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Color Image Segmentation Using Morphological Clustering And Fusion With Automatic Scale Selection

机译:使用形态学聚类和自动比例选择融合的彩色图像分割

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摘要

In this paper, a color image segmentation method considering pairwise color projections is proposed. Each pairwise projection is analyzed according to an unsupervised morphological clustering which looks for the dominant colors of a 2D histogram. This leads to obtaining three segmentation maps combined by superposition after being simplified. The superposition process itself producing an over-segmentation of the image, a pairwise region merging is performed according to a similarity criterion up to a termination criterion. To fully automate the segmentation, an energy function is proposed to quantify the segmentation quality. The latter acts as a performance indicator and is used all over the segmentation to tune its parameters: the scale of the unsupervised morphological clustering and the termination criterion of region merging. Experimental results are conducted on a reference image database and comparisons with state-of-the-art algorithms.
机译:本文提出了一种考虑成对颜色投影的彩色图像分割方法。根据无监督形态聚类分析每个成对的投影,该聚类寻找2D直方图的主色。在简化之后,这导致获得通过叠加组合的三个分割图。叠加过程本身会产生图像的过度分割,根据相似度标准直至终止标准执行成对区域合并。为了使分割完全自动化,提出了一个能量函数来量化分割质量。后者充当性能指标,并在整个细分过程中用于调整其参数:无监督形态聚类的规模和区域合并的终止标准。实验结果在参考图像数据库上进行,并与最新算法进行比较。

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