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Fast sequence component analysis for attack detection in smart grid

机译:智能电网攻击检测的快速序列分量分析

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Modern power systems have begun integrating synchrophasor technologies into part of daily operations. Given the amount of solutions offered and the maturity rate of application development it is not a matter of “if” but a matter of “when” in regards to these technologies becoming ubiquitous in control centers around the world. While the benefits are numerous, the functionality of operator-level applications can easily be nullified by injection of deceptive data signals disguised as genuine measurements. Such deceptive action is a common precursor to nefarious, often malicious activity. A correlation coefficient characterization and machine learning methodology are proposed to detect and identify injection of spoofed data signals. The proposed method utilizes statistical relationships intrinsic to power system parameters, which are quantified and presented. Several spoofing schemes have been developed to qualitatively and quantitatively demonstrate detection capabilities.
机译:现代电力系统已开始将同步技术与日常运营的一部分集成。鉴于所提供的解决方案和应用程序发展的成熟度率,这不是“如果”的问题,而是“当”这些技术方面“当”在世界各地的控制中心无处不在。虽然好处是众多的,但是通过将欺骗性数据信号注入伪装成真正的测量,可以轻松地无能为力。这种欺骗性作用是邪恶的常见前兆,通常是恶意活动。提出了一种相关系数表征和机器学习方法来检测和识别喷射欺骗数据信号。所提出的方法利用统计关系,该统计关系为电力系统参数,其被量化和呈现。已经开发了几种欺骗方案来定性和定量地证明检测能力。

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