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Sorry for the vague title, but I've been trying to nail this for a week and have run out of ideas.

Table: name: "scores"

    id  name    password    intuition   
 (int, varchar, varchar, int)
 (5 rows with made-up values)

The PHP:

$userResult = mysql_query("SELECT `intuition` FROM `scores` ORDER BY `intuition` DESC LIMIT 4,1");      
if($userResult ==NULL)
{   die(mysql_error());
{   if($userResult ==FALSE)
    {   die("ranking query failed, sorry");
        {   if(mysql_num_rows($userResult) ==NULL)  
                {   die("No ranking results found.");       
            {   $queryRow   = mysql_fetch_row($userResult);
                $topIntuition   = $query_row['intuition'];
                die("queryRow =$queryRow;  topIntuition =$topIntuition");


query row =Array; topIntuition =

"topIntuition" should be the fifth highest result, currently the integer 2. What am I doing wrong?

EDIT: $query_row[name of row] does not work, but $query_row[0] does

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1 Answer 1

up vote 2 down vote accepted

LIMIT 4, 1 will return the fifth highest result (as LIMIT 0, 1 returns the first).

Regardless, mysql_fetch_row returns an array with keys that are numeric - try $queryRow[0];

Alternatively, you can switch to mysql_fetch_array or mysql_fetch_assoc.

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Thanks, my bad. Edited. But it should still return the value "2" - the table contains "intuition" values 2,5,42,3,2 – Chris Tolworthy Jan 27 '12 at 15:05
Try doing print_r($userResult); to see what is in the array. – Grim... Jan 27 '12 at 15:09
See edit, I think that's it. – Grim... Jan 27 '12 at 15:10
"print_r($userResult);" returns "Resource id #3" - I assume this means the data is there but I have not asked in the right way? But all my Googling indicates that what I have typed should be all I need. – Chris Tolworthy Jan 27 '12 at 15:15
Sorry, that should have been print_r($queryRow);. I've edited my original with the correct answer anyway. – Grim... Jan 27 '12 at 15:17

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