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Privacy Against Brute-Force Inference Attacks

机译:防止暴力破解推理攻击的隐私

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Privacy-preserving data release is about disclosing information about useful data while retaining the privacy of sensitive data. Assuming that the sensitive data is threatened by a brute-force adversary, we define Guessing Leakage as a measure of privacy, based on the concept of guessing. After investigating the properties of this measure, we derive the optimal utility-privacy trade-off via a linear program with any f-information adopted as the utility measure, and show that the optimal utility is a concave and piece-wise linear function of the privacy-leakage budget.
机译:隐私保护数据的发布是关于披露有用数据的信息,同时保留敏感数据的隐私。假设敏感数据受到暴力攻击者的威胁,我们基于猜测的概念将“猜测泄漏”定义为一种隐私度量。在研究了该度量的性质之后,我们通过采用任何f信息作为效用度量的线性程序,得出了最优效用-隐私权衡,并证明了最优效用是该函数的凹和分段线性函数。隐私泄漏预算。

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