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Precision Difference Management using a Common Sub-vector to Extend the Extended VSM Method

机译:使用通用子向量扩展扩展VSM方法的精度差异管理

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Contractors, commercial and business decision-makers need economical information to drive their decisions. The production and distribution of a press review about French regional economic actors represents a prospecting tool on partners and competitors for the businessman. Our goal is to propose a customized review for each user, thus reducing the overload of useless information. Some systems for recommending news items already exist. The usefulness of external knowledge to improve the process has already been explained in information retrieval. The system's knowledge base in- cludes the domain knowledge used during the recommendation process. Our recommender system architecture is standard, but during the indexing task, the representations of content of each article and interests of users’ profiles created are based on this domain knowledge. Articles and Profiles are semantically defined in the Knowledge base via concepts, instances and relations. This paper deals with the relevance measure, a critical sub-task in recommendation systems and relationships between relevance and similarity concepts. The Vector Space Model is a well-known model used for relevance ranking. The problematic exposed here is the utilization of the standard VSM method with our indexing method.
机译:承包商,商业和商业决策者需要经济信息来推动他们的决策。有关法国区域经济参与者的新闻评论的制作和发行,代表了商人合作伙伴和竞争对手的发掘工具。我们的目标是为每个用户提出定制的评论,从而减少无用信息的过载。已经存在一些推荐新闻项目的系统。信息检索中已经解释了外部知识对改进流程的有用性。系统的知识库包括推荐过程中使用的领域知识。我们的推荐系统体系结构是标准的,但是在编制索引任务期间,每篇文章的内容表示和所创建的用户个人资料的兴趣均基于该领域知识。文章和个人资料通过概念,实例和关系在知识库中进行语义定义。本文涉及相关性度量,推荐系统中的关键子任务以及相关性和相似性概念之间的关系。向量空间模型是用于相关性排名的众所周知的模型。这里暴露的问题是标准VSM方法和我们的索引方法的利用。

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