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  4. Interactive Teaching Algorithms for Inverse Reinforcement Learning
 
conference paper

Interactive Teaching Algorithms for Inverse Reinforcement Learning

Parameswaran, Kamalaruban  
•
Rati, Devidze
•
Cevher, Volkan  orcid-logo
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August 10, 2019
IJCAI'19: Proceedings of the 28th International Joint Conference on Artificial Intelligence
28th International Joint Conference on Artificial Intelligence, 2019

We study the problem of inverse reinforcement learning (IRL) with the added twist that the learner is assisted by a helpful teacher. More formally, we tackle the following algorithmic question: How could a teacher provide an informative sequence of demonstrations to an IRL learner to speed up the learning process? We present an interactive teaching framework where a teacher adaptively chooses the next demonstration based on learner's current policy. In particular, we design teaching algorithms for two concrete settings: an omniscient setting where a teacher has full knowledge about the learner's dynamics and a blackbox setting where the teacher has minimal knowledge. Then, we study a sequential variant of the popular MCE-IRL learner and prove convergence guarantees of our teaching algorithm in the omniscient setting. Extensive experiments with a car driving simulator environment show that the learning progress can be speeded up drastically as compared to an uninformative teacher.

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Type
conference paper
Author(s)
Parameswaran, Kamalaruban  
Rati, Devidze
Cevher, Volkan  orcid-logo
Adish, Singla
Date Issued

2019-08-10

Published in
IJCAI'19: Proceedings of the 28th International Joint Conference on Artificial Intelligence
Start page

2692

End page

2700

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
LIONS  
Event nameEvent placeEvent date
28th International Joint Conference on Artificial Intelligence, 2019

Macao, China

August 10-16, 2019

Available on Infoscience
October 10, 2019
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/161941
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