Sign up ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free.

SQL gurus

I have a table structure as follows

Id        Name        IdPartner
Id1       name1           
Id2       Name2       Id1
Id3       name3       Id1
Id4       name4       Id2
Id5       name5       Id3

I need to write a query that would recursively loop through the table to find the partners.

I.e Given an Id say Id1 here, I need to pull out all the Names where Id1 is listed as a partner, So my query need to pull up Name3 and Name2. Subsequently in the same query I also need to pull the names where Name3 and Name2 are also listed as partners. So in this case if I give the input to the SP as Id1 I should effectively get a list that read as below

   Id          Name
  Id2         name2
  Id3         name3
  Id4         name4
  Id5         name5

I havent worked with recursively getting the data in SQL. Someone told me I could use a common table expression, but I fail to see how that would help me. I have been breaking my head over this for over a day and all I can come up with is the idea of using a cursor.

Any help in this regard helps

share|improve this question
I do not know exact scenario , What do you mean by recursively? can you explain it a little more? You will need to write a program that hit the database recursively. –  muhammad kashif Oct 17 '12 at 17:11
it could be multiple, meaning to say Id1 could be partnered with Id3,Id4 and Id2 could also be partnered with Id3 and id4. –  user1313368 Oct 17 '12 at 17:14
I am not understanding you completely. But I think your need a very simple Select query. Select * from table where IdPartner=Id1 –  muhammad kashif Oct 17 '12 at 17:18
What I mean to say is when the query first pulls up records where id1 is a partner, it then need to recursively look in the result set to see if any Ids in the resultset are partners with other records. Here for example when I first pull up Id2 and Id3 when I pass Id1 to the SP, the SP has to now recursively loom into the table where Id2 is a partner and Id3 is a partner and subsequently look into that resultset as well till there are no more partners. –  user1313368 Oct 17 '12 at 17:20
now i got it. let me think a little more. –  muhammad kashif Oct 17 '12 at 17:21

2 Answers 2

up vote 0 down vote accepted

The following returns the related, but not requested, rows:

declare @Gurus as Table ( Id VarChar(4), Name VarChar(16), IdPartner VarChar(4) )
insert into @Gurus ( Id, Name, IdPartner ) values
  ( 'Id1', 'name1', NULL ),
  ( 'Id2', 'Name2', 'Id1' ),
  ( 'Id3', 'Name3', 'Id1' ),
  ( 'Id4', 'Name4', 'Id2' ),
  ( 'Id5', 'Name5', 'Id3' )

declare @TargetId as VarChar(4) = 'Id1'

; with RelatedGurus as (
  -- Anchor: Get the rows that are partners of the target row.
  select Id, Name, IdPartner
    from @Gurus
    where IdPartner = @TargetId
  union all
  -- Recursion: Add any rows that are partners to the rows just added.
  select G.Id, G.Name, G.IdPartner
    from @Gurus as G inner join
      RelatedGurus as RG on RG.Id = G.IdPartner )
  -- Display the result.
  select Id, Name
    from RelatedGurus
    order by Name
share|improve this answer

Try this query

    IF OBJECT_ID('tempdb..#tmptesttable') IS NOT NULL 
        DROP TABLE #tmptesttable

    SET @ParentID = 'Id1'


        SELECT 'Id1','name1', NULL UNION ALL          
        SELECT 'Id2','Name2', 'Id1' UNION ALL
        SELECT 'Id3','name3', 'Id1' UNION ALL
        SELECT 'Id4','name4', 'Id2' UNION ALL
        SELECT 'Id5','name5', 'Id3'
    ) testData (Id,Name,IdPartner)

    ;WITH cteHierarchy AS (
        SELECT Id,Name,IdPartner FROM #tmptesttable WHERE Id = @ParentID
        UNION ALL
            #tmptesttable  tmptesttable
        INNER JOIN
            cteHierarchy.Id = tmptesttable.IdPartner
    SELECT * FROM cteHierarchy WHERE IdPartner IS NOT NULL
share|improve this answer

Your Answer


By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.