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  Efficient Sample Reuse in EM-Based Policy Search

Hachiya, H., Peters, J., & Sugiyama, M. (2009). Efficient Sample Reuse in EM-Based Policy Search. Machine Learning and Knowledge Discovery in Databases: European Conference ECML PKDD 2009, 469-484.

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 Creators:
Hachiya, H1, Author           
Peters, J1, 2, Author           
Sugiyama, M, Author
Buntine, Editor
W., Editor
Grobelnik, M., Editor
Mladenic, D., Editor
Shawe-Taylor, J., Editor
Affiliations:
1Department Empirical Inference, Max Planck Institute for Biological Cybernetics, Max Planck Society, ou_1497795              
2Dept. Empirical Inference, Max Planck Institute for Intelligent Systems, Max Planck Society, ou_1497647              

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 Abstract: Direct policy search is a promising reinforcement learning framework in particular for controlling in continuous, high-dimensional systems such as anthropomorphic robots. Policy search often requires a large number of samples for obtaining a stable policy update estimator due to its high flexibility. However, this is prohibitive when the sampling cost is expensive. In this paper, we extend a EM-based policy search method so that previously collected samples can be efficiently reused. The usefulness of the proposed method, called Reward-weighted Regression with sample Reuse, is demonstrated through a robot learning experiment.

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 Dates: 2009-09
 Publication Status: Issued
 Pages: -
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 Table of Contents: -
 Rev. Type: -
 Identifiers: URI: http://www.ecmlpkdd2009.net/
DOI: 10.1007/978-3-642-04180-8_48
BibTex Citekey: 6068
 Degree: -

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Title: 16th European Conference on Machine Learning and Principles and Practice of Knowledge Discovery in Databases
Place of Event: Bled, Slovenia
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Title: Machine Learning and Knowledge Discovery in Databases: European Conference ECML PKDD 2009
Source Genre: Journal
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Publ. Info: Berlin, Germany : Springer
Pages: - Volume / Issue: - Sequence Number: - Start / End Page: 469 - 484 Identifier: -