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I have a mysql table in which are stored star ratings for clients, so:

ref,clientcode,date,comment,stars

The same clientcode can appear many times.

I need to select the distinct clientcode with the highest average number of stars. Any suggestions how to get this

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Please show us what you have already tried :) –  Andrius Naruševičius Oct 31 '12 at 11:19
1  
Please show some sample data and what is the desired output –  Mahmoud Gamal Oct 31 '12 at 11:32

4 Answers 4

SELECT
    t1.clientcode clientcode,
    t2.sum sum,
    t3.count count,
    CASE t3.count WHEN 0 THEN 0 ELSE t2.sum / t3.count END average
FROM
    t1
    LEFT JOIN
    (
        SELECT
            clientcode, 
            SUM(stars) sum
        FROM t1
        GROUP BY clientcode
    ) t2 ON t1.clientcode = t2.clientcode
    LEFT JOIN
    (
        SELECT
            clientcode, 
            COUNT(stars) count
        FROM t1
        GROUP BY clientcode
    ) t3 ON t1.clientcode = t3.clientcode
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SELECT 
    t1.* 
FROM 
    table t1 
WHERE 
    t1.stars IN 
    (
        SELECT 
            MAX(t2.stars) 
        FROM 
            table t2 
        WHERE  
            t2.clientcode = t1.clientcode
    )
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There is no average here tho. –  Andrius Naruševičius Oct 31 '12 at 11:22

this will show the average value of stars for distinct clientcode

SELECT avg(stars) from t1 group by clientcode;
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Please try query given below.

select avg(`stars`) AS `avgstar` ,`clientcode`  from `t1` group by `clientcode` order by `avgstar` DESC

Here group by clientcode will be get record for every distinct clientcode and order by avgstar where avgstar is average of stars field value for each clientcode in Descinding order.

thanks

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Thanks to everyone for suggestions. I used this one as it was the simplest (and therefore easiest for me to understand!). It works brilliantly. When I implemented it, I collected the results in an array enabling me to choose any of the top 5 results which was just what I needed –  David Nov 1 '12 at 8:42
    
Hi, If you like this answer then please vote it up and accept this answer :) –  Er. Anurag Jain Nov 1 '12 at 8:55

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