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I have a product table, I need to know the number of records in the table. The Goal is to divide the return query into 2 separate query.

If (Count(*) % 2) = 0 return top(Count(*) / 2)
else return top((Count(*) / 2) + 1)

The main query is :

select coalesce(Price, ProductPrice) as Price, Product.ProductName, Customer.CustomerName, Product.CatalogNum from Product 
        inner join Customer on CustomerID = @custId
        left outer join CustomerPrice on dbo.Customer.CustomerID = dbo.CustomerPrice.CustomerID 
        and dbo.Product.ProductID = dbo.CustomerPrice.ProductID
        Where Product.ProductActive = 1 Order by Product.CatalogNum
share|improve this question
    
If you just need the number of records in the table, you can do SELECT COUNT(*) FROM productTable. But I don't think i'm understanding your question... –  jadarnel27 Aug 30 '11 at 19:16
    
So you want the top half of the table if the number of rows is even and the top half (rounding down) plus one row if the number of rows is odd; is that right? Which version of SQL server? –  Daniel Renshaw Aug 30 '11 at 19:16
    
Daniel Renshaw - exactly my need. SQL Server express 2008 r2 –  Kulpemovitz Aug 30 '11 at 19:24
    
select count(*) from <producttable> ? –  t-clausen.dk Aug 30 '11 at 19:32
    
what's with all the downvotes? An OK question. –  MK. Aug 30 '11 at 19:34

4 Answers 4

up vote 1 down vote accepted
DECLARE @Count int
SELECT @Count = COUNT(*) FROM SomeTable
SET @Count = CASE WHEN @Count % 2 = 0 THEN @Count / 2 ELSE @Count / 2 + 1 END
SELECT TOP(@Count) * FROM SomeTable ORDER BY SomeColumn

Note that there is a concurrency issue here - the number of rows might change between the first and second select statements, unless you apply a suitably restrictive locking hint/transaction isolation level.

Note also that an ORDER BY is essential to give any meaning to "top half".

For information on the TOP clause.

To get the bottom half do the same but subtract one if odd count and reverse the sort order a couple of times.

DECLARE @Count int
SELECT @Count = COUNT(*) FROM SomeTable
SET @Count = CASE WHEN @Count % 2 = 0 THEN @Count / 2 ELSE @Count / 2 - 1 END
SELECT * FROM (
    SELECT TOP(@Count) * FROM SomeTable ORDER BY SomeColumn DESC) AS Data
ORDER BY SomeColumn
share|improve this answer
    
I dont need to worry about concurrency. –  Kulpemovitz Aug 30 '11 at 19:49
    
This is working great. how do I get the second half of the products?? –  Kulpemovitz Aug 30 '11 at 19:49
    
@Kulpemovitz see updated answer for getting bottom half –  Daniel Renshaw Aug 30 '11 at 19:53
    
Thank you. For some reason I couldn't sort the second half using the example you gave. the query manager wrote: Msg 156, Level 15, State 1, Line 6 Incorrect syntax near the keyword 'Order'. So I sorted the query in the report. everything is Great. 10x again –  Kulpemovitz Aug 30 '11 at 20:16

Probably not the most optimal solution, but this might work for you:

DECLARE @Rows INT
SELECT @Rows = CASE WHEN COUNT(*) % 2 = 0 THEN COUNT(*)/ 2 ELSE COUNT(*) / 2 + 1 END FROM Table1
SET ROWCOUNT @Rows
SELECT * FROM Table1 
SET ROWCOUNT 0
share|improve this answer
    
Does ROWCOUNT determine number of records to fetch or just tells you how many were fetched? –  MK. Aug 30 '11 at 19:34
    
SET ROWCOUNT limits number of rows returned, while @@ROWCOUNT tells you how many were returned. –  PaulStock Aug 30 '11 at 19:36
    
Oh, ok. Then this works. But I still like mine better :) –  MK. Aug 30 '11 at 19:38
DECLARE @a FLOAT
SET @a = (SELECT CEILING(COUNT(*)/2.0) FROM users)

SELECT TOP (CAST(@a AS INT)) * FROM users
share|improve this answer
    
Will SQL 2008 allow you to use a variable for TOP like that? I know SQL 2005 won't allow it. If so, that method is much better than my answer. –  PaulStock Aug 30 '11 at 19:40
    
I tested in 2005. You need to put it in parenthesis. –  MK. Aug 30 '11 at 19:41
    
You are right. OK, I like your answer better too. –  PaulStock Aug 30 '11 at 19:44

Try:

 Select * From Table t
 Where (Select Count(*) From Table
        Where pkCol < t.PkCol) <=
       (Select Count(*)+1 From Table)/2

the integer division should deal with what you are rtying to do with the modulus operator...

to address the lack of understanding by the comment below, if the table has an even number of records, say 20, then count(*) = 20, Count(*) + 1 = 21, and (Count(*)+1) / 2 = 10, the query will return all records where the count of records with a pk less than it's pk is less than or equal to 10, i.e. half the records.

If there are an odd number of records, say 21, then count(*) = 21, Count(*) + 1 = 22, and (Count(*)+1) / 2 = 11. the query will return all records where the count of records with a pk less than it's pk is less than or equal to 11, i.e. half the records plus one, the same as the use of the modulus operator would do.

share|improve this answer
    
integer division is not going to help you here, I generally don't understand your answer. –  MK. Aug 30 '11 at 19:35
    
@MK, If you don't understand integer division, then .... 2 / 2 = 1; 3/2 = 1; 4/2 = 2; 5/2 = 2; –  Charles Bretana Aug 31 '11 at 0:08
    
Ah, I still do not understand your answer but the division part makes sense now. –  MK. Aug 31 '11 at 2:28

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