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Transforming Geo-Referenced Data in Contextual Information for Context-Aware Recommender Systems

机译:为上下文感知推荐器系统转换上下文信息中的地理参考数据

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A recommender system can be defined as an information filtering technology which can be used to output a ranking of items (e.g. products, places, etc) that are likely to be of interest to a user. Context-aware recommender systems makes recommendations by incorporating contextual information into the recommendation process. However, there is a lack of automatic methods to obtain contextual information for such systems. In this work, we have proposed to apply clustering techniques to transform geo-referenced data (i.e. latitude and longitude) in contextual information (i.e. regions) to feed the contextual systems. We have evaluated our proposal in the Yelp dataset, which showed evidences that our contextual information can provide better recommendations.
机译:推荐系统可以定义为一种信息过滤技术,可以用于输出用户可能感兴趣的商品(例如产品,地点等)的排名。上下文感知推荐器系统通过将上下文信息纳入推荐过程来进行推荐。但是,缺少自动方法来获取此类系统的上下文信息。在这项工作中,我们建议应用聚类技术来转换上下文信息(即区域)中的地理参考数据(即纬度和经度),以为上下文系统提供数据。我们已经在Yelp数据集中评估了我们的提案,该证据表明我们的上下文信息可以提供更好的建议。

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