题目
Table: Activity
+--------------+---------+ | Column Name | Type | +--------------+---------+ | player_id | int | | device_id | int | | event_date | date | | games_played | int | +--------------+---------+ (player_id,event_date)是此表的主键。 这张表显示了某些游戏的玩家的活动情况。 每一行是一个玩家的记录,他在某一天使用某个设备注销之前登录并玩了很多游戏(可能是 0)。
编写一个 SQL 查询,报告在首次登录的第二天再次登录的玩家的比率,四舍五入到小数点后两位。换句话说,您需要计算从首次登录日期开始至少连续两天登录的玩家的数量,然后除以玩家总数。
查询结果格式如下所示:
Activity table: +-----------+-----------+------------+--------------+ | player_id | device_id | event_date | games_played | +-----------+-----------+------------+--------------+ | 1 | 2 | 2016-03-01 | 5 | | 1 | 2 | 2016-03-02 | 6 | | 2 | 3 | 2017-06-25 | 1 | | 3 | 1 | 2016-03-02 | 0 | | 3 | 4 | 2018-07-03 | 5 | +-----------+-----------+------------+--------------+ Result table: +-----------+ | fraction | +-----------+ | 0.33 | +-----------+ 只有 ID 为 1 的玩家在第一天登录后才重新登录,所以答案是 1/3 = 0.33
解题
select round(avg(b.event_date is not null),2) as fraction from( select player_id, min(event_date) as login from Activity group by player_id )as a left join Activity as b on a.player_id=b.player_id and datediff(b.event_date,a.login)=1;
