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Human awareness viewed from natural language concept formation: Focusing on affective words related to facial expressions

机译:从自然语言概念形成看人类意识:关注与面部表情相关的情感词

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Mental Image Directed Semantic Theory (MIDST) has already shown that each physical event concept (e.g., “carry”, “separate”) in natural language is characterized by a so-called “event pattern”, abstract pattern formed by the constituents of its referents. Therefore, people are assumed significantly aware of the event pattern involved when they cognize or recognize a physical event discerned with the others. Such event patterns are modeled as so-called “loci in attribute spaces” in MIDST. This is also the case for mental event concepts (e.g., “love”, “sympathize”). For example, a 5-dimensional attribute space can be provided for human emotion. This paper describes an approach toward a human mentality, so called Kansei, in order to provide robots with a function to measure peoples' emotions toward external things, focusing on human awareness in concept formation of affective words related to facial expressions of Buddhism statues.
机译:心理图像定向语义理论(MIDST)已经表明,自然语言中的每个物理事件概念(例如,“携带”,“分离”)都具有所谓的“事件模式”,即由其组成部分形成的抽象模式。指称对象。因此,当人们认识或识别与他人识别的物理事件时,就假定他们充分意识到所涉及的事件模式。这种事件模式在MIDST中被建模为所谓的“属性空间中的位置”。精神事件概念(例如“爱”,“同情”)也是如此。例如,可以为人类情感提供5维属性空间。本文介绍一种称为“感性”的人类思维方法,旨在为机器人提供一种测量人们对外部事物的情感的功能,重点关注与佛教雕像面部表情有关的情感词的概念形成中的人类意识。

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