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A variant of logistic transfer function in Infomax and a postprocessing procedure for independent component analysis applied to fMRI data

机译:Infomax中Logistic传递函数的一种变体以及用于fMRI数据的独立成分分析的后处理程序

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摘要

Independent component analysis with Infomax algorithm can separate functional magnetic resonance imaging (fMRI) data into independent spatial components (brain activation maps) and their associated time courses. In the current study, we propose a variant of the logistic transfer function in Informax, referred to as a-loistic Infomax, and a postprocessing procedure to combine a consistentl, task-related (CTR) component with transiently task-related (TTR) components for a better definition of brain functional localization. This a-logistic Infomax introduced parameter a into the standard logistic transfer function of conventional Infomax algorithm. For postprocessing method, we suggest the use of a stepwise linear regression of CTR and TTR components to fit reference function and then to sum up with different weights only those with significant contributions to the reference function in order to obtain a task component activation map. The effectiveness of both approaches on separating components and functional localization was evaluated with simulated and real fMRI data. (c) 2007 Elsevier Inc. All rights reserved.
机译:使用Infomax算法进行独立成分分析可以将功能磁共振成像(fMRI)数据分离为独立的空间成分(大脑激活图)及其相关的时程。在当前的研究中,我们提出了Informax中逻辑传递函数的变体,称为a-loistic Infomax,并提出了将一致的任务相关(CTR)组件与瞬时任务相关(TTR)组件组合在一起的后处理程序更好地定义大脑功能定位。此a-logistic Infomax将参数a引入了常规Infomax算法的标准logistic传递函数中。对于后处理方法,我们建议使用CTR和TTR组件的逐步线性回归来拟合参考函数,然后仅对那些对参考函数有重大贡献的权重进行总和,以得出任务组件激活图。两种方法在分离成分和功能定位方面的有效性均通过模拟和真实fMRI数据进行了评估。 (c)2007 Elsevier Inc.保留所有权利。

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