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Efficient Database Generation for Data-Driven Security Assessment of Power Systems

机译:高效的数据库生成,用于电力系统的数据驱动安全评估

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Power system security assessment methods require large dataset of operating points to train or test their performance. As historical data often contain limited number of abnormal situations, simulation data are necessary to accurately determine the security boundary. Generating such a database is an extremely demanding task, which becomes intractable even for small system sizes. This paper proposes a modular and highly scalable algorithm for computationally efficient database generation. Using convex relaxation techniques and complex network theory, we discard large infeasible regions and drastically reduce the search space. We explore the remaining space by a highly parallelizable algorithm and substantially decrease computation time. Our method accommodates numerous definitions of power system security. Here we focus on the combination of N - k security and small-signal stability. Demonstrating our algorithm on IEEE 14-bus and NESTA 162-bus systems, we show how it outperforms existing approaches requiring less than 10% of the time other methods require.
机译:电力系统安全评估方法需要大量的操作点数据集,以训练或测试其性能。由于历史数据通常包含数量有限的异常情况,因此需要模拟数据来准确确定安全边界。生成这样的数据库是一项非常艰巨的任务,即使对于较小的系统大小,这也变得棘手。本文提出了一种模块化且高度可扩展的算法,用于高效计算数据库的生成。使用凸松弛技术和复杂的网络理论,我们丢弃了较大的不可行区域,并大大减少了搜索空间。我们通过高度可并行化的算法探索剩余空间,并大大减少了计算时间。我们的方法适用于电力系统安全性的多种定义。在这里,我们将重点放在N-k安全性和小信号稳定性的结合上。演示了我们在IEEE 14总线和NESTA 162总线系统上的算法,我们展示了它在性能上优于现有方法,所需时间不到其他方法所需时间的10%。

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