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September 10, 2025Nature Communications13 citationsOpen Access

A multisynaptic spiking neuron for simultaneously encoding spatiotemporal dynamics

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LFLiangwei FanHSHui ShenXLXiangkai Lian

Key Points

  • MSF neurons significantly outperform LIF neurons in accuracy while maintaining low power and latency.
  • The development of MSF neurons demonstrates a novel approach to encode spatiotemporal dynamics effectively.
  • Surrogate gradients enable the scalable implementation of MSF-based SNNs without performance degradation.
  • Extensive experimental results suggest that MSF neurons excel in tasks requiring event-driven processing.

Abstract

Spiking neural networks (SNNs) are biologically more plausible and computationally more powerful than artificial neural networks due to their intrinsic temporal dynamics. However, vanilla spiking neurons struggle to simultaneously encode spatiotemporal dynamics of inputs. Inspired by biological multisynaptic connections, we propose the Multi-Synaptic Firing (MSF) neuron, where an axon can establish multiple synapses with different thresholds on a postsynaptic neuron. MSF neurons jointly encode spatial intensity via firing rates and temporal dynamics via spike timing, and generalize Leaky Integrate-and-Fire (LIF) and ReLU neurons as special cases. We derive optimal threshold selection and parameter optimization criteria for surrogate gradients, enabling scalable deep MSF-based SNNs without performance degradation. Extensive experiments across various benchmarks show that MSF neurons significantly outperform LIF neurons in accuracy while preserving low power, low latency, and high execution efficiency, and surpass ReLU neurons in event-driven tasks. Overall, this work advances neuromorphic computing toward real-world spatiotemporal applications.

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Cite This Study

Fan et al. (2025) studied this question.

synapsesocial.com/papers/68c1b19354b1d3bfb60e8c41https://doi.org/10.1038/s41467-025-62251-6
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