EventDance: Unsupervised Source-Free Cross-Modal Adaptation for Event-Based Object Recognition
Xu Zheng, Lin Wang
摘要
In this paper, we make the first attempt at achieving the cross-modal (i.e., image-to-events) adaptation for event-based object recognition without accessing any labeled source image data owning to privacy and commercial issues. Tackling this novel problem is non-trivial due to the novelty of event cameras and the distinct modality gap between images and events. In particular, as only the source model is available, a hurdle is how to extract the knowledge from the source model by only using the unlabeled target event data while achieving knowledge transfer. To this end, we propose a novel framework, dubbed Event-Dance for this unsupervised source-free cross-modal adaptation problem. Importantly, inspired by event-to-video reconstruction methods, we propose a reconstruction-based modality bridging (RMB) module, which reconstructs intensity frames from events in a self-supervised manner. This makes it possible to build up the surrogate images to extract the knowledge (i.e., labels) from the source model. We then propose a multi-representation knowledge adaptation (MKA) module that transfers the knowledge to target models learning events with multiple representation types for fully exploring the spatiotemporal information of events. The two modules connecting the source and target models are mutually updated so as to achieve the best performance. Experiments on three benchmark datasets with two adaption settings show that EventDance is on par with prior methods utilizing the source data.
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引用它的顶会 Paper8
- Efficient Event Camera Data Pretraining with Adaptive Prompt FusionQuanmin Liang, Qiang Li, Shuai Liu, Xinzi Cao 等ICCV 2025 · 被引用 6 次
- Depth Any Event Stream: Enhancing Event-based Monocular Depth Estimation via Dense-to-Sparse DistillationJinjing Zhu, Tianbo Pan, Zidong Cao, Yexin Liu 等ICCV 2025 · 被引用 3 次
- From Sharp to Blur: Unsupervised Domain Adaptation for 2D Human Pose Estimation Under Extreme Motion Blur Using Event CamerasYoungho Kim, Hoonhee Cho, Kuk-Jin YoonICCV 2025 · 被引用 2 次
- Multimodal Decomposed Distillation with Instance Alignment and Uncertainty Compensation for Thermal Object DetectionYanfeng Liu, Lefei ZhangACM MM 2025 · 被引用 2 次
- Reducing Unimodal Bias in Multi-Modal Semantic Segmentation With Multi-Scale Functional Entropy RegularizationXu Zheng, Yuanhuiyi Lyu, Lutao Jiang, Danda Pani Paudel 等ICCV 2025 · 被引用 2 次
它引用的顶会 Paper24
- Do We Really Need to Access the Source Data? Source Hypothesis Transfer for Unsupervised Domain AdaptationJian Liang, Dapeng Hu, Jiashi FengICML 2020 · 被引用 1,624 次
- End-to-End Learning of Representations for Asynchronous Event-Based DataDaniel Gehrig, Antonio Loquercio, Konstantinos G. Derpanis, Davide ScaramuzzaICCV 2019 · 被引用 427 次
- Category Contrast for Unsupervised Domain Adaptation in Visual TasksJiaxing Huang, Dayan Guan, Aoran Xiao, Shijian Lu 等CVPR 2022 · 被引用 143 次
- Source-Free Domain Adaptation via Distribution EstimationNing Ding, Yixing Xu, Yehui Tang, Chao Xu 等CVPR 2022 · 被引用 134 次
- The Norm Must Go On: Dynamic Unsupervised Domain Adaptation by NormalizationMuhammad Jehanzeb Mirza, Jakub Micorek, Horst Possegger, Horst BischofCVPR 2022 · 被引用 119 次
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