数学模拟大脑对听觉刺激的反应

Thimothy Miles, Eva Ignatious, S. Azam, M. Jonkman, Friso De Boer
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引用次数: 2

摘要

该研究涉及使用脑电图(EEG)记录人类受试者的听觉诱发电位(AEPs)的研究。该研究旨在建立大脑对音频刺激反应的数学模型,其中包括通过模拟双耳听力来识别aep的差异。这是通过在两只耳朵中同步传输听觉刺激和在每只耳朵中180度反相的音调来实现的。本研究创建了一系列模型,旨在确定最适合aep的模型类型和顺序,并分析了同相和反相模型之间的差异。研究发现,多输入单输出(MISO)传递函数模型能够拟合aep。十阶模型提供最优的数学拟合;这些模型比低阶模型产生更大的拟合,而高阶模型产生最小的改进。零的加入也对数学拟合产生了微不足道的改善。所有科目的数学拟合率约为75-95%。对极-零曲线的分析表明,同相听觉刺激实验中频率大于125 rad/s的极对比反相听觉刺激实验产生的模型阻尼更大。这表明,如果大脑正在处理双耳听力,那么10极MISO传递函数中的高频极点应该具有低阻尼。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Mathematically Modelling the Brain Response to Auditory Stimulus
The research involves the study of auditory-evoked potentials (AEPs) recorded using electroencephalography (EEG) from human subjects. The study aims to mathematically model how the brain responds to the audio stimulus, which involves the identification of differences in the AEPs by simulating binaural hearing. This is achieved by transmitting auditory stimulus in-phase in both ears, and tones which are 180 degrees out of phase in each ear. The study creates a range of models with the aim to determine the type and order of the models which provide the best fit to the AEPs, and to analyze the differences between the homo-phasic and anti-phasic models. The work discovered that multi-input single-output (MISO) transfer function models are able to fit the AEPs. Tenth-order models provide optimal mathematical fit; these models produced significantly greater fit than lower order models while higher order models produce minimal improvement. The addition of zeros also produced insignificant improvement upon the mathematical fit. About 75-95% of mathematical fits were achieved across all subjects. Analysis of the pole-zero plots suggest that the pole pairs with frequencies greater than 125 rad/s are more damped for the trials using homo-phasic auditory stimulus compared with models generated for trials using anti-phasic stimulus. This suggests that if the brain is processing binaural hearing, then the high-frequency poles in 10-pole MISO transfer functions should have low damping.
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