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A Novel Encoding Scheme for Effective Biometric Discretization: Linearly Separable Subcode

机译:有效的生物特征离散化的新型编码方案:线性可分离子码

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Separability in a code is crucial in guaranteeing a decent Hamming-distance separation among the codewords. In multibit biometric discretization where a code is used for quantization-intervals labeling, separability is necessary for preserving distance dissimilarity when feature components are mapped from a discrete space to a Hamming space. In this paper, we examine separability of Binary Reflected Gray Code (BRGC) encoding and reveal its inadequacy in tackling interclass variation during the discrete-to-binary mapping, leading to a tradeoff between classification performance and entropy of binary output. To overcome this drawback, we put forward two encoding schemes exhibiting full-ideal and near-ideal separability capabilities, known as Linearly Separable Subcode (LSSC) and Partially Linearly Separable Subcode (PLSSC), respectively. These encoding schemes convert the conventional entropy-performance tradeoff into an entropy-redundancy tradeoff in the increase of code length. Extensive experimental results vindicate the superiority of our schemes over the existing encoding schemes in discretization performance. This opens up possibilities of achieving much greater classification performance with high output entropy.
机译:代码中的可分离性对于确保代码字之间的汉明距离相称至关重要。在将代码用于量化间隔标记的多位生物特征离散化中,当特征分量从离散空间映射到汉明空间时,为了保持距离差异,可分离性是必需的。在本文中,我们研究了二进制反射格雷码(BRGC)编码的可分离性,并揭示了它在处理离散到二进制映射期间的类间变异方面的不足,从而导致了分类性能与二进制输出熵之间的折衷。为了克服这个缺点,我们提出了两种显示完全理想和接近理想可分离性的编码方案,分别称为线性可分离子码(LSSC)和部分线性可分离子码(PLSSC)。这些编码方案在代码长度的增加中将传统的熵性能折衷转换为熵冗余折衷。大量的实验结果证明了我们的方案在离散化性能方面优于现有的编码方案。这提供了在高输出熵的情况下实现更高分类性能的可能性。

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