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首页> 外文期刊>Water resources research >A framework for using ant colony optimization to schedule environmental flow management alternatives for rivers, wetlands, and floodplains
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A framework for using ant colony optimization to schedule environmental flow management alternatives for rivers, wetlands, and floodplains

机译:使用蚁群优化计划河流,湿地和洪泛区环境流量管理替代方案的框架

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摘要

Rivers, wetlands, and floodplains are in need of management as they have been altered from natural conditions and are at risk of vanishing because of river development. One method to mitigate these impacts involves the scheduling of environmental flow management alternatives (EFMA); however, this is a complex task as there are generally a large number of ecological assets (e.g., wetlands) that need to be considered, each with species with competing flow requirements. Hence, this problem evolves into an optimization problem to maximize an ecological benefit within constraints imposed by human needs and the physical layout of the system. This paper presents a novel optimization framework which uses ant colony optimization to enable optimal scheduling of EFMAs, given constraints on the environmental water that is available. This optimization algorithm is selected because, unlike other currently popular algorithms, it is able to account for all aspects of the problem. The approach is validated by comparing it to a heuristic approach, and its utility is demonstrated using a case study based on the Murray River in South Australia to investigate (1) the trade-off between plant recruitment (i.e., promoting germination) and maintenance (i.e., maintaining habitat) flow requirements, (2) the trade-off between flora and fauna flow requirements, and (3) a hydrograph inversion case. The results demonstrate the usefulness and flexibility of the proposed framework as it is able to determine EFMA schedules that provide optimal or near-optimal trade-offs between the competing needs of species under a range of operating conditions and valuable insight for managers.
机译:河流,湿地和洪泛区因自然条件发生变化而受到管理,由于河流发展而面临消失的危险。减轻这些影响的一种方法涉及安排环境流量管理替代方案(EFMA);但是,这是一项复杂的任务,因为通常需要考虑大量的生态资产(例如湿地),每种生态资产都具有对流量有竞争要求的物种。因此,该问题演变成优化问题,以在人类需求和系统的物理布局所施加的限制内最大化生态效益。本文提出了一种新颖的优化框架,该框架使用蚁群优化技术来实现EFMA的最佳调度,前提是对可用的环境水有所限制。选择该优化算法是因为与其他当前流行的算法不同,它可以解决问题的所有方面。通过与启发式方法进行比较来验证该方法的有效性,并使用基于南澳大利亚州墨累河的案例研究来证明其效用,以研究(1)植物招募(即促进发芽)与维持之间的权衡(即维持栖息地的流量需求,(2)动植物流量需求之间的权衡,以及(3)水位反演的情况。结果证明了所提出框架的实用性和灵活性,因为它能够确定EFMA时间表,从而在一系列运行条件下为物种竞争需求提供最佳或接近最佳的权衡,并为管理者提供有价值的见解。

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  • 来源
    《Water resources research》 |2012年第8期|p.W08502.1-W08502.21|共21页
  • 作者单位

    School of Civil, Environmental and Mining Engineering, University of Adelaide, North Terrace, Adelaide 5005, Australia;

    School of Civil, Environmental and Mining Engineering, University of Adelaide, Adelaide, Australia;

    School of Civil, Environmental and Mining Engineering, University of Adelaide, Adelaide, Australia;

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  • 正文语种 eng
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