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GraPHIA: a computational model for identifying phonological jokes

机译:GraPHIA:用于识别语音笑话的计算模型

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Currently in humor research, there exists a dearth of computational models for humor perception. The existing theories are not quantifiable and efforts need to be made to quantify the models and incorporate neuropsychological findings in humor research. We propose a new computational model (GraPHIA) for perceiving phonological jokes or puns. GraPHIA consists of a semantic network and a phonological network where words are represented by nodes in both the networks. Novel features based on graph theoretical concepts are proposed and computed for the identification of homophonic jokes. The data set for evaluating the model consisted of homophonic puns, normal sentences, and ambiguous nonsense sentences. The classification results show that the feature values result in successful identification of phonological jokes and ambiguous nonsense sentences suggesting that the proposed model is a plausible model for humor perception. Further work is needed to extend the model for identification of other types of phonological jokes.
机译:当前在幽默研究中,缺少用于幽默感的计算模型。现有的理论是不可量化的,需要努力量化模型并将神经心理学的发现纳入幽默研究中。我们提出了一种新的计算模型(GraPHIA),用于感知语音笑话或双关语。 GraPHIA由语义网络和语音网络组成,其中单词由两个网络中的节点表示。提出了基于图论概念的新颖特征,并对其进行了计算,以识别谐音笑话。用于评估模型的数据集由谐音双关,正常句子和模糊的无意义句子组成。分类结果表明,特征值可成功识别语音笑话和模棱两可的废话,这表明所提出的模型是幽默感的合理模型。需要进一步的工作来扩展该模型,以识别其他类型的语音笑话。

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