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Pattern mining in tourist attraction visits through association rule learning on Bluetooth tracking data: A case study of Ghent, Belgium

机译:通过基于蓝牙跟踪数据的关联规则学习在旅游景点访问中进行模式挖掘:以比利时根特为例

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The rapid evolution of information and positioning technologies, and their increasing adoption in tourism management practices allows for new and challenging research avenues. This paper presents an empirical case study on the mining of association rules in tourist attraction visits, registered for 15 days by the Bluetooth tracking methodology. This way, this paper aims to be a methodological contribution to the field of spatiotemporal tourism behavior research by demonstrating the potential of ad-hoc sensing networks in the non-participatory measurement of small-scale movements. An extensive filtering procedure is followed by an exploratory analysis, analyzing the discovered associations for different visitor segments and additionally visualizing them in 'visit pattern maps'. Despite the limited duration of the tracking period, we were able to discover interesting associations and further identified a tendency of visitors to rarely combine visits in the center with visits outside of the city center. We conclude by discussing both the potential of the employed methodology as well as its further issues.
机译:信息和定位技术的迅速发展,以及它们在旅游业管理实践中的日益普及,为研究提供了新的挑战。本文提供了一个实证案例研究,该案例是通过蓝牙跟踪方法注册的15天的旅游景点访问中的关联规则挖掘的。通过这种方式,本文旨在通过展示自组织传感网络在小规模运动的非参与性测量中的潜力,为时空旅游行为研究领域提供方法论上的贡献。进行广泛的筛选过程后,进行探索性分析,分析发现的针对不同访客段的关联,并在“访问模式图”中将其可视化。尽管跟踪期间的时间有限,但我们仍然能够发现有趣的关联,并进一步确定了访客很少将中心访问与市中心以外访问相结合的趋势。最后,我们讨论了所采用方法的潜力及其进一步的问题。

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