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Enhanced Hemisphere Concept for Color Pixel Classification

机译:增强了彩色像素分类的半球概念

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Most of current clustering methods are designed for general purpose other than a specific color pixel classification use. Color Line model representation emerged as the ultimate method for clustering pixels using RGB color components. However, this method is strongly sensitive to the adjustment of input parameters, which cannot conform to the frequent change of image structures and compositions. In this paper, we address this problem by introducing a hemisphere-grid based method for RGB pixel classification. Our method minimizes the reliance on user provided parameters as well as it can dynamically estimate the proper number of clusters. The properly clustering results prove the robustness and advantages of our method in classifying color pixels for unfamiliar input images.
机译:大多数当前聚类方法都是针对特定颜色像素分类使用而以外的通用目的而设计的。彩色线模型表示作为使用RGB颜色组件聚类像素的最终方法。然而,这种方法对输入参数的调整非常敏感,这不能符合图像结构和组合物的频繁变化。在本文中,我们通过引入基于半球网的方法来解决这个问题的RGB像素分类。我们的方法最大限度地减少了对用户提供的参数的依赖,以及它可以动态估计适当数量的簇。正确的聚类结果证明了我们在对不熟悉的输入图像分类颜色像素中的方法的鲁棒性和优点。

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