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Multidimensional Characterisation of Time-dependent Image Data: A Case Study for the Peripheral Nervous System in Ageing Mice

机译:时间依赖性图像数据的多维特征:衰老小鼠周围神经系统的案例研究

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摘要

Segmentation of μm-resolution image data of irregularly shaped objects poses challenges to existing segmentation algorithms. This is especially true, when imperfections like noise, uneven lightning or traces of sample preparation are present in the image data. In this paper, considering electron micrographs of femoral quadriceps nerve sections of mice, a segmentation method to extract single axons surrounded by myelin sheaths is developed which is able to cope with various imperfections and artefacts. This approach successfully combines established methods like local thresholding and marker-based watershed transform to achieve a reliable segmentation of the given data. Indeed, the resulting segmentation map can be used to quantitatively determine geometrical characteristics of the axons and myelin sheaths. This is exemplified by modelling the joint probability distribution of axon area and myelin sphericity using a parametric copula approach, and by analysing the evolution of the model parameters for image data obtained from mice of different ages.
机译:不规则形状对象的μm分辨率图像数据的分割对现有分割算法构成挑战。当图像数据中存在噪声等缺陷时,尤其如此,当图像数据中存在不均匀的闪电或样品制备迹线。在本文中,考虑到小鼠股骨素曲面肌神经切片的电子显微照片,开发了一种分割方法,用于提取由髓鞘鞘包围的单一轴突,其能够应对各种缺陷和伪成物。这种方法成功结合了局部阈值和基于标记的流域变换等所建立的方法,以实现给定数据的可靠分割。实际上,所得到的分割图可以用于定量地确定轴突和髓鞘的几何特征。这是通过使用参数拷贝方法建模轴突区域和髓鞘球体的联合概率分布来举例说明的,并通过分析从不同年龄小鼠获得的图像数据的模型参数的演变。

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