# 问题分解:
# 限定条件:山东大学的用户 up.university="山东大学";
# 不同难度:按难度分组group by difficult_level
# 平均答题数:总答题数除以总人数count(qpd.question_id) / count(distinct qpd.device_id) 来自上面信息三个表,需要联表,up与qpd用device_id连接并限定大学,qd与qpd用question_id连接。
select university,difficult_level,
round(count(b.question_id) / count(distinct b.device_id),4)
as avg_answer_cnt
from user_profile a ,question_practice_detail b,question_detail c
where a.device_id=b.device_id and b.question_id=c.question_id
and university='山东大学'
group by difficult_level;
/*
SELECT
t1.university,
t3.difficult_level,
COUNT(t2.question_id) / COUNT(DISTINCT(t2.device_id)) as avg_answer_cnt
from
user_profile as t1,
question_practice_detail as t2,
question_detail as t3
WHERE
t1.university = '山东大学'
and t1.device_id = t2.device_id
and t2.question_id = t3.question_id
GROUP BY
t3.difficult_level;*/
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