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A new approach for single-trial detection of laser-evoked potentials and its application to pain prediction

机译:一种新的激光诱发电位检测的新方法及其在疼痛预测中的应用

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摘要

Single-trial detection of evoked brain potentials is essential for many research topics in neural engineering and neuroscience. In present study, a novel approach, which combines common spatial pattern (CSP) and multiple linear regression (MLR), is proposed to for single-trial detection of pain-related laser-evoked potentials (LEPs). The CSP method is effective in separating laser-evoked EEG response from ongoing EEG activity, while MLR makes an automatic and reliable estimation of the amplitudes and latencies of N2 and P2 from single-trial LEP waveforms. The MLR coefficients are further used for the prediction of pain perception, which is of great importance for both basic and clinical applications. The prediction is performed with both binary (classification of low pain and high pain) and continuous (regression on a continuous scale from 0 to 10) outcomes. The results show that the proposed methods could provide reliable performance at both with- and cross-individual levels.
机译:诱发脑潜力的单试检测对于神经工程和神经科学的许多研究主题至关重要。在目前的研究中,提出了一种结合公共空间模式(CSP)和多元线性回归(MLR)的新方法,用于对与疼痛相关的激光诱发电位(LEP)进行单试的检测。 CSP方法在从正在进行的EEG活动中分离激光诱发的EEG响应,而MLR从单试性LEP波形中自动可靠地估计N2和P2的幅度和延迟。 MLR系数进一步用于预测疼痛感知,这对于基本和临床应用来说是非常重要的。通过二元(低疼痛和高疼痛的分类)进行预测和连续(连续比例从0到10的回归)结果。结果表明,该方法可以在和交叉单个层面提供可靠的性能。

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