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Learning Coverage Control of Mobile Sensing Agents in One-Dimensional Stochastic Environments

机译:一维随机环境中移动传感代理的学习范围控制

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This technical note presents learning coverage control of mobile sensing agents without a priori statistical information regarding random signal locations in a one-dimensional space. In particular, the proposed algorithm controls the usage probability of each agent in a network while simultaneously satisfying an overall network formation topology. The proposed control algorithm is rather direct, not involving any identification of an unknown probability density function associated to random signal locations. Our approach builds on diffeomorphic function learning with kernels. The almost sure convergence properties of the proposed control algorithm are analyzed using the ODE approach. Numerical simulations for different scenarios demonstrate the effectiveness of the proposed approach.
机译:该技术说明提出了移动感测代理的学习覆盖控制,而没有关于一维空间中随机信号位置的先验统计信息。特别地,所提出的算法控制网络中每个代理的使用概率,同时满足整个网络形成拓扑。所提出的控制算法相当直接,不涉及与随机信号位置相关的未知概率密度函数的任何识别。我们的方法基于带有核的微分函数学习。使用ODE方法分析了所提出的控制算法的几乎确定的收敛特性。针对不同情况的数值模拟证明了该方法的有效性。

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