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I have a single table, message, with the columns id (primary key), parent_id (foreign key to self), owner_id (creator user ID) and message (the actual message).

I'm now trying to retrieve all columns that are either owned by a specific owner_id or that have a parent_id pointing to another record which is owned by a specific owner_id.

I've successfully done this thus:

select * from message m1
left join message m2 on m1.id = m2.parent_id
where m1.owner_id = 1;

However, I get the result as this (m2 columns added on the right side):

id  parent_id   owner_id    message         id      parent_id   owner_id    message
------------------------------------------------------------------------------------------
1   NULL        1           First message   3       1           2           Third message
1   NULL        1           First message   4       1           2           Fourth message
2   NULL        1           Second message  NULL    NULL        NULL        NULL

... when I want it like this (a simple list of all unique matching columns, order is unimportant):

id  parent_id   owner_id    message
------------------------------------------
1   NULL        1           First message
3   1           2           Third message
4   1           2           Fourth message
2   NULL        1           Second message

I realize I could do this with a union, but I can't see any way of designing a union query without making it tremendously inefficient.

How would you solve such a problem?

Thanks.

EDIT:

Here's the table I'm working with:

create table message (
   id int(11) unsigned auto_increment primary key,
   parent_id int(11) unsigned default null,
   owner_id int(11) unsigned not null,
   message varchar(255) default null,

   index (parent_id),

   foreign key (parent_id) references message(id) on update cascade on delete cascade
) engine=innodb default charset=utf8;
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  • Please edit your question and show the data you are starting with. Nov 2, 2017 at 1:01

3 Answers 3

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Left join and a literal translation from the requirement will do.

select m.* from message m 
left join message p on m.parent_id=p.id
where m.owner_id=1 or p.owner_id=1
order by m.id

The above SQL selects messages whose owner id is 1 or whose parent's owner id is 1.

SQLFiddle Example

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  • Well, I don't care about the owner ID of p here, I want the owner_id of the record of p's parent_id to have owner_id 1. Nov 2, 2017 at 1:11
  • You mean m's parent_id? p is the parent. Nov 2, 2017 at 1:13
  • But that's what you want right? Either the owner id of the message itself is 1, or the owner id of the message's parent is 1. Take another look at the query and see the example in the link. Nov 2, 2017 at 1:14
  • Aah, yes. You are right. Sorry, I thought a bit backward. Thanks for your help! :) Nov 2, 2017 at 1:34
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If I understand correctly, you want any message where either the parent or the owner is 1. You then want to order this hierarchically. Because you are looking for only a single id, I think this does what you want:

select m.*
from message m
where 1 in (m.id, m.parent_id)
order by coalesce(m.parent_id, m.id), id;
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  • Well, the parent refers to the id in the same table, not the owner_id. A solution (but performance nightmare) using union would be: select * from message where owner_id = 1 union select * from message where parent_id in (select id from message where owner_id = 1) Nov 2, 2017 at 1:07
  • @HelgeTalvikSöderström . . . I think I figured that out between the where and the order by. I updated the answer. Nov 2, 2017 at 1:13
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You can go for the following query with a union:

select id from message where owner_id="USER" --all the records for which the owner is directly "USER"
union all -- to remove duplicates generated by the union if any
select m1.id from message m1, message m2 where m1.parent_id=m2.parent_id and m1.id != m2.id and m2.owner_id="USER"
-- all the records from m2 that share the same parent_id as m1 (but that are not the same id to avoid taking the m1 record itself)
-- for which m2.owner is the specified one

Good luck! Cheers

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