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Multi-Bits Biometric String Generation based on the Likelihood Ratio

机译:基于似然比的多比特生物识别字符串生成

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Preserving the privacy of biometric information stored in biometric systems is becoming a key issue. An important element in privacy protecting biometric systems is the quantizer which transforms a normal biometric template into a binary string. In this paper, we present a user-specific quantization method based on a likelihood ratio approach (LQ). The bits generated from every feature are concatenated to form a fixed length binary string that can be hashed to protect its privacy. Experiments are carried out on both fingerprint data (FVC2000) and face data (FRGC). Results show that our proposed quantization method achieves a reasonably good performance in terms of FAR/FRR (when FAR is 10{sup}(-4), the corresponding FRR are 16.7% and 5.77% for FVC2000 and FRGC, respectively).
机译:保留存储在生物识别系统中的生物识别信息的隐私正在成为一个关键问题。隐私保护生物识别系统的一个重要元素是量化器,它将正常的生物识别模板转换为二进制串。在本文中,我们提出了一种基于似然比方法(LQ)的用户特定量化方法。从每个功能生成的位都被连接以形成可以散列以保护其隐私的固定长度二进制字符串。在指纹数据(FVC2000)和面部数据(FRGC)上进行实验。结果表明,我们所提出的量化方法在远/ FRR方面实现了相当良好的性能(远程是10 {SUP}( - 4),相应的FRR分别为FVC2000和FRGC的16.7%和5.77%)。

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