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I have a table showing trains with their destination and departure time. My objective is to list the latest destination (MAX departure time) for each trains.

So for example the table is

Train    Dest      Time
1        HK        10:00
1        SH        12:00
1        SZ        14:00
2        HK        13:00
2        SH        09:00
2        SZ        07:00

The desired result should be:

Train    Dest      Time
1        SZ        14:00
2        HK        13:00

I have tried using

SELECT Train, Dest, MAX(Time)
FROM TrainTable
GROUP BY Train

by I got a "ora-00979 not a GROUP BY expression" error saying that I must include 'Dest' in my group by statement. But surely that's not what I want...

Is it possible to do it in one line of SQL? (sub query is ok)

Thanks a lot.

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5 Answers 5

up vote 29 down vote accepted

You cannot include non-aggregated columns in your result set which are not grouped. If a train has only one destination, then just add the destination column to your group by clause, otherwise you need to rethink your query.

I think you want to know at which destination the train arrives latest. You will need a subselect. For example:

SELECT t.Train, t.Dest, r.MaxTime
FROM (SELECT Train, MAX(Time) as MaxTime
      FROM TrainTable
      GROUP BY Train) r
INNER JOIN Train t ON t.Train = r.Train AND t.Time = r.MaxTime
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Another solution:

select * from traintable
where (train, time) in (select train, max(time) from traintable group by train);
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Here's an example that only uses a Left join and I believe is more efficient than any group by method out there: ExchangeCore Blog

SELECT t1.*
FROM TrainTable AS t1 LEFT JOIN TrainTable AS t2
ON (t1.Dest = t2.Dest AND t1.Time < t2.Time)
WHERE t2.Time IS NULL;
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5  
I like this approach because it uses just standard SQL and works really fine and fast. –  GreenTurtle Apr 17 '13 at 13:05
    
this is best optimized answer –  diEcho Oct 3 '14 at 12:25
    
Wonderful solution. Much better than the complicated group by clauses had in my mind. I just love cleverly elegent things like this, thanks! –  Ran Sagy Jan 13 at 18:41

As long as there are no duplicates (and trains tend to only arrive at one station at a time)...

select Train, MAX(Time),
      max(Dest) keep (DENSE_RANK LAST ORDER BY Time) max_keep
from TrainTable
GROUP BY Train;
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SELECT train, dest, time FROM ( 
  SELECT train, dest, time, 
    RANK() OVER (PARTITION BY train ORDER BY time DESC) dest_rank
    FROM traintable
  ) where dest_rank = 1
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Thx Thilo :-) Indeed your answer is also correct. But as I can only accept 1 answer, I picked Oliver because I tried his answer first. –  Aries Aug 16 '10 at 8:50
2  
@Aries - Thilo's answer is superior to Oliver's, as Thilo's answer will tend to perform less I/O. The analytic function allows the SQL to process the the table in a single pass, whereas Oliver's solution requires multiple passes. –  Adam Musch Aug 16 '10 at 14:33
1  
yes, I agree. This answer should be the "correct" one. –  Russell Nov 22 '11 at 1:06
1  
Agreed, the GROUP BY causes an unnecessary performance hit. Using this method or even a Left Join will be far more efficient, especially with larger tables. –  Joe Meyer Feb 13 '13 at 1:08
    
what's the difference of above code with the one below using row_number? can any one explain to me. SELECT train, dest, time FROM ( SELECT train, dest, time, ROW_NUMBER() OVER (PARTITION BY train ORDER BY time DESC) rn FROM traintable ) where rn = 1 –  Bat_Programmer May 6 '13 at 6:11

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