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BACKWARD CENTRE SELECTION METHOD FOR ON-LINE ADAPTATION OF RBF NETWORK MODELS

机译:RBF网络模型在线自适应的后向中心选择方法

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An approach to tracking process time variations using an adaptive radial basis function network model is described. The method is based on a numerically robust recursive algorithm for updating the network output layer weights. It is shown how network centres contributing least to the network output can be found and removed from model calculations. Thus, both the structure and weights of the network are adaptive. An illustrative example is given, to demonstrate the effectiveness of the algorithm and illustrate its performance, in an application to modelling a real chemical process. Results show more accurate model predictions compared to using a network with only weight updating.
机译:描述了一种使用自适应径向基函数网络模型跟踪过程时间变化的方法。该方法基于数​​字鲁棒递归算法,用于更新网络输出层权重。它显示了如何找到对网络输出贡献最小的网络中心,并将其从模型计算中删除。因此,网络的结构和权重都是自适应的。给出了一个说明性示例,以证明该算法的有效性并说明其在实际化学过程建模中的应用。与仅使用权重更新的网络相比,结果显示出更准确的模型预测。

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