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Neurally and Mathematically Motivated Architecture for Language and Thought

机译:语言和思想的中性和数学动机建筑

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摘要

Neural structures of interaction between thinking and language are unknown. This paper suggests a possible architecture motivated by neural and mathematical considerations. A mathematical requirement of computability imposes significant constraints on possible architectures consistent with brain neural structure and with a wealth of psychological knowledge. How language interacts with cognition. Do we think with words, or is thinking independent from language with words being just labels for decisions? Why is language learned by the age of 5 or 7, but acquisition of knowledge represented by learning to use this language knowledge takes a lifetime? This paper discusses hierarchical aspects of language and thought and argues that high level abstract thinking is impossible without language. We discuss a mathematical technique that can model the joint language-thought architecture, while overcoming previously encountered difficulties of computability. This architecture explains a contradiction between human ability for rational thoughtful decisions and irrationality of human thinking revealed by Tversky and Kahneman; a crucial role in this contradiction might be played by language. The proposed model resolves long-standing issues: how the brain learns correct words-object associations; why animals do not talk and think like people. We propose the role played by language emotionality in its interaction with thought. We relate the mathematical model to Humboldt’s “firmness” of languages; and discuss possible influence of language grammar on its emotionality. Psychological and brain imaging experiments related to the proposed model are discussed. Future theoretical and experimental research is outlined.
机译:思维与语言之间互动的神经结构尚不清楚。本文提出了一种基于神经和数学考虑的可能的体系结构。可计算性的数学要求对与脑神经结构和丰富的心理学知识相一致的可能结构施加了重大限制。语言如何与认知互动。我们是用单词思考还是以语言作为决策的标签独立于语言而思考?为什么在5或7岁时学习语言,但是学习使用这种语言知识所代表的知识却需要一生?本文讨论了语言和思想的层次结构方面,并指出没有语言就不可能进行高级抽象思维。我们讨论了一种数学技术,可以对联合语言思想的体系结构进行建模,同时克服以前遇到的可计算性难题。这种架构解释了特维尔斯基和卡尼曼揭示的人类理性周到决策的能力与人类思想的非理性之间的矛盾。语言可能在这种矛盾中发挥关键作用。该模型解决了长期存在的问题:大脑如何学习正确的单词-对象关联;为什么动物不像人一样说话和思考。我们提出语言情感在与思想互动中所起的作用。我们将数学模型与洪堡的语言“坚固性”联系起来;并讨论语言语法对其情感的可能影响。讨论了与该模型相关的心理和脑成像实验。概述了未来的理论和实验研究。

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