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Warning: mysql_num_rows(): supplied argument is not a valid MySQL result resource in /home/ango/public_html/ficha/findUser.php on line 201

This is the code:

$query = mysql_query("SELECT ango_turnos.planilla.fecha_turno, ango_turnos.planilla.cod_estado, ango_personas.dominio_interno.* FROM ango_turnos.planilla RIGHT OUTER JOIN ango_turnos.reserva ON ango_turnos.reserva.id_turno = ango_turnos.planilla.id_turno LEFT OUTER JOIN ango_turnos.paciente ON ango_turnos.reserva.id_reserva = ango_turnos.paciente.id_reserva LEFT OUTER JOIN ango_personas.dominio_interno ON ango_turnos.paciente.id_persona = ango_personas.dominio_interno.id_persona LEFT OUTER JOIN ango_turnos.horario_medico ON ango_turnos.planilla.id_horario = ango_turnos.horario_medico.id_horario");

if(mysql_num_rows($query)>0){
    while($row = mysql_fetch_array($query)){
        //echo some stuff from $row
    }
}

There is no warning or error involving the connection to the database. This is the only warning I get. SQL query works fine and returns 4 rows in PHPMyAdmin, so I don't know what the problem is.

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2 Answers

up vote 4 down vote accepted

You should add an error check after mysql_query() to see what went wrong:

if (!$query) {
    die('Invalid query: ' . mysql_error());
}
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even better would be $query = mysql_query(...) or die(); –  UnkwnTech Jul 22 '09 at 5:28
    
Why even better? Completely subjective. –  hobodave Jul 22 '09 at 6:19
    
The mysql_query(..) or die(..); being more Perl-ish and if(!$query) resembles C. Totally about personal style :) –  MoshiBin Jul 22 '09 at 7:21
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Chances are there has been an error during the execution of your SQL query.

You can check that with msqyl_errno and mysql_error.

(As a side note : outputting the error message is fine while your are on your development machine, but should never be done once your are on a production server : it then should be logged to a file ; so don't forget to put in some configuration option, or stuff like this)

As another side node : the "query" is the SQL string you are giving to mysql_query ; not the result of that function, so your $query variable should have another name, to make the code easier to understand in the future.

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