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Homographic pun location using multi-dimensional semantic relationships

机译:使用多维语义关系的同类双关语位置

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摘要

Homographic pun has been developed into a new research area as an important branch of humor research, being a common source of humor in jokes and other comedic works. Pun word is the key to better understand homographic pun. However, in order to construct automatic model for locating the pun from homographic pun, it remains difficult challenges because of the ambiguity and confusion. In this paper, we firstly introduce several multi-dimensional semantic relationships of homographic pun based on the relevant theory and then employ a novel effective un-supervised semantic similarity match approach MSRLP that depending on the multi-dimensional semantic relationships to locate the pun in a homographic pun. Performance evaluation demonstrates that our presented approach significantly achieves the state-of-the-art performance on the public SemEval2017 Task7 dataset, outperforming a number of strong baselines by at least 3.67% in F1-score measure.
机译:作为一个新的研究领域,作为幽默研究的重要分支,成为一个新的研究领域,成为笑话和其他喜剧作品的共同来源。 PUN Word是更好地理解同类双关语的关键。 然而,为了构建自动模型来定位双关语双关语,由于含糊不清和混乱,它仍然困难。 在本文中,我们首先基于相关理论介绍了多维语义关系,然后采用新颖的有效的未经监督的语义相似性匹配方法MSRLP,这取决于定位双关语的多维语义关系 同类双关语。 绩效评估表明,我们所提出的方法在公共Semeval2017 Task7数据集上显着实现了最先进的性能,优先于F1分数测量中至少3.67%的强力基线。

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