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Automatic working area classification in peripheral blood smears using spatial distribution features across scales

机译:使用跨尺度的空间分布特征对外周血涂片进行自动工作区域分类

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Automatic classification of working areas in peripheral blood smears can provide objective and reproducible quality control for the evaluation of smears and smear maker devices. However, it has drawn little research attention. In this paper we study this topic using image analysis and statistical pattern recognition methods. We employ generic features without requiring the extraction of individual cells. Two new spatial distribution features across scales are defined and utilized to classify working areas. We demonstrate that the only feature and method proposed in a similar work by others is insufficient to characterize the goodness of working areas, particularly the cell distribution. However, by utilizing it together with the features developed in this paper, we can achieve much better results. Our method has been tested on about 150 labeled images acquired from three malaria-infected Giemsa-stained blood smears using an oil immersion 100x objective lens.
机译:外周血涂片工作区域的自动分类可以为评估涂片和涂片器设备提供客观且可重复的质量控制。但是,它很少引起研究关注。在本文中,我们使用图像分析和统计模式识别方法来研究该主题。我们采用通用功能,无需提取单个单元格。定义了两个跨尺度的新空间分布特征,并将其用于对工作区域进行分类。我们证明了其他人在类似工作中提出的唯一特征和方法不足以表征工作区域的良好性,尤其是细胞分布。但是,通过将其与本文中开发的功能一起使用,我们可以获得更好的结果。我们的方法已经在使用油浸100x物镜从三个疟疾感染的吉姆萨染色的血液涂片中获得的大约150张标记图像上进行了测试。

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