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I am using Oracle database and I'm having problem to get one result from 2 result sets.

I have table CASES

Create table cases (ID varchar(1), date_entered date, sub_category varchar (5));

insert into cases (id, date_entered, sub_category)
values('1', to_date('2012/05/03','yyyy/mm/dd'),'Temp1');
insert into cases (id, date_entered, sub_category)
values('2', to_date('2012/06/01','yyyy/mm/dd'),'Temp2');
insert into cases (id, date_entered, sub_category)
values('3', to_date('2012/03/15','yyyy/mm/dd'),'Temp3');
insert into cases (id, date_entered, sub_category)
values('4', to_date('2012/03/01','yyyy/mm/dd'),'Call1');
insert into cases (id, date_entered, sub_category)
values('5', to_date('2012/03/08','yyyy/mm/dd'),'Call2');
insert into cases (id, date_entered, sub_category)
values('6', to_date('2012/02/20','yyyy/mm/dd'),'Call2');

and need to count records BY SUB CATEGORIES, BY MONTH, where one count includes sub_category: Temp1, Temp2, Temp3 other count includes sub_category: Call1, Call2, Call3

I have made query1:

With skills
    AS 
    ( 
          Select sub_category, 
                 date_entered,
                 extract(MONTH FROM cases.date_entered) as month_entered, 
                 count (*)
          from cases 
          where 
                SUB_CATEGORY IN('Temp1', 'Temp2', 'Temp3')


          group by cases.sub_category, cases.date_entered
          order by to_char(cases.date_entered,'MM')
    )

    select  s.month_entered, 
            count(*)as skill_count
            from skills s

    group by s.month_entered
    ORDER BY CAST(s.month_entered AS INTEGER) ASC

with result:

MONTH_ENTERED   SKILL_COUNT
3               1
5               1
6               1

and query 2:

With training
AS 
( 
      Select sub_category, 
             date_entered,
             extract(MONTH FROM cases.date_entered) as month_entered, 
             count (*)
      from cases 
      where 
            SUB_CATEGORY IN('Call1', 'Call2', 'Call3')


      group by cases.sub_category, cases.date_entered
      order by to_char(cases.date_entered,'MM')
)

select  t.month_entered, 
        count(*)as training_count
        from training t

group by t.month_entered
ORDER BY CAST(t.month_entered AS INTEGER) ASC

with result:

MONTH_ENTERED   TRAINING_COUNT
2                1
3                2

The result that I need from these 2 queries is:

MONTH_ENTERED   SKILL_COUNT  TRAINING_COUNT
    2               0            1
    3               1            2
    5               1            0
    6               1            0

Tried union and left join but nothing give's me this result...

Here is sqlfiddle example http://sqlfiddle.com/#!4/504cd/31

Please help, it is urgent and I'm stuck! Thanks ahead

GuiGi answer accepted. Can you help me with this also or I need new question? if I'd like to display zero for all other months of the year and which are not in the table, what should I add to the query?

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2 Answers 2

up vote 2 down vote accepted
SELECT
  EXTRACT(MONTH FROM CASES.DATE_ENTERED) AS MONTH_ENTERED,
  COUNT (CASE WHEN SUB_CATEGORY IN('Temp1', 'Temp2', 'Temp3') THEN 1 END) SKILL_COUNT,
  COUNT (CASE WHEN SUB_CATEGORY IN('Call1', 'Call2', 'Call3') THEN 1 END) TRAINING_COUNT
FROM CASES
GROUP BY EXTRACT(MONTH FROM DATE_ENTERED)
ORDER BY MONTH_ENTERED ASC
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Great. Thanks for your effort and fast answer. –  lana80 Nov 20 '12 at 15:37
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I think you can drastically simplify the query to something like:

      Select extract(MONTH FROM cases.date_entered) as month_entered, 
             sum(case when SUB_CATEGORY IN('Temp1', 'Temp2', 'Temp3') then 1 else 0 end) as Skill_Count,
             sum(case when SUB_CATEGORY IN('Call1', 'Call2', 'Call3') then 1 else 0 end) as Skill_Count,
      from cases 
      group by extract(MONTH FROM cases.date_entered)
      order by extract(MONTH FROM cases.date_entered)
share|improve this answer
    
Thanks for fast answer and simplification! It is close to solution, but it gives 3 rows for march. Looks like GuiGi answer is better for this. –  lana80 Nov 20 '12 at 15:36
    
You are right . . . I missed the group by part of the statement. –  Gordon Linoff Nov 20 '12 at 16:55
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