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On my earnings website, some of my users want to know what "rank" they are for today's earnings. If they have the second most earnings for today, they would be ranked #2.

The only way I can think to do this in Mysql is Select user FROM stats WHERE date=today ORDER BY earnings and then loop through the results until the desired user is found.

This seems like a lot of work for a somewhat simple operation. Is there a better way to do this?

Edit: They also want to know how much more they need to earn to move up a rank.

Edit2: Another problem with the system above is that everyone with $0 earnings would be a different rank, when ideally I would want them to be tied with the same rank.

Edit3: Perhaps if I could make some sort of view where an auto-increment ID was assigned based on the ORDER of earnings, then your ID would also be your rank. I could also easily reference the person above the user with ID-1. Is this possible?

Edit4: Thanks to richardthekiwi, I have come up with the real query for anyone interested:

SELECT  
count(*)+1 MyRanking,
IFNULL((SELECT earnings from today_stats rankUp WHERE rankUp.earnings > my.earnings ORDER BY rankUp.earnings LIMIT 1)-my.earnings,0) AS rankdiff,
my.earnings
FROM today_stats my
left join today_stats others on others.earnings > my.earnings
WHERE my.user_id=18132
share|improve this question
    
You can use coalesce( min( others.earnings ) - min( my.earnings ), 0 ) as rankdiff instead of subquery (coalesce changing null for 1st rank to 0 ) and if you want all ties have the same rank use count( distinct others.earnings )+1 instead of your count. –  piotrm Apr 26 '13 at 5:02

2 Answers 2

up vote 2 down vote accepted

If you wanted to find the rank of a SINGLE user, with ties, then you can use this query

   select count(*)+1 MyRanking
     from stats my
left join stats others on others.earnings > my.earnings
    where username = 'abcdef';

To find how much they need to move up, just look for the next higher earning, e.g.

   select IFNULL(others.earnings - my.earnings, 0) DifferenceToNext
     from stats my
left join stats others on others.earnings > my.earnings
    where username = 'abcdef'
 order by others.earnings asc
    limit 1;

An index on stats.earnings will go a long way for both these queries. A separate index on username will help for the first.

share|improve this answer
    
Thanks! Working on this now...anyway to get both in the same query? –  hellohellosharp Apr 26 '13 at 4:35
    
There is little cost to running two queries, so even though the answer is yes, I would rather not complicate it. –  RichardTheKiwi Apr 26 '13 at 4:43

This is a response to your Edit 3:

I'm not sure whether it solves your problem, but in mySql it is very easy to create a pseudo-column with auto-incremental ID.

SET @ID=0;
SELECT @ID=@ID+1, s.* 
FROM Status s
WHERE ...
ORDER BY earnings;
share|improve this answer
    
Great! I can easily get the user's rank with this! What about referencing the user right above you though? I cannot use a WHERE rank= –  hellohellosharp Apr 26 '13 at 4:31

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