Open AccessJournal Article
Introduction to spiking neural networks: Information processing, learning and applications.
Filip Ponulak,Andrzej Kasiński +1 more
344
TL;DR: This paper summarizes basic properties of spiking neurons and spiking networks, and focuses, specifically, on models of spike-based information coding, synaptic plasticity and learning.
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Abstract: The concept that neural information is encoded in the firing rate of neurons has been the dominant paradigm in neurobiology for many years. This paradigm has also been adopted by the theory of artificial neural networks. Recent physiological experiments demonstrate, however, that in many parts of the nervous system, neural code is founded on the timing of individual action potentials. This finding has given rise to the emergence of a new class of neural models, called spiking neural networks. In this paper we summarize basic properties of spiking neurons and spiking networks. Our focus is, specifically, on models of spike-based information coding, synaptic plasticity and learning. We also survey real-life applications of spiking models. The paper is meant to be an introduction to spiking neural networks for scientists from various disciplines interested in spike-based neural processing.
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Citations
A model for communicating long synapses with guaranteed latencies on large neural networks
TL;DR: A new approach for the implementation of randomly interconnected neural networks on hardware taking into account the length of the synapses is introduced, and it is demonstrated that it is possible to guarantee the latency of the Long synapses when they are routed through an additional layer which is based on hierarchical structures of Networks on Chip.
1
STDP Design Trade-offs for FPGA-Based Spiking Neural Networks
Rafael Medina Morillas,Pablo Ituero +1 more
- 18 Nov 2020
TL;DR: Several high-frequency FPGA architectures for the realization of pair-based STDP are proposed and a comparison between these implementations is presented, and the compromise between area utilization and precision is analyzed.
1
Bio-inspired Event-based Motion Analysis with Spiking Neural Networks
Veis Oudjail,Jean Martinet +1 more
- 25 Feb 2019
TL;DR: This paper presents an original approach to analyze the motion of a moving pattern with a Spiking Neural Network, using visual data encoded in the Address-Event Representation to identify a minimal network structure able to recognize the motion direction of a simple binary pattern.
1
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