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Resilient consensus for multi-agent systems subject to differential privacy requirements

机译:多种子体系统受差异隐私要求的弹性共识

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摘要

We consider multi-agent systems interacting over directed network topologies where a subset of agents is adversary/faulty and where the non-faulty agents have the goal of reaching consensus, while fulfilling a differential privacy requirement on their initial conditions. To address this problem, we develop an update law for the non-faulty agents. Specifically, we propose a modification of the so-called Mean-Subsequence-Reduced (MSR) algorithm, the Differentially Private MSR (DP-MSR) algorithm, and characterize three important properties of the algorithm: correctness, accuracy and differential privacy. We show that if the network topology is (2f + 1)-robust, then the algorithm allows the non-faulty agents to reach consensus despite the presence of up to f faulty agents and we characterize the accuracy of the algorithm. Furthermore, we also show in two important cases that our distributed algorithm can be tuned to guarantee differential privacy of the initial conditions and the differential privacy requirement is related to the maximum network degree. The results are illustrated via simulations. (C) 2019 Elsevier Ltd. All rights reserved.
机译:我们考虑与定向网络拓扑相互作用的多种代理系统,其中代理的子集是对手/错误,并且非故障代理商具有达成共识的目标,同时履行对其初始条件的差异隐私要求。为了解决这个问题,我们为非故障代理商制定更新法。具体而言,我们提出了一种修改所谓的平均随后减少(MSR)算法,差异私有MSR(DP-MSR)算法,并表征了算法的三个重要属性:正确性,准确性和差异隐私。我们表明,如果网络拓扑(2f + 1) - 算法允许非故障代理达到共识,尽管存在最小的药剂,但我们表征了算法的准确性。此外,我们还展示了两个重要情况下,可以调整我们的分布式算法以保证初始条件的差异隐私,差异隐私要求与最大网络程度有关。结果通过仿真说明。 (c)2019年elestvier有限公司保留所有权利。

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