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Boundary Fitting Based Segmentation of Fluorescence Microscopy Images

机译:基于边界拟合的荧光显微镜图像分割

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Segmentation is a fundamental step in quantifying characteristics, such as volume, shape, and orientation of cells and/or tissue. However, quantification of these characteristics still poses a challenge due to the unique properties of microscopy volumes. This paper proposes a 2D segmentation method that utilizes a combination of adaptive and global thresholding, potentials, z direction refinement, branch pruning, end point matching, and boundary fitting methods to delineate tubular objects in microscopy volumes. Experimental results demonstrate that the proposed method achieves better performance than an active contours based scheme.
机译:分割是量化特征(例如细胞和/或组织的体积,形状和方向)的基本步骤。然而,由于显微镜体积的独特性质,这些特征的量化仍然提出了挑战。本文提出了一种二维分割方法,该方法利用了自适应阈值和全局阈值,电势,z方向细化,分支修剪,端点匹配和边界拟合方法的组合来在显微镜下描绘管状对象。实验结果表明,与基于主动轮廓的方案相比,该方法具有更好的性能。

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