首页> 外文会议>Image Processing pt.1; Progress in Biomedical Optics and Imaging; vol.7 no.30 >Functional Feature Subspace Mapping of fMRI Data in the Spectral Domain
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Functional Feature Subspace Mapping of fMRI Data in the Spectral Domain

机译:fMRI数据在光谱域中的功能特征子空间映射

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摘要

We propose a new method for the analysis of functional magnetic resonance imaging (fMRI) which is called functional feature subspace mapping (FFSM). We mainly focused on the experimental design with periodic stimuli which can be described by a number of Fourier coefficients in the spectral domain. Then the subspace is obtained through the dimension reduction technique. Finally, the presence of activated time series is identified by the clustering method. Experiments with simulated data and the real human experiments are conducted to demonstrate that the algorithm we proposed is feasible. Although we focus on analyzing periodic fMRI data, the approach could be extended to analyze non-periodic fMRI data (event-related fMRI) by replacing the spectral analysis with a wavelet analysis.
机译:我们提出了一种用于功能磁共振成像(fMRI)分析的新方法,称为功能特征子空间映射(FFSM)。我们主要集中在具有周期性刺激的实验设计上,可以通过频谱域中的许多傅立叶系数来描述。然后通过降维技术获得子空间。最后,通过聚类方法确定激活的时间序列的存在。进行了模拟数据实验和真实的人体实验,证明了我们提出的算法是可行的。尽管我们专注于分析周期性fMRI数据,但该方法可以扩展为分析非周期性fMRI数据(事件相关性fMRI),方法是将频谱分析替换为小波分析。

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