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Recommendation system for documentary classification

机译:文档分类推荐系统

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In the context of the NAR1 project “Miipa-doc”, we develop a new type of Knowledge Organization System (KOS) called Hypertagging based on the tagging of electronic documents and the principles of faceted classification. It was designed to simplify the tasks of information management for the organizations' staff. In this paper, we propose a new recommendation model and algorithm which are based on a faceted classification by level in the aim to facilitate the documents' indexing. This approach exploits the user trace indexing of his/her documents to learn about the user preferences and then to produce their recommendations. Consequently, these recommendations will provide a kind of knowledge base aiming at improving document ranking and highlight most relevant information that meeting user needs. This model is based on a statistical method called Association Rules (AR) using an Apriori algorithm to generate the recommendations.
机译:在NAR 1 项目“MIIPA-DOC”的上下文中,我们开发了一种新型的知识组织系统(KOS),称为高音记录,基于电子文档的标记和刻面分类的原则。它旨在简化组织员工的信息管理任务。在本文中,我们提出了一种新的推荐模型和算法,其基于课程的刻度分类,以便于促进文件的索引。这种方法利用用户跟踪他/她的文档的索引来了解用户偏好,然后产生他们的建议。因此,这些建议将提供一种旨在改进文件排名的知识库,并突出满足用户需求的大多数相关信息。该模型基于使用APRIORI算法生成建议的统计方法,称为关联规则(AR)。

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