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An Automatic Method for Nucleus Boundary Segmentation Based on a Closed Cubic Spline

机译:基于闭合立方样条的核边界分割的自动方法

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The recognition of brain nuclei is the basis for localizing brain functions. Traditional histological research, represented by atlas illustration, achieves the goal of nucleus boundary recognition by manual delineation, but it has become increasingly difficult to extend this handmade method to delineating brain regions and nuclei from large datasets acquired by the recently developed single-cell-resolution imaging techniques for the whole brain. Here, we propose a method based on a closed cubic spline (CCS), which can automatically segment the boundaries of nuclei that differ to a relatively high degree in cell density from the surrounding areas and has been validated on model images and Nissl-stained microimages of mouse brain. It may even be extended to the segmentation of target outlines on MRI or CT images. The proposed method for the automatic extraction of nucleus boundaries would greatly accelerate the illustration of high-resolution brain atlases.
机译:脑核的识别是本地化脑功能的基础。由Atlas图示而代表的传统组织学研究通过手动描绘来实现核边界识别的目标,但越来越困难地将这种手工制作方法扩展到从最近开发的单细胞分辨率获得的大型数据集中描绘大脑区域和核。整个大脑的成像技术。在这里,我们提出了一种基于闭合立方样条曲线(CCS)的方法,其可以自动分段核的边界,这些核的边界与周围区域的细胞密度相对高,并且已经在模型图像和NISL染色的微臂上验证小鼠脑。它甚至可以扩展到MRI或CT图像上的目标概述的分割。所提出的用于自动提取核界限的方法将极大地加速高分辨率脑纳塔的插图。

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