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Robust partial face recognition using instance-to-class distance

机译:使用实例到类距离的强大部分识别

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We present a new face recognition approach from partial face patches by using an instance-to-class distance. While numerous face recognition methods have been proposed over the past two decades, most of them recognize persons from whole face images. In many real world applications, partial faces usually occur in unconstrained scenarios such as visual surveillance systems. Hence, it is very important to recognize an arbitrary facial patch to enhance the intelligence of such systems. In this paper, we develop a robust partial face recognition approach based on local feature representation, where the similarity between each probe patch and gallery face is computed by using the instance-to-class distance with the sparse constraint. Experiments on two popular face datasets are presented to show the efficacy of our proposed method.
机译:我们通过使用实例到级别距离介绍了一种新的面部识别方法。虽然在过去的二十年中提出了许多面部识别方法,但他们中的大多数人都认识到整个面部图像的人。在许多真实的世界应用中,部分面通常发生在不受约束的场景中,如视觉监控系统。因此,识别任意面部贴片以增强这种系统的智能非常重要。在本文中,我们基于本地特征表示的强大部分面部识别方法,其中通过使用与稀疏约束的实例到类距离来计算每个探测器贴片和库面之间的相似性。提出了两个流行的面部数据集的实验,以显示了我们所提出的方法的功效。

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