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Multi-objective Immune Algorithm with Preference-Based Selection for Reservoir Flood Control Operation

机译:基于优先选择的水库防洪调度多目标免疫算法

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摘要

In reservoir flood control operation, the safety of upstream and downstream of the dam are the main two optimization goals with conflicts. In addition, the irrigation water demands is also an important issue considered by decision makers. Therefore, the dispatching schemes that meet the final water level constraint are preferred. Considering such preference in decision making, a novel preference-based selection operator is developed and combined with immune inspired optimization technique to form the proposed multi-objective immune algorithm with preference- based selection (MOIA-PS) for reservoir flood control operation. The unique of MOIA-PS is that it intends to obtain a set of preferred Pareto optimal solutions that located within a part of preferred area on the Pareto front rather than to find a good approximation of the entire Pareto front as most existing methods did. Experimental results on four typical floods at the Ankang reservoir have indicated that the preferred non-dominated solutions are distributed within a local area of preferred PF region. And the newly designed preference-based selection operator can guide the search of MOIA-PS towards the preferred PF region. Comparing with the outstanding multi-objective evolutionary algorithm NSGAII and the immune inspired multi-objective optimization algorithm NNIA, the proposed MOIA-PS obtains more non-dominated solutions that densely and evenly scattered within the preferred area of the Pareto front. MOIA-PS can find finding dispatching schemes that not only reduce the flood peak significantly and guarantee the dam safety well but also satisfy the irrigation water demands. It is a more efficient use of the computing efforts.
机译:在水库防洪调度中,大坝上游和下游的安全性是存在冲突的两个主要优化目标。此外,灌溉用水也是决策者考虑的重要问题。因此,优先选择满足最终水位约束的调度方案。考虑到决策中的这种偏好,开发了一种新颖的基于偏好的选择算子,并将其与免疫启发式优化技术相结合,以形成用于水库防洪调度的多目标免疫算法和基于偏好的选择(MOIA-PS)。 MOIA-PS的独特之处在于,它打算获得一组首选的Pareto最优解,该最优解位于Pareto前沿的优选区域的一部分内,而不是像大多数现有方法那样找到整个Pareto前沿的良好近似。对安康水库的四次典型洪水的实验结果表明,优选的非支配溶液分布在优选的PF区的局部区域内。新设计的基于首选项的选择运算符可以指导MOIA-PS向首选PF区域的搜索。与出色的多目标进化算法NSGAII和免疫启发式多目标优化算法NNIA进行比较,提出的MOIA-PS获得了更多的非支配解,这些解密集且均匀地散布在Pareto前沿的首选区域内。 MOIA-PS可以找到寻找调度方案,不仅可以大大减少洪峰,确保大坝安全,还可以满足灌溉用水需求。这是对计算工作的更有效利用。

著录项

  • 来源
    《Water Resources Management》 |2015年第5期|1447-1466|共20页
  • 作者单位

    State Key Laboratory Base of Eco-Hydraulic Engineering in Arid Area, Xi'an University of Technology, No. 5 South Jinhua Road, Xi'an, Shaanxi 710048, China;

    Institute of Water Resources and Hydro-Electric Engineering, Xi'an University of Technology, No. 5 South Jinhua Road, Xi'an, Shaanxi 710048, China;

    State Key Laboratory Base of Eco-Hydraulic Engineering in Arid Area, Xi'an University of Technology, No. 5 South Jinhua Road, Xi'an, Shaanxi 710048, China;

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

    Reservoir flood control operation; Multi-objective optimization; Artificial immune algorithm; Preference;

    机译:水库防洪作业;多目标优化;人工免疫算法;偏爱;

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