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Evaluation of the Precision-Privacy Tradeoff of Data Perturbation for Smart Metering

机译:智能计量的数据扰动精度-隐私权衡评估

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Smart grid users and standardization committees require that utilities and third parties collecting metering data employ techniques for limiting the level of precision of the gathered household measurements to a granularity no finer than what is required for providing the expected service. Data aggregation and data perturbation are two such techniques. This paper provides quantitative means to identify a tradeoff between the aggregation set size, the precision on the aggregated measurements, and the privacy level. This is achieved by formally defining an attack to the privacy of an individual user and calculating how much its success probability is reduced by applying data perturbation. Under the assumption of time-correlation of the measurements, colored noise can be used to even further reduce the success probability. The tightness of the analytical results is evaluated by comparing them to experimental data.
机译:智能电网用户和标准化委员会要求公用事业公司和收集计量数据的第三方采用将收集的家庭测量结果的精确度限制为不超过提供预期服务所需的粒度的技术。数据聚合和数据扰动是两种这样的技术。本文提供了定量方法来确定聚合集大小,聚合度量的精度和隐私级别之间的折衷。这是通过正式定义对单个用户的隐私的攻击并计算出通过应用数据干扰将成功概率降低多少来实现的。在测量时间相关的假设下,有色噪声甚至可以用来进一步降低成功概率。通过将分析结果与实验数据进行比较来评估分析结果的紧密度。

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