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A comparison of Gamma and Gaussian dynamic convolution models of the fMRI BOLD response

机译:fMRI BOLD响应的Gamma和高斯动态卷积模型的比较

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Blood oxygenation level-dependent (BOLD) contrast-based functional magnetic resonance imaging (fMRI) has been widely utilized to detect brain neural activities and great efforts are now stressed on the hemodynamic processes of different brain regions activated by a stimulus. The focus of this paper is the comparison of Gamma and Gaussian dynamic convolution models of the fMRI BOLD response. The convolutions are between the perfusion function of the neural response to a stimulus and a Gaussian or Gamma function. The parameters of the two models are estimated by a nonlinear least-squares optimal algorithm for the fMRI data of eight subjects collected in a visual stimulus experiment. The results show that the Gaussian model is better than the Gamma model in fitting the data. The model parameters are different in the left and right occipital regions, which indicate that the dynamic processes seem different in various cerebral functional regions. (C) 2005 Elsevier Inc. All rights reserved.
机译:基于血液氧合水平的(BOLD)造影剂功能磁共振成像(fMRI)已被广泛用于检测大脑神经活动,现在人们对通过刺激激活的不同大脑区域的血液动力学过程进行了巨大努力。本文的重点是fMRI BOLD响应的Gamma和高斯动态卷积模型的比较。卷积在对刺激的神经反应的灌注函数与高斯或伽马函数之间。通过非线性最小二乘最优算法,针对在视觉刺激实验中收集的八名受试者的fMRI数据,估计了两个模型的参数。结果表明,高斯模型在拟合数据方面优于伽玛模型。左右枕骨区域的模型参数不同,这表明动态过程在各个大脑功能区域中似乎有所不同。 (C)2005 Elsevier Inc.保留所有权利。

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