A data-driven heuristic for corrective transmission switching

Xingpeng Li, P. Balasubramanian, K. Hedman
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引用次数: 6

Abstract

Utilizing flexibility of the transmission network has gained significant attention recently. Prior efforts have shown that various benefits could be achieved by appropriately changing the network topology. This paper focuses on the reliability gains that can be achieved through corrective transmission switching (CTS). A full AC contingency analysis is conducted to identify critical contingencies that would result in violations. CTS is employed on these critical contingencies to test for violation reductions. A data-driven heuristic is proposed in this paper to identify the candidate switching list. This heuristic, also referred to as enhanced data mining (EDM) approach, provides a static lookup table consisting of corrective switching solutions, which is fast and effective. The lookup table can be created through a straightforward data mining technique. Simulations on the TVA system demonstrate the effectiveness and efficiency of the proposed heuristic.
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纠错传输切换的数据驱动启发式算法
利用输电网络的灵活性是近年来备受关注的问题。先前的研究表明,通过适当地改变网络拓扑结构可以获得各种好处。本文重点讨论了通过纠错传输交换(CTS)可以实现的可靠性增益。进行全面的交流应急分析,以确定可能导致违规的关键应急情况。CTS被用于这些关键偶然事件来测试违例减少。本文提出了一种数据驱动的启发式算法来识别候选交换列表。这种启发式方法也称为增强型数据挖掘(EDM)方法,它提供了一个静态查找表,包含快速有效的纠错切换解决方案。查找表可以通过简单的数据挖掘技术创建。对TVA系统的仿真验证了该方法的有效性和高效性。
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