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Segmentation of tiny objects in very poor-quality angiogenesis images

机译:劣质血管生成图像中微小物体的分割

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This paper deals with a straightforward and effective solution that isolates tiny objects from very poor-quality angiogenesis images. The objects of interest consist of the cross-section of blood vessels present in histological cuts of malign tumors that grow in soft parts of the human body through a natural process known as angiogenesis. The proposed strategy applies a conditional morphological closing operator using a structuring element based on criteria resulting from local statistical properties. This approach gives in all cases a lower percent of false target count (FTC) and false non-target count (FNTC) errors, with respect to the error equally calculated for two other strategies discussed briefly in this paper, when the results are compared with images segmented manually by pathologists.
机译:本文提出了一种直接有效的解决方案,该解决方案可将微小物体与质量较差的血管生成图像隔离开。感兴趣的对象包括恶性肿瘤的组织切片中存在的血管横截面,这些恶性肿瘤通过称为血管生成的自然过程在人体的柔软部位生长。所提出的策略基于局部统计属性得出的标准,使用结构元素应用条件形态学闭合算子。相对于本文中简要讨论的另外两种策略,该方法在所有情况下均降低了错误目标计数(FTC)和错误非目标计数(FNTC)错误的百分比。病理学家手动分割的图像。

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