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Analyzing the performance of segmented trajectory reconstruction of lower limb movements from EEG signals with combinations of electrodes, gaps, and delays

机译:用电极,间隙和延迟组合分析eEG信号分段轨迹重建的分段轨迹重建的性能

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Objective: Brain & ndash;machine interfaces have performed continuous trajectory reconstruction of limb movements from brain signals relying on multiple linear regression. Most reported approaches deal with the reconstruction of the entire motion trajectory using a single regression and choosing its parameters arbitrarily. This study proposes the reconstruction of trajectories dividing them on phases and proposing a regression for each phase. The parameters for each regressor were selected according to their influence in the performance of the trajectory reconstruction. Methods: Isotonic flexions and extensions of the hip and knee were segmented in phases and a linear regressor was proposed for each phase. The number of electrodes, gaps, and delays of these regressors were selected using an exhaustive comprehensive search to improve the correlation coefficient, normalized root mean square error, and signal-to-noise ratio of the reconstructed trajectory. Results: The most frequent electrodes in the trajectory reconstructions between subjects with good performance were electrodes Fz, C3, C4, Cz, P3, P4, and Pz. The combination of a delay of 3 s with 9 gaps gave better performances in general. Conclusions: In this study it was appreciated that the electrodes that mainly contribute to the trajectory reconstruction are located around the mid-scalp. Also, it was appreciated that the information of movement in the electrical activity is located around 3 s before the movement. Significance: The set of parameters obtained could be helpful to define a limited numbers of electrodes. The delay and number of data samples could also be helpful to establish better experimental setups.
机译:目的:脑–机器界面已经从依赖于多个线性回归的脑信号进行了连续轨迹重建。大多数报道的方法处理使用单个回归并任意选择其参数的整个运动轨迹的重建。本研究提出重建将它们划分在阶段的轨迹并提出对每个阶段的回归。根据其在轨迹重建性能的影响下选择每个回归的参数。方法:在相阶段分段,髋关节和膝关节的等渗屈曲和延伸部,并为每个阶段提出线性回归。使用详尽的综合搜索选择这些回归器的电极,间隙和延迟的数量,以改善重建轨迹的相关系数,归一化均方误差和信噪比。结果:具有良好性能的受试者之间的轨迹重建中最常用的电极是电极FZ,C3,C4,CZ,P3,P4和PZ。 3秒的延迟组合为9次间隙,一般都具有更好的性能。结论:在这项研究中,应当理解,主要导致轨迹重建的电极位于中皮中。而且,应当理解,电活动中的运动的信息位于运动之前的3秒约为3。显着性:获得的一组参数可以有助于定义有限数量的电极。数据样本的延迟和数量也可能有助于建立更好的实验设置。

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