Bilinear dynamical systems

被引:45
作者
Penny, W [1 ]
Ghahramani, Z
Friston, KJ
机构
[1] UCL, Wellcome Dept Imaging Neurosci, London WC1N 3BG, England
[2] UCL, Gatsby Computat Neurosci Unit, London WC1N 3BG, England
基金
英国惠康基金;
关键词
functional magnetic resonance imaging; deconvolution; connectivity; expectation-maximization; dynamical; embedding;
D O I
10.1098/rstb.2005.1642
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
In this paper, we propose the use of bilinear dynamical systems (BDS)s for model-based deconvolution of fMRI time-series. The importance of this work lies in being able to deconvolve haemodynamic time-series, in an informed way, to disclose the underlying neuronal activity. Being able to estimate neuronal responses in a particular brain region is fundamental for many models of functional integration and connectivity in the brain. BDSs comprise a stochastic bilinear neurodynamical model specified in discrete time, and a set of linear convolution kernels for the haemodynamics. We derive an expectation-maximization (EM) algorithm for parameter estimation, in which fMRI time-series are deconvolved in an E-step and model parameters are updated in an M-Step. We report preliminary results that focus on the assumed stochastic nature of the neurodynamic model and compare the method to Wiener deconvolution.
引用
收藏
页码:983 / 993
页数:11
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