将面部彩妆检测集成到多模态生物识别用户验证系统中

Ekberjan Derman, Chiara Galdi, J. Dugelay
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引用次数: 4

摘要

多模态生物特征融合通常通过结合两个或多个生物特征来提高验证精度。为每个生物特征预定义恒定权重值的融合系统变得非常流行。在生物识别技术中,人脸特征是融合系统中最常用的特征之一。然而,面部验证面临着许多具有挑战性的困难,其中之一就是面部化妆。最近,有研究表明,人脸验证的准确性会受到面部化妆的影响。因此,对于每个生物特征具有恒定权重值的多模态融合系统的验证结果可以被面部化妆品降级。在这项工作中,我们提出了一种将面部化妆检测集成到融合系统中以提高性能的方法。在我们研究的场景中,人脸、指纹和虹膜验证进行分数级融合,同时每个特征的权重值根据测试面部图像的化妆分类水平动态变化。到目前为止,这是第一个在多模态生物识别验证系统中考虑面部化妆的工作。在1600个不同对象上的实验表明,与不使用人脸信息相比,我们提出的方法有助于提高融合系统的整体性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Integrating facial makeup detection into multimodal biometric user verification system
Multimodal biometric fusion is generally used for increasing the verification accuracy by combining two or more biometric traits. Fusion systems with predefined constant weight values for each biometry becomes much popular. Among biometrics, face modality is one of the most common traits that is used in such fusion system. However, face verification suffers from many challenging difficulties, one of which is facial makeup. Recently, it has been shown that the accuracy of face verification can be impacted by the presence of facial makeup. And as such, the verification result of a multimodal fusion system with constant weight value for each biometry can be degraded by facial cosmetics. In this work, we propose a method of integrating facial makeup detection into the fusion system to increase performance. In our investigated scenario, score level fusion of face, fingerprint and iris verification are performed, while the weight value of each trait changes dynamically according to the level of makeup classification of test facial image. So far, this is the first work taking into account the facial makeup within a multimodal biometric verification system. Experiments on 1600 different subjects reveal that our proposed method can help in increasing the overall performance of fusion system than without using the facial makeup information.
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