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Parallel hybrid modeling methods for a full-scale cokes wastewater treatment plant

机译:大型焦化废水处理厂的并行混合建模方法

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Parallel hybrid modeling methods are applied to a full-scale cokes wastewater treatment plant. Within the hybrid model structure, a mechanistic model specifies the basic dynamics of the relevant process and a non-parametric model compensates for the inaccuracy of the mechanistic model. First, a simplified mechanistic model is developed based on Activated Sludge Model No. 1 and the specific process knowledge of the cokes wastewater treatment process. Then, the mechanistic model is combined with five different non-parametric models--feedforward back-propagation neural network, radial basis function network, linear partial least squares (PLS), quadratic PLS and neural network PLS (NNPLS)--in parallel configuration. These models are identified with the same data obtained from the plant operation to predict dynamic behavior of the process. The performance of each parallel hybrid model is compared based on their ease of model building, prediction accuracy and interpretability. For this application, the parallel hybrid model with NNPLS as non-parametric model gives better performance than other parallel hybrid models. In addition, the NNPLS model is used to analyze the behavior of the operation data in the reduced space and allows for fault detection and isolation.
机译:并行混合建模方法应用于大规模焦炭废水处理厂。在混合模型结构中,机械模型指定了相关过程的基本动态,而非参数模型则补偿了机械模型的不准确性。首先,基于1号活性污泥模型和焦炭废水处理过程的特定过程知识,开发了简化的机械模型。然后,将机械模型与五个不同的非参数模型组合在一起-前馈反向传播神经网络,径向基函数网络,线性偏最小二乘(PLS),二次PLS和神经网络PLS(NNPLS)-并行配置。使用从工厂运行获得的相同数据来识别这些模型,以预测过程的动态行为。根据每个并行混合模型的建模简便性,预测准确性和可解释性来比较其性能。对于此应用程序,使用NNPLS作为非参数模型的并行混合模型比其他并行混合模型具有更好的性能。此外,NNPLS模型用于分析缩小空间中操作数据的行为,并允许进行故障检测和隔离。

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