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HS-SA-Based Precise Modeling of the Aircraft Fuel Center of Gravity Using Sensors Data

机译:使用传感器数据的基于HS-SA的飞机燃油重心精确建模

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摘要

The traditional modeling methods of aircraft fuel center of gravity (CG) based on sensor data have some disadvantages, such as large data storage requirements and low computational efficiency. In this article, a novel hybrid heuristic search-simulated annealing (HS-SA) algorithm is used to reduce the data storage requirements and improve the efficiency of the established models based on sensor data. First, a fuel CG model is established based on the multidimensional interpolation of flight sensors and fuel tank data, which can accurately reflect the nonlinear characteristics of the problem and reduce the data storage needs. Then, the calculation nodes are reasonably selected and optimized based on the proposed HS-SA algorithm to improve the precision of the model of the aircraft fuel CG. The established model of the fuel CG has obvious advantages over traditional methods in improving the temporal efficiency and meeting the storage requirements for sensor data in actual flights. Finally, detailed simulations are conducted based on more than 16,000 sets of sensor data, and the results demonstrate the effectiveness of the proposed HS-SA algorithm.
机译:传统的基于传感器数据的飞机燃料重心建模方法存在数据存储需求大,计算效率低等缺点。在本文中,一种新颖的混合启发式搜索模拟退火算法(HS-SA)用于减少数据存储需求并提高基于传感器数据的已建立模型的效率。首先,基于飞行传感器和油箱数据的多维插值,建立了燃油CG模型,可以准确反映问题的非线性特征,减少数据存储需求。然后,基于提出的HS-SA算法合理地选择和优化计算节点,以提高飞机燃料CG模型的精度。与传统方法相比,已建立的燃料CG模型在提高时间效率和满足实际飞行中传感器数据的存储要求方面具有明显的优势。最后,基于16,000多个传感器数据进行了详细的仿真,结果证明了所提出的HS-SA算法的有效性。

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