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Automatic Acquisition of Adjective Lexicalizations of Restriction Classes: a Machine Learning Approach

机译:自动获取限制类的形容词词汇化:一种机器学习方法

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There is an increasing interest in providing common Web users with access to structured knowledge bases such as DBpedia, for example by means of question answering systems. An essential task of such systems is transforming natural language questions into formal queries, e.g. expressed in SPARQL. To this end, such systems require knowledge about how the vocabulary elements used in the available ontologies and datasets are verbalized in natural language, covering different verbalization variants, possibly in multiple languages. An important part of such lexical knowledge is constituted by adjectives. In this paper, we present and evaluate a machine learning approach to extract adjective lexicalizations from DBpedia. This is a challenge that has so far not been addressed. Our approach achieves an accuracy of 91.15 % on a tenfold cross validation regime. In addition to providing a first baseline system for the task of extracting adjective lexicalizations from DBpedia, we publish the extracted adjective lexicalizations in lemon format for free use by the community.
机译:人们越来越希望通过提问系统向普通Web用户提供对诸如DBpedia之类的结构化知识库的访问。这种系统的基本任务是将自然语言问题转换为形式查询,例如以SPARQL表示。为此,这样的系统需要有关如何以自然语言对可用本体和数据集中使用的词汇元素进行语言化的知识,涵盖可能的多种语言的不同语言化变体。这种词汇知识的重要组成部分是形容词。在本文中,我们提出并评估了一种从DBpedia中提取形容词词汇化的机器学习方法。迄今为止,这一挑战尚未得到解决。我们的方法在十倍交叉验证方案上达到了91.15%的精度。除了为从DBpedia中提取形容词词汇化的任务提供第一个基线系统外,我们还将柠檬格式的提取形容词词汇化发布,以供社区免费使用。

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