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Chenbin Pan

4 accepted papers

2025

AdaWM: Adaptive World Model based Planning for Autonomous Driving

ICLR 2025poster

World model based reinforcement learning (RL) has emerged as a promising approach for autonomous driving, which learns a latent dynamics model and uses it to train a planning policy. To speed up the learning process, the pretrain-finetune paradigm is often used, where online RL is initialized by a…

Cited by 1SourcePDFScholar
2024

CLIP-BEVFormer: Enhancing Multi-View Image-Based BEV Detector with Ground Truth Flow

CVPR 2024poster

Autonomous driving stands as a pivotal domain in computer vision shaping the future of transportation. Within this paradigm the backbone of the system plays a crucial role in interpreting the complex environment. However a notable challenge has been the loss of clear supervision when it comes to Bir…

Cited by 11SourcePDFScholar
2024

VLP: Vision Language Planning for Autonomous Driving

CVPR 2024poster

Autonomous driving is a complex and challenging task that aims at safe motion planning through scene understanding and reasoning. While vision-only autonomous driving methods have recently achieved notable performance through enhanced scene understanding several key issues including lack of reasonin…

Cited by 54SourcePDFScholar
2021

PT-CapsNet: A Novel Prediction-Tuning Capsule Network Suitable for Deeper Architectures

ICCV 2021poster

Capsule Networks (CapsNets) create internal representations by parsing inputs into various instances at different resolution levels via a two-phase process -- part-whole transformation and hierarchical component routing. Since both of these internal phases are computationally expensive, CapsNets hav…

Cited by 18PDFcodeScholar