问题
I'm looking for the simplest way to recursively get all the parent elements from a database using the adjacency list / single table inheritance model (id, parent_id).
My select currently looks like this:
$sql = "SELECT
e.id,
TIME_FORMAT(e.start_time, '%H:%i') AS start_time,
$title AS title,
$description AS description,
$type AS type,
$place_name AS place_name,
p.parent_id AS place_parent_id,
p.city AS place_city,
p.country AS place_country
FROM event AS e
LEFT JOIN place AS p ON p.id = e.place_id
LEFT JOIN event_type AS et ON et.id = e.event_type_id
WHERE e.day_id = '$day_id'
AND e.private_flag = 0
ORDER BY start_time";
Each event is linked to a place, and each place can be a child of another place (upto about 5 levels deep)
Is this possible in a single select with mysql?
At the moment I am thinking it could be a separate function which loops through the returned $events array, adding place_parent_X elements as it goes, but am not sure how to implement this.
回答1:
It's possible to do it in MySQL, but you'll need to create a function and use in in a query.
See this entry in my blog for detailed explanations:
- Hierarchical queries in MySQL
Here are the function and the query:
CREATE FUNCTION hierarchy_connect_by_parent_eq_prior_id(value INT) RETURNS INT
NOT DETERMINISTIC
READS SQL DATA
BEGIN
DECLARE _id INT;
DECLARE _parent INT;
DECLARE _next INT;
DECLARE CONTINUE HANDLER FOR NOT FOUND SET @id = NULL;
SET _parent = @id;
SET _id = -1;
IF @id IS NULL THEN
RETURN NULL;
END IF;
LOOP
SELECT MIN(id)
INTO @id
FROM place
WHERE parent = _parent
AND id > _id;
IF @id IS NOT NULL OR _parent = @start_with THEN
SET @level = @level + 1;
RETURN @id;
END IF;
SET @level := @level - 1;
SELECT id, parent
INTO _id, _parent
FROM place
WHERE id = _parent;
END LOOP;
END
SELECT id, parent
FROM (
SELECT hierarchy_connect_by_parent_eq_prior_id(id) AS id, @level AS level
FROM (
SELECT @start_with := 0,
@id := @start_with,
@level := 0
) vars, t_hierarchy
WHERE @id IS NOT NULL
) ho
JOIN place hi
ON hi.id = ho.id
The latter query will select all descendants of a given node (which you should set in the @start_with variable)
To find all ancestors of a given node you can use a simple query without functions:
SELECT @r AS _id,
@r := (
SELECT parent
FROM place
WHERE id = _id
) AS parent
FROM (
SELECT @r := @node_id
) vars,
place
This article in my blog described this query in more detail:
- Sorting lists
For both these solutions to work in reasonable time, you need to have the indexes on both id and parent.
Make sure your id is defined as a PRIMARY KEY and you have a seconday index on parent.
回答2:
It's not possible with the standard parent-child DB design.
However, you could use a nested set approach and do it in one query, though that will take quite a bit of work to get to that point.
回答3:
Looks like the easiest is nested sets.
来源:https://stackoverflow.com/questions/1044090/what-is-the-simplest-way-to-get-all-the-parents-of-a-record-using-the-id-paren