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首页> 外文期刊>Communications Letters, IEEE >Power Consumption Profiling Using Energy Time-Frequency Distributions in Smart Grids
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Power Consumption Profiling Using Energy Time-Frequency Distributions in Smart Grids

机译:使用智能电网中的能量时频分布进行功耗分析

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Smart grids are power distribution networks that include a significant communication infrastructure, which is used to collect usage data and monitor the operational status of the grid. As a consequence of this additional infrastructure, power networks are at an increased risk of cyber-attacks. In this letter, we address the problem of detecting and attributing anomalies that occur in the sub-meter power consumption measurements of a smart grid, which could be indicative of malicious behavior. We achieve this by clustering a set of statistical features of power measurements that are determined using the Smoothed Pseudo Wigner Ville (SPWV) energy Time-Frequency (TF) distribution. We show how this approach is able to more accurately distinguish clusters of energy consumption than simply using raw power measurements. Our ultimate goal is to apply the principles of profiling power consumption measurements as part of an enhanced anomaly detection system for smart grids.
机译:智能电网是包括重要通信基础设施的配电网络,用于收集使用数据和监视电网的运行状态。由于这些额外的基础架构,电力网络面临网络攻击的风险增加。在这封信中,我们解决了检测和归因于智能电网的亚表功耗测量中出现的异常的问题,这可能表明存在恶意行为。我们通过对一组功率测量的统计特征进行聚类来实现此目标,这些特征是使用平滑伪维格纳维尔(SPWV)能量时频(TF)分布确定的。我们展示了这种方法如何能够比仅使用原始功率测量值更准确地区分能耗集群。我们的最终目标是将功耗测量分析的原理用作智能电网增强型异常检测系统的一部分。

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