Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free.

I have 2 tables by this structure:

Table 1 :
  vID,
  PID,
  Year

Table 2:
   ID,
   vID, ( From Table 1 )
   StartTime,
   EndTime

relation between Table 1 and Table 2 is 1->*. We have about 5000 records in Table 1 and near to 9000 in Table 2. Now we need to find all records in Table 1 which have same PID and same StartTime and EndTime and add a new column GroupCode to Table 1 and each group have a similar value.

Example of Values

Table 1
 vID     PID    Year
  1      100     2012
  2      101     2012
  3      100     2012
  4      101     2012
  5      100     2012

Table 2
    ID     vID   StartTime       EndTime
     1      1     2012-01-01       2012-02-01
     2      1     2012-05-01       2012-05-03
     3      2     2012-02-05       2012-02-07
     4      3     2012-01-01       2012-02-01
     5      3     2012-05-01       2012-05-03
     6      4     2012-02-05       2012-02-07
     7      5     2012-03-05       2012-05-01

in this example, record 1 and 3 in Table 1 must have GroupCode 1 , record 2 and 4 must have GroupCode=2 and record 7 must has GroupCode=3

Is there any query which can do this grouping in Sql server 2008?

share|improve this question
    
What should happen if three vIDs have matching PIDs and Start/EndTimes? Like vID1 and vID2 match and vID2 and vID3 match. Will they be together in one big group or will vID2 have two GroupCodes? –  Kaadzia Dec 19 '12 at 9:14
    
they will be together in one big group, a group may have 3 or more records –  Ashian Dec 19 '12 at 10:25

1 Answer 1

You can get the groups as follows...

select pid, starttime, endtime, ROW_NUMBER() over (order by min(id)) as groupcode
 from t1
    inner join t2 
        on t1.vid = t2.vid
group by pid, starttime, endtime
having COUNT(*)>1
share|improve this answer
    
if there is more than one related record in Table 2, result will be incorrect ( 2 or more groupCode for same vID) –  Ashian Dec 19 '12 at 10:54

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.