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Sampling and Remote Estimation for the Ornstein-Uhlenbeck Process through Queues: Age of Information and Beyond

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arxiv 1902.03552 v4 pith:NPDEXZAE submitted 2019-02-10 cs.IT math.IT

classification cs.ITmath.IT
keywords samplinginformationestimationprocesserroroptimalpolicyproblem
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The age of information, as a metric for evaluating information freshness, has received a lot of attention. Recently, an interesting connection between the age of information and remote estimation error was found in a sampling problem of Wiener processes: If the sampler has no knowledge of the signal being sampled, the optimal sampling strategy is to minimize the age of information; however, by exploiting causal knowledge of the signal values, it is possible to achieve a smaller estimation error. In this paper, we extend a previous study by investigating a problem of sampling a stationary Gauss-Markov process, namely the Ornstein-Uhlenbeck (OU) process. The optimal sampling problem is formulated as a constrained continuous-time Markov decision process (MDP) with an uncountable state space. We provide an exact solution to this MDP: The optimal sampling policy is a threshold policy on instantaneous estimation error and the threshold is found. Further, if the sampler has no knowledge of the OU process, the optimal sampling problem reduces to an MDP for minimizing a nonlinear age of information metric. The age-optimal sampling policy is a threshold policy on expected estimation error and the threshold is found. These results hold for (i) general service time distributions of the queueing server and (ii) sampling problems both with and without a sampling rate constraint. Numerical results are provided to compare different sampling policies.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Context-Aware Information Lapse for Timely Status Updates in Remote Control Systems

    cs.IT 2019-08 conditional novelty 6.0 of 10

    A context-aware timeliness metric multiplies estimation error by a context weight, and a Lyapunov scheduling policy that minimizes it cuts threshold violations and improves CartPole control versus Age-of-Information s...

  2. A Reinforcement Learning Framework for Optimizing Age-of-Information in RF-powered Communication Systems

    cs.IT 2019-08 conditional novelty 5.0 of 10

    For RF-powered multi-source monitoring systems, the age-optimal sampling policy is threshold-based in each process's age, and a deep Q-network can learn it efficiently.

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