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首页> 外文期刊>Journal of Geophysical Research, D. Atmospheres: JGR >Statistical identification of global hot spots in soil moisture feedbacks among IPCC AR4 models
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Statistical identification of global hot spots in soil moisture feedbacks among IPCC AR4 models

机译:IPCC AR4模型之间土壤水分反馈中全球热点的统计识别

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摘要

Soil moisture feedbacks can regulate climate change and offer the potential for seasonal climate predictability, yet their strengths and regional importance are poorly understood. A statistical analysis of soil moisture feedbacks on boreal and austral summer precipitation is performed using output from 19 climate models in the Intergovernmental Panel on Climate Change's Fourth Assessment Report. The methodology, using lagged covariance ratios, was previously applied to study ocean-atmosphere and vegetation-atmosphere interactions. Reflecting ensemble-based findings from the Global Land-Atmosphere Coupling Experiment (GLACE) for boreal summer, positive soil moisture feedback hot spots are identified over central United States, North Africa, India, northern Brazil, and western Eurasia. Hot spots for austral summer include the Amazon, Congo, Australia, Indonesia, Mexico, and southwest United States. This statistical approach focuses on appropriate spatial and temporal scales of interaction, quantifies local feedbacks with significance testing, and expedites a reliable model intercomparison of feedbacks, without producing additional dynamical experiments.
机译:土壤水分反馈可以调节气候变化并提供季节性气候可预测性的潜力,但是人们对它们的优势和区域重要性的了解却很少。政府间气候变化专门委员会第四次评估报告中使用19种气候模型的输出,对北方和夏季夏季降水的土壤水分反馈进行了统计分析。该方法使用滞后协方差比率,以前曾用于研究海洋-大气和植被-大气之间的相互作用。反映了全球陆地-大气耦合实验(GLACE)在夏季北方的综合结果,在美国中部,北非,印度,巴西北部和欧亚大陆西部地区发现了积极的土壤水分反馈热点。夏季南方的热点包括亚马逊,刚果,澳大利亚,印度尼西亚,墨西哥和美国西南部。这种统计方法侧重于适当的交互时空尺度,通过显着性测试量化局部反馈,并加快了可靠的反馈模型比较,而无需进行其他动态实验。

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