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A novel approach of health monitoring and anomaly detection applied to spacecraft telemetry based on PLSDA multivariate latent technique

机译:基于PLSDA多元潜在技术的航天器遥测健康监测与异常检测新方法

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摘要

For any space mission operations, safety and reliability are the most important issues. Sophisticated and accurate fault detection and diagnosis of monitoring processes can minimize downtime, increase safety of space and ground operations, and reduce costs. To tackle this problem, system operations telemetry data was studied and analyzed to automatically characterize normal system behavior and anomaly detection and fault diagnosis methods for spacecraft systems based on multivariate latent techniques. In these methods, the knowledge or model which is necessary for monitoring a spacecraft system is acquired from the spacecraft telemetry data. In this paper, overview the anomaly detection - diagnosis problem in the spacecraft systems and modern techniques was discussed. Then explanation the concept of multivariate latent based approach was introduced. Furthermore, the results of applying dimensionality reduction algorithm to spacecraft telemetry using a novel technique called projection to latent structure discriminant analysis PLSDA were explained. Moreover, it compared with another multivariate technique principal component analysis PCA to provide robust information about the system's condition of the attitude determination and control subsystem ADCS of actual artificial satellite.
机译:对于任何太空飞行任务而言,安全性和可靠性都是最重要的问题。精密,准确的故障检测和监视过程的诊断可以最大程度地减少停机时间,提高空间和地面操作的安全性,并降低成本。为了解决这个问题,对系统操作遥测数据进行了研究和分析,以基于多元潜在技术自动表征正常的系统行为以及航天器系统的异常检测和故障诊断方法。在这些方法中,从航天器遥测数据获取监视航天器系统所需的知识或模型。本文概述了航天器系统和现代技术中的异常检测-诊断问题。然后介绍了基于多变量潜在方法的概念。此外,还解释了将降维算法应用于航天器遥测的结果,该新技术被称为“投影到潜在结构判别分析PLSDA”的新技术。此外,它与另一种多元技术主成分分析PCA进行了比较,以提供有关实际人造卫星的姿态确定和控制子系统ADCS的系统状态的可靠信息。

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