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Robust Predictive Design of Field Measurements for Evapotranspiration Barriers Using Universal Multiple linear Regression

机译:使用通用多元线性回归的蒸发蒸腾屏障实地测量的鲁棒预测设计

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Surface barriers are commonly installed to reduce downward water movement into contaminated zones. Specifically, evapotranspiration (ET) barriers are used to store water and release it, via ET, before it can percolate into an underlying waste zone. To assess the effectiveness of a surface barrier, we used an existing data set, model-simulated data, and a dimensionality reduction approach called universal multiple linear regression (uMLR) to optimize the required number of sensors in a 2-m thick surface barrier. To understand the usefulness of implementing predictive uMLR to accommodate multiple monitoring objectives, we compare several network designs, selected based on down-sampling of existing data, with a recommended sensor design based on model simulations performed without consideration of existing data. We also added consideration of "fuzzy" design, which allows more practical guidelines for field implementation of uMLR. We found that uMLR, combined with robust decision-making, provides a simple, flexible, and high-quality network design for monitoring the total water stored in a surface barrier across multiple uncertain conditions.
机译:通常安装表面屏障,以减少向下的水向受污染区域的流动。具体来说,蒸发蒸腾(ET)屏障用于存储水并通过ET释放水,然后才可以渗透到下面的废物区。为了评估表面屏障的有效性,我们使用了现有的数据集,模型仿真数据以及称为通用多元线性回归(uMLR)的降维方法来优化2 m厚表面屏障中所需的传感器数量。为了了解实现预测性uMLR以适应多个监视目标的有用性,我们将基于现有数据的下采样选择的几种网络设计与基于模型仿真而不考虑现有数据的推荐传感器设计进行了比较。我们还增加了对“模糊”设计的考虑,该设计为uMLR的现场实施提供了更多实用指南。我们发现,uMLR与强大的决策能力相结合,提供了一种简单,灵活且高质量的网络设计,可用于监视多个不确定条件下地表屏障中存储的总水量。

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