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A hybrid context aware system for tourist guidance based on collaborative filtering

机译:一种基于协作滤波的旅游指导的混合语境意识系统

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In the area of ambient intelligence there is a need to address user needs according with context features. Recently, the synergy between context aware computing and collaborative filtering is leading to enhance recommender systems with capabilities always nearer to user needs. Specifically, in the domain of tourism it is useful to proactively suggest right sets of attractive locations, events and so on. This work defines a context aware recommender system aimed at suggesting pertinent points of interest (POIs) to tourists. In particular, the approach is strongly based on the synergy between soft computing and data mining techniques. The general framework integrates user profiles, history of social networking and POIs data. Then by defining collaborative filtering approach on the history meaningful POIs are extracted. Indeed, soft computing techniques are mainly applied in order to support activity of unsupervised users and POIs classification. On the other hand, data mining techniques are exploited in order to extract rules able to associate user profile and context features with an eligible set of recommendable POIs. Experimental results show performance in terms of recommendations accuracy.
机译:在环境智能领域,需要根据上下文功能来解决用户需求。最近,上下文感知计算和协作过滤之间的协同作用导致增强带有功能的推荐系统,始终更靠近用户需求。具体而言,在旅游领域,积极建议正确的有吸引力的地点,事件等,是有用的。这项工作定义了一个上下文意识推荐制度,旨在向游客建议有关兴趣点(POI)。特别是,该方法强烈基于软计算与数据挖掘技术之间的协同作用。一般框架集成了用户配置文件,社交网络和POIS数​​据的历史。然后通过在提取有意义的POI上定义历史上的协同过滤方法。实际上,主要应用软计算技术,以支持无监督的用户和POI分类的活动。另一方面,利用数据挖掘技术,以便提取能够将用户配置文件和上下文功能与符合条件的推荐POI组织联将的规则。实验结果表明,在建议准确性方面表现出性能。

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