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A Study on Representations for Face Recognition from Thermal Images

机译:基于热图像的人脸识别表示研究

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Two challenges of face recognition at a distance are the uncontrolled illumination and the low resolution of the images. One approach to tackle the first limitation is to use longwave infrared face images since they are invariant to illumination changes. In this paper we study classification performances on 3 different representations: pixel-based, histogram, and dissimilarity representation based on histogram distances for face recognition from low resolution longwave infrared images. The experiments show that the optimal representation depends on the resolution of images and histogram bins. It was also observed that low resolution thermal images joined to a proper representation are sufficient to discriminate between subjects and we suggest that they can be promising for applications such as face tracking.
机译:远距离面部识别的两个挑战是不受控制的照明和图像的低分辨率。解决第一个局限性的一种方法是使用长波红外面部图像,因为它们对于照明的变化是不变的。在本文中,我们研究了三种不同表示的分类性能:基于像素的直方图和基于直方图距离的不相似表示,用于从低分辨率长波红外图像中识别人脸。实验表明,最佳表示取决于图像和直方图分类的分辨率。还观察到,低分辨率的热图像与适当的表示相结合足以区分对象,并且我们建议将它们应用于诸如面部跟踪的应用中。

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