0

我有以下 Mysql 数据库架构:

User(Id, FirstName, LastName, NickName, Etc.)

Request(SenderId, ReceiverId)

Friendship(Id1, Id2)

我认为友谊是一种无向关系,这意味着对于每个友谊,我将它两次​​插入到友谊表中。(如果这不是一个好主意,请告诉我)。

我要检索的是一个用户列表,这些用户不是特定用户的朋友(让我将他命名为 UserX),也没有当前的请求正在进行中。

我最初的试验导致我这样做:

SELECT User.Id, User.NickName, User.Picture FROM User 
LEFT JOIN Friendship A ON User.Id = A.Id1
LEFT JOIN Friendship B ON User.Id = B.Id2 
LEFT JOIN Request C ON User.Id = C.Sender
LEFT JOIN Request D ON User.Id = D.Reciever 
WHERE User.Id <> ?

而且,占位符当然是 UserX 的 ID。

这不起作用,因为尽管与 UserX 有友谊或请求的元组被消除了,但朋友仍然出现,因为他们与其他用户有友谊!

提前致谢。

4

3 回答 3

1

使用左连接到联合列表:

select *
from User u1
left join 
    (
    select ID2 as id
    from Friendships
    where ID1 = 'UserX'
    union all
    select ID1
    from Friendships
    where ID2 = 'UserX'
    union all
    select Sender
    from Request 
    where Receiver = 'UserX'
    union all
    select Receiver
    from Request
    where Sender = 'UserX'
    ) ux
on ux.id = u1.id
where ux.id is null
and ux.id <> 'UserX'
于 2019-05-22T13:12:21.403 回答
1

如果您想要一个有效的解决方案,请not exists多次使用:

select u.*
from user u
where not exists (select 1 from friendship f where f.id1 = u.id and f.id2 = ?) and
      not exists (select 1 from friendship f where f.id2 = u.id and f.id1 = ?) and
      not exists (select 1 from request r where r.SenderId = u.id and r.ReceiverId = ?) and
      not exists (select 1 from request r where r.ReceiverId = u.id and r.SenderId = ?);

特别是,这可以利用以下索引:

  • friendship(id1, id2)
  • friendship(id2, id1)
  • request(SenderId, ReceiverId)
  • request(ReceiverId, SenderId)

这应该比一起子查询的解决方案具有更好的性能union

于 2019-05-22T14:35:50.317 回答
0

如果您从表“请求”和“友谊”中收集所有不同的 ID,然后从上述列表中不可用的用户 ID 中选择记录,该怎么办。

SELECT Id, FirstName, LastName, NickName
FROM User
WHERE ID NOT IN
(
    SELECT DSTINCT Id1 ID FROM Friendship
    UNION
    SELECT DSTINCT Id2 FROM Friendship
    UNION
    SELECT DSTINCT SenderId FROM Request
    UNION
    SELECT DSTINCT ReceiverId FROM Request
)A
于 2019-05-22T13:20:19.997 回答