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I've created a user-defined step called otherV that starts from an edge (e) and takes a single Vertex argument (either e.inV or e.outV), and outputs the other vertex on that edge.

Gremlin.defineStep('otherV', [Edge, Pipe], {Vertex v -> _().bothV.filter{!v.equals(it)}})

I have g=TinkerGraphFactory.createTinkerGraph();

The otherV step gives correct results when I pass the argument vertex like this:

g.v(1).bothE('knows').otherV(g.v(1)).path{it.name}{it.label}
==>[marko, knows, vadas]
==>[marko, knows, josh]

But, when I first assign the argument vertex to a variable (say, x) in a sideEffect step, and then pass x as argument to my step, it fails with the ERROR No such property: x for class: groovysh_evaluate.

g.v(1).sideEffect{marko=it}.bothE('knows').otherV(marko).path{it.name}{it.label}
No such property: marko for class: groovysh_evaluate

What's it that I'm doing wrong?


Here is a simple illustration of how the otherV custom-step is supposed to work:

// g is the TinkerGraph
marko = g.v(1); vadas = g.v(2); 
edge = g.e(7); // e[7][1-knows->2]

gremlin> edge.otherV(marko).map
==>{name=vadas, age=27}

gremlin> edge.otherV(vadas).map
==>{name=marko, age=29}
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1 Answer 1

Looks like the issue is has to do with scoping of variables within closures. I've restructured your defineStep to hopefully capture what you are after:

gremlin> g = TinkerGraphFactory.createTinkerGraph()                                                                                     
==>tinkergraph[vertices:6 edges:6]
gremlin> Gremlin.defineStep('otherV', [Vertex, Pipe], {l -> _().sideEffect{x=it}.bothE(l).bothV.filter{!x.equals(it)}})                          
==>null
gremlin> g.v(1).otherV("knows").path{it.name}{it.label}
==>[marko, knows, vadas]
==>[marko, knows, josh]

This seems like a more succinct way to define your custom step as well.


Here's another approach to the otherV step that takes an arbitrary edge and outputs the other vertex:

gremlin> g = TinkerGraphFactory.createTinkerGraph()                                  
==>tinkergraph[vertices:6 edges:6]
gremlin> Gremlin.defineStep('otherV', [Edge, Pipe], {v -> l=[v];_().bothV.except(l).gather.transform{it.size()>1?null:it[0]}})
==>null
gremlin> g.e(11).otherV(g.v(3))
==>v[4]
gremlin> g.e(11).otherV(g.v(4))
==>v[3]
gremlin> g.e(11).otherV(g.v(5))
==>null

Someone will probably come along with a better way to do this, but basically I realized that it's not enough to simply evaluate if the vertex from bothV in the defineStep is the opposite of the one passed in because it's possible that it matches neither the head nor the tail. Basically, I used except() to get the opposing vertex to the one passed in, then gathered whatever didn't match into a list, then checked the list to see if the size is greater than one. If it is, then that means that the vertex passed in was neither in the head or tail of the edge (and I return null), otherwise the single vertex in the list is the opposing one.

share|improve this answer
    
Thanks, stephen. Yes, it doesn't fail, but, please notice that there are two extra paths, both [marko, knows, marko], in the result. However, when passing otherV(g.v(1)) only two correct paths are returned (as shown in the first case in my question.) –  user1030497 Dec 12 '12 at 12:15
    
Sorry about that. I suppose I was excited to see something other than an error and figured I had things right. I've re-worked my answer a lot. –  stephen mallette Dec 12 '12 at 14:07
    
Thanks, your modification to the custom step works fine with the particular example in my question. However, my idea for the otherV step was to start from any edge and, given one of its vertices, to return the other vertex, regardless of the edge-label. I've added a simple illustration at the end of my question. –  user1030497 Dec 12 '12 at 20:33
    
I revised my answer again to answer the second part of your question. –  stephen mallette Dec 13 '12 at 1:26

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