首页> 外文会议>International Conference on Advanced Concepts for Intelligent Vision Systems(ACIVS 2005); 20050920-23; Antwerp(BE) >A Likelihood Ratio Test for Functional MRI Data Analysis to Account for Colored Noise
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A Likelihood Ratio Test for Functional MRI Data Analysis to Account for Colored Noise

机译:功能性MRI数据分析的似然比检验以解决有色噪声

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摘要

Functional magnetic resonance (fMRI) data are often corrupted with colored noise. To account for this type of noise, many pre-whitening and pre-coloring strategies have been proposed to process the fMRI time series prior to statistical inference. In this paper, a generalized likelihood ratio test for brain activation detection is proposed in which the temporal correlation structure of the noise is modelled as an autoregressive (AR) model. The order of the AR model is determined from experimental null data sets. Simulation tests reveal that, for a fixed false alarm rate, the proposed test is slightly (2-3%) better than current tests incorporating colored noise in terms of detection rate.
机译:功能性磁共振(fMRI)数据通常会被彩色噪声破坏。为了解决这种类型的噪声,已经提出了许多预白化和预着色策略,以便在统计推断之前处理fMRI时间序列。在本文中,提出了一种用于大脑激活检测的广义似然比检验,其中将噪声的时间相关结构建模为自回归(AR)模型。 AR模型的顺序由实验空数据集确定。仿真测试表明,对于固定的误报率,拟议的测试在检测率方面要比目前结合有色噪声的测试略好(2-3%)。

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