Comparative study on mechanistic model and data model for real-time water flow regulation of water diversion project
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(1.State Key Laboratory of Water Disaster Prevention, Hohai University;2.College of Water Conservancy & Hydropower Engineering, Hohai University )

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    Abstract:

    For an actual water diversion project, a mechanistic model based on hydraulic principles was established, and hydraulic parameters were calibrated. Based on data such as system layout parameters, upstream reservoir’s water level, measured pressure and flow rate along the pipeline, and measured flow rate and opening of the regulating valve, a BP neural network data model was established, and GA was used to optimize the initial weights and biases to improve the accuracy of the data model. The target opening data of the regulating valve calculated by the two models were comparatively analyzed, and the applicable conditions of the two models were proposed. The results indicate that when the cosine similarity between the input data and the training data is high (≥ 0.95), the average error of the data model is 0.58%, representing a reduction of 0.11 percentage points compared with that of the mechanistic model, and the maximum error is reduced by 0.46 percentage points; however, when the cosine similarity is less than 0.95, the maximum error of the data model can reach 9.02%, while the average error of the mechanistic model does not exceed 1.13%. The data model depends on data and has high calculation speed and accuracy under conditions of high cosine similarity.

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黄宇杰,俞晓东,汪怡然,等.输水工程实时水量调控的机理模型与数据模型对比研究[J].河海大学学报(自然科学版),2026,54(3):87-91, 133.(Huang Yujie, Yu Xiaodong, Wang Yiran, et al. Comparative study on mechanistic model and data model for real-time water flow regulation of water diversion project[J]. Journal of Hohai University (Natural Sciences),2026,54(3):87-91, 133.(in Chinese))

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  • Received:September 02,2024
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  • Online: May 28,2026
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