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Is it possible to rewrite this script part it in different way? Because it works fine in my localhost ,but when i moved it in hosting it shows:

Warning: mysql_fetch_array(): supplied argument is not a valid MySQL result resource in /***************************.php on line 67
$query = "SELECT COUNT(*) as num FROM $tableName"; 
//////Below error line
$total_pages = mysql_fetch_array(mysql_query($query)); 
$total_pages = $total_pages['num'];
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Check your database connection. Is MySQL running? Have you put the right database credentials for the connection? – Kemal Fadillah Oct 15 '11 at 15:00
Do some basic error checking. mysql_query() probably fails for some reason. mysql_error() can tell you why. – Pekka 웃 Oct 15 '11 at 15:00
Please please read at least a few dozen of the related links (on the right of this page). This error is reported again and again and again... – Mat Oct 15 '11 at 15:01

1 Answer 1

You can do just:

$query = "SELECT COUNT(*) FROM $tableName";

$total_pages = mysql_result(mysql_query($query), 0);

See PHP: mysql_result().

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Why a negative vote? – GG. Oct 15 '11 at 15:13
This is no better than the original code - when mysql_query() fails, it will return false. It is standard practice to catch that possibility, and if it occurs, to throw an error or exception containing mysql_error()'s output. The way you show will break exactly like the OP's original code, with the same error message. See also: Reference: What is a perfect code sample using the mysql extension? – Pekka 웃 Oct 15 '11 at 15:13

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