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Efficient localization of synchronous EEG source activities using a modified RAP-MUSIC algorithm

机译:使用改进的RAP-MUSIC算法对同步EEG源活动进行有效定位

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摘要

Synchronization across different brain regions is suggested to be a possible mechanism for functional integration. Noninvasive analysis of the synchronization among cortical areas is possible if the electrical sources can be estimated by solving the electroencephalography inverse problem. Among various inverse algorithms, spatio-temporal dipole fitting methods such as RAP-MUSIC and R-MUSIC have demonstrated superior ability in the localization of a restricted number of independent sources, and also have the ability to reliably reproduce temporal waveforms. However, these algorithms experience difficulty in reconstructing multiple correlated sources. Accurate reconstruction of correlated brain activities is critical in synchronization analysis. In this study, we modified the well-known inverse algorithm RAP-MUSIC to a multistage process which analyzes the correlation of candidate sources and searches for independent topographies (ITs) among precorrelated groups. Comparative studies were carried out on both simulated data and clinical seizure data. The results demonstrated superior performance with the modified algorithm compared to the original RAP-MUSIC in recovering synchronous sources and localizing the epileptiform activity. The modified RAP-MUSIC algorithm, thus, has potential in neurological applications involving significant synchronous brain activities.
机译:建议跨不同大脑区域进行同步是功能整合的一种可能机制。如果可以通过解决脑电图逆问题来估计电源,则可以对皮层区域之间的同步进行非侵入性分析。在各种逆算法中,时空偶极子拟合方法(如RAP-MUSIC和R-MUSIC)在有限数量的独立源的定位方面已显示出卓越的能力,并且还具有可靠地再现时间波形的能力。但是,这些算法在重构多个相关源时遇到困难。相关大脑活动的准确重建在同步分析中至关重要。在这项研究中,我们将著名的逆算法RAP-MUSIC修改为一个多阶段过程,该过程分析候选源的相关性并搜索预相关组之间的独立地形(IT)。对模拟数据和临床癫痫发作数据进行了比较研究。结果表明,与原始RAP-MUSIC相比,改进算法在恢复同步源和定位癫痫样活动方面具有优越的性能。因此,改进的RAP-MUSIC算法在涉及大量同步大脑活动的神经系统应用中具有潜力。

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