Spatio-Temporal Patterns of Fitness Behavior in Beijing Based on Social Media Data

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Abstract

Fitness is an important way to ensure the health of the population, and it is important to actively understand fitness behavior. Although social media Weibo data (the Chinese Tweeter) can provide multidimensional information in terms of objectivity and generalizability, there is still more latent potential to tap. Based on Sina Weibo social media data in the year 2017, this study was conducted to explore the spatial and temporal patterns of urban residents’ different fitness behaviors and related influencing factors within the Fifth Ring Road of Beijing. FastAI, LDA, geodetector technology, and GIS spatial analysis methods were employed in this study. It was found that fitness behaviors in the study area could be categorized into four types. Residents can obtain better fitness experiences in sports venues. Different fitness types have different polycentric spatial distribution patterns. The residents’ fitness frequency shows an obvious periodic distribution (weekly and 24 h). The spatial distribution of the fitness behavior of residents is mainly affected by factors, such as catering services, education and culture, companies, and public facilities. This research could help to promote the development of urban residents’ fitness in Beijing.

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Tian, B., Meng, B., Wang, J., Zhi, G., Qi, Z., Chen, S., & Liu, J. (2022). Spatio-Temporal Patterns of Fitness Behavior in Beijing Based on Social Media Data. Sustainability (Switzerland), 14(7). https://doi.org/10.3390/su14074106

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