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Swarm intelligence based fuzzy routing protocol for clustered wireless sensor networks

机译:集群无线传感器网络中基于群智能的模糊路由协议

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Wireless sensor networks are rapidly evolving technological platforms with tremendous applications in several domains. Since sensor nodes are battery powered and may be used in dangerous or inaccessible environments, it is difficult to replace or recharge their power supplies. Clustering is an effective approach to achieve energy efficiency in wireless sensor networks. In clustering-based routing protocols, cluster heads are selected among all sensor nodes within the network, and then clusters are formed by simply assigning each node to the nearest cluster head. The main drawback is that there is no control on the distribution of cluster heads over the network. In addition to the problem of generating unbalanced clusters, almost all routing protocols are designed for a certain application scope, and could not cover all applications. In this paper, we propose a swarm intelligence based fuzzy routing protocol (named SIF), in order to overcome the mentioned drawbacks. In SIF, fuzzy c-means clustering algorithm is utilized to cluster all sensor nodes into balanced clusters, and then appropriate cluster heads are selected via Mamdani fuzzy inference system. This strategy not only guarantees to generate balanced clusters over the network, but also has the ability to determine the precise number of clusters. In fuzzy-based routing protocols in literature, the fuzzy rule base table is defined manually, which is not optimal for all applications. Since tuning the fuzzy rules very affects on the performance of the fuzzy system, we utilize a hybrid swarm intelligence algorithm based on firefly algorithm and simulated annealing to optimize the fuzzy rule base table of SIF. The fitness function can be defined according to the application specifications. Unlike other routing protocols which have been designed for a certain application scope, the main objective of our methodology is to prolong the network lifetime based on the application specifications. In other words, SIF not only prolongs the network lifetime, but also is applicable to any kind of application. Obtained simulation results over 10 heterogeneous networks show that SIF outperforms the existing clustering-based protocols in terms of generating balanced clusters and prolonging the network lifetime. (C) 2016 Elsevier Ltd. All rights reserved.
机译:无线传感器网络是快速发展的技术平台,在多个领域中都有广泛的应用。由于传感器节点由电池供电,并且可能在危险或不可访问的环境中使用,因此很难更换或为其电源充电。聚类是在无线传感器网络中实现能源效率的有效方法。在基于群集的路由协议中,从网络内的所有传感器节点中选择群集头,然后通过简单地将每个节点分配给最近的群集头来形成群集。主要缺点是无法控制网络上群集头的分布。除了生成不平衡群集的问题之外,几乎所有路由协议都是针对特定应用程序范围设计的,无法涵盖所有​​应用程序。在本文中,我们提出了一种基于群体智能的模糊路由协议(SIF),以克服上述缺点。在SIF中,利用模糊c均值聚类算法将所有传感器节点聚类为平衡簇,然后通过Mamdani模糊推理系统选择合适的簇头。该策略不仅可以保证在网络上生成平衡的群集,而且还可以确定群集的精确数量。在文献中基于模糊的路由协议中,模糊规则库表是手动定义的,并非对所有应用程序都是最佳的。由于调整模糊规则对模糊系统的性能有很大影响,因此我们采用了基于萤火虫算法和模拟退火的混合群智能算法来优化SIF的模糊规则库。适应度功能可以根据应用规范进行定义。与为特定应用范围设计的其他路由协议不同,我们方法的主要目标是根据应用规范来延长网络寿命。换句话说,SIF不仅可以延长网络寿命,而且适用于任何类型的应用程序。在10个异构网络上获得的仿真结果表明,SIF在生成平衡群集和延长网络寿命方面优于现有的基于群集的协议。 (C)2016 Elsevier Ltd.保留所有权利。

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