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Segmentation of Touching Mycobacterium Tuberculosis from Ziehl-Neelsen Stained Sputum Smear Images

机译:Ziehl-Neelsen染色痰涂片图像触摸分枝杆菌的分割

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Touching Mycobacterium tuberculosis objects in the Ziehl-Neelsen stained sputum smear images present different shapes and invisible boundaries in the adhesion areas, which increases the difficulty in objects recognition and counting. In this paper, we present a segmentation method of combining the hierarchy tree analysis with gradient vector flow snake to address this problem. The skeletons of the objects are used for structure analysis based on the hierarchy tree. The gradient vector flow snake is used to estimate the object edge. Experimental results show that the single objects composing the touching objects are successfully segmented by the proposed method. This work will improve the accuracy and practicability of the computer-aided diagnosis of tuberculosis.
机译:在Ziehl-Neelsen染色痰涂片图像中触摸分枝杆菌对象存在不同的形状和隐形边界在粘附区域,这增加了物体识别和计数的难度。在本文中,我们提出了一种与梯度向量流动蛇组合的分段方法,以解决这个问题。物体的骨架用于基于层次结构树的结构分析。梯度矢量流蛇用于估计物体边缘。实验结果表明,构成触摸物体的单个物体被提出的方法成功分割。这项工作将提高计算机辅助诊断结核病的准确性和实用性。

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