引入时间分量对脑电图反问题的影响

Boughariou Jihene, Zouch Wassim, Ben Hamida Ahmed
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引用次数: 3

摘要

脑电图是一种广泛使用的技术,具有较好的时间分辨率,它可以测量头皮上不同位置之间的电位差。神经电流定位的脑电图反问题是一个不适定问题,即在头部体积内无限次的电流分布可以产生相同的表面电位分布。为此,存在许多解决方法。本文提出了一种反演问题的时空求解方法。事实上,研究时间分量对提高定位性能是非常重要的。因此,我们将重点关注传统的方法:最小范数解MN,加权最小范数解WMN和标准化低分辨率脑电磁断层扫描sLORETA。本研究的主要目的是强调时间成分对大脑活动定位的影响。结果表明,时间分量的积分可以减小定位误差值。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Effect of Introducing time component on the EEG inverse problem
The electroencephalography is a widely used technique with a better temporal resolution, which measures the potential difference between various locations on the scalp. The EEG inverse problem for localization of neural electrical current is an ill-posed problem, that is to say, an infinite number of current distribution in the head volume can produce the same potential distribution on the surface. To this end, many resolution methods exist. This paper presents a spatio-temporal resolution of the Inverse Problem (IP). In fact, the study of the temporal component is important to improve the localization performances. Since, we will focus on the conventional method: Minimum norm solution MN, weighted minimum norm solution WMN and standardized Low resolution brain electromagnetic tomography sLORETA. The main objective of this study is to highlight the effect of the temporal component on the brain activity localization. We demonstrated that the integration of the time component could reduce the localization error value.
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