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A Target Coverage Scheduling Scheme Based on Genetic Algorithms in Directional Sensor Networks

机译:定向传感器网络中基于遗传算法的目标覆盖计划

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摘要

As a promising tool for monitoring the physical world, directional sensor networks (DSNs) consisting of a large number of directional sensors are attracting increasing attention. As directional sensors in DSNs have limited battery power and restricted angles of sensing range, maximizing the network lifetime while monitoring all the targets in a given area remains a challenge. A major technique to conserve the energy of directional sensors is to use a node wake-up scheduling protocol by which some sensors remain active to provide sensing services, while the others are inactive to conserve their energy. In this paper, we first address a Maximum Set Covers for DSNs (MSCD) problem, which is known to be NP-complete, and present a greedy algorithm-based target coverage scheduling scheme that can solve this problem by heuristics. This scheme is used as a baseline for comparison. We then propose a target coverage scheduling scheme based on a genetic algorithm that can find the optimal cover sets to extend the network lifetime while monitoring all targets by the evolutionary global search technique. To verify and evaluate these schemes, we conducted simulations and showed that the schemes can contribute to extending the network lifetime. Simulation results indicated that the genetic algorithm-based scheduling scheme had better performance than the greedy algorithm-based scheme in terms of maximizing network lifetime.
机译:作为监视物理世界的有前途的工具,由大量定向传感器组成的定向传感器网络(DSN)引起了越来越多的关注。由于DSN中的方向传感器具有有限的电池电量和有限的感测范围角度,因此在监视给定区域内的所有目标的同时最大化网络寿命仍然是一个挑战。节省定向传感器能量的一项主要技术是使用节点唤醒调度协议,其中一些传感器保持活动状态以提供传感服务,而其他传感器保持活动状态以节省能量。在本文中,我们首先解决DSN的最大集覆盖(MSCD)问题(已知是NP完全的),然后提出一种基于贪婪算法的目标覆盖调度方案,可以通过启发式方法解决此问题。该方案用作比较的基准。然后,我们提出了一种基于遗传算法的目标覆盖计划,该计划可以找到最佳覆盖集以延长网络寿命,同时通过进化全局搜索技术监视所有目标。为了验证和评估这些方案,我们进行了仿真,结果表明,这些方案可以有助于延长网络寿命。仿真结果表明,基于遗传算法的调度方案在最大化网络寿命方面比基于贪婪算法的调度方案具有更好的性能。

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