Articles | Volume 8, issue 11
https://doi.org/10.5194/amt-8-4845-2015
© Author(s) 2015. This work is distributed under
the Creative Commons Attribution 3.0 License.
the Creative Commons Attribution 3.0 License.
https://doi.org/10.5194/amt-8-4845-2015
© Author(s) 2015. This work is distributed under
the Creative Commons Attribution 3.0 License.
the Creative Commons Attribution 3.0 License.
OMI total column ozone: extending the long-term data record
R. D. McPeters
CORRESPONDING AUTHOR
Laboratory for Atmospheres, Code 614, NASA Goddard Space Flight Center, Greenbelt, MD, USA
S. Frith
Science Systems and Applications Inc., 10210 Greenbelt Rd., Lanham, MD 20706, USA
G. J. Labow
Science Systems and Applications Inc., 10210 Greenbelt Rd., Lanham, MD 20706, USA
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Cited
55 citations as recorded by crossref.
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- Advancements in the Aerosol Robotic Network (AERONET) Version 3 database – automated near-real-time quality control algorithm with improved cloud screening for Sun photometer aerosol optical depth (AOD) measurements D. Giles et al. 10.5194/amt-12-169-2019
- The World Optical Depth Research and Calibration Center (WORCC) quality assurance and quality control of GAW-PFR AOD measurements S. Kazadzis et al. 10.5194/gi-7-39-2018
- A Post‐2013 Dropoff in Total Ozone at a Third of Global Ozonesonde Stations: Electrochemical Concentration Cell Instrument Artifacts? R. Stauffer et al. 10.1029/2019GL086791
- The Status of Air Quality in the United States During the COVID-19 Pandemic: A Remote Sensing Perspective Y. Elshorbany et al. 10.3390/rs13030369
- Aerosol optical depth comparison between GAW-PFR and AERONET-Cimel radiometers from long-term (2005–2015) 1 min synchronous measurements E. Cuevas et al. 10.5194/amt-12-4309-2019
- Three-dimensional radiative transfer effects on airborne and ground-based trace gas remote sensing M. Schwaerzel et al. 10.5194/amt-13-4277-2020
- Technical note: Constraining the hydroxyl (OH) radical in the tropics with satellite observations of its drivers – first steps toward assessing the feasibility of a global observation strategy D. Anderson et al. 10.5194/acp-23-6319-2023
- Determination of the total ozone content from data of satellite IR Fourier-spectrometer A. Garkusha et al. 10.1134/S0001433817040041
- Assessment of total columnar ozone climatological trends over the Indian sub-continent M. Pathakoti et al. 10.1080/01431161.2018.1452066
- New Era of Air Quality Monitoring from Space: Geostationary Environment Monitoring Spectrometer (GEMS) J. Kim et al. 10.1175/BAMS-D-18-0013.1
- Satellite-based estimation of full-coverage ozone (O3) concentration and health effect assessment across Hainan Island R. Li et al. 10.1016/j.jclepro.2019.118773
- A study on harmonizing total ozone assimilation with multiple sensors Y. Rochon et al. 10.5194/acp-19-9431-2019
- Long-term analysis of the Antarctic total ozone zonal asymmetry by MERRA-2 and CMIP6 data O. Ivaniha 10.33275/1727-7485.1.2020.378
- Enterprise version 8 total column ozone algorithm (EV8TOz) development and applications on multiple sensors J. Niu et al. 10.1080/2150704X.2023.2185111
- Evaluation of the Ozone Fields in NASA’s MERRA-2 Reanalysis K. Wargan et al. 10.1175/JCLI-D-16-0699.1
- Total ozone column from Ozone Mapping and Profiler Suite Nadir Mapper (OMPS-NM) measurements using the broadband weighting function fitting approach (WFFA) A. Orfanoz-Cheuquelaf et al. 10.5194/amt-14-5771-2021
- Evidence for a continuous decline in lower stratospheric ozone offsetting ozone layer recovery W. Ball et al. 10.5194/acp-18-1379-2018
- Developing a novel hybrid model for the estimation of surface 8 h ozone (O3) across the remote Tibetan Plateau during 2005–2018 R. Li et al. 10.5194/acp-20-6159-2020
- Dry deposition of NO2 over China inferred from OMI columnar NO2 and atmospheric chemistry transport model X. Zhang et al. 10.1016/j.atmosenv.2017.09.017
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- Latitudinally Weighted Mean Global Ozone 1979-2015 J. Munshi 10.2139/ssrn.2748016
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- Long-term trends of total ozone content over mid-latitudes of the Northern Hemisphere V. Bozhkova et al. 10.1080/01431161.2019.1579384
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- Monitoring of the Essential Climate Variables of the Atmosphere from Satellite-based Infrared Sounder IKFS-2 A. Uspensky et al. 10.3103/S1068373922110012
- Solar UV radiation measurements in Marambio, Antarctica, during years 2017–2019 M. Aun et al. 10.5194/acp-20-6037-2020
- Total ozone measurements using IKFS-2 spectrometer aboard Meteor-M N2 satellite in 2019–2020 A. Polyakov et al. 10.1080/01431161.2021.1985741
- Improving ECC Ozonesonde Data Quality: Assessment of Current Methods and Outstanding Issues D. Tarasick et al. 10.1029/2019EA000914
- The Reprocessed Suomi NPP Satellite Observations C. Zou et al. 10.3390/rs12182891
- A Satellite-Based Land Use Regression Model of Ambient NO2 with High Spatial Resolution in a Chinese City L. Zhang et al. 10.3390/rs13030397
Saved (preprint)
Latest update: 04 Nov 2024
Short summary
Comparisons show that ozone measured by OMI varied less than 1% relative to other NASA and European satellite instruments or relative to ground-based instruments. This means that OMI data can be used to reliably track global changes in ozone during the expected ozone recovery period and can be used to look for ozone signatures related to climate change.
Comparisons show that ozone measured by OMI varied less than 1% relative to other NASA and...