select university, difficult_level, count(qpd.question_id) / count(distinct qpd.device_id) as avg_answer_cnt from user_profile as up left JOIN question_practice_detail as qpd ON up.device_id = qpd.device_id LEFT join question_detail as qd ON qpd.question_id = qd.question_id where university = '山东大学'...
