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Characterization of the univariate and multivariate techniques on the analysis of simulated and fMRI datasets with visual task

机译:具有视觉任务的模拟和FMRI数据集分析的单变量和多变量技术的特征

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Current analytical techniques applied to functional MRI (fMRI) data may be generally divided into two parts: univariate and multivariate techniques. It is therefore our attempt to evaluate and intercompare their respective algorithms on simulated and fMRI visual task data sets. In this study, the two representative univariate approaches, including the correlation and the specified-resolution wavelet analytical methods, and three multivariate based independent component analysis (ICA) approaches; including the Infomax ICA, the Fast ICA, and the JADE ICA are used for the purposes. Two simulated spatial sources with different time courses and noise levels and one fMRI dataset with visual task were employed for intercomparisons. Strategies for quantifying the performance of these techniques, the correlation analysis and receiver operating characteristics (ROC) are used to evaluate their respective accuracies on estimated time-courses and spatial layouts from the simulated and the fMRI visual task dataset In our results, it demonstrates that the multivariate techniques generally outperformed the univariate techniques, among which the Fast ICA performs satisfactory well on temporal and spatial accuracy.
机译:应用于功能MRI(FMRI)数据的当前分析技术通常可以分为两部分:单变量和多变量技术。因此,我们试图在模拟和FMRI视觉任务数据集上评估和交流其各自的算法。在这项研究中,两个代表性的单变量方法,包括相关性和指定分辨率小波分析方法,以及三种多变量的独立分量分析(ICA)方法;包括InfoMax ICA,快速ICA和Jade ICA用于目的。使用不同时间课程和噪声水平的两个模拟空间源以及具有可视任务的一个FMRI数据集进行了用于离法。量化这些技术性能的策略,相关分析和接收机操作特性(ROC)用于评估它们在估计的时间 - 课程和来自模拟和FMRI视觉任务数据集中的空间布局的各自精度,因此它表明了这一点多变量技术通常优于单变量技术,其中快速的ICA在时间和空间精度上进行令人满意的良好。

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