Application of growing self-organizing map to distinguish between finger tapping and non tapping from brain images

Pin Huang, P. Pathirana, D. Alahakoon, P. Brotchie
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引用次数: 1

Abstract

Growing self-organizing map (GSOM) has been characterized as a knowledge discovery visualization application which outshines the traditional self-organizing map (SOM) due to its dynamic structure in which nodes can grow based on the input data. GSOM is utilized as a visualization tool in this paper to cluster fMRI finger tapping and non- tapping data, demonstrating the visualization capability to distinguish between tapping or non-tapping. A unique feature of GSOM is a parameter called the spread factor whose functionality is to control the spread of the GSOM map. By setting different levels of spread factor, different granularities of region of interests within tapping or non-tapping images can be visualized and analyzed. Euclidean distance based similarity calculation is used to quantify the visualized difference between tapping and non tapping images. Once the differences are identified, the spread factor is used to generate a more detailed view of those regions to provide a better visualization of the brain regions.
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应用生长自组织图从脑图像中区分手指敲击和非敲击
增长自组织地图(growth self-organizing map, GSOM)是一种超越传统自组织地图(self-organizing map, SOM)的知识发现可视化应用,它具有动态结构,节点可以根据输入数据增长。本文利用GSOM作为可视化工具对fMRI手指敲击和非敲击数据进行聚类,展示了区分敲击和非敲击的可视化能力。GSOM的一个独特特性是一个称为扩展因子的参数,其功能是控制GSOM地图的扩展。通过设置不同级别的传播因子,可以对敲击或非敲击图像中不同粒度的兴趣区域进行可视化和分析。基于欧几里得距离的相似度计算用于量化敲击图像与非敲击图像之间的可视化差异。一旦确定了差异,扩散因子就被用来生成这些区域的更详细的视图,以提供更好的大脑区域可视化。
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