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Zhian Kuang

1 accepted papers

2021

Learning Variable Impedance Control via Inverse Reinforcement Learning for Force-Related Tasks

RA-L 2021

Many manipulation tasks require robots to interact with unknown environments. In such applications, the ability to adapt the impedance according to different task phases and environment constraints is crucial for safety and performance. Although many approaches based on deep reinforcement learning (

Cited by 111SourceScholar