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State Estimation for the Individual and the Population in Mean Field Control With Application to Demand Dispatch

机译:平均场控制中个人和人口的状态估计及其在需求调度中的应用

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This paper concerns state estimation problems in a mean field control setting. In a finite population model, the goal is to estimate the joint distribution of the population state and the state of a typical individual. The observation equations are a noisy measurement of the population. The general results are applied to demand dispatch for regulation of the power grid, based on randomized local control algorithms. In prior work by the authors it is shown that local control can be designed so that the aggregate of loads behaves as a controllable resource, with accuracy matching or exceeding traditional sources of frequency regulation. The operational cost is nearly zero in many cases. The information exchange between grid and load is minimal, but it is assumed in the overall control architecture that the aggregate power consumption of loads is available to the grid operator. It is shown that the Kalman filter can be constructed to reduce these communication requirements, and to provide the grid operator with accurate estimates of the mean and variance of quality of service (QoS) for an individual load.
机译:本文涉及平均现场控制设置中的状态估计问题。在有限人口模型中,目标是估计人口状态与典型个体状态的联合分布。观察方程式是对人口的嘈杂测量。基于随机局部控制算法,将一般结果应用于需求调度以调节电网。作者在先前的工作中表明,可以设计局部控制,以使负载的总和充当可控制的资源,其精度可以匹配或超过传统的频率调节源。在许多情况下,运营成本几乎为零。电网与负荷之间的信息交换是最少的,但在总体控制体系结构中假定负荷的总功耗可供电网运营商使用。结果表明,可以构造卡尔曼滤波器来减少这些通信需求,并为电网运营商提供单个负载的服务质量(QoS)平均值和方差的准确估计。

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