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I have two tables : tableA (idA, titleA) and tableB (idB, idA, textB) with a one to many relationship between them. For each row in tableA, I want to retrieve the last 5 rows corresponding in tableB (ordered by idB).

I've tried

SELECT * FROM tableA INNER JOIN tableB ON tableA.idA = tableB.idA LIMIT 5

but it's just limiting the global result of INNER JOIN whereas I want to limit the result for each different tableA.id

How can I do that ?

Thanks

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For the last 5 per... Is there a basis for last 5 in table B, or just the last 5 based on "idB" which would appear to be an auto-increment sequence column. If date based, what column would that be... –  DRapp Apr 17 '12 at 12:42
    
It's based on idB, wich is auto-incremented. –  un_montagnard Apr 17 '12 at 12:58
    
Similar questions: stackoverflow.com/questions/4688664/… and stackoverflow.com/questions/5319643/… and maybe stackoverflow.com/q/7539548 - an extension of this and this –  TMS Apr 17 '12 at 13:29
    
Check the [greatest-n-per-group] tag or the question under Related, on the right. –  ypercube Apr 17 '12 at 13:40

4 Answers 4

up vote 2 down vote accepted

I think this is what you need:

SELECT tableA.idA, tableA.titleA, temp.idB, temp.textB
FROM tableA
INNER JOIN
(
    SELECT tB1.idB, tB2.idA,
    (
        SELECT textB
        FROM tableB
        WHERE tableB.idB = tB1.idB
    ) as textB
    FROM tableB as tB1
        JOIN tableB as tB2
            ON tB1.idA = tB2.idA AND tB1.idB >= tB2.idB
    GROUP BY tB1.idA, tB1.idB
    HAVING COUNT(*) <= 5
    ORDER BY idA, idB
) as temp
ON tableA.idA = temp.idA

More info about this method here:

http://www.sql-ex.ru/help/select16.php

share|improve this answer
1  
Why do you have the 3rd nested select (select textB from tableB where tableB.idB = tB1.idB)?? This subquery can be replaced just with tB1.textB! –  TMS Apr 17 '12 at 16:32
    
and replace inner join with join. Don't make it a bigger mystery than it is :-) –  TMS Apr 17 '12 at 16:33
2  
@user1336526, I've simplified and corrected this Carlos' solution, see my answer. –  TMS Apr 17 '12 at 16:50
    
thanks @Tomas for usefull feedback –  Carlos Apr 19 '12 at 4:37
select * from tablea ta, tableb tb
where ta.ida=tb.idb and tb.idb in 
(select top 5 idb from tableB order by idb asc/desc)
  • (asc if you want lower ids desc if you want higher ids)
  • less complicated and easy to include more conditions
  • if top clause is not present in mysql use limit clause (I don't have much knowledge abt mysql)
share|improve this answer
    
He's asking for the top 5 in tableB for each row in tableA. This just restricts tableB to its top 5 rows, ordered by idb. Also you need to use LIMIT for MySQL, not TOP. –  BryceAtNetwork23 Apr 17 '12 at 21:18
    
thank you for your comments i realise my mistake......will this work ....select * from tablea ta, tableb tb where ta.ida=tb.idb and tb.idb in (select idb from tableB,tableA tableB.idb=tableA.ida order by idb asc/desc limit 5).. –  Amogh Rai Apr 18 '12 at 6:30

Much simplified and corrected Carlos solution (his solution would return first 5 rows, not last...):

SELECT tB1.idA, tB1.idB, tB1.textB
FROM tableB as tB1
    JOIN tableB as tB2
        ON tB1.idA = tB2.idA AND tB1.idB <= tB2.idB
GROUP BY tB1.idA, tB1.idB
HAVING COUNT(*) <= 5

In MySQL, you may use tB1.textB even if it is group by query, because you are grouping by the idB in the first table, so there is only single value of tB1.textB for each group...

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Just a note, just not to forget it: it is still question which solution would peform better - the join solution is in principle quadratic, while the rank solution is linear. That said, it is quite likely that the SQL optimizer will make the quadratic problem down to linear, while no more optimizations can be expected from the ranking solution. The same applies to solutions of this similar question. –  TMS Apr 17 '12 at 17:17
    
My general experience in MySQL is, if you can rewrite the subquery / ranking query to join, it will be faster.. –  TMS Apr 17 '12 at 17:18

Ensure your "B" table has an index on ( idA, idB ) for optimized order by purposes so for each "A" ID, it can quickly have the "B" order descending thus putting the newest to the top PER EACH "A" ID. Using the MySQL variables, every time the "A" ID changes, it resets the rank back to 1 for the next "A" id.

select 
      B.idA,
      B.idB,
      B.textB
      @RankSeq := if( @LastAGroup = B.idA, @RankSeq +1, 1 ) ARankSeq,
      @LastAGroup := B.idA as ignoreIt
   from
      tableB B
         JOIN tableA A
            on B.idA = A.idA,
      (select @RankSeq := 0, @LastAGroup := 0 ) SQLVars 
   having
      ARankSeq <= 5
   order by
      B.idA,
      B.idB DESC
share|improve this answer
    
Ugh! Nasty query :-) Look at much simpler variant. Anyway there is a big disadvantage in performance - MySQL must walk through all the rows. –  TMS Apr 17 '12 at 17:07

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