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Image preprocessing to improve Acid-Fast Bacilli (AFB) detection in smear microscopy to diagnose pulmonary tuberculosis

机译:图像预处理可改善涂片显微镜检查中的酸快速杆菌(AFB)检测以诊断肺结核

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Pulmonary tuberculosis (TB) is a highly infectious disease. TB is curable if it is diagnosed opportunely. Worldwide, the most used diagnostic method is the analysis of smear microscopy, which consists in, using a microscope, detecting and counting the bacilli in the smear. The automatic detection of pulmonary tuberculosis usually involves processing and analyzing digital images related to smear microscopy. The main problem in this analysis is the color variation and low contrast in the images. This paper presents a quick and easy method to minimize these variations by using image preprocessing, changing the RGB color space to the HSV space, analyzing and modifying the original images characteristics to standardize them. The results are validated by using a further segmentation step of the images using Artificial Neural Networks (ANNs) and comparing the results obtained with and without the image preprocessing method.
机译:肺结核(TB)是一种高度传染性疾病。如果及时诊断出结核病是可以治愈的。在世界范围内,最常用的诊断方法是对涂片显微镜进行分析,其中包括使用显微镜对涂片中的细菌进行检测和计数。肺结核的自动检测通常涉及处理和分析与涂片显微镜检查有关的数字图像。这种分析的主要问题是图像的颜色变化和对比度低。本文提出了一种快速简便的方法,可通过使用图像预处理,将RGB颜色空间更改为HSV空间,分析和修改原始图像特征以使其标准化来最小化这些差异。通过使用人工神经网络(ANN)对图像进行进一步的分割步骤并比较使用和不使用图像预处理方法获得的结果,可以验证结果。

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