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A Coral Reef Algorithm Based on Learning Automata for the Coverage Control Problem of Heterogeneous Directional Sensor Networks

机译:一种基于学习自动机的珊瑚礁算法用于异构方向传感器网络的覆盖控制问题

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摘要

Coverage control is one of the most fundamental issues in directional sensor networks. In this paper, the coverage optimization problem in a directional sensor network is formulated as a multi-objective optimization problem. It takes into account the coverage rate of the network, the number of working sensor nodes and the connectivity of the network. The coverage problem considered in this paper is characterized by the geographical irregularity of the sensed events and heterogeneity of the sensor nodes in terms of sensing radius, field of angle and communication radius. To solve this multi-objective problem, we introduce a learning automata-based coral reef algorithm for adaptive parameter selection and use a novel Tchebycheff decomposition method to decompose the multi-objective problem into a single-objective problem. Simulation results show the consistent superiority of the proposed algorithm over alternative approaches.
机译:覆盖控制是定向传感器网络中最基本的问题之一。本文将定向传感器网络的覆盖优化问题表述为多目标优化问题。它考虑了网络的覆盖率,工作的传感器节点的数量以及网络的连通性。本文所考虑的覆盖问题的特征在于,在感知半径,角度场和通信半径方面,感知事件的地理不规则性和传感器节点的异质性。为了解决这个多目标问题,我们引入了一种基于自动机的学习式珊瑚礁算法进行自适应参数选择,并使用一种新颖的Tchebycheff分解方法将多目标问题分解为一个单目标问题。仿真结果表明,该算法在替代方法上具有一致的优越性。

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