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I have a table like below

ID   Value
----------
1    A
2    B
3    C
3    C
4    A
4    D
5    A
5    C
5    D

I want a query or stored procedure that will identify If there is already a combination exist if I try to insert the same kind of value combination. eg: If I am trying to insert

6   A
6   D

will let me know that there is already the same combination exist with id 4. is it possible in MSSQL?

Few Comments: When I am trying to insert the new values the Id will be new, so we can't have a search on the table for duplicate rows with id, value combination. I need a way to search for the duplicate values with the same id value combination.

In the above sample when I am trying to insert

6   A
6   D

It will go and search in the table if there is any rows exist for values with A and D having the same ID in the above table there is an ID 4 so it should let me know that there is a duplicate entry when I try to insert this.

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Yes Possible, but with bit coding in Stored procedure –  gmhk Jun 23 '11 at 5:06
    
How do you want it to let you know? –  Abe Miessler Jun 23 '11 at 5:07
    
It can be a stored procedure MSSQL2005 –  Saanch Jun 23 '11 at 5:28
    
What if there was an attempt to insert a single pair of (4, C)? That would make the combination for ID 4 identical to the one for ID 5. Would such an insert be possible in your project? Should it be intercepted & reported? –  Andriy M Jun 23 '11 at 6:22
    
Yes in such case like insert 4 C should not allow because it will again match the combination of 5- A C D. It should also reported. –  Saanch Jun 23 '11 at 7:26
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5 Answers

up vote 2 down vote accepted

This will give you the ID's from @T that already have the combination of values provided in @NewValues.

declare @T table (ID int, Value char(1))
insert into @T values
(1,    'A'),(2,    'B'),(3,    'C'),(3,    'C'),
(4,    'A'),(4,    'D'),(5,    'A'),(5,    'C'),
(5,    'D')

declare @NewValues table(ID int, Value char(1))
insert into @NewValues values (6,    'A'), (6,    'D')

select T.ID
from @T as T
  inner join @NewValues as N
    on T.Value = N.Value
group by T.ID
having count(*) = (select count(*) from @NewValues)

Result:

ID
4
5

If you only want exact matches, meaning that ID=5 would not be returned because it also have one row with Value='C' you can use this instead.

select T.ID
from @T as T
  left outer join @NewValues as N
    on T.Value = N.Value
group by T.ID
having count(N.Value) = (select count(*) from @NewValues) and 
       count(*) = (select count(*) from @NewValues)

I see that you have (3,'C') and (3,'C') in your table. If you want to detect that with the input (6, 'C') and (6, 'C') you need this query.

select T.ID
from @T as T
  left outer join (select distinct Value
                   from @NewValues) as N
    on T.Value = N.Value
group by T.ID
having count(N.Value) = (select count(*) from @NewValues) and 
       count(*) = (select count(*) from @NewValues)

Fill `@NewValues? table with a string split function.

-- Paramenter to SP
declare @ParamID int = 6
declare @ParamValues varchar(100) = 'A,D'

declare @NewValues table(ID int, Value char(1))
insert into @NewValues
select @ParamID, s
from dbo.Split(',', @ParamValues)
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From how I understood the question, the existing combination(s) should match exactly. For instance, ID 5 cannot match because it contains an 'extra' item 'C', which the new combination doesn't have. So it should probably be full join, like in @Alex Aza's answer. But that's just my understanding. –  Andriy M Jun 23 '11 at 6:17
    
@Andriy - Added a second version that I believe would take care of that. –  Mikael Eriksson Jun 23 '11 at 6:21
    
@Mikael: Yes, if my assumption was correct, your second query should find duplicates correctly. But please take a look at the alternative version with full join that I added to your answer. (Please rollback it if you don't agree.) –  Andriy M Jun 23 '11 at 6:37
    
Wow! Thanks for that answer. Can we have this without the newTable like before I insert pass the combination of Values to a stored procedure and return me if there is an ID exist with the same combination. –  Saanch Jun 23 '11 at 6:45
    
@Andriy - The full outer join version you added will return ID=1 as well. –  Mikael Eriksson Jun 23 '11 at 6:48
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Yes, it is possible. One way to do it is to define a primary key as (ID,Value). That will throw an exception every time someone tries to insert an existing (ID,Value) tuple.

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You Should use the MERGE command see here http://pratchev.blogspot.com/2008/03/upsert-and-more-with-merge.html

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Couldn't find anything in that link related to this. –  Saanch Jun 23 '11 at 5:39
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Before you insert, query all the letters that are combined with that id. Then add the letter you want to insert to that list and then check for every Id if there is an Id that has a relation with all the letters in the list. If there is at least one, then notify the user.

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can you explain this with some SQL code. –  Saanch Jun 23 '11 at 5:39
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The concept is universal quantification, the relational operator is called division, popularly known as "the supplier who supplies all parts".

Because you don't consider ID = 5 to represent a duplicate, you should be looking at exact division (i.e. without a remainder) and an empty divisior is probably not an issue in your case.

Useful article: On Making Relational Division Comprehensible

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