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Review of the applications of neural networks in chemical process control - simulation and online implementation

机译:神经网络在化学过程控制中的应用综述-仿真和在线实现

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摘要

As a result of good modeling capabilities, neural networks have been used extensively for a number of chemical engineering applications such as sensor data analysis, fault detection and nonlinear process identification. However, only in recent years, with the upsurge in the research on nonlinear control, has its use in process control been widespread. This paper intend to provide an extensive review of the various applications utilizing neural networks for chemical process control, both in simulation and online implementation. We have categorized the review under three major control schemes; predictive control, inverse-model-based control, and adaptive control methods, respectively. In each of these categories, we summarize the major applications as well as the objectives and results of the work. The review reveals the tremendous prospect of using neural networks in process control. It also shows the multilayered neural network as the most popular network for such process control applications and also shows the lack of actual successful online applications at the present time.
机译:由于具有良好的建模能力,神经网络已广泛用于许多化学工程应用中,例如传感器数据分析,故障检测和非线性过程识别。但是,仅在近年来,随着非线性控制研究的兴起,其在过程控制中的应用才广泛。本文打算对在模拟和在线实施中利用神经网络进行化学过程控制的各种应用进行广泛的综述。我们将审查归类为三个主要的控制方案。预测控制,基于逆模型的控制和自适应控制方法。在上述每个类别中,我们总结了主要应用以及工作的目标和结果。该评论揭示了在过程控制中使用神经网络的巨大前景。它还显示了多层神经网络是此类过程控制应用程序中最流行的网络,并且还显示出当前缺乏实际成功的在线应用程序。

著录项

  • 作者

    Hussain M.A.;

  • 作者单位
  • 年度 1999
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  • 原文格式 PDF
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