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A study on quality assessment of the surface EEG signal based on fuzzy comprehensive evaluation method

机译:基于模糊综合评价法的表面脑电信号质量评估研究

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Surface EEG (Electroencephalography) signal is vulnerable to interference due to its characteristics and sampling methods. So it is of great importance to evaluate the collected EEG signal prior to use. Traditional methods usually use the impedance between skin and electrode to estimate the quality of the EEG signal, which has shortcomings such as monotonous features, high false positive rates, and poor real-time capability. Aiming at addressing these issues, this paper presents a novel model of EEG quality assessment based on Fuzzy Comprehensive Evaluation method. The developed model employs amplitude, power frequency ratio, and alpha band PSD (Power Spectral Density) ratio of resting EEG signal as evaluation factors, and performs a quantitative assessment of the signal quality. Experiments show that the proposed model can significantly determine the EEG signal quality. In addition, the model is simple in implementation with low computational complexity, and is able to present the EEG quality evaluation results in real time. Before the formal measurement, collecting short-term resting EEG data, and evaluating the EEG signal quality and current signal acquisition environment using the model, the collection efficiency of qualified EEG signals can be greatly improved.
机译:表面脑电图(脑电图)信号由于其特性和采样方法而容易受到干扰。因此,在使用前评估收集的EEG信号非常重要。传统方法通常使用皮肤和电极之间的阻抗来估计EEG信号的质量,该方法具有诸如单调特征,假阳性率高和实时性差等缺点。针对这些问题,本文提出了一种基于模糊综合评价法的脑电质量评价模型。开发的模型将静息EEG信号的幅度,功率频率比和alpha波段PSD(功率谱密度)比用作评估因子,并对信号质量进行定量评估。实验表明,该模型可以显着确定脑电信号质量。此外,该模型实施简单,计算复杂度低,并且能够实时呈现脑电图质量评估结果。在正式测量之前,收集短期静止的EEG数据,并使用该模型评估EEG信号质量和当前信号采集环境,可以大大提高合格EEG信号的收集效率。

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