RSPT: Reconstruct Surroundings and Predict Trajectory for Generalizable Active Object Tracking
Fangwei Zhong, Xiao Bi, Yudi Zhang, Wei Zhang, Yizhou Wang
摘要
Active Object Tracking (AOT) aims to maintain a specific relation between the tracker and object(s) by autonomously controlling the motion system of a tracker given observations. AOT has wide-ranging applications, such as in mobile robots and autonomous driving. However, building a generalizable active tracker that works robustly across different scenarios remains a challenge, especially in unstructured environments with cluttered obstacles and diverse layouts. We argue that constructing a state representation capable of modeling the geometry structure of the surroundings and the dynamics of the target is crucial for achieving this goal. To address this challenge, we present RSPT, a framework that forms a structure-aware motion representation by Reconstructing the Surroundings and Predicting the target Trajectory. Additionally, we enhance the generalization of the policy network by training in an asymmetric dueling mechanism. We evaluate RSPT on various simulated scenarios and show that it outperforms existing methods in unseen environments, particularly those with complex obstacles and layouts. We also demonstrate the successful transfer of RSPT to real-world settings. .
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- Learning Discriminative Model Prediction for TrackingGoutam Bhat, Martin Danelljan, Luc Van Gool, Radu TimofteICCV 2019 · 被引用 1,294 次
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- Pose-Assisted Multi-Camera Collaboration for Active Object TrackingJing Li, Jing Xu, Fangwei Zhong, Xiangyu Kong 等AAAI 2020 · 被引用 55 次
- Towards Distraction-Robust Active Visual TrackingFangwei Zhong, Peng Sun, Wenhan Luo, Tingyun Yan 等ICML 2021 · 被引用 50 次
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