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Using collective intelligence to generate trend-based travel recommendations

机译:利用集体智慧生成基于趋势的旅行建议

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摘要

Trips are multifaceted, complex products which cannot be tested in advance due to their geographical distance. Hence, making a travel decision people often ask others for advice. This leads to an increasing importance of communities. Within communities people share their experiences, which results in new, more extensive knowledge beyond the individual knowledge of each member. The objective of this paper is to use this knowledge by developing an algorithm that automatically generates trend-based travel recommendations. Based on the travel experiences of the community members, interesting travel areas are identified. Five key figures to evaluate these areas according to general criteria and the users' individual preferences are developed. The algorithm allows to generate recommendations for the whole community and not only for highly active members, resulting in a high coverage. A study conducted within an online travel community shows that automatically generated, trend-based trip recommendations are rated better than user-generated recommendations.
机译:旅行是多方面的,复杂的产品,由于其地理位置而无法预先测试。因此,人们做出旅行决定时通常会向他人征求意见。这导致社区越来越重要。在社区内,人们分享他们的经验,从而获得新的,更广泛的知识,而不仅仅是每个成员的个人知识。本文的目的是通过开发一种自动生成基于趋势的出行建议的算法来利用这些知识。根据社区成员的旅行经历,确定有趣的旅行区域。制定了五个根据一般标准和用户个人喜好评估这些领域的关键指标。该算法不仅可以为整个社区生成建议,而且还可以为活跃度很高的成员生成建议,从而获得较高的覆盖率。在在线旅行社区中进行的一项研究表明,自动生成的基于趋势的旅行推荐的等级要优于用户生成的推荐。

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