铁雪资源网 Design By www.gsvan.com

一、前言

      需求是获取某个时间范围内每小时数据和上小时数据的差值以及比率。本来以为会是一个很简单的sql,结果思考两分钟发现并不简单,网上也没找到参考的方案,那就只能自己慢慢分析了。

      刚开始没思路,就去问DBA同学,结果DBA说他不会,让我写php脚本去计算,,这就有点过分了,我只是想临时查个数据,就不信直接用sql查不出来,行叭,咱们边走边试。

博主这里用的是笨方法实现的,各位大佬要是有更简单的方式,请不吝赐教,评论区等你!

mysql版本:

mysql> select version();
+---------------------+
| version()  |
+---------------------+
| 10.0.22-MariaDB-log |
+---------------------+
1 row in set (0.00 sec)

二、查询每个小时和上小时的差值

1、拆分需求

这里先分开查询下,看看数据都是多少,方便后续的组合。

(1)获取每小时的数据量

这里为了方便展示,直接合并了下,只显示01-12时的数据,并不是bug。。

select count(*) as nums,date_format(log_time,'%Y-%m-%d %h') as days from test where 1 and log_time >='2020-04-19 00:00:00' and log_time <= '2020-04-20 00:00:00' group by days;
+-------+---------------+
| nums | days  |
+-------+---------------+
| 15442 | 2020-04-19 01 |
| 15230 | 2020-04-19 02 |
| 14654 | 2020-04-19 03 |
| 14933 | 2020-04-19 04 |
| 14768 | 2020-04-19 05 |
| 15390 | 2020-04-19 06 |
| 15611 | 2020-04-19 07 |
| 15659 | 2020-04-19 08 |
| 15398 | 2020-04-19 09 |
| 15207 | 2020-04-19 10 |
| 14860 | 2020-04-19 11 |
| 15114 | 2020-04-19 12 |
+-------+---------------+

(2)获取上小时的数据量

select count(*) as nums1,date_format(date_sub(date_format(log_time,'%Y-%m-%d %h'),interval -1 hour),'%Y-%m-%d %h') as days from test where 1 and log_time >='2020-04-19 00:00:00' and log_time <= '2020-04-20 00:00:00' group by days;
+-------+---------------+
| nums1 | days  |
+-------+---------------+
| 15114 | 2020-04-19 01 |
| 15442 | 2020-04-19 02 |
| 15230 | 2020-04-19 03 |
| 14654 | 2020-04-19 04 |
| 14933 | 2020-04-19 05 |
| 14768 | 2020-04-19 06 |
| 15390 | 2020-04-19 07 |
| 15611 | 2020-04-19 08 |
| 15659 | 2020-04-19 09 |
| 15398 | 2020-04-19 10 |
| 15207 | 2020-04-19 11 |
| 14860 | 2020-04-19 12 |
+-------+---------------+

 

注意:

1)获取上小时数据用的是date_sub()函数,date_sub(日期,interval -1 hour)代表获取日期参数的上个小时,具体参考手册:https://www.w3school.com.cn/sql/func_date_sub.asp
2)这里最外层嵌套了个date_format是为了保持格式和上面的一致,如果不加这个date_format的话,查询出来的日期格式是:2020-04-19 04:00:00的,不方便对比。

2、把这两份数据放到一起看看

select nums ,nums1,days,days1 
from 
(select count(*) as nums,date_format(log_time,'%Y-%m-%d %h') as days from test where 1 and log_time >='2020-04-19 00:00:00' and log_time <= '2020-04-20 00:00:00' group by days) as m,
(select count(*) as nums1,date_format(date_sub(date_format(log_time,'%Y-%m-%d %h'),interval -1 hour),'%Y-%m-%d %h') as days1 from test where 1 and log_time >='2020-04-19 00:00:00' and log_time <= '2020-04-20 00:00:00' group by days1) as n;

