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Modelling the interplay of metaphor and emotion through multitask learning

机译:通过多任务学习建模隐喻与情感的相互作用

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Metaphors allow us to convey emotion by connecting physical experiences and abstract concepts. The results of previous research in linguistics and psychology suggest that metaphorical phrases tend to be more emotionally evocative than their literal counterparts. In this paper, we investigate the relationship between metaphor and emotion within a computational framework, by proposing the first joint model of these phenomena. We experiment with several multitask learning architectures for this purpose, involving both hard and soft parameter sharing. Our results demonstrate that metaphor identification and emotion prediction mutually benefit from joint learning and our models advance the state of the art in both of these tasks.
机译:隐喻允许我们通过连接物理体验和抽象概念来传达情感。前面的语言学和心理学研究的结果表明,隐喻短语往往比他们的文字对手更情绪化。在本文中,我们通过提出这些现象的第一联合模型来研究计算框架内隐喻与情感之间的关系。我们尝试几种多任务学习架构以实现此目的,涉及硬度和软参数共享。我们的结果表明,隐喻鉴定和情感预测相互中受益于联合学习,我们的模型在这两个任务中推进了最先进的技术。

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