LeetCode 511.游戏玩法分析 I【简单】

活动表Activity

+--------------+---------+
| Column Name  | Type    |
+--------------+---------+
| player_id    | int     |
| device_id    | int     |
| event_date   | date    |
| games_played | int     |
+--------------+---------+
表的主键是 (player_id, event_date)。
这张表展示了一些游戏玩家在游戏平台上的行为活动。
每行数据记录了一名玩家在退出平台之前,当天使用同一台设备登录平台后打开的游戏的数目(可能是 0 个)。

写一条 SQL 查询语句获取每位玩家第一次登陆平台的日期

查询结果的格式如下所示:

Activity 表:
+-----------+-----------+------------+--------------+
| player_id | device_id | event_date | games_played |
+-----------+-----------+------------+--------------+
| 1         | 2         | 2016-03-01 | 5            |
| 1         | 2         | 2016-05-02 | 6            |
| 2         | 3         | 2017-06-25 | 1            |
| 3         | 1         | 2016-03-02 | 0            |
| 3         | 4         | 2018-07-03 | 5            |
+-----------+-----------+------------+--------------+

Result 表:
+-----------+-------------+
| player_id | first_login |
+-----------+-------------+
| 1         | 2016-03-01  |
| 2         | 2017-06-25  |
| 3         | 2016-03-02  |
+-----------+-------------+

题目来源:力扣(LeetCode)
题目链接:https://leetcode-cn.com/problems/game-play-analysis-i
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方法一:窗口函数

select 
	player_id, 
	event_date as first_login 
from 
	(select 
		player_id, 
		event_date, 
		rank() over (partition by player_id order by event_date) as login_rank 
	from activity) temp 
where login_rank=1;

方法二:分组求最小

select 
	player_id, 
	min(event_date) as first_login 
from activity group by player_id;

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