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Estimation of Muskingum parameter by meta-heuristic algorithms

机译:用元启发式算法估计马斯金格姆参数

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摘要

The Muskingum model is a hydrologic flood routing method in which the accuracy of the parameter estimation affects the routed hydrograph, especially in both the value and time of the flood peak. Meta-heuristic algorithms are good candidates to determine optimalear-optimal parameters in the Muskingum model. In this paper, two meta-heuristic algorithms - the simulated annealing (SA) algorithm and the shuffled frog leaping algorithm (SFLA) - are applied and compared in two benchmark and real case studies, considering the sum of the squared deviation (SSQ) between observed and routed outflows and the sum of the absolute value of deviation (SAD) between observed and routed outflow as the objective functions, and deviation of value and occurrence time of the routed flood peak (DPO and DPOT) as the important parameters on the routed flood hydrograph. Results show that the SFLA improves (decreases) the SSQ and SAD by 0.03% and 0.39% in the benchmark problem, and by 3.59% and 2.03% in the real case study, respectively, compared to reported results using various optimisation algorithms. In addition, the SFLA improves (decreases) the DPO of the routed hydrograph in the benchmark problem by 56.67% compared to the best (minimum) result using the Tung method.
机译:Muskingum模型是一种水文洪水路由方法,其中参数估计的准确性会影响路由的水文曲线,尤其是在洪峰的值和时间方面。元启发式算法是确定Muskingum模型中最佳/接近最佳参数的良好候选者。本文在考虑两个模型之间的平方差(SSQ)之和的情况下,在两种基准测试和实际案例研究中应用了两种元启发式算法,分别是模拟退火算法(SA)和随机蛙跳算法(SFLA)。观测到和流出的流量以及观测到和流出的流量之间的偏差绝对值(SAD)的总和作为目标函数,以及流出的洪峰(DPO和DPOT)的值和发生时间的偏差是流出的重要参数洪水水文。结果表明,与使用各种优化算法的报告结果相比,SFLA在基准问题中分别提高(降低)了SSQ和SAD 0.03%和0.39%,在实际案例中分别提高了3.59%和2.03%。此外,与使用Tung方法的最佳结果(最低)相比,SFLA将基准问题中的路由水位线的DPO提高(降低)了56.67%。

著录项

  • 来源
    《Proceedings of the Institution of Civil Engineers》 |2013年第wm6期|315-324|共10页
  • 作者单位

    Department of Irrigation and Reclamation Engineering, College of Agriculture and Natural Resources, University of Tehran, Tehran, Iran;

    Department of Irrigation and Reclamation Engineering, College of Agriculture and Natural Resources, University of Tehran, Tehran, Iran;

    Department of Irrigation and Reclamation Engineering, College of Agriculture and Natural Resources, University of Tehran, Tehran, Iran;

    Department of Land, Air and Water Resources, Department of Civil and Environmental Engineering, and Department of Biological and Agricultural Engineering, University of California, University of California, California, USA;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    environment; floods floodworks; naturai resources;

    机译:环境;洪水和食品厂;自然资源;

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