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Computational normalization of H&E-stained histological images: Progress, challenges and future potential

机译:H&E染色的组织学图像的计算标准化:进步,挑战和未来潜力

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摘要

Different types of cancer can be diagnosed with the analysis of histological samples stained with hematoxylin-eosin (H&E). Through this stain, it is possible to identify the architecture of tissue components and analyze cellular morphological aspects that are essential for cancer diagnosis. However, preparation and digitization of histological samples can lead to color variations that influence the performance of segmentation and classification algorithms in histological image analysis systems. Among the determinant factors of these color variations are different staining time, concentration and pH of the solutions, and the use of different digitization systems. This has motivated the development of normalization algorithms of histological images for their color adjustments. These methods are designed to guarantee that biological samples are not altered and artifacts are not introduced in the images, thus compromising the lesions diagnosis. In this context, normalization techniques are proposed to minimize color variations in histological images, and they are topics covered by important studies in the literature. In this proposal, it is presented a detailed study of the state of art of computational normalization of H&E-stained histological images, highlighting the main contributions and limitations of correlated works. Besides, the evaluation of normalization methods published in the literature are depicted and possible directions for new methods are described.
机译:可以诊断出不同类型的癌症,分析用苏木精 - 曙红(H&E)染色的组织学样品。通过这种污渍,可以识别组织成分的结构,并分析对癌症诊断至关重要的细胞形态学方面。然而,组织学样本的制备和数字化可以导致颜色变化,其影响组织学图像分析系统中的分割和分类算法的性能。这些颜色变化的决定因子中,溶液的不同染色时间,浓度和pH,以及使用不同的数字化系统。这激发了组织学图像的标准化算法的发展,以获得它们的颜色调整。这些方法旨在保证未改变生物样品,并且在图像中不会引入伪像,从而损害病变诊断。在这种情况下,提出了标准化技术以最小化组织学图像中的颜色变化,并且它们是文献中重要研究所涵盖的主题。在这一提议中,介绍了H&E染色的组织学图像的计算归一化的艺术状态的详细研究,突出了相关工程的主要贡献和局限性。此外,描述了在文献中公布的标准化方法的评估,并描述了新方法的可能方向。

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