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ICML
2002
IEEE

Discovering Hierarchy in Reinforcement Learning with HEXQ

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Discovering Hierarchy in Reinforcement Learning with HEXQ
An open problem in reinforcement learning is discovering hierarchical structure. HEXQ, an algorithm which automatically attempts to decompose and solve a model-free factored MDP hierarchically is described. By searching for aliased Markov sub-space regions based on the state variables the algoes temporal and state abstraction to construct a hierarchy of interlinked smaller MDPs.
Bernhard Hengst
Added 17 Nov 2009
Updated 17 Nov 2009
Type Conference
Year 2002
Where ICML
Authors Bernhard Hengst
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