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One-unit second-order blind identification with reference for short transient signals

机译:一单元二阶盲识别,以短瞬态信号为参考

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摘要

When prior knowledge is available, it is beneficial to use constrained blind source separation (BSS) algorithms that can utilize more information to distinguish the desired source from artifacts and noise. This paper proposes a one-unit second-order blind identification with reference (SOBI-R) algorithm for short transient signal extraction, which reformulates the conventional second-order blind identification (SOBI) algorithm in an iterative manner to achieve joint diagonalization and the reference information incorporated. The proposed algorithm was applied to single trial extraction of somatosensory evoked potential (SEP). The experimental results demonstrated its effectiveness. Compared with other algorithms including the autoregressive model with exogenous input (ARX), artificial neural networks (ANN) and one-unit the independent component analysis with reference (ICA-R), the proposed SOBI-R algorithm shows high robustness under conditions with low signal-to-noise ratios and less sensitivity to the reference signal.
机译:当可获得先验知识时,使用受约束的盲源分离(BSS)算法是有益的,该算法可以利用更多信息来将所需源与伪像和噪声区分开。提出了一种用于短期瞬态信号提取的一单元二阶带参考盲识别算法(SOBI-R),以迭代的方式重新构造了传统的二阶盲识别(SOBI)算法,实现了联合对角化和参考信息合并。该算法被应用于体感诱发电位(SEP)的单次试验提取。实验结果证明了其有效性。与包括外生输入的自回归模型(ARX),人工神经网络(ANN)和带有参考的一元独立成分分析(ICA-R)等其他算法相比,所提出的SOBI-R算法在低条件下具有较高的鲁棒性信噪比,对参考信号的灵敏度较低。

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