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A DIAGNOSTIC ASSESSMENT OF EVOLUTIONARY MULTIOBJECTIVE OPTIMIZATION FOR WATER RESOURCES SYSTEMS

机译:水资源系统进化多目标优化的诊断评估。

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This study contributes a rigorous diagnostic assessment of state-of-the-art multiobjective evolutionary algorithms (MOEAs) and highlights key advances that the water resources field can exploit to better discover the critical tradeoffs constraining our systems. This study provides the most comprehensive diagnostic assessment of MOEAs for water resources to date, exploiting more than 100,000 MOEA runs and trillions of design evaluations. The diagnostic assessment measures the effectiveness, efficiency, reliability, and controllability of ten benchmark MOEAs for a representative suite of water resources applications addressing rainfall-runoff calibration, long-term groundwater monitoring (LTM), and risk-based water supply portfolio planning. The suite of problems encompasses a range of challenging problem properties including (1) many-objective formulations with 4 or more objectives, (2) multi-modality (or false optima), (3) nonlinearity, (4) discreteness, (5) severe constraints, (6) stochastic objectives, and (7) non-separability (also called epistasis). The applications are representative of the dominant problem classes that have shaped the history of MOEAs in water resources and that will be dominant foci in the future. Recommendations are provided for which modern MOEAs should serve as tools and benchmarks in the future water resources literature..
机译:这项研究对最新的多目标进化算法(MOEA)进行了严格的诊断评估,并着重指出了水资源领域可用来更好地发现制约我们系统的关键折衷的关键进展。这项研究利用超过100,000个MOEA运行次数和数万亿次设计评估,提供了迄今为止最全面的MOEA对水资源的诊断评估。该诊断评估针对代表性的水资源应用套件(包括降雨径流校准,长期地下水监测(LTM)和基于风险的供水组合计划)测量十个基准MOEA的有效性,效率,可靠性和可控制性。这套问题包含一系列具有挑战性的问题性质,包括:(1)具有4个或更多目标的多目标公式;(2)多模态(或错误的最优解);(3)非线性;(4)离散性;(5)严格的限制条件;(6)随机目标;(7)不可分离性(也称为上位性)。这些应用程序代表了主导问题类别,这些问题类别塑造了水资源领域MOEA的历史,并将成为未来的主要焦点。提供了有关现代MOEA应作为未来水资源文献中的工具和基准的建议。

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