SELECT up.university as university, qd.difficult_level as difficult_level, COUNT(qpd.question_id)/COUNT(distinct qpd.device_id) as avg_answer_cnt FROM question_practice_detail as qpd INNER JOIN user_profile as up ON up.device_id = qpd.device_id AND up.university='山东大学' INNER JOIN question_detail as qd ON qd.question_id = qpd.question_id GROUP BY qd.difficult_level;
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