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Optimal privacy-by-design strategy for user demand shaping in smart grids

机译:智能电网中用户需求调整的最佳设计隐私策略

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In this work, we propose an optimal privacy-by-design strategy using an energy storage system (ESS) that is capable of shaping the user demand to follow a time-varying target profile. In addition, we consider the ESS usage cost due to its energy losses and capacity degradation. We measure the privacy leakage in terms of the Bayesian risk. The proposed strategy is computed by solving a multi-objective optimization problem using the Markov decision process framework. With numerical simulations using real household consumption data and a lithium-ion battery model, we study the trade-off between the achievable Bayesian risk, the variations in the user demand from the target profile and the energy storage cost. The results show that by trading-off some privacy, the variations in the user demand can be reduced while improving the battery lifetime.
机译:在这项工作中,我们提出了一种使用能量存储系统(ESS)的最佳设计隐私策略,该策略能够调整用户需求以遵循随时间变化的目标配置文件。此外,由于能量损耗和容量降低,我们考虑了ESS的使用成本。我们根据贝叶斯风险来衡量隐私泄漏。通过使用马尔可夫决策过程框架解决多目标优化问题来计算所提出的策略。通过使用实际家庭消费数据和锂离子电池模型的数值模拟,我们研究了可实现的贝叶斯风险,目标配置文件中用户需求的变化以及储能成本之间的权衡。结果表明,通过权衡一些隐私,可以减少用户需求的变化,同时改善电池寿命。

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