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I have an MySQL query

SELECT *,
       (SELECT COUNT(*) FROM B WHERE B.AID = A.ID) AS Sum1,
       (SELECT COUNT(*) FROM C WHERE C.AID = A.ID) AS Sum2
FROM A

What are possible alternatives using joins or so?

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3  
That's not a JOIN-able query since the two counts might differ. –  tadman Jan 31 '13 at 16:10
    
Consider providing a more concrete example in the form of a sqlfiddle and/or set of DDLs –  Strawberry Jan 31 '13 at 16:19
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3 Answers

up vote 2 down vote accepted

This would work if there are unique IDs in the B and C tables. In my example the fields are called ID.

SELECT A.*,
       COUNT(DISTINCT B.ID) AS Sum1,
       COUNT(DISTINCT C.ID) AS Sum2

FROM   A

       LEFT JOIN B ON b.AID = A.ID
       LEFT JOIN C ON C.AID = A.ID

GROUP BY A.ID
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this one seems equivalent to my query and performs similary. i just don't understand, how MySQL counts very fast –  brooNo Jan 31 '13 at 16:50
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SELECT A.*, IFNULL(t1.sum, 0), IFNULL(t2.sum, 0)
FROM A
LEFT JOIN (SELECT AID, COUNT(AID) sum FROM B GROUP BY AID) t1 ON t1.AID = A.ID
LEFT JOIN (SELECT AID, COUNT(AID) sum FROM C GROUP BY AID) t2 ON t2.AID = A.ID
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You're running on a lot of assumptions here. –  Kermit Jan 31 '13 at 16:31
    
this one works, but is less performant –  brooNo Jan 31 '13 at 16:51
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Not sure if this is what you are looking for, here is how it could be achieved using a join: BUT with assumptions..that your tables look like the sample I have used as a demo. If it's not, please share with us your table schema and sample data, with your expected results...

http://sqlfiddle.com/#!2/1e65c/2

SELECT A.ID, A.NAME, 
CASE WHEN B.AID = A.ID THEN COUNT(*) END AS SUM1,
CASE WHEN B.AID = A.ID THEN COUNT(*) END AS SUM1
FROM A
INNER JOIN B
ON A.ID = B.AID
INNER JOIN C
ON B.AID = C.AID
GROUP BY A.ID, A.NAME
;

SELECT A.ID, A.NAME,  COUNT(B.AID) AS SUM1,
COUNT(C.AID) AS SUM1
FROM A
INNER JOIN B
ON A.ID = B.AID
INNER JOIN C
ON B.AID = C.AID
GROUP BY A.ID, A.NAME
;

| ID | NAME | SUM1 |
--------------------
|  1 | John |    2 |
|  2 |  Tim |    4 |
|  3 | Jack |    2 |
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