A Fuzzy Knowledge Based Fault Tolerance Mechanism for Wireless Sensor Networks

S. Acharya, C. Tripathy
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引用次数: 24

Abstract

Wireless Sensor Networks (WSNs) are the focus of considerable research for different applications. This paper proposes a Fuzzy Knowledge based Artificial Neural Network Routing (ANNR) fault tolerance mechanism for WSNs. The proposed method uses an exponential Bi-directional Associative Memory (eBAM) for the encoding and decoding of data packets and application of Intelligent Sleeping Mechanism (ISM) to conserve energy. A combination of fuzzy rules is used to identify the faulty nodes in the network. The Cluster Head (CH) acts as the data aggregator in the network. It applies the fuzzy knowledge based Node Appraisal Technique (NAT) in order to identify the faulty nodes in the network. The performance of the proposed ANNR is compared with that of Low-Energy Adaptive Clustering Hierarchy (LEACH), Dual Homed Routing (DHR) and Informer Homed Routing (IHR) through simulation.
基于模糊知识的无线传感器网络容错机制
无线传感器网络(WSNs)是各种应用领域的研究热点。提出了一种基于模糊知识的无线传感器网络路由(ANNR)容错机制。该方法采用指数型双向联想存储器(eBAM)对数据包进行编码和解码,并采用智能睡眠机制(ISM)来节约能量。使用模糊规则组合来识别网络中的故障节点。CH (Cluster Head)是网络中的数据聚合器。它采用基于模糊知识的节点评估技术(NAT)来识别网络中的故障节点。通过仿真,将所提ANNR的性能与低能量自适应聚类层次(LEACH)、双归属路由(DHR)和告密者归属路由(IHR)进行了比较。
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