包含在自然语言词域中的信息和数学结构及其应用

N. C. Ho
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引用次数: 0

摘要

本研究的观点是,现实世界的结构与其在现实中提供的信息之间存在关系。这种关系是必不可少的,因为自然语言在捕获、传递信息和积累包含有用高级信息的知识等方面起着特别重要和关键的作用。因此,它必须包含一定的语义结构,包括语言(L-)变量的语义结构,这是基本的,类似于数学变量的结构。在这种情况下,(L-)变量的词域可以以一种公理的方式形式化为基于代数语义的结构,称为对冲代数(HAs),这一事实仍然是一个新颖的事件,对于开发计算方法来模拟基于所谓的基于自然语言的形式主义解决问题的人类能力至关重要。对冲代数成立于1990年。从那时起,HA-formalism得到了显著的发展,并应用于解决许多不同领域的几个应用问题,如模糊控制、数据分类和回归、机器人、l -时间序列预测和l -数据汇总。本研究概述了ha -形式主义的具体区别基本特征,其在问题解决中的适用性及其性能。
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INFORMATION AND MATHEMATICAL STRUCTURES CONTAINED IN THE NATURAL LANGUAGE WORD DOMAINS AND THEIR APPLICATIONS
The study stands on the standpoint that there exist relationships between real-world structures and their provided information in reality. Such relationships are essential because the natural language plays a specifically vital and crucial role in, e.g., capturing, conveying information, and accumulating knowledge containing useful high-level information. Consequently, it must contain certain semantics structures, including linguistic (L-) variables’ semantic structures, which are fundamental, similar to the math variables’ structures. In this context, the fact that the (L-) variables’ word domains can be formalized as algebraic semantics-based structures in an axiomatic manner, called hedge algebras (HAs,)  is still a novel event and essential for developing computational methods to simulate the human capabilities in problem-solving based on the so-called natural language-based formalism. Hedge algebras were founded in 1990. Since then, HA-formalism has been significantly developed and applied to solve several application problems in many distinct fields, such as fuzzy control, data classification and regression, robotics, L-time series forecasting, and L-data summarization. The study gives a survey to summarize specific distinguishing fundamental features of HA-formalism, its applicability in problem-solving, and its performance. 
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