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首页> 外文期刊>Journal of Water Resource and Protection >Adaptive Surrogate Model Based Optimization (ASMBO) for Unknown Groundwater Contaminant Source Characterizations Using Self-Organizing Maps
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Adaptive Surrogate Model Based Optimization (ASMBO) for Unknown Groundwater Contaminant Source Characterizations Using Self-Organizing Maps

机译:使用自组织映射的未知模型基于自适应替代模型的优化(ASMBO)

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Characterization of unknown groundwater contaminant sources in terms of location, magnitude and duration of source activity is a complex problem. In this study, to increase the efficiency and accuracy of source characterization an alternative methodology to the methodologies proposed earlier is developed. This methodology, Adaptive Surrogate Modeling Based Optimization (ASMBO) uses the capabilities of Self Organizing Map (SOM) algorithm to design the surrogate models and adaptive surrogate models for source characterization. The most important advantage of this methodology is its direct utilization for groundwater contaminant characterization without the necessity of utilizing a linked simulation optimization model. The validation of the SOM based surrogate models and SOM based adaptive surrogate models demonstrates that the quantity and quality of initial sample sizes have crucial role on the accuracy of solutions as the designed monitoring locations. The performance evaluation results of the proposed methodology are obtained using error free and erroneous concentration measurement data. These results demonstrate that the developed methodology could approximate groundwater flow and transport simulation models, and substitute the optimization model for characterization of unknown groundwater contaminant sources in terms of location, magnitude and duration of source activity.
机译:根据来源活动的位置,大小和持续时间来表征未知的地下水污染物来源是一个复杂的问题。在这项研究中,为了提高源表征的效率和准确性,开发了一种较早提出的方法的替代方法。该方法基于自适应替代模型的优化(ASMBO)使用自组织图(SOM)算法的功能来设计替代模型和自适应替代模型以进行源表征。这种方法最重要的优点是可以直接用于地下水污染物表征,而无需使用链接的模拟优化模型。对基于SOM的代理模型和基于SOM的自适应代理模型的验证表明,初始样本量的数量和质量对解决方案的准确性(如设计的监视位置)具有至关重要的作用。使用无错误和错误的浓度测量数据可获得所提出方法的性能评估结果。这些结果表明,所开发的方法可以近似于地下水流和运移模拟模型,并可以根据位置,震源活动的大小和持续时间,用优化模型来表征未知的地下水污染物源。

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