JAXA Repository / AIREX 未来へ続く、宙(そら)への英知

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タイトルResearch on knowledge representation, machine learning, and knowledge acquisition
本文(外部サイト)http://hdl.handle.net/2060/19870014670
著者(英)Buchanan, Bruce G.
著者所属(英)Stanford Univ.
発行日1987-06-23
言語eng
内容記述Research in knowledge representation, machine learning, and knowledge acquisition performed at Knowledge Systems Lab. is summarized. The major goal of the research was to develop flexible, effective methods for representing the qualitative knowledge necessary for solving large problems that require symbolic reasoning as well as numerical computation. The research focused on integrating different representation methods to describe different kinds of knowledge more effectively than any one method can alone. In particular, emphasis was placed on representing and using spatial information about three dimensional objects and constraints on the arrangement of these objects in space. Another major theme is the development of robust machine learning programs that can be integrated with a variety of intelligent systems. To achieve this goal, learning methods were designed, implemented and experimented within several different problem solving environments.
NASA分類COMPUTER PROGRAMMING AND SOFTWARE
レポートNO87N24103
NASA-CR-180408
NAS 1.26:180408
権利No Copyright
URIhttps://repository.exst.jaxa.jp/dspace/handle/a-is/150205


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