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As part of a complex aggregate I want to know the bitwise sum of some data, i.e. if I have rows with values 1,1,1,2,2,8 the bitwise sum is 11. In this case the values are all exact powers of two (single bits), so I can hack around it by grouping and summing over the groups (obviously this example is a bit tortured compared to the real query):

select SUM(y.test)
from (
    select x.test
    from ( -- garbage test data
        select 1 as [test]
        union all select 1
        union all select 1
        union all select 2
        union all select 2
        union all select 8) x
group by x.test) y

but is there a clean way to perform a bitwise sum in [T]SQL?

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Marc, are you basically talking about ORing all those values? Or do you mean removing duplicates first, then adding (not sure I'd use the term bitwise for that though)? – paxdiablo Dec 14 '10 at 11:47
    
@paxdiablo both; bitwise OR over the set would be identical to unique add, since each is an absolute power of 2 – Marc Gravell Dec 14 '10 at 12:08
up vote 16 down vote accepted

If all of your test values are single bits as in your example (1, 2, 8) - simply use SUM(DISTINCT col) in your query.

Hope that helps.

(For reference: http://msdn.microsoft.com/en-us/library/ms187810.aspx)

share|improve this answer
    
Hahaha. great answer! – James Wiseman Dec 14 '10 at 11:53
    
Nice; I like that approach; works beautifully – Marc Gravell Dec 14 '10 at 12:08

Its a bit convoluted but this does what you're after (note that ive included bit's up to 128, you may need to go higher, or may not need to go any higher than 8).

with data(i)
AS
(
    select 1 
        union all select 1
        union all select 1
        union all select 2
        union all select 2
        union all select 8
)
SELECT MAX(i & 1) +
MAX(i & 2) +
MAX(i & 4) +
MAX(i & 8) +
MAX(i & 16) +
MAX(i & 32) +
MAX(i & 64) +
MAX(i & 128)
from data

which can obviously be converted to a UDF if you so desire.

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I'm trying to figure out how to convert this to a UDF. Can you elaborate on that? – Gabe May 4 '12 at 6:17

You have the operator | which performs bitwise or for 2 operands. It is possible to solve your problem using a cursor and this operator.

Edit yes I mixed up and and or, fixed.

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