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Semantic Segmentation of Microscopic Images Using a Morphological Hierarchy

机译:使用形态层次的显微图像语义分割

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The objective of semantic segmentation in microscopic images is to extract the cellular, nuclear or tissue components. This problem is challenging due to the large variations of these components features (size, shape, orientation or texture). In this paper we present an automatic technique to robustly identify the epithelial nuclei (crypt) against interstitial nuclei in microscopic images taken from colon tissues. The relationship between the histological structures (epithelial layer, lumen and stroma) and the ring like shape of the crypt are considered. The crypt inner boundary is detected using a closing morphological hierarchy and its associated binary hierarchy. The outer border is determined by the epithelial nuclei, overlapped by the maximal isoline of the inner boundary. The evaluation of the proposed method is made by computing the percentage of the mis-segmented nuclei against epithelial nuclei per crypt.
机译:显微图像中语义分割的目的是提取细胞,核或组织成分。由于这些组件特征(尺寸,形状,方向或纹理)的巨大差异,此问题极具挑战性。在本文中,我们提出了一种自动技术,可以从结肠组织拍摄的显微图像中可靠地识别上皮细胞核(隐窝)以对抗间质细胞核。考虑组织学结构(上皮层,管腔和间质)与隐窝的环状形状之间的关系。隐窝内部边界是使用封闭的形态层次及其相关的二进制层次来检测的。外边界由上皮细胞核决定,并与内边界的最大等值线重叠。通过计算每个隐窝中错误分割的核相对于上皮核的百分比来对所提出的方法进行评估。

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