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Estimation of Longitudinal Aerodynamic Derivatives Using Genetic Algorithm Optimized Method

机译:用遗传算法优化方法估算纵向气动导数

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This paper presents the estimation of longitudinal aerodynamic parameters by using Genetic Algorithm (GA) optimized method from simulated and real flight data of ATTAS aircraft. The simulated flight data is deliberately contaminated with 5%, 10%, and 15% of random noise for creating flight data, which bears similarity to real flight data. The proposed methodology utilizes the general notion of output error method, i.e., minimizing the response error between the measured response and estimated response, and the genetic algorithm as the optimization technique for an iterative update of the parameter vector. The longitudinal parameters are estimated by using the proposed method from both simulated data (without and with random noise) and real flight data. The parameter estimates obtained by using the proposed method is compared with the estimates from the Maximum-Likelihood method and data-driven methods viz. Delta method and GPR –Delta method for assessing the efficacy of the methodology. The statistical analysis of the parameter estimates has further cemented the confidence in the estimates obtained by using the proposed method.
机译:本文利用遗传算法(GA)优化方法,从ATTAS飞机的模拟和真实飞行数据中提出了对纵向空气动力学参数的估计。为了创建飞行数据,模拟飞行数据故意受到5%,10%和15%随机噪声的污染,这与真实飞行数据具有相似性。所提出的方法利用输出误差方法的一般概念,即,使测得的响应和估计的响应之间的响应误差最小,以及遗传算法作为用于参数向量的迭代更新的优化技术。通过使用拟议的方法,从模拟数据(无噪声和有随机噪声)和实际飞行数据中估计纵向参数。通过使用所提出的方法获得的参数估计值与最大似然方法和数据驱动方法的估计值进行比较。 Delta方法和GPR-Delta方法用于评估方法的有效性。参数估计值的统计分析进一步巩固了使用所提出的方法获得的估计值的可信度。

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