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首页> 外文期刊>Parallel and Distributed Systems, IEEE Transactions on >Directional Diagnosis for Wireless Sensor Networks
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Directional Diagnosis for Wireless Sensor Networks

机译:无线传感器网络的定向诊断

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摘要

Network diagnosis is crucial in managing a wireless sensor network (WSN) since many network-related faults, such as node and link failures, can easily happen. Diagnosis tools usually consist of two key components, information collection and root-cause deduction, while in most cases information collection process is independent with root-cause deduction. This results in either redundant information which might pose high communication burden on WSNs, or incomplete information for root-cause inference that leads false judgments. To address the issue, we propose DID, a directional diagnosis approach, in which the diagnosis information acquirement is guided by the fault inference process. Through several rounds of incremental information probing and fault reasoning, root causes of the network abnormalities with high credibility are deduced. We employ a node tracing scheme to reconstruct the topical topology of faulty regions and build the inference model accordingly. We implement the DID approach in our forest monitoring sensor network system, GreenOrbs. Experimental results validate the scalability and effectiveness of this design.
机译:网络诊断对于管理无线传感器网络(WSN)至关重要,因为很容易发生许多与网络相关的故障,例如节点和链接故障。诊断工具通常由两个关键组件组成,即信息收集和根本原因推断,而在大多数情况下,信息收集过程与根本原因推断是独立的。这将导致冗余信息(可能给WSN带来较高的通信负担),或者导致导致错误判断的根本原因信息不完整。为了解决该问题,我们提出了一种定向诊断方法DID,其中诊断信息的获取由故障推断过程指导。通过几轮增量信息探测和故障推理,推论出网络异常可信度高的根本原因。我们采用节点跟踪方案来重建故障区域的局部拓扑,并据此构建推理模型。我们在森林监测传感器网络系统GreenOrbs中实施DID方法。实验结果验证了该设计的可扩展性和有效性。

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