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Detecting Evoked Responses under Stimulation Driven by Maximum-Length Sequences

机译:检测最大限度序列驱动的刺激下的诱发反应

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Objective Response Detection (ORD) Techniques applied to Evoked Potentials depend on the effective Number of Degrees of Freedom (NDOF) of spontaneous EEC Previous works proposed a method for estimating the NDOF of the Evoked Potential Detector (EPD) probability distribution under the null hypothesis of no response, based on the autocorrelation function (ACF) of the EEG, modeled as wide-or narrow-band colored noise. Considering narrow-band EEG, the use of Beta distribution based on NDOF estimates via ACF is able to reflect EPD distribution provided that the stimulation rate is non-uniform. The present work assesses an approach for randomizing the inter-stimulus interval using Maximum-Length Sequences (MLS) based on Monte Carlo simulation for several combinations of EEG bandwidths, central frequencies, numbers of epochs and number of samples per epoch. The results suggest such approach as a valid algorithm to be implemented in the development of specific devices to produce random inter-stimuli intervals.
机译:目标响应检测(ORD)应用于诱发电位的技术取决于自发EEC的有效自由度(NDOF)以前的作品,提出了一种用于估计诱发潜在检测器(EPD)概率分布的NDOF的方法无需基于EEG的自相关函数(ACF),以宽或窄带彩色噪声为基础。考虑到窄带脑电图,通过ACF基于NDOF估计使用Beta分布能够反映EPD分布,只要刺激率是不均匀的。本作基于Monte Carlo模拟,评估使用最大长度序列(MLS)对刺激间隔进行随机刺激间隔的方法,用于EEG带宽,中央频率,时频,数量的数量和样本数量的若干组合。结果表明,这种方法作为在特定设备开发中实现的有效算法,以产生随机刺激间隔。

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