多步水平集分割重叠宫颈细胞的方法

Z. Islam, M. A. Haque
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引用次数: 9

摘要

重叠宫颈细胞的自动分割是医学图像分析中最具挑战性的问题之一。本文提出了一种新的多步骤水平集(LVS)方法,用于从多层宫颈细胞体积的巴氏涂片图像产生的单个EDF图像中从重叠细胞中分割细胞质和细胞核。第一步使用基于区域和边缘的水平集方法在高斯滤波图像上分割由自由或重叠单元组成的团块。第二步采用多步水平集方法从原始图像中分割出核。最后,使用水平集方法进行细胞质分割的最关键步骤,该方法根据细胞质的曲率、细胞质分割区域的保留时间、边缘信息和取决于细胞均匀性的速度调节器等标准进行优化。在ISBI 2015第二次重叠子宫颈细胞学图像分割挑战中,对该算法的性能进行了评估。尽管存在较弱的团块边界,但仍取得了较好的结果。尽管细胞核充血,但检测结果也很好。我们还能够在真实的巴氏涂片图像中分割两个重叠的细胞。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Multi-step level set method for segmentation of overlapping cervical cells
Automatic segmentation of the overlapping cervical cells is one of the most challenging problems in the medical image analysis. This paper presents a novel multi-step level set (LVS) method for segmenting cytoplasm and nuclei from overlapping cells in a single EDF image produced from Pap smear images of multi-layer cervical cell volumes. The first step segments the clump consisting of free or overlapping cells using a region-and edge-based level set method on the Gaussian filtered image. The second step segments the nuclei by a multi-step level set method from the original image. And finally, the most critical step of cytoplasm segmentation is done using level set method optimized by criteria such as curvature of the cytoplasm, duration of retaining the segmented area of the cytoplasm, edge information and a speed regulator depends on the homogeneity of the cell. The performance of the proposed algorithm is evaluated on the real cervical cell image provided by the second overlapping cervical cytology image segmentation challenge at ISBI 2015. Clump detection shows good result in spite of the weak clump boundary. Nuclei detection also shows good result in spite of congestion of nuclei. We are also able to segment two overlapping cells in the real Pap smear image.
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