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Localized fault-tolerant topology control in wireless ad hoc networks

机译:无线ad hoc网络中的本地化容错拓扑控制

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Topology control algorithms have been proposed to maintain network connectivity while improving energy efficiency and increasing network capacity. However, by reducing the number of links in the network, topology control algorithms actually decrease the degree of routing redundancy. As a result, the derived topology is more susceptible to node failures or departures. In this paper, we resolve this problem by enforcing k-vertex connectivity in the topology construction process. We propose a fully localized algorithm, fault-tolerant local spanning subgraph (FLSS), that can preserve k-vertex connectivity and is min-max optimal among all strictly localized algorithms (i.e., FLSS minimizes the maximum transmission power used in the network, among all strictly localized algorithms that preserve k-vertex connectivity). It can also be proved that FLSS outperforms two other existing localized algorithms in terms of reducing the transmission power. We also discuss how to relax several widely used assumptions in topology control to increase the practical utility of FLSS. Simulation results indicate that, compared with existing distributed/localized fault-tolerant topology control algorithms, FLSS not only has better power-efficiency, but also leads to higher network capacity. Moreover, FLSS is robust with respect to position estimation errors.
机译:已经提出了拓扑控制算法,以维持网络连接性,同时提高能效并增加网络容量。但是,通过减少网络中的链接数,拓扑控制算法实际上降低了路由冗余度。结果,派生的拓扑更容易受到节点故障或偏离的影响。在本文中,我们通过在拓扑构建过程中强制使用k-vertex连接来解决此问题。我们提出了一种完全本地化的算法,即容错局部生成子图(FLSS),该算法可以保留k顶点连通性,并且在所有严格本地化算法中均达到最小-最大最优值(即,FLSS可以最大程度地减少网络中使用的最大传输功率所有保留k顶点连通性的严格本地化算法)。还可以证明,就降低传输功率而言,FLSS优于其他两种现有的局部算法。我们还将讨论如何放松拓扑控制中广泛使用的假设,以提高FLSS的实用性。仿真结果表明,与现有的分布式/局部容错拓扑控制算法相比,FLSS不仅具有更高的功率效率,而且具有更高的网络容量。而且,FLSS在位置估计误差方面是鲁棒的。

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