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Performance Parameter Estimation of Aircraft Auxiliary Power Unit Via A Fusion Model

机译:基于融合模型的飞机辅助动力装置性能参数估计

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The Auxiliary Power Unit (APU) is designed to provide power and compressed air to the aircraft independently. By estimating the performance parameter of APU, its potential failure and abnormal information can be perceived in advance. To obtain accurate estimation result, Long Short-Term Memory (LSTM) network and Support Vector Regression (SVR) model are fused by Kalman Filter (KF). In this approach, LSTM network model is used as the state equation and SVR model is used as the observation equation. The effectiveness of this method is verified by adopting the real data of APU from the China Southern Airlines Company Limited Shenyang Maintenance Base.
机译:辅助动力单元(APU)设计为独立地向飞机提供电力和压缩空气。通过估计APU的性能参数,可以提前感知其潜在的失败和异常信息。为了获得准确的估计结果,Kalman滤波器(KF)融合了长短期存储器(LSTM)网络和支持向量回归(SVR)模型。在这种方法中,LSTM网络模型用作状态等式,并且SVR模型用作观察方程。通过采用中国南方航空公司有限的沉阳维修基地,通过采用APU的真实数据来验证该方法的有效性。

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