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A Binaural Neuromorphic Auditory Sensor for FPGA: A Spike Signal Processing Approach

机译:FPGA的双耳神经形态听觉传感器:一种峰值信号处理方法

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This paper presents a new architecture, design flow, and field-programmable gate array (FPGA) implementation analysis of a neuromorphic binaural auditory sensor, designed completely in the spike domain. Unlike digital cochleae that decompose audio signals using classical digital signal processing techniques, the model presented in this paper processes information directly encoded as spikes using pulse frequency modulation and provides a set of frequency-decomposed audio information using an address-event representation interface. In this case, a systematic approach to design led to a generic process for building, tuning, and implementing audio frequency decomposers with different features, facilitating synthesis with custom features. This allows researchers to implement their own parameterized neuromorphic auditory systems in a low-cost FPGA in order to study the audio processing and learning activity that takes place in the brain. In this paper, we present a 64-channel binaural neuromorphic auditory system implemented in a Virtex-5 FPGA using a commercial development board. The system was excited with a diverse set of audio signals in order to analyze its response and characterize its features. The neuromorphic auditory system response times and frequencies are reported. The experimental results of the proposed system implementation with 64-channel stereo are: a frequency range between 9.6 Hz and 14.6 kHz (adjustable), a maximum output event rate of 2.19 Mevents/s, a power consumption of 29.7 mW, the slices requirements of 11141, and a system clock frequency of 27 MHz.
机译:本文介绍了神经形态双耳听觉传感器的新架构,设计流程和现场可编程门阵列(FPGA)实施分析,该传感器完全在尖峰域设计。与使用经典数字信号处理技术分解音频信号的数字耳蜗不同,本文中提出的模型使用脉冲频率调制处理直接编码为尖峰的信息,并使用地址事件表示接口提供一组经过频率分解的音频信息。在这种情况下,一种系统化的设计方法导致了一种通用的过程,该过程用于构建,调整和实现具有不同功能的音频分解器,从而促进具有自定义功能的合成。这使研究人员可以在低成本FPGA中实现自己的参数化神经形态听觉系统,以研究大脑中发生的音频处理和学习活动。在本文中,我们介绍了使用商业开发板在Virtex-5 FPGA中实现的64通道双耳神经形态听觉系统。为了分析其响应并表征其功能,该系统对各种音频信号感到兴奋。报告了神经形态听觉系统的响应时间和频率。建议的采用64声道立体声的系统实现的实验结果是:频率范围介于9.6 Hz和14.6 kHz(可调)之间,最大输出事件速率为2.19 Mevents / s,功耗为29.7 mW,切片要求为11141,系统时钟频率为27 MHz。

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