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A fuzzy based approach for wordsense disambiguation using morphological transformation and domain link knowledge

机译:一种基于模糊的方法,用于使用形态转化和域链接知识的词语消歧

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This paper describes a fuzzy-based methodology in order to aggregate outcomes of distinct wordsense disambiguation algorithms. The latter are derived from standard Lesk algorithm, its WorldNet extension and new interpretations of the set-intersection that accounts for various WordNet domain knowledge and part-of-speech conversion. The fuzzy preference model imitates the fuzzy Borda voting scheme. The developed algorithms are evaluated according to SenseEval 2 competition dataset, where a clear improvement to the baseline algorithm has been testified.
机译:本文介绍了一种基于模糊的方法,以汇总不同的词语消歧算法的结果。后者源自标准LESK算法,其WorldNet的扩展和对Set-Indersection的新解释,占各种Wordnet域知识和语音段转换的分组。模糊偏好模型模仿模糊的波尔达投票方案。根据SenseVal 2竞争数据集进行了评估的开发算法,其中已经作证了对基线算法的明确改善。

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