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Travel intention-based attraction network for recommending travel destinations

机译:基于旅行意图的吸引力网络,用于推荐旅行目的地

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Recommending travel destinations on the basis of users' travel intentions is a research topic being studied recently in the field of intention analysis. This study considers travel intentions from a large number of travel-related reviews containing the reviewers' purpose for visiting the points of interest (POIs). We analyze travel intentions of 83,207 POIs using 6,791,427 reviews in www.TripAdvisor.com with domain-tailored word embedding model. Building an attraction network based on travel intentions helps to recommend travel destinations to travelers and reviewers. We present three prediction methods to recommend travel destinations with an attraction network and description logic. We also present the evaluation results of recommendations from some prediction scenarios. Consequently, the travel intention classification is commensurate with an analysis of intentions from textual data, and the attraction network is useful for recommending travel destinations on the basis of short-and long-term user preferences.
机译:基于用户的旅行意图来推荐旅行目的地是最近在意图分析领域中研究的研究主题。本研究从大量与旅行相关的评论中考虑旅行意图,这些评论包含评论者访问兴趣点(POI)的目的。我们使用www.TripAdvisor.com中的6,791,427条点评和领域定制词嵌入模型来分析了83,207个POI的旅行意图。基于旅行意图构建吸引力网络有助于向旅行者和评论者推荐旅行目的地。我们提出了三种预测方法,以利用吸引力网络和描述逻辑来推荐旅行目的地。我们还介绍了一些预测方案中建议的评估结果。因此,旅行意图分类与根据文本数据进行的意图分析相对应,并且吸引力网络可用于基于短期和长期用户偏好来推荐旅行目的地。

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