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Study of rainwater quality assessment model based on radial basis function artificial neural network

机译:基于径向基函数人工神经网络的雨水质量评估模型研究

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摘要

In order to solve the problems existing in water quality comprehensive assessment model and method, the paper establishes K-means dynamic clustering algorithm applicable to rainwater quality assessment. By adding inferior class V, water quality standard based on the Surface Water Environmental Quality Standard(GB3838-2002) generates training samples and testing samples through random uniformly inserted values between every two assessment standards. Normalization processes the training samples and the testing samples, where the model have one network input layer with 6 nodes,one output layer with 1 nodes and one hidden layer whose nodes number can be automatically determined by network training. The model output is a continuous variation value, which not only satisfies the demand of water quality assessment but also has quantitative evaluation effect. It is used to assess the water quality of drinking water source based on rainwater harvesting in Xifeng District Qingyang City Gansu Province . The assessment result shows that the water quality of different underlying surface lies between III∼V. Compared the assessment results obtained by principal component analysis method, we find that the RBF-ANN model output assessment result is scientific, reasonable and intuitive.
机译:为了解决水质综合评估模型和方法存在的问题,该论文建立了适用于雨水质量评估的K型动态聚类算法。通过添加较差的V类,基于地表水环境质量标准的水质标准(GB3838-2002)通过每两项评估标准之间随机均匀插入的值产生训练样本和测试样品。归一化处理训练样本和测试样本,其中模型具有一个具有6个节点的网络输入层,一个输出层,其中一个节点和一个隐藏层,其节点数可以通过网络训练自动确定。模型输出是一种连续变化值,不仅满足水质评估的需求,而且具有定量评估效果。基于甘肃省青阳市雨水收获,评估饮用水源的水质。评估结果表明,不同底面的水质在于III〜D。比较了主成分分析方法获得的评估结果,我们发现RBF-Ann模型输出评估结果是科学,合理和直观的。

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