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(48)¡¡Effectiveness of Combining Learning Rules and
Analogy in Semantic Analysis for Japanese Unknown Sentences
¡¡¡¡¡¡¡¡Proceedings of the IASTEAD International Conference ARTIFIACIAL AND COMPUTATIONAL
INTELLIGENCE,
¡¡¡¡¡¡¡¡pp.35-40, 2002-9
¡¡In natural language analysis, it is one of the most difficult problems to analyze
various sentences using limited knowledge. A Rule-based analyzer has the advantage
of regular analysis using relatively fewer rules, and an Example-based analyzer
has the advantage of flexible analysis using analogy. We propose a framework of
hybrid analyzer that has both of the advantages. The hybrid analyzer learns rules
from training data, and analogizes unknown sentences with the rules. We conducted
experiments of assignment of semantic roles using three analyzers including the
hybrid analyzer. In accuracy, the hybrid analyzer was the best result of them.
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