如何根据分组数据中的逻辑选择特定行?

kpbwa7wx  于 2021-06-24  发布在  Hive
关注(0)|答案(1)|浏览(377)

我在hive中有以下数据:

id  sequence app    time1                time2                 first_d_seq  last_d_seq
2456    1      a    10/11/2018 10:25:43  10/11/2018 10:25:47   5            6
2456    2      b    10/11/2018 10:25:48  10/11/2018 10:25:55   5            6
2456    3      b    10/11/2018 10:25:58  10/11/2018 10:26:02   5            6
2456    4      c    10/11/2018 10:26:02  10/11/2018 10:26:08   5            6
2456    5      d    10/11/2018 10:26:08  10/11/2018 10:26:13   5            6
2456    6      d    10/11/2018 10:26:15  10/11/2018 10:26:20   5            6
2456    7      f    10/11/2018 10:26:20  10/11/2018 10:26:28   5            6
2456    8      f    10/11/2018 10:26:32  10/11/2018 10:26:39   5            6
9702    1      a    10/11/2018 11:05:14  10/11/2018 11:05:16   3            3
9702    2      b    10/11/2018 11:05:16  10/11/2018 11:05:20   3            3
9702    3      d    10/11/2018 11:05:20  10/11/2018 11:05:25   3            3
9702    4      h    10/11/2018 11:05:25  10/11/2018 11:05:27   3            3
9702    5      f    10/11/2018 11:05:27  10/11/2018 11:05:36   3            3

我知道你在哪里 d 开始和结束的顺序 id 组(即,对于第一组 d 开始于序列=5,结束于序列=6)。
我想计算的是,每个 id 团队,是从一开始就花费的时间( sequence=1 )直到 d ( sequence = first_d_seq - 1 ),以及2)从一开始就花费的时间 d ( sequence = last_d_seq + 1 )直到该id的序列结束(即。, 8 对于id=2456;以及 5 对于id=9702)。
基本上,输出应该是这样的:

id      before_d    after_d
2456    25          19
9702    6           11
zour9fqk

zour9fqk1#

在同事的帮助下,我们想出了以下解决方案:

with x as ( --raw data table
select stack(13,
2456,1,'a','10/11/2018 10:25:43','10/11/2018 10:25:47',5,6,
2456,2,'b','10/11/2018 10:25:48','10/11/2018 10:25:55',5,6,
2456,3,'b','10/11/2018 10:25:58','10/11/2018 10:26:02',5,6,
2456,4,'c','10/11/2018 10:26:02','10/11/2018 10:26:08',5,6,
2456,5,'d','10/11/2018 10:26:08','10/11/2018 10:26:13',5,6,
2456,6,'d','10/11/2018 10:26:15','10/11/2018 10:26:20',5,6,
2456,7,'f','10/11/2018 10:26:20','10/11/2018 10:26:28',5,6,
2456,8,'f','10/11/2018 10:26:32','10/11/2018 10:26:39',5,6,
9702,1,'a','10/11/2018 11:05:14','10/11/2018 11:05:16',3,3,
9702,2,'b','10/11/2018 11:05:16','10/11/2018 11:05:20',3,3,
9702,3,'d','10/11/2018 11:05:20','10/11/2018 11:05:25',3,3,
9702,4,'h','10/11/2018 11:05:25','10/11/2018 11:05:27',3,3,
9702,5,'f','10/11/2018 11:05:27','10/11/2018 11:05:36',3,3
) as (id,sequence,app,time1,time2,first_d_seq,last_d_seq)
) -- select * from x
,

y as (
select id,
min(sequence)-1 as min_seq, 
max(sequence)+1 as max_seq
from x
where app='d'
group by id
) -- select * from y
,

z as (
select id,
min(time1) as mintime_all,
max(time2) as maxtime_all
--min(unix_timestamp(startdtm, 'MM/dd/yyyy HH:mm:ss')) as mintime_all,
--max(unix_timestamp(enddtm, 'MM/dd/yyyy HH:mm:ss')) as maxtime_all
from x
group by id
) --select * from z

select x1.id,
( unix_timestamp(x1.time2, 'MM/dd/yyyy HH:mm:ss') - unix_timestamp(z.mintime_all, 'MM/dd/yyyy HH:mm:ss') ) as before_d,
( unix_timestamp(z.maxtime_all, 'MM/dd/yyyy HH:mm:ss') - unix_timestamp(x2.time1, 'MM/dd/yyyy HH:mm:ss') ) as after_d
from y as y
inner join x as x1 on x1.id=y.id and x1.sequence=y.min_seq
inner join x as x2 on x2.id=y.id and x2.sequence=y.max_seq
inner join z as z on y.id=z.id;

这将生成预期答案:

id     before_d   after_d
2456        25           19
9702        6            11

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