Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

HI,

I actually posted similar (or same?) question yesterday, but I thought I need to post a new question since I have short, but clear question.

I have the following table.

id  point
1   30
2   30
3   29
4   27
5   28
6   26

what I want:

  1. get all the users order by rank. user #1 and #2 should have 1 as their rank value because they both have 30 points

  2. I want to query a rank by user id. I like to get 1 as the result of my rank when I query user #1 and #2 because both of them have 30 points

Added on: 3/18

I tried Logan's query, but got the following result

id point   rank
1   30  1
2   30  1
3   29  3
4   27  5
5   28  4
6   26  6
share|improve this question
add comment

5 Answers

up vote 2 down vote accepted

The subquery approach that you have seen recommended will scale quadratically. http://www.xaprb.com/blog/2006/12/02/how-to-number-rows-in-mysql/ shows a much more efficient approach with user variables. Here is an untested adaptation to your problem:

@points := -1; // Should be an impossible value.
@num := 0;

SELECT id
  , points
  , @num := if(@points = points, @num, @num + 1) as point_rank
  , @points := points as dummy
FROM `users`
ORDER BY points desc, id asc;
share|improve this answer
    
this works perfectly –  Moon Mar 18 '11 at 20:12
    
I tried to add where statment to query a specified row, but I always get 1 as point_rank. below is my query –  Moon Mar 18 '11 at 20:14
    
SELECT *, vote_ratio , @num := if( @vote_ratio = vote_ratio, @num , @num +1 ) AS rank FROM challenge_photos where img_status = 1 and img_id = 65 ORDER BY vote_ratio DESC"; –  Moon Mar 18 '11 at 20:15
    
@btilly //forgot mention your id. –  Moon Mar 18 '11 at 21:47
    
@Moon: What you need to do is make what I wrote into a view, and then select from the view. If you need to access the view repeatedly, save it into a table (which can be temporary if you want) and then access that. –  btilly Mar 19 '11 at 1:40
show 3 more comments

When I needed to do something similar, I created a view that looked like this:

CREATE VIEW rankings_view 
AS 
SELECT id
,      point
,      (select count(1) 
          from points b
         where  b.point > a.point) +1 as rank
FROM points as a;

This assumes that the original table was named points, obviously. Then you can get the rank of any id, or the id corresponding to any rank, by querying the view.

EDIT

If you want to count the number of distinct point values above each point value instead of the number of entries with point values above the current point value, you can do something like:

CREATE VIEW rankings_view2
AS 
SELECT id
,      point
,      (SELECT COUNT(1) +1 AS rank 
          FROM ( SELECT DISTINCT point
                   FROM points b
                  WHERE   b.point >a.point ))
FROM points AS a;

NOTE

Some of the other solutions presented definitely perform better than this one. They're mysql specific, so I can't really use them for what I'm doing. My application has, at most, 128 entities to rank, so this works well enough for me. If you might have tons of rows, though, you might want to look at using one of the other solutions presented here or limiting the scope of the ranking.

share|improve this answer
    
why create the view? The select statement works (though I'd add ORDER BY rank ASC). Nice solution. –  Dawson Mar 18 '11 at 5:02
    
@Dawson I like to keep most of my SQL in the database itself in views and stored procedures. –  lo5an Mar 18 '11 at 15:10
    
@Logan // added the query result above –  Moon Mar 18 '11 at 17:07
    
@Logan // is it possible to get the value 2 for id #2 instead of 3? I know that 3 makes sense since there are two rank #1, but I just wonder if I can set it as #2 instead of #3. –  Moon Mar 18 '11 at 17:14
    
@Moon That shouldn't be a problem. You need to count the number of distinct point values above each point value instead of the number of rows. I'll edit my post. –  lo5an Mar 18 '11 at 17:42
show 1 more comment

Just count how many people have more points then them.

select count(1) from users 
where point > (select point from users where id = 2) group by point

This will give you the number of people that have more points for the given user. So for user 1 and user 2 the result will be 0 (zero) meaning they are first.

share|improve this answer
add comment

The OP would like to have rank numbers skipped if their previously were duplicate points with the same rank. E.g. below see how 2 is skipped because rank 1 appears twice.

id  point  rank
1   30     1
2   30     1
3   29     3
4   27     4
5   28     5
6   26     6

This can be achieved by modifying btilly's code as follows:

set @points := -1; // Should be an impossible value.
set @num := 0;
set @c := 1;
SELECT id
  , points
  , @num := if(@points = points, @num, @num + @c) as point_rank
  , @c := if(@points = points, @c+1, 1) as dummy
  , @points := points as dummy2
FROM `users`
ORDER BY points desc, id asc;
share|improve this answer
add comment
SET @rank = 0, @prev_val = NULL;
SELECT id, @rank := IF(@prev_val=points,@rank,@rank+1) AS rank,
@prev_val := points AS points FROM users ORDER BY points DESC, id asc;

Table:users

share|improve this answer
    
The first two users are supposed to have the same rank. –  btilly Mar 18 '11 at 3:30
    
Yep. Sorry about that. Thanks for the lashing. Answer revamped –  Dawson Mar 18 '11 at 4:11
    
When revamping your answer, you could have acknowledged that it is the same idea as the answer I posted before you revamped yours. –  btilly Mar 18 '11 at 5:57
    
Sorry. It really was an oversight. My solution: tested, and verified to OP. I think I like @Logan's better any way. It's more direct, and easier to read - it's simpler. –  Dawson Mar 18 '11 at 6:57
    
@Dawson: It is true that @Logan has a simpler solution. But if you have 100,000 rows in your table, performance will kill you. –  btilly Mar 18 '11 at 7:09
show 1 more comment

Your Answer

 
discard

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.