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Modeling of Soft sensor based on Artificial Neural Network for Galactic Cosmic Rays Application

机译:基于人工神经网络对银河宇宙射线应用的软传感器建模

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For successful designing of space radiation Galactic Cosmic Rays (GCRs) model, we develop a soft sensor based on the Artificial Neural Network (ANN) model. At the first step, the soft sensor based ANN was constructed as an alternative to model space radiation environment. The structure of ANN in this model is using Multilayer Perceptron (MLP) and Levenberg Marquardt algorithms with 3 inputs and 2 outputs. In the input variable, we use 12 years data (Corr, Uncorr and Press) of GCR particles obtained from Neutron Monitor of Bartol University (Fort Smith area) and the target output is (Corr and Press) from the same source but for Inuvik area in the Polar Regions. In the validation step, we obtained the Root Mean Square Error (RMSE) value of Corr 3.8670e-004 and Press 1.3414e-004 and Variance Accounted For (VAF) of Corr 99.9839 % and Press 99.9831% during the training section. After all the results obtained, then we applied into a Matlab GUI simulation (soft sensor simulation). This simulation will display the estimation of output value from input (Corr and Press). Testing results showed an error of 0.133% and 0.014% for Corr and Press, respectively.
机译:为了成功设计空间辐射银河宇宙射线(GCRS)模型,我们开发了一种基于人工神经网络(ANN)模型的软传感器。在第一步,软传感器基于模型空间辐射环境的替代方案构造。该模型中的ANN结构使用多层的Perceptron(MLP)和Levenberg Marquardt算法,具有3个输入和2个输出。在输入变量中,我们使用从巴尔托尔大学(Fort Smith Area)的中子监测器中获得的GCR粒子的数据(Corr,Uncorr和Press),并且目标输出是(粗制和按)来自同一来源,而是用于Inuvik区域在极地地区。在验证步骤中,我们获得了Corr 3.8670E-004的根均方误差(RMSE)值,并按1.3414E-004和差异占(VAF)的腐败99.9839%,并在培训部分中按99.9831%。在获得的所有结果之后,我们应用于Matlab GUI仿真(软传感器仿真)。该模拟将显示从输入(COR和按)的输出值估计。测试结果表明,误差分别为0.133%和0.014%,分别为0.014%。

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