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Sequential Discrete Kalman Filter for Real-Time State Estimation in Power Distribution Systems: Theory and Implementation

机译:配电系统实时状态估计的顺序离散卡尔曼滤波器:理论与实现

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This paper demonstrates the feasibility of implementing real-time state estimators for active distribution networks in field-programmable gate arrays (FPGAs) by presenting an operational prototype. The prototype is based on a linear state estimator that uses synchrophasor measurements from phasor measurement units. The underlying algorithm is the sequential discrete Kalman filter (SDKF), an equivalent formulation of the DKF for the case of uncorrelated measurement noise. In this regard, this paper formally proves the equivalence of SDKF and the DKF, and highlights the suitability of the SDKF for an FPGA implementation by means of a computational complexity analysis. The developed prototype is validated using a case study adapted from the IEEE 34-node distribution test feeder.
机译:本文通过展示一个操作原型,演示了在现场可编程门阵列(FPGA)中为有源配电网络实现实时状态估计器的可行性。该原型基于线性状态估计器,该估计器使用相量测量单元中的同步相量测量值。基本算法是顺序离散卡尔曼滤波器(SDKF),对于不相关的测量噪声,它是DKF的等效公式。在这方面,本文正式证明了SDKF和DKF的等效性,并通过计算复杂度分析突出了SDKF在FPGA实现中的适用性。所开发的原型使用来自IEEE 34节点分布测试馈线的案例研究进行了验证。

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