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A method of intelligent recommendation using task ontology

机译:一种基于任务本体的智能推荐方法

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This study proposed a method of developing an intelligent recommendation system for automotive parts assembly. The proposed system will display the detailed information and the list components which make up the relevant part that an user wants through the database using the ontology when selecting an automotive part that an user intends to learn or to be guided of. This study is to design task ontology based on Hierarchical Taxonomy so as to achieve productivity enhancement, cost reduction and outcome improvement through recommendations based on intelligence and personalization depending on the worker’s present situation or context of task in charge when assembly of automotive parts is conducted. For this, composing elements of an engine and upper/lower relationships were expressed using hierarchical structure Taxonomy. The intelligent recommendation system for parts is offered to users through determining the automatic recommendation order between parts using the weights. This study has experimented the principles of the recommendation system and the method of setting the weights by setting two scenarios.
机译:这项研究提出了一种开发用于汽车零件装配的智能推荐系统的方法。当选择用户想要学习或要指导的汽车零件时,所提出的系统将使用本体通过数据库显示构成用户想要的相关零件的详细信息和列表组件。这项研究旨在设计基于层次分类法的任务本体,以便根据工人的现状或进行汽车零件组装时负责任务的上下文,通过基于智能和个性化的建议,实现生产率提高,成本降低和成果改进。为此,使用层次结构分类法表示引擎的组成元素和上下关系。通过使用权重确定零件之间的自动推荐顺序,向用户提供零件智能推荐系统。本研究尝试了推荐系统的原理和通过设置两个方案设置权重的方法。

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