先把需要的东西罗列出来

select exam_id,count( distinct uid ) as uv,round(avg(score),1) as avg_score

其次,分析条件

1.用户等级>5, 2.类别为sql 3.发布当天作答
解:

uid 在用户表中找,等级需要>5

select distinct uid  from user_info where  level >5

类别为sql,找出试卷的id

select distinct exam_id from examination_info where tag='SQL'

发布当天作答

select distinct date(release_time) from examination_info where tag='SQL'

明确从哪个表中查,最后的代码

select exam_id,count( distinct uid ) as uv,round(avg(score),1) as avg_score from exam_record ex
where ex.uid in (select distinct uid  from user_info where  level >5) 
and  exam_id in (select distinct exam_id from examination_info where tag='SQL' )
and  date(submit_time) =(select distinct date(release_time) from examination_info where tag='SQL' )
group by  exam_id
order by uv desc, avg_score ASC

需要注意的细节: 小数点后1位

多条件排序:order by uv desc, avg_score ASC

去重!去重!去重!尤其是用到in时