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Compilation method for 1 km grid data of monthly mean air temperature for quantitative assessments of climate change impacts

机译:1 km每月平均气温网格数据的汇编方法,用于气候变化影响的定量评估

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摘要

A new method is proposed to compile 1 km grid data of monthly mean air temperature by dynamically downscaling general circulation model (GCM) data with a regional climate model (RCM). The downscaling method used is a technique referred to as the pseudo-global warming method to reduce GCM bias. For the grid data, RCM data were corrected with data from an existing meteorological network. The correction model for the RCM bias was developed by stepwise multiple regression analysis using the difference in the monthly mean air temperatures between the observation and RCM output as a dependent variable and the geographical factors as independent variables. Our method corrected the RCM bias from 1.69℃ to 0.58℃ for the month of August in the 1990s (1990-1999).
机译:提出了一种新方法,该方法通过使用区域气候模型(RCM)动态缩小通用循环模型(GCM)数据的尺度来编译每月平均气温的1公里网格数据。所使用的缩小方法是被称为伪全局变暖方法的技术,以减小GCM偏差。对于网格数据,使用来自现有气象网络的数据对RCM数据进行了校正。 RCM偏差的校正模型是通过逐步多元回归分析开发的,其中使用观测值和RCM输出之间的月平均气温差异作为因变量,而地理因素作为自变量。我们的方法在1990年代(1990-1999年)的8月份将RCM偏差从1.69℃校正为0.58℃。

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  • 来源
    《Theoretical and applied climatology》 |2010年第4期|P.421-431|共11页
  • 作者单位

    National Agricultural Research Center for Western Region, National Agriculture and Food Research Organization, Fukuyama 721-8514, Japan;

    rnGraduate School of Life and Environmental Sciences, University of Tsukuba, Tsukuba 305-8572, Japan;

    rnGraduate School of Life and Environmental Sciences, University of Tsukuba, Tsukuba 305-8572, Japan;

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