Description of the China global Merged Surface Temperature version 2.0

Global surface temperature observational datasets are the basis of global warming studies. In the context of increasing global warming and frequent extreme events, it is essential to improve the coverage and reduce the uncertainty in global surface temperature datasets. The China global Merged Surfa...

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Published in:Earth System Science Data
Main Authors: W. Sun, Y. Yang, L. Chao, W. Dong, B. Huang, P. Jones, Q. Li
Format: Article in Journal/Newspaper
Language:English
Published: Copernicus Publications 2022
Subjects:
geo
Online Access:https://doi.org/10.5194/essd-14-1677-2022
https://essd.copernicus.org/articles/14/1677/2022/essd-14-1677-2022.pdf
https://doaj.org/article/520e79806d1745e5ac16f6dc307e25a1
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spelling fttriple:oai:gotriple.eu:oai:doaj.org/article:520e79806d1745e5ac16f6dc307e25a1 2023-05-15T15:10:29+02:00 Description of the China global Merged Surface Temperature version 2.0 W. Sun Y. Yang L. Chao W. Dong B. Huang P. Jones Q. Li 2022-04-01 https://doi.org/10.5194/essd-14-1677-2022 https://essd.copernicus.org/articles/14/1677/2022/essd-14-1677-2022.pdf https://doaj.org/article/520e79806d1745e5ac16f6dc307e25a1 en eng Copernicus Publications doi:10.5194/essd-14-1677-2022 1866-3508 1866-3516 https://essd.copernicus.org/articles/14/1677/2022/essd-14-1677-2022.pdf https://doaj.org/article/520e79806d1745e5ac16f6dc307e25a1 undefined Earth System Science Data, Vol 14, Pp 1677-1693 (2022) geo envir Journal Article https://vocabularies.coar-repositories.org/resource_types/c_6501/ 2022 fttriple https://doi.org/10.5194/essd-14-1677-2022 2023-01-22T18:38:54Z Global surface temperature observational datasets are the basis of global warming studies. In the context of increasing global warming and frequent extreme events, it is essential to improve the coverage and reduce the uncertainty in global surface temperature datasets. The China global Merged Surface Temperature Interim version (CMST-Interim) is updated to CMST 2.0 in this study. The previous CMST datasets were created by merging the China global Land Surface Air Temperature (C-LSAT) with sea surface temperature (SST) data from the Extended Reconstructed Sea Surface Temperature version 5 (ERSSTv5). The CMST 2.0 contains three variants: CMST 2.0 − Nrec (without reconstruction), CMST 2.0 − Imax, and CMST 2.0 − Imin (according to their reconstruction area of the air temperature over the sea ice surface in the Arctic region). The reconstructed datasets significantly improve data coverage, whereas CMST 2.0 − Imax and CMST 2.0 − Imin have improved coverage in the Northern Hemisphere, up to more than 95 %, and thus increased the long-term trends at global, hemispheric, and regional scales from 1850 to 2020. Compared to CMST-Interim, CMST 2.0 − Imax and CMST 2.0 − Imin show a high spatial coverage extended to the high latitudes and are more consistent with a reference of multi-dataset averages in the polar regions. The CMST 2.0 datasets presented here are publicly available at the website of figshare, https://doi.org/10.6084/m9.figshare.16929427.v4 (Sun and Li, 2021a), and the CLSAT2.0 datasets can be downloaded at https://doi.org/10.6084/m9.figshare.16968334.v4 (Sun and Li, 2021b). Both are also available at http://www.gwpu.net (last access: January 2022). Article in Journal/Newspaper Arctic Global warming Sea ice Unknown Arctic Earth System Science Data 14 4 1677 1693
institution Open Polar
collection Unknown
op_collection_id fttriple
language English
topic geo
envir
spellingShingle geo
envir
W. Sun
Y. Yang
L. Chao
W. Dong
B. Huang
P. Jones
Q. Li
Description of the China global Merged Surface Temperature version 2.0
topic_facet geo
envir
description Global surface temperature observational datasets are the basis of global warming studies. In the context of increasing global warming and frequent extreme events, it is essential to improve the coverage and reduce the uncertainty in global surface temperature datasets. The China global Merged Surface Temperature Interim version (CMST-Interim) is updated to CMST 2.0 in this study. The previous CMST datasets were created by merging the China global Land Surface Air Temperature (C-LSAT) with sea surface temperature (SST) data from the Extended Reconstructed Sea Surface Temperature version 5 (ERSSTv5). The CMST 2.0 contains three variants: CMST 2.0 − Nrec (without reconstruction), CMST 2.0 − Imax, and CMST 2.0 − Imin (according to their reconstruction area of the air temperature over the sea ice surface in the Arctic region). The reconstructed datasets significantly improve data coverage, whereas CMST 2.0 − Imax and CMST 2.0 − Imin have improved coverage in the Northern Hemisphere, up to more than 95 %, and thus increased the long-term trends at global, hemispheric, and regional scales from 1850 to 2020. Compared to CMST-Interim, CMST 2.0 − Imax and CMST 2.0 − Imin show a high spatial coverage extended to the high latitudes and are more consistent with a reference of multi-dataset averages in the polar regions. The CMST 2.0 datasets presented here are publicly available at the website of figshare, https://doi.org/10.6084/m9.figshare.16929427.v4 (Sun and Li, 2021a), and the CLSAT2.0 datasets can be downloaded at https://doi.org/10.6084/m9.figshare.16968334.v4 (Sun and Li, 2021b). Both are also available at http://www.gwpu.net (last access: January 2022).
format Article in Journal/Newspaper
author W. Sun
Y. Yang
L. Chao
W. Dong
B. Huang
P. Jones
Q. Li
author_facet W. Sun
Y. Yang
L. Chao
W. Dong
B. Huang
P. Jones
Q. Li
author_sort W. Sun
title Description of the China global Merged Surface Temperature version 2.0
title_short Description of the China global Merged Surface Temperature version 2.0
title_full Description of the China global Merged Surface Temperature version 2.0
title_fullStr Description of the China global Merged Surface Temperature version 2.0
title_full_unstemmed Description of the China global Merged Surface Temperature version 2.0
title_sort description of the china global merged surface temperature version 2.0
publisher Copernicus Publications
publishDate 2022
url https://doi.org/10.5194/essd-14-1677-2022
https://essd.copernicus.org/articles/14/1677/2022/essd-14-1677-2022.pdf
https://doaj.org/article/520e79806d1745e5ac16f6dc307e25a1
geographic Arctic
geographic_facet Arctic
genre Arctic
Global warming
Sea ice
genre_facet Arctic
Global warming
Sea ice
op_source Earth System Science Data, Vol 14, Pp 1677-1693 (2022)
op_relation doi:10.5194/essd-14-1677-2022
1866-3508
1866-3516
https://essd.copernicus.org/articles/14/1677/2022/essd-14-1677-2022.pdf
https://doaj.org/article/520e79806d1745e5ac16f6dc307e25a1
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container_title Earth System Science Data
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