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$totalRatings = mysql_fetch_array(mysql_query("
      SELECT SUM(easy), SUM(help), SUM(clear), COUNT(prof)
      FROM prof_rating WHERE prof = '$profID'"));

$total = $totalRatings['SUM(easy)'] 
   + $totalRatings['SUM(help)'] 
   + $totalRatings['SUM(clear)'];

$totalAvg = $total / $totalRatings['COUNT(prof)'];

I'm a bit confused as to why the $totalAvg is returning a value of 7.6.

$total is currently equal to 7.6 and $totalRatings['COUNT(prof)'] is equal to 3.

Logically, 7.6/3 should be should be 2.5. Any ideas as to what I'm doing wrong?

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5  
Are you sure that $totalRatings really contains what you think ? Can you try using var_dump($totalRatings); ? –  Pascal MARTIN Jul 21 '11 at 19:10
4  
Use mysql_fetch_assoc as mysql_fetch_array returns an array that would be indexed by numbers? –  Nobody Jul 21 '11 at 19:12
1  
As in PHP 7.6 / 3 will never be 7.6, you have four options: (1) $total is not what you think it is, (2) $totalRatings['COUNT(prof)'] is not what you think it is, (3) you are overwriting $total somewhere and finally (4) you are overwriting $totalAvg somewhere. –  Wrikken Jul 21 '11 at 19:14
1  
@Nobody actually, default setting makes mysql_fetch_array return both associate and numbered. –  Jacob Jul 21 '11 at 19:15
    
@Nobody actually, mysql_fetch_array returns an array that contains both numerically- and associatively-referenced elements. –  Christopher Armstrong Jul 21 '11 at 19:15

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