让我们假设我的苹果来自各个农场的树木。因此,树木结出苹果,农场有树木。我想要一个苹果列表,其中也包含对它们来自的农场的引用。
g = new TinkerGraph();
// apples
a1 = g.addVertex("a1");
a1.setProperty("type", "apple");
a2 = g.addVertex("a2");
a2.setProperty("type", "apple");
a3 = g.addVertex("a3");
a3.setProperty("type", "apple");
// trees
t1 = g.addVertex("t1");
t1.setProperty("type", "tree");
t2 = g.addVertex("t2");
t2.setProperty("type", "tree");
// farms
f1 = g.addVertex("f1");
f1.setProperty("type", "farm");
f1.setProperty("uid", "f1");
f2 = g.addVertex("f2");
f2.setProperty("type", "farm");
f2.setProperty("uid", "f2");
g.addEdge(t1, a1, "bears");
g.addEdge(t1, a2, "bears");
g.addEdge(t2, a3, "bears");
g.addEdge(f1, t1, "has");
g.addEdge(f2, t2, "has");
我想遍历和图表报告每个苹果,并在其中包含农场ID。我试过这样的事情:
g.V.has("type", "apple").copySplit(_().in("bears").in("has").map("uid"),
_().map()).fairMerge
我得到的输出是:
==>{uid=f1}
==>{type=apple}
==>{uid=f1}
==>{type=apple}
==>{uid=f2}
==>{type=apple}
我想要的是:
==>{uid=f1, type=apple}
==>{uid=f1, type=apple}
==>{uid=f2, type=apple}
答案 0 :(得分:4)
假设TinkerPop 2.x,您可以使用transform:
gremlin> g.V.has("type", "apple").transform{
gremlin> m = [:]
gremlin> m<<it.in("bears").in("has").map("uid").next();
gremlin> m<<it.map() }
==>{uid=f1, type=apple}
==>{uid=f1, type=apple}
==>{uid=f2, type=apple}
<<语法的行为类似于“{”的putAll()上的Map。
在TinkerPop 3.x(你应该使用它,除非你有充分的理由),粗略的近似是:
graph = TinkerGraph.open()
a1 = graph.addVertex(label, 'apple')
a2 = graph.addVertex(label, 'apple')
a3 = graph.addVertex(label, 'apple')
t1 = graph.addVertex(label, 'tree')
t2 = graph.addVertex(label, 'tree')
f1 = graph.addVertex(label, 'farm', 'uid', 'f1')
f2 = graph.addVertex(label, 'farm', 'uid', 'f2')
t1.addEdge('bears',a1)
t1.addEdge('bears',a2)
t2.addEdge('bears',a3)
f1.addEdge('has',t1)
f2.addEdge('has',t2)
使用:
gremlin> g = graph.traversal()
==>graphtraversalsource[tinkergraph[vertices:7 edges:5], standard]
gremlin> g.V().hasLabel("apple").as('type').in('bears').in('has').as('uid').select('type','uid').by(label()).by('uid')
==>[type:apple, uid:f1]
==>[type:apple, uid:f1]
==>[type:apple, uid:f2]