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Detection of glomeruli in renal pathology by mutual comparison of multiple staining modalities

机译:多种染色方式的相互比较检测肾病理学中的肾小球

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We evaluate the detection of glomerular structures in whole slide images (WSIs) of histopathological slides stained with multiple histochemical and immuno-histochemical staining using a convolutional neural network (CNN) based approach. We mutually compare the CNN performance on different stainings (Jones H&E, PAS, Sirius Red and CD10) and we present a novel approach to improve glomeruli detection on one staining by taking into account the classification results from differently stained consecutive sections of the same tissue. Using this integrative approach, the detection rate (Fl-score) on a single stain can be improved by up to 30%.
机译:我们评估用基于卷积神经网络(CNN)的方法的多种组织化学和免疫组织化学染色的组织病理学载玻片的整个幻灯片图像(WSIS)中的肾小球结构的检测。我们将CNN性能相互比较(琼斯H&E,PAS,Sirius Red和CD10),并且我们通过考虑来自同一组织的不同染色的连续部分的分类结果,提出了一种新的一种染色的肾小球检测。使用这种综合方法,单污染的检测率(FL-得分)可以提高高达30%。

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