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I'm running the following query, expecting it to return an INTEGER, but it returns "Resource id #3"
What am I doing wrong?

$queryPlans = mysql_query("SELECT count(*) FROM infostash.rooms");
echo $queryPlans;

There are actually 15 rows in this table, and I would like to return the number 15. Any suggestions?

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3  
Is php.net (and it’s 20-something mirrors) down again so you couldn’t just read the–quite exhaustive–documentation? I don’t get it. – Bombe Aug 19 '09 at 13:54
up vote 2 down vote accepted

You need:

$queryPlans = mysql_query("SELECT count(*) FROM infostash.rooms");
$row = mysql_fetch_array($queryPlans);
echo $row[0];

mysql_query() isn't returning the result. It's returning a resource you can loop across and interrogate for rows (as above).

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Yeah thats perfect mate thanks a lot! – DJDonaL3000 Aug 19 '09 at 13:54

mysql_query will return a php resource(see: http://www.php.net/manual/en/language.types.resource.php).

The returned resource should then be passed to mysql_fetch_assoc or similar.

Since you are only getting the count, you can use the following:

$queryPlans = mysql_query("SELECT count(*) FROM infostash.rooms");
$count = mysql_result($queryPlans,0,0);
echo $count;
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This is actually expected behavior according to the documentation:

For SELECT, SHOW, DESCRIBE, EXPLAIN and other statements returning resultset, mysql_query() returns a resource on success, or FALSE on error.

It's a regular select that returns one row with one column and should be treated as such. You can call mysql_fetch_array on the result:

$row = mysql_fetch_array($resource);
$count = $row[0];
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mysql_query() returns a result resource. You need another function the get "valuable information" from that resource. In this case mysql_fetch_array()/mysql_fetch_row()/mysql_fetch_object as cletus pointed out. Or (since it's only a single value) mysql_result().
Any sql query may fail for various reasons. You should always check the return value of mysql_query(). If it's FALSE something went wrong and mysql_error() can tell you more about it.

$mysql = mysql_connect(...) or die(mysql_error());
mysql_selecT_db(.., $mysql) or die(mysql_error($mysql));
$query = "SELECT count(*) FROM infostash.rooms";
$queryPlans = mysql_query($query, $mysql) or die(mysql_error($mysql));
$cRows = mysql_result($queryPlans, 0);
echo $cRows;
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If you are planning on using the full query later (e.g. select , rather than count()), you can save yourself a database hit by using mysql_num_rows() on the full query. Example:

$queryPlans = mysql_query("SELECT * FROM infostash.rooms");
$results = mysql_fetch_array($queryPlans);
echo "There were " . mysql_num_rows($queryPlans) . " results";
while($row = mysql_fetch_assoc($queryPlans)){
    // Do stuff here
}
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$queryPlans = mysql_query("SELECT count(*) FROM infostash.rooms"); mysql_num_rows($queryPlans);

http://us.php.net/manual/en/function.mysql-num-rows.php

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That always returns 1 since there's only one result record for a Count(*) without grouping. – VolkerK Aug 19 '09 at 13:56

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