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Mapping Yearly Fine Resolution Global Surface Ozone through the Bayesian Maximum Entropy Data Fusion of Observations and Model Output for 1990–2017Estimates of ground-level ozone concentrations are necessary to determine the human health burden of ozone. To support the Global Burden of Disease Study, we produce yearly fine resolution global surface ozone estimates from 1990 to 2017 through a data fusion of observations and models. As ozone observations are sparse in many populated regions, we use a novel combination of the M3Fusion and Bayesian Maximum Entropy (BME) methods. With M3Fusion, we create a multi-model composite by bias-correcting and weighting nine global atmospheric chemistry models based on their ability to predict observations (8,834 sites globally)in each region and year. BME is then used to integrate observations, such that estimates match observations at each monitoring site with the observational influence decreasing smoothly across space and time until the output matches the multi-model composite. After estimating at 0.5° resolution using BME, we add fine spatial detail from an additional model, yielding estimates at 0.1° resolution. Observed ozone is predicted more accurately (R2=0.81 at test point, 0.63 at 0.1°,0.62 at 0.5°) than the multi-model mean (R2=0.28 at 0.5°). Global ozone exposure is estimated to be increasing, driven by highly populated regions of Asia and Africa, despite decreases in the United States and Russia.
Document ID
20210011175
Acquisition Source
Goddard Space Flight Center
Document Type
Accepted Manuscript (Version with final changes)
Authors
Marissa N. DeLang
(University of North Carolina at Chapel Hill Chapel Hill, North Carolina, United States)
Jacob S. Becker
(University of North Carolina at Chapel Hill Chapel Hill, North Carolina, United States)
Kai-Lan Chang
(Cooperative Institute for Research in Environmental Sciences Boulder, Colorado, United States)
Marc L. Serre
(University of North Carolina at Chapel Hill Chapel Hill, North Carolina, United States)
Owen R. Cooper
(Cooperative Institute for Research in Environmental Sciences Boulder, Colorado, United States)
Martin G. Schultz
(Forschungszentrum Jülich Jülich, Germany)
Sabine Schröder
(Forschungszentrum Jülich Jülich, Germany)
Xiao Lu ORCID
(Peking University Beijing, Beijing, China)
Lin Zhang ORCID
(Peking University Beijing, Beijing, China)
Makoto Deushi
(Meteorological Research Institute (MRI) Tsukuba, Japan)
Beatrice Josse
(University of Toulouse Toulouse, Midi-Pyrénées, France)
Christoph A. Keller
(Universities Space Research Association Columbia, Maryland, United States)
Jean-François Lamarque
(National Center for Atmospheric Research Boulder, Colorado, United States)
Meiyun Lin
(Geophysical Fluid Dynamics Laboratory Princeton, New Jersey, United States)
Junhua Liu
(Universities Space Research Association Columbia, Maryland, United States)
Virginie Marécal
(University of Toulouse Toulouse, Midi-Pyrénées, France)
Sarah A. Strode
(Universities Space Research Association Columbia, Maryland, United States)
Kengo Sudo
(Nagoya University Nagoya, Japan)
Simone Tilmes ORCID
(National Center for Atmospheric Research Boulder, Colorado, United States)
Li Zhang ORCID
(Geophysical Fluid Dynamics Laboratory Princeton, New Jersey, United States)
Stephanie E. Cleland
(University of North Carolina at Chapel Hill Chapel Hill, North Carolina, United States)
Elyssa L. Collins
(University of North Carolina at Chapel Hill Chapel Hill, North Carolina, United States)
Michael Brauer ORCID
(University of British Columbia Vancouver, British Columbia, Canada)
J. Jason West ORCID
(University of North Carolina at Chapel Hill Chapel Hill, North Carolina, United States)
Date Acquired
March 10, 2021
Publication Date
March 8, 2021
Publication Information
Publication: Environmental Science and Technology
Publisher: American Chemical Society
Volume: 55
Issue: 8
ISSN: 0013-936X
e-ISSN: 1520-5851
Subject Category
Meteorology And Climatology
Funding Number(s)
CONTRACT_GRANT: NNG11HP16A
CONTRACT_GRANT: NNX16AQ30G
Distribution Limits
Public
Copyright
Portions of document may include copyright protected material.
Technical Review
External Peer Committee
Keywords
environmental modeling
atmospheric chemistry
redox reactions
composites
particulate matter
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