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J Algorithm for Scientific Knowledge Discovery: Taking Economic Growth Theory as an Example

机译:j科学知识发现算法:以经济增长理论为例

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Text mining, intelligent algorithms and knowledge maps are the research frontiers and hotspots of current scientific knowledge discovery. However, there is currently no theoretical basis for such research-for example, the theoretical framework for the structure of scientific knowledge systems and the lack of case studies for scientific knowledge discovery. The paper proposes that most scientific knowledge systems are composed of concept set [A], concept set [B], and concept set [C]. Different scientific knowledge systems have different cognitive patterns [P], so the scientific knowledge system consists essentially of four concept sets. And the four concept sets are represented in the four quadrants of the "concept coordinate system", and then study the evolution process from concept to model block to model to model system, revealing new concepts and new structures in the process of scientific knowledge discovery. And through the construction case of the economic growth model of The Synergy Theory, it is shown that the knowledge map provides a powerful analysis tool for the "four-set analysis method" proposed by the J system methodology, thus greatly expanding, deepening and innovating the Swanson's knowledge discovery method which is based on non-relevant literature-ABC model.
机译:文本挖掘,智能算法和知识地图是当前科学知识发现的研究前沿和热点。然而,目前没有这些研究的理论依据 - 例如,科学知识系统结构的理论框架以及科学知识发现的缺乏案例研究。本文提出,大多数科学知识系统由概念集[A],概念集[B]和概念集[C]组成。不同的科学知识系统具有不同的认知模式[P],因此科学知识系统基本包括四个概念集。四个概念集在“概念坐标系”的四个象限中表示,然后从概念到模型块的进化过程,以模型系统,揭示科学知识发现过程中的新概念和新结构。并通过协同理论的经济增长模型的施工案例,表明知识地图为J系统方法提出的“四集分析方法”提供了强大的分析工具,从而大大扩展,深化和创新基于非相关文献-ABC模型的斯旺森知识发现方法。

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