分析:

  • SQL类别——where tag='SQL'
  • 发布当天——date(release_time)=date(submit_time)
  • 5级以上——where level>5
  • 作答人数——count(distinct uid) as uv (desc)
  • 平均分——avg(score) as avg_score (asc)

提交答案:

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

from exam_record as er
join user_info as ui
on ui.uid=er.uid

join examination_info as ei
on er.exam_id=ei.exam_id 
and date(submit_time)=date(release_time)

where level>5 and tag='SQL'and submit_time is not null
group by exam_id
order by uv desc,avg_score