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Multi-layered learning systems for vision-based behavior acquisition of a real mobile robot

Yasutake Takahashi, Minoru Asada

发表年份
2003
引用次数
23

摘要

Abstract: This paper presents a series of the studies of decomposing the large state/action space at the bottom level into several subspaces and merging those subspaces at the higher level. This allows the system to maintain computational resources assigned to the modules compact and small, to reuse the policies learned before, and therefore to avoid the curse of dimension. To show the validity of the proposed methods, we apply them to a simple soccer situation in the context of RoboCup, and show the experimental results.

关键词

Computer scienceReuseMobile robotLinear subspaceContext (archaeology)Artificial intelligenceDimension (graph theory)State spaceRobotAction (physics)

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