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An Optimal Transmission Strategy for Kalman Filtering Over Packet Dropping Links With Imperfect Acknowledgements

机译:具有不完善确认的丢包链路上的卡尔曼滤波的最佳传输策略

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This paper presents a novel design methodology for optimal transmission policies at a smart sensor to remotely estimate the state of a stable linear stochastic dynamical system. The sensor makes measurements of the process and forms estimates of the state using a local Kalman filter. The sensor transmits quantized information over a packet dropping link to the remote receiver. The receiver sends packet receipt acknowledgments back to the sensor via an erroneous feedback communication channel which is itself packet dropping. The key novelty of this formulation is that the smart sensor decides, at each discrete time instant, whether to transmit a quantized version of either its local state estimate or its local innovation. The objective is to design optimal transmission policies in order to minimize a long-term average cost function as a convex combination of the receiver's expected estimation error covariance and the energy needed to transmit the packets. Under high-resolution quantization assumptions, the optimal transmission policy is obtained by the use of dynamic programming techniques. Using the concept of submodularity, the optimality of a threshold policy in the case of scalar systems with perfect packet receipt acknowledgments is proved. Suboptimal solutions and their structural results are also discussed. Numerical results are presented, illustrating the performance of the optimal and suboptimal transmission policies.
机译:本文提出了一种新颖的设计方法,用于在智能传感器上优化传输策略,以远程估计稳定的线性随机动力系统的状态。传感器对过程进行测量,并使用本地卡尔曼滤波器对状态进行估算。传感器通过丢包链路将量化信息发送到远程接收器。接收器通过错误的反馈通信通道将数据包接收确认发送回传感器,该错误的通信通道本身就是数据包丢失。该公式的关键新颖之处在于,智能传感器在每个离散时刻决定是传输其本地状态估计值还是其本地创新的量化版本。目的是设计最佳的传输策略,以最小化长期平均成本函数,作为接收器预期估计误差协方差和传输数据包所需能量的凸组合。在高分辨率量化假设下,可以通过使用动态编程技术来获得最佳传输策略。利用子模量的概念,证明了在具有完美包接收确认的标量系统的情况下阈值策略的最优性。还讨论了次优解及其结构结果。数值结果表明了最优和次优传输策略的性能。

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