MySQL:即使没有记录也选择范围内的所有日期
我有一个用户数据库。我想创建一个基于用户群增长的图表。我现在的查询是:
SELECT DATE(datecreated), count(*) AS number FROM users WHERE DATE(datecreated) > '2009-06-21' AND DATE(datecreated) <= DATE(NOW()) GROUP BY DATE(datecreated) ORDER BY datecreated ASC 这几乎返回了我想要的。如果我们有一天获得0个用户,则该天不会作为0值返回,而是会被跳过,并返回至少有一个用户的第二天。我如何获得类似(伪响应)的信息:
date1 5 date2 8 date3 0 date4 0 date5 9 etc... 日期为零的日期与其余日期按顺序显示?
谢谢!
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select * from ( select date_add('2003-01-01 00:00:00.000', INTERVAL n5.num10000+n4.num1000+n3.num100+n2.num10+n1.num DAY ) as date from (select 0 as num union all select 1 union all select 2 union all select 3 union all select 4 union all select 5 union all select 6 union all select 7 union all select 8 union all select 9) n1, (select 0 as num union all select 1 union all select 2 union all select 3 union all select 4 union all select 5 union all select 6 union all select 7 union all select 8 union all select 9) n2, (select 0 as num union all select 1 union all select 2 union all select 3 union all select 4 union all select 5 union all select 6 union all select 7 union all select 8 union all select 9) n3, (select 0 as num union all select 1 union all select 2 union all select 3 union all select 4 union all select 5 union all select 6 union all select 7 union all select 8 union all select 9) n4, (select 0 as num union all select 1 union all select 2 union all select 3 union all select 4 union all select 5 union all select 6 union all select 7 union all select 8 union all select 9) n5 ) a where date >'2011-01-02 00:00:00.000' and date < NOW() order by date 用
select n3.num100+n2.num10+n1.num as date 您将获得一列具有从0到max(n3)* 100 + max(n2)* 10 + max(n1)的数字
因为这里我们的最大n3为3,所以SELECT将返回399,加上0-> 400条记录(日历中的日期)。
您可以通过限制动态日历来对其进行调整,例如,从必须的min(date)到now()。来源:stack overflow
2020-05-10 22:16:48赞同 展开评论