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.

I have table with Light Athletic's competitions results. Players earns points for first three places. I need list with Names of athletics which their points. I have this:

SELECT NAME, SUM(many) as sum FROM
(
(SELECT NAME, count(*) * (SELECT points from "points for place" where place = 1)  as many
FROM RESULTS R1 WHERE
(SELECT count(*) FROM RESULTS R2 WHERE
    R1.result < R2.result
    AND R1.DISCIPLINE = R2.DISCIPLINE
    AND R1.CITY = R2.CITY) = 0
GROUP BY NAME)
UNION
(SELECT NAME, count(*) * (SELECT points from "points for place" where place = 2)  as many
FROM RESULTS R1 WHERE
(SELECT count(*) FROM RESULTS R2 WHERE
    R1.result < R2.result
    AND R1.DISCIPLINE = R2.DISCIPLINE
    AND R1.CITY = R2.CITY) = 1
GROUP BY NAME)
UNION
(SELECT NAME, count(*) * (SELECT points from "points for place" where place = 3)  as many
FROM RESULTS R1 WHERE
(SELECT count(*) FROM RESULTS R2 WHERE
    R1.result < R2.result
    AND R1.DISCIPLINE = R2.DISCIPLINE
    AND R1.CITY = R2.CITY) = 2
GROUP BY NAME)
)
GROUP BY NAME ORDER BY SUM;

I have three times almost the same redundant code. If this weren't depend from place, I could use View...

share|improve this question
    
Which RDBMS are you using? –  Yuck Feb 7 '13 at 23:17
    
it works on Oracle –  Jakub Kuszneruk Feb 7 '13 at 23:22
    
@JakubKuszneruk Have you tried using IN? –  Kermit Feb 7 '13 at 23:23
    
@njk I tried sth like place in (1, 2, 3), but then I have 2 problems: 1. ORA-01427: single-row subquery returns more than one row 2. how make place visible in line "AND R!.CITY = R2.CITY) = x ? –  Jakub Kuszneruk Feb 7 '13 at 23:25

2 Answers 2

up vote 2 down vote accepted

you can simplify this with:

select r.name, 
       sum(p.points) total_points
  from (select city, discipline, name, 
               row_number() over (partition by city, discipline order by result) place
         from results r) r
       inner join "points for place" p
               on p.place = r.place
 where p.place <= 3 
 group by r.name
 order by total_points desc;

* note: if there can be a tie, and you want both to count as that place, use dense_rank() instead of row_number()

also the where p.place <= 3 may be redundant given your test data as you only have 3 places scored...so you can omit that. i've left it in though.

but what i'm confused about is that in your original SQL and Erwins answer, you've both inverted the places. i.e the guy who ran longest was 1st?!

i.e in your fiddle you had:

-- RESULTS --
INSERT INTO results VALUES
('9.87', 'Doha', '100m', 'Justin GATLIN');
...
INSERT INTO results VALUES
('10.28', 'Doha', '100m', 'Jimmy VICAUT');

now i read that as Justin WON in 9.87 seconds. yet you've both counted that as Jimmy's win.

if that is so, then the analytic should be

partition by city, discipline order by result desc
share|improve this answer
    
yes, our places was inverted, this was bug –  Jakub Kuszneruk Feb 8 '13 at 8:13
1  
Yeah, your query with dense_rank() is obviously the better solution. Just didn't know what the query is about, when I started working on it. It was .. hidden well. –  Erwin Brandstetter Feb 8 '13 at 8:36

I think you can radically simplify to:

SELECT name, sum(p.points) AS total_points
FROM  (
    SELECT r1.name
          ,sum((r1.result > r2.result)::int) + 1 AS place
    FROM   results r1
    LEFT   JOIN results r2 USING (discipline, city)
    GROUP  BY 1
    HAVING sum((r1.result > r2.result)::int) < 3
    ) r
JOIN   "points for place" p USING (place)
GROUP  BY r.name
ORDER  BY total_points;

This is tested with PostgreSQL.
Since the OP later declared Oracle, here is another version for Oracle:

SELECT name, SUM(p.points) AS total_points
FROM  (
   SELECT r1.name
         ,SUM(CASE WHEN r1.result > r2.result THEN 1 ELSE 0 END) + 1 AS place
   FROM   results r1
   LEFT   JOIN results r2 USING (discipline, city)
   GROUP  BY r1.name
   HAVING SUM(CASE WHEN r1.result > r2.result THEN 1 ELSE 0 END) < 3
) r
JOIN   "points for place" p USING (place)
GROUP  BY r.name
ORDER  BY total_points;

Should deliver the same result as the query in the question. Only much faster and simpler.
->sqlfiddle showing new query and original side by side.

Now that I know what this query is about: dense_rank() is obviously the better solution.

Major points

  • For Postgres, sum((r1.result < r2.result)::int) counts the number of times where r1.result is lower than r2.result. boolean cast to integer yields 1 for TRUE and 0 for FALSE.
    For Oracle this expression does the same:

    SUM(CASE WHEN r1.result < r2.result THEN 1 ELSE 0 END)
    
  • I add 1 to that count and name it place to fetch points from the table "points for place" with it.

share|improve this answer
    
I can't solve this error: ,sum((r1.result < r2.result)::int) + 1 AS place * ERROR at line 4: ORA-00907: missing right parenthesis –  Jakub Kuszneruk Feb 7 '13 at 23:50
1  
@JakubKuszneruk: I added a version for Oracle. If you had provided a test case (table definition + sample values) I could actually test it ... –  Erwin Brandstetter Feb 7 '13 at 23:58
    
I will be grateful if you could. 1) creating_tables 2) data –  Jakub Kuszneruk Feb 8 '13 at 0:10
    
@JakubKuszneruk: Your test case is too big for sqlfiddle. Can you work on this one to bring it down to a reasonable size for a quick test: sqlfiddle.com/#!4/d41d8/7057. And post the working fiddle, when you are done? –  Erwin Brandstetter Feb 8 '13 at 0:18
    
there it is you forgot about comma in 3. line, but something else is wrong too –  Jakub Kuszneruk Feb 8 '13 at 0:40

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.