# SQL语句的执行顺序

# 1.现根据学校和难度查询基本数据

# 2.按照分组后的不同学校不同难度,统计计算的平均值

# 平均值的计算是: 当前难度的问题数量 / 回答当前问题的学生数量

# -> count(qd.question_id) / count(distinct up.device_id);

# 同时注意要保留四位小数 round(x,4) -> as avg_answer_cnt

select up.university,

       qd.difficult_level,

       round(count(qd.question_id) / count(distinct up.device_id),4) as avg_answer_cnt

     from user_profile as up

     inner join question_practice_detail as qpd

     on up.device_id = qpd.device_id

     inner join question_detail as qd

     on qd.question_id = qpd.question_id

     group by up.university,qd.difficult_level

     order by up.university asc;