+-------+-------+---------------+---------------+
| nums | nums1 | days  | days1  |
+-------+-------+---------------+---------------+
| 15442 | 15114 | 2020-04-19 01 | 2020-04-19 01 |
| 15442 | 15442 | 2020-04-19 01 | 2020-04-19 02 |
| 15442 | 15230 | 2020-04-19 01 | 2020-04-19 03 |
| 15442 | 14654 | 2020-04-19 01 | 2020-04-19 04 |
| 15442 | 14933 | 2020-04-19 01 | 2020-04-19 05 |
| 15442 | 14768 | 2020-04-19 01 | 2020-04-19 06 |
| 15442 | 15390 | 2020-04-19 01 | 2020-04-19 07 |
| 15442 | 15611 | 2020-04-19 01 | 2020-04-19 08 |
| 15442 | 15659 | 2020-04-19 01 | 2020-04-19 09 |
| 15442 | 15398 | 2020-04-19 01 | 2020-04-19 10 |
| 15442 | 15207 | 2020-04-19 01 | 2020-04-19 11 |
| 15442 | 14860 | 2020-04-19 01 | 2020-04-19 12 |
| 15230 | 15114 | 2020-04-19 02 | 2020-04-19 01 |
| 15230 | 15442 | 2020-04-19 02 | 2020-04-19 02 |
| 15230 | 15230 | 2020-04-19 02 | 2020-04-19 03 |

      可以看到这样组合到一起是类似于程序中的嵌套循环效果,相当于nums是外层循环,nums1是内存循环。循环的时候先用nums的值,匹配所有nums1的值。类似于php程序中的:

foreach($arr as $k=>$v){
 foreach($arr1 as $k1=>$v1){

 }
}

      既然如此,那我们是否可以像平时写程序的那样,找到两个循环数组的相同值,然后进行求差值呢?很明显这里的日期是完全一致的,可以作为对比的条件。

3、使用case …when 计算差值

select (case when days = days1 then (nums - nums1) else 0 end) as diff
from 
(select count(*) as nums,date_format(log_time,'%Y-%m-%d %h') as days from test where 1 and log_time >='2020-04-19 00:00:00' and log_time <= '2020-04-20 00:00:00' group by days) as m,
(select count(*) as nums1,date_format(date_sub(date_format(log_time,'%Y-%m-%d %h'),interval -1 hour),'%Y-%m-%d %h') as days1 from test where 1 and log_time >='2020-04-19 00:00:00' and log_time <= '2020-04-20 00:00:00' group by days1) as n;

效果:
+------+
| diff |
+------+
| 328 |
| 0 |
| 0 |
| 0 |
| 0 |
| 0 |
| 0 |
| 0 |
| 0 |
| 0 |
| 0 |
| 0 |
| 0 |
| -212 |
| 0 |
| 0 

      可以看到这里使用case..when实现了当两个日期相等的时候,就计算差值,近似于php程序的:

	foreach($arr as $k=>$v){
 foreach($arr1 as $k1=>$v1){
 if($k == $k1){
  //求差值
 }
 }
}

      结果看到有大量的0,也有一部分计算出的结果,不过如果排除掉这些0的话,看起来好像有戏的。

4、过滤掉结果为0 的部分,对比最终数据

      这里用having来对查询的结果进行过滤。having子句可以让我们筛选成组后的各组数据,虽然我们的sql在最后面没有进行group by,不过两个子查询里面都有group by了,理论上来讲用having来筛选数据是再合适不过了,试一试

select (case when days = days1 then (nums1 - nums) else 0 end) as diff
from 
(select count(*) as nums,date_format(log_time,'%Y-%m-%d %h') as days from test where 1 and log_time >='2020-04-19 00:00:00' and log_time <= '2020-04-20 00:00:00' group by days) as m,
(select count(*) as nums1,date_format(date_sub(date_format(log_time,'%Y-%m-%d %h'),interval -1 hour),'%Y-%m-%d %h') as days1 from test where 1 and log_time >='2020-04-19 00:00:00' and log_time <= '2020-04-20 00:00:00' group by days1) as n having diff <>0;

