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Morphological-based microcalcification detection using adaptive thresholding and structural similarity indices

机译:使用自适应阈值和结构相似性指标的基于形态的微钙化检测

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In this paper, we propose a new morphological-based method for automatic detection of microcalcifications in digitized mammograms. It uses various structuring elements to deal with the diversity of microcalcification characteristics. The obtained morphological maps are converted to a continuous suspicion map (SM) based on the structural similarity index (SSIM). This new semantic representation map is then locally analyzed, using superpixels, to automatically estimate adaptive threshold values and finally identify potential microcalcification areas. The proposed method was evaluated using the publicly-available INBreast database. Experimental results show the benefits gained in terms of improving microcalcification detection performances compared to some state-of-the-art methods.
机译:在本文中,我们提出了一种新的基于形态学的方法,用于自动检测数字化乳房X线照片中的微钙化。它使用各种结构元素来处理微钙化特征的多样性。基于结构相似性指数(SSIM),将获得的形态图转换为连续可疑图(SM)。然后使用超像素对新的语义表示图进行局部分析,以自动估计自适应阈值并最终确定潜在的微钙化区域。使用公开的INBreast数据库对提出的方法进行了评估。实验结果表明,与某些最新方法相比,在改善微钙化检测性能方面获得了好处。

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