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Prioritization of global climate models using fuzzy analytic hierarchy process and reliability index

机译:使用模糊分析层次过程和可靠性指数的全球气候模型的优先级

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摘要

Climate scenarios derived from the global climate models (GCMs) are used for climate change impact studies in several sectors including agriculture, hydrological, and health. Globally, more than 50 climate models exist and choosing suitable models based on reproducibility of observed weather for a study region is a challenging task. This step is important to reduce uncertainty. This study compared the simulation performance of 12 global climate models for temperatures and rainfall in past 30years over Indian region. For this, Priority index from Fuzzy Analytic Hierarchy Process (FAHP) and Reliability index were used and both methods were compared. Study revealed all 12 models overestimated minimum and maximum temperatures in most regions of India, which resulted in hot bias especially in northern region. However, models showed significant cold bias for the Himalayan region. In general, simulated rainfall was underestimated by many GCMs. The analysis indicated that FAHP method is good to shortlist GCMs based on their spatial and temporal performance in reproducing observed weather. Among 12 models, NORESM1 model has performed better in reproducing maximum temperature. The IPSL-LR, FIO-ESM, GFDL-CM3, and MIROC5 models have performed better for minimum temperature. In case of rainfall, CSIRO, MIROC5, HADGEM2, GFDL-ESM2M, and IPSL-LR have performed better as compared to other models.
机译:来自全球气候模型(GCMS)的气候情景用于包括农业,水文和健康,包括农业,水文和健康等几个部门的气候变化研究。在全球范围内,存在超过50种气候模型,并根据观察到的学习区域天气的再现性选择合适的模型是一个具有挑战性的任务。这一步骤对于减少不确定性很重要。本研究比较了12个全球气候模型的模拟性能,在印度地区过去30年的温度降雨量。为此,使用了模糊分析层次过程(FAHP)和可靠性指数的优先级指标,并进行了两种方法。研究揭示了印度大多数地区的所有12种型号高估的最低和最大温度,导致北部地区的热偏差。然而,模特对喜马拉雅地区的巨大寒冷偏见显示出来。通常,许多GCMS低估了模拟降雨。分析表明,基于再现观测到的天气的空间和时间性能,FAHP方法对Shortlist GCMS很好。在12种型号中,NoreM1模型在再现最大温度时表现更好。 IPSL-LR,FIO-ESM,GFDL-CM3和MIROC5型号更好地执行了最小温度。在降雨量的情况下,与其他模型相比,CSIRO,MiroC5,Hadgem2,GFDL-ESM2M和IPSL-LR更好地进行。

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  • 来源
    《Theoretical and applied climatology》 |2019年第4期|2381-2392|共12页
  • 作者单位

    Indian Agr Res Inst Ctr Environm Sci & Climate Resilient Agr New Delhi 110012 India;

    Indian Agr Res Inst Ctr Environm Sci & Climate Resilient Agr New Delhi 110012 India;

    Amity Univ AmityInst Informat Technol Noida Uttar Pradesh India;

    ICAR Res Complex KAB II New Delhi 110012 India;

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