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.

In this answer i asked how to get all subnodes and also having a reference to the root node. Now I realize that I need also the contrary:

I want to have all the nodes and all the parents.

so in this simple tree:

1 - 2 - 3

    L - 4 - 5

        L - 6

7 - 8

I would like to have

1 1;
2 2;
2 1;
3 3;
3 2;
3 1;
4 4;
4 2;
4 1;
5 5;
5 4;
5 2;
5 1;
6 6;
6 4;
6 2;
6 1;
7 7;
8 8;
8 7;

(the order is not important)

This was the query to obtain the opposite (from parent get all childs). I tried to play with it but couldn't find the solution. Could you suggest?

-- get all childs of all parents
WITH    q AS
        (
        SELECT  ID_CUSTOMER, ID_CUSTOMER AS root_customer
        FROM    CUSTOMERS c
        UNION ALL
        SELECT  c.ID_CUSTOMER, q.root_customer
        FROM    q
        JOIN    CUSTOMERS c 
        ON      c.ID_PARENT_CUSTOMER = q.ID_CUSTOMER
        )
SELECT  *
FROM    q
share|improve this question
add comment

2 Answers 2

up vote 1 down vote accepted

This query builds a transitive closure of the adjacency list: a list of all ancestor-descendant pairs.

Since it will return all descendants for every ancestor, the opposite is also true: for each descendant it will return all its ancestors.

So this very query does return all possible combinations, regardless of the traversal order: it does not matter whether you are connection parents to children or the other way around.

Let's test it:

WITH    customers (id_customer, id_parent_customer) AS
        (
        SELECT  *
        FROM    (
                VALUES  (1, NULL),
                        (2, 1),
                        (3, 2),
                        (4, 2),
                        (5, 4),
                        (6, 4),
                        (7, NULL),
                        (8, 7)
                ) t (a, b)
        ),
        q AS
        (
        SELECT  ID_CUSTOMER, ID_CUSTOMER AS root_customer
        FROM    CUSTOMERS c
        UNION ALL
        SELECT  c.ID_CUSTOMER, q.root_customer
        FROM    q
        JOIN    CUSTOMERS c 
        ON      c.ID_PARENT_CUSTOMER = q.ID_CUSTOMER
        )
SELECT  *
FROM    q
ORDER BY
        id_customer, root_customer DESC
share|improve this answer
    
Yes this is great. Thanks for the explanation, this is exactly what I asked for. –  user193655 Apr 19 '11 at 14:22
add comment
with q (
select id_customer, id_parent_customer from customers
union all
select id_customer, id_parent_customer from customers
join q on customers.id_parent_customer = q.id_customer
) select * from q
share|improve this answer
add comment

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.