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Automatic Intestinal Canal Segmentation Based Region Growing with Multi-Scale Entropy

机译:基于多尺度熵的自动肠道分割区域生长

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To reduce the manual participation involved in existing digitized human intestinal canal segmentation, an algorithm based on region growing using multi-scale entropy as the regional growth standard is proposed. In this algorithm, the color digitized human slice image is converted from the RGB color space to the HSV color space firstly. Then the seed points for region growing are automatic generated by the hue component histogram in the HSV space. According to the similarity of entropy vectors with different radius, the intestinal canal in digitized human slice image can be automatic segmented by region growing method finally. The proposed algorithm is tested on Chinese Visible Human Dataset, and the qualitative analysis of experimental results shows the effectiveness of the proposed algorithm.
机译:为了减少现有数字化人类肠道分割中涉及的手动参与,提出了一种基于使用多尺度熵的区域生长的算法,作为区域生长标准。在该算法中,首先将颜色数字化人切片图像从RGB颜色空间转换为HSV颜色空间。然后,区域生长的种子点由HSV空间中的色调分量直方图自动产生。根据具有不同半径的熵载体的相似性,数字化人切片图像中的肠道可以通过区域生长方法自动分段。所提出的算法在中国可见人数据集上进行了测试,实验结果的定性分析表明了所提出的算法的有效性。

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