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A Spiking Neuron Model of Auditory Neural Coding

机译:听神经编码的尖峰神经元模型

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摘要

The focus of this paper is to propose an explanation for how biological auditory mechanism is able to use spiking neurons to code high bandwidth information using information channels with very slow sampling rates (< 20 Hz). The general approach described in this paper is to decompose the signal into narrow band channels, each of which can be sampled at a frequency that is much lower than the center frequency of the corresponding narrow band filter. The new idea here is that the system can use non-uniform sampling to capture both the amplitude of the modulation and the phase of the carrier signal. In this paper, we first describe a system based on FFT analysis combined with overlap-add and a sampling process where magnitude is digitized but phase is represented using a temporal code of spiking neurons. The coding/decoding mechanism is based on the properties of the refractory period. We demonstrate that it is possible to reduce the bit rate to 50% by coding the carrier phase using the timing of the pulses. In the second part of this paper we show how a biological system may approximate the broadband auditory signal using spiking neurons in conjunction with a simple model of neural refractory period.
机译:本文的重点是提出一种解释,说明生物学听觉机制如何能够使用尖峰神经元通过信息通道以非常慢的采样速率(<20 Hz)对高带宽信息进行编码。本文所述的一般方法是将信号分解为窄带通道,每个通道都可以以比相应的窄带滤波器的中心频率低得多的频率进行采样。这里的新思想是系统可以使用非均匀采样来捕获调制幅度和载波信号相位。在本文中,我们首先描述了一种基于FFT分析,重叠叠加和采样过程的系统,该过程将幅度数字化,但使用尖峰神经元的时间码表示相位。编码/解码机制基于不应期的属性。我们证明,通过使用脉冲的时序对载波相位进行编码,可以将比特率降低到50%。在本文的第二部分中,我们展示了一个生物系统如何使用尖峰神经元结合简单的神经不应期模型来近似宽带听觉信号。

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