select DATE_FORMAT(submit_time,'%Y%m') as month ,round(count(DISTINCT uid,DATE_FORMAT(submit_time,'%Y%m%d'))/count(DISTINCT uid),2)as avg_active_days ,count(DISTINCT uid) as mau from exam_record where year(submit_time) = 2021 group by DATE_FORMAT(submit_time,'%Y%m')
又一次做到这道题,除了知识的综合使用。
这道题比较重要的就是 时间函数的应用,尤其是date_format的使用。
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