select zb1.author_id,author_level,days_cnt from (select author_id,count(fuzhu) days_cnt /*通过连登录天数*/ from (select distinct answer_date,author_id, answer_date-row_number() over(partition by author_id order by answer_date) fuzhu /*建立一个差值辅助列,值相等次数即为连续登录天数*/ from answer_tb) zb group by author_id,fuzhu having days_cnt >=3) zb1 join author_tb at on zb1.author_id=at.author_id order by zb1.author_id
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