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An Auxiliary Method Based on Hyperspectral Reflectance for Presentation Attack Detection

机译:一种基于高光谱反射率的辅助表示攻击检测方法

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Face recognition has reached a high accuracy in recent years by adopting convolutional neural networks. However, it suffers from presentation attacks such as 2D face photos, and 3D masks. The vulnerability of face recognition and presentation attacks detection (PAD) attract numerous researchers in recent years. Most studies have only focused on PAD algorithms by analyzing texture information, depth information or thermal images. On the other hand, hyperspectral reflectance, which benefits from the development of line-scan HSI sensors, makes it possible to detect information about the inner structure of materials. Our research proposes an auxiliary method to support face recognition by analyzing hyperspectral reflectance. Combined with biological facts of human skin, we trained a neural network with pigmentation fractions inside human skin and corresponding reflectance. The results show high accuracy in identifying skin and non-skin.
机译:近年来,通过采用卷积神经网络,人脸识别已经达到了很高的精度。但是,它会遭受演示攻击,例如2D面部照片和3D蒙版。近年来,人脸识别和演示攻击检测(PAD)的脆弱性吸引了众多研究人员。大多数研究只通过分析纹理信息,深度信息或热图像来关注PAD算法。另一方面,得益于线扫描HSI传感器的发展,高光谱反射率使检测有关材料内部结构的信息成为可能。我们的研究提出了一种通过分析高光谱反射率来支持人脸识别的辅助方法。结合人类皮肤的生物学事实,我们训练了一个神经网络,该网络具有人类皮肤内部的色素沉着分数和相应的反射率。结果表明,在识别皮肤和非皮肤方面具有很高的准确性。

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