结果:
+------+
| diff |
+------+
| -328 |
| 212 |
| 576 |
| -279 |
| 165 |
| -622 |
| -221 |
| -48 |
| 261 |
| 191 |
| 347 |
| -254 |
+------+

      这里看到计算出了结果,那大概对比下吧,下面是手动列出来的部分数据:

当前小时和上个小时的差值: 当前小时  -上个小时

本小时 上个小时  差值
15442 15114  -328
15230 15442  212
14654 15230  576
14933 14654  -279
14768 14933  165

      可以看到确实是成功获取到了差值。如果要获取差值的比率的话,直接case when days = days1 then (nums1 - nums)/nums1 else 0 end 即可。

5、获取本小时和上小时数据的降幅,并展示各个降幅范围的个数

      在原来的case..when的基础上引申一下,继续增加条件划分范围,并且最后再按照降幅范围进行group by求和即可。这个sql比较麻烦点,大家有需要的话可以按需修改下,实际测试是可以用的。

select case 
when days = days1 and (nums1 - nums)/nums1 < 0.1 then 0.1
when days = days1 and (nums1 - nums)/nums1 > 0.1 and (nums1 - nums)/nums1 < 0.2 then 0.2
when days = days1 and (nums1 - nums)/nums1 > 0.2 and (nums1 - nums)/nums1 < 0.3 then 0.3
when days = days1 and (nums1 - nums)/nums1 > 0.3 and (nums1 - nums)/nums1 < 0.4 then 0.4
when days = days1 and (nums1 - nums)/nums1 > 0.4 and (nums1 - nums)/nums1 < 0.5 then 0.5
when days = days1 and (nums1 - nums)/nums1 > 0.5 then 0.6
 else 0 end as diff,count(*) as diff_nums
from 
(select count(*) as nums,date_format(log_time,'%Y-%m-%d %h') as days from test where 1 and log_time >='2020-03-20 00:00:00' and log_time <= '2020-04-20 00:00:00' group by days) as m,
(select count(*) as nums1,date_format(date_sub(date_format(log_time,'%Y-%m-%d %h'),interval -1 hour),'%Y-%m-%d %h') as days1 from test where 1 and log_time >='2020-03-20 00:00:00' and log_time <= '2020-04-20 00:00:00' group by days1) as n group by diff having diff >0;

结果:

+------+-----------+
| diff | diff_nums |
+------+-----------+
|  0.1 |       360 |
|  0.2 |        10 |
|  0.3 |         1 |
|  0.4 |         1 |
+------+-----------+

三、总结

1、 sql其实和程序代码差不多,拆分需求一步步组合,大部分需求都是可以实现的。一开始就怂了,那自然是写不出的。
2、 不过复杂的计算,一般是不建议用sql来写,用程序写会更快,sql越复杂,效率就会越低。
3、 DBA同学有时候也不靠谱,还是要靠自己啊

补充介绍:MySQL数据库时间和实际时间差8个小时

url=jdbc:mysql://127.0.0.1:3306/somedatabase?characterEncoding=utf-8&serverTimezone=GMT%2B8

数据库配置后面加上&serverTimezone=GMT%2B8

标签:
mysql,每小时数据差值,mysql,数据差值

铁雪资源网 Design By www.gsvan.com
广告合作:本站广告合作请联系QQ:858582 申请时备注:广告合作(否则不回)
免责声明:本站文章均来自网站采集或用户投稿,网站不提供任何软件下载或自行开发的软件! 如有用户或公司发现本站内容信息存在侵权行为,请邮件告知! 858582#qq.com
铁雪资源网 Design By www.gsvan.com

评论“mysql查询每小时数据和上小时数据的差值实现思路详解”

暂无mysql查询每小时数据和上小时数据的差值实现思路详解的评论...