Optimal Wireless Scheduling for Remote Sensing through Brownian Approximation

Da-Ren Guo, Ping-Chun Hsieh, I.-Hong Hou
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引用次数: 2

Abstract

This paper studies a remote sensing system where multiple wireless sensors generate possibly noisy information updates of various surveillance fields and delivering these updates to a control center over a wireless network. The control center needs a sufficient number of recently generated information updates to have an accurate estimate of the current system status, which is critical for the control center to make appropriate control decisions. The goal of this work is then to design the optimal policy for scheduling the transmissions of information updates. Through Brownian approximation, we demonstrate that the control center’s ability to make accurate real-time estimates depends on the averages and temporal variances of the delivery processes. We then formulate a constrained optimization problem to find the optimal means and variances. We also develop a simple online scheduling policy that employs the optimal means and variances to achieve the optimal system-wide performance. Simulation results show that our scheduling policy enjoys fast convergence speed and better performance when compared to other state-of-the-art policies.
基于布朗逼近的遥感无线调度优化
本文研究了一个遥感系统,其中多个无线传感器产生各种监控领域的可能有噪声的信息更新,并通过无线网络将这些更新传递给控制中心。控制中心需要足够数量的最近生成的信息更新来准确估计当前系统状态,这对于控制中心做出适当的控制决策至关重要。这项工作的目标是设计调度信息更新传输的最佳策略。通过布朗近似,我们证明了控制中心做出准确的实时估计的能力取决于交付过程的平均值和时间方差。然后,我们制定了一个约束优化问题,以找到最优均值和方差。我们还开发了一个简单的在线调度策略,该策略采用最优方法和方差来实现最佳的系统范围性能。仿真结果表明,与其他先进的调度策略相比,我们的调度策略收敛速度快,性能更好。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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