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Learning topology of distribution grids using only terminal node measurements

机译:仅使用终端节点测量来学习配电网拓扑

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Distribution grids include medium and low voltage lines that are involved in the delivery of electricity from substation to end-users/loads. A distribution grid is operated in a radial/tree-like structure, determined by switching on or off lines from an underling loopy graph. Due to the presence of limited real-time measurements, the critical problem of fast estimation of the radial grid structure is not straightforward. This paper presents a new learning algorithm that uses measurements only at the terminal or leaf nodes in the distribution grid to estimate its radial structure. The algorithm is based on results involving voltages of node triplets that arise due to the radial structure. The polynomial computational complexity of the algorithm is presented along with a detailed analysis of its working. The most significant contribution of the approach is that it is able to learn the structure in certain cases where available measurements are confined to only half of the nodes. This represents learning under minimum permissible observability. Performance of the proposed approach in learning structure is demonstrated by experiments on test radial distribution grids.
机译:配电网包括中压和低压线路,这些线路涉及从变电站向最终用户/负载的电力输送。配电网以放射状/树状结构运行,该结构通过打开或关闭来自下层回路图的线来确定。由于实时测量的局限性,快速估算径向网格结构的关键问题并不简单。本文提出了一种新的学习算法,该算法仅在配电网的终端节点或叶节点处使用测量值来估计其径向结构。该算法基于涉及由于径向结构而产生的节点三胞胎电压的结果。给出了算法的多项式计算复杂度以及对其工作的详细分析。该方法的最重要的贡献是,在某些情况下,它可以学习结构,而在这种情况下,可用的测量仅限于一半的节点。这表示在最小的可观察性下学习。通过测试径向分布网格上的实验证明了该方法在学习结构中的性能。

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