Support vector regression based model for predicting water level of Dongting Lake
WANG Mengmeng1, DAI Lingquan1, DAI Huichao1,2, MAO Jingqiao2, LIANG Lu3
1.College of Hydraulic and Environmental Engineering, China Three Gorges University, Yichang, Hubei 443002, China; 2.College of Water Conservancy and Hydropower Engineering, Hohai University, Nanjing, Jiangsu 210098, China; 3.Shenzhen Water Planning & Design Institute Co. Ltd., Shenzhen, Guangdong 518036, China
Abstract:To predict the water level of Dongting Lake rapidly and accurately under the influence of the impoundment of Three Gorges Reservoir(TGR), a model was established based on support vector regression(SVR)method. The average daily discharges of TGR, Qingjiang and the other four rivers connected to Dongting Lake in 2006—2009 were used as input variables to train and test the model. The water levels at Chenglingji Station and the other five representative stations in the east, south and west of the lake were selected as output variables. It was shown that the mean squared errors(MSE)of the trained and tested data sets are 6.130×10-4 and 1.477×10-3, respectively, and the coefficient of determination is 0.980 7. To analyze effects caused by the impoundment of TGR quantitatively, the discharge of TGR was replaced with the inflow rate but the discharges from the rest sources remain unchanged to train the model. The well-trained model was utilized to restore the water level variation process without any regulation of TGR and the simulated results were contrasted with the measured water levels. The results showed that the water level at Chenglingji Station which is in the north of the lake and Nanzui Station which is in the north of the west Dongting Lake are significantly influenced by the impoundment of TGR because these stations are near Yangtze River and have closely hydraulic interaction with it. Contrarily, the water level in the south Dongting Lake region is less affected.
王蒙蒙, 戴凌全, 戴会超,, 毛劲乔, 梁璐. 基于支持向量回归的洞庭湖水位快速预测[J]. 排灌机械工程学报, 2017, 35(11): 954-961.
WANG Mengmeng, DAI Lingquan, DAI Huichao,, MAO Jingqiao, LIANG Lu. Support vector regression based model for predicting water level of Dongting Lake. Journal of Drainage and Irrigation Machinery Engin, 2017, 35(11): 954-961.
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