Sign up ×
Stack Overflow is a community of 4.7 million programmers, just like you, helping each other. Join them, it only takes a minute:

I want to create hiscore list, but I have trouble doing it. This is my hiscore table and for every game I write user score into this table.

This is how my hiscore table look like:

id    user_id    user_name    score    entry_date
1      1         tom          500      2012-06-05 14:30:00
2      1         tom          500      2012-06-05 10:25:00
3      2         jim          300      2012-06-05 09:20:00
4      2         jim          500      2012-06-05 09:22:00
5      3         tony         650      2012-06-05 15:45:00

I want to get first 3 MAX scores, but I have to make sure if they have same score then I should take score that is first entered (based on entry_date column)

The query returned should be something like this.

1.  3      tony     650      2012-06-05 15:45:00     <- hi have to be first, because he have top score
2.  2      jim      500      2012-06-05 09:22:00     <- jim have the same score as tom, but he make that score before tom did so he is in second place
3.  1      tom      500      2012-06-05 10:25:00     <- tom have 2 entries with the same score, but we only take the one with smallest date

This is SQL query that I wrote but with that query i am getting hiscore list but it's not ordered by entry_date and I don't have any idea how to solve this problem.

    MAX(hiscore.score) AS max_score,
    hiscore.user_id, hiscore.user_name
    max_score DESC

UPDATE: Regarding score sum question

Regarding score sum, I need query that will return this when querying original hiscore table:

user_id   user_name    score
1          Tom        1000
2          Jim         800
3          Tony        650

And if there are two users with the same score sum, user with better rank is the one with less entries in hiscore table.

share|improve this question

2 Answers 2

up vote 0 down vote accepted

Edit: this first query is a lie and won't work! :), assuming sql 2005+ use the second one

Just add EntryDate to your order by

    MAX(hiscore.score) AS max_score, 
    hiscore.user_id, hiscore.user_name 
    max_score DESC, entry_date DESC

Edit: ah I didn't even see the group by - forget that, hang on a sec!

This one :P

    ROW_NUMBER() OVER (PARTITION BY User_id ORDER BY Score DESC, entry_date) as scoreNo
) as highs WHERE ScoreNo = 1 ORDER BY Score DESC, entry_date

assuming SQL 2005+


In order to get the best scores ordered by score and then by number of entries the query is a bit simpler:

SELECT user_id, user_name, SUM(score) as Score from hiscore
GROUP BY user_id, user_name
ORDER BY sum(score) DESC, count(score) 

This will give you the scores ordered by the sum of 'score' descending, and then ordered by number of entries ascending which should give you what you want

share|improve this answer
Thank you this is it. Can you write SQL query if I have the same table but I am not looking for hiscore, but rather score SUM for each user. So I would like to get list of the best score SUMS. If you know what I mean. –  Tjodalv Jul 11 '12 at 7:47
I have updated my answer to find out the best score of an individual user –  praveen Jul 11 '12 at 8:22
I've just updated my question regarding score sum list. I would really appreciate if you could please help me with that. –  Tjodalv Jul 11 '12 at 8:44
Ok give me a few minutes then I have to do some work :) –  Charleh Jul 11 '12 at 8:47
Ok, updated - now I'm doing some real work! –  Charleh Jul 11 '12 at 8:53

Try this :

;with cte as 
(Select id ,userID,score,entry_date,row_number() over(partition by userID
 order by score desc,entry_date) as row_num from Score
Select * from cte where row_num=1 ORDER BY Score DESC,entry_date 

// sum of score  for individual user 
Select  UserID,sum(Score) from Score
group by UserID

Result in SqlFiddle

share|improve this answer
Thank you, your solution also works. –  Tjodalv Jul 11 '12 at 7:49
It works because it's exactly the same answer as mine just in a different order :D –  Charleh Jul 11 '12 at 8:41

Your Answer


By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.