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Active Mask Segmentation of Fluorescence Microscope Images

机译:主动掩模分割的荧光显微镜图像

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摘要

We propose a new active mask algorithm for the segmentation of fluorescence microscope images of punctate patterns. It combines the (a) flexibility offered by active-contour methods, (b) speed offered by multiresolution methods, (c) smoothing offered by multiscale methods, and (d) statistical modeling offered by region-growing methods into a fast and accurate segmentation tool. The framework moves from the idea of the “contour” to that of “inside and outside,” or masks, allowing for easy multidimensional segmentation. It adapts to the topology of the image through the use of multiple masks. The algorithm is almost invariant under initialization, allowing for random initialization, and uses a few easily tunable parameters. Experiments show that the active mask algorithm matches the ground truth well and outperforms the algorithm widely used in fluorescence microscopy, seeded watershed, both qualitatively, as well as quantitatively.
机译:我们提出了一种新的主​​动遮罩算法,用于点状图案荧光显微镜图像的分割。它结合了(a)活动轮廓方法提供的灵活性,(b)多分辨率方法提供的速度,(c)多尺度方法提供的平滑和(d)区域增长方法提供的统计模型,从而实现了快速准确的细分工具。该框架从“轮廓”的概念转变为“内部和外部”或遮罩的概念,从而可以轻松进行多维细分。它通过使用多个蒙版来适应图像的拓扑。该算法在初始化下几乎不变,可以进行随机初始化,并使用一些易于调整的参数。实验表明,主动掩膜算法在定性和定量上均能很好地匹配地面真相,并且优于荧光显微镜,种子分水岭中广泛使用的算法。

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