sql -leetcode 178. Rank Scores

Score 很好得到: select Score from Scores order by Score desc;

要得到rank, 可以通过比较比当前Score 大的Score 的个数得到:

select Score, (select count(distinct Score) from Scores where Score>=s.Score) Rank where Scores s order by Score desc;

  

或者:

select s.Score ,count(distinct t.Score)Rank from Scores s join Scores t on s.Score<=t.Score

  得到join 两个表,

{"headers": ["Score", "Score"], "values": [[3.50, 3.50], [3.50, 3.65], [3.65, 3.65], [3.65, 3.65], [3.50, 4.00], [3.65, 4.00], [4.00, 4.00], [3.85, 4.00], [4.00, 4.00], [3.65, 4.00], [3.50, 3.85], [3.65, 3.85], [3.85, 3.85], [3.65, 3.85], [3.50, 4.00], [3.65, 4.00], [4.00, 4.00], [3.85, 4.00], [4.00, 4.00], [3.65, 4.00], [3.50, 3.65], [3.65, 3.65], [3.65, 3.65]]}

按s.Id 聚在一起:
select s.Score ,count(distinct t.Score)Rank from Scores s join Scores t on s.Score<=t.Score
group by s.Id
order by s.Score desc

  







posted @ 2017-07-31 18:24  hahahaf  阅读(209)  评论(0编辑  收藏  举报