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Possible Duplicate:
SQL ORDER BY total within GROUP BY

UPDATE: I've found my solution, which I've posted here. Thanks to everyone for your help!


I'm developing a Facebook application which requires a leaderboard. Scores and time taken to complete the game are recorded and these are organised by score first, then in the case of two identical scores, the time is used. If a user has played multiple times, their best score is used.

The lower the score, the better the performance in the game.

My table structure is:

id
facebook_id - (Unique Identifier for the user)
name
email
score
time - (time to complete game in seconds)
timestamp - (unix timestamp of entry)
date - (readable format of timestamp)
ip

The query I thought would work is:

SELECT *
FROM entries
ORDER BY score ASC, time ASC
GROUP BY facebook_id

The problem I'm having is in some cases it's pulling in the user's first score in the database, not their highest score. I think this is down to the GROUP BY statement. I would have thought the ORDER BY statement would have fixed this, but apparently not.

For example:

----------------------------------------------------------------------------
|  ID  |       NAME       |  SCORE  |  TIME  |  TIMESTAMP  |  DATE  |  IP  |
----------------------------------------------------------------------------
|  1   |  Joe Bloggs      |  65     |   300  | 1234567890  |  XXX   |  XXX |
----------------------------------------------------------------------------
|  2   |  Jane Doe        |  72     |   280  | 1234567890  |  XXX   |  XXX |
----------------------------------------------------------------------------
|  3   |  Joe Bloggs      |  55     |   285  | 1234567890  |  XXX   |  XXX |
----------------------------------------------------------------------------
|  4   |  Jane Doe        |  78     |   320  | 1234567890  |  XXX   |  XXX |
----------------------------------------------------------------------------

When I use the query above, I get the following result:

 1. Joe Bloggs - 65 - 300 - (Joes First Entry, not his best entry) 
 2. Jane Doe - 72 - 280

I would have expected...

 1. Joe Bloggs - 55 - 285 - (Joe's best entry)
 2. Jane Doe - 72 - 280 

It's like the Group By is ignoring the Order - and just overwriting the values.

Using MIN(score) with the group by selects the lowest score, which is correct - however it merges the time from the users first record in the database, so often returns incorrectly.

So, how can I select a user's highest score and the associated time, name, etc and order the results by score, then time?

Thanks in advance!

share|improve this question

marked as duplicate by casperOne Jul 2 '12 at 14:02

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

1  
WHERE condition is sorely missing. When using GROUP BY, the engine has the right to choose absolutely any column from the grouped items, even from different row for every column. –  biziclop Jun 29 '12 at 14:11
1  
ORDER BY goes after the GROUP BY. –  vyegorov Jun 29 '12 at 14:12
    
select ..., max(score) ? –  teran Jun 29 '12 at 14:13
    
use a multicolumn UNIQUE index. –  hjpotter92 Jun 29 '12 at 14:13
    
Please provide sample data and desired output. –  RedFilter Jun 29 '12 at 14:13

6 Answers 6

up vote 2 down vote accepted

One approach would be this:

SELECT entries.facebook_id, MIN(entries.score) AS score, MIN(entries.time) AS time
FROM entries
    INNER JOIN (
        SELECT facebook_id, MIN(score) AS score
        FROM entries
        GROUP BY facebook_id) highscores
    ON highscores.facebook_id = entries.facebook_id
    AND entries.score = highscores.score
GROUP BY entries.facebook_id
ORDER BY MIN(entries.score) ASC, MIN(entries.time) ASC

If you need more information from the entries table, you can then use this as a subquery, and join again on the information presented (facebook_id, score, time) to get one row per user.

You need to aggregate twice, is the crux of this; once to find the minimum score for the user, and again to find the minimum time for that user and score. You could reverse the order of the aggregation, but I would expect that this will filter most quickly and thus be most efficient.

You might also want to check which is faster, aggregating the second time: using the minimum score or grouping using the score as well.

share|improve this answer

Your query does not actually make sense, because the order by should be after the group by. What SQL engine are you using? Most would give an error.

I think what you want is more like:

select e.facebookid, minscore, min(e.time) as mintime -- or do you want maxtime?
from entries e join
     (select e.facebookid, min(score) as minscore
      from entries e
      group by facebookid
     ) esum
     on e.facebookid = esum.facebookid and
        e.score = e.minscore
group by e.facebookid, minscore

You can also do this with window functions, but that depends on your database.

share|improve this answer
    
Sorry, my statement above was incorrect - Order By is after the group by. I'll try this out. –  Darren Craig Jun 29 '12 at 14:37

You need to min the score

    SELECT
      facebook_id,
      name,
      email,
      min(score) as high_score
    FROM
      entries
    GROUP BY
      facebook_id,
      name,
      email
   ORDER BY
     min(score) ASC
share|improve this answer
    
Hi @Phil - I've tried this and a few variations today. Unfortunately it returns each entry a user has made - it doesn't select the single highest score for each user. –  Darren Craig Jun 29 '12 at 14:37
    
remove ID and time from the group by and select. Sorry about that initial answer I will edit –  Phil Vollhardt Jun 29 '12 at 14:45

Using this:

enter image description here

and this:

SELECT name, min( `score` ) , min( `time` )
FROM `entries`
GROUP BY `name`
ORDER BY `score`, `time`

I got this:

enter image description here

share|improve this answer
    
Hi @Adnan Shammout - thanks for this. This would be fine, except I also need to sort by time as a secondary sort - and the Group By function means that the first time in the database for a specific user is used in the row, not necessarily the correct time. –  Darren Craig Jun 29 '12 at 14:33
    
Hi @Adnan - if you changed the time in row 1 to 200, you'd get that as the time in the first row of your result, which would be incorrect. I've found the solution now and added my answer. Thanks again –  Darren Craig Jun 29 '12 at 15:35

Thanks for your help. @Penguat had the closest answer.. Here was my final Query for anyone who might have the same issue...

SELECT f.facebook_id, f.name, f.score, f.time FROM
    (SELECT facebook_id, name, min(score)
    AS highscore FROM golf_entries
    WHERE time > 0
    GROUP BY facebook_id)
AS x
INNER JOIN golf_entries as f
ON f.facebook_id = x.facebook_id
AND f.score = x.highscore
ORDER BY score ASC, time ASC

Thanks again!

share|improve this answer

If you want their best time, you want to use the MIN() function - you said that the lower the score, the better they did.

SELECT facebook_id, MIN(score), time, name, ... 
FROM entries 
GROUP BY facebook_id, time, name, ...
ORDER BY score, time
share|improve this answer
    
Thanks for this. It's not quite what I want though - this outputs all scores by all entrants in order. I only want each user's highest score and the time associated with it. I've been fighting with it all day.. I'm sure I'm missing something stupidly simple. –  Darren Craig Jun 29 '12 at 14:21
    
What about the case where a user has two identical scores, but with different times - is a higher or lower time better? –  Anthony Grist Jun 29 '12 at 14:27
    
Lower time is best. –  Darren Craig Jun 29 '12 at 14:31

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