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In an OrientDb graph database, I'm trying to determine some properties for pairs of vertices.

To simplify it, i'm first trying to get some information about Vertex, Edge pairs:

select label, flatten(out.label) from V
0 item(s) found.

This returns 0 items because flatten will not work on a label property, only on set properties (like V.out).

Therefore, the only way to get the labels of the outgoing edges seems to be as follows:

select label from (select flatten(out) from V)

Unfortunately this loses the vertex label information, leaving me with half the pair.

A solution (for the inner query) would thus be to combine the flatten(out) with the vertex' label (to be able te refer to it from the outer query):

select label, flatten(out) from V

But the first column (label) is not returned. It returns the exact same result as:

select flatten(out) from V

An alternative i tried, is to use the TRAVERSE command:

select $current, label from (traverse out from V while $depth <= 1) where $depth = 1

But how then to refer to the pivot point in V? $current is the Edge, not the Vertex.

Is it possible to select a property in combination with a flatten call, if not, how to work around it?

An example case; for the following case:

V1 ---E1---> V2
   ---E2---> V3 --E3--> V2

I would like to have as result the following 3 rows;

V1, E1
V1, E2
V3, E3
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2 Answers 2

up vote 0 down vote accepted

The CYPHER syntax, as used in Neo4j finally rescued me.

start n=node(*) MATCH (n)-[left]->(n2)<-[right]-(n3) WHERE n.type? ='myType' AND left.line > right.line - 1 AND left.line < right.line + 1 RETURN n, left, n2, right, n3

The node n is the pivoting element, on wich an filter can be provided, just as on each other step within the path. For me it was important to select a further step depending on an other part of the path.

With OrientDb I couldnt find a way to relate the properties to each other easily.

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With OrientDB is easier: select in.label, label from E –  Lvca Feb 27 '13 at 10:57
    
For the Neo4j example, I would use an index to find nodes of type MyType, so you get start n=node:type_index(type="myType") MATCH (n)-[left]->(n2)<-[right]-(n3) WHERE left.line > right.line - 1 AND left.line < right.line + 1 RETURN n, left, n2, right, n3 –  Peter Neubauer Feb 27 '13 at 12:42

FLATTEN operator works alone, because get a field and let it to become the result. I don't understand what you want to do. Can you write the expected output please?

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I added an example to clearify my question –  gerben Feb 26 '13 at 11:56
    
Try this: select in.label, label from E –  Lvca Feb 27 '13 at 10:56

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