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Protecting Your Shopping Preference With Differential Privacy

机译:保护您的购物偏好与差异隐私

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Online banks may disclose consumers' shopping preferences due to various attacks. With differential privacy, each consumer can disturb his consumption amount locally before sending it to online banks. However, directly applying differential privacy in online banks will incur problems in reality because existing differential privacy schemes do not consider handling the noise boundary problem. In this paper, we propose an Optimized Differential prIvate Online tRansaction scheme (O-DIOR) for online banks to set boundaries of consumption amounts with added noises. We then revise O-DIOR to design a RO-DIOR scheme to select different boundaries while satisfying the differential privacy definition. Moreover, we provide in-depth theoretical analysis to prove that our schemes are capable to satisfy the differential privacy constraint. Finally, to evaluate the effectiveness, we have implemented our schemes in mobile payment experiments. Experimental results illustrate that the relevance between the consumption amount and online bank amount is reduced significantly, and the privacy losses are less than 0.5 in terms of mutual information.
机译:在线银行可能会由于各种攻击而披露消费者的购物偏好。通过差异隐私,每个消费者可以在将其发送到在线银行之前在当地扰乱他的消费量。但是,在网上银行中直接应用差异隐私将在现实中产生问题,因为现有的差异隐私计划不考虑处理噪声边界问题。在本文中,我们提出了一个优化的差异私有在线交易计划(O-DIOR),用于在线银行,以便添加噪音的消费量的界限。然后,我们修改O-Dior来设计RO-DIOR方案,以选择不同的边界,同时满足差异隐私定义。此外,我们提供了深入的理论分析,以证明我们的计划能够满足差异隐私约束。最后,为了评估效率,我们在移动支付实验中实施了我们的计划。实验结果表明,消费量和在线银行金额之间的相关性显着降低,在相互信息方面,隐私损失小于0.5。

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