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Tianpei Yang

University of Alberta, Computing Science, Edmonton, Canada

reinforcement learning

transfer learning

graph neural network

curriculum learning

game theory

cross-domain

reward shaping

multiagent learning

3

presentations

32

number of views

SHORT BIO

Tianpei Yang is a Postdoctoral Fellow at the University of Alberta, working with Matthew E. Taylor. She received her Ph.D. in the College of Intelligence and Computing from Tianjin University (China), advised by Jianye Hao. Her research interest lies in deep reinforcement learning (DRL) and multiagent systems, focusing on exploring how to facilitate efficient, scalable RL and multiagent RL through transfer learning, hierarchical RL, and opponent modeling. More information can be found at https://tianpeiyang.github.io

Presentations

A Transfer Approach Using Graph Neural Networks in Deep Reinforcement Learning | VIDEO

Tianpei Yang and 4 other authors

PORTAL: Automatic Curricula Generation for Multiagent Reinforcement Learning | VIDEO

Jizhou Wu and 6 other authors

Learning to Shape Rewards using a Game of Two Partners

David Mguni and 13 other authors

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