select i.exam_id,count(distinct u.uid) as uv,round(avg(e.score),1) as avg_score from 
user_info as u 
right join 
exam_record as e 
on 
u.uid=e.uid 
right join 
examination_info as i 
on 
e.exam_id =i.exam_id 
where level>5 and i.tag = 'SQL' 
and date_format(i.release_time,"%Y-%m-%d")='2021-09-01' 
group by i.exam_id 
order by uv desc,avg_score asc

# 思路:

#1,三表进行关联,求出sql的试卷并求出级别为5的相关信息,

# 2,因为要求出当天五级以上的用户作答的人数,所以此时应筛选日期,然后分组,分组依据为考试exam_id,count求出相关的人数(此处要进行去重)

#3,最后是求出其平均分。这里进行了讨巧,发布当天直接根据提示写出的,严格来说这里的当天是发布时间跟开始做答的时间一致

# start_time=release_time