Abstract
To address the scarcity of abnormal samples and the challenges in operational reliability modeling for civil aircraft, this paper proposes an operational reliability assessment method based on a Mechanism-Enhanced Conditional Generative Adversarial Network(M E-CGAN). Within the ME-CGAN framework, CGAN is employed to generate failure data samples. System failure mechanisms are analyzed to construct a fault logic diagram, which associates faults with Quick Access Recorder(QAR)parameters. A Multi-Layer Perceptron(MLP)is then utilized to establish a logical verification model for operational data. This logical verification model is placed after the CGAN discriminator to perform anomaly validation on the generated samples using fault logic, while also providing a new backpropagation mechanism for network hyperparameter optimization. The engineering applicability of the ME-CGAN method is demonstrated through two case studies involving the LG lever disagreement and HYD 1 ACMP failure. Moreover, the modeling and simulation performance of the ME-CGAN method is evaluated through comparisons with various mathematical approaches. Experimental results indicate that the ME-CGAN method achieves high efficiency in generating failure samples and can effectively enhance the accuracy of operational reliability modeling and solution processes for civil aircraft.
| Translated title of the contribution | 基于机理增强条件生成对抗的民机运行可靠性评估方法 |
|---|---|
| Original language | English |
| Article number | 232483 |
| Journal | Hangkong Xuebao/Acta Aeronautica et Astronautica Sinica |
| Volume | 47 |
| Issue number | 6 |
| DOIs | |
| State | Published - 25 Mar 2026 |
Keywords
- civil aircraft
- conditional generative adversarial network
- failure mechanism
- fault logic graph
- opera-tional reliability
- 民用飞机;故障逻辑图;失效机理;条件生成对抗网络;运行可靠性
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