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首页> 外文期刊>IEEE Transactions on Biomedical Engineering >Nonlinear system identification and overparameterization effects in multisensory evoked potential studies
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Nonlinear system identification and overparameterization effects in multisensory evoked potential studies

机译:多感官诱发电位研究中的非线性系统识别和超参数化效应

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摘要

Traditional signal processing techniques have not been suitable in establishing contributions from different sensory paths in multisensory evoked potentials. In this paper, a nonlinear modeling technique is proposed to demonstrate the possible mechanisms of interaction between sensory paths. The nonlinear autoregressive with exogenous inputs (NARX) model is explored to establish a relationship between electrical activities of the brain obtained by unimodal and by bimodal stimulation. The intersensory phenomenon concept is extended using nonlinear system theory and applied to show the possible interactions between the visual and auditory sensory paths. In addition, the paper addresses the compensation phenomenon caused by overparameterization in the NARX algorithm when it is applied to event-related potentials. It is hoped that the nonlinear modeling approach will generate hypotheses about the intersensory interaction phenomenon, improving and advancing its theoretical formulation.
机译:传统的信号处理技术不适用于在多感官诱发电位中建立来自不同感官路径的贡献。在本文中,提出了一种非线性建模技术来证明感觉路径之间相互作用的可能机制。探索具有外部输入的非线性自回归模型(NARX),以建立通过单峰刺激和双峰刺激获得的大脑电活动之间的关系。使用非线性系统理论扩展了感官现象的概念,并将其应用于显示视觉和听觉感觉路径之间可能的相互作用。此外,本文还讨论了将NARX算法应用于事件相关电位时由过参数化引起的补偿现象。希望非线性建模方法能够生成关于感官相互作用现象的假设,从而改善和发展其理论公式。

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