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ARMA order selection for EEG-an empirical comparison of three order selection algorithms

机译:ARMA订单选择eeg-a订单选择算法的实证比较

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摘要

The performance of three ARMA (autoregressive moving-average) order estimation algorithms, canonical correlation analysis, S-array, and Franke algorithm, on simulated and real electroencephalogram (EEG) signals is presented. It is shown that the S-array always correctly indicates the AR order but makes incorrect estimates of the MA order. The canonical correlation method identifies the model order correctly for simulated data and overestimates the AR order on real data. The Franke algorithm is shown to perform poorly in comparison to the other algorithms.
机译:提出了三个ARMA(自回归移动平均)估计算法,典型相关分析,S阵列和FRANKE算法的性能,对模拟和实际脑电图(EEG)信号进行了。结果表明,S-Array始终正确指示AR顺序,但对MA令的估计不正确。规范相关方法正确地识别模拟数据,用于模拟数据,高估在实际数据上的AR顺序。与其他算法相比,Franke算法显示得不好。

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