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Neural Networks Contribution to Modelling for Flight Control

机译:神经网络对飞行控制建模的贡献

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Today, civil aviation is facing new challenges in nonlinear flight control design. Recent nonlinear control techniques offer solutions to these challenges but also bring the need for onboard models of numerical aerodynamics coefficients. The requirements on these potentially onboard models are very strong, since they must be accurate, reliable and compact to cope with aeronautical design's golden rules. It appears that neural networks can meet the aeronautical requirements. However, the usual neural networks design tools are neither autonomous nor fast enough for standard industrial use. We developed integrated neural network identification software to create new automated tools needed for aeronautical industrial applications, such as architecture optimization and maximum statistical error quantification.
机译:今天,民用航空面临着非线性飞行控制设计的新挑战。最近的非线性控制技术为这些挑战提供了解决方案,但也可以为数值空气动力学系数的车载模型提供解决方案。这些潜在的船上模型的要求非常强劲,因为它们必须准确,可靠,紧凑,以应对航空设计的黄金规则。似乎神经网络可以满足航空要求。然而,通常的神经网络设计工具既不是自主,也没有足够快的标准工业用途。我们开发了集成的神经网络识别软件,以创建航空工业应用所需的新型自动化工具,例如架构优化和最大统计误差量化。

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