TTPOINT: A Tensorized Point Cloud Network for Lightweight Action Recognition with Event Cameras
Hongwei Ren, Yue Zhou, Haotian Fu, Yulong Huang, Renjing Xu, Bojun Cheng
Abstract
Event cameras have gained popularity in computer vision due to their data sparsity, high dynamic range, and low latency. As a bio-inspired sensor, event cameras generate sparse and asynchronous data, which is inherently incompatible with the traditional frame-based method. Alternatively, the point-based method can avoid additional modality transformation and naturally adapt to the sparsity of events. Still, it typically cannot reach a comparable accuracy as the frame-based method. We propose a lightweight and generalized point cloud network called TTPOINT which achieves competitive results even compared to the state-of-the-art (SOTA) frame-based method in action recognition tasks while only using 1.5 % of the computational resources. The model is adept at abstracting local and global geometry by hierarchy structure. By leveraging tensor-train compressed feature extractors, TTPOINT can be designed with minimal parameters and computational complexity. Additionally, we developed a straightforward downsampling algorithm to maintain the spatio-temporal feature. In the experiment, TTPOINT emerged as the SOTA method on three datasets while also attaining SOTA among point cloud methods on all five datasets. Moreover, by using the tensor-train decomposition method, the accuracy of the proposed TTPOINT is almost unaffected while compressing the parameter size by 55% in all five datasets.
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Cited by top-tier papers7
- SpikePoint: An Efficient Point-based Spiking Neural Network for Event Cameras Action RecognitionHongwei Ren, Yue Zhou, Xiaopeng Lin, Yulong Huang et al.ICLR 2024 · 39 citations
- A Simple and Effective Point-Based Network for Event Camera 6-DOFs Pose RelocalizationHongwei Ren, Jiadong Zhu, Yue Zhou, Haotian Fu et al.CVPR 2024 · 14 citations
- Scalable Event Cloud Network for Event-based ClassificationHongwei Ren, Fei Ma, Xiaopeng LIN, Yuetong Fang et al.ICML 2026 · 5 citations
- EventMG: Efficient Multilevel Mamba-Graph Learning for Spatiotemporal Event RepresentationSheng Wu, Lin Jin, Hui Feng, Bo HuNeurIPS 2025 · 3 citations
- PASS: Path-selective State Space Model for Event-based RecognitionJiazhou Zhou, Kanghao Chen, Lei Zhang, Lin WangNeurIPS 2025 · 1 citation
Builds on6
- Is Space-Time Attention All You Need for Video Understanding?Gedas Bertasius, Heng Wang, Lorenzo TorresaniICML 2021 · 2,927 citations
- Rethinking Network Design and Local Geometry in Point Cloud: A Simple Residual MLP FrameworkXu Ma, Can Qin, Haoxuan You, Haoxi Ran et al.ICLR 2022 · 841 citations
- End-to-End Learning of Representations for Asynchronous Event-Based DataDaniel Gehrig, Antonio Loquercio, Konstantinos G. Derpanis, Davide ScaramuzzaICCV 2019 · 427 citations
- TAM: Temporal Adaptive Module for Video RecognitionZhaoyang Liu, Limin Wang, Wayne Wu, Chen Qian et al.ICCV 2021 · 356 citations
- Temporal-wise Attention Spiking Neural Networks for Event Streams ClassificationMan Yao, Huanhuan Gao, Guangshe Zhao, Dingheng Wang et al.ICCV 2021 · 225 citations
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