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Quantifying personal exposure to air pollution from smartphone‐based location data

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  • Francesco Finazzi
  • Lucia Paci

Abstract

Personal exposure assessment is a challenging task that requires both measurements of the state of the environment as well as the individual's movements. In this paper, we show how location data collected by smartphone applications can be exploited to quantify the personal exposure of a large group of people to air pollution. A Bayesian approach that blends air quality monitoring data with individual location data is proposed to assess the individual exposure over time, under uncertainty of both the pollutant level and the individual location. A comparison with personal exposure obtained assuming fixed locations for the individuals is also provided. Location data collected by the Earthquake Network research project are employed to quantify the dynamic personal exposure to fine particulate matter of around 2500 people living in Santiago (Chile) over a 4‐month period. For around 30% of individuals, the personal exposure based on people movements emerges significantly different over the static exposure. On the basis of this result and thanks to a simulation study, we claim that even when the individual location is known with nonnegligible error, this helps to better assess personal exposure to air pollution. The approach is flexible and can be adopted to quantify the personal exposure based on any location‐aware smartphone application.

Suggested Citation

  • Francesco Finazzi & Lucia Paci, 2019. "Quantifying personal exposure to air pollution from smartphone‐based location data," Biometrics, The International Biometric Society, vol. 75(4), pages 1356-1366, December.
  • Handle: RePEc:bla:biomet:v:75:y:2019:i:4:p:1356-1366
    DOI: 10.1111/biom.13100
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    Cited by:

    1. Ander Wilson & Jessica Tryner & Christian L'Orange & John Volckens, 2020. "Bayesian nonparametric monotone regression," Environmetrics, John Wiley & Sons, Ltd., vol. 31(8), December.
    2. Eun-hye Yoo & Qiang Pu & Youngseob Eum & Xiangyu Jiang, 2021. "The Impact of Individual Mobility on Long-Term Exposure to Ambient PM 2.5 : Assessing Effect Modification by Travel Patterns and Spatial Variability of PM 2.5," IJERPH, MDPI, vol. 18(4), pages 1-16, February.
    3. Huizi Wang & Xiao Luo & Chao Liu & Qingyan Fu & Min Yi, 2022. "Spatio-Temporal Variation-Induced Group Disparity of Intra-Urban NO 2 Exposure," IJERPH, MDPI, vol. 19(10), pages 1-21, May.

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