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Genetic programming based monthly groundwater level forecast models with uncertainty quantification

机译:基于遗传规划的不确定性量化的每月地下水位预测模型

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摘要

Modeling hydrogeologic processes facilitates in accurate prediction/forecasting of groundwater level variations. Still, the uncertainty in model prediction is a major concern that requires detailed investigation. There could be several factors which introduce uncertainty such as inherent assumption, various levels of model complexity and simplicity. In general, model inputs, parameters and structure are the major sources of uncertainty while quantifying model prediction uncertainty. In this study, agenetic programming (GP) based models have been employed for forecasting groundwater level variation along with prediction uncertainty quantification. Though various sources induce uncertainty in the model prediction, the input uncertainty quantificationhas received little attention. Hence, the input uncertainty has been considered for the analysis in this study. The proposed method is demonstrated using measured monthly values of rainfall and corresponding groundwater level data of Amarawathi basin, India. It is observed that the prediction along with uncertainty quantification improves the confidence level of models while making decisions, in particular for effective planning and management of groundwater resources.
机译:对水文地质过程进行建模有助于准确预测/预测地下水位变化。尽管如此,模型预测中的不确定性仍然是一个主要问题,需要进行详细研究。可能存在引入不确定性的多种因素,例如固有假设,各种级别的模型复杂性和简单性。通常,在量化模型预测不确定性的同时,模型输入,参数和结构是不确定性的主要来源。在这项研究中,基于遗传规划(GP)的模型已用于预测地下水位变化以及预测不确定性量化。尽管各种来源在模型预测中引起不确定性,但输入不确定性量化却很少受到关注。因此,本研究中考虑了输入不确定性以进行分析。通过印度阿玛拉瓦蒂盆地的每月测得的降雨量和相应的地下水位数据,证明了该方法的有效性。可以看出,预测与不确定性量化一起提高了模型的置信度,同时可以做出决策,特别是对于有效规划和管理地下水资源而言。

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