DocumentCode :
3263881
Title :
Learning logic functions from examples-better conceptions and models
Author :
Posthoff, Christian
Author_Institution :
Dept. of Math. & Comput. Sci., Univ. of the West Indies, St. Augustine, Trinidad and Tobago
fYear :
35765
fDate :
8-10 Dec1997
Firstpage :
251
Lastpage :
256
Abstract :
The learning of propositional and fuzzy-logical functions and structures has been thoroughly explored in the past years and has become an efficient means for knowledge acquisition. Decision trees are broadly discussed and used, many algorithms for the learning of optimal decision trees are available. Publications and implementations, however, very often show a considerable lack of understanding of the capacities and applicability of constructed models, and one may see many applications which are developed carelessly and with little thought and come close to being dangerous mistakes. It is, however, possible to develop a methodology that is based on logical equations and makes maximum use of the existing knowledge, but avoids inadmissible generalizations and allows comprehensive knowledge engineering. The smooth transition to fuzzy-logical structures shows the efficiency of the methodology. The paper gives a comprehensive survey of the deficiencies of existing approaches and demonstrates a complete solution to all of them
Keywords :
fuzzy logic; knowledge acquisition; learning by example; trees (mathematics); fuzzy logical functions; generalizations; knowledge acquisition; knowledge engineering; learning from examples; logical equations; methodology; optimal decision trees; propositional functions; survey; Computer science; Data structures; Decision trees; Equations; Knowledge acquisition; Knowledge engineering; Logic functions; Mathematical model; Mathematics; Minimization methods;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Intelligent Information Systems, 1997. IIS '97. Proceedings
Conference_Location :
Grand Bahama Island
Print_ISBN :
0-8186-8218-3
Type :
conf
DOI :
10.1109/IIS.1997.645247
Filename :
645247
Link To Document :
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