Re: [PHP] What is wrong with next code

[Vladimir Shiray]

I has noted specially:
  It works OK in PHP 4.3.6 or when line "$db2 = 0;" had been commented
  in all described versions of PHP.

So next example works perfect:
-------------------------------------------------
error_reporting(E_ALL);
$db1 = mysql_connect ('localhost', 'test', '1');
$db2 = mysql_connect ('localhost', 'test', '1');
mysql_close($db2);
$result = mysql_query('SELECT 1+1', $db1);
if ($result)
{
    $row = mysql_fetch_row($result);
    echo "Result: {$row[0]}\n";
}
-------------------------------------------------
[EMAIL PROTECTED]:~/src/PHP# php -q mysql_connect3.php
Result: 2



On Thu, 28 Oct 2004 23:08:39 -0400
John Holmes <[EMAIL PROTECTED]> wrote:

> Vladimir Shiray wrote:
> > -------------------------------------------------
> > Warning: mysql_query(): 4 is not a valid MySQL-Link resource in ...
> >   $result = mysql_query('SELECT 1+1', $db1);
> > -------------------------------------------------
> [snip]
> > $db1 = mysql_connect ('localhost', 'test', '1');
> > $db2 = mysql_connect ('localhost', 'test', '1');
> > mysql_close($db2);
> 
> If you connect with the same parameters, PHP will just reuse the 
> previous connection. So you only have one connection and closing either 
> one will result in the connection being lost, hence the "invalid link 
> resource" message.
> 
> -- 
> 
> ---John Holmes...
> 
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> 

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