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Scale estimate of self-organizing map for color image segmentation

机译:自组织图用于彩色图像分割的比例估计

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Self-Organizing Maps (SOM) have presented excellent effect in color image segmentation; the scale of SOM will directly affect the accuracy of segmentation results. In this paper, we proposed a novel scale estimated of self-organizing map (SE-SOM) for color image segmentation based on SOM clustering. Different from conventional SOM model, it determines the number of nodes of competition layer by 3-D spatial distribution of pixels in HSV (Hue-Saturation-value) color space. Then sample pixels to train the map topology of the image and segment pixels by computing similarity between their feature vectors with weights of each node. Finally, design a connectivity filter to update labels of image to decrease noise. Statistical information are used to design map scale, which adapted the final SOM scale to the distribution feature of pixels, clustering results more accurate and stable, Experiments results show that the algorithm can produce ideal results with manual segmentation and suitable PNSR values.
机译:自组织图(SOM)在彩色图像分割中表现出出色的效果; SOM的规模将直接影响分割结果的准确性。在本文中,我们提出了一种基于SOM聚类的彩色图像分割自组织图(SE-SOM)的新比例尺。与传统的SOM模型不同,它通过HSV(色相饱和度值)色彩空间中像素的3-D空间分布来确定竞争层的节点数。然后对像素进行采样,以训练图像的地图拓扑,并通过计算像素特征向量与每个节点的权重之间的相似度来对像素进行分割。最后,设计一个连通性过滤器以更新图像标签以减少噪点。统计信息用于设计地图比例尺,使最终的SOM比例尺适应像素的分布特征,聚类结果更准确,更稳定。实验结果表明,该算法通过人工分割和合适的PNSR值可以产生理想的结果。

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