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CoMeT: Integrating different levels of linguistic modeling for meaning assessment

机译:COMET:整合不同级别的语言建模,以了解意义评估

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This paper describes the CoMeT system, our contribution to the SemEval 2013 Task 7 challenge, focusing on the task of automatically assessing student answers to factual questions. CoMeT is based on a meta-classifier that uses the outputs of the sub-systems we developed: CoMiC, CoSeC, and three shallower bag approaches. We sketch the functionality of all sub-systems and evaluate their performance against the official test set of the challenge. CoMeT obtained the best result (73.1% accuracy) for the 3-way unseen answers in Beetle among all challenge participants. We also discuss possible improvements and directions for future research.
机译:本文介绍了彗星系统,我们对Semeval 2013任务7挑战的贡献,重点是自动评估学生对事实问题的答案的任务。 Comet基于元分类器,该分类器使用我们开发的子系统的输出:漫画,COSEC和三个浅薄的袋子方法。我们绘制所有子系统的功能,并评估他们对挑战官方测试集的绩效。在所有挑战参与者中,彗星获得了甲虫中的3路看不见的最佳结果(73.1%的准确性)。我们还讨论了未来研究的可能改进和方向。

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