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Bayesian Model Comparison in Nonlinear BOLD fMRI Hemodynamics

机译:非线性BOLD fMRI血流动力学的贝叶斯模型比较

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摘要

Nonlinear hemodynamic models express the BOLD (blood oxygenation level dependent) signal as a nonlinear, parametric functional of the temporal sequence of local neural activity. Several models have been proposed for both the neural activity and the hemodynamics. We compare two such combined models: the original balloon model with a square-pulse neural model (Friston, Mechelli, Turner, & Price, 2000) and an extended balloon model with a more sophisticated neural model (Buxton, Uludag, Dubowitz, & Liu, 2004). We learn the parameters of both models using a Bayesian approach, where the distribution of the parameters conditioned on the data is estimated using Markov chain Monte Carlo techniques. Using a split-half resampling procedure (Strother, Anderson, & Hansen, 2002), we compare the generalization abilities of the models as well as their reproducibility, for both synthetic and real data, recorded from two different visual stimulation paradigms. The results show that the simple model is the better one for these data.
机译:非线性血液动力学模型将BOLD(取决于血液氧合水平)信号表示为局部神经活动时间序列的非线性参数功能。已经针对神经活动和血液动力学提出了几种模型。我们比较了两个这样的组合模型:原始气球模型和方脉冲神经模型(Friston,Mechelli,Turner和&Price,2000)和扩展气球模型和更复杂的神经模型(Buxton,Uludag,Dubowitz和Liu) ,2004)。我们使用贝叶斯方法学习这两个模型的参数,其中使用马尔可夫链蒙特卡洛技术估计以数据为条件的参数分布。使用二分半重采样程序(Strother,Anderson和Hansen,2002年),我们比较了模型的概括能力以及它们的可重复性(对于从两个不同的视觉刺激范例记录的合成数据和真实数据)。结果表明,对于这些数据,简单模型是更好的模型。

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