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Exploiting semantics for context-aware itinerary recommendation

机译:利用语义进行上下文感知的行程推荐

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Itinerary planning is a challenging task for users wishing to enjoy points of interest (POIs) in line with their preferences, the current context of use, and travel constraints. This article describes an approach to exploit linked open data (LOD) to perform a context-aware recommendation of personalized itineraries with related multimedia content. The recommendation process takes into account the user profile, the context of use, and the characteristics of the POIs extracted from LOD. The system, therefore, consists of six main modules that accomplish the following tasks: (i) the creation of the user profile according to her interests and preferences; (ii) the elicitation of the current context of use; (iii) the extraction and filtering of POIs from LOD through customized and dynamic queries; (iv) the itinerary construction to determine the first K itineraries that match the query; (v) their ranking through a score function that considers several factors, such as the POI popularity, the POI diversity in terms of their categories, the distance and the travel time of the itinerary, the user profile, and her physical and social context; (vi) the recommendation of multimedia and textual contents related to the itinerary suggested to the target user. The results of experimental tests performed on 50 real users show the benefits of the proposed recommender not only in terms of normalized discounted cumulative gain (nDCG), but also in terms of precision and beyond-accuracy metrics.
机译:对于希望根据自己的喜好,当前使用环境和旅行限制来享受景点(POI)的用户而言,行程计划是一项艰巨的任务。本文介绍一种利用链接的开放数据(LOD)来执行具有相关多媒体内容的个性化路线的上下文感知推荐的方法。推荐过程考虑了用户配置文件,使用环境以及从LOD中提取的POI的特征。因此,该系统由六个主要模块组成,这些模块完成以下任务:(i)根据用户的兴趣和喜好创建用户配置文件; (ii)得出当前使用背景; (iii)通过定制和动态查询从LOD中提取和过滤POI; (iv)路线结构以确定与查询匹配的前K条路线; (v)通过考虑几个因素的得分函数对他们进行排名,例如POI受欢迎程度,POI类别的多样性,路线的距离和旅行时间,用户个人资料以及她的身体和社交环境; (vi)向目标用户推荐与行程相关的多媒体和文本内容。在50个真实用户上进行的实验测试结果表明,建议的推荐程序不仅在标准化折现累积收益(nDCG)方面,而且在精度和超精度指标方面均具有优势。

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