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I have a MySQL table looking like this:

> describe books;
+---------------+--------------+------+-----+---------+----------------+
| Field         | Type         | Null | Key | Default | Extra          |
+---------------+--------------+------+-----+---------+----------------+
| id            | int(11)      | NO   | PRI | NULL    | auto_increment |
| title         | varchar(255) | YES  |     | NULL    |                |
| after         | int(11)      | YES  |     | NULL    |                |
+---------------+--------------+------+-----+---------+----------------+

Now, I want to select all rows from the table, but as sorted linked list. after is an id of row it should be after in query result. Of course I could do that after query in my script using this table, but I'd like to know if there is a way to get the rows sorted in such way.

Example of data in table:

(1, "title #1", 0)
(2, "title #2", 3)
(3, "title #3", 1)
(4, "title #4", 2)

Expected result:

(1, "title #1", 0)
(3, "title #3", 1)
(2, "title #2", 3)
(4, "title #4", 2)
share|improve this question
    
I don't really get it. Do you want to order based on the 'after' field? Just do: Order by after –  Tim Mar 27 '12 at 9:47
    
I've added a 4th row to show why ORDER BY after won't work. I'm afraid this can't be easily done. –  Thirler Mar 27 '12 at 9:52
    
@Tim, no, of course not. It's list of books to be put chronologically, but it should be possible to add a book between #1 and #2 (say, it would be #3), so I could just iterate through the result and get them in this order: #1, #3, #2. –  Griwes Mar 27 '12 at 9:54
    
@Thirler, hmm, thanks, I guess it's a bit clearer now. –  Griwes Mar 27 '12 at 9:54

6 Answers 6

up vote 2 down vote accepted

If for all rows, your after values are smaller (or all larger) than your id values, the posted ORDER BY solution will do.

If not, you will need to traverse the after->id relation iteratively, and the original SQL does not support this at all. Modern SQLs do allow you to do this within a SELECT clause, e.g. Oracle has CONNECT BY, and recursive subqueries will do the trick as well. MySQL doesn't apparently have an equivalent.

An alternative is to do the iteration in the procedural language you can wrap around SQL queries, like in the article Skrol29 links to.

However, this iteration, regardless of how you perform it, will always be slow.

Another approach is to redesign the way in which you are representing this relationship in the database - see e.g. the nested set model.

share|improve this answer
SELECT * FROM my_table ORDER BY after;

does not work. The problem as described is like a queue of persons, where everyone just knows the single person directly ahead.

IMHO the best approach is to have a separate sorting table representing the queue:

> describe books_order;
+---------------+--------------+------+-----+---------+
| Field         | Type         | Null | Key | Default |
+---------------+--------------+------+-----+---------+
| order_no      | int(11)      | NO   |     |         |
| books_id      | int(11)      | NO   |     |         |
+---------------+--------------+------+-----+---------+

SELECT * FROM books WHERE id = (SELECT books_id FROM books_order ORDER BY order_no);
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you can't do this standard in mysql you could write something like

Select * from books b_root
   Left join books as b_child1 ON b_root.after = b_child1.id
      Left join books as b_child2 ON b_child1.after = b_child2.id
Where b_root.after = 0

You will get something like (1, "title #1", 0,3, "title #3", 1,2, "title #2", 3)

thats 3 deep or try linking it in a script or programming language

Example of a python script that solves this problem

books = [
{'id':1, 'title' :"title #1", 'after':0},
{'id':2, 'title' :"title #2", 'after':3},
{'id':3, 'title' :"title #3", 'after':1},
{'id':4, 'title' :"title #4", 'after':2},]

def recursive(book):
    global books

    for i in books:
        if book['id'] == i['after']:

            print i
            recursive(i)

for i in books:
        if i['after'] == 0:
            print i
            recursive(i)
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This is in fact a hierarchical query problem. Your need is in fact to sort the rows considering that each row has for parent the row with "child_row.after=parent_row.id".

If your hierarchy has only one level, it can be done with a simple query. If your hierarchy has a free number of level, then it is quite difficult the solve it since MySQL doesn't has hierarchical features.

But here is an article to solve the problem:

http://explainextended.com/2009/03/17/hierarchical-queries-in-mysql/

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Having this table:

create table list(id int primary key not null, previous int, description varchar(10));

You can obtain elements by:

select l2.* from (select @r as _parent, @r := (select id from list where previous = _parent) as id, @n := @n + 1 as n from (select @r := 0, @n := 0) vars, list) k, list l2 where k.id = l2.id order by n;
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This should give you the expected result.

SELECT * FROM books ORDER BY after;

Visit the following link for more details: Mysql Select Tutorial

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1  
This was the answer to the user first question which was edited and redesigned. –  Pedro Ferreira Mar 27 '12 at 10:01
    
just huge lol. I don't know if you know that, but everyone can check the revision history of my post and see that there was just a row added to the example. –  Griwes Mar 27 '12 at 10:05
    
(1, "title #1", 0) (3, "title #3", 1) (2, "title #2", 3) vs (1, "title #1", 0) (3, "title #3", 1) (2, "title #2", 3) (4, "title #4", 2) –  Pedro Ferreira Mar 27 '12 at 10:10
    
Last time, I am not going to go into flame war with you anywhere further: the essence of the question is the question, where the problem is explained, not the example, that wasn't exactly as it should've been, but you should first read the question, then example, not the other way around. –  Griwes Mar 27 '12 at 10:15

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