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Contour Detection of Labelled Cellular Structures from Serial Ultrathin Electron Microscopy Sections using GAC and Prior Analysis

机译:使用GAC和先验分析从连续超薄电子显微镜切片中检测标记的细胞结构

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摘要

In this paper we discuss how the classical geodesic active contours (GAC) model is enhanced by incorporating `prior' information into the scheme. The modified model is applied to biomedical imagery, specifically serial ultrathin electron microscopy sections. The approach used is to apply prior analysis on a training set of data and provide geometric information about the target object during the process of curve evolution. The experimental results and analysis for both synthetic and real images show that the approach performs better than our previous method. It can be implemented semi-automated fashion giving significant improvements compared to a manual approach.
机译:在本文中,我们讨论了如何通过将“先前”信息合并到方案中来增强经典测地线活动轮廓(GAC)模型。修改后的模型应用于生物医学图像,特别是连续超薄电子显微镜切片。所使用的方法是对训练数据集进行先验分析,并在曲线演变过程中提供有关目标对象的几何信息。针对合成图像和真实图像的实验结果和分析表明,该方法的性能优于我们以前的方法。与手动方法相比,它可以以半自动方式实施,从而带来了显着的改进。

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