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首页> 外文期刊>Applied biochemistry and biotechnology, Part A. enzyme engineering and biotechnology >Hybrid Neural Modeling of Bioprocesses Using Functional Link Networks
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Hybrid Neural Modeling of Bioprocesses Using Functional Link Networks

机译:使用功能链接网络的生物过程的混合神经建模

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摘要

The objective of this work was to develop a model for an extractive ethanol fermentation in a simple and rapid way. This model must be sufficiently reliable to be used for posterior optimization and control studies. A hybrid neural model was developed, combining mass and energy balances with neural networks, which describe the process kinetics. To determine the best model, two structures of neural networks were compared: the functional link networks and the feedforward neural networks. The two structures are shown to describe well the process kinetics, and the advantages of using the functional link networks are discussed.
机译:这项工作的目的是以一种简单而快速的方式开发一种提取乙醇发酵的模型。该模型必须足够可靠才能用于后验优化和控制研究。开发了一种混合神经模型,该模型将质量和能量平衡与神经网络相结合,描述了过程动力学。为了确定最佳模型,比较了神经网络的两种结构:功能链接网络和前馈神经网络。所示的两个结构很好地描述了过程动力学,并讨论了使用功能链接网络的优点。

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