14

I am currently using the following query to get some numbers:

SELECT gid, count(gid), (SELECT cou FROM size WHERE gid = infor.gid)       
FROM infor 
WHERE id==4325 
GROUP BY gid;

The output I am getting at my current stage is the following:

+----------+-----------------+---------------------------------------------------------------+
| gid      | count(gid)      | (SELECT gid FROM size WHERE gid=infor.gid)                    |
+----------+-----------------+---------------------------------------------------------------+
|       19 |               1 |                                                            19 | 
|       27 |               4 |                                                            27 | 
|      556 |               1 |                                                           556 | 
+----------+-----------------+---------------------------------------------------------------+

I am trying to calculate the weighted average i.e.

(1*19+4*27+1*556)/(19+27+556)

Is there a way to do this using a single query?

2 Answers 2

16

Use:

SELECT SUM(x.num * x.gid) / SUM(x.cou)
  FROM (SELECT i.gid,
               COUNT(i.gid) AS num,
               s.cou
          FROM infor i
     LEFT JOIN SIZE s ON s.gid = i.gid
         WHERE i.id = 4325
      GROUP BY i.gid) x
4
  • 1
    Awesome... Thank you very much for this. I was about to write a nested loop inside a procedure but then came across an article that said "If you require a nested loop, then you did not look at a JOIN" :)
    – Legend
    Oct 8, 2010 at 2:32
  • 1
    @legend: The advice is correct, but JOINs also risk inflating records if there's more than one child associated to the parent. If you want distinct rows from the parent, it is better to use a subquery (EXISTS would be my recommendation).
    – OMG Ponies
    Oct 8, 2010 at 2:35
  • I see. In my case, there's exactly one element but I will keep your advice in mind.
    – Legend
    Oct 8, 2010 at 2:45
  • 1
    @Legend: Excellent - the better you know your data, the better your queries will be.
    – OMG Ponies
    Oct 8, 2010 at 2:47
1

You could place your original query as a sub-query and SUM the records. I could not test this as I don't have the dataset you do, but it should work in theory ;)

SELECT SUM(gid)/SUM(weights) AS calculated_average FROM (
  SELECT gid, (COUNT(gid) * gid) AS weights
  FROM infor 
  WHERE id = 4325 
  GROUP BY gid);
2
  • +1 for this approach. Thank You. Just curious to know which one is more efficient. Will run to EXPLAIN and see.
    – Legend
    Oct 8, 2010 at 2:33
  • @Legend, no problem. You may in fact need the JOIN, but from the OP, I didn't see its necessity. Oct 8, 2010 at 2:37

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