边缘信息枢纽:为 6G 闭环控制协调卫星、无人机、MEC、传感和通信

Chengleyang Lei;Wei Feng;Peng Wei;Yunfei Chen;Ning Ge;Shiwen Mao
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摘要

越来越多的野外机器人将用于偏远地区或灾后地区的关键任务。由于个体能力有限,这些机器人通常需要一个边缘信息中心(EIH),不仅具有通信功能,还具有传感和计算功能。这种EIH可以部署在灵活调度的无人机(UAV)上。与传统的空中基站或移动边缘计算(MEC)不同,EIH将通过传感-通信-计算-控制($\textbf {SC}^{3}$)闭环编排来指导机器人的操作。本文旨在优化多个$\textbf {SC}^{3}$回路的闭环控制性能,同时考虑卫星回程速率、计算能力和星载能量的约束。具体而言,采用线性二次型调节器(LQR)控制成本来衡量闭环效用,并提出一个和LQR成本最小化问题,共同优化传感器数据的分割以及通信和计算资源的分配。首先推导出传感器数据的最优分割比,然后将问题转化为更易于处理的形式。最后提出了一种迭代算法来提供次优解。仿真结果证明了该算法的优越性。我们还揭示了$\textbf {SC}^{3}$参数对闭环控制的影响,强调了更系统的理解。
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Edge Information Hub: Orchestrating Satellites, UAVs, MEC, Sensing and Communications for 6G Closed-Loop Controls
An increasing number of field robots would be used for mission-critical tasks in remote or post-disaster areas. Due to the limited individual abilities, these robots usually require an edge information hub (EIH), with not only communication but also sensing and computing functions. Such EIH could be deployed on a flexibly-dispatched unmanned aerial vehicle (UAV). Different from traditional aerial base stations or mobile edge computing (MEC), the EIH would direct the operations of robots via sensing-communication-computing-control ( $\textbf {SC}^{3}$ ) closed-loop orchestration. This paper aims to optimize the closed-loop control performance of multiple $\textbf {SC}^{3}$ loops, with constraints on satellite-backhaul rate, computing capability, and on-board energy. Specifically, the linear quadratic regulator (LQR) control cost is used to measure the closed-loop utility, and a sum LQR cost minimization problem is formulated to jointly optimize the splitting of sensor data and allocation of communication and computing resources. We first derive the optimal splitting ratio of sensor data, and then recast the problem to a more tractable form. An iterative algorithm is finally proposed to provide a sub-optimal solution. Simulation results demonstrate the superiority of the proposed algorithm. We also uncover the influence of $\textbf {SC}^{3}$ parameters on closed-loop controls, highlighting more systematic understanding.
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Table of Contents IEEE Communications Society Information Corrections to “Coverage Rate Analysis for Integrated Sensing and Communication Networks” IEEE Journal on Selected Areas in Communications Publication Information Guest Editorial: Integrated Ground-Air-Space Wireless Networks for 6G Mobile—Part II
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