Neural emulation applied to chemical reactors

A. Atig, F. Druaux, D. Lefebvre, K. Abderrahim, R. Abdennour
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引用次数: 8

Abstract

In this paper, a real time recurrent learning-based emulator is presented for nonlinear plants with unknown dynamics. This emulator is based on fully connected recurrent neural networks. Starting from zero values, updating rate, time parameter and weights of the instantaneous neural emulator adapt themselves in order to estimate the process output. The contribution of this paper is to validate the emulator with experimental data from the batch reactor of National Engineering School of Gabes, Tunisia.
神经仿真在化学反应器中的应用
针对具有未知动力学特性的非线性对象,提出了一种基于实时循环学习的仿真器。该仿真器基于全连接递归神经网络。瞬时神经仿真器的更新速率、时间参数和权值从零开始自适应,以估计过程输出。本文的贡献是用突尼斯加贝斯国家工程学院间歇式反应器的实验数据对仿真器进行了验证。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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