I have some data that looks like this:

Sector           Category         rec_coun
------           --------         ---------
A                25               53
A                24               1911
A                23               2010
A                ..               ..
A                1                190
B                25               787877
B                24               931231231
B                ..               ..
8                1                778787
..
C                1                6666

What I want to get is a table showing, for each Sector, the Category associated with the maximum number of records in that combination of Sector and Category i.e. something like this

Sector                Category        Max Recs
------                --------        --------
A                     23              2010
B                     24              931231231
....

in my example above. I'd ideally like to do this in one stepo. I've tried

select distinct [Sector], [Category], max(rec_cnt) 
from table
group by [Sector], [Category]
having rec_cnt = max(rec_cnt)

but no good. I'd prefer to avoid an inner join in a nested query if possible but, saving the best for last. I'm actually on SQL Server 2000 which may make this trickier than it should be.

  • It is time to update to supported software. SQL Server 2000 has been unsupported for many years. – Gordon Linoff Dec 11 '17 at 11:39

I believe that using nested GROUP BY should ok even on SQL Server 2000.

select t.[Sector], table.[Category], t.max_rec
from table 
join
(
  select distinct [Sector], max(rec_cnt) max_rec
  from table 
  group by [Sector]
) t ON table.[Sector] = t.[Sector] and table.rec_cnt = t.max_rec

Simple window function use should do the trick:

select distinct [Sector], 
FIRST_VALUE(Category) over (partition by Sector order by rec_cnt desc) as [Category], 
max(rec_cnt) over (partition by Sector) as [rec_cnt]
from table

EDIT: Ok, this can't work as window functions were introduced only starting from SQL Server 2005. Please see answer from Radim, that should work.

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