Deep Person Identification Using Spatiotemporal Facial Motion Amplification

K. Gkentsidis, Theodora Pistola, N. Mitianoudis, N. Boulgouris
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Abstract

We explore the capabilities of a new biometric trait, which is based on information extracted through facial motion amplification. Unlike traditional facial biometric traits, the new biometric does not require the visibility of facial features, such as the eyes or nose, that are critical in common facial biometric algorithms. In this paper we propose the formation of a spatiotemporal facial blood flow map, constructed using small motion amplification. Experiments show that the proposed approach provides significant discriminatory capacity over different training and testing days and can be potentially used in situations where traditional facial biometrics may not be applicable.
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基于时空面部运动放大的深度人识别
我们探索了一种新的生物特征的能力,这种特征是基于通过面部运动放大提取的信息。与传统的面部生物特征不同,新的生物特征不需要面部特征的可见性,比如眼睛或鼻子,而这些在常见的面部生物特征算法中是至关重要的。在本文中,我们提出了一个时空的面部血流图的形成,利用小运动放大构造。实验表明,该方法在不同的训练和测试日提供了显著的区分能力,可以潜在地用于传统面部生物识别技术可能不适用的情况。
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