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A Subsonic Aircraft Design Optimization With Neural Network and Regression Approximators

机译:具有神经网络和回归近似器的亚音速飞机设计优化

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摘要

The Flight-Optimization-System (FLOPS) code encountered difficulty in analyzing a subsonic aircraft. The limitation made the design optimization problematic. The deficiencies have been alleviated through use of neural network and regression approximations. The insight gained from using the approximators is discussed in this paper. The FLOPS code is reviewed. Analysis models are developed and validated for each approximator. The regression method appears to hug the data points, while the neural network approximation follows a mean path. For an analysis cycle, the approximate model required milliseconds of central processing unit (CPU) time versus seconds by the FLOPS code. Performance of the approximators was satisfactory for aircraft analysis. A design optimization capability has been created by coupling the derived analyzers to the optimization test bed CometBoards. The approximators were efficient reanalysis tools in the aircraft design optimization. Instability encountered in the FLOPS analyzer was eliminated. The convergence characteristics were improved for the design optimization. The CPU time required to calculate the optimum solution, measured in hours with the FLOPS code was reduced to minutes with the neural network approximation and to seconds with the regression method. Generation of the approximators required the manipulation of a very large quantity of data. Design sensitivity with respect to the bounds of aircraft constraints is easily generated.
机译:飞行优化系统(FLOPS)代码在分析亚音速飞机时遇到困难。限制使设计优化成为问题。通过使用神经网络和回归近似可以缓解这些不足。本文讨论了使用逼近器获得的见解。 FLOPS代码已审核。为每个逼近器开发并验证分析模型。回归方法似乎可以拥抱数据点,而神经网络近似则遵循平均路径。对于一个分析周期,通过FLOPS代码,近似模型需要毫秒的中央处理器(CPU)时间与秒。近似器的性能对于飞机分析是令人满意的。通过将派生的分析器耦合到优化测试台CometBoards,已经创建了设计优化功能。近似器是飞机设计优化中的有效再分析工具。 FLOPS分析仪中遇到的不稳定性得以消除。为了优化设计,改善了收敛特性。计算最佳解决方案所需的CPU时间(使用FLOPS代码以小时为单位)通过神经网络逼近减少为数分钟,而通过回归方法减少为数秒。逼近器的生成需要处理大量数据。容易产生关于飞机约束范围的设计敏感性。

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