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Please, I need help!

Don't matter where I put this clause: WHERE romaneios_detalhes.id_romaneio = '.$idr.' it's always returns a syntax error... I tried with and without the "table_name.", after and before all setences of my statment, with and without commas... nothing works and I am sure the solution is pretty simple...

What is the right place or right way to write this?

$sql3   =   'SELECT
         produtos_linhas.linha AS `COUNT(linha)`,
         produtos_tipos.tipo AS `COUNT(tipo)`, 
         COUNT(romaneios_detalhes.quantidade) AS `COUNT(quantidade)` 
         FROM romaneios_detalhes
         WHERE romaneios_detalhes.id_romaneio = '.$idr.'
         INNER JOIN produtos ON romaneios_detalhes.codigo = produtos.codigo
         INNER JOIN produtos_linhas ON produtos.id_linha = produtos_linhas.id
         INNER JOIN produtos_tipos ON produtos.id_tipo = produtos_tipos.id
         GROUP BY produtos_linhas.linha, produtos_tipos.tipo ';

echo '<p>'.$sql3.'</p>';
/* OUTPUT OF THIS ECHO:
SELECT produtos_linhas.linha AS `COUNT(linha)`, produtos_tipos.tipo AS `COUNT(tipo)`, COUNT(romaneios_detalhes.quantidade) AS `COUNT(quantidade)` FROM romaneios_detalhes WHERE romaneios_detalhes.id_romaneio = 3 INNER JOIN produtos ON romaneios_detalhes.codigo = produtos.codigo INNER JOIN produtos_linhas ON produtos.id_linha = produtos_linhas.id INNER JOIN produtos_tipos ON produtos.id_tipo = produtos_tipos.id GROUP BY produtos_linhas.linha, produtos_tipos.tipo
*/

$qry3   =   mysql_query($sql3) or die ($qry3_err.mysql_error());
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1  
Try the statement on the mysql command line first. The order should be "select ... from ... join ... group by ... where ...". –  Kerrek SB Aug 26 '11 at 17:02

3 Answers 3

The issue is that your WHERE clause is in the wrong place; it must be after your JOIN clauses.

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Tks man! I did, it worked! –  Acchile Aug 26 '11 at 17:16

The problem is that the INNER JOINS MUST go before the where clause!

You need to move the where clause at the end, before the group by.

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tks man, i did it and worked... –  Acchile Aug 26 '11 at 18:00

Icarus and Brian are right, move WHERE below the JOINs.

Just a note, I hope $idr is not coming unprotected from a ?parameter or something, or you will be vulnerable for SQL injection.

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Icarus, help me... I dont understand about sql injection... $idr comes from $_GET['id_romaneio']. How to protect this kind of parameter from sql injection? –  Acchile Aug 26 '11 at 18:01
    
Sorry, no Icarus, is Stian! –  Acchile Aug 26 '11 at 18:02
    
@acchile I am not a php developer but the way I've seen other php developers protect against sql injection is that they escape the parameters by calling the mysql_escape_string func php.net/manual/en/function.mysql-escape-string.php –  Icarus Aug 26 '11 at 19:06
1  
@Icarus, or mysqli with prepared statements/placeholders, cleaner (in my opinion) and closer to other languages. –  Bruno Jul 26 '12 at 19:06

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