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Organizational Knowledge Transfer Using Ontologies and a Rule-Based System

机译:使用本体和基于规则的系统进行组织知识转移

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In recent automated and integrated manufacturing, so-called intelligence skill is becoming more and more important and its efficient transfer to next-generation engineers is one of the urgent issues. In this paper, we propose a new approach without costly OJT (on-the-job training), that is, combinational usage of a domain ontology, a rule ontology and a rule-based system. Intelligence skill can be decomposed into pieces of simple engineering rules. A rule ontology consists of these engineering rules as primitives and the semantic relations among them. A domain ontology consists of technical terms in the engineering rules and the semantic relations among them. A rule ontology helps novices get the total picture of the intelligence skill and a domain ontology helps them understand the exact meanings of the engineering rules. A rule-based system helps domain experts externalize their tacit intelligence skill to ontologies and also helps novices internalize them. As a case study, we applied our proposal to some actual job at a remote control and maintenance office of hydroelectric power stations in Tokyo Electric Power Co., Inc. We also did an evaluation experiment for this case study and the result supports our proposal.
机译:在最近的自动化和集成制造中,所谓的智能技能变得越来越重要,将其有效地转移给下一代工程师是迫在眉睫的问题之一。在本文中,我们提出了一种无需昂贵的OJT(在职培训)的新方法,即结合使用领域本体,规则本体和基于规则的系统。可以将智能技能分解为简单的工程规则。规则本体包括这些工程规则(作为原语)以及它们之间的语义关系。领域本体由工程规则中的技术术语及其之间的语义关系组成。规则本体可帮助新手全面掌握智能技能,领域本体可帮助他们了解工程规则的确切含义。基于规则的系统可以帮助领域专家将其默认的情报技能外部化为本体,还可以帮助新手对其进行内部化。作为案例研究,我们将建议应用到了东京电力公司水电站远程控制和维护办公室的一些实际工作中。我们还对该案例进行了评估实验,结果支持了我们的建议。

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