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  Spring land temperature in Tibetan Plateau and global-scale summer precipitation: Initialization and improved prediction

Xue, Y., Diallo, I., Boone, A. A., Yao, T., Zhang, Y., Zeng, X., et al. (2022). Spring land temperature in Tibetan Plateau and global-scale summer precipitation: Initialization and improved prediction. Bulletin of the American Meteorological Society, 103, E2756-E2767. doi:10.1175/BAMS-D-21-0270.1.

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 Creators:
Xue, Yongkang1, Author
Diallo, Ismaila1, Author
Boone, Aaron A.1, Author
Yao, Tandong1, Author
Zhang, Yang1, Author
Zeng, Xubin1, Author
Neelin, J. David1, Author
Lau, William K. M.1, Author
Pan, Yan1, Author
Liu, Ye1, Author
Pan, Xiaoduo1, Author
Tang, Qi1, Author
Oevelen, Peter J. van1, Author
Sato, Tomonori1, Author
Koo, Myung-Seo1, Author
Materia, Stefano1, Author
Shi, Chunxiang1, Author
Yang, Jing1, Author
Ardilouze, Constantin1, Author
Lin, Zhaohui1, Author
Qi, Xin1, AuthorNakamura, Tetsu1, AuthorSaha, Subodh K.1, AuthorSenan, Retish1, AuthorTakaya, Yuhei1, AuthorWang, Hailan1, AuthorZhang, Hongliang1, AuthorZhao, Mei1, AuthorNayak, Hara Prasad1, AuthorChen, Qiuyu1, AuthorFeng, Jinming1, AuthorBrunke, Michael A.1, AuthorFan, Tianyi1, AuthorHong, Songyou1, AuthorNobre, Paulo1, AuthorPeano, Daniele1, AuthorQin, Yi1, AuthorVitart, Frederic1, AuthorXie, Shaocheng1, AuthorZhan, Yanling1, AuthorKlocke, Daniel2, Author                 Leung, Ruby1, AuthorLi, Xin1, AuthorEk, Michael1, AuthorGuo, Weidong1, AuthorBalsamo, Gianpaolo1, AuthorBao, Qing1, AuthorChou, Sin Chan1, AuthorRosnay, Patricia de1, AuthorLin, Yanluan1, AuthorZhu, Yuejian1, AuthorQian, Yun1, AuthorZhao, Ping1, AuthorTang, Jianping1, AuthorLiang, Xin-Zhong1, AuthorHong, Jinkyu1, AuthorJi, Duoying1, AuthorJi, Zhenming1, AuthorQiu, Yuan1, AuthorSugimoto, Shiori1, AuthorWang, Weicai1, AuthorYang, Kun1, AuthorYu, Miao1, Author more..
Affiliations:
1external, ou_persistent22              
2Computational Infrastructure and Model Development (CIMD), Scientific Computing Lab (ScLab), MPI for Meteorology, Max Planck Society, Bundesstraße 53, 20146 Hamburg, DE, ou_2129638              

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 Abstract: Subseasonal-to-seasonal (S2S) precipitation prediction in boreal spring and summer months, which contains a significant number of high-signal events, is scientifically challenging and prediction skill has remained poor for years. Tibetan Plateau (TP) spring observed surface ­temperatures show a lag correlation with summer precipitation in several remote regions, but current global land–atmosphere coupled models are unable to represent this behavior due to significant errors in producing observed TP surface temperatures. To address these issues, the Global Energy and Water Exchanges (GEWEX) program launched the “Impact of Initialized Land Temperature and Snowpack on Subseasonal-to-Seasonal Prediction” (LS4P) initiative as a community effort to test the impact of land temperature in high-mountain regions on S2S prediction by climate models: more than 40 institutions worldwide are participating in this project. After using an innovative new land state initialization approach based on observed surface 2-m temperature over the TP in the LS4P experiment, results from a multimodel ensemble provide evidence for a causal relationship in the observed association between the Plateau spring land temperature and summer precipitation over several regions across the world through teleconnections. The influence is underscored by an out-of-phase oscillation between the TP and Rocky Mountain surface temperatures. This study reveals for the first time that high-mountain land temperature could be a substantial source of S2S precipitation predictability, and its effect is probably as large as ocean surface temperature over global “hotspot” regions identified here; the ensemble means in some “hotspots” produce more than 40% of the observed anomalies. This LS4P approach should stimulate more follow-on explorations

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Language(s): eng - English
 Dates: 2022-12-082022-12-01
 Publication Status: Issued
 Pages: -
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 Table of Contents: -
 Rev. Type: Peer
 Identifiers: DOI: 10.1175/BAMS-D-21-0270.1
BibTex Citekey: XueDialloEtAl2022
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Title: Bulletin of the American Meteorological Society
Source Genre: Journal
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Publ. Info: American Meteorological Society
Pages: - Volume / Issue: 103 Sequence Number: - Start / End Page: E2756 - E2767 Identifier: ISSN: 0003-0007
CoNE: https://pure.mpg.de/cone/journals/resource/954925377920