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首页> 外文期刊>IEEE Transactions on Biomedical Engineering >Independent component analysis of noninvasively recorded cortical magnetic DC-fields in humans
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Independent component analysis of noninvasively recorded cortical magnetic DC-fields in humans

机译:人体无创记录皮质磁直流场的独立成分分析

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摘要

We apply a recently developed multivariate statistical data analysis technique-so called blind source separation (BSS) by independent component analysis-to process magnetoencephalogram recordings of near-DC fields. The extraction of near-DC fields from MEG recordings has great relevance for medical applications since slowly varying DC-phenomena have been found, e.g., in cerebral anoxia and spreading depression in animals. Comparing several BSS approaches, it turns out that an algorithm based on temporal decorrelation successfully extracted a DC-component which was induced in the auditory cortex by presentation of music. The task is challenging because of the limited amount of available data and the corruption by outliers, which makes it an interesting real-world testbed for studying the robustness of ICA methods.
机译:我们应用最近开发的多元统计数据分析技术-通过独立分量分析称为盲源分离(BSS)-处理近DC磁场的脑磁图记录。由于已发现缓慢变化的DC现象,例如在脑缺氧和动物抑郁扩散中,从MEG记录中提取近DC场对医学应用具有重大意义。通过比较几种BSS方法,可以发现基于时间去相关的算法成功提取了DC分量,该DC分量是通过音乐呈现在听觉皮层中引起的。由于可用数据量有限以及异常值所造成的破坏,因此该任务具有挑战性,这使其成为研究ICA方法的鲁棒性的有趣的实际测试平台。

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