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Proposing and investigating PCAMARS as a novel model for NO2 interpolation

Mohsen Yousefzadeh, Mahdi Farnaghi, Petter Pilesjö, Ali Mansourian

Research output: Contribution to journalArticlepeer-review

Abstract

Effective measurement of exposure to air pollution, not least NO2, for epidemiological studies along with the need to better management and control of air pollution in urban areas ask for precise interpolation and determination of the concentration of pollutants in nonmonitored spots. A variety of approaches have been developed and used. This paper aims to propose, develop, and test a spatial predictive model based on multivariate adaptive regression splines (MARS) and principle component analysis (PCA) to determine the concentration of NO2 in Tehran, as a case study. To increase the accuracy of the model, spatial data (population, road network and point of interests such as petroleum stations and green spaces) and meteorological data (including temperature, pressure, wind speed and relative humidity) have also been used as independent variables, alongside air quality measurement data gathered by the monitoring stations. The outputs of the proposed model are evaluated against reference interpolation techniques including inverse distance weighting, thin plate splines, kriging, cokriging, and MARS3. Interpolation for 12 months showed better accuracies of the proposed model in comparison with the reference methods.
Original languageEnglish
Number of pages12
JournalEnvironmental Monitoring and Assessment
Volume191
Issue number3
DOIs
Publication statusPublished - 2019 Mar

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 3 - Good Health and Well-being
    SDG 3 Good Health and Well-being
  2. SDG 11 - Sustainable Cities and Communities
    SDG 11 Sustainable Cities and Communities

Subject classification (UKÄ)

  • Multidisciplinary Geosciences
  • Meteorology and Atmospheric Sciences
  • Environmental Sciences

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