Reward Design for Training Robotic Insertion Tasks Using Low-Dimensional Observation

Author:

Li Xinyi1ORCID,Song Aiguo1ORCID,Li Huijun1ORCID,Wang Xinke2ORCID,Yang Ming2ORCID

Affiliation:

1. School of Instrument Science and Engineering, Southeast University, China

2. Automation Research Institute, China South Industries Group Corporation, China

Funder

National Basic Research Priorities Program of China

Publisher

ACM

Reference11 articles.

1. User Interface Interventions for Improving Robot Learning from Demonstration

2. Richard S. Sutton and Andrew Barto. 2020. Reinforcement Learning: an Introduction (Second edition ed.). The MIT Press, Cambridge, Massachusetts London, England.

3. Corey Lynch, Mohi Khansari, Ted Xiao, Vikash Kumar, Jonathan Tompson, Sergey Levine, and Pierre Sermanet. 2020. Learning Latent Plans from Play. In Proceedings of the Conference on Robot Learning, May 12, 2020. PMLR, 1113–1132. Retrieved June 16, 2023 from https://proceedings.mlr.press/v100/lynch20a.html

4. Henry Zhu Justin Yu Abhishek Gupta Dhruv Shah Kristian Hartikainen Avi Singh Vikash Kumar and Sergey Levine. 2020. The Ingredients of Real-World Robotic Reinforcement Learning. https://doi.org/10.48550/arXiv.2004.12570

5. Deep Reinforcement Learning for Industrial Insertion Tasks with Visual Inputs and Natural Rewards

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