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In my graph each node has a name and graph is actually a tree, so there exists a /path/to/each/node. Here's the query I currently use to get the path:

MATCH p=(n:Node{id:4})-[:CHILD_OF*0..200]->(r:Root{treeName:"vt"})
RETURN reduce(path = "", node IN nodes(p) | node.name + "/" + path) as path

An actual query is somewhat heavier, but the behavior is the same. So, having a ("")<-("a")<-("b")<-("c")<-("d") path I will get /a/b/c/d/. I don't mind trimming the last /, but I'm really worried about the order of the nodes iterator returned by nodes(p).

So, my question is mainly targeting neo4j team - are there any guarantees as to the order? Would it be better is I just returned Path and then manually extracted each property? I'm using Cypher with an embedded neo4j distribution, so that won't be a problem.

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My expectation is that nodes iterates in order through the path, returning n as first node and r as last one. If you observe different behaviour I'd consider this being a bug. –  Stefan Armbruster Jul 16 '14 at 7:25
    
@StefanArmbruster, yes, you are right, I'm able to get them in any order I like by varying patterns (i.e. (p)->(n) vs. (n)<-(p)), but since I could'n find any documented guarantee, I thought it might be worth to clarify the matter. –  cdshines Jul 16 '14 at 7:46
    
The direction of the relationship won't influence the order of nodes. The nodes() ordering should reflect the nodes in the same order as you specify them in your path specification. –  Stefan Armbruster Jul 16 '14 at 7:49
    
@StefanArmbruster, well, it does: console.neo4j.org/?id=4otd3r –  cdshines Jul 16 '14 at 8:03
    
@StefanArmbruster, ah, I see. I think we both meant the same. –  cdshines Jul 16 '14 at 8:03

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