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Quantifying privacy and security of biometric fuzzy commitment

机译:量化生物识别模糊承诺的隐私和安全性

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摘要

Fuzzy commitment is an efficient template protection algorithm that can improve security and safeguard privacy of biometrics. Existing theoretical security analysis has proved that although privacy leakage is unavoidable, perfect security from information-theoretical points of view is possible when bits extracted from biometric features are uniformly and independently distributed. Unfortunately, this strict condition is difficult to fulfill in practice. In many applications, dependency of binary features is ignored and security is thus suspected to be highly overestimated. This paper gives a comprehensive analysis on security and privacy of fuzzy commitment regarding empirical evaluation. The criteria representing requirements in practical applications are investigated and measured quantitatively in an existing protection system for 3D face recognition. The evaluation results show that a very significant reduction of security and enlargement of privacy leakage occur due to the dependency of biometric features. This work shows that in practice, one has to explicitly measure the security and privacy instead of trusting results under non-realistic assumptions.
机译:模糊承诺是一种有效的模板保护算法,可以提高安全性并保护生物识别技术的私密性。现有的理论安全性分析已经证明,尽管不可避免地会发生隐私泄漏,但是当从生物特征中提取的比特均匀且独立地分布时,从信息论的角度来看,完美的安全性是可能的。不幸的是,这种严格的条件在实践中很难实现。在许多应用中,忽略了二进制功能的依赖性,因此怀疑安全性被高估了。本文对实证评估中模糊承诺的安全性和保密性进行了综合分析。在现有的3D人脸识别保护系统中,对代表实际应用需求的标准进行了调查和量化。评估结果表明,由于生物特征的依赖性,极大地降低了安全性,并增加了隐私泄露。这项工作表明,在实践中,必须明确衡量安全性和隐私性,而不是在不切实际的假设下信任结果。

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