基于长时间尺度特性建模优化的飞行器遥测数据集合异常检测方法
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TP311 TH701

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国家自然科学基金青年项目(62201177)项目资助


Aircraft telemetry data collective anomaly detection based on long time scale characteristic modeling optimization
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    摘要:

    飞行器遥测数据是地面判断卫星在轨状态的唯一来源。 异常检测有助于飞行器运行过程的视情动态决策,并能有效 减少故障。 然而,现有方法主要关注短时变化,难以有效识别集合异常模式。 针对这一问题,提出了一种基于长时间尺度特性 建模优化的飞行器遥测数据集合异常检测方法。 首先,构建时序关联依赖模型,提取遥测数据片段中的高维时序规律并生成预 测结果;然后,利用预测结果与观测数据之间的残差,构建统计模型,提取分布特征并形成异常检测判据;最后,利用迭代预测自 动调整模型输入,提升集合异常检测的鲁棒性。 通过实际飞行器姿态角数据的验证,结果表明,相比 VAE-LSTM 模型,异常片段 的检出率提升了 0. 041,F1 分数提升了 0. 039,证明了该方法在提高检测精度和降低漏检率方面的优势,为卫星视情运维提供可 靠的基础数据支撑。

    Abstract:

    Aircraft telemetry data are the only source for ground-based assessment of satellite in-orbit status. Anomaly detection facilitates condition-based dynamic decision-making during aircraft operations and effectively reduces failures. However, existing methods primaril f y ocus on short-term variations, making it difficult to identify collective anomaly patterns effectively. To address this issue, this article proposes a collective anomaly detection method for aircraft telemetry data based on long time-scale characteristic modeling optimization. First, a temporal correlation model is formulated to extract high-dimensional patterns from telemetry data segments and generate prediction results. Then, using the residuals between the prediction results and observed data, a statistical model is developed to extract distribution characteristics and establish anomaly detection criteria. Finally, iterative prediction is employed to automatically adjust model inputs, enhancing the robustness of collective anomaly detection. Validation using actual aircraft attitude angle telemetry data shows that, compared with the VAE-LSTM model, the proposed method improves the detection rate of anomaly segments by 0. 041 and the F1 score by 0. 039. These results show the method′s advantages in improving detection accuracy and reducing missed detections, providing reliable data support for condition-based satellite operations and maintenan

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王智鹏.基于长时间尺度特性建模优化的飞行器遥测数据集合异常检测方法[J].仪器仪表学报,2024,45(11):312-321

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  • 在线发布日期: 2025-01-26
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