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Parallel independent component analysis using an optimized neurovascular coupling for concurrent EEG-fMRI sources

机译:使用优化的神经血管耦合并行eeg-FMRI源的并行独立分量分析

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The complexity of the human brain and the limitation of any one imaging approach motivates the need for multimodal measurements to better understand cerebral processing. A very natural goal is to integrate electrophysiological and hemodynamic activity. Among them, concurrent EEG-fMRI studies have shown great promise for understanding intrinsic brain properties yet analyzing such data presents a significant methodological challenge. Here, we propose a multivariate parallel ICA decomposition incorporating dynamic neurovascular coupling for concurrent EEG-fMRI recordings. The goal of our algorithm is to fuse multimodal EEG-fMRI information and detect/interpret the relationship between electrophysiological and hemodynamic sources via a temporal neurovascular connection enhancement. We analyze the performance of the algorithm on a valid simulation based on real EEG and fMRI components (sources) from our previous works and a neurovascular coupling built from an extended ‘balloon model’. The results from our simulations yield an accurate source tracking and linkage for concurrent EEG-fMRI, and provide a novel and efficient way to combine EEG and hemodynamic responses.
机译:人脑的复杂性和任何一种成像方法的限制促使需要多式化测量以更好地理解脑加工。一个非常自然的目标是整合电生理和血液动力学活动。其中,同时eEg-FMRI研究对理解内在大脑性质的理想表现出很好的希望,但分析这些数据具有重要的方法论挑战。在这里,我们提出了一种多变量并行ICA分解,其掺入动态神经血管耦合以进行同时EEG-FMRI录音。我们的算法的目标是通过时间神经血管连接增强来熔化多模式EEG-FMRI信息并检测/解释电生理学和血液动力学源之间的关系。我们分析了从我们之前的作品的真实EEG和FMRI组件(源)的有效仿真对算法的性能,以及由延长的“气球模型”构建的神经血管耦合。我们的模拟结果产生了对同时EEG-FMRI的准确源跟踪和连锁,并提供了一种结合脑电图和血液动力学反应的新颖有效方法。

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