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Given the following data:

declare @temp table(id int identity primary key, val nvarchar)

insert into @temp values (NULL)
insert into @temp values (NULL)
insert into @temp values ('A')
insert into @temp values (NULL)
insert into @temp values (NULL)
insert into @temp values ('B')
insert into @temp values ('C')
insert into @temp values (NULL)
insert into @temp values (NULL)
insert into @temp values ('A')
insert into @temp values (NULL)
insert into @temp values (NULL)

I'm trying to get the output below. The records need to be grouped so that with each new value the group number increases by one. The values themselves do not matter - if there is any value other than NULL a new group ID is added. Records have to be ordered by Id.

Id Val  Group
-- ---  -----
1  NULL 1
2  NULL 1
3  A    2
4  NULL 2
5  NULL 2
6  B    3
7  C    4
8  NULL 4
9  NULL 4
10 A    5
11 NULL 5

I was hoping using PARTITION BY would be the solution, but I can't seem to get this working (if indeed it is possible/the right approach. I have a solution using a LOOP but I'd rather use a query. I'm using SQL Server 2008. Thanks for any suggestions.

select id, val, row_number() over (partition by X order by id) from @temp
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1 Answer 1

up vote 2 down vote accepted

This does what you want:

select t.id, t.val, DENSE_RANK() over (order by prevval) as grouping
from (select *,
             (select top 1 id from @temp t2 where t2.val is not null and t2.id <= t.id order by id desc
             ) as prevval
      from @temp t
     ) t

This uses a correlated subquery to get the largest id less than or equal to the given value where the val is not null (if any). It then dense ranks these by the id, to get a sequential grouping.

If you are using SQL Server 2012, then there is a related approach, without the subquery:

select t.id, t.val, DENSE_RANK() over (order by prevval) as grouping
from (select *,
             max(case when val is not null then id end) over (order by id) as prevval
      from @temp t
     ) t
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1  
+1 Nice. Here's the sql-fiddle. –  Tim Schmelter Apr 16 '13 at 22:12
    
Excellent stuff - thanks for this –  geographika Apr 17 '13 at 6:47
    
@geographika . . . Thank you for posting an interesting question, with working test code. –  Gordon Linoff Apr 17 '13 at 13:05

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