Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free.

Although I've figured out several queries that almost do this, I can't quite get it perfectly and I'm getting frustrated. Here is the setup:

Table: Issue
| id | name | value |
+-------------------+
| 1  |  a   |   10  |
| 2  |  b   |   3   |
| 3  |  c   |   4   |
| 4  |  d   |   9   |

Table: Link
| source | dest |
+---------------+
|   1    |   2  |
|   1    |   3  |

The link table sets up a source/dest relationship between rows in the issue table. Yes, I know this is normalized terribly, but I did not create this schema even though I now have to write queries against it :(.

What I want is results that look like this:

| name | value |
+--------------+
|  a   |  17   |
|  d   |  9    |

The values in the results should be the sum of the values in the issue table when you aggregate together a source with all its dests along with the name of the source.

Some notes (1) A source->dest is a one->many relationship. (2) The best answer will not have any hardcoded id's or names in the query (meaning, it will be generalized for all setups like this). (3) This is in MySQL

Thank you and let me know if I should include any more information

share|improve this question
    
I don't understand the source/dest relationship... –  Joe Philllips Jan 25 '10 at 21:54
    
What version of MySQL do you have. The latest version support SubQuery and Stored procedures, but not all of them those, so it's important to know. –  David Brunelle Jan 25 '10 at 21:56
    
@d03boy : It means that a is related to b AND also c, so it's the sum of a, b and c. –  David Brunelle Jan 25 '10 at 21:57

4 Answers 4

Its fairly simple, but the stickler is the fact that A is not a destination of A yet it is included in the table. The robust solution would involve modifying the data to add

Table: Link
| source | dest |
+---------------+
|   1    |   1  |
|   1    |   2  |
|   1    |   3  |

Then a simple

SELECT a.name, SUM(d.value) FROM 
Issues as a
 JOIN Link as b on a.id=b.source
 JOIN Issues AS d on  b.dest=d.id;
 GROUP BY a.name;

If you can't modify the data.

SELECT a.name, SUM(d.value)+a.value FROM 
Issues as a
 JOIN Link as b on a.id=b.source
 JOIN Issues AS d on  b.dest=d.id;
 GROUP BY a.name,a.value;

MAY work.

share|improve this answer
SELECT S.name, S.value + SUM(D.value) as value
FROM Link AS L
  LEFT JOIN Issue AS S ON L.source = S.id
  LEFT JOIN Issue AS D ON L.dest = D.id
GROUP BY S.name
share|improve this answer
1  
I thought only fields can be selected that are in the GROUP BY clause? Shouldn't it be GROUP BY S.name or SELECT L.source? –  Felix Kling Jan 25 '10 at 21:57
    
This one is missing the value of source, if I understand the question... –  Peter Lang Jan 25 '10 at 22:00
    
@Felix - No you can group by without selecting it.. –  Tor Valamo Jan 25 '10 at 22:05
    
@Tor: Yes but you can only select what you group (except for aggregation). –  Felix Kling Jan 25 '10 at 22:09
    
@Tor Valamo: Oracle and SQL Server don't support that, and even on MySQL it's considered a bad practice –  Andomar Jan 25 '10 at 22:10

You could use a double join to find all linked rows, and add the sum to the value of the source row itself:

select      src.name, src.value + sum(dest.value)
from        Issue src
left join   Link l
on          l.source = src.id
left  join  Link dest
on          dest.id = l.dest
group by    src.name, src.value
share|improve this answer

This one should return the SUM of both source and dests, and only return items which are source.

SELECT s.name, COALESCE( SUM(d.value), 0 ) + s.value value
FROM Issue s
LEFT JOIN Link l ON ( l.source = s.id )
LEFT JOIN Issue d ON ( d.id = l.dest )
WHERE s.id NOT IN ( SELECT dest FROM Link )
GROUP BY s.name, s.value
ORDER BY s.name;
share|improve this answer
    
The results need to have items that arent a source, though :/ –  John Jan 25 '10 at 22:11
    
The edited version returns the rows as defined in your expected result. –  Peter Lang Jan 26 '10 at 10:34

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.