问: 现在有一个表,里面内容是每10秒一条(1天为6*60*24=8640条),然后我现在要做的是以5分钟为一个时间点取数据(一天为12*24=288条),一次性把所有满足条件的取出来。应该怎么写? 答:SQL语句如下: 每分钟为单位做数据的抽取: select node_id,avg(ad
问:
现在有一个表,里面内容是每10秒一条(1天为6*60*24=8640条),然后我现在要做的是以5分钟为一个时间点取数据(一天为12*24=288条),一次性把所有满足条件的值取出来。 应该怎么写?
答:SQL语句如下:
每分钟为单位做数据的抽取:
select node_id,avg(ad1_value) as AD1_VALUE,avg(ad2_value) as AD2_VALUE,date_format(collect_date,'%Y-%m-%d %H:%i') as collect_date
from realtime_data_3where collect_date>'2014-12-06 12:00:00'
and collect_date
group by date_format(collect_date,'%Y-%m-%d %H:%i');
5分为单位:select floor(recDt/500)*500 as gt,avg(nowValue) from reg_conditigroup by gt order by gt;
10分为单位:select floor(recDt/1000)*1000 as gt,avg(nowValue) from reg_conditigroup by gt order by gt;
date_format的语法如下:
定义和用法
DATE_FORMAT() 函数用于以不同的格式显示日期/时间数据。
语法
DATE_FORMAT(date,format)
date 参数是合法的日期。format 规定日期/时间的输出格式。
可以使用的格式有:
| 格式 | 描述 |
|---|---|
| %a | 缩写星期名 |
| %b | 缩写月名 |
| %c | 月,数值 |
| %D | 带有英文前缀的月中的天 |
| %d | 月的天,数值(00-31) |
| %e | 月的天,数值(0-31) |
| %f | 微秒 |
| %H | 小时 (00-23) |
| %h | 小时 (01-12) |
| %I | 小时 (01-12) |
| %i | 分钟,数值(00-59) |
| %j | 年的天 (001-366) |
| %k | 小时 (0-23) |
| %l | 小时 (1-12) |
| %M | 月名 |
| %m | 月,数值(00-12) |
| %p | AM 或 PM |
| %r | 时间,12-小时(hh:mm:ss AM 或 PM) |
| %S | 秒(00-59) |
| %s | 秒(00-59) |
| %T | 时间, 24-小时 (hh:mm:ss) |
| %U | 周 (00-53) 星期日是一周的第一天 |
| %u | 周 (00-53) 星期一是一周的第一天 |
| %V | 周 (01-53) 星期日是一周的第一天,与 %X 使用 |
| %v | 周 (01-53) 星期一是一周的第一天,与 %x 使用 |
| %W | 星期名 |
| %w | 周的天 (0=星期日, 6=星期六) |
| %X | 年,其中的星期日是周的第一天,4 位,与 %V 使用 |
| %x | 年,其中的星期一是周的第一天,4 位,与 %v 使用 |
| %Y | 年,4 位 |
| %y | 年,2 位 |
实例
下面的脚本使用 DATE_FORMAT() 函数来显示不同的格式。我们使用 NOW() 来获得当前的日期/时间:
DATE_FORMAT(NOW(),'%b %d %Y %h:%i %p') DATE_FORMAT(NOW(),'%m-%d-%Y') DATE_FORMAT(NOW(),'%d %b %y') DATE_FORMAT(NOW(),'%d %b %Y %T:%f')
结果类似:
Dec 29 2008 11:45 PM 12-29-2008 29 Dec 08 29 Dec 2008 16:25:46.635
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