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AN EFFICIENT METHOD FOR AUTOMATED SEGMENTATION OF HISTOCHEMICALLY STAINED SLIDES

机译:一种自动将组织化学染色的切片进行分段的有效方法

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摘要

Pathologists are often required to classify large numbers of histological slides. Manual classification is tedious and often not quantitatively accurate. In this paper, an automated system for the classification of histochemically stained tissue slide images using three-dimensional histograms is presented. Color space invariance of tissue clusters was used in the automation. HSV color space was used to reduce correlation between the color features. Previous approaches used shape and texture to augment color segmentation; however, these methods were computationally expensive and used empirical rules for classification. Thus, they were less than ideal. The classification technique presented overcomes these problems. As the goal of the project was batch processing of large numbers of slides, the user interaction was minimized. Images obtained from automatically classifying a set of coronary artery slides were compared with the same set done by manual classification. Comparison showed automated classification to be more accurate and reproducible.
机译:经常需要病理学家对大量的组织切片进行分类。手动分类很繁琐,而且常常在数量上不准确。在本文中,提出了使用三维直方图对组织化学染色的组织玻片图像进行分类的自动化系统。组织簇的颜色空间不变性被用于自动化中。 HSV颜色空间用于减少颜色特征之间的相关性。先前的方法使用形状和纹理来增强颜色分割。但是,这些方法计算量大,并且使用经验法则进行分类。因此,它们不理想。提出的分类技术克服了这些问题。由于该项目的目标是对大量幻灯片进行批处理,因此最大限度地减少了用户交互。将通过自动分类一组冠状动脉玻片获得的图像与通过手动分类完成的同一组图像进行比较。比较显示自动分类更加准确和可重复。

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