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Quantification of histopathological findings using a novel image analysis platform

机译:使用新型图像分析平台对组织病理学发现进行量化

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Digital pathology, including image analysis and automatic diagnosis of pathological tissue, has been developed remarkably. HALO is an image analysis platform specialized for the study of pathological tissues, which enables tissue segmentation by using artificial intelligence. In this study, we used HALO to quantify various histopathological changes and findings that were difficult to analyze using conventional image processing software. Using the tissue classifier module, the morphological features of degenerationecrosis of the hepatocytes and muscle fibers, bile duct in the liver, basophilic tubules and hyaline casts in the kidney, cortex in the thymus, and red pulp, white pulp, and marginal zone in the spleen were learned and separated, and areas of interest were quantified. Furthermore, using the cytonuclear module and vacuole module in combination with the tissue classifier module, the number of erythroblasts in the red pulp of the spleen and each area of acinar cells in the parotid gland were quantified. The results of quantitative analysis were correlated with the histopathological grades evaluated by pathologists. By using artificial intelligence and other functions of HALO, we recognized morphological features, analyzed histopathological changes, and quantified the histopathological grades of various findings. The analysis of histopathological changes using HALO is expected to support pathology evaluations.
机译:数字病理学,包括图像分析和病理组织的自动诊断,已经得到了显着发展。 HALO是专门用于病理组织研究的图像分析平台,可通过使用人工智能进行组织分割。在这项研究中,我们使用HALO量化了各种组织病理学变化和发现,这些变化和发现难以使用常规图像处理软件进行分析。使用组织分类器模块,可观察到肝细胞和肌肉纤维的变性/坏死,肝脏的胆管,肾脏的嗜碱性小管和透明管,胸腺的皮层以及红浆,白浆和边缘区的形态学特征/坏死学习并分离脾脏中的区域,并对感兴趣的区域进行量化。此外,将细胞核模块和液泡模块与组织分类器模块结合使用,可对脾的红髓和腮腺腺泡细胞每个区域中的成红细胞数进行定量。定量分析的结果与病理学家评估的组织病理学等级相关。通过使用人工智能和HALO的其他功能,我们可以识别形态特征,分析组织病理学变化并量化各种发现的组织病理学等级。期望使用HALO对组织病理学变化进行分析,以支持病理学评估。

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