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The practical research on flood forecasting based on artificial neural networks

机译:基于人工神经网络的洪水预报的实践研究

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The technologies of artificial neural networks can be used to complete information processing of the networks through the interaction of neural cells. The mappings of the stimuli effects and the input and output estimates are obtained via combinations of nonlinear functions. This offers the advantages of self-learning, self-organization, self-adaptation and fault tolerance. It also has the possibility of use in applications for flood forecasting. Furthermore, the ANN technology allows us multiple variables in both the input and output layers. This is very important for flood calculation since the stage, discharge, and other hydrological variables are often functions of many influential variables, which form the novelty value of the paper. For this research, the authors proposed a new flood forecasting system with related applications, based on the neural networks method. This method has been shown to offer better results in performance and efficiency. It is expected that the application of this system will increase sensitivity and further increase flood forecasting performance.
机译:人工神经网络技术可以通过神经细胞的相互作用来完成网络的信息处理。刺激效应与输入和输出估计的映射是通过非线性函数的组合获得的。这提供了自学习,自组织,自适应和容错的优势。它还有可能在洪水预报应用中使用。此外,ANN技术允许我们在输入和输出层中使用多个变量。这对于洪水计算非常重要,因为水位,流量和其他水文变量通常是许多影响变量的函数,这构成了论文的新颖性。对于这项研究,作者基于神经网络方法提出了一种具有相关应用的新洪水预报系统。事实证明,这种方法可以提供更好的性能和效率。预期该系统的应用将提高灵敏度并进一步提高洪水预报性能。

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