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Although one of the most common use cases for demonstrating the capabilities of a graph database, I cannot seem to find a good example or best practice for obtaining "friends of friends" with OrientDB SQL.

Lets assume a social network and try to model it with "user" vertices and "is_friend_with" edges.

Definition:

Vertex class user with properties uuid (custom unique id) and name

Edge class is_friend_with with property status which can be "pending" or "approved"

Users are connected to each other with unidirectional edges. The direction doesn't really matter; as long as status="approved", those two users are friends.

This is one solution I came up with:

select from (
    select expand($all) let
        $a = (select expand(outE('is_friend_with')[status='approved'].inV('user').outE('is_friend_with')[status='approved'].inV('user')) from (select from user where uuid = '95920a96a60c4d40a8f70bde98ae1a24')),
        $b = (select expand(outE('is_friend_with')[status='approved'].inV('user').inE('is_friend_with')[status='approved'].outV('user')) from (select from user where uuid = '95920a96a60c4d40a8f70bde98ae1a24')),
        $c = (select expand(inE('is_friend_with')[status='approved'].outV('user').inE('is_friend_with')[status='approved'].outV('user')) from (select from user where uuid = '95920a96a60c4d40a8f70bde98ae1a24')),
        $d = (select expand(inE('is_friend_with')[status='approved'].outV('user').outE('is_friend_with')[status='approved'].inV('user')) from (select from user where uuid = '95920a96a60c4d40a8f70bde98ae1a24')),
        $all = unionall($a, $b, $c, $d)
) where uuid <> '95920a96a60c4d40a8f70bde98ae1a24'

(The user with uuid='95920a96a60c4d40a8f70bde98ae1a24' is the starting point.)

But, I don't find it very elegant. Some of the problems that I can spot immediately are:

  • Repetition of select from user where uuid = '95920a96a60c4d40a8f70bde98ae1a24'. Unfortunately, I couldn't find a way to assign it to a variable and then use it in the "from" clause
  • I was forced to make all the combinations of incoming/outgoing edges/vertices instead of using both(), since I want to check every edge for status="approved"
  • This query also returns the direct friends, instead of friends of friends only

I tried to use traverse, but to no avail (again, didn't find a way how to check the edges for status="approved" while traversing).

Could you, please, propose some OSQL solution for this problem? Thanks in advance.

| improve this question | |
2
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There may be a nicer way to do it, but I think this gives you what you're looking for:

Setup:

create class User extends V
create class IsFriendsWith extends E
create property User.name string
create property User.uuid string
create property IsFriendsWith.status string

create vertex User set uuid = "1", name = "Bob"
create vertex User set uuid = "2", name = "Sally"
create vertex User set uuid = "3", name = "Eric"
create vertex User set uuid = "4", name = "Jenny"
create vertex User set uuid = "5", name = "Dennis"
create vertex User set uuid = "6", name = "Mary"
create vertex User set uuid = "7", name = "John"

create edge IsFriendsWith from (select from User where uuid = "1") to (select from User where uuid = "2") set status = "approved"
create edge IsFriendsWith from (select from User where uuid = "1") to (select from User where uuid = "3") set status = "pending"
create edge IsFriendsWith from (select from User where uuid = "2") to (select from User where uuid = "4") set status = "approved"
create edge IsFriendsWith from (select from User where uuid = "5") to (select from User where uuid = "2") set status = "pending"
create edge IsFriendsWith from (select from User where uuid = "3") to (select from User where uuid = "4") set status = "approved"
create edge IsFriendsWith from (select from User where uuid = "6") to (select from User where uuid = "1") set status = "approved"
create edge IsFriendsWith from (select from User where uuid = "6") to (select from User where uuid = "7") set status = "approved"

Query:

select from (
    select 
      expand(unionall(
        outE("IsFriendsWith")[status="approved"].inV(), 
        inE("IsFriendsWith")[status="approved"].outV()
      ))
      from (
        select 
            expand(unionall(
              outE("IsFriendsWith")[status="approved"].inV(), 
              inE("IsFriendsWith")[status="approved"].outV()
            ))
        from (
          select from User where uuid = "1"
        )
      )
  )
) where uuid <> "1"

Enrico's answer won't give you quite what you're after because it only takes into account edges in one direction when it needs to work both ways.

Edit: To exclude people that the user happens to be friends with already, use the following (note that this example assumes the User's RID is #26:0)

  select from (
      select 
        expand(unionall(
          outE("IsFriendsWith")[status="approved"].inV(), 
          inE("IsFriendsWith")[status="approved"].outV()
        ))
        from (
          select 
              expand(unionall(
                outE("IsFriendsWith")[status="approved"].inV(), 
                inE("IsFriendsWith")[status="approved"].outV()
              ))
          from #26:0          
        )
    )
  )
  where @rid <> #26:0 and @rid NOT IN (select both("IsFriendsWith") from #26:0)

Edit 2: Using variables instead.

 select from (
      select 
        expand(unionall(
          outE("IsFriendsWith")[status="approved"].inV(), 
          inE("IsFriendsWith")[status="approved"].outV()
        ))
        from (
          select 
              expand(unionall(
                outE("IsFriendsWith")[status="approved"].inV(), 
                inE("IsFriendsWith")[status="approved"].outV()
              ))
          from (
             select expand($u) let $u = first((select from User where uuid = "1"))
          )
        )
    )
  )
  where @rid <> $u and @rid NOT IN $u.both("IsFriendsWith")
| improve this answer | |
  • Thanks for your answer, @codemix. It works correctly and is much more elegant than my solution. However, the query returns back also the direct friends which we are not interested in (I tried this by executing create edge IsFriendsWith from (select from User where uuid = "2") to (select from User where uuid = "6") set status = "approved"). Do you maybe have an idea how to filter out the direct friends and return only the suggested friends (friends of friends)? – Bart Feb 24 '15 at 12:35
  • I didn't try it, but looks good now. Since I want to stay away from @rid, I think I would rewrite the query with select from User where uuid = "xxx". Although there would be repetitions, the index would be hit, so it won't be a problem. (Do you maybe know how to assign that select to a variable and reuse it in some from clause, if possible at all?). Thanks a lot, @codemix, I will accept this as an answer. – Bart Feb 24 '15 at 14:30
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This should be much simpler:

select expand(
  bothE('is_friend_with')[status = 'approved'].bothV()
  .bothE('is_friend_with')[status = 'approved'].bothV()
) from user where uuid = '95920a96a60c4d40a8f70bde98ae1a24'

With bothE() and then bothV() you get both in/out connections at edge/vertex level.

In order to exclude current user you could use:

select expand(
  bothE('is_friend_with')[status = 'approved'].bothV()
  .bothE('is_friend_with')[status = 'approved'].bothV()
  .remove( @this )
) from user where uuid = '95920a96a60c4d40a8f70bde98ae1a24'
| improve this answer | |
0
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Have you tried this?

select 
      expand(bothE('is_friend_with')[status = 'approved'].inV().bothE('is_friend_with')[status = 'approved'].inV()) 
from user where uuid = '95920a96a60c4d40a8f70bde98ae1a24'
| improve this answer | |
  • Thanks for the example. As @codemix pointed out, inV() is restricting the "traversal" in one direction only. – Bart Feb 24 '15 at 12:39

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