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Temporal Contrastive Learning for Spiking Neural Networks

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arxiv 2305.13909 v1 pith:EZDFPRNN submitted 2023-05-23 cs.CV

classification cs.CV
keywords snnsperformancetemporalcontrastivetimelearningstepshigh
verification ladder T0 review T1 audit T2 compute T3 formal
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Biologically inspired spiking neural networks (SNNs) have garnered considerable attention due to their low-energy consumption and spatio-temporal information processing capabilities. Most existing SNNs training methods first integrate output information across time steps, then adopt the cross-entropy (CE) loss to supervise the prediction of the average representations. However, in this work, we find the method above is not ideal for the SNNs training as it omits the temporal dynamics of SNNs and degrades the performance quickly with the decrease of inference time steps. One tempting method to model temporal correlations is to apply the same label supervision at each time step and treat them identically. Although it can acquire relatively consistent performance across various time steps, it still faces challenges in obtaining SNNs with high performance. Inspired by these observations, we propose Temporal-domain supervised Contrastive Learning (TCL) framework, a novel method to obtain SNNs with low latency and high performance by incorporating contrastive supervision with temporal domain information. Contrastive learning (CL) prompts the network to discern both consistency and variability in the representation space, enabling it to better learn discriminative and generalizable features. We extend this concept to the temporal domain of SNNs, allowing us to flexibly and fully leverage the correlation between representations at different time steps. Furthermore, we propose a Siamese Temporal-domain supervised Contrastive Learning (STCL) framework to enhance the SNNs via augmentation, temporal and class constraints simultaneously. Extensive experimental results demonstrate that SNNs trained by our TCL and STCL can achieve both high performance and low latency, achieving state-of-the-art performance on a variety of datasets (e.g., CIFAR-10, CIFAR-100, and DVS-CIFAR10).

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  1. EEvAct: Early Event-Based Action Recognition with High-Rate Two-Stream Spiking Neural Networks

    cs.CV 2025-07 conditional novelty 6.0 of 10

    A high-rate two-stream spiking network with a lightweight gated fusion unit achieves 94.9% on THU EACT-50 and enables early prediction within 100 ms.

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