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Minimizing the impact of spoof fabrication material on fingerprint liveness detector

机译:最大限度地减少欺骗制造材料对指纹活力探测器的影响

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Fingerprint liveness detection algorithms have been used to disambiguate live fingerprint samples from spoof (fake) fingerprints fabricated using materials such as latex, gelatine, etc. Most liveness detection algorithms are learning-based and dependent on the fabrication materials used to generate spoofs during the training stage. Consequently, the performance of a liveness detector is significantly degraded upon encountering fabrication materials that were not used during the training stage. The aim of this work is to design a simple pre-processing scheme that can improve the interoperability of liveness detectors across different fabrication materials - including those not observed during the training stage. Such a generalization ability is desirable in liveness detectors. Experiments on the LivDet 2011 fake fingerprint dataset suggest that (a) different fabrication materials when used in the training stage impart different degrees of generalization ability to the liveness detector and (b) the proposed pre-processing scheme improves generalization performance by upto 44%.
机译:指纹活动检测算法已被用于消除使用乳胶,明胶等材料制造的欺骗(假)指纹的活指纹样本。大多数活性检测算法是基于学习的,并且依赖于在训练期间产生欺骗的制造材料阶段。因此,在遇到在训练阶段未使用的制造材料时,活性检测器的性能显着降低。这项工作的目的是设计一种简单的预处理方案,可以提高不同制造材料的活性探测器的互操作性 - 包括在训练阶段期间未观察到的那些。这种泛化能力是期望的活性探测器。 Livdet的实验2011假指纹数据集表明(a)当使用时的不同的制造材料在​​训练阶段赋予灵活检测器的不同程度的泛化能力,(b)所提出的预处理方案将泛化性能提高到44%。

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