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Optimal Sensor Placement for Parametric Model Identification of Electrical Networks, Part I: Open Loop Estimation

机译:电网参数模型识别的最佳传感器放置,第一部分:开环估计

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In this paper we present an algorithm for placing sensors optimally along the edges of a large network of electrical oscillators to identify a parametric model for the network using dynamic measurements of electrical signals such as magnitudes and phase angles of voltages and currents, corrupted with Gaussian noise. We pose the identification problem as estimation of four essential parameters for each edge, namely the real and imaginary components of the edge-weight (or, equivalently the resistance and reactance along the transmission line), and the inertias of the two machines connected by this edge. We then formulate the Cramer-Rao bounds for the estimates of these four unknown parameters, and show that the bounds are functions of the sensor locations. We finally state the condition for finding the optimal sensor location to achieve the tightest Cramer-Rao bound.
机译:在本文中,我们展示了一种沿着电气振荡器的大网络边缘最佳地放置传感器的算法,以使用电信号的动态测量诸如电压和电流的相位的动态测量来识别网络的参数模型,损坏高斯噪声。我们将识别问题构成为每个边缘的四个基本参数的估计,即边缘重量的真实和虚部(或等效地沿传输线的电阻和电抗),以及由此连接的两台机器的惯性边缘。然后,我们为这四个未知参数的估计制定了克拉梅-RAO界限,并表明边界是传感器位置的功能。我们终于说明了寻找最佳传感器位置的条件,以实现最紧密的爬行员绑定。

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