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A NEW ARTIFICIAL NEURAL NETWORK MODEL FOR THE PREDICTION OF THE RAINF ALL-RUN OF F RELATIONSHIP FOR LA CHARTREUX SPRING, FRANCE

机译:一种新的人工神经网络模型 Fol t Prediction of the Rainf-All-Rune of Fl Relationship Fol La Chartreux Spring, France

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摘要

The prediction of a rainfall-runoff relationship includes complex processes in karstic aquifer systems. In this study, an artificial neural network (ANN) model is utilized in order to simulate the rainfall-runoff relationships of La Chartreux spring in the karstic region Cahors, Southern France. Since numerical models are thought to be insufficient, the present study will contribute to the improvement of rainfall-discharge prediction models by using ANNs in MATLAB software. The model has been conducted with a feed forward and back propagation algorithm. The model is improved by the LevenbergMarquardt algorithm in order to generalize the complex and non-linear rainfall-runoff issues. The meteorological data was obtained from meteorological stations in the region including eight years of rainfall and discharge data between 1976 and 1983. Model performance has been evaluated with respect to statistical error measures (root mean square error (RMSE), and correlation coefficient square (R2 ). This study confirmed that artificial neural networks are capable of predicting rainfall-runoff relationships depending on the data quality, neural network properties, and data variability.
机译:降雨-径流关系的预测包括岩溶含水层系统的复杂过程。本研究利用人工神经网络(ANN)模型模拟了法国南部喀斯喀尔地区La Chartreux泉水的降雨-径流关系。由于数值模型被认为不够充分,本研究将利用MATLAB软件中的人工神经网络为改进降雨-流量预测模型做出贡献。该模型采用前馈和后馈传播算法进行。利用LevenbergMarquardt算法对模型进行了改进,以推广复杂和非线性的降雨-径流问题。气象数据来自该地区的气象站,包括1976年至1983年八年的降雨量和流量数据。已根据统计误差度量(均方根误差 (RMSE) 和相关系数平方 (R2))评估了模型性能。本研究证实,人工神经网络能够根据数据质量、神经网络特性和数据变异性来预测降雨-径流关系。

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