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I have a table like this:

ID  Seq  Amt
1   1    500
1   2    500
1   3    500
1   5    500
2   10   600
2   11   600
3   1    700
3   3    700

I want to group the continuous sequence numbers into a single row like this:

ID  Start  End  TotalAmt
1   1      3    1500
1   5      5    500
2   10     11   1200
3   1      1    700
3   3      3    700

Please help to achieve this result.

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1  
which version of sql server? is (id+seq) unique? –  RichardTheKiwi Feb 23 '11 at 8:45

5 Answers 5

up vote 21 down vote accepted
WITH numbered AS (
  SELECT
    ID, Seq, Amt,
    SeqGroup = ROW_NUMBER() OVER (PARTITION BY ID ORDER BY Seq) - Seq
  FROM atable
)
SELECT
  ID,
  Start = MIN(Seq),
  [End] = MAX(Seq),
  TotalAmt = SUM(Amt)
FROM numbered
GROUP BY ID, SeqGroup
ORDER BY ID, Start
;
share|improve this answer
1  
+1 Took me a while to figure out the - Seq trick and verify (for myself) there can't be any collisions but OP can't ask for any better than this. –  Lieven Keersmaekers Feb 23 '11 at 8:39
    
+1 I had a suspicion that ROW_NUMBER (or RANK,...) would help but abandoned it for my (more complicated and probably slower) solution. –  Sem Vanmeenen Feb 23 '11 at 8:50
    
@Lieven: Please believe me when I'm saying that with a praise like this one doesn't need any formal upvoting. :) Thanks, you are very kind! By the way, you shouldn't have deleted your answer. One more recursive CTE demonstration is never too many, in my opinion, as that is a rather tricky technique, which is best learnt by examples. Also I didn't notice any Martin's or Quassnoi's presence here. :) –  Andriy M Feb 23 '11 at 8:51
    
@SemVanmeenen: Thanks! –  Andriy M Feb 23 '11 at 8:52
1  
That is an elegant and beautiful solution. Excellent. –  Matthew Burr Feb 24 '11 at 2:40

Well, there's perhaps a more elegant way to do this (something hints at me that there is), but here's an approach that will work if you're using a version of SQL Server that accepts common table expressions:

use Tempdb
go

create table [Test]
(
    [id] int not null,
    [Seq] int not null,
    [Amt] int not null
)

insert into [Test] values
(1, 1, 500),
(1, 2, 500),
(1, 3, 500),
(1, 5, 500),
(2, 10, 600),
(2, 11, 600),
(3, 1, 700),
(3, 3, 700)

;with
lower_bound as (
    select *
      from Test
     where not exists (
        select *
          from Test as t1
         where t1.id = Test.id and t1.Seq = Test.Seq - 1
    )
),
upper_bound as (
    select *
      from Test
     where not exists (
        select *
          from Test as t1
         where t1.id = Test.id and t1.Seq = Test.Seq + 1
    )
),
bounds as (
    select id, (select MAX(seq) from lower_bound where lower_bound.id = upper_bound.id and lower_bound.Seq <= upper_bound.Seq) as LBound, Seq as Ubound
      from upper_bound
)
select Test.id, LBound As [Start], UBound As [End], SUM(Amt) As TotalAmt
  from Test
  join bounds
    on Test.id = bounds.id
   and Test.Seq between bounds.LBound and bounds.Ubound
 group by Test.id, LBound, UBound

drop table [Test]
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Thank you very much for the effort. Your solution is working fine. –  Nagesh Feb 23 '11 at 11:01

This seems to work nicely. @breakingRows will contain all rows that break the sequence of id and seq (i.e. if id changes or if seq is not 1 more than the previous seq). With that table you can select all rows of such a sequence within @temp. I must add however that performance will probably be not all that good because of all the subqueries but you'll need to test to be sure.

declare @temp table (id int, seq int, amt int)
insert into @temp select 1, 1, 500
insert into @temp select 1, 2, 500
insert into @temp select 1, 3, 500
insert into @temp select 1, 5, 500
insert into @temp select 2, 10, 600
insert into @temp select 2, 11, 600
insert into @temp select 3, 1, 700
insert into @temp select 3, 3, 700

declare @breakingRows table (ctr int identity(1,1), id int, seq int)

insert into @breakingRows(id, seq)
select id, seq
from @temp t1 
where not exists 
    (select 1 from @temp t2 where t1.id = t2.id and t1.seq - 1 = t2.seq)
order by id, seq

select br.id, br.seq as start, 
       isnull ((select top 1 seq from @temp t2 
               where id < (select id from @breakingRows br2 where br.ctr = br2.ctr - 1) or 
                     (id = (select id from @breakingRows br2 where br.ctr = br2.ctr - 1) and
                      seq < (select seq from @breakingRows br2 where br.ctr = br2.ctr - 1))          
               order by id desc, seq desc),
               br.seq)
      as [end],
      (select SUM(amt) from @temp t1 where t1.id = br.id and 
        t1.seq < 
            isnull((select seq from @breakingRows br2 where br.ctr = br2.ctr - 1 and br.id = br2.id), 
                   (select max(seq) + 1 from @temp)) and 
        t1.seq >= br.seq)
from @breakingRows br
order by id, seq
share|improve this answer
    
Thanks for the effort. The solution is perfectly working! But I can mark only one answer as Best answer. –  Nagesh Feb 23 '11 at 10:43
    
No problem. Andriy's solution is clearly the best one. –  Sem Vanmeenen Feb 23 '11 at 12:11

Since Andriy has already posted the gold solution, here's my take using an UPDATE statement to get the result from a temp table, just for fun.

declare @tmp table (
    id int, seq int, amt money, start int, this int, total money,
    primary key clustered(id, seq))
;
insert @tmp
select *, start=seq, this=seq, total=convert(money,amt)
from btable
;
declare @id int, @seq int, @start int, @amt money
update @tmp
set 
    @amt = total = case when id = @id and seq = @seq+1 then @amt+total else amt end,
    @start = start = case when id = @id and seq = @seq+1 then @start else seq end,
    @seq = this = seq,
    @id = id = id
from @tmp
option (maxdop 1)
;
select id, start, max(this) [end], max(total) total
from @tmp
group by id, start
order by id, start

Notes:

  • btable: your table name
  • id int, seq int, amt money: expected columns in your table
share|improve this answer
    
It works, but that's some new SQL Server stuff to me. You've managed to post something valueable just by having fun, thanks. :) –  Andriy M Feb 23 '11 at 9:39
    
Is there a specific reason for the ´option (maxdop 1)´ ? EDIT : I think I just figured it out. You update ´@tmp´ with data from ´@tmp´ itself. Multithreading would interfere with that, correct ? –  Sem Vanmeenen Feb 23 '11 at 10:15
    
@Sem Yes, because this is a brittle query. There is no way to use ORDER BY in an UPDATE query, so AFAIK this should work - but no guarantees - if we cluster in the order required, and force maxdop 1. I stress again (and voted too), Andriy's answer is the gold one. –  RichardTheKiwi Feb 23 '11 at 10:18

Try following query.

select id, min(seq), max(seq), sum(amt) from table group by id

OOps, sorry, it is wrong query as you need sequence

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