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A Novel Meta-heuristic Differential Evolution Algorithm for Optimal Target Coverage in Wireless Sensor Networks

机译:一种新的无线传感器网络最优目标覆盖的新型差异差分算法

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A wireless sensor network (WSN) faces various issues one of which includes coverage of the given set of targets under limited energy. There is a need to monitor different targets in the sensor field for effective information transmission to the base station from each sensor node which covers the target. The problem of maximizing the network lifetime while satisfying the coverage and energy parameters or connectivity constraints is known as the Target Coverage Problem in WSN. As the sensor nodes are battery driven and have limited energy, the primary challenge is to maximize the coverage in order to prolong network lifetime. The problem of assigning a subset of sensors, such that all targets are monitored is proved to be NP-complete. The Objective of this paper is to assign an optimal number of sensors to targets to extend the lifetime of the network. In the last few decades, many meta-heuristic algorithms have been proposed to solve clustering problems in WSN. In this paper, we have introduced a novel meta-heuristic based differential evolution algorithm to solve target coverage in WSN. The simulation result shows that the proposed meta-heuristic method outperforms the random assignment technique.
机译:一种无线传感器网络(WSN)面对各种问题其中之一包括在有限的能量给定组目标覆盖范围。有必要监测在传感器场不同的靶标进行有效的信息传送给从覆盖所述靶每个传感器节点基站。同时满足覆盖率和能量参数或连接限制最大化网络生命周期的问题被称为目标覆盖问题在WSN。当传感器节点是电池驱动的,并且具有有限的能量,的主要挑战是在以最大化覆盖范围,以延长网络的寿命。分配传感器的子集的问题,使得所有目标被监视被证明是NP完全问题。本文的目的是分配传感器的最优数量的目标,以扩展网络的寿命。在过去的几十年中,许多启发式算法被提出来解决无线传感器网络聚类问题。在本文中,我们引入了一个新的启发式基于差分进化算法来解决目标覆盖WSN。仿真结果表明,所提出的启发式方法优于随机分配技术。

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