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Information theoretic capacity analysis for biometric hashing methods

机译:生物特征哈希方法的信息理论能力分析

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In this paper, we address capacity analysis of biometric hashing methods. We propose an information theoretic capacity analysis framework for biometric hashing methods by taking into account their noise resilience which is analogous to the variations of the inputs for same user. To validate the proposed framework, we make simulations with various biometric hashing methods proposed in the literature on three different face image databases. We experimentally estimate the number of different users that a biometric hashing system can accommodate by assuming that every biometric hash vector is possible to be chosen for biometric template and within-class variations can be considered as noise and each bit position has the same probabilities. Besides, we calculate equal error rate performances of the biometric hashing methods and compare them with the proposed capacity analysis framework.
机译:在本文中,我们讨论了生物特征哈希方法的容量分析。我们提出了一种生物特征哈希方法的信息理论能力分析框架,其中考虑了它们的噪声弹性,这类似于相同用户输入的变化。为了验证所提出的框架,我们使用文献中提出的各种生物特征哈希方法对三个不同的人脸图像数据库进行了仿真。我们通过假设可以为生物特征模板选择每个生物特征哈希向量,并且将类内变化视为噪声并且每个比特位置具有相同的概率,来通过实验估算生物特征哈希系统可以容纳的不同用户的数量。此外,我们计算了生物特征哈希方法的均等错误率性能,并将其与建议的容量分析框架进行了比较。

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