首页> 外文会议>Proceedings of the 2012 IEEE 13th International Conference on Information Reuse and Integration >A statistical approach with syntactic and semantic features for Chinese Textual Entailment
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A statistical approach with syntactic and semantic features for Chinese Textual Entailment

机译:一种具有句法和语义特征的中文文本蕴含度统计方法

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Recognizing Textual Entailment (RTE) is a PASCAL/TAC task in which two text fragments are processed by system to determine whether the meaning of hypothesis is entailed from another text or not. In this paper, we proposed a textual entailment system using a statistical approach that integrates syntactic and semantic techniques for Recognizing Inference in Text (RITE) using the NTCIR-9 RITE task and make a comparison between semantic and syntactic features based on their differences. We thoroughly evaluate our approach using subtasks of the NTCIR-9 RITE. As a result, our system achieved 73.28% accuracy on the Chinese Binary-Class (BC) subtask with NTCIR-9 RITE. Thorough experiments with the text fragments provided by the NTCIR-9 RITE task show that the proposed approach can significantly improve system accuracy.
机译:识别文本蕴涵(RTE)是PASCAL / TAC任务,其中系统处理两个文本片段,以确定假设的含义是否来自其他文本。在本文中,我们提出了一种使用统计方法的文本包含系统,该系统将句法和语义技术结合在一起,以使用NTCIR-9 RITE任务识别文本推理(RITE),并根据它们之间的差异对语义和句法特征进行比较。我们使用NTCIR-9 RITE的子任务彻底评估我们的方法。结果,我们的系统使用NTCIR-9 RITE在中文二进制(BC)子任务上实现了73.28%的精度。对NTCIR-9 RITE任务提供的文本片段进行的全面实验表明,该方法可以显着提高系统精度。

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