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Discovering implicit activity preferences in travel itineraries by topic modeling

机译:通过主题建模发现旅行行程中的隐式活动偏好

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摘要

Travel itineraries are employed in tourism research to study tourist activities for various applications. However, the potentials of such itineraries in providing insights into the activity preferences of tourists have not been explored because of the complexity of travel information. In this paper, a new approach based on probabilistic topic modeling with latent Dirichlet allocation is introduced for travel itinerary analysis and representation. Capable of revealing the implicit preferences of tourists, the new approach enables topic modeling to be applied in itinerary analysis. We demonstrate its effectiveness through a case study of outbound travel behavior analysis on a large-scale travel itinerary data set. Activity profiles of various itinerary types at different destinations are revealed. The results are useful for travel and tourism managers in developing travel and tour packages. The general features of the proposed method can be applied into different tourism contexts and travel itinerary formats for wide applications.
机译:在旅游研究中使用旅游路线来研究旅游活动的各种应用。然而,由于旅行信息的复杂性,尚未探索这种行程提供游客的活动偏好的潜力。本文介绍了一种基于概率主题建模和潜在狄利克雷分配的新方法,用于旅行路线的分析和表示。这种新方法能够揭示游客的内在偏好,因此可以将主题建模应用到行程分析中。我们通过对大型旅行行程数据集进行出境旅行行为分析的案例研究来证明其有效性。揭示了在不同目的地的各种行程类型的活动概况。该结果对于旅行和旅游管理人员开发旅行和旅游套餐非常有用。所提出的方法的一般特征可以被应用到不同的旅游环境和旅行路线格式中以得到广泛的应用。

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