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Using phpMyAdmin and running the following query I get 19 registers:

SELECT * FROM trayecto tr, lugar lu WHERE idAeropuerto = '3' AND tr.idLugar = lu.idLugar GROUP BY tr.idAeropuerto, tr.idLugar ORDER BY lu.nombre

but running this query in the website obtaining the data throw and PHP call I only get 18 registers (all of them but the last one entered in the database).

$q=$_GET["q"];
include('init_bd.php');
$selectLugaresDeAeropuerto="SELECT * FROM trayecto tr, lugar lu WHERE idAeropuerto = '".$q."' AND tr.idLugar = lu.idLugar GROUP BY tr.idAeropuerto, tr.idLugar ORDER BY lu.nombre";
$resultLugaresDeAeropuerto = mysql_query($selectLugaresDeAeropuerto) or die('Consulta fallida: ' . mysql_error());
echo "<SELECT SIZE='1' NAME='Lugar'>";
while($row = mysql_fetch_array($resultLugaresDeAeropuerto))
{
  printf("<OPTION VALUE=%s>%s</OPTION>", $row["idLugar"], $row["nombre"]);    
}
echo " </SELECT>";
mysql_free_result($resultLugaresDeAeropuerto);
include('close_bd.php');

You can execute this PHP to see the result: http://www.transferbus.com/bd/getLugar.php?q=3

I have a MySQL Database with the following tables and structure:

TRAYECTO

idAeropuerto - int(8)
idLugar - int(8)
idTipoTransporte - int(8)
precio - double
tiempo - varchar(5)
distancia - varchar(5)

LUGAR

idLugar - int(8) - auto_increment
nombre - varchar(40)

Any idea why I get different results with same-like query?

share|improve this question
    
Are you querying the same database? The most common reason for the same query giving two different results in two different environments is that you are connecting to two different databases. –  Mark Byers Mar 12 '12 at 11:39
1  
transferbus.com/bd/getLugar.php?q=3 is broken link –  sandeep Mar 12 '12 at 11:40
    
@Mark I only have one database. Sorry, but website is temporarily down (that's what my hosting provider said). –  Manel Mar 12 '12 at 11:47
    
@Manel: It is a very common error to think you have only one database, when actually you have two. This happens especially if you are using a new web provider that you are unfamiliar with. To see if this is the case, try modifying one of the displayed strings via phpMyAdmin and check that the change is visible in your webpage. If the change is not visible then you may be accessing two different databases. –  Mark Byers Mar 12 '12 at 12:14
    
@MarkByers I have changed one of the names that appear in the combo and I don't see the new value, but I only have one database and it seems to be accessing it. I will contact the hosting service provider and check everything is ok. –  Manel Mar 12 '12 at 14:41

2 Answers 2

up vote 0 down vote accepted

You are connecting to two different databases. Contact your web provider if you need help with connecting to the correct database.

share|improve this answer

In your PHP script you're querying the number 3 as a string (with quotes) Although you defined your table as an int(8).

str(3) is not the same as int(3)

Besides that: Please read something on the internet about SQL injection. Passing your $_GET['q'] directly to the database server is not very smart!

share|improve this answer
    
I simplified the PHP file to a minimum. In the full-version I check type and size of the parameter before using the variable in the query. But, thank you for the advice. –  Manel Mar 12 '12 at 11:58
    
But this is what you query: idAeropuerto = '3' while your database is setup to be using an int(8) a '3' is not a 3 and grouping on them can give different results. –  stUrb Mar 12 '12 at 12:01
    
I don't think that's the problem. Using WHERE idAeropuerto = '3' should work too. –  Mark Byers Mar 12 '12 at 12:09

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