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I have the following graph structure:

(Building)<-[:PART_OF]-(Floor)
(Floor)<-[:PART_OF]-(Room)
(Room)<-[:INSIDE]-(Asset)

all nodes between a building and an asset are optional, for example, there might be another hierarchy between, or asset can be directly inside a building.

to get all assets in a specific building I use: MATCH (b:Building {id: buildingId})<-[*]-(a:Asset) RETURN a

how can I change this query to return also the PART_OF hierarchies along the paths?

the value of Room, Floor, ... is stored in a 'value' property.

eventually, I want to know for each returned asset, the value of Floor and Room and the labels..

I thought on starting from something like MATCH (b:Building {id: {buildingId}})<-[:PART_OF*0..]-(x)<-[:INSIDE]-(a:Asset) RETURN a, labels(x), x.value but it returns only the hierarchy which is directly connected to the asset

EDIT: match (b:Building)<-[:PART_OF*0..]-(x)<-[:PART_OF*0..]-()<-[:INSIDE]-(a:Asset) return a, labels(x), x.value seems to do the trick, does it look correct?

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In your EDIT, you start using the label "Machine". Is that supposed to be "Asset", or is your graph structure different than stated? –  cybersam Mar 26 '14 at 17:14
    
it's the same asset, edited and changed to Asset –  Gal Ben-Haim Mar 26 '14 at 17:44

2 Answers 2

Assuming you gave your complete graph structure in your question, the following might work for your needs (I assume that the building's 'id' property value is parameterized}:

OPTIONAL MATCH (b:Building {id: {id}})<-[:PART_OF]-(f:Floor)<-[:PART_OF]-(r:Room)<-[:INSIDE]-(a:Asset)
RETURN a, f.value AS fVal, r.value as rVal
UNION
OPTIONAL MATCH (b)<-[:PART_OF]-(f:Floor)<-[:INSIDE]-(a:Asset)
RETURN a, f.value AS fVal, null as rVal
UNION
OPTIONAL MATCH (b)<-[:INSIDE]-(a:Asset)
RETURN a, null AS fVal, null as rVal;

If an asset is not part of a room, then the rVal value will be null. If it is also not part of a floor, then the fVal value will be null.

Also, if there are no assets at all for the building (or any floor/room in the building), then you will still get a single row in the result, but all values will be null.

I did not bother to return any labels, since that should not be necessary with this approach.

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actually the floor / room hierarchies are dynamic, there can be more and there can be less, also with different names. that's why I wanted the labels –  Gal Ben-Haim Mar 27 '14 at 7:10
    
OK, then your EDIT solution should work. –  cybersam Mar 27 '14 at 16:13

You could try examining the paths returned between m:Machine and b:Building. Assuming you don't just want the shortest path(s) and assuming you're using Cypher 2.0 (which it looks like you are), try something like this (note the "p" binding for the path):

MATCH p = (m:Machine)-->(b:Building) RETURN nodes(p), rels(p)

(You can also use "--" instead of "-->" if direction isn't an issue.)

And if you need other info from what's returned, you can always use EXTRACT and other functions, e.g.

RETURN EXTRACT(n IN nodes(p) | p.value)

Hope this helps!

EDIT:

I may have misread the question. You may want to use "allShortestPaths" (around the (m:Machine)-->(b:Building) portion) OR use (m:Machine)-[*]->(b:Building) for variable depth paths (watch the performance, though; you may want to limit the depth) if my original answer doesn't give you what you want.

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is there an advantage of using this over my EDIT ? –  Gal Ben-Haim Mar 27 '14 at 7:11
    
Mostly ease-of-reading, requiring fewer bound nodes/relationships to be returned, and you'll get paths back which can be helpful (again, easier to read/work with instead of returning all kinds of bound nodes/relationships that you need to understand/track). My suggestion would be to try both on your data set and see which is quicker as well. –  BtySgtMajor Mar 28 '14 at 15:27

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