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Riga: from FrameNet to Semantic Frames with C6.0 Rules

机译:里加:从FrameNet到具有C6.0规则的语义框架

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For the purposes of SemEval-2015 Task-18 on the semantic dependency parsing we combined the best-performing closed track approach from the SemEval-2014 competition with state-of-the-art techniques for FrameNet semantic parsing. In the closed track our system ranked third for the semantic graph accuracy and first for exact labeled match of complete semantic graphs. These results can be attributed to the high accuracy of the C6.0 rule-based sense labeler adapted from the FrameNet parser. To handle large SemEval training data the C6.0 algorithm was extended to provide multi-class classification and to use fast greedy search without significant accuracy loss compared to exhaustive search. A method for improved FrameNet parsing using semantic graphs is proposed.
机译:出于Semeval-2015任务-18的语义依赖性解析,我们将来自Semeval-2014比赛的最佳封闭式轨道方法与FrameNet语义解析的最先进技术组合起来。在封闭式轨道中,我们的系统排名第三,用于语义图精度,首先是完整语义图的精确标记匹配。这些结果可归因于从FrameNet解析器的基于C6.0规则的感测贴标程序的高精度。为了处理大型Semeval训练数据,扩展了C6.0算法以提供多级分类,并与详尽的搜索相比,使用快速贪婪搜索而无需显着的精度损失。提出了一种利用语义图改进的桥尖解析的方法。

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