 at 17:58
    
There is no need to add a mysql_fetch_array() statement since you are not fetching something from database, you are putting a record. $qry = mysql_query($insert) or die(mysql_error()); Try this one and see if it gives any errors. –  Sarpdoruk Tahmaz Dec 16 '10 at 18:02
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remove the quotes from around 'now()' else you are inserting as a string instead of MySQL timestamp

share|improve this answer
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use concatenation here :

/* Comprobando si existe el usuario */
    $check = "SELECT * FROM usuarios WHERE alias = '".$this->nombre."'";
share|improve this answer
3  
But really, stop using string manipulation and use placeholders/parametrized-queries. –  user166390 Dec 16 '10 at 17:45
    
This is not the problem. –  Rocket Hazmat Dec 16 '10 at 17:48
    
True, I just pointed one error. PDO should be a better choice to handle DB (object orientation). php.net/manual/fr/book.pdo.php –  Mathias E. Dec 16 '10 at 17:56
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