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High Accuracy Rule-based Question Classification using Question Syntax and Semantics

机译:使用问题句法和语义的基于规则的高精度问题分类

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We present in this paper a purely rule-based system for Question Classification which we divide into two parts: The first is the extraction of relevant words from a question by use of its structure, and the second is the classification of questions based on rules that associate these words to Concepts. We achieve an accuracy of 97.2%, close to a 6 point improvement over the previous State of the Art of 91.6%. Additionally, we believe that machine learning algorithms can be applied on top of this method to further improve accuracy.
机译:在本文中,我们提出了一个纯粹基于规则的问题分类系统,该系统分为两部分:第一部分是通过使用问题的结构从问题中提取相关单词,第二部分是基于规则的问题分类。将这些词与“概念”相关联。我们达到了97.2%的准确度,比之前的现有技术水平91.6%提高了6个点。此外,我们认为可以将机器学习算法应用于此方法之上,以进一步提高准确性。

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