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Soft biometric privacy: Retaining biometric utility of face images while perturbing gender

机译:柔软的生物识别隐私:在干扰性别的同时保留面部图像的生物识别效用

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摘要

While the primary purpose for collecting biometric data (such as face images, iris, fingerprints, etc.) is for person recognition, yet recent advances in machine learning has shown the possibility of extracting auxiliary information from biometric data such as age, gender, health attributes, etc. These auxiliary attributes are sometimes referred to as soft biometrics. This automatic extraction of soft biometric attributes can happen without the user's agreement, thereby raising several privacy concerns. In this work, we design a technique that modifies a face image such that its gender as assessed by a gender classifier is perturbed, while its biometric utility as assessed by a face matcher is retained. Given an arbitrary biometric matcher and an attribute classifier, the proposed method systematically perturbs the input image such that the output of the attribute classifier is confounded, while the output of the biometric matcher is not significantly impacted. Experimental analysis convey the efficacy of the scheme in imparting gender privacy to face images.
机译:尽管收集生物特征数据(例如面部图像,虹膜,指纹等)的主要目的是为了识别人,但是机器学习的最新进展表明,有可能从生物特征数据中提取辅助信息,例如年龄,性别,健康状况。这些辅助属性有时也称为软生物特征。在没有用户同意的情况下,可以自动提取软生物特征属性,从而引发了一些隐私问题。在这项工作中,我们设计了一种修改人脸图像的技术,以便扰动由性别分类器评估的性别,同时保留由人脸匹配器评估的生物识别实用程序。给定一个任意的生物特征匹配器和一个属性分类器,该方法系统地扰动了输入图像,使得该属性分类器的输出被混淆,而该生物特征匹配器的输出却没有受到明显的影响。实验分析表明了该方案在赋予面部图像性别隐私方面的功效。

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