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Real-time prediction of power system frequency in FNET: A state space approach

机译:FNET中电力系统频率的实时预测:状态空间方法

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This paper proposes a novel approach to predict power frequency by applying a state-space model to describe the time-varying nature of power systems. It introduces the Expectation maximization (EM) and prediction error minimization (PEM) algorithms to dynamically estimate the parameters of the model. In this paper, we discuss how the proposed models can be used to ensure the efficiency and reliability of power systems in Frequency Monitoring Network (FNET), if serious frequency fluctuation or measurement failure occur at some nodes; this is achieved without requiring the exact model of complex power systems. Our approach leads to an easy online implementation with high precision and short response time that are key to effective frequency control. We randomly pick a set of frequency data for one power station in FNET and use it to estimate and predict the power frequency based on past measurements. Several computer simulations are provided to evaluate the method. Numerical results showed that the proposed technique could achieve good performance regarding the frequency monitoring with very limited measurement input information.
机译:本文提出了一种通过应用状态空间模型来描述电力系统时变性来预测功率频率的新方法。它介绍了预期最大化(EM)和预测误差最小化(PEM)算法,以动态估计模型的参数。在本文中,我们讨论了如何使用所提出的模型来确保频率监测网络(FNET)中电力系统的效率和可靠性,如果某些节点发生严重频率波动或测量失败;这是实现的,而无需需要复杂电力系统的确切模型。我们的方法能够轻松在线实现,具有高精度和短响应时间,这些时间是有效频率控制的关键。我们随机选择FENT中的一个电站的一组频率数据,并使用它来估计和预测基于过去测量的功率频率。提供了几种计算机模拟以评估方法。数值结果表明,所提出的技术可以实现关于具有非常有限的测量输入信息的频率监测的良好性能。

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