An Improved, Downscaled, Fine Model for Simulation of Daily Weather States
查看参考文献20篇
文摘
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In this study, changes in daily weather states were treated as a complex Markov chain process, based on a continuous-time watershed model (soil water assessment tool, SWAT) developed by the Agricultural Research Service at the U.S. Department of Agriculture (USDA-ARS). A finer classification using total cloud amount for dry states was adopted, and dry days were classified into three states: clear, cloudy, and overcast (rain free). Multistate transition models for dry- and wet-day series were constructed to comprehensively downscale the simulation of regional daily climatic states. The results show that the finer, improved, downscaled model overcame the oversimplified treatment of a two-weather state model and is free of the shortcomings of a multistate model that neglects finer classification of dry days (i.e., finer classification was applied only to wet days). As a result, overall simulation of weather states based on the SWAT greatly improved, and the improvement in simulating daily temperature and radiation was especially significant. |
来源
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Advances in Atmospheric Sciences
,2011,28(6):1357-1366 【核心库】
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DOI
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10.1007/s00376-011-0086-8
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关键词
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stochastic simulation
;
daily weather state series
;
Markov chain
;
state vector
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地址
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Nanjing University of Information Science & Technology, Key Laboratory of Meteorological Disaster of Ministry of Education, Nanjing, 210044
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语种
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英文 |
文献类型
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研究性论文 |
ISSN
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0256-1530 |
学科
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大气科学(气象学) |
基金
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国家自然科学基金
;
Natural Science Key Research of Jiangsu Province High Education
;
江苏高校优势学科建设工程
;
National Key Technologies Research and Development Program
;
CMA Meteorological Special Science Foundation
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文献收藏号
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CSCD:4325079
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