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Peide Cai

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Carl-Lead: Lidar-based End-to-End Autonomous Driving with Contrastive Deep Reinforcement Learning

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Sep 17, 2021
Peide Cai, Sukai Wang, Hengli Wang, Ming Liu

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R-PCC: A Baseline for Range Image-based Point Cloud Compression

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Sep 16, 2021
Sukai Wang, Jianhao Jiao, Peide Cai, Ming Liu

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DQ-GAT: Towards Safe and Efficient Autonomous Driving with Deep Q-Learning and Graph Attention Networks

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Aug 11, 2021
Peide Cai, Hengli Wang, Yuxiang Sun, Ming Liu

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SNE-RoadSeg+: Rethinking Depth-Normal Translation and Deep Supervision for Freespace Detection

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Jul 30, 2021
Hengli Wang, Rui Fan, Peide Cai, Ming Liu

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Vision-Based Autonomous Car Racing Using Deep Imitative Reinforcement Learning

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Jul 18, 2021
Peide Cai, Hengli Wang, Huaiyang Huang, Yuxuan Liu, Ming Liu

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End-to-End Interactive Prediction and Planning with Optical Flow Distillation for Autonomous Driving

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Apr 18, 2021
Hengli Wang, Peide Cai, Rui Fan, Yuxiang Sun, Ming Liu

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Learning Interpretable End-to-End Vision-Based Motion Planning for Autonomous Driving with Optical Flow Distillation

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Apr 18, 2021
Hengli Wang, Peide Cai, Yuxiang Sun, Lujia Wang, Ming Liu

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PVStereo: Pyramid Voting Module for End-to-End Self-Supervised Stereo Matching

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Mar 12, 2021
Hengli Wang, Rui Fan, Peide Cai, Ming Liu

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Learning Collision-Free Space Detection from Stereo Images: Homography Matrix Brings Better Data Augmentation

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Dec 14, 2020
Rui Fan, Hengli Wang, Peide Cai, Jin Wu, Mohammud Junaid Bocus, Lei Qiao, Ming Liu

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Learning Scalable Self-Driving Policies for Generic Traffic Scenarios

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Nov 13, 2020
Peide Cai, Hengli Wang, Yuxiang Sun, Ming Liu

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