论文标题

使用伪培训学习和物理模拟来预测水温,对储层进行建模

Modeling Reservoir Release Using Pseudo-Prospective Learning and Physical Simulations to Predict Water Temperature

论文作者

Jia, Xiaowei, Chen, Shengyu, Xie, Yiqun, Yang, Haoyu, Appling, Alison, Oliver, Samantha, Jiang, Zhe

论文摘要

本文提出了一种新的数据驱动方法,用于预测具有储层的流网络中的水温。从水库释放的水流极大地影响了下游河段的水温。但是,许多水库通常无法获得释放的水流信息,这使得数据驱动的模型很难捕获对下游河段的影响。在本文中,我们首先构建了一个州感知的图形模型,以表示流和储层之间的交互,然后提出平行学习结构来提取储层释放信息并使用它来改善预测。特别是,对于没有可用释放信息的水库,我们通过伪培训学习方法模仿水管理者的释放决策过程,该方法渗透了预期的水温动态的发布信息。对于带有发布信息的储层,我们利用基于物理的模型来模拟水释放温度并传输此类信息,以指导其他储层的学习过程。对特拉华河流域的评估表明,当释放数据无法用于任何储层时,该方法比现有数据驱动的模型对流量温度预测的现有模型的准确度提高了10 \%。在将释放数据和物理模拟集成了一部分储层之后,该性能将进一步提高。

This paper proposes a new data-driven method for predicting water temperature in stream networks with reservoirs. The water flows released from reservoirs greatly affect the water temperature of downstream river segments. However, the information of released water flow is often not available for many reservoirs, which makes it difficult for data-driven models to capture the impact to downstream river segments. In this paper, we first build a state-aware graph model to represent the interactions amongst streams and reservoirs, and then propose a parallel learning structure to extract the reservoir release information and use it to improve the prediction. In particular, for reservoirs with no available release information, we mimic the water managers' release decision process through a pseudo-prospective learning method, which infers the release information from anticipated water temperature dynamics. For reservoirs with the release information, we leverage a physics-based model to simulate the water release temperature and transfer such information to guide the learning process for other reservoirs. The evaluation for the Delaware River Basin shows that the proposed method brings over 10\% accuracy improvement over existing data-driven models for stream temperature prediction when the release data is not available for any reservoirs. The performance is further improved after we incorporate the release data and physical simulations for a subset of reservoirs.

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