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Miao Liu

reinforcement learning

benchmark

prompting

explainable rl

local explainability

steerability

3

presentations

SHORT BIO

Miao Liu is a research staff member in the Machine Learning for Artificial Intelligence Foundations (AIF) group at IBM T. J. Watson Research Center, Yorktown Heights NY. Prior to joining IBM in 2016, he was a Postdoctoral Associate in the Laboratory of Information and Decision System (LIDS) at Massachusetts Institute of Technology (MIT), where he worked on scalable Bayesian nonparametric methods for solving multiagent learning and planning problems. He received a Ph.D. degree in Electrical and Computer Engineering from Duke University in 2014. He received both his B.S. and M.S. degrees in Electronics and Information Engineering from Huazhong University of Science and Technology, in Wuhan, China in 2005 and 2007, respectively. Dr Liu received Best Student Paper Award in IROS 2017, nomination for Best Multi-robot Paper in ICRA 2017, and Honorable Mention for Best Student Paper in AAAI2019. His research interests include statistical machine learning, reinforcement learning and multiagent learning.

Presentations

Local Explanations for Reinforcement Learning

Ronny Luss and 2 other authors

Context-Specific Representation Abstraction for Deep Option Learning

Marwa Abdulhai and 5 other authors

Modeling Capacity-Limited Decision Making Using a Variational Autoencoder

Tyler Malloy and 5 other authors

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