Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have a many-to-many relationship and I want to find all W's and their sum (frequency) for some A's that were created_at a certain date. What's the best way to do this?

The result should NOT be:

w.name | sum 
-------+------
 bar   |  2
 bar   |  5  
 baz   |  4
 bim   |  3
 foo   |  2
 foo   |  3  

The result should be:

w.name | sum 
-------+------
 bar   |  7  
 baz   |  4
 bim   |  3
 foo   |  5 

My tables:

Table A:

id  | title | author | created_at 
----+-------+--------+-------------
... |  ...  |  ...   | ...
11  |  abc  |  ccc   |  Thu, 5 Apr 2012 08:01:25 GMT
12  |  bcb  |  ddd   |  Thu, 5 Apr 2012 10:11:15 GMT
13  |  dfg  |  aaa   |  Fri, 6 Apr 2012 07:33:45 GMT

Table AW:

id  | aid | wid | freq
----+-----+-----+------
... | ... | ... | ...
201 | 11  |  2  |  2
202 | 11  |  3  |  4
203 | 11  | 17  |  2
204 | 12  | 17  |  3
205 | 12  | 66  |  1
206 | 12  | 12  |  2
207 | 12  | 24  |  5
208 | 12  |  7  |  3
209 | 13  |  2  |  5
210 | 13  | ... | ...

Table W:

id  | name  |  ...  
----+-------+--------
... |  ...  |  ...   
2   |  bar  |  ...   
3   |  baz  |  ...   
... |  ...  |  ...
7   |  bim  |  ...   
... |  ...  |  ...
17  |  foo  |
share|improve this question

2 Answers 2

For each W, the sum of frequencies with an A created today:

select  W.name
,       sum(AW.frequency)
from    A
join    AW
on      AW.aid = a.id
join    W
on      W.id = AW.bid
where   '2012-04-08' < A.created_at and A.created_at < '2012-04-09'
group by
        W.name
share|improve this answer
    
missing group by statement –  dash1e Apr 8 '12 at 8:34
SELECT w.name, SUM(aw.frequency)
FROM a INNER JOIN aw ON (a.id = aw.aid)
       INNER JOIN w ON (aw.wid = w.id)
WHERE a.created_at >= INITIAL_DATE and a.created_at <= END_DATE
GROUP BY w.name
share|improve this answer
    
Sorry, I wasn't clear enough in my problem description. If w.id can be found in another a.id it should be summed up. Please see my updates in the problem description. –  user1243091 Apr 8 '12 at 13:04

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.