多区域状态估计中不良数据的检测

Yuqi Zhou, Le Xie
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引用次数: 6

摘要

在多区域状态估计中,提出了一种快速检测子区域是否含有不良数据的算法。在多区域状态估计中,每个区域都会根据局部测量残差的权重和测量残差的整体变化计算一个灵敏度指数。索引最高的区域是定位坏数据的候选区域。该算法还具有可扩展性,可用于检测控制区域的假数据注入,而传统的卡方检验可能会降低其有效性。该算法不仅可以帮助中央控制中心定位多区域系统中的不良数据,还可以防止系统受到潜在的虚假数据注入攻击。基于IEEE 14总线系统的数值研究表明了该算法的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Detection of bad data in multi-area state estimation
This paper proposed an algorithm to quickly detect whether a sub-area contains bad data in multi-area state estimation. Each area in the multi-area state estimation will compute a sensitivity index that is based on the weight of local measurement residual and the overall change of measurement residual. The area with the highest index is candidate for locating bad data. This algorithm is also extendable to detect false data injection in a control area while traditional Chi-squared test may be rendered less effective. The proposed algorithm can help Central Control Center to locate the bad data in a multi-area system and can also prevent the system from potential false data injection attacks. Numerical studies based on the IEEE 14-bus system suggest the validity and efficacy of the proposed algorithm.
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