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Fault-tolerant relay deployment for k node-disjoint paths in wireless sensor networks

机译:无线传感器网络中k个节点不相交路径的容错中继部署

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Ensuring that wireless sensor networks (WSNs) are robust to failures requires that the physical network topology will offer alternative routes to the sinks. This requires sensor network deployments to be planned with an objective of ensuring some measure of robustness in the topology, so that when failures occur that routing protocols can continue to offer reliable delivery. Our contribution is a solution that enables fault-tolerant WSN deployment planning by judicious use of a minimum number of additional relay nodes. A WSN is robust if at least one route to a sink is available for each remaining sensor node after the failure of up to k-1 nodes. In this paper, we define the problem for increasing WSN reliability by deploying a number of additional relay nodes to ensure that each sensor node in the initial design has k node-disjoint paths to the sinks. We present GRASP-ARP, a centralised offline algorithm to be run during the initial topology design to solve this problem. We have implemented this algorithm and demonstrated in simulation that it improves the efficiency of relay node placement for k node-disjoint paths compared to the most closely related published algorithms.
机译:要确保无线传感器网络(WSN)对故障具有鲁棒性,就要求物理网络拓扑结构将提供通往接收器的替代路由。这要求规划传感器网络部署,以确保某种程度的拓扑结构健壮性,以便在发生故障时路由协议可以继续提供可靠的交付。我们的贡献是通过明智地使用最少数量的附加中继节点来实现容错WSN部署计划的解决方案。如果在多达k-1个节点发生故障后,每个其余的传感器节点都至少有一条通往接收器的路由可用,则WSN会很健壮。在本文中,我们通过部署多个其他中继节点来确保增加WSN可靠性的问题,以确保初始设计中的每个传感器节点都具有k个到汇点的节点不相交路径。我们提出GRASP-ARP,这是一种在初始拓扑设计期间运行的集中式离线算法,可以解决此问题。我们已经实现了该算法,并在仿真中进行了演示,与最紧密相关的已发布算法相比,它提高了k个节点不相交路径的中继节点放置效率。

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