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Hydrometric network design using dual entropy multi-objective optimization in the Ottawa River Basin

机译:渥太华河流域基于双熵多目标优化的水文网络设计

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摘要

Water resources managers commonly rely on information collected by hydrometric networks without clear knowledge of their efficiency. Optimal water monitoring networks are still scarce especially in the Canadian context. Herein, a dual entropy multi-objective optimization (DEMO) method uses information theory to identify locations where the addition of a hydrometric station would optimally complement the information content of an existing network. This research explores the utility of transinformation (TI) analysis, which can quantitatively measure the contribution of unique information from a hydrometric station. When used in conjunction, these methods provide an objective measure of network efficiency, and allow the user to make recommendations to improve existing hydrometric networks. A technique for identifying and dealing with regulated basins and their related bias on streamflow regionalization is also examined. The Ottawa River Basin, a large Canadian watershed with a number of regulated hydroelectric dams, was selected for the experiment. The Tl analysis approach provides preliminary information which is supported by DEMO results. Regionalization was shown to be more accurate when the regulated basin stations were omitted using leave one out cross validation. DEMO analysis was performed with these improvements and successfully identified optimal locations for new hydrometric stations in the Ottawa River Basin.
机译:水资源管理者通常依靠水文测量网络收集的信息,而对效率没有明确的了解。最佳的水监测网络仍然稀缺,尤其是在加拿大。在此,双熵多目标优化(DEMO)方法使用信息论来确定添加水文站将最佳地补充现有网络的信息内容的位置。这项研究探索了转换信息(TI)分析的效用,它可以定量地测量来自水文站的独特信息的贡献。当结合使用时,这些方法可以客观地衡量网络效率,并允许用户提出建议以改善现有的水文测量网络。还研究了一种识别和处理受管制盆地及其对水流区域化的相关偏差的技术。渥太华河流域是加拿大的一个大型流域,上面有许多受监管的水电大坝,被选作该实验。 T1分析方法提供了由DEMO结果支持的初步信息。当使用留一法交叉验证而忽略了受规管流域站时,表明区域化更加准确。通过这些改进进行了DEMO分析,并成功地确定了渥太华河流域新水文站的最佳位置。

著录项

  • 来源
    《Nordic hydrology》 |2017年第6期|1639-1651|共13页
  • 作者单位

    Department of Civil Engineering and School of Geography and Earth Sciences, McMaster University, 1280 Main Street west Hamilton, Ontario, Canada, L8S 4L8;

    corresponding author,Department of Civil Engineering and School of Geography and Earth Sciences, McMaster University, 1280 Main Street west Hamilton, Ontario, Canada, L8S 4L8;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    entropy; hydrometric network; multi-objective optimization; network design; water resources;

    机译:熵;水文网络;多目标优化;网络设计;水资源;

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