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Detección de Bacilos de Tuberculosis en Muestras de Esputo por medio de Técnicas de Procesamiento de Imágenes

机译:图像处理技术检测痰标本中的结核杆菌

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Tuberculosis is one of the most deadly diseases according to the World Health Organization. In 2008, 1.1-1.7 million people died and 8.9-9.9 million new cases were regis-tered. Currently, the most important tool of diagnosis is the direct examination of sputum smears. Since early diagnosis is the main strategy to control tuberculosis, faster methods of diagnosis are required. In this paper, an algorithm to detect bacilli of tuberculosis in microscopic images of Ziehl-Neelsen-stained sputum smears is described. First, a database of 1,340 images was created. The algorithm considered three stages: segmentation, feature extraction and classification. The seg-mentation stage was based on color empirical rules. The feature extraction stage considered: Fourier descriptors, Hu moments and Zernike moments. The classification stage was based on a support vector machine. The algorithm reached 41.24% sensitivity. An improvement of this algorithm could represent a tool to rapidly identify risky sputum smears.
机译:根据世界卫生组织,结核病是最致命的疾病之一。 2008年,有110-170万人死亡,并且有890-990万新病例被重新登记。当前,最重要的诊断工具是直接检查痰涂片。由于早期诊断是控制结核病的主要策略,因此需要更快的诊断方法。本文描述了一种在Ziehl-Neelsen染色痰涂片镜检显微镜图像中检测结核杆菌的算法。首先,创建了一个1,340张图像的数据库。该算法考虑了三个阶段:分割,特征提取和分类。分段阶段基于颜色经验规则。考虑的特征提取阶段为:傅立叶描述符,Hu矩和Zernike矩。分类阶段基于支持向量机。该算法达到了41.24%的灵敏度。该算法的改进可以代表一种快速识别危险痰涂片的工具。

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