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given this table:

x   y
--  -
10  a
20  b
30  c

I want the best way to to map values

[10,20) -> a
[20,30) -> b
[30,inf) -> c

Right now I'm using a query like:

select y from foo
 where x=(select max(x) from foo
           where x<=21);

Is there a better way to do this? Is there an analytic function that might help?

Here's my test case:

create table foo as
select 10 as x ,'a' as y from dual union
select 20,'b' from dual union
select 30,'c' from dual;

-- returns: a,b,b:
select y from foo where x=(select max(x) from foo where x<=19);
select y from foo where x=(select max(x) from foo where x<=20);
select y from foo where x=(select max(x) from foo where x<=21);
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3 Answers 3

up vote 3 down vote accepted

You can rewrite your query to only access the foo table once instead of twice, by using the MAX-KEEP aggregate function.

An example:

SQL> var N number
SQL> exec :N := 19

PL/SQL-procedure is geslaagd.

SQL> select max(y) keep (dense_rank last order by x) y
  2    from foo
  3   where x <= :N
  4  /

Y
-
a

1 rij is geselecteerd.

SQL> exec :N := 20

PL/SQL-procedure is geslaagd.

SQL> select max(y) keep (dense_rank last order by x) y
  2    from foo
  3   where x <= :N
  4  /

Y
-
b

1 rij is geselecteerd.

SQL> exec :N := 21

PL/SQL-procedure is geslaagd.

SQL> select max(y) keep (dense_rank last order by x) y
  2    from foo
  3   where x <= :N
  4  /

Y
-
b

1 rij is geselecteerd.

Also a,b,b as a result. The query plans:

SQL> set serveroutput off
SQL> select /*+ gather_plan_statistics */
  2         y
  3    from foo
  4   where x = (select max(x) from foo where x<=:N)
  5  /

Y
-
b

1 rij is geselecteerd.

SQL> select * from table(dbms_xplan.display_cursor(null,null,'predicate -note last'))
  2  /

PLAN_TABLE_OUTPUT
-------------------------------------------------------------------------------------------
SQL_ID  3kh85qqnb2phy, child number 0
-------------------------------------
select /*+ gather_plan_statistics */        y   from foo  where x =
(select max(x) from foo where x<=:N)

Plan hash value: 763646971

----------------------------------------------------------------------------
| Id  | Operation           | Name | Rows  | Bytes | Cost (%CPU)| Time     |
----------------------------------------------------------------------------
|   0 | SELECT STATEMENT    |      |       |       |     8 (100)|          |
|*  1 |  TABLE ACCESS FULL  | FOO  |     1 |    16 |     4   (0)| 00:00:01 |
|   2 |   SORT AGGREGATE    |      |     1 |    13 |            |          |
|*  3 |    TABLE ACCESS FULL| FOO  |     2 |    26 |     4   (0)| 00:00:01 |
----------------------------------------------------------------------------

Predicate Information (identified by operation id):
---------------------------------------------------

   1 - filter("X"=)
   3 - filter("X"<=:N)


22 rijen zijn geselecteerd.

SQL> select max(y) keep (dense_rank last order by x) y
  2    from foo
  3   where x <= :N
  4  /

Y
-
b

1 rij is geselecteerd.

SQL> select * from table(dbms_xplan.display_cursor(null,null,'predicate -note last'))
  2  /

PLAN_TABLE_OUTPUT
-------------------------------------------------------------------------------------------
SQL_ID  avm2zh62c8cwd, child number 0
-------------------------------------
select max(y) keep (dense_rank last order by x) y   from foo  where x
<= :N

Plan hash value: 3274996510

---------------------------------------------------------------------------
| Id  | Operation          | Name | Rows  | Bytes | Cost (%CPU)| Time     |
---------------------------------------------------------------------------
|   0 | SELECT STATEMENT   |      |       |       |     4 (100)|          |
|   1 |  SORT AGGREGATE    |      |     1 |    16 |            |          |
|*  2 |   TABLE ACCESS FULL| FOO  |     1 |    16 |     4   (0)| 00:00:01 |
---------------------------------------------------------------------------

Predicate Information (identified by operation id):
---------------------------------------------------

   2 - filter("X"<=:N)


20 rijen zijn geselecteerd.

Two full table scans on foo, against one for the new query.

Regards, Rob.

share|improve this answer
    
Ah, perfect. Testing on my full data set shows a similar improvement... thanks!! –  Mark Harrison Jul 6 '09 at 21:16
select distinct first_value(y) over (order by x desc) from foo where x<=19;
select distinct first_value(y) over (order by x desc) from foo where x<=20;
select distinct first_value(y) over (order by x desc) from foo where x<=21;

Plus: an index on x will probably be a good idea.

share|improve this answer

Here's another answer received via usenet. So far this one seems to have the most efficient execution.

select max(y) keep (dense_rank last order by x) from foo where x<=21;
share|improve this answer

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