会议论文详细信息
2017 International Conference on Aerospace Technology, Communications and Energy Systems
Learning Data Set Influence on Identification Accuracy of Gas Turbine Neural Network Model
航空航天工程;无线电电子学;能源学
Kuznetsov, A.V.^1 ; Makaryants, G.M.^1
Power Plant Automatic System Department, Samara National Research University, Moskovskoeshossest. 34, Samara
443086, Russia^1
关键词: Dynamic neural networks;    Identification accuracy;    Identification process;    Micro gas turbine engine;    Neural network model;    Rotation frequencies;    Thermodynamic model;    Training and testing;   
Others  :  https://iopscience.iop.org/article/10.1088/1757-899X/302/1/012036/pdf
DOI  :  10.1088/1757-899X/302/1/012036
学科分类:航空航天科学
来源: IOP
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【 摘 要 】

There are many gas turbine engine identification researches via dynamic neural network models. It should minimize errors between model and real object during identification process. Questions about training data set processing of neural networks are usually missed. This article presents a study about influence of data set type on gas turbine neural network model accuracy. The identification object is thermodynamic model of micro gas turbine engine. The thermodynamic model input signal is the fuel consumption and output signal is the engine rotor rotation frequency. Four types input signals was used for creating training and testing data sets of dynamic neural network models - step, fast, slow and mixed. Four dynamic neural networks were created based on these types of training data sets. Each neural network was tested via four types test data sets. In the result 16 transition processes from four neural networks and four test data sets from analogous solving results of thermodynamic model were compared. The errors comparison was made between all neural network errors in each test data set. In the comparison result it was shown error value ranges of each test data set. It is shown that error values ranges is small therefore the influence of data set types on identification accuracy is low.

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