Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

This is master table Query

Select * 
from AC_TAB 
where AC_ID = 7 ; 

AC_PK AC_ID TYPE  STATUS   INS_DATE               VALID
102   7     0     0        3/21/2012 3:35:08 PM   0 
103   7     1     0        3/21/2012 3:35:08 PM 
104   7     2     1        3/21/2012 3:35:08 PM 

I am joining this table with txn table using ac_id. Since here its having 3 rows for ac_id 7 , my txn table returning 3 times. how to restrict this. since i want to return only one irrespective of type

MY Txn Query

Select txn_id, amount 
from txn_hdr , ac_tab 
where txn_ac_id = ac_id ;

txn_id  amount   
 1       200 
 1       200 
 3       100 
 3       100 
share|improve this question

2 Answers 2

up vote 0 down vote accepted

It is not actually clear what you need but it sounds like you only want to return one record per ac_id from the AC_TAB. If so, then there are a few ways that you can do this.

Using a subquery:

select *
from
(
  select max(INS_DATE) INS_DATE, AC_ID
  from ac_tab
  group by AC_ID
) a
inner join txn_hdr t
  on a.ac_id = t.ac_id;

Or with CTE using a row_number():

;with cte as
(
  select a.ins_date, a.ac_id, t.amount, row_number() 
            over(partition by a.ac_id order by a.ins_date desc) rn
  from ac_tab a
  inner join txn_hdr t
    on a.ac_id = t.ac_id
)
select *
from cte 
where rn = 1;

Or with a row_number() in a subquery:

select *
from 
(
  select a.ins_date, a.ac_id, t.amount, row_number() 
            over(partition by a.ac_id order by a.ins_date desc) rn
  from ac_tab a
  inner join txn_hdr t
    on a.ac_id = t.ac_id
) x
where rn = 1
share|improve this answer

You can do this way :

Select distinct txn_id, amount from txn_hdr , ac_tab where txn_ac_id = ac_id ;

share|improve this answer

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.