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Automatic assessment of the degree of TB-infection using images of ZN-stained sputum smear: New results

机译:使用ZN染色痰涂片图像自动评估TB感染程度:新结果

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We present new results in the context of automatic assessment of the presence of acid fast bacilli (AFB) in images of ZN-stained sputum smears. Specifically, the first phase involving color segmentation in the HSV space is improved in terms of quality by using a decision-tree classifier. Further, we have recognized the possibility of staining artifacts of large size, and propose a method of discriminating the same from clumps of AFB. The method involves the use of Haralick's texture features. Its importance lies in the fact that the presence of large clumps or even several small clumps in an image of a sputum smear generally indicates a higher degree of infection. The results of segmentation - as assessed by the Sorenson-Dice coefficient & the Hausdorff distance - are better than those pertaining to our previous work. The counts of AFB are close to those based on visual inspection, and the clumps could be separated from large staining artifacts successfully.
机译:我们在ZN染色的痰涂片图像中自动评估耐酸杆菌(AFB)的存在下提出了新的结果。具体来说,通过使用决策树分类器,可以改善HSV空间中涉及颜色分割的第一阶段的质量。此外,我们已经认识到可能会沾染大尺寸的伪影,并提出了一种将其与AFB团块区分开的方法。该方法涉及使用Haralick的纹理特征。其重要性在于,在痰涂片图像中出现大团块或什至几个小团块通常表明感染程度更高。通过Sorenson-Dice系数和Hausdorff距离评估的分割结果要好于先前的工作。 AFB的计数接近于目测检查,并且可以成功地将团块与大的染色痕迹分离。

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