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Global Inference to Chinese Temporal Relation Extraction

机译:中国时间关系提取的全球推断

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Previous studies on temporal relation extraction focus on mining sentence-level information or enforcing coherence on different temporal relation types among various event mentions in the same sentence or neighboring sentences, largely ignoring those discourse-level temporal relations in nonadjacent sentences. In this paper, we propose a discourse-level global inference model to mine those temporal relations between event mentions in document-level, especially in nonadjacent sentences. Moreover, we provide various kinds of discourse-level constraints, which derived from event semantics, to further improve our global inference model. Evaluation on a Chinese corpus justifies the effectiveness of our discourse-level global inference model over two strong baselines.
机译:以前的时间关系提取研究集中在挖掘句子级信息或在同一句子或相邻句子中的各种事件提及之间加强不同时间关系类型的连贯性,而在很大程度上忽略了非相邻句子中的话语级时间关系。在本文中,我们提出了一种话语级的全局推理模型,以挖掘文档级(尤其是非相邻句子中)事件提及之间的时间关系。此外,我们提供了从事件语义派生的各种话语级约束,以进一步改善我们的全局推理模型。对中文语料库的评估证明了我们的话语级全局推断模型在两个强基准上的有效性。

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