Shamma S A, Chadwick R S, Wilbur W J, Morrish K A, Rinzel J
J Acoust Soc Am. 1986 Jul;80(1):133-45. doi: 10.1121/1.394173.
A mathematical model of cochlear processing is developed to account for the nonlinear dependence of frequency selectivity on intensity in inner hair cell and auditory nerve fiber responses. The model describes the transformation from acoustic stimulus to intracellular hair cell potentials in the cochlea. It incorporates a linear formulation of basilar membrane mechanics and subtectorial fluid-cilia displacement coupling, and a simplified description of the inner hair cell nonlinear transduction process. The analysis at this stage is restricted to low-frequency single tones. The computed responses to single tone inputs exhibit the experimentally observed nonlinear effects of increasing intensity such as the increase in the bandwidth of frequency selectivity and the downward shift of the best frequency. In the model, the first effect is primarily due to the saturating effect of the hair cell nonlinearity. The second results from the combined effects of both the nonlinearity and of the inner hair cell low-pass transfer function. In contrast to these shifts along the frequency axis, the model does not exhibit intensity dependent shifts of the spatial location along the cochlea of the peak response for a given single tone. The observed shifts therefore do not contradict an intensity invariant tonotopic code.
开发了一种耳蜗处理的数学模型,以解释频率选择性对内毛细胞和听神经纤维反应中强度的非线性依赖性。该模型描述了从声学刺激到耳蜗内毛细胞电位的转换。它纳入了基底膜力学和盖膜下液-纤毛位移耦合的线性公式,以及内毛细胞非线性转导过程的简化描述。现阶段的分析仅限于低频单音。对单音输入的计算响应呈现出实验观察到的强度增加的非线性效应,如频率选择性带宽的增加和最佳频率的向下偏移。在该模型中,第一个效应主要是由于毛细胞非线性的饱和效应。第二个效应是由非线性和内毛细胞低通传递函数的综合效应导致的。与这些沿频率轴的偏移相反,对于给定的单音,该模型在沿耳蜗的峰值响应的空间位置上没有表现出强度依赖性偏移。因此,观察到的偏移并不与强度不变的音调定位编码相矛盾。