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Zheyuan Jiang

4 accepted papers

2025

Think on Your Feet: Seamless Transition Between Human-Like Locomotion in Response to Changing Commands

ICRA 2025

While it is relatively easier to train humanoid robots to mimic specific locomotion skills, it is more challenging to learn from various motions and adhere to continuously changing commands. These robots must accurately track motion instructions, seamlessly transition between a variety of movements,

Cited by 2SourceScholar
2024

Adapting Humanoid Locomotion over Challenging Terrain via Two-Phase Training

CoRL 2024poster

Humanoid robots are a key focus in robotics, with their capacity to navigate tough terrains being essential for many uses. While strides have been made, creating adaptable locomotion for complex environments is still tough. Recent progress in learning-based systems offers hope for robust legged loco…

Cited by 4SourceScholar
2023

Decentralized Motor Skill Learning for Complex Robotic Systems

RA-L 2023

Reinforcement learning (RL) has achieved remarkable success in complex robotic systems (eg. quadruped locomotion). In previous works, the RL-based controller was typically implemented as a single neural network with concatenated observation input. However, the corresponding learned policy is highly

Cited by 9SourceScholar