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I have the following data and need quick help for the following.(giving EMP table example, as I cannot give real data due to compliance issues) :

SELECT EMPNO,
       JOB,
       HIREDATE,
       HIREDATE AS STARTDATE,
       LEAD(HIREDATE) OVER (ORDER BY HIREDATE) AS ENDDATE
  FROM SCOTT.EMP
 ORDER BY HIREDATE;

EMPNO   JOB        HIREDATE   STARTDATE  ENDDATE  
--------------------------------------------------
7369    CLERK      17-Dec-80  17-Dec-80  20-Feb-81  
7499    SALESMAN   20-Feb-81  20-Feb-81  22-Feb-81  
7521    SALESMAN   22-Feb-81  22-Feb-81  2-Apr-81  
7566    MANAGER    2-Apr-81   2-Apr-81   1-May-81  
7698    MANAGER    1-May-81   1-May-81   9-Jun-81  
7782    MANAGER    9-Jun-81   9-Jun-81   8-Sep-81  
7844    SALESMAN   8-Sep-81   8-Sep-81   28-Sep-81  
7654    SALESMAN   28-Sep-81  28-Sep-81  17-Nov-81  
7839    PRESIDENT  17-Nov-81  17-Nov-81  3-Dec-81  
7900    CLERK      3-Dec-81   3-Dec-81   3-Dec-81  
7902    ANALYST    3-Dec-81   3-Dec-81   23-Jan-82  
7934    CLERK      23-Jan-82  23-Jan-82  19-Apr-87  
7788    ANALYST    19-Apr-87  19-Apr-87  23-May-87  
7876    CLERK      23-May-87  23-May-87  NULL   

Here I want the partition by job in oracle SQL, such that the consecutive rows get the same derived start date(DERSTARTDATE) and derived end date(DERENDDATE) as shown below. Can you please advise with SQL in Oracle.

I want something like this:

EMPNO   JOB       HIREDATE   DERSTARTDATE  DERENDDATE   
-----------------------------------------------------
7369    CLERK     17-Dec-80  17-Dec-80     20-Feb-81   
7499    SALESMAN  20-Feb-81  20-Feb-81     2-Apr-81    
7521    SALESMAN  22-Feb-81  20-Feb-81     2-Apr-81       
7566    MANAGER   2-Apr-81   2-Apr-81      8-Sep-81       
7698    MANAGER   1-May-81   2-Apr-81      8-Sep-81    
7782    MANAGER   9-Jun-81   2-Apr-81      8-Sep-81    
7844    SALESMAN  8-Sep-81   8-Sep-81      17-Nov-81   
7654    SALESMAN  28-Sep-81  8-Sep-81      17-Nov-81   
7839    PRESIDENT 17-Nov-81  17-Nov-81     3-Dec-81    
7900    CLERK     3-Dec-81   3-Dec-81      3-Dec-81    
7902    ANALYST   3-Dec-81   3-Dec-81      23-Jan-82   
7934    CLERK     23-Jan-82  23-Jan-82     19-Apr-87   
7788    ANALYST   19-Apr-87  19-Apr-87     23-May-87   
7876    CLERK     23-May-87  23-May-87     NULL    

My requirement is if the same job is repeated in consecutive e.g. for Salesman then the startdate and enddate should be min of startdate and max of enddate in all consecutive columns.

Example:

  • SALESMAN for both consecutive employees empno= 7499 and empno=7521 should have DERSTARTDATE = 20-Feb-81 and DERENDDATE =2-Apr-81
  • SALESMAN for empno= 7844 and empno=7654 should have DERSTARTDATE = 8-Sep-81 and DERENDDATE = 17-Nov-81
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And what is the logic behind that? If you are trying to group based on JOB, then there are more similar jobs in the following rows and the output that you want becomes totally illogical. Seems lack of requirement here. –  San Jan 10 at 5:07
    
Hi San We are looking for start dates and end dates of the job, e.g. job =Salesman was active from 20-Feb-81 to 2-Apr-81 Also salesman was active for dates 8-Sep-81 to 17-Nov-8 ; –  user3180316 Jan 10 at 6:45

1 Answer 1

You first need to identify groups of same consecutive jobs. Tabibitosan is easy way to do it.

 select empno, job, hiredate,
        lead(hiredate) over (order by hiredate,empno) startdate,
        row_number() over (order by hiredate,empno) -
        row_number() over (order by job, hiredate,empno) grp
from emp
);

Once you identify the groups, you can use MIN/MAX as analytical function and find the MIN/MAX in each group.

with x as (
  select empno, job, hiredate,
        lead(hiredate) over (order by hiredate,empno) startdate,
        row_number() over (order by hiredate,empno) -
        row_number() over (order by job, hiredate,empno) grp
    from emp
  )
select empno, job, hiredate,
      min(hiredate) over (partition by grp) derstartdate,
      max(startdate) over (partition by grp) derenddate
  from x
order by hiredate;

Demo.

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