Efficiency metrics for auditory neuromorphic spike encoding techniques using information theory

Ahmad El Ferdaoussi, J. Rouat, É. Plourde
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Abstract

Spike encoding of sound consists in converting a sound waveform into spikes. It is of interest in many domains, including the development of audio-based spiking neural network applications, where it is the first and a crucial stage of processing. Many spike encoding techniques exist, but there is no systematic approach to quantitatively evaluate their performance. This work proposes the use of three efficiency metrics based on information theory to solve this problem. The first, coding efficiency, measures the fraction of information that the spikes encode on the amplitude of the input signal. The second, computational efficiency, measures the information encoded subject to abstract computational costs imposed on the algorithmic operations of the spike encoding technique. The third, energy efficiency, measures the actual energy expended in the implementation of a spike encoding task. These three efficiency metrics are used to evaluate the performance of four spike encoding techniques for sound on the encoding of a cochleagram representation of speech data. The spike encoding techniques are: Independent Spike Coding, Send-on-Delta coding, Ben’s Spiker Algorithm, and Leaky Integrate-and-Fire (LIF) coding. The results show that LIF coding has the overall best performance in terms of coding, computational, and energy efficiency.
基于信息理论的听觉神经形态脉冲编码技术的效率度量
声音的尖峰编码包括将声音波形转换成尖峰。它在许多领域都引起了人们的兴趣,包括基于音频的峰值神经网络应用的开发,这是处理的第一个也是关键阶段。许多脉冲编码技术已经存在,但是没有系统的方法来定量评价它们的性能。本文提出了基于信息论的三个效率度量来解决这一问题。第一个指标是编码效率,衡量尖峰编码的信息在输入信号振幅上的比例。第二,计算效率,衡量信息编码的抽象计算成本强加于尖峰编码技术的算法操作。第三,能量效率,测量在执行尖峰编码任务时实际消耗的能量。这三个效率指标被用来评估四种尖峰编码技术对语音数据耳蜗表表示编码的性能。脉冲编码技术有:独立脉冲编码、脉冲上发送编码、本脉冲算法和泄漏集成-发射(LIF)编码。结果表明,LIF编码在编码、计算和能源效率方面具有最佳的总体性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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CiteScore
5.90
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