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A physiologically based model for temporal envelope encoding in human primary auditory cortex.

机译:基于生理的人类初级听觉皮层时间包络编码模型。

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摘要

Communication sounds exhibit temporal envelope fluctuations in the low frequency range (<70 Hz) and human speech has prominent 2-16 Hz modulations with a maximum at 3-4 Hz. Here, we propose a new phenomenological model of the human auditory pathway (from cochlea to primary auditory cortex) to simulate responses to amplitude-modulated white noise. To validate the model, performance was estimated by quantifying temporal modulation transfer functions (TMTFs). Previous models considered either the lower stages of the auditory system (up to the inferior colliculus) or only the thalamocortical loop. The present model, divided in two stages, is based on anatomical and physiological findings and includes the entire auditory pathway. The first stage, from the outer ear to the colliculus, incorporates inhibitory interneurons in the cochlear nucleus to increase performance at high stimuli levels. The second stage takes into account the anatomical connections of the thalamocortical system and includes the fast and slow excitatory and inhibitory currents. After optimizing the parameters of the model to reproduce the diversity of TMTFs obtained from human subjects, a patient-specific model was derived and the parameters were optimized to effectively reproduce both spontaneous activity and the oscillatory part of the evoked response.
机译:通信声音在低频范围(<70 Hz)中表现出时间包络波动,人类语音具有2-16 Hz的突出调制,最大值为3-4 Hz。在这里,我们提出了人类听觉通路(从耳蜗到主要听觉皮层)的一种新的现象学模型,以模拟对幅度调制白噪声的响应。为了验证模型,通过量化时间调制传递函数(TMTF)来评估性能。以前的模型只考虑听觉系统的下层阶段(直至下丘),或仅考虑丘脑皮质环。本模型分为两个阶段,基于解剖学和生理学发现,并包括整个听觉通路。从外耳到大肠的第一阶段,在耳蜗核中加入抑制性中间神经元,以提高在高刺激水平下的表现。第二阶段考虑到丘脑皮质系统的解剖学联系,包括快速和缓慢的兴奋性电流和抑制性电流。优化模型的参数以再现从人类受试者获得的TMTF的多样性之后,得出患者特定的模型,并对参数进行优化以有效地再现自发活动和诱发反应的振荡部分。

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