1

上周我帮助解决了以下脚本的问题。解决了。再次感谢。然而,许多人建议改用 PDO。这个脚本需要如何为 PDO 编写?有推荐的示例教程吗?

<?php
$con = mysql_connect("localhost","root","");
if (!$con)
  {
  die('Could not connect: ' . mysql_error());
  }

 mysql_select_db("bdcarterascv2", $con);

$COD_PAIS = '3';
$F_HASTACORTE = '2012-03-31 01:00:00';

$result = mysql_query("SELECT mcarteras.DES_CARTERA_CC                 AS 'Short Name of Fund'
     , mcarterasflias.DES_CARTERAFLIA           AS 'I/C'
     , msociedades.DES_SOCIEDAD_CORTO           AS 'Fund Manager Company'
     , mcarteras_clases.DES_CARTERACLASE        AS 'Class'
     , mcarteras_clasesesp.DES_CARTERACLASE_ESP AS 'Special Class'
     , dr_rentmovil_carteras.POR_RENTCARTERA    AS 'TTR year-to-date %'
     , dficha_mes.POR_REMUNERA_COBRADA          AS 'Mgmt Fee Effectively Charged'
     , dficha_mes.POR_GASTOS_TOTALESC           AS 'Total Expenses %'
     , dficha_mes.VR_CARTERA_FCORTE             AS 'Fund Size'

  FROM mcarteras
INNER
  JOIN mcarterasflias
    ON mcarterasflias.ID_CARTERAFLIA           = mcarteras.ID_CARTERAFLIA
INNER
  JOIN msociedades
    ON msociedades.ID_SOCIEDAD                 = mcarteras.ID_SOCIEDADADM
INNER
  JOIN mcarteras_clases
    ON mcarteras_clases.ID_CARTERACLASE        = mcarteras.ID_CARTERACLASE
INNER
  JOIN mcarteras_clasesesp
    ON mcarteras_clasesesp.ID_CARTERACLASE_ESP = mcarteras.ID_CARTERACLASE_ESP  
INNER
  JOIN dr_rentmovil_carteras
    ON dr_rentmovil_carteras.ID_CARTERA        = mcarteras.ID_CARTERA   
   AND dr_rentmovil_carteras.COD_PAIS                                       = $COD_PAIS
   AND dr_rentmovil_carteras.F_HASTACORTE                                   = '$F_HASTACORTE'
   AND dr_rentmovil_carteras.ID_FORMATO = 1
   AND dr_rentmovil_carteras. ID_COLUMNA = 5
INNER
  JOIN dficha_mes
    ON dficha_mes.ID_CARTERA                   = mcarteras.ID_CARTERA   
   AND dficha_mes.COD_PAIS                                                  = $COD_PAIS
   AND dficha_mes.F_CORTE                                                   = '$F_HASTACORTE'

 WHERE mcarteras.COD_PAIS                                                   = $COD_PAIS
   AND mcarteras.ID_CARTERATIPO = 4
   AND mcarteras.ID_CARTERAFLIA IN ( 3,4 )
   AND mcarteras.IND_PUBLICACION = 1
   AND mcarteras.COD_ESTADO= 1

")
or die(mysql_error());

// HTML ... Aliases from Mysql
echo "<table border='1'>
<tr>
<th>Short Name of Fund</th>
<th>I/C</th>
<th>Fund Manager Company</th>
<th>Class</th>
<th>Special Class</th>
<th>TTR year-to-date %</th>
<th>Mgmt Fee Effectively Charged</th>
<th>Total Expenses %</th>
<th>Fund Size</th>

</tr>";

//<tr> specifies table row. for each <td> (table data) will specify a new column.  The     $row specifies the mysql column name (in this case using an alias)
    while($row = mysql_fetch_array($result))
  {
  echo "<tr>";
  echo "<td>" . $row['Short Name of Fund'] . "</td>";
  echo "<td>" . $row['I/C'] . "</td>";
  echo "<td>" . $row['Fund Manager Company'] . "</td>";
  echo "<td>" . $row['Class'] . "</td>";
  echo "<td>" . $row['Special Class'] . "</td>";
  echo "<td>" . $row['TTR year-to-date %'] . "</td>";
  echo "<td>" . $row['Mgmt Fee Effectively Charged'] . "</td>";
  echo "<td>" . $row['Total Expenses %'] . "</td>";
  echo "<td>" . $row['Fund Size'] . "</td>";

  echo "</tr>";
  }
echo "</table>";

mysql_close($con);
?>
4

1 回答 1

1

我不会把它翻译成PDO。对于简单的查询,我更喜欢 PDO,但我在纯 SQL 中做的任何复杂的事情。我通常在 a 处画线JOIN

于 2012-08-28T16:24:59.530 回答