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相关论文: $\alpha$-leakage by R\'{e}nyi Divergence and Sibso…

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For $\tilde{f}(t) = \exp(\frac{\alpha-1}{\alpha}t)$, this paper shows that the Sibson mutual information is an $\alpha$-leakage averaged over the adversary's $\tilde{f}$-mean relative information gain (on the secret) at elementary event of…

信息论 · 计算机科学 2025-10-09 Ni Ding , Farhad Farokhi , Tao Guo , Yinfei Xu , Xiang Zhang

A tunable measure for information leakage called \textit{maximal $\alpha$-leakage} is introduced. This measure quantifies the maximal gain of an adversary in refining a tilted version of its prior belief of any (potentially random) function…

信息论 · 计算机科学 2018-06-12 Jiachun Liao , Oliver Kosut , Lalitha Sankar , Flavio P. Calmon

We introduce a tunable measure for information leakage called maximal alpha-leakage. This measure quantifies the maximal gain of an adversary in inferring any (potentially random) function of a dataset from a release of the data. The…

信息论 · 计算机科学 2019-08-21 Jiachun Liao , Oliver Kosut , Lalitha Sankar , Flavio du Pin Calmon

This paper proposes an $\alpha$-leakage measure for $\alpha\in[0,\infty)$ by a cross entropy interpretation of R{\'{e}}nyi entropy. While R\'{e}nyi entropy was originally defined as an $f$-mean for $f(t) = \exp((1-\alpha)t)$, we reveal that…

信息论 · 计算机科学 2024-01-30 Ni Ding , Mohammad Amin Zarrabian , Parastoo Sadeghi

Maximal $\alpha$-leakage is a tunable measure of information leakage based on the accuracy of guessing an arbitrary function of private data based on public data. The parameter $\alpha$ determines the loss function used to measure the…

信息论 · 计算机科学 2019-04-08 Jiachun Liao , Lalitha Sankar , Oliver Kosut , Flavio P. Calmon

In this work, the probability of an event under some joint distribution is bounded by measuring it with the product of the marginals instead (which is typically easier to analyze) together with a measure of the dependence between the two…

信息论 · 计算机科学 2020-10-22 Amedeo Roberto Esposito , Michael Gastpar , Ibrahim Issa

In this work, maximal $\alpha$-leakage is introduced to quantify how much a quantum adversary can learn about any sensitive information of data upon observing its disturbed version via a quantum privacy mechanism. We first show that an…

量子物理 · 物理学 2024-03-22 Bo-Yu Yang , Hsuan Yu , Hao-Chung Cheng

The aim of this work is to provide bounds connecting two probability measures of the same event using R\'enyi $\alpha$-Divergences and Sibson's $\alpha$-Mutual Information, a generalization of respectively the Kullback-Leibler Divergence…

信息论 · 计算机科学 2020-01-20 Amedeo Roberto Esposito , Michael Gastpar , Ibrahim Issa

In this paper, we present several novel representations of $\alpha$-mutual information ($\alpha$-MI) in terms of R{\' e}nyi divergence and conditional R{\' e}nyi entropy. The representations are based on the variational characterizations of…

信息论 · 计算机科学 2025-05-01 Akira Kamatsuka , Takashiro Yoshida

Information measures can be constructed from R\'enyi divergences much like mutual information from Kullback-Leibler divergence. One such information measure is known as Sibson $\alpha$-mutual information and has received renewed attention…

信息论 · 计算机科学 2025-07-14 Amedeo Roberto Esposito , Michael Gastpar , Ibrahim Issa

We explore a family of information measures that stems from R\'enyi's $\alpha$-Divergences with $\alpha<0$. In particular, we extend the definition of Sibson's $\alpha$-Mutual Information to negative values of $\alpha$ and show several…

信息论 · 计算机科学 2022-02-09 Amedeo Roberto Esposito , Adrien Vandenbroucque , Michael Gastpar

We characterize the growth of the Sibson and Arimoto mutual informations and $\alpha$-maximal leakage, of any order that is at least unity, between a random variable and a growing set of noisy, conditionally independent and…

信息论 · 计算机科学 2021-11-23 Benjamin Wu , Aaron B. Wagner , Ibrahim Issa , G. Edward Suh

We present a variational characterization for the R\'{e}nyi divergence of order infinity. Our characterization is related to guessing: the objective functional is a ratio of maximal expected values of a gain function applied to the…

信息论 · 计算机科学 2022-05-03 Gowtham R. Kurri , Oliver Kosut , Lalitha Sankar

We introduce a family of information leakage measures called maximal $\alpha,\beta$-leakage, parameterized by real numbers $\alpha$ and $\beta$. The measure is formalized via an operational definition involving an adversary guessing an…

信息论 · 计算机科学 2022-11-29 Atefeh Gilani , Gowtham R. Kurri , Oliver Kosut , Lalitha Sankar

Information theoretic leakage metrics quantify the amount of information about a private random variable $X$ that is leaked through a correlated revealed variable $Y$. They can be used to evaluate the privacy of a system in which an…

信息论 · 计算机科学 2025-05-15 Sophie Taylor , Praneeth Kumar Vippathalla , Justin P. Coon

This paper adopts Arimoto's $\alpha$-Mutual Information as a tunable privacy measure, in a privacy-preserving data release setting that aims to prevent disclosing private data to adversaries. By fine-tuning the privacy metric, we…

机器学习 · 计算机科学 2025-08-07 MirHamed Jafarzadeh Asl , Mohammadhadi Shateri , Fabrice Labeau

We introduce a \emph{gain function} viewpoint of information leakage by proposing \emph{maximal $g$-leakage}, a rich class of operationally meaningful leakage measures that subsumes recently introduced leakage measures -- {maximal leakage}…

信息论 · 计算机科学 2023-12-08 Gowtham R. Kurri , Lalitha Sankar , Oliver Kosut

This paper presents a unified interpretation of $\alpha$-mutual information ($\alpha$-MI) in terms of generalized $g$-leakage. Specifically, we present a novel interpretation of $\alpha$-MI within an extended framework for quantitative…

信息论 · 计算机科学 2026-01-19 Akira Kamatsuka , Takahiro Yoshida

We leverage the Gibbs inequality and its natural generalization to R\'enyi entropies to derive closed-form parametric expressions of the optimal lower bounds of $\rho$th-order guessing entropy (guessing moment) of a secret taking values on…

信息论 · 计算机科学 2024-01-31 Julien Béguinot , Olivier Rioul

A common countermeasure against side-channel attacks on secret key cryptographic implementations is $d$th-order masking, which splits each sensitive variable into $d+1$ random shares. In this paper, maximal leakage bounds on the probability…

信息论 · 计算机科学 2023-05-11 Julien Béguinot , Yi Liu , Olivier Rioul , Wei Cheng , Sylvain Guilley
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