Spiking Neural Network as Adaptive Event Stream Slicer
Jiahang Cao, Mingyuan Sun, Ziqing Wang, Hao Cheng, Qiang Zhang, Shibo Zhou, Renjing Xu
Abstract
Event-based cameras are attracting significant interest as they provide rich edge information, high dynamic range, and high temporal resolution. Many state-of-the-art event-based algorithms rely on splitting the events into fixed groups, resulting in the omission of crucial temporal information, particularly when dealing with diverse motion scenarios (, high/low speed).In this work, we propose SpikeSlicer, a novel-designed plug-and-play event processing method capable of splitting events stream adaptively.SpikeSlicer utilizes a low-energy spiking neural network (SNN) to trigger event slicing. To guide the SNN to fire spikes at optimal time steps, we propose the Spiking Position-aware Loss (SPA-Loss) to modulate the neuron's state. Additionally, we develop a Feedback-Update training strategy that refines the slicing decisions using feedback from the downstream artificial neural network (ANN). Extensive experiments demonstrate that our method yields significant performance improvements in event-based object tracking and recognition. Notably, SpikeSlicer provides a brand-new SNN-ANN cooperation paradigm, where the SNN acts as an efficient, low-energy data processor to assist the ANN in improving downstream performance, injecting new perspectives and potential avenues of exploration. Our code is available at https://github.com/AndyCao1125/SpikeSlicer.
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Cited by top-tier papers6
- Fully Spiking Neural Networks for Unified Frame-Event Object TrackingJingjun Yang, Liangwei Fan, Jinpu Zhang, Xiangkai Lian et al.NeurIPS 2025 · 9 citations
- FlashCap: Millisecond-Accurate Human Motion Capture via Flashing LEDs and Event-Based VisionZekai Wu, Shuqi Fan, Mengyin Liu, Yuhua Luo et al.CVPR 2026 · 2 citations
- S³: Spiking Neurons as an Isolating Segmenter for Brain Signal DecodingQian Zheng, Ming Chen, Sha Zhao, Shi Gu et al.AAAI 2026
- SPEAK: Spiking Neurons as an Entropy-Aware Tokenizer for Large Language ModelsMing Chen, Wenyao Li, Chao Liang, Shi Gu et al.ACL 2026
- Frequency Matching in Spiking Neural Networks for mmWave SensingZhenyu Liao, Di Yu, Changze Lv, Wentao Tong et al.ICML 2026
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- Learning Discriminative Model Prediction for TrackingGoutam Bhat, Martin Danelljan, Luc Van Gool, Radu TimofteICCV 2019 · 1,294 citations
- SiamFC++: Towards Robust and Accurate Visual Tracking with Target Estimation GuidelinesYinda Xu, Zeyu Wang, Zuoxin Li, Ye Yuan et al.AAAI 2020 · 944 citations
- End-to-End Learning of Representations for Asynchronous Event-Based DataDaniel Gehrig, Antonio Loquercio, Konstantinos G. Derpanis, Davide ScaramuzzaICCV 2019 · 427 citations
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