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Multiple k-Nearest Neighbor Classifier and Its Application to Tissue Characterization of Coronary Plaque

机译:多个k最近邻分类器及其在冠状动脉斑块组织表征中的应用

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In this paper we propose a novel classification method for the multiple k-nearest neighbor (MkNN) classifier and show its practical application to medical image processing. The proposed method performs fine classification when a pair of the spatial coordinate of the observation data in the observation space and its corresponding feature vector in the feature space is provided. The proposed MkNN classifier uses the continuity of the distribution of features of the same class not only in the feature space but also in the observation space. In order to validate the performance of the present method, it is applied to the tissue characterization problem of coronary plaque. The quantitative and qualitative validity of the proposed MkNN classifier have been confirmed by actual experiments.
机译:在本文中,我们提出了一种新的多k近邻(MkNN)分类器分类方法,并展示了其在医学图像处理中的实际应用。当在观察空间中提供一对观察数据的空间坐标及其在特征空间中的对应特征向量时,该方法可以进行精细分类。提出的MkNN分类器不仅在特征空间中而且在观察空间中都使用相同类的特征分布的连续性。为了验证本方法的性能,将其应用于冠状动脉斑块的组织表征问题。实际实验已经证实了拟议的MkNN分类器的定量和定性有效性。

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