9

I have a table in which I need to copy certain rows. I can get IDs of new rows like this:

DECLARE @IDs TABLE (ID int)
INSERT T (name, address)
OUTPUT INSERTED.TID INTO @ids
    SELECT name, address
    FROM T

But what I would like to have is something like this:

DECLARE @IDs TABLE (oldID int, newID int)
INSERT T (name, address)
OUTPUT T.ID, INSERTED.TID INTO @ids
    SELECT name, address
    FROM T

Can this be done with SQL Server?

P.S. I'm not doing this programmaticaly, because it has to be done by a stored procedure.

4
  • 2
    possible duplicate of How to copy tables avoiding cursors in SQL?
    – Andriy M
    Jan 7, 2012 at 23:50
  • 1
    Basically, explore this question's Linked section: a lot of questions link to it, and many are similar to yours.
    – Andriy M
    Jan 7, 2012 at 23:53
  • 2
    This doesn't make much sense. There would be no "old" ID for an inserted row. Are you talking about updates?
    – user596075
    Jan 7, 2012 at 23:57
  • 1
    @Shark: I'm not taking about UPDATEs. What I was trying to do is duplicate certain rows in a table and as a result get pairs of IDs that show which old/existing row was duplicated into which new row.
    – gligoran
    Jan 8, 2012 at 0:55

1 Answer 1

9

With helpful links from Andriy M's link to 'How to copy tables avoiding cursors in SQL?', I managed to come up with this very elegant solution:

DECLARE @t TABLE (oID int, nID int);

MERGE T s
USING (
        SELECT TID, name, address
        FROM T [s]
      ) d on 0 = 1
WHEN NOT MATCHED
THEN INSERT (name, address)
    VALUES (name, address)
OUTPUT d.TID as oID, Inserted.TID as nID
INTO @t;
2
  • 1
    Not sure why this isn't scored higher, it's very handy, thanks. Would be easier to read with more descriptive var names. :) T s could be MyTable tblTo, T [s] just MyTable, and d could be tblFrom. Sep 6, 2017 at 15:16
  • Thanks, that was exactly what I was looking for but couldn't find anywhere. It's sad SQL Server can't accept SELECT on INSERT VALUES. Sep 24, 2019 at 17:36

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

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