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DDPFT: Secure data aggregation scheme with differential privacy and fault tolerance

机译:DDPFT:具有差分隐私和容错的安全数据聚合方案

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Privacy-preserving data aggregation has been widely researched to meet the requirement of timely monitoring electricity consumption of users while protecting individual's data privacy in smart grid communications. In this paper, we propose a new secure data aggregation scheme, named DDPFT, for achieving differential privacy and fault tolerance simultaneously. Specifically, by introducing auxiliary ciphertexts subtly, a novel distributed approach for fault tolerance of data aggregation is put forward to be able to aggregate the functioning smart meter measurements flexibly and efficiently. Furthermore, DDPFT also achieves a good trade-off of accuracy and security of differential privacy for arbitrary number of malfunctioning smart meters. Moreover, through decentralizing the computational overhead and the power of the hub-like entity of the gateway, the security of our proposed scheme is enhanced and the efficiency is improved significantly. Extensive performance evaluations are conducted to illustrate that DDPFT outperforms the state-of-the-art data aggregation schemes in terms of computation complexity, communication cost, robustness of fault tolerance, and utility of differential privacy.
机译:已普遍研究隐私保留数据汇总,以满足及时监控用户的电力消耗,同时保护个人在智能电网通信中的数据隐私。在本文中,我们提出了一种新的安全数据聚合方案,命名为DDPFT,同时实现差别隐私和容错。具体地,通过巧妙地引入辅助密文,提出了一种用于数据聚集的容错的新颖分布式方法,以便能够灵活且有效地聚合功能的智能仪表测量。此外,DDPFT还实现了良好的折衷了差异隐私的准确性和安全性,以获得任意数量的智能仪表。此外,通过将计算开销和网关的格式实体的电源分散,通过提高所提出的方案的安全性,提高了效率显着提高。进行广泛的性能评估,以说明DDPFT在计算复杂性,通信成本,容错的稳健性以及差分隐私的实用性方面优于最先进的数据聚合方案。

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