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I have the following problem:

find the highest row in a table A according to the following rules:

Table A
Columns: V_Date Date, Type int, H_Date Date

1) find the highest V_Date
2) if V_Dates are the same find the row with the highest Priority, where Priority is defined in Table B with columns Type int, Priority int
3) if V_Date and Priority are the same, find the one with the highest H_Date (then it is guaranteed to be unique)

The priorities are not distinct, so max (prio) returns more than one value.

Can anybody help me?

Thank you very much.

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1  
Which database are you using? –  Mark Byers Aug 10 '10 at 8:18
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2 Answers 2

Use ORDER BY and limit the result to one row:

SELECT *
FROM TableA
JOIN TableB ON TableA.Type = TableB.Type
ORDER BY V_Date DESC, Priority DESC, H_DATE DESC
LIMIT 1

Exact syntax may vary depending on the specific database.

  • In MySQL and PostgreSQL you can use LIMIT 1 as above.
  • In SQL Server you can use SELECT TOP(1).
  • In Oracle you can use SELECT * FROM (subquery here) WHERE rownum = 1.
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Thank you for your quick help, seems I ran in complete wrong direction... (selecting max()) –  Thirdman Aug 10 '10 at 9:19
    
You helped me, but now I'm stuck again. I need not only the last of all rows, but the last the n for all rows of table C, which has a 1 to n relation to table A. I hope that was clear. Table C has a 1 to n relation to A and for each row in C I need the last row of A. Can I express this in SQL? Or do I need a stored procedure / for loop? I have the restriction to express it in SQL by the way. –  Thirdman Aug 10 '10 at 14:20
    
@Thirdman: I would run the above in a subquery and then join in TableC in an outer query. –  Mark Byers Aug 10 '10 at 14:37
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Sounds like homework (if it isn't, tell me). So you'll get a general answer. More detail might require you to specify the db type.

JOIN the tables. Use the ORDER BY statement in combination with the TOP statement.

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1  
That's not home work. sorry if this is too easy. I'm a Java Expert, not a SQL Expert. –  Thirdman Aug 10 '10 at 8:56
    
No need to say sorry - it was a wrong assumption on my end. In that case, Mark's answer should be good to use. –  Tobiasopdenbrouw Aug 10 '10 at 9:14
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