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Comparative Analysis of Load-Shaping-Based Privacy Preservation Strategies in a Smart Grid

机译:智能电网中基于负载整形的隐私保护策略的比较分析

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A key enabler for the smart grid is the fine-grained monitoring of power utilization. Although such a mechanism is helpful in the optimization of the whole electricity generation, distribution, and consumption cycle, it also creates opportunities for the potential adversaries in deducing the activities and habits of the subscribers. In fact, by utilizing the standard and readily available tools of nonintrusive load monitoring (NILM) techniques on the metered electricity data, many details of customers' personal lives can be easily discovered. Therefore, prevention of such adversarial exploitations is of utmost importance for privacy protection. One strong privacy preservation approach is the modification of the metered data through the use of on-site storage units in conjunction with renewable energy resources. In this study, we introduce a novel mathematical programming framework to model eight privacy-enhanced power-scheduling strategies inspired and elicited from the literature. We employ all the relevant techniques for the modification of the actual electricity utilization (i.e., on-site battery, renewable energy resources, and appliance load moderation). Our evaluation framework is the first in the literature, to the best of our knowledge, for a comprehensive and fair comparison of the load-shaping techniques for privacy preservation. In addition to the privacy concerns, we consider monetary cost and disutility of the users in our objective functions. Evaluation results show that privacy preservation strategies in the literature differ significantly in terms of privacy, cost, and disutility metrics.
机译:智能电网的关键推动因素是对电源利用率的细粒度监控。尽管这种机制有助于优化整个发电,分配和消耗周期,但它也为潜在的对手提供了推论订户活动和习惯的机会。实际上,通过在计量电数据上利用非侵入式负载监视(NILM)技术的标准且易于使用的工具,可以轻松发现客户个人生活的许多细节。因此,防止这种对抗性利用对于隐私保护至关重要。一种强大的隐私保护方法是通过使用现场存储​​单元结合可再生能源来修改计量数据。在这项研究中,我们介绍了一种新颖的数学程序设计框架,以对八种从文献中得到启发和启发的隐私增强功率调度策略进行建模。我们采用了所有相关技术来修改实际用电量(即,现场电池,可再生能源和设备负载调节)。就我们所知,我们的评估框架是文献中第一个,用于全面,公平地比较保护隐私的负载整形技术。除了隐私问题外,我们在目标功能中还考虑了金钱成本和用户的无用性。评估结果表明,文献中的隐私保护策略在隐私,成本和无用性指标方面存在显着差异。

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