首页> 外文期刊>Brazilian journal of chemical engineering >PRELIMINARY MODELING OF AN INDUSTRIAL RECOMBINANT HUMAN ERYTHROPOIETIN PURIFICATION PROCESS BY ARTIFICIAL NEURAL NETWORKS
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PRELIMINARY MODELING OF AN INDUSTRIAL RECOMBINANT HUMAN ERYTHROPOIETIN PURIFICATION PROCESS BY ARTIFICIAL NEURAL NETWORKS

机译:人工神经网络对工业重组人促红细胞生成素纯化过程的初步建模

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In the present study a preliminary neural network modelling to improve our understanding of Recombinant Human Erythropoietin purification process in a plant was explored. A three layer feed-forward back propagation neural network was constructed for predicting the efficiency of the purification section comprising four chromatographic steps as a function of eleven operational variables. The neural network model performed very well in the training and validation phases. Using the connection weight method the predictor variables were ranked based on their estimated explanatory importance in the neural network and five input variables were found to be predominant over the others. These results provided useful information showing that the first chromatographic step and the third chromatographic step are decisive to achieve high efficiencies in the purification section, thus enriching the control strategy of the plant.
机译:在本研究中,探索了初步的神经网络建模,以增进我们对植物中重组人促红细胞生成素纯化过程的了解。构建了一个三层前馈反向传播神经网络,用于预测纯化过程的效率,该过程包括四个色谱步骤,作为十一个操作变量的函数。神经网络模型在训练和验证阶段表现良好。使用连接权重方法,根据预测变量在神经网络中的估计解释重要性进行排名,发现五个输入变量占主导地位。这些结果提供了有用的信息,表明第一色谱步骤和第三色谱步骤对于在纯化部分实现高效率至关重要,从而丰富了植物的控制策略。

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