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Multi-State Adaptive BIT False Alarm Reduction Under Degradation Process

机译:退化过程下的多状态自适应BIT虚警减少

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摘要

Built-in tests (BITs) are widely used in mechanical systems to detect and diagnose a fault, whereas the BIT false alarms bring much trouble for precise fault diagnosis and logistics/maintenance arrangement. The false alarm phenomenon is related to the degradation over time, and the false alarm evolution process can be typically divided into three stages. This paper proposes a condition-based multistage false alarm detection and reduction method for mechanical systems. The stages are clarified according to the degradation level and the false alarm severity. The dividing boundaries of the stages are optimized using soft margin one-versus-rest support vector machine (SVM) classifiers. The associated intermediate stage is the intense period of false alarms, and the dynamic Bayesian network inference model is developed to satisfy the requirements of accurate false alarm diagnosis. To achieve the goal of false alarm suppression, the top-level BIT outputs are updated with the original BIT alarms and the identified probable states. Finally, the proposed approach is demonstrated in the application study of a milling machine and the well-round experimental results are analyzed.
机译:内置测试(BIT)被广泛用于机械系统中以检测和诊断故障,而BIT错误警报给精确的故障诊断和后勤/维护安排带来了很多麻烦。错误警报现象与时间的推移有关,并且错误警报演变过程通常可以分为三个阶段。提出了一种基于状态的机械系统多级虚警检测与减少方法。根据降级级别和误报严重性来澄清阶段。使用软边距一休息支持向量机(SVM)分类器优化了阶段的划分边界。相关的中间阶段是虚假警报的密集期,并开发了动态贝叶斯网络推理模型以满足准确虚假警报诊断的要求。为了实现错误警报抑制的目的,将使用原始BIT警报和已标识的可能状态来更新顶级BIT输出。最后,该方法在铣床的应用研究中得到了证明,并分析了全面的实验结果。

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