Facial image clustering in 3D video using constrained Ncut

G. Orfanidis, N. Nikolaidis, I. Pitas
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引用次数: 5

Abstract

In this paper a novel variant of the Normalized Nut (N-Cut) clustering algorithm that incorporates imposed constraints is implemented and evaluated on facial image clustering for 3D video analysis. The clustering problem is seen as a graph cut problem through a similarity matrix representing the relation among the vertices, i.e. facial images in this work. Mutual Information is used as similarity metric, applied on the HSV color space of the original images. This work considers the incorporation of constraints either regarding similarity or dissimilarity derived from a priori available information in the clustering procedure and evaluates the performance increase by their use. Experiments are conducted on 3D videos where a priori information about the facial images exists.
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基于约束Ncut的三维视频人脸图像聚类
本文实现了一种新的归一化坚果(N-Cut)聚类算法,该算法结合了强加的约束,并对用于3D视频分析的面部图像聚类进行了评估。聚类问题被视为一个图切问题,通过一个相似矩阵表示顶点之间的关系,即在本工作中面部图像。采用互信息作为相似度度量,应用于原始图像的HSV色彩空间。这项工作考虑了在聚类过程中从先验可用信息中获得的关于相似性或不相似性的约束的合并,并评估了它们的使用对性能的提高。实验是在三维视频中进行的,其中存在面部图像的先验信息。
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