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A Bayesian Network And Analytic Hierarchy Process Based Personalized Recommendations For Tourist Attractions Over The Internet

机译:基于贝叶斯网络和层次分析法的互联网旅游景点个性化推荐

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Selecting tourist attractions to visit at a destination is a main stage in planning a trip. Although various online travel recommendation systems have been developed to support users in the task of travel planning during the last decade, few systems focus on recommending specific tourist attractions. In this paper, an intelligent system to provide personalized recommendations of tourist attractions in an unfamiliar city is presented. Through a tourism ontology, the system allows integration of heterogeneous online travel information. Based on Bayesian network technique and the analytic hierarchy process (AHP) method, the system recommends tourist attractions to a user by taking into account the travel behavior both of the user and of other users. Spatial web services technology is embedded in the system to provide GIS functions. In addition, the system provides an interactive geographic interface for displaying the recommendation results as well as obtaining users' feedback. The experiments show that the system can provide personalized recommendations on tourist attractions that satisfy the user.
机译:选择旅行目的地的旅游景点是计划行程的主要阶段。尽管在过去十年中开发了各种在线旅行推荐系统来支持用户进行旅行计划,但是很少有系统专注于推荐特定的旅游景点。本文提出了一种智能系统,可在陌生城市中提供个性化的旅游景点推荐。通过旅游本体,该系统允许集成各种在线旅游信息。基于贝叶斯网络技术和层次分析法(AHP),系统通过考虑用户和其他用户的出行行为,向用户推荐旅游景点。系统中嵌入了空间Web服务技术以提供GIS功能。另外,该系统提供了一个交互式地理界面,用于显示推荐结果以及获得用户的反馈。实验表明,该系统可以在满足用户需求的旅游景点上提供个性化推荐。

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