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i got a question this is what i have

SQL> desc trktripleg
 Name                                      Null?    Type
 ----------------------------------------- -------- ----------------------------

 T#                                        NOT NULL NUMBER(10)
 LEG#                                      NOT NULL NUMBER(2)
 DEPARTURE                                 NOT NULL VARCHAR2(30)
 DESTINATION                               NOT NULL VARCHAR2(30)

I tried do the following

SQL> select destination,departure from trktripleg where T#=15;

DESTINATION                    DEPARTURE
------------------------------ ------------------------------
Adelaide                       Melbourne
Melbourne                      Sydney

How do i make it this way...

SOURCE     DESTINATION   DESTINATION2

Adelaide   Melbourne    Sydney

Assume if there only 1 destination

SQL> select destination,departure from trktripleg where T#=11;

DESTINATION                    DEPARTURE
------------------------------ ------------------------------
Sydney                         Melbourne


SOURCE     DESTINATION   DESTINATION2

Adelaide   Melbourne    

I am doing view now as like i provide the T# , it will display the source destination depature

Some raw insert data..

INSERT INTO TRKTRIPLEG VALUES(11, 1, 'Melbourne', 'Sydney');

INSERT INTO TRKTRIPLEG VALUES(15, 1, 'Sydney', 'Melbourne');
INSERT INTO TRKTRIPLEG VALUES(15, 2, 'Melbourne', 'Adelaide');

Thanks for all help. I am using oracle sql.

share|improve this question
    
:Can you please tell me what is the relation between the three rows mentioned in the last .How can we relate them ,because there will be many other records in the table.I know T#=15 will be the same ticket ,but how can we relate T#11 with T#15. – Gaurav Soni Nov 26 '12 at 10:26
    
@GauravSoni , T#15 is a trip with 2 leg, T#11 is a trip with 1 leg. thus T#15 will have Source, Destination, Destination 2, whileas T#11 will have Source, Destination, Destination 2 (Blank) – user1587149 Nov 26 '12 at 10:34
    
:There will be max of two lags ? – Gaurav Soni Nov 26 '12 at 10:36
    
That table structure has been showing up several times a day for some time now. I wonder where this is being used as training material and why all the students turn here to solve their problems. – a_horse_with_no_name Nov 26 '12 at 10:50
up vote 2 down vote accepted

If I understood your schema correctly you can do this

 SELECT   t1.departure AS Source,
         t1.destination AS Destination1,
         t2.destination AS Destination2
  FROM      trktripleg t1
         LEFT OUTER JOIN
            trktripleg t2
         ON t2.T# = t1.T# AND t2.LEG# = 2
 WHERE   t1.LEG# = 1;

SQL FIDDLE EXAMPLE

share|improve this answer
    
:+1 for a better solution . – Gaurav Soni Nov 26 '12 at 10:44
    
@GauravSoni thank you :) – Roman Pekar Nov 26 '12 at 10:46
    
Why's it better? Assuming the table is properly indexed this solution requires an index range scan and an index unique scan as opposed to one index range scan and a window sort. The only way to be sure of which is "better" is to test it. – Ben Nov 26 '12 at 10:57
    
@Ben:It is better than me , i have tested it and checked the execution plan . – Gaurav Soni Nov 26 '12 at 11:09
create table trktripleg
(
T#                                         NUMBER(10)NOT NULL
 ,LEG#                                       NUMBER(2) NOT NULL
 ,DEPARTURE                                  VARCHAR2(30) NOT NULL
 ,DESTINATION                                VARCHAR2(30) NOT NULL
  );

INSERT INTO TRKTRIPLEG VALUES(11, 1, 'Melbourne', 'Sydney');

INSERT INTO TRKTRIPLEG VALUES(15, 1, 'Sydney', 'Melbourne');
INSERT INTO TRKTRIPLEG VALUES(15, 2, 'Melbourne', 'Adelaide');

SELECT DEPARTURE
      ,DESTINATION
      ,DESTINATION_2
FROM
(
SELECT DEPARTURE
      ,DESTINATION
      ,LEAD(DESTINATION, 1, NULL) 
              OVER (partition by T# ORDER BY LEG#) DESTINATION_2
      ,LEG#
FROM trktripleg
)
WHERE LEG#=1

http://www.sqlfiddle.com/#!4/5b27c/11

share|improve this answer

You can do it like this..

select 
    t,
    MAX(source),
    max(destination),
    max(destination2)
from
(
    select t, departure as source, DESTINATION ,null as destination2 from yourtable where LEG = 1
    union all
    select t, null, null, destination from yourtable where LEG =2 
) p
group by t

More generically, you can do a pivot based on the leg value.

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