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首页> 外文期刊>International Journal of Information Management >A sequence-based filtering method for exhibition booth visit recommendations
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A sequence-based filtering method for exhibition booth visit recommendations

机译:基于顺序的展位参观推荐过滤方法

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As exhibitions are known to play important roles in marketing and sales promotion, the exhibition industry has grown significantly not only in the exhibition event size and frequency but also in the number of participating firms and visitors. While the challenge in assessing economic returns from exhibitions is being studied, it is agreed that the eventual success of an exhibition resides largely in its ability to meet the visitors' needs. Visitors use an exhibition as a source of information when searching for products or services. Though an exhibition provides an information-rich environment, however, visitors often get lost in the abundance of information. A specialized recommender system can be a good solution to information overload as it can guide visitors to right exhibition booths and help them collect necessary information. Traditional collaborative-filtering recommender systems, however, use only customers' rating or purchase records so that they do not capture exhibition visitors' temporal visit sequences and dynamic preferences. Moreover, due to the computation overhead, they cannot generate real-time recommendation in ubiquitous environments for exhibitions. In order to overcome these drawbacks, this study proposes a booth recommendation procedure that takes into consideration not only booth visit records but also visit sequences. Experiment results show that the proposed procedure achieves higher recommendation accuracy, faster computation, and more diversity than a typical collaborative-filtering recommender system. From the results, we conclude that the proposed booth recommendation procedure is suitable for real-time recommendation in ubiquitous exhibition environments.
机译:众所周知,展览在市场营销和促销中起着重要作用,因此展览业不仅在展览活动的规模和频率上显着增长,而且在参展公司和参观者的数量上也有了显着增长。虽然正在研究评估展览的经济回报所面临的挑战,但人们一致认为,展览的最终成功很大程度上取决于其满足游客需求的能力。访客在搜索产品或服务时将展览用作信息来源。尽管展览提供了一个信息丰富的环境,但是,参观者经常会迷失在丰富的信息中。专用的推荐器系统可以很好地解决信息过多的问题,因为它可以将访客引导到正确的展位并帮助他们收集必要的信息。但是,传统的协作过滤推荐系统仅使用客户的评分或购买记录,因此他们不会捕获展览访问者的临时访问顺序和动态偏好。而且,由于计算开销,它们无法在无处不在的展览环境中生成实时推荐。为了克服这些缺点,本研究提出了一种展位推荐程序,该程序不仅要考虑展位访问记录,还要考虑访问顺序。实验结果表明,与典型的协同过滤推荐系统相比,所提方法具有更高的推荐精度,更快的计算速度和更大的多样性。从结果可以得出结论,建议的展位推荐程序适用于无处不在的展览环境中的实时推荐。

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