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Rician distributed functional MRI: Asymptotic power analysis of likelihood ratio tests for activation detection

机译:Rician分布式功能MRI:用于激活检测的似然比检验的渐近幂分析

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Since voxel time courses in functional magnetic resonance imaging (fMRI) are mostly produced from complex-valued data by taking the magnitudes, they obey Rician distributions, which can be approximated as Gaussian distributions only when signal-to-noise ratios (SNRs) are high. In this paper, we derive the asymptotic power of our recently developed activation detection statistic for Rician fMRI. The analysis shows that the asymptotic power is dependent only on the ratios of signal parameters to noise parameter of Rician distributed voxel time series, and allows us to better understand the nature of low SNRs in fMRI data analysis. Based on the power analysis, a more general and descriptive definition of SNR is provided than classical one.
机译:由于功能磁共振成像(fMRI)中的体素时间过程主要是通过取幅值而由复数值数据产生的,因此它们服从Rician分布,只有当信噪比(SNRs)高时,才可以近似为高斯分布。 。在本文中,我们得出了我们最近开发的针对Rician fMRI的激活检测统计量的渐近能力。分析表明,渐近能力仅取决于Rician分布式体素时间序列的信号参数与噪声参数之比,这使我们能够更好地了解fMRI数据分析中低SNR的性质。基于功率分析,提供了比经典SNR更通用和更具描述性的定义。

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