0

我要选择

 data12 [last entry for 12-21-2014],
 data11 [last entry for 12-20-2014],
 data8  [last entry for 12-19-2014]

从下表。

   snapshot_datestamp   data
-------------------------------   
 12-21-2014 08:24:21    data12
 12-20-2014 19:58:49    data11
 12-20-2014 19:55:36    data10
 12-20-2014 19:53:59    data9
 12-19-2014 21:56:23    data8
 12-19-2014 21:13:16    data7
 12-19-2014 11:05:45    data6
 12-19-2014 11:05:07    data5
 12-19-2014 10:56:13    data4
 12-19-2014 10:52:21    data3
 12-19-2014 10:50:43    data2
 12-19-2014 10:49:30    data1

不太确定如何实现这一点。任何指针都会有很大帮助。

4

3 回答 3

1

简单的方法是使用Order byandROWNUM

SELECT *
FROM   (SELECT data
        FROM   tablename
        WHERE  trunc(snapshot_datestamp)  = TO_DATE('12-21-2014','MM-DD-YYYY')
        ORDER  BY snapshot_datestamp DESC)
WHERE  ROWNUM = 1;
于 2014-12-21T16:52:53.090 回答
1

一种方法是获取每天最晚的时间,然后选择对应的记录:

select
  trunc(snapshot_datestamp),
  data
from mytable
where snapshot_datestamp in
(
  select max(snapshot_datestamp)
  from mytable
  group by trunc(snapshot_datestamp)
)
order by trunc(snapshot_datestamp);

另一种是使用解析函数:

select 
  trunc(snapshot_datestamp),
  max(data) keep (dense_rank last order by snapshot_datestamp)
from mytable
group by trunc(snapshot_datestamp)
order by trunc(snapshot_datestamp);
于 2014-12-21T17:10:09.073 回答
1

假设我们可以在这里使用的数据中没有任何键,那么 usingROW_NUMBER可能是一种解决方案:

SELECT "snapshot_datestamp", "data" FROM
(

    SELECT "snapshot_datestamp", "data",
           ROW_NUMBER() 
            OVER (PARTITION BY TRUNC("snapshot_datestamp")
                  ORDER BY "snapshot_datestamp" DESC) rn
    FROM T
) V
WHERE rn = 1
ORDER BY 1 DESC

这里的想法是为给定日期的每一行编号(根据它们的“时间戳”降序排列)。完成后,每个分区的“最后一个”条目就是该分区中编号为 1 的行。

http://sqlfiddle.com/#!4/df1708/3

于 2014-12-21T18:18:34.610 回答