三维神经元尖端检测在体积显微镜图像

Min Liu, Hanchuan Peng, A. Roy-Chowdhury, E. Myers
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引用次数: 27

摘要

本文研究了体积显微镜图像堆中三维神经元尖端的检测问题。我们特别关注神经元跟踪应用,其中检测到的3D尖端可以用作播种点。现有的大多数神经元跟踪方法都需要很好地选择播种点。在本文中,我们提出了一种自动神经元尖端检测方法的体积显微镜图像堆栈。我们的方法基于首先利用曲率信息和射线射击强度分布模型检测二维尖端,然后通过排除误报将其扩展到三维堆栈。我们在V3D平台上对该方法进行了测试,该方法可以通过自动搜索连接检测到的3D尖端的最优“路径”来重建神经元。实验证明了该方法在构建全自动神经元跟踪系统中的有效性。
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3D Neuron Tip Detection in Volumetric Microscopy Images
This paper addresses the problem of 3D neuron tips detection in volumetric microscopy image stacks. We focus particularly on neuron tracing applications, where the detected 3D tips could be used as the seeding points. Most of the existing neuron tracing methods require a good choice of seeding points. In this paper, we propose an automated neuron tips detection method for volumetric microscopy image stacks. Our method is based on first detecting 2D tips using curvature information and a ray-shooting intensity distribution model, and then extending it to the 3D stack by rejecting false positives. We tested this method based on the V3D platform, which can reconstruct a neuron based on automated searching of the optimal ¡®paths' connecting those detected 3D tips. The experiments demonstrate the effectiveness of the proposed method in building a fully automatic neuron tracing system.
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