首页> 外国专利> MULTI-SAMPLE WHOLE SLIDE IMAGE PROCESSING IN DIGITAL PATHOLOGY VIA MULTI-RESOLUTION REGISTRATION AND MACHINE LEARNING

MULTI-SAMPLE WHOLE SLIDE IMAGE PROCESSING IN DIGITAL PATHOLOGY VIA MULTI-RESOLUTION REGISTRATION AND MACHINE LEARNING

机译:通过多分辨率配准和机器学习在数字病理学中进行多样本全幻灯片图像处理

摘要

When reviewing digital pathology tissue specimens, multiple slides may be created from thin, sequential slices of tissue. These slices may then be prepared with various stains and digitized to generate a Whole Slide Image (WSI). Review of multiple WSIs is challenging because of the lack of homogeneity across the images. In embodiments, to facilitate review, WSIs are aligned with a multi -resolution registration algorithm, normalized for improved processing, annotated by an expert user, and divided into image patches. The image patches may be used to train a Machine Learning model to identify features useful for detection and classification of regions of interest (ROIs) in images. The trained model may be applied to other images to detect and classify ROIs in the other images, which can aid in navigating the WSIs. When the resulting ROIs are presented to the user, the user may easily navigate and provide feedback through a display layer.
机译:查看数字病理组织标本时,可以从连续的薄组织切片中创建多个幻灯片。然后可以将这些切片准备好各种污渍,并进行数字化处理,以生成整个幻灯片图像(WSI)。由于图像之间缺乏同质性,因此多个WSI的审查具有挑战性。在实施例中,为了便于查看,将WSI与多分辨率配准算法对齐,对其进行标准化以改进处理,并由专家用户进行注释,并将其划分为图像块。图像补丁可用于训练机器学习模型,以识别可用于检测和分类图像中感兴趣区域(ROI)的特征。训练后的模型可以应用于其他图像,以检测和分类其他图像中的ROI,这可以帮助导航WSI。当将所得的ROI呈现给用户时,用户可以容易地导航并通过显示层提供反馈。

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