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Tissue object-based machine learning system for automated scoring of digital whole slides

机译:基于组织对象的机器学习系统,用于对数字整张幻灯片进行自动评分

摘要

A facility includes systems and methods for providing a learning-based image analysis approach for the automated detection, classification, and counting of objects (e.g., cell nuclei) within digitized pathology tissue slides. The facility trains an object classifier using a plurality of reference sample slides. Subsequently, and in response to receiving a scanned image of a slide containing tissue data, the facility separates the whole slide into a background region and a tissue region using image segmentation techniques. The facility identifies dominant color regions within the tissue data and identifies seed points within those regions using, for example, a radial symmetry based approach. Based at least in part on those seed points, the facility generates a tessellation, each distinct area in the tessellation corresponding to a distinct detected object. These objects are then classified using the previously-trained classifier. The facility uses the classified objects to score slides.
机译:设施包括用于提供基于学习的图像分析方法的系统和方法,用于自动检测,分类和计数数字化病理组织玻片中的对象(例如,细胞核)。该设施使用多个参考样本载玻片训练对象分类器。随后,响应于接收到包含组织数据的载玻片的扫描图像,该设施使用图像分割技术将整个载玻片分离为背景区域和组织区域。该设施使用例如基于径向对称的方法来识别组织数据内的主要颜色区域,并识别那些区域内的种子点。设施至少部分地基于那些种子点,生成镶嵌,该镶嵌中的每个不同区域对应于一个不同的检测到的对象。然后使用先前训练的分类器对这些对象进行分类。该设施使用分类的对象对幻灯片进行评分。

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