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Word Embedding and WordNet Based Metaphor Identification and Interpretation

机译:基于Word嵌入和Wordnet的隐喻识别和解释

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Metaphoric expressions are widespread in natural language, posing a significant challenge for various natural language processing tasks such as Machine Translation. Current word embedding based metaphor identification models cannot identify the exact metaphorical words within a sentence. In this paper, we propose an un-supervised learning method that identifies and interprets metaphors at word-level without any preprocessing, outperforming strong baselines in the metaphor identification task. Our model extends to interpret the identified metaphors, paraphrasing them into their literal counterparts, so that they can be better translated by machines. We evaluated this with two popular translation systems for English to Chinese, showing that our model improved the systems significantly.
机译:隐喻表达式在自然语言中普遍存在,对机器翻译等各种自然语言处理任务构成了重大挑战。基于目前的Word基于的隐喻识别模型无法识别句子中的确切隐喻单词。在本文中,我们提出了一种未经监督的学习方法,该方法识别和解释词语水平的隐喻,而无需任何预处理,优于隐喻识别任务中的强大基线。我们的模型扩展以解释所确定的隐喻,将它们解释为文字对应物,以便它们可以更好地翻译机。我们用两个流行的英语翻译系统评估了这一点,表明我们的模型显着改善了系统。

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