End-to-End Learning of Object Motion Estimation from Retinal Events for Event-Based Object Tracking
Haosheng Chen, David Suter, Qiangqiang Wu, Hanzi Wang
摘要
Event cameras, which are asynchronous bio-inspired vision sensors, have shown great potential in computer vision and artificial intelligence. However, the application of event cameras to object-level motion estimation or tracking is still in its infancy. The main idea behind this work is to propose a novel deep neural network to learn and regress a parametric object-level motion/transform model for event-based object tracking. To achieve this goal, we propose a synchronous Time-Surface with Linear Time Decay (TSLTD) representation, which effectively encodes the spatio-temporal information of asynchronous retinal events into TSLTD frames with clear motion patterns. We feed the sequence of TSLTD frames to a novel Retinal Motion Regression Network (RM-RNet) to perform an end-to-end 5-DoF object motion regression. Our method is compared with state-of-the-art object tracking methods, that are based on conventional cameras or event cameras. The experimental results show the superiority of our method in handling various challenging environments such as fast motion and low illumination conditions.
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引用它的顶会 Paper11
- Spiking Transformers for Event-based Single Object TrackingJiqing Zhang, Bo Dong, Haiwei Zhang, Jianchuan Ding 等CVPR 2022 · 被引用 171 次
- Object Tracking by Jointly Exploiting Frame and Event DomainJiqing Zhang, Xin Yang, Yingkai Fu, Xiaopeng Wei 等ICCV 2021 · 被引用 141 次
- Dual Transfer Learning for Event-based End-task Prediction via Pluggable Event to Image TranslationLin Wang, Yujeong Chae, Kuk-Jin YoonICCV 2021 · 被引用 46 次
- Deep Event Stereo Leveraged by Event-to-Image TranslationSoikat Hasan Ahmed, Hae Woong Jang, S. M. Nadim Uddin, Yong Ju JungAAAI 2021 · 被引用 41 次
- Discrete time convolution for fast event-based stereoKaixuan Zhang, Kaiwei Che, Jianguo Zhang, Jie Cheng 等CVPR 2022 · 被引用 34 次
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