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Dynamic Ensemble of Diversified Encodings for Event Nugget Detection

机译:用于事件块检测的多种编码的动态集成

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We propose Dynamic Ensemble method that selects appropriate encoding models for each input to handle a wide variety of event expressions of different types. The main contribution is (1) we focused on compatibility problem of encoding models and a huge variety of linguistic patterns that is difficult to cope with conventional ensemble method, (2) proposed a novel ensemble approach that dynamically selects appropriate encoding models for every input token, and (3) proved the effectiveness of the ensemble method by comparing with official evaluation results of NIST TAC KBP2016 event nugget track. Our proposed method achieved 37.26% in F1 score without syntactic nor semantic parser, and outperformed the score 35.24% of the best system by 2.02% point.
机译:我们提出了Dynamic Ensemble方法,该方法为每个输入选择适当的编码模型,以处理各种不同类型的事件表达式。主要贡献是(1)我们专注于编码模型的兼容性问题和难以应付传统合奏方法的多种语言模式,(2)提出了一种新颖的合奏方法,该方法为每个输入令牌动态选择合适的编码模型(3)通过与NIST TAC KBP2016事件块轨迹的官方评估结果进行比较,证明了集成方法的有效性。我们提出的方法在没有语法或语义解析器的情况下,F1得分达到37.26%,并且比最佳系统的35.24%的得分高出2.02%。

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