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首页> 外文期刊>NeuroImage >Using voxel-specific hemodynamic response function in EEG-fMRI data analysis: An estimation and detection model.
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Using voxel-specific hemodynamic response function in EEG-fMRI data analysis: An estimation and detection model.

机译:在EEG-fMRI数据分析中使用体素特有的血流动力学响应函数:一种估计和检测模型。

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摘要

Research groups who study epileptic spikes with simultaneous EEG-fMRI have used mostly the general linear model (GLM). A shortcoming of the GLM is that the specification of a simple hemodynamic response function (HRF) may lead to biased results. Other methods, which predict the hemodynamic response from the measured data, have been termed "recognition models". The merit of recognition models lies in the power of estimating the region-specific or voxel-specific HRF. We propose an approach that merges these two models in a general framework: estimate the HRF on the training data sets, and applying the estimated HRF on the other part of the data sets. The merit of this framework is that it can utilize the advantages of both models. A comparison of performance is made between the GLM with three fixed HRFs and the new model with voxel-specific HRFs. The main results are as follows: (1) in 18 of the 21 patients, the new model has a higher adjusted coefficient of multiple determination than the GLM with fixedHRF; (2) in some subjects, with the new model, we found areas of activation that had not been detected with the three fixed HRFs at our threshold of significance. The results suggest that the new model can do better than the fixed HRF GLM for the analysis of epileptic activity with EEG-fMRI.
机译:同时进行EEG-fMRI研究癫痫高峰的研究小组大多使用了通用线性模型(GLM)。 GLM的缺点是,简单的血液动力学响应函数(HRF)的规范可能会导致结果有偏差。从测量数据预测血液动力学反应的其他方法已被称为“识别模型”。识别模型的优点在于可以估计区域特定或体素特定的HRF。我们提出了一种在通用框架中合并这两个模型的方法:在训练数据集上估计HRF,并将估计的HRF应用于数据集的其他部分。该框架的优点在于它可以利用两种模型的优势。比较了具有三个固定HRF的GLM和具有特定于体素的HRF的新模型的性能。主要结果如下:(1)在21例患者中的18例中,新模型比具有固定HRF的GLM具有更高的调整后的多重确定系数; (2)在某些受试者中,使用新模型,我们发现在我们的显着性阈值下,三个固定HRF未检测到激活区域。结果表明,该新模型在用EEG-fMRI分析癫痫活动方面比固定的HRF GLM更好。

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