基于自嵌入学习的电力系统有意孤岛

Zhonglin Sun, Yannis Spyridis, Achilleas Sesis, G. Efstathopoulos, Elisavet Grigoriou, T. Lagkas, P. Sarigiannidis
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引用次数: 1

摘要

有意孤岛是指将电网分成几个部分,以保证系统在故障情况下的稳定性。本研究提供一种无监督深度神经网络来处理故意孤岛问题。我们建议使用自学习神经网络来提高孤岛任务的泛化性能。此外,我们使用合并技术将隔离总线分配到其邻居的标签。在几种网格情况下进行了实验,以说明该方法的效果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Intentional Islanding of Power Systems Through Self-Embedding Learning
Intentional islanding is a procedure to divide the electrical grid into several parts to guarantee the stability of a system in the case of failure. This study provides an unsupervised deep neural network to deal with the issue of intentional islanding. We propose to use a self-learning neural network to improve the generalisation performance of the islanding task. In addition, we use a merging technology to assign isolated buses to their neighbour's label. Experiments are carried out on several grid cases to illustrate the effect of our solution.
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