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A sputum smear microscopy image database for automatic bacilli detection in conventional microscopy

机译:痰涂片镜检图像数据库,用于常规镜检中自动细菌的检测

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In this work, we present an image database for automatic bacilli detection in sputum smear microscopy. The database comprises two parts. The first one, called the autofocus database, contains 1200 images with resolution of 2816 × 2112 pixels. This database was obtained from 12 slides, with 10 fields per slide. Each stack is composed of 10 images, with the fifth image in focus. The second one, called the segmentation and classification database, contains 120 images with resolution of 2816×2112 pixels. This database was obtained from 12 slices, with 10 fields per slice. In both databases, the images were acquired from fields of slides stained with the standard Kinyoun method. In both databases, accordingly to the background content, the images were classified as belonging to high background content or low background content. In all 120 images of segmentation and classification database, the identified objects were enclosed within a geometric shape by a trained technician. A true bacillus was enclosed in a circle. An agglomerated bacillus was enclosed by a rectangle and a doubtful bacillus (the image focus or geometry does not allow a clear identification of the object) was enclosed by a polygon. These marked objects could be used as a gold standard to calculate the accuracy, sensitivity and specificity of bacilli recognition.
机译:在这项工作中,我们提出了在痰涂片镜检中自动检测细菌的图像数据库。该数据库包括两个部分。第一个称为自动对焦数据库,包含1200张图像,分辨率为2816×2112像素。该数据库是从12张幻灯片获得的,每张幻灯片有10个字段。每个堆栈由10张图像组成,其中第五张图像处于焦点位置。第二个称为分割和分类数据库,包含120幅分辨率为2816×2112像素的图像。该数据库是从12个切片中获得的,每个切片10个字段。在这两个数据库中,图像均来自用标准Kinyoun方法染色的载玻片区域。在两个数据库中,根据背景内容,将图像分类为属于高背景内容或低背景内容。在分割和分类数据库的所有120张图像中,由经过培训的技术人员将识别出的对象封装在几何形状内。一个真正的芽孢杆菌被圈了起来。一个聚集的芽孢杆菌被一个矩形包围着,一个可疑的芽孢杆菌(图像的焦点或几何形状不允许清晰地识别物体)被一个多边形包围了。这些标记的对象可用作黄金标准,以计算细菌识别的准确性,敏感性和特异性。

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