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Multi-Condition Fault Diagnosis of Dynamic Systems: A Survey, Insights, and Prospects

2024-12-27 · Pengyu Han, Zeyi Liu, Xiao He, Steven X. Ding, Donghua Zhou

With the increasing complexity of industrial production systems, accurate fault diagnosis is essential to ensure safe and efficient system operation. However, due to changes in production demands, dynamic process adjustments, and complex external environmental disturbances, multiple operating conditions frequently arise during production. The multi-condition characteristics pose significant challenges to traditional fault diagnosis methods. In this context, multi-condition fault diagnosis has gradually become a key area of research, attracting extensive attention from both academia and industry. This paper aims to provide a systematic and comprehensive review of existing research in the field. Firstly, the mathematical definition of the problem is presented, followed by an overview of the current research status. Subsequently, the existing literature is reviewed and categorized from the perspectives of single-model and multi-model approaches. In addition, standard evaluation metrics and typical real-world application scenarios are summarized and analyzed. Finally, the key challenges and prospects in the field are thoroughly discussed.

📄 PDF Abstract BibTeX arXiv:2412.19497

Code (1)

THUFDD/Multi-Condition-Fault-Diagnosis 공식 구현

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Fault Diagnosis

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Softmax The Softmax output function transforms a previous layer's output into a vector of probabilities. It is commonly used for multiclass classification. Given an input vector $x$…
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