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I have the following table in Oracle DB.

ID  VALUE
-----------
1   1  
1   2  
1   3   
2   1   
2   2  
3   1  
3   2  
3   3  
4   1

How can I select ID's which have all 3 values (1,2,3)

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4  
What have you tried? Otherwise, you want rent-a-coder.com –  OMG Ponies Jul 27 '12 at 3:36
    
Does Value field contain anything other than 1,2,3? –  hmmftg Jul 27 '12 at 4:16
    
Title is SQL to check for all values in column or SQL to check for specific values in column? –  hmmftg Jul 27 '12 at 4:18
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5 Answers

The simplest option is generally something like this

SQL> ed
Wrote file afiedt.buf

  1  with x as (
  2    select 1 id, 1 val from dual union all
  3    select 1 id, 2 val from dual union all
  4    select 1 id, 3 val from dual union all
  5    select 2 id, 1 val from dual union all
  6    select 2 id, 2 val from dual union all
  7    select 3 id, 1 val from dual union all
  8    select 3 id, 2 val from dual union all
  9    select 3 id, 3 val from dual union all
 10    select 4 id, 1 val from dual
 11  )
 12  select id
 13    from x
 14   where val in (1,2,3)
 15   group by id
 16* having count(distinct val) = 3
SQL> /

        ID
----------
         1
         3

The WHERE clause identifies the values you're interested in. The HAVING clause tells you how many of those values need to exist. If you wanted all the rows that had at least 2 of the 3 values, for example, you'd change the HAVING clause to look for a COUNT of 2.

If a particular val is guaranteed to occur at most once per id, you can eliminate the distinct in the HAVING clause.

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Very nice proposal –  Gerard Yin Jul 27 '12 at 5:08
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Try this:

SELECT ID
  FROM TABLENAME T
 WHERE EXISTS (SELECT *
                 FROM TABLENAME T1
                WHERE T1.ID = T.ID AND T1.VALUE = '1')
   AND EXISTS (SELECT *
                 FROM TABLENAME T2
                WHERE T1.ID = T.ID AND T2.VALUE = '2')
   AND EXISTS (SELECT *
                 FROM TABLENAME T3
                WHERE T1.ID = T.ID AND T2.VALUE = '3')

or

SELECT ID
  FROM TABLENAME T
 WHERE (SELECT COUNT( * )
          FROM (SELECT VALUE
                  FROM TABLENAME T1
                 WHERE T1.ID = T.ID
                GROUP BY VALUE)) = 3;

where 3 is number of values which can be calculated by a

        SELECT COUNT( * )
          FROM TABLENAME T1
        GROUP BY VALUE

so this will be general purpose:

SELECT ID
  FROM TABLENAME T
 WHERE (SELECT COUNT( * )
          FROM (SELECT VALUE
                  FROM TABLENAME T1
                 WHERE T1.ID = T.ID
                GROUP BY VALUE)) = (SELECT COUNT( * )
                                      FROM TABLENAME T2
                                    GROUP BY VALUE)
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Valid, but overly complicated - the answer can be done in a single SELECT statement. Also, your aliases need correcting –  OMG Ponies Jul 27 '12 at 3:51
    
Still overly complicated - you don't need the subquery. Hint: HAVING –  OMG Ponies Jul 27 '12 at 3:53
    
I tried this.. but I am getting all the rows even though it doesnt have all the values 1,2 and 3 –  user1556549 Jul 27 '12 at 3:55
    
@user1556549 I edited second One have you tried it? –  hmmftg Jul 27 '12 at 4:04
    
Do you want me to complicate it more??? –  hmmftg Jul 27 '12 at 4:08
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Here's an option... each expression in the HAVING clause is counting the number of values that are found equal to 1, 2, or 3. If any of these counts is less than 1, then the ID will not be returned.

http://sqlfiddle.com/#!4/00fdc/8

SELECT ID
FROM myTable
GROUP BY ID
HAVING
  SUM(DECODE(VALUE, 1, 1, 0)) > 0 AND
  SUM(DECODE(VALUE, 2, 1, 0)) > 0 AND
  SUM(DECODE(VALUE, 3, 1, 0)) > 0

EDIT - To require value 1, and either 2 or 3:

SELECT ID
FROM myTable
GROUP BY ID
HAVING
  SUM(DECODE(VALUE, 1, 1, 0)) > 0 AND
  (
      SUM(DECODE(VALUE, 2, 1, 0)) > 0 OR
      SUM(DECODE(VALUE, 3, 1, 0)) > 0
  )
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Way overly complicated –  OMG Ponies Jul 27 '12 at 3:56
2  
Then why not show us all how it's done? –  Glen Hughes Jul 27 '12 at 3:57
    
See my hint to hmmftg –  OMG Ponies Jul 27 '12 at 3:58
1  
I'm pretty sure I see a HAVING in my statement. –  Glen Hughes Jul 27 '12 at 4:00
1  
Then why use SUM, when you can use COUNT ;) –  OMG Ponies Jul 27 '12 at 4:02
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select id from (select id,sum(case when value=1 then 1 else 0 end) as 'v1',
sum(case when value=2 then 1 else 0 end) as 'v2',
sum(case when value=3 then 1 else 0 end) as 'v3'
from orac group by id) as final
where v1>0 and v2>0 and v3>0

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With this option you will get more than the IDs, up to your application to select the column you want:

SELECT ID,
  sum(CASE WHEN VALUE = 1 THEN 1 ELSE 0 END) AS ONE,
  sum(CASE WHEN VALUE = 2 THEN 1 ELSE 0 END) AS TWO,
  sum(CASE WHEN VALUE = 3 THEN 1 ELSE 0 END) AS THREE
FROM MYTABLE
  GROUP BY ID
  HAVING ONE >= 1 AND TWO >= 1 AND THREE >= 1;

alternatively if your case is specific (only values 1, 2, 3 are possible, and no duplicate values are allowed), then you could try the following one:

SELECT ID,
  count(VALUE) AS VALUECOUNT
FROM MYTABLE
  GROUP BY ID
  HAVING VALUECOUNT = 3;

I would take care before going that way, as you might get side effects if later you want to add additional values. But it's still worth proposing if your current case fits the restrictions given above.

And, of course, if you don't like the idea of fetching these intermediate counts, enclose the queries I gave within another select

SELECT ID FROM (
  ...
)
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