neo4j - 在 Neo4j 密码查询中使用 apoc.map.fromPairs 的 NullPointer

Question

我正在使用下面的代码从特定节点（id（65））返回所有向内的 3 个边的节点，并在 apoc.map.fromPairs 过程的帮助下将结果格式化为 JSON Graph。如果没有距离起始节点 3 个边的节点，我会收到错误消息。

当我包含 OPTIONAL 语句时，似乎 apoc.map.fromPairs 过程针对用于模式缺失部分的“null”运行以下错误。

调用函数失败apoc.map.fromPairs：原因：java.lang.NullPointerException

任何建议我如何克服这个问题。我尝试编写 CASE 语句来检查地图中是否有任何键，但也无法使其正常工作。

*******************************************************************************************
// ** 
// ** Author: MOS
// ** Date: 02/03/2017
// ** Description: Returns all nodes and relationships that are within 3 inward
// ** hops of the requested node. The response is formatted as Graph JSON.
// ** 
// *******************************************************************************************
OPTIONAL MATCH (l0) <-[r1]- (l1) <-[r2]- (l2) <-[r3]- (l3)
WHERE ID(l0) = 65
WITH [
       {
            id: id(l0),
            label: labels(l0),
            type:"",
            metadata: apoc.map.fromPairs([key IN keys(l0) | [key, l0[key]]])  
        },
        {
            id: id(l1),
            label: labels(l1),
            type:"",
            metadata: apoc.map.fromPairs([key IN keys(l1) | [key, l1[key]]])
        },
        {
            id: id(l2),
            label: labels(l2),
            type:"",
            metadata: apoc.map.fromPairs([key IN keys(l2) | [key, l2[key]]])
        },
        {
            id: id(l3),
            label: labels(l3),
            type:"",
            metadata: apoc.map.fromPairs([key IN keys(l3) | [key, l3[key]]])
        }
] as nodes,
[
        { 
            id: id(r1),
            source: ID(startNode(r1)),
            relation: type(r1),
            target: ID(endNode(r1)), 
            directed: "true",
            metadata: apoc.map.fromPairs([key IN keys(r1) | [key, r1[key]]])
        },
        { 
            id: id(r2),
            source: ID(startNode(r2)),
            relation: type(r2),
            target: ID(endNode(r2)), 
            directed: "true",
            metadata: apoc.map.fromPairs([key IN keys(r2) | [key, r2[key]]])
        },
        { 
            id: id(r3),
            source: ID(startNode(r3)),
            relation: type(r3),
            target: ID(endNode(r3)), 
            directed: "true",
            metadata: apoc.map.fromPairs([key IN keys(r3) | [key, r3[key]]])
        }
] as edges
UNWIND nodes as node
UNWIND edges as edge
RETURN
{
 graph: 
    {
      type:"",
      label: "",    
      directed: "true",
      node: collect(distinct node) ,
      edges: collect(distinct edge),
      metadata:{
                  countNodes: count(distinct node),
                  countEdges: count(distinct edge)
               }
  }
}

非常感谢

Answer 1

您可以大大简化您的查询，也可以对其进行概括：

OPTIONAL MATCH path = (x)<-[*..3]-() WHERE ID(x) = 65

UNWIND nodes(path) as node
UNWIND rels(path) as rel

WITH collect(distinct node) as nodes,collect(distinct rel) as rels
// WITH apoc.coll.flatten(collect(nodes(path))) as nodes, apoc.coll.flatten(collect(relationships(path))) as rels
WITH apoc.coll.toSet([n in nodes WHERE n is not null 
            | { id: id(n),label: labels(n),type:"",metadata: properties(n)  } ]) as nodes,
     apoc.coll.toSet([r in rels WHERE r is not null 
            | { id: id(r),source: id(startNode(r)),relation: type(r),target: id(endNode(r)), directed: "true"  } ]) as rels

RETURN { graph: { type:"",label: "",directed: "true",nodes: nodes,edges: rels,
         metadata:{ countNodes: size(nodes),countEdges: size(rels) } } } as graph;

Answer 2

你为什么不只使用 MATCH 并且不会有缺失值，因为如果没有找到你什么都不做

MATCH (l0) <-[r1]- (l1) <-[r2]- (l2) <-[r3]- (l3)
WHERE ID(l0) = 65

如果您愿意，可以像这样进行可选的匹配和过滤

OPTIONAL MATCH (l0) <-[r1]- (l1) <-[r2]- (l2) <-[r3]- (l3)
WHERE ID(l0) = 65
WITH * where r3 is not null
Do sth