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Implementation of real-time moving horizon estimation for robust air data sensor fault diagnosis in the RECONFIGURE benchmark

机译:在RECONFIGURE基准测试中实现实时移动视野估计以实现可靠的空气数据传感器故障诊断

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This paper presents robust fault diagnosis and estimation for the calibrated airspeed and angle-of-attack sensor faults in the RECONFIGURE benchmark. We adopt a low-order longitudinal model augmented with wind dynamics. In order to enhance sensitivity to faults in the presence of winds, we propose a constrained residual generator by formulating a constrained moving horizon estimation problem and exploiting the bounds of winds. The moving horizon estimation problem requires solving a nonlinear program in real time, which is challenging for flight control computers. This challenge is addressed by adopting an efficient structure-exploiting algorithm within a real-time iteration scheme. Specific approximations and simplifications are performed to enable the implementation of the algorithm using the Airbus graphical symbol library for industrial validation and verification. The simulation tests on the RECONFIGURE benchmark over different flight points and maneuvers show the efficacy of the proposed approach.
机译:本文介绍了在RECONFIGURE基准测试中针对标定的空速和攻角传感器故障的可靠故障诊断和估计。我们采用增强风动力学的低阶纵向模型。为了增强对存在风的故障的敏感性,我们提出了一个受约束的残差生成器,方法是制定受约束的运动层估计问题并利用风的边界。动视线估计问题需要实时解决非线性程序,这对于飞行控制计算机而言是一个挑战。通过在实时迭代方案中采用有效的结构利用算法来解决此难题。进行了特定的近似和简化,以使用空中客车图形符号库实现算法的实现,以进行工业验证和验证。在RECONFIGURE基准上对不同的飞行点和机动进行的模拟测试表明了该方法的有效性。

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