GORDA: Graph-Based Orientation Distribution Analysis of SLI Scatterometry Patterns of Nerve Fibres

Esteban Vaca, M. Menzel, K. Amunts, M. Axer, Timo Dickscheid
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引用次数: 1

Abstract

Scattered Light Imaging (SLI) is a novel approach for microscopically revealing the fibre architecture of unstained brain sections. The measurements are obtained by illuminating brain sections from different angles and measuring the transmitted (scattered) light under normal incidence. The evaluation of scattering profiles commonly relies on a peak picking technique and feature extraction from the peaks, which allows quantitative determination of parallel and crossing in-plane nerve fibre directions for each image pixel. However, the estimation of the 3D orientation of the fibres cannot be assessed with the traditional methodology. We propose an unsupervised learning approach using spherical convolutions for estimating the 3D orientation of neural fibres, resulting in a more detailed interpretation of the fibre orientation distributions in the brain.
神经纤维SLI散射测量模式的基于图的取向分布分析
散射光成像(SLI)是一种显微镜下显示未染色脑切片纤维结构的新方法。测量结果是通过从不同角度照射脑切片并测量正常入射下的透射(散射)光来获得的。散射剖面的评估通常依赖于峰值选取技术和从峰值中提取特征,从而可以定量确定每个图像像素的平行和交叉平面内神经纤维方向。然而,纤维的三维方向的估计不能评估与传统的方法。我们提出了一种无监督学习方法,使用球面卷积来估计神经纤维的三维方向,从而更详细地解释大脑中纤维的方向分布。
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