SELECT  u.university,COUNT(question_id)/COUNT(DISTINCT u.device_id) AS avg_answer_cnt
FROM user_profile u
INNER JOIN `question_practice_detail` q
ON u.device_id = q.device_id
GROUP BY u.university;

sql199语法内连接取两者交集,所以连接查询结果为答题的用户和其做的题目,这时对其学校分组后答的问题总数/不重复学生即为结果。