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Robust decision analysis for environmental management of groundwater contamination sites

机译:地下水污染场所环境管理的可靠决策分析

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In contrast to many other engineering fields, the uncertainties in subsurface processes (e.g., fluid flow and contaminant transport in aquifers) and their parameters are notoriously difficult to observe, measure, and characterize. This causes severe uncertainties that need to be addressed in any decision analysis related to optimal management and remediation of groundwater contamination sites. Furthermore, decision analyses typically rely heavily on complex data analyses and/or model predictions, which are often poorly constrained as well. Recently, we have developed a model-driven decision-support framework (called MADS;) for the management and remediation of subsurface contamination sites in which severe uncertainties and complex physics-based models are coupled to perform scientifically defensible decision analyses. The decision analyses are based on Information Gap Decision Theory (IGDT). We demonstrate the MADS capabilities by solving a decision problem related to optimal monitoring network design.
机译:与许多其他工程领域相比,地下过程的不确定性(例如,含水层中的流体流动和污染物运移)及其参数非常难以观察,测量和表征。这将导致严重的不确定性,在与地下水污染场所的最佳管理和修复有关的任何决策分析中都需要解决。此外,决策分析通常严重依赖于复杂的数据分析和/或模型预测,而这些数据和/或模型预测通常也很难被约束。最近,我们开发了一种模型驱动的决策支持框架(称为MADS;),用于管理和修复地下污染站点,在该站点中,严重的不确定性和复杂的基于物理的模型结合在一起,可以进行科学上可行的决策分析。决策分析基于信息鸿沟决策理论(IGDT)。我们通过解决与最佳监控网络设计有关的决策问题来演示MADS功能。

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