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A high performance fingerprint liveness detection method based on quality related features

机译:基于质量相关特征的高性能指纹活度检测方法

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摘要

A new software-based liveness detection approach using a novel fingerprint parameterization based on quality related features is proposed. The system is tested on a highly challenging database comprising over 10,500 real and fake images acquired with five sensors of different technologies and covering a wide range of direct attack scenarios in terms of materials and procedures followed to generate the gummy fingers. The proposed solution proves to be robust to the multi-scenario dataset, and presents an overall rate of 90% correctly classified samples. Furthermore, the liveness detection method presented has the added advantage over previously studied techniques of needing just one image from a finger to decide whether it is real or fake. This last characteristic provides the method with very valuable features as it makes it less intrusive, more user friendly, faster and reduces its implementation costs.
机译:提出了一种新的基于软件的动态检测方法,该方法使用了基于质量相关特征的新型指纹参数化。该系统在一个极富挑战性的数据库中进行了测试,该数据库包含通过五个使用不同技术的传感器采集的10,500张真实和伪造图像,并且在生成胶粘手指的材料和步骤方面涵盖了广泛的直接攻击场景。所提出的解决方案被证明对多场景数据集具有鲁棒性,并且提出了90%正确分类的样本的总体比率。此外,与以前研究的技术相比,提出的活度检测方法具有额外的优势,该技术仅需要手指上的一个图像即可确定它是真实的还是假的。这最后一个特征为该方法提供了非常有价值的功能,因为它减少了干扰,提高了用户友好性,并降低了实现成本。

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