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Space–time tourist flow patterns in community-based tourism: an application of the empirical orthogonal function to Wi-Fi data

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  • Luning Li
  • Xiang Chen
  • Luyun Zhang
  • Qiang Li
  • Yang Yang
  • Jin Chen

Abstract

Community-based tourism is a sustainable form of tourism development where tourists visit residential communities to interact with local lives and cultures for an enhanced travel experience. Identifying and tracking tourist activities in community-based tourism is particularly challenging, as tourists have shared activity spaces with residents. The paper proposes a new method to study the space–time patterns of the tourist flow using Wi-Fi data. Specifically, we have tracked Wi-Fi probe requests over six months in the Shichahai scenic area, a famous community-based tourist attraction in Beijing, China. After deriving the tourist flow from the Wi-Fi data, we have applied the empirical orthogonal function (EOF) method to the identification of the spatial aggregation pattern and the temporality of the tourist flow. A follow-up explanatory analysis examines the environmental impacts, such as weather conditions, air quality, and travel days, on the space–time patterns. The study is among the first to employ Wi-Fi data to study travel behaviours in community-based tourism. The proposed method can shed insights into a better understanding of tourist behaviours in open-space, tourism-oriented urban communities.

Suggested Citation

  • Luning Li & Xiang Chen & Luyun Zhang & Qiang Li & Yang Yang & Jin Chen, 2023. "Space–time tourist flow patterns in community-based tourism: an application of the empirical orthogonal function to Wi-Fi data," Current Issues in Tourism, Taylor & Francis Journals, vol. 26(18), pages 3004-3022, September.
  • Handle: RePEc:taf:rcitxx:v:26:y:2023:i:18:p:3004-3022
    DOI: 10.1080/13683500.2022.2106826
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    Cited by:

    1. Yarlein Ivama Julio Guerrero & Francisco Teixeira Pinto Dias, 2024. "Tourist Tracking Techniques and Their Role in Destination Management: A Bibliometric Study, 2007–2023," Sustainability, MDPI, vol. 16(9), pages 1-24, April.

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