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动态神经形态处理器中用于昆虫启发式时间特征检测的突触延迟

Synaptic Delays for Insect-Inspired Temporal Feature Detection in Dynamic Neuromorphic Processors.

作者信息

Sandin Fredrik, Nilsson Mattias

机构信息

Embedded Intelligent Systems Lab (EISLAB), Luleå University of Technology, Luleå, Sweden.

出版信息

Front Neurosci. 2020 Feb 28;14:150. doi: 10.3389/fnins.2020.00150. eCollection 2020.

Abstract

Spiking neural networks are well-suited for spatiotemporal feature detection and learning, and naturally involve dynamic delay mechanisms in the synapses, dendrites, and axons. Dedicated delay neurons and axonal delay circuits have been considered when implementing such pattern recognition networks in dynamic neuromorphic processors. Inspired by an auditory feature detection circuit in crickets, featuring a delayed excitation by post-inhibitory rebound, we investigate disynaptic delay elements formed by inhibitory-excitatory pairs of dynamic synapses. We configured such disynaptic delay elements in the DYNAP-SE neuromorphic processor and characterized the distribution of delayed excitations resulting from device mismatch. Interestingly, we found that the disynaptic delay elements can be configured such that the timing and magnitude of the delayed excitation depend mainly on the efficacy of the inhibitory and excitatory synapses, respectively, and that a neuron with multiple delay elements can be tuned to respond selectively to a specific pattern. Furthermore, we present a network with one disynaptic delay element that mimics the auditory feature detection circuit of crickets, and we demonstrate how varying synaptic weights, input noise and processor temperature affect the circuit. Dynamic delay elements of this kind open up for synapse level temporal feature tuning with configurable delays of up to 100 ms.

摘要

脉冲神经网络非常适合进行时空特征检测和学习,并且在突触、树突和轴突中自然地涉及动态延迟机制。在动态神经形态处理器中实现此类模式识别网络时,人们考虑了专用延迟神经元和轴突延迟电路。受蟋蟀听觉特征检测电路的启发,该电路具有抑制后反弹引起的延迟兴奋,我们研究了由抑制性-兴奋性动态突触对形成的双突触延迟元件。我们在DYNAP-SE神经形态处理器中配置了此类双突触延迟元件,并表征了由器件失配导致的延迟兴奋的分布。有趣的是,我们发现可以配置双突触延迟元件,使得延迟兴奋的时间和幅度分别主要取决于抑制性和兴奋性突触的效能,并且具有多个延迟元件的神经元可以被调整为选择性地响应特定模式。此外,我们提出了一个具有一个双突触延迟元件的网络,该网络模仿了蟋蟀的听觉特征检测电路,并且我们展示了改变突触权重、输入噪声和处理器温度如何影响该电路。这种动态延迟元件为突触级时间特征调谐开辟了道路,其可配置延迟可达100毫秒。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9c89/7059595/148e1d9a265d/fnins-14-00150-g0001.jpg

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