Improved POMDP Tree Search Planning with Prioritized Action Branching
October 07, 2020 ยท Declared Dead ยท ๐ AAAI Conference on Artificial Intelligence
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Authors
John Mern, Anil Yildiz, Larry Bush, Tapan Mukerji, Mykel J. Kochenderfer
arXiv ID
2010.03599
Category
cs.LG: Machine Learning
Cross-listed
cs.AI
Citations
10
Venue
AAAI Conference on Artificial Intelligence
Last Checked
5 months ago
Abstract
Online solvers for partially observable Markov decision processes have difficulty scaling to problems with large action spaces. This paper proposes a method called PA-POMCPOW to sample a subset of the action space that provides varying mixtures of exploitation and exploration for inclusion in a search tree. The proposed method first evaluates the action space according to a score function that is a linear combination of expected reward and expected information gain. The actions with the highest score are then added to the search tree during tree expansion. Experiments show that PA-POMCPOW is able to outperform existing state-of-the-art solvers on problems with large discrete action spaces.
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