Suppr超能文献

神经突追踪与对象处理。

Neurite Tracing With Object Process.

出版信息

IEEE Trans Med Imaging. 2016 Jun;35(6):1443-51. doi: 10.1109/TMI.2016.2515068. Epub 2016 Jan 6.

Abstract

In this paper we present a pipeline for automatic analysis of neuronal morphology: from detection, modeling to digital reconstruction. First, we present an automatic, unsupervised object detection framework using stochastic marked point process. It extracts connected neuronal networks by fitting special configuration of marked objects to the centreline of the neurite branches in the image volume giving us position, local width and orientation information. Semantic modeling of neuronal morphology in terms of critical nodes like bifurcations and terminals, generates various geometric and morphology descriptors such as branching index, branching angles, total neurite length, internodal lengths for statistical inference on characteristic neuronal features. From the detected branches we reconstruct neuronal tree morphology using robust and efficient numerical fast marching methods. We capture a mathematical model abstracting out the relevant position, shape and connectivity information about neuronal branches from the microscopy data into connected minimum spanning trees. Such digital reconstruction is represented in standard SWC format, prevalent for archiving, sharing, and further analysis in the neuroimaging community. Our proposed pipeline outperforms state of the art methods in tracing accuracy and minimizes the subjective variability in reconstruction, inherent to semi-automatic methods.

摘要

本文提出了一个神经元形态自动分析的流水线

从检测、建模到数字重建。首先,我们提出了一种使用随机标记点过程的自动、无监督的目标检测框架。它通过将标记对象的特殊配置拟合到神经分支的中心线,提取出连通的神经元网络,从而给出位置、局部宽度和方向信息。神经元形态的语义建模,如分叉和终端等关键节点,生成各种几何和形态描述符,如分支指数、分支角度、总神经纤维长度、节间长度,用于对特征神经元特征进行统计推断。从检测到的分支中,我们使用稳健高效的数值快速行进方法重建神经元树形态。我们从显微镜数据中捕获到一个数学模型,抽象出神经元分支的相关位置、形状和连接信息,将其表示为连通的最小生成树。这种数字重建以标准的 SWC 格式表示,在神经影像学领域中常用于存档、共享和进一步分析。我们提出的流水线在跟踪精度方面优于现有方法,并最大限度地减少了重建中固有的半自动方法的主观可变性。

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