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A Tuned fuzzy logic relocation model in WSNs using particle swarm optimization

机译:基于粒子群算法的无线传感器网络调优模糊逻辑重定位模型

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摘要

In harsh and hostile environments, swift relocation of currently deployed nodes in the absence of centralized paradigm is a challenging issue in WSNs. Reducing the burden of centralized relocation paradigms by the distributed movement models comes at the price of unpleasant oscillations and excessive movements due to nodes' local and limited interactions. If the nodes' careless movements in the distributed relocation models are not properly addressed, their power will be exhausted. Therefore, in order to exert proper amount of virtual radial/angular push/pull forces among the nodes, a fuzzy logic relocation model is proposed and by considering linear combination of the presented performance metric(s)(i.e. coverage, uniformity, and average movement), its parameters are locally and globally tuned by particle swarm optimization(PSO). In order to tune fuzzy parameters locally and globally, PSO benefits respectively from nodes' neighbours within different ranges and all the given deployed area. Performance of locally and globally tuned fuzzy relocation models is compared with one another in addition to the distributed self-spreading algorithm (DSSA). It is shown that by applying PSO to the linear combinations of desired metric(s) to obtain tuned fuzzy parameters, the relocation model outperforms and/or is comparable to DSSA in one or more performance metric(s).
机译:在恶劣和敌对的环境中,在缺乏集中式范式的情况下,快速部署当前部署的节点是WSN中一个具有挑战性的问题。通过分布式运动模型来减轻集中式重定位范式的负担,是由于节点的局部和有限的交互作用而产生的令人不愉快的振荡和过度运动的代价。如果未正确解决分布式重定位模型中节点的粗心移动,则将耗尽其能力。因此,为了在节点之间施加适量的虚拟径向/角推/拉力,提出了一种模糊逻辑重定位模型,并考虑了所提出的性能指标(即覆盖范围,均匀性和平均运动)的线性组合),其参数通过粒子群优化(PSO)在本地和全局进行调整。为了局部和全局地调整模糊参数,PSO分别受益于不同范围和所有给定部署区域内节点的邻居。除了分布式自扩展算法(DSSA)外,还对本地和全局调整的模糊重定位模型的性能进行了比较。结果表明,通过将PSO应用于所需度量的线性组合以获得调整后的模糊参数,在一个或多个性能度量中,重定位模型的性能优于DSSA和/或与DSSA相当。

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