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A new algorithm for automatic assessment of the degree of TB-infection using images of ZN-stained sputum smear

机译:一种使用ZN染色痰涂片图像自动评估结核病感染程度的新算法

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This paper describes a new algorithm for automatic assessment of the degree of TB-infection, by counting the number of Mycobacteria i.e., acid fast bacilli (AFB) in the color images of ZN-stained sputum smear. This algorithm consists of two stages. The first (“pre-processing”) stage involves exploiting color information to segment the candidate AFB in the image from the background, based on classification of pixels in the HSI color-space using Mahalanobis distance. In this context, we introduce a novel “divide and conquer” strategy to improve the robustness of color-classification. The pre-processing stage is followed by connected component labeling, size-thresholding to remove noisy objects, proximity-grouping by using a novel proximity-test algorithm, and area-based classification. Our algorithm identifies and counts the number of AFB irrespective of their shapes, can handle bacilli with beaded structure (which are important and are specific to TB) and has shown reasonable success in isolating clumps. A total of 205 images of ZN-stained sputum smears taken from more than 12 patients were considered in our experiments. Results on 169 images, based on HSI clusters built from 36 other images, are encouraging. Some of the images used in building the data-base and also in validation, include those sent by the RNTCP (Govt. of India) for training-purposes.
机译:本文介绍了一种通过对ZN染色痰涂片彩色图像中分枝杆菌的数量(即耐酸杆菌(AFB))进行计数来自动评估TB感染程度的新算法。该算法包括两个阶段。第一阶段(“预处理”)涉及基于使用Mahalanobis距离的HSI颜色空间中像素的分类,利用颜色信息从背景中分割图像中的候选AFB。在这种情况下,我们引入了一种新颖的“分而治之”策略,以提高颜色分类的鲁棒性。在预处理阶段之后,进行连接的组件标记,尺寸阈值以去除嘈杂的对象,使用新颖的接近度测试算法进行接近度分组以及基于区域的分类。我们的算法可以识别和计数AFB的数量,而不论其形状如何,都可以处理带有串珠结构的细菌(这是很重要的,对于结核病是特定的),并且在分离团块方面显示出了合理的成功。在我们的实验中,共考虑了205幅从12例以上患者身上采集的ZN染色痰涂片的图像。基于从其他36张图像构建的HSI群集的169张图像的结果令人鼓舞。用于建立数据库以及进行验证的一些图像包括RNTCP(印度政府)为培训目的而发送的图像。

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