select university, count(q.question_id) / count(distinct q.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 university; 平均答题数量=该学校用户答题总次数/答过题的不同用户个数答题总数:不需要去重,如北京大学2138和6543,2个用户在question_practice_detail里面答了2题,都是question_id为...
