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NONLINEAR SYSTEM IDENTIFICATION OF FIXED WING UAV AERODYNAMICS

机译:固定翼UAV空气动力学的非线性系统识别

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摘要

We apply the NARMAX approach for nonlinear system identification in order to evaluate it for identifying the aero-dynamic model of a fixed-wing Unmanned Aerial Vehicle (UAV). A nonlinear observer is implemented to estimate vehicle states along with wind data such as angle of attack and sideslip angle. Simulation results show that the NAR-MAX approach has potential to estimate the correct model even when measurements is affected by noise, and in all cases produces a better model than the one provided by the Least Squares solution using a known model structure. Results from the real world data set were found inconclusive but promising.
机译:我们应用非线性系统识别的NARMAX方法,以评估识别固定翼无人驾驶飞行器(UAV)的航空动力学模型。实施非线性观察者以估计车辆状态以及诸如攻击角度和侧滑角的风数据。仿真结果表明,即使测量受噪声影响,NAR-MAX方法也有可能估计正确的模型,并且在所有情况下产生比使用已知模型结构的最小二乘解提供更好的模型。真实世界数据集的结果被发现不确定但很有希望。

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