On-Chip Adaptive Implementation of Neuromorphic Spiking Sensory Systems with Self-X Capabilities

H. Abd, A. König
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Abstract

In contemporary devices, the number and diversity of sensors is increasing, thus, requiring both efficient and robust interfacing to the sensors. Implementing the interfacing systems in advanced integration technologies faces numerous issues due to manufacturing deviations, signal swings, noise, etc. The interface sensor designers escape to the time domain and digital design techniques to handle these challenges. Biology gives examples of efficient machines that have vastly outperformed conventional technology. This work pursues a neuromorphic spiking sensory system design with the same efficient style as biology. Our chip, that comprises the essential elements of the adaptive neuromorphic spiking sensory system, such as the neuron, synapse, adaptive coincidence detection (ACD), and self-adaptive spike-to-rank coding (SA-SRC), was manufactured in XFAB CMOS 0.35 μm technology via EUROPRACTICE. The main emphasis of this paper is to present the measurement outcomes of the SA-SRC on-chip, evaluating the efficacy of its adaptation scheme, and assessing its capability to produce spike orders that correspond to the temporal difference between the two spikes received at its inputs. The SA-SRC plays a crucial role in performing the primary function of the adaptive neuromorphic spiking sensory system. The measurement results of the chip confirm the simulation results of our previous work.
具有自x能力的神经形态脉冲传感系统的片上自适应实现
在现代设备中,传感器的数量和多样性正在增加,因此,需要有效和稳健的传感器接口。在先进集成技术中实现接口系统面临着制造偏差、信号波动、噪声等诸多问题。接口传感器设计人员逃避到时域和数字设计技术来处理这些挑战。生物学给出了一些高效机器的例子,这些机器的性能大大超过了传统技术。这项工作追求与生物学相同的高效风格的神经形态刺突感觉系统设计。我们的芯片包含自适应神经形态尖峰感觉系统的基本元素,如神经元、突触、自适应重合检测(ACD)和自适应尖峰到秩编码(SA-SRC),采用XFAB CMOS 0.35 μm技术通过EUROPRACTICE制造。本文的主要重点是介绍片上SA-SRC的测量结果,评估其适应方案的有效性,并评估其产生与输入处接收到的两个尖峰之间的时间差异相对应的尖峰顺序的能力。SA-SRC在自适应神经形态刺突感觉系统的主要功能中起着至关重要的作用。该芯片的测量结果证实了我们前期工作的仿真结果。
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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