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System identification of nonlinear dynamical models: Application to wastewater treatment plant

机译:非线性动力学模型的系统辨识:在污水处理厂中的应用

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The paper presents a novel approach to identification of stochastic nonlinear dynamic systems using efficient approximation methods. The motivation behind this work is to develop a computationally efficient and robust algorithm for estimation of wastewater treatment plant model parameters. The mathematical model of the plant is required for the application of advanced predictive control algorithms and condition monitoring. The presented algorithm employs the Expectation-Maximization algorithm to compute the Maximum likelihood estimates of the unknown model parameters. The algorithm uses the Unscented Transformation (UT) to approximate the posterior distribution of the random variable that undergoes a nonlinear transformations. The advantage of this approach lies in efficient approximation methods that greatly reduce the computational load of the algorithm and is therefore suitable for on-line implementation.
机译:本文提出了一种使用有效逼近方法识别随机非线性动力系统的新方法。这项工作的动机是开发一种计算效率高且健壮的算法,用于估算污水处理厂的模型参数。工厂的数学模型是应用高级预测控制算法和状态监控所必需的。提出的算法采用期望最大化算法来计算未知模型参数的最大似然估计。该算法使用无味变换(UT)近似估计经历了非线性变换的随机变量的后验分布。该方法的优点在于有效的近似方法,该方法大大减少了算法的计算量,因此适合于在线实施。

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