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Changing the question as I have better information.

The following query

function gamesWaiting($join, $type, $status, $u)
{
    global $database;
    $q = "SELECT g.home_user, g.away_user, g.home_score, g.home_team, g.away_score, g.away_team, g.id, f.name, f.game, 
         uh.username AS home_username, ua.username AS away_username
          FROM ".TBL_FOOT_GAMES." g
          INNER JOIN ".TBL_USERS." uh ON uh.id = g.home_user
          INNER JOIN ".TBL_USERS." ua ON ua.id = g.away_user
          INNER JOIN ".$join." f ON f.id = g.leagueid
          WHERE g.type = '$type' && g.{$u}_user = '$_SESSION[id]' && g.status = '$status'";
    return mysql_query($q, $database->myConnection());
}

The only part that isn't working is the

".$join."

Any ideas how I can get this working?

Thankyou

share|improve this question
3  
What's the error you are getting? – Pablo Santa Cruz Nov 27 '10 at 13:39
    
Warning: mysql_num_rows(): supplied argument is not a valid MySQL result resourc – sark9012 Nov 27 '10 at 13:49
2  
Hey. In your function before return mysql_query($q, $database->myConnection()); put this line echo $q; and then run your script again. You'll get the query printed to the screen. Take that query and try to run in directly to mysql and see what error it returns. Put that error here. Or you can show us the query from your function – cristian Nov 27 '10 at 14:12
    
Complete your code, the error is regarding the mysql_num_rows function that is not in the code, so i suppose you have forgot a part. – Shoe Nov 27 '10 at 14:33
1  
I did that and have now fixed it. Will use this tecnique again in teh future. Very useful :) thanks – sark9012 Nov 27 '10 at 15:40
up vote 0 down vote accepted

This query search for a table name TBL_FOOT_FRIENDLY, not what your constant's referring table name. (From your code TBL_FOOT_FRIENDLY may defined as foot_friendly in database)

share|improve this answer
    
The ". ." makes this query work. The other joins are fine, just wondering if the way I am putting a variable into the query is messing it up! – sark9012 Nov 27 '10 at 13:49
    
So is TBL_FOOT_FRIENDLY really the table name? – lotsoffreetime Nov 27 '10 at 13:55
    
It's the name I have given it in the constants page. – sark9012 Nov 27 '10 at 13:58

assign the constant value in a variable and pass this variable in to function

$tbl=TBL_FOOT_FRIENDLY;
$results = $footdb->gamesWaiting($tbl, "1", "2", "away");

or remove the double quote from around the constant and pass

$results = $footdb->gamesWaiting(TBL_FOOT_FRIENDLY, "1", "2", "away");

and try.

Thanks.

share|improve this answer
    
Ahhh thankyou, ill try – sark9012 Nov 27 '10 at 14:28
    
The problem appears to be the $u variable I am trying to put into the query. Just putting it in with nothing around makes the variable read $u_user, '$u'_user doesnt work either. What would? – sark9012 Nov 27 '10 at 14:33

Write it like this:

INNER JOIN '" . $join . "' f ON f.id = g.leagueid

Notice the single-quotes enclosing the double-quotes around . $join .

share|improve this answer
    
This doesnt make any difference. – sark9012 Nov 27 '10 at 15:25

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