【MySQL】MySQL 8.0统计连续登录天数

如何在MySQL下查询连续的时间内登录的次数?

原文链接:http://www.oschina.net/question/573517_118821


首先建表,填充测试数据:
CREATE TABLE `tmysql_test_lianxu_3` (
`id` int(11) NOT NULL AUTO_INCREMENT,
`uid` int(11) DEFAULT NULL,
`sts` datetime DEFAULT NULL COMMENT '登录时间',
`ets` datetime DEFAULT NULL COMMENT '离线时间',
PRIMARY KEY (`id`)
) ENGINE=InnoDB AUTO_INCREMENT=9 DEFAULT CHARSET=utf8 COLLATE=utf8_bin


测试数据为:
INSERT INTO `tmysql_test_lianxu_3` VALUES (1, 1, '2014-1-1 21:00:00', '2014-1-2 07:00:00');
INSERT INTO `tmysql_test_lianxu_3` VALUES (2, 1, '2014-1-2 15:37:57', '2014-1-2 21:00:00');
INSERT INTO `tmysql_test_lianxu_3` VALUES (3, 2, '2014-1-1 09:00:00', '2014-1-1 15:00:00');
INSERT INTO `tmysql_test_lianxu_3` VALUES (4, 2, '2014-1-2 09:00:00', '2014-2-1 16:00:00');
INSERT INTO `tmysql_test_lianxu_3` VALUES (5, 1, '2014-1-4 10:00:00', '2014-1-4 18:00:00');
INSERT INTO `tmysql_test_lianxu_3` VALUES (6, 1, '2014-1-5 12:00:00', '2014-1-5 13:00:00');
INSERT INTO `tmysql_test_lianxu_3` VALUES (7, 2, '2014-1-10 00:00:00', '2014-1-10 06:00:00');
INSERT INTO `tmysql_test_lianxu_3` VALUES (8, 2, '2014-1-11 13:00:00', '2014-1-11 18:00:00');
INSERT INTO `tmysql_test_lianxu_3` VALUES (10, 2, '2014-1-12 12:00:00', '2014-1-12 18:00:00');
INSERT INTO `tmysql_test_lianxu_3` VALUES (11, 1, '2014-1-8 06:00:00', '2014-1-8 16:00:00');
INSERT INTO `tmysql_test_lianxu_3` VALUES (12, 2, '2014-1-11 21:00:00', '2014-1-12 06:00:00');


在Oracle中可以使用row_number搞定,MySQL中怎么做呢?
可以参考链接:http://www.explodybits.com/2011/11/mysql-row-number/
首先看原文中给出的答案:
SELECT uid, days, COUNT(*) AS num
FROM (SELECT uid,
@cont_day :=
(CASE
WHEN (@last_uid = uid AND DATEDIFF(login_dt, @last_dt) = 1) THEN
(@cont_day + 1)
ELSE
1
END) AS days,
(@cont_ix := (@cont_ix + IF(@cont_day = 1, 1, 0))) AS cont_ix,
@last_uid := uid,
@last_dt := login_dt
FROM (SELECT uid, DATE(sts) AS login_dt
FROM tmysql_test_lianxu_3
ORDER BY uid, sts) AS t,
(SELECT @last_uid := '',
@last_dt := '',
@cont_ix := 0,
@cont_day := 0) AS t1) AS t2
GROUP BY uid,days;
使用了MySQL模拟Oracle的row_number函数。
运行结果是:

 

 

看了半天发现结果好像不是想要的,想要的是要有开始时间,结束时间之类的。
看下中间表再说:
SELECT uid,
@cont_day :=
(CASE
WHEN (@last_uid = uid AND DATEDIFF(login_dt, @last_dt)=1) THEN
(@cont_day + 1)
ELSE
1
END) AS days,
(@cont_ix := (@cont_ix + IF(@cont_day = 1, 1, 0))) AS cont_ix,
@last_uid := uid,
@last_dt := login_dt login_day
FROM (SELECT uid, DATE(sts) AS login_dt
FROM tmysql_test_lianxu_3
ORDER BY uid, sts) AS t,
(SELECT @last_uid := '',
@last_dt := '',
@cont_ix := 0,
@cont_day := 0) AS t1;
结果为:

 

 

看了下可以这么做,连续日期去最大的days,开始时间,结束时间去login_day,而是这样写:
SELECT uid, max(days) lianxu_days, min(login_day) start_date,max(login_day) end_date
FROM (SELECT uid,
@cont_day :=
(CASE
WHEN (@last_uid = uid AND DATEDIFF(login_dt, @last_dt)=1) THEN
(@cont_day + 1)
ELSE
1
END) AS days,
(@cont_ix := (@cont_ix + IF(@cont_day = 1, 1, 0))) AS cont_ix,
@last_uid := uid,
@last_dt := login_dt login_day
FROM (SELECT uid, DATE(sts) AS login_dt
FROM tmysql_test_lianxu_3
ORDER BY uid, sts) AS t,
(SELECT @last_uid := '',
@last_dt := '',
@cont_ix := 0,
@cont_day := 0) AS t1) AS t2
GROUP BY uid, cont_ix;
结果是:

 

 

这里存在的问题是:表里面的的sts登录时间不能有2条uid相同时间在同一天内。
解决方法是:在case中添加一个<1的判断条件
SELECT uid, max(days) lianxu_days, min(login_day) start_date,max(login_day) end_date
FROM (SELECT uid,
@cont_day :=
(CASE
WHEN (@last_uid = uid AND DATEDIFF(login_dt, @last_dt)=1) THEN
(@cont_day + 1)
WHEN (@last_uid = uid AND DATEDIFF(login_dt, @last_dt)<1) THEN
(@cont_day + 0)
ELSE
1
END) AS days,
(@cont_ix := (@cont_ix + IF(@cont_day = 1, 1, 0))) AS cont_ix,
@last_uid := uid,
@last_dt := login_dt login_day
FROM (SELECT uid, DATE(sts) AS login_dt
FROM tmysql_test_lianxu_3
ORDER BY uid, sts) AS t,
(SELECT @last_uid := '',
@last_dt := '',
@cont_ix := 0,
@cont_day := 0) AS t1) AS t2
GROUP BY uid,cont_ix;

存在的问题:
时间sts的时分秒不见。

posted @ 2021-05-27 11:29  ~*一生所爱*~  阅读(530)  评论(0编辑  收藏  举报
在国际交往中,实力 永远是维护正义的基础;国防 才是外交真正的后盾;尊严 只在剑峰之上;真理 只在大炮射程之内。