Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free.

need to replicate 1 row in 3 new rows with incremented sequence number +1 in each new row

insert into t1 (column1,column2,column3,sequencecolumn)
(  **row1
select *from t1 (column1,'101',column3,sequencecolumn)
(select max (sequencecolumn)+1 where column1 ='abc')
where column1 = 'abc'
)  
(   ***row2
select *from t1 (column1,'102',column3,sequencecolumn)
(select max (sequencecolumn)+1 where column1 ='abc')
where column1 = 'abc'
)
(  ***row3
select *from t1 (column1,'103',column3,sequencecolumn)
(select max (sequencecolumn)+1 where column1 ='abc')
where column1 = 'abc'
)
share|improve this question
    
i need to select rows where column1 = abc and column2 = 100 abc, 100, seq1 ................row1 ....................... abc,100, seq2 ...............row2 ........................ abc 099, seq3 ................row3 ........................ now if i need max seq number of 'abc' .ie. seq3 but i need to only fetch records having 'abc' and '100' and replicate it but count sequence should be seq4 primary key is 'abc' +seqnumber column .. not the column 2 having value 100 what to do in such a case –  Agent Mahone Oct 7 '12 at 21:09

1 Answer 1

I might try something like this (if I had a DB2 installation handy):

INSERT INTO t1 (
  column1,
  column2,
  column3,
  sequencecolumn
)
SELECT
  t.column1,
  v.column2,
  t.column3,
  MAX(t.sequencecolumn) + v.rn
FROM t1 t
CROSS JOIN (VALUES (1, '101'), (2, '102'), (3, '103')) v (rn, column2)
GROUP BY
  t.column1,
  t.column3,
  v.column2,
  v.rn
WHERE t.column1 = 'abc'
;
share|improve this answer
    
whats v.rn here ? –  Agent Mahone Oct 7 '12 at 21:03
    
v.rn is one of the two columns in the v inline table (the one defined with the VALUES clause). The other is column2 (which you might want to name differently, I only picked that name to match the column2 in t1) –  Andriy M Oct 7 '12 at 21:05

Your Answer

 
discard

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.