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An adaptive turbo-shaft engine modeling method based on PS and MRR-LSSVR algorithms

机译:基于PS和MRR-LSSVR算法的自适应涡轮轴发动机建模方法

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摘要

In order to establish an adaptive turbo-shaft engine model with high accuracy,a new modeling method based on parameter selection (PS) algorithm and multi-input multi-output recursive reduced least square support vector regression (MRR-LSSVR) machine is proposed.Firstly,the PS algorithm is designed to choose the most reasonable inputs of the adaptive module.During this process,a wrapper criterion based on least square support vector regression (LSSVR) machine is adopted,which can not only reduce computational complexity but also enhance generalization performance.Secondly,with the input variables determined by the PS algorithm,a mapping model of engine parameter estimation is trained off-line using MRR-LSSVR,which has a satisfying accuracy within 5‰.Finally,based on a numerical simulation platform of an integrated helicopter/turbo-shaft engine system,an adaptive turbo-shaft engine model is developed and tested in a certain flight envelope.Under the condition of single or multiple engine components being degraded,many simulation experiments are carried out,and the simulation results show the effectiveness and validity of the proposed adaptive modeling method.
机译:为了建立高精度的自适应涡轮轴发动机模型,提出了一种基于参数选择(PS)算法和多输入多输出递归简化最小二乘支持向量回归机(MRR-LSSVR)的建模方法。首先,设计PS算法以选择自适应模块的最合理输入。在此过程中,采用基于最小二乘支持向量回归(LSSVR)机器的包装器准则,不仅可以降低计算复杂度,而且可以提高通用性。其次,利用PS算法确定的输入变量,采用MRR-LSSVR对发动机参数估计的映射模型进行离线训练,其精度达到5‰以内。最后,基于发动机的数值仿真平台集成直升机/涡轮轴发动机系统,在一定的飞行范围内开发并测试了自适应涡轮轴发动机模型。在单发动机或多发动机条件下对组件退化,进行了许多仿真实验,仿真结果表明了该自适应建模方法的有效性和有效性。

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