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Game Theory Based Correlated Privacy Preserving Analysis in Big Data

机译:基于博弈论基于大数据的相关隐私保留分析

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摘要

Privacy preservation is one of the greatest concerns in big data. As one of extensive applications in big data, privacy preserving data publication (PPDP) has been an important research field. One of the fundamental challenges in PPDP is the trade-off problem between privacy and utility of the single and independent data set. However, recent research has shown that the advanced privacy mechanism, i.e., differential privacy, is vulnerable when multiple data sets are correlated. In this case, the trade-off problem between privacy and utility is evolved into a game problem, in which payoff of each player is dependent on his and his neighbors' privacy parameters. In this paper, we first present the definition of correlated differential privacy to evaluate the real privacy level of a single data set influenced by the other data sets. Then, we construct a game model of multiple players, in which each publishes data set sanitized by differential privacy. Next, we analyze the existence and uniqueness of the pure Nash Equilibrium. We refer to a notion, i.e., the price of anarchy, to evaluate efficiency of the pure Nash Equilibrium. Finally, we show the correctness of our game analysis via simulation experiments.
机译:隐私保存是大数据中最伟大的问题之一。作为大数据的广泛应用之一,隐私保存数据出版物(PPDP)是一个重要的研究领域。 PPDP中的一个根本挑战是单一和独立数据集的隐私和效用之间的权衡问题。然而,最近的研究表明,当多个数据集相关时,先进的隐私机制,即差异隐私,易受攻击。在这种情况下,隐私和实用程序之间的权衡问题正在进行成为一个游戏问题,其中每个玩家的支付取决于他和他的邻居的隐私参数。在本文中,我们首先介绍相关差异隐私的定义,以评估受其他数据集影响的单个数据集的真正隐私级别。然后,我们构建多个玩家的游戏模型,其中每一个发布通过差异隐私消毒的数据集。接下来,我们分析纯纳什均衡的存在和唯一性。我们指的是一个概念,即无政府状态的价格,评估纯净纳什均衡的效率。最后,我们通过模拟实验展示了我们游戏分析的正确性。

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