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An application of the V-system to the clustering of Chernoff faces

机译:V系统在Chernoff人脸聚类中的应用

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摘要

Chernoff faces are a classical method for visualizing multidimensional data. This method represents multidimensional data in the shape of a human face. The motivation for using this approach is that humans are excellent at recognizing faces and noticing small changes in them. Thus, human visual judgment can be used to cluster the faces. However, different people may have different judgments of the same face, which will affect the analysis results. This paper presents a new approach to classify the faces. The main point of this method is to classify the Chernoff faces based on their quantified overall features. One Chernoff face is regarded as a geometric graphics group, and the distance between any two faces is calculated in the frequency domain via the V-system, which is a complete orthogonal function system on L_2[0,1]. The faces are classified by the resulting distance, so that we can obtain a uniform and reasonable evaluation result. Moreover, we can further evaluate the samples according to a given evaluation standard. This approach provides a new automated clustering method for Chernoff faces, which can avoid misjudgments due to human visual error. The experimental results indicate that the new method is simple, fast and effective. The classification result is the same as that obtained by SAS clustering in statistics.
机译:Chernoff人脸是一种用于可视化多维数据的经典方法。该方法表示人脸形状的多维数据。使用这种方法的动机是,人类擅长识别面孔并注意到其中的微小变化。因此,人类的视觉判断可以用来聚类面部。但是,不同的人对同一张脸可能有不同的判断,这会影响分析结果。本文提出了一种新的面孔分类方法。该方法的重点是根据切诺夫脸的量化总体特征对其进行分类。将一个Chernoff面视为一个几何图形组,并通过V系统在频域中计算任意两个面之间的距离,该系统是L_2 [0,1]上的一个完整的正交函数系统。通过结果距离对人脸进行分类,从而获得统一合理的评估结果。此外,我们可以根据给定的评估标准进一步评估样本。这种方法为Chernoff脸部提供了一种新的自动聚类方法,可以避免由于人为视觉错误而造成的误判。实验结果表明,该方法简便,快速,有效。分类结果与通过SAS聚类获得的统计结果相同。

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