首页> 外文期刊>International Journal of Neural Systems >A NEURAL NETWORK MODEL OF METAPHOR UNDERSTANDING WITH DYNAMIC INTERACTION BASED ON A STATISTICAL LANGUAGE ANALYSIS: TARGETING A HUMAN-LIKE MODEL
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A NEURAL NETWORK MODEL OF METAPHOR UNDERSTANDING WITH DYNAMIC INTERACTION BASED ON A STATISTICAL LANGUAGE ANALYSIS: TARGETING A HUMAN-LIKE MODEL

机译:基于统计语言分析的具有动态交互作用的元搜索理解神经网络模型:以人为模型为目标

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The purpose of this paper is to construct a model that represents the human process of understanding metaphors, focusing specifically on similes of the form an "A like B". Generally speaking, human beings are able to generate and understand many sorts of metaphors. This study constructs the model based on a probabilistic knowledge structure for concepts which is computed from a statistical analysis of a large-scale corpus. Consequently, this model is able to cover the many kinds of metaphors that human beings can generate. Moreover, the model implements the dynamic process of metaphor understanding by using a neural network with dynamic interactions. Finally, the validity of the model is confirmed by comparing model simulations with the results from a psychological experiment.
机译:本文的目的是构建一个代表人类理解隐喻过程的模型,特别关注“ A像B”形式的比喻。一般而言,人类能够产生和理解多种隐喻。本研究基于概率知识结构为概念构建模型,该概念是通过对大型语料库进行统计分析得出的。因此,该模型能够涵盖人类可能产生的多种隐喻。此外,该模型通过使用具有动态交互作用的神经网络来实现隐喻理解的动态过程。最后,通过将模型模拟与心理实验的结果进行比较,可以确认模型的有效性。

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