14

Assume the following row in myTable:

id     =  1
letter = 'a'

In Oracle, one can easily do the following:

update myTable set
  letter = 'b'
where id   = 1
returning letter 
into myVariable;

and myVariable will then hold the value 'b'.

What I am looking for is some way of returning the "before" value of letter

ie. replace the previous update with:

update myTable set
  letter = 'b'
where id   = 1
returning letter "before the update"
into myVariable;

and myVariable should then hold the value 'a';

I understand that T-SQL can achieve this via the OUTPUT clause.

Is there an Oracle equivalent way of achieving this so I don't have to first do a "select" just to get the before value?

0

3 Answers 3

13
update
  (
   select T.*, (select letter from DUAL) old_letter
     from myTable T
    where id=1
  )
   set letter = 'b'
returning old_letter into myVariable;

Tested on Oracle 11.2

6
  • 3
    This is intriguing. Nov 10, 2016 at 9:04
  • Brillant solution!. It can be simplified a bit, just select T.*, T.letter AS old_letter .....
    – krokodilko
    Nov 10, 2016 at 9:09
  • 2
    @krokodilko I tested "simplified" letter as old_letter - not working. Oracle in this case return new value. Only subselect deceive Oracle
    – Mike
    Nov 10, 2016 at 9:10
  • 1
    @Mike It doesn't deceive Oracle subselect just invokes scalar subquery caching.
    – Husqvik
    Nov 10, 2016 at 9:24
  • 4
    @Pancho - it doesn't appear any more efficient than doing a select followed by an update - it IS more efficient because requires only ONE operation instead of TWO. Just do a simple experiment and you will see - run both procedures (single update vs. select+update) 10.000 times in a loop and compare their execution times.
    – krokodilko
    Nov 10, 2016 at 10:37
1

If there is not much updates you can do update in loop and get old values:

declare
CURSOR c IS SELECT letter, id FROM myTable 
  FOR UPDATE OF letter;
begin
  open c;
  for x in c loop
     -- old value is in x.letter. You can assign it here
     update myTable set letter = 'b' where id = x.id;      
  end loop;
  commit;
  close c;
end;
/
2
  • thanks very much @Kacper - I think I would prefer to use select followed by update over this approach
    – Pancho
    Nov 10, 2016 at 9:40
  • @Pancho Yes I also think that select is better.
    – Kacper
    Nov 10, 2016 at 10:26
1

I believe you can not do it with a simple SQL statement (and I'm wrong, seeing Mikes' answer :-) )

One way could be using another column and a trigger; for example, say you have a table with the column a, you may add another column old_a to store the old value of a and populate it with a trigger:

create table testUpdate(a number, old_a number);
create or replace trigger trgUpdate 
before update on testUpdate
for each row
begin
    if :new.a != :old.a then /* assuming not null values for simplicity */
        :new.old_a := :old.a;
    end if;
end; 
insert into testUpdate values (1, null);

When you run the update, the old value is stored in th old_a column and returned by the returning clause

SQL> declare
  2      vA number;
  3  begin
  4      update testUpdate
  5      set a = 9
  6      returning old_a
  7      into vA;
  8      --
  9      dbms_output.put_line(vA);
 10  end;
 11  /
1

However, given that this needs to add a column and a trigger to your table, I consider this solution more an exercise than something I would like to have in a production DB

1
  • thanks very much @Aleksej - as per my comment to Mike I would choose select followed by update over this approach. However, your answer I suppose highlights what I find strange: that Oracle triggers have access to the :old and :new values but from the answers I am seeing here Oracle doesn't expose the same functionality via SQL. There are so many use cases for it I couldn't even begin to list them all.
    – Pancho
    Nov 10, 2016 at 9:39

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