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An Effective Cuckoo Search Algorithm for Node Localization in Wireless Sensor Network

机译:一种有效的布谷鸟搜索算法用于无线传感器网络中的节点定位

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摘要

Localization is an essential requirement in the increasing prevalence of wireless sensor network (WSN) applications. Reducing the computational complexity, communication overhead in WSN localization is of paramount importance in order to prolong the lifetime of the energy-limited sensor nodes and improve localization performance. This paper proposes an effective Cuckoo Search (CS) algorithm for node localization. Based on the modification of step size, this approach enables the population to approach global optimal solution rapidly, and the fitness of each solution is employed to build mutation probability for avoiding local convergence. Further, the approach restricts the population in the certain range so that it can prevent the energy consumption caused by insignificant search. Extensive experiments were conducted to study the effects of parameters like anchor density, node density and communication range on the proposed algorithm with respect to average localization error and localization success ratio. In addition, a comparative study was conducted to realize the same localization task using the same network deployment. Experimental results prove that the proposed CS algorithm can not only increase convergence rate but also reduce average localization error compared with standard CS algorithm and Particle Swarm Optimization (PSO) algorithm.
机译:本地化是无线传感器网络(WSN)应用日益普及的基本要求。减少计算复杂性,WSN定位中的通信开销至关重要,以延长能量受限的传感器节点的寿命并提高定位性能。提出了一种有效的布谷鸟搜索算法,用于节点定位。基于步长的修改,该方法使总体能够快速接近全局最优解,并且采用每种解的适合度来建立避免局部收敛的突变概率。此外,该方法将人口限制在一定范围内,从而可以防止因搜索不合理而导致的能耗。进行了广泛的实验,研究了锚密度,节点密度和通信范围等参数对算法的平均定位误差和定位成功率的影响。此外,进行了一项比较研究,以使用相同的网络部署来实现相同的本地化任务。实验结果表明,与标准CS算法和粒子群优化算法相比,所提出的CS算法不仅可以提高收敛速度,而且可以减小平均定位误差。

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