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A hypothetical table contains the following coloumns:

id integer,
name char(6),
status integer

And has the following data:

id    id2     type
---   -----   ----
01    Adam    1
02    Bob     1
03    Adam    2
04    Caymen  1
05    Ahmed   1
06    Basel   1
07    Ahmed   2
08    Bob     2
09    Ahmed   2
10    Mike    1

So it basically tracks status progression for different users.

I want to group on the count of statuses. In other words, I want to know how many users have only 1 status, how many have 2 statuses, how many have 3 statuses, etc.

The expected output would be something like this:

num_of_statuses    count
---------------    -----
1                  3
2                  2
3                  1       

I tried with having, but cannot find a solution yet. Any syntax is OK. SQL/MySQL/DB2/Oracle.

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4 Answers 4

up vote 2 down vote accepted

If you don't feel like using a nested query, you could avoid it like this:

SELECT DISTINCT
  num_of_statuses = COUNT(*),
  count           = COUNT(*) OVER (PARTITION BY COUNT(*))
FROM atable
GROUP BY id
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This is brilliant! –  Is7aq May 8 '12 at 21:53
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You'll need a nested query like so:

select num_of_statuses, count(*)
from (
    select id2, count(*) as num_of_statuses
    from table1
    group by id2
) A
group by num_of_statuses

See it on sqlfiddle: http://sqlfiddle.com/#!2/ed95e/1

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3  
You could drop id2 from the select list of the inline view if you like. –  David Aldridge Apr 30 '12 at 22:16
    
Thanks you ---- –  Is7aq May 1 '12 at 14:14
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WITH summary (fname, num_of_statuses) AS
(    SELECT fname, COUNT(*) num_of_statuses 
     FROM basetablename GROUP BY fname
)
SELECT num_of_statuses, COUNT(*) AS peoplecount
FROM summary
GROUP BY num_of_statuses
;
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Thanks you ---- –  Is7aq May 1 '12 at 14:14
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You may try this


SELECT DISTINCT NO_OF_STATUS, COUNT(NAME)
  FROM (SELECT DISTINCT HT.NAME, COUNT(HT.STATUS) AS NO_OF_STATUS
          FROM SO_HYPO_TABLE HT
         GROUP BY HT.NAME) A
 GROUP BY NO_OF_STATUS
 ORDER BY NO_OF_STATUS

Hope this helps

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Thank you ----- –  Is7aq May 8 '12 at 21:53
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