Massachusetts Institute of Technology, Cambridge, Massachusetts 02139, USA.
University of South California, Los Angeles, California 90033, USA.
J Acoust Soc Am. 2019 Jan;145(1):45. doi: 10.1121/1.5084042.
In this paper, an analytic model of the mammalian cochlea is developed. A mixed physical-phenomenological approach by utilizing existing work on the physics of classical box-representations of the cochlea and behavior of recent data-derived wavenumber estimates is used. Spatial variation is incorporated through a single independent variable that combines space and frequency. This paper arrives at closed-form expressions for the organ of Corti velocity, its impedance, the pressure difference across the organ of Corti, and its wavenumber. Model tests using real and imaginary parts of chinchilla data from multiple locations and for multiple variables are performed. The model also predicts impedances that are qualitatively consistent with current literature. For implementation, the model can leverage existing efforts for both filter bank or filter cascade models that target improved algorithmic or analog circuit efficiencies. The simplicity of the cochlear model, its small number of model constants, its ability to capture the variation of tuning, its closed-form expressions for physically-interrelated variables, and the form of these expressions that allows for easily determining one variable from another make the model appropriate for analytic and digital auditory filter implementations as discussed here, as well as for extracting macromechanical insights regarding how the cochlea works.
本文建立了哺乳动物耳蜗的分析模型。该模型采用了混合物理-现象学方法,利用了经典耳蜗盒模型物理和最近数据衍生波数估计行为的现有研究成果。通过一个将空间和频率结合在一起的单一独立变量来合并空间变化。本文得出了 Corti 器官速度、其阻抗、Corti 器官跨压和波数的封闭形式表达式。对来自多个位置和多个变量的真实和虚拟部分的 chinchilla 数据进行了模型测试。该模型还预测了与当前文献定性一致的阻抗。为了实现这一目标,该模型可以利用现有的滤波器组或滤波器级联模型,以提高算法或模拟电路效率。耳蜗模型的简单性、模型常数的数量少、捕捉调谐变化的能力、物理相关变量的封闭形式表达式,以及这些表达式的形式,使得模型适合于本文讨论的分析和数字听觉滤波器实现,以及提取有关耳蜗工作方式的宏观机械见解。