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Season-ahead forecasting of water storage and irrigation requirements - an application to the southwest monsoon in India

机译:季节性预测储水和灌溉要求 - 在印度西南季风的应用

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摘要

Water risk management is a ubiquitous challenge faced by stakeholders in the water or agricultural sector. We present a methodological framework for forecasting water storage requirements and present an application of this methodology to risk assessment in India. The application focused on forecasting crop water stress for potatoes grown during the monsoon season in the Satara district of Maharashtra. Pre-season large-scale climate predictors used to forecast water stress were selected based on an exhaustive search method that evaluates for highest ranked probability skill score and lowest root-mean-squared error in a leave-one-out cross-validation mode. Adaptive forecasts were made in the years 2001 to 2013 using the identified predictors and a non-parametric k-nearest neighbors approach. The accuracy of the adaptive forecasts (2001-2013) was judged based on directional concordance and contingency metrics such as hit/miss rate and false alarms. Based on these criteria, our forecasts were correct 9 out of 13 times, with two misses and two false alarms. The results of these drought forecasts were compared with precipitation forecasts from the Indian Meteorological Department (IMD). We assert that it is necessary to couple informative water stress indices with an effective forecasting methodology to maximize the utility of such indices, thereby optimizing water management decisions.
机译:水风险管理是利益相关者在水或农业部门面临的无处不在的挑战。我们提出了一种预测储水要求的方法框架,并在印度的风险评估中展示了这种方法。该应用侧重于预测马哈拉施特拉萨拉拉区季风季节生长的土豆种植水分压力。基于详尽的搜索方法选择了用于预测水分压力的季节大规模气候预测器,该方法评估了休假交叉验证模式中最高排名概率技能得分和最低的根均匀的误差。使用所识别的预测器和非参数k最近邻居方法在2001年至2013年进行自适应预测。自适应预测(2001-2013)的准确性基于定向协调和应急度量等判决,例如击中/错过率和误报。根据这些标准,我们的预测是13倍的正确9,有两个未命中和两个误报。将这些干旱预测的结果与印度气象部(IMD)的降水预测进行了比较。我们断言,有必要用有效的预测方法耦合信息,以最大限度地提高此类指标的效用,从而优化水管理决策。

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  • 来源
    《Hydrology and Earth System Sciences》 |2018年第10期|共17页
  • 作者单位

    CUNY NOAA Ctr Earth Syst Sci &

    Remote Sensing Technol Ctr Water Resources &

    Environm Res City Water Ctr Dept Civil Engn City Coll New York NY 10031 USA;

    CUNY NOAA Ctr Earth Syst Sci &

    Remote Sensing Technol Ctr Water Resources &

    Environm Res City Water Ctr Dept Civil Engn City Coll New York NY 10031 USA;

    Columbia Univ Columbia Water Ctr Earth Inst Dept Earth &

    Environm Engn New York NY 10027 USA;

    Columbia Univ Columbia Water Ctr Earth Inst New York NY 10027 USA;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 水文科学(水界物理学);
  • 关键词